Index: head/sys/dev/ath/if_ath.c =================================================================== --- head/sys/dev/ath/if_ath.c (revision 365418) +++ head/sys/dev/ath/if_ath.c (revision 365419) @@ -1,7074 +1,7065 @@ /*- * SPDX-License-Identifier: BSD-2-Clause-FreeBSD * * Copyright (c) 2002-2009 Sam Leffler, Errno Consulting * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer, * without modification. * 2. Redistributions in binary form must reproduce at minimum a disclaimer * similar to the "NO WARRANTY" disclaimer below ("Disclaimer") and any * redistribution must be conditioned upon including a substantially * similar Disclaimer requirement for further binary redistribution. * * NO WARRANTY * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT * LIMITED TO, THE IMPLIED WARRANTIES OF NONINFRINGEMENT, MERCHANTIBILITY * AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL * THE COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR SPECIAL, EXEMPLARY, * OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER * IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF * THE POSSIBILITY OF SUCH DAMAGES. */ #include __FBSDID("$FreeBSD$"); /* * Driver for the Atheros Wireless LAN controller. * * This software is derived from work of Atsushi Onoe; his contribution * is greatly appreciated. */ #include "opt_inet.h" #include "opt_ath.h" /* * This is needed for register operations which are performed * by the driver - eg, calls to ath_hal_gettsf32(). * * It's also required for any AH_DEBUG checks in here, eg the * module dependencies. */ #include "opt_ah.h" #include "opt_wlan.h" #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include /* for mp_ncpus */ #include #include #include #include #include #include #include #include #include #include #include #ifdef IEEE80211_SUPPORT_SUPERG #include #endif #ifdef IEEE80211_SUPPORT_TDMA #include #endif #include #ifdef INET #include #include #endif #include #include /* XXX for softled */ #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #ifdef ATH_TX99_DIAG #include #endif #ifdef ATH_DEBUG_ALQ #include #endif /* * Only enable this if you're working on PS-POLL support. */ #define ATH_SW_PSQ /* * ATH_BCBUF determines the number of vap's that can transmit * beacons and also (currently) the number of vap's that can * have unique mac addresses/bssid. When staggering beacons * 4 is probably a good max as otherwise the beacons become * very closely spaced and there is limited time for cab q traffic * to go out. You can burst beacons instead but that is not good * for stations in power save and at some point you really want * another radio (and channel). * * The limit on the number of mac addresses is tied to our use of * the U/L bit and tracking addresses in a byte; it would be * worthwhile to allow more for applications like proxy sta. */ CTASSERT(ATH_BCBUF <= 8); static struct ieee80211vap *ath_vap_create(struct ieee80211com *, const char [IFNAMSIZ], int, enum ieee80211_opmode, int, const uint8_t [IEEE80211_ADDR_LEN], const uint8_t [IEEE80211_ADDR_LEN]); static void ath_vap_delete(struct ieee80211vap *); static int ath_init(struct ath_softc *); static void ath_stop(struct ath_softc *); static int ath_reset_vap(struct ieee80211vap *, u_long); static int ath_transmit(struct ieee80211com *, struct mbuf *); -static int ath_media_change(struct ifnet *); static void ath_watchdog(void *); static void ath_parent(struct ieee80211com *); static void ath_fatal_proc(void *, int); static void ath_bmiss_vap(struct ieee80211vap *); static void ath_bmiss_proc(void *, int); static void ath_key_update_begin(struct ieee80211vap *); static void ath_key_update_end(struct ieee80211vap *); static void ath_update_mcast_hw(struct ath_softc *); static void ath_update_mcast(struct ieee80211com *); static void ath_update_promisc(struct ieee80211com *); static void ath_updateslot(struct ieee80211com *); static void ath_bstuck_proc(void *, int); static void ath_reset_proc(void *, int); static int ath_desc_alloc(struct ath_softc *); static void ath_desc_free(struct ath_softc *); static struct ieee80211_node *ath_node_alloc(struct ieee80211vap *, const uint8_t [IEEE80211_ADDR_LEN]); static void ath_node_cleanup(struct ieee80211_node *); static void ath_node_free(struct ieee80211_node *); static void ath_node_getsignal(const struct ieee80211_node *, int8_t *, int8_t *); static void ath_txq_init(struct ath_softc *sc, struct ath_txq *, int); static struct ath_txq *ath_txq_setup(struct ath_softc*, int qtype, int subtype); static int ath_tx_setup(struct ath_softc *, int, int); static void ath_tx_cleanupq(struct ath_softc *, struct ath_txq *); static void ath_tx_cleanup(struct ath_softc *); static int ath_tx_processq(struct ath_softc *sc, struct ath_txq *txq, int dosched); static void ath_tx_proc_q0(void *, int); static void ath_tx_proc_q0123(void *, int); static void ath_tx_proc(void *, int); static void ath_txq_sched_tasklet(void *, int); static int ath_chan_set(struct ath_softc *, struct ieee80211_channel *); static void ath_chan_change(struct ath_softc *, struct ieee80211_channel *); static void ath_scan_start(struct ieee80211com *); static void ath_scan_end(struct ieee80211com *); static void ath_set_channel(struct ieee80211com *); #ifdef ATH_ENABLE_11N static void ath_update_chw(struct ieee80211com *); #endif /* ATH_ENABLE_11N */ static int ath_set_quiet_ie(struct ieee80211_node *, uint8_t *); static void ath_calibrate(void *); static int ath_newstate(struct ieee80211vap *, enum ieee80211_state, int); static void ath_setup_stationkey(struct ieee80211_node *); static void ath_newassoc(struct ieee80211_node *, int); static int ath_setregdomain(struct ieee80211com *, struct ieee80211_regdomain *, int, struct ieee80211_channel []); static void ath_getradiocaps(struct ieee80211com *, int, int *, struct ieee80211_channel []); static int ath_getchannels(struct ath_softc *); static int ath_rate_setup(struct ath_softc *, u_int mode); static void ath_setcurmode(struct ath_softc *, enum ieee80211_phymode); static void ath_announce(struct ath_softc *); static void ath_dfs_tasklet(void *, int); static void ath_node_powersave(struct ieee80211_node *, int); static int ath_node_set_tim(struct ieee80211_node *, int); static void ath_node_recv_pspoll(struct ieee80211_node *, struct mbuf *); #ifdef IEEE80211_SUPPORT_TDMA #include #endif SYSCTL_DECL(_hw_ath); /* XXX validate sysctl values */ static int ath_longcalinterval = 30; /* long cals every 30 secs */ SYSCTL_INT(_hw_ath, OID_AUTO, longcal, CTLFLAG_RW, &ath_longcalinterval, 0, "long chip calibration interval (secs)"); static int ath_shortcalinterval = 100; /* short cals every 100 ms */ SYSCTL_INT(_hw_ath, OID_AUTO, shortcal, CTLFLAG_RW, &ath_shortcalinterval, 0, "short chip calibration interval (msecs)"); static int ath_resetcalinterval = 20*60; /* reset cal state 20 mins */ SYSCTL_INT(_hw_ath, OID_AUTO, resetcal, CTLFLAG_RW, &ath_resetcalinterval, 0, "reset chip calibration results (secs)"); static int ath_anicalinterval = 100; /* ANI calibration - 100 msec */ SYSCTL_INT(_hw_ath, OID_AUTO, anical, CTLFLAG_RW, &ath_anicalinterval, 0, "ANI calibration (msecs)"); int ath_rxbuf = ATH_RXBUF; /* # rx buffers to allocate */ SYSCTL_INT(_hw_ath, OID_AUTO, rxbuf, CTLFLAG_RWTUN, &ath_rxbuf, 0, "rx buffers allocated"); int ath_txbuf = ATH_TXBUF; /* # tx buffers to allocate */ SYSCTL_INT(_hw_ath, OID_AUTO, txbuf, CTLFLAG_RWTUN, &ath_txbuf, 0, "tx buffers allocated"); int ath_txbuf_mgmt = ATH_MGMT_TXBUF; /* # mgmt tx buffers to allocate */ SYSCTL_INT(_hw_ath, OID_AUTO, txbuf_mgmt, CTLFLAG_RWTUN, &ath_txbuf_mgmt, 0, "tx (mgmt) buffers allocated"); int ath_bstuck_threshold = 4; /* max missed beacons */ SYSCTL_INT(_hw_ath, OID_AUTO, bstuck, CTLFLAG_RW, &ath_bstuck_threshold, 0, "max missed beacon xmits before chip reset"); MALLOC_DEFINE(M_ATHDEV, "athdev", "ath driver dma buffers"); void ath_legacy_attach_comp_func(struct ath_softc *sc) { /* * Special case certain configurations. Note the * CAB queue is handled by these specially so don't * include them when checking the txq setup mask. */ switch (sc->sc_txqsetup &~ (1<sc_cabq->axq_qnum)) { case 0x01: TASK_INIT(&sc->sc_txtask, 0, ath_tx_proc_q0, sc); break; case 0x0f: TASK_INIT(&sc->sc_txtask, 0, ath_tx_proc_q0123, sc); break; default: TASK_INIT(&sc->sc_txtask, 0, ath_tx_proc, sc); break; } } /* * Set the target power mode. * * If this is called during a point in time where * the hardware is being programmed elsewhere, it will * simply store it away and update it when all current * uses of the hardware are completed. * * If the chip is going into network sleep or power off, then * we will wait until all uses of the chip are done before * going into network sleep or power off. * * If the chip is being programmed full-awake, then immediately * program it full-awake so we can actually stay awake rather than * the chip potentially going to sleep underneath us. */ void _ath_power_setpower(struct ath_softc *sc, int power_state, int selfgen, const char *file, int line) { ATH_LOCK_ASSERT(sc); DPRINTF(sc, ATH_DEBUG_PWRSAVE, "%s: (%s:%d) state=%d, refcnt=%d, target=%d, cur=%d\n", __func__, file, line, power_state, sc->sc_powersave_refcnt, sc->sc_target_powerstate, sc->sc_cur_powerstate); sc->sc_target_powerstate = power_state; /* * Don't program the chip into network sleep if the chip * is being programmed elsewhere. * * However, if the chip is being programmed /awake/, force * the chip awake so we stay awake. */ if ((sc->sc_powersave_refcnt == 0 || power_state == HAL_PM_AWAKE) && power_state != sc->sc_cur_powerstate) { sc->sc_cur_powerstate = power_state; ath_hal_setpower(sc->sc_ah, power_state); /* * If the NIC is force-awake, then set the * self-gen frame state appropriately. * * If the nic is in network sleep or full-sleep, * we let the above call leave the self-gen * state as "sleep". */ if (selfgen && sc->sc_cur_powerstate == HAL_PM_AWAKE && sc->sc_target_selfgen_state != HAL_PM_AWAKE) { ath_hal_setselfgenpower(sc->sc_ah, sc->sc_target_selfgen_state); } } } /* * Set the current self-generated frames state. * * This is separate from the target power mode. The chip may be * awake but the desired state is "sleep", so frames sent to the * destination has PWRMGT=1 in the 802.11 header. The NIC also * needs to know to set PWRMGT=1 in self-generated frames. */ void _ath_power_set_selfgen(struct ath_softc *sc, int power_state, const char *file, int line) { ATH_LOCK_ASSERT(sc); DPRINTF(sc, ATH_DEBUG_PWRSAVE, "%s: (%s:%d) state=%d, refcnt=%d\n", __func__, file, line, power_state, sc->sc_target_selfgen_state); sc->sc_target_selfgen_state = power_state; /* * If the NIC is force-awake, then set the power state. * Network-state and full-sleep will already transition it to * mark self-gen frames as sleeping - and we can't * guarantee the NIC is awake to program the self-gen frame * setting anyway. */ if (sc->sc_cur_powerstate == HAL_PM_AWAKE) { ath_hal_setselfgenpower(sc->sc_ah, power_state); } } /* * Set the hardware power mode and take a reference. * * This doesn't update the target power mode in the driver; * it just updates the hardware power state. * * XXX it should only ever force the hardware awake; it should * never be called to set it asleep. */ void _ath_power_set_power_state(struct ath_softc *sc, int power_state, const char *file, int line) { ATH_LOCK_ASSERT(sc); DPRINTF(sc, ATH_DEBUG_PWRSAVE, "%s: (%s:%d) state=%d, refcnt=%d\n", __func__, file, line, power_state, sc->sc_powersave_refcnt); sc->sc_powersave_refcnt++; /* * Only do the power state change if we're not programming * it elsewhere. */ if (power_state != sc->sc_cur_powerstate) { ath_hal_setpower(sc->sc_ah, power_state); sc->sc_cur_powerstate = power_state; /* * Adjust the self-gen powerstate if appropriate. */ if (sc->sc_cur_powerstate == HAL_PM_AWAKE && sc->sc_target_selfgen_state != HAL_PM_AWAKE) { ath_hal_setselfgenpower(sc->sc_ah, sc->sc_target_selfgen_state); } } } /* * Restore the power save mode to what it once was. * * This will decrement the reference counter and once it hits * zero, it'll restore the powersave state. */ void _ath_power_restore_power_state(struct ath_softc *sc, const char *file, int line) { ATH_LOCK_ASSERT(sc); DPRINTF(sc, ATH_DEBUG_PWRSAVE, "%s: (%s:%d) refcnt=%d, target state=%d\n", __func__, file, line, sc->sc_powersave_refcnt, sc->sc_target_powerstate); if (sc->sc_powersave_refcnt == 0) device_printf(sc->sc_dev, "%s: refcnt=0?\n", __func__); else sc->sc_powersave_refcnt--; if (sc->sc_powersave_refcnt == 0 && sc->sc_target_powerstate != sc->sc_cur_powerstate) { sc->sc_cur_powerstate = sc->sc_target_powerstate; ath_hal_setpower(sc->sc_ah, sc->sc_target_powerstate); } /* * Adjust the self-gen powerstate if appropriate. */ if (sc->sc_cur_powerstate == HAL_PM_AWAKE && sc->sc_target_selfgen_state != HAL_PM_AWAKE) { ath_hal_setselfgenpower(sc->sc_ah, sc->sc_target_selfgen_state); } } /* * Configure the initial HAL configuration values based on bus * specific parameters. * * Some PCI IDs and other information may need tweaking. * * XXX TODO: ath9k and the Atheros HAL only program comm2g_switch_enable * if BT antenna diversity isn't enabled. * * So, let's also figure out how to enable BT diversity for AR9485. */ static void ath_setup_hal_config(struct ath_softc *sc, HAL_OPS_CONFIG *ah_config) { /* XXX TODO: only for PCI devices? */ if (sc->sc_pci_devinfo & (ATH_PCI_CUS198 | ATH_PCI_CUS230)) { ah_config->ath_hal_ext_lna_ctl_gpio = 0x200; /* bit 9 */ ah_config->ath_hal_ext_atten_margin_cfg = AH_TRUE; ah_config->ath_hal_min_gainidx = AH_TRUE; ah_config->ath_hal_ant_ctrl_comm2g_switch_enable = 0x000bbb88; /* XXX low_rssi_thresh */ /* XXX fast_div_bias */ device_printf(sc->sc_dev, "configuring for %s\n", (sc->sc_pci_devinfo & ATH_PCI_CUS198) ? "CUS198" : "CUS230"); } if (sc->sc_pci_devinfo & ATH_PCI_CUS217) device_printf(sc->sc_dev, "CUS217 card detected\n"); if (sc->sc_pci_devinfo & ATH_PCI_CUS252) device_printf(sc->sc_dev, "CUS252 card detected\n"); if (sc->sc_pci_devinfo & ATH_PCI_AR9565_1ANT) device_printf(sc->sc_dev, "WB335 1-ANT card detected\n"); if (sc->sc_pci_devinfo & ATH_PCI_AR9565_2ANT) device_printf(sc->sc_dev, "WB335 2-ANT card detected\n"); if (sc->sc_pci_devinfo & ATH_PCI_BT_ANT_DIV) device_printf(sc->sc_dev, "Bluetooth Antenna Diversity card detected\n"); if (sc->sc_pci_devinfo & ATH_PCI_KILLER) device_printf(sc->sc_dev, "Killer Wireless card detected\n"); #if 0 /* * Some WB335 cards do not support antenna diversity. Since * we use a hardcoded value for AR9565 instead of using the * EEPROM/OTP data, remove the combining feature from * the HW capabilities bitmap. */ if (sc->sc_pci_devinfo & (ATH9K_PCI_AR9565_1ANT | ATH9K_PCI_AR9565_2ANT)) { if (!(sc->sc_pci_devinfo & ATH9K_PCI_BT_ANT_DIV)) pCap->hw_caps &= ~ATH9K_HW_CAP_ANT_DIV_COMB; } if (sc->sc_pci_devinfo & ATH9K_PCI_BT_ANT_DIV) { pCap->hw_caps |= ATH9K_HW_CAP_BT_ANT_DIV; device_printf(sc->sc_dev, "Set BT/WLAN RX diversity capability\n"); } #endif if (sc->sc_pci_devinfo & ATH_PCI_D3_L1_WAR) { ah_config->ath_hal_pcie_waen = 0x0040473b; device_printf(sc->sc_dev, "Enable WAR for ASPM D3/L1\n"); } #if 0 if (sc->sc_pci_devinfo & ATH9K_PCI_NO_PLL_PWRSAVE) { ah->config.no_pll_pwrsave = true; device_printf(sc->sc_dev, "Disable PLL PowerSave\n"); } #endif } /* * Attempt to fetch the MAC address from the kernel environment. * * Returns 0, macaddr in macaddr if successful; -1 otherwise. */ static int ath_fetch_mac_kenv(struct ath_softc *sc, uint8_t *macaddr) { char devid_str[32]; int local_mac = 0; char *local_macstr; /* * Fetch from the kenv rather than using hints. * * Hints would be nice but the transition to dynamic * hints/kenv doesn't happen early enough for this * to work reliably (eg on anything embedded.) */ snprintf(devid_str, 32, "hint.%s.%d.macaddr", device_get_name(sc->sc_dev), device_get_unit(sc->sc_dev)); if ((local_macstr = kern_getenv(devid_str)) != NULL) { uint32_t tmpmac[ETHER_ADDR_LEN]; int count; int i; /* Have a MAC address; should use it */ device_printf(sc->sc_dev, "Overriding MAC address from environment: '%s'\n", local_macstr); /* Extract out the MAC address */ count = sscanf(local_macstr, "%x%*c%x%*c%x%*c%x%*c%x%*c%x", &tmpmac[0], &tmpmac[1], &tmpmac[2], &tmpmac[3], &tmpmac[4], &tmpmac[5]); if (count == 6) { /* Valid! */ local_mac = 1; for (i = 0; i < ETHER_ADDR_LEN; i++) macaddr[i] = tmpmac[i]; } /* Done! */ freeenv(local_macstr); local_macstr = NULL; } if (local_mac) return (0); return (-1); } #define HAL_MODE_HT20 (HAL_MODE_11NG_HT20 | HAL_MODE_11NA_HT20) #define HAL_MODE_HT40 \ (HAL_MODE_11NG_HT40PLUS | HAL_MODE_11NG_HT40MINUS | \ HAL_MODE_11NA_HT40PLUS | HAL_MODE_11NA_HT40MINUS) int ath_attach(u_int16_t devid, struct ath_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ath_hal *ah = NULL; HAL_STATUS status; int error = 0, i; u_int wmodes; int rx_chainmask, tx_chainmask; HAL_OPS_CONFIG ah_config; DPRINTF(sc, ATH_DEBUG_ANY, "%s: devid 0x%x\n", __func__, devid); ic->ic_softc = sc; ic->ic_name = device_get_nameunit(sc->sc_dev); /* * Configure the initial configuration data. * * This is stuff that may be needed early during attach * rather than done via configuration calls later. */ bzero(&ah_config, sizeof(ah_config)); ath_setup_hal_config(sc, &ah_config); ah = ath_hal_attach(devid, sc, sc->sc_st, sc->sc_sh, sc->sc_eepromdata, &ah_config, &status); if (ah == NULL) { device_printf(sc->sc_dev, "unable to attach hardware; HAL status %u\n", status); error = ENXIO; goto bad; } sc->sc_ah = ah; sc->sc_invalid = 0; /* ready to go, enable interrupt handling */ #ifdef ATH_DEBUG sc->sc_debug = ath_debug; #endif /* * Force the chip awake during setup, just to keep * the HAL/driver power tracking happy. * * There are some methods (eg ath_hal_setmac()) * that poke the hardware. */ ATH_LOCK(sc); ath_power_setpower(sc, HAL_PM_AWAKE, 1); ATH_UNLOCK(sc); /* * Setup the DMA/EDMA functions based on the current * hardware support. * * This is required before the descriptors are allocated. */ if (ath_hal_hasedma(sc->sc_ah)) { sc->sc_isedma = 1; ath_recv_setup_edma(sc); ath_xmit_setup_edma(sc); } else { ath_recv_setup_legacy(sc); ath_xmit_setup_legacy(sc); } if (ath_hal_hasmybeacon(sc->sc_ah)) { sc->sc_do_mybeacon = 1; } /* * Check if the MAC has multi-rate retry support. * We do this by trying to setup a fake extended * descriptor. MAC's that don't have support will * return false w/o doing anything. MAC's that do * support it will return true w/o doing anything. */ sc->sc_mrretry = ath_hal_setupxtxdesc(ah, NULL, 0,0, 0,0, 0,0); /* * Check if the device has hardware counters for PHY * errors. If so we need to enable the MIB interrupt * so we can act on stat triggers. */ if (ath_hal_hwphycounters(ah)) sc->sc_needmib = 1; /* * Get the hardware key cache size. */ sc->sc_keymax = ath_hal_keycachesize(ah); if (sc->sc_keymax > ATH_KEYMAX) { device_printf(sc->sc_dev, "Warning, using only %u of %u key cache slots\n", ATH_KEYMAX, sc->sc_keymax); sc->sc_keymax = ATH_KEYMAX; } /* * Reset the key cache since some parts do not * reset the contents on initial power up. */ for (i = 0; i < sc->sc_keymax; i++) ath_hal_keyreset(ah, i); /* * Collect the default channel list. */ error = ath_getchannels(sc); if (error != 0) goto bad; /* * Setup rate tables for all potential media types. */ ath_rate_setup(sc, IEEE80211_MODE_11A); ath_rate_setup(sc, IEEE80211_MODE_11B); ath_rate_setup(sc, IEEE80211_MODE_11G); ath_rate_setup(sc, IEEE80211_MODE_TURBO_A); ath_rate_setup(sc, IEEE80211_MODE_TURBO_G); ath_rate_setup(sc, IEEE80211_MODE_STURBO_A); ath_rate_setup(sc, IEEE80211_MODE_11NA); ath_rate_setup(sc, IEEE80211_MODE_11NG); ath_rate_setup(sc, IEEE80211_MODE_HALF); ath_rate_setup(sc, IEEE80211_MODE_QUARTER); /* NB: setup here so ath_rate_update is happy */ ath_setcurmode(sc, IEEE80211_MODE_11A); /* * Allocate TX descriptors and populate the lists. */ error = ath_desc_alloc(sc); if (error != 0) { device_printf(sc->sc_dev, "failed to allocate TX descriptors: %d\n", error); goto bad; } error = ath_txdma_setup(sc); if (error != 0) { device_printf(sc->sc_dev, "failed to allocate TX descriptors: %d\n", error); goto bad; } /* * Allocate RX descriptors and populate the lists. */ error = ath_rxdma_setup(sc); if (error != 0) { device_printf(sc->sc_dev, "failed to allocate RX descriptors: %d\n", error); goto bad; } callout_init_mtx(&sc->sc_cal_ch, &sc->sc_mtx, 0); callout_init_mtx(&sc->sc_wd_ch, &sc->sc_mtx, 0); ATH_TXBUF_LOCK_INIT(sc); sc->sc_tq = taskqueue_create("ath_taskq", M_NOWAIT, taskqueue_thread_enqueue, &sc->sc_tq); taskqueue_start_threads(&sc->sc_tq, 1, PI_NET, "%s taskq", device_get_nameunit(sc->sc_dev)); TASK_INIT(&sc->sc_rxtask, 0, sc->sc_rx.recv_tasklet, sc); TASK_INIT(&sc->sc_bmisstask, 0, ath_bmiss_proc, sc); TASK_INIT(&sc->sc_bstucktask,0, ath_bstuck_proc, sc); TASK_INIT(&sc->sc_resettask,0, ath_reset_proc, sc); TASK_INIT(&sc->sc_txqtask, 0, ath_txq_sched_tasklet, sc); TASK_INIT(&sc->sc_fataltask, 0, ath_fatal_proc, sc); /* * Allocate hardware transmit queues: one queue for * beacon frames and one data queue for each QoS * priority. Note that the hal handles resetting * these queues at the needed time. * * XXX PS-Poll */ sc->sc_bhalq = ath_beaconq_setup(sc); if (sc->sc_bhalq == (u_int) -1) { device_printf(sc->sc_dev, "unable to setup a beacon xmit queue!\n"); error = EIO; goto bad2; } sc->sc_cabq = ath_txq_setup(sc, HAL_TX_QUEUE_CAB, 0); if (sc->sc_cabq == NULL) { device_printf(sc->sc_dev, "unable to setup CAB xmit queue!\n"); error = EIO; goto bad2; } /* NB: insure BK queue is the lowest priority h/w queue */ if (!ath_tx_setup(sc, WME_AC_BK, HAL_WME_AC_BK)) { device_printf(sc->sc_dev, "unable to setup xmit queue for %s traffic!\n", ieee80211_wme_acnames[WME_AC_BK]); error = EIO; goto bad2; } if (!ath_tx_setup(sc, WME_AC_BE, HAL_WME_AC_BE) || !ath_tx_setup(sc, WME_AC_VI, HAL_WME_AC_VI) || !ath_tx_setup(sc, WME_AC_VO, HAL_WME_AC_VO)) { /* * Not enough hardware tx queues to properly do WME; * just punt and assign them all to the same h/w queue. * We could do a better job of this if, for example, * we allocate queues when we switch from station to * AP mode. */ if (sc->sc_ac2q[WME_AC_VI] != NULL) ath_tx_cleanupq(sc, sc->sc_ac2q[WME_AC_VI]); if (sc->sc_ac2q[WME_AC_BE] != NULL) ath_tx_cleanupq(sc, sc->sc_ac2q[WME_AC_BE]); sc->sc_ac2q[WME_AC_BE] = sc->sc_ac2q[WME_AC_BK]; sc->sc_ac2q[WME_AC_VI] = sc->sc_ac2q[WME_AC_BK]; sc->sc_ac2q[WME_AC_VO] = sc->sc_ac2q[WME_AC_BK]; } /* * Attach the TX completion function. * * The non-EDMA chips may have some special case optimisations; * this method gives everyone a chance to attach cleanly. */ sc->sc_tx.xmit_attach_comp_func(sc); /* * Setup rate control. Some rate control modules * call back to change the anntena state so expose * the necessary entry points. * XXX maybe belongs in struct ath_ratectrl? */ sc->sc_setdefantenna = ath_setdefantenna; sc->sc_rc = ath_rate_attach(sc); if (sc->sc_rc == NULL) { error = EIO; goto bad2; } /* Attach DFS module */ if (! ath_dfs_attach(sc)) { device_printf(sc->sc_dev, "%s: unable to attach DFS\n", __func__); error = EIO; goto bad2; } /* Attach spectral module */ if (ath_spectral_attach(sc) < 0) { device_printf(sc->sc_dev, "%s: unable to attach spectral\n", __func__); error = EIO; goto bad2; } /* Attach bluetooth coexistence module */ if (ath_btcoex_attach(sc) < 0) { device_printf(sc->sc_dev, "%s: unable to attach bluetooth coexistence\n", __func__); error = EIO; goto bad2; } /* Attach LNA diversity module */ if (ath_lna_div_attach(sc) < 0) { device_printf(sc->sc_dev, "%s: unable to attach LNA diversity\n", __func__); error = EIO; goto bad2; } /* Start DFS processing tasklet */ TASK_INIT(&sc->sc_dfstask, 0, ath_dfs_tasklet, sc); /* Configure LED state */ sc->sc_blinking = 0; sc->sc_ledstate = 1; sc->sc_ledon = 0; /* low true */ sc->sc_ledidle = (2700*hz)/1000; /* 2.7sec */ callout_init(&sc->sc_ledtimer, 1); /* * Don't setup hardware-based blinking. * * Although some NICs may have this configured in the * default reset register values, the user may wish * to alter which pins have which function. * * The reference driver attaches the MAC network LED to GPIO1 and * the MAC power LED to GPIO2. However, the DWA-552 cardbus * NIC has these reversed. */ sc->sc_hardled = (1 == 0); sc->sc_led_net_pin = -1; sc->sc_led_pwr_pin = -1; /* * Auto-enable soft led processing for IBM cards and for * 5211 minipci cards. Users can also manually enable/disable * support with a sysctl. */ sc->sc_softled = (devid == AR5212_DEVID_IBM || devid == AR5211_DEVID); ath_led_config(sc); ath_hal_setledstate(ah, HAL_LED_INIT); /* XXX not right but it's not used anywhere important */ ic->ic_phytype = IEEE80211_T_OFDM; ic->ic_opmode = IEEE80211_M_STA; ic->ic_caps = IEEE80211_C_STA /* station mode */ | IEEE80211_C_IBSS /* ibss, nee adhoc, mode */ | IEEE80211_C_HOSTAP /* hostap mode */ | IEEE80211_C_MONITOR /* monitor mode */ | IEEE80211_C_AHDEMO /* adhoc demo mode */ | IEEE80211_C_WDS /* 4-address traffic works */ | IEEE80211_C_MBSS /* mesh point link mode */ | IEEE80211_C_SHPREAMBLE /* short preamble supported */ | IEEE80211_C_SHSLOT /* short slot time supported */ | IEEE80211_C_WPA /* capable of WPA1+WPA2 */ #ifndef ATH_ENABLE_11N | IEEE80211_C_BGSCAN /* capable of bg scanning */ #endif | IEEE80211_C_TXFRAG /* handle tx frags */ #ifdef ATH_ENABLE_DFS | IEEE80211_C_DFS /* Enable radar detection */ #endif | IEEE80211_C_PMGT /* Station side power mgmt */ | IEEE80211_C_SWSLEEP ; /* * Query the hal to figure out h/w crypto support. */ if (ath_hal_ciphersupported(ah, HAL_CIPHER_WEP)) ic->ic_cryptocaps |= IEEE80211_CRYPTO_WEP; if (ath_hal_ciphersupported(ah, HAL_CIPHER_AES_OCB)) ic->ic_cryptocaps |= IEEE80211_CRYPTO_AES_OCB; if (ath_hal_ciphersupported(ah, HAL_CIPHER_AES_CCM)) ic->ic_cryptocaps |= IEEE80211_CRYPTO_AES_CCM; if (ath_hal_ciphersupported(ah, HAL_CIPHER_CKIP)) ic->ic_cryptocaps |= IEEE80211_CRYPTO_CKIP; if (ath_hal_ciphersupported(ah, HAL_CIPHER_TKIP)) { ic->ic_cryptocaps |= IEEE80211_CRYPTO_TKIP; /* * Check if h/w does the MIC and/or whether the * separate key cache entries are required to * handle both tx+rx MIC keys. */ if (ath_hal_ciphersupported(ah, HAL_CIPHER_MIC)) ic->ic_cryptocaps |= IEEE80211_CRYPTO_TKIPMIC; /* * If the h/w supports storing tx+rx MIC keys * in one cache slot automatically enable use. */ if (ath_hal_hastkipsplit(ah) || !ath_hal_settkipsplit(ah, AH_FALSE)) sc->sc_splitmic = 1; /* * If the h/w can do TKIP MIC together with WME then * we use it; otherwise we force the MIC to be done * in software by the net80211 layer. */ if (ath_hal_haswmetkipmic(ah)) sc->sc_wmetkipmic = 1; } sc->sc_hasclrkey = ath_hal_ciphersupported(ah, HAL_CIPHER_CLR); /* * Check for multicast key search support. */ if (ath_hal_hasmcastkeysearch(sc->sc_ah) && !ath_hal_getmcastkeysearch(sc->sc_ah)) { ath_hal_setmcastkeysearch(sc->sc_ah, 1); } sc->sc_mcastkey = ath_hal_getmcastkeysearch(ah); /* * Mark key cache slots associated with global keys * as in use. If we knew TKIP was not to be used we * could leave the +32, +64, and +32+64 slots free. */ for (i = 0; i < IEEE80211_WEP_NKID; i++) { setbit(sc->sc_keymap, i); setbit(sc->sc_keymap, i+64); if (sc->sc_splitmic) { setbit(sc->sc_keymap, i+32); setbit(sc->sc_keymap, i+32+64); } } /* * TPC support can be done either with a global cap or * per-packet support. The latter is not available on * all parts. We're a bit pedantic here as all parts * support a global cap. */ if (ath_hal_hastpc(ah) || ath_hal_hastxpowlimit(ah)) ic->ic_caps |= IEEE80211_C_TXPMGT; /* * Mark WME capability only if we have sufficient * hardware queues to do proper priority scheduling. */ if (sc->sc_ac2q[WME_AC_BE] != sc->sc_ac2q[WME_AC_BK]) ic->ic_caps |= IEEE80211_C_WME; /* * Check for misc other capabilities. */ if (ath_hal_hasbursting(ah)) ic->ic_caps |= IEEE80211_C_BURST; sc->sc_hasbmask = ath_hal_hasbssidmask(ah); sc->sc_hasbmatch = ath_hal_hasbssidmatch(ah); sc->sc_hastsfadd = ath_hal_hastsfadjust(ah); sc->sc_rxslink = ath_hal_self_linked_final_rxdesc(ah); /* XXX TODO: just make this a "store tx/rx timestamp length" operation */ if (ath_hal_get_rx_tsf_prec(ah, &i)) { if (i == 32) { sc->sc_rxtsf32 = 1; } if (bootverbose) device_printf(sc->sc_dev, "RX timestamp: %d bits\n", i); } if (ath_hal_get_tx_tsf_prec(ah, &i)) { if (bootverbose) device_printf(sc->sc_dev, "TX timestamp: %d bits\n", i); } sc->sc_hasenforcetxop = ath_hal_hasenforcetxop(ah); sc->sc_rx_lnamixer = ath_hal_hasrxlnamixer(ah); sc->sc_hasdivcomb = ath_hal_hasdivantcomb(ah); /* * Some WB335 cards do not support antenna diversity. Since * we use a hardcoded value for AR9565 instead of using the * EEPROM/OTP data, remove the combining feature from * the HW capabilities bitmap. */ /* * XXX TODO: check reference driver and ath9k for what to do * here for WB335. I think we have to actually disable the * LNA div processing in the HAL and instead use the hard * coded values; and then use BT diversity. * * .. but also need to setup MCI too for WB335.. */ #if 0 if (sc->sc_pci_devinfo & (ATH9K_PCI_AR9565_1ANT | ATH9K_PCI_AR9565_2ANT)) { device_printf(sc->sc_dev, "%s: WB335: disabling LNA mixer diversity\n", __func__); sc->sc_dolnadiv = 0; } #endif if (ath_hal_hasfastframes(ah)) ic->ic_caps |= IEEE80211_C_FF; wmodes = ath_hal_getwirelessmodes(ah); if (wmodes & (HAL_MODE_108G|HAL_MODE_TURBO)) ic->ic_caps |= IEEE80211_C_TURBOP; #ifdef IEEE80211_SUPPORT_TDMA if (ath_hal_macversion(ah) > 0x78) { ic->ic_caps |= IEEE80211_C_TDMA; /* capable of TDMA */ ic->ic_tdma_update = ath_tdma_update; } #endif /* * TODO: enforce that at least this many frames are available * in the txbuf list before allowing data frames (raw or * otherwise) to be transmitted. */ sc->sc_txq_data_minfree = 10; /* * Shorten this to 64 packets, or 1/4 ath_txbuf, whichever * is smaller. * * Anything bigger can potentially see the cabq consume * almost all buffers, starving everything else, only to * see most fail to transmit in the given beacon interval. */ sc->sc_txq_mcastq_maxdepth = MIN(64, ath_txbuf / 4); /* * How deep can the node software TX queue get whilst it's asleep. */ sc->sc_txq_node_psq_maxdepth = 16; /* * Default the maximum queue to 1/4'th the TX buffers, or * 64, whichever is smaller. */ sc->sc_txq_node_maxdepth = MIN(64, ath_txbuf / 4); /* Enable CABQ by default */ sc->sc_cabq_enable = 1; /* * Allow the TX and RX chainmasks to be overridden by * environment variables and/or device.hints. * * This must be done early - before the hardware is * calibrated or before the 802.11n stream calculation * is done. */ if (resource_int_value(device_get_name(sc->sc_dev), device_get_unit(sc->sc_dev), "rx_chainmask", &rx_chainmask) == 0) { device_printf(sc->sc_dev, "Setting RX chainmask to 0x%x\n", rx_chainmask); (void) ath_hal_setrxchainmask(sc->sc_ah, rx_chainmask); } if (resource_int_value(device_get_name(sc->sc_dev), device_get_unit(sc->sc_dev), "tx_chainmask", &tx_chainmask) == 0) { device_printf(sc->sc_dev, "Setting TX chainmask to 0x%x\n", tx_chainmask); (void) ath_hal_settxchainmask(sc->sc_ah, tx_chainmask); } /* * Query the TX/RX chainmask configuration. * * This is only relevant for 11n devices. */ ath_hal_getrxchainmask(ah, &sc->sc_rxchainmask); ath_hal_gettxchainmask(ah, &sc->sc_txchainmask); /* * Disable MRR with protected frames by default. * Only 802.11n series NICs can handle this. */ sc->sc_mrrprot = 0; /* XXX should be a capability */ /* * Query the enterprise mode information the HAL. */ if (ath_hal_getcapability(ah, HAL_CAP_ENTERPRISE_MODE, 0, &sc->sc_ent_cfg) == HAL_OK) sc->sc_use_ent = 1; #ifdef ATH_ENABLE_11N /* * Query HT capabilities */ if (ath_hal_getcapability(ah, HAL_CAP_HT, 0, NULL) == HAL_OK && (wmodes & (HAL_MODE_HT20 | HAL_MODE_HT40))) { uint32_t rxs, txs; uint32_t ldpc; device_printf(sc->sc_dev, "[HT] enabling HT modes\n"); sc->sc_mrrprot = 1; /* XXX should be a capability */ ic->ic_htcaps = IEEE80211_HTC_HT /* HT operation */ | IEEE80211_HTC_AMPDU /* A-MPDU tx/rx */ | IEEE80211_HTC_AMSDU /* A-MSDU tx/rx */ | IEEE80211_HTCAP_MAXAMSDU_3839 /* max A-MSDU length */ | IEEE80211_HTCAP_SMPS_OFF; /* SM power save off */ /* * Enable short-GI for HT20 only if the hardware * advertises support. * Notably, anything earlier than the AR9287 doesn't. */ if ((ath_hal_getcapability(ah, HAL_CAP_HT20_SGI, 0, NULL) == HAL_OK) && (wmodes & HAL_MODE_HT20)) { device_printf(sc->sc_dev, "[HT] enabling short-GI in 20MHz mode\n"); ic->ic_htcaps |= IEEE80211_HTCAP_SHORTGI20; } if (wmodes & HAL_MODE_HT40) ic->ic_htcaps |= IEEE80211_HTCAP_CHWIDTH40 | IEEE80211_HTCAP_SHORTGI40; /* * TX/RX streams need to be taken into account when * negotiating which MCS rates it'll receive and * what MCS rates are available for TX. */ (void) ath_hal_getcapability(ah, HAL_CAP_STREAMS, 0, &txs); (void) ath_hal_getcapability(ah, HAL_CAP_STREAMS, 1, &rxs); ic->ic_txstream = txs; ic->ic_rxstream = rxs; /* * Setup TX and RX STBC based on what the HAL allows and * the currently configured chainmask set. * Ie - don't enable STBC TX if only one chain is enabled. * STBC RX is fine on a single RX chain; it just won't * provide any real benefit. */ if (ath_hal_getcapability(ah, HAL_CAP_RX_STBC, 0, NULL) == HAL_OK) { sc->sc_rx_stbc = 1; device_printf(sc->sc_dev, "[HT] 1 stream STBC receive enabled\n"); ic->ic_htcaps |= IEEE80211_HTCAP_RXSTBC_1STREAM; } if (txs > 1 && ath_hal_getcapability(ah, HAL_CAP_TX_STBC, 0, NULL) == HAL_OK) { sc->sc_tx_stbc = 1; device_printf(sc->sc_dev, "[HT] 1 stream STBC transmit enabled\n"); ic->ic_htcaps |= IEEE80211_HTCAP_TXSTBC; } (void) ath_hal_getcapability(ah, HAL_CAP_RTS_AGGR_LIMIT, 1, &sc->sc_rts_aggr_limit); if (sc->sc_rts_aggr_limit != (64 * 1024)) device_printf(sc->sc_dev, "[HT] RTS aggregates limited to %d KiB\n", sc->sc_rts_aggr_limit / 1024); /* * LDPC */ if ((ath_hal_getcapability(ah, HAL_CAP_LDPC, 0, &ldpc)) == HAL_OK && (ldpc == 1)) { sc->sc_has_ldpc = 1; device_printf(sc->sc_dev, "[HT] LDPC transmit/receive enabled\n"); ic->ic_htcaps |= IEEE80211_HTCAP_LDPC | IEEE80211_HTC_TXLDPC; } device_printf(sc->sc_dev, "[HT] %d RX streams; %d TX streams\n", rxs, txs); } #endif /* * Initial aggregation settings. */ sc->sc_hwq_limit_aggr = ATH_AGGR_MIN_QDEPTH; sc->sc_hwq_limit_nonaggr = ATH_NONAGGR_MIN_QDEPTH; sc->sc_tid_hwq_lo = ATH_AGGR_SCHED_LOW; sc->sc_tid_hwq_hi = ATH_AGGR_SCHED_HIGH; sc->sc_aggr_limit = ATH_AGGR_MAXSIZE; sc->sc_delim_min_pad = 0; /* * Check if the hardware requires PCI register serialisation. * Some of the Owl based MACs require this. */ if (mp_ncpus > 1 && ath_hal_getcapability(ah, HAL_CAP_SERIALISE_WAR, 0, NULL) == HAL_OK) { sc->sc_ah->ah_config.ah_serialise_reg_war = 1; device_printf(sc->sc_dev, "Enabling register serialisation\n"); } /* * Initialise the deferred completed RX buffer list. */ TAILQ_INIT(&sc->sc_rx_rxlist[HAL_RX_QUEUE_HP]); TAILQ_INIT(&sc->sc_rx_rxlist[HAL_RX_QUEUE_LP]); /* * Indicate we need the 802.11 header padded to a * 32-bit boundary for 4-address and QoS frames. */ ic->ic_flags |= IEEE80211_F_DATAPAD; /* * Query the hal about antenna support. */ sc->sc_defant = ath_hal_getdefantenna(ah); /* * Not all chips have the VEOL support we want to * use with IBSS beacons; check here for it. */ sc->sc_hasveol = ath_hal_hasveol(ah); /* get mac address from kenv first, then hardware */ if (ath_fetch_mac_kenv(sc, ic->ic_macaddr) == 0) { /* Tell the HAL now about the new MAC */ ath_hal_setmac(ah, ic->ic_macaddr); } else { ath_hal_getmac(ah, ic->ic_macaddr); } if (sc->sc_hasbmask) ath_hal_getbssidmask(ah, sc->sc_hwbssidmask); /* NB: used to size node table key mapping array */ ic->ic_max_keyix = sc->sc_keymax; /* call MI attach routine. */ ieee80211_ifattach(ic); ic->ic_setregdomain = ath_setregdomain; ic->ic_getradiocaps = ath_getradiocaps; sc->sc_opmode = HAL_M_STA; /* override default methods */ ic->ic_ioctl = ath_ioctl; ic->ic_parent = ath_parent; ic->ic_transmit = ath_transmit; ic->ic_newassoc = ath_newassoc; ic->ic_updateslot = ath_updateslot; ic->ic_wme.wme_update = ath_wme_update; ic->ic_vap_create = ath_vap_create; ic->ic_vap_delete = ath_vap_delete; ic->ic_raw_xmit = ath_raw_xmit; ic->ic_update_mcast = ath_update_mcast; ic->ic_update_promisc = ath_update_promisc; ic->ic_node_alloc = ath_node_alloc; sc->sc_node_free = ic->ic_node_free; ic->ic_node_free = ath_node_free; sc->sc_node_cleanup = ic->ic_node_cleanup; ic->ic_node_cleanup = ath_node_cleanup; ic->ic_node_getsignal = ath_node_getsignal; ic->ic_scan_start = ath_scan_start; ic->ic_scan_end = ath_scan_end; ic->ic_set_channel = ath_set_channel; #ifdef ATH_ENABLE_11N /* 802.11n specific - but just override anyway */ sc->sc_addba_request = ic->ic_addba_request; sc->sc_addba_response = ic->ic_addba_response; sc->sc_addba_stop = ic->ic_addba_stop; sc->sc_bar_response = ic->ic_bar_response; sc->sc_addba_response_timeout = ic->ic_addba_response_timeout; ic->ic_addba_request = ath_addba_request; ic->ic_addba_response = ath_addba_response; ic->ic_addba_response_timeout = ath_addba_response_timeout; ic->ic_addba_stop = ath_addba_stop; ic->ic_bar_response = ath_bar_response; ic->ic_update_chw = ath_update_chw; #endif /* ATH_ENABLE_11N */ ic->ic_set_quiet = ath_set_quiet_ie; #ifdef ATH_ENABLE_RADIOTAP_VENDOR_EXT /* * There's one vendor bitmap entry in the RX radiotap * header; make sure that's taken into account. */ ieee80211_radiotap_attachv(ic, &sc->sc_tx_th.wt_ihdr, sizeof(sc->sc_tx_th), 0, ATH_TX_RADIOTAP_PRESENT, &sc->sc_rx_th.wr_ihdr, sizeof(sc->sc_rx_th), 1, ATH_RX_RADIOTAP_PRESENT); #else /* * No vendor bitmap/extensions are present. */ ieee80211_radiotap_attach(ic, &sc->sc_tx_th.wt_ihdr, sizeof(sc->sc_tx_th), ATH_TX_RADIOTAP_PRESENT, &sc->sc_rx_th.wr_ihdr, sizeof(sc->sc_rx_th), ATH_RX_RADIOTAP_PRESENT); #endif /* ATH_ENABLE_RADIOTAP_VENDOR_EXT */ /* * Setup the ALQ logging if required */ #ifdef ATH_DEBUG_ALQ if_ath_alq_init(&sc->sc_alq, device_get_nameunit(sc->sc_dev)); if_ath_alq_setcfg(&sc->sc_alq, sc->sc_ah->ah_macVersion, sc->sc_ah->ah_macRev, sc->sc_ah->ah_phyRev, sc->sc_ah->ah_magic); #endif /* * Setup dynamic sysctl's now that country code and * regdomain are available from the hal. */ ath_sysctlattach(sc); ath_sysctl_stats_attach(sc); ath_sysctl_hal_attach(sc); if (bootverbose) ieee80211_announce(ic); ath_announce(sc); /* * Put it to sleep for now. */ ATH_LOCK(sc); ath_power_setpower(sc, HAL_PM_FULL_SLEEP, 1); ATH_UNLOCK(sc); return 0; bad2: ath_tx_cleanup(sc); ath_desc_free(sc); ath_txdma_teardown(sc); ath_rxdma_teardown(sc); bad: if (ah) ath_hal_detach(ah); sc->sc_invalid = 1; return error; } int ath_detach(struct ath_softc *sc) { /* * NB: the order of these is important: * o stop the chip so no more interrupts will fire * o call the 802.11 layer before detaching the hal to * insure callbacks into the driver to delete global * key cache entries can be handled * o free the taskqueue which drains any pending tasks * o reclaim the tx queue data structures after calling * the 802.11 layer as we'll get called back to reclaim * node state and potentially want to use them * o to cleanup the tx queues the hal is called, so detach * it last * Other than that, it's straightforward... */ /* * XXX Wake the hardware up first. ath_stop() will still * wake it up first, but I'd rather do it here just to * ensure it's awake. */ ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ath_power_setpower(sc, HAL_PM_AWAKE, 1); /* * Stop things cleanly. */ ath_stop(sc); ATH_UNLOCK(sc); ieee80211_ifdetach(&sc->sc_ic); taskqueue_free(sc->sc_tq); #ifdef ATH_TX99_DIAG if (sc->sc_tx99 != NULL) sc->sc_tx99->detach(sc->sc_tx99); #endif ath_rate_detach(sc->sc_rc); #ifdef ATH_DEBUG_ALQ if_ath_alq_tidyup(&sc->sc_alq); #endif ath_lna_div_detach(sc); ath_btcoex_detach(sc); ath_spectral_detach(sc); ath_dfs_detach(sc); ath_desc_free(sc); ath_txdma_teardown(sc); ath_rxdma_teardown(sc); ath_tx_cleanup(sc); ath_hal_detach(sc->sc_ah); /* NB: sets chip in full sleep */ return 0; } /* * MAC address handling for multiple BSS on the same radio. * The first vap uses the MAC address from the EEPROM. For * subsequent vap's we set the U/L bit (bit 1) in the MAC * address and use the next six bits as an index. */ static void assign_address(struct ath_softc *sc, uint8_t mac[IEEE80211_ADDR_LEN], int clone) { int i; if (clone && sc->sc_hasbmask) { /* NB: we only do this if h/w supports multiple bssid */ for (i = 0; i < 8; i++) if ((sc->sc_bssidmask & (1<sc_bssidmask |= 1<sc_hwbssidmask[0] &= ~mac[0]; if (i == 0) sc->sc_nbssid0++; } static void reclaim_address(struct ath_softc *sc, const uint8_t mac[IEEE80211_ADDR_LEN]) { int i = mac[0] >> 2; uint8_t mask; if (i != 0 || --sc->sc_nbssid0 == 0) { sc->sc_bssidmask &= ~(1<sc_bssidmask & (1<sc_hwbssidmask[0] |= mask; } } /* * Assign a beacon xmit slot. We try to space out * assignments so when beacons are staggered the * traffic coming out of the cab q has maximal time * to go out before the next beacon is scheduled. */ static int assign_bslot(struct ath_softc *sc) { u_int slot, free; free = 0; for (slot = 0; slot < ATH_BCBUF; slot++) if (sc->sc_bslot[slot] == NULL) { if (sc->sc_bslot[(slot+1)%ATH_BCBUF] == NULL && sc->sc_bslot[(slot-1)%ATH_BCBUF] == NULL) return slot; free = slot; /* NB: keep looking for a double slot */ } return free; } static struct ieee80211vap * ath_vap_create(struct ieee80211com *ic, const char name[IFNAMSIZ], int unit, enum ieee80211_opmode opmode, int flags, const uint8_t bssid[IEEE80211_ADDR_LEN], const uint8_t mac0[IEEE80211_ADDR_LEN]) { struct ath_softc *sc = ic->ic_softc; struct ath_vap *avp; struct ieee80211vap *vap; uint8_t mac[IEEE80211_ADDR_LEN]; int needbeacon, error; enum ieee80211_opmode ic_opmode; avp = malloc(sizeof(struct ath_vap), M_80211_VAP, M_WAITOK | M_ZERO); needbeacon = 0; IEEE80211_ADDR_COPY(mac, mac0); ATH_LOCK(sc); ic_opmode = opmode; /* default to opmode of new vap */ switch (opmode) { case IEEE80211_M_STA: if (sc->sc_nstavaps != 0) { /* XXX only 1 for now */ device_printf(sc->sc_dev, "only 1 sta vap supported\n"); goto bad; } if (sc->sc_nvaps) { /* * With multiple vaps we must fall back * to s/w beacon miss handling. */ flags |= IEEE80211_CLONE_NOBEACONS; } if (flags & IEEE80211_CLONE_NOBEACONS) { /* * Station mode w/o beacons are implemented w/ AP mode. */ ic_opmode = IEEE80211_M_HOSTAP; } break; case IEEE80211_M_IBSS: if (sc->sc_nvaps != 0) { /* XXX only 1 for now */ device_printf(sc->sc_dev, "only 1 ibss vap supported\n"); goto bad; } needbeacon = 1; break; case IEEE80211_M_AHDEMO: #ifdef IEEE80211_SUPPORT_TDMA if (flags & IEEE80211_CLONE_TDMA) { if (sc->sc_nvaps != 0) { device_printf(sc->sc_dev, "only 1 tdma vap supported\n"); goto bad; } needbeacon = 1; flags |= IEEE80211_CLONE_NOBEACONS; } /* fall thru... */ #endif case IEEE80211_M_MONITOR: if (sc->sc_nvaps != 0 && ic->ic_opmode != opmode) { /* * Adopt existing mode. Adding a monitor or ahdemo * vap to an existing configuration is of dubious * value but should be ok. */ /* XXX not right for monitor mode */ ic_opmode = ic->ic_opmode; } break; case IEEE80211_M_HOSTAP: case IEEE80211_M_MBSS: needbeacon = 1; break; case IEEE80211_M_WDS: if (sc->sc_nvaps != 0 && ic->ic_opmode == IEEE80211_M_STA) { device_printf(sc->sc_dev, "wds not supported in sta mode\n"); goto bad; } /* * Silently remove any request for a unique * bssid; WDS vap's always share the local * mac address. */ flags &= ~IEEE80211_CLONE_BSSID; if (sc->sc_nvaps == 0) ic_opmode = IEEE80211_M_HOSTAP; else ic_opmode = ic->ic_opmode; break; default: device_printf(sc->sc_dev, "unknown opmode %d\n", opmode); goto bad; } /* * Check that a beacon buffer is available; the code below assumes it. */ if (needbeacon & TAILQ_EMPTY(&sc->sc_bbuf)) { device_printf(sc->sc_dev, "no beacon buffer available\n"); goto bad; } /* STA, AHDEMO? */ if (opmode == IEEE80211_M_HOSTAP || opmode == IEEE80211_M_MBSS || opmode == IEEE80211_M_STA) { assign_address(sc, mac, flags & IEEE80211_CLONE_BSSID); ath_hal_setbssidmask(sc->sc_ah, sc->sc_hwbssidmask); } vap = &avp->av_vap; /* XXX can't hold mutex across if_alloc */ ATH_UNLOCK(sc); error = ieee80211_vap_setup(ic, vap, name, unit, opmode, flags, bssid); ATH_LOCK(sc); if (error != 0) { device_printf(sc->sc_dev, "%s: error %d creating vap\n", __func__, error); goto bad2; } /* h/w crypto support */ vap->iv_key_alloc = ath_key_alloc; vap->iv_key_delete = ath_key_delete; vap->iv_key_set = ath_key_set; vap->iv_key_update_begin = ath_key_update_begin; vap->iv_key_update_end = ath_key_update_end; /* override various methods */ avp->av_recv_mgmt = vap->iv_recv_mgmt; vap->iv_recv_mgmt = ath_recv_mgmt; vap->iv_reset = ath_reset_vap; vap->iv_update_beacon = ath_beacon_update; avp->av_newstate = vap->iv_newstate; vap->iv_newstate = ath_newstate; avp->av_bmiss = vap->iv_bmiss; vap->iv_bmiss = ath_bmiss_vap; avp->av_node_ps = vap->iv_node_ps; vap->iv_node_ps = ath_node_powersave; avp->av_set_tim = vap->iv_set_tim; vap->iv_set_tim = ath_node_set_tim; avp->av_recv_pspoll = vap->iv_recv_pspoll; vap->iv_recv_pspoll = ath_node_recv_pspoll; /* Set default parameters */ /* * Anything earlier than some AR9300 series MACs don't * support a smaller MPDU density. */ vap->iv_ampdu_density = IEEE80211_HTCAP_MPDUDENSITY_8; /* * All NICs can handle the maximum size, however * AR5416 based MACs can only TX aggregates w/ RTS * protection when the total aggregate size is <= 8k. * However, for now that's enforced by the TX path. */ vap->iv_ampdu_rxmax = IEEE80211_HTCAP_MAXRXAMPDU_64K; vap->iv_ampdu_limit = IEEE80211_HTCAP_MAXRXAMPDU_64K; avp->av_bslot = -1; if (needbeacon) { /* * Allocate beacon state and setup the q for buffered * multicast frames. We know a beacon buffer is * available because we checked above. */ avp->av_bcbuf = TAILQ_FIRST(&sc->sc_bbuf); TAILQ_REMOVE(&sc->sc_bbuf, avp->av_bcbuf, bf_list); if (opmode != IEEE80211_M_IBSS || !sc->sc_hasveol) { /* * Assign the vap to a beacon xmit slot. As above * this cannot fail to find a free one. */ avp->av_bslot = assign_bslot(sc); KASSERT(sc->sc_bslot[avp->av_bslot] == NULL, ("beacon slot %u not empty", avp->av_bslot)); sc->sc_bslot[avp->av_bslot] = vap; sc->sc_nbcnvaps++; } if (sc->sc_hastsfadd && sc->sc_nbcnvaps > 0) { /* * Multple vaps are to transmit beacons and we * have h/w support for TSF adjusting; enable * use of staggered beacons. */ sc->sc_stagbeacons = 1; } ath_txq_init(sc, &avp->av_mcastq, ATH_TXQ_SWQ); } ic->ic_opmode = ic_opmode; if (opmode != IEEE80211_M_WDS) { sc->sc_nvaps++; if (opmode == IEEE80211_M_STA) sc->sc_nstavaps++; if (opmode == IEEE80211_M_MBSS) sc->sc_nmeshvaps++; } switch (ic_opmode) { case IEEE80211_M_IBSS: sc->sc_opmode = HAL_M_IBSS; break; case IEEE80211_M_STA: sc->sc_opmode = HAL_M_STA; break; case IEEE80211_M_AHDEMO: #ifdef IEEE80211_SUPPORT_TDMA if (vap->iv_caps & IEEE80211_C_TDMA) { sc->sc_tdma = 1; /* NB: disable tsf adjust */ sc->sc_stagbeacons = 0; } /* * NB: adhoc demo mode is a pseudo mode; to the hal it's * just ap mode. */ /* fall thru... */ #endif case IEEE80211_M_HOSTAP: case IEEE80211_M_MBSS: sc->sc_opmode = HAL_M_HOSTAP; break; case IEEE80211_M_MONITOR: sc->sc_opmode = HAL_M_MONITOR; break; default: /* XXX should not happen */ break; } if (sc->sc_hastsfadd) { /* * Configure whether or not TSF adjust should be done. */ ath_hal_settsfadjust(sc->sc_ah, sc->sc_stagbeacons); } if (flags & IEEE80211_CLONE_NOBEACONS) { /* * Enable s/w beacon miss handling. */ sc->sc_swbmiss = 1; } ATH_UNLOCK(sc); /* complete setup */ - ieee80211_vap_attach(vap, ath_media_change, ieee80211_media_status, - mac); + ieee80211_vap_attach(vap, ieee80211_media_change, + ieee80211_media_status, mac); return vap; bad2: reclaim_address(sc, mac); ath_hal_setbssidmask(sc->sc_ah, sc->sc_hwbssidmask); bad: free(avp, M_80211_VAP); ATH_UNLOCK(sc); return NULL; } static void ath_vap_delete(struct ieee80211vap *vap) { struct ieee80211com *ic = vap->iv_ic; struct ath_softc *sc = ic->ic_softc; struct ath_hal *ah = sc->sc_ah; struct ath_vap *avp = ATH_VAP(vap); ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ATH_UNLOCK(sc); DPRINTF(sc, ATH_DEBUG_RESET, "%s: called\n", __func__); if (sc->sc_running) { /* * Quiesce the hardware while we remove the vap. In * particular we need to reclaim all references to * the vap state by any frames pending on the tx queues. */ ath_hal_intrset(ah, 0); /* disable interrupts */ /* XXX Do all frames from all vaps/nodes need draining here? */ ath_stoprecv(sc, 1); /* stop recv side */ ath_rx_flush(sc); ath_draintxq(sc, ATH_RESET_DEFAULT); /* stop hw xmit side */ } /* .. leave the hardware awake for now. */ ieee80211_vap_detach(vap); /* * XXX Danger Will Robinson! Danger! * * Because ieee80211_vap_detach() can queue a frame (the station * diassociate message?) after we've drained the TXQ and * flushed the software TXQ, we will end up with a frame queued * to a node whose vap is about to be freed. * * To work around this, flush the hardware/software again. * This may be racy - the ath task may be running and the packet * may be being scheduled between sw->hw txq. Tsk. * * TODO: figure out why a new node gets allocated somewhere around * here (after the ath_tx_swq() call; and after an ath_stop() * call!) */ ath_draintxq(sc, ATH_RESET_DEFAULT); ATH_LOCK(sc); /* * Reclaim beacon state. Note this must be done before * the vap instance is reclaimed as we may have a reference * to it in the buffer for the beacon frame. */ if (avp->av_bcbuf != NULL) { if (avp->av_bslot != -1) { sc->sc_bslot[avp->av_bslot] = NULL; sc->sc_nbcnvaps--; } ath_beacon_return(sc, avp->av_bcbuf); avp->av_bcbuf = NULL; if (sc->sc_nbcnvaps == 0) { sc->sc_stagbeacons = 0; if (sc->sc_hastsfadd) ath_hal_settsfadjust(sc->sc_ah, 0); } /* * Reclaim any pending mcast frames for the vap. */ ath_tx_draintxq(sc, &avp->av_mcastq); } /* * Update bookkeeping. */ if (vap->iv_opmode == IEEE80211_M_STA) { sc->sc_nstavaps--; if (sc->sc_nstavaps == 0 && sc->sc_swbmiss) sc->sc_swbmiss = 0; } else if (vap->iv_opmode == IEEE80211_M_HOSTAP || vap->iv_opmode == IEEE80211_M_STA || vap->iv_opmode == IEEE80211_M_MBSS) { reclaim_address(sc, vap->iv_myaddr); ath_hal_setbssidmask(ah, sc->sc_hwbssidmask); if (vap->iv_opmode == IEEE80211_M_MBSS) sc->sc_nmeshvaps--; } if (vap->iv_opmode != IEEE80211_M_WDS) sc->sc_nvaps--; #ifdef IEEE80211_SUPPORT_TDMA /* TDMA operation ceases when the last vap is destroyed */ if (sc->sc_tdma && sc->sc_nvaps == 0) { sc->sc_tdma = 0; sc->sc_swbmiss = 0; } #endif free(avp, M_80211_VAP); if (sc->sc_running) { /* * Restart rx+tx machines if still running (RUNNING will * be reset if we just destroyed the last vap). */ if (ath_startrecv(sc) != 0) device_printf(sc->sc_dev, "%s: unable to restart recv logic\n", __func__); if (sc->sc_beacons) { /* restart beacons */ #ifdef IEEE80211_SUPPORT_TDMA if (sc->sc_tdma) ath_tdma_config(sc, NULL); else #endif ath_beacon_config(sc, NULL); } ath_hal_intrset(ah, sc->sc_imask); } /* Ok, let the hardware asleep. */ ath_power_restore_power_state(sc); ATH_UNLOCK(sc); } void ath_suspend(struct ath_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; sc->sc_resume_up = ic->ic_nrunning != 0; ieee80211_suspend_all(ic); /* * NB: don't worry about putting the chip in low power * mode; pci will power off our socket on suspend and * CardBus detaches the device. * * XXX TODO: well, that's great, except for non-cardbus * devices! */ /* * XXX This doesn't wait until all pending taskqueue * items and parallel transmit/receive/other threads * are running! */ ath_hal_intrset(sc->sc_ah, 0); taskqueue_block(sc->sc_tq); ATH_LOCK(sc); callout_stop(&sc->sc_cal_ch); ATH_UNLOCK(sc); /* * XXX ensure sc_invalid is 1 */ /* Disable the PCIe PHY, complete with workarounds */ ath_hal_enablepcie(sc->sc_ah, 1, 1); } /* * Reset the key cache since some parts do not reset the * contents on resume. First we clear all entries, then * re-load keys that the 802.11 layer assumes are setup * in h/w. */ static void ath_reset_keycache(struct ath_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ath_hal *ah = sc->sc_ah; int i; ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); for (i = 0; i < sc->sc_keymax; i++) ath_hal_keyreset(ah, i); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); ieee80211_crypto_reload_keys(ic); } /* * Fetch the current chainmask configuration based on the current * operating channel and options. */ static void ath_update_chainmasks(struct ath_softc *sc, struct ieee80211_channel *chan) { /* * Set TX chainmask to the currently configured chainmask; * the TX chainmask depends upon the current operating mode. */ sc->sc_cur_rxchainmask = sc->sc_rxchainmask; if (IEEE80211_IS_CHAN_HT(chan)) { sc->sc_cur_txchainmask = sc->sc_txchainmask; } else { sc->sc_cur_txchainmask = 1; } DPRINTF(sc, ATH_DEBUG_RESET, "%s: TX chainmask is now 0x%x, RX is now 0x%x\n", __func__, sc->sc_cur_txchainmask, sc->sc_cur_rxchainmask); } void ath_resume(struct ath_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ath_hal *ah = sc->sc_ah; HAL_STATUS status; ath_hal_enablepcie(ah, 0, 0); /* * Must reset the chip before we reload the * keycache as we were powered down on suspend. */ ath_update_chainmasks(sc, sc->sc_curchan != NULL ? sc->sc_curchan : ic->ic_curchan); ath_hal_setchainmasks(sc->sc_ah, sc->sc_cur_txchainmask, sc->sc_cur_rxchainmask); /* Ensure we set the current power state to on */ ATH_LOCK(sc); ath_power_setselfgen(sc, HAL_PM_AWAKE); ath_power_set_power_state(sc, HAL_PM_AWAKE); ath_power_setpower(sc, HAL_PM_AWAKE, 1); ATH_UNLOCK(sc); ath_hal_reset(ah, sc->sc_opmode, sc->sc_curchan != NULL ? sc->sc_curchan : ic->ic_curchan, AH_FALSE, HAL_RESET_NORMAL, &status); ath_reset_keycache(sc); ATH_RX_LOCK(sc); sc->sc_rx_stopped = 1; sc->sc_rx_resetted = 1; ATH_RX_UNLOCK(sc); /* Let DFS at it in case it's a DFS channel */ ath_dfs_radar_enable(sc, ic->ic_curchan); /* Let spectral at in case spectral is enabled */ ath_spectral_enable(sc, ic->ic_curchan); /* * Let bluetooth coexistence at in case it's needed for this channel */ ath_btcoex_enable(sc, ic->ic_curchan); /* * If we're doing TDMA, enforce the TXOP limitation for chips that * support it. */ if (sc->sc_hasenforcetxop && sc->sc_tdma) ath_hal_setenforcetxop(sc->sc_ah, 1); else ath_hal_setenforcetxop(sc->sc_ah, 0); /* Restore the LED configuration */ ath_led_config(sc); ath_hal_setledstate(ah, HAL_LED_INIT); if (sc->sc_resume_up) ieee80211_resume_all(ic); ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); /* XXX beacons ? */ } void ath_shutdown(struct ath_softc *sc) { ATH_LOCK(sc); ath_stop(sc); ATH_UNLOCK(sc); /* NB: no point powering down chip as we're about to reboot */ } /* * Interrupt handler. Most of the actual processing is deferred. */ void ath_intr(void *arg) { struct ath_softc *sc = arg; struct ath_hal *ah = sc->sc_ah; HAL_INT status = 0; uint32_t txqs; /* * If we're inside a reset path, just print a warning and * clear the ISR. The reset routine will finish it for us. */ ATH_PCU_LOCK(sc); if (sc->sc_inreset_cnt) { HAL_INT status; ath_hal_getisr(ah, &status); /* clear ISR */ ath_hal_intrset(ah, 0); /* disable further intr's */ DPRINTF(sc, ATH_DEBUG_ANY, "%s: in reset, ignoring: status=0x%x\n", __func__, status); ATH_PCU_UNLOCK(sc); return; } if (sc->sc_invalid) { /* * The hardware is not ready/present, don't touch anything. * Note this can happen early on if the IRQ is shared. */ DPRINTF(sc, ATH_DEBUG_ANY, "%s: invalid; ignored\n", __func__); ATH_PCU_UNLOCK(sc); return; } if (!ath_hal_intrpend(ah)) { /* shared irq, not for us */ ATH_PCU_UNLOCK(sc); return; } ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ATH_UNLOCK(sc); if (sc->sc_ic.ic_nrunning == 0 && sc->sc_running == 0) { HAL_INT status; DPRINTF(sc, ATH_DEBUG_ANY, "%s: ic_nrunning %d sc_running %d\n", __func__, sc->sc_ic.ic_nrunning, sc->sc_running); ath_hal_getisr(ah, &status); /* clear ISR */ ath_hal_intrset(ah, 0); /* disable further intr's */ ATH_PCU_UNLOCK(sc); ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); return; } /* * Figure out the reason(s) for the interrupt. Note * that the hal returns a pseudo-ISR that may include * bits we haven't explicitly enabled so we mask the * value to insure we only process bits we requested. */ ath_hal_getisr(ah, &status); /* NB: clears ISR too */ DPRINTF(sc, ATH_DEBUG_INTR, "%s: status 0x%x\n", __func__, status); ATH_KTR(sc, ATH_KTR_INTERRUPTS, 1, "ath_intr: mask=0x%.8x", status); #ifdef ATH_DEBUG_ALQ if_ath_alq_post_intr(&sc->sc_alq, status, ah->ah_intrstate, ah->ah_syncstate); #endif /* ATH_DEBUG_ALQ */ #ifdef ATH_KTR_INTR_DEBUG ATH_KTR(sc, ATH_KTR_INTERRUPTS, 5, "ath_intr: ISR=0x%.8x, ISR_S0=0x%.8x, ISR_S1=0x%.8x, ISR_S2=0x%.8x, ISR_S5=0x%.8x", ah->ah_intrstate[0], ah->ah_intrstate[1], ah->ah_intrstate[2], ah->ah_intrstate[3], ah->ah_intrstate[6]); #endif /* Squirrel away SYNC interrupt debugging */ if (ah->ah_syncstate != 0) { int i; for (i = 0; i < 32; i++) if (ah->ah_syncstate & (1 << i)) sc->sc_intr_stats.sync_intr[i]++; } status &= sc->sc_imask; /* discard unasked for bits */ /* Short-circuit un-handled interrupts */ if (status == 0x0) { ATH_PCU_UNLOCK(sc); ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); return; } /* * Take a note that we're inside the interrupt handler, so * the reset routines know to wait. */ sc->sc_intr_cnt++; ATH_PCU_UNLOCK(sc); /* * Handle the interrupt. We won't run concurrent with the reset * or channel change routines as they'll wait for sc_intr_cnt * to be 0 before continuing. */ if (status & HAL_INT_FATAL) { sc->sc_stats.ast_hardware++; ath_hal_intrset(ah, 0); /* disable intr's until reset */ taskqueue_enqueue(sc->sc_tq, &sc->sc_fataltask); } else { if (status & HAL_INT_SWBA) { /* * Software beacon alert--time to send a beacon. * Handle beacon transmission directly; deferring * this is too slow to meet timing constraints * under load. */ #ifdef IEEE80211_SUPPORT_TDMA if (sc->sc_tdma) { if (sc->sc_tdmaswba == 0) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); ath_tdma_beacon_send(sc, vap); sc->sc_tdmaswba = vap->iv_tdma->tdma_bintval; } else sc->sc_tdmaswba--; } else #endif { ath_beacon_proc(sc, 0); #ifdef IEEE80211_SUPPORT_SUPERG /* * Schedule the rx taskq in case there's no * traffic so any frames held on the staging * queue are aged and potentially flushed. */ sc->sc_rx.recv_sched(sc, 1); #endif } } if (status & HAL_INT_RXEOL) { int imask; ATH_KTR(sc, ATH_KTR_ERROR, 0, "ath_intr: RXEOL"); if (! sc->sc_isedma) { ATH_PCU_LOCK(sc); /* * NB: the hardware should re-read the link when * RXE bit is written, but it doesn't work at * least on older hardware revs. */ sc->sc_stats.ast_rxeol++; /* * Disable RXEOL/RXORN - prevent an interrupt * storm until the PCU logic can be reset. * In case the interface is reset some other * way before "sc_kickpcu" is called, don't * modify sc_imask - that way if it is reset * by a call to ath_reset() somehow, the * interrupt mask will be correctly reprogrammed. */ imask = sc->sc_imask; imask &= ~(HAL_INT_RXEOL | HAL_INT_RXORN); ath_hal_intrset(ah, imask); /* * Only blank sc_rxlink if we've not yet kicked * the PCU. * * This isn't entirely correct - the correct solution * would be to have a PCU lock and engage that for * the duration of the PCU fiddling; which would include * running the RX process. Otherwise we could end up * messing up the RX descriptor chain and making the * RX desc list much shorter. */ if (! sc->sc_kickpcu) sc->sc_rxlink = NULL; sc->sc_kickpcu = 1; ATH_PCU_UNLOCK(sc); } /* * Enqueue an RX proc to handle whatever * is in the RX queue. * This will then kick the PCU if required. */ sc->sc_rx.recv_sched(sc, 1); } if (status & HAL_INT_TXURN) { sc->sc_stats.ast_txurn++; /* bump tx trigger level */ ath_hal_updatetxtriglevel(ah, AH_TRUE); } /* * Handle both the legacy and RX EDMA interrupt bits. * Note that HAL_INT_RXLP is also HAL_INT_RXDESC. */ if (status & (HAL_INT_RX | HAL_INT_RXHP | HAL_INT_RXLP)) { sc->sc_stats.ast_rx_intr++; sc->sc_rx.recv_sched(sc, 1); } if (status & HAL_INT_TX) { sc->sc_stats.ast_tx_intr++; /* * Grab all the currently set bits in the HAL txq bitmap * and blank them. This is the only place we should be * doing this. */ if (! sc->sc_isedma) { ATH_PCU_LOCK(sc); txqs = 0xffffffff; ath_hal_gettxintrtxqs(sc->sc_ah, &txqs); ATH_KTR(sc, ATH_KTR_INTERRUPTS, 3, "ath_intr: TX; txqs=0x%08x, txq_active was 0x%08x, now 0x%08x", txqs, sc->sc_txq_active, sc->sc_txq_active | txqs); sc->sc_txq_active |= txqs; ATH_PCU_UNLOCK(sc); } taskqueue_enqueue(sc->sc_tq, &sc->sc_txtask); } if (status & HAL_INT_BMISS) { sc->sc_stats.ast_bmiss++; taskqueue_enqueue(sc->sc_tq, &sc->sc_bmisstask); } if (status & HAL_INT_GTT) sc->sc_stats.ast_tx_timeout++; if (status & HAL_INT_CST) sc->sc_stats.ast_tx_cst++; if (status & HAL_INT_MIB) { sc->sc_stats.ast_mib++; ATH_PCU_LOCK(sc); /* * Disable interrupts until we service the MIB * interrupt; otherwise it will continue to fire. */ ath_hal_intrset(ah, 0); /* * Let the hal handle the event. We assume it will * clear whatever condition caused the interrupt. */ ath_hal_mibevent(ah, &sc->sc_halstats); /* * Don't reset the interrupt if we've just * kicked the PCU, or we may get a nested * RXEOL before the rxproc has had a chance * to run. */ if (sc->sc_kickpcu == 0) ath_hal_intrset(ah, sc->sc_imask); ATH_PCU_UNLOCK(sc); } if (status & HAL_INT_RXORN) { /* NB: hal marks HAL_INT_FATAL when RXORN is fatal */ ATH_KTR(sc, ATH_KTR_ERROR, 0, "ath_intr: RXORN"); sc->sc_stats.ast_rxorn++; } if (status & HAL_INT_TSFOOR) { /* out of range beacon - wake the chip up, * but don't modify self-gen frame config */ device_printf(sc->sc_dev, "%s: TSFOOR\n", __func__); sc->sc_syncbeacon = 1; ATH_LOCK(sc); ath_power_setpower(sc, HAL_PM_AWAKE, 0); ATH_UNLOCK(sc); } if (status & HAL_INT_MCI) { ath_btcoex_mci_intr(sc); } } ATH_PCU_LOCK(sc); sc->sc_intr_cnt--; ATH_PCU_UNLOCK(sc); ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); } static void ath_fatal_proc(void *arg, int pending) { struct ath_softc *sc = arg; u_int32_t *state; u_int32_t len; void *sp; if (sc->sc_invalid) return; device_printf(sc->sc_dev, "hardware error; resetting\n"); /* * Fatal errors are unrecoverable. Typically these * are caused by DMA errors. Collect h/w state from * the hal so we can diagnose what's going on. */ if (ath_hal_getfatalstate(sc->sc_ah, &sp, &len)) { KASSERT(len >= 6*sizeof(u_int32_t), ("len %u bytes", len)); state = sp; device_printf(sc->sc_dev, "0x%08x 0x%08x 0x%08x, 0x%08x 0x%08x 0x%08x\n", state[0], state[1] , state[2], state[3], state[4], state[5]); } ath_reset(sc, ATH_RESET_NOLOSS, HAL_RESET_FORCE_COLD); } static void ath_bmiss_vap(struct ieee80211vap *vap) { struct ath_softc *sc = vap->iv_ic->ic_softc; /* * Workaround phantom bmiss interrupts by sanity-checking * the time of our last rx'd frame. If it is within the * beacon miss interval then ignore the interrupt. If it's * truly a bmiss we'll get another interrupt soon and that'll * be dispatched up for processing. Note this applies only * for h/w beacon miss events. */ /* * XXX TODO: Just read the TSF during the interrupt path; * that way we don't have to wake up again just to read it * again. */ ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ATH_UNLOCK(sc); if ((vap->iv_flags_ext & IEEE80211_FEXT_SWBMISS) == 0) { u_int64_t lastrx = sc->sc_lastrx; u_int64_t tsf = ath_hal_gettsf64(sc->sc_ah); /* XXX should take a locked ref to iv_bss */ u_int bmisstimeout = vap->iv_bmissthreshold * vap->iv_bss->ni_intval * 1024; DPRINTF(sc, ATH_DEBUG_BEACON, "%s: tsf %llu lastrx %lld (%llu) bmiss %u\n", __func__, (unsigned long long) tsf, (unsigned long long)(tsf - lastrx), (unsigned long long) lastrx, bmisstimeout); if (tsf - lastrx <= bmisstimeout) { sc->sc_stats.ast_bmiss_phantom++; ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); return; } } /* * Keep the hardware awake if it's asleep (and leave self-gen * frame config alone) until the next beacon, so we can resync * against the next beacon. * * This handles three common beacon miss cases in STA powersave mode - * (a) the beacon TBTT isnt a multiple of bintval; * (b) the beacon was missed; and * (c) the beacons are being delayed because the AP is busy and * isn't reliably able to meet its TBTT. */ ATH_LOCK(sc); ath_power_setpower(sc, HAL_PM_AWAKE, 0); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); DPRINTF(sc, ATH_DEBUG_BEACON, "%s: forced awake; force syncbeacon=1\n", __func__); /* * Attempt to force a beacon resync. */ sc->sc_syncbeacon = 1; ATH_VAP(vap)->av_bmiss(vap); } /* XXX this needs a force wakeup! */ int ath_hal_gethangstate(struct ath_hal *ah, uint32_t mask, uint32_t *hangs) { uint32_t rsize; void *sp; if (!ath_hal_getdiagstate(ah, HAL_DIAG_CHECK_HANGS, &mask, sizeof(mask), &sp, &rsize)) return 0; KASSERT(rsize == sizeof(uint32_t), ("resultsize %u", rsize)); *hangs = *(uint32_t *)sp; return 1; } static void ath_bmiss_proc(void *arg, int pending) { struct ath_softc *sc = arg; uint32_t hangs; DPRINTF(sc, ATH_DEBUG_ANY, "%s: pending %u\n", __func__, pending); ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ATH_UNLOCK(sc); ath_beacon_miss(sc); /* * Do a reset upon any becaon miss event. * * It may be a non-recognised RX clear hang which needs a reset * to clear. */ if (ath_hal_gethangstate(sc->sc_ah, 0xff, &hangs) && hangs != 0) { ath_reset(sc, ATH_RESET_NOLOSS, HAL_RESET_BBPANIC); device_printf(sc->sc_dev, "bb hang detected (0x%x), resetting\n", hangs); } else { ath_reset(sc, ATH_RESET_NOLOSS, HAL_RESET_FORCE_COLD); ieee80211_beacon_miss(&sc->sc_ic); } /* Force a beacon resync, in case they've drifted */ sc->sc_syncbeacon = 1; ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); } /* * Handle TKIP MIC setup to deal hardware that doesn't do MIC * calcs together with WME. If necessary disable the crypto * hardware and mark the 802.11 state so keys will be setup * with the MIC work done in software. */ static void ath_settkipmic(struct ath_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; if ((ic->ic_cryptocaps & IEEE80211_CRYPTO_TKIP) && !sc->sc_wmetkipmic) { if (ic->ic_flags & IEEE80211_F_WME) { ath_hal_settkipmic(sc->sc_ah, AH_FALSE); ic->ic_cryptocaps &= ~IEEE80211_CRYPTO_TKIPMIC; } else { ath_hal_settkipmic(sc->sc_ah, AH_TRUE); ic->ic_cryptocaps |= IEEE80211_CRYPTO_TKIPMIC; } } } static void ath_vap_clear_quiet_ie(struct ath_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap; struct ath_vap *avp; TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) { avp = ATH_VAP(vap); /* Quiet time handling - ensure we resync */ memset(&avp->quiet_ie, 0, sizeof(avp->quiet_ie)); } } static int ath_init(struct ath_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ath_hal *ah = sc->sc_ah; HAL_STATUS status; ATH_LOCK_ASSERT(sc); /* * Force the sleep state awake. */ ath_power_setselfgen(sc, HAL_PM_AWAKE); ath_power_set_power_state(sc, HAL_PM_AWAKE); ath_power_setpower(sc, HAL_PM_AWAKE, 1); /* * Stop anything previously setup. This is safe * whether this is the first time through or not. */ ath_stop(sc); /* * The basic interface to setting the hardware in a good * state is ``reset''. On return the hardware is known to * be powered up and with interrupts disabled. This must * be followed by initialization of the appropriate bits * and then setup of the interrupt mask. */ ath_settkipmic(sc); ath_update_chainmasks(sc, ic->ic_curchan); ath_hal_setchainmasks(sc->sc_ah, sc->sc_cur_txchainmask, sc->sc_cur_rxchainmask); if (!ath_hal_reset(ah, sc->sc_opmode, ic->ic_curchan, AH_FALSE, HAL_RESET_NORMAL, &status)) { device_printf(sc->sc_dev, "unable to reset hardware; hal status %u\n", status); return (ENODEV); } ATH_RX_LOCK(sc); sc->sc_rx_stopped = 1; sc->sc_rx_resetted = 1; ATH_RX_UNLOCK(sc); /* Clear quiet IE state for each VAP */ ath_vap_clear_quiet_ie(sc); ath_chan_change(sc, ic->ic_curchan); /* Let DFS at it in case it's a DFS channel */ ath_dfs_radar_enable(sc, ic->ic_curchan); /* Let spectral at in case spectral is enabled */ ath_spectral_enable(sc, ic->ic_curchan); /* * Let bluetooth coexistence at in case it's needed for this channel */ ath_btcoex_enable(sc, ic->ic_curchan); /* * If we're doing TDMA, enforce the TXOP limitation for chips that * support it. */ if (sc->sc_hasenforcetxop && sc->sc_tdma) ath_hal_setenforcetxop(sc->sc_ah, 1); else ath_hal_setenforcetxop(sc->sc_ah, 0); /* * Likewise this is set during reset so update * state cached in the driver. */ sc->sc_diversity = ath_hal_getdiversity(ah); sc->sc_lastlongcal = ticks; sc->sc_resetcal = 1; sc->sc_lastcalreset = 0; sc->sc_lastani = ticks; sc->sc_lastshortcal = ticks; sc->sc_doresetcal = AH_FALSE; /* * Beacon timers were cleared here; give ath_newstate() * a hint that the beacon timers should be poked when * things transition to the RUN state. */ sc->sc_beacons = 0; /* * Setup the hardware after reset: the key cache * is filled as needed and the receive engine is * set going. Frame transmit is handled entirely * in the frame output path; there's nothing to do * here except setup the interrupt mask. */ if (ath_startrecv(sc) != 0) { device_printf(sc->sc_dev, "unable to start recv logic\n"); ath_power_restore_power_state(sc); return (ENODEV); } /* * Enable interrupts. */ sc->sc_imask = HAL_INT_RX | HAL_INT_TX | HAL_INT_RXORN | HAL_INT_TXURN | HAL_INT_FATAL | HAL_INT_GLOBAL; /* * Enable RX EDMA bits. Note these overlap with * HAL_INT_RX and HAL_INT_RXDESC respectively. */ if (sc->sc_isedma) sc->sc_imask |= (HAL_INT_RXHP | HAL_INT_RXLP); /* * If we're an EDMA NIC, we don't care about RXEOL. * Writing a new descriptor in will simply restart * RX DMA. */ if (! sc->sc_isedma) sc->sc_imask |= HAL_INT_RXEOL; /* * Enable MCI interrupt for MCI devices. */ if (sc->sc_btcoex_mci) sc->sc_imask |= HAL_INT_MCI; /* * Enable MIB interrupts when there are hardware phy counters. * Note we only do this (at the moment) for station mode. */ if (sc->sc_needmib && ic->ic_opmode == IEEE80211_M_STA) sc->sc_imask |= HAL_INT_MIB; /* * XXX add capability for this. * * If we're in STA mode (and maybe IBSS?) then register for * TSFOOR interrupts. */ if (ic->ic_opmode == IEEE80211_M_STA) sc->sc_imask |= HAL_INT_TSFOOR; /* Enable global TX timeout and carrier sense timeout if available */ if (ath_hal_gtxto_supported(ah)) sc->sc_imask |= HAL_INT_GTT; DPRINTF(sc, ATH_DEBUG_RESET, "%s: imask=0x%x\n", __func__, sc->sc_imask); sc->sc_running = 1; callout_reset(&sc->sc_wd_ch, hz, ath_watchdog, sc); ath_hal_intrset(ah, sc->sc_imask); ath_power_restore_power_state(sc); return (0); } static void ath_stop(struct ath_softc *sc) { struct ath_hal *ah = sc->sc_ah; ATH_LOCK_ASSERT(sc); /* * Wake the hardware up before fiddling with it. */ ath_power_set_power_state(sc, HAL_PM_AWAKE); if (sc->sc_running) { /* * Shutdown the hardware and driver: * reset 802.11 state machine * turn off timers * disable interrupts * turn off the radio * clear transmit machinery * clear receive machinery * drain and release tx queues * reclaim beacon resources * power down hardware * * Note that some of this work is not possible if the * hardware is gone (invalid). */ #ifdef ATH_TX99_DIAG if (sc->sc_tx99 != NULL) sc->sc_tx99->stop(sc->sc_tx99); #endif callout_stop(&sc->sc_wd_ch); sc->sc_wd_timer = 0; sc->sc_running = 0; if (!sc->sc_invalid) { if (sc->sc_softled) { callout_stop(&sc->sc_ledtimer); ath_hal_gpioset(ah, sc->sc_ledpin, !sc->sc_ledon); sc->sc_blinking = 0; } ath_hal_intrset(ah, 0); } /* XXX we should stop RX regardless of whether it's valid */ if (!sc->sc_invalid) { ath_stoprecv(sc, 1); ath_hal_phydisable(ah); } else sc->sc_rxlink = NULL; ath_draintxq(sc, ATH_RESET_DEFAULT); ath_beacon_free(sc); /* XXX not needed */ } /* And now, restore the current power state */ ath_power_restore_power_state(sc); } /* * Wait until all pending TX/RX has completed. * * This waits until all existing transmit, receive and interrupts * have completed. It's assumed that the caller has first * grabbed the reset lock so it doesn't try to do overlapping * chip resets. */ #define MAX_TXRX_ITERATIONS 100 static void ath_txrx_stop_locked(struct ath_softc *sc) { int i = MAX_TXRX_ITERATIONS; ATH_UNLOCK_ASSERT(sc); ATH_PCU_LOCK_ASSERT(sc); /* * Sleep until all the pending operations have completed. * * The caller must ensure that reset has been incremented * or the pending operations may continue being queued. */ while (sc->sc_rxproc_cnt || sc->sc_txproc_cnt || sc->sc_txstart_cnt || sc->sc_intr_cnt) { if (i <= 0) break; msleep(sc, &sc->sc_pcu_mtx, 0, "ath_txrx_stop", msecs_to_ticks(10)); i--; } if (i <= 0) device_printf(sc->sc_dev, "%s: didn't finish after %d iterations\n", __func__, MAX_TXRX_ITERATIONS); } #undef MAX_TXRX_ITERATIONS #if 0 static void ath_txrx_stop(struct ath_softc *sc) { ATH_UNLOCK_ASSERT(sc); ATH_PCU_UNLOCK_ASSERT(sc); ATH_PCU_LOCK(sc); ath_txrx_stop_locked(sc); ATH_PCU_UNLOCK(sc); } #endif static void ath_txrx_start(struct ath_softc *sc) { taskqueue_unblock(sc->sc_tq); } /* * Grab the reset lock, and wait around until no one else * is trying to do anything with it. * * This is totally horrible but we can't hold this lock for * long enough to do TX/RX or we end up with net80211/ip stack * LORs and eventual deadlock. * * "dowait" signals whether to spin, waiting for the reset * lock count to reach 0. This should (for now) only be used * during the reset path, as the rest of the code may not * be locking-reentrant enough to behave correctly. * * Another, cleaner way should be found to serialise all of * these operations. */ #define MAX_RESET_ITERATIONS 25 static int ath_reset_grablock(struct ath_softc *sc, int dowait) { int w = 0; int i = MAX_RESET_ITERATIONS; ATH_PCU_LOCK_ASSERT(sc); do { if (sc->sc_inreset_cnt == 0) { w = 1; break; } if (dowait == 0) { w = 0; break; } ATH_PCU_UNLOCK(sc); /* * 1 tick is likely not enough time for long calibrations * to complete. So we should wait quite a while. */ pause("ath_reset_grablock", msecs_to_ticks(100)); i--; ATH_PCU_LOCK(sc); } while (i > 0); /* * We always increment the refcounter, regardless * of whether we succeeded to get it in an exclusive * way. */ sc->sc_inreset_cnt++; if (i <= 0) device_printf(sc->sc_dev, "%s: didn't finish after %d iterations\n", __func__, MAX_RESET_ITERATIONS); if (w == 0) device_printf(sc->sc_dev, "%s: warning, recursive reset path!\n", __func__); return w; } #undef MAX_RESET_ITERATIONS /* * Reset the hardware w/o losing operational state. This is * basically a more efficient way of doing ath_stop, ath_init, * followed by state transitions to the current 802.11 * operational state. Used to recover from various errors and * to reset or reload hardware state. */ int ath_reset(struct ath_softc *sc, ATH_RESET_TYPE reset_type, HAL_RESET_TYPE ah_reset_type) { struct ieee80211com *ic = &sc->sc_ic; struct ath_hal *ah = sc->sc_ah; HAL_STATUS status; int i; DPRINTF(sc, ATH_DEBUG_RESET, "%s: called\n", __func__); /* Ensure ATH_LOCK isn't held; ath_rx_proc can't be locked */ ATH_PCU_UNLOCK_ASSERT(sc); ATH_UNLOCK_ASSERT(sc); /* Try to (stop any further TX/RX from occurring */ taskqueue_block(sc->sc_tq); /* * Wake the hardware up. */ ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ATH_UNLOCK(sc); ATH_PCU_LOCK(sc); /* * Grab the reset lock before TX/RX is stopped. * * This is needed to ensure that when the TX/RX actually does finish, * no further TX/RX/reset runs in parallel with this. */ if (ath_reset_grablock(sc, 1) == 0) { device_printf(sc->sc_dev, "%s: concurrent reset! Danger!\n", __func__); } /* disable interrupts */ ath_hal_intrset(ah, 0); /* * Now, ensure that any in progress TX/RX completes before we * continue. */ ath_txrx_stop_locked(sc); ATH_PCU_UNLOCK(sc); /* * Regardless of whether we're doing a no-loss flush or * not, stop the PCU and handle what's in the RX queue. * That way frames aren't dropped which shouldn't be. */ ath_stoprecv(sc, (reset_type != ATH_RESET_NOLOSS)); ath_rx_flush(sc); /* * Should now wait for pending TX/RX to complete * and block future ones from occurring. This needs to be * done before the TX queue is drained. */ ath_draintxq(sc, reset_type); /* stop xmit side */ ath_settkipmic(sc); /* configure TKIP MIC handling */ /* NB: indicate channel change so we do a full reset */ ath_update_chainmasks(sc, ic->ic_curchan); ath_hal_setchainmasks(sc->sc_ah, sc->sc_cur_txchainmask, sc->sc_cur_rxchainmask); if (!ath_hal_reset(ah, sc->sc_opmode, ic->ic_curchan, AH_TRUE, ah_reset_type, &status)) device_printf(sc->sc_dev, "%s: unable to reset hardware; hal status %u\n", __func__, status); sc->sc_diversity = ath_hal_getdiversity(ah); ATH_RX_LOCK(sc); sc->sc_rx_stopped = 1; sc->sc_rx_resetted = 1; ATH_RX_UNLOCK(sc); /* Quiet time handling - ensure we resync */ ath_vap_clear_quiet_ie(sc); /* Let DFS at it in case it's a DFS channel */ ath_dfs_radar_enable(sc, ic->ic_curchan); /* Let spectral at in case spectral is enabled */ ath_spectral_enable(sc, ic->ic_curchan); /* * Let bluetooth coexistence at in case it's needed for this channel */ ath_btcoex_enable(sc, ic->ic_curchan); /* * If we're doing TDMA, enforce the TXOP limitation for chips that * support it. */ if (sc->sc_hasenforcetxop && sc->sc_tdma) ath_hal_setenforcetxop(sc->sc_ah, 1); else ath_hal_setenforcetxop(sc->sc_ah, 0); if (ath_startrecv(sc) != 0) /* restart recv */ device_printf(sc->sc_dev, "%s: unable to start recv logic\n", __func__); /* * We may be doing a reset in response to an ioctl * that changes the channel so update any state that * might change as a result. */ ath_chan_change(sc, ic->ic_curchan); if (sc->sc_beacons) { /* restart beacons */ #ifdef IEEE80211_SUPPORT_TDMA if (sc->sc_tdma) ath_tdma_config(sc, NULL); else #endif ath_beacon_config(sc, NULL); } /* * Release the reset lock and re-enable interrupts here. * If an interrupt was being processed in ath_intr(), * it would disable interrupts at this point. So we have * to atomically enable interrupts and decrement the * reset counter - this way ath_intr() doesn't end up * disabling interrupts without a corresponding enable * in the rest or channel change path. * * Grab the TX reference in case we need to transmit. * That way a parallel transmit doesn't. */ ATH_PCU_LOCK(sc); sc->sc_inreset_cnt--; sc->sc_txstart_cnt++; /* XXX only do this if sc_inreset_cnt == 0? */ ath_hal_intrset(ah, sc->sc_imask); ATH_PCU_UNLOCK(sc); /* * TX and RX can be started here. If it were started with * sc_inreset_cnt > 0, the TX and RX path would abort. * Thus if this is a nested call through the reset or * channel change code, TX completion will occur but * RX completion and ath_start / ath_tx_start will not * run. */ /* Restart TX/RX as needed */ ath_txrx_start(sc); /* XXX TODO: we need to hold the tx refcount here! */ /* Restart TX completion and pending TX */ if (reset_type == ATH_RESET_NOLOSS) { for (i = 0; i < HAL_NUM_TX_QUEUES; i++) { if (ATH_TXQ_SETUP(sc, i)) { ATH_TXQ_LOCK(&sc->sc_txq[i]); ath_txq_restart_dma(sc, &sc->sc_txq[i]); ATH_TXQ_UNLOCK(&sc->sc_txq[i]); ATH_TX_LOCK(sc); ath_txq_sched(sc, &sc->sc_txq[i]); ATH_TX_UNLOCK(sc); } } } ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); ATH_PCU_LOCK(sc); sc->sc_txstart_cnt--; ATH_PCU_UNLOCK(sc); /* Handle any frames in the TX queue */ /* * XXX should this be done by the caller, rather than * ath_reset() ? */ ath_tx_kick(sc); /* restart xmit */ return 0; } static int ath_reset_vap(struct ieee80211vap *vap, u_long cmd) { struct ieee80211com *ic = vap->iv_ic; struct ath_softc *sc = ic->ic_softc; struct ath_hal *ah = sc->sc_ah; switch (cmd) { case IEEE80211_IOC_TXPOWER: /* * If per-packet TPC is enabled, then we have nothing * to do; otherwise we need to force the global limit. * All this can happen directly; no need to reset. */ if (!ath_hal_gettpc(ah)) ath_hal_settxpowlimit(ah, ic->ic_txpowlimit); return 0; } /* XXX? Full or NOLOSS? */ return ath_reset(sc, ATH_RESET_FULL, HAL_RESET_NORMAL); } struct ath_buf * _ath_getbuf_locked(struct ath_softc *sc, ath_buf_type_t btype) { struct ath_buf *bf; ATH_TXBUF_LOCK_ASSERT(sc); if (btype == ATH_BUFTYPE_MGMT) bf = TAILQ_FIRST(&sc->sc_txbuf_mgmt); else bf = TAILQ_FIRST(&sc->sc_txbuf); if (bf == NULL) { sc->sc_stats.ast_tx_getnobuf++; } else { if (bf->bf_flags & ATH_BUF_BUSY) { sc->sc_stats.ast_tx_getbusybuf++; bf = NULL; } } if (bf != NULL && (bf->bf_flags & ATH_BUF_BUSY) == 0) { if (btype == ATH_BUFTYPE_MGMT) TAILQ_REMOVE(&sc->sc_txbuf_mgmt, bf, bf_list); else { TAILQ_REMOVE(&sc->sc_txbuf, bf, bf_list); sc->sc_txbuf_cnt--; /* * This shuldn't happen; however just to be * safe print a warning and fudge the txbuf * count. */ if (sc->sc_txbuf_cnt < 0) { device_printf(sc->sc_dev, "%s: sc_txbuf_cnt < 0?\n", __func__); sc->sc_txbuf_cnt = 0; } } } else bf = NULL; if (bf == NULL) { /* XXX should check which list, mgmt or otherwise */ DPRINTF(sc, ATH_DEBUG_XMIT, "%s: %s\n", __func__, TAILQ_FIRST(&sc->sc_txbuf) == NULL ? "out of xmit buffers" : "xmit buffer busy"); return NULL; } /* XXX TODO: should do this at buffer list initialisation */ /* XXX (then, ensure the buffer has the right flag set) */ bf->bf_flags = 0; if (btype == ATH_BUFTYPE_MGMT) bf->bf_flags |= ATH_BUF_MGMT; else bf->bf_flags &= (~ATH_BUF_MGMT); /* Valid bf here; clear some basic fields */ bf->bf_next = NULL; /* XXX just to be sure */ bf->bf_last = NULL; /* XXX again, just to be sure */ bf->bf_comp = NULL; /* XXX again, just to be sure */ bzero(&bf->bf_state, sizeof(bf->bf_state)); /* * Track the descriptor ID only if doing EDMA */ if (sc->sc_isedma) { bf->bf_descid = sc->sc_txbuf_descid; sc->sc_txbuf_descid++; } return bf; } /* * When retrying a software frame, buffers marked ATH_BUF_BUSY * can't be thrown back on the queue as they could still be * in use by the hardware. * * This duplicates the buffer, or returns NULL. * * The descriptor is also copied but the link pointers and * the DMA segments aren't copied; this frame should thus * be again passed through the descriptor setup/chain routines * so the link is correct. * * The caller must free the buffer using ath_freebuf(). */ struct ath_buf * ath_buf_clone(struct ath_softc *sc, struct ath_buf *bf) { struct ath_buf *tbf; tbf = ath_getbuf(sc, (bf->bf_flags & ATH_BUF_MGMT) ? ATH_BUFTYPE_MGMT : ATH_BUFTYPE_NORMAL); if (tbf == NULL) return NULL; /* XXX failure? Why? */ /* Copy basics */ tbf->bf_next = NULL; tbf->bf_nseg = bf->bf_nseg; tbf->bf_flags = bf->bf_flags & ATH_BUF_FLAGS_CLONE; tbf->bf_status = bf->bf_status; tbf->bf_m = bf->bf_m; tbf->bf_node = bf->bf_node; KASSERT((bf->bf_node != NULL), ("%s: bf_node=NULL!", __func__)); /* will be setup by the chain/setup function */ tbf->bf_lastds = NULL; /* for now, last == self */ tbf->bf_last = tbf; tbf->bf_comp = bf->bf_comp; /* NOTE: DMA segments will be setup by the setup/chain functions */ /* The caller has to re-init the descriptor + links */ /* * Free the DMA mapping here, before we NULL the mbuf. * We must only call bus_dmamap_unload() once per mbuf chain * or behaviour is undefined. */ if (bf->bf_m != NULL) { /* * XXX is this POSTWRITE call required? */ bus_dmamap_sync(sc->sc_dmat, bf->bf_dmamap, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(sc->sc_dmat, bf->bf_dmamap); } bf->bf_m = NULL; bf->bf_node = NULL; /* Copy state */ memcpy(&tbf->bf_state, &bf->bf_state, sizeof(bf->bf_state)); return tbf; } struct ath_buf * ath_getbuf(struct ath_softc *sc, ath_buf_type_t btype) { struct ath_buf *bf; ATH_TXBUF_LOCK(sc); bf = _ath_getbuf_locked(sc, btype); /* * If a mgmt buffer was requested but we're out of those, * try requesting a normal one. */ if (bf == NULL && btype == ATH_BUFTYPE_MGMT) bf = _ath_getbuf_locked(sc, ATH_BUFTYPE_NORMAL); ATH_TXBUF_UNLOCK(sc); if (bf == NULL) { DPRINTF(sc, ATH_DEBUG_XMIT, "%s: stop queue\n", __func__); sc->sc_stats.ast_tx_qstop++; } return bf; } /* * Transmit a single frame. * * net80211 will free the node reference if the transmit * fails, so don't free the node reference here. */ static int ath_transmit(struct ieee80211com *ic, struct mbuf *m) { struct ath_softc *sc = ic->ic_softc; struct ieee80211_node *ni; struct mbuf *next; struct ath_buf *bf; ath_bufhead frags; int retval = 0; /* * Tell the reset path that we're currently transmitting. */ ATH_PCU_LOCK(sc); if (sc->sc_inreset_cnt > 0) { DPRINTF(sc, ATH_DEBUG_XMIT, "%s: sc_inreset_cnt > 0; bailing\n", __func__); ATH_PCU_UNLOCK(sc); sc->sc_stats.ast_tx_qstop++; ATH_KTR(sc, ATH_KTR_TX, 0, "ath_start_task: OACTIVE, finish"); return (ENOBUFS); /* XXX should be EINVAL or? */ } sc->sc_txstart_cnt++; ATH_PCU_UNLOCK(sc); /* Wake the hardware up already */ ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ATH_UNLOCK(sc); ATH_KTR(sc, ATH_KTR_TX, 0, "ath_transmit: start"); /* * Grab the TX lock - it's ok to do this here; we haven't * yet started transmitting. */ ATH_TX_LOCK(sc); /* * Node reference, if there's one. */ ni = (struct ieee80211_node *) m->m_pkthdr.rcvif; /* * Enforce how deep a node queue can get. * * XXX it would be nicer if we kept an mbuf queue per * node and only whacked them into ath_bufs when we * are ready to schedule some traffic from them. * .. that may come later. * * XXX we should also track the per-node hardware queue * depth so it is easy to limit the _SUM_ of the swq and * hwq frames. Since we only schedule two HWQ frames * at a time, this should be OK for now. */ if ((!(m->m_flags & M_EAPOL)) && (ATH_NODE(ni)->an_swq_depth > sc->sc_txq_node_maxdepth)) { sc->sc_stats.ast_tx_nodeq_overflow++; retval = ENOBUFS; goto finish; } /* * Check how many TX buffers are available. * * If this is for non-EAPOL traffic, just leave some * space free in order for buffer cloning and raw * frame transmission to occur. * * If it's for EAPOL traffic, ignore this for now. * Management traffic will be sent via the raw transmit * method which bypasses this check. * * This is needed to ensure that EAPOL frames during * (re) keying have a chance to go out. * * See kern/138379 for more information. */ if ((!(m->m_flags & M_EAPOL)) && (sc->sc_txbuf_cnt <= sc->sc_txq_data_minfree)) { sc->sc_stats.ast_tx_nobuf++; retval = ENOBUFS; goto finish; } /* * Grab a TX buffer and associated resources. * * If it's an EAPOL frame, allocate a MGMT ath_buf. * That way even with temporary buffer exhaustion due to * the data path doesn't leave us without the ability * to transmit management frames. * * Otherwise allocate a normal buffer. */ if (m->m_flags & M_EAPOL) bf = ath_getbuf(sc, ATH_BUFTYPE_MGMT); else bf = ath_getbuf(sc, ATH_BUFTYPE_NORMAL); if (bf == NULL) { /* * If we failed to allocate a buffer, fail. * * We shouldn't fail normally, due to the check * above. */ sc->sc_stats.ast_tx_nobuf++; retval = ENOBUFS; goto finish; } /* * At this point we have a buffer; so we need to free it * if we hit any error conditions. */ /* * Check for fragmentation. If this frame * has been broken up verify we have enough * buffers to send all the fragments so all * go out or none... */ TAILQ_INIT(&frags); if ((m->m_flags & M_FRAG) && !ath_txfrag_setup(sc, &frags, m, ni)) { DPRINTF(sc, ATH_DEBUG_XMIT, "%s: out of txfrag buffers\n", __func__); sc->sc_stats.ast_tx_nofrag++; if_inc_counter(ni->ni_vap->iv_ifp, IFCOUNTER_OERRORS, 1); /* * XXXGL: is mbuf valid after ath_txfrag_setup? If yes, * we shouldn't free it but return back. */ ieee80211_free_mbuf(m); m = NULL; goto bad; } /* * At this point if we have any TX fragments, then we will * have bumped the node reference once for each of those. */ /* * XXX Is there anything actually _enforcing_ that the * fragments are being transmitted in one hit, rather than * being interleaved with other transmissions on that * hardware queue? * * The ATH TX output lock is the only thing serialising this * right now. */ /* * Calculate the "next fragment" length field in ath_buf * in order to let the transmit path know enough about * what to next write to the hardware. */ if (m->m_flags & M_FRAG) { struct ath_buf *fbf = bf; struct ath_buf *n_fbf = NULL; struct mbuf *fm = m->m_nextpkt; /* * We need to walk the list of fragments and set * the next size to the following buffer. * However, the first buffer isn't in the frag * list, so we have to do some gymnastics here. */ TAILQ_FOREACH(n_fbf, &frags, bf_list) { fbf->bf_nextfraglen = fm->m_pkthdr.len; fbf = n_fbf; fm = fm->m_nextpkt; } } nextfrag: /* * Pass the frame to the h/w for transmission. * Fragmented frames have each frag chained together * with m_nextpkt. We know there are sufficient ath_buf's * to send all the frags because of work done by * ath_txfrag_setup. We leave m_nextpkt set while * calling ath_tx_start so it can use it to extend the * the tx duration to cover the subsequent frag and * so it can reclaim all the mbufs in case of an error; * ath_tx_start clears m_nextpkt once it commits to * handing the frame to the hardware. * * Note: if this fails, then the mbufs are freed but * not the node reference. * * So, we now have to free the node reference ourselves here * and return OK up to the stack. */ next = m->m_nextpkt; if (ath_tx_start(sc, ni, bf, m)) { bad: if_inc_counter(ni->ni_vap->iv_ifp, IFCOUNTER_OERRORS, 1); reclaim: bf->bf_m = NULL; bf->bf_node = NULL; ATH_TXBUF_LOCK(sc); ath_returnbuf_head(sc, bf); /* * Free the rest of the node references and * buffers for the fragment list. */ ath_txfrag_cleanup(sc, &frags, ni); ATH_TXBUF_UNLOCK(sc); /* * XXX: And free the node/return OK; ath_tx_start() may have * modified the buffer. We currently have no way to * signify that the mbuf was freed but there was an error. */ ieee80211_free_node(ni); retval = 0; goto finish; } /* * Check here if the node is in power save state. */ ath_tx_update_tim(sc, ni, 1); if (next != NULL) { /* * Beware of state changing between frags. * XXX check sta power-save state? */ if (ni->ni_vap->iv_state != IEEE80211_S_RUN) { DPRINTF(sc, ATH_DEBUG_XMIT, "%s: flush fragmented packet, state %s\n", __func__, ieee80211_state_name[ni->ni_vap->iv_state]); /* XXX dmamap */ ieee80211_free_mbuf(next); goto reclaim; } m = next; bf = TAILQ_FIRST(&frags); KASSERT(bf != NULL, ("no buf for txfrag")); TAILQ_REMOVE(&frags, bf, bf_list); goto nextfrag; } /* * Bump watchdog timer. */ sc->sc_wd_timer = 5; finish: ATH_TX_UNLOCK(sc); /* * Finished transmitting! */ ATH_PCU_LOCK(sc); sc->sc_txstart_cnt--; ATH_PCU_UNLOCK(sc); /* Sleep the hardware if required */ ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); ATH_KTR(sc, ATH_KTR_TX, 0, "ath_transmit: finished"); return (retval); -} - -static int -ath_media_change(struct ifnet *ifp) -{ - int error = ieee80211_media_change(ifp); - /* NB: only the fixed rate can change and that doesn't need a reset */ - return (error == ENETRESET ? 0 : error); } /* * Block/unblock tx+rx processing while a key change is done. * We assume the caller serializes key management operations * so we only need to worry about synchronization with other * uses that originate in the driver. */ static void ath_key_update_begin(struct ieee80211vap *vap) { struct ath_softc *sc = vap->iv_ic->ic_softc; DPRINTF(sc, ATH_DEBUG_KEYCACHE, "%s:\n", __func__); taskqueue_block(sc->sc_tq); } static void ath_key_update_end(struct ieee80211vap *vap) { struct ath_softc *sc = vap->iv_ic->ic_softc; DPRINTF(sc, ATH_DEBUG_KEYCACHE, "%s:\n", __func__); taskqueue_unblock(sc->sc_tq); } static void ath_update_promisc(struct ieee80211com *ic) { struct ath_softc *sc = ic->ic_softc; u_int32_t rfilt; /* configure rx filter */ ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); rfilt = ath_calcrxfilter(sc); ath_hal_setrxfilter(sc->sc_ah, rfilt); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); DPRINTF(sc, ATH_DEBUG_MODE, "%s: RX filter 0x%x\n", __func__, rfilt); } static u_int ath_hash_maddr(void *arg, struct sockaddr_dl *sdl, u_int cnt) { uint32_t val, *mfilt = arg; char *dl; uint8_t pos; /* calculate XOR of eight 6bit values */ dl = LLADDR(sdl); val = le32dec(dl + 0); pos = (val >> 18) ^ (val >> 12) ^ (val >> 6) ^ val; val = le32dec(dl + 3); pos ^= (val >> 18) ^ (val >> 12) ^ (val >> 6) ^ val; pos &= 0x3f; mfilt[pos / 32] |= (1 << (pos % 32)); return (1); } /* * Driver-internal mcast update call. * * Assumes the hardware is already awake. */ static void ath_update_mcast_hw(struct ath_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; u_int32_t mfilt[2]; /* calculate and install multicast filter */ if (ic->ic_allmulti == 0) { struct ieee80211vap *vap; /* * Merge multicast addresses to form the hardware filter. */ mfilt[0] = mfilt[1] = 0; TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) if_foreach_llmaddr(vap->iv_ifp, ath_hash_maddr, &mfilt); } else mfilt[0] = mfilt[1] = ~0; ath_hal_setmcastfilter(sc->sc_ah, mfilt[0], mfilt[1]); DPRINTF(sc, ATH_DEBUG_MODE, "%s: MC filter %08x:%08x\n", __func__, mfilt[0], mfilt[1]); } /* * Called from the net80211 layer - force the hardware * awake before operating. */ static void ath_update_mcast(struct ieee80211com *ic) { struct ath_softc *sc = ic->ic_softc; ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ATH_UNLOCK(sc); ath_update_mcast_hw(sc); ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); } void ath_mode_init(struct ath_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ath_hal *ah = sc->sc_ah; u_int32_t rfilt; /* XXX power state? */ /* configure rx filter */ rfilt = ath_calcrxfilter(sc); ath_hal_setrxfilter(ah, rfilt); /* configure operational mode */ ath_hal_setopmode(ah); /* handle any link-level address change */ ath_hal_setmac(ah, ic->ic_macaddr); /* calculate and install multicast filter */ ath_update_mcast_hw(sc); } /* * Set the slot time based on the current setting. */ void ath_setslottime(struct ath_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ath_hal *ah = sc->sc_ah; u_int usec; if (IEEE80211_IS_CHAN_HALF(ic->ic_curchan)) usec = 13; else if (IEEE80211_IS_CHAN_QUARTER(ic->ic_curchan)) usec = 21; else if (IEEE80211_IS_CHAN_ANYG(ic->ic_curchan)) { /* honor short/long slot time only in 11g */ /* XXX shouldn't honor on pure g or turbo g channel */ if (ic->ic_flags & IEEE80211_F_SHSLOT) usec = HAL_SLOT_TIME_9; else usec = HAL_SLOT_TIME_20; } else usec = HAL_SLOT_TIME_9; DPRINTF(sc, ATH_DEBUG_RESET, "%s: chan %u MHz flags 0x%x %s slot, %u usec\n", __func__, ic->ic_curchan->ic_freq, ic->ic_curchan->ic_flags, ic->ic_flags & IEEE80211_F_SHSLOT ? "short" : "long", usec); /* Wake up the hardware first before updating the slot time */ ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ath_hal_setslottime(ah, usec); ath_power_restore_power_state(sc); sc->sc_updateslot = OK; ATH_UNLOCK(sc); } /* * Callback from the 802.11 layer to update the * slot time based on the current setting. */ static void ath_updateslot(struct ieee80211com *ic) { struct ath_softc *sc = ic->ic_softc; /* * When not coordinating the BSS, change the hardware * immediately. For other operation we defer the change * until beacon updates have propagated to the stations. * * XXX sc_updateslot isn't changed behind a lock? */ if (ic->ic_opmode == IEEE80211_M_HOSTAP || ic->ic_opmode == IEEE80211_M_MBSS) sc->sc_updateslot = UPDATE; else ath_setslottime(sc); } /* * Append the contents of src to dst; both queues * are assumed to be locked. */ void ath_txqmove(struct ath_txq *dst, struct ath_txq *src) { ATH_TXQ_LOCK_ASSERT(src); ATH_TXQ_LOCK_ASSERT(dst); TAILQ_CONCAT(&dst->axq_q, &src->axq_q, bf_list); dst->axq_link = src->axq_link; src->axq_link = NULL; dst->axq_depth += src->axq_depth; dst->axq_aggr_depth += src->axq_aggr_depth; src->axq_depth = 0; src->axq_aggr_depth = 0; } /* * Reset the hardware, with no loss. * * This can't be used for a general case reset. */ static void ath_reset_proc(void *arg, int pending) { struct ath_softc *sc = arg; #if 0 device_printf(sc->sc_dev, "%s: resetting\n", __func__); #endif ath_reset(sc, ATH_RESET_NOLOSS, HAL_RESET_FORCE_COLD); } /* * Reset the hardware after detecting beacons have stopped. */ static void ath_bstuck_proc(void *arg, int pending) { struct ath_softc *sc = arg; uint32_t hangs = 0; if (ath_hal_gethangstate(sc->sc_ah, 0xff, &hangs) && hangs != 0) device_printf(sc->sc_dev, "bb hang detected (0x%x)\n", hangs); #ifdef ATH_DEBUG_ALQ if (if_ath_alq_checkdebug(&sc->sc_alq, ATH_ALQ_STUCK_BEACON)) if_ath_alq_post(&sc->sc_alq, ATH_ALQ_STUCK_BEACON, 0, NULL); #endif device_printf(sc->sc_dev, "stuck beacon; resetting (bmiss count %u)\n", sc->sc_bmisscount); sc->sc_stats.ast_bstuck++; /* * This assumes that there's no simultaneous channel mode change * occurring. */ ath_reset(sc, ATH_RESET_NOLOSS, HAL_RESET_FORCE_COLD); } static int ath_desc_alloc(struct ath_softc *sc) { int error; error = ath_descdma_setup(sc, &sc->sc_txdma, &sc->sc_txbuf, "tx", sc->sc_tx_desclen, ath_txbuf, ATH_MAX_SCATTER); if (error != 0) { return error; } sc->sc_txbuf_cnt = ath_txbuf; error = ath_descdma_setup(sc, &sc->sc_txdma_mgmt, &sc->sc_txbuf_mgmt, "tx_mgmt", sc->sc_tx_desclen, ath_txbuf_mgmt, ATH_TXDESC); if (error != 0) { ath_descdma_cleanup(sc, &sc->sc_txdma, &sc->sc_txbuf); return error; } /* * XXX mark txbuf_mgmt frames with ATH_BUF_MGMT, so the * flag doesn't have to be set in ath_getbuf_locked(). */ error = ath_descdma_setup(sc, &sc->sc_bdma, &sc->sc_bbuf, "beacon", sc->sc_tx_desclen, ATH_BCBUF, 1); if (error != 0) { ath_descdma_cleanup(sc, &sc->sc_txdma, &sc->sc_txbuf); ath_descdma_cleanup(sc, &sc->sc_txdma_mgmt, &sc->sc_txbuf_mgmt); return error; } return 0; } static void ath_desc_free(struct ath_softc *sc) { if (sc->sc_bdma.dd_desc_len != 0) ath_descdma_cleanup(sc, &sc->sc_bdma, &sc->sc_bbuf); if (sc->sc_txdma.dd_desc_len != 0) ath_descdma_cleanup(sc, &sc->sc_txdma, &sc->sc_txbuf); if (sc->sc_txdma_mgmt.dd_desc_len != 0) ath_descdma_cleanup(sc, &sc->sc_txdma_mgmt, &sc->sc_txbuf_mgmt); } static struct ieee80211_node * ath_node_alloc(struct ieee80211vap *vap, const uint8_t mac[IEEE80211_ADDR_LEN]) { struct ieee80211com *ic = vap->iv_ic; struct ath_softc *sc = ic->ic_softc; const size_t space = sizeof(struct ath_node) + sc->sc_rc->arc_space; struct ath_node *an; an = malloc(space, M_80211_NODE, M_NOWAIT|M_ZERO); if (an == NULL) { /* XXX stat+msg */ return NULL; } ath_rate_node_init(sc, an); /* Setup the mutex - there's no associd yet so set the name to NULL */ snprintf(an->an_name, sizeof(an->an_name), "%s: node %p", device_get_nameunit(sc->sc_dev), an); mtx_init(&an->an_mtx, an->an_name, NULL, MTX_DEF); /* XXX setup ath_tid */ ath_tx_tid_init(sc, an); an->an_node_stats.ns_avgbrssi = ATH_RSSI_DUMMY_MARKER; an->an_node_stats.ns_avgrssi = ATH_RSSI_DUMMY_MARKER; an->an_node_stats.ns_avgtxrssi = ATH_RSSI_DUMMY_MARKER; DPRINTF(sc, ATH_DEBUG_NODE, "%s: %6D: an %p\n", __func__, mac, ":", an); return &an->an_node; } static void ath_node_cleanup(struct ieee80211_node *ni) { struct ieee80211com *ic = ni->ni_ic; struct ath_softc *sc = ic->ic_softc; DPRINTF(sc, ATH_DEBUG_NODE, "%s: %6D: an %p\n", __func__, ni->ni_macaddr, ":", ATH_NODE(ni)); /* Cleanup ath_tid, free unused bufs, unlink bufs in TXQ */ ath_tx_node_flush(sc, ATH_NODE(ni)); ath_rate_node_cleanup(sc, ATH_NODE(ni)); sc->sc_node_cleanup(ni); } static void ath_node_free(struct ieee80211_node *ni) { struct ieee80211com *ic = ni->ni_ic; struct ath_softc *sc = ic->ic_softc; DPRINTF(sc, ATH_DEBUG_NODE, "%s: %6D: an %p\n", __func__, ni->ni_macaddr, ":", ATH_NODE(ni)); mtx_destroy(&ATH_NODE(ni)->an_mtx); sc->sc_node_free(ni); } static void ath_node_getsignal(const struct ieee80211_node *ni, int8_t *rssi, int8_t *noise) { struct ieee80211com *ic = ni->ni_ic; struct ath_softc *sc = ic->ic_softc; struct ath_hal *ah = sc->sc_ah; *rssi = ic->ic_node_getrssi(ni); if (ni->ni_chan != IEEE80211_CHAN_ANYC) *noise = ath_hal_getchannoise(ah, ni->ni_chan); else *noise = -95; /* nominally correct */ } /* * Set the default antenna. */ void ath_setdefantenna(struct ath_softc *sc, u_int antenna) { struct ath_hal *ah = sc->sc_ah; /* XXX block beacon interrupts */ ath_hal_setdefantenna(ah, antenna); if (sc->sc_defant != antenna) sc->sc_stats.ast_ant_defswitch++; sc->sc_defant = antenna; sc->sc_rxotherant = 0; } static void ath_txq_init(struct ath_softc *sc, struct ath_txq *txq, int qnum) { txq->axq_qnum = qnum; txq->axq_ac = 0; txq->axq_depth = 0; txq->axq_aggr_depth = 0; txq->axq_intrcnt = 0; txq->axq_link = NULL; txq->axq_softc = sc; TAILQ_INIT(&txq->axq_q); TAILQ_INIT(&txq->axq_tidq); TAILQ_INIT(&txq->fifo.axq_q); ATH_TXQ_LOCK_INIT(sc, txq); } /* * Setup a h/w transmit queue. */ static struct ath_txq * ath_txq_setup(struct ath_softc *sc, int qtype, int subtype) { struct ath_hal *ah = sc->sc_ah; HAL_TXQ_INFO qi; int qnum; memset(&qi, 0, sizeof(qi)); qi.tqi_subtype = subtype; qi.tqi_aifs = HAL_TXQ_USEDEFAULT; qi.tqi_cwmin = HAL_TXQ_USEDEFAULT; qi.tqi_cwmax = HAL_TXQ_USEDEFAULT; /* * Enable interrupts only for EOL and DESC conditions. * We mark tx descriptors to receive a DESC interrupt * when a tx queue gets deep; otherwise waiting for the * EOL to reap descriptors. Note that this is done to * reduce interrupt load and this only defers reaping * descriptors, never transmitting frames. Aside from * reducing interrupts this also permits more concurrency. * The only potential downside is if the tx queue backs * up in which case the top half of the kernel may backup * due to a lack of tx descriptors. */ if (sc->sc_isedma) qi.tqi_qflags = HAL_TXQ_TXEOLINT_ENABLE | HAL_TXQ_TXOKINT_ENABLE; else qi.tqi_qflags = HAL_TXQ_TXEOLINT_ENABLE | HAL_TXQ_TXDESCINT_ENABLE; qnum = ath_hal_setuptxqueue(ah, qtype, &qi); if (qnum == -1) { /* * NB: don't print a message, this happens * normally on parts with too few tx queues */ return NULL; } if (qnum >= nitems(sc->sc_txq)) { device_printf(sc->sc_dev, "hal qnum %u out of range, max %zu!\n", qnum, nitems(sc->sc_txq)); ath_hal_releasetxqueue(ah, qnum); return NULL; } if (!ATH_TXQ_SETUP(sc, qnum)) { ath_txq_init(sc, &sc->sc_txq[qnum], qnum); sc->sc_txqsetup |= 1<sc_txq[qnum]; } /* * Setup a hardware data transmit queue for the specified * access control. The hal may not support all requested * queues in which case it will return a reference to a * previously setup queue. We record the mapping from ac's * to h/w queues for use by ath_tx_start and also track * the set of h/w queues being used to optimize work in the * transmit interrupt handler and related routines. */ static int ath_tx_setup(struct ath_softc *sc, int ac, int haltype) { struct ath_txq *txq; if (ac >= nitems(sc->sc_ac2q)) { device_printf(sc->sc_dev, "AC %u out of range, max %zu!\n", ac, nitems(sc->sc_ac2q)); return 0; } txq = ath_txq_setup(sc, HAL_TX_QUEUE_DATA, haltype); if (txq != NULL) { txq->axq_ac = ac; sc->sc_ac2q[ac] = txq; return 1; } else return 0; } /* * Update WME parameters for a transmit queue. */ static int ath_txq_update(struct ath_softc *sc, int ac) { #define ATH_EXPONENT_TO_VALUE(v) ((1<sc_ic; struct ath_txq *txq = sc->sc_ac2q[ac]; struct chanAccParams chp; struct wmeParams *wmep; struct ath_hal *ah = sc->sc_ah; HAL_TXQ_INFO qi; ieee80211_wme_ic_getparams(ic, &chp); wmep = &chp.cap_wmeParams[ac]; ath_hal_gettxqueueprops(ah, txq->axq_qnum, &qi); #ifdef IEEE80211_SUPPORT_TDMA if (sc->sc_tdma) { /* * AIFS is zero so there's no pre-transmit wait. The * burst time defines the slot duration and is configured * through net80211. The QCU is setup to not do post-xmit * back off, lockout all lower-priority QCU's, and fire * off the DMA beacon alert timer which is setup based * on the slot configuration. */ qi.tqi_qflags = HAL_TXQ_TXOKINT_ENABLE | HAL_TXQ_TXERRINT_ENABLE | HAL_TXQ_TXURNINT_ENABLE | HAL_TXQ_TXEOLINT_ENABLE | HAL_TXQ_DBA_GATED | HAL_TXQ_BACKOFF_DISABLE | HAL_TXQ_ARB_LOCKOUT_GLOBAL ; qi.tqi_aifs = 0; /* XXX +dbaprep? */ qi.tqi_readyTime = sc->sc_tdmaslotlen; qi.tqi_burstTime = qi.tqi_readyTime; } else { #endif /* * XXX shouldn't this just use the default flags * used in the previous queue setup? */ qi.tqi_qflags = HAL_TXQ_TXOKINT_ENABLE | HAL_TXQ_TXERRINT_ENABLE | HAL_TXQ_TXDESCINT_ENABLE | HAL_TXQ_TXURNINT_ENABLE | HAL_TXQ_TXEOLINT_ENABLE ; qi.tqi_aifs = wmep->wmep_aifsn; qi.tqi_cwmin = ATH_EXPONENT_TO_VALUE(wmep->wmep_logcwmin); qi.tqi_cwmax = ATH_EXPONENT_TO_VALUE(wmep->wmep_logcwmax); qi.tqi_readyTime = 0; qi.tqi_burstTime = IEEE80211_TXOP_TO_US(wmep->wmep_txopLimit); #ifdef IEEE80211_SUPPORT_TDMA } #endif DPRINTF(sc, ATH_DEBUG_RESET, "%s: Q%u qflags 0x%x aifs %u cwmin %u cwmax %u burstTime %u\n", __func__, txq->axq_qnum, qi.tqi_qflags, qi.tqi_aifs, qi.tqi_cwmin, qi.tqi_cwmax, qi.tqi_burstTime); if (!ath_hal_settxqueueprops(ah, txq->axq_qnum, &qi)) { device_printf(sc->sc_dev, "unable to update hardware queue " "parameters for %s traffic!\n", ieee80211_wme_acnames[ac]); return 0; } else { ath_hal_resettxqueue(ah, txq->axq_qnum); /* push to h/w */ return 1; } #undef ATH_EXPONENT_TO_VALUE } /* * Callback from the 802.11 layer to update WME parameters. */ int ath_wme_update(struct ieee80211com *ic) { struct ath_softc *sc = ic->ic_softc; return !ath_txq_update(sc, WME_AC_BE) || !ath_txq_update(sc, WME_AC_BK) || !ath_txq_update(sc, WME_AC_VI) || !ath_txq_update(sc, WME_AC_VO) ? EIO : 0; } /* * Reclaim resources for a setup queue. */ static void ath_tx_cleanupq(struct ath_softc *sc, struct ath_txq *txq) { ath_hal_releasetxqueue(sc->sc_ah, txq->axq_qnum); sc->sc_txqsetup &= ~(1<axq_qnum); ATH_TXQ_LOCK_DESTROY(txq); } /* * Reclaim all tx queue resources. */ static void ath_tx_cleanup(struct ath_softc *sc) { int i; ATH_TXBUF_LOCK_DESTROY(sc); for (i = 0; i < HAL_NUM_TX_QUEUES; i++) if (ATH_TXQ_SETUP(sc, i)) ath_tx_cleanupq(sc, &sc->sc_txq[i]); } /* * Return h/w rate index for an IEEE rate (w/o basic rate bit) * using the current rates in sc_rixmap. */ int ath_tx_findrix(const struct ath_softc *sc, uint8_t rate) { int rix = sc->sc_rixmap[rate]; /* NB: return lowest rix for invalid rate */ return (rix == 0xff ? 0 : rix); } static void ath_tx_update_stats(struct ath_softc *sc, struct ath_tx_status *ts, struct ath_buf *bf) { struct ieee80211_node *ni = bf->bf_node; struct ieee80211com *ic = &sc->sc_ic; int sr, lr, pri; if (ts->ts_status == 0) { u_int8_t txant = ts->ts_antenna; sc->sc_stats.ast_ant_tx[txant]++; sc->sc_ant_tx[txant]++; if (ts->ts_finaltsi != 0) sc->sc_stats.ast_tx_altrate++; /* XXX TODO: should do per-pri conuters */ pri = M_WME_GETAC(bf->bf_m); if (pri >= WME_AC_VO) ic->ic_wme.wme_hipri_traffic++; if ((bf->bf_state.bfs_txflags & HAL_TXDESC_NOACK) == 0) ni->ni_inact = ni->ni_inact_reload; } else { if (ts->ts_status & HAL_TXERR_XRETRY) sc->sc_stats.ast_tx_xretries++; if (ts->ts_status & HAL_TXERR_FIFO) sc->sc_stats.ast_tx_fifoerr++; if (ts->ts_status & HAL_TXERR_FILT) sc->sc_stats.ast_tx_filtered++; if (ts->ts_status & HAL_TXERR_XTXOP) sc->sc_stats.ast_tx_xtxop++; if (ts->ts_status & HAL_TXERR_TIMER_EXPIRED) sc->sc_stats.ast_tx_timerexpired++; if (bf->bf_m->m_flags & M_FF) sc->sc_stats.ast_ff_txerr++; } /* XXX when is this valid? */ if (ts->ts_flags & HAL_TX_DESC_CFG_ERR) sc->sc_stats.ast_tx_desccfgerr++; /* * This can be valid for successful frame transmission! * If there's a TX FIFO underrun during aggregate transmission, * the MAC will pad the rest of the aggregate with delimiters. * If a BA is returned, the frame is marked as "OK" and it's up * to the TX completion code to notice which frames weren't * successfully transmitted. */ if (ts->ts_flags & HAL_TX_DATA_UNDERRUN) sc->sc_stats.ast_tx_data_underrun++; if (ts->ts_flags & HAL_TX_DELIM_UNDERRUN) sc->sc_stats.ast_tx_delim_underrun++; sr = ts->ts_shortretry; lr = ts->ts_longretry; sc->sc_stats.ast_tx_shortretry += sr; sc->sc_stats.ast_tx_longretry += lr; } /* * The default completion. If fail is 1, this means * "please don't retry the frame, and just return -1 status * to the net80211 stack. */ void ath_tx_default_comp(struct ath_softc *sc, struct ath_buf *bf, int fail) { struct ath_tx_status *ts = &bf->bf_status.ds_txstat; int st; if (fail == 1) st = -1; else st = ((bf->bf_state.bfs_txflags & HAL_TXDESC_NOACK) == 0) ? ts->ts_status : HAL_TXERR_XRETRY; #if 0 if (bf->bf_state.bfs_dobaw) device_printf(sc->sc_dev, "%s: bf %p: seqno %d: dobaw should've been cleared!\n", __func__, bf, SEQNO(bf->bf_state.bfs_seqno)); #endif if (bf->bf_next != NULL) device_printf(sc->sc_dev, "%s: bf %p: seqno %d: bf_next not NULL!\n", __func__, bf, SEQNO(bf->bf_state.bfs_seqno)); /* * Check if the node software queue is empty; if so * then clear the TIM. * * This needs to be done before the buffer is freed as * otherwise the node reference will have been released * and the node may not actually exist any longer. * * XXX I don't like this belonging here, but it's cleaner * to do it here right now then all the other places * where ath_tx_default_comp() is called. * * XXX TODO: during drain, ensure that the callback is * being called so we get a chance to update the TIM. */ if (bf->bf_node) { ATH_TX_LOCK(sc); ath_tx_update_tim(sc, bf->bf_node, 0); ATH_TX_UNLOCK(sc); } /* * Do any tx complete callback. Note this must * be done before releasing the node reference. * This will free the mbuf, release the net80211 * node and recycle the ath_buf. */ ath_tx_freebuf(sc, bf, st); } /* * Update rate control with the given completion status. */ void ath_tx_update_ratectrl(struct ath_softc *sc, struct ieee80211_node *ni, struct ath_rc_series *rc, struct ath_tx_status *ts, int frmlen, int rc_framelen, int nframes, int nbad) { struct ath_node *an; /* Only for unicast frames */ if (ni == NULL) return; an = ATH_NODE(ni); ATH_NODE_UNLOCK_ASSERT(an); /* * XXX TODO: teach the rate control about TXERR_FILT and * see about handling it (eg see how many attempts were * made before it got filtered and account for that.) */ if ((ts->ts_status & HAL_TXERR_FILT) == 0) { ATH_NODE_LOCK(an); ath_rate_tx_complete(sc, an, rc, ts, frmlen, rc_framelen, nframes, nbad); ATH_NODE_UNLOCK(an); } } /* * Process the completion of the given buffer. * * This calls the rate control update and then the buffer completion. * This will either free the buffer or requeue it. In any case, the * bf pointer should be treated as invalid after this function is called. */ void ath_tx_process_buf_completion(struct ath_softc *sc, struct ath_txq *txq, struct ath_tx_status *ts, struct ath_buf *bf) { struct ieee80211_node *ni = bf->bf_node; ATH_TX_UNLOCK_ASSERT(sc); ATH_TXQ_UNLOCK_ASSERT(txq); /* If unicast frame, update general statistics */ if (ni != NULL) { /* update statistics */ ath_tx_update_stats(sc, ts, bf); } /* * Call the completion handler. * The completion handler is responsible for * calling the rate control code. * * Frames with no completion handler get the * rate control code called here. */ if (bf->bf_comp == NULL) { if ((ts->ts_status & HAL_TXERR_FILT) == 0 && (bf->bf_state.bfs_txflags & HAL_TXDESC_NOACK) == 0) { /* * XXX assume this isn't an aggregate * frame. * * XXX TODO: also do this for filtered frames? * Once rate control knows about them? */ ath_tx_update_ratectrl(sc, ni, bf->bf_state.bfs_rc, ts, bf->bf_state.bfs_pktlen, bf->bf_state.bfs_pktlen, 1, (ts->ts_status == 0 ? 0 : 1)); } ath_tx_default_comp(sc, bf, 0); } else bf->bf_comp(sc, bf, 0); } /* * Process completed xmit descriptors from the specified queue. * Kick the packet scheduler if needed. This can occur from this * particular task. */ static int ath_tx_processq(struct ath_softc *sc, struct ath_txq *txq, int dosched) { struct ath_hal *ah = sc->sc_ah; struct ath_buf *bf; struct ath_desc *ds; struct ath_tx_status *ts; struct ieee80211_node *ni; #ifdef IEEE80211_SUPPORT_SUPERG struct ieee80211com *ic = &sc->sc_ic; #endif /* IEEE80211_SUPPORT_SUPERG */ int nacked; HAL_STATUS status; DPRINTF(sc, ATH_DEBUG_TX_PROC, "%s: tx queue %u head %p link %p\n", __func__, txq->axq_qnum, (caddr_t)(uintptr_t) ath_hal_gettxbuf(sc->sc_ah, txq->axq_qnum), txq->axq_link); ATH_KTR(sc, ATH_KTR_TXCOMP, 4, "ath_tx_processq: txq=%u head %p link %p depth %p", txq->axq_qnum, (caddr_t)(uintptr_t) ath_hal_gettxbuf(sc->sc_ah, txq->axq_qnum), txq->axq_link, txq->axq_depth); nacked = 0; for (;;) { ATH_TXQ_LOCK(txq); txq->axq_intrcnt = 0; /* reset periodic desc intr count */ bf = TAILQ_FIRST(&txq->axq_q); if (bf == NULL) { ATH_TXQ_UNLOCK(txq); break; } ds = bf->bf_lastds; /* XXX must be setup correctly! */ ts = &bf->bf_status.ds_txstat; status = ath_hal_txprocdesc(ah, ds, ts); #ifdef ATH_DEBUG if (sc->sc_debug & ATH_DEBUG_XMIT_DESC) ath_printtxbuf(sc, bf, txq->axq_qnum, 0, status == HAL_OK); else if ((sc->sc_debug & ATH_DEBUG_RESET) && (dosched == 0)) ath_printtxbuf(sc, bf, txq->axq_qnum, 0, status == HAL_OK); #endif #ifdef ATH_DEBUG_ALQ if (if_ath_alq_checkdebug(&sc->sc_alq, ATH_ALQ_EDMA_TXSTATUS)) { if_ath_alq_post(&sc->sc_alq, ATH_ALQ_EDMA_TXSTATUS, sc->sc_tx_statuslen, (char *) ds); } #endif if (status == HAL_EINPROGRESS) { ATH_KTR(sc, ATH_KTR_TXCOMP, 3, "ath_tx_processq: txq=%u, bf=%p ds=%p, HAL_EINPROGRESS", txq->axq_qnum, bf, ds); ATH_TXQ_UNLOCK(txq); break; } ATH_TXQ_REMOVE(txq, bf, bf_list); /* * Sanity check. */ if (txq->axq_qnum != bf->bf_state.bfs_tx_queue) { device_printf(sc->sc_dev, "%s: TXQ=%d: bf=%p, bfs_tx_queue=%d\n", __func__, txq->axq_qnum, bf, bf->bf_state.bfs_tx_queue); } if (txq->axq_qnum != bf->bf_last->bf_state.bfs_tx_queue) { device_printf(sc->sc_dev, "%s: TXQ=%d: bf_last=%p, bfs_tx_queue=%d\n", __func__, txq->axq_qnum, bf->bf_last, bf->bf_last->bf_state.bfs_tx_queue); } #if 0 if (txq->axq_depth > 0) { /* * More frames follow. Mark the buffer busy * so it's not re-used while the hardware may * still re-read the link field in the descriptor. * * Use the last buffer in an aggregate as that * is where the hardware may be - intermediate * descriptors won't be "busy". */ bf->bf_last->bf_flags |= ATH_BUF_BUSY; } else txq->axq_link = NULL; #else bf->bf_last->bf_flags |= ATH_BUF_BUSY; #endif if (bf->bf_state.bfs_aggr) txq->axq_aggr_depth--; ni = bf->bf_node; ATH_KTR(sc, ATH_KTR_TXCOMP, 5, "ath_tx_processq: txq=%u, bf=%p, ds=%p, ni=%p, ts_status=0x%08x", txq->axq_qnum, bf, ds, ni, ts->ts_status); /* * If unicast frame was ack'd update RSSI, * including the last rx time used to * workaround phantom bmiss interrupts. */ if (ni != NULL && ts->ts_status == 0 && ((bf->bf_state.bfs_txflags & HAL_TXDESC_NOACK) == 0)) { nacked++; sc->sc_stats.ast_tx_rssi = ts->ts_rssi; ATH_RSSI_LPF(sc->sc_halstats.ns_avgtxrssi, ts->ts_rssi); ATH_RSSI_LPF(ATH_NODE(ni)->an_node_stats.ns_avgtxrssi, ts->ts_rssi); } ATH_TXQ_UNLOCK(txq); /* * Update statistics and call completion */ ath_tx_process_buf_completion(sc, txq, ts, bf); /* XXX at this point, bf and ni may be totally invalid */ } #ifdef IEEE80211_SUPPORT_SUPERG /* * Flush fast-frame staging queue when traffic slows. */ if (txq->axq_depth <= 1) ieee80211_ff_flush(ic, txq->axq_ac); #endif /* Kick the software TXQ scheduler */ if (dosched) { ATH_TX_LOCK(sc); ath_txq_sched(sc, txq); ATH_TX_UNLOCK(sc); } ATH_KTR(sc, ATH_KTR_TXCOMP, 1, "ath_tx_processq: txq=%u: done", txq->axq_qnum); return nacked; } #define TXQACTIVE(t, q) ( (t) & (1 << (q))) /* * Deferred processing of transmit interrupt; special-cased * for a single hardware transmit queue (e.g. 5210 and 5211). */ static void ath_tx_proc_q0(void *arg, int npending) { struct ath_softc *sc = arg; uint32_t txqs; ATH_PCU_LOCK(sc); sc->sc_txproc_cnt++; txqs = sc->sc_txq_active; sc->sc_txq_active &= ~txqs; ATH_PCU_UNLOCK(sc); ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ATH_UNLOCK(sc); ATH_KTR(sc, ATH_KTR_TXCOMP, 1, "ath_tx_proc_q0: txqs=0x%08x", txqs); if (TXQACTIVE(txqs, 0) && ath_tx_processq(sc, &sc->sc_txq[0], 1)) /* XXX why is lastrx updated in tx code? */ sc->sc_lastrx = ath_hal_gettsf64(sc->sc_ah); if (TXQACTIVE(txqs, sc->sc_cabq->axq_qnum)) ath_tx_processq(sc, sc->sc_cabq, 1); sc->sc_wd_timer = 0; if (sc->sc_softled) ath_led_event(sc, sc->sc_txrix); ATH_PCU_LOCK(sc); sc->sc_txproc_cnt--; ATH_PCU_UNLOCK(sc); ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); ath_tx_kick(sc); } /* * Deferred processing of transmit interrupt; special-cased * for four hardware queues, 0-3 (e.g. 5212 w/ WME support). */ static void ath_tx_proc_q0123(void *arg, int npending) { struct ath_softc *sc = arg; int nacked; uint32_t txqs; ATH_PCU_LOCK(sc); sc->sc_txproc_cnt++; txqs = sc->sc_txq_active; sc->sc_txq_active &= ~txqs; ATH_PCU_UNLOCK(sc); ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ATH_UNLOCK(sc); ATH_KTR(sc, ATH_KTR_TXCOMP, 1, "ath_tx_proc_q0123: txqs=0x%08x", txqs); /* * Process each active queue. */ nacked = 0; if (TXQACTIVE(txqs, 0)) nacked += ath_tx_processq(sc, &sc->sc_txq[0], 1); if (TXQACTIVE(txqs, 1)) nacked += ath_tx_processq(sc, &sc->sc_txq[1], 1); if (TXQACTIVE(txqs, 2)) nacked += ath_tx_processq(sc, &sc->sc_txq[2], 1); if (TXQACTIVE(txqs, 3)) nacked += ath_tx_processq(sc, &sc->sc_txq[3], 1); if (TXQACTIVE(txqs, sc->sc_cabq->axq_qnum)) ath_tx_processq(sc, sc->sc_cabq, 1); if (nacked) sc->sc_lastrx = ath_hal_gettsf64(sc->sc_ah); sc->sc_wd_timer = 0; if (sc->sc_softled) ath_led_event(sc, sc->sc_txrix); ATH_PCU_LOCK(sc); sc->sc_txproc_cnt--; ATH_PCU_UNLOCK(sc); ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); ath_tx_kick(sc); } /* * Deferred processing of transmit interrupt. */ static void ath_tx_proc(void *arg, int npending) { struct ath_softc *sc = arg; int i, nacked; uint32_t txqs; ATH_PCU_LOCK(sc); sc->sc_txproc_cnt++; txqs = sc->sc_txq_active; sc->sc_txq_active &= ~txqs; ATH_PCU_UNLOCK(sc); ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ATH_UNLOCK(sc); ATH_KTR(sc, ATH_KTR_TXCOMP, 1, "ath_tx_proc: txqs=0x%08x", txqs); /* * Process each active queue. */ nacked = 0; for (i = 0; i < HAL_NUM_TX_QUEUES; i++) if (ATH_TXQ_SETUP(sc, i) && TXQACTIVE(txqs, i)) nacked += ath_tx_processq(sc, &sc->sc_txq[i], 1); if (nacked) sc->sc_lastrx = ath_hal_gettsf64(sc->sc_ah); sc->sc_wd_timer = 0; if (sc->sc_softled) ath_led_event(sc, sc->sc_txrix); ATH_PCU_LOCK(sc); sc->sc_txproc_cnt--; ATH_PCU_UNLOCK(sc); ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); ath_tx_kick(sc); } #undef TXQACTIVE /* * Deferred processing of TXQ rescheduling. */ static void ath_txq_sched_tasklet(void *arg, int npending) { struct ath_softc *sc = arg; int i; /* XXX is skipping ok? */ ATH_PCU_LOCK(sc); #if 0 if (sc->sc_inreset_cnt > 0) { device_printf(sc->sc_dev, "%s: sc_inreset_cnt > 0; skipping\n", __func__); ATH_PCU_UNLOCK(sc); return; } #endif sc->sc_txproc_cnt++; ATH_PCU_UNLOCK(sc); ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ATH_UNLOCK(sc); ATH_TX_LOCK(sc); for (i = 0; i < HAL_NUM_TX_QUEUES; i++) { if (ATH_TXQ_SETUP(sc, i)) { ath_txq_sched(sc, &sc->sc_txq[i]); } } ATH_TX_UNLOCK(sc); ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); ATH_PCU_LOCK(sc); sc->sc_txproc_cnt--; ATH_PCU_UNLOCK(sc); } void ath_returnbuf_tail(struct ath_softc *sc, struct ath_buf *bf) { ATH_TXBUF_LOCK_ASSERT(sc); if (bf->bf_flags & ATH_BUF_MGMT) TAILQ_INSERT_TAIL(&sc->sc_txbuf_mgmt, bf, bf_list); else { TAILQ_INSERT_TAIL(&sc->sc_txbuf, bf, bf_list); sc->sc_txbuf_cnt++; if (sc->sc_txbuf_cnt > ath_txbuf) { device_printf(sc->sc_dev, "%s: sc_txbuf_cnt > %d?\n", __func__, ath_txbuf); sc->sc_txbuf_cnt = ath_txbuf; } } } void ath_returnbuf_head(struct ath_softc *sc, struct ath_buf *bf) { ATH_TXBUF_LOCK_ASSERT(sc); if (bf->bf_flags & ATH_BUF_MGMT) TAILQ_INSERT_HEAD(&sc->sc_txbuf_mgmt, bf, bf_list); else { TAILQ_INSERT_HEAD(&sc->sc_txbuf, bf, bf_list); sc->sc_txbuf_cnt++; if (sc->sc_txbuf_cnt > ATH_TXBUF) { device_printf(sc->sc_dev, "%s: sc_txbuf_cnt > %d?\n", __func__, ATH_TXBUF); sc->sc_txbuf_cnt = ATH_TXBUF; } } } /* * Free the holding buffer if it exists */ void ath_txq_freeholdingbuf(struct ath_softc *sc, struct ath_txq *txq) { ATH_TXBUF_UNLOCK_ASSERT(sc); ATH_TXQ_LOCK_ASSERT(txq); if (txq->axq_holdingbf == NULL) return; txq->axq_holdingbf->bf_flags &= ~ATH_BUF_BUSY; ATH_TXBUF_LOCK(sc); ath_returnbuf_tail(sc, txq->axq_holdingbf); ATH_TXBUF_UNLOCK(sc); txq->axq_holdingbf = NULL; } /* * Add this buffer to the holding queue, freeing the previous * one if it exists. */ static void ath_txq_addholdingbuf(struct ath_softc *sc, struct ath_buf *bf) { struct ath_txq *txq; txq = &sc->sc_txq[bf->bf_state.bfs_tx_queue]; ATH_TXBUF_UNLOCK_ASSERT(sc); ATH_TXQ_LOCK_ASSERT(txq); /* XXX assert ATH_BUF_BUSY is set */ /* XXX assert the tx queue is under the max number */ if (bf->bf_state.bfs_tx_queue > HAL_NUM_TX_QUEUES) { device_printf(sc->sc_dev, "%s: bf=%p: invalid tx queue (%d)\n", __func__, bf, bf->bf_state.bfs_tx_queue); bf->bf_flags &= ~ATH_BUF_BUSY; ath_returnbuf_tail(sc, bf); return; } ath_txq_freeholdingbuf(sc, txq); txq->axq_holdingbf = bf; } /* * Return a buffer to the pool and update the 'busy' flag on the * previous 'tail' entry. * * This _must_ only be called when the buffer is involved in a completed * TX. The logic is that if it was part of an active TX, the previous * buffer on the list is now not involved in a halted TX DMA queue, waiting * for restart (eg for TDMA.) * * The caller must free the mbuf and recycle the node reference. * * XXX This method of handling busy / holding buffers is insanely stupid. * It requires bf_state.bfs_tx_queue to be correctly assigned. It would * be much nicer if buffers in the processq() methods would instead be * always completed there (pushed onto a txq or ath_bufhead) so we knew * exactly what hardware queue they came from in the first place. */ void ath_freebuf(struct ath_softc *sc, struct ath_buf *bf) { struct ath_txq *txq; txq = &sc->sc_txq[bf->bf_state.bfs_tx_queue]; KASSERT((bf->bf_node == NULL), ("%s: bf->bf_node != NULL\n", __func__)); KASSERT((bf->bf_m == NULL), ("%s: bf->bf_m != NULL\n", __func__)); /* * If this buffer is busy, push it onto the holding queue. */ if (bf->bf_flags & ATH_BUF_BUSY) { ATH_TXQ_LOCK(txq); ath_txq_addholdingbuf(sc, bf); ATH_TXQ_UNLOCK(txq); return; } /* * Not a busy buffer, so free normally */ ATH_TXBUF_LOCK(sc); ath_returnbuf_tail(sc, bf); ATH_TXBUF_UNLOCK(sc); } /* * This is currently used by ath_tx_draintxq() and * ath_tx_tid_free_pkts(). * * It recycles a single ath_buf. */ void ath_tx_freebuf(struct ath_softc *sc, struct ath_buf *bf, int status) { struct ieee80211_node *ni = bf->bf_node; struct mbuf *m0 = bf->bf_m; /* * Make sure that we only sync/unload if there's an mbuf. * If not (eg we cloned a buffer), the unload will have already * occurred. */ if (bf->bf_m != NULL) { bus_dmamap_sync(sc->sc_dmat, bf->bf_dmamap, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(sc->sc_dmat, bf->bf_dmamap); } bf->bf_node = NULL; bf->bf_m = NULL; /* Free the buffer, it's not needed any longer */ ath_freebuf(sc, bf); /* Pass the buffer back to net80211 - completing it */ ieee80211_tx_complete(ni, m0, status); } static struct ath_buf * ath_tx_draintxq_get_one(struct ath_softc *sc, struct ath_txq *txq) { struct ath_buf *bf; ATH_TXQ_LOCK_ASSERT(txq); /* * Drain the FIFO queue first, then if it's * empty, move to the normal frame queue. */ bf = TAILQ_FIRST(&txq->fifo.axq_q); if (bf != NULL) { /* * Is it the last buffer in this set? * Decrement the FIFO counter. */ if (bf->bf_flags & ATH_BUF_FIFOEND) { if (txq->axq_fifo_depth == 0) { device_printf(sc->sc_dev, "%s: Q%d: fifo_depth=0, fifo.axq_depth=%d?\n", __func__, txq->axq_qnum, txq->fifo.axq_depth); } else txq->axq_fifo_depth--; } ATH_TXQ_REMOVE(&txq->fifo, bf, bf_list); return (bf); } /* * Debugging! */ if (txq->axq_fifo_depth != 0 || txq->fifo.axq_depth != 0) { device_printf(sc->sc_dev, "%s: Q%d: fifo_depth=%d, fifo.axq_depth=%d\n", __func__, txq->axq_qnum, txq->axq_fifo_depth, txq->fifo.axq_depth); } /* * Now drain the pending queue. */ bf = TAILQ_FIRST(&txq->axq_q); if (bf == NULL) { txq->axq_link = NULL; return (NULL); } ATH_TXQ_REMOVE(txq, bf, bf_list); return (bf); } void ath_tx_draintxq(struct ath_softc *sc, struct ath_txq *txq) { #ifdef ATH_DEBUG struct ath_hal *ah = sc->sc_ah; #endif struct ath_buf *bf; u_int ix; /* * NB: this assumes output has been stopped and * we do not need to block ath_tx_proc */ for (ix = 0;; ix++) { ATH_TXQ_LOCK(txq); bf = ath_tx_draintxq_get_one(sc, txq); if (bf == NULL) { ATH_TXQ_UNLOCK(txq); break; } if (bf->bf_state.bfs_aggr) txq->axq_aggr_depth--; #ifdef ATH_DEBUG if (sc->sc_debug & ATH_DEBUG_RESET) { struct ieee80211com *ic = &sc->sc_ic; int status = 0; /* * EDMA operation has a TX completion FIFO * separate from the TX descriptor, so this * method of checking the "completion" status * is wrong. */ if (! sc->sc_isedma) { status = (ath_hal_txprocdesc(ah, bf->bf_lastds, &bf->bf_status.ds_txstat) == HAL_OK); } ath_printtxbuf(sc, bf, txq->axq_qnum, ix, status); ieee80211_dump_pkt(ic, mtod(bf->bf_m, const uint8_t *), bf->bf_m->m_len, 0, -1); } #endif /* ATH_DEBUG */ /* * Since we're now doing magic in the completion * functions, we -must- call it for aggregation * destinations or BAW tracking will get upset. */ /* * Clear ATH_BUF_BUSY; the completion handler * will free the buffer. */ ATH_TXQ_UNLOCK(txq); bf->bf_flags &= ~ATH_BUF_BUSY; if (bf->bf_comp) bf->bf_comp(sc, bf, 1); else ath_tx_default_comp(sc, bf, 1); } /* * Free the holding buffer if it exists */ ATH_TXQ_LOCK(txq); ath_txq_freeholdingbuf(sc, txq); ATH_TXQ_UNLOCK(txq); /* * Drain software queued frames which are on * active TIDs. */ ath_tx_txq_drain(sc, txq); } static void ath_tx_stopdma(struct ath_softc *sc, struct ath_txq *txq) { struct ath_hal *ah = sc->sc_ah; ATH_TXQ_LOCK_ASSERT(txq); DPRINTF(sc, ATH_DEBUG_RESET, "%s: tx queue [%u] %p, active=%d, hwpending=%d, flags 0x%08x, " "link %p, holdingbf=%p\n", __func__, txq->axq_qnum, (caddr_t)(uintptr_t) ath_hal_gettxbuf(ah, txq->axq_qnum), (int) (!! ath_hal_txqenabled(ah, txq->axq_qnum)), (int) ath_hal_numtxpending(ah, txq->axq_qnum), txq->axq_flags, txq->axq_link, txq->axq_holdingbf); (void) ath_hal_stoptxdma(ah, txq->axq_qnum); /* We've stopped TX DMA, so mark this as stopped. */ txq->axq_flags &= ~ATH_TXQ_PUTRUNNING; #ifdef ATH_DEBUG if ((sc->sc_debug & ATH_DEBUG_RESET) && (txq->axq_holdingbf != NULL)) { ath_printtxbuf(sc, txq->axq_holdingbf, txq->axq_qnum, 0, 0); } #endif } int ath_stoptxdma(struct ath_softc *sc) { struct ath_hal *ah = sc->sc_ah; int i; /* XXX return value */ if (sc->sc_invalid) return 0; if (!sc->sc_invalid) { /* don't touch the hardware if marked invalid */ DPRINTF(sc, ATH_DEBUG_RESET, "%s: tx queue [%u] %p, link %p\n", __func__, sc->sc_bhalq, (caddr_t)(uintptr_t) ath_hal_gettxbuf(ah, sc->sc_bhalq), NULL); /* stop the beacon queue */ (void) ath_hal_stoptxdma(ah, sc->sc_bhalq); /* Stop the data queues */ for (i = 0; i < HAL_NUM_TX_QUEUES; i++) { if (ATH_TXQ_SETUP(sc, i)) { ATH_TXQ_LOCK(&sc->sc_txq[i]); ath_tx_stopdma(sc, &sc->sc_txq[i]); ATH_TXQ_UNLOCK(&sc->sc_txq[i]); } } } return 1; } #ifdef ATH_DEBUG void ath_tx_dump(struct ath_softc *sc, struct ath_txq *txq) { struct ath_hal *ah = sc->sc_ah; struct ath_buf *bf; int i = 0; if (! (sc->sc_debug & ATH_DEBUG_RESET)) return; device_printf(sc->sc_dev, "%s: Q%d: begin\n", __func__, txq->axq_qnum); TAILQ_FOREACH(bf, &txq->axq_q, bf_list) { ath_printtxbuf(sc, bf, txq->axq_qnum, i, ath_hal_txprocdesc(ah, bf->bf_lastds, &bf->bf_status.ds_txstat) == HAL_OK); i++; } device_printf(sc->sc_dev, "%s: Q%d: end\n", __func__, txq->axq_qnum); } #endif /* ATH_DEBUG */ /* * Drain the transmit queues and reclaim resources. */ void ath_legacy_tx_drain(struct ath_softc *sc, ATH_RESET_TYPE reset_type) { struct ath_hal *ah = sc->sc_ah; struct ath_buf *bf_last; int i; (void) ath_stoptxdma(sc); /* * Dump the queue contents */ for (i = 0; i < HAL_NUM_TX_QUEUES; i++) { /* * XXX TODO: should we just handle the completed TX frames * here, whether or not the reset is a full one or not? */ if (ATH_TXQ_SETUP(sc, i)) { #ifdef ATH_DEBUG if (sc->sc_debug & ATH_DEBUG_RESET) ath_tx_dump(sc, &sc->sc_txq[i]); #endif /* ATH_DEBUG */ if (reset_type == ATH_RESET_NOLOSS) { ath_tx_processq(sc, &sc->sc_txq[i], 0); ATH_TXQ_LOCK(&sc->sc_txq[i]); /* * Free the holding buffer; DMA is now * stopped. */ ath_txq_freeholdingbuf(sc, &sc->sc_txq[i]); /* * Setup the link pointer to be the * _last_ buffer/descriptor in the list. * If there's nothing in the list, set it * to NULL. */ bf_last = ATH_TXQ_LAST(&sc->sc_txq[i], axq_q_s); if (bf_last != NULL) { ath_hal_gettxdesclinkptr(ah, bf_last->bf_lastds, &sc->sc_txq[i].axq_link); } else { sc->sc_txq[i].axq_link = NULL; } ATH_TXQ_UNLOCK(&sc->sc_txq[i]); } else ath_tx_draintxq(sc, &sc->sc_txq[i]); } } #ifdef ATH_DEBUG if (sc->sc_debug & ATH_DEBUG_RESET) { struct ath_buf *bf = TAILQ_FIRST(&sc->sc_bbuf); if (bf != NULL && bf->bf_m != NULL) { ath_printtxbuf(sc, bf, sc->sc_bhalq, 0, ath_hal_txprocdesc(ah, bf->bf_lastds, &bf->bf_status.ds_txstat) == HAL_OK); ieee80211_dump_pkt(&sc->sc_ic, mtod(bf->bf_m, const uint8_t *), bf->bf_m->m_len, 0, -1); } } #endif /* ATH_DEBUG */ sc->sc_wd_timer = 0; } /* * Update internal state after a channel change. */ static void ath_chan_change(struct ath_softc *sc, struct ieee80211_channel *chan) { enum ieee80211_phymode mode; /* * Change channels and update the h/w rate map * if we're switching; e.g. 11a to 11b/g. */ mode = ieee80211_chan2mode(chan); if (mode != sc->sc_curmode) ath_setcurmode(sc, mode); sc->sc_curchan = chan; } /* * Set/change channels. If the channel is really being changed, * it's done by resetting the chip. To accomplish this we must * first cleanup any pending DMA, then restart stuff after a la * ath_init. */ static int ath_chan_set(struct ath_softc *sc, struct ieee80211_channel *chan) { struct ieee80211com *ic = &sc->sc_ic; struct ath_hal *ah = sc->sc_ah; int ret = 0; /* Treat this as an interface reset */ ATH_PCU_UNLOCK_ASSERT(sc); ATH_UNLOCK_ASSERT(sc); /* (Try to) stop TX/RX from occurring */ taskqueue_block(sc->sc_tq); ATH_PCU_LOCK(sc); /* Disable interrupts */ ath_hal_intrset(ah, 0); /* Stop new RX/TX/interrupt completion */ if (ath_reset_grablock(sc, 1) == 0) { device_printf(sc->sc_dev, "%s: concurrent reset! Danger!