Index: head/sys/dev/cxgbe/common/common.h =================================================================== --- head/sys/dev/cxgbe/common/common.h (revision 241398) +++ head/sys/dev/cxgbe/common/common.h (revision 241399) @@ -1,550 +1,552 @@ /*- * Copyright (c) 2011 Chelsio Communications, 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. * 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. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR 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 AUTHOR 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. * * $FreeBSD$ * */ #ifndef __CHELSIO_COMMON_H #define __CHELSIO_COMMON_H #include "t4_hw.h" enum { MAX_NPORTS = 4, /* max # of ports */ SERNUM_LEN = 24, /* Serial # length */ EC_LEN = 16, /* E/C length */ ID_LEN = 16, /* ID length */ PN_LEN = 16, /* Part Number length */ MACADDR_LEN = 12, /* MAC Address length */ }; enum { MEM_EDC0, MEM_EDC1, MEM_MC }; enum { MEMWIN0_APERTURE = 2048, MEMWIN0_BASE = 0x1b800, MEMWIN1_APERTURE = 32768, MEMWIN1_BASE = 0x28000, MEMWIN2_APERTURE = 65536, MEMWIN2_BASE = 0x30000, }; enum dev_master { MASTER_CANT, MASTER_MAY, MASTER_MUST }; enum dev_state { DEV_STATE_UNINIT, DEV_STATE_INIT, DEV_STATE_ERR }; enum { PAUSE_RX = 1 << 0, PAUSE_TX = 1 << 1, PAUSE_AUTONEG = 1 << 2 }; #define FW_VERSION_MAJOR 1 #define FW_VERSION_MINOR 6 #define FW_VERSION_MICRO 2 struct port_stats { u64 tx_octets; /* total # of octets in good frames */ u64 tx_frames; /* all good frames */ u64 tx_bcast_frames; /* all broadcast frames */ u64 tx_mcast_frames; /* all multicast frames */ u64 tx_ucast_frames; /* all unicast frames */ u64 tx_error_frames; /* all error frames */ u64 tx_frames_64; /* # of Tx frames in a particular range */ u64 tx_frames_65_127; u64 tx_frames_128_255; u64 tx_frames_256_511; u64 tx_frames_512_1023; u64 tx_frames_1024_1518; u64 tx_frames_1519_max; u64 tx_drop; /* # of dropped Tx frames */ u64 tx_pause; /* # of transmitted pause frames */ u64 tx_ppp0; /* # of transmitted PPP prio 0 frames */ u64 tx_ppp1; /* # of transmitted PPP prio 1 frames */ u64 tx_ppp2; /* # of transmitted PPP prio 2 frames */ u64 tx_ppp3; /* # of transmitted PPP prio 3 frames */ u64 tx_ppp4; /* # of transmitted PPP prio 4 frames */ u64 tx_ppp5; /* # of transmitted PPP prio 5 frames */ u64 tx_ppp6; /* # of transmitted PPP prio 6 frames */ u64 tx_ppp7; /* # of transmitted PPP prio 7 frames */ u64 rx_octets; /* total # of octets in good frames */ u64 rx_frames; /* all good frames */ u64 rx_bcast_frames; /* all broadcast frames */ u64 rx_mcast_frames; /* all multicast frames */ u64 rx_ucast_frames; /* all unicast frames */ u64 rx_too_long; /* # of frames exceeding MTU */ u64 rx_jabber; /* # of jabber frames */ u64 rx_fcs_err; /* # of received frames with bad FCS */ u64 rx_len_err; /* # of received frames with length error */ u64 rx_symbol_err; /* symbol errors */ u64 rx_runt; /* # of short frames */ u64 rx_frames_64; /* # of Rx frames in a particular range */ u64 rx_frames_65_127; u64 rx_frames_128_255; u64 rx_frames_256_511; u64 rx_frames_512_1023; u64 rx_frames_1024_1518; u64 rx_frames_1519_max; u64 rx_pause; /* # of received pause frames */ u64 rx_ppp0; /* # of received PPP prio 0 frames */ u64 rx_ppp1; /* # of received PPP prio 1 frames */ u64 rx_ppp2; /* # of received PPP prio 2 frames */ u64 rx_ppp3; /* # of received PPP prio 3 frames */ u64 rx_ppp4; /* # of received PPP prio 4 frames */ u64 rx_ppp5; /* # of received PPP prio 5 frames */ u64 rx_ppp6; /* # of received PPP prio 6 frames */ u64 rx_ppp7; /* # of received PPP prio 7 frames */ u64 rx_ovflow0; /* drops due to buffer-group 0 overflows */ u64 rx_ovflow1; /* drops due to buffer-group 1 overflows */ u64 rx_ovflow2; /* drops due to buffer-group 2 overflows */ u64 rx_ovflow3; /* drops due to buffer-group 3 overflows */ u64 rx_trunc0; /* buffer-group 0 truncated packets */ u64 rx_trunc1; /* buffer-group 1 truncated packets */ u64 rx_trunc2; /* buffer-group 2 truncated packets */ u64 rx_trunc3; /* buffer-group 3 truncated packets */ }; struct lb_port_stats { u64 octets; u64 frames; u64 bcast_frames; u64 mcast_frames; u64 ucast_frames; u64 error_frames; u64 frames_64; u64 frames_65_127; u64 frames_128_255; u64 frames_256_511; u64 frames_512_1023; u64 frames_1024_1518; u64 frames_1519_max; u64 drop; u64 ovflow0; u64 ovflow1; u64 ovflow2; u64 ovflow3; u64 trunc0; u64 trunc1; u64 trunc2; u64 trunc3; }; struct tp_tcp_stats { u32 tcpOutRsts; u64 tcpInSegs; u64 tcpOutSegs; u64 tcpRetransSegs; }; struct tp_usm_stats { u32 frames; u32 drops; u64 octets; }; struct tp_fcoe_stats { u32 framesDDP; u32 framesDrop; u64 octetsDDP; }; struct tp_err_stats { u32 macInErrs[4]; u32 hdrInErrs[4]; u32 tcpInErrs[4]; u32 tnlCongDrops[4]; u32 ofldChanDrops[4]; u32 tnlTxDrops[4]; u32 ofldVlanDrops[4]; u32 tcp6InErrs[4]; u32 ofldNoNeigh; u32 ofldCongDefer; }; struct tp_proxy_stats { u32 proxy[4]; }; struct tp_cpl_stats { u32 req[4]; u32 rsp[4]; }; struct tp_rdma_stats { u32 rqe_dfr_mod; u32 rqe_dfr_pkt; }; struct tp_params { unsigned int ntxchan; /* # of Tx channels */ unsigned int tre; /* log2 of core clocks per TP tick */ unsigned int dack_re; /* DACK timer resolution */ unsigned int la_mask; /* what events are recorded by TP LA */ unsigned short tx_modq[NCHAN]; /* channel to modulation queue map */ }; struct vpd_params { unsigned int cclk; u8 ec[EC_LEN + 1]; u8 sn[SERNUM_LEN + 1]; u8 id[ID_LEN + 1]; u8 pn[PN_LEN + 1]; u8 na[MACADDR_LEN + 1]; }; struct pci_params { unsigned int vpd_cap_addr; unsigned short speed; unsigned short width; }; /* * Firmware device log. */ struct devlog_params { u32 memtype; /* which memory (EDC0, EDC1, MC) */ u32 start; /* start of log in firmware memory */ u32 size; /* size of log */ }; struct adapter_params { struct tp_params tp; struct vpd_params vpd; struct pci_params pci; struct devlog_params devlog; unsigned int sf_size; /* serial flash size in bytes */ unsigned int sf_nsec; /* # of flash sectors */ unsigned int fw_vers; unsigned int tp_vers; unsigned short mtus[NMTUS]; unsigned short a_wnd[NCCTRL_WIN]; unsigned short b_wnd[NCCTRL_WIN]; unsigned int mc_size; /* MC memory size */ unsigned int nfilters; /* size of filter region */ unsigned int cim_la_size; /* Used as int in sysctls, do not reduce size */ unsigned int nports; /* # of ethernet ports */ unsigned int portvec; unsigned int rev; /* chip revision */ unsigned int offload; unsigned int ofldq_wr_cred; }; enum { /* chip revisions */ T4_REV_A = 0, }; struct trace_params { u32 data[TRACE_LEN / 4]; u32 mask[TRACE_LEN / 4]; unsigned short snap_len; unsigned short min_len; unsigned char skip_ofst; unsigned char skip_len; unsigned char invert; unsigned char port; }; struct link_config { unsigned short supported; /* link capabilities */ unsigned short advertising; /* advertised capabilities */ unsigned short requested_speed; /* speed user has requested */ unsigned short speed; /* actual link speed */ unsigned char requested_fc; /* flow control user has requested */ unsigned char fc; /* actual link flow control */ unsigned char autoneg; /* autonegotiating? */ unsigned char link_ok; /* link up? */ }; #include "adapter.h" #ifndef PCI_VENDOR_ID_CHELSIO # define PCI_VENDOR_ID_CHELSIO 0x1425 #endif #define for_each_port(adapter, iter) \ for (iter = 0; iter < (adapter)->params.nports; ++iter) static inline int is_offload(const struct adapter *adap) { return adap->params.offload; } static inline unsigned int core_ticks_per_usec(const struct adapter *adap) { return adap->params.vpd.cclk / 1000; } static inline unsigned int us_to_core_ticks(const struct adapter *adap, unsigned int us) { return (us * adap->params.vpd.cclk) / 1000; } static inline unsigned int dack_ticks_to_usec(const struct adapter *adap, unsigned int ticks) { return (ticks << adap->params.tp.dack_re) / core_ticks_per_usec(adap); } void t4_set_reg_field(struct adapter *adap, unsigned int addr, u32 mask, u32 val); int t4_wait_op_done_val(struct adapter *adapter, int reg, u32 mask, int polarity, int attempts, int delay, u32 *valp); static inline int t4_wait_op_done(struct adapter *adapter, int reg, u32 mask, int polarity, int attempts, int delay) { return t4_wait_op_done_val(adapter, reg, mask, polarity, attempts, delay, NULL); } int t4_wr_mbox_meat(struct adapter *adap, int mbox, const void *cmd, int size, void *rpl, bool sleep_ok); static inline int t4_wr_mbox(struct adapter *adap, int mbox, const void *cmd, int size, void *rpl) { return t4_wr_mbox_meat(adap, mbox, cmd, size, rpl, true); } static inline int t4_wr_mbox_ns(struct adapter *adap, int mbox, const void *cmd, int size, void *rpl) { return t4_wr_mbox_meat(adap, mbox, cmd, size, rpl, false); } void t4_read_indirect(struct adapter *adap, unsigned int addr_reg, unsigned int data_reg, u32 *vals, unsigned int nregs, unsigned int start_idx); void t4_write_indirect(struct adapter *adap, unsigned int addr_reg, unsigned int data_reg, const u32 *vals, unsigned int nregs, unsigned int start_idx); u32 t4_hw_pci_read_cfg4(adapter_t *adapter, int reg); struct fw_filter_wr; void t4_intr_enable(struct adapter *adapter); void t4_intr_disable(struct adapter *adapter); void t4_intr_clear(struct adapter *adapter); int t4_slow_intr_handler(struct adapter *adapter); int t4_hash_mac_addr(const u8 *addr); int t4_link_start(struct adapter *adap, unsigned int mbox, unsigned int port, struct link_config *lc); int t4_restart_aneg(struct adapter *adap, unsigned int mbox, unsigned int port); int t4_seeprom_read(struct adapter *adapter, u32 addr, u32 *data); int t4_seeprom_write(struct adapter *adapter, u32 addr, u32 data); int t4_eeprom_ptov(unsigned int phys_addr, unsigned int fn, unsigned int sz); int t4_seeprom_wp(struct adapter *adapter, int enable); int t4_read_flash(struct adapter *adapter, unsigned int addr, unsigned int nwords, u32 *data, int byte_oriented); int t4_load_fw(struct adapter *adapter, const u8 *fw_data, unsigned int size); int t4_load_boot(struct adapter *adap, u8 *boot_data, unsigned int boot_addr, unsigned int size); unsigned int t4_flash_cfg_addr(struct adapter *adapter); int t4_load_cfg(struct adapter *adapter, const u8 *cfg_data, unsigned int size); int t4_get_fw_version(struct adapter *adapter, u32 *vers); int t4_get_tp_version(struct adapter *adapter, u32 *vers); int t4_check_fw_version(struct adapter *adapter); int t4_init_hw(struct adapter *adapter, u32 fw_params); int t4_prep_adapter(struct adapter *adapter); int t4_port_init(struct port_info *p, int mbox, int pf, int vf); int t4_reinit_adapter(struct adapter *adap); void t4_fatal_err(struct adapter *adapter); int t4_set_trace_filter(struct adapter *adapter, const struct trace_params *tp, int filter_index, int enable); void t4_get_trace_filter(struct adapter *adapter, struct trace_params *tp, int filter_index, int *enabled); int t4_config_rss_range(struct adapter *adapter, int mbox, unsigned int viid, int start, int n, const u16 *rspq, unsigned int nrspq); int t4_config_glbl_rss(struct adapter *adapter, int mbox, unsigned int mode, unsigned int flags); int t4_config_vi_rss(struct adapter *adapter, int mbox, unsigned int viid, unsigned int flags, unsigned int defq); int t4_read_rss(struct adapter *adapter, u16 *entries); void t4_read_rss_key(struct adapter *adapter, u32 *key); void t4_write_rss_key(struct adapter *adap, const u32 *key, int idx); void t4_read_rss_pf_config(struct adapter *adapter, unsigned int index, u32 *valp); void t4_write_rss_pf_config(struct adapter *adapter, unsigned int index, u32 val); void t4_read_rss_vf_config(struct adapter *adapter, unsigned int index, u32 *vfl, u32 *vfh); void t4_write_rss_vf_config(struct adapter *adapter, unsigned int index, u32 vfl, u32 vfh); u32 t4_read_rss_pf_map(struct adapter *adapter); void t4_write_rss_pf_map(struct adapter *adapter, u32 pfmap); u32 t4_read_rss_pf_mask(struct adapter *adapter); void t4_write_rss_pf_mask(struct adapter *adapter, u32 pfmask); int t4_mps_set_active_ports(struct adapter *adap, unsigned int port_mask); void t4_pmtx_get_stats(struct adapter *adap, u32 cnt[], u64 cycles[]); void t4_pmrx_get_stats(struct adapter *adap, u32 cnt[], u64 cycles[]); void t4_read_cimq_cfg(struct adapter *adap, u16 *base, u16 *size, u16 *thres); int t4_read_cim_ibq(struct adapter *adap, unsigned int qid, u32 *data, size_t n); int t4_read_cim_obq(struct adapter *adap, unsigned int qid, u32 *data, size_t n); int t4_cim_read(struct adapter *adap, unsigned int addr, unsigned int n, unsigned int *valp); int t4_cim_write(struct adapter *adap, unsigned int addr, unsigned int n, const unsigned int *valp); int t4_cim_ctl_read(struct adapter *adap, unsigned int addr, unsigned int n, unsigned int *valp); int t4_cim_read_la(struct adapter *adap, u32 *la_buf, unsigned int *wrptr); void t4_cim_read_pif_la(struct adapter *adap, u32 *pif_req, u32 *pif_rsp, unsigned int *pif_req_wrptr, unsigned int *pif_rsp_wrptr); void t4_cim_read_ma_la(struct adapter *adap, u32 *ma_req, u32 *ma_rsp); int t4_mc_read(struct adapter *adap, u32 addr, __be32 *data, u64 *parity); int t4_edc_read(struct adapter *adap, int idx, u32 addr, __be32 *data, u64 *parity); int t4_mem_read(struct adapter *adap, int mtype, u32 addr, u32 size, __be32 *data); void t4_get_port_stats(struct adapter *adap, int idx, struct port_stats *p); void t4_get_port_stats_offset(struct adapter *adap, int idx, struct port_stats *stats, struct port_stats *offset); void t4_get_lb_stats(struct adapter *adap, int idx, struct lb_port_stats *p); void t4_clr_port_stats(struct adapter *adap, int idx); void t4_read_mtu_tbl(struct adapter *adap, u16 *mtus, u8 *mtu_log); void t4_read_cong_tbl(struct adapter *adap, u16 incr[NMTUS][NCCTRL_WIN]); void t4_read_pace_tbl(struct adapter *adap, unsigned int pace_vals[NTX_SCHED]); void t4_get_tx_sched(struct adapter *adap, unsigned int sched, unsigned int *kbps, unsigned int *ipg); void t4_tp_wr_bits_indirect(struct adapter *adap, unsigned int addr, unsigned int mask, unsigned int val); void t4_tp_read_la(struct adapter *adap, u64 *la_buf, unsigned int *wrptr); void t4_tp_get_err_stats(struct adapter *adap, struct tp_err_stats *st); void t4_tp_get_proxy_stats(struct adapter *adap, struct tp_proxy_stats *st); void t4_tp_get_cpl_stats(struct adapter *adap, struct tp_cpl_stats *st); void t4_tp_get_rdma_stats(struct adapter *adap, struct tp_rdma_stats *st); void t4_get_usm_stats(struct adapter *adap, struct tp_usm_stats *st); void t4_tp_get_tcp_stats(struct adapter *adap, struct tp_tcp_stats *v4, struct tp_tcp_stats *v6); void t4_get_fcoe_stats(struct adapter *adap, unsigned int idx, struct tp_fcoe_stats *st); void t4_load_mtus(struct adapter *adap, const unsigned short *mtus, const unsigned short *alpha, const unsigned short *beta); void t4_ulprx_read_la(struct adapter *adap, u32 *la_buf); int t4_set_sched_bps(struct adapter *adap, int sched, unsigned int kbps); int t4_set_sched_ipg(struct adapter *adap, int sched, unsigned int ipg); int t4_set_pace_tbl(struct adapter *adap, const unsigned int *pace_vals, unsigned int start, unsigned int n); void t4_get_chan_txrate(struct adapter *adap, u64 *nic_rate, u64 *ofld_rate); int t4_set_filter_mode(struct adapter *adap, unsigned int mode_map); void t4_mk_filtdelwr(unsigned int ftid, struct fw_filter_wr *wr, int qid); void t4_wol_magic_enable(struct adapter *adap, unsigned int port, const u8 *addr); int t4_wol_pat_enable(struct adapter *adap, unsigned int port, unsigned int map, u64 mask0, u64 mask1, unsigned int crc, bool enable); int t4_fw_hello(struct adapter *adap, unsigned int mbox, unsigned int evt_mbox, enum dev_master master, enum dev_state *state); int t4_fw_bye(struct adapter *adap, unsigned int mbox); int t4_fw_reset(struct adapter *adap, unsigned int mbox, int reset); int t4_fw_halt(struct adapter *adap, unsigned int mbox, int force); int t4_fw_restart(struct adapter *adap, unsigned int mbox, int reset); int t4_fw_upgrade(struct adapter *adap, unsigned int mbox, const u8 *fw_data, unsigned int size, int force); int t4_fw_initialize(struct adapter *adap, unsigned int mbox); int t4_query_params(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int nparams, const u32 *params, u32 *val); int t4_set_params(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int nparams, const u32 *params, const u32 *val); int t4_cfg_pfvf(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int txq, unsigned int txq_eth_ctrl, unsigned int rxqi, unsigned int rxq, unsigned int tc, unsigned int vi, unsigned int cmask, unsigned int pmask, unsigned int exactf, unsigned int rcaps, unsigned int wxcaps); int t4_alloc_vi_func(struct adapter *adap, unsigned int mbox, unsigned int port, unsigned int pf, unsigned int vf, unsigned int nmac, u8 *mac, unsigned int *rss_size, unsigned int portfunc, unsigned int idstype); int t4_alloc_vi(struct adapter *adap, unsigned int mbox, unsigned int port, unsigned int pf, unsigned int vf, unsigned int nmac, u8 *mac, unsigned int *rss_size); int t4_free_vi(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int viid); int t4_set_rxmode(struct adapter *adap, unsigned int mbox, unsigned int viid, int mtu, int promisc, int all_multi, int bcast, int vlanex, bool sleep_ok); int t4_alloc_mac_filt(struct adapter *adap, unsigned int mbox, unsigned int viid, bool free, unsigned int naddr, const u8 **addr, u16 *idx, u64 *hash, bool sleep_ok); int t4_change_mac(struct adapter *adap, unsigned int mbox, unsigned int viid, int idx, const u8 *addr, bool persist, bool add_smt); int t4_set_addr_hash(struct adapter *adap, unsigned int mbox, unsigned int viid, bool ucast, u64 vec, bool sleep_ok); int t4_enable_vi(struct adapter *adap, unsigned int mbox, unsigned int viid, bool rx_en, bool tx_en); int t4_identify_port(struct adapter *adap, unsigned int mbox, unsigned int viid, unsigned int nblinks); +int t4_i2c_rd(struct adapter *adap, unsigned int mbox, unsigned int port_id, + u8 dev_addr, u8 offset, u8 *valp); int t4_mdio_rd(struct adapter *adap, unsigned int mbox, unsigned int phy_addr, unsigned int mmd, unsigned int reg, unsigned int *valp); int t4_mdio_wr(struct adapter *adap, unsigned int mbox, unsigned int phy_addr, unsigned int mmd, unsigned int reg, unsigned int val); int t4_iq_start_stop(struct adapter *adap, unsigned int mbox, bool start, unsigned int pf, unsigned int vf, unsigned int iqid, unsigned int fl0id, unsigned int fl1id); int t4_iq_free(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int iqtype, unsigned int iqid, unsigned int fl0id, unsigned int fl1id); int t4_eth_eq_free(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int eqid); int t4_ctrl_eq_free(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int eqid); int t4_ofld_eq_free(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int eqid); int t4_sge_ctxt_rd(struct adapter *adap, unsigned int mbox, unsigned int cid, enum ctxt_type ctype, u32 *data); int t4_sge_ctxt_rd_bd(struct adapter *adap, unsigned int cid, enum ctxt_type ctype, u32 *data); int t4_sge_ctxt_flush(struct adapter *adap, unsigned int mbox); int t4_handle_fw_rpl(struct adapter *adap, const __be64 *rpl); int t4_fwaddrspace_write(struct adapter *adap, unsigned int mbox, u32 addr, u32 val); int t4_config_scheduler(struct adapter *adapter, int mode, int level, int pktsize, int sched_class, int port, int rate, int unit, int weight, int minrate, int maxrate); #endif /* __CHELSIO_COMMON_H */ Index: head/sys/dev/cxgbe/common/t4_hw.c =================================================================== --- head/sys/dev/cxgbe/common/t4_hw.c (revision 241398) +++ head/sys/dev/cxgbe/common/t4_hw.c (revision 241399) @@ -1,5311 +1,5341 @@ /*- * Copyright (c) 2012 Chelsio Communications, 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. * 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. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR 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 AUTHOR 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. */ #include __FBSDID("$FreeBSD$"); #include "opt_inet.h" #include "common.h" #include "t4_regs.h" #include "t4_regs_values.h" #include "firmware/t4fw_interface.h" #undef msleep #define msleep(x) pause("t4hw", (x) * hz / 1000) /** * t4_wait_op_done_val - wait until an operation is completed * @adapter: the adapter performing the operation * @reg: the register to check for completion * @mask: a single-bit field within @reg that indicates completion * @polarity: the value of the field when the operation is completed * @attempts: number of check iterations * @delay: delay in usecs between iterations * @valp: where to store the value of the register at completion time * * Wait until an operation is completed by checking a bit in a register * up to @attempts times. If @valp is not NULL the value of the register * at the time it indicated completion is stored there. Returns 0 if the * operation completes and -EAGAIN otherwise. */ int t4_wait_op_done_val(struct adapter *adapter, int reg, u32 mask, int polarity, int attempts, int delay, u32 *valp) { while (1) { u32 val = t4_read_reg(adapter, reg); if (!!(val & mask) == polarity) { if (valp) *valp = val; return 0; } if (--attempts == 0) return -EAGAIN; if (delay) udelay(delay); } } /** * t4_set_reg_field - set a register field to a value * @adapter: the adapter to program * @addr: the register address * @mask: specifies the portion of the register to modify * @val: the new value for the register field * * Sets a register field specified by the supplied mask to the * given value. */ void t4_set_reg_field(struct adapter *adapter, unsigned int addr, u32 mask, u32 val) { u32 v = t4_read_reg(adapter, addr) & ~mask; t4_write_reg(adapter, addr, v | val); (void) t4_read_reg(adapter, addr); /* flush */ } /** * t4_read_indirect - read indirectly addressed registers * @adap: the adapter * @addr_reg: register holding the indirect address * @data_reg: register holding the value of the indirect register * @vals: where the read register values are stored * @nregs: how many indirect registers to read * @start_idx: index of first indirect register to read * * Reads registers that are accessed indirectly through an address/data * register pair. */ void t4_read_indirect(struct adapter *adap, unsigned int addr_reg, unsigned int data_reg, u32 *vals, unsigned int nregs, unsigned int start_idx) { while (nregs--) { t4_write_reg(adap, addr_reg, start_idx); *vals++ = t4_read_reg(adap, data_reg); start_idx++; } } /** * t4_write_indirect - write indirectly addressed registers * @adap: the adapter * @addr_reg: register holding the indirect addresses * @data_reg: register holding the value for the indirect registers * @vals: values to write * @nregs: how many indirect registers to write * @start_idx: address of first indirect register to write * * Writes a sequential block of registers that are accessed indirectly * through an address/data register pair. */ void t4_write_indirect(struct adapter *adap, unsigned int addr_reg, unsigned int data_reg, const u32 *vals, unsigned int nregs, unsigned int start_idx) { while (nregs--) { t4_write_reg(adap, addr_reg, start_idx++); t4_write_reg(adap, data_reg, *vals++); } } /* * Read a 32-bit PCI Configuration Space register via the PCI-E backdoor * mechanism. This guarantees that we get the real value even if we're * operating within a Virtual Machine and the Hypervisor is trapping our * Configuration Space accesses. */ u32 t4_hw_pci_read_cfg4(adapter_t *adap, int reg) { t4_write_reg(adap, A_PCIE_CFG_SPACE_REQ, F_ENABLE | F_LOCALCFG | V_FUNCTION(adap->pf) | V_REGISTER(reg)); return t4_read_reg(adap, A_PCIE_CFG_SPACE_DATA); } /* * Get the reply to a mailbox command and store it in @rpl in big-endian order. */ static void get_mbox_rpl(struct adapter *adap, __be64 *rpl, int nflit, u32 mbox_addr) { for ( ; nflit; nflit--, mbox_addr += 8) *rpl++ = cpu_to_be64(t4_read_reg64(adap, mbox_addr)); } /* * Handle a FW assertion reported in a mailbox. */ static void fw_asrt(struct adapter *adap, u32 mbox_addr) { struct fw_debug_cmd asrt; get_mbox_rpl(adap, (__be64 *)&asrt, sizeof(asrt) / 8, mbox_addr); CH_ALERT(adap, "FW assertion at %.16s:%u, val0 %#x, val1 %#x\n", asrt.u.assert.filename_0_7, ntohl(asrt.u.assert.line), ntohl(asrt.u.assert.x), ntohl(asrt.u.assert.y)); } #define X_CIM_PF_NOACCESS 0xeeeeeeee /** * t4_wr_mbox_meat - send a command to FW through the given mailbox * @adap: the adapter * @mbox: index of the mailbox to use * @cmd: the command to write * @size: command length in bytes * @rpl: where to optionally store the reply * @sleep_ok: if true we may sleep while awaiting command completion * * Sends the given command to FW through the selected mailbox and waits * for the FW to execute the command. If @rpl is not %NULL it is used to * store the FW's reply to the command. The command and its optional * reply are of the same length. Some FW commands like RESET and * INITIALIZE can take a considerable amount of time to execute. * @sleep_ok determines whether we may sleep while awaiting the response. * If sleeping is allowed we use progressive backoff otherwise we spin. * * The return value is 0 on success or a negative errno on failure. A * failure can happen either because we are not able to execute the * command or FW executes it but signals an error. In the latter case * the return value is the error code indicated by FW (negated). */ int t4_wr_mbox_meat(struct adapter *adap, int mbox, const void *cmd, int size, void *rpl, bool sleep_ok) { /* * We delay in small increments at first in an effort to maintain * responsiveness for simple, fast executing commands but then back * off to larger delays to a maximum retry delay. */ static const int delay[] = { 1, 1, 3, 5, 10, 10, 20, 50, 100 }; u32 v; u64 res; int i, ms, delay_idx; const __be64 *p = cmd; u32 data_reg = PF_REG(mbox, A_CIM_PF_MAILBOX_DATA); u32 ctl_reg = PF_REG(mbox, A_CIM_PF_MAILBOX_CTRL); if ((size & 15) || size > MBOX_LEN) return -EINVAL; v = G_MBOWNER(t4_read_reg(adap, ctl_reg)); for (i = 0; v == X_MBOWNER_NONE && i < 3; i++) v = G_MBOWNER(t4_read_reg(adap, ctl_reg)); if (v != X_MBOWNER_PL) return v ? -EBUSY : -ETIMEDOUT; for (i = 0; i < size; i += 8, p++) t4_write_reg64(adap, data_reg + i, be64_to_cpu(*p)); t4_write_reg(adap, ctl_reg, F_MBMSGVALID | V_MBOWNER(X_MBOWNER_FW)); t4_read_reg(adap, ctl_reg); /* flush write */ delay_idx = 0; ms = delay[0]; for (i = 0; i < FW_CMD_MAX_TIMEOUT; i += ms) { if (sleep_ok) { ms = delay[delay_idx]; /* last element may repeat */ if (delay_idx < ARRAY_SIZE(delay) - 1) delay_idx++; msleep(ms); } else mdelay(ms); v = t4_read_reg(adap, ctl_reg); if (v == X_CIM_PF_NOACCESS) continue; if (G_MBOWNER(v) == X_MBOWNER_PL) { if (!(v & F_MBMSGVALID)) { t4_write_reg(adap, ctl_reg, V_MBOWNER(X_MBOWNER_NONE)); continue; } res = t4_read_reg64(adap, data_reg); if (G_FW_CMD_OP(res >> 32) == FW_DEBUG_CMD) { fw_asrt(adap, data_reg); res = V_FW_CMD_RETVAL(EIO); } else if (rpl) get_mbox_rpl(adap, rpl, size / 8, data_reg); t4_write_reg(adap, ctl_reg, V_MBOWNER(X_MBOWNER_NONE)); return -G_FW_CMD_RETVAL((int)res); } } CH_ERR(adap, "command %#x in mailbox %d timed out\n", *(const u8 *)cmd, mbox); return -ETIMEDOUT; } /** * t4_mc_read - read from MC through backdoor accesses * @adap: the adapter * @addr: address of first byte requested * @data: 64 bytes of data containing the requested address * @ecc: where to store the corresponding 64-bit ECC word * * Read 64 bytes of data from MC starting at a 64-byte-aligned address * that covers the requested address @addr. If @parity is not %NULL it * is assigned the 64-bit ECC word for the read data. */ int t4_mc_read(struct adapter *adap, u32 addr, __be32 *data, u64 *ecc) { int i; if (t4_read_reg(adap, A_MC_BIST_CMD) & F_START_BIST) return -EBUSY; t4_write_reg(adap, A_MC_BIST_CMD_ADDR, addr & ~0x3fU); t4_write_reg(adap, A_MC_BIST_CMD_LEN, 64); t4_write_reg(adap, A_MC_BIST_DATA_PATTERN, 0xc); t4_write_reg(adap, A_MC_BIST_CMD, V_BIST_OPCODE(1) | F_START_BIST | V_BIST_CMD_GAP(1)); i = t4_wait_op_done(adap, A_MC_BIST_CMD, F_START_BIST, 0, 10, 1); if (i) return i; #define MC_DATA(i) MC_BIST_STATUS_REG(A_MC_BIST_STATUS_RDATA, i) for (i = 15; i >= 0; i--) *data++ = ntohl(t4_read_reg(adap, MC_DATA(i))); if (ecc) *ecc = t4_read_reg64(adap, MC_DATA(16)); #undef MC_DATA return 0; } /** * t4_edc_read - read from EDC through backdoor accesses * @adap: the adapter * @idx: which EDC to access * @addr: address of first byte requested * @data: 64 bytes of data containing the requested address * @ecc: where to store the corresponding 64-bit ECC word * * Read 64 bytes of data from EDC starting at a 64-byte-aligned address * that covers the requested address @addr. If @parity is not %NULL it * is assigned the 64-bit ECC word for the read data. */ int t4_edc_read(struct adapter *adap, int idx, u32 addr, __be32 *data, u64 *ecc) { int i; idx *= EDC_STRIDE; if (t4_read_reg(adap, A_EDC_BIST_CMD + idx) & F_START_BIST) return -EBUSY; t4_write_reg(adap, A_EDC_BIST_CMD_ADDR + idx, addr & ~0x3fU); t4_write_reg(adap, A_EDC_BIST_CMD_LEN + idx, 64); t4_write_reg(adap, A_EDC_BIST_DATA_PATTERN + idx, 0xc); t4_write_reg(adap, A_EDC_BIST_CMD + idx, V_BIST_OPCODE(1) | V_BIST_CMD_GAP(1) | F_START_BIST); i = t4_wait_op_done(adap, A_EDC_BIST_CMD + idx, F_START_BIST, 0, 10, 1); if (i) return i; #define EDC_DATA(i) (EDC_BIST_STATUS_REG(A_EDC_BIST_STATUS_RDATA, i) + idx) for (i = 15; i >= 0; i--) *data++ = ntohl(t4_read_reg(adap, EDC_DATA(i))); if (ecc) *ecc = t4_read_reg64(adap, EDC_DATA(16)); #undef EDC_DATA return 0; } /** * t4_mem_read - read EDC 0, EDC 1 or MC into buffer * @adap: the adapter * @mtype: memory type: MEM_EDC0, MEM_EDC1 or MEM_MC * @addr: address within indicated memory type * @len: amount of memory to read * @buf: host memory buffer * * Reads an [almost] arbitrary memory region in the firmware: the * firmware memory address, length and host buffer must be aligned on * 32-bit boudaries. The memory is returned as a raw byte sequence from * the firmware's memory. If this memory contains data structures which * contain multi-byte integers, it's the callers responsibility to * perform appropriate byte order conversions. */ int t4_mem_read(struct adapter *adap, int mtype, u32 addr, u32 len, __be32 *buf) { u32 pos, start, end, offset; int ret; /* * Argument sanity checks ... */ if ((addr & 0x3) || (len & 0x3)) return -EINVAL; /* * The underlaying EDC/MC read routines read 64 bytes at a time so we * need to round down the start and round up the end. We'll start * copying out of the first line at (addr - start) a word at a time. */ start = addr & ~(64-1); end = (addr + len + 64-1) & ~(64-1); offset = (addr - start)/sizeof(__be32); for (pos = start; pos < end; pos += 64, offset = 0) { __be32 data[16]; /* * Read the chip's memory block and bail if there's an error. */ if (mtype == MEM_MC) ret = t4_mc_read(adap, pos, data, NULL); else ret = t4_edc_read(adap, mtype, pos, data, NULL); if (ret) return ret; /* * Copy the data into the caller's memory buffer. */ while (offset < 16 && len > 0) { *buf++ = data[offset++]; len -= sizeof(__be32); } } return 0; } /* * Partial EEPROM Vital Product Data structure. Includes only the ID and * VPD-R header. */ struct t4_vpd_hdr { u8 id_tag; u8 id_len[2]; u8 id_data[ID_LEN]; u8 vpdr_tag; u8 vpdr_len[2]; }; /* * EEPROM reads take a few tens of us while writes can take a bit over 5 ms. */ #define EEPROM_MAX_RD_POLL 40 #define EEPROM_MAX_WR_POLL 6 #define EEPROM_STAT_ADDR 0x7bfc #define VPD_BASE 0x400 #define VPD_BASE_OLD 0 #define VPD_LEN 512 #define VPD_INFO_FLD_HDR_SIZE 3 /** * t4_seeprom_read - read a serial EEPROM location * @adapter: adapter to read * @addr: EEPROM virtual address * @data: where to store the read data * * Read a 32-bit word from a location in serial EEPROM using the card's PCI * VPD capability. Note that this function must be called with a virtual * address. */ int t4_seeprom_read(struct adapter *adapter, u32 addr, u32 *data) { u16 val; int attempts = EEPROM_MAX_RD_POLL; unsigned int base = adapter->params.pci.vpd_cap_addr; if (addr >= EEPROMVSIZE || (addr & 3)) return -EINVAL; t4_os_pci_write_cfg2(adapter, base + PCI_VPD_ADDR, (u16)addr); do { udelay(10); t4_os_pci_read_cfg2(adapter, base + PCI_VPD_ADDR, &val); } while (!(val & PCI_VPD_ADDR_F) && --attempts); if (!(val & PCI_VPD_ADDR_F)) { CH_ERR(adapter, "reading EEPROM address 0x%x failed\n", addr); return -EIO; } t4_os_pci_read_cfg4(adapter, base + PCI_VPD_DATA, data); *data = le32_to_cpu(*data); return 0; } /** * t4_seeprom_write - write a serial EEPROM location * @adapter: adapter to write * @addr: virtual EEPROM address * @data: value to write * * Write a 32-bit word to a location in serial EEPROM using the card's PCI * VPD capability. Note that this function must be called with a virtual * address. */ int t4_seeprom_write(struct adapter *adapter, u32 addr, u32 data) { u16 val; int attempts = EEPROM_MAX_WR_POLL; unsigned int base = adapter->params.pci.vpd_cap_addr; if (addr >= EEPROMVSIZE || (addr & 3)) return -EINVAL; t4_os_pci_write_cfg4(adapter, base + PCI_VPD_DATA, cpu_to_le32(data)); t4_os_pci_write_cfg2(adapter, base + PCI_VPD_ADDR, (u16)addr | PCI_VPD_ADDR_F); do { msleep(1); t4_os_pci_read_cfg2(adapter, base + PCI_VPD_ADDR, &val); } while ((val & PCI_VPD_ADDR_F) && --attempts); if (val & PCI_VPD_ADDR_F) { CH_ERR(adapter, "write to EEPROM address 0x%x failed\n", addr); return -EIO; } return 0; } /** * t4_eeprom_ptov - translate a physical EEPROM address to virtual * @phys_addr: the physical EEPROM address * @fn: the PCI function number * @sz: size of function-specific area * * Translate a physical EEPROM address to virtual. The first 1K is * accessed through virtual addresses starting at 31K, the rest is * accessed through virtual addresses starting at 0. * * The mapping is as follows: * [0..1K) -> [31K..32K) * [1K..1K+A) -> [ES-A..ES) * [1K+A..ES) -> [0..ES-A-1K) * * where A = @fn * @sz, and ES = EEPROM size. */ int t4_eeprom_ptov(unsigned int phys_addr, unsigned int fn, unsigned int sz) { fn *= sz; if (phys_addr < 1024) return phys_addr + (31 << 10); if (phys_addr < 1024 + fn) return EEPROMSIZE - fn + phys_addr - 1024; if (phys_addr < EEPROMSIZE) return phys_addr - 1024 - fn; return -EINVAL; } /** * t4_seeprom_wp - enable/disable EEPROM write protection * @adapter: the adapter * @enable: whether to enable or disable write protection * * Enables or disables write protection on the serial EEPROM. */ int t4_seeprom_wp(struct adapter *adapter, int enable) { return t4_seeprom_write(adapter, EEPROM_STAT_ADDR, enable ? 0xc : 0); } /** * get_vpd_keyword_val - Locates an information field keyword in the VPD * @v: Pointer to buffered vpd data structure * @kw: The keyword to search for * * Returns the value of the information field keyword or * -ENOENT otherwise. */ static int get_vpd_keyword_val(const struct t4_vpd_hdr *v, const char *kw) { int i; unsigned int offset , len; const u8 *buf = &v->id_tag; const u8 *vpdr_len = &v->vpdr_tag; offset = sizeof(struct t4_vpd_hdr); len = (u16)vpdr_len[1] + ((u16)vpdr_len[2] << 8); if (len + sizeof(struct t4_vpd_hdr) > VPD_LEN) { return -ENOENT; } for (i = offset; i + VPD_INFO_FLD_HDR_SIZE <= offset + len;) { if(memcmp(buf + i , kw , 2) == 0){ i += VPD_INFO_FLD_HDR_SIZE; return i; } i += VPD_INFO_FLD_HDR_SIZE + buf[i+2]; } return -ENOENT; } /** * get_vpd_params - read VPD parameters from VPD EEPROM * @adapter: adapter to read * @p: where to store the parameters * * Reads card parameters stored in VPD EEPROM. */ static int get_vpd_params(struct adapter *adapter, struct vpd_params *p) { int i, ret, addr; int ec, sn, pn, na; u8 vpd[VPD_LEN], csum; const struct t4_vpd_hdr *v; /* * Card information normally starts at VPD_BASE but early cards had * it at 0. */ ret = t4_seeprom_read(adapter, VPD_BASE, (u32 *)(vpd)); addr = *vpd == 0x82 ? VPD_BASE : VPD_BASE_OLD; for (i = 0; i < sizeof(vpd); i += 4) { ret = t4_seeprom_read(adapter, addr + i, (u32 *)(vpd + i)); if (ret) return ret; } v = (const struct t4_vpd_hdr *)vpd; #define FIND_VPD_KW(var,name) do { \ var = get_vpd_keyword_val(v , name); \ if (var < 0) { \ CH_ERR(adapter, "missing VPD keyword " name "\n"); \ return -EINVAL; \ } \ } while (0) FIND_VPD_KW(i, "RV"); for (csum = 0; i >= 0; i--) csum += vpd[i]; if (csum) { CH_ERR(adapter, "corrupted VPD EEPROM, actual csum %u\n", csum); return -EINVAL; } FIND_VPD_KW(ec, "EC"); FIND_VPD_KW(sn, "SN"); FIND_VPD_KW(pn, "PN"); FIND_VPD_KW(na, "NA"); #undef FIND_VPD_KW memcpy(p->id, v->id_data, ID_LEN); strstrip(p->id); memcpy(p->ec, vpd + ec, EC_LEN); strstrip(p->ec); i = vpd[sn - VPD_INFO_FLD_HDR_SIZE + 2]; memcpy(p->sn, vpd + sn, min(i, SERNUM_LEN)); strstrip(p->sn); memcpy(p->pn, vpd + pn, min(i, PN_LEN)); strstrip((char *)p->pn); memcpy(p->na, vpd + na, min(i, MACADDR_LEN)); strstrip((char *)p->na); return 0; } /* serial flash and firmware constants and flash config file constants */ enum { SF_ATTEMPTS = 10, /* max retries for SF operations */ /* flash command opcodes */ SF_PROG_PAGE = 2, /* program page */ SF_WR_DISABLE = 4, /* disable writes */ SF_RD_STATUS = 5, /* read status register */ SF_WR_ENABLE = 6, /* enable writes */ SF_RD_DATA_FAST = 0xb, /* read flash */ SF_RD_ID = 0x9f, /* read ID */ SF_ERASE_SECTOR = 0xd8, /* erase sector */ }; /** * sf1_read - read data from the serial flash * @adapter: the adapter * @byte_cnt: number of bytes to read * @cont: whether another operation will be chained * @lock: whether to lock SF for PL access only * @valp: where to store the read data * * Reads up to 4 bytes of data from the serial flash. The location of * the read needs to be specified prior to calling this by issuing the * appropriate commands to the serial flash. */ static int sf1_read(struct adapter *adapter, unsigned int byte_cnt, int cont, int lock, u32 *valp) { int ret; if (!byte_cnt || byte_cnt > 4) return -EINVAL; if (t4_read_reg(adapter, A_SF_OP) & F_BUSY) return -EBUSY; t4_write_reg(adapter, A_SF_OP, V_SF_LOCK(lock) | V_CONT(cont) | V_BYTECNT(byte_cnt - 1)); ret = t4_wait_op_done(adapter, A_SF_OP, F_BUSY, 0, SF_ATTEMPTS, 5); if (!ret) *valp = t4_read_reg(adapter, A_SF_DATA); return ret; } /** * sf1_write - write data to the serial flash * @adapter: the adapter * @byte_cnt: number of bytes to write * @cont: whether another operation will be chained * @lock: whether to lock SF for PL access only * @val: value to write * * Writes up to 4 bytes of data to the serial flash. The location of * the write needs to be specified prior to calling this by issuing the * appropriate commands to the serial flash. */ static int sf1_write(struct adapter *adapter, unsigned int byte_cnt, int cont, int lock, u32 val) { if (!byte_cnt || byte_cnt > 4) return -EINVAL; if (t4_read_reg(adapter, A_SF_OP) & F_BUSY) return -EBUSY; t4_write_reg(adapter, A_SF_DATA, val); t4_write_reg(adapter, A_SF_OP, V_SF_LOCK(lock) | V_CONT(cont) | V_BYTECNT(byte_cnt - 1) | V_OP(1)); return t4_wait_op_done(adapter, A_SF_OP, F_BUSY, 0, SF_ATTEMPTS, 5); } /** * flash_wait_op - wait for a flash operation to complete * @adapter: the adapter * @attempts: max number of polls of the status register * @delay: delay between polls in ms * * Wait for a flash operation to complete by polling the status register. */ static int flash_wait_op(struct adapter *adapter, int attempts, int delay) { int ret; u32 status; while (1) { if ((ret = sf1_write(adapter, 1, 1, 1, SF_RD_STATUS)) != 0 || (ret = sf1_read(adapter, 1, 0, 1, &status)) != 0) return ret; if (!