Index: head/sys/dev/ath/ath_hal/ah.c =================================================================== --- head/sys/dev/ath/ath_hal/ah.c (revision 305636) +++ head/sys/dev/ath/ath_hal/ah.c (revision 305637) @@ -1,1480 +1,1497 @@ /* * Copyright (c) 2002-2009 Sam Leffler, Errno Consulting * Copyright (c) 2002-2008 Atheros Communications, Inc. * * Permission to use, copy, modify, and/or distribute this software for any * purpose with or without fee is hereby granted, provided that the above * copyright notice and this permission notice appear in all copies. * * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. * * $FreeBSD$ */ #include "opt_ah.h" #include "ah.h" #include "ah_internal.h" #include "ah_devid.h" #include "ah_eeprom.h" /* for 5ghz fast clock flag */ #include "ar5416/ar5416reg.h" /* NB: includes ar5212reg.h */ #include "ar9003/ar9300_devid.h" /* linker set of registered chips */ OS_SET_DECLARE(ah_chips, struct ath_hal_chip); /* * Check the set of registered chips to see if any recognize * the device as one they can support. */ const char* ath_hal_probe(uint16_t vendorid, uint16_t devid) { struct ath_hal_chip * const *pchip; OS_SET_FOREACH(pchip, ah_chips) { const char *name = (*pchip)->probe(vendorid, devid); if (name != AH_NULL) return name; } return AH_NULL; } /* * Attach detects device chip revisions, initializes the hwLayer * function list, reads EEPROM information, * selects reset vectors, and performs a short self test. * Any failures will return an error that should cause a hardware * disable. */ struct ath_hal* ath_hal_attach(uint16_t devid, HAL_SOFTC sc, HAL_BUS_TAG st, HAL_BUS_HANDLE sh, uint16_t *eepromdata, HAL_OPS_CONFIG *ah_config, HAL_STATUS *error) { struct ath_hal_chip * const *pchip; OS_SET_FOREACH(pchip, ah_chips) { struct ath_hal_chip *chip = *pchip; struct ath_hal *ah; /* XXX don't have vendorid, assume atheros one works */ if (chip->probe(ATHEROS_VENDOR_ID, devid) == AH_NULL) continue; ah = chip->attach(devid, sc, st, sh, eepromdata, ah_config, error); if (ah != AH_NULL) { /* copy back private state to public area */ ah->ah_devid = AH_PRIVATE(ah)->ah_devid; ah->ah_subvendorid = AH_PRIVATE(ah)->ah_subvendorid; ah->ah_macVersion = AH_PRIVATE(ah)->ah_macVersion; ah->ah_macRev = AH_PRIVATE(ah)->ah_macRev; ah->ah_phyRev = AH_PRIVATE(ah)->ah_phyRev; ah->ah_analog5GhzRev = AH_PRIVATE(ah)->ah_analog5GhzRev; ah->ah_analog2GhzRev = AH_PRIVATE(ah)->ah_analog2GhzRev; return ah; } } return AH_NULL; } const char * ath_hal_mac_name(struct ath_hal *ah) { switch (ah->ah_macVersion) { case AR_SREV_VERSION_CRETE: case AR_SREV_VERSION_MAUI_1: return "AR5210"; case AR_SREV_VERSION_MAUI_2: case AR_SREV_VERSION_OAHU: return "AR5211"; case AR_SREV_VERSION_VENICE: return "AR5212"; case AR_SREV_VERSION_GRIFFIN: return "AR2413"; case AR_SREV_VERSION_CONDOR: return "AR5424"; case AR_SREV_VERSION_EAGLE: return "AR5413"; case AR_SREV_VERSION_COBRA: return "AR2415"; case AR_SREV_2425: /* Swan */ return "AR2425"; case AR_SREV_2417: /* Nala */ return "AR2417"; case AR_XSREV_VERSION_OWL_PCI: return "AR5416"; case AR_XSREV_VERSION_OWL_PCIE: return "AR5418"; case AR_XSREV_VERSION_HOWL: return "AR9130"; case AR_XSREV_VERSION_SOWL: return "AR9160"; case AR_XSREV_VERSION_MERLIN: if (AH_PRIVATE(ah)->ah_ispcie) return "AR9280"; return "AR9220"; case AR_XSREV_VERSION_KITE: return "AR9285"; case AR_XSREV_VERSION_KIWI: if (AH_PRIVATE(ah)->ah_ispcie) return "AR9287"; return "AR9227"; case AR_SREV_VERSION_AR9380: if (ah->ah_macRev >= AR_SREV_REVISION_AR9580_10) return "AR9580"; return "AR9380"; case AR_SREV_VERSION_AR9460: return "AR9460"; case AR_SREV_VERSION_AR9330: return "AR9330"; case AR_SREV_VERSION_AR9340: return "AR9340"; case AR_SREV_VERSION_QCA9550: return "QCA9550"; case AR_SREV_VERSION_AR9485: return "AR9485"; case AR_SREV_VERSION_QCA9565: return "QCA9565"; case AR_SREV_VERSION_QCA9530: return "QCA9530"; } return "????"; } /* * Return the mask of available modes based on the hardware capabilities. */ u_int ath_hal_getwirelessmodes(struct ath_hal*ah) { return ath_hal_getWirelessModes(ah); } /* linker set of registered RF backends */ OS_SET_DECLARE(ah_rfs, struct ath_hal_rf); /* * Check the set of registered RF backends to see if * any recognize the device as one they can support. */ struct ath_hal_rf * ath_hal_rfprobe(struct ath_hal *ah, HAL_STATUS *ecode) { struct ath_hal_rf * const *prf; OS_SET_FOREACH(prf, ah_rfs) { struct ath_hal_rf *rf = *prf; if (rf->probe(ah)) return rf; } *ecode = HAL_ENOTSUPP; return AH_NULL; } const char * ath_hal_rf_name(struct ath_hal *ah) { switch (ah->ah_analog5GhzRev & AR_RADIO_SREV_MAJOR) { case 0: /* 5210 */ return "5110"; /* NB: made up */ case AR_RAD5111_SREV_MAJOR: case AR_RAD5111_SREV_PROD: return "5111"; case AR_RAD2111_SREV_MAJOR: return "2111"; case AR_RAD5112_SREV_MAJOR: case AR_RAD5112_SREV_2_0: case AR_RAD5112_SREV_2_1: return "5112"; case AR_RAD2112_SREV_MAJOR: case AR_RAD2112_SREV_2_0: case AR_RAD2112_SREV_2_1: return "2112"; case AR_RAD2413_SREV_MAJOR: return "2413"; case AR_RAD5413_SREV_MAJOR: return "5413"; case AR_RAD2316_SREV_MAJOR: return "2316"; case AR_RAD2317_SREV_MAJOR: return "2317"; case AR_RAD5424_SREV_MAJOR: return "5424"; case AR_RAD5133_SREV_MAJOR: return "5133"; case AR_RAD2133_SREV_MAJOR: return "2133"; case AR_RAD5122_SREV_MAJOR: return "5122"; case AR_RAD2122_SREV_MAJOR: return "2122"; } return "????"; } /* * Poll the register looking for a specific value. */ HAL_BOOL ath_hal_wait(struct ath_hal *ah, u_int reg, uint32_t mask, uint32_t val) { #define AH_TIMEOUT 1000 return ath_hal_waitfor(ah, reg, mask, val, AH_TIMEOUT); #undef AH_TIMEOUT } HAL_BOOL ath_hal_waitfor(struct ath_hal *ah, u_int reg, uint32_t mask, uint32_t val, uint32_t timeout) { int i; for (i = 0; i < timeout; i++) { if ((OS_REG_READ(ah, reg) & mask) == val) return AH_TRUE; OS_DELAY(10); } HALDEBUG(ah, HAL_DEBUG_REGIO | HAL_DEBUG_PHYIO, "%s: timeout on reg 0x%x: 0x%08x & 0x%08x != 0x%08x\n", __func__, reg, OS_REG_READ(ah, reg), mask, val); return AH_FALSE; } /* * Reverse the bits starting at the low bit for a value of * bit_count in size */ uint32_t ath_hal_reverseBits(uint32_t val, uint32_t n) { uint32_t retval; int i; for (i = 0, retval = 0; i < n; i++) { retval = (retval << 1) | (val & 1); val >>= 1; } return retval; } /* 802.11n related timing definitions */ #define OFDM_PLCP_BITS 22 #define HT_L_STF 8 #define HT_L_LTF 8 #define HT_L_SIG 4 #define HT_SIG 8 #define HT_STF 4 #define HT_LTF(n) ((n) * 4) -#define HT_RC_2_MCS(_rc) ((_rc) & 0xf) +#define HT_RC_2_MCS(_rc) ((_rc) & 0x1f) #define HT_RC_2_STREAMS(_rc) ((((_rc) & 0x78) >> 3) + 1) #define IS_HT_RATE(_rc) ( (_rc) & IEEE80211_RATE_MCS) /* * Calculate the duration of a packet whether it is 11n or legacy. */ uint32_t ath_hal_pkt_txtime(struct ath_hal *ah, const HAL_RATE_TABLE *rates, uint32_t frameLen, uint16_t rateix, HAL_BOOL isht40, HAL_BOOL shortPreamble, HAL_BOOL includeSifs) { uint8_t rc; int numStreams; rc = rates->info[rateix].rateCode; /* Legacy rate? Return the old way */ if (! IS_HT_RATE(rc)) return ath_hal_computetxtime(ah, rates, frameLen, rateix, shortPreamble, includeSifs); /* 11n frame - extract out the number of spatial streams */ numStreams = HT_RC_2_STREAMS(rc); KASSERT(numStreams > 0 && numStreams <= 4, ("number of spatial streams needs to be 1..3: MCS rate 0x%x!", rateix)); /* XXX TODO: Add SIFS */ return ath_computedur_ht(frameLen, rc, numStreams, isht40, shortPreamble); } static const uint16_t ht20_bps[32] = { 26, 52, 78, 104, 156, 208, 234, 260, 52, 104, 156, 208, 312, 416, 468, 520, 78, 156, 234, 312, 468, 624, 702, 780, 104, 208, 312, 416, 624, 832, 936, 1040 }; static const uint16_t ht40_bps[32] = { 54, 108, 162, 216, 324, 432, 486, 540, 108, 216, 324, 432, 648, 864, 972, 1080, 162, 324, 486, 648, 972, 1296, 1458, 1620, 216, 432, 648, 864, 1296, 1728, 1944, 2160 }; /* * Calculate the transmit duration of an 11n frame. */ uint32_t ath_computedur_ht(uint32_t frameLen, uint16_t rate, int streams, HAL_BOOL isht40, HAL_BOOL isShortGI) { uint32_t bitsPerSymbol, numBits, numSymbols, txTime; KASSERT(rate & IEEE80211_RATE_MCS, ("not mcs %d", rate)); KASSERT((rate &~ IEEE80211_RATE_MCS) < 31, ("bad mcs 0x%x", rate)); if (isht40) - bitsPerSymbol = ht40_bps[rate & 0x1f]; + bitsPerSymbol = ht40_bps[HT_RC_2_MCS(rate)]; else - bitsPerSymbol = ht20_bps[rate & 0x1f]; + bitsPerSymbol = ht20_bps[HT_RC_2_MCS(rate)]; numBits = OFDM_PLCP_BITS + (frameLen << 3); numSymbols = howmany(numBits, bitsPerSymbol); if (isShortGI) txTime = ((numSymbols * 18) + 4) / 5; /* 3.6us */ else txTime = numSymbols * 4; /* 4us */ return txTime + HT_L_STF + HT_L_LTF + HT_L_SIG + HT_SIG + HT_STF + HT_LTF(streams); } /* * Compute the time to transmit a frame of length frameLen bytes * using the specified rate, phy, and short preamble setting. */ uint16_t ath_hal_computetxtime(struct ath_hal *ah, const HAL_RATE_TABLE *rates, uint32_t frameLen, uint16_t rateix, HAL_BOOL shortPreamble, HAL_BOOL includeSifs) { uint32_t bitsPerSymbol, numBits, numSymbols, phyTime, txTime; uint32_t kbps; /* Warn if this function is called for 11n rates; it should not be! */ if (IS_HT_RATE(rates->info[rateix].rateCode)) ath_hal_printf(ah, "%s: MCS rate? (index %d; hwrate 0x%x)\n", __func__, rateix, rates->info[rateix].rateCode); kbps = rates->info[rateix].rateKbps; /* * index can be invalid during dynamic Turbo transitions. * XXX */ if (kbps == 0) return 0; switch (rates->info[rateix].phy) { case IEEE80211_T_CCK: phyTime = CCK_PREAMBLE_BITS + CCK_PLCP_BITS; if (shortPreamble && rates->info[rateix].shortPreamble) phyTime >>= 1; numBits = frameLen << 3; txTime = phyTime + ((numBits * 1000)/kbps); if (includeSifs) txTime += CCK_SIFS_TIME; break; case IEEE80211_T_OFDM: bitsPerSymbol = (kbps * OFDM_SYMBOL_TIME) / 1000; HALASSERT(bitsPerSymbol != 0); numBits = OFDM_PLCP_BITS + (frameLen << 3); numSymbols = howmany(numBits, bitsPerSymbol); txTime = OFDM_PREAMBLE_TIME + (numSymbols * OFDM_SYMBOL_TIME); if (includeSifs) txTime += OFDM_SIFS_TIME; break; case IEEE80211_T_OFDM_HALF: bitsPerSymbol = (kbps * OFDM_HALF_SYMBOL_TIME) / 1000; HALASSERT(bitsPerSymbol != 0); numBits = OFDM_HALF_PLCP_BITS + (frameLen << 3); numSymbols = howmany(numBits, bitsPerSymbol); txTime = OFDM_HALF_PREAMBLE_TIME + (numSymbols * OFDM_HALF_SYMBOL_TIME); if (includeSifs) txTime += OFDM_HALF_SIFS_TIME; break; case IEEE80211_T_OFDM_QUARTER: bitsPerSymbol = (kbps * OFDM_QUARTER_SYMBOL_TIME) / 1000; HALASSERT(bitsPerSymbol != 0); numBits = OFDM_QUARTER_PLCP_BITS + (frameLen << 3); numSymbols = howmany(numBits, bitsPerSymbol); txTime = OFDM_QUARTER_PREAMBLE_TIME + (numSymbols * OFDM_QUARTER_SYMBOL_TIME); if (includeSifs) txTime += OFDM_QUARTER_SIFS_TIME; break; case IEEE80211_T_TURBO: bitsPerSymbol = (kbps * TURBO_SYMBOL_TIME) / 1000; HALASSERT(bitsPerSymbol != 0); numBits = TURBO_PLCP_BITS + (frameLen << 3); numSymbols = howmany(numBits, bitsPerSymbol); txTime = TURBO_PREAMBLE_TIME + (numSymbols * TURBO_SYMBOL_TIME); if (includeSifs) txTime += TURBO_SIFS_TIME; break; default: HALDEBUG(ah, HAL_DEBUG_PHYIO, "%s: unknown phy %u (rate ix %u)\n", __func__, rates->info[rateix].phy, rateix); txTime = 0; break; } return txTime; } int ath_hal_get_curmode(struct ath_hal *ah, const struct ieee80211_channel *chan) { /* * Pick a default mode at bootup. A channel change is inevitable. */ if (!chan) return HAL_MODE_11NG_HT20; if (IEEE80211_IS_CHAN_TURBO(chan)) return HAL_MODE_TURBO; /* check for NA_HT before plain A, since IS_CHAN_A includes NA_HT */ if (IEEE80211_IS_CHAN_5GHZ(chan) && IEEE80211_IS_CHAN_HT20(chan)) return HAL_MODE_11NA_HT20; if (IEEE80211_IS_CHAN_5GHZ(chan) && IEEE80211_IS_CHAN_HT40U(chan)) return HAL_MODE_11NA_HT40PLUS; if (IEEE80211_IS_CHAN_5GHZ(chan) && IEEE80211_IS_CHAN_HT40D(chan)) return HAL_MODE_11NA_HT40MINUS; if (IEEE80211_IS_CHAN_A(chan)) return HAL_MODE_11A; /* check for NG_HT before plain G, since IS_CHAN_G includes NG_HT */ if (IEEE80211_IS_CHAN_2GHZ(chan) && IEEE80211_IS_CHAN_HT20(chan)) return HAL_MODE_11NG_HT20; if (IEEE80211_IS_CHAN_2GHZ(chan) && IEEE80211_IS_CHAN_HT40U(chan)) return HAL_MODE_11NG_HT40PLUS; if (IEEE80211_IS_CHAN_2GHZ(chan) && IEEE80211_IS_CHAN_HT40D(chan)) return HAL_MODE_11NG_HT40MINUS; /* * XXX For FreeBSD, will this work correctly given the DYN * chan mode (OFDM+CCK dynamic) ? We have pure-G versions DYN-BG.. */ if (IEEE80211_IS_CHAN_G(chan)) return HAL_MODE_11G; if (IEEE80211_IS_CHAN_B(chan)) return HAL_MODE_11B; HALASSERT(0); return HAL_MODE_11NG_HT20; } typedef enum { WIRELESS_MODE_11a = 0, WIRELESS_MODE_TURBO = 1, WIRELESS_MODE_11b = 2, WIRELESS_MODE_11g = 3, WIRELESS_MODE_108g = 4, WIRELESS_MODE_MAX } WIRELESS_MODE; +/* + * XXX TODO: for some (?) chips, an 11b mode still runs at 11bg. + * Maybe AR5211 has separate 11b and 11g only modes, so 11b is 22MHz + * and 11g is 44MHz, but AR5416 and later run 11b in 11bg mode, right? + */ static WIRELESS_MODE ath_hal_chan2wmode(struct ath_hal *ah, const struct ieee80211_channel *chan) { if (IEEE80211_IS_CHAN_B(chan)) return WIRELESS_MODE_11b; if (IEEE80211_IS_CHAN_G(chan)) return WIRELESS_MODE_11g; if (IEEE80211_IS_CHAN_108G(chan)) return WIRELESS_MODE_108g; if (IEEE80211_IS_CHAN_TURBO(chan)) return WIRELESS_MODE_TURBO; return WIRELESS_MODE_11a; } /* * Convert between microseconds and core system clocks. */ /* 11a Turbo 11b 11g 108g */ static const uint8_t CLOCK_RATE[] = { 40, 80, 22, 44, 88 }; #define CLOCK_FAST_RATE_5GHZ_OFDM 44 u_int ath_hal_mac_clks(struct ath_hal *ah, u_int usecs) { const struct ieee80211_channel *c = AH_PRIVATE(ah)->ah_curchan; u_int clks; /* NB: ah_curchan may be null when called attach time */ /* XXX merlin and later specific workaround - 5ghz fast clock is 44 */ if (c != AH_NULL && IS_5GHZ_FAST_CLOCK_EN(ah, c)) { clks = usecs * CLOCK_FAST_RATE_5GHZ_OFDM; if (IEEE80211_IS_CHAN_HT40(c)) clks <<= 1; } else if (c != AH_NULL) { clks = usecs * CLOCK_RATE[ath_hal_chan2wmode(ah, c)]; if (IEEE80211_IS_CHAN_HT40(c)) clks <<= 1; } else clks = usecs * CLOCK_RATE[WIRELESS_MODE_11b]; /* Compensate for half/quarter rate */ if (c != AH_NULL && IEEE80211_IS_CHAN_HALF(c)) clks = clks / 2; else if (c != AH_NULL && IEEE80211_IS_CHAN_QUARTER(c)) clks = clks / 4; return clks; } u_int ath_hal_mac_usec(struct ath_hal *ah, u_int clks) { + uint64_t psec; + + psec = ath_hal_mac_psec(ah, clks); + return (psec / 1000000); +} + +/* + * XXX TODO: half, quarter rates. + */ +uint64_t +ath_hal_mac_psec(struct ath_hal *ah, u_int clks) +{ const struct ieee80211_channel *c = AH_PRIVATE(ah)->ah_curchan; - u_int usec; + uint64_t psec; /* NB: ah_curchan may be null when called attach time */ /* XXX merlin and later specific workaround - 5ghz fast clock is 44 */ if (c != AH_NULL && IS_5GHZ_FAST_CLOCK_EN(ah, c)) { - usec = clks / CLOCK_FAST_RATE_5GHZ_OFDM; + psec = (clks * 1000000ULL) / CLOCK_FAST_RATE_5GHZ_OFDM; if (IEEE80211_IS_CHAN_HT40(c)) - usec >>= 1; + psec >>= 1; } else if (c != AH_NULL) { - usec = clks / CLOCK_RATE[ath_hal_chan2wmode(ah, c)]; + psec = (clks * 1000000ULL) / CLOCK_RATE[ath_hal_chan2wmode(ah, c)]; if (IEEE80211_IS_CHAN_HT40(c)) - usec >>= 1; + psec >>= 1; } else - usec = clks / CLOCK_RATE[WIRELESS_MODE_11b]; - return usec; + psec = (clks * 1000000ULL) / CLOCK_RATE[WIRELESS_MODE_11b]; + return psec; } /* * Setup a h/w rate table's reverse lookup table and * fill in ack durations. This routine is called for * each rate table returned through the ah_getRateTable * method. The reverse lookup tables are assumed to be * initialized to zero (or at least the first entry). * We use this as a key that indicates whether or not * we've previously setup the reverse lookup table. * * XXX not reentrant, but shouldn't matter */ void ath_hal_setupratetable(struct ath_hal *ah, HAL_RATE_TABLE *rt) { #define N(a) (sizeof(a)/sizeof(a[0])) int i; if (rt->rateCodeToIndex[0] != 0) /* already setup */ return; for (i = 0; i < N(rt->rateCodeToIndex); i++) rt->rateCodeToIndex[i] = (uint8_t) -1; for (i = 0; i < rt->rateCount; i++) { uint8_t code = rt->info[i].rateCode; uint8_t cix = rt->info[i].controlRate; HALASSERT(code < N(rt->rateCodeToIndex)); rt->rateCodeToIndex[code] = i; HALASSERT((code | rt->info[i].shortPreamble) < N(rt->rateCodeToIndex)); rt->rateCodeToIndex[code | rt->info[i].shortPreamble] = i; /* * XXX for 11g the control rate to use for 5.5 and 11 Mb/s * depends on whether they are marked as basic rates; * the static tables are setup with an 11b-compatible * 2Mb/s rate which will work but is suboptimal */ rt->info[i].lpAckDuration = ath_hal_computetxtime(ah, rt, WLAN_CTRL_FRAME_SIZE, cix, AH_FALSE, AH_TRUE); rt->info[i].spAckDuration = ath_hal_computetxtime(ah, rt, WLAN_CTRL_FRAME_SIZE, cix, AH_TRUE, AH_TRUE); } #undef N } HAL_STATUS ath_hal_getcapability(struct ath_hal *ah, HAL_CAPABILITY_TYPE type, uint32_t capability, uint32_t *result) { const HAL_CAPABILITIES *pCap = &AH_PRIVATE(ah)->ah_caps; switch (type) { case HAL_CAP_REG_DMN: /* regulatory domain */ *result = AH_PRIVATE(ah)->ah_currentRD; return HAL_OK; case HAL_CAP_DFS_DMN: /* DFS Domain */ *result = AH_PRIVATE(ah)->ah_dfsDomain; return HAL_OK; case HAL_CAP_CIPHER: /* cipher handled in hardware */ case HAL_CAP_TKIP_MIC: /* handle TKIP MIC in hardware */ return HAL_ENOTSUPP; case HAL_CAP_TKIP_SPLIT: /* hardware TKIP uses split keys */ return HAL_ENOTSUPP; case HAL_CAP_PHYCOUNTERS: /* hardware PHY error counters */ return pCap->halHwPhyCounterSupport ? HAL_OK : HAL_ENXIO; case HAL_CAP_WME_TKIPMIC: /* hardware can do TKIP MIC when WMM is turned on */ return HAL_ENOTSUPP; case HAL_CAP_DIVERSITY: /* hardware supports fast diversity */ return HAL_ENOTSUPP; case HAL_CAP_KEYCACHE_SIZE: /* hardware key cache size */ *result = pCap->halKeyCacheSize; return HAL_OK; case HAL_CAP_NUM_TXQUEUES: /* number of hardware tx queues */ *result = pCap->halTotalQueues; return HAL_OK; case HAL_CAP_VEOL: /* hardware supports virtual EOL */ return pCap->halVEOLSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_PSPOLL: /* hardware PS-Poll support works */ return pCap->halPSPollBroken ? HAL_ENOTSUPP : HAL_OK; case HAL_CAP_COMPRESSION: return pCap->halCompressSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_BURST: return pCap->halBurstSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_FASTFRAME: return pCap->halFastFramesSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_DIAG: /* hardware diagnostic support */ *result = AH_PRIVATE(ah)->ah_diagreg; return HAL_OK; case HAL_CAP_TXPOW: /* global tx power limit */ switch (capability) { case 0: /* facility is supported */ return HAL_OK; case 1: /* current limit */ *result = AH_PRIVATE(ah)->ah_powerLimit; return HAL_OK; case 2: /* current max tx power */ *result = AH_PRIVATE(ah)->ah_maxPowerLevel; return HAL_OK; case 3: /* scale factor */ *result = AH_PRIVATE(ah)->ah_tpScale; return HAL_OK; } return HAL_ENOTSUPP; case HAL_CAP_BSSIDMASK: /* hardware supports bssid mask */ return pCap->halBssIdMaskSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_MCAST_KEYSRCH: /* multicast frame keycache search */ return pCap->halMcastKeySrchSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_TSF_ADJUST: /* hardware has beacon tsf adjust */ return HAL_ENOTSUPP; case HAL_CAP_RFSILENT: /* rfsilent support */ switch (capability) { case 0: /* facility is supported */ return pCap->halRfSilentSupport ? HAL_OK : HAL_ENOTSUPP; case 1: /* current setting */ return AH_PRIVATE(ah)->ah_rfkillEnabled ? HAL_OK : HAL_ENOTSUPP; case 2: /* rfsilent config */ *result = AH_PRIVATE(ah)->ah_rfsilent; return HAL_OK; } return HAL_ENOTSUPP; case HAL_CAP_11D: return HAL_OK; case HAL_CAP_HT: return pCap->halHTSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_GTXTO: return pCap->halGTTSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_FAST_CC: return pCap->halFastCCSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_TX_CHAINMASK: /* mask of TX chains supported */ *result = pCap->halTxChainMask; return HAL_OK; case HAL_CAP_RX_CHAINMASK: /* mask of RX chains supported */ *result = pCap->halRxChainMask; return HAL_OK; case HAL_CAP_NUM_GPIO_PINS: *result = pCap->halNumGpioPins; return HAL_OK; case HAL_CAP_CST: return pCap->halCSTSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_RTS_AGGR_LIMIT: *result = pCap->halRtsAggrLimit; return HAL_OK; case HAL_CAP_4ADDR_AGGR: return pCap->hal4AddrAggrSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_EXT_CHAN_DFS: return pCap->halExtChanDfsSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_RX_STBC: return pCap->halRxStbcSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_TX_STBC: return pCap->halTxStbcSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_COMBINED_RADAR_RSSI: return pCap->halUseCombinedRadarRssi ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_AUTO_SLEEP: return pCap->halAutoSleepSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_MBSSID_AGGR_SUPPORT: return pCap->halMbssidAggrSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_SPLIT_4KB_TRANS: /* hardware handles descriptors straddling 4k page boundary */ return pCap->hal4kbSplitTransSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_REG_FLAG: *result = AH_PRIVATE(ah)->ah_currentRDext; return HAL_OK; case HAL_CAP_ENHANCED_DMA_SUPPORT: return pCap->halEnhancedDmaSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_NUM_TXMAPS: *result = pCap->halNumTxMaps; return HAL_OK; case HAL_CAP_TXDESCLEN: *result = pCap->halTxDescLen; return HAL_OK; case HAL_CAP_TXSTATUSLEN: *result = pCap->halTxStatusLen; return HAL_OK; case HAL_CAP_RXSTATUSLEN: *result = pCap->halRxStatusLen; return HAL_OK; case HAL_CAP_RXFIFODEPTH: switch (capability) { case HAL_RX_QUEUE_HP: *result = pCap->halRxHpFifoDepth; return HAL_OK; case HAL_RX_QUEUE_LP: *result = pCap->halRxLpFifoDepth; return HAL_OK; default: return HAL_ENOTSUPP; } case HAL_CAP_RXBUFSIZE: case HAL_CAP_NUM_MR_RETRIES: *result = pCap->halNumMRRetries; return HAL_OK; case HAL_CAP_BT_COEX: return pCap->halBtCoexSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_SPECTRAL_SCAN: return pCap->halSpectralScanSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_HT20_SGI: return pCap->halHTSGI20Support ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_RXTSTAMP_PREC: /* rx desc tstamp precision (bits) */ *result = pCap->halRxTstampPrecision; return HAL_OK; case HAL_CAP_ANT_DIV_COMB: /* AR9285/AR9485 LNA diversity */ return pCap->halAntDivCombSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_ENHANCED_DFS_SUPPORT: return pCap->halEnhancedDfsSupport ? HAL_OK : HAL_ENOTSUPP; /* FreeBSD-specific entries for now */ case HAL_CAP_RXORN_FATAL: /* HAL_INT_RXORN treated as fatal */ return AH_PRIVATE(ah)->ah_rxornIsFatal ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_INTRMASK: /* mask of supported interrupts */ *result = pCap->halIntrMask; return HAL_OK; case HAL_CAP_BSSIDMATCH: /* hardware has disable bssid match */ return pCap->halBssidMatchSupport ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_STREAMS: /* number of 11n spatial streams */ switch (capability) { case 0: /* TX */ *result = pCap->halTxStreams; return HAL_OK; case 1: /* RX */ *result = pCap->halRxStreams; return HAL_OK; default: return HAL_ENOTSUPP; } case HAL_CAP_RXDESC_SELFLINK: /* hardware supports self-linked final RX descriptors correctly */ return pCap->halHasRxSelfLinkedTail ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_BB_READ_WAR: /* Baseband read WAR */ return pCap->halHasBBReadWar? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_SERIALISE_WAR: /* PCI register serialisation */ return pCap->halSerialiseRegWar ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_MFP: /* Management frame protection setting */ *result = pCap->halMfpSupport; return HAL_OK; case HAL_CAP_RX_LNA_MIXING: /* Hardware uses an RX LNA mixer to map 2 antennas to a 1 stream receiver */ return pCap->halRxUsingLnaMixing ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_DO_MYBEACON: /* Hardware supports filtering my-beacons */ return pCap->halRxDoMyBeacon ? HAL_OK : HAL_ENOTSUPP; case HAL_CAP_TXTSTAMP_PREC: /* tx desc tstamp precision (bits) */ *result = pCap->halTxTstampPrecision; return HAL_OK; default: return HAL_EINVAL; } } HAL_BOOL ath_hal_setcapability(struct ath_hal *ah, HAL_CAPABILITY_TYPE type, uint32_t capability, uint32_t setting, HAL_STATUS *status) { switch (type) { case HAL_CAP_TXPOW: switch (capability) { case 3: if (setting <= HAL_TP_SCALE_MIN) { AH_PRIVATE(ah)->ah_tpScale = setting; return AH_TRUE; } break; } break; case HAL_CAP_RFSILENT: /* rfsilent support */ /* * NB: allow even if halRfSilentSupport is false * in case the EEPROM is misprogrammed. */ switch (capability) { case 1: /* current setting */ AH_PRIVATE(ah)->ah_rfkillEnabled = (setting != 0); return AH_TRUE; case 2: /* rfsilent config */ /* XXX better done per-chip for validation? */ AH_PRIVATE(ah)->ah_rfsilent = setting; return AH_TRUE; } break; case HAL_CAP_REG_DMN: /* regulatory domain */ AH_PRIVATE(ah)->ah_currentRD = setting; return AH_TRUE; case HAL_CAP_RXORN_FATAL: /* HAL_INT_RXORN treated as fatal */ AH_PRIVATE(ah)->ah_rxornIsFatal = setting; return AH_TRUE; default: break; } if (status) *status = HAL_EINVAL; return AH_FALSE; } /* * Common support for getDiagState method. */ static u_int ath_hal_getregdump(struct ath_hal *ah, const HAL_REGRANGE *regs, void *dstbuf, int space) { uint32_t *dp = dstbuf; int i; for (i = 0; space >= 2*sizeof(uint32_t); i++) { uint32_t r = regs[i].start; uint32_t e = regs[i].end; *dp++ = r; *dp++ = e; space -= 2*sizeof(uint32_t); do { *dp++ = OS_REG_READ(ah, r); r += sizeof(uint32_t); space -= sizeof(uint32_t); } while (r <= e && space >= sizeof(uint32_t)); } return (char *) dp - (char *) dstbuf; } static void ath_hal_setregs(struct ath_hal *ah, const HAL_REGWRITE *regs, int space) { while (space >= sizeof(HAL_REGWRITE)) { OS_REG_WRITE(ah, regs->addr, regs->value); regs++, space -= sizeof(HAL_REGWRITE); } } HAL_BOOL ath_hal_getdiagstate(struct ath_hal *ah, int request, const void *args, uint32_t argsize, void **result, uint32_t *resultsize) { switch (request) { case HAL_DIAG_REVS: *result = &AH_PRIVATE(ah)->ah_devid; *resultsize = sizeof(HAL_REVS); return AH_TRUE; case HAL_DIAG_REGS: *resultsize = ath_hal_getregdump(ah, args, *result,*resultsize); return AH_TRUE; case HAL_DIAG_SETREGS: ath_hal_setregs(ah, args, argsize); *resultsize = 0; return AH_TRUE; case HAL_DIAG_FATALERR: *result = &AH_PRIVATE(ah)->ah_fatalState[0]; *resultsize = sizeof(AH_PRIVATE(ah)->ah_fatalState); return AH_TRUE; case HAL_DIAG_EEREAD: if (argsize != sizeof(uint16_t)) return AH_FALSE; if (!ath_hal_eepromRead(ah, *(const uint16_t *)args, *result)) return AH_FALSE; *resultsize = sizeof(uint16_t); return AH_TRUE; #ifdef AH_PRIVATE_DIAG case HAL_DIAG_SETKEY: { const HAL_DIAG_KEYVAL *dk; if (argsize != sizeof(HAL_DIAG_KEYVAL)) return AH_FALSE; dk = (const HAL_DIAG_KEYVAL *)args; return ah->ah_setKeyCacheEntry(ah, dk->dk_keyix, &dk->dk_keyval, dk->dk_mac, dk->dk_xor); } case HAL_DIAG_RESETKEY: if (argsize != sizeof(uint16_t)) return AH_FALSE; return ah->ah_resetKeyCacheEntry(ah, *(const uint16_t *)args); #ifdef AH_SUPPORT_WRITE_EEPROM case HAL_DIAG_EEWRITE: { const HAL_DIAG_EEVAL *ee; if (argsize != sizeof(HAL_DIAG_EEVAL)) return AH_FALSE; ee = (const HAL_DIAG_EEVAL *)args; return ath_hal_eepromWrite(ah, ee->ee_off, ee->ee_data); } #endif /* AH_SUPPORT_WRITE_EEPROM */ #endif /* AH_PRIVATE_DIAG */ case HAL_DIAG_11NCOMPAT: if (argsize == 0) { *resultsize = sizeof(uint32_t); *((uint32_t *)(*result)) = AH_PRIVATE(ah)->ah_11nCompat; } else if (argsize == sizeof(uint32_t)) { AH_PRIVATE(ah)->ah_11nCompat = *(const uint32_t *)args; } else return AH_FALSE; return AH_TRUE; case HAL_DIAG_CHANSURVEY: *result = &AH_PRIVATE(ah)->ah_chansurvey; *resultsize = sizeof(HAL_CHANNEL_SURVEY); return AH_TRUE; } return AH_FALSE; } /* * Set the properties of the tx queue with the parameters * from qInfo. */ HAL_BOOL ath_hal_setTxQProps(struct ath_hal *ah, HAL_TX_QUEUE_INFO *qi, const HAL_TXQ_INFO *qInfo) { uint32_t cw; if (qi->tqi_type == HAL_TX_QUEUE_INACTIVE) { HALDEBUG(ah, HAL_DEBUG_TXQUEUE, "%s: inactive queue\n", __func__); return AH_FALSE; } /* XXX validate parameters */ qi->tqi_ver = qInfo->tqi_ver; qi->tqi_subtype = qInfo->tqi_subtype; qi->tqi_qflags = qInfo->tqi_qflags; qi->tqi_priority = qInfo->tqi_priority; if (qInfo->tqi_aifs != HAL_TXQ_USEDEFAULT) qi->tqi_aifs = AH_MIN(qInfo->tqi_aifs, 255); else qi->tqi_aifs = INIT_AIFS; if (qInfo->tqi_cwmin != HAL_TXQ_USEDEFAULT) { cw = AH_MIN(qInfo->tqi_cwmin, 1024); /* make sure that the CWmin is of the form (2^n - 1) */ qi->tqi_cwmin = 1; while (qi->tqi_cwmin < cw) qi->tqi_cwmin = (qi->tqi_cwmin << 1) | 1; } else qi->tqi_cwmin = qInfo->tqi_cwmin; if (qInfo->tqi_cwmax != HAL_TXQ_USEDEFAULT) { cw = AH_MIN(qInfo->tqi_cwmax, 1024); /* make sure that the CWmax is of the form (2^n - 1) */ qi->tqi_cwmax = 1; while (qi->tqi_cwmax < cw) qi->tqi_cwmax = (qi->tqi_cwmax << 1) | 1; } else qi->tqi_cwmax = INIT_CWMAX; /* Set retry limit values */ if (qInfo->tqi_shretry != 0) qi->tqi_shretry = AH_MIN(qInfo->tqi_shretry, 15); else qi->tqi_shretry = INIT_SH_RETRY; if (qInfo->tqi_lgretry != 0) qi->tqi_lgretry = AH_MIN(qInfo->tqi_lgretry, 15); else qi->tqi_lgretry = INIT_LG_RETRY; qi->tqi_cbrPeriod = qInfo->tqi_cbrPeriod; qi->tqi_cbrOverflowLimit = qInfo->tqi_cbrOverflowLimit; qi->tqi_burstTime = qInfo->tqi_burstTime; qi->tqi_readyTime = qInfo->tqi_readyTime; switch (qInfo->tqi_subtype) { case HAL_WME_UPSD: if (qi->tqi_type == HAL_TX_QUEUE_DATA) qi->tqi_intFlags = HAL_TXQ_USE_LOCKOUT_BKOFF_DIS; break; default: break; /* NB: silence compiler */ } return