\n", __func__); } /* Stop pending RX/TX completion */ ath_txrx_stop_locked(sc); ATH_PCU_UNLOCK(sc); DPRINTF(sc, ATH_DEBUG_RESET, "%s: %u (%u MHz, flags 0x%x)\n", __func__, ieee80211_chan2ieee(ic, chan), chan->ic_freq, chan->ic_flags); if (chan != sc->sc_curchan) { HAL_STATUS status; /* * To switch channels clear any pending DMA operations; * wait long enough for the RX fifo to drain, reset the * hardware at the new frequency, and then re-enable * the relevant bits of the h/w. */ #if 0 ath_hal_intrset(ah, 0); /* disable interrupts */ #endif ath_stoprecv(sc, 1); /* turn off frame recv */ /* * First, handle completed TX/RX frames. */ ath_rx_flush(sc); ath_draintxq(sc, ATH_RESET_NOLOSS); /* * Next, flush the non-scheduled frames. */ ath_draintxq(sc, ATH_RESET_FULL); /* clear pending tx frames */ ath_update_chainmasks(sc, chan); ath_hal_setchainmasks(sc->sc_ah, sc->sc_cur_txchainmask, sc->sc_cur_rxchainmask); if (!ath_hal_reset(ah, sc->sc_opmode, chan, AH_TRUE, HAL_RESET_NORMAL, &status)) { device_printf(sc->sc_dev, "%s: unable to reset " "channel %u (%u MHz, flags 0x%x), hal status %u\n", __func__, ieee80211_chan2ieee(ic, chan), chan->ic_freq, chan->ic_flags, status); ret = EIO; goto finish; } sc->sc_diversity = ath_hal_getdiversity(ah); ATH_RX_LOCK(sc); sc->sc_rx_stopped = 1; sc->sc_rx_resetted = 1; ATH_RX_UNLOCK(sc); /* Quiet time handling - ensure we resync */ ath_vap_clear_quiet_ie(sc); /* Let DFS at it in case it's a DFS channel */ ath_dfs_radar_enable(sc, chan); /* Let spectral at in case spectral is enabled */ ath_spectral_enable(sc, chan); /* * Let bluetooth coexistence at in case it's needed for this * channel */ ath_btcoex_enable(sc, ic->ic_curchan); /* * If we're doing TDMA, enforce the TXOP limitation for chips * that support it. */ if (sc->sc_hasenforcetxop && sc->sc_tdma) ath_hal_setenforcetxop(sc->sc_ah, 1); else ath_hal_setenforcetxop(sc->sc_ah, 0); /* * Re-enable rx framework. */ if (ath_startrecv(sc) != 0) { device_printf(sc->sc_dev, "%s: unable to restart recv logic\n", __func__); ret = EIO; goto finish; } /* * Change channels and update the h/w rate map * if we're switching; e.g. 11a to 11b/g. */ ath_chan_change(sc, chan); /* * Reset clears the beacon timers; reset them * here if needed. */ if (sc->sc_beacons) { /* restart beacons */ #ifdef IEEE80211_SUPPORT_TDMA if (sc->sc_tdma) ath_tdma_config(sc, NULL); else #endif ath_beacon_config(sc, NULL); } /* * Re-enable interrupts. */ #if 0 ath_hal_intrset(ah, sc->sc_imask); #endif } finish: ATH_PCU_LOCK(sc); sc->sc_inreset_cnt--; /* XXX only do this if sc_inreset_cnt == 0? */ ath_hal_intrset(ah, sc->sc_imask); ATH_PCU_UNLOCK(sc); ath_txrx_start(sc); /* XXX ath_start? */ return ret; } /* * Periodically recalibrate the PHY to account * for temperature/environment changes. */ static void ath_calibrate(void *arg) { struct ath_softc *sc = arg; struct ath_hal *ah = sc->sc_ah; struct ieee80211com *ic = &sc->sc_ic; HAL_BOOL longCal, isCalDone = AH_TRUE; HAL_BOOL aniCal, shortCal = AH_FALSE; int nextcal; ATH_LOCK_ASSERT(sc); /* * Force the hardware awake for ANI work. */ ath_power_set_power_state(sc, HAL_PM_AWAKE); /* Skip trying to do this if we're in reset */ if (sc->sc_inreset_cnt) goto restart; if (ic->ic_flags & IEEE80211_F_SCAN) /* defer, off channel */ goto restart; longCal = (ticks - sc->sc_lastlongcal >= ath_longcalinterval*hz); aniCal = (ticks - sc->sc_lastani >= ath_anicalinterval*hz/1000); if (sc->sc_doresetcal) shortCal = (ticks - sc->sc_lastshortcal >= ath_shortcalinterval*hz/1000); DPRINTF(sc, ATH_DEBUG_CALIBRATE, "%s: shortCal=%d; longCal=%d; aniCal=%d\n", __func__, shortCal, longCal, aniCal); if (aniCal) { sc->sc_stats.ast_ani_cal++; sc->sc_lastani = ticks; ath_hal_ani_poll(ah, sc->sc_curchan); } if (longCal) { sc->sc_stats.ast_per_cal++; sc->sc_lastlongcal = ticks; if (ath_hal_getrfgain(ah) == HAL_RFGAIN_NEED_CHANGE) { /* * Rfgain is out of bounds, reset the chip * to load new gain values. */ DPRINTF(sc, ATH_DEBUG_CALIBRATE, "%s: rfgain change\n", __func__); sc->sc_stats.ast_per_rfgain++; sc->sc_resetcal = 0; sc->sc_doresetcal = AH_TRUE; taskqueue_enqueue(sc->sc_tq, &sc->sc_resettask); callout_reset(&sc->sc_cal_ch, 1, ath_calibrate, sc); ath_power_restore_power_state(sc); return; } /* * If this long cal is after an idle period, then * reset the data collection state so we start fresh. */ if (sc->sc_resetcal) { (void) ath_hal_calreset(ah, sc->sc_curchan); sc->sc_lastcalreset = ticks; sc->sc_lastshortcal = ticks; sc->sc_resetcal = 0; sc->sc_doresetcal = AH_TRUE; } } /* Only call if we're doing a short/long cal, not for ANI calibration */ if (shortCal || longCal) { isCalDone = AH_FALSE; if (ath_hal_calibrateN(ah, sc->sc_curchan, longCal, &isCalDone)) { if (longCal) { /* * Calibrate noise floor data again in case of change. */ ath_hal_process_noisefloor(ah); } } else { DPRINTF(sc, ATH_DEBUG_ANY, "%s: calibration of channel %u failed\n", __func__, sc->sc_curchan->ic_freq); sc->sc_stats.ast_per_calfail++; } /* * XXX TODO: get the NF calibration results from the HAL. * If we failed NF cal then schedule a hard reset to potentially * un-freeze the PHY. * * Note we have to be careful here to not get stuck in an * infinite NIC restart. Ideally we'd not restart if we * failed the first NF cal - that /can/ fail sometimes in * a noisy environment. * * Instead, we should likely temporarily shorten the longCal * period to happen pretty quickly and if a subsequent one * fails, do a full reset. */ if (shortCal) sc->sc_lastshortcal = ticks; } if (!isCalDone) { restart: /* * Use a shorter interval to potentially collect multiple * data samples required to complete calibration. Once * we're told the work is done we drop back to a longer * interval between requests. We're more aggressive doing * work when operating as an AP to improve operation right * after startup. */ sc->sc_lastshortcal = ticks; nextcal = ath_shortcalinterval*hz/1000; if (sc->sc_opmode != HAL_M_HOSTAP) nextcal *= 10; sc->sc_doresetcal = AH_TRUE; } else { /* nextcal should be the shortest time for next event */ nextcal = ath_longcalinterval*hz; if (sc->sc_lastcalreset == 0) sc->sc_lastcalreset = sc->sc_lastlongcal; else if (ticks - sc->sc_lastcalreset >= ath_resetcalinterval*hz) sc->sc_resetcal = 1; /* setup reset next trip */ sc->sc_doresetcal = AH_FALSE; } /* ANI calibration may occur more often than short/long/resetcal */ if (ath_anicalinterval > 0) nextcal = MIN(nextcal, ath_anicalinterval*hz/1000); if (nextcal != 0) { DPRINTF(sc, ATH_DEBUG_CALIBRATE, "%s: next +%u (%sisCalDone)\n", __func__, nextcal, isCalDone ? "" : "!"); callout_reset(&sc->sc_cal_ch, nextcal, ath_calibrate, sc); } else { DPRINTF(sc, ATH_DEBUG_CALIBRATE, "%s: calibration disabled\n", __func__); /* NB: don't rearm timer */ } /* * Restore power state now that we're done. */ ath_power_restore_power_state(sc); } static void ath_scan_start(struct ieee80211com *ic) { struct ath_softc *sc = ic->ic_softc; struct ath_hal *ah = sc->sc_ah; u_int32_t rfilt; /* XXX calibration timer? */ /* XXXGL: is constant ieee80211broadcastaddr a correct choice? */ ATH_LOCK(sc); sc->sc_scanning = 1; sc->sc_syncbeacon = 0; rfilt = ath_calcrxfilter(sc); ATH_UNLOCK(sc); ATH_PCU_LOCK(sc); ath_hal_setrxfilter(ah, rfilt); ath_hal_setassocid(ah, ieee80211broadcastaddr, 0); ATH_PCU_UNLOCK(sc); DPRINTF(sc, ATH_DEBUG_STATE, "%s: RX filter 0x%x bssid %s aid 0\n", __func__, rfilt, ether_sprintf(ieee80211broadcastaddr)); } static void ath_scan_end(struct ieee80211com *ic) { struct ath_softc *sc = ic->ic_softc; struct ath_hal *ah = sc->sc_ah; u_int32_t rfilt; ATH_LOCK(sc); sc->sc_scanning = 0; rfilt = ath_calcrxfilter(sc); ATH_UNLOCK(sc); ATH_PCU_LOCK(sc); ath_hal_setrxfilter(ah, rfilt); ath_hal_setassocid(ah, sc->sc_curbssid, sc->sc_curaid); ath_hal_process_noisefloor(ah); ATH_PCU_UNLOCK(sc); DPRINTF(sc, ATH_DEBUG_STATE, "%s: RX filter 0x%x bssid %s aid 0x%x\n", __func__, rfilt, ether_sprintf(sc->sc_curbssid), sc->sc_curaid); } #ifdef ATH_ENABLE_11N /* * For now, just do a channel change. * * Later, we'll go through the hard slog of suspending tx/rx, changing rate * control state and resetting the hardware without dropping frames out * of the queue. * * The unfortunate trouble here is making absolutely sure that the * channel width change has propagated enough so the hardware * absolutely isn't handed bogus frames for it's current operating * mode. (Eg, 40MHz frames in 20MHz mode.) Since TX and RX can and * does occur in parallel, we need to make certain we've blocked * any further ongoing TX (and RX, that can cause raw TX) * before we do this. */ static void ath_update_chw(struct ieee80211com *ic) { struct ath_softc *sc = ic->ic_softc; //DPRINTF(sc, ATH_DEBUG_STATE, "%s: called\n", __func__); device_printf(sc->sc_dev, "%s: called\n", __func__); /* * XXX TODO: schedule a tasklet that stops things without freeing, * walks the now stopped TX queue(s) looking for frames to retry * as if we TX filtered them (whch may mean dropping non-ampdu frames!) * but okay) then place them back on the software queue so they * can have the rate control lookup done again. */ ath_set_channel(ic); } #endif /* ATH_ENABLE_11N */ /* * This is called by the beacon parsing routine in the receive * path to update the current quiet time information provided by * an AP. * * This is STA specific, it doesn't take the AP TBTT/beacon slot * offset into account. * * The quiet IE doesn't control the /now/ beacon interval - it * controls the upcoming beacon interval. So, when tbtt=1, * the quiet element programming shall be for the next beacon * interval. There's no tbtt=0 behaviour defined, so don't. * * Since we're programming the next quiet interval, we have * to keep in mind what we will see when the next beacon * is received with potentially a quiet IE. For example, if * quiet_period is 1, then we are always getting a quiet interval * each TBTT - so if we just program it in upon each beacon received, * it will constantly reflect the "next" TBTT and we will never * let the counter stay programmed correctly. * * So: * + the first time we see the quiet IE, program it and store * the details somewhere; * + if the quiet parameters don't change (ie, period/duration/offset) * then just leave the programming enabled; * + (we can "skip" beacons, so don't try to enforce tbttcount unless * you're willing to also do the skipped beacon math); * + if the quiet IE is removed, then halt quiet time. */ static int ath_set_quiet_ie(struct ieee80211_node *ni, uint8_t *ie) { struct ieee80211_quiet_ie *q; struct ieee80211vap *vap = ni->ni_vap; struct ath_vap *avp = ATH_VAP(vap); struct ieee80211com *ic = vap->iv_ic; struct ath_softc *sc = ic->ic_softc; if (vap->iv_opmode != IEEE80211_M_STA) return (0); /* Verify we have a quiet time IE */ if (ie == NULL) { DPRINTF(sc, ATH_DEBUG_QUIETIE, "%s: called; NULL IE, disabling\n", __func__); ath_hal_set_quiet(sc->sc_ah, 0, 0, 0, HAL_QUIET_DISABLE); memset(&avp->quiet_ie, 0, sizeof(avp->quiet_ie)); return (0); } /* If we do, verify it's actually legit */ if (ie[0] != IEEE80211_ELEMID_QUIET) return 0; if (ie[1] != 6) return 0; /* Note: this belongs in net80211, parsed out and everything */ q = (void *) ie; /* * Compare what we have stored to what we last saw. * If they're the same then don't program in anything. */ if ((q->period == avp->quiet_ie.period) && (le16dec(&q->duration) == le16dec(&avp->quiet_ie.duration)) && (le16dec(&q->offset) == le16dec(&avp->quiet_ie.offset))) return (0); DPRINTF(sc, ATH_DEBUG_QUIETIE, "%s: called; tbttcount=%d, period=%d, duration=%d, offset=%d\n", __func__, (int) q->tbttcount, (int) q->period, (int) le16dec(&q->duration), (int) le16dec(&q->offset)); /* * Don't program in garbage values. */ if ((le16dec(&q->duration) == 0) || (le16dec(&q->duration) >= ni->ni_intval)) { DPRINTF(sc, ATH_DEBUG_QUIETIE, "%s: invalid duration (%d)\n", __func__, le16dec(&q->duration)); return (0); } /* * Can have a 0 offset, but not a duration - so just check * they don't exceed the intval. */ if (le16dec(&q->duration) + le16dec(&q->offset) >= ni->ni_intval) { DPRINTF(sc, ATH_DEBUG_QUIETIE, "%s: invalid duration + offset (%d+%d)\n", __func__, le16dec(&q->duration), le16dec(&q->offset)); return (0); } if (q->tbttcount == 0) { DPRINTF(sc, ATH_DEBUG_QUIETIE, "%s: invalid tbttcount (0)\n", __func__); return (0); } if (q->period == 0) { DPRINTF(sc, ATH_DEBUG_QUIETIE, "%s: invalid period (0)\n", __func__); return (0); } /* * This is a new quiet time IE config, so wait until tbttcount * is equal to 1, and program it in. */ if (q->tbttcount == 1) { DPRINTF(sc, ATH_DEBUG_QUIETIE, "%s: programming\n", __func__); ath_hal_set_quiet(sc->sc_ah, q->period * ni->ni_intval, /* convert to TU */ le16dec(&q->duration), /* already in TU */ le16dec(&q->offset) + ni->ni_intval, HAL_QUIET_ENABLE | HAL_QUIET_ADD_CURRENT_TSF); /* * Note: no HAL_QUIET_ADD_SWBA_RESP_TIME; as this is for * STA mode */ /* Update local state */ memcpy(&avp->quiet_ie, ie, sizeof(struct ieee80211_quiet_ie)); } return (0); } static void ath_set_channel(struct ieee80211com *ic) { struct ath_softc *sc = ic->ic_softc; ATH_LOCK(sc); ath_power_set_power_state(sc, HAL_PM_AWAKE); ATH_UNLOCK(sc); (void) ath_chan_set(sc, ic->ic_curchan); /* * If we are returning to our bss channel then mark state * so the next recv'd beacon's tsf will be used to sync the * beacon timers. Note that since we only hear beacons in * sta/ibss mode this has no effect in other operating modes. */ ATH_LOCK(sc); if (!sc->sc_scanning && ic->ic_curchan == ic->ic_bsschan) sc->sc_syncbeacon = 1; ath_power_restore_power_state(sc); ATH_UNLOCK(sc); } /* * Walk the vap list and check if there any vap's in RUN state. */ static int ath_isanyrunningvaps(struct ieee80211vap *this) { struct ieee80211com *ic = this->iv_ic; struct ieee80211vap *vap; IEEE80211_LOCK_ASSERT(ic); TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) { if (vap != this && vap->iv_state >= IEEE80211_S_RUN) return 1; } return 0; } static int ath_newstate(struct ieee80211vap *vap, enum ieee80211_state nstate, int arg) { struct ieee80211com *ic = vap->iv_ic; struct ath_softc *sc = ic->ic_softc; struct ath_vap *avp = ATH_VAP(vap); struct ath_hal *ah = sc->sc_ah; struct ieee80211_node *ni = NULL; int i, error, stamode; u_int32_t rfilt; int csa_run_transition = 0; enum ieee80211_state ostate = vap->iv_state; static const HAL_LED_STATE leds[] = { HAL_LED_INIT, /* IEEE80211_S_INIT */ HAL_LED_SCAN, /* IEEE80211_S_SCAN */ HAL_LED_AUTH, /* IEEE80211_S_AUTH */ HAL_LED_ASSOC, /* IEEE80211_S_ASSOC */ HAL_LED_RUN, /* IEEE80211_S_CAC */ HAL_LED_RUN, /* IEEE80211_S_RUN */ HAL_LED_RUN, /* IEEE80211_S_CSA */ HAL_LED_RUN, /* IEEE80211_S_SLEEP */ }; DPRINTF(sc, ATH_DEBUG_STATE, "%s: %s -> %s\n", __func__, ieee80211_state_name[ostate], ieee80211_state_name[nstate]); /* * net80211 _should_ have the comlock asserted at this point. * There are some comments around the calls to vap->iv_newstate * which indicate that it (newstate) may end up dropping the * lock. This and the subsequent lock assert check after newstate * are an attempt to catch these and figure out how/why. */ IEEE80211_LOCK_ASSERT(ic); /* Before we touch the hardware - wake it up */ ATH_LOCK(sc); /* * If the NIC is in anything other than SLEEP state, * we need to ensure that self-generated frames are * set for PWRMGT=0. Otherwise we may end up with * strange situations. * * XXX TODO: is this actually the case? :-) */ if (nstate != IEEE80211_S_SLEEP) ath_power_setselfgen(sc, HAL_PM_AWAKE); /* * Now, wake the thing up. */ ath_power_set_power_state(sc, HAL_PM_AWAKE); /* * And stop the calibration callout whilst we have * ATH_LOCK held. */ callout_stop(&sc->sc_cal_ch); ATH_UNLOCK(sc); if (ostate == IEEE80211_S_CSA && nstate == IEEE80211_S_RUN) csa_run_transition = 1; ath_hal_setledstate(ah, leds[nstate]); /* set LED */ if (nstate == IEEE80211_S_SCAN) { /* * Scanning: turn off beacon miss and don't beacon. * Mark beacon state so when we reach RUN state we'll * [re]setup beacons. Unblock the task q thread so * deferred interrupt processing is done. */ /* Ensure we stay awake during scan */ ATH_LOCK(sc); ath_power_setselfgen(sc, HAL_PM_AWAKE); ath_power_setpower(sc, HAL_PM_AWAKE, 1); ATH_UNLOCK(sc); ath_hal_intrset(ah, sc->sc_imask &~ (HAL_INT_SWBA | HAL_INT_BMISS)); sc->sc_imask &= ~(HAL_INT_SWBA | HAL_INT_BMISS); sc->sc_beacons = 0; taskqueue_unblock(sc->sc_tq); } ni = ieee80211_ref_node(vap->iv_bss); rfilt = ath_calcrxfilter(sc); stamode = (vap->iv_opmode == IEEE80211_M_STA || vap->iv_opmode == IEEE80211_M_AHDEMO || vap->iv_opmode == IEEE80211_M_IBSS); /* * XXX Dont need to do this (and others) if we've transitioned * from SLEEP->RUN. */ if (stamode && nstate == IEEE80211_S_RUN) { sc->sc_curaid = ni->ni_associd; IEEE80211_ADDR_COPY(sc->sc_curbssid, ni->ni_bssid); ath_hal_setassocid(ah, sc->sc_curbssid, sc->sc_curaid); } DPRINTF(sc, ATH_DEBUG_STATE, "%s: RX filter 0x%x bssid %s aid 0x%x\n", __func__, rfilt, ether_sprintf(sc->sc_curbssid), sc->sc_curaid); ath_hal_setrxfilter(ah, rfilt); /* XXX is this to restore keycache on resume? */ if (vap->iv_opmode != IEEE80211_M_STA && (vap->iv_flags & IEEE80211_F_PRIVACY)) { for (i = 0; i < IEEE80211_WEP_NKID; i++) if (ath_hal_keyisvalid(ah, i)) ath_hal_keysetmac(ah, i, ni->ni_bssid); } /* * Invoke the parent method to do net80211 work. */ error = avp->av_newstate(vap, nstate, arg); if (error != 0) goto bad; /* * See above: ensure av_newstate() doesn't drop the lock * on us. */ IEEE80211_LOCK_ASSERT(ic); /* * XXX TODO: if nstate is _S_CAC, then we should disable * ACK processing until CAC is completed. */ /* * XXX TODO: if we're on a passive channel, then we should * not allow any ACKs or self-generated frames until we hear * a beacon. Unfortunately there isn't a notification from * net80211 so perhaps we could slot that particular check * into the mgmt receive path and just ensure that we clear * it on RX of beacons in passive mode (and only clear it * once, obviously.) */ /* * XXX TODO: net80211 should be tracking whether channels * have heard beacons and are thus considered "OK" for * transmitting - and then inform the driver about this * state change. That way if we hear an AP go quiet * (and nothing else is beaconing on a channel) the * channel can go back to being passive until another * beacon is heard. */ /* * XXX TODO: if nstate is _S_CAC, then we should disable * ACK processing until CAC is completed. */ /* * XXX TODO: if we're on a passive channel, then we should * not allow any ACKs or self-generated frames until we hear * a beacon. Unfortunately there isn't a notification from * net80211 so perhaps we could slot that particular check * into the mgmt receive path and just ensure that we clear * it on RX of beacons in passive mode (and only clear it * once, obviously.) */ /* * XXX TODO: net80211 should be tracking whether channels * have heard beacons and are thus considered "OK" for * transmitting - and then inform the driver about this * state change. That way if we hear an AP go quiet * (and nothing else is beaconing on a channel) the * channel can go back to being passive until another * beacon is heard. */ if (nstate == IEEE80211_S_RUN) { /* NB: collect bss node again, it may have changed */ ieee80211_free_node(ni); ni = ieee80211_ref_node(vap->iv_bss); DPRINTF(sc, ATH_DEBUG_STATE, "%s(RUN): iv_flags 0x%08x bintvl %d bssid %s " "capinfo 0x%04x chan %d\n", __func__, vap->iv_flags, ni->ni_intval, ether_sprintf(ni->ni_bssid), ni->ni_capinfo, ieee80211_chan2ieee(ic, ic->ic_curchan)); switch (vap->iv_opmode) { #ifdef IEEE80211_SUPPORT_TDMA case IEEE80211_M_AHDEMO: if ((vap->iv_caps & IEEE80211_C_TDMA) == 0) break; /* fall thru... */ #endif case IEEE80211_M_HOSTAP: case IEEE80211_M_IBSS: case IEEE80211_M_MBSS: /* * TODO: Enable ACK processing (ie, clear AR_DIAG_ACK_DIS.) * For channels that are in CAC, we may have disabled * this during CAC to ensure we don't ACK frames * sent to us. */ /* * Allocate and setup the beacon frame. * * Stop any previous beacon DMA. This may be * necessary, for example, when an ibss merge * causes reconfiguration; there will be a state * transition from RUN->RUN that means we may * be called with beacon transmission active. */ ath_hal_stoptxdma(ah, sc->sc_bhalq); error = ath_beacon_alloc(sc, ni); if (error != 0) goto bad; /* * If joining an adhoc network defer beacon timer * configuration to the next beacon frame so we * have a current TSF to use. Otherwise we're * starting an ibss/bss so there's no need to delay; * if this is the first vap moving to RUN state, then * beacon state needs to be [re]configured. */ if (vap->iv_opmode == IEEE80211_M_IBSS && ni->ni_tstamp.tsf != 0) { sc->sc_syncbeacon = 1; } else if (!sc->sc_beacons) { #ifdef IEEE80211_SUPPORT_TDMA if (vap->iv_caps & IEEE80211_C_TDMA) ath_tdma_config(sc, vap); else #endif ath_beacon_config(sc, vap); sc->sc_beacons = 1; } break; case IEEE80211_M_STA: /* * Defer beacon timer configuration to the next * beacon frame so we have a current TSF to use * (any TSF collected when scanning is likely old). * However if it's due to a CSA -> RUN transition, * force a beacon update so we pick up a lack of * beacons from an AP in CAC and thus force a * scan. * * And, there's also corner cases here where * after a scan, the AP may have disappeared. * In that case, we may not receive an actual * beacon to update the beacon timer and thus we * won't get notified of the missing beacons. */ if (ostate != IEEE80211_S_RUN && ostate != IEEE80211_S_SLEEP) { DPRINTF(sc, ATH_DEBUG_BEACON, "%s: STA; syncbeacon=1\n", __func__); sc->sc_syncbeacon = 1; /* Quiet time handling - ensure we resync */ memset(&avp->quiet_ie, 0, sizeof(avp->quiet_ie)); if (csa_run_transition) ath_beacon_config(sc, vap); /* * PR: kern/175227 * * Reconfigure beacons during reset; as otherwise * we won't get the beacon timers reprogrammed * after a reset and thus we won't pick up a * beacon miss interrupt. * * Hopefully we'll see a beacon before the BMISS * timer fires (too often), leading to a STA * disassociation. */ sc->sc_beacons = 1; } break; case IEEE80211_M_MONITOR: /* * Monitor mode vaps have only INIT->RUN and RUN->RUN * transitions so we must re-enable interrupts here to * handle the case of a single monitor mode vap. */ ath_hal_intrset(ah, sc->sc_imask); break; case IEEE80211_M_WDS: break; default: break; } /* * Let the hal process statistics collected during a * scan so it can provide calibrated noise floor data. */ ath_hal_process_noisefloor(ah); /* * Reset rssi stats; maybe not the best place... */ sc->sc_halstats.ns_avgbrssi = ATH_RSSI_DUMMY_MARKER; sc->sc_halstats.ns_avgrssi = ATH_RSSI_DUMMY_MARKER; sc->sc_halstats.ns_avgtxrssi = ATH_RSSI_DUMMY_MARKER; /* * Force awake for RUN mode. */ ATH_LOCK(sc); ath_power_setselfgen(sc, HAL_PM_AWAKE); ath_power_setpower(sc, HAL_PM_AWAKE, 1); /* * Finally, start any timers and the task q thread * (in case we didn't go through SCAN state). */ if (ath_longcalinterval != 0) { /* start periodic recalibration timer */ callout_reset(&sc->sc_cal_ch, 1, ath_calibrate, sc); } else { DPRINTF(sc, ATH_DEBUG_CALIBRATE, "%s: calibration disabled\n", __func__); } ATH_UNLOCK(sc); taskqueue_unblock(sc->sc_tq); } else if (nstate == IEEE80211_S_INIT) { /* Quiet time handling - ensure we resync */ memset(&avp->quiet_ie, 0, sizeof(avp->quiet_ie)); /* * If there are no vaps left in RUN state then * shutdown host/driver operation: * o disable interrupts * o disable the task queue thread * o mark beacon processing as stopped */ if (!ath_isanyrunningvaps(vap)) { sc->sc_imask &= ~(HAL_INT_SWBA | HAL_INT_BMISS); /* disable interrupts */ ath_hal_intrset(ah, sc->sc_imask &~ HAL_INT_GLOBAL); taskqueue_block(sc->sc_tq); sc->sc_beacons = 0; } /* * For at least STA mode we likely should clear the ANI * and NF calibration state and allow the NIC/HAL to figure * out optimal parameters at runtime. Otherwise if we * disassociate due to interference / deafness it may persist * when we reconnect. * * Note: may need to do this for other states too, not just * _S_INIT. */ #ifdef IEEE80211_SUPPORT_TDMA ath_hal_setcca(ah, AH_TRUE); #endif } else if (nstate == IEEE80211_S_SLEEP) { /* We're going to sleep, so transition appropriately */ /* For now, only do this if we're a single STA vap */ if (sc->sc_nvaps == 1 && vap->iv_opmode == IEEE80211_M_STA) { DPRINTF(sc, ATH_DEBUG_BEACON, "%s: syncbeacon=%d\n", __func__, sc->sc_syncbeacon); ATH_LOCK(sc); /* * Always at least set the self-generated * frame config to set PWRMGT=1. */ ath_power_setselfgen(sc, HAL_PM_NETWORK_SLEEP); /* * If we're not syncing beacons, transition * to NETWORK_SLEEP. * * We stay awake if syncbeacon > 0 in case * we need to listen for some beacons otherwise * our beacon timer config may be wrong. */ if (sc->sc_syncbeacon == 0) { ath_power_setpower(sc, HAL_PM_NETWORK_SLEEP, 1); } ATH_UNLOCK(sc); } /* * Note - the ANI/calibration timer isn't re-enabled during * network sleep for now. One unfortunate side-effect is that * the PHY/airtime statistics aren't gathered on the channel * but I haven't yet tested to see if reading those registers * CAN occur during network sleep. * * This should be revisited in a future commit, even if it's * just to split out the airtime polling from ANI/calibration. */ } else if (nstate == IEEE80211_S_SCAN) { /* Quiet time handling - ensure we resync */ memset(&avp->quiet_ie, 0, sizeof(avp->quiet_ie)); /* * If we're in scan mode then startpcureceive() is * hopefully being called with "reset ANI" for this channel; * but once we attempt to reassociate we program in the previous * ANI values and.. not do any calibration until we're running. * This may mean we stay deaf unless we can associate successfully. * * So do kick off the cal timer to get NF/ANI going. */ ATH_LOCK(sc); if (ath_longcalinterval != 0) { /* start periodic recalibration timer */ callout_reset(&sc->sc_cal_ch, 1, ath_calibrate, sc); } else { DPRINTF(sc, ATH_DEBUG_CALIBRATE, "%s: calibration disabled\n", __func__); } ATH_UNLOCK(sc); } bad: ieee80211_free_node(ni); /* * Restore the power state - either to what it was, or * to network_sleep if it's alright. */ ATH_LOCK(sc); ath_power_restore_power_state(sc); ATH_UNLOCK(sc); return error; } /* * Allocate a key cache slot to the station so we can * setup a mapping from key index to node. The key cache * slot is needed for managing antenna state and for * compression when stations do not use crypto. We do * it uniliaterally here; if crypto is employed this slot * will be reassigned. */ static void ath_setup_stationkey(struct ieee80211_node *ni) { struct ieee80211vap *vap = ni->ni_vap; struct ath_softc *sc = vap->iv_ic->ic_softc; ieee80211_keyix keyix, rxkeyix; /* XXX should take a locked ref to vap->iv_bss */ if (!ath_key_alloc(vap, &ni->ni_ucastkey, &keyix, &rxkeyix)) { /* * Key cache is full; we'll fall back to doing * the more expensive lookup in software. Note * this also means no h/w compression. */ /* XXX msg+statistic */ } else { /* XXX locking? */ ni->ni_ucastkey.wk_keyix = keyix; ni->ni_ucastkey.wk_rxkeyix = rxkeyix; /* NB: must mark device key to get called back on delete */ ni->ni_ucastkey.wk_flags |= IEEE80211_KEY_DEVKEY; IEEE80211_ADDR_COPY(ni->ni_ucastkey.wk_macaddr, ni->ni_macaddr); /* NB: this will create a pass-thru key entry */ ath_keyset(sc, vap, &ni->ni_ucastkey, vap->iv_bss); } } /* * Setup driver-specific state for a newly associated node. * Note that we're called also on a re-associate, the isnew * param tells us if this is the first time or not. */ static void ath_newassoc(struct ieee80211_node *ni, int isnew) { struct ath_node *an = ATH_NODE(ni); struct ieee80211vap *vap = ni->ni_vap; struct ath_softc *sc = vap->iv_ic->ic_softc; const struct ieee80211_txparam *tp = ni->ni_txparms; an->an_mcastrix = ath_tx_findrix(sc, tp->mcastrate); an->an_mgmtrix = ath_tx_findrix(sc, tp->mgmtrate); DPRINTF(sc, ATH_DEBUG_NODE, "%s: %6D: reassoc; isnew=%d, is_powersave=%d\n", __func__, ni->ni_macaddr, ":", isnew, an->an_is_powersave); ATH_NODE_LOCK(an); ath_rate_newassoc(sc, an, isnew); ATH_NODE_UNLOCK(an); if (isnew && (vap->iv_flags & IEEE80211_F_PRIVACY) == 0 && sc->sc_hasclrkey && ni->ni_ucastkey.wk_keyix == IEEE80211_KEYIX_NONE) ath_setup_stationkey(ni); /* * If we're reassociating, make sure that any paused queues * get unpaused. * * Now, we may have frames in the hardware queue for this node. * So if we are reassociating and there are frames in the queue, * we need to go through the cleanup path to ensure that they're * marked as non-aggregate. */ if (! isnew) { DPRINTF(sc, ATH_DEBUG_NODE, "%s: %6D: reassoc; is_powersave=%d\n", __func__, ni->ni_macaddr, ":", an->an_is_powersave); /* XXX for now, we can't hold the lock across assoc */ ath_tx_node_reassoc(sc, an); /* XXX for now, we can't hold the lock across wakeup */ if (an->an_is_powersave) ath_tx_node_wakeup(sc, an); } } static int ath_setregdomain(struct ieee80211com *ic, struct ieee80211_regdomain *reg, int nchans, struct ieee80211_channel chans[]) { struct ath_softc *sc = ic->ic_softc; struct ath_hal *ah = sc->sc_ah; HAL_STATUS status; DPRINTF(sc, ATH_DEBUG_REGDOMAIN, "%s: rd %u cc %u location %c%s\n", __func__, reg->regdomain, reg->country, reg->location, reg->ecm ? " ecm" : ""); status = ath_hal_set_channels(ah, chans, nchans, reg->country, reg->regdomain); if (status != HAL_OK) { DPRINTF(sc, ATH_DEBUG_REGDOMAIN, "%s: failed, status %u\n", __func__, status); return EINVAL; /* XXX */ } return 0; } static void ath_getradiocaps(struct ieee80211com *ic, int maxchans, int *nchans, struct ieee80211_channel chans[]) { struct ath_softc *sc = ic->ic_softc; struct ath_hal *ah = sc->sc_ah; DPRINTF(sc, ATH_DEBUG_REGDOMAIN, "%s: use rd %u cc %d\n", __func__, SKU_DEBUG, CTRY_DEFAULT); /* XXX check return */ (void) ath_hal_getchannels(ah, chans, maxchans, nchans, HAL_MODE_ALL, CTRY_DEFAULT, SKU_DEBUG, AH_TRUE); } static int ath_getchannels(struct ath_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ath_hal *ah = sc->sc_ah; HAL_STATUS status; /* * Collect channel set based on EEPROM contents. */ status = ath_hal_init_channels(ah, ic->ic_channels, IEEE80211_CHAN_MAX, &ic->ic_nchans, HAL_MODE_ALL, CTRY_DEFAULT, SKU_NONE, AH_TRUE); if (status != HAL_OK) { device_printf(sc->sc_dev, "%s: unable to collect channel list from hal, status %d\n", __func__, status); return EINVAL; } (void) ath_hal_getregdomain(ah, &sc->sc_eerd); ath_hal_getcountrycode(ah, &sc->sc_eecc); /* NB: cannot fail */ /* XXX map Atheros sku's to net80211 SKU's */ /* XXX net80211 types too small */ ic->ic_regdomain.regdomain = (uint16_t) sc->sc_eerd; ic->ic_regdomain.country = (uint16_t) sc->sc_eecc; ic->ic_regdomain.isocc[0] = ' '; /* XXX don't know */ ic->ic_regdomain.isocc[1] = ' '; ic->ic_regdomain.ecm = 1; ic->ic_regdomain.location = 'I'; DPRINTF(sc, ATH_DEBUG_REGDOMAIN, "%s: eeprom rd %u cc %u (mapped rd %u cc %u) location %c%s\n", __func__, sc->sc_eerd, sc->sc_eecc, ic->ic_regdomain.regdomain, ic->ic_regdomain.country, ic->ic_regdomain.location, ic->ic_regdomain.ecm ? " ecm" : ""); return 0; } static int ath_rate_setup(struct ath_softc *sc, u_int mode) { struct ath_hal *ah = sc->sc_ah; const HAL_RATE_TABLE *rt; switch (mode) { case IEEE80211_MODE_11A: rt = ath_hal_getratetable(ah, HAL_MODE_11A); break; case IEEE80211_MODE_HALF: rt = ath_hal_getratetable(ah, HAL_MODE_11A_HALF_RATE); break; case IEEE80211_MODE_QUARTER: rt = ath_hal_getratetable(ah, HAL_MODE_11A_QUARTER_RATE); break; case IEEE80211_MODE_11B: rt = ath_hal_getratetable(ah, HAL_MODE_11B); break; case IEEE80211_MODE_11G: rt = ath_hal_getratetable(ah, HAL_MODE_11G); break; case IEEE80211_MODE_TURBO_A: rt = ath_hal_getratetable(ah, HAL_MODE_108A); break; case IEEE80211_MODE_TURBO_G: rt = ath_hal_getratetable(ah, HAL_MODE_108G); break; case IEEE80211_MODE_STURBO_A: rt = ath_hal_getratetable(ah, HAL_MODE_TURBO); break; case IEEE80211_MODE_11NA: rt = ath_hal_getratetable(ah, HAL_MODE_11NA_HT20); break; case IEEE80211_MODE_11NG: rt = ath_hal_getratetable(ah, HAL_MODE_11NG_HT20); break; default: DPRINTF(sc, ATH_DEBUG_ANY, "%s: invalid mode %u\n", __func__, mode); return 0; } sc->sc_rates[mode] = rt; return (rt != NULL); } static void ath_setcurmode(struct ath_softc *sc, enum ieee80211_phymode mode) { /* NB: on/off times from the Atheros NDIS driver, w/ permission */ static const struct { u_int rate; /* tx/rx 802.11 rate */ u_int16_t timeOn; /* LED on time (ms) */ u_int16_t timeOff; /* LED off time (ms) */ } blinkrates[] = { { 108, 40, 10 }, { 96, 44, 11 }, { 72, 50, 13 }, { 48, 57, 14 }, { 36, 67, 16 }, { 24, 80, 20 }, { 22, 100, 25 }, { 18, 133, 34 }, { 12, 160, 40 }, { 10, 200, 50 }, { 6, 240, 58 }, { 4, 267, 66 }, { 2, 400, 100 }, { 0, 500, 130 }, /* XXX half/quarter rates */ }; const HAL_RATE_TABLE *rt; int i, j; memset(sc->sc_rixmap, 0xff, sizeof(sc->sc_rixmap)); rt = sc->sc_rates[mode]; KASSERT(rt != NULL, ("no h/w rate set for phy mode %u", mode)); for (i = 0; i < rt->rateCount; i++) { uint8_t ieeerate = rt->info[i].dot11Rate & IEEE80211_RATE_VAL; if (rt->info[i].phy != IEEE80211_T_HT) sc->sc_rixmap[ieeerate] = i; else sc->sc_rixmap[ieeerate | IEEE80211_RATE_MCS] = i; } memset(sc->sc_hwmap, 0, sizeof(sc->sc_hwmap)); for (i = 0; i < nitems(sc->sc_hwmap); i++) { if (i >= rt->rateCount) { sc->sc_hwmap[i].ledon = (500 * hz) / 1000; sc->sc_hwmap[i].ledoff = (130 * hz) / 1000; continue; } sc->sc_hwmap[i].ieeerate = rt->info[i].dot11Rate & IEEE80211_RATE_VAL; if (rt->info[i].phy == IEEE80211_T_HT) sc->sc_hwmap[i].ieeerate |= IEEE80211_RATE_MCS; sc->sc_hwmap[i].txflags = IEEE80211_RADIOTAP_F_DATAPAD; if (rt->info[i].shortPreamble || rt->info[i].phy == IEEE80211_T_OFDM) sc->sc_hwmap[i].txflags |= IEEE80211_RADIOTAP_F_SHORTPRE; sc->sc_hwmap[i].rxflags = sc->sc_hwmap[i].txflags; for (j = 0; j < nitems(blinkrates)-1; j++) if (blinkrates[j].rate == sc->sc_hwmap[i].ieeerate) break; /* NB: this uses the last entry if the rate isn't found */ /* XXX beware of overlow */ sc->sc_hwmap[i].ledon = (blinkrates[j].timeOn * hz) / 1000; sc->sc_hwmap[i].ledoff = (blinkrates[j].timeOff * hz) / 1000; } sc->sc_currates = rt; sc->sc_curmode = mode; /* * All protection frames are transmitted at 2Mb/s for * 11g, otherwise at 1Mb/s. */ if (mode == IEEE80211_MODE_11G) sc->sc_protrix = ath_tx_findrix(sc, 2*2); else sc->sc_protrix = ath_tx_findrix(sc, 2*1); /* NB: caller is responsible for resetting rate control state */ } static void ath_watchdog(void *arg) { struct ath_softc *sc = arg; struct ieee80211com *ic = &sc->sc_ic; int do_reset = 0; ATH_LOCK_ASSERT(sc); if (sc->sc_wd_timer != 0 && --sc->sc_wd_timer == 0) { uint32_t hangs; ath_power_set_power_state(sc, HAL_PM_AWAKE); if (ath_hal_gethangstate(sc->sc_ah, 0xffff, &hangs) && hangs != 0) { device_printf(sc->sc_dev, "%s hang detected (0x%x)\n", hangs & 0xff ? "bb" : "mac", hangs); } else device_printf(sc->sc_dev, "device timeout\n"); do_reset = 1; counter_u64_add(ic->ic_oerrors, 1); sc->sc_stats.ast_watchdog++; ath_power_restore_power_state(sc); } /* * We can't hold the lock across the ath_reset() call. * * And since this routine can't hold a lock and sleep, * do the reset deferred. */ if (do_reset) { taskqueue_enqueue(sc->sc_tq, &sc->sc_resettask); } callout_schedule(&sc->sc_wd_ch, hz); } static void ath_parent(struct ieee80211com *ic) { struct ath_softc *sc = ic->ic_softc; int error = EDOOFUS; ATH_LOCK(sc); if (ic->ic_nrunning > 0) { /* * To avoid rescanning another access point, * do not call ath_init() here. Instead, * only reflect promisc mode settings. */ if (sc->sc_running) { ath_power_set_power_state(sc, HAL_PM_AWAKE); ath_mode_init(sc); ath_power_restore_power_state(sc); } else if (!sc->sc_invalid) { /* * Beware of being called during attach/detach * to reset promiscuous mode. In that case we * will still be marked UP but not RUNNING. * However trying to re-init the interface * is the wrong thing to do as we've already * torn down much of our state. There's * probably a better way to deal with this. */ error = ath_init(sc); } } else { ath_stop(sc); if (!sc->sc_invalid) ath_power_setpower(sc, HAL_PM_FULL_SLEEP, 1); } ATH_UNLOCK(sc); if (error == 0) { #ifdef ATH_TX99_DIAG if (sc->sc_tx99 != NULL) sc->sc_tx99->start(sc->sc_tx99); else #endif ieee80211_start_all(ic); } } /* * Announce various information on device/driver attach. */ static void ath_announce(struct ath_softc *sc) { struct ath_hal *ah = sc->sc_ah; device_printf(sc->sc_dev, "%s mac %d.%d RF%s phy %d.%d\n", ath_hal_mac_name(ah), ah->ah_macVersion, ah->ah_macRev, ath_hal_rf_name(ah), ah->ah_phyRev >> 4, ah->ah_phyRev & 0xf); device_printf(sc->sc_dev, "2GHz radio: 0x%.4x; 5GHz radio: 0x%.4x\n", ah->ah_analog2GhzRev, ah->ah_analog5GhzRev); if (bootverbose) { int i; for (i = 0; i <= WME_AC_VO; i++) { struct ath_txq *txq = sc->sc_ac2q[i]; device_printf(sc->sc_dev, "Use hw queue %u for %s traffic\n", txq->axq_qnum, ieee80211_wme_acnames[i]); } device_printf(sc->sc_dev, "Use hw queue %u for CAB traffic\n", sc->sc_cabq->axq_qnum); device_printf(sc->sc_dev, "Use hw queue %u for beacons\n", sc->sc_bhalq); } if (ath_rxbuf != ATH_RXBUF) device_printf(sc->sc_dev, "using %u rx buffers\n", ath_rxbuf); if (ath_txbuf != ATH_TXBUF) device_printf(sc->sc_dev, "using %u tx buffers\n", ath_txbuf); if (sc->sc_mcastkey && bootverbose) device_printf(sc->sc_dev, "using multicast key search\n"); } static void ath_dfs_tasklet(void *p, int npending) { struct ath_softc *sc = (struct ath_softc *) p; struct ieee80211com *ic = &sc->sc_ic; /* * If previous processing has found a radar event, * signal this to the net80211 layer to begin DFS * processing. */ if (ath_dfs_process_radar_event(sc, sc->sc_curchan)) { /* DFS event found, initiate channel change */ /* * XXX TODO: immediately disable ACK processing * on the current channel. This would be done * by setting AR_DIAG_ACK_DIS (AR5212; may be * different for others) until we are out of * CAC. */ /* * XXX doesn't currently tell us whether the event * XXX was found in the primary or extension * XXX channel! */ IEEE80211_LOCK(ic); ieee80211_dfs_notify_radar(ic, sc->sc_curchan); IEEE80211_UNLOCK(ic); } } /* * Enable/disable power save. This must be called with * no TX driver locks currently held, so it should only * be called from the RX path (which doesn't hold any * TX driver locks.) */ static void ath_node_powersave(struct ieee80211_node *ni, int enable) { #ifdef ATH_SW_PSQ struct ath_node *an = ATH_NODE(ni); struct ieee80211com *ic = ni->ni_ic; struct ath_softc *sc = ic->ic_softc; struct ath_vap *avp = ATH_VAP(ni->ni_vap); /* XXX and no TXQ locks should be held here */ DPRINTF(sc, ATH_DEBUG_NODE_PWRSAVE, "%s: %6D: enable=%d\n", __func__, ni->ni_macaddr, ":", !! enable); /* Suspend or resume software queue handling */ if (enable) ath_tx_node_sleep(sc, an); else ath_tx_node_wakeup(sc, an); /* Update net80211 state */ avp->av_node_ps(ni, enable); #else struct ath_vap *avp = ATH_VAP(ni->ni_vap); /* Update net80211 state */ avp->av_node_ps(ni, enable); #endif/* ATH_SW_PSQ */ } /* * Notification from net80211 that the powersave queue state has * changed. * * Since the software queue also may have some frames: * * + if the node software queue has frames and the TID state * is 0, we set the TIM; * + if the node and the stack are both empty, we clear the TIM bit. * + If the stack tries to set the bit, always set it. * + If the stack tries to clear the bit, only clear it if the * software queue in question is also cleared. * * TODO: this is called during node teardown; so let's ensure this * is all correctly handled and that the TIM bit is cleared. * It may be that the node flush is called _AFTER_ the net80211 * stack clears the TIM. * * Here is the racy part. Since it's possible >1 concurrent, * overlapping TXes will appear complete with a TX completion in * another thread, it's possible that the concurrent TIM calls will * clash. We can't hold the node lock here because setting the * TIM grabs the net80211 comlock and this may cause a LOR. * The solution is either to totally serialise _everything_ at * this point (ie, all TX, completion and any reset/flush go into * one taskqueue) or a new "ath TIM lock" needs to be created that * just wraps the driver state change and this call to avp->av_set_tim(). * * The same race exists in the net80211 power save queue handling * as well. Since multiple transmitting threads may queue frames * into the driver, as well as ps-poll and the driver transmitting * frames (and thus clearing the psq), it's quite possible that * a packet entering the PSQ and a ps-poll being handled will * race, causing the TIM to be cleared and not re-set. */ static int ath_node_set_tim(struct ieee80211_node *ni, int enable) { #ifdef ATH_SW_PSQ struct ieee80211com *ic = ni->ni_ic; struct ath_softc *sc = ic->ic_softc; struct ath_node *an = ATH_NODE(ni); struct ath_vap *avp = ATH_VAP(ni->ni_vap); int changed = 0; ATH_TX_LOCK(sc); an->an_stack_psq = enable; /* * This will get called for all operating modes, * even if avp->av_set_tim is unset. * It's currently set for hostap/ibss modes; but * the same infrastructure is used for both STA * and AP/IBSS node power save. */ if (avp->av_set_tim == NULL) { ATH_TX_UNLOCK(sc); return (0); } /* * If setting the bit, always set it here. * If clearing the bit, only clear it if the * software queue is also empty. * * If the node has left power save, just clear the TIM * bit regardless of the state of the power save queue. * * XXX TODO: although atomics are used, it's quite possible * that a race will occur between this and setting/clearing * in another thread. TX completion will occur always in * one thread, however setting/clearing the TIM bit can come * from a variety of different process contexts! */ if (enable && an->an_tim_set == 1) { DPRINTF(sc, ATH_DEBUG_NODE_PWRSAVE, "%s: %6D: enable=%d, tim_set=1, ignoring\n", __func__, ni->ni_macaddr, ":", enable); ATH_TX_UNLOCK(sc); } else if (enable) { DPRINTF(sc, ATH_DEBUG_NODE_PWRSAVE, "%s: %6D: enable=%d, enabling TIM\n", __func__, ni->ni_macaddr, ":", enable); an->an_tim_set = 1; ATH_TX_UNLOCK(sc); changed = avp->av_set_tim(ni, enable); } else if (an->an_swq_depth == 0) { /* disable */ DPRINTF(sc, ATH_DEBUG_NODE_PWRSAVE, "%s: %6D: enable=%d, an_swq_depth == 0, disabling\n", __func__, ni->ni_macaddr, ":", enable); an->an_tim_set = 0; ATH_TX_UNLOCK(sc); changed = avp->av_set_tim(ni, enable); } else if (! an->an_is_powersave) { /* * disable regardless; the node isn't in powersave now */ DPRINTF(sc, ATH_DEBUG_NODE_PWRSAVE, "%s: %6D: enable=%d, an_pwrsave=0, disabling\n", __func__, ni->ni_macaddr, ":", enable); an->an_tim_set = 0; ATH_TX_UNLOCK(sc); changed = avp->av_set_tim(ni, enable); } else { /* * psq disable, node is currently in powersave, node * software queue isn't empty, so don't clear the TIM bit * for now. */ ATH_TX_UNLOCK(sc); DPRINTF(sc, ATH_DEBUG_NODE_PWRSAVE, "%s: %6D: enable=%d, an_swq_depth > 0, ignoring\n", __func__, ni->ni_macaddr, ":", enable); changed = 0; } return (changed); #else struct ath_vap *avp = ATH_VAP(ni->ni_vap); /* * Some operating modes don't set av_set_tim(), so don't * update it here. */ if (avp->av_set_tim == NULL) return (0); return (avp->av_set_tim(ni, enable)); #endif /* ATH_SW_PSQ */ } /* * Set or update the TIM from the software queue. * * Check the software queue depth before attempting to do lock * anything; that avoids trying to obtain the lock. Then, * re-check afterwards to ensure nothing has changed in the * meantime. * * set: This is designed to be called from the TX path, after * a frame has been queued; to see if the swq > 0. * * clear: This is designed to be called from the buffer completion point * (right now it's ath_tx_default_comp()) where the state of * a software queue has changed. * * It makes sense to place it at buffer free / completion rather * than after each software queue operation, as there's no real * point in churning the TIM bit as the last frames in the software * queue are transmitted. If they fail and we retry them, we'd * just be setting the TIM bit again anyway. */ void ath_tx_update_tim(struct ath_softc *sc, struct ieee80211_node *ni, int enable) { #ifdef ATH_SW_PSQ struct ath_node *an; struct ath_vap *avp; /* Don't do this for broadcast/etc frames */ if (ni == NULL) return; an = ATH_NODE(ni); avp = ATH_VAP(ni->ni_vap); /* * And for operating modes without the TIM handler set, let's * just skip those. */ if (avp->av_set_tim == NULL) return; ATH_TX_LOCK_ASSERT(sc); if (enable) { if (an->an_is_powersave && an->an_tim_set == 0 && an->an_swq_depth != 0) { DPRINTF(sc, ATH_DEBUG_NODE_PWRSAVE, "%s: %6D: swq_depth>0, tim_set=0, set!\n", __func__, ni->ni_macaddr, ":"); an->an_tim_set = 1; (void) avp->av_set_tim(ni, 1); } } else { /* * Don't bother grabbing the lock unless the queue is empty. */ if (an->an_swq_depth != 0) return; if (an->an_is_powersave && an->an_stack_psq == 0 && an->an_tim_set == 1 && an->an_swq_depth == 0) { DPRINTF(sc, ATH_DEBUG_NODE_PWRSAVE, "%s: %6D: swq_depth=0, tim_set=1, psq_set=0," " clear!\n", __func__, ni->ni_macaddr, ":"); an->an_tim_set = 0; (void) avp->av_set_tim(ni, 0); } } #else return; #endif /* ATH_SW_PSQ */ } /* * Received a ps-poll frame from net80211. * * Here we get a chance to serve out a software-queued frame ourselves * before we punt it to net80211 to transmit us one itself - either * because there's traffic in the net80211 psq, or a NULL frame to * indicate there's nothing else. */ static void ath_node_recv_pspoll(struct ieee80211_node *ni, struct mbuf *m) { #ifdef ATH_SW_PSQ struct ath_node *an; struct ath_vap *avp; struct ieee80211com *ic = ni->ni_ic; struct ath_softc *sc = ic->ic_softc; int tid; /* Just paranoia */ if (ni == NULL) return; /* * Unassociated (temporary node) station. */ if (ni->ni_associd == 0) return; /* * We do have an active node, so let's begin looking into it. */ an = ATH_NODE(ni); avp = ATH_VAP(ni->ni_vap); /* * For now, we just call the original ps-poll method. * Once we're ready to flip this on: * * + Set leak to 1, as no matter what we're going to have * to send a frame; * + Check the software queue and if there's something in it, * schedule the highest TID thas has traffic from this node. * Then make sure we schedule the software scheduler to * run so it picks up said frame. * * That way whatever happens, we'll at least send _a_ frame * to the given node. * * Again, yes, it's crappy QoS if the node has multiple * TIDs worth of traffic - but let's get it working first * before we optimise it. * * Also yes, there's definitely latency here - we're not * direct dispatching to the hardware in this path (and * we're likely being called from the packet receive path, * so going back into TX may be a little hairy!) but again * I'd like to get this working first before optimising * turn-around time. */ ATH_TX_LOCK(sc); /* * Legacy - we're called and the node isn't asleep. * Immediately punt. */ if (! an->an_is_powersave) { DPRINTF(sc, ATH_DEBUG_NODE_PWRSAVE, "%s: %6D: not in powersave?\n", __func__, ni->ni_macaddr, ":"); ATH_TX_UNLOCK(sc); avp->av_recv_pspoll(ni, m); return; } /* * We're in powersave. * * Leak a frame. */ an->an_leak_count = 1; /* * Now, if there's no frames in the node, just punt to * recv_pspoll. * * Don't bother checking if the TIM bit is set, we really * only care if there are any frames here! */ if (an->an_swq_depth == 0) { ATH_TX_UNLOCK(sc); DPRINTF(sc, ATH_DEBUG_NODE_PWRSAVE, "%s: %6D: SWQ empty; punting to net80211\n", __func__, ni->ni_macaddr, ":"); avp->av_recv_pspoll(ni, m); return; } /* * Ok, let's schedule the highest TID that has traffic * and then schedule something. */ for (tid = IEEE80211_TID_SIZE - 1; tid >= 0; tid--) { struct ath_tid *atid = &an->an_tid[tid]; /* * No frames? Skip. */ if (atid->axq_depth == 0) continue; ath_tx_tid_sched(sc, atid); /* * XXX we could do a direct call to the TXQ * scheduler code here to optimise latency * at the expense of a REALLY deep callstack. */ ATH_TX_UNLOCK(sc); taskqueue_enqueue(sc->sc_tq, &sc->sc_txqtask); DPRINTF(sc, ATH_DEBUG_NODE_PWRSAVE, "%s: %6D: leaking frame to TID %d\n", __func__, ni->ni_macaddr, ":", tid); return; } ATH_TX_UNLOCK(sc); /* * XXX nothing in the TIDs at this point? Eek. */ DPRINTF(sc, ATH_DEBUG_NODE_PWRSAVE, "%s: %6D: TIDs empty, but ath_node showed traffic?!\n", __func__, ni->ni_macaddr, ":"); avp->av_recv_pspoll(ni, m); #else avp->av_recv_pspoll(ni, m); #endif /* ATH_SW_PSQ */ } MODULE_VERSION(ath_main, 1); MODULE_DEPEND(ath_main, wlan, 1, 1, 1); /* 802.11 media layer */ MODULE_DEPEND(ath_main, ath_rate, 1, 1, 1); MODULE_DEPEND(ath_main, ath_dfs, 1, 1, 1); MODULE_DEPEND(ath_main, ath_hal, 1, 1, 1); #if defined(IEEE80211_ALQ) || defined(AH_DEBUG_ALQ) || defined(ATH_DEBUG_ALQ) MODULE_DEPEND(ath_main, alq, 1, 1, 1); #endif Index: head/sys/dev/bwi/if_bwi.c =================================================================== --- head/sys/dev/bwi/if_bwi.c (revision 365418) +++ head/sys/dev/bwi/if_bwi.c (revision 365419) @@ -1,4013 +1,4004 @@ /*- * SPDX-License-Identifier: BSD-3-Clause * * Copyright (c) 2007 The DragonFly Project. All rights reserved. * * This code is derived from software contributed to The DragonFly Project * by Sepherosa Ziehau * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in * the documentation and/or other materials provided with the * distribution. * 3. Neither the name of The DragonFly Project nor the names of its * contributors may be used to endorse or promote products derived * from this software without specific, prior written permission. * * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS * FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE * COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, * INCIDENTAL, SPECIAL, EXEMPLARY OR CONSEQUENTIAL DAMAGES (INCLUDING, * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT * OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. * * $DragonFly: src/sys/dev/netif/bwi/if_bwi.c,v 1.19 2008/02/15 11:15:38 sephe Exp $ */ #include __FBSDID("$FreeBSD$"); #include "opt_inet.h" #include "opt_bwi.h" #include "opt_wlan.h" #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #ifdef INET #include #include #endif #include #include #include #include #include #include #include #include struct bwi_clock_freq { u_int clkfreq_min; u_int clkfreq_max; }; struct bwi_myaddr_bssid { uint8_t myaddr[IEEE80211_ADDR_LEN]; uint8_t bssid[IEEE80211_ADDR_LEN]; } __packed; static struct ieee80211vap *bwi_vap_create(struct ieee80211com *, const char [IFNAMSIZ], int, enum ieee80211_opmode, int, const uint8_t [IEEE80211_ADDR_LEN], const uint8_t [IEEE80211_ADDR_LEN]); static void bwi_vap_delete(struct ieee80211vap *); static void bwi_init(struct bwi_softc *); static void bwi_parent(struct ieee80211com *); static int bwi_transmit(struct ieee80211com *, struct mbuf *); static void bwi_start_locked(struct bwi_softc *); static int bwi_raw_xmit(struct ieee80211_node *, struct mbuf *, const struct ieee80211_bpf_params *); static void bwi_watchdog(void *); static void bwi_scan_start(struct ieee80211com *); static void bwi_getradiocaps(struct ieee80211com *, int, int *, struct ieee80211_channel[]); static void bwi_set_channel(struct ieee80211com *); static void bwi_scan_end(struct ieee80211com *); static int bwi_newstate(struct ieee80211vap *, enum ieee80211_state, int); static void bwi_updateslot(struct ieee80211com *); -static int bwi_media_change(struct ifnet *); static void bwi_calibrate(void *); static int bwi_calc_rssi(struct bwi_softc *, const struct bwi_rxbuf_hdr *); static int bwi_calc_noise(struct bwi_softc *); static __inline uint8_t bwi_plcp2rate(uint32_t, enum ieee80211_phytype); static void bwi_rx_radiotap(struct bwi_softc *, struct mbuf *, struct bwi_rxbuf_hdr *, const void *, int, int, int); static void bwi_restart(void *, int); static void bwi_init_statechg(struct bwi_softc *, int); static void bwi_stop(struct bwi_softc *, int); static void bwi_stop_locked(struct bwi_softc *, int); static int bwi_newbuf(struct bwi_softc *, int, int); static int bwi_encap(struct bwi_softc *, int, struct mbuf *, struct ieee80211_node *); static int bwi_encap_raw(struct bwi_softc *, int, struct mbuf *, struct ieee80211_node *, const struct ieee80211_bpf_params *); static void bwi_init_rxdesc_ring32(struct bwi_softc *, uint32_t, bus_addr_t, int, int); static void bwi_reset_rx_ring32(struct bwi_softc *, uint32_t); static int bwi_init_tx_ring32(struct bwi_softc *, int); static int bwi_init_rx_ring32(struct bwi_softc *); static int bwi_init_txstats32(struct bwi_softc *); static void bwi_free_tx_ring32(struct bwi_softc *, int); static void bwi_free_rx_ring32(struct bwi_softc *); static void bwi_free_txstats32(struct bwi_softc *); static void bwi_setup_rx_desc32(struct bwi_softc *, int, bus_addr_t, int); static void bwi_setup_tx_desc32(struct bwi_softc *, struct bwi_ring_data *, int, bus_addr_t, int); static int bwi_rxeof32(struct bwi_softc *); static void bwi_start_tx32(struct bwi_softc *, uint32_t, int); static void bwi_txeof_status32(struct bwi_softc *); static int bwi_init_tx_ring64(struct bwi_softc *, int); static int bwi_init_rx_ring64(struct bwi_softc *); static int bwi_init_txstats64(struct bwi_softc *); static void bwi_free_tx_ring64(struct bwi_softc *, int); static void bwi_free_rx_ring64(struct bwi_softc *); static void bwi_free_txstats64(struct bwi_softc *); static void bwi_setup_rx_desc64(struct bwi_softc *, int, bus_addr_t, int); static void bwi_setup_tx_desc64(struct bwi_softc *, struct bwi_ring_data *, int, bus_addr_t, int); static int bwi_rxeof64(struct bwi_softc *); static void bwi_start_tx64(struct bwi_softc *, uint32_t, int); static void bwi_txeof_status64(struct bwi_softc *); static int bwi_rxeof(struct bwi_softc *, int); static void _bwi_txeof(struct bwi_softc *, uint16_t, int, int); static void bwi_txeof(struct bwi_softc *); static void bwi_txeof_status(struct bwi_softc *, int); static void bwi_enable_intrs(struct bwi_softc *, uint32_t); static void bwi_disable_intrs(struct bwi_softc *, uint32_t); static int bwi_dma_alloc(struct bwi_softc *); static void bwi_dma_free(struct bwi_softc *); static int bwi_dma_ring_alloc(struct bwi_softc *, bus_dma_tag_t, struct bwi_ring_data *, bus_size_t, uint32_t); static int bwi_dma_mbuf_create(struct bwi_softc *); static void bwi_dma_mbuf_destroy(struct bwi_softc *, int, int); static int bwi_dma_txstats_alloc(struct bwi_softc *, uint32_t, bus_size_t); static void bwi_dma_txstats_free(struct bwi_softc *); static void bwi_dma_ring_addr(void *, bus_dma_segment_t *, int, int); static void bwi_dma_buf_addr(void *, bus_dma_segment_t *, int, bus_size_t, int); static void bwi_power_on(struct bwi_softc *, int); static int bwi_power_off(struct bwi_softc *, int); static int bwi_set_clock_mode(struct bwi_softc *, enum bwi_clock_mode); static int bwi_set_clock_delay(struct bwi_softc *); static void bwi_get_clock_freq(struct bwi_softc *, struct bwi_clock_freq *); static int bwi_get_pwron_delay(struct bwi_softc *sc); static void bwi_set_addr_filter(struct bwi_softc *, uint16_t, const uint8_t *); static void bwi_set_bssid(struct bwi_softc *, const uint8_t *); static void bwi_get_card_flags(struct bwi_softc *); static void bwi_get_eaddr(struct bwi_softc *, uint16_t, uint8_t *); static int bwi_bus_attach(struct bwi_softc *); static int bwi_bbp_attach(struct bwi_softc *); static int bwi_bbp_power_on(struct bwi_softc *, enum bwi_clock_mode); static void bwi_bbp_power_off(struct bwi_softc *); static const char *bwi_regwin_name(const struct bwi_regwin *); static uint32_t bwi_regwin_disable_bits(struct bwi_softc *); static void bwi_regwin_info(struct bwi_softc *, uint16_t *, uint8_t *); static int bwi_regwin_select(struct bwi_softc *, int); static void bwi_led_attach(struct bwi_softc *); static void bwi_led_newstate(struct bwi_softc *, enum ieee80211_state); static void bwi_led_event(struct bwi_softc *, int); static void bwi_led_blink_start(struct bwi_softc *, int, int); static void bwi_led_blink_next(void *); static void bwi_led_blink_end(void *); static const struct { uint16_t did_min; uint16_t did_max; uint16_t bbp_id; } bwi_bbpid_map[] = { { 0x4301, 0x4301, 0x4301 }, { 0x4305, 0x4307, 0x4307 }, { 0x4402, 0x4403, 0x4402 }, { 0x4610, 0x4615, 0x4610 }, { 0x4710, 0x4715, 0x4710 }, { 0x4720, 0x4725, 0x4309 } }; static const struct { uint16_t bbp_id; int nregwin; } bwi_regwin_count[] = { { 0x4301, 5 }, { 0x4306, 6 }, { 0x4307, 5 }, { 0x4310, 8 }, { 0x4401, 3 }, { 0x4402, 3 }, { 0x4610, 9 }, { 0x4704, 9 }, { 0x4710, 9 }, { 0x5365, 7 } }; #define CLKSRC(src) \ [BWI_CLKSRC_ ## src] = { \ .freq_min = BWI_CLKSRC_ ##src## _FMIN, \ .freq_max = BWI_CLKSRC_ ##src## _FMAX \ } static const struct { u_int freq_min; u_int freq_max; } bwi_clkfreq[BWI_CLKSRC_MAX] = { CLKSRC(LP_OSC), CLKSRC(CS_OSC), CLKSRC(PCI) }; #undef CLKSRC #define VENDOR_LED_ACT(vendor) \ { \ .vid = PCI_VENDOR_##vendor, \ .led_act = { BWI_VENDOR_LED_ACT_##vendor } \ } static const struct { #define PCI_VENDOR_COMPAQ 0x0e11 #define PCI_VENDOR_LINKSYS 0x1737 uint16_t vid; uint8_t led_act[BWI_LED_MAX]; } bwi_vendor_led_act[] = { VENDOR_LED_ACT(COMPAQ), VENDOR_LED_ACT(LINKSYS) #undef PCI_VENDOR_LINKSYS #undef PCI_VENDOR_COMPAQ }; static const uint8_t bwi_default_led_act[BWI_LED_MAX] = { BWI_VENDOR_LED_ACT_DEFAULT }; #undef VENDOR_LED_ACT static const struct { int on_dur; int off_dur; } bwi_led_duration[109] = { [0] = { 400, 100 }, [2] = { 150, 75 }, [4] = { 90, 45 }, [11] = { 66, 34 }, [12] = { 53, 26 }, [18] = { 42, 21 }, [22] = { 35, 17 }, [24] = { 32, 16 }, [36] = { 21, 10 }, [48] = { 16, 8 }, [72] = { 11, 5 }, [96] = { 9, 4 }, [108] = { 7, 3 } }; #ifdef BWI_DEBUG #ifdef BWI_DEBUG_VERBOSE static uint32_t bwi_debug = BWI_DBG_ATTACH | BWI_DBG_INIT | BWI_DBG_TXPOWER; #else static uint32_t bwi_debug; #endif TUNABLE_INT("hw.bwi.debug", (int *)&bwi_debug); #endif /* BWI_DEBUG */ static const uint8_t bwi_zero_addr[IEEE80211_ADDR_LEN]; uint16_t bwi_read_sprom(struct bwi_softc *sc, uint16_t ofs) { return CSR_READ_2(sc, ofs + BWI_SPROM_START); } static __inline void bwi_setup_desc32(struct bwi_softc *sc, struct bwi_desc32 *desc_array, int ndesc, int desc_idx, bus_addr_t paddr, int buf_len, int tx) { struct bwi_desc32 *desc = &desc_array[desc_idx]; uint32_t ctrl, addr, addr_hi, addr_lo; addr_lo = __SHIFTOUT(paddr, BWI_DESC32_A_ADDR_MASK); addr_hi = __SHIFTOUT(paddr, BWI_DESC32_A_FUNC_MASK); addr = __SHIFTIN(addr_lo, BWI_DESC32_A_ADDR_MASK) | __SHIFTIN(BWI_DESC32_A_FUNC_TXRX, BWI_DESC32_A_FUNC_MASK); ctrl = __SHIFTIN(buf_len, BWI_DESC32_C_BUFLEN_MASK) | __SHIFTIN(addr_hi, BWI_DESC32_C_ADDRHI_MASK); if (desc_idx == ndesc - 1) ctrl |= BWI_DESC32_C_EOR; if (tx) { /* XXX */ ctrl |= BWI_DESC32_C_FRAME_START | BWI_DESC32_C_FRAME_END | BWI_DESC32_C_INTR; } desc->addr = htole32(addr); desc->ctrl = htole32(ctrl); } int bwi_attach(struct bwi_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; device_t dev = sc->sc_dev; struct bwi_mac *mac; struct bwi_phy *phy; int i, error; BWI_LOCK_INIT(sc); /* * Initialize taskq and various tasks */ sc->sc_tq = taskqueue_create("bwi_taskq", M_NOWAIT | M_ZERO, taskqueue_thread_enqueue, &sc->sc_tq); taskqueue_start_threads(&sc->sc_tq, 1, PI_NET, "%s taskq", device_get_nameunit(dev)); TASK_INIT(&sc->sc_restart_task, 0, bwi_restart, sc); callout_init_mtx(&sc->sc_calib_ch, &sc->sc_mtx, 0); mbufq_init(&sc->sc_snd, ifqmaxlen); /* * Initialize sysctl variables */ sc->sc_fw_version = BWI_FW_VERSION3; sc->sc_led_idle = (2350 * hz) / 1000; sc->sc_led_ticks = ticks - sc->sc_led_idle; sc->sc_led_blink = 1; sc->sc_txpwr_calib = 1; #ifdef BWI_DEBUG sc->sc_debug = bwi_debug; #endif bwi_power_on(sc, 1); error = bwi_bbp_attach(sc); if (error) goto fail; error = bwi_bbp_power_on(sc, BWI_CLOCK_MODE_FAST); if (error) goto fail; if (BWI_REGWIN_EXIST(&sc->sc_com_regwin)) { error = bwi_set_clock_delay(sc); if (error) goto fail; error = bwi_set_clock_mode(sc, BWI_CLOCK_MODE_FAST); if (error) goto fail; error = bwi_get_pwron_delay(sc); if (error) goto fail; } error = bwi_bus_attach(sc); if (error) goto fail; bwi_get_card_flags(sc); bwi_led_attach(sc); for (i = 0; i < sc->sc_nmac; ++i) { struct bwi_regwin *old; mac = &sc->sc_mac[i]; error = bwi_regwin_switch(sc, &mac->mac_regwin, &old); if (error) goto fail; error = bwi_mac_lateattach(mac); if (error) goto fail; error = bwi_regwin_switch(sc, old, NULL); if (error) goto fail; } /* * XXX First MAC is known to exist * TODO2 */ mac = &sc->sc_mac[0]; phy = &mac->mac_phy; bwi_bbp_power_off(sc); error = bwi_dma_alloc(sc); if (error) goto fail; error = bwi_mac_fw_alloc(mac); if (error) goto fail; callout_init_mtx(&sc->sc_watchdog_timer, &sc->sc_mtx, 0); /* * Setup ratesets, phytype, channels and get MAC address */ if (phy->phy_mode == IEEE80211_MODE_11B || phy->phy_mode == IEEE80211_MODE_11G) { if (phy->phy_mode == IEEE80211_MODE_11B) { ic->ic_phytype = IEEE80211_T_DS; } else { ic->ic_phytype = IEEE80211_T_OFDM; } bwi_get_eaddr(sc, BWI_SPROM_11BG_EADDR, ic->ic_macaddr); if (IEEE80211_IS_MULTICAST(ic->ic_macaddr)) { bwi_get_eaddr(sc, BWI_SPROM_11A_EADDR, ic->ic_macaddr); if (IEEE80211_IS_MULTICAST(ic->ic_macaddr)) { device_printf(dev, "invalid MAC address: %6D\n", ic->ic_macaddr, ":"); } } } else if (phy->phy_mode == IEEE80211_MODE_11A) { /* TODO:11A */ error = ENXIO; goto fail; } else { panic("unknown phymode %d\n", phy->phy_mode); } /* Get locale */ sc->sc_locale = __SHIFTOUT(bwi_read_sprom(sc, BWI_SPROM_CARD_INFO), BWI_SPROM_CARD_INFO_LOCALE); DPRINTF(sc, BWI_DBG_ATTACH, "locale: %d\n", sc->sc_locale); /* XXX use locale */ ic->ic_softc = sc; bwi_getradiocaps(ic, IEEE80211_CHAN_MAX, &ic->ic_nchans, ic->ic_channels); ic->ic_name = device_get_nameunit(dev); ic->ic_caps = IEEE80211_C_STA | IEEE80211_C_SHSLOT | IEEE80211_C_SHPREAMBLE | IEEE80211_C_WPA | IEEE80211_C_BGSCAN | IEEE80211_C_MONITOR; ic->ic_opmode = IEEE80211_M_STA; ieee80211_ifattach(ic); ic->ic_headroom = sizeof(struct bwi_txbuf_hdr); /* override default methods */ ic->ic_vap_create = bwi_vap_create; ic->ic_vap_delete = bwi_vap_delete; ic->ic_raw_xmit = bwi_raw_xmit; ic->ic_updateslot = bwi_updateslot; ic->ic_scan_start = bwi_scan_start; ic->ic_scan_end = bwi_scan_end; ic->ic_getradiocaps = bwi_getradiocaps; ic->ic_set_channel = bwi_set_channel; ic->ic_transmit = bwi_transmit; ic->ic_parent = bwi_parent; sc->sc_rates = ieee80211_get_ratetable(ic->ic_curchan); ieee80211_radiotap_attach(ic, &sc->sc_tx_th.wt_ihdr, sizeof(sc->sc_tx_th), BWI_TX_RADIOTAP_PRESENT, &sc->sc_rx_th.wr_ihdr, sizeof(sc->sc_rx_th), BWI_RX_RADIOTAP_PRESENT); /* * Add sysctl nodes */ SYSCTL_ADD_INT(device_get_sysctl_ctx(dev), SYSCTL_CHILDREN(device_get_sysctl_tree(dev)), OID_AUTO, "fw_version", CTLFLAG_RD, &sc->sc_fw_version, 0, "Firmware version"); SYSCTL_ADD_INT(device_get_sysctl_ctx(dev), SYSCTL_CHILDREN(device_get_sysctl_tree(dev)), OID_AUTO, "led_idle", CTLFLAG_RW, &sc->sc_led_idle, 0, "# ticks before LED enters idle state"); SYSCTL_ADD_INT(device_get_sysctl_ctx(dev), SYSCTL_CHILDREN(device_get_sysctl_tree(dev)), OID_AUTO, "led_blink", CTLFLAG_RW, &sc->sc_led_blink, 0, "Allow LED to blink"); SYSCTL_ADD_INT(device_get_sysctl_ctx(dev), SYSCTL_CHILDREN(device_get_sysctl_tree(dev)), OID_AUTO, "txpwr_calib", CTLFLAG_RW, &sc->sc_txpwr_calib, 0, "Enable software TX power calibration"); #ifdef BWI_DEBUG SYSCTL_ADD_UINT(device_get_sysctl_ctx(dev), SYSCTL_CHILDREN(device_get_sysctl_tree(dev)), OID_AUTO, "debug", CTLFLAG_RW, &sc->sc_debug, 0, "Debug flags"); #endif if (bootverbose) ieee80211_announce(ic); return (0); fail: BWI_LOCK_DESTROY(sc); return (error); } int bwi_detach(struct bwi_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; int i; bwi_stop(sc, 1); callout_drain(&sc->sc_led_blink_ch); callout_drain(&sc->sc_calib_ch); callout_drain(&sc->sc_watchdog_timer); ieee80211_ifdetach(ic); for (i = 0; i < sc->sc_nmac; ++i) bwi_mac_detach(&sc->sc_mac[i]); bwi_dma_free(sc); taskqueue_free(sc->sc_tq); mbufq_drain(&sc->sc_snd); BWI_LOCK_DESTROY(sc); return (0); } static struct ieee80211vap * bwi_vap_create(struct ieee80211com *ic, const char name[IFNAMSIZ], int unit, enum ieee80211_opmode opmode, int flags, const uint8_t bssid[IEEE80211_ADDR_LEN], const uint8_t mac[IEEE80211_ADDR_LEN]) { struct bwi_vap *bvp; struct ieee80211vap *vap; if (!TAILQ_EMPTY(&ic->ic_vaps)) /* only one at a time */ return NULL; bvp = malloc(sizeof(struct bwi_vap), M_80211_VAP, M_WAITOK | M_ZERO); vap = &bvp->bv_vap; /* enable s/w bmiss handling for sta mode */ ieee80211_vap_setup(ic, vap, name, unit, opmode, flags | IEEE80211_CLONE_NOBEACONS, bssid); /* override default methods */ bvp->bv_newstate = vap->iv_newstate; vap->iv_newstate = bwi_newstate; #if 0 vap->iv_update_beacon = bwi_beacon_update; #endif ieee80211_ratectl_init(vap); /* complete setup */ - ieee80211_vap_attach(vap, bwi_media_change, ieee80211_media_status, - mac); + ieee80211_vap_attach(vap, ieee80211_media_change, + ieee80211_media_status, mac); ic->ic_opmode = opmode; return vap; } static void bwi_vap_delete(struct ieee80211vap *vap) { struct bwi_vap *bvp = BWI_VAP(vap); ieee80211_ratectl_deinit(vap); ieee80211_vap_detach(vap); free(bvp, M_80211_VAP); } void bwi_suspend(struct bwi_softc *sc) { bwi_stop(sc, 1); } void bwi_resume(struct bwi_softc *sc) { if (sc->sc_ic.ic_nrunning > 0) bwi_init(sc); } int bwi_shutdown(struct bwi_softc *sc) { bwi_stop(sc, 1); return 0; } static void bwi_power_on(struct bwi_softc *sc, int with_pll) { uint32_t gpio_in, gpio_out, gpio_en; uint16_t status; gpio_in = pci_read_config(sc->sc_dev, BWI_PCIR_GPIO_IN, 4); if (gpio_in & BWI_PCIM_GPIO_PWR_ON) goto back; gpio_out = pci_read_config(sc->sc_dev, BWI_PCIR_GPIO_OUT, 4); gpio_en = pci_read_config(sc->sc_dev, BWI_PCIR_GPIO_ENABLE, 4); gpio_out |= BWI_PCIM_GPIO_PWR_ON; gpio_en |= BWI_PCIM_GPIO_PWR_ON; if (with_pll) { /* Turn off PLL first */ gpio_out |= BWI_PCIM_GPIO_PLL_PWR_OFF; gpio_en |= BWI_PCIM_GPIO_PLL_PWR_OFF; } pci_write_config(sc->sc_dev, BWI_PCIR_GPIO_OUT, gpio_out, 4); pci_write_config(sc->sc_dev, BWI_PCIR_GPIO_ENABLE, gpio_en, 4); DELAY(1000); if (with_pll) { /* Turn on PLL */ gpio_out &= ~BWI_PCIM_GPIO_PLL_PWR_OFF; pci_write_config(sc->sc_dev, BWI_PCIR_GPIO_OUT, gpio_out, 4); DELAY(5000); } back: /* Clear "Signaled Target Abort" */ status = pci_read_config(sc->sc_dev, PCIR_STATUS, 2); status &= ~PCIM_STATUS_STABORT; pci_write_config(sc->sc_dev, PCIR_STATUS, status, 2); } static int bwi_power_off(struct bwi_softc *sc, int with_pll) { uint32_t gpio_out, gpio_en; pci_read_config(sc->sc_dev, BWI_PCIR_GPIO_IN, 4); /* dummy read */ gpio_out = pci_read_config(sc->sc_dev, BWI_PCIR_GPIO_OUT, 4); gpio_en = pci_read_config(sc->sc_dev, BWI_PCIR_GPIO_ENABLE, 4); gpio_out &= ~BWI_PCIM_GPIO_PWR_ON; gpio_en |= BWI_PCIM_GPIO_PWR_ON; if (with_pll) { gpio_out |= BWI_PCIM_GPIO_PLL_PWR_OFF; gpio_en |= BWI_PCIM_GPIO_PLL_PWR_OFF; } pci_write_config(sc->sc_dev, BWI_PCIR_GPIO_OUT, gpio_out, 4); pci_write_config(sc->sc_dev, BWI_PCIR_GPIO_ENABLE, gpio_en, 4); return 0; } int bwi_regwin_switch(struct bwi_softc *sc, struct bwi_regwin *rw, struct bwi_regwin **old_rw) { int error; if (old_rw != NULL) *old_rw = NULL; if (!BWI_REGWIN_EXIST(rw)) return EINVAL; if (sc->sc_cur_regwin != rw) { error = bwi_regwin_select(sc, rw->rw_id); if (error) { device_printf(sc->sc_dev, "can't select regwin %d\n", rw->rw_id); return error; } } if (old_rw != NULL) *old_rw = sc->sc_cur_regwin; sc->sc_cur_regwin = rw; return 0; } static int bwi_regwin_select(struct bwi_softc *sc, int id) { uint32_t win = BWI_PCIM_REGWIN(id); int i; #define RETRY_MAX 50 for (i = 0; i < RETRY_MAX; ++i) { pci_write_config(sc->sc_dev, BWI_PCIR_SEL_REGWIN, win, 4); if (pci_read_config(sc->sc_dev, BWI_PCIR_SEL_REGWIN, 4) == win) return 0; DELAY(10); } #undef RETRY_MAX return ENXIO; } static void bwi_regwin_info(struct bwi_softc *sc, uint16_t *type, uint8_t *rev) { uint32_t val; val = CSR_READ_4(sc, BWI_ID_HI); *type = BWI_ID_HI_REGWIN_TYPE(val); *rev = BWI_ID_HI_REGWIN_REV(val); DPRINTF(sc, BWI_DBG_ATTACH, "regwin: type 0x%03x, rev %d, " "vendor 0x%04x\n", *type, *rev, __SHIFTOUT(val, BWI_ID_HI_REGWIN_VENDOR_MASK)); } static int bwi_bbp_attach(struct bwi_softc *sc) { uint16_t bbp_id, rw_type; uint8_t rw_rev; uint32_t info; int error, nregwin, i; /* * Get 0th regwin information * NOTE: 0th regwin should exist */ error = bwi_regwin_select(sc, 0); if (error) { device_printf(sc->sc_dev, "can't select regwin 0\n"); return error; } bwi_regwin_info(sc, &rw_type, &rw_rev); /* * Find out BBP id */ bbp_id = 0; info = 0; if (rw_type == BWI_REGWIN_T_COM) { info = CSR_READ_4(sc, BWI_INFO); bbp_id = __SHIFTOUT(info, BWI_INFO_BBPID_MASK); BWI_CREATE_REGWIN(&sc->sc_com_regwin, 0, rw_type, rw_rev); sc->sc_cap = CSR_READ_4(sc, BWI_CAPABILITY); } else { for (i = 0; i < nitems(bwi_bbpid_map); ++i) { if (sc->sc_pci_did >= bwi_bbpid_map[i].did_min && sc->sc_pci_did <= bwi_bbpid_map[i].did_max) { bbp_id = bwi_bbpid_map[i].bbp_id; break; } } if (bbp_id == 0) { device_printf(sc->sc_dev, "no BBP id for device id " "0x%04x\n", sc->sc_pci_did); return ENXIO; } info = __SHIFTIN(sc->sc_pci_revid, BWI_INFO_BBPREV_MASK) | __SHIFTIN(0, BWI_INFO_BBPPKG_MASK); } /* * Find out number of regwins */ nregwin = 0; if (rw_type == BWI_REGWIN_T_COM && rw_rev >= 4) { nregwin = __SHIFTOUT(info, BWI_INFO_NREGWIN_MASK); } else { for (i = 0; i < nitems(bwi_regwin_count); ++i) { if (bwi_regwin_count[i].bbp_id == bbp_id) { nregwin = bwi_regwin_count[i].nregwin; break; } } if (nregwin == 0) { device_printf(sc->sc_dev, "no number of win for " "BBP id 0x%04x\n", bbp_id); return ENXIO; } } /* Record BBP id/rev for later using */ sc->sc_bbp_id = bbp_id; sc->sc_bbp_rev = __SHIFTOUT(info, BWI_INFO_BBPREV_MASK); sc->sc_bbp_pkg = __SHIFTOUT(info, BWI_INFO_BBPPKG_MASK); device_printf(sc->sc_dev, "BBP: id 0x%04x, rev 0x%x, pkg %d\n", sc->sc_bbp_id, sc->sc_bbp_rev, sc->sc_bbp_pkg); DPRINTF(sc, BWI_DBG_ATTACH, "nregwin %d, cap 0x%08x\n", nregwin, sc->sc_cap); /* * Create rest of the regwins */ /* Don't re-create common regwin, if it is already created */ i = BWI_REGWIN_EXIST(&sc->sc_com_regwin) ? 1 : 0; for (; i < nregwin; ++i) { /* * Get regwin information */ error = bwi_regwin_select(sc, i); if (error) { device_printf(sc->sc_dev, "can't select regwin %d\n", i); return error; } bwi_regwin_info(sc, &rw_type, &rw_rev); /* * Try attach: * 1) Bus (PCI/PCIE) regwin * 2) MAC regwin * Ignore rest types of regwin */ if (rw_type == BWI_REGWIN_T_BUSPCI || rw_type == BWI_REGWIN_T_BUSPCIE) { if (BWI_REGWIN_EXIST(&sc->sc_bus_regwin)) { device_printf(sc->sc_dev, "bus regwin already exists\n"); } else { BWI_CREATE_REGWIN(&sc->sc_bus_regwin, i, rw_type, rw_rev); } } else if (rw_type == BWI_REGWIN_T_MAC) { /* XXX ignore return value */ bwi_mac_attach(sc, i, rw_rev); } } /* At least one MAC shold exist */ if (!BWI_REGWIN_EXIST(&sc->sc_mac[0].mac_regwin)) { device_printf(sc->sc_dev, "no MAC was found\n"); return ENXIO; } KASSERT(sc->sc_nmac > 0, ("no mac's")); /* Bus regwin must exist */ if (!BWI_REGWIN_EXIST(&sc->sc_bus_regwin)) { device_printf(sc->sc_dev, "no bus regwin was found\n"); return ENXIO; } /* Start with first MAC */ error = bwi_regwin_switch(sc, &sc->sc_mac[0].mac_regwin, NULL); if (error) return error; return 0; } int bwi_bus_init(struct bwi_softc *sc, struct bwi_mac *mac) { struct bwi_regwin *old, *bus; uint32_t val; int error; bus = &sc->sc_bus_regwin; KASSERT(sc->sc_cur_regwin == &mac->mac_regwin, ("not cur regwin")); /* * Tell bus to generate requested interrupts */ if (bus->rw_rev < 6 && bus->rw_type == BWI_REGWIN_T_BUSPCI) { /* * NOTE: Read BWI_FLAGS from MAC regwin */ val = CSR_READ_4(sc, BWI_FLAGS); error = bwi_regwin_switch(sc, bus, &old); if (error) return error; CSR_SETBITS_4(sc, BWI_INTRVEC, (val & BWI_FLAGS_INTR_MASK)); } else { uint32_t mac_mask; mac_mask = 1 << mac->mac_id; error = bwi_regwin_switch(sc, bus, &old); if (error) return error; val = pci_read_config(sc->sc_dev, BWI_PCIR_INTCTL, 4); val |= mac_mask << 8; pci_write_config(sc->sc_dev, BWI_PCIR_INTCTL, val, 4); } if (sc->sc_flags & BWI_F_BUS_INITED) goto back; if (bus->rw_type == BWI_REGWIN_T_BUSPCI) { /* * Enable prefetch and burst */ CSR_SETBITS_4(sc, BWI_BUS_CONFIG, BWI_BUS_CONFIG_PREFETCH | BWI_BUS_CONFIG_BURST); if (bus->rw_rev < 5) { struct bwi_regwin *com = &sc->sc_com_regwin; /* * Configure timeouts for bus operation */ /* * Set service timeout and request timeout */ CSR_SETBITS_4(sc, BWI_CONF_LO, __SHIFTIN(BWI_CONF_LO_SERVTO, BWI_CONF_LO_SERVTO_MASK) | __SHIFTIN(BWI_CONF_LO_REQTO, BWI_CONF_LO_REQTO_MASK)); /* * If there is common regwin, we switch to that regwin * and switch back to bus regwin once we have done. */ if (BWI_REGWIN_EXIST(com)) { error = bwi_regwin_switch(sc, com, NULL); if (error) return error; } /* Let bus know what we have changed */ CSR_WRITE_4(sc, BWI_BUS_ADDR, BWI_BUS_ADDR_MAGIC); CSR_READ_4(sc, BWI_BUS_ADDR); /* Flush */ CSR_WRITE_4(sc, BWI_BUS_DATA, 0); CSR_READ_4(sc, BWI_BUS_DATA); /* Flush */ if (BWI_REGWIN_EXIST(com)) { error = bwi_regwin_switch(sc, bus, NULL); if (error) return error; } } else if (bus->rw_rev >= 11) { /* * Enable memory read multiple */ CSR_SETBITS_4(sc, BWI_BUS_CONFIG, BWI_BUS_CONFIG_MRM); } } else { /* TODO:PCIE */ } sc->sc_flags |= BWI_F_BUS_INITED; back: return bwi_regwin_switch(sc, old, NULL); } static void bwi_get_card_flags(struct bwi_softc *sc) { #define PCI_VENDOR_APPLE 0x106b #define PCI_VENDOR_DELL 0x1028 sc->sc_card_flags = bwi_read_sprom(sc, BWI_SPROM_CARD_FLAGS); if (sc->sc_card_flags == 0xffff) sc->sc_card_flags = 0; if (sc->sc_pci_subvid == PCI_VENDOR_DELL && sc->sc_bbp_id == BWI_BBPID_BCM4301 && sc->sc_pci_revid == 0x74) sc->sc_card_flags |= BWI_CARD_F_BT_COEXIST; if (sc->sc_pci_subvid == PCI_VENDOR_APPLE && sc->sc_pci_subdid == 0x4e && /* XXX */ sc->sc_pci_revid > 0x40) sc->sc_card_flags |= BWI_CARD_F_PA_GPIO9; DPRINTF(sc, BWI_DBG_ATTACH, "card flags 0x%04x\n", sc->sc_card_flags); #undef PCI_VENDOR_DELL #undef PCI_VENDOR_APPLE } static void bwi_get_eaddr(struct bwi_softc *sc, uint16_t eaddr_ofs, uint8_t *eaddr) { int i; for (i = 0; i < 3; ++i) { *((uint16_t *)eaddr + i) = htobe16(bwi_read_sprom(sc, eaddr_ofs + 2 * i)); } } static void bwi_get_clock_freq(struct bwi_softc *sc, struct bwi_clock_freq *freq) { struct bwi_regwin *com; uint32_t val; u_int div; int src; bzero(freq, sizeof(*freq)); com = &sc->sc_com_regwin; KASSERT(BWI_REGWIN_EXIST(com), ("regwin does not exist")); KASSERT(sc->sc_cur_regwin == com, ("wrong regwin")); KASSERT(sc->sc_cap & BWI_CAP_CLKMODE, ("wrong clock mode")); /* * Calculate clock frequency */ src = -1; div = 0; if (com->rw_rev < 6) { val = pci_read_config(sc->sc_dev, BWI_PCIR_GPIO_OUT, 4); if (val & BWI_PCIM_GPIO_OUT_CLKSRC) { src = BWI_CLKSRC_PCI; div = 64; } else { src = BWI_CLKSRC_CS_OSC; div = 32; } } else if (com->rw_rev < 10) { val = CSR_READ_4(sc, BWI_CLOCK_CTRL); src = __SHIFTOUT(val, BWI_CLOCK_CTRL_CLKSRC); if (src == BWI_CLKSRC_LP_OSC) { div = 1; } else { div = (__SHIFTOUT(val, BWI_CLOCK_CTRL_FDIV) + 1) << 2; /* Unknown source */ if (src >= BWI_CLKSRC_MAX) src = BWI_CLKSRC_CS_OSC; } } else { val = CSR_READ_4(sc, BWI_CLOCK_INFO); src = BWI_CLKSRC_CS_OSC; div = (__SHIFTOUT(val, BWI_CLOCK_INFO_FDIV) + 1) << 2; } KASSERT(src >= 0 && src < BWI_CLKSRC_MAX, ("bad src %d", src)); KASSERT(div != 0, ("div zero")); DPRINTF(sc, BWI_DBG_ATTACH, "clksrc %s\n", src == BWI_CLKSRC_PCI ? "PCI" : (src == BWI_CLKSRC_LP_OSC ? "LP_OSC" : "CS_OSC")); freq->clkfreq_min = bwi_clkfreq[src].freq_min / div; freq->clkfreq_max = bwi_clkfreq[src].freq_max / div; DPRINTF(sc, BWI_DBG_ATTACH, "clkfreq min %u, max %u\n", freq->clkfreq_min, freq->clkfreq_max); } static int bwi_set_clock_mode(struct bwi_softc *sc, enum bwi_clock_mode clk_mode) { struct bwi_regwin *old, *com; uint32_t clk_ctrl, clk_src; int error, pwr_off = 0; com = &sc->sc_com_regwin; if (!BWI_REGWIN_EXIST(com)) return 0; if (com->rw_rev >= 10 || com->rw_rev < 6) return 0; /* * For common regwin whose rev is [6, 10), the chip * must be capable to change clock mode. */ if ((sc->sc_cap & BWI_CAP_CLKMODE) == 0) return 0; error = bwi_regwin_switch(sc, com, &old); if (error) return error; if (clk_mode == BWI_CLOCK_MODE_FAST) bwi_power_on(sc, 0); /* Don't turn on PLL */ clk_ctrl = CSR_READ_4(sc, BWI_CLOCK_CTRL); clk_src = __SHIFTOUT(clk_ctrl, BWI_CLOCK_CTRL_CLKSRC); switch (clk_mode) { case BWI_CLOCK_MODE_FAST: clk_ctrl &= ~BWI_CLOCK_CTRL_SLOW; clk_ctrl |= BWI_CLOCK_CTRL_IGNPLL; break; case BWI_CLOCK_MODE_SLOW: clk_ctrl |= BWI_CLOCK_CTRL_SLOW; break; case BWI_CLOCK_MODE_DYN: clk_ctrl &= ~(BWI_CLOCK_CTRL_SLOW | BWI_CLOCK_CTRL_IGNPLL | BWI_CLOCK_CTRL_NODYN); if (clk_src != BWI_CLKSRC_CS_OSC) { clk_ctrl |= BWI_CLOCK_CTRL_NODYN; pwr_off = 1; } break; } CSR_WRITE_4(sc, BWI_CLOCK_CTRL, clk_ctrl); if (pwr_off) bwi_power_off(sc, 0); /* Leave PLL as it is */ return bwi_regwin_switch(sc, old, NULL); } static int bwi_set_clock_delay(struct bwi_softc *sc) { struct bwi_regwin *old, *com; int error; com = &sc->sc_com_regwin; if (!BWI_REGWIN_EXIST(com)) return 0; error = bwi_regwin_switch(sc, com, &old); if (error) return error; if (sc->sc_bbp_id == BWI_BBPID_BCM4321) { if (sc->sc_bbp_rev == 0) CSR_WRITE_4(sc, BWI_CONTROL, BWI_CONTROL_MAGIC0); else if (sc->sc_bbp_rev == 1) CSR_WRITE_4(sc, BWI_CONTROL, BWI_CONTROL_MAGIC1); } if (sc->sc_cap & BWI_CAP_CLKMODE) { if (com->rw_rev >= 10) { CSR_FILT_SETBITS_4(sc, BWI_CLOCK_INFO, 0xffff, 0x40000); } else { struct bwi_clock_freq freq; bwi_get_clock_freq(sc, &freq); CSR_WRITE_4(sc, BWI_PLL_ON_DELAY, howmany(freq.clkfreq_max * 150, 1000000)); CSR_WRITE_4(sc, BWI_FREQ_SEL_DELAY, howmany(freq.clkfreq_max * 15, 1000000)); } } return bwi_regwin_switch(sc, old, NULL); } static void bwi_init(struct bwi_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; BWI_LOCK(sc); bwi_init_statechg(sc, 1); BWI_UNLOCK(sc); if (sc->sc_flags & BWI_F_RUNNING) ieee80211_start_all(ic); /* start all vap's */ } static void bwi_init_statechg(struct bwi_softc *sc, int statechg) { struct bwi_mac *mac; int error; BWI_ASSERT_LOCKED(sc); bwi_stop_locked(sc, statechg); bwi_bbp_power_on(sc, BWI_CLOCK_MODE_FAST); /* TODO: 2 MAC */ mac = &sc->sc_mac[0]; error = bwi_regwin_switch(sc, &mac->mac_regwin, NULL); if (error) { device_printf(sc->sc_dev, "%s: error %d on regwin switch\n", __func__, error); goto bad; } error = bwi_mac_init(mac); if (error) { device_printf(sc->sc_dev, "%s: error %d on MAC init\n", __func__, error); goto bad; } bwi_bbp_power_on(sc, BWI_CLOCK_MODE_DYN); bwi_set_bssid(sc, bwi_zero_addr); /* Clear BSSID */ bwi_set_addr_filter(sc, BWI_ADDR_FILTER_MYADDR, sc->sc_ic.ic_macaddr); bwi_mac_reset_hwkeys(mac); if ((mac->mac_flags & BWI_MAC_F_HAS_TXSTATS) == 0) { int i; #define NRETRY 1000 /* * Drain any possible pending TX status */ for (i = 0; i < NRETRY; ++i) { if ((CSR_READ_4(sc, BWI_TXSTATUS0) & BWI_TXSTATUS0_VALID) == 0) break; CSR_READ_4(sc, BWI_TXSTATUS1); } if (i == NRETRY) device_printf(sc->sc_dev, "%s: can't drain TX status\n", __func__); #undef NRETRY } if (mac->mac_phy.phy_mode == IEEE80211_MODE_11G) bwi_mac_updateslot(mac, 1); /* Start MAC */ error = bwi_mac_start(mac); if (error) { device_printf(sc->sc_dev, "%s: error %d starting MAC\n", __func__, error); goto bad; } /* Clear stop flag before enabling interrupt */ sc->sc_flags &= ~BWI_F_STOP; sc->sc_flags |= BWI_F_RUNNING; callout_reset(&sc->sc_watchdog_timer, hz, bwi_watchdog, sc); /* Enable intrs */ bwi_enable_intrs(sc, BWI_INIT_INTRS); return; bad: bwi_stop_locked(sc, 1); } static void bwi_parent(struct ieee80211com *ic) { struct bwi_softc *sc = ic->ic_softc; int startall = 0; BWI_LOCK(sc); if (ic->ic_nrunning > 0) { struct bwi_mac *mac; int promisc = -1; KASSERT(sc->sc_cur_regwin->rw_type == BWI_REGWIN_T_MAC, ("current regwin type %d", sc->sc_cur_regwin->rw_type)); mac = (struct bwi_mac *)sc->sc_cur_regwin; if (ic->ic_promisc > 0 && (sc->sc_flags & BWI_F_PROMISC) == 0) { promisc = 1; sc->sc_flags |= BWI_F_PROMISC; } else if (ic->ic_promisc == 0 && (sc->sc_flags & BWI_F_PROMISC) != 0) { promisc = 0; sc->sc_flags &= ~BWI_F_PROMISC; } if (promisc >= 0) bwi_mac_set_promisc(mac, promisc); } if (ic->ic_nrunning > 0) { if ((sc->sc_flags & BWI_F_RUNNING) == 0) { bwi_init_statechg(sc, 1); startall = 1; } } else if (sc->sc_flags & BWI_F_RUNNING) bwi_stop_locked(sc, 1); BWI_UNLOCK(sc); if (startall) ieee80211_start_all(ic); } static int bwi_transmit(struct ieee80211com *ic, struct mbuf *m) { struct bwi_softc *sc = ic->ic_softc; int error; BWI_LOCK(sc); if ((sc->sc_flags & BWI_F_RUNNING) == 0) { BWI_UNLOCK(sc); return (ENXIO); } error = mbufq_enqueue(&sc->sc_snd, m); if (error) { BWI_UNLOCK(sc); return (error); } bwi_start_locked(sc); BWI_UNLOCK(sc); return (0); } static void bwi_start_locked(struct bwi_softc *sc) { struct bwi_txbuf_data *tbd = &sc->sc_tx_bdata[BWI_TX_DATA_RING]; struct ieee80211_frame *wh; struct ieee80211_node *ni; struct mbuf *m; int trans, idx; BWI_ASSERT_LOCKED(sc); trans = 0; idx = tbd->tbd_idx; while (tbd->tbd_buf[idx].tb_mbuf == NULL && tbd->tbd_used + BWI_TX_NSPRDESC < BWI_TX_NDESC && (m = mbufq_dequeue(&sc->sc_snd)) != NULL) { ni = (struct ieee80211_node *) m->m_pkthdr.rcvif; wh = mtod(m, struct ieee80211_frame *); if ((wh->i_fc[1] & IEEE80211_FC1_PROTECTED) != 0 && ieee80211_crypto_encap(ni, m) == NULL) { if_inc_counter(ni->ni_vap->iv_ifp, IFCOUNTER_OERRORS, 1); ieee80211_free_node(ni); m_freem(m); continue; } if (bwi_encap(sc, idx, m, ni) != 0) { /* 'm' is freed in bwi_encap() if we reach here */ if (ni != NULL) { if_inc_counter(ni->ni_vap->iv_ifp, IFCOUNTER_OERRORS, 1); ieee80211_free_node(ni); } else counter_u64_add(sc->sc_ic.ic_oerrors, 1); continue; } trans = 1; tbd->tbd_used++; idx = (idx + 1) % BWI_TX_NDESC; } tbd->tbd_idx = idx; if (trans) sc->sc_tx_timer = 5; } static int bwi_raw_xmit(struct ieee80211_node *ni, struct mbuf *m, const struct ieee80211_bpf_params *params) { struct ieee80211com *ic = ni->ni_ic; struct bwi_softc *sc = ic->ic_softc; /* XXX wme? */ struct bwi_txbuf_data *tbd = &sc->sc_tx_bdata[BWI_TX_DATA_RING]; int idx, error; if ((sc->sc_flags & BWI_F_RUNNING) == 0) { m_freem(m); return ENETDOWN; } BWI_LOCK(sc); idx = tbd->tbd_idx; KASSERT(tbd->tbd_buf[idx].tb_mbuf == NULL, ("slot %d not empty", idx)); if (params == NULL) { /* * Legacy path; interpret frame contents to decide * precisely how to send the frame. */ error = bwi_encap(sc, idx, m, ni); } else { /* * Caller supplied explicit parameters to use in * sending the frame. */ error = bwi_encap_raw(sc, idx, m, ni, params); } if (error == 0) { tbd->tbd_used++; tbd->tbd_idx = (idx + 1) % BWI_TX_NDESC; sc->sc_tx_timer = 5; } BWI_UNLOCK(sc); return error; } static void bwi_watchdog(void *arg) { struct bwi_softc *sc; sc = arg; BWI_ASSERT_LOCKED(sc); if (sc->sc_tx_timer != 0 && --sc->sc_tx_timer == 0) { device_printf(sc->sc_dev, "watchdog timeout\n"); counter_u64_add(sc->sc_ic.ic_oerrors, 1); taskqueue_enqueue(sc->sc_tq, &sc->sc_restart_task); } callout_reset(&sc->sc_watchdog_timer, hz, bwi_watchdog, sc); } static void bwi_stop(struct bwi_softc *sc, int statechg) { BWI_LOCK(sc); bwi_stop_locked(sc, statechg); BWI_UNLOCK(sc); } static void bwi_stop_locked(struct bwi_softc *sc, int statechg) { struct bwi_mac *mac; int i, error, pwr_off = 0; BWI_ASSERT_LOCKED(sc); callout_stop(&sc->sc_calib_ch); callout_stop(&sc->sc_led_blink_ch); sc->sc_led_blinking = 0; sc->sc_flags |= BWI_F_STOP; if (sc->sc_flags & BWI_F_RUNNING) { KASSERT(sc->sc_cur_regwin->rw_type == BWI_REGWIN_T_MAC, ("current regwin type %d", sc->sc_cur_regwin->rw_type)); mac = (struct bwi_mac *)sc->sc_cur_regwin; bwi_disable_intrs(sc, BWI_ALL_INTRS); CSR_READ_4(sc, BWI_MAC_INTR_MASK); bwi_mac_stop(mac); } for (i = 0; i < sc->sc_nmac; ++i) { struct bwi_regwin *old_rw; mac = &sc->sc_mac[i]; if ((mac->mac_flags & BWI_MAC_F_INITED) == 0) continue; error = bwi_regwin_switch(sc, &mac->mac_regwin, &old_rw); if (error) continue; bwi_mac_shutdown(mac); pwr_off = 1; bwi_regwin_switch(sc, old_rw, NULL); } if (pwr_off) bwi_bbp_power_off(sc); sc->sc_tx_timer = 0; callout_stop(&sc->sc_watchdog_timer); sc->sc_flags &= ~BWI_F_RUNNING; } void bwi_intr(void *xsc) { struct epoch_tracker et; struct bwi_softc *sc = xsc; struct bwi_mac *mac; uint32_t intr_status; uint32_t txrx_intr_status[BWI_TXRX_NRING]; int i, txrx_error, tx = 0, rx_data = -1; BWI_LOCK(sc); if ((sc->sc_flags & BWI_F_RUNNING) == 0 || (sc->sc_flags & BWI_F_STOP)) { BWI_UNLOCK(sc); return; } /* * Get interrupt status */ intr_status = CSR_READ_4(sc, BWI_MAC_INTR_STATUS); if (intr_status == 0xffffffff) { /* Not for us */ BWI_UNLOCK(sc); return; } DPRINTF(sc, BWI_DBG_INTR, "intr status 0x%08x\n", intr_status); intr_status &= CSR_READ_4(sc, BWI_MAC_INTR_MASK); if (intr_status == 0) { /* Nothing is interesting */ BWI_UNLOCK(sc); return; } KASSERT(sc->sc_cur_regwin->rw_type == BWI_REGWIN_T_MAC, ("current regwin type %d", sc->sc_cur_regwin->rw_type)); mac = (struct bwi_mac *)sc->sc_cur_regwin; txrx_error = 0; DPRINTF(sc, BWI_DBG_INTR, "%s\n", "TX/RX intr"); for (i = 0; i < BWI_TXRX_NRING; ++i) { uint32_t mask; if (BWI_TXRX_IS_RX(i)) mask = BWI_TXRX_RX_INTRS; else mask = BWI_TXRX_TX_INTRS; txrx_intr_status[i] = CSR_READ_4(sc, BWI_TXRX_INTR_STATUS(i)) & mask; _DPRINTF(sc, BWI_DBG_INTR, ", %d 0x%08x", i, txrx_intr_status[i]); if (txrx_intr_status[i] & BWI_TXRX_INTR_ERROR) { device_printf(sc->sc_dev, "%s: intr fatal TX/RX (%d) error 0x%08x\n", __func__, i, txrx_intr_status[i]); txrx_error = 1; } } _DPRINTF(sc, BWI_DBG_INTR, "%s\n", ""); /* * Acknowledge interrupt */ CSR_WRITE_4(sc, BWI_MAC_INTR_STATUS, intr_status); for (i = 0; i < BWI_TXRX_NRING; ++i) CSR_WRITE_4(sc, BWI_TXRX_INTR_STATUS(i), txrx_intr_status[i]); /* Disable all interrupts */ bwi_disable_intrs(sc, BWI_ALL_INTRS); /* * http://bcm-specs.sipsolutions.net/Interrupts * Says for this bit (0x800): * "Fatal Error * * We got this one while testing things when by accident the * template ram wasn't set to big endian when it should have * been after writing the initial values. It keeps on being * triggered, the only way to stop it seems to shut down the * chip." * * Suggesting that we should never get it and if we do we're not * feeding TX packets into the MAC correctly if we do... Apparently, * it is valid only on mac version 5 and higher, but I couldn't * find a reference for that... Since I see them from time to time * on my card, this suggests an error in the tx path still... */ if (intr_status & BWI_INTR_PHY_TXERR) { if (mac->mac_flags & BWI_MAC_F_PHYE_RESET) { device_printf(sc->sc_dev, "%s: intr PHY TX error\n", __func__); taskqueue_enqueue(sc->sc_tq, &sc->sc_restart_task); BWI_UNLOCK(sc); return; } } if (txrx_error) { /* TODO: reset device */ } if (intr_status & BWI_INTR_TBTT) bwi_mac_config_ps(mac); if (intr_status & BWI_INTR_EO_ATIM) device_printf(sc->sc_dev, "EO_ATIM\n"); if (intr_status & BWI_INTR_PMQ) { for (;;) { if ((CSR_READ_4(sc, BWI_MAC_PS_STATUS) & 0x8) == 0) break; } CSR_WRITE_2(sc, BWI_MAC_PS_STATUS, 0x2); } if (intr_status & BWI_INTR_NOISE) device_printf(sc->sc_dev, "intr noise\n"); if (txrx_intr_status[0] & BWI_TXRX_INTR_RX) { NET_EPOCH_ENTER(et); rx_data = sc->sc_rxeof(sc); NET_EPOCH_EXIT(et); if (sc->sc_flags & BWI_F_STOP) { BWI_UNLOCK(sc); return; } } if (txrx_intr_status[3] & BWI_TXRX_INTR_RX) { sc->sc_txeof_status(sc); tx = 1; } if (intr_status & BWI_INTR_TX_DONE) { bwi_txeof(sc); tx = 1; } /* Re-enable interrupts */ bwi_enable_intrs(sc, BWI_INIT_INTRS); if (sc->sc_blink_led != NULL && sc->sc_led_blink) { int evt = BWI_LED_EVENT_NONE; if (tx && rx_data > 0) { if (sc->sc_rx_rate > sc->sc_tx_rate) evt = BWI_LED_EVENT_RX; else evt = BWI_LED_EVENT_TX; } else if (tx) { evt = BWI_LED_EVENT_TX; } else if (rx_data > 0) { evt = BWI_LED_EVENT_RX; } else if (rx_data == 0) { evt = BWI_LED_EVENT_POLL; } if (evt != BWI_LED_EVENT_NONE) bwi_led_event(sc, evt); } BWI_UNLOCK(sc); } static void bwi_scan_start(struct ieee80211com *ic) { struct bwi_softc *sc = ic->ic_softc; BWI_LOCK(sc); /* Enable MAC beacon promiscuity */ CSR_SETBITS_4(sc, BWI_MAC_STATUS, BWI_MAC_STATUS_PASS_BCN); BWI_UNLOCK(sc); } static void bwi_getradiocaps(struct ieee80211com *ic, int maxchans, int *nchans, struct ieee80211_channel chans[]) { struct bwi_softc *sc = ic->ic_softc; struct bwi_mac *mac; struct bwi_phy *phy; uint8_t bands[IEEE80211_MODE_BYTES]; /* * XXX First MAC is known to exist * TODO2 */ mac = &sc->sc_mac[0]; phy = &mac->mac_phy; memset(bands, 0, sizeof(bands)); switch (phy->phy_mode) { case IEEE80211_MODE_11G: setbit(bands, IEEE80211_MODE_11G); /* FALLTHROUGH */ case IEEE80211_MODE_11B: setbit(bands, IEEE80211_MODE_11B); break; case IEEE80211_MODE_11A: /* TODO:11A */ setbit(bands, IEEE80211_MODE_11A); device_printf(sc->sc_dev, "no 11a support\n"); return; default: panic("unknown phymode %d\n", phy->phy_mode); } ieee80211_add_channels_default_2ghz(chans, maxchans, nchans, bands, 0); } static void bwi_set_channel(struct ieee80211com *ic) { struct bwi_softc *sc = ic->ic_softc; struct ieee80211_channel *c = ic->ic_curchan; struct bwi_mac *mac; BWI_LOCK(sc); KASSERT(sc->sc_cur_regwin->rw_type == BWI_REGWIN_T_MAC, ("current regwin type %d", sc->sc_cur_regwin->rw_type)); mac = (struct bwi_mac *)sc->sc_cur_regwin; bwi_rf_set_chan(mac, ieee80211_chan2ieee(ic, c), 0); sc->sc_rates = ieee80211_get_ratetable(c); BWI_UNLOCK(sc); } static void bwi_scan_end(struct ieee80211com *ic) { struct bwi_softc *sc = ic->ic_softc; BWI_LOCK(sc); CSR_CLRBITS_4(sc, BWI_MAC_STATUS, BWI_MAC_STATUS_PASS_BCN); BWI_UNLOCK(sc); } static int bwi_newstate(struct ieee80211vap *vap, enum ieee80211_state nstate, int arg) { struct bwi_vap *bvp = BWI_VAP(vap); struct ieee80211com *ic= vap->iv_ic; struct bwi_softc *sc = ic->ic_softc; enum ieee80211_state ostate = vap->iv_state; struct bwi_mac *mac; int error; BWI_LOCK(sc); callout_stop(&sc->sc_calib_ch); if (nstate == IEEE80211_S_INIT) sc->sc_txpwrcb_type = BWI_TXPWR_INIT; bwi_led_newstate(sc, nstate); error = bvp->bv_newstate(vap, nstate, arg); if (error != 0) goto back; /* * Clear the BSSID when we stop a STA */ if (vap->iv_opmode == IEEE80211_M_STA) { if (ostate == IEEE80211_S_RUN && nstate != IEEE80211_S_RUN) { /* * Clear out the BSSID. If we reassociate to * the same AP, this will reinialize things * correctly... */ if (ic->ic_opmode == IEEE80211_M_STA && !(sc->sc_flags & BWI_F_STOP)) bwi_set_bssid(sc, bwi_zero_addr); } } if (vap->iv_opmode == IEEE80211_M_MONITOR) { /* Nothing to do */ } else if (nstate == IEEE80211_S_RUN) { bwi_set_bssid(sc, vap->iv_bss->ni_bssid); KASSERT(sc->sc_cur_regwin->rw_type == BWI_REGWIN_T_MAC, ("current regwin type %d", sc->sc_cur_regwin->rw_type)); mac = (struct bwi_mac *)sc->sc_cur_regwin; /* Initial TX power calibration */ bwi_mac_calibrate_txpower(mac, BWI_TXPWR_INIT); #ifdef notyet sc->sc_txpwrcb_type = BWI_TXPWR_FORCE; #else sc->sc_txpwrcb_type = BWI_TXPWR_CALIB; #endif callout_reset(&sc->sc_calib_ch, hz, bwi_calibrate, sc); } back: BWI_UNLOCK(sc); return error; -} - -static int -bwi_media_change(struct ifnet *ifp) -{ - int error = ieee80211_media_change(ifp); - /* NB: only the fixed rate can change and that doesn't need a reset */ - return (error == ENETRESET ? 0 : error); } static int bwi_dma_alloc(struct bwi_softc *sc) { int error, i, has_txstats; bus_addr_t lowaddr = 0; bus_size_t tx_ring_sz, rx_ring_sz, desc_sz = 0; uint32_t txrx_ctrl_step = 0; has_txstats = 0; for (i = 0; i < sc->sc_nmac; ++i) { if (sc->sc_mac[i].mac_flags & BWI_MAC_F_HAS_TXSTATS) { has_txstats = 1; break; } } switch (sc->sc_bus_space) { case BWI_BUS_SPACE_30BIT: case BWI_BUS_SPACE_32BIT: if (sc->sc_bus_space == BWI_BUS_SPACE_30BIT) lowaddr = BWI_BUS_SPACE_MAXADDR; else lowaddr = BUS_SPACE_MAXADDR_32BIT; desc_sz = sizeof(struct bwi_desc32); txrx_ctrl_step = 0x20; sc->sc_init_tx_ring = bwi_init_tx_ring32; sc->sc_free_tx_ring = bwi_free_tx_ring32; sc->sc_init_rx_ring = bwi_init_rx_ring32; sc->sc_free_rx_ring = bwi_free_rx_ring32; sc->sc_setup_rxdesc = bwi_setup_rx_desc32; sc->sc_setup_txdesc = bwi_setup_tx_desc32; sc->sc_rxeof = bwi_rxeof32; sc->sc_start_tx = bwi_start_tx32; if (has_txstats) { sc->sc_init_txstats = bwi_init_txstats32; sc->sc_free_txstats = bwi_free_txstats32; sc->sc_txeof_status = bwi_txeof_status32; } break; case BWI_BUS_SPACE_64BIT: lowaddr = BUS_SPACE_MAXADDR; /* XXX */ desc_sz = sizeof(struct bwi_desc64); txrx_ctrl_step = 0x40; sc->sc_init_tx_ring = bwi_init_tx_ring64; sc->sc_free_tx_ring = bwi_free_tx_ring64; sc->sc_init_rx_ring = bwi_init_rx_ring64; sc->sc_free_rx_ring = bwi_free_rx_ring64; sc->sc_setup_rxdesc = bwi_setup_rx_desc64; sc->sc_setup_txdesc = bwi_setup_tx_desc64; sc->sc_rxeof = bwi_rxeof64; sc->sc_start_tx = bwi_start_tx64; if (has_txstats) { sc->sc_init_txstats = bwi_init_txstats64; sc->sc_free_txstats = bwi_free_txstats64; sc->sc_txeof_status = bwi_txeof_status64; } break; } KASSERT(lowaddr != 0, ("lowaddr zero")); KASSERT(desc_sz != 0, ("desc_sz zero")); KASSERT(txrx_ctrl_step != 0, ("txrx_ctrl_step zero")); tx_ring_sz = roundup(desc_sz * BWI_TX_NDESC, BWI_RING_ALIGN); rx_ring_sz = roundup(desc_sz * BWI_RX_NDESC, BWI_RING_ALIGN); /* * Create top level DMA tag */ error = bus_dma_tag_create(bus_get_dma_tag(sc->sc_dev), /* parent */ BWI_ALIGN, 0, /* alignment, bounds */ lowaddr, /* lowaddr */ BUS_SPACE_MAXADDR, /* highaddr */ NULL, NULL, /* filter, filterarg */ BUS_SPACE_MAXSIZE, /* maxsize */ BUS_SPACE_UNRESTRICTED, /* nsegments */ BUS_SPACE_MAXSIZE_32BIT, /* maxsegsize */ 0, /* flags */ NULL, NULL, /* lockfunc, lockarg */ &sc->sc_parent_dtag); if (error) { device_printf(sc->sc_dev, "can't create parent DMA tag\n"); return error; } #define TXRX_CTRL(idx) (BWI_TXRX_CTRL_BASE + (idx) * txrx_ctrl_step) /* * Create TX ring DMA stuffs */ error = bus_dma_tag_create(sc->sc_parent_dtag, BWI_RING_ALIGN, 0, BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, tx_ring_sz, 1, tx_ring_sz, 0, NULL, NULL, &sc->sc_txring_dtag); if (error) { device_printf(sc->sc_dev, "can't create TX ring DMA tag\n"); return error; } for (i = 0; i < BWI_TX_NRING; ++i) { error = bwi_dma_ring_alloc(sc, sc->sc_txring_dtag, &sc->sc_tx_rdata[i], tx_ring_sz, TXRX_CTRL(i)); if (error) { device_printf(sc->sc_dev, "%dth TX ring " "DMA alloc failed\n", i); return error; } } /* * Create RX ring DMA stuffs */ error = bus_dma_tag_create(sc->sc_parent_dtag, BWI_RING_ALIGN, 0, BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, rx_ring_sz, 1, rx_ring_sz, 0, NULL, NULL, &sc->sc_rxring_dtag); if (error) { device_printf(sc->sc_dev, "can't create RX ring DMA tag\n"); return error; } error = bwi_dma_ring_alloc(sc, sc->sc_rxring_dtag, &sc->sc_rx_rdata, rx_ring_sz, TXRX_CTRL(0)); if (error) { device_printf(sc->sc_dev, "RX ring DMA alloc failed\n"); return error; } if (has_txstats) { error = bwi_dma_txstats_alloc(sc, TXRX_CTRL(3), desc_sz); if (error) { device_printf(sc->sc_dev, "TX stats DMA alloc failed\n"); return error; } } #undef TXRX_CTRL return bwi_dma_mbuf_create(sc); } static void bwi_dma_free(struct bwi_softc *sc) { if (sc->sc_txring_dtag != NULL) { int i; for (i = 0; i < BWI_TX_NRING; ++i) { struct bwi_ring_data *rd = &sc->sc_tx_rdata[i]; if (rd->rdata_desc != NULL) { bus_dmamap_unload(sc->sc_txring_dtag, rd->rdata_dmap); bus_dmamem_free(sc->sc_txring_dtag, rd->rdata_desc, rd->rdata_dmap); } } bus_dma_tag_destroy(sc->sc_txring_dtag); } if (sc->sc_rxring_dtag != NULL) { struct bwi_ring_data *rd = &sc->sc_rx_rdata; if (rd->rdata_desc != NULL) { bus_dmamap_unload(sc->sc_rxring_dtag, rd->rdata_dmap); bus_dmamem_free(sc->sc_rxring_dtag, rd->rdata_desc, rd->rdata_dmap); } bus_dma_tag_destroy(sc->sc_rxring_dtag); } bwi_dma_txstats_free(sc); bwi_dma_mbuf_destroy(sc, BWI_TX_NRING, 1); if (sc->sc_parent_dtag != NULL) bus_dma_tag_destroy(sc->sc_parent_dtag); } static int bwi_dma_ring_alloc(struct bwi_softc *sc, bus_dma_tag_t dtag, struct bwi_ring_data *rd, bus_size_t size, uint32_t txrx_ctrl) { int error; error = bus_dmamem_alloc(dtag, &rd->rdata_desc, BUS_DMA_WAITOK | BUS_DMA_ZERO, &rd->rdata_dmap); if (error) { device_printf(sc->sc_dev, "can't allocate DMA mem\n"); return error; } error = bus_dmamap_load(dtag, rd->rdata_dmap, rd->rdata_desc, size, bwi_dma_ring_addr, &rd->rdata_paddr, BUS_DMA_NOWAIT); if (error) { device_printf(sc->sc_dev, "can't load DMA mem\n"); bus_dmamem_free(dtag, rd->rdata_desc, rd->rdata_dmap); rd->rdata_desc = NULL; return error; } rd->rdata_txrx_ctrl = txrx_ctrl; return 0; } static int bwi_dma_txstats_alloc(struct bwi_softc *sc, uint32_t ctrl_base, bus_size_t desc_sz) { struct bwi_txstats_data *st; bus_size_t dma_size; int error; st = malloc(sizeof(*st), M_DEVBUF, M_NOWAIT | M_ZERO); if (st == NULL) { device_printf(sc->sc_dev, "can't allocate txstats data\n"); return ENOMEM; } sc->sc_txstats = st; /* * Create TX stats descriptor DMA stuffs */ dma_size = roundup(desc_sz * BWI_TXSTATS_NDESC, BWI_RING_ALIGN); error = bus_dma_tag_create(sc->sc_parent_dtag, BWI_RING_ALIGN, 0, BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, dma_size, 1, dma_size, 0, NULL, NULL, &st->stats_ring_dtag); if (error) { device_printf(sc->sc_dev, "can't create txstats ring " "DMA tag\n"); return error; } error = bus_dmamem_alloc(st->stats_ring_dtag, &st->stats_ring, BUS_DMA_WAITOK | BUS_DMA_ZERO, &st->stats_ring_dmap); if (error) { device_printf(sc->sc_dev, "can't allocate txstats ring " "DMA mem\n"); bus_dma_tag_destroy(st->stats_ring_dtag); st->stats_ring_dtag = NULL; return error; } error = bus_dmamap_load(st->stats_ring_dtag, st->stats_ring_dmap, st->stats_ring, dma_size, bwi_dma_ring_addr, &st->stats_ring_paddr, BUS_DMA_NOWAIT); if (error) { device_printf(sc->sc_dev, "can't load txstats ring DMA mem\n"); bus_dmamem_free(st->stats_ring_dtag, st->stats_ring, st->stats_ring_dmap); bus_dma_tag_destroy(st->stats_ring_dtag); st->stats_ring_dtag = NULL; return error; } /* * Create TX stats DMA stuffs */ dma_size = roundup(sizeof(struct bwi_txstats) * BWI_TXSTATS_NDESC, BWI_ALIGN); error = bus_dma_tag_create(sc->sc_parent_dtag, BWI_ALIGN, 0, BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, dma_size, 1, dma_size, 0, NULL, NULL, &st->stats_dtag); if (error) { device_printf(sc->sc_dev, "can't create txstats DMA tag\n"); return error; } error = bus_dmamem_alloc(st->stats_dtag, (void **)&st->stats, BUS_DMA_WAITOK | BUS_DMA_ZERO, &st->stats_dmap); if (error) { device_printf(sc->sc_dev, "can't allocate txstats DMA mem\n"); bus_dma_tag_destroy(st->stats_dtag); st->stats_dtag = NULL; return error; } error = bus_dmamap_load(st->stats_dtag, st->stats_dmap, st->stats, dma_size, bwi_dma_ring_addr, &st->stats_paddr, BUS_DMA_NOWAIT); if (error) { device_printf(sc->sc_dev, "can't load txstats DMA mem\n"); bus_dmamem_free(st->stats_dtag, st->stats, st->stats_dmap); bus_dma_tag_destroy(st->stats_dtag); st->stats_dtag = NULL; return error; } st->stats_ctrl_base = ctrl_base; return 0; } static void bwi_dma_txstats_free(struct bwi_softc *sc) { struct bwi_txstats_data *st; if (sc->sc_txstats == NULL) return; st = sc->sc_txstats; if (st->stats_ring_dtag != NULL) { bus_dmamap_unload(st->stats_ring_dtag, st->stats_ring_dmap); bus_dmamem_free(st->stats_ring_dtag, st->stats_ring, st->stats_ring_dmap); bus_dma_tag_destroy(st->stats_ring_dtag); } if (st->stats_dtag != NULL) { bus_dmamap_unload(st->stats_dtag, st->stats_dmap); bus_dmamem_free(st->stats_dtag, st->stats, st->stats_dmap); bus_dma_tag_destroy(st->stats_dtag); } free(st, M_DEVBUF); } static void bwi_dma_ring_addr(void *arg, bus_dma_segment_t *seg, int nseg, int error) { KASSERT(nseg == 1, ("too many segments\n")); *((bus_addr_t *)arg) = seg->ds_addr; } static int bwi_dma_mbuf_create(struct bwi_softc *sc) { struct bwi_rxbuf_data *rbd = &sc->sc_rx_bdata; int i, j, k, ntx, error; /* * Create TX/RX mbuf DMA tag */ error = bus_dma_tag_create(sc->sc_parent_dtag, 1, 0, BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, MCLBYTES, 1, MCLBYTES, BUS_DMA_ALLOCNOW, NULL, NULL, &sc->sc_buf_dtag); if (error) { device_printf(sc->sc_dev, "can't create mbuf DMA tag\n"); return error; } ntx = 0; /* * Create TX mbuf DMA map */ for (i = 0; i < BWI_TX_NRING; ++i) { struct bwi_txbuf_data *tbd = &sc->sc_tx_bdata[i]; for (j = 0; j < BWI_TX_NDESC; ++j) { error = bus_dmamap_create(sc->sc_buf_dtag, 0, &tbd->tbd_buf[j].tb_dmap); if (error) { device_printf(sc->sc_dev, "can't create " "%dth tbd, %dth DMA map\n", i, j); ntx = i; for (k = 0; k < j; ++k) { bus_dmamap_destroy(sc->sc_buf_dtag, tbd->tbd_buf[k].tb_dmap); } goto fail; } } } ntx = BWI_TX_NRING; /* * Create RX mbuf DMA map and a spare DMA map */ error = bus_dmamap_create(sc->sc_buf_dtag, 0, &rbd->rbd_tmp_dmap); if (error) { device_printf(sc->sc_dev, "can't create spare RX buf DMA map\n"); goto fail; } for (j = 0; j < BWI_RX_NDESC; ++j) { error = bus_dmamap_create(sc->sc_buf_dtag, 0, &rbd->rbd_buf[j].rb_dmap); if (error) { device_printf(sc->sc_dev, "can't create %dth " "RX buf DMA map\n", j); for (k = 0; k < j; ++k) { bus_dmamap_destroy(sc->sc_buf_dtag, rbd->rbd_buf[j].rb_dmap); } bus_dmamap_destroy(sc->sc_buf_dtag, rbd->rbd_tmp_dmap); goto fail; } } return 0; fail: bwi_dma_mbuf_destroy(sc, ntx, 0); return error; } static void bwi_dma_mbuf_destroy(struct bwi_softc *sc, int ntx, int nrx) { int i, j; if (sc->sc_buf_dtag == NULL) return; for (i = 0; i < ntx; ++i) { struct bwi_txbuf_data *tbd = &sc->sc_tx_bdata[i]; for (j = 0; j < BWI_TX_NDESC; ++j) { struct bwi_txbuf *tb = &tbd->tbd_buf[j]; if (tb->tb_mbuf != NULL) { bus_dmamap_unload(sc->sc_buf_dtag, tb->tb_dmap); m_freem(tb->tb_mbuf); } if (tb->tb_ni != NULL) ieee80211_free_node(tb->tb_ni); bus_dmamap_destroy(sc->sc_buf_dtag, tb->tb_dmap); } } if (nrx) { struct bwi_rxbuf_data *rbd = &sc->sc_rx_bdata; bus_dmamap_destroy(sc->sc_buf_dtag, rbd->rbd_tmp_dmap); for (j = 0; j < BWI_RX_NDESC; ++j) { struct bwi_rxbuf *rb = &rbd->rbd_buf[j]; if (rb->rb_mbuf != NULL) { bus_dmamap_unload(sc->sc_buf_dtag, rb->rb_dmap); m_freem(rb->rb_mbuf); } bus_dmamap_destroy(sc->sc_buf_dtag, rb->rb_dmap); } } bus_dma_tag_destroy(sc->sc_buf_dtag); sc->sc_buf_dtag = NULL; } static void bwi_enable_intrs(struct bwi_softc *sc, uint32_t enable_intrs) { CSR_SETBITS_4(sc, BWI_MAC_INTR_MASK, enable_intrs); } static void bwi_disable_intrs(struct bwi_softc *sc, uint32_t disable_intrs) { CSR_CLRBITS_4(sc, BWI_MAC_INTR_MASK, disable_intrs); } static int bwi_init_tx_ring32(struct bwi_softc *sc, int ring_idx) { struct bwi_ring_data *rd; struct bwi_txbuf_data *tbd; uint32_t val, addr_hi, addr_lo; KASSERT(ring_idx < BWI_TX_NRING, ("ring_idx %d", ring_idx)); rd = &sc->sc_tx_rdata[ring_idx]; tbd = &sc->sc_tx_bdata[ring_idx]; tbd->tbd_idx = 0; tbd->tbd_used = 0; bzero(rd->rdata_desc, sizeof(struct bwi_desc32) * BWI_TX_NDESC); bus_dmamap_sync(sc->sc_txring_dtag, rd->rdata_dmap, BUS_DMASYNC_PREWRITE); addr_lo = __SHIFTOUT(rd->rdata_paddr, BWI_TXRX32_RINGINFO_ADDR_MASK); addr_hi = __SHIFTOUT(rd->rdata_paddr, BWI_TXRX32_RINGINFO_FUNC_MASK); val = __SHIFTIN(addr_lo, BWI_TXRX32_RINGINFO_ADDR_MASK) | __SHIFTIN(BWI_TXRX32_RINGINFO_FUNC_TXRX, BWI_TXRX32_RINGINFO_FUNC_MASK); CSR_WRITE_4(sc, rd->rdata_txrx_ctrl + BWI_TX32_RINGINFO, val); val = __SHIFTIN(addr_hi, BWI_TXRX32_CTRL_ADDRHI_MASK) | BWI_TXRX32_CTRL_ENABLE; CSR_WRITE_4(sc, rd->rdata_txrx_ctrl + BWI_TX32_CTRL, val); return 0; } static void bwi_init_rxdesc_ring32(struct bwi_softc *sc, uint32_t ctrl_base, bus_addr_t paddr, int hdr_size, int ndesc) { uint32_t val, addr_hi, addr_lo; addr_lo = __SHIFTOUT(paddr, BWI_TXRX32_RINGINFO_ADDR_MASK); addr_hi = __SHIFTOUT(paddr, BWI_TXRX32_RINGINFO_FUNC_MASK); val = __SHIFTIN(addr_lo, BWI_TXRX32_RINGINFO_ADDR_MASK) | __SHIFTIN(BWI_TXRX32_RINGINFO_FUNC_TXRX, BWI_TXRX32_RINGINFO_FUNC_MASK); CSR_WRITE_4(sc, ctrl_base + BWI_RX32_RINGINFO, val); val = __SHIFTIN(hdr_size, BWI_RX32_CTRL_HDRSZ_MASK) | __SHIFTIN(addr_hi, BWI_TXRX32_CTRL_ADDRHI_MASK) | BWI_TXRX32_CTRL_ENABLE; CSR_WRITE_4(sc, ctrl_base + BWI_RX32_CTRL, val); CSR_WRITE_4(sc, ctrl_base + BWI_RX32_INDEX, (ndesc - 1) * sizeof(struct bwi_desc32)); } static int bwi_init_rx_ring32(struct bwi_softc *sc) { struct bwi_ring_data *rd = &sc->sc_rx_rdata; int i, error; sc->sc_rx_bdata.rbd_idx = 0; for (i = 0; i < BWI_RX_NDESC; ++i) { error = bwi_newbuf(sc, i, 1); if (error) { device_printf(sc->sc_dev, "can't allocate %dth RX buffer\n", i); return error; } } bus_dmamap_sync(sc->sc_rxring_dtag, rd->rdata_dmap, BUS_DMASYNC_PREWRITE); bwi_init_rxdesc_ring32(sc, rd->rdata_txrx_ctrl, rd->rdata_paddr, sizeof(struct bwi_rxbuf_hdr), BWI_RX_NDESC); return 0; } static int bwi_init_txstats32(struct bwi_softc *sc) { struct bwi_txstats_data *st = sc->sc_txstats; bus_addr_t stats_paddr; int i; bzero(st->stats, BWI_TXSTATS_NDESC * sizeof(struct bwi_txstats)); bus_dmamap_sync(st->stats_dtag, st->stats_dmap, BUS_DMASYNC_PREWRITE); st->stats_idx = 0; stats_paddr = st->stats_paddr; for (i = 0; i < BWI_TXSTATS_NDESC; ++i) { bwi_setup_desc32(sc, st->stats_ring, BWI_TXSTATS_NDESC, i, stats_paddr, sizeof(struct bwi_txstats), 0); stats_paddr += sizeof(struct bwi_txstats); } bus_dmamap_sync(st->stats_ring_dtag, st->stats_ring_dmap, BUS_DMASYNC_PREWRITE); bwi_init_rxdesc_ring32(sc, st->stats_ctrl_base, st->stats_ring_paddr, 0, BWI_TXSTATS_NDESC); return 0; } static void bwi_setup_rx_desc32(struct bwi_softc *sc, int buf_idx, bus_addr_t paddr, int buf_len) { struct bwi_ring_data *rd = &sc->sc_rx_rdata; KASSERT(buf_idx < BWI_RX_NDESC, ("buf_idx %d", buf_idx)); bwi_setup_desc32(sc, rd->rdata_desc, BWI_RX_NDESC, buf_idx, paddr, buf_len, 0); } static void bwi_setup_tx_desc32(struct bwi_softc *sc, struct bwi_ring_data *rd, int buf_idx, bus_addr_t paddr, int buf_len) { KASSERT(buf_idx < BWI_TX_NDESC, ("buf_idx %d", buf_idx)); bwi_setup_desc32(sc, rd->rdata_desc, BWI_TX_NDESC, buf_idx, paddr, buf_len, 1); } static int bwi_init_tx_ring64(struct bwi_softc *sc, int ring_idx) { /* TODO:64 */ return EOPNOTSUPP; } static int bwi_init_rx_ring64(struct bwi_softc *sc) { /* TODO:64 */ return EOPNOTSUPP; } static int bwi_init_txstats64(struct bwi_softc *sc) { /* TODO:64 */ return EOPNOTSUPP; } static void bwi_setup_rx_desc64(struct bwi_softc *sc, int buf_idx, bus_addr_t paddr, int buf_len) { /* TODO:64 */ } static void bwi_setup_tx_desc64(struct bwi_softc *sc, struct bwi_ring_data *rd, int buf_idx, bus_addr_t paddr, int buf_len) { /* TODO:64 */ } static void bwi_dma_buf_addr(void *arg, bus_dma_segment_t *seg, int nseg, bus_size_t mapsz __unused, int error) { if (!error) { KASSERT(nseg == 1, ("too many segments(%d)\n", nseg)); *((bus_addr_t *)arg) = seg->ds_addr; } } static int bwi_newbuf(struct bwi_softc *sc, int buf_idx, int init) { struct bwi_rxbuf_data *rbd = &sc->sc_rx_bdata; struct bwi_rxbuf *rxbuf = &rbd->rbd_buf[buf_idx]; struct bwi_rxbuf_hdr *hdr; bus_dmamap_t map; bus_addr_t paddr; struct mbuf *m; int error; KASSERT(buf_idx < BWI_RX_NDESC, ("buf_idx %d", buf_idx)); m = m_getcl(M_NOWAIT, MT_DATA, M_PKTHDR); if (m == NULL) { error = ENOBUFS; /* * If the NIC is up and running, we need to: * - Clear RX buffer's header. * - Restore RX descriptor settings. */ if (init) return error; else goto back; } m->m_len = m->m_pkthdr.len = MCLBYTES; /* * Try to load RX buf into temporary DMA map */ error = bus_dmamap_load_mbuf(sc->sc_buf_dtag, rbd->rbd_tmp_dmap, m, bwi_dma_buf_addr, &paddr, BUS_DMA_NOWAIT); if (error) { m_freem(m); /* * See the comment above */ if (init) return error; else goto back; } if (!init) bus_dmamap_unload(sc->sc_buf_dtag, rxbuf->rb_dmap); rxbuf->rb_mbuf = m; rxbuf->rb_paddr = paddr; /* * Swap RX buf's DMA map with the loaded temporary one */ map = rxbuf->rb_dmap; rxbuf->rb_dmap = rbd->rbd_tmp_dmap; rbd->rbd_tmp_dmap = map; back: /* * Clear RX buf header */ hdr = mtod(rxbuf->rb_mbuf, struct bwi_rxbuf_hdr *); bzero(hdr, sizeof(*hdr)); bus_dmamap_sync(sc->sc_buf_dtag, rxbuf->rb_dmap, BUS_DMASYNC_PREWRITE); /* * Setup RX buf descriptor */ sc->sc_setup_rxdesc(sc, buf_idx, rxbuf->rb_paddr, rxbuf->rb_mbuf->m_len - sizeof(*hdr)); return error; } static void bwi_set_addr_filter(struct bwi_softc *sc, uint16_t addr_ofs, const uint8_t *addr) { int i; CSR_WRITE_2(sc, BWI_ADDR_FILTER_CTRL, BWI_ADDR_FILTER_CTRL_SET | addr_ofs); for (i = 0; i < (IEEE80211_ADDR_LEN / 2); ++i) { uint16_t addr_val; addr_val = (uint16_t)addr[i * 2] | (((uint16_t)addr[(i * 2) + 1]) << 8); CSR_WRITE_2(sc, BWI_ADDR_FILTER_DATA, addr_val); } } static int bwi_rxeof(struct bwi_softc *sc, int end_idx) { struct bwi_ring_data *rd = &sc->sc_rx_rdata; struct bwi_rxbuf_data *rbd = &sc->sc_rx_bdata; struct ieee80211com *ic = &sc->sc_ic; int idx, rx_data = 0; idx = rbd->rbd_idx; while (idx != end_idx) { struct bwi_rxbuf *rb = &rbd->rbd_buf[idx]; struct bwi_rxbuf_hdr *hdr; struct ieee80211_frame_min *wh; struct ieee80211_node *ni; struct mbuf *m; uint32_t plcp; uint16_t flags2; int buflen, wh_ofs, hdr_extra, rssi, noise, type, rate; m = rb->rb_mbuf; bus_dmamap_sync(sc->sc_buf_dtag, rb->rb_dmap, BUS_DMASYNC_POSTREAD); if (bwi_newbuf(sc, idx, 0)) { counter_u64_add(ic->ic_ierrors, 1); goto next; } hdr = mtod(m, struct bwi_rxbuf_hdr *); flags2 = le16toh(hdr->rxh_flags2); hdr_extra = 0; if (flags2 & BWI_RXH_F2_TYPE2FRAME) hdr_extra = 2; wh_ofs = hdr_extra + 6; /* XXX magic number */ buflen = le16toh(hdr->rxh_buflen); if (buflen < BWI_FRAME_MIN_LEN(wh_ofs)) { device_printf(sc->sc_dev, "%s: zero length data, hdr_extra %d\n", __func__, hdr_extra); counter_u64_add(ic->ic_ierrors, 1); m_freem(m); goto next; } bcopy((uint8_t *)(hdr + 1) + hdr_extra, &plcp, sizeof(plcp)); rssi = bwi_calc_rssi(sc, hdr); noise = bwi_calc_noise(sc); m->m_len = m->m_pkthdr.len = buflen + sizeof(*hdr); m_adj(m, sizeof(*hdr) + wh_ofs); if (htole16(hdr->rxh_flags1) & BWI_RXH_F1_OFDM) rate = bwi_plcp2rate(plcp, IEEE80211_T_OFDM); else rate = bwi_plcp2rate(plcp, IEEE80211_T_CCK); /* RX radio tap */ if (ieee80211_radiotap_active(ic)) bwi_rx_radiotap(sc, m, hdr, &plcp, rate, rssi, noise); m_adj(m, -IEEE80211_CRC_LEN); BWI_UNLOCK(sc); wh = mtod(m, struct ieee80211_frame_min *); ni = ieee80211_find_rxnode(ic, wh); if (ni != NULL) { type = ieee80211_input(ni, m, rssi - noise, noise); ieee80211_free_node(ni); } else type = ieee80211_input_all(ic, m, rssi - noise, noise); if (type == IEEE80211_FC0_TYPE_DATA) { rx_data = 1; sc->sc_rx_rate = rate; } BWI_LOCK(sc); next: idx = (idx + 1) % BWI_RX_NDESC; if (sc->sc_flags & BWI_F_STOP) { /* * Take the fast lane, don't do * any damage to softc */ return -1; } } rbd->rbd_idx = idx; bus_dmamap_sync(sc->sc_rxring_dtag, rd->rdata_dmap, BUS_DMASYNC_PREWRITE); return rx_data; } static int bwi_rxeof32(struct bwi_softc *sc) { uint32_t val, rx_ctrl; int end_idx, rx_data; rx_ctrl = sc->sc_rx_rdata.rdata_txrx_ctrl; val = CSR_READ_4(sc, rx_ctrl + BWI_RX32_STATUS); end_idx = __SHIFTOUT(val, BWI_RX32_STATUS_INDEX_MASK) / sizeof(struct bwi_desc32); rx_data = bwi_rxeof(sc, end_idx); if (rx_data >= 0) { CSR_WRITE_4(sc, rx_ctrl + BWI_RX32_INDEX, end_idx * sizeof(struct bwi_desc32)); } return rx_data; } static int bwi_rxeof64(struct bwi_softc *sc) { /* TODO:64 */ return 0; } static void bwi_reset_rx_ring32(struct bwi_softc *sc, uint32_t rx_ctrl) { int i; CSR_WRITE_4(sc, rx_ctrl + BWI_RX32_CTRL, 0); #define NRETRY 10 for (i = 0; i < NRETRY; ++i) { uint32_t status; status = CSR_READ_4(sc, rx_ctrl + BWI_RX32_STATUS); if (__SHIFTOUT(status, BWI_RX32_STATUS_STATE_MASK) == BWI_RX32_STATUS_STATE_DISABLED) break; DELAY(1000); } if (i == NRETRY) device_printf(sc->sc_dev, "reset rx ring timedout\n"); #undef NRETRY CSR_WRITE_4(sc, rx_ctrl + BWI_RX32_RINGINFO, 0); } static void bwi_free_txstats32(struct bwi_softc *sc) { bwi_reset_rx_ring32(sc, sc->sc_txstats->stats_ctrl_base); } static void bwi_free_rx_ring32(struct bwi_softc *sc) { struct bwi_ring_data *rd = &sc->sc_rx_rdata; struct bwi_rxbuf_data *rbd = &sc->sc_rx_bdata; int i; bwi_reset_rx_ring32(sc, rd->rdata_txrx_ctrl); for (i = 0; i < BWI_RX_NDESC; ++i) { struct bwi_rxbuf *rb = &rbd->rbd_buf[i]; if (rb->rb_mbuf != NULL) { bus_dmamap_unload(sc->sc_buf_dtag, rb->rb_dmap); m_freem(rb->rb_mbuf); rb->rb_mbuf = NULL; } } } static void bwi_free_tx_ring32(struct bwi_softc *sc, int ring_idx) { struct bwi_ring_data *rd; struct bwi_txbuf_data *tbd; uint32_t state, val; int i; KASSERT(ring_idx < BWI_TX_NRING, ("ring_idx %d", ring_idx)); rd = &sc->sc_tx_rdata[ring_idx]; tbd = &sc->sc_tx_bdata[ring_idx]; #define NRETRY 10 for (i = 0; i < NRETRY; ++i) { val = CSR_READ_4(sc, rd->rdata_txrx_ctrl + BWI_TX32_STATUS); state = __SHIFTOUT(val, BWI_TX32_STATUS_STATE_MASK); if (state == BWI_TX32_STATUS_STATE_DISABLED || state == BWI_TX32_STATUS_STATE_IDLE || state == BWI_TX32_STATUS_STATE_STOPPED) break; DELAY(1000); } if (i == NRETRY) { device_printf(sc->sc_dev, "%s: wait for TX ring(%d) stable timed out\n", __func__, ring_idx); } CSR_WRITE_4(sc, rd->rdata_txrx_ctrl + BWI_TX32_CTRL, 0); for (i = 0; i < NRETRY; ++i) { val = CSR_READ_4(sc, rd->rdata_txrx_ctrl + BWI_TX32_STATUS); state = __SHIFTOUT(val, BWI_TX32_STATUS_STATE_MASK); if (state == BWI_TX32_STATUS_STATE_DISABLED) break; DELAY(1000); } if (i == NRETRY) device_printf(sc->sc_dev, "%s: reset TX ring (%d) timed out\n", __func__, ring_idx); #undef NRETRY DELAY(1000); CSR_WRITE_4(sc, rd->rdata_txrx_ctrl + BWI_TX32_RINGINFO, 0); for (i = 0; i < BWI_TX_NDESC; ++i) { struct bwi_txbuf *tb = &tbd->tbd_buf[i]; if (tb->tb_mbuf != NULL) { bus_dmamap_unload(sc->sc_buf_dtag, tb->tb_dmap); m_freem(tb->tb_mbuf); tb->tb_mbuf = NULL; } if (tb->tb_ni != NULL) { ieee80211_free_node(tb->tb_ni); tb->tb_ni = NULL; } } } static void bwi_free_txstats64(struct bwi_softc *sc) { /* TODO:64 */ } static void bwi_free_rx_ring64(struct bwi_softc *sc) { /* TODO:64 */ } static void bwi_free_tx_ring64(struct bwi_softc *sc, int ring_idx) { /* TODO:64 */ } /* XXX does not belong here */ #define IEEE80211_OFDM_PLCP_RATE_MASK __BITS(3, 0) #define IEEE80211_OFDM_PLCP_LEN_MASK __BITS(16, 5) static __inline void bwi_ofdm_plcp_header(uint32_t *plcp0, int pkt_len, uint8_t rate) { uint32_t plcp; plcp = __SHIFTIN(ieee80211_rate2plcp(rate, IEEE80211_T_OFDM), IEEE80211_OFDM_PLCP_RATE_MASK) | __SHIFTIN(pkt_len, IEEE80211_OFDM_PLCP_LEN_MASK); *plcp0 = htole32(plcp); } static __inline void bwi_ds_plcp_header(struct ieee80211_ds_plcp_hdr *plcp, int pkt_len, uint8_t rate) { int len, service, pkt_bitlen; pkt_bitlen = pkt_len * NBBY; len = howmany(pkt_bitlen * 2, rate); service = IEEE80211_PLCP_SERVICE_LOCKED; if (rate == (11 * 2)) { int pkt_bitlen1; /* * PLCP service field needs to be adjusted, * if TX rate is 11Mbytes/s */ pkt_bitlen1 = len * 11; if (pkt_bitlen1 - pkt_bitlen >= NBBY) service |= IEEE80211_PLCP_SERVICE_LENEXT7; } plcp->i_signal = ieee80211_rate2plcp(rate, IEEE80211_T_CCK); plcp->i_service = service; plcp->i_length = htole16(len); /* NOTE: do NOT touch i_crc */ } static __inline void bwi_plcp_header(const struct ieee80211_rate_table *rt, void *plcp, int pkt_len, uint8_t rate) { enum ieee80211_phytype modtype; /* * Assume caller has zeroed 'plcp' */ modtype = ieee80211_rate2phytype(rt, rate); if (modtype == IEEE80211_T_OFDM) bwi_ofdm_plcp_header(plcp, pkt_len, rate); else if (modtype == IEEE80211_T_DS) bwi_ds_plcp_header(plcp, pkt_len, rate); else panic("unsupport modulation type %u\n", modtype); } static int bwi_encap(struct bwi_softc *sc, int idx, struct mbuf *m, struct ieee80211_node *ni) { struct ieee80211vap *vap = ni->ni_vap; struct ieee80211com *ic = &sc->sc_ic; struct bwi_ring_data *rd = &sc->sc_tx_rdata[BWI_TX_DATA_RING]; struct bwi_txbuf_data *tbd = &sc->sc_tx_bdata[BWI_TX_DATA_RING]; struct bwi_txbuf *tb = &tbd->tbd_buf[idx]; struct bwi_mac *mac; struct bwi_txbuf_hdr *hdr; struct ieee80211_frame *wh; const struct ieee80211_txparam *tp = ni->ni_txparms; uint8_t rate, rate_fb; uint32_t mac_ctrl; uint16_t phy_ctrl; bus_addr_t paddr; int type, ismcast, pkt_len, error, rix; #if 0 const uint8_t *p; int i; #endif KASSERT(sc->sc_cur_regwin->rw_type == BWI_REGWIN_T_MAC, ("current regwin type %d", sc->sc_cur_regwin->rw_type)); mac = (struct bwi_mac *)sc->sc_cur_regwin; wh = mtod(m, struct ieee80211_frame *); type = wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK; ismcast = IEEE80211_IS_MULTICAST(wh->i_addr1); /* Get 802.11 frame len before prepending TX header */ pkt_len = m->m_pkthdr.len + IEEE80211_CRC_LEN; /* * Find TX rate */ if (type != IEEE80211_FC0_TYPE_DATA || (m->m_flags & M_EAPOL)) { rate = rate_fb = tp->mgmtrate; } else if (ismcast) { rate = rate_fb = tp->mcastrate; } else if (tp->ucastrate != IEEE80211_FIXED_RATE_NONE) { rate = rate_fb = tp->ucastrate; } else { rix = ieee80211_ratectl_rate(ni, NULL, pkt_len); rate = ni->ni_txrate; if (rix > 0) { rate_fb = ni->ni_rates.rs_rates[rix-1] & IEEE80211_RATE_VAL; } else { rate_fb = rate; } } tb->tb_rate[0] = rate; tb->tb_rate[1] = rate_fb; sc->sc_tx_rate = rate; /* * TX radio tap */ if (ieee80211_radiotap_active_vap(vap)) { sc->sc_tx_th.wt_flags = 0; if (wh->i_fc[1] & IEEE80211_FC1_PROTECTED) sc->sc_tx_th.wt_flags |= IEEE80211_RADIOTAP_F_WEP; if (ieee80211_rate2phytype(sc->sc_rates, rate) == IEEE80211_T_DS && (ic->ic_flags & IEEE80211_F_SHPREAMBLE) && rate != (1 * 2)) { sc->sc_tx_th.wt_flags |= IEEE80211_RADIOTAP_F_SHORTPRE; } sc->sc_tx_th.wt_rate = rate; ieee80211_radiotap_tx(vap, m); } /* * Setup the embedded TX header */ M_PREPEND(m, sizeof(*hdr), M_NOWAIT); if (m == NULL) { device_printf(sc->sc_dev, "%s: prepend TX header failed\n", __func__); return ENOBUFS; } hdr = mtod(m, struct bwi_txbuf_hdr *); bzero(hdr, sizeof(*hdr)); bcopy(wh->i_fc, hdr->txh_fc, sizeof(hdr->txh_fc)); bcopy(wh->i_addr1, hdr->txh_addr1, sizeof(hdr->txh_addr1)); if (!ismcast) { uint16_t dur; dur = ieee80211_ack_duration(sc->sc_rates, rate, ic->ic_flags & ~IEEE80211_F_SHPREAMBLE); hdr->txh_fb_duration = htole16(dur); } hdr->txh_id = __SHIFTIN(BWI_TX_DATA_RING, BWI_TXH_ID_RING_MASK) | __SHIFTIN(idx, BWI_TXH_ID_IDX_MASK); bwi_plcp_header(sc->sc_rates, hdr->txh_plcp, pkt_len, rate); bwi_plcp_header(sc->sc_rates, hdr->txh_fb_plcp, pkt_len, rate_fb); phy_ctrl = __SHIFTIN(mac->mac_rf.rf_ant_mode, BWI_TXH_PHY_C_ANTMODE_MASK); if (ieee80211_rate2phytype(sc->sc_rates, rate) == IEEE80211_T_OFDM) phy_ctrl |= BWI_TXH_PHY_C_OFDM; else if ((ic->ic_flags & IEEE80211_F_SHPREAMBLE) && rate != (2 * 1)) phy_ctrl |= BWI_TXH_PHY_C_SHPREAMBLE; mac_ctrl = BWI_TXH_MAC_C_HWSEQ | BWI_TXH_MAC_C_FIRST_FRAG; if (!ismcast) mac_ctrl |= BWI_TXH_MAC_C_ACK; if (ieee80211_rate2phytype(sc->sc_rates, rate_fb) == IEEE80211_T_OFDM) mac_ctrl |= BWI_TXH_MAC_C_FB_OFDM; hdr->txh_mac_ctrl = htole32(mac_ctrl); hdr->txh_phy_ctrl = htole16(phy_ctrl); /* Catch any further usage */ hdr = NULL; wh = NULL; /* DMA load */ error = bus_dmamap_load_mbuf(sc->sc_buf_dtag, tb->tb_dmap, m, bwi_dma_buf_addr, &paddr, BUS_DMA_NOWAIT); if (error && error != EFBIG) { device_printf(sc->sc_dev, "%s: can't load TX buffer (1) %d\n", __func__, error); goto back; } if (error) { /* error == EFBIG */ struct mbuf *m_new; m_new = m_defrag(m, M_NOWAIT); if (m_new == NULL) { device_printf(sc->sc_dev, "%s: can't defrag TX buffer\n", __func__); error = ENOBUFS; goto back; } else { m = m_new; } error = bus_dmamap_load_mbuf(sc->sc_buf_dtag, tb->tb_dmap, m, bwi_dma_buf_addr, &paddr, BUS_DMA_NOWAIT); if (error) { device_printf(sc->sc_dev, "%s: can't load TX buffer (2) %d\n", __func__, error); goto back; } } error = 0; bus_dmamap_sync(sc->sc_buf_dtag, tb->tb_dmap, BUS_DMASYNC_PREWRITE); tb->tb_mbuf = m; tb->tb_ni = ni; #if 0 p = mtod(m, const uint8_t *); for (i = 0; i < m->m_pkthdr.len; ++i) { if (i != 0 && i % 8 == 0) printf("\n"); printf("%02x ", p[i]); } printf("\n"); #endif DPRINTF(sc, BWI_DBG_TX, "idx %d, pkt_len %d, buflen %d\n", idx, pkt_len, m->m_pkthdr.len); /* Setup TX descriptor */ sc->sc_setup_txdesc(sc, rd, idx, paddr, m->m_pkthdr.len); bus_dmamap_sync(sc->sc_txring_dtag, rd->rdata_dmap, BUS_DMASYNC_PREWRITE); /* Kick start */ sc->sc_start_tx(sc, rd->rdata_txrx_ctrl, idx); back: if (error) m_freem(m); return error; } static int bwi_encap_raw(struct bwi_softc *sc, int idx, struct mbuf *m, struct ieee80211_node *ni, const struct ieee80211_bpf_params *params) { struct ieee80211vap *vap = ni->ni_vap; struct ieee80211com *ic = ni->ni_ic; struct bwi_ring_data *rd = &sc->sc_tx_rdata[BWI_TX_DATA_RING]; struct bwi_txbuf_data *tbd = &sc->sc_tx_bdata[BWI_TX_DATA_RING]; struct bwi_txbuf *tb = &tbd->tbd_buf[idx]; struct bwi_mac *mac; struct bwi_txbuf_hdr *hdr; struct ieee80211_frame *wh; uint8_t rate, rate_fb; uint32_t mac_ctrl; uint16_t phy_ctrl; bus_addr_t paddr; int ismcast, pkt_len, error; KASSERT(sc->sc_cur_regwin->rw_type == BWI_REGWIN_T_MAC, ("current regwin type %d", sc->sc_cur_regwin->rw_type)); mac = (struct bwi_mac *)sc->sc_cur_regwin; wh = mtod(m, struct ieee80211_frame *); ismcast = IEEE80211_IS_MULTICAST(wh->i_addr1); /* Get 802.11 frame len before prepending TX header */ pkt_len = m->m_pkthdr.len + IEEE80211_CRC_LEN; /* * Find TX rate */ rate = params->ibp_rate0; if (!ieee80211_isratevalid(ic->ic_rt, rate)) { /* XXX fall back to mcast/mgmt rate? */ m_freem(m); return EINVAL; } if (params->ibp_try1 != 0) { rate_fb = params->ibp_rate1; if (!ieee80211_isratevalid(ic->ic_rt, rate_fb)) { /* XXX fall back to rate0? */ m_freem(m); return EINVAL; } } else rate_fb = rate; tb->tb_rate[0] = rate; tb->tb_rate[1] = rate_fb; sc->sc_tx_rate = rate; /* * TX radio tap */ if (ieee80211_radiotap_active_vap(vap)) { sc->sc_tx_th.wt_flags = 0; /* XXX IEEE80211_BPF_CRYPTO */ if (wh->i_fc[1] & IEEE80211_FC1_PROTECTED) sc->sc_tx_th.wt_flags |= IEEE80211_RADIOTAP_F_WEP; if (params->ibp_flags & IEEE80211_BPF_SHORTPRE) sc->sc_tx_th.wt_flags |= IEEE80211_RADIOTAP_F_SHORTPRE; sc->sc_tx_th.wt_rate = rate; ieee80211_radiotap_tx(vap, m); } /* * Setup the embedded TX header */ M_PREPEND(m, sizeof(*hdr), M_NOWAIT); if (m == NULL) { device_printf(sc->sc_dev, "%s: prepend TX header failed\n", __func__); return ENOBUFS; } hdr = mtod(m, struct bwi_txbuf_hdr *); bzero(hdr, sizeof(*hdr)); bcopy(wh->i_fc, hdr->txh_fc, sizeof(hdr->txh_fc)); bcopy(wh->i_addr1, hdr->txh_addr1, sizeof(hdr->txh_addr1)); mac_ctrl = BWI_TXH_MAC_C_HWSEQ | BWI_TXH_MAC_C_FIRST_FRAG; if (!ismcast && (params->ibp_flags & IEEE80211_BPF_NOACK) == 0) { uint16_t dur; dur = ieee80211_ack_duration(sc->sc_rates, rate_fb, 0); hdr->txh_fb_duration = htole16(dur); mac_ctrl |= BWI_TXH_MAC_C_ACK; } hdr->txh_id = __SHIFTIN(BWI_TX_DATA_RING, BWI_TXH_ID_RING_MASK) | __SHIFTIN(idx, BWI_TXH_ID_IDX_MASK); bwi_plcp_header(sc->sc_rates, hdr->txh_plcp, pkt_len, rate); bwi_plcp_header(sc->sc_rates, hdr->txh_fb_plcp, pkt_len, rate_fb); phy_ctrl = __SHIFTIN(mac->mac_rf.rf_ant_mode, BWI_TXH_PHY_C_ANTMODE_MASK); if (ieee80211_rate2phytype(sc->sc_rates, rate) == IEEE80211_T_OFDM) { phy_ctrl |= BWI_TXH_PHY_C_OFDM; mac_ctrl |= BWI_TXH_MAC_C_FB_OFDM; } else if (params->ibp_flags & IEEE80211_BPF_SHORTPRE) phy_ctrl |= BWI_TXH_PHY_C_SHPREAMBLE; hdr->txh_mac_ctrl = htole32(mac_ctrl); hdr->txh_phy_ctrl = htole16(phy_ctrl); /* Catch any further usage */ hdr = NULL; wh = NULL; /* DMA load */ error = bus_dmamap_load_mbuf(sc->sc_buf_dtag, tb->tb_dmap, m, bwi_dma_buf_addr, &paddr, BUS_DMA_NOWAIT); if (error != 0) { struct mbuf *m_new; if (error != EFBIG) { device_printf(sc->sc_dev, "%s: can't load TX buffer (1) %d\n", __func__, error); goto back; } m_new = m_defrag(m, M_NOWAIT); if (m_new == NULL) { device_printf(sc->sc_dev, "%s: can't defrag TX buffer\n", __func__); error = ENOBUFS; goto back; } m = m_new; error = bus_dmamap_load_mbuf(sc->sc_buf_dtag, tb->tb_dmap, m, bwi_dma_buf_addr, &paddr, BUS_DMA_NOWAIT); if (error) { device_printf(sc->sc_dev, "%s: can't load TX buffer (2) %d\n", __func__, error); goto back; } } bus_dmamap_sync(sc->sc_buf_dtag, tb->tb_dmap, BUS_DMASYNC_PREWRITE); tb->tb_mbuf = m; tb->tb_ni = ni; DPRINTF(sc, BWI_DBG_TX, "idx %d, pkt_len %d, buflen %d\n", idx, pkt_len, m->m_pkthdr.len); /* Setup TX descriptor */ sc->sc_setup_txdesc(sc, rd, idx, paddr, m->m_pkthdr.len); bus_dmamap_sync(sc->sc_txring_dtag, rd->rdata_dmap, BUS_DMASYNC_PREWRITE); /* Kick start */ sc->sc_start_tx(sc, rd->rdata_txrx_ctrl, idx); back: if (error) m_freem(m); return error; } static void bwi_start_tx32(struct bwi_softc *sc, uint32_t tx_ctrl, int idx) { idx = (idx + 1) % BWI_TX_NDESC; CSR_WRITE_4(sc, tx_ctrl + BWI_TX32_INDEX, idx * sizeof(struct bwi_desc32)); } static void bwi_start_tx64(struct bwi_softc *sc, uint32_t tx_ctrl, int idx) { /* TODO:64 */ } static void bwi_txeof_status32(struct bwi_softc *sc) { uint32_t val, ctrl_base; int end_idx; ctrl_base = sc->sc_txstats->stats_ctrl_base; val = CSR_READ_4(sc, ctrl_base + BWI_RX32_STATUS); end_idx = __SHIFTOUT(val, BWI_RX32_STATUS_INDEX_MASK) / sizeof(struct bwi_desc32); bwi_txeof_status(sc, end_idx); CSR_WRITE_4(sc, ctrl_base + BWI_RX32_INDEX, end_idx * sizeof(struct bwi_desc32)); bwi_start_locked(sc); } static void bwi_txeof_status64(struct bwi_softc *sc) { /* TODO:64 */ } static void _bwi_txeof(struct bwi_softc *sc, uint16_t tx_id, int acked, int data_txcnt) { struct bwi_txbuf_data *tbd; struct bwi_txbuf *tb; int ring_idx, buf_idx; struct ieee80211_node *ni; if (tx_id == 0) { device_printf(sc->sc_dev, "%s: zero tx id\n", __func__); return; } ring_idx = __SHIFTOUT(tx_id, BWI_TXH_ID_RING_MASK); buf_idx = __SHIFTOUT(tx_id, BWI_TXH_ID_IDX_MASK); KASSERT(ring_idx == BWI_TX_DATA_RING, ("ring_idx %d", ring_idx)); KASSERT(buf_idx < BWI_TX_NDESC, ("buf_idx %d", buf_idx)); tbd = &sc->sc_tx_bdata[ring_idx]; KASSERT(tbd->tbd_used > 0, ("tbd_used %d", tbd->tbd_used)); tbd->tbd_used--; tb = &tbd->tbd_buf[buf_idx]; DPRINTF(sc, BWI_DBG_TXEOF, "txeof idx %d, " "acked %d, data_txcnt %d, ni %p\n", buf_idx, acked, data_txcnt, tb->tb_ni); bus_dmamap_unload(sc->sc_buf_dtag, tb->tb_dmap); if ((ni = tb->tb_ni) != NULL) { const struct bwi_txbuf_hdr *hdr = mtod(tb->tb_mbuf, const struct bwi_txbuf_hdr *); struct ieee80211_ratectl_tx_status txs; /* NB: update rate control only for unicast frames */ if (hdr->txh_mac_ctrl & htole32(BWI_TXH_MAC_C_ACK)) { /* * Feed back 'acked and data_txcnt'. Note that the * generic AMRR code only understands one tx rate * and the estimator doesn't handle real retry counts * well so to avoid over-aggressive downshifting we * treat any number of retries as "1". */ txs.flags = IEEE80211_RATECTL_STATUS_LONG_RETRY; txs.long_retries = acked; if (data_txcnt > 1) txs.status = IEEE80211_RATECTL_TX_SUCCESS; else { txs.status = IEEE80211_RATECTL_TX_FAIL_UNSPECIFIED; } ieee80211_ratectl_tx_complete(ni, &txs); } ieee80211_tx_complete(ni, tb->tb_mbuf, !acked); tb->tb_ni = NULL; } else m_freem(tb->tb_mbuf); tb->tb_mbuf = NULL; if (tbd->tbd_used == 0) sc->sc_tx_timer = 0; } static void bwi_txeof_status(struct bwi_softc *sc, int end_idx) { struct bwi_txstats_data *st = sc->sc_txstats; int idx; bus_dmamap_sync(st->stats_dtag, st->stats_dmap, BUS_DMASYNC_POSTREAD); idx = st->stats_idx; while (idx != end_idx) { const struct bwi_txstats *stats = &st->stats[idx]; if ((stats->txs_flags & BWI_TXS_F_PENDING) == 0) { int data_txcnt; data_txcnt = __SHIFTOUT(stats->txs_txcnt, BWI_TXS_TXCNT_DATA); _bwi_txeof(sc, le16toh(stats->txs_id), stats->txs_flags & BWI_TXS_F_ACKED, data_txcnt); } idx = (idx + 1) % BWI_TXSTATS_NDESC; } st->stats_idx = idx; } static void bwi_txeof(struct bwi_softc *sc) { for (;;) { uint32_t tx_status0, tx_status1; uint16_t tx_id; int data_txcnt; tx_status0 = CSR_READ_4(sc, BWI_TXSTATUS0); if ((tx_status0 & BWI_TXSTATUS0_VALID) == 0) break; tx_status1 = CSR_READ_4(sc, BWI_TXSTATUS1); tx_id = __SHIFTOUT(tx_status0, BWI_TXSTATUS0_TXID_MASK); data_txcnt = __SHIFTOUT(tx_status0, BWI_TXSTATUS0_DATA_TXCNT_MASK); if (tx_status0 & (BWI_TXSTATUS0_AMPDU | BWI_TXSTATUS0_PENDING)) continue; _bwi_txeof(sc, le16toh(tx_id), tx_status0 & BWI_TXSTATUS0_ACKED, data_txcnt); } bwi_start_locked(sc); } static int bwi_bbp_power_on(struct bwi_softc *sc, enum bwi_clock_mode clk_mode) { bwi_power_on(sc, 1); return bwi_set_clock_mode(sc, clk_mode); } static void bwi_bbp_power_off(struct bwi_softc *sc) { bwi_set_clock_mode(sc, BWI_CLOCK_MODE_SLOW); bwi_power_off(sc, 1); } static int bwi_get_pwron_delay(struct bwi_softc *sc) { struct bwi_regwin *com, *old; struct bwi_clock_freq freq; uint32_t val; int error; com = &sc->sc_com_regwin; KASSERT(BWI_REGWIN_EXIST(com), ("no regwin")); if ((sc->sc_cap & BWI_CAP_CLKMODE) == 0) return 0; error = bwi_regwin_switch(sc, com, &old); if (error) return error; bwi_get_clock_freq(sc, &freq); val = CSR_READ_4(sc, BWI_PLL_ON_DELAY); sc->sc_pwron_delay = howmany((val + 2) * 1000000, freq.clkfreq_min); DPRINTF(sc, BWI_DBG_ATTACH, "power on delay %u\n", sc->sc_pwron_delay); return bwi_regwin_switch(sc, old, NULL); } static int bwi_bus_attach(struct bwi_softc *sc) { struct bwi_regwin *bus, *old; int error; bus = &sc->sc_bus_regwin; error = bwi_regwin_switch(sc, bus, &old); if (error) return error; if (!bwi_regwin_is_enabled(sc, bus)) bwi_regwin_enable(sc, bus, 0); /* Disable interripts */ CSR_WRITE_4(sc, BWI_INTRVEC, 0); return bwi_regwin_switch(sc, old, NULL); } static const char * bwi_regwin_name(const struct bwi_regwin *rw) { switch (rw->rw_type) { case BWI_REGWIN_T_COM: return "COM"; case BWI_REGWIN_T_BUSPCI: return "PCI"; case BWI_REGWIN_T_MAC: return "MAC"; case BWI_REGWIN_T_BUSPCIE: return "PCIE"; } panic("unknown regwin type 0x%04x\n", rw->rw_type); return NULL; } static uint32_t bwi_regwin_disable_bits(struct bwi_softc *sc) { uint32_t busrev; /* XXX cache this */ busrev = __SHIFTOUT(CSR_READ_4(sc, BWI_ID_LO), BWI_ID_LO_BUSREV_MASK); DPRINTF(sc, BWI_DBG_ATTACH | BWI_DBG_INIT | BWI_DBG_MISC, "bus rev %u\n", busrev); if (busrev == BWI_BUSREV_0) return BWI_STATE_LO_DISABLE1; else if (busrev == BWI_BUSREV_1) return BWI_STATE_LO_DISABLE2; else return (BWI_STATE_LO_DISABLE1 | BWI_STATE_LO_DISABLE2); } int bwi_regwin_is_enabled(struct bwi_softc *sc, struct bwi_regwin *rw) { uint32_t val, disable_bits; disable_bits = bwi_regwin_disable_bits(sc); val = CSR_READ_4(sc, BWI_STATE_LO); if ((val & (BWI_STATE_LO_CLOCK | BWI_STATE_LO_RESET | disable_bits)) == BWI_STATE_LO_CLOCK) { DPRINTF(sc, BWI_DBG_ATTACH | BWI_DBG_INIT, "%s is enabled\n", bwi_regwin_name(rw)); return 1; } else { DPRINTF(sc, BWI_DBG_ATTACH | BWI_DBG_INIT, "%s is disabled\n", bwi_regwin_name(rw)); return 0; } } void bwi_regwin_disable(struct bwi_softc *sc, struct bwi_regwin *rw, uint32_t flags) { uint32_t state_lo, disable_bits; int i; state_lo = CSR_READ_4(sc, BWI_STATE_LO); /* * If current regwin is in 'reset' state, it was already disabled. */ if (state_lo & BWI_STATE_LO_RESET) { DPRINTF(sc, BWI_DBG_ATTACH | BWI_DBG_INIT, "%s was already disabled\n", bwi_regwin_name(rw)); return; } disable_bits = bwi_regwin_disable_bits(sc); /* * Disable normal clock */ state_lo = BWI_STATE_LO_CLOCK | disable_bits; CSR_WRITE_4(sc, BWI_STATE_LO, state_lo); /* * Wait until normal clock is disabled */ #define NRETRY 1000 for (i = 0; i < NRETRY; ++i) { state_lo = CSR_READ_4(sc, BWI_STATE_LO); if (state_lo & disable_bits) break; DELAY(10); } if (i == NRETRY) { device_printf(sc->sc_dev, "%s disable clock timeout\n", bwi_regwin_name(rw)); } for (i = 0; i < NRETRY; ++i) { uint32_t state_hi; state_hi = CSR_READ_4(sc, BWI_STATE_HI); if ((state_hi & BWI_STATE_HI_BUSY) == 0) break; DELAY(10); } if (i == NRETRY) { device_printf(sc->sc_dev, "%s wait BUSY unset timeout\n", bwi_regwin_name(rw)); } #undef NRETRY /* * Reset and disable regwin with gated clock */ state_lo = BWI_STATE_LO_RESET | disable_bits | BWI_STATE_LO_CLOCK | BWI_STATE_LO_GATED_CLOCK | __SHIFTIN(flags, BWI_STATE_LO_FLAGS_MASK); CSR_WRITE_4(sc, BWI_STATE_LO, state_lo); /* Flush pending bus write */ CSR_READ_4(sc, BWI_STATE_LO); DELAY(1); /* Reset and disable regwin */ state_lo = BWI_STATE_LO_RESET | disable_bits | __SHIFTIN(flags, BWI_STATE_LO_FLAGS_MASK); CSR_WRITE_4(sc, BWI_STATE_LO, state_lo); /* Flush pending bus write */ CSR_READ_4(sc, BWI_STATE_LO); DELAY(1); } void bwi_regwin_enable(struct bwi_softc *sc, struct bwi_regwin *rw, uint32_t flags) { uint32_t state_lo, state_hi, imstate; bwi_regwin_disable(sc, rw, flags); /* Reset regwin with gated clock */ state_lo = BWI_STATE_LO_RESET | BWI_STATE_LO_CLOCK | BWI_STATE_LO_GATED_CLOCK | __SHIFTIN(flags, BWI_STATE_LO_FLAGS_MASK); CSR_WRITE_4(sc, BWI_STATE_LO, state_lo); /* Flush pending bus write */ CSR_READ_4(sc, BWI_STATE_LO); DELAY(1); state_hi = CSR_READ_4(sc, BWI_STATE_HI); if (state_hi & BWI_STATE_HI_SERROR) CSR_WRITE_4(sc, BWI_STATE_HI, 0); imstate = CSR_READ_4(sc, BWI_IMSTATE); if (imstate & (BWI_IMSTATE_INBAND_ERR | BWI_IMSTATE_TIMEOUT)) { imstate &= ~(BWI_IMSTATE_INBAND_ERR | BWI_IMSTATE_TIMEOUT); CSR_WRITE_4(sc, BWI_IMSTATE, imstate); } /* Enable regwin with gated clock */ state_lo = BWI_STATE_LO_CLOCK | BWI_STATE_LO_GATED_CLOCK | __SHIFTIN(flags, BWI_STATE_LO_FLAGS_MASK); CSR_WRITE_4(sc, BWI_STATE_LO, state_lo); /* Flush pending bus write */ CSR_READ_4(sc, BWI_STATE_LO); DELAY(1); /* Enable regwin with normal clock */ state_lo = BWI_STATE_LO_CLOCK | __SHIFTIN(flags, BWI_STATE_LO_FLAGS_MASK); CSR_WRITE_4(sc, BWI_STATE_LO, state_lo); /* Flush pending bus write */ CSR_READ_4(sc, BWI_STATE_LO); DELAY(1); } static void bwi_set_bssid(struct bwi_softc *sc, const uint8_t *bssid) { struct bwi_mac *mac; struct bwi_myaddr_bssid buf; const uint8_t *p; uint32_t val; int n, i; KASSERT(sc->sc_cur_regwin->rw_type == BWI_REGWIN_T_MAC, ("current regwin type %d", sc->sc_cur_regwin->rw_type)); mac = (struct bwi_mac *)sc->sc_cur_regwin; bwi_set_addr_filter(sc, BWI_ADDR_FILTER_BSSID, bssid); bcopy(sc->sc_ic.ic_macaddr, buf.myaddr, sizeof(buf.myaddr)); bcopy(bssid, buf.bssid, sizeof(buf.bssid)); n = sizeof(buf) / sizeof(val); p = (const uint8_t *)&buf; for (i = 0; i < n; ++i) { int j; val = 0; for (j = 0; j < sizeof(val); ++j) val |= ((uint32_t)(*p++)) << (j * 8); TMPLT_WRITE_4(mac, 0x20 + (i * sizeof(val)), val); } } static void bwi_updateslot(struct ieee80211com *ic) { struct bwi_softc *sc = ic->ic_softc; struct bwi_mac *mac; BWI_LOCK(sc); if (sc->sc_flags & BWI_F_RUNNING) { DPRINTF(sc, BWI_DBG_80211, "%s\n", __func__); KASSERT(sc->sc_cur_regwin->rw_type == BWI_REGWIN_T_MAC, ("current regwin type %d", sc->sc_cur_regwin->rw_type)); mac = (struct bwi_mac *)sc->sc_cur_regwin; bwi_mac_updateslot(mac, (ic->ic_flags & IEEE80211_F_SHSLOT)); } BWI_UNLOCK(sc); } static void bwi_calibrate(void *xsc) { struct bwi_softc *sc = xsc; struct bwi_mac *mac; BWI_ASSERT_LOCKED(sc); KASSERT(sc->sc_ic.ic_opmode != IEEE80211_M_MONITOR, ("opmode %d", sc->sc_ic.ic_opmode)); KASSERT(sc->sc_cur_regwin->rw_type == BWI_REGWIN_T_MAC, ("current regwin type %d", sc->sc_cur_regwin->rw_type)); mac = (struct bwi_mac *)sc->sc_cur_regwin; bwi_mac_calibrate_txpower(mac, sc->sc_txpwrcb_type); sc->sc_txpwrcb_type = BWI_TXPWR_CALIB; /* XXX 15 seconds */ callout_reset(&sc->sc_calib_ch, hz * 15, bwi_calibrate, sc); } static int bwi_calc_rssi(struct bwi_softc *sc, const struct bwi_rxbuf_hdr *hdr) { struct bwi_mac *mac; KASSERT(sc->sc_cur_regwin->rw_type == BWI_REGWIN_T_MAC, ("current regwin type %d", sc->sc_cur_regwin->rw_type)); mac = (struct bwi_mac *)sc->sc_cur_regwin; return bwi_rf_calc_rssi(mac, hdr); } static int bwi_calc_noise(struct bwi_softc *sc) { struct bwi_mac *mac; KASSERT(sc->sc_cur_regwin->rw_type == BWI_REGWIN_T_MAC, ("current regwin type %d", sc->sc_cur_regwin->rw_type)); mac = (struct bwi_mac *)sc->sc_cur_regwin; return bwi_rf_calc_noise(mac); } static __inline uint8_t bwi_plcp2rate(const uint32_t plcp0, enum ieee80211_phytype type) { uint32_t plcp = le32toh(plcp0) & IEEE80211_OFDM_PLCP_RATE_MASK; return (ieee80211_plcp2rate(plcp, type)); } static void bwi_rx_radiotap(struct bwi_softc *sc, struct mbuf *m, struct bwi_rxbuf_hdr *hdr, const void *plcp, int rate, int rssi, int noise) { const struct ieee80211_frame_min *wh; sc->sc_rx_th.wr_flags = IEEE80211_RADIOTAP_F_FCS; if (htole16(hdr->rxh_flags1) & BWI_RXH_F1_SHPREAMBLE) sc->sc_rx_th.wr_flags |= IEEE80211_RADIOTAP_F_SHORTPRE; wh = mtod(m, const struct ieee80211_frame_min *); if (wh->i_fc[1] & IEEE80211_FC1_PROTECTED) sc->sc_rx_th.wr_flags |= IEEE80211_RADIOTAP_F_WEP; sc->sc_rx_th.wr_tsf = hdr->rxh_tsf; /* No endian conversion */ sc->sc_rx_th.wr_rate = rate; sc->sc_rx_th.wr_antsignal = rssi; sc->sc_rx_th.wr_antnoise = noise; } static void bwi_led_attach(struct bwi_softc *sc) { const uint8_t *led_act = NULL; uint16_t gpio, val[BWI_LED_MAX]; int i; for (i = 0; i < nitems(bwi_vendor_led_act); ++i) { if (sc->sc_pci_subvid == bwi_vendor_led_act[i].vid) { led_act = bwi_vendor_led_act[i].led_act; break; } } if (led_act == NULL) led_act = bwi_default_led_act; gpio = bwi_read_sprom(sc, BWI_SPROM_GPIO01); val[0] = __SHIFTOUT(gpio, BWI_SPROM_GPIO_0); val[1] = __SHIFTOUT(gpio, BWI_SPROM_GPIO_1); gpio = bwi_read_sprom(sc, BWI_SPROM_GPIO23); val[2] = __SHIFTOUT(gpio, BWI_SPROM_GPIO_2); val[3] = __SHIFTOUT(gpio, BWI_SPROM_GPIO_3); for (i = 0; i < BWI_LED_MAX; ++i) { struct bwi_led *led = &sc->sc_leds[i]; if (val[i] == 0xff) { led->l_act = led_act[i]; } else { if (val[i] & BWI_LED_ACT_LOW) led->l_flags |= BWI_LED_F_ACTLOW; led->l_act = __SHIFTOUT(val[i], BWI_LED_ACT_MASK); } led->l_mask = (1 << i); if (led->l_act == BWI_LED_ACT_BLINK_SLOW || led->l_act == BWI_LED_ACT_BLINK_POLL || led->l_act == BWI_LED_ACT_BLINK) { led->l_flags |= BWI_LED_F_BLINK; if (led->l_act == BWI_LED_ACT_BLINK_POLL) led->l_flags |= BWI_LED_F_POLLABLE; else if (led->l_act == BWI_LED_ACT_BLINK_SLOW) led->l_flags |= BWI_LED_F_SLOW; if (sc->sc_blink_led == NULL) { sc->sc_blink_led = led; if (led->l_flags & BWI_LED_F_SLOW) BWI_LED_SLOWDOWN(sc->sc_led_idle); } } DPRINTF(sc, BWI_DBG_LED | BWI_DBG_ATTACH, "%dth led, act %d, lowact %d\n", i, led->l_act, led->l_flags & BWI_LED_F_ACTLOW); } callout_init_mtx(&sc->sc_led_blink_ch, &sc->sc_mtx, 0); } static __inline uint16_t bwi_led_onoff(const struct bwi_led *led, uint16_t val, int on) { if (led->l_flags & BWI_LED_F_ACTLOW) on = !on; if (on) val |= led->l_mask; else val &= ~led->l_mask; return val; } static void bwi_led_newstate(struct bwi_softc *sc, enum ieee80211_state nstate) { struct ieee80211com *ic = &sc->sc_ic; uint16_t val; int i; if (nstate == IEEE80211_S_INIT) { callout_stop(&sc->sc_led_blink_ch); sc->sc_led_blinking = 0; } if ((sc->sc_flags & BWI_F_RUNNING) == 0) return; val = CSR_READ_2(sc, BWI_MAC_GPIO_CTRL); for (i = 0; i < BWI_LED_MAX; ++i) { struct bwi_led *led = &sc->sc_leds[i]; int on; if (led->l_act == BWI_LED_ACT_UNKN || led->l_act == BWI_LED_ACT_NULL) continue; if ((led->l_flags & BWI_LED_F_BLINK) && nstate != IEEE80211_S_INIT) continue; switch (led->l_act) { case BWI_LED_ACT_ON: /* Always on */ on = 1; break; case BWI_LED_ACT_OFF: /* Always off */ case BWI_LED_ACT_5GHZ: /* TODO: 11A */ on = 0; break; default: on = 1; switch (nstate) { case IEEE80211_S_INIT: on = 0; break; case IEEE80211_S_RUN: if (led->l_act == BWI_LED_ACT_11G && ic->ic_curmode != IEEE80211_MODE_11G) on = 0; break; default: if (led->l_act == BWI_LED_ACT_ASSOC) on = 0; break; } break; } val = bwi_led_onoff(led, val, on); } CSR_WRITE_2(sc, BWI_MAC_GPIO_CTRL, val); } static void bwi_led_event(struct bwi_softc *sc, int event) { struct bwi_led *led = sc->sc_blink_led; int rate; if (event == BWI_LED_EVENT_POLL) { if ((led->l_flags & BWI_LED_F_POLLABLE) == 0) return; if (ticks - sc->sc_led_ticks < sc->sc_led_idle) return; } sc->sc_led_ticks = ticks; if (sc->sc_led_blinking) return; switch (event) { case BWI_LED_EVENT_RX: rate = sc->sc_rx_rate; break; case BWI_LED_EVENT_TX: rate = sc->sc_tx_rate; break; case BWI_LED_EVENT_POLL: rate = 0; break; default: panic("unknown LED event %d\n", event); break; } bwi_led_blink_start(sc, bwi_led_duration[rate].on_dur, bwi_led_duration[rate].off_dur); } static void bwi_led_blink_start(struct bwi_softc *sc, int on_dur, int off_dur) { struct bwi_led *led = sc->sc_blink_led; uint16_t val; val = CSR_READ_2(sc, BWI_MAC_GPIO_CTRL); val = bwi_led_onoff(led, val, 1); CSR_WRITE_2(sc, BWI_MAC_GPIO_CTRL, val); if (led->l_flags & BWI_LED_F_SLOW) { BWI_LED_SLOWDOWN(on_dur); BWI_LED_SLOWDOWN(off_dur); } sc->sc_led_blinking = 1; sc->sc_led_blink_offdur = off_dur; callout_reset(&sc->sc_led_blink_ch, on_dur, bwi_led_blink_next, sc); } static void bwi_led_blink_next(void *xsc) { struct bwi_softc *sc = xsc; uint16_t val; val = CSR_READ_2(sc, BWI_MAC_GPIO_CTRL); val = bwi_led_onoff(sc->sc_blink_led, val, 0); CSR_WRITE_2(sc, BWI_MAC_GPIO_CTRL, val); callout_reset(&sc->sc_led_blink_ch, sc->sc_led_blink_offdur, bwi_led_blink_end, sc); } static void bwi_led_blink_end(void *xsc) { struct bwi_softc *sc = xsc; sc->sc_led_blinking = 0; } static void bwi_restart(void *xsc, int pending) { struct bwi_softc *sc = xsc; device_printf(sc->sc_dev, "%s begin, help!