(status & 1)) return 0; if (--attempts == 0) return -EAGAIN; if (delay) msleep(delay); } } /** * t4_read_flash - read words from serial flash * @adapter: the adapter * @addr: the start address for the read * @nwords: how many 32-bit words to read * @data: where to store the read data * @byte_oriented: whether to store data as bytes or as words * * Read the specified number of 32-bit words from the serial flash. * If @byte_oriented is set the read data is stored as a byte array * (i.e., big-endian), otherwise as 32-bit words in the platform's * natural endianess. */ int t4_read_flash(struct adapter *adapter, unsigned int addr, unsigned int nwords, u32 *data, int byte_oriented) { int ret; if (addr + nwords * sizeof(u32) > adapter->params.sf_size || (addr & 3)) return -EINVAL; addr = swab32(addr) | SF_RD_DATA_FAST; if ((ret = sf1_write(adapter, 4, 1, 0, addr)) != 0 || (ret = sf1_read(adapter, 1, 1, 0, data)) != 0) return ret; for ( ; nwords; nwords--, data++) { ret = sf1_read(adapter, 4, nwords > 1, nwords == 1, data); if (nwords == 1) t4_write_reg(adapter, A_SF_OP, 0); /* unlock SF */ if (ret) return ret; if (byte_oriented) *data = htonl(*data); } return 0; } /** * t4_write_flash - write up to a page of data to the serial flash * @adapter: the adapter * @addr: the start address to write * @n: length of data to write in bytes * @data: the data to write * @byte_oriented: whether to store data as bytes or as words * * Writes up to a page of data (256 bytes) to the serial flash starting * at the given address. All the data must be written to the same page. * If @byte_oriented is set the write data is stored as byte stream * (i.e. matches what on disk), otherwise in big-endian. */ static int t4_write_flash(struct adapter *adapter, unsigned int addr, unsigned int n, const u8 *data, int byte_oriented) { int ret; u32 buf[SF_PAGE_SIZE / 4]; unsigned int i, c, left, val, offset = addr & 0xff; if (addr >= adapter->params.sf_size || offset + n > SF_PAGE_SIZE) return -EINVAL; val = swab32(addr) | SF_PROG_PAGE; if ((ret = sf1_write(adapter, 1, 0, 1, SF_WR_ENABLE)) != 0 || (ret = sf1_write(adapter, 4, 1, 1, val)) != 0) goto unlock; for (left = n; left; left -= c) { c = min(left, 4U); for (val = 0, i = 0; i < c; ++i) val = (val << 8) + *data++; if (!byte_oriented) val = htonl(val); ret = sf1_write(adapter, c, c != left, 1, val); if (ret) goto unlock; } ret = flash_wait_op(adapter, 8, 1); if (ret) goto unlock; t4_write_reg(adapter, A_SF_OP, 0); /* unlock SF */ /* Read the page to verify the write succeeded */ ret = t4_read_flash(adapter, addr & ~0xff, ARRAY_SIZE(buf), buf, byte_oriented); if (ret) return ret; if (memcmp(data - n, (u8 *)buf + offset, n)) { CH_ERR(adapter, "failed to correctly write the flash page " "at %#x\n", addr); return -EIO; } return 0; unlock: t4_write_reg(adapter, A_SF_OP, 0); /* unlock SF */ return ret; } /** * t4_get_fw_version - read the firmware version * @adapter: the adapter * @vers: where to place the version * * Reads the FW version from flash. */ int t4_get_fw_version(struct adapter *adapter, u32 *vers) { return t4_read_flash(adapter, FLASH_FW_START + offsetof(struct fw_hdr, fw_ver), 1, vers, 0); } /** * t4_get_tp_version - read the TP microcode version * @adapter: the adapter * @vers: where to place the version * * Reads the TP microcode version from flash. */ int t4_get_tp_version(struct adapter *adapter, u32 *vers) { return t4_read_flash(adapter, FLASH_FW_START + offsetof(struct fw_hdr, tp_microcode_ver), 1, vers, 0); } /** * t4_check_fw_version - check if the FW is compatible with this driver * @adapter: the adapter * * Checks if an adapter's FW is compatible with the driver. Returns 0 * if there's exact match, a negative error if the version could not be * read or there's a major version mismatch, and a positive value if the * expected major version is found but there's a minor version mismatch. */ int t4_check_fw_version(struct adapter *adapter) { int ret, major, minor, micro; ret = t4_get_fw_version(adapter, &adapter->params.fw_vers); if (!ret) ret = t4_get_tp_version(adapter, &adapter->params.tp_vers); if (ret) return ret; major = G_FW_HDR_FW_VER_MAJOR(adapter->params.fw_vers); minor = G_FW_HDR_FW_VER_MINOR(adapter->params.fw_vers); micro = G_FW_HDR_FW_VER_MICRO(adapter->params.fw_vers); if (major != FW_VERSION_MAJOR) { /* major mismatch - fail */ CH_ERR(adapter, "card FW has major version %u, driver wants " "%u\n", major, FW_VERSION_MAJOR); return -EINVAL; } if (minor == FW_VERSION_MINOR && micro == FW_VERSION_MICRO) return 0; /* perfect match */ /* Minor/micro version mismatch. Report it but often it's OK. */ return 1; } /** * t4_flash_erase_sectors - erase a range of flash sectors * @adapter: the adapter * @start: the first sector to erase * @end: the last sector to erase * * Erases the sectors in the given inclusive range. */ static int t4_flash_erase_sectors(struct adapter *adapter, int start, int end) { int ret = 0; while (start <= end) { if ((ret = sf1_write(adapter, 1, 0, 1, SF_WR_ENABLE)) != 0 || (ret = sf1_write(adapter, 4, 0, 1, SF_ERASE_SECTOR | (start << 8))) != 0 || (ret = flash_wait_op(adapter, 14, 500)) != 0) { CH_ERR(adapter, "erase of flash sector %d failed, " "error %d\n", start, ret); break; } start++; } t4_write_reg(adapter, A_SF_OP, 0); /* unlock SF */ return ret; } /** * t4_flash_cfg_addr - return the address of the flash configuration file * @adapter: the adapter * * Return the address within the flash where the Firmware Configuration * File is stored. */ unsigned int t4_flash_cfg_addr(struct adapter *adapter) { if (adapter->params.sf_size == 0x100000) return FLASH_FPGA_CFG_START; else return FLASH_CFG_START; } /** * t4_load_cfg - download config file * @adap: the adapter * @cfg_data: the cfg text file to write * @size: text file size * * Write the supplied config text file to the card's serial flash. */ int t4_load_cfg(struct adapter *adap, const u8 *cfg_data, unsigned int size) { int ret, i, n; unsigned int addr; unsigned int flash_cfg_start_sec; unsigned int sf_sec_size = adap->params.sf_size / adap->params.sf_nsec; addr = t4_flash_cfg_addr(adap); flash_cfg_start_sec = addr / SF_SEC_SIZE; if (size > FLASH_CFG_MAX_SIZE) { CH_ERR(adap, "cfg file too large, max is %u bytes\n", FLASH_CFG_MAX_SIZE); return -EFBIG; } i = DIV_ROUND_UP(FLASH_CFG_MAX_SIZE, /* # of sectors spanned */ sf_sec_size); ret = t4_flash_erase_sectors(adap, flash_cfg_start_sec, flash_cfg_start_sec + i - 1); /* * If size == 0 then we're simply erasing the FLASH sectors associated * with the on-adapter Firmware Configuration File. */ if (ret || size == 0) goto out; /* this will write to the flash up to SF_PAGE_SIZE at a time */ for (i = 0; i< size; i+= SF_PAGE_SIZE) { if ( (size - i) < SF_PAGE_SIZE) n = size - i; else n = SF_PAGE_SIZE; ret = t4_write_flash(adap, addr, n, cfg_data, 1); if (ret) goto out; addr += SF_PAGE_SIZE; cfg_data += SF_PAGE_SIZE; } out: if (ret) CH_ERR(adap, "config file %s failed %d\n", (size == 0 ? "clear" : "download"), ret); return ret; } /** * t4_load_fw - download firmware * @adap: the adapter * @fw_data: the firmware image to write * @size: image size * * Write the supplied firmware image to the card's serial flash. */ int t4_load_fw(struct adapter *adap, const u8 *fw_data, unsigned int size) { u32 csum; int ret, addr; unsigned int i; u8 first_page[SF_PAGE_SIZE]; const u32 *p = (const u32 *)fw_data; const struct fw_hdr *hdr = (const struct fw_hdr *)fw_data; unsigned int sf_sec_size = adap->params.sf_size / adap->params.sf_nsec; if (!size) { CH_ERR(adap, "FW image has no data\n"); return -EINVAL; } if (size & 511) { CH_ERR(adap, "FW image size not multiple of 512 bytes\n"); return -EINVAL; } if (ntohs(hdr->len512) * 512 != size) { CH_ERR(adap, "FW image size differs from size in FW header\n"); return -EINVAL; } if (size > FLASH_FW_MAX_SIZE) { CH_ERR(adap, "FW image too large, max is %u bytes\n", FLASH_FW_MAX_SIZE); return -EFBIG; } for (csum = 0, i = 0; i < size / sizeof(csum); i++) csum += ntohl(p[i]); if (csum != 0xffffffff) { CH_ERR(adap, "corrupted firmware image, checksum %#x\n", csum); return -EINVAL; } i = DIV_ROUND_UP(size, sf_sec_size); /* # of sectors spanned */ ret = t4_flash_erase_sectors(adap, FLASH_FW_START_SEC, FLASH_FW_START_SEC + i - 1); if (ret) goto out; /* * We write the correct version at the end so the driver can see a bad * version if the FW write fails. Start by writing a copy of the * first page with a bad version. */ memcpy(first_page, fw_data, SF_PAGE_SIZE); ((struct fw_hdr *)first_page)->fw_ver = htonl(0xffffffff); ret = t4_write_flash(adap, FLASH_FW_START, SF_PAGE_SIZE, first_page, 1); if (ret) goto out; addr = FLASH_FW_START; for (size -= SF_PAGE_SIZE; size; size -= SF_PAGE_SIZE) { addr += SF_PAGE_SIZE; fw_data += SF_PAGE_SIZE; ret = t4_write_flash(adap, addr, SF_PAGE_SIZE, fw_data, 1); if (ret) goto out; } ret = t4_write_flash(adap, FLASH_FW_START + offsetof(struct fw_hdr, fw_ver), sizeof(hdr->fw_ver), (const u8 *)&hdr->fw_ver, 1); out: if (ret) CH_ERR(adap, "firmware download failed, error %d\n", ret); return ret; } /* BIOS boot headers */ typedef struct pci_expansion_rom_header { u8 signature[2]; /* ROM Signature. Should be 0xaa55 */ u8 reserved[22]; /* Reserved per processor Architecture data */ u8 pcir_offset[2]; /* Offset to PCI Data Structure */ } pci_exp_rom_header_t; /* PCI_EXPANSION_ROM_HEADER */ /* Legacy PCI Expansion ROM Header */ typedef struct legacy_pci_expansion_rom_header { u8 signature[2]; /* ROM Signature. Should be 0xaa55 */ u8 size512; /* Current Image Size in units of 512 bytes */ u8 initentry_point[4]; u8 cksum; /* Checksum computed on the entire Image */ u8 reserved[16]; /* Reserved */ u8 pcir_offset[2]; /* Offset to PCI Data Struture */ } legacy_pci_exp_rom_header_t; /* LEGACY_PCI_EXPANSION_ROM_HEADER */ /* EFI PCI Expansion ROM Header */ typedef struct efi_pci_expansion_rom_header { u8 signature[2]; // ROM signature. The value 0xaa55 u8 initialization_size[2]; /* Units 512. Includes this header */ u8 efi_signature[4]; /* Signature from EFI image header. 0x0EF1 */ u8 efi_subsystem[2]; /* Subsystem value for EFI image header */ u8 efi_machine_type[2]; /* Machine type from EFI image header */ u8 compression_type[2]; /* Compression type. */ /* * Compression type definition * 0x0: uncompressed * 0x1: Compressed * 0x2-0xFFFF: Reserved */ u8 reserved[8]; /* Reserved */ u8 efi_image_header_offset[2]; /* Offset to EFI Image */ u8 pcir_offset[2]; /* Offset to PCI Data Structure */ } efi_pci_exp_rom_header_t; /* EFI PCI Expansion ROM Header */ /* PCI Data Structure Format */ typedef struct pcir_data_structure { /* PCI Data Structure */ u8 signature[4]; /* Signature. The string "PCIR" */ u8 vendor_id[2]; /* Vendor Identification */ u8 device_id[2]; /* Device Identification */ u8 vital_product[2]; /* Pointer to Vital Product Data */ u8 length[2]; /* PCIR Data Structure Length */ u8 revision; /* PCIR Data Structure Revision */ u8 class_code[3]; /* Class Code */ u8 image_length[2]; /* Image Length. Multiple of 512B */ u8 code_revision[2]; /* Revision Level of Code/Data */ u8 code_type; /* Code Type. */ /* * PCI Expansion ROM Code Types * 0x00: Intel IA-32, PC-AT compatible. Legacy * 0x01: Open Firmware standard for PCI. FCODE * 0x02: Hewlett-Packard PA RISC. HP reserved * 0x03: EFI Image. EFI * 0x04-0xFF: Reserved. */ u8 indicator; /* Indicator. Identifies the last image in the ROM */ u8 reserved[2]; /* Reserved */ } pcir_data_t; /* PCI__DATA_STRUCTURE */ /* BOOT constants */ enum { BOOT_FLASH_BOOT_ADDR = 0x0,/* start address of boot image in flash */ BOOT_SIGNATURE = 0xaa55, /* signature of BIOS boot ROM */ BOOT_SIZE_INC = 512, /* image size measured in 512B chunks */ BOOT_MIN_SIZE = sizeof(pci_exp_rom_header_t), /* basic header */ BOOT_MAX_SIZE = 1024*BOOT_SIZE_INC, /* 1 byte * length increment */ VENDOR_ID = 0x1425, /* Vendor ID */ PCIR_SIGNATURE = 0x52494350 /* PCIR signature */ }; /* * modify_device_id - Modifies the device ID of the Boot BIOS image * @adatper: the device ID to write. * @boot_data: the boot image to modify. * * Write the supplied device ID to the boot BIOS image. */ static void modify_device_id(int device_id, u8 *boot_data) { legacy_pci_exp_rom_header_t *header; pcir_data_t *pcir_header; u32 cur_header = 0; /* * Loop through all chained images and change the device ID's */ while (1) { header = (legacy_pci_exp_rom_header_t *) &boot_data[cur_header]; pcir_header = (pcir_data_t *) &boot_data[cur_header + le16_to_cpu(*(u16*)header->pcir_offset)]; /* * Only modify the Device ID if code type is Legacy or HP. * 0x00: Okay to modify * 0x01: FCODE. Do not be modify * 0x03: Okay to modify * 0x04-0xFF: Do not modify */ if (pcir_header->code_type == 0x00) { u8 csum = 0; int i; /* * Modify Device ID to match current adatper */ *(u16*) pcir_header->device_id = device_id; /* * Set checksum temporarily to 0. * We will recalculate it later. */ header->cksum = 0x0; /* * Calculate and update checksum */ for (i = 0; i < (header->size512 * 512); i++) csum += (u8)boot_data[cur_header + i]; /* * Invert summed value to create the checksum * Writing new checksum value directly to the boot data */ boot_data[cur_header + 7] = -csum; } else if (pcir_header->code_type == 0x03) { /* * Modify Device ID to match current adatper */ *(u16*) pcir_header->device_id = device_id; } /* * Check indicator element to identify if this is the last * image in the ROM. */ if (pcir_header->indicator & 0x80) break; /* * Move header pointer up to the next image in the ROM. */ cur_header += header->size512 * 512; } } /* * t4_load_boot - download boot flash * @adapter: the adapter * @boot_data: the boot image to write * @boot_addr: offset in flash to write boot_data * @size: image size * * Write the supplied boot image to the card's serial flash. * The boot image has the following sections: a 28-byte header and the * boot image. */ int t4_load_boot(struct adapter *adap, u8 *boot_data, unsigned int boot_addr, unsigned int size) { pci_exp_rom_header_t *header; int pcir_offset ; pcir_data_t *pcir_header; int ret, addr; uint16_t device_id; unsigned int i; unsigned int boot_sector = boot_addr * 1024; unsigned int sf_sec_size = adap->params.sf_size / adap->params.sf_nsec; /* * Make sure the boot image does not encroach on the firmware region */ if ((boot_sector + size) >> 16 > FLASH_FW_START_SEC) { CH_ERR(adap, "boot image encroaching on firmware region\n"); return -EFBIG; } /* * Number of sectors spanned */ i = DIV_ROUND_UP(size ? size : FLASH_BOOTCFG_MAX_SIZE, sf_sec_size); ret = t4_flash_erase_sectors(adap, boot_sector >> 16, (boot_sector >> 16) + i - 1); /* * If size == 0 then we're simply erasing the FLASH sectors associated * with the on-adapter option ROM file */ if (ret || (size == 0)) goto out; /* Get boot header */ header = (pci_exp_rom_header_t *)boot_data; pcir_offset = le16_to_cpu(*(u16 *)header->pcir_offset); /* PCIR Data Structure */ pcir_header = (pcir_data_t *) &boot_data[pcir_offset]; /* * Perform some primitive sanity testing to avoid accidentally * writing garbage over the boot sectors. We ought to check for * more but it's not worth it for now ... */ if (size < BOOT_MIN_SIZE || size > BOOT_MAX_SIZE) { CH_ERR(adap, "boot image too small/large\n"); return -EFBIG; } /* * Check BOOT ROM header signature */ if (le16_to_cpu(*(u16*)header->signature) != BOOT_SIGNATURE ) { CH_ERR(adap, "Boot image missing signature\n"); return -EINVAL; } /* * Check PCI header signature */ if (le32_to_cpu(*(u32*)pcir_header->signature) != PCIR_SIGNATURE) { CH_ERR(adap, "PCI header missing signature\n"); return -EINVAL; } /* * Check Vendor ID matches Chelsio ID */ if (le16_to_cpu(*(u16*)pcir_header->vendor_id) != VENDOR_ID) { CH_ERR(adap, "Vendor ID missing signature\n"); return -EINVAL; } /* * Retrieve adapter's device ID */ t4_os_pci_read_cfg2(adap, PCI_DEVICE_ID, &device_id); /* Want to deal with PF 0 so I strip off PF 4 indicator */ device_id = (device_id & 0xff) | 0x4000; /* * Check PCIE Device ID */ if (le16_to_cpu(*(u16*)pcir_header->device_id) != device_id) { /* * Change the device ID in the Boot BIOS image to match * the Device ID of the current adapter. */ modify_device_id(device_id, boot_data); } /* * Skip over the first SF_PAGE_SIZE worth of data and write it after * we finish copying the rest of the boot image. This will ensure * that the BIOS boot header will only be written if the boot image * was written in full. */ addr = boot_sector; for (size -= SF_PAGE_SIZE; size; size -= SF_PAGE_SIZE) { addr += SF_PAGE_SIZE; boot_data += SF_PAGE_SIZE; ret = t4_write_flash(adap, addr, SF_PAGE_SIZE, boot_data, 0); if (ret) goto out; } ret = t4_write_flash(adap, boot_sector, SF_PAGE_SIZE, boot_data, 0); out: if (ret) CH_ERR(adap, "boot image download failed, error %d\n", ret); return ret; } /** * t4_read_cimq_cfg - read CIM queue configuration * @adap: the adapter * @base: holds the queue base addresses in bytes * @size: holds the queue sizes in bytes * @thres: holds the queue full thresholds in bytes * * Returns the current configuration of the CIM queues, starting with * the IBQs, then the OBQs. */ void t4_read_cimq_cfg(struct adapter *adap, u16 *base, u16 *size, u16 *thres) { unsigned int i, v; for (i = 0; i < CIM_NUM_IBQ; i++) { t4_write_reg(adap, A_CIM_QUEUE_CONFIG_REF, F_IBQSELECT | V_QUENUMSELECT(i)); v = t4_read_reg(adap, A_CIM_QUEUE_CONFIG_CTRL); *base++ = G_CIMQBASE(v) * 256; /* value is in 256-byte units */ *size++ = G_CIMQSIZE(v) * 256; /* value is in 256-byte units */ *thres++ = G_QUEFULLTHRSH(v) * 8; /* 8-byte unit */ } for (i = 0; i < CIM_NUM_OBQ; i++) { t4_write_reg(adap, A_CIM_QUEUE_CONFIG_REF, F_OBQSELECT | V_QUENUMSELECT(i)); v = t4_read_reg(adap, A_CIM_QUEUE_CONFIG_CTRL); *base++ = G_CIMQBASE(v) * 256; /* value is in 256-byte units */ *size++ = G_CIMQSIZE(v) * 256; /* value is in 256-byte units */ } } /** * t4_read_cim_ibq - read the contents of a CIM inbound queue * @adap: the adapter * @qid: the queue index * @data: where to store the queue contents * @n: capacity of @data in 32-bit words * * Reads the contents of the selected CIM queue starting at address 0 up * to the capacity of @data. @n must be a multiple of 4. Returns < 0 on * error and the number of 32-bit words actually read on success. */ int t4_read_cim_ibq(struct adapter *adap, unsigned int qid, u32 *data, size_t n) { int i, err; unsigned int addr; const unsigned int nwords = CIM_IBQ_SIZE * 4; if (qid > 5 || (n & 3)) return -EINVAL; addr = qid * nwords; if (n > nwords) n = nwords; for (i = 0; i < n; i++, addr++) { t4_write_reg(adap, A_CIM_IBQ_DBG_CFG, V_IBQDBGADDR(addr) | F_IBQDBGEN); err = t4_wait_op_done(adap, A_CIM_IBQ_DBG_CFG, F_IBQDBGBUSY, 0, 2, 1); if (err) return err; *data++ = t4_read_reg(adap, A_CIM_IBQ_DBG_DATA); } t4_write_reg(adap, A_CIM_IBQ_DBG_CFG, 0); return i; } /** * t4_read_cim_obq - read the contents of a CIM outbound queue * @adap: the adapter * @qid: the queue index * @data: where to store the queue contents * @n: capacity of @data in 32-bit words * * Reads the contents of the selected CIM queue starting at address 0 up * to the capacity of @data. @n must be a multiple of 4. Returns < 0 on * error and the number of 32-bit words actually read on success. */ int t4_read_cim_obq(struct adapter *adap, unsigned int qid, u32 *data, size_t n) { int i, err; unsigned int addr, v, nwords; if (qid > 5 || (n & 3)) return -EINVAL; t4_write_reg(adap, A_CIM_QUEUE_CONFIG_REF, F_OBQSELECT | V_QUENUMSELECT(qid)); v = t4_read_reg(adap, A_CIM_QUEUE_CONFIG_CTRL); addr = G_CIMQBASE(v) * 64; /* muliple of 256 -> muliple of 4 */ nwords = G_CIMQSIZE(v) * 64; /* same */ if (n > nwords) n = nwords; for (i = 0; i < n; i++, addr++) { t4_write_reg(adap, A_CIM_OBQ_DBG_CFG, V_OBQDBGADDR(addr) | F_OBQDBGEN); err = t4_wait_op_done(adap, A_CIM_OBQ_DBG_CFG, F_OBQDBGBUSY, 0, 2, 1); if (err) return err; *data++ = t4_read_reg(adap, A_CIM_OBQ_DBG_DATA); } t4_write_reg(adap, A_CIM_OBQ_DBG_CFG, 0); return i; } enum { CIM_QCTL_BASE = 0, CIM_CTL_BASE = 0x2000, CIM_PBT_ADDR_BASE = 0x2800, CIM_PBT_LRF_BASE = 0x3000, CIM_PBT_DATA_BASE = 0x3800 }; /** * t4_cim_read - read a block from CIM internal address space * @adap: the adapter * @addr: the start address within the CIM address space * @n: number of words to read * @valp: where to store the result * * Reads a block of 4-byte words from the CIM intenal address space. */ int t4_cim_read(struct adapter *adap, unsigned int addr, unsigned int n, unsigned int *valp) { int ret = 0; if (t4_read_reg(adap, A_CIM_HOST_ACC_CTRL) & F_HOSTBUSY) return -EBUSY; for ( ; !ret && n--; addr += 4) { t4_write_reg(adap, A_CIM_HOST_ACC_CTRL, addr); ret = t4_wait_op_done(adap, A_CIM_HOST_ACC_CTRL, F_HOSTBUSY, 0, 5, 2); if (!ret) *valp++ = t4_read_reg(adap, A_CIM_HOST_ACC_DATA); } return ret; } /** * t4_cim_write - write a block into CIM internal address space * @adap: the adapter * @addr: the start address within the CIM address space * @n: number of words to write * @valp: set of values to write * * Writes a block of 4-byte words into the CIM intenal address space. */ int t4_cim_write(struct adapter *adap, unsigned int addr, unsigned int n, const unsigned int *valp) { int ret = 0; if (t4_read_reg(adap, A_CIM_HOST_ACC_CTRL) & F_HOSTBUSY) return -EBUSY; for ( ; !ret && n--; addr += 4) { t4_write_reg(adap, A_CIM_HOST_ACC_DATA, *valp++); t4_write_reg(adap, A_CIM_HOST_ACC_CTRL, addr | F_HOSTWRITE); ret = t4_wait_op_done(adap, A_CIM_HOST_ACC_CTRL, F_HOSTBUSY, 0, 5, 2); } return ret; } static int t4_cim_write1(struct adapter *adap, unsigned int addr, unsigned int val) { return t4_cim_write(adap, addr, 1, &val); } /** * t4_cim_ctl_read - read a block from CIM control region * @adap: the adapter * @addr: the start address within the CIM control region * @n: number of words to read * @valp: where to store the result * * Reads a block of 4-byte words from the CIM control region. */ int t4_cim_ctl_read(struct adapter *adap, unsigned int addr, unsigned int n, unsigned int *valp) { return t4_cim_read(adap, addr + CIM_CTL_BASE, n, valp); } /** * t4_cim_read_la - read CIM LA capture buffer * @adap: the adapter * @la_buf: where to store the LA data * @wrptr: the HW write pointer within the capture buffer * * Reads the contents of the CIM LA buffer with the most recent entry at * the end of the returned data and with the entry at @wrptr first. * We try to leave the LA in the running state we find it in. */ int t4_cim_read_la(struct adapter *adap, u32 *la_buf, unsigned int *wrptr) { int i, ret; unsigned int cfg, val, idx; ret = t4_cim_read(adap, A_UP_UP_DBG_LA_CFG, 1, &cfg); if (ret) return ret; if (cfg & F_UPDBGLAEN) { /* LA is running, freeze it */ ret = t4_cim_write1(adap, A_UP_UP_DBG_LA_CFG, 0); if (ret) return ret; } ret = t4_cim_read(adap, A_UP_UP_DBG_LA_CFG, 1, &val); if (ret) goto restart; idx = G_UPDBGLAWRPTR(val); if (wrptr) *wrptr = idx; for (i = 0; i < adap->params.cim_la_size; i++) { ret = t4_cim_write1(adap, A_UP_UP_DBG_LA_CFG, V_UPDBGLARDPTR(idx) | F_UPDBGLARDEN); if (ret) break; ret = t4_cim_read(adap, A_UP_UP_DBG_LA_CFG, 1, &val); if (ret) break; if (val & F_UPDBGLARDEN) { ret = -ETIMEDOUT; break; } ret = t4_cim_read(adap, A_UP_UP_DBG_LA_DATA, 1, &la_buf[i]); if (ret) break; idx = (idx + 1) & M_UPDBGLARDPTR; } restart: if (cfg & F_UPDBGLAEN) { int r = t4_cim_write1(adap, A_UP_UP_DBG_LA_CFG, cfg & ~F_UPDBGLARDEN); if (!ret) ret = r; } return ret; } void t4_cim_read_pif_la(struct adapter *adap, u32 *pif_req, u32 *pif_rsp, unsigned int *pif_req_wrptr, unsigned int *pif_rsp_wrptr) { int i, j; u32 cfg, val, req, rsp; cfg = t4_read_reg(adap, A_CIM_DEBUGCFG); if (cfg & F_LADBGEN) t4_write_reg(adap, A_CIM_DEBUGCFG, cfg ^ F_LADBGEN); val = t4_read_reg(adap, A_CIM_DEBUGSTS); req = G_POLADBGWRPTR(val); rsp = G_PILADBGWRPTR(val); if (pif_req_wrptr) *pif_req_wrptr = req; if (pif_rsp_wrptr) *pif_rsp_wrptr = rsp; for (i = 0; i < CIM_PIFLA_SIZE; i++) { for (j = 0; j < 6; j++) { t4_write_reg(adap, A_CIM_DEBUGCFG, V_POLADBGRDPTR(req) | V_PILADBGRDPTR(rsp)); *pif_req++ = t4_read_reg(adap, A_CIM_PO_LA_DEBUGDATA); *pif_rsp++ = t4_read_reg(adap, A_CIM_PI_LA_DEBUGDATA); req++; rsp++; } req = (req + 2) & M_POLADBGRDPTR; rsp = (rsp + 2) & M_PILADBGRDPTR; } t4_write_reg(adap, A_CIM_DEBUGCFG, cfg); } void t4_cim_read_ma_la(struct adapter *adap, u32 *ma_req, u32 *ma_rsp) { u32 cfg; int i, j, idx; cfg = t4_read_reg(adap, A_CIM_DEBUGCFG); if (cfg & F_LADBGEN) t4_write_reg(adap, A_CIM_DEBUGCFG, cfg ^ F_LADBGEN); for (i = 0; i < CIM_MALA_SIZE; i++) { for (j = 0; j < 5; j++) { idx = 8 * i + j; t4_write_reg(adap, A_CIM_DEBUGCFG, V_POLADBGRDPTR(idx) | V_PILADBGRDPTR(idx)); *ma_req++ = t4_read_reg(adap, A_CIM_PO_LA_MADEBUGDATA); *ma_rsp++ = t4_read_reg(adap, A_CIM_PI_LA_MADEBUGDATA); } } t4_write_reg(adap, A_CIM_DEBUGCFG, cfg); } /** * t4_tp_read_la - read TP LA capture buffer * @adap: the adapter * @la_buf: where to store the LA data * @wrptr: the HW write pointer within the capture buffer * * Reads the contents of the TP LA buffer with the most recent entry at * the end of the returned data and with the entry at @wrptr first. * We leave the LA in the running state we find it in. */ void t4_tp_read_la(struct adapter *adap, u64 *la_buf, unsigned int *wrptr) { bool last_incomplete; unsigned int i, cfg, val, idx; cfg = t4_read_reg(adap, A_TP_DBG_LA_CONFIG) & 0xffff; if (cfg & F_DBGLAENABLE) /* freeze LA */ t4_write_reg(adap, A_TP_DBG_LA_CONFIG, adap->params.tp.la_mask | (cfg ^ F_DBGLAENABLE)); val = t4_read_reg(adap, A_TP_DBG_LA_CONFIG); idx = G_DBGLAWPTR(val); last_incomplete = G_DBGLAMODE(val) >= 2 && (val & F_DBGLAWHLF) == 0; if (last_incomplete) idx = (idx + 1) & M_DBGLARPTR; if (wrptr) *wrptr = idx; val &= 0xffff; val &= ~V_DBGLARPTR(M_DBGLARPTR); val |= adap->params.tp.la_mask; for (i = 0; i < TPLA_SIZE; i++) { t4_write_reg(adap, A_TP_DBG_LA_CONFIG, V_DBGLARPTR(idx) | val); la_buf[i] = t4_read_reg64(adap, A_TP_DBG_LA_DATAL); idx = (idx + 1) & M_DBGLARPTR; } /* Wipe out last entry if it isn't valid */ if (last_incomplete) la_buf[TPLA_SIZE - 1] = ~0ULL; if (cfg & F_DBGLAENABLE) /* restore running state */ t4_write_reg(adap, A_TP_DBG_LA_CONFIG, cfg | adap->params.tp.la_mask); } void t4_ulprx_read_la(struct adapter *adap, u32 *la_buf) { unsigned int i, j; for (i = 0; i < 8; i++) { u32 *p = la_buf + i; t4_write_reg(adap, A_ULP_RX_LA_CTL, i); j = t4_read_reg(adap, A_ULP_RX_LA_WRPTR); t4_write_reg(adap, A_ULP_RX_LA_RDPTR, j); for (j = 0; j < ULPRX_LA_SIZE; j++, p += 8) *p = t4_read_reg(adap, A_ULP_RX_LA_RDDATA); } } #define ADVERT_MASK (FW_PORT_CAP_SPEED_100M | FW_PORT_CAP_SPEED_1G |\ FW_PORT_CAP_SPEED_10G | FW_PORT_CAP_ANEG) /** * t4_link_start - apply link configuration to MAC/PHY * @phy: the PHY to setup * @mac: the MAC to setup * @lc: the requested link configuration * * Set up a port's MAC and PHY according to a desired link configuration. * - If the PHY can auto-negotiate first decide what to advertise, then * enable/disable auto-negotiation as desired, and reset. * - If the PHY does not auto-negotiate just reset it. * - If auto-negotiation is off set the MAC to the proper speed/duplex/FC, * otherwise do it later based on the outcome of auto-negotiation. */ int t4_link_start(struct adapter *adap, unsigned int mbox, unsigned int port, struct link_config *lc) { struct fw_port_cmd c; unsigned int fc = 0, mdi = V_FW_PORT_CAP_MDI(FW_PORT_CAP_MDI_AUTO); lc->link_ok = 0; if (lc->requested_fc & PAUSE_RX) fc |= FW_PORT_CAP_FC_RX; if (lc->requested_fc & PAUSE_TX) fc |= FW_PORT_CAP_FC_TX; memset(&c, 0, sizeof(c)); c.op_to_portid = htonl(V_FW_CMD_OP(FW_PORT_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_EXEC | V_FW_PORT_CMD_PORTID(port)); c.action_to_len16 = htonl(V_FW_PORT_CMD_ACTION(FW_PORT_ACTION_L1_CFG) | FW_LEN16(c)); if (!(lc->supported & FW_PORT_CAP_ANEG)) { c.u.l1cfg.rcap = htonl((lc->supported & ADVERT_MASK) | fc); lc->fc = lc->requested_fc & (PAUSE_RX | PAUSE_TX); } else if (lc->autoneg == AUTONEG_DISABLE) { c.u.l1cfg.rcap = htonl(lc->requested_speed | fc | mdi); lc->fc = lc->requested_fc & (PAUSE_RX | PAUSE_TX); } else c.u.l1cfg.rcap = htonl(lc->advertising | fc | mdi); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_restart_aneg - restart autonegotiation * @adap: the adapter * @mbox: mbox to use for the FW command * @port: the port id * * Restarts autonegotiation for the selected port. */ int t4_restart_aneg(struct adapter *adap, unsigned int mbox, unsigned int port) { struct fw_port_cmd c; memset(&c, 0, sizeof(c)); c.op_to_portid = htonl(V_FW_CMD_OP(FW_PORT_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_EXEC | V_FW_PORT_CMD_PORTID(port)); c.action_to_len16 = htonl(V_FW_PORT_CMD_ACTION(FW_PORT_ACTION_L1_CFG) | FW_LEN16(c)); c.u.l1cfg.rcap = htonl(FW_PORT_CAP_ANEG); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } struct intr_info { unsigned int mask; /* bits to check in interrupt status */ const char *msg; /* message to print or NULL */ short stat_idx; /* stat counter to increment or -1 */ unsigned short fatal; /* whether the condition reported is fatal */ }; /** * t4_handle_intr_status - table driven interrupt handler * @adapter: the adapter that generated the interrupt * @reg: the interrupt status register to process * @acts: table of interrupt actions * * A table driven interrupt handler that applies a set of masks to an * interrupt status word and performs the corresponding actions if the * interrupts described by the mask have occured. The actions include * optionally emitting a warning or alert message. The table is terminated * by an entry specifying mask 0. Returns the number of fatal interrupt * conditions. */ static int t4_handle_intr_status(struct adapter *adapter, unsigned int reg, const struct intr_info *acts) { int fatal = 0; unsigned int mask = 0; unsigned int status = t4_read_reg(adapter, reg); for ( ; acts->mask; ++acts) { if (!(status & acts->mask)) continue; if (acts->fatal) { fatal++; CH_ALERT(adapter, "%s (0x%x)\n", acts->msg, status & acts->mask); } else if (acts->msg) CH_WARN_RATELIMIT(adapter, "%s (0x%x)\n", acts->msg, status & acts->mask); mask |= acts->mask; } status &= mask; if (status) /* clear processed interrupts */ t4_write_reg(adapter, reg, status); return fatal; } /* * Interrupt handler for the PCIE module. */ static void pcie_intr_handler(struct adapter *adapter) { static struct intr_info sysbus_intr_info[] = { { F_RNPP, "RXNP array parity error", -1, 1 }, { F_RPCP, "RXPC array parity error", -1, 1 }, { F_RCIP, "RXCIF array parity error", -1, 1 }, { F_RCCP, "Rx completions control array parity error", -1, 1 }, { F_RFTP, "RXFT array parity error", -1, 1 }, { 0 } }; static struct intr_info pcie_port_intr_info[] = { { F_TPCP, "TXPC array parity error", -1, 1 }, { F_TNPP, "TXNP array parity error", -1, 1 }, { F_TFTP, "TXFT array parity error", -1, 1 }, { F_TCAP, "TXCA array parity error", -1, 1 }, { F_TCIP, "TXCIF array parity error", -1, 1 }, { F_RCAP, "RXCA array parity error", -1, 1 }, { F_OTDD, "outbound request TLP discarded", -1, 1 }, { F_RDPE, "Rx data parity error", -1, 1 }, { F_TDUE, "Tx uncorrectable data error", -1, 1 }, { 0 } }; static struct intr_info pcie_intr_info[] = { { F_MSIADDRLPERR, "MSI AddrL parity error", -1, 1 }, { F_MSIADDRHPERR, "MSI AddrH parity error", -1, 1 }, { F_MSIDATAPERR, "MSI data parity error", -1, 1 }, { F_MSIXADDRLPERR, "MSI-X AddrL parity error", -1, 1 }, { F_MSIXADDRHPERR, "MSI-X AddrH parity error", -1, 1 }, { F_MSIXDATAPERR, "MSI-X data parity error", -1, 1 }, { F_MSIXDIPERR, "MSI-X DI parity error", -1, 1 }, { F_PIOCPLPERR, "PCI PIO completion FIFO parity error", -1, 1 }, { F_PIOREQPERR, "PCI PIO request FIFO parity error", -1, 1 }, { F_TARTAGPERR, "PCI PCI target tag FIFO parity error", -1, 1 }, { F_CCNTPERR, "PCI CMD channel count parity error", -1, 1 }, { F_CREQPERR, "PCI CMD channel request parity error", -1, 1 }, { F_CRSPPERR, "PCI CMD channel response parity error", -1, 1 }, { F_DCNTPERR, "PCI DMA channel count parity error", -1, 1 }, { F_DREQPERR, "PCI DMA channel request parity error", -1, 1 }, { F_DRSPPERR, "PCI DMA channel response parity error", -1, 1 }, { F_HCNTPERR, "PCI HMA channel count parity error", -1, 1 }, { F_HREQPERR, "PCI HMA channel request parity error", -1, 1 }, { F_HRSPPERR, "PCI HMA channel response parity error", -1, 1 }, { F_CFGSNPPERR, "PCI config snoop FIFO parity error", -1, 1 }, { F_FIDPERR, "PCI FID parity error", -1, 1 }, { F_INTXCLRPERR, "PCI INTx clear parity error", -1, 1 }, { F_MATAGPERR, "PCI MA tag parity error", -1, 1 }, { F_PIOTAGPERR, "PCI PIO tag parity error", -1, 1 }, { F_RXCPLPERR, "PCI Rx completion parity error", -1, 1 }, { F_RXWRPERR, "PCI Rx write parity error", -1, 1 }, { F_RPLPERR, "PCI replay buffer parity error", -1, 1 }, { F_PCIESINT, "PCI core secondary fault", -1, 1 }, { F_PCIEPINT, "PCI core primary fault", -1, 1 }, { F_UNXSPLCPLERR, "PCI unexpected split completion error", -1, 0 }, { 0 } }; int fat; fat = t4_handle_intr_status(adapter, A_PCIE_CORE_UTL_SYSTEM_BUS_AGENT_STATUS, sysbus_intr_info) + t4_handle_intr_status(adapter, A_PCIE_CORE_UTL_PCI_EXPRESS_PORT_STATUS, pcie_port_intr_info) + t4_handle_intr_status(adapter, A_PCIE_INT_CAUSE, pcie_intr_info); if (fat) t4_fatal_err(adapter); } /* * TP interrupt handler. */ static void tp_intr_handler(struct adapter *adapter) { static struct intr_info tp_intr_info[] = { { 0x3fffffff, "TP parity error", -1, 1 }, { F_FLMTXFLSTEMPTY, "TP out of Tx pages", -1, 1 }, { 0 } }; if (t4_handle_intr_status(adapter, A_TP_INT_CAUSE, tp_intr_info)) t4_fatal_err(adapter); } /* * SGE interrupt handler. */ static void sge_intr_handler(struct adapter *adapter) { u64 v; u32 err; static struct intr_info sge_intr_info[] = { { F_ERR_CPL_EXCEED_IQE_SIZE, "SGE received CPL exceeding IQE size", -1, 1 }, { F_ERR_INVALID_CIDX_INC, "SGE GTS CIDX increment too large", -1, 0 }, { F_ERR_CPL_OPCODE_0, "SGE received 0-length CPL", -1, 0 }, { F_ERR_DROPPED_DB, "SGE doorbell dropped", -1, 0 }, { F_ERR_DATA_CPL_ON_HIGH_QID1 | F_ERR_DATA_CPL_ON_HIGH_QID0, "SGE IQID > 1023 received CPL for FL", -1, 0 }, { F_ERR_BAD_DB_PIDX3, "SGE DBP 3 pidx increment too large", -1, 0 }, { F_ERR_BAD_DB_PIDX2, "SGE DBP 2 pidx increment too large", -1, 0 }, { F_ERR_BAD_DB_PIDX1, "SGE DBP 1 pidx increment too large", -1, 0 }, { F_ERR_BAD_DB_PIDX0, "SGE DBP 0 pidx increment too large", -1, 0 }, { F_ERR_ING_CTXT_PRIO, "SGE too many priority ingress contexts", -1, 0 }, { F_ERR_EGR_CTXT_PRIO, "SGE too many priority egress contexts", -1, 0 }, { F_INGRESS_SIZE_ERR, "SGE illegal ingress QID", -1, 0 }, { F_EGRESS_SIZE_ERR, "SGE illegal egress QID", -1, 0 }, { 0 } }; v = (u64)t4_read_reg(adapter, A_SGE_INT_CAUSE1) | ((u64)t4_read_reg(adapter, A_SGE_INT_CAUSE2) << 32); if (v) { CH_ALERT(adapter, "SGE parity error (%#llx)\n", (unsigned long long)v); t4_write_reg(adapter, A_SGE_INT_CAUSE1, v); t4_write_reg(adapter, A_SGE_INT_CAUSE2, v >> 32); } v |= t4_handle_intr_status(adapter, A_SGE_INT_CAUSE3, sge_intr_info); err = t4_read_reg(adapter, A_SGE_ERROR_STATS); if (err & F_ERROR_QID_VALID) { CH_ERR(adapter, "SGE error for queue %u\n", G_ERROR_QID(err)); if (err & F_UNCAPTURED_ERROR) CH_ERR(adapter, "SGE UNCAPTURED_ERROR set (clearing)\n"); t4_write_reg(adapter, A_SGE_ERROR_STATS, F_ERROR_QID_VALID | F_UNCAPTURED_ERROR); } if (v != 0) t4_fatal_err(adapter); } #define CIM_OBQ_INTR (F_OBQULP0PARERR | F_OBQULP1PARERR | F_OBQULP2PARERR |\ F_OBQULP3PARERR | F_OBQSGEPARERR | F_OBQNCSIPARERR) #define CIM_IBQ_INTR (F_IBQTP0PARERR | F_IBQTP1PARERR | F_IBQULPPARERR |\ F_IBQSGEHIPARERR | F_IBQSGELOPARERR | F_IBQNCSIPARERR) /* * CIM interrupt handler. */ static void cim_intr_handler(struct adapter *adapter) { static struct intr_info cim_intr_info[] = { { F_PREFDROPINT, "CIM control register prefetch drop", -1, 1 }, { CIM_OBQ_INTR, "CIM OBQ parity error", -1, 1 }, { CIM_IBQ_INTR, "CIM IBQ parity error", -1, 1 }, { F_MBUPPARERR, "CIM mailbox uP parity error", -1, 1 }, { F_MBHOSTPARERR, "CIM mailbox host parity error", -1, 1 }, { F_TIEQINPARERRINT, "CIM TIEQ outgoing parity error", -1, 1 }, { F_TIEQOUTPARERRINT, "CIM TIEQ incoming parity error", -1, 1 }, { 0 } }; static struct intr_info cim_upintr_info[] = { { F_RSVDSPACEINT, "CIM reserved space access", -1, 1 }, { F_ILLTRANSINT, "CIM illegal transaction", -1, 1 }, { F_ILLWRINT, "CIM illegal write", -1, 1 }, { F_ILLRDINT, "CIM illegal read", -1, 1 }, { F_ILLRDBEINT, "CIM illegal read BE", -1, 1 }, { F_ILLWRBEINT, "CIM illegal write BE", -1, 1 }, { F_SGLRDBOOTINT, "CIM single read from boot space", -1, 1 }, { F_SGLWRBOOTINT, "CIM single write to boot space", -1, 1 }, { F_BLKWRBOOTINT, "CIM block write to boot space", -1, 1 }, { F_SGLRDFLASHINT, "CIM single read from flash space", -1, 1 }, { F_SGLWRFLASHINT, "CIM single write to flash space", -1, 1 }, { F_BLKWRFLASHINT, "CIM block write to flash space", -1, 1 }, { F_SGLRDEEPROMINT, "CIM single EEPROM read", -1, 1 }, { F_SGLWREEPROMINT, "CIM single EEPROM write", -1, 1 }, { F_BLKRDEEPROMINT, "CIM block EEPROM read", -1, 1 }, { F_BLKWREEPROMINT, "CIM block EEPROM write", -1, 1 }, { F_SGLRDCTLINT , "CIM single read from CTL space", -1, 1 }, { F_SGLWRCTLINT , "CIM single write to CTL space", -1, 1 }, { F_BLKRDCTLINT , "CIM block read from CTL space", -1, 1 }, { F_BLKWRCTLINT , "CIM block write to CTL space", -1, 1 }, { F_SGLRDPLINT , "CIM single read from PL space", -1, 1 }, { F_SGLWRPLINT , "CIM single write to PL space", -1, 1 }, { F_BLKRDPLINT , "CIM block read from PL space", -1, 1 }, { F_BLKWRPLINT , "CIM block write to PL space", -1, 1 }, { F_REQOVRLOOKUPINT , "CIM request FIFO overwrite", -1, 1 }, { F_RSPOVRLOOKUPINT , "CIM response FIFO overwrite", -1, 1 }, { F_TIMEOUTINT , "CIM PIF timeout", -1, 1 }, { F_TIMEOUTMAINT , "CIM PIF MA timeout", -1, 1 }, { 0 } }; int fat; fat = t4_handle_intr_status(adapter, A_CIM_HOST_INT_CAUSE, cim_intr_info) + t4_handle_intr_status(adapter, A_CIM_HOST_UPACC_INT_CAUSE, cim_upintr_info); if (fat) t4_fatal_err(adapter); } /* * ULP RX interrupt handler. */ static void ulprx_intr_handler(struct adapter *adapter) { static struct intr_info ulprx_intr_info[] = { { F_CAUSE_CTX_1, "ULPRX channel 1 context error", -1, 1 }, { F_CAUSE_CTX_0, "ULPRX channel 0 context error", -1, 1 }, { 0x7fffff, "ULPRX parity error", -1, 1 }, { 0 } }; if (t4_handle_intr_status(adapter, A_ULP_RX_INT_CAUSE, ulprx_intr_info)) t4_fatal_err(adapter); } /* * ULP TX interrupt handler. */ static void ulptx_intr_handler(struct adapter *adapter) { static struct intr_info ulptx_intr_info[] = { { F_PBL_BOUND_ERR_CH3, "ULPTX channel 3 PBL out of bounds", -1, 0 }, { F_PBL_BOUND_ERR_CH2, "ULPTX channel 2 PBL out of bounds", -1, 0 }, { F_PBL_BOUND_ERR_CH1, "ULPTX channel 1 PBL out of bounds", -1, 0 }, { F_PBL_BOUND_ERR_CH0, "ULPTX channel 0 PBL out of bounds", -1, 0 }, { 0xfffffff, "ULPTX parity error", -1, 1 }, { 0 } }; if (t4_handle_intr_status(adapter, A_ULP_TX_INT_CAUSE, ulptx_intr_info)) t4_fatal_err(adapter); } /* * PM TX interrupt handler. */ static void pmtx_intr_handler(struct adapter *adapter) { static struct intr_info pmtx_intr_info[] = { { F_PCMD_LEN_OVFL0, "PMTX channel 0 pcmd too large", -1, 1 }, { F_PCMD_LEN_OVFL1, "PMTX channel 1 pcmd too large", -1, 1 }, { F_PCMD_LEN_OVFL2, "PMTX channel 2 pcmd too large", -1, 1 }, { F_ZERO_C_CMD_ERROR, "PMTX 0-length pcmd", -1, 1 }, { 0xffffff0, "PMTX framing