AH_TRUE; } HAL_BOOL ath_hal_getTxQProps(struct ath_hal *ah, HAL_TXQ_INFO *qInfo, const HAL_TX_QUEUE_INFO *qi) { if (qi->tqi_type == HAL_TX_QUEUE_INACTIVE) { HALDEBUG(ah, HAL_DEBUG_TXQUEUE, "%s: inactive queue\n", __func__); return AH_FALSE; } qInfo->tqi_qflags = qi->tqi_qflags; qInfo->tqi_ver = qi->tqi_ver; qInfo->tqi_subtype = qi->tqi_subtype; qInfo->tqi_qflags = qi->tqi_qflags; qInfo->tqi_priority = qi->tqi_priority; qInfo->tqi_aifs = qi->tqi_aifs; qInfo->tqi_cwmin = qi->tqi_cwmin; qInfo->tqi_cwmax = qi->tqi_cwmax; qInfo->tqi_shretry = qi->tqi_shretry; qInfo->tqi_lgretry = qi->tqi_lgretry; qInfo->tqi_cbrPeriod = qi->tqi_cbrPeriod; qInfo->tqi_cbrOverflowLimit = qi->tqi_cbrOverflowLimit; qInfo->tqi_burstTime = qi->tqi_burstTime; qInfo->tqi_readyTime = qi->tqi_readyTime; return AH_TRUE; } /* 11a Turbo 11b 11g 108g */ static const int16_t NOISE_FLOOR[] = { -96, -93, -98, -96, -93 }; /* * Read the current channel noise floor and return. * If nf cal hasn't finished, channel noise floor should be 0 * and we return a nominal value based on band and frequency. * * NB: This is a private routine used by per-chip code to * implement the ah_getChanNoise method. */ int16_t ath_hal_getChanNoise(struct ath_hal *ah, const struct ieee80211_channel *chan) { HAL_CHANNEL_INTERNAL *ichan; ichan = ath_hal_checkchannel(ah, chan); if (ichan == AH_NULL) { HALDEBUG(ah, HAL_DEBUG_NFCAL, "%s: invalid channel %u/0x%x; no mapping\n", __func__, chan->ic_freq, chan->ic_flags); return 0; } if (ichan->rawNoiseFloor == 0) { WIRELESS_MODE mode = ath_hal_chan2wmode(ah, chan); HALASSERT(mode < WIRELESS_MODE_MAX); return NOISE_FLOOR[mode] + ath_hal_getNfAdjust(ah, ichan); } else return ichan->rawNoiseFloor + ichan->noiseFloorAdjust; } /* * Fetch the current setup of ctl/ext noise floor values. * * If the CHANNEL_MIMO_NF_VALID flag isn't set, the array is simply * populated with values from NOISE_FLOOR[] + ath_hal_getNfAdjust(). * * The caller must supply ctl/ext NF arrays which are at least * AH_MAX_CHAINS entries long. */ int ath_hal_get_mimo_chan_noise(struct ath_hal *ah, const struct ieee80211_channel *chan, int16_t *nf_ctl, int16_t *nf_ext) { #ifdef AH_SUPPORT_AR5416 HAL_CHANNEL_INTERNAL *ichan; int i; ichan = ath_hal_checkchannel(ah, chan); if (ichan == AH_NULL) { HALDEBUG(ah, HAL_DEBUG_NFCAL, "%s: invalid channel %u/0x%x; no mapping\n", __func__, chan->ic_freq, chan->ic_flags); for (i = 0; i < AH_MAX_CHAINS; i++) { nf_ctl[i] = nf_ext[i] = 0; } return 0; } /* Return 0 if there's no valid MIMO values (yet) */ if (! (ichan->privFlags & CHANNEL_MIMO_NF_VALID)) { for (i = 0; i < AH_MAX_CHAINS; i++) { nf_ctl[i] = nf_ext[i] = 0; } return 0; } if (ichan->rawNoiseFloor == 0) { WIRELESS_MODE mode = ath_hal_chan2wmode(ah, chan); HALASSERT(mode < WIRELESS_MODE_MAX); /* * See the comment below - this could cause issues for * stations which have a very low RSSI, below the * 'normalised' NF values in NOISE_FLOOR[]. */ for (i = 0; i < AH_MAX_CHAINS; i++) { nf_ctl[i] = nf_ext[i] = NOISE_FLOOR[mode] + ath_hal_getNfAdjust(ah, ichan); } return 1; } else { /* * The value returned here from a MIMO radio is presumed to be * "good enough" as a NF calculation. As RSSI values are calculated * against this, an adjusted NF may be higher than the RSSI value * returned from a vary weak station, resulting in an obscenely * high signal strength calculation being returned. * * This should be re-evaluated at a later date, along with any * signal strength calculations which are made. Quite likely the * RSSI values will need to be adjusted to ensure the calculations * don't "wrap" when RSSI is less than the "adjusted" NF value. * ("Adjust" here is via ichan->noiseFloorAdjust.) */ for (i = 0; i < AH_MAX_CHAINS; i++) { nf_ctl[i] = ichan->noiseFloorCtl[i] + ath_hal_getNfAdjust(ah, ichan); nf_ext[i] = ichan->noiseFloorExt[i] + ath_hal_getNfAdjust(ah, ichan); } return 1; } #else return 0; #endif /* AH_SUPPORT_AR5416 */ } /* * Process all valid raw noise floors into the dBm noise floor values. * Though our device has no reference for a dBm noise floor, we perform * a relative minimization of NF's based on the lowest NF found across a * channel scan. */ void ath_hal_process_noisefloor(struct ath_hal *ah) { HAL_CHANNEL_INTERNAL *c; int16_t correct2, correct5; int16_t lowest2, lowest5; int i; /* * Find the lowest 2GHz and 5GHz noise floor values after adjusting * for statistically recorded NF/channel deviation. */ correct2 = lowest2 = 0; correct5 = lowest5 = 0; for (i = 0; i < AH_PRIVATE(ah)->ah_nchan; i++) { WIRELESS_MODE mode; int16_t nf; c = &AH_PRIVATE(ah)->ah_channels[i]; if (c->rawNoiseFloor >= 0) continue; /* XXX can't identify proper mode */ mode = IS_CHAN_5GHZ(c) ? WIRELESS_MODE_11a : WIRELESS_MODE_11g; nf = c->rawNoiseFloor + NOISE_FLOOR[mode] + ath_hal_getNfAdjust(ah, c); if (IS_CHAN_5GHZ(c)) { if (nf < lowest5) { lowest5 = nf; correct5 = NOISE_FLOOR[mode] - (c->rawNoiseFloor + ath_hal_getNfAdjust(ah, c)); } } else { if (nf < lowest2) { lowest2 = nf; correct2 = NOISE_FLOOR[mode] - (c->rawNoiseFloor + ath_hal_getNfAdjust(ah, c)); } } } /* Correct the channels to reach the expected NF value */ for (i = 0; i < AH_PRIVATE(ah)->ah_nchan; i++) { c = &AH_PRIVATE(ah)->ah_channels[i]; if (c->rawNoiseFloor >= 0) continue; /* Apply correction factor */ c->noiseFloorAdjust = ath_hal_getNfAdjust(ah, c) + (IS_CHAN_5GHZ(c) ? correct5 : correct2); HALDEBUG(ah, HAL_DEBUG_NFCAL, "%u raw nf %d adjust %d\n", c->channel, c->rawNoiseFloor, c->noiseFloorAdjust); } } /* * INI support routines. */ int ath_hal_ini_write(struct ath_hal *ah, const HAL_INI_ARRAY *ia, int col, int regWr) { int r; HALASSERT(col < ia->cols); for (r = 0; r < ia->rows; r++) { OS_REG_WRITE(ah, HAL_INI_VAL(ia, r, 0), HAL_INI_VAL(ia, r, col)); /* Analog shift register delay seems needed for Merlin - PR kern/154220 */ if (HAL_INI_VAL(ia, r, 0) >= 0x7800 && HAL_INI_VAL(ia, r, 0) < 0x7900) OS_DELAY(100); DMA_YIELD(regWr); } return regWr; } void ath_hal_ini_bank_setup(uint32_t data[], const HAL_INI_ARRAY *ia, int col) { int r; HALASSERT(col < ia->cols); for (r = 0; r < ia->rows; r++) data[r] = HAL_INI_VAL(ia, r, col); } int ath_hal_ini_bank_write(struct ath_hal *ah, const HAL_INI_ARRAY *ia, const uint32_t data[], int regWr) { int r; for (r = 0; r < ia->rows; r++) { OS_REG_WRITE(ah, HAL_INI_VAL(ia, r, 0), data[r]); DMA_YIELD(regWr); } return regWr; } /* * These are EEPROM board related routines which should likely live in * a helper library of some sort. */ /************************************************************** * ath_ee_getLowerUppderIndex * * Return indices surrounding the value in sorted integer lists. * Requirement: the input list must be monotonically increasing * and populated up to the list size * Returns: match is set if an index in the array matches exactly * or a the target is before or after the range of the array. */ HAL_BOOL ath_ee_getLowerUpperIndex(uint8_t target, uint8_t *pList, uint16_t listSize, uint16_t *indexL, uint16_t *indexR) { uint16_t i; /* * Check first and last elements for beyond ordered array cases. */ if (target <= pList[0]) { *indexL = *indexR = 0; return AH_TRUE; } if (target >= pList[listSize-1]) { *indexL = *indexR = (uint16_t)(listSize - 1); return AH_TRUE; } /* look for value being near or between 2 values in list */ for (i = 0; i < listSize - 1; i++) { /* * If value is close to the current value of the list * then target is not between values, it is one of the values */ if (pList[i] == target) { *indexL = *indexR = i; return AH_TRUE; } /* * Look for value being between current value and next value * if so return these 2 values */ if (target < pList[i + 1]) { *indexL = i; *indexR = (uint16_t)(i + 1); return AH_FALSE; } } HALASSERT(0); *indexL = *indexR = 0; return AH_FALSE; } /************************************************************** * ath_ee_FillVpdTable * * Fill the Vpdlist for indices Pmax-Pmin * Note: pwrMin, pwrMax and Vpdlist are all in dBm * 4 */ HAL_BOOL ath_ee_FillVpdTable(uint8_t pwrMin, uint8_t pwrMax, uint8_t *pPwrList, uint8_t *pVpdList, uint16_t numIntercepts, uint8_t *pRetVpdList) { uint16_t i, k; uint8_t currPwr = pwrMin; uint16_t idxL, idxR; HALASSERT(pwrMax > pwrMin); for (i = 0; i <= (pwrMax - pwrMin) / 2; i++) { ath_ee_getLowerUpperIndex(currPwr, pPwrList, numIntercepts, &(idxL), &(idxR)); if (idxR < 1) idxR = 1; /* extrapolate below */ if (idxL == numIntercepts - 1) idxL = (uint16_t)(numIntercepts - 2); /* extrapolate above */ if (pPwrList[idxL] == pPwrList[idxR]) k = pVpdList[idxL]; else k = (uint16_t)( ((currPwr - pPwrList[idxL]) * pVpdList[idxR] + (pPwrList[idxR] - currPwr) * pVpdList[idxL]) / (pPwrList[idxR] - pPwrList[idxL]) ); HALASSERT(k < 256); pRetVpdList[i] = (uint8_t)k; currPwr += 2; /* half dB steps */ } return AH_TRUE; } /************************************************************************** * ath_ee_interpolate * * Returns signed interpolated or the scaled up interpolated value */ int16_t ath_ee_interpolate(uint16_t target, uint16_t srcLeft, uint16_t srcRight, int16_t targetLeft, int16_t targetRight) { int16_t rv; if (srcRight == srcLeft) { rv = targetLeft; } else { rv = (int16_t)( ((target - srcLeft) * targetRight + (srcRight - target) * targetLeft) / (srcRight - srcLeft) ); } return rv; } /* * Adjust the TSF. */ void ath_hal_adjusttsf(struct ath_hal *ah, int32_t tsfdelta) { /* XXX handle wrap/overflow */ OS_REG_WRITE(ah, AR_TSF_L32, OS_REG_READ(ah, AR_TSF_L32) + tsfdelta); } /* * Enable or disable CCA. */ void ath_hal_setcca(struct ath_hal *ah, int ena) { /* * NB: fill me in; this is not provided by default because disabling * CCA in most locales violates regulatory. */ } /* * Get CCA setting. */ int ath_hal_getcca(struct ath_hal *ah) { u_int32_t diag; if (ath_hal_getcapability(ah, HAL_CAP_DIAG, 0, &diag) != HAL_OK) return 1; return ((diag & 0x500000) == 0); } /* * This routine is only needed when supporting EEPROM-in-RAM setups * (eg embedded SoCs and on-board PCI/PCIe devices.) */ /* NB: This is in 16 bit words; not bytes */ /* XXX This doesn't belong here! */ #define ATH_DATA_EEPROM_SIZE 2048 HAL_BOOL ath_hal_EepromDataRead(struct ath_hal *ah, u_int off, uint16_t *data) { if (ah->ah_eepromdata == AH_NULL) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: no eeprom data!