\n", __func__); BWI_LOCK(sc); bwi_init_statechg(sc, 0); #if 0 bwi_start_locked(sc); #endif BWI_UNLOCK(sc); } Index: head/sys/dev/iwm/if_iwm.c =================================================================== --- head/sys/dev/iwm/if_iwm.c (revision 365418) +++ head/sys/dev/iwm/if_iwm.c (revision 365419) @@ -1,6704 +1,6704 @@ /* $OpenBSD: if_iwm.c,v 1.167 2017/04/04 00:40:52 claudio Exp $ */ /* * Copyright (c) 2014 genua mbh * Copyright (c) 2014 Fixup Software Ltd. * * Permission to use, copy, modify, and distribute this software for any * purpose with or without fee is hereby granted, provided that the above * copyright notice and this permission notice appear in all copies. * * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. */ /*- * Based on BSD-licensed source modules in the Linux iwlwifi driver, * which were used as the reference documentation for this implementation. * * Driver version we are currently based off of is * Linux 3.14.3 (tag id a2df521e42b1d9a23f620ac79dbfe8655a8391dd) * *********************************************************************** * * This file is provided under a dual BSD/GPLv2 license. When using or * redistributing this file, you may do so under either license. * * GPL LICENSE SUMMARY * * Copyright(c) 2007 - 2013 Intel Corporation. All rights reserved. * * This program is free software; you can redistribute it and/or modify * it under the terms of version 2 of the GNU General Public License as * published by the Free Software Foundation. * * This program is distributed in the hope that it will be useful, but * WITHOUT ANY WARRANTY; without even the implied warranty of * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU * General Public License for more details. * * You should have received a copy of the GNU General Public License * along with this program; if not, write to the Free Software * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110, * USA * * The full GNU General Public License is included in this distribution * in the file called COPYING. * * Contact Information: * Intel Linux Wireless * Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497 * * * BSD LICENSE * * Copyright(c) 2005 - 2013 Intel Corporation. All rights reserved. * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * * * Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * * Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in * the documentation and/or other materials provided with the * distribution. * * Neither the name Intel Corporation nor the names of its * contributors may be used to endorse or promote products derived * from this software without specific prior written permission. * * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. */ /*- * Copyright (c) 2007-2010 Damien Bergamini * * Permission to use, copy, modify, and distribute this software for any * purpose with or without fee is hereby granted, provided that the above * copyright notice and this permission notice appear in all copies. * * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. */ #include __FBSDID("$FreeBSD$"); #include "opt_wlan.h" #include "opt_iwm.h" #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include /* From DragonflyBSD */ #define mtodoff(m, t, off) ((t)((m)->m_data + (off))) const uint8_t iwm_nvm_channels[] = { /* 2.4 GHz */ 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, /* 5 GHz */ 36, 40, 44, 48, 52, 56, 60, 64, 100, 104, 108, 112, 116, 120, 124, 128, 132, 136, 140, 144, 149, 153, 157, 161, 165 }; _Static_assert(nitems(iwm_nvm_channels) <= IWM_NUM_CHANNELS, "IWM_NUM_CHANNELS is too small"); const uint8_t iwm_nvm_channels_8000[] = { /* 2.4 GHz */ 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, /* 5 GHz */ 36, 40, 44, 48, 52, 56, 60, 64, 68, 72, 76, 80, 84, 88, 92, 96, 100, 104, 108, 112, 116, 120, 124, 128, 132, 136, 140, 144, 149, 153, 157, 161, 165, 169, 173, 177, 181 }; _Static_assert(nitems(iwm_nvm_channels_8000) <= IWM_NUM_CHANNELS_8000, "IWM_NUM_CHANNELS_8000 is too small"); #define IWM_NUM_2GHZ_CHANNELS 14 #define IWM_N_HW_ADDR_MASK 0xF /* * XXX For now, there's simply a fixed set of rate table entries * that are populated. */ const struct iwm_rate { uint8_t rate; uint8_t plcp; } iwm_rates[] = { { 2, IWM_RATE_1M_PLCP }, { 4, IWM_RATE_2M_PLCP }, { 11, IWM_RATE_5M_PLCP }, { 22, IWM_RATE_11M_PLCP }, { 12, IWM_RATE_6M_PLCP }, { 18, IWM_RATE_9M_PLCP }, { 24, IWM_RATE_12M_PLCP }, { 36, IWM_RATE_18M_PLCP }, { 48, IWM_RATE_24M_PLCP }, { 72, IWM_RATE_36M_PLCP }, { 96, IWM_RATE_48M_PLCP }, { 108, IWM_RATE_54M_PLCP }, }; #define IWM_RIDX_CCK 0 #define IWM_RIDX_OFDM 4 #define IWM_RIDX_MAX (nitems(iwm_rates)-1) #define IWM_RIDX_IS_CCK(_i_) ((_i_) < IWM_RIDX_OFDM) #define IWM_RIDX_IS_OFDM(_i_) ((_i_) >= IWM_RIDX_OFDM) struct iwm_nvm_section { uint16_t length; uint8_t *data; }; #define IWM_UCODE_ALIVE_TIMEOUT hz #define IWM_UCODE_CALIB_TIMEOUT (2*hz) struct iwm_alive_data { int valid; uint32_t scd_base_addr; }; static int iwm_store_cscheme(struct iwm_softc *, const uint8_t *, size_t); static int iwm_firmware_store_section(struct iwm_softc *, enum iwm_ucode_type, const uint8_t *, size_t); static int iwm_set_default_calib(struct iwm_softc *, const void *); static void iwm_fw_info_free(struct iwm_fw_info *); static int iwm_read_firmware(struct iwm_softc *); static int iwm_alloc_fwmem(struct iwm_softc *); static int iwm_alloc_sched(struct iwm_softc *); static int iwm_alloc_kw(struct iwm_softc *); static int iwm_alloc_ict(struct iwm_softc *); static int iwm_alloc_rx_ring(struct iwm_softc *, struct iwm_rx_ring *); static void iwm_reset_rx_ring(struct iwm_softc *, struct iwm_rx_ring *); static void iwm_free_rx_ring(struct iwm_softc *, struct iwm_rx_ring *); static int iwm_alloc_tx_ring(struct iwm_softc *, struct iwm_tx_ring *, int); static void iwm_reset_tx_ring(struct iwm_softc *, struct iwm_tx_ring *); static void iwm_free_tx_ring(struct iwm_softc *, struct iwm_tx_ring *); static void iwm_enable_interrupts(struct iwm_softc *); static void iwm_restore_interrupts(struct iwm_softc *); static void iwm_disable_interrupts(struct iwm_softc *); static void iwm_ict_reset(struct iwm_softc *); static int iwm_allow_mcast(struct ieee80211vap *, struct iwm_softc *); static void iwm_stop_device(struct iwm_softc *); static void iwm_nic_config(struct iwm_softc *); static int iwm_nic_rx_init(struct iwm_softc *); static int iwm_nic_tx_init(struct iwm_softc *); static int iwm_nic_init(struct iwm_softc *); static int iwm_trans_pcie_fw_alive(struct iwm_softc *, uint32_t); static int iwm_nvm_read_chunk(struct iwm_softc *, uint16_t, uint16_t, uint16_t, uint8_t *, uint16_t *); static int iwm_nvm_read_section(struct iwm_softc *, uint16_t, uint8_t *, uint16_t *, uint32_t); static uint32_t iwm_eeprom_channel_flags(uint16_t); static void iwm_add_channel_band(struct iwm_softc *, struct ieee80211_channel[], int, int *, int, size_t, const uint8_t[]); static void iwm_init_channel_map(struct ieee80211com *, int, int *, struct ieee80211_channel[]); static struct iwm_nvm_data * iwm_parse_nvm_data(struct iwm_softc *, const uint16_t *, const uint16_t *, const uint16_t *, const uint16_t *, const uint16_t *, const uint16_t *); static void iwm_free_nvm_data(struct iwm_nvm_data *); static void iwm_set_hw_address_family_8000(struct iwm_softc *, struct iwm_nvm_data *, const uint16_t *, const uint16_t *); static int iwm_get_sku(const struct iwm_softc *, const uint16_t *, const uint16_t *); static int iwm_get_nvm_version(const struct iwm_softc *, const uint16_t *); static int iwm_get_radio_cfg(const struct iwm_softc *, const uint16_t *, const uint16_t *); static int iwm_get_n_hw_addrs(const struct iwm_softc *, const uint16_t *); static void iwm_set_radio_cfg(const struct iwm_softc *, struct iwm_nvm_data *, uint32_t); static struct iwm_nvm_data * iwm_parse_nvm_sections(struct iwm_softc *, struct iwm_nvm_section *); static int iwm_nvm_init(struct iwm_softc *); static int iwm_pcie_load_section(struct iwm_softc *, uint8_t, const struct iwm_fw_desc *); static int iwm_pcie_load_firmware_chunk(struct iwm_softc *, uint32_t, bus_addr_t, uint32_t); static int iwm_pcie_load_cpu_sections_8000(struct iwm_softc *sc, const struct iwm_fw_img *, int, int *); static int iwm_pcie_load_cpu_sections(struct iwm_softc *, const struct iwm_fw_img *, int, int *); static int iwm_pcie_load_given_ucode_8000(struct iwm_softc *, const struct iwm_fw_img *); static int iwm_pcie_load_given_ucode(struct iwm_softc *, const struct iwm_fw_img *); static int iwm_start_fw(struct iwm_softc *, const struct iwm_fw_img *); static int iwm_send_tx_ant_cfg(struct iwm_softc *, uint8_t); static int iwm_send_phy_cfg_cmd(struct iwm_softc *); static int iwm_load_ucode_wait_alive(struct iwm_softc *, enum iwm_ucode_type); static int iwm_run_init_ucode(struct iwm_softc *, int); static int iwm_config_ltr(struct iwm_softc *sc); static int iwm_rx_addbuf(struct iwm_softc *, int, int); static void iwm_rx_rx_phy_cmd(struct iwm_softc *, struct iwm_rx_packet *); static int iwm_get_noise(struct iwm_softc *, const struct iwm_statistics_rx_non_phy *); static void iwm_handle_rx_statistics(struct iwm_softc *, struct iwm_rx_packet *); static bool iwm_rx_mpdu(struct iwm_softc *, struct mbuf *, uint32_t, bool); static int iwm_rx_tx_cmd_single(struct iwm_softc *, struct iwm_rx_packet *, struct iwm_node *); static void iwm_rx_tx_cmd(struct iwm_softc *, struct iwm_rx_packet *); static void iwm_cmd_done(struct iwm_softc *, struct iwm_rx_packet *); #if 0 static void iwm_update_sched(struct iwm_softc *, int, int, uint8_t, uint16_t); #endif static const struct iwm_rate * iwm_tx_fill_cmd(struct iwm_softc *, struct iwm_node *, struct mbuf *, struct iwm_tx_cmd *); static int iwm_tx(struct iwm_softc *, struct mbuf *, struct ieee80211_node *, int); static int iwm_raw_xmit(struct ieee80211_node *, struct mbuf *, const struct ieee80211_bpf_params *); static int iwm_update_quotas(struct iwm_softc *, struct iwm_vap *); static int iwm_auth(struct ieee80211vap *, struct iwm_softc *); static struct ieee80211_node * iwm_node_alloc(struct ieee80211vap *, const uint8_t[IEEE80211_ADDR_LEN]); static uint8_t iwm_rate_from_ucode_rate(uint32_t); static int iwm_rate2ridx(struct iwm_softc *, uint8_t); static void iwm_setrates(struct iwm_softc *, struct iwm_node *, int); static int iwm_media_change(struct ifnet *); static int iwm_newstate(struct ieee80211vap *, enum ieee80211_state, int); static void iwm_endscan_cb(void *, int); static int iwm_send_bt_init_conf(struct iwm_softc *); static boolean_t iwm_is_lar_supported(struct iwm_softc *); static boolean_t iwm_is_wifi_mcc_supported(struct iwm_softc *); static int iwm_send_update_mcc_cmd(struct iwm_softc *, const char *); static void iwm_tt_tx_backoff(struct iwm_softc *, uint32_t); static int iwm_init_hw(struct iwm_softc *); static void iwm_init(struct iwm_softc *); static void iwm_start(struct iwm_softc *); static void iwm_stop(struct iwm_softc *); static void iwm_watchdog(void *); static void iwm_parent(struct ieee80211com *); #ifdef IWM_DEBUG static const char * iwm_desc_lookup(uint32_t); static void iwm_nic_error(struct iwm_softc *); static void iwm_nic_umac_error(struct iwm_softc *); #endif static void iwm_handle_rxb(struct iwm_softc *, struct mbuf *); static void iwm_notif_intr(struct iwm_softc *); static void iwm_intr(void *); static int iwm_attach(device_t); static int iwm_is_valid_ether_addr(uint8_t *); static void iwm_preinit(void *); static int iwm_detach_local(struct iwm_softc *sc, int); static void iwm_init_task(void *); static void iwm_radiotap_attach(struct iwm_softc *); static struct ieee80211vap * iwm_vap_create(struct ieee80211com *, const char [IFNAMSIZ], int, enum ieee80211_opmode, int, const uint8_t [IEEE80211_ADDR_LEN], const uint8_t [IEEE80211_ADDR_LEN]); static void iwm_vap_delete(struct ieee80211vap *); static void iwm_xmit_queue_drain(struct iwm_softc *); static void iwm_scan_start(struct ieee80211com *); static void iwm_scan_end(struct ieee80211com *); static void iwm_update_mcast(struct ieee80211com *); static void iwm_set_channel(struct ieee80211com *); static void iwm_scan_curchan(struct ieee80211_scan_state *, unsigned long); static void iwm_scan_mindwell(struct ieee80211_scan_state *); static int iwm_detach(device_t); static int iwm_lar_disable = 0; TUNABLE_INT("hw.iwm.lar.disable", &iwm_lar_disable); /* * Firmware parser. */ static int iwm_store_cscheme(struct iwm_softc *sc, const uint8_t *data, size_t dlen) { const struct iwm_fw_cscheme_list *l = (const void *)data; if (dlen < sizeof(*l) || dlen < sizeof(l->size) + l->size * sizeof(*l->cs)) return EINVAL; /* we don't actually store anything for now, always use s/w crypto */ return 0; } static int iwm_firmware_store_section(struct iwm_softc *sc, enum iwm_ucode_type type, const uint8_t *data, size_t dlen) { struct iwm_fw_img *fws; struct iwm_fw_desc *fwone; if (type >= IWM_UCODE_TYPE_MAX) return EINVAL; if (dlen < sizeof(uint32_t)) return EINVAL; fws = &sc->sc_fw.img[type]; if (fws->fw_count >= IWM_UCODE_SECTION_MAX) return EINVAL; fwone = &fws->sec[fws->fw_count]; /* first 32bit are device load offset */ memcpy(&fwone->offset, data, sizeof(uint32_t)); /* rest is data */ fwone->data = data + sizeof(uint32_t); fwone->len = dlen - sizeof(uint32_t); fws->fw_count++; return 0; } #define IWM_DEFAULT_SCAN_CHANNELS 40 /* iwlwifi: iwl-drv.c */ struct iwm_tlv_calib_data { uint32_t ucode_type; struct iwm_tlv_calib_ctrl calib; } __packed; static int iwm_set_default_calib(struct iwm_softc *sc, const void *data) { const struct iwm_tlv_calib_data *def_calib = data; uint32_t ucode_type = le32toh(def_calib->ucode_type); if (ucode_type >= IWM_UCODE_TYPE_MAX) { device_printf(sc->sc_dev, "Wrong ucode_type %u for default " "calibration.\n", ucode_type); return EINVAL; } sc->sc_default_calib[ucode_type].flow_trigger = def_calib->calib.flow_trigger; sc->sc_default_calib[ucode_type].event_trigger = def_calib->calib.event_trigger; return 0; } static int iwm_set_ucode_api_flags(struct iwm_softc *sc, const uint8_t *data, struct iwm_ucode_capabilities *capa) { const struct iwm_ucode_api *ucode_api = (const void *)data; uint32_t api_index = le32toh(ucode_api->api_index); uint32_t api_flags = le32toh(ucode_api->api_flags); int i; if (api_index >= howmany(IWM_NUM_UCODE_TLV_API, 32)) { device_printf(sc->sc_dev, "api flags index %d larger than supported by driver\n", api_index); /* don't return an error so we can load FW that has more bits */ return 0; } for (i = 0; i < 32; i++) { if (api_flags & (1U << i)) setbit(capa->enabled_api, i + 32 * api_index); } return 0; } static int iwm_set_ucode_capabilities(struct iwm_softc *sc, const uint8_t *data, struct iwm_ucode_capabilities *capa) { const struct iwm_ucode_capa *ucode_capa = (const void *)data; uint32_t api_index = le32toh(ucode_capa->api_index); uint32_t api_flags = le32toh(ucode_capa->api_capa); int i; if (api_index >= howmany(IWM_NUM_UCODE_TLV_CAPA, 32)) { device_printf(sc->sc_dev, "capa flags index %d larger than supported by driver\n", api_index); /* don't return an error so we can load FW that has more bits */ return 0; } for (i = 0; i < 32; i++) { if (api_flags & (1U << i)) setbit(capa->enabled_capa, i + 32 * api_index); } return 0; } static void iwm_fw_info_free(struct iwm_fw_info *fw) { firmware_put(fw->fw_fp, FIRMWARE_UNLOAD); fw->fw_fp = NULL; memset(fw->img, 0, sizeof(fw->img)); } static int iwm_read_firmware(struct iwm_softc *sc) { struct iwm_fw_info *fw = &sc->sc_fw; const struct iwm_tlv_ucode_header *uhdr; const struct iwm_ucode_tlv *tlv; struct iwm_ucode_capabilities *capa = &sc->sc_fw.ucode_capa; enum iwm_ucode_tlv_type tlv_type; const struct firmware *fwp; const uint8_t *data; uint32_t tlv_len; uint32_t usniffer_img; const uint8_t *tlv_data; uint32_t paging_mem_size; int num_of_cpus; int error = 0; size_t len; /* * Load firmware into driver memory. * fw_fp will be set. */ fwp = firmware_get(sc->cfg->fw_name); if (fwp == NULL) { device_printf(sc->sc_dev, "could not read firmware %s (error %d)\n", sc->cfg->fw_name, error); goto out; } fw->fw_fp = fwp; /* (Re-)Initialize default values. */ capa->flags = 0; capa->max_probe_length = IWM_DEFAULT_MAX_PROBE_LENGTH; capa->n_scan_channels = IWM_DEFAULT_SCAN_CHANNELS; memset(capa->enabled_capa, 0, sizeof(capa->enabled_capa)); memset(capa->enabled_api, 0, sizeof(capa->enabled_api)); memset(sc->sc_fw_mcc, 0, sizeof(sc->sc_fw_mcc)); /* * Parse firmware contents */ uhdr = (const void *)fw->fw_fp->data; if (*(const uint32_t *)fw->fw_fp->data != 0 || le32toh(uhdr->magic) != IWM_TLV_UCODE_MAGIC) { device_printf(sc->sc_dev, "invalid firmware %s\n", sc->cfg->fw_name); error = EINVAL; goto out; } snprintf(sc->sc_fwver, sizeof(sc->sc_fwver), "%u.%u (API ver %u)", IWM_UCODE_MAJOR(le32toh(uhdr->ver)), IWM_UCODE_MINOR(le32toh(uhdr->ver)), IWM_UCODE_API(le32toh(uhdr->ver))); data = uhdr->data; len = fw->fw_fp->datasize - sizeof(*uhdr); while (len >= sizeof(*tlv)) { len -= sizeof(*tlv); tlv = (const void *)data; tlv_len = le32toh(tlv->length); tlv_type = le32toh(tlv->type); tlv_data = tlv->data; if (len < tlv_len) { device_printf(sc->sc_dev, "firmware too short: %zu bytes\n", len); error = EINVAL; goto parse_out; } len -= roundup2(tlv_len, 4); data += sizeof(*tlv) + roundup2(tlv_len, 4); switch ((int)tlv_type) { case IWM_UCODE_TLV_PROBE_MAX_LEN: if (tlv_len != sizeof(uint32_t)) { device_printf(sc->sc_dev, "%s: PROBE_MAX_LEN (%u) != sizeof(uint32_t)\n", __func__, tlv_len); error = EINVAL; goto parse_out; } capa->max_probe_length = le32_to_cpup((const uint32_t *)tlv_data); /* limit it to something sensible */ if (capa->max_probe_length > IWM_SCAN_OFFLOAD_PROBE_REQ_SIZE) { IWM_DPRINTF(sc, IWM_DEBUG_FIRMWARE_TLV, "%s: IWM_UCODE_TLV_PROBE_MAX_LEN " "ridiculous\n", __func__); error = EINVAL; goto parse_out; } break; case IWM_UCODE_TLV_PAN: if (tlv_len) { device_printf(sc->sc_dev, "%s: IWM_UCODE_TLV_PAN: tlv_len (%u) > 0\n", __func__, tlv_len); error = EINVAL; goto parse_out; } capa->flags |= IWM_UCODE_TLV_FLAGS_PAN; break; case IWM_UCODE_TLV_FLAGS: if (tlv_len < sizeof(uint32_t)) { device_printf(sc->sc_dev, "%s: IWM_UCODE_TLV_FLAGS: tlv_len (%u) < sizeof(uint32_t)\n", __func__, tlv_len); error = EINVAL; goto parse_out; } if (tlv_len % sizeof(uint32_t)) { device_printf(sc->sc_dev, "%s: IWM_UCODE_TLV_FLAGS: tlv_len (%u) %% sizeof(uint32_t)\n", __func__, tlv_len); error = EINVAL; goto parse_out; } /* * Apparently there can be many flags, but Linux driver * parses only the first one, and so do we. * * XXX: why does this override IWM_UCODE_TLV_PAN? * Intentional or a bug? Observations from * current firmware file: * 1) TLV_PAN is parsed first * 2) TLV_FLAGS contains TLV_FLAGS_PAN * ==> this resets TLV_PAN to itself... hnnnk */ capa->flags = le32_to_cpup((const uint32_t *)tlv_data); break; case IWM_UCODE_TLV_CSCHEME: if ((error = iwm_store_cscheme(sc, tlv_data, tlv_len)) != 0) { device_printf(sc->sc_dev, "%s: iwm_store_cscheme(): returned %d\n", __func__, error); goto parse_out; } break; case IWM_UCODE_TLV_NUM_OF_CPU: if (tlv_len != sizeof(uint32_t)) { device_printf(sc->sc_dev, "%s: IWM_UCODE_TLV_NUM_OF_CPU: tlv_len (%u) != sizeof(uint32_t)\n", __func__, tlv_len); error = EINVAL; goto parse_out; } num_of_cpus = le32_to_cpup((const uint32_t *)tlv_data); if (num_of_cpus == 2) { fw->img[IWM_UCODE_REGULAR].is_dual_cpus = TRUE; fw->img[IWM_UCODE_INIT].is_dual_cpus = TRUE; fw->img[IWM_UCODE_WOWLAN].is_dual_cpus = TRUE; } else if ((num_of_cpus > 2) || (num_of_cpus < 1)) { device_printf(sc->sc_dev, "%s: Driver supports only 1 or 2 CPUs\n", __func__); error = EINVAL; goto parse_out; } break; case IWM_UCODE_TLV_SEC_RT: if ((error = iwm_firmware_store_section(sc, IWM_UCODE_REGULAR, tlv_data, tlv_len)) != 0) { device_printf(sc->sc_dev, "%s: IWM_UCODE_REGULAR: iwm_firmware_store_section() failed; %d\n", __func__, error); goto parse_out; } break; case IWM_UCODE_TLV_SEC_INIT: if ((error = iwm_firmware_store_section(sc, IWM_UCODE_INIT, tlv_data, tlv_len)) != 0) { device_printf(sc->sc_dev, "%s: IWM_UCODE_INIT: iwm_firmware_store_section() failed; %d\n", __func__, error); goto parse_out; } break; case IWM_UCODE_TLV_SEC_WOWLAN: if ((error = iwm_firmware_store_section(sc, IWM_UCODE_WOWLAN, tlv_data, tlv_len)) != 0) { device_printf(sc->sc_dev, "%s: IWM_UCODE_WOWLAN: iwm_firmware_store_section() failed; %d\n", __func__, error); goto parse_out; } break; case IWM_UCODE_TLV_DEF_CALIB: if (tlv_len != sizeof(struct iwm_tlv_calib_data)) { device_printf(sc->sc_dev, "%s: IWM_UCODE_TLV_DEV_CALIB: tlv_len (%u) < sizeof(iwm_tlv_calib_data) (%zu)\n", __func__, tlv_len, sizeof(struct iwm_tlv_calib_data)); error = EINVAL; goto parse_out; } if ((error = iwm_set_default_calib(sc, tlv_data)) != 0) { device_printf(sc->sc_dev, "%s: iwm_set_default_calib() failed: %d\n", __func__, error); goto parse_out; } break; case IWM_UCODE_TLV_PHY_SKU: if (tlv_len != sizeof(uint32_t)) { error = EINVAL; device_printf(sc->sc_dev, "%s: IWM_UCODE_TLV_PHY_SKU: tlv_len (%u) < sizeof(uint32_t)\n", __func__, tlv_len); goto parse_out; } sc->sc_fw.phy_config = le32_to_cpup((const uint32_t *)tlv_data); sc->sc_fw.valid_tx_ant = (sc->sc_fw.phy_config & IWM_FW_PHY_CFG_TX_CHAIN) >> IWM_FW_PHY_CFG_TX_CHAIN_POS; sc->sc_fw.valid_rx_ant = (sc->sc_fw.phy_config & IWM_FW_PHY_CFG_RX_CHAIN) >> IWM_FW_PHY_CFG_RX_CHAIN_POS; break; case IWM_UCODE_TLV_API_CHANGES_SET: { if (tlv_len != sizeof(struct iwm_ucode_api)) { error = EINVAL; goto parse_out; } if (iwm_set_ucode_api_flags(sc, tlv_data, capa)) { error = EINVAL; goto parse_out; } break; } case IWM_UCODE_TLV_ENABLED_CAPABILITIES: { if (tlv_len != sizeof(struct iwm_ucode_capa)) { error = EINVAL; goto parse_out; } if (iwm_set_ucode_capabilities(sc, tlv_data, capa)) { error = EINVAL; goto parse_out; } break; } case IWM_UCODE_TLV_CMD_VERSIONS: case IWM_UCODE_TLV_SDIO_ADMA_ADDR: case IWM_UCODE_TLV_FW_GSCAN_CAPA: /* ignore, not used by current driver */ break; case IWM_UCODE_TLV_SEC_RT_USNIFFER: if ((error = iwm_firmware_store_section(sc, IWM_UCODE_REGULAR_USNIFFER, tlv_data, tlv_len)) != 0) goto parse_out; break; case IWM_UCODE_TLV_PAGING: if (tlv_len != sizeof(uint32_t)) { error = EINVAL; goto parse_out; } paging_mem_size = le32_to_cpup((const uint32_t *)tlv_data); IWM_DPRINTF(sc, IWM_DEBUG_FIRMWARE_TLV, "%s: Paging: paging enabled (size = %u bytes)\n", __func__, paging_mem_size); if (paging_mem_size > IWM_MAX_PAGING_IMAGE_SIZE) { device_printf(sc->sc_dev, "%s: Paging: driver supports up to %u bytes for paging image\n", __func__, IWM_MAX_PAGING_IMAGE_SIZE); error = EINVAL; goto out; } if (paging_mem_size & (IWM_FW_PAGING_SIZE - 1)) { device_printf(sc->sc_dev, "%s: Paging: image isn't multiple %u\n", __func__, IWM_FW_PAGING_SIZE); error = EINVAL; goto out; } sc->sc_fw.img[IWM_UCODE_REGULAR].paging_mem_size = paging_mem_size; usniffer_img = IWM_UCODE_REGULAR_USNIFFER; sc->sc_fw.img[usniffer_img].paging_mem_size = paging_mem_size; break; case IWM_UCODE_TLV_N_SCAN_CHANNELS: if (tlv_len != sizeof(uint32_t)) { error = EINVAL; goto parse_out; } capa->n_scan_channels = le32_to_cpup((const uint32_t *)tlv_data); break; case IWM_UCODE_TLV_FW_VERSION: if (tlv_len != sizeof(uint32_t) * 3) { error = EINVAL; goto parse_out; } snprintf(sc->sc_fwver, sizeof(sc->sc_fwver), "%u.%u.%u", le32toh(((const uint32_t *)tlv_data)[0]), le32toh(((const uint32_t *)tlv_data)[1]), le32toh(((const uint32_t *)tlv_data)[2])); break; case IWM_UCODE_TLV_FW_MEM_SEG: break; default: device_printf(sc->sc_dev, "%s: unknown firmware section %d, abort\n", __func__, tlv_type); error = EINVAL; goto parse_out; } } KASSERT(error == 0, ("unhandled error")); parse_out: if (error) { device_printf(sc->sc_dev, "firmware parse error %d, " "section type %d\n", error, tlv_type); } out: if (error) { if (fw->fw_fp != NULL) iwm_fw_info_free(fw); } return error; } /* * DMA resource routines */ /* fwmem is used to load firmware onto the card */ static int iwm_alloc_fwmem(struct iwm_softc *sc) { /* Must be aligned on a 16-byte boundary. */ return iwm_dma_contig_alloc(sc->sc_dmat, &sc->fw_dma, IWM_FH_MEM_TB_MAX_LENGTH, 16); } /* tx scheduler rings. not used? */ static int iwm_alloc_sched(struct iwm_softc *sc) { /* TX scheduler rings must be aligned on a 1KB boundary. */ return iwm_dma_contig_alloc(sc->sc_dmat, &sc->sched_dma, nitems(sc->txq) * sizeof(struct iwm_agn_scd_bc_tbl), 1024); } /* keep-warm page is used internally by the card. see iwl-fh.h for more info */ static int iwm_alloc_kw(struct iwm_softc *sc) { return iwm_dma_contig_alloc(sc->sc_dmat, &sc->kw_dma, 4096, 4096); } /* interrupt cause table */ static int iwm_alloc_ict(struct iwm_softc *sc) { return iwm_dma_contig_alloc(sc->sc_dmat, &sc->ict_dma, IWM_ICT_SIZE, 1<cur = 0; if (sc->cfg->mqrx_supported) { count = IWM_RX_MQ_RING_COUNT; descsz = sizeof(uint64_t); } else { count = IWM_RX_LEGACY_RING_COUNT; descsz = sizeof(uint32_t); } /* Allocate RX descriptors (256-byte aligned). */ size = count * descsz; error = iwm_dma_contig_alloc(sc->sc_dmat, &ring->free_desc_dma, size, 256); if (error != 0) { device_printf(sc->sc_dev, "could not allocate RX ring DMA memory\n"); goto fail; } ring->desc = ring->free_desc_dma.vaddr; /* Allocate RX status area (16-byte aligned). */ error = iwm_dma_contig_alloc(sc->sc_dmat, &ring->stat_dma, sizeof(*ring->stat), 16); if (error != 0) { device_printf(sc->sc_dev, "could not allocate RX status DMA memory\n"); goto fail; } ring->stat = ring->stat_dma.vaddr; if (sc->cfg->mqrx_supported) { size = count * sizeof(uint32_t); error = iwm_dma_contig_alloc(sc->sc_dmat, &ring->used_desc_dma, size, 256); if (error != 0) { device_printf(sc->sc_dev, "could not allocate RX ring DMA memory\n"); goto fail; } } /* Create RX buffer DMA tag. */ error = bus_dma_tag_create(sc->sc_dmat, 1, 0, BUS_SPACE_MAXADDR_32BIT, BUS_SPACE_MAXADDR, NULL, NULL, IWM_RBUF_SIZE, 1, IWM_RBUF_SIZE, 0, NULL, NULL, &ring->data_dmat); if (error != 0) { device_printf(sc->sc_dev, "%s: could not create RX buf DMA tag, error %d\n", __func__, error); goto fail; } /* Allocate spare bus_dmamap_t for iwm_rx_addbuf() */ error = bus_dmamap_create(ring->data_dmat, 0, &ring->spare_map); if (error != 0) { device_printf(sc->sc_dev, "%s: could not create RX buf DMA map, error %d\n", __func__, error); goto fail; } /* * Allocate and map RX buffers. */ for (i = 0; i < count; i++) { struct iwm_rx_data *data = &ring->data[i]; error = bus_dmamap_create(ring->data_dmat, 0, &data->map); if (error != 0) { device_printf(sc->sc_dev, "%s: could not create RX buf DMA map, error %d\n", __func__, error); goto fail; } data->m = NULL; if ((error = iwm_rx_addbuf(sc, IWM_RBUF_SIZE, i)) != 0) { goto fail; } } return 0; fail: iwm_free_rx_ring(sc, ring); return error; } static void iwm_reset_rx_ring(struct iwm_softc *sc, struct iwm_rx_ring *ring) { /* Reset the ring state */ ring->cur = 0; /* * The hw rx ring index in shared memory must also be cleared, * otherwise the discrepancy can cause reprocessing chaos. */ if (sc->rxq.stat) memset(sc->rxq.stat, 0, sizeof(*sc->rxq.stat)); } static void iwm_free_rx_ring(struct iwm_softc *sc, struct iwm_rx_ring *ring) { int count, i; iwm_dma_contig_free(&ring->free_desc_dma); iwm_dma_contig_free(&ring->stat_dma); iwm_dma_contig_free(&ring->used_desc_dma); count = sc->cfg->mqrx_supported ? IWM_RX_MQ_RING_COUNT : IWM_RX_LEGACY_RING_COUNT; for (i = 0; i < count; i++) { struct iwm_rx_data *data = &ring->data[i]; if (data->m != NULL) { bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_POSTREAD); bus_dmamap_unload(ring->data_dmat, data->map); m_freem(data->m); data->m = NULL; } if (data->map != NULL) { bus_dmamap_destroy(ring->data_dmat, data->map); data->map = NULL; } } if (ring->spare_map != NULL) { bus_dmamap_destroy(ring->data_dmat, ring->spare_map); ring->spare_map = NULL; } if (ring->data_dmat != NULL) { bus_dma_tag_destroy(ring->data_dmat); ring->data_dmat = NULL; } } static int iwm_alloc_tx_ring(struct iwm_softc *sc, struct iwm_tx_ring *ring, int qid) { bus_addr_t paddr; bus_size_t size; size_t maxsize; int nsegments; int i, error; ring->qid = qid; ring->queued = 0; ring->cur = 0; /* Allocate TX descriptors (256-byte aligned). */ size = IWM_TX_RING_COUNT * sizeof (struct iwm_tfd); error = iwm_dma_contig_alloc(sc->sc_dmat, &ring->desc_dma, size, 256); if (error != 0) { device_printf(sc->sc_dev, "could not allocate TX ring DMA memory\n"); goto fail; } ring->desc = ring->desc_dma.vaddr; /* * We only use rings 0 through 9 (4 EDCA + cmd) so there is no need * to allocate commands space for other rings. */ if (qid > IWM_CMD_QUEUE) return 0; size = IWM_TX_RING_COUNT * sizeof(struct iwm_device_cmd); error = iwm_dma_contig_alloc(sc->sc_dmat, &ring->cmd_dma, size, 4); if (error != 0) { device_printf(sc->sc_dev, "could not allocate TX cmd DMA memory\n"); goto fail; } ring->cmd = ring->cmd_dma.vaddr; /* FW commands may require more mapped space than packets. */ if (qid == IWM_CMD_QUEUE) { maxsize = IWM_RBUF_SIZE; nsegments = 1; } else { maxsize = MCLBYTES; nsegments = IWM_MAX_SCATTER - 2; } error = bus_dma_tag_create(sc->sc_dmat, 1, 0, BUS_SPACE_MAXADDR_32BIT, BUS_SPACE_MAXADDR, NULL, NULL, maxsize, nsegments, maxsize, 0, NULL, NULL, &ring->data_dmat); if (error != 0) { device_printf(sc->sc_dev, "could not create TX buf DMA tag\n"); goto fail; } paddr = ring->cmd_dma.paddr; for (i = 0; i < IWM_TX_RING_COUNT; i++) { struct iwm_tx_data *data = &ring->data[i]; data->cmd_paddr = paddr; data->scratch_paddr = paddr + sizeof(struct iwm_cmd_header) + offsetof(struct iwm_tx_cmd, scratch); paddr += sizeof(struct iwm_device_cmd); error = bus_dmamap_create(ring->data_dmat, 0, &data->map); if (error != 0) { device_printf(sc->sc_dev, "could not create TX buf DMA map\n"); goto fail; } } KASSERT(paddr == ring->cmd_dma.paddr + size, ("invalid physical address")); return 0; fail: iwm_free_tx_ring(sc, ring); return error; } static void iwm_reset_tx_ring(struct iwm_softc *sc, struct iwm_tx_ring *ring) { int i; for (i = 0; i < IWM_TX_RING_COUNT; i++) { struct iwm_tx_data *data = &ring->data[i]; if (data->m != NULL) { bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(ring->data_dmat, data->map); m_freem(data->m); data->m = NULL; } } /* Clear TX descriptors. */ memset(ring->desc, 0, ring->desc_dma.size); bus_dmamap_sync(ring->desc_dma.tag, ring->desc_dma.map, BUS_DMASYNC_PREWRITE); sc->qfullmsk &= ~(1 << ring->qid); ring->queued = 0; ring->cur = 0; if (ring->qid == IWM_CMD_QUEUE && sc->cmd_hold_nic_awake) iwm_pcie_clear_cmd_in_flight(sc); } static void iwm_free_tx_ring(struct iwm_softc *sc, struct iwm_tx_ring *ring) { int i; iwm_dma_contig_free(&ring->desc_dma); iwm_dma_contig_free(&ring->cmd_dma); for (i = 0; i < IWM_TX_RING_COUNT; i++) { struct iwm_tx_data *data = &ring->data[i]; if (data->m != NULL) { bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(ring->data_dmat, data->map); m_freem(data->m); data->m = NULL; } if (data->map != NULL) { bus_dmamap_destroy(ring->data_dmat, data->map); data->map = NULL; } } if (ring->data_dmat != NULL) { bus_dma_tag_destroy(ring->data_dmat); ring->data_dmat = NULL; } } /* * High-level hardware frobbing routines */ static void iwm_enable_interrupts(struct iwm_softc *sc) { sc->sc_intmask = IWM_CSR_INI_SET_MASK; IWM_WRITE(sc, IWM_CSR_INT_MASK, sc->sc_intmask); } static void iwm_restore_interrupts(struct iwm_softc *sc) { IWM_WRITE(sc, IWM_CSR_INT_MASK, sc->sc_intmask); } static void iwm_disable_interrupts(struct iwm_softc *sc) { /* disable interrupts */ IWM_WRITE(sc, IWM_CSR_INT_MASK, 0); /* acknowledge all interrupts */ IWM_WRITE(sc, IWM_CSR_INT, ~0); IWM_WRITE(sc, IWM_CSR_FH_INT_STATUS, ~0); } static void iwm_ict_reset(struct iwm_softc *sc) { iwm_disable_interrupts(sc); /* Reset ICT table. */ memset(sc->ict_dma.vaddr, 0, IWM_ICT_SIZE); sc->ict_cur = 0; /* Set physical address of ICT table (4KB aligned). */ IWM_WRITE(sc, IWM_CSR_DRAM_INT_TBL_REG, IWM_CSR_DRAM_INT_TBL_ENABLE | IWM_CSR_DRAM_INIT_TBL_WRITE_POINTER | IWM_CSR_DRAM_INIT_TBL_WRAP_CHECK | sc->ict_dma.paddr >> IWM_ICT_PADDR_SHIFT); /* Switch to ICT interrupt mode in driver. */ sc->sc_flags |= IWM_FLAG_USE_ICT; /* Re-enable interrupts. */ IWM_WRITE(sc, IWM_CSR_INT, ~0); iwm_enable_interrupts(sc); } /* iwlwifi pcie/trans.c */ /* * Since this .. hard-resets things, it's time to actually * mark the first vap (if any) as having no mac context. * It's annoying, but since the driver is potentially being * stop/start'ed whilst active (thanks openbsd port!) we * have to correctly track this. */ static void iwm_stop_device(struct iwm_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); int chnl, qid; uint32_t mask = 0; /* tell the device to stop sending interrupts */ iwm_disable_interrupts(sc); /* * FreeBSD-local: mark the first vap as not-uploaded, * so the next transition through auth/assoc * will correctly populate the MAC context. */ if (vap) { struct iwm_vap *iv = IWM_VAP(vap); iv->phy_ctxt = NULL; iv->is_uploaded = 0; } sc->sc_firmware_state = 0; sc->sc_flags &= ~IWM_FLAG_TE_ACTIVE; /* device going down, Stop using ICT table */ sc->sc_flags &= ~IWM_FLAG_USE_ICT; /* stop tx and rx. tx and rx bits, as usual, are from if_iwn */ if (iwm_nic_lock(sc)) { iwm_write_prph(sc, IWM_SCD_TXFACT, 0); /* Stop each Tx DMA channel */ for (chnl = 0; chnl < IWM_FH_TCSR_CHNL_NUM; chnl++) { IWM_WRITE(sc, IWM_FH_TCSR_CHNL_TX_CONFIG_REG(chnl), 0); mask |= IWM_FH_TSSR_TX_STATUS_REG_MSK_CHNL_IDLE(chnl); } /* Wait for DMA channels to be idle */ if (!iwm_poll_bit(sc, IWM_FH_TSSR_TX_STATUS_REG, mask, mask, 5000)) { device_printf(sc->sc_dev, "Failing on timeout while stopping DMA channel: [0x%08x]\n", IWM_READ(sc, IWM_FH_TSSR_TX_STATUS_REG)); } iwm_nic_unlock(sc); } iwm_pcie_rx_stop(sc); /* Stop RX ring. */ iwm_reset_rx_ring(sc, &sc->rxq); /* Reset all TX rings. */ for (qid = 0; qid < nitems(sc->txq); qid++) iwm_reset_tx_ring(sc, &sc->txq[qid]); if (sc->cfg->device_family == IWM_DEVICE_FAMILY_7000) { /* Power-down device's busmaster DMA clocks */ if (iwm_nic_lock(sc)) { iwm_write_prph(sc, IWM_APMG_CLK_DIS_REG, IWM_APMG_CLK_VAL_DMA_CLK_RQT); iwm_nic_unlock(sc); } DELAY(5); } /* Make sure (redundant) we've released our request to stay awake */ IWM_CLRBITS(sc, IWM_CSR_GP_CNTRL, IWM_CSR_GP_CNTRL_REG_FLAG_MAC_ACCESS_REQ); /* Stop the device, and put it in low power state */ iwm_apm_stop(sc); /* stop and reset the on-board processor */ IWM_SETBITS(sc, IWM_CSR_RESET, IWM_CSR_RESET_REG_FLAG_SW_RESET); DELAY(5000); /* * Upon stop, the APM issues an interrupt if HW RF kill is set. */ iwm_disable_interrupts(sc); /* * Even if we stop the HW, we still want the RF kill * interrupt */ iwm_enable_rfkill_int(sc); iwm_check_rfkill(sc); iwm_prepare_card_hw(sc); } /* iwlwifi: mvm/ops.c */ static void iwm_nic_config(struct iwm_softc *sc) { uint8_t radio_cfg_type, radio_cfg_step, radio_cfg_dash; uint32_t reg_val = 0; uint32_t phy_config = iwm_get_phy_config(sc); radio_cfg_type = (phy_config & IWM_FW_PHY_CFG_RADIO_TYPE) >> IWM_FW_PHY_CFG_RADIO_TYPE_POS; radio_cfg_step = (phy_config & IWM_FW_PHY_CFG_RADIO_STEP) >> IWM_FW_PHY_CFG_RADIO_STEP_POS; radio_cfg_dash = (phy_config & IWM_FW_PHY_CFG_RADIO_DASH) >> IWM_FW_PHY_CFG_RADIO_DASH_POS; /* SKU control */ reg_val |= IWM_CSR_HW_REV_STEP(sc->sc_hw_rev) << IWM_CSR_HW_IF_CONFIG_REG_POS_MAC_STEP; reg_val |= IWM_CSR_HW_REV_DASH(sc->sc_hw_rev) << IWM_CSR_HW_IF_CONFIG_REG_POS_MAC_DASH; /* radio configuration */ reg_val |= radio_cfg_type << IWM_CSR_HW_IF_CONFIG_REG_POS_PHY_TYPE; reg_val |= radio_cfg_step << IWM_CSR_HW_IF_CONFIG_REG_POS_PHY_STEP; reg_val |= radio_cfg_dash << IWM_CSR_HW_IF_CONFIG_REG_POS_PHY_DASH; IWM_WRITE(sc, IWM_CSR_HW_IF_CONFIG_REG, IWM_CSR_HW_IF_CONFIG_REG_MSK_MAC_DASH | IWM_CSR_HW_IF_CONFIG_REG_MSK_MAC_STEP | IWM_CSR_HW_IF_CONFIG_REG_MSK_PHY_STEP | IWM_CSR_HW_IF_CONFIG_REG_MSK_PHY_DASH | IWM_CSR_HW_IF_CONFIG_REG_MSK_PHY_TYPE | IWM_CSR_HW_IF_CONFIG_REG_BIT_RADIO_SI | IWM_CSR_HW_IF_CONFIG_REG_BIT_MAC_SI | reg_val); IWM_DPRINTF(sc, IWM_DEBUG_RESET, "Radio type=0x%x-0x%x-0x%x\n", radio_cfg_type, radio_cfg_step, radio_cfg_dash); /* * W/A : NIC is stuck in a reset state after Early PCIe power off * (PCIe power is lost before PERST# is asserted), causing ME FW * to lose ownership and not being able to obtain it back. */ if (sc->cfg->device_family == IWM_DEVICE_FAMILY_7000) { iwm_set_bits_mask_prph(sc, IWM_APMG_PS_CTRL_REG, IWM_APMG_PS_CTRL_EARLY_PWR_OFF_RESET_DIS, ~IWM_APMG_PS_CTRL_EARLY_PWR_OFF_RESET_DIS); } } static int iwm_nic_rx_mq_init(struct iwm_softc *sc) { int enabled; if (!iwm_nic_lock(sc)) return EBUSY; /* Stop RX DMA. */ iwm_write_prph(sc, IWM_RFH_RXF_DMA_CFG, 0); /* Disable RX used and free queue operation. */ iwm_write_prph(sc, IWM_RFH_RXF_RXQ_ACTIVE, 0); iwm_write_prph64(sc, IWM_RFH_Q0_FRBDCB_BA_LSB, sc->rxq.free_desc_dma.paddr); iwm_write_prph64(sc, IWM_RFH_Q0_URBDCB_BA_LSB, sc->rxq.used_desc_dma.paddr); iwm_write_prph64(sc, IWM_RFH_Q0_URBD_STTS_WPTR_LSB, sc->rxq.stat_dma.paddr); iwm_write_prph(sc, IWM_RFH_Q0_FRBDCB_WIDX, 0); iwm_write_prph(sc, IWM_RFH_Q0_FRBDCB_RIDX, 0); iwm_write_prph(sc, IWM_RFH_Q0_URBDCB_WIDX, 0); /* We configure only queue 0 for now. */ enabled = ((1 << 0) << 16) | (1 << 0); /* Enable RX DMA, 4KB buffer size. */ iwm_write_prph(sc, IWM_RFH_RXF_DMA_CFG, IWM_RFH_DMA_EN_ENABLE_VAL | IWM_RFH_RXF_DMA_RB_SIZE_4K | IWM_RFH_RXF_DMA_MIN_RB_4_8 | IWM_RFH_RXF_DMA_DROP_TOO_LARGE_MASK | IWM_RFH_RXF_DMA_RBDCB_SIZE_512); /* Enable RX DMA snooping. */ iwm_write_prph(sc, IWM_RFH_GEN_CFG, IWM_RFH_GEN_CFG_RFH_DMA_SNOOP | IWM_RFH_GEN_CFG_SERVICE_DMA_SNOOP | (sc->cfg->integrated ? IWM_RFH_GEN_CFG_RB_CHUNK_SIZE_64 : IWM_RFH_GEN_CFG_RB_CHUNK_SIZE_128)); /* Enable the configured queue(s). */ iwm_write_prph(sc, IWM_RFH_RXF_RXQ_ACTIVE, enabled); iwm_nic_unlock(sc); IWM_WRITE_1(sc, IWM_CSR_INT_COALESCING, IWM_HOST_INT_TIMEOUT_DEF); IWM_WRITE(sc, IWM_RFH_Q0_FRBDCB_WIDX_TRG, 8); return (0); } static int iwm_nic_rx_legacy_init(struct iwm_softc *sc) { /* Stop Rx DMA */ iwm_pcie_rx_stop(sc); if (!iwm_nic_lock(sc)) return EBUSY; /* reset and flush pointers */ IWM_WRITE(sc, IWM_FH_MEM_RCSR_CHNL0_RBDCB_WPTR, 0); IWM_WRITE(sc, IWM_FH_MEM_RCSR_CHNL0_FLUSH_RB_REQ, 0); IWM_WRITE(sc, IWM_FH_RSCSR_CHNL0_RDPTR, 0); IWM_WRITE(sc, IWM_FH_RSCSR_CHNL0_RBDCB_WPTR_REG, 0); /* Set physical address of RX ring (256-byte aligned). */ IWM_WRITE(sc, IWM_FH_RSCSR_CHNL0_RBDCB_BASE_REG, sc->rxq.free_desc_dma.paddr >> 8); /* Set physical address of RX status (16-byte aligned). */ IWM_WRITE(sc, IWM_FH_RSCSR_CHNL0_STTS_WPTR_REG, sc->rxq.stat_dma.paddr >> 4); /* Enable Rx DMA * XXX 5000 HW isn't supported by the iwm(4) driver. * IWM_FH_RCSR_CHNL0_RX_IGNORE_RXF_EMPTY is set because of HW bug in * the credit mechanism in 5000 HW RX FIFO * Direct rx interrupts to hosts * Rx buffer size 4 or 8k or 12k * RB timeout 0x10 * 256 RBDs */ IWM_WRITE(sc, IWM_FH_MEM_RCSR_CHNL0_CONFIG_REG, IWM_FH_RCSR_RX_CONFIG_CHNL_EN_ENABLE_VAL | IWM_FH_RCSR_CHNL0_RX_IGNORE_RXF_EMPTY | /* HW bug */ IWM_FH_RCSR_CHNL0_RX_CONFIG_IRQ_DEST_INT_HOST_VAL | IWM_FH_RCSR_RX_CONFIG_REG_VAL_RB_SIZE_4K | (IWM_RX_RB_TIMEOUT << IWM_FH_RCSR_RX_CONFIG_REG_IRQ_RBTH_POS) | IWM_RX_QUEUE_SIZE_LOG << IWM_FH_RCSR_RX_CONFIG_RBDCB_SIZE_POS); IWM_WRITE_1(sc, IWM_CSR_INT_COALESCING, IWM_HOST_INT_TIMEOUT_DEF); /* W/A for interrupt coalescing bug in 7260 and 3160 */ if (sc->cfg->host_interrupt_operation_mode) IWM_SETBITS(sc, IWM_CSR_INT_COALESCING, IWM_HOST_INT_OPER_MODE); iwm_nic_unlock(sc); IWM_WRITE(sc, IWM_FH_RSCSR_CHNL0_WPTR, 8); return 0; } static int iwm_nic_rx_init(struct iwm_softc *sc) { if (sc->cfg->mqrx_supported) return iwm_nic_rx_mq_init(sc); else return iwm_nic_rx_legacy_init(sc); } static int iwm_nic_tx_init(struct iwm_softc *sc) { int qid; if (!iwm_nic_lock(sc)) return EBUSY; /* Deactivate TX scheduler. */ iwm_write_prph(sc, IWM_SCD_TXFACT, 0); /* Set physical address of "keep warm" page (16-byte aligned). */ IWM_WRITE(sc, IWM_FH_KW_MEM_ADDR_REG, sc->kw_dma.paddr >> 4); /* Initialize TX rings. */ for (qid = 0; qid < nitems(sc->txq); qid++) { struct iwm_tx_ring *txq = &sc->txq[qid]; /* Set physical address of TX ring (256-byte aligned). */ IWM_WRITE(sc, IWM_FH_MEM_CBBC_QUEUE(qid), txq->desc_dma.paddr >> 8); IWM_DPRINTF(sc, IWM_DEBUG_XMIT, "%s: loading ring %d descriptors (%p) at %lx\n", __func__, qid, txq->desc, (unsigned long) (txq->desc_dma.paddr >> 8)); } iwm_set_bits_prph(sc, IWM_SCD_GP_CTRL, IWM_SCD_GP_CTRL_AUTO_ACTIVE_MODE | IWM_SCD_GP_CTRL_ENABLE_31_QUEUES); iwm_nic_unlock(sc); return 0; } static int iwm_nic_init(struct iwm_softc *sc) { int error; iwm_apm_init(sc); if (sc->cfg->device_family == IWM_DEVICE_FAMILY_7000) iwm_set_pwr(sc); iwm_nic_config(sc); if ((error = iwm_nic_rx_init(sc)) != 0) return error; /* * Ditto for TX, from iwn */ if ((error = iwm_nic_tx_init(sc)) != 0) return error; IWM_DPRINTF(sc, IWM_DEBUG_RESET, "%s: shadow registers enabled\n", __func__); IWM_SETBITS(sc, IWM_CSR_MAC_SHADOW_REG_CTRL, 0x800fffff); return 0; } int iwm_enable_txq(struct iwm_softc *sc, int sta_id, int qid, int fifo) { int qmsk; qmsk = 1 << qid; if (!iwm_nic_lock(sc)) { device_printf(sc->sc_dev, "%s: cannot enable txq %d\n", __func__, qid); return EBUSY; } IWM_WRITE(sc, IWM_HBUS_TARG_WRPTR, qid << 8 | 0); if (qid == IWM_CMD_QUEUE) { /* Disable the scheduler. */ iwm_write_prph(sc, IWM_SCD_EN_CTRL, 0); /* Stop the TX queue prior to configuration. */ iwm_write_prph(sc, IWM_SCD_QUEUE_STATUS_BITS(qid), (0 << IWM_SCD_QUEUE_STTS_REG_POS_ACTIVE) | (1 << IWM_SCD_QUEUE_STTS_REG_POS_SCD_ACT_EN)); iwm_nic_unlock(sc); /* Disable aggregations for this queue. */ iwm_clear_bits_prph(sc, IWM_SCD_AGGR_SEL, qmsk); if (!iwm_nic_lock(sc)) { device_printf(sc->sc_dev, "%s: cannot enable txq %d\n", __func__, qid); return EBUSY; } iwm_write_prph(sc, IWM_SCD_QUEUE_RDPTR(qid), 0); iwm_nic_unlock(sc); iwm_write_mem32(sc, sc->scd_base_addr + IWM_SCD_CONTEXT_QUEUE_OFFSET(qid), 0); /* Set scheduler window size and frame limit. */ iwm_write_mem32(sc, sc->scd_base_addr + IWM_SCD_CONTEXT_QUEUE_OFFSET(qid) + sizeof(uint32_t), ((IWM_FRAME_LIMIT << IWM_SCD_QUEUE_CTX_REG2_WIN_SIZE_POS) & IWM_SCD_QUEUE_CTX_REG2_WIN_SIZE_MSK) | ((IWM_FRAME_LIMIT << IWM_SCD_QUEUE_CTX_REG2_FRAME_LIMIT_POS) & IWM_SCD_QUEUE_CTX_REG2_FRAME_LIMIT_MSK)); if (!iwm_nic_lock(sc)) { device_printf(sc->sc_dev, "%s: cannot enable txq %d\n", __func__, qid); return EBUSY; } iwm_write_prph(sc, IWM_SCD_QUEUE_STATUS_BITS(qid), (1 << IWM_SCD_QUEUE_STTS_REG_POS_ACTIVE) | (fifo << IWM_SCD_QUEUE_STTS_REG_POS_TXF) | (1 << IWM_SCD_QUEUE_STTS_REG_POS_WSL) | IWM_SCD_QUEUE_STTS_REG_MSK); /* Enable the scheduler for this queue. */ iwm_write_prph(sc, IWM_SCD_EN_CTRL, qmsk); } else { struct iwm_scd_txq_cfg_cmd cmd; int error; iwm_nic_unlock(sc); memset(&cmd, 0, sizeof(cmd)); cmd.scd_queue = qid; cmd.enable = 1; cmd.sta_id = sta_id; cmd.tx_fifo = fifo; cmd.aggregate = 0; cmd.window = IWM_FRAME_LIMIT; error = iwm_send_cmd_pdu(sc, IWM_SCD_QUEUE_CFG, IWM_CMD_SYNC, sizeof(cmd), &cmd); if (error) { device_printf(sc->sc_dev, "cannot enable txq %d\n", qid); return error; } if (!iwm_nic_lock(sc)) return EBUSY; } iwm_nic_unlock(sc); IWM_DPRINTF(sc, IWM_DEBUG_XMIT, "%s: enabled txq %d FIFO %d\n", __func__, qid, fifo); return 0; } static int iwm_trans_pcie_fw_alive(struct iwm_softc *sc, uint32_t scd_base_addr) { int error, chnl; int clear_dwords = (IWM_SCD_TRANS_TBL_MEM_UPPER_BOUND - IWM_SCD_CONTEXT_MEM_LOWER_BOUND) / sizeof(uint32_t); if (!iwm_nic_lock(sc)) return EBUSY; iwm_ict_reset(sc); sc->scd_base_addr = iwm_read_prph(sc, IWM_SCD_SRAM_BASE_ADDR); if (scd_base_addr != 0 && scd_base_addr != sc->scd_base_addr) { device_printf(sc->sc_dev, "%s: sched addr mismatch: alive: 0x%x prph: 0x%x\n", __func__, sc->scd_base_addr, scd_base_addr); } iwm_nic_unlock(sc); /* reset context data, TX status and translation data */ error = iwm_write_mem(sc, sc->scd_base_addr + IWM_SCD_CONTEXT_MEM_LOWER_BOUND, NULL, clear_dwords); if (error) return EBUSY; if (!iwm_nic_lock(sc)) return EBUSY; /* Set physical address of TX scheduler rings (1KB aligned). */ iwm_write_prph(sc, IWM_SCD_DRAM_BASE_ADDR, sc->sched_dma.paddr >> 10); iwm_write_prph(sc, IWM_SCD_CHAINEXT_EN, 0); iwm_nic_unlock(sc); /* enable command channel */ error = iwm_enable_txq(sc, 0 /* unused */, IWM_CMD_QUEUE, 7); if (error) return error; if (!iwm_nic_lock(sc)) return EBUSY; iwm_write_prph(sc, IWM_SCD_TXFACT, 0xff); /* Enable DMA channels. */ for (chnl = 0; chnl < IWM_FH_TCSR_CHNL_NUM; chnl++) { IWM_WRITE(sc, IWM_FH_TCSR_CHNL_TX_CONFIG_REG(chnl), IWM_FH_TCSR_TX_CONFIG_REG_VAL_DMA_CHNL_ENABLE | IWM_FH_TCSR_TX_CONFIG_REG_VAL_DMA_CREDIT_ENABLE); } IWM_SETBITS(sc, IWM_FH_TX_CHICKEN_BITS_REG, IWM_FH_TX_CHICKEN_BITS_SCD_AUTO_RETRY_EN); iwm_nic_unlock(sc); /* Enable L1-Active */ if (sc->cfg->device_family < IWM_DEVICE_FAMILY_8000) { iwm_clear_bits_prph(sc, IWM_APMG_PCIDEV_STT_REG, IWM_APMG_PCIDEV_STT_VAL_L1_ACT_DIS); } return error; } /* * NVM read access and content parsing. We do not support * external NVM or writing NVM. * iwlwifi/mvm/nvm.c */ /* Default NVM size to read */ #define IWM_NVM_DEFAULT_CHUNK_SIZE (2*1024) #define IWM_NVM_WRITE_OPCODE 1 #define IWM_NVM_READ_OPCODE 0 /* load nvm chunk response */ enum { IWM_READ_NVM_CHUNK_SUCCEED = 0, IWM_READ_NVM_CHUNK_NOT_VALID_ADDRESS = 1 }; static int iwm_nvm_read_chunk(struct iwm_softc *sc, uint16_t section, uint16_t offset, uint16_t length, uint8_t *data, uint16_t *len) { struct iwm_nvm_access_cmd nvm_access_cmd = { .offset = htole16(offset), .length = htole16(length), .type = htole16(section), .op_code = IWM_NVM_READ_OPCODE, }; struct iwm_nvm_access_resp *nvm_resp; struct iwm_rx_packet *pkt; struct iwm_host_cmd cmd = { .id = IWM_NVM_ACCESS_CMD, .flags = IWM_CMD_WANT_SKB | IWM_CMD_SEND_IN_RFKILL, .data = { &nvm_access_cmd, }, }; int ret, bytes_read, offset_read; uint8_t *resp_data; cmd.len[0] = sizeof(struct iwm_nvm_access_cmd); ret = iwm_send_cmd(sc, &cmd); if (ret) { device_printf(sc->sc_dev, "Could not send NVM_ACCESS command (error=%d)\n", ret); return ret; } pkt = cmd.resp_pkt; /* Extract NVM response */ nvm_resp = (void *)pkt->data; ret = le16toh(nvm_resp->status); bytes_read = le16toh(nvm_resp->length); offset_read = le16toh(nvm_resp->offset); resp_data = nvm_resp->data; if (ret) { if ((offset != 0) && (ret == IWM_READ_NVM_CHUNK_NOT_VALID_ADDRESS)) { /* * meaning of NOT_VALID_ADDRESS: * driver try to read chunk from address that is * multiple of 2K and got an error since addr is empty. * meaning of (offset != 0): driver already * read valid data from another chunk so this case * is not an error. */ IWM_DPRINTF(sc, IWM_DEBUG_EEPROM | IWM_DEBUG_RESET, "NVM access command failed on offset 0x%x since that section size is multiple 2K\n", offset); *len = 0; ret = 0; } else { IWM_DPRINTF(sc, IWM_DEBUG_EEPROM | IWM_DEBUG_RESET, "NVM access command failed with status %d\n", ret); ret = EIO; } goto exit; } if (offset_read != offset) { device_printf(sc->sc_dev, "NVM ACCESS response with invalid offset %d\n", offset_read); ret = EINVAL; goto exit; } if (bytes_read > length) { device_printf(sc->sc_dev, "NVM ACCESS response with too much data " "(%d bytes requested, %d bytes received)\n", length, bytes_read); ret = EINVAL; goto exit; } /* Write data to NVM */ memcpy(data + offset, resp_data, bytes_read); *len = bytes_read; exit: iwm_free_resp(sc, &cmd); return ret; } /* * Reads an NVM section completely. * NICs prior to 7000 family don't have a real NVM, but just read * section 0 which is the EEPROM. Because the EEPROM reading is unlimited * by uCode, we need to manually check in this case that we don't * overflow and try to read more than the EEPROM size. * For 7000 family NICs, we supply the maximal size we can read, and * the uCode fills the response with as much data as we can, * without overflowing, so no check is needed. */ static int iwm_nvm_read_section(struct iwm_softc *sc, uint16_t section, uint8_t *data, uint16_t *len, uint32_t size_read) { uint16_t seglen, length, offset = 0; int ret; /* Set nvm section read length */ length = IWM_NVM_DEFAULT_CHUNK_SIZE; seglen = length; /* Read the NVM until exhausted (reading less than requested) */ while (seglen == length) { /* Check no memory assumptions fail and cause an overflow */ if ((size_read + offset + length) > sc->cfg->eeprom_size) { device_printf(sc->sc_dev, "EEPROM size is too small for NVM\n"); return ENOBUFS; } ret = iwm_nvm_read_chunk(sc, section, offset, length, data, &seglen); if (ret) { IWM_DPRINTF(sc, IWM_DEBUG_EEPROM | IWM_DEBUG_RESET, "Cannot read NVM from section %d offset %d, length %d\n", section, offset, length); return ret; } offset += seglen; } IWM_DPRINTF(sc, IWM_DEBUG_EEPROM | IWM_DEBUG_RESET, "NVM section %d read completed\n", section); *len = offset; return 0; } /* * BEGIN IWM_NVM_PARSE */ /* iwlwifi/iwl-nvm-parse.c */ /* NVM offsets (in words) definitions */ enum iwm_nvm_offsets { /* NVM HW-Section offset (in words) definitions */ IWM_HW_ADDR = 0x15, /* NVM SW-Section offset (in words) definitions */ IWM_NVM_SW_SECTION = 0x1C0, IWM_NVM_VERSION = 0, IWM_RADIO_CFG = 1, IWM_SKU = 2, IWM_N_HW_ADDRS = 3, IWM_NVM_CHANNELS = 0x1E0 - IWM_NVM_SW_SECTION, /* NVM calibration section offset (in words) definitions */ IWM_NVM_CALIB_SECTION = 0x2B8, IWM_XTAL_CALIB = 0x316 - IWM_NVM_CALIB_SECTION }; enum iwm_8000_nvm_offsets { /* NVM HW-Section offset (in words) definitions */ IWM_HW_ADDR0_WFPM_8000 = 0x12, IWM_HW_ADDR1_WFPM_8000 = 0x16, IWM_HW_ADDR0_PCIE_8000 = 0x8A, IWM_HW_ADDR1_PCIE_8000 = 0x8E, IWM_MAC_ADDRESS_OVERRIDE_8000 = 1, /* NVM SW-Section offset (in words) definitions */ IWM_NVM_SW_SECTION_8000 = 0x1C0, IWM_NVM_VERSION_8000 = 0, IWM_RADIO_CFG_8000 = 0, IWM_SKU_8000 = 2, IWM_N_HW_ADDRS_8000 = 3, /* NVM REGULATORY -Section offset (in words) definitions */ IWM_NVM_CHANNELS_8000 = 0, IWM_NVM_LAR_OFFSET_8000_OLD = 0x4C7, IWM_NVM_LAR_OFFSET_8000 = 0x507, IWM_NVM_LAR_ENABLED_8000 = 0x7, /* NVM calibration section offset (in words) definitions */ IWM_NVM_CALIB_SECTION_8000 = 0x2B8, IWM_XTAL_CALIB_8000 = 0x316 - IWM_NVM_CALIB_SECTION_8000 }; /* SKU Capabilities (actual values from NVM definition) */ enum nvm_sku_bits { IWM_NVM_SKU_CAP_BAND_24GHZ = (1 << 0), IWM_NVM_SKU_CAP_BAND_52GHZ = (1 << 1), IWM_NVM_SKU_CAP_11N_ENABLE = (1 << 2), IWM_NVM_SKU_CAP_11AC_ENABLE = (1 << 3), }; /* radio config bits (actual values from NVM definition) */ #define IWM_NVM_RF_CFG_DASH_MSK(x) (x & 0x3) /* bits 0-1 */ #define IWM_NVM_RF_CFG_STEP_MSK(x) ((x >> 2) & 0x3) /* bits 2-3 */ #define IWM_NVM_RF_CFG_TYPE_MSK(x) ((x >> 4) & 0x3) /* bits 4-5 */ #define IWM_NVM_RF_CFG_PNUM_MSK(x) ((x >> 6) & 0x3) /* bits 6-7 */ #define IWM_NVM_RF_CFG_TX_ANT_MSK(x) ((x >> 8) & 0xF) /* bits 8-11 */ #define IWM_NVM_RF_CFG_RX_ANT_MSK(x) ((x >> 12) & 0xF) /* bits 12-15 */ #define IWM_NVM_RF_CFG_FLAVOR_MSK_8000(x) (x & 0xF) #define IWM_NVM_RF_CFG_DASH_MSK_8000(x) ((x >> 4) & 0xF) #define IWM_NVM_RF_CFG_STEP_MSK_8000(x) ((x >> 8) & 0xF) #define IWM_NVM_RF_CFG_TYPE_MSK_8000(x) ((x >> 12) & 0xFFF) #define IWM_NVM_RF_CFG_TX_ANT_MSK_8000(x) ((x >> 24) & 0xF) #define IWM_NVM_RF_CFG_RX_ANT_MSK_8000(x) ((x >> 28) & 0xF) /** * enum iwm_nvm_channel_flags - channel flags in NVM * @IWM_NVM_CHANNEL_VALID: channel is usable for this SKU/geo * @IWM_NVM_CHANNEL_IBSS: usable as an IBSS channel * @IWM_NVM_CHANNEL_ACTIVE: active scanning allowed * @IWM_NVM_CHANNEL_RADAR: radar detection required * XXX cannot find this (DFS) flag in iwm-nvm-parse.c * @IWM_NVM_CHANNEL_DFS: dynamic freq selection candidate * @IWM_NVM_CHANNEL_WIDE: 20 MHz channel okay (?) * @IWM_NVM_CHANNEL_40MHZ: 40 MHz channel okay (?) * @IWM_NVM_CHANNEL_80MHZ: 80 MHz channel okay (?) * @IWM_NVM_CHANNEL_160MHZ: 160 MHz channel okay (?) */ enum iwm_nvm_channel_flags { IWM_NVM_CHANNEL_VALID = (1 << 0), IWM_NVM_CHANNEL_IBSS = (1 << 1), IWM_NVM_CHANNEL_ACTIVE = (1 << 3), IWM_NVM_CHANNEL_RADAR = (1 << 4), IWM_NVM_CHANNEL_DFS = (1 << 7), IWM_NVM_CHANNEL_WIDE = (1 << 8), IWM_NVM_CHANNEL_40MHZ = (1 << 9), IWM_NVM_CHANNEL_80MHZ = (1 << 10), IWM_NVM_CHANNEL_160MHZ = (1 << 11), }; /* * Translate EEPROM flags to net80211. */ static uint32_t iwm_eeprom_channel_flags(uint16_t ch_flags) { uint32_t nflags; nflags = 0; if ((ch_flags & IWM_NVM_CHANNEL_ACTIVE) == 0) nflags |= IEEE80211_CHAN_PASSIVE; if ((ch_flags & IWM_NVM_CHANNEL_IBSS) == 0) nflags |= IEEE80211_CHAN_NOADHOC; if (ch_flags & IWM_NVM_CHANNEL_RADAR) { nflags |= IEEE80211_CHAN_DFS; /* Just in case. */ nflags |= IEEE80211_CHAN_NOADHOC; } return (nflags); } static void iwm_add_channel_band(struct iwm_softc *sc, struct ieee80211_channel chans[], int maxchans, int *nchans, int ch_idx, size_t ch_num, const uint8_t bands[]) { const uint16_t * const nvm_ch_flags = sc->nvm_data->nvm_ch_flags; uint32_t nflags; uint16_t ch_flags; uint8_t ieee; int error; for (; ch_idx < ch_num; ch_idx++) { ch_flags = le16_to_cpup(nvm_ch_flags + ch_idx); if (sc->cfg->device_family == IWM_DEVICE_FAMILY_7000) ieee = iwm_nvm_channels[ch_idx]; else ieee = iwm_nvm_channels_8000[ch_idx]; if (!(ch_flags & IWM_NVM_CHANNEL_VALID)) { IWM_DPRINTF(sc, IWM_DEBUG_EEPROM, "Ch. %d Flags %x [%sGHz] - No traffic\n", ieee, ch_flags, (ch_idx >= IWM_NUM_2GHZ_CHANNELS) ? "5.2" : "2.4"); continue; } nflags = iwm_eeprom_channel_flags(ch_flags); error = ieee80211_add_channel(chans, maxchans, nchans, ieee, 0, 0, nflags, bands); if (error != 0) break; IWM_DPRINTF(sc, IWM_DEBUG_EEPROM, "Ch. %d Flags %x [%sGHz] - Added\n", ieee, ch_flags, (ch_idx >= IWM_NUM_2GHZ_CHANNELS) ? "5.2" : "2.4"); } } static void iwm_init_channel_map(struct ieee80211com *ic, int maxchans, int *nchans, struct ieee80211_channel chans[]) { struct iwm_softc *sc = ic->ic_softc; struct iwm_nvm_data *data = sc->nvm_data; uint8_t bands[IEEE80211_MODE_BYTES]; size_t ch_num; memset(bands, 0, sizeof(bands)); /* 1-13: 11b/g channels. */ setbit(bands, IEEE80211_MODE_11B); setbit(bands, IEEE80211_MODE_11G); iwm_add_channel_band(sc, chans, maxchans, nchans, 0, IWM_NUM_2GHZ_CHANNELS - 1, bands); /* 14: 11b channel only. */ clrbit(bands, IEEE80211_MODE_11G); iwm_add_channel_band(sc, chans, maxchans, nchans, IWM_NUM_2GHZ_CHANNELS - 1, IWM_NUM_2GHZ_CHANNELS, bands); if (data->sku_cap_band_52GHz_enable) { if (sc->cfg->device_family == IWM_DEVICE_FAMILY_7000) ch_num = nitems(iwm_nvm_channels); else ch_num = nitems(iwm_nvm_channels_8000); memset(bands, 0, sizeof(bands)); setbit(bands, IEEE80211_MODE_11A); iwm_add_channel_band(sc, chans, maxchans, nchans, IWM_NUM_2GHZ_CHANNELS, ch_num, bands); } } static void iwm_set_hw_address_family_8000(struct iwm_softc *sc, struct iwm_nvm_data *data, const uint16_t *mac_override, const uint16_t *nvm_hw) { const uint8_t *hw_addr; if (mac_override) { static const uint8_t reserved_mac[] = { 0x02, 0xcc, 0xaa, 0xff, 0xee, 0x00 }; hw_addr = (const uint8_t *)(mac_override + IWM_MAC_ADDRESS_OVERRIDE_8000); /* * Store the MAC address from MAO section. * No byte swapping is required in MAO section */ IEEE80211_ADDR_COPY(data->hw_addr, hw_addr); /* * Force the use of the OTP MAC address in case of reserved MAC * address in the NVM, or if address is given but invalid. */ if (!IEEE80211_ADDR_EQ(reserved_mac, hw_addr) && !IEEE80211_ADDR_EQ(ieee80211broadcastaddr, data->hw_addr) && iwm_is_valid_ether_addr(data->hw_addr) && !IEEE80211_IS_MULTICAST(data->hw_addr)) return; IWM_DPRINTF(sc, IWM_DEBUG_RESET, "%s: mac address from nvm override section invalid\n", __func__); } if (nvm_hw) { /* read the mac address from WFMP registers */ uint32_t mac_addr0 = htole32(iwm_read_prph(sc, IWM_WFMP_MAC_ADDR_0)); uint32_t mac_addr1 = htole32(iwm_read_prph(sc, IWM_WFMP_MAC_ADDR_1)); hw_addr = (const uint8_t *)&mac_addr0; data->hw_addr[0] = hw_addr[3]; data->hw_addr[1] = hw_addr[2]; data->hw_addr[2] = hw_addr[1]; data->hw_addr[3] = hw_addr[0]; hw_addr = (const uint8_t *)&mac_addr1; data->hw_addr[4] = hw_addr[1]; data->hw_addr[5] = hw_addr[0]; return; } device_printf(sc->sc_dev, "%s: mac address not found\n", __func__); memset(data->hw_addr, 0, sizeof(data->hw_addr)); } static int iwm_get_sku(const struct iwm_softc *sc, const uint16_t *nvm_sw, const uint16_t *phy_sku) { if (sc->cfg->device_family < IWM_DEVICE_FAMILY_8000) return le16_to_cpup(nvm_sw + IWM_SKU); return le32_to_cpup((const uint32_t *)(phy_sku + IWM_SKU_8000)); } static int iwm_get_nvm_version(const struct iwm_softc *sc, const uint16_t *nvm_sw) { if (sc->cfg->device_family < IWM_DEVICE_FAMILY_8000) return le16_to_cpup(nvm_sw + IWM_NVM_VERSION); else return le32_to_cpup((const uint32_t *)(nvm_sw + IWM_NVM_VERSION_8000)); } static int iwm_get_radio_cfg(const struct iwm_softc *sc, const uint16_t *nvm_sw, const uint16_t *phy_sku) { if (sc->cfg->device_family < IWM_DEVICE_FAMILY_8000) return le16_to_cpup(nvm_sw + IWM_RADIO_CFG); return le32_to_cpup((const uint32_t *)(phy_sku + IWM_RADIO_CFG_8000)); } static int iwm_get_n_hw_addrs(const struct iwm_softc *sc, const uint16_t *nvm_sw) { int n_hw_addr; if (sc->cfg->device_family < IWM_DEVICE_FAMILY_8000) return le16_to_cpup(nvm_sw + IWM_N_HW_ADDRS); n_hw_addr = le32_to_cpup((const uint32_t *)(nvm_sw + IWM_N_HW_ADDRS_8000)); return n_hw_addr & IWM_N_HW_ADDR_MASK; } static void iwm_set_radio_cfg(const struct iwm_softc *sc, struct iwm_nvm_data *data, uint32_t radio_cfg) { if (sc->cfg->device_family < IWM_DEVICE_FAMILY_8000) { data->radio_cfg_type = IWM_NVM_RF_CFG_TYPE_MSK(radio_cfg); data->radio_cfg_step = IWM_NVM_RF_CFG_STEP_MSK(radio_cfg); data->radio_cfg_dash = IWM_NVM_RF_CFG_DASH_MSK(radio_cfg); data->radio_cfg_pnum = IWM_NVM_RF_CFG_PNUM_MSK(radio_cfg); return; } /* set the radio configuration for family 8000 */ data->radio_cfg_type = IWM_NVM_RF_CFG_TYPE_MSK_8000(radio_cfg); data->radio_cfg_step = IWM_NVM_RF_CFG_STEP_MSK_8000(radio_cfg); data->radio_cfg_dash = IWM_NVM_RF_CFG_DASH_MSK_8000(radio_cfg); data->radio_cfg_pnum = IWM_NVM_RF_CFG_FLAVOR_MSK_8000(radio_cfg); data->valid_tx_ant = IWM_NVM_RF_CFG_TX_ANT_MSK_8000(radio_cfg); data->valid_rx_ant = IWM_NVM_RF_CFG_RX_ANT_MSK_8000(radio_cfg); } static int iwm_set_hw_address(struct iwm_softc *sc, struct iwm_nvm_data *data, const uint16_t *nvm_hw, const uint16_t *mac_override) { #ifdef notyet /* for FAMILY 9000 */ if (cfg->mac_addr_from_csr) { iwm_set_hw_address_from_csr(sc, data); } else #endif if (sc->cfg->device_family < IWM_DEVICE_FAMILY_8000) { const uint8_t *hw_addr = (const uint8_t *)(nvm_hw + IWM_HW_ADDR); /* The byte order is little endian 16 bit, meaning 214365 */ data->hw_addr[0] = hw_addr[1]; data->hw_addr[1] = hw_addr[0]; data->hw_addr[2] = hw_addr[3]; data->hw_addr[3] = hw_addr[2]; data->hw_addr[4] = hw_addr[5]; data->hw_addr[5] = hw_addr[4]; } else { iwm_set_hw_address_family_8000(sc, data, mac_override, nvm_hw); } if (!iwm_is_valid_ether_addr(data->hw_addr)) { device_printf(sc->sc_dev, "no valid mac address was found\n"); return EINVAL; } return 0; } static struct iwm_nvm_data * iwm_parse_nvm_data(struct iwm_softc *sc, const uint16_t *nvm_hw, const uint16_t *nvm_sw, const uint16_t *nvm_calib, const uint16_t *mac_override, const uint16_t *phy_sku, const uint16_t *regulatory) { struct iwm_nvm_data *data; uint32_t sku, radio_cfg; uint16_t lar_config; if (sc->cfg->device_family < IWM_DEVICE_FAMILY_8000) { data = malloc(sizeof(*data) + IWM_NUM_CHANNELS * sizeof(uint16_t), M_DEVBUF, M_NOWAIT | M_ZERO); } else { data = malloc(sizeof(*data) + IWM_NUM_CHANNELS_8000 * sizeof(uint16_t), M_DEVBUF, M_NOWAIT | M_ZERO); } if (!data) return NULL; data->nvm_version = iwm_get_nvm_version(sc, nvm_sw); radio_cfg = iwm_get_radio_cfg(sc, nvm_sw, phy_sku); iwm_set_radio_cfg(sc, data, radio_cfg); sku = iwm_get_sku(sc, nvm_sw, phy_sku); data->sku_cap_band_24GHz_enable = sku & IWM_NVM_SKU_CAP_BAND_24GHZ; data->sku_cap_band_52GHz_enable = sku & IWM_NVM_SKU_CAP_BAND_52GHZ; data->sku_cap_11n_enable = 0; data->n_hw_addrs = iwm_get_n_hw_addrs(sc, nvm_sw); if (sc->cfg->device_family >= IWM_DEVICE_FAMILY_8000) { /* TODO: use IWL_NVM_EXT */ uint16_t lar_offset = data->nvm_version < 0xE39 ? IWM_NVM_LAR_OFFSET_8000_OLD : IWM_NVM_LAR_OFFSET_8000; lar_config = le16_to_cpup(regulatory + lar_offset); data->lar_enabled = !!(lar_config & IWM_NVM_LAR_ENABLED_8000); } /* If no valid mac address was found - bail out */ if (iwm_set_hw_address(sc, data, nvm_hw, mac_override)) { free(data, M_DEVBUF); return NULL; } if (sc->cfg->device_family == IWM_DEVICE_FAMILY_7000) { memcpy(data->nvm_ch_flags, sc->cfg->nvm_type == IWM_NVM_SDP ? ®ulatory[0] : &nvm_sw[IWM_NVM_CHANNELS], IWM_NUM_CHANNELS * sizeof(uint16_t)); } else { memcpy(data->nvm_ch_flags, ®ulatory[IWM_NVM_CHANNELS_8000], IWM_NUM_CHANNELS_8000 * sizeof(uint16_t)); } return data; } static void iwm_free_nvm_data(struct iwm_nvm_data *data) { if (data != NULL) free(data, M_DEVBUF); } static struct iwm_nvm_data * iwm_parse_nvm_sections(struct iwm_softc *sc, struct iwm_nvm_section *sections) { const uint16_t *hw, *sw, *calib, *regulatory, *mac_override, *phy_sku; /* Checking for required sections */ if (sc->cfg->device_family == IWM_DEVICE_FAMILY_7000) { if (!sections[IWM_NVM_SECTION_TYPE_SW].data || !sections[sc->cfg->nvm_hw_section_num].data) { device_printf(sc->sc_dev, "Can't parse empty OTP/NVM sections\n"); return NULL; } } else if (sc->cfg->device_family >= IWM_DEVICE_FAMILY_8000) { /* SW and REGULATORY sections are mandatory */ if (!sections[IWM_NVM_SECTION_TYPE_SW].data || !sections[IWM_NVM_SECTION_TYPE_REGULATORY].data) { device_printf(sc->sc_dev, "Can't parse empty OTP/NVM sections\n"); return NULL; } /* MAC_OVERRIDE or at least HW section must exist */ if (!sections[sc->cfg->nvm_hw_section_num].data && !sections[IWM_NVM_SECTION_TYPE_MAC_OVERRIDE].data) { device_printf(sc->sc_dev, "Can't parse mac_address, empty sections\n"); return NULL; } /* PHY_SKU section is mandatory in B0 */ if (!sections[IWM_NVM_SECTION_TYPE_PHY_SKU].data) { device_printf(sc->sc_dev, "Can't parse phy_sku in B0, empty sections\n"); return NULL; } } else { panic("unknown device family %d\n", sc->cfg->device_family); } hw = (const uint16_t *) sections[sc->cfg->nvm_hw_section_num].data; sw = (const uint16_t *)sections[IWM_NVM_SECTION_TYPE_SW].data; calib = (const uint16_t *) sections[IWM_NVM_SECTION_TYPE_CALIBRATION].data; regulatory = sc->cfg->nvm_type == IWM_NVM_SDP ? (const uint16_t *)sections[IWM_NVM_SECTION_TYPE_REGULATORY_SDP].data : (const uint16_t *)sections[IWM_NVM_SECTION_TYPE_REGULATORY].data; mac_override = (const uint16_t *) sections[IWM_NVM_SECTION_TYPE_MAC_OVERRIDE].data; phy_sku = (const uint16_t *)sections[IWM_NVM_SECTION_TYPE_PHY_SKU].data; return iwm_parse_nvm_data(sc, hw, sw, calib, mac_override, phy_sku, regulatory); } static int iwm_nvm_init(struct iwm_softc *sc) { struct iwm_nvm_section nvm_sections[IWM_NVM_MAX_NUM_SECTIONS]; int i, ret, section; uint32_t size_read = 0; uint8_t *nvm_buffer, *temp; uint16_t len; memset(nvm_sections, 0, sizeof(nvm_sections)); if (sc->cfg->nvm_hw_section_num >= IWM_NVM_MAX_NUM_SECTIONS) return EINVAL; /* load NVM values from nic */ /* Read From FW NVM */ IWM_DPRINTF(sc, IWM_DEBUG_EEPROM, "Read from NVM\n"); nvm_buffer = malloc(sc->cfg->eeprom_size, M_DEVBUF, M_NOWAIT | M_ZERO); if (!nvm_buffer) return ENOMEM; for (section = 0; section < IWM_NVM_MAX_NUM_SECTIONS; section++) { /* we override the constness for initial read */ ret = iwm_nvm_read_section(sc, section, nvm_buffer, &len, size_read); if (ret) continue; size_read += len; temp = malloc(len, M_DEVBUF, M_NOWAIT); if (!temp) { ret = ENOMEM; break; } memcpy(temp, nvm_buffer, len); nvm_sections[section].data = temp; nvm_sections[section].length = len; } if (!size_read) device_printf(sc->sc_dev, "OTP is blank\n"); free(nvm_buffer, M_DEVBUF); sc->nvm_data = iwm_parse_nvm_sections(sc, nvm_sections); if (!sc->nvm_data) return EINVAL; IWM_DPRINTF(sc, IWM_DEBUG_EEPROM | IWM_DEBUG_RESET, "nvm version = %x\n", sc->nvm_data->nvm_version); for (i = 0; i < IWM_NVM_MAX_NUM_SECTIONS; i++) { if (nvm_sections[i].data != NULL) free(nvm_sections[i].data, M_DEVBUF); } return 0; } static int iwm_pcie_load_section(struct iwm_softc *sc, uint8_t section_num, const struct iwm_fw_desc *section) { struct iwm_dma_info *dma = &sc->fw_dma; uint8_t *v_addr; bus_addr_t p_addr; uint32_t offset, chunk_sz = MIN(IWM_FH_MEM_TB_MAX_LENGTH, section->len); int ret = 0; IWM_DPRINTF(sc, IWM_DEBUG_RESET, "%s: [%d] uCode section being loaded...\n", __func__, section_num); v_addr = dma->vaddr; p_addr = dma->paddr; for (offset = 0; offset < section->len; offset += chunk_sz) { uint32_t copy_size, dst_addr; int extended_addr = FALSE; copy_size = MIN(chunk_sz, section->len - offset); dst_addr = section->offset + offset; if (dst_addr >= IWM_FW_MEM_EXTENDED_START && dst_addr <= IWM_FW_MEM_EXTENDED_END) extended_addr = TRUE; if (extended_addr) iwm_set_bits_prph(sc, IWM_LMPM_CHICK, IWM_LMPM_CHICK_EXTENDED_ADDR_SPACE); memcpy(v_addr, (const uint8_t *)section->data + offset, copy_size); bus_dmamap_sync(dma->tag, dma->map, BUS_DMASYNC_PREWRITE); ret = iwm_pcie_load_firmware_chunk(sc, dst_addr, p_addr, copy_size); if (extended_addr) iwm_clear_bits_prph(sc, IWM_LMPM_CHICK, IWM_LMPM_CHICK_EXTENDED_ADDR_SPACE); if (ret) { device_printf(sc->sc_dev, "%s: Could not load the [%d] uCode section\n", __func__, section_num); break; } } return ret; } /* * ucode */ static int iwm_pcie_load_firmware_chunk(struct iwm_softc *sc, uint32_t dst_addr, bus_addr_t phy_addr, uint32_t byte_cnt) { sc->sc_fw_chunk_done = 0; if (!iwm_nic_lock(sc)) return EBUSY; IWM_WRITE(sc, IWM_FH_TCSR_CHNL_TX_CONFIG_REG(IWM_FH_SRVC_CHNL), IWM_FH_TCSR_TX_CONFIG_REG_VAL_DMA_CHNL_PAUSE); IWM_WRITE(sc, IWM_FH_SRVC_CHNL_SRAM_ADDR_REG(IWM_FH_SRVC_CHNL), dst_addr); IWM_WRITE(sc, IWM_FH_TFDIB_CTRL0_REG(IWM_FH_SRVC_CHNL), phy_addr & IWM_FH_MEM_TFDIB_DRAM_ADDR_LSB_MSK); IWM_WRITE(sc, IWM_FH_TFDIB_CTRL1_REG(IWM_FH_SRVC_CHNL), (iwm_get_dma_hi_addr(phy_addr) << IWM_FH_MEM_TFDIB_REG1_ADDR_BITSHIFT) | byte_cnt); IWM_WRITE(sc, IWM_FH_TCSR_CHNL_TX_BUF_STS_REG(IWM_FH_SRVC_CHNL), 1 << IWM_FH_TCSR_CHNL_TX_BUF_STS_REG_POS_TB_NUM | 1 << IWM_FH_TCSR_CHNL_TX_BUF_STS_REG_POS_TB_IDX | IWM_FH_TCSR_CHNL_TX_BUF_STS_REG_VAL_TFDB_VALID); IWM_WRITE(sc, IWM_FH_TCSR_CHNL_TX_CONFIG_REG(IWM_FH_SRVC_CHNL), IWM_FH_TCSR_TX_CONFIG_REG_VAL_DMA_CHNL_ENABLE | IWM_FH_TCSR_TX_CONFIG_REG_VAL_DMA_CREDIT_DISABLE | IWM_FH_TCSR_TX_CONFIG_REG_VAL_CIRQ_HOST_ENDTFD); iwm_nic_unlock(sc); /* wait up to 5s for this segment to load */ msleep(&sc->sc_fw, &sc->sc_mtx, 0, "iwmfw", hz * 5); if (!sc->sc_fw_chunk_done) { device_printf(sc->sc_dev, "fw chunk addr 0x%x len %d failed to load\n", dst_addr, byte_cnt); return ETIMEDOUT; } return 0; } static int iwm_pcie_load_cpu_sections_8000(struct iwm_softc *sc, const struct iwm_fw_img *image, int cpu, int *first_ucode_section) { int shift_param; int i, ret = 0, sec_num = 0x1; uint32_t val, last_read_idx = 0; if (cpu == 1) { shift_param = 0; *first_ucode_section = 0; } else { shift_param = 16; (*first_ucode_section)++; } for (i = *first_ucode_section; i < IWM_UCODE_SECTION_MAX; i++) { last_read_idx = i; /* * CPU1_CPU2_SEPARATOR_SECTION delimiter - separate between * CPU1 to CPU2. * PAGING_SEPARATOR_SECTION delimiter - separate between * CPU2 non paged to CPU2 paging sec. */ if (!image->sec[i].data || image->sec[i].offset == IWM_CPU1_CPU2_SEPARATOR_SECTION || image->sec[i].offset == IWM_PAGING_SEPARATOR_SECTION) { IWM_DPRINTF(sc, IWM_DEBUG_RESET, "Break since Data not valid or Empty section, sec = %d\n", i); break; } ret = iwm_pcie_load_section(sc, i, &image->sec[i]); if (ret) return ret; /* Notify the ucode of the loaded section number and status */ if (iwm_nic_lock(sc)) { val = IWM_READ(sc, IWM_FH_UCODE_LOAD_STATUS); val = val | (sec_num << shift_param); IWM_WRITE(sc, IWM_FH_UCODE_LOAD_STATUS, val); sec_num = (sec_num << 1) | 0x1; iwm_nic_unlock(sc); } } *first_ucode_section = last_read_idx; iwm_enable_interrupts(sc); if (iwm_nic_lock(sc)) { if (cpu == 1) IWM_WRITE(sc, IWM_FH_UCODE_LOAD_STATUS, 0xFFFF); else IWM_WRITE(sc, IWM_FH_UCODE_LOAD_STATUS, 0xFFFFFFFF); iwm_nic_unlock(sc); } return 0; } static int iwm_pcie_load_cpu_sections(struct iwm_softc *sc, const struct iwm_fw_img *image, int cpu, int *first_ucode_section) { int shift_param; int i, ret = 0; uint32_t last_read_idx = 0; if (cpu == 1) { shift_param = 0; *first_ucode_section = 0; } else { shift_param = 16; (*first_ucode_section)++; } for (i = *first_ucode_section; i < IWM_UCODE_SECTION_MAX; i++) { last_read_idx = i; /* * CPU1_CPU2_SEPARATOR_SECTION delimiter - separate between * CPU1 to CPU2. * PAGING_SEPARATOR_SECTION delimiter - separate between * CPU2 non paged to CPU2 paging sec. */ if (!image->sec[i].data || image->sec[i].offset == IWM_CPU1_CPU2_SEPARATOR_SECTION || image->sec[i].offset == IWM_PAGING_SEPARATOR_SECTION) { IWM_DPRINTF(sc, IWM_DEBUG_RESET, "Break since Data not valid or Empty section, sec = %d\n", i); break; } ret = iwm_pcie_load_section(sc, i, &image->sec[i]); if (ret) return ret; } *first_ucode_section = last_read_idx; return 0; } static int iwm_pcie_load_given_ucode(struct iwm_softc *sc, const struct iwm_fw_img *image) { int ret = 0; int first_ucode_section; IWM_DPRINTF(sc, IWM_DEBUG_RESET, "working with %s CPU\n", image->is_dual_cpus ? "Dual" : "Single"); /* load to FW the binary non secured sections of CPU1 */ ret = iwm_pcie_load_cpu_sections(sc, image, 1, &first_ucode_section); if (ret) return ret; if (image->is_dual_cpus) { /* set CPU2 header address */ if (iwm_nic_lock(sc)) { iwm_write_prph(sc, IWM_LMPM_SECURE_UCODE_LOAD_CPU2_HDR_ADDR, IWM_LMPM_SECURE_CPU2_HDR_MEM_SPACE); iwm_nic_unlock(sc); } /* load to FW the binary sections of CPU2 */ ret = iwm_pcie_load_cpu_sections(sc, image, 2, &first_ucode_section); if (ret) return ret; } iwm_enable_interrupts(sc); /* release CPU reset */ IWM_WRITE(sc, IWM_CSR_RESET, 0); return 0; } int iwm_pcie_load_given_ucode_8000(struct iwm_softc *sc, const struct iwm_fw_img *image) { int ret = 0; int first_ucode_section; IWM_DPRINTF(sc, IWM_DEBUG_RESET, "working with %s CPU\n", image->is_dual_cpus ? "Dual" : "Single"); /* configure the ucode to be ready to get the secured image */ /* release CPU reset */ if (iwm_nic_lock(sc)) { iwm_write_prph(sc, IWM_RELEASE_CPU_RESET, IWM_RELEASE_CPU_RESET_BIT); iwm_nic_unlock(sc); } /* load to FW the binary Secured sections of CPU1 */ ret = iwm_pcie_load_cpu_sections_8000(sc, image, 1, &first_ucode_section); if (ret) return ret; /* load to FW the binary sections of CPU2 */ return iwm_pcie_load_cpu_sections_8000(sc, image, 2, &first_ucode_section); } /* XXX Get rid of this definition */ static inline void iwm_enable_fw_load_int(struct iwm_softc *sc) { IWM_DPRINTF(sc, IWM_DEBUG_INTR, "Enabling FW load interrupt\n"); sc->sc_intmask = IWM_CSR_INT_BIT_FH_TX; IWM_WRITE(sc, IWM_CSR_INT_MASK, sc->sc_intmask); } /* XXX Add proper rfkill support code */ static int iwm_start_fw(struct iwm_softc *sc, const struct iwm_fw_img *fw) { int ret; /* This may fail if AMT took ownership of the device */ if (iwm_prepare_card_hw(sc)) { device_printf(sc->sc_dev, "%s: Exit HW not ready\n", __func__); ret = EIO; goto out; } IWM_WRITE(sc, IWM_CSR_INT, 0xFFFFFFFF); iwm_disable_interrupts(sc); /* make sure rfkill handshake bits are cleared */ IWM_WRITE(sc, IWM_CSR_UCODE_DRV_GP1_CLR, IWM_CSR_UCODE_SW_BIT_RFKILL); IWM_WRITE(sc, IWM_CSR_UCODE_DRV_GP1_CLR, IWM_CSR_UCODE_DRV_GP1_BIT_CMD_BLOCKED); /* clear (again), then enable host interrupts */ IWM_WRITE(sc, IWM_CSR_INT, 0xFFFFFFFF); ret = iwm_nic_init(sc); if (ret) { device_printf(sc->sc_dev, "%s: Unable to init nic\n", __func__); goto out; } /* * Now, we load the firmware and don't want to be interrupted, even * by the RF-Kill interrupt (hence mask all the interrupt besides the * FH_TX interrupt which is needed to load the firmware). If the * RF-Kill switch is toggled, we will find out after having loaded * the firmware and return the proper value to the caller. */ iwm_enable_fw_load_int(sc); /* really make sure rfkill handshake bits are cleared */ /* maybe we should write a few times more? just to make sure */ IWM_WRITE(sc, IWM_CSR_UCODE_DRV_GP1_CLR, IWM_CSR_UCODE_SW_BIT_RFKILL); IWM_WRITE(sc, IWM_CSR_UCODE_DRV_GP1_CLR, IWM_CSR_UCODE_SW_BIT_RFKILL); /* Load the given image to the HW */ if (sc->cfg->device_family >= IWM_DEVICE_FAMILY_8000) ret = iwm_pcie_load_given_ucode_8000(sc, fw); else ret = iwm_pcie_load_given_ucode(sc, fw); /* XXX re-check RF-Kill state */ out: return ret; } static int iwm_send_tx_ant_cfg(struct iwm_softc *sc, uint8_t valid_tx_ant) { struct iwm_tx_ant_cfg_cmd tx_ant_cmd = { .valid = htole32(valid_tx_ant), }; return iwm_send_cmd_pdu(sc, IWM_TX_ANT_CONFIGURATION_CMD, IWM_CMD_SYNC, sizeof(tx_ant_cmd), &tx_ant_cmd); } /* iwlwifi: mvm/fw.c */ static int iwm_send_phy_cfg_cmd(struct iwm_softc *sc) { struct iwm_phy_cfg_cmd phy_cfg_cmd; enum iwm_ucode_type ucode_type = sc->cur_ucode; /* Set parameters */ phy_cfg_cmd.phy_cfg = htole32(iwm_get_phy_config(sc)); phy_cfg_cmd.calib_control.event_trigger = sc->sc_default_calib[ucode_type].event_trigger; phy_cfg_cmd.calib_control.flow_trigger = sc->sc_default_calib[ucode_type].flow_trigger; IWM_DPRINTF(sc, IWM_DEBUG_CMD | IWM_DEBUG_RESET, "Sending Phy CFG command: 0x%x\n", phy_cfg_cmd.phy_cfg); return iwm_send_cmd_pdu(sc, IWM_PHY_CONFIGURATION_CMD, IWM_CMD_SYNC, sizeof(phy_cfg_cmd), &phy_cfg_cmd); } static int iwm_alive_fn(struct iwm_softc *sc, struct iwm_rx_packet *pkt, void *data) { struct iwm_alive_data *alive_data = data; struct iwm_alive_resp_v3 *palive3; struct iwm_alive_resp *palive; struct iwm_umac_alive *umac; struct iwm_lmac_alive *lmac1; struct iwm_lmac_alive *lmac2 = NULL; uint16_t status; if (iwm_rx_packet_payload_len(pkt) == sizeof(*palive)) { palive = (void *)pkt->data; umac = &palive->umac_data; lmac1 = &palive->lmac_data[0]; lmac2 = &palive->lmac_data[1]; status = le16toh(palive->status); } else { palive3 = (void *)pkt->data; umac = &palive3->umac_data; lmac1 = &palive3->lmac_data; status = le16toh(palive3->status); } sc->error_event_table[0] = le32toh(lmac1->error_event_table_ptr); if (lmac2) sc->error_event_table[1] = le32toh(lmac2->error_event_table_ptr); sc->log_event_table = le32toh(lmac1->log_event_table_ptr); sc->umac_error_event_table = le32toh(umac->error_info_addr); alive_data->scd_base_addr = le32toh(lmac1->scd_base_ptr); alive_data->valid = status == IWM_ALIVE_STATUS_OK; if (sc->umac_error_event_table) sc->support_umac_log = TRUE; IWM_DPRINTF(sc, IWM_DEBUG_FW, "Alive ucode status 0x%04x revision 0x%01X 0x%01X\n", status, lmac1->ver_type, lmac1->ver_subtype); if (lmac2) IWM_DPRINTF(sc, IWM_DEBUG_FW, "Alive ucode CDB\n"); IWM_DPRINTF(sc, IWM_DEBUG_FW, "UMAC version: Major - 0x%x, Minor - 0x%x\n", le32toh(umac->umac_major), le32toh(umac->umac_minor)); return TRUE; } static int iwm_wait_phy_db_entry(struct iwm_softc *sc, struct iwm_rx_packet *pkt, void *data) { struct iwm_phy_db *phy_db = data; if (pkt->hdr.code != IWM_CALIB_RES_NOTIF_PHY_DB) { if(pkt->hdr.code != IWM_INIT_COMPLETE_NOTIF) { device_printf(sc->sc_dev, "%s: Unexpected cmd: %d\n", __func__, pkt->hdr.code); } return TRUE; } if (iwm_phy_db_set_section(phy_db, pkt)) { device_printf(sc->sc_dev, "%s: iwm_phy_db_set_section failed\n", __func__); } return FALSE; } static int iwm_load_ucode_wait_alive(struct iwm_softc *sc, enum iwm_ucode_type ucode_type) { struct iwm_notification_wait alive_wait; struct iwm_alive_data alive_data; const struct iwm_fw_img *fw; enum iwm_ucode_type old_type = sc->cur_ucode; int error; static const uint16_t alive_cmd[] = { IWM_ALIVE }; fw = &sc->sc_fw.img[ucode_type]; sc->cur_ucode = ucode_type; sc->ucode_loaded = FALSE; memset(&alive_data, 0, sizeof(alive_data)); iwm_init_notification_wait(sc->sc_notif_wait, &alive_wait, alive_cmd, nitems(alive_cmd), iwm_alive_fn, &alive_data); error = iwm_start_fw(sc, fw); if (error) { device_printf(sc->sc_dev, "iwm_start_fw: failed %d\n", error); sc->cur_ucode = old_type; iwm_remove_notification(sc->sc_notif_wait, &alive_wait); return error; } /* * Some things may run in the background now, but we * just wait for the ALIVE notification here. */ IWM_UNLOCK(sc); error = iwm_wait_notification(sc->sc_notif_wait, &alive_wait, IWM_UCODE_ALIVE_TIMEOUT); IWM_LOCK(sc); if (error) { if (sc->cfg->device_family >= IWM_DEVICE_FAMILY_8000) { uint32_t a = 0x5a5a5a5a, b = 0x5a5a5a5a; if (iwm_nic_lock(sc)) { a = iwm_read_prph(sc, IWM_SB_CPU_1_STATUS); b = iwm_read_prph(sc, IWM_SB_CPU_2_STATUS); iwm_nic_unlock(sc); } device_printf(sc->sc_dev, "SecBoot CPU1 Status: 0x%x, CPU2 Status: 0x%x\n", a, b); } sc->cur_ucode = old_type; return error; } if (!alive_data.valid) { device_printf(sc->sc_dev, "%s: Loaded ucode is not valid\n", __func__); sc->cur_ucode = old_type; return EIO; } iwm_trans_pcie_fw_alive(sc, alive_data.scd_base_addr); /* * configure and operate fw paging mechanism. * driver configures the paging flow only once, CPU2 paging image * included in the IWM_UCODE_INIT image. */ if (fw->paging_mem_size) { error = iwm_save_fw_paging(sc, fw); if (error) { device_printf(sc->sc_dev, "%s: failed to save the FW paging image\n", __func__); return error; } error = iwm_send_paging_cmd(sc, fw); if (error) { device_printf(sc->sc_dev, "%s: failed to send the paging cmd\n", __func__); iwm_free_fw_paging(sc); return error; } } if (!error) sc->ucode_loaded = TRUE; return error; } /* * mvm misc bits */ /* * follows iwlwifi/fw.c */ static int iwm_run_init_ucode(struct iwm_softc *sc, int justnvm) { struct iwm_notification_wait calib_wait; static const uint16_t init_complete[] = { IWM_INIT_COMPLETE_NOTIF, IWM_CALIB_RES_NOTIF_PHY_DB }; int ret; /* do not operate with rfkill switch turned on */ if ((sc->sc_flags & IWM_FLAG_RFKILL) && !justnvm) { device_printf(sc->sc_dev, "radio is disabled by hardware switch\n"); return EPERM; } iwm_init_notification_wait(sc->sc_notif_wait, &calib_wait, init_complete, nitems(init_complete), iwm_wait_phy_db_entry, sc->sc_phy_db); /* Will also start the device */ ret = iwm_load_ucode_wait_alive(sc, IWM_UCODE_INIT); if (ret) { device_printf(sc->sc_dev, "Failed to start INIT ucode: %d\n", ret); goto error; } if (sc->cfg->device_family < IWM_DEVICE_FAMILY_8000) { ret = iwm_send_bt_init_conf(sc); if (ret) { device_printf(sc->sc_dev, "failed to send bt coex configuration: %d\n", ret); goto error; } } if (justnvm) { /* Read nvm */ ret = iwm_nvm_init(sc); if (ret) { device_printf(sc->sc_dev, "failed to read nvm\n"); goto error; } IEEE80211_ADDR_COPY(sc->sc_ic.ic_macaddr, sc->nvm_data->hw_addr); goto error; } /* Send TX valid antennas before triggering calibrations */ ret = iwm_send_tx_ant_cfg(sc, iwm_get_valid_tx_ant(sc)); if (ret) { device_printf(sc->sc_dev, "failed to send antennas before calibration: %d\n", ret); goto error; } /* * Send phy configurations command to init uCode * to start the 16.0 uCode init image internal calibrations. */ ret = iwm_send_phy_cfg_cmd(sc); if (ret) { device_printf(sc->sc_dev, "%s: Failed to run INIT calibrations: %d\n", __func__, ret); goto error; } /* * Nothing to do but wait for the init complete notification * from the firmware. */ IWM_UNLOCK(sc); ret = iwm_wait_notification(sc->sc_notif_wait, &calib_wait, IWM_UCODE_CALIB_TIMEOUT); IWM_LOCK(sc); goto out; error: iwm_remove_notification(sc->sc_notif_wait, &calib_wait); out: return ret; } static int iwm_config_ltr(struct iwm_softc *sc) { struct iwm_ltr_config_cmd cmd = { .flags = htole32(IWM_LTR_CFG_FLAG_FEATURE_ENABLE), }; if (!sc->sc_ltr_enabled) return 0; return iwm_send_cmd_pdu(sc, IWM_LTR_CONFIG, 0, sizeof(cmd), &cmd); } /* * receive side */ /* (re)stock rx ring, called at init-time and at runtime */ static int iwm_rx_addbuf(struct iwm_softc *sc, int size, int idx) { struct iwm_rx_ring *ring = &sc->rxq; struct iwm_rx_data *data = &ring->data[idx]; struct mbuf *m; bus_dmamap_t dmamap; bus_dma_segment_t seg; int nsegs, error; m = m_getjcl(M_NOWAIT, MT_DATA, M_PKTHDR, IWM_RBUF_SIZE); if (m == NULL) return ENOBUFS; m->m_len = m->m_pkthdr.len = m->m_ext.ext_size; error = bus_dmamap_load_mbuf_sg(ring->data_dmat, ring->spare_map, m, &seg, &nsegs, BUS_DMA_NOWAIT); if (error != 0) { device_printf(sc->sc_dev, "%s: can't map mbuf, error %d\n", __func__, error); m_freem(m); return error; } if (data->m != NULL) bus_dmamap_unload(ring->data_dmat, data->map); /* Swap ring->spare_map with data->map */ dmamap = data->map; data->map = ring->spare_map; ring->spare_map = dmamap; bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_PREREAD); data->m = m; /* Update RX descriptor. */ KASSERT((seg.ds_addr & 255) == 0, ("seg.ds_addr not aligned")); if (sc->cfg->mqrx_supported) ((uint64_t *)ring->desc)[idx] = htole64(seg.ds_addr); else ((uint32_t *)ring->desc)[idx] = htole32(seg.ds_addr >> 8); bus_dmamap_sync(ring->free_desc_dma.tag, ring->free_desc_dma.map, BUS_DMASYNC_PREWRITE); return 0; } static void iwm_rx_rx_phy_cmd(struct iwm_softc *sc, struct iwm_rx_packet *pkt) { struct iwm_rx_phy_info *phy_info = (void *)pkt->data; IWM_DPRINTF(sc, IWM_DEBUG_RECV, "received PHY stats\n"); memcpy(&sc->sc_last_phy_info, phy_info, sizeof(sc->sc_last_phy_info)); } /* * Retrieve the average noise (in dBm) among receivers. */ static int iwm_get_noise(struct iwm_softc *sc, const struct iwm_statistics_rx_non_phy *stats) { int i, total, nbant, noise; total = nbant = noise = 0; for (i = 0; i < 3; i++) { noise = le32toh(stats->beacon_silence_rssi[i]) & 0xff; IWM_DPRINTF(sc, IWM_DEBUG_RECV, "%s: i=%d, noise=%d\n", __func__, i, noise); if (noise) { total += noise; nbant++; } } IWM_DPRINTF(sc, IWM_DEBUG_RECV, "%s: nbant=%d, total=%d\n", __func__, nbant, total); #if 0 /* There should be at least one antenna but check anyway. */ return (nbant == 0) ? -127 : (total / nbant) - 107; #else /* For now, just hard-code it to -96 to be safe */ return (-96); #endif } static void iwm_handle_rx_statistics(struct iwm_softc *sc, struct iwm_rx_packet *pkt) { struct iwm_notif_statistics_v10 *stats = (void *)&pkt->data; memcpy(&sc->sc_stats, stats, sizeof(sc->sc_stats)); sc->sc_noise = iwm_get_noise(sc, &stats->rx.general); } /* iwlwifi: mvm/rx.c */ /* * iwm_get_signal_strength - use new rx PHY INFO API * values are reported by the fw as positive values - need to negate * to obtain their dBM. Account for missing antennas by replacing 0 * values by -256dBm: practically 0 power and a non-feasible 8 bit value. */ static int iwm_rx_get_signal_strength(struct iwm_softc *sc, struct iwm_rx_phy_info *phy_info) { int energy_a, energy_b, energy_c, max_energy; uint32_t val; val = le32toh(phy_info->non_cfg_phy[IWM_RX_INFO_ENERGY_ANT_ABC_IDX]); energy_a = (val & IWM_RX_INFO_ENERGY_ANT_A_MSK) >> IWM_RX_INFO_ENERGY_ANT_A_POS; energy_a = energy_a ? -energy_a : -256; energy_b = (val & IWM_RX_INFO_ENERGY_ANT_B_MSK) >> IWM_RX_INFO_ENERGY_ANT_B_POS; energy_b = energy_b ? -energy_b : -256; energy_c = (val & IWM_RX_INFO_ENERGY_ANT_C_MSK) >> IWM_RX_INFO_ENERGY_ANT_C_POS; energy_c = energy_c ? -energy_c : -256; max_energy = MAX(energy_a, energy_b); max_energy = MAX(max_energy, energy_c); IWM_DPRINTF(sc, IWM_DEBUG_RECV, "energy In A %d B %d C %d , and max %d\n", energy_a, energy_b, energy_c, max_energy); return max_energy; } static int iwm_rxmq_get_signal_strength(struct iwm_softc *sc, struct iwm_rx_mpdu_desc *desc) { int energy_a, energy_b; energy_a = desc->v1.energy_a; energy_b = desc->v1.energy_b; energy_a = energy_a ? -energy_a : -256; energy_b = energy_b ? -energy_b : -256; return MAX(energy_a, energy_b); } /* * iwm_rx_rx_mpdu - IWM_REPLY_RX_MPDU_CMD handler * * Handles the actual data of the Rx packet from the fw */ static bool iwm_rx_rx_mpdu(struct iwm_softc *sc, struct mbuf *m, uint32_t offset, bool stolen) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); struct ieee80211_frame *wh; struct ieee80211_rx_stats rxs; struct iwm_rx_phy_info *phy_info; struct iwm_rx_mpdu_res_start *rx_res; struct iwm_rx_packet *pkt = mtodoff(m, struct iwm_rx_packet *, offset); uint32_t len; uint32_t rx_pkt_status; int rssi; phy_info = &sc->sc_last_phy_info; rx_res = (struct iwm_rx_mpdu_res_start *)pkt->data; wh = (struct ieee80211_frame *)(pkt->data + sizeof(*rx_res)); len = le16toh(rx_res->byte_count); rx_pkt_status = le32toh(*(uint32_t *)(pkt->data + sizeof(*rx_res) + len)); if (__predict_false(phy_info->cfg_phy_cnt > 20)) { device_printf(sc->sc_dev, "dsp size out of range [0,20]: %d\n", phy_info->cfg_phy_cnt); return false; } if (!(rx_pkt_status & IWM_RX_MPDU_RES_STATUS_CRC_OK) || !(rx_pkt_status & IWM_RX_MPDU_RES_STATUS_OVERRUN_OK)) { IWM_DPRINTF(sc, IWM_DEBUG_RECV, "Bad CRC or FIFO: 0x%08X.\n", rx_pkt_status); return false; } rssi = iwm_rx_get_signal_strength(sc, phy_info); /* Map it to relative value */ rssi = rssi - sc->sc_noise; /* replenish ring for the buffer we're going to feed to the sharks */ if (!stolen && iwm_rx_addbuf(sc, IWM_RBUF_SIZE, sc->rxq.cur) != 0) { device_printf(sc->sc_dev, "%s: unable to add more buffers\n", __func__); return false; } m->m_data = pkt->data + sizeof(*rx_res); m->m_pkthdr.len = m->m_len = len; IWM_DPRINTF(sc, IWM_DEBUG_RECV, "%s: rssi=%d, noise=%d\n", __func__, rssi, sc->sc_noise); IWM_DPRINTF(sc, IWM_DEBUG_RECV, "%s: phy_info: channel=%d, flags=0x%08x\n", __func__, le16toh(phy_info->channel), le16toh(phy_info->phy_flags)); /* * Populate an RX state struct with the provided information. */ bzero(&rxs, sizeof(rxs)); rxs.r_flags |= IEEE80211_R_IEEE | IEEE80211_R_FREQ; rxs.r_flags |= IEEE80211_R_NF | IEEE80211_R_RSSI; rxs.c_ieee = le16toh(phy_info->channel); if (le16toh(phy_info->phy_flags & IWM_RX_RES_PHY_FLAGS_BAND_24)) { rxs.c_freq = ieee80211_ieee2mhz(rxs.c_ieee, IEEE80211_CHAN_2GHZ); } else { rxs.c_freq = ieee80211_ieee2mhz(rxs.c_ieee, IEEE80211_CHAN_5GHZ); } /* rssi is in 1/2db units */ rxs.c_rssi = rssi * 2; rxs.c_nf = sc->sc_noise; if (ieee80211_add_rx_params(m, &rxs) == 0) return false; if (ieee80211_radiotap_active_vap(vap)) { struct iwm_rx_radiotap_header *tap = &sc->sc_rxtap; tap->wr_flags = 0; if (phy_info->phy_flags & htole16(IWM_PHY_INFO_FLAG_SHPREAMBLE)) tap->wr_flags |= IEEE80211_RADIOTAP_F_SHORTPRE; tap->wr_chan_freq = htole16(rxs.c_freq); /* XXX only if ic->ic_curchan->ic_ieee == rxs.c_ieee */ tap->wr_chan_flags = htole16(ic->ic_curchan->ic_flags); tap->wr_dbm_antsignal = (int8_t)rssi; tap->wr_dbm_antnoise = (int8_t)sc->sc_noise; tap->wr_tsft = phy_info->system_timestamp; switch (phy_info->rate) { /* CCK rates. */ case 10: tap->wr_rate = 2; break; case 20: tap->wr_rate = 4; break; case 55: tap->wr_rate = 11; break; case 110: tap->wr_rate = 22; break; /* OFDM rates. */ case 0xd: tap->wr_rate = 12; break; case 0xf: tap->wr_rate = 18; break; case 0x5: tap->wr_rate = 24; break; case 0x7: tap->wr_rate = 36; break; case 0x9: tap->wr_rate = 48; break; case 0xb: tap->wr_rate = 72; break; case 0x1: tap->wr_rate = 96; break; case 0x3: tap->wr_rate = 108; break; /* Unknown rate: should not happen. */ default: tap->wr_rate = 0; } } return true; } static bool iwm_rx_mpdu_mq(struct iwm_softc *sc, struct mbuf *m, uint32_t offset, bool stolen) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); struct ieee80211_frame *wh; struct ieee80211_rx_stats rxs; struct iwm_rx_mpdu_desc *desc; struct iwm_rx_packet *pkt; int rssi; uint32_t hdrlen, len, rate_n_flags; uint16_t phy_info; uint8_t channel; pkt = mtodo(m, offset); desc = (void *)pkt->data; if (!(desc->status & htole16(IWM_RX_MPDU_RES_STATUS_CRC_OK)) || !(desc->status & htole16(IWM_RX_MPDU_RES_STATUS_OVERRUN_OK))) { IWM_DPRINTF(sc, IWM_DEBUG_RECV, "Bad CRC or FIFO: 0x%08X.\n", desc->status); return false; } channel = desc->v1.channel; len = le16toh(desc->mpdu_len); phy_info = le16toh(desc->phy_info); rate_n_flags = desc->v1.rate_n_flags; wh = mtodo(m, sizeof(*desc)); m->m_data = pkt->data + sizeof(*desc); m->m_pkthdr.len = m->m_len = len; m->m_len = len; /* Account for padding following the frame header. */ if ((desc->mac_flags2 & IWM_RX_MPDU_MFLG2_PAD)) { hdrlen = ieee80211_anyhdrsize(wh); memmove(mtodo(m, 2), mtodo(m, 0), hdrlen); m->m_data = mtodo(m, 2); wh = mtod(m, struct ieee80211_frame *); } /* Map it to relative value */ rssi = iwm_rxmq_get_signal_strength(sc, desc); rssi = rssi - sc->sc_noise; /* replenish ring for the buffer we're going to feed to the sharks */ if (!stolen && iwm_rx_addbuf(sc, IWM_RBUF_SIZE, sc->rxq.cur) != 0) { device_printf(sc->sc_dev, "%s: unable to add more buffers\n", __func__); return false; } IWM_DPRINTF(sc, IWM_DEBUG_RECV, "%s: rssi=%d, noise=%d\n", __func__, rssi, sc->sc_noise); /* * Populate an RX state struct with the provided information. */ bzero(&rxs, sizeof(rxs)); rxs.r_flags |= IEEE80211_R_IEEE | IEEE80211_R_FREQ; rxs.r_flags |= IEEE80211_R_NF | IEEE80211_R_RSSI; rxs.c_ieee = channel; rxs.c_freq = ieee80211_ieee2mhz(rxs.c_ieee, channel <= 14 ? IEEE80211_CHAN_2GHZ : IEEE80211_CHAN_5GHZ); /* rssi is in 1/2db units */ rxs.c_rssi = rssi * 2; rxs.c_nf = sc->sc_noise; if (ieee80211_add_rx_params(m, &rxs) == 0) return false; if (ieee80211_radiotap_active_vap(vap)) { struct iwm_rx_radiotap_header *tap = &sc->sc_rxtap; tap->wr_flags = 0; if ((phy_info & IWM_RX_MPDU_PHY_SHORT_PREAMBLE) != 0) tap->wr_flags |= IEEE80211_RADIOTAP_F_SHORTPRE; tap->wr_chan_freq = htole16(rxs.c_freq); /* XXX only if ic->ic_curchan->ic_ieee == rxs.c_ieee */ tap->wr_chan_flags = htole16(ic->ic_curchan->ic_flags); tap->wr_dbm_antsignal = (int8_t)rssi; tap->wr_dbm_antnoise = (int8_t)sc->sc_noise; tap->wr_tsft = desc->v1.gp2_on_air_rise; switch ((rate_n_flags & 0xff)) { /* CCK rates. */ case 10: tap->wr_rate = 2; break; case 20: tap->wr_rate = 4; break; case 55: tap->wr_rate = 11; break; case 110: tap->wr_rate = 22; break; /* OFDM rates. */ case 0xd: tap->wr_rate = 12; break; case 0xf: tap->wr_rate = 18; break; case 0x5: tap->wr_rate = 24; break; case 0x7: tap->wr_rate = 36; break; case 0x9: tap->wr_rate = 48; break; case 0xb: tap->wr_rate = 72; break; case 0x1: tap->wr_rate = 96; break; case 0x3: tap->wr_rate = 108; break; /* Unknown rate: should not happen. */ default: tap->wr_rate = 0; } } return true; } static bool iwm_rx_mpdu(struct iwm_softc *sc, struct mbuf *m, uint32_t offset, bool stolen) { struct epoch_tracker et; struct ieee80211com *ic; struct ieee80211_frame *wh; struct ieee80211_node *ni; bool ret; ic = &sc->sc_ic; ret = sc->cfg->mqrx_supported ? iwm_rx_mpdu_mq(sc, m, offset, stolen) : iwm_rx_rx_mpdu(sc, m, offset, stolen); if (!ret) { counter_u64_add(ic->ic_ierrors, 1); return (ret); } wh = mtod(m, struct ieee80211_frame *); ni = ieee80211_find_rxnode(ic, (struct ieee80211_frame_min *)wh); IWM_UNLOCK(sc); NET_EPOCH_ENTER(et); if (ni != NULL) { IWM_DPRINTF(sc, IWM_DEBUG_RECV, "input m %p\n", m); ieee80211_input_mimo(ni, m); ieee80211_free_node(ni); } else { IWM_DPRINTF(sc, IWM_DEBUG_RECV, "inputall m %p\n", m); ieee80211_input_mimo_all(ic, m); } NET_EPOCH_EXIT(et); IWM_LOCK(sc); return true; } static int iwm_rx_tx_cmd_single(struct iwm_softc *sc, struct iwm_rx_packet *pkt, struct iwm_node *in) { struct iwm_tx_resp *tx_resp = (void *)pkt->data; struct ieee80211_ratectl_tx_status *txs = &sc->sc_txs; struct ieee80211_node *ni = &in->in_ni; struct ieee80211vap *vap = ni->ni_vap; int status = le16toh(tx_resp->status.status) & IWM_TX_STATUS_MSK; int new_rate, cur_rate = vap->iv_bss->ni_txrate; boolean_t rate_matched; uint8_t tx_resp_rate; KASSERT(tx_resp->frame_count == 1, ("too many frames")); /* Update rate control statistics. */ IWM_DPRINTF(sc, IWM_DEBUG_XMIT, "%s: status=0x%04x, seq=%d, fc=%d, btc=%d, frts=%d, ff=%d, irate=%08x, wmt=%d\n", __func__, (int) le16toh(tx_resp->status.status), (int) le16toh(tx_resp->status.sequence), tx_resp->frame_count, tx_resp->bt_kill_count, tx_resp->failure_rts, tx_resp->failure_frame, le32toh(tx_resp->initial_rate), (int) le16toh(tx_resp->wireless_media_time)); tx_resp_rate = iwm_rate_from_ucode_rate(le32toh(tx_resp->initial_rate)); /* For rate control, ignore frames sent at different initial rate */ rate_matched = (tx_resp_rate != 0 && tx_resp_rate == cur_rate); if (tx_resp_rate != 0 && cur_rate != 0 && !rate_matched) { IWM_DPRINTF(sc, IWM_DEBUG_TXRATE, "tx_resp_rate doesn't match ni_txrate (tx_resp_rate=%u " "ni_txrate=%d)\n", tx_resp_rate, cur_rate); } txs->flags = IEEE80211_RATECTL_STATUS_SHORT_RETRY | IEEE80211_RATECTL_STATUS_LONG_RETRY; txs->short_retries = tx_resp->failure_rts; txs->long_retries = tx_resp->failure_frame; if (status != IWM_TX_STATUS_SUCCESS && status != IWM_TX_STATUS_DIRECT_DONE) { switch (status) { case IWM_TX_STATUS_FAIL_SHORT_LIMIT: txs->status = IEEE80211_RATECTL_TX_FAIL_SHORT; break; case IWM_TX_STATUS_FAIL_LONG_LIMIT: txs->status = IEEE80211_RATECTL_TX_FAIL_LONG; break; case IWM_TX_STATUS_FAIL_LIFE_EXPIRE: txs->status = IEEE80211_RATECTL_TX_FAIL_EXPIRED; break; default: txs->status = IEEE80211_RATECTL_TX_FAIL_UNSPECIFIED; break; } } else { txs->status = IEEE80211_RATECTL_TX_SUCCESS; } if (rate_matched) { ieee80211_ratectl_tx_complete(ni, txs); int rix = ieee80211_ratectl_rate(vap->iv_bss, NULL, 0); new_rate = vap->iv_bss->ni_txrate; if (new_rate != 0 && new_rate != cur_rate) { struct iwm_node *in = IWM_NODE(vap->iv_bss); iwm_setrates(sc, in, rix); iwm_send_lq_cmd(sc, &in->in_lq, FALSE); } } return (txs->status != IEEE80211_RATECTL_TX_SUCCESS); } static void iwm_rx_tx_cmd(struct iwm_softc *sc, struct iwm_rx_packet *pkt) { struct iwm_cmd_header *cmd_hdr; struct iwm_tx_ring *ring; struct iwm_tx_data *txd; struct iwm_node *in; struct mbuf *m; int idx, qid, qmsk, status; cmd_hdr = &pkt->hdr; idx = cmd_hdr->idx; qid = cmd_hdr->qid; ring = &sc->txq[qid]; txd = &ring->data[idx]; in = txd->in; m = txd->m; KASSERT(txd->done == 0, ("txd not done")); KASSERT(txd->in != NULL, ("txd without node")); KASSERT(txd->m != NULL, ("txd without mbuf")); sc->sc_tx_timer = 0; status = iwm_rx_tx_cmd_single(sc, pkt, in); /* Unmap and free mbuf. */ bus_dmamap_sync(ring->data_dmat, txd->map, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(ring->data_dmat, txd->map); IWM_DPRINTF(sc, IWM_DEBUG_XMIT, "free txd %p, in %p\n", txd, txd->in); txd->done = 1; txd->m = NULL; txd->in = NULL; ieee80211_tx_complete(&in->in_ni, m, status); qmsk = 1 << qid; if (--ring->queued < IWM_TX_RING_LOMARK && (sc->qfullmsk & qmsk) != 0) { sc->qfullmsk &= ~qmsk; if (sc->qfullmsk == 0) iwm_start(sc); } } /* * transmit side */ /* * Process a "command done" firmware notification. This is where we wakeup * processes waiting for a synchronous command completion. * from if_iwn */ static void iwm_cmd_done(struct iwm_softc *sc, struct iwm_rx_packet *pkt) { struct iwm_tx_ring *ring = &sc->txq[IWM_CMD_QUEUE]; struct iwm_tx_data *data; if (pkt->hdr.qid != IWM_CMD_QUEUE) { return; /* Not a command ack. */ } /* XXX wide commands? */ IWM_DPRINTF(sc, IWM_DEBUG_CMD, "cmd notification type 0x%x qid %d idx %d\n", pkt->hdr.code, pkt->hdr.qid, pkt->hdr.idx); data = &ring->data[pkt->hdr.idx]; /* If the command was mapped in an mbuf, free it. */ if (data->m != NULL) { bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(ring->data_dmat, data->map); m_freem(data->m); data->m = NULL; } wakeup(&ring->desc[pkt->hdr.idx]); if (((pkt->hdr.idx + ring->queued) % IWM_TX_RING_COUNT) != ring->cur) { device_printf(sc->sc_dev, "%s: Some HCMDs skipped?: idx=%d queued=%d cur=%d\n", __func__, pkt->hdr.idx, ring->queued, ring->cur); /* XXX call iwm_force_nmi() */ } KASSERT(ring->queued > 0, ("ring->queued is empty?")); ring->queued--; if (ring->queued == 0) iwm_pcie_clear_cmd_in_flight(sc); } #if 0 /* * necessary only for block ack mode */ void iwm_update_sched(struct iwm_softc *sc, int qid, int idx, uint8_t sta_id, uint16_t len) { struct iwm_agn_scd_bc_tbl *scd_bc_tbl; uint16_t w_val; scd_bc_tbl = sc->sched_dma.vaddr; len += 8; /* magic numbers came naturally from paris */ len = roundup(len, 4) / 4; w_val = htole16(sta_id << 12 | len); /* Update TX scheduler. */ scd_bc_tbl[qid].tfd_offset[idx] = w_val; bus_dmamap_sync(sc->sched_dma.tag, sc->sched_dma.map, BUS_DMASYNC_PREWRITE); /* I really wonder what this is ?!? */ if (idx < IWM_TFD_QUEUE_SIZE_BC_DUP) { scd_bc_tbl[qid].tfd_offset[IWM_TFD_QUEUE_SIZE_MAX + idx] = w_val; bus_dmamap_sync(sc->sched_dma.tag, sc->sched_dma.map, BUS_DMASYNC_PREWRITE); } } #endif static int iwm_tx_rateidx_global_lookup(struct iwm_softc *sc, uint8_t rate) { int i; for (i = 0; i < nitems(iwm_rates); i++) { if (iwm_rates[i].rate == rate) return (i); } /* XXX error? */ IWM_DPRINTF(sc, IWM_DEBUG_XMIT | IWM_DEBUG_TXRATE, "%s: couldn't find an entry for rate=%d\n", __func__, rate); return (0); } /* * Fill in the rate related information for a transmit command. */ static const struct iwm_rate * iwm_tx_fill_cmd(struct iwm_softc *sc, struct iwm_node *in, struct mbuf *m, struct iwm_tx_cmd *tx) { struct ieee80211_node *ni = &in->in_ni; struct ieee80211_frame *wh; const struct ieee80211_txparam *tp = ni->ni_txparms; const struct iwm_rate *rinfo; int type; int ridx, rate_flags; wh = mtod(m, struct ieee80211_frame *); type = wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK; tx->rts_retry_limit = IWM_RTS_DFAULT_RETRY_LIMIT; tx->data_retry_limit = IWM_DEFAULT_TX_RETRY; if (type == IEEE80211_FC0_TYPE_MGT || type == IEEE80211_FC0_TYPE_CTL || (m->m_flags & M_EAPOL) != 0) { ridx = iwm_tx_rateidx_global_lookup(sc, tp->mgmtrate); IWM_DPRINTF(sc, IWM_DEBUG_TXRATE, "%s: MGT (%d)\n", __func__, tp->mgmtrate); } else if (IEEE80211_IS_MULTICAST(wh->i_addr1)) { ridx = iwm_tx_rateidx_global_lookup(sc, tp->mcastrate); IWM_DPRINTF(sc, IWM_DEBUG_TXRATE, "%s: MCAST (%d)\n", __func__, tp->mcastrate); } else if (tp->ucastrate != IEEE80211_FIXED_RATE_NONE) { ridx = iwm_tx_rateidx_global_lookup(sc, tp->ucastrate); IWM_DPRINTF(sc, IWM_DEBUG_TXRATE, "%s: FIXED_RATE (%d)\n", __func__, tp->ucastrate); } else { /* for data frames, use RS table */ IWM_DPRINTF(sc, IWM_DEBUG_TXRATE, "%s: DATA\n", __func__); ridx = iwm_rate2ridx(sc, ni->ni_txrate); if (ridx == -1) ridx = 0; /* This is the index into the programmed table */ tx->initial_rate_index = 0; tx->tx_flags |= htole32(IWM_TX_CMD_FLG_STA_RATE); } IWM_DPRINTF(sc, IWM_DEBUG_XMIT | IWM_DEBUG_TXRATE, "%s: frame type=%d txrate %d\n", __func__, type, iwm_rates[ridx].rate); rinfo = &iwm_rates[ridx]; IWM_DPRINTF(sc, IWM_DEBUG_TXRATE, "%s: ridx=%d; rate=%d, CCK=%d\n", __func__, ridx, rinfo->rate, !! (IWM_RIDX_IS_CCK(ridx)) ); /* XXX TODO: hard-coded TX antenna? */ if (sc->cfg->device_family == IWM_DEVICE_FAMILY_9000) rate_flags = IWM_RATE_MCS_ANT_B_MSK; else rate_flags = IWM_RATE_MCS_ANT_A_MSK; if (IWM_RIDX_IS_CCK(ridx)) rate_flags |= IWM_RATE_MCS_CCK_MSK; tx->rate_n_flags = htole32(rate_flags | rinfo->plcp); return rinfo; } #define TB0_SIZE 16 static int iwm_tx(struct iwm_softc *sc, struct mbuf *m, struct ieee80211_node *ni, int ac) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); struct iwm_node *in = IWM_NODE(ni); struct iwm_tx_ring *ring; struct iwm_tx_data *data; struct iwm_tfd *desc; struct iwm_device_cmd *cmd; struct iwm_tx_cmd *tx; struct ieee80211_frame *wh; struct ieee80211_key *k = NULL; struct mbuf *m1; const struct iwm_rate *rinfo; uint32_t flags; u_int hdrlen; bus_dma_segment_t *seg, segs[IWM_MAX_SCATTER]; int nsegs; uint8_t tid, type; int i, totlen, error, pad; wh = mtod(m, struct ieee80211_frame *); hdrlen = ieee80211_anyhdrsize(wh); type = wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK; tid = 0; ring = &sc->txq[ac]; desc = &ring->desc[ring->cur]; data = &ring->data[ring->cur]; /* Fill out iwm_tx_cmd to send to the firmware */ cmd = &ring->cmd[ring->cur]; cmd->hdr.code = IWM_TX_CMD; cmd->hdr.flags = 0; cmd->hdr.qid = ring->qid; cmd->hdr.idx = ring->cur; tx = (void *)cmd->data; memset(tx, 0, sizeof(*tx)); rinfo = iwm_tx_fill_cmd(sc, in, m, tx); /* Encrypt the frame if need be. */ if (wh->i_fc[1] & IEEE80211_FC1_PROTECTED) { /* Retrieve key for TX && do software encryption. */ k = ieee80211_crypto_encap(ni, m); if (k == NULL) { m_freem(m); return (ENOBUFS); } /* 802.11 header may have moved. */ wh = mtod(m, struct ieee80211_frame *); } if (ieee80211_radiotap_active_vap(vap)) { struct iwm_tx_radiotap_header *tap = &sc->sc_txtap; tap->wt_flags = 0; tap->wt_chan_freq = htole16(ni->ni_chan->ic_freq); tap->wt_chan_flags = htole16(ni->ni_chan->ic_flags); tap->wt_rate = rinfo->rate; if (k != NULL) tap->wt_flags |= IEEE80211_RADIOTAP_F_WEP; ieee80211_radiotap_tx(vap, m); } flags = 0; totlen = m->m_pkthdr.len; if (!IEEE80211_IS_MULTICAST(wh->i_addr1)) { flags |= IWM_TX_CMD_FLG_ACK; } if (type == IEEE80211_FC0_TYPE_DATA && totlen + IEEE80211_CRC_LEN > vap->iv_rtsthreshold && !IEEE80211_IS_MULTICAST(wh->i_addr1)) { flags |= IWM_TX_CMD_FLG_PROT_REQUIRE; } tx->sta_id = IWM_STATION_ID; if (type == IEEE80211_FC0_TYPE_MGT) { uint8_t subtype = wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK; if (subtype == IEEE80211_FC0_SUBTYPE_ASSOC_REQ || subtype == IEEE80211_FC0_SUBTYPE_REASSOC_REQ) { tx->pm_frame_timeout = htole16(IWM_PM_FRAME_ASSOC); } else if (subtype == IEEE80211_FC0_SUBTYPE_ACTION) { tx->pm_frame_timeout = htole16(IWM_PM_FRAME_NONE); } else { tx->pm_frame_timeout = htole16(IWM_PM_FRAME_MGMT); } } else { tx->pm_frame_timeout = htole16(IWM_PM_FRAME_NONE); } if (hdrlen & 3) { /* First segment length must be a multiple of 4. */ flags |= IWM_TX_CMD_FLG_MH_PAD; tx->offload_assist |= htole16(1 << IWM_TX_CMD_OFFLD_PAD); pad = 4 - (hdrlen & 3); } else { tx->offload_assist = 0; pad = 0; } tx->len = htole16(totlen); tx->tid_tspec = tid; tx->life_time = htole32(IWM_TX_CMD_LIFE_TIME_INFINITE); /* Set physical address of "scratch area". */ tx->dram_lsb_ptr = htole32(data->scratch_paddr); tx->dram_msb_ptr = iwm_get_dma_hi_addr(data->scratch_paddr); /* Copy 802.11 header in TX command. */ memcpy((uint8_t *)tx + sizeof(*tx), wh, hdrlen); flags |= IWM_TX_CMD_FLG_BT_DIS | IWM_TX_CMD_FLG_SEQ_CTL; tx->sec_ctl = 0; tx->tx_flags |= htole32(flags); /* Trim 802.11 header. */ m_adj(m, hdrlen); error = bus_dmamap_load_mbuf_sg(ring->data_dmat, data->map, m, segs, &nsegs, BUS_DMA_NOWAIT); if (error != 0) { if (error != EFBIG) { device_printf(sc->sc_dev, "can't map mbuf (error %d)\n", error); m_freem(m); return error; } /* Too many DMA segments, linearize mbuf. */ m1 = m_collapse(m, M_NOWAIT, IWM_MAX_SCATTER - 2); if (m1 == NULL) { device_printf(sc->sc_dev, "%s: could not defrag mbuf\n", __func__); m_freem(m); return (ENOBUFS); } m = m1; error = bus_dmamap_load_mbuf_sg(ring->data_dmat, data->map, m, segs, &nsegs, BUS_DMA_NOWAIT); if (error != 0) { device_printf(sc->sc_dev, "can't map mbuf (error %d)\n", error); m_freem(m); return error; } } data->m = m; data->in = in; data->done = 0; IWM_DPRINTF(sc, IWM_DEBUG_XMIT, "sending txd %p, in %p\n", data, data->in); KASSERT(data->in != NULL, ("node is NULL")); IWM_DPRINTF(sc, IWM_DEBUG_XMIT, "sending data: qid=%d idx=%d len=%d nsegs=%d txflags=0x%08x rate_n_flags=0x%08x rateidx=%u\n", ring->qid, ring->cur, totlen, nsegs, le32toh(tx->tx_flags), le32toh(tx->rate_n_flags), tx->initial_rate_index ); /* Fill TX descriptor. */ memset(desc, 0, sizeof(*desc)); desc->num_tbs = 2 + nsegs; desc->tbs[0].lo = htole32(data->cmd_paddr); desc->tbs[0].hi_n_len = htole16(iwm_get_dma_hi_addr(data->cmd_paddr) | (TB0_SIZE << 4)); desc->tbs[1].lo = htole32(data->cmd_paddr + TB0_SIZE); desc->tbs[1].hi_n_len = htole16(iwm_get_dma_hi_addr(data->cmd_paddr) | ((sizeof(struct iwm_cmd_header) + sizeof(*tx) + hdrlen + pad - TB0_SIZE) << 4)); /* Other DMA segments are for data payload. */ for (i = 0; i < nsegs; i++) { seg = &segs[i]; desc->tbs[i + 2].lo = htole32(seg->ds_addr); desc->tbs[i + 2].hi_n_len = htole16(iwm_get_dma_hi_addr(seg->ds_addr)) | (seg->ds_len << 4); } bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_PREWRITE); bus_dmamap_sync(ring->cmd_dma.tag, ring->cmd_dma.map, BUS_DMASYNC_PREWRITE); bus_dmamap_sync(ring->desc_dma.tag, ring->desc_dma.map, BUS_DMASYNC_PREWRITE); #if 0 iwm_update_sched(sc, ring->qid, ring->cur, tx->sta_id, le16toh(tx->len)); #endif /* Kick TX ring. */ ring->cur = (ring->cur + 1) % IWM_TX_RING_COUNT; IWM_WRITE(sc, IWM_HBUS_TARG_WRPTR, ring->qid << 8 | ring->cur); /* Mark TX ring as full if we reach a certain threshold. */ if (++ring->queued > IWM_TX_RING_HIMARK) { sc->qfullmsk |= 1 << ring->qid; } return 0; } static int iwm_raw_xmit(struct ieee80211_node *ni, struct mbuf *m, const struct ieee80211_bpf_params *params) { struct ieee80211com *ic = ni->ni_ic; struct iwm_softc *sc = ic->ic_softc; int error = 0; IWM_DPRINTF(sc, IWM_DEBUG_XMIT, "->%s begin\n", __func__); if ((sc->sc_flags & IWM_FLAG_HW_INITED) == 0) { m_freem(m); IWM_DPRINTF(sc, IWM_DEBUG_XMIT, "<-%s not RUNNING\n", __func__); return (ENETDOWN); } IWM_LOCK(sc); /* XXX fix this */ if (params == NULL) { error = iwm_tx(sc, m, ni, 0); } else { error = iwm_tx(sc, m, ni, 0); } if (sc->sc_tx_timer == 0) callout_reset(&sc->sc_watchdog_to, hz, iwm_watchdog, sc); sc->sc_tx_timer = 5; IWM_UNLOCK(sc); return (error); } /* * mvm/tx.c */ /* * Note that there are transports that buffer frames before they reach * the firmware. This means that after flush_tx_path is called, the * queue might not be empty. The race-free way to handle this is to: * 1) set the station as draining * 2) flush the Tx path * 3) wait for the transport queues to be empty */ int iwm_flush_tx_path(struct iwm_softc *sc, uint32_t tfd_msk, uint32_t flags) { int ret; struct iwm_tx_path_flush_cmd flush_cmd = { .queues_ctl = htole32(tfd_msk), .flush_ctl = htole16(IWM_DUMP_TX_FIFO_FLUSH), }; ret = iwm_send_cmd_pdu(sc, IWM_TXPATH_FLUSH, flags, sizeof(flush_cmd), &flush_cmd); if (ret) device_printf(sc->sc_dev, "Flushing tx queue failed: %d\n", ret); return ret; } /* * BEGIN mvm/quota.c */ static int iwm_update_quotas(struct iwm_softc *sc, struct iwm_vap *ivp) { struct iwm_time_quota_cmd cmd; int i, idx, ret, num_active_macs, quota, quota_rem; int colors[IWM_MAX_BINDINGS] = { -1, -1, -1, -1, }; int n_ifs[IWM_MAX_BINDINGS] = {0, }; uint16_t id; memset(&cmd, 0, sizeof(cmd)); /* currently, PHY ID == binding ID */ if (ivp) { id = ivp->phy_ctxt->id; KASSERT(id < IWM_MAX_BINDINGS, ("invalid id")); colors[id] = ivp->phy_ctxt->color; if (1) n_ifs[id] = 1; } /* * The FW's scheduling session consists of * IWM_MAX_QUOTA fragments. Divide these fragments * equally between all the bindings that require quota */ num_active_macs = 0; for (i = 0; i < IWM_MAX_BINDINGS; i++) { cmd.quotas[i].id_and_color = htole32(IWM_FW_CTXT_INVALID); num_active_macs += n_ifs[i]; } quota = 0; quota_rem = 0; if (num_active_macs) { quota = IWM_MAX_QUOTA / num_active_macs; quota_rem = IWM_MAX_QUOTA % num_active_macs; } for (idx = 0, i = 0; i < IWM_MAX_BINDINGS; i++) { if (colors[i] < 0) continue; cmd.quotas[idx].id_and_color = htole32(IWM_FW_CMD_ID_AND_COLOR(i, colors[i])); if (n_ifs[i] <= 0) { cmd.quotas[idx].quota = htole32(0); cmd.quotas[idx].max_duration = htole32(0); } else { cmd.quotas[idx].quota = htole32(quota * n_ifs[i]); cmd.quotas[idx].max_duration = htole32(0); } idx++; } /* Give the remainder of the session to the first binding */ cmd.quotas[0].quota = htole32(le32toh(cmd.quotas[0].quota) + quota_rem); ret = iwm_send_cmd_pdu(sc, IWM_TIME_QUOTA_CMD, IWM_CMD_SYNC, sizeof(cmd), &cmd); if (ret) device_printf(sc->sc_dev, "%s: Failed to send quota: %d\n", __func__, ret); return ret; } /* * END mvm/quota.c */ /* * ieee80211 routines */ /* * Change to AUTH state in 80211 state machine. Roughly matches what * Linux does in bss_info_changed(). */ static int iwm_auth(struct ieee80211vap *vap, struct iwm_softc *sc) { struct ieee80211_node *ni; struct iwm_node *in; struct iwm_vap *iv = IWM_VAP(vap); uint32_t duration; int error; /* * XXX i have a feeling that the vap node is being * freed from underneath us. Grr. */ ni = ieee80211_ref_node(vap->iv_bss); in = IWM_NODE(ni); IWM_DPRINTF(sc, IWM_DEBUG_RESET | IWM_DEBUG_STATE, "%s: called; vap=%p, bss ni=%p\n", __func__, vap, ni); IWM_DPRINTF(sc, IWM_DEBUG_STATE, "%s: Current node bssid: %s\n", __func__, ether_sprintf(ni->ni_bssid)); in->in_assoc = 0; iv->iv_auth = 1; /* * Firmware bug - it'll crash if the beacon interval is less * than 16. We can't avoid connecting at all, so refuse the * station state change, this will cause net80211 to abandon * attempts to connect to this AP, and eventually wpa_s will * blacklist the AP... */ if (ni->ni_intval < 16) { device_printf(sc->sc_dev, "AP %s beacon interval is %d, refusing due to firmware bug!\n", ether_sprintf(ni->ni_bssid), ni->ni_intval); error = EINVAL; goto out; } error = iwm_allow_mcast(vap, sc); if (error) { device_printf(sc->sc_dev, "%s: failed to set multicast\n", __func__); goto out; } /* * This is where it deviates from what Linux does. * * Linux iwlwifi doesn't reset the nic each time, nor does it * call ctxt_add() here. Instead, it adds it during vap creation, * and always does a mac_ctx_changed(). * * The openbsd port doesn't attempt to do that - it reset things * at odd states and does the add here. * * So, until the state handling is fixed (ie, we never reset * the NIC except for a firmware failure, which should drag * the NIC back to IDLE, re-setup and re-add all the mac/phy * contexts that are required), let's do a dirty hack here. */ if (iv->is_uploaded) { if ((error = iwm_mac_ctxt_changed(sc, vap)) != 0) { device_printf(sc->sc_dev, "%s: failed to update MAC\n", __func__); goto out; } } else { if ((error = iwm_mac_ctxt_add(sc, vap)) != 0) { device_printf(sc->sc_dev, "%s: failed to add MAC\n", __func__); goto out; } } sc->sc_firmware_state = 1; if ((error = iwm_phy_ctxt_changed(sc, &sc->sc_phyctxt[0], in->in_ni.ni_chan, 1, 1)) != 0) { device_printf(sc->sc_dev, "%s: failed update phy ctxt\n", __func__); goto out; } iv->phy_ctxt = &sc->sc_phyctxt[0]; if ((error = iwm_binding_add_vif(sc, iv)) != 0) { device_printf(sc->sc_dev, "%s: binding update cmd\n", __func__); goto out; } sc->sc_firmware_state = 2; /* * Authentication becomes unreliable when powersaving is left enabled * here. Powersaving will be activated again when association has * finished or is aborted. */ iv->ps_disabled = TRUE; error = iwm_power_update_mac(sc); iv->ps_disabled = FALSE; if (error != 0) { device_printf(sc->sc_dev, "%s: failed to update power management\n", __func__); goto out; } if ((error = iwm_add_sta(sc, in)) != 0) { device_printf(sc->sc_dev, "%s: failed to add sta\n", __func__); goto out; } sc->sc_firmware_state = 3; /* * Prevent the FW from wandering off channel during association * by "protecting" the session with a time event. */ /* XXX duration is in units of TU, not MS */ duration = IWM_TE_SESSION_PROTECTION_MAX_TIME_MS; iwm_protect_session(sc, iv, duration, 500 /* XXX magic number */, TRUE); error = 0; out: if (error != 0) iv->iv_auth = 0; ieee80211_free_node(ni); return (error); } static struct ieee80211_node * iwm_node_alloc(struct ieee80211vap *vap, const uint8_t mac[IEEE80211_ADDR_LEN]) { return malloc(sizeof (struct iwm_node), M_80211_NODE, M_NOWAIT | M_ZERO); } static uint8_t iwm_rate_from_ucode_rate(uint32_t rate_n_flags) { uint8_t plcp = rate_n_flags & 0xff; int i; for (i = 0; i <= IWM_RIDX_MAX; i++) { if (iwm_rates[i].plcp == plcp) return iwm_rates[i].rate; } return 0; } uint8_t iwm_ridx2rate(struct ieee80211_rateset *rs, int ridx) { int i; uint8_t rval; for (i = 0; i < rs->rs_nrates; i++) { rval = (rs->rs_rates[i] & IEEE80211_RATE_VAL); if (rval == iwm_rates[ridx].rate) return rs->rs_rates[i]; } return 0; } static int iwm_rate2ridx(struct iwm_softc *sc, uint8_t rate) { int i; for (i = 0; i <= IWM_RIDX_MAX; i++) { if (iwm_rates[i].rate == rate) return i; } device_printf(sc->sc_dev, "%s: WARNING: device rate for %u not found!\n", __func__, rate); return -1; } static void iwm_setrates(struct iwm_softc *sc, struct iwm_node *in, int rix) { struct ieee80211_node *ni = &in->in_ni; struct iwm_lq_cmd *lq = &in->in_lq; struct ieee80211_rateset *rs = &ni->ni_rates; int nrates = rs->rs_nrates; int i, ridx, tab = 0; // int txant = 0; KASSERT(rix >= 0 && rix < nrates, ("invalid rix")); if (nrates > nitems(lq->rs_table)) { device_printf(sc->sc_dev, "%s: node supports %d rates, driver handles " "only %zu\n", __func__, nrates, nitems(lq->rs_table)); return; } if (nrates == 0) { device_printf(sc->sc_dev, "%s: node supports 0 rates, odd!\n", __func__); return; } nrates = imin(rix + 1, nrates); IWM_DPRINTF(sc, IWM_DEBUG_TXRATE, "%s: nrates=%d\n", __func__, nrates); /* then construct a lq_cmd based on those */ memset(lq, 0, sizeof(*lq)); lq->sta_id = IWM_STATION_ID; /* For HT, always enable RTS/CTS to avoid excessive retries. */ if (ni->ni_flags & IEEE80211_NODE_HT) lq->flags |= IWM_LQ_FLAG_USE_RTS_MSK; /* * are these used? (we don't do SISO or MIMO) * need to set them to non-zero, though, or we get an error. */ lq->single_stream_ant_msk = 1; lq->dual_stream_ant_msk = 1; /* * Build the actual rate selection table. * The lowest bits are the rates. Additionally, * CCK needs bit 9 to be set. The rest of the bits * we add to the table select the tx antenna * Note that we add the rates in the highest rate first * (opposite of ni_rates). */ for (i = 0; i < nrates; i++) { int rate = rs->rs_rates[rix - i] & IEEE80211_RATE_VAL; int nextant; /* Map 802.11 rate to HW rate index. */ ridx = iwm_rate2ridx(sc, rate); if (ridx == -1) continue; #if 0 if (txant == 0) txant = iwm_get_valid_tx_ant(sc); nextant = 1<<(ffs(txant)-1); txant &= ~nextant; #else nextant = iwm_get_valid_tx_ant(sc); #endif tab = iwm_rates[ridx].plcp; tab |= nextant << IWM_RATE_MCS_ANT_POS; if (IWM_RIDX_IS_CCK(ridx)) tab |= IWM_RATE_MCS_CCK_MSK; IWM_DPRINTF(sc, IWM_DEBUG_TXRATE, "station rate i=%d, rate=%d, hw=%x\n", i, iwm_rates[ridx].rate, tab); lq->rs_table[i] = htole32(tab); } /* then fill the rest with the lowest possible rate */ for (i = nrates; i < nitems(lq->rs_table); i++) { KASSERT(tab != 0, ("invalid tab")); lq->rs_table[i] = htole32(tab); } } static int iwm_media_change(struct ifnet *ifp) { struct ieee80211vap *vap = ifp->if_softc; struct ieee80211com *ic = vap->iv_ic; struct iwm_softc *sc = ic->ic_softc; int error; error = ieee80211_media_change(ifp); - if (error != ENETRESET) - return error; + if (error != 0) + return (error); IWM_LOCK(sc); if (ic->ic_nrunning > 0) { iwm_stop(sc); iwm_init(sc); } IWM_UNLOCK(sc); - return error; + return (0); } static void iwm_bring_down_firmware(struct iwm_softc *sc, struct ieee80211vap *vap) { struct iwm_vap *ivp = IWM_VAP(vap); int error; /* Avoid Tx watchdog triggering, when transfers get dropped here. */ sc->sc_tx_timer = 0; ivp->iv_auth = 0; if (sc->sc_firmware_state == 3) { iwm_xmit_queue_drain(sc); // iwm_flush_tx_path(sc, 0xf, IWM_CMD_SYNC); error = iwm_rm_sta(sc, vap, TRUE); if (error) { device_printf(sc->sc_dev, "%s: Failed to remove station: %d\n", __func__, error); } } if (sc->sc_firmware_state == 3) { error = iwm_mac_ctxt_changed(sc, vap); if (error) { device_printf(sc->sc_dev, "%s: Failed to change mac context: %d\n", __func__, error); } } if (sc->sc_firmware_state == 3) { error = iwm_sf_update(sc, vap, FALSE); if (error) { device_printf(sc->sc_dev, "%s: Failed to update smart FIFO: %d\n", __func__, error); } } if (sc->sc_firmware_state == 3) { error = iwm_rm_sta_id(sc, vap); if (error) { device_printf(sc->sc_dev, "%s: Failed to remove station id: %d\n", __func__, error); } } if (sc->sc_firmware_state == 3) { error = iwm_update_quotas(sc, NULL); if (error) { device_printf(sc->sc_dev, "%s: Failed to update PHY quota: %d\n", __func__, error); } } if (sc->sc_firmware_state == 3) { /* XXX Might need to specify bssid correctly. */ error = iwm_mac_ctxt_changed(sc, vap); if (error) { device_printf(sc->sc_dev, "%s: Failed to change mac context: %d\n", __func__, error); } } if (sc->sc_firmware_state == 3) { sc->sc_firmware_state = 2; } if (sc->sc_firmware_state > 1) { error = iwm_binding_remove_vif(sc, ivp); if (error) { device_printf(sc->sc_dev, "%s: Failed to remove channel ctx: %d\n", __func__, error); } } if (sc->sc_firmware_state > 1) { sc->sc_firmware_state = 1; } ivp->phy_ctxt = NULL; if (sc->sc_firmware_state > 0) { error = iwm_mac_ctxt_changed(sc, vap); if (error) { device_printf(sc->sc_dev, "%s: Failed to change mac context: %d\n", __func__, error); } } if (sc->sc_firmware_state > 0) { error = iwm_power_update_mac(sc); if (error != 0) { device_printf(sc->sc_dev, "%s: failed to update power management\n", __func__); } } sc->sc_firmware_state = 0; } static int iwm_newstate(struct ieee80211vap *vap, enum ieee80211_state nstate, int arg) { struct iwm_vap *ivp = IWM_VAP(vap); struct ieee80211com *ic = vap->iv_ic; struct iwm_softc *sc = ic->ic_softc; struct iwm_node *in; int error; IWM_DPRINTF(sc, IWM_DEBUG_STATE, "switching state %s -> %s arg=0x%x\n", ieee80211_state_name[vap->iv_state], ieee80211_state_name[nstate], arg); IEEE80211_UNLOCK(ic); IWM_LOCK(sc); if ((sc->sc_flags & IWM_FLAG_SCAN_RUNNING) && (nstate == IEEE80211_S_AUTH || nstate == IEEE80211_S_ASSOC || nstate == IEEE80211_S_RUN)) { /* Stop blinking for a scan, when authenticating. */ iwm_led_blink_stop(sc); } if (vap->iv_state == IEEE80211_S_RUN && nstate != IEEE80211_S_RUN) { iwm_led_disable(sc); /* disable beacon filtering if we're hopping out of RUN */ iwm_disable_beacon_filter(sc); if (((in = IWM_NODE(vap->iv_bss)) != NULL)) in->in_assoc = 0; } if ((vap->iv_state == IEEE80211_S_AUTH || vap->iv_state == IEEE80211_S_ASSOC || vap->iv_state == IEEE80211_S_RUN) && (nstate == IEEE80211_S_INIT || nstate == IEEE80211_S_SCAN || nstate == IEEE80211_S_AUTH)) { iwm_stop_session_protection(sc, ivp); } if ((vap->iv_state == IEEE80211_S_RUN || vap->iv_state == IEEE80211_S_ASSOC) && nstate == IEEE80211_S_INIT) { /* * In this case, iv_newstate() wants to send an 80211 frame on * the network that we are leaving. So we need to call it, * before tearing down all the firmware state. */ IWM_UNLOCK(sc); IEEE80211_LOCK(ic); ivp->iv_newstate(vap, nstate, arg); IEEE80211_UNLOCK(ic); IWM_LOCK(sc); iwm_bring_down_firmware(sc, vap); IWM_UNLOCK(sc); IEEE80211_LOCK(ic); return 0; } switch (nstate) { case IEEE80211_S_INIT: case IEEE80211_S_SCAN: break; case IEEE80211_S_AUTH: iwm_bring_down_firmware(sc, vap); if ((error = iwm_auth(vap, sc)) != 0) { device_printf(sc->sc_dev, "%s: could not move to auth state: %d\n", __func__, error); iwm_bring_down_firmware(sc, vap); IWM_UNLOCK(sc); IEEE80211_LOCK(ic); return 1; } break; case IEEE80211_S_ASSOC: /* * EBS may be disabled due to previous failures reported by FW. * Reset EBS status here assuming environment has been changed. */ sc->last_ebs_successful = TRUE; break; case IEEE80211_S_RUN: in = IWM_NODE(vap->iv_bss); /* Update the association state, now we have it all */ /* (eg associd comes in at this point */ error = iwm_update_sta(sc, in); if (error != 0) { device_printf(sc->sc_dev, "%s: failed to update STA\n", __func__); IWM_UNLOCK(sc); IEEE80211_LOCK(ic); return error; } in->in_assoc = 1; error = iwm_mac_ctxt_changed(sc, vap); if (error != 0) { device_printf(sc->sc_dev, "%s: failed to update MAC: %d\n", __func__, error); } iwm_sf_update(sc, vap, FALSE); iwm_enable_beacon_filter(sc, ivp); iwm_power_update_mac(sc); iwm_update_quotas(sc, ivp); int rix = ieee80211_ratectl_rate(&in->in_ni, NULL, 0); iwm_setrates(sc, in, rix); if ((error = iwm_send_lq_cmd(sc, &in->in_lq, TRUE)) != 0) { device_printf(sc->sc_dev, "%s: IWM_LQ_CMD failed: %d\n", __func__, error); } iwm_led_enable(sc); break; default: break; } IWM_UNLOCK(sc); IEEE80211_LOCK(ic); return (ivp->iv_newstate(vap, nstate, arg)); } void iwm_endscan_cb(void *arg, int pending) { struct iwm_softc *sc = arg; struct ieee80211com *ic = &sc->sc_ic; IWM_DPRINTF(sc, IWM_DEBUG_SCAN | IWM_DEBUG_TRACE, "%s: scan ended\n", __func__); ieee80211_scan_done(TAILQ_FIRST(&ic->ic_vaps)); } static int iwm_send_bt_init_conf(struct iwm_softc *sc) { struct iwm_bt_coex_cmd bt_cmd; bt_cmd.mode = htole32(IWM_BT_COEX_WIFI); bt_cmd.enabled_modules = htole32(IWM_BT_COEX_HIGH_BAND_RET); return iwm_send_cmd_pdu(sc, IWM_BT_CONFIG, 0, sizeof(bt_cmd), &bt_cmd); } static boolean_t iwm_is_lar_supported(struct iwm_softc *sc) { boolean_t nvm_lar = sc->nvm_data->lar_enabled; boolean_t tlv_lar = iwm_fw_has_capa(sc, IWM_UCODE_TLV_CAPA_LAR_SUPPORT); if (iwm_lar_disable) return FALSE; /* * Enable LAR only if it is supported by the FW (TLV) && * enabled in the NVM */ if (sc->cfg->device_family >= IWM_DEVICE_FAMILY_8000) return nvm_lar && tlv_lar; else return tlv_lar; } static boolean_t iwm_is_wifi_mcc_supported(struct iwm_softc *sc) { return iwm_fw_has_api(sc, IWM_UCODE_TLV_API_WIFI_MCC_UPDATE) || iwm_fw_has_capa(sc, IWM_UCODE_TLV_CAPA_LAR_MULTI_MCC); } static int iwm_send_update_mcc_cmd(struct iwm_softc *sc, const char *alpha2) { struct iwm_mcc_update_cmd mcc_cmd; struct iwm_host_cmd hcmd = { .id = IWM_MCC_UPDATE_CMD, .flags = (IWM_CMD_SYNC | IWM_CMD_WANT_SKB), .data = { &mcc_cmd }, }; int ret; #ifdef IWM_DEBUG struct iwm_rx_packet *pkt; struct iwm_mcc_update_resp_v1 *mcc_resp_v1 = NULL; struct iwm_mcc_update_resp *mcc_resp; int n_channels; uint16_t mcc; #endif int resp_v2 = iwm_fw_has_capa(sc, IWM_UCODE_TLV_CAPA_LAR_SUPPORT_V2); if (!iwm_is_lar_supported(sc)) { IWM_DPRINTF(sc, IWM_DEBUG_LAR, "%s: no LAR support\n", __func__); return 0; } memset(&mcc_cmd, 0, sizeof(mcc_cmd)); mcc_cmd.mcc = htole16(alpha2[0] << 8 | alpha2[1]); if (iwm_is_wifi_mcc_supported(sc)) mcc_cmd.source_id = IWM_MCC_SOURCE_GET_CURRENT; else mcc_cmd.source_id = IWM_MCC_SOURCE_OLD_FW; if (resp_v2) hcmd.len[0] = sizeof(struct iwm_mcc_update_cmd); else hcmd.len[0] = sizeof(struct iwm_mcc_update_cmd_v1); IWM_DPRINTF(sc, IWM_DEBUG_LAR, "send MCC update to FW with '%c%c' src = %d\n", alpha2[0], alpha2[1], mcc_cmd.source_id); ret = iwm_send_cmd(sc, &hcmd); if (ret) return ret; #ifdef IWM_DEBUG pkt = hcmd.resp_pkt; /* Extract MCC response */ if (resp_v2) { mcc_resp = (void *)pkt->data; mcc = mcc_resp->mcc; n_channels = le32toh(mcc_resp->n_channels); } else { mcc_resp_v1 = (void *)pkt->data; mcc = mcc_resp_v1->mcc; n_channels = le32toh(mcc_resp_v1->n_channels); } /* W/A for a FW/NVM issue - returns 0x00 for the world domain */ if (mcc == 0) mcc = 0x3030; /* "00" - world */ IWM_DPRINTF(sc, IWM_DEBUG_LAR, "regulatory domain '%c%c' (%d channels available)\n", mcc >> 8, mcc & 0xff, n_channels); #endif iwm_free_resp(sc, &hcmd); return 0; } static void iwm_tt_tx_backoff(struct iwm_softc *sc, uint32_t backoff) { struct iwm_host_cmd cmd = { .id = IWM_REPLY_THERMAL_MNG_BACKOFF, .len = { sizeof(uint32_t), }, .data = { &backoff, }, }; if (iwm_send_cmd(sc, &cmd) != 0) { device_printf(sc->sc_dev, "failed to change thermal tx backoff\n"); } } static int iwm_init_hw(struct iwm_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; int error, i, ac; sc->sf_state = IWM_SF_UNINIT; if ((error = iwm_start_hw(sc)) != 0) { printf("iwm_start_hw: failed %d\n", error); return error; } if ((error = iwm_run_init_ucode(sc, 0)) != 0) { printf("iwm_run_init_ucode: failed %d\n", error); return error; } /* * should stop and start HW since that INIT * image just loaded */ iwm_stop_device(sc); sc->sc_ps_disabled = FALSE; if ((error = iwm_start_hw(sc)) != 0) { device_printf(sc->sc_dev, "could not initialize hardware\n"); return error; } /* omstart, this time with the regular firmware */ error = iwm_load_ucode_wait_alive(sc, IWM_UCODE_REGULAR); if (error) { device_printf(sc->sc_dev, "could not load firmware\n"); goto error; } error = iwm_sf_update(sc, NULL, FALSE); if (error) device_printf(sc->sc_dev, "Failed to initialize Smart Fifo\n"); if ((error = iwm_send_bt_init_conf(sc)) != 0) { device_printf(sc->sc_dev, "bt init conf failed\n"); goto error; } error = iwm_send_tx_ant_cfg(sc, iwm_get_valid_tx_ant(sc)); if (error != 0) { device_printf(sc->sc_dev, "antenna config failed\n"); goto error; } /* Send phy db control command and then phy db calibration */ if ((error = iwm_send_phy_db_data(sc->sc_phy_db)) != 0) goto error; if ((error = iwm_send_phy_cfg_cmd(sc)) != 0) { device_printf(sc->sc_dev, "phy_cfg_cmd failed\n"); goto error; } /* Add auxiliary station for scanning */ if ((error = iwm_add_aux_sta(sc)) != 0) { device_printf(sc->sc_dev, "add_aux_sta failed\n"); goto error; } for (i = 0; i < IWM_NUM_PHY_CTX; i++) { /* * The channel used here isn't relevant as it's * going to be overwritten in the other flows. * For now use the first channel we have. */ if ((error = iwm_phy_ctxt_add(sc, &sc->sc_phyctxt[i], &ic->ic_channels[1], 1, 1)) != 0) goto error; } /* Initialize tx backoffs to the minimum. */ if (sc->cfg->device_family == IWM_DEVICE_FAMILY_7000) iwm_tt_tx_backoff(sc, 0); if (iwm_config_ltr(sc) != 0) device_printf(sc->sc_dev, "PCIe LTR configuration failed\n"); error = iwm_power_update_device(sc); if (error) goto error; if ((error = iwm_send_update_mcc_cmd(sc, "ZZ")) != 0) goto error; if (iwm_fw_has_capa(sc, IWM_UCODE_TLV_CAPA_UMAC_SCAN)) { if ((error = iwm_config_umac_scan(sc)) != 0) goto error; } /* Enable Tx queues. */ for (ac = 0; ac < WME_NUM_AC; ac++) { error = iwm_enable_txq(sc, IWM_STATION_ID, ac, iwm_ac_to_tx_fifo[ac]); if (error) goto error; } if ((error = iwm_disable_beacon_filter(sc)) != 0) { device_printf(sc->sc_dev, "failed to disable beacon filter\n"); goto error; } return 0; error: iwm_stop_device(sc); return error; } /* Allow multicast from our BSSID. */ static int iwm_allow_mcast(struct ieee80211vap *vap, struct iwm_softc *sc) { struct ieee80211_node *ni = vap->iv_bss; struct iwm_mcast_filter_cmd *cmd; size_t size; int error; size = roundup(sizeof(*cmd), 4); cmd = malloc(size, M_DEVBUF, M_NOWAIT | M_ZERO); if (cmd == NULL) return ENOMEM; cmd->filter_own = 1; cmd->port_id = 0; cmd->count = 0; cmd->pass_all = 1; IEEE80211_ADDR_COPY(cmd->bssid, ni->ni_bssid); error = iwm_send_cmd_pdu(sc, IWM_MCAST_FILTER_CMD, IWM_CMD_SYNC, size, cmd); free(cmd, M_DEVBUF); return (error); } /* * ifnet interfaces */ static void iwm_init(struct iwm_softc *sc) { int error; if (sc->sc_flags & IWM_FLAG_HW_INITED) { return; } sc->sc_generation++; sc->sc_flags &= ~IWM_FLAG_STOPPED; if ((error = iwm_init_hw(sc)) != 0) { printf("iwm_init_hw failed %d\n", error); iwm_stop(sc); return; } /* * Ok, firmware loaded and we are jogging */ sc->sc_flags |= IWM_FLAG_HW_INITED; } static int iwm_transmit(struct ieee80211com *ic, struct mbuf *m) { struct iwm_softc *sc; int error; sc = ic->ic_softc; IWM_LOCK(sc); if ((sc->sc_flags & IWM_FLAG_HW_INITED) == 0) { IWM_UNLOCK(sc); return (ENXIO); } error = mbufq_enqueue(&sc->sc_snd, m); if (error) { IWM_UNLOCK(sc); return (error); } iwm_start(sc); IWM_UNLOCK(sc); return (0); } /* * Dequeue packets from sendq and call send. */ static void iwm_start(struct iwm_softc *sc) { struct ieee80211_node *ni; struct mbuf *m; int ac = 0; IWM_DPRINTF(sc, IWM_DEBUG_XMIT | IWM_DEBUG_TRACE, "->%s\n", __func__); while (sc->qfullmsk == 0 && (m = mbufq_dequeue(&sc->sc_snd)) != NULL) { ni = (struct ieee80211_node *)m->m_pkthdr.rcvif; if (iwm_tx(sc, m, ni, ac) != 0) { if_inc_counter(ni->ni_vap->iv_ifp, IFCOUNTER_OERRORS, 1); ieee80211_free_node(ni); continue; } if (sc->sc_tx_timer == 0) { callout_reset(&sc->sc_watchdog_to, hz, iwm_watchdog, sc); } sc->sc_tx_timer = 15; } IWM_DPRINTF(sc, IWM_DEBUG_XMIT | IWM_DEBUG_TRACE, "<-%s\n", __func__); } static void iwm_stop(struct iwm_softc *sc) { sc->sc_flags &= ~IWM_FLAG_HW_INITED; sc->sc_flags |= IWM_FLAG_STOPPED; sc->sc_generation++; iwm_led_blink_stop(sc); sc->sc_tx_timer = 0; iwm_stop_device(sc); sc->sc_flags &= ~IWM_FLAG_SCAN_RUNNING; } static void iwm_watchdog(void *arg) { struct iwm_softc *sc = arg; struct ieee80211com *ic = &sc->sc_ic; if (sc->sc_attached == 0) return; if (sc->sc_tx_timer > 0) { if (--sc->sc_tx_timer == 0) { device_printf(sc->sc_dev, "device timeout\n"); #ifdef IWM_DEBUG iwm_nic_error(sc); #endif ieee80211_restart_all(ic); counter_u64_add(sc->sc_ic.ic_oerrors, 1); return; } callout_reset(&sc->sc_watchdog_to, hz, iwm_watchdog, sc); } } static void iwm_parent(struct ieee80211com *ic) { struct iwm_softc *sc = ic->ic_softc; int startall = 0; int rfkill = 0; IWM_LOCK(sc); if (ic->ic_nrunning > 0) { if (!