error", -1, 1 }, { F_OESPI_PAR_ERROR, "PMTX oespi parity error", -1, 1 }, { F_DB_OPTIONS_PAR_ERROR, "PMTX db_options parity error", -1, 1 }, { F_ICSPI_PAR_ERROR, "PMTX icspi parity error", -1, 1 }, { F_C_PCMD_PAR_ERROR, "PMTX c_pcmd parity error", -1, 1}, { 0 } }; if (t4_handle_intr_status(adapter, A_PM_TX_INT_CAUSE, pmtx_intr_info)) t4_fatal_err(adapter); } /* * PM RX interrupt handler. */ static void pmrx_intr_handler(struct adapter *adapter) { static struct intr_info pmrx_intr_info[] = { { F_ZERO_E_CMD_ERROR, "PMRX 0-length pcmd", -1, 1 }, { 0x3ffff0, "PMRX framing error", -1, 1 }, { F_OCSPI_PAR_ERROR, "PMRX ocspi parity error", -1, 1 }, { F_DB_OPTIONS_PAR_ERROR, "PMRX db_options parity error", -1, 1 }, { F_IESPI_PAR_ERROR, "PMRX iespi parity error", -1, 1 }, { F_E_PCMD_PAR_ERROR, "PMRX e_pcmd parity error", -1, 1}, { 0 } }; if (t4_handle_intr_status(adapter, A_PM_RX_INT_CAUSE, pmrx_intr_info)) t4_fatal_err(adapter); } /* * CPL switch interrupt handler. */ static void cplsw_intr_handler(struct adapter *adapter) { static struct intr_info cplsw_intr_info[] = { { F_CIM_OP_MAP_PERR, "CPLSW CIM op_map parity error", -1, 1 }, { F_CIM_OVFL_ERROR, "CPLSW CIM overflow", -1, 1 }, { F_TP_FRAMING_ERROR, "CPLSW TP framing error", -1, 1 }, { F_SGE_FRAMING_ERROR, "CPLSW SGE framing error", -1, 1 }, { F_CIM_FRAMING_ERROR, "CPLSW CIM framing error", -1, 1 }, { F_ZERO_SWITCH_ERROR, "CPLSW no-switch error", -1, 1 }, { 0 } }; if (t4_handle_intr_status(adapter, A_CPL_INTR_CAUSE, cplsw_intr_info)) t4_fatal_err(adapter); } /* * LE interrupt handler. */ static void le_intr_handler(struct adapter *adap) { static struct intr_info le_intr_info[] = { { F_LIPMISS, "LE LIP miss", -1, 0 }, { F_LIP0, "LE 0 LIP error", -1, 0 }, { F_PARITYERR, "LE parity error", -1, 1 }, { F_UNKNOWNCMD, "LE unknown command", -1, 1 }, { F_REQQPARERR, "LE request queue parity error", -1, 1 }, { 0 } }; if (t4_handle_intr_status(adap, A_LE_DB_INT_CAUSE, le_intr_info)) t4_fatal_err(adap); } /* * MPS interrupt handler. */ static void mps_intr_handler(struct adapter *adapter) { static struct intr_info mps_rx_intr_info[] = { { 0xffffff, "MPS Rx parity error", -1, 1 }, { 0 } }; static struct intr_info mps_tx_intr_info[] = { { V_TPFIFO(M_TPFIFO), "MPS Tx TP FIFO parity error", -1, 1 }, { F_NCSIFIFO, "MPS Tx NC-SI FIFO parity error", -1, 1 }, { V_TXDATAFIFO(M_TXDATAFIFO), "MPS Tx data FIFO parity error", -1, 1 }, { V_TXDESCFIFO(M_TXDESCFIFO), "MPS Tx desc FIFO parity error", -1, 1 }, { F_BUBBLE, "MPS Tx underflow", -1, 1 }, { F_SECNTERR, "MPS Tx SOP/EOP error", -1, 1 }, { F_FRMERR, "MPS Tx framing error", -1, 1 }, { 0 } }; static struct intr_info mps_trc_intr_info[] = { { V_FILTMEM(M_FILTMEM), "MPS TRC filter parity error", -1, 1 }, { V_PKTFIFO(M_PKTFIFO), "MPS TRC packet FIFO parity error", -1, 1 }, { F_MISCPERR, "MPS TRC misc parity error", -1, 1 }, { 0 } }; static struct intr_info mps_stat_sram_intr_info[] = { { 0x1fffff, "MPS statistics SRAM parity error", -1, 1 }, { 0 } }; static struct intr_info mps_stat_tx_intr_info[] = { { 0xfffff, "MPS statistics Tx FIFO parity error", -1, 1 }, { 0 } }; static struct intr_info mps_stat_rx_intr_info[] = { { 0xffffff, "MPS statistics Rx FIFO parity error", -1, 1 }, { 0 } }; static struct intr_info mps_cls_intr_info[] = { { F_MATCHSRAM, "MPS match SRAM parity error", -1, 1 }, { F_MATCHTCAM, "MPS match TCAM parity error", -1, 1 }, { F_HASHSRAM, "MPS hash SRAM parity error", -1, 1 }, { 0 } }; int fat; fat = t4_handle_intr_status(adapter, A_MPS_RX_PERR_INT_CAUSE, mps_rx_intr_info) + t4_handle_intr_status(adapter, A_MPS_TX_INT_CAUSE, mps_tx_intr_info) + t4_handle_intr_status(adapter, A_MPS_TRC_INT_CAUSE, mps_trc_intr_info) + t4_handle_intr_status(adapter, A_MPS_STAT_PERR_INT_CAUSE_SRAM, mps_stat_sram_intr_info) + t4_handle_intr_status(adapter, A_MPS_STAT_PERR_INT_CAUSE_TX_FIFO, mps_stat_tx_intr_info) + t4_handle_intr_status(adapter, A_MPS_STAT_PERR_INT_CAUSE_RX_FIFO, mps_stat_rx_intr_info) + t4_handle_intr_status(adapter, A_MPS_CLS_INT_CAUSE, mps_cls_intr_info); t4_write_reg(adapter, A_MPS_INT_CAUSE, 0); t4_read_reg(adapter, A_MPS_INT_CAUSE); /* flush */ if (fat) t4_fatal_err(adapter); } #define MEM_INT_MASK (F_PERR_INT_CAUSE | F_ECC_CE_INT_CAUSE | F_ECC_UE_INT_CAUSE) /* * EDC/MC interrupt handler. */ static void mem_intr_handler(struct adapter *adapter, int idx) { static const char name[3][5] = { "EDC0", "EDC1", "MC" }; unsigned int addr, cnt_addr, v; if (idx <= MEM_EDC1) { addr = EDC_REG(A_EDC_INT_CAUSE, idx); cnt_addr = EDC_REG(A_EDC_ECC_STATUS, idx); } else { addr = A_MC_INT_CAUSE; cnt_addr = A_MC_ECC_STATUS; } v = t4_read_reg(adapter, addr) & MEM_INT_MASK; if (v & F_PERR_INT_CAUSE) CH_ALERT(adapter, "%s FIFO parity error\n", name[idx]); if (v & F_ECC_CE_INT_CAUSE) { u32 cnt = G_ECC_CECNT(t4_read_reg(adapter, cnt_addr)); t4_write_reg(adapter, cnt_addr, V_ECC_CECNT(M_ECC_CECNT)); CH_WARN_RATELIMIT(adapter, "%u %s correctable ECC data error%s\n", cnt, name[idx], cnt > 1 ? "s" : ""); } if (v & F_ECC_UE_INT_CAUSE) CH_ALERT(adapter, "%s uncorrectable ECC data error\n", name[idx]); t4_write_reg(adapter, addr, v); if (v & (F_PERR_INT_CAUSE | F_ECC_UE_INT_CAUSE)) t4_fatal_err(adapter); } /* * MA interrupt handler. */ static void ma_intr_handler(struct adapter *adapter) { u32 v, status = t4_read_reg(adapter, A_MA_INT_CAUSE); if (status & F_MEM_PERR_INT_CAUSE) CH_ALERT(adapter, "MA parity error, parity status %#x\n", t4_read_reg(adapter, A_MA_PARITY_ERROR_STATUS)); if (status & F_MEM_WRAP_INT_CAUSE) { v = t4_read_reg(adapter, A_MA_INT_WRAP_STATUS); CH_ALERT(adapter, "MA address wrap-around error by client %u to" " address %#x\n", G_MEM_WRAP_CLIENT_NUM(v), G_MEM_WRAP_ADDRESS(v) << 4); } t4_write_reg(adapter, A_MA_INT_CAUSE, status); t4_fatal_err(adapter); } /* * SMB interrupt handler. */ static void smb_intr_handler(struct adapter *adap) { static struct intr_info smb_intr_info[] = { { F_MSTTXFIFOPARINT, "SMB master Tx FIFO parity error", -1, 1 }, { F_MSTRXFIFOPARINT, "SMB master Rx FIFO parity error", -1, 1 }, { F_SLVFIFOPARINT, "SMB slave FIFO parity error", -1, 1 }, { 0 } }; if (t4_handle_intr_status(adap, A_SMB_INT_CAUSE, smb_intr_info)) t4_fatal_err(adap); } /* * NC-SI interrupt handler. */ static void ncsi_intr_handler(struct adapter *adap) { static struct intr_info ncsi_intr_info[] = { { F_CIM_DM_PRTY_ERR, "NC-SI CIM parity error", -1, 1 }, { F_MPS_DM_PRTY_ERR, "NC-SI MPS parity error", -1, 1 }, { F_TXFIFO_PRTY_ERR, "NC-SI Tx FIFO parity error", -1, 1 }, { F_RXFIFO_PRTY_ERR, "NC-SI Rx FIFO parity error", -1, 1 }, { 0 } }; if (t4_handle_intr_status(adap, A_NCSI_INT_CAUSE, ncsi_intr_info)) t4_fatal_err(adap); } /* * XGMAC interrupt handler. */ static void xgmac_intr_handler(struct adapter *adap, int port) { u32 v = t4_read_reg(adap, PORT_REG(port, A_XGMAC_PORT_INT_CAUSE)); v &= F_TXFIFO_PRTY_ERR | F_RXFIFO_PRTY_ERR; if (!v) return; if (v & F_TXFIFO_PRTY_ERR) CH_ALERT(adap, "XGMAC %d Tx FIFO parity error\n", port); if (v & F_RXFIFO_PRTY_ERR) CH_ALERT(adap, "XGMAC %d Rx FIFO parity error\n", port); t4_write_reg(adap, PORT_REG(port, A_XGMAC_PORT_INT_CAUSE), v); t4_fatal_err(adap); } /* * PL interrupt handler. */ static void pl_intr_handler(struct adapter *adap) { static struct intr_info pl_intr_info[] = { { F_FATALPERR, "T4 fatal parity error", -1, 1 }, { F_PERRVFID, "PL VFID_MAP parity error", -1, 1 }, { 0 } }; if (t4_handle_intr_status(adap, A_PL_PL_INT_CAUSE, pl_intr_info)) t4_fatal_err(adap); } #define PF_INTR_MASK (F_PFSW | F_PFCIM) #define GLBL_INTR_MASK (F_CIM | F_MPS | F_PL | F_PCIE | F_MC | F_EDC0 | \ F_EDC1 | F_LE | F_TP | F_MA | F_PM_TX | F_PM_RX | F_ULP_RX | \ F_CPL_SWITCH | F_SGE | F_ULP_TX) /** * t4_slow_intr_handler - control path interrupt handler * @adapter: the adapter * * T4 interrupt handler for non-data global interrupt events, e.g., errors. * The designation 'slow' is because it involves register reads, while * data interrupts typically don't involve any MMIOs. */ int t4_slow_intr_handler(struct adapter *adapter) { u32 cause = t4_read_reg(adapter, A_PL_INT_CAUSE); if (!(cause & GLBL_INTR_MASK)) return 0; if (cause & F_CIM) cim_intr_handler(adapter); if (cause & F_MPS) mps_intr_handler(adapter); if (cause & F_NCSI) ncsi_intr_handler(adapter); if (cause & F_PL) pl_intr_handler(adapter); if (cause & F_SMB) smb_intr_handler(adapter); if (cause & F_XGMAC0) xgmac_intr_handler(adapter, 0); if (cause & F_XGMAC1) xgmac_intr_handler(adapter, 1); if (cause & F_XGMAC_KR0) xgmac_intr_handler(adapter, 2); if (cause & F_XGMAC_KR1) xgmac_intr_handler(adapter, 3); if (cause & F_PCIE) pcie_intr_handler(adapter); if (cause & F_MC) mem_intr_handler(adapter, MEM_MC); if (cause & F_EDC0) mem_intr_handler(adapter, MEM_EDC0); if (cause & F_EDC1) mem_intr_handler(adapter, MEM_EDC1); if (cause & F_LE) le_intr_handler(adapter); if (cause & F_TP) tp_intr_handler(adapter); if (cause & F_MA) ma_intr_handler(adapter); if (cause & F_PM_TX) pmtx_intr_handler(adapter); if (cause & F_PM_RX) pmrx_intr_handler(adapter); if (cause & F_ULP_RX) ulprx_intr_handler(adapter); if (cause & F_CPL_SWITCH) cplsw_intr_handler(adapter); if (cause & F_SGE) sge_intr_handler(adapter); if (cause & F_ULP_TX) ulptx_intr_handler(adapter); /* Clear the interrupts just processed for which we are the master. */ t4_write_reg(adapter, A_PL_INT_CAUSE, cause & GLBL_INTR_MASK); (void) t4_read_reg(adapter, A_PL_INT_CAUSE); /* flush */ return 1; } /** * t4_intr_enable - enable interrupts * @adapter: the adapter whose interrupts should be enabled * * Enable PF-specific interrupts for the calling function and the top-level * interrupt concentrator for global interrupts. Interrupts are already * enabled at each module, here we just enable the roots of the interrupt * hierarchies. * * Note: this function should be called only when the driver manages * non PF-specific interrupts from the various HW modules. Only one PCI * function at a time should be doing this. */ void t4_intr_enable(struct adapter *adapter) { u32 pf = G_SOURCEPF(t4_read_reg(adapter, A_PL_WHOAMI)); t4_write_reg(adapter, A_SGE_INT_ENABLE3, F_ERR_CPL_EXCEED_IQE_SIZE | F_ERR_INVALID_CIDX_INC | F_ERR_CPL_OPCODE_0 | F_ERR_DROPPED_DB | F_ERR_DATA_CPL_ON_HIGH_QID1 | F_ERR_DATA_CPL_ON_HIGH_QID0 | F_ERR_BAD_DB_PIDX3 | F_ERR_BAD_DB_PIDX2 | F_ERR_BAD_DB_PIDX1 | F_ERR_BAD_DB_PIDX0 | F_ERR_ING_CTXT_PRIO | F_ERR_EGR_CTXT_PRIO | F_INGRESS_SIZE_ERR | F_EGRESS_SIZE_ERR); t4_write_reg(adapter, MYPF_REG(A_PL_PF_INT_ENABLE), PF_INTR_MASK); t4_set_reg_field(adapter, A_PL_INT_MAP0, 0, 1 << pf); } /** * t4_intr_disable - disable interrupts * @adapter: the adapter whose interrupts should be disabled * * Disable interrupts. We only disable the top-level interrupt * concentrators. The caller must be a PCI function managing global * interrupts. */ void t4_intr_disable(struct adapter *adapter) { u32 pf = G_SOURCEPF(t4_read_reg(adapter, A_PL_WHOAMI)); t4_write_reg(adapter, MYPF_REG(A_PL_PF_INT_ENABLE), 0); t4_set_reg_field(adapter, A_PL_INT_MAP0, 1 << pf, 0); } /** * t4_intr_clear - clear all interrupts * @adapter: the adapter whose interrupts should be cleared * * Clears all interrupts. The caller must be a PCI function managing * global interrupts. */ void t4_intr_clear(struct adapter *adapter) { static const unsigned int cause_reg[] = { A_SGE_INT_CAUSE1, A_SGE_INT_CAUSE2, A_SGE_INT_CAUSE3, A_PCIE_CORE_UTL_SYSTEM_BUS_AGENT_STATUS, A_PCIE_CORE_UTL_PCI_EXPRESS_PORT_STATUS, A_PCIE_NONFAT_ERR, A_PCIE_INT_CAUSE, A_MC_INT_CAUSE, A_MA_INT_WRAP_STATUS, A_MA_PARITY_ERROR_STATUS, A_MA_INT_CAUSE, A_EDC_INT_CAUSE, EDC_REG(A_EDC_INT_CAUSE, 1), A_CIM_HOST_INT_CAUSE, A_CIM_HOST_UPACC_INT_CAUSE, MYPF_REG(A_CIM_PF_HOST_INT_CAUSE), A_TP_INT_CAUSE, A_ULP_RX_INT_CAUSE, A_ULP_TX_INT_CAUSE, A_PM_RX_INT_CAUSE, A_PM_TX_INT_CAUSE, A_MPS_RX_PERR_INT_CAUSE, A_CPL_INTR_CAUSE, MYPF_REG(A_PL_PF_INT_CAUSE), A_PL_PL_INT_CAUSE, A_LE_DB_INT_CAUSE, }; unsigned int i; for (i = 0; i < ARRAY_SIZE(cause_reg); ++i) t4_write_reg(adapter, cause_reg[i], 0xffffffff); t4_write_reg(adapter, A_PL_INT_CAUSE, GLBL_INTR_MASK); (void) t4_read_reg(adapter, A_PL_INT_CAUSE); /* flush */ } /** * hash_mac_addr - return the hash value of a MAC address * @addr: the 48-bit Ethernet MAC address * * Hashes a MAC address according to the hash function used by HW inexact * (hash) address matching. */ static int hash_mac_addr(const u8 *addr) { u32 a = ((u32)addr[0] << 16) | ((u32)addr[1] << 8) | addr[2]; u32 b = ((u32)addr[3] << 16) | ((u32)addr[4] << 8) | addr[5]; a ^= b; a ^= (a >> 12); a ^= (a >> 6); return a & 0x3f; } /** * t4_config_rss_range - configure a portion of the RSS mapping table * @adapter: the adapter * @mbox: mbox to use for the FW command * @viid: virtual interface whose RSS subtable is to be written * @start: start entry in the table to write * @n: how many table entries to write * @rspq: values for the "response queue" (Ingress Queue) lookup table * @nrspq: number of values in @rspq * * Programs the selected part of the VI's RSS mapping table with the * provided values. If @nrspq < @n the supplied values are used repeatedly * until the full table range is populated. * * The caller must ensure the values in @rspq are in the range allowed for * @viid. */ int t4_config_rss_range(struct adapter *adapter, int mbox, unsigned int viid, int start, int n, const u16 *rspq, unsigned int nrspq) { int ret; const u16 *rsp = rspq; const u16 *rsp_end = rspq + nrspq; struct fw_rss_ind_tbl_cmd cmd; memset(&cmd, 0, sizeof(cmd)); cmd.op_to_viid = htonl(V_FW_CMD_OP(FW_RSS_IND_TBL_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE | V_FW_RSS_IND_TBL_CMD_VIID(viid)); cmd.retval_len16 = htonl(FW_LEN16(cmd)); /* * Each firmware RSS command can accommodate up to 32 RSS Ingress * Queue Identifiers. These Ingress Queue IDs are packed three to * a 32-bit word as 10-bit values with the upper remaining 2 bits * reserved. */ while (n > 0) { int nq = min(n, 32); int nq_packed = 0; __be32 *qp = &cmd.iq0_to_iq2; /* * Set up the firmware RSS command header to send the next * "nq" Ingress Queue IDs to the firmware. */ cmd.niqid = htons(nq); cmd.startidx = htons(start); /* * "nq" more done for the start of the next loop. */ start += nq; n -= nq; /* * While there are still Ingress Queue IDs to stuff into the * current firmware RSS command, retrieve them from the * Ingress Queue ID array and insert them into the command. */ while (nq > 0) { /* * Grab up to the next 3 Ingress Queue IDs (wrapping * around the Ingress Queue ID array if necessary) and * insert them into the firmware RSS command at the * current 3-tuple position within the commad. */ u16 qbuf[3]; u16 *qbp = qbuf; int nqbuf = min(3, nq); nq -= nqbuf; qbuf[0] = qbuf[1] = qbuf[2] = 0; while (nqbuf && nq_packed < 32) { nqbuf--; nq_packed++; *qbp++ = *rsp++; if (rsp >= rsp_end) rsp = rspq; } *qp++ = cpu_to_be32(V_FW_RSS_IND_TBL_CMD_IQ0(qbuf[0]) | V_FW_RSS_IND_TBL_CMD_IQ1(qbuf[1]) | V_FW_RSS_IND_TBL_CMD_IQ2(qbuf[2])); } /* * Send this portion of the RRS table update to the firmware; * bail out on any errors. */ ret = t4_wr_mbox(adapter, mbox, &cmd, sizeof(cmd), NULL); if (ret) return ret; } return 0; } /** * t4_config_glbl_rss - configure the global RSS mode * @adapter: the adapter * @mbox: mbox to use for the FW command * @mode: global RSS mode * @flags: mode-specific flags * * Sets the global RSS mode. */ int t4_config_glbl_rss(struct adapter *adapter, int mbox, unsigned int mode, unsigned int flags) { struct fw_rss_glb_config_cmd c; memset(&c, 0, sizeof(c)); c.op_to_write = htonl(V_FW_CMD_OP(FW_RSS_GLB_CONFIG_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE); c.retval_len16 = htonl(FW_LEN16(c)); if (mode == FW_RSS_GLB_CONFIG_CMD_MODE_MANUAL) { c.u.manual.mode_pkd = htonl(V_FW_RSS_GLB_CONFIG_CMD_MODE(mode)); } else if (mode == FW_RSS_GLB_CONFIG_CMD_MODE_BASICVIRTUAL) { c.u.basicvirtual.mode_pkd = htonl(V_FW_RSS_GLB_CONFIG_CMD_MODE(mode)); c.u.basicvirtual.synmapen_to_hashtoeplitz = htonl(flags); } else return -EINVAL; return t4_wr_mbox(adapter, mbox, &c, sizeof(c), NULL); } /** * t4_config_vi_rss - configure per VI RSS settings * @adapter: the adapter * @mbox: mbox to use for the FW command * @viid: the VI id * @flags: RSS flags * @defq: id of the default RSS queue for the VI. * * Configures VI-specific RSS properties. */ int t4_config_vi_rss(struct adapter *adapter, int mbox, unsigned int viid, unsigned int flags, unsigned int defq) { struct fw_rss_vi_config_cmd c; memset(&c, 0, sizeof(c)); c.op_to_viid = htonl(V_FW_CMD_OP(FW_RSS_VI_CONFIG_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE | V_FW_RSS_VI_CONFIG_CMD_VIID(viid)); c.retval_len16 = htonl(FW_LEN16(c)); c.u.basicvirtual.defaultq_to_udpen = htonl(flags | V_FW_RSS_VI_CONFIG_CMD_DEFAULTQ(defq)); return t4_wr_mbox(adapter, mbox, &c, sizeof(c), NULL); } /* Read an RSS table row */ static int rd_rss_row(struct adapter *adap, int row, u32 *val) { t4_write_reg(adap, A_TP_RSS_LKP_TABLE, 0xfff00000 | row); return t4_wait_op_done_val(adap, A_TP_RSS_LKP_TABLE, F_LKPTBLROWVLD, 1, 5, 0, val); } /** * t4_read_rss - read the contents of the RSS mapping table * @adapter: the adapter * @map: holds the contents of the RSS mapping table * * Reads the contents of the RSS hash->queue mapping table. */ int t4_read_rss(struct adapter *adapter, u16 *map) { u32 val; int i, ret; for (i = 0; i < RSS_NENTRIES / 2; ++i) { ret = rd_rss_row(adapter, i, &val); if (ret) return ret; *map++ = G_LKPTBLQUEUE0(val); *map++ = G_LKPTBLQUEUE1(val); } return 0; } /** * t4_read_rss_key - read the global RSS key * @adap: the adapter * @key: 10-entry array holding the 320-bit RSS key * * Reads the global 320-bit RSS key. */ void t4_read_rss_key(struct adapter *adap, u32 *key) { t4_read_indirect(adap, A_TP_PIO_ADDR, A_TP_PIO_DATA, key, 10, A_TP_RSS_SECRET_KEY0); } /** * t4_write_rss_key - program one of the RSS keys * @adap: the adapter * @key: 10-entry array holding the 320-bit RSS key * @idx: which RSS key to write * * Writes one of the RSS keys with the given 320-bit value. If @idx is * 0..15 the corresponding entry in the RSS key table is written, * otherwise the global RSS key is written. */ void t4_write_rss_key(struct adapter *adap, const u32 *key, int idx) { t4_write_indirect(adap, A_TP_PIO_ADDR, A_TP_PIO_DATA, key, 10, A_TP_RSS_SECRET_KEY0); if (idx >= 0 && idx < 16) t4_write_reg(adap, A_TP_RSS_CONFIG_VRT, V_KEYWRADDR(idx) | F_KEYWREN); } /** * t4_read_rss_pf_config - read PF RSS Configuration Table * @adapter: the adapter * @index: the entry in the PF RSS table to read * @valp: where to store the returned value * * Reads the PF RSS Configuration Table at the specified index and returns * the value found there. */ void t4_read_rss_pf_config(struct adapter *adapter, unsigned int index, u32 *valp) { t4_read_indirect(adapter, A_TP_PIO_ADDR, A_TP_PIO_DATA, valp, 1, A_TP_RSS_PF0_CONFIG + index); } /** * t4_write_rss_pf_config - write PF RSS Configuration Table * @adapter: the adapter * @index: the entry in the VF RSS table to read * @val: the value to store * * Writes the PF RSS Configuration Table at the specified index with the * specified value. */ void t4_write_rss_pf_config(struct adapter *adapter, unsigned int index, u32 val) { t4_write_indirect(adapter, A_TP_PIO_ADDR, A_TP_PIO_DATA, &val, 1, A_TP_RSS_PF0_CONFIG + index); } /** * t4_read_rss_vf_config - read VF RSS Configuration Table * @adapter: the adapter * @index: the entry in the VF RSS table to read * @vfl: where to store the returned VFL * @vfh: where to store the returned VFH * * Reads the VF RSS Configuration Table at the specified index and returns * the (VFL, VFH) values found there. */ void t4_read_rss_vf_config(struct adapter *adapter, unsigned int index, u32 *vfl, u32 *vfh) { u32 vrt; /* * Request that the index'th VF Table values be read into VFL/VFH. */ vrt = t4_read_reg(adapter, A_TP_RSS_CONFIG_VRT); vrt &= ~(F_VFRDRG | V_VFWRADDR(M_VFWRADDR) | F_VFWREN | F_KEYWREN); vrt |= V_VFWRADDR(index) | F_VFRDEN; t4_write_reg(adapter, A_TP_RSS_CONFIG_VRT, vrt); /* * Grab the VFL/VFH values ... */ t4_read_indirect(adapter, A_TP_PIO_ADDR, A_TP_PIO_DATA, vfl, 1, A_TP_RSS_VFL_CONFIG); t4_read_indirect(adapter, A_TP_PIO_ADDR, A_TP_PIO_DATA, vfh, 1, A_TP_RSS_VFH_CONFIG); } /** * t4_write_rss_vf_config - write VF RSS Configuration Table * * @adapter: the adapter * @index: the entry in the VF RSS table to write * @vfl: the VFL to store * @vfh: the VFH to store * * Writes the VF RSS Configuration Table at the specified index with the * specified (VFL, VFH) values. */ void t4_write_rss_vf_config(struct adapter *adapter, unsigned int index, u32 vfl, u32 vfh) { u32 vrt; /* * Load up VFL/VFH with the values to be written ... */ t4_write_indirect(adapter, A_TP_PIO_ADDR, A_TP_PIO_DATA, &vfl, 1, A_TP_RSS_VFL_CONFIG); t4_write_indirect(adapter, A_TP_PIO_ADDR, A_TP_PIO_DATA, &vfh, 1, A_TP_RSS_VFH_CONFIG); /* * Write the VFL/VFH into the VF Table at index'th location. */ vrt = t4_read_reg(adapter, A_TP_RSS_CONFIG_VRT); vrt &= ~(F_VFRDRG | F_VFRDEN | V_VFWRADDR(M_VFWRADDR) | F_KEYWREN); vrt |= V_VFWRADDR(index) | F_VFWREN; t4_write_reg(adapter, A_TP_RSS_CONFIG_VRT, vrt); } /** * t4_read_rss_pf_map - read PF RSS Map * @adapter: the adapter * * Reads the PF RSS Map register and returns its value. */ u32 t4_read_rss_pf_map(struct adapter *adapter) { u32 pfmap; t4_read_indirect(adapter, A_TP_PIO_ADDR, A_TP_PIO_DATA, &pfmap, 1, A_TP_RSS_PF_MAP); return pfmap; } /** * t4_write_rss_pf_map - write PF RSS Map * @adapter: the adapter * @pfmap: PF RSS Map value * * Writes the specified value to the PF RSS Map register. */ void t4_write_rss_pf_map(struct adapter *adapter, u32 pfmap) { t4_write_indirect(adapter, A_TP_PIO_ADDR, A_TP_PIO_DATA, &pfmap, 1, A_TP_RSS_PF_MAP); } /** * t4_read_rss_pf_mask - read PF RSS Mask * @adapter: the adapter * * Reads the PF RSS Mask register and returns its value. */ u32 t4_read_rss_pf_mask(struct adapter *adapter) { u32 pfmask; t4_read_indirect(adapter, A_TP_PIO_ADDR, A_TP_PIO_DATA, &pfmask, 1, A_TP_RSS_PF_MSK); return pfmask; } /** * t4_write_rss_pf_mask - write PF RSS Mask * @adapter: the adapter * @pfmask: PF RSS Mask value * * Writes the specified value to the PF RSS Mask register. */ void t4_write_rss_pf_mask(struct adapter *adapter, u32 pfmask) { t4_write_indirect(adapter, A_TP_PIO_ADDR, A_TP_PIO_DATA, &pfmask, 1, A_TP_RSS_PF_MSK); } /** * t4_set_filter_mode - configure the optional components of filter tuples * @adap: the adapter * @mode_map: a bitmap selcting which optional filter components to enable * * Sets the filter mode by selecting the optional components to enable * in filter tuples. Returns 0 on success and a negative error if the * requested mode needs more bits than are available for optional * components. */ int t4_set_filter_mode(struct adapter *adap, unsigned int mode_map) { static u8 width[] = { 1, 3, 17, 17, 8, 8, 16, 9, 3, 1 }; int i, nbits = 0; for (i = S_FCOE; i <= S_FRAGMENTATION; i++) if (mode_map & (1 << i)) nbits += width[i]; if (nbits > FILTER_OPT_LEN) return -EINVAL; t4_write_indirect(adap, A_TP_PIO_ADDR, A_TP_PIO_DATA, &mode_map, 1, A_TP_VLAN_PRI_MAP); return 0; } /** * t4_tp_get_tcp_stats - read TP's TCP MIB counters * @adap: the adapter * @v4: holds the TCP/IP counter values * @v6: holds the TCP/IPv6 counter values * * Returns the values of TP's TCP/IP and TCP/IPv6 MIB counters. * Either @v4 or @v6 may be %NULL to skip the corresponding stats. */ void t4_tp_get_tcp_stats(struct adapter *adap, struct tp_tcp_stats *v4, struct tp_tcp_stats *v6) { u32 val[A_TP_MIB_TCP_RXT_SEG_LO - A_TP_MIB_TCP_OUT_RST + 1]; #define STAT_IDX(x) ((A_TP_MIB_TCP_##x) - A_TP_MIB_TCP_OUT_RST) #define STAT(x) val[STAT_IDX(x)] #define STAT64(x) (((u64)STAT(x##_HI) << 32) | STAT(x##_LO)) if (v4) { t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, val, ARRAY_SIZE(val), A_TP_MIB_TCP_OUT_RST); v4->tcpOutRsts = STAT(OUT_RST); v4->tcpInSegs = STAT64(IN_SEG); v4->tcpOutSegs = STAT64(OUT_SEG); v4->tcpRetransSegs = STAT64(RXT_SEG); } if (v6) { t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, val, ARRAY_SIZE(val), A_TP_MIB_TCP_V6OUT_RST); v6->tcpOutRsts = STAT(OUT_RST); v6->tcpInSegs = STAT64(IN_SEG); v6->tcpOutSegs = STAT64(OUT_SEG); v6->tcpRetransSegs = STAT64(RXT_SEG); } #undef STAT64 #undef STAT #undef STAT_IDX } /** * t4_tp_get_err_stats - read TP's error MIB counters * @adap: the adapter * @st: holds the counter values * * Returns the values of TP's error counters. */ void t4_tp_get_err_stats(struct adapter *adap, struct tp_err_stats *st) { t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, st->macInErrs, 12, A_TP_MIB_MAC_IN_ERR_0); t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, st->tnlCongDrops, 8, A_TP_MIB_TNL_CNG_DROP_0); t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, st->tnlTxDrops, 4, A_TP_MIB_TNL_DROP_0); t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, st->ofldVlanDrops, 4, A_TP_MIB_OFD_VLN_DROP_0); t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, st->tcp6InErrs, 4, A_TP_MIB_TCP_V6IN_ERR_0); t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, &st->ofldNoNeigh, 2, A_TP_MIB_OFD_ARP_DROP); } /** * t4_tp_get_proxy_stats - read TP's proxy MIB counters * @adap: the adapter * @st: holds the counter values * * Returns the values of TP's proxy counters. */ void t4_tp_get_proxy_stats(struct adapter *adap, struct tp_proxy_stats *st) { t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, st->proxy, 4, A_TP_MIB_TNL_LPBK_0); } /** * t4_tp_get_cpl_stats - read TP's CPL MIB counters * @adap: the adapter * @st: holds the counter values * * Returns the values of TP's CPL counters. */ void t4_tp_get_cpl_stats(struct adapter *adap, struct tp_cpl_stats *st) { t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, st->req, 8, A_TP_MIB_CPL_IN_REQ_0); } /** * t4_tp_get_rdma_stats - read TP's RDMA MIB counters * @adap: the adapter * @st: holds the counter values * * Returns the values of TP's RDMA counters. */ void t4_tp_get_rdma_stats(struct adapter *adap, struct tp_rdma_stats *st) { t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, &st->rqe_dfr_mod, 2, A_TP_MIB_RQE_DFR_MOD); } /** * t4_get_fcoe_stats - read TP's FCoE MIB counters for a port * @adap: the adapter * @idx: the port index * @st: holds the counter values * * Returns the values of TP's FCoE counters for the selected port. */ void t4_get_fcoe_stats(struct adapter *adap, unsigned int idx, struct tp_fcoe_stats *st) { u32 val[2]; t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, &st->framesDDP, 1, A_TP_MIB_FCOE_DDP_0 + idx); t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, &st->framesDrop, 1, A_TP_MIB_FCOE_DROP_0 + idx); t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, val, 2, A_TP_MIB_FCOE_BYTE_0_HI + 2 * idx); st->octetsDDP = ((u64)val[0] << 32) | val[1]; } /** * t4_get_usm_stats - read TP's non-TCP DDP MIB counters * @adap: the adapter * @st: holds the counter values * * Returns the values of TP's counters for non-TCP directly-placed packets. */ void t4_get_usm_stats(struct adapter *adap, struct tp_usm_stats *st) { u32 val[4]; t4_read_indirect(adap, A_TP_MIB_INDEX, A_TP_MIB_DATA, val, 4, A_TP_MIB_USM_PKTS); st->frames = val[0]; st->drops = val[1]; st->octets = ((u64)val[2] << 32) | val[3]; } /** * t4_read_mtu_tbl - returns the values in the HW path MTU table * @adap: the adapter * @mtus: where to store the MTU values * @mtu_log: where to store the MTU base-2 log (may be %NULL) * * Reads the HW path MTU table. */ void t4_read_mtu_tbl(struct adapter *adap, u16 *mtus, u8 *mtu_log) { u32 v; int i; for (i = 0; i < NMTUS; ++i) { t4_write_reg(adap, A_TP_MTU_TABLE, V_MTUINDEX(0xff) | V_MTUVALUE(i)); v = t4_read_reg(adap, A_TP_MTU_TABLE); mtus[i] = G_MTUVALUE(v); if (mtu_log) mtu_log[i] = G_MTUWIDTH(v); } } /** * t4_read_cong_tbl - reads the congestion control table * @adap: the adapter * @incr: where to store the alpha values * * Reads the additive increments programmed into the HW congestion * control table. */ void t4_read_cong_tbl(struct adapter *adap, u16 incr[NMTUS][NCCTRL_WIN]) { unsigned int mtu, w; for (mtu = 0; mtu < NMTUS; ++mtu) for (w = 0; w < NCCTRL_WIN; ++w) { t4_write_reg(adap, A_TP_CCTRL_TABLE, V_ROWINDEX(0xffff) | (mtu << 5) | w); incr[mtu][w] = (u16)t4_read_reg(adap, A_TP_CCTRL_TABLE) & 0x1fff; } } /** * t4_read_pace_tbl - read the pace table * @adap: the adapter * @pace_vals: holds the returned values * * Returns the values of TP's pace table in microseconds. */ void t4_read_pace_tbl(struct adapter *adap, unsigned int pace_vals[NTX_SCHED]) { unsigned int i, v; for (i = 0; i < NTX_SCHED; i++) { t4_write_reg(adap, A_TP_PACE_TABLE, 0xffff0000 + i); v = t4_read_reg(adap, A_TP_PACE_TABLE); pace_vals[i] = dack_ticks_to_usec(adap, v); } } /** * t4_tp_wr_bits_indirect - set/clear bits in an indirect TP register * @adap: the adapter * @addr: the indirect TP register address * @mask: specifies the field within the register to modify * @val: new value for the field * * Sets a field of an indirect TP register to the given value. */ void t4_tp_wr_bits_indirect(struct adapter *adap, unsigned int addr, unsigned int mask, unsigned int val) { t4_write_reg(adap, A_TP_PIO_ADDR, addr); val |= t4_read_reg(adap, A_TP_PIO_DATA) & ~mask; t4_write_reg(adap, A_TP_PIO_DATA, val); } /** * init_cong_ctrl - initialize congestion control parameters * @a: the alpha values for congestion control * @b: the beta values for congestion control * * Initialize the congestion control parameters. */ static void __devinit init_cong_ctrl(unsigned short *a, unsigned short *b) { a[0] = a[1] = a[2] = a[3] = a[4] = a[5] = a[6] = a[7] = a[8] = 1; a[9] = 2; a[10] = 3; a[11] = 4; a[12] = 5; a[13] = 6; a[14] = 7; a[15] = 8; a[16] = 9; a[17] = 10; a[18] = 14; a[19] = 17; a[20] = 21; a[21] = 25; a[22] = 30; a[23] = 35; a[24] = 45; a[25] = 60; a[26] = 80; a[27] = 100; a[28] = 200; a[29] = 300; a[30] = 400; a[31] = 500; b[0] = b[1] = b[2] = b[3] = b[4] = b[5] = b[6] = b[7] = b[8] = 0; b[9] = b[10] = 1; b[11] = b[12] = 2; b[13] = b[14] = b[15] = b[16] = 3; b[17] = b[18] = b[19] = b[20] = b[21] = 4; b[22] = b[23] = b[24] = b[25] = b[26] = b[27] = 5; b[28] = b[29] = 6; b[30] = b[31] = 7; } /* The minimum additive increment value for the congestion control table */ #define CC_MIN_INCR 2U /** * t4_load_mtus - write the MTU and congestion control HW tables * @adap: the adapter * @mtus: the values for the MTU table * @alpha: the values for the congestion control alpha parameter * @beta: the values for the congestion control beta parameter * * Write the HW MTU table with the supplied MTUs and the high-speed * congestion control table with the supplied alpha, beta, and MTUs. * We write the two tables together because the additive increments * depend on the MTUs. */ void t4_load_mtus(struct adapter *adap, const unsigned short *mtus, const unsigned short *alpha, const unsigned short *beta) { static const unsigned int avg_pkts[NCCTRL_WIN] = { 2, 6, 10, 14, 20, 28, 40, 56, 80, 112, 160, 224, 320, 448, 640, 896, 1281, 1792, 2560, 3584, 5120, 7168, 10240, 14336, 20480, 28672, 40960, 57344, 81920, 114688, 163840, 229376 }; unsigned int i, w; for (i = 0; i < NMTUS; ++i) { unsigned int mtu = mtus[i]; unsigned int log2 = fls(mtu); if (!(mtu & ((1 << log2) >> 2))) /* round */ log2--; t4_write_reg(adap, A_TP_MTU_TABLE, V_MTUINDEX(i) | V_MTUWIDTH(log2) | V_MTUVALUE(mtu)); for (w = 0; w < NCCTRL_WIN; ++w) { unsigned int inc; inc = max(((mtu - 40) * alpha[w]) / avg_pkts[w], CC_MIN_INCR); t4_write_reg(adap, A_TP_CCTRL_TABLE, (i << 21) | (w << 16) | (beta[w] << 13) | inc); } } } /** * t4_set_pace_tbl - set the pace table * @adap: the adapter * @pace_vals: the pace values in microseconds * @start: index of the first entry in the HW pace table to set * @n: how many entries to set * * Sets (a subset of the) HW pace table. */ int t4_set_pace_tbl(struct adapter *adap, const unsigned int *pace_vals, unsigned int start, unsigned int n) { unsigned int vals[NTX_SCHED], i; unsigned int tick_ns = dack_ticks_to_usec(adap, 1000); if (n > NTX_SCHED) return -ERANGE; /* convert values from us to dack ticks, rounding to closest value */ for (i = 0; i < n; i++, pace_vals++) { vals[i] = (1000 * *pace_vals + tick_ns / 2) / tick_ns; if (vals[i] > 0x7ff) return -ERANGE; if (*pace_vals && vals[i] == 0) return -ERANGE; } for (i = 0; i < n; i++, start++) t4_write_reg(adap, A_TP_PACE_TABLE, (start << 16) | vals[i]); return 0; } /** * t4_set_sched_bps - set the bit rate for a HW traffic scheduler * @adap: the adapter * @kbps: target rate in Kbps * @sched: the scheduler index * * Configure a Tx HW scheduler for the target rate. */ int t4_set_sched_bps(struct adapter *adap, int sched, unsigned int kbps) { unsigned int v, tps, cpt, bpt, delta, mindelta = ~0; unsigned int clk = adap->params.vpd.cclk * 1000; unsigned int selected_cpt = 0, selected_bpt = 0; if (kbps > 0) { kbps *= 125; /* -> bytes */ for (cpt = 1; cpt <= 255; cpt++) { tps = clk / cpt; bpt = (kbps + tps / 2) / tps; if (bpt > 0 && bpt <= 255) { v = bpt * tps; delta = v >= kbps ? v - kbps : kbps - v; if (delta < mindelta) { mindelta = delta; selected_cpt = cpt; selected_bpt = bpt; } } else if (selected_cpt) break; } if (!selected_cpt) return -EINVAL; } t4_write_reg(adap, A_TP_TM_PIO_ADDR, A_TP_TX_MOD_Q1_Q0_RATE_LIMIT - sched / 2); v = t4_read_reg(adap, A_TP_TM_PIO_DATA); if (sched & 1) v = (v & 0xffff) | (selected_cpt << 16) | (selected_bpt << 24); else v = (v & 0xffff0000) | selected_cpt | (selected_bpt << 8); t4_write_reg(adap, A_TP_TM_PIO_DATA, v); return 0; } /** * t4_set_sched_ipg - set the IPG for a Tx HW packet rate scheduler * @adap: the adapter * @sched: the scheduler index * @ipg: the interpacket delay in tenths of nanoseconds * * Set the interpacket delay for a HW packet rate scheduler. */ int t4_set_sched_ipg(struct adapter *adap, int sched, unsigned int ipg) { unsigned int v, addr = A_TP_TX_MOD_Q1_Q0_TIMER_SEPARATOR - sched / 2; /* convert ipg to nearest number of core clocks */ ipg *= core_ticks_per_usec(adap); ipg = (ipg + 5000) / 10000; if (ipg > M_TXTIMERSEPQ0) return -EINVAL; t4_write_reg(adap, A_TP_TM_PIO_ADDR, addr); v = t4_read_reg(adap, A_TP_TM_PIO_DATA); if (sched & 1) v = (v & V_TXTIMERSEPQ0(M_TXTIMERSEPQ0)) | V_TXTIMERSEPQ1(ipg); else v = (v & V_TXTIMERSEPQ1(M_TXTIMERSEPQ1)) | V_TXTIMERSEPQ0(ipg); t4_write_reg(adap, A_TP_TM_PIO_DATA, v); t4_read_reg(adap, A_TP_TM_PIO_DATA); return 0; } /** * t4_get_tx_sched - get the configuration of a Tx HW traffic scheduler * @adap: the adapter * @sched: the scheduler index * @kbps: the byte rate in Kbps * @ipg: the interpacket delay in tenths of nanoseconds * * Return the current configuration of a HW Tx scheduler. */ void t4_get_tx_sched(struct adapter *adap, unsigned int sched, unsigned int *kbps, unsigned int *ipg) { unsigned int v, addr, bpt, cpt; if (kbps) { addr = A_TP_TX_MOD_Q1_Q0_RATE_LIMIT - sched / 2; t4_write_reg(adap, A_TP_TM_PIO_ADDR, addr); v = t4_read_reg(adap, A_TP_TM_PIO_DATA); if (sched & 1) v >>= 16; bpt = (v >> 8) & 0xff; cpt = v & 0xff; if (!cpt) *kbps = 0; /* scheduler disabled */ else { v = (adap->params.vpd.cclk * 1000) / cpt; /* ticks/s */ *kbps = (v * bpt) / 125; } } if (ipg) { addr = A_TP_TX_MOD_Q1_Q0_TIMER_SEPARATOR - sched / 2; t4_write_reg(adap, A_TP_TM_PIO_ADDR, addr); v = t4_read_reg(adap, A_TP_TM_PIO_DATA); if (sched & 1) v >>= 16; v &= 0xffff; *ipg = (10000 * v) / core_ticks_per_usec(adap); } } /* * Calculates a rate in bytes/s given the number of 256-byte units per 4K core * clocks. The formula is * * bytes/s = bytes256 * 256 * ClkFreq / 4096 * * which is equivalent to * * bytes/s = 62.5 * bytes256 * ClkFreq_ms */ static u64 chan_rate(struct adapter *adap, unsigned int bytes256) { u64 v = bytes256 * adap->params.vpd.cclk; return v * 62 + v / 2; } /** * t4_get_chan_txrate - get the current per channel Tx rates * @adap: the adapter * @nic_rate: rates for NIC traffic * @ofld_rate: rates for offloaded traffic * * Return the current Tx rates in bytes/s for NIC and offloaded traffic * for each channel. */ void t4_get_chan_txrate(struct adapter *adap, u64 *nic_rate, u64 *ofld_rate) { u32 v; v = t4_read_reg(adap, A_TP_TX_TRATE); nic_rate[0] = chan_rate(adap, G_TNLRATE0(v)); nic_rate[1] = chan_rate(adap, G_TNLRATE1(v)); nic_rate[2] = chan_rate(adap, G_TNLRATE2(v)); nic_rate[3] = chan_rate(adap, G_TNLRATE3(v)); v = t4_read_reg(adap, A_TP_TX_ORATE); ofld_rate[0] = chan_rate(adap, G_OFDRATE0(v)); ofld_rate[1] = chan_rate(adap, G_OFDRATE1(v)); ofld_rate[2] = chan_rate(adap, G_OFDRATE2(v)); ofld_rate[3] = chan_rate(adap, G_OFDRATE3(v)); } /** * t4_set_trace_filter - configure one of the tracing filters * @adap: the adapter * @tp: the desired trace filter parameters * @idx: which filter to configure * @enable: whether to enable or disable the filter * * Configures one of the tracing filters available in HW. If @enable is * %0 @tp is not examined and may be %NULL. The user is responsible to * set the single/multiple trace mode by writing to A_MPS_TRC_CFG register * by using "cxgbtool iface reg reg_addr=val" command. See t4_sniffer/ * docs/readme.txt for a complete description of how to setup traceing on * T4. */ int t4_set_trace_filter(struct adapter *adap, const struct trace_params *tp, int idx, int enable) { int i, ofst = idx * 4; u32 data_reg, mask_reg, cfg; u32 multitrc = F_TRCMULTIFILTER; if (!enable) { t4_write_reg(adap, A_MPS_TRC_FILTER_MATCH_CTL_A + ofst, 0); return 0; } /* * TODO - After T4 data book is updated, specify the exact * section below. * * See T4 data book - MPS section for a complete description * of the below if..else handling of A_MPS_TRC_CFG register * value. */ cfg = t4_read_reg(adap, A_MPS_TRC_CFG); if (cfg & F_TRCMULTIFILTER) { /* * If multiple tracers are enabled, then maximum * capture size is 2.5KB (FIFO size of a single channel) * minus 2 flits for CPL_TRACE_PKT header. */ if (tp->snap_len > ((10 * 1024 / 4) - (2 * 8))) return -EINVAL; } else { /* * If multiple tracers are disabled, to avoid deadlocks * maximum packet capture size of 9600 bytes is recommended. * Also in this mode, only trace0 can be enabled and running. */ multitrc = 0; if (tp->snap_len > 9600 || idx) return -EINVAL; } if (tp->port > 11 || tp->invert > 1 || tp->skip_len > M_TFLENGTH || tp->skip_ofst > M_TFOFFSET || tp->min_len > M_TFMINPKTSIZE) return -EINVAL; /* stop the tracer we'll be changing */ t4_write_reg(adap, A_MPS_TRC_FILTER_MATCH_CTL_A + ofst, 0); idx *= (A_MPS_TRC_FILTER1_MATCH - A_MPS_TRC_FILTER0_MATCH); data_reg = A_MPS_TRC_FILTER0_MATCH + idx; mask_reg = A_MPS_TRC_FILTER0_DONT_CARE + idx; for (i = 0; i < TRACE_LEN / 4; i++, data_reg += 4, mask_reg += 4) { t4_write_reg(adap, data_reg, tp->data[i]); t4_write_reg(adap, mask_reg, ~tp->mask[i]); } t4_write_reg(adap, A_MPS_TRC_FILTER_MATCH_CTL_B + ofst, V_TFCAPTUREMAX(tp->snap_len) | V_TFMINPKTSIZE(tp->min_len)); t4_write_reg(adap, A_MPS_TRC_FILTER_MATCH_CTL_A + ofst, V_TFOFFSET(tp->skip_ofst) | V_TFLENGTH(tp->skip_len) | V_TFPORT(tp->port) | F_TFEN | V_TFINVERTMATCH(tp->invert)); return 0; } /** * t4_get_trace_filter - query one of the tracing filters * @adap: the adapter * @tp: the current trace filter parameters * @idx: which trace filter to query * @enabled: non-zero if the filter is enabled * * Returns the current settings of one of the HW tracing filters. */ void t4_get_trace_filter(struct adapter *adap, struct trace_params *tp, int idx, int *enabled) { u32 ctla, ctlb; int i, ofst = idx * 4; u32 data_reg, mask_reg; ctla = t4_read_reg(adap, A_MPS_TRC_FILTER_MATCH_CTL_A + ofst); ctlb = t4_read_reg(adap, A_MPS_TRC_FILTER_MATCH_CTL_B + ofst); *enabled = !!