\n", __func__); return AH_FALSE; } if (off > ATH_DATA_EEPROM_SIZE) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: offset %x > %x\n", __func__, off, ATH_DATA_EEPROM_SIZE); return AH_FALSE; } (*data) = ah->ah_eepromdata[off]; return AH_TRUE; } /* * Do a 2GHz specific MHz->IEEE based on the hardware * frequency. * * This is the unmapped frequency which is programmed into the hardware. */ int ath_hal_mhz2ieee_2ghz(struct ath_hal *ah, int freq) { if (freq == 2484) return 14; if (freq < 2484) return ((int) freq - 2407) / 5; else return 15 + ((freq - 2512) / 20); } /* * Clear the current survey data. * * This should be done during a channel change. */ void ath_hal_survey_clear(struct ath_hal *ah) { OS_MEMZERO(&AH_PRIVATE(ah)->ah_chansurvey, sizeof(AH_PRIVATE(ah)->ah_chansurvey)); } /* * Add a sample to the channel survey. */ void ath_hal_survey_add_sample(struct ath_hal *ah, HAL_SURVEY_SAMPLE *hs) { HAL_CHANNEL_SURVEY *cs; cs = &AH_PRIVATE(ah)->ah_chansurvey; OS_MEMCPY(&cs->samples[cs->cur_sample], hs, sizeof(*hs)); cs->samples[cs->cur_sample].seq_num = cs->cur_seq; cs->cur_sample = (cs->cur_sample + 1) % CHANNEL_SURVEY_SAMPLE_COUNT; cs->cur_seq++; } Index: head/sys/dev/ath/ath_hal/ah.h =================================================================== --- head/sys/dev/ath/ath_hal/ah.h (revision 305636) +++ head/sys/dev/ath/ath_hal/ah.h (revision 305637) @@ -1,1677 +1,1684 @@ /* * Copyright (c) 2002-2009 Sam Leffler, Errno Consulting * Copyright (c) 2002-2008 Atheros Communications, Inc. * * Permission to use, copy, modify, and/or distribute this software for any * purpose with or without fee is hereby granted, provided that the above * copyright notice and this permission notice appear in all copies. * * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. * * $FreeBSD$ */ #ifndef _ATH_AH_H_ #define _ATH_AH_H_ /* * Atheros Hardware Access Layer * * Clients of the HAL call ath_hal_attach to obtain a reference to an ath_hal * structure for use with the device. Hardware-related operations that * follow must call back into the HAL through interface, supplying the * reference as the first parameter. */ #include "ah_osdep.h" /* * The maximum number of TX/RX chains supported. * This is intended to be used by various statistics gathering operations * (NF, RSSI, EVM). */ #define AH_MAX_CHAINS 3 #define AH_MIMO_MAX_EVM_PILOTS 6 /* * __ahdecl is analogous to _cdecl; it defines the calling * convention used within the HAL. For most systems this * can just default to be empty and the compiler will (should) * use _cdecl. For systems where _cdecl is not compatible this * must be defined. See linux/ah_osdep.h for an example. */ #ifndef __ahdecl #define __ahdecl #endif /* * Status codes that may be returned by the HAL. Note that * interfaces that return a status code set it only when an * error occurs--i.e. you cannot check it for success. */ typedef enum { HAL_OK = 0, /* No error */ HAL_ENXIO = 1, /* No hardware present */ HAL_ENOMEM = 2, /* Memory allocation failed */ HAL_EIO = 3, /* Hardware didn't respond as expected */ HAL_EEMAGIC = 4, /* EEPROM magic number invalid */ HAL_EEVERSION = 5, /* EEPROM version invalid */ HAL_EELOCKED = 6, /* EEPROM unreadable */ HAL_EEBADSUM = 7, /* EEPROM checksum invalid */ HAL_EEREAD = 8, /* EEPROM read problem */ HAL_EEBADMAC = 9, /* EEPROM mac address invalid */ HAL_EESIZE = 10, /* EEPROM size not supported */ HAL_EEWRITE = 11, /* Attempt to change write-locked EEPROM */ HAL_EINVAL = 12, /* Invalid parameter to function */ HAL_ENOTSUPP = 13, /* Hardware revision not supported */ HAL_ESELFTEST = 14, /* Hardware self-test failed */ HAL_EINPROGRESS = 15, /* Operation incomplete */ HAL_EEBADREG = 16, /* EEPROM invalid regulatory contents */ HAL_EEBADCC = 17, /* EEPROM invalid country code */ HAL_INV_PMODE = 18, /* Couldn't bring out of sleep state */ } HAL_STATUS; typedef enum { AH_FALSE = 0, /* NB: lots of code assumes false is zero */ AH_TRUE = 1, } HAL_BOOL; typedef enum { HAL_CAP_REG_DMN = 0, /* current regulatory domain */ HAL_CAP_CIPHER = 1, /* hardware supports cipher */ HAL_CAP_TKIP_MIC = 2, /* handle TKIP MIC in hardware */ HAL_CAP_TKIP_SPLIT = 3, /* hardware TKIP uses split keys */ HAL_CAP_PHYCOUNTERS = 4, /* hardware PHY error counters */ HAL_CAP_DIVERSITY = 5, /* hardware supports fast diversity */ HAL_CAP_KEYCACHE_SIZE = 6, /* number of entries in key cache */ HAL_CAP_NUM_TXQUEUES = 7, /* number of hardware xmit queues */ HAL_CAP_VEOL = 9, /* hardware supports virtual EOL */ HAL_CAP_PSPOLL = 10, /* hardware has working PS-Poll support */ HAL_CAP_DIAG = 11, /* hardware diagnostic support */ HAL_CAP_COMPRESSION = 12, /* hardware supports compression */ HAL_CAP_BURST = 13, /* hardware supports packet bursting */ HAL_CAP_FASTFRAME = 14, /* hardware supoprts fast frames */ HAL_CAP_TXPOW = 15, /* global tx power limit */ HAL_CAP_TPC = 16, /* per-packet tx power control */ HAL_CAP_PHYDIAG = 17, /* hardware phy error diagnostic */ HAL_CAP_BSSIDMASK = 18, /* hardware supports bssid mask */ HAL_CAP_MCAST_KEYSRCH = 19, /* hardware has multicast key search */ HAL_CAP_TSF_ADJUST = 20, /* hardware has beacon tsf adjust */ /* 21 was HAL_CAP_XR */ HAL_CAP_WME_TKIPMIC = 22, /* hardware can support TKIP MIC when WMM is turned on */ /* 23 was HAL_CAP_CHAN_HALFRATE */ /* 24 was HAL_CAP_CHAN_QUARTERRATE */ HAL_CAP_RFSILENT = 25, /* hardware has rfsilent support */ HAL_CAP_TPC_ACK = 26, /* ack txpower with per-packet tpc */ HAL_CAP_TPC_CTS = 27, /* cts txpower with per-packet tpc */ HAL_CAP_11D = 28, /* 11d beacon support for changing cc */ HAL_CAP_PCIE_PS = 29, HAL_CAP_HT = 30, /* hardware can support HT */ HAL_CAP_GTXTO = 31, /* hardware supports global tx timeout */ HAL_CAP_FAST_CC = 32, /* hardware supports fast channel change */ HAL_CAP_TX_CHAINMASK = 33, /* mask of TX chains supported */ HAL_CAP_RX_CHAINMASK = 34, /* mask of RX chains supported */ HAL_CAP_NUM_GPIO_PINS = 36, /* number of GPIO pins */ HAL_CAP_CST = 38, /* hardware supports carrier sense timeout */ HAL_CAP_RIFS_RX = 39, HAL_CAP_RIFS_TX = 40, HAL_CAP_FORCE_PPM = 41, HAL_CAP_RTS_AGGR_LIMIT = 42, /* aggregation limit with RTS */ HAL_CAP_4ADDR_AGGR = 43, /* hardware is capable of 4addr aggregation */ HAL_CAP_DFS_DMN = 44, /* current DFS domain */ HAL_CAP_EXT_CHAN_DFS = 45, /* DFS support for extension channel */ HAL_CAP_COMBINED_RADAR_RSSI = 46, /* Is combined RSSI for radar accurate */ HAL_CAP_AUTO_SLEEP = 48, /* hardware can go to network sleep automatically after waking up to receive TIM */ HAL_CAP_MBSSID_AGGR_SUPPORT = 49, /* Support for mBSSID Aggregation */ HAL_CAP_SPLIT_4KB_TRANS = 50, /* hardware supports descriptors straddling a 4k page boundary */ HAL_CAP_REG_FLAG = 51, /* Regulatory domain flags */ HAL_CAP_BB_RIFS_HANG = 52, HAL_CAP_RIFS_RX_ENABLED = 53, HAL_CAP_BB_DFS_HANG = 54, HAL_CAP_RX_STBC = 58, HAL_CAP_TX_STBC = 59, HAL_CAP_BT_COEX = 60, /* hardware is capable of bluetooth coexistence */ HAL_CAP_DYNAMIC_SMPS = 61, /* Dynamic MIMO Power Save hardware support */ HAL_CAP_DS = 67, /* 2 stream */ HAL_CAP_BB_RX_CLEAR_STUCK_HANG = 68, HAL_CAP_MAC_HANG = 69, /* can MAC hang */ HAL_CAP_MFP = 70, /* Management Frame Protection in hardware */ HAL_CAP_TS = 72, /* 3 stream */ HAL_CAP_ENHANCED_DMA_SUPPORT = 75, /* DMA FIFO support */ HAL_CAP_NUM_TXMAPS = 76, /* Number of buffers in a transmit descriptor */ HAL_CAP_TXDESCLEN = 77, /* Length of transmit descriptor */ HAL_CAP_TXSTATUSLEN = 78, /* Length of transmit status descriptor */ HAL_CAP_RXSTATUSLEN = 79, /* Length of transmit status descriptor */ HAL_CAP_RXFIFODEPTH = 80, /* Receive hardware FIFO depth */ HAL_CAP_RXBUFSIZE = 81, /* Receive Buffer Length */ HAL_CAP_NUM_MR_RETRIES = 82, /* limit on multirate retries */ HAL_CAP_OL_PWRCTRL = 84, /* Open loop TX power control */ HAL_CAP_SPECTRAL_SCAN = 90, /* Hardware supports spectral scan */ HAL_CAP_BB_PANIC_WATCHDOG = 92, HAL_CAP_HT20_SGI = 96, /* hardware supports HT20 short GI */ HAL_CAP_LDPC = 99, HAL_CAP_RXTSTAMP_PREC = 100, /* rx desc tstamp precision (bits) */ HAL_CAP_ANT_DIV_COMB = 105, /* Enable antenna diversity/combining */ HAL_CAP_PHYRESTART_CLR_WAR = 106, /* in some cases, clear phy restart to fix bb hang */ HAL_CAP_ENTERPRISE_MODE = 107, /* Enterprise mode features */ HAL_CAP_LDPCWAR = 108, HAL_CAP_CHANNEL_SWITCH_TIME_USEC = 109, /* Channel change time, usec */ HAL_CAP_ENABLE_APM = 110, /* APM enabled */ HAL_CAP_PCIE_LCR_EXTSYNC_EN = 111, HAL_CAP_PCIE_LCR_OFFSET = 112, HAL_CAP_ENHANCED_DFS_SUPPORT = 117, /* hardware supports enhanced DFS */ HAL_CAP_MCI = 118, HAL_CAP_SMARTANTENNA = 119, HAL_CAP_TRAFFIC_FAST_RECOVER = 120, HAL_CAP_TX_DIVERSITY = 121, HAL_CAP_CRDC = 122, /* The following are private to the FreeBSD HAL (224 onward) */ HAL_CAP_INTMIT = 229, /* interference mitigation */ HAL_CAP_RXORN_FATAL = 230, /* HAL_INT_RXORN treated as fatal */ HAL_CAP_BB_HANG = 235, /* can baseband hang */ HAL_CAP_INTRMASK = 237, /* bitmask of supported interrupts */ HAL_CAP_BSSIDMATCH = 238, /* hardware has disable bssid match */ HAL_CAP_STREAMS = 239, /* how many 802.11n spatial streams are available */ HAL_CAP_RXDESC_SELFLINK = 242, /* support a self-linked tail RX descriptor */ HAL_CAP_BB_READ_WAR = 244, /* baseband read WAR */ HAL_CAP_SERIALISE_WAR = 245, /* serialise register access on PCI */ HAL_CAP_ENFORCE_TXOP = 246, /* Enforce TXOP if supported */ HAL_CAP_RX_LNA_MIXING = 247, /* RX hardware uses LNA mixing */ HAL_CAP_DO_MYBEACON = 248, /* Supports