(sc->sc_flags & IWM_FLAG_HW_INITED)) { iwm_init(sc); rfkill = iwm_check_rfkill(sc); if (!rfkill) startall = 1; } } else if (sc->sc_flags & IWM_FLAG_HW_INITED) iwm_stop(sc); IWM_UNLOCK(sc); if (startall) ieee80211_start_all(ic); else if (rfkill) taskqueue_enqueue(sc->sc_tq, &sc->sc_rftoggle_task); } static void iwm_rftoggle_task(void *arg, int npending __unused) { struct iwm_softc *sc = arg; struct ieee80211com *ic = &sc->sc_ic; int rfkill; IWM_LOCK(sc); rfkill = iwm_check_rfkill(sc); IWM_UNLOCK(sc); if (rfkill) { device_printf(sc->sc_dev, "%s: rfkill switch, disabling interface\n", __func__); ieee80211_suspend_all(ic); ieee80211_notify_radio(ic, 0); } else { device_printf(sc->sc_dev, "%s: rfkill cleared, re-enabling interface\n", __func__); ieee80211_resume_all(ic); ieee80211_notify_radio(ic, 1); } } /* * The interrupt side of things */ /* * error dumping routines are from iwlwifi/mvm/utils.c */ /* * Note: This structure is read from the device with IO accesses, * and the reading already does the endian conversion. As it is * read with uint32_t-sized accesses, any members with a different size * need to be ordered correctly though! */ struct iwm_error_event_table { uint32_t valid; /* (nonzero) valid, (0) log is empty */ uint32_t error_id; /* type of error */ uint32_t trm_hw_status0; /* TRM HW status */ uint32_t trm_hw_status1; /* TRM HW status */ uint32_t blink2; /* branch link */ uint32_t ilink1; /* interrupt link */ uint32_t ilink2; /* interrupt link */ uint32_t data1; /* error-specific data */ uint32_t data2; /* error-specific data */ uint32_t data3; /* error-specific data */ uint32_t bcon_time; /* beacon timer */ uint32_t tsf_low; /* network timestamp function timer */ uint32_t tsf_hi; /* network timestamp function timer */ uint32_t gp1; /* GP1 timer register */ uint32_t gp2; /* GP2 timer register */ uint32_t fw_rev_type; /* firmware revision type */ uint32_t major; /* uCode version major */ uint32_t minor; /* uCode version minor */ uint32_t hw_ver; /* HW Silicon version */ uint32_t brd_ver; /* HW board version */ uint32_t log_pc; /* log program counter */ uint32_t frame_ptr; /* frame pointer */ uint32_t stack_ptr; /* stack pointer */ uint32_t hcmd; /* last host command header */ uint32_t isr0; /* isr status register LMPM_NIC_ISR0: * rxtx_flag */ uint32_t isr1; /* isr status register LMPM_NIC_ISR1: * host_flag */ uint32_t isr2; /* isr status register LMPM_NIC_ISR2: * enc_flag */ uint32_t isr3; /* isr status register LMPM_NIC_ISR3: * time_flag */ uint32_t isr4; /* isr status register LMPM_NIC_ISR4: * wico interrupt */ uint32_t last_cmd_id; /* last HCMD id handled by the firmware */ uint32_t wait_event; /* wait event() caller address */ uint32_t l2p_control; /* L2pControlField */ uint32_t l2p_duration; /* L2pDurationField */ uint32_t l2p_mhvalid; /* L2pMhValidBits */ uint32_t l2p_addr_match; /* L2pAddrMatchStat */ uint32_t lmpm_pmg_sel; /* indicate which clocks are turned on * (LMPM_PMG_SEL) */ uint32_t u_timestamp; /* indicate when the date and time of the * compilation */ uint32_t flow_handler; /* FH read/write pointers, RX credit */ } __packed /* LOG_ERROR_TABLE_API_S_VER_3 */; /* * UMAC error struct - relevant starting from family 8000 chip. * Note: This structure is read from the device with IO accesses, * and the reading already does the endian conversion. As it is * read with u32-sized accesses, any members with a different size * need to be ordered correctly though! */ struct iwm_umac_error_event_table { uint32_t valid; /* (nonzero) valid, (0) log is empty */ uint32_t error_id; /* type of error */ uint32_t blink1; /* branch link */ uint32_t blink2; /* branch link */ uint32_t ilink1; /* interrupt link */ uint32_t ilink2; /* interrupt link */ uint32_t data1; /* error-specific data */ uint32_t data2; /* error-specific data */ uint32_t data3; /* error-specific data */ uint32_t umac_major; uint32_t umac_minor; uint32_t frame_pointer; /* core register 27*/ uint32_t stack_pointer; /* core register 28 */ uint32_t cmd_header; /* latest host cmd sent to UMAC */ uint32_t nic_isr_pref; /* ISR status register */ } __packed; #define ERROR_START_OFFSET (1 * sizeof(uint32_t)) #define ERROR_ELEM_SIZE (7 * sizeof(uint32_t)) #ifdef IWM_DEBUG struct { const char *name; uint8_t num; } advanced_lookup[] = { { "NMI_INTERRUPT_WDG", 0x34 }, { "SYSASSERT", 0x35 }, { "UCODE_VERSION_MISMATCH", 0x37 }, { "BAD_COMMAND", 0x38 }, { "NMI_INTERRUPT_DATA_ACTION_PT", 0x3C }, { "FATAL_ERROR", 0x3D }, { "NMI_TRM_HW_ERR", 0x46 }, { "NMI_INTERRUPT_TRM", 0x4C }, { "NMI_INTERRUPT_BREAK_POINT", 0x54 }, { "NMI_INTERRUPT_WDG_RXF_FULL", 0x5C }, { "NMI_INTERRUPT_WDG_NO_RBD_RXF_FULL", 0x64 }, { "NMI_INTERRUPT_HOST", 0x66 }, { "NMI_INTERRUPT_ACTION_PT", 0x7C }, { "NMI_INTERRUPT_UNKNOWN", 0x84 }, { "NMI_INTERRUPT_INST_ACTION_PT", 0x86 }, { "ADVANCED_SYSASSERT", 0 }, }; static const char * iwm_desc_lookup(uint32_t num) { int i; for (i = 0; i < nitems(advanced_lookup) - 1; i++) if (advanced_lookup[i].num == num) return advanced_lookup[i].name; /* No entry matches 'num', so it is the last: ADVANCED_SYSASSERT */ return advanced_lookup[i].name; } static void iwm_nic_umac_error(struct iwm_softc *sc) { struct iwm_umac_error_event_table table; uint32_t base; base = sc->umac_error_event_table; if (base < 0x800000) { device_printf(sc->sc_dev, "Invalid error log pointer 0x%08x\n", base); return; } if (iwm_read_mem(sc, base, &table, sizeof(table)/sizeof(uint32_t))) { device_printf(sc->sc_dev, "reading errlog failed\n"); return; } if (ERROR_START_OFFSET <= table.valid * ERROR_ELEM_SIZE) { device_printf(sc->sc_dev, "Start UMAC Error Log Dump:\n"); device_printf(sc->sc_dev, "Status: 0x%x, count: %d\n", sc->sc_flags, table.valid); } device_printf(sc->sc_dev, "0x%08X | %s\n", table.error_id, iwm_desc_lookup(table.error_id)); device_printf(sc->sc_dev, "0x%08X | umac branchlink1\n", table.blink1); device_printf(sc->sc_dev, "0x%08X | umac branchlink2\n", table.blink2); device_printf(sc->sc_dev, "0x%08X | umac interruptlink1\n", table.ilink1); device_printf(sc->sc_dev, "0x%08X | umac interruptlink2\n", table.ilink2); device_printf(sc->sc_dev, "0x%08X | umac data1\n", table.data1); device_printf(sc->sc_dev, "0x%08X | umac data2\n", table.data2); device_printf(sc->sc_dev, "0x%08X | umac data3\n", table.data3); device_printf(sc->sc_dev, "0x%08X | umac major\n", table.umac_major); device_printf(sc->sc_dev, "0x%08X | umac minor\n", table.umac_minor); device_printf(sc->sc_dev, "0x%08X | frame pointer\n", table.frame_pointer); device_printf(sc->sc_dev, "0x%08X | stack pointer\n", table.stack_pointer); device_printf(sc->sc_dev, "0x%08X | last host cmd\n", table.cmd_header); device_printf(sc->sc_dev, "0x%08X | isr status reg\n", table.nic_isr_pref); } /* * Support for dumping the error log seemed like a good idea ... * but it's mostly hex junk and the only sensible thing is the * hw/ucode revision (which we know anyway). Since it's here, * I'll just leave it in, just in case e.g. the Intel guys want to * help us decipher some "ADVANCED_SYSASSERT" later. */ static void iwm_nic_error(struct iwm_softc *sc) { struct iwm_error_event_table table; uint32_t base; device_printf(sc->sc_dev, "dumping device error log\n"); base = sc->error_event_table[0]; if (base < 0x800000) { device_printf(sc->sc_dev, "Invalid error log pointer 0x%08x\n", base); return; } if (iwm_read_mem(sc, base, &table, sizeof(table)/sizeof(uint32_t))) { device_printf(sc->sc_dev, "reading errlog failed\n"); return; } if (!table.valid) { device_printf(sc->sc_dev, "errlog not found, skipping\n"); return; } if (ERROR_START_OFFSET <= table.valid * ERROR_ELEM_SIZE) { device_printf(sc->sc_dev, "Start Error Log Dump:\n"); device_printf(sc->sc_dev, "Status: 0x%x, count: %d\n", sc->sc_flags, table.valid); } device_printf(sc->sc_dev, "0x%08X | %-28s\n", table.error_id, iwm_desc_lookup(table.error_id)); device_printf(sc->sc_dev, "%08X | trm_hw_status0\n", table.trm_hw_status0); device_printf(sc->sc_dev, "%08X | trm_hw_status1\n", table.trm_hw_status1); device_printf(sc->sc_dev, "%08X | branchlink2\n", table.blink2); device_printf(sc->sc_dev, "%08X | interruptlink1\n", table.ilink1); device_printf(sc->sc_dev, "%08X | interruptlink2\n", table.ilink2); device_printf(sc->sc_dev, "%08X | data1\n", table.data1); device_printf(sc->sc_dev, "%08X | data2\n", table.data2); device_printf(sc->sc_dev, "%08X | data3\n", table.data3); device_printf(sc->sc_dev, "%08X | beacon time\n", table.bcon_time); device_printf(sc->sc_dev, "%08X | tsf low\n", table.tsf_low); device_printf(sc->sc_dev, "%08X | tsf hi\n", table.tsf_hi); device_printf(sc->sc_dev, "%08X | time gp1\n", table.gp1); device_printf(sc->sc_dev, "%08X | time gp2\n", table.gp2); device_printf(sc->sc_dev, "%08X | uCode revision type\n", table.fw_rev_type); device_printf(sc->sc_dev, "%08X | uCode version major\n", table.major); device_printf(sc->sc_dev, "%08X | uCode version minor\n", table.minor); device_printf(sc->sc_dev, "%08X | hw version\n", table.hw_ver); device_printf(sc->sc_dev, "%08X | board version\n", table.brd_ver); device_printf(sc->sc_dev, "%08X | hcmd\n", table.hcmd); device_printf(sc->sc_dev, "%08X | isr0\n", table.isr0); device_printf(sc->sc_dev, "%08X | isr1\n", table.isr1); device_printf(sc->sc_dev, "%08X | isr2\n", table.isr2); device_printf(sc->sc_dev, "%08X | isr3\n", table.isr3); device_printf(sc->sc_dev, "%08X | isr4\n", table.isr4); device_printf(sc->sc_dev, "%08X | last cmd Id\n", table.last_cmd_id); device_printf(sc->sc_dev, "%08X | wait_event\n", table.wait_event); device_printf(sc->sc_dev, "%08X | l2p_control\n", table.l2p_control); device_printf(sc->sc_dev, "%08X | l2p_duration\n", table.l2p_duration); device_printf(sc->sc_dev, "%08X | l2p_mhvalid\n", table.l2p_mhvalid); device_printf(sc->sc_dev, "%08X | l2p_addr_match\n", table.l2p_addr_match); device_printf(sc->sc_dev, "%08X | lmpm_pmg_sel\n", table.lmpm_pmg_sel); device_printf(sc->sc_dev, "%08X | timestamp\n", table.u_timestamp); device_printf(sc->sc_dev, "%08X | flow_handler\n", table.flow_handler); if (sc->umac_error_event_table) iwm_nic_umac_error(sc); } #endif static void iwm_handle_rxb(struct iwm_softc *sc, struct mbuf *m) { struct ieee80211com *ic = &sc->sc_ic; struct iwm_cmd_response *cresp; struct mbuf *m1; uint32_t offset = 0; uint32_t maxoff = IWM_RBUF_SIZE; uint32_t nextoff; boolean_t stolen = FALSE; #define HAVEROOM(a) \ ((a) + sizeof(uint32_t) + sizeof(struct iwm_cmd_header) < maxoff) while (HAVEROOM(offset)) { struct iwm_rx_packet *pkt = mtodoff(m, struct iwm_rx_packet *, offset); int qid, idx, code, len; qid = pkt->hdr.qid; idx = pkt->hdr.idx; code = IWM_WIDE_ID(pkt->hdr.flags, pkt->hdr.code); /* * randomly get these from the firmware, no idea why. * they at least seem harmless, so just ignore them for now */ if ((pkt->hdr.code == 0 && (qid & ~0x80) == 0 && idx == 0) || pkt->len_n_flags == htole32(IWM_FH_RSCSR_FRAME_INVALID)) { break; } IWM_DPRINTF(sc, IWM_DEBUG_INTR, "rx packet qid=%d idx=%d type=%x\n", qid & ~0x80, pkt->hdr.idx, code); len = iwm_rx_packet_len(pkt); len += sizeof(uint32_t); /* account for status word */ nextoff = offset + roundup2(len, IWM_FH_RSCSR_FRAME_ALIGN); iwm_notification_wait_notify(sc->sc_notif_wait, code, pkt); switch (code) { case IWM_REPLY_RX_PHY_CMD: iwm_rx_rx_phy_cmd(sc, pkt); break; case IWM_REPLY_RX_MPDU_CMD: { /* * If this is the last frame in the RX buffer, we * can directly feed the mbuf to the sharks here. */ struct iwm_rx_packet *nextpkt = mtodoff(m, struct iwm_rx_packet *, nextoff); if (!HAVEROOM(nextoff) || (nextpkt->hdr.code == 0 && (nextpkt->hdr.qid & ~0x80) == 0 && nextpkt->hdr.idx == 0) || (nextpkt->len_n_flags == htole32(IWM_FH_RSCSR_FRAME_INVALID))) { if (iwm_rx_mpdu(sc, m, offset, stolen)) { stolen = FALSE; /* Make sure we abort the loop */ nextoff = maxoff; } break; } /* * Use m_copym instead of m_split, because that * makes it easier to keep a valid rx buffer in * the ring, when iwm_rx_mpdu() fails. * * We need to start m_copym() at offset 0, to get the * M_PKTHDR flag preserved. */ m1 = m_copym(m, 0, M_COPYALL, M_NOWAIT); if (m1) { if (iwm_rx_mpdu(sc, m1, offset, stolen)) stolen = TRUE; else m_freem(m1); } break; } case IWM_TX_CMD: iwm_rx_tx_cmd(sc, pkt); break; case IWM_MISSED_BEACONS_NOTIFICATION: { struct iwm_missed_beacons_notif *resp; int missed; /* XXX look at mac_id to determine interface ID */ struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); resp = (void *)pkt->data; missed = le32toh(resp->consec_missed_beacons); IWM_DPRINTF(sc, IWM_DEBUG_BEACON | IWM_DEBUG_STATE, "%s: MISSED_BEACON: mac_id=%d, " "consec_since_last_rx=%d, consec=%d, num_expect=%d " "num_rx=%d\n", __func__, le32toh(resp->mac_id), le32toh(resp->consec_missed_beacons_since_last_rx), le32toh(resp->consec_missed_beacons), le32toh(resp->num_expected_beacons), le32toh(resp->num_recvd_beacons)); /* Be paranoid */ if (vap == NULL) break; /* XXX no net80211 locking? */ if (vap->iv_state == IEEE80211_S_RUN && (ic->ic_flags & IEEE80211_F_SCAN) == 0) { if (missed > vap->iv_bmissthreshold) { /* XXX bad locking; turn into task */ IWM_UNLOCK(sc); ieee80211_beacon_miss(ic); IWM_LOCK(sc); } } break; } case IWM_MFUART_LOAD_NOTIFICATION: break; case IWM_ALIVE: break; case IWM_CALIB_RES_NOTIF_PHY_DB: break; case IWM_STATISTICS_NOTIFICATION: iwm_handle_rx_statistics(sc, pkt); break; case IWM_NVM_ACCESS_CMD: case IWM_MCC_UPDATE_CMD: if (sc->sc_wantresp == (((qid & ~0x80) << 16) | idx)) { memcpy(sc->sc_cmd_resp, pkt, sizeof(sc->sc_cmd_resp)); } break; case IWM_MCC_CHUB_UPDATE_CMD: { struct iwm_mcc_chub_notif *notif; notif = (void *)pkt->data; sc->sc_fw_mcc[0] = (notif->mcc & 0xff00) >> 8; sc->sc_fw_mcc[1] = notif->mcc & 0xff; sc->sc_fw_mcc[2] = '\0'; IWM_DPRINTF(sc, IWM_DEBUG_LAR, "fw source %d sent CC '%s'\n", notif->source_id, sc->sc_fw_mcc); break; } case IWM_DTS_MEASUREMENT_NOTIFICATION: case IWM_WIDE_ID(IWM_PHY_OPS_GROUP, IWM_DTS_MEASUREMENT_NOTIF_WIDE): { struct iwm_dts_measurement_notif_v1 *notif; if (iwm_rx_packet_payload_len(pkt) < sizeof(*notif)) { device_printf(sc->sc_dev, "Invalid DTS_MEASUREMENT_NOTIFICATION\n"); break; } notif = (void *)pkt->data; IWM_DPRINTF(sc, IWM_DEBUG_TEMP, "IWM_DTS_MEASUREMENT_NOTIFICATION - %d\n", notif->temp); break; } case IWM_PHY_CONFIGURATION_CMD: case IWM_TX_ANT_CONFIGURATION_CMD: case IWM_ADD_STA: case IWM_MAC_CONTEXT_CMD: case IWM_REPLY_SF_CFG_CMD: case IWM_POWER_TABLE_CMD: case IWM_LTR_CONFIG: case IWM_PHY_CONTEXT_CMD: case IWM_BINDING_CONTEXT_CMD: case IWM_TIME_EVENT_CMD: case IWM_WIDE_ID(IWM_ALWAYS_LONG_GROUP, IWM_SCAN_CFG_CMD): case IWM_WIDE_ID(IWM_ALWAYS_LONG_GROUP, IWM_SCAN_REQ_UMAC): case IWM_WIDE_ID(IWM_ALWAYS_LONG_GROUP, IWM_SCAN_ABORT_UMAC): case IWM_SCAN_OFFLOAD_REQUEST_CMD: case IWM_SCAN_OFFLOAD_ABORT_CMD: case IWM_REPLY_BEACON_FILTERING_CMD: case IWM_MAC_PM_POWER_TABLE: case IWM_TIME_QUOTA_CMD: case IWM_REMOVE_STA: case IWM_TXPATH_FLUSH: case IWM_LQ_CMD: case IWM_WIDE_ID(IWM_ALWAYS_LONG_GROUP, IWM_FW_PAGING_BLOCK_CMD): case IWM_BT_CONFIG: case IWM_REPLY_THERMAL_MNG_BACKOFF: cresp = (void *)pkt->data; if (sc->sc_wantresp == (((qid & ~0x80) << 16) | idx)) { memcpy(sc->sc_cmd_resp, pkt, sizeof(*pkt)+sizeof(*cresp)); } break; /* ignore */ case IWM_PHY_DB_CMD: break; case IWM_INIT_COMPLETE_NOTIF: break; case IWM_SCAN_OFFLOAD_COMPLETE: iwm_rx_lmac_scan_complete_notif(sc, pkt); if (sc->sc_flags & IWM_FLAG_SCAN_RUNNING) { sc->sc_flags &= ~IWM_FLAG_SCAN_RUNNING; ieee80211_runtask(ic, &sc->sc_es_task); } break; case IWM_SCAN_ITERATION_COMPLETE: { struct iwm_lmac_scan_complete_notif *notif; notif = (void *)pkt->data; break; } case IWM_SCAN_COMPLETE_UMAC: iwm_rx_umac_scan_complete_notif(sc, pkt); if (sc->sc_flags & IWM_FLAG_SCAN_RUNNING) { sc->sc_flags &= ~IWM_FLAG_SCAN_RUNNING; ieee80211_runtask(ic, &sc->sc_es_task); } break; case IWM_SCAN_ITERATION_COMPLETE_UMAC: { struct iwm_umac_scan_iter_complete_notif *notif; notif = (void *)pkt->data; IWM_DPRINTF(sc, IWM_DEBUG_SCAN, "UMAC scan iteration " "complete, status=0x%x, %d channels scanned\n", notif->status, notif->scanned_channels); break; } case IWM_REPLY_ERROR: { struct iwm_error_resp *resp; resp = (void *)pkt->data; device_printf(sc->sc_dev, "firmware error 0x%x, cmd 0x%x\n", le32toh(resp->error_type), resp->cmd_id); break; } case IWM_TIME_EVENT_NOTIFICATION: iwm_rx_time_event_notif(sc, pkt); break; /* * Firmware versions 21 and 22 generate some DEBUG_LOG_MSG * messages. Just ignore them for now. */ case IWM_DEBUG_LOG_MSG: break; case IWM_MCAST_FILTER_CMD: break; case IWM_SCD_QUEUE_CFG: { struct iwm_scd_txq_cfg_rsp *rsp; rsp = (void *)pkt->data; IWM_DPRINTF(sc, IWM_DEBUG_CMD, "queue cfg token=0x%x sta_id=%d " "tid=%d scd_queue=%d\n", rsp->token, rsp->sta_id, rsp->tid, rsp->scd_queue); break; } default: device_printf(sc->sc_dev, "code %x, frame %d/%d %x unhandled\n", code, qid & ~0x80, idx, pkt->len_n_flags); break; } /* * Why test bit 0x80? The Linux driver: * * There is one exception: uCode sets bit 15 when it * originates the response/notification, i.e. when the * response/notification is not a direct response to a * command sent by the driver. For example, uCode issues * IWM_REPLY_RX when it sends a received frame to the driver; * it is not a direct response to any driver command. * * Ok, so since when is 7 == 15? Well, the Linux driver * uses a slightly different format for pkt->hdr, and "qid" * is actually the upper byte of a two-byte field. */ if (!(qid & (1 << 7))) iwm_cmd_done(sc, pkt); offset = nextoff; } if (stolen) m_freem(m); #undef HAVEROOM } /* * Process an IWM_CSR_INT_BIT_FH_RX or IWM_CSR_INT_BIT_SW_RX interrupt. * Basic structure from if_iwn */ static void iwm_notif_intr(struct iwm_softc *sc) { int count; uint32_t wreg; uint16_t hw; bus_dmamap_sync(sc->rxq.stat_dma.tag, sc->rxq.stat_dma.map, BUS_DMASYNC_POSTREAD); if (sc->cfg->mqrx_supported) { count = IWM_RX_MQ_RING_COUNT; wreg = IWM_RFH_Q0_FRBDCB_WIDX_TRG; } else { count = IWM_RX_LEGACY_RING_COUNT; wreg = IWM_FH_RSCSR_CHNL0_WPTR; } hw = le16toh(sc->rxq.stat->closed_rb_num) & 0xfff; /* * Process responses */ while (sc->rxq.cur != hw) { struct iwm_rx_ring *ring = &sc->rxq; struct iwm_rx_data *data = &ring->data[ring->cur]; bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_POSTREAD); IWM_DPRINTF(sc, IWM_DEBUG_INTR, "%s: hw = %d cur = %d\n", __func__, hw, ring->cur); iwm_handle_rxb(sc, data->m); ring->cur = (ring->cur + 1) % count; } /* * Tell the firmware that it can reuse the ring entries that * we have just processed. * Seems like the hardware gets upset unless we align * the write by 8?? */ hw = (hw == 0) ? count - 1 : hw - 1; IWM_WRITE(sc, wreg, rounddown2(hw, 8)); } static void iwm_intr(void *arg) { struct iwm_softc *sc = arg; int handled = 0; int r1, r2, rv = 0; int isperiodic = 0; IWM_LOCK(sc); IWM_WRITE(sc, IWM_CSR_INT_MASK, 0); if (sc->sc_flags & IWM_FLAG_USE_ICT) { uint32_t *ict = sc->ict_dma.vaddr; int tmp; tmp = htole32(ict[sc->ict_cur]); if (!tmp) goto out_ena; /* * ok, there was something. keep plowing until we have all. */ r1 = r2 = 0; while (tmp) { r1 |= tmp; ict[sc->ict_cur] = 0; sc->ict_cur = (sc->ict_cur+1) % IWM_ICT_COUNT; tmp = htole32(ict[sc->ict_cur]); } /* this is where the fun begins. don't ask */ if (r1 == 0xffffffff) r1 = 0; /* i am not expected to understand this */ if (r1 & 0xc0000) r1 |= 0x8000; r1 = (0xff & r1) | ((0xff00 & r1) << 16); } else { r1 = IWM_READ(sc, IWM_CSR_INT); /* "hardware gone" (where, fishing?) */ if (r1 == 0xffffffff || (r1 & 0xfffffff0) == 0xa5a5a5a0) goto out; r2 = IWM_READ(sc, IWM_CSR_FH_INT_STATUS); } if (r1 == 0 && r2 == 0) { goto out_ena; } IWM_WRITE(sc, IWM_CSR_INT, r1 | ~sc->sc_intmask); /* Safely ignore these bits for debug checks below */ r1 &= ~(IWM_CSR_INT_BIT_ALIVE | IWM_CSR_INT_BIT_SCD); if (r1 & IWM_CSR_INT_BIT_SW_ERR) { int i; struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); #ifdef IWM_DEBUG iwm_nic_error(sc); #endif /* Dump driver status (TX and RX rings) while we're here. */ device_printf(sc->sc_dev, "driver status:\n"); for (i = 0; i < IWM_MAX_QUEUES; i++) { struct iwm_tx_ring *ring = &sc->txq[i]; device_printf(sc->sc_dev, " tx ring %2d: qid=%-2d cur=%-3d " "queued=%-3d\n", i, ring->qid, ring->cur, ring->queued); } device_printf(sc->sc_dev, " rx ring: cur=%d\n", sc->rxq.cur); device_printf(sc->sc_dev, " 802.11 state %d\n", (vap == NULL) ? -1 : vap->iv_state); /* Reset our firmware state tracking. */ sc->sc_firmware_state = 0; /* Don't stop the device; just do a VAP restart */ IWM_UNLOCK(sc); if (vap == NULL) { printf("%s: null vap\n", __func__); return; } device_printf(sc->sc_dev, "%s: controller panicked, iv_state = %d; " "restarting\n", __func__, vap->iv_state); ieee80211_restart_all(ic); return; } if (r1 & IWM_CSR_INT_BIT_HW_ERR) { handled |= IWM_CSR_INT_BIT_HW_ERR; device_printf(sc->sc_dev, "hardware error, stopping device\n"); iwm_stop(sc); rv = 1; goto out; } /* firmware chunk loaded */ if (r1 & IWM_CSR_INT_BIT_FH_TX) { IWM_WRITE(sc, IWM_CSR_FH_INT_STATUS, IWM_CSR_FH_INT_TX_MASK); handled |= IWM_CSR_INT_BIT_FH_TX; sc->sc_fw_chunk_done = 1; wakeup(&sc->sc_fw); } if (r1 & IWM_CSR_INT_BIT_RF_KILL) { handled |= IWM_CSR_INT_BIT_RF_KILL; taskqueue_enqueue(sc->sc_tq, &sc->sc_rftoggle_task); } /* * The Linux driver uses periodic interrupts to avoid races. * We cargo-cult like it's going out of fashion. */ if (r1 & IWM_CSR_INT_BIT_RX_PERIODIC) { handled |= IWM_CSR_INT_BIT_RX_PERIODIC; IWM_WRITE(sc, IWM_CSR_INT, IWM_CSR_INT_BIT_RX_PERIODIC); if ((r1 & (IWM_CSR_INT_BIT_FH_RX | IWM_CSR_INT_BIT_SW_RX)) == 0) IWM_WRITE_1(sc, IWM_CSR_INT_PERIODIC_REG, IWM_CSR_INT_PERIODIC_DIS); isperiodic = 1; } if ((r1 & (IWM_CSR_INT_BIT_FH_RX | IWM_CSR_INT_BIT_SW_RX)) || isperiodic) { handled |= (IWM_CSR_INT_BIT_FH_RX | IWM_CSR_INT_BIT_SW_RX); IWM_WRITE(sc, IWM_CSR_FH_INT_STATUS, IWM_CSR_FH_INT_RX_MASK); iwm_notif_intr(sc); /* enable periodic interrupt, see above */ if (r1 & (IWM_CSR_INT_BIT_FH_RX | IWM_CSR_INT_BIT_SW_RX) && !isperiodic) IWM_WRITE_1(sc, IWM_CSR_INT_PERIODIC_REG, IWM_CSR_INT_PERIODIC_ENA); } if (__predict_false(r1 & ~handled)) IWM_DPRINTF(sc, IWM_DEBUG_INTR, "%s: unhandled interrupts: %x\n", __func__, r1); rv = 1; out_ena: iwm_restore_interrupts(sc); out: IWM_UNLOCK(sc); return; } /* * Autoconf glue-sniffing */ #define PCI_VENDOR_INTEL 0x8086 #define PCI_PRODUCT_INTEL_WL_3160_1 0x08b3 #define PCI_PRODUCT_INTEL_WL_3160_2 0x08b4 #define PCI_PRODUCT_INTEL_WL_3165_1 0x3165 #define PCI_PRODUCT_INTEL_WL_3165_2 0x3166 #define PCI_PRODUCT_INTEL_WL_3168_1 0x24fb #define PCI_PRODUCT_INTEL_WL_7260_1 0x08b1 #define PCI_PRODUCT_INTEL_WL_7260_2 0x08b2 #define PCI_PRODUCT_INTEL_WL_7265_1 0x095a #define PCI_PRODUCT_INTEL_WL_7265_2 0x095b #define PCI_PRODUCT_INTEL_WL_8260_1 0x24f3 #define PCI_PRODUCT_INTEL_WL_8260_2 0x24f4 #define PCI_PRODUCT_INTEL_WL_8265_1 0x24fd #define PCI_PRODUCT_INTEL_WL_9560_1 0x9df0 #define PCI_PRODUCT_INTEL_WL_9560_2 0xa370 #define PCI_PRODUCT_INTEL_WL_9260_1 0x2526 static const struct iwm_devices { uint16_t device; const struct iwm_cfg *cfg; } iwm_devices[] = { { PCI_PRODUCT_INTEL_WL_3160_1, &iwm3160_cfg }, { PCI_PRODUCT_INTEL_WL_3160_2, &iwm3160_cfg }, { PCI_PRODUCT_INTEL_WL_3165_1, &iwm3165_cfg }, { PCI_PRODUCT_INTEL_WL_3165_2, &iwm3165_cfg }, { PCI_PRODUCT_INTEL_WL_3168_1, &iwm3168_cfg }, { PCI_PRODUCT_INTEL_WL_7260_1, &iwm7260_cfg }, { PCI_PRODUCT_INTEL_WL_7260_2, &iwm7260_cfg }, { PCI_PRODUCT_INTEL_WL_7265_1, &iwm7265_cfg }, { PCI_PRODUCT_INTEL_WL_7265_2, &iwm7265_cfg }, { PCI_PRODUCT_INTEL_WL_8260_1, &iwm8260_cfg }, { PCI_PRODUCT_INTEL_WL_8260_2, &iwm8260_cfg }, { PCI_PRODUCT_INTEL_WL_8265_1, &iwm8265_cfg }, { PCI_PRODUCT_INTEL_WL_9560_1, &iwm9560_cfg }, { PCI_PRODUCT_INTEL_WL_9560_2, &iwm9560_cfg }, { PCI_PRODUCT_INTEL_WL_9260_1, &iwm9260_cfg }, }; static int iwm_probe(device_t dev) { int i; for (i = 0; i < nitems(iwm_devices); i++) { if (pci_get_vendor(dev) == PCI_VENDOR_INTEL && pci_get_device(dev) == iwm_devices[i].device) { device_set_desc(dev, iwm_devices[i].cfg->name); return (BUS_PROBE_DEFAULT); } } return (ENXIO); } static int iwm_dev_check(device_t dev) { struct iwm_softc *sc; uint16_t devid; int i; sc = device_get_softc(dev); devid = pci_get_device(dev); for (i = 0; i < nitems(iwm_devices); i++) { if (iwm_devices[i].device == devid) { sc->cfg = iwm_devices[i].cfg; return (0); } } device_printf(dev, "unknown adapter type\n"); return ENXIO; } /* PCI registers */ #define PCI_CFG_RETRY_TIMEOUT 0x041 static int iwm_pci_attach(device_t dev) { struct iwm_softc *sc; int count, error, rid; uint16_t reg; sc = device_get_softc(dev); /* We disable the RETRY_TIMEOUT register (0x41) to keep * PCI Tx retries from interfering with C3 CPU state */ pci_write_config(dev, PCI_CFG_RETRY_TIMEOUT, 0x00, 1); /* Enable bus-mastering and hardware bug workaround. */ pci_enable_busmaster(dev); reg = pci_read_config(dev, PCIR_STATUS, sizeof(reg)); /* if !MSI */ if (reg & PCIM_STATUS_INTxSTATE) { reg &= ~PCIM_STATUS_INTxSTATE; } pci_write_config(dev, PCIR_STATUS, reg, sizeof(reg)); rid = PCIR_BAR(0); sc->sc_mem = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &rid, RF_ACTIVE); if (sc->sc_mem == NULL) { device_printf(sc->sc_dev, "can't map mem space\n"); return (ENXIO); } sc->sc_st = rman_get_bustag(sc->sc_mem); sc->sc_sh = rman_get_bushandle(sc->sc_mem); /* Install interrupt handler. */ count = 1; rid = 0; if (pci_alloc_msi(dev, &count) == 0) rid = 1; sc->sc_irq = bus_alloc_resource_any(dev, SYS_RES_IRQ, &rid, RF_ACTIVE | (rid != 0 ? 0 : RF_SHAREABLE)); if (sc->sc_irq == NULL) { device_printf(dev, "can't map interrupt\n"); return (ENXIO); } error = bus_setup_intr(dev, sc->sc_irq, INTR_TYPE_NET | INTR_MPSAFE, NULL, iwm_intr, sc, &sc->sc_ih); if (sc->sc_ih == NULL) { device_printf(dev, "can't establish interrupt"); return (ENXIO); } sc->sc_dmat = bus_get_dma_tag(sc->sc_dev); return (0); } static void iwm_pci_detach(device_t dev) { struct iwm_softc *sc = device_get_softc(dev); if (sc->sc_irq != NULL) { bus_teardown_intr(dev, sc->sc_irq, sc->sc_ih); bus_release_resource(dev, SYS_RES_IRQ, rman_get_rid(sc->sc_irq), sc->sc_irq); pci_release_msi(dev); } if (sc->sc_mem != NULL) bus_release_resource(dev, SYS_RES_MEMORY, rman_get_rid(sc->sc_mem), sc->sc_mem); } static int iwm_attach(device_t dev) { struct iwm_softc *sc = device_get_softc(dev); struct ieee80211com *ic = &sc->sc_ic; int error; int txq_i, i; sc->sc_dev = dev; sc->sc_attached = 1; IWM_LOCK_INIT(sc); mbufq_init(&sc->sc_snd, ifqmaxlen); callout_init_mtx(&sc->sc_watchdog_to, &sc->sc_mtx, 0); callout_init_mtx(&sc->sc_led_blink_to, &sc->sc_mtx, 0); TASK_INIT(&sc->sc_es_task, 0, iwm_endscan_cb, sc); TASK_INIT(&sc->sc_rftoggle_task, 0, iwm_rftoggle_task, sc); sc->sc_tq = taskqueue_create("iwm_taskq", M_WAITOK, taskqueue_thread_enqueue, &sc->sc_tq); error = taskqueue_start_threads(&sc->sc_tq, 1, 0, "iwm_taskq"); if (error != 0) { device_printf(dev, "can't start taskq thread, error %d\n", error); goto fail; } error = iwm_dev_check(dev); if (error != 0) goto fail; sc->sc_notif_wait = iwm_notification_wait_init(sc); if (sc->sc_notif_wait == NULL) { device_printf(dev, "failed to init notification wait struct\n"); goto fail; } sc->sf_state = IWM_SF_UNINIT; /* Init phy db */ sc->sc_phy_db = iwm_phy_db_init(sc); if (!sc->sc_phy_db) { device_printf(dev, "Cannot init phy_db\n"); goto fail; } /* Set EBS as successful as long as not stated otherwise by the FW. */ sc->last_ebs_successful = TRUE; /* PCI attach */ error = iwm_pci_attach(dev); if (error != 0) goto fail; sc->sc_wantresp = -1; sc->sc_hw_rev = IWM_READ(sc, IWM_CSR_HW_REV); /* * In the 8000 HW family the format of the 4 bytes of CSR_HW_REV have * changed, and now the revision step also includes bit 0-1 (no more * "dash" value). To keep hw_rev backwards compatible - we'll store it * in the old format. */ if (sc->cfg->device_family >= IWM_DEVICE_FAMILY_8000) { int ret; uint32_t hw_step; sc->sc_hw_rev = (sc->sc_hw_rev & 0xfff0) | (IWM_CSR_HW_REV_STEP(sc->sc_hw_rev << 2) << 2); if (iwm_prepare_card_hw(sc) != 0) { device_printf(dev, "could not initialize hardware\n"); goto fail; } /* * In order to recognize C step the driver should read the * chip version id located at the AUX bus MISC address. */ IWM_SETBITS(sc, IWM_CSR_GP_CNTRL, IWM_CSR_GP_CNTRL_REG_FLAG_INIT_DONE); DELAY(2); ret = iwm_poll_bit(sc, IWM_CSR_GP_CNTRL, IWM_CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY, IWM_CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY, 25000); if (!ret) { device_printf(sc->sc_dev, "Failed to wake up the nic\n"); goto fail; } if (iwm_nic_lock(sc)) { hw_step = iwm_read_prph(sc, IWM_WFPM_CTRL_REG); hw_step |= IWM_ENABLE_WFPM; iwm_write_prph(sc, IWM_WFPM_CTRL_REG, hw_step); hw_step = iwm_read_prph(sc, IWM_AUX_MISC_REG); hw_step = (hw_step >> IWM_HW_STEP_LOCATION_BITS) & 0xF; if (hw_step == 0x3) sc->sc_hw_rev = (sc->sc_hw_rev & 0xFFFFFFF3) | (IWM_SILICON_C_STEP << 2); iwm_nic_unlock(sc); } else { device_printf(sc->sc_dev, "Failed to lock the nic\n"); goto fail; } } /* special-case 7265D, it has the same PCI IDs. */ if (sc->cfg == &iwm7265_cfg && (sc->sc_hw_rev & IWM_CSR_HW_REV_TYPE_MSK) == IWM_CSR_HW_REV_TYPE_7265D) { sc->cfg = &iwm7265d_cfg; } /* Allocate DMA memory for firmware transfers. */ if ((error = iwm_alloc_fwmem(sc)) != 0) { device_printf(dev, "could not allocate memory for firmware\n"); goto fail; } /* Allocate "Keep Warm" page. */ if ((error = iwm_alloc_kw(sc)) != 0) { device_printf(dev, "could not allocate keep warm page\n"); goto fail; } /* We use ICT interrupts */ if ((error = iwm_alloc_ict(sc)) != 0) { device_printf(dev, "could not allocate ICT table\n"); goto fail; } /* Allocate TX scheduler "rings". */ if ((error = iwm_alloc_sched(sc)) != 0) { device_printf(dev, "could not allocate TX scheduler rings\n"); goto fail; } /* Allocate TX rings */ for (txq_i = 0; txq_i < nitems(sc->txq); txq_i++) { if ((error = iwm_alloc_tx_ring(sc, &sc->txq[txq_i], txq_i)) != 0) { device_printf(dev, "could not allocate TX ring %d\n", txq_i); goto fail; } } /* Allocate RX ring. */ if ((error = iwm_alloc_rx_ring(sc, &sc->rxq)) != 0) { device_printf(dev, "could not allocate RX ring\n"); goto fail; } /* Clear pending interrupts. */ IWM_WRITE(sc, IWM_CSR_INT, 0xffffffff); ic->ic_softc = sc; ic->ic_name = device_get_nameunit(sc->sc_dev); ic->ic_phytype = IEEE80211_T_OFDM; /* not only, but not used */ ic->ic_opmode = IEEE80211_M_STA; /* default to BSS mode */ /* Set device capabilities. */ ic->ic_caps = IEEE80211_C_STA | IEEE80211_C_WPA | /* WPA/RSN */ IEEE80211_C_WME | IEEE80211_C_PMGT | IEEE80211_C_SHSLOT | /* short slot time supported */ IEEE80211_C_SHPREAMBLE /* short preamble supported */ // IEEE80211_C_BGSCAN /* capable of bg scanning */ ; /* Advertise full-offload scanning */ ic->ic_flags_ext = IEEE80211_FEXT_SCAN_OFFLOAD; for (i = 0; i < nitems(sc->sc_phyctxt); i++) { sc->sc_phyctxt[i].id = i; sc->sc_phyctxt[i].color = 0; sc->sc_phyctxt[i].ref = 0; sc->sc_phyctxt[i].channel = NULL; } /* Default noise floor */ sc->sc_noise = -96; /* Max RSSI */ sc->sc_max_rssi = IWM_MAX_DBM - IWM_MIN_DBM; #ifdef IWM_DEBUG SYSCTL_ADD_INT(device_get_sysctl_ctx(dev), SYSCTL_CHILDREN(device_get_sysctl_tree(dev)), OID_AUTO, "debug", CTLFLAG_RW, &sc->sc_debug, 0, "control debugging"); #endif error = iwm_read_firmware(sc); if (error) { goto fail; } else if (sc->sc_fw.fw_fp == NULL) { /* * XXX Add a solution for properly deferring firmware load * during bootup. */ goto fail; } else { sc->sc_preinit_hook.ich_func = iwm_preinit; sc->sc_preinit_hook.ich_arg = sc; if (config_intrhook_establish(&sc->sc_preinit_hook) != 0) { device_printf(dev, "config_intrhook_establish failed\n"); goto fail; } } IWM_DPRINTF(sc, IWM_DEBUG_RESET | IWM_DEBUG_TRACE, "<-%s\n", __func__); return 0; /* Free allocated memory if something failed during attachment. */ fail: iwm_detach_local(sc, 0); return ENXIO; } static int iwm_is_valid_ether_addr(uint8_t *addr) { char zero_addr[IEEE80211_ADDR_LEN] = { 0, 0, 0, 0, 0, 0 }; if ((addr[0] & 1) || IEEE80211_ADDR_EQ(zero_addr, addr)) return (FALSE); return (TRUE); } static int iwm_wme_update(struct ieee80211com *ic) { #define IWM_EXP2(x) ((1 << (x)) - 1) /* CWmin = 2^ECWmin - 1 */ struct iwm_softc *sc = ic->ic_softc; struct chanAccParams chp; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); struct iwm_vap *ivp = IWM_VAP(vap); struct iwm_node *in; struct wmeParams tmp[WME_NUM_AC]; int aci, error; if (vap == NULL) return (0); ieee80211_wme_ic_getparams(ic, &chp); IEEE80211_LOCK(ic); for (aci = 0; aci < WME_NUM_AC; aci++) tmp[aci] = chp.cap_wmeParams[aci]; IEEE80211_UNLOCK(ic); IWM_LOCK(sc); for (aci = 0; aci < WME_NUM_AC; aci++) { const struct wmeParams *ac = &tmp[aci]; ivp->queue_params[aci].aifsn = ac->wmep_aifsn; ivp->queue_params[aci].cw_min = IWM_EXP2(ac->wmep_logcwmin); ivp->queue_params[aci].cw_max = IWM_EXP2(ac->wmep_logcwmax); ivp->queue_params[aci].edca_txop = IEEE80211_TXOP_TO_US(ac->wmep_txopLimit); } ivp->have_wme = TRUE; if (ivp->is_uploaded && vap->iv_bss != NULL) { in = IWM_NODE(vap->iv_bss); if (in->in_assoc) { if ((error = iwm_mac_ctxt_changed(sc, vap)) != 0) { device_printf(sc->sc_dev, "%s: failed to update MAC\n", __func__); } } } IWM_UNLOCK(sc); return (0); #undef IWM_EXP2 } static void iwm_preinit(void *arg) { struct iwm_softc *sc = arg; device_t dev = sc->sc_dev; struct ieee80211com *ic = &sc->sc_ic; int error; IWM_DPRINTF(sc, IWM_DEBUG_RESET | IWM_DEBUG_TRACE, "->%s\n", __func__); IWM_LOCK(sc); if ((error = iwm_start_hw(sc)) != 0) { device_printf(dev, "could not initialize hardware\n"); IWM_UNLOCK(sc); goto fail; } error = iwm_run_init_ucode(sc, 1); iwm_stop_device(sc); if (error) { IWM_UNLOCK(sc); goto fail; } device_printf(dev, "hw rev 0x%x, fw ver %s, address %s\n", sc->sc_hw_rev & IWM_CSR_HW_REV_TYPE_MSK, sc->sc_fwver, ether_sprintf(sc->nvm_data->hw_addr)); /* not all hardware can do 5GHz band */ if (!sc->nvm_data->sku_cap_band_52GHz_enable) memset(&ic->ic_sup_rates[IEEE80211_MODE_11A], 0, sizeof(ic->ic_sup_rates[IEEE80211_MODE_11A])); IWM_UNLOCK(sc); iwm_init_channel_map(ic, IEEE80211_CHAN_MAX, &ic->ic_nchans, ic->ic_channels); /* * At this point we've committed - if we fail to do setup, * we now also have to tear down the net80211 state. */ ieee80211_ifattach(ic); ic->ic_vap_create = iwm_vap_create; ic->ic_vap_delete = iwm_vap_delete; ic->ic_raw_xmit = iwm_raw_xmit; ic->ic_node_alloc = iwm_node_alloc; ic->ic_scan_start = iwm_scan_start; ic->ic_scan_end = iwm_scan_end; ic->ic_update_mcast = iwm_update_mcast; ic->ic_getradiocaps = iwm_init_channel_map; ic->ic_set_channel = iwm_set_channel; ic->ic_scan_curchan = iwm_scan_curchan; ic->ic_scan_mindwell = iwm_scan_mindwell; ic->ic_wme.wme_update = iwm_wme_update; ic->ic_parent = iwm_parent; ic->ic_transmit = iwm_transmit; iwm_radiotap_attach(sc); if (bootverbose) ieee80211_announce(ic); IWM_DPRINTF(sc, IWM_DEBUG_RESET | IWM_DEBUG_TRACE, "<-%s\n", __func__); config_intrhook_disestablish(&sc->sc_preinit_hook); return; fail: config_intrhook_disestablish(&sc->sc_preinit_hook); iwm_detach_local(sc, 0); } /* * Attach the interface to 802.11 radiotap. */ static void iwm_radiotap_attach(struct iwm_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; IWM_DPRINTF(sc, IWM_DEBUG_RESET | IWM_DEBUG_TRACE, "->%s begin\n", __func__); ieee80211_radiotap_attach(ic, &sc->sc_txtap.wt_ihdr, sizeof(sc->sc_txtap), IWM_TX_RADIOTAP_PRESENT, &sc->sc_rxtap.wr_ihdr, sizeof(sc->sc_rxtap), IWM_RX_RADIOTAP_PRESENT); IWM_DPRINTF(sc, IWM_DEBUG_RESET | IWM_DEBUG_TRACE, "->%s end\n", __func__); } static struct ieee80211vap * iwm_vap_create(struct ieee80211com *ic, const char name[IFNAMSIZ], int unit, enum ieee80211_opmode opmode, int flags, const uint8_t bssid[IEEE80211_ADDR_LEN], const uint8_t mac[IEEE80211_ADDR_LEN]) { struct iwm_vap *ivp; struct ieee80211vap *vap; if (!TAILQ_EMPTY(&ic->ic_vaps)) /* only one at a time */ return NULL; ivp = malloc(sizeof(struct iwm_vap), M_80211_VAP, M_WAITOK | M_ZERO); vap = &ivp->iv_vap; ieee80211_vap_setup(ic, vap, name, unit, opmode, flags, bssid); vap->iv_bmissthreshold = 10; /* override default */ /* Override with driver methods. */ ivp->iv_newstate = vap->iv_newstate; vap->iv_newstate = iwm_newstate; ivp->id = IWM_DEFAULT_MACID; ivp->color = IWM_DEFAULT_COLOR; ivp->have_wme = FALSE; ivp->ps_disabled = FALSE; ieee80211_ratectl_init(vap); /* Complete setup. */ ieee80211_vap_attach(vap, iwm_media_change, ieee80211_media_status, mac); ic->ic_opmode = opmode; return vap; } static void iwm_vap_delete(struct ieee80211vap *vap) { struct iwm_vap *ivp = IWM_VAP(vap); ieee80211_ratectl_deinit(vap); ieee80211_vap_detach(vap); free(ivp, M_80211_VAP); } static void iwm_xmit_queue_drain(struct iwm_softc *sc) { struct mbuf *m; struct ieee80211_node *ni; while ((m = mbufq_dequeue(&sc->sc_snd)) != NULL) { ni = (struct ieee80211_node *)m->m_pkthdr.rcvif; ieee80211_free_node(ni); m_freem(m); } } static void iwm_scan_start(struct ieee80211com *ic) { struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); struct iwm_softc *sc = ic->ic_softc; int error; IWM_LOCK(sc); if (sc->sc_flags & IWM_FLAG_SCAN_RUNNING) { /* This should not be possible */ device_printf(sc->sc_dev, "%s: Previous scan not completed yet\n", __func__); } if (iwm_fw_has_capa(sc, IWM_UCODE_TLV_CAPA_UMAC_SCAN)) error = iwm_umac_scan(sc); else error = iwm_lmac_scan(sc); if (error != 0) { device_printf(sc->sc_dev, "could not initiate scan\n"); IWM_UNLOCK(sc); ieee80211_cancel_scan(vap); } else { sc->sc_flags |= IWM_FLAG_SCAN_RUNNING; iwm_led_blink_start(sc); IWM_UNLOCK(sc); } } static void iwm_scan_end(struct ieee80211com *ic) { struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); struct iwm_softc *sc = ic->ic_softc; IWM_LOCK(sc); iwm_led_blink_stop(sc); if (vap->iv_state == IEEE80211_S_RUN) iwm_led_enable(sc); if (sc->sc_flags & IWM_FLAG_SCAN_RUNNING) { /* * Removing IWM_FLAG_SCAN_RUNNING now, is fine because * both iwm_scan_end and iwm_scan_start run in the ic->ic_tq * taskqueue. */ sc->sc_flags &= ~IWM_FLAG_SCAN_RUNNING; iwm_scan_stop_wait(sc); } IWM_UNLOCK(sc); /* * Make sure we don't race, if sc_es_task is still enqueued here. * This is to make sure that it won't call ieee80211_scan_done * when we have already started the next scan. */ taskqueue_cancel(ic->ic_tq, &sc->sc_es_task, NULL); } static void iwm_update_mcast(struct ieee80211com *ic) { } static void iwm_set_channel(struct ieee80211com *ic) { } static void iwm_scan_curchan(struct ieee80211_scan_state *ss, unsigned long maxdwell) { } static void iwm_scan_mindwell(struct ieee80211_scan_state *ss) { } void iwm_init_task(void *arg1) { struct iwm_softc *sc = arg1; IWM_LOCK(sc); while (sc->sc_flags & IWM_FLAG_BUSY) msleep(&sc->sc_flags, &sc->sc_mtx, 0, "iwmpwr", 0); sc->sc_flags |= IWM_FLAG_BUSY; iwm_stop(sc); if (sc->sc_ic.ic_nrunning > 0) iwm_init(sc); sc->sc_flags &= ~IWM_FLAG_BUSY; wakeup(&sc->sc_flags); IWM_UNLOCK(sc); } static int iwm_resume(device_t dev) { struct iwm_softc *sc = device_get_softc(dev); int do_reinit = 0; /* * We disable the RETRY_TIMEOUT register (0x41) to keep * PCI Tx retries from interfering with C3 CPU state. */ pci_write_config(dev, PCI_CFG_RETRY_TIMEOUT, 0x00, 1); if (!sc->sc_attached) return 0; iwm_init_task(device_get_softc(dev)); IWM_LOCK(sc); if (sc->sc_flags & IWM_FLAG_SCANNING) { sc->sc_flags &= ~IWM_FLAG_SCANNING; do_reinit = 1; } IWM_UNLOCK(sc); if (do_reinit) ieee80211_resume_all(&sc->sc_ic); return 0; } static int iwm_suspend(device_t dev) { int do_stop = 0; struct iwm_softc *sc = device_get_softc(dev); do_stop = !! (sc->sc_ic.ic_nrunning > 0); if (!sc->sc_attached) return (0); ieee80211_suspend_all(&sc->sc_ic); if (do_stop) { IWM_LOCK(sc); iwm_stop(sc); sc->sc_flags |= IWM_FLAG_SCANNING; IWM_UNLOCK(sc); } return (0); } static int iwm_detach_local(struct iwm_softc *sc, int do_net80211) { struct iwm_fw_info *fw = &sc->sc_fw; device_t dev = sc->sc_dev; int i; if (!sc->sc_attached) return 0; sc->sc_attached = 0; if (do_net80211) { ieee80211_draintask(&sc->sc_ic, &sc->sc_es_task); } iwm_stop_device(sc); taskqueue_drain_all(sc->sc_tq); taskqueue_free(sc->sc_tq); if (do_net80211) { IWM_LOCK(sc); iwm_xmit_queue_drain(sc); IWM_UNLOCK(sc); ieee80211_ifdetach(&sc->sc_ic); } callout_drain(&sc->sc_led_blink_to); callout_drain(&sc->sc_watchdog_to); iwm_phy_db_free(sc->sc_phy_db); sc->sc_phy_db = NULL; iwm_free_nvm_data(sc->nvm_data); /* Free descriptor rings */ iwm_free_rx_ring(sc, &sc->rxq); for (i = 0; i < nitems(sc->txq); i++) iwm_free_tx_ring(sc, &sc->txq[i]); /* Free firmware */ if (fw->fw_fp != NULL) iwm_fw_info_free(fw); /* Free scheduler */ iwm_dma_contig_free(&sc->sched_dma); iwm_dma_contig_free(&sc->ict_dma); iwm_dma_contig_free(&sc->kw_dma); iwm_dma_contig_free(&sc->fw_dma); iwm_free_fw_paging(sc); /* Finished with the hardware - detach things */ iwm_pci_detach(dev); if (sc->sc_notif_wait != NULL) { iwm_notification_wait_free(sc->sc_notif_wait); sc->sc_notif_wait = NULL; } IWM_LOCK_DESTROY(sc); return (0); } static int iwm_detach(device_t dev) { struct iwm_softc *sc = device_get_softc(dev); return (iwm_detach_local(sc, 1)); } static device_method_t iwm_pci_methods[] = { /* Device interface */ DEVMETHOD(device_probe, iwm_probe), DEVMETHOD(device_attach, iwm_attach), DEVMETHOD(device_detach, iwm_detach), DEVMETHOD(device_suspend, iwm_suspend), DEVMETHOD(device_resume, iwm_resume), DEVMETHOD_END }; static driver_t iwm_pci_driver = { "iwm", iwm_pci_methods, sizeof (struct iwm_softc) }; static devclass_t iwm_devclass; DRIVER_MODULE(iwm, pci, iwm_pci_driver, iwm_devclass, NULL, NULL); MODULE_PNP_INFO("U16:device;P:#;T:vendor=0x8086", pci, iwm_pci_driver, iwm_devices, nitems(iwm_devices)); MODULE_DEPEND(iwm, firmware, 1, 1, 1); MODULE_DEPEND(iwm, pci, 1, 1, 1); MODULE_DEPEND(iwm, wlan, 1, 1, 1); Index: head/sys/dev/iwn/if_iwn.c =================================================================== --- head/sys/dev/iwn/if_iwn.c (revision 365418) +++ head/sys/dev/iwn/if_iwn.c (revision 365419) @@ -1,9239 +1,9228 @@ /*- * Copyright (c) 2007-2009 Damien Bergamini * Copyright (c) 2008 Benjamin Close * Copyright (c) 2008 Sam Leffler, Errno Consulting * Copyright (c) 2011 Intel Corporation * Copyright (c) 2013 Cedric GROSS * Copyright (c) 2013 Adrian Chadd * * Permission to use, copy, modify, and distribute this software for any * purpose with or without fee is hereby granted, provided that the above * copyright notice and this permission notice appear in all copies. * * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. */ /* * Driver for Intel WiFi Link 4965 and 1000/5000/6000 Series 802.11 network * adapters. */ #include __FBSDID("$FreeBSD$"); #include "opt_wlan.h" #include "opt_iwn.h" #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include struct iwn_ident { uint16_t vendor; uint16_t device; const char *name; }; static const struct iwn_ident iwn_ident_table[] = { { 0x8086, IWN_DID_6x05_1, "Intel Centrino Advanced-N 6205" }, { 0x8086, IWN_DID_1000_1, "Intel Centrino Wireless-N 1000" }, { 0x8086, IWN_DID_1000_2, "Intel Centrino Wireless-N 1000" }, { 0x8086, IWN_DID_6x05_2, "Intel Centrino Advanced-N 6205" }, { 0x8086, IWN_DID_6050_1, "Intel Centrino Advanced-N + WiMAX 6250" }, { 0x8086, IWN_DID_6050_2, "Intel Centrino Advanced-N + WiMAX 6250" }, { 0x8086, IWN_DID_x030_1, "Intel Centrino Wireless-N 1030" }, { 0x8086, IWN_DID_x030_2, "Intel Centrino Wireless-N 1030" }, { 0x8086, IWN_DID_x030_3, "Intel Centrino Advanced-N 6230" }, { 0x8086, IWN_DID_x030_4, "Intel Centrino Advanced-N 6230" }, { 0x8086, IWN_DID_6150_1, "Intel Centrino Wireless-N + WiMAX 6150" }, { 0x8086, IWN_DID_6150_2, "Intel Centrino Wireless-N + WiMAX 6150" }, { 0x8086, IWN_DID_2x00_1, "Intel(R) Centrino(R) Wireless-N 2200 BGN" }, { 0x8086, IWN_DID_2x00_2, "Intel(R) Centrino(R) Wireless-N 2200 BGN" }, /* XXX 2200D is IWN_SDID_2x00_4; there's no way to express this here! */ { 0x8086, IWN_DID_2x30_1, "Intel Centrino Wireless-N 2230" }, { 0x8086, IWN_DID_2x30_2, "Intel Centrino Wireless-N 2230" }, { 0x8086, IWN_DID_130_1, "Intel Centrino Wireless-N 130" }, { 0x8086, IWN_DID_130_2, "Intel Centrino Wireless-N 130" }, { 0x8086, IWN_DID_100_1, "Intel Centrino Wireless-N 100" }, { 0x8086, IWN_DID_100_2, "Intel Centrino Wireless-N 100" }, { 0x8086, IWN_DID_105_1, "Intel Centrino Wireless-N 105" }, { 0x8086, IWN_DID_105_2, "Intel Centrino Wireless-N 105" }, { 0x8086, IWN_DID_135_1, "Intel Centrino Wireless-N 135" }, { 0x8086, IWN_DID_135_2, "Intel Centrino Wireless-N 135" }, { 0x8086, IWN_DID_4965_1, "Intel Wireless WiFi Link 4965" }, { 0x8086, IWN_DID_6x00_1, "Intel Centrino Ultimate-N 6300" }, { 0x8086, IWN_DID_6x00_2, "Intel Centrino Advanced-N 6200" }, { 0x8086, IWN_DID_4965_2, "Intel Wireless WiFi Link 4965" }, { 0x8086, IWN_DID_4965_3, "Intel Wireless WiFi Link 4965" }, { 0x8086, IWN_DID_5x00_1, "Intel WiFi Link 5100" }, { 0x8086, IWN_DID_4965_4, "Intel Wireless WiFi Link 4965" }, { 0x8086, IWN_DID_5x00_3, "Intel Ultimate N WiFi Link 5300" }, { 0x8086, IWN_DID_5x00_4, "Intel Ultimate N WiFi Link 5300" }, { 0x8086, IWN_DID_5x00_2, "Intel WiFi Link 5100" }, { 0x8086, IWN_DID_6x00_3, "Intel Centrino Ultimate-N 6300" }, { 0x8086, IWN_DID_6x00_4, "Intel Centrino Advanced-N 6200" }, { 0x8086, IWN_DID_5x50_1, "Intel WiMAX/WiFi Link 5350" }, { 0x8086, IWN_DID_5x50_2, "Intel WiMAX/WiFi Link 5350" }, { 0x8086, IWN_DID_5x50_3, "Intel WiMAX/WiFi Link 5150" }, { 0x8086, IWN_DID_5x50_4, "Intel WiMAX/WiFi Link 5150" }, { 0x8086, IWN_DID_6035_1, "Intel Centrino Advanced 6235" }, { 0x8086, IWN_DID_6035_2, "Intel Centrino Advanced 6235" }, { 0, 0, NULL } }; static int iwn_probe(device_t); static int iwn_attach(device_t); static void iwn4965_attach(struct iwn_softc *, uint16_t); static void iwn5000_attach(struct iwn_softc *, uint16_t); static int iwn_config_specific(struct iwn_softc *, uint16_t); static void iwn_radiotap_attach(struct iwn_softc *); static void iwn_sysctlattach(struct iwn_softc *); static struct ieee80211vap *iwn_vap_create(struct ieee80211com *, const char [IFNAMSIZ], int, enum ieee80211_opmode, int, const uint8_t [IEEE80211_ADDR_LEN], const uint8_t [IEEE80211_ADDR_LEN]); static void iwn_vap_delete(struct ieee80211vap *); static int iwn_detach(device_t); static int iwn_shutdown(device_t); static int iwn_suspend(device_t); static int iwn_resume(device_t); static int iwn_nic_lock(struct iwn_softc *); static int iwn_eeprom_lock(struct iwn_softc *); static int iwn_init_otprom(struct iwn_softc *); static int iwn_read_prom_data(struct iwn_softc *, uint32_t, void *, int); static void iwn_dma_map_addr(void *, bus_dma_segment_t *, int, int); static int iwn_dma_contig_alloc(struct iwn_softc *, struct iwn_dma_info *, void **, bus_size_t, bus_size_t); static void iwn_dma_contig_free(struct iwn_dma_info *); static int iwn_alloc_sched(struct iwn_softc *); static void iwn_free_sched(struct iwn_softc *); static int iwn_alloc_kw(struct iwn_softc *); static void iwn_free_kw(struct iwn_softc *); static int iwn_alloc_ict(struct iwn_softc *); static void iwn_free_ict(struct iwn_softc *); static int iwn_alloc_fwmem(struct iwn_softc *); static void iwn_free_fwmem(struct iwn_softc *); static int iwn_alloc_rx_ring(struct iwn_softc *, struct iwn_rx_ring *); static void iwn_reset_rx_ring(struct iwn_softc *, struct iwn_rx_ring *); static void iwn_free_rx_ring(struct iwn_softc *, struct iwn_rx_ring *); static int iwn_alloc_tx_ring(struct iwn_softc *, struct iwn_tx_ring *, int); static void iwn_reset_tx_ring(struct iwn_softc *, struct iwn_tx_ring *); static void iwn_free_tx_ring(struct iwn_softc *, struct iwn_tx_ring *); static void iwn_check_tx_ring(struct iwn_softc *, int); static void iwn5000_ict_reset(struct iwn_softc *); static int iwn_read_eeprom(struct iwn_softc *, uint8_t macaddr[IEEE80211_ADDR_LEN]); static void iwn4965_read_eeprom(struct iwn_softc *); #ifdef IWN_DEBUG static void iwn4965_print_power_group(struct iwn_softc *, int); #endif static void iwn5000_read_eeprom(struct iwn_softc *); static uint32_t iwn_eeprom_channel_flags(struct iwn_eeprom_chan *); static void iwn_read_eeprom_band(struct iwn_softc *, int, int, int *, struct ieee80211_channel[]); static void iwn_read_eeprom_ht40(struct iwn_softc *, int, int, int *, struct ieee80211_channel[]); static void iwn_read_eeprom_channels(struct iwn_softc *, int, uint32_t); static struct iwn_eeprom_chan *iwn_find_eeprom_channel(struct iwn_softc *, struct ieee80211_channel *); static void iwn_getradiocaps(struct ieee80211com *, int, int *, struct ieee80211_channel[]); static int iwn_setregdomain(struct ieee80211com *, struct ieee80211_regdomain *, int, struct ieee80211_channel[]); static void iwn_read_eeprom_enhinfo(struct iwn_softc *); static struct ieee80211_node *iwn_node_alloc(struct ieee80211vap *, const uint8_t mac[IEEE80211_ADDR_LEN]); static void iwn_newassoc(struct ieee80211_node *, int); -static int iwn_media_change(struct ifnet *); static int iwn_newstate(struct ieee80211vap *, enum ieee80211_state, int); static void iwn_calib_timeout(void *); static void iwn_rx_phy(struct iwn_softc *, struct iwn_rx_desc *); static void iwn_rx_done(struct iwn_softc *, struct iwn_rx_desc *, struct iwn_rx_data *); static void iwn_agg_tx_complete(struct iwn_softc *, struct iwn_tx_ring *, int, int, int); static void iwn_rx_compressed_ba(struct iwn_softc *, struct iwn_rx_desc *); static void iwn5000_rx_calib_results(struct iwn_softc *, struct iwn_rx_desc *); static void iwn_rx_statistics(struct iwn_softc *, struct iwn_rx_desc *); static void iwn4965_tx_done(struct iwn_softc *, struct iwn_rx_desc *, struct iwn_rx_data *); static void iwn5000_tx_done(struct iwn_softc *, struct iwn_rx_desc *, struct iwn_rx_data *); static void iwn_adj_ampdu_ptr(struct iwn_softc *, struct iwn_tx_ring *); static void iwn_tx_done(struct iwn_softc *, struct iwn_rx_desc *, int, int, uint8_t); static int iwn_ampdu_check_bitmap(uint64_t, int, int); static int iwn_ampdu_index_check(struct iwn_softc *, struct iwn_tx_ring *, uint64_t, int, int); static void iwn_ampdu_tx_done(struct iwn_softc *, int, int, int, void *); static void iwn_cmd_done(struct iwn_softc *, struct iwn_rx_desc *); static void iwn_notif_intr(struct iwn_softc *); static void iwn_wakeup_intr(struct iwn_softc *); static void iwn_rftoggle_task(void *, int); static void iwn_fatal_intr(struct iwn_softc *); static void iwn_intr(void *); static void iwn4965_update_sched(struct iwn_softc *, int, int, uint8_t, uint16_t); static void iwn5000_update_sched(struct iwn_softc *, int, int, uint8_t, uint16_t); #ifdef notyet static void iwn5000_reset_sched(struct iwn_softc *, int, int); #endif static int iwn_tx_data(struct iwn_softc *, struct mbuf *, struct ieee80211_node *); static int iwn_tx_data_raw(struct iwn_softc *, struct mbuf *, struct ieee80211_node *, const struct ieee80211_bpf_params *params); static int iwn_tx_cmd(struct iwn_softc *, struct mbuf *, struct ieee80211_node *, struct iwn_tx_ring *); static void iwn_xmit_task(void *arg0, int pending); static int iwn_raw_xmit(struct ieee80211_node *, struct mbuf *, const struct ieee80211_bpf_params *); static int iwn_transmit(struct ieee80211com *, struct mbuf *); static void iwn_scan_timeout(void *); static void iwn_watchdog(void *); static int iwn_ioctl(struct ieee80211com *, u_long , void *); static void iwn_parent(struct ieee80211com *); static int iwn_cmd(struct iwn_softc *, int, const void *, int, int); static int iwn4965_add_node(struct iwn_softc *, struct iwn_node_info *, int); static int iwn5000_add_node(struct iwn_softc *, struct iwn_node_info *, int); static int iwn_set_link_quality(struct iwn_softc *, struct ieee80211_node *); static int iwn_add_broadcast_node(struct iwn_softc *, int); static int iwn_updateedca(struct ieee80211com *); static void iwn_set_promisc(struct iwn_softc *); static void iwn_update_promisc(struct ieee80211com *); static void iwn_update_mcast(struct ieee80211com *); static void iwn_set_led(struct iwn_softc *, uint8_t, uint8_t, uint8_t); static int iwn_set_critical_temp(struct iwn_softc *); static int iwn_set_timing(struct iwn_softc *, struct ieee80211_node *); static void iwn4965_power_calibration(struct iwn_softc *, int); static int iwn4965_set_txpower(struct iwn_softc *, int); static int iwn5000_set_txpower(struct iwn_softc *, int); static int iwn4965_get_rssi(struct iwn_softc *, struct iwn_rx_stat *); static int iwn5000_get_rssi(struct iwn_softc *, struct iwn_rx_stat *); static int iwn_get_noise(const struct iwn_rx_general_stats *); static int iwn4965_get_temperature(struct iwn_softc *); static int iwn5000_get_temperature(struct iwn_softc *); static int iwn_init_sensitivity(struct iwn_softc *); static void iwn_collect_noise(struct iwn_softc *, const struct iwn_rx_general_stats *); static int iwn4965_init_gains(struct iwn_softc *); static int iwn5000_init_gains(struct iwn_softc *); static int iwn4965_set_gains(struct iwn_softc *); static int iwn5000_set_gains(struct iwn_softc *); static void iwn_tune_sensitivity(struct iwn_softc *, const struct iwn_rx_stats *); static void iwn_save_stats_counters(struct iwn_softc *, const struct iwn_stats *); static int iwn_send_sensitivity(struct iwn_softc *); static void iwn_check_rx_recovery(struct iwn_softc *, struct iwn_stats *); static int iwn_set_pslevel(struct iwn_softc *, int, int, int); static int iwn_send_btcoex(struct iwn_softc *); static int iwn_send_advanced_btcoex(struct iwn_softc *); static int iwn5000_runtime_calib(struct iwn_softc *); static int iwn_check_bss_filter(struct iwn_softc *); static int iwn4965_rxon_assoc(struct iwn_softc *, int); static int iwn5000_rxon_assoc(struct iwn_softc *, int); static int iwn_send_rxon(struct iwn_softc *, int, int); static int iwn_config(struct iwn_softc *); static int iwn_scan(struct iwn_softc *, struct ieee80211vap *, struct ieee80211_scan_state *, struct ieee80211_channel *); static int iwn_auth(struct iwn_softc *, struct ieee80211vap *vap); static int iwn_run(struct iwn_softc *, struct ieee80211vap *vap); static int iwn_ampdu_rx_start(struct ieee80211_node *, struct ieee80211_rx_ampdu *, int, int, int); static void iwn_ampdu_rx_stop(struct ieee80211_node *, struct ieee80211_rx_ampdu *); static int iwn_addba_request(struct ieee80211_node *, struct ieee80211_tx_ampdu *, int, int, int); static int iwn_addba_response(struct ieee80211_node *, struct ieee80211_tx_ampdu *, int, int, int); static int iwn_ampdu_tx_start(struct ieee80211com *, struct ieee80211_node *, uint8_t); static void iwn_ampdu_tx_stop(struct ieee80211_node *, struct ieee80211_tx_ampdu *); static void iwn4965_ampdu_tx_start(struct iwn_softc *, struct ieee80211_node *, int, uint8_t, uint16_t); static void iwn4965_ampdu_tx_stop(struct iwn_softc *, int, uint8_t, uint16_t); static void iwn5000_ampdu_tx_start(struct iwn_softc *, struct ieee80211_node *, int, uint8_t, uint16_t); static void iwn5000_ampdu_tx_stop(struct iwn_softc *, int, uint8_t, uint16_t); static int iwn5000_query_calibration(struct iwn_softc *); static int iwn5000_send_calibration(struct iwn_softc *); static int iwn5000_send_wimax_coex(struct iwn_softc *); static int iwn5000_crystal_calib(struct iwn_softc *); static int iwn5000_temp_offset_calib(struct iwn_softc *); static int iwn5000_temp_offset_calibv2(struct iwn_softc *); static int iwn4965_post_alive(struct iwn_softc *); static int iwn5000_post_alive(struct iwn_softc *); static int iwn4965_load_bootcode(struct iwn_softc *, const uint8_t *, int); static int iwn4965_load_firmware(struct iwn_softc *); static int iwn5000_load_firmware_section(struct iwn_softc *, uint32_t, const uint8_t *, int); static int iwn5000_load_firmware(struct iwn_softc *); static int iwn_read_firmware_leg(struct iwn_softc *, struct iwn_fw_info *); static int iwn_read_firmware_tlv(struct iwn_softc *, struct iwn_fw_info *, uint16_t); static int iwn_read_firmware(struct iwn_softc *); static void iwn_unload_firmware(struct iwn_softc *); static int iwn_clock_wait(struct iwn_softc *); static int iwn_apm_init(struct iwn_softc *); static void iwn_apm_stop_master(struct iwn_softc *); static void iwn_apm_stop(struct iwn_softc *); static int iwn4965_nic_config(struct iwn_softc *); static int iwn5000_nic_config(struct iwn_softc *); static int iwn_hw_prepare(struct iwn_softc *); static int iwn_hw_init(struct iwn_softc *); static void iwn_hw_stop(struct iwn_softc *); static void iwn_panicked(void *, int); static int iwn_init_locked(struct iwn_softc *); static int iwn_init(struct iwn_softc *); static void iwn_stop_locked(struct iwn_softc *); static void iwn_stop(struct iwn_softc *); static void iwn_scan_start(struct ieee80211com *); static void iwn_scan_end(struct ieee80211com *); static void iwn_set_channel(struct ieee80211com *); static void iwn_scan_curchan(struct ieee80211_scan_state *, unsigned long); static void iwn_scan_mindwell(struct ieee80211_scan_state *); #ifdef IWN_DEBUG static char *iwn_get_csr_string(int); static void iwn_debug_register(struct iwn_softc *); #endif static device_method_t iwn_methods[] = { /* Device interface */ DEVMETHOD(device_probe, iwn_probe), DEVMETHOD(device_attach, iwn_attach), DEVMETHOD(device_detach, iwn_detach), DEVMETHOD(device_shutdown, iwn_shutdown), DEVMETHOD(device_suspend, iwn_suspend), DEVMETHOD(device_resume, iwn_resume), DEVMETHOD_END }; static driver_t iwn_driver = { "iwn", iwn_methods, sizeof(struct iwn_softc) }; static devclass_t iwn_devclass; DRIVER_MODULE(iwn, pci, iwn_driver, iwn_devclass, NULL, NULL); MODULE_PNP_INFO("U16:vendor;U16:device;D:#", pci, iwn, iwn_ident_table, nitems(iwn_ident_table) - 1); MODULE_VERSION(iwn, 1); MODULE_DEPEND(iwn, firmware, 1, 1, 1); MODULE_DEPEND(iwn, pci, 1, 1, 1); MODULE_DEPEND(iwn, wlan, 1, 1, 1); static d_ioctl_t iwn_cdev_ioctl; static d_open_t iwn_cdev_open; static d_close_t iwn_cdev_close; static struct cdevsw iwn_cdevsw = { .d_version = D_VERSION, .d_flags = 0, .d_open = iwn_cdev_open, .d_close = iwn_cdev_close, .d_ioctl = iwn_cdev_ioctl, .d_name = "iwn", }; static int iwn_probe(device_t dev) { const struct iwn_ident *ident; for (ident = iwn_ident_table; ident->name != NULL; ident++) { if (pci_get_vendor(dev) == ident->vendor && pci_get_device(dev) == ident->device) { device_set_desc(dev, ident->name); return (BUS_PROBE_DEFAULT); } } return ENXIO; } static int iwn_is_3stream_device(struct iwn_softc *sc) { /* XXX for now only 5300, until the 5350 can be tested */ if (sc->hw_type == IWN_HW_REV_TYPE_5300) return (1); return (0); } static int iwn_attach(device_t dev) { struct iwn_softc *sc = device_get_softc(dev); struct ieee80211com *ic; int i, error, rid; sc->sc_dev = dev; #ifdef IWN_DEBUG error = resource_int_value(device_get_name(sc->sc_dev), device_get_unit(sc->sc_dev), "debug", &(sc->sc_debug)); if (error != 0) sc->sc_debug = 0; #else sc->sc_debug = 0; #endif DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: begin\n",__func__); /* * Get the offset of the PCI Express Capability Structure in PCI * Configuration Space. */ error = pci_find_cap(dev, PCIY_EXPRESS, &sc->sc_cap_off); if (error != 0) { device_printf(dev, "PCIe capability structure not found!\n"); return error; } /* Clear device-specific "PCI retry timeout" register (41h). */ pci_write_config(dev, 0x41, 0, 1); /* Enable bus-mastering. */ pci_enable_busmaster(dev); rid = PCIR_BAR(0); sc->mem = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &rid, RF_ACTIVE); if (sc->mem == NULL) { device_printf(dev, "can't map mem space\n"); error = ENOMEM; return error; } sc->sc_st = rman_get_bustag(sc->mem); sc->sc_sh = rman_get_bushandle(sc->mem); i = 1; rid = 0; if (pci_alloc_msi(dev, &i) == 0) rid = 1; /* Install interrupt handler. */ sc->irq = bus_alloc_resource_any(dev, SYS_RES_IRQ, &rid, RF_ACTIVE | (rid != 0 ? 0 : RF_SHAREABLE)); if (sc->irq == NULL) { device_printf(dev, "can't map interrupt\n"); error = ENOMEM; goto fail; } IWN_LOCK_INIT(sc); /* Read hardware revision and attach. */ sc->hw_type = (IWN_READ(sc, IWN_HW_REV) >> IWN_HW_REV_TYPE_SHIFT) & IWN_HW_REV_TYPE_MASK; sc->subdevice_id = pci_get_subdevice(dev); /* * 4965 versus 5000 and later have different methods. * Let's set those up first. */ if (sc->hw_type == IWN_HW_REV_TYPE_4965) iwn4965_attach(sc, pci_get_device(dev)); else iwn5000_attach(sc, pci_get_device(dev)); /* * Next, let's setup the various parameters of each NIC. */ error = iwn_config_specific(sc, pci_get_device(dev)); if (error != 0) { device_printf(dev, "could not attach device, error %d\n", error); goto fail; } if ((error = iwn_hw_prepare(sc)) != 0) { device_printf(dev, "hardware not ready, error %d\n", error); goto fail; } /* Allocate DMA memory for firmware transfers. */ if ((error = iwn_alloc_fwmem(sc)) != 0) { device_printf(dev, "could not allocate memory for firmware, error %d\n", error); goto fail; } /* Allocate "Keep Warm" page. */ if ((error = iwn_alloc_kw(sc)) != 0) { device_printf(dev, "could not allocate keep warm page, error %d\n", error); goto fail; } /* Allocate ICT table for 5000 Series. */ if (sc->hw_type != IWN_HW_REV_TYPE_4965 && (error = iwn_alloc_ict(sc)) != 0) { device_printf(dev, "could not allocate ICT table, error %d\n", error); goto fail; } /* Allocate TX scheduler "rings". */ if ((error = iwn_alloc_sched(sc)) != 0) { device_printf(dev, "could not allocate TX scheduler rings, error %d\n", error); goto fail; } /* Allocate TX rings (16 on 4965AGN, 20 on >=5000). */ for (i = 0; i < sc->ntxqs; i++) { if ((error = iwn_alloc_tx_ring(sc, &sc->txq[i], i)) != 0) { device_printf(dev, "could not allocate TX ring %d, error %d\n", i, error); goto fail; } } /* Allocate RX ring. */ if ((error = iwn_alloc_rx_ring(sc, &sc->rxq)) != 0) { device_printf(dev, "could not allocate RX ring, error %d\n", error); goto fail; } /* Clear pending interrupts. */ IWN_WRITE(sc, IWN_INT, 0xffffffff); ic = &sc->sc_ic; ic->ic_softc = sc; ic->ic_name = device_get_nameunit(dev); ic->ic_phytype = IEEE80211_T_OFDM; /* not only, but not used */ ic->ic_opmode = IEEE80211_M_STA; /* default to BSS mode */ /* Set device capabilities. */ ic->ic_caps = IEEE80211_C_STA /* station mode supported */ | IEEE80211_C_MONITOR /* monitor mode supported */ #if 0 | IEEE80211_C_BGSCAN /* background scanning */ #endif | IEEE80211_C_TXPMGT /* tx power management */ | IEEE80211_C_SHSLOT /* short slot time supported */ | IEEE80211_C_WPA | IEEE80211_C_SHPREAMBLE /* short preamble supported */ #if 0 | IEEE80211_C_IBSS /* ibss/adhoc mode */ #endif | IEEE80211_C_WME /* WME */ | IEEE80211_C_PMGT /* Station-side power mgmt */ ; /* Read MAC address, channels, etc from EEPROM. */ if ((error = iwn_read_eeprom(sc, ic->ic_macaddr)) != 0) { device_printf(dev, "could not read EEPROM, error %d\n", error); goto fail; } /* Count the number of available chains. */ sc->ntxchains = ((sc->txchainmask >> 2) & 1) + ((sc->txchainmask >> 1) & 1) + ((sc->txchainmask >> 0) & 1); sc->nrxchains = ((sc->rxchainmask >> 2) & 1) + ((sc->rxchainmask >> 1) & 1) + ((sc->rxchainmask >> 0) & 1); if (bootverbose) { device_printf(dev, "MIMO %dT%dR, %.4s, address %6D\n", sc->ntxchains, sc->nrxchains, sc->eeprom_domain, ic->ic_macaddr, ":"); } if (sc->sc_flags & IWN_FLAG_HAS_11N) { ic->ic_rxstream = sc->nrxchains; ic->ic_txstream = sc->ntxchains; /* * Some of the 3 antenna devices (ie, the 4965) only supports * 2x2 operation. So correct the number of streams if * it's not a 3-stream device. */ if (! iwn_is_3stream_device(sc)) { if (ic->ic_rxstream > 2) ic->ic_rxstream = 2; if (ic->ic_txstream > 2) ic->ic_txstream = 2; } ic->ic_htcaps = IEEE80211_HTCAP_SMPS_OFF /* SMPS mode disabled */ | IEEE80211_HTCAP_SHORTGI20 /* short GI in 20MHz */ | IEEE80211_HTCAP_CHWIDTH40 /* 40MHz channel width*/ | IEEE80211_HTCAP_SHORTGI40 /* short GI in 40MHz */ #ifdef notyet | IEEE80211_HTCAP_GREENFIELD #if IWN_RBUF_SIZE == 8192 | IEEE80211_HTCAP_MAXAMSDU_7935 /* max A-MSDU length */ #else | IEEE80211_HTCAP_MAXAMSDU_3839 /* max A-MSDU length */ #endif #endif /* s/w capabilities */ | IEEE80211_HTC_HT /* HT operation */ | IEEE80211_HTC_AMPDU /* tx A-MPDU */ #ifdef notyet | IEEE80211_HTC_AMSDU /* tx A-MSDU */ #endif ; } ieee80211_ifattach(ic); ic->ic_vap_create = iwn_vap_create; ic->ic_ioctl = iwn_ioctl; ic->ic_parent = iwn_parent; ic->ic_vap_delete = iwn_vap_delete; ic->ic_transmit = iwn_transmit; ic->ic_raw_xmit = iwn_raw_xmit; ic->ic_node_alloc = iwn_node_alloc; sc->sc_ampdu_rx_start = ic->ic_ampdu_rx_start; ic->ic_ampdu_rx_start = iwn_ampdu_rx_start; sc->sc_ampdu_rx_stop = ic->ic_ampdu_rx_stop; ic->ic_ampdu_rx_stop = iwn_ampdu_rx_stop; sc->sc_addba_request = ic->ic_addba_request; ic->ic_addba_request = iwn_addba_request; sc->sc_addba_response = ic->ic_addba_response; ic->ic_addba_response = iwn_addba_response; sc->sc_addba_stop = ic->ic_addba_stop; ic->ic_addba_stop = iwn_ampdu_tx_stop; ic->ic_newassoc = iwn_newassoc; ic->ic_wme.wme_update = iwn_updateedca; ic->ic_update_promisc = iwn_update_promisc; ic->ic_update_mcast = iwn_update_mcast; ic->ic_scan_start = iwn_scan_start; ic->ic_scan_end = iwn_scan_end; ic->ic_set_channel = iwn_set_channel; ic->ic_scan_curchan = iwn_scan_curchan; ic->ic_scan_mindwell = iwn_scan_mindwell; ic->ic_getradiocaps = iwn_getradiocaps; ic->ic_setregdomain = iwn_setregdomain; iwn_radiotap_attach(sc); callout_init_mtx(&sc->calib_to, &sc->sc_mtx, 0); callout_init_mtx(&sc->scan_timeout, &sc->sc_mtx, 0); callout_init_mtx(&sc->watchdog_to, &sc->sc_mtx, 0); TASK_INIT(&sc->sc_rftoggle_task, 0, iwn_rftoggle_task, sc); TASK_INIT(&sc->sc_panic_task, 0, iwn_panicked, sc); TASK_INIT(&sc->sc_xmit_task, 0, iwn_xmit_task, sc); mbufq_init(&sc->sc_xmit_queue, 1024); sc->sc_tq = taskqueue_create("iwn_taskq", M_WAITOK, taskqueue_thread_enqueue, &sc->sc_tq); error = taskqueue_start_threads(&sc->sc_tq, 1, 0, "iwn_taskq"); if (error != 0) { device_printf(dev, "can't start threads, error %d\n", error); goto fail; } iwn_sysctlattach(sc); /* * Hook our interrupt after all initialization is complete. */ error = bus_setup_intr(dev, sc->irq, INTR_TYPE_NET | INTR_MPSAFE, NULL, iwn_intr, sc, &sc->sc_ih); if (error != 0) { device_printf(dev, "can't establish interrupt, error %d\n", error); goto fail; } #if 0 device_printf(sc->sc_dev, "%s: rx_stats=%d, rx_stats_bt=%d\n", __func__, sizeof(struct iwn_stats), sizeof(struct iwn_stats_bt)); #endif if (bootverbose) ieee80211_announce(ic); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); /* Add debug ioctl right at the end */ sc->sc_cdev = make_dev(&iwn_cdevsw, device_get_unit(dev), UID_ROOT, GID_WHEEL, 0600, "%s", device_get_nameunit(dev)); if (sc->sc_cdev == NULL) { device_printf(dev, "failed to create debug character device\n"); } else { sc->sc_cdev->si_drv1 = sc; } return 0; fail: iwn_detach(dev); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end in error\n",__func__); return error; } /* * Define specific configuration based on device id and subdevice id * pid : PCI device id */ static int iwn_config_specific(struct iwn_softc *sc, uint16_t pid) { switch (pid) { /* 4965 series */ case IWN_DID_4965_1: case IWN_DID_4965_2: case IWN_DID_4965_3: case IWN_DID_4965_4: sc->base_params = &iwn4965_base_params; sc->limits = &iwn4965_sensitivity_limits; sc->fwname = "iwn4965fw"; /* Override chains masks, ROM is known to be broken. */ sc->txchainmask = IWN_ANT_AB; sc->rxchainmask = IWN_ANT_ABC; /* Enable normal btcoex */ sc->sc_flags |= IWN_FLAG_BTCOEX; break; /* 1000 Series */ case IWN_DID_1000_1: case IWN_DID_1000_2: switch(sc->subdevice_id) { case IWN_SDID_1000_1: case IWN_SDID_1000_2: case IWN_SDID_1000_3: case IWN_SDID_1000_4: case IWN_SDID_1000_5: case IWN_SDID_1000_6: case IWN_SDID_1000_7: case IWN_SDID_1000_8: case IWN_SDID_1000_9: case IWN_SDID_1000_10: case IWN_SDID_1000_11: case IWN_SDID_1000_12: sc->limits = &iwn1000_sensitivity_limits; sc->base_params = &iwn1000_base_params; sc->fwname = "iwn1000fw"; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 6x00 Series */ case IWN_DID_6x00_2: case IWN_DID_6x00_4: case IWN_DID_6x00_1: case IWN_DID_6x00_3: sc->fwname = "iwn6000fw"; sc->limits = &iwn6000_sensitivity_limits; switch(sc->subdevice_id) { case IWN_SDID_6x00_1: case IWN_SDID_6x00_2: case IWN_SDID_6x00_8: //iwl6000_3agn_cfg sc->base_params = &iwn_6000_base_params; break; case IWN_SDID_6x00_3: case IWN_SDID_6x00_6: case IWN_SDID_6x00_9: ////iwl6000i_2agn case IWN_SDID_6x00_4: case IWN_SDID_6x00_7: case IWN_SDID_6x00_10: //iwl6000i_2abg_cfg case IWN_SDID_6x00_5: //iwl6000i_2bg_cfg sc->base_params = &iwn_6000i_base_params; sc->sc_flags |= IWN_FLAG_INTERNAL_PA; sc->txchainmask = IWN_ANT_BC; sc->rxchainmask = IWN_ANT_BC; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 6x05 Series */ case IWN_DID_6x05_1: case IWN_DID_6x05_2: switch(sc->subdevice_id) { case IWN_SDID_6x05_1: case IWN_SDID_6x05_4: case IWN_SDID_6x05_6: //iwl6005_2agn_cfg case IWN_SDID_6x05_2: case IWN_SDID_6x05_5: case IWN_SDID_6x05_7: //iwl6005_2abg_cfg case IWN_SDID_6x05_3: //iwl6005_2bg_cfg case IWN_SDID_6x05_8: case IWN_SDID_6x05_9: //iwl6005_2agn_sff_cfg case IWN_SDID_6x05_10: //iwl6005_2agn_d_cfg case IWN_SDID_6x05_11: //iwl6005_2agn_mow1_cfg case IWN_SDID_6x05_12: //iwl6005_2agn_mow2_cfg sc->fwname = "iwn6000g2afw"; sc->limits = &iwn6000_sensitivity_limits; sc->base_params = &iwn_6000g2_base_params; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 6x35 Series */ case IWN_DID_6035_1: case IWN_DID_6035_2: switch(sc->subdevice_id) { case IWN_SDID_6035_1: case IWN_SDID_6035_2: case IWN_SDID_6035_3: case IWN_SDID_6035_4: case IWN_SDID_6035_5: sc->fwname = "iwn6000g2bfw"; sc->limits = &iwn6235_sensitivity_limits; sc->base_params = &iwn_6235_base_params; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 6x50 WiFi/WiMax Series */ case IWN_DID_6050_1: case IWN_DID_6050_2: switch(sc->subdevice_id) { case IWN_SDID_6050_1: case IWN_SDID_6050_3: case IWN_SDID_6050_5: //iwl6050_2agn_cfg case IWN_SDID_6050_2: case IWN_SDID_6050_4: case IWN_SDID_6050_6: //iwl6050_2abg_cfg sc->fwname = "iwn6050fw"; sc->txchainmask = IWN_ANT_AB; sc->rxchainmask = IWN_ANT_AB; sc->limits = &iwn6000_sensitivity_limits; sc->base_params = &iwn_6050_base_params; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 6150 WiFi/WiMax Series */ case IWN_DID_6150_1: case IWN_DID_6150_2: switch(sc->subdevice_id) { case IWN_SDID_6150_1: case IWN_SDID_6150_3: case IWN_SDID_6150_5: // iwl6150_bgn_cfg case IWN_SDID_6150_2: case IWN_SDID_6150_4: case IWN_SDID_6150_6: //iwl6150_bg_cfg sc->fwname = "iwn6050fw"; sc->limits = &iwn6000_sensitivity_limits; sc->base_params = &iwn_6150_base_params; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 6030 Series and 1030 Series */ case IWN_DID_x030_1: case IWN_DID_x030_2: case IWN_DID_x030_3: case IWN_DID_x030_4: switch(sc->subdevice_id) { case IWN_SDID_x030_1: case IWN_SDID_x030_3: case IWN_SDID_x030_5: // iwl1030_bgn_cfg case IWN_SDID_x030_2: case IWN_SDID_x030_4: case IWN_SDID_x030_6: //iwl1030_bg_cfg case IWN_SDID_x030_7: case IWN_SDID_x030_10: case IWN_SDID_x030_14: //iwl6030_2agn_cfg case IWN_SDID_x030_8: case IWN_SDID_x030_11: case IWN_SDID_x030_15: // iwl6030_2bgn_cfg case IWN_SDID_x030_9: case IWN_SDID_x030_12: case IWN_SDID_x030_16: // iwl6030_2abg_cfg case IWN_SDID_x030_13: //iwl6030_2bg_cfg sc->fwname = "iwn6000g2bfw"; sc->limits = &iwn6000_sensitivity_limits; sc->base_params = &iwn_6000g2b_base_params; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 130 Series WiFi */ /* XXX: This series will need adjustment for rate. * see rx_with_siso_diversity in linux kernel */ case IWN_DID_130_1: case IWN_DID_130_2: switch(sc->subdevice_id) { case IWN_SDID_130_1: case IWN_SDID_130_3: case IWN_SDID_130_5: //iwl130_bgn_cfg case IWN_SDID_130_2: case IWN_SDID_130_4: case IWN_SDID_130_6: //iwl130_bg_cfg sc->fwname = "iwn6000g2bfw"; sc->limits = &iwn6000_sensitivity_limits; sc->base_params = &iwn_6000g2b_base_params; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 100 Series WiFi */ case IWN_DID_100_1: case IWN_DID_100_2: switch(sc->subdevice_id) { case IWN_SDID_100_1: case IWN_SDID_100_2: case IWN_SDID_100_3: case IWN_SDID_100_4: case IWN_SDID_100_5: case IWN_SDID_100_6: sc->limits = &iwn1000_sensitivity_limits; sc->base_params = &iwn1000_base_params; sc->fwname = "iwn100fw"; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 105 Series */ /* XXX: This series will need adjustment for rate. * see rx_with_siso_diversity in linux kernel */ case IWN_DID_105_1: case IWN_DID_105_2: switch(sc->subdevice_id) { case IWN_SDID_105_1: case IWN_SDID_105_2: case IWN_SDID_105_3: //iwl105_bgn_cfg case IWN_SDID_105_4: //iwl105_bgn_d_cfg sc->limits = &iwn2030_sensitivity_limits; sc->base_params = &iwn2000_base_params; sc->fwname = "iwn105fw"; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 135 Series */ /* XXX: This series will need adjustment for rate. * see rx_with_siso_diversity in linux kernel */ case IWN_DID_135_1: case IWN_DID_135_2: switch(sc->subdevice_id) { case IWN_SDID_135_1: case IWN_SDID_135_2: case IWN_SDID_135_3: sc->limits = &iwn2030_sensitivity_limits; sc->base_params = &iwn2030_base_params; sc->fwname = "iwn135fw"; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 2x00 Series */ case IWN_DID_2x00_1: case IWN_DID_2x00_2: switch(sc->subdevice_id) { case IWN_SDID_2x00_1: case IWN_SDID_2x00_2: case IWN_SDID_2x00_3: //iwl2000_2bgn_cfg case IWN_SDID_2x00_4: //iwl2000_2bgn_d_cfg sc->limits = &iwn2030_sensitivity_limits; sc->base_params = &iwn2000_base_params; sc->fwname = "iwn2000fw"; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice) \n", pid, sc->subdevice_id, sc->hw_type); return ENOTSUP; } break; /* 2x30 Series */ case IWN_DID_2x30_1: case IWN_DID_2x30_2: switch(sc->subdevice_id) { case IWN_SDID_2x30_1: case IWN_SDID_2x30_3: case IWN_SDID_2x30_5: //iwl100_bgn_cfg case IWN_SDID_2x30_2: case IWN_SDID_2x30_4: case IWN_SDID_2x30_6: //iwl100_bg_cfg sc->limits = &iwn2030_sensitivity_limits; sc->base_params = &iwn2030_base_params; sc->fwname = "iwn2030fw"; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 5x00 Series */ case IWN_DID_5x00_1: case IWN_DID_5x00_2: case IWN_DID_5x00_3: case IWN_DID_5x00_4: sc->limits = &iwn5000_sensitivity_limits; sc->base_params = &iwn5000_base_params; sc->fwname = "iwn5000fw"; switch(sc->subdevice_id) { case IWN_SDID_5x00_1: case IWN_SDID_5x00_2: case IWN_SDID_5x00_3: case IWN_SDID_5x00_4: case IWN_SDID_5x00_9: case IWN_SDID_5x00_10: case IWN_SDID_5x00_11: case IWN_SDID_5x00_12: case IWN_SDID_5x00_17: case IWN_SDID_5x00_18: case IWN_SDID_5x00_19: case IWN_SDID_5x00_20: //iwl5100_agn_cfg sc->txchainmask = IWN_ANT_B; sc->rxchainmask = IWN_ANT_AB; break; case IWN_SDID_5x00_5: case IWN_SDID_5x00_6: case IWN_SDID_5x00_13: case IWN_SDID_5x00_14: case IWN_SDID_5x00_21: case IWN_SDID_5x00_22: //iwl5100_bgn_cfg sc->txchainmask = IWN_ANT_B; sc->rxchainmask = IWN_ANT_AB; break; case IWN_SDID_5x00_7: case IWN_SDID_5x00_8: case IWN_SDID_5x00_15: case IWN_SDID_5x00_16: case IWN_SDID_5x00_23: case IWN_SDID_5x00_24: //iwl5100_abg_cfg sc->txchainmask = IWN_ANT_B; sc->rxchainmask = IWN_ANT_AB; break; case IWN_SDID_5x00_25: case IWN_SDID_5x00_26: case IWN_SDID_5x00_27: case IWN_SDID_5x00_28: case IWN_SDID_5x00_29: case IWN_SDID_5x00_30: case IWN_SDID_5x00_31: case IWN_SDID_5x00_32: case IWN_SDID_5x00_33: case IWN_SDID_5x00_34: case IWN_SDID_5x00_35: case IWN_SDID_5x00_36: //iwl5300_agn_cfg sc->txchainmask = IWN_ANT_ABC; sc->rxchainmask = IWN_ANT_ABC; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; /* 5x50 Series */ case IWN_DID_5x50_1: case IWN_DID_5x50_2: case IWN_DID_5x50_3: case IWN_DID_5x50_4: sc->limits = &iwn5000_sensitivity_limits; sc->base_params = &iwn5000_base_params; sc->fwname = "iwn5000fw"; switch(sc->subdevice_id) { case IWN_SDID_5x50_1: case IWN_SDID_5x50_2: case IWN_SDID_5x50_3: //iwl5350_agn_cfg sc->limits = &iwn5000_sensitivity_limits; sc->base_params = &iwn5000_base_params; sc->fwname = "iwn5000fw"; break; case IWN_SDID_5x50_4: case IWN_SDID_5x50_5: case IWN_SDID_5x50_8: case IWN_SDID_5x50_9: case IWN_SDID_5x50_10: case IWN_SDID_5x50_11: //iwl5150_agn_cfg case IWN_SDID_5x50_6: case IWN_SDID_5x50_7: case IWN_SDID_5x50_12: case IWN_SDID_5x50_13: //iwl5150_abg_cfg sc->limits = &iwn5000_sensitivity_limits; sc->fwname = "iwn5150fw"; sc->base_params = &iwn_5x50_base_params; break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id :" "0x%04x rev %d not supported (subdevice)\n", pid, sc->subdevice_id,sc->hw_type); return ENOTSUP; } break; default: device_printf(sc->sc_dev, "adapter type id : 0x%04x sub id : 0x%04x" "rev 0x%08x not supported (device)\n", pid, sc->subdevice_id, sc->hw_type); return ENOTSUP; } return 0; } static void iwn4965_attach(struct iwn_softc *sc, uint16_t pid) { struct iwn_ops *ops = &sc->ops; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); ops->load_firmware = iwn4965_load_firmware; ops->read_eeprom = iwn4965_read_eeprom; ops->post_alive = iwn4965_post_alive; ops->nic_config = iwn4965_nic_config; ops->update_sched = iwn4965_update_sched; ops->get_temperature = iwn4965_get_temperature; ops->get_rssi = iwn4965_get_rssi; ops->set_txpower = iwn4965_set_txpower; ops->init_gains = iwn4965_init_gains; ops->set_gains = iwn4965_set_gains; ops->rxon_assoc = iwn4965_rxon_assoc; ops->add_node = iwn4965_add_node; ops->tx_done = iwn4965_tx_done; ops->ampdu_tx_start = iwn4965_ampdu_tx_start; ops->ampdu_tx_stop = iwn4965_ampdu_tx_stop; sc->ntxqs = IWN4965_NTXQUEUES; sc->firstaggqueue = IWN4965_FIRSTAGGQUEUE; sc->ndmachnls = IWN4965_NDMACHNLS; sc->broadcast_id = IWN4965_ID_BROADCAST; sc->rxonsz = IWN4965_RXONSZ; sc->schedsz = IWN4965_SCHEDSZ; sc->fw_text_maxsz = IWN4965_FW_TEXT_MAXSZ; sc->fw_data_maxsz = IWN4965_FW_DATA_MAXSZ; sc->fwsz = IWN4965_FWSZ; sc->sched_txfact_addr = IWN4965_SCHED_TXFACT; sc->limits = &iwn4965_sensitivity_limits; sc->fwname = "iwn4965fw"; /* Override chains masks, ROM is known to be broken. */ sc->txchainmask = IWN_ANT_AB; sc->rxchainmask = IWN_ANT_ABC; /* Enable normal btcoex */ sc->sc_flags |= IWN_FLAG_BTCOEX; DPRINTF(sc, IWN_DEBUG_TRACE, "%s: end\n",__func__); } static void iwn5000_attach(struct iwn_softc *sc, uint16_t pid) { struct iwn_ops *ops = &sc->ops; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); ops->load_firmware = iwn5000_load_firmware; ops->read_eeprom = iwn5000_read_eeprom; ops->post_alive = iwn5000_post_alive; ops->nic_config = iwn5000_nic_config; ops->update_sched = iwn5000_update_sched; ops->get_temperature = iwn5000_get_temperature; ops->get_rssi = iwn5000_get_rssi; ops->set_txpower = iwn5000_set_txpower; ops->init_gains = iwn5000_init_gains; ops->set_gains = iwn5000_set_gains; ops->rxon_assoc = iwn5000_rxon_assoc; ops->add_node = iwn5000_add_node; ops->tx_done = iwn5000_tx_done; ops->ampdu_tx_start = iwn5000_ampdu_tx_start; ops->ampdu_tx_stop = iwn5000_ampdu_tx_stop; sc->ntxqs = IWN5000_NTXQUEUES; sc->firstaggqueue = IWN5000_FIRSTAGGQUEUE; sc->ndmachnls = IWN5000_NDMACHNLS; sc->broadcast_id = IWN5000_ID_BROADCAST; sc->rxonsz = IWN5000_RXONSZ; sc->schedsz = IWN5000_SCHEDSZ; sc->fw_text_maxsz = IWN5000_FW_TEXT_MAXSZ; sc->fw_data_maxsz = IWN5000_FW_DATA_MAXSZ; sc->fwsz = IWN5000_FWSZ; sc->sched_txfact_addr = IWN5000_SCHED_TXFACT; sc->reset_noise_gain = IWN5000_PHY_CALIB_RESET_NOISE_GAIN; sc->noise_gain = IWN5000_PHY_CALIB_NOISE_GAIN; DPRINTF(sc, IWN_DEBUG_TRACE, "%s: end\n",__func__); } /* * Attach the interface to 802.11 radiotap. */ static void iwn_radiotap_attach(struct iwn_softc *sc) { DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); ieee80211_radiotap_attach(&sc->sc_ic, &sc->sc_txtap.wt_ihdr, sizeof(sc->sc_txtap), IWN_TX_RADIOTAP_PRESENT, &sc->sc_rxtap.wr_ihdr, sizeof(sc->sc_rxtap), IWN_RX_RADIOTAP_PRESENT); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end\n", __func__); } static void iwn_sysctlattach(struct iwn_softc *sc) { #ifdef IWN_DEBUG struct sysctl_ctx_list *ctx = device_get_sysctl_ctx(sc->sc_dev); struct sysctl_oid *tree = device_get_sysctl_tree(sc->sc_dev); SYSCTL_ADD_INT(ctx, SYSCTL_CHILDREN(tree), OID_AUTO, "debug", CTLFLAG_RW, &sc->sc_debug, sc->sc_debug, "control debugging printfs"); #endif } static struct ieee80211vap * iwn_vap_create(struct ieee80211com *ic, const char name[IFNAMSIZ], int unit, enum ieee80211_opmode opmode, int flags, const uint8_t bssid[IEEE80211_ADDR_LEN], const uint8_t mac[IEEE80211_ADDR_LEN]) { struct iwn_softc *sc = ic->ic_softc; struct iwn_vap *ivp; struct ieee80211vap *vap; if (!TAILQ_EMPTY(&ic->ic_vaps)) /* only one at a time */ return NULL; ivp = malloc(sizeof(struct iwn_vap), M_80211_VAP, M_WAITOK | M_ZERO); vap = &ivp->iv_vap; ieee80211_vap_setup(ic, vap, name, unit, opmode, flags, bssid); ivp->ctx = IWN_RXON_BSS_CTX; vap->iv_bmissthreshold = 10; /* override default */ /* Override with driver methods. */ ivp->iv_newstate = vap->iv_newstate; vap->iv_newstate = iwn_newstate; sc->ivap[IWN_RXON_BSS_CTX] = vap; vap->iv_ampdu_rxmax = IEEE80211_HTCAP_MAXRXAMPDU_64K; vap->iv_ampdu_density = IEEE80211_HTCAP_MPDUDENSITY_4; /* 4uS */ ieee80211_ratectl_init(vap); /* Complete setup. */ - ieee80211_vap_attach(vap, iwn_media_change, ieee80211_media_status, - mac); + ieee80211_vap_attach(vap, ieee80211_media_change, + ieee80211_media_status, mac); ic->ic_opmode = opmode; return vap; } static void iwn_vap_delete(struct ieee80211vap *vap) { struct iwn_vap *ivp = IWN_VAP(vap); ieee80211_ratectl_deinit(vap); ieee80211_vap_detach(vap); free(ivp, M_80211_VAP); } static void iwn_xmit_queue_drain(struct iwn_softc *sc) { struct mbuf *m; struct ieee80211_node *ni; IWN_LOCK_ASSERT(sc); while ((m = mbufq_dequeue(&sc->sc_xmit_queue)) != NULL) { ni = (struct ieee80211_node *)m->m_pkthdr.rcvif; ieee80211_free_node(ni); m_freem(m); } } static int iwn_xmit_queue_enqueue(struct iwn_softc *sc, struct mbuf *m) { IWN_LOCK_ASSERT(sc); return (mbufq_enqueue(&sc->sc_xmit_queue, m)); } static int iwn_detach(device_t dev) { struct iwn_softc *sc = device_get_softc(dev); int qid; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); if (sc->sc_ic.ic_softc != NULL) { /* Free the mbuf queue and node references */ IWN_LOCK(sc); iwn_xmit_queue_drain(sc); IWN_UNLOCK(sc); iwn_stop(sc); taskqueue_drain_all(sc->sc_tq); taskqueue_free(sc->sc_tq); callout_drain(&sc->watchdog_to); callout_drain(&sc->scan_timeout); callout_drain(&sc->calib_to); ieee80211_ifdetach(&sc->sc_ic); } /* Uninstall interrupt handler. */ if (sc->irq != NULL) { bus_teardown_intr(dev, sc->irq, sc->sc_ih); bus_release_resource(dev, SYS_RES_IRQ, rman_get_rid(sc->irq), sc->irq); pci_release_msi(dev); } /* Free DMA resources. */ iwn_free_rx_ring(sc, &sc->rxq); for (qid = 0; qid < sc->ntxqs; qid++) iwn_free_tx_ring(sc, &sc->txq[qid]); iwn_free_sched(sc); iwn_free_kw(sc); if (sc->ict != NULL) iwn_free_ict(sc); iwn_free_fwmem(sc); if (sc->mem != NULL) bus_release_resource(dev, SYS_RES_MEMORY, rman_get_rid(sc->mem), sc->mem); if (sc->sc_cdev) { destroy_dev(sc->sc_cdev); sc->sc_cdev = NULL; } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n", __func__); IWN_LOCK_DESTROY(sc); return 0; } static int iwn_shutdown(device_t dev) { struct iwn_softc *sc = device_get_softc(dev); iwn_stop(sc); return 0; } static int iwn_suspend(device_t dev) { struct iwn_softc *sc = device_get_softc(dev); ieee80211_suspend_all(&sc->sc_ic); return 0; } static int iwn_resume(device_t dev) { struct iwn_softc *sc = device_get_softc(dev); /* Clear device-specific "PCI retry timeout" register (41h). */ pci_write_config(dev, 0x41, 0, 1); ieee80211_resume_all(&sc->sc_ic); return 0; } static int iwn_nic_lock(struct iwn_softc *sc) { int ntries; /* Request exclusive access to NIC. */ IWN_SETBITS(sc, IWN_GP_CNTRL, IWN_GP_CNTRL_MAC_ACCESS_REQ); /* Spin until we actually get the lock. */ for (ntries = 0; ntries < 1000; ntries++) { if ((IWN_READ(sc, IWN_GP_CNTRL) & (IWN_GP_CNTRL_MAC_ACCESS_ENA | IWN_GP_CNTRL_SLEEP)) == IWN_GP_CNTRL_MAC_ACCESS_ENA) return 0; DELAY(10); } return ETIMEDOUT; } static __inline void iwn_nic_unlock(struct iwn_softc *sc) { IWN_CLRBITS(sc, IWN_GP_CNTRL, IWN_GP_CNTRL_MAC_ACCESS_REQ); } static __inline uint32_t iwn_prph_read(struct iwn_softc *sc, uint32_t addr) { IWN_WRITE(sc, IWN_PRPH_RADDR, IWN_PRPH_DWORD | addr); IWN_BARRIER_READ_WRITE(sc); return IWN_READ(sc, IWN_PRPH_RDATA); } static __inline void iwn_prph_write(struct iwn_softc *sc, uint32_t addr, uint32_t data) { IWN_WRITE(sc, IWN_PRPH_WADDR, IWN_PRPH_DWORD | addr); IWN_BARRIER_WRITE(sc); IWN_WRITE(sc, IWN_PRPH_WDATA, data); } static __inline void iwn_prph_setbits(struct iwn_softc *sc, uint32_t addr, uint32_t mask) { iwn_prph_write(sc, addr, iwn_prph_read(sc, addr) | mask); } static __inline void iwn_prph_clrbits(struct iwn_softc *sc, uint32_t addr, uint32_t mask) { iwn_prph_write(sc, addr, iwn_prph_read(sc, addr) & ~mask); } static __inline void iwn_prph_write_region_4(struct iwn_softc *sc, uint32_t addr, const uint32_t *data, int count) { for (; count > 0; count--, data++, addr += 4) iwn_prph_write(sc, addr, *data); } static __inline uint32_t iwn_mem_read(struct iwn_softc *sc, uint32_t addr) { IWN_WRITE(sc, IWN_MEM_RADDR, addr); IWN_BARRIER_READ_WRITE(sc); return IWN_READ(sc, IWN_MEM_RDATA); } static __inline void iwn_mem_write(struct iwn_softc *sc, uint32_t addr, uint32_t data) { IWN_WRITE(sc, IWN_MEM_WADDR, addr); IWN_BARRIER_WRITE(sc); IWN_WRITE(sc, IWN_MEM_WDATA, data); } static __inline void iwn_mem_write_2(struct iwn_softc *sc, uint32_t addr, uint16_t data) { uint32_t tmp; tmp = iwn_mem_read(sc, addr & ~3); if (addr & 3) tmp = (tmp & 0x0000ffff) | data << 16; else tmp = (tmp & 0xffff0000) | data; iwn_mem_write(sc, addr & ~3, tmp); } static __inline void iwn_mem_read_region_4(struct iwn_softc *sc, uint32_t addr, uint32_t *data, int count) { for (; count > 0; count--, addr += 4) *data++ = iwn_mem_read(sc, addr); } static __inline void iwn_mem_set_region_4(struct iwn_softc *sc, uint32_t addr, uint32_t val, int count) { for (; count > 0; count--, addr += 4) iwn_mem_write(sc, addr, val); } static int iwn_eeprom_lock(struct iwn_softc *sc) { int i, ntries; for (i = 0; i < 100; i++) { /* Request exclusive access to EEPROM. */ IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_EEPROM_LOCKED); /* Spin until we actually get the lock. */ for (ntries = 0; ntries < 100; ntries++) { if (IWN_READ(sc, IWN_HW_IF_CONFIG) & IWN_HW_IF_CONFIG_EEPROM_LOCKED) return 0; DELAY(10); } } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end timeout\n", __func__); return ETIMEDOUT; } static __inline void iwn_eeprom_unlock(struct iwn_softc *sc) { IWN_CLRBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_EEPROM_LOCKED); } /* * Initialize access by host to One Time Programmable ROM. * NB: This kind of ROM can be found on 1000 or 6000 Series only. */ static int iwn_init_otprom(struct iwn_softc *sc) { uint16_t prev, base, next; int count, error; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Wait for clock stabilization before accessing prph. */ if ((error = iwn_clock_wait(sc)) != 0) return error; if ((error = iwn_nic_lock(sc)) != 0) return error; iwn_prph_setbits(sc, IWN_APMG_PS, IWN_APMG_PS_RESET_REQ); DELAY(5); iwn_prph_clrbits(sc, IWN_APMG_PS, IWN_APMG_PS_RESET_REQ); iwn_nic_unlock(sc); /* Set auto clock gate disable bit for HW with OTP shadow RAM. */ if (sc->base_params->shadow_ram_support) { IWN_SETBITS(sc, IWN_DBG_LINK_PWR_MGMT, IWN_RESET_LINK_PWR_MGMT_DIS); } IWN_CLRBITS(sc, IWN_EEPROM_GP, IWN_EEPROM_GP_IF_OWNER); /* Clear ECC status. */ IWN_SETBITS(sc, IWN_OTP_GP, IWN_OTP_GP_ECC_CORR_STTS | IWN_OTP_GP_ECC_UNCORR_STTS); /* * Find the block before last block (contains the EEPROM image) * for HW without OTP shadow RAM. */ if (! sc->base_params->shadow_ram_support) { /* Switch to absolute addressing mode. */ IWN_CLRBITS(sc, IWN_OTP_GP, IWN_OTP_GP_RELATIVE_ACCESS); base = prev = 0; for (count = 0; count < sc->base_params->max_ll_items; count++) { error = iwn_read_prom_data(sc, base, &next, 2); if (error != 0) return error; if (next == 0) /* End of linked-list. */ break; prev = base; base = le16toh(next); } if (count == 0 || count == sc->base_params->max_ll_items) return EIO; /* Skip "next" word. */ sc->prom_base = prev + 1; } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end\n", __func__); return 0; } static int iwn_read_prom_data(struct iwn_softc *sc, uint32_t addr, void *data, int count) { uint8_t *out = data; uint32_t val, tmp; int ntries; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); addr += sc->prom_base; for (; count > 0; count -= 2, addr++) { IWN_WRITE(sc, IWN_EEPROM, addr << 2); for (ntries = 0; ntries < 10; ntries++) { val = IWN_READ(sc, IWN_EEPROM); if (val & IWN_EEPROM_READ_VALID) break; DELAY(5); } if (ntries == 10) { device_printf(sc->sc_dev, "timeout reading ROM at 0x%x\n", addr); return ETIMEDOUT; } if (sc->sc_flags & IWN_FLAG_HAS_OTPROM) { /* OTPROM, check for ECC errors. */ tmp = IWN_READ(sc, IWN_OTP_GP); if (tmp & IWN_OTP_GP_ECC_UNCORR_STTS) { device_printf(sc->sc_dev, "OTPROM ECC error at 0x%x\n", addr); return EIO; } if (tmp & IWN_OTP_GP_ECC_CORR_STTS) { /* Correctable ECC error, clear bit. */ IWN_SETBITS(sc, IWN_OTP_GP, IWN_OTP_GP_ECC_CORR_STTS); } } *out++ = val >> 16; if (count > 1) *out++ = val >> 24; } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end\n", __func__); return 0; } static void iwn_dma_map_addr(void *arg, bus_dma_segment_t *segs, int nsegs, int error) { if (error != 0) return; KASSERT(nsegs == 1, ("too many DMA segments, %d should be 1", nsegs)); *(bus_addr_t *)arg = segs[0].ds_addr; } static int iwn_dma_contig_alloc(struct iwn_softc *sc, struct iwn_dma_info *dma, void **kvap, bus_size_t size, bus_size_t alignment) { int error; dma->tag = NULL; dma->size = size; error = bus_dma_tag_create(bus_get_dma_tag(sc->sc_dev), alignment, 0, BUS_SPACE_MAXADDR_32BIT, BUS_SPACE_MAXADDR, NULL, NULL, size, 1, size, 0, NULL, NULL, &dma->tag); if (error != 0) goto fail; error = bus_dmamem_alloc(dma->tag, (void **)&dma->vaddr, BUS_DMA_NOWAIT | BUS_DMA_ZERO | BUS_DMA_COHERENT, &dma->map); if (error != 0) goto fail; error = bus_dmamap_load(dma->tag, dma->map, dma->vaddr, size, iwn_dma_map_addr, &dma->paddr, BUS_DMA_NOWAIT); if (error != 0) goto fail; bus_dmamap_sync(dma->tag, dma->map, BUS_DMASYNC_PREWRITE); if (kvap != NULL) *kvap = dma->vaddr; return 0; fail: iwn_dma_contig_free(dma); return error; } static void iwn_dma_contig_free(struct iwn_dma_info *dma) { if (dma->vaddr != NULL) { bus_dmamap_sync(dma->tag, dma->map, BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(dma->tag, dma->map); bus_dmamem_free(dma->tag, dma->vaddr, dma->map); dma->vaddr = NULL; } if (dma->tag != NULL) { bus_dma_tag_destroy(dma->tag); dma->tag = NULL; } } static int iwn_alloc_sched(struct iwn_softc *sc) { /* TX scheduler rings must be aligned on a 1KB boundary. */ return iwn_dma_contig_alloc(sc, &sc->sched_dma, (void **)&sc->sched, sc->schedsz, 1024); } static void iwn_free_sched(struct iwn_softc *sc) { iwn_dma_contig_free(&sc->sched_dma); } static int iwn_alloc_kw(struct iwn_softc *sc) { /* "Keep Warm" page must be aligned on a 4KB boundary. */ return iwn_dma_contig_alloc(sc, &sc->kw_dma, NULL, 4096, 4096); } static void iwn_free_kw(struct iwn_softc *sc) { iwn_dma_contig_free(&sc->kw_dma); } static int iwn_alloc_ict(struct iwn_softc *sc) { /* ICT table must be aligned on a 4KB boundary. */ return iwn_dma_contig_alloc(sc, &sc->ict_dma, (void **)&sc->ict, IWN_ICT_SIZE, 4096); } static void iwn_free_ict(struct iwn_softc *sc) { iwn_dma_contig_free(&sc->ict_dma); } static int iwn_alloc_fwmem(struct iwn_softc *sc) { /* Must be aligned on a 16-byte boundary. */ return iwn_dma_contig_alloc(sc, &sc->fw_dma, NULL, sc->fwsz, 16); } static void iwn_free_fwmem(struct iwn_softc *sc) { iwn_dma_contig_free(&sc->fw_dma); } static int iwn_alloc_rx_ring(struct iwn_softc *sc, struct iwn_rx_ring *ring) { bus_size_t size; int i, error; ring->cur = 0; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Allocate RX descriptors (256-byte aligned). */ size = IWN_RX_RING_COUNT * sizeof (uint32_t); error = iwn_dma_contig_alloc(sc, &ring->desc_dma, (void **)&ring->desc, size, 256); if (error != 0) { device_printf(sc->sc_dev, "%s: could not allocate RX ring DMA memory, error %d\n", __func__, error); goto fail; } /* Allocate RX status area (16-byte aligned). */ error = iwn_dma_contig_alloc(sc, &ring->stat_dma, (void **)&ring->stat, sizeof (struct iwn_rx_status), 16); if (error != 0) { device_printf(sc->sc_dev, "%s: could not allocate RX status DMA memory, error %d\n", __func__, error); goto fail; } /* Create RX buffer DMA tag. */ error = bus_dma_tag_create(bus_get_dma_tag(sc->sc_dev), 1, 0, BUS_SPACE_MAXADDR_32BIT, BUS_SPACE_MAXADDR, NULL, NULL, IWN_RBUF_SIZE, 1, IWN_RBUF_SIZE, 0, NULL, NULL, &ring->data_dmat); if (error != 0) { device_printf(sc->sc_dev, "%s: could not create RX buf DMA tag, error %d\n", __func__, error); goto fail; } /* * Allocate and map RX buffers. */ for (i = 0; i < IWN_RX_RING_COUNT; i++) { struct iwn_rx_data *data = &ring->data[i]; bus_addr_t paddr; error = bus_dmamap_create(ring->data_dmat, 0, &data->map); if (error != 0) { device_printf(sc->sc_dev, "%s: could not create RX buf DMA map, error %d\n", __func__, error); goto fail; } data->m = m_getjcl(M_NOWAIT, MT_DATA, M_PKTHDR, IWN_RBUF_SIZE); if (data->m == NULL) { device_printf(sc->sc_dev, "%s: could not allocate RX mbuf\n", __func__); error = ENOBUFS; goto fail; } error = bus_dmamap_load(ring->data_dmat, data->map, mtod(data->m, void *), IWN_RBUF_SIZE, iwn_dma_map_addr, &paddr, BUS_DMA_NOWAIT); if (error != 0 && error != EFBIG) { device_printf(sc->sc_dev, "%s: can't map mbuf, error %d\n", __func__, error); goto fail; } bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_PREREAD); /* Set physical address of RX buffer (256-byte aligned). */ ring->desc[i] = htole32(paddr >> 8); } bus_dmamap_sync(ring->desc_dma.tag, ring->desc_dma.map, BUS_DMASYNC_PREWRITE); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return 0; fail: iwn_free_rx_ring(sc, ring); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end in error\n",__func__); return error; } static void iwn_reset_rx_ring(struct iwn_softc *sc, struct iwn_rx_ring *ring) { int ntries; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); if (iwn_nic_lock(sc) == 0) { IWN_WRITE(sc, IWN_FH_RX_CONFIG, 0); for (ntries = 0; ntries < 1000; ntries++) { if (IWN_READ(sc, IWN_FH_RX_STATUS) & IWN_FH_RX_STATUS_IDLE) break; DELAY(10); } iwn_nic_unlock(sc); } ring->cur = 0; sc->last_rx_valid = 0; } static void iwn_free_rx_ring(struct iwn_softc *sc, struct iwn_rx_ring *ring) { int i; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s \n", __func__); iwn_dma_contig_free(&ring->desc_dma); iwn_dma_contig_free(&ring->stat_dma); for (i = 0; i < IWN_RX_RING_COUNT; i++) { struct iwn_rx_data *data = &ring->data[i]; if (data->m != NULL) { bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_POSTREAD); bus_dmamap_unload(ring->data_dmat, data->map); m_freem(data->m); data->m = NULL; } if (data->map != NULL) bus_dmamap_destroy(ring->data_dmat, data->map); } if (ring->data_dmat != NULL) { bus_dma_tag_destroy(ring->data_dmat); ring->data_dmat = NULL; } } static int iwn_alloc_tx_ring(struct iwn_softc *sc, struct iwn_tx_ring *ring, int qid) { bus_addr_t paddr; bus_size_t size; int i, error; ring->qid = qid; ring->queued = 0; ring->cur = 0; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Allocate TX descriptors (256-byte aligned). */ size = IWN_TX_RING_COUNT * sizeof (struct iwn_tx_desc); error = iwn_dma_contig_alloc(sc, &ring->desc_dma, (void **)&ring->desc, size, 256); if (error != 0) { device_printf(sc->sc_dev, "%s: could not allocate TX ring DMA memory, error %d\n", __func__, error); goto fail; } size = IWN_TX_RING_COUNT * sizeof (struct iwn_tx_cmd); error = iwn_dma_contig_alloc(sc, &ring->cmd_dma, (void **)&ring->cmd, size, 4); if (error != 0) { device_printf(sc->sc_dev, "%s: could not allocate TX cmd DMA memory, error %d\n", __func__, error); goto fail; } error = bus_dma_tag_create(bus_get_dma_tag(sc->sc_dev), 1, 0, BUS_SPACE_MAXADDR_32BIT, BUS_SPACE_MAXADDR, NULL, NULL, MCLBYTES, IWN_MAX_SCATTER - 1, MCLBYTES, 0, NULL, NULL, &ring->data_dmat); if (error != 0) { device_printf(sc->sc_dev, "%s: could not create TX buf DMA tag, error %d\n", __func__, error); goto fail; } paddr = ring->cmd_dma.paddr; for (i = 0; i < IWN_TX_RING_COUNT; i++) { struct iwn_tx_data *data = &ring->data[i]; data->cmd_paddr = paddr; data->scratch_paddr = paddr + 12; paddr += sizeof (struct iwn_tx_cmd); error = bus_dmamap_create(ring->data_dmat, 0, &data->map); if (error != 0) { device_printf(sc->sc_dev, "%s: could not create TX buf DMA map, error %d\n", __func__, error); goto fail; } } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end\n", __func__); return 0; fail: iwn_free_tx_ring(sc, ring); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end in error\n", __func__); return error; } static void iwn_reset_tx_ring(struct iwn_softc *sc, struct iwn_tx_ring *ring) { int i; DPRINTF(sc, IWN_DEBUG_TRACE, "->doing %s \n", __func__); for (i = 0; i < IWN_TX_RING_COUNT; i++) { struct iwn_tx_data *data = &ring->data[i]; if (data->m != NULL) { bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(ring->data_dmat, data->map); m_freem(data->m); data->m = NULL; } if (data->ni != NULL) { ieee80211_free_node(data->ni); data->ni = NULL; } data->remapped = 0; data->long_retries = 0; } /* Clear TX descriptors. */ memset(ring->desc, 0, ring->desc_dma.size); bus_dmamap_sync(ring->desc_dma.tag, ring->desc_dma.map, BUS_DMASYNC_PREWRITE); sc->qfullmsk &= ~(1 << ring->qid); ring->queued = 0; ring->cur = 0; } static void iwn_free_tx_ring(struct iwn_softc *sc, struct iwn_tx_ring *ring) { int i; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s \n", __func__); iwn_dma_contig_free(&ring->desc_dma); iwn_dma_contig_free(&ring->cmd_dma); for (i = 0; i < IWN_TX_RING_COUNT; i++) { struct iwn_tx_data *data = &ring->data[i]; if (data->m != NULL) { bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(ring->data_dmat, data->map); m_freem(data->m); } if (data->map != NULL) bus_dmamap_destroy(ring->data_dmat, data->map); } if (ring->data_dmat != NULL) { bus_dma_tag_destroy(ring->data_dmat); ring->data_dmat = NULL; } } static void iwn_check_tx_ring(struct iwn_softc *sc, int qid) { struct iwn_tx_ring *ring = &sc->txq[qid]; KASSERT(ring->queued >= 0, ("%s: ring->queued (%d) for queue %d < 0!", __func__, ring->queued, qid)); if (qid >= sc->firstaggqueue) { struct iwn_ops *ops = &sc->ops; struct ieee80211_tx_ampdu *tap = sc->qid2tap[qid]; if (ring->queued == 0 && !IEEE80211_AMPDU_RUNNING(tap)) { uint16_t ssn = tap->txa_start & 0xfff; uint8_t tid = tap->txa_tid; int *res = tap->txa_private; iwn_nic_lock(sc); ops->ampdu_tx_stop(sc, qid, tid, ssn); iwn_nic_unlock(sc); sc->qid2tap[qid] = NULL; free(res, M_DEVBUF); } } if (ring->queued < IWN_TX_RING_LOMARK) { sc->qfullmsk &= ~(1 << qid); if (ring->queued == 0) sc->sc_tx_timer = 0; else sc->sc_tx_timer = 5; } } static void iwn5000_ict_reset(struct iwn_softc *sc) { /* Disable interrupts. */ IWN_WRITE(sc, IWN_INT_MASK, 0); /* Reset ICT table. */ memset(sc->ict, 0, IWN_ICT_SIZE); sc->ict_cur = 0; bus_dmamap_sync(sc->ict_dma.tag, sc->ict_dma.map, BUS_DMASYNC_PREWRITE); /* Set physical address of ICT table (4KB aligned). */ DPRINTF(sc, IWN_DEBUG_RESET, "%s: enabling ICT\n", __func__); IWN_WRITE(sc, IWN_DRAM_INT_TBL, IWN_DRAM_INT_TBL_ENABLE | IWN_DRAM_INT_TBL_WRAP_CHECK | sc->ict_dma.paddr >> 12); /* Enable periodic RX interrupt. */ sc->int_mask |= IWN_INT_RX_PERIODIC; /* Switch to ICT interrupt mode in driver. */ sc->sc_flags |= IWN_FLAG_USE_ICT; /* Re-enable interrupts. */ IWN_WRITE(sc, IWN_INT, 0xffffffff); IWN_WRITE(sc, IWN_INT_MASK, sc->int_mask); } static int iwn_read_eeprom(struct iwn_softc *sc, uint8_t macaddr[IEEE80211_ADDR_LEN]) { struct iwn_ops *ops = &sc->ops; uint16_t val; int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Check whether adapter has an EEPROM or an OTPROM. */ if (sc->hw_type >= IWN_HW_REV_TYPE_1000 && (IWN_READ(sc, IWN_OTP_GP) & IWN_OTP_GP_DEV_SEL_OTP)) sc->sc_flags |= IWN_FLAG_HAS_OTPROM; DPRINTF(sc, IWN_DEBUG_RESET, "%s found\n", (sc->sc_flags & IWN_FLAG_HAS_OTPROM) ? "OTPROM" : "EEPROM"); /* Adapter has to be powered on for EEPROM access to work. */ if ((error = iwn_apm_init(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not power ON adapter, error %d\n", __func__, error); return error; } if ((IWN_READ(sc, IWN_EEPROM_GP) & 0x7) == 0) { device_printf(sc->sc_dev, "%s: bad ROM signature\n", __func__); return EIO; } if ((error = iwn_eeprom_lock(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not lock ROM, error %d\n", __func__, error); return error; } if (sc->sc_flags & IWN_FLAG_HAS_OTPROM) { if ((error = iwn_init_otprom(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not initialize OTPROM, error %d\n", __func__, error); return error; } } iwn_read_prom_data(sc, IWN_EEPROM_SKU_CAP, &val, 2); DPRINTF(sc, IWN_DEBUG_RESET, "SKU capabilities=0x%04x\n", le16toh(val)); /* Check if HT support is bonded out. */ if (val & htole16(IWN_EEPROM_SKU_CAP_11N)) sc->sc_flags |= IWN_FLAG_HAS_11N; iwn_read_prom_data(sc, IWN_EEPROM_RFCFG, &val, 2); sc->rfcfg = le16toh(val); DPRINTF(sc, IWN_DEBUG_RESET, "radio config=0x%04x\n", sc->rfcfg); /* Read Tx/Rx chains from ROM unless it's known to be broken. */ if (sc->txchainmask == 0) sc->txchainmask = IWN_RFCFG_TXANTMSK(sc->rfcfg); if (sc->rxchainmask == 0) sc->rxchainmask = IWN_RFCFG_RXANTMSK(sc->rfcfg); /* Read MAC address. */ iwn_read_prom_data(sc, IWN_EEPROM_MAC, macaddr, 6); /* Read adapter-specific information from EEPROM. */ ops->read_eeprom(sc); iwn_apm_stop(sc); /* Power OFF adapter. */ iwn_eeprom_unlock(sc); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end\n", __func__); return 0; } static void iwn4965_read_eeprom(struct iwn_softc *sc) { uint32_t addr; uint16_t val; int i; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Read regulatory domain (4 ASCII characters). */ iwn_read_prom_data(sc, IWN4965_EEPROM_DOMAIN, sc->eeprom_domain, 4); /* Read the list of authorized channels (20MHz & 40MHz). */ for (i = 0; i < IWN_NBANDS - 1; i++) { addr = iwn4965_regulatory_bands[i]; iwn_read_eeprom_channels(sc, i, addr); } /* Read maximum allowed TX power for 2GHz and 5GHz bands. */ iwn_read_prom_data(sc, IWN4965_EEPROM_MAXPOW, &val, 2); sc->maxpwr2GHz = val & 0xff; sc->maxpwr5GHz = val >> 8; /* Check that EEPROM values are within valid range. */ if (sc->maxpwr5GHz < 20 || sc->maxpwr5GHz > 50) sc->maxpwr5GHz = 38; if (sc->maxpwr2GHz < 20 || sc->maxpwr2GHz > 50) sc->maxpwr2GHz = 38; DPRINTF(sc, IWN_DEBUG_RESET, "maxpwr 2GHz=%d 5GHz=%d\n", sc->maxpwr2GHz, sc->maxpwr5GHz); /* Read samples for each TX power group. */ iwn_read_prom_data(sc, IWN4965_EEPROM_BANDS, sc->bands, sizeof sc->bands); /* Read voltage at which samples were taken. */ iwn_read_prom_data(sc, IWN4965_EEPROM_VOLTAGE, &val, 2); sc->eeprom_voltage = (int16_t)le16toh(val); DPRINTF(sc, IWN_DEBUG_RESET, "voltage=%d (in 0.3V)\n", sc->eeprom_voltage); #ifdef IWN_DEBUG /* Print samples. */ if (sc->sc_debug & IWN_DEBUG_ANY) { for (i = 0; i < IWN_NBANDS - 1; i++) iwn4965_print_power_group(sc, i); } #endif DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end\n", __func__); } #ifdef IWN_DEBUG static void iwn4965_print_power_group(struct iwn_softc *sc, int i) { struct iwn4965_eeprom_band *band = &sc->bands[i]; struct iwn4965_eeprom_chan_samples *chans = band->chans; int j, c; printf("===band %d===\n", i); printf("chan lo=%d, chan hi=%d\n", band->lo, band->hi); printf("chan1 num=%d\n", chans[0].num); for (c = 0; c < 2; c++) { for (j = 0; j < IWN_NSAMPLES; j++) { printf("chain %d, sample %d: temp=%d gain=%d " "power=%d pa_det=%d\n", c, j, chans[0].samples[c][j].temp, chans[0].samples[c][j].gain, chans[0].samples[c][j].power, chans[0].samples[c][j].pa_det); } } printf("chan2 num=%d\n", chans[1].num); for (c = 0; c < 2; c++) { for (j = 0; j < IWN_NSAMPLES; j++) { printf("chain %d, sample %d: temp=%d gain=%d " "power=%d pa_det=%d\n", c, j, chans[1].samples[c][j].temp, chans[1].samples[c][j].gain, chans[1].samples[c][j].power, chans[1].samples[c][j].pa_det); } } } #endif static void iwn5000_read_eeprom(struct iwn_softc *sc) { struct iwn5000_eeprom_calib_hdr hdr; int32_t volt; uint32_t base, addr; uint16_t val; int i; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Read regulatory domain (4 ASCII characters). */ iwn_read_prom_data(sc, IWN5000_EEPROM_REG, &val, 2); base = le16toh(val); iwn_read_prom_data(sc, base + IWN5000_EEPROM_DOMAIN, sc->eeprom_domain, 4); /* Read the list of authorized channels (20MHz & 40MHz). */ for (i = 0; i < IWN_NBANDS - 1; i++) { addr = base + sc->base_params->regulatory_bands[i]; iwn_read_eeprom_channels(sc, i, addr); } /* Read enhanced TX power information for 6000 Series. */ if (sc->base_params->enhanced_TX_power) iwn_read_eeprom_enhinfo(sc); iwn_read_prom_data(sc, IWN5000_EEPROM_CAL, &val, 2); base = le16toh(val); iwn_read_prom_data(sc, base, &hdr, sizeof hdr); DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: calib version=%u pa type=%u voltage=%u\n", __func__, hdr.version, hdr.pa_type, le16toh(hdr.volt)); sc->calib_ver = hdr.version; if (sc->base_params->calib_need & IWN_FLG_NEED_PHY_CALIB_TEMP_OFFSETv2) { sc->eeprom_voltage = le16toh(hdr.volt); iwn_read_prom_data(sc, base + IWN5000_EEPROM_TEMP, &val, 2); sc->eeprom_temp_high=le16toh(val); iwn_read_prom_data(sc, base + IWN5000_EEPROM_VOLT, &val, 2); sc->eeprom_temp = le16toh(val); } if (sc->hw_type == IWN_HW_REV_TYPE_5150) { /* Compute temperature offset. */ iwn_read_prom_data(sc, base + IWN5000_EEPROM_TEMP, &val, 2); sc->eeprom_temp = le16toh(val); iwn_read_prom_data(sc, base + IWN5000_EEPROM_VOLT, &val, 2); volt = le16toh(val); sc->temp_off = sc->eeprom_temp - (volt / -5); DPRINTF(sc, IWN_DEBUG_CALIBRATE, "temp=%d volt=%d offset=%dK\n", sc->eeprom_temp, volt, sc->temp_off); } else { /* Read crystal calibration. */ iwn_read_prom_data(sc, base + IWN5000_EEPROM_CRYSTAL, &sc->eeprom_crystal, sizeof (uint32_t)); DPRINTF(sc, IWN_DEBUG_CALIBRATE, "crystal calibration 0x%08x\n", le32toh(sc->eeprom_crystal)); } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end\n", __func__); } /* * Translate EEPROM flags to net80211. */ static uint32_t iwn_eeprom_channel_flags(struct iwn_eeprom_chan *channel) { uint32_t nflags; nflags = 0; if ((channel->flags & IWN_EEPROM_CHAN_ACTIVE) == 0) nflags |= IEEE80211_CHAN_PASSIVE; if ((channel->flags & IWN_EEPROM_CHAN_IBSS) == 0) nflags |= IEEE80211_CHAN_NOADHOC; if (channel->flags & IWN_EEPROM_CHAN_RADAR) { nflags |= IEEE80211_CHAN_DFS; /* XXX apparently IBSS may still be marked */ nflags |= IEEE80211_CHAN_NOADHOC; } return nflags; } static void iwn_read_eeprom_band(struct iwn_softc *sc, int n, int maxchans, int *nchans, struct ieee80211_channel chans[]) { struct iwn_eeprom_chan *channels = sc->eeprom_channels[n]; const struct iwn_chan_band *band = &iwn_bands[n]; uint8_t bands[IEEE80211_MODE_BYTES]; uint8_t chan; int i, error, nflags; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); memset(bands, 0, sizeof(bands)); if (n == 0) { setbit(bands, IEEE80211_MODE_11B); setbit(bands, IEEE80211_MODE_11G); if (sc->sc_flags & IWN_FLAG_HAS_11N) setbit(bands, IEEE80211_MODE_11NG); } else { setbit(bands, IEEE80211_MODE_11A); if (sc->sc_flags & IWN_FLAG_HAS_11N) setbit(bands, IEEE80211_MODE_11NA); } for (i = 0; i < band->nchan; i++) { if (!(channels[i].flags & IWN_EEPROM_CHAN_VALID)) { DPRINTF(sc, IWN_DEBUG_RESET, "skip chan %d flags 0x%x maxpwr %d\n", band->chan[i], channels[i].flags, channels[i].maxpwr); continue; } chan = band->chan[i]; nflags = iwn_eeprom_channel_flags(&channels[i]); error = ieee80211_add_channel(chans, maxchans, nchans, chan, 0, channels[i].maxpwr, nflags, bands); if (error != 0) break; /* Save maximum allowed TX power for this channel. */ /* XXX wrong */ sc->maxpwr[chan] = channels[i].maxpwr; DPRINTF(sc, IWN_DEBUG_RESET, "add chan %d flags 0x%x maxpwr %d\n", chan, channels[i].flags, channels[i].maxpwr); } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end\n", __func__); } static void iwn_read_eeprom_ht40(struct iwn_softc *sc, int n, int maxchans, int *nchans, struct ieee80211_channel chans[]) { struct iwn_eeprom_chan *channels = sc->eeprom_channels[n]; const struct iwn_chan_band *band = &iwn_bands[n]; uint8_t chan; int i, error, nflags; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s start\n", __func__); if (!(sc->sc_flags & IWN_FLAG_HAS_11N)) { DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end no 11n\n", __func__); return; } for (i = 0; i < band->nchan; i++) { if (!(channels[i].flags & IWN_EEPROM_CHAN_VALID)) { DPRINTF(sc, IWN_DEBUG_RESET, "skip chan %d flags 0x%x maxpwr %d\n", band->chan[i], channels[i].flags, channels[i].maxpwr); continue; } chan = band->chan[i]; nflags = iwn_eeprom_channel_flags(&channels[i]); nflags |= (n == 5 ? IEEE80211_CHAN_G : IEEE80211_CHAN_A); error = ieee80211_add_channel_ht40(chans, maxchans, nchans, chan, channels[i].maxpwr, nflags); switch (error) { case EINVAL: device_printf(sc->sc_dev, "%s: no entry for channel %d\n", __func__, chan); continue; case ENOENT: DPRINTF(sc, IWN_DEBUG_RESET, "%s: skip chan %d, extension channel not found\n", __func__, chan); continue; case ENOBUFS: device_printf(sc->sc_dev, "%s: channel table is full!\n", __func__); break; case 0: DPRINTF(sc, IWN_DEBUG_RESET, "add ht40 chan %d flags 0x%x maxpwr %d\n", chan, channels[i].flags, channels[i].maxpwr); /* FALLTHROUGH */ default: break; } } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end\n", __func__); } static void iwn_read_eeprom_channels(struct iwn_softc *sc, int n, uint32_t addr) { struct ieee80211com *ic = &sc->sc_ic; iwn_read_prom_data(sc, addr, &sc->eeprom_channels[n], iwn_bands[n].nchan * sizeof (struct iwn_eeprom_chan)); if (n < 5) { iwn_read_eeprom_band(sc, n, IEEE80211_CHAN_MAX, &ic->ic_nchans, ic->ic_channels); } else { iwn_read_eeprom_ht40(sc, n, IEEE80211_CHAN_MAX, &ic->ic_nchans, ic->ic_channels); } ieee80211_sort_channels(ic->ic_channels, ic->ic_nchans); } static struct iwn_eeprom_chan * iwn_find_eeprom_channel(struct iwn_softc *sc, struct ieee80211_channel *c) { int band, chan, i, j; if (IEEE80211_IS_CHAN_HT40(c)) { band = IEEE80211_IS_CHAN_5GHZ(c) ? 6 : 5; if (IEEE80211_IS_CHAN_HT40D(c)) chan = c->ic_extieee; else chan = c->ic_ieee; for (i = 0; i < iwn_bands[band].nchan; i++) { if (iwn_bands[band].chan[i] == chan) return &sc->eeprom_channels[band][i]; } } else { for (j = 0; j < 5; j++) { for (i = 0; i < iwn_bands[j].nchan; i++) { if (iwn_bands[j].chan[i] == c->ic_ieee && ((j == 0) ^ IEEE80211_IS_CHAN_A(c)) == 1) return &sc->eeprom_channels[j][i]; } } } return NULL; } static void iwn_getradiocaps(struct ieee80211com *ic, int maxchans, int *nchans, struct ieee80211_channel chans[]) { struct iwn_softc *sc = ic->ic_softc; int i; /* Parse the list of authorized channels. */ for (i = 0; i < 5 && *nchans < maxchans; i++) iwn_read_eeprom_band(sc, i, maxchans, nchans, chans); for (i = 5; i < IWN_NBANDS - 1 && *nchans < maxchans; i++) iwn_read_eeprom_ht40(sc, i, maxchans, nchans, chans); } /* * Enforce flags read from EEPROM. */ static int iwn_setregdomain(struct ieee80211com *ic, struct ieee80211_regdomain *rd, int nchan, struct ieee80211_channel chans[]) { struct iwn_softc *sc = ic->ic_softc; int i; for (i = 0; i < nchan; i++) { struct ieee80211_channel *c = &chans[i]; struct iwn_eeprom_chan *channel; channel = iwn_find_eeprom_channel(sc, c); if (channel == NULL) { ic_printf(ic, "%s: invalid channel %u freq %u/0x%x\n", __func__, c->ic_ieee, c->ic_freq, c->ic_flags); return EINVAL; } c->ic_flags |= iwn_eeprom_channel_flags(channel); } return 0; } static void iwn_read_eeprom_enhinfo(struct iwn_softc *sc) { struct iwn_eeprom_enhinfo enhinfo[35]; struct ieee80211com *ic = &sc->sc_ic; struct ieee80211_channel *c; uint16_t val, base; int8_t maxpwr; uint8_t flags; int i, j; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); iwn_read_prom_data(sc, IWN5000_EEPROM_REG, &val, 2); base = le16toh(val); iwn_read_prom_data(sc, base + IWN6000_EEPROM_ENHINFO, enhinfo, sizeof enhinfo); for (i = 0; i < nitems(enhinfo); i++) { flags = enhinfo[i].flags; if (!(flags & IWN_ENHINFO_VALID)) continue; /* Skip invalid entries. */ maxpwr = 0; if (sc->txchainmask & IWN_ANT_A) maxpwr = MAX(maxpwr, enhinfo[i].chain[0]); if (sc->txchainmask & IWN_ANT_B) maxpwr = MAX(maxpwr, enhinfo[i].chain[1]); if (sc->txchainmask & IWN_ANT_C) maxpwr = MAX(maxpwr, enhinfo[i].chain[2]); if (sc->ntxchains == 2) maxpwr = MAX(maxpwr, enhinfo[i].mimo2); else if (sc->ntxchains == 3) maxpwr = MAX(maxpwr, enhinfo[i].mimo3); for (j = 0; j < ic->ic_nchans; j++) { c = &ic->ic_channels[j]; if ((flags & IWN_ENHINFO_5GHZ)) { if (!IEEE80211_IS_CHAN_A(c)) continue; } else if ((flags & IWN_ENHINFO_OFDM)) { if (!IEEE80211_IS_CHAN_G(c)) continue; } else if (!IEEE80211_IS_CHAN_B(c)) continue; if ((flags & IWN_ENHINFO_HT40)) { if (!IEEE80211_IS_CHAN_HT40(c)) continue; } else { if (IEEE80211_IS_CHAN_HT40(c)) continue; } if (enhinfo[i].chan != 0 && enhinfo[i].chan != c->ic_ieee) continue; DPRINTF(sc, IWN_DEBUG_RESET, "channel %d(%x), maxpwr %d\n", c->ic_ieee, c->ic_flags, maxpwr / 2); c->ic_maxregpower = maxpwr / 2; c->ic_maxpower = maxpwr; } } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end\n", __func__); } static struct ieee80211_node * iwn_node_alloc(struct ieee80211vap *vap, const uint8_t mac[IEEE80211_ADDR_LEN]) { struct iwn_node *wn; wn = malloc(sizeof (struct iwn_node), M_80211_NODE, M_NOWAIT | M_ZERO); if (wn == NULL) return (NULL); wn->id = IWN_ID_UNDEFINED; return (&wn->ni); } static __inline int rate2plcp(int rate) { switch (rate & 0xff) { case 12: return 0xd; case 18: return 0xf; case 24: return 0x5; case 36: return 0x7; case 48: return 0x9; case 72: return 0xb; case 96: return 0x1; case 108: return 0x3; case 2: return 10; case 4: return 20; case 11: return 55; case 22: return 110; } return 0; } static __inline uint8_t plcp2rate(const uint8_t rate_plcp) { switch (rate_plcp) { case 0xd: return 12; case 0xf: return 18; case 0x5: return 24; case 0x7: return 36; case 0x9: return 48; case 0xb: return 72; case 0x1: return 96; case 0x3: return 108; case 10: return 2; case 20: return 4; case 55: return 11; case 110: return 22; default: return 0; } } static int iwn_get_1stream_tx_antmask(struct iwn_softc *sc) { return IWN_LSB(sc->txchainmask); } static int iwn_get_2stream_tx_antmask(struct iwn_softc *sc) { int tx; /* * The '2 stream' setup is a bit .. odd. * * For NICs that support only 1 antenna, default to IWN_ANT_AB or * the firmware panics (eg Intel 5100.) * * For NICs that support two antennas, we use ANT_AB. * * For NICs that support three antennas, we use the two that * wasn't the default one. * * XXX TODO: if bluetooth (full concurrent) is enabled, restrict * this to only one antenna. */ /* Default - transmit on the other antennas */ tx = (sc->txchainmask & ~IWN_LSB(sc->txchainmask)); /* Now, if it's zero, set it to IWN_ANT_AB, so to not panic firmware */ if (tx == 0) tx = IWN_ANT_AB; /* * If the NIC is a two-stream TX NIC, configure the TX mask to * the default chainmask */ else if (sc->ntxchains == 2) tx = sc->txchainmask; return (tx); } /* * Calculate the required PLCP value from the given rate, * to the given node. * * This will take the node configuration (eg 11n, rate table * setup, etc) into consideration. */ static uint32_t iwn_rate_to_plcp(struct iwn_softc *sc, struct ieee80211_node *ni, uint8_t rate) { struct ieee80211com *ic = ni->ni_ic; uint32_t plcp = 0; int ridx; /* * If it's an MCS rate, let's set the plcp correctly * and set the relevant flags based on the node config. */ if (rate & IEEE80211_RATE_MCS) { /* * Set the initial PLCP value to be between 0->31 for * MCS 0 -> MCS 31, then set the "I'm an MCS rate!" * flag. */ plcp = IEEE80211_RV(rate) | IWN_RFLAG_MCS; /* * XXX the following should only occur if both * the local configuration _and_ the remote node * advertise these capabilities. Thus this code * may need fixing! */ /* * Set the channel width and guard interval. */ if (IEEE80211_IS_CHAN_HT40(ni->ni_chan)) { plcp |= IWN_RFLAG_HT40; if (ni->ni_htcap & IEEE80211_HTCAP_SHORTGI40) plcp |= IWN_RFLAG_SGI; } else if (ni->ni_htcap & IEEE80211_HTCAP_SHORTGI20) { plcp |= IWN_RFLAG_SGI; } /* * Ensure the selected rate matches the link quality * table entries being used. */ if (rate > 0x8f) plcp |= IWN_RFLAG_ANT(sc->txchainmask); else if (rate > 0x87) plcp |= IWN_RFLAG_ANT(iwn_get_2stream_tx_antmask(sc)); else plcp |= IWN_RFLAG_ANT(iwn_get_1stream_tx_antmask(sc)); } else { /* * Set the initial PLCP - fine for both * OFDM and CCK rates. */ plcp = rate2plcp(rate); /* Set CCK flag if it's CCK */ /* XXX It would be nice to have a method * to map the ridx -> phy table entry * so we could just query that, rather than * this hack to check against IWN_RIDX_OFDM6. */ ridx = ieee80211_legacy_rate_lookup(ic->ic_rt, rate & IEEE80211_RATE_VAL); if (ridx < IWN_RIDX_OFDM6 && IEEE80211_IS_CHAN_2GHZ(ni->ni_chan)) plcp |= IWN_RFLAG_CCK; /* Set antenna configuration */ /* XXX TODO: is this the right antenna to use for legacy? */ plcp |= IWN_RFLAG_ANT(iwn_get_1stream_tx_antmask(sc)); } DPRINTF(sc, IWN_DEBUG_TXRATE, "%s: rate=0x%02x, plcp=0x%08x\n", __func__, rate, plcp); return (htole32(plcp)); } static void iwn_newassoc(struct ieee80211_node *ni, int isnew) { /* Doesn't do anything at the moment */ -} - -static int -iwn_media_change(struct ifnet *ifp) -{ - int error; - - error = ieee80211_media_change(ifp); - /* NB: only the fixed rate can change and that doesn't need a reset */ - return (error == ENETRESET ? 0 : error); } static int iwn_newstate(struct ieee80211vap *vap, enum ieee80211_state nstate, int arg) { struct iwn_vap *ivp = IWN_VAP(vap); struct ieee80211com *ic = vap->iv_ic; struct iwn_softc *sc = ic->ic_softc; int error = 0; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); DPRINTF(sc, IWN_DEBUG_STATE, "%s: %s -> %s\n", __func__, ieee80211_state_name[vap->iv_state], ieee80211_state_name[nstate]); IEEE80211_UNLOCK(ic); IWN_LOCK(sc); callout_stop(&sc->calib_to); sc->rxon = &sc->rx_on[IWN_RXON_BSS_CTX]; switch (nstate) { case IEEE80211_S_ASSOC: if (vap->iv_state != IEEE80211_S_RUN) break; /* FALLTHROUGH */ case IEEE80211_S_AUTH: if (vap->iv_state == IEEE80211_S_AUTH) break; /* * !AUTH -> AUTH transition requires state reset to handle * reassociations correctly. */ sc->rxon->associd = 0; sc->rxon->filter &= ~htole32(IWN_FILTER_BSS); sc->calib.state = IWN_CALIB_STATE_INIT; /* Wait until we hear a beacon before we transmit */ if (IEEE80211_IS_CHAN_PASSIVE(ic->ic_curchan)) sc->sc_beacon_wait = 1; if ((error = iwn_auth(sc, vap)) != 0) { device_printf(sc->sc_dev, "%s: could not move to auth state\n", __func__); } break; case IEEE80211_S_RUN: /* * RUN -> RUN transition; Just restart the timers. */ if (vap->iv_state == IEEE80211_S_RUN) { sc->calib_cnt = 0; break; } /* Wait until we hear a beacon before we transmit */ if (IEEE80211_IS_CHAN_PASSIVE(ic->ic_curchan)) sc->sc_beacon_wait = 1; /* * !RUN -> RUN requires setting the association id * which is done with a firmware cmd. We also defer * starting the timers until that work is done. */ if ((error = iwn_run(sc, vap)) != 0) { device_printf(sc->sc_dev, "%s: could not move to run state\n", __func__); } break; case IEEE80211_S_INIT: sc->calib.state = IWN_CALIB_STATE_INIT; /* * Purge the xmit queue so we don't have old frames * during a new association attempt. */ sc->sc_beacon_wait = 0; iwn_xmit_queue_drain(sc); break; default: break; } IWN_UNLOCK(sc); IEEE80211_LOCK(ic); if (error != 0){ DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end in error\n", __func__); return error; } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return ivp->iv_newstate(vap, nstate, arg); } static void iwn_calib_timeout(void *arg) { struct iwn_softc *sc = arg; IWN_LOCK_ASSERT(sc); /* Force automatic TX power calibration every 60 secs. */ if (++sc->calib_cnt >= 120) { uint32_t flags = 0; DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s\n", "sending request for statistics"); (void)iwn_cmd(sc, IWN_CMD_GET_STATISTICS, &flags, sizeof flags, 1); sc->calib_cnt = 0; } callout_reset(&sc->calib_to, msecs_to_ticks(500), iwn_calib_timeout, sc); } /* * Process an RX_PHY firmware notification. This is usually immediately * followed by an MPDU_RX_DONE notification. */ static void iwn_rx_phy(struct iwn_softc *sc, struct iwn_rx_desc *desc) { struct iwn_rx_stat *stat = (struct iwn_rx_stat *)(desc + 1); DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: received PHY stats\n", __func__); /* Save RX statistics, they will be used on MPDU_RX_DONE. */ memcpy(&sc->last_rx_stat, stat, sizeof (*stat)); sc->last_rx_valid = 1; } /* * Process an RX_DONE (4965AGN only) or MPDU_RX_DONE firmware notification. * Each MPDU_RX_DONE notification must be preceded by an RX_PHY one. */ static void iwn_rx_done(struct iwn_softc *sc, struct iwn_rx_desc *desc, struct iwn_rx_data *data) { struct epoch_tracker et; struct iwn_ops *ops = &sc->ops; struct ieee80211com *ic = &sc->sc_ic; struct iwn_rx_ring *ring = &sc->rxq; struct ieee80211_frame_min *wh; struct ieee80211_node *ni; struct mbuf *m, *m1; struct iwn_rx_stat *stat; caddr_t head; bus_addr_t paddr; uint32_t flags; int error, len, rssi, nf; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); if (desc->type == IWN_MPDU_RX_DONE) { /* Check for prior RX_PHY notification. */ if (!sc->last_rx_valid) { DPRINTF(sc, IWN_DEBUG_ANY, "%s: missing RX_PHY\n", __func__); return; } stat = &sc->last_rx_stat; } else stat = (struct iwn_rx_stat *)(desc + 1); if (stat->cfg_phy_len > IWN_STAT_MAXLEN) { device_printf(sc->sc_dev, "%s: invalid RX statistic header, len %d\n", __func__, stat->cfg_phy_len); return; } if (desc->type == IWN_MPDU_RX_DONE) { struct iwn_rx_mpdu *mpdu = (struct iwn_rx_mpdu *)(desc + 1); head = (caddr_t)(mpdu + 1); len = le16toh(mpdu->len); } else { head = (caddr_t)(stat + 1) + stat->cfg_phy_len; len = le16toh(stat->len); } flags = le32toh(*(uint32_t *)(head + len)); /* Discard frames with a bad FCS early. */ if ((flags & IWN_RX_NOERROR) != IWN_RX_NOERROR) { DPRINTF(sc, IWN_DEBUG_RECV, "%s: RX flags error %x\n", __func__, flags); counter_u64_add(ic->ic_ierrors, 1); return; } /* Discard frames that are too short. */ if (len < sizeof (struct ieee80211_frame_ack)) { DPRINTF(sc, IWN_DEBUG_RECV, "%s: frame too short: %d\n", __func__, len); counter_u64_add(ic->ic_ierrors, 1); return; } m1 = m_getjcl(M_NOWAIT, MT_DATA, M_PKTHDR, IWN_RBUF_SIZE); if (m1 == NULL) { DPRINTF(sc, IWN_DEBUG_ANY, "%s: no mbuf to restock ring\n", __func__); counter_u64_add(ic->ic_ierrors, 1); return; } bus_dmamap_unload(ring->data_dmat, data->map); error = bus_dmamap_load(ring->data_dmat, data->map, mtod(m1, void *), IWN_RBUF_SIZE, iwn_dma_map_addr, &paddr, BUS_DMA_NOWAIT); if (error != 0 && error != EFBIG) { device_printf(sc->sc_dev, "%s: bus_dmamap_load failed, error %d\n", __func__, error); m_freem(m1); /* Try to reload the old mbuf. */ error = bus_dmamap_load(ring->data_dmat, data->map, mtod(data->m, void *), IWN_RBUF_SIZE, iwn_dma_map_addr, &paddr, BUS_DMA_NOWAIT); if (error != 0 && error != EFBIG) { panic("%s: could not load old RX mbuf", __func__); } bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_PREREAD); /* Physical address may have changed. */ ring->desc[ring->cur] = htole32(paddr >> 8); bus_dmamap_sync(ring->desc_dma.tag, ring->desc_dma.map, BUS_DMASYNC_PREWRITE); counter_u64_add(ic->ic_ierrors, 1); return; } bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_PREREAD); m = data->m; data->m = m1; /* Update RX descriptor. */ ring->desc[ring->cur] = htole32(paddr >> 8); bus_dmamap_sync(ring->desc_dma.tag, ring->desc_dma.map, BUS_DMASYNC_PREWRITE); /* Finalize mbuf. */ m->m_data = head; m->m_pkthdr.len = m->m_len = len; /* Grab a reference to the source node. */ wh = mtod(m, struct ieee80211_frame_min *); if (len >= sizeof(struct ieee80211_frame_min)) ni = ieee80211_find_rxnode(ic, wh); else ni = NULL; nf = (ni != NULL && ni->ni_vap->iv_state == IEEE80211_S_RUN && (ic->ic_flags & IEEE80211_F_SCAN) == 0) ? sc->noise : -95; rssi = ops->get_rssi(sc, stat); if (ieee80211_radiotap_active(ic)) { struct iwn_rx_radiotap_header *tap = &sc->sc_rxtap; uint32_t rate = le32toh(stat->rate); tap->wr_flags = 0; if (stat->flags & htole16(IWN_STAT_FLAG_SHPREAMBLE)) tap->wr_flags |= IEEE80211_RADIOTAP_F_SHORTPRE; tap->wr_dbm_antsignal = (int8_t)rssi; tap->wr_dbm_antnoise = (int8_t)nf; tap->wr_tsft = stat->tstamp; if (rate & IWN_RFLAG_MCS) { tap->wr_rate = rate & IWN_RFLAG_RATE_MCS; tap->wr_rate |= IEEE80211_RATE_MCS; } else tap->wr_rate = plcp2rate(rate & IWN_RFLAG_RATE); } /* * If it's a beacon and we're waiting, then do the * wakeup. This should unblock raw_xmit/start. */ if (sc->sc_beacon_wait) { uint8_t type, subtype; /* NB: Re-assign wh */ wh = mtod(m, struct ieee80211_frame_min *); type = wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK; subtype = wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK; /* * This assumes at this point we've received our own * beacon. */ DPRINTF(sc, IWN_DEBUG_TRACE, "%s: beacon_wait, type=%d, subtype=%d\n", __func__, type, subtype); if (type == IEEE80211_FC0_TYPE_MGT && subtype == IEEE80211_FC0_SUBTYPE_BEACON) { DPRINTF(sc, IWN_DEBUG_TRACE | IWN_DEBUG_XMIT, "%s: waking things up\n", __func__); /* queue taskqueue to transmit! */ taskqueue_enqueue(sc->sc_tq, &sc->sc_xmit_task); } } IWN_UNLOCK(sc); NET_EPOCH_ENTER(et); /* Send the frame to the 802.11 layer. */ if (ni != NULL) { if (ni->ni_flags & IEEE80211_NODE_HT) m->m_flags |= M_AMPDU; (void)ieee80211_input(ni, m, rssi - nf, nf); /* Node is no longer needed. */ ieee80211_free_node(ni); } else (void)ieee80211_input_all(ic, m, rssi - nf, nf); NET_EPOCH_EXIT(et); IWN_LOCK(sc); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); } static void iwn_agg_tx_complete(struct iwn_softc *sc, struct iwn_tx_ring *ring, int tid, int idx, int success) { struct ieee80211_ratectl_tx_status *txs = &sc->sc_txs; struct iwn_tx_data *data = &ring->data[idx]; struct iwn_node *wn; struct mbuf *m; struct ieee80211_node *ni; KASSERT(data->ni != NULL, ("idx %d: no node", idx)); KASSERT(data->m != NULL, ("idx %d: no mbuf", idx)); /* Unmap and free mbuf. */ bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(ring->data_dmat, data->map); m = data->m, data->m = NULL; ni = data->ni, data->ni = NULL; wn = (void *)ni; #if 0 /* XXX causes significant performance degradation. */ txs->flags = IEEE80211_RATECTL_STATUS_SHORT_RETRY | IEEE80211_RATECTL_STATUS_LONG_RETRY; txs->long_retries = data->long_retries - 1; #else txs->flags = IEEE80211_RATECTL_STATUS_SHORT_RETRY; #endif txs->short_retries = wn->agg[tid].short_retries; if (success) txs->status = IEEE80211_RATECTL_TX_SUCCESS; else txs->status = IEEE80211_RATECTL_TX_FAIL_UNSPECIFIED; wn->agg[tid].short_retries = 0; data->long_retries = 0; DPRINTF(sc, IWN_DEBUG_AMPDU, "%s: freeing m %p ni %p idx %d qid %d\n", __func__, m, ni, idx, ring->qid); ieee80211_ratectl_tx_complete(ni, txs); ieee80211_tx_complete(ni, m, !success); } /* Process an incoming Compressed BlockAck. */ static void iwn_rx_compressed_ba(struct iwn_softc *sc, struct iwn_rx_desc *desc) { struct iwn_tx_ring *ring; struct iwn_tx_data *data; struct iwn_node *wn; struct iwn_compressed_ba *ba = (struct iwn_compressed_ba *)(desc + 1); struct ieee80211_tx_ampdu *tap; uint64_t bitmap; uint8_t tid; int i, qid, shift; int tx_ok = 0; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); qid = le16toh(ba->qid); tap = sc->qid2tap[qid]; ring = &sc->txq[qid]; tid = tap->txa_tid; wn = (void *)tap->txa_ni; DPRINTF(sc, IWN_DEBUG_AMPDU, "%s: qid %d tid %d seq %04X ssn %04X\n" "bitmap: ba %016jX wn %016jX, start %d\n", __func__, qid, tid, le16toh(ba->seq), le16toh(ba->ssn), (uintmax_t)le64toh(ba->bitmap), (uintmax_t)wn->agg[tid].bitmap, wn->agg[tid].startidx); if (wn->agg[tid].bitmap == 0) return; shift = wn->agg[tid].startidx - ((le16toh(ba->seq) >> 4) & 0xff); if (shift <= -64) shift += 0x100; /* * Walk the bitmap and calculate how many successful attempts * are made. * * Yes, the rate control code doesn't know these are A-MPDU * subframes; due to that long_retries stats are not used here. */ bitmap = le64toh(ba->bitmap); if (shift >= 0) bitmap >>= shift; else bitmap <<= -shift; bitmap &= wn->agg[tid].bitmap; wn->agg[tid].bitmap = 0; for (i = wn->agg[tid].startidx; bitmap; bitmap >>= 1, i = (i + 1) % IWN_TX_RING_COUNT) { if ((bitmap & 1) == 0) continue; data = &ring->data[i]; if (__predict_false(data->m == NULL)) { /* * There is no frame; skip this entry. * * NB: it is "ok" to have both * 'tx done' + 'compressed BA' replies for frame * with STATE_SCD_QUERY status. */ DPRINTF(sc, IWN_DEBUG_AMPDU, "%s: ring %d: no entry %d\n", __func__, qid, i); continue; } tx_ok++; iwn_agg_tx_complete(sc, ring, tid, i, 1); } ring->queued -= tx_ok; iwn_check_tx_ring(sc, qid); DPRINTF(sc, IWN_DEBUG_TRACE | IWN_DEBUG_AMPDU, "->%s: end; %d ok\n",__func__, tx_ok); } /* * Process a CALIBRATION_RESULT notification sent by the initialization * firmware on response to a CMD_CALIB_CONFIG command (5000 only). */ static void iwn5000_rx_calib_results(struct iwn_softc *sc, struct iwn_rx_desc *desc) { struct iwn_phy_calib *calib = (struct iwn_phy_calib *)(desc + 1); int len, idx = -1; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Runtime firmware should not send such a notification. */ if (sc->sc_flags & IWN_FLAG_CALIB_DONE){ DPRINTF(sc, IWN_DEBUG_TRACE, "->%s received after calib done\n", __func__); return; } len = (le32toh(desc->len) & 0x3fff) - 4; switch (calib->code) { case IWN5000_PHY_CALIB_DC: if (sc->base_params->calib_need & IWN_FLG_NEED_PHY_CALIB_DC) idx = 0; break; case IWN5000_PHY_CALIB_LO: if (sc->base_params->calib_need & IWN_FLG_NEED_PHY_CALIB_LO) idx = 1; break; case IWN5000_PHY_CALIB_TX_IQ: if (sc->base_params->calib_need & IWN_FLG_NEED_PHY_CALIB_TX_IQ) idx = 2; break; case IWN5000_PHY_CALIB_TX_IQ_PERIODIC: if (sc->base_params->calib_need & IWN_FLG_NEED_PHY_CALIB_TX_IQ_PERIODIC) idx = 3; break; case IWN5000_PHY_CALIB_BASE_BAND: if (sc->base_params->calib_need & IWN_FLG_NEED_PHY_CALIB_BASE_BAND) idx = 4; break; } if (idx == -1) /* Ignore other results. */ return; /* Save calibration result. */ if (sc->calibcmd[idx].buf != NULL) free(sc->calibcmd[idx].buf, M_DEVBUF); sc->calibcmd[idx].buf = malloc(len, M_DEVBUF, M_NOWAIT); if (sc->calibcmd[idx].buf == NULL) { DPRINTF(sc, IWN_DEBUG_CALIBRATE, "not enough memory for calibration result %d\n", calib->code); return; } DPRINTF(sc, IWN_DEBUG_CALIBRATE, "saving calibration result idx=%d, code=%d len=%d\n", idx, calib->code, len); sc->calibcmd[idx].len = len; memcpy(sc->calibcmd[idx].buf, calib, len); } static void iwn_stats_update(struct iwn_softc *sc, struct iwn_calib_state *calib, struct iwn_stats *stats, int len) { struct iwn_stats_bt *stats_bt; struct iwn_stats *lstats; /* * First - check whether the length is the bluetooth or normal. * * If it's normal - just copy it and bump out. * Otherwise we have to convert things. */ if (len == sizeof(struct iwn_stats) + 4) { memcpy(&sc->last_stat, stats, sizeof(struct iwn_stats)); sc->last_stat_valid = 1; return; } /* * If it's not the bluetooth size - log, then just copy. */ if (len != sizeof(struct iwn_stats_bt) + 4) { DPRINTF(sc, IWN_DEBUG_STATS, "%s: size of rx statistics (%d) not an expected size!