(ctla & F_TFEN); tp->snap_len = G_TFCAPTUREMAX(ctlb); tp->min_len = G_TFMINPKTSIZE(ctlb); tp->skip_ofst = G_TFOFFSET(ctla); tp->skip_len = G_TFLENGTH(ctla); tp->invert = !!(ctla & F_TFINVERTMATCH); tp->port = G_TFPORT(ctla); ofst = (A_MPS_TRC_FILTER1_MATCH - A_MPS_TRC_FILTER0_MATCH) * idx; data_reg = A_MPS_TRC_FILTER0_MATCH + ofst; mask_reg = A_MPS_TRC_FILTER0_DONT_CARE + ofst; for (i = 0; i < TRACE_LEN / 4; i++, data_reg += 4, mask_reg += 4) { tp->mask[i] = ~t4_read_reg(adap, mask_reg); tp->data[i] = t4_read_reg(adap, data_reg) & tp->mask[i]; } } /** * t4_pmtx_get_stats - returns the HW stats from PMTX * @adap: the adapter * @cnt: where to store the count statistics * @cycles: where to store the cycle statistics * * Returns performance statistics from PMTX. */ void t4_pmtx_get_stats(struct adapter *adap, u32 cnt[], u64 cycles[]) { int i; for (i = 0; i < PM_NSTATS; i++) { t4_write_reg(adap, A_PM_TX_STAT_CONFIG, i + 1); cnt[i] = t4_read_reg(adap, A_PM_TX_STAT_COUNT); cycles[i] = t4_read_reg64(adap, A_PM_TX_STAT_LSB); } } /** * t4_pmrx_get_stats - returns the HW stats from PMRX * @adap: the adapter * @cnt: where to store the count statistics * @cycles: where to store the cycle statistics * * Returns performance statistics from PMRX. */ void t4_pmrx_get_stats(struct adapter *adap, u32 cnt[], u64 cycles[]) { int i; for (i = 0; i < PM_NSTATS; i++) { t4_write_reg(adap, A_PM_RX_STAT_CONFIG, i + 1); cnt[i] = t4_read_reg(adap, A_PM_RX_STAT_COUNT); cycles[i] = t4_read_reg64(adap, A_PM_RX_STAT_LSB); } } /** * get_mps_bg_map - return the buffer groups associated with a port * @adap: the adapter * @idx: the port index * * Returns a bitmap indicating which MPS buffer groups are associated * with the given port. Bit i is set if buffer group i is used by the * port. */ static unsigned int get_mps_bg_map(struct adapter *adap, int idx) { u32 n = G_NUMPORTS(t4_read_reg(adap, A_MPS_CMN_CTL)); if (n == 0) return idx == 0 ? 0xf : 0; if (n == 1) return idx < 2 ? (3 << (2 * idx)) : 0; return 1 << idx; } /** * t4_get_port_stats_offset - collect port stats relative to a previous * snapshot * @adap: The adapter * @idx: The port * @stats: Current stats to fill * @offset: Previous stats snapshot */ void t4_get_port_stats_offset(struct adapter *adap, int idx, struct port_stats *stats, struct port_stats *offset) { u64 *s, *o; int i; t4_get_port_stats(adap, idx, stats); for (i = 0, s = (u64 *)stats, o = (u64 *)offset ; i < (sizeof(struct port_stats)/sizeof(u64)) ; i++, s++, o++) *s -= *o; } /** * t4_get_port_stats - collect port statistics * @adap: the adapter * @idx: the port index * @p: the stats structure to fill * * Collect statistics related to the given port from HW. */ void t4_get_port_stats(struct adapter *adap, int idx, struct port_stats *p) { u32 bgmap = get_mps_bg_map(adap, idx); #define GET_STAT(name) \ t4_read_reg64(adap, PORT_REG(idx, A_MPS_PORT_STAT_##name##_L)) #define GET_STAT_COM(name) t4_read_reg64(adap, A_MPS_STAT_##name##_L) p->tx_pause = GET_STAT(TX_PORT_PAUSE); p->tx_octets = GET_STAT(TX_PORT_BYTES); p->tx_frames = GET_STAT(TX_PORT_FRAMES); p->tx_bcast_frames = GET_STAT(TX_PORT_BCAST); p->tx_mcast_frames = GET_STAT(TX_PORT_MCAST); p->tx_ucast_frames = GET_STAT(TX_PORT_UCAST); p->tx_error_frames = GET_STAT(TX_PORT_ERROR); p->tx_frames_64 = GET_STAT(TX_PORT_64B); p->tx_frames_65_127 = GET_STAT(TX_PORT_65B_127B); p->tx_frames_128_255 = GET_STAT(TX_PORT_128B_255B); p->tx_frames_256_511 = GET_STAT(TX_PORT_256B_511B); p->tx_frames_512_1023 = GET_STAT(TX_PORT_512B_1023B); p->tx_frames_1024_1518 = GET_STAT(TX_PORT_1024B_1518B); p->tx_frames_1519_max = GET_STAT(TX_PORT_1519B_MAX); p->tx_drop = GET_STAT(TX_PORT_DROP); p->tx_ppp0 = GET_STAT(TX_PORT_PPP0); p->tx_ppp1 = GET_STAT(TX_PORT_PPP1); p->tx_ppp2 = GET_STAT(TX_PORT_PPP2); p->tx_ppp3 = GET_STAT(TX_PORT_PPP3); p->tx_ppp4 = GET_STAT(TX_PORT_PPP4); p->tx_ppp5 = GET_STAT(TX_PORT_PPP5); p->tx_ppp6 = GET_STAT(TX_PORT_PPP6); p->tx_ppp7 = GET_STAT(TX_PORT_PPP7); p->rx_pause = GET_STAT(RX_PORT_PAUSE); p->rx_octets = GET_STAT(RX_PORT_BYTES); p->rx_frames = GET_STAT(RX_PORT_FRAMES); p->rx_bcast_frames = GET_STAT(RX_PORT_BCAST); p->rx_mcast_frames = GET_STAT(RX_PORT_MCAST); p->rx_ucast_frames = GET_STAT(RX_PORT_UCAST); p->rx_too_long = GET_STAT(RX_PORT_MTU_ERROR); p->rx_jabber = GET_STAT(RX_PORT_MTU_CRC_ERROR); p->rx_fcs_err = GET_STAT(RX_PORT_CRC_ERROR); p->rx_len_err = GET_STAT(RX_PORT_LEN_ERROR); p->rx_symbol_err = GET_STAT(RX_PORT_SYM_ERROR); p->rx_runt = GET_STAT(RX_PORT_LESS_64B); p->rx_frames_64 = GET_STAT(RX_PORT_64B); p->rx_frames_65_127 = GET_STAT(RX_PORT_65B_127B); p->rx_frames_128_255 = GET_STAT(RX_PORT_128B_255B); p->rx_frames_256_511 = GET_STAT(RX_PORT_256B_511B); p->rx_frames_512_1023 = GET_STAT(RX_PORT_512B_1023B); p->rx_frames_1024_1518 = GET_STAT(RX_PORT_1024B_1518B); p->rx_frames_1519_max = GET_STAT(RX_PORT_1519B_MAX); p->rx_ppp0 = GET_STAT(RX_PORT_PPP0); p->rx_ppp1 = GET_STAT(RX_PORT_PPP1); p->rx_ppp2 = GET_STAT(RX_PORT_PPP2); p->rx_ppp3 = GET_STAT(RX_PORT_PPP3); p->rx_ppp4 = GET_STAT(RX_PORT_PPP4); p->rx_ppp5 = GET_STAT(RX_PORT_PPP5); p->rx_ppp6 = GET_STAT(RX_PORT_PPP6); p->rx_ppp7 = GET_STAT(RX_PORT_PPP7); p->rx_ovflow0 = (bgmap & 1) ? GET_STAT_COM(RX_BG_0_MAC_DROP_FRAME) : 0; p->rx_ovflow1 = (bgmap & 2) ? GET_STAT_COM(RX_BG_1_MAC_DROP_FRAME) : 0; p->rx_ovflow2 = (bgmap & 4) ? GET_STAT_COM(RX_BG_2_MAC_DROP_FRAME) : 0; p->rx_ovflow3 = (bgmap & 8) ? GET_STAT_COM(RX_BG_3_MAC_DROP_FRAME) : 0; p->rx_trunc0 = (bgmap & 1) ? GET_STAT_COM(RX_BG_0_MAC_TRUNC_FRAME) : 0; p->rx_trunc1 = (bgmap & 2) ? GET_STAT_COM(RX_BG_1_MAC_TRUNC_FRAME) : 0; p->rx_trunc2 = (bgmap & 4) ? GET_STAT_COM(RX_BG_2_MAC_TRUNC_FRAME) : 0; p->rx_trunc3 = (bgmap & 8) ? GET_STAT_COM(RX_BG_3_MAC_TRUNC_FRAME) : 0; #undef GET_STAT #undef GET_STAT_COM } /** * t4_clr_port_stats - clear port statistics * @adap: the adapter * @idx: the port index * * Clear HW statistics for the given port. */ void t4_clr_port_stats(struct adapter *adap, int idx) { unsigned int i; u32 bgmap = get_mps_bg_map(adap, idx); for (i = A_MPS_PORT_STAT_TX_PORT_BYTES_L; i <= A_MPS_PORT_STAT_TX_PORT_PPP7_H; i += 8) t4_write_reg(adap, PORT_REG(idx, i), 0); for (i = A_MPS_PORT_STAT_RX_PORT_BYTES_L; i <= A_MPS_PORT_STAT_RX_PORT_LESS_64B_H; i += 8) t4_write_reg(adap, PORT_REG(idx, i), 0); for (i = 0; i < 4; i++) if (bgmap & (1 << i)) { t4_write_reg(adap, A_MPS_STAT_RX_BG_0_MAC_DROP_FRAME_L + i * 8, 0); t4_write_reg(adap, A_MPS_STAT_RX_BG_0_MAC_TRUNC_FRAME_L + i * 8, 0); } } /** * t4_get_lb_stats - collect loopback port statistics * @adap: the adapter * @idx: the loopback port index * @p: the stats structure to fill * * Return HW statistics for the given loopback port. */ void t4_get_lb_stats(struct adapter *adap, int idx, struct lb_port_stats *p) { u32 bgmap = get_mps_bg_map(adap, idx); #define GET_STAT(name) \ t4_read_reg64(adap, PORT_REG(idx, A_MPS_PORT_STAT_LB_PORT_##name##_L)) #define GET_STAT_COM(name) t4_read_reg64(adap, A_MPS_STAT_##name##_L) p->octets = GET_STAT(BYTES); p->frames = GET_STAT(FRAMES); p->bcast_frames = GET_STAT(BCAST); p->mcast_frames = GET_STAT(MCAST); p->ucast_frames = GET_STAT(UCAST); p->error_frames = GET_STAT(ERROR); p->frames_64 = GET_STAT(64B); p->frames_65_127 = GET_STAT(65B_127B); p->frames_128_255 = GET_STAT(128B_255B); p->frames_256_511 = GET_STAT(256B_511B); p->frames_512_1023 = GET_STAT(512B_1023B); p->frames_1024_1518 = GET_STAT(1024B_1518B); p->frames_1519_max = GET_STAT(1519B_MAX); p->drop = t4_read_reg(adap, PORT_REG(idx, A_MPS_PORT_STAT_LB_PORT_DROP_FRAMES)); p->ovflow0 = (bgmap & 1) ? GET_STAT_COM(RX_BG_0_LB_DROP_FRAME) : 0; p->ovflow1 = (bgmap & 2) ? GET_STAT_COM(RX_BG_1_LB_DROP_FRAME) : 0; p->ovflow2 = (bgmap & 4) ? GET_STAT_COM(RX_BG_2_LB_DROP_FRAME) : 0; p->ovflow3 = (bgmap & 8) ? GET_STAT_COM(RX_BG_3_LB_DROP_FRAME) : 0; p->trunc0 = (bgmap & 1) ? GET_STAT_COM(RX_BG_0_LB_TRUNC_FRAME) : 0; p->trunc1 = (bgmap & 2) ? GET_STAT_COM(RX_BG_1_LB_TRUNC_FRAME) : 0; p->trunc2 = (bgmap & 4) ? GET_STAT_COM(RX_BG_2_LB_TRUNC_FRAME) : 0; p->trunc3 = (bgmap & 8) ? GET_STAT_COM(RX_BG_3_LB_TRUNC_FRAME) : 0; #undef GET_STAT #undef GET_STAT_COM } /** * t4_wol_magic_enable - enable/disable magic packet WoL * @adap: the adapter * @port: the physical port index * @addr: MAC address expected in magic packets, %NULL to disable * * Enables/disables magic packet wake-on-LAN for the selected port. */ void t4_wol_magic_enable(struct adapter *adap, unsigned int port, const u8 *addr) { if (addr) { t4_write_reg(adap, PORT_REG(port, A_XGMAC_PORT_MAGIC_MACID_LO), (addr[2] << 24) | (addr[3] << 16) | (addr[4] << 8) | addr[5]); t4_write_reg(adap, PORT_REG(port, A_XGMAC_PORT_MAGIC_MACID_HI), (addr[0] << 8) | addr[1]); } t4_set_reg_field(adap, PORT_REG(port, A_XGMAC_PORT_CFG2), F_MAGICEN, V_MAGICEN(addr != NULL)); } /** * t4_wol_pat_enable - enable/disable pattern-based WoL * @adap: the adapter * @port: the physical port index * @map: bitmap of which HW pattern filters to set * @mask0: byte mask for bytes 0-63 of a packet * @mask1: byte mask for bytes 64-127 of a packet * @crc: Ethernet CRC for selected bytes * @enable: enable/disable switch * * Sets the pattern filters indicated in @map to mask out the bytes * specified in @mask0/@mask1 in received packets and compare the CRC of * the resulting packet against @crc. If @enable is %true pattern-based * WoL is enabled, otherwise disabled. */ int t4_wol_pat_enable(struct adapter *adap, unsigned int port, unsigned int map, u64 mask0, u64 mask1, unsigned int crc, bool enable) { int i; if (!enable) { t4_set_reg_field(adap, PORT_REG(port, A_XGMAC_PORT_CFG2), F_PATEN, 0); return 0; } if (map > 0xff) return -EINVAL; #define EPIO_REG(name) PORT_REG(port, A_XGMAC_PORT_EPIO_##name) t4_write_reg(adap, EPIO_REG(DATA1), mask0 >> 32); t4_write_reg(adap, EPIO_REG(DATA2), mask1); t4_write_reg(adap, EPIO_REG(DATA3), mask1 >> 32); for (i = 0; i < NWOL_PAT; i++, map >>= 1) { if (!(map & 1)) continue; /* write byte masks */ t4_write_reg(adap, EPIO_REG(DATA0), mask0); t4_write_reg(adap, EPIO_REG(OP), V_ADDRESS(i) | F_EPIOWR); t4_read_reg(adap, EPIO_REG(OP)); /* flush */ if (t4_read_reg(adap, EPIO_REG(OP)) & F_BUSY) return -ETIMEDOUT; /* write CRC */ t4_write_reg(adap, EPIO_REG(DATA0), crc); t4_write_reg(adap, EPIO_REG(OP), V_ADDRESS(i + 32) | F_EPIOWR); t4_read_reg(adap, EPIO_REG(OP)); /* flush */ if (t4_read_reg(adap, EPIO_REG(OP)) & F_BUSY) return -ETIMEDOUT; } #undef EPIO_REG t4_set_reg_field(adap, PORT_REG(port, A_XGMAC_PORT_CFG2), 0, F_PATEN); return 0; } /** * t4_mk_filtdelwr - create a delete filter WR * @ftid: the filter ID * @wr: the filter work request to populate * @qid: ingress queue to receive the delete notification * * Creates a filter work request to delete the supplied filter. If @qid is * negative the delete notification is suppressed. */ void t4_mk_filtdelwr(unsigned int ftid, struct fw_filter_wr *wr, int qid) { memset(wr, 0, sizeof(*wr)); wr->op_pkd = htonl(V_FW_WR_OP(FW_FILTER_WR)); wr->len16_pkd = htonl(V_FW_WR_LEN16(sizeof(*wr) / 16)); wr->tid_to_iq = htonl(V_FW_FILTER_WR_TID(ftid) | V_FW_FILTER_WR_NOREPLY(qid < 0)); wr->del_filter_to_l2tix = htonl(F_FW_FILTER_WR_DEL_FILTER); if (qid >= 0) wr->rx_chan_rx_rpl_iq = htons(V_FW_FILTER_WR_RX_RPL_IQ(qid)); } #define INIT_CMD(var, cmd, rd_wr) do { \ (var).op_to_write = htonl(V_FW_CMD_OP(FW_##cmd##_CMD) | \ F_FW_CMD_REQUEST | F_FW_CMD_##rd_wr); \ (var).retval_len16 = htonl(FW_LEN16(var)); \ } while (0) int t4_fwaddrspace_write(struct adapter *adap, unsigned int mbox, u32 addr, u32 val) { struct fw_ldst_cmd c; memset(&c, 0, sizeof(c)); c.op_to_addrspace = htonl(V_FW_CMD_OP(FW_LDST_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE | V_FW_LDST_CMD_ADDRSPACE(FW_LDST_ADDRSPC_FIRMWARE)); c.cycles_to_len16 = htonl(FW_LEN16(c)); c.u.addrval.addr = htonl(addr); c.u.addrval.val = htonl(val); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** + * t4_i2c_rd - read a byte from an i2c addressable device + * @adap: the adapter + * @mbox: mailbox to use for the FW command + * @port_id: the port id + * @dev_addr: the i2c device address + * @offset: the byte offset to read from + * @valp: where to store the value + */ +int t4_i2c_rd(struct adapter *adap, unsigned int mbox, unsigned int port_id, + u8 dev_addr, u8 offset, u8 *valp) +{ + int ret; + struct fw_ldst_cmd c; + + memset(&c, 0, sizeof(c)); + c.op_to_addrspace = htonl(V_FW_CMD_OP(FW_LDST_CMD) | F_FW_CMD_REQUEST | + F_FW_CMD_READ | + V_FW_LDST_CMD_ADDRSPACE(FW_LDST_ADDRSPC_FUNC_I2C)); + c.cycles_to_len16 = htonl(FW_LEN16(c)); + c.u.i2c.pid_pkd = V_FW_LDST_CMD_PID(port_id); + c.u.i2c.base = dev_addr; + c.u.i2c.boffset = offset; + + ret = t4_wr_mbox(adap, mbox, &c, sizeof(c), &c); + if (ret == 0) + *valp = c.u.i2c.data; + return ret; +} + +/** * t4_mdio_rd - read a PHY register through MDIO * @adap: the adapter * @mbox: mailbox to use for the FW command * @phy_addr: the PHY address * @mmd: the PHY MMD to access (0 for clause 22 PHYs) * @reg: the register to read * @valp: where to store the value * * Issues a FW command through the given mailbox to read a PHY register. */ int t4_mdio_rd(struct adapter *adap, unsigned int mbox, unsigned int phy_addr, unsigned int mmd, unsigned int reg, unsigned int *valp) { int ret; struct fw_ldst_cmd c; memset(&c, 0, sizeof(c)); c.op_to_addrspace = htonl(V_FW_CMD_OP(FW_LDST_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_READ | V_FW_LDST_CMD_ADDRSPACE(FW_LDST_ADDRSPC_MDIO)); c.cycles_to_len16 = htonl(FW_LEN16(c)); c.u.mdio.paddr_mmd = htons(V_FW_LDST_CMD_PADDR(phy_addr) | V_FW_LDST_CMD_MMD(mmd)); c.u.mdio.raddr = htons(reg); ret = t4_wr_mbox(adap, mbox, &c, sizeof(c), &c); if (ret == 0) *valp = ntohs(c.u.mdio.rval); return ret; } /** * t4_mdio_wr - write a PHY register through MDIO * @adap: the adapter * @mbox: mailbox to use for the FW command * @phy_addr: the PHY address * @mmd: the PHY MMD to access (0 for clause 22 PHYs) * @reg: the register to write * @valp: value to write * * Issues a FW command through the given mailbox to write a PHY register. */ int t4_mdio_wr(struct adapter *adap, unsigned int mbox, unsigned int phy_addr, unsigned int mmd, unsigned int reg, unsigned int val) { struct fw_ldst_cmd c; memset(&c, 0, sizeof(c)); c.op_to_addrspace = htonl(V_FW_CMD_OP(FW_LDST_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE | V_FW_LDST_CMD_ADDRSPACE(FW_LDST_ADDRSPC_MDIO)); c.cycles_to_len16 = htonl(FW_LEN16(c)); c.u.mdio.paddr_mmd = htons(V_FW_LDST_CMD_PADDR(phy_addr) | V_FW_LDST_CMD_MMD(mmd)); c.u.mdio.raddr = htons(reg); c.u.mdio.rval = htons(val); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_sge_ctxt_flush - flush the SGE context cache * @adap: the adapter * @mbox: mailbox to use for the FW command * * Issues a FW command through the given mailbox to flush the * SGE context cache. */ int t4_sge_ctxt_flush(struct adapter *adap, unsigned int mbox) { int ret; struct fw_ldst_cmd c; memset(&c, 0, sizeof(c)); c.op_to_addrspace = htonl(V_FW_CMD_OP(FW_LDST_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_READ | V_FW_LDST_CMD_ADDRSPACE(FW_LDST_ADDRSPC_SGE_EGRC)); c.cycles_to_len16 = htonl(FW_LEN16(c)); c.u.idctxt.msg_ctxtflush = htonl(F_FW_LDST_CMD_CTXTFLUSH); ret = t4_wr_mbox(adap, mbox, &c, sizeof(c), &c); return ret; } /** * t4_sge_ctxt_rd - read an SGE context through FW * @adap: the adapter * @mbox: mailbox to use for the FW command * @cid: the context id * @ctype: the context type * @data: where to store the context data * * Issues a FW command through the given mailbox to read an SGE context. */ int t4_sge_ctxt_rd(struct adapter *adap, unsigned int mbox, unsigned int cid, enum ctxt_type ctype, u32 *data) { int ret; struct fw_ldst_cmd c; if (ctype == CTXT_EGRESS) ret = FW_LDST_ADDRSPC_SGE_EGRC; else if (ctype == CTXT_INGRESS) ret = FW_LDST_ADDRSPC_SGE_INGC; else if (ctype == CTXT_FLM) ret = FW_LDST_ADDRSPC_SGE_FLMC; else ret = FW_LDST_ADDRSPC_SGE_CONMC; memset(&c, 0, sizeof(c)); c.op_to_addrspace = htonl(V_FW_CMD_OP(FW_LDST_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_READ | V_FW_LDST_CMD_ADDRSPACE(ret)); c.cycles_to_len16 = htonl(FW_LEN16(c)); c.u.idctxt.physid = htonl(cid); ret = t4_wr_mbox(adap, mbox, &c, sizeof(c), &c); if (ret == 0) { data[0] = ntohl(c.u.idctxt.ctxt_data0); data[1] = ntohl(c.u.idctxt.ctxt_data1); data[2] = ntohl(c.u.idctxt.ctxt_data2); data[3] = ntohl(c.u.idctxt.ctxt_data3); data[4] = ntohl(c.u.idctxt.ctxt_data4); data[5] = ntohl(c.u.idctxt.ctxt_data5); } return ret; } /** * t4_sge_ctxt_rd_bd - read an SGE context bypassing FW * @adap: the adapter * @cid: the context id * @ctype: the context type * @data: where to store the context data * * Reads an SGE context directly, bypassing FW. This is only for * debugging when FW is unavailable. */ int t4_sge_ctxt_rd_bd(struct adapter *adap, unsigned int cid, enum ctxt_type ctype, u32 *data) { int i, ret; t4_write_reg(adap, A_SGE_CTXT_CMD, V_CTXTQID(cid) | V_CTXTTYPE(ctype)); ret = t4_wait_op_done(adap, A_SGE_CTXT_CMD, F_BUSY, 0, 3, 1); if (!ret) for (i = A_SGE_CTXT_DATA0; i <= A_SGE_CTXT_DATA5; i += 4) *data++ = t4_read_reg(adap, i); return ret; } /** * t4_fw_hello - establish communication with FW * @adap: the adapter * @mbox: mailbox to use for the FW command * @evt_mbox: mailbox to receive async FW events * @master: specifies the caller's willingness to be the device master * @state: returns the current device state (if non-NULL) * * Issues a command to establish communication with FW. Returns either * an error (negative integer) or the mailbox of the Master PF. */ int t4_fw_hello(struct adapter *adap, unsigned int mbox, unsigned int evt_mbox, enum dev_master master, enum dev_state *state) { int ret; struct fw_hello_cmd c; u32 v; unsigned int master_mbox; int retries = FW_CMD_HELLO_RETRIES; retry: memset(&c, 0, sizeof(c)); INIT_CMD(c, HELLO, WRITE); c.err_to_clearinit = htonl( V_FW_HELLO_CMD_MASTERDIS(master == MASTER_CANT) | V_FW_HELLO_CMD_MASTERFORCE(master == MASTER_MUST) | V_FW_HELLO_CMD_MBMASTER(master == MASTER_MUST ? mbox : M_FW_HELLO_CMD_MBMASTER) | V_FW_HELLO_CMD_MBASYNCNOT(evt_mbox) | V_FW_HELLO_CMD_STAGE(FW_HELLO_CMD_STAGE_OS) | F_FW_HELLO_CMD_CLEARINIT); /* * Issue the HELLO command to the firmware. If it's not successful * but indicates that we got a "busy" or "timeout" condition, retry * the HELLO until we exhaust our retry limit. */ ret = t4_wr_mbox(adap, mbox, &c, sizeof(c), &c); if (ret != FW_SUCCESS) { if ((ret == -EBUSY || ret == -ETIMEDOUT) && retries-- > 0) goto retry; return ret; } v = ntohl(c.err_to_clearinit); master_mbox = G_FW_HELLO_CMD_MBMASTER(v); if (state) { if (v & F_FW_HELLO_CMD_ERR) *state = DEV_STATE_ERR; else if (v & F_FW_HELLO_CMD_INIT) *state = DEV_STATE_INIT; else *state = DEV_STATE_UNINIT; } /* * If we're not the Master PF then we need to wait around for the * Master PF Driver to finish setting up the adapter. * * Note that we also do this wait if we're a non-Master-capable PF and * there is no current Master PF; a Master PF may show up momentarily * and we wouldn't want to fail pointlessly. (This can happen when an * OS loads lots of different drivers rapidly at the same time). In * this case, the Master PF returned by the firmware will be * M_PCIE_FW_MASTER so the test below will work ... */ if ((v & (F_FW_HELLO_CMD_ERR|F_FW_HELLO_CMD_INIT)) == 0 && master_mbox != mbox) { int waiting = FW_CMD_HELLO_TIMEOUT; /* * Wait for the firmware to either indicate an error or * initialized state. If we see either of these we bail out * and report the issue to the caller. If we exhaust the * "hello timeout" and we haven't exhausted our retries, try * again. Otherwise bail with a timeout error. */ for (;;) { u32 pcie_fw; msleep(50); waiting -= 50; /* * If neither Error nor Initialialized are indicated * by the firmware keep waiting till we exhaust our * timeout ... and then retry if we haven't exhausted * our retries ... */ pcie_fw = t4_read_reg(adap, A_PCIE_FW); if (!(pcie_fw & (F_PCIE_FW_ERR|F_PCIE_FW_INIT))) { if (waiting <= 0) { if (retries-- > 0) goto retry; return -ETIMEDOUT; } continue; } /* * We either have an Error or Initialized condition * report errors preferentially. */ if (state) { if (pcie_fw & F_PCIE_FW_ERR) *state = DEV_STATE_ERR; else if (pcie_fw & F_PCIE_FW_INIT) *state = DEV_STATE_INIT; } /* * If we arrived before a Master PF was selected and * there's not a valid Master PF, grab its identity * for our caller. */ if (master_mbox == M_PCIE_FW_MASTER && (pcie_fw & F_PCIE_FW_MASTER_VLD)) master_mbox = G_PCIE_FW_MASTER(pcie_fw); break; } } return master_mbox; } /** * t4_fw_bye - end communication with FW * @adap: the adapter * @mbox: mailbox to use for the FW command * * Issues a command to terminate communication with FW. */ int t4_fw_bye(struct adapter *adap, unsigned int mbox) { struct fw_bye_cmd c; memset(&c, 0, sizeof(c)); INIT_CMD(c, BYE, WRITE); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_fw_reset - issue a reset to FW * @adap: the adapter * @mbox: mailbox to use for the FW command * @reset: specifies the type of reset to perform * * Issues a reset command of the specified type to FW. */ int t4_fw_reset(struct adapter *adap, unsigned int mbox, int reset) { struct fw_reset_cmd c; memset(&c, 0, sizeof(c)); INIT_CMD(c, RESET, WRITE); c.val = htonl(reset); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_fw_halt - issue a reset/halt to FW and put uP into RESET * @adap: the adapter * @mbox: mailbox to use for the FW RESET command (if desired) * @force: force uP into RESET even if FW RESET command fails * * Issues a RESET command to firmware (if desired) with a HALT indication * and then puts the microprocessor into RESET state. The RESET command * will only be issued if a legitimate mailbox is provided (mbox <= * M_PCIE_FW_MASTER). * * This is generally used in order for the host to safely manipulate the * adapter without fear of conflicting with whatever the firmware might * be doing. The only way out of this state is to RESTART the firmware * ... */ int t4_fw_halt(struct adapter *adap, unsigned int mbox, int force) { int ret = 0; /* * If a legitimate mailbox is provided, issue a RESET command * with a HALT indication. */ if (mbox <= M_PCIE_FW_MASTER) { struct fw_reset_cmd c; memset(&c, 0, sizeof(c)); INIT_CMD(c, RESET, WRITE); c.val = htonl(F_PIORST | F_PIORSTMODE); c.halt_pkd = htonl(F_FW_RESET_CMD_HALT); ret = t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /* * Normally we won't complete the operation if the firmware RESET * command fails but if our caller insists we'll go ahead and put the * uP into RESET. This can be useful if the firmware is hung or even * missing ... We'll have to take the risk of putting the uP into * RESET without the cooperation of firmware in that case. * * We also force the firmware's HALT flag to be on in case we bypassed * the firmware RESET command above or we're dealing with old firmware * which doesn't have the HALT capability. This will serve as a flag * for the incoming firmware to know that it's coming out of a HALT * rather than a RESET ... if it's new enough to understand that ... */ if (ret == 0 || force) { t4_set_reg_field(adap, A_CIM_BOOT_CFG, F_UPCRST, F_UPCRST); t4_set_reg_field(adap, A_PCIE_FW, F_PCIE_FW_HALT, F_PCIE_FW_HALT); } /* * And we always return the result of the firmware RESET command * even when we force the uP into RESET ... */ return ret; } /** * t4_fw_restart - restart the firmware by taking the uP out of RESET * @adap: the adapter * @reset: if we want to do a RESET to restart things * * Restart firmware previously halted by t4_fw_halt(). On successful * return the previous PF Master remains as the new PF Master and there * is no need to issue a new HELLO command, etc. * * We do this in two ways: * * 1. If we're dealing with newer firmware we'll simply want to take * the chip's microprocessor out of RESET. This will cause the * firmware to start up from its start vector. And then we'll loop * until the firmware indicates it's started again (PCIE_FW.HALT * reset to 0) or we timeout. * * 2. If we're dealing with older firmware then we'll need to RESET * the chip since older firmware won't recognize the PCIE_FW.HALT * flag and automatically RESET itself on startup. */ int t4_fw_restart(struct adapter *adap, unsigned int mbox, int reset) { if (reset) { /* * Since we're directing the RESET instead of the firmware * doing it automatically, we need to clear the PCIE_FW.HALT * bit. */ t4_set_reg_field(adap, A_PCIE_FW, F_PCIE_FW_HALT, 0); /* * If we've been given a valid mailbox, first try to get the * firmware to do the RESET. If that works, great and we can * return success. Otherwise, if we haven't been given a * valid mailbox or the RESET command failed, fall back to * hitting the chip with a hammer. */ if (mbox <= M_PCIE_FW_MASTER) { t4_set_reg_field(adap, A_CIM_BOOT_CFG, F_UPCRST, 0); msleep(100); if (t4_fw_reset(adap, mbox, F_PIORST | F_PIORSTMODE) == 0) return 0; } t4_write_reg(adap, A_PL_RST, F_PIORST | F_PIORSTMODE); msleep(2000); } else { int ms; t4_set_reg_field(adap, A_CIM_BOOT_CFG, F_UPCRST, 0); for (ms = 0; ms < FW_CMD_MAX_TIMEOUT; ) { if (!(t4_read_reg(adap, A_PCIE_FW) & F_PCIE_FW_HALT)) return FW_SUCCESS; msleep(100); ms += 100; } return -ETIMEDOUT; } return 0; } /** * t4_fw_upgrade - perform all of the steps necessary to upgrade FW * @adap: the adapter * @mbox: mailbox to use for the FW RESET command (if desired) * @fw_data: the firmware image to write * @size: image size * @force: force upgrade even if firmware doesn't cooperate * * Perform all of the steps necessary for upgrading an adapter's * firmware image. Normally this requires the cooperation of the * existing firmware in order to halt all existing activities * but if an invalid mailbox token is passed in we skip that step * (though we'll still put the adapter microprocessor into RESET in * that case). * * On successful return the new firmware will have been loaded and * the adapter will have been fully RESET losing all previous setup * state. On unsuccessful return the adapter may be completely hosed ... * positive errno indicates that the adapter is ~probably~ intact, a * negative errno indicates that things are looking bad ... */ int t4_fw_upgrade(struct adapter *adap, unsigned int mbox, const u8 *fw_data, unsigned int size, int force) { const struct fw_hdr *fw_hdr = (const struct fw_hdr *)fw_data; int reset, ret; ret = t4_fw_halt(adap, mbox, force); if (ret < 0 && !force) return ret; ret = t4_load_fw(adap, fw_data, size); if (ret < 0) return ret; /* * Older versions of the firmware don't understand the new * PCIE_FW.HALT flag and so won't know to perform a RESET when they * restart. So for newly loaded older firmware we'll have to do the * RESET for it so it starts up on a clean slate. We can tell if * the newly loaded firmware will handle this right by checking * its header flags to see if it advertises the capability. */ reset = ((ntohl(fw_hdr->flags) & FW_HDR_FLAGS_RESET_HALT) == 0); return t4_fw_restart(adap, mbox, reset); } /** * t4_fw_initialize - ask FW to initialize the device * @adap: the adapter * @mbox: mailbox to use for the FW command * * Issues a command to FW to partially initialize the device. This * performs initialization that generally doesn't depend on user input. */ int t4_fw_initialize(struct adapter *adap, unsigned int mbox) { struct fw_initialize_cmd c; memset(&c, 0, sizeof(c)); INIT_CMD(c, INITIALIZE, WRITE); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_query_params - query FW or device parameters * @adap: the adapter * @mbox: mailbox to use for the FW command * @pf: the PF * @vf: the VF * @nparams: the number of parameters * @params: the parameter names * @val: the parameter values * * Reads the value of FW or device parameters. Up to 7 parameters can be * queried at once. */ int t4_query_params(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int nparams, const u32 *params, u32 *val) { int i, ret; struct fw_params_cmd c; __be32 *p = &c.param[0].mnem; if (nparams > 7) return -EINVAL; memset(&c, 0, sizeof(c)); c.op_to_vfn = htonl(V_FW_CMD_OP(FW_PARAMS_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_READ | V_FW_PARAMS_CMD_PFN(pf) | V_FW_PARAMS_CMD_VFN(vf)); c.retval_len16 = htonl(FW_LEN16(c)); for (i = 0; i < nparams; i++, p += 2) *p = htonl(*params++); ret = t4_wr_mbox(adap, mbox, &c, sizeof(c), &c); if (ret == 0) for (i = 0, p = &c.param[0].val; i < nparams; i++, p += 2) *val++ = ntohl(*p); return ret; } /** * t4_set_params - sets FW or device parameters * @adap: the adapter * @mbox: mailbox to use for the FW command * @pf: the PF * @vf: the VF * @nparams: the number of parameters * @params: the parameter names * @val: the parameter values * * Sets the value of FW or device parameters. Up to 7 parameters can be * specified at once. */ int t4_set_params(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int nparams, const u32 *params, const u32 *val) { struct fw_params_cmd c; __be32 *p = &c.param[0].mnem; if (nparams > 7) return -EINVAL; memset(&c, 0, sizeof(c)); c.op_to_vfn = htonl(V_FW_CMD_OP(FW_PARAMS_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE | V_FW_PARAMS_CMD_PFN(pf) | V_FW_PARAMS_CMD_VFN(vf)); c.retval_len16 = htonl(FW_LEN16(c)); while (nparams--) { *p++ = htonl(*params++); *p++ = htonl(*val++); } return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_cfg_pfvf - configure PF/VF resource limits * @adap: the adapter * @mbox: mailbox to use for the FW command * @pf: the PF being configured * @vf: the VF being configured * @txq: the max number of egress queues * @txq_eth_ctrl: the max number of egress Ethernet or control queues * @rxqi: the max number of interrupt-capable ingress queues * @rxq: the max number of interruptless ingress queues * @tc: the PCI traffic class * @vi: the max number of virtual interfaces * @cmask: the channel access rights mask for the PF/VF * @pmask: the port access rights mask for the PF/VF * @nexact: the maximum number of exact MPS filters * @rcaps: read capabilities * @wxcaps: write/execute capabilities * * Configures resource limits and capabilities for a physical or virtual * function. */ int t4_cfg_pfvf(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int txq, unsigned int txq_eth_ctrl, unsigned int rxqi, unsigned int rxq, unsigned int tc, unsigned int vi, unsigned int cmask, unsigned int pmask, unsigned int nexact, unsigned int rcaps, unsigned int wxcaps) { struct fw_pfvf_cmd c; memset(&c, 0, sizeof(c)); c.op_to_vfn = htonl(V_FW_CMD_OP(FW_PFVF_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE | V_FW_PFVF_CMD_PFN(pf) | V_FW_PFVF_CMD_VFN(vf)); c.retval_len16 = htonl(FW_LEN16(c)); c.niqflint_niq = htonl(V_FW_PFVF_CMD_NIQFLINT(rxqi) | V_FW_PFVF_CMD_NIQ(rxq)); c.type_to_neq = htonl(V_FW_PFVF_CMD_CMASK(cmask) | V_FW_PFVF_CMD_PMASK(pmask) | V_FW_PFVF_CMD_NEQ(txq)); c.tc_to_nexactf = htonl(V_FW_PFVF_CMD_TC(tc) | V_FW_PFVF_CMD_NVI(vi) | V_FW_PFVF_CMD_NEXACTF(nexact)); c.r_caps_to_nethctrl = htonl(V_FW_PFVF_CMD_R_CAPS(rcaps) | V_FW_PFVF_CMD_WX_CAPS(wxcaps) | V_FW_PFVF_CMD_NETHCTRL(txq_eth_ctrl)); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_alloc_vi_func - allocate a virtual interface * @adap: the adapter * @mbox: mailbox to use for the FW command * @port: physical port associated with the VI * @pf: the PF owning the VI * @vf: the VF owning the VI * @nmac: number of MAC addresses needed (1 to 5) * @mac: the MAC addresses of the VI * @rss_size: size of RSS table slice associated with this VI * @portfunc: which Port Application Function MAC Address is desired * @idstype: Intrusion Detection Type * * Allocates a virtual interface for the given physical port. If @mac is * not %NULL it contains the MAC addresses of the VI as assigned by FW. * @mac should be large enough to hold @nmac Ethernet addresses, they are * stored consecutively so the space needed is @nmac * 6 bytes. * Returns a negative error number or the non-negative VI id. */ int t4_alloc_vi_func(struct adapter *adap, unsigned int mbox, unsigned int port, unsigned int pf, unsigned int vf, unsigned int nmac, u8 *mac, unsigned int *rss_size, unsigned int portfunc, unsigned int idstype) { int ret; struct fw_vi_cmd c; memset(&c, 0, sizeof(c)); c.op_to_vfn = htonl(V_FW_CMD_OP(FW_VI_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE | F_FW_CMD_EXEC | V_FW_VI_CMD_PFN(pf) | V_FW_VI_CMD_VFN(vf)); c.alloc_to_len16 = htonl(F_FW_VI_CMD_ALLOC | FW_LEN16(c)); c.type_to_viid = htons(V_FW_VI_CMD_TYPE(idstype) | V_FW_VI_CMD_FUNC(portfunc)); c.portid_pkd = V_FW_VI_CMD_PORTID(port); c.nmac = nmac - 1; ret = t4_wr_mbox(adap, mbox, &c, sizeof(c), &c); if (ret) return ret; if (mac) { memcpy(mac, c.mac, sizeof(c.mac)); switch (nmac) { case 5: memcpy(mac + 24, c.nmac3, sizeof(c.nmac3)); case 4: memcpy(mac + 18, c.nmac2, sizeof(c.nmac2)); case 3: memcpy(mac + 12, c.nmac1, sizeof(c.nmac1)); case 2: memcpy(mac + 6, c.nmac0, sizeof(c.nmac0)); } } if (rss_size) *rss_size = G_FW_VI_CMD_RSSSIZE(ntohs(c.rsssize_pkd)); return G_FW_VI_CMD_VIID(htons(c.type_to_viid)); } /** * t4_alloc_vi - allocate an [Ethernet Function] virtual interface * @adap: the adapter * @mbox: mailbox to use for the FW command * @port: physical port associated with the VI * @pf: the PF owning the VI * @vf: the VF owning the VI * @nmac: number of MAC addresses needed (1 to 5) * @mac: the MAC addresses of the VI * @rss_size: size of RSS table slice associated with this VI * * backwards compatible and convieniance routine to allocate a Virtual * Interface with a Ethernet Port Application Function and Intrustion * Detection System disabled. */ int t4_alloc_vi(struct adapter *adap, unsigned int mbox, unsigned int port, unsigned int pf, unsigned int vf, unsigned int nmac, u8 *mac, unsigned int *rss_size) { return t4_alloc_vi_func(adap, mbox, port, pf, vf, nmac, mac, rss_size, FW_VI_FUNC_ETH, 0); } /** * t4_free_vi - free a virtual interface * @adap: the adapter * @mbox: mailbox to use for the FW command * @pf: the PF owning the VI * @vf: the VF owning the VI * @viid: virtual interface identifiler * * Free a previously allocated virtual interface. */ int t4_free_vi(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int viid) { struct fw_vi_cmd c; memset(&c, 0, sizeof(c)); c.op_to_vfn = htonl(V_FW_CMD_OP(FW_VI_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_EXEC | V_FW_VI_CMD_PFN(pf) | V_FW_VI_CMD_VFN(vf)); c.alloc_to_len16 = htonl(F_FW_VI_CMD_FREE | FW_LEN16(c)); c.type_to_viid = htons(V_FW_VI_CMD_VIID(viid)); return t4_wr_mbox(adap, mbox, &c, sizeof(c), &c); } /** * t4_set_rxmode - set Rx properties of a virtual interface * @adap: the adapter * @mbox: mailbox to use for the FW command * @viid: the VI id * @mtu: the new MTU or -1 * @promisc: 1 to enable promiscuous mode, 0 to disable it, -1 no change * @all_multi: 1 to enable all-multi mode, 0 to disable it, -1 no change * @bcast: 1 to enable broadcast Rx, 0 to disable it, -1 no change * @vlanex: 1 to enable HVLAN extraction, 0 to disable it, -1 no change * @sleep_ok: if true we may sleep while awaiting command completion * * Sets Rx properties of a virtual interface. */ int t4_set_rxmode(struct adapter *adap, unsigned int mbox, unsigned int viid, int mtu, int promisc, int all_multi, int bcast, int vlanex, bool sleep_ok) { struct fw_vi_rxmode_cmd c; /* convert to FW values */ if (mtu < 0) mtu = M_FW_VI_RXMODE_CMD_MTU; if (promisc < 0) promisc = M_FW_VI_RXMODE_CMD_PROMISCEN; if (all_multi < 0) all_multi = M_FW_VI_RXMODE_CMD_ALLMULTIEN; if (bcast < 0) bcast = M_FW_VI_RXMODE_CMD_BROADCASTEN; if (vlanex < 0) vlanex = M_FW_VI_RXMODE_CMD_VLANEXEN; memset(&c, 0, sizeof(c)); c.op_to_viid = htonl(V_FW_CMD_OP(FW_VI_RXMODE_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE | V_FW_VI_RXMODE_CMD_VIID(viid)); c.retval_len16 = htonl(FW_LEN16(c)); c.mtu_to_vlanexen = htonl(V_FW_VI_RXMODE_CMD_MTU(mtu) | V_FW_VI_RXMODE_CMD_PROMISCEN(promisc) | V_FW_VI_RXMODE_CMD_ALLMULTIEN(all_multi) | V_FW_VI_RXMODE_CMD_BROADCASTEN(bcast) | V_FW_VI_RXMODE_CMD_VLANEXEN(vlanex)); return t4_wr_mbox_meat(adap, mbox, &c, sizeof(c), NULL, sleep_ok); } /** * t4_alloc_mac_filt - allocates exact-match filters for MAC addresses * @adap: the adapter * @mbox: mailbox to use for the FW command * @viid: the VI id * @free: if true any existing filters for this VI id are first removed * @naddr: the number of MAC addresses to allocate filters for (up to 7) * @addr: the MAC address(es) * @idx: where to store the index of each allocated filter * @hash: pointer to hash address filter bitmap * @sleep_ok: call is allowed to sleep * * Allocates an exact-match filter for each of the supplied addresses and * sets it to the corresponding address. If @idx is not %NULL it should * have at least @naddr entries, each of which will be set to the index of * the filter allocated for the corresponding MAC address. If a filter * could not be allocated for an address its index is set to 0xffff. * If @hash is not %NULL addresses that fail to allocate an exact filter * are hashed and update the hash filter bitmap pointed at by @hash. * * Returns a negative error number or the number of filters allocated. */ int t4_alloc_mac_filt(struct adapter *adap, unsigned int mbox, unsigned int viid, bool free, unsigned int naddr, const u8 **addr, u16 *idx, u64 *hash, bool sleep_ok) { int offset, ret = 0; struct fw_vi_mac_cmd c; unsigned int nfilters = 0; unsigned int rem = naddr; if (naddr > NUM_MPS_CLS_SRAM_L_INSTANCES) return -EINVAL; for (offset = 0; offset < naddr ; /**/) { unsigned int fw_naddr = (rem < ARRAY_SIZE(c.u.exact) ? rem : ARRAY_SIZE(c.u.exact)); size_t len16 = DIV_ROUND_UP(offsetof(struct fw_vi_mac_cmd, u.exact[fw_naddr]), 16); struct fw_vi_mac_exact *p; int i; memset(&c, 0, sizeof(c)); c.op_to_viid = htonl(V_FW_CMD_OP(FW_VI_MAC_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE | V_FW_CMD_EXEC(free) | V_FW_VI_MAC_CMD_VIID(viid)); c.freemacs_to_len16 = htonl(V_FW_VI_MAC_CMD_FREEMACS(free) | V_FW_CMD_LEN16(len16)); for (i = 0, p = c.u.exact; i < fw_naddr; i++, p++) { p->valid_to_idx = htons( F_FW_VI_MAC_CMD_VALID | V_FW_VI_MAC_CMD_IDX(FW_VI_MAC_ADD_MAC)); memcpy(p->macaddr, addr[offset+i], sizeof(p->macaddr)); } /* * It's okay if we run out of space in our MAC address arena. * Some of the addresses we submit may get stored so we need * to run through the reply to see what the results were ... */ ret = t4_wr_mbox_meat(adap, mbox, &c, sizeof(c), &c, sleep_ok); if (ret && ret != -FW_ENOMEM) break; for (i = 0, p = c.u.exact; i < fw_naddr; i++, p++) { u16 index = G_FW_VI_MAC_CMD_IDX(ntohs(p->valid_to_idx)); if (idx) idx[offset+i] = (index >= NUM_MPS_CLS_SRAM_L_INSTANCES ? 