HAL_RX_FILTER_MYBEACON */ HAL_CAP_TOA_LOCATIONING = 249, /* time of flight / arrival locationing */ HAL_CAP_TXTSTAMP_PREC = 250, /* tx desc tstamp precision (bits) */ } HAL_CAPABILITY_TYPE; /* * "States" for setting the LED. These correspond to * the possible 802.11 operational states and there may * be a many-to-one mapping between these states and the * actual hardware state for the LED's (i.e. the hardware * may have fewer states). */ typedef enum { HAL_LED_INIT = 0, HAL_LED_SCAN = 1, HAL_LED_AUTH = 2, HAL_LED_ASSOC = 3, HAL_LED_RUN = 4 } HAL_LED_STATE; /* * Transmit queue types/numbers. These are used to tag * each transmit queue in the hardware and to identify a set * of transmit queues for operations such as start/stop dma. */ typedef enum { HAL_TX_QUEUE_INACTIVE = 0, /* queue is inactive/unused */ HAL_TX_QUEUE_DATA = 1, /* data xmit q's */ HAL_TX_QUEUE_BEACON = 2, /* beacon xmit q */ HAL_TX_QUEUE_CAB = 3, /* "crap after beacon" xmit q */ HAL_TX_QUEUE_UAPSD = 4, /* u-apsd power save xmit q */ HAL_TX_QUEUE_PSPOLL = 5, /* power save poll xmit q */ HAL_TX_QUEUE_CFEND = 6, HAL_TX_QUEUE_PAPRD = 7, } HAL_TX_QUEUE; #define HAL_NUM_TX_QUEUES 10 /* max possible # of queues */ /* * Receive queue types. These are used to tag * each transmit queue in the hardware and to identify a set * of transmit queues for operations such as start/stop dma. */ typedef enum { HAL_RX_QUEUE_HP = 0, /* high priority recv queue */ HAL_RX_QUEUE_LP = 1, /* low priority recv queue */ } HAL_RX_QUEUE; #define HAL_NUM_RX_QUEUES 2 /* max possible # of queues */ #define HAL_TXFIFO_DEPTH 8 /* transmit fifo depth */ /* * Transmit queue subtype. These map directly to * WME Access Categories (except for UPSD). Refer * to Table 5 of the WME spec. */ typedef enum { HAL_WME_AC_BK = 0, /* background access category */ HAL_WME_AC_BE = 1, /* best effort access category*/ HAL_WME_AC_VI = 2, /* video access category */ HAL_WME_AC_VO = 3, /* voice access category */ HAL_WME_UPSD = 4, /* uplink power save */ } HAL_TX_QUEUE_SUBTYPE; /* * Transmit queue flags that control various * operational parameters. */ typedef enum { /* * Per queue interrupt enables. When set the associated * interrupt may be delivered for packets sent through * the queue. Without these enabled no interrupts will * be delivered for transmits through the queue. */ HAL_TXQ_TXOKINT_ENABLE = 0x0001, /* enable TXOK interrupt */ HAL_TXQ_TXERRINT_ENABLE = 0x0001, /* enable TXERR interrupt */ HAL_TXQ_TXDESCINT_ENABLE = 0x0002, /* enable TXDESC interrupt */ HAL_TXQ_TXEOLINT_ENABLE = 0x0004, /* enable TXEOL interrupt */ HAL_TXQ_TXURNINT_ENABLE = 0x0008, /* enable TXURN interrupt */ /* * Enable hardware compression for packets sent through * the queue. The compression buffer must be setup and * packets must have a key entry marked in the tx descriptor. */ HAL_TXQ_COMPRESSION_ENABLE = 0x0010, /* enable h/w compression */ /* * Disable queue when veol is hit or ready time expires. * By default the queue is disabled only on reaching the * physical end of queue (i.e. a null link ptr in the * descriptor chain). */ HAL_TXQ_RDYTIME_EXP_POLICY_ENABLE = 0x0020, /* * Schedule frames on delivery of a DBA (DMA Beacon Alert) * event. Frames will be transmitted only when this timer * fires, e.g to transmit a beacon in ap or adhoc modes. */ HAL_TXQ_DBA_GATED = 0x0040, /* schedule based on DBA */ /* * Each transmit queue has a counter that is incremented * each time the queue is enabled and decremented when * the list of frames to transmit is traversed (or when * the ready time for the queue expires). This counter * must be non-zero for frames to be scheduled for * transmission. The following controls disable bumping * this counter under certain conditions. Typically this * is used to gate frames based on the contents of another * queue (e.g. CAB traffic may only follow a beacon frame). * These are meaningful only when frames are scheduled * with a non-ASAP policy (e.g. DBA-gated). */ HAL_TXQ_CBR_DIS_QEMPTY = 0x0080, /* disable on this q empty */ HAL_TXQ_CBR_DIS_BEMPTY = 0x0100, /* disable on beacon q empty */ /* * Fragment burst backoff policy. Normally the no backoff * is done after a successful transmission, the next fragment * is sent at SIFS. If this flag is set backoff is done * after each fragment, regardless whether it was ack'd or * not, after the backoff count reaches zero a normal channel * access procedure is done before the next transmit (i.e. * wait AIFS instead of SIFS). */ HAL_TXQ_FRAG_BURST_BACKOFF_ENABLE = 0x00800000, /* * Disable post-tx backoff following each frame. */ HAL_TXQ_BACKOFF_DISABLE = 0x00010000, /* disable post backoff */ /* * DCU arbiter lockout control. This controls how * lower priority tx queues are handled with respect to * to a specific queue when multiple queues have frames * to send. No lockout means lower priority queues arbitrate * concurrently with this queue. Intra-frame lockout * means lower priority queues are locked out until the * current frame transmits (e.g. including backoffs and bursting). * Global lockout means nothing lower can arbitrary so * long as there is traffic activity on this queue (frames, * backoff, etc). */ HAL_TXQ_ARB_LOCKOUT_INTRA = 0x00020000, /* intra-frame lockout */ HAL_TXQ_ARB_LOCKOUT_GLOBAL = 0x00040000, /* full lockout s */ HAL_TXQ_IGNORE_VIRTCOL = 0x00080000, /* ignore virt collisions */ HAL_TXQ_SEQNUM_INC_DIS = 0x00100000, /* disable seqnum increment */ } HAL_TX_QUEUE_FLAGS; typedef struct { uint32_t tqi_ver; /* hal TXQ version */ HAL_TX_QUEUE_SUBTYPE tqi_subtype; /* subtype if applicable */ HAL_TX_QUEUE_FLAGS tqi_qflags; /* flags (see above) */ uint32_t tqi_priority; /* (not used) */ uint32_t tqi_aifs; /* aifs */ uint32_t tqi_cwmin; /* cwMin */ uint32_t tqi_cwmax; /* cwMax */ uint16_t tqi_shretry; /* rts retry limit */ uint16_t tqi_lgretry; /* long retry limit (not used)*/ uint32_t tqi_cbrPeriod; /* CBR period (us) */ uint32_t tqi_cbrOverflowLimit; /* threshold for CBROVF int */ uint32_t tqi_burstTime; /* max burst duration (us) */ uint32_t tqi_readyTime; /* frame schedule time (us) */ uint32_t tqi_compBuf; /* comp buffer phys addr */ } HAL_TXQ_INFO; #define HAL_TQI_NONVAL 0xffff /* token to use for aifs, cwmin, cwmax */ #define HAL_TXQ_USEDEFAULT ((uint32_t) -1) /* compression definitions */ #define HAL_COMP_BUF_MAX_SIZE 9216 /* 9K */ #define HAL_COMP_BUF_ALIGN_SIZE 512 /* * Transmit packet types. This belongs in ah_desc.h, but * is here so we can give a proper type to various parameters * (and not require everyone include the file). * * NB: These values are intentionally assigned for * direct use when setting up h/w descriptors. */ typedef enum { HAL_PKT_TYPE_NORMAL = 0, HAL_PKT_TYPE_ATIM = 1, HAL_PKT_TYPE_PSPOLL = 2, HAL_PKT_TYPE_BEACON = 3, HAL_PKT_TYPE_PROBE_RESP = 4, HAL_PKT_TYPE_CHIRP = 5, HAL_PKT_TYPE_GRP_POLL = 6, HAL_PKT_TYPE_AMPDU = 7, } HAL_PKT_TYPE; /* Rx Filter Frame Types */ typedef enum { /* * These bits correspond to AR_RX_FILTER for all chips. * Not all bits are supported by all chips. */ HAL_RX_FILTER_UCAST = 0x00000001, /* Allow unicast frames */ HAL_RX_FILTER_MCAST = 0x00000002, /* Allow multicast frames */ HAL_RX_FILTER_BCAST = 0x00000004, /* Allow broadcast frames */ HAL_RX_FILTER_CONTROL = 0x00000008, /* Allow control frames */ HAL_RX_FILTER_BEACON = 0x00000010, /* Allow beacon frames */ HAL_RX_FILTER_PROM = 0x00000020, /* Promiscuous mode */ HAL_RX_FILTER_PROBEREQ = 0x00000080, /* Allow probe request frames */ HAL_RX_FILTER_PHYERR = 0x00000100, /* Allow phy errors */ HAL_RX_FILTER_MYBEACON = 0x00000200, /* Filter beacons other than mine */ HAL_RX_FILTER_COMPBAR = 0x00000400, /* Allow compressed BAR */ HAL_RX_FILTER_COMP_BA = 0x00000800, /* Allow compressed blockack */ HAL_RX_FILTER_PHYRADAR = 0x00002000, /* Allow phy radar errors */ HAL_RX_FILTER_PSPOLL = 0x00004000, /* Allow PS-POLL frames */ HAL_RX_FILTER_MCAST_BCAST_ALL = 0x00008000, /* Allow all mcast/bcast frames */ /* * Magic RX filter flags that aren't targeting hardware bits * but instead the HAL sets individual bits - eg PHYERR will result * in OFDM/CCK timing error frames being received. */ HAL_RX_FILTER_BSSID = 0x40000000, /* Disable BSSID match */ } HAL_RX_FILTER; typedef enum { HAL_PM_AWAKE = 0, HAL_PM_FULL_SLEEP = 1, HAL_PM_NETWORK_SLEEP = 2, HAL_PM_UNDEFINED = 3 } HAL_POWER_MODE; /* * Enterprise mode flags */ #define AH_ENT_DUAL_BAND_DISABLE 0x00000001 #define AH_ENT_CHAIN2_DISABLE 0x00000002 #define AH_ENT_5MHZ_DISABLE 0x00000004 #define AH_ENT_10MHZ_DISABLE 0x00000008 #define AH_ENT_49GHZ_DISABLE 0x00000010 #define AH_ENT_LOOPBACK_DISABLE 0x00000020 #define AH_ENT_TPC_PERF_DISABLE 0x00000040 #define AH_ENT_MIN_PKT_SIZE_DISABLE 0x00000080 #define AH_ENT_SPECTRAL_PRECISION 0x00000300 #define AH_ENT_SPECTRAL_PRECISION_S 8 #define AH_ENT_RTSCTS_DELIM_WAR 0x00010000 #define AH_FIRST_DESC_NDELIMS 60 /* * NOTE WELL: * These are mapped to take advantage of the common locations for many of * the bits on all of the currently supported MAC chips. This is to make * the ISR as efficient as possible, while still abstracting HW differences. * When new hardware breaks this commonality this enumerated type, as well * as the HAL functions using it, must be modified. All values are directly * mapped unless commented otherwise. */ typedef enum { HAL_INT_RX = 0x00000001, /* Non-common mapping */ HAL_INT_RXDESC = 0x00000002, /* Legacy mapping */ HAL_INT_RXERR = 0x00000004, HAL_INT_RXHP = 0x00000001, /* EDMA */ HAL_INT_RXLP = 0x00000002, /* EDMA */ HAL_INT_RXNOFRM = 0x00000008, HAL_INT_RXEOL = 0x00000010, HAL_INT_RXORN = 0x00000020, HAL_INT_TX = 0x00000040, /* Non-common mapping */ HAL_INT_TXDESC = 0x00000080, HAL_INT_TIM_TIMER= 0x00000100, HAL_INT_MCI = 0x00000200, HAL_INT_BBPANIC = 0x00000400, HAL_INT_TXURN = 0x00000800, HAL_INT_MIB = 0x00001000, HAL_INT_RXPHY = 0x00004000, HAL_INT_RXKCM = 0x00008000, HAL_INT_SWBA = 0x00010000, HAL_INT_BRSSI = 0x00020000, HAL_INT_BMISS = 0x00040000, HAL_INT_BNR = 0x00100000, HAL_INT_TIM = 0x00200000, /* Non-common mapping */ HAL_INT_DTIM = 0x00400000, /* Non-common mapping */ HAL_INT_DTIMSYNC= 0x00800000, /* Non-common mapping */ HAL_INT_GPIO = 0x01000000, HAL_INT_CABEND = 0x02000000, /* Non-common mapping */ HAL_INT_TSFOOR = 0x04000000, /* Non-common mapping */ HAL_INT_TBTT = 0x08000000, /* Non-common mapping */ /* Atheros ref driver has a generic timer interrupt now..