\n", __func__, len); memcpy(&sc->last_stat, stats, sizeof(struct iwn_stats)); sc->last_stat_valid = 1; return; } /* * Ok. Time to copy. */ stats_bt = (struct iwn_stats_bt *) stats; lstats = &sc->last_stat; /* flags */ lstats->flags = stats_bt->flags; /* rx_bt */ memcpy(&lstats->rx.ofdm, &stats_bt->rx_bt.ofdm, sizeof(struct iwn_rx_phy_stats)); memcpy(&lstats->rx.cck, &stats_bt->rx_bt.cck, sizeof(struct iwn_rx_phy_stats)); memcpy(&lstats->rx.general, &stats_bt->rx_bt.general_bt.common, sizeof(struct iwn_rx_general_stats)); memcpy(&lstats->rx.ht, &stats_bt->rx_bt.ht, sizeof(struct iwn_rx_ht_phy_stats)); /* tx */ memcpy(&lstats->tx, &stats_bt->tx, sizeof(struct iwn_tx_stats)); /* general */ memcpy(&lstats->general, &stats_bt->general, sizeof(struct iwn_general_stats)); /* XXX TODO: Squirrel away the extra bluetooth stats somewhere */ sc->last_stat_valid = 1; } /* * Process an RX_STATISTICS or BEACON_STATISTICS firmware notification. * The latter is sent by the firmware after each received beacon. */ static void iwn_rx_statistics(struct iwn_softc *sc, struct iwn_rx_desc *desc) { struct iwn_ops *ops = &sc->ops; struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); struct iwn_calib_state *calib = &sc->calib; struct iwn_stats *stats = (struct iwn_stats *)(desc + 1); struct iwn_stats *lstats; int temp; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Ignore statistics received during a scan. */ if (vap->iv_state != IEEE80211_S_RUN || (ic->ic_flags & IEEE80211_F_SCAN)){ DPRINTF(sc, IWN_DEBUG_TRACE, "->%s received during calib\n", __func__); return; } DPRINTF(sc, IWN_DEBUG_CALIBRATE | IWN_DEBUG_STATS, "%s: received statistics, cmd %d, len %d\n", __func__, desc->type, le16toh(desc->len)); sc->calib_cnt = 0; /* Reset TX power calibration timeout. */ /* * Collect/track general statistics for reporting. * * This takes care of ensuring that the bluetooth sized message * will be correctly converted to the legacy sized message. */ iwn_stats_update(sc, calib, stats, le16toh(desc->len)); /* * And now, let's take a reference of it to use! */ lstats = &sc->last_stat; /* Test if temperature has changed. */ if (lstats->general.temp != sc->rawtemp) { /* Convert "raw" temperature to degC. */ sc->rawtemp = stats->general.temp; temp = ops->get_temperature(sc); DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: temperature %d\n", __func__, temp); /* Update TX power if need be (4965AGN only). */ if (sc->hw_type == IWN_HW_REV_TYPE_4965) iwn4965_power_calibration(sc, temp); } if (desc->type != IWN_BEACON_STATISTICS) return; /* Reply to a statistics request. */ sc->noise = iwn_get_noise(&lstats->rx.general); DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: noise %d\n", __func__, sc->noise); /* Test that RSSI and noise are present in stats report. */ if (le32toh(lstats->rx.general.flags) != 1) { DPRINTF(sc, IWN_DEBUG_ANY, "%s\n", "received statistics without RSSI"); return; } if (calib->state == IWN_CALIB_STATE_ASSOC) iwn_collect_noise(sc, &lstats->rx.general); else if (calib->state == IWN_CALIB_STATE_RUN) { iwn_tune_sensitivity(sc, &lstats->rx); /* * XXX TODO: Only run the RX recovery if we're associated! */ iwn_check_rx_recovery(sc, lstats); iwn_save_stats_counters(sc, lstats); } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); } /* * Save the relevant statistic counters for the next calibration * pass. */ static void iwn_save_stats_counters(struct iwn_softc *sc, const struct iwn_stats *rs) { struct iwn_calib_state *calib = &sc->calib; /* Save counters values for next call. */ calib->bad_plcp_cck = le32toh(rs->rx.cck.bad_plcp); calib->fa_cck = le32toh(rs->rx.cck.fa); calib->bad_plcp_ht = le32toh(rs->rx.ht.bad_plcp); calib->bad_plcp_ofdm = le32toh(rs->rx.ofdm.bad_plcp); calib->fa_ofdm = le32toh(rs->rx.ofdm.fa); /* Last time we received these tick values */ sc->last_calib_ticks = ticks; } /* * Process a TX_DONE firmware notification. Unfortunately, the 4965AGN * and 5000 adapters have different incompatible TX status formats. */ static void iwn4965_tx_done(struct iwn_softc *sc, struct iwn_rx_desc *desc, struct iwn_rx_data *data) { struct iwn4965_tx_stat *stat = (struct iwn4965_tx_stat *)(desc + 1); int qid = desc->qid & IWN_RX_DESC_QID_MSK; DPRINTF(sc, IWN_DEBUG_XMIT, "%s: " "qid %d idx %d RTS retries %d ACK retries %d nkill %d rate %x duration %d status %x\n", __func__, desc->qid, desc->idx, stat->rtsfailcnt, stat->ackfailcnt, stat->btkillcnt, stat->rate, le16toh(stat->duration), le32toh(stat->status)); if (qid >= sc->firstaggqueue && stat->nframes != 1) { iwn_ampdu_tx_done(sc, qid, stat->nframes, stat->rtsfailcnt, &stat->status); } else { iwn_tx_done(sc, desc, stat->rtsfailcnt, stat->ackfailcnt, le32toh(stat->status) & 0xff); } } static void iwn5000_tx_done(struct iwn_softc *sc, struct iwn_rx_desc *desc, struct iwn_rx_data *data) { struct iwn5000_tx_stat *stat = (struct iwn5000_tx_stat *)(desc + 1); int qid = desc->qid & IWN_RX_DESC_QID_MSK; DPRINTF(sc, IWN_DEBUG_XMIT, "%s: " "qid %d idx %d RTS retries %d ACK retries %d nkill %d rate %x duration %d status %x\n", __func__, desc->qid, desc->idx, stat->rtsfailcnt, stat->ackfailcnt, stat->btkillcnt, stat->rate, le16toh(stat->duration), le32toh(stat->status)); #ifdef notyet /* Reset TX scheduler slot. */ iwn5000_reset_sched(sc, qid, desc->idx); #endif if (qid >= sc->firstaggqueue && stat->nframes != 1) { iwn_ampdu_tx_done(sc, qid, stat->nframes, stat->rtsfailcnt, &stat->status); } else { iwn_tx_done(sc, desc, stat->rtsfailcnt, stat->ackfailcnt, le16toh(stat->status) & 0xff); } } static void iwn_adj_ampdu_ptr(struct iwn_softc *sc, struct iwn_tx_ring *ring) { int i; for (i = ring->read; i != ring->cur; i = (i + 1) % IWN_TX_RING_COUNT) { struct iwn_tx_data *data = &ring->data[i]; if (data->m != NULL) break; data->remapped = 0; } ring->read = i; } /* * Adapter-independent backend for TX_DONE firmware notifications. */ static void iwn_tx_done(struct iwn_softc *sc, struct iwn_rx_desc *desc, int rtsfailcnt, int ackfailcnt, uint8_t status) { struct ieee80211_ratectl_tx_status *txs = &sc->sc_txs; struct iwn_tx_ring *ring = &sc->txq[desc->qid & IWN_RX_DESC_QID_MSK]; struct iwn_tx_data *data = &ring->data[desc->idx]; struct mbuf *m; struct ieee80211_node *ni; if (__predict_false(data->m == NULL && ring->qid >= sc->firstaggqueue)) { /* * There is no frame; skip this entry. */ DPRINTF(sc, IWN_DEBUG_AMPDU, "%s: ring %d: no entry %d\n", __func__, ring->qid, desc->idx); return; } KASSERT(data->ni != NULL, ("no node")); KASSERT(data->m != NULL, ("no mbuf")); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Unmap and free mbuf. */ bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(ring->data_dmat, data->map); m = data->m, data->m = NULL; ni = data->ni, data->ni = NULL; data->long_retries = 0; if (ring->qid >= sc->firstaggqueue) iwn_adj_ampdu_ptr(sc, ring); /* * XXX f/w may hang (device timeout) when desc->idx - ring->read == 64 * (aggregation queues only). */ ring->queued--; iwn_check_tx_ring(sc, ring->qid); /* * Update rate control statistics for the node. */ txs->flags = IEEE80211_RATECTL_STATUS_SHORT_RETRY | IEEE80211_RATECTL_STATUS_LONG_RETRY; txs->short_retries = rtsfailcnt; txs->long_retries = ackfailcnt; if (!(status & IWN_TX_FAIL)) txs->status = IEEE80211_RATECTL_TX_SUCCESS; else { switch (status) { case IWN_TX_FAIL_SHORT_LIMIT: txs->status = IEEE80211_RATECTL_TX_FAIL_SHORT; break; case IWN_TX_FAIL_LONG_LIMIT: txs->status = IEEE80211_RATECTL_TX_FAIL_LONG; break; case IWN_TX_STATUS_FAIL_LIFE_EXPIRE: txs->status = IEEE80211_RATECTL_TX_FAIL_EXPIRED; break; default: txs->status = IEEE80211_RATECTL_TX_FAIL_UNSPECIFIED; break; } } ieee80211_ratectl_tx_complete(ni, txs); /* * Channels marked for "radar" require traffic to be received * to unlock before we can transmit. Until traffic is seen * any attempt to transmit is returned immediately with status * set to IWN_TX_FAIL_TX_LOCKED. Unfortunately this can easily * happen on first authenticate after scanning. To workaround * this we ignore a failure of this sort in AUTH state so the * 802.11 layer will fall back to using a timeout to wait for * the AUTH reply. This allows the firmware time to see * traffic so a subsequent retry of AUTH succeeds. It's * unclear why the firmware does not maintain state for * channels recently visited as this would allow immediate * use of the channel after a scan (where we see traffic). */ if (status == IWN_TX_FAIL_TX_LOCKED && ni->ni_vap->iv_state == IEEE80211_S_AUTH) ieee80211_tx_complete(ni, m, 0); else ieee80211_tx_complete(ni, m, (status & IWN_TX_FAIL) != 0); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); } /* * Process a "command done" firmware notification. This is where we wakeup * processes waiting for a synchronous command completion. */ static void iwn_cmd_done(struct iwn_softc *sc, struct iwn_rx_desc *desc) { struct iwn_tx_ring *ring; struct iwn_tx_data *data; int cmd_queue_num; if (sc->sc_flags & IWN_FLAG_PAN_SUPPORT) cmd_queue_num = IWN_PAN_CMD_QUEUE; else cmd_queue_num = IWN_CMD_QUEUE_NUM; if ((desc->qid & IWN_RX_DESC_QID_MSK) != cmd_queue_num) return; /* Not a command ack. */ ring = &sc->txq[cmd_queue_num]; data = &ring->data[desc->idx]; /* If the command was mapped in an mbuf, free it. */ if (data->m != NULL) { bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(ring->data_dmat, data->map); m_freem(data->m); data->m = NULL; } wakeup(&ring->desc[desc->idx]); } static int iwn_ampdu_check_bitmap(uint64_t bitmap, int start, int idx) { int bit, shift; bit = idx - start; shift = 0; if (bit >= 64) { shift = 0x100 - bit; bit = 0; } else if (bit <= -64) bit = 0x100 + bit; else if (bit < 0) { shift = -bit; bit = 0; } if (bit - shift >= 64) return (0); return ((bitmap & (1ULL << (bit - shift))) != 0); } /* * Firmware bug workaround: in case if 'retries' counter * overflows 'seqno' field will be incremented: * status|sequence|status|sequence|status|sequence * 0000 0A48 0001 0A49 0000 0A6A * 1000 0A48 1000 0A49 1000 0A6A * 2000 0A48 2000 0A49 2000 0A6A * ... * E000 0A48 E000 0A49 E000 0A6A * F000 0A48 F000 0A49 F000 0A6A * 0000 0A49 0000 0A49 0000 0A6B * 1000 0A49 1000 0A49 1000 0A6B * ... * D000 0A49 D000 0A49 D000 0A6B * E000 0A49 E001 0A49 E000 0A6B * F000 0A49 F001 0A49 F000 0A6B * 0000 0A4A 0000 0A4B 0000 0A6A * 1000 0A4A 1000 0A4B 1000 0A6A * ... * * Odd 'seqno' numbers are incremened by 2 every 2 overflows. * For even 'seqno' % 4 != 0 overflow is cyclic (0 -> +1 -> 0). * Not checked with nretries >= 64. * */ static int iwn_ampdu_index_check(struct iwn_softc *sc, struct iwn_tx_ring *ring, uint64_t bitmap, int start, int idx) { struct ieee80211com *ic = &sc->sc_ic; struct iwn_tx_data *data; int diff, min_retries, max_retries, new_idx, loop_end; new_idx = idx - IWN_LONG_RETRY_LIMIT_LOG; if (new_idx < 0) new_idx += IWN_TX_RING_COUNT; /* * Corner case: check if retry count is not too big; * reset device otherwise. */ if (!iwn_ampdu_check_bitmap(bitmap, start, new_idx)) { data = &ring->data[new_idx]; if (data->long_retries > IWN_LONG_RETRY_LIMIT) { device_printf(sc->sc_dev, "%s: retry count (%d) for idx %d/%d overflow, " "resetting...\n", __func__, data->long_retries, ring->qid, new_idx); ieee80211_restart_all(ic); return (-1); } } /* Correct index if needed. */ loop_end = idx; do { data = &ring->data[new_idx]; diff = idx - new_idx; if (diff < 0) diff += IWN_TX_RING_COUNT; min_retries = IWN_LONG_RETRY_FW_OVERFLOW * diff; if ((new_idx % 2) == 0) max_retries = IWN_LONG_RETRY_FW_OVERFLOW * (diff + 1); else max_retries = IWN_LONG_RETRY_FW_OVERFLOW * (diff + 2); if (!iwn_ampdu_check_bitmap(bitmap, start, new_idx) && ((data->long_retries >= min_retries && data->long_retries < max_retries) || (diff == 1 && (new_idx & 0x03) == 0x02 && data->long_retries >= IWN_LONG_RETRY_FW_OVERFLOW))) { DPRINTF(sc, IWN_DEBUG_AMPDU, "%s: correcting index %d -> %d in queue %d" " (retries %d)\n", __func__, idx, new_idx, ring->qid, data->long_retries); return (new_idx); } new_idx = (new_idx + 1) % IWN_TX_RING_COUNT; } while (new_idx != loop_end); return (idx); } static void iwn_ampdu_tx_done(struct iwn_softc *sc, int qid, int nframes, int rtsfailcnt, void *stat) { struct iwn_tx_ring *ring = &sc->txq[qid]; struct ieee80211_tx_ampdu *tap = sc->qid2tap[qid]; struct iwn_node *wn = (void *)tap->txa_ni; struct iwn_tx_data *data; uint64_t bitmap = 0; uint16_t *aggstatus = stat; uint8_t tid = tap->txa_tid; int bit, i, idx, shift, start, tx_err; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); start = le16toh(*(aggstatus + nframes * 2)) & 0xff; for (i = 0; i < nframes; i++) { uint16_t status = le16toh(aggstatus[i * 2]); if (status & IWN_AGG_TX_STATE_IGNORE_MASK) continue; idx = le16toh(aggstatus[i * 2 + 1]) & 0xff; data = &ring->data[idx]; if (data->remapped) { idx = iwn_ampdu_index_check(sc, ring, bitmap, start, idx); if (idx == -1) { /* skip error (device will be restarted anyway). */ continue; } /* Index may have changed. */ data = &ring->data[idx]; } /* * XXX Sometimes (rarely) some frames are excluded from events. * XXX Due to that long_retries counter may be wrong. */ data->long_retries &= ~0x0f; data->long_retries += IWN_AGG_TX_TRY_COUNT(status) + 1; if (data->long_retries >= IWN_LONG_RETRY_FW_OVERFLOW) { int diff, wrong_idx; diff = data->long_retries / IWN_LONG_RETRY_FW_OVERFLOW; wrong_idx = (idx + diff) % IWN_TX_RING_COUNT; /* * Mark the entry so the above code will check it * next time. */ ring->data[wrong_idx].remapped = 1; } if (status & IWN_AGG_TX_STATE_UNDERRUN_MSK) { /* * NB: count retries but postpone - it was not * transmitted. */ continue; } bit = idx - start; shift = 0; if (bit >= 64) { shift = 0x100 - bit; bit = 0; } else if (bit <= -64) bit = 0x100 + bit; else if (bit < 0) { shift = -bit; bit = 0; } bitmap = bitmap << shift; bitmap |= 1ULL << bit; } wn->agg[tid].startidx = start; wn->agg[tid].bitmap = bitmap; wn->agg[tid].short_retries = rtsfailcnt; DPRINTF(sc, IWN_DEBUG_AMPDU, "%s: nframes %d start %d bitmap %016jX\n", __func__, nframes, start, (uintmax_t)bitmap); i = ring->read; for (tx_err = 0; i != wn->agg[tid].startidx; i = (i + 1) % IWN_TX_RING_COUNT) { data = &ring->data[i]; data->remapped = 0; if (data->m == NULL) continue; tx_err++; iwn_agg_tx_complete(sc, ring, tid, i, 0); } ring->read = wn->agg[tid].startidx; ring->queued -= tx_err; iwn_check_tx_ring(sc, qid); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); } /* * Process an INT_FH_RX or INT_SW_RX interrupt. */ static void iwn_notif_intr(struct iwn_softc *sc) { struct iwn_ops *ops = &sc->ops; struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); uint16_t hw; int is_stopped; bus_dmamap_sync(sc->rxq.stat_dma.tag, sc->rxq.stat_dma.map, BUS_DMASYNC_POSTREAD); hw = le16toh(sc->rxq.stat->closed_count) & 0xfff; while (sc->rxq.cur != hw) { struct iwn_rx_data *data = &sc->rxq.data[sc->rxq.cur]; struct iwn_rx_desc *desc; bus_dmamap_sync(sc->rxq.data_dmat, data->map, BUS_DMASYNC_POSTREAD); desc = mtod(data->m, struct iwn_rx_desc *); DPRINTF(sc, IWN_DEBUG_RECV, "%s: cur=%d; qid %x idx %d flags %x type %d(%s) len %d\n", __func__, sc->rxq.cur, desc->qid & IWN_RX_DESC_QID_MSK, desc->idx, desc->flags, desc->type, iwn_intr_str(desc->type), le16toh(desc->len)); if (!(desc->qid & IWN_UNSOLICITED_RX_NOTIF)) /* Reply to a command. */ iwn_cmd_done(sc, desc); switch (desc->type) { case IWN_RX_PHY: iwn_rx_phy(sc, desc); break; case IWN_RX_DONE: /* 4965AGN only. */ case IWN_MPDU_RX_DONE: /* An 802.11 frame has been received. */ iwn_rx_done(sc, desc, data); is_stopped = (sc->sc_flags & IWN_FLAG_RUNNING) == 0; if (__predict_false(is_stopped)) return; break; case IWN_RX_COMPRESSED_BA: /* A Compressed BlockAck has been received. */ iwn_rx_compressed_ba(sc, desc); break; case IWN_TX_DONE: /* An 802.11 frame has been transmitted. */ ops->tx_done(sc, desc, data); break; case IWN_RX_STATISTICS: case IWN_BEACON_STATISTICS: iwn_rx_statistics(sc, desc); break; case IWN_BEACON_MISSED: { struct iwn_beacon_missed *miss = (struct iwn_beacon_missed *)(desc + 1); int misses; misses = le32toh(miss->consecutive); DPRINTF(sc, IWN_DEBUG_STATE, "%s: beacons missed %d/%d\n", __func__, misses, le32toh(miss->total)); /* * If more than 5 consecutive beacons are missed, * reinitialize the sensitivity state machine. */ if (vap->iv_state == IEEE80211_S_RUN && (ic->ic_flags & IEEE80211_F_SCAN) == 0) { if (misses > 5) (void)iwn_init_sensitivity(sc); if (misses >= vap->iv_bmissthreshold) { IWN_UNLOCK(sc); ieee80211_beacon_miss(ic); IWN_LOCK(sc); is_stopped = (sc->sc_flags & IWN_FLAG_RUNNING) == 0; if (__predict_false(is_stopped)) return; } } break; } case IWN_UC_READY: { struct iwn_ucode_info *uc = (struct iwn_ucode_info *)(desc + 1); /* The microcontroller is ready. */ DPRINTF(sc, IWN_DEBUG_RESET, "microcode alive notification version=%d.%d " "subtype=%x alive=%x\n", uc->major, uc->minor, uc->subtype, le32toh(uc->valid)); if (le32toh(uc->valid) != 1) { device_printf(sc->sc_dev, "microcontroller initialization failed"); break; } if (uc->subtype == IWN_UCODE_INIT) { /* Save microcontroller report. */ memcpy(&sc->ucode_info, uc, sizeof (*uc)); } /* Save the address of the error log in SRAM. */ sc->errptr = le32toh(uc->errptr); break; } #ifdef IWN_DEBUG case IWN_STATE_CHANGED: { /* * State change allows hardware switch change to be * noted. However, we handle this in iwn_intr as we * get both the enable/disble intr. */ uint32_t *status = (uint32_t *)(desc + 1); DPRINTF(sc, IWN_DEBUG_INTR | IWN_DEBUG_STATE, "state changed to %x\n", le32toh(*status)); break; } case IWN_START_SCAN: { struct iwn_start_scan *scan = (struct iwn_start_scan *)(desc + 1); DPRINTF(sc, IWN_DEBUG_ANY, "%s: scanning channel %d status %x\n", __func__, scan->chan, le32toh(scan->status)); break; } #endif case IWN_STOP_SCAN: { #ifdef IWN_DEBUG struct iwn_stop_scan *scan = (struct iwn_stop_scan *)(desc + 1); DPRINTF(sc, IWN_DEBUG_STATE | IWN_DEBUG_SCAN, "scan finished nchan=%d status=%d chan=%d\n", scan->nchan, scan->status, scan->chan); #endif sc->sc_is_scanning = 0; callout_stop(&sc->scan_timeout); IWN_UNLOCK(sc); ieee80211_scan_next(vap); IWN_LOCK(sc); is_stopped = (sc->sc_flags & IWN_FLAG_RUNNING) == 0; if (__predict_false(is_stopped)) return; break; } case IWN5000_CALIBRATION_RESULT: iwn5000_rx_calib_results(sc, desc); break; case IWN5000_CALIBRATION_DONE: sc->sc_flags |= IWN_FLAG_CALIB_DONE; wakeup(sc); break; } sc->rxq.cur = (sc->rxq.cur + 1) % IWN_RX_RING_COUNT; } /* Tell the firmware what we have processed. */ hw = (hw == 0) ? IWN_RX_RING_COUNT - 1 : hw - 1; IWN_WRITE(sc, IWN_FH_RX_WPTR, hw & ~7); } /* * Process an INT_WAKEUP interrupt raised when the microcontroller wakes up * from power-down sleep mode. */ static void iwn_wakeup_intr(struct iwn_softc *sc) { int qid; DPRINTF(sc, IWN_DEBUG_RESET, "%s: ucode wakeup from power-down sleep\n", __func__); /* Wakeup RX and TX rings. */ IWN_WRITE(sc, IWN_FH_RX_WPTR, sc->rxq.cur & ~7); for (qid = 0; qid < sc->ntxqs; qid++) { struct iwn_tx_ring *ring = &sc->txq[qid]; IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | ring->cur); } } static void iwn_rftoggle_task(void *arg, int npending) { struct iwn_softc *sc = arg; struct ieee80211com *ic = &sc->sc_ic; uint32_t tmp; IWN_LOCK(sc); tmp = IWN_READ(sc, IWN_GP_CNTRL); IWN_UNLOCK(sc); device_printf(sc->sc_dev, "RF switch: radio %s\n", (tmp & IWN_GP_CNTRL_RFKILL) ? "enabled" : "disabled"); if (!(tmp & IWN_GP_CNTRL_RFKILL)) { ieee80211_suspend_all(ic); /* Enable interrupts to get RF toggle notification. */ IWN_LOCK(sc); IWN_WRITE(sc, IWN_INT, 0xffffffff); IWN_WRITE(sc, IWN_INT_MASK, sc->int_mask); IWN_UNLOCK(sc); } else ieee80211_resume_all(ic); } /* * Dump the error log of the firmware when a firmware panic occurs. Although * we can't debug the firmware because it is neither open source nor free, it * can help us to identify certain classes of problems. */ static void iwn_fatal_intr(struct iwn_softc *sc) { struct iwn_fw_dump dump; int i; IWN_LOCK_ASSERT(sc); /* Force a complete recalibration on next init. */ sc->sc_flags &= ~IWN_FLAG_CALIB_DONE; /* Check that the error log address is valid. */ if (sc->errptr < IWN_FW_DATA_BASE || sc->errptr + sizeof (dump) > IWN_FW_DATA_BASE + sc->fw_data_maxsz) { printf("%s: bad firmware error log address 0x%08x\n", __func__, sc->errptr); return; } if (iwn_nic_lock(sc) != 0) { printf("%s: could not read firmware error log\n", __func__); return; } /* Read firmware error log from SRAM. */ iwn_mem_read_region_4(sc, sc->errptr, (uint32_t *)&dump, sizeof (dump) / sizeof (uint32_t)); iwn_nic_unlock(sc); if (dump.valid == 0) { printf("%s: firmware error log is empty\n", __func__); return; } printf("firmware error log:\n"); printf(" error type = \"%s\" (0x%08X)\n", (dump.id < nitems(iwn_fw_errmsg)) ? iwn_fw_errmsg[dump.id] : "UNKNOWN", dump.id); printf(" program counter = 0x%08X\n", dump.pc); printf(" source line = 0x%08X\n", dump.src_line); printf(" error data = 0x%08X%08X\n", dump.error_data[0], dump.error_data[1]); printf(" branch link = 0x%08X%08X\n", dump.branch_link[0], dump.branch_link[1]); printf(" interrupt link = 0x%08X%08X\n", dump.interrupt_link[0], dump.interrupt_link[1]); printf(" time = %u\n", dump.time[0]); /* Dump driver status (TX and RX rings) while we're here. */ printf("driver status:\n"); for (i = 0; i < sc->ntxqs; i++) { struct iwn_tx_ring *ring = &sc->txq[i]; printf(" tx ring %2d: qid=%-2d cur=%-3d queued=%-3d\n", i, ring->qid, ring->cur, ring->queued); } printf(" rx ring: cur=%d\n", sc->rxq.cur); } static void iwn_intr(void *arg) { struct iwn_softc *sc = arg; uint32_t r1, r2, tmp; IWN_LOCK(sc); /* Disable interrupts. */ IWN_WRITE(sc, IWN_INT_MASK, 0); /* Read interrupts from ICT (fast) or from registers (slow). */ if (sc->sc_flags & IWN_FLAG_USE_ICT) { bus_dmamap_sync(sc->ict_dma.tag, sc->ict_dma.map, BUS_DMASYNC_POSTREAD); tmp = 0; while (sc->ict[sc->ict_cur] != 0) { tmp |= sc->ict[sc->ict_cur]; sc->ict[sc->ict_cur] = 0; /* Acknowledge. */ sc->ict_cur = (sc->ict_cur + 1) % IWN_ICT_COUNT; } tmp = le32toh(tmp); if (tmp == 0xffffffff) /* Shouldn't happen. */ tmp = 0; else if (tmp & 0xc0000) /* Workaround a HW bug. */ tmp |= 0x8000; r1 = (tmp & 0xff00) << 16 | (tmp & 0xff); r2 = 0; /* Unused. */ } else { r1 = IWN_READ(sc, IWN_INT); if (r1 == 0xffffffff || (r1 & 0xfffffff0) == 0xa5a5a5a0) { IWN_UNLOCK(sc); return; /* Hardware gone! */ } r2 = IWN_READ(sc, IWN_FH_INT); } DPRINTF(sc, IWN_DEBUG_INTR, "interrupt reg1=0x%08x reg2=0x%08x\n" , r1, r2); if (r1 == 0 && r2 == 0) goto done; /* Interrupt not for us. */ /* Acknowledge interrupts. */ IWN_WRITE(sc, IWN_INT, r1); if (!(sc->sc_flags & IWN_FLAG_USE_ICT)) IWN_WRITE(sc, IWN_FH_INT, r2); if (r1 & IWN_INT_RF_TOGGLED) { taskqueue_enqueue(sc->sc_tq, &sc->sc_rftoggle_task); goto done; } if (r1 & IWN_INT_CT_REACHED) { device_printf(sc->sc_dev, "%s: critical temperature reached!\n", __func__); } if (r1 & (IWN_INT_SW_ERR | IWN_INT_HW_ERR)) { device_printf(sc->sc_dev, "%s: fatal firmware error\n", __func__); #ifdef IWN_DEBUG iwn_debug_register(sc); #endif /* Dump firmware error log and stop. */ iwn_fatal_intr(sc); taskqueue_enqueue(sc->sc_tq, &sc->sc_panic_task); goto done; } if ((r1 & (IWN_INT_FH_RX | IWN_INT_SW_RX | IWN_INT_RX_PERIODIC)) || (r2 & IWN_FH_INT_RX)) { if (sc->sc_flags & IWN_FLAG_USE_ICT) { if (r1 & (IWN_INT_FH_RX | IWN_INT_SW_RX)) IWN_WRITE(sc, IWN_FH_INT, IWN_FH_INT_RX); IWN_WRITE_1(sc, IWN_INT_PERIODIC, IWN_INT_PERIODIC_DIS); iwn_notif_intr(sc); if (r1 & (IWN_INT_FH_RX | IWN_INT_SW_RX)) { IWN_WRITE_1(sc, IWN_INT_PERIODIC, IWN_INT_PERIODIC_ENA); } } else iwn_notif_intr(sc); } if ((r1 & IWN_INT_FH_TX) || (r2 & IWN_FH_INT_TX)) { if (sc->sc_flags & IWN_FLAG_USE_ICT) IWN_WRITE(sc, IWN_FH_INT, IWN_FH_INT_TX); wakeup(sc); /* FH DMA transfer completed. */ } if (r1 & IWN_INT_ALIVE) wakeup(sc); /* Firmware is alive. */ if (r1 & IWN_INT_WAKEUP) iwn_wakeup_intr(sc); done: /* Re-enable interrupts. */ if (sc->sc_flags & IWN_FLAG_RUNNING) IWN_WRITE(sc, IWN_INT_MASK, sc->int_mask); IWN_UNLOCK(sc); } /* * Update TX scheduler ring when transmitting an 802.11 frame (4965AGN and * 5000 adapters use a slightly different format). */ static void iwn4965_update_sched(struct iwn_softc *sc, int qid, int idx, uint8_t id, uint16_t len) { uint16_t *w = &sc->sched[qid * IWN4965_SCHED_COUNT + idx]; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); *w = htole16(len + 8); bus_dmamap_sync(sc->sched_dma.tag, sc->sched_dma.map, BUS_DMASYNC_PREWRITE); if (idx < IWN_SCHED_WINSZ) { *(w + IWN_TX_RING_COUNT) = *w; bus_dmamap_sync(sc->sched_dma.tag, sc->sched_dma.map, BUS_DMASYNC_PREWRITE); } } static void iwn5000_update_sched(struct iwn_softc *sc, int qid, int idx, uint8_t id, uint16_t len) { uint16_t *w = &sc->sched[qid * IWN5000_SCHED_COUNT + idx]; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); *w = htole16(id << 12 | (len + 8)); bus_dmamap_sync(sc->sched_dma.tag, sc->sched_dma.map, BUS_DMASYNC_PREWRITE); if (idx < IWN_SCHED_WINSZ) { *(w + IWN_TX_RING_COUNT) = *w; bus_dmamap_sync(sc->sched_dma.tag, sc->sched_dma.map, BUS_DMASYNC_PREWRITE); } } #ifdef notyet static void iwn5000_reset_sched(struct iwn_softc *sc, int qid, int idx) { uint16_t *w = &sc->sched[qid * IWN5000_SCHED_COUNT + idx]; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); *w = (*w & htole16(0xf000)) | htole16(1); bus_dmamap_sync(sc->sched_dma.tag, sc->sched_dma.map, BUS_DMASYNC_PREWRITE); if (idx < IWN_SCHED_WINSZ) { *(w + IWN_TX_RING_COUNT) = *w; bus_dmamap_sync(sc->sched_dma.tag, sc->sched_dma.map, BUS_DMASYNC_PREWRITE); } } #endif /* * Check whether OFDM 11g protection will be enabled for the given rate. * * The original driver code only enabled protection for OFDM rates. * It didn't check to see whether it was operating in 11a or 11bg mode. */ static int iwn_check_rate_needs_protection(struct iwn_softc *sc, struct ieee80211vap *vap, uint8_t rate) { struct ieee80211com *ic = vap->iv_ic; /* * Not in 2GHz mode? Then there's no need to enable OFDM * 11bg protection. */ if (! IEEE80211_IS_CHAN_2GHZ(ic->ic_curchan)) { return (0); } /* * 11bg protection not enabled? Then don't use it. */ if ((ic->ic_flags & IEEE80211_F_USEPROT) == 0) return (0); /* * If it's an 11n rate - no protection. * We'll do it via a specific 11n check. */ if (rate & IEEE80211_RATE_MCS) { return (0); } /* * Do a rate table lookup. If the PHY is CCK, * don't do protection. */ if (ieee80211_rate2phytype(ic->ic_rt, rate) == IEEE80211_T_CCK) return (0); /* * Yup, enable protection. */ return (1); } /* * return a value between 0 and IWN_MAX_TX_RETRIES-1 as an index into * the link quality table that reflects this particular entry. */ static int iwn_tx_rate_to_linkq_offset(struct iwn_softc *sc, struct ieee80211_node *ni, uint8_t rate) { struct ieee80211_rateset *rs; int is_11n; int nr; int i; uint8_t cmp_rate; /* * Figure out if we're using 11n or not here. */ if (IEEE80211_IS_CHAN_HT(ni->ni_chan) && ni->ni_htrates.rs_nrates > 0) is_11n = 1; else is_11n = 0; /* * Use the correct rate table. */ if (is_11n) { rs = (struct ieee80211_rateset *) &ni->ni_htrates; nr = ni->ni_htrates.rs_nrates; } else { rs = &ni->ni_rates; nr = rs->rs_nrates; } /* * Find the relevant link quality entry in the table. */ for (i = 0; i < nr && i < IWN_MAX_TX_RETRIES - 1 ; i++) { /* * The link quality table index starts at 0 == highest * rate, so we walk the rate table backwards. */ cmp_rate = rs->rs_rates[(nr - 1) - i]; if (rate & IEEE80211_RATE_MCS) cmp_rate |= IEEE80211_RATE_MCS; #if 0 DPRINTF(sc, IWN_DEBUG_XMIT, "%s: idx %d: nr=%d, rate=0x%02x, rateentry=0x%02x\n", __func__, i, nr, rate, cmp_rate); #endif if (cmp_rate == rate) return (i); } /* Failed? Start at the end */ return (IWN_MAX_TX_RETRIES - 1); } static int iwn_tx_data(struct iwn_softc *sc, struct mbuf *m, struct ieee80211_node *ni) { const struct ieee80211_txparam *tp = ni->ni_txparms; struct ieee80211vap *vap = ni->ni_vap; struct ieee80211com *ic = ni->ni_ic; struct iwn_node *wn = (void *)ni; struct iwn_tx_ring *ring; struct iwn_tx_cmd *cmd; struct iwn_cmd_data *tx; struct ieee80211_frame *wh; struct ieee80211_key *k = NULL; uint32_t flags; uint16_t qos; uint8_t tid, type; int ac, totlen, rate; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); IWN_LOCK_ASSERT(sc); wh = mtod(m, struct ieee80211_frame *); type = wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK; /* Select EDCA Access Category and TX ring for this frame. */ if (IEEE80211_QOS_HAS_SEQ(wh)) { qos = ((const struct ieee80211_qosframe *)wh)->i_qos[0]; tid = qos & IEEE80211_QOS_TID; } else { qos = 0; tid = 0; } /* Choose a TX rate index. */ if (type == IEEE80211_FC0_TYPE_MGT || type == IEEE80211_FC0_TYPE_CTL || (m->m_flags & M_EAPOL) != 0) rate = tp->mgmtrate; else if (IEEE80211_IS_MULTICAST(wh->i_addr1)) rate = tp->mcastrate; else if (tp->ucastrate != IEEE80211_FIXED_RATE_NONE) rate = tp->ucastrate; else { /* XXX pass pktlen */ (void) ieee80211_ratectl_rate(ni, NULL, 0); rate = ni->ni_txrate; } /* * XXX TODO: Group addressed frames aren't aggregated and must * go to the normal non-aggregation queue, and have a NONQOS TID * assigned from net80211. */ ac = M_WME_GETAC(m); if (m->m_flags & M_AMPDU_MPDU) { struct ieee80211_tx_ampdu *tap = &ni->ni_tx_ampdu[ac]; if (!IEEE80211_AMPDU_RUNNING(tap)) return (EINVAL); ac = *(int *)tap->txa_private; } /* Encrypt the frame if need be. */ if (wh->i_fc[1] & IEEE80211_FC1_PROTECTED) { /* Retrieve key for TX. */ k = ieee80211_crypto_encap(ni, m); if (k == NULL) { return ENOBUFS; } /* 802.11 header may have moved. */ wh = mtod(m, struct ieee80211_frame *); } totlen = m->m_pkthdr.len; if (ieee80211_radiotap_active_vap(vap)) { struct iwn_tx_radiotap_header *tap = &sc->sc_txtap; tap->wt_flags = 0; tap->wt_rate = rate; if (k != NULL) tap->wt_flags |= IEEE80211_RADIOTAP_F_WEP; ieee80211_radiotap_tx(vap, m); } flags = 0; if (!IEEE80211_IS_MULTICAST(wh->i_addr1)) { /* Unicast frame, check if an ACK is expected. */ if (!qos || (qos & IEEE80211_QOS_ACKPOLICY) != IEEE80211_QOS_ACKPOLICY_NOACK) flags |= IWN_TX_NEED_ACK; } if ((wh->i_fc[0] & (IEEE80211_FC0_TYPE_MASK | IEEE80211_FC0_SUBTYPE_MASK)) == (IEEE80211_FC0_TYPE_CTL | IEEE80211_FC0_SUBTYPE_BAR)) flags |= IWN_TX_IMM_BA; /* Cannot happen yet. */ if (wh->i_fc[1] & IEEE80211_FC1_MORE_FRAG) flags |= IWN_TX_MORE_FRAG; /* Cannot happen yet. */ /* Check if frame must be protected using RTS/CTS or CTS-to-self. */ if (!IEEE80211_IS_MULTICAST(wh->i_addr1)) { /* NB: Group frames are sent using CCK in 802.11b/g. */ if (totlen + IEEE80211_CRC_LEN > vap->iv_rtsthreshold) { flags |= IWN_TX_NEED_RTS; } else if (iwn_check_rate_needs_protection(sc, vap, rate)) { if (ic->ic_protmode == IEEE80211_PROT_CTSONLY) flags |= IWN_TX_NEED_CTS; else if (ic->ic_protmode == IEEE80211_PROT_RTSCTS) flags |= IWN_TX_NEED_RTS; } else if ((rate & IEEE80211_RATE_MCS) && (ic->ic_htprotmode == IEEE80211_PROT_RTSCTS)) { flags |= IWN_TX_NEED_RTS; } /* XXX HT protection? */ if (flags & (IWN_TX_NEED_RTS | IWN_TX_NEED_CTS)) { if (sc->hw_type != IWN_HW_REV_TYPE_4965) { /* 5000 autoselects RTS/CTS or CTS-to-self. */ flags &= ~(IWN_TX_NEED_RTS | IWN_TX_NEED_CTS); flags |= IWN_TX_NEED_PROTECTION; } else flags |= IWN_TX_FULL_TXOP; } } ring = &sc->txq[ac]; if (m->m_flags & M_AMPDU_MPDU) { uint16_t seqno = ni->ni_txseqs[tid]; if (ring->queued > IWN_TX_RING_COUNT / 2 && (ring->cur + 1) % IWN_TX_RING_COUNT == ring->read) { DPRINTF(sc, IWN_DEBUG_AMPDU, "%s: no more space " "(queued %d) left in %d queue!\n", __func__, ring->queued, ac); return (ENOBUFS); } /* * Queue this frame to the hardware ring that we've * negotiated AMPDU TX on. * * Note that the sequence number must match the TX slot * being used! */ if ((seqno % 256) != ring->cur) { device_printf(sc->sc_dev, "%s: m=%p: seqno (%d) (%d) != ring index (%d) !\n", __func__, m, seqno, seqno % 256, ring->cur); /* XXX until D9195 will not be committed */ ni->ni_txseqs[tid] &= ~0xff; ni->ni_txseqs[tid] += ring->cur; seqno = ni->ni_txseqs[tid]; } *(uint16_t *)wh->i_seq = htole16(seqno << IEEE80211_SEQ_SEQ_SHIFT); ni->ni_txseqs[tid]++; } /* Prepare TX firmware command. */ cmd = &ring->cmd[ring->cur]; tx = (struct iwn_cmd_data *)cmd->data; /* NB: No need to clear tx, all fields are reinitialized here. */ tx->scratch = 0; /* clear "scratch" area */ if (IEEE80211_IS_MULTICAST(wh->i_addr1) || type != IEEE80211_FC0_TYPE_DATA) tx->id = sc->broadcast_id; else tx->id = wn->id; if (type == IEEE80211_FC0_TYPE_MGT) { uint8_t subtype = wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK; /* Tell HW to set timestamp in probe responses. */ if (subtype == IEEE80211_FC0_SUBTYPE_PROBE_RESP) flags |= IWN_TX_INSERT_TSTAMP; if (subtype == IEEE80211_FC0_SUBTYPE_ASSOC_REQ || subtype == IEEE80211_FC0_SUBTYPE_REASSOC_REQ) tx->timeout = htole16(3); else tx->timeout = htole16(2); } else tx->timeout = htole16(0); if (tx->id == sc->broadcast_id) { /* Group or management frame. */ tx->linkq = 0; } else { tx->linkq = iwn_tx_rate_to_linkq_offset(sc, ni, rate); flags |= IWN_TX_LINKQ; /* enable MRR */ } tx->tid = tid; tx->rts_ntries = 60; tx->data_ntries = 15; tx->lifetime = htole32(IWN_LIFETIME_INFINITE); tx->rate = iwn_rate_to_plcp(sc, ni, rate); tx->security = 0; tx->flags = htole32(flags); return (iwn_tx_cmd(sc, m, ni, ring)); } static int iwn_tx_data_raw(struct iwn_softc *sc, struct mbuf *m, struct ieee80211_node *ni, const struct ieee80211_bpf_params *params) { struct ieee80211vap *vap = ni->ni_vap; struct iwn_tx_cmd *cmd; struct iwn_cmd_data *tx; struct ieee80211_frame *wh; struct iwn_tx_ring *ring; uint32_t flags; int ac, rate; uint8_t type; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); IWN_LOCK_ASSERT(sc); wh = mtod(m, struct ieee80211_frame *); type = wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK; ac = params->ibp_pri & 3; /* Choose a TX rate. */ rate = params->ibp_rate0; flags = 0; if ((params->ibp_flags & IEEE80211_BPF_NOACK) == 0) flags |= IWN_TX_NEED_ACK; if (params->ibp_flags & IEEE80211_BPF_RTS) { if (sc->hw_type != IWN_HW_REV_TYPE_4965) { /* 5000 autoselects RTS/CTS or CTS-to-self. */ flags &= ~IWN_TX_NEED_RTS; flags |= IWN_TX_NEED_PROTECTION; } else flags |= IWN_TX_NEED_RTS | IWN_TX_FULL_TXOP; } if (params->ibp_flags & IEEE80211_BPF_CTS) { if (sc->hw_type != IWN_HW_REV_TYPE_4965) { /* 5000 autoselects RTS/CTS or CTS-to-self. */ flags &= ~IWN_TX_NEED_CTS; flags |= IWN_TX_NEED_PROTECTION; } else flags |= IWN_TX_NEED_CTS | IWN_TX_FULL_TXOP; } if (ieee80211_radiotap_active_vap(vap)) { struct iwn_tx_radiotap_header *tap = &sc->sc_txtap; tap->wt_flags = 0; tap->wt_rate = rate; ieee80211_radiotap_tx(vap, m); } ring = &sc->txq[ac]; cmd = &ring->cmd[ring->cur]; tx = (struct iwn_cmd_data *)cmd->data; /* NB: No need to clear tx, all fields are reinitialized here. */ tx->scratch = 0; /* clear "scratch" area */ if (type == IEEE80211_FC0_TYPE_MGT) { uint8_t subtype = wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK; /* Tell HW to set timestamp in probe responses. */ if (subtype == IEEE80211_FC0_SUBTYPE_PROBE_RESP) flags |= IWN_TX_INSERT_TSTAMP; if (subtype == IEEE80211_FC0_SUBTYPE_ASSOC_REQ || subtype == IEEE80211_FC0_SUBTYPE_REASSOC_REQ) tx->timeout = htole16(3); else tx->timeout = htole16(2); } else tx->timeout = htole16(0); tx->tid = 0; tx->id = sc->broadcast_id; tx->rts_ntries = params->ibp_try1; tx->data_ntries = params->ibp_try0; tx->lifetime = htole32(IWN_LIFETIME_INFINITE); tx->rate = iwn_rate_to_plcp(sc, ni, rate); tx->security = 0; tx->flags = htole32(flags); /* Group or management frame. */ tx->linkq = 0; return (iwn_tx_cmd(sc, m, ni, ring)); } static int iwn_tx_cmd(struct iwn_softc *sc, struct mbuf *m, struct ieee80211_node *ni, struct iwn_tx_ring *ring) { struct iwn_ops *ops = &sc->ops; struct iwn_tx_cmd *cmd; struct iwn_cmd_data *tx; struct ieee80211_frame *wh; struct iwn_tx_desc *desc; struct iwn_tx_data *data; bus_dma_segment_t *seg, segs[IWN_MAX_SCATTER]; struct mbuf *m1; u_int hdrlen; int totlen, error, pad, nsegs = 0, i; wh = mtod(m, struct ieee80211_frame *); hdrlen = ieee80211_anyhdrsize(wh); totlen = m->m_pkthdr.len; desc = &ring->desc[ring->cur]; data = &ring->data[ring->cur]; if (__predict_false(data->m != NULL || data->ni != NULL)) { device_printf(sc->sc_dev, "%s: ni (%p) or m (%p) for idx %d " "in queue %d is not NULL!\n", __func__, data->ni, data->m, ring->cur, ring->qid); return EIO; } /* Prepare TX firmware command. */ cmd = &ring->cmd[ring->cur]; cmd->code = IWN_CMD_TX_DATA; cmd->flags = 0; cmd->qid = ring->qid; cmd->idx = ring->cur; tx = (struct iwn_cmd_data *)cmd->data; tx->len = htole16(totlen); /* Set physical address of "scratch area". */ tx->loaddr = htole32(IWN_LOADDR(data->scratch_paddr)); tx->hiaddr = IWN_HIADDR(data->scratch_paddr); if (hdrlen & 3) { /* First segment length must be a multiple of 4. */ tx->flags |= htole32(IWN_TX_NEED_PADDING); pad = 4 - (hdrlen & 3); } else pad = 0; /* Copy 802.11 header in TX command. */ memcpy((uint8_t *)(tx + 1), wh, hdrlen); /* Trim 802.11 header. */ m_adj(m, hdrlen); error = bus_dmamap_load_mbuf_sg(ring->data_dmat, data->map, m, segs, &nsegs, BUS_DMA_NOWAIT); if (error != 0) { if (error != EFBIG) { device_printf(sc->sc_dev, "%s: can't map mbuf (error %d)\n", __func__, error); return error; } /* Too many DMA segments, linearize mbuf. */ m1 = m_collapse(m, M_NOWAIT, IWN_MAX_SCATTER - 1); if (m1 == NULL) { device_printf(sc->sc_dev, "%s: could not defrag mbuf\n", __func__); return ENOBUFS; } m = m1; error = bus_dmamap_load_mbuf_sg(ring->data_dmat, data->map, m, segs, &nsegs, BUS_DMA_NOWAIT); if (error != 0) { /* XXX fix this */ /* * NB: Do not return error; * original mbuf does not exist anymore. */ device_printf(sc->sc_dev, "%s: can't map mbuf (error %d)\n", __func__, error); if_inc_counter(ni->ni_vap->iv_ifp, IFCOUNTER_OERRORS, 1); ieee80211_free_node(ni); m_freem(m); return 0; } } data->m = m; data->ni = ni; DPRINTF(sc, IWN_DEBUG_XMIT, "%s: qid %d idx %d len %d nsegs %d " "plcp %d\n", __func__, ring->qid, ring->cur, totlen, nsegs, tx->rate); /* Fill TX descriptor. */ desc->nsegs = 1; if (m->m_len != 0) desc->nsegs += nsegs; /* First DMA segment is used by the TX command. */ desc->segs[0].addr = htole32(IWN_LOADDR(data->cmd_paddr)); desc->segs[0].len = htole16(IWN_HIADDR(data->cmd_paddr) | (4 + sizeof (*tx) + hdrlen + pad) << 4); /* Other DMA segments are for data payload. */ seg = &segs[0]; for (i = 1; i <= nsegs; i++) { desc->segs[i].addr = htole32(IWN_LOADDR(seg->ds_addr)); desc->segs[i].len = htole16(IWN_HIADDR(seg->ds_addr) | seg->ds_len << 4); seg++; } bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_PREWRITE); bus_dmamap_sync(ring->cmd_dma.tag, ring->cmd_dma.map, BUS_DMASYNC_PREWRITE); bus_dmamap_sync(ring->desc_dma.tag, ring->desc_dma.map, BUS_DMASYNC_PREWRITE); /* Update TX scheduler. */ if (ring->qid >= sc->firstaggqueue) ops->update_sched(sc, ring->qid, ring->cur, tx->id, totlen); /* Kick TX ring. */ ring->cur = (ring->cur + 1) % IWN_TX_RING_COUNT; IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, ring->qid << 8 | ring->cur); /* Mark TX ring as full if we reach a certain threshold. */ if (++ring->queued > IWN_TX_RING_HIMARK) sc->qfullmsk |= 1 << ring->qid; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return 0; } static void iwn_xmit_task(void *arg0, int pending) { struct iwn_softc *sc = arg0; struct ieee80211_node *ni; struct mbuf *m; int error; struct ieee80211_bpf_params p; int have_p; DPRINTF(sc, IWN_DEBUG_XMIT, "%s: called\n", __func__); IWN_LOCK(sc); /* * Dequeue frames, attempt to transmit, * then disable beaconwait when we're done. */ while ((m = mbufq_dequeue(&sc->sc_xmit_queue)) != NULL) { have_p = 0; ni = (struct ieee80211_node *)m->m_pkthdr.rcvif; /* Get xmit params if appropriate */ if (ieee80211_get_xmit_params(m, &p) == 0) have_p = 1; DPRINTF(sc, IWN_DEBUG_XMIT, "%s: m=%p, have_p=%d\n", __func__, m, have_p); /* If we have xmit params, use them */ if (have_p) error = iwn_tx_data_raw(sc, m, ni, &p); else error = iwn_tx_data(sc, m, ni); if (error != 0) { if_inc_counter(ni->ni_vap->iv_ifp, IFCOUNTER_OERRORS, 1); ieee80211_free_node(ni); m_freem(m); } } sc->sc_beacon_wait = 0; IWN_UNLOCK(sc); } /* * raw frame xmit - free node/reference if failed. */ static int iwn_raw_xmit(struct ieee80211_node *ni, struct mbuf *m, const struct ieee80211_bpf_params *params) { struct ieee80211com *ic = ni->ni_ic; struct iwn_softc *sc = ic->ic_softc; int error = 0; DPRINTF(sc, IWN_DEBUG_XMIT | IWN_DEBUG_TRACE, "->%s begin\n", __func__); IWN_LOCK(sc); if ((sc->sc_flags & IWN_FLAG_RUNNING) == 0) { m_freem(m); IWN_UNLOCK(sc); return (ENETDOWN); } /* queue frame if we have to */ if (sc->sc_beacon_wait) { if (iwn_xmit_queue_enqueue(sc, m) != 0) { m_freem(m); IWN_UNLOCK(sc); return (ENOBUFS); } /* Queued, so just return OK */ IWN_UNLOCK(sc); return (0); } if (params == NULL) { /* * Legacy path; interpret frame contents to decide * precisely how to send the frame. */ error = iwn_tx_data(sc, m, ni); } else { /* * Caller supplied explicit parameters to use in * sending the frame. */ error = iwn_tx_data_raw(sc, m, ni, params); } if (error == 0) sc->sc_tx_timer = 5; else m_freem(m); IWN_UNLOCK(sc); DPRINTF(sc, IWN_DEBUG_TRACE | IWN_DEBUG_XMIT, "->%s: end\n",__func__); return (error); } /* * transmit - don't free mbuf if failed; don't free node ref if failed. */ static int iwn_transmit(struct ieee80211com *ic, struct mbuf *m) { struct iwn_softc *sc = ic->ic_softc; struct ieee80211_node *ni; int error; ni = (struct ieee80211_node *)m->m_pkthdr.rcvif; IWN_LOCK(sc); if ((sc->sc_flags & IWN_FLAG_RUNNING) == 0 || sc->sc_beacon_wait) { IWN_UNLOCK(sc); return (ENXIO); } if (sc->qfullmsk) { IWN_UNLOCK(sc); return (ENOBUFS); } error = iwn_tx_data(sc, m, ni); if (!error) sc->sc_tx_timer = 5; IWN_UNLOCK(sc); return (error); } static void iwn_scan_timeout(void *arg) { struct iwn_softc *sc = arg; struct ieee80211com *ic = &sc->sc_ic; ic_printf(ic, "scan timeout\n"); ieee80211_restart_all(ic); } static void iwn_watchdog(void *arg) { struct iwn_softc *sc = arg; struct ieee80211com *ic = &sc->sc_ic; IWN_LOCK_ASSERT(sc); KASSERT(sc->sc_flags & IWN_FLAG_RUNNING, ("not running")); DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); if (sc->sc_tx_timer > 0) { if (--sc->sc_tx_timer == 0) { ic_printf(ic, "device timeout\n"); ieee80211_restart_all(ic); return; } } callout_reset(&sc->watchdog_to, hz, iwn_watchdog, sc); } static int iwn_cdev_open(struct cdev *dev, int flags, int type, struct thread *td) { return (0); } static int iwn_cdev_close(struct cdev *dev, int flags, int type, struct thread *td) { return (0); } static int iwn_cdev_ioctl(struct cdev *dev, unsigned long cmd, caddr_t data, int fflag, struct thread *td) { int rc; struct iwn_softc *sc = dev->si_drv1; struct iwn_ioctl_data *d; rc = priv_check(td, PRIV_DRIVER); if (rc != 0) return (0); switch (cmd) { case SIOCGIWNSTATS: d = (struct iwn_ioctl_data *) data; IWN_LOCK(sc); /* XXX validate permissions/memory/etc? */ rc = copyout(&sc->last_stat, d->dst_addr, sizeof(struct iwn_stats)); IWN_UNLOCK(sc); break; case SIOCZIWNSTATS: IWN_LOCK(sc); memset(&sc->last_stat, 0, sizeof(struct iwn_stats)); IWN_UNLOCK(sc); break; default: rc = EINVAL; break; } return (rc); } static int iwn_ioctl(struct ieee80211com *ic, u_long cmd, void *data) { return (ENOTTY); } static void iwn_parent(struct ieee80211com *ic) { struct iwn_softc *sc = ic->ic_softc; struct ieee80211vap *vap; int error; if (ic->ic_nrunning > 0) { error = iwn_init(sc); switch (error) { case 0: ieee80211_start_all(ic); break; case 1: /* radio is disabled via RFkill switch */ taskqueue_enqueue(sc->sc_tq, &sc->sc_rftoggle_task); break; default: vap = TAILQ_FIRST(&ic->ic_vaps); if (vap != NULL) ieee80211_stop(vap); break; } } else iwn_stop(sc); } /* * Send a command to the firmware. */ static int iwn_cmd(struct iwn_softc *sc, int code, const void *buf, int size, int async) { struct iwn_tx_ring *ring; struct iwn_tx_desc *desc; struct iwn_tx_data *data; struct iwn_tx_cmd *cmd; struct mbuf *m; bus_addr_t paddr; int totlen, error; int cmd_queue_num; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); if (async == 0) IWN_LOCK_ASSERT(sc); if (sc->sc_flags & IWN_FLAG_PAN_SUPPORT) cmd_queue_num = IWN_PAN_CMD_QUEUE; else cmd_queue_num = IWN_CMD_QUEUE_NUM; ring = &sc->txq[cmd_queue_num]; desc = &ring->desc[ring->cur]; data = &ring->data[ring->cur]; totlen = 4 + size; if (size > sizeof cmd->data) { /* Command is too large to fit in a descriptor. */ if (totlen > MCLBYTES) return EINVAL; m = m_getjcl(M_NOWAIT, MT_DATA, M_PKTHDR, MJUMPAGESIZE); if (m == NULL) return ENOMEM; cmd = mtod(m, struct iwn_tx_cmd *); error = bus_dmamap_load(ring->data_dmat, data->map, cmd, totlen, iwn_dma_map_addr, &paddr, BUS_DMA_NOWAIT); if (error != 0) { m_freem(m); return error; } data->m = m; } else { cmd = &ring->cmd[ring->cur]; paddr = data->cmd_paddr; } cmd->code = code; cmd->flags = 0; cmd->qid = ring->qid; cmd->idx = ring->cur; memcpy(cmd->data, buf, size); desc->nsegs = 1; desc->segs[0].addr = htole32(IWN_LOADDR(paddr)); desc->segs[0].len = htole16(IWN_HIADDR(paddr) | totlen << 4); DPRINTF(sc, IWN_DEBUG_CMD, "%s: %s (0x%x) flags %d qid %d idx %d\n", __func__, iwn_intr_str(cmd->code), cmd->code, cmd->flags, cmd->qid, cmd->idx); if (size > sizeof cmd->data) { bus_dmamap_sync(ring->data_dmat, data->map, BUS_DMASYNC_PREWRITE); } else { bus_dmamap_sync(ring->cmd_dma.tag, ring->cmd_dma.map, BUS_DMASYNC_PREWRITE); } bus_dmamap_sync(ring->desc_dma.tag, ring->desc_dma.map, BUS_DMASYNC_PREWRITE); /* Kick command ring. */ ring->cur = (ring->cur + 1) % IWN_TX_RING_COUNT; IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, ring->qid << 8 | ring->cur); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return async ? 0 : msleep(desc, &sc->sc_mtx, PCATCH, "iwncmd", hz); } static int iwn4965_add_node(struct iwn_softc *sc, struct iwn_node_info *node, int async) { struct iwn4965_node_info hnode; caddr_t src, dst; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* * We use the node structure for 5000 Series internally (it is * a superset of the one for 4965AGN). We thus copy the common * fields before sending the command. */ src = (caddr_t)node; dst = (caddr_t)&hnode; memcpy(dst, src, 48); /* Skip TSC, RX MIC and TX MIC fields from ``src''. */ memcpy(dst + 48, src + 72, 20); return iwn_cmd(sc, IWN_CMD_ADD_NODE, &hnode, sizeof hnode, async); } static int iwn5000_add_node(struct iwn_softc *sc, struct iwn_node_info *node, int async) { DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* Direct mapping. */ return iwn_cmd(sc, IWN_CMD_ADD_NODE, node, sizeof (*node), async); } static int iwn_set_link_quality(struct iwn_softc *sc, struct ieee80211_node *ni) { struct iwn_node *wn = (void *)ni; struct ieee80211_rateset *rs; struct iwn_cmd_link_quality linkq; int i, rate, txrate; int is_11n; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); memset(&linkq, 0, sizeof linkq); linkq.id = wn->id; linkq.antmsk_1stream = iwn_get_1stream_tx_antmask(sc); linkq.antmsk_2stream = iwn_get_2stream_tx_antmask(sc); linkq.ampdu_max = 32; /* XXX negotiated? */ linkq.ampdu_threshold = 3; linkq.ampdu_limit = htole16(4000); /* 4ms */ DPRINTF(sc, IWN_DEBUG_XMIT, "%s: 1stream antenna=0x%02x, 2stream antenna=0x%02x, ntxstreams=%d\n", __func__, linkq.antmsk_1stream, linkq.antmsk_2stream, sc->ntxchains); /* * Are we using 11n rates? Ensure the channel is * 11n _and_ we have some 11n rates, or don't * try. */ if (IEEE80211_IS_CHAN_HT(ni->ni_chan) && ni->ni_htrates.rs_nrates > 0) { rs = (struct ieee80211_rateset *) &ni->ni_htrates; is_11n = 1; } else { rs = &ni->ni_rates; is_11n = 0; } /* Start at highest available bit-rate. */ /* * XXX this is all very dirty! */ if (is_11n) txrate = ni->ni_htrates.rs_nrates - 1; else txrate = rs->rs_nrates - 1; for (i = 0; i < IWN_MAX_TX_RETRIES; i++) { uint32_t plcp; /* * XXX TODO: ensure the last two slots are the two lowest * rate entries, just for now. */ if (i == 14 || i == 15) txrate = 0; if (is_11n) rate = IEEE80211_RATE_MCS | rs->rs_rates[txrate]; else rate = IEEE80211_RV(rs->rs_rates[txrate]); /* Do rate -> PLCP config mapping */ plcp = iwn_rate_to_plcp(sc, ni, rate); linkq.retry[i] = plcp; DPRINTF(sc, IWN_DEBUG_XMIT, "%s: i=%d, txrate=%d, rate=0x%02x, plcp=0x%08x\n", __func__, i, txrate, rate, le32toh(plcp)); /* * The mimo field is an index into the table which * indicates the first index where it and subsequent entries * will not be using MIMO. * * Since we're filling linkq from 0..15 and we're filling * from the highest MCS rates to the lowest rates, if we * _are_ doing a dual-stream rate, set mimo to idx+1 (ie, * the next entry.) That way if the next entry is a non-MIMO * entry, we're already pointing at it. */ if ((le32toh(plcp) & IWN_RFLAG_MCS) && IEEE80211_RV(le32toh(plcp)) > 7) linkq.mimo = i + 1; /* Next retry at immediate lower bit-rate. */ if (txrate > 0) txrate--; } /* * If we reached the end of the list and indeed we hit * all MIMO rates (eg 5300 doing MCS23-15) then yes, * set mimo to 15. Setting it to 16 panics the firmware. */ if (linkq.mimo > 15) linkq.mimo = 15; DPRINTF(sc, IWN_DEBUG_XMIT, "%s: mimo = %d\n", __func__, linkq.mimo); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return iwn_cmd(sc, IWN_CMD_LINK_QUALITY, &linkq, sizeof linkq, 1); } /* * Broadcast node is used to send group-addressed and management frames. */ static int iwn_add_broadcast_node(struct iwn_softc *sc, int async) { struct iwn_ops *ops = &sc->ops; struct ieee80211com *ic = &sc->sc_ic; struct iwn_node_info node; struct iwn_cmd_link_quality linkq; uint8_t txant; int i, error; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); sc->rxon = &sc->rx_on[IWN_RXON_BSS_CTX]; memset(&node, 0, sizeof node); IEEE80211_ADDR_COPY(node.macaddr, ieee80211broadcastaddr); node.id = sc->broadcast_id; DPRINTF(sc, IWN_DEBUG_RESET, "%s: adding broadcast node\n", __func__); if ((error = ops->add_node(sc, &node, async)) != 0) return error; /* Use the first valid TX antenna. */ txant = IWN_LSB(sc->txchainmask); memset(&linkq, 0, sizeof linkq); linkq.id = sc->broadcast_id; linkq.antmsk_1stream = iwn_get_1stream_tx_antmask(sc); linkq.antmsk_2stream = iwn_get_2stream_tx_antmask(sc); linkq.ampdu_max = 64; linkq.ampdu_threshold = 3; linkq.ampdu_limit = htole16(4000); /* 4ms */ /* Use lowest mandatory bit-rate. */ /* XXX rate table lookup? */ if (IEEE80211_IS_CHAN_5GHZ(ic->ic_curchan)) linkq.retry[0] = htole32(0xd); else linkq.retry[0] = htole32(10 | IWN_RFLAG_CCK); linkq.retry[0] |= htole32(IWN_RFLAG_ANT(txant)); /* Use same bit-rate for all TX retries. */ for (i = 1; i < IWN_MAX_TX_RETRIES; i++) { linkq.retry[i] = linkq.retry[0]; } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return iwn_cmd(sc, IWN_CMD_LINK_QUALITY, &linkq, sizeof linkq, async); } static int iwn_updateedca(struct ieee80211com *ic) { #define IWN_EXP2(x) ((1 << (x)) - 1) /* CWmin = 2^ECWmin - 1 */ struct iwn_softc *sc = ic->ic_softc; struct iwn_edca_params cmd; struct chanAccParams chp; int aci; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); ieee80211_wme_ic_getparams(ic, &chp); memset(&cmd, 0, sizeof cmd); cmd.flags = htole32(IWN_EDCA_UPDATE); IEEE80211_LOCK(ic); for (aci = 0; aci < WME_NUM_AC; aci++) { const struct wmeParams *ac = &chp.cap_wmeParams[aci]; cmd.ac[aci].aifsn = ac->wmep_aifsn; cmd.ac[aci].cwmin = htole16(IWN_EXP2(ac->wmep_logcwmin)); cmd.ac[aci].cwmax = htole16(IWN_EXP2(ac->wmep_logcwmax)); cmd.ac[aci].txoplimit = htole16(IEEE80211_TXOP_TO_US(ac->wmep_txopLimit)); } IEEE80211_UNLOCK(ic); IWN_LOCK(sc); (void)iwn_cmd(sc, IWN_CMD_EDCA_PARAMS, &cmd, sizeof cmd, 1); IWN_UNLOCK(sc); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return 0; #undef IWN_EXP2 } static void iwn_set_promisc(struct iwn_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; uint32_t promisc_filter; promisc_filter = IWN_FILTER_CTL | IWN_FILTER_PROMISC; if (ic->ic_promisc > 0 || ic->ic_opmode == IEEE80211_M_MONITOR) sc->rxon->filter |= htole32(promisc_filter); else sc->rxon->filter &= ~htole32(promisc_filter); } static void iwn_update_promisc(struct ieee80211com *ic) { struct iwn_softc *sc = ic->ic_softc; int error; if (ic->ic_opmode == IEEE80211_M_MONITOR) return; /* nothing to do */ IWN_LOCK(sc); if (!(sc->sc_flags & IWN_FLAG_RUNNING)) { IWN_UNLOCK(sc); return; } iwn_set_promisc(sc); if ((error = iwn_send_rxon(sc, 1, 1)) != 0) { device_printf(sc->sc_dev, "%s: could not send RXON, error %d\n", __func__, error); } IWN_UNLOCK(sc); } static void iwn_update_mcast(struct ieee80211com *ic) { /* Ignore */ } static void iwn_set_led(struct iwn_softc *sc, uint8_t which, uint8_t off, uint8_t on) { struct iwn_cmd_led led; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); #if 0 /* XXX don't set LEDs during scan? */ if (sc->sc_is_scanning) return; #endif /* Clear microcode LED ownership. */ IWN_CLRBITS(sc, IWN_LED, IWN_LED_BSM_CTRL); led.which = which; led.unit = htole32(10000); /* on/off in unit of 100ms */ led.off = off; led.on = on; (void)iwn_cmd(sc, IWN_CMD_SET_LED, &led, sizeof led, 1); } /* * Set the critical temperature at which the firmware will stop the radio * and notify us. */ static int iwn_set_critical_temp(struct iwn_softc *sc) { struct iwn_critical_temp crit; int32_t temp; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); IWN_WRITE(sc, IWN_UCODE_GP1_CLR, IWN_UCODE_GP1_CTEMP_STOP_RF); if (sc->hw_type == IWN_HW_REV_TYPE_5150) temp = (IWN_CTOK(110) - sc->temp_off) * -5; else if (sc->hw_type == IWN_HW_REV_TYPE_4965) temp = IWN_CTOK(110); else temp = 110; memset(&crit, 0, sizeof crit); crit.tempR = htole32(temp); DPRINTF(sc, IWN_DEBUG_RESET, "setting critical temp to %d\n", temp); return iwn_cmd(sc, IWN_CMD_SET_CRITICAL_TEMP, &crit, sizeof crit, 0); } static int iwn_set_timing(struct iwn_softc *sc, struct ieee80211_node *ni) { struct iwn_cmd_timing cmd; uint64_t val, mod; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); memset(&cmd, 0, sizeof cmd); memcpy(&cmd.tstamp, ni->ni_tstamp.data, sizeof (uint64_t)); cmd.bintval = htole16(ni->ni_intval); cmd.lintval = htole16(10); /* Compute remaining time until next beacon. */ val = (uint64_t)ni->ni_intval * IEEE80211_DUR_TU; mod = le64toh(cmd.tstamp) % val; cmd.binitval = htole32((uint32_t)(val - mod)); DPRINTF(sc, IWN_DEBUG_RESET, "timing bintval=%u tstamp=%ju, init=%u\n", ni->ni_intval, le64toh(cmd.tstamp), (uint32_t)(val - mod)); return iwn_cmd(sc, IWN_CMD_TIMING, &cmd, sizeof cmd, 1); } static void iwn4965_power_calibration(struct iwn_softc *sc, int temp) { DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* Adjust TX power if need be (delta >= 3 degC). */ DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: temperature %d->%d\n", __func__, sc->temp, temp); if (abs(temp - sc->temp) >= 3) { /* Record temperature of last calibration. */ sc->temp = temp; (void)iwn4965_set_txpower(sc, 1); } } /* * Set TX power for current channel (each rate has its own power settings). * This function takes into account the regulatory information from EEPROM, * the current temperature and the current voltage. */ static int iwn4965_set_txpower(struct iwn_softc *sc, int async) { /* Fixed-point arithmetic division using a n-bit fractional part. */ #define fdivround(a, b, n) \ ((((1 << n) * (a)) / (b) + (1 << n) / 2) / (1 << n)) /* Linear interpolation. */ #define interpolate(x, x1, y1, x2, y2, n) \ ((y1) + fdivround(((int)(x) - (x1)) * ((y2) - (y1)), (x2) - (x1), n)) static const int tdiv[IWN_NATTEN_GROUPS] = { 9, 8, 8, 8, 6 }; struct iwn_ucode_info *uc = &sc->ucode_info; struct iwn4965_cmd_txpower cmd; struct iwn4965_eeprom_chan_samples *chans; const uint8_t *rf_gain, *dsp_gain; int32_t vdiff, tdiff; int i, is_chan_5ghz, c, grp, maxpwr; uint8_t chan; sc->rxon = &sc->rx_on[IWN_RXON_BSS_CTX]; /* Retrieve current channel from last RXON. */ chan = sc->rxon->chan; is_chan_5ghz = (sc->rxon->flags & htole32(IWN_RXON_24GHZ)) == 0; DPRINTF(sc, IWN_DEBUG_RESET, "setting TX power for channel %d\n", chan); memset(&cmd, 0, sizeof cmd); cmd.band = is_chan_5ghz ? 0 : 1; cmd.chan = chan; if (is_chan_5ghz) { maxpwr = sc->maxpwr5GHz; rf_gain = iwn4965_rf_gain_5ghz; dsp_gain = iwn4965_dsp_gain_5ghz; } else { maxpwr = sc->maxpwr2GHz; rf_gain = iwn4965_rf_gain_2ghz; dsp_gain = iwn4965_dsp_gain_2ghz; } /* Compute voltage compensation. */ vdiff = ((int32_t)le32toh(uc->volt) - sc->eeprom_voltage) / 7; if (vdiff > 0) vdiff *= 2; if (abs(vdiff) > 2) vdiff = 0; DPRINTF(sc, IWN_DEBUG_CALIBRATE | IWN_DEBUG_TXPOW, "%s: voltage compensation=%d (UCODE=%d, EEPROM=%d)\n", __func__, vdiff, le32toh(uc->volt), sc->eeprom_voltage); /* Get channel attenuation group. */ if (chan <= 20) /* 1-20 */ grp = 4; else if (chan <= 43) /* 34-43 */ grp = 0; else if (chan <= 70) /* 44-70 */ grp = 1; else if (chan <= 124) /* 71-124 */ grp = 2; else /* 125-200 */ grp = 3; DPRINTF(sc, IWN_DEBUG_CALIBRATE | IWN_DEBUG_TXPOW, "%s: chan %d, attenuation group=%d\n", __func__, chan, grp); /* Get channel sub-band. */ for (i = 0; i < IWN_NBANDS; i++) if (sc->bands[i].lo != 0 && sc->bands[i].lo <= chan && chan <= sc->bands[i].hi) break; if (i == IWN_NBANDS) /* Can't happen in real-life. */ return EINVAL; chans = sc->bands[i].chans; DPRINTF(sc, IWN_DEBUG_CALIBRATE | IWN_DEBUG_TXPOW, "%s: chan %d sub-band=%d\n", __func__, chan, i); for (c = 0; c < 2; c++) { uint8_t power, gain, temp; int maxchpwr, pwr, ridx, idx; power = interpolate(chan, chans[0].num, chans[0].samples[c][1].power, chans[1].num, chans[1].samples[c][1].power, 1); gain = interpolate(chan, chans[0].num, chans[0].samples[c][1].gain, chans[1].num, chans[1].samples[c][1].gain, 1); temp = interpolate(chan, chans[0].num, chans[0].samples[c][1].temp, chans[1].num, chans[1].samples[c][1].temp, 1); DPRINTF(sc, IWN_DEBUG_CALIBRATE | IWN_DEBUG_TXPOW, "%s: Tx chain %d: power=%d gain=%d temp=%d\n", __func__, c, power, gain, temp); /* Compute temperature compensation. */ tdiff = ((sc->temp - temp) * 2) / tdiv[grp]; DPRINTF(sc, IWN_DEBUG_CALIBRATE | IWN_DEBUG_TXPOW, "%s: temperature compensation=%d (current=%d, EEPROM=%d)\n", __func__, tdiff, sc->temp, temp); for (ridx = 0; ridx <= IWN_RIDX_MAX; ridx++) { /* Convert dBm to half-dBm. */ maxchpwr = sc->maxpwr[chan] * 2; if ((ridx / 8) & 1) maxchpwr -= 6; /* MIMO 2T: -3dB */ pwr = maxpwr; /* Adjust TX power based on rate. */ if ((ridx % 8) == 5) pwr -= 15; /* OFDM48: -7.5dB */ else if ((ridx % 8) == 6) pwr -= 17; /* OFDM54: -8.5dB */ else if ((ridx % 8) == 7) pwr -= 20; /* OFDM60: -10dB */ else pwr -= 10; /* Others: -5dB */ /* Do not exceed channel max TX power. */ if (pwr > maxchpwr) pwr = maxchpwr; idx = gain - (pwr - power) - tdiff - vdiff; if ((ridx / 8) & 1) /* MIMO */ idx += (int32_t)le32toh(uc->atten[grp][c]); if (cmd.band == 0) idx += 9; /* 5GHz */ if (ridx == IWN_RIDX_MAX) idx += 5; /* CCK */ /* Make sure idx stays in a valid range. */ if (idx < 0) idx = 0; else if (idx > IWN4965_MAX_PWR_INDEX) idx = IWN4965_MAX_PWR_INDEX; DPRINTF(sc, IWN_DEBUG_CALIBRATE | IWN_DEBUG_TXPOW, "%s: Tx chain %d, rate idx %d: power=%d\n", __func__, c, ridx, idx); cmd.power[ridx].rf_gain[c] = rf_gain[idx]; cmd.power[ridx].dsp_gain[c] = dsp_gain[idx]; } } DPRINTF(sc, IWN_DEBUG_CALIBRATE | IWN_DEBUG_TXPOW, "%s: set tx power for chan %d\n", __func__, chan); return iwn_cmd(sc, IWN_CMD_TXPOWER, &cmd, sizeof cmd, async); #undef interpolate #undef fdivround } static int iwn5000_set_txpower(struct iwn_softc *sc, int async) { struct iwn5000_cmd_txpower cmd; int cmdid; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* * TX power calibration is handled automatically by the firmware * for 5000 Series. */ memset(&cmd, 0, sizeof cmd); cmd.global_limit = 2 * IWN5000_TXPOWER_MAX_DBM; /* 16 dBm */ cmd.flags = IWN5000_TXPOWER_NO_CLOSED; cmd.srv_limit = IWN5000_TXPOWER_AUTO; DPRINTF(sc, IWN_DEBUG_CALIBRATE | IWN_DEBUG_XMIT, "%s: setting TX power; rev=%d\n", __func__, IWN_UCODE_API(sc->ucode_rev)); if (IWN_UCODE_API(sc->ucode_rev) == 1) cmdid = IWN_CMD_TXPOWER_DBM_V1; else cmdid = IWN_CMD_TXPOWER_DBM; return iwn_cmd(sc, cmdid, &cmd, sizeof cmd, async); } /* * Retrieve the maximum RSSI (in dBm) among receivers. */ static int iwn4965_get_rssi(struct iwn_softc *sc, struct iwn_rx_stat *stat) { struct iwn4965_rx_phystat *phy = (void *)stat->phybuf; uint8_t mask, agc; int rssi; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); mask = (le16toh(phy->antenna) >> 4) & IWN_ANT_ABC; agc = (le16toh(phy->agc) >> 7) & 0x7f; rssi = 0; if (mask & IWN_ANT_A) rssi = MAX(rssi, phy->rssi[0]); if (mask & IWN_ANT_B) rssi = MAX(rssi, phy->rssi[2]); if (mask & IWN_ANT_C) rssi = MAX(rssi, phy->rssi[4]); DPRINTF(sc, IWN_DEBUG_RECV, "%s: agc %d mask 0x%x rssi %d %d %d result %d\n", __func__, agc, mask, phy->rssi[0], phy->rssi[2], phy->rssi[4], rssi - agc - IWN_RSSI_TO_DBM); return rssi - agc - IWN_RSSI_TO_DBM; } static int iwn5000_get_rssi(struct iwn_softc *sc, struct iwn_rx_stat *stat) { struct iwn5000_rx_phystat *phy = (void *)stat->phybuf; uint8_t agc; int rssi; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); agc = (le32toh(phy->agc) >> 9) & 0x7f; rssi = MAX(le16toh(phy->rssi[0]) & 0xff, le16toh(phy->rssi[1]) & 0xff); rssi = MAX(le16toh(phy->rssi[2]) & 0xff, rssi); DPRINTF(sc, IWN_DEBUG_RECV, "%s: agc %d rssi %d %d %d result %d\n", __func__, agc, phy->rssi[0], phy->rssi[1], phy->rssi[2], rssi - agc - IWN_RSSI_TO_DBM); return rssi - agc - IWN_RSSI_TO_DBM; } /* * Retrieve the average noise (in dBm) among receivers. */ static int iwn_get_noise(const struct iwn_rx_general_stats *stats) { int i, total, nbant, noise; total = nbant = 0; for (i = 0; i < 3; i++) { if ((noise = le32toh(stats->noise[i]) & 0xff) == 0) continue; total += noise; nbant++; } /* There should be at least one antenna but check anyway. */ return (nbant == 0) ? -127 : (total / nbant) - 107; } /* * Compute temperature (in degC) from last received statistics. */ static int iwn4965_get_temperature(struct iwn_softc *sc) { struct iwn_ucode_info *uc = &sc->ucode_info; int32_t r1, r2, r3, r4, temp; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); r1 = le32toh(uc->temp[0].chan20MHz); r2 = le32toh(uc->temp[1].chan20MHz); r3 = le32toh(uc->temp[2].chan20MHz); r4 = le32toh(sc->rawtemp); if (r1 == r3) /* Prevents division by 0 (should not happen). */ return 0; /* Sign-extend 23-bit R4 value to 32-bit. */ r4 = ((r4 & 0xffffff) ^ 0x800000) - 0x800000; /* Compute temperature in Kelvin. */ temp = (259 * (r4 - r2)) / (r3 - r1); temp = (temp * 97) / 100 + 8; DPRINTF(sc, IWN_DEBUG_ANY, "temperature %dK/%dC\n", temp, IWN_KTOC(temp)); return IWN_KTOC(temp); } static int iwn5000_get_temperature(struct iwn_softc *sc) { int32_t temp; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* * Temperature is not used by the driver for 5000 Series because * TX power calibration is handled by firmware. */ temp = le32toh(sc->rawtemp); if (sc->hw_type == IWN_HW_REV_TYPE_5150) { temp = (temp / -5) + sc->temp_off; temp = IWN_KTOC(temp); } return temp; } /* * Initialize sensitivity calibration state machine. */ static int iwn_init_sensitivity(struct iwn_softc *sc) { struct iwn_ops *ops = &sc->ops; struct iwn_calib_state *calib = &sc->calib; uint32_t flags; int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* Reset calibration state machine. */ memset(calib, 0, sizeof (*calib)); calib->state = IWN_CALIB_STATE_INIT; calib->cck_state = IWN_CCK_STATE_HIFA; /* Set initial correlation values. */ calib->ofdm_x1 = sc->limits->min_ofdm_x1; calib->ofdm_mrc_x1 = sc->limits->min_ofdm_mrc_x1; calib->ofdm_x4 = sc->limits->min_ofdm_x4; calib->ofdm_mrc_x4 = sc->limits->min_ofdm_mrc_x4; calib->cck_x4 = 125; calib->cck_mrc_x4 = sc->limits->min_cck_mrc_x4; calib->energy_cck = sc->limits->energy_cck; /* Write initial sensitivity. */ if ((error = iwn_send_sensitivity(sc)) != 0) return error; /* Write initial gains. */ if ((error = ops->init_gains(sc)) != 0) return error; /* Request statistics at each beacon interval. */ flags = 0; DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: sending request for statistics\n", __func__); return iwn_cmd(sc, IWN_CMD_GET_STATISTICS, &flags, sizeof flags, 1); } /* * Collect noise and RSSI statistics for the first 20 beacons received * after association and use them to determine connected antennas and * to set differential gains. */ static void iwn_collect_noise(struct iwn_softc *sc, const struct iwn_rx_general_stats *stats) { struct iwn_ops *ops = &sc->ops; struct iwn_calib_state *calib = &sc->calib; struct ieee80211com *ic = &sc->sc_ic; uint32_t val; int i; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Accumulate RSSI and noise for all 3 antennas. */ for (i = 0; i < 3; i++) { calib->rssi[i] += le32toh(stats->rssi[i]) & 0xff; calib->noise[i] += le32toh(stats->noise[i]) & 0xff; } /* NB: We update differential gains only once after 20 beacons. */ if (++calib->nbeacons < 20) return; /* Determine highest average RSSI. */ val = MAX(calib->rssi[0], calib->rssi[1]); val = MAX(calib->rssi[2], val); /* Determine which antennas are connected. */ sc->chainmask = sc->rxchainmask; for (i = 0; i < 3; i++) if (val - calib->rssi[i] > 15 * 20) sc->chainmask &= ~(1 << i); DPRINTF(sc, IWN_DEBUG_CALIBRATE | IWN_DEBUG_XMIT, "%s: RX chains mask: theoretical=0x%x, actual=0x%x\n", __func__, sc->rxchainmask, sc->chainmask); /* If none of the TX antennas are connected, keep at least one. */ if ((sc->chainmask & sc->txchainmask) == 0) sc->chainmask |= IWN_LSB(sc->txchainmask); (void)ops->set_gains(sc); calib->state = IWN_CALIB_STATE_RUN; #ifdef notyet /* XXX Disable RX chains with no antennas connected. */ sc->rxon->rxchain = htole16(IWN_RXCHAIN_SEL(sc->chainmask)); if (sc->sc_is_scanning) device_printf(sc->sc_dev, "%s: is_scanning set, before RXON\n", __func__); (void)iwn_cmd(sc, IWN_CMD_RXON, sc->rxon, sc->rxonsz, 1); #endif /* Enable power-saving mode if requested by user. */ if (ic->ic_flags & IEEE80211_F_PMGTON) (void)iwn_set_pslevel(sc, 0, 3, 1); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); } static int iwn4965_init_gains(struct iwn_softc *sc) { struct iwn_phy_calib_gain cmd; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); memset(&cmd, 0, sizeof cmd); cmd.code = IWN4965_PHY_CALIB_DIFF_GAIN; /* Differential gains initially set to 0 for all 3 antennas. */ DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: setting initial differential gains\n", __func__); return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 1); } static int iwn5000_init_gains(struct iwn_softc *sc) { struct iwn_phy_calib cmd; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); memset(&cmd, 0, sizeof cmd); cmd.code = sc->reset_noise_gain; cmd.ngroups = 1; cmd.isvalid = 1; DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: setting initial differential gains\n", __func__); return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 1); } static int iwn4965_set_gains(struct iwn_softc *sc) { struct iwn_calib_state *calib = &sc->calib; struct iwn_phy_calib_gain cmd; int i, delta, noise; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* Get minimal noise among connected antennas. */ noise = INT_MAX; /* NB: There's at least one antenna. */ for (i = 0; i < 3; i++) if (sc->chainmask & (1 << i)) noise = MIN(calib->noise[i], noise); memset(&cmd, 0, sizeof cmd); cmd.code = IWN4965_PHY_CALIB_DIFF_GAIN; /* Set differential gains for connected antennas. */ for (i = 0; i < 3; i++) { if (sc->chainmask & (1 << i)) { /* Compute attenuation (in unit of 1.5dB). */ delta = (noise - (int32_t)calib->noise[i]) / 30; /* NB: delta <= 0 */ /* Limit to [-4.5dB,0]. */ cmd.gain[i] = MIN(abs(delta), 3); if (delta < 0) cmd.gain[i] |= 1 << 2; /* sign bit */ } } DPRINTF(sc, IWN_DEBUG_CALIBRATE, "setting differential gains Ant A/B/C: %x/%x/%x (%x)\n", cmd.gain[0], cmd.gain[1], cmd.gain[2], sc->chainmask); return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 1); } static int iwn5000_set_gains(struct iwn_softc *sc) { struct iwn_calib_state *calib = &sc->calib; struct iwn_phy_calib_gain cmd; int i, ant, div, delta; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* We collected 20 beacons and !=6050 need a 1.5 factor. */ div = (sc->hw_type == IWN_HW_REV_TYPE_6050) ? 20 : 30; memset(&cmd, 0, sizeof cmd); cmd.code = sc->noise_gain; cmd.ngroups = 1; cmd.isvalid = 1; /* Get first available RX antenna as referential. */ ant = IWN_LSB(sc->rxchainmask); /* Set differential gains for other antennas. */ for (i = ant + 1; i < 3; i++) { if (sc->chainmask & (1 << i)) { /* The delta is relative to antenna "ant". */ delta = ((int32_t)calib->noise[ant] - (int32_t)calib->noise[i]) / div; /* Limit to [-4.5dB,+4.5dB]. */ cmd.gain[i - 1] = MIN(abs(delta), 3); if (delta < 0) cmd.gain[i - 1] |= 1 << 2; /* sign bit */ } } DPRINTF(sc, IWN_DEBUG_CALIBRATE | IWN_DEBUG_XMIT, "setting differential gains Ant B/C: %x/%x (%x)\n", cmd.gain[0], cmd.gain[1], sc->chainmask); return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 1); } /* * Tune RF RX sensitivity based on the number of false alarms detected * during the last beacon period. */ static void iwn_tune_sensitivity(struct iwn_softc *sc, const struct iwn_rx_stats *stats) { #define inc(val, inc, max) \ if ((val) < (max)) { \ if ((val) < (max) - (inc)) \ (val) += (inc); \ else \ (val) = (max); \ needs_update = 1; \ } #define dec(val, dec, min) \ if ((val) > (min)) { \ if ((val) > (min) + (dec)) \ (val) -= (dec); \ else \ (val) = (min); \ needs_update = 1; \ } const struct iwn_sensitivity_limits *limits = sc->limits; struct iwn_calib_state *calib = &sc->calib; uint32_t val, rxena, fa; uint32_t energy[3], energy_min; uint8_t noise[3], noise_ref; int i, needs_update = 0; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Check that we've been enabled long enough. */ if ((rxena = le32toh(stats->general.load)) == 0){ DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end not so long\n", __func__); return; } /* Compute number of false alarms since last call for OFDM. */ fa = le32toh(stats->ofdm.bad_plcp) - calib->bad_plcp_ofdm; fa += le32toh(stats->ofdm.fa) - calib->fa_ofdm; fa *= 200 * IEEE80211_DUR_TU; /* 200TU */ if (fa > 50 * rxena) { /* High false alarm count, decrease sensitivity. */ DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: OFDM high false alarm count: %u\n", __func__, fa); inc(calib->ofdm_x1, 1, limits->max_ofdm_x1); inc(calib->ofdm_mrc_x1, 1, limits->max_ofdm_mrc_x1); inc(calib->ofdm_x4, 1, limits->max_ofdm_x4); inc(calib->ofdm_mrc_x4, 1, limits->max_ofdm_mrc_x4); } else if (fa < 5 * rxena) { /* Low false alarm count, increase sensitivity. */ DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: OFDM low false alarm count: %u\n", __func__, fa); dec(calib->ofdm_x1, 1, limits->min_ofdm_x1); dec(calib->ofdm_mrc_x1, 1, limits->min_ofdm_mrc_x1); dec(calib->ofdm_x4, 1, limits->min_ofdm_x4); dec(calib->ofdm_mrc_x4, 1, limits->min_ofdm_mrc_x4); } /* Compute maximum noise among 3 receivers. */ for (i = 0; i < 3; i++) noise[i] = (le32toh(stats->general.noise[i]) >> 8) & 0xff; val = MAX(noise[0], noise[1]); val = MAX(noise[2], val); /* Insert it into our samples table. */ calib->noise_samples[calib->cur_noise_sample] = val; calib->cur_noise_sample = (calib->cur_noise_sample + 1) % 20; /* Compute maximum noise among last 20 samples. */ noise_ref = calib->noise_samples[0]; for (i = 1; i < 20; i++) noise_ref = MAX(noise_ref, calib->noise_samples[i]); /* Compute maximum energy among 3 receivers. */ for (i = 0; i < 3; i++) energy[i] = le32toh(stats->general.energy[i]); val = MIN(energy[0], energy[1]); val = MIN(energy[2], val); /* Insert it into our samples table. */ calib->energy_samples[calib->cur_energy_sample] = val; calib->cur_energy_sample = (calib->cur_energy_sample + 1) % 10; /* Compute minimum energy among last 10 samples. */ energy_min = calib->energy_samples[0]; for (i = 1; i < 10; i++) energy_min = MAX(energy_min, calib->energy_samples[i]); energy_min += 6; /* Compute number of false alarms since last call for CCK. */ fa = le32toh(stats->cck.bad_plcp) - calib->bad_plcp_cck; fa += le32toh(stats->cck.fa) - calib->fa_cck; fa *= 200 * IEEE80211_DUR_TU; /* 200TU */ if (fa > 50 * rxena) { /* High false alarm count, decrease sensitivity. */ DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: CCK high false alarm count: %u\n", __func__, fa); calib->cck_state = IWN_CCK_STATE_HIFA; calib->low_fa = 0; if (calib->cck_x4 > 160) { calib->noise_ref = noise_ref; if (calib->energy_cck > 2) dec(calib->energy_cck, 2, energy_min); } if (calib->cck_x4 < 160) { calib->cck_x4 = 161; needs_update = 1; } else inc(calib->cck_x4, 3, limits->max_cck_x4); inc(calib->cck_mrc_x4, 3, limits->max_cck_mrc_x4); } else if (fa < 5 * rxena) { /* Low false alarm count, increase sensitivity. */ DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: CCK low false alarm count: %u\n", __func__, fa); calib->cck_state = IWN_CCK_STATE_LOFA; calib->low_fa++; if (calib->cck_state != IWN_CCK_STATE_INIT && (((int32_t)calib->noise_ref - (int32_t)noise_ref) > 2 || calib->low_fa > 100)) { inc(calib->energy_cck, 2, limits->min_energy_cck); dec(calib->cck_x4, 3, limits->min_cck_x4); dec(calib->cck_mrc_x4, 3, limits->min_cck_mrc_x4); } } else { /* Not worth to increase or decrease sensitivity. */ DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: CCK normal false alarm count: %u\n", __func__, fa); calib->low_fa = 0; calib->noise_ref = noise_ref; if (calib->cck_state == IWN_CCK_STATE_HIFA) { /* Previous interval had many false alarms. */ dec(calib->energy_cck, 8, energy_min); } calib->cck_state = IWN_CCK_STATE_INIT; } if (needs_update) (void)iwn_send_sensitivity(sc); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); #undef dec #undef inc } static int iwn_send_sensitivity(struct iwn_softc *sc) { struct iwn_calib_state *calib = &sc->calib; struct iwn_enhanced_sensitivity_cmd cmd; int len; memset(&cmd, 0, sizeof cmd); len = sizeof (struct iwn_sensitivity_cmd); cmd.which = IWN_SENSITIVITY_WORKTBL; /* OFDM modulation. */ cmd.corr_ofdm_x1 = htole16(calib->ofdm_x1); cmd.corr_ofdm_mrc_x1 = htole16(calib->ofdm_mrc_x1); cmd.corr_ofdm_x4 = htole16(calib->ofdm_x4); cmd.corr_ofdm_mrc_x4 = htole16(calib->ofdm_mrc_x4); cmd.energy_ofdm = htole16(sc->limits->energy_ofdm); cmd.energy_ofdm_th = htole16(62); /* CCK modulation. */ cmd.corr_cck_x4 = htole16(calib->cck_x4); cmd.corr_cck_mrc_x4 = htole16(calib->cck_mrc_x4); cmd.energy_cck = htole16(calib->energy_cck); /* Barker modulation: use default values. */ cmd.corr_barker = htole16(190); cmd.corr_barker_mrc = htole16(sc->limits->barker_mrc); DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: set sensitivity %d/%d/%d/%d/%d/%d/%d\n", __func__, calib->ofdm_x1, calib->ofdm_mrc_x1, calib->ofdm_x4, calib->ofdm_mrc_x4, calib->cck_x4, calib->cck_mrc_x4, calib->energy_cck); if (!(sc->sc_flags & IWN_FLAG_ENH_SENS)) goto send; /* Enhanced sensitivity settings. */ len = sizeof (struct iwn_enhanced_sensitivity_cmd); cmd.ofdm_det_slope_mrc = htole16(668); cmd.ofdm_det_icept_mrc = htole16(4); cmd.ofdm_det_slope = htole16(486); cmd.ofdm_det_icept = htole16(37); cmd.cck_det_slope_mrc = htole16(853); cmd.cck_det_icept_mrc = htole16(4); cmd.cck_det_slope = htole16(476); cmd.cck_det_icept = htole16(99); send: return iwn_cmd(sc, IWN_CMD_SET_SENSITIVITY, &cmd, len, 1); } /* * Look at the increase of PLCP errors over time; if it exceeds * a programmed threshold then trigger an RF retune. */ static void iwn_check_rx_recovery(struct iwn_softc *sc, struct iwn_stats *rs) { int32_t delta_ofdm, delta_ht, delta_cck; struct iwn_calib_state *calib = &sc->calib; int delta_ticks, cur_ticks; int delta_msec; int thresh; /* * Calculate the difference between the current and * previous statistics. */ delta_cck = le32toh(rs->rx.cck.bad_plcp) - calib->bad_plcp_cck; delta_ofdm = le32toh(rs->rx.ofdm.bad_plcp) - calib->bad_plcp_ofdm; delta_ht = le32toh(rs->rx.ht.bad_plcp) - calib->bad_plcp_ht; /* * Calculate the delta in time between successive statistics * messages. Yes, it can roll over; so we make sure that * this doesn't happen. * * XXX go figure out what to do about rollover * XXX go figure out what to do if ticks rolls over to -ve instead! * XXX go stab signed integer overflow undefined-ness in the face. */ cur_ticks = ticks; delta_ticks = cur_ticks - sc->last_calib_ticks; /* * If any are negative, then the firmware likely reset; so just * bail. We'll pick this up next time. */ if (delta_cck < 0 || delta_ofdm < 0 || delta_ht < 0 || delta_ticks < 0) return; /* * delta_ticks is in ticks; we need to convert it up to milliseconds * so we can do some useful math with it. */ delta_msec = ticks_to_msecs(delta_ticks); /* * Calculate what our threshold is given the current delta_msec. */ thresh = sc->base_params->plcp_err_threshold * delta_msec; DPRINTF(sc, IWN_DEBUG_STATE, "%s: time delta: %d; cck=%d, ofdm=%d, ht=%d, total=%d, thresh=%d\n", __func__, delta_msec, delta_cck, delta_ofdm, delta_ht, (delta_msec + delta_cck + delta_ofdm + delta_ht), thresh); /* * If we need a retune, then schedule a single channel scan * to a channel that isn't the currently active one! * * The math from linux iwlwifi: * * if ((delta * 100 / msecs) > threshold) */ if (thresh > 0 && (delta_cck + delta_ofdm + delta_ht) * 100 > thresh) { DPRINTF(sc, IWN_DEBUG_ANY, "%s: PLCP error threshold raw (%d) comparison (%d) " "over limit (%d); retune!\n", __func__, (delta_cck + delta_ofdm + delta_ht), (delta_cck + delta_ofdm + delta_ht) * 100, thresh); } } /* * Set STA mode power saving level (between 0 and 5). * Level 0 is CAM (Continuously Aware Mode), 5 is for maximum power saving. */ static int iwn_set_pslevel(struct iwn_softc *sc, int dtim, int level, int async) { struct iwn_pmgt_cmd cmd; const struct iwn_pmgt *pmgt; uint32_t max, skip_dtim; uint32_t reg; int i; DPRINTF(sc, IWN_DEBUG_PWRSAVE, "%s: dtim=%d, level=%d, async=%d\n", __func__, dtim, level, async); /* Select which PS parameters to use. */ if (dtim <= 2) pmgt = &iwn_pmgt[0][level]; else if (dtim <= 10) pmgt = &iwn_pmgt[1][level]; else pmgt = &iwn_pmgt[2][level]; memset(&cmd, 0, sizeof cmd); if (level != 0) /* not CAM */ cmd.flags |= htole16(IWN_PS_ALLOW_SLEEP); if (level == 5) cmd.flags |= htole16(IWN_PS_FAST_PD); /* Retrieve PCIe Active State Power Management (ASPM). */ reg = pci_read_config(sc->sc_dev, sc->sc_cap_off + PCIER_LINK_CTL, 4); if (!(reg & PCIEM_LINK_CTL_ASPMC_L0S)) /* L0s Entry disabled. */ cmd.flags |= htole16(IWN_PS_PCI_PMGT); cmd.rxtimeout = htole32(pmgt->rxtimeout * 1024); cmd.txtimeout = htole32(pmgt->txtimeout * 1024); if (dtim == 0) { dtim = 1; skip_dtim = 0; } else skip_dtim = pmgt->skip_dtim; if (skip_dtim != 0) { cmd.flags |= htole16(IWN_PS_SLEEP_OVER_DTIM); max = pmgt->intval[4]; if (max == (uint32_t)-1) max = dtim * (skip_dtim + 1); else if (max > dtim) max = rounddown(max, dtim); } else max = dtim; for (i = 0; i < 5; i++) cmd.intval[i] = htole32(MIN(max, pmgt->intval[i])); DPRINTF(sc, IWN_DEBUG_RESET, "setting power saving level to %d\n", level); return iwn_cmd(sc, IWN_CMD_SET_POWER_MODE, &cmd, sizeof cmd, async); } static int iwn_send_btcoex(struct iwn_softc *sc) { struct iwn_bluetooth cmd; memset(&cmd, 0, sizeof cmd); cmd.flags = IWN_BT_COEX_CHAN_ANN | IWN_BT_COEX_BT_PRIO; cmd.lead_time = IWN_BT_LEAD_TIME_DEF; cmd.max_kill = IWN_BT_MAX_KILL_DEF; DPRINTF(sc, IWN_DEBUG_RESET, "%s: configuring bluetooth coexistence\n", __func__); return iwn_cmd(sc, IWN_CMD_BT_COEX, &cmd, sizeof(cmd), 0); } static int iwn_send_advanced_btcoex(struct iwn_softc *sc) { static const uint32_t btcoex_3wire[12] = { 0xaaaaaaaa, 0xaaaaaaaa, 0xaeaaaaaa, 0xaaaaaaaa, 0xcc00ff28, 0x0000aaaa, 0xcc00aaaa, 0x0000aaaa, 0xc0004000, 0x00004000, 0xf0005000, 0xf0005000, }; struct iwn6000_btcoex_config btconfig; struct iwn2000_btcoex_config btconfig2k; struct iwn_btcoex_priotable btprio; struct iwn_btcoex_prot btprot; int error, i; uint8_t flags; memset(&btconfig, 0, sizeof btconfig); memset(&btconfig2k, 0, sizeof btconfig2k); flags = IWN_BT_FLAG_COEX6000_MODE_3W << IWN_BT_FLAG_COEX6000_MODE_SHIFT; // Done as is in linux kernel 3.2 if (sc->base_params->bt_sco_disable) flags &= ~IWN_BT_FLAG_SYNC_2_BT_DISABLE; else flags |= IWN_BT_FLAG_SYNC_2_BT_DISABLE; flags |= IWN_BT_FLAG_COEX6000_CHAN_INHIBITION; /* Default flags result is 145 as old value */ /* * Flags value has to be review. Values must change if we * which to disable it */ if (sc->base_params->bt_session_2) { btconfig2k.flags = flags; btconfig2k.max_kill = 5; btconfig2k.bt3_t7_timer = 1; btconfig2k.kill_ack = htole32(0xffff0000); btconfig2k.kill_cts = htole32(0xffff0000); btconfig2k.sample_time = 2; btconfig2k.bt3_t2_timer = 0xc; for (i = 0; i < 12; i++) btconfig2k.lookup_table[i] = htole32(btcoex_3wire[i]); btconfig2k.valid = htole16(0xff); btconfig2k.prio_boost = htole32(0xf0); DPRINTF(sc, IWN_DEBUG_RESET, "%s: configuring advanced bluetooth coexistence" " session 2, flags : 0x%x\n", __func__, flags); error = iwn_cmd(sc, IWN_CMD_BT_COEX, &btconfig2k, sizeof(btconfig2k), 1); } else { btconfig.flags = flags; btconfig.max_kill = 5; btconfig.bt3_t7_timer = 1; btconfig.kill_ack = htole32(0xffff0000); btconfig.kill_cts = htole32(0xffff0000); btconfig.sample_time = 2; btconfig.bt3_t2_timer = 0xc; for (i = 0; i < 12; i++) btconfig.lookup_table[i] = htole32(btcoex_3wire[i]); btconfig.valid = htole16(0xff); btconfig.prio_boost = 0xf0; DPRINTF(sc, IWN_DEBUG_RESET, "%s: configuring advanced bluetooth coexistence," " flags : 0x%x\n", __func__, flags); error = iwn_cmd(sc, IWN_CMD_BT_COEX, &btconfig, sizeof(btconfig), 1); } if (error != 0) return error; memset(&btprio, 0, sizeof btprio); btprio.calib_init1 = 0x6; btprio.calib_init2 = 0x7; btprio.calib_periodic_low1 = 0x2; btprio.calib_periodic_low2 = 0x3; btprio.calib_periodic_high1 = 0x4; btprio.calib_periodic_high2 = 0x5; btprio.dtim = 0x6; btprio.scan52 = 0x8; btprio.scan24 = 0xa; error = iwn_cmd(sc, IWN_CMD_BT_COEX_PRIOTABLE, &btprio, sizeof(btprio), 1); if (error != 0) return error; /* Force BT state machine change. */ memset(&btprot, 0, sizeof btprot); btprot.open = 1; btprot.type = 1; error = iwn_cmd(sc, IWN_CMD_BT_COEX_PROT, &btprot, sizeof(btprot), 1); if (error != 0) return error; btprot.open = 0; return iwn_cmd(sc, IWN_CMD_BT_COEX_PROT, &btprot, sizeof(btprot), 1); } static int iwn5000_runtime_calib(struct iwn_softc *sc) { struct iwn5000_calib_config cmd; memset(&cmd, 0, sizeof cmd); cmd.ucode.once.enable = 0xffffffff; cmd.ucode.once.start = IWN5000_CALIB_DC; DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: configuring runtime calibration\n", __func__); return iwn_cmd(sc, IWN5000_CMD_CALIB_CONFIG, &cmd, sizeof(cmd), 0); } static uint32_t iwn_get_rxon_ht_flags(struct iwn_softc *sc, struct ieee80211_channel *c) { struct ieee80211com *ic = &sc->sc_ic; uint32_t htflags = 0; if (! IEEE80211_IS_CHAN_HT(c)) return (0); htflags |= IWN_RXON_HT_PROTMODE(ic->ic_curhtprotmode); if (IEEE80211_IS_CHAN_HT40(c)) { switch (ic->ic_curhtprotmode) { case IEEE80211_HTINFO_OPMODE_HT20PR: htflags |= IWN_RXON_HT_MODEPURE40; break; default: htflags |= IWN_RXON_HT_MODEMIXED; break; } } if (IEEE80211_IS_CHAN_HT40D(c)) htflags |= IWN_RXON_HT_HT40MINUS; return (htflags); } static int iwn_check_bss_filter(struct iwn_softc *sc) { return ((sc->rxon->filter & htole32(IWN_FILTER_BSS)) != 0); } static int iwn4965_rxon_assoc(struct iwn_softc *sc, int async) { struct iwn4965_rxon_assoc cmd; struct iwn_rxon *rxon = sc->rxon; cmd.flags = rxon->flags; cmd.filter = rxon->filter; cmd.ofdm_mask = rxon->ofdm_mask; cmd.cck_mask = rxon->cck_mask; cmd.ht_single_mask = rxon->ht_single_mask; cmd.ht_dual_mask = rxon->ht_dual_mask; cmd.rxchain = rxon->rxchain; cmd.reserved = 0; return (iwn_cmd(sc, IWN_CMD_RXON_ASSOC, &cmd, sizeof(cmd), async)); } static int iwn5000_rxon_assoc(struct iwn_softc *sc, int async) { struct iwn5000_rxon_assoc cmd; struct iwn_rxon *rxon = sc->rxon; cmd.flags = rxon->flags; cmd.filter = rxon->filter; cmd.ofdm_mask = rxon->ofdm_mask; cmd.cck_mask = rxon->cck_mask; cmd.reserved1 = 0; cmd.ht_single_mask = rxon->ht_single_mask; cmd.ht_dual_mask = rxon->ht_dual_mask; cmd.ht_triple_mask = rxon->ht_triple_mask; cmd.reserved2 = 0; cmd.rxchain = rxon->rxchain; cmd.acquisition = rxon->acquisition; cmd.reserved3 = 0; return (iwn_cmd(sc, IWN_CMD_RXON_ASSOC, &cmd, sizeof(cmd), async)); } static int iwn_send_rxon(struct iwn_softc *sc, int assoc, int async) { struct iwn_ops *ops = &sc->ops; int error; IWN_LOCK_ASSERT(sc); if (assoc && iwn_check_bss_filter(sc) != 0) { error = ops->rxon_assoc(sc, async); if (error != 0) { device_printf(sc->sc_dev, "%s: RXON_ASSOC command failed, error %d\n", __func__, error); return (error); } } else { if (sc->sc_is_scanning) device_printf(sc->sc_dev, "%s: is_scanning set, before RXON\n", __func__); error = iwn_cmd(sc, IWN_CMD_RXON, sc->rxon, sc->rxonsz, async); if (error != 0) { device_printf(sc->sc_dev, "%s: RXON command failed, error %d\n", __func__, error); return (error); } /* * Reconfiguring RXON clears the firmware nodes table so * we must add the broadcast node again. */ if (iwn_check_bss_filter(sc) == 0 && (error = iwn_add_broadcast_node(sc, async)) != 0) { device_printf(sc->sc_dev, "%s: could not add broadcast node, error %d\n", __func__, error); return (error); } } /* Configuration has changed, set TX power accordingly. */ if ((error = ops->set_txpower(sc, async)) != 0) { device_printf(sc->sc_dev, "%s: could not set TX power, error %d\n", __func__, error); return (error); } return (0); } static int iwn_config(struct iwn_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); const uint8_t *macaddr; uint32_t txmask; uint16_t rxchain; int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); if ((sc->base_params->calib_need & IWN_FLG_NEED_PHY_CALIB_TEMP_OFFSET) && (sc->base_params->calib_need & IWN_FLG_NEED_PHY_CALIB_TEMP_OFFSETv2)) { device_printf(sc->sc_dev,"%s: temp_offset and temp_offsetv2 are" " exclusive each together. Review NIC config file. Conf" " : 0x%08x Flags : 0x%08x \n", __func__, sc->base_params->calib_need, (IWN_FLG_NEED_PHY_CALIB_TEMP_OFFSET | IWN_FLG_NEED_PHY_CALIB_TEMP_OFFSETv2)); return (EINVAL); } /* Compute temperature calib if needed. Will be send by send calib */ if (sc->base_params->calib_need & IWN_FLG_NEED_PHY_CALIB_TEMP_OFFSET) { error = iwn5000_temp_offset_calib(sc); if (error != 0) { device_printf(sc->sc_dev, "%s: could not set temperature offset\n", __func__); return (error); } } else if (sc->base_params->calib_need & IWN_FLG_NEED_PHY_CALIB_TEMP_OFFSETv2) { error = iwn5000_temp_offset_calibv2(sc); if (error != 0) { device_printf(sc->sc_dev, "%s: could not compute temperature offset v2\n", __func__); return (error); } } if (sc->hw_type == IWN_HW_REV_TYPE_6050) { /* Configure runtime DC calibration. */ error = iwn5000_runtime_calib(sc); if (error != 0) { device_printf(sc->sc_dev, "%s: could not configure runtime calibration\n", __func__); return error; } } /* Configure valid TX chains for >=5000 Series. */ if (sc->hw_type != IWN_HW_REV_TYPE_4965 && IWN_UCODE_API(sc->ucode_rev) > 1) { txmask = htole32(sc->txchainmask); DPRINTF(sc, IWN_DEBUG_RESET | IWN_DEBUG_XMIT, "%s: configuring valid TX chains 0x%x\n", __func__, txmask); error = iwn_cmd(sc, IWN5000_CMD_TX_ANT_CONFIG, &txmask, sizeof txmask, 0); if (error != 0) { device_printf(sc->sc_dev, "%s: could not configure valid TX chains, " "error %d\n", __func__, error); return error; } } /* Configure bluetooth coexistence. */ error = 0; /* Configure bluetooth coexistence if needed. */ if (sc->base_params->bt_mode == IWN_BT_ADVANCED) error = iwn_send_advanced_btcoex(sc); if (sc->base_params->bt_mode == IWN_BT_SIMPLE) error = iwn_send_btcoex(sc); if (error != 0) { device_printf(sc->sc_dev, "%s: could not configure bluetooth coexistence, error %d\n", __func__, error); return error; } /* Set mode, channel, RX filter and enable RX. */ sc->rxon = &sc->rx_on[IWN_RXON_BSS_CTX]; memset(sc->rxon, 0, sizeof (struct iwn_rxon)); macaddr = vap ? vap->iv_myaddr : ic->ic_macaddr; IEEE80211_ADDR_COPY(sc->rxon->myaddr, macaddr); IEEE80211_ADDR_COPY(sc->rxon->wlap, macaddr); sc->rxon->chan = ieee80211_chan2ieee(ic, ic->ic_curchan); sc->rxon->flags = htole32(IWN_RXON_TSF | IWN_RXON_CTS_TO_SELF); if (IEEE80211_IS_CHAN_2GHZ(ic->ic_curchan)) sc->rxon->flags |= htole32(IWN_RXON_AUTO | IWN_RXON_24GHZ); sc->rxon->filter = htole32(IWN_FILTER_MULTICAST); switch (ic->ic_opmode) { case IEEE80211_M_STA: sc->rxon->mode = IWN_MODE_STA; break; case IEEE80211_M_MONITOR: sc->rxon->mode = IWN_MODE_MONITOR; break; default: /* Should not get there. */ break; } iwn_set_promisc(sc); sc->rxon->cck_mask = 0x0f; /* not yet negotiated */ sc->rxon->ofdm_mask = 0xff; /* not yet negotiated */ sc->rxon->ht_single_mask = 0xff; sc->rxon->ht_dual_mask = 0xff; sc->rxon->ht_triple_mask = 0xff; /* * In active association mode, ensure that * all the receive chains are enabled. * * Since we're not yet doing SMPS, don't allow the * number of idle RX chains to be less than the active * number. */ rxchain = IWN_RXCHAIN_VALID(sc->rxchainmask) | IWN_RXCHAIN_MIMO_COUNT(sc->nrxchains) | IWN_RXCHAIN_IDLE_COUNT(sc->nrxchains); sc->rxon->rxchain = htole16(rxchain); DPRINTF(sc, IWN_DEBUG_RESET | IWN_DEBUG_XMIT, "%s: rxchainmask=0x%x, nrxchains=%d\n", __func__, sc->rxchainmask, sc->nrxchains); sc->rxon->flags |= htole32(iwn_get_rxon_ht_flags(sc, ic->ic_curchan)); DPRINTF(sc, IWN_DEBUG_RESET, "%s: setting configuration; flags=0x%08x\n", __func__, le32toh(sc->rxon->flags)); if ((error = iwn_send_rxon(sc, 0, 0)) != 0) { device_printf(sc->sc_dev, "%s: could not send RXON\n", __func__); return error; } if ((error = iwn_set_critical_temp(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not set critical temperature\n", __func__); return error; } /* Set power saving level to CAM during initialization. */ if ((error = iwn_set_pslevel(sc, 0, 0, 0)) != 0) { device_printf(sc->sc_dev, "%s: could not set power saving level\n", __func__); return error; } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return 0; } static uint16_t iwn_get_active_dwell_time(struct iwn_softc *sc, struct ieee80211_channel *c, uint8_t n_probes) { /* No channel? Default to 2GHz settings */ if (c == NULL || IEEE80211_IS_CHAN_2GHZ(c)) { return (IWN_ACTIVE_DWELL_TIME_2GHZ + IWN_ACTIVE_DWELL_FACTOR_2GHZ * (n_probes + 1)); } /* 5GHz dwell time */ return (IWN_ACTIVE_DWELL_TIME_5GHZ + IWN_ACTIVE_DWELL_FACTOR_5GHZ * (n_probes + 1)); } /* * Limit the total dwell time to 85% of the beacon interval. * * Returns the dwell time in milliseconds. */ static uint16_t iwn_limit_dwell(struct iwn_softc *sc, uint16_t dwell_time) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = NULL; int bintval = 0; /* bintval is in TU (1.024mS) */ if (! TAILQ_EMPTY(&ic->ic_vaps)) { vap = TAILQ_FIRST(&ic->ic_vaps); bintval = vap->iv_bss->ni_intval; } /* * If it's non-zero, we should calculate the minimum of * it and the DWELL_BASE. * * XXX Yes, the math should take into account that bintval * is 1.024mS, not 1mS.. */ if (bintval > 0) { DPRINTF(sc, IWN_DEBUG_SCAN, "%s: bintval=%d\n", __func__, bintval); return (MIN(IWN_PASSIVE_DWELL_BASE, ((bintval * 85) / 100))); } /* No association context? Default */ return (IWN_PASSIVE_DWELL_BASE); } static uint16_t iwn_get_passive_dwell_time(struct iwn_softc *sc, struct ieee80211_channel *c) { uint16_t passive; if (c == NULL || IEEE80211_IS_CHAN_2GHZ(c)) { passive = IWN_PASSIVE_DWELL_BASE + IWN_PASSIVE_DWELL_TIME_2GHZ; } else { passive = IWN_PASSIVE_DWELL_BASE + IWN_PASSIVE_DWELL_TIME_5GHZ; } /* Clamp to the beacon interval if we're associated */ return (iwn_limit_dwell(sc, passive)); } static int iwn_scan(struct iwn_softc *sc, struct ieee80211vap *vap, struct ieee80211_scan_state *ss, struct ieee80211_channel *c) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211_node *ni = vap->iv_bss; struct iwn_scan_hdr *hdr; struct iwn_cmd_data *tx; struct iwn_scan_essid *essid; struct iwn_scan_chan *chan; struct ieee80211_frame *wh; struct ieee80211_rateset *rs; uint8_t *buf, *frm; uint16_t rxchain; uint8_t txant; int buflen, error; int is_active; uint16_t dwell_active, dwell_passive; uint32_t extra, scan_service_time; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* * We are absolutely not allowed to send a scan command when another * scan command is pending. */ if (sc->sc_is_scanning) { device_printf(sc->sc_dev, "%s: called whilst scanning!\n", __func__); return (EAGAIN); } /* Assign the scan channel */ c = ic->ic_curchan; sc->rxon = &sc->rx_on[IWN_RXON_BSS_CTX]; buf = malloc(IWN_SCAN_MAXSZ, M_DEVBUF, M_NOWAIT | M_ZERO); if (buf == NULL) { device_printf(sc->sc_dev, "%s: could not allocate buffer for scan command\n", __func__); return ENOMEM; } hdr = (struct iwn_scan_hdr *)buf; /* * Move to the next channel if no frames are received within 10ms * after sending the probe request. */ hdr->quiet_time = htole16(10); /* timeout in milliseconds */ hdr->quiet_threshold = htole16(1); /* min # of packets */ /* * Max needs to be greater than active and passive and quiet! * It's also in microseconds! */ hdr->max_svc = htole32(250 * 1024); /* * Reset scan: interval=100 * Normal scan: interval=becaon interval * suspend_time: 100 (TU) * */ extra = (100 /* suspend_time */ / 100 /* beacon interval */) << 22; //scan_service_time = extra | ((100 /* susp */ % 100 /* int */) * 1024); scan_service_time = (4 << 22) | (100 * 1024); /* Hardcode for now! */ hdr->pause_svc = htole32(scan_service_time); /* Select antennas for scanning. */ rxchain = IWN_RXCHAIN_VALID(sc->rxchainmask) | IWN_RXCHAIN_FORCE_MIMO_SEL(sc->rxchainmask) | IWN_RXCHAIN_DRIVER_FORCE; if (IEEE80211_IS_CHAN_A(c) && sc->hw_type == IWN_HW_REV_TYPE_4965) { /* Ant A must be avoided in 5GHz because of an HW bug. */ rxchain |= IWN_RXCHAIN_FORCE_SEL(IWN_ANT_B); } else /* Use all available RX antennas. */ rxchain |= IWN_RXCHAIN_FORCE_SEL(sc->rxchainmask); hdr->rxchain = htole16(rxchain); hdr->filter = htole32(IWN_FILTER_MULTICAST | IWN_FILTER_BEACON); tx = (struct iwn_cmd_data *)(hdr + 1); tx->flags = htole32(IWN_TX_AUTO_SEQ); tx->id = sc->broadcast_id; tx->lifetime = htole32(IWN_LIFETIME_INFINITE); if (IEEE80211_IS_CHAN_5GHZ(c)) { /* Send probe requests at 6Mbps. */ tx->rate = htole32(0xd); rs = &ic->ic_sup_rates[IEEE80211_MODE_11A]; } else { hdr->flags = htole32(IWN_RXON_24GHZ | IWN_RXON_AUTO); if (sc->hw_type == IWN_HW_REV_TYPE_4965 && sc->rxon->associd && sc->rxon->chan > 14) tx->rate = htole32(0xd); else { /* Send probe requests at 1Mbps. */ tx->rate = htole32(10 | IWN_RFLAG_CCK); } rs = &ic->ic_sup_rates[IEEE80211_MODE_11G]; } /* Use the first valid TX antenna. */ txant = IWN_LSB(sc->txchainmask); tx->rate |= htole32(IWN_RFLAG_ANT(txant)); /* * Only do active scanning if we're announcing a probe request * for a given SSID (or more, if we ever add it to the driver.) */ is_active = 0; /* * If we're scanning for a specific SSID, add it to the command. * * XXX maybe look at adding support for scanning multiple SSIDs? */ essid = (struct iwn_scan_essid *)(tx + 1); if (ss != NULL) { if (ss->ss_ssid[0].len != 0) { essid[0].id = IEEE80211_ELEMID_SSID; essid[0].len = ss->ss_ssid[0].len; memcpy(essid[0].data, ss->ss_ssid[0].ssid, ss->ss_ssid[0].len); } DPRINTF(sc, IWN_DEBUG_SCAN, "%s: ssid_len=%d, ssid=%*s\n", __func__, ss->ss_ssid[0].len, ss->ss_ssid[0].len, ss->ss_ssid[0].ssid); if (ss->ss_nssid > 0) is_active = 1; } /* * Build a probe request frame. Most of the following code is a * copy & paste of what is done in net80211. */ wh = (struct ieee80211_frame *)(essid + 20); wh->i_fc[0] = IEEE80211_FC0_VERSION_0 | IEEE80211_FC0_TYPE_MGT | IEEE80211_FC0_SUBTYPE_PROBE_REQ; wh->i_fc[1] = IEEE80211_FC1_DIR_NODS; IEEE80211_ADDR_COPY(wh->i_addr1, vap->iv_ifp->if_broadcastaddr); IEEE80211_ADDR_COPY(wh->i_addr2, IF_LLADDR(vap->iv_ifp)); IEEE80211_ADDR_COPY(wh->i_addr3, vap->iv_ifp->if_broadcastaddr); *(uint16_t *)&wh->i_dur[0] = 0; /* filled by HW */ *(uint16_t *)&wh->i_seq[0] = 0; /* filled by HW */ frm = (uint8_t *)(wh + 1); frm = ieee80211_add_ssid(frm, NULL, 0); frm = ieee80211_add_rates(frm, rs); if (rs->rs_nrates > IEEE80211_RATE_SIZE) frm = ieee80211_add_xrates(frm, rs); if (ic->ic_htcaps & IEEE80211_HTC_HT) frm = ieee80211_add_htcap(frm, ni); /* Set length of probe request. */ tx->len = htole16(frm - (uint8_t *)wh); /* * If active scanning is requested but a certain channel is * marked passive, we can do active scanning if we detect * transmissions. * * There is an issue with some firmware versions that triggers * a sysassert on a "good CRC threshold" of zero (== disabled), * on a radar channel even though this means that we should NOT * send probes. * * The "good CRC threshold" is the number of frames that we * need to receive during our dwell time on a channel before * sending out probes -- setting this to a huge value will * mean we never reach it, but at the same time work around * the aforementioned issue. Thus use IWL_GOOD_CRC_TH_NEVER * here instead of IWL_GOOD_CRC_TH_DISABLED. * * This was fixed in later versions along with some other * scan changes, and the threshold behaves as a flag in those * versions. */ /* * If we're doing active scanning, set the crc_threshold * to a suitable value. This is different to active veruss * passive scanning depending upon the channel flags; the * firmware will obey that particular check for us. */ if (sc->tlv_feature_flags & IWN_UCODE_TLV_FLAGS_NEWSCAN) hdr->crc_threshold = is_active ? IWN_GOOD_CRC_TH_DEFAULT : IWN_GOOD_CRC_TH_DISABLED; else hdr->crc_threshold = is_active ? IWN_GOOD_CRC_TH_DEFAULT : IWN_GOOD_CRC_TH_NEVER; chan = (struct iwn_scan_chan *)frm; chan->chan = htole16(ieee80211_chan2ieee(ic, c)); chan->flags = 0; if (ss->ss_nssid > 0) chan->flags |= htole32(IWN_CHAN_NPBREQS(1)); chan->dsp_gain = 0x6e; /* * Set the passive/active flag depending upon the channel mode. * XXX TODO: take the is_active flag into account as well? */ if (c->ic_flags & IEEE80211_CHAN_PASSIVE) chan->flags |= htole32(IWN_CHAN_PASSIVE); else chan->flags |= htole32(IWN_CHAN_ACTIVE); /* * Calculate the active/passive dwell times. */ dwell_active = iwn_get_active_dwell_time(sc, c, ss->ss_nssid); dwell_passive = iwn_get_passive_dwell_time(sc, c); /* Make sure they're valid */ if (dwell_passive <= dwell_active) dwell_passive = dwell_active + 1; chan->active = htole16(dwell_active); chan->passive = htole16(dwell_passive); if (IEEE80211_IS_CHAN_5GHZ(c)) chan->rf_gain = 0x3b; else chan->rf_gain = 0x28; DPRINTF(sc, IWN_DEBUG_STATE, "%s: chan %u flags 0x%x rf_gain 0x%x " "dsp_gain 0x%x active %d passive %d scan_svc_time %d crc 0x%x " "isactive=%d numssid=%d\n", __func__, chan->chan, chan->flags, chan->rf_gain, chan->dsp_gain, dwell_active, dwell_passive, scan_service_time, hdr->crc_threshold, is_active, ss->ss_nssid); hdr->nchan++; chan++; buflen = (uint8_t *)chan - buf; hdr->len = htole16(buflen); if (sc->sc_is_scanning) { device_printf(sc->sc_dev, "%s: called with is_scanning set!\n", __func__); } sc->sc_is_scanning = 1; DPRINTF(sc, IWN_DEBUG_STATE, "sending scan command nchan=%d\n", hdr->nchan); error = iwn_cmd(sc, IWN_CMD_SCAN, buf, buflen, 1); free(buf, M_DEVBUF); if (error == 0) callout_reset(&sc->scan_timeout, 5*hz, iwn_scan_timeout, sc); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return error; } static int iwn_auth(struct iwn_softc *sc, struct ieee80211vap *vap) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211_node *ni = vap->iv_bss; int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); sc->rxon = &sc->rx_on[IWN_RXON_BSS_CTX]; /* Update adapter configuration. */ IEEE80211_ADDR_COPY(sc->rxon->bssid, ni->ni_bssid); sc->rxon->chan = ieee80211_chan2ieee(ic, ni->ni_chan); sc->rxon->flags = htole32(IWN_RXON_TSF | IWN_RXON_CTS_TO_SELF); if (IEEE80211_IS_CHAN_2GHZ(ni->ni_chan)) sc->rxon->flags |= htole32(IWN_RXON_AUTO | IWN_RXON_24GHZ); if (ic->ic_flags & IEEE80211_F_SHSLOT) sc->rxon->flags |= htole32(IWN_RXON_SHSLOT); if (ic->ic_flags & IEEE80211_F_SHPREAMBLE) sc->rxon->flags |= htole32(IWN_RXON_SHPREAMBLE); if (IEEE80211_IS_CHAN_A(ni->ni_chan)) { sc->rxon->cck_mask = 0; sc->rxon->ofdm_mask = 0x15; } else if (IEEE80211_IS_CHAN_B(ni->ni_chan)) { sc->rxon->cck_mask = 0x03; sc->rxon->ofdm_mask = 0; } else { /* Assume 802.11b/g. */ sc->rxon->cck_mask = 0x03; sc->rxon->ofdm_mask = 0x15; } /* try HT */ sc->rxon->flags |= htole32(iwn_get_rxon_ht_flags(sc, ic->ic_curchan)); DPRINTF(sc, IWN_DEBUG_STATE, "rxon chan %d flags %x cck %x ofdm %x\n", sc->rxon->chan, sc->rxon->flags, sc->rxon->cck_mask, sc->rxon->ofdm_mask); if ((error = iwn_send_rxon(sc, 0, 1)) != 0) { device_printf(sc->sc_dev, "%s: could not send RXON\n", __func__); return (error); } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return (0); } static int iwn_run(struct iwn_softc *sc, struct ieee80211vap *vap) { struct iwn_ops *ops = &sc->ops; struct ieee80211com *ic = &sc->sc_ic; struct ieee80211_node *ni = vap->iv_bss; struct iwn_node_info node; int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); sc->rxon = &sc->rx_on[IWN_RXON_BSS_CTX]; if (ic->ic_opmode == IEEE80211_M_MONITOR) { /* Link LED blinks while monitoring. */ iwn_set_led(sc, IWN_LED_LINK, 5, 5); return 0; } if ((error = iwn_set_timing(sc, ni)) != 0) { device_printf(sc->sc_dev, "%s: could not set timing, error %d\n", __func__, error); return error; } /* Update adapter configuration. */ IEEE80211_ADDR_COPY(sc->rxon->bssid, ni->ni_bssid); sc->rxon->associd = htole16(IEEE80211_AID(ni->ni_associd)); sc->rxon->chan = ieee80211_chan2ieee(ic, ni->ni_chan); sc->rxon->flags = htole32(IWN_RXON_TSF | IWN_RXON_CTS_TO_SELF); if (IEEE80211_IS_CHAN_2GHZ(ni->ni_chan)) sc->rxon->flags |= htole32(IWN_RXON_AUTO | IWN_RXON_24GHZ); if (ic->ic_flags & IEEE80211_F_SHSLOT) sc->rxon->flags |= htole32(IWN_RXON_SHSLOT); if (ic->ic_flags & IEEE80211_F_SHPREAMBLE) sc->rxon->flags |= htole32(IWN_RXON_SHPREAMBLE); if (IEEE80211_IS_CHAN_A(ni->ni_chan)) { sc->rxon->cck_mask = 0; sc->rxon->ofdm_mask = 0x15; } else if (IEEE80211_IS_CHAN_B(ni->ni_chan)) { sc->rxon->cck_mask = 0x03; sc->rxon->ofdm_mask = 0; } else { /* Assume 802.11b/g. */ sc->rxon->cck_mask = 0x0f; sc->rxon->ofdm_mask = 0x15; } /* try HT */ sc->rxon->flags |= htole32(iwn_get_rxon_ht_flags(sc, ni->ni_chan)); sc->rxon->filter |= htole32(IWN_FILTER_BSS); DPRINTF(sc, IWN_DEBUG_STATE, "rxon chan %d flags %x, curhtprotmode=%d\n", sc->rxon->chan, le32toh(sc->rxon->flags), ic->ic_curhtprotmode); if ((error = iwn_send_rxon(sc, 0, 1)) != 0) { device_printf(sc->sc_dev, "%s: could not send RXON\n", __func__); return error; } /* Fake a join to initialize the TX rate. */ ((struct iwn_node *)ni)->id = IWN_ID_BSS; iwn_newassoc(ni, 1); /* Add BSS node. */ memset(&node, 0, sizeof node); IEEE80211_ADDR_COPY(node.macaddr, ni->ni_macaddr); node.id = IWN_ID_BSS; if (IEEE80211_IS_CHAN_HT(ni->ni_chan)) { switch (ni->ni_htcap & IEEE80211_HTCAP_SMPS) { case IEEE80211_HTCAP_SMPS_ENA: node.htflags |= htole32(IWN_SMPS_MIMO_DIS); break; case IEEE80211_HTCAP_SMPS_DYNAMIC: node.htflags |= htole32(IWN_SMPS_MIMO_PROT); break; } node.htflags |= htole32(IWN_AMDPU_SIZE_FACTOR(3) | IWN_AMDPU_DENSITY(5)); /* 4us */ if (IEEE80211_IS_CHAN_HT40(ni->ni_chan)) node.htflags |= htole32(IWN_NODE_HT40); } DPRINTF(sc, IWN_DEBUG_STATE, "%s: adding BSS node\n", __func__); error = ops->add_node(sc, &node, 1); if (error != 0) { device_printf(sc->sc_dev, "%s: could not add BSS node, error %d\n", __func__, error); return error; } DPRINTF(sc, IWN_DEBUG_STATE, "%s: setting link quality for node %d\n", __func__, node.id); if ((error = iwn_set_link_quality(sc, ni)) != 0) { device_printf(sc->sc_dev, "%s: could not setup link quality for node %d, error %d\n", __func__, node.id, error); return error; } if ((error = iwn_init_sensitivity(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not set sensitivity, error %d\n", __func__, error); return error; } /* Start periodic calibration timer. */ sc->calib.state = IWN_CALIB_STATE_ASSOC; sc->calib_cnt = 0; callout_reset(&sc->calib_to, msecs_to_ticks(500), iwn_calib_timeout, sc); /* Link LED always on while associated. */ iwn_set_led(sc, IWN_LED_LINK, 0, 1); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return 0; } /* * This function is called by upper layer when an ADDBA request is received * from another STA and before the ADDBA response is sent. */ static int iwn_ampdu_rx_start(struct ieee80211_node *ni, struct ieee80211_rx_ampdu *rap, int baparamset, int batimeout, int baseqctl) { #define MS(_v, _f) (((_v) & _f) >> _f##_S) struct iwn_softc *sc = ni->ni_ic->ic_softc; struct iwn_ops *ops = &sc->ops; struct iwn_node *wn = (void *)ni; struct iwn_node_info node; uint16_t ssn; uint8_t tid; int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); tid = MS(le16toh(baparamset), IEEE80211_BAPS_TID); ssn = MS(le16toh(baseqctl), IEEE80211_BASEQ_START); if (wn->id == IWN_ID_UNDEFINED) return (ENOENT); memset(&node, 0, sizeof node); node.id = wn->id; node.control = IWN_NODE_UPDATE; node.flags = IWN_FLAG_SET_ADDBA; node.addba_tid = tid; node.addba_ssn = htole16(ssn); DPRINTF(sc, IWN_DEBUG_RECV, "ADDBA RA=%d TID=%d SSN=%d\n", wn->id, tid, ssn); error = ops->add_node(sc, &node, 1); if (error != 0) return error; return sc->sc_ampdu_rx_start(ni, rap, baparamset, batimeout, baseqctl); #undef MS } /* * This function is called by upper layer on teardown of an HT-immediate * Block Ack agreement (eg. uppon receipt of a DELBA frame). */ static void iwn_ampdu_rx_stop(struct ieee80211_node *ni, struct ieee80211_rx_ampdu *rap) { struct ieee80211com *ic = ni->ni_ic; struct iwn_softc *sc = ic->ic_softc; struct iwn_ops *ops = &sc->ops; struct iwn_node *wn = (void *)ni; struct iwn_node_info node; uint8_t tid; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); if (wn->id == IWN_ID_UNDEFINED) goto end; /* XXX: tid as an argument */ for (tid = 0; tid < WME_NUM_TID; tid++) { if (&ni->ni_rx_ampdu[tid] == rap) break; } memset(&node, 0, sizeof node); node.id = wn->id; node.control = IWN_NODE_UPDATE; node.flags = IWN_FLAG_SET_DELBA; node.delba_tid = tid; DPRINTF(sc, IWN_DEBUG_RECV, "DELBA RA=%d TID=%d\n", wn->id, tid); (void)ops->add_node(sc, &node, 1); end: sc->sc_ampdu_rx_stop(ni, rap); } static int iwn_addba_request(struct ieee80211_node *ni, struct ieee80211_tx_ampdu *tap, int dialogtoken, int baparamset, int batimeout) { struct iwn_softc *sc = ni->ni_ic->ic_softc; int qid; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); for (qid = sc->firstaggqueue; qid < sc->ntxqs; qid++) { if (sc->qid2tap[qid] == NULL) break; } if (qid == sc->ntxqs) { DPRINTF(sc, IWN_DEBUG_XMIT, "%s: not free aggregation queue\n", __func__); return 0; } tap->txa_private = malloc(sizeof(int), M_DEVBUF, M_NOWAIT); if (tap->txa_private == NULL) { device_printf(sc->sc_dev, "%s: failed to alloc TX aggregation structure\n", __func__); return 0; } sc->qid2tap[qid] = tap; *(int *)tap->txa_private = qid; return sc->sc_addba_request(ni, tap, dialogtoken, baparamset, batimeout); } static int iwn_addba_response(struct ieee80211_node *ni, struct ieee80211_tx_ampdu *tap, int code, int baparamset, int batimeout) { struct iwn_softc *sc = ni->ni_ic->ic_softc; int qid = *(int *)tap->txa_private; uint8_t tid = tap->txa_tid; int ret; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); if (code == IEEE80211_STATUS_SUCCESS) { ni->ni_txseqs[tid] = tap->txa_start & 0xfff; ret = iwn_ampdu_tx_start(ni->ni_ic, ni, tid); if (ret != 1) return ret; } else { sc->qid2tap[qid] = NULL; free(tap->txa_private, M_DEVBUF); tap->txa_private = NULL; } return sc->sc_addba_response(ni, tap, code, baparamset, batimeout); } /* * This function is called by upper layer when an ADDBA response is received * from another STA. */ static int iwn_ampdu_tx_start(struct ieee80211com *ic, struct ieee80211_node *ni, uint8_t tid) { struct ieee80211_tx_ampdu *tap = &ni->ni_tx_ampdu[tid]; struct iwn_softc *sc = ni->ni_ic->ic_softc; struct iwn_ops *ops = &sc->ops; struct iwn_node *wn = (void *)ni; struct iwn_node_info node; int error, qid; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); if (wn->id == IWN_ID_UNDEFINED) return (0); /* Enable TX for the specified RA/TID. */ wn->disable_tid &= ~(1 << tid); memset(&node, 0, sizeof node); node.id = wn->id; node.control = IWN_NODE_UPDATE; node.flags = IWN_FLAG_SET_DISABLE_TID; node.disable_tid = htole16(wn->disable_tid); error = ops->add_node(sc, &node, 1); if (error != 0) return 0; if ((error = iwn_nic_lock(sc)) != 0) return 0; qid = *(int *)tap->txa_private; DPRINTF(sc, IWN_DEBUG_XMIT, "%s: ra=%d tid=%d ssn=%d qid=%d\n", __func__, wn->id, tid, tap->txa_start, qid); ops->ampdu_tx_start(sc, ni, qid, tid, tap->txa_start & 0xfff); iwn_nic_unlock(sc); iwn_set_link_quality(sc, ni); return 1; } static void iwn_ampdu_tx_stop(struct ieee80211_node *ni, struct ieee80211_tx_ampdu *tap) { struct iwn_softc *sc = ni->ni_ic->ic_softc; struct iwn_ops *ops = &sc->ops; uint8_t tid = tap->txa_tid; int qid; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); sc->sc_addba_stop(ni, tap); if (tap->txa_private == NULL) return; qid = *(int *)tap->txa_private; if (sc->txq[qid].queued != 0) return; if (iwn_nic_lock(sc) != 0) return; ops->ampdu_tx_stop(sc, qid, tid, tap->txa_start & 0xfff); iwn_nic_unlock(sc); sc->qid2tap[qid] = NULL; free(tap->txa_private, M_DEVBUF); tap->txa_private = NULL; } static void iwn4965_ampdu_tx_start(struct iwn_softc *sc, struct ieee80211_node *ni, int qid, uint8_t tid, uint16_t ssn) { struct iwn_node *wn = (void *)ni; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* Stop TX scheduler while we're changing its configuration. */ iwn_prph_write(sc, IWN4965_SCHED_QUEUE_STATUS(qid), IWN4965_TXQ_STATUS_CHGACT); /* Assign RA/TID translation to the queue. */ iwn_mem_write_2(sc, sc->sched_base + IWN4965_SCHED_TRANS_TBL(qid), wn->id << 4 | tid); /* Enable chain-building mode for the queue. */ iwn_prph_setbits(sc, IWN4965_SCHED_QCHAIN_SEL, 1 << qid); /* Set starting sequence number from the ADDBA request. */ sc->txq[qid].cur = sc->txq[qid].read = (ssn & 0xff); IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | (ssn & 0xff)); iwn_prph_write(sc, IWN4965_SCHED_QUEUE_RDPTR(qid), ssn); /* Set scheduler window size. */ iwn_mem_write(sc, sc->sched_base + IWN4965_SCHED_QUEUE_OFFSET(qid), IWN_SCHED_WINSZ); /* Set scheduler frame limit. */ iwn_mem_write(sc, sc->sched_base + IWN4965_SCHED_QUEUE_OFFSET(qid) + 4, IWN_SCHED_LIMIT << 16); /* Enable interrupts for the queue. */ iwn_prph_setbits(sc, IWN4965_SCHED_INTR_MASK, 1 << qid); /* Mark the queue as active. */ iwn_prph_write(sc, IWN4965_SCHED_QUEUE_STATUS(qid), IWN4965_TXQ_STATUS_ACTIVE | IWN4965_TXQ_STATUS_AGGR_ENA | iwn_tid2fifo[tid] << 1); } static void iwn4965_ampdu_tx_stop(struct iwn_softc *sc, int qid, uint8_t tid, uint16_t ssn) { DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* Stop TX scheduler while we're changing its configuration. */ iwn_prph_write(sc, IWN4965_SCHED_QUEUE_STATUS(qid), IWN4965_TXQ_STATUS_CHGACT); /* Set starting sequence number from the ADDBA request. */ IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | (ssn & 0xff)); iwn_prph_write(sc, IWN4965_SCHED_QUEUE_RDPTR(qid), ssn); /* Disable interrupts for the queue. */ iwn_prph_clrbits(sc, IWN4965_SCHED_INTR_MASK, 1 << qid); /* Mark the queue as inactive. */ iwn_prph_write(sc, IWN4965_SCHED_QUEUE_STATUS(qid), IWN4965_TXQ_STATUS_INACTIVE | iwn_tid2fifo[tid] << 1); } static void iwn5000_ampdu_tx_start(struct iwn_softc *sc, struct ieee80211_node *ni, int qid, uint8_t tid, uint16_t ssn) { DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); struct iwn_node *wn = (void *)ni; /* Stop TX scheduler while we're changing its configuration. */ iwn_prph_write(sc, IWN5000_SCHED_QUEUE_STATUS(qid), IWN5000_TXQ_STATUS_CHGACT); /* Assign RA/TID translation to the queue. */ iwn_mem_write_2(sc, sc->sched_base + IWN5000_SCHED_TRANS_TBL(qid), wn->id << 4 | tid); /* Enable chain-building mode for the queue. */ iwn_prph_setbits(sc, IWN5000_SCHED_QCHAIN_SEL, 1 << qid); /* Enable aggregation for the queue. */ iwn_prph_setbits(sc, IWN5000_SCHED_AGGR_SEL, 1 << qid); /* Set starting sequence number from the ADDBA request. */ sc->txq[qid].cur = sc->txq[qid].read = (ssn & 0xff); IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | (ssn & 0xff)); iwn_prph_write(sc, IWN5000_SCHED_QUEUE_RDPTR(qid), ssn); /* Set scheduler window size and frame limit. */ iwn_mem_write(sc, sc->sched_base + IWN5000_SCHED_QUEUE_OFFSET(qid) + 4, IWN_SCHED_LIMIT << 16 | IWN_SCHED_WINSZ); /* Enable interrupts for the queue. */ iwn_prph_setbits(sc, IWN5000_SCHED_INTR_MASK, 1 << qid); /* Mark the queue as active. */ iwn_prph_write(sc, IWN5000_SCHED_QUEUE_STATUS(qid), IWN5000_TXQ_STATUS_ACTIVE | iwn_tid2fifo[tid]); } static void iwn5000_ampdu_tx_stop(struct iwn_softc *sc, int qid, uint8_t tid, uint16_t ssn) { DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* Stop TX scheduler while we're changing its configuration. */ iwn_prph_write(sc, IWN5000_SCHED_QUEUE_STATUS(qid), IWN5000_TXQ_STATUS_CHGACT); /* Disable aggregation for the queue. */ iwn_prph_clrbits(sc, IWN5000_SCHED_AGGR_SEL, 1 << qid); /* Set starting sequence number from the ADDBA request. */ IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | (ssn & 0xff)); iwn_prph_write(sc, IWN5000_SCHED_QUEUE_RDPTR(qid), ssn); /* Disable interrupts for the queue. */ iwn_prph_clrbits(sc, IWN5000_SCHED_INTR_MASK, 1 << qid); /* Mark the queue as inactive. */ iwn_prph_write(sc, IWN5000_SCHED_QUEUE_STATUS(qid), IWN5000_TXQ_STATUS_INACTIVE | iwn_tid2fifo[tid]); } /* * Query calibration tables from the initialization firmware. We do this * only once at first boot. Called from a process context. */ static int iwn5000_query_calibration(struct iwn_softc *sc) { struct iwn5000_calib_config cmd; int error; memset(&cmd, 0, sizeof cmd); cmd.ucode.once.enable = htole32(0xffffffff); cmd.ucode.once.start = htole32(0xffffffff); cmd.ucode.once.send = htole32(0xffffffff); cmd.ucode.flags = htole32(0xffffffff); DPRINTF(sc, IWN_DEBUG_CALIBRATE, "%s: sending calibration query\n", __func__); error = iwn_cmd(sc, IWN5000_CMD_CALIB_CONFIG, &cmd, sizeof cmd, 0); if (error != 0) return error; /* Wait at most two seconds for calibration to complete. */ if (!(sc->sc_flags & IWN_FLAG_CALIB_DONE)) error = msleep(sc, &sc->sc_mtx, PCATCH, "iwncal", 2 * hz); return error; } /* * Send calibration results to the runtime firmware. These results were * obtained on first boot from the initialization firmware. */ static int iwn5000_send_calibration(struct iwn_softc *sc) { int idx, error; for (idx = 0; idx < IWN5000_PHY_CALIB_MAX_RESULT; idx++) { if (!(sc->base_params->calib_need & (1<calibcmd[idx].buf == NULL) { DPRINTF(sc, IWN_DEBUG_CALIBRATE, "Need calib idx : %d but no available data\n", idx); continue; } DPRINTF(sc, IWN_DEBUG_CALIBRATE, "send calibration result idx=%d len=%d\n", idx, sc->calibcmd[idx].len); error = iwn_cmd(sc, IWN_CMD_PHY_CALIB, sc->calibcmd[idx].buf, sc->calibcmd[idx].len, 0); if (error != 0) { device_printf(sc->sc_dev, "%s: could not send calibration result, error %d\n", __func__, error); return error; } } return 0; } static int iwn5000_send_wimax_coex(struct iwn_softc *sc) { struct iwn5000_wimax_coex wimax; #if 0 if (sc->hw_type == IWN_HW_REV_TYPE_6050) { /* Enable WiMAX coexistence for combo adapters. */ wimax.flags = IWN_WIMAX_COEX_ASSOC_WA_UNMASK | IWN_WIMAX_COEX_UNASSOC_WA_UNMASK | IWN_WIMAX_COEX_STA_TABLE_VALID | IWN_WIMAX_COEX_ENABLE; memcpy(wimax.events, iwn6050_wimax_events, sizeof iwn6050_wimax_events); } else #endif { /* Disable WiMAX coexistence. */ wimax.flags = 0; memset(wimax.events, 0, sizeof wimax.events); } DPRINTF(sc, IWN_DEBUG_RESET, "%s: Configuring WiMAX coexistence\n", __func__); return iwn_cmd(sc, IWN5000_CMD_WIMAX_COEX, &wimax, sizeof wimax, 0); } static int iwn5000_crystal_calib(struct iwn_softc *sc) { struct iwn5000_phy_calib_crystal cmd; memset(&cmd, 0, sizeof cmd); cmd.code = IWN5000_PHY_CALIB_CRYSTAL; cmd.ngroups = 1; cmd.isvalid = 1; cmd.cap_pin[0] = le32toh(sc->eeprom_crystal) & 0xff; cmd.cap_pin[1] = (le32toh(sc->eeprom_crystal) >> 16) & 0xff; DPRINTF(sc, IWN_DEBUG_CALIBRATE, "sending crystal calibration %d, %d\n", cmd.cap_pin[0], cmd.cap_pin[1]); return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 0); } static int iwn5000_temp_offset_calib(struct iwn_softc *sc) { struct iwn5000_phy_calib_temp_offset cmd; memset(&cmd, 0, sizeof cmd); cmd.code = IWN5000_PHY_CALIB_TEMP_OFFSET; cmd.ngroups = 1; cmd.isvalid = 1; if (sc->eeprom_temp != 0) cmd.offset = htole16(sc->eeprom_temp); else cmd.offset = htole16(IWN_DEFAULT_TEMP_OFFSET); DPRINTF(sc, IWN_DEBUG_CALIBRATE, "setting radio sensor offset to %d\n", le16toh(cmd.offset)); return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 0); } static int iwn5000_temp_offset_calibv2(struct iwn_softc *sc) { struct iwn5000_phy_calib_temp_offsetv2 cmd; memset(&cmd, 0, sizeof cmd); cmd.code = IWN5000_PHY_CALIB_TEMP_OFFSET; cmd.ngroups = 1; cmd.isvalid = 1; if (sc->eeprom_temp != 0) { cmd.offset_low = htole16(sc->eeprom_temp); cmd.offset_high = htole16(sc->eeprom_temp_high); } else { cmd.offset_low = htole16(IWN_DEFAULT_TEMP_OFFSET); cmd.offset_high = htole16(IWN_DEFAULT_TEMP_OFFSET); } cmd.burnt_voltage_ref = htole16(sc->eeprom_voltage); DPRINTF(sc, IWN_DEBUG_CALIBRATE, "setting radio sensor low offset to %d, high offset to %d, voltage to %d\n", le16toh(cmd.offset_low), le16toh(cmd.offset_high), le16toh(cmd.burnt_voltage_ref)); return iwn_cmd(sc, IWN_CMD_PHY_CALIB, &cmd, sizeof cmd, 0); } /* * This function is called after the runtime firmware notifies us of its * readiness (called in a process context). */ static int iwn4965_post_alive(struct iwn_softc *sc) { int error, qid; if ((error = iwn_nic_lock(sc)) != 0) return error; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* Clear TX scheduler state in SRAM. */ sc->sched_base = iwn_prph_read(sc, IWN_SCHED_SRAM_ADDR); iwn_mem_set_region_4(sc, sc->sched_base + IWN4965_SCHED_CTX_OFF, 0, IWN4965_SCHED_CTX_LEN / sizeof (uint32_t)); /* Set physical address of TX scheduler rings (1KB aligned). */ iwn_prph_write(sc, IWN4965_SCHED_DRAM_ADDR, sc->sched_dma.paddr >> 10); IWN_SETBITS(sc, IWN_FH_TX_CHICKEN, IWN_FH_TX_CHICKEN_SCHED_RETRY); /* Disable chain mode for all our 16 queues. */ iwn_prph_write(sc, IWN4965_SCHED_QCHAIN_SEL, 0); for (qid = 0; qid < IWN4965_NTXQUEUES; qid++) { iwn_prph_write(sc, IWN4965_SCHED_QUEUE_RDPTR(qid), 0); IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | 0); /* Set scheduler window size. */ iwn_mem_write(sc, sc->sched_base + IWN4965_SCHED_QUEUE_OFFSET(qid), IWN_SCHED_WINSZ); /* Set scheduler frame limit. */ iwn_mem_write(sc, sc->sched_base + IWN4965_SCHED_QUEUE_OFFSET(qid) + 4, IWN_SCHED_LIMIT << 16); } /* Enable interrupts for all our 16 queues. */ iwn_prph_write(sc, IWN4965_SCHED_INTR_MASK, 0xffff); /* Identify TX FIFO rings (0-7). */ iwn_prph_write(sc, IWN4965_SCHED_TXFACT, 0xff); /* Mark TX rings (4 EDCA + cmd + 2 HCCA) as active. */ for (qid = 0; qid < 7; qid++) { static uint8_t qid2fifo[] = { 3, 2, 1, 0, 4, 5, 6 }; iwn_prph_write(sc, IWN4965_SCHED_QUEUE_STATUS(qid), IWN4965_TXQ_STATUS_ACTIVE | qid2fifo[qid] << 1); } iwn_nic_unlock(sc); return 0; } /* * This function is called after the initialization or runtime firmware * notifies us of its readiness (called in a process context). */ static int iwn5000_post_alive(struct iwn_softc *sc) { int error, qid; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Switch to using ICT interrupt mode. */ iwn5000_ict_reset(sc); if ((error = iwn_nic_lock(sc)) != 0){ DPRINTF(sc, IWN_DEBUG_TRACE, "->%s end in error\n", __func__); return error; } /* Clear TX scheduler state in SRAM. */ sc->sched_base = iwn_prph_read(sc, IWN_SCHED_SRAM_ADDR); iwn_mem_set_region_4(sc, sc->sched_base + IWN5000_SCHED_CTX_OFF, 0, IWN5000_SCHED_CTX_LEN / sizeof (uint32_t)); /* Set physical address of TX scheduler rings (1KB aligned). */ iwn_prph_write(sc, IWN5000_SCHED_DRAM_ADDR, sc->sched_dma.paddr >> 10); IWN_SETBITS(sc, IWN_FH_TX_CHICKEN, IWN_FH_TX_CHICKEN_SCHED_RETRY); /* Enable chain mode for all queues, except command queue. */ if (sc->sc_flags & IWN_FLAG_PAN_SUPPORT) iwn_prph_write(sc, IWN5000_SCHED_QCHAIN_SEL, 0xfffdf); else iwn_prph_write(sc, IWN5000_SCHED_QCHAIN_SEL, 0xfffef); iwn_prph_write(sc, IWN5000_SCHED_AGGR_SEL, 0); for (qid = 0; qid < IWN5000_NTXQUEUES; qid++) { iwn_prph_write(sc, IWN5000_SCHED_QUEUE_RDPTR(qid), 0); IWN_WRITE(sc, IWN_HBUS_TARG_WRPTR, qid << 8 | 0); iwn_mem_write(sc, sc->sched_base + IWN5000_SCHED_QUEUE_OFFSET(qid), 0); /* Set scheduler window size and frame limit. */ iwn_mem_write(sc, sc->sched_base + IWN5000_SCHED_QUEUE_OFFSET(qid) + 4, IWN_SCHED_LIMIT << 16 | IWN_SCHED_WINSZ); } /* Enable interrupts for all our 20 queues. */ iwn_prph_write(sc, IWN5000_SCHED_INTR_MASK, 0xfffff); /* Identify TX FIFO rings (0-7). */ iwn_prph_write(sc, IWN5000_SCHED_TXFACT, 0xff); /* Mark TX rings (4 EDCA + cmd + 2 HCCA) as active. */ if (sc->sc_flags & IWN_FLAG_PAN_SUPPORT) { /* Mark TX rings as active. */ for (qid = 0; qid < 11; qid++) { static uint8_t qid2fifo[] = { 3, 2, 1, 0, 0, 4, 2, 5, 4, 7, 5 }; iwn_prph_write(sc, IWN5000_SCHED_QUEUE_STATUS(qid), IWN5000_TXQ_STATUS_ACTIVE | qid2fifo[qid]); } } else { /* Mark TX rings (4 EDCA + cmd + 2 HCCA) as active. */ for (qid = 0; qid < 7; qid++) { static uint8_t qid2fifo[] = { 3, 2, 1, 0, 7, 5, 6 }; iwn_prph_write(sc, IWN5000_SCHED_QUEUE_STATUS(qid), IWN5000_TXQ_STATUS_ACTIVE | qid2fifo[qid]); } } iwn_nic_unlock(sc); /* Configure WiMAX coexistence for combo adapters. */ error = iwn5000_send_wimax_coex(sc); if (error != 0) { device_printf(sc->sc_dev, "%s: could not configure WiMAX coexistence, error %d\n", __func__, error); return error; } if (sc->hw_type != IWN_HW_REV_TYPE_5150) { /* Perform crystal calibration. */ error = iwn5000_crystal_calib(sc); if (error != 0) { device_printf(sc->sc_dev, "%s: crystal calibration failed, error %d\n", __func__, error); return error; } } if (!(sc->sc_flags & IWN_FLAG_CALIB_DONE)) { /* Query calibration from the initialization firmware. */ if ((error = iwn5000_query_calibration(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not query calibration, error %d\n", __func__, error); return error; } /* * We have the calibration results now, reboot with the * runtime firmware (call ourselves recursively!) */ iwn_hw_stop(sc); error = iwn_hw_init(sc); } else { /* Send calibration results to runtime firmware. */ error = iwn5000_send_calibration(sc); } DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return error; } /* * The firmware boot code is small and is intended to be copied directly into * the NIC internal memory (no DMA transfer). */ static int iwn4965_load_bootcode(struct iwn_softc *sc, const uint8_t *ucode, int size) { int error, ntries; size /= sizeof (uint32_t); if ((error = iwn_nic_lock(sc)) != 0) return error; /* Copy microcode image into NIC memory. */ iwn_prph_write_region_4(sc, IWN_BSM_SRAM_BASE, (const uint32_t *)ucode, size); iwn_prph_write(sc, IWN_BSM_WR_MEM_SRC, 0); iwn_prph_write(sc, IWN_BSM_WR_MEM_DST, IWN_FW_TEXT_BASE); iwn_prph_write(sc, IWN_BSM_WR_DWCOUNT, size); /* Start boot load now. */ iwn_prph_write(sc, IWN_BSM_WR_CTRL, IWN_BSM_WR_CTRL_START); /* Wait for transfer to complete. */ for (ntries = 0; ntries < 1000; ntries++) { if (!(iwn_prph_read(sc, IWN_BSM_WR_CTRL) & IWN_BSM_WR_CTRL_START)) break; DELAY(10); } if (ntries == 1000) { device_printf(sc->sc_dev, "%s: could not load boot firmware\n", __func__); iwn_nic_unlock(sc); return ETIMEDOUT; } /* Enable boot after power up. */ iwn_prph_write(sc, IWN_BSM_WR_CTRL, IWN_BSM_WR_CTRL_START_EN); iwn_nic_unlock(sc); return 0; } static int iwn4965_load_firmware(struct iwn_softc *sc) { struct iwn_fw_info *fw = &sc->fw; struct iwn_dma_info *dma = &sc->fw_dma; int error; /* Copy initialization sections into pre-allocated DMA-safe memory. */ memcpy(dma->vaddr, fw->init.data, fw->init.datasz); bus_dmamap_sync(dma->tag, dma->map, BUS_DMASYNC_PREWRITE); memcpy(dma->vaddr + IWN4965_FW_DATA_MAXSZ, fw->init.text, fw->init.textsz); bus_dmamap_sync(dma->tag, dma->map, BUS_DMASYNC_PREWRITE); /* Tell adapter where to find initialization sections. */ if ((error = iwn_nic_lock(sc)) != 0) return error; iwn_prph_write(sc, IWN_BSM_DRAM_DATA_ADDR, dma->paddr >> 4); iwn_prph_write(sc, IWN_BSM_DRAM_DATA_SIZE, fw->init.datasz); iwn_prph_write(sc, IWN_BSM_DRAM_TEXT_ADDR, (dma->paddr + IWN4965_FW_DATA_MAXSZ) >> 4); iwn_prph_write(sc, IWN_BSM_DRAM_TEXT_SIZE, fw->init.textsz); iwn_nic_unlock(sc); /* Load firmware boot code. */ error = iwn4965_load_bootcode(sc, fw->boot.text, fw->boot.textsz); if (error != 0) { device_printf(sc->sc_dev, "%s: could not load boot firmware\n", __func__); return error; } /* Now press "execute". */ IWN_WRITE(sc, IWN_RESET, 0); /* Wait at most one second for first alive notification. */ if ((error = msleep(sc, &sc->sc_mtx, PCATCH, "iwninit", hz)) != 0) { device_printf(sc->sc_dev, "%s: timeout waiting for adapter to initialize, error %d\n", __func__, error); return error; } /* Retrieve current temperature for initial TX power calibration. */ sc->rawtemp = sc->ucode_info.temp[3].chan20MHz; sc->temp = iwn4965_get_temperature(sc); /* Copy runtime sections into pre-allocated DMA-safe memory. */ memcpy(dma->vaddr, fw->main.data, fw->main.datasz); bus_dmamap_sync(dma->tag, dma->map, BUS_DMASYNC_PREWRITE); memcpy(dma->vaddr + IWN4965_FW_DATA_MAXSZ, fw->main.text, fw->main.textsz); bus_dmamap_sync(dma->tag, dma->map, BUS_DMASYNC_PREWRITE); /* Tell adapter where to find runtime sections. */ if ((error = iwn_nic_lock(sc)) != 0) return error; iwn_prph_write(sc, IWN_BSM_DRAM_DATA_ADDR, dma->paddr >> 4); iwn_prph_write(sc, IWN_BSM_DRAM_DATA_SIZE, fw->main.datasz); iwn_prph_write(sc, IWN_BSM_DRAM_TEXT_ADDR, (dma->paddr + IWN4965_FW_DATA_MAXSZ) >> 4); iwn_prph_write(sc, IWN_BSM_DRAM_TEXT_SIZE, IWN_FW_UPDATED | fw->main.textsz); iwn_nic_unlock(sc); return 0; } static int iwn5000_load_firmware_section(struct iwn_softc *sc, uint32_t dst, const uint8_t *section, int size) { struct iwn_dma_info *dma = &sc->fw_dma; int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* Copy firmware section into pre-allocated DMA-safe memory. */ memcpy(dma->vaddr, section, size); bus_dmamap_sync(dma->tag, dma->map, BUS_DMASYNC_PREWRITE); if ((error = iwn_nic_lock(sc)) != 0) return error; IWN_WRITE(sc, IWN_FH_TX_CONFIG(IWN_SRVC_DMACHNL), IWN_FH_TX_CONFIG_DMA_PAUSE); IWN_WRITE(sc, IWN_FH_SRAM_ADDR(IWN_SRVC_DMACHNL), dst); IWN_WRITE(sc, IWN_FH_TFBD_CTRL0(IWN_SRVC_DMACHNL), IWN_LOADDR(dma->paddr)); IWN_WRITE(sc, IWN_FH_TFBD_CTRL1(IWN_SRVC_DMACHNL), IWN_HIADDR(dma->paddr) << 28 | size); IWN_WRITE(sc, IWN_FH_TXBUF_STATUS(IWN_SRVC_DMACHNL), IWN_FH_TXBUF_STATUS_TBNUM(1) | IWN_FH_TXBUF_STATUS_TBIDX(1) | IWN_FH_TXBUF_STATUS_TFBD_VALID); /* Kick Flow Handler to start DMA transfer. */ IWN_WRITE(sc, IWN_FH_TX_CONFIG(IWN_SRVC_DMACHNL), IWN_FH_TX_CONFIG_DMA_ENA | IWN_FH_TX_CONFIG_CIRQ_HOST_ENDTFD); iwn_nic_unlock(sc); /* Wait at most five seconds for FH DMA transfer to complete. */ return msleep(sc, &sc->sc_mtx, PCATCH, "iwninit", 5 * hz); } static int iwn5000_load_firmware(struct iwn_softc *sc) { struct iwn_fw_part *fw; int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* Load the initialization firmware on first boot only. */ fw = (sc->sc_flags & IWN_FLAG_CALIB_DONE) ? &sc->fw.main : &sc->fw.init; error = iwn5000_load_firmware_section(sc, IWN_FW_TEXT_BASE, fw->text, fw->textsz); if (error != 0) { device_printf(sc->sc_dev, "%s: could not load firmware %s section, error %d\n", __func__, ".text", error); return error; } error = iwn5000_load_firmware_section(sc, IWN_FW_DATA_BASE, fw->data, fw->datasz); if (error != 0) { device_printf(sc->sc_dev, "%s: could not load firmware %s section, error %d\n", __func__, ".data", error); return error; } /* Now press "execute". */ IWN_WRITE(sc, IWN_RESET, 0); return 0; } /* * Extract text and data sections from a legacy firmware image. */ static int iwn_read_firmware_leg(struct iwn_softc *sc, struct iwn_fw_info *fw) { const uint32_t *ptr; size_t hdrlen = 24; uint32_t rev; ptr = (const uint32_t *)fw->data; rev = le32toh(*ptr++); sc->ucode_rev = rev; /* Check firmware API version. */ if (IWN_FW_API(rev) <= 1) { device_printf(sc->sc_dev, "%s: bad firmware, need API version >=2\n", __func__); return EINVAL; } if (IWN_FW_API(rev) >= 3) { /* Skip build number (version 2 header). */ hdrlen += 4; ptr++; } if (fw->size < hdrlen) { device_printf(sc->sc_dev, "%s: firmware too short: %zu bytes\n", __func__, fw->size); return EINVAL; } fw->main.textsz = le32toh(*ptr++); fw->main.datasz = le32toh(*ptr++); fw->init.textsz = le32toh(*ptr++); fw->init.datasz = le32toh(*ptr++); fw->boot.textsz = le32toh(*ptr++); /* Check that all firmware sections fit. */ if (fw->size < hdrlen + fw->main.textsz + fw->main.datasz + fw->init.textsz + fw->init.datasz + fw->boot.textsz) { device_printf(sc->sc_dev, "%s: firmware too short: %zu bytes\n", __func__, fw->size); return EINVAL; } /* Get pointers to firmware sections. */ fw->main.text = (const uint8_t *)ptr; fw->main.data = fw->main.text + fw->main.textsz; fw->init.text = fw->main.data + fw->main.datasz; fw->init.data = fw->init.text + fw->init.textsz; fw->boot.text = fw->init.data + fw->init.datasz; return 0; } /* * Extract text and data sections from a TLV firmware image. */ static int iwn_read_firmware_tlv(struct iwn_softc *sc, struct iwn_fw_info *fw, uint16_t alt) { const struct iwn_fw_tlv_hdr *hdr; const struct iwn_fw_tlv *tlv; const uint8_t *ptr, *end; uint64_t altmask; uint32_t len, tmp; if (fw->size < sizeof (*hdr)) { device_printf(sc->sc_dev, "%s: firmware too short: %zu bytes\n", __func__, fw->size); return EINVAL; } hdr = (const struct iwn_fw_tlv_hdr *)fw->data; if (hdr->signature != htole32(IWN_FW_SIGNATURE)) { device_printf(sc->sc_dev, "%s: bad firmware signature 0x%08x\n", __func__, le32toh(hdr->signature)); return EINVAL; } DPRINTF(sc, IWN_DEBUG_RESET, "FW: \"%.64s\", build 0x%x\n", hdr->descr, le32toh(hdr->build)); sc->ucode_rev = le32toh(hdr->rev); /* * Select the closest supported alternative that is less than * or equal to the specified one. */ altmask = le64toh(hdr->altmask); while (alt > 0 && !(altmask & (1ULL << alt))) alt--; /* Downgrade. */ DPRINTF(sc, IWN_DEBUG_RESET, "using alternative %d\n", alt); ptr = (const uint8_t *)(hdr + 1); end = (const uint8_t *)(fw->data + fw->size); /* Parse type-length-value fields. */ while (ptr + sizeof (*tlv) <= end) { tlv = (const struct iwn_fw_tlv *)ptr; len = le32toh(tlv->len); ptr += sizeof (*tlv); if (ptr + len > end) { device_printf(sc->sc_dev, "%s: firmware too short: %zu bytes\n", __func__, fw->size); return EINVAL; } /* Skip other alternatives. */ if (tlv->alt != 0 && tlv->alt != htole16(alt)) goto next; switch (le16toh(tlv->type)) { case IWN_FW_TLV_MAIN_TEXT: fw->main.text = ptr; fw->main.textsz = len; break; case IWN_FW_TLV_MAIN_DATA: fw->main.data = ptr; fw->main.datasz = len; break; case IWN_FW_TLV_INIT_TEXT: fw->init.text = ptr; fw->init.textsz = len; break; case IWN_FW_TLV_INIT_DATA: fw->init.data = ptr; fw->init.datasz = len; break; case IWN_FW_TLV_BOOT_TEXT: fw->boot.text = ptr; fw->boot.textsz = len; break; case IWN_FW_TLV_ENH_SENS: if (!len) sc->sc_flags |= IWN_FLAG_ENH_SENS; break; case IWN_FW_TLV_PHY_CALIB: tmp = le32toh(*ptr); if (tmp < 253) { sc->reset_noise_gain = tmp; sc->noise_gain = tmp + 1; } break; case IWN_FW_TLV_PAN: sc->sc_flags |= IWN_FLAG_PAN_SUPPORT; DPRINTF(sc, IWN_DEBUG_RESET, "PAN Support found: %d\n", 1); break; case IWN_FW_TLV_FLAGS: if (len < sizeof(uint32_t)) break; if (len % sizeof(uint32_t)) break; sc->tlv_feature_flags = le32toh(*ptr); DPRINTF(sc, IWN_DEBUG_RESET, "%s: feature: 0x%08x\n", __func__, sc->tlv_feature_flags); break; case IWN_FW_TLV_PBREQ_MAXLEN: case IWN_FW_TLV_RUNT_EVTLOG_PTR: case IWN_FW_TLV_RUNT_EVTLOG_SIZE: case IWN_FW_TLV_RUNT_ERRLOG_PTR: case IWN_FW_TLV_INIT_EVTLOG_PTR: case IWN_FW_TLV_INIT_EVTLOG_SIZE: case IWN_FW_TLV_INIT_ERRLOG_PTR: case IWN_FW_TLV_WOWLAN_INST: case IWN_FW_TLV_WOWLAN_DATA: DPRINTF(sc, IWN_DEBUG_RESET, "TLV type %d recognized but not handled\n", le16toh(tlv->type)); break; default: DPRINTF(sc, IWN_DEBUG_RESET, "TLV type %d not handled\n", le16toh(tlv->type)); break; } next: /* TLV fields are 32-bit aligned. */ ptr += (len + 3) & ~3; } return 0; } static int iwn_read_firmware(struct iwn_softc *sc) { struct iwn_fw_info *fw = &sc->fw; int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); IWN_UNLOCK(sc); memset(fw, 0, sizeof (*fw)); /* Read firmware image from filesystem. */ sc->fw_fp = firmware_get(sc->fwname); if (sc->fw_fp == NULL) { device_printf(sc->sc_dev, "%s: could not read firmware %s\n", __func__, sc->fwname); IWN_LOCK(sc); return EINVAL; } IWN_LOCK(sc); fw->size = sc->fw_fp->datasize; fw->data = (const uint8_t *)sc->fw_fp->data; if (fw->size < sizeof (uint32_t)) { device_printf(sc->sc_dev, "%s: firmware too short: %zu bytes\n", __func__, fw->size); error = EINVAL; goto fail; } /* Retrieve text and data sections. */ if (*(const uint32_t *)fw->data != 0) /* Legacy image. */ error = iwn_read_firmware_leg(sc, fw); else error = iwn_read_firmware_tlv(sc, fw, 1); if (error != 0) { device_printf(sc->sc_dev, "%s: could not read firmware sections, error %d\n", __func__, error); goto fail; } device_printf(sc->sc_dev, "%s: ucode rev=0x%08x\n", __func__, sc->ucode_rev); /* Make sure text and data sections fit in hardware memory. */ if (fw->main.textsz > sc->fw_text_maxsz || fw->main.datasz > sc->fw_data_maxsz || fw->init.textsz > sc->fw_text_maxsz || fw->init.datasz > sc->fw_data_maxsz || fw->boot.textsz > IWN_FW_BOOT_TEXT_MAXSZ || (fw->boot.textsz & 3) != 0) { device_printf(sc->sc_dev, "%s: firmware sections too large\n", __func__); error = EINVAL; goto fail; } /* We can proceed with loading the firmware. */ return 0; fail: iwn_unload_firmware(sc); return error; } static void iwn_unload_firmware(struct iwn_softc *sc) { firmware_put(sc->fw_fp, FIRMWARE_UNLOAD); sc->fw_fp = NULL; } static int iwn_clock_wait(struct iwn_softc *sc) { int ntries; /* Set "initialization complete" bit. */ IWN_SETBITS(sc, IWN_GP_CNTRL, IWN_GP_CNTRL_INIT_DONE); /* Wait for clock stabilization. */ for (ntries = 0; ntries < 2500; ntries++) { if (IWN_READ(sc, IWN_GP_CNTRL) & IWN_GP_CNTRL_MAC_CLOCK_READY) return 0; DELAY(10); } device_printf(sc->sc_dev, "%s: timeout waiting for clock stabilization\n", __func__); return ETIMEDOUT; } static int iwn_apm_init(struct iwn_softc *sc) { uint32_t reg; int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* Disable L0s exit timer (NMI bug workaround). */ IWN_SETBITS(sc, IWN_GIO_CHICKEN, IWN_GIO_CHICKEN_DIS_L0S_TIMER); /* Don't wait for ICH L0s (ICH bug workaround). */ IWN_SETBITS(sc, IWN_GIO_CHICKEN, IWN_GIO_CHICKEN_L1A_NO_L0S_RX); /* Set FH wait threshold to max (HW bug under stress workaround). */ IWN_SETBITS(sc, IWN_DBG_HPET_MEM, 0xffff0000); /* Enable HAP INTA to move adapter from L1a to L0s. */ IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_HAP_WAKE_L1A); /* Retrieve PCIe Active State Power Management (ASPM). */ reg = pci_read_config(sc->sc_dev, sc->sc_cap_off + PCIER_LINK_CTL, 4); /* Workaround for HW instability in PCIe L0->L0s->L1 transition. */ if (reg & PCIEM_LINK_CTL_ASPMC_L1) /* L1 Entry enabled. */ IWN_SETBITS(sc, IWN_GIO, IWN_GIO_L0S_ENA); else IWN_CLRBITS(sc, IWN_GIO, IWN_GIO_L0S_ENA); if (sc->base_params->pll_cfg_val) IWN_SETBITS(sc, IWN_ANA_PLL, sc->base_params->pll_cfg_val); /* Wait for clock stabilization before accessing prph. */ if ((error = iwn_clock_wait(sc)) != 0) return error; if ((error = iwn_nic_lock(sc)) != 0) return error; if (sc->hw_type == IWN_HW_REV_TYPE_4965) { /* Enable DMA and BSM (Bootstrap State Machine). */ iwn_prph_write(sc, IWN_APMG_CLK_EN, IWN_APMG_CLK_CTRL_DMA_CLK_RQT | IWN_APMG_CLK_CTRL_BSM_CLK_RQT); } else { /* Enable DMA. */ iwn_prph_write(sc, IWN_APMG_CLK_EN, IWN_APMG_CLK_CTRL_DMA_CLK_RQT); } DELAY(20); /* Disable L1-Active. */ iwn_prph_setbits(sc, IWN_APMG_PCI_STT, IWN_APMG_PCI_STT_L1A_DIS); iwn_nic_unlock(sc); return 0; } static void iwn_apm_stop_master(struct iwn_softc *sc) { int ntries; /* Stop busmaster DMA activity. */ IWN_SETBITS(sc, IWN_RESET, IWN_RESET_STOP_MASTER); for (ntries = 0; ntries < 100; ntries++) { if (IWN_READ(sc, IWN_RESET) & IWN_RESET_MASTER_DISABLED) return; DELAY(10); } device_printf(sc->sc_dev, "%s: timeout waiting for master\n", __func__); } static void iwn_apm_stop(struct iwn_softc *sc) { iwn_apm_stop_master(sc); /* Reset the entire device. */ IWN_SETBITS(sc, IWN_RESET, IWN_RESET_SW); DELAY(10); /* Clear "initialization complete" bit. */ IWN_CLRBITS(sc, IWN_GP_CNTRL, IWN_GP_CNTRL_INIT_DONE); } static int iwn4965_nic_config(struct iwn_softc *sc) { DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); if (IWN_RFCFG_TYPE(sc->rfcfg) == 1) { /* * I don't believe this to be correct but this is what the * vendor driver is doing. Probably the bits should not be * shifted in IWN_RFCFG_*. */ IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_RFCFG_TYPE(sc->rfcfg) | IWN_RFCFG_STEP(sc->rfcfg) | IWN_RFCFG_DASH(sc->rfcfg)); } IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_RADIO_SI | IWN_HW_IF_CONFIG_MAC_SI); return 0; } static int iwn5000_nic_config(struct iwn_softc *sc) { uint32_t tmp; int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); if (IWN_RFCFG_TYPE(sc->rfcfg) < 3) { IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_RFCFG_TYPE(sc->rfcfg) | IWN_RFCFG_STEP(sc->rfcfg) | IWN_RFCFG_DASH(sc->rfcfg)); } IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_RADIO_SI | IWN_HW_IF_CONFIG_MAC_SI); if ((error = iwn_nic_lock(sc)) != 0) return error; iwn_prph_setbits(sc, IWN_APMG_PS, IWN_APMG_PS_EARLY_PWROFF_DIS); if (sc->hw_type == IWN_HW_REV_TYPE_1000) { /* * Select first Switching Voltage Regulator (1.32V) to * solve a stability issue related to noisy DC2DC line * in the silicon of 1000 Series. */ tmp = iwn_prph_read(sc, IWN_APMG_DIGITAL_SVR); tmp &= ~IWN_APMG_DIGITAL_SVR_VOLTAGE_MASK; tmp |= IWN_APMG_DIGITAL_SVR_VOLTAGE_1_32; iwn_prph_write(sc, IWN_APMG_DIGITAL_SVR, tmp); } iwn_nic_unlock(sc); if (sc->sc_flags & IWN_FLAG_INTERNAL_PA) { /* Use internal power amplifier only. */ IWN_WRITE(sc, IWN_GP_DRIVER, IWN_GP_DRIVER_RADIO_2X2_IPA); } if (sc->base_params->additional_nic_config && sc->calib_ver >= 6) { /* Indicate that ROM calibration version is >=6. */ IWN_SETBITS(sc, IWN_GP_DRIVER, IWN_GP_DRIVER_CALIB_VER6); } if (sc->base_params->additional_gp_drv_bit) IWN_SETBITS(sc, IWN_GP_DRIVER, sc->base_params->additional_gp_drv_bit); return 0; } /* * Take NIC ownership over Intel Active Management Technology (AMT). */ static int iwn_hw_prepare(struct iwn_softc *sc) { int ntries; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); /* Check if hardware is ready. */ IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_NIC_READY); for (ntries = 0; ntries < 5; ntries++) { if (IWN_READ(sc, IWN_HW_IF_CONFIG) & IWN_HW_IF_CONFIG_NIC_READY) return 0; DELAY(10); } /* Hardware not ready, force into ready state. */ IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_PREPARE); for (ntries = 0; ntries < 15000; ntries++) { if (!