0xffff : index); if (index < NUM_MPS_CLS_SRAM_L_INSTANCES) nfilters++; else if (hash) *hash |= (1ULL << hash_mac_addr(addr[offset+i])); } free = false; offset += fw_naddr; rem -= fw_naddr; } if (ret == 0 || ret == -FW_ENOMEM) ret = nfilters; return ret; } /** * t4_change_mac - modifies the exact-match filter for a MAC address * @adap: the adapter * @mbox: mailbox to use for the FW command * @viid: the VI id * @idx: index of existing filter for old value of MAC address, or -1 * @addr: the new MAC address value * @persist: whether a new MAC allocation should be persistent * @add_smt: if true also add the address to the HW SMT * * Modifies an exact-match filter and sets it to the new MAC address if * @idx >= 0, or adds the MAC address to a new filter if @idx < 0. In the * latter case the address is added persistently if @persist is %true. * * Note that in general it is not possible to modify the value of a given * filter so the generic way to modify an address filter is to free the one * being used by the old address value and allocate a new filter for the * new address value. * * Returns a negative error number or the index of the filter with the new * MAC value. Note that this index may differ from @idx. */ int t4_change_mac(struct adapter *adap, unsigned int mbox, unsigned int viid, int idx, const u8 *addr, bool persist, bool add_smt) { int ret, mode; struct fw_vi_mac_cmd c; struct fw_vi_mac_exact *p = c.u.exact; if (idx < 0) /* new allocation */ idx = persist ? FW_VI_MAC_ADD_PERSIST_MAC : FW_VI_MAC_ADD_MAC; mode = add_smt ? FW_VI_MAC_SMT_AND_MPSTCAM : FW_VI_MAC_MPS_TCAM_ENTRY; memset(&c, 0, sizeof(c)); c.op_to_viid = htonl(V_FW_CMD_OP(FW_VI_MAC_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE | V_FW_VI_MAC_CMD_VIID(viid)); c.freemacs_to_len16 = htonl(V_FW_CMD_LEN16(1)); p->valid_to_idx = htons(F_FW_VI_MAC_CMD_VALID | V_FW_VI_MAC_CMD_SMAC_RESULT(mode) | V_FW_VI_MAC_CMD_IDX(idx)); memcpy(p->macaddr, addr, sizeof(p->macaddr)); ret = t4_wr_mbox_ns(adap, mbox, &c, sizeof(c), &c); if (ret == 0) { ret = G_FW_VI_MAC_CMD_IDX(ntohs(p->valid_to_idx)); if (ret >= NUM_MPS_CLS_SRAM_L_INSTANCES) ret = -ENOMEM; } return ret; } /** * t4_set_addr_hash - program the MAC inexact-match hash filter * @adap: the adapter * @mbox: mailbox to use for the FW command * @viid: the VI id * @ucast: whether the hash filter should also match unicast addresses * @vec: the value to be written to the hash filter * @sleep_ok: call is allowed to sleep * * Sets the 64-bit inexact-match hash filter for a virtual interface. */ int t4_set_addr_hash(struct adapter *adap, unsigned int mbox, unsigned int viid, bool ucast, u64 vec, bool sleep_ok) { struct fw_vi_mac_cmd c; memset(&c, 0, sizeof(c)); c.op_to_viid = htonl(V_FW_CMD_OP(FW_VI_MAC_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE | V_FW_VI_ENABLE_CMD_VIID(viid)); c.freemacs_to_len16 = htonl(F_FW_VI_MAC_CMD_HASHVECEN | V_FW_VI_MAC_CMD_HASHUNIEN(ucast) | V_FW_CMD_LEN16(1)); c.u.hash.hashvec = cpu_to_be64(vec); return t4_wr_mbox_meat(adap, mbox, &c, sizeof(c), NULL, sleep_ok); } /** * t4_enable_vi - enable/disable a virtual interface * @adap: the adapter * @mbox: mailbox to use for the FW command * @viid: the VI id * @rx_en: 1=enable Rx, 0=disable Rx * @tx_en: 1=enable Tx, 0=disable Tx * * Enables/disables a virtual interface. */ int t4_enable_vi(struct adapter *adap, unsigned int mbox, unsigned int viid, bool rx_en, bool tx_en) { struct fw_vi_enable_cmd c; memset(&c, 0, sizeof(c)); c.op_to_viid = htonl(V_FW_CMD_OP(FW_VI_ENABLE_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_EXEC | V_FW_VI_ENABLE_CMD_VIID(viid)); c.ien_to_len16 = htonl(V_FW_VI_ENABLE_CMD_IEN(rx_en) | V_FW_VI_ENABLE_CMD_EEN(tx_en) | FW_LEN16(c)); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_identify_port - identify a VI's port by blinking its LED * @adap: the adapter * @mbox: mailbox to use for the FW command * @viid: the VI id * @nblinks: how many times to blink LED at 2.5 Hz * * Identifies a VI's port by blinking its LED. */ int t4_identify_port(struct adapter *adap, unsigned int mbox, unsigned int viid, unsigned int nblinks) { struct fw_vi_enable_cmd c; memset(&c, 0, sizeof(c)); c.op_to_viid = htonl(V_FW_CMD_OP(FW_VI_ENABLE_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_EXEC | V_FW_VI_ENABLE_CMD_VIID(viid)); c.ien_to_len16 = htonl(F_FW_VI_ENABLE_CMD_LED | FW_LEN16(c)); c.blinkdur = htons(nblinks); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_iq_start_stop - enable/disable an ingress queue and its FLs * @adap: the adapter * @mbox: mailbox to use for the FW command * @start: %true to enable the queues, %false to disable them * @pf: the PF owning the queues * @vf: the VF owning the queues * @iqid: ingress queue id * @fl0id: FL0 queue id or 0xffff if no attached FL0 * @fl1id: FL1 queue id or 0xffff if no attached FL1 * * Starts or stops an ingress queue and its associated FLs, if any. */ int t4_iq_start_stop(struct adapter *adap, unsigned int mbox, bool start, unsigned int pf, unsigned int vf, unsigned int iqid, unsigned int fl0id, unsigned int fl1id) { struct fw_iq_cmd c; memset(&c, 0, sizeof(c)); c.op_to_vfn = htonl(V_FW_CMD_OP(FW_IQ_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_EXEC | V_FW_IQ_CMD_PFN(pf) | V_FW_IQ_CMD_VFN(vf)); c.alloc_to_len16 = htonl(V_FW_IQ_CMD_IQSTART(start) | V_FW_IQ_CMD_IQSTOP(!start) | FW_LEN16(c)); c.iqid = htons(iqid); c.fl0id = htons(fl0id); c.fl1id = htons(fl1id); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_iq_free - free an ingress queue and its FLs * @adap: the adapter * @mbox: mailbox to use for the FW command * @pf: the PF owning the queues * @vf: the VF owning the queues * @iqtype: the ingress queue type (FW_IQ_TYPE_FL_INT_CAP, etc.) * @iqid: ingress queue id * @fl0id: FL0 queue id or 0xffff if no attached FL0 * @fl1id: FL1 queue id or 0xffff if no attached FL1 * * Frees an ingress queue and its associated FLs, if any. */ int t4_iq_free(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int iqtype, unsigned int iqid, unsigned int fl0id, unsigned int fl1id) { struct fw_iq_cmd c; memset(&c, 0, sizeof(c)); c.op_to_vfn = htonl(V_FW_CMD_OP(FW_IQ_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_EXEC | V_FW_IQ_CMD_PFN(pf) | V_FW_IQ_CMD_VFN(vf)); c.alloc_to_len16 = htonl(F_FW_IQ_CMD_FREE | FW_LEN16(c)); c.type_to_iqandstindex = htonl(V_FW_IQ_CMD_TYPE(iqtype)); c.iqid = htons(iqid); c.fl0id = htons(fl0id); c.fl1id = htons(fl1id); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_eth_eq_free - free an Ethernet egress queue * @adap: the adapter * @mbox: mailbox to use for the FW command * @pf: the PF owning the queue * @vf: the VF owning the queue * @eqid: egress queue id * * Frees an Ethernet egress queue. */ int t4_eth_eq_free(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int eqid) { struct fw_eq_eth_cmd c; memset(&c, 0, sizeof(c)); c.op_to_vfn = htonl(V_FW_CMD_OP(FW_EQ_ETH_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_EXEC | V_FW_EQ_ETH_CMD_PFN(pf) | V_FW_EQ_ETH_CMD_VFN(vf)); c.alloc_to_len16 = htonl(F_FW_EQ_ETH_CMD_FREE | FW_LEN16(c)); c.eqid_pkd = htonl(V_FW_EQ_ETH_CMD_EQID(eqid)); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_ctrl_eq_free - free a control egress queue * @adap: the adapter * @mbox: mailbox to use for the FW command * @pf: the PF owning the queue * @vf: the VF owning the queue * @eqid: egress queue id * * Frees a control egress queue. */ int t4_ctrl_eq_free(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int eqid) { struct fw_eq_ctrl_cmd c; memset(&c, 0, sizeof(c)); c.op_to_vfn = htonl(V_FW_CMD_OP(FW_EQ_CTRL_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_EXEC | V_FW_EQ_CTRL_CMD_PFN(pf) | V_FW_EQ_CTRL_CMD_VFN(vf)); c.alloc_to_len16 = htonl(F_FW_EQ_CTRL_CMD_FREE | FW_LEN16(c)); c.cmpliqid_eqid = htonl(V_FW_EQ_CTRL_CMD_EQID(eqid)); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_ofld_eq_free - free an offload egress queue * @adap: the adapter * @mbox: mailbox to use for the FW command * @pf: the PF owning the queue * @vf: the VF owning the queue * @eqid: egress queue id * * Frees a control egress queue. */ int t4_ofld_eq_free(struct adapter *adap, unsigned int mbox, unsigned int pf, unsigned int vf, unsigned int eqid) { struct fw_eq_ofld_cmd c; memset(&c, 0, sizeof(c)); c.op_to_vfn = htonl(V_FW_CMD_OP(FW_EQ_OFLD_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_EXEC | V_FW_EQ_OFLD_CMD_PFN(pf) | V_FW_EQ_OFLD_CMD_VFN(vf)); c.alloc_to_len16 = htonl(F_FW_EQ_OFLD_CMD_FREE | FW_LEN16(c)); c.eqid_pkd = htonl(V_FW_EQ_OFLD_CMD_EQID(eqid)); return t4_wr_mbox(adap, mbox, &c, sizeof(c), NULL); } /** * t4_handle_fw_rpl - process a FW reply message * @adap: the adapter * @rpl: start of the FW message * * Processes a FW message, such as link state change messages. */ int t4_handle_fw_rpl(struct adapter *adap, const __be64 *rpl) { u8 opcode = *(const u8 *)rpl; const struct fw_port_cmd *p = (const void *)rpl; unsigned int action = G_FW_PORT_CMD_ACTION(ntohl(p->action_to_len16)); if (opcode == FW_PORT_CMD && action == FW_PORT_ACTION_GET_PORT_INFO) { /* link/module state change message */ int speed = 0, fc = 0, i; int chan = G_FW_PORT_CMD_PORTID(ntohl(p->op_to_portid)); struct port_info *pi = NULL; struct link_config *lc; u32 stat = ntohl(p->u.info.lstatus_to_modtype); int link_ok = (stat & F_FW_PORT_CMD_LSTATUS) != 0; u32 mod = G_FW_PORT_CMD_MODTYPE(stat); if (stat & F_FW_PORT_CMD_RXPAUSE) fc |= PAUSE_RX; if (stat & F_FW_PORT_CMD_TXPAUSE) fc |= PAUSE_TX; if (stat & V_FW_PORT_CMD_LSPEED(FW_PORT_CAP_SPEED_100M)) speed = SPEED_100; else if (stat & V_FW_PORT_CMD_LSPEED(FW_PORT_CAP_SPEED_1G)) speed = SPEED_1000; else if (stat & V_FW_PORT_CMD_LSPEED(FW_PORT_CAP_SPEED_10G)) speed = SPEED_10000; for_each_port(adap, i) { pi = adap2pinfo(adap, i); if (pi->tx_chan == chan) break; } lc = &pi->link_cfg; if (link_ok != lc->link_ok || speed != lc->speed || fc != lc->fc) { /* something changed */ lc->link_ok = link_ok; lc->speed = speed; lc->fc = fc; t4_os_link_changed(adap, i, link_ok); } if (mod != pi->mod_type) { pi->mod_type = mod; t4_os_portmod_changed(adap, i); } } else { CH_WARN_RATELIMIT(adap, "Unknown firmware reply 0x%x (0x%x)\n", opcode, action); return -EINVAL; } return 0; } /** * get_pci_mode - determine a card's PCI mode * @adapter: the adapter * @p: where to store the PCI settings * * Determines a card's PCI mode and associated parameters, such as speed * and width. */ static void __devinit get_pci_mode(struct adapter *adapter, struct pci_params *p) { u16 val; u32 pcie_cap; pcie_cap = t4_os_find_pci_capability(adapter, PCI_CAP_ID_EXP); if (pcie_cap) { t4_os_pci_read_cfg2(adapter, pcie_cap + PCI_EXP_LNKSTA, &val); p->speed = val & PCI_EXP_LNKSTA_CLS; p->width = (val & PCI_EXP_LNKSTA_NLW) >> 4; } } /** * init_link_config - initialize a link's SW state * @lc: structure holding the link state * @caps: link capabilities * * Initializes the SW state maintained for each link, including the link's * capabilities and default speed/flow-control/autonegotiation settings. */ static void __devinit init_link_config(struct link_config *lc, unsigned int caps) { lc->supported = caps; lc->requested_speed = 0; lc->speed = 0; lc->requested_fc = lc->fc = PAUSE_RX | PAUSE_TX; if (lc->supported & FW_PORT_CAP_ANEG) { lc->advertising = lc->supported & ADVERT_MASK; lc->autoneg = AUTONEG_ENABLE; lc->requested_fc |= PAUSE_AUTONEG; } else { lc->advertising = 0; lc->autoneg = AUTONEG_DISABLE; } } static int __devinit wait_dev_ready(struct adapter *adap) { u32 whoami; whoami = t4_read_reg(adap, A_PL_WHOAMI); if (whoami != 0xffffffff && whoami != X_CIM_PF_NOACCESS) return 0; msleep(500); whoami = t4_read_reg(adap, A_PL_WHOAMI); return (whoami != 0xffffffff && whoami != X_CIM_PF_NOACCESS ? 0 : -EIO); } static int __devinit get_flash_params(struct adapter *adapter) { int ret; u32 info = 0; ret = sf1_write(adapter, 1, 1, 0, SF_RD_ID); if (!ret) ret = sf1_read(adapter, 3, 0, 1, &info); t4_write_reg(adapter, A_SF_OP, 0); /* unlock SF */ if (ret < 0) return ret; if ((info & 0xff) != 0x20) /* not a Numonix flash */ return -EINVAL; info >>= 16; /* log2 of size */ if (info >= 0x14 && info < 0x18) adapter->params.sf_nsec = 1 << (info - 16); else if (info == 0x18) adapter->params.sf_nsec = 64; else return -EINVAL; adapter->params.sf_size = 1 << info; return 0; } static void __devinit set_pcie_completion_timeout(struct adapter *adapter, u8 range) { u16 val; u32 pcie_cap; pcie_cap = t4_os_find_pci_capability(adapter, PCI_CAP_ID_EXP); if (pcie_cap) { t4_os_pci_read_cfg2(adapter, pcie_cap + PCI_EXP_DEVCTL2, &val); val &= 0xfff0; val |= range ; t4_os_pci_write_cfg2(adapter, pcie_cap + PCI_EXP_DEVCTL2, val); } } /** * t4_prep_adapter - prepare SW and HW for operation * @adapter: the adapter * @reset: if true perform a HW reset * * Initialize adapter SW state for the various HW modules, set initial * values for some adapter tunables, take PHYs out of reset, and * initialize the MDIO interface. */ int __devinit t4_prep_adapter(struct adapter *adapter) { int ret; ret = wait_dev_ready(adapter); if (ret < 0) return ret; get_pci_mode(adapter, &adapter->params.pci); adapter->params.rev = t4_read_reg(adapter, A_PL_REV); /* T4A1 chip is no longer supported */ if (adapter->params.rev == 1) { CH_ALERT(adapter, "T4 rev 1 chip is no longer supported\n"); return -EINVAL; } adapter->params.pci.vpd_cap_addr = t4_os_find_pci_capability(adapter, PCI_CAP_ID_VPD); ret = get_flash_params(adapter); if (ret < 0) return ret; ret = get_vpd_params(adapter, &adapter->params.vpd); if (ret < 0) return ret; if (t4_read_reg(adapter, A_PCIE_REVISION) != 0) { /* FPGA */ adapter->params.cim_la_size = 2 * CIMLA_SIZE; } else { /* ASIC */ adapter->params.cim_la_size = CIMLA_SIZE; } init_cong_ctrl(adapter->params.a_wnd, adapter->params.b_wnd); /* * Default port and clock for debugging in case we can't reach FW. */ adapter->params.nports = 1; adapter->params.portvec = 1; adapter->params.vpd.cclk = 50000; /* Set pci completion timeout value to 4 seconds. */ set_pcie_completion_timeout(adapter, 0xd); return 0; } int __devinit t4_port_init(struct port_info *p, int mbox, int pf, int vf) { u8 addr[6]; int ret, i, j; struct fw_port_cmd c; unsigned int rss_size; adapter_t *adap = p->adapter; memset(&c, 0, sizeof(c)); for (i = 0, j = -1; i <= p->port_id; i++) { do { j++; } while ((adap->params.portvec & (1 << j)) == 0); } c.op_to_portid = htonl(V_FW_CMD_OP(FW_PORT_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_READ | V_FW_PORT_CMD_PORTID(j)); c.action_to_len16 = htonl( V_FW_PORT_CMD_ACTION(FW_PORT_ACTION_GET_PORT_INFO) | FW_LEN16(c)); ret = t4_wr_mbox(adap, mbox, &c, sizeof(c), &c); if (ret) return ret; ret = t4_alloc_vi(adap, mbox, j, pf, vf, 1, addr, &rss_size); if (ret < 0) return ret; p->viid = ret; p->tx_chan = j; p->lport = j; p->rss_size = rss_size; t4_os_set_hw_addr(adap, p->port_id, addr); ret = ntohl(c.u.info.lstatus_to_modtype); p->mdio_addr = (ret & F_FW_PORT_CMD_MDIOCAP) ? G_FW_PORT_CMD_MDIOADDR(ret) : -1; p->port_type = G_FW_PORT_CMD_PTYPE(ret); p->mod_type = G_FW_PORT_CMD_MODTYPE(ret); init_link_config(&p->link_cfg, ntohs(c.u.info.pcap)); return 0; } int t4_config_scheduler(struct adapter *adapter, int mode, int level, int pktsize, int sched_class, int port, int unit, int rate, int weight, int minrate, int maxrate) { struct fw_sched_cmd cmd, rpl; if (rate < 0 || unit < 0) return -EINVAL; memset(&cmd, 0, sizeof(cmd)); cmd.op_to_write = cpu_to_be32(V_FW_CMD_OP(FW_SCHED_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE); cmd.retval_len16 = cpu_to_be32(V_FW_CMD_LEN16(sizeof(cmd)/16)); cmd.u.params.sc = 1; cmd.u.params.level = level; cmd.u.params.mode = mode; cmd.u.params.ch = port; cmd.u.params.cl = sched_class; cmd.u.params.rate = rate; cmd.u.params.unit = unit; switch (level) { case FW_SCHED_PARAMS_LEVEL_CH_WRR: case FW_SCHED_PARAMS_LEVEL_CL_WRR: cmd.u.params.weight = cpu_to_be16(weight); break; case FW_SCHED_PARAMS_LEVEL_CH_RL: case FW_SCHED_PARAMS_LEVEL_CL_RL: cmd.u.params.max = cpu_to_be32(maxrate); cmd.u.params.min = cpu_to_be32(minrate); cmd.u.params.pktsize = cpu_to_be16(pktsize); break; default: return -EINVAL; } return t4_wr_mbox_meat(adapter, adapter->mbox, &cmd, sizeof(cmd), &rpl, 1); } Index: head/sys/dev/cxgbe/t4_ioctl.h =================================================================== --- head/sys/dev/cxgbe/t4_ioctl.h (revision 241398) +++ head/sys/dev/cxgbe/t4_ioctl.h (revision 241399) @@ -1,227 +1,237 @@ /*- * Copyright (c) 2011 Chelsio Communications, Inc. * All rights reserved. * Written by: Navdeep Parhar * * 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. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR 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 AUTHOR 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. * * $FreeBSD$ * */ #ifndef __T4_IOCTL_H__ #define __T4_IOCTL_H__ #include #include /* * Ioctl commands specific to this driver. */ enum { T4_GETREG = 0x40, /* read register */ T4_SETREG, /* write register */ T4_REGDUMP, /* dump of all registers */ T4_GET_FILTER_MODE, /* get global filter mode */ T4_SET_FILTER_MODE, /* set global filter mode */ T4_GET_FILTER, /* get information about a filter */ T4_SET_FILTER, /* program a filter */ T4_DEL_FILTER, /* delete a filter */ T4_GET_SGE_CONTEXT, /* get SGE context for a queue */ T4_LOAD_FW, /* flash firmware */ T4_GET_MEM, /* read memory */ + T4_GET_I2C, /* read from i2c addressible device */ }; struct t4_reg { uint32_t addr; uint32_t size; uint64_t val; }; #define T4_REGDUMP_SIZE (160 * 1024) struct t4_regdump { uint32_t version; uint32_t len; /* bytes */ uint32_t *data; }; struct t4_data { uint32_t len; uint8_t *data; }; +struct t4_i2c_data { + uint8_t port_id; + uint8_t dev_addr; + uint8_t offset; + uint8_t len; + uint8_t data[8]; +}; + /* * A hardware filter is some valid combination of these. */ #define T4_FILTER_IPv4 0x1 /* IPv4 packet */ #define T4_FILTER_IPv6 0x2 /* IPv6 packet */ #define T4_FILTER_IP_SADDR 0x4 /* Source IP address or network */ #define T4_FILTER_IP_DADDR 0x8 /* Destination IP address or network */ #define T4_FILTER_IP_SPORT 0x10 /* Source IP port */ #define T4_FILTER_IP_DPORT 0x20 /* Destination IP port */ #define T4_FILTER_FCoE 0x40 /* Fibre Channel over Ethernet packet */ #define T4_FILTER_PORT 0x80 /* Physical ingress port */ #define T4_FILTER_VNIC 0x100 /* VNIC id or outer VLAN */ #define T4_FILTER_VLAN 0x200 /* VLAN ID */ #define T4_FILTER_IP_TOS 0x400 /* IPv4 TOS/IPv6 Traffic Class */ #define T4_FILTER_IP_PROTO 0x800 /* IP protocol */ #define T4_FILTER_ETH_TYPE 0x1000 /* Ethernet Type */ #define T4_FILTER_MAC_IDX 0x2000 /* MPS MAC address match index */ #define T4_FILTER_MPS_HIT_TYPE 0x4000 /* MPS match type */ #define T4_FILTER_IP_FRAGMENT 0x8000 /* IP fragment */ /* Filter action */ enum { FILTER_PASS = 0, /* default */ FILTER_DROP, FILTER_SWITCH }; /* 802.1q manipulation on FILTER_SWITCH */ enum { VLAN_NOCHANGE = 0, /* default */ VLAN_REMOVE, VLAN_INSERT, VLAN_REWRITE }; /* MPS match type */ enum { UCAST_EXACT = 0, /* exact unicast match */ UCAST_HASH = 1, /* inexact (hashed) unicast match */ MCAST_EXACT = 2, /* exact multicast match */ MCAST_HASH = 3, /* inexact (hashed) multicast match */ PROMISC = 4, /* no match but port is promiscuous */ HYPPROMISC = 5, /* port is hypervisor-promisuous + not bcast */ BCAST = 6, /* broadcast packet */ }; /* Rx steering */ enum { DST_MODE_QUEUE, /* queue is directly specified by filter */ DST_MODE_RSS_QUEUE, /* filter specifies RSS entry containing queue */ DST_MODE_RSS, /* queue selected by default RSS hash lookup */ DST_MODE_FILT_RSS /* queue selected by hashing in filter-specified RSS subtable */ }; struct t4_filter_tuple { /* * These are always available. */ uint8_t sip[16]; /* source IP address (IPv4 in [3:0]) */ uint8_t dip[16]; /* destinatin IP address (IPv4 in [3:0]) */ uint16_t sport; /* source port */ uint16_t dport; /* destination port */ /* * A combination of these (upto 36 bits) is available. TP_VLAN_PRI_MAP * is used to select the global mode and all filters are limited to the * set of fields allowed by the global mode. */ uint16_t vnic; /* VNIC id or outer VLAN tag */ uint16_t vlan; /* VLAN tag */ uint16_t ethtype; /* Ethernet type */ uint8_t tos; /* TOS/Traffic Type */ uint8_t proto; /* protocol type */ uint32_t fcoe:1; /* FCoE packet */ uint32_t iport:3; /* ingress port */ uint32_t matchtype:3; /* MPS match type */ uint32_t frag:1; /* fragmentation extension header */ uint32_t macidx:9; /* exact match MAC index */ uint32_t vlan_vld:1; /* VLAN valid */ uint32_t vnic_vld:1; /* VNIC id/outer VLAN tag valid */ }; struct t4_filter_specification { uint32_t hitcnts:1; /* count filter hits in TCB */ uint32_t prio:1; /* filter has priority over active/server */ uint32_t type:1; /* 0 => IPv4, 1 => IPv6 */ uint32_t action:2; /* drop, pass, switch */ uint32_t rpttid:1; /* report TID in RSS hash field */ uint32_t dirsteer:1; /* 0 => RSS, 1 => steer to iq */ uint32_t iq:10; /* ingress queue */ uint32_t maskhash:1; /* dirsteer=0: store RSS hash in TCB */ uint32_t dirsteerhash:1;/* dirsteer=1: 0 => TCB contains RSS hash */ /* 1 => TCB contains IQ ID */ /* * Switch proxy/rewrite fields. An ingress packet which matches a * filter with "switch" set will be looped back out as an egress * packet -- potentially with some Ethernet header rewriting. */ uint32_t eport:2; /* egress port to switch packet out */ uint32_t newdmac:1; /* rewrite destination MAC address */ uint32_t newsmac:1; /* rewrite source MAC address */ uint32_t newvlan:2; /* rewrite VLAN Tag */ uint8_t dmac[ETHER_ADDR_LEN]; /* new destination MAC address */ uint8_t smac[ETHER_ADDR_LEN]; /* new source MAC address */ uint16_t vlan; /* VLAN Tag to insert */ /* * Filter rule value/mask pairs. */ struct t4_filter_tuple val; struct t4_filter_tuple mask; }; struct t4_filter { uint32_t idx; uint16_t l2tidx; uint16_t smtidx; uint64_t hits; struct t4_filter_specification fs; }; #define T4_SGE_CONTEXT_SIZE 24 enum { SGE_CONTEXT_EGRESS, SGE_CONTEXT_INGRESS, SGE_CONTEXT_FLM, SGE_CONTEXT_CNM }; struct t4_sge_context { uint32_t mem_id; uint32_t cid; uint32_t data[T4_SGE_CONTEXT_SIZE / 4]; }; struct t4_mem_range { uint32_t addr; uint32_t len; uint32_t *data; }; #define CHELSIO_T4_GETREG _IOWR('f', T4_GETREG, struct t4_reg) #define CHELSIO_T4_SETREG _IOW('f', T4_SETREG, struct t4_reg) #define CHELSIO_T4_REGDUMP _IOWR('f', T4_REGDUMP, struct t4_regdump) #define CHELSIO_T4_GET_FILTER_MODE _IOWR('f', T4_GET_FILTER_MODE, uint32_t) #define CHELSIO_T4_SET_FILTER_MODE _IOW('f', T4_SET_FILTER_MODE, uint32_t) #define CHELSIO_T4_GET_FILTER _IOWR('f', T4_GET_FILTER, struct t4_filter) #define CHELSIO_T4_SET_FILTER _IOW('f', T4_SET_FILTER, struct t4_filter) #define CHELSIO_T4_DEL_FILTER _IOW('f', T4_DEL_FILTER, struct t4_filter) #define CHELSIO_T4_GET_SGE_CONTEXT _IOWR('f', T4_GET_SGE_CONTEXT, \ struct t4_sge_context) #define CHELSIO_T4_LOAD_FW _IOW('f', T4_LOAD_FW, struct t4_data) #define CHELSIO_T4_GET_MEM _IOW('f', T4_GET_MEM, struct t4_mem_range) +#define CHELSIO_T4_GET_I2C _IOWR('f', T4_GET_I2C, struct t4_i2c_data) #endif Index: head/sys/dev/cxgbe/t4_main.c =================================================================== --- head/sys/dev/cxgbe/t4_main.c (revision 241398) +++ head/sys/dev/cxgbe/t4_main.c (revision 241399) @@ -1,5640 +1,5667 @@ /*- * Copyright (c) 2011 Chelsio Communications, Inc. * All rights reserved. * Written by: Navdeep Parhar * * 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. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR 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 AUTHOR 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. */ #include __FBSDID("$FreeBSD$"); #include "opt_inet.h" #include "opt_inet6.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 "common/common.h" #include "common/t4_msg.h" #include "common/t4_regs.h" #include "common/t4_regs_values.h" #include "t4_ioctl.h" #include "t4_l2t.h" /* T4 bus driver interface */ static int t4_probe(device_t); static int t4_attach(device_t); static int t4_detach(device_t); static device_method_t t4_methods[] = { DEVMETHOD(device_probe, t4_probe), DEVMETHOD(device_attach, t4_attach), DEVMETHOD(device_detach, t4_detach), DEVMETHOD_END }; static driver_t t4_driver = { "t4nex", t4_methods, sizeof(struct adapter) }; /* T4 port (cxgbe) interface */ static int cxgbe_probe(device_t); static int cxgbe_attach(device_t); static int cxgbe_detach(device_t); static device_method_t cxgbe_methods[] = { DEVMETHOD(device_probe, cxgbe_probe), DEVMETHOD(device_attach, cxgbe_attach), DEVMETHOD(device_detach, cxgbe_detach), { 0, 0 } }; static driver_t cxgbe_driver = { "cxgbe", cxgbe_methods, sizeof(struct port_info) }; static d_ioctl_t t4_ioctl; static d_open_t t4_open; static d_close_t t4_close; static struct cdevsw t4_cdevsw = { .d_version = D_VERSION, .d_flags = 0, .d_open = t4_open, .d_close = t4_close, .d_ioctl = t4_ioctl, .d_name = "t4nex", }; /* ifnet + media interface */ static void cxgbe_init(void *); static int cxgbe_ioctl(struct ifnet *, unsigned long, caddr_t); static int cxgbe_transmit(struct ifnet *, struct mbuf *); static void cxgbe_qflush(struct ifnet *); static int cxgbe_media_change(struct ifnet *); static void cxgbe_media_status(struct ifnet *, struct ifmediareq *); MALLOC_DEFINE(M_CXGBE, "cxgbe", "Chelsio T4 Ethernet driver and services"); /* * Correct lock order when you need to acquire multiple locks is t4_list_lock, * then ADAPTER_LOCK, then t4_uld_list_lock. */ static struct mtx t4_list_lock; static SLIST_HEAD(, adapter) t4_list; #ifdef TCP_OFFLOAD static struct mtx t4_uld_list_lock; static SLIST_HEAD(, uld_info) t4_uld_list; #endif /* * Tunables. See tweak_tunables() too. */ /* * Number of queues for tx and rx, 10G and 1G, NIC and offload. */ #define NTXQ_10G 16 static int t4_ntxq10g = -1; TUNABLE_INT("hw.cxgbe.ntxq10g", &t4_ntxq10g); #define NRXQ_10G 8 static int t4_nrxq10g = -1; TUNABLE_INT("hw.cxgbe.nrxq10g", &t4_nrxq10g); #define NTXQ_1G 4 static int t4_ntxq1g = -1; TUNABLE_INT("hw.cxgbe.ntxq1g", &t4_ntxq1g); #define NRXQ_1G 2 static int t4_nrxq1g = -1; TUNABLE_INT("hw.cxgbe.nrxq1g", &t4_nrxq1g); #ifdef TCP_OFFLOAD #define NOFLDTXQ_10G 8 static int t4_nofldtxq10g = -1; TUNABLE_INT("hw.cxgbe.nofldtxq10g", &t4_nofldtxq10g); #define NOFLDRXQ_10G 2 static int t4_nofldrxq10g = -1; TUNABLE_INT("hw.cxgbe.nofldrxq10g", &t4_nofldrxq10g); #define NOFLDTXQ_1G 2 static int t4_nofldtxq1g = -1; TUNABLE_INT("hw.cxgbe.nofldtxq1g", &t4_nofldtxq1g); #define NOFLDRXQ_1G 1 static int t4_nofldrxq1g = -1; TUNABLE_INT("hw.cxgbe.nofldrxq1g", &t4_nofldrxq1g); #endif /* * Holdoff parameters for 10G and 1G ports. */ #define TMR_IDX_10G 1 static int t4_tmr_idx_10g = TMR_IDX_10G; TUNABLE_INT("hw.cxgbe.holdoff_timer_idx_10G", &t4_tmr_idx_10g); #define PKTC_IDX_10G (-1) static int t4_pktc_idx_10g = PKTC_IDX_10G; TUNABLE_INT("hw.cxgbe.holdoff_pktc_idx_10G", &t4_pktc_idx_10g); #define TMR_IDX_1G 1 static int t4_tmr_idx_1g = TMR_IDX_1G; TUNABLE_INT("hw.cxgbe.holdoff_timer_idx_1G", &t4_tmr_idx_1g); #define PKTC_IDX_1G (-1) static int t4_pktc_idx_1g = PKTC_IDX_1G; TUNABLE_INT("hw.cxgbe.holdoff_pktc_idx_1G", &t4_pktc_idx_1g); /* * Size (# of entries) of each tx and rx queue. */ static unsigned int t4_qsize_txq = TX_EQ_QSIZE; TUNABLE_INT("hw.cxgbe.qsize_txq", &t4_qsize_txq); static unsigned int t4_qsize_rxq = RX_IQ_QSIZE; TUNABLE_INT("hw.cxgbe.qsize_rxq", &t4_qsize_rxq); /* * Interrupt types allowed (bits 0, 1, 2 = INTx, MSI, MSI-X respectively). */ static int t4_intr_types = INTR_MSIX | INTR_MSI | INTR_INTX; TUNABLE_INT("hw.cxgbe.interrupt_types", &t4_intr_types); /* * Configuration file. */ static char t4_cfg_file[32] = "default"; TUNABLE_STR("hw.cxgbe.config_file", t4_cfg_file, sizeof(t4_cfg_file)); /* * ASIC features that will be used. Disable the ones you don't want so that the * chip resources aren't wasted on features that will not be used. */ static int t4_linkcaps_allowed = 0; /* No DCBX, PPP, etc. by default */ TUNABLE_INT("hw.cxgbe.linkcaps_allowed", &t4_linkcaps_allowed); static int t4_niccaps_allowed = FW_CAPS_CONFIG_NIC; TUNABLE_INT("hw.cxgbe.niccaps_allowed", &t4_niccaps_allowed); static int t4_toecaps_allowed = -1; TUNABLE_INT("hw.cxgbe.toecaps_allowed", &t4_toecaps_allowed); static int t4_rdmacaps_allowed = 0; TUNABLE_INT("hw.cxgbe.rdmacaps_allowed", &t4_rdmacaps_allowed); static int t4_iscsicaps_allowed = 0; TUNABLE_INT("hw.cxgbe.iscsicaps_allowed", &t4_iscsicaps_allowed); static int t4_fcoecaps_allowed = 0; TUNABLE_INT("hw.cxgbe.fcoecaps_allowed", &t4_fcoecaps_allowed); struct intrs_and_queues { int intr_type; /* INTx, MSI, or MSI-X */ int nirq; /* Number of vectors */ int intr_flags; int ntxq10g; /* # of NIC txq's for each 10G port */ int nrxq10g; /* # of NIC rxq's for each 10G port */ int ntxq1g; /* # of NIC txq's for each 1G port */ int nrxq1g; /* # of NIC rxq's for each 1G port */ #ifdef TCP_OFFLOAD int nofldtxq10g; /* # of TOE txq's for each 10G port */ int nofldrxq10g; /* # of TOE rxq's for each 10G port */ int nofldtxq1g; /* # of TOE txq's for each 1G port */ int nofldrxq1g; /* # of TOE rxq's for each 1G port */ #endif }; struct filter_entry { uint32_t valid:1; /* filter allocated and valid */ uint32_t locked:1; /* filter is administratively locked */ uint32_t pending:1; /* filter action is pending firmware reply */ uint32_t smtidx:8; /* Source MAC Table index for smac */ struct l2t_entry *l2t; /* Layer Two Table entry for dmac */ struct t4_filter_specification fs; }; enum { XGMAC_MTU = (1 << 0), XGMAC_PROMISC = (1 << 1), XGMAC_ALLMULTI = (1 << 2), XGMAC_VLANEX = (1 << 3), XGMAC_UCADDR = (1 << 4), XGMAC_MCADDRS = (1 << 5), XGMAC_ALL = 0xffff }; static int map_bars(struct adapter *); static void setup_memwin(struct adapter *); static int cfg_itype_and_nqueues(struct adapter *, int, int, struct intrs_and_queues *); static int prep_firmware(struct adapter *); static int upload_config_file(struct adapter *, const struct firmware *, uint32_t *, uint32_t *); static int partition_resources(struct adapter *, const struct firmware *); static int get_params__pre_init(struct adapter *); static int get_params__post_init(struct adapter *); static void t4_set_desc(struct adapter *); static void build_medialist(struct port_info *); static int update_mac_settings(struct port_info *, int); static int cxgbe_init_locked(struct port_info *); static int cxgbe_init_synchronized(struct port_info *); static int cxgbe_uninit_locked(struct port_info *); static int cxgbe_uninit_synchronized(struct port_info *); static int setup_intr_handlers(struct adapter *); static int adapter_full_init(struct adapter *); static int adapter_full_uninit(struct adapter *); static int port_full_init(struct port_info *); static int port_full_uninit(struct port_info *); static void quiesce_eq(struct adapter *, struct sge_eq *); static void quiesce_iq(struct adapter *, struct sge_iq *); static void quiesce_fl(struct adapter *, struct sge_fl *); static int t4_alloc_irq(struct adapter *, struct irq *, int rid, driver_intr_t *, void *, char *); static int t4_free_irq(struct adapter *, struct irq *); static void reg_block_dump(struct adapter *, uint8_t *, unsigned int, unsigned int); static void t4_get_regs(struct adapter *, struct t4_regdump *, uint8_t *); static void cxgbe_tick(void *); static void cxgbe_vlan_config(void *, struct ifnet *, uint16_t); static int cpl_not_handled(struct sge_iq *, const struct rss_header *, struct mbuf *); static int an_not_handled(struct sge_iq *, const struct rsp_ctrl *); static int fw_msg_not_handled(struct adapter *, const __be64 *); static int t4_sysctls(struct adapter *); static int cxgbe_sysctls(struct port_info *); static int sysctl_int_array(SYSCTL_HANDLER_ARGS); static int sysctl_bitfield(SYSCTL_HANDLER_ARGS); static int sysctl_holdoff_tmr_idx(SYSCTL_HANDLER_ARGS); static int sysctl_holdoff_pktc_idx(SYSCTL_HANDLER_ARGS); static int sysctl_qsize_rxq(SYSCTL_HANDLER_ARGS); static int sysctl_qsize_txq(SYSCTL_HANDLER_ARGS); static int sysctl_handle_t4_reg64(SYSCTL_HANDLER_ARGS); #ifdef SBUF_DRAIN static int sysctl_cctrl(SYSCTL_HANDLER_ARGS); static int sysctl_cpl_stats(SYSCTL_HANDLER_ARGS); static int sysctl_ddp_stats(SYSCTL_HANDLER_ARGS); static int sysctl_devlog(SYSCTL_HANDLER_ARGS); static int sysctl_fcoe_stats(SYSCTL_HANDLER_ARGS); static int sysctl_hw_sched(SYSCTL_HANDLER_ARGS); static int sysctl_lb_stats(SYSCTL_HANDLER_ARGS); static int sysctl_meminfo(SYSCTL_HANDLER_ARGS); static int sysctl_path_mtus(SYSCTL_HANDLER_ARGS); static int sysctl_pm_stats(SYSCTL_HANDLER_ARGS); static int sysctl_rdma_stats(SYSCTL_HANDLER_ARGS); static int sysctl_tcp_stats(SYSCTL_HANDLER_ARGS); static int sysctl_tids(SYSCTL_HANDLER_ARGS); static int sysctl_tp_err_stats(SYSCTL_HANDLER_ARGS); static int sysctl_tx_rate(SYSCTL_HANDLER_ARGS); #endif static inline void txq_start(struct ifnet *, struct sge_txq *); static uint32_t fconf_to_mode(uint32_t); static uint32_t mode_to_fconf(uint32_t); static uint32_t fspec_to_fconf(struct t4_filter_specification *); static int get_filter_mode(struct adapter *, uint32_t *); static int set_filter_mode(struct adapter *, uint32_t); static inline uint64_t get_filter_hits(struct adapter *, uint32_t); static int get_filter(struct adapter *, struct t4_filter *); static int set_filter(struct adapter *, struct t4_filter *); static int del_filter(struct adapter *, struct t4_filter *); static void clear_filter(struct filter_entry *); static int set_filter_wr(struct adapter *, int); static int del_filter_wr(struct adapter *, int); static int get_sge_context(struct adapter *, struct t4_sge_context *); static int read_card_mem(struct adapter *, struct t4_mem_range *); +static int read_i2c(struct adapter *, struct t4_i2c_data *); #ifdef TCP_OFFLOAD static int toe_capability(struct port_info *, int); #endif static int t4_mod_event(module_t, int, void *); struct t4_pciids { uint16_t device; char *desc; } t4_pciids[] = { {0xa000, "Chelsio Terminator 4 FPGA"}, {0x4400, "Chelsio T440-dbg"}, {0x4401, "Chelsio T420-CR"}, {0x4402, "Chelsio T422-CR"}, {0x4403, "Chelsio T440-CR"}, {0x4404, "Chelsio T420-BCH"}, {0x4405, "Chelsio T440-BCH"}, {0x4406, "Chelsio T440-CH"}, {0x4407, "Chelsio T420-SO"}, {0x4408, "Chelsio T420-CX"}, {0x4409, "Chelsio T420-BT"}, {0x440a, "Chelsio T404-BT"}, }; #ifdef TCP_OFFLOAD /* * service_iq() has an iq and needs the fl. Offset of fl from the iq should be * exactly the same for both rxq and ofld_rxq. */ CTASSERT(offsetof(struct sge_ofld_rxq, iq) == offsetof(struct sge_rxq, iq)); CTASSERT(offsetof(struct sge_ofld_rxq, fl) == offsetof(struct sge_rxq, fl)); #endif /* No easy way to include t4_msg.h before adapter.h so we check this way */ CTASSERT(nitems(((struct adapter *)0)->cpl_handler) == NUM_CPL_CMDS); CTASSERT(nitems(((struct adapter *)0)->fw_msg_handler) == NUM_FW6_TYPES); static int t4_probe(device_t dev) { int i; uint16_t v = pci_get_vendor(dev); uint16_t d = pci_get_device(dev); uint8_t f = pci_get_function(dev); if (v != PCI_VENDOR_ID_CHELSIO) return (ENXIO); /* Attach only to PF0 of the FPGA */ if (d == 0xa000 && f != 0) return (ENXIO); for (i = 0; i < nitems(t4_pciids); i++) { if (d == t4_pciids[i].device) { device_set_desc(dev, t4_pciids[i].desc); return (BUS_PROBE_DEFAULT); } } return (ENXIO); } static int t4_attach(device_t dev) { struct adapter *sc; int rc = 0, i, n10g, n1g, rqidx, tqidx; struct intrs_and_queues iaq; struct sge *s; #ifdef TCP_OFFLOAD int ofld_rqidx, ofld_tqidx; #endif sc = device_get_softc(dev); sc->dev = dev; pci_enable_busmaster(dev); if (pci_find_cap(dev, PCIY_EXPRESS, &i) == 0) { uint32_t v; pci_set_max_read_req(dev, 4096); v = pci_read_config(dev, i + PCIER_DEVICE_CTL, 2); v |= PCIEM_CTL_RELAXED_ORD_ENABLE; pci_write_config(dev, i + PCIER_DEVICE_CTL, v, 2); } snprintf(sc->lockname, sizeof(sc->lockname), "%s", device_get_nameunit(dev)); mtx_init(&sc->sc_lock, sc->lockname, 0, MTX_DEF); mtx_lock(&t4_list_lock); SLIST_INSERT_HEAD(&t4_list, sc, link); mtx_unlock(&t4_list_lock); mtx_init(&sc->sfl_lock, "starving freelists", 0, MTX_DEF); TAILQ_INIT(&sc->sfl); callout_init(&sc->sfl_callout, CALLOUT_MPSAFE); rc = map_bars(sc); if (rc != 0) goto done; /* error message displayed already */ /* * This is the real PF# to which we're attaching. Works from within PCI * passthrough environments too, where pci_get_function() could return a * different PF# depending on the passthrough configuration. We need to * use the real PF# in all our communication with the firmware. */ sc->pf = G_SOURCEPF(t4_read_reg(sc, A_PL_WHOAMI)); sc->mbox = sc->pf; memset(sc->chan_map, 0xff, sizeof(sc->chan_map)); sc->an_handler = an_not_handled; for (i = 0; i < nitems(sc->cpl_handler); i++) sc->cpl_handler[i] = cpl_not_handled; for (i = 0; i < nitems(sc->fw_msg_handler); i++) sc->fw_msg_handler[i] = fw_msg_not_handled; t4_register_cpl_handler(sc, CPL_SET_TCB_RPL, t4_filter_rpl); /* Prepare the adapter for operation */ rc = -t4_prep_adapter(sc); if (rc != 0) { device_printf(dev, "failed to prepare adapter: %d.\n", rc); goto done; } /* * Do this really early, with the memory windows set up even before the * character device. The userland tool's register i/o and mem read * will work even in "recovery mode". */ setup_memwin(sc); sc->cdev = make_dev(&t4_cdevsw, device_get_unit(dev), UID_ROOT, GID_WHEEL, 0600, "%s", device_get_nameunit(dev)); sc->cdev->si_drv1 = sc; /* Go no further if recovery mode has been requested. */ if (TUNABLE_INT_FETCH("hw.cxgbe.sos", &i) && i != 0) { device_printf(dev, "recovery mode.\n"); goto done; } /* Prepare the firmware for operation */ rc = prep_firmware(sc); if (rc != 0) goto done; /* error message displayed already */ rc = get_params__pre_init(sc); if (rc != 0) goto done; /* error message displayed already */ rc = t4_sge_init(sc); if (rc != 0) goto done; /* error message displayed already */ if (sc->flags & MASTER_PF) { /* get basic stuff going */ rc = -t4_fw_initialize(sc, sc->mbox); if (rc != 0) { device_printf(dev, "early init failed: %d.\n", rc); goto done; } } rc = get_params__post_init(sc); if (rc != 0) goto done; /* error message displayed already */ if (sc->flags & MASTER_PF) { uint16_t indsz = min(RX_COPY_THRESHOLD - 1, M_INDICATESIZE); /* final tweaks to some settings */ t4_load_mtus(sc, sc->params.mtus, sc->params.a_wnd, sc->params.b_wnd); /* 4K, 16K, 64K, 256K DDP "page sizes" */ t4_write_reg(sc, A_ULP_RX_TDDP_PSZ, V_HPZ0(0) | V_HPZ1(2) | V_HPZ2(4) | V_HPZ3(6)); t4_set_reg_field(sc, A_ULP_RX_CTL, F_TDDPTAGTCB, F_TDDPTAGTCB); t4_set_reg_field(sc, A_TP_PARA_REG3, F_TUNNELCNGDROP0 | F_TUNNELCNGDROP1 | F_TUNNELCNGDROP2 | F_TUNNELCNGDROP3, F_TUNNELCNGDROP0 | F_TUNNELCNGDROP1 | F_TUNNELCNGDROP2 | F_TUNNELCNGDROP3); t4_set_reg_field(sc, A_TP_PARA_REG5, V_INDICATESIZE(M_INDICATESIZE) | F_REARMDDPOFFSET | F_RESETDDPOFFSET, V_INDICATESIZE(indsz) | F_REARMDDPOFFSET | F_RESETDDPOFFSET); } else { /* * XXX: Verify that we can live with whatever the master driver * has done so far, and hope that it doesn't change any global * setting from underneath us in the future. */ } t4_read_indirect(sc, A_TP_PIO_ADDR, A_TP_PIO_DATA, &sc->filter_mode, 1, A_TP_VLAN_PRI_MAP); for (i = 0; i < NCHAN; i++) sc->params.tp.tx_modq[i] = i; rc = t4_create_dma_tag(sc); if (rc != 0) goto done; /* error message displayed already */ /* * First pass over all the ports - allocate VIs and initialize some * basic parameters like mac address, port type, etc. We also figure * out whether a port is 10G or 1G and use that information when * calculating how many interrupts to attempt to allocate. */ n10g = n1g = 0; for_each_port(sc, i) { struct port_info *pi; pi = malloc(sizeof(*pi), M_CXGBE, M_ZERO | M_WAITOK); sc->port[i] = pi; /* These must be set before t4_port_init */ pi->adapter = sc; pi->port_id = i; /* Allocate the vi and initialize parameters like mac addr */ rc = -t4_port_init(pi, sc->mbox, sc->pf, 0); if (rc != 0) { device_printf(dev, "unable to initialize port %d: %d\n", i, rc); free(pi, M_CXGBE); sc->port[i] = NULL; goto done; } snprintf(pi->lockname, sizeof(pi->lockname), "%sp%d", device_get_nameunit(dev), i); mtx_init(&pi->pi_lock, pi->lockname, 0, MTX_DEF); if (is_10G_port(pi)) { n10g++; pi->tmr_idx = t4_tmr_idx_10g; pi->pktc_idx = t4_pktc_idx_10g; } else { n1g++; pi->tmr_idx = t4_tmr_idx_1g; pi->pktc_idx = t4_pktc_idx_1g; } pi->xact_addr_filt = -1; pi->qsize_rxq = t4_qsize_rxq; pi->qsize_txq = t4_qsize_txq; pi->dev = device_add_child(dev, "cxgbe", -1); if (pi->dev == NULL) { device_printf(dev, "failed to add device for port %d.