*/ HAL_INT_GENTIMER = 0x08000000, /* Non-common mapping */ HAL_INT_CST = 0x10000000, /* Non-common mapping */ HAL_INT_GTT = 0x20000000, /* Non-common mapping */ HAL_INT_FATAL = 0x40000000, /* Non-common mapping */ #define HAL_INT_GLOBAL 0x80000000 /* Set/clear IER */ HAL_INT_BMISC = HAL_INT_TIM | HAL_INT_DTIM | HAL_INT_DTIMSYNC | HAL_INT_CABEND | HAL_INT_TBTT, /* Interrupt bits that map directly to ISR/IMR bits */ HAL_INT_COMMON = HAL_INT_RXNOFRM | HAL_INT_RXDESC | HAL_INT_RXEOL | HAL_INT_RXORN | HAL_INT_TXDESC | HAL_INT_TXURN | HAL_INT_MIB | HAL_INT_RXPHY | HAL_INT_RXKCM | HAL_INT_SWBA | HAL_INT_BMISS | HAL_INT_BRSSI | HAL_INT_BNR | HAL_INT_GPIO, } HAL_INT; /* * MSI vector assignments */ typedef enum { HAL_MSIVEC_MISC = 0, HAL_MSIVEC_TX = 1, HAL_MSIVEC_RXLP = 2, HAL_MSIVEC_RXHP = 3, } HAL_MSIVEC; typedef enum { HAL_INT_LINE = 0, HAL_INT_MSI = 1, } HAL_INT_TYPE; /* For interrupt mitigation registers */ typedef enum { HAL_INT_RX_FIRSTPKT=0, HAL_INT_RX_LASTPKT, HAL_INT_TX_FIRSTPKT, HAL_INT_TX_LASTPKT, HAL_INT_THRESHOLD } HAL_INT_MITIGATION; /* XXX this is duplicate information! */ typedef struct { u_int32_t cyclecnt_diff; /* delta cycle count */ u_int32_t rxclr_cnt; /* rx clear count */ u_int32_t extrxclr_cnt; /* ext chan rx clear count */ u_int32_t txframecnt_diff; /* delta tx frame count */ u_int32_t rxframecnt_diff; /* delta rx frame count */ u_int32_t listen_time; /* listen time in msec - time for which ch is free */ u_int32_t ofdmphyerr_cnt; /* OFDM err count since last reset */ u_int32_t cckphyerr_cnt; /* CCK err count since last reset */ u_int32_t ofdmphyerrcnt_diff; /* delta OFDM Phy Error Count */ HAL_BOOL valid; /* if the stats are valid*/ } HAL_ANISTATS; typedef struct { u_int8_t txctl_offset; u_int8_t txctl_numwords; u_int8_t txstatus_offset; u_int8_t txstatus_numwords; u_int8_t rxctl_offset; u_int8_t rxctl_numwords; u_int8_t rxstatus_offset; u_int8_t rxstatus_numwords; u_int8_t macRevision; } HAL_DESC_INFO; typedef enum { HAL_GPIO_OUTPUT_MUX_AS_OUTPUT = 0, HAL_GPIO_OUTPUT_MUX_PCIE_ATTENTION_LED = 1, HAL_GPIO_OUTPUT_MUX_PCIE_POWER_LED = 2, HAL_GPIO_OUTPUT_MUX_MAC_NETWORK_LED = 3, HAL_GPIO_OUTPUT_MUX_MAC_POWER_LED = 4, HAL_GPIO_OUTPUT_MUX_AS_WLAN_ACTIVE = 5, HAL_GPIO_OUTPUT_MUX_AS_TX_FRAME = 6, HAL_GPIO_OUTPUT_MUX_AS_MCI_WLAN_DATA, HAL_GPIO_OUTPUT_MUX_AS_MCI_WLAN_CLK, HAL_GPIO_OUTPUT_MUX_AS_MCI_BT_DATA, HAL_GPIO_OUTPUT_MUX_AS_MCI_BT_CLK, HAL_GPIO_OUTPUT_MUX_AS_WL_IN_TX, HAL_GPIO_OUTPUT_MUX_AS_WL_IN_RX, HAL_GPIO_OUTPUT_MUX_AS_BT_IN_TX, HAL_GPIO_OUTPUT_MUX_AS_BT_IN_RX, HAL_GPIO_OUTPUT_MUX_AS_RUCKUS_STROBE, HAL_GPIO_OUTPUT_MUX_AS_RUCKUS_DATA, HAL_GPIO_OUTPUT_MUX_AS_SMARTANT_CTRL0, HAL_GPIO_OUTPUT_MUX_AS_SMARTANT_CTRL1, HAL_GPIO_OUTPUT_MUX_AS_SMARTANT_CTRL2, HAL_GPIO_OUTPUT_MUX_NUM_ENTRIES } HAL_GPIO_MUX_TYPE; typedef enum { HAL_GPIO_INTR_LOW = 0, HAL_GPIO_INTR_HIGH = 1, HAL_GPIO_INTR_DISABLE = 2 } HAL_GPIO_INTR_TYPE; typedef struct halCounters { u_int32_t tx_frame_count; u_int32_t rx_frame_count; u_int32_t rx_clear_count; u_int32_t cycle_count; u_int8_t is_rx_active; // true (1) or false (0) u_int8_t is_tx_active; // true (1) or false (0) } HAL_COUNTERS; typedef enum { HAL_RFGAIN_INACTIVE = 0, HAL_RFGAIN_READ_REQUESTED = 1, HAL_RFGAIN_NEED_CHANGE = 2 } HAL_RFGAIN; typedef uint16_t HAL_CTRY_CODE; /* country code */ typedef uint16_t HAL_REG_DOMAIN; /* regulatory domain code */ #define HAL_ANTENNA_MIN_MODE 0 #define HAL_ANTENNA_FIXED_A 1 #define HAL_ANTENNA_FIXED_B 2 #define HAL_ANTENNA_MAX_MODE 3 typedef struct { uint32_t ackrcv_bad; uint32_t rts_bad; uint32_t rts_good; uint32_t fcs_bad; uint32_t beacons; } HAL_MIB_STATS; /* * These bits represent what's in ah_currentRDext. */ typedef enum { REG_EXT_FCC_MIDBAND = 0, REG_EXT_JAPAN_MIDBAND = 1, REG_EXT_FCC_DFS_HT40 = 2, REG_EXT_JAPAN_NONDFS_HT40 = 3, REG_EXT_JAPAN_DFS_HT40 = 4 } REG_EXT_BITMAP; enum { HAL_MODE_11A = 0x001, /* 11a channels */ HAL_MODE_TURBO = 0x002, /* 11a turbo-only channels */ HAL_MODE_11B = 0x004, /* 11b channels */ HAL_MODE_PUREG = 0x008, /* 11g channels (OFDM only) */ #ifdef notdef HAL_MODE_11G = 0x010, /* 11g channels (OFDM/CCK) */ #else HAL_MODE_11G = 0x008, /* XXX historical */ #endif HAL_MODE_108G = 0x020, /* 11g+Turbo channels */ HAL_MODE_108A = 0x040, /* 11a+Turbo channels */ HAL_MODE_11A_HALF_RATE = 0x200, /* 11a half width channels */ HAL_MODE_11A_QUARTER_RATE = 0x400, /* 11a quarter width channels */ HAL_MODE_11G_HALF_RATE = 0x800, /* 11g half width channels */ HAL_MODE_11G_QUARTER_RATE = 0x1000, /* 11g quarter width channels */ HAL_MODE_11NG_HT20 = 0x008000, HAL_MODE_11NA_HT20 = 0x010000, HAL_MODE_11NG_HT40PLUS = 0x020000, HAL_MODE_11NG_HT40MINUS = 0x040000, HAL_MODE_11NA_HT40PLUS = 0x080000, HAL_MODE_11NA_HT40MINUS = 0x100000, HAL_MODE_ALL = 0xffffff }; typedef struct { int rateCount; /* NB: for proper padding */ uint8_t rateCodeToIndex[256]; /* back mapping */ struct { uint8_t valid; /* valid for rate control use */ uint8_t phy; /* CCK/OFDM/XR */ uint32_t rateKbps; /* transfer rate in kbs */ uint8_t rateCode; /* rate for h/w descriptors */ uint8_t shortPreamble; /* mask for enabling short * preamble in CCK rate code */ uint8_t dot11Rate; /* value for supported rates * info element of MLME */ uint8_t controlRate; /* index of next lower basic * rate; used for dur. calcs */ uint16_t lpAckDuration; /* long preamble ACK duration */ uint16_t spAckDuration; /* short preamble ACK duration*/ } info[64]; } HAL_RATE_TABLE; typedef struct { u_int rs_count; /* number of valid entries */ uint8_t rs_rates[64]; /* rates */ } HAL_RATE_SET; /* * 802.11n specific structures and enums */ typedef enum { HAL_CHAINTYPE_TX = 1, /* Tx chain type */ HAL_CHAINTYPE_RX = 2, /* RX chain type */ } HAL_CHAIN_TYPE; typedef struct { u_int Tries; u_int Rate; /* hardware rate code */ u_int RateIndex; /* rate series table index */ u_int PktDuration; u_int ChSel; u_int RateFlags; #define HAL_RATESERIES_RTS_CTS 0x0001 /* use rts/cts w/this series */ #define HAL_RATESERIES_2040 0x0002 /* use ext channel for series */ #define HAL_RATESERIES_HALFGI 0x0004 /* use half-gi for series */ #define HAL_RATESERIES_STBC 0x0008 /* use STBC for series */ u_int tx_power_cap; /* in 1/2 dBm units XXX TODO */ } HAL_11N_RATE_SERIES; typedef enum { HAL_HT_MACMODE_20 = 0, /* 20 MHz operation */ HAL_HT_MACMODE_2040 = 1, /* 20/40 MHz operation */ } HAL_HT_MACMODE; typedef enum { HAL_HT_PHYMODE_20 = 0, /* 20 MHz operation */ HAL_HT_PHYMODE_2040 = 1, /* 20/40 MHz operation */ } HAL_HT_PHYMODE; typedef enum { HAL_HT_EXTPROTSPACING_20 = 0, /* 20 MHz spacing */ HAL_HT_EXTPROTSPACING_25 = 1, /* 25 MHz spacing */ } HAL_HT_EXTPROTSPACING; typedef enum { HAL_RX_CLEAR_CTL_LOW = 0x1, /* force control channel to appear busy */ HAL_RX_CLEAR_EXT_LOW = 0x2, /* force extension channel to appear busy */ } HAL_HT_RXCLEAR; typedef enum { HAL_FREQ_BAND_5GHZ = 0, HAL_FREQ_BAND_2GHZ = 1, } HAL_FREQ_BAND; /* * Antenna switch control. By default antenna selection * enables multiple (2) antenna use. To force use of the * A or B antenna only specify a fixed setting. Fixing * the antenna will also disable any diversity support. */ typedef enum { HAL_ANT_VARIABLE = 0, /* variable by programming */ HAL_ANT_FIXED_A = 1, /* fixed antenna A */ HAL_ANT_FIXED_B = 2, /* fixed antenna B */ } HAL_ANT_SETTING; typedef enum { HAL_M_STA = 1, /* infrastructure station */ HAL_M_IBSS = 0, /* IBSS (adhoc) station */ HAL_M_HOSTAP = 6, /* Software Access Point */ HAL_M_MONITOR = 8 /* Monitor mode */ } HAL_OPMODE; typedef enum { HAL_RESET_NORMAL = 0, /* Do normal reset */ HAL_RESET_BBPANIC = 1, /* Reset because of BB panic */ HAL_RESET_FORCE_COLD = 2, /* Force full reset */ } HAL_RESET_TYPE; typedef struct { uint8_t kv_type; /* one of HAL_CIPHER */ uint8_t kv_apsd; /* Mask for APSD enabled ACs */ uint16_t kv_len; /* length in bits */ uint8_t kv_val[16]; /* enough for 128-bit keys */ uint8_t kv_mic[8]; /* TKIP MIC key */ uint8_t kv_txmic[8]; /* TKIP TX MIC key (optional) */ } HAL_KEYVAL; /* * This is the TX descriptor field which marks the key padding requirement. * The naming is unfortunately unclear. */ #define AH_KEYTYPE_MASK 0x0F typedef enum { HAL_KEY_TYPE_CLEAR, HAL_KEY_TYPE_WEP, HAL_KEY_TYPE_AES, HAL_KEY_TYPE_TKIP, } HAL_KEY_TYPE; typedef enum { HAL_CIPHER_WEP = 0, HAL_CIPHER_AES_OCB = 1, HAL_CIPHER_AES_CCM = 2, HAL_CIPHER_CKIP = 3, HAL_CIPHER_TKIP = 4, HAL_CIPHER_CLR = 5, /* no encryption */ HAL_CIPHER_MIC = 127 /* TKIP-MIC, not a cipher */ } HAL_CIPHER; enum { HAL_SLOT_TIME_6 = 6, /* NB: for turbo mode */ HAL_SLOT_TIME_9 = 9, HAL_SLOT_TIME_20 = 20, }; /* * Per-station beacon timer state. Note that the specified * beacon interval (given in TU's) can also include flags * to force a TSF reset and to enable the beacon xmit logic. * If bs_cfpmaxduration is non-zero the hardware is setup to * coexist with a PCF-capable AP. */ typedef struct { uint32_t bs_nexttbtt; /* next beacon in TU */ uint32_t bs_nextdtim; /* next DTIM in TU */ uint32_t bs_intval; /* beacon interval+flags */ /* * HAL_BEACON_PERIOD, HAL_BEACON_ENA and HAL_BEACON_RESET_TSF * are all 1:1 correspondances with the pre-11n chip AR_BEACON * register. */ #define HAL_BEACON_PERIOD 0x0000ffff /* beacon interval period */ #define HAL_BEACON_PERIOD_TU8 0x0007ffff /* beacon interval, tu/8 */ #define HAL_BEACON_ENA 0x00800000 /* beacon xmit enable */ #define HAL_BEACON_RESET_TSF 0x01000000 /* clear