(IWN_READ(sc, IWN_HW_IF_CONFIG) & IWN_HW_IF_CONFIG_PREPARE_DONE)) break; DELAY(10); } if (ntries == 15000) return ETIMEDOUT; /* Hardware should be ready now. */ IWN_SETBITS(sc, IWN_HW_IF_CONFIG, IWN_HW_IF_CONFIG_NIC_READY); for (ntries = 0; ntries < 5; ntries++) { if (IWN_READ(sc, IWN_HW_IF_CONFIG) & IWN_HW_IF_CONFIG_NIC_READY) return 0; DELAY(10); } return ETIMEDOUT; } static int iwn_hw_init(struct iwn_softc *sc) { struct iwn_ops *ops = &sc->ops; int error, chnl, qid; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); /* Clear pending interrupts. */ IWN_WRITE(sc, IWN_INT, 0xffffffff); if ((error = iwn_apm_init(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not power ON adapter, error %d\n", __func__, error); return error; } /* Select VMAIN power source. */ if ((error = iwn_nic_lock(sc)) != 0) return error; iwn_prph_clrbits(sc, IWN_APMG_PS, IWN_APMG_PS_PWR_SRC_MASK); iwn_nic_unlock(sc); /* Perform adapter-specific initialization. */ if ((error = ops->nic_config(sc)) != 0) return error; /* Initialize RX ring. */ if ((error = iwn_nic_lock(sc)) != 0) return error; IWN_WRITE(sc, IWN_FH_RX_CONFIG, 0); IWN_WRITE(sc, IWN_FH_RX_WPTR, 0); /* Set physical address of RX ring (256-byte aligned). */ IWN_WRITE(sc, IWN_FH_RX_BASE, sc->rxq.desc_dma.paddr >> 8); /* Set physical address of RX status (16-byte aligned). */ IWN_WRITE(sc, IWN_FH_STATUS_WPTR, sc->rxq.stat_dma.paddr >> 4); /* Enable RX. */ IWN_WRITE(sc, IWN_FH_RX_CONFIG, IWN_FH_RX_CONFIG_ENA | IWN_FH_RX_CONFIG_IGN_RXF_EMPTY | /* HW bug workaround */ IWN_FH_RX_CONFIG_IRQ_DST_HOST | IWN_FH_RX_CONFIG_SINGLE_FRAME | IWN_FH_RX_CONFIG_RB_TIMEOUT(0) | IWN_FH_RX_CONFIG_NRBD(IWN_RX_RING_COUNT_LOG)); iwn_nic_unlock(sc); IWN_WRITE(sc, IWN_FH_RX_WPTR, (IWN_RX_RING_COUNT - 1) & ~7); if ((error = iwn_nic_lock(sc)) != 0) return error; /* Initialize TX scheduler. */ iwn_prph_write(sc, sc->sched_txfact_addr, 0); /* Set physical address of "keep warm" page (16-byte aligned). */ IWN_WRITE(sc, IWN_FH_KW_ADDR, sc->kw_dma.paddr >> 4); /* Initialize TX rings. */ for (qid = 0; qid < sc->ntxqs; qid++) { struct iwn_tx_ring *txq = &sc->txq[qid]; /* Set physical address of TX ring (256-byte aligned). */ IWN_WRITE(sc, IWN_FH_CBBC_QUEUE(qid), txq->desc_dma.paddr >> 8); } iwn_nic_unlock(sc); /* Enable DMA channels. */ for (chnl = 0; chnl < sc->ndmachnls; chnl++) { IWN_WRITE(sc, IWN_FH_TX_CONFIG(chnl), IWN_FH_TX_CONFIG_DMA_ENA | IWN_FH_TX_CONFIG_DMA_CREDIT_ENA); } /* Clear "radio off" and "commands blocked" bits. */ IWN_WRITE(sc, IWN_UCODE_GP1_CLR, IWN_UCODE_GP1_RFKILL); IWN_WRITE(sc, IWN_UCODE_GP1_CLR, IWN_UCODE_GP1_CMD_BLOCKED); /* Clear pending interrupts. */ IWN_WRITE(sc, IWN_INT, 0xffffffff); /* Enable interrupt coalescing. */ IWN_WRITE(sc, IWN_INT_COALESCING, 512 / 8); /* Enable interrupts. */ IWN_WRITE(sc, IWN_INT_MASK, sc->int_mask); /* _Really_ make sure "radio off" bit is cleared! */ IWN_WRITE(sc, IWN_UCODE_GP1_CLR, IWN_UCODE_GP1_RFKILL); IWN_WRITE(sc, IWN_UCODE_GP1_CLR, IWN_UCODE_GP1_RFKILL); /* Enable shadow registers. */ if (sc->base_params->shadow_reg_enable) IWN_SETBITS(sc, IWN_SHADOW_REG_CTRL, 0x800fffff); if ((error = ops->load_firmware(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not load firmware, error %d\n", __func__, error); return error; } /* Wait at most one second for firmware alive notification. */ if ((error = msleep(sc, &sc->sc_mtx, PCATCH, "iwninit", hz)) != 0) { device_printf(sc->sc_dev, "%s: timeout waiting for adapter to initialize, error %d\n", __func__, error); return error; } /* Do post-firmware initialization. */ DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return ops->post_alive(sc); } static void iwn_hw_stop(struct iwn_softc *sc) { int chnl, qid, ntries; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); IWN_WRITE(sc, IWN_RESET, IWN_RESET_NEVO); /* Disable interrupts. */ IWN_WRITE(sc, IWN_INT_MASK, 0); IWN_WRITE(sc, IWN_INT, 0xffffffff); IWN_WRITE(sc, IWN_FH_INT, 0xffffffff); sc->sc_flags &= ~IWN_FLAG_USE_ICT; /* Make sure we no longer hold the NIC lock. */ iwn_nic_unlock(sc); /* Stop TX scheduler. */ iwn_prph_write(sc, sc->sched_txfact_addr, 0); /* Stop all DMA channels. */ if (iwn_nic_lock(sc) == 0) { for (chnl = 0; chnl < sc->ndmachnls; chnl++) { IWN_WRITE(sc, IWN_FH_TX_CONFIG(chnl), 0); for (ntries = 0; ntries < 200; ntries++) { if (IWN_READ(sc, IWN_FH_TX_STATUS) & IWN_FH_TX_STATUS_IDLE(chnl)) break; DELAY(10); } } iwn_nic_unlock(sc); } /* Stop RX ring. */ iwn_reset_rx_ring(sc, &sc->rxq); /* Reset all TX rings. */ for (qid = 0; qid < sc->ntxqs; qid++) iwn_reset_tx_ring(sc, &sc->txq[qid]); if (iwn_nic_lock(sc) == 0) { iwn_prph_write(sc, IWN_APMG_CLK_DIS, IWN_APMG_CLK_CTRL_DMA_CLK_RQT); iwn_nic_unlock(sc); } DELAY(5); /* Power OFF adapter. */ iwn_apm_stop(sc); } static void iwn_panicked(void *arg0, int pending) { struct iwn_softc *sc = arg0; struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); #if 0 int error; #endif if (vap == NULL) { printf("%s: null vap\n", __func__); return; } device_printf(sc->sc_dev, "%s: controller panicked, iv_state = %d; " "restarting\n", __func__, vap->iv_state); /* * This is not enough work. We need to also reinitialise * the correct transmit state for aggregation enabled queues, * which has a very specific requirement of * ring index = 802.11 seqno % 256. If we don't do this (which * we definitely don't!) then the firmware will just panic again. */ #if 1 ieee80211_restart_all(ic); #else IWN_LOCK(sc); iwn_stop_locked(sc); if ((error = iwn_init_locked(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not init hardware\n", __func__); goto unlock; } if (vap->iv_state >= IEEE80211_S_AUTH && (error = iwn_auth(sc, vap)) != 0) { device_printf(sc->sc_dev, "%s: could not move to auth state\n", __func__); } if (vap->iv_state >= IEEE80211_S_RUN && (error = iwn_run(sc, vap)) != 0) { device_printf(sc->sc_dev, "%s: could not move to run state\n", __func__); } unlock: IWN_UNLOCK(sc); #endif } static int iwn_init_locked(struct iwn_softc *sc) { int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->%s begin\n", __func__); IWN_LOCK_ASSERT(sc); if (sc->sc_flags & IWN_FLAG_RUNNING) goto end; sc->sc_flags |= IWN_FLAG_RUNNING; if ((error = iwn_hw_prepare(sc)) != 0) { device_printf(sc->sc_dev, "%s: hardware not ready, error %d\n", __func__, error); goto fail; } /* Initialize interrupt mask to default value. */ sc->int_mask = IWN_INT_MASK_DEF; sc->sc_flags &= ~IWN_FLAG_USE_ICT; /* Check that the radio is not disabled by hardware switch. */ if (!(IWN_READ(sc, IWN_GP_CNTRL) & IWN_GP_CNTRL_RFKILL)) { iwn_stop_locked(sc); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return (1); } /* Read firmware images from the filesystem. */ if ((error = iwn_read_firmware(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not read firmware, error %d\n", __func__, error); goto fail; } /* Initialize hardware and upload firmware. */ error = iwn_hw_init(sc); iwn_unload_firmware(sc); if (error != 0) { device_printf(sc->sc_dev, "%s: could not initialize hardware, error %d\n", __func__, error); goto fail; } /* Configure adapter now that it is ready. */ if ((error = iwn_config(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not configure device, error %d\n", __func__, error); goto fail; } callout_reset(&sc->watchdog_to, hz, iwn_watchdog, sc); end: DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end\n",__func__); return (0); fail: iwn_stop_locked(sc); DPRINTF(sc, IWN_DEBUG_TRACE, "->%s: end in error\n",__func__); return (-1); } static int iwn_init(struct iwn_softc *sc) { int error; IWN_LOCK(sc); error = iwn_init_locked(sc); IWN_UNLOCK(sc); return (error); } static void iwn_stop_locked(struct iwn_softc *sc) { IWN_LOCK_ASSERT(sc); if (!(sc->sc_flags & IWN_FLAG_RUNNING)) return; sc->sc_is_scanning = 0; sc->sc_tx_timer = 0; callout_stop(&sc->watchdog_to); callout_stop(&sc->scan_timeout); callout_stop(&sc->calib_to); sc->sc_flags &= ~IWN_FLAG_RUNNING; /* Power OFF hardware. */ iwn_hw_stop(sc); } static void iwn_stop(struct iwn_softc *sc) { IWN_LOCK(sc); iwn_stop_locked(sc); IWN_UNLOCK(sc); } /* * Callback from net80211 to start a scan. */ static void iwn_scan_start(struct ieee80211com *ic) { struct iwn_softc *sc = ic->ic_softc; IWN_LOCK(sc); /* make the link LED blink while we're scanning */ iwn_set_led(sc, IWN_LED_LINK, 20, 2); IWN_UNLOCK(sc); } /* * Callback from net80211 to terminate a scan. */ static void iwn_scan_end(struct ieee80211com *ic) { struct iwn_softc *sc = ic->ic_softc; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); IWN_LOCK(sc); if (vap->iv_state == IEEE80211_S_RUN) { /* Set link LED to ON status if we are associated */ iwn_set_led(sc, IWN_LED_LINK, 0, 1); } IWN_UNLOCK(sc); } /* * Callback from net80211 to force a channel change. */ static void iwn_set_channel(struct ieee80211com *ic) { struct iwn_softc *sc = ic->ic_softc; int error; DPRINTF(sc, IWN_DEBUG_TRACE, "->Doing %s\n", __func__); IWN_LOCK(sc); /* * Only need to set the channel in Monitor mode. AP scanning and auth * are already taken care of by their respective firmware commands. */ if (ic->ic_opmode == IEEE80211_M_MONITOR) { error = iwn_config(sc); if (error != 0) device_printf(sc->sc_dev, "%s: error %d settting channel\n", __func__, error); } IWN_UNLOCK(sc); } /* * Callback from net80211 to start scanning of the current channel. */ static void iwn_scan_curchan(struct ieee80211_scan_state *ss, unsigned long maxdwell) { struct ieee80211vap *vap = ss->ss_vap; struct ieee80211com *ic = vap->iv_ic; struct iwn_softc *sc = ic->ic_softc; int error; IWN_LOCK(sc); error = iwn_scan(sc, vap, ss, ic->ic_curchan); IWN_UNLOCK(sc); if (error != 0) ieee80211_cancel_scan(vap); } /* * Callback from net80211 to handle the minimum dwell time being met. * The intent is to terminate the scan but we just let the firmware * notify us when it's finished as we have no safe way to abort it. */ static void iwn_scan_mindwell(struct ieee80211_scan_state *ss) { /* NB: don't try to abort scan; wait for firmware to finish */ } #ifdef IWN_DEBUG #define IWN_DESC(x) case x: return #x /* * Translate CSR code to string */ static char *iwn_get_csr_string(int csr) { switch (csr) { IWN_DESC(IWN_HW_IF_CONFIG); IWN_DESC(IWN_INT_COALESCING); IWN_DESC(IWN_INT); IWN_DESC(IWN_INT_MASK); IWN_DESC(IWN_FH_INT); IWN_DESC(IWN_GPIO_IN); IWN_DESC(IWN_RESET); IWN_DESC(IWN_GP_CNTRL); IWN_DESC(IWN_HW_REV); IWN_DESC(IWN_EEPROM); IWN_DESC(IWN_EEPROM_GP); IWN_DESC(IWN_OTP_GP); IWN_DESC(IWN_GIO); IWN_DESC(IWN_GP_UCODE); IWN_DESC(IWN_GP_DRIVER); IWN_DESC(IWN_UCODE_GP1); IWN_DESC(IWN_UCODE_GP2); IWN_DESC(IWN_LED); IWN_DESC(IWN_DRAM_INT_TBL); IWN_DESC(IWN_GIO_CHICKEN); IWN_DESC(IWN_ANA_PLL); IWN_DESC(IWN_HW_REV_WA); IWN_DESC(IWN_DBG_HPET_MEM); default: return "UNKNOWN CSR"; } } /* * This function print firmware register */ static void iwn_debug_register(struct iwn_softc *sc) { int i; static const uint32_t csr_tbl[] = { IWN_HW_IF_CONFIG, IWN_INT_COALESCING, IWN_INT, IWN_INT_MASK, IWN_FH_INT, IWN_GPIO_IN, IWN_RESET, IWN_GP_CNTRL, IWN_HW_REV, IWN_EEPROM, IWN_EEPROM_GP, IWN_OTP_GP, IWN_GIO, IWN_GP_UCODE, IWN_GP_DRIVER, IWN_UCODE_GP1, IWN_UCODE_GP2, IWN_LED, IWN_DRAM_INT_TBL, IWN_GIO_CHICKEN, IWN_ANA_PLL, IWN_HW_REV_WA, IWN_DBG_HPET_MEM, }; DPRINTF(sc, IWN_DEBUG_REGISTER, "CSR values: (2nd byte of IWN_INT_COALESCING is IWN_INT_PERIODIC)%s", "\n"); for (i = 0; i < nitems(csr_tbl); i++){ DPRINTF(sc, IWN_DEBUG_REGISTER," %10s: 0x%08x ", iwn_get_csr_string(csr_tbl[i]), IWN_READ(sc, csr_tbl[i])); if ((i+1) % 3 == 0) DPRINTF(sc, IWN_DEBUG_REGISTER,"%s","\n"); } DPRINTF(sc, IWN_DEBUG_REGISTER,"%s","\n"); } #endif Index: head/sys/dev/mwl/if_mwl.c =================================================================== --- head/sys/dev/mwl/if_mwl.c (revision 365418) +++ head/sys/dev/mwl/if_mwl.c (revision 365419) @@ -1,4833 +1,4834 @@ /*- * SPDX-License-Identifier: BSD-2-Clause-FreeBSD * * Copyright (c) 2007-2009 Sam Leffler, Errno Consulting * Copyright (c) 2007-2008 Marvell Semiconductor, Inc. * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer, * without modification. * 2. Redistributions in binary form must reproduce at minimum a disclaimer * similar to the "NO WARRANTY" disclaimer below ("Disclaimer") and any * redistribution must be conditioned upon including a substantially * similar Disclaimer requirement for further binary redistribution. * * NO WARRANTY * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT * LIMITED TO, THE IMPLIED WARRANTIES OF NONINFRINGEMENT, MERCHANTIBILITY * AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL * THE COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR SPECIAL, EXEMPLARY, * OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER * IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF * THE POSSIBILITY OF SUCH DAMAGES. */ #include __FBSDID("$FreeBSD$"); /* * Driver for the Marvell 88W8363 Wireless LAN controller. */ #include "opt_inet.h" #include "opt_mwl.h" #include "opt_wlan.h" #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #ifdef INET #include #include #endif /* INET */ #include #include /* idiomatic shorthands: MS = mask+shift, SM = shift+mask */ #define MS(v,x) (((v) & x) >> x##_S) #define SM(v,x) (((v) << x##_S) & x) static struct ieee80211vap *mwl_vap_create(struct ieee80211com *, const char [IFNAMSIZ], int, enum ieee80211_opmode, int, const uint8_t [IEEE80211_ADDR_LEN], const uint8_t [IEEE80211_ADDR_LEN]); static void mwl_vap_delete(struct ieee80211vap *); static int mwl_setupdma(struct mwl_softc *); static int mwl_hal_reset(struct mwl_softc *sc); static int mwl_init(struct mwl_softc *); static void mwl_parent(struct ieee80211com *); static int mwl_reset(struct ieee80211vap *, u_long); static void mwl_stop(struct mwl_softc *); static void mwl_start(struct mwl_softc *); static int mwl_transmit(struct ieee80211com *, struct mbuf *); static int mwl_raw_xmit(struct ieee80211_node *, struct mbuf *, const struct ieee80211_bpf_params *); static int mwl_media_change(struct ifnet *); static void mwl_watchdog(void *); static int mwl_ioctl(struct ieee80211com *, u_long, void *); static void mwl_radar_proc(void *, int); static void mwl_chanswitch_proc(void *, int); static void mwl_bawatchdog_proc(void *, int); static int mwl_key_alloc(struct ieee80211vap *, struct ieee80211_key *, ieee80211_keyix *, ieee80211_keyix *); static int mwl_key_delete(struct ieee80211vap *, const struct ieee80211_key *); static int mwl_key_set(struct ieee80211vap *, const struct ieee80211_key *); static int _mwl_key_set(struct ieee80211vap *, const struct ieee80211_key *, const uint8_t mac[IEEE80211_ADDR_LEN]); static int mwl_mode_init(struct mwl_softc *); static void mwl_update_mcast(struct ieee80211com *); static void mwl_update_promisc(struct ieee80211com *); static void mwl_updateslot(struct ieee80211com *); static int mwl_beacon_setup(struct ieee80211vap *); static void mwl_beacon_update(struct ieee80211vap *, int); #ifdef MWL_HOST_PS_SUPPORT static void mwl_update_ps(struct ieee80211vap *, int); static int mwl_set_tim(struct ieee80211_node *, int); #endif static int mwl_dma_setup(struct mwl_softc *); static void mwl_dma_cleanup(struct mwl_softc *); static struct ieee80211_node *mwl_node_alloc(struct ieee80211vap *, const uint8_t [IEEE80211_ADDR_LEN]); static void mwl_node_cleanup(struct ieee80211_node *); static void mwl_node_drain(struct ieee80211_node *); static void mwl_node_getsignal(const struct ieee80211_node *, int8_t *, int8_t *); static void mwl_node_getmimoinfo(const struct ieee80211_node *, struct ieee80211_mimo_info *); static int mwl_rxbuf_init(struct mwl_softc *, struct mwl_rxbuf *); static void mwl_rx_proc(void *, int); static void mwl_txq_init(struct mwl_softc *sc, struct mwl_txq *, int); static int mwl_tx_setup(struct mwl_softc *, int, int); static int mwl_wme_update(struct ieee80211com *); static void mwl_tx_cleanupq(struct mwl_softc *, struct mwl_txq *); static void mwl_tx_cleanup(struct mwl_softc *); static uint16_t mwl_calcformat(uint8_t rate, const struct ieee80211_node *); static int mwl_tx_start(struct mwl_softc *, struct ieee80211_node *, struct mwl_txbuf *, struct mbuf *); static void mwl_tx_proc(void *, int); static int mwl_chan_set(struct mwl_softc *, struct ieee80211_channel *); static void mwl_draintxq(struct mwl_softc *); static void mwl_cleartxq(struct mwl_softc *, struct ieee80211vap *); static int mwl_recv_action(struct ieee80211_node *, const struct ieee80211_frame *, const uint8_t *, const uint8_t *); static int mwl_addba_request(struct ieee80211_node *, struct ieee80211_tx_ampdu *, int dialogtoken, int baparamset, int batimeout); static int mwl_addba_response(struct ieee80211_node *, struct ieee80211_tx_ampdu *, int status, int baparamset, int batimeout); static void mwl_addba_stop(struct ieee80211_node *, struct ieee80211_tx_ampdu *); static int mwl_startrecv(struct mwl_softc *); static MWL_HAL_APMODE mwl_getapmode(const struct ieee80211vap *, struct ieee80211_channel *); static int mwl_setapmode(struct ieee80211vap *, struct ieee80211_channel*); static void mwl_scan_start(struct ieee80211com *); static void mwl_scan_end(struct ieee80211com *); static void mwl_set_channel(struct ieee80211com *); static int mwl_peerstadb(struct ieee80211_node *, int aid, int staid, MWL_HAL_PEERINFO *pi); static int mwl_localstadb(struct ieee80211vap *); static int mwl_newstate(struct ieee80211vap *, enum ieee80211_state, int); static int allocstaid(struct mwl_softc *sc, int aid); static void delstaid(struct mwl_softc *sc, int staid); static void mwl_newassoc(struct ieee80211_node *, int); static void mwl_agestations(void *); static int mwl_setregdomain(struct ieee80211com *, struct ieee80211_regdomain *, int, struct ieee80211_channel []); static void mwl_getradiocaps(struct ieee80211com *, int, int *, struct ieee80211_channel []); static int mwl_getchannels(struct mwl_softc *); static void mwl_sysctlattach(struct mwl_softc *); static void mwl_announce(struct mwl_softc *); SYSCTL_NODE(_hw, OID_AUTO, mwl, CTLFLAG_RD | CTLFLAG_MPSAFE, 0, "Marvell driver parameters"); static int mwl_rxdesc = MWL_RXDESC; /* # rx desc's to allocate */ SYSCTL_INT(_hw_mwl, OID_AUTO, rxdesc, CTLFLAG_RW, &mwl_rxdesc, 0, "rx descriptors allocated"); static int mwl_rxbuf = MWL_RXBUF; /* # rx buffers to allocate */ SYSCTL_INT(_hw_mwl, OID_AUTO, rxbuf, CTLFLAG_RWTUN, &mwl_rxbuf, 0, "rx buffers allocated"); static int mwl_txbuf = MWL_TXBUF; /* # tx buffers to allocate */ SYSCTL_INT(_hw_mwl, OID_AUTO, txbuf, CTLFLAG_RWTUN, &mwl_txbuf, 0, "tx buffers allocated"); static int mwl_txcoalesce = 8; /* # tx packets to q before poking f/w*/ SYSCTL_INT(_hw_mwl, OID_AUTO, txcoalesce, CTLFLAG_RWTUN, &mwl_txcoalesce, 0, "tx buffers to send at once"); static int mwl_rxquota = MWL_RXBUF; /* # max buffers to process */ SYSCTL_INT(_hw_mwl, OID_AUTO, rxquota, CTLFLAG_RWTUN, &mwl_rxquota, 0, "max rx buffers to process per interrupt"); static int mwl_rxdmalow = 3; /* # min buffers for wakeup */ SYSCTL_INT(_hw_mwl, OID_AUTO, rxdmalow, CTLFLAG_RWTUN, &mwl_rxdmalow, 0, "min free rx buffers before restarting traffic"); #ifdef MWL_DEBUG static int mwl_debug = 0; SYSCTL_INT(_hw_mwl, OID_AUTO, debug, CTLFLAG_RWTUN, &mwl_debug, 0, "control debugging printfs"); enum { MWL_DEBUG_XMIT = 0x00000001, /* basic xmit operation */ MWL_DEBUG_XMIT_DESC = 0x00000002, /* xmit descriptors */ MWL_DEBUG_RECV = 0x00000004, /* basic recv operation */ MWL_DEBUG_RECV_DESC = 0x00000008, /* recv descriptors */ MWL_DEBUG_RESET = 0x00000010, /* reset processing */ MWL_DEBUG_BEACON = 0x00000020, /* beacon handling */ MWL_DEBUG_INTR = 0x00000040, /* ISR */ MWL_DEBUG_TX_PROC = 0x00000080, /* tx ISR proc */ MWL_DEBUG_RX_PROC = 0x00000100, /* rx ISR proc */ MWL_DEBUG_KEYCACHE = 0x00000200, /* key cache management */ MWL_DEBUG_STATE = 0x00000400, /* 802.11 state transitions */ MWL_DEBUG_NODE = 0x00000800, /* node management */ MWL_DEBUG_RECV_ALL = 0x00001000, /* trace all frames (beacons) */ MWL_DEBUG_TSO = 0x00002000, /* TSO processing */ MWL_DEBUG_AMPDU = 0x00004000, /* BA stream handling */ MWL_DEBUG_ANY = 0xffffffff }; #define IS_BEACON(wh) \ ((wh->i_fc[0] & (IEEE80211_FC0_TYPE_MASK|IEEE80211_FC0_SUBTYPE_MASK)) == \ (IEEE80211_FC0_TYPE_MGT|IEEE80211_FC0_SUBTYPE_BEACON)) #define IFF_DUMPPKTS_RECV(sc, wh) \ ((sc->sc_debug & MWL_DEBUG_RECV) && \ ((sc->sc_debug & MWL_DEBUG_RECV_ALL) || !IS_BEACON(wh))) #define IFF_DUMPPKTS_XMIT(sc) \ (sc->sc_debug & MWL_DEBUG_XMIT) #define DPRINTF(sc, m, fmt, ...) do { \ if (sc->sc_debug & (m)) \ printf(fmt, __VA_ARGS__); \ } while (0) #define KEYPRINTF(sc, hk, mac) do { \ if (sc->sc_debug & MWL_DEBUG_KEYCACHE) \ mwl_keyprint(sc, __func__, hk, mac); \ } while (0) static void mwl_printrxbuf(const struct mwl_rxbuf *bf, u_int ix); static void mwl_printtxbuf(const struct mwl_txbuf *bf, u_int qnum, u_int ix); #else #define IFF_DUMPPKTS_RECV(sc, wh) 0 #define IFF_DUMPPKTS_XMIT(sc) 0 #define DPRINTF(sc, m, fmt, ...) do { (void )sc; } while (0) #define KEYPRINTF(sc, k, mac) do { (void )sc; } while (0) #endif static MALLOC_DEFINE(M_MWLDEV, "mwldev", "mwl driver dma buffers"); /* * Each packet has fixed front matter: a 2-byte length * of the payload, followed by a 4-address 802.11 header * (regardless of the actual header and always w/o any * QoS header). The payload then follows. */ struct mwltxrec { uint16_t fwlen; struct ieee80211_frame_addr4 wh; } __packed; /* * Read/Write shorthands for accesses to BAR 0. Note * that all BAR 1 operations are done in the "hal" and * there should be no reference to them here. */ #ifdef MWL_DEBUG static __inline uint32_t RD4(struct mwl_softc *sc, bus_size_t off) { return bus_space_read_4(sc->sc_io0t, sc->sc_io0h, off); } #endif static __inline void WR4(struct mwl_softc *sc, bus_size_t off, uint32_t val) { bus_space_write_4(sc->sc_io0t, sc->sc_io0h, off, val); } int mwl_attach(uint16_t devid, struct mwl_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct mwl_hal *mh; int error = 0; DPRINTF(sc, MWL_DEBUG_ANY, "%s: devid 0x%x\n", __func__, devid); /* * Setup the RX free list lock early, so it can be consistently * removed. */ MWL_RXFREE_INIT(sc); mh = mwl_hal_attach(sc->sc_dev, devid, sc->sc_io1h, sc->sc_io1t, sc->sc_dmat); if (mh == NULL) { device_printf(sc->sc_dev, "unable to attach HAL\n"); error = EIO; goto bad; } sc->sc_mh = mh; /* * Load firmware so we can get setup. We arbitrarily * pick station firmware; we'll re-load firmware as * needed so setting up the wrong mode isn't a big deal. */ if (mwl_hal_fwload(mh, NULL) != 0) { device_printf(sc->sc_dev, "unable to setup builtin firmware\n"); error = EIO; goto bad1; } if (mwl_hal_gethwspecs(mh, &sc->sc_hwspecs) != 0) { device_printf(sc->sc_dev, "unable to fetch h/w specs\n"); error = EIO; goto bad1; } error = mwl_getchannels(sc); if (error != 0) goto bad1; sc->sc_txantenna = 0; /* h/w default */ sc->sc_rxantenna = 0; /* h/w default */ sc->sc_invalid = 0; /* ready to go, enable int handling */ sc->sc_ageinterval = MWL_AGEINTERVAL; /* * Allocate tx+rx descriptors and populate the lists. * We immediately push the information to the firmware * as otherwise it gets upset. */ error = mwl_dma_setup(sc); if (error != 0) { device_printf(sc->sc_dev, "failed to setup descriptors: %d\n", error); goto bad1; } error = mwl_setupdma(sc); /* push to firmware */ if (error != 0) /* NB: mwl_setupdma prints msg */ goto bad1; callout_init(&sc->sc_timer, 1); callout_init_mtx(&sc->sc_watchdog, &sc->sc_mtx, 0); mbufq_init(&sc->sc_snd, ifqmaxlen); sc->sc_tq = taskqueue_create("mwl_taskq", M_NOWAIT, taskqueue_thread_enqueue, &sc->sc_tq); taskqueue_start_threads(&sc->sc_tq, 1, PI_NET, "%s taskq", device_get_nameunit(sc->sc_dev)); NET_TASK_INIT(&sc->sc_rxtask, 0, mwl_rx_proc, sc); TASK_INIT(&sc->sc_radartask, 0, mwl_radar_proc, sc); TASK_INIT(&sc->sc_chanswitchtask, 0, mwl_chanswitch_proc, sc); TASK_INIT(&sc->sc_bawatchdogtask, 0, mwl_bawatchdog_proc, sc); /* NB: insure BK queue is the lowest priority h/w queue */ if (!mwl_tx_setup(sc, WME_AC_BK, MWL_WME_AC_BK)) { device_printf(sc->sc_dev, "unable to setup xmit queue for %s traffic!\n", ieee80211_wme_acnames[WME_AC_BK]); error = EIO; goto bad2; } if (!mwl_tx_setup(sc, WME_AC_BE, MWL_WME_AC_BE) || !mwl_tx_setup(sc, WME_AC_VI, MWL_WME_AC_VI) || !mwl_tx_setup(sc, WME_AC_VO, MWL_WME_AC_VO)) { /* * Not enough hardware tx queues to properly do WME; * just punt and assign them all to the same h/w queue. * We could do a better job of this if, for example, * we allocate queues when we switch from station to * AP mode. */ if (sc->sc_ac2q[WME_AC_VI] != NULL) mwl_tx_cleanupq(sc, sc->sc_ac2q[WME_AC_VI]); if (sc->sc_ac2q[WME_AC_BE] != NULL) mwl_tx_cleanupq(sc, sc->sc_ac2q[WME_AC_BE]); sc->sc_ac2q[WME_AC_BE] = sc->sc_ac2q[WME_AC_BK]; sc->sc_ac2q[WME_AC_VI] = sc->sc_ac2q[WME_AC_BK]; sc->sc_ac2q[WME_AC_VO] = sc->sc_ac2q[WME_AC_BK]; } TASK_INIT(&sc->sc_txtask, 0, mwl_tx_proc, sc); ic->ic_softc = sc; ic->ic_name = device_get_nameunit(sc->sc_dev); /* XXX not right but it's not used anywhere important */ ic->ic_phytype = IEEE80211_T_OFDM; ic->ic_opmode = IEEE80211_M_STA; ic->ic_caps = IEEE80211_C_STA /* station mode supported */ | IEEE80211_C_HOSTAP /* hostap mode */ | IEEE80211_C_MONITOR /* monitor mode */ #if 0 | IEEE80211_C_IBSS /* ibss, nee adhoc, mode */ | IEEE80211_C_AHDEMO /* adhoc demo mode */ #endif | IEEE80211_C_MBSS /* mesh point link mode */ | IEEE80211_C_WDS /* WDS supported */ | IEEE80211_C_SHPREAMBLE /* short preamble supported */ | IEEE80211_C_SHSLOT /* short slot time supported */ | IEEE80211_C_WME /* WME/WMM supported */ | IEEE80211_C_BURST /* xmit bursting supported */ | IEEE80211_C_WPA /* capable of WPA1+WPA2 */ | IEEE80211_C_BGSCAN /* capable of bg scanning */ | IEEE80211_C_TXFRAG /* handle tx frags */ | IEEE80211_C_TXPMGT /* capable of txpow mgt */ | IEEE80211_C_DFS /* DFS supported */ ; ic->ic_htcaps = IEEE80211_HTCAP_SMPS_ENA /* SM PS mode enabled */ | IEEE80211_HTCAP_CHWIDTH40 /* 40MHz channel width */ | IEEE80211_HTCAP_SHORTGI20 /* short GI in 20MHz */ | IEEE80211_HTCAP_SHORTGI40 /* short GI in 40MHz */ | IEEE80211_HTCAP_RXSTBC_2STREAM/* 1-2 spatial streams */ #if MWL_AGGR_SIZE == 7935 | IEEE80211_HTCAP_MAXAMSDU_7935 /* max A-MSDU length */ #else | IEEE80211_HTCAP_MAXAMSDU_3839 /* max A-MSDU length */ #endif #if 0 | IEEE80211_HTCAP_PSMP /* PSMP supported */ | IEEE80211_HTCAP_40INTOLERANT /* 40MHz intolerant */ #endif /* s/w capabilities */ | IEEE80211_HTC_HT /* HT operation */ | IEEE80211_HTC_AMPDU /* tx A-MPDU */ | IEEE80211_HTC_AMSDU /* tx A-MSDU */ | IEEE80211_HTC_SMPS /* SMPS available */ ; /* * Mark h/w crypto support. * XXX no way to query h/w support. */ ic->ic_cryptocaps |= IEEE80211_CRYPTO_WEP | IEEE80211_CRYPTO_AES_CCM | IEEE80211_CRYPTO_TKIP | IEEE80211_CRYPTO_TKIPMIC ; /* * Transmit requires space in the packet for a special * format transmit record and optional padding between * this record and the payload. Ask the net80211 layer * to arrange this when encapsulating packets so we can * add it efficiently. */ ic->ic_headroom = sizeof(struct mwltxrec) - sizeof(struct ieee80211_frame); IEEE80211_ADDR_COPY(ic->ic_macaddr, sc->sc_hwspecs.macAddr); /* call MI attach routine. */ ieee80211_ifattach(ic); ic->ic_setregdomain = mwl_setregdomain; ic->ic_getradiocaps = mwl_getradiocaps; /* override default methods */ ic->ic_raw_xmit = mwl_raw_xmit; ic->ic_newassoc = mwl_newassoc; ic->ic_updateslot = mwl_updateslot; ic->ic_update_mcast = mwl_update_mcast; ic->ic_update_promisc = mwl_update_promisc; ic->ic_wme.wme_update = mwl_wme_update; ic->ic_transmit = mwl_transmit; ic->ic_ioctl = mwl_ioctl; ic->ic_parent = mwl_parent; ic->ic_node_alloc = mwl_node_alloc; sc->sc_node_cleanup = ic->ic_node_cleanup; ic->ic_node_cleanup = mwl_node_cleanup; sc->sc_node_drain = ic->ic_node_drain; ic->ic_node_drain = mwl_node_drain; ic->ic_node_getsignal = mwl_node_getsignal; ic->ic_node_getmimoinfo = mwl_node_getmimoinfo; ic->ic_scan_start = mwl_scan_start; ic->ic_scan_end = mwl_scan_end; ic->ic_set_channel = mwl_set_channel; sc->sc_recv_action = ic->ic_recv_action; ic->ic_recv_action = mwl_recv_action; sc->sc_addba_request = ic->ic_addba_request; ic->ic_addba_request = mwl_addba_request; sc->sc_addba_response = ic->ic_addba_response; ic->ic_addba_response = mwl_addba_response; sc->sc_addba_stop = ic->ic_addba_stop; ic->ic_addba_stop = mwl_addba_stop; ic->ic_vap_create = mwl_vap_create; ic->ic_vap_delete = mwl_vap_delete; ieee80211_radiotap_attach(ic, &sc->sc_tx_th.wt_ihdr, sizeof(sc->sc_tx_th), MWL_TX_RADIOTAP_PRESENT, &sc->sc_rx_th.wr_ihdr, sizeof(sc->sc_rx_th), MWL_RX_RADIOTAP_PRESENT); /* * Setup dynamic sysctl's now that country code and * regdomain are available from the hal. */ mwl_sysctlattach(sc); if (bootverbose) ieee80211_announce(ic); mwl_announce(sc); return 0; bad2: mwl_dma_cleanup(sc); bad1: mwl_hal_detach(mh); bad: MWL_RXFREE_DESTROY(sc); sc->sc_invalid = 1; return error; } int mwl_detach(struct mwl_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; MWL_LOCK(sc); mwl_stop(sc); MWL_UNLOCK(sc); /* * NB: the order of these is important: * o call the 802.11 layer before detaching the hal to * insure callbacks into the driver to delete global * key cache entries can be handled * o reclaim the tx queue data structures after calling * the 802.11 layer as we'll get called back to reclaim * node state and potentially want to use them * o to cleanup the tx queues the hal is called, so detach * it last * Other than that, it's straightforward... */ ieee80211_ifdetach(ic); callout_drain(&sc->sc_watchdog); mwl_dma_cleanup(sc); MWL_RXFREE_DESTROY(sc); mwl_tx_cleanup(sc); mwl_hal_detach(sc->sc_mh); mbufq_drain(&sc->sc_snd); return 0; } /* * MAC address handling for multiple BSS on the same radio. * The first vap uses the MAC address from the EEPROM. For * subsequent vap's we set the U/L bit (bit 1) in the MAC * address and use the next six bits as an index. */ static void assign_address(struct mwl_softc *sc, uint8_t mac[IEEE80211_ADDR_LEN], int clone) { int i; if (clone && mwl_hal_ismbsscapable(sc->sc_mh)) { /* NB: we only do this if h/w supports multiple bssid */ for (i = 0; i < 32; i++) if ((sc->sc_bssidmask & (1<sc_bssidmask |= 1<sc_nbssid0++; } static void reclaim_address(struct mwl_softc *sc, const uint8_t mac[IEEE80211_ADDR_LEN]) { int i = mac[0] >> 2; if (i != 0 || --sc->sc_nbssid0 == 0) sc->sc_bssidmask &= ~(1<ic_softc; struct mwl_hal *mh = sc->sc_mh; struct ieee80211vap *vap, *apvap; struct mwl_hal_vap *hvap; struct mwl_vap *mvp; uint8_t mac[IEEE80211_ADDR_LEN]; IEEE80211_ADDR_COPY(mac, mac0); switch (opmode) { case IEEE80211_M_HOSTAP: case IEEE80211_M_MBSS: if ((flags & IEEE80211_CLONE_MACADDR) == 0) assign_address(sc, mac, flags & IEEE80211_CLONE_BSSID); hvap = mwl_hal_newvap(mh, MWL_HAL_AP, mac); if (hvap == NULL) { if ((flags & IEEE80211_CLONE_MACADDR) == 0) reclaim_address(sc, mac); return NULL; } break; case IEEE80211_M_STA: if ((flags & IEEE80211_CLONE_MACADDR) == 0) assign_address(sc, mac, flags & IEEE80211_CLONE_BSSID); hvap = mwl_hal_newvap(mh, MWL_HAL_STA, mac); if (hvap == NULL) { if ((flags & IEEE80211_CLONE_MACADDR) == 0) reclaim_address(sc, mac); return NULL; } /* no h/w beacon miss support; always use s/w */ flags |= IEEE80211_CLONE_NOBEACONS; break; case IEEE80211_M_WDS: hvap = NULL; /* NB: we use associated AP vap */ if (sc->sc_napvaps == 0) return NULL; /* no existing AP vap */ break; case IEEE80211_M_MONITOR: hvap = NULL; break; case IEEE80211_M_IBSS: case IEEE80211_M_AHDEMO: default: return NULL; } mvp = malloc(sizeof(struct mwl_vap), M_80211_VAP, M_WAITOK | M_ZERO); mvp->mv_hvap = hvap; if (opmode == IEEE80211_M_WDS) { /* * WDS vaps must have an associated AP vap; find one. * XXX not right. */ TAILQ_FOREACH(apvap, &ic->ic_vaps, iv_next) if (apvap->iv_opmode == IEEE80211_M_HOSTAP) { mvp->mv_ap_hvap = MWL_VAP(apvap)->mv_hvap; break; } KASSERT(mvp->mv_ap_hvap != NULL, ("no ap vap")); } vap = &mvp->mv_vap; ieee80211_vap_setup(ic, vap, name, unit, opmode, flags, bssid); /* override with driver methods */ mvp->mv_newstate = vap->iv_newstate; vap->iv_newstate = mwl_newstate; vap->iv_max_keyix = 0; /* XXX */ vap->iv_key_alloc = mwl_key_alloc; vap->iv_key_delete = mwl_key_delete; vap->iv_key_set = mwl_key_set; #ifdef MWL_HOST_PS_SUPPORT if (opmode == IEEE80211_M_HOSTAP || opmode == IEEE80211_M_MBSS) { vap->iv_update_ps = mwl_update_ps; mvp->mv_set_tim = vap->iv_set_tim; vap->iv_set_tim = mwl_set_tim; } #endif vap->iv_reset = mwl_reset; vap->iv_update_beacon = mwl_beacon_update; /* override max aid so sta's cannot assoc when we're out of sta id's */ vap->iv_max_aid = MWL_MAXSTAID; /* override default A-MPDU rx parameters */ vap->iv_ampdu_rxmax = IEEE80211_HTCAP_MAXRXAMPDU_64K; vap->iv_ampdu_density = IEEE80211_HTCAP_MPDUDENSITY_4; /* complete setup */ ieee80211_vap_attach(vap, mwl_media_change, ieee80211_media_status, mac); switch (vap->iv_opmode) { case IEEE80211_M_HOSTAP: case IEEE80211_M_MBSS: case IEEE80211_M_STA: /* * Setup sta db entry for local address. */ mwl_localstadb(vap); if (vap->iv_opmode == IEEE80211_M_HOSTAP || vap->iv_opmode == IEEE80211_M_MBSS) sc->sc_napvaps++; else sc->sc_nstavaps++; break; case IEEE80211_M_WDS: sc->sc_nwdsvaps++; break; default: break; } /* * Setup overall operating mode. */ if (sc->sc_napvaps) ic->ic_opmode = IEEE80211_M_HOSTAP; else if (sc->sc_nstavaps) ic->ic_opmode = IEEE80211_M_STA; else ic->ic_opmode = opmode; return vap; } static void mwl_vap_delete(struct ieee80211vap *vap) { struct mwl_vap *mvp = MWL_VAP(vap); struct mwl_softc *sc = vap->iv_ic->ic_softc; struct mwl_hal *mh = sc->sc_mh; struct mwl_hal_vap *hvap = mvp->mv_hvap; enum ieee80211_opmode opmode = vap->iv_opmode; /* XXX disallow ap vap delete if WDS still present */ if (sc->sc_running) { /* quiesce h/w while we remove the vap */ mwl_hal_intrset(mh, 0); /* disable interrupts */ } ieee80211_vap_detach(vap); switch (opmode) { case IEEE80211_M_HOSTAP: case IEEE80211_M_MBSS: case IEEE80211_M_STA: KASSERT(hvap != NULL, ("no hal vap handle")); (void) mwl_hal_delstation(hvap, vap->iv_myaddr); mwl_hal_delvap(hvap); if (opmode == IEEE80211_M_HOSTAP || opmode == IEEE80211_M_MBSS) sc->sc_napvaps--; else sc->sc_nstavaps--; /* XXX don't do it for IEEE80211_CLONE_MACADDR */ reclaim_address(sc, vap->iv_myaddr); break; case IEEE80211_M_WDS: sc->sc_nwdsvaps--; break; default: break; } mwl_cleartxq(sc, vap); free(mvp, M_80211_VAP); if (sc->sc_running) mwl_hal_intrset(mh, sc->sc_imask); } void mwl_suspend(struct mwl_softc *sc) { MWL_LOCK(sc); mwl_stop(sc); MWL_UNLOCK(sc); } void mwl_resume(struct mwl_softc *sc) { int error = EDOOFUS; MWL_LOCK(sc); if (sc->sc_ic.ic_nrunning > 0) error = mwl_init(sc); MWL_UNLOCK(sc); if (error == 0) ieee80211_start_all(&sc->sc_ic); /* start all vap's */ } void mwl_shutdown(void *arg) { struct mwl_softc *sc = arg; MWL_LOCK(sc); mwl_stop(sc); MWL_UNLOCK(sc); } /* * Interrupt handler. Most of the actual processing is deferred. */ void mwl_intr(void *arg) { struct mwl_softc *sc = arg; struct mwl_hal *mh = sc->sc_mh; uint32_t status; if (sc->sc_invalid) { /* * The hardware is not ready/present, don't touch anything. * Note this can happen early on if the IRQ is shared. */ DPRINTF(sc, MWL_DEBUG_ANY, "%s: invalid; ignored\n", __func__); return; } /* * Figure out the reason(s) for the interrupt. */ mwl_hal_getisr(mh, &status); /* NB: clears ISR too */ if (status == 0) /* must be a shared irq */ return; DPRINTF(sc, MWL_DEBUG_INTR, "%s: status 0x%x imask 0x%x\n", __func__, status, sc->sc_imask); if (status & MACREG_A2HRIC_BIT_RX_RDY) taskqueue_enqueue(sc->sc_tq, &sc->sc_rxtask); if (status & MACREG_A2HRIC_BIT_TX_DONE) taskqueue_enqueue(sc->sc_tq, &sc->sc_txtask); if (status & MACREG_A2HRIC_BIT_BA_WATCHDOG) taskqueue_enqueue(sc->sc_tq, &sc->sc_bawatchdogtask); if (status & MACREG_A2HRIC_BIT_OPC_DONE) mwl_hal_cmddone(mh); if (status & MACREG_A2HRIC_BIT_MAC_EVENT) { ; } if (status & MACREG_A2HRIC_BIT_ICV_ERROR) { /* TKIP ICV error */ sc->sc_stats.mst_rx_badtkipicv++; } if (status & MACREG_A2HRIC_BIT_QUEUE_EMPTY) { /* 11n aggregation queue is empty, re-fill */ ; } if (status & MACREG_A2HRIC_BIT_QUEUE_FULL) { ; } if (status & MACREG_A2HRIC_BIT_RADAR_DETECT) { /* radar detected, process event */ taskqueue_enqueue(sc->sc_tq, &sc->sc_radartask); } if (status & MACREG_A2HRIC_BIT_CHAN_SWITCH) { /* DFS channel switch */ taskqueue_enqueue(sc->sc_tq, &sc->sc_chanswitchtask); } } static void mwl_radar_proc(void *arg, int pending) { struct mwl_softc *sc = arg; struct ieee80211com *ic = &sc->sc_ic; DPRINTF(sc, MWL_DEBUG_ANY, "%s: radar detected, pending %u\n", __func__, pending); sc->sc_stats.mst_radardetect++; /* XXX stop h/w BA streams? */ IEEE80211_LOCK(ic); ieee80211_dfs_notify_radar(ic, ic->ic_curchan); IEEE80211_UNLOCK(ic); } static void mwl_chanswitch_proc(void *arg, int pending) { struct mwl_softc *sc = arg; struct ieee80211com *ic = &sc->sc_ic; DPRINTF(sc, MWL_DEBUG_ANY, "%s: channel switch notice, pending %u\n", __func__, pending); IEEE80211_LOCK(ic); sc->sc_csapending = 0; ieee80211_csa_completeswitch(ic); IEEE80211_UNLOCK(ic); } static void mwl_bawatchdog(const MWL_HAL_BASTREAM *sp) { struct ieee80211_node *ni = sp->data[0]; /* send DELBA and drop the stream */ ieee80211_ampdu_stop(ni, sp->data[1], IEEE80211_REASON_UNSPECIFIED); } static void mwl_bawatchdog_proc(void *arg, int pending) { struct mwl_softc *sc = arg; struct mwl_hal *mh = sc->sc_mh; const MWL_HAL_BASTREAM *sp; uint8_t bitmap, n; sc->sc_stats.mst_bawatchdog++; if (mwl_hal_getwatchdogbitmap(mh, &bitmap) != 0) { DPRINTF(sc, MWL_DEBUG_AMPDU, "%s: could not get bitmap\n", __func__); sc->sc_stats.mst_bawatchdog_failed++; return; } DPRINTF(sc, MWL_DEBUG_AMPDU, "%s: bitmap 0x%x\n", __func__, bitmap); if (bitmap == 0xff) { n = 0; /* disable all ba streams */ for (bitmap = 0; bitmap < 8; bitmap++) { sp = mwl_hal_bastream_lookup(mh, bitmap); if (sp != NULL) { mwl_bawatchdog(sp); n++; } } if (n == 0) { DPRINTF(sc, MWL_DEBUG_AMPDU, "%s: no BA streams found\n", __func__); sc->sc_stats.mst_bawatchdog_empty++; } } else if (bitmap != 0xaa) { /* disable a single ba stream */ sp = mwl_hal_bastream_lookup(mh, bitmap); if (sp != NULL) { mwl_bawatchdog(sp); } else { DPRINTF(sc, MWL_DEBUG_AMPDU, "%s: no BA stream %d\n", __func__, bitmap); sc->sc_stats.mst_bawatchdog_notfound++; } } } /* * Convert net80211 channel to a HAL channel. */ static void mwl_mapchan(MWL_HAL_CHANNEL *hc, const struct ieee80211_channel *chan) { hc->channel = chan->ic_ieee; *(uint32_t *)&hc->channelFlags = 0; if (IEEE80211_IS_CHAN_2GHZ(chan)) hc->channelFlags.FreqBand = MWL_FREQ_BAND_2DOT4GHZ; else if (IEEE80211_IS_CHAN_5GHZ(chan)) hc->channelFlags.FreqBand = MWL_FREQ_BAND_5GHZ; if (IEEE80211_IS_CHAN_HT40(chan)) { hc->channelFlags.ChnlWidth = MWL_CH_40_MHz_WIDTH; if (IEEE80211_IS_CHAN_HT40U(chan)) hc->channelFlags.ExtChnlOffset = MWL_EXT_CH_ABOVE_CTRL_CH; else hc->channelFlags.ExtChnlOffset = MWL_EXT_CH_BELOW_CTRL_CH; } else hc->channelFlags.ChnlWidth = MWL_CH_20_MHz_WIDTH; /* XXX 10MHz channels */ } /* * Inform firmware of our tx/rx dma setup. The BAR 0 * writes below are for compatibility with older firmware. * For current firmware we send this information with a * cmd block via mwl_hal_sethwdma. */ static int mwl_setupdma(struct mwl_softc *sc) { int error, i; sc->sc_hwdma.rxDescRead = sc->sc_rxdma.dd_desc_paddr; WR4(sc, sc->sc_hwspecs.rxDescRead, sc->sc_hwdma.rxDescRead); WR4(sc, sc->sc_hwspecs.rxDescWrite, sc->sc_hwdma.rxDescRead); for (i = 0; i < MWL_NUM_TX_QUEUES-MWL_NUM_ACK_QUEUES; i++) { struct mwl_txq *txq = &sc->sc_txq[i]; sc->sc_hwdma.wcbBase[i] = txq->dma.dd_desc_paddr; WR4(sc, sc->sc_hwspecs.wcbBase[i], sc->sc_hwdma.wcbBase[i]); } sc->sc_hwdma.maxNumTxWcb = mwl_txbuf; sc->sc_hwdma.maxNumWCB = MWL_NUM_TX_QUEUES-MWL_NUM_ACK_QUEUES; error = mwl_hal_sethwdma(sc->sc_mh, &sc->sc_hwdma); if (error != 0) { device_printf(sc->sc_dev, "unable to setup tx/rx dma; hal status %u\n", error); /* XXX */ } return error; } /* * Inform firmware of tx rate parameters. * Called after a channel change. */ static int mwl_setcurchanrates(struct mwl_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; const struct ieee80211_rateset *rs; MWL_HAL_TXRATE rates; memset(&rates, 0, sizeof(rates)); rs = ieee80211_get_suprates(ic, ic->ic_curchan); /* rate used to send management frames */ rates.MgtRate = rs->rs_rates[0] & IEEE80211_RATE_VAL; /* rate used to send multicast frames */ rates.McastRate = rates.MgtRate; return mwl_hal_settxrate_auto(sc->sc_mh, &rates); } /* * Inform firmware of tx rate parameters. Called whenever * user-settable params change and after a channel change. */ static int mwl_setrates(struct ieee80211vap *vap) { struct mwl_vap *mvp = MWL_VAP(vap); struct ieee80211_node *ni = vap->iv_bss; const struct ieee80211_txparam *tp = ni->ni_txparms; MWL_HAL_TXRATE rates; KASSERT(vap->iv_state == IEEE80211_S_RUN, ("state %d", vap->iv_state)); /* * Update the h/w rate map. * NB: 0x80 for MCS is passed through unchanged */ memset(&rates, 0, sizeof(rates)); /* rate used to send management frames */ rates.MgtRate = tp->mgmtrate; /* rate used to send multicast frames */ rates.McastRate = tp->mcastrate; /* while here calculate EAPOL fixed rate cookie */ mvp->mv_eapolformat = htole16(mwl_calcformat(rates.MgtRate, ni)); return mwl_hal_settxrate(mvp->mv_hvap, tp->ucastrate != IEEE80211_FIXED_RATE_NONE ? RATE_FIXED : RATE_AUTO, &rates); } /* * Setup a fixed xmit rate cookie for EAPOL frames. */ static void mwl_seteapolformat(struct ieee80211vap *vap) { struct mwl_vap *mvp = MWL_VAP(vap); struct ieee80211_node *ni = vap->iv_bss; enum ieee80211_phymode mode; uint8_t rate; KASSERT(vap->iv_state == IEEE80211_S_RUN, ("state %d", vap->iv_state)); mode = ieee80211_chan2mode(ni->ni_chan); /* * Use legacy rates when operating a mixed HT+non-HT bss. * NB: this may violate POLA for sta and wds vap's. */ if (mode == IEEE80211_MODE_11NA && (vap->iv_flags_ht & IEEE80211_FHT_PUREN) == 0) rate = vap->iv_txparms[IEEE80211_MODE_11A].mgmtrate; else if (mode == IEEE80211_MODE_11NG && (vap->iv_flags_ht & IEEE80211_FHT_PUREN) == 0) rate = vap->iv_txparms[IEEE80211_MODE_11G].mgmtrate; else rate = vap->iv_txparms[mode].mgmtrate; mvp->mv_eapolformat = htole16(mwl_calcformat(rate, ni)); } /* * Map SKU+country code to region code for radar bin'ing. */ static int mwl_map2regioncode(const struct ieee80211_regdomain *rd) { switch (rd->regdomain) { case SKU_FCC: case SKU_FCC3: return DOMAIN_CODE_FCC; case SKU_CA: return DOMAIN_CODE_IC; case SKU_ETSI: case SKU_ETSI2: case SKU_ETSI3: if (rd->country == CTRY_SPAIN) return DOMAIN_CODE_SPAIN; if (rd->country == CTRY_FRANCE || rd->country == CTRY_FRANCE2) return DOMAIN_CODE_FRANCE; /* XXX force 1.3.1 radar type */ return DOMAIN_CODE_ETSI_131; case SKU_JAPAN: return DOMAIN_CODE_MKK; case SKU_ROW: return DOMAIN_CODE_DGT; /* Taiwan */ case SKU_APAC: case SKU_APAC2: case SKU_APAC3: return DOMAIN_CODE_AUS; /* Australia */ } /* XXX KOREA? */ return DOMAIN_CODE_FCC; /* XXX? */ } static int mwl_hal_reset(struct mwl_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct mwl_hal *mh = sc->sc_mh; mwl_hal_setantenna(mh, WL_ANTENNATYPE_RX, sc->sc_rxantenna); mwl_hal_setantenna(mh, WL_ANTENNATYPE_TX, sc->sc_txantenna); mwl_hal_setradio(mh, 1, WL_AUTO_PREAMBLE); mwl_hal_setwmm(sc->sc_mh, (ic->ic_flags & IEEE80211_F_WME) != 0); mwl_chan_set(sc, ic->ic_curchan); /* NB: RF/RA performance tuned for indoor mode */ mwl_hal_setrateadaptmode(mh, 0); mwl_hal_setoptimizationlevel(mh, (ic->ic_flags & IEEE80211_F_BURST) != 0); mwl_hal_setregioncode(mh, mwl_map2regioncode(&ic->ic_regdomain)); mwl_hal_setaggampduratemode(mh, 1, 80); /* XXX */ mwl_hal_setcfend(mh, 0); /* XXX */ return 1; } static int mwl_init(struct mwl_softc *sc) { struct mwl_hal *mh = sc->sc_mh; int error = 0; MWL_LOCK_ASSERT(sc); /* * Stop anything previously setup. This is safe * whether this is the first time through or not. */ mwl_stop(sc); /* * Push vap-independent state to the firmware. */ if (!mwl_hal_reset(sc)) { device_printf(sc->sc_dev, "unable to reset hardware\n"); return EIO; } /* * Setup recv (once); transmit is already good to go. */ error = mwl_startrecv(sc); if (error != 0) { device_printf(sc->sc_dev, "unable to start recv logic\n"); return error; } /* * Enable interrupts. */ sc->sc_imask = MACREG_A2HRIC_BIT_RX_RDY | MACREG_A2HRIC_BIT_TX_DONE | MACREG_A2HRIC_BIT_OPC_DONE #if 0 | MACREG_A2HRIC_BIT_MAC_EVENT #endif | MACREG_A2HRIC_BIT_ICV_ERROR | MACREG_A2HRIC_BIT_RADAR_DETECT | MACREG_A2HRIC_BIT_CHAN_SWITCH #if 0 | MACREG_A2HRIC_BIT_QUEUE_EMPTY #endif | MACREG_A2HRIC_BIT_BA_WATCHDOG | MACREQ_A2HRIC_BIT_TX_ACK ; sc->sc_running = 1; mwl_hal_intrset(mh, sc->sc_imask); callout_reset(&sc->sc_watchdog, hz, mwl_watchdog, sc); return 0; } static void mwl_stop(struct mwl_softc *sc) { MWL_LOCK_ASSERT(sc); if (sc->sc_running) { /* * Shutdown the hardware and driver. */ sc->sc_running = 0; callout_stop(&sc->sc_watchdog); sc->sc_tx_timer = 0; mwl_draintxq(sc); } } static int mwl_reset_vap(struct ieee80211vap *vap, int state) { struct mwl_hal_vap *hvap = MWL_VAP(vap)->mv_hvap; struct ieee80211com *ic = vap->iv_ic; if (state == IEEE80211_S_RUN) mwl_setrates(vap); /* XXX off by 1? */ mwl_hal_setrtsthreshold(hvap, vap->iv_rtsthreshold); /* XXX auto? 20/40 split? */ mwl_hal_sethtgi(hvap, (vap->iv_flags_ht & (IEEE80211_FHT_SHORTGI20|IEEE80211_FHT_SHORTGI40)) ? 1 : 0); mwl_hal_setnprot(hvap, ic->ic_htprotmode == IEEE80211_PROT_NONE ? HTPROTECT_NONE : HTPROTECT_AUTO); /* XXX txpower cap */ /* re-setup beacons */ if (state == IEEE80211_S_RUN && (vap->iv_opmode == IEEE80211_M_HOSTAP || vap->iv_opmode == IEEE80211_M_MBSS || vap->iv_opmode == IEEE80211_M_IBSS)) { mwl_setapmode(vap, vap->iv_bss->ni_chan); mwl_hal_setnprotmode(hvap, MS(ic->ic_curhtprotmode, IEEE80211_HTINFO_OPMODE)); return mwl_beacon_setup(vap); } return 0; } /* * Reset the hardware w/o losing operational state. * Used to reset or reload hardware state for a vap. */ static int mwl_reset(struct ieee80211vap *vap, u_long cmd) { struct mwl_hal_vap *hvap = MWL_VAP(vap)->mv_hvap; int error = 0; if (hvap != NULL) { /* WDS, MONITOR, etc. */ struct ieee80211com *ic = vap->iv_ic; struct mwl_softc *sc = ic->ic_softc; struct mwl_hal *mh = sc->sc_mh; /* XXX handle DWDS sta vap change */ /* XXX do we need to disable interrupts? */ mwl_hal_intrset(mh, 0); /* disable interrupts */ error = mwl_reset_vap(vap, vap->iv_state); mwl_hal_intrset(mh, sc->sc_imask); } return error; } /* * Allocate a tx buffer for sending a frame. The * packet is assumed to have the WME AC stored so * we can use it to select the appropriate h/w queue. */ static struct mwl_txbuf * mwl_gettxbuf(struct mwl_softc *sc, struct mwl_txq *txq) { struct mwl_txbuf *bf; /* * Grab a TX buffer and associated resources. */ MWL_TXQ_LOCK(txq); bf = STAILQ_FIRST(&txq->free); if (bf != NULL) { STAILQ_REMOVE_HEAD(&txq->free, bf_list); txq->nfree--; } MWL_TXQ_UNLOCK(txq); if (bf == NULL) DPRINTF(sc, MWL_DEBUG_XMIT, "%s: out of xmit buffers on q %d\n", __func__, txq->qnum); return bf; } /* * Return a tx buffer to the queue it came from. Note there * are two cases because we must preserve the order of buffers * as it reflects the fixed order of descriptors in memory * (the firmware pre-fetches descriptors so we cannot reorder). */ static void mwl_puttxbuf_head(struct mwl_txq *txq, struct mwl_txbuf *bf) { bf->bf_m = NULL; bf->bf_node = NULL; MWL_TXQ_LOCK(txq); STAILQ_INSERT_HEAD(&txq->free, bf, bf_list); txq->nfree++; MWL_TXQ_UNLOCK(txq); } static void mwl_puttxbuf_tail(struct mwl_txq *txq, struct mwl_txbuf *bf) { bf->bf_m = NULL; bf->bf_node = NULL; MWL_TXQ_LOCK(txq); STAILQ_INSERT_TAIL(&txq->free, bf, bf_list); txq->nfree++; MWL_TXQ_UNLOCK(txq); } static int mwl_transmit(struct ieee80211com *ic, struct mbuf *m) { struct mwl_softc *sc = ic->ic_softc; int error; MWL_LOCK(sc); if (!sc->sc_running) { MWL_UNLOCK(sc); return (ENXIO); } error = mbufq_enqueue(&sc->sc_snd, m); if (error) { MWL_UNLOCK(sc); return (error); } mwl_start(sc); MWL_UNLOCK(sc); return (0); } static void mwl_start(struct mwl_softc *sc) { struct ieee80211_node *ni; struct mwl_txbuf *bf; struct mbuf *m; struct mwl_txq *txq = NULL; /* XXX silence gcc */ int nqueued; MWL_LOCK_ASSERT(sc); if (!sc->sc_running || sc->sc_invalid) return; nqueued = 0; while ((m = mbufq_dequeue(&sc->sc_snd)) != NULL) { /* * Grab the node for the destination. */ ni = (struct ieee80211_node *) m->m_pkthdr.rcvif; KASSERT(ni != NULL, ("no node")); m->m_pkthdr.rcvif = NULL; /* committed, clear ref */ /* * Grab a TX buffer and associated resources. * We honor the classification by the 802.11 layer. */ txq = sc->sc_ac2q[M_WME_GETAC(m)]; bf = mwl_gettxbuf(sc, txq); if (bf == NULL) { m_freem(m); ieee80211_free_node(ni); #ifdef MWL_TX_NODROP sc->sc_stats.mst_tx_qstop++; break; #else DPRINTF(sc, MWL_DEBUG_XMIT, "%s: tail drop on q %d\n", __func__, txq->qnum); sc->sc_stats.mst_tx_qdrop++; continue; #endif /* MWL_TX_NODROP */ } /* * Pass the frame to the h/w for transmission. */ if (mwl_tx_start(sc, ni, bf, m)) { if_inc_counter(ni->ni_vap->iv_ifp, IFCOUNTER_OERRORS, 1); mwl_puttxbuf_head(txq, bf); ieee80211_free_node(ni); continue; } nqueued++; if (nqueued >= mwl_txcoalesce) { /* * Poke the firmware to process queued frames; * see below about (lack of) locking. */ nqueued = 0; mwl_hal_txstart(sc->sc_mh, 0/*XXX*/); } } if (nqueued) { /* * NB: We don't need to lock against tx done because * this just prods the firmware to check the transmit * descriptors. The firmware will also start fetching * descriptors by itself if it notices new ones are * present when it goes to deliver a tx done interrupt * to the host. So if we race with tx done processing * it's ok. Delivering the kick here rather than in * mwl_tx_start is an optimization to avoid poking the * firmware for each packet. * * NB: the queue id isn't used so 0 is ok. */ mwl_hal_txstart(sc->sc_mh, 0/*XXX*/); } } static int mwl_raw_xmit(struct ieee80211_node *ni, struct mbuf *m, const struct ieee80211_bpf_params *params) { struct ieee80211com *ic = ni->ni_ic; struct mwl_softc *sc = ic->ic_softc; struct mwl_txbuf *bf; struct mwl_txq *txq; if (!sc->sc_running || sc->sc_invalid) { m_freem(m); return ENETDOWN; } /* * Grab a TX buffer and associated resources. * Note that we depend on the classification * by the 802.11 layer to get to the right h/w * queue. Management frames must ALWAYS go on * queue 1 but we cannot just force that here * because we may receive non-mgt frames. */ txq = sc->sc_ac2q[M_WME_GETAC(m)]; bf = mwl_gettxbuf(sc, txq); if (bf == NULL) { sc->sc_stats.mst_tx_qstop++; m_freem(m); return ENOBUFS; } /* * Pass the frame to the h/w for transmission. */ if (mwl_tx_start(sc, ni, bf, m)) { mwl_puttxbuf_head(txq, bf); return EIO; /* XXX */ } /* * NB: We don't need to lock against tx done because * this just prods the firmware to check the transmit * descriptors. The firmware will also start fetching * descriptors by itself if it notices new ones are * present when it goes to deliver a tx done interrupt * to the host. So if we race with tx done processing * it's ok. Delivering the kick here rather than in * mwl_tx_start is an optimization to avoid poking the * firmware for each packet. * * NB: the queue id isn't used so 0 is ok. */ mwl_hal_txstart(sc->sc_mh, 0/*XXX*/); return 0; } static int mwl_media_change(struct ifnet *ifp) { - struct ieee80211vap *vap = ifp->if_softc; + struct ieee80211vap *vap; int error; - error = ieee80211_media_change(ifp); /* NB: only the fixed rate can change and that doesn't need a reset */ - if (error == ENETRESET) { - mwl_setrates(vap); - error = 0; - } - return error; + error = ieee80211_media_change(ifp); + if (error != 0) + return (error); + + vap = ifp->if_softc; + mwl_setrates(vap); + return (0); } #ifdef MWL_DEBUG static void mwl_keyprint(struct mwl_softc *sc, const char *tag, const MWL_HAL_KEYVAL *hk, const uint8_t mac[IEEE80211_ADDR_LEN]) { static const char *ciphers[] = { "WEP", "TKIP", "AES-CCM", }; int i, n; printf("%s: [%u] %-7s", tag, hk->keyIndex, ciphers[hk->keyTypeId]); for (i = 0, n = hk->keyLen; i < n; i++) printf(" %02x", hk->key.aes[i]); printf(" mac %s", ether_sprintf(mac)); if (hk->keyTypeId == KEY_TYPE_ID_TKIP) { printf(" %s", "rxmic"); for (i = 0; i < sizeof(hk->key.tkip.rxMic); i++) printf(" %02x", hk->key.tkip.rxMic[i]); printf(" txmic"); for (i = 0; i < sizeof(hk->key.tkip.txMic); i++) printf(" %02x", hk->key.tkip.txMic[i]); } printf(" flags 0x%x\n", hk->keyFlags); } #endif /* * Allocate a key cache slot for a unicast key. The * firmware handles key allocation and every station is * guaranteed key space so we are always successful. */ static int mwl_key_alloc(struct ieee80211vap *vap, struct ieee80211_key *k, ieee80211_keyix *keyix, ieee80211_keyix *rxkeyix) { struct mwl_softc *sc = vap->iv_ic->ic_softc; if (k->wk_keyix != IEEE80211_KEYIX_NONE || (k->wk_flags & IEEE80211_KEY_GROUP)) { if (!(&vap->iv_nw_keys[0] <= k && k < &vap->iv_nw_keys[IEEE80211_WEP_NKID])) { /* should not happen */ DPRINTF(sc, MWL_DEBUG_KEYCACHE, "%s: bogus group key\n", __func__); return 0; } /* give the caller what they requested */ *keyix = *rxkeyix = ieee80211_crypto_get_key_wepidx(vap, k); } else { /* * Firmware handles key allocation. */ *keyix = *rxkeyix = 0; } return 1; } /* * Delete a key entry allocated by mwl_key_alloc. */ static int mwl_key_delete(struct ieee80211vap *vap, const struct ieee80211_key *k) { struct mwl_softc *sc = vap->iv_ic->ic_softc; struct mwl_hal_vap *hvap = MWL_VAP(vap)->mv_hvap; MWL_HAL_KEYVAL hk; const uint8_t bcastaddr[IEEE80211_ADDR_LEN] = { 0xff, 0xff, 0xff, 0xff, 0xff, 0xff }; if (hvap == NULL) { if (vap->iv_opmode != IEEE80211_M_WDS) { /* XXX monitor mode? */ DPRINTF(sc, MWL_DEBUG_KEYCACHE, "%s: no hvap for opmode %d\n", __func__, vap->iv_opmode); return 0; } hvap = MWL_VAP(vap)->mv_ap_hvap; } DPRINTF(sc, MWL_DEBUG_KEYCACHE, "%s: delete key %u\n", __func__, k->wk_keyix); memset(&hk, 0, sizeof(hk)); hk.keyIndex = k->wk_keyix; switch (k->wk_cipher->ic_cipher) { case IEEE80211_CIPHER_WEP: hk.keyTypeId = KEY_TYPE_ID_WEP; break; case IEEE80211_CIPHER_TKIP: hk.keyTypeId = KEY_TYPE_ID_TKIP; break; case IEEE80211_CIPHER_AES_CCM: hk.keyTypeId = KEY_TYPE_ID_AES; break; default: /* XXX should not happen */ DPRINTF(sc, MWL_DEBUG_KEYCACHE, "%s: unknown cipher %d\n", __func__, k->wk_cipher->ic_cipher); return 0; } return (mwl_hal_keyreset(hvap, &hk, bcastaddr) == 0); /*XXX*/ } static __inline int addgroupflags(MWL_HAL_KEYVAL *hk, const struct ieee80211_key *k) { if (k->wk_flags & IEEE80211_KEY_GROUP) { if (k->wk_flags & IEEE80211_KEY_XMIT) hk->keyFlags |= KEY_FLAG_TXGROUPKEY; if (k->wk_flags & IEEE80211_KEY_RECV) hk->keyFlags |= KEY_FLAG_RXGROUPKEY; return 1; } else return 0; } /* * Set the key cache contents for the specified key. Key cache * slot(s) must already have been allocated by mwl_key_alloc. */ static int mwl_key_set(struct ieee80211vap *vap, const struct ieee80211_key *k) { return (_mwl_key_set(vap, k, k->wk_macaddr)); } static int _mwl_key_set(struct ieee80211vap *vap, const struct ieee80211_key *k, const uint8_t mac[IEEE80211_ADDR_LEN]) { #define GRPXMIT (IEEE80211_KEY_XMIT | IEEE80211_KEY_GROUP) /* NB: static wep keys are marked GROUP+tx/rx; GTK will be tx or rx */ #define IEEE80211_IS_STATICKEY(k) \ (((k)->wk_flags & (GRPXMIT|IEEE80211_KEY_RECV)) == \ (GRPXMIT|IEEE80211_KEY_RECV)) struct mwl_softc *sc = vap->iv_ic->ic_softc; struct mwl_hal_vap *hvap = MWL_VAP(vap)->mv_hvap; const struct ieee80211_cipher *cip = k->wk_cipher; const uint8_t *macaddr; MWL_HAL_KEYVAL hk; KASSERT((k->wk_flags & IEEE80211_KEY_SWCRYPT) == 0, ("s/w crypto set?")); if (hvap == NULL) { if (vap->iv_opmode != IEEE80211_M_WDS) { /* XXX monitor mode? */ DPRINTF(sc, MWL_DEBUG_KEYCACHE, "%s: no hvap for opmode %d\n", __func__, vap->iv_opmode); return 0; } hvap = MWL_VAP(vap)->mv_ap_hvap; } memset(&hk, 0, sizeof(hk)); hk.keyIndex = k->wk_keyix; switch (cip->ic_cipher) { case IEEE80211_CIPHER_WEP: hk.keyTypeId = KEY_TYPE_ID_WEP; hk.keyLen = k->wk_keylen; if (k->wk_keyix == vap->iv_def_txkey) hk.keyFlags = KEY_FLAG_WEP_TXKEY; if (!IEEE80211_IS_STATICKEY(k)) { /* NB: WEP is never used for the PTK */ (void) addgroupflags(&hk, k); } break; case IEEE80211_CIPHER_TKIP: hk.keyTypeId = KEY_TYPE_ID_TKIP; hk.key.tkip.tsc.high = (uint32_t)(k->wk_keytsc >> 16); hk.key.tkip.tsc.low = (uint16_t)k->wk_keytsc; hk.keyFlags = KEY_FLAG_TSC_VALID | KEY_FLAG_MICKEY_VALID; hk.keyLen = k->wk_keylen + IEEE80211_MICBUF_SIZE; if (!addgroupflags(&hk, k)) hk.keyFlags |= KEY_FLAG_PAIRWISE; break; case IEEE80211_CIPHER_AES_CCM: hk.keyTypeId = KEY_TYPE_ID_AES; hk.keyLen = k->wk_keylen; if (!addgroupflags(&hk, k)) hk.keyFlags |= KEY_FLAG_PAIRWISE; break; default: /* XXX should not happen */ DPRINTF(sc, MWL_DEBUG_KEYCACHE, "%s: unknown cipher %d\n", __func__, k->wk_cipher->ic_cipher); return 0; } /* * NB: tkip mic keys get copied here too; the layout * just happens to match that in ieee80211_key. */ memcpy(hk.key.aes, k->wk_key, hk.keyLen); /* * Locate address of sta db entry for writing key; * the convention unfortunately is somewhat different * than how net80211, hostapd, and wpa_supplicant think. */ if (vap->iv_opmode == IEEE80211_M_STA) { /* * NB: keys plumbed before the sta reaches AUTH state * will be discarded or written to the wrong sta db * entry because iv_bss is meaningless. This is ok * (right now) because we handle deferred plumbing of * WEP keys when the sta reaches AUTH state. */ macaddr = vap->iv_bss->ni_bssid; if ((k->wk_flags & IEEE80211_KEY_GROUP) == 0) { /* XXX plumb to local sta db too for static key wep */ mwl_hal_keyset(hvap, &hk, vap->iv_myaddr); } } else if (vap->iv_opmode == IEEE80211_M_WDS && vap->iv_state != IEEE80211_S_RUN) { /* * Prior to RUN state a WDS vap will not it's BSS node * setup so we will plumb the key to the wrong mac * address (it'll be our local address). Workaround * this for the moment by grabbing the correct address. */ macaddr = vap->iv_des_bssid; } else if ((k->wk_flags & GRPXMIT) == GRPXMIT) macaddr = vap->iv_myaddr; else macaddr = mac; KEYPRINTF(sc, &hk, macaddr); return (mwl_hal_keyset(hvap, &hk, macaddr) == 0); #undef IEEE80211_IS_STATICKEY #undef GRPXMIT } /* * Set the multicast filter contents into the hardware. * XXX f/w has no support; just defer to the os. */ static void mwl_setmcastfilter(struct mwl_softc *sc) { #if 0 struct ether_multi *enm; struct ether_multistep estep; uint8_t macs[IEEE80211_ADDR_LEN*MWL_HAL_MCAST_MAX];/* XXX stack use */ uint8_t *mp; int nmc; mp = macs; nmc = 0; ETHER_FIRST_MULTI(estep, &sc->sc_ec, enm); while (enm != NULL) { /* XXX Punt on ranges. */ if (nmc == MWL_HAL_MCAST_MAX || !IEEE80211_ADDR_EQ(enm->enm_addrlo, enm->enm_addrhi)) { ifp->if_flags |= IFF_ALLMULTI; return; } IEEE80211_ADDR_COPY(mp, enm->enm_addrlo); mp += IEEE80211_ADDR_LEN, nmc++; ETHER_NEXT_MULTI(estep, enm); } ifp->if_flags &= ~IFF_ALLMULTI; mwl_hal_setmcast(sc->sc_mh, nmc, macs); #endif } static int mwl_mode_init(struct mwl_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct mwl_hal *mh = sc->sc_mh; mwl_hal_setpromisc(mh, ic->ic_promisc > 0); mwl_setmcastfilter(sc); return 0; } /* * Callback from the 802.11 layer after a multicast state change. */ static void mwl_update_mcast(struct ieee80211com *ic) { struct mwl_softc *sc = ic->ic_softc; mwl_setmcastfilter(sc); } /* * Callback from the 802.11 layer after a promiscuous mode change. * Note this interface does not check the operating mode as this * is an internal callback and we are expected to honor the current * state (e.g. this is used for setting the interface in promiscuous * mode when operating in hostap mode to do ACS). */ static void mwl_update_promisc(struct ieee80211com *ic) { struct mwl_softc *sc = ic->ic_softc; mwl_hal_setpromisc(sc->sc_mh, ic->ic_promisc > 0); } /* * Callback from the 802.11 layer to update the slot time * based on the current setting. We use it to notify the * firmware of ERP changes and the f/w takes care of things * like slot time and preamble. */ static void mwl_updateslot(struct ieee80211com *ic) { struct mwl_softc *sc = ic->ic_softc; struct mwl_hal *mh = sc->sc_mh; int prot; /* NB: can be called early; suppress needless cmds */ if (!sc->sc_running) return; /* * Calculate the ERP flags. The firwmare will use * this to carry out the appropriate measures. */ prot = 0; if (IEEE80211_IS_CHAN_ANYG(ic->ic_curchan)) { if ((ic->ic_flags & IEEE80211_F_SHSLOT) == 0) prot |= IEEE80211_ERP_NON_ERP_PRESENT; if (ic->ic_flags & IEEE80211_F_USEPROT) prot |= IEEE80211_ERP_USE_PROTECTION; if (ic->ic_flags & IEEE80211_F_USEBARKER) prot |= IEEE80211_ERP_LONG_PREAMBLE; } DPRINTF(sc, MWL_DEBUG_RESET, "%s: chan %u MHz/flags 0x%x %s slot, (prot 0x%x ic_flags 0x%x)\n", __func__, ic->ic_curchan->ic_freq, ic->ic_curchan->ic_flags, ic->ic_flags & IEEE80211_F_SHSLOT ? "short" : "long", prot, ic->ic_flags); mwl_hal_setgprot(mh, prot); } /* * Setup the beacon frame. */ static int mwl_beacon_setup(struct ieee80211vap *vap) { struct mwl_hal_vap *hvap = MWL_VAP(vap)->mv_hvap; struct ieee80211_node *ni = vap->iv_bss; struct mbuf *m; m = ieee80211_beacon_alloc(ni); if (m == NULL) return ENOBUFS; mwl_hal_setbeacon(hvap, mtod(m, const void *), m->m_len); m_free(m); return 0; } /* * Update the beacon frame in response to a change. */ static void mwl_beacon_update(struct ieee80211vap *vap, int item) { struct mwl_hal_vap *hvap = MWL_VAP(vap)->mv_hvap; struct ieee80211com *ic = vap->iv_ic; KASSERT(hvap != NULL, ("no beacon")); switch (item) { case IEEE80211_BEACON_ERP: mwl_updateslot(ic); break; case IEEE80211_BEACON_HTINFO: mwl_hal_setnprotmode(hvap, MS(ic->ic_curhtprotmode, IEEE80211_HTINFO_OPMODE)); break; case IEEE80211_BEACON_CAPS: case IEEE80211_BEACON_WME: case IEEE80211_BEACON_APPIE: case IEEE80211_BEACON_CSA: break; case IEEE80211_BEACON_TIM: /* NB: firmware always forms TIM */ return; } /* XXX retain beacon frame and update */ mwl_beacon_setup(vap); } static void mwl_load_cb(void *arg, bus_dma_segment_t *segs, int nsegs, int error) { bus_addr_t *paddr = (bus_addr_t*) arg; KASSERT(error == 0, ("error %u on bus_dma callback", error)); *paddr = segs->ds_addr; } #ifdef MWL_HOST_PS_SUPPORT /* * Handle power save station occupancy changes. */ static void mwl_update_ps(struct ieee80211vap *vap, int nsta) { struct mwl_vap *mvp = MWL_VAP(vap); if (nsta == 0 || mvp->mv_last_ps_sta == 0) mwl_hal_setpowersave_bss(mvp->mv_hvap, nsta); mvp->mv_last_ps_sta = nsta; } /* * Handle associated station power save state changes. */ static int mwl_set_tim(struct ieee80211_node *ni, int set) { struct ieee80211vap *vap = ni->ni_vap; struct mwl_vap *mvp = MWL_VAP(vap); if (mvp->mv_set_tim(ni, set)) { /* NB: state change */ mwl_hal_setpowersave_sta(mvp->mv_hvap, IEEE80211_AID(ni->ni_associd), set); return 1; } else return 0; } #endif /* MWL_HOST_PS_SUPPORT */ static int mwl_desc_setup(struct mwl_softc *sc, const char *name, struct mwl_descdma *dd, int nbuf, size_t bufsize, int ndesc, size_t descsize) { uint8_t *ds; int error; DPRINTF(sc, MWL_DEBUG_RESET, "%s: %s DMA: %u bufs (%ju) %u desc/buf (%ju)\n", __func__, name, nbuf, (uintmax_t) bufsize, ndesc, (uintmax_t) descsize); dd->dd_name = name; dd->dd_desc_len = nbuf * ndesc * descsize; /* * Setup DMA descriptor area. */ error = bus_dma_tag_create(bus_get_dma_tag(sc->sc_dev), /* parent */ PAGE_SIZE, 0, /* alignment, bounds */ BUS_SPACE_MAXADDR_32BIT, /* lowaddr */ BUS_SPACE_MAXADDR, /* highaddr */ NULL, NULL, /* filter, filterarg */ dd->dd_desc_len, /* maxsize */ 1, /* nsegments */ dd->dd_desc_len, /* maxsegsize */ BUS_DMA_ALLOCNOW, /* flags */ NULL, /* lockfunc */ NULL, /* lockarg */ &dd->dd_dmat); if (error != 0) { device_printf(sc->sc_dev, "cannot allocate %s DMA tag\n", dd->dd_name); return error; } /* allocate descriptors */ error = bus_dmamem_alloc(dd->dd_dmat, (void**) &dd->dd_desc, BUS_DMA_NOWAIT | BUS_DMA_COHERENT, &dd->dd_dmamap); if (error != 0) { device_printf(sc->sc_dev, "unable to alloc memory for %u %s descriptors, " "error %u\n", nbuf * ndesc, dd->dd_name, error); goto fail1; } error = bus_dmamap_load(dd->dd_dmat, dd->dd_dmamap, dd->dd_desc, dd->dd_desc_len, mwl_load_cb, &dd->dd_desc_paddr, BUS_DMA_NOWAIT); if (error != 0) { device_printf(sc->sc_dev, "unable to map %s descriptors, error %u\n", dd->dd_name, error); goto fail2; } ds = dd->dd_desc; memset(ds, 0, dd->dd_desc_len); DPRINTF(sc, MWL_DEBUG_RESET, "%s: %s DMA map: %p (%lu) -> 0x%jx (%lu)\n", __func__, dd->dd_name, ds, (u_long) dd->dd_desc_len, (uintmax_t) dd->dd_desc_paddr, /*XXX*/ (u_long) dd->dd_desc_len); return 0; fail2: bus_dmamem_free(dd->dd_dmat, dd->dd_desc, dd->dd_dmamap); fail1: bus_dma_tag_destroy(dd->dd_dmat); memset(dd, 0, sizeof(*dd)); return error; #undef DS2PHYS } static void mwl_desc_cleanup(struct mwl_softc *sc, struct mwl_descdma *dd) { bus_dmamap_unload(dd->dd_dmat, dd->dd_dmamap); bus_dmamem_free(dd->dd_dmat, dd->dd_desc, dd->dd_dmamap); bus_dma_tag_destroy(dd->dd_dmat); memset(dd, 0, sizeof(*dd)); } /* * Construct a tx q's free list. The order of entries on * the list must reflect the physical layout of tx descriptors * because the firmware pre-fetches descriptors. * * XXX might be better to use indices into the buffer array. */ static void mwl_txq_reset(struct mwl_softc *sc, struct mwl_txq *txq) { struct mwl_txbuf *bf; int i; bf = txq->dma.dd_bufptr; STAILQ_INIT(&txq->free); for (i = 0; i < mwl_txbuf; i++, bf++) STAILQ_INSERT_TAIL(&txq->free, bf, bf_list); txq->nfree = i; } #define DS2PHYS(_dd, _ds) \ ((_dd)->dd_desc_paddr + ((caddr_t)(_ds) - (caddr_t)(_dd)->dd_desc)) static int mwl_txdma_setup(struct mwl_softc *sc, struct mwl_txq *txq) { int error, bsize, i; struct mwl_txbuf *bf; struct mwl_txdesc *ds; error = mwl_desc_setup(sc, "tx", &txq->dma, mwl_txbuf, sizeof(struct mwl_txbuf), MWL_TXDESC, sizeof(struct mwl_txdesc)); if (error != 0) return error; /* allocate and setup tx buffers */ bsize = mwl_txbuf * sizeof(struct mwl_txbuf); bf = malloc(bsize, M_MWLDEV, M_NOWAIT | M_ZERO); if (bf == NULL) { device_printf(sc->sc_dev, "malloc of %u tx buffers failed\n", mwl_txbuf); return ENOMEM; } txq->dma.dd_bufptr = bf; ds = txq->dma.dd_desc; for (i = 0; i < mwl_txbuf; i++, bf++, ds += MWL_TXDESC) { bf->bf_desc = ds; bf->bf_daddr = DS2PHYS(&txq->dma, ds); error = bus_dmamap_create(sc->sc_dmat, BUS_DMA_NOWAIT, &bf->bf_dmamap); if (error != 0) { device_printf(sc->sc_dev, "unable to create dmamap for tx " "buffer %u, error %u\n", i, error); return error; } } mwl_txq_reset(sc, txq); return 0; } static void mwl_txdma_cleanup(struct mwl_softc *sc, struct mwl_txq *txq) { struct mwl_txbuf *bf; int i; bf = txq->dma.dd_bufptr; for (i = 0; i < mwl_txbuf; i++, bf++) { KASSERT(bf->bf_m == NULL, ("mbuf on free list")); KASSERT(bf->bf_node == NULL, ("node on free list")); if (bf->bf_dmamap != NULL) bus_dmamap_destroy(sc->sc_dmat, bf->bf_dmamap); } STAILQ_INIT(&txq->free); txq->nfree = 0; if (txq->dma.dd_bufptr != NULL) { free(txq->dma.dd_bufptr, M_MWLDEV); txq->dma.dd_bufptr = NULL; } if (txq->dma.dd_desc_len != 0) mwl_desc_cleanup(sc, &txq->dma); } static int mwl_rxdma_setup(struct mwl_softc *sc) { int error, jumbosize, bsize, i; struct mwl_rxbuf *bf; struct mwl_jumbo *rbuf; struct mwl_rxdesc *ds; caddr_t data; error = mwl_desc_setup(sc, "rx", &sc->sc_rxdma, mwl_rxdesc, sizeof(struct mwl_rxbuf), 1, sizeof(struct mwl_rxdesc)); if (error != 0) return error; /* * Receive is done to a private pool of jumbo buffers. * This allows us to attach to mbuf's and avoid re-mapping * memory on each rx we post. We allocate a large chunk * of memory and manage it in the driver. The mbuf free * callback method is used to reclaim frames after sending * them up the stack. By default we allocate 2x the number of * rx descriptors configured so we have some slop to hold * us while frames are processed. */ if (mwl_rxbuf < 2*mwl_rxdesc) { device_printf(sc->sc_dev, "too few rx dma buffers (%d); increasing to %d\n", mwl_rxbuf, 2*mwl_rxdesc); mwl_rxbuf = 2*mwl_rxdesc; } jumbosize = roundup(MWL_AGGR_SIZE, PAGE_SIZE); sc->sc_rxmemsize = mwl_rxbuf*jumbosize; error = bus_dma_tag_create(sc->sc_dmat, /* parent */ PAGE_SIZE, 0, /* alignment, bounds */ BUS_SPACE_MAXADDR_32BIT, /* lowaddr */ BUS_SPACE_MAXADDR, /* highaddr */ NULL, NULL, /* filter, filterarg */ sc->sc_rxmemsize, /* maxsize */ 1, /* nsegments */ sc->sc_rxmemsize, /* maxsegsize */ BUS_DMA_ALLOCNOW, /* flags */ NULL, /* lockfunc */ NULL, /* lockarg */ &sc->sc_rxdmat); if (error != 0) { device_printf(sc->sc_dev, "could not create rx DMA tag\n"); return error; } error = bus_dmamem_alloc(sc->sc_rxdmat, (void**) &sc->sc_rxmem, BUS_DMA_NOWAIT | BUS_DMA_COHERENT, &sc->sc_rxmap); if (error != 0) { device_printf(sc->sc_dev, "could not alloc %ju bytes of rx DMA memory\n", (uintmax_t) sc->sc_rxmemsize); return error; } error = bus_dmamap_load(sc->sc_rxdmat, sc->sc_rxmap, sc->sc_rxmem, sc->sc_rxmemsize, mwl_load_cb, &sc->sc_rxmem_paddr, BUS_DMA_NOWAIT); if (error != 0) { device_printf(sc->sc_dev, "could not load rx DMA map\n"); return error; } /* * Allocate rx buffers and set them up. */ bsize = mwl_rxdesc * sizeof(struct mwl_rxbuf); bf = malloc(bsize, M_MWLDEV, M_NOWAIT | M_ZERO); if (bf == NULL) { device_printf(sc->sc_dev, "malloc of %u rx buffers failed\n", bsize); return error; } sc->sc_rxdma.dd_bufptr = bf; STAILQ_INIT(&sc->sc_rxbuf); ds = sc->sc_rxdma.dd_desc; for (i = 0; i < mwl_rxdesc; i++, bf++, ds++) { bf->bf_desc = ds; bf->bf_daddr = DS2PHYS(&sc->sc_rxdma, ds); /* pre-assign dma buffer */ bf->bf_data = ((uint8_t *)sc->sc_rxmem) + (i*jumbosize); /* NB: tail is intentional to preserve descriptor order */ STAILQ_INSERT_TAIL(&sc->sc_rxbuf, bf, bf_list); } /* * Place remainder of dma memory buffers on the free list. */ SLIST_INIT(&sc->sc_rxfree); for (; i < mwl_rxbuf; i++) { data = ((uint8_t *)sc->sc_rxmem) + (i*jumbosize); rbuf = MWL_JUMBO_DATA2BUF(data); SLIST_INSERT_HEAD(&sc->sc_rxfree, rbuf, next); sc->sc_nrxfree++; } return 0; } #undef DS2PHYS static void mwl_rxdma_cleanup(struct mwl_softc *sc) { if (sc->sc_rxmem_paddr != 0) { bus_dmamap_unload(sc->sc_rxdmat, sc->sc_rxmap); sc->sc_rxmem_paddr = 0; } if (sc->sc_rxmem != NULL) { bus_dmamem_free(sc->sc_rxdmat, sc->sc_rxmem, sc->sc_rxmap); sc->sc_rxmem = NULL; } if (sc->sc_rxdma.dd_bufptr != NULL) { free(sc->sc_rxdma.dd_bufptr, M_MWLDEV); sc->sc_rxdma.dd_bufptr = NULL; } if (sc->sc_rxdma.dd_desc_len != 0) mwl_desc_cleanup(sc, &sc->sc_rxdma); } static int mwl_dma_setup(struct mwl_softc *sc) { int error, i; error = mwl_rxdma_setup(sc); if (error != 0) { mwl_rxdma_cleanup(sc); return error; } for (i = 0; i < MWL_NUM_TX_QUEUES; i++) { error = mwl_txdma_setup(sc, &sc->sc_txq[i]); if (error != 0) { mwl_dma_cleanup(sc); return error; } } return 0; } static void mwl_dma_cleanup(struct mwl_softc *sc) { int i; for (i = 0; i < MWL_NUM_TX_QUEUES; i++) mwl_txdma_cleanup(sc, &sc->sc_txq[i]); mwl_rxdma_cleanup(sc); } static struct ieee80211_node * mwl_node_alloc(struct ieee80211vap *vap, const uint8_t mac[IEEE80211_ADDR_LEN]) { struct ieee80211com *ic = vap->iv_ic; struct mwl_softc *sc = ic->ic_softc; const size_t space = sizeof(struct mwl_node); struct mwl_node *mn; mn = malloc(space, M_80211_NODE, M_NOWAIT|M_ZERO); if (mn == NULL) { /* XXX stat+msg */ return NULL; } DPRINTF(sc, MWL_DEBUG_NODE, "%s: mn %p\n", __func__, mn); return &mn->mn_node; } static void mwl_node_cleanup(struct ieee80211_node *ni) { struct ieee80211com *ic = ni->ni_ic; struct mwl_softc *sc = ic->ic_softc; struct mwl_node *mn = MWL_NODE(ni); DPRINTF(sc, MWL_DEBUG_NODE, "%s: ni %p ic %p staid %d\n", __func__, ni, ni->ni_ic, mn->mn_staid); if (mn->mn_staid != 0) { struct ieee80211vap *vap = ni->ni_vap; if (mn->mn_hvap != NULL) { if (vap->iv_opmode == IEEE80211_M_STA) mwl_hal_delstation(mn->mn_hvap, vap->iv_myaddr); else mwl_hal_delstation(mn->mn_hvap, ni->ni_macaddr); } /* * NB: legacy WDS peer sta db entry is installed using * the associate ap's hvap; use it again to delete it. * XXX can vap be NULL? */ else if (vap->iv_opmode == IEEE80211_M_WDS && MWL_VAP(vap)->mv_ap_hvap != NULL) mwl_hal_delstation(MWL_VAP(vap)->mv_ap_hvap, ni->ni_macaddr); delstaid(sc, mn->mn_staid); mn->mn_staid = 0; } sc->sc_node_cleanup(ni); } /* * Reclaim rx dma buffers from packets sitting on the ampdu * reorder queue for a station. We replace buffers with a * system cluster (if available). */ static void mwl_ampdu_rxdma_reclaim(struct ieee80211_rx_ampdu *rap) { #if 0 int i, n, off; struct mbuf *m; void *cl; n = rap->rxa_qframes; for (i = 0; i < rap->rxa_wnd && n > 0; i++) { m = rap->rxa_m[i]; if (m == NULL) continue; n--; /* our dma buffers have a well-known free routine */ if ((m->m_flags & M_EXT) == 0 || m->m_ext.ext_free != mwl_ext_free) continue; /* * Try to allocate a cluster and move the data. */ off = m->m_data - m->m_ext.ext_buf; if (off + m->m_pkthdr.len > MCLBYTES) { /* XXX no AMSDU for now */ continue; } cl = pool_cache_get_paddr(&mclpool_cache, 0, &m->m_ext.ext_paddr); if (cl != NULL) { /* * Copy the existing data to the cluster, remove * the rx dma buffer, and attach the cluster in * its place. Note we preserve the offset to the * data so frames being bridged can still prepend * their headers without adding another mbuf. */ memcpy((caddr_t) cl + off, m->m_data, m->m_pkthdr.len); MEXTREMOVE(m); MEXTADD(m, cl, MCLBYTES, 0, NULL, &mclpool_cache); /* setup mbuf like _MCLGET does */ m->m_flags |= M_CLUSTER | M_EXT_RW; _MOWNERREF(m, M_EXT | M_CLUSTER); /* NB: m_data is clobbered by MEXTADDR, adjust */ m->m_data += off; } } #endif } /* * Callback to reclaim resources. We first let the * net80211 layer do it's thing, then if we are still * blocked by a lack of rx dma buffers we walk the ampdu * reorder q's to reclaim buffers by copying to a system * cluster. */ static void mwl_node_drain(struct ieee80211_node *ni) { struct ieee80211com *ic = ni->ni_ic; struct mwl_softc *sc = ic->ic_softc; struct mwl_node *mn = MWL_NODE(ni); DPRINTF(sc, MWL_DEBUG_NODE, "%s: ni %p vap %p staid %d\n", __func__, ni, ni->ni_vap, mn->mn_staid); /* NB: call up first to age out ampdu q's */ sc->sc_node_drain(ni); /* XXX better to not check low water mark? */ if (sc->sc_rxblocked && mn->mn_staid != 0 && (ni->ni_flags & IEEE80211_NODE_HT)) { uint8_t tid; /* * Walk the reorder q and reclaim rx dma buffers by copying * the packet contents into clusters. */ for (tid = 0; tid < WME_NUM_TID; tid++) { struct ieee80211_rx_ampdu *rap; rap = &ni->ni_rx_ampdu[tid]; if ((rap->rxa_flags & IEEE80211_AGGR_XCHGPEND) == 0) continue; if (rap->rxa_qframes) mwl_ampdu_rxdma_reclaim(rap); } } } static void mwl_node_getsignal(const struct ieee80211_node *ni, int8_t *rssi, int8_t *noise) { *rssi = ni->ni_ic->ic_node_getrssi(ni); #ifdef MWL_ANT_INFO_SUPPORT #if 0 /* XXX need to smooth data */ *noise = -MWL_NODE_CONST(ni)->mn_ai.nf; #else *noise = -95; /* XXX */ #endif #else *noise = -95; /* XXX */ #endif } /* * Convert Hardware per-antenna rssi info to common format: * Let a1, a2, a3 represent the amplitudes per chain * Let amax represent max[a1, a2, a3] * Rssi1_dBm = RSSI_dBm + 20*log10(a1/amax) * Rssi1_dBm = RSSI_dBm + 20*log10(a1) - 20*log10(amax) * We store a table that is 4*20*log10(idx) - the extra 4 is to store or * maintain some extra precision. * * Values are stored in .5 db format capped at 127. */ static void mwl_node_getmimoinfo(const struct ieee80211_node *ni, struct ieee80211_mimo_info *mi) { #define CVT(_dst, _src) do { \ (_dst) = rssi + ((logdbtbl[_src] - logdbtbl[rssi_max]) >> 2); \ (_dst) = (_dst) > 64 ? 127 : ((_dst) << 1); \ } while (0) static const int8_t logdbtbl[32] = { 0, 0, 24, 38, 48, 56, 62, 68, 72, 76, 80, 83, 86, 89, 92, 94, 96, 98, 100, 102, 104, 106, 107, 109, 110, 112, 113, 115, 116, 117, 118, 119 }; const struct mwl_node *mn = MWL_NODE_CONST(ni); uint8_t rssi = mn->mn_ai.rsvd1/2; /* XXX */ uint32_t rssi_max; rssi_max = mn->mn_ai.rssi_a; if (mn->mn_ai.rssi_b > rssi_max) rssi_max = mn->mn_ai.rssi_b; if (mn->mn_ai.rssi_c > rssi_max) rssi_max = mn->mn_ai.rssi_c; CVT(mi->ch[0].rssi[0], mn->mn_ai.rssi_a); CVT(mi->ch[1].rssi[0], mn->mn_ai.rssi_b); CVT(mi->ch[2].rssi[0], mn->mn_ai.rssi_c); mi->ch[0].noise[0] = mn->mn_ai.nf_a; mi->ch[1].noise[0] = mn->mn_ai.nf_b; mi->ch[2].noise[0] = mn->mn_ai.nf_c; #undef CVT } static __inline void * mwl_getrxdma(struct mwl_softc *sc) { struct mwl_jumbo *buf; void *data; /* * Allocate from jumbo pool. */ MWL_RXFREE_LOCK(sc); buf = SLIST_FIRST(&sc->sc_rxfree); if (buf == NULL) { DPRINTF(sc, MWL_DEBUG_ANY, "%s: out of rx dma buffers\n", __func__); sc->sc_stats.mst_rx_nodmabuf++; data = NULL; } else { SLIST_REMOVE_HEAD(&sc->sc_rxfree, next); sc->sc_nrxfree--; data = MWL_JUMBO_BUF2DATA(buf); } MWL_RXFREE_UNLOCK(sc); return data; } static __inline void mwl_putrxdma(struct mwl_softc *sc, void *data) { struct mwl_jumbo *buf; /* XXX bounds check data */ MWL_RXFREE_LOCK(sc); buf = MWL_JUMBO_DATA2BUF(data); SLIST_INSERT_HEAD(&sc->sc_rxfree, buf, next); sc->sc_nrxfree++; MWL_RXFREE_UNLOCK(sc); } static int mwl_rxbuf_init(struct mwl_softc *sc, struct mwl_rxbuf *bf) { struct mwl_rxdesc *ds; ds = bf->bf_desc; if (bf->bf_data == NULL) { bf->bf_data = mwl_getrxdma(sc); if (bf->bf_data == NULL) { /* mark descriptor to be skipped */ ds->RxControl = EAGLE_RXD_CTRL_OS_OWN; /* NB: don't need PREREAD */ MWL_RXDESC_SYNC(sc, ds, BUS_DMASYNC_PREWRITE); sc->sc_stats.mst_rxbuf_failed++; return ENOMEM; } } /* * NB: DMA buffer contents is known to be unmodified * so there's no need to flush the data cache. */ /* * Setup descriptor. */ ds->QosCtrl = 0; ds->RSSI = 0; ds->Status = EAGLE_RXD_STATUS_IDLE; ds->Channel = 0; ds->PktLen = htole16(MWL_AGGR_SIZE); ds->SQ2 = 0; ds->pPhysBuffData = htole32(MWL_JUMBO_DMA_ADDR(sc, bf->bf_data)); /* NB: don't touch pPhysNext, set once */ ds->RxControl = EAGLE_RXD_CTRL_DRIVER_OWN; MWL_RXDESC_SYNC(sc, ds, BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE); return 0; } static void mwl_ext_free(struct mbuf *m) { struct mwl_softc *sc = m->m_ext.ext_arg1; /* XXX bounds check data */ mwl_putrxdma(sc, m->m_ext.ext_buf); /* * If we were previously blocked by a lack of rx dma buffers * check if we now have enough to restart rx interrupt handling. * NB: we know we are called at splvm which is above splnet. */ if (sc->sc_rxblocked && sc->sc_nrxfree > mwl_rxdmalow) { sc->sc_rxblocked = 0; mwl_hal_intrset(sc->sc_mh, sc->sc_imask); } } struct mwl_frame_bar { u_int8_t i_fc[2]; u_int8_t i_dur[2]; u_int8_t i_ra[IEEE80211_ADDR_LEN]; u_int8_t i_ta[IEEE80211_ADDR_LEN]; /* ctl, seq, FCS */ } __packed; /* * Like ieee80211_anyhdrsize, but handles BAR frames * specially so the logic below to piece the 802.11 * header together works. */ static __inline int mwl_anyhdrsize(const void *data) { const struct ieee80211_frame *wh = data; if ((wh->i_fc[0]&IEEE80211_FC0_TYPE_MASK) == IEEE80211_FC0_TYPE_CTL) { switch (wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK) { case IEEE80211_FC0_SUBTYPE_CTS: case IEEE80211_FC0_SUBTYPE_ACK: return sizeof(struct ieee80211_frame_ack); case IEEE80211_FC0_SUBTYPE_BAR: return sizeof(struct mwl_frame_bar); } return sizeof(struct ieee80211_frame_min); } else return ieee80211_hdrsize(data); } static void mwl_handlemicerror(struct ieee80211com *ic, const uint8_t *data) { const struct ieee80211_frame *wh; struct ieee80211_node *ni; wh = (const struct ieee80211_frame *)(data + sizeof(uint16_t)); ni = ieee80211_find_rxnode(ic, (const struct ieee80211_frame_min *) wh); if (ni != NULL) { ieee80211_notify_michael_failure(ni->ni_vap, wh, 0); ieee80211_free_node(ni); } } /* * Convert hardware signal strength to rssi. The value * provided by the device has the noise floor added in; * we need to compensate for this but we don't have that * so we use a fixed value. * * The offset of 8 is good for both 2.4 and 5GHz. The LNA * offset is already set as part of the initial gain. This * will give at least +/- 3dB for 2.4GHz and +/- 5dB for 5GHz. */ static __inline int cvtrssi(uint8_t ssi) { int rssi = (int) ssi + 8; /* XXX hack guess until we have a real noise floor */ rssi = 2*(87 - rssi); /* NB: .5 dBm units */ return (rssi < 0 ? 0 : rssi > 127 ? 127 : rssi); } static void mwl_rx_proc(void *arg, int npending) { struct epoch_tracker et; struct mwl_softc *sc = arg; struct ieee80211com *ic = &sc->sc_ic; struct mwl_rxbuf *bf; struct mwl_rxdesc *ds; struct mbuf *m; struct ieee80211_qosframe *wh; struct ieee80211_node *ni; struct mwl_node *mn; int off, len, hdrlen, pktlen, rssi, ntodo; uint8_t *data, status; void *newdata; int16_t nf; DPRINTF(sc, MWL_DEBUG_RX_PROC, "%s: pending %u rdptr 0x%x wrptr 0x%x\n", __func__, npending, RD4(sc, sc->sc_hwspecs.rxDescRead), RD4(sc, sc->sc_hwspecs.rxDescWrite)); nf = -96; /* XXX */ bf = sc->sc_rxnext; for (ntodo = mwl_rxquota; ntodo > 0; ntodo--) { if (bf == NULL) bf = STAILQ_FIRST(&sc->sc_rxbuf); ds = bf->bf_desc; data = bf->bf_data; if (data == NULL) { /* * If data allocation failed previously there * will be no buffer; try again to re-populate it. * Note the firmware will not advance to the next * descriptor with a dma buffer so we must mimic * this or we'll get out of sync. */ DPRINTF(sc, MWL_DEBUG_ANY, "%s: rx buf w/o dma memory\n", __func__); (void) mwl_rxbuf_init(sc, bf); sc->sc_stats.mst_rx_dmabufmissing++; break; } MWL_RXDESC_SYNC(sc, ds, BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE); if (ds->RxControl != EAGLE_RXD_CTRL_DMA_OWN) break; #ifdef MWL_DEBUG if (sc->sc_debug & MWL_DEBUG_RECV_DESC) mwl_printrxbuf(bf, 0); #endif status = ds->Status; if (status & EAGLE_RXD_STATUS_DECRYPT_ERR_MASK) { counter_u64_add(ic->ic_ierrors, 1); sc->sc_stats.mst_rx_crypto++; /* * NB: Check EAGLE_RXD_STATUS_GENERAL_DECRYPT_ERR * for backwards compatibility. */ if (status != EAGLE_RXD_STATUS_GENERAL_DECRYPT_ERR && (status & EAGLE_RXD_STATUS_TKIP_MIC_DECRYPT_ERR)) { /* * MIC error, notify upper layers. */ bus_dmamap_sync(sc->sc_rxdmat, sc->sc_rxmap, BUS_DMASYNC_POSTREAD); mwl_handlemicerror(ic, data); sc->sc_stats.mst_rx_tkipmic++; } /* XXX too painful to tap packets */ goto rx_next; } /* * Sync the data buffer. */ len = le16toh(ds->PktLen); bus_dmamap_sync(sc->sc_rxdmat, sc->sc_rxmap, BUS_DMASYNC_POSTREAD); /* * The 802.11 header is provided all or in part at the front; * use it to calculate the true size of the header that we'll * construct below. We use this to figure out where to copy * payload prior to constructing the header. */ hdrlen = mwl_anyhdrsize(data + sizeof(uint16_t)); off = sizeof(uint16_t) + sizeof(struct ieee80211_frame_addr4); /* calculate rssi early so we can re-use for each aggregate */ rssi = cvtrssi(ds->RSSI); pktlen = hdrlen + (len - off); /* * NB: we know our frame is at least as large as * IEEE80211_MIN_LEN because there is a 4-address * frame at the front. Hence there's no need to * vet the packet length. If the frame in fact * is too small it should be discarded at the * net80211 layer. */ /* * Attach dma buffer to an mbuf. We tried * doing this based on the packet size (i.e. * copying small packets) but it turns out to * be a net loss. The tradeoff might be system * dependent (cache architecture is important). */ MGETHDR(m, M_NOWAIT, MT_DATA); if (m == NULL) { DPRINTF(sc, MWL_DEBUG_ANY, "%s: no rx mbuf\n", __func__); sc->sc_stats.mst_rx_nombuf++; goto rx_next; } /* * Acquire the replacement dma buffer before * processing the frame. If we're out of dma * buffers we disable rx interrupts and wait * for the free pool to reach mlw_rxdmalow buffers * before starting to do work again. If the firmware * runs out of descriptors then it will toss frames * which is better than our doing it as that can * starve our processing. It is also important that * we always process rx'd frames in case they are * A-MPDU as otherwise the host's view of the BA * window may get out of sync with the firmware. */ newdata = mwl_getrxdma(sc); if (newdata == NULL) { /* NB: stat+msg in mwl_getrxdma */ m_free(m); /* disable RX interrupt and mark state */ mwl_hal_intrset(sc->sc_mh, sc->sc_imask &~ MACREG_A2HRIC_BIT_RX_RDY); sc->sc_rxblocked = 1; ieee80211_drain(ic); /* XXX check rxblocked and immediately start again? */ goto rx_stop; } bf->bf_data = newdata; /* * Attach the dma buffer to the mbuf; * mwl_rxbuf_init will re-setup the rx * descriptor using the replacement dma * buffer we just installed above. */ m_extadd(m, data, MWL_AGGR_SIZE, mwl_ext_free, sc, NULL, 0, EXT_NET_DRV); m->m_data += off - hdrlen; m->m_pkthdr.len = m->m_len = pktlen; /* NB: dma buffer assumed read-only */ /* * Piece 802.11 header together. */ wh = mtod(m, struct ieee80211_qosframe *); /* NB: don't need to do this sometimes but ... */ /* XXX special case so we can memcpy after m_devget? */ ovbcopy(data + sizeof(uint16_t), wh, hdrlen); if (IEEE80211_QOS_HAS_SEQ(wh)) *(uint16_t *)ieee80211_getqos(wh) = ds->QosCtrl; /* * The f/w strips WEP header but doesn't clear * the WEP bit; mark the packet with M_WEP so * net80211 will treat the data as decrypted. * While here also clear the PWR_MGT bit since * power save is handled by the firmware and * passing this up will potentially cause the * upper layer to put a station in power save * (except when configured with MWL_HOST_PS_SUPPORT). */ if (wh->i_fc[1] & IEEE80211_FC1_PROTECTED) m->m_flags |= M_WEP; #ifdef MWL_HOST_PS_SUPPORT wh->i_fc[1] &= ~IEEE80211_FC1_PROTECTED; #else wh->i_fc[1] &= ~(IEEE80211_FC1_PROTECTED | IEEE80211_FC1_PWR_MGT); #endif if (ieee80211_radiotap_active(ic)) { struct mwl_rx_radiotap_header *tap = &sc->sc_rx_th; tap->wr_flags = 0; tap->wr_rate = ds->Rate; tap->wr_antsignal = rssi + nf; tap->wr_antnoise = nf; } if (IFF_DUMPPKTS_RECV(sc, wh)) { ieee80211_dump_pkt(ic, mtod(m, caddr_t), len, ds->Rate, rssi); } /* dispatch */ ni = ieee80211_find_rxnode(ic, (const struct ieee80211_frame_min *) wh); NET_EPOCH_ENTER(et); if (ni != NULL) { mn = MWL_NODE(ni); #ifdef MWL_ANT_INFO_SUPPORT mn->mn_ai.rssi_a = ds->ai.rssi_a; mn->mn_ai.rssi_b = ds->ai.rssi_b; mn->mn_ai.rssi_c = ds->ai.rssi_c; mn->mn_ai.rsvd1 = rssi; #endif /* tag AMPDU aggregates for reorder processing */ if (ni->ni_flags & IEEE80211_NODE_HT) m->m_flags |= M_AMPDU; (void) ieee80211_input(ni, m, rssi, nf); ieee80211_free_node(ni); } else (void) ieee80211_input_all(ic, m, rssi, nf); NET_EPOCH_EXIT(et); rx_next: /* NB: ignore ENOMEM so we process more descriptors */ (void) mwl_rxbuf_init(sc, bf); bf = STAILQ_NEXT(bf, bf_list); } rx_stop: sc->sc_rxnext = bf; if (mbufq_first(&sc->sc_snd) != NULL) { /* NB: kick fw; the tx thread may have been preempted */ mwl_hal_txstart(sc->sc_mh, 0); mwl_start(sc); } } static void mwl_txq_init(struct mwl_softc *sc, struct mwl_txq *txq, int qnum) { struct mwl_txbuf *bf, *bn; struct mwl_txdesc *ds; MWL_TXQ_LOCK_INIT(sc, txq); txq->qnum = qnum; txq->txpri = 0; /* XXX */ #if 0 /* NB: q setup by mwl_txdma_setup XXX */ STAILQ_INIT(&txq->free); #endif STAILQ_FOREACH(bf, &txq->free, bf_list) { bf->bf_txq = txq; ds = bf->bf_desc; bn = STAILQ_NEXT(bf, bf_list); if (bn == NULL) bn = STAILQ_FIRST(&txq->free); ds->pPhysNext = htole32(bn->bf_daddr); } STAILQ_INIT(&txq->active); } /* * Setup a hardware data transmit queue for the specified * access control. We record the mapping from ac's * to h/w queues for use by mwl_tx_start. */ static int mwl_tx_setup(struct mwl_softc *sc, int ac, int mvtype) { struct mwl_txq *txq; if (ac >= nitems(sc->sc_ac2q)) { device_printf(sc->sc_dev, "AC %u out of range, max %zu!\n", ac, nitems(sc->sc_ac2q)); return 0; } if (mvtype >= MWL_NUM_TX_QUEUES) { device_printf(sc->sc_dev, "mvtype %u out of range, max %u!\n", mvtype, MWL_NUM_TX_QUEUES); return 0; } txq = &sc->sc_txq[mvtype]; mwl_txq_init(sc, txq, mvtype); sc->sc_ac2q[ac] = txq; return 1; } /* * Update WME parameters for a transmit queue. */ static int mwl_txq_update(struct mwl_softc *sc, int ac) { #define MWL_EXPONENT_TO_VALUE(v) ((1<sc_ic; struct chanAccParams chp; struct mwl_txq *txq = sc->sc_ac2q[ac]; struct wmeParams *wmep; struct mwl_hal *mh = sc->sc_mh; int aifs, cwmin, cwmax, txoplim; ieee80211_wme_ic_getparams(ic, &chp); wmep = &chp.cap_wmeParams[ac]; aifs = wmep->wmep_aifsn; /* XXX in sta mode need to pass log values for cwmin/max */ cwmin = MWL_EXPONENT_TO_VALUE(wmep->wmep_logcwmin); cwmax = MWL_EXPONENT_TO_VALUE(wmep->wmep_logcwmax); txoplim = wmep->wmep_txopLimit; /* NB: units of 32us */ if (mwl_hal_setedcaparams(mh, txq->qnum, cwmin, cwmax, aifs, txoplim)) { device_printf(sc->sc_dev, "unable to update hardware queue " "parameters for %s traffic!\n", ieee80211_wme_acnames[ac]); return 0; } return 1; #undef MWL_EXPONENT_TO_VALUE } /* * Callback from the 802.11 layer to update WME parameters. */ static int mwl_wme_update(struct ieee80211com *ic) { struct mwl_softc *sc = ic->ic_softc; return !mwl_txq_update(sc, WME_AC_BE) || !mwl_txq_update(sc, WME_AC_BK) || !mwl_txq_update(sc, WME_AC_VI) || !mwl_txq_update(sc, WME_AC_VO) ? EIO : 0; } /* * Reclaim resources for a setup queue. */ static void mwl_tx_cleanupq(struct mwl_softc *sc, struct mwl_txq *txq) { /* XXX hal work? */ MWL_TXQ_LOCK_DESTROY(txq); } /* * Reclaim all tx queue resources. */ static void mwl_tx_cleanup(struct mwl_softc *sc) { int i; for (i = 0; i < MWL_NUM_TX_QUEUES; i++) mwl_tx_cleanupq(sc, &sc->sc_txq[i]); } static int mwl_tx_dmasetup(struct mwl_softc *sc, struct mwl_txbuf *bf, struct mbuf *m0) { struct mbuf *m; int error; /* * Load the DMA map so any coalescing is done. This * also calculates the number of descriptors we need. */ error = bus_dmamap_load_mbuf_sg(sc->sc_dmat, bf->bf_dmamap, m0, bf->bf_segs, &bf->bf_nseg, BUS_DMA_NOWAIT); if (error == EFBIG) { /* XXX packet requires too many descriptors */ bf->bf_nseg = MWL_TXDESC+1; } else if (error != 0) { sc->sc_stats.mst_tx_busdma++; m_freem(m0); return error; } /* * Discard null packets and check for packets that * require too many TX descriptors. We try to convert * the latter to a cluster. */ if (error == EFBIG) { /* too many desc's, linearize */ sc->sc_stats.mst_tx_linear++; #if MWL_TXDESC > 1 m = m_collapse(m0, M_NOWAIT, MWL_TXDESC); #else m = m_defrag(m0, M_NOWAIT); #endif if (m == NULL) { m_freem(m0); sc->sc_stats.mst_tx_nombuf++; return ENOMEM; } m0 = m; error = bus_dmamap_load_mbuf_sg(sc->sc_dmat, bf->bf_dmamap, m0, bf->bf_segs, &bf->bf_nseg, BUS_DMA_NOWAIT); if (error != 0) { sc->sc_stats.mst_tx_busdma++; m_freem(m0); return error; } KASSERT(bf->bf_nseg <= MWL_TXDESC, ("too many segments after defrag; nseg %u", bf->bf_nseg)); } else if (bf->bf_nseg == 0) { /* null packet, discard */ sc->sc_stats.mst_tx_nodata++; m_freem(m0); return EIO; } DPRINTF(sc, MWL_DEBUG_XMIT, "%s: m %p len %u\n", __func__, m0, m0->m_pkthdr.len); bus_dmamap_sync(sc->sc_dmat, bf->bf_dmamap, BUS_DMASYNC_PREWRITE); bf->bf_m = m0; return 0; } static __inline int mwl_cvtlegacyrate(int rate) { switch (rate) { case 2: return 0; case 4: return 1; case 11: return 2; case 22: return 3; case 44: return 4; case 12: return 5; case 18: return 6; case 24: return 7; case 36: return 8; case 48: return 9; case 72: return 10; case 96: return 11; case 108:return 12; } return 0; } /* * Calculate fixed tx rate information per client state; * this value is suitable for writing to the Format field * of a tx descriptor. */ static uint16_t mwl_calcformat(uint8_t rate, const struct ieee80211_node *ni) { uint16_t fmt; fmt = SM(3, EAGLE_TXD_ANTENNA) | (IEEE80211_IS_CHAN_HT40D(ni->ni_chan) ? EAGLE_TXD_EXTCHAN_LO : EAGLE_TXD_EXTCHAN_HI); if (rate & IEEE80211_RATE_MCS) { /* HT MCS */ fmt |= EAGLE_TXD_FORMAT_HT /* NB: 0x80 implicitly stripped from ucastrate */ | SM(rate, EAGLE_TXD_RATE); /* XXX short/long GI may be wrong; re-check */ if (IEEE80211_IS_CHAN_HT40(ni->ni_chan)) { fmt |= EAGLE_TXD_CHW_40 | (ni->ni_htcap & IEEE80211_HTCAP_SHORTGI40 ? EAGLE_TXD_GI_SHORT : EAGLE_TXD_GI_LONG); } else { fmt |= EAGLE_TXD_CHW_20 | (ni->ni_htcap & IEEE80211_HTCAP_SHORTGI20 ? EAGLE_TXD_GI_SHORT : EAGLE_TXD_GI_LONG); } } else { /* legacy rate */ fmt |= EAGLE_TXD_FORMAT_LEGACY | SM(mwl_cvtlegacyrate(rate), EAGLE_TXD_RATE) | EAGLE_TXD_CHW_20 /* XXX iv_flags & IEEE80211_F_SHPREAMBLE? */ | (ni->ni_capinfo & IEEE80211_CAPINFO_SHORT_PREAMBLE ? EAGLE_TXD_PREAMBLE_SHORT : EAGLE_TXD_PREAMBLE_LONG); } return fmt; } static int mwl_tx_start(struct mwl_softc *sc, struct ieee80211_node *ni, struct mwl_txbuf *bf, struct mbuf *m0) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = ni->ni_vap; int error, iswep, ismcast; int hdrlen, copyhdrlen, pktlen; struct mwl_txdesc *ds; struct mwl_txq *txq; struct ieee80211_frame *wh; struct mwltxrec *tr; struct mwl_node *mn; uint16_t qos; #if MWL_TXDESC > 1 int i; #endif wh = mtod(m0, struct ieee80211_frame *); iswep = wh->i_fc[1] & IEEE80211_FC1_PROTECTED; ismcast = IEEE80211_IS_MULTICAST(wh->i_addr1); hdrlen = ieee80211_anyhdrsize(wh); copyhdrlen = hdrlen; pktlen = m0->m_pkthdr.len; if (IEEE80211_QOS_HAS_SEQ(wh)) { qos = *(uint16_t *)ieee80211_getqos(wh); if (IEEE80211_IS_DSTODS(wh)) copyhdrlen -= sizeof(qos); } else qos = 0; if (iswep) { const struct ieee80211_cipher *cip; struct ieee80211_key *k; /* * Construct the 802.11 header+trailer for an encrypted * frame. The only reason this can fail is because of an * unknown or unsupported cipher/key type. * * NB: we do this even though the firmware will ignore * what we've done for WEP and TKIP as we need the * ExtIV filled in for CCMP and this also adjusts * the headers which simplifies our work below. */ k = ieee80211_crypto_encap(ni, m0); if (k == NULL) { /* * This can happen when the key is yanked after the * frame was queued. Just discard the frame; the * 802.11 layer counts failures and provides * debugging/diagnostics. */ m_freem(m0); return EIO; } /* * Adjust the packet length for the crypto additions * done during encap and any other bits that the f/w * will add later on. */ cip = k->wk_cipher; pktlen += cip->ic_header + cip->ic_miclen + cip->ic_trailer; /* packet header may have moved, reset our local pointer */ wh = mtod(m0, struct ieee80211_frame *); } if (ieee80211_radiotap_active_vap(vap)) { sc->sc_tx_th.wt_flags = 0; /* XXX */ if (iswep) sc->sc_tx_th.wt_flags |= IEEE80211_RADIOTAP_F_WEP; #if 0 sc->sc_tx_th.wt_rate = ds->DataRate; #endif sc->sc_tx_th.wt_txpower = ni->ni_txpower; sc->sc_tx_th.wt_antenna = sc->sc_txantenna; ieee80211_radiotap_tx(vap, m0); } /* * Copy up/down the 802.11 header; the firmware requires * we present a 2-byte payload length followed by a * 4-address header (w/o QoS), followed (optionally) by * any WEP/ExtIV header (but only filled in for CCMP). * We are assured the mbuf has sufficient headroom to * prepend in-place by the setup of ic_headroom in * mwl_attach. */ if (hdrlen < sizeof(struct mwltxrec)) { const int space = sizeof(struct mwltxrec) - hdrlen; if (M_LEADINGSPACE(m0) < space) { /* NB: should never happen */ device_printf(sc->sc_dev, "not enough headroom, need %d found %zd, " "m_flags 0x%x m_len %d\n", space, M_LEADINGSPACE(m0), m0->m_flags, m0->m_len); ieee80211_dump_pkt(ic, mtod(m0, const uint8_t *), m0->m_len, 0, -1); m_freem(m0); sc->sc_stats.mst_tx_noheadroom++; return EIO; } M_PREPEND(m0, space, M_NOWAIT); } tr = mtod(m0, struct mwltxrec *); if (wh != (struct ieee80211_frame *) &tr->wh) ovbcopy(wh, &tr->wh, hdrlen); /* * Note: the "firmware length" is actually the length * of the fully formed "802.11 payload". That is, it's * everything except for the 802.11 header. In particular * this includes all crypto material including the MIC! */ tr->fwlen = htole16(pktlen - hdrlen); /* * Load the DMA map so any coalescing is done. This * also calculates the number of descriptors we need. */ error = mwl_tx_dmasetup(sc, bf, m0); if (error != 0) { /* NB: stat collected in mwl_tx_dmasetup */ DPRINTF(sc, MWL_DEBUG_XMIT, "%s: unable to setup dma\n", __func__); return error; } bf->bf_node = ni; /* NB: held reference */ m0 = bf->bf_m; /* NB: may have changed */ tr = mtod(m0, struct mwltxrec *); wh = (struct ieee80211_frame *)&tr->wh; /* * Formulate tx descriptor. */ ds = bf->bf_desc; txq = bf->bf_txq; ds->QosCtrl = qos; /* NB: already little-endian */ #if MWL_TXDESC == 1 /* * NB: multiframes should be zero because the descriptors * are initialized to zero. This should handle the case * where the driver is built with MWL_TXDESC=1 but we are * using firmware with multi-segment support. */ ds->PktPtr = htole32(bf->bf_segs[0].ds_addr); ds->PktLen = htole16(bf->bf_segs[0].ds_len); #else ds->multiframes = htole32(bf->bf_nseg); ds->PktLen = htole16(m0->m_pkthdr.len); for (i = 0; i < bf->bf_nseg; i++) { ds->PktPtrArray[i] = htole32(bf->bf_segs[i].ds_addr); ds->PktLenArray[i] = htole16(bf->bf_segs[i].ds_len); } #endif /* NB: pPhysNext, DataRate, and SapPktInfo setup once, don't touch */ ds->Format = 0; ds->pad = 0; ds->ack_wcb_addr = 0; mn = MWL_NODE(ni); /* * Select transmit rate. */ switch (wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK) { case IEEE80211_FC0_TYPE_MGT: sc->sc_stats.mst_tx_mgmt++; /* fall thru... */ case IEEE80211_FC0_TYPE_CTL: /* NB: assign to BE q to avoid bursting */ ds->TxPriority = MWL_WME_AC_BE; break; case IEEE80211_FC0_TYPE_DATA: if (!ismcast) { const struct ieee80211_txparam *tp = ni->ni_txparms; /* * EAPOL frames get forced to a fixed rate and w/o * aggregation; otherwise check for any fixed rate * for the client (may depend on association state). */ if (m0->m_flags & M_EAPOL) { const struct mwl_vap *mvp = MWL_VAP_CONST(vap); ds->Format = mvp->mv_eapolformat; ds->pad = htole16( EAGLE_TXD_FIXED_RATE | EAGLE_TXD_DONT_AGGR); } else if (tp->ucastrate != IEEE80211_FIXED_RATE_NONE) { /* XXX pre-calculate per node */ ds->Format = htole16( mwl_calcformat(tp->ucastrate, ni)); ds->pad = htole16(EAGLE_TXD_FIXED_RATE); } /* NB: EAPOL frames will never have qos set */ if (qos == 0) ds->TxPriority = txq->qnum; #if MWL_MAXBA > 3 else if (mwl_bastream_match(&mn->mn_ba[3], qos)) ds->TxPriority = mn->mn_ba[3].txq; #endif #if MWL_MAXBA > 2 else if (mwl_bastream_match(&mn->mn_ba[2], qos)) ds->TxPriority = mn->mn_ba[2].txq; #endif #if MWL_MAXBA > 1 else if (mwl_bastream_match(&mn->mn_ba[1], qos)) ds->TxPriority = mn->mn_ba[1].txq; #endif #if MWL_MAXBA > 0 else if (mwl_bastream_match(&mn->mn_ba[0], qos)) ds->TxPriority = mn->mn_ba[0].txq; #endif else ds->TxPriority = txq->qnum; } else ds->TxPriority = txq->qnum; break; default: device_printf(sc->sc_dev, "bogus frame type 0x%x (%s)\n", wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK, __func__); sc->sc_stats.mst_tx_badframetype++; m_freem(m0); return EIO; } if (IFF_DUMPPKTS_XMIT(sc)) ieee80211_dump_pkt(ic, mtod(m0, const uint8_t *)+sizeof(uint16_t), m0->m_len - sizeof(uint16_t), ds->DataRate, -1); MWL_TXQ_LOCK(txq); ds->Status = htole32(EAGLE_TXD_STATUS_FW_OWNED); STAILQ_INSERT_TAIL(&txq->active, bf, bf_list); MWL_TXDESC_SYNC(txq, ds, BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE); sc->sc_tx_timer = 5; MWL_TXQ_UNLOCK(txq); return 0; } static __inline int mwl_cvtlegacyrix(int rix) { static const int ieeerates[] = { 2, 4, 11, 22, 44, 12, 18, 24, 36, 48, 72, 96, 108 }; return (rix < nitems(ieeerates) ? ieeerates[rix] : 0); } /* * Process completed xmit descriptors from the specified queue. */ static int mwl_tx_processq(struct mwl_softc *sc, struct mwl_txq *txq) { #define EAGLE_TXD_STATUS_MCAST \ (EAGLE_TXD_STATUS_MULTICAST_TX | EAGLE_TXD_STATUS_BROADCAST_TX) struct ieee80211com *ic = &sc->sc_ic; struct mwl_txbuf *bf; struct mwl_txdesc *ds; struct ieee80211_node *ni; struct mwl_node *an; int nreaped; uint32_t status; DPRINTF(sc, MWL_DEBUG_TX_PROC, "%s: tx queue %u\n", __func__, txq->qnum); for (nreaped = 0;; nreaped++) { MWL_TXQ_LOCK(txq); bf = STAILQ_FIRST(&txq->active); if (bf == NULL) { MWL_TXQ_UNLOCK(txq); break; } ds = bf->bf_desc; MWL_TXDESC_SYNC(txq, ds, BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE); if (ds->Status & htole32(EAGLE_TXD_STATUS_FW_OWNED)) { MWL_TXQ_UNLOCK(txq); break; } STAILQ_REMOVE_HEAD(&txq->active, bf_list); MWL_TXQ_UNLOCK(txq); #ifdef MWL_DEBUG if (sc->sc_debug & MWL_DEBUG_XMIT_DESC) mwl_printtxbuf(bf, txq->qnum, nreaped); #endif ni = bf->bf_node; if (ni != NULL) { an = MWL_NODE(ni); status = le32toh(ds->Status); if (status & EAGLE_TXD_STATUS_OK) { uint16_t Format = le16toh(ds->Format); uint8_t txant = MS(Format, EAGLE_TXD_ANTENNA); sc->sc_stats.mst_ant_tx[txant]++; if (status & EAGLE_TXD_STATUS_OK_RETRY) sc->sc_stats.mst_tx_retries++; if (status & EAGLE_TXD_STATUS_OK_MORE_RETRY) sc->sc_stats.mst_tx_mretries++; if (txq->qnum >= MWL_WME_AC_VO) ic->ic_wme.wme_hipri_traffic++; ni->ni_txrate = MS(Format, EAGLE_TXD_RATE); if ((Format & EAGLE_TXD_FORMAT_HT) == 0) { ni->ni_txrate = mwl_cvtlegacyrix( ni->ni_txrate); } else ni->ni_txrate |= IEEE80211_RATE_MCS; sc->sc_stats.mst_tx_rate = ni->ni_txrate; } else { if (status & EAGLE_TXD_STATUS_FAILED_LINK_ERROR) sc->sc_stats.mst_tx_linkerror++; if (status & EAGLE_TXD_STATUS_FAILED_XRETRY) sc->sc_stats.mst_tx_xretries++; if (status & EAGLE_TXD_STATUS_FAILED_AGING) sc->sc_stats.mst_tx_aging++; if (bf->bf_m->m_flags & M_FF) sc->sc_stats.mst_ff_txerr++; } if (bf->bf_m->m_flags & M_TXCB) /* XXX strip fw len in case header inspected */ m_adj(bf->bf_m, sizeof(uint16_t)); ieee80211_tx_complete(ni, bf->bf_m, (status & EAGLE_TXD_STATUS_OK) == 0); } else m_freem(bf->bf_m); ds->Status = htole32(EAGLE_TXD_STATUS_IDLE); bus_dmamap_sync(sc->sc_dmat, bf->bf_dmamap, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(sc->sc_dmat, bf->bf_dmamap); mwl_puttxbuf_tail(txq, bf); } return nreaped; #undef EAGLE_TXD_STATUS_MCAST } /* * Deferred processing of transmit interrupt; special-cased * for four hardware queues, 0-3. */ static void mwl_tx_proc(void *arg, int npending) { struct mwl_softc *sc = arg; int nreaped; /* * Process each active queue. */ nreaped = 0; if (!STAILQ_EMPTY(&sc->sc_txq[0].active)) nreaped += mwl_tx_processq(sc, &sc->sc_txq[0]); if (!STAILQ_EMPTY(&sc->sc_txq[1].active)) nreaped += mwl_tx_processq(sc, &sc->sc_txq[1]); if (!STAILQ_EMPTY(&sc->sc_txq[2].active)) nreaped += mwl_tx_processq(sc, &sc->sc_txq[2]); if (!STAILQ_EMPTY(&sc->sc_txq[3].active)) nreaped += mwl_tx_processq(sc, &sc->sc_txq[3]); if (nreaped != 0) { sc->sc_tx_timer = 0; if (mbufq_first(&sc->sc_snd) != NULL) { /* NB: kick fw; the tx thread may have been preempted */ mwl_hal_txstart(sc->sc_mh, 0); mwl_start(sc); } } } static void mwl_tx_draintxq(struct mwl_softc *sc, struct mwl_txq *txq) { struct ieee80211_node *ni; struct mwl_txbuf *bf; u_int ix; /* * NB: this assumes output has been stopped and * we do not need to block mwl_tx_tasklet */ for (ix = 0;; ix++) { MWL_TXQ_LOCK(txq); bf = STAILQ_FIRST(&txq->active); if (bf == NULL) { MWL_TXQ_UNLOCK(txq); break; } STAILQ_REMOVE_HEAD(&txq->active, bf_list); MWL_TXQ_UNLOCK(txq); #ifdef MWL_DEBUG if (sc->sc_debug & MWL_DEBUG_RESET) { struct ieee80211com *ic = &sc->sc_ic; const struct mwltxrec *tr = mtod(bf->bf_m, const struct mwltxrec *); mwl_printtxbuf(bf, txq->qnum, ix); ieee80211_dump_pkt(ic, (const uint8_t *)&tr->wh, bf->bf_m->m_len - sizeof(tr->fwlen), 0, -1); } #endif /* MWL_DEBUG */ bus_dmamap_unload(sc->sc_dmat, bf->bf_dmamap); ni = bf->bf_node; if (ni != NULL) { /* * Reclaim node reference. */ ieee80211_free_node(ni); } m_freem(bf->bf_m); mwl_puttxbuf_tail(txq, bf); } } /* * Drain the transmit queues and reclaim resources. */ static void mwl_draintxq(struct mwl_softc *sc) { int i; for (i = 0; i < MWL_NUM_TX_QUEUES; i++) mwl_tx_draintxq(sc, &sc->sc_txq[i]); sc->sc_tx_timer = 0; } #ifdef MWL_DIAGAPI /* * Reset the transmit queues to a pristine state after a fw download. */ static void mwl_resettxq(struct mwl_softc *sc) { int i; for (i = 0; i < MWL_NUM_TX_QUEUES; i++) mwl_txq_reset(sc, &sc->sc_txq[i]); } #endif /* MWL_DIAGAPI */ /* * Clear the transmit queues of any frames submitted for the * specified vap. This is done when the vap is deleted so we * don't potentially reference the vap after it is gone. * Note we cannot remove the frames; we only reclaim the node * reference. */ static void mwl_cleartxq(struct mwl_softc *sc, struct ieee80211vap *vap) { struct mwl_txq *txq; struct mwl_txbuf *bf; int i; for (i = 0; i < MWL_NUM_TX_QUEUES; i++) { txq = &sc->sc_txq[i]; MWL_TXQ_LOCK(txq); STAILQ_FOREACH(bf, &txq->active, bf_list) { struct ieee80211_node *ni = bf->bf_node; if (ni != NULL && ni->ni_vap == vap) { bf->bf_node = NULL; ieee80211_free_node(ni); } } MWL_TXQ_UNLOCK(txq); } } static int mwl_recv_action(struct ieee80211_node *ni, const struct ieee80211_frame *wh, const uint8_t *frm, const uint8_t *efrm) { struct mwl_softc *sc = ni->ni_ic->ic_softc; const struct ieee80211_action *ia; ia = (const struct ieee80211_action *) frm; if (ia->ia_category == IEEE80211_ACTION_CAT_HT && ia->ia_action == IEEE80211_ACTION_HT_MIMOPWRSAVE) { const struct ieee80211_action_ht_mimopowersave *mps = (const struct ieee80211_action_ht_mimopowersave *) ia; mwl_hal_setmimops(sc->sc_mh, ni->ni_macaddr, mps->am_control & IEEE80211_A_HT_MIMOPWRSAVE_ENA, MS(mps->am_control, IEEE80211_A_HT_MIMOPWRSAVE_MODE)); return 0; } else return sc->sc_recv_action(ni, wh, frm, efrm); } static int mwl_addba_request(struct ieee80211_node *ni, struct ieee80211_tx_ampdu *tap, int dialogtoken, int baparamset, int batimeout) { struct mwl_softc *sc = ni->ni_ic->ic_softc; struct ieee80211vap *vap = ni->ni_vap; struct mwl_node *mn = MWL_NODE(ni); struct mwl_bastate *bas; bas = tap->txa_private; if (bas == NULL) { const MWL_HAL_BASTREAM *sp; /* * Check for a free BA stream slot. */ #if MWL_MAXBA > 3 if (mn->mn_ba[3].bastream == NULL) bas = &mn->mn_ba[3]; else #endif #if MWL_MAXBA > 2 if (mn->mn_ba[2].bastream == NULL) bas = &mn->mn_ba[2]; else #endif #if MWL_MAXBA > 1 if (mn->mn_ba[1].bastream == NULL) bas = &mn->mn_ba[1]; else #endif #if MWL_MAXBA > 0 if (mn->mn_ba[0].bastream == NULL) bas = &mn->mn_ba[0]; else #endif { /* sta already has max BA streams */ /* XXX assign BA stream to highest priority tid */ DPRINTF(sc, MWL_DEBUG_AMPDU, "%s: already has max bastreams\n", __func__); sc->sc_stats.mst_ampdu_reject++; return 0; } /* NB: no held reference to ni */ sp = mwl_hal_bastream_alloc(MWL_VAP(vap)->mv_hvap, (baparamset & IEEE80211_BAPS_POLICY_IMMEDIATE) != 0, ni->ni_macaddr, tap->txa_tid, ni->ni_htparam, ni, tap); if (sp == NULL) { /* * No available stream, return 0 so no * a-mpdu aggregation will be done. */ DPRINTF(sc, MWL_DEBUG_AMPDU, "%s: no bastream available\n", __func__); sc->sc_stats.mst_ampdu_nostream++; return 0; } DPRINTF(sc, MWL_DEBUG_AMPDU, "%s: alloc bastream %p\n", __func__, sp); /* NB: qos is left zero so we won't match in mwl_tx_start */ bas->bastream = sp; tap->txa_private = bas; } /* fetch current seq# from the firmware; if available */ if (mwl_hal_bastream_get_seqno(sc->sc_mh, bas->bastream, vap->iv_opmode == IEEE80211_M_STA ? vap->iv_myaddr : ni->ni_macaddr, &tap->txa_start) != 0) tap->txa_start = 0; return sc->sc_addba_request(ni, tap, dialogtoken, baparamset, batimeout); } static int mwl_addba_response(struct ieee80211_node *ni, struct ieee80211_tx_ampdu *tap, int code, int baparamset, int batimeout) { struct mwl_softc *sc = ni->ni_ic->ic_softc; struct mwl_bastate *bas; bas = tap->txa_private; if (bas == NULL) { /* XXX should not happen */ DPRINTF(sc, MWL_DEBUG_AMPDU, "%s: no BA stream allocated, TID %d\n", __func__, tap->txa_tid); sc->sc_stats.mst_addba_nostream++; return 0; } if (code == IEEE80211_STATUS_SUCCESS) { struct ieee80211vap *vap = ni->ni_vap; int bufsiz, error; /* * Tell the firmware to setup the BA stream; * we know resources are available because we * pre-allocated one before forming the request. */ bufsiz = MS(baparamset, IEEE80211_BAPS_BUFSIZ); if (bufsiz == 0) bufsiz = IEEE80211_AGGR_BAWMAX; error = mwl_hal_bastream_create(MWL_VAP(vap)->mv_hvap, bas->bastream, bufsiz, bufsiz, tap->txa_start); if (error != 0) { /* * Setup failed, return immediately so no a-mpdu * aggregation will be done. */ mwl_hal_bastream_destroy(sc->sc_mh, bas->bastream); mwl_bastream_free(bas); tap->txa_private = NULL; DPRINTF(sc, MWL_DEBUG_AMPDU, "%s: create failed, error %d, bufsiz %d TID %d " "htparam 0x%x\n", __func__, error, bufsiz, tap->txa_tid, ni->ni_htparam); sc->sc_stats.mst_bacreate_failed++; return 0; } /* NB: cache txq to avoid ptr indirect */ mwl_bastream_setup(bas, tap->txa_tid, bas->bastream->txq); DPRINTF(sc, MWL_DEBUG_AMPDU, "%s: bastream %p assigned to txq %d TID %d bufsiz %d " "htparam 0x%x\n", __func__, bas->bastream, bas->txq, tap->txa_tid, bufsiz, ni->ni_htparam); } else { /* * Other side NAK'd us; return the resources. */ DPRINTF(sc, MWL_DEBUG_AMPDU, "%s: request failed with code %d, destroy bastream %p\n", __func__, code, bas->bastream); mwl_hal_bastream_destroy(sc->sc_mh, bas->bastream); mwl_bastream_free(bas); tap->txa_private = NULL; } /* NB: firmware sends BAR so we don't need to */ return sc->sc_addba_response(ni, tap, code, baparamset, batimeout); } static void mwl_addba_stop(struct ieee80211_node *ni, struct ieee80211_tx_ampdu *tap) { struct mwl_softc *sc = ni->ni_ic->ic_softc; struct mwl_bastate *bas; bas = tap->txa_private; if (bas != NULL) { DPRINTF(sc, MWL_DEBUG_AMPDU, "%s: destroy bastream %p\n", __func__, bas->bastream); mwl_hal_bastream_destroy(sc->sc_mh, bas->bastream); mwl_bastream_free(bas); tap->txa_private = NULL; } sc->sc_addba_stop(ni, tap); } /* * Setup the rx data structures. This should only be * done once or we may get out of sync with the firmware. */ static int mwl_startrecv(struct mwl_softc *sc) { if (!sc->sc_recvsetup) { struct mwl_rxbuf *bf, *prev; struct mwl_rxdesc *ds; prev = NULL; STAILQ_FOREACH(bf, &sc->sc_rxbuf, bf_list) { int error = mwl_rxbuf_init(sc, bf); if (error != 0) { DPRINTF(sc, MWL_DEBUG_RECV, "%s: mwl_rxbuf_init failed %d\n", __func__, error); return error; } if (prev != NULL) { ds = prev->bf_desc; ds->pPhysNext = htole32(bf->bf_daddr); } prev = bf; } if (prev != NULL) { ds = prev->bf_desc; ds->pPhysNext = htole32(STAILQ_FIRST(&sc->sc_rxbuf)->bf_daddr); } sc->sc_recvsetup = 1; } mwl_mode_init(sc); /* set filters, etc. */ return 0; } static MWL_HAL_APMODE mwl_getapmode(const struct ieee80211vap *vap, struct ieee80211_channel *chan) { MWL_HAL_APMODE mode; if (IEEE80211_IS_CHAN_HT(chan)) { if (vap->iv_flags_ht & IEEE80211_FHT_PUREN) mode = AP_MODE_N_ONLY; else if (IEEE80211_IS_CHAN_5GHZ(chan)) mode = AP_MODE_AandN; else if (vap->iv_flags & IEEE80211_F_PUREG) mode = AP_MODE_GandN; else mode = AP_MODE_BandGandN; } else if (IEEE80211_IS_CHAN_ANYG(chan)) { if (vap->iv_flags & IEEE80211_F_PUREG) mode = AP_MODE_G_ONLY; else mode = AP_MODE_MIXED; } else if (IEEE80211_IS_CHAN_B(chan)) mode = AP_MODE_B_ONLY; else if (IEEE80211_IS_CHAN_A(chan)) mode = AP_MODE_A_ONLY; else mode = AP_MODE_MIXED; /* XXX should not happen? */ return mode; } static int mwl_setapmode(struct ieee80211vap *vap, struct ieee80211_channel *chan) { struct mwl_hal_vap *hvap = MWL_VAP(vap)->mv_hvap; return mwl_hal_setapmode(hvap, mwl_getapmode(vap, chan)); } /* * Set/change channels. */ static int mwl_chan_set(struct mwl_softc *sc, struct ieee80211_channel *chan) { struct mwl_hal *mh = sc->sc_mh; struct ieee80211com *ic = &sc->sc_ic; MWL_HAL_CHANNEL hchan; int maxtxpow; DPRINTF(sc, MWL_DEBUG_RESET, "%s: chan %u MHz/flags 0x%x\n", __func__, chan->ic_freq, chan->ic_flags); /* * Convert to a HAL channel description with * the flags constrained to reflect the current * operating mode. */ mwl_mapchan(&hchan, chan); mwl_hal_intrset(mh, 0); /* disable interrupts */ #if 0 mwl_draintxq(sc); /* clear pending tx frames */ #endif mwl_hal_setchannel(mh, &hchan); /* * Tx power is cap'd by the regulatory setting and * possibly a user-set limit. We pass the min of * these to the hal to apply them to the cal data * for this channel. * XXX min bound? */ maxtxpow = 2*chan->ic_maxregpower; if (maxtxpow > ic->ic_txpowlimit) maxtxpow = ic->ic_txpowlimit; mwl_hal_settxpower(mh, &hchan, maxtxpow / 2); /* NB: potentially change mcast/mgt rates */ mwl_setcurchanrates(sc); /* * Update internal state. */ sc->sc_tx_th.wt_chan_freq = htole16(chan->ic_freq); sc->sc_rx_th.wr_chan_freq = htole16(chan->ic_freq); if (IEEE80211_IS_CHAN_A(chan)) { sc->sc_tx_th.wt_chan_flags = htole16(IEEE80211_CHAN_A); sc->sc_rx_th.wr_chan_flags = htole16(IEEE80211_CHAN_A); } else if (IEEE80211_IS_CHAN_ANYG(chan)) { sc->sc_tx_th.wt_chan_flags = htole16(IEEE80211_CHAN_G); sc->sc_rx_th.wr_chan_flags = htole16(IEEE80211_CHAN_G); } else { sc->sc_tx_th.wt_chan_flags = htole16(IEEE80211_CHAN_B); sc->sc_rx_th.wr_chan_flags = htole16(IEEE80211_CHAN_B); } sc->sc_curchan = hchan; mwl_hal_intrset(mh, sc->sc_imask); return 0; } static void mwl_scan_start(struct ieee80211com *ic) { struct mwl_softc *sc = ic->ic_softc; DPRINTF(sc, MWL_DEBUG_STATE, "%s\n", __func__); } static void mwl_scan_end(struct ieee80211com *ic) { struct mwl_softc *sc = ic->ic_softc; DPRINTF(sc, MWL_DEBUG_STATE, "%s\n", __func__); } static void mwl_set_channel(struct ieee80211com *ic) { struct mwl_softc *sc = ic->ic_softc; (void) mwl_chan_set(sc, ic->ic_curchan); } /* * Handle a channel switch request. We inform the firmware * and mark the global state to suppress various actions. * NB: we issue only one request to the fw; we may be called * multiple times if there are multiple vap's. */ static void mwl_startcsa(struct ieee80211vap *vap) { struct ieee80211com *ic = vap->iv_ic; struct mwl_softc *sc = ic->ic_softc; MWL_HAL_CHANNEL hchan; if (sc->sc_csapending) return; mwl_mapchan(&hchan, ic->ic_csa_newchan); /* 1 =>'s quiet channel */ mwl_hal_setchannelswitchie(sc->sc_mh, &hchan, 1, ic->ic_csa_count); sc->sc_csapending = 1; } /* * Plumb any static WEP key for the station. This is * necessary as we must propagate the key from the * global key table of the vap to each sta db entry. */ static void mwl_setanywepkey(struct ieee80211vap *vap, const uint8_t mac[IEEE80211_ADDR_LEN]) { if ((vap->iv_flags & (IEEE80211_F_PRIVACY|IEEE80211_F_WPA)) == IEEE80211_F_PRIVACY && vap->iv_def_txkey != IEEE80211_KEYIX_NONE && vap->iv_nw_keys[vap->iv_def_txkey].wk_keyix != IEEE80211_KEYIX_NONE) (void) _mwl_key_set(vap, &vap->iv_nw_keys[vap->iv_def_txkey], mac); } static int mwl_peerstadb(struct ieee80211_node *ni, int aid, int staid, MWL_HAL_PEERINFO *pi) { #define WME(ie) ((const struct ieee80211_wme_info *) ie) struct ieee80211vap *vap = ni->ni_vap; struct mwl_hal_vap *hvap; int error; if (vap->iv_opmode == IEEE80211_M_WDS) { /* * WDS vap's do not have a f/w vap; instead they piggyback * on an AP vap and we must install the sta db entry and * crypto state using that AP's handle (the WDS vap has none). */ hvap = MWL_VAP(vap)->mv_ap_hvap; } else hvap = MWL_VAP(vap)->mv_hvap; error = mwl_hal_newstation(hvap, ni->ni_macaddr, aid, staid, pi, ni->ni_flags & (IEEE80211_NODE_QOS | IEEE80211_NODE_HT), ni->ni_ies.wme_ie != NULL ? WME(ni->ni_ies.wme_ie)->wme_info : 0); if (error == 0) { /* * Setup security for this station. For sta mode this is * needed even though do the same thing on transition to * AUTH state because the call to mwl_hal_newstation * clobbers the crypto state we setup. */ mwl_setanywepkey(vap, ni->ni_macaddr); } return error; #undef WME } static void mwl_setglobalkeys(struct ieee80211vap *vap) { struct ieee80211_key *wk; wk = &vap->iv_nw_keys[0]; for (; wk < &vap->iv_nw_keys[IEEE80211_WEP_NKID]; wk++) if (wk->wk_keyix != IEEE80211_KEYIX_NONE) (void) _mwl_key_set(vap, wk, vap->iv_myaddr); } /* * Convert a legacy rate set to a firmware bitmask. */ static uint32_t get_rate_bitmap(const struct ieee80211_rateset *rs) { uint32_t rates; int i; rates = 0; for (i = 0; i < rs->rs_nrates; i++) switch (rs->rs_rates[i] & IEEE80211_RATE_VAL) { case 2: rates |= 0x001; break; case 4: rates |= 0x002; break; case 11: rates |= 0x004; break; case 22: rates |= 0x008; break; case 44: rates |= 0x010; break; case 12: rates |= 0x020; break; case 18: rates |= 0x040; break; case 24: rates |= 0x080; break; case 36: rates |= 0x100; break; case 48: rates |= 0x200; break; case 72: rates |= 0x400; break; case 96: rates |= 0x800; break; case 108: rates |= 0x1000; break; } return rates; } /* * Construct an HT firmware bitmask from an HT rate set. */ static uint32_t get_htrate_bitmap(const struct ieee80211_htrateset *rs) { uint32_t rates; int i; rates = 0; for (i = 0; i < rs->rs_nrates; i++) { if (rs->rs_rates[i] < 16) rates |= 1<rs_rates[i]; } return rates; } /* * Craft station database entry for station. * NB: use host byte order here, the hal handles byte swapping. */ static MWL_HAL_PEERINFO * mkpeerinfo(MWL_HAL_PEERINFO *pi, const struct ieee80211_node *ni) { const struct ieee80211vap *vap = ni->ni_vap; memset(pi, 0, sizeof(*pi)); pi->LegacyRateBitMap = get_rate_bitmap(&ni->ni_rates); pi->CapInfo = ni->ni_capinfo; if (ni->ni_flags & IEEE80211_NODE_HT) { /* HT capabilities, etc */ pi->HTCapabilitiesInfo = ni->ni_htcap; /* XXX pi.HTCapabilitiesInfo */ pi->MacHTParamInfo = ni->ni_htparam; pi->HTRateBitMap = get_htrate_bitmap(&ni->ni_htrates); pi->AddHtInfo.ControlChan = ni->ni_htctlchan; pi->AddHtInfo.AddChan = ni->ni_ht2ndchan; pi->AddHtInfo.OpMode = ni->ni_htopmode; pi->AddHtInfo.stbc = ni->ni_htstbc; /* constrain according to local configuration */ if ((vap->iv_flags_ht & IEEE80211_FHT_SHORTGI40) == 0) pi->HTCapabilitiesInfo &= ~IEEE80211_HTCAP_SHORTGI40; if ((vap->iv_flags_ht & IEEE80211_FHT_SHORTGI20) == 0) pi->HTCapabilitiesInfo &= ~IEEE80211_HTCAP_SHORTGI20; if (ni->ni_chw != 40) pi->HTCapabilitiesInfo &= ~IEEE80211_HTCAP_CHWIDTH40; } return pi; } /* * Re-create the local sta db entry for a vap to ensure * up to date WME state is pushed to the firmware. Because * this resets crypto state this must be followed by a * reload of any keys in the global key table. */ static int mwl_localstadb(struct ieee80211vap *vap) { #define WME(ie) ((const struct ieee80211_wme_info *) ie) struct mwl_hal_vap *hvap = MWL_VAP(vap)->mv_hvap; struct ieee80211_node *bss; MWL_HAL_PEERINFO pi; int error; switch (vap->iv_opmode) { case IEEE80211_M_STA: bss = vap->iv_bss; error = mwl_hal_newstation(hvap, vap->iv_myaddr, 0, 0, vap->iv_state == IEEE80211_S_RUN ? mkpeerinfo(&pi, bss) : NULL, (bss->ni_flags & (IEEE80211_NODE_QOS | IEEE80211_NODE_HT)), bss->ni_ies.wme_ie != NULL ? WME(bss->ni_ies.wme_ie)->wme_info : 0); if (error == 0) mwl_setglobalkeys(vap); break; case IEEE80211_M_HOSTAP: case IEEE80211_M_MBSS: error = mwl_hal_newstation(hvap, vap->iv_myaddr, 0, 0, NULL, vap->iv_flags & IEEE80211_F_WME, 0); if (error == 0) mwl_setglobalkeys(vap); break; default: error = 0; break; } return error; #undef WME } static int mwl_newstate(struct ieee80211vap *vap, enum ieee80211_state nstate, int arg) { struct mwl_vap *mvp = MWL_VAP(vap); struct mwl_hal_vap *hvap = mvp->mv_hvap; struct ieee80211com *ic = vap->iv_ic; struct ieee80211_node *ni = NULL; struct mwl_softc *sc = ic->ic_softc; struct mwl_hal *mh = sc->sc_mh; enum ieee80211_state ostate = vap->iv_state; int error; DPRINTF(sc, MWL_DEBUG_STATE, "%s: %s: %s -> %s\n", vap->iv_ifp->if_xname, __func__, ieee80211_state_name[ostate], ieee80211_state_name[nstate]); callout_stop(&sc->sc_timer); /* * Clear current radar detection state. */ if (ostate == IEEE80211_S_CAC) { /* stop quiet mode radar detection */ mwl_hal_setradardetection(mh, DR_CHK_CHANNEL_AVAILABLE_STOP); } else if (sc->sc_radarena) { /* stop in-service radar detection */ mwl_hal_setradardetection(mh, DR_DFS_DISABLE); sc->sc_radarena = 0; } /* * Carry out per-state actions before doing net80211 work. */ if (nstate == IEEE80211_S_INIT) { /* NB: only ap+sta vap's have a fw entity */ if (hvap != NULL) mwl_hal_stop(hvap); } else if (nstate == IEEE80211_S_SCAN) { mwl_hal_start(hvap); /* NB: this disables beacon frames */ mwl_hal_setinframode(hvap); } else if (nstate == IEEE80211_S_AUTH) { /* * Must create a sta db entry in case a WEP key needs to * be plumbed. This entry will be overwritten if we * associate; otherwise it will be reclaimed on node free. */ ni = vap->iv_bss; MWL_NODE(ni)->mn_hvap = hvap; (void) mwl_peerstadb(ni, 0, 0, NULL); } else if (nstate == IEEE80211_S_CSA) { /* XXX move to below? */ if (vap->iv_opmode == IEEE80211_M_HOSTAP || vap->iv_opmode == IEEE80211_M_MBSS) mwl_startcsa(vap); } else if (nstate == IEEE80211_S_CAC) { /* XXX move to below? */ /* stop ap xmit and enable quiet mode radar detection */ mwl_hal_setradardetection(mh, DR_CHK_CHANNEL_AVAILABLE_START); } /* * Invoke the parent method to do net80211 work. */ error = mvp->mv_newstate(vap, nstate, arg); /* * Carry out work that must be done after net80211 runs; * this work requires up to date state (e.g. iv_bss). */ if (error == 0 && nstate == IEEE80211_S_RUN) { /* NB: collect bss node again, it may have changed */ ni = vap->iv_bss; DPRINTF(sc, MWL_DEBUG_STATE, "%s: %s(RUN): iv_flags 0x%08x bintvl %d bssid %s " "capinfo 0x%04x chan %d\n", vap->iv_ifp->if_xname, __func__, vap->iv_flags, ni->ni_intval, ether_sprintf(ni->ni_bssid), ni->ni_capinfo, ieee80211_chan2ieee(ic, ic->ic_curchan)); /* * Recreate local sta db entry to update WME/HT state. */ mwl_localstadb(vap); switch (vap->iv_opmode) { case IEEE80211_M_HOSTAP: case IEEE80211_M_MBSS: if (ostate == IEEE80211_S_CAC) { /* enable in-service radar detection */ mwl_hal_setradardetection(mh, DR_IN_SERVICE_MONITOR_START); sc->sc_radarena = 1; } /* * Allocate and setup the beacon frame * (and related state). */ error = mwl_reset_vap(vap, IEEE80211_S_RUN); if (error != 0) { DPRINTF(sc, MWL_DEBUG_STATE, "%s: beacon setup failed, error %d\n", __func__, error); goto bad; } /* NB: must be after setting up beacon */ mwl_hal_start(hvap); break; case IEEE80211_M_STA: DPRINTF(sc, MWL_DEBUG_STATE, "%s: %s: aid 0x%x\n", vap->iv_ifp->if_xname, __func__, ni->ni_associd); /* * Set state now that we're associated. */ mwl_hal_setassocid(hvap, ni->ni_bssid, ni->ni_associd); mwl_setrates(vap); mwl_hal_setrtsthreshold(hvap, vap->iv_rtsthreshold); if ((vap->iv_flags & IEEE80211_F_DWDS) && sc->sc_ndwdsvaps++ == 0) mwl_hal_setdwds(mh, 1); break; case IEEE80211_M_WDS: DPRINTF(sc, MWL_DEBUG_STATE, "%s: %s: bssid %s\n", vap->iv_ifp->if_xname, __func__, ether_sprintf(ni->ni_bssid)); mwl_seteapolformat(vap); break; default: break; } /* * Set CS mode according to operating channel; * this mostly an optimization for 5GHz. * * NB: must follow mwl_hal_start which resets csmode */ if (IEEE80211_IS_CHAN_5GHZ(ic->ic_bsschan)) mwl_hal_setcsmode(mh, CSMODE_AGGRESSIVE); else mwl_hal_setcsmode(mh, CSMODE_AUTO_ENA); /* * Start timer to prod firmware. */ if (sc->sc_ageinterval != 0) callout_reset(&sc->sc_timer, sc->sc_ageinterval*hz, mwl_agestations, sc); } else if (nstate == IEEE80211_S_SLEEP) { /* XXX set chip in power save */ } else if ((vap->iv_flags & IEEE80211_F_DWDS) && --sc->sc_ndwdsvaps == 0) mwl_hal_setdwds(mh, 0); bad: return error; } /* * Manage station id's; these are separate from AID's * as AID's may have values out of the range of possible * station id's acceptable to the firmware. */ static int allocstaid(struct mwl_softc *sc, int aid) { int staid; if (!(0 < aid && aid < MWL_MAXSTAID) || isset(sc->sc_staid, aid)) { /* NB: don't use 0 */ for (staid = 1; staid < MWL_MAXSTAID; staid++) if (isclr(sc->sc_staid, staid)) break; } else staid = aid; setbit(sc->sc_staid, staid); return staid; } static void delstaid(struct mwl_softc *sc, int staid) { clrbit(sc->sc_staid, staid); } /* * Setup driver-specific state for a newly associated node. * Note that we're called also on a re-associate, the isnew * param tells us if this is the first time or not. */ static void mwl_newassoc(struct ieee80211_node *ni, int isnew) { struct ieee80211vap *vap = ni->ni_vap; struct mwl_softc *sc = vap->iv_ic->ic_softc; struct mwl_node *mn = MWL_NODE(ni); MWL_HAL_PEERINFO pi; uint16_t aid; int error; aid = IEEE80211_AID(ni->ni_associd); if (isnew) { mn->mn_staid = allocstaid(sc, aid); mn->mn_hvap = MWL_VAP(vap)->mv_hvap; } else { mn = MWL_NODE(ni); /* XXX reset BA stream? */ } DPRINTF(sc, MWL_DEBUG_NODE, "%s: mac %s isnew %d aid %d staid %d\n", __func__, ether_sprintf(ni->ni_macaddr), isnew, aid, mn->mn_staid); error = mwl_peerstadb(ni, aid, mn->mn_staid, mkpeerinfo(&pi, ni)); if (error != 0) { DPRINTF(sc, MWL_DEBUG_NODE, "%s: error %d creating sta db entry\n", __func__, error); /* XXX how to deal with error? */ } } /* * Periodically poke the firmware to age out station state * (power save queues, pending tx aggregates). */ static void mwl_agestations(void *arg) { struct mwl_softc *sc = arg; mwl_hal_setkeepalive(sc->sc_mh); if (sc->sc_ageinterval != 0) /* NB: catch dynamic changes */ callout_schedule(&sc->sc_timer, sc->sc_ageinterval*hz); } static const struct mwl_hal_channel * findhalchannel(const MWL_HAL_CHANNELINFO *ci, int ieee) { int i; for (i = 0; i < ci->nchannels; i++) { const struct mwl_hal_channel *hc = &ci->channels[i]; if (hc->ieee == ieee) return hc; } return NULL; } static int mwl_setregdomain(struct ieee80211com *ic, struct ieee80211_regdomain *rd, int nchan, struct ieee80211_channel chans[]) { struct mwl_softc *sc = ic->ic_softc; struct mwl_hal *mh = sc->sc_mh; const MWL_HAL_CHANNELINFO *ci; int i; for (i = 0; i < nchan; i++) { struct ieee80211_channel *c = &chans[i]; const struct mwl_hal_channel *hc; if (IEEE80211_IS_CHAN_2GHZ(c)) { mwl_hal_getchannelinfo(mh, MWL_FREQ_BAND_2DOT4GHZ, IEEE80211_IS_CHAN_HT40(c) ? MWL_CH_40_MHz_WIDTH : MWL_CH_20_MHz_WIDTH, &ci); } else if (IEEE80211_IS_CHAN_5GHZ(c)) { mwl_hal_getchannelinfo(mh, MWL_FREQ_BAND_5GHZ, IEEE80211_IS_CHAN_HT40(c) ? MWL_CH_40_MHz_WIDTH : MWL_CH_20_MHz_WIDTH, &ci); } else { device_printf(sc->sc_dev, "%s: channel %u freq %u/0x%x not 2.4/5GHz\n", __func__, c->ic_ieee, c->ic_freq, c->ic_flags); return EINVAL; } /* * Verify channel has cal data and cap tx power. */ hc = findhalchannel(ci, c->ic_ieee); if (hc != NULL) { if (c->ic_maxpower > 2*hc->maxTxPow) c->ic_maxpower = 2*hc->maxTxPow; goto next; } if (IEEE80211_IS_CHAN_HT40(c)) { /* * Look for the extension channel since the * hal table only has the primary channel. */ hc = findhalchannel(ci, c->ic_extieee); if (hc != NULL) { if (c->ic_maxpower > 2*hc->maxTxPow) c->ic_maxpower = 2*hc->maxTxPow; goto next; } } device_printf(sc->sc_dev, "%s: no cal data for channel %u ext %u freq %u/0x%x\n", __func__, c->ic_ieee, c->ic_extieee, c->ic_freq, c->ic_flags); return EINVAL; next: ; } return 0; } #define IEEE80211_CHAN_HTG (IEEE80211_CHAN_HT|IEEE80211_CHAN_G) #define IEEE80211_CHAN_HTA (IEEE80211_CHAN_HT|IEEE80211_CHAN_A) static void addht40channels(struct ieee80211_channel chans[], int maxchans, int *nchans, const MWL_HAL_CHANNELINFO *ci, int flags) { int i, error; for (i = 0; i < ci->nchannels; i++) { const struct mwl_hal_channel *hc = &ci->channels[i]; error = ieee80211_add_channel_ht40(chans, maxchans, nchans, hc->ieee, hc->maxTxPow, flags); if (error != 0 && error != ENOENT) break; } } static void addchannels(struct ieee80211_channel chans[], int maxchans, int *nchans, const MWL_HAL_CHANNELINFO *ci, const uint8_t bands[]) { int i, error; error = 0; for (i = 0; i < ci->nchannels && error == 0; i++) { const struct mwl_hal_channel *hc = &ci->channels[i]; error = ieee80211_add_channel(chans, maxchans, nchans, hc->ieee, hc->freq, hc->maxTxPow, 0, bands); } } static void getchannels(struct mwl_softc *sc, int maxchans, int *nchans, struct ieee80211_channel chans[]) { const MWL_HAL_CHANNELINFO *ci; uint8_t bands[IEEE80211_MODE_BYTES]; /* * Use the channel info from the hal to craft the * channel list. Note that we pass back an unsorted * list; the caller is required to sort it for us * (if desired). */ *nchans = 0; if (mwl_hal_getchannelinfo(sc->sc_mh, MWL_FREQ_BAND_2DOT4GHZ, MWL_CH_20_MHz_WIDTH, &ci) == 0) { memset(bands, 0, sizeof(bands)); setbit(bands, IEEE80211_MODE_11B); setbit(bands, IEEE80211_MODE_11G); setbit(bands, IEEE80211_MODE_11NG); addchannels(chans, maxchans, nchans, ci, bands); } if (mwl_hal_getchannelinfo(sc->sc_mh, MWL_FREQ_BAND_5GHZ, MWL_CH_20_MHz_WIDTH, &ci) == 0) { memset(bands, 0, sizeof(bands)); setbit(bands, IEEE80211_MODE_11A); setbit(bands, IEEE80211_MODE_11NA); addchannels(chans, maxchans, nchans, ci, bands); } if (mwl_hal_getchannelinfo(sc->sc_mh, MWL_FREQ_BAND_2DOT4GHZ, MWL_CH_40_MHz_WIDTH, &ci) == 0) addht40channels(chans, maxchans, nchans, ci, IEEE80211_CHAN_HTG); if (mwl_hal_getchannelinfo(sc->sc_mh, MWL_FREQ_BAND_5GHZ, MWL_CH_40_MHz_WIDTH, &ci) == 0) addht40channels(chans, maxchans, nchans, ci, IEEE80211_CHAN_HTA); } static void mwl_getradiocaps(struct ieee80211com *ic, int maxchans, int *nchans, struct ieee80211_channel chans[]) { struct mwl_softc *sc = ic->ic_softc; getchannels(sc, maxchans, nchans, chans); } static int mwl_getchannels(struct mwl_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; /* * Use the channel info from the hal to craft the * channel list for net80211. Note that we pass up * an unsorted list; net80211 will sort it for us. */ memset(ic->ic_channels, 0, sizeof(ic->ic_channels)); ic->ic_nchans = 0; getchannels(sc, IEEE80211_CHAN_MAX, &ic->ic_nchans, ic->ic_channels); ic->ic_regdomain.regdomain = SKU_DEBUG; ic->ic_regdomain.country = CTRY_DEFAULT; ic->ic_regdomain.location = 'I'; ic->ic_regdomain.isocc[0] = ' '; /* XXX? */ ic->ic_regdomain.isocc[1] = ' '; return (ic->ic_nchans == 0 ? EIO : 0); } #undef IEEE80211_CHAN_HTA #undef IEEE80211_CHAN_HTG #ifdef MWL_DEBUG static void mwl_printrxbuf(const struct mwl_rxbuf *bf, u_int ix) { const struct mwl_rxdesc *ds = bf->bf_desc; uint32_t status = le32toh(ds->Status); printf("R[%2u] (DS.V:%p DS.P:0x%jx) NEXT:%08x DATA:%08x RC:%02x%s\n" " STAT:%02x LEN:%04x RSSI:%02x CHAN:%02x RATE:%02x QOS:%04x HT:%04x\n", ix, ds, (uintmax_t)bf->bf_daddr, le32toh(ds->pPhysNext), le32toh(ds->pPhysBuffData), ds->RxControl, ds->RxControl != EAGLE_RXD_CTRL_DRIVER_OWN ? "" : (status & EAGLE_RXD_STATUS_OK) ? " *" : " !", ds->Status, le16toh(ds->PktLen), ds->RSSI, ds->Channel, ds->Rate, le16toh(ds->QosCtrl), le16toh(ds->HtSig2)); } static void mwl_printtxbuf(const struct mwl_txbuf *bf, u_int qnum, u_int ix) { const struct mwl_txdesc *ds = bf->bf_desc; uint32_t status = le32toh(ds->Status); printf("Q%u[%3u]", qnum, ix); printf(" (DS.V:%p DS.P:0x%jx)\n", ds, (uintmax_t)bf->bf_daddr); printf(" NEXT:%08x DATA:%08x LEN:%04x STAT:%08x%s\n", le32toh(ds->pPhysNext), le32toh(ds->PktPtr), le16toh(ds->PktLen), status, status & EAGLE_TXD_STATUS_USED ? "" : (status & 3) != 0 ? " *" : " !"); printf(" RATE:%02x PRI:%x QOS:%04x SAP:%08x FORMAT:%04x\n", ds->DataRate, ds->TxPriority, le16toh(ds->QosCtrl), le32toh(ds->SapPktInfo), le16toh(ds->Format)); #if MWL_TXDESC > 1 printf(" MULTIFRAMES:%u LEN:%04x %04x %04x %04x %04x %04x\n" , le32toh(ds->multiframes) , le16toh(ds->PktLenArray[0]), le16toh(ds->PktLenArray[1]) , le16toh(ds->PktLenArray[2]), le16toh(ds->PktLenArray[3]) , le16toh(ds->PktLenArray[4]), le16toh(ds->PktLenArray[5]) ); printf(" DATA:%08x %08x %08x %08x %08x %08x\n" , le32toh(ds->PktPtrArray[0]), le32toh(ds->PktPtrArray[1]) , le32toh(ds->PktPtrArray[2]), le32toh(ds->PktPtrArray[3]) , le32toh(ds->PktPtrArray[4]), le32toh(ds->PktPtrArray[5]) ); #endif #if 0 { const uint8_t *cp = (const uint8_t *) ds; int i; for (i = 0; i < sizeof(struct mwl_txdesc); i++) { printf("%02x ", cp[i]); if (((i+1) % 16) == 0) printf("\n"); } printf("\n"); } #endif } #endif /* MWL_DEBUG */ #if 0 static void mwl_txq_dump(struct mwl_txq *txq) { struct mwl_txbuf *bf; int i = 0; MWL_TXQ_LOCK(txq); STAILQ_FOREACH(bf, &txq->active, bf_list) { struct mwl_txdesc *ds = bf->bf_desc; MWL_TXDESC_SYNC(txq, ds, BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE); #ifdef MWL_DEBUG mwl_printtxbuf(bf, txq->qnum, i); #endif i++; } MWL_TXQ_UNLOCK(txq); } #endif static void mwl_watchdog(void *arg) { struct mwl_softc *sc = arg; callout_reset(&sc->sc_watchdog, hz, mwl_watchdog, sc); if (sc->sc_tx_timer == 0 || --sc->sc_tx_timer > 0) return; if (sc->sc_running && !sc->sc_invalid) { if (mwl_hal_setkeepalive(sc->sc_mh)) device_printf(sc->sc_dev, "transmit timeout (firmware hung?)