\n", i); rc = ENXIO; goto done; } device_set_softc(pi->dev, pi); } /* * Interrupt type, # of interrupts, # of rx/tx queues, etc. */ rc = cfg_itype_and_nqueues(sc, n10g, n1g, &iaq); if (rc != 0) goto done; /* error message displayed already */ sc->intr_type = iaq.intr_type; sc->intr_count = iaq.nirq; sc->flags |= iaq.intr_flags; s = &sc->sge; s->nrxq = n10g * iaq.nrxq10g + n1g * iaq.nrxq1g; s->ntxq = n10g * iaq.ntxq10g + n1g * iaq.ntxq1g; s->neq = s->ntxq + s->nrxq; /* the free list in an rxq is an eq */ s->neq += sc->params.nports + 1;/* ctrl queues: 1 per port + 1 mgmt */ s->niq = s->nrxq + 1; /* 1 extra for firmware event queue */ #ifdef TCP_OFFLOAD if (is_offload(sc)) { s->nofldrxq = n10g * iaq.nofldrxq10g + n1g * iaq.nofldrxq1g; s->nofldtxq = n10g * iaq.nofldtxq10g + n1g * iaq.nofldtxq1g; s->neq += s->nofldtxq + s->nofldrxq; s->niq += s->nofldrxq; s->ofld_rxq = malloc(s->nofldrxq * sizeof(struct sge_ofld_rxq), M_CXGBE, M_ZERO | M_WAITOK); s->ofld_txq = malloc(s->nofldtxq * sizeof(struct sge_wrq), M_CXGBE, M_ZERO | M_WAITOK); } #endif s->ctrlq = malloc(sc->params.nports * sizeof(struct sge_wrq), M_CXGBE, M_ZERO | M_WAITOK); s->rxq = malloc(s->nrxq * sizeof(struct sge_rxq), M_CXGBE, M_ZERO | M_WAITOK); s->txq = malloc(s->ntxq * sizeof(struct sge_txq), M_CXGBE, M_ZERO | M_WAITOK); s->iqmap = malloc(s->niq * sizeof(struct sge_iq *), M_CXGBE, M_ZERO | M_WAITOK); s->eqmap = malloc(s->neq * sizeof(struct sge_eq *), M_CXGBE, M_ZERO | M_WAITOK); sc->irq = malloc(sc->intr_count * sizeof(struct irq), M_CXGBE, M_ZERO | M_WAITOK); t4_init_l2t(sc, M_WAITOK); /* * Second pass over the ports. This time we know the number of rx and * tx queues that each port should get. */ rqidx = tqidx = 0; #ifdef TCP_OFFLOAD ofld_rqidx = ofld_tqidx = 0; #endif for_each_port(sc, i) { struct port_info *pi = sc->port[i]; if (pi == NULL) continue; pi->first_rxq = rqidx; pi->first_txq = tqidx; if (is_10G_port(pi)) { pi->nrxq = iaq.nrxq10g; pi->ntxq = iaq.ntxq10g; } else { pi->nrxq = iaq.nrxq1g; pi->ntxq = iaq.ntxq1g; } rqidx += pi->nrxq; tqidx += pi->ntxq; #ifdef TCP_OFFLOAD if (is_offload(sc)) { pi->first_ofld_rxq = ofld_rqidx; pi->first_ofld_txq = ofld_tqidx; if (is_10G_port(pi)) { pi->nofldrxq = iaq.nofldrxq10g; pi->nofldtxq = iaq.nofldtxq10g; } else { pi->nofldrxq = iaq.nofldrxq1g; pi->nofldtxq = iaq.nofldtxq1g; } ofld_rqidx += pi->nofldrxq; ofld_tqidx += pi->nofldtxq; } #endif } rc = setup_intr_handlers(sc); if (rc != 0) { device_printf(dev, "failed to setup interrupt handlers: %d\n", rc); goto done; } rc = bus_generic_attach(dev); if (rc != 0) { device_printf(dev, "failed to attach all child ports: %d\n", rc); goto done; } device_printf(dev, "PCIe x%d, %d ports, %d %s interrupt%s, %d eq, %d iq\n", sc->params.pci.width, sc->params.nports, sc->intr_count, sc->intr_type == INTR_MSIX ? "MSI-X" : (sc->intr_type == INTR_MSI ? "MSI" : "INTx"), sc->intr_count > 1 ? "s" : "", sc->sge.neq, sc->sge.niq); t4_set_desc(sc); done: if (rc != 0 && sc->cdev) { /* cdev was created and so cxgbetool works; recover that way. */ device_printf(dev, "error during attach, adapter is now in recovery mode.\n"); rc = 0; } if (rc != 0) t4_detach(dev); else t4_sysctls(sc); return (rc); } /* * Idempotent */ static int t4_detach(device_t dev) { struct adapter *sc; struct port_info *pi; int i, rc; sc = device_get_softc(dev); if (sc->flags & FULL_INIT_DONE) t4_intr_disable(sc); if (sc->cdev) { destroy_dev(sc->cdev); sc->cdev = NULL; } rc = bus_generic_detach(dev); if (rc) { device_printf(dev, "failed to detach child devices: %d\n", rc); return (rc); } for (i = 0; i < sc->intr_count; i++) t4_free_irq(sc, &sc->irq[i]); for (i = 0; i < MAX_NPORTS; i++) { pi = sc->port[i]; if (pi) { t4_free_vi(pi->adapter, sc->mbox, sc->pf, 0, pi->viid); if (pi->dev) device_delete_child(dev, pi->dev); mtx_destroy(&pi->pi_lock); free(pi, M_CXGBE); } } if (sc->flags & FULL_INIT_DONE) adapter_full_uninit(sc); if (sc->flags & FW_OK) t4_fw_bye(sc, sc->mbox); if (sc->intr_type == INTR_MSI || sc->intr_type == INTR_MSIX) pci_release_msi(dev); if (sc->regs_res) bus_release_resource(dev, SYS_RES_MEMORY, sc->regs_rid, sc->regs_res); if (sc->msix_res) bus_release_resource(dev, SYS_RES_MEMORY, sc->msix_rid, sc->msix_res); if (sc->l2t) t4_free_l2t(sc->l2t); #ifdef TCP_OFFLOAD free(sc->sge.ofld_rxq, M_CXGBE); free(sc->sge.ofld_txq, M_CXGBE); #endif free(sc->irq, M_CXGBE); free(sc->sge.rxq, M_CXGBE); free(sc->sge.txq, M_CXGBE); free(sc->sge.ctrlq, M_CXGBE); free(sc->sge.iqmap, M_CXGBE); free(sc->sge.eqmap, M_CXGBE); free(sc->tids.ftid_tab, M_CXGBE); t4_destroy_dma_tag(sc); if (mtx_initialized(&sc->sc_lock)) { mtx_lock(&t4_list_lock); SLIST_REMOVE(&t4_list, sc, adapter, link); mtx_unlock(&t4_list_lock); mtx_destroy(&sc->sc_lock); } if (mtx_initialized(&sc->sfl_lock)) mtx_destroy(&sc->sfl_lock); bzero(sc, sizeof(*sc)); return (0); } static int cxgbe_probe(device_t dev) { char buf[128]; struct port_info *pi = device_get_softc(dev); snprintf(buf, sizeof(buf), "port %d", pi->port_id); device_set_desc_copy(dev, buf); return (BUS_PROBE_DEFAULT); } #define T4_CAP (IFCAP_VLAN_HWTAGGING | IFCAP_VLAN_MTU | IFCAP_HWCSUM | \ IFCAP_VLAN_HWCSUM | IFCAP_TSO | IFCAP_JUMBO_MTU | IFCAP_LRO | \ IFCAP_VLAN_HWTSO | IFCAP_LINKSTATE | IFCAP_HWCSUM_IPV6) #define T4_CAP_ENABLE (T4_CAP) static int cxgbe_attach(device_t dev) { struct port_info *pi = device_get_softc(dev); struct ifnet *ifp; /* Allocate an ifnet and set it up */ ifp = if_alloc(IFT_ETHER); if (ifp == NULL) { device_printf(dev, "Cannot allocate ifnet\n"); return (ENOMEM); } pi->ifp = ifp; ifp->if_softc = pi; callout_init(&pi->tick, CALLOUT_MPSAFE); if_initname(ifp, device_get_name(dev), device_get_unit(dev)); ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST; ifp->if_init = cxgbe_init; ifp->if_ioctl = cxgbe_ioctl; ifp->if_transmit = cxgbe_transmit; ifp->if_qflush = cxgbe_qflush; ifp->if_capabilities = T4_CAP; #ifdef TCP_OFFLOAD if (is_offload(pi->adapter)) ifp->if_capabilities |= IFCAP_TOE4; #endif ifp->if_capenable = T4_CAP_ENABLE; ifp->if_hwassist = CSUM_TCP | CSUM_UDP | CSUM_IP | CSUM_TSO | CSUM_UDP_IPV6 | CSUM_TCP_IPV6; /* Initialize ifmedia for this port */ ifmedia_init(&pi->media, IFM_IMASK, cxgbe_media_change, cxgbe_media_status); build_medialist(pi); pi->vlan_c = EVENTHANDLER_REGISTER(vlan_config, cxgbe_vlan_config, ifp, EVENTHANDLER_PRI_ANY); ether_ifattach(ifp, pi->hw_addr); #ifdef TCP_OFFLOAD if (is_offload(pi->adapter)) { device_printf(dev, "%d txq, %d rxq (NIC); %d txq, %d rxq (TOE)\n", pi->ntxq, pi->nrxq, pi->nofldtxq, pi->nofldrxq); } else #endif device_printf(dev, "%d txq, %d rxq\n", pi->ntxq, pi->nrxq); cxgbe_sysctls(pi); return (0); } static int cxgbe_detach(device_t dev) { struct port_info *pi = device_get_softc(dev); struct adapter *sc = pi->adapter; struct ifnet *ifp = pi->ifp; /* Tell if_ioctl and if_init that the port is going away */ ADAPTER_LOCK(sc); SET_DOOMED(pi); wakeup(&sc->flags); while (IS_BUSY(sc)) mtx_sleep(&sc->flags, &sc->sc_lock, 0, "t4detach", 0); SET_BUSY(sc); ADAPTER_UNLOCK(sc); if (pi->vlan_c) EVENTHANDLER_DEREGISTER(vlan_config, pi->vlan_c); PORT_LOCK(pi); ifp->if_drv_flags &= ~IFF_DRV_RUNNING; callout_stop(&pi->tick); PORT_UNLOCK(pi); callout_drain(&pi->tick); /* Let detach proceed even if these fail. */ cxgbe_uninit_synchronized(pi); port_full_uninit(pi); ifmedia_removeall(&pi->media); ether_ifdetach(pi->ifp); if_free(pi->ifp); ADAPTER_LOCK(sc); CLR_BUSY(sc); wakeup_one(&sc->flags); ADAPTER_UNLOCK(sc); return (0); } static void cxgbe_init(void *arg) { struct port_info *pi = arg; struct adapter *sc = pi->adapter; ADAPTER_LOCK(sc); cxgbe_init_locked(pi); /* releases adapter lock */ ADAPTER_LOCK_ASSERT_NOTOWNED(sc); } static int cxgbe_ioctl(struct ifnet *ifp, unsigned long cmd, caddr_t data) { int rc = 0, mtu, flags; struct port_info *pi = ifp->if_softc; struct adapter *sc = pi->adapter; struct ifreq *ifr = (struct ifreq *)data; uint32_t mask; switch (cmd) { case SIOCSIFMTU: ADAPTER_LOCK(sc); rc = IS_DOOMED(pi) ? ENXIO : (IS_BUSY(sc) ? EBUSY : 0); if (rc) { fail: ADAPTER_UNLOCK(sc); return (rc); } mtu = ifr->ifr_mtu; if ((mtu < ETHERMIN) || (mtu > ETHERMTU_JUMBO)) { rc = EINVAL; } else { ifp->if_mtu = mtu; if (ifp->if_drv_flags & IFF_DRV_RUNNING) { t4_update_fl_bufsize(ifp); PORT_LOCK(pi); rc = update_mac_settings(pi, XGMAC_MTU); PORT_UNLOCK(pi); } } ADAPTER_UNLOCK(sc); break; case SIOCSIFFLAGS: ADAPTER_LOCK(sc); if (IS_DOOMED(pi)) { rc = ENXIO; goto fail; } if (ifp->if_flags & IFF_UP) { if (ifp->if_drv_flags & IFF_DRV_RUNNING) { flags = pi->if_flags; if ((ifp->if_flags ^ flags) & (IFF_PROMISC | IFF_ALLMULTI)) { if (IS_BUSY(sc)) { rc = EBUSY; goto fail; } PORT_LOCK(pi); rc = update_mac_settings(pi, XGMAC_PROMISC | XGMAC_ALLMULTI); PORT_UNLOCK(pi); } ADAPTER_UNLOCK(sc); } else rc = cxgbe_init_locked(pi); pi->if_flags = ifp->if_flags; } else if (ifp->if_drv_flags & IFF_DRV_RUNNING) rc = cxgbe_uninit_locked(pi); else ADAPTER_UNLOCK(sc); ADAPTER_LOCK_ASSERT_NOTOWNED(sc); break; case SIOCADDMULTI: case SIOCDELMULTI: /* these two can be called with a mutex held :-( */ ADAPTER_LOCK(sc); rc = IS_DOOMED(pi) ? ENXIO : (IS_BUSY(sc) ? EBUSY : 0); if (rc) goto fail; if (ifp->if_drv_flags & IFF_DRV_RUNNING) { PORT_LOCK(pi); rc = update_mac_settings(pi, XGMAC_MCADDRS); PORT_UNLOCK(pi); } ADAPTER_UNLOCK(sc); break; case SIOCSIFCAP: ADAPTER_LOCK(sc); rc = IS_DOOMED(pi) ? ENXIO : (IS_BUSY(sc) ? EBUSY : 0); if (rc) goto fail; mask = ifr->ifr_reqcap ^ ifp->if_capenable; if (mask & IFCAP_TXCSUM) { ifp->if_capenable ^= IFCAP_TXCSUM; ifp->if_hwassist ^= (CSUM_TCP | CSUM_UDP | CSUM_IP); if (IFCAP_TSO4 & ifp->if_capenable && !(IFCAP_TXCSUM & ifp->if_capenable)) { ifp->if_capenable &= ~IFCAP_TSO4; if_printf(ifp, "tso4 disabled due to -txcsum.\n"); } } if (mask & IFCAP_TXCSUM_IPV6) { ifp->if_capenable ^= IFCAP_TXCSUM_IPV6; ifp->if_hwassist ^= (CSUM_UDP_IPV6 | CSUM_TCP_IPV6); if (IFCAP_TSO6 & ifp->if_capenable && !(IFCAP_TXCSUM_IPV6 & ifp->if_capenable)) { ifp->if_capenable &= ~IFCAP_TSO6; if_printf(ifp, "tso6 disabled due to -txcsum6.\n"); } } if (mask & IFCAP_RXCSUM) ifp->if_capenable ^= IFCAP_RXCSUM; if (mask & IFCAP_RXCSUM_IPV6) ifp->if_capenable ^= IFCAP_RXCSUM_IPV6; /* * Note that we leave CSUM_TSO alone (it is always set). The * kernel takes both IFCAP_TSOx and CSUM_TSO into account before * sending a TSO request our way, so it's sufficient to toggle * IFCAP_TSOx only. */ if (mask & IFCAP_TSO4) { if (!(IFCAP_TSO4 & ifp->if_capenable) && !(IFCAP_TXCSUM & ifp->if_capenable)) { if_printf(ifp, "enable txcsum first.\n"); rc = EAGAIN; goto fail; } ifp->if_capenable ^= IFCAP_TSO4; } if (mask & IFCAP_TSO6) { if (!(IFCAP_TSO6 & ifp->if_capenable) && !(IFCAP_TXCSUM_IPV6 & ifp->if_capenable)) { if_printf(ifp, "enable txcsum6 first.\n"); rc = EAGAIN; goto fail; } ifp->if_capenable ^= IFCAP_TSO6; } if (mask & IFCAP_LRO) { #if defined(INET) || defined(INET6) int i; struct sge_rxq *rxq; ifp->if_capenable ^= IFCAP_LRO; for_each_rxq(pi, i, rxq) { if (ifp->if_capenable & IFCAP_LRO) rxq->iq.flags |= IQ_LRO_ENABLED; else rxq->iq.flags &= ~IQ_LRO_ENABLED; } #endif } #ifdef TCP_OFFLOAD if (mask & IFCAP_TOE) { int enable = (ifp->if_capenable ^ mask) & IFCAP_TOE; rc = toe_capability(pi, enable); if (rc != 0) goto fail; ifp->if_capenable ^= mask; } #endif if (mask & IFCAP_VLAN_HWTAGGING) { ifp->if_capenable ^= IFCAP_VLAN_HWTAGGING; if (ifp->if_drv_flags & IFF_DRV_RUNNING) { PORT_LOCK(pi); rc = update_mac_settings(pi, XGMAC_VLANEX); PORT_UNLOCK(pi); } } if (mask & IFCAP_VLAN_MTU) { ifp->if_capenable ^= IFCAP_VLAN_MTU; /* Need to find out how to disable auto-mtu-inflation */ } if (mask & IFCAP_VLAN_HWTSO) ifp->if_capenable ^= IFCAP_VLAN_HWTSO; if (mask & IFCAP_VLAN_HWCSUM) ifp->if_capenable ^= IFCAP_VLAN_HWCSUM; #ifdef VLAN_CAPABILITIES VLAN_CAPABILITIES(ifp); #endif ADAPTER_UNLOCK(sc); break; case SIOCSIFMEDIA: case SIOCGIFMEDIA: ifmedia_ioctl(ifp, ifr, &pi->media, cmd); break; default: rc = ether_ioctl(ifp, cmd, data); } return (rc); } static int cxgbe_transmit(struct ifnet *ifp, struct mbuf *m) { struct port_info *pi = ifp->if_softc; struct adapter *sc = pi->adapter; struct sge_txq *txq = &sc->sge.txq[pi->first_txq]; struct buf_ring *br; int rc; M_ASSERTPKTHDR(m); if (__predict_false(pi->link_cfg.link_ok == 0)) { m_freem(m); return (ENETDOWN); } if (m->m_flags & M_FLOWID) txq += (m->m_pkthdr.flowid % pi->ntxq); br = txq->br; if (TXQ_TRYLOCK(txq) == 0) { struct sge_eq *eq = &txq->eq; /* * It is possible that t4_eth_tx finishes up and releases the * lock between the TRYLOCK above and the drbr_enqueue here. We * need to make sure that this mbuf doesn't just sit there in * the drbr. */ rc = drbr_enqueue(ifp, br, m); if (rc == 0 && callout_pending(&eq->tx_callout) == 0 && !(eq->flags & EQ_DOOMED)) callout_reset(&eq->tx_callout, 1, t4_tx_callout, eq); return (rc); } /* * txq->m is the mbuf that is held up due to a temporary shortage of * resources and it should be put on the wire first. Then what's in * drbr and finally the mbuf that was just passed in to us. * * Return code should indicate the fate of the mbuf that was passed in * this time. */ TXQ_LOCK_ASSERT_OWNED(txq); if (drbr_needs_enqueue(ifp, br) || txq->m) { /* Queued for transmission. */ rc = drbr_enqueue(ifp, br, m); m = txq->m ? txq->m : drbr_dequeue(ifp, br); (void) t4_eth_tx(ifp, txq, m); TXQ_UNLOCK(txq); return (rc); } /* Direct transmission. */ rc = t4_eth_tx(ifp, txq, m); if (rc != 0 && txq->m) rc = 0; /* held, will be transmitted soon (hopefully) */ TXQ_UNLOCK(txq); return (rc); } static void cxgbe_qflush(struct ifnet *ifp) { struct port_info *pi = ifp->if_softc; struct sge_txq *txq; int i; struct mbuf *m; /* queues do not exist if !PORT_INIT_DONE. */ if (pi->flags & PORT_INIT_DONE) { for_each_txq(pi, i, txq) { TXQ_LOCK(txq); m_freem(txq->m); txq->m = NULL; while ((m = buf_ring_dequeue_sc(txq->br)) != NULL) m_freem(m); TXQ_UNLOCK(txq); } } if_qflush(ifp); } static int cxgbe_media_change(struct ifnet *ifp) { struct port_info *pi = ifp->if_softc; device_printf(pi->dev, "%s unimplemented.\n", __func__); return (EOPNOTSUPP); } static void cxgbe_media_status(struct ifnet *ifp, struct ifmediareq *ifmr) { struct port_info *pi = ifp->if_softc; struct ifmedia_entry *cur = pi->media.ifm_cur; int speed = pi->link_cfg.speed; int data = (pi->port_type << 8) | pi->mod_type; if (cur->ifm_data != data) { build_medialist(pi); cur = pi->media.ifm_cur; } ifmr->ifm_status = IFM_AVALID; if (!pi->link_cfg.link_ok) return; ifmr->ifm_status |= IFM_ACTIVE; /* active and current will differ iff current media is autoselect. */ if (IFM_SUBTYPE(cur->ifm_media) != IFM_AUTO) return; ifmr->ifm_active = IFM_ETHER | IFM_FDX; if (speed == SPEED_10000) ifmr->ifm_active |= IFM_10G_T; else if (speed == SPEED_1000) ifmr->ifm_active |= IFM_1000_T; else if (speed == SPEED_100) ifmr->ifm_active |= IFM_100_TX; else if (speed == SPEED_10) ifmr->ifm_active |= IFM_10_T; else KASSERT(0, ("%s: link up but speed unknown (%u)", __func__, speed)); } void t4_fatal_err(struct adapter *sc) { t4_set_reg_field(sc, A_SGE_CONTROL, F_GLOBALENABLE, 0); t4_intr_disable(sc); log(LOG_EMERG, "%s: encountered fatal error, adapter stopped.\n", device_get_nameunit(sc->dev)); } static int map_bars(struct adapter *sc) { sc->regs_rid = PCIR_BAR(0); sc->regs_res = bus_alloc_resource_any(sc->dev, SYS_RES_MEMORY, &sc->regs_rid, RF_ACTIVE); if (sc->regs_res == NULL) { device_printf(sc->dev, "cannot map registers.\n"); return (ENXIO); } sc->bt = rman_get_bustag(sc->regs_res); sc->bh = rman_get_bushandle(sc->regs_res); sc->mmio_len = rman_get_size(sc->regs_res); sc->msix_rid = PCIR_BAR(4); sc->msix_res = bus_alloc_resource_any(sc->dev, SYS_RES_MEMORY, &sc->msix_rid, RF_ACTIVE); if (sc->msix_res == NULL) { device_printf(sc->dev, "cannot map MSI-X BAR.\n"); return (ENXIO); } return (0); } static void setup_memwin(struct adapter *sc) { uint32_t bar0; /* * Read low 32b of bar0 indirectly via the hardware backdoor mechanism. * Works from within PCI passthrough environments too, where * rman_get_start() can return a different value. We need to program * the memory window decoders with the actual addresses that will be * coming across the PCIe link. */ bar0 = t4_hw_pci_read_cfg4(sc, PCIR_BAR(0)); bar0 &= (uint32_t) PCIM_BAR_MEM_BASE; t4_write_reg(sc, PCIE_MEM_ACCESS_REG(A_PCIE_MEM_ACCESS_BASE_WIN, 0), (bar0 + MEMWIN0_BASE) | V_BIR(0) | V_WINDOW(ilog2(MEMWIN0_APERTURE) - 10)); t4_write_reg(sc, PCIE_MEM_ACCESS_REG(A_PCIE_MEM_ACCESS_BASE_WIN, 1), (bar0 + MEMWIN1_BASE) | V_BIR(0) | V_WINDOW(ilog2(MEMWIN1_APERTURE) - 10)); t4_write_reg(sc, PCIE_MEM_ACCESS_REG(A_PCIE_MEM_ACCESS_BASE_WIN, 2), (bar0 + MEMWIN2_BASE) | V_BIR(0) | V_WINDOW(ilog2(MEMWIN2_APERTURE) - 10)); /* flush */ t4_read_reg(sc, PCIE_MEM_ACCESS_REG(A_PCIE_MEM_ACCESS_BASE_WIN, 2)); } static int cfg_itype_and_nqueues(struct adapter *sc, int n10g, int n1g, struct intrs_and_queues *iaq) { int rc, itype, navail, nrxq10g, nrxq1g, n; int nofldrxq10g = 0, nofldrxq1g = 0; bzero(iaq, sizeof(*iaq)); iaq->ntxq10g = t4_ntxq10g; iaq->ntxq1g = t4_ntxq1g; iaq->nrxq10g = nrxq10g = t4_nrxq10g; iaq->nrxq1g = nrxq1g = t4_nrxq1g; #ifdef TCP_OFFLOAD if (is_offload(sc)) { iaq->nofldtxq10g = t4_nofldtxq10g; iaq->nofldtxq1g = t4_nofldtxq1g; iaq->nofldrxq10g = nofldrxq10g = t4_nofldrxq10g; iaq->nofldrxq1g = nofldrxq1g = t4_nofldrxq1g; } #endif for (itype = INTR_MSIX; itype; itype >>= 1) { if ((itype & t4_intr_types) == 0) continue; /* not allowed */ if (itype == INTR_MSIX) navail = pci_msix_count(sc->dev); else if (itype == INTR_MSI) navail = pci_msi_count(sc->dev); else navail = 1; restart: if (navail == 0) continue; iaq->intr_type = itype; iaq->intr_flags = 0; /* * Best option: an interrupt vector for errors, one for the * firmware event queue, and one each for each rxq (NIC as well * as offload). */ iaq->nirq = T4_EXTRA_INTR; iaq->nirq += n10g * (nrxq10g + nofldrxq10g); iaq->nirq += n1g * (nrxq1g + nofldrxq1g); if (iaq->nirq <= navail && (itype != INTR_MSI || powerof2(iaq->nirq))) { iaq->intr_flags |= INTR_DIRECT; goto allocate; } /* * Second best option: an interrupt vector for errors, one for * the firmware event queue, and one each for either NIC or * offload rxq's. */ iaq->nirq = T4_EXTRA_INTR; iaq->nirq += n10g * max(nrxq10g, nofldrxq10g); iaq->nirq += n1g * max(nrxq1g, nofldrxq1g); if (iaq->nirq <= navail && (itype != INTR_MSI || powerof2(iaq->nirq))) goto allocate; /* * Next best option: an interrupt vector for errors, one for the * firmware event queue, and at least one per port. At this * point we know we'll have to downsize nrxq or nofldrxq to fit * what's available to us. */ iaq->nirq = T4_EXTRA_INTR; iaq->nirq += n10g + n1g; if (iaq->nirq <= navail) { int leftover = navail - iaq->nirq; if (n10g > 0) { int target = max(nrxq10g, nofldrxq10g); n = 1; while (n < target && leftover >= n10g) { leftover -= n10g; iaq->nirq += n10g; n++; } iaq->nrxq10g = min(n, nrxq10g); #ifdef TCP_OFFLOAD if (is_offload(sc)) iaq->nofldrxq10g = min(n, nofldrxq10g); #endif } if (n1g > 0) { int target = max(nrxq1g, nofldrxq1g); n = 1; while (n < target && leftover >= n1g) { leftover -= n1g; iaq->nirq += n1g; n++; } iaq->nrxq1g = min(n, nrxq1g); #ifdef TCP_OFFLOAD if (is_offload(sc)) iaq->nofldrxq1g = min(n, nofldrxq1g); #endif } if (itype != INTR_MSI || powerof2(iaq->nirq)) goto allocate; } /* * Least desirable option: one interrupt vector for everything. */ iaq->nirq = iaq->nrxq10g = iaq->nrxq1g = 1; #ifdef TCP_OFFLOAD if (is_offload(sc)) iaq->nofldrxq10g = iaq->nofldrxq1g = 1; #endif allocate: navail = iaq->nirq; rc = 0; if (itype == INTR_MSIX) rc = pci_alloc_msix(sc->dev, &navail); else if (itype == INTR_MSI) rc = pci_alloc_msi(sc->dev, &navail); if (rc == 0) { if (navail == iaq->nirq) return (0); /* * Didn't get the number requested. Use whatever number * the kernel is willing to allocate (it's in navail). */ device_printf(sc->dev, "fewer vectors than requested, " "type=%d, req=%d, rcvd=%d; will downshift req.\n", itype, iaq->nirq, navail); pci_release_msi(sc->dev); goto restart; } device_printf(sc->dev, "failed to allocate vectors:%d, type=%d, req=%d, rcvd=%d\n", itype, rc, iaq->nirq, navail); } device_printf(sc->dev, "failed to find a usable interrupt type. " "allowed=%d, msi-x=%d, msi=%d, intx=1", t4_intr_types, pci_msix_count(sc->dev), pci_msi_count(sc->dev)); return (ENXIO); } /* * Install a compatible firmware (if required), establish contact with it (by * saying hello), and reset the device. If we end up as the master driver, * partition adapter resources by providing a configuration file to the * firmware. */ static int prep_firmware(struct adapter *sc) { const struct firmware *fw = NULL, *cfg = NULL, *default_cfg; int rc; enum dev_state state; default_cfg = firmware_get(T4_CFGNAME); /* Check firmware version and install a different one if necessary */ rc = t4_check_fw_version(sc); snprintf(sc->fw_version, sizeof(sc->fw_version), "%u.%u.%u.%u", G_FW_HDR_FW_VER_MAJOR(sc->params.fw_vers), G_FW_HDR_FW_VER_MINOR(sc->params.fw_vers), G_FW_HDR_FW_VER_MICRO(sc->params.fw_vers), G_FW_HDR_FW_VER_BUILD(sc->params.fw_vers)); if (rc != 0) { uint32_t v = 0; fw = firmware_get(T4_FWNAME); if (fw != NULL) { const struct fw_hdr *hdr = (const void *)fw->data; v = ntohl(hdr->fw_ver); /* * The firmware module will not be used if it isn't the * same major version as what the driver was compiled * with. */ if (G_FW_HDR_FW_VER_MAJOR(v) != FW_VERSION_MAJOR) { device_printf(sc->dev, "Found firmware image but version %d " "can not be used with this driver (%d)\n", G_FW_HDR_FW_VER_MAJOR(v), FW_VERSION_MAJOR); firmware_put(fw, FIRMWARE_UNLOAD); fw = NULL; } } if (fw == NULL && rc < 0) { device_printf(sc->dev, "No usable firmware. " "card has %d.%d.%d, driver compiled with %d.%d.%d", G_FW_HDR_FW_VER_MAJOR(sc->params.fw_vers), G_FW_HDR_FW_VER_MINOR(sc->params.fw_vers), G_FW_HDR_FW_VER_MICRO(sc->params.fw_vers), FW_VERSION_MAJOR, FW_VERSION_MINOR, FW_VERSION_MICRO); rc = EAGAIN; goto done; } /* * Always upgrade, even for minor/micro/build mismatches. * Downgrade only for a major version mismatch or if * force_firmware_install was specified. */ if (fw != NULL && (rc < 0 || v > sc->params.fw_vers)) { device_printf(sc->dev, "installing firmware %d.%d.%d.%d on card.\n", G_FW_HDR_FW_VER_MAJOR(v), G_FW_HDR_FW_VER_MINOR(v), G_FW_HDR_FW_VER_MICRO(v), G_FW_HDR_FW_VER_BUILD(v)); rc = -t4_load_fw(sc, fw->data, fw->datasize); if (rc != 0) { device_printf(sc->dev, "failed to install firmware: %d\n", rc); goto done; } else { /* refresh */ (void) t4_check_fw_version(sc); snprintf(sc->fw_version, sizeof(sc->fw_version), "%u.%u.%u.%u", G_FW_HDR_FW_VER_MAJOR(sc->params.fw_vers), G_FW_HDR_FW_VER_MINOR(sc->params.fw_vers), G_FW_HDR_FW_VER_MICRO(sc->params.fw_vers), G_FW_HDR_FW_VER_BUILD(sc->params.fw_vers)); } } } /* Contact firmware. */ rc = t4_fw_hello(sc, sc->mbox, sc->mbox, MASTER_MAY, &state); if (rc < 0) { rc = -rc; device_printf(sc->dev, "failed to connect to the firmware: %d.\n", rc); goto done; } if (rc == sc->mbox) sc->flags |= MASTER_PF; /* Reset device */ rc = -t4_fw_reset(sc, sc->mbox, F_PIORSTMODE | F_PIORST); if (rc != 0) { device_printf(sc->dev, "firmware reset failed: %d.\n", rc); if (rc != ETIMEDOUT && rc != EIO) t4_fw_bye(sc, sc->mbox); goto done; } /* Partition adapter resources as specified in the config file. */ if (sc->flags & MASTER_PF) { if (strncmp(t4_cfg_file, "default", sizeof(t4_cfg_file))) { char s[32]; snprintf(s, sizeof(s), "t4fw_cfg_%s", t4_cfg_file); cfg = firmware_get(s); if (cfg == NULL) { device_printf(sc->dev, "unable to locate %s module, " "will use default config file.\n", s); } } rc = partition_resources(sc, cfg ? cfg : default_cfg); if (rc != 0) goto done; /* error message displayed already */ } sc->flags |= FW_OK; done: if (fw != NULL) firmware_put(fw, FIRMWARE_UNLOAD); if (cfg != NULL) firmware_put(cfg, FIRMWARE_UNLOAD); if (default_cfg != NULL) firmware_put(default_cfg, FIRMWARE_UNLOAD); return (rc); } #define FW_PARAM_DEV(param) \ (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_DEV) | \ V_FW_PARAMS_PARAM_X(FW_PARAMS_PARAM_DEV_##param)) #define FW_PARAM_PFVF(param) \ (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_PFVF) | \ V_FW_PARAMS_PARAM_X(FW_PARAMS_PARAM_PFVF_##param)) /* * Upload configuration file to card's memory. */ static int upload_config_file(struct adapter *sc, const struct firmware *fw, uint32_t *mt, uint32_t *ma) { int rc, i; uint32_t param, val, mtype, maddr, bar, off, win, remaining; const uint32_t *b; /* Figure out where the firmware wants us to upload it. */ param = FW_PARAM_DEV(CF); rc = -t4_query_params(sc, sc->mbox, sc->pf, 0, 1, ¶m, &val); if (rc != 0) { /* Firmwares without config file support will fail this way */ device_printf(sc->dev, "failed to query config file location: %d.\n", rc); return (rc); } *mt = mtype = G_FW_PARAMS_PARAM_Y(val); *ma = maddr = G_FW_PARAMS_PARAM_Z(val) << 16; if (maddr & 3) { device_printf(sc->dev, "cannot upload config file (type %u, addr %x).\n", mtype, maddr); return (EFAULT); } /* Translate mtype/maddr to an address suitable for the PCIe window */ val = t4_read_reg(sc, A_MA_TARGET_MEM_ENABLE); val &= F_EDRAM0_ENABLE | F_EDRAM1_ENABLE | F_EXT_MEM_ENABLE; switch (mtype) { case FW_MEMTYPE_CF_EDC0: if (!(val & F_EDRAM0_ENABLE)) goto err; bar = t4_read_reg(sc, A_MA_EDRAM0_BAR); maddr += G_EDRAM0_BASE(bar) << 20; break; case FW_MEMTYPE_CF_EDC1: if (!(val & F_EDRAM1_ENABLE)) goto err; bar = t4_read_reg(sc, A_MA_EDRAM1_BAR); maddr += G_EDRAM1_BASE(bar) << 20; break; case FW_MEMTYPE_CF_EXTMEM: if (!(val & F_EXT_MEM_ENABLE)) goto err; bar = t4_read_reg(sc, A_MA_EXT_MEMORY_BAR); maddr += G_EXT_MEM_BASE(bar) << 20; break; default: err: device_printf(sc->dev, "cannot upload config file (type %u, enabled %u).\n", mtype, val); return (EFAULT); } /* * Position the PCIe window (we use memwin2) to the 16B aligned area * just at/before the upload location. */ win = maddr & ~0xf; off = maddr - win; /* offset from the start of the window. */ t4_write_reg(sc, PCIE_MEM_ACCESS_REG(A_PCIE_MEM_ACCESS_OFFSET, 2), win); t4_read_reg(sc, PCIE_MEM_ACCESS_REG(A_PCIE_MEM_ACCESS_OFFSET, 2)); remaining = fw->datasize; if (remaining > FLASH_CFG_MAX_SIZE || remaining > MEMWIN2_APERTURE - off) { device_printf(sc->dev, "cannot upload config file all at once " "(size %u, max %u, room %u).\n", remaining, FLASH_CFG_MAX_SIZE, MEMWIN2_APERTURE - off); return (EFBIG); } /* * XXX: sheer laziness. We deliberately added 4 bytes of useless * stuffing/comments at the end of the config file so it's ok to simply * throw away the last remaining bytes when the config file is not an * exact multiple of 4. */ b = fw->data; for (i = 0; remaining >= 4; i += 4, remaining -= 4) t4_write_reg(sc, MEMWIN2_BASE + off + i, *b++); return (rc); } /* * Partition chip resources for use between various PFs, VFs, etc. This is done * by uploading the firmware configuration file to the adapter and instructing * the firmware to process it. */ static int partition_resources(struct adapter *sc, const struct firmware *cfg) { int rc; struct fw_caps_config_cmd caps; uint32_t mtype, maddr, finicsum, cfcsum; rc = cfg ? upload_config_file(sc, cfg, &mtype, &maddr) : ENOENT; if (rc != 0) { mtype = FW_MEMTYPE_CF_FLASH; maddr = t4_flash_cfg_addr(sc); } bzero(&caps, sizeof(caps)); caps.op_to_write = htobe32(V_FW_CMD_OP(FW_CAPS_CONFIG_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_READ); caps.cfvalid_to_len16 = htobe32(F_FW_CAPS_CONFIG_CMD_CFVALID | V_FW_CAPS_CONFIG_CMD_MEMTYPE_CF(mtype) | V_FW_CAPS_CONFIG_CMD_MEMADDR64K_CF(maddr >> 16) | FW_LEN16(caps)); rc = -t4_wr_mbox(sc, sc->mbox, &caps, sizeof(caps), &caps); if (rc != 0) { device_printf(sc->dev, "failed to pre-process config file: %d.\n", rc); return (rc); } finicsum = be32toh(caps.finicsum); cfcsum = be32toh(caps.cfcsum); if (finicsum != cfcsum) { device_printf(sc->dev, "WARNING: config file checksum mismatch: %08x %08x\n", finicsum, cfcsum); } sc->cfcsum = cfcsum; #define LIMIT_CAPS(x) do { \ caps.x &= htobe16(t4_##x##_allowed); \ sc->x = htobe16(caps.x); \ } while (0) /* * Let the firmware know what features will (not) be used so it can tune * things accordingly. */ LIMIT_CAPS(linkcaps); LIMIT_CAPS(niccaps); LIMIT_CAPS(toecaps); LIMIT_CAPS(rdmacaps); LIMIT_CAPS(iscsicaps); LIMIT_CAPS(fcoecaps); #undef LIMIT_CAPS caps.op_to_write = htobe32(V_FW_CMD_OP(FW_CAPS_CONFIG_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_WRITE); caps.cfvalid_to_len16 = htobe32(FW_LEN16(caps)); rc = -t4_wr_mbox(sc, sc->mbox, &caps, sizeof(caps), NULL); if (rc != 0) { device_printf(sc->dev, "failed to process config file: %d.\n", rc); return (rc); } return (0); } /* * Retrieve parameters that are needed (or nice to have) prior to calling * t4_sge_init and t4_fw_initialize. */ static int get_params__pre_init(struct adapter *sc) { int rc; uint32_t param[2], val[2]; struct fw_devlog_cmd cmd; struct devlog_params *dlog = &sc->params.devlog; param[0] = FW_PARAM_DEV(PORTVEC); param[1] = FW_PARAM_DEV(CCLK); rc = -t4_query_params(sc, sc->mbox, sc->pf, 0, 2, param, val); if (rc != 0) { device_printf(sc->dev, "failed to query parameters (pre_init): %d.\n", rc); return (rc); } sc->params.portvec = val[0]; sc->params.nports = bitcount32(val[0]); sc->params.vpd.cclk = val[1]; /* Read device log parameters. */ bzero(&cmd, sizeof(cmd)); cmd.op_to_write = htobe32(V_FW_CMD_OP(FW_DEVLOG_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_READ); cmd.retval_len16 = htobe32(FW_LEN16(cmd)); rc = -t4_wr_mbox(sc, sc->mbox, &cmd, sizeof(cmd), &cmd); if (rc != 0) { device_printf(sc->dev, "failed to get devlog parameters: %d.\n", rc); bzero(dlog, sizeof (*dlog)); rc = 0; /* devlog isn't critical for device operation */ } else { val[0] = be32toh(cmd.memtype_devlog_memaddr16_devlog); dlog->memtype = G_FW_DEVLOG_CMD_MEMTYPE_DEVLOG(val[0]); dlog->start = G_FW_DEVLOG_CMD_MEMADDR16_DEVLOG(val[0]) << 4; dlog->size = be32toh(cmd.memsize_devlog); } return (rc); } /* * Retrieve various parameters that are of interest to the driver. The device * has been initialized by the firmware at this point. */ static int get_params__post_init(struct adapter *sc) { int rc; uint32_t param[7], val[7]; struct fw_caps_config_cmd caps; param[0] = FW_PARAM_PFVF(IQFLINT_START); param[1] = FW_PARAM_PFVF(EQ_START); param[2] = FW_PARAM_PFVF(FILTER_START); param[3] = FW_PARAM_PFVF(FILTER_END); rc = -t4_query_params(sc, sc->mbox, sc->pf, 0, 4, param, val); if (rc != 0) { device_printf(sc->dev, "failed to query parameters (post_init): %d.\n", rc); return (rc); } sc->sge.iq_start = val[0]; sc->sge.eq_start = val[1]; sc->tids.ftid_base = val[2]; sc->tids.nftids = val[3] - val[2] + 1; /* get capabilites */ bzero(&caps, sizeof(caps)); caps.op_to_write = htobe32(V_FW_CMD_OP(FW_CAPS_CONFIG_CMD) | F_FW_CMD_REQUEST | F_FW_CMD_READ); caps.cfvalid_to_len16 = htobe32(FW_LEN16(caps)); rc = -t4_wr_mbox(sc, sc->mbox, &caps, sizeof(caps), &caps); if (rc != 0) { device_printf(sc->dev, "failed to get card capabilities: %d.\n", rc); return (rc); } if (caps.toecaps) { /* query offload-related parameters */ param[0] = FW_PARAM_DEV(NTID); param[1] = FW_PARAM_PFVF(SERVER_START); param[2] = FW_PARAM_PFVF(SERVER_END); param[3] = FW_PARAM_PFVF(TDDP_START); param[4] = FW_PARAM_PFVF(TDDP_END); param[5] = FW_PARAM_DEV(FLOWC_BUFFIFO_SZ); rc = -t4_query_params(sc, sc->mbox, sc->pf, 0, 6, param, val); if (rc != 0) { device_printf(sc->dev, "failed to query TOE parameters: %d.\n", rc); return (rc); } sc->tids.ntids = val[0]; sc->tids.natids = min(sc->tids.ntids / 2, MAX_ATIDS); sc->tids.stid_base = val[1]; sc->tids.nstids = val[2] - val[1] + 1; sc->vres.ddp.start = val[3]; sc->vres.ddp.size = val[4] - val[3] + 1; sc->params.ofldq_wr_cred = val[5]; sc->params.offload = 1; } if (caps.rdmacaps) { param[0] = FW_PARAM_PFVF(STAG_START); param[1] = FW_PARAM_PFVF(STAG_END); param[2] = FW_PARAM_PFVF(RQ_START); param[3] = FW_PARAM_PFVF(RQ_END); param[4] = FW_PARAM_PFVF(PBL_START); param[5] = FW_PARAM_PFVF(PBL_END); rc = -t4_query_params(sc, sc->mbox, sc->pf, 0, 6, param, val); if (rc != 0) { device_printf(sc->dev, "failed to query RDMA parameters(1): %d.\n", rc); return (rc); } sc->vres.stag.start = val[0]; sc->vres.stag.size = val[1] - val[0] + 1; sc->vres.rq.start = val[2]; sc->vres.rq.size = val[3] - val[2] + 1; sc->vres.pbl.start = val[4]; sc->vres.pbl.size = val[5] - val[4] + 1; param[0] = FW_PARAM_PFVF(SQRQ_START); param[1] = FW_PARAM_PFVF(SQRQ_END); param[2] = FW_PARAM_PFVF(CQ_START); param[3] = FW_PARAM_PFVF(CQ_END); param[4] = FW_PARAM_PFVF(OCQ_START); param[5] = FW_PARAM_PFVF(OCQ_END); rc = -t4_query_params(sc, 0, 0, 0, 6, param, val); if (rc != 0) { device_printf(sc->dev, "failed to query RDMA parameters(2): %d.\n", rc); return (rc); } sc->vres.qp.start = val[0]; sc->vres.qp.size = val[1] - val[0] + 1; sc->vres.cq.start = val[2]; sc->vres.cq.size = val[3] - val[2] + 1; sc->vres.ocq.start = val[4]; sc->vres.ocq.size = val[5] - val[4] + 1; } if (caps.iscsicaps) { param[0] = FW_PARAM_PFVF(ISCSI_START); param[1] = FW_PARAM_PFVF(ISCSI_END); rc = -t4_query_params(sc, sc->mbox, sc->pf, 0, 2, param, val); if (rc != 0) { device_printf(sc->dev, "failed to query iSCSI parameters: %d.\n", rc); return (rc); } sc->vres.iscsi.start = val[0]; sc->vres.iscsi.size = val[1] - val[0] + 1; } /* These are finalized by FW initialization, load their values now */ val[0] = t4_read_reg(sc, A_TP_TIMER_RESOLUTION); sc->params.tp.tre = G_TIMERRESOLUTION(val[0]); sc->params.tp.dack_re = G_DELAYEDACKRESOLUTION(val[0]); t4_read_mtu_tbl(sc, sc->params.mtus, NULL); return (rc); } #undef FW_PARAM_PFVF #undef FW_PARAM_DEV static void t4_set_desc(struct adapter *sc) { char buf[128]; struct adapter_params *p = &sc->params; snprintf(buf, sizeof(buf), "Chelsio %s %sNIC (rev %d), S/N:%s, E/C:%s", p->vpd.id, is_offload(sc) ? "R" : "", p->rev, p->vpd.sn, p->vpd.ec); device_set_desc_copy(sc->dev, buf); } static void build_medialist(struct port_info *pi) { struct ifmedia *media = &pi->media; int data, m; PORT_LOCK(pi); ifmedia_removeall(media); m = IFM_ETHER | IFM_FDX; data = (pi->port_type << 8) | pi->mod_type; switch(pi->port_type) { case FW_PORT_TYPE_BT_XFI: ifmedia_add(media, m | IFM_10G_T, data, NULL); break; case FW_PORT_TYPE_BT_XAUI: ifmedia_add(media, m | IFM_10G_T, data, NULL); /* fall through */ case FW_PORT_TYPE_BT_SGMII: ifmedia_add(media, m | IFM_1000_T, data, NULL); ifmedia_add(media, m | IFM_100_TX, data, NULL); ifmedia_add(media, IFM_ETHER | IFM_AUTO, data, NULL); ifmedia_set(media, IFM_ETHER | IFM_AUTO); break; case FW_PORT_TYPE_CX4: ifmedia_add(media, m | IFM_10G_CX4, data, NULL); ifmedia_set(media, m | IFM_10G_CX4); break; case FW_PORT_TYPE_SFP: case FW_PORT_TYPE_FIBER_XFI: case FW_PORT_TYPE_FIBER_XAUI: switch (pi->mod_type) { case FW_PORT_MOD_TYPE_LR: ifmedia_add(media, m | IFM_10G_LR, data, NULL); ifmedia_set(media, m | IFM_10G_LR); break; case FW_PORT_MOD_TYPE_SR: ifmedia_add(media, m | IFM_10G_SR, data, NULL); ifmedia_set(media, m | IFM_10G_SR); break; case FW_PORT_MOD_TYPE_LRM: ifmedia_add(media, m | IFM_10G_LRM, data, NULL); ifmedia_set(media, m | IFM_10G_LRM); break; case FW_PORT_MOD_TYPE_TWINAX_PASSIVE: case FW_PORT_MOD_TYPE_TWINAX_ACTIVE: ifmedia_add(media, m | IFM_10G_TWINAX, data, NULL); ifmedia_set(media, m | IFM_10G_TWINAX); break; case FW_PORT_MOD_TYPE_NONE: m &= ~IFM_FDX; ifmedia_add(media, m | IFM_NONE, data, NULL); ifmedia_set(media, m | IFM_NONE); break; case FW_PORT_MOD_TYPE_NA: case FW_PORT_MOD_TYPE_ER: default: ifmedia_add(media, m | IFM_UNKNOWN, data, NULL); ifmedia_set(media, m | IFM_UNKNOWN); break; } break; case FW_PORT_TYPE_KX4: case FW_PORT_TYPE_KX: case FW_PORT_TYPE_KR: default: ifmedia_add(media, m | IFM_UNKNOWN, data, NULL); ifmedia_set(media, m | IFM_UNKNOWN); break; } PORT_UNLOCK(pi); } #define FW_MAC_EXACT_CHUNK 7 /* * Program the port's XGMAC based on parameters in ifnet. The caller also * indicates which parameters should be programmed (the rest are left alone). */ static int update_mac_settings(struct port_info *pi, int flags) { int rc; struct ifnet *ifp = pi->ifp; struct adapter *sc = pi->adapter; int mtu = -1, promisc = -1, allmulti = -1, vlanex = -1; PORT_LOCK_ASSERT_OWNED(pi); KASSERT(flags, ("%s: not told what to update.", __func__)); if (flags & XGMAC_MTU) mtu = ifp->if_mtu; if (flags & XGMAC_PROMISC) promisc = ifp->if_flags & IFF_PROMISC ? 1 : 0; if (flags & XGMAC_ALLMULTI) allmulti = ifp->if_flags & IFF_ALLMULTI ? 1 : 0; if (flags & XGMAC_VLANEX) vlanex = ifp->if_capenable & IFCAP_VLAN_HWTAGGING ? 1 : 0; rc = -t4_set_rxmode(sc, sc->mbox, pi->viid, mtu, promisc, allmulti, 1, vlanex, false); if (rc) { if_printf(ifp, "set_rxmode (%x) failed: %d\n", flags, rc); return (rc); } if (flags & XGMAC_UCADDR) { uint8_t ucaddr[ETHER_ADDR_LEN]; bcopy(IF_LLADDR(ifp), ucaddr, sizeof(ucaddr)); rc = t4_change_mac(sc, sc->mbox, pi->viid, pi->xact_addr_filt, ucaddr, true, true); if (rc < 0) { rc = -rc; if_printf(ifp, "change_mac failed: %d\n", rc); return (rc); } else { pi->xact_addr_filt = rc; rc = 0; } } if (flags & XGMAC_MCADDRS) { const uint8_t *mcaddr[FW_MAC_EXACT_CHUNK]; int del = 1; uint64_t hash = 0; struct ifmultiaddr *ifma; int i = 0, j; if_maddr_rlock(ifp); TAILQ_FOREACH(ifma, &ifp->if_multiaddrs, ifma_link) { if (ifma->ifma_addr->sa_family != AF_LINK) continue; mcaddr[i++] = LLADDR((struct sockaddr_dl *)ifma->ifma_addr); if (i == FW_MAC_EXACT_CHUNK) { rc = t4_alloc_mac_filt(sc, sc->mbox, pi->viid, del, i, mcaddr, NULL, &hash, 0); if (rc < 0) { rc = -rc; for (j = 0; j < i; j++) { if_printf(ifp, "failed to add mc address" " %02x:%02x:%02x:" "%02x:%02x:%02x rc=%d\n", mcaddr[j][0], mcaddr[j][1], mcaddr[j][2], mcaddr[j][3], mcaddr[j][4], mcaddr[j][5], rc); } goto mcfail; } del = 0; i = 0; } } if (i > 0) { rc = t4_alloc_mac_filt(sc, sc->mbox, pi->viid, del, i, mcaddr, NULL, &hash, 0); if (rc < 0) { rc = -rc; for (j = 0; j < i; j++) { if_printf(ifp, "failed to add mc address" " %02x:%02x:%02x:" "%02x:%02x:%02x rc=%d\n", mcaddr[j][0], mcaddr[j][1], mcaddr[j][2], mcaddr[j][3], mcaddr[j][4], mcaddr[j][5], rc); } goto mcfail; } } rc = -t4_set_addr_hash(sc, sc->mbox, pi->viid, 0, hash, 0); if (rc != 0) if_printf(ifp, "failed to set mc address hash: %d", rc); mcfail: if_maddr_runlock(ifp); } return (rc); } static int cxgbe_init_locked(struct port_info *pi) { struct adapter *sc = pi->adapter; int rc = 0; ADAPTER_LOCK_ASSERT_OWNED(sc); while (!IS_DOOMED(pi) && IS_BUSY(sc)) { if (mtx_sleep(&sc->flags, &sc->sc_lock, PCATCH, "t4init", 0)) { rc = EINTR; goto done; } } if (IS_DOOMED(pi)) { rc = ENXIO; goto done; } KASSERT(!IS_BUSY(sc), ("%s: controller busy.", __func__)); /* Give up the adapter lock, port init code can sleep. */ SET_BUSY(sc); ADAPTER_UNLOCK(sc); rc = cxgbe_init_synchronized(pi); done: ADAPTER_LOCK(sc); KASSERT(IS_BUSY(sc), ("%s: controller not busy.", __func__)); CLR_BUSY(sc); wakeup_one(&sc->flags); ADAPTER_UNLOCK(sc); return (rc); } static int cxgbe_init_synchronized(struct port_info *pi) { struct adapter *sc = pi->adapter; struct ifnet *ifp = pi->ifp; int rc = 0; ADAPTER_LOCK_ASSERT_NOTOWNED(sc); if (isset(&sc->open_device_map, pi->port_id)) { KASSERT(ifp->if_drv_flags & IFF_DRV_RUNNING, ("mismatch between open_device_map and if_drv_flags")); return (0); /* already running */ } if (!