\n"); else device_printf(sc->sc_dev, "transmit timeout\n"); #if 0 mwl_reset(sc); mwl_txq_dump(&sc->sc_txq[0]);/*XXX*/ #endif counter_u64_add(sc->sc_ic.ic_oerrors, 1); sc->sc_stats.mst_watchdog++; } } #ifdef MWL_DIAGAPI /* * Diagnostic interface to the HAL. This is used by various * tools to do things like retrieve register contents for * debugging. The mechanism is intentionally opaque so that * it can change frequently w/o concern for compatibility. */ static int mwl_ioctl_diag(struct mwl_softc *sc, struct mwl_diag *md) { struct mwl_hal *mh = sc->sc_mh; u_int id = md->md_id & MWL_DIAG_ID; void *indata = NULL; void *outdata = NULL; u_int32_t insize = md->md_in_size; u_int32_t outsize = md->md_out_size; int error = 0; if (md->md_id & MWL_DIAG_IN) { /* * Copy in data. */ indata = malloc(insize, M_TEMP, M_NOWAIT); if (indata == NULL) { error = ENOMEM; goto bad; } error = copyin(md->md_in_data, indata, insize); if (error) goto bad; } if (md->md_id & MWL_DIAG_DYN) { /* * Allocate a buffer for the results (otherwise the HAL * returns a pointer to a buffer where we can read the * results). Note that we depend on the HAL leaving this * pointer for us to use below in reclaiming the buffer; * may want to be more defensive. */ outdata = malloc(outsize, M_TEMP, M_NOWAIT); if (outdata == NULL) { error = ENOMEM; goto bad; } } if (mwl_hal_getdiagstate(mh, id, indata, insize, &outdata, &outsize)) { if (outsize < md->md_out_size) md->md_out_size = outsize; if (outdata != NULL) error = copyout(outdata, md->md_out_data, md->md_out_size); } else { error = EINVAL; } bad: if ((md->md_id & MWL_DIAG_IN) && indata != NULL) free(indata, M_TEMP); if ((md->md_id & MWL_DIAG_DYN) && outdata != NULL) free(outdata, M_TEMP); return error; } static int mwl_ioctl_reset(struct mwl_softc *sc, struct mwl_diag *md) { struct mwl_hal *mh = sc->sc_mh; int error; MWL_LOCK_ASSERT(sc); if (md->md_id == 0 && mwl_hal_fwload(mh, NULL) != 0) { device_printf(sc->sc_dev, "unable to load firmware\n"); return EIO; } if (mwl_hal_gethwspecs(mh, &sc->sc_hwspecs) != 0) { device_printf(sc->sc_dev, "unable to fetch h/w specs\n"); return EIO; } error = mwl_setupdma(sc); if (error != 0) { /* NB: mwl_setupdma prints a msg */ return error; } /* * Reset tx/rx data structures; after reload we must * re-start the driver's notion of the next xmit/recv. */ mwl_draintxq(sc); /* clear pending frames */ mwl_resettxq(sc); /* rebuild tx q lists */ sc->sc_rxnext = NULL; /* force rx to start at the list head */ return 0; } #endif /* MWL_DIAGAPI */ static void mwl_parent(struct ieee80211com *ic) { struct mwl_softc *sc = ic->ic_softc; int startall = 0; MWL_LOCK(sc); if (ic->ic_nrunning > 0) { if (sc->sc_running) { /* * To avoid rescanning another access point, * do not call mwl_init() here. Instead, * only reflect promisc mode settings. */ mwl_mode_init(sc); } else { /* * Beware of being called during attach/detach * to reset promiscuous mode. In that case we * will still be marked UP but not RUNNING. * However trying to re-init the interface * is the wrong thing to do as we've already * torn down much of our state. There's * probably a better way to deal with this. */ if (!sc->sc_invalid) { mwl_init(sc); /* XXX lose error */ startall = 1; } } } else mwl_stop(sc); MWL_UNLOCK(sc); if (startall) ieee80211_start_all(ic); } static int mwl_ioctl(struct ieee80211com *ic, u_long cmd, void *data) { struct mwl_softc *sc = ic->ic_softc; struct ifreq *ifr = data; int error = 0; switch (cmd) { case SIOCGMVSTATS: mwl_hal_gethwstats(sc->sc_mh, &sc->sc_stats.hw_stats); #if 0 /* NB: embed these numbers to get a consistent view */ sc->sc_stats.mst_tx_packets = ifp->if_get_counter(ifp, IFCOUNTER_OPACKETS); sc->sc_stats.mst_rx_packets = ifp->if_get_counter(ifp, IFCOUNTER_IPACKETS); #endif /* * NB: Drop the softc lock in case of a page fault; * we'll accept any potential inconsisentcy in the * statistics. The alternative is to copy the data * to a local structure. */ return (copyout(&sc->sc_stats, ifr_data_get_ptr(ifr), sizeof (sc->sc_stats))); #ifdef MWL_DIAGAPI case SIOCGMVDIAG: /* XXX check privs */ return mwl_ioctl_diag(sc, (struct mwl_diag *) ifr); case SIOCGMVRESET: /* XXX check privs */ MWL_LOCK(sc); error = mwl_ioctl_reset(sc,(struct mwl_diag *) ifr); MWL_UNLOCK(sc); break; #endif /* MWL_DIAGAPI */ default: error = ENOTTY; break; } return (error); } #ifdef MWL_DEBUG static int mwl_sysctl_debug(SYSCTL_HANDLER_ARGS) { struct mwl_softc *sc = arg1; int debug, error; debug = sc->sc_debug | (mwl_hal_getdebug(sc->sc_mh) << 24); error = sysctl_handle_int(oidp, &debug, 0, req); if (error || !req->newptr) return error; mwl_hal_setdebug(sc->sc_mh, debug >> 24); sc->sc_debug = debug & 0x00ffffff; return 0; } #endif /* MWL_DEBUG */ static void mwl_sysctlattach(struct mwl_softc *sc) { #ifdef MWL_DEBUG struct sysctl_ctx_list *ctx = device_get_sysctl_ctx(sc->sc_dev); struct sysctl_oid *tree = device_get_sysctl_tree(sc->sc_dev); sc->sc_debug = mwl_debug; SYSCTL_ADD_PROC(ctx, SYSCTL_CHILDREN(tree), OID_AUTO, "debug", CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT, sc, 0, mwl_sysctl_debug, "I", "control debugging printfs"); #endif } /* * Announce various information on device/driver attach. */ static void mwl_announce(struct mwl_softc *sc) { device_printf(sc->sc_dev, "Rev A%d hardware, v%d.%d.%d.%d firmware (regioncode %d)\n", sc->sc_hwspecs.hwVersion, (sc->sc_hwspecs.fwReleaseNumber>>24) & 0xff, (sc->sc_hwspecs.fwReleaseNumber>>16) & 0xff, (sc->sc_hwspecs.fwReleaseNumber>>8) & 0xff, (sc->sc_hwspecs.fwReleaseNumber>>0) & 0xff, sc->sc_hwspecs.regionCode); sc->sc_fwrelease = sc->sc_hwspecs.fwReleaseNumber; if (bootverbose) { int i; for (i = 0; i <= WME_AC_VO; i++) { struct mwl_txq *txq = sc->sc_ac2q[i]; device_printf(sc->sc_dev, "Use hw queue %u for %s traffic\n", txq->qnum, ieee80211_wme_acnames[i]); } } if (bootverbose || mwl_rxdesc != MWL_RXDESC) device_printf(sc->sc_dev, "using %u rx descriptors\n", mwl_rxdesc); if (bootverbose || mwl_rxbuf != MWL_RXBUF) device_printf(sc->sc_dev, "using %u rx buffers\n", mwl_rxbuf); if (bootverbose || mwl_txbuf != MWL_TXBUF) device_printf(sc->sc_dev, "using %u tx buffers\n", mwl_txbuf); if (bootverbose && mwl_hal_ismbsscapable(sc->sc_mh)) device_printf(sc->sc_dev, "multi-bss support\n"); #ifdef MWL_TX_NODROP if (bootverbose) device_printf(sc->sc_dev, "no tx drop\n"); #endif } Index: head/sys/dev/otus/if_otus.c =================================================================== --- head/sys/dev/otus/if_otus.c (revision 365418) +++ head/sys/dev/otus/if_otus.c (revision 365419) @@ -1,3350 +1,3320 @@ /* $OpenBSD: if_otus.c,v 1.49 2015/11/24 13:33:18 mpi Exp $ */ /*- * Copyright (c) 2009 Damien Bergamini * Copyright (c) 2015 Adrian Chadd * * Permission to use, copy, modify, and distribute this software for any * purpose with or without fee is hereby granted, provided that the above * copyright notice and this permission notice appear in all copies. * * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. */ /* * Driver for Atheros AR9001U chipset. */ #include __FBSDID("$FreeBSD$"); #include "opt_wlan.h" #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #ifdef IEEE80211_SUPPORT_SUPERG #include #endif #include #include #include "usbdevs.h" #define USB_DEBUG_VAR otus_debug #include #include "if_otusreg.h" static int otus_debug = 0; static SYSCTL_NODE(_hw_usb, OID_AUTO, otus, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, "USB otus"); SYSCTL_INT(_hw_usb_otus, OID_AUTO, debug, CTLFLAG_RWTUN, &otus_debug, 0, "Debug level"); #define OTUS_DEBUG_XMIT 0x00000001 #define OTUS_DEBUG_RECV 0x00000002 #define OTUS_DEBUG_TXDONE 0x00000004 #define OTUS_DEBUG_RXDONE 0x00000008 #define OTUS_DEBUG_CMD 0x00000010 #define OTUS_DEBUG_CMDDONE 0x00000020 #define OTUS_DEBUG_RESET 0x00000040 #define OTUS_DEBUG_STATE 0x00000080 #define OTUS_DEBUG_CMDNOTIFY 0x00000100 #define OTUS_DEBUG_REGIO 0x00000200 #define OTUS_DEBUG_IRQ 0x00000400 #define OTUS_DEBUG_TXCOMP 0x00000800 #define OTUS_DEBUG_RX_BUFFER 0x00001000 #define OTUS_DEBUG_ANY 0xffffffff #define OTUS_DPRINTF(sc, dm, ...) \ do { \ if ((dm == OTUS_DEBUG_ANY) || (dm & otus_debug)) \ device_printf(sc->sc_dev, __VA_ARGS__); \ } while (0) #define OTUS_DEV(v, p) { USB_VPI(v, p, 0) } static const STRUCT_USB_HOST_ID otus_devs[] = { OTUS_DEV(USB_VENDOR_ACCTON, USB_PRODUCT_ACCTON_WN7512), OTUS_DEV(USB_VENDOR_ATHEROS2, USB_PRODUCT_ATHEROS2_3CRUSBN275), OTUS_DEV(USB_VENDOR_ATHEROS2, USB_PRODUCT_ATHEROS2_TG121N), OTUS_DEV(USB_VENDOR_ATHEROS2, USB_PRODUCT_ATHEROS2_AR9170), OTUS_DEV(USB_VENDOR_ATHEROS2, USB_PRODUCT_ATHEROS2_WN612), OTUS_DEV(USB_VENDOR_ATHEROS2, USB_PRODUCT_ATHEROS2_WN821NV2), OTUS_DEV(USB_VENDOR_AVM, USB_PRODUCT_AVM_FRITZWLAN), OTUS_DEV(USB_VENDOR_CACE, USB_PRODUCT_CACE_AIRPCAPNX), OTUS_DEV(USB_VENDOR_DLINK2, USB_PRODUCT_DLINK2_DWA130D1), OTUS_DEV(USB_VENDOR_DLINK2, USB_PRODUCT_DLINK2_DWA160A1), OTUS_DEV(USB_VENDOR_DLINK2, USB_PRODUCT_DLINK2_DWA160A2), OTUS_DEV(USB_VENDOR_IODATA, USB_PRODUCT_IODATA_WNGDNUS2), OTUS_DEV(USB_VENDOR_NEC, USB_PRODUCT_NEC_WL300NUG), OTUS_DEV(USB_VENDOR_NETGEAR, USB_PRODUCT_NETGEAR_WN111V2), OTUS_DEV(USB_VENDOR_NETGEAR, USB_PRODUCT_NETGEAR_WNA1000), OTUS_DEV(USB_VENDOR_NETGEAR, USB_PRODUCT_NETGEAR_WNDA3100), OTUS_DEV(USB_VENDOR_PLANEX2, USB_PRODUCT_PLANEX2_GW_US300), OTUS_DEV(USB_VENDOR_WISTRONNEWEB, USB_PRODUCT_WISTRONNEWEB_O8494), OTUS_DEV(USB_VENDOR_WISTRONNEWEB, USB_PRODUCT_WISTRONNEWEB_WNC0600), OTUS_DEV(USB_VENDOR_ZCOM, USB_PRODUCT_ZCOM_UB81), OTUS_DEV(USB_VENDOR_ZCOM, USB_PRODUCT_ZCOM_UB82), OTUS_DEV(USB_VENDOR_ZYDAS, USB_PRODUCT_ZYDAS_ZD1221), OTUS_DEV(USB_VENDOR_ZYXEL, USB_PRODUCT_ZYXEL_NWD271N), }; static device_probe_t otus_match; static device_attach_t otus_attach; static device_detach_t otus_detach; static int otus_attachhook(struct otus_softc *); static void otus_getradiocaps(struct ieee80211com *, int, int *, struct ieee80211_channel[]); int otus_load_firmware(struct otus_softc *, const char *, uint32_t); int otus_open_pipes(struct otus_softc *); void otus_close_pipes(struct otus_softc *); static int otus_alloc_tx_cmd_list(struct otus_softc *); static void otus_free_tx_cmd_list(struct otus_softc *); static int otus_alloc_rx_list(struct otus_softc *); static void otus_free_rx_list(struct otus_softc *); static int otus_alloc_tx_list(struct otus_softc *); static void otus_free_tx_list(struct otus_softc *); static void otus_free_list(struct otus_softc *, struct otus_data [], int); static struct otus_data *_otus_getbuf(struct otus_softc *); static struct otus_data *otus_getbuf(struct otus_softc *); static void otus_freebuf(struct otus_softc *, struct otus_data *); static struct otus_tx_cmd *_otus_get_txcmd(struct otus_softc *); static struct otus_tx_cmd *otus_get_txcmd(struct otus_softc *); static void otus_free_txcmd(struct otus_softc *, struct otus_tx_cmd *); void otus_next_scan(void *, int); static void otus_tx_task(void *, int pending); void otus_do_async(struct otus_softc *, void (*)(struct otus_softc *, void *), void *, int); int otus_newstate(struct ieee80211vap *, enum ieee80211_state, int); int otus_cmd(struct otus_softc *, uint8_t, const void *, int, void *, int); void otus_write(struct otus_softc *, uint32_t, uint32_t); int otus_write_barrier(struct otus_softc *); static struct ieee80211_node *otus_node_alloc(struct ieee80211vap *vap, const uint8_t mac[IEEE80211_ADDR_LEN]); -int otus_media_change(struct ifnet *); int otus_read_eeprom(struct otus_softc *); void otus_newassoc(struct ieee80211_node *, int); void otus_cmd_rxeof(struct otus_softc *, uint8_t *, int); void otus_sub_rxeof(struct otus_softc *, uint8_t *, int, struct mbufq *); static int otus_tx(struct otus_softc *, struct ieee80211_node *, struct mbuf *, struct otus_data *, const struct ieee80211_bpf_params *); int otus_ioctl(struct ifnet *, u_long, caddr_t); int otus_set_multi(struct otus_softc *); static int otus_updateedca(struct ieee80211com *); static void otus_updateedca_locked(struct otus_softc *); static void otus_updateslot(struct otus_softc *); static void otus_set_operating_mode(struct otus_softc *sc); static void otus_set_rx_filter(struct otus_softc *sc); int otus_init_mac(struct otus_softc *); uint32_t otus_phy_get_def(struct otus_softc *, uint32_t); int otus_set_board_values(struct otus_softc *, struct ieee80211_channel *); int otus_program_phy(struct otus_softc *, struct ieee80211_channel *); int otus_set_rf_bank4(struct otus_softc *, struct ieee80211_channel *); void otus_get_delta_slope(uint32_t, uint32_t *, uint32_t *); static int otus_set_chan(struct otus_softc *, struct ieee80211_channel *, int); int otus_set_key(struct ieee80211com *, struct ieee80211_node *, struct ieee80211_key *); void otus_set_key_cb(struct otus_softc *, void *); void otus_delete_key(struct ieee80211com *, struct ieee80211_node *, struct ieee80211_key *); void otus_delete_key_cb(struct otus_softc *, void *); void otus_calibrate_to(void *, int); int otus_set_bssid(struct otus_softc *, const uint8_t *); int otus_set_macaddr(struct otus_softc *, const uint8_t *); void otus_led_newstate_type1(struct otus_softc *); void otus_led_newstate_type2(struct otus_softc *); void otus_led_newstate_type3(struct otus_softc *); int otus_init(struct otus_softc *sc); void otus_stop(struct otus_softc *sc); static device_method_t otus_methods[] = { DEVMETHOD(device_probe, otus_match), DEVMETHOD(device_attach, otus_attach), DEVMETHOD(device_detach, otus_detach), DEVMETHOD_END }; static driver_t otus_driver = { .name = "otus", .methods = otus_methods, .size = sizeof(struct otus_softc) }; static devclass_t otus_devclass; DRIVER_MODULE(otus, uhub, otus_driver, otus_devclass, NULL, 0); MODULE_DEPEND(otus, wlan, 1, 1, 1); MODULE_DEPEND(otus, usb, 1, 1, 1); MODULE_DEPEND(otus, firmware, 1, 1, 1); MODULE_VERSION(otus, 1); static usb_callback_t otus_bulk_tx_callback; static usb_callback_t otus_bulk_rx_callback; static usb_callback_t otus_bulk_irq_callback; static usb_callback_t otus_bulk_cmd_callback; static const struct usb_config otus_config[OTUS_N_XFER] = { [OTUS_BULK_TX] = { .type = UE_BULK, .endpoint = UE_ADDR_ANY, .direction = UE_DIR_OUT, .bufsize = 0x200, .flags = {.pipe_bof = 1,.force_short_xfer = 1,}, .callback = otus_bulk_tx_callback, .timeout = 5000, /* ms */ }, [OTUS_BULK_RX] = { .type = UE_BULK, .endpoint = UE_ADDR_ANY, .direction = UE_DIR_IN, .bufsize = OTUS_RXBUFSZ, .flags = { .ext_buffer = 1, .pipe_bof = 1,.short_xfer_ok = 1,}, .callback = otus_bulk_rx_callback, }, [OTUS_BULK_IRQ] = { .type = UE_INTERRUPT, .endpoint = UE_ADDR_ANY, .direction = UE_DIR_IN, .bufsize = OTUS_MAX_CTRLSZ, .flags = {.pipe_bof = 1,.short_xfer_ok = 1,}, .callback = otus_bulk_irq_callback, }, [OTUS_BULK_CMD] = { .type = UE_INTERRUPT, .endpoint = UE_ADDR_ANY, .direction = UE_DIR_OUT, .bufsize = OTUS_MAX_CTRLSZ, .flags = {.pipe_bof = 1,.force_short_xfer = 1,}, .callback = otus_bulk_cmd_callback, .timeout = 5000, /* ms */ }, }; static int otus_match(device_t self) { struct usb_attach_arg *uaa = device_get_ivars(self); if (uaa->usb_mode != USB_MODE_HOST || uaa->info.bIfaceIndex != 0 || uaa->info.bConfigIndex != 0) return (ENXIO); return (usbd_lookup_id_by_uaa(otus_devs, sizeof(otus_devs), uaa)); } static int otus_attach(device_t self) { struct usb_attach_arg *uaa = device_get_ivars(self); struct otus_softc *sc = device_get_softc(self); int error; uint8_t iface_index; device_set_usb_desc(self); sc->sc_udev = uaa->device; sc->sc_dev = self; mtx_init(&sc->sc_mtx, device_get_nameunit(self), MTX_NETWORK_LOCK, MTX_DEF); TIMEOUT_TASK_INIT(taskqueue_thread, &sc->scan_to, 0, otus_next_scan, sc); TIMEOUT_TASK_INIT(taskqueue_thread, &sc->calib_to, 0, otus_calibrate_to, sc); TASK_INIT(&sc->tx_task, 0, otus_tx_task, sc); mbufq_init(&sc->sc_snd, ifqmaxlen); iface_index = 0; error = usbd_transfer_setup(uaa->device, &iface_index, sc->sc_xfer, otus_config, OTUS_N_XFER, sc, &sc->sc_mtx); if (error) { device_printf(sc->sc_dev, "could not allocate USB transfers, err=%s\n", usbd_errstr(error)); goto fail_usb; } if ((error = otus_open_pipes(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not open pipes\n", __func__); goto fail; } /* XXX check return status; fail out if appropriate */ if (otus_attachhook(sc) != 0) goto fail; return (0); fail: otus_close_pipes(sc); fail_usb: mtx_destroy(&sc->sc_mtx); return (ENXIO); } static int otus_detach(device_t self) { struct otus_softc *sc = device_get_softc(self); struct ieee80211com *ic = &sc->sc_ic; otus_stop(sc); usbd_transfer_unsetup(sc->sc_xfer, OTUS_N_XFER); taskqueue_drain_timeout(taskqueue_thread, &sc->scan_to); taskqueue_drain_timeout(taskqueue_thread, &sc->calib_to); taskqueue_drain(taskqueue_thread, &sc->tx_task); otus_close_pipes(sc); #if 0 /* Wait for all queued asynchronous commands to complete. */ usb_rem_wait_task(sc->sc_udev, &sc->sc_task); usbd_ref_wait(sc->sc_udev); #endif ieee80211_ifdetach(ic); mtx_destroy(&sc->sc_mtx); return 0; } static void otus_delay_ms(struct otus_softc *sc, int ms) { DELAY(1000 * ms); } static struct ieee80211vap * otus_vap_create(struct ieee80211com *ic, const char name[IFNAMSIZ], int unit, enum ieee80211_opmode opmode, int flags, const uint8_t bssid[IEEE80211_ADDR_LEN], const uint8_t mac[IEEE80211_ADDR_LEN]) { struct otus_vap *uvp; struct ieee80211vap *vap; if (!TAILQ_EMPTY(&ic->ic_vaps)) /* only one at a time */ return (NULL); uvp = malloc(sizeof(struct otus_vap), M_80211_VAP, M_WAITOK | M_ZERO); vap = &uvp->vap; if (ieee80211_vap_setup(ic, vap, name, unit, opmode, flags, bssid) != 0) { /* out of memory */ free(uvp, M_80211_VAP); return (NULL); } /* override state transition machine */ uvp->newstate = vap->iv_newstate; vap->iv_newstate = otus_newstate; vap->iv_ampdu_density = IEEE80211_HTCAP_MPDUDENSITY_8; vap->iv_ampdu_rxmax = IEEE80211_HTCAP_MAXRXAMPDU_64K; ieee80211_ratectl_init(vap); /* complete setup */ ieee80211_vap_attach(vap, ieee80211_media_change, ieee80211_media_status, mac); ic->ic_opmode = opmode; return (vap); } static void otus_vap_delete(struct ieee80211vap *vap) { struct otus_vap *uvp = OTUS_VAP(vap); ieee80211_ratectl_deinit(vap); ieee80211_vap_detach(vap); free(uvp, M_80211_VAP); } static void otus_parent(struct ieee80211com *ic) { struct otus_softc *sc = ic->ic_softc; int startall = 0; if (ic->ic_nrunning > 0) { if (!sc->sc_running) { otus_init(sc); startall = 1; } else { (void) otus_set_multi(sc); } } else if (sc->sc_running) otus_stop(sc); if (startall) ieee80211_start_all(ic); } static void otus_drain_mbufq(struct otus_softc *sc) { struct mbuf *m; struct ieee80211_node *ni; OTUS_LOCK_ASSERT(sc); while ((m = mbufq_dequeue(&sc->sc_snd)) != NULL) { ni = (struct ieee80211_node *) m->m_pkthdr.rcvif; m->m_pkthdr.rcvif = NULL; ieee80211_free_node(ni); m_freem(m); } } static void otus_tx_start(struct otus_softc *sc) { taskqueue_enqueue(taskqueue_thread, &sc->tx_task); } static int otus_transmit(struct ieee80211com *ic, struct mbuf *m) { struct otus_softc *sc = ic->ic_softc; int error; OTUS_LOCK(sc); if (! sc->sc_running) { OTUS_UNLOCK(sc); return (ENXIO); } /* XXX TODO: handle fragments */ error = mbufq_enqueue(&sc->sc_snd, m); if (error) { OTUS_DPRINTF(sc, OTUS_DEBUG_XMIT, "%s: mbufq_enqueue failed: %d\n", __func__, error); OTUS_UNLOCK(sc); return (error); } OTUS_UNLOCK(sc); /* Kick TX */ otus_tx_start(sc); return (0); } static void _otus_start(struct otus_softc *sc) { struct ieee80211_node *ni; struct otus_data *bf; struct mbuf *m; OTUS_LOCK_ASSERT(sc); while ((m = mbufq_dequeue(&sc->sc_snd)) != NULL) { bf = otus_getbuf(sc); if (bf == NULL) { OTUS_DPRINTF(sc, OTUS_DEBUG_XMIT, "%s: failed to get buffer\n", __func__); mbufq_prepend(&sc->sc_snd, m); break; } ni = (struct ieee80211_node *)m->m_pkthdr.rcvif; m->m_pkthdr.rcvif = NULL; if (otus_tx(sc, ni, m, bf, NULL) != 0) { OTUS_DPRINTF(sc, OTUS_DEBUG_XMIT, "%s: failed to transmit\n", __func__); if_inc_counter(ni->ni_vap->iv_ifp, IFCOUNTER_OERRORS, 1); otus_freebuf(sc, bf); ieee80211_free_node(ni); m_freem(m); break; } } } static void otus_tx_task(void *arg, int pending) { struct otus_softc *sc = arg; OTUS_LOCK(sc); _otus_start(sc); OTUS_UNLOCK(sc); } static int otus_raw_xmit(struct ieee80211_node *ni, struct mbuf *m, const struct ieee80211_bpf_params *params) { struct ieee80211com *ic= ni->ni_ic; struct otus_softc *sc = ic->ic_softc; struct otus_data *bf = NULL; int error = 0; /* Don't transmit if we're not running */ OTUS_LOCK(sc); if (! sc->sc_running) { error = ENETDOWN; goto error; } bf = otus_getbuf(sc); if (bf == NULL) { error = ENOBUFS; goto error; } if (otus_tx(sc, ni, m, bf, params) != 0) { error = EIO; goto error; } OTUS_UNLOCK(sc); return (0); error: if (bf) otus_freebuf(sc, bf); OTUS_UNLOCK(sc); m_freem(m); return (ENXIO); } static void otus_update_chw(struct ieee80211com *ic) { printf("%s: TODO\n", __func__); } static void otus_set_channel(struct ieee80211com *ic) { struct otus_softc *sc = ic->ic_softc; OTUS_DPRINTF(sc, OTUS_DEBUG_RESET, "%s: set channel: %d\n", __func__, ic->ic_curchan->ic_freq); OTUS_LOCK(sc); (void) otus_set_chan(sc, ic->ic_curchan, 0); OTUS_UNLOCK(sc); } static int otus_ampdu_enable(struct ieee80211_node *ni, struct ieee80211_tx_ampdu *tap) { /* For now, no A-MPDU TX support in the driver */ return (0); } static void otus_scan_start(struct ieee80211com *ic) { // printf("%s: TODO\n", __func__); } static void otus_scan_end(struct ieee80211com *ic) { // printf("%s: TODO\n", __func__); } static void otus_update_mcast(struct ieee80211com *ic) { struct otus_softc *sc = ic->ic_softc; (void) otus_set_multi(sc); } static int otus_attachhook(struct otus_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; usb_device_request_t req; uint32_t in, out; int error; /* Not locked */ error = otus_load_firmware(sc, "otusfw_init", AR_FW_INIT_ADDR); if (error != 0) { device_printf(sc->sc_dev, "%s: could not load %s firmware\n", __func__, "init"); return (ENXIO); } /* XXX not locked? */ otus_delay_ms(sc, 1000); /* Not locked */ error = otus_load_firmware(sc, "otusfw_main", AR_FW_MAIN_ADDR); if (error != 0) { device_printf(sc->sc_dev, "%s: could not load %s firmware\n", __func__, "main"); return (ENXIO); } OTUS_LOCK(sc); /* Tell device that firmware transfer is complete. */ req.bmRequestType = UT_WRITE_VENDOR_DEVICE; req.bRequest = AR_FW_DOWNLOAD_COMPLETE; USETW(req.wValue, 0); USETW(req.wIndex, 0); USETW(req.wLength, 0); if (usbd_do_request_flags(sc->sc_udev, &sc->sc_mtx, &req, NULL, 0, NULL, 250) != 0) { OTUS_UNLOCK(sc); device_printf(sc->sc_dev, "%s: firmware initialization failed\n", __func__); return (ENXIO); } /* Send an ECHO command to check that everything is settled. */ in = 0xbadc0ffe; if (otus_cmd(sc, AR_CMD_ECHO, &in, sizeof in, &out, sizeof(out)) != 0) { OTUS_UNLOCK(sc); device_printf(sc->sc_dev, "%s: echo command failed\n", __func__); return (ENXIO); } if (in != out) { OTUS_UNLOCK(sc); device_printf(sc->sc_dev, "%s: echo reply mismatch: 0x%08x!=0x%08x\n", __func__, in, out); return (ENXIO); } /* Read entire EEPROM. */ if (otus_read_eeprom(sc) != 0) { OTUS_UNLOCK(sc); device_printf(sc->sc_dev, "%s: could not read EEPROM\n", __func__); return (ENXIO); } OTUS_UNLOCK(sc); sc->txmask = sc->eeprom.baseEepHeader.txMask; sc->rxmask = sc->eeprom.baseEepHeader.rxMask; sc->capflags = sc->eeprom.baseEepHeader.opCapFlags; IEEE80211_ADDR_COPY(ic->ic_macaddr, sc->eeprom.baseEepHeader.macAddr); sc->sc_led_newstate = otus_led_newstate_type3; /* XXX */ if (sc->txmask == 0x5) ic->ic_txstream = 2; else ic->ic_txstream = 1; if (sc->rxmask == 0x5) ic->ic_rxstream = 2; else ic->ic_rxstream = 1; device_printf(sc->sc_dev, "MAC/BBP AR9170, RF AR%X, MIMO %dT%dR, address %s\n", (sc->capflags & AR5416_OPFLAGS_11A) ? 0x9104 : ((sc->txmask == 0x5) ? 0x9102 : 0x9101), (sc->txmask == 0x5) ? 2 : 1, (sc->rxmask == 0x5) ? 2 : 1, ether_sprintf(ic->ic_macaddr)); ic->ic_softc = sc; ic->ic_name = device_get_nameunit(sc->sc_dev); ic->ic_phytype = IEEE80211_T_OFDM; /* not only, but not used */ ic->ic_opmode = IEEE80211_M_STA; /* default to BSS mode */ /* Set device capabilities. */ ic->ic_caps = IEEE80211_C_STA | /* station mode */ #if 0 IEEE80211_C_BGSCAN | /* Background scan. */ #endif IEEE80211_C_SHPREAMBLE | /* Short preamble supported. */ IEEE80211_C_WME | /* WME/QoS */ IEEE80211_C_SHSLOT | /* Short slot time supported. */ IEEE80211_C_FF | /* Atheros fast-frames supported. */ IEEE80211_C_MONITOR | /* Enable monitor mode */ IEEE80211_C_SWAMSDUTX | /* Do software A-MSDU TX */ IEEE80211_C_WPA; /* WPA/RSN. */ ic->ic_htcaps = IEEE80211_HTC_HT | #if 0 IEEE80211_HTC_AMPDU | #endif IEEE80211_HTC_AMSDU | IEEE80211_HTCAP_MAXAMSDU_3839 | IEEE80211_HTCAP_SMPS_OFF; otus_getradiocaps(ic, IEEE80211_CHAN_MAX, &ic->ic_nchans, ic->ic_channels); ieee80211_ifattach(ic); ic->ic_raw_xmit = otus_raw_xmit; ic->ic_scan_start = otus_scan_start; ic->ic_scan_end = otus_scan_end; ic->ic_set_channel = otus_set_channel; ic->ic_getradiocaps = otus_getradiocaps; ic->ic_vap_create = otus_vap_create; ic->ic_vap_delete = otus_vap_delete; ic->ic_update_mcast = otus_update_mcast; ic->ic_update_promisc = otus_update_mcast; ic->ic_parent = otus_parent; ic->ic_transmit = otus_transmit; ic->ic_update_chw = otus_update_chw; ic->ic_ampdu_enable = otus_ampdu_enable; ic->ic_wme.wme_update = otus_updateedca; ic->ic_newassoc = otus_newassoc; ic->ic_node_alloc = otus_node_alloc; #ifdef notyet ic->ic_set_key = otus_set_key; ic->ic_delete_key = otus_delete_key; #endif ieee80211_radiotap_attach(ic, &sc->sc_txtap.wt_ihdr, sizeof(sc->sc_txtap), OTUS_TX_RADIOTAP_PRESENT, &sc->sc_rxtap.wr_ihdr, sizeof(sc->sc_rxtap), OTUS_RX_RADIOTAP_PRESENT); return (0); } static void otus_getradiocaps(struct ieee80211com *ic, int maxchans, int *nchans, struct ieee80211_channel chans[]) { struct otus_softc *sc = ic->ic_softc; uint8_t bands[IEEE80211_MODE_BYTES]; /* Set supported .11b and .11g rates. */ memset(bands, 0, sizeof(bands)); if (sc->eeprom.baseEepHeader.opCapFlags & AR5416_OPFLAGS_11G) { setbit(bands, IEEE80211_MODE_11B); setbit(bands, IEEE80211_MODE_11G); setbit(bands, IEEE80211_MODE_11NG); ieee80211_add_channel_list_2ghz(chans, maxchans, nchans, ar_chans, 14, bands, 0); } if (sc->eeprom.baseEepHeader.opCapFlags & AR5416_OPFLAGS_11A) { setbit(bands, IEEE80211_MODE_11A); setbit(bands, IEEE80211_MODE_11NA); ieee80211_add_channel_list_5ghz(chans, maxchans, nchans, &ar_chans[14], nitems(ar_chans) - 14, bands, 0); } } int otus_load_firmware(struct otus_softc *sc, const char *name, uint32_t addr) { usb_device_request_t req; char *ptr; const struct firmware *fw; int mlen, error, size; error = 0; /* Read firmware image from the filesystem. */ if ((fw = firmware_get(name)) == NULL) { device_printf(sc->sc_dev, "%s: failed loadfirmware of file %s\n", __func__, name); return (ENXIO); } req.bmRequestType = UT_WRITE_VENDOR_DEVICE; req.bRequest = AR_FW_DOWNLOAD; USETW(req.wIndex, 0); OTUS_LOCK(sc); /* XXX const */ ptr = __DECONST(char *, fw->data); size = fw->datasize; addr >>= 8; while (size > 0) { mlen = MIN(size, 4096); USETW(req.wValue, addr); USETW(req.wLength, mlen); if (usbd_do_request_flags(sc->sc_udev, &sc->sc_mtx, &req, ptr, 0, NULL, 250) != 0) { error = EIO; break; } addr += mlen >> 8; ptr += mlen; size -= mlen; } OTUS_UNLOCK(sc); firmware_put(fw, FIRMWARE_UNLOAD); if (error != 0) device_printf(sc->sc_dev, "%s: %s: error=%d\n", __func__, name, error); return error; } int otus_open_pipes(struct otus_softc *sc) { #if 0 int isize, error; int i; #endif int error; OTUS_UNLOCK_ASSERT(sc); if ((error = otus_alloc_tx_cmd_list(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not allocate command xfer\n", __func__); goto fail; } if ((error = otus_alloc_tx_list(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not allocate Tx xfers\n", __func__); goto fail; } if ((error = otus_alloc_rx_list(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not allocate Rx xfers\n", __func__); goto fail; } /* Enable RX transfers; needed for initial firmware messages */ OTUS_LOCK(sc); usbd_transfer_start(sc->sc_xfer[OTUS_BULK_RX]); usbd_transfer_start(sc->sc_xfer[OTUS_BULK_IRQ]); OTUS_UNLOCK(sc); return 0; fail: otus_close_pipes(sc); return error; } void otus_close_pipes(struct otus_softc *sc) { OTUS_LOCK(sc); otus_free_tx_cmd_list(sc); otus_free_tx_list(sc); otus_free_rx_list(sc); OTUS_UNLOCK(sc); usbd_transfer_unsetup(sc->sc_xfer, OTUS_N_XFER); } static void otus_free_cmd_list(struct otus_softc *sc, struct otus_tx_cmd cmd[], int ndata) { int i; /* XXX TODO: someone has to have waken up waiters! */ for (i = 0; i < ndata; i++) { struct otus_tx_cmd *dp = &cmd[i]; if (dp->buf != NULL) { free(dp->buf, M_USBDEV); dp->buf = NULL; } } } static int otus_alloc_cmd_list(struct otus_softc *sc, struct otus_tx_cmd cmd[], int ndata, int maxsz) { int i, error; for (i = 0; i < ndata; i++) { struct otus_tx_cmd *dp = &cmd[i]; dp->buf = malloc(maxsz, M_USBDEV, M_NOWAIT | M_ZERO); dp->odata = NULL; if (dp->buf == NULL) { device_printf(sc->sc_dev, "could not allocate buffer\n"); error = ENOMEM; goto fail; } } return (0); fail: otus_free_cmd_list(sc, cmd, ndata); return (error); } static int otus_alloc_tx_cmd_list(struct otus_softc *sc) { int error, i; error = otus_alloc_cmd_list(sc, sc->sc_cmd, OTUS_CMD_LIST_COUNT, OTUS_MAX_TXCMDSZ); if (error != 0) return (error); STAILQ_INIT(&sc->sc_cmd_active); STAILQ_INIT(&sc->sc_cmd_inactive); STAILQ_INIT(&sc->sc_cmd_pending); STAILQ_INIT(&sc->sc_cmd_waiting); for (i = 0; i < OTUS_CMD_LIST_COUNT; i++) STAILQ_INSERT_HEAD(&sc->sc_cmd_inactive, &sc->sc_cmd[i], next_cmd); return (0); } static void otus_free_tx_cmd_list(struct otus_softc *sc) { /* * XXX TODO: something needs to wake up any pending/sleeping * waiters! */ STAILQ_INIT(&sc->sc_cmd_active); STAILQ_INIT(&sc->sc_cmd_inactive); STAILQ_INIT(&sc->sc_cmd_pending); STAILQ_INIT(&sc->sc_cmd_waiting); otus_free_cmd_list(sc, sc->sc_cmd, OTUS_CMD_LIST_COUNT); } static int otus_alloc_list(struct otus_softc *sc, struct otus_data data[], int ndata, int maxsz) { int i, error; for (i = 0; i < ndata; i++) { struct otus_data *dp = &data[i]; dp->sc = sc; dp->m = NULL; dp->buf = malloc(maxsz, M_USBDEV, M_NOWAIT | M_ZERO); if (dp->buf == NULL) { device_printf(sc->sc_dev, "could not allocate buffer\n"); error = ENOMEM; goto fail; } dp->ni = NULL; } return (0); fail: otus_free_list(sc, data, ndata); return (error); } static int otus_alloc_rx_list(struct otus_softc *sc) { int error, i; error = otus_alloc_list(sc, sc->sc_rx, OTUS_RX_LIST_COUNT, OTUS_RXBUFSZ); if (error != 0) return (error); STAILQ_INIT(&sc->sc_rx_active); STAILQ_INIT(&sc->sc_rx_inactive); for (i = 0; i < OTUS_RX_LIST_COUNT; i++) STAILQ_INSERT_HEAD(&sc->sc_rx_inactive, &sc->sc_rx[i], next); return (0); } static int otus_alloc_tx_list(struct otus_softc *sc) { int error, i; error = otus_alloc_list(sc, sc->sc_tx, OTUS_TX_LIST_COUNT, OTUS_TXBUFSZ); if (error != 0) return (error); STAILQ_INIT(&sc->sc_tx_inactive); for (i = 0; i != OTUS_N_XFER; i++) { STAILQ_INIT(&sc->sc_tx_active[i]); STAILQ_INIT(&sc->sc_tx_pending[i]); } for (i = 0; i < OTUS_TX_LIST_COUNT; i++) { STAILQ_INSERT_HEAD(&sc->sc_tx_inactive, &sc->sc_tx[i], next); } return (0); } static void otus_free_tx_list(struct otus_softc *sc) { int i; /* prevent further allocations from TX list(s) */ STAILQ_INIT(&sc->sc_tx_inactive); for (i = 0; i != OTUS_N_XFER; i++) { STAILQ_INIT(&sc->sc_tx_active[i]); STAILQ_INIT(&sc->sc_tx_pending[i]); } otus_free_list(sc, sc->sc_tx, OTUS_TX_LIST_COUNT); } static void otus_free_rx_list(struct otus_softc *sc) { /* prevent further allocations from RX list(s) */ STAILQ_INIT(&sc->sc_rx_inactive); STAILQ_INIT(&sc->sc_rx_active); otus_free_list(sc, sc->sc_rx, OTUS_RX_LIST_COUNT); } static void otus_free_list(struct otus_softc *sc, struct otus_data data[], int ndata) { int i; for (i = 0; i < ndata; i++) { struct otus_data *dp = &data[i]; if (dp->buf != NULL) { free(dp->buf, M_USBDEV); dp->buf = NULL; } if (dp->ni != NULL) { ieee80211_free_node(dp->ni); dp->ni = NULL; } } } static struct otus_data * _otus_getbuf(struct otus_softc *sc) { struct otus_data *bf; bf = STAILQ_FIRST(&sc->sc_tx_inactive); if (bf != NULL) STAILQ_REMOVE_HEAD(&sc->sc_tx_inactive, next); else bf = NULL; /* XXX bzero? */ return (bf); } static struct otus_data * otus_getbuf(struct otus_softc *sc) { struct otus_data *bf; OTUS_LOCK_ASSERT(sc); bf = _otus_getbuf(sc); return (bf); } static void otus_freebuf(struct otus_softc *sc, struct otus_data *bf) { OTUS_LOCK_ASSERT(sc); STAILQ_INSERT_TAIL(&sc->sc_tx_inactive, bf, next); } static struct otus_tx_cmd * _otus_get_txcmd(struct otus_softc *sc) { struct otus_tx_cmd *bf; bf = STAILQ_FIRST(&sc->sc_cmd_inactive); if (bf != NULL) STAILQ_REMOVE_HEAD(&sc->sc_cmd_inactive, next_cmd); else bf = NULL; return (bf); } static struct otus_tx_cmd * otus_get_txcmd(struct otus_softc *sc) { struct otus_tx_cmd *bf; OTUS_LOCK_ASSERT(sc); bf = _otus_get_txcmd(sc); if (bf == NULL) { device_printf(sc->sc_dev, "%s: no tx cmd buffers\n", __func__); } return (bf); } static void otus_free_txcmd(struct otus_softc *sc, struct otus_tx_cmd *bf) { OTUS_LOCK_ASSERT(sc); STAILQ_INSERT_TAIL(&sc->sc_cmd_inactive, bf, next_cmd); } void otus_next_scan(void *arg, int pending) { #if 0 struct otus_softc *sc = arg; if (usbd_is_dying(sc->sc_udev)) return; usbd_ref_incr(sc->sc_udev); if (sc->sc_ic.ic_state == IEEE80211_S_SCAN) ieee80211_next_scan(&sc->sc_ic.ic_if); usbd_ref_decr(sc->sc_udev); #endif } int otus_newstate(struct ieee80211vap *vap, enum ieee80211_state nstate, int arg) { struct otus_vap *uvp = OTUS_VAP(vap); struct ieee80211com *ic = vap->iv_ic; struct otus_softc *sc = ic->ic_softc; enum ieee80211_state ostate; ostate = vap->iv_state; OTUS_DPRINTF(sc, OTUS_DEBUG_STATE, "%s: %s -> %s\n", __func__, ieee80211_state_name[ostate], ieee80211_state_name[nstate]); IEEE80211_UNLOCK(ic); OTUS_LOCK(sc); /* XXX TODO: more fleshing out! */ switch (nstate) { case IEEE80211_S_INIT: otus_set_operating_mode(sc); otus_set_rx_filter(sc); break; case IEEE80211_S_RUN: if (ic->ic_opmode == IEEE80211_M_STA) { otus_updateslot(sc); otus_set_operating_mode(sc); otus_set_rx_filter(sc); /* Start calibration timer. */ taskqueue_enqueue_timeout(taskqueue_thread, &sc->calib_to, hz); } break; default: break; } /* XXX TODO: calibration? */ sc->sc_led_newstate(sc); OTUS_UNLOCK(sc); IEEE80211_LOCK(ic); return (uvp->newstate(vap, nstate, arg)); } int otus_cmd(struct otus_softc *sc, uint8_t code, const void *idata, int ilen, void *odata, int odatalen) { struct otus_tx_cmd *cmd; struct ar_cmd_hdr *hdr; int xferlen, error; OTUS_LOCK_ASSERT(sc); /* Always bulk-out a multiple of 4 bytes. */ xferlen = (sizeof (*hdr) + ilen + 3) & ~3; if (xferlen > OTUS_MAX_TXCMDSZ) { device_printf(sc->sc_dev, "%s: command (0x%02x) size (%d) > %d\n", __func__, code, xferlen, OTUS_MAX_TXCMDSZ); return (EIO); } cmd = otus_get_txcmd(sc); if (cmd == NULL) { device_printf(sc->sc_dev, "%s: failed to get buf\n", __func__); return (EIO); } hdr = (struct ar_cmd_hdr *)cmd->buf; hdr->code = code; hdr->len = ilen; hdr->token = ++sc->token; /* Don't care about endianness. */ cmd->token = hdr->token; /* XXX TODO: check max cmd length? */ memcpy((uint8_t *)&hdr[1], idata, ilen); OTUS_DPRINTF(sc, OTUS_DEBUG_CMD, "%s: sending command code=0x%02x len=%d token=%d\n", __func__, code, ilen, hdr->token); cmd->odata = odata; cmd->odatalen = odatalen; cmd->buflen = xferlen; /* Queue the command to the endpoint */ STAILQ_INSERT_TAIL(&sc->sc_cmd_pending, cmd, next_cmd); usbd_transfer_start(sc->sc_xfer[OTUS_BULK_CMD]); /* Sleep on the command; wait for it to complete */ error = msleep(cmd, &sc->sc_mtx, PCATCH, "otuscmd", hz); /* * At this point we don't own cmd any longer; it'll be * freed by the cmd bulk path or the RX notification * path. If the data is made available then it'll be copied * to the caller. All that is left to do is communicate * status back to the caller. */ if (error != 0) { device_printf(sc->sc_dev, "%s: timeout waiting for command 0x%02x reply\n", __func__, code); } return error; } void otus_write(struct otus_softc *sc, uint32_t reg, uint32_t val) { OTUS_LOCK_ASSERT(sc); sc->write_buf[sc->write_idx].reg = htole32(reg); sc->write_buf[sc->write_idx].val = htole32(val); if (++sc->write_idx > (AR_MAX_WRITE_IDX-1)) (void)otus_write_barrier(sc); } int otus_write_barrier(struct otus_softc *sc) { int error; OTUS_LOCK_ASSERT(sc); if (sc->write_idx == 0) return 0; /* Nothing to flush. */ OTUS_DPRINTF(sc, OTUS_DEBUG_REGIO, "%s: called; %d updates\n", __func__, sc->write_idx); error = otus_cmd(sc, AR_CMD_WREG, sc->write_buf, sizeof (sc->write_buf[0]) * sc->write_idx, NULL, 0); sc->write_idx = 0; return error; } static struct ieee80211_node * otus_node_alloc(struct ieee80211vap *vap, const uint8_t mac[IEEE80211_ADDR_LEN]) { return malloc(sizeof (struct otus_node), M_80211_NODE, M_NOWAIT | M_ZERO); } - -#if 0 -int -otus_media_change(struct ifnet *ifp) -{ - struct otus_softc *sc = ifp->if_softc; - struct ieee80211com *ic = &sc->sc_ic; - uint8_t rate, ridx; - int error; - - error = ieee80211_media_change(ifp); - if (error != ENETRESET) - return error; - - if (ic->ic_fixed_rate != -1) { - rate = ic->ic_sup_rates[ic->ic_curmode]. - rs_rates[ic->ic_fixed_rate] & IEEE80211_RATE_VAL; - for (ridx = 0; ridx <= OTUS_RIDX_MAX; ridx++) - if (otus_rates[ridx].rate == rate) - break; - sc->fixed_ridx = ridx; - } - - if ((ifp->if_flags & (IFF_UP | IFF_RUNNING)) == (IFF_UP | IFF_RUNNING)) - error = otus_init(sc); - - return error; -} -#endif int otus_read_eeprom(struct otus_softc *sc) { uint32_t regs[8], reg; uint8_t *eep; int i, j, error; OTUS_LOCK_ASSERT(sc); /* Read EEPROM by blocks of 32 bytes. */ eep = (uint8_t *)&sc->eeprom; reg = AR_EEPROM_OFFSET; for (i = 0; i < sizeof (sc->eeprom) / 32; i++) { for (j = 0; j < 8; j++, reg += 4) regs[j] = htole32(reg); error = otus_cmd(sc, AR_CMD_RREG, regs, sizeof regs, eep, 32); if (error != 0) break; eep += 32; } return error; } void otus_newassoc(struct ieee80211_node *ni, int isnew) { struct ieee80211com *ic = ni->ni_ic; struct otus_softc *sc = ic->ic_softc; struct otus_node *on = OTUS_NODE(ni); OTUS_DPRINTF(sc, OTUS_DEBUG_STATE, "new assoc isnew=%d addr=%s\n", isnew, ether_sprintf(ni->ni_macaddr)); on->tx_done = 0; on->tx_err = 0; on->tx_retries = 0; } static void otus_cmd_handle_response(struct otus_softc *sc, struct ar_cmd_hdr *hdr) { struct otus_tx_cmd *cmd; OTUS_LOCK_ASSERT(sc); OTUS_DPRINTF(sc, OTUS_DEBUG_CMDDONE, "%s: received reply code=0x%02x len=%d token=%d\n", __func__, hdr->code, hdr->len, hdr->token); /* * Walk the list, freeing items that aren't ours, * stopping when we hit our token. */ while ((cmd = STAILQ_FIRST(&sc->sc_cmd_waiting)) != NULL) { STAILQ_REMOVE_HEAD(&sc->sc_cmd_waiting, next_cmd); OTUS_DPRINTF(sc, OTUS_DEBUG_CMDDONE, "%s: cmd=%p; hdr.token=%d, cmd.token=%d\n", __func__, cmd, (int) hdr->token, (int) cmd->token); if (hdr->token == cmd->token) { /* Copy answer into caller's supplied buffer. */ if (cmd->odata != NULL) { if (hdr->len != cmd->odatalen) { device_printf(sc->sc_dev, "%s: code 0x%02x, len=%d, olen=%d\n", __func__, (int) hdr->code, (int) hdr->len, (int) cmd->odatalen); } memcpy(cmd->odata, &hdr[1], MIN(cmd->odatalen, hdr->len)); } wakeup(cmd); } STAILQ_INSERT_TAIL(&sc->sc_cmd_inactive, cmd, next_cmd); } } void otus_cmd_rxeof(struct otus_softc *sc, uint8_t *buf, int len) { struct ieee80211com *ic = &sc->sc_ic; struct ar_cmd_hdr *hdr; OTUS_LOCK_ASSERT(sc); if (__predict_false(len < sizeof (*hdr))) { OTUS_DPRINTF(sc, OTUS_DEBUG_CMDDONE, "cmd too small %d\n", len); return; } hdr = (struct ar_cmd_hdr *)buf; if (__predict_false(sizeof (*hdr) + hdr->len > len || sizeof (*hdr) + hdr->len > 64)) { OTUS_DPRINTF(sc, OTUS_DEBUG_CMDDONE, "cmd too large %d\n", hdr->len); return; } OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "%s: code=%.02x\n", __func__, hdr->code); /* * This has to reach into the cmd queue "waiting for * an RX response" list, grab the head entry and check * if we need to wake anyone up. */ if ((hdr->code & 0xc0) != 0xc0) { otus_cmd_handle_response(sc, hdr); return; } /* Received unsolicited notification. */ switch (hdr->code & 0x3f) { case AR_EVT_BEACON: break; case AR_EVT_TX_COMP: { struct ar_evt_tx_comp *tx = (struct ar_evt_tx_comp *)&hdr[1]; struct ieee80211_node *ni; ni = ieee80211_find_node(&ic->ic_sta, tx->macaddr); if (ni == NULL) { device_printf(sc->sc_dev, "%s: txcomp on unknown node (%s)\n", __func__, ether_sprintf(tx->macaddr)); break; } OTUS_DPRINTF(sc, OTUS_DEBUG_TXCOMP, "tx completed %s status=%d phy=0x%x\n", ether_sprintf(tx->macaddr), le16toh(tx->status), le32toh(tx->phy)); switch (le16toh(tx->status)) { case AR_TX_STATUS_COMP: #if 0 ackfailcnt = 0; ieee80211_ratectl_tx_complete(ni->ni_vap, ni, IEEE80211_RATECTL_TX_SUCCESS, &ackfailcnt, NULL); #endif /* * We don't get the above; only error notifications. * Sigh. So, don't worry about this. */ break; case AR_TX_STATUS_RETRY_COMP: OTUS_NODE(ni)->tx_retries++; break; case AR_TX_STATUS_FAILED: OTUS_NODE(ni)->tx_err++; break; } ieee80211_free_node(ni); break; } case AR_EVT_TBTT: break; case AR_EVT_DO_BB_RESET: /* * This is "tell driver to reset baseband" from ar9170-fw. * * I'm not sure what we should do here, so I'm going to * fall through; it gets generated when RTSRetryCnt internally * reaches '5' - I guess the firmware authors thought that * meant that the BB may have gone deaf or something. */ default: device_printf(sc->sc_dev, "%s: received notification code=0x%02x len=%d\n", __func__, hdr->code, hdr->len); } } /* * Handle a single MPDU. * * This may be a single MPDU, or it may be a sub-frame from an A-MPDU. * In the latter case some of the header details need to be adjusted. */ void otus_sub_rxeof(struct otus_softc *sc, uint8_t *buf, int len, struct mbufq *rxq) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211_rx_stats rxs; #if 0 struct ieee80211_node *ni; #endif struct ar_rx_macstatus *mac_status = NULL; struct ar_rx_phystatus *phy_status = NULL; struct ieee80211_frame *wh; struct mbuf *m; // int s; if (otus_debug & OTUS_DEBUG_RX_BUFFER) { device_printf(sc->sc_dev, "%s: %*D\n", __func__, len, buf, "-"); } /* * Before any data path stuff - check to see if this is a command * response. * * All bits in the PLCP header are set to 1 for non-MPDU. */ if ((len >= AR_PLCP_HDR_LEN) && memcmp(buf, AR_PLCP_HDR_INTR, AR_PLCP_HDR_LEN) == 0) { otus_cmd_rxeof(sc, buf + AR_PLCP_HDR_LEN, len - AR_PLCP_HDR_LEN); return; } /* * First step - get the status for the given frame. * This will tell us whether it's a single MPDU or * an A-MPDU subframe. */ if (len < sizeof(*mac_status)) { OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "%s: sub-xfer too short (no mac_status) (len %d)\n", __func__, len); counter_u64_add(ic->ic_ierrors, 1); return; } /* * Remove the mac_status from the payload length. * * Note: cheating, don't reallocate the buffer! */ mac_status = (struct ar_rx_macstatus *)(buf + len - sizeof(*mac_status)); len -= sizeof(*mac_status); OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "%s: mac status=0x%x\n", __func__, mac_status->status); /* * Next - check the MAC status before doing anything else. * Extract out the PLCP header for single and first frames; * since there's a single RX path we can shove PLCP headers * from both into sc->ar_last_rx_plcp[] so it can be reused. */ if (((mac_status->status & AR_RX_STATUS_MPDU_MASK) == AR_RX_STATUS_MPDU_SINGLE) || ((mac_status->status & AR_RX_STATUS_MPDU_MASK) == AR_RX_STATUS_MPDU_FIRST)) { /* * Ok, we need to at least have a PLCP header at * this point. */ if (len < AR_PLCP_HDR_LEN) { OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "%s sub-xfer too short (no mac+plcp) (len %d\n)", __func__, len); counter_u64_add(ic->ic_ierrors, 1); return; } memcpy(sc->ar_last_rx_plcp, buf, AR_PLCP_HDR_LEN); /* * At this point we can just consume the PLCP header. * The beginning of the frame should thus be data. */ buf += AR_PLCP_HDR_LEN; len -= AR_PLCP_HDR_LEN; } /* * Next - see if we have a PHY status. * * The PHY status is at the end of the final A-MPDU subframe * or a single MPDU frame. * * We'll use this to tag frames with noise floor / RSSI * if they have valid information. */ if (((mac_status->status & AR_RX_STATUS_MPDU_MASK) == AR_RX_STATUS_MPDU_SINGLE) || ((mac_status->status & AR_RX_STATUS_MPDU_MASK) == AR_RX_STATUS_MPDU_LAST)) { if (len < sizeof(*phy_status)) { OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "%s sub-xfer too short (no phy status) (len %d\n)", __func__, len); counter_u64_add(ic->ic_ierrors, 1); return; } /* * Take a pointer to the phy status and remove the length * from the end of the buffer. * * Note: we're cheating here; don't reallocate the buffer! */ phy_status = (struct ar_rx_phystatus *) (buf + len - sizeof(*phy_status)); len -= sizeof(*phy_status); } /* * Middle frames just have a MAC status (stripped above.) * No PHY status, and PLCP is from ar_last_rx_plcp. */ /* * Discard error frames; don't discard BAD_RA (eg monitor mode); * let net80211 do that */ if (__predict_false((mac_status->error & ~AR_RX_ERROR_BAD_RA) != 0)) { OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "error frame 0x%02x\n", mac_status->error); if (mac_status->error & AR_RX_ERROR_FCS) { OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "bad FCS\n"); } else if (mac_status->error & AR_RX_ERROR_MMIC) { /* Report Michael MIC failures to net80211. */ #if 0 ieee80211_notify_michael_failure(ni->ni_vap, wh, keyidx); #endif device_printf(sc->sc_dev, "%s: MIC failure\n", __func__); } counter_u64_add(ic->ic_ierrors, 1); return; } /* * Make sure there's room for an 802.11 header + FCS. * * Note: a CTS/ACK is 14 bytes (FC, DUR, RA, FCS). * Making it IEEE80211_MIN_LEN misses CTS/ACKs. * * This won't be tossed at this point; eventually once * rx radiotap is implemented this will allow for * CTS/ACK frames. Passing them up to net80211 will * currently make it angry (too short packets.) */ if (len < 2 + 2 + IEEE80211_ADDR_LEN + IEEE80211_CRC_LEN) { OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "%s: too short for 802.11 (len %d)\n", __func__, len); counter_u64_add(ic->ic_ierrors, 1); return; } len -= IEEE80211_CRC_LEN; /* strip 802.11 FCS */ wh = (struct ieee80211_frame *) buf; /* * The firmware does seem to spit out a bunch of frames * with invalid frame control values here. Just toss them * rather than letting net80211 get angry and log. */ if ((wh->i_fc[0] & IEEE80211_FC0_VERSION_MASK) != IEEE80211_FC0_VERSION_0) { OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "%s: invalid 802.11 fc version (firmware bug?)\n", __func__); counter_u64_add(ic->ic_ierrors, 1); return; } m = m_get2(len, M_NOWAIT, MT_DATA, M_PKTHDR); if (m == NULL) { device_printf(sc->sc_dev, "%s: failed m_get2() (len=%d)\n", __func__, len); counter_u64_add(ic->ic_ierrors, 1); return; } /* Finalize mbuf. */ memcpy(mtod(m, uint8_t *), wh, len); m->m_pkthdr.len = m->m_len = len; /* XXX TODO: add setting rx radiotap fields here */ /* * Ok, check the frame length and toss if it's too short * for net80211. This will toss ACK/CTS. */ if (m->m_len < IEEE80211_MIN_LEN) { /* XXX TODO: add radiotap receive here */ m_free(m); m = NULL; return; } /* Add RSSI to this mbuf if we have a PHY header */ bzero(&rxs, sizeof(rxs)); rxs.r_flags = IEEE80211_R_NF; rxs.c_nf = sc->sc_nf[0]; /* XXX chain 0 != combined rssi/nf */ if (phy_status != NULL) { rxs.r_flags |= IEEE80211_R_RSSI; rxs.c_rssi = phy_status->rssi; } /* XXX TODO: add MIMO RSSI/NF as well */ if (ieee80211_add_rx_params(m, &rxs) == 0) { counter_u64_add(ic->ic_ierrors, 1); return; } /* XXX make a method */ STAILQ_INSERT_TAIL(&rxq->mq_head, m, m_stailqpkt); #if 0 OTUS_UNLOCK(sc); ni = ieee80211_find_rxnode(ic, wh); rxi.rxi_flags = 0; rxi.rxi_rssi = tail->rssi; rxi.rxi_tstamp = 0; /* unused */ ieee80211_input(ifp, m, ni, &rxi); /* Node is no longer needed. */ ieee80211_release_node(ic, ni); OTUS_LOCK(sc); #endif } static void otus_rxeof(struct usb_xfer *xfer, struct otus_data *data, struct mbufq *rxq) { struct otus_softc *sc = usbd_xfer_softc(xfer); caddr_t buf = data->buf; struct ar_rx_head *head; uint16_t hlen; int len, offset = 0; usbd_xfer_status(xfer, &len, NULL, NULL, NULL); OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "%s: transfer completed; len=%d\n", __func__, len); if (otus_debug & OTUS_DEBUG_RX_BUFFER) { device_printf(sc->sc_dev, "%s: %*D\n", __func__, len, buf, "-"); } while (len >= sizeof (*head)) { head = (struct ar_rx_head *)buf; if (__predict_false(head->tag != htole16(AR_RX_HEAD_TAG))) { OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "tag not valid 0x%x\n", le16toh(head->tag)); break; } hlen = le16toh(head->len); OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "%s: hlen=%d\n", __func__, hlen); if (__predict_false(sizeof (*head) + hlen > len)) { OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "xfer too short %d/%d\n", len, hlen); break; } /* Process sub-xfer. */ otus_sub_rxeof(sc, (uint8_t *) (((uint8_t *) buf) + 4), hlen, rxq); /* Next sub-xfer is aligned on a 32-bit boundary. */ hlen = (sizeof (*head) + hlen + 3) & ~3; offset += hlen; OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "%s: rounded size is %d, next packet starts at %d\n", __func__, hlen, offset); buf += hlen; len -= hlen; } OTUS_DPRINTF(sc, OTUS_DEBUG_RXDONE, "%s: done!\n", __func__); } static void otus_bulk_rx_callback(struct usb_xfer *xfer, usb_error_t error) { struct epoch_tracker et; struct otus_softc *sc = usbd_xfer_softc(xfer); struct ieee80211com *ic = &sc->sc_ic; struct ieee80211_frame *wh; struct ieee80211_node *ni; struct mbuf *m; struct mbufq scrx; struct otus_data *data; OTUS_LOCK_ASSERT(sc); mbufq_init(&scrx, 1024); #if 0 device_printf(sc->sc_dev, "%s: called; state=%d; error=%d\n", __func__, USB_GET_STATE(xfer), error); #endif switch (USB_GET_STATE(xfer)) { case USB_ST_TRANSFERRED: data = STAILQ_FIRST(&sc->sc_rx_active); if (data == NULL) goto tr_setup; STAILQ_REMOVE_HEAD(&sc->sc_rx_active, next); otus_rxeof(xfer, data, &scrx); STAILQ_INSERT_TAIL(&sc->sc_rx_inactive, data, next); /* FALLTHROUGH */ case USB_ST_SETUP: tr_setup: /* * XXX TODO: what if sc_rx isn't empty, but data * is empty? Then we leak mbufs. */ data = STAILQ_FIRST(&sc->sc_rx_inactive); if (data == NULL) { //KASSERT(m == NULL, ("mbuf isn't NULL")); return; } STAILQ_REMOVE_HEAD(&sc->sc_rx_inactive, next); STAILQ_INSERT_TAIL(&sc->sc_rx_active, data, next); usbd_xfer_set_frame_data(xfer, 0, data->buf, usbd_xfer_max_len(xfer)); usbd_transfer_submit(xfer); /* * To avoid LOR we should unlock our private mutex here to call * ieee80211_input() because here is at the end of a USB * callback and safe to unlock. */ OTUS_UNLOCK(sc); NET_EPOCH_ENTER(et); while ((m = mbufq_dequeue(&scrx)) != NULL) { wh = mtod(m, struct ieee80211_frame *); ni = ieee80211_find_rxnode(ic, (struct ieee80211_frame_min *)wh); if (ni != NULL) { if (ni->ni_flags & IEEE80211_NODE_HT) m->m_flags |= M_AMPDU; (void)ieee80211_input_mimo(ni, m); ieee80211_free_node(ni); } else (void)ieee80211_input_mimo_all(ic, m); } NET_EPOCH_EXIT(et); #ifdef IEEE80211_SUPPORT_SUPERG ieee80211_ff_age_all(ic, 100); #endif OTUS_LOCK(sc); break; default: /* needs it to the inactive queue due to a error. */ data = STAILQ_FIRST(&sc->sc_rx_active); if (data != NULL) { STAILQ_REMOVE_HEAD(&sc->sc_rx_active, next); STAILQ_INSERT_TAIL(&sc->sc_rx_inactive, data, next); } if (error != USB_ERR_CANCELLED) { usbd_xfer_set_stall(xfer); counter_u64_add(ic->ic_ierrors, 1); goto tr_setup; } break; } } static void otus_txeof(struct usb_xfer *xfer, struct otus_data *data) { struct otus_softc *sc = usbd_xfer_softc(xfer); OTUS_DPRINTF(sc, OTUS_DEBUG_TXDONE, "%s: called; data=%p\n", __func__, data); OTUS_LOCK_ASSERT(sc); if (sc->sc_tx_n_active == 0) { device_printf(sc->sc_dev, "%s: completed but tx_active=0\n", __func__); } else { sc->sc_tx_n_active--; } if (data->m) { /* XXX status? */ /* XXX we get TX status via the RX path.. */ ieee80211_tx_complete(data->ni, data->m, 0); data->m = NULL; data->ni = NULL; } } static void otus_txcmdeof(struct usb_xfer *xfer, struct otus_tx_cmd *cmd) { struct otus_softc *sc = usbd_xfer_softc(xfer); OTUS_LOCK_ASSERT(sc); OTUS_DPRINTF(sc, OTUS_DEBUG_CMDDONE, "%s: called; data=%p; odata=%p\n", __func__, cmd, cmd->odata); /* * Non-response commands still need wakeup so the caller * knows it was submitted and completed OK; response commands should * wait until they're ACKed by the firmware with a response. */ if (cmd->odata) { STAILQ_INSERT_TAIL(&sc->sc_cmd_waiting, cmd, next_cmd); } else { wakeup(cmd); otus_free_txcmd(sc, cmd); } } static void otus_bulk_tx_callback(struct usb_xfer *xfer, usb_error_t error) { uint8_t which = OTUS_BULK_TX; struct otus_softc *sc = usbd_xfer_softc(xfer); struct ieee80211com *ic = &sc->sc_ic; struct otus_data *data; OTUS_LOCK_ASSERT(sc); switch (USB_GET_STATE(xfer)) { case USB_ST_TRANSFERRED: data = STAILQ_FIRST(&sc->sc_tx_active[which]); if (data == NULL) goto tr_setup; OTUS_DPRINTF(sc, OTUS_DEBUG_TXDONE, "%s: transfer done %p\n", __func__, data); STAILQ_REMOVE_HEAD(&sc->sc_tx_active[which], next); otus_txeof(xfer, data); otus_freebuf(sc, data); /* FALLTHROUGH */ case USB_ST_SETUP: tr_setup: data = STAILQ_FIRST(&sc->sc_tx_pending[which]); if (data == NULL) { OTUS_DPRINTF(sc, OTUS_DEBUG_XMIT, "%s: empty pending queue sc %p\n", __func__, sc); sc->sc_tx_n_active = 0; goto finish; } STAILQ_REMOVE_HEAD(&sc->sc_tx_pending[which], next); STAILQ_INSERT_TAIL(&sc->sc_tx_active[which], data, next); usbd_xfer_set_frame_data(xfer, 0, data->buf, data->buflen); OTUS_DPRINTF(sc, OTUS_DEBUG_XMIT, "%s: submitting transfer %p\n", __func__, data); usbd_transfer_submit(xfer); sc->sc_tx_n_active++; break; default: data = STAILQ_FIRST(&sc->sc_tx_active[which]); if (data != NULL) { STAILQ_REMOVE_HEAD(&sc->sc_tx_active[which], next); otus_txeof(xfer, data); otus_freebuf(sc, data); } counter_u64_add(ic->ic_oerrors, 1); if (error != USB_ERR_CANCELLED) { usbd_xfer_set_stall(xfer); goto tr_setup; } break; } finish: #ifdef IEEE80211_SUPPORT_SUPERG /* * If the TX active queue drops below a certain * threshold, ensure we age fast-frames out so they're * transmitted. */ if (sc->sc_tx_n_active < 2) { /* XXX ew - net80211 should defer this for us! */ OTUS_UNLOCK(sc); ieee80211_ff_flush(ic, WME_AC_VO); ieee80211_ff_flush(ic, WME_AC_VI); ieee80211_ff_flush(ic, WME_AC_BE); ieee80211_ff_flush(ic, WME_AC_BK); OTUS_LOCK(sc); } #endif /* Kick TX */ otus_tx_start(sc); } static void otus_bulk_cmd_callback(struct usb_xfer *xfer, usb_error_t error) { struct otus_softc *sc = usbd_xfer_softc(xfer); #if 0 struct ieee80211com *ic = &sc->sc_ic; #endif struct otus_tx_cmd *cmd; OTUS_LOCK_ASSERT(sc); switch (USB_GET_STATE(xfer)) { case USB_ST_TRANSFERRED: cmd = STAILQ_FIRST(&sc->sc_cmd_active); if (cmd == NULL) goto tr_setup; OTUS_DPRINTF(sc, OTUS_DEBUG_CMDDONE, "%s: transfer done %p\n", __func__, cmd); STAILQ_REMOVE_HEAD(&sc->sc_cmd_active, next_cmd); otus_txcmdeof(xfer, cmd); /* FALLTHROUGH */ case USB_ST_SETUP: tr_setup: cmd = STAILQ_FIRST(&sc->sc_cmd_pending); if (cmd == NULL) { OTUS_DPRINTF(sc, OTUS_DEBUG_CMD, "%s: empty pending queue sc %p\n", __func__, sc); return; } STAILQ_REMOVE_HEAD(&sc->sc_cmd_pending, next_cmd); STAILQ_INSERT_TAIL(&sc->sc_cmd_active, cmd, next_cmd); usbd_xfer_set_frame_data(xfer, 0, cmd->buf, cmd->buflen); OTUS_DPRINTF(sc, OTUS_DEBUG_CMD, "%s: submitting transfer %p; buf=%p, buflen=%d\n", __func__, cmd, cmd->buf, cmd->buflen); usbd_transfer_submit(xfer); break; default: cmd = STAILQ_FIRST(&sc->sc_cmd_active); if (cmd != NULL) { STAILQ_REMOVE_HEAD(&sc->sc_cmd_active, next_cmd); otus_txcmdeof(xfer, cmd); } if (error != USB_ERR_CANCELLED) { usbd_xfer_set_stall(xfer); goto tr_setup; } break; } } /* * This isn't used by carl9170; it however may be used by the * initial bootloader. */ static void otus_bulk_irq_callback(struct usb_xfer *xfer, usb_error_t error) { struct otus_softc *sc = usbd_xfer_softc(xfer); int actlen; int sumlen; usbd_xfer_status(xfer, &actlen, &sumlen, NULL, NULL); OTUS_DPRINTF(sc, OTUS_DEBUG_IRQ, "%s: called; state=%d\n", __func__, USB_GET_STATE(xfer)); switch (USB_GET_STATE(xfer)) { case USB_ST_TRANSFERRED: /* * Read usb frame data, if any. * "actlen" has the total length for all frames * transferred. */ OTUS_DPRINTF(sc, OTUS_DEBUG_IRQ, "%s: comp; %d bytes\n", __func__, actlen); #if 0 pc = usbd_xfer_get_frame(xfer, 0); otus_dump_usb_rx_page(sc, pc, actlen); #endif /* XXX fallthrough */ case USB_ST_SETUP: /* * Setup xfer frame lengths/count and data */ OTUS_DPRINTF(sc, OTUS_DEBUG_IRQ, "%s: setup\n", __func__); usbd_xfer_set_frame_len(xfer, 0, usbd_xfer_max_len(xfer)); usbd_transfer_submit(xfer); break; default: /* Error */ /* * Print error message and clear stall * for example. */ OTUS_DPRINTF(sc, OTUS_DEBUG_IRQ, "%s: ERROR?\n", __func__); break; } } /* * Map net80211 rate to hw rate for otus MAC/PHY. */ static uint8_t otus_rate_to_hw_rate(struct otus_softc *sc, uint8_t rate) { int is_2ghz; is_2ghz = !! (IEEE80211_IS_CHAN_2GHZ(sc->sc_ic.ic_curchan)); /* MCS check */ if (rate & 0x80) { return rate; } switch (rate) { /* CCK */ case 2: return (0x0); case 4: return (0x1); case 11: return (0x2); case 22: return (0x3); /* OFDM */ case 12: return (0xb); case 18: return (0xf); case 24: return (0xa); case 36: return (0xe); case 48: return (0x9); case 72: return (0xd); case 96: return (0x8); case 108: return (0xc); default: device_printf(sc->sc_dev, "%s: unknown rate '%d'\n", __func__, (int) rate); case 0: if (is_2ghz) return (0x0); /* 1MB CCK */ else return (0xb); /* 6MB OFDM */ } } static int otus_hw_rate_is_ht(struct otus_softc *sc, uint8_t hw_rate) { return !! (hw_rate & 0x80); } static int otus_hw_rate_is_ofdm(struct otus_softc *sc, uint8_t hw_rate) { switch (hw_rate) { case 0x0: case 0x1: case 0x2: case 0x3: return (0); default: return (1); } } static void otus_tx_update_ratectl(struct otus_softc *sc, struct ieee80211_node *ni) { struct ieee80211_ratectl_tx_stats *txs = &sc->sc_txs; struct otus_node *on = OTUS_NODE(ni); txs->flags = IEEE80211_RATECTL_TX_STATS_NODE | IEEE80211_RATECTL_TX_STATS_RETRIES; txs->ni = ni; txs->nframes = on->tx_done; txs->nsuccess = on->tx_done - on->tx_err; txs->nretries = on->tx_retries; ieee80211_ratectl_tx_update(ni->ni_vap, txs); on->tx_done = on->tx_err = on->tx_retries = 0; } /* * XXX TODO: support tx bpf parameters for configuration! * * Relevant pieces: * * ac = params->ibp_pri & 3; * rate = params->ibp_rate0; * params->ibp_flags & IEEE80211_BPF_NOACK * params->ibp_flags & IEEE80211_BPF_RTS * params->ibp_flags & IEEE80211_BPF_CTS * tx->rts_ntries = params->ibp_try1; * tx->data_ntries = params->ibp_try0; */ static int otus_tx(struct otus_softc *sc, struct ieee80211_node *ni, struct mbuf *m, struct otus_data *data, const struct ieee80211_bpf_params *params) { const struct ieee80211_txparam *tp = ni->ni_txparms; struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = ni->ni_vap; struct ieee80211_frame *wh; struct ieee80211_key *k; struct ar_tx_head *head; uint32_t phyctl; uint16_t macctl, qos; uint8_t qid, rate; int hasqos, xferlen, type, ismcast; wh = mtod(m, struct ieee80211_frame *); if (wh->i_fc[1] & IEEE80211_FC1_PROTECTED) { k = ieee80211_crypto_encap(ni, m); if (k == NULL) { device_printf(sc->sc_dev, "%s: m=%p: ieee80211_crypto_encap returns NULL\n", __func__, m); return (ENOBUFS); } wh = mtod(m, struct ieee80211_frame *); } /* Calculate transfer length; ensure data buffer is large enough */ xferlen = sizeof (*head) + m->m_pkthdr.len; if (xferlen > OTUS_TXBUFSZ) { device_printf(sc->sc_dev, "%s: 802.11 TX frame is %d bytes, max %d bytes\n", __func__, xferlen, OTUS_TXBUFSZ); return (ENOBUFS); } hasqos = !! IEEE80211_QOS_HAS_SEQ(wh); if (hasqos) { uint8_t tid; qos = ((const struct ieee80211_qosframe *)wh)->i_qos[0]; tid = qos & IEEE80211_QOS_TID; qid = TID_TO_WME_AC(tid); } else { qos = 0; qid = WME_AC_BE; } type = wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK; ismcast = IEEE80211_IS_MULTICAST(wh->i_addr1); /* Pickup a rate index. */ if (params != NULL) rate = otus_rate_to_hw_rate(sc, params->ibp_rate0); else if (!!(m->m_flags & M_EAPOL) || type != IEEE80211_FC0_TYPE_DATA) rate = otus_rate_to_hw_rate(sc, tp->mgmtrate); else if (ismcast) rate = otus_rate_to_hw_rate(sc, tp->mcastrate); else if (tp->ucastrate != IEEE80211_FIXED_RATE_NONE) rate = otus_rate_to_hw_rate(sc, tp->ucastrate); else { (void) ieee80211_ratectl_rate(ni, NULL, 0); rate = otus_rate_to_hw_rate(sc, ni->ni_txrate); } phyctl = 0; macctl = AR_TX_MAC_BACKOFF | AR_TX_MAC_HW_DUR | AR_TX_MAC_QID(qid); /* * XXX TODO: params for NOACK, ACK, RTS, CTS, etc */ if (ismcast || (hasqos && ((qos & IEEE80211_QOS_ACKPOLICY) == IEEE80211_QOS_ACKPOLICY_NOACK))) macctl |= AR_TX_MAC_NOACK; if (!ismcast) { if (m->m_pkthdr.len + IEEE80211_CRC_LEN >= vap->iv_rtsthreshold) macctl |= AR_TX_MAC_RTS; else if (otus_hw_rate_is_ht(sc, rate)) { if (ic->ic_htprotmode == IEEE80211_PROT_RTSCTS) macctl |= AR_TX_MAC_RTS; } else if (ic->ic_flags & IEEE80211_F_USEPROT) { if (ic->ic_protmode == IEEE80211_PROT_CTSONLY) macctl |= AR_TX_MAC_CTS; else if (ic->ic_protmode == IEEE80211_PROT_RTSCTS) macctl |= AR_TX_MAC_RTS; } } phyctl |= AR_TX_PHY_MCS(rate & 0x7f); /* Note: MCS rates are 0x80 and above */ if (otus_hw_rate_is_ht(sc, rate)) { phyctl |= AR_TX_PHY_MT_HT; /* Always use all tx antennas for now, just to be safe */ phyctl |= AR_TX_PHY_ANTMSK(sc->txmask); /* Heavy clip */ phyctl |= (rate & 0x7) << AR_TX_PHY_TX_HEAVY_CLIP_SHIFT; } else if (otus_hw_rate_is_ofdm(sc, rate)) { phyctl |= AR_TX_PHY_MT_OFDM; /* Always use all tx antennas for now, just to be safe */ phyctl |= AR_TX_PHY_ANTMSK(sc->txmask); } else { /* CCK */ phyctl |= AR_TX_PHY_MT_CCK; phyctl |= AR_TX_PHY_ANTMSK(sc->txmask); } /* Update net80211 with the current counters */ otus_tx_update_ratectl(sc, ni); /* Update rate control stats for frames that are ACK'ed. */ if (!(macctl & AR_TX_MAC_NOACK)) OTUS_NODE(ni)->tx_done++; /* Fill Tx descriptor. */ head = (struct ar_tx_head *)data->buf; head->len = htole16(m->m_pkthdr.len + IEEE80211_CRC_LEN); head->macctl = htole16(macctl); head->phyctl = htole32(phyctl); m_copydata(m, 0, m->m_pkthdr.len, (caddr_t)&head[1]); data->buflen = xferlen; data->ni = ni; data->m = m; OTUS_DPRINTF(sc, OTUS_DEBUG_XMIT, "%s: tx: m=%p; data=%p; len=%d mac=0x%04x phy=0x%08x rate=0x%02x, ni_txrate=%d\n", __func__, m, data, le16toh(head->len), macctl, phyctl, (int) rate, (int) ni->ni_txrate); /* Submit transfer */ STAILQ_INSERT_TAIL(&sc->sc_tx_pending[OTUS_BULK_TX], data, next); usbd_transfer_start(sc->sc_xfer[OTUS_BULK_TX]); return 0; } static u_int otus_hash_maddr(void *arg, struct sockaddr_dl *sdl, u_int cnt) { uint32_t val, *hashes = arg; val = le32dec(LLADDR(sdl) + 4); /* Get address byte 5 */ val = val & 0x0000ff00; val = val >> 8; /* As per below, shift it >> 2 to get only 6 bits */ val = val >> 2; if (val < 32) hashes[0] |= 1 << val; else hashes[1] |= 1 << (val - 32); return (1); } int otus_set_multi(struct otus_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; uint32_t hashes[2]; int r; if (ic->ic_allmulti > 0 || ic->ic_promisc > 0 || ic->ic_opmode == IEEE80211_M_MONITOR) { hashes[0] = 0xffffffff; hashes[1] = 0xffffffff; } else { struct ieee80211vap *vap; hashes[0] = hashes[1] = 0; TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) if_foreach_llmaddr(vap->iv_ifp, otus_hash_maddr, hashes); } #if 0 /* XXX openbsd code */ while (enm != NULL) { bit = enm->enm_addrlo[5] >> 2; if (bit < 32) hashes[0] |= 1 << bit; else hashes[1] |= 1 << (bit - 32); ETHER_NEXT_MULTI(step, enm); } #endif hashes[1] |= 1U << 31; /* Make sure the broadcast bit is set. */ OTUS_LOCK(sc); otus_write(sc, AR_MAC_REG_GROUP_HASH_TBL_L, hashes[0]); otus_write(sc, AR_MAC_REG_GROUP_HASH_TBL_H, hashes[1]); r = otus_write_barrier(sc); /* XXX operating mode? filter? */ OTUS_UNLOCK(sc); return (r); } static int otus_updateedca(struct ieee80211com *ic) { struct otus_softc *sc = ic->ic_softc; OTUS_LOCK(sc); /* * XXX TODO: take temporary copy of EDCA information * when scheduling this so we have a more time-correct view * of things. * XXX TODO: this can be done on the net80211 level */ otus_updateedca_locked(sc); OTUS_UNLOCK(sc); return (0); } static void otus_updateedca_locked(struct otus_softc *sc) { #define EXP2(val) ((1 << (val)) - 1) #define AIFS(val) ((val) * 9 + 10) struct chanAccParams chp; struct ieee80211com *ic = &sc->sc_ic; const struct wmeParams *edca; ieee80211_wme_ic_getparams(ic, &chp); OTUS_LOCK_ASSERT(sc); edca = chp.cap_wmeParams; /* Set CWmin/CWmax values. */ otus_write(sc, AR_MAC_REG_AC0_CW, EXP2(edca[WME_AC_BE].wmep_logcwmax) << 16 | EXP2(edca[WME_AC_BE].wmep_logcwmin)); otus_write(sc, AR_MAC_REG_AC1_CW, EXP2(edca[WME_AC_BK].wmep_logcwmax) << 16 | EXP2(edca[WME_AC_BK].wmep_logcwmin)); otus_write(sc, AR_MAC_REG_AC2_CW, EXP2(edca[WME_AC_VI].wmep_logcwmax) << 16 | EXP2(edca[WME_AC_VI].wmep_logcwmin)); otus_write(sc, AR_MAC_REG_AC3_CW, EXP2(edca[WME_AC_VO].wmep_logcwmax) << 16 | EXP2(edca[WME_AC_VO].wmep_logcwmin)); otus_write(sc, AR_MAC_REG_AC4_CW, /* Special TXQ. */ EXP2(edca[WME_AC_VO].wmep_logcwmax) << 16 | EXP2(edca[WME_AC_VO].wmep_logcwmin)); /* Set AIFSN values. */ otus_write(sc, AR_MAC_REG_AC1_AC0_AIFS, AIFS(edca[WME_AC_VI].wmep_aifsn) << 24 | AIFS(edca[WME_AC_BK].wmep_aifsn) << 12 | AIFS(edca[WME_AC_BE].wmep_aifsn)); otus_write(sc, AR_MAC_REG_AC3_AC2_AIFS, AIFS(edca[WME_AC_VO].wmep_aifsn) << 16 | /* Special TXQ. */ AIFS(edca[WME_AC_VO].wmep_aifsn) << 4 | AIFS(edca[WME_AC_VI].wmep_aifsn) >> 8); /* Set TXOP limit. */ otus_write(sc, AR_MAC_REG_AC1_AC0_TXOP, edca[WME_AC_BK].wmep_txopLimit << 16 | edca[WME_AC_BE].wmep_txopLimit); otus_write(sc, AR_MAC_REG_AC3_AC2_TXOP, edca[WME_AC_VO].wmep_txopLimit << 16 | edca[WME_AC_VI].wmep_txopLimit); /* XXX ACK policy? */ (void)otus_write_barrier(sc); #undef AIFS #undef EXP2 } static void otus_updateslot(struct otus_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; uint32_t slottime; OTUS_LOCK_ASSERT(sc); slottime = IEEE80211_GET_SLOTTIME(ic); otus_write(sc, AR_MAC_REG_SLOT_TIME, slottime << 10); (void)otus_write_barrier(sc); } /* * Things to do based on 2GHz or 5GHz: * * + slottime * + dyn_sifs_ack * + rts_cts_rate * + slot time * + mac_rates * + mac_tpc * * And in the transmit path * + tpc: carl9170_tx_rate_tpc_chains * + carl9170_tx_physet() * + disable short premable tx */ int otus_init_mac(struct otus_softc *sc) { int error; OTUS_LOCK_ASSERT(sc); otus_write(sc, AR_MAC_REG_ACK_EXTENSION, 0x40); otus_write(sc, AR_MAC_REG_RETRY_MAX, 0); otus_write(sc, AR_MAC_REG_RX_THRESHOLD, 0xc1f80); otus_write(sc, AR_MAC_REG_RX_PE_DELAY, 0x70); otus_write(sc, AR_MAC_REG_EIFS_AND_SIFS, 0xa144000); otus_write(sc, AR_MAC_REG_SLOT_TIME, 9 << 10); otus_write(sc, AR_MAC_REG_TID_CFACK_CFEND_RATE, 0x19000000); /* NAV protects ACK only (in TXOP). */ otus_write(sc, AR_MAC_REG_TXOP_DURATION, 0x201); /* Set beacon Tx power to 0x7. */ otus_write(sc, AR_MAC_REG_BCN_HT1, 0x8000170); otus_write(sc, AR_MAC_REG_BACKOFF_PROTECT, 0x105); otus_write(sc, AR_MAC_REG_AMPDU_FACTOR, 0x10000a); otus_set_rx_filter(sc); otus_write(sc, AR_MAC_REG_BASIC_RATE, 0x150f); otus_write(sc, AR_MAC_REG_MANDATORY_RATE, 0x150f); otus_write(sc, AR_MAC_REG_RTS_CTS_RATE, 0x10b01bb); otus_write(sc, AR_MAC_REG_ACK_TPC, 0x4003c1e); /* Enable LED0 and LED1. */ otus_write(sc, AR_GPIO_REG_PORT_TYPE, 0x3); otus_write(sc, AR_GPIO_REG_PORT_DATA, 0x3); /* Switch MAC to OTUS interface. */ otus_write(sc, 0x1c3600, 0x3); otus_write(sc, AR_MAC_REG_AMPDU_RX_THRESH, 0xffff); otus_write(sc, AR_MAC_REG_MISC_680, 0xf00008); /* Disable Rx timeout (workaround). */ otus_write(sc, AR_MAC_REG_RX_TIMEOUT, 0); /* Set USB Rx stream mode maximum frame number to 2. */ otus_write(sc, 0x1e1110, 0x4); /* Set USB Rx stream mode timeout to 10us. */ otus_write(sc, 0x1e1114, 0x80); /* Set clock frequency to 88/80MHz. */ otus_write(sc, AR_PWR_REG_CLOCK_SEL, 0x73); /* Set WLAN DMA interrupt mode: generate intr per packet. */ otus_write(sc, AR_MAC_REG_TXRX_MPI, 0x110011); otus_write(sc, AR_MAC_REG_FCS_SELECT, 0x4); otus_write(sc, AR_MAC_REG_TXOP_NOT_ENOUGH_INDICATION, 0x141e0f48); /* Disable HW decryption for now. */ otus_write(sc, AR_MAC_REG_ENCRYPTION, 0x78); if ((error = otus_write_barrier(sc)) != 0) return error; /* Set default EDCA parameters. */ otus_updateedca_locked(sc); return 0; } /* * Return default value for PHY register based on current operating mode. */ uint32_t otus_phy_get_def(struct otus_softc *sc, uint32_t reg) { int i; for (i = 0; i < nitems(ar5416_phy_regs); i++) if (AR_PHY(ar5416_phy_regs[i]) == reg) return sc->phy_vals[i]; return 0; /* Register not found. */ } /* * Update PHY's programming based on vendor-specific data stored in EEPROM. * This is for FEM-type devices only. */ int otus_set_board_values(struct otus_softc *sc, struct ieee80211_channel *c) { const struct ModalEepHeader *eep; uint32_t tmp, offset; if (IEEE80211_IS_CHAN_5GHZ(c)) eep = &sc->eeprom.modalHeader[0]; else eep = &sc->eeprom.modalHeader[1]; /* Offset of chain 2. */ offset = 2 * 0x1000; tmp = le32toh(eep->antCtrlCommon); otus_write(sc, AR_PHY_SWITCH_COM, tmp); tmp = le32toh(eep->antCtrlChain[0]); otus_write(sc, AR_PHY_SWITCH_CHAIN_0, tmp); tmp = le32toh(eep->antCtrlChain[1]); otus_write(sc, AR_PHY_SWITCH_CHAIN_0 + offset, tmp); if (1 /* sc->sc_sco == AR_SCO_SCN */) { tmp = otus_phy_get_def(sc, AR_PHY_SETTLING); tmp &= ~(0x7f << 7); tmp |= (eep->switchSettling & 0x7f) << 7; otus_write(sc, AR_PHY_SETTLING, tmp); } tmp = otus_phy_get_def(sc, AR_PHY_DESIRED_SZ); tmp &= ~0xffff; tmp |= eep->pgaDesiredSize << 8 | eep->adcDesiredSize; otus_write(sc, AR_PHY_DESIRED_SZ, tmp); tmp = eep->txEndToXpaOff << 24 | eep->txEndToXpaOff << 16 | eep->txFrameToXpaOn << 8 | eep->txFrameToXpaOn; otus_write(sc, AR_PHY_RF_CTL4, tmp); tmp = otus_phy_get_def(sc, AR_PHY_RF_CTL3); tmp &= ~(0xff << 16); tmp |= eep->txEndToRxOn << 16; otus_write(sc, AR_PHY_RF_CTL3, tmp); tmp = otus_phy_get_def(sc, AR_PHY_CCA); tmp &= ~(0x7f << 12); tmp |= (eep->thresh62 & 0x7f) << 12; otus_write(sc, AR_PHY_CCA, tmp); tmp = otus_phy_get_def(sc, AR_PHY_RXGAIN); tmp &= ~(0x3f << 12); tmp |= (eep->txRxAttenCh[0] & 0x3f) << 12; otus_write(sc, AR_PHY_RXGAIN, tmp); tmp = otus_phy_get_def(sc, AR_PHY_RXGAIN + offset); tmp &= ~(0x3f << 12); tmp |= (eep->txRxAttenCh[1] & 0x3f) << 12; otus_write(sc, AR_PHY_RXGAIN + offset, tmp); tmp = otus_phy_get_def(sc, AR_PHY_GAIN_2GHZ); tmp &= ~(0x3f << 18); tmp |= (eep->rxTxMarginCh[0] & 0x3f) << 18; if (IEEE80211_IS_CHAN_5GHZ(c)) { tmp &= ~(0xf << 10); tmp |= (eep->bswMargin[0] & 0xf) << 10; } otus_write(sc, AR_PHY_GAIN_2GHZ, tmp); tmp = otus_phy_get_def(sc, AR_PHY_GAIN_2GHZ + offset); tmp &= ~(0x3f << 18); tmp |= (eep->rxTxMarginCh[1] & 0x3f) << 18; otus_write(sc, AR_PHY_GAIN_2GHZ + offset, tmp); tmp = otus_phy_get_def(sc, AR_PHY_TIMING_CTRL4); tmp &= ~(0x3f << 5 | 0x1f); tmp |= (eep->iqCalICh[0] & 0x3f) << 5 | (eep->iqCalQCh[0] & 0x1f); otus_write(sc, AR_PHY_TIMING_CTRL4, tmp); tmp = otus_phy_get_def(sc, AR_PHY_TIMING_CTRL4 + offset); tmp &= ~(0x3f << 5 | 0x1f); tmp |= (eep->iqCalICh[1] & 0x3f) << 5 | (eep->iqCalQCh[1] & 0x1f); otus_write(sc, AR_PHY_TIMING_CTRL4 + offset, tmp); tmp = otus_phy_get_def(sc, AR_PHY_TPCRG1); tmp &= ~(0xf << 16); tmp |= (eep->xpd & 0xf) << 16; otus_write(sc, AR_PHY_TPCRG1, tmp); return otus_write_barrier(sc); } int otus_program_phy(struct otus_softc *sc, struct ieee80211_channel *c) { const uint32_t *vals; int error, i; /* Select PHY programming based on band and bandwidth. */ if (IEEE80211_IS_CHAN_2GHZ(c)) { if (IEEE80211_IS_CHAN_HT40(c)) vals = ar5416_phy_vals_2ghz_40mhz; else vals = ar5416_phy_vals_2ghz_20mhz; } else { if (IEEE80211_IS_CHAN_HT40(c)) vals = ar5416_phy_vals_5ghz_40mhz; else vals = ar5416_phy_vals_5ghz_20mhz; } for (i = 0; i < nitems(ar5416_phy_regs); i++) otus_write(sc, AR_PHY(ar5416_phy_regs[i]), vals[i]); sc->phy_vals = vals; if (sc->eeprom.baseEepHeader.deviceType == 0x80) /* FEM */ if ((error = otus_set_board_values(sc, c)) != 0) return error; /* Initial Tx power settings. */ otus_write(sc, AR_PHY_POWER_TX_RATE_MAX, 0x7f); otus_write(sc, AR_PHY_POWER_TX_RATE1, 0x3f3f3f3f); otus_write(sc, AR_PHY_POWER_TX_RATE2, 0x3f3f3f3f); otus_write(sc, AR_PHY_POWER_TX_RATE3, 0x3f3f3f3f); otus_write(sc, AR_PHY_POWER_TX_RATE4, 0x3f3f3f3f); otus_write(sc, AR_PHY_POWER_TX_RATE5, 0x3f3f3f3f); otus_write(sc, AR_PHY_POWER_TX_RATE6, 0x3f3f3f3f); otus_write(sc, AR_PHY_POWER_TX_RATE7, 0x3f3f3f3f); otus_write(sc, AR_PHY_POWER_TX_RATE8, 0x3f3f3f3f); otus_write(sc, AR_PHY_POWER_TX_RATE9, 0x3f3f3f3f); if (IEEE80211_IS_CHAN_2GHZ(c)) otus_write(sc, AR_PWR_REG_PLL_ADDAC, 0x5163); else otus_write(sc, AR_PWR_REG_PLL_ADDAC, 0x5143); return otus_write_barrier(sc); } static __inline uint8_t otus_reverse_bits(uint8_t v) { v = ((v >> 1) & 0x55) | ((v & 0x55) << 1); v = ((v >> 2) & 0x33) | ((v & 0x33) << 2); v = ((v >> 4) & 0x0f) | ((v & 0x0f) << 4); return v; } int otus_set_rf_bank4(struct otus_softc *sc, struct ieee80211_channel *c) { uint8_t chansel, d0, d1; uint16_t data; int error; OTUS_LOCK_ASSERT(sc); d0 = 0; if (IEEE80211_IS_CHAN_5GHZ(c)) { chansel = (c->ic_freq - 4800) / 5; if (chansel & 1) d0 |= AR_BANK4_AMODE_REFSEL(2); else d0 |= AR_BANK4_AMODE_REFSEL(1); } else { d0 |= AR_BANK4_AMODE_REFSEL(2); if (c->ic_freq == 2484) { /* CH 14 */ d0 |= AR_BANK4_BMODE_LF_SYNTH_FREQ; chansel = 10 + (c->ic_freq - 2274) / 5; } else chansel = 16 + (c->ic_freq - 2272) / 5; chansel <<= 2; } d0 |= AR_BANK4_ADDR(1) | AR_BANK4_CHUP; d1 = otus_reverse_bits(chansel); /* Write bits 0-4 of d0 and d1. */ data = (d1 & 0x1f) << 5 | (d0 & 0x1f); otus_write(sc, AR_PHY(44), data); /* Write bits 5-7 of d0 and d1. */ data = (d1 >> 5) << 5 | (d0 >> 5); otus_write(sc, AR_PHY(58), data); if ((error = otus_write_barrier(sc)) == 0) otus_delay_ms(sc, 10); return error; } void otus_get_delta_slope(uint32_t coeff, uint32_t *exponent, uint32_t *mantissa) { #define COEFF_SCALE_SHIFT 24 uint32_t exp, man; /* exponent = 14 - floor(log2(coeff)) */ for (exp = 31; exp > 0; exp--) if (coeff & (1 << exp)) break; KASSERT(exp != 0, ("exp")); exp = 14 - (exp - COEFF_SCALE_SHIFT); /* mantissa = floor(coeff * 2^exponent + 0.5) */ man = coeff + (1 << (COEFF_SCALE_SHIFT - exp - 1)); *mantissa = man >> (COEFF_SCALE_SHIFT - exp); *exponent = exp - 16; #undef COEFF_SCALE_SHIFT } static int otus_set_chan(struct otus_softc *sc, struct ieee80211_channel *c, int assoc) { struct ieee80211com *ic = &sc->sc_ic; struct ar_cmd_frequency cmd; struct ar_rsp_frequency rsp; const uint32_t *vals; uint32_t coeff, exp, man, tmp; uint8_t code; int error, chan, i; error = 0; chan = ieee80211_chan2ieee(ic, c); OTUS_DPRINTF(sc, OTUS_DEBUG_RESET, "setting channel %d (%dMHz)\n", chan, c->ic_freq); tmp = IEEE80211_IS_CHAN_2GHZ(c) ? 0x105 : 0x104; otus_write(sc, AR_MAC_REG_DYNAMIC_SIFS_ACK, tmp); if ((error = otus_write_barrier(sc)) != 0) goto finish; /* Disable BB Heavy Clip. */ otus_write(sc, AR_PHY_HEAVY_CLIP_ENABLE, 0x200); if ((error = otus_write_barrier(sc)) != 0) goto finish; /* XXX Is that FREQ_START ? */ error = otus_cmd(sc, AR_CMD_FREQ_STRAT, NULL, 0, NULL, 0); if (error != 0) goto finish; /* Reprogram PHY and RF on channel band or bandwidth changes. */ if (sc->bb_reset || c->ic_flags != sc->sc_curchan->ic_flags) { OTUS_DPRINTF(sc, OTUS_DEBUG_RESET, "band switch\n"); /* Cold/Warm reset BB/ADDA. */ otus_write(sc, AR_PWR_REG_RESET, sc->bb_reset ? 0x800 : 0x400); if ((error = otus_write_barrier(sc)) != 0) goto finish; otus_write(sc, AR_PWR_REG_RESET, 0); if ((error = otus_write_barrier(sc)) != 0) goto finish; sc->bb_reset = 0; if ((error = otus_program_phy(sc, c)) != 0) { device_printf(sc->sc_dev, "%s: could not program PHY\n", __func__); goto finish; } /* Select RF programming based on band. */ if (IEEE80211_IS_CHAN_5GHZ(c)) vals = ar5416_banks_vals_5ghz; else vals = ar5416_banks_vals_2ghz; for (i = 0; i < nitems(ar5416_banks_regs); i++) otus_write(sc, AR_PHY(ar5416_banks_regs[i]), vals[i]); if ((error = otus_write_barrier(sc)) != 0) { device_printf(sc->sc_dev, "%s: could not program RF\n", __func__); goto finish; } code = AR_CMD_RF_INIT; } else { code = AR_CMD_FREQUENCY; } if ((error = otus_set_rf_bank4(sc, c)) != 0) goto finish; tmp = (sc->txmask == 0x5) ? 0x340 : 0x240; otus_write(sc, AR_PHY_TURBO, tmp); if ((error = otus_write_barrier(sc)) != 0) goto finish; /* Send firmware command to set channel. */ cmd.freq = htole32((uint32_t)c->ic_freq * 1000); cmd.dynht2040 = htole32(0); cmd.htena = htole32(1); /* Set Delta Slope (exponent and mantissa). */ coeff = (100 << 24) / c->ic_freq; otus_get_delta_slope(coeff, &exp, &man); cmd.dsc_exp = htole32(exp); cmd.dsc_man = htole32(man); OTUS_DPRINTF(sc, OTUS_DEBUG_RESET, "ds coeff=%u exp=%u man=%u\n", coeff, exp, man); /* For Short GI, coeff is 9/10 that of normal coeff. */ coeff = (9 * coeff) / 10; otus_get_delta_slope(coeff, &exp, &man); cmd.dsc_shgi_exp = htole32(exp); cmd.dsc_shgi_man = htole32(man); OTUS_DPRINTF(sc, OTUS_DEBUG_RESET, "ds shgi coeff=%u exp=%u man=%u\n", coeff, exp, man); /* Set wait time for AGC and noise calibration (100 or 200ms). */ cmd.check_loop_count = assoc ? htole32(2000) : htole32(1000); OTUS_DPRINTF(sc, OTUS_DEBUG_RESET, "%s\n", (code == AR_CMD_RF_INIT) ? "RF_INIT" : "FREQUENCY"); error = otus_cmd(sc, code, &cmd, sizeof cmd, &rsp, sizeof(rsp)); if (error != 0) goto finish; if ((rsp.status & htole32(AR_CAL_ERR_AGC | AR_CAL_ERR_NF_VAL)) != 0) { OTUS_DPRINTF(sc, OTUS_DEBUG_RESET, "status=0x%x\n", le32toh(rsp.status)); /* Force cold reset on next channel. */ sc->bb_reset = 1; } #ifdef USB_DEBUG if (otus_debug & OTUS_DEBUG_RESET) { device_printf(sc->sc_dev, "calibration status=0x%x\n", le32toh(rsp.status)); for (i = 0; i < 2; i++) { /* 2 Rx chains */ /* Sign-extend 9-bit NF values. */ device_printf(sc->sc_dev, "noisefloor chain %d=%d\n", i, (((int32_t)le32toh(rsp.nf[i])) << 4) >> 23); device_printf(sc->sc_dev, "noisefloor ext chain %d=%d\n", i, ((int32_t)le32toh(rsp.nf_ext[i])) >> 23); } } #endif for (i = 0; i < OTUS_NUM_CHAINS; i++) { sc->sc_nf[i] = ((((int32_t)le32toh(rsp.nf[i])) << 4) >> 23); } sc->sc_curchan = c; finish: return (error); } #ifdef notyet int otus_set_key(struct ieee80211com *ic, struct ieee80211_node *ni, struct ieee80211_key *k) { struct otus_softc *sc = ic->ic_softc; struct otus_cmd_key cmd; /* Defer setting of WEP keys until interface is brought up. */ if ((ic->ic_if.if_flags & (IFF_UP | IFF_RUNNING)) != (IFF_UP | IFF_RUNNING)) return 0; /* Do it in a process context. */ cmd.key = *k; cmd.associd = (ni != NULL) ? ni->ni_associd : 0; otus_do_async(sc, otus_set_key_cb, &cmd, sizeof cmd); return 0; } void otus_set_key_cb(struct otus_softc *sc, void *arg) { struct otus_cmd_key *cmd = arg; struct ieee80211_key *k = &cmd->key; struct ar_cmd_ekey key; uint16_t cipher; int error; memset(&key, 0, sizeof key); if (k->k_flags & IEEE80211_KEY_GROUP) { key.uid = htole16(k->k_id); IEEE80211_ADDR_COPY(key.macaddr, sc->sc_ic.ic_myaddr); key.macaddr[0] |= 0x80; } else { key.uid = htole16(OTUS_UID(cmd->associd)); IEEE80211_ADDR_COPY(key.macaddr, ni->ni_macaddr); } key.kix = htole16(0); /* Map net80211 cipher to hardware. */ switch (k->k_cipher) { case IEEE80211_CIPHER_WEP40: cipher = AR_CIPHER_WEP64; break; case IEEE80211_CIPHER_WEP104: cipher = AR_CIPHER_WEP128; break; case IEEE80211_CIPHER_TKIP: cipher = AR_CIPHER_TKIP; break; case IEEE80211_CIPHER_CCMP: cipher = AR_CIPHER_AES; break; default: return; } key.cipher = htole16(cipher); memcpy(key.key, k->k_key, MIN(k->k_len, 16)); error = otus_cmd(sc, AR_CMD_EKEY, &key, sizeof key, NULL, 0); if (error != 0 || k->k_cipher != IEEE80211_CIPHER_TKIP) return; /* TKIP: set Tx/Rx MIC Key. */ key.kix = htole16(1); memcpy(key.key, k->k_key + 16, 16); (void)otus_cmd(sc, AR_CMD_EKEY, &key, sizeof key, NULL, 0); } void otus_delete_key(struct ieee80211com *ic, struct ieee80211_node *ni, struct ieee80211_key *k) { struct otus_softc *sc = ic->ic_softc; struct otus_cmd_key cmd; if (!(ic->ic_if.if_flags & IFF_RUNNING) || ic->ic_state != IEEE80211_S_RUN) return; /* Nothing to do. */ /* Do it in a process context. */ cmd.key = *k; cmd.associd = (ni != NULL) ? ni->ni_associd : 0; otus_do_async(sc, otus_delete_key_cb, &cmd, sizeof cmd); } void otus_delete_key_cb(struct otus_softc *sc, void *arg) { struct otus_cmd_key *cmd = arg; struct ieee80211_key *k = &cmd->key; uint32_t uid; if (k->k_flags & IEEE80211_KEY_GROUP) uid = htole32(k->k_id); else uid = htole32(OTUS_UID(cmd->associd)); (void)otus_cmd(sc, AR_CMD_DKEY, &uid, sizeof uid, NULL, 0); } #endif /* * XXX TODO: check if we have to be doing any calibration in the host * or whether it's purely a firmware thing. */ void otus_calibrate_to(void *arg, int pending) { #if 0 struct otus_softc *sc = arg; device_printf(sc->sc_dev, "%s: called\n", __func__); struct ieee80211com *ic = &sc->sc_ic; struct ieee80211_node *ni; int s; if (usbd_is_dying(sc->sc_udev)) return; usbd_ref_incr(sc->sc_udev); s = splnet(); ni = ic->ic_bss; ieee80211_amrr_choose(&sc->amrr, ni, &((struct otus_node *)ni)->amn); splx(s); if (!usbd_is_dying(sc->sc_udev)) timeout_add_sec(&sc->calib_to, 1); usbd_ref_decr(sc->sc_udev); #endif } int otus_set_bssid(struct otus_softc *sc, const uint8_t *bssid) { OTUS_LOCK_ASSERT(sc); otus_write(sc, AR_MAC_REG_BSSID_L, bssid[0] | bssid[1] << 8 | bssid[2] << 16 | bssid[3] << 24); otus_write(sc, AR_MAC_REG_BSSID_H, bssid[4] | bssid[5] << 8); return otus_write_barrier(sc); } int otus_set_macaddr(struct otus_softc *sc, const uint8_t *addr) { OTUS_LOCK_ASSERT(sc); otus_write(sc, AR_MAC_REG_MAC_ADDR_L, addr[0] | addr[1] << 8 | addr[2] << 16 | addr[3] << 24); otus_write(sc, AR_MAC_REG_MAC_ADDR_H, addr[4] | addr[5] << 8); return otus_write_barrier(sc); } /* Default single-LED. */ void otus_led_newstate_type1(struct otus_softc *sc) { /* TBD */ device_printf(sc->sc_dev, "%s: TODO\n", __func__); } /* NETGEAR, dual-LED. */ void otus_led_newstate_type2(struct otus_softc *sc) { /* TBD */ device_printf(sc->sc_dev, "%s: TODO\n", __func__); } /* NETGEAR, single-LED/3 colors (blue, red, purple.) */ void otus_led_newstate_type3(struct otus_softc *sc) { #if 0 struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); uint32_t state = sc->led_state; OTUS_LOCK_ASSERT(sc); if (!vap) { state = 0; /* led off */ } else if (vap->iv_state == IEEE80211_S_INIT) { state = 0; /* LED off. */ } else if (vap->iv_state == IEEE80211_S_RUN) { /* Associated, LED always on. */ if (IEEE80211_IS_CHAN_2GHZ(sc->sc_curchan)) state = AR_LED0_ON; /* 2GHz=>Red. */ else state = AR_LED1_ON; /* 5GHz=>Blue. */ } else { /* Scanning, blink LED. */ state ^= AR_LED0_ON | AR_LED1_ON; if (IEEE80211_IS_CHAN_2GHZ(sc->sc_curchan)) state &= ~AR_LED1_ON; else state &= ~AR_LED0_ON; } if (state != sc->led_state) { otus_write(sc, AR_GPIO_REG_PORT_DATA, state); if (otus_write_barrier(sc) == 0) sc->led_state = state; } #endif } static uint8_t zero_macaddr[IEEE80211_ADDR_LEN] = { 0,0,0,0,0,0 }; /* * Set up operating mode, MAC/BSS address and RX filter. */ static void otus_set_operating_mode(struct otus_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap; uint32_t cam_mode = AR_MAC_CAM_DEFAULTS; uint32_t rx_ctrl = AR_MAC_RX_CTRL_DEAGG | AR_MAC_RX_CTRL_SHORT_FILTER; uint32_t sniffer = AR_MAC_SNIFFER_DEFAULTS; uint32_t enc_mode = 0x78; /* XXX */ const uint8_t *macaddr; uint8_t bssid[IEEE80211_ADDR_LEN]; struct ieee80211_node *ni; OTUS_LOCK_ASSERT(sc); /* * If we're in sniffer mode or we don't have a MAC * address assigned, ensure it gets reset to all-zero. */ IEEE80211_ADDR_COPY(bssid, zero_macaddr); vap = TAILQ_FIRST(&ic->ic_vaps); macaddr = vap ? vap->iv_myaddr : ic->ic_macaddr; switch (ic->ic_opmode) { case IEEE80211_M_STA: if (vap) { ni = ieee80211_ref_node(vap->iv_bss); IEEE80211_ADDR_COPY(bssid, ni->ni_bssid); ieee80211_free_node(ni); } cam_mode |= AR_MAC_CAM_STA; rx_ctrl |= AR_MAC_RX_CTRL_PASS_TO_HOST; break; case IEEE80211_M_MONITOR: /* * Note: monitor mode ends up causing the MAC to * generate ACK frames for everything it sees. * So don't do that; instead just put it in STA mode * and disable RX filters. */ default: cam_mode |= AR_MAC_CAM_STA; rx_ctrl |= AR_MAC_RX_CTRL_PASS_TO_HOST; break; } /* * TODO: if/when we do hardware encryption, ensure it's * disabled if the NIC is in monitor mode. */ otus_write(sc, AR_MAC_REG_SNIFFER, sniffer); otus_write(sc, AR_MAC_REG_CAM_MODE, cam_mode); otus_write(sc, AR_MAC_REG_ENCRYPTION, enc_mode); otus_write(sc, AR_MAC_REG_RX_CONTROL, rx_ctrl); otus_set_macaddr(sc, macaddr); otus_set_bssid(sc, bssid); /* XXX barrier? */ } static void otus_set_rx_filter(struct otus_softc *sc) { // struct ieee80211com *ic = &sc->sc_ic; OTUS_LOCK_ASSERT(sc); #if 0 if (ic->ic_allmulti > 0 || ic->ic_promisc > 0 || ic->ic_opmode == IEEE80211_M_MONITOR) { otus_write(sc, AR_MAC_REG_FRAMETYPE_FILTER, 0xff00ffff); } else { #endif /* Filter any control frames, BAR is bit 24. */ otus_write(sc, AR_MAC_REG_FRAMETYPE_FILTER, 0x0500ffff); #if 0 } #endif } int otus_init(struct otus_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; int error; OTUS_UNLOCK_ASSERT(sc); OTUS_LOCK(sc); /* Drain any pending TX frames */ otus_drain_mbufq(sc); /* Init MAC */ if ((error = otus_init_mac(sc)) != 0) { OTUS_UNLOCK(sc); device_printf(sc->sc_dev, "%s: could not initialize MAC\n", __func__); return error; } otus_set_operating_mode(sc); otus_set_rx_filter(sc); (void) otus_set_operating_mode(sc); sc->bb_reset = 1; /* Force cold reset. */ if ((error = otus_set_chan(sc, ic->ic_curchan, 0)) != 0) { OTUS_UNLOCK(sc); device_printf(sc->sc_dev, "%s: could not set channel\n", __func__); return error; } /* Start Rx. */ otus_write(sc, AR_MAC_REG_DMA_TRIGGER, 0x100); (void)otus_write_barrier(sc); sc->sc_running = 1; OTUS_UNLOCK(sc); return 0; } void otus_stop(struct otus_softc *sc) { #if 0 int s; #endif OTUS_UNLOCK_ASSERT(sc); OTUS_LOCK(sc); sc->sc_running = 0; sc->sc_tx_timer = 0; OTUS_UNLOCK(sc); taskqueue_drain_timeout(taskqueue_thread, &sc->scan_to); taskqueue_drain_timeout(taskqueue_thread, &sc->calib_to); taskqueue_drain(taskqueue_thread, &sc->tx_task); OTUS_LOCK(sc); sc->sc_running = 0; /* Stop Rx. */ otus_write(sc, AR_MAC_REG_DMA_TRIGGER, 0); (void)otus_write_barrier(sc); /* Drain any pending TX frames */ otus_drain_mbufq(sc); OTUS_UNLOCK(sc); } Index: head/sys/dev/usb/wlan/if_run.c =================================================================== --- head/sys/dev/usb/wlan/if_run.c (revision 365418) +++ head/sys/dev/usb/wlan/if_run.c (revision 365419) @@ -1,6445 +1,6445 @@ /*- * Copyright (c) 2008,2010 Damien Bergamini * ported to FreeBSD by Akinori Furukoshi * USB Consulting, Hans Petter Selasky * Copyright (c) 2013-2014 Kevin Lo * * Permission to use, copy, modify, and distribute this software for any * purpose with or without fee is hereby granted, provided that the above * copyright notice and this permission notice appear in all copies. * * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. */ #include __FBSDID("$FreeBSD$"); /*- * Ralink Technology RT2700U/RT2800U/RT3000U/RT3900E chipset driver. * http://www.ralinktech.com/ */ #include "opt_wlan.h" #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #ifdef IEEE80211_SUPPORT_SUPERG #include #endif #include #include #include "usbdevs.h" #define USB_DEBUG_VAR run_debug #include #include #include #include #ifdef USB_DEBUG #define RUN_DEBUG #endif #ifdef RUN_DEBUG int run_debug = 0; static SYSCTL_NODE(_hw_usb, OID_AUTO, run, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, "USB run"); SYSCTL_INT(_hw_usb_run, OID_AUTO, debug, CTLFLAG_RWTUN, &run_debug, 0, "run debug level"); enum { RUN_DEBUG_XMIT = 0x00000001, /* basic xmit operation */ RUN_DEBUG_XMIT_DESC = 0x00000002, /* xmit descriptors */ RUN_DEBUG_RECV = 0x00000004, /* basic recv operation */ RUN_DEBUG_RECV_DESC = 0x00000008, /* recv descriptors */ RUN_DEBUG_STATE = 0x00000010, /* 802.11 state transitions */ RUN_DEBUG_RATE = 0x00000020, /* rate adaptation */ RUN_DEBUG_USB = 0x00000040, /* usb requests */ RUN_DEBUG_FIRMWARE = 0x00000080, /* firmware(9) loading debug */ RUN_DEBUG_BEACON = 0x00000100, /* beacon handling */ RUN_DEBUG_INTR = 0x00000200, /* ISR */ RUN_DEBUG_TEMP = 0x00000400, /* temperature calibration */ RUN_DEBUG_ROM = 0x00000800, /* various ROM info */ RUN_DEBUG_KEY = 0x00001000, /* crypto keys management */ RUN_DEBUG_TXPWR = 0x00002000, /* dump Tx power values */ RUN_DEBUG_RSSI = 0x00004000, /* dump RSSI lookups */ RUN_DEBUG_RESET = 0x00008000, /* initialization progress */ RUN_DEBUG_CALIB = 0x00010000, /* calibration progress */ RUN_DEBUG_CMD = 0x00020000, /* command queue */ RUN_DEBUG_ANY = 0xffffffff }; #define RUN_DPRINTF(_sc, _m, ...) do { \ if (run_debug & (_m)) \ device_printf((_sc)->sc_dev, __VA_ARGS__); \ } while(0) #else #define RUN_DPRINTF(_sc, _m, ...) do { (void) _sc; } while (0) #endif #define IEEE80211_HAS_ADDR4(wh) IEEE80211_IS_DSTODS(wh) /* * Because of LOR in run_key_delete(), use atomic instead. * '& RUN_CMDQ_MASQ' is to loop cmdq[]. */ #define RUN_CMDQ_GET(c) (atomic_fetchadd_32((c), 1) & RUN_CMDQ_MASQ) static const STRUCT_USB_HOST_ID run_devs[] = { #define RUN_DEV(v,p) { USB_VP(USB_VENDOR_##v, USB_PRODUCT_##v##_##p) } #define RUN_DEV_EJECT(v,p) \ { USB_VPI(USB_VENDOR_##v, USB_PRODUCT_##v##_##p, RUN_EJECT) } #define RUN_EJECT 1 RUN_DEV(ABOCOM, RT2770), RUN_DEV(ABOCOM, RT2870), RUN_DEV(ABOCOM, RT3070), RUN_DEV(ABOCOM, RT3071), RUN_DEV(ABOCOM, RT3072), RUN_DEV(ABOCOM2, RT2870_1), RUN_DEV(ACCTON, RT2770), RUN_DEV(ACCTON, RT2870_1), RUN_DEV(ACCTON, RT2870_2), RUN_DEV(ACCTON, RT2870_3), RUN_DEV(ACCTON, RT2870_4), RUN_DEV(ACCTON, RT2870_5), RUN_DEV(ACCTON, RT3070), RUN_DEV(ACCTON, RT3070_1), RUN_DEV(ACCTON, RT3070_2), RUN_DEV(ACCTON, RT3070_3), RUN_DEV(ACCTON, RT3070_4), RUN_DEV(ACCTON, RT3070_5), RUN_DEV(AIRTIES, RT3070), RUN_DEV(ALLWIN, RT2070), RUN_DEV(ALLWIN, RT2770), RUN_DEV(ALLWIN, RT2870), RUN_DEV(ALLWIN, RT3070), RUN_DEV(ALLWIN, RT3071), RUN_DEV(ALLWIN, RT3072), RUN_DEV(ALLWIN, RT3572), RUN_DEV(AMIGO, RT2870_1), RUN_DEV(AMIGO, RT2870_2), RUN_DEV(AMIT, CGWLUSB2GNR), RUN_DEV(AMIT, RT2870_1), RUN_DEV(AMIT2, RT2870), RUN_DEV(ASUS, RT2870_1), RUN_DEV(ASUS, RT2870_2), RUN_DEV(ASUS, RT2870_3), RUN_DEV(ASUS, RT2870_4), RUN_DEV(ASUS, RT2870_5), RUN_DEV(ASUS, USBN13), RUN_DEV(ASUS, RT3070_1), RUN_DEV(ASUS, USBN66), RUN_DEV(ASUS, USB_N53), RUN_DEV(ASUS2, USBN11), RUN_DEV(AZUREWAVE, RT2870_1), RUN_DEV(AZUREWAVE, RT2870_2), RUN_DEV(AZUREWAVE, RT3070_1), RUN_DEV(AZUREWAVE, RT3070_2), RUN_DEV(AZUREWAVE, RT3070_3), RUN_DEV(BELKIN, F9L1103), RUN_DEV(BELKIN, F5D8053V3), RUN_DEV(BELKIN, F5D8055), RUN_DEV(BELKIN, F5D8055V2), RUN_DEV(BELKIN, F6D4050V1), RUN_DEV(BELKIN, F6D4050V2), RUN_DEV(BELKIN, RT2870_1), RUN_DEV(BELKIN, RT2870_2), RUN_DEV(CISCOLINKSYS, AE1000), RUN_DEV(CISCOLINKSYS2, RT3070), RUN_DEV(CISCOLINKSYS3, RT3070), RUN_DEV(CONCEPTRONIC2, RT2870_1), RUN_DEV(CONCEPTRONIC2, RT2870_2), RUN_DEV(CONCEPTRONIC2, RT2870_3), RUN_DEV(CONCEPTRONIC2, RT2870_4), RUN_DEV(CONCEPTRONIC2, RT2870_5), RUN_DEV(CONCEPTRONIC2, RT2870_6), RUN_DEV(CONCEPTRONIC2, RT2870_7), RUN_DEV(CONCEPTRONIC2, RT2870_8), RUN_DEV(CONCEPTRONIC2, RT3070_1), RUN_DEV(CONCEPTRONIC2, RT3070_2), RUN_DEV(CONCEPTRONIC2, VIGORN61), RUN_DEV(COREGA, CGWLUSB300GNM), RUN_DEV(COREGA, RT2870_1), RUN_DEV(COREGA, RT2870_2), RUN_DEV(COREGA, RT2870_3), RUN_DEV(COREGA, RT3070), RUN_DEV(CYBERTAN, RT2870), RUN_DEV(DLINK, RT2870), RUN_DEV(DLINK, RT3072), RUN_DEV(DLINK, DWA125A3), RUN_DEV(DLINK, DWA127), RUN_DEV(DLINK, DWA140B3), RUN_DEV(DLINK, DWA160B2), RUN_DEV(DLINK, DWA140D1), RUN_DEV(DLINK, DWA162), RUN_DEV(DLINK2, DWA130), RUN_DEV(DLINK2, RT2870_1), RUN_DEV(DLINK2, RT2870_2), RUN_DEV(DLINK2, RT3070_1), RUN_DEV(DLINK2, RT3070_2), RUN_DEV(DLINK2, RT3070_3), RUN_DEV(DLINK2, RT3070_4), RUN_DEV(DLINK2, RT3070_5), RUN_DEV(DLINK2, RT3072), RUN_DEV(DLINK2, RT3072_1), RUN_DEV(EDIMAX, EW7717), RUN_DEV(EDIMAX, EW7718), RUN_DEV(EDIMAX, EW7733UND), RUN_DEV(EDIMAX, RT2870_1), RUN_DEV(ENCORE, RT3070_1), RUN_DEV(ENCORE, RT3070_2), RUN_DEV(ENCORE, RT3070_3), RUN_DEV(GIGABYTE, GNWB31N), RUN_DEV(GIGABYTE, GNWB32L), RUN_DEV(GIGABYTE, RT2870_1), RUN_DEV(GIGASET, RT3070_1), RUN_DEV(GIGASET, RT3070_2), RUN_DEV(GUILLEMOT, HWNU300), RUN_DEV(HAWKING, HWUN2), RUN_DEV(HAWKING, RT2870_1), RUN_DEV(HAWKING, RT2870_2), RUN_DEV(HAWKING, RT3070), RUN_DEV(IODATA, RT3072_1), RUN_DEV(IODATA, RT3072_2), RUN_DEV(IODATA, RT3072_3), RUN_DEV(IODATA, RT3072_4), RUN_DEV(LINKSYS4, RT3070), RUN_DEV(LINKSYS4, WUSB100), RUN_DEV(LINKSYS4, WUSB54GCV3), RUN_DEV(LINKSYS4, WUSB600N), RUN_DEV(LINKSYS4, WUSB600NV2), RUN_DEV(LOGITEC, RT2870_1), RUN_DEV(LOGITEC, RT2870_2), RUN_DEV(LOGITEC, RT2870_3), RUN_DEV(LOGITEC, LANW300NU2), RUN_DEV(LOGITEC, LANW150NU2), RUN_DEV(LOGITEC, LANW300NU2S), RUN_DEV(MELCO, WLIUCG300HP), RUN_DEV(MELCO, RT2870_2), RUN_DEV(MELCO, WLIUCAG300N), RUN_DEV(MELCO, WLIUCG300N), RUN_DEV(MELCO, WLIUCG301N), RUN_DEV(MELCO, WLIUCGN), RUN_DEV(MELCO, WLIUCGNM), RUN_DEV(MELCO, WLIUCG300HPV1), RUN_DEV(MELCO, WLIUCGNM2), RUN_DEV(MOTOROLA4, RT2770), RUN_DEV(MOTOROLA4, RT3070), RUN_DEV(MSI, RT3070_1), RUN_DEV(MSI, RT3070_2), RUN_DEV(MSI, RT3070_3), RUN_DEV(MSI, RT3070_4), RUN_DEV(MSI, RT3070_5), RUN_DEV(MSI, RT3070_6), RUN_DEV(MSI, RT3070_7), RUN_DEV(MSI, RT3070_8), RUN_DEV(MSI, RT3070_9), RUN_DEV(MSI, RT3070_10), RUN_DEV(MSI, RT3070_11), RUN_DEV(NETGEAR, WNDA4100), RUN_DEV(OVISLINK, RT3072), RUN_DEV(PARA, RT3070), RUN_DEV(PEGATRON, RT2870), RUN_DEV(PEGATRON, RT3070), RUN_DEV(PEGATRON, RT3070_2), RUN_DEV(PEGATRON, RT3070_3), RUN_DEV(PHILIPS, RT2870), RUN_DEV(PLANEX2, GWUS300MINIS), RUN_DEV(PLANEX2, GWUSMICRON), RUN_DEV(PLANEX2, RT2870), RUN_DEV(PLANEX2, RT3070), RUN_DEV(QCOM, RT2870), RUN_DEV(QUANTA, RT3070), RUN_DEV(RALINK, RT2070), RUN_DEV(RALINK, RT2770), RUN_DEV(RALINK, RT2870), RUN_DEV(RALINK, RT3070), RUN_DEV(RALINK, RT3071), RUN_DEV(RALINK, RT3072), RUN_DEV(RALINK, RT3370), RUN_DEV(RALINK, RT3572), RUN_DEV(RALINK, RT3573), RUN_DEV(RALINK, RT5370), RUN_DEV(RALINK, RT5372), RUN_DEV(RALINK, RT5572), RUN_DEV(RALINK, RT8070), RUN_DEV(SAMSUNG, WIS09ABGN), RUN_DEV(SAMSUNG2, RT2870_1), RUN_DEV(SENAO, RT2870_1), RUN_DEV(SENAO, RT2870_2), RUN_DEV(SENAO, RT2870_3), RUN_DEV(SENAO, RT2870_4), RUN_DEV(SENAO, RT3070), RUN_DEV(SENAO, RT3071), RUN_DEV(SENAO, RT3072_1), RUN_DEV(SENAO, RT3072_2), RUN_DEV(SENAO, RT3072_3), RUN_DEV(SENAO, RT3072_4), RUN_DEV(SENAO, RT3072_5), RUN_DEV(SITECOMEU, RT2770), RUN_DEV(SITECOMEU, RT2870_1), RUN_DEV(SITECOMEU, RT2870_2), RUN_DEV(SITECOMEU, RT2870_3), RUN_DEV(SITECOMEU, RT2870_4), RUN_DEV(SITECOMEU, RT3070), RUN_DEV(SITECOMEU, RT3070_2), RUN_DEV(SITECOMEU, RT3070_3), RUN_DEV(SITECOMEU, RT3070_4), RUN_DEV(SITECOMEU, RT3071), RUN_DEV(SITECOMEU, RT3072_1), RUN_DEV(SITECOMEU, RT3072_2), RUN_DEV(SITECOMEU, RT3072_3), RUN_DEV(SITECOMEU, RT3072_4), RUN_DEV(SITECOMEU, RT3072_5), RUN_DEV(SITECOMEU, RT3072_6), RUN_DEV(SITECOMEU, WL608), RUN_DEV(SPARKLAN, RT2870_1), RUN_DEV(SPARKLAN, RT3070), RUN_DEV(SWEEX2, LW153), RUN_DEV(SWEEX2, LW303), RUN_DEV(SWEEX2, LW313), RUN_DEV(TOSHIBA, RT3070), RUN_DEV(UMEDIA, RT2870_1), RUN_DEV(ZCOM, RT2870_1), RUN_DEV(ZCOM, RT2870_2), RUN_DEV(ZINWELL, RT2870_1), RUN_DEV(ZINWELL, RT2870_2), RUN_DEV(ZINWELL, RT3070), RUN_DEV(ZINWELL, RT3072_1), RUN_DEV(ZINWELL, RT3072_2), RUN_DEV(ZYXEL, RT2870_1), RUN_DEV(ZYXEL, RT2870_2), RUN_DEV(ZYXEL, RT3070), RUN_DEV_EJECT(ZYXEL, NWD2705), RUN_DEV_EJECT(RALINK, RT_STOR), #undef RUN_DEV_EJECT #undef RUN_DEV }; static device_probe_t run_match; static device_attach_t run_attach; static device_detach_t run_detach; static usb_callback_t run_bulk_rx_callback; static usb_callback_t run_bulk_tx_callback0; static usb_callback_t run_bulk_tx_callback1; static usb_callback_t run_bulk_tx_callback2; static usb_callback_t run_bulk_tx_callback3; static usb_callback_t run_bulk_tx_callback4; static usb_callback_t run_bulk_tx_callback5; static void run_autoinst(void *, struct usb_device *, struct usb_attach_arg *); static int run_driver_loaded(struct module *, int, void *); static void run_bulk_tx_callbackN(struct usb_xfer *xfer, usb_error_t error, u_int index); static struct ieee80211vap *run_vap_create(struct ieee80211com *, const char [IFNAMSIZ], int, enum ieee80211_opmode, int, const uint8_t [IEEE80211_ADDR_LEN], const uint8_t [IEEE80211_ADDR_LEN]); static void run_vap_delete(struct ieee80211vap *); static void run_cmdq_cb(void *, int); static void run_setup_tx_list(struct run_softc *, struct run_endpoint_queue *); static void run_unsetup_tx_list(struct run_softc *, struct run_endpoint_queue *); static int run_load_microcode(struct run_softc *); static int run_reset(struct run_softc *); static usb_error_t run_do_request(struct run_softc *, struct usb_device_request *, void *); static int run_read(struct run_softc *, uint16_t, uint32_t *); static int run_read_region_1(struct run_softc *, uint16_t, uint8_t *, int); static int run_write_2(struct run_softc *, uint16_t, uint16_t); static int run_write(struct run_softc *, uint16_t, uint32_t); static int run_write_region_1(struct run_softc *, uint16_t, const uint8_t *, int); static int run_set_region_4(struct run_softc *, uint16_t, uint32_t, int); static int run_efuse_read(struct run_softc *, uint16_t, uint16_t *, int); static int run_efuse_read_2(struct run_softc *, uint16_t, uint16_t *); static int run_eeprom_read_2(struct run_softc *, uint16_t, uint16_t *); static int run_rt2870_rf_write(struct run_softc *, uint32_t); static int run_rt3070_rf_read(struct run_softc *, uint8_t, uint8_t *); static int run_rt3070_rf_write(struct run_softc *, uint8_t, uint8_t); static int run_bbp_read(struct run_softc *, uint8_t, uint8_t *); static int run_bbp_write(struct run_softc *, uint8_t, uint8_t); static int run_mcu_cmd(struct run_softc *, uint8_t, uint16_t); static const char *run_get_rf(uint16_t); static void run_rt3593_get_txpower(struct run_softc *); static void run_get_txpower(struct run_softc *); static int run_read_eeprom(struct run_softc *); static struct ieee80211_node *run_node_alloc(struct ieee80211vap *, const uint8_t mac[IEEE80211_ADDR_LEN]); static int run_media_change(struct ifnet *); static int run_newstate(struct ieee80211vap *, enum ieee80211_state, int); static int run_wme_update(struct ieee80211com *); static void run_key_set_cb(void *); static int run_key_set(struct ieee80211vap *, struct ieee80211_key *); static void run_key_delete_cb(void *); static int run_key_delete(struct ieee80211vap *, struct ieee80211_key *); static void run_ratectl_to(void *); static void run_ratectl_cb(void *, int); static void run_drain_fifo(void *); static void run_iter_func(void *, struct ieee80211_node *); static void run_newassoc_cb(void *); static void run_newassoc(struct ieee80211_node *, int); static void run_recv_mgmt(struct ieee80211_node *, struct mbuf *, int, const struct ieee80211_rx_stats *, int, int); static void run_rx_frame(struct run_softc *, struct mbuf *, uint32_t); static void run_tx_free(struct run_endpoint_queue *pq, struct run_tx_data *, int); static void run_set_tx_desc(struct run_softc *, struct run_tx_data *); static int run_tx(struct run_softc *, struct mbuf *, struct ieee80211_node *); static int run_tx_mgt(struct run_softc *, struct mbuf *, struct ieee80211_node *); static int run_sendprot(struct run_softc *, const struct mbuf *, struct ieee80211_node *, int, int); static int run_tx_param(struct run_softc *, struct mbuf *, struct ieee80211_node *, const struct ieee80211_bpf_params *); static int run_raw_xmit(struct ieee80211_node *, struct mbuf *, const struct ieee80211_bpf_params *); static int run_transmit(struct ieee80211com *, struct mbuf *); static void run_start(struct run_softc *); static void run_parent(struct ieee80211com *); static void run_iq_calib(struct run_softc *, u_int); static void run_set_agc(struct run_softc *, uint8_t); static void run_select_chan_group(struct run_softc *, int); static void run_set_rx_antenna(struct run_softc *, int); static void run_rt2870_set_chan(struct run_softc *, u_int); static void run_rt3070_set_chan(struct run_softc *, u_int); static void run_rt3572_set_chan(struct run_softc *, u_int); static void run_rt3593_set_chan(struct run_softc *, u_int); static void run_rt5390_set_chan(struct run_softc *, u_int); static void run_rt5592_set_chan(struct run_softc *, u_int); static int run_set_chan(struct run_softc *, struct ieee80211_channel *); static void run_set_channel(struct ieee80211com *); static void run_getradiocaps(struct ieee80211com *, int, int *, struct ieee80211_channel[]); static void run_scan_start(struct ieee80211com *); static void run_scan_end(struct ieee80211com *); static void run_update_beacon(struct ieee80211vap *, int); static void run_update_beacon_cb(void *); static void run_updateprot(struct ieee80211com *); static void run_updateprot_cb(void *); static void run_usb_timeout_cb(void *); static void run_reset_livelock(struct run_softc *); static void run_enable_tsf_sync(struct run_softc *); static void run_enable_tsf(struct run_softc *); static void run_disable_tsf(struct run_softc *); static void run_get_tsf(struct run_softc *, uint64_t *); static void run_enable_mrr(struct run_softc *); static void run_set_txpreamble(struct run_softc *); static void run_set_basicrates(struct run_softc *); static void run_set_leds(struct run_softc *, uint16_t); static void run_set_bssid(struct run_softc *, const uint8_t *); static void run_set_macaddr(struct run_softc *, const uint8_t *); static void run_updateslot(struct ieee80211com *); static void run_updateslot_cb(void *); static void run_update_mcast(struct ieee80211com *); static int8_t run_rssi2dbm(struct run_softc *, uint8_t, uint8_t); static void run_update_promisc_locked(struct run_softc *); static void run_update_promisc(struct ieee80211com *); static void run_rt5390_bbp_init(struct run_softc *); static int run_bbp_init(struct run_softc *); static int run_rt3070_rf_init(struct run_softc *); static void run_rt3593_rf_init(struct run_softc *); static void run_rt5390_rf_init(struct run_softc *); static int run_rt3070_filter_calib(struct run_softc *, uint8_t, uint8_t, uint8_t *); static void run_rt3070_rf_setup(struct run_softc *); static void run_rt3593_rf_setup(struct run_softc *); static void run_rt5390_rf_setup(struct run_softc *); static int run_txrx_enable(struct run_softc *); static void run_adjust_freq_offset(struct run_softc *); static void run_init_locked(struct run_softc *); static void run_stop(void *); static void run_delay(struct run_softc *, u_int); static void run_update_chw(struct ieee80211com *ic); static int run_ampdu_enable(struct ieee80211_node *ni, struct ieee80211_tx_ampdu *tap); static eventhandler_tag run_etag; static const struct rt2860_rate { uint8_t rate; uint8_t mcs; enum ieee80211_phytype phy; uint8_t ctl_ridx; uint16_t sp_ack_dur; uint16_t lp_ack_dur; } rt2860_rates[] = { /* CCK rates (11b) */ { 2, 0, IEEE80211_T_DS, 0, 314, 314 }, { 4, 1, IEEE80211_T_DS, 1, 258, 162 }, { 11, 2, IEEE80211_T_DS, 2, 223, 127 }, { 22, 3, IEEE80211_T_DS, 3, 213, 117 }, /* OFDM rates (11a / 11g) */ { 12, 0, IEEE80211_T_OFDM, 4, 60, 60 }, { 18, 1, IEEE80211_T_OFDM, 4, 52, 52 }, { 24, 2, IEEE80211_T_OFDM, 6, 48, 48 }, { 36, 3, IEEE80211_T_OFDM, 6, 44, 44 }, { 48, 4, IEEE80211_T_OFDM, 8, 44, 44 }, { 72, 5, IEEE80211_T_OFDM, 8, 40, 40 }, { 96, 6, IEEE80211_T_OFDM, 8, 40, 40 }, { 108, 7, IEEE80211_T_OFDM, 8, 40, 40 }, /* MCS - single stream */ { 0x80, 0, IEEE80211_T_HT, 4, 60, 60 }, { 0x81, 1, IEEE80211_T_HT, 4, 60, 60 }, { 0x82, 2, IEEE80211_T_HT, 4, 60, 60 }, { 0x83, 3, IEEE80211_T_HT, 4, 60, 60 }, { 0x84, 4, IEEE80211_T_HT, 4, 60, 60 }, { 0x85, 5, IEEE80211_T_HT, 4, 60, 60 }, { 0x86, 6, IEEE80211_T_HT, 4, 60, 60 }, { 0x87, 7, IEEE80211_T_HT, 4, 60, 60 }, /* MCS - 2 streams */ { 0x88, 8, IEEE80211_T_HT, 4, 60, 60 }, { 0x89, 9, IEEE80211_T_HT, 4, 60, 60 }, { 0x8a, 10, IEEE80211_T_HT, 4, 60, 60 }, { 0x8b, 11, IEEE80211_T_HT, 4, 60, 60 }, { 0x8c, 12, IEEE80211_T_HT, 4, 60, 60 }, { 0x8d, 13, IEEE80211_T_HT, 4, 60, 60 }, { 0x8e, 14, IEEE80211_T_HT, 4, 60, 60 }, { 0x8f, 15, IEEE80211_T_HT, 4, 60, 60 }, /* MCS - 3 streams */ { 0x90, 16, IEEE80211_T_HT, 4, 60, 60 }, { 0x91, 17, IEEE80211_T_HT, 4, 60, 60 }, { 0x92, 18, IEEE80211_T_HT, 4, 60, 60 }, { 0x93, 19, IEEE80211_T_HT, 4, 60, 60 }, { 0x94, 20, IEEE80211_T_HT, 4, 60, 60 }, { 0x95, 21, IEEE80211_T_HT, 4, 60, 60 }, { 0x96, 22, IEEE80211_T_HT, 4, 60, 60 }, { 0x97, 23, IEEE80211_T_HT, 4, 60, 60 }, }; /* These are indexes into the above rt2860_rates[] array */ #define RT2860_RIDX_CCK1 0 #define RT2860_RIDX_CCK11 3 #define RT2860_RIDX_OFDM6 4 #define RT2860_RIDX_MCS0 12 #define RT2860_RIDX_MAX 36 static const struct { uint16_t reg; uint32_t val; } rt2870_def_mac[] = { RT2870_DEF_MAC }; static const struct { uint8_t reg; uint8_t val; } rt2860_def_bbp[] = { RT2860_DEF_BBP },rt5390_def_bbp[] = { RT5390_DEF_BBP },rt5592_def_bbp[] = { RT5592_DEF_BBP }; /* * Default values for BBP register R196 for RT5592. */ static const uint8_t rt5592_bbp_r196[] = { 0xe0, 0x1f, 0x38, 0x32, 0x08, 0x28, 0x19, 0x0a, 0xff, 0x00, 0x16, 0x10, 0x10, 0x0b, 0x36, 0x2c, 0x26, 0x24, 0x42, 0x36, 0x30, 0x2d, 0x4c, 0x46, 0x3d, 0x40, 0x3e, 0x42, 0x3d, 0x40, 0x3c, 0x34, 0x2c, 0x2f, 0x3c, 0x35, 0x2e, 0x2a, 0x49, 0x41, 0x36, 0x31, 0x30, 0x30, 0x0e, 0x0d, 0x28, 0x21, 0x1c, 0x16, 0x50, 0x4a, 0x43, 0x40, 0x10, 0x10, 0x10, 0x10, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x7d, 0x14, 0x32, 0x2c, 0x36, 0x4c, 0x43, 0x2c, 0x2e, 0x36, 0x30, 0x6e }; static const struct rfprog { uint8_t chan; uint32_t r1, r2, r3, r4; } rt2860_rf2850[] = { RT2860_RF2850 }; struct { uint8_t n, r, k; } rt3070_freqs[] = { RT3070_RF3052 }; static const struct rt5592_freqs { uint16_t n; uint8_t k, m, r; } rt5592_freqs_20mhz[] = { RT5592_RF5592_20MHZ },rt5592_freqs_40mhz[] = { RT5592_RF5592_40MHZ }; static const struct { uint8_t reg; uint8_t val; } rt3070_def_rf[] = { RT3070_DEF_RF },rt3572_def_rf[] = { RT3572_DEF_RF },rt3593_def_rf[] = { RT3593_DEF_RF },rt5390_def_rf[] = { RT5390_DEF_RF },rt5392_def_rf[] = { RT5392_DEF_RF },rt5592_def_rf[] = { RT5592_DEF_RF },rt5592_2ghz_def_rf[] = { RT5592_2GHZ_DEF_RF },rt5592_5ghz_def_rf[] = { RT5592_5GHZ_DEF_RF }; static const struct { u_int firstchan; u_int lastchan; uint8_t reg; uint8_t val; } rt5592_chan_5ghz[] = { RT5592_CHAN_5GHZ }; static const struct usb_config run_config[RUN_N_XFER] = { [RUN_BULK_TX_BE] = { .type = UE_BULK, .endpoint = UE_ADDR_ANY, .ep_index = 0, .direction = UE_DIR_OUT, .bufsize = RUN_MAX_TXSZ, .flags = {.pipe_bof = 1,.force_short_xfer = 1,}, .callback = run_bulk_tx_callback0, .timeout = 5000, /* ms */ }, [RUN_BULK_TX_BK] = { .type = UE_BULK, .endpoint = UE_ADDR_ANY, .direction = UE_DIR_OUT, .ep_index = 1, .bufsize = RUN_MAX_TXSZ, .flags = {.pipe_bof = 1,.force_short_xfer = 1,}, .callback = run_bulk_tx_callback1, .timeout = 5000, /* ms */ }, [RUN_BULK_TX_VI] = { .type = UE_BULK, .endpoint = UE_ADDR_ANY, .direction = UE_DIR_OUT, .ep_index = 2, .bufsize = RUN_MAX_TXSZ, .flags = {.pipe_bof = 1,.force_short_xfer = 1,}, .callback = run_bulk_tx_callback2, .timeout = 5000, /* ms */ }, [RUN_BULK_TX_VO] = { .type = UE_BULK, .endpoint = UE_ADDR_ANY, .direction = UE_DIR_OUT, .ep_index = 3, .bufsize = RUN_MAX_TXSZ, .flags = {.pipe_bof = 1,.force_short_xfer = 1,}, .callback = run_bulk_tx_callback3, .timeout = 5000, /* ms */ }, [RUN_BULK_TX_HCCA] = { .type = UE_BULK, .endpoint = UE_ADDR_ANY, .direction = UE_DIR_OUT, .ep_index = 4, .bufsize = RUN_MAX_TXSZ, .flags = {.pipe_bof = 1,.force_short_xfer = 1,.no_pipe_ok = 1,}, .callback = run_bulk_tx_callback4, .timeout = 5000, /* ms */ }, [RUN_BULK_TX_PRIO] = { .type = UE_BULK, .endpoint = UE_ADDR_ANY, .direction = UE_DIR_OUT, .ep_index = 5, .bufsize = RUN_MAX_TXSZ, .flags = {.pipe_bof = 1,.force_short_xfer = 1,.no_pipe_ok = 1,}, .callback = run_bulk_tx_callback5, .timeout = 5000, /* ms */ }, [RUN_BULK_RX] = { .type = UE_BULK, .endpoint = UE_ADDR_ANY, .direction = UE_DIR_IN, .bufsize = RUN_MAX_RXSZ, .flags = {.pipe_bof = 1,.short_xfer_ok = 1,}, .callback = run_bulk_rx_callback, } }; static void run_autoinst(void *arg, struct usb_device *udev, struct usb_attach_arg *uaa) { struct usb_interface *iface; struct usb_interface_descriptor *id; if (uaa->dev_state != UAA_DEV_READY) return; iface = usbd_get_iface(udev, 0); if (iface == NULL) return; id = iface->idesc; if (id == NULL || id->bInterfaceClass != UICLASS_MASS) return; if (usbd_lookup_id_by_uaa(run_devs, sizeof(run_devs), uaa)) return; if (usb_msc_eject(udev, 0, MSC_EJECT_STOPUNIT) == 0) uaa->dev_state = UAA_DEV_EJECTING; } static int run_driver_loaded(struct module *mod, int what, void *arg) { switch (what) { case MOD_LOAD: run_etag = EVENTHANDLER_REGISTER(usb_dev_configured, run_autoinst, NULL, EVENTHANDLER_PRI_ANY); break; case MOD_UNLOAD: EVENTHANDLER_DEREGISTER(usb_dev_configured, run_etag); break; default: return (EOPNOTSUPP); } return (0); } static int run_match(device_t self) { struct usb_attach_arg *uaa = device_get_ivars(self); if (uaa->usb_mode != USB_MODE_HOST) return (ENXIO); if (uaa->info.bConfigIndex != 0) return (ENXIO); if (uaa->info.bIfaceIndex != RT2860_IFACE_INDEX) return (ENXIO); return (usbd_lookup_id_by_uaa(run_devs, sizeof(run_devs), uaa)); } static int run_attach(device_t self) { struct run_softc *sc = device_get_softc(self); struct usb_attach_arg *uaa = device_get_ivars(self); struct ieee80211com *ic = &sc->sc_ic; uint32_t ver; uint8_t iface_index; int ntries, error; device_set_usb_desc(self); sc->sc_udev = uaa->device; sc->sc_dev = self; if (USB_GET_DRIVER_INFO(uaa) != RUN_EJECT) sc->sc_flags |= RUN_FLAG_FWLOAD_NEEDED; mtx_init(&sc->sc_mtx, device_get_nameunit(sc->sc_dev), MTX_NETWORK_LOCK, MTX_DEF); mbufq_init(&sc->sc_snd, ifqmaxlen); iface_index = RT2860_IFACE_INDEX; error = usbd_transfer_setup(uaa->device, &iface_index, sc->sc_xfer, run_config, RUN_N_XFER, sc, &sc->sc_mtx); if (error) { device_printf(self, "could not allocate USB transfers, " "err=%s\n", usbd_errstr(error)); goto detach; } RUN_LOCK(sc); /* wait for the chip to settle */ for (ntries = 0; ntries < 100; ntries++) { if (run_read(sc, RT2860_ASIC_VER_ID, &ver) != 0) { RUN_UNLOCK(sc); goto detach; } if (ver != 0 && ver != 0xffffffff) break; run_delay(sc, 10); } if (ntries == 100) { device_printf(sc->sc_dev, "timeout waiting for NIC to initialize\n"); RUN_UNLOCK(sc); goto detach; } sc->mac_ver = ver >> 16; sc->mac_rev = ver & 0xffff; /* retrieve RF rev. no and various other things from EEPROM */ run_read_eeprom(sc); device_printf(sc->sc_dev, "MAC/BBP RT%04X (rev 0x%04X), RF %s (MIMO %dT%dR), address %s\n", sc->mac_ver, sc->mac_rev, run_get_rf(sc->rf_rev), sc->ntxchains, sc->nrxchains, ether_sprintf(ic->ic_macaddr)); RUN_UNLOCK(sc); ic->ic_softc = sc; ic->ic_name = device_get_nameunit(self); ic->ic_phytype = IEEE80211_T_OFDM; /* not only, but not used */ ic->ic_opmode = IEEE80211_M_STA; /* default to BSS mode */ /* set device capabilities */ ic->ic_caps = IEEE80211_C_STA | /* station mode supported */ IEEE80211_C_MONITOR | /* monitor mode supported */ IEEE80211_C_IBSS | IEEE80211_C_HOSTAP | IEEE80211_C_WDS | /* 4-address traffic works */ IEEE80211_C_MBSS | IEEE80211_C_SHPREAMBLE | /* short preamble supported */ IEEE80211_C_SHSLOT | /* short slot time supported */ IEEE80211_C_SWAMSDUTX | /* Do software A-MSDU TX */ IEEE80211_C_FF | /* Atheros fast-frames */ IEEE80211_C_WME | /* WME */ IEEE80211_C_WPA; /* WPA1|WPA2(RSN) */ /* * RF2020 is not an 11n device. */ if (sc->rf_rev != RT3070_RF_2020) { device_printf(sc->sc_dev, "[HT] Enabling 802.11n\n"); ic->ic_htcaps = IEEE80211_HTC_HT | IEEE80211_HTC_AMPDU | IEEE80211_HTC_AMSDU | IEEE80211_HTCAP_MAXAMSDU_3839 | IEEE80211_HTCAP_SMPS_OFF; ic->ic_rxstream = sc->nrxchains; ic->ic_txstream = sc->ntxchains; } ic->ic_cryptocaps = IEEE80211_CRYPTO_WEP | IEEE80211_CRYPTO_AES_CCM | IEEE80211_CRYPTO_TKIPMIC | IEEE80211_CRYPTO_TKIP; ic->ic_flags |= IEEE80211_F_DATAPAD; ic->ic_flags_ext |= IEEE80211_FEXT_SWBMISS; run_getradiocaps(ic, IEEE80211_CHAN_MAX, &ic->ic_nchans, ic->ic_channels); ieee80211_ifattach(ic); ic->ic_scan_start = run_scan_start; ic->ic_scan_end = run_scan_end; ic->ic_set_channel = run_set_channel; ic->ic_getradiocaps = run_getradiocaps; ic->ic_node_alloc = run_node_alloc; ic->ic_newassoc = run_newassoc; ic->ic_updateslot = run_updateslot; ic->ic_update_mcast = run_update_mcast; ic->ic_wme.wme_update = run_wme_update; ic->ic_raw_xmit = run_raw_xmit; ic->ic_update_promisc = run_update_promisc; ic->ic_vap_create = run_vap_create; ic->ic_vap_delete = run_vap_delete; ic->ic_transmit = run_transmit; ic->ic_parent = run_parent; ic->ic_update_chw = run_update_chw; ic->ic_ampdu_enable = run_ampdu_enable; ieee80211_radiotap_attach(ic, &sc->sc_txtap.wt_ihdr, sizeof(sc->sc_txtap), RUN_TX_RADIOTAP_PRESENT, &sc->sc_rxtap.wr_ihdr, sizeof(sc->sc_rxtap), RUN_RX_RADIOTAP_PRESENT); TASK_INIT(&sc->cmdq_task, 0, run_cmdq_cb, sc); TASK_INIT(&sc->ratectl_task, 0, run_ratectl_cb, sc); usb_callout_init_mtx(&sc->ratectl_ch, &sc->sc_mtx, 0); if (bootverbose) ieee80211_announce(ic); return (0); detach: run_detach(self); return (ENXIO); } static void run_drain_mbufq(struct run_softc *sc) { struct mbuf *m; struct ieee80211_node *ni; RUN_LOCK_ASSERT(sc, MA_OWNED); while ((m = mbufq_dequeue(&sc->sc_snd)) != NULL) { ni = (struct ieee80211_node *)m->m_pkthdr.rcvif; m->m_pkthdr.rcvif = NULL; ieee80211_free_node(ni); m_freem(m); } } static int run_detach(device_t self) { struct run_softc *sc = device_get_softc(self); struct ieee80211com *ic = &sc->sc_ic; int i; RUN_LOCK(sc); sc->sc_detached = 1; RUN_UNLOCK(sc); /* stop all USB transfers */ usbd_transfer_unsetup(sc->sc_xfer, RUN_N_XFER); RUN_LOCK(sc); sc->ratectl_run = RUN_RATECTL_OFF; sc->cmdq_run = sc->cmdq_key_set = RUN_CMDQ_ABORT; /* free TX list, if any */ for (i = 0; i != RUN_EP_QUEUES; i++) run_unsetup_tx_list(sc, &sc->sc_epq[i]); /* Free TX queue */ run_drain_mbufq(sc); RUN_UNLOCK(sc); if (sc->sc_ic.ic_softc == sc) { /* drain tasks */ usb_callout_drain(&sc->ratectl_ch); ieee80211_draintask(ic, &sc->cmdq_task); ieee80211_draintask(ic, &sc->ratectl_task); ieee80211_ifdetach(ic); } mtx_destroy(&sc->sc_mtx); return (0); } static struct ieee80211vap * run_vap_create(struct ieee80211com *ic, const char name[IFNAMSIZ], int unit, enum ieee80211_opmode opmode, int flags, const uint8_t bssid[IEEE80211_ADDR_LEN], const uint8_t mac[IEEE80211_ADDR_LEN]) { struct run_softc *sc = ic->ic_softc; struct run_vap *rvp; struct ieee80211vap *vap; int i; if (sc->rvp_cnt >= RUN_VAP_MAX) { device_printf(sc->sc_dev, "number of VAPs maxed out\n"); return (NULL); } switch (opmode) { case IEEE80211_M_STA: /* enable s/w bmiss handling for sta mode */ flags |= IEEE80211_CLONE_NOBEACONS; /* fall though */ case IEEE80211_M_IBSS: case IEEE80211_M_MONITOR: case IEEE80211_M_HOSTAP: case IEEE80211_M_MBSS: /* other than WDS vaps, only one at a time */ if (!TAILQ_EMPTY(&ic->ic_vaps)) return (NULL); break; case IEEE80211_M_WDS: TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next){ if(vap->iv_opmode != IEEE80211_M_HOSTAP) continue; /* WDS vap's always share the local mac address. */ flags &= ~IEEE80211_CLONE_BSSID; break; } if (vap == NULL) { device_printf(sc->sc_dev, "wds only supported in ap mode\n"); return (NULL); } break; default: device_printf(sc->sc_dev, "unknown opmode %d\n", opmode); return (NULL); } rvp = malloc(sizeof(struct run_vap), M_80211_VAP, M_WAITOK | M_ZERO); vap = &rvp->vap; if (ieee80211_vap_setup(ic, vap, name, unit, opmode, flags, bssid) != 0) { /* out of memory */ free(rvp, M_80211_VAP); return (NULL); } vap->iv_update_beacon = run_update_beacon; vap->iv_max_aid = RT2870_WCID_MAX; /* * The linux rt2800 driver limits 1 stream devices to a 32KB * RX AMPDU. */ if (ic->ic_rxstream > 1) vap->iv_ampdu_rxmax = IEEE80211_HTCAP_MAXRXAMPDU_64K; else vap->iv_ampdu_rxmax = IEEE80211_HTCAP_MAXRXAMPDU_32K; vap->iv_ampdu_density = IEEE80211_HTCAP_MPDUDENSITY_2; /* 2uS */ /* * To delete the right key from h/w, we need wcid. * Luckily, there is unused space in ieee80211_key{}, wk_pad, * and matching wcid will be written into there. So, cast * some spells to remove 'const' from ieee80211_key{} */ vap->iv_key_delete = (void *)run_key_delete; vap->iv_key_set = (void *)run_key_set; /* override state transition machine */ rvp->newstate = vap->iv_newstate; vap->iv_newstate = run_newstate; if (opmode == IEEE80211_M_IBSS) { rvp->recv_mgmt = vap->iv_recv_mgmt; vap->iv_recv_mgmt = run_recv_mgmt; } ieee80211_ratectl_init(vap); ieee80211_ratectl_setinterval(vap, 1000 /* 1 sec */); /* complete setup */ ieee80211_vap_attach(vap, run_media_change, ieee80211_media_status, mac); /* make sure id is always unique */ for (i = 0; i < RUN_VAP_MAX; i++) { if((sc->rvp_bmap & 1 << i) == 0){ sc->rvp_bmap |= 1 << i; rvp->rvp_id = i; break; } } if (sc->rvp_cnt++ == 0) ic->ic_opmode = opmode; if (opmode == IEEE80211_M_HOSTAP) sc->cmdq_run = RUN_CMDQ_GO; RUN_DPRINTF(sc, RUN_DEBUG_STATE, "rvp_id=%d bmap=%x rvp_cnt=%d\n", rvp->rvp_id, sc->rvp_bmap, sc->rvp_cnt); return (vap); } static void run_vap_delete(struct ieee80211vap *vap) { struct run_vap *rvp = RUN_VAP(vap); struct ieee80211com *ic; struct run_softc *sc; uint8_t rvp_id; if (vap == NULL) return; ic = vap->iv_ic; sc = ic->ic_softc; RUN_LOCK(sc); m_freem(rvp->beacon_mbuf); rvp->beacon_mbuf = NULL; rvp_id = rvp->rvp_id; sc->ratectl_run &= ~(1 << rvp_id); sc->rvp_bmap &= ~(1 << rvp_id); run_set_region_4(sc, RT2860_SKEY(rvp_id, 0), 0, 128); run_set_region_4(sc, RT2860_BCN_BASE(rvp_id), 0, 512); --sc->rvp_cnt; RUN_DPRINTF(sc, RUN_DEBUG_STATE, "vap=%p rvp_id=%d bmap=%x rvp_cnt=%d\n", vap, rvp_id, sc->rvp_bmap, sc->rvp_cnt); RUN_UNLOCK(sc); ieee80211_ratectl_deinit(vap); ieee80211_vap_detach(vap); free(rvp, M_80211_VAP); } /* * There are numbers of functions need to be called in context thread. * Rather than creating taskqueue event for each of those functions, * here is all-for-one taskqueue callback function. This function * guarantees deferred functions are executed in the same order they * were enqueued. * '& RUN_CMDQ_MASQ' is to loop cmdq[]. */ static void run_cmdq_cb(void *arg, int pending) { struct run_softc *sc = arg; uint8_t i; /* call cmdq[].func locked */ RUN_LOCK(sc); for (i = sc->cmdq_exec; sc->cmdq[i].func && pending; i = sc->cmdq_exec, pending--) { RUN_DPRINTF(sc, RUN_DEBUG_CMD, "cmdq_exec=%d pending=%d\n", i, pending); if (sc->cmdq_run == RUN_CMDQ_GO) { /* * If arg0 is NULL, callback func needs more * than one arg. So, pass ptr to cmdq struct. */ if (sc->cmdq[i].arg0) sc->cmdq[i].func(sc->cmdq[i].arg0); else sc->cmdq[i].func(&sc->cmdq[i]); } sc->cmdq[i].arg0 = NULL; sc->cmdq[i].func = NULL; sc->cmdq_exec++; sc->cmdq_exec &= RUN_CMDQ_MASQ; } RUN_UNLOCK(sc); } static void run_setup_tx_list(struct run_softc *sc, struct run_endpoint_queue *pq) { struct run_tx_data *data; memset(pq, 0, sizeof(*pq)); STAILQ_INIT(&pq->tx_qh); STAILQ_INIT(&pq->tx_fh); for (data = &pq->tx_data[0]; data < &pq->tx_data[RUN_TX_RING_COUNT]; data++) { data->sc = sc; STAILQ_INSERT_TAIL(&pq->tx_fh, data, next); } pq->tx_nfree = RUN_TX_RING_COUNT; } static void run_unsetup_tx_list(struct run_softc *sc, struct run_endpoint_queue *pq) { struct run_tx_data *data; /* make sure any subsequent use of the queues will fail */ pq->tx_nfree = 0; STAILQ_INIT(&pq->tx_fh); STAILQ_INIT(&pq->tx_qh); /* free up all node references and mbufs */ for (data = &pq->tx_data[0]; data < &pq->tx_data[RUN_TX_RING_COUNT]; data++) { if (data->m != NULL) { m_freem(data->m); data->m = NULL; } if (data->ni != NULL) { ieee80211_free_node(data->ni); data->ni = NULL; } } } static int run_load_microcode(struct run_softc *sc) { usb_device_request_t req; const struct firmware *fw; const u_char *base; uint32_t tmp; int ntries, error; const uint64_t *temp; uint64_t bytes; RUN_UNLOCK(sc); fw = firmware_get("runfw"); RUN_LOCK(sc); if (fw == NULL) { device_printf(sc->sc_dev, "failed loadfirmware of file %s\n", "runfw"); return ENOENT; } if (fw->datasize != 8192) { device_printf(sc->sc_dev, "invalid firmware size (should be 8KB)\n"); error = EINVAL; goto fail; } /* * RT3071/RT3072 use a different firmware * run-rt2870 (8KB) contains both, * first half (4KB) is for rt2870, * last half is for rt3071. */ base = fw->data; if ((sc->mac_ver) != 0x2860 && (sc->mac_ver) != 0x2872 && (sc->mac_ver) != 0x3070) { base += 4096; } /* cheap sanity check */ temp = fw->data; bytes = *temp; if (bytes != be64toh(0xffffff0210280210ULL)) { device_printf(sc->sc_dev, "firmware checksum failed\n"); error = EINVAL; goto fail; } /* write microcode image */ if (sc->sc_flags & RUN_FLAG_FWLOAD_NEEDED) { run_write_region_1(sc, RT2870_FW_BASE, base, 4096); run_write(sc, RT2860_H2M_MAILBOX_CID, 0xffffffff); run_write(sc, RT2860_H2M_MAILBOX_STATUS, 0xffffffff); } req.bmRequestType = UT_WRITE_VENDOR_DEVICE; req.bRequest = RT2870_RESET; USETW(req.wValue, 8); USETW(req.wIndex, 0); USETW(req.wLength, 0); if ((error = usbd_do_request(sc->sc_udev, &sc->sc_mtx, &req, NULL)) != 0) { device_printf(sc->sc_dev, "firmware reset failed\n"); goto fail; } run_delay(sc, 10); run_write(sc, RT2860_H2M_BBPAGENT, 0); run_write(sc, RT2860_H2M_MAILBOX, 0); run_write(sc, RT2860_H2M_INTSRC, 0); if ((error = run_mcu_cmd(sc, RT2860_MCU_CMD_RFRESET, 0)) != 0) goto fail; /* wait until microcontroller is ready */ for (ntries = 0; ntries < 1000; ntries++) { if ((error = run_read(sc, RT2860_SYS_CTRL, &tmp)) != 0) goto fail; if (tmp & RT2860_MCU_READY) break; run_delay(sc, 10); } if (ntries == 1000) { device_printf(sc->sc_dev, "timeout waiting for MCU to initialize\n"); error = ETIMEDOUT; goto fail; } device_printf(sc->sc_dev, "firmware %s ver. %u.%u loaded\n", (base == fw->data) ? "RT2870" : "RT3071", *(base + 4092), *(base + 4093)); fail: firmware_put(fw, FIRMWARE_UNLOAD); return (error); } static int run_reset(struct run_softc *sc) { usb_device_request_t req; req.bmRequestType = UT_WRITE_VENDOR_DEVICE; req.bRequest = RT2870_RESET; USETW(req.wValue, 1); USETW(req.wIndex, 0); USETW(req.wLength, 0); return (usbd_do_request(sc->sc_udev, &sc->sc_mtx, &req, NULL)); } static usb_error_t run_do_request(struct run_softc *sc, struct usb_device_request *req, void *data) { usb_error_t err; int ntries = 10; RUN_LOCK_ASSERT(sc, MA_OWNED); while (ntries--) { err = usbd_do_request_flags(sc->sc_udev, &sc->sc_mtx, req, data, 0, NULL, 250 /* ms */); if (err == 0) break; RUN_DPRINTF(sc, RUN_DEBUG_USB, "Control request failed, %s (retrying)\n", usbd_errstr(err)); run_delay(sc, 10); } return (err); } static int run_read(struct run_softc *sc, uint16_t reg, uint32_t *val) { uint32_t tmp; int error; error = run_read_region_1(sc, reg, (uint8_t *)&tmp, sizeof tmp); if (error == 0) *val = le32toh(tmp); else *val = 0xffffffff; return (error); } static int run_read_region_1(struct run_softc *sc, uint16_t reg, uint8_t *buf, int len) { usb_device_request_t req; req.bmRequestType = UT_READ_VENDOR_DEVICE; req.bRequest = RT2870_READ_REGION_1; USETW(req.wValue, 0); USETW(req.wIndex, reg); USETW(req.wLength, len); return (run_do_request(sc, &req, buf)); } static int run_write_2(struct run_softc *sc, uint16_t reg, uint16_t val) { usb_device_request_t req; req.bmRequestType = UT_WRITE_VENDOR_DEVICE; req.bRequest = RT2870_WRITE_2; USETW(req.wValue, val); USETW(req.wIndex, reg); USETW(req.wLength, 0); return (run_do_request(sc, &req, NULL)); } static int run_write(struct run_softc *sc, uint16_t reg, uint32_t val) { int error; if ((error = run_write_2(sc, reg, val & 0xffff)) == 0) error = run_write_2(sc, reg + 2, val >> 16); return (error); } static int run_write_region_1(struct run_softc *sc, uint16_t reg, const uint8_t *buf, int len) { #if 1 int i, error = 0; /* * NB: the WRITE_REGION_1 command is not stable on RT2860. * We thus issue multiple WRITE_2 commands instead. */ KASSERT((len & 1) == 0, ("run_write_region_1: Data too long.\n")); for (i = 0; i < len && error == 0; i += 2) error = run_write_2(sc, reg + i, buf[i] | buf[i + 1] << 8); return (error); #else usb_device_request_t req; int error = 0; /* * NOTE: It appears the WRITE_REGION_1 command cannot be * passed a huge amount of data, which will crash the * firmware. Limit amount of data passed to 64-bytes at a * time. */ while (len > 0) { int delta = 64; if (delta > len) delta = len; req.bmRequestType = UT_WRITE_VENDOR_DEVICE; req.bRequest = RT2870_WRITE_REGION_1; USETW(req.wValue, 0); USETW(req.wIndex, reg); USETW(req.wLength, delta); error = run_do_request(sc, &req, __DECONST(uint8_t *, buf)); if (error != 0) break; reg += delta; buf += delta; len -= delta; } return (error); #endif } static int run_set_region_4(struct run_softc *sc, uint16_t reg, uint32_t val, int len) { int i, error = 0; KASSERT((len & 3) == 0, ("run_set_region_4: Invalid data length.\n")); for (i = 0; i < len && error == 0; i += 4) error = run_write(sc, reg + i, val); return (error); } static int run_efuse_read(struct run_softc *sc, uint16_t addr, uint16_t *val, int count) { uint32_t tmp; uint16_t reg; int error, ntries; if ((error = run_read(sc, RT3070_EFUSE_CTRL, &tmp)) != 0) return (error); if (count == 2) addr *= 2; /*- * Read one 16-byte block into registers EFUSE_DATA[0-3]: * DATA0: F E D C * DATA1: B A 9 8 * DATA2: 7 6 5 4 * DATA3: 3 2 1 0 */ tmp &= ~(RT3070_EFSROM_MODE_MASK | RT3070_EFSROM_AIN_MASK); tmp |= (addr & ~0xf) << RT3070_EFSROM_AIN_SHIFT | RT3070_EFSROM_KICK; run_write(sc, RT3070_EFUSE_CTRL, tmp); for (ntries = 0; ntries < 100; ntries++) { if ((error = run_read(sc, RT3070_EFUSE_CTRL, &tmp)) != 0) return (error); if (!(tmp & RT3070_EFSROM_KICK)) break; run_delay(sc, 2); } if (ntries == 100) return (ETIMEDOUT); if ((tmp & RT3070_EFUSE_AOUT_MASK) == RT3070_EFUSE_AOUT_MASK) { *val = 0xffff; /* address not found */ return (0); } /* determine to which 32-bit register our 16-bit word belongs */ reg = RT3070_EFUSE_DATA3 - (addr & 0xc); if ((error = run_read(sc, reg, &tmp)) != 0) return (error); tmp >>= (8 * (addr & 0x3)); *val = (addr & 1) ? tmp >> 16 : tmp & 0xffff; return (0); } /* Read 16-bit from eFUSE ROM for RT3xxx. */ static int run_efuse_read_2(struct run_softc *sc, uint16_t addr, uint16_t *val) { return (run_efuse_read(sc, addr, val, 2)); } static int run_eeprom_read_2(struct run_softc *sc, uint16_t addr, uint16_t *val) { usb_device_request_t req; uint16_t tmp; int error; addr *= 2; req.bmRequestType = UT_READ_VENDOR_DEVICE; req.bRequest = RT2870_EEPROM_READ; USETW(req.wValue, 0); USETW(req.wIndex, addr); USETW(req.wLength, sizeof(tmp)); error = usbd_do_request(sc->sc_udev, &sc->sc_mtx, &req, &tmp); if (error == 0) *val = le16toh(tmp); else *val = 0xffff; return (error); } static __inline int run_srom_read(struct run_softc *sc, uint16_t addr, uint16_t *val) { /* either eFUSE ROM or EEPROM */ return sc->sc_srom_read(sc, addr, val); } static int run_rt2870_rf_write(struct run_softc *sc, uint32_t val) { uint32_t tmp; int error, ntries; for (ntries = 0; ntries < 10; ntries++) { if ((error = run_read(sc, RT2860_RF_CSR_CFG0, &tmp)) != 0) return (error); if (!(tmp & RT2860_RF_REG_CTRL)) break; } if (ntries == 10) return (ETIMEDOUT); return (run_write(sc, RT2860_RF_CSR_CFG0, val)); } static int run_rt3070_rf_read(struct run_softc *sc, uint8_t reg, uint8_t *val) { uint32_t tmp; int error, ntries; for (ntries = 0; ntries < 100; ntries++) { if ((error = run_read(sc, RT3070_RF_CSR_CFG, &tmp)) != 0) return (error); if (!(tmp & RT3070_RF_KICK)) break; } if (ntries == 100) return (ETIMEDOUT); tmp = RT3070_RF_KICK | reg << 8; if ((error = run_write(sc, RT3070_RF_CSR_CFG, tmp)) != 0) return (error); for (ntries = 0; ntries < 100; ntries++) { if ((error = run_read(sc, RT3070_RF_CSR_CFG, &tmp)) != 0) return (error); if (!(tmp & RT3070_RF_KICK)) break; } if (ntries == 100) return (ETIMEDOUT); *val = tmp & 0xff; return (0); } static int run_rt3070_rf_write(struct run_softc *sc, uint8_t reg, uint8_t val) { uint32_t tmp; int error, ntries; for (ntries = 0; ntries < 10; ntries++) { if ((error = run_read(sc, RT3070_RF_CSR_CFG, &tmp)) != 0) return (error); if (!(tmp & RT3070_RF_KICK)) break; } if (ntries == 10) return (ETIMEDOUT); tmp = RT3070_RF_WRITE | RT3070_RF_KICK | reg << 8 | val; return (run_write(sc, RT3070_RF_CSR_CFG, tmp)); } static int run_bbp_read(struct run_softc *sc, uint8_t reg, uint8_t *val) { uint32_t tmp; int ntries, error; for (ntries = 0; ntries < 10; ntries++) { if ((error = run_read(sc, RT2860_BBP_CSR_CFG, &tmp)) != 0) return (error); if (!(tmp & RT2860_BBP_CSR_KICK)) break; } if (ntries == 10) return (ETIMEDOUT); tmp = RT2860_BBP_CSR_READ | RT2860_BBP_CSR_KICK | reg << 8; if ((error = run_write(sc, RT2860_BBP_CSR_CFG, tmp)) != 0) return (error); for (ntries = 0; ntries < 10; ntries++) { if ((error = run_read(sc, RT2860_BBP_CSR_CFG, &tmp)) != 0) return (error); if (!(tmp & RT2860_BBP_CSR_KICK)) break; } if (ntries == 10) return (ETIMEDOUT); *val = tmp & 0xff; return (0); } static int run_bbp_write(struct run_softc *sc, uint8_t reg, uint8_t val) { uint32_t tmp; int ntries, error; for (ntries = 0; ntries < 10; ntries++) { if ((error = run_read(sc, RT2860_BBP_CSR_CFG, &tmp)) != 0) return (error); if (!(tmp & RT2860_BBP_CSR_KICK)) break; } if (ntries == 10) return (ETIMEDOUT); tmp = RT2860_BBP_CSR_KICK | reg << 8 | val; return (run_write(sc, RT2860_BBP_CSR_CFG, tmp)); } /* * Send a command to the 8051 microcontroller unit. */ static int run_mcu_cmd(struct run_softc *sc, uint8_t cmd, uint16_t arg) { uint32_t tmp; int error, ntries; for (ntries = 0; ntries < 100; ntries++) { if ((error = run_read(sc, RT2860_H2M_MAILBOX, &tmp)) != 0) return error; if (!