(sc->flags & FULL_INIT_DONE) && ((rc = adapter_full_init(sc)) != 0)) return (rc); /* error message displayed already */ if (!(pi->flags & PORT_INIT_DONE) && ((rc = port_full_init(pi)) != 0)) return (rc); /* error message displayed already */ PORT_LOCK(pi); rc = update_mac_settings(pi, XGMAC_ALL); PORT_UNLOCK(pi); if (rc) goto done; /* error message displayed already */ rc = -t4_link_start(sc, sc->mbox, pi->tx_chan, &pi->link_cfg); if (rc != 0) { if_printf(ifp, "start_link failed: %d\n", rc); goto done; } rc = -t4_enable_vi(sc, sc->mbox, pi->viid, true, true); if (rc != 0) { if_printf(ifp, "enable_vi failed: %d\n", rc); goto done; } /* all ok */ setbit(&sc->open_device_map, pi->port_id); ifp->if_drv_flags |= IFF_DRV_RUNNING; callout_reset(&pi->tick, hz, cxgbe_tick, pi); done: if (rc != 0) cxgbe_uninit_synchronized(pi); return (rc); } static int cxgbe_uninit_locked(struct port_info *pi) { struct adapter *sc = pi->adapter; int rc; ADAPTER_LOCK_ASSERT_OWNED(sc); while (!IS_DOOMED(pi) && IS_BUSY(sc)) { if (mtx_sleep(&sc->flags, &sc->sc_lock, PCATCH, "t4uninit", 0)) { rc = EINTR; goto done; } } if (IS_DOOMED(pi)) { rc = ENXIO; goto done; } KASSERT(!IS_BUSY(sc), ("%s: controller busy.", __func__)); SET_BUSY(sc); ADAPTER_UNLOCK(sc); rc = cxgbe_uninit_synchronized(pi); ADAPTER_LOCK(sc); KASSERT(IS_BUSY(sc), ("%s: controller not busy.", __func__)); CLR_BUSY(sc); wakeup_one(&sc->flags); done: ADAPTER_UNLOCK(sc); return (rc); } /* * Idempotent. */ static int cxgbe_uninit_synchronized(struct port_info *pi) { struct adapter *sc = pi->adapter; struct ifnet *ifp = pi->ifp; int rc; ADAPTER_LOCK_ASSERT_NOTOWNED(sc); /* * Disable the VI so that all its data in either direction is discarded * by the MPS. Leave everything else (the queues, interrupts, and 1Hz * tick) intact as the TP can deliver negative advice or data that it's * holding in its RAM (for an offloaded connection) even after the VI is * disabled. */ rc = -t4_enable_vi(sc, sc->mbox, pi->viid, false, false); if (rc) { if_printf(ifp, "disable_vi failed: %d\n", rc); return (rc); } clrbit(&sc->open_device_map, pi->port_id); ifp->if_drv_flags &= ~IFF_DRV_RUNNING; pi->link_cfg.link_ok = 0; pi->link_cfg.speed = 0; t4_os_link_changed(sc, pi->port_id, 0); return (0); } /* * It is ok for this function to fail midway and return right away. t4_detach * will walk the entire sc->irq list and clean up whatever is valid. */ static int setup_intr_handlers(struct adapter *sc) { int rc, rid, p, q; char s[8]; struct irq *irq; struct port_info *pi; struct sge_rxq *rxq; #ifdef TCP_OFFLOAD struct sge_ofld_rxq *ofld_rxq; #endif /* * Setup interrupts. */ irq = &sc->irq[0]; rid = sc->intr_type == INTR_INTX ? 0 : 1; if (sc->intr_count == 1) { KASSERT(!(sc->flags & INTR_DIRECT), ("%s: single interrupt && INTR_DIRECT?", __func__)); rc = t4_alloc_irq(sc, irq, rid, t4_intr_all, sc, "all"); if (rc != 0) return (rc); } else { /* Multiple interrupts. */ KASSERT(sc->intr_count >= T4_EXTRA_INTR + sc->params.nports, ("%s: too few intr.", __func__)); /* The first one is always error intr */ rc = t4_alloc_irq(sc, irq, rid, t4_intr_err, sc, "err"); if (rc != 0) return (rc); irq++; rid++; /* The second one is always the firmware event queue */ rc = t4_alloc_irq(sc, irq, rid, t4_intr_evt, &sc->sge.fwq, "evt"); if (rc != 0) return (rc); irq++; rid++; /* * Note that if INTR_DIRECT is not set then either the NIC rx * queues or (exclusive or) the TOE rx queueus will be taking * direct interrupts. * * There is no need to check for is_offload(sc) as nofldrxq * will be 0 if offload is disabled. */ for_each_port(sc, p) { pi = sc->port[p]; #ifdef TCP_OFFLOAD /* * Skip over the NIC queues if they aren't taking direct * interrupts. */ if (!(sc->flags & INTR_DIRECT) && pi->nofldrxq > pi->nrxq) goto ofld_queues; #endif rxq = &sc->sge.rxq[pi->first_rxq]; for (q = 0; q < pi->nrxq; q++, rxq++) { snprintf(s, sizeof(s), "%d.%d", p, q); rc = t4_alloc_irq(sc, irq, rid, t4_intr, rxq, s); if (rc != 0) return (rc); irq++; rid++; } #ifdef TCP_OFFLOAD /* * Skip over the offload queues if they aren't taking * direct interrupts. */ if (!(sc->flags & INTR_DIRECT)) continue; ofld_queues: ofld_rxq = &sc->sge.ofld_rxq[pi->first_ofld_rxq]; for (q = 0; q < pi->nofldrxq; q++, ofld_rxq++) { snprintf(s, sizeof(s), "%d,%d", p, q); rc = t4_alloc_irq(sc, irq, rid, t4_intr, ofld_rxq, s); if (rc != 0) return (rc); irq++; rid++; } #endif } } return (0); } static int adapter_full_init(struct adapter *sc) { int rc, i; ADAPTER_LOCK_ASSERT_NOTOWNED(sc); KASSERT((sc->flags & FULL_INIT_DONE) == 0, ("%s: FULL_INIT_DONE already", __func__)); /* * queues that belong to the adapter (not any particular port). */ rc = t4_setup_adapter_queues(sc); if (rc != 0) goto done; for (i = 0; i < nitems(sc->tq); i++) { sc->tq[i] = taskqueue_create("t4 taskq", M_NOWAIT, taskqueue_thread_enqueue, &sc->tq[i]); if (sc->tq[i] == NULL) { device_printf(sc->dev, "failed to allocate task queue %d\n", i); rc = ENOMEM; goto done; } taskqueue_start_threads(&sc->tq[i], 1, PI_NET, "%s tq%d", device_get_nameunit(sc->dev), i); } t4_intr_enable(sc); sc->flags |= FULL_INIT_DONE; done: if (rc != 0) adapter_full_uninit(sc); return (rc); } static int adapter_full_uninit(struct adapter *sc) { int i; ADAPTER_LOCK_ASSERT_NOTOWNED(sc); t4_teardown_adapter_queues(sc); for (i = 0; i < nitems(sc->tq) && sc->tq[i]; i++) { taskqueue_free(sc->tq[i]); sc->tq[i] = NULL; } sc->flags &= ~FULL_INIT_DONE; return (0); } static int port_full_init(struct port_info *pi) { struct adapter *sc = pi->adapter; struct ifnet *ifp = pi->ifp; uint16_t *rss; struct sge_rxq *rxq; int rc, i; ADAPTER_LOCK_ASSERT_NOTOWNED(sc); KASSERT((pi->flags & PORT_INIT_DONE) == 0, ("%s: PORT_INIT_DONE already", __func__)); sysctl_ctx_init(&pi->ctx); pi->flags |= PORT_SYSCTL_CTX; /* * Allocate tx/rx/fl queues for this port. */ rc = t4_setup_port_queues(pi); if (rc != 0) goto done; /* error message displayed already */ /* * Setup RSS for this port. */ rss = malloc(pi->nrxq * sizeof (*rss), M_CXGBE, M_ZERO | M_WAITOK); for_each_rxq(pi, i, rxq) { rss[i] = rxq->iq.abs_id; } rc = -t4_config_rss_range(sc, sc->mbox, pi->viid, 0, pi->rss_size, rss, pi->nrxq); free(rss, M_CXGBE); if (rc != 0) { if_printf(ifp, "rss_config failed: %d\n", rc); goto done; } pi->flags |= PORT_INIT_DONE; done: if (rc != 0) port_full_uninit(pi); return (rc); } /* * Idempotent. */ static int port_full_uninit(struct port_info *pi) { struct adapter *sc = pi->adapter; int i; struct sge_rxq *rxq; struct sge_txq *txq; #ifdef TCP_OFFLOAD struct sge_ofld_rxq *ofld_rxq; struct sge_wrq *ofld_txq; #endif if (pi->flags & PORT_INIT_DONE) { /* Need to quiesce queues. XXX: ctrl queues? */ for_each_txq(pi, i, txq) { quiesce_eq(sc, &txq->eq); } #ifdef TCP_OFFLOAD for_each_ofld_txq(pi, i, ofld_txq) { quiesce_eq(sc, &ofld_txq->eq); } #endif for_each_rxq(pi, i, rxq) { quiesce_iq(sc, &rxq->iq); quiesce_fl(sc, &rxq->fl); } #ifdef TCP_OFFLOAD for_each_ofld_rxq(pi, i, ofld_rxq) { quiesce_iq(sc, &ofld_rxq->iq); quiesce_fl(sc, &ofld_rxq->fl); } #endif } t4_teardown_port_queues(pi); pi->flags &= ~PORT_INIT_DONE; return (0); } static void quiesce_eq(struct adapter *sc, struct sge_eq *eq) { EQ_LOCK(eq); eq->flags |= EQ_DOOMED; /* * Wait for the response to a credit flush if one's * pending. */ while (eq->flags & EQ_CRFLUSHED) mtx_sleep(eq, &eq->eq_lock, 0, "crflush", 0); EQ_UNLOCK(eq); callout_drain(&eq->tx_callout); /* XXX: iffy */ pause("callout", 10); /* Still iffy */ taskqueue_drain(sc->tq[eq->tx_chan], &eq->tx_task); } static void quiesce_iq(struct adapter *sc, struct sge_iq *iq) { (void) sc; /* unused */ /* Synchronize with the interrupt handler */ while (!atomic_cmpset_int(&iq->state, IQS_IDLE, IQS_DISABLED)) pause("iqfree", 1); } static void quiesce_fl(struct adapter *sc, struct sge_fl *fl) { mtx_lock(&sc->sfl_lock); FL_LOCK(fl); fl->flags |= FL_DOOMED; FL_UNLOCK(fl); mtx_unlock(&sc->sfl_lock); callout_drain(&sc->sfl_callout); KASSERT((fl->flags & FL_STARVING) == 0, ("%s: still starving", __func__)); } static int t4_alloc_irq(struct adapter *sc, struct irq *irq, int rid, driver_intr_t *handler, void *arg, char *name) { int rc; irq->rid = rid; irq->res = bus_alloc_resource_any(sc->dev, SYS_RES_IRQ, &irq->rid, RF_SHAREABLE | RF_ACTIVE); if (irq->res == NULL) { device_printf(sc->dev, "failed to allocate IRQ for rid %d, name %s.\n", rid, name); return (ENOMEM); } rc = bus_setup_intr(sc->dev, irq->res, INTR_MPSAFE | INTR_TYPE_NET, NULL, handler, arg, &irq->tag); if (rc != 0) { device_printf(sc->dev, "failed to setup interrupt for rid %d, name %s: %d\n", rid, name, rc); } else if (name) bus_describe_intr(sc->dev, irq->res, irq->tag, name); return (rc); } static int t4_free_irq(struct adapter *sc, struct irq *irq) { if (irq->tag) bus_teardown_intr(sc->dev, irq->res, irq->tag); if (irq->res) bus_release_resource(sc->dev, SYS_RES_IRQ, irq->rid, irq->res); bzero(irq, sizeof(*irq)); return (0); } static void reg_block_dump(struct adapter *sc, uint8_t *buf, unsigned int start, unsigned int end) { uint32_t *p = (uint32_t *)(buf + start); for ( ; start <= end; start += sizeof(uint32_t)) *p++ = t4_read_reg(sc, start); } static void t4_get_regs(struct adapter *sc, struct t4_regdump *regs, uint8_t *buf) { int i; static const unsigned int reg_ranges[] = { 0x1008, 0x1108, 0x1180, 0x11b4, 0x11fc, 0x123c, 0x1300, 0x173c, 0x1800, 0x18fc, 0x3000, 0x30d8, 0x30e0, 0x5924, 0x5960, 0x59d4, 0x5a00, 0x5af8, 0x6000, 0x6098, 0x6100, 0x6150, 0x6200, 0x6208, 0x6240, 0x6248, 0x6280, 0x6338, 0x6370, 0x638c, 0x6400, 0x643c, 0x6500, 0x6524, 0x6a00, 0x6a38, 0x6a60, 0x6a78, 0x6b00, 0x6b84, 0x6bf0, 0x6c84, 0x6cf0, 0x6d84, 0x6df0, 0x6e84, 0x6ef0, 0x6f84, 0x6ff0, 0x7084, 0x70f0, 0x7184, 0x71f0, 0x7284, 0x72f0, 0x7384, 0x73f0, 0x7450, 0x7500, 0x7530, 0x7600, 0x761c, 0x7680, 0x76cc, 0x7700, 0x7798, 0x77c0, 0x77fc, 0x7900, 0x79fc, 0x7b00, 0x7c38, 0x7d00, 0x7efc, 0x8dc0, 0x8e1c, 0x8e30, 0x8e78, 0x8ea0, 0x8f6c, 0x8fc0, 0x9074, 0x90fc, 0x90fc, 0x9400, 0x9458, 0x9600, 0x96bc, 0x9800, 0x9808, 0x9820, 0x983c, 0x9850, 0x9864, 0x9c00, 0x9c6c, 0x9c80, 0x9cec, 0x9d00, 0x9d6c, 0x9d80, 0x9dec, 0x9e00, 0x9e6c, 0x9e80, 0x9eec, 0x9f00, 0x9f6c, 0x9f80, 0x9fec, 0xd004, 0xd03c, 0xdfc0, 0xdfe0, 0xe000, 0xea7c, 0xf000, 0x11190, 0x19040, 0x1906c, 0x19078, 0x19080, 0x1908c, 0x19124, 0x19150, 0x191b0, 0x191d0, 0x191e8, 0x19238, 0x1924c, 0x193f8, 0x19474, 0x19490, 0x194f8, 0x19800, 0x19f30, 0x1a000, 0x1a06c, 0x1a0b0, 0x1a120, 0x1a128, 0x1a138, 0x1a190, 0x1a1c4, 0x1a1fc, 0x1a1fc, 0x1e040, 0x1e04c, 0x1e284, 0x1e28c, 0x1e2c0, 0x1e2c0, 0x1e2e0, 0x1e2e0, 0x1e300, 0x1e384, 0x1e3c0, 0x1e3c8, 0x1e440, 0x1e44c, 0x1e684, 0x1e68c, 0x1e6c0, 0x1e6c0, 0x1e6e0, 0x1e6e0, 0x1e700, 0x1e784, 0x1e7c0, 0x1e7c8, 0x1e840, 0x1e84c, 0x1ea84, 0x1ea8c, 0x1eac0, 0x1eac0, 0x1eae0, 0x1eae0, 0x1eb00, 0x1eb84, 0x1ebc0, 0x1ebc8, 0x1ec40, 0x1ec4c, 0x1ee84, 0x1ee8c, 0x1eec0, 0x1eec0, 0x1eee0, 0x1eee0, 0x1ef00, 0x1ef84, 0x1efc0, 0x1efc8, 0x1f040, 0x1f04c, 0x1f284, 0x1f28c, 0x1f2c0, 0x1f2c0, 0x1f2e0, 0x1f2e0, 0x1f300, 0x1f384, 0x1f3c0, 0x1f3c8, 0x1f440, 0x1f44c, 0x1f684, 0x1f68c, 0x1f6c0, 0x1f6c0, 0x1f6e0, 0x1f6e0, 0x1f700, 0x1f784, 0x1f7c0, 0x1f7c8, 0x1f840, 0x1f84c, 0x1fa84, 0x1fa8c, 0x1fac0, 0x1fac0, 0x1fae0, 0x1fae0, 0x1fb00, 0x1fb84, 0x1fbc0, 0x1fbc8, 0x1fc40, 0x1fc4c, 0x1fe84, 0x1fe8c, 0x1fec0, 0x1fec0, 0x1fee0, 0x1fee0, 0x1ff00, 0x1ff84, 0x1ffc0, 0x1ffc8, 0x20000, 0x2002c, 0x20100, 0x2013c, 0x20190, 0x201c8, 0x20200, 0x20318, 0x20400, 0x20528, 0x20540, 0x20614, 0x21000, 0x21040, 0x2104c, 0x21060, 0x210c0, 0x210ec, 0x21200, 0x21268, 0x21270, 0x21284, 0x212fc, 0x21388, 0x21400, 0x21404, 0x21500, 0x21518, 0x2152c, 0x2153c, 0x21550, 0x21554, 0x21600, 0x21600, 0x21608, 0x21628, 0x21630, 0x2163c, 0x21700, 0x2171c, 0x21780, 0x2178c, 0x21800, 0x21c38, 0x21c80, 0x21d7c, 0x21e00, 0x21e04, 0x22000, 0x2202c, 0x22100, 0x2213c, 0x22190, 0x221c8, 0x22200, 0x22318, 0x22400, 0x22528, 0x22540, 0x22614, 0x23000, 0x23040, 0x2304c, 0x23060, 0x230c0, 0x230ec, 0x23200, 0x23268, 0x23270, 0x23284, 0x232fc, 0x23388, 0x23400, 0x23404, 0x23500, 0x23518, 0x2352c, 0x2353c, 0x23550, 0x23554, 0x23600, 0x23600, 0x23608, 0x23628, 0x23630, 0x2363c, 0x23700, 0x2371c, 0x23780, 0x2378c, 0x23800, 0x23c38, 0x23c80, 0x23d7c, 0x23e00, 0x23e04, 0x24000, 0x2402c, 0x24100, 0x2413c, 0x24190, 0x241c8, 0x24200, 0x24318, 0x24400, 0x24528, 0x24540, 0x24614, 0x25000, 0x25040, 0x2504c, 0x25060, 0x250c0, 0x250ec, 0x25200, 0x25268, 0x25270, 0x25284, 0x252fc, 0x25388, 0x25400, 0x25404, 0x25500, 0x25518, 0x2552c, 0x2553c, 0x25550, 0x25554, 0x25600, 0x25600, 0x25608, 0x25628, 0x25630, 0x2563c, 0x25700, 0x2571c, 0x25780, 0x2578c, 0x25800, 0x25c38, 0x25c80, 0x25d7c, 0x25e00, 0x25e04, 0x26000, 0x2602c, 0x26100, 0x2613c, 0x26190, 0x261c8, 0x26200, 0x26318, 0x26400, 0x26528, 0x26540, 0x26614, 0x27000, 0x27040, 0x2704c, 0x27060, 0x270c0, 0x270ec, 0x27200, 0x27268, 0x27270, 0x27284, 0x272fc, 0x27388, 0x27400, 0x27404, 0x27500, 0x27518, 0x2752c, 0x2753c, 0x27550, 0x27554, 0x27600, 0x27600, 0x27608, 0x27628, 0x27630, 0x2763c, 0x27700, 0x2771c, 0x27780, 0x2778c, 0x27800, 0x27c38, 0x27c80, 0x27d7c, 0x27e00, 0x27e04 }; regs->version = 4 | (sc->params.rev << 10); for (i = 0; i < nitems(reg_ranges); i += 2) reg_block_dump(sc, buf, reg_ranges[i], reg_ranges[i + 1]); } static void cxgbe_tick(void *arg) { struct port_info *pi = arg; struct ifnet *ifp = pi->ifp; struct sge_txq *txq; int i, drops; struct port_stats *s = &pi->stats; PORT_LOCK(pi); if (!(ifp->if_drv_flags & IFF_DRV_RUNNING)) { PORT_UNLOCK(pi); return; /* without scheduling another callout */ } t4_get_port_stats(pi->adapter, pi->tx_chan, s); ifp->if_opackets = s->tx_frames - s->tx_pause; ifp->if_ipackets = s->rx_frames - s->rx_pause; ifp->if_obytes = s->tx_octets - s->tx_pause * 64; ifp->if_ibytes = s->rx_octets - s->rx_pause * 64; ifp->if_omcasts = s->tx_mcast_frames - s->tx_pause; ifp->if_imcasts = s->rx_mcast_frames - s->rx_pause; ifp->if_iqdrops = s->rx_ovflow0 + s->rx_ovflow1 + s->rx_ovflow2 + s->rx_ovflow3 + s->rx_trunc0 + s->rx_trunc1 + s->rx_trunc2 + s->rx_trunc3; drops = s->tx_drop; for_each_txq(pi, i, txq) drops += txq->br->br_drops; ifp->if_snd.ifq_drops = drops; ifp->if_oerrors = s->tx_error_frames; ifp->if_ierrors = s->rx_jabber + s->rx_runt + s->rx_too_long + s->rx_fcs_err + s->rx_len_err; callout_schedule(&pi->tick, hz); PORT_UNLOCK(pi); } static void cxgbe_vlan_config(void *arg, struct ifnet *ifp, uint16_t vid) { struct ifnet *vlan; if (arg != ifp) return; vlan = VLAN_DEVAT(ifp, vid); VLAN_SETCOOKIE(vlan, ifp); } static int cpl_not_handled(struct sge_iq *iq, const struct rss_header *rss, struct mbuf *m) { #ifdef INVARIANTS panic("%s: opcode 0x%02x on iq %p with payload %p", __func__, rss->opcode, iq, m); #else log(LOG_ERR, "%s: opcode 0x%02x on iq %p with payload %p\n", __func__, rss->opcode, iq, m); m_freem(m); #endif return (EDOOFUS); } int t4_register_cpl_handler(struct adapter *sc, int opcode, cpl_handler_t h) { uintptr_t *loc, new; if (opcode >= nitems(sc->cpl_handler)) return (EINVAL); new = h ? (uintptr_t)h : (uintptr_t)cpl_not_handled; loc = (uintptr_t *) &sc->cpl_handler[opcode]; atomic_store_rel_ptr(loc, new); return (0); } static int an_not_handled(struct sge_iq *iq, const struct rsp_ctrl *ctrl) { #ifdef INVARIANTS panic("%s: async notification on iq %p (ctrl %p)", __func__, iq, ctrl); #else log(LOG_ERR, "%s: async notification on iq %p (ctrl %p)\n", __func__, iq, ctrl); #endif return (EDOOFUS); } int t4_register_an_handler(struct adapter *sc, an_handler_t h) { uintptr_t *loc, new; new = h ? (uintptr_t)h : (uintptr_t)an_not_handled; loc = (uintptr_t *) &sc->an_handler; atomic_store_rel_ptr(loc, new); return (0); } static int fw_msg_not_handled(struct adapter *sc, const __be64 *rpl) { __be64 *r = __DECONST(__be64 *, rpl); struct cpl_fw6_msg *cpl = member2struct(cpl_fw6_msg, data, r); #ifdef INVARIANTS panic("%s: fw_msg type %d", __func__, cpl->type); #else log(LOG_ERR, "%s: fw_msg type %d\n", __func__, cpl->type); #endif return (EDOOFUS); } int t4_register_fw_msg_handler(struct adapter *sc, int type, fw_msg_handler_t h) { uintptr_t *loc, new; if (type >= nitems(sc->fw_msg_handler)) return (EINVAL); new = h ? (uintptr_t)h : (uintptr_t)fw_msg_not_handled; loc = (uintptr_t *) &sc->fw_msg_handler[type]; atomic_store_rel_ptr(loc, new); return (0); } static int t4_sysctls(struct adapter *sc) { struct sysctl_ctx_list *ctx; struct sysctl_oid *oid; struct sysctl_oid_list *children, *c0; static char *caps[] = { "\20\1PPP\2QFC\3DCBX", /* caps[0] linkcaps */ "\20\1NIC\2VM\3IDS\4UM\5UM_ISGL", /* caps[1] niccaps */ "\20\1TOE", /* caps[2] toecaps */ "\20\1RDDP\2RDMAC", /* caps[3] rdmacaps */ "\20\1INITIATOR_PDU\2TARGET_PDU" /* caps[4] iscsicaps */ "\3INITIATOR_CNXOFLD\4TARGET_CNXOFLD" "\5INITIATOR_SSNOFLD\6TARGET_SSNOFLD", "\20\1INITIATOR\2TARGET\3CTRL_OFLD" /* caps[5] fcoecaps */ }; ctx = device_get_sysctl_ctx(sc->dev); /* * dev.t4nex.X. */ oid = device_get_sysctl_tree(sc->dev); c0 = children = SYSCTL_CHILDREN(oid); SYSCTL_ADD_INT(ctx, children, OID_AUTO, "nports", CTLFLAG_RD, &sc->params.nports, 0, "# of ports"); SYSCTL_ADD_INT(ctx, children, OID_AUTO, "hw_revision", CTLFLAG_RD, &sc->params.rev, 0, "chip hardware revision"); SYSCTL_ADD_STRING(ctx, children, OID_AUTO, "firmware_version", CTLFLAG_RD, &sc->fw_version, 0, "firmware version"); SYSCTL_ADD_STRING(ctx, children, OID_AUTO, "cf", CTLFLAG_RD, &t4_cfg_file, 0, "configuration file"); SYSCTL_ADD_UINT(ctx, children, OID_AUTO, "cfcsum", CTLFLAG_RD, &sc->cfcsum, 0, "config file checksum"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "linkcaps", CTLTYPE_STRING | CTLFLAG_RD, caps[0], sc->linkcaps, sysctl_bitfield, "A", "available link capabilities"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "niccaps", CTLTYPE_STRING | CTLFLAG_RD, caps[1], sc->niccaps, sysctl_bitfield, "A", "available NIC capabilities"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "toecaps", CTLTYPE_STRING | CTLFLAG_RD, caps[2], sc->toecaps, sysctl_bitfield, "A", "available TCP offload capabilities"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "rdmacaps", CTLTYPE_STRING | CTLFLAG_RD, caps[3], sc->rdmacaps, sysctl_bitfield, "A", "available RDMA capabilities"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "iscsicaps", CTLTYPE_STRING | CTLFLAG_RD, caps[4], sc->iscsicaps, sysctl_bitfield, "A", "available iSCSI capabilities"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "fcoecaps", CTLTYPE_STRING | CTLFLAG_RD, caps[5], sc->fcoecaps, sysctl_bitfield, "A", "available FCoE capabilities"); SYSCTL_ADD_INT(ctx, children, OID_AUTO, "core_clock", CTLFLAG_RD, &sc->params.vpd.cclk, 0, "core clock frequency (in KHz)"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "holdoff_timers", CTLTYPE_STRING | CTLFLAG_RD, sc->sge.timer_val, sizeof(sc->sge.timer_val), sysctl_int_array, "A", "interrupt holdoff timer values (us)"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "holdoff_pkt_counts", CTLTYPE_STRING | CTLFLAG_RD, sc->sge.counter_val, sizeof(sc->sge.counter_val), sysctl_int_array, "A", "interrupt holdoff packet counter values"); #ifdef SBUF_DRAIN /* * dev.t4nex.X.misc. Marked CTLFLAG_SKIP to avoid information overload. */ oid = SYSCTL_ADD_NODE(ctx, c0, OID_AUTO, "misc", CTLFLAG_RD | CTLFLAG_SKIP, NULL, "logs and miscellaneous information"); children = SYSCTL_CHILDREN(oid); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "cctrl", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_cctrl, "A", "congestion control"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "cpl_stats", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_cpl_stats, "A", "CPL statistics"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "ddp_stats", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_ddp_stats, "A", "DDP statistics"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "devlog", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_devlog, "A", "firmware's device log"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "fcoe_stats", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_fcoe_stats, "A", "FCoE statistics"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "hw_sched", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_hw_sched, "A", "hardware scheduler "); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "l2t", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_l2t, "A", "hardware L2 table"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "lb_stats", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_lb_stats, "A", "loopback statistics"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "meminfo", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_meminfo, "A", "memory regions"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "path_mtus", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_path_mtus, "A", "path MTUs"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "pm_stats", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_pm_stats, "A", "PM statistics"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "rdma_stats", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_rdma_stats, "A", "RDMA statistics"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "tcp_stats", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_tcp_stats, "A", "TCP statistics"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "tids", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_tids, "A", "TID information"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "tp_err_stats", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_tp_err_stats, "A", "TP error statistics"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "tx_rate", CTLTYPE_STRING | CTLFLAG_RD, sc, 0, sysctl_tx_rate, "A", "Tx rate"); #endif #ifdef TCP_OFFLOAD if (is_offload(sc)) { /* * dev.t4nex.X.toe. */ oid = SYSCTL_ADD_NODE(ctx, c0, OID_AUTO, "toe", CTLFLAG_RD, NULL, "TOE parameters"); children = SYSCTL_CHILDREN(oid); sc->tt.sndbuf = 256 * 1024; SYSCTL_ADD_INT(ctx, children, OID_AUTO, "sndbuf", CTLFLAG_RW, &sc->tt.sndbuf, 0, "max hardware send buffer size"); sc->tt.ddp = 0; SYSCTL_ADD_INT(ctx, children, OID_AUTO, "ddp", CTLFLAG_RW, &sc->tt.ddp, 0, "DDP allowed"); sc->tt.indsz = G_INDICATESIZE(t4_read_reg(sc, A_TP_PARA_REG5)); SYSCTL_ADD_INT(ctx, children, OID_AUTO, "indsz", CTLFLAG_RW, &sc->tt.indsz, 0, "DDP max indicate size allowed"); sc->tt.ddp_thres = G_RXCOALESCESIZE(t4_read_reg(sc, A_TP_PARA_REG2)); SYSCTL_ADD_INT(ctx, children, OID_AUTO, "ddp_thres", CTLFLAG_RW, &sc->tt.ddp_thres, 0, "DDP threshold"); } #endif return (0); } static int cxgbe_sysctls(struct port_info *pi) { struct sysctl_ctx_list *ctx; struct sysctl_oid *oid; struct sysctl_oid_list *children; ctx = device_get_sysctl_ctx(pi->dev); /* * dev.cxgbe.X. */ oid = device_get_sysctl_tree(pi->dev); children = SYSCTL_CHILDREN(oid); SYSCTL_ADD_INT(ctx, children, OID_AUTO, "nrxq", CTLFLAG_RD, &pi->nrxq, 0, "# of rx queues"); SYSCTL_ADD_INT(ctx, children, OID_AUTO, "ntxq", CTLFLAG_RD, &pi->ntxq, 0, "# of tx queues"); SYSCTL_ADD_INT(ctx, children, OID_AUTO, "first_rxq", CTLFLAG_RD, &pi->first_rxq, 0, "index of first rx queue"); SYSCTL_ADD_INT(ctx, children, OID_AUTO, "first_txq", CTLFLAG_RD, &pi->first_txq, 0, "index of first tx queue"); #ifdef TCP_OFFLOAD if (is_offload(pi->adapter)) { SYSCTL_ADD_INT(ctx, children, OID_AUTO, "nofldrxq", CTLFLAG_RD, &pi->nofldrxq, 0, "# of rx queues for offloaded TCP connections"); SYSCTL_ADD_INT(ctx, children, OID_AUTO, "nofldtxq", CTLFLAG_RD, &pi->nofldtxq, 0, "# of tx queues for offloaded TCP connections"); SYSCTL_ADD_INT(ctx, children, OID_AUTO, "first_ofld_rxq", CTLFLAG_RD, &pi->first_ofld_rxq, 0, "index of first TOE rx queue"); SYSCTL_ADD_INT(ctx, children, OID_AUTO, "first_ofld_txq", CTLFLAG_RD, &pi->first_ofld_txq, 0, "index of first TOE tx queue"); } #endif SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "holdoff_tmr_idx", CTLTYPE_INT | CTLFLAG_RW, pi, 0, sysctl_holdoff_tmr_idx, "I", "holdoff timer index"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "holdoff_pktc_idx", CTLTYPE_INT | CTLFLAG_RW, pi, 0, sysctl_holdoff_pktc_idx, "I", "holdoff packet counter index"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "qsize_rxq", CTLTYPE_INT | CTLFLAG_RW, pi, 0, sysctl_qsize_rxq, "I", "rx queue size"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "qsize_txq", CTLTYPE_INT | CTLFLAG_RW, pi, 0, sysctl_qsize_txq, "I", "tx queue size"); /* * dev.cxgbe.X.stats. */ oid = SYSCTL_ADD_NODE(ctx, children, OID_AUTO, "stats", CTLFLAG_RD, NULL, "port statistics"); children = SYSCTL_CHILDREN(oid); #define SYSCTL_ADD_T4_REG64(pi, name, desc, reg) \ SYSCTL_ADD_OID(ctx, children, OID_AUTO, name, \ CTLTYPE_U64 | CTLFLAG_RD, pi->adapter, reg, \ sysctl_handle_t4_reg64, "QU", desc) SYSCTL_ADD_T4_REG64(pi, "tx_octets", "# of octets in good frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_BYTES_L)); SYSCTL_ADD_T4_REG64(pi, "tx_frames", "total # of good frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_FRAMES_L)); SYSCTL_ADD_T4_REG64(pi, "tx_bcast_frames", "# of broadcast frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_BCAST_L)); SYSCTL_ADD_T4_REG64(pi, "tx_mcast_frames", "# of multicast frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_MCAST_L)); SYSCTL_ADD_T4_REG64(pi, "tx_ucast_frames", "# of unicast frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_UCAST_L)); SYSCTL_ADD_T4_REG64(pi, "tx_error_frames", "# of error frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_ERROR_L)); SYSCTL_ADD_T4_REG64(pi, "tx_frames_64", "# of tx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_64B_L)); SYSCTL_ADD_T4_REG64(pi, "tx_frames_65_127", "# of tx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_65B_127B_L)); SYSCTL_ADD_T4_REG64(pi, "tx_frames_128_255", "# of tx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_128B_255B_L)); SYSCTL_ADD_T4_REG64(pi, "tx_frames_256_511", "# of tx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_256B_511B_L)); SYSCTL_ADD_T4_REG64(pi, "tx_frames_512_1023", "# of tx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_512B_1023B_L)); SYSCTL_ADD_T4_REG64(pi, "tx_frames_1024_1518", "# of tx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_1024B_1518B_L)); SYSCTL_ADD_T4_REG64(pi, "tx_frames_1519_max", "# of tx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_1519B_MAX_L)); SYSCTL_ADD_T4_REG64(pi, "tx_drop", "# of dropped tx frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_DROP_L)); SYSCTL_ADD_T4_REG64(pi, "tx_pause", "# of pause frames transmitted", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_PAUSE_L)); SYSCTL_ADD_T4_REG64(pi, "tx_ppp0", "# of PPP prio 0 frames transmitted", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_PPP0_L)); SYSCTL_ADD_T4_REG64(pi, "tx_ppp1", "# of PPP prio 1 frames transmitted", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_PPP1_L)); SYSCTL_ADD_T4_REG64(pi, "tx_ppp2", "# of PPP prio 2 frames transmitted", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_PPP2_L)); SYSCTL_ADD_T4_REG64(pi, "tx_ppp3", "# of PPP prio 3 frames transmitted", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_PPP3_L)); SYSCTL_ADD_T4_REG64(pi, "tx_ppp4", "# of PPP prio 4 frames transmitted", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_PPP4_L)); SYSCTL_ADD_T4_REG64(pi, "tx_ppp5", "# of PPP prio 5 frames transmitted", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_PPP5_L)); SYSCTL_ADD_T4_REG64(pi, "tx_ppp6", "# of PPP prio 6 frames transmitted", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_PPP6_L)); SYSCTL_ADD_T4_REG64(pi, "tx_ppp7", "# of PPP prio 7 frames transmitted", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_TX_PORT_PPP7_L)); SYSCTL_ADD_T4_REG64(pi, "rx_octets", "# of octets in good frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_BYTES_L)); SYSCTL_ADD_T4_REG64(pi, "rx_frames", "total # of good frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_FRAMES_L)); SYSCTL_ADD_T4_REG64(pi, "rx_bcast_frames", "# of broadcast frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_BCAST_L)); SYSCTL_ADD_T4_REG64(pi, "rx_mcast_frames", "# of multicast frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_MCAST_L)); SYSCTL_ADD_T4_REG64(pi, "rx_ucast_frames", "# of unicast frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_UCAST_L)); SYSCTL_ADD_T4_REG64(pi, "rx_too_long", "# of frames exceeding MTU", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_MTU_ERROR_L)); SYSCTL_ADD_T4_REG64(pi, "rx_jabber", "# of jabber frames", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_MTU_CRC_ERROR_L)); SYSCTL_ADD_T4_REG64(pi, "rx_fcs_err", "# of frames received with bad FCS", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_CRC_ERROR_L)); SYSCTL_ADD_T4_REG64(pi, "rx_len_err", "# of frames received with length error", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_LEN_ERROR_L)); SYSCTL_ADD_T4_REG64(pi, "rx_symbol_err", "symbol errors", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_SYM_ERROR_L)); SYSCTL_ADD_T4_REG64(pi, "rx_runt", "# of short frames received", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_LESS_64B_L)); SYSCTL_ADD_T4_REG64(pi, "rx_frames_64", "# of rx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_64B_L)); SYSCTL_ADD_T4_REG64(pi, "rx_frames_65_127", "# of rx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_65B_127B_L)); SYSCTL_ADD_T4_REG64(pi, "rx_frames_128_255", "# of rx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_128B_255B_L)); SYSCTL_ADD_T4_REG64(pi, "rx_frames_256_511", "# of rx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_256B_511B_L)); SYSCTL_ADD_T4_REG64(pi, "rx_frames_512_1023", "# of rx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_512B_1023B_L)); SYSCTL_ADD_T4_REG64(pi, "rx_frames_1024_1518", "# of rx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_1024B_1518B_L)); SYSCTL_ADD_T4_REG64(pi, "rx_frames_1519_max", "# of rx frames in this range", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_1519B_MAX_L)); SYSCTL_ADD_T4_REG64(pi, "rx_pause", "# of pause frames received", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_PAUSE_L)); SYSCTL_ADD_T4_REG64(pi, "rx_ppp0", "# of PPP prio 0 frames received", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_PPP0_L)); SYSCTL_ADD_T4_REG64(pi, "rx_ppp1", "# of PPP prio 1 frames received", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_PPP1_L)); SYSCTL_ADD_T4_REG64(pi, "rx_ppp2", "# of PPP prio 2 frames received", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_PPP2_L)); SYSCTL_ADD_T4_REG64(pi, "rx_ppp3", "# of PPP prio 3 frames received", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_PPP3_L)); SYSCTL_ADD_T4_REG64(pi, "rx_ppp4", "# of PPP prio 4 frames received", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_PPP4_L)); SYSCTL_ADD_T4_REG64(pi, "rx_ppp5", "# of PPP prio 5 frames received", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_PPP5_L)); SYSCTL_ADD_T4_REG64(pi, "rx_ppp6", "# of PPP prio 6 frames received", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_PPP6_L)); SYSCTL_ADD_T4_REG64(pi, "rx_ppp7", "# of PPP prio 7 frames received", PORT_REG(pi->tx_chan, A_MPS_PORT_STAT_RX_PORT_PPP7_L)); #undef SYSCTL_ADD_T4_REG64 #define SYSCTL_ADD_T4_PORTSTAT(name, desc) \ SYSCTL_ADD_UQUAD(ctx, children, OID_AUTO, #name, CTLFLAG_RD, \ &pi->stats.name, desc) /* We get these from port_stats and they may be stale by upto 1s */ SYSCTL_ADD_T4_PORTSTAT(rx_ovflow0, "# drops due to buffer-group 0 overflows"); SYSCTL_ADD_T4_PORTSTAT(rx_ovflow1, "# drops due to buffer-group 1 overflows"); SYSCTL_ADD_T4_PORTSTAT(rx_ovflow2, "# drops due to buffer-group 2 overflows"); SYSCTL_ADD_T4_PORTSTAT(rx_ovflow3, "# drops due to buffer-group 3 overflows"); SYSCTL_ADD_T4_PORTSTAT(rx_trunc0, "# of buffer-group 0 truncated packets"); SYSCTL_ADD_T4_PORTSTAT(rx_trunc1, "# of buffer-group 1 truncated packets"); SYSCTL_ADD_T4_PORTSTAT(rx_trunc2, "# of buffer-group 2 truncated packets"); SYSCTL_ADD_T4_PORTSTAT(rx_trunc3, "# of buffer-group 3 truncated packets"); #undef SYSCTL_ADD_T4_PORTSTAT return (0); } static int sysctl_int_array(SYSCTL_HANDLER_ARGS) { int rc, *i; struct sbuf sb; sbuf_new(&sb, NULL, 32, SBUF_AUTOEXTEND); for (i = arg1; arg2; arg2 -= sizeof(int), i++) sbuf_printf(&sb, "%d ", *i); sbuf_trim(&sb); sbuf_finish(&sb); rc = sysctl_handle_string(oidp, sbuf_data(&sb), sbuf_len(&sb), req); sbuf_delete(&sb); return (rc); } static int sysctl_bitfield(SYSCTL_HANDLER_ARGS) { int rc; struct sbuf *sb; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return(rc); sb = sbuf_new_for_sysctl(NULL, NULL, 128, req); if (sb == NULL) return (ENOMEM); sbuf_printf(sb, "%b", (int)arg2, (char *)arg1); rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } static int sysctl_holdoff_tmr_idx(SYSCTL_HANDLER_ARGS) { struct port_info *pi = arg1; struct adapter *sc = pi->adapter; int idx, rc, i; idx = pi->tmr_idx; rc = sysctl_handle_int(oidp, &idx, 0, req); if (rc != 0 || req->newptr == NULL) return (rc); if (idx < 0 || idx >= SGE_NTIMERS) return (EINVAL); ADAPTER_LOCK(sc); rc = IS_DOOMED(pi) ? ENXIO : (IS_BUSY(sc) ? EBUSY : 0); if (rc == 0) { struct sge_rxq *rxq; uint8_t v; v = V_QINTR_TIMER_IDX(idx) | V_QINTR_CNT_EN(pi->pktc_idx != -1); for_each_rxq(pi, i, rxq) { #ifdef atomic_store_rel_8 atomic_store_rel_8(&rxq->iq.intr_params, v); #else rxq->iq.intr_params = v; #endif } pi->tmr_idx = idx; } ADAPTER_UNLOCK(sc); return (rc); } static int sysctl_holdoff_pktc_idx(SYSCTL_HANDLER_ARGS) { struct port_info *pi = arg1; struct adapter *sc = pi->adapter; int idx, rc; idx = pi->pktc_idx; rc = sysctl_handle_int(oidp, &idx, 0, req); if (rc != 0 || req->newptr == NULL) return (rc); if (idx < -1 || idx >= SGE_NCOUNTERS) return (EINVAL); ADAPTER_LOCK(sc); rc = IS_DOOMED(pi) ? ENXIO : (IS_BUSY(sc) ? EBUSY : 0); if (rc == 0 && pi->flags & PORT_INIT_DONE) rc = EBUSY; /* cannot be changed once the queues are created */ if (rc == 0) pi->pktc_idx = idx; ADAPTER_UNLOCK(sc); return (rc); } static int sysctl_qsize_rxq(SYSCTL_HANDLER_ARGS) { struct port_info *pi = arg1; struct adapter *sc = pi->adapter; int qsize, rc; qsize = pi->qsize_rxq; rc = sysctl_handle_int(oidp, &qsize, 0, req); if (rc != 0 || req->newptr == NULL) return (rc); if (qsize < 128 || (qsize & 7)) return (EINVAL); ADAPTER_LOCK(sc); rc = IS_DOOMED(pi) ? ENXIO : (IS_BUSY(sc) ? EBUSY : 0); if (rc == 0 && pi->flags & PORT_INIT_DONE) rc = EBUSY; /* cannot be changed once the queues are created */ if (rc == 0) pi->qsize_rxq = qsize; ADAPTER_UNLOCK(sc); return (rc); } static int sysctl_qsize_txq(SYSCTL_HANDLER_ARGS) { struct port_info *pi = arg1; struct adapter *sc = pi->adapter; int qsize, rc; qsize = pi->qsize_txq; rc = sysctl_handle_int(oidp, &qsize, 0, req); if (rc != 0 || req->newptr == NULL) return (rc); if (qsize < 128) return (EINVAL); ADAPTER_LOCK(sc); rc = IS_DOOMED(pi) ? ENXIO : (IS_BUSY(sc) ? EBUSY : 0); if (rc == 0 && pi->flags & PORT_INIT_DONE) rc = EBUSY; /* cannot be changed once the queues are created */ if (rc == 0) pi->qsize_txq = qsize; ADAPTER_UNLOCK(sc); return (rc); } static int sysctl_handle_t4_reg64(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; int reg = arg2; uint64_t val; val = t4_read_reg64(sc, reg); return (sysctl_handle_64(oidp, &val, 0, req)); } #ifdef SBUF_DRAIN static int sysctl_cctrl(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc, i; uint16_t incr[NMTUS][NCCTRL_WIN]; static const char *dec_fac[] = { "0.5", "0.5625", "0.625", "0.6875", "0.75", "0.8125", "0.875", "0.9375" }; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 4096, req); if (sb == NULL) return (ENOMEM); t4_read_cong_tbl(sc, incr); for (i = 0; i < NCCTRL_WIN; ++i) { sbuf_printf(sb, "%2d: %4u %4u %4u %4u %4u %4u %4u %4u\n", i, incr[0][i], incr[1][i], incr[2][i], incr[3][i], incr[4][i], incr[5][i], incr[6][i], incr[7][i]); sbuf_printf(sb, "%8u %4u %4u %4u %4u %4u %4u %4u %5u %s\n", incr[8][i], incr[9][i], incr[10][i], incr[11][i], incr[12][i], incr[13][i], incr[14][i], incr[15][i], sc->params.a_wnd[i], dec_fac[sc->params.b_wnd[i]]); } rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } static int sysctl_cpl_stats(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc; struct tp_cpl_stats stats; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 256, req); if (sb == NULL) return (ENOMEM); t4_tp_get_cpl_stats(sc, &stats); sbuf_printf(sb, " channel 0 channel 1 channel 2 " "channel 3\n"); sbuf_printf(sb, "CPL requests: %10u %10u %10u %10u\n", stats.req[0], stats.req[1], stats.req[2], stats.req[3]); sbuf_printf(sb, "CPL responses: %10u %10u %10u %10u", stats.rsp[0], stats.rsp[1], stats.rsp[2], stats.rsp[3]); rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } static int sysctl_ddp_stats(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc; struct tp_usm_stats stats; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return(rc); sb = sbuf_new_for_sysctl(NULL, NULL, 256, req); if (sb == NULL) return (ENOMEM); t4_get_usm_stats(sc, &stats); sbuf_printf(sb, "Frames: %u\n", stats.frames); sbuf_printf(sb, "Octets: %ju\n", stats.octets); sbuf_printf(sb, "Drops: %u", stats.drops); rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } const char *devlog_level_strings[] = { [FW_DEVLOG_LEVEL_EMERG] = "EMERG", [FW_DEVLOG_LEVEL_CRIT] = "CRIT", [FW_DEVLOG_LEVEL_ERR] = "ERR", [FW_DEVLOG_LEVEL_NOTICE] = "NOTICE", [FW_DEVLOG_LEVEL_INFO] = "INFO", [FW_DEVLOG_LEVEL_DEBUG] = "DEBUG" }; const char *devlog_facility_strings[] = { [FW_DEVLOG_FACILITY_CORE] = "CORE", [FW_DEVLOG_FACILITY_SCHED] = "SCHED", [FW_DEVLOG_FACILITY_TIMER] = "TIMER", [FW_DEVLOG_FACILITY_RES] = "RES", [FW_DEVLOG_FACILITY_HW] = "HW", [FW_DEVLOG_FACILITY_FLR] = "FLR", [FW_DEVLOG_FACILITY_DMAQ] = "DMAQ", [FW_DEVLOG_FACILITY_PHY] = "PHY", [FW_DEVLOG_FACILITY_MAC] = "MAC", [FW_DEVLOG_FACILITY_PORT] = "PORT", [FW_DEVLOG_FACILITY_VI] = "VI", [FW_DEVLOG_FACILITY_FILTER] = "FILTER", [FW_DEVLOG_FACILITY_ACL] = "ACL", [FW_DEVLOG_FACILITY_TM] = "TM", [FW_DEVLOG_FACILITY_QFC] = "QFC", [FW_DEVLOG_FACILITY_DCB] = "DCB", [FW_DEVLOG_FACILITY_ETH] = "ETH", [FW_DEVLOG_FACILITY_OFLD] = "OFLD", [FW_DEVLOG_FACILITY_RI] = "RI", [FW_DEVLOG_FACILITY_ISCSI] = "ISCSI", [FW_DEVLOG_FACILITY_FCOE] = "FCOE", [FW_DEVLOG_FACILITY_FOISCSI] = "FOISCSI", [FW_DEVLOG_FACILITY_FOFCOE] = "FOFCOE" }; static int sysctl_devlog(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct devlog_params *dparams = &sc->params.devlog; struct fw_devlog_e *buf, *e; int i, j, rc, nentries, first = 0; struct sbuf *sb; uint64_t ftstamp = UINT64_MAX; if (dparams->start == 0) return (ENXIO); nentries = dparams->size / sizeof(struct fw_devlog_e); buf = malloc(dparams->size, M_CXGBE, M_NOWAIT); if (buf == NULL) return (ENOMEM); rc = -t4_mem_read(sc, dparams->memtype, dparams->start, dparams->size, (void *)buf); if (rc != 0) goto done; for (i = 0; i < nentries; i++) { e = &buf[i]; if (e->timestamp == 0) break; /* end */ e->timestamp = be64toh(e->timestamp); e->seqno = be32toh(e->seqno); for (j = 0; j < 8; j++) e->params[j] = be32toh(e->params[j]); if (e->timestamp < ftstamp) { ftstamp = e->timestamp; first = i; } } if (buf[first].timestamp == 0) goto done; /* nothing