(tmp & RT2860_H2M_BUSY)) break; } if (ntries == 100) return ETIMEDOUT; tmp = RT2860_H2M_BUSY | RT2860_TOKEN_NO_INTR << 16 | arg; if ((error = run_write(sc, RT2860_H2M_MAILBOX, tmp)) == 0) error = run_write(sc, RT2860_HOST_CMD, cmd); return (error); } /* * Add `delta' (signed) to each 4-bit sub-word of a 32-bit word. * Used to adjust per-rate Tx power registers. */ static __inline uint32_t b4inc(uint32_t b32, int8_t delta) { int8_t i, b4; for (i = 0; i < 8; i++) { b4 = b32 & 0xf; b4 += delta; if (b4 < 0) b4 = 0; else if (b4 > 0xf) b4 = 0xf; b32 = b32 >> 4 | b4 << 28; } return (b32); } static const char * run_get_rf(uint16_t rev) { switch (rev) { case RT2860_RF_2820: return "RT2820"; case RT2860_RF_2850: return "RT2850"; case RT2860_RF_2720: return "RT2720"; case RT2860_RF_2750: return "RT2750"; case RT3070_RF_3020: return "RT3020"; case RT3070_RF_2020: return "RT2020"; case RT3070_RF_3021: return "RT3021"; case RT3070_RF_3022: return "RT3022"; case RT3070_RF_3052: return "RT3052"; case RT3593_RF_3053: return "RT3053"; case RT5592_RF_5592: return "RT5592"; case RT5390_RF_5370: return "RT5370"; case RT5390_RF_5372: return "RT5372"; } return ("unknown"); } static void run_rt3593_get_txpower(struct run_softc *sc) { uint16_t addr, val; int i; /* Read power settings for 2GHz channels. */ for (i = 0; i < 14; i += 2) { addr = (sc->ntxchains == 3) ? RT3593_EEPROM_PWR2GHZ_BASE1 : RT2860_EEPROM_PWR2GHZ_BASE1; run_srom_read(sc, addr + i / 2, &val); sc->txpow1[i + 0] = (int8_t)(val & 0xff); sc->txpow1[i + 1] = (int8_t)(val >> 8); addr = (sc->ntxchains == 3) ? RT3593_EEPROM_PWR2GHZ_BASE2 : RT2860_EEPROM_PWR2GHZ_BASE2; run_srom_read(sc, addr + i / 2, &val); sc->txpow2[i + 0] = (int8_t)(val & 0xff); sc->txpow2[i + 1] = (int8_t)(val >> 8); if (sc->ntxchains == 3) { run_srom_read(sc, RT3593_EEPROM_PWR2GHZ_BASE3 + i / 2, &val); sc->txpow3[i + 0] = (int8_t)(val & 0xff); sc->txpow3[i + 1] = (int8_t)(val >> 8); } } /* Fix broken Tx power entries. */ for (i = 0; i < 14; i++) { if (sc->txpow1[i] > 31) sc->txpow1[i] = 5; if (sc->txpow2[i] > 31) sc->txpow2[i] = 5; if (sc->ntxchains == 3) { if (sc->txpow3[i] > 31) sc->txpow3[i] = 5; } } /* Read power settings for 5GHz channels. */ for (i = 0; i < 40; i += 2) { run_srom_read(sc, RT3593_EEPROM_PWR5GHZ_BASE1 + i / 2, &val); sc->txpow1[i + 14] = (int8_t)(val & 0xff); sc->txpow1[i + 15] = (int8_t)(val >> 8); run_srom_read(sc, RT3593_EEPROM_PWR5GHZ_BASE2 + i / 2, &val); sc->txpow2[i + 14] = (int8_t)(val & 0xff); sc->txpow2[i + 15] = (int8_t)(val >> 8); if (sc->ntxchains == 3) { run_srom_read(sc, RT3593_EEPROM_PWR5GHZ_BASE3 + i / 2, &val); sc->txpow3[i + 14] = (int8_t)(val & 0xff); sc->txpow3[i + 15] = (int8_t)(val >> 8); } } } static void run_get_txpower(struct run_softc *sc) { uint16_t val; int i; /* Read power settings for 2GHz channels. */ for (i = 0; i < 14; i += 2) { run_srom_read(sc, RT2860_EEPROM_PWR2GHZ_BASE1 + i / 2, &val); sc->txpow1[i + 0] = (int8_t)(val & 0xff); sc->txpow1[i + 1] = (int8_t)(val >> 8); if (sc->mac_ver != 0x5390) { run_srom_read(sc, RT2860_EEPROM_PWR2GHZ_BASE2 + i / 2, &val); sc->txpow2[i + 0] = (int8_t)(val & 0xff); sc->txpow2[i + 1] = (int8_t)(val >> 8); } } /* Fix broken Tx power entries. */ for (i = 0; i < 14; i++) { if (sc->mac_ver >= 0x5390) { if (sc->txpow1[i] < 0 || sc->txpow1[i] > 39) sc->txpow1[i] = 5; } else { if (sc->txpow1[i] < 0 || sc->txpow1[i] > 31) sc->txpow1[i] = 5; } if (sc->mac_ver > 0x5390) { if (sc->txpow2[i] < 0 || sc->txpow2[i] > 39) sc->txpow2[i] = 5; } else if (sc->mac_ver < 0x5390) { if (sc->txpow2[i] < 0 || sc->txpow2[i] > 31) sc->txpow2[i] = 5; } RUN_DPRINTF(sc, RUN_DEBUG_TXPWR, "chan %d: power1=%d, power2=%d\n", rt2860_rf2850[i].chan, sc->txpow1[i], sc->txpow2[i]); } /* Read power settings for 5GHz channels. */ for (i = 0; i < 40; i += 2) { run_srom_read(sc, RT2860_EEPROM_PWR5GHZ_BASE1 + i / 2, &val); sc->txpow1[i + 14] = (int8_t)(val & 0xff); sc->txpow1[i + 15] = (int8_t)(val >> 8); run_srom_read(sc, RT2860_EEPROM_PWR5GHZ_BASE2 + i / 2, &val); sc->txpow2[i + 14] = (int8_t)(val & 0xff); sc->txpow2[i + 15] = (int8_t)(val >> 8); } /* Fix broken Tx power entries. */ for (i = 0; i < 40; i++ ) { if (sc->mac_ver != 0x5592) { if (sc->txpow1[14 + i] < -7 || sc->txpow1[14 + i] > 15) sc->txpow1[14 + i] = 5; if (sc->txpow2[14 + i] < -7 || sc->txpow2[14 + i] > 15) sc->txpow2[14 + i] = 5; } RUN_DPRINTF(sc, RUN_DEBUG_TXPWR, "chan %d: power1=%d, power2=%d\n", rt2860_rf2850[14 + i].chan, sc->txpow1[14 + i], sc->txpow2[14 + i]); } } static int run_read_eeprom(struct run_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; int8_t delta_2ghz, delta_5ghz; uint32_t tmp; uint16_t val; int ridx, ant, i; /* check whether the ROM is eFUSE ROM or EEPROM */ sc->sc_srom_read = run_eeprom_read_2; if (sc->mac_ver >= 0x3070) { run_read(sc, RT3070_EFUSE_CTRL, &tmp); RUN_DPRINTF(sc, RUN_DEBUG_ROM, "EFUSE_CTRL=0x%08x\n", tmp); if ((tmp & RT3070_SEL_EFUSE) || sc->mac_ver == 0x3593) sc->sc_srom_read = run_efuse_read_2; } /* read ROM version */ run_srom_read(sc, RT2860_EEPROM_VERSION, &val); RUN_DPRINTF(sc, RUN_DEBUG_ROM, "EEPROM rev=%d, FAE=%d\n", val >> 8, val & 0xff); /* read MAC address */ run_srom_read(sc, RT2860_EEPROM_MAC01, &val); ic->ic_macaddr[0] = val & 0xff; ic->ic_macaddr[1] = val >> 8; run_srom_read(sc, RT2860_EEPROM_MAC23, &val); ic->ic_macaddr[2] = val & 0xff; ic->ic_macaddr[3] = val >> 8; run_srom_read(sc, RT2860_EEPROM_MAC45, &val); ic->ic_macaddr[4] = val & 0xff; ic->ic_macaddr[5] = val >> 8; if (sc->mac_ver < 0x3593) { /* read vender BBP settings */ for (i = 0; i < 10; i++) { run_srom_read(sc, RT2860_EEPROM_BBP_BASE + i, &val); sc->bbp[i].val = val & 0xff; sc->bbp[i].reg = val >> 8; RUN_DPRINTF(sc, RUN_DEBUG_ROM, "BBP%d=0x%02x\n", sc->bbp[i].reg, sc->bbp[i].val); } if (sc->mac_ver >= 0x3071) { /* read vendor RF settings */ for (i = 0; i < 10; i++) { run_srom_read(sc, RT3071_EEPROM_RF_BASE + i, &val); sc->rf[i].val = val & 0xff; sc->rf[i].reg = val >> 8; RUN_DPRINTF(sc, RUN_DEBUG_ROM, "RF%d=0x%02x\n", sc->rf[i].reg, sc->rf[i].val); } } } /* read RF frequency offset from EEPROM */ run_srom_read(sc, (sc->mac_ver != 0x3593) ? RT2860_EEPROM_FREQ_LEDS : RT3593_EEPROM_FREQ, &val); sc->freq = ((val & 0xff) != 0xff) ? val & 0xff : 0; RUN_DPRINTF(sc, RUN_DEBUG_ROM, "EEPROM freq offset %d\n", sc->freq & 0xff); run_srom_read(sc, (sc->mac_ver != 0x3593) ? RT2860_EEPROM_FREQ_LEDS : RT3593_EEPROM_FREQ_LEDS, &val); if (val >> 8 != 0xff) { /* read LEDs operating mode */ sc->leds = val >> 8; run_srom_read(sc, (sc->mac_ver != 0x3593) ? RT2860_EEPROM_LED1 : RT3593_EEPROM_LED1, &sc->led[0]); run_srom_read(sc, (sc->mac_ver != 0x3593) ? RT2860_EEPROM_LED2 : RT3593_EEPROM_LED2, &sc->led[1]); run_srom_read(sc, (sc->mac_ver != 0x3593) ? RT2860_EEPROM_LED3 : RT3593_EEPROM_LED3, &sc->led[2]); } else { /* broken EEPROM, use default settings */ sc->leds = 0x01; sc->led[0] = 0x5555; sc->led[1] = 0x2221; sc->led[2] = 0x5627; /* differs from RT2860 */ } RUN_DPRINTF(sc, RUN_DEBUG_ROM, "EEPROM LED mode=0x%02x, LEDs=0x%04x/0x%04x/0x%04x\n", sc->leds, sc->led[0], sc->led[1], sc->led[2]); /* read RF information */ if (sc->mac_ver == 0x5390 || sc->mac_ver ==0x5392) run_srom_read(sc, 0x00, &val); else run_srom_read(sc, RT2860_EEPROM_ANTENNA, &val); if (val == 0xffff) { device_printf(sc->sc_dev, "invalid EEPROM antenna info, using default\n"); if (sc->mac_ver == 0x3572) { /* default to RF3052 2T2R */ sc->rf_rev = RT3070_RF_3052; sc->ntxchains = 2; sc->nrxchains = 2; } else if (sc->mac_ver >= 0x3070) { /* default to RF3020 1T1R */ sc->rf_rev = RT3070_RF_3020; sc->ntxchains = 1; sc->nrxchains = 1; } else { /* default to RF2820 1T2R */ sc->rf_rev = RT2860_RF_2820; sc->ntxchains = 1; sc->nrxchains = 2; } } else { if (sc->mac_ver == 0x5390 || sc->mac_ver ==0x5392) { sc->rf_rev = val; run_srom_read(sc, RT2860_EEPROM_ANTENNA, &val); } else sc->rf_rev = (val >> 8) & 0xf; sc->ntxchains = (val >> 4) & 0xf; sc->nrxchains = val & 0xf; } RUN_DPRINTF(sc, RUN_DEBUG_ROM, "EEPROM RF rev=0x%04x chains=%dT%dR\n", sc->rf_rev, sc->ntxchains, sc->nrxchains); /* check if RF supports automatic Tx access gain control */ run_srom_read(sc, RT2860_EEPROM_CONFIG, &val); RUN_DPRINTF(sc, RUN_DEBUG_ROM, "EEPROM CFG 0x%04x\n", val); /* check if driver should patch the DAC issue */ if ((val >> 8) != 0xff) sc->patch_dac = (val >> 15) & 1; if ((val & 0xff) != 0xff) { sc->ext_5ghz_lna = (val >> 3) & 1; sc->ext_2ghz_lna = (val >> 2) & 1; /* check if RF supports automatic Tx access gain control */ sc->calib_2ghz = sc->calib_5ghz = (val >> 1) & 1; /* check if we have a hardware radio switch */ sc->rfswitch = val & 1; } /* Read Tx power settings. */ if (sc->mac_ver == 0x3593) run_rt3593_get_txpower(sc); else run_get_txpower(sc); /* read Tx power compensation for each Tx rate */ run_srom_read(sc, RT2860_EEPROM_DELTAPWR, &val); delta_2ghz = delta_5ghz = 0; if ((val & 0xff) != 0xff && (val & 0x80)) { delta_2ghz = val & 0xf; if (!(val & 0x40)) /* negative number */ delta_2ghz = -delta_2ghz; } val >>= 8; if ((val & 0xff) != 0xff && (val & 0x80)) { delta_5ghz = val & 0xf; if (!(val & 0x40)) /* negative number */ delta_5ghz = -delta_5ghz; } RUN_DPRINTF(sc, RUN_DEBUG_ROM | RUN_DEBUG_TXPWR, "power compensation=%d (2GHz), %d (5GHz)\n", delta_2ghz, delta_5ghz); for (ridx = 0; ridx < 5; ridx++) { uint32_t reg; run_srom_read(sc, RT2860_EEPROM_RPWR + ridx * 2, &val); reg = val; run_srom_read(sc, RT2860_EEPROM_RPWR + ridx * 2 + 1, &val); reg |= (uint32_t)val << 16; sc->txpow20mhz[ridx] = reg; sc->txpow40mhz_2ghz[ridx] = b4inc(reg, delta_2ghz); sc->txpow40mhz_5ghz[ridx] = b4inc(reg, delta_5ghz); RUN_DPRINTF(sc, RUN_DEBUG_ROM | RUN_DEBUG_TXPWR, "ridx %d: power 20MHz=0x%08x, 40MHz/2GHz=0x%08x, " "40MHz/5GHz=0x%08x\n", ridx, sc->txpow20mhz[ridx], sc->txpow40mhz_2ghz[ridx], sc->txpow40mhz_5ghz[ridx]); } /* Read RSSI offsets and LNA gains from EEPROM. */ run_srom_read(sc, (sc->mac_ver != 0x3593) ? RT2860_EEPROM_RSSI1_2GHZ : RT3593_EEPROM_RSSI1_2GHZ, &val); sc->rssi_2ghz[0] = val & 0xff; /* Ant A */ sc->rssi_2ghz[1] = val >> 8; /* Ant B */ run_srom_read(sc, (sc->mac_ver != 0x3593) ? RT2860_EEPROM_RSSI2_2GHZ : RT3593_EEPROM_RSSI2_2GHZ, &val); if (sc->mac_ver >= 0x3070) { if (sc->mac_ver == 0x3593) { sc->txmixgain_2ghz = 0; sc->rssi_2ghz[2] = val & 0xff; /* Ant C */ } else { /* * On RT3070 chips (limited to 2 Rx chains), this ROM * field contains the Tx mixer gain for the 2GHz band. */ if ((val & 0xff) != 0xff) sc->txmixgain_2ghz = val & 0x7; } RUN_DPRINTF(sc, RUN_DEBUG_ROM, "tx mixer gain=%u (2GHz)\n", sc->txmixgain_2ghz); } else sc->rssi_2ghz[2] = val & 0xff; /* Ant C */ if (sc->mac_ver == 0x3593) run_srom_read(sc, RT3593_EEPROM_LNA_5GHZ, &val); sc->lna[2] = val >> 8; /* channel group 2 */ run_srom_read(sc, (sc->mac_ver != 0x3593) ? RT2860_EEPROM_RSSI1_5GHZ : RT3593_EEPROM_RSSI1_5GHZ, &val); sc->rssi_5ghz[0] = val & 0xff; /* Ant A */ sc->rssi_5ghz[1] = val >> 8; /* Ant B */ run_srom_read(sc, (sc->mac_ver != 0x3593) ? RT2860_EEPROM_RSSI2_5GHZ : RT3593_EEPROM_RSSI2_5GHZ, &val); if (sc->mac_ver == 0x3572) { /* * On RT3572 chips (limited to 2 Rx chains), this ROM * field contains the Tx mixer gain for the 5GHz band. */ if ((val & 0xff) != 0xff) sc->txmixgain_5ghz = val & 0x7; RUN_DPRINTF(sc, RUN_DEBUG_ROM, "tx mixer gain=%u (5GHz)\n", sc->txmixgain_5ghz); } else sc->rssi_5ghz[2] = val & 0xff; /* Ant C */ if (sc->mac_ver == 0x3593) { sc->txmixgain_5ghz = 0; run_srom_read(sc, RT3593_EEPROM_LNA_5GHZ, &val); } sc->lna[3] = val >> 8; /* channel group 3 */ run_srom_read(sc, (sc->mac_ver != 0x3593) ? RT2860_EEPROM_LNA : RT3593_EEPROM_LNA, &val); sc->lna[0] = val & 0xff; /* channel group 0 */ sc->lna[1] = val >> 8; /* channel group 1 */ /* fix broken 5GHz LNA entries */ if (sc->lna[2] == 0 || sc->lna[2] == 0xff) { RUN_DPRINTF(sc, RUN_DEBUG_ROM, "invalid LNA for channel group %d\n", 2); sc->lna[2] = sc->lna[1]; } if (sc->lna[3] == 0 || sc->lna[3] == 0xff) { RUN_DPRINTF(sc, RUN_DEBUG_ROM, "invalid LNA for channel group %d\n", 3); sc->lna[3] = sc->lna[1]; } /* fix broken RSSI offset entries */ for (ant = 0; ant < 3; ant++) { if (sc->rssi_2ghz[ant] < -10 || sc->rssi_2ghz[ant] > 10) { RUN_DPRINTF(sc, RUN_DEBUG_ROM | RUN_DEBUG_RSSI, "invalid RSSI%d offset: %d (2GHz)\n", ant + 1, sc->rssi_2ghz[ant]); sc->rssi_2ghz[ant] = 0; } if (sc->rssi_5ghz[ant] < -10 || sc->rssi_5ghz[ant] > 10) { RUN_DPRINTF(sc, RUN_DEBUG_ROM | RUN_DEBUG_RSSI, "invalid RSSI%d offset: %d (5GHz)\n", ant + 1, sc->rssi_5ghz[ant]); sc->rssi_5ghz[ant] = 0; } } return (0); } static struct ieee80211_node * run_node_alloc(struct ieee80211vap *vap, const uint8_t mac[IEEE80211_ADDR_LEN]) { return malloc(sizeof (struct run_node), M_80211_NODE, M_NOWAIT | M_ZERO); } static int run_media_change(struct ifnet *ifp) { struct ieee80211vap *vap = ifp->if_softc; struct ieee80211com *ic = vap->iv_ic; const struct ieee80211_txparam *tp; struct run_softc *sc = ic->ic_softc; uint8_t rate, ridx; int error; RUN_LOCK(sc); error = ieee80211_media_change(ifp); - if (error != ENETRESET) { + if (error != 0) { RUN_UNLOCK(sc); return (error); } tp = &vap->iv_txparms[ieee80211_chan2mode(ic->ic_curchan)]; if (tp->ucastrate != IEEE80211_FIXED_RATE_NONE) { struct ieee80211_node *ni; struct run_node *rn; /* XXX TODO: methodize with MCS rates */ rate = ic->ic_sup_rates[ic->ic_curmode]. rs_rates[tp->ucastrate] & IEEE80211_RATE_VAL; for (ridx = 0; ridx < RT2860_RIDX_MAX; ridx++) if (rt2860_rates[ridx].rate == rate) break; ni = ieee80211_ref_node(vap->iv_bss); rn = RUN_NODE(ni); rn->fix_ridx = ridx; RUN_DPRINTF(sc, RUN_DEBUG_RATE, "rate=%d, fix_ridx=%d\n", rate, rn->fix_ridx); ieee80211_free_node(ni); } #if 0 if ((ifp->if_flags & IFF_UP) && (ifp->if_drv_flags & RUN_RUNNING)){ run_init_locked(sc); } #endif RUN_UNLOCK(sc); return (0); } static int run_newstate(struct ieee80211vap *vap, enum ieee80211_state nstate, int arg) { const struct ieee80211_txparam *tp; struct ieee80211com *ic = vap->iv_ic; struct run_softc *sc = ic->ic_softc; struct run_vap *rvp = RUN_VAP(vap); enum ieee80211_state ostate; uint32_t sta[3]; uint8_t ratectl; uint8_t restart_ratectl = 0; uint8_t bid = 1 << rvp->rvp_id; ostate = vap->iv_state; RUN_DPRINTF(sc, RUN_DEBUG_STATE, "%s -> %s\n", ieee80211_state_name[ostate], ieee80211_state_name[nstate]); IEEE80211_UNLOCK(ic); RUN_LOCK(sc); ratectl = sc->ratectl_run; /* remember current state */ sc->ratectl_run = RUN_RATECTL_OFF; usb_callout_stop(&sc->ratectl_ch); if (ostate == IEEE80211_S_RUN) { /* turn link LED off */ run_set_leds(sc, RT2860_LED_RADIO); } switch (nstate) { case IEEE80211_S_INIT: restart_ratectl = 1; if (ostate != IEEE80211_S_RUN) break; ratectl &= ~bid; sc->runbmap &= ~bid; /* abort TSF synchronization if there is no vap running */ if (--sc->running == 0) run_disable_tsf(sc); break; case IEEE80211_S_RUN: if (!(sc->runbmap & bid)) { if(sc->running++) restart_ratectl = 1; sc->runbmap |= bid; } m_freem(rvp->beacon_mbuf); rvp->beacon_mbuf = NULL; switch (vap->iv_opmode) { case IEEE80211_M_HOSTAP: case IEEE80211_M_MBSS: sc->ap_running |= bid; ic->ic_opmode = vap->iv_opmode; run_update_beacon_cb(vap); break; case IEEE80211_M_IBSS: sc->adhoc_running |= bid; if (!sc->ap_running) ic->ic_opmode = vap->iv_opmode; run_update_beacon_cb(vap); break; case IEEE80211_M_STA: sc->sta_running |= bid; if (!sc->ap_running && !sc->adhoc_running) ic->ic_opmode = vap->iv_opmode; /* read statistic counters (clear on read) */ run_read_region_1(sc, RT2860_TX_STA_CNT0, (uint8_t *)sta, sizeof sta); break; default: ic->ic_opmode = vap->iv_opmode; break; } if (vap->iv_opmode != IEEE80211_M_MONITOR) { struct ieee80211_node *ni; if (ic->ic_bsschan == IEEE80211_CHAN_ANYC) { RUN_UNLOCK(sc); IEEE80211_LOCK(ic); return (-1); } run_updateslot(ic); run_enable_mrr(sc); run_set_txpreamble(sc); run_set_basicrates(sc); ni = ieee80211_ref_node(vap->iv_bss); IEEE80211_ADDR_COPY(sc->sc_bssid, ni->ni_bssid); run_set_bssid(sc, sc->sc_bssid); ieee80211_free_node(ni); run_enable_tsf_sync(sc); /* enable automatic rate adaptation */ tp = &vap->iv_txparms[ieee80211_chan2mode(ic->ic_curchan)]; if (tp->ucastrate == IEEE80211_FIXED_RATE_NONE) ratectl |= bid; } else run_enable_tsf(sc); /* turn link LED on */ run_set_leds(sc, RT2860_LED_RADIO | (IEEE80211_IS_CHAN_2GHZ(ic->ic_curchan) ? RT2860_LED_LINK_2GHZ : RT2860_LED_LINK_5GHZ)); break; default: RUN_DPRINTF(sc, RUN_DEBUG_STATE, "undefined state\n"); break; } /* restart amrr for running VAPs */ if ((sc->ratectl_run = ratectl) && restart_ratectl) usb_callout_reset(&sc->ratectl_ch, hz, run_ratectl_to, sc); RUN_UNLOCK(sc); IEEE80211_LOCK(ic); return(rvp->newstate(vap, nstate, arg)); } static int run_wme_update(struct ieee80211com *ic) { struct chanAccParams chp; struct run_softc *sc = ic->ic_softc; const struct wmeParams *ac; int aci, error = 0; ieee80211_wme_ic_getparams(ic, &chp); ac = chp.cap_wmeParams; /* update MAC TX configuration registers */ RUN_LOCK(sc); for (aci = 0; aci < WME_NUM_AC; aci++) { error = run_write(sc, RT2860_EDCA_AC_CFG(aci), ac[aci].wmep_logcwmax << 16 | ac[aci].wmep_logcwmin << 12 | ac[aci].wmep_aifsn << 8 | ac[aci].wmep_txopLimit); if (error) goto err; } /* update SCH/DMA registers too */ error = run_write(sc, RT2860_WMM_AIFSN_CFG, ac[WME_AC_VO].wmep_aifsn << 12 | ac[WME_AC_VI].wmep_aifsn << 8 | ac[WME_AC_BK].wmep_aifsn << 4 | ac[WME_AC_BE].wmep_aifsn); if (error) goto err; error = run_write(sc, RT2860_WMM_CWMIN_CFG, ac[WME_AC_VO].wmep_logcwmin << 12 | ac[WME_AC_VI].wmep_logcwmin << 8 | ac[WME_AC_BK].wmep_logcwmin << 4 | ac[WME_AC_BE].wmep_logcwmin); if (error) goto err; error = run_write(sc, RT2860_WMM_CWMAX_CFG, ac[WME_AC_VO].wmep_logcwmax << 12 | ac[WME_AC_VI].wmep_logcwmax << 8 | ac[WME_AC_BK].wmep_logcwmax << 4 | ac[WME_AC_BE].wmep_logcwmax); if (error) goto err; error = run_write(sc, RT2860_WMM_TXOP0_CFG, ac[WME_AC_BK].wmep_txopLimit << 16 | ac[WME_AC_BE].wmep_txopLimit); if (error) goto err; error = run_write(sc, RT2860_WMM_TXOP1_CFG, ac[WME_AC_VO].wmep_txopLimit << 16 | ac[WME_AC_VI].wmep_txopLimit); err: RUN_UNLOCK(sc); if (error) RUN_DPRINTF(sc, RUN_DEBUG_USB, "WME update failed\n"); return (error); } static void run_key_set_cb(void *arg) { struct run_cmdq *cmdq = arg; struct ieee80211vap *vap = cmdq->arg1; struct ieee80211_key *k = cmdq->k; struct ieee80211com *ic = vap->iv_ic; struct run_softc *sc = ic->ic_softc; struct ieee80211_node *ni; u_int cipher = k->wk_cipher->ic_cipher; uint32_t attr; uint16_t base, associd; uint8_t mode, wcid, iv[8]; RUN_LOCK_ASSERT(sc, MA_OWNED); if (vap->iv_opmode == IEEE80211_M_HOSTAP) ni = ieee80211_find_vap_node(&ic->ic_sta, vap, cmdq->mac); else ni = vap->iv_bss; associd = (ni != NULL) ? ni->ni_associd : 0; /* map net80211 cipher to RT2860 security mode */ switch (cipher) { case IEEE80211_CIPHER_WEP: if(k->wk_keylen < 8) mode = RT2860_MODE_WEP40; else mode = RT2860_MODE_WEP104; break; case IEEE80211_CIPHER_TKIP: mode = RT2860_MODE_TKIP; break; case IEEE80211_CIPHER_AES_CCM: mode = RT2860_MODE_AES_CCMP; break; default: RUN_DPRINTF(sc, RUN_DEBUG_KEY, "undefined case\n"); return; } RUN_DPRINTF(sc, RUN_DEBUG_KEY, "associd=%x, keyix=%d, mode=%x, type=%s, tx=%s, rx=%s\n", associd, k->wk_keyix, mode, (k->wk_flags & IEEE80211_KEY_GROUP) ? "group" : "pairwise", (k->wk_flags & IEEE80211_KEY_XMIT) ? "on" : "off", (k->wk_flags & IEEE80211_KEY_RECV) ? "on" : "off"); if (k->wk_flags & IEEE80211_KEY_GROUP) { wcid = 0; /* NB: update WCID0 for group keys */ base = RT2860_SKEY(RUN_VAP(vap)->rvp_id, k->wk_keyix); } else { wcid = (vap->iv_opmode == IEEE80211_M_STA) ? 1 : RUN_AID2WCID(associd); base = RT2860_PKEY(wcid); } if (cipher == IEEE80211_CIPHER_TKIP) { if(run_write_region_1(sc, base, k->wk_key, 16)) return; if(run_write_region_1(sc, base + 16, &k->wk_key[16], 8)) /* wk_txmic */ return; if(run_write_region_1(sc, base + 24, &k->wk_key[24], 8)) /* wk_rxmic */ return; } else { /* roundup len to 16-bit: XXX fix write_region_1() instead */ if(run_write_region_1(sc, base, k->wk_key, (k->wk_keylen + 1) & ~1)) return; } if (!(k->wk_flags & IEEE80211_KEY_GROUP) || (k->wk_flags & (IEEE80211_KEY_XMIT | IEEE80211_KEY_RECV))) { /* set initial packet number in IV+EIV */ if (cipher == IEEE80211_CIPHER_WEP) { memset(iv, 0, sizeof iv); iv[3] = vap->iv_def_txkey << 6; } else { if (cipher == IEEE80211_CIPHER_TKIP) { iv[0] = k->wk_keytsc >> 8; iv[1] = (iv[0] | 0x20) & 0x7f; iv[2] = k->wk_keytsc; } else /* CCMP */ { iv[0] = k->wk_keytsc; iv[1] = k->wk_keytsc >> 8; iv[2] = 0; } iv[3] = k->wk_keyix << 6 | IEEE80211_WEP_EXTIV; iv[4] = k->wk_keytsc >> 16; iv[5] = k->wk_keytsc >> 24; iv[6] = k->wk_keytsc >> 32; iv[7] = k->wk_keytsc >> 40; } if (run_write_region_1(sc, RT2860_IVEIV(wcid), iv, 8)) return; } if (k->wk_flags & IEEE80211_KEY_GROUP) { /* install group key */ if (run_read(sc, RT2860_SKEY_MODE_0_7, &attr)) return; attr &= ~(0xf << (k->wk_keyix * 4)); attr |= mode << (k->wk_keyix * 4); if (run_write(sc, RT2860_SKEY_MODE_0_7, attr)) return; } else { /* install pairwise key */ if (run_read(sc, RT2860_WCID_ATTR(wcid), &attr)) return; attr = (attr & ~0xf) | (mode << 1) | RT2860_RX_PKEY_EN; if (run_write(sc, RT2860_WCID_ATTR(wcid), attr)) return; } /* TODO create a pass-thru key entry? */ /* need wcid to delete the right key later */ k->wk_pad = wcid; } /* * Don't have to be deferred, but in order to keep order of * execution, i.e. with run_key_delete(), defer this and let * run_cmdq_cb() maintain the order. * * return 0 on error */ static int run_key_set(struct ieee80211vap *vap, struct ieee80211_key *k) { struct ieee80211com *ic = vap->iv_ic; struct run_softc *sc = ic->ic_softc; uint32_t i; i = RUN_CMDQ_GET(&sc->cmdq_store); RUN_DPRINTF(sc, RUN_DEBUG_KEY, "cmdq_store=%d\n", i); sc->cmdq[i].func = run_key_set_cb; sc->cmdq[i].arg0 = NULL; sc->cmdq[i].arg1 = vap; sc->cmdq[i].k = k; IEEE80211_ADDR_COPY(sc->cmdq[i].mac, k->wk_macaddr); ieee80211_runtask(ic, &sc->cmdq_task); /* * To make sure key will be set when hostapd * calls iv_key_set() before if_init(). */ if (vap->iv_opmode == IEEE80211_M_HOSTAP) { RUN_LOCK(sc); sc->cmdq_key_set = RUN_CMDQ_GO; RUN_UNLOCK(sc); } return (1); } /* * If wlan is destroyed without being brought down i.e. without * wlan down or wpa_cli terminate, this function is called after * vap is gone. Don't refer it. */ static void run_key_delete_cb(void *arg) { struct run_cmdq *cmdq = arg; struct run_softc *sc = cmdq->arg1; struct ieee80211_key *k = &cmdq->key; uint32_t attr; uint8_t wcid; RUN_LOCK_ASSERT(sc, MA_OWNED); if (k->wk_flags & IEEE80211_KEY_GROUP) { /* remove group key */ RUN_DPRINTF(sc, RUN_DEBUG_KEY, "removing group key\n"); run_read(sc, RT2860_SKEY_MODE_0_7, &attr); attr &= ~(0xf << (k->wk_keyix * 4)); run_write(sc, RT2860_SKEY_MODE_0_7, attr); } else { /* remove pairwise key */ RUN_DPRINTF(sc, RUN_DEBUG_KEY, "removing key for wcid %x\n", k->wk_pad); /* matching wcid was written to wk_pad in run_key_set() */ wcid = k->wk_pad; run_read(sc, RT2860_WCID_ATTR(wcid), &attr); attr &= ~0xf; run_write(sc, RT2860_WCID_ATTR(wcid), attr); run_set_region_4(sc, RT2860_WCID_ENTRY(wcid), 0, 8); } k->wk_pad = 0; } /* * return 0 on error */ static int run_key_delete(struct ieee80211vap *vap, struct ieee80211_key *k) { struct ieee80211com *ic = vap->iv_ic; struct run_softc *sc = ic->ic_softc; struct ieee80211_key *k0; uint32_t i; /* * When called back, key might be gone. So, make a copy * of some values need to delete keys before deferring. * But, because of LOR with node lock, cannot use lock here. * So, use atomic instead. */ i = RUN_CMDQ_GET(&sc->cmdq_store); RUN_DPRINTF(sc, RUN_DEBUG_KEY, "cmdq_store=%d\n", i); sc->cmdq[i].func = run_key_delete_cb; sc->cmdq[i].arg0 = NULL; sc->cmdq[i].arg1 = sc; k0 = &sc->cmdq[i].key; k0->wk_flags = k->wk_flags; k0->wk_keyix = k->wk_keyix; /* matching wcid was written to wk_pad in run_key_set() */ k0->wk_pad = k->wk_pad; ieee80211_runtask(ic, &sc->cmdq_task); return (1); /* return fake success */ } static void run_ratectl_to(void *arg) { struct run_softc *sc = arg; /* do it in a process context, so it can go sleep */ ieee80211_runtask(&sc->sc_ic, &sc->ratectl_task); /* next timeout will be rescheduled in the callback task */ } /* ARGSUSED */ static void run_ratectl_cb(void *arg, int pending) { struct run_softc *sc = arg; struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); if (vap == NULL) return; if (sc->rvp_cnt > 1 || vap->iv_opmode != IEEE80211_M_STA) { /* * run_reset_livelock() doesn't do anything with AMRR, * but Ralink wants us to call it every 1 sec. So, we * piggyback here rather than creating another callout. * Livelock may occur only in HOSTAP or IBSS mode * (when h/w is sending beacons). */ RUN_LOCK(sc); run_reset_livelock(sc); /* just in case, there are some stats to drain */ run_drain_fifo(sc); RUN_UNLOCK(sc); } ieee80211_iterate_nodes(&ic->ic_sta, run_iter_func, sc); RUN_LOCK(sc); if(sc->ratectl_run != RUN_RATECTL_OFF) usb_callout_reset(&sc->ratectl_ch, hz, run_ratectl_to, sc); RUN_UNLOCK(sc); } static void run_drain_fifo(void *arg) { struct run_softc *sc = arg; uint32_t stat; uint16_t (*wstat)[3]; uint8_t wcid, mcs, pid; int8_t retry; RUN_LOCK_ASSERT(sc, MA_OWNED); for (;;) { /* drain Tx status FIFO (maxsize = 16) */ run_read(sc, RT2860_TX_STAT_FIFO, &stat); RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "tx stat 0x%08x\n", stat); if (!(stat & RT2860_TXQ_VLD)) break; wcid = (stat >> RT2860_TXQ_WCID_SHIFT) & 0xff; /* if no ACK was requested, no feedback is available */ if (!(stat & RT2860_TXQ_ACKREQ) || wcid > RT2870_WCID_MAX || wcid == 0) continue; /* * Even though each stat is Tx-complete-status like format, * the device can poll stats. Because there is no guarantee * that the referring node is still around when read the stats. * So that, if we use ieee80211_ratectl_tx_update(), we will * have hard time not to refer already freed node. * * To eliminate such page faults, we poll stats in softc. * Then, update the rates later with ieee80211_ratectl_tx_update(). */ wstat = &(sc->wcid_stats[wcid]); (*wstat)[RUN_TXCNT]++; if (stat & RT2860_TXQ_OK) (*wstat)[RUN_SUCCESS]++; else counter_u64_add(sc->sc_ic.ic_oerrors, 1); /* * Check if there were retries, ie if the Tx success rate is * different from the requested rate. Note that it works only * because we do not allow rate fallback from OFDM to CCK. */ mcs = (stat >> RT2860_TXQ_MCS_SHIFT) & 0x7f; pid = (stat >> RT2860_TXQ_PID_SHIFT) & 0xf; if ((retry = pid -1 - mcs) > 0) { (*wstat)[RUN_TXCNT] += retry; (*wstat)[RUN_RETRY] += retry; } } RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "count=%d\n", sc->fifo_cnt); sc->fifo_cnt = 0; } static void run_iter_func(void *arg, struct ieee80211_node *ni) { struct run_softc *sc = arg; struct ieee80211_ratectl_tx_stats *txs = &sc->sc_txs; struct ieee80211vap *vap = ni->ni_vap; struct run_node *rn = RUN_NODE(ni); union run_stats sta[2]; uint16_t (*wstat)[3]; int error, ridx; RUN_LOCK(sc); /* Check for special case */ if (sc->rvp_cnt <= 1 && vap->iv_opmode == IEEE80211_M_STA && ni != vap->iv_bss) goto fail; txs->flags = IEEE80211_RATECTL_TX_STATS_NODE | IEEE80211_RATECTL_TX_STATS_RETRIES; txs->ni = ni; if (sc->rvp_cnt <= 1 && (vap->iv_opmode == IEEE80211_M_IBSS || vap->iv_opmode == IEEE80211_M_STA)) { /* read statistic counters (clear on read) and update AMRR state */ error = run_read_region_1(sc, RT2860_TX_STA_CNT0, (uint8_t *)sta, sizeof sta); if (error != 0) goto fail; /* count failed TX as errors */ if_inc_counter(vap->iv_ifp, IFCOUNTER_OERRORS, le16toh(sta[0].error.fail)); txs->nretries = le16toh(sta[1].tx.retry); txs->nsuccess = le16toh(sta[1].tx.success); /* nretries??? */ txs->nframes = txs->nretries + txs->nsuccess + le16toh(sta[0].error.fail); RUN_DPRINTF(sc, RUN_DEBUG_RATE, "retrycnt=%d success=%d failcnt=%d\n", txs->nretries, txs->nsuccess, le16toh(sta[0].error.fail)); } else { wstat = &(sc->wcid_stats[RUN_AID2WCID(ni->ni_associd)]); if (wstat == &(sc->wcid_stats[0]) || wstat > &(sc->wcid_stats[RT2870_WCID_MAX])) goto fail; txs->nretries = (*wstat)[RUN_RETRY]; txs->nsuccess = (*wstat)[RUN_SUCCESS]; txs->nframes = (*wstat)[RUN_TXCNT]; RUN_DPRINTF(sc, RUN_DEBUG_RATE, "retrycnt=%d txcnt=%d success=%d\n", txs->nretries, txs->nframes, txs->nsuccess); memset(wstat, 0, sizeof(*wstat)); } ieee80211_ratectl_tx_update(vap, txs); ieee80211_ratectl_rate(ni, NULL, 0); /* XXX TODO: methodize with MCS rates */ for (ridx = 0; ridx < RT2860_RIDX_MAX; ridx++) if (rt2860_rates[ridx].rate == ni->ni_txrate) break; rn->amrr_ridx = ridx; fail: RUN_UNLOCK(sc); RUN_DPRINTF(sc, RUN_DEBUG_RATE, "rate=%d, ridx=%d\n", ni->ni_txrate, rn->amrr_ridx); } static void run_newassoc_cb(void *arg) { struct run_cmdq *cmdq = arg; struct ieee80211_node *ni = cmdq->arg1; struct run_softc *sc = ni->ni_vap->iv_ic->ic_softc; uint8_t wcid = cmdq->wcid; RUN_LOCK_ASSERT(sc, MA_OWNED); run_write_region_1(sc, RT2860_WCID_ENTRY(wcid), ni->ni_macaddr, IEEE80211_ADDR_LEN); memset(&(sc->wcid_stats[wcid]), 0, sizeof(sc->wcid_stats[wcid])); } static void run_newassoc(struct ieee80211_node *ni, int isnew) { struct run_node *rn = RUN_NODE(ni); struct ieee80211vap *vap = ni->ni_vap; struct ieee80211com *ic = vap->iv_ic; struct run_softc *sc = ic->ic_softc; uint8_t rate; uint8_t ridx; uint8_t wcid; wcid = (vap->iv_opmode == IEEE80211_M_STA) ? 1 : RUN_AID2WCID(ni->ni_associd); if (wcid > RT2870_WCID_MAX) { device_printf(sc->sc_dev, "wcid=%d out of range\n", wcid); return; } /* only interested in true associations */ if (isnew && ni->ni_associd != 0) { /* * This function could is called though timeout function. * Need to defer. */ uint32_t cnt = RUN_CMDQ_GET(&sc->cmdq_store); RUN_DPRINTF(sc, RUN_DEBUG_STATE, "cmdq_store=%d\n", cnt); sc->cmdq[cnt].func = run_newassoc_cb; sc->cmdq[cnt].arg0 = NULL; sc->cmdq[cnt].arg1 = ni; sc->cmdq[cnt].wcid = wcid; ieee80211_runtask(ic, &sc->cmdq_task); } RUN_DPRINTF(sc, RUN_DEBUG_STATE, "new assoc isnew=%d associd=%x addr=%s\n", isnew, ni->ni_associd, ether_sprintf(ni->ni_macaddr)); rate = vap->iv_txparms[ieee80211_chan2mode(ic->ic_curchan)].mgmtrate; /* XXX TODO: methodize with MCS rates */ for (ridx = 0; ridx < RT2860_RIDX_MAX; ridx++) if (rt2860_rates[ridx].rate == rate) break; rn->mgt_ridx = ridx; RUN_DPRINTF(sc, RUN_DEBUG_STATE | RUN_DEBUG_RATE, "rate=%d, mgmt_ridx=%d\n", rate, rn->mgt_ridx); RUN_LOCK(sc); if(sc->ratectl_run != RUN_RATECTL_OFF) usb_callout_reset(&sc->ratectl_ch, hz, run_ratectl_to, sc); RUN_UNLOCK(sc); } /* * Return the Rx chain with the highest RSSI for a given frame. */ static __inline uint8_t run_maxrssi_chain(struct run_softc *sc, const struct rt2860_rxwi *rxwi) { uint8_t rxchain = 0; if (sc->nrxchains > 1) { if (rxwi->rssi[1] > rxwi->rssi[rxchain]) rxchain = 1; if (sc->nrxchains > 2) if (rxwi->rssi[2] > rxwi->rssi[rxchain]) rxchain = 2; } return (rxchain); } static void run_recv_mgmt(struct ieee80211_node *ni, struct mbuf *m, int subtype, const struct ieee80211_rx_stats *rxs, int rssi, int nf) { struct ieee80211vap *vap = ni->ni_vap; struct run_softc *sc = vap->iv_ic->ic_softc; struct run_vap *rvp = RUN_VAP(vap); uint64_t ni_tstamp, rx_tstamp; rvp->recv_mgmt(ni, m, subtype, rxs, rssi, nf); if (vap->iv_state == IEEE80211_S_RUN && (subtype == IEEE80211_FC0_SUBTYPE_BEACON || subtype == IEEE80211_FC0_SUBTYPE_PROBE_RESP)) { ni_tstamp = le64toh(ni->ni_tstamp.tsf); RUN_LOCK(sc); run_get_tsf(sc, &rx_tstamp); RUN_UNLOCK(sc); rx_tstamp = le64toh(rx_tstamp); if (ni_tstamp >= rx_tstamp) { RUN_DPRINTF(sc, RUN_DEBUG_RECV | RUN_DEBUG_BEACON, "ibss merge, tsf %ju tstamp %ju\n", (uintmax_t)rx_tstamp, (uintmax_t)ni_tstamp); (void) ieee80211_ibss_merge(ni); } } } static void run_rx_frame(struct run_softc *sc, struct mbuf *m, uint32_t dmalen) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211_frame *wh; struct ieee80211_node *ni; struct epoch_tracker et; struct rt2870_rxd *rxd; struct rt2860_rxwi *rxwi; uint32_t flags; uint16_t len, rxwisize; uint8_t ant, rssi; int8_t nf; rxwisize = sizeof(struct rt2860_rxwi); if (sc->mac_ver == 0x5592) rxwisize += sizeof(uint64_t); else if (sc->mac_ver == 0x3593) rxwisize += sizeof(uint32_t); if (__predict_false(dmalen < rxwisize + sizeof(struct ieee80211_frame_ack))) { RUN_DPRINTF(sc, RUN_DEBUG_RECV, "payload is too short: dma length %u < %zu\n", dmalen, rxwisize + sizeof(struct ieee80211_frame_ack)); goto fail; } rxwi = mtod(m, struct rt2860_rxwi *); len = le16toh(rxwi->len) & 0xfff; if (__predict_false(len > dmalen - rxwisize)) { RUN_DPRINTF(sc, RUN_DEBUG_RECV, "bad RXWI length %u > %u\n", len, dmalen); goto fail; } /* Rx descriptor is located at the end */ rxd = (struct rt2870_rxd *)(mtod(m, caddr_t) + dmalen); flags = le32toh(rxd->flags); if (__predict_false(flags & (RT2860_RX_CRCERR | RT2860_RX_ICVERR))) { RUN_DPRINTF(sc, RUN_DEBUG_RECV, "%s error.\n", (flags & RT2860_RX_CRCERR)?"CRC":"ICV"); goto fail; } if (flags & RT2860_RX_L2PAD) { RUN_DPRINTF(sc, RUN_DEBUG_RECV, "received RT2860_RX_L2PAD frame\n"); len += 2; } m->m_data += rxwisize; m->m_pkthdr.len = m->m_len = len; wh = mtod(m, struct ieee80211_frame *); if ((wh->i_fc[1] & IEEE80211_FC1_PROTECTED) != 0 && (flags & RT2860_RX_DEC) != 0) { wh->i_fc[1] &= ~IEEE80211_FC1_PROTECTED; m->m_flags |= M_WEP; } if (len >= sizeof(struct ieee80211_frame_min)) { ni = ieee80211_find_rxnode(ic, mtod(m, struct ieee80211_frame_min *)); } else ni = NULL; if(ni && ni->ni_flags & IEEE80211_NODE_HT) { m->m_flags |= M_AMPDU; } if (__predict_false(flags & RT2860_RX_MICERR)) { /* report MIC failures to net80211 for TKIP */ if (ni != NULL) ieee80211_notify_michael_failure(ni->ni_vap, wh, rxwi->keyidx); RUN_DPRINTF(sc, RUN_DEBUG_RECV, "MIC error. Someone is lying.\n"); goto fail; } ant = run_maxrssi_chain(sc, rxwi); rssi = rxwi->rssi[ant]; nf = run_rssi2dbm(sc, rssi, ant); if (__predict_false(ieee80211_radiotap_active(ic))) { struct run_rx_radiotap_header *tap = &sc->sc_rxtap; uint16_t phy; tap->wr_flags = 0; if (flags & RT2860_RX_L2PAD) tap->wr_flags |= IEEE80211_RADIOTAP_F_DATAPAD; tap->wr_antsignal = rssi; tap->wr_antenna = ant; tap->wr_dbm_antsignal = run_rssi2dbm(sc, rssi, ant); tap->wr_rate = 2; /* in case it can't be found below */ RUN_LOCK(sc); run_get_tsf(sc, &tap->wr_tsf); RUN_UNLOCK(sc); phy = le16toh(rxwi->phy); switch (phy & RT2860_PHY_MODE) { case RT2860_PHY_CCK: switch ((phy & RT2860_PHY_MCS) & ~RT2860_PHY_SHPRE) { case 0: tap->wr_rate = 2; break; case 1: tap->wr_rate = 4; break; case 2: tap->wr_rate = 11; break; case 3: tap->wr_rate = 22; break; } if (phy & RT2860_PHY_SHPRE) tap->wr_flags |= IEEE80211_RADIOTAP_F_SHORTPRE; break; case RT2860_PHY_OFDM: switch (phy & RT2860_PHY_MCS) { case 0: tap->wr_rate = 12; break; case 1: tap->wr_rate = 18; break; case 2: tap->wr_rate = 24; break; case 3: tap->wr_rate = 36; break; case 4: tap->wr_rate = 48; break; case 5: tap->wr_rate = 72; break; case 6: tap->wr_rate = 96; break; case 7: tap->wr_rate = 108; break; } break; } } NET_EPOCH_ENTER(et); if (ni != NULL) { (void)ieee80211_input(ni, m, rssi, nf); ieee80211_free_node(ni); } else { (void)ieee80211_input_all(ic, m, rssi, nf); } NET_EPOCH_EXIT(et); return; fail: m_freem(m); counter_u64_add(ic->ic_ierrors, 1); } static void run_bulk_rx_callback(struct usb_xfer *xfer, usb_error_t error) { struct run_softc *sc = usbd_xfer_softc(xfer); struct ieee80211com *ic = &sc->sc_ic; struct mbuf *m = NULL; struct mbuf *m0; uint32_t dmalen, mbuf_len; uint16_t rxwisize; int xferlen; rxwisize = sizeof(struct rt2860_rxwi); if (sc->mac_ver == 0x5592) rxwisize += sizeof(uint64_t); else if (sc->mac_ver == 0x3593) rxwisize += sizeof(uint32_t); usbd_xfer_status(xfer, &xferlen, NULL, NULL, NULL); switch (USB_GET_STATE(xfer)) { case USB_ST_TRANSFERRED: RUN_DPRINTF(sc, RUN_DEBUG_RECV, "rx done, actlen=%d\n", xferlen); if (xferlen < (int)(sizeof(uint32_t) + rxwisize + sizeof(struct rt2870_rxd))) { RUN_DPRINTF(sc, RUN_DEBUG_RECV_DESC | RUN_DEBUG_USB, "xfer too short %d\n", xferlen); goto tr_setup; } m = sc->rx_m; sc->rx_m = NULL; /* FALLTHROUGH */ case USB_ST_SETUP: tr_setup: if (sc->rx_m == NULL) { sc->rx_m = m_getjcl(M_NOWAIT, MT_DATA, M_PKTHDR, RUN_MAX_RXSZ); } if (sc->rx_m == NULL) { RUN_DPRINTF(sc, RUN_DEBUG_RECV | RUN_DEBUG_RECV_DESC | RUN_DEBUG_USB, "could not allocate mbuf - idle with stall\n"); counter_u64_add(ic->ic_ierrors, 1); usbd_xfer_set_stall(xfer); usbd_xfer_set_frames(xfer, 0); } else { /* * Directly loading a mbuf cluster into DMA to * save some data copying. This works because * there is only one cluster. */ usbd_xfer_set_frame_data(xfer, 0, mtod(sc->rx_m, caddr_t), RUN_MAX_RXSZ); usbd_xfer_set_frames(xfer, 1); } usbd_transfer_submit(xfer); break; default: /* Error */ if (error != USB_ERR_CANCELLED) { /* try to clear stall first */ usbd_xfer_set_stall(xfer); if (error == USB_ERR_TIMEOUT) device_printf(sc->sc_dev, "device timeout\n"); counter_u64_add(ic->ic_ierrors, 1); goto tr_setup; } if (sc->rx_m != NULL) { m_freem(sc->rx_m); sc->rx_m = NULL; } break; } if (m == NULL) return; /* inputting all the frames must be last */ RUN_UNLOCK(sc); m->m_pkthdr.len = m->m_len = xferlen; /* HW can aggregate multiple 802.11 frames in a single USB xfer */ for(;;) { dmalen = le32toh(*mtod(m, uint32_t *)) & 0xffff; if ((dmalen >= (uint32_t)-8) || (dmalen == 0) || ((dmalen & 3) != 0)) { RUN_DPRINTF(sc, RUN_DEBUG_RECV_DESC | RUN_DEBUG_USB, "bad DMA length %u\n", dmalen); break; } if ((dmalen + 8) > (uint32_t)xferlen) { RUN_DPRINTF(sc, RUN_DEBUG_RECV_DESC | RUN_DEBUG_USB, "bad DMA length %u > %d\n", dmalen + 8, xferlen); break; } /* If it is the last one or a single frame, we won't copy. */ if ((xferlen -= dmalen + 8) <= 8) { /* trim 32-bit DMA-len header */ m->m_data += 4; m->m_pkthdr.len = m->m_len -= 4; run_rx_frame(sc, m, dmalen); m = NULL; /* don't free source buffer */ break; } mbuf_len = dmalen + sizeof(struct rt2870_rxd); if (__predict_false(mbuf_len > MCLBYTES)) { RUN_DPRINTF(sc, RUN_DEBUG_RECV_DESC | RUN_DEBUG_USB, "payload is too big: mbuf_len %u\n", mbuf_len); counter_u64_add(ic->ic_ierrors, 1); break; } /* copy aggregated frames to another mbuf */ m0 = m_getcl(M_NOWAIT, MT_DATA, M_PKTHDR); if (__predict_false(m0 == NULL)) { RUN_DPRINTF(sc, RUN_DEBUG_RECV_DESC, "could not allocate mbuf\n"); counter_u64_add(ic->ic_ierrors, 1); break; } m_copydata(m, 4 /* skip 32-bit DMA-len header */, mbuf_len, mtod(m0, caddr_t)); m0->m_pkthdr.len = m0->m_len = mbuf_len; run_rx_frame(sc, m0, dmalen); /* update data ptr */ m->m_data += mbuf_len + 4; m->m_pkthdr.len = m->m_len -= mbuf_len + 4; } /* make sure we free the source buffer, if any */ m_freem(m); #ifdef IEEE80211_SUPPORT_SUPERG ieee80211_ff_age_all(ic, 100); #endif RUN_LOCK(sc); } static void run_tx_free(struct run_endpoint_queue *pq, struct run_tx_data *data, int txerr) { ieee80211_tx_complete(data->ni, data->m, txerr); data->m = NULL; data->ni = NULL; STAILQ_INSERT_TAIL(&pq->tx_fh, data, next); pq->tx_nfree++; } static void run_bulk_tx_callbackN(struct usb_xfer *xfer, usb_error_t error, u_int index) { struct run_softc *sc = usbd_xfer_softc(xfer); struct ieee80211com *ic = &sc->sc_ic; struct run_tx_data *data; struct ieee80211vap *vap = NULL; struct usb_page_cache *pc; struct run_endpoint_queue *pq = &sc->sc_epq[index]; struct mbuf *m; usb_frlength_t size; int actlen; int sumlen; usbd_xfer_status(xfer, &actlen, &sumlen, NULL, NULL); switch (USB_GET_STATE(xfer)) { case USB_ST_TRANSFERRED: RUN_DPRINTF(sc, RUN_DEBUG_XMIT | RUN_DEBUG_USB, "transfer complete: %d bytes @ index %d\n", actlen, index); data = usbd_xfer_get_priv(xfer); run_tx_free(pq, data, 0); usbd_xfer_set_priv(xfer, NULL); /* FALLTHROUGH */ case USB_ST_SETUP: tr_setup: data = STAILQ_FIRST(&pq->tx_qh); if (data == NULL) break; STAILQ_REMOVE_HEAD(&pq->tx_qh, next); m = data->m; size = (sc->mac_ver == 0x5592) ? sizeof(data->desc) + sizeof(uint32_t) : sizeof(data->desc); if ((m->m_pkthdr.len + size + 3 + 8) > RUN_MAX_TXSZ) { RUN_DPRINTF(sc, RUN_DEBUG_XMIT_DESC | RUN_DEBUG_USB, "data overflow, %u bytes\n", m->m_pkthdr.len); run_tx_free(pq, data, 1); goto tr_setup; } pc = usbd_xfer_get_frame(xfer, 0); usbd_copy_in(pc, 0, &data->desc, size); usbd_m_copy_in(pc, size, m, 0, m->m_pkthdr.len); size += m->m_pkthdr.len; /* * Align end on a 4-byte boundary, pad 8 bytes (CRC + * 4-byte padding), and be sure to zero those trailing * bytes: */ usbd_frame_zero(pc, size, ((-size) & 3) + 8); size += ((-size) & 3) + 8; vap = data->ni->ni_vap; if (ieee80211_radiotap_active_vap(vap)) { const struct ieee80211_frame *wh; struct run_tx_radiotap_header *tap = &sc->sc_txtap; struct rt2860_txwi *txwi = (struct rt2860_txwi *)(&data->desc + sizeof(struct rt2870_txd)); int has_l2pad; wh = mtod(m, struct ieee80211_frame *); has_l2pad = IEEE80211_HAS_ADDR4(wh) != IEEE80211_QOS_HAS_SEQ(wh); tap->wt_flags = 0; tap->wt_rate = rt2860_rates[data->ridx].rate; tap->wt_hwqueue = index; if (le16toh(txwi->phy) & RT2860_PHY_SHPRE) tap->wt_flags |= IEEE80211_RADIOTAP_F_SHORTPRE; if (has_l2pad) tap->wt_flags |= IEEE80211_RADIOTAP_F_DATAPAD; ieee80211_radiotap_tx(vap, m); } RUN_DPRINTF(sc, RUN_DEBUG_XMIT | RUN_DEBUG_USB, "sending frame len=%u/%u @ index %d\n", m->m_pkthdr.len, size, index); usbd_xfer_set_frame_len(xfer, 0, size); usbd_xfer_set_priv(xfer, data); usbd_transfer_submit(xfer); run_start(sc); break; default: RUN_DPRINTF(sc, RUN_DEBUG_XMIT | RUN_DEBUG_USB, "USB transfer error, %s\n", usbd_errstr(error)); data = usbd_xfer_get_priv(xfer); if (data != NULL) { if(data->ni != NULL) vap = data->ni->ni_vap; run_tx_free(pq, data, error); usbd_xfer_set_priv(xfer, NULL); } if (vap == NULL) vap = TAILQ_FIRST(&ic->ic_vaps); if (error != USB_ERR_CANCELLED) { if (error == USB_ERR_TIMEOUT) { device_printf(sc->sc_dev, "device timeout\n"); uint32_t i = RUN_CMDQ_GET(&sc->cmdq_store); RUN_DPRINTF(sc, RUN_DEBUG_XMIT | RUN_DEBUG_USB, "cmdq_store=%d\n", i); sc->cmdq[i].func = run_usb_timeout_cb; sc->cmdq[i].arg0 = vap; ieee80211_runtask(ic, &sc->cmdq_task); } /* * Try to clear stall first, also if other * errors occur, hence clearing stall * introduces a 50 ms delay: */ usbd_xfer_set_stall(xfer); goto tr_setup; } break; } #ifdef IEEE80211_SUPPORT_SUPERG /* XXX TODO: make this deferred rather than unlock/relock */ /* XXX TODO: should only do the QoS AC this belongs to */ if (pq->tx_nfree >= RUN_TX_RING_COUNT) { RUN_UNLOCK(sc); ieee80211_ff_flush_all(ic); RUN_LOCK(sc); } #endif } static void run_bulk_tx_callback0(struct usb_xfer *xfer, usb_error_t error) { run_bulk_tx_callbackN(xfer, error, 0); } static void run_bulk_tx_callback1(struct usb_xfer *xfer, usb_error_t error) { run_bulk_tx_callbackN(xfer, error, 1); } static void run_bulk_tx_callback2(struct usb_xfer *xfer, usb_error_t error) { run_bulk_tx_callbackN(xfer, error, 2); } static void run_bulk_tx_callback3(struct usb_xfer *xfer, usb_error_t error) { run_bulk_tx_callbackN(xfer, error, 3); } static void run_bulk_tx_callback4(struct usb_xfer *xfer, usb_error_t error) { run_bulk_tx_callbackN(xfer, error, 4); } static void run_bulk_tx_callback5(struct usb_xfer *xfer, usb_error_t error) { run_bulk_tx_callbackN(xfer, error, 5); } static void run_set_tx_desc(struct run_softc *sc, struct run_tx_data *data) { struct mbuf *m = data->m; struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = data->ni->ni_vap; struct ieee80211_frame *wh; struct rt2870_txd *txd; struct rt2860_txwi *txwi; uint16_t xferlen, txwisize; uint16_t mcs; uint8_t ridx = data->ridx; uint8_t pad; /* get MCS code from rate index */ mcs = rt2860_rates[ridx].mcs; txwisize = (sc->mac_ver == 0x5592) ? sizeof(*txwi) + sizeof(uint32_t) : sizeof(*txwi); xferlen = txwisize + m->m_pkthdr.len; /* roundup to 32-bit alignment */ xferlen = (xferlen + 3) & ~3; txd = (struct rt2870_txd *)&data->desc; txd->len = htole16(xferlen); wh = mtod(m, struct ieee80211_frame *); /* * Ether both are true or both are false, the header * are nicely aligned to 32-bit. So, no L2 padding. */ if(IEEE80211_HAS_ADDR4(wh) == IEEE80211_QOS_HAS_SEQ(wh)) pad = 0; else pad = 2; /* setup TX Wireless Information */ txwi = (struct rt2860_txwi *)(txd + 1); txwi->len = htole16(m->m_pkthdr.len - pad); if (rt2860_rates[ridx].phy == IEEE80211_T_DS) { mcs |= RT2860_PHY_CCK; if (ridx != RT2860_RIDX_CCK1 && (ic->ic_flags & IEEE80211_F_SHPREAMBLE)) mcs |= RT2860_PHY_SHPRE; } else if (rt2860_rates[ridx].phy == IEEE80211_T_OFDM) { mcs |= RT2860_PHY_OFDM; } else if (rt2860_rates[ridx].phy == IEEE80211_T_HT) { /* XXX TODO: [adrian] set short preamble for MCS? */ mcs |= RT2860_PHY_HT_MIX; /* Mixed, not greenfield */ } txwi->phy = htole16(mcs); /* check if RTS/CTS or CTS-to-self protection is required */ if (!IEEE80211_IS_MULTICAST(wh->i_addr1) && ((m->m_pkthdr.len + IEEE80211_CRC_LEN > vap->iv_rtsthreshold) || ((ic->ic_flags & IEEE80211_F_USEPROT) && rt2860_rates[ridx].phy == IEEE80211_T_OFDM) || ((ic->ic_htprotmode == IEEE80211_PROT_RTSCTS) && rt2860_rates[ridx].phy == IEEE80211_T_HT))) txwi->txop |= RT2860_TX_TXOP_HT; else txwi->txop |= RT2860_TX_TXOP_BACKOFF; if (vap->iv_opmode != IEEE80211_M_STA && !IEEE80211_QOS_HAS_SEQ(wh)) txwi->xflags |= RT2860_TX_NSEQ; } /* This function must be called locked */ static int run_tx(struct run_softc *sc, struct mbuf *m, struct ieee80211_node *ni) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = ni->ni_vap; struct ieee80211_frame *wh; const struct ieee80211_txparam *tp = ni->ni_txparms; struct run_node *rn = RUN_NODE(ni); struct run_tx_data *data; struct rt2870_txd *txd; struct rt2860_txwi *txwi; uint16_t qos; uint16_t dur; uint16_t qid; uint8_t type; uint8_t tid; uint8_t ridx; uint8_t ctl_ridx; uint8_t qflags; uint8_t xflags = 0; int hasqos; RUN_LOCK_ASSERT(sc, MA_OWNED); wh = mtod(m, struct ieee80211_frame *); type = wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK; /* * There are 7 bulk endpoints: 1 for RX * and 6 for TX (4 EDCAs + HCCA + Prio). * Update 03-14-2009: some devices like the Planex GW-US300MiniS * seem to have only 4 TX bulk endpoints (Fukaumi Naoki). */ if ((hasqos = IEEE80211_QOS_HAS_SEQ(wh))) { uint8_t *frm; frm = ieee80211_getqos(wh); qos = le16toh(*(const uint16_t *)frm); tid = qos & IEEE80211_QOS_TID; qid = TID_TO_WME_AC(tid); } else { qos = 0; tid = 0; qid = WME_AC_BE; } qflags = (qid < 4) ? RT2860_TX_QSEL_EDCA : RT2860_TX_QSEL_HCCA; RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "qos %d\tqid %d\ttid %d\tqflags %x\n", qos, qid, tid, qflags); /* pickup a rate index */ if (IEEE80211_IS_MULTICAST(wh->i_addr1) || type != IEEE80211_FC0_TYPE_DATA || m->m_flags & M_EAPOL) { /* XXX TODO: methodize for 11n; use MCS0 for 11NA/11NG */ ridx = (ic->ic_curmode == IEEE80211_MODE_11A || ic->ic_curmode == IEEE80211_MODE_11NA) ? RT2860_RIDX_OFDM6 : RT2860_RIDX_CCK1; ctl_ridx = rt2860_rates[ridx].ctl_ridx; } else { if (tp->ucastrate != IEEE80211_FIXED_RATE_NONE) ridx = rn->fix_ridx; else ridx = rn->amrr_ridx; ctl_ridx = rt2860_rates[ridx].ctl_ridx; } if (!IEEE80211_IS_MULTICAST(wh->i_addr1) && (!hasqos || (qos & IEEE80211_QOS_ACKPOLICY) != IEEE80211_QOS_ACKPOLICY_NOACK)) { xflags |= RT2860_TX_ACK; if (ic->ic_flags & IEEE80211_F_SHPREAMBLE) dur = rt2860_rates[ctl_ridx].sp_ack_dur; else dur = rt2860_rates[ctl_ridx].lp_ack_dur; USETW(wh->i_dur, dur); } /* reserve slots for mgmt packets, just in case */ if (sc->sc_epq[qid].tx_nfree < 3) { RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "tx ring %d is full\n", qid); return (-1); } data = STAILQ_FIRST(&sc->sc_epq[qid].tx_fh); STAILQ_REMOVE_HEAD(&sc->sc_epq[qid].tx_fh, next); sc->sc_epq[qid].tx_nfree--; txd = (struct rt2870_txd *)&data->desc; txd->flags = qflags; txwi = (struct rt2860_txwi *)(txd + 1); txwi->xflags = xflags; if (IEEE80211_IS_MULTICAST(wh->i_addr1)) txwi->wcid = 0; else txwi->wcid = (vap->iv_opmode == IEEE80211_M_STA) ? 1 : RUN_AID2WCID(ni->ni_associd); /* clear leftover garbage bits */ txwi->flags = 0; txwi->txop = 0; data->m = m; data->ni = ni; data->ridx = ridx; run_set_tx_desc(sc, data); /* * The chip keeps track of 2 kind of Tx stats, * * TX_STAT_FIFO, for per WCID stats, and * * TX_STA_CNT0 for all-TX-in-one stats. * * To use FIFO stats, we need to store MCS into the driver-private * PacketID field. So that, we can tell whose stats when we read them. * We add 1 to the MCS because setting the PacketID field to 0 means * that we don't want feedback in TX_STAT_FIFO. * And, that's what we want for STA mode, since TX_STA_CNT0 does the job. * * FIFO stats doesn't count Tx with WCID 0xff, so we do this in run_tx(). */ if (sc->rvp_cnt > 1 || vap->iv_opmode == IEEE80211_M_HOSTAP || vap->iv_opmode == IEEE80211_M_MBSS) { uint16_t pid = (rt2860_rates[ridx].mcs + 1) & 0xf; txwi->len |= htole16(pid << RT2860_TX_PID_SHIFT); /* * Unlike PCI based devices, we don't get any interrupt from * USB devices, so we simulate FIFO-is-full interrupt here. * Ralink recommends to drain FIFO stats every 100 ms, but 16 slots * quickly get fulled. To prevent overflow, increment a counter on * every FIFO stat request, so we know how many slots are left. * We do this only in HOSTAP or multiple vap mode since FIFO stats * are used only in those modes. * We just drain stats. AMRR gets updated every 1 sec by * run_ratectl_cb() via callout. * Call it early. Otherwise overflow. */ if (sc->fifo_cnt++ == 10) { /* * With multiple vaps or if_bridge, if_start() is called * with a non-sleepable lock, tcpinp. So, need to defer. */ uint32_t i = RUN_CMDQ_GET(&sc->cmdq_store); RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "cmdq_store=%d\n", i); sc->cmdq[i].func = run_drain_fifo; sc->cmdq[i].arg0 = sc; ieee80211_runtask(ic, &sc->cmdq_task); } } STAILQ_INSERT_TAIL(&sc->sc_epq[qid].tx_qh, data, next); usbd_transfer_start(sc->sc_xfer[qid]); RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "sending data frame len=%d rate=%d qid=%d\n", m->m_pkthdr.len + (int)(sizeof(struct rt2870_txd) + sizeof(struct rt2860_txwi)), rt2860_rates[ridx].rate, qid); return (0); } static int run_tx_mgt(struct run_softc *sc, struct mbuf *m, struct ieee80211_node *ni) { struct ieee80211com *ic = &sc->sc_ic; struct run_node *rn = RUN_NODE(ni); struct run_tx_data *data; struct ieee80211_frame *wh; struct rt2870_txd *txd; struct rt2860_txwi *txwi; uint16_t dur; uint8_t ridx = rn->mgt_ridx; uint8_t xflags = 0; uint8_t wflags = 0; RUN_LOCK_ASSERT(sc, MA_OWNED); wh = mtod(m, struct ieee80211_frame *); /* tell hardware to add timestamp for probe responses */ if ((wh->i_fc[0] & (IEEE80211_FC0_TYPE_MASK | IEEE80211_FC0_SUBTYPE_MASK)) == (IEEE80211_FC0_TYPE_MGT | IEEE80211_FC0_SUBTYPE_PROBE_RESP)) wflags |= RT2860_TX_TS; else if (!IEEE80211_IS_MULTICAST(wh->i_addr1)) { xflags |= RT2860_TX_ACK; dur = ieee80211_ack_duration(ic->ic_rt, rt2860_rates[ridx].rate, ic->ic_flags & IEEE80211_F_SHPREAMBLE); USETW(wh->i_dur, dur); } if (sc->sc_epq[0].tx_nfree == 0) /* let caller free mbuf */ return (EIO); data = STAILQ_FIRST(&sc->sc_epq[0].tx_fh); STAILQ_REMOVE_HEAD(&sc->sc_epq[0].tx_fh, next); sc->sc_epq[0].tx_nfree--; txd = (struct rt2870_txd *)&data->desc; txd->flags = RT2860_TX_QSEL_EDCA; txwi = (struct rt2860_txwi *)(txd + 1); txwi->wcid = 0xff; txwi->flags = wflags; txwi->xflags = xflags; txwi->txop = 0; /* clear leftover garbage bits */ data->m = m; data->ni = ni; data->ridx = ridx; run_set_tx_desc(sc, data); RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "sending mgt frame len=%d rate=%d\n", m->m_pkthdr.len + (int)(sizeof(struct rt2870_txd) + sizeof(struct rt2860_txwi)), rt2860_rates[ridx].rate); STAILQ_INSERT_TAIL(&sc->sc_epq[0].tx_qh, data, next); usbd_transfer_start(sc->sc_xfer[0]); return (0); } static int run_sendprot(struct run_softc *sc, const struct mbuf *m, struct ieee80211_node *ni, int prot, int rate) { struct ieee80211com *ic = ni->ni_ic; struct run_tx_data *data; struct rt2870_txd *txd; struct rt2860_txwi *txwi; struct mbuf *mprot; int ridx; int protrate; uint8_t wflags = 0; uint8_t xflags = 0; RUN_LOCK_ASSERT(sc, MA_OWNED); /* check that there are free slots before allocating the mbuf */ if (sc->sc_epq[0].tx_nfree == 0) /* let caller free mbuf */ return (ENOBUFS); mprot = ieee80211_alloc_prot(ni, m, rate, prot); if (mprot == NULL) { if_inc_counter(ni->ni_vap->iv_ifp, IFCOUNTER_OERRORS, 1); RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "could not allocate mbuf\n"); return (ENOBUFS); } protrate = ieee80211_ctl_rate(ic->ic_rt, rate); wflags = RT2860_TX_FRAG; xflags = 0; if (prot == IEEE80211_PROT_RTSCTS) xflags |= RT2860_TX_ACK; data = STAILQ_FIRST(&sc->sc_epq[0].tx_fh); STAILQ_REMOVE_HEAD(&sc->sc_epq[0].tx_fh, next); sc->sc_epq[0].tx_nfree--; txd = (struct rt2870_txd *)&data->desc; txd->flags = RT2860_TX_QSEL_EDCA; txwi = (struct rt2860_txwi *)(txd + 1); txwi->wcid = 0xff; txwi->flags = wflags; txwi->xflags = xflags; txwi->txop = 0; /* clear leftover garbage bits */ data->m = mprot; data->ni = ieee80211_ref_node(ni); /* XXX TODO: methodize with MCS rates */ for (ridx = 0; ridx < RT2860_RIDX_MAX; ridx++) if (rt2860_rates[ridx].rate == protrate) break; data->ridx = ridx; run_set_tx_desc(sc, data); RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "sending prot len=%u rate=%u\n", m->m_pkthdr.len, rate); STAILQ_INSERT_TAIL(&sc->sc_epq[0].tx_qh, data, next); usbd_transfer_start(sc->sc_xfer[0]); return (0); } static int run_tx_param(struct run_softc *sc, struct mbuf *m, struct ieee80211_node *ni, const struct ieee80211_bpf_params *params) { struct ieee80211com *ic = ni->ni_ic; struct run_tx_data *data; struct rt2870_txd *txd; struct rt2860_txwi *txwi; uint8_t ridx; uint8_t rate; uint8_t opflags = 0; uint8_t xflags = 0; int error; RUN_LOCK_ASSERT(sc, MA_OWNED); KASSERT(params != NULL, ("no raw xmit params")); rate = params->ibp_rate0; if (!ieee80211_isratevalid(ic->ic_rt, rate)) { /* let caller free mbuf */ return (EINVAL); } if ((params->ibp_flags & IEEE80211_BPF_NOACK) == 0) xflags |= RT2860_TX_ACK; if (params->ibp_flags & (IEEE80211_BPF_RTS|IEEE80211_BPF_CTS)) { error = run_sendprot(sc, m, ni, params->ibp_flags & IEEE80211_BPF_RTS ? IEEE80211_PROT_RTSCTS : IEEE80211_PROT_CTSONLY, rate); if (error) { /* let caller free mbuf */ return error; } opflags |= /*XXX RT2573_TX_LONG_RETRY |*/ RT2860_TX_TXOP_SIFS; } if (sc->sc_epq[0].tx_nfree == 0) { /* let caller free mbuf */ RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "sending raw frame, but tx ring is full\n"); return (EIO); } data = STAILQ_FIRST(&sc->sc_epq[0].tx_fh); STAILQ_REMOVE_HEAD(&sc->sc_epq[0].tx_fh, next); sc->sc_epq[0].tx_nfree--; txd = (struct rt2870_txd *)&data->desc; txd->flags = RT2860_TX_QSEL_EDCA; txwi = (struct rt2860_txwi *)(txd + 1); txwi->wcid = 0xff; txwi->xflags = xflags; txwi->txop = opflags; txwi->flags = 0; /* clear leftover garbage bits */ data->m = m; data->ni = ni; /* XXX TODO: methodize with MCS rates */ for (ridx = 0; ridx < RT2860_RIDX_MAX; ridx++) if (rt2860_rates[ridx].rate == rate) break; data->ridx = ridx; run_set_tx_desc(sc, data); RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "sending raw frame len=%u rate=%u\n", m->m_pkthdr.len, rate); STAILQ_INSERT_TAIL(&sc->sc_epq[0].tx_qh, data, next); usbd_transfer_start(sc->sc_xfer[0]); return (0); } static int run_raw_xmit(struct ieee80211_node *ni, struct mbuf *m, const struct ieee80211_bpf_params *params) { struct run_softc *sc = ni->ni_ic->ic_softc; int error = 0; RUN_LOCK(sc); /* prevent management frames from being sent if we're not ready */ if (!(sc->sc_flags & RUN_RUNNING)) { error = ENETDOWN; goto done; } if (params == NULL) { /* tx mgt packet */ if ((error = run_tx_mgt(sc, m, ni)) != 0) { RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "mgt tx failed\n"); goto done; } } else { /* tx raw packet with param */ if ((error = run_tx_param(sc, m, ni, params)) != 0) { RUN_DPRINTF(sc, RUN_DEBUG_XMIT, "tx with param failed\n"); goto done; } } done: RUN_UNLOCK(sc); if (error != 0) { if(m != NULL) m_freem(m); } return (error); } static int run_transmit(struct ieee80211com *ic, struct mbuf *m) { struct run_softc *sc = ic->ic_softc; int error; RUN_LOCK(sc); if ((sc->sc_flags & RUN_RUNNING) == 0) { RUN_UNLOCK(sc); return (ENXIO); } error = mbufq_enqueue(&sc->sc_snd, m); if (error) { RUN_UNLOCK(sc); return (error); } run_start(sc); RUN_UNLOCK(sc); return (0); } static void run_start(struct run_softc *sc) { struct ieee80211_node *ni; struct mbuf *m; RUN_LOCK_ASSERT(sc, MA_OWNED); if ((sc->sc_flags & RUN_RUNNING) == 0) return; while ((m = mbufq_dequeue(&sc->sc_snd)) != NULL) { ni = (struct ieee80211_node *)m->m_pkthdr.rcvif; if (run_tx(sc, m, ni) != 0) { mbufq_prepend(&sc->sc_snd, m); break; } } } static void run_parent(struct ieee80211com *ic) { struct run_softc *sc = ic->ic_softc; int startall = 0; RUN_LOCK(sc); if (sc->sc_detached) { RUN_UNLOCK(sc); return; } if (ic->ic_nrunning > 0) { if (!(sc->sc_flags & RUN_RUNNING)) { startall = 1; run_init_locked(sc); } else run_update_promisc_locked(sc); } else if ((sc->sc_flags & RUN_RUNNING) && sc->rvp_cnt <= 1) run_stop(sc); RUN_UNLOCK(sc); if (startall) ieee80211_start_all(ic); } static void run_iq_calib(struct run_softc *sc, u_int chan) { uint16_t val; /* Tx0 IQ gain. */ run_bbp_write(sc, 158, 0x2c); if (chan <= 14) run_efuse_read(sc, RT5390_EEPROM_IQ_GAIN_CAL_TX0_2GHZ, &val, 1); else if (chan <= 64) { run_efuse_read(sc, RT5390_EEPROM_IQ_GAIN_CAL_TX0_CH36_TO_CH64_5GHZ, &val, 1); } else if (chan <= 138) { run_efuse_read(sc, RT5390_EEPROM_IQ_GAIN_CAL_TX0_CH100_TO_CH138_5GHZ, &val, 1); } else if (chan <= 165) { run_efuse_read(sc, RT5390_EEPROM_IQ_GAIN_CAL_TX0_CH140_TO_CH165_5GHZ, &val, 1); } else val = 0; run_bbp_write(sc, 159, val); /* Tx0 IQ phase. */ run_bbp_write(sc, 158, 0x2d); if (chan <= 14) { run_efuse_read(sc, RT5390_EEPROM_IQ_PHASE_CAL_TX0_2GHZ, &val, 1); } else if (chan <= 64) { run_efuse_read(sc, RT5390_EEPROM_IQ_PHASE_CAL_TX0_CH36_TO_CH64_5GHZ, &val, 1); } else if (chan <= 138) { run_efuse_read(sc, RT5390_EEPROM_IQ_PHASE_CAL_TX0_CH100_TO_CH138_5GHZ, &val, 1); } else if (chan <= 165) { run_efuse_read(sc, RT5390_EEPROM_IQ_PHASE_CAL_TX0_CH140_TO_CH165_5GHZ, &val, 1); } else val = 0; run_bbp_write(sc, 159, val); /* Tx1 IQ gain. */ run_bbp_write(sc, 158, 0x4a); if (chan <= 14) { run_efuse_read(sc, RT5390_EEPROM_IQ_GAIN_CAL_TX1_2GHZ, &val, 1); } else if (chan <= 64) { run_efuse_read(sc, RT5390_EEPROM_IQ_GAIN_CAL_TX1_CH36_TO_CH64_5GHZ, &val, 1); } else if (chan <= 138) { run_efuse_read(sc, RT5390_EEPROM_IQ_GAIN_CAL_TX1_CH100_TO_CH138_5GHZ, &val, 1); } else if (chan <= 165) { run_efuse_read(sc, RT5390_EEPROM_IQ_GAIN_CAL_TX1_CH140_TO_CH165_5GHZ, &val, 1); } else val = 0; run_bbp_write(sc, 159, val); /* Tx1 IQ phase. */ run_bbp_write(sc, 158, 0x4b); if (chan <= 14) { run_efuse_read(sc, RT5390_EEPROM_IQ_PHASE_CAL_TX1_2GHZ, &val, 1); } else if (chan <= 64) { run_efuse_read(sc, RT5390_EEPROM_IQ_PHASE_CAL_TX1_CH36_TO_CH64_5GHZ, &val, 1); } else if (chan <= 138) { run_efuse_read(sc, RT5390_EEPROM_IQ_PHASE_CAL_TX1_CH100_TO_CH138_5GHZ, &val, 1); } else if (chan <= 165) { run_efuse_read(sc, RT5390_EEPROM_IQ_PHASE_CAL_TX1_CH140_TO_CH165_5GHZ, &val, 1); } else val = 0; run_bbp_write(sc, 159, val); /* RF IQ compensation control. */ run_bbp_write(sc, 158, 0x04); run_efuse_read(sc, RT5390_EEPROM_RF_IQ_COMPENSATION_CTL, &val, 1); run_bbp_write(sc, 159, val); /* RF IQ imbalance compensation control. */ run_bbp_write(sc, 158, 0x03); run_efuse_read(sc, RT5390_EEPROM_RF_IQ_IMBALANCE_COMPENSATION_CTL, &val, 1); run_bbp_write(sc, 159, val); } static void run_set_agc(struct run_softc *sc, uint8_t agc) { uint8_t bbp; if (sc->mac_ver == 0x3572) { run_bbp_read(sc, 27, &bbp); bbp &= ~(0x3 << 5); run_bbp_write(sc, 27, bbp | 0 << 5); /* select Rx0 */ run_bbp_write(sc, 66, agc); run_bbp_write(sc, 27, bbp | 1 << 5); /* select Rx1 */ run_bbp_write(sc, 66, agc); } else run_bbp_write(sc, 66, agc); } static void run_select_chan_group(struct run_softc *sc, int group) { uint32_t tmp; uint8_t agc; run_bbp_write(sc, 62, 0x37 - sc->lna[group]); run_bbp_write(sc, 63, 0x37 - sc->lna[group]); run_bbp_write(sc, 64, 0x37 - sc->lna[group]); if (sc->mac_ver < 0x3572) run_bbp_write(sc, 86, 0x00); if (sc->mac_ver == 0x3593) { run_bbp_write(sc, 77, 0x98); run_bbp_write(sc, 83, (group == 0) ? 0x8a : 0x9a); } if (group == 0) { if (sc->ext_2ghz_lna) { if (sc->mac_ver >= 0x5390) run_bbp_write(sc, 75, 0x52); else { run_bbp_write(sc, 82, 0x62); run_bbp_write(sc, 75, 0x46); } } else { if (sc->mac_ver == 0x5592) { run_bbp_write(sc, 79, 0x1c); run_bbp_write(sc, 80, 0x0e); run_bbp_write(sc, 81, 0x3a); run_bbp_write(sc, 82, 0x62); run_bbp_write(sc, 195, 0x80); run_bbp_write(sc, 196, 0xe0); run_bbp_write(sc, 195, 0x81); run_bbp_write(sc, 196, 0x1f); run_bbp_write(sc, 195, 0x82); run_bbp_write(sc, 196, 0x38); run_bbp_write(sc, 195, 0x83); run_bbp_write(sc, 196, 0x32); run_bbp_write(sc, 195, 0x85); run_bbp_write(sc, 196, 0x28); run_bbp_write(sc, 195, 0x86); run_bbp_write(sc, 196, 0x19); } else if (sc->mac_ver >= 0x5390) run_bbp_write(sc, 75, 0x50); else { run_bbp_write(sc, 82, (sc->mac_ver == 0x3593) ? 0x62 : 0x84); run_bbp_write(sc, 75, 0x50); } } } else { if (sc->mac_ver == 0x5592) { run_bbp_write(sc, 79, 0x18); run_bbp_write(sc, 80, 0x08); run_bbp_write(sc, 81, 0x38); run_bbp_write(sc, 82, 0x92); run_bbp_write(sc, 195, 0x80); run_bbp_write(sc, 196, 0xf0); run_bbp_write(sc, 195, 0x81); run_bbp_write(sc, 196, 0x1e); run_bbp_write(sc, 195, 0x82); run_bbp_write(sc, 196, 0x28); run_bbp_write(sc, 195, 0x83); run_bbp_write(sc, 196, 0x20); run_bbp_write(sc, 195, 0x85); run_bbp_write(sc, 196, 0x7f); run_bbp_write(sc, 195, 0x86); run_bbp_write(sc, 196, 0x7f); } else if (sc->mac_ver == 0x3572) run_bbp_write(sc, 82, 0x94); else run_bbp_write(sc, 82, (sc->mac_ver == 0x3593) ? 0x82 : 0xf2); if (sc->ext_5ghz_lna) run_bbp_write(sc, 75, 0x46); else run_bbp_write(sc, 75, 0x50); } run_read(sc, RT2860_TX_BAND_CFG, &tmp); tmp &= ~(RT2860_5G_BAND_SEL_N | RT2860_5G_BAND_SEL_P); tmp |= (group == 0) ? RT2860_5G_BAND_SEL_N : RT2860_5G_BAND_SEL_P; run_write(sc, RT2860_TX_BAND_CFG, tmp); /* enable appropriate Power Amplifiers and Low Noise Amplifiers */ tmp = RT2860_RFTR_EN | RT2860_TRSW_EN | RT2860_LNA_PE0_EN; if (sc->mac_ver == 0x3593) tmp |= 1 << 29 | 1 << 28; if (sc->nrxchains > 1) tmp |= RT2860_LNA_PE1_EN; if (group == 0) { /* 2GHz */ tmp |= RT2860_PA_PE_G0_EN; if (sc->ntxchains > 1) tmp |= RT2860_PA_PE_G1_EN; if (sc->mac_ver == 0x3593) { if (sc->ntxchains > 2) tmp |= 1 << 25; } } else { /* 5GHz */ tmp |= RT2860_PA_PE_A0_EN; if (sc->ntxchains > 1) tmp |= RT2860_PA_PE_A1_EN; } if (sc->mac_ver == 0x3572) { run_rt3070_rf_write(sc, 8, 0x00); run_write(sc, RT2860_TX_PIN_CFG, tmp); run_rt3070_rf_write(sc, 8, 0x80); } else run_write(sc, RT2860_TX_PIN_CFG, tmp); if (sc->mac_ver == 0x5592) { run_bbp_write(sc, 195, 0x8d); run_bbp_write(sc, 196, 0x1a); } if (sc->mac_ver == 0x3593) { run_read(sc, RT2860_GPIO_CTRL, &tmp); tmp &= ~0x01010000; if (group == 0) tmp |= 0x00010000; tmp = (tmp & ~0x00009090) | 0x00000090; run_write(sc, RT2860_GPIO_CTRL, tmp); } /* set initial AGC value */ if (group == 0) { /* 2GHz band */ if (sc->mac_ver >= 0x3070) agc = 0x1c + sc->lna[0] * 2; else agc = 0x2e + sc->lna[0]; } else { /* 5GHz band */ if (sc->mac_ver == 0x5592) agc = 0x24 + sc->lna[group] * 2; else if (sc->mac_ver == 0x3572 || sc->mac_ver == 0x3593) agc = 0x22 + (sc->lna[group] * 5) / 3; else agc = 0x32 + (sc->lna[group] * 5) / 3; } run_set_agc(sc, agc); } static void run_rt2870_set_chan(struct run_softc *sc, u_int chan) { const struct rfprog *rfprog = rt2860_rf2850; uint32_t r2, r3, r4; int8_t txpow1, txpow2; int i; /* find the settings for this channel (we know it exists) */ for (i = 0; rfprog[i].chan != chan; i++); r2 = rfprog[i].r2; if (sc->ntxchains == 1) r2 |= 1 << 14; /* 1T: disable Tx chain 2 */ if (sc->nrxchains == 1) r2 |= 1 << 17 | 1 << 6; /* 1R: disable Rx chains 2 & 3 */ else if (sc->nrxchains == 2) r2 |= 1 << 6; /* 2R: disable Rx chain 3 */ /* use Tx power values from EEPROM */ txpow1 = sc->txpow1[i]; txpow2 = sc->txpow2[i]; /* Initialize RF R3 and R4. */ r3 = rfprog[i].r3 & 0xffffc1ff; r4 = (rfprog[i].r4 & ~(0x001f87c0)) | (sc->freq << 15); if (chan > 14) { if (txpow1 >= 0) { txpow1 = (txpow1 > 0xf) ? (0xf) : (txpow1); r3 |= (txpow1 << 10) | (1 << 9); } else { txpow1 += 7; /* txpow1 is not possible larger than 15. */ r3 |= (txpow1 << 10); } if (txpow2 >= 0) { txpow2 = (txpow2 > 0xf) ? (0xf) : (txpow2); r4 |= (txpow2 << 7) | (1 << 6); } else { txpow2 += 7; r4 |= (txpow2 << 7); } } else { /* Set Tx0 power. */ r3 |= (txpow1 << 9); /* Set frequency offset and Tx1 power. */ r4 |= (txpow2 << 6); } run_rt2870_rf_write(sc, rfprog[i].r1); run_rt2870_rf_write(sc, r2); run_rt2870_rf_write(sc, r3 & ~(1 << 2)); run_rt2870_rf_write(sc, r4); run_delay(sc, 10); run_rt2870_rf_write(sc, rfprog[i].r1); run_rt2870_rf_write(sc, r2); run_rt2870_rf_write(sc, r3 | (1 << 2)); run_rt2870_rf_write(sc, r4); run_delay(sc, 10); run_rt2870_rf_write(sc, rfprog[i].r1); run_rt2870_rf_write(sc, r2); run_rt2870_rf_write(sc, r3 & ~(1 << 2)); run_rt2870_rf_write(sc, r4); } static void run_rt3070_set_chan(struct run_softc *sc, u_int chan) { int8_t txpow1, txpow2; uint8_t rf; int i; /* find the settings for this channel (we know it exists) */ for (i = 0; rt2860_rf2850[i].chan != chan; i++); /* use Tx power values from EEPROM */ txpow1 = sc->txpow1[i]; txpow2 = sc->txpow2[i]; run_rt3070_rf_write(sc, 2, rt3070_freqs[i].n); /* RT3370/RT3390: RF R3 [7:4] is not reserved bits. */ run_rt3070_rf_read(sc, 3, &rf); rf = (rf & ~0x0f) | rt3070_freqs[i].k; run_rt3070_rf_write(sc, 3, rf); run_rt3070_rf_read(sc, 6, &rf); rf = (rf & ~0x03) | rt3070_freqs[i].r; run_rt3070_rf_write(sc, 6, rf); /* set Tx0 power */ run_rt3070_rf_read(sc, 12, &rf); rf = (rf & ~0x1f) | txpow1; run_rt3070_rf_write(sc, 12, rf); /* set Tx1 power */ run_rt3070_rf_read(sc, 13, &rf); rf = (rf & ~0x1f) | txpow2; run_rt3070_rf_write(sc, 13, rf); run_rt3070_rf_read(sc, 1, &rf); rf &= ~0xfc; if (sc->ntxchains == 1) rf |= 1 << 7 | 1 << 5; /* 1T: disable Tx chains 2 & 3 */ else if (sc->ntxchains == 2) rf |= 1 << 7; /* 2T: disable Tx chain 3 */ if (sc->nrxchains == 1) rf |= 1 << 6 | 1 << 4; /* 1R: disable Rx chains 2 & 3 */ else if (sc->nrxchains == 2) rf |= 1 << 6; /* 2R: disable Rx chain 3 */ run_rt3070_rf_write(sc, 1, rf); /* set RF offset */ run_rt3070_rf_read(sc, 23, &rf); rf = (rf & ~0x7f) | sc->freq; run_rt3070_rf_write(sc, 23, rf); /* program RF filter */ run_rt3070_rf_read(sc, 24, &rf); /* Tx */ rf = (rf & ~0x3f) | sc->rf24_20mhz; run_rt3070_rf_write(sc, 24, rf); run_rt3070_rf_read(sc, 31, &rf); /* Rx */ rf = (rf & ~0x3f) | sc->rf24_20mhz; run_rt3070_rf_write(sc, 31, rf); /* enable RF tuning */ run_rt3070_rf_read(sc, 7, &rf); run_rt3070_rf_write(sc, 7, rf | 0x01); } static void run_rt3572_set_chan(struct run_softc *sc, u_int chan) { int8_t txpow1, txpow2; uint32_t tmp; uint8_t rf; int i; /* find the settings for this channel (we know it exists) */ for (i = 0; rt2860_rf2850[i].chan != chan; i++); /* use Tx power values from EEPROM */ txpow1 = sc->txpow1[i]; txpow2 = sc->txpow2[i]; if (chan <= 14) { run_bbp_write(sc, 25, sc->bbp25); run_bbp_write(sc, 26, sc->bbp26); } else { /* enable IQ phase correction */ run_bbp_write(sc, 25, 0x09); run_bbp_write(sc, 26, 0xff); } run_rt3070_rf_write(sc, 2, rt3070_freqs[i].n); run_rt3070_rf_write(sc, 3, rt3070_freqs[i].k); run_rt3070_rf_read(sc, 6, &rf); rf = (rf & ~0x0f) | rt3070_freqs[i].r; rf |= (chan <= 14) ? 0x08 : 0x04; run_rt3070_rf_write(sc, 6, rf); /* set PLL mode */ run_rt3070_rf_read(sc, 5, &rf); rf &= ~(0x08 | 0x04); rf |= (chan <= 14) ? 0x04 : 0x08; run_rt3070_rf_write(sc, 5, rf); /* set Tx power for chain 0 */ if (chan <= 14) rf = 0x60 | txpow1; else rf = 0xe0 | (txpow1 & 0xc) << 1 | (txpow1 & 0x3); run_rt3070_rf_write(sc, 12, rf); /* set Tx power for chain 1 */ if (chan <= 14) rf = 0x60 | txpow2; else rf = 0xe0 | (txpow2 & 0xc) << 1 | (txpow2 & 0x3); run_rt3070_rf_write(sc, 13, rf); /* set Tx/Rx streams */ run_rt3070_rf_read(sc, 1, &rf); rf &= ~0xfc; if (sc->ntxchains == 1) rf |= 1 << 7 | 1 << 5; /* 1T: disable Tx chains 2 & 3 */ else if (sc->ntxchains == 2) rf |= 1 << 7; /* 2T: disable Tx chain 3 */ if (sc->nrxchains == 1) rf |= 1 << 6 | 1 << 4; /* 1R: disable Rx chains 2 & 3 */ else if (sc->nrxchains == 2) rf |= 1 << 6; /* 2R: disable Rx chain 3 */ run_rt3070_rf_write(sc, 1, rf); /* set RF offset */ run_rt3070_rf_read(sc, 23, &rf); rf = (rf & ~0x7f) | sc->freq; run_rt3070_rf_write(sc, 23, rf); /* program RF filter */ rf = sc->rf24_20mhz; run_rt3070_rf_write(sc, 24, rf); /* Tx */ run_rt3070_rf_write(sc, 31, rf); /* Rx */ /* enable RF tuning */ run_rt3070_rf_read(sc, 7, &rf); rf = (chan <= 14) ? 0xd8 : ((rf & ~0xc8) | 0x14); run_rt3070_rf_write(sc, 7, rf); /* TSSI */ rf = (chan <= 14) ? 0xc3 : 0xc0; run_rt3070_rf_write(sc, 9, rf); /* set loop filter 1 */ run_rt3070_rf_write(sc, 10, 0xf1); /* set loop filter 2 */ run_rt3070_rf_write(sc, 11, (chan <= 14) ? 0xb9 : 0x00); /* set tx_mx2_ic */ run_rt3070_rf_write(sc, 15, (chan <= 14) ? 0x53 : 0x43); /* set tx_mx1_ic */ if (chan <= 14) rf = 0x48 | sc->txmixgain_2ghz; else rf = 0x78 | sc->txmixgain_5ghz; run_rt3070_rf_write(sc, 16, rf); /* set tx_lo1 */ run_rt3070_rf_write(sc, 17, 0x23); /* set tx_lo2 */ if (chan <= 14) rf = 0x93; else if (chan <= 64) rf = 0xb7; else if (chan <= 128) rf = 0x74; else rf = 0x72; run_rt3070_rf_write(sc, 19, rf); /* set rx_lo1 */ if (chan <= 14) rf = 0xb3; else if (chan <= 64) rf = 0xf6; else if (chan <= 128) rf = 0xf4; else rf = 0xf3; run_rt3070_rf_write(sc, 20, rf); /* set pfd_delay */ if (chan <= 14) rf = 0x15; else if (chan <= 64) rf = 0x3d; else rf = 0x01; run_rt3070_rf_write(sc, 25, rf); /* set rx_lo2 */ run_rt3070_rf_write(sc, 26, (chan <= 14) ? 0x85 : 0x87); /* set ldo_rf_vc */ run_rt3070_rf_write(sc, 27, (chan <= 14) ? 0x00 : 0x01); /* set drv_cc */ run_rt3070_rf_write(sc, 29, (chan <= 14) ? 0x9b : 0x9f); run_read(sc, RT2860_GPIO_CTRL, &tmp); tmp &= ~0x8080; if (chan <= 14) tmp |= 0x80; run_write(sc, RT2860_GPIO_CTRL, tmp); /* enable RF tuning */ run_rt3070_rf_read(sc, 7, &rf); run_rt3070_rf_write(sc, 7, rf | 0x01); run_delay(sc, 2); } static void run_rt3593_set_chan(struct run_softc *sc, u_int chan) { int8_t txpow1, txpow2, txpow3; uint8_t h20mhz, rf; int i; /* find the settings for this channel (we know it exists) */ for (i = 0; rt2860_rf2850[i].chan != chan; i++); /* use Tx power values from EEPROM */ txpow1 = sc->txpow1[i]; txpow2 = sc->txpow2[i]; txpow3 = (sc->ntxchains == 3) ? sc->txpow3[i] : 0; if (chan <= 14) { run_bbp_write(sc, 25, sc->bbp25); run_bbp_write(sc, 26, sc->bbp26); } else { /* Enable IQ phase correction. */ run_bbp_write(sc, 25, 0x09); run_bbp_write(sc, 26, 0xff); } run_rt3070_rf_write(sc, 8, rt3070_freqs[i].n); run_rt3070_rf_write(sc, 9, rt3070_freqs[i].k & 0x0f); run_rt3070_rf_read(sc, 11, &rf); rf = (rf & ~0x03) | (rt3070_freqs[i].r & 0x03); run_rt3070_rf_write(sc, 11, rf); /* Set pll_idoh. */ run_rt3070_rf_read(sc, 11, &rf); rf &= ~0x4c; rf |= (chan <= 14) ? 0x44 : 0x48; run_rt3070_rf_write(sc, 11, rf); if (chan <= 14) rf = txpow1 & 0x1f; else rf = 0x40 | ((txpow1 & 0x18) << 1) | (txpow1 & 0x07); run_rt3070_rf_write(sc, 53, rf); if (chan <= 14) rf = txpow2 & 0x1f; else rf = 0x40 | ((txpow2 & 0x18) << 1) | (txpow2 & 0x07); run_rt3070_rf_write(sc, 55, rf); if (chan <= 14) rf = txpow3 & 0x1f; else rf = 0x40 | ((txpow3 & 0x18) << 1) | (txpow3 & 0x07); run_rt3070_rf_write(sc, 54, rf); rf = RT3070_RF_BLOCK | RT3070_PLL_PD; if (sc->ntxchains == 3) rf |= RT3070_TX0_PD | RT3070_TX1_PD | RT3070_TX2_PD; else rf |= RT3070_TX0_PD | RT3070_TX1_PD; rf |= RT3070_RX0_PD | RT3070_RX1_PD | RT3070_RX2_PD; run_rt3070_rf_write(sc, 1, rf); run_adjust_freq_offset(sc); run_rt3070_rf_write(sc, 31, (chan <= 14) ? 0xa0 : 0x80); h20mhz = (sc->rf24_20mhz & 0x20) >> 5; run_rt3070_rf_read(sc, 30, &rf); rf = (rf & ~0x06) | (h20mhz << 1) | (h20mhz << 2); run_rt3070_rf_write(sc, 30, rf); run_rt3070_rf_read(sc, 36, &rf); if (chan <= 14) rf |= 0x80; else rf &= ~0x80; run_rt3070_rf_write(sc, 36, rf); /* Set vcolo_bs. */ run_rt3070_rf_write(sc, 34, (chan <= 14) ? 0x3c : 0x20); /* Set pfd_delay. */ run_rt3070_rf_write(sc, 12, (chan <= 14) ? 0x1a : 0x12); /* Set vco bias current control. */ run_rt3070_rf_read(sc, 6, &rf); rf &= ~0xc0; if (chan <= 14) rf |= 0x40; else if (chan <= 128) rf |= 0x80; else rf |= 0x40; run_rt3070_rf_write(sc, 6, rf); run_rt3070_rf_read(sc, 30, &rf); rf = (rf & ~0x18) | 0x10; run_rt3070_rf_write(sc, 30, rf); run_rt3070_rf_write(sc, 10, (chan <= 14) ? 0xd3 : 0xd8); run_rt3070_rf_write(sc, 13, (chan <= 14) ? 0x12 : 0x23); run_rt3070_rf_read(sc, 51, &rf); rf = (rf & ~0x03) | 0x01; run_rt3070_rf_write(sc, 51, rf); /* Set tx_mx1_cc. */ run_rt3070_rf_read(sc, 51, &rf); rf &= ~0x1c; rf |= (chan <= 14) ? 0x14 : 0x10; run_rt3070_rf_write(sc, 51, rf); /* Set tx_mx1_ic. */ run_rt3070_rf_read(sc, 51, &rf); rf &= ~0xe0; rf |= (chan <= 14) ? 0x60 : 0x40; run_rt3070_rf_write(sc, 51, rf); /* Set tx_lo1_ic. */ run_rt3070_rf_read(sc, 49, &rf); rf &= ~0x1c; rf |= (chan <= 14) ? 0x0c : 0x08; run_rt3070_rf_write(sc, 49, rf); /* Set tx_lo1_en. */ run_rt3070_rf_read(sc, 50, &rf); run_rt3070_rf_write(sc, 50, rf & ~0x20); /* Set drv_cc. */ run_rt3070_rf_read(sc, 57, &rf); rf &= ~0xfc; rf |= (chan <= 14) ? 0x6c : 0x3c; run_rt3070_rf_write(sc, 57, rf); /* Set rx_mix1_ic, rxa_lnactr, lna_vc, lna_inbias_en and lna_en. */ run_rt3070_rf_write(sc, 44, (chan <= 14) ? 0x93 : 0x9b); /* Set drv_gnd_a, tx_vga_cc_a and tx_mx2_gain. */ run_rt3070_rf_write(sc, 52, (chan <= 14) ? 0x45 : 0x05); /* Enable VCO calibration. */ run_rt3070_rf_read(sc, 3, &rf); rf &= ~RT5390_VCOCAL; rf |= (chan <= 14) ? RT5390_VCOCAL : 0xbe; run_rt3070_rf_write(sc, 3, rf); if (chan <= 14) rf = 0x23; else if (chan <= 64) rf = 0x36; else if (chan <= 128) rf = 0x32; else rf = 0x30; run_rt3070_rf_write(sc, 39, rf); if (chan <= 14) rf = 0xbb; else if (chan <= 64) rf = 0xeb; else if (chan <= 128) rf = 0xb3; else rf = 0x9b; run_rt3070_rf_write(sc, 45, rf); /* Set FEQ/AEQ control. */ run_bbp_write(sc, 105, 0x34); } static void run_rt5390_set_chan(struct run_softc *sc, u_int chan) { int8_t txpow1, txpow2; uint8_t rf; int i; /* find the settings for this channel (we know it exists) */ for (i = 0; rt2860_rf2850[i].chan != chan; i++); /* use Tx power values from EEPROM */ txpow1 = sc->txpow1[i]; txpow2 = sc->txpow2[i]; run_rt3070_rf_write(sc, 8, rt3070_freqs[i].n); run_rt3070_rf_write(sc, 9, rt3070_freqs[i].k & 0x0f); run_rt3070_rf_read(sc, 11, &rf); rf = (rf & ~0x03) | (rt3070_freqs[i].r & 0x03); run_rt3070_rf_write(sc, 11, rf); run_rt3070_rf_read(sc, 49, &rf); rf = (rf & ~0x3f) | (txpow1 & 0x3f); /* The valid range of the RF R49 is 0x00 to 0x27. */ if ((rf & 0x3f) > 0x27) rf = (rf & ~0x3f) | 0x27; run_rt3070_rf_write(sc, 49, rf); if (sc->mac_ver == 0x5392) { run_rt3070_rf_read(sc, 50, &rf); rf = (rf & ~0x3f) | (txpow2 & 0x3f); /* The valid range of the RF R50 is 0x00 to 0x27. */ if ((rf & 0x3f) > 0x27) rf = (rf & ~0x3f) | 0x27; run_rt3070_rf_write(sc, 50, rf); } run_rt3070_rf_read(sc, 1, &rf); rf |= RT3070_RF_BLOCK | RT3070_PLL_PD | RT3070_RX0_PD | RT3070_TX0_PD; if (sc->mac_ver == 0x5392) rf |= RT3070_RX1_PD | RT3070_TX1_PD; run_rt3070_rf_write(sc, 1, rf); if (sc->mac_ver != 0x5392) { run_rt3070_rf_read(sc, 2, &rf); rf |= 0x80; run_rt3070_rf_write(sc, 2, rf); run_delay(sc, 10); rf &= 0x7f; run_rt3070_rf_write(sc, 2, rf); } run_adjust_freq_offset(sc); if (sc->mac_ver == 0x5392) { /* Fix for RT5392C. */ if (sc->mac_rev >= 0x0223) { if (chan <= 4) rf = 0x0f; else if (chan >= 5 && chan <= 7) rf = 0x0e; else rf = 0x0d; run_rt3070_rf_write(sc, 23, rf); if (chan <= 4) rf = 0x0c; else if (chan == 5) rf = 0x0b; else if (chan >= 6 && chan <= 7) rf = 0x0a; else if (chan >= 8 && chan <= 10) rf = 0x09; else rf = 0x08; run_rt3070_rf_write(sc, 59, rf); } else { if (chan <= 11) rf = 0x0f; else rf = 0x0b; run_rt3070_rf_write(sc, 59, rf); } } else { /* Fix for RT5390F. */ if (sc->mac_rev >= 0x0502) { if (chan <= 11) rf = 0x43; else rf = 0x23; run_rt3070_rf_write(sc, 55, rf); if (chan <= 11) rf = 0x0f; else if (chan == 12) rf = 0x0d; else rf = 0x0b; run_rt3070_rf_write(sc, 59, rf); } else { run_rt3070_rf_write(sc, 55, 0x44); run_rt3070_rf_write(sc, 59, 0x8f); } } /* Enable VCO calibration. */ run_rt3070_rf_read(sc, 3, &rf); rf |= RT5390_VCOCAL; run_rt3070_rf_write(sc, 3, rf); } static void run_rt5592_set_chan(struct run_softc *sc, u_int chan) { const struct rt5592_freqs *freqs; uint32_t tmp; uint8_t reg, rf, txpow_bound; int8_t txpow1, txpow2; int i; run_read(sc, RT5592_DEBUG_INDEX, &tmp); freqs = (tmp & RT5592_SEL_XTAL) ? rt5592_freqs_40mhz : rt5592_freqs_20mhz; /* find the settings for this channel (we know it exists) */ for (i = 0; rt2860_rf2850[i].chan != chan; i++, freqs++); /* use Tx power values from EEPROM */ txpow1 = sc->txpow1[i]; txpow2 = sc->txpow2[i]; run_read(sc, RT3070_LDO_CFG0, &tmp); tmp &= ~0x1c000000; if (chan > 14) tmp |= 0x14000000; run_write(sc, RT3070_LDO_CFG0, tmp); /* N setting. */ run_rt3070_rf_write(sc, 8, freqs->n & 0xff); run_rt3070_rf_read(sc, 9, &rf); rf &= ~(1 << 4); rf |= ((freqs->n & 0x0100) >> 8) << 4; run_rt3070_rf_write(sc, 9, rf); /* K setting. */ run_rt3070_rf_read(sc, 9, &rf); rf &= ~0x0f; rf |= (freqs->k & 0x0f); run_rt3070_rf_write(sc, 9, rf); /* Mode setting. */ run_rt3070_rf_read(sc, 11, &rf); rf &= ~0x0c; rf |= ((freqs->m - 0x8) & 0x3) << 2; run_rt3070_rf_write(sc, 11, rf); run_rt3070_rf_read(sc, 9, &rf); rf &= ~(1 << 7); rf |= (((freqs->m - 0x8) & 0x4) >> 2) << 7; run_rt3070_rf_write(sc, 9, rf); /* R setting. */ run_rt3070_rf_read(sc, 11, &rf); rf &= ~0x03; rf |= (freqs->r - 0x1); run_rt3070_rf_write(sc, 11, rf); if (chan <= 14) { /* Initialize RF registers for 2GHZ. */ for (i = 0; i < nitems(rt5592_2ghz_def_rf); i++) { run_rt3070_rf_write(sc, rt5592_2ghz_def_rf[i].reg, rt5592_2ghz_def_rf[i].val); } rf = (chan <= 10) ? 0x07 : 0x06; run_rt3070_rf_write(sc, 23, rf); run_rt3070_rf_write(sc, 59, rf); run_rt3070_rf_write(sc, 55, 0x43); /* * RF R49/R50 Tx power ALC code. * G-band bit<7:6>=1:0, bit<5:0> range from 0x0 ~ 0x27. */ reg = 2; txpow_bound = 0x27; } else { /* Initialize RF registers for 5GHZ. */ for (i = 0; i < nitems(rt5592_5ghz_def_rf); i++) { run_rt3070_rf_write(sc, rt5592_5ghz_def_rf[i].reg, rt5592_5ghz_def_rf[i].val); } for (i = 0; i < nitems(rt5592_chan_5ghz); i++) { if (chan >= rt5592_chan_5ghz[i].firstchan && chan <= rt5592_chan_5ghz[i].lastchan) { run_rt3070_rf_write(sc, rt5592_chan_5ghz[i].reg, rt5592_chan_5ghz[i].val); } } /* * RF R49/R50 Tx power ALC code. * A-band bit<7:6>=1:1, bit<5:0> range from 0x0 ~ 0x2b. */ reg = 3; txpow_bound = 0x2b; } /* RF R49 ch0 Tx power ALC code. */ run_rt3070_rf_read(sc, 49, &rf); rf &= ~0xc0; rf |= (reg << 6); rf = (rf & ~0x3f) | (txpow1 & 0x3f); if ((rf & 0x3f) > txpow_bound) rf = (rf & ~0x3f) | txpow_bound; run_rt3070_rf_write(sc, 49, rf); /* RF R50 ch1 Tx power ALC code. */ run_rt3070_rf_read(sc, 50, &rf); rf &= ~(1 << 7 | 1 << 6); rf |= (reg << 6); rf = (rf & ~0x3f) | (txpow2 & 0x3f); if ((rf & 0x3f) > txpow_bound) rf = (rf & ~0x3f) | txpow_bound; run_rt3070_rf_write(sc, 50, rf); /* Enable RF_BLOCK, PLL_PD, RX0_PD, and TX0_PD. */ run_rt3070_rf_read(sc, 1, &rf); rf |= (RT3070_RF_BLOCK | RT3070_PLL_PD | RT3070_RX0_PD | RT3070_TX0_PD); if (sc->ntxchains > 1) rf |= RT3070_TX1_PD; if (sc->nrxchains > 1) rf |= RT3070_RX1_PD; run_rt3070_rf_write(sc, 1, rf); run_rt3070_rf_write(sc, 6, 0xe4); run_rt3070_rf_write(sc, 30, 0x10); run_rt3070_rf_write(sc, 31, 0x80); run_rt3070_rf_write(sc, 32, 0x80); run_adjust_freq_offset(sc); /* Enable VCO calibration. */ run_rt3070_rf_read(sc, 3, &rf); rf |= RT5390_VCOCAL; run_rt3070_rf_write(sc, 3, rf); } static void run_set_rx_antenna(struct run_softc *sc, int aux) { uint32_t tmp; uint8_t bbp152; if (aux) { if (sc->rf_rev == RT5390_RF_5370) { run_bbp_read(sc, 152, &bbp152); run_bbp_write(sc, 152, bbp152 & ~0x80); } else { run_mcu_cmd(sc, RT2860_MCU_CMD_ANTSEL, 0); run_read(sc, RT2860_GPIO_CTRL, &tmp); run_write(sc, RT2860_GPIO_CTRL, (tmp & ~0x0808) | 0x08); } } else { if (sc->rf_rev == RT5390_RF_5370) { run_bbp_read(sc, 152, &bbp152); run_bbp_write(sc, 152, bbp152 | 0x80); } else { run_mcu_cmd(sc, RT2860_MCU_CMD_ANTSEL, 1); run_read(sc, RT2860_GPIO_CTRL, &tmp); run_write(sc, RT2860_GPIO_CTRL, tmp & ~0x0808); } } } static int run_set_chan(struct run_softc *sc, struct ieee80211_channel *c) { struct ieee80211com *ic = &sc->sc_ic; u_int chan, group; chan = ieee80211_chan2ieee(ic, c); if (chan == 0 || chan == IEEE80211_CHAN_ANY) return (EINVAL); if (sc->mac_ver == 0x5592) run_rt5592_set_chan(sc, chan); else if (sc->mac_ver >= 0x5390) run_rt5390_set_chan(sc, chan); else if (sc->mac_ver == 0x3593) run_rt3593_set_chan(sc, chan); else if (sc->mac_ver == 0x3572) run_rt3572_set_chan(sc, chan); else if (sc->mac_ver >= 0x3070) run_rt3070_set_chan(sc, chan); else run_rt2870_set_chan(sc, chan); /* determine channel group */ if (chan <= 14) group = 0; else if (chan <= 64) group = 1; else if (chan <= 128) group = 2; else group = 3; /* XXX necessary only when group has changed! */ run_select_chan_group(sc, group); run_delay(sc, 10); /* Perform IQ calibration. */ if (sc->mac_ver >= 0x5392) run_iq_calib(sc, chan); return (0); } static void run_set_channel(struct ieee80211com *ic) { struct run_softc *sc = ic->ic_softc; RUN_LOCK(sc); run_set_chan(sc, ic->ic_curchan); RUN_UNLOCK(sc); return; } static void run_getradiocaps(struct ieee80211com *ic, int maxchans, int *nchans, struct ieee80211_channel chans[]) { struct run_softc *sc = ic->ic_softc; uint8_t bands[IEEE80211_MODE_BYTES]; memset(bands, 0, sizeof(bands)); setbit(bands, IEEE80211_MODE_11B); setbit(bands, IEEE80211_MODE_11G); if (sc->rf_rev != RT3070_RF_2020) setbit(bands, IEEE80211_MODE_11NG); /* Note: for now, only support HT20 channels */ ieee80211_add_channels_default_2ghz(chans, maxchans, nchans, bands, 0); if (sc->rf_rev == RT2860_RF_2750 || sc->rf_rev == RT2860_RF_2850 || sc->rf_rev == RT3070_RF_3052 || sc->rf_rev == RT3593_RF_3053 || sc->rf_rev == RT5592_RF_5592) { setbit(bands, IEEE80211_MODE_11A); if (sc->rf_rev != RT3070_RF_2020) setbit(bands, IEEE80211_MODE_11NA); /* Note: for now, only support HT20 channels */ ieee80211_add_channel_list_5ghz(chans, maxchans, nchans, run_chan_5ghz, nitems(run_chan_5ghz), bands, 0); } } static void run_scan_start(struct ieee80211com *ic) { struct run_softc *sc = ic->ic_softc; RUN_LOCK(sc); /* abort TSF synchronization */ run_disable_tsf(sc); run_set_bssid(sc, ieee80211broadcastaddr); RUN_UNLOCK(sc); return; } static void run_scan_end(struct ieee80211com *ic) { struct run_softc *sc = ic->ic_softc; RUN_LOCK(sc); run_enable_tsf_sync(sc); run_set_bssid(sc, sc->sc_bssid); RUN_UNLOCK(sc); return; } /* * Could be called from ieee80211_node_timeout() * (non-sleepable thread) */ static void run_update_beacon(struct ieee80211vap *vap, int item) { struct ieee80211com *ic = vap->iv_ic; struct ieee80211_beacon_offsets *bo = &vap->iv_bcn_off; struct ieee80211_node *ni = vap->iv_bss; struct run_softc *sc = ic->ic_softc; struct run_vap *rvp = RUN_VAP(vap); int mcast = 0; uint32_t i; switch (item) { case IEEE80211_BEACON_ERP: run_updateslot(ic); break; case IEEE80211_BEACON_HTINFO: run_updateprot(ic); break; case IEEE80211_BEACON_TIM: mcast = 1; /*TODO*/ break; default: break; } setbit(bo->bo_flags, item); if (rvp->beacon_mbuf == NULL) { rvp->beacon_mbuf = ieee80211_beacon_alloc(ni); if (rvp->beacon_mbuf == NULL) return; } ieee80211_beacon_update(ni, rvp->beacon_mbuf, mcast); i = RUN_CMDQ_GET(&sc->cmdq_store); RUN_DPRINTF(sc, RUN_DEBUG_BEACON, "cmdq_store=%d\n", i); sc->cmdq[i].func = run_update_beacon_cb; sc->cmdq[i].arg0 = vap; ieee80211_runtask(ic, &sc->cmdq_task); return; } static void run_update_beacon_cb(void *arg) { struct ieee80211vap *vap = arg; struct ieee80211_node *ni = vap->iv_bss; struct run_vap *rvp = RUN_VAP(vap); struct ieee80211com *ic = vap->iv_ic; struct run_softc *sc = ic->ic_softc; struct rt2860_txwi txwi; struct mbuf *m; uint16_t txwisize; uint8_t ridx; if (ni->ni_chan == IEEE80211_CHAN_ANYC) return; if (ic->ic_bsschan == IEEE80211_CHAN_ANYC) return; /* * No need to call ieee80211_beacon_update(), run_update_beacon() * is taking care of appropriate calls. */ if (rvp->beacon_mbuf == NULL) { rvp->beacon_mbuf = ieee80211_beacon_alloc(ni); if (rvp->beacon_mbuf == NULL) return; } m = rvp->beacon_mbuf; memset(&txwi, 0, sizeof(txwi)); txwi.wcid = 0xff; txwi.len = htole16(m->m_pkthdr.len); /* send beacons at the lowest available rate */ ridx = (ic->ic_curmode == IEEE80211_MODE_11A) ? RT2860_RIDX_OFDM6 : RT2860_RIDX_CCK1; txwi.phy = htole16(rt2860_rates[ridx].mcs); if (rt2860_rates[ridx].phy == IEEE80211_T_OFDM) txwi.phy |= htole16(RT2860_PHY_OFDM); txwi.txop = RT2860_TX_TXOP_HT; txwi.flags = RT2860_TX_TS; txwi.xflags = RT2860_TX_NSEQ; txwisize = (sc->mac_ver == 0x5592) ? sizeof(txwi) + sizeof(uint32_t) : sizeof(txwi); run_write_region_1(sc, RT2860_BCN_BASE(rvp->rvp_id), (uint8_t *)&txwi, txwisize); run_write_region_1(sc, RT2860_BCN_BASE(rvp->rvp_id) + txwisize, mtod(m, uint8_t *), (m->m_pkthdr.len + 1) & ~1); } static void run_updateprot(struct ieee80211com *ic) { struct run_softc *sc = ic->ic_softc; uint32_t i; i = RUN_CMDQ_GET(&sc->cmdq_store); RUN_DPRINTF(sc, RUN_DEBUG_BEACON, "cmdq_store=%d\n", i); sc->cmdq[i].func = run_updateprot_cb; sc->cmdq[i].arg0 = ic; ieee80211_runtask(ic, &sc->cmdq_task); } static void run_updateprot_cb(void *arg) { struct ieee80211com *ic = arg; struct run_softc *sc = ic->ic_softc; uint32_t tmp; tmp = RT2860_RTSTH_EN | RT2860_PROT_NAV_SHORT | RT2860_TXOP_ALLOW_ALL; /* setup protection frame rate (MCS code) */ tmp |= (ic->ic_curmode == IEEE80211_MODE_11A) ? rt2860_rates[RT2860_RIDX_OFDM6].mcs | RT2860_PHY_OFDM : rt2860_rates[RT2860_RIDX_CCK11].mcs; /* CCK frames don't require protection */ run_write(sc, RT2860_CCK_PROT_CFG, tmp); if (ic->ic_flags & IEEE80211_F_USEPROT) { if (ic->ic_protmode == IEEE80211_PROT_RTSCTS) tmp |= RT2860_PROT_CTRL_RTS_CTS; else if (ic->ic_protmode == IEEE80211_PROT_CTSONLY) tmp |= RT2860_PROT_CTRL_CTS; } run_write(sc, RT2860_OFDM_PROT_CFG, tmp); } static void run_usb_timeout_cb(void *arg) { struct ieee80211vap *vap = arg; struct run_softc *sc = vap->iv_ic->ic_softc; RUN_LOCK_ASSERT(sc, MA_OWNED); if(vap->iv_state == IEEE80211_S_RUN && vap->iv_opmode != IEEE80211_M_STA) run_reset_livelock(sc); else if (vap->iv_state == IEEE80211_S_SCAN) { RUN_DPRINTF(sc, RUN_DEBUG_USB | RUN_DEBUG_STATE, "timeout caused by scan\n"); /* cancel bgscan */ ieee80211_cancel_scan(vap); } else RUN_DPRINTF(sc, RUN_DEBUG_USB | RUN_DEBUG_STATE, "timeout by unknown cause\n"); } static void run_reset_livelock(struct run_softc *sc) { uint32_t tmp; RUN_LOCK_ASSERT(sc, MA_OWNED); /* * In IBSS or HostAP modes (when the hardware sends beacons), the MAC * can run into a livelock and start sending CTS-to-self frames like * crazy if protection is enabled. Reset MAC/BBP for a while */ run_read(sc, RT2860_DEBUG, &tmp); RUN_DPRINTF(sc, RUN_DEBUG_RESET, "debug reg %08x\n", tmp); if ((tmp & (1 << 29)) && (tmp & (1 << 7 | 1 << 5))) { RUN_DPRINTF(sc, RUN_DEBUG_RESET, "CTS-to-self livelock detected\n"); run_write(sc, RT2860_MAC_SYS_CTRL, RT2860_MAC_SRST); run_delay(sc, 1); run_write(sc, RT2860_MAC_SYS_CTRL, RT2860_MAC_RX_EN | RT2860_MAC_TX_EN); } } static void run_update_promisc_locked(struct run_softc *sc) { uint32_t tmp; run_read(sc, RT2860_RX_FILTR_CFG, &tmp); tmp |= RT2860_DROP_UC_NOME; if (sc->sc_ic.ic_promisc > 0) tmp &= ~RT2860_DROP_UC_NOME; run_write(sc, RT2860_RX_FILTR_CFG, tmp); RUN_DPRINTF(sc, RUN_DEBUG_RECV, "%s promiscuous mode\n", (sc->sc_ic.ic_promisc > 0) ? "entering" : "leaving"); } static void run_update_promisc(struct ieee80211com *ic) { struct run_softc *sc = ic->ic_softc; if ((sc->sc_flags & RUN_RUNNING) == 0) return; RUN_LOCK(sc); run_update_promisc_locked(sc); RUN_UNLOCK(sc); } static void run_enable_tsf_sync(struct run_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); uint32_t tmp; RUN_DPRINTF(sc, RUN_DEBUG_BEACON, "rvp_id=%d ic_opmode=%d\n", RUN_VAP(vap)->rvp_id, ic->ic_opmode); run_read(sc, RT2860_BCN_TIME_CFG, &tmp); tmp &= ~0x1fffff; tmp |= vap->iv_bss->ni_intval * 16; tmp |= RT2860_TSF_TIMER_EN | RT2860_TBTT_TIMER_EN; if (ic->ic_opmode == IEEE80211_M_STA) { /* * Local TSF is always updated with remote TSF on beacon * reception. */ tmp |= 1 << RT2860_TSF_SYNC_MODE_SHIFT; } else if (ic->ic_opmode == IEEE80211_M_IBSS) { tmp |= RT2860_BCN_TX_EN; /* * Local TSF is updated with remote TSF on beacon reception * only if the remote TSF is greater than local TSF. */ tmp |= 2 << RT2860_TSF_SYNC_MODE_SHIFT; } else if (ic->ic_opmode == IEEE80211_M_HOSTAP || ic->ic_opmode == IEEE80211_M_MBSS) { tmp |= RT2860_BCN_TX_EN; /* SYNC with nobody */ tmp |= 3 << RT2860_TSF_SYNC_MODE_SHIFT; } else { RUN_DPRINTF(sc, RUN_DEBUG_BEACON, "Enabling TSF failed. undefined opmode\n"); return; } run_write(sc, RT2860_BCN_TIME_CFG, tmp); } static void run_enable_tsf(struct run_softc *sc) { uint32_t tmp; if (run_read(sc, RT2860_BCN_TIME_CFG, &tmp) == 0) { tmp &= ~(RT2860_BCN_TX_EN | RT2860_TBTT_TIMER_EN); tmp |= RT2860_TSF_TIMER_EN; run_write(sc, RT2860_BCN_TIME_CFG, tmp); } } static void run_disable_tsf(struct run_softc *sc) { uint32_t tmp; if (run_read(sc, RT2860_BCN_TIME_CFG, &tmp) == 0) { tmp &= ~(RT2860_BCN_TX_EN | RT2860_TSF_TIMER_EN | RT2860_TBTT_TIMER_EN); run_write(sc, RT2860_BCN_TIME_CFG, tmp); } } static void run_get_tsf(struct run_softc *sc, uint64_t *buf) { run_read_region_1(sc, RT2860_TSF_TIMER_DW0, (uint8_t *)buf, sizeof(*buf)); } static void run_enable_mrr(struct run_softc *sc) { #define CCK(mcs) (mcs) #define OFDM(mcs) (1 << 3 | (mcs)) run_write(sc, RT2860_LG_FBK_CFG0, OFDM(6) << 28 | /* 54->48 */ OFDM(5) << 24 | /* 48->36 */ OFDM(4) << 20 | /* 36->24 */ OFDM(3) << 16 | /* 24->18 */ OFDM(2) << 12 | /* 18->12 */ OFDM(1) << 8 | /* 12-> 9 */ OFDM(0) << 4 | /* 9-> 6 */ OFDM(0)); /* 6-> 6 */ run_write(sc, RT2860_LG_FBK_CFG1, CCK(2) << 12 | /* 11->5.5 */ CCK(1) << 8 | /* 5.5-> 2 */ CCK(0) << 4 | /* 2-> 1 */ CCK(0)); /* 1-> 1 */ #undef OFDM #undef CCK } static void run_set_txpreamble(struct run_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; uint32_t tmp; run_read(sc, RT2860_AUTO_RSP_CFG, &tmp); if (ic->ic_flags & IEEE80211_F_SHPREAMBLE) tmp |= RT2860_CCK_SHORT_EN; else tmp &= ~RT2860_CCK_SHORT_EN; run_write(sc, RT2860_AUTO_RSP_CFG, tmp); } static void run_set_basicrates(struct run_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; /* set basic rates mask */ if (ic->ic_curmode == IEEE80211_MODE_11B) run_write(sc, RT2860_LEGACY_BASIC_RATE, 0x003); else if (ic->ic_curmode == IEEE80211_MODE_11A) run_write(sc, RT2860_LEGACY_BASIC_RATE, 0x150); else /* 11g */ run_write(sc, RT2860_LEGACY_BASIC_RATE, 0x15f); } static void run_set_leds(struct run_softc *sc, uint16_t which) { (void)run_mcu_cmd(sc, RT2860_MCU_CMD_LEDS, which | (sc->leds & 0x7f)); } static void run_set_bssid(struct run_softc *sc, const uint8_t *bssid) { run_write(sc, RT2860_MAC_BSSID_DW0, bssid[0] | bssid[1] << 8 | bssid[2] << 16 | bssid[3] << 24); run_write(sc, RT2860_MAC_BSSID_DW1, bssid[4] | bssid[5] << 8); } static void run_set_macaddr(struct run_softc *sc, const uint8_t *addr) { run_write(sc, RT2860_MAC_ADDR_DW0, addr[0] | addr[1] << 8 | addr[2] << 16 | addr[3] << 24); run_write(sc, RT2860_MAC_ADDR_DW1, addr[4] | addr[5] << 8 | 0xff << 16); } static void run_updateslot(struct ieee80211com *ic) { struct run_softc *sc = ic->ic_softc; uint32_t i; i = RUN_CMDQ_GET(&sc->cmdq_store); RUN_DPRINTF(sc, RUN_DEBUG_BEACON, "cmdq_store=%d\n", i); sc->cmdq[i].func = run_updateslot_cb; sc->cmdq[i].arg0 = ic; ieee80211_runtask(ic, &sc->cmdq_task); return; } /* ARGSUSED */ static void run_updateslot_cb(void *arg) { struct ieee80211com *ic = arg; struct run_softc *sc = ic->ic_softc; uint32_t tmp; run_read(sc, RT2860_BKOFF_SLOT_CFG, &tmp); tmp &= ~0xff; tmp |= IEEE80211_GET_SLOTTIME(ic); run_write(sc, RT2860_BKOFF_SLOT_CFG, tmp); } static void run_update_mcast(struct ieee80211com *ic) { } static int8_t run_rssi2dbm(struct run_softc *sc, uint8_t rssi, uint8_t rxchain) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211_channel *c = ic->ic_curchan; int delta; if (IEEE80211_IS_CHAN_5GHZ(c)) { u_int chan = ieee80211_chan2ieee(ic, c); delta = sc->rssi_5ghz[rxchain]; /* determine channel group */ if (chan <= 64) delta -= sc->lna[1]; else if (chan <= 128) delta -= sc->lna[2]; else delta -= sc->lna[3]; } else delta = sc->rssi_2ghz[rxchain] - sc->lna[0]; return (-12 - delta - rssi); } static void run_rt5390_bbp_init(struct run_softc *sc) { u_int i; uint8_t bbp; /* Apply maximum likelihood detection for 2 stream case. */ run_bbp_read(sc, 105, &bbp); if (sc->nrxchains > 1) run_bbp_write(sc, 105, bbp | RT5390_MLD); /* Avoid data lost and CRC error. */ run_bbp_read(sc, 4, &bbp); run_bbp_write(sc, 4, bbp | RT5390_MAC_IF_CTRL); if (sc->mac_ver == 0x5592) { for (i = 0; i < nitems(rt5592_def_bbp); i++) { run_bbp_write(sc, rt5592_def_bbp[i].reg, rt5592_def_bbp[i].val); } for (i = 0; i < nitems(rt5592_bbp_r196); i++) { run_bbp_write(sc, 195, i + 0x80); run_bbp_write(sc, 196, rt5592_bbp_r196[i]); } } else { for (i = 0; i < nitems(rt5390_def_bbp); i++) { run_bbp_write(sc, rt5390_def_bbp[i].reg, rt5390_def_bbp[i].val); } } if (sc->mac_ver == 0x5392) { run_bbp_write(sc, 88, 0x90); run_bbp_write(sc, 95, 0x9a); run_bbp_write(sc, 98, 0x12); run_bbp_write(sc, 106, 0x12); run_bbp_write(sc, 134, 0xd0); run_bbp_write(sc, 135, 0xf6); run_bbp_write(sc, 148, 0x84); } run_bbp_read(sc, 152, &bbp); run_bbp_write(sc, 152, bbp | 0x80); /* Fix BBP254 for RT5592C. */ if (sc->mac_ver == 0x5592 && sc->mac_rev >= 0x0221) { run_bbp_read(sc, 254, &bbp); run_bbp_write(sc, 254, bbp | 0x80); } /* Disable hardware antenna diversity. */ if (sc->mac_ver == 0x5390) run_bbp_write(sc, 154, 0); /* Initialize Rx CCK/OFDM frequency offset report. */ run_bbp_write(sc, 142, 1); run_bbp_write(sc, 143, 57); } static int run_bbp_init(struct run_softc *sc) { int i, error, ntries; uint8_t bbp0; /* wait for BBP to wake up */ for (ntries = 0; ntries < 20; ntries++) { if ((error = run_bbp_read(sc, 0, &bbp0)) != 0) return error; if (bbp0 != 0 && bbp0 != 0xff) break; } if (ntries == 20) return (ETIMEDOUT); /* initialize BBP registers to default values */ if (sc->mac_ver >= 0x5390) run_rt5390_bbp_init(sc); else { for (i = 0; i < nitems(rt2860_def_bbp); i++) { run_bbp_write(sc, rt2860_def_bbp[i].reg, rt2860_def_bbp[i].val); } } if (sc->mac_ver == 0x3593) { run_bbp_write(sc, 79, 0x13); run_bbp_write(sc, 80, 0x05); run_bbp_write(sc, 81, 0x33); run_bbp_write(sc, 86, 0x46); run_bbp_write(sc, 137, 0x0f); } /* fix BBP84 for RT2860E */ if (sc->mac_ver == 0x2860 && sc->mac_rev != 0x0101) run_bbp_write(sc, 84, 0x19); if (sc->mac_ver >= 0x3070 && (sc->mac_ver != 0x3593 && sc->mac_ver != 0x5592)) { run_bbp_write(sc, 79, 0x13); run_bbp_write(sc, 80, 0x05); run_bbp_write(sc, 81, 0x33); } else if (sc->mac_ver == 0x2860 && sc->mac_rev == 0x0100) { run_bbp_write(sc, 69, 0x16); run_bbp_write(sc, 73, 0x12); } return (0); } static int run_rt3070_rf_init(struct run_softc *sc) { uint32_t tmp; uint8_t bbp4, mingain, rf, target; u_int i; run_rt3070_rf_read(sc, 30, &rf); /* toggle RF R30 bit 7 */ run_rt3070_rf_write(sc, 30, rf | 0x80); run_delay(sc, 10); run_rt3070_rf_write(sc, 30, rf & ~0x80); /* initialize RF registers to default value */ if (sc->mac_ver == 0x3572) { for (i = 0; i < nitems(rt3572_def_rf); i++) { run_rt3070_rf_write(sc, rt3572_def_rf[i].reg, rt3572_def_rf[i].val); } } else { for (i = 0; i < nitems(rt3070_def_rf); i++) { run_rt3070_rf_write(sc, rt3070_def_rf[i].reg, rt3070_def_rf[i].val); } } if (sc->mac_ver == 0x3070 && sc->mac_rev < 0x0201) { /* * Change voltage from 1.2V to 1.35V for RT3070. * The DAC issue (RT3070_LDO_CFG0) has been fixed * in RT3070(F). */ run_read(sc, RT3070_LDO_CFG0, &tmp); tmp = (tmp & ~0x0f000000) | 0x0d000000; run_write(sc, RT3070_LDO_CFG0, tmp); } else if (sc->mac_ver == 0x3071) { run_rt3070_rf_read(sc, 6, &rf); run_rt3070_rf_write(sc, 6, rf | 0x40); run_rt3070_rf_write(sc, 31, 0x14); run_read(sc, RT3070_LDO_CFG0, &tmp); tmp &= ~0x1f000000; if (sc->mac_rev < 0x0211) tmp |= 0x0d000000; /* 1.3V */ else tmp |= 0x01000000; /* 1.2V */ run_write(sc, RT3070_LDO_CFG0, tmp); /* patch LNA_PE_G1 */ run_read(sc, RT3070_GPIO_SWITCH, &tmp); run_write(sc, RT3070_GPIO_SWITCH, tmp & ~0x20); } else if (sc->mac_ver == 0x3572) { run_rt3070_rf_read(sc, 6, &rf); run_rt3070_rf_write(sc, 6, rf | 0x40); /* increase voltage from 1.2V to 1.35V */ run_read(sc, RT3070_LDO_CFG0, &tmp); tmp = (tmp & ~0x1f000000) | 0x0d000000; run_write(sc, RT3070_LDO_CFG0, tmp); if (sc->mac_rev < 0x0211 || !sc->patch_dac) { run_delay(sc, 1); /* wait for 1msec */ /* decrease voltage back to 1.2V */ tmp = (tmp & ~0x1f000000) | 0x01000000; run_write(sc, RT3070_LDO_CFG0, tmp); } } /* select 20MHz bandwidth */ run_rt3070_rf_read(sc, 31, &rf); run_rt3070_rf_write(sc, 31, rf & ~0x20); /* calibrate filter for 20MHz bandwidth */ sc->rf24_20mhz = 0x1f; /* default value */ target = (sc->mac_ver < 0x3071) ? 0x16 : 0x13; run_rt3070_filter_calib(sc, 0x07, target, &sc->rf24_20mhz); /* select 40MHz bandwidth */ run_bbp_read(sc, 4, &bbp4); run_bbp_write(sc, 4, (bbp4 & ~0x18) | 0x10); run_rt3070_rf_read(sc, 31, &rf); run_rt3070_rf_write(sc, 31, rf | 0x20); /* calibrate filter for 40MHz bandwidth */ sc->rf24_40mhz = 0x2f; /* default value */ target = (sc->mac_ver < 0x3071) ? 0x19 : 0x15; run_rt3070_filter_calib(sc, 0x27, target, &sc->rf24_40mhz); /* go back to 20MHz bandwidth */ run_bbp_read(sc, 4, &bbp4); run_bbp_write(sc, 4, bbp4 & ~0x18); if (sc->mac_ver == 0x3572) { /* save default BBP registers 25 and 26 values */ run_bbp_read(sc, 25, &sc->bbp25); run_bbp_read(sc, 26, &sc->bbp26); } else if (sc->mac_rev < 0x0201 || sc->mac_rev < 0x0211) run_rt3070_rf_write(sc, 27, 0x03); run_read(sc, RT3070_OPT_14, &tmp); run_write(sc, RT3070_OPT_14, tmp | 1); if (sc->mac_ver == 0x3070 || sc->mac_ver == 0x3071) { run_rt3070_rf_read(sc, 17, &rf); rf &= ~RT3070_TX_LO1; if ((sc->mac_ver == 0x3070 || (sc->mac_ver == 0x3071 && sc->mac_rev >= 0x0211)) && !sc->ext_2ghz_lna) rf |= 0x20; /* fix for long range Rx issue */ mingain = (sc->mac_ver == 0x3070) ? 1 : 2; if (sc->txmixgain_2ghz >= mingain) rf = (rf & ~0x7) | sc->txmixgain_2ghz; run_rt3070_rf_write(sc, 17, rf); } if (sc->mac_ver == 0x3071) { run_rt3070_rf_read(sc, 1, &rf); rf &= ~(RT3070_RX0_PD | RT3070_TX0_PD); rf |= RT3070_RF_BLOCK | RT3070_RX1_PD | RT3070_TX1_PD; run_rt3070_rf_write(sc, 1, rf); run_rt3070_rf_read(sc, 15, &rf); run_rt3070_rf_write(sc, 15, rf & ~RT3070_TX_LO2); run_rt3070_rf_read(sc, 20, &rf); run_rt3070_rf_write(sc, 20, rf & ~RT3070_RX_LO1); run_rt3070_rf_read(sc, 21, &rf); run_rt3070_rf_write(sc, 21, rf & ~RT3070_RX_LO2); } if (sc->mac_ver == 0x3070 || sc->mac_ver == 0x3071) { /* fix Tx to Rx IQ glitch by raising RF voltage */ run_rt3070_rf_read(sc, 27, &rf); rf &= ~0x77; if (sc->mac_rev < 0x0211) rf |= 0x03; run_rt3070_rf_write(sc, 27, rf); } return (0); } static void run_rt3593_rf_init(struct run_softc *sc) { uint32_t tmp; uint8_t rf; u_int i; /* Disable the GPIO bits 4 and 7 for LNA PE control. */ run_read(sc, RT3070_GPIO_SWITCH, &tmp); tmp &= ~(1 << 4 | 1 << 7); run_write(sc, RT3070_GPIO_SWITCH, tmp); /* Initialize RF registers to default value. */ for (i = 0; i < nitems(rt3593_def_rf); i++) { run_rt3070_rf_write(sc, rt3593_def_rf[i].reg, rt3593_def_rf[i].val); } /* Toggle RF R2 to initiate calibration. */ run_rt3070_rf_write(sc, 2, RT5390_RESCAL); /* Initialize RF frequency offset. */ run_adjust_freq_offset(sc); run_rt3070_rf_read(sc, 18, &rf); run_rt3070_rf_write(sc, 18, rf | RT3593_AUTOTUNE_BYPASS); /* * Increase voltage from 1.2V to 1.35V, wait for 1 msec to * decrease voltage back to 1.2V. */ run_read(sc, RT3070_LDO_CFG0, &tmp); tmp = (tmp & ~0x1f000000) | 0x0d000000; run_write(sc, RT3070_LDO_CFG0, tmp); run_delay(sc, 1); tmp = (tmp & ~0x1f000000) | 0x01000000; run_write(sc, RT3070_LDO_CFG0, tmp); sc->rf24_20mhz = 0x1f; sc->rf24_40mhz = 0x2f; /* Save default BBP registers 25 and 26 values. */ run_bbp_read(sc, 25, &sc->bbp25); run_bbp_read(sc, 26, &sc->bbp26); run_read(sc, RT3070_OPT_14, &tmp); run_write(sc, RT3070_OPT_14, tmp | 1); } static void run_rt5390_rf_init(struct run_softc *sc) { uint32_t tmp; uint8_t rf; u_int i; /* Toggle RF R2 to initiate calibration. */ if (sc->mac_ver == 0x5390) { run_rt3070_rf_read(sc, 2, &rf); run_rt3070_rf_write(sc, 2, rf | RT5390_RESCAL); run_delay(sc, 10); run_rt3070_rf_write(sc, 2, rf & ~RT5390_RESCAL); } else { run_rt3070_rf_write(sc, 2, RT5390_RESCAL); run_delay(sc, 10); } /* Initialize RF registers to default value. */ if (sc->mac_ver == 0x5592) { for (i = 0; i < nitems(rt5592_def_rf); i++) { run_rt3070_rf_write(sc, rt5592_def_rf[i].reg, rt5592_def_rf[i].val); } /* Initialize RF frequency offset. */ run_adjust_freq_offset(sc); } else if (sc->mac_ver == 0x5392) { for (i = 0; i < nitems(rt5392_def_rf); i++) { run_rt3070_rf_write(sc, rt5392_def_rf[i].reg, rt5392_def_rf[i].val); } if (sc->mac_rev >= 0x0223) { run_rt3070_rf_write(sc, 23, 0x0f); run_rt3070_rf_write(sc, 24, 0x3e); run_rt3070_rf_write(sc, 51, 0x32); run_rt3070_rf_write(sc, 53, 0x22); run_rt3070_rf_write(sc, 56, 0xc1); run_rt3070_rf_write(sc, 59, 0x0f); } } else { for (i = 0; i < nitems(rt5390_def_rf); i++) { run_rt3070_rf_write(sc, rt5390_def_rf[i].reg, rt5390_def_rf[i].val); } if (sc->mac_rev >= 0x0502) { run_rt3070_rf_write(sc, 6, 0xe0); run_rt3070_rf_write(sc, 25, 0x80); run_rt3070_rf_write(sc, 46, 0x73); run_rt3070_rf_write(sc, 53, 0x00); run_rt3070_rf_write(sc, 56, 0x42); run_rt3070_rf_write(sc, 61, 0xd1); } } sc->rf24_20mhz = 0x1f; /* default value */ sc->rf24_40mhz = (sc->mac_ver == 0x5592) ? 0 : 0x2f; if (sc->mac_rev < 0x0211) run_rt3070_rf_write(sc, 27, 0x3); run_read(sc, RT3070_OPT_14, &tmp); run_write(sc, RT3070_OPT_14, tmp | 1); } static int run_rt3070_filter_calib(struct run_softc *sc, uint8_t init, uint8_t target, uint8_t *val) { uint8_t rf22, rf24; uint8_t bbp55_pb, bbp55_sb, delta; int ntries; /* program filter */ run_rt3070_rf_read(sc, 24, &rf24); rf24 = (rf24 & 0xc0) | init; /* initial filter value */ run_rt3070_rf_write(sc, 24, rf24); /* enable baseband loopback mode */ run_rt3070_rf_read(sc, 22, &rf22); run_rt3070_rf_write(sc, 22, rf22 | 0x01); /* set power and frequency of passband test tone */ run_bbp_write(sc, 24, 0x00); for (ntries = 0; ntries < 100; ntries++) { /* transmit test tone */ run_bbp_write(sc, 25, 0x90); run_delay(sc, 10); /* read received power */ run_bbp_read(sc, 55, &bbp55_pb); if (bbp55_pb != 0) break; } if (ntries == 100) return (ETIMEDOUT); /* set power and frequency of stopband test tone */ run_bbp_write(sc, 24, 0x06); for (ntries = 0; ntries < 100; ntries++) { /* transmit test tone */ run_bbp_write(sc, 25, 0x90); run_delay(sc, 10); /* read received power */ run_bbp_read(sc, 55, &bbp55_sb); delta = bbp55_pb - bbp55_sb; if (delta > target) break; /* reprogram filter */ rf24++; run_rt3070_rf_write(sc, 24, rf24); } if (ntries < 100) { if (rf24 != init) rf24--; /* backtrack */ *val = rf24; run_rt3070_rf_write(sc, 24, rf24); } /* restore initial state */ run_bbp_write(sc, 24, 0x00); /* disable baseband loopback mode */ run_rt3070_rf_read(sc, 22, &rf22); run_rt3070_rf_write(sc, 22, rf22 & ~0x01); return (0); } static void run_rt3070_rf_setup(struct run_softc *sc) { uint8_t bbp, rf; int i; if (sc->mac_ver == 0x3572) { /* enable DC filter */ if (sc->mac_rev >= 0x0201) run_bbp_write(sc, 103, 0xc0); run_bbp_read(sc, 138, &bbp); if (sc->ntxchains == 1) bbp |= 0x20; /* turn off DAC1 */ if (sc->nrxchains == 1) bbp &= ~0x02; /* turn off ADC1 */ run_bbp_write(sc, 138, bbp); if (sc->mac_rev >= 0x0211) { /* improve power consumption */ run_bbp_read(sc, 31, &bbp); run_bbp_write(sc, 31, bbp & ~0x03); } run_rt3070_rf_read(sc, 16, &rf); rf = (rf & ~0x07) | sc->txmixgain_2ghz; run_rt3070_rf_write(sc, 16, rf); } else if (sc->mac_ver == 0x3071) { if (sc->mac_rev >= 0x0211) { /* enable DC filter */ run_bbp_write(sc, 103, 0xc0); /* improve power consumption */ run_bbp_read(sc, 31, &bbp); run_bbp_write(sc, 31, bbp & ~0x03); } run_bbp_read(sc, 138, &bbp); if (sc->ntxchains == 1) bbp |= 0x20; /* turn off DAC1 */ if (sc->nrxchains == 1) bbp &= ~0x02; /* turn off ADC1 */ run_bbp_write(sc, 138, bbp); run_write(sc, RT2860_TX_SW_CFG1, 0); if (sc->mac_rev < 0x0211) { run_write(sc, RT2860_TX_SW_CFG2, sc->patch_dac ? 0x2c : 0x0f); } else run_write(sc, RT2860_TX_SW_CFG2, 0); } else if (sc->mac_ver == 0x3070) { if (sc->mac_rev >= 0x0201) { /* enable DC filter */ run_bbp_write(sc, 103, 0xc0); /* improve power consumption */ run_bbp_read(sc, 31, &bbp); run_bbp_write(sc, 31, bbp & ~0x03); } if (sc->mac_rev < 0x0201) { run_write(sc, RT2860_TX_SW_CFG1, 0); run_write(sc, RT2860_TX_SW_CFG2, 0x2c); } else run_write(sc, RT2860_TX_SW_CFG2, 0); } /* initialize RF registers from ROM for >=RT3071*/ if (sc->mac_ver >= 0x3071) { for (i = 0; i < 10; i++) { if (sc->rf[i].reg == 0 || sc->rf[i].reg == 0xff) continue; run_rt3070_rf_write(sc, sc->rf[i].reg, sc->rf[i].val); } } } static void run_rt3593_rf_setup(struct run_softc *sc) { uint8_t bbp, rf; if (sc->mac_rev >= 0x0211) { /* Enable DC filter. */ run_bbp_write(sc, 103, 0xc0); } run_write(sc, RT2860_TX_SW_CFG1, 0); if (sc->mac_rev < 0x0211) { run_write(sc, RT2860_TX_SW_CFG2, sc->patch_dac ? 0x2c : 0x0f); } else run_write(sc, RT2860_TX_SW_CFG2, 0); run_rt3070_rf_read(sc, 50, &rf); run_rt3070_rf_write(sc, 50, rf & ~RT3593_TX_LO2); run_rt3070_rf_read(sc, 51, &rf); rf = (rf & ~(RT3593_TX_LO1 | 0x0c)) | ((sc->txmixgain_2ghz & 0x07) << 2); run_rt3070_rf_write(sc, 51, rf); run_rt3070_rf_read(sc, 38, &rf); run_rt3070_rf_write(sc, 38, rf & ~RT5390_RX_LO1); run_rt3070_rf_read(sc, 39, &rf); run_rt3070_rf_write(sc, 39, rf & ~RT5390_RX_LO2); run_rt3070_rf_read(sc, 1, &rf); run_rt3070_rf_write(sc, 1, rf & ~(RT3070_RF_BLOCK | RT3070_PLL_PD)); run_rt3070_rf_read(sc, 30, &rf); rf = (rf & ~0x18) | 0x10; run_rt3070_rf_write(sc, 30, rf); /* Apply maximum likelihood detection for 2 stream case. */ run_bbp_read(sc, 105, &bbp); if (sc->nrxchains > 1) run_bbp_write(sc, 105, bbp | RT5390_MLD); /* Avoid data lost and CRC error. */ run_bbp_read(sc, 4, &bbp); run_bbp_write(sc, 4, bbp | RT5390_MAC_IF_CTRL); run_bbp_write(sc, 92, 0x02); run_bbp_write(sc, 82, 0x82); run_bbp_write(sc, 106, 0x05); run_bbp_write(sc, 104, 0x92); run_bbp_write(sc, 88, 0x90); run_bbp_write(sc, 148, 0xc8); run_bbp_write(sc, 47, 0x48); run_bbp_write(sc, 120, 0x50); run_bbp_write(sc, 163, 0x9d); /* SNR mapping. */ run_bbp_write(sc, 142, 0x06); run_bbp_write(sc, 143, 0xa0); run_bbp_write(sc, 142, 0x07); run_bbp_write(sc, 143, 0xa1); run_bbp_write(sc, 142, 0x08); run_bbp_write(sc, 143, 0xa2); run_bbp_write(sc, 31, 0x08); run_bbp_write(sc, 68, 0x0b); run_bbp_write(sc, 105, 0x04); } static void run_rt5390_rf_setup(struct run_softc *sc) { uint8_t bbp, rf; if (sc->mac_rev >= 0x0211) { /* Enable DC filter. */ run_bbp_write(sc, 103, 0xc0); if (sc->mac_ver != 0x5592) { /* Improve power consumption. */ run_bbp_read(sc, 31, &bbp); run_bbp_write(sc, 31, bbp & ~0x03); } } run_bbp_read(sc, 138, &bbp); if (sc->ntxchains == 1) bbp |= 0x20; /* turn off DAC1 */ if (sc->nrxchains == 1) bbp &= ~0x02; /* turn off ADC1 */ run_bbp_write(sc, 138, bbp); run_rt3070_rf_read(sc, 38, &rf); run_rt3070_rf_write(sc, 38, rf & ~RT5390_RX_LO1); run_rt3070_rf_read(sc, 39, &rf); run_rt3070_rf_write(sc, 39, rf & ~RT5390_RX_LO2); /* Avoid data lost and CRC error. */ run_bbp_read(sc, 4, &bbp); run_bbp_write(sc, 4, bbp | RT5390_MAC_IF_CTRL); run_rt3070_rf_read(sc, 30, &rf); rf = (rf & ~0x18) | 0x10; run_rt3070_rf_write(sc, 30, rf); if (sc->mac_ver != 0x5592) { run_write(sc, RT2860_TX_SW_CFG1, 0); if (sc->mac_rev < 0x0211) { run_write(sc, RT2860_TX_SW_CFG2, sc->patch_dac ? 0x2c : 0x0f); } else run_write(sc, RT2860_TX_SW_CFG2, 0); } } static int run_txrx_enable(struct run_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; uint32_t tmp; int error, ntries; run_write(sc, RT2860_MAC_SYS_CTRL, RT2860_MAC_TX_EN); for (ntries = 0; ntries < 200; ntries++) { if ((error = run_read(sc, RT2860_WPDMA_GLO_CFG, &tmp)) != 0) return (error); if ((tmp & (RT2860_TX_DMA_BUSY | RT2860_RX_DMA_BUSY)) == 0) break; run_delay(sc, 50); } if (ntries == 200) return (ETIMEDOUT); run_delay(sc, 50); tmp |= RT2860_RX_DMA_EN | RT2860_TX_DMA_EN | RT2860_TX_WB_DDONE; run_write(sc, RT2860_WPDMA_GLO_CFG, tmp); /* enable Rx bulk aggregation (set timeout and limit) */ tmp = RT2860_USB_TX_EN | RT2860_USB_RX_EN | RT2860_USB_RX_AGG_EN | RT2860_USB_RX_AGG_TO(128) | RT2860_USB_RX_AGG_LMT(2); run_write(sc, RT2860_USB_DMA_CFG, tmp); /* set Rx filter */ tmp = RT2860_DROP_CRC_ERR | RT2860_DROP_PHY_ERR; if (ic->ic_opmode != IEEE80211_M_MONITOR) { tmp |= RT2860_DROP_UC_NOME | RT2860_DROP_DUPL | RT2860_DROP_CTS | RT2860_DROP_BA | RT2860_DROP_ACK | RT2860_DROP_VER_ERR | RT2860_DROP_CTRL_RSV | RT2860_DROP_CFACK | RT2860_DROP_CFEND; if (ic->ic_opmode == IEEE80211_M_STA) tmp |= RT2860_DROP_RTS | RT2860_DROP_PSPOLL; } run_write(sc, RT2860_RX_FILTR_CFG, tmp); run_write(sc, RT2860_MAC_SYS_CTRL, RT2860_MAC_RX_EN | RT2860_MAC_TX_EN); return (0); } static void run_adjust_freq_offset(struct run_softc *sc) { uint8_t rf, tmp; run_rt3070_rf_read(sc, 17, &rf); tmp = rf; rf = (rf & ~0x7f) | (sc->freq & 0x7f); rf = MIN(rf, 0x5f); if (tmp != rf) run_mcu_cmd(sc, 0x74, (tmp << 8 ) | rf); } static void run_init_locked(struct run_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; struct ieee80211vap *vap = TAILQ_FIRST(&ic->ic_vaps); uint32_t tmp; uint8_t bbp1, bbp3; int i; int ridx; int ntries; if (ic->ic_nrunning > 1) return; run_stop(sc); if (run_load_microcode(sc) != 0) { device_printf(sc->sc_dev, "could not load 8051 microcode\n"); goto fail; } for (ntries = 0; ntries < 100; ntries++) { if (run_read(sc, RT2860_ASIC_VER_ID, &tmp) != 0) goto fail; if (tmp != 0 && tmp != 0xffffffff) break; run_delay(sc, 10); } if (ntries == 100) goto fail; for (i = 0; i != RUN_EP_QUEUES; i++) run_setup_tx_list(sc, &sc->sc_epq[i]); run_set_macaddr(sc, vap ? vap->iv_myaddr : ic->ic_macaddr); for (ntries = 0; ntries < 100; ntries++) { if (run_read(sc, RT2860_WPDMA_GLO_CFG, &tmp) != 0) goto fail; if ((tmp & (RT2860_TX_DMA_BUSY | RT2860_RX_DMA_BUSY)) == 0) break; run_delay(sc, 10); } if (ntries == 100) { device_printf(sc->sc_dev, "timeout waiting for DMA engine\n"); goto fail; } tmp &= 0xff0; tmp |= RT2860_TX_WB_DDONE; run_write(sc, RT2860_WPDMA_GLO_CFG, tmp); /* turn off PME_OEN to solve high-current issue */ run_read(sc, RT2860_SYS_CTRL, &tmp); run_write(sc, RT2860_SYS_CTRL, tmp & ~RT2860_PME_OEN); run_write(sc, RT2860_MAC_SYS_CTRL, RT2860_BBP_HRST | RT2860_MAC_SRST); run_write(sc, RT2860_USB_DMA_CFG, 0); if (run_reset(sc) != 0) { device_printf(sc->sc_dev, "could not reset chipset\n"); goto fail; } run_write(sc, RT2860_MAC_SYS_CTRL, 0); /* init Tx power for all Tx rates (from EEPROM) */ for (ridx = 0; ridx < 5; ridx++) { if (sc->txpow20mhz[ridx] == 0xffffffff) continue; run_write(sc, RT2860_TX_PWR_CFG(ridx), sc->txpow20mhz[ridx]); } for (i = 0; i < nitems(rt2870_def_mac); i++) run_write(sc, rt2870_def_mac[i].reg, rt2870_def_mac[i].val); run_write(sc, RT2860_WMM_AIFSN_CFG, 0x00002273); run_write(sc, RT2860_WMM_CWMIN_CFG, 0x00002344); run_write(sc, RT2860_WMM_CWMAX_CFG, 0x000034aa); if (sc->mac_ver >= 0x5390) { run_write(sc, RT2860_TX_SW_CFG0, 4 << RT2860_DLY_PAPE_EN_SHIFT | 4); if (sc->mac_ver >= 0x5392) { run_write(sc, RT2860_MAX_LEN_CFG, 0x00002fff); if (sc->mac_ver == 0x5592) { run_write(sc, RT2860_HT_FBK_CFG1, 0xedcba980); run_write(sc, RT2860_TXOP_HLDR_ET, 0x00000082); } else { run_write(sc, RT2860_HT_FBK_CFG1, 0xedcb4980); run_write(sc, RT2860_LG_FBK_CFG0, 0xedcba322); } } } else if (sc->mac_ver == 0x3593) { run_write(sc, RT2860_TX_SW_CFG0, 4 << RT2860_DLY_PAPE_EN_SHIFT | 2); } else if (sc->mac_ver >= 0x3070) { /* set delay of PA_PE assertion to 1us (unit of 0.25us) */ run_write(sc, RT2860_TX_SW_CFG0, 4 << RT2860_DLY_PAPE_EN_SHIFT); } /* wait while MAC is busy */ for (ntries = 0; ntries < 100; ntries++) { if (run_read(sc, RT2860_MAC_STATUS_REG, &tmp) != 0) goto fail; if (!(tmp & (RT2860_RX_STATUS_BUSY | RT2860_TX_STATUS_BUSY))) break; run_delay(sc, 10); } if (ntries == 100) goto fail; /* clear Host to MCU mailbox */ run_write(sc, RT2860_H2M_BBPAGENT, 0); run_write(sc, RT2860_H2M_MAILBOX, 0); run_delay(sc, 10); if (run_bbp_init(sc) != 0) { device_printf(sc->sc_dev, "could not initialize BBP\n"); goto fail; } /* abort TSF synchronization */ run_disable_tsf(sc); /* clear RX WCID search table */ run_set_region_4(sc, RT2860_WCID_ENTRY(0), 0, 512); /* clear WCID attribute table */ run_set_region_4(sc, RT2860_WCID_ATTR(0), 0, 8 * 32); /* hostapd sets a key before init. So, don't clear it. */ if (sc->cmdq_key_set != RUN_CMDQ_GO) { /* clear shared key table */ run_set_region_4(sc, RT2860_SKEY(0, 0), 0, 8 * 32); /* clear shared key mode */ run_set_region_4(sc, RT2860_SKEY_MODE_0_7, 0, 4); } run_read(sc, RT2860_US_CYC_CNT, &tmp); tmp = (tmp & ~0xff) | 0x1e; run_write(sc, RT2860_US_CYC_CNT, tmp); if (sc->mac_rev != 0x0101) run_write(sc, RT2860_TXOP_CTRL_CFG, 0x0000583f); run_write(sc, RT2860_WMM_TXOP0_CFG, 0); run_write(sc, RT2860_WMM_TXOP1_CFG, 48 << 16 | 96); /* write vendor-specific BBP values (from EEPROM) */ if (sc->mac_ver < 0x3593) { for (i = 0; i < 10; i++) { if (sc->bbp[i].reg == 0 || sc->bbp[i].reg == 0xff) continue; run_bbp_write(sc, sc->bbp[i].reg, sc->bbp[i].val); } } /* select Main antenna for 1T1R devices */ if (sc->rf_rev == RT3070_RF_3020 || sc->rf_rev == RT5390_RF_5370) run_set_rx_antenna(sc, 0); /* send LEDs operating mode to microcontroller */ (void)run_mcu_cmd(sc, RT2860_MCU_CMD_LED1, sc->led[0]); (void)run_mcu_cmd(sc, RT2860_MCU_CMD_LED2, sc->led[1]); (void)run_mcu_cmd(sc, RT2860_MCU_CMD_LED3, sc->led[2]); if (sc->mac_ver >= 0x5390) run_rt5390_rf_init(sc); else if (sc->mac_ver == 0x3593) run_rt3593_rf_init(sc); else if (sc->mac_ver >= 0x3070) run_rt3070_rf_init(sc); /* disable non-existing Rx chains */ run_bbp_read(sc, 3, &bbp3); bbp3 &= ~(1 << 3 | 1 << 4); if (sc->nrxchains == 2) bbp3 |= 1 << 3; else if (sc->nrxchains == 3) bbp3 |= 1 << 4; run_bbp_write(sc, 3, bbp3); /* disable non-existing Tx chains */ run_bbp_read(sc, 1, &bbp1); if (sc->ntxchains == 1) bbp1 &= ~(1 << 3 | 1 << 4); run_bbp_write(sc, 1, bbp1); if (sc->mac_ver >= 0x5390) run_rt5390_rf_setup(sc); else if (sc->mac_ver == 0x3593) run_rt3593_rf_setup(sc); else if (sc->mac_ver >= 0x3070) run_rt3070_rf_setup(sc); /* select default channel */ run_set_chan(sc, ic->ic_curchan); /* setup initial protection mode */ run_updateprot_cb(ic); /* turn radio LED on */ run_set_leds(sc, RT2860_LED_RADIO); /* Set up AUTO_RSP_CFG register for auto response */ run_write(sc, RT2860_AUTO_RSP_CFG, RT2860_AUTO_RSP_EN | RT2860_BAC_ACKPOLICY_EN | RT2860_CTS_40M_MODE_EN); sc->sc_flags |= RUN_RUNNING; sc->cmdq_run = RUN_CMDQ_GO; for (i = 0; i != RUN_N_XFER; i++) usbd_xfer_set_stall(sc->sc_xfer[i]); usbd_transfer_start(sc->sc_xfer[RUN_BULK_RX]); if (run_txrx_enable(sc) != 0) goto fail; return; fail: run_stop(sc); } static void run_stop(void *arg) { struct run_softc *sc = (struct run_softc *)arg; uint32_t tmp; int i; int ntries; RUN_LOCK_ASSERT(sc, MA_OWNED); if (sc->sc_flags & RUN_RUNNING) run_set_leds(sc, 0); /* turn all LEDs off */ sc->sc_flags &= ~RUN_RUNNING; sc->ratectl_run = RUN_RATECTL_OFF; sc->cmdq_run = sc->cmdq_key_set; RUN_UNLOCK(sc); for(i = 0; i < RUN_N_XFER; i++) usbd_transfer_drain(sc->sc_xfer[i]); RUN_LOCK(sc); run_drain_mbufq(sc); if (sc->rx_m != NULL) { m_free(sc->rx_m); sc->rx_m = NULL; } /* Disable Tx/Rx DMA. */ if (run_read(sc, RT2860_WPDMA_GLO_CFG, &tmp) != 0) return; tmp &= ~(RT2860_RX_DMA_EN | RT2860_TX_DMA_EN); run_write(sc, RT2860_WPDMA_GLO_CFG, tmp); for (ntries = 0; ntries < 100; ntries++) { if (run_read(sc, RT2860_WPDMA_GLO_CFG, &tmp) != 0) return; if ((tmp & (RT2860_TX_DMA_BUSY | RT2860_RX_DMA_BUSY)) == 0) break; run_delay(sc, 10); } if (ntries == 100) { device_printf(sc->sc_dev, "timeout waiting for DMA engine\n"); return; } /* disable Tx/Rx */ run_read(sc, RT2860_MAC_SYS_CTRL, &tmp); tmp &= ~(RT2860_MAC_RX_EN | RT2860_MAC_TX_EN); run_write(sc, RT2860_MAC_SYS_CTRL, tmp); /* wait for pending Tx to complete */ for (ntries = 0; ntries < 100; ntries++) { if (run_read(sc, RT2860_TXRXQ_PCNT, &tmp) != 0) { RUN_DPRINTF(sc, RUN_DEBUG_XMIT | RUN_DEBUG_RESET, "Cannot read Tx queue count\n"); break; } if ((tmp & RT2860_TX2Q_PCNT_MASK) == 0) { RUN_DPRINTF(sc, RUN_DEBUG_XMIT | RUN_DEBUG_RESET, "All Tx cleared\n"); break; } run_delay(sc, 10); } if (ntries >= 100) RUN_DPRINTF(sc, RUN_DEBUG_XMIT | RUN_DEBUG_RESET, "There are still pending Tx\n"); run_delay(sc, 10); run_write(sc, RT2860_USB_DMA_CFG, 0); run_write(sc, RT2860_MAC_SYS_CTRL, RT2860_BBP_HRST | RT2860_MAC_SRST); run_write(sc, RT2860_MAC_SYS_CTRL, 0); for (i = 0; i != RUN_EP_QUEUES; i++) run_unsetup_tx_list(sc, &sc->sc_epq[i]); } static void run_delay(struct run_softc *sc, u_int ms) { usb_pause_mtx(mtx_owned(&sc->sc_mtx) ? &sc->sc_mtx : NULL, USB_MS_TO_TICKS(ms)); } static void run_update_chw(struct ieee80211com *ic) { printf("%s: TODO\n", __func__); } static int run_ampdu_enable(struct ieee80211_node *ni, struct ieee80211_tx_ampdu *tap) { /* For now, no A-MPDU TX support in the driver */ return (0); } static device_method_t run_methods[] = { /* Device interface */ DEVMETHOD(device_probe, run_match), DEVMETHOD(device_attach, run_attach), DEVMETHOD(device_detach, run_detach), DEVMETHOD_END }; static driver_t run_driver = { .name = "run", .methods = run_methods, .size = sizeof(struct run_softc) }; static devclass_t run_devclass; DRIVER_MODULE(run, uhub, run_driver, run_devclass, run_driver_loaded, NULL); MODULE_DEPEND(run, wlan, 1, 1, 1); MODULE_DEPEND(run, usb, 1, 1, 1); MODULE_DEPEND(run, firmware, 1, 1, 1); MODULE_VERSION(run, 1); USB_PNP_HOST_INFO(run_devs); Index: head/sys/dev/wtap/if_wtap.c =================================================================== --- head/sys/dev/wtap/if_wtap.c (revision 365418) +++ head/sys/dev/wtap/if_wtap.c (revision 365419) @@ -1,713 +1,703 @@ /*- * SPDX-License-Identifier: BSD-2-Clause-FreeBSD * * Copyright (c) 2010-2011 Monthadar Al Jaberi, TerraNet AB * All rights reserved. * * Copyright (c) 2002-2009 Sam Leffler, Errno Consulting * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer, * without modification. * 2. Redistributions in binary form must reproduce at minimum a disclaimer * similar to the "NO WARRANTY" disclaimer below ("Disclaimer") and any * redistribution must be conditioned upon including a substantially * similar Disclaimer requirement for further binary redistribution. * * NO WARRANTY * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT * LIMITED TO, THE IMPLIED WARRANTIES OF NONINFRINGEMENT, MERCHANTIBILITY * AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL * THE COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR SPECIAL, EXEMPLARY, * OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER * IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF * THE POSSIBILITY OF SUCH DAMAGES. * * $FreeBSD$ */ #include "if_wtapvar.h" #include /* uio struct */ #include #include #include #include #include "if_medium.h" /* * This _requires_ vimage to be useful. */ #ifndef VIMAGE #error if_wtap requires VIMAGE. #endif /* VIMAGE */ /* device for IOCTL and read/write for debuggin purposes */ /* Function prototypes */ static d_open_t wtap_node_open; static d_close_t wtap_node_close; static d_write_t wtap_node_write; static d_ioctl_t wtap_node_ioctl; static struct cdevsw wtap_cdevsw = { .d_version = D_VERSION, .d_flags = 0, .d_open = wtap_node_open, .d_close = wtap_node_close, .d_write = wtap_node_write, .d_ioctl = wtap_node_ioctl, .d_name = "wtapnode", }; static int wtap_node_open(struct cdev *dev, int oflags, int devtype, struct thread *p) { int err = 0; uprintf("Opened device \"echo\" successfully.\n"); return(err); } static int wtap_node_close(struct cdev *dev, int fflag, int devtype, struct thread *p) { uprintf("Closing device \"echo.\"\n"); return(0); } static int wtap_node_write(struct cdev *dev, struct uio *uio, int ioflag) { int err = 0; struct mbuf *m; struct ifnet *ifp; struct wtap_softc *sc; uint8_t buf[1024]; struct epoch_tracker et; int buf_len; uprintf("write device %s \"echo.\"\n", devtoname(dev)); buf_len = MIN(uio->uio_iov->iov_len, 1024); err = copyin(uio->uio_iov->iov_base, buf, buf_len); if (err != 0) { uprintf("Write failed: bad address!\n"); return (err); } MGETHDR(m, M_NOWAIT, MT_DATA); m_copyback(m, 0, buf_len, buf); CURVNET_SET(TD_TO_VNET(curthread)); NET_EPOCH_ENTER(et); CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) { printf("ifp->if_xname = %s\n", ifp->if_xname); if(strcmp(devtoname(dev), ifp->if_xname) == 0){ printf("found match, correspoding wtap = %s\n", ifp->if_xname); sc = (struct wtap_softc *)ifp->if_softc; printf("wtap id = %d\n", sc->id); wtap_inject(sc, m); } } NET_EPOCH_EXIT(et); CURVNET_RESTORE(); return(err); } int wtap_node_ioctl(struct cdev *dev, u_long cmd, caddr_t data, int fflag, struct thread *td) { int error = 0; switch(cmd) { default: DWTAP_PRINTF("Unknown WTAP IOCTL\n"); error = EINVAL; } return error; } static int wtap_raw_xmit(struct ieee80211_node *ni, struct mbuf *m, const struct ieee80211_bpf_params *params); static int wtap_medium_enqueue(struct wtap_vap *avp, struct mbuf *m) { return medium_transmit(avp->av_md, avp->id, m); } -static int -wtap_media_change(struct ifnet *ifp) -{ - - DWTAP_PRINTF("%s\n", __func__); - int error = ieee80211_media_change(ifp); - /* NB: only the fixed rate can change and that doesn't need a reset */ - return (error == ENETRESET ? 0 : error); -} - /* * Intercept management frames to collect beacon rssi data * and to do ibss merges. */ static void wtap_recv_mgmt(struct ieee80211_node *ni, struct mbuf *m, int subtype, const struct ieee80211_rx_stats *stats, int rssi, int nf) { struct ieee80211vap *vap = ni->ni_vap; #if 0 DWTAP_PRINTF("[%d] %s\n", myath_id(ni), __func__); #endif WTAP_VAP(vap)->av_recv_mgmt(ni, m, subtype, stats, rssi, nf); } static int wtap_reset_vap(struct ieee80211vap *vap, u_long cmd) { DWTAP_PRINTF("%s\n", __func__); return 0; } static void wtap_beacon_update(struct ieee80211vap *vap, int item) { struct ieee80211_beacon_offsets *bo = &vap->iv_bcn_off; DWTAP_PRINTF("%s\n", __func__); setbit(bo->bo_flags, item); } /* * Allocate and setup an initial beacon frame. */ static int wtap_beacon_alloc(struct wtap_softc *sc, struct ieee80211_node *ni) { struct ieee80211vap *vap = ni->ni_vap; struct wtap_vap *avp = WTAP_VAP(vap); DWTAP_PRINTF("[%s] %s\n", ether_sprintf(ni->ni_macaddr), __func__); /* * NB: the beacon data buffer must be 32-bit aligned; * we assume the mbuf routines will return us something * with this alignment (perhaps should assert). */ avp->beacon = ieee80211_beacon_alloc(ni); if (avp->beacon == NULL) { printf("%s: cannot get mbuf\n", __func__); return ENOMEM; } callout_init(&avp->av_swba, 0); avp->bf_node = ieee80211_ref_node(ni); return 0; } static void wtap_beacon_config(struct wtap_softc *sc, struct ieee80211vap *vap) { DWTAP_PRINTF("%s\n", __func__); } static void wtap_beacon_intrp(void *arg) { struct wtap_vap *avp = arg; struct ieee80211vap *vap = arg; struct mbuf *m; if (vap->iv_state < IEEE80211_S_RUN) { DWTAP_PRINTF("Skip beacon, not running, state %d", vap->iv_state); return ; } DWTAP_PRINTF("[%d] beacon intrp\n", avp->id); //burst mode /* * Update dynamic beacon contents. If this returns * non-zero then we need to remap the memory because * the beacon frame changed size (probably because * of the TIM bitmap). */ m = m_dup(avp->beacon, M_NOWAIT); if (ieee80211_beacon_update(avp->bf_node, m, 0)) { printf("%s, need to remap the memory because the beacon frame" " changed size.\n",__func__); } if (ieee80211_radiotap_active_vap(vap)) ieee80211_radiotap_tx(vap, m); #if 0 medium_transmit(avp->av_md, avp->id, m); #endif wtap_medium_enqueue(avp, m); callout_schedule(&avp->av_swba, avp->av_bcinterval); } static int wtap_newstate(struct ieee80211vap *vap, enum ieee80211_state nstate, int arg) { struct ieee80211com *ic = vap->iv_ic; struct wtap_softc *sc = ic->ic_softc; struct wtap_vap *avp = WTAP_VAP(vap); struct ieee80211_node *ni = NULL; int error; DWTAP_PRINTF("%s\n", __func__); ni = ieee80211_ref_node(vap->iv_bss); /* * Invoke the parent method to do net80211 work. */ error = avp->av_newstate(vap, nstate, arg); if (error != 0) goto bad; if (nstate == IEEE80211_S_RUN) { /* NB: collect bss node again, it may have changed */ ieee80211_free_node(ni); ni = ieee80211_ref_node(vap->iv_bss); switch (vap->iv_opmode) { case IEEE80211_M_MBSS: error = wtap_beacon_alloc(sc, ni); if (error != 0) goto bad; wtap_beacon_config(sc, vap); callout_reset(&avp->av_swba, avp->av_bcinterval, wtap_beacon_intrp, vap); break; default: goto bad; } } else if (nstate == IEEE80211_S_INIT) { callout_stop(&avp->av_swba); } ieee80211_free_node(ni); return 0; bad: printf("%s: bad\n", __func__); ieee80211_free_node(ni); return error; } static void wtap_bmiss(struct ieee80211vap *vap) { struct wtap_vap *avp = (struct wtap_vap *)vap; DWTAP_PRINTF("%s\n", __func__); avp->av_bmiss(vap); } static struct ieee80211vap * wtap_vap_create(struct ieee80211com *ic, const char name[IFNAMSIZ], int unit, enum ieee80211_opmode opmode, int flags, const uint8_t bssid[IEEE80211_ADDR_LEN], const uint8_t mac[IEEE80211_ADDR_LEN]) { struct wtap_softc *sc = ic->ic_softc; struct ieee80211vap *vap; struct wtap_vap *avp; int error; struct ieee80211_node *ni; DWTAP_PRINTF("%s\n", __func__); avp = malloc(sizeof(struct wtap_vap), M_80211_VAP, M_WAITOK | M_ZERO); avp->id = sc->id; avp->av_md = sc->sc_md; avp->av_bcinterval = msecs_to_ticks(BEACON_INTRERVAL + 100*sc->id); vap = (struct ieee80211vap *) avp; error = ieee80211_vap_setup(ic, vap, name, unit, IEEE80211_M_MBSS, flags | IEEE80211_CLONE_NOBEACONS, bssid); if (error) { free(avp, M_80211_VAP); return (NULL); } /* override various methods */ avp->av_recv_mgmt = vap->iv_recv_mgmt; vap->iv_recv_mgmt = wtap_recv_mgmt; vap->iv_reset = wtap_reset_vap; vap->iv_update_beacon = wtap_beacon_update; avp->av_newstate = vap->iv_newstate; vap->iv_newstate = wtap_newstate; avp->av_bmiss = vap->iv_bmiss; vap->iv_bmiss = wtap_bmiss; /* complete setup */ - ieee80211_vap_attach(vap, wtap_media_change, ieee80211_media_status, - mac); + ieee80211_vap_attach(vap, ieee80211_media_change, + ieee80211_media_status, mac); avp->av_dev = make_dev(&wtap_cdevsw, 0, UID_ROOT, GID_WHEEL, 0600, "%s", (const char *)sc->name); /* TODO this is a hack to force it to choose the rate we want */ ni = ieee80211_ref_node(vap->iv_bss); ni->ni_txrate = 130; ieee80211_free_node(ni); return vap; } static void wtap_vap_delete(struct ieee80211vap *vap) { struct wtap_vap *avp = WTAP_VAP(vap); DWTAP_PRINTF("%s\n", __func__); destroy_dev(avp->av_dev); callout_stop(&avp->av_swba); ieee80211_vap_detach(vap); free(avp, M_80211_VAP); } static void wtap_parent(struct ieee80211com *ic) { struct wtap_softc *sc = ic->ic_softc; if (ic->ic_nrunning > 0) { sc->up = 1; ieee80211_start_all(ic); } else sc->up = 0; } static void wtap_scan_start(struct ieee80211com *ic) { #if 0 DWTAP_PRINTF("%s\n", __func__); #endif } static void wtap_scan_end(struct ieee80211com *ic) { #if 0 DWTAP_PRINTF("%s\n", __func__); #endif } static void wtap_set_channel(struct ieee80211com *ic) { #if 0 DWTAP_PRINTF("%s\n", __func__); #endif } static int wtap_raw_xmit(struct ieee80211_node *ni, struct mbuf *m, const struct ieee80211_bpf_params *params) { #if 0 DWTAP_PRINTF("%s, %p\n", __func__, m); #endif struct ieee80211vap *vap = ni->ni_vap; struct wtap_vap *avp = WTAP_VAP(vap); if (ieee80211_radiotap_active_vap(vap)) { ieee80211_radiotap_tx(vap, m); } if (m->m_flags & M_TXCB) ieee80211_process_callback(ni, m, 0); ieee80211_free_node(ni); return wtap_medium_enqueue(avp, m); } void wtap_inject(struct wtap_softc *sc, struct mbuf *m) { struct wtap_buf *bf = (struct wtap_buf *)malloc(sizeof(struct wtap_buf), M_WTAP_RXBUF, M_NOWAIT | M_ZERO); KASSERT(bf != NULL, ("could not allocated a new wtap_buf\n")); bf->m = m; mtx_lock(&sc->sc_mtx); STAILQ_INSERT_TAIL(&sc->sc_rxbuf, bf, bf_list); taskqueue_enqueue(sc->sc_tq, &sc->sc_rxtask); mtx_unlock(&sc->sc_mtx); } static void wtap_rx_proc(void *arg, int npending) { struct epoch_tracker et; struct wtap_softc *sc = (struct wtap_softc *)arg; struct ieee80211com *ic = &sc->sc_ic; struct mbuf *m; struct ieee80211_node *ni; int type; struct wtap_buf *bf; #if 0 DWTAP_PRINTF("%s\n", __func__); #endif for(;;) { mtx_lock(&sc->sc_mtx); bf = STAILQ_FIRST(&sc->sc_rxbuf); if (bf == NULL) { mtx_unlock(&sc->sc_mtx); return; } STAILQ_REMOVE_HEAD(&sc->sc_rxbuf, bf_list); mtx_unlock(&sc->sc_mtx); KASSERT(bf != NULL, ("wtap_buf is NULL\n")); m = bf->m; DWTAP_PRINTF("[%d] receiving m=%p\n", sc->id, bf->m); if (m == NULL) { /* NB: shouldn't happen */ ic_printf(ic, "%s: no mbuf!\n", __func__); free(bf, M_WTAP_RXBUF); return; } #if 0 ieee80211_dump_pkt(ic, mtod(m, caddr_t), 0,0,0); #endif /* * Locate the node for sender, track state, and then * pass the (referenced) node up to the 802.11 layer * for its use. */ ni = ieee80211_find_rxnode_withkey(ic, mtod(m, const struct ieee80211_frame_min *), IEEE80211_KEYIX_NONE); NET_EPOCH_ENTER(et); if (ni != NULL) { /* * Sending station is known, dispatch directly. */ type = ieee80211_input(ni, m, 1<<7, 10); ieee80211_free_node(ni); } else { type = ieee80211_input_all(ic, m, 1<<7, 10); } NET_EPOCH_EXIT(et); /* The mbufs are freed by the Net80211 stack */ free(bf, M_WTAP_RXBUF); } } static void wtap_newassoc(struct ieee80211_node *ni, int isnew) { DWTAP_PRINTF("%s\n", __func__); } /* * Callback from the 802.11 layer to update WME parameters. */ static int wtap_wme_update(struct ieee80211com *ic) { DWTAP_PRINTF("%s\n", __func__); return 0; } static void wtap_update_mcast(struct ieee80211com *ic) { DWTAP_PRINTF("%s\n", __func__); } static void wtap_update_promisc(struct ieee80211com *ic) { DWTAP_PRINTF("%s\n", __func__); } static int wtap_transmit(struct ieee80211com *ic, struct mbuf *m) { struct ieee80211_node *ni = (struct ieee80211_node *) m->m_pkthdr.rcvif; struct ieee80211vap *vap = ni->ni_vap; struct wtap_vap *avp = WTAP_VAP(vap); if(ni == NULL){ printf("m->m_pkthdr.rcvif is NULL we cant radiotap_tx\n"); }else{ if (ieee80211_radiotap_active_vap(vap)) ieee80211_radiotap_tx(vap, m); } if (m->m_flags & M_TXCB) ieee80211_process_callback(ni, m, 0); ieee80211_free_node(ni); return wtap_medium_enqueue(avp, m); } static struct ieee80211_node * wtap_node_alloc(struct ieee80211vap *vap, const uint8_t mac[IEEE80211_ADDR_LEN]) { struct ieee80211_node *ni; DWTAP_PRINTF("%s\n", __func__); ni = malloc(sizeof(struct ieee80211_node), M_80211_NODE, M_NOWAIT|M_ZERO); if (ni == NULL) return (NULL); ni->ni_txrate = 130; return ni; } static void wtap_node_free(struct ieee80211_node *ni) { struct ieee80211com *ic = ni->ni_ic; struct wtap_softc *sc = ic->ic_softc; DWTAP_PRINTF("%s\n", __func__); sc->sc_node_free(ni); } int32_t wtap_attach(struct wtap_softc *sc, const uint8_t *macaddr) { struct ieee80211com *ic = &sc->sc_ic; DWTAP_PRINTF("%s\n", __func__); sc->up = 0; STAILQ_INIT(&sc->sc_rxbuf); sc->sc_tq = taskqueue_create("wtap_taskq", M_NOWAIT | M_ZERO, taskqueue_thread_enqueue, &sc->sc_tq); taskqueue_start_threads(&sc->sc_tq, 1, PI_SOFT, "%s taskQ", sc->name); NET_TASK_INIT(&sc->sc_rxtask, 0, wtap_rx_proc, sc); ic->ic_softc = sc; ic->ic_name = sc->name; ic->ic_phytype = IEEE80211_T_DS; ic->ic_opmode = IEEE80211_M_MBSS; ic->ic_caps = IEEE80211_C_MBSS; ic->ic_max_keyix = 128; /* A value read from Atheros ATH_KEYMAX */ ic->ic_regdomain.regdomain = SKU_ETSI; ic->ic_regdomain.country = CTRY_SWEDEN; ic->ic_regdomain.location = 1; /* Indoors */ ic->ic_regdomain.isocc[0] = 'S'; ic->ic_regdomain.isocc[1] = 'E'; ic->ic_nchans = 1; ic->ic_channels[0].ic_flags = IEEE80211_CHAN_B; ic->ic_channels[0].ic_freq = 2412; IEEE80211_ADDR_COPY(ic->ic_macaddr, macaddr); ieee80211_ifattach(ic); /* override default methods */ ic->ic_newassoc = wtap_newassoc; ic->ic_wme.wme_update = wtap_wme_update; ic->ic_vap_create = wtap_vap_create; ic->ic_vap_delete = wtap_vap_delete; ic->ic_raw_xmit = wtap_raw_xmit; ic->ic_update_mcast = wtap_update_mcast; ic->ic_update_promisc = wtap_update_promisc; ic->ic_transmit = wtap_transmit; ic->ic_parent = wtap_parent; sc->sc_node_alloc = ic->ic_node_alloc; ic->ic_node_alloc = wtap_node_alloc; sc->sc_node_free = ic->ic_node_free; ic->ic_node_free = wtap_node_free; ic->ic_scan_start = wtap_scan_start; ic->ic_scan_end = wtap_scan_end; ic->ic_set_channel = wtap_set_channel; ieee80211_radiotap_attach(ic, &sc->sc_tx_th.wt_ihdr, sizeof(sc->sc_tx_th), WTAP_TX_RADIOTAP_PRESENT, &sc->sc_rx_th.wr_ihdr, sizeof(sc->sc_rx_th), WTAP_RX_RADIOTAP_PRESENT); /* Work here, we must find a way to populate the rate table */ #if 0 if(ic->ic_rt == NULL){ printf("no table for ic_curchan\n"); ic->ic_rt = ieee80211_get_ratetable(&ic->ic_channels[0]); } printf("ic->ic_rt =%p\n", ic->ic_rt); printf("rate count %d\n", ic->ic_rt->rateCount); uint8_t code = ic->ic_rt->info[0].dot11Rate; uint8_t cix = ic->ic_rt->info[0].ctlRateIndex; uint8_t ctl_rate = ic->ic_rt->info[cix].dot11Rate; printf("code=%d, cix=%d, ctl_rate=%d\n", code, cix, ctl_rate); uint8_t rix0 = ic->ic_rt->rateCodeToIndex[130]; uint8_t rix1 = ic->ic_rt->rateCodeToIndex[132]; uint8_t rix2 = ic->ic_rt->rateCodeToIndex[139]; uint8_t rix3 = ic->ic_rt->rateCodeToIndex[150]; printf("rix0 %u,rix1 %u,rix2 %u,rix3 %u\n", rix0,rix1,rix2,rix3); printf("lpAckDuration=%u\n", ic->ic_rt->info[0].lpAckDuration); printf("rate=%d\n", ic->ic_rt->info[0].rateKbps); #endif return 0; } int32_t wtap_detach(struct wtap_softc *sc) { struct ieee80211com *ic = &sc->sc_ic; DWTAP_PRINTF("%s\n", __func__); ieee80211_ageq_drain(&ic->ic_stageq); ieee80211_ifdetach(ic); return 0; } void wtap_resume(struct wtap_softc *sc) { DWTAP_PRINTF("%s\n", __func__); } void wtap_suspend(struct wtap_softc *sc) { DWTAP_PRINTF("%s\n", __func__); } void wtap_shutdown(struct wtap_softc *sc) { DWTAP_PRINTF("%s\n", __func__); } void wtap_intr(struct wtap_softc *sc) { DWTAP_PRINTF("%s\n", __func__); }