in the log */ rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) goto done; sb = sbuf_new_for_sysctl(NULL, NULL, 4096, req); if (sb == NULL) { rc = ENOMEM; goto done; } sbuf_printf(sb, "%10s %15s %8s %8s %s\n", "Seq#", "Tstamp", "Level", "Facility", "Message"); i = first; do { e = &buf[i]; if (e->timestamp == 0) break; /* end */ sbuf_printf(sb, "%10d %15ju %8s %8s ", e->seqno, e->timestamp, (e->level < nitems(devlog_level_strings) ? devlog_level_strings[e->level] : "UNKNOWN"), (e->facility < nitems(devlog_facility_strings) ? devlog_facility_strings[e->facility] : "UNKNOWN")); sbuf_printf(sb, e->fmt, e->params[0], e->params[1], e->params[2], e->params[3], e->params[4], e->params[5], e->params[6], e->params[7]); if (++i == nentries) i = 0; } while (i != first); rc = sbuf_finish(sb); sbuf_delete(sb); done: free(buf, M_CXGBE); return (rc); } static int sysctl_fcoe_stats(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc; struct tp_fcoe_stats stats[4]; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 256, req); if (sb == NULL) return (ENOMEM); t4_get_fcoe_stats(sc, 0, &stats[0]); t4_get_fcoe_stats(sc, 1, &stats[1]); t4_get_fcoe_stats(sc, 2, &stats[2]); t4_get_fcoe_stats(sc, 3, &stats[3]); sbuf_printf(sb, " channel 0 channel 1 " "channel 2 channel 3\n"); sbuf_printf(sb, "octetsDDP: %16ju %16ju %16ju %16ju\n", stats[0].octetsDDP, stats[1].octetsDDP, stats[2].octetsDDP, stats[3].octetsDDP); sbuf_printf(sb, "framesDDP: %16u %16u %16u %16u\n", stats[0].framesDDP, stats[1].framesDDP, stats[2].framesDDP, stats[3].framesDDP); sbuf_printf(sb, "framesDrop: %16u %16u %16u %16u", stats[0].framesDrop, stats[1].framesDrop, stats[2].framesDrop, stats[3].framesDrop); rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } static int sysctl_hw_sched(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc, i; unsigned int map, kbps, ipg, mode; unsigned int pace_tab[NTX_SCHED]; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 256, req); if (sb == NULL) return (ENOMEM); map = t4_read_reg(sc, A_TP_TX_MOD_QUEUE_REQ_MAP); mode = G_TIMERMODE(t4_read_reg(sc, A_TP_MOD_CONFIG)); t4_read_pace_tbl(sc, pace_tab); sbuf_printf(sb, "Scheduler Mode Channel Rate (Kbps) " "Class IPG (0.1 ns) Flow IPG (us)"); for (i = 0; i < NTX_SCHED; ++i, map >>= 2) { t4_get_tx_sched(sc, i, &kbps, &ipg); sbuf_printf(sb, "\n %u %-5s %u ", i, (mode & (1 << i)) ? "flow" : "class", map & 3); if (kbps) sbuf_printf(sb, "%9u ", kbps); else sbuf_printf(sb, " disabled "); if (ipg) sbuf_printf(sb, "%13u ", ipg); else sbuf_printf(sb, " disabled "); if (pace_tab[i]) sbuf_printf(sb, "%10u", pace_tab[i]); else sbuf_printf(sb, " disabled"); } rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } static int sysctl_lb_stats(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc, i, j; uint64_t *p0, *p1; struct lb_port_stats s[2]; static const char *stat_name[] = { "OctetsOK:", "FramesOK:", "BcastFrames:", "McastFrames:", "UcastFrames:", "ErrorFrames:", "Frames64:", "Frames65To127:", "Frames128To255:", "Frames256To511:", "Frames512To1023:", "Frames1024To1518:", "Frames1519ToMax:", "FramesDropped:", "BG0FramesDropped:", "BG1FramesDropped:", "BG2FramesDropped:", "BG3FramesDropped:", "BG0FramesTrunc:", "BG1FramesTrunc:", "BG2FramesTrunc:", "BG3FramesTrunc:" }; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 4096, req); if (sb == NULL) return (ENOMEM); memset(s, 0, sizeof(s)); for (i = 0; i < 4; i += 2) { t4_get_lb_stats(sc, i, &s[0]); t4_get_lb_stats(sc, i + 1, &s[1]); p0 = &s[0].octets; p1 = &s[1].octets; sbuf_printf(sb, "%s Loopback %u" " Loopback %u", i == 0 ? "" : "\n", i, i + 1); for (j = 0; j < nitems(stat_name); j++) sbuf_printf(sb, "\n%-17s %20ju %20ju", stat_name[j], *p0++, *p1++); } rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } struct mem_desc { unsigned int base; unsigned int limit; unsigned int idx; }; static int mem_desc_cmp(const void *a, const void *b) { return ((const struct mem_desc *)a)->base - ((const struct mem_desc *)b)->base; } static void mem_region_show(struct sbuf *sb, const char *name, unsigned int from, unsigned int to) { unsigned int size; size = to - from + 1; if (size == 0) return; /* XXX: need humanize_number(3) in libkern for a more readable 'size' */ sbuf_printf(sb, "%-15s %#x-%#x [%u]\n", name, from, to, size); } static int sysctl_meminfo(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc, i, n; uint32_t lo, hi; static const char *memory[] = { "EDC0:", "EDC1:", "MC:" }; static const char *region[] = { "DBQ contexts:", "IMSG contexts:", "FLM cache:", "TCBs:", "Pstructs:", "Timers:", "Rx FL:", "Tx FL:", "Pstruct FL:", "Tx payload:", "Rx payload:", "LE hash:", "iSCSI region:", "TDDP region:", "TPT region:", "STAG region:", "RQ region:", "RQUDP region:", "PBL region:", "TXPBL region:", "ULPRX state:", "ULPTX state:", "On-chip queues:" }; struct mem_desc avail[3]; struct mem_desc mem[nitems(region) + 3]; /* up to 3 holes */ struct mem_desc *md = mem; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 4096, req); if (sb == NULL) return (ENOMEM); for (i = 0; i < nitems(mem); i++) { mem[i].limit = 0; mem[i].idx = i; } /* Find and sort the populated memory ranges */ i = 0; lo = t4_read_reg(sc, A_MA_TARGET_MEM_ENABLE); if (lo & F_EDRAM0_ENABLE) { hi = t4_read_reg(sc, A_MA_EDRAM0_BAR); avail[i].base = G_EDRAM0_BASE(hi) << 20; avail[i].limit = avail[i].base + (G_EDRAM0_SIZE(hi) << 20); avail[i].idx = 0; i++; } if (lo & F_EDRAM1_ENABLE) { hi = t4_read_reg(sc, A_MA_EDRAM1_BAR); avail[i].base = G_EDRAM1_BASE(hi) << 20; avail[i].limit = avail[i].base + (G_EDRAM1_SIZE(hi) << 20); avail[i].idx = 1; i++; } if (lo & F_EXT_MEM_ENABLE) { hi = t4_read_reg(sc, A_MA_EXT_MEMORY_BAR); avail[i].base = G_EXT_MEM_BASE(hi) << 20; avail[i].limit = avail[i].base + (G_EXT_MEM_SIZE(hi) << 20); avail[i].idx = 2; i++; } if (!i) /* no memory available */ return 0; qsort(avail, i, sizeof(struct mem_desc), mem_desc_cmp); (md++)->base = t4_read_reg(sc, A_SGE_DBQ_CTXT_BADDR); (md++)->base = t4_read_reg(sc, A_SGE_IMSG_CTXT_BADDR); (md++)->base = t4_read_reg(sc, A_SGE_FLM_CACHE_BADDR); (md++)->base = t4_read_reg(sc, A_TP_CMM_TCB_BASE); (md++)->base = t4_read_reg(sc, A_TP_CMM_MM_BASE); (md++)->base = t4_read_reg(sc, A_TP_CMM_TIMER_BASE); (md++)->base = t4_read_reg(sc, A_TP_CMM_MM_RX_FLST_BASE); (md++)->base = t4_read_reg(sc, A_TP_CMM_MM_TX_FLST_BASE); (md++)->base = t4_read_reg(sc, A_TP_CMM_MM_PS_FLST_BASE); /* the next few have explicit upper bounds */ md->base = t4_read_reg(sc, A_TP_PMM_TX_BASE); md->limit = md->base - 1 + t4_read_reg(sc, A_TP_PMM_TX_PAGE_SIZE) * G_PMTXMAXPAGE(t4_read_reg(sc, A_TP_PMM_TX_MAX_PAGE)); md++; md->base = t4_read_reg(sc, A_TP_PMM_RX_BASE); md->limit = md->base - 1 + t4_read_reg(sc, A_TP_PMM_RX_PAGE_SIZE) * G_PMRXMAXPAGE(t4_read_reg(sc, A_TP_PMM_RX_MAX_PAGE)); md++; if (t4_read_reg(sc, A_LE_DB_CONFIG) & F_HASHEN) { hi = t4_read_reg(sc, A_LE_DB_TID_HASHBASE) / 4; md->base = t4_read_reg(sc, A_LE_DB_HASH_TID_BASE); md->limit = (sc->tids.ntids - hi) * 16 + md->base - 1; } else { md->base = 0; md->idx = nitems(region); /* hide it */ } md++; #define ulp_region(reg) \ md->base = t4_read_reg(sc, A_ULP_ ## reg ## _LLIMIT);\ (md++)->limit = t4_read_reg(sc, A_ULP_ ## reg ## _ULIMIT) ulp_region(RX_ISCSI); ulp_region(RX_TDDP); ulp_region(TX_TPT); ulp_region(RX_STAG); ulp_region(RX_RQ); ulp_region(RX_RQUDP); ulp_region(RX_PBL); ulp_region(TX_PBL); #undef ulp_region md->base = t4_read_reg(sc, A_ULP_RX_CTX_BASE); md->limit = md->base + sc->tids.ntids - 1; md++; md->base = t4_read_reg(sc, A_ULP_TX_ERR_TABLE_BASE); md->limit = md->base + sc->tids.ntids - 1; md++; md->base = sc->vres.ocq.start; if (sc->vres.ocq.size) md->limit = md->base + sc->vres.ocq.size - 1; else md->idx = nitems(region); /* hide it */ md++; /* add any address-space holes, there can be up to 3 */ for (n = 0; n < i - 1; n++) if (avail[n].limit < avail[n + 1].base) (md++)->base = avail[n].limit; if (avail[n].limit) (md++)->base = avail[n].limit; n = md - mem; qsort(mem, n, sizeof(struct mem_desc), mem_desc_cmp); for (lo = 0; lo < i; lo++) mem_region_show(sb, memory[avail[lo].idx], avail[lo].base, avail[lo].limit - 1); sbuf_printf(sb, "\n"); for (i = 0; i < n; i++) { if (mem[i].idx >= nitems(region)) continue; /* skip holes */ if (!mem[i].limit) mem[i].limit = i < n - 1 ? mem[i + 1].base - 1 : ~0; mem_region_show(sb, region[mem[i].idx], mem[i].base, mem[i].limit); } sbuf_printf(sb, "\n"); lo = t4_read_reg(sc, A_CIM_SDRAM_BASE_ADDR); hi = t4_read_reg(sc, A_CIM_SDRAM_ADDR_SIZE) + lo - 1; mem_region_show(sb, "uP RAM:", lo, hi); lo = t4_read_reg(sc, A_CIM_EXTMEM2_BASE_ADDR); hi = t4_read_reg(sc, A_CIM_EXTMEM2_ADDR_SIZE) + lo - 1; mem_region_show(sb, "uP Extmem2:", lo, hi); lo = t4_read_reg(sc, A_TP_PMM_RX_MAX_PAGE); sbuf_printf(sb, "\n%u Rx pages of size %uKiB for %u channels\n", G_PMRXMAXPAGE(lo), t4_read_reg(sc, A_TP_PMM_RX_PAGE_SIZE) >> 10, (lo & F_PMRXNUMCHN) ? 2 : 1); lo = t4_read_reg(sc, A_TP_PMM_TX_MAX_PAGE); hi = t4_read_reg(sc, A_TP_PMM_TX_PAGE_SIZE); sbuf_printf(sb, "%u Tx pages of size %u%ciB for %u channels\n", G_PMTXMAXPAGE(lo), hi >= (1 << 20) ? (hi >> 20) : (hi >> 10), hi >= (1 << 20) ? 'M' : 'K', 1 << G_PMTXNUMCHN(lo)); sbuf_printf(sb, "%u p-structs\n", t4_read_reg(sc, A_TP_CMM_MM_MAX_PSTRUCT)); for (i = 0; i < 4; i++) { lo = t4_read_reg(sc, A_MPS_RX_PG_RSV0 + i * 4); sbuf_printf(sb, "\nPort %d using %u pages out of %u allocated", i, G_USED(lo), G_ALLOC(lo)); } for (i = 0; i < 4; i++) { lo = t4_read_reg(sc, A_MPS_RX_PG_RSV4 + i * 4); sbuf_printf(sb, "\nLoopback %d using %u pages out of %u allocated", i, G_USED(lo), G_ALLOC(lo)); } rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } static int sysctl_path_mtus(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc; uint16_t mtus[NMTUS]; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 256, req); if (sb == NULL) return (ENOMEM); t4_read_mtu_tbl(sc, mtus, NULL); sbuf_printf(sb, "%u %u %u %u %u %u %u %u %u %u %u %u %u %u %u %u", mtus[0], mtus[1], mtus[2], mtus[3], mtus[4], mtus[5], mtus[6], mtus[7], mtus[8], mtus[9], mtus[10], mtus[11], mtus[12], mtus[13], mtus[14], mtus[15]); rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } static int sysctl_pm_stats(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc, i; uint32_t tx_cnt[PM_NSTATS], rx_cnt[PM_NSTATS]; uint64_t tx_cyc[PM_NSTATS], rx_cyc[PM_NSTATS]; static const char *pm_stats[] = { "Read:", "Write bypass:", "Write mem:", "Flush:", "FIFO wait:" }; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 256, req); if (sb == NULL) return (ENOMEM); t4_pmtx_get_stats(sc, tx_cnt, tx_cyc); t4_pmrx_get_stats(sc, rx_cnt, rx_cyc); sbuf_printf(sb, " Tx count Tx cycles " "Rx count Rx cycles"); for (i = 0; i < PM_NSTATS; i++) sbuf_printf(sb, "\n%-13s %10u %20ju %10u %20ju", pm_stats[i], tx_cnt[i], tx_cyc[i], rx_cnt[i], rx_cyc[i]); rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } static int sysctl_rdma_stats(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc; struct tp_rdma_stats stats; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 256, req); if (sb == NULL) return (ENOMEM); t4_tp_get_rdma_stats(sc, &stats); sbuf_printf(sb, "NoRQEModDefferals: %u\n", stats.rqe_dfr_mod); sbuf_printf(sb, "NoRQEPktDefferals: %u", stats.rqe_dfr_pkt); rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } static int sysctl_tcp_stats(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc; struct tp_tcp_stats v4, v6; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 256, req); if (sb == NULL) return (ENOMEM); t4_tp_get_tcp_stats(sc, &v4, &v6); sbuf_printf(sb, " IP IPv6\n"); sbuf_printf(sb, "OutRsts: %20u %20u\n", v4.tcpOutRsts, v6.tcpOutRsts); sbuf_printf(sb, "InSegs: %20ju %20ju\n", v4.tcpInSegs, v6.tcpInSegs); sbuf_printf(sb, "OutSegs: %20ju %20ju\n", v4.tcpOutSegs, v6.tcpOutSegs); sbuf_printf(sb, "RetransSegs: %20ju %20ju", v4.tcpRetransSegs, v6.tcpRetransSegs); rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } static int sysctl_tids(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc; struct tid_info *t = &sc->tids; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 256, req); if (sb == NULL) return (ENOMEM); if (t->natids) { sbuf_printf(sb, "ATID range: 0-%u, in use: %u\n", t->natids - 1, t->atids_in_use); } if (t->ntids) { if (t4_read_reg(sc, A_LE_DB_CONFIG) & F_HASHEN) { uint32_t b = t4_read_reg(sc, A_LE_DB_SERVER_INDEX) / 4; if (b) { sbuf_printf(sb, "TID range: 0-%u, %u-%u", b - 1, t4_read_reg(sc, A_LE_DB_TID_HASHBASE) / 4, t->ntids - 1); } else { sbuf_printf(sb, "TID range: %u-%u", t4_read_reg(sc, A_LE_DB_TID_HASHBASE) / 4, t->ntids - 1); } } else sbuf_printf(sb, "TID range: 0-%u", t->ntids - 1); sbuf_printf(sb, ", in use: %u\n", atomic_load_acq_int(&t->tids_in_use)); } if (t->nstids) { sbuf_printf(sb, "STID range: %u-%u, in use: %u\n", t->stid_base, t->stid_base + t->nstids - 1, t->stids_in_use); } if (t->nftids) { sbuf_printf(sb, "FTID range: %u-%u\n", t->ftid_base, t->ftid_base + t->nftids - 1); } sbuf_printf(sb, "HW TID usage: %u IP users, %u IPv6 users", t4_read_reg(sc, A_LE_DB_ACT_CNT_IPV4), t4_read_reg(sc, A_LE_DB_ACT_CNT_IPV6)); rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } static int sysctl_tp_err_stats(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc; struct tp_err_stats stats; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 256, req); if (sb == NULL) return (ENOMEM); t4_tp_get_err_stats(sc, &stats); sbuf_printf(sb, " channel 0 channel 1 channel 2 " "channel 3\n"); sbuf_printf(sb, "macInErrs: %10u %10u %10u %10u\n", stats.macInErrs[0], stats.macInErrs[1], stats.macInErrs[2], stats.macInErrs[3]); sbuf_printf(sb, "hdrInErrs: %10u %10u %10u %10u\n", stats.hdrInErrs[0], stats.hdrInErrs[1], stats.hdrInErrs[2], stats.hdrInErrs[3]); sbuf_printf(sb, "tcpInErrs: %10u %10u %10u %10u\n", stats.tcpInErrs[0], stats.tcpInErrs[1], stats.tcpInErrs[2], stats.tcpInErrs[3]); sbuf_printf(sb, "tcp6InErrs: %10u %10u %10u %10u\n", stats.tcp6InErrs[0], stats.tcp6InErrs[1], stats.tcp6InErrs[2], stats.tcp6InErrs[3]); sbuf_printf(sb, "tnlCongDrops: %10u %10u %10u %10u\n", stats.tnlCongDrops[0], stats.tnlCongDrops[1], stats.tnlCongDrops[2], stats.tnlCongDrops[3]); sbuf_printf(sb, "tnlTxDrops: %10u %10u %10u %10u\n", stats.tnlTxDrops[0], stats.tnlTxDrops[1], stats.tnlTxDrops[2], stats.tnlTxDrops[3]); sbuf_printf(sb, "ofldVlanDrops: %10u %10u %10u %10u\n", stats.ofldVlanDrops[0], stats.ofldVlanDrops[1], stats.ofldVlanDrops[2], stats.ofldVlanDrops[3]); sbuf_printf(sb, "ofldChanDrops: %10u %10u %10u %10u\n\n", stats.ofldChanDrops[0], stats.ofldChanDrops[1], stats.ofldChanDrops[2], stats.ofldChanDrops[3]); sbuf_printf(sb, "ofldNoNeigh: %u\nofldCongDefer: %u", stats.ofldNoNeigh, stats.ofldCongDefer); rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } static int sysctl_tx_rate(SYSCTL_HANDLER_ARGS) { struct adapter *sc = arg1; struct sbuf *sb; int rc; u64 nrate[NCHAN], orate[NCHAN]; rc = sysctl_wire_old_buffer(req, 0); if (rc != 0) return (rc); sb = sbuf_new_for_sysctl(NULL, NULL, 256, req); if (sb == NULL) return (ENOMEM); t4_get_chan_txrate(sc, nrate, orate); sbuf_printf(sb, " channel 0 channel 1 channel 2 " "channel 3\n"); sbuf_printf(sb, "NIC B/s: %10ju %10ju %10ju %10ju\n", nrate[0], nrate[1], nrate[2], nrate[3]); sbuf_printf(sb, "Offload B/s: %10ju %10ju %10ju %10ju", orate[0], orate[1], orate[2], orate[3]); rc = sbuf_finish(sb); sbuf_delete(sb); return (rc); } #endif static inline void txq_start(struct ifnet *ifp, struct sge_txq *txq) { struct buf_ring *br; struct mbuf *m; TXQ_LOCK_ASSERT_OWNED(txq); br = txq->br; m = txq->m ? txq->m : drbr_dequeue(ifp, br); if (m) t4_eth_tx(ifp, txq, m); } void t4_tx_callout(void *arg) { struct sge_eq *eq = arg; struct adapter *sc; if (EQ_TRYLOCK(eq) == 0) goto reschedule; if (eq->flags & EQ_STALLED && !can_resume_tx(eq)) { EQ_UNLOCK(eq); reschedule: if (__predict_true(!(eq->flags && EQ_DOOMED))) callout_schedule(&eq->tx_callout, 1); return; } EQ_LOCK_ASSERT_OWNED(eq); if (__predict_true((eq->flags & EQ_DOOMED) == 0)) { if ((eq->flags & EQ_TYPEMASK) == EQ_ETH) { struct sge_txq *txq = arg; struct port_info *pi = txq->ifp->if_softc; sc = pi->adapter; } else { struct sge_wrq *wrq = arg; sc = wrq->adapter; } taskqueue_enqueue(sc->tq[eq->tx_chan], &eq->tx_task); } EQ_UNLOCK(eq); } void t4_tx_task(void *arg, int count) { struct sge_eq *eq = arg; EQ_LOCK(eq); if ((eq->flags & EQ_TYPEMASK) == EQ_ETH) { struct sge_txq *txq = arg; txq_start(txq->ifp, txq); } else { struct sge_wrq *wrq = arg; t4_wrq_tx_locked(wrq->adapter, wrq, NULL); } EQ_UNLOCK(eq); } static uint32_t fconf_to_mode(uint32_t fconf) { uint32_t mode; mode = T4_FILTER_IPv4 | T4_FILTER_IPv6 | T4_FILTER_IP_SADDR | T4_FILTER_IP_DADDR | T4_FILTER_IP_SPORT | T4_FILTER_IP_DPORT; if (fconf & F_FRAGMENTATION) mode |= T4_FILTER_IP_FRAGMENT; if (fconf & F_MPSHITTYPE) mode |= T4_FILTER_MPS_HIT_TYPE; if (fconf & F_MACMATCH) mode |= T4_FILTER_MAC_IDX; if (fconf & F_ETHERTYPE) mode |= T4_FILTER_ETH_TYPE; if (fconf & F_PROTOCOL) mode |= T4_FILTER_IP_PROTO; if (fconf & F_TOS) mode |= T4_FILTER_IP_TOS; if (fconf & F_VLAN) mode |= T4_FILTER_VLAN; if (fconf & F_VNIC_ID) mode |= T4_FILTER_VNIC; if (fconf & F_PORT) mode |= T4_FILTER_PORT; if (fconf & F_FCOE) mode |= T4_FILTER_FCoE; return (mode); } static uint32_t mode_to_fconf(uint32_t mode) { uint32_t fconf = 0; if (mode & T4_FILTER_IP_FRAGMENT) fconf |= F_FRAGMENTATION; if (mode & T4_FILTER_MPS_HIT_TYPE) fconf |= F_MPSHITTYPE; if (mode & T4_FILTER_MAC_IDX) fconf |= F_MACMATCH; if (mode & T4_FILTER_ETH_TYPE) fconf |= F_ETHERTYPE; if (mode & T4_FILTER_IP_PROTO) fconf |= F_PROTOCOL; if (mode & T4_FILTER_IP_TOS) fconf |= F_TOS; if (mode & T4_FILTER_VLAN) fconf |= F_VLAN; if (mode & T4_FILTER_VNIC) fconf |= F_VNIC_ID; if (mode & T4_FILTER_PORT) fconf |= F_PORT; if (mode & T4_FILTER_FCoE) fconf |= F_FCOE; return (fconf); } static uint32_t fspec_to_fconf(struct t4_filter_specification *fs) { uint32_t fconf = 0; if (fs->val.frag || fs->mask.frag) fconf |= F_FRAGMENTATION; if (fs->val.matchtype || fs->mask.matchtype) fconf |= F_MPSHITTYPE; if (fs->val.macidx || fs->mask.macidx) fconf |= F_MACMATCH; if (fs->val.ethtype || fs->mask.ethtype) fconf |= F_ETHERTYPE; if (fs->val.proto || fs->mask.proto) fconf |= F_PROTOCOL; if (fs->val.tos || fs->mask.tos) fconf |= F_TOS; if (fs->val.vlan_vld || fs->mask.vlan_vld) fconf |= F_VLAN; if (fs->val.vnic_vld || fs->mask.vnic_vld) fconf |= F_VNIC_ID; if (fs->val.iport || fs->mask.iport) fconf |= F_PORT; if (fs->val.fcoe || fs->mask.fcoe) fconf |= F_FCOE; return (fconf); } static int get_filter_mode(struct adapter *sc, uint32_t *mode) { uint32_t fconf; t4_read_indirect(sc, A_TP_PIO_ADDR, A_TP_PIO_DATA, &fconf, 1, A_TP_VLAN_PRI_MAP); if (sc->filter_mode != fconf) { log(LOG_WARNING, "%s: cached filter mode out of sync %x %x.\n", device_get_nameunit(sc->dev), sc->filter_mode, fconf); sc->filter_mode = fconf; } *mode = fconf_to_mode(sc->filter_mode); return (0); } static int set_filter_mode(struct adapter *sc, uint32_t mode) { uint32_t fconf; int rc; fconf = mode_to_fconf(mode); ADAPTER_LOCK(sc); if (IS_BUSY(sc)) { rc = EAGAIN; goto done; } if (sc->tids.ftids_in_use > 0) { rc = EBUSY; goto done; } #ifdef TCP_OFFLOAD if (sc->offload_map) { rc = EBUSY; goto done; } #endif #ifdef notyet rc = -t4_set_filter_mode(sc, fconf); if (rc == 0) sc->filter_mode = fconf; #else rc = ENOTSUP; #endif done: ADAPTER_UNLOCK(sc); return (rc); } static inline uint64_t get_filter_hits(struct adapter *sc, uint32_t fid) { uint32_t tcb_base = t4_read_reg(sc, A_TP_CMM_TCB_BASE); uint64_t hits; t4_write_reg(sc, PCIE_MEM_ACCESS_REG(A_PCIE_MEM_ACCESS_OFFSET, 0), tcb_base + (fid + sc->tids.ftid_base) * TCB_SIZE); t4_read_reg(sc, PCIE_MEM_ACCESS_REG(A_PCIE_MEM_ACCESS_OFFSET, 0)); hits = t4_read_reg64(sc, MEMWIN0_BASE + 16); return (be64toh(hits)); } static int get_filter(struct adapter *sc, struct t4_filter *t) { int i, nfilters = sc->tids.nftids; struct filter_entry *f; ADAPTER_LOCK_ASSERT_OWNED(sc); if (IS_BUSY(sc)) return (EAGAIN); if (sc->tids.ftids_in_use == 0 || sc->tids.ftid_tab == NULL || t->idx >= nfilters) { t->idx = 0xffffffff; return (0); } f = &sc->tids.ftid_tab[t->idx]; for (i = t->idx; i < nfilters; i++, f++) { if (f->valid) { t->idx = i; t->l2tidx = f->l2t ? f->l2t->idx : 0; t->smtidx = f->smtidx; if (f->fs.hitcnts) t->hits = get_filter_hits(sc, t->idx); else t->hits = UINT64_MAX; t->fs = f->fs; return (0); } } t->idx = 0xffffffff; return (0); } static int set_filter(struct adapter *sc, struct t4_filter *t) { unsigned int nfilters, nports; struct filter_entry *f; int i; ADAPTER_LOCK_ASSERT_OWNED(sc); nfilters = sc->tids.nftids; nports = sc->params.nports; if (nfilters == 0) return (ENOTSUP); if (!(sc->flags & FULL_INIT_DONE)) return (EAGAIN); if (t->idx >= nfilters) return (EINVAL); /* Validate against the global filter mode */ if ((sc->filter_mode | fspec_to_fconf(&t->fs)) != sc->filter_mode) return (E2BIG); if (t->fs.action == FILTER_SWITCH && t->fs.eport >= nports) return (EINVAL); if (t->fs.val.iport >= nports) return (EINVAL); /* Can't specify an iq if not steering to it */ if (!t->fs.dirsteer && t->fs.iq) return (EINVAL); /* IPv6 filter idx must be 4 aligned */ if (t->fs.type == 1 && ((t->idx & 0x3) || t->idx + 4 >= nfilters)) return (EINVAL); if (sc->tids.ftid_tab == NULL) { KASSERT(sc->tids.ftids_in_use == 0, ("%s: no memory allocated but filters_in_use > 0", __func__)); sc->tids.ftid_tab = malloc(sizeof (struct filter_entry) * nfilters, M_CXGBE, M_NOWAIT | M_ZERO); if (sc->tids.ftid_tab == NULL) return (ENOMEM); } for (i = 0; i < 4; i++) { f = &sc->tids.ftid_tab[t->idx + i]; if (f->pending || f->valid) return (EBUSY); if (f->locked) return (EPERM); if (t->fs.type == 0) break; } f = &sc->tids.ftid_tab[t->idx]; f->fs = t->fs; return set_filter_wr(sc, t->idx); } static int del_filter(struct adapter *sc, struct t4_filter *t) { unsigned int nfilters; struct filter_entry *f; ADAPTER_LOCK_ASSERT_OWNED(sc); if (IS_BUSY(sc)) return (EAGAIN); nfilters = sc->tids.nftids; if (nfilters == 0) return (ENOTSUP); if (sc->tids.ftid_tab == NULL || sc->tids.ftids_in_use == 0 || t->idx >= nfilters) return (EINVAL); if (!(sc->flags & FULL_INIT_DONE)) return (EAGAIN); f = &sc->tids.ftid_tab[t->idx]; if (f->pending) return (EBUSY); if (f->locked) return (EPERM); if (f->valid) { t->fs = f->fs; /* extra info for the caller */ return del_filter_wr(sc, t->idx); } return (0); } static void clear_filter(struct filter_entry *f) { if (f->l2t) t4_l2t_release(f->l2t); bzero(f, sizeof (*f)); } static int set_filter_wr(struct adapter *sc, int fidx) { struct filter_entry *f = &sc->tids.ftid_tab[fidx]; struct wrqe *wr; struct fw_filter_wr *fwr; unsigned int ftid; ADAPTER_LOCK_ASSERT_OWNED(sc); if (f->fs.newdmac || f->fs.newvlan) { /* This filter needs an L2T entry; allocate one. */ f->l2t = t4_l2t_alloc_switching(sc->l2t); if (f->l2t == NULL) return (EAGAIN); if (t4_l2t_set_switching(sc, f->l2t, f->fs.vlan, f->fs.eport, f->fs.dmac)) { t4_l2t_release(f->l2t); f->l2t = NULL; return (ENOMEM); } } ftid = sc->tids.ftid_base + fidx; wr = alloc_wrqe(sizeof(*fwr), &sc->sge.mgmtq); if (wr == NULL) return (ENOMEM); fwr = wrtod(wr); bzero(fwr, sizeof (*fwr)); fwr->op_pkd = htobe32(V_FW_WR_OP(FW_FILTER_WR)); fwr->len16_pkd = htobe32(FW_LEN16(*fwr)); fwr->tid_to_iq = htobe32(V_FW_FILTER_WR_TID(ftid) | V_FW_FILTER_WR_RQTYPE(f->fs.type) | V_FW_FILTER_WR_NOREPLY(0) | V_FW_FILTER_WR_IQ(f->fs.iq)); fwr->del_filter_to_l2tix = htobe32(V_FW_FILTER_WR_RPTTID(f->fs.rpttid) | V_FW_FILTER_WR_DROP(f->fs.action == FILTER_DROP) | V_FW_FILTER_WR_DIRSTEER(f->fs.dirsteer) | V_FW_FILTER_WR_MASKHASH(f->fs.maskhash) | V_FW_FILTER_WR_DIRSTEERHASH(f->fs.dirsteerhash) | V_FW_FILTER_WR_LPBK(f->fs.action == FILTER_SWITCH) | V_FW_FILTER_WR_DMAC(f->fs.newdmac) | V_FW_FILTER_WR_SMAC(f->fs.newsmac) | V_FW_FILTER_WR_INSVLAN(f->fs.newvlan == VLAN_INSERT || f->fs.newvlan == VLAN_REWRITE) | V_FW_FILTER_WR_RMVLAN(f->fs.newvlan == VLAN_REMOVE || f->fs.newvlan == VLAN_REWRITE) | V_FW_FILTER_WR_HITCNTS(f->fs.hitcnts) | V_FW_FILTER_WR_TXCHAN(f->fs.eport) | V_FW_FILTER_WR_PRIO(f->fs.prio) | V_FW_FILTER_WR_L2TIX(f->l2t ? f->l2t->idx : 0)); fwr->ethtype = htobe16(f->fs.val.ethtype); fwr->ethtypem = htobe16(f->fs.mask.ethtype); fwr->frag_to_ovlan_vldm = (V_FW_FILTER_WR_FRAG(f->fs.val.frag) | V_FW_FILTER_WR_FRAGM(f->fs.mask.frag) | V_FW_FILTER_WR_IVLAN_VLD(f->fs.val.vlan_vld) | V_FW_FILTER_WR_OVLAN_VLD(f->fs.val.vnic_vld) | V_FW_FILTER_WR_IVLAN_VLDM(f->fs.mask.vlan_vld) | V_FW_FILTER_WR_OVLAN_VLDM(f->fs.mask.vnic_vld)); fwr->smac_sel = 0; fwr->rx_chan_rx_rpl_iq = htobe16(V_FW_FILTER_WR_RX_CHAN(0) | V_FW_FILTER_WR_RX_RPL_IQ(sc->sge.fwq.abs_id)); fwr->maci_to_matchtypem = htobe32(V_FW_FILTER_WR_MACI(f->fs.val.macidx) | V_FW_FILTER_WR_MACIM(f->fs.mask.macidx) | V_FW_FILTER_WR_FCOE(f->fs.val.fcoe) | V_FW_FILTER_WR_FCOEM(f->fs.mask.fcoe) | V_FW_FILTER_WR_PORT(f->fs.val.iport) | V_FW_FILTER_WR_PORTM(f->fs.mask.iport) | V_FW_FILTER_WR_MATCHTYPE(f->fs.val.matchtype) | V_FW_FILTER_WR_MATCHTYPEM(f->fs.mask.matchtype)); fwr->ptcl = f->fs.val.proto; fwr->ptclm = f->fs.mask.proto; fwr->ttyp = f->fs.val.tos; fwr->ttypm = f->fs.mask.tos; fwr->ivlan = htobe16(f->fs.val.vlan); fwr->ivlanm = htobe16(f->fs.mask.vlan); fwr->ovlan = htobe16(f->fs.val.vnic); fwr->ovlanm = htobe16(f->fs.mask.vnic); bcopy(f->fs.val.dip, fwr->lip, sizeof (fwr->lip)); bcopy(f->fs.mask.dip, fwr->lipm, sizeof (fwr->lipm)); bcopy(f->fs.val.sip, fwr->fip, sizeof (fwr->fip)); bcopy(f->fs.mask.sip, fwr->fipm, sizeof (fwr->fipm)); fwr->lp = htobe16(f->fs.val.dport); fwr->lpm = htobe16(f->fs.mask.dport); fwr->fp = htobe16(f->fs.val.sport); fwr->fpm = htobe16(f->fs.mask.sport); if (f->fs.newsmac) bcopy(f->fs.smac, fwr->sma, sizeof (fwr->sma)); f->pending = 1; sc->tids.ftids_in_use++; t4_wrq_tx(sc, wr); return (0); } static int del_filter_wr(struct adapter *sc, int fidx) { struct filter_entry *f = &sc->tids.ftid_tab[fidx]; struct wrqe *wr; struct fw_filter_wr *fwr; unsigned int ftid; ADAPTER_LOCK_ASSERT_OWNED(sc); ftid = sc->tids.ftid_base + fidx; wr = alloc_wrqe(sizeof(*fwr), &sc->sge.mgmtq); if (wr == NULL) return (ENOMEM); fwr = wrtod(wr); bzero(fwr, sizeof (*fwr)); t4_mk_filtdelwr(ftid, fwr, sc->sge.fwq.abs_id); f->pending = 1; t4_wrq_tx(sc, wr); return (0); } int t4_filter_rpl(struct sge_iq *iq, const struct rss_header *rss, struct mbuf *m) { struct adapter *sc = iq->adapter; const struct cpl_set_tcb_rpl *rpl = (const void *)(rss + 1); unsigned int idx = GET_TID(rpl); KASSERT(m == NULL, ("%s: payload with opcode %02x", __func__, rss->opcode)); if (idx >= sc->tids.ftid_base && (idx -= sc->tids.ftid_base) < sc->tids.nftids) { unsigned int rc = G_COOKIE(rpl->cookie); struct filter_entry *f = &sc->tids.ftid_tab[idx]; ADAPTER_LOCK(sc); if (rc == FW_FILTER_WR_FLT_ADDED) { f->smtidx = (be64toh(rpl->oldval) >> 24) & 0xff; f->pending = 0; /* asynchronous setup completed */ f->valid = 1; } else { if (rc != FW_FILTER_WR_FLT_DELETED) { /* Add or delete failed, display an error */ log(LOG_ERR, "filter %u setup failed with error %u\n", idx, rc); } clear_filter(f); sc->tids.ftids_in_use--; } ADAPTER_UNLOCK(sc); } return (0); } static int get_sge_context(struct adapter *sc, struct t4_sge_context *cntxt) { int rc = EINVAL; if (cntxt->cid > M_CTXTQID) return (rc); if (cntxt->mem_id != CTXT_EGRESS && cntxt->mem_id != CTXT_INGRESS && cntxt->mem_id != CTXT_FLM && cntxt->mem_id != CTXT_CNM) return (rc); if (sc->flags & FW_OK) { ADAPTER_LOCK(sc); /* Avoid parallel t4_wr_mbox */ rc = -t4_sge_ctxt_rd(sc, sc->mbox, cntxt->cid, cntxt->mem_id, &cntxt->data[0]); ADAPTER_UNLOCK(sc); } if (rc != 0) { /* Read via firmware failed or wasn't even attempted */ rc = -t4_sge_ctxt_rd_bd(sc, cntxt->cid, cntxt->mem_id, &cntxt->data[0]); } return (rc); } static int read_card_mem(struct adapter *sc, struct t4_mem_range *mr) { uint32_t base, size, lo, hi, win, off, remaining, i, n; uint32_t *buf, *b; int rc; /* reads are in multiples of 32 bits */ if (mr->addr & 3 || mr->len & 3 || mr->len == 0) return (EINVAL); /* * We don't want to deal with potential holes so we mandate that the * requested region must lie entirely within one of the 3 memories. */ lo = t4_read_reg(sc, A_MA_TARGET_MEM_ENABLE); if (lo & F_EDRAM0_ENABLE) { hi = t4_read_reg(sc, A_MA_EDRAM0_BAR); base = G_EDRAM0_BASE(hi) << 20; size = G_EDRAM0_SIZE(hi) << 20; if (size > 0 && mr->addr >= base && mr->addr < base + size && mr->addr + mr->len <= base + size) goto proceed; } if (lo & F_EDRAM1_ENABLE) { hi = t4_read_reg(sc, A_MA_EDRAM1_BAR); base = G_EDRAM1_BASE(hi) << 20; size = G_EDRAM1_SIZE(hi) << 20; if (size > 0 && mr->addr >= base && mr->addr < base + size && mr->addr + mr->len <= base + size) goto proceed; } if (lo & F_EXT_MEM_ENABLE) { hi = t4_read_reg(sc, A_MA_EXT_MEMORY_BAR); base = G_EXT_MEM_BASE(hi) << 20; size = G_EXT_MEM_SIZE(hi) << 20; if (size > 0 && mr->addr >= base && mr->addr < base + size && mr->addr + mr->len <= base + size) goto proceed; } return (ENXIO); proceed: buf = b = malloc(mr->len, M_CXGBE, M_WAITOK); /* * Position the PCIe window (we use memwin2) to the 16B aligned area * just at/before the requested region. */ win = mr->addr & ~0xf; off = mr->addr - win; /* offset of the requested region in the win */ remaining = mr->len; while (remaining) { t4_write_reg(sc, PCIE_MEM_ACCESS_REG(A_PCIE_MEM_ACCESS_OFFSET, 2), win); t4_read_reg(sc, PCIE_MEM_ACCESS_REG(A_PCIE_MEM_ACCESS_OFFSET, 2)); /* number of bytes that we'll copy in the inner loop */ n = min(remaining, MEMWIN2_APERTURE - off); for (i = 0; i < n; i += 4, remaining -= 4) *b++ = t4_read_reg(sc, MEMWIN2_BASE + off + i); win += MEMWIN2_APERTURE; off = 0; } rc = copyout(buf, mr->data, mr->len); free(buf, M_CXGBE); return (rc); } +static int +read_i2c(struct adapter *sc, struct t4_i2c_data *i2cd) +{ + int rc; + + ADAPTER_LOCK_ASSERT_OWNED(sc); /* for mbox */ + + if (i2cd->len == 0 || i2cd->port_id >= sc->params.nports) + return (EINVAL); + + if (i2cd->len > 1) { + /* XXX: need fw support for longer reads in one go */ + return (ENOTSUP); + } + + rc = -t4_i2c_rd(sc, sc->mbox, i2cd->port_id, i2cd->dev_addr, + i2cd->offset, &i2cd->data[0]); + + return (rc); +} + int t4_os_find_pci_capability(struct adapter *sc, int cap) { int i; return (pci_find_cap(sc->dev, cap, &i) == 0 ? i : 0); } int t4_os_pci_save_state(struct adapter *sc) { device_t dev; struct pci_devinfo *dinfo; dev = sc->dev; dinfo = device_get_ivars(dev); pci_cfg_save(dev, dinfo, 0); return (0); } int t4_os_pci_restore_state(struct adapter *sc) { device_t dev; struct pci_devinfo *dinfo; dev = sc->dev; dinfo = device_get_ivars(dev); pci_cfg_restore(dev, dinfo); return (0); } void t4_os_portmod_changed(const struct adapter *sc, int idx) { struct port_info *pi = sc->port[idx]; static const char *mod_str[] = { NULL, "LR", "SR", "ER", "TWINAX", "active TWINAX", "LRM" }; if (pi->mod_type == FW_PORT_MOD_TYPE_NONE) if_printf(pi->ifp, "transceiver unplugged.\n"); else if (pi->mod_type == FW_PORT_MOD_TYPE_UNKNOWN) if_printf(pi->ifp, "unknown transceiver inserted.\n"); else if (pi->mod_type == FW_PORT_MOD_TYPE_NOTSUPPORTED) if_printf(pi->ifp, "unsupported transceiver inserted.\n"); else if (pi->mod_type > 0 && pi->mod_type < nitems(mod_str)) { if_printf(pi->ifp, "%s transceiver inserted.\n", mod_str[pi->mod_type]); } else { if_printf(pi->ifp, "transceiver (type %d) inserted.\n", pi->mod_type); } } void t4_os_link_changed(struct adapter *sc, int idx, int link_stat) { struct port_info *pi = sc->port[idx]; struct ifnet *ifp = pi->ifp; if (link_stat) { ifp->if_baudrate = IF_Mbps(pi->link_cfg.speed); if_link_state_change(ifp, LINK_STATE_UP); } else if_link_state_change(ifp, LINK_STATE_DOWN); } void t4_iterate(void (*func)(struct adapter *, void *), void *arg) { struct adapter *sc; mtx_lock(&t4_list_lock); SLIST_FOREACH(sc, &t4_list, link) { /* * func should not make any assumptions about what state sc is * in - the only guarantee is that sc->sc_lock is a valid lock. */ func(sc, arg); } mtx_unlock(&t4_list_lock); } static int t4_open(struct cdev *dev, int flags, int type, struct thread *td) { return (0); } static int t4_close(struct cdev *dev, int flags, int type, struct thread *td) { return (0); } static int t4_ioctl(struct cdev *dev, unsigned long cmd, caddr_t data, int fflag, struct thread *td) { int rc; struct adapter *sc = dev->si_drv1; rc = priv_check(td, PRIV_DRIVER); if (rc != 0) return (rc); switch (cmd) { case CHELSIO_T4_GETREG: { struct t4_reg *edata = (struct t4_reg *)data; if ((edata->addr & 0x3) != 0 || edata->addr >= sc->mmio_len) return (EFAULT); if (edata->size == 4) edata->val = t4_read_reg(sc, edata->addr); else if (edata->size == 8) edata->val = t4_read_reg64(sc, edata->addr); else return (EINVAL); break; } case CHELSIO_T4_SETREG: { struct t4_reg *edata = (struct t4_reg *)data; if ((edata->addr & 0x3) != 0 || edata->addr >= sc->mmio_len) return (EFAULT); if (edata->size == 4) { if (edata->val & 0xffffffff00000000) return (EINVAL); t4_write_reg(sc, edata->addr, (uint32_t) edata->val); } else if (edata->size == 8) t4_write_reg64(sc, edata->addr, edata->val); else return (EINVAL); break; } case CHELSIO_T4_REGDUMP: { struct t4_regdump *regs = (struct t4_regdump *)data; int reglen = T4_REGDUMP_SIZE; uint8_t *buf; if (regs->len < reglen) { regs->len = reglen; /* hint to the caller */ return (ENOBUFS); } regs->len = reglen; buf = malloc(reglen, M_CXGBE, M_WAITOK | M_ZERO); t4_get_regs(sc, regs, buf); rc = copyout(buf, regs->data, reglen); free(buf, M_CXGBE); break; } case CHELSIO_T4_GET_FILTER_MODE: rc = get_filter_mode(sc, (uint32_t *)data); break; case CHELSIO_T4_SET_FILTER_MODE: rc = set_filter_mode(sc, *(uint32_t *)data); break; case CHELSIO_T4_GET_FILTER: ADAPTER_LOCK(sc); rc = get_filter(sc, (struct t4_filter *)data); ADAPTER_UNLOCK(sc); break; case CHELSIO_T4_SET_FILTER: ADAPTER_LOCK(sc); rc = set_filter(sc, (struct t4_filter *)data); ADAPTER_UNLOCK(sc); break; case CHELSIO_T4_DEL_FILTER: ADAPTER_LOCK(sc); rc = del_filter(sc, (struct t4_filter *)data); ADAPTER_UNLOCK(sc); break; case CHELSIO_T4_GET_SGE_CONTEXT: rc = get_sge_context(sc, (struct t4_sge_context *)data); break; case CHELSIO_T4_LOAD_FW: { struct t4_data *fw = (struct t4_data *)data; uint8_t *fw_data; if (sc->flags & FULL_INIT_DONE) return (EBUSY); fw_data = malloc(fw->len, M_CXGBE, M_NOWAIT); if (fw_data == NULL) return (ENOMEM); rc = copyin(fw->data, fw_data, fw->len); if (rc == 0) rc = -t4_load_fw(sc, fw_data, fw->len); free(fw_data, M_CXGBE); break; } case CHELSIO_T4_GET_MEM: rc = read_card_mem(sc, (struct t4_mem_range *)data); + break; + case CHELSIO_T4_GET_I2C: + ADAPTER_LOCK(sc); + rc = read_i2c(sc, (struct t4_i2c_data *)data); + ADAPTER_UNLOCK(sc); break; default: rc = EINVAL; } return (rc); } #ifdef TCP_OFFLOAD static int toe_capability(struct port_info *pi, int enable) { int rc; struct adapter *sc = pi->adapter; ADAPTER_LOCK_ASSERT_OWNED(sc); if (!is_offload(sc)) return (ENODEV); if (enable) { if (!(sc->flags & FULL_INIT_DONE)) { log(LOG_WARNING, "You must enable a cxgbe interface first\n"); return (EAGAIN); } if (isset(&sc->offload_map, pi->port_id)) return (0); if (!(sc->flags & TOM_INIT_DONE)) { rc = t4_activate_uld(sc, ULD_TOM); if (rc == EAGAIN) { log(LOG_WARNING, "You must kldload t4_tom.ko before trying " "to enable TOE on a cxgbe interface.\n"); } if (rc != 0) return (rc); KASSERT(sc->tom_softc != NULL, ("%s: TOM activated but softc NULL", __func__)); KASSERT(sc->flags & TOM_INIT_DONE, ("%s: TOM activated but flag not set", __func__)); } setbit(&sc->offload_map, pi->port_id); } else { if (!isset(&sc->offload_map, pi->port_id)) return (0); KASSERT(sc->flags & TOM_INIT_DONE, ("%s: TOM never initialized?", __func__)); clrbit(&sc->offload_map, pi->port_id); } return (0); } /* * Add an upper layer driver to the global list. */ int t4_register_uld(struct uld_info *ui) { int rc = 0; struct uld_info *u; mtx_lock(&t4_uld_list_lock); SLIST_FOREACH(u, &t4_uld_list, link) { if (u->uld_id == ui->uld_id) { rc = EEXIST; goto done; } } SLIST_INSERT_HEAD(&t4_uld_list, ui, link); ui->refcount = 0; done: mtx_unlock(&t4_uld_list_lock); return (rc); } int t4_unregister_uld(struct uld_info *ui) { int rc = EINVAL; struct uld_info *u; mtx_lock(&t4_uld_list_lock); SLIST_FOREACH(u, &t4_uld_list, link) { if (u == ui) { if (ui->refcount > 0) { rc = EBUSY; goto done; } SLIST_REMOVE(&t4_uld_list, ui, uld_info, link); rc = 0; goto done; } } done: mtx_unlock(&t4_uld_list_lock); return (rc); } int t4_activate_uld(struct adapter *sc, int id) { int rc = EAGAIN; struct uld_info *ui; mtx_lock(&t4_uld_list_lock); SLIST_FOREACH(ui, &t4_uld_list, link) { if (ui->uld_id == id) { rc = ui->activate(sc); if (rc == 0) ui->refcount++; goto done; } } done: mtx_unlock(&t4_uld_list_lock); return (rc); } int t4_deactivate_uld(struct adapter *sc, int id) { int rc = EINVAL; struct uld_info *ui; mtx_lock(&t4_uld_list_lock); SLIST_FOREACH(ui, &t4_uld_list, link) { if (ui->uld_id == id) { rc = ui->deactivate(sc); if (rc == 0) ui->refcount--; goto done; } } done: mtx_unlock(&t4_uld_list_lock); return (rc); } #endif /* * Come up with reasonable defaults for some of the tunables, provided they're * not set by the user (in which case we'll use the values as is). */ static void tweak_tunables(void) { int nc = mp_ncpus; /* our snapshot of the number of CPUs */ if (t4_ntxq10g < 1) t4_ntxq10g = min(nc, NTXQ_10G); if (t4_ntxq1g < 1) t4_ntxq1g = min(nc, NTXQ_1G); if (t4_nrxq10g < 1) t4_nrxq10g = min(nc, NRXQ_10G); if (t4_nrxq1g < 1) t4_nrxq1g = min(nc, NRXQ_1G); #ifdef TCP_OFFLOAD if (t4_nofldtxq10g < 1) t4_nofldtxq10g = min(nc, NOFLDTXQ_10G); if (t4_nofldtxq1g < 1) t4_nofldtxq1g = min(nc, NOFLDTXQ_1G); if (t4_nofldrxq10g < 1) t4_nofldrxq10g = min(nc, NOFLDRXQ_10G); if (t4_nofldrxq1g < 1) t4_nofldrxq1g = min(nc, NOFLDRXQ_1G); if (t4_toecaps_allowed == -1) t4_toecaps_allowed = FW_CAPS_CONFIG_TOE; #else if (t4_toecaps_allowed == -1) t4_toecaps_allowed = 0; #endif if (t4_tmr_idx_10g < 0 || t4_tmr_idx_10g >= SGE_NTIMERS) t4_tmr_idx_10g = TMR_IDX_10G; if (t4_pktc_idx_10g < -1 || t4_pktc_idx_10g >= SGE_NCOUNTERS) t4_pktc_idx_10g = PKTC_IDX_10G; if (t4_tmr_idx_1g < 0 || t4_tmr_idx_1g >= SGE_NTIMERS) t4_tmr_idx_1g = TMR_IDX_1G; if (t4_pktc_idx_1g < -1 || t4_pktc_idx_1g >= SGE_NCOUNTERS) t4_pktc_idx_1g = PKTC_IDX_1G; if (t4_qsize_txq < 128) t4_qsize_txq = 128; if (t4_qsize_rxq < 128) t4_qsize_rxq = 128; while (t4_qsize_rxq & 7) t4_qsize_rxq++; t4_intr_types &= INTR_MSIX | INTR_MSI | INTR_INTX; } static int t4_mod_event(module_t mod, int cmd, void *arg) { int rc = 0; switch (cmd) { case MOD_LOAD: t4_sge_modload(); mtx_init(&t4_list_lock, "T4 adapters", 0, MTX_DEF); SLIST_INIT(&t4_list); #ifdef TCP_OFFLOAD mtx_init(&t4_uld_list_lock, "T4 ULDs", 0, MTX_DEF); SLIST_INIT(&t4_uld_list); #endif tweak_tunables(); break; case MOD_UNLOAD: #ifdef TCP_OFFLOAD mtx_lock(&t4_uld_list_lock); if (!SLIST_EMPTY(&t4_uld_list)) { rc = EBUSY; mtx_unlock(&t4_uld_list_lock); break; } mtx_unlock(&t4_uld_list_lock); mtx_destroy(&t4_uld_list_lock); #endif mtx_lock(&t4_list_lock); if (!SLIST_EMPTY(&t4_list)) { rc = EBUSY; mtx_unlock(&t4_list_lock); break; } mtx_unlock(&t4_list_lock); mtx_destroy(&t4_list_lock); break; } return (rc); } static devclass_t t4_devclass; static devclass_t cxgbe_devclass; DRIVER_MODULE(t4nex, pci, t4_driver, t4_devclass, t4_mod_event, 0); MODULE_VERSION(t4nex, 1); DRIVER_MODULE(cxgbe, t4nex, cxgbe_driver, cxgbe_devclass, 0, 0); MODULE_VERSION(cxgbe, 1);