TSF */ #define HAL_TSFOOR_THRESHOLD 0x00004240 /* TSF OOR thresh (16k uS) */ uint32_t bs_dtimperiod; uint16_t bs_cfpperiod; /* CFP period in TU */ uint16_t bs_cfpmaxduration; /* max CFP duration in TU */ uint32_t bs_cfpnext; /* next CFP in TU */ uint16_t bs_timoffset; /* byte offset to TIM bitmap */ uint16_t bs_bmissthreshold; /* beacon miss threshold */ uint32_t bs_sleepduration; /* max sleep duration */ uint32_t bs_tsfoor_threshold; /* TSF out of range threshold */ } HAL_BEACON_STATE; /* * Like HAL_BEACON_STATE but for non-station mode setup. * NB: see above flag definitions for bt_intval. */ typedef struct { uint32_t bt_intval; /* beacon interval+flags */ uint32_t bt_nexttbtt; /* next beacon in TU */ uint32_t bt_nextatim; /* next ATIM in TU */ uint32_t bt_nextdba; /* next DBA in 1/8th TU */ uint32_t bt_nextswba; /* next SWBA in 1/8th TU */ uint32_t bt_flags; /* timer enables */ #define HAL_BEACON_TBTT_EN 0x00000001 #define HAL_BEACON_DBA_EN 0x00000002 #define HAL_BEACON_SWBA_EN 0x00000004 } HAL_BEACON_TIMERS; /* * Per-node statistics maintained by the driver for use in * optimizing signal quality and other operational aspects. */ typedef struct { uint32_t ns_avgbrssi; /* average beacon rssi */ uint32_t ns_avgrssi; /* average data rssi */ uint32_t ns_avgtxrssi; /* average tx rssi */ } HAL_NODE_STATS; #define HAL_RSSI_EP_MULTIPLIER (1<<7) /* pow2 to optimize out * and / */ /* * This is the ANI state and MIB stats. * * It's used by the HAL modules to keep state /and/ by the debug ioctl * to fetch ANI information. */ typedef struct { uint32_t ast_ani_niup; /* ANI increased noise immunity */ uint32_t ast_ani_nidown; /* ANI decreased noise immunity */ uint32_t ast_ani_spurup; /* ANI increased spur immunity */ uint32_t ast_ani_spurdown;/* ANI descreased spur immunity */ uint32_t ast_ani_ofdmon; /* ANI OFDM weak signal detect on */ uint32_t ast_ani_ofdmoff;/* ANI OFDM weak signal detect off */ uint32_t ast_ani_cckhigh;/* ANI CCK weak signal threshold high */ uint32_t ast_ani_ccklow; /* ANI CCK weak signal threshold low */ uint32_t ast_ani_stepup; /* ANI increased first step level */ uint32_t ast_ani_stepdown;/* ANI decreased first step level */ uint32_t ast_ani_ofdmerrs;/* ANI cumulative ofdm phy err count */ uint32_t ast_ani_cckerrs;/* ANI cumulative cck phy err count */ uint32_t ast_ani_reset; /* ANI parameters zero'd for non-STA */ uint32_t ast_ani_lzero; /* ANI listen time forced to zero */ uint32_t ast_ani_lneg; /* ANI listen time calculated < 0 */ HAL_MIB_STATS ast_mibstats; /* MIB counter stats */ HAL_NODE_STATS ast_nodestats; /* Latest rssi stats from driver */ } HAL_ANI_STATS; typedef struct { uint8_t noiseImmunityLevel; uint8_t spurImmunityLevel; uint8_t firstepLevel; uint8_t ofdmWeakSigDetectOff; uint8_t cckWeakSigThreshold; uint32_t listenTime; /* NB: intentionally ordered so data exported to user space is first */ uint32_t txFrameCount; /* Last txFrameCount */ uint32_t rxFrameCount; /* Last rx Frame count */ uint32_t cycleCount; /* Last cycleCount (to detect wrap-around) */ uint32_t ofdmPhyErrCount;/* OFDM err count since last reset */ uint32_t cckPhyErrCount; /* CCK err count since last reset */ } HAL_ANI_STATE; struct ath_desc; struct ath_tx_status; struct ath_rx_status; struct ieee80211_channel; /* * This is a channel survey sample entry. * * The AR5212 ANI routines fill these samples. The ANI code then uses it * when calculating listen time; it is also exported via a diagnostic * API. */ typedef struct { uint32_t seq_num; uint32_t tx_busy; uint32_t rx_busy; uint32_t chan_busy; uint32_t ext_chan_busy; uint32_t cycle_count; /* XXX TODO */ uint32_t ofdm_phyerr_count; uint32_t cck_phyerr_count; } HAL_SURVEY_SAMPLE; /* * This provides 3.2 seconds of sample space given an * ANI time of 1/10th of a second. This may not be enough! */ #define CHANNEL_SURVEY_SAMPLE_COUNT 32 typedef struct { HAL_SURVEY_SAMPLE samples[CHANNEL_SURVEY_SAMPLE_COUNT]; uint32_t cur_sample; /* current sample in sequence */ uint32_t cur_seq; /* current sequence number */ } HAL_CHANNEL_SURVEY; /* * ANI commands. * * These are used both internally and externally via the diagnostic * API. * * Note that this is NOT the ANI commands being used via the INTMIT * capability - that has a different mapping for some reason. */ typedef enum { HAL_ANI_PRESENT = 0, /* is ANI support present */ HAL_ANI_NOISE_IMMUNITY_LEVEL = 1, /* set level */ HAL_ANI_OFDM_WEAK_SIGNAL_DETECTION = 2, /* enable/disable */ HAL_ANI_CCK_WEAK_SIGNAL_THR = 3, /* enable/disable */ HAL_ANI_FIRSTEP_LEVEL = 4, /* set level */ HAL_ANI_SPUR_IMMUNITY_LEVEL = 5, /* set level */ HAL_ANI_MODE = 6, /* 0 => manual, 1 => auto (XXX do not change) */ HAL_ANI_PHYERR_RESET = 7, /* reset phy error stats */ HAL_ANI_MRC_CCK = 8, } HAL_ANI_CMD; #define HAL_ANI_ALL 0xffffffff /* * This is the layout of the ANI INTMIT capability. * * Notice that the command values differ to HAL_ANI_CMD. */ typedef enum { HAL_CAP_INTMIT_PRESENT = 0, HAL_CAP_INTMIT_ENABLE = 1, HAL_CAP_INTMIT_NOISE_IMMUNITY_LEVEL = 2, HAL_CAP_INTMIT_OFDM_WEAK_SIGNAL_LEVEL = 3, HAL_CAP_INTMIT_CCK_WEAK_SIGNAL_THR = 4, HAL_CAP_INTMIT_FIRSTEP_LEVEL = 5, HAL_CAP_INTMIT_SPUR_IMMUNITY_LEVEL = 6 } HAL_CAP_INTMIT_CMD; typedef struct { int32_t pe_firpwr; /* FIR pwr out threshold */ int32_t pe_rrssi; /* Radar rssi thresh */ int32_t pe_height; /* Pulse height thresh */ int32_t pe_prssi; /* Pulse rssi thresh */ int32_t pe_inband; /* Inband thresh */ /* The following params are only for AR5413 and later */ u_int32_t pe_relpwr; /* Relative power threshold in 0.5dB steps */ u_int32_t pe_relstep; /* Pulse Relative step threshold in 0.5dB steps */ u_int32_t pe_maxlen; /* Max length of radar sign in 0.8us units */ int32_t pe_usefir128; /* Use the average in-band power measured over 128 cycles */ int32_t pe_blockradar; /* * Enable to block radar check if pkt detect is done via OFDM * weak signal detect or pkt is detected immediately after tx * to rx transition */ int32_t pe_enmaxrssi; /* * Enable to use the max rssi instead of the last rssi during * fine gain changes for radar detection */ int32_t pe_extchannel; /* Enable DFS on ext channel */ int32_t pe_enabled; /* Whether radar detection is enabled */ int32_t pe_enrelpwr; int32_t pe_en_relstep_check; } HAL_PHYERR_PARAM; #define HAL_PHYERR_PARAM_NOVAL 65535 typedef struct { u_int16_t ss_fft_period; /* Skip interval for FFT reports */ u_int16_t ss_period; /* Spectral scan period */ u_int16_t ss_count; /* # of reports to return from ss_active */ u_int16_t ss_short_report;/* Set to report ony 1 set of FFT results */ u_int8_t radar_bin_thresh_sel; /* strong signal radar FFT threshold configuration */ u_int16_t ss_spectral_pri; /* are we doing a noise power cal ? */ int8_t ss_nf_cal[AH_MAX_CHAINS*2]; /* nf calibrated values for ctl+ext from eeprom */ int8_t ss_nf_pwr[AH_MAX_CHAINS*2]; /* nf pwr values for ctl+ext from eeprom */ int32_t ss_nf_temp_data; /* temperature data taken during nf scan */ int ss_enabled; int ss_active; } HAL_SPECTRAL_PARAM; #define HAL_SPECTRAL_PARAM_NOVAL 0xFFFF #define HAL_SPECTRAL_PARAM_ENABLE 0x8000 /* Enable/Disable if applicable */ /* * DFS operating mode flags. */ typedef enum { HAL_DFS_UNINIT_DOMAIN = 0, /* Uninitialized dfs domain */ HAL_DFS_FCC_DOMAIN = 1, /* FCC3 dfs domain */ HAL_DFS_ETSI_DOMAIN = 2, /* ETSI dfs domain */ HAL_DFS_MKK4_DOMAIN = 3, /* Japan dfs domain */ } HAL_DFS_DOMAIN; /* * MFP decryption options for initializing the MAC. */ typedef enum { HAL_MFP_QOSDATA = 0, /* Decrypt MFP frames like QoS data frames. All chips before Merlin. */ HAL_MFP_PASSTHRU, /* Don't decrypt MFP frames at all. Passthrough */ HAL_MFP_HW_CRYPTO /* hardware decryption enabled. Merlin can do it. */ } HAL_MFP_OPT_T; /* LNA config supported */ typedef enum { HAL_ANT_DIV_COMB_LNA1_MINUS_LNA2 = 0, HAL_ANT_DIV_COMB_LNA2 = 1, HAL_ANT_DIV_COMB_LNA1 = 2, HAL_ANT_DIV_COMB_LNA1_PLUS_LNA2 = 3, } HAL_ANT_DIV_COMB_LNA_CONF; typedef struct { u_int8_t main_lna_conf; u_int8_t alt_lna_conf; u_int8_t fast_div_bias; u_int8_t main_gaintb; u_int8_t alt_gaintb; u_int8_t antdiv_configgroup; int8_t lna1_lna2_delta; } HAL_ANT_COMB_CONFIG; #define DEFAULT_ANTDIV_CONFIG_GROUP 0x00 #define HAL_ANTDIV_CONFIG_GROUP_1 0x01 #define HAL_ANTDIV_CONFIG_GROUP_2 0x02 #define HAL_ANTDIV_CONFIG_GROUP_3 0x03 /* * Flag for setting QUIET period */ typedef enum { HAL_QUIET_DISABLE = 0x0, HAL_QUIET_ENABLE = 0x1, HAL_QUIET_ADD_CURRENT_TSF = 0x2, /* add current TSF to next_start offset */ HAL_QUIET_ADD_SWBA_RESP_TIME = 0x4, /* add beacon response time to next_start offset */ } HAL_QUIET_FLAG; #define HAL_DFS_EVENT_PRICH 0x0000001 #define HAL_DFS_EVENT_EXTCH 0x0000002 #define HAL_DFS_EVENT_EXTEARLY 0x0000004 #define HAL_DFS_EVENT_ISDC 0x0000008 struct hal_dfs_event { uint64_t re_full_ts; /* 64-bit full timestamp from interrupt time */ uint32_t re_ts; /* Original 15 bit recv timestamp */ uint8_t re_rssi; /* rssi of radar event */ uint8_t re_dur; /* duration of radar pulse */ uint32_t re_flags; /* Flags (see above) */ }; typedef struct hal_dfs_event HAL_DFS_EVENT; /* * Generic Timer domain */ typedef enum { HAL_GEN_TIMER_TSF = 0, HAL_GEN_TIMER_TSF2, HAL_GEN_TIMER_TSF_ANY } HAL_GEN_TIMER_DOMAIN; /* * BT Co-existence definitions */ #include "ath_hal/ah_btcoex.h" struct hal_bb_panic_info { u_int32_t status; u_int32_t tsf; u_int32_t phy_panic_wd_ctl1; u_int32_t phy_panic_wd_ctl2; u_int32_t phy_gen_ctrl; u_int32_t rxc_pcnt; u_int32_t rxf_pcnt; u_int32_t txf_pcnt; u_int32_t cycles; u_int32_t wd; u_int32_t det; u_int32_t rdar; u_int32_t r_odfm; u_int32_t r_cck; u_int32_t t_odfm; u_int32_t t_cck; u_int32_t agc; u_int32_t src; }; /* Serialize Register Access Mode */ typedef enum { SER_REG_MODE_OFF = 0, SER_REG_MODE_ON = 1, SER_REG_MODE_AUTO = 2, } SER_REG_MODE; typedef struct { int ah_debug; /* only used if AH_DEBUG is defined */ int ah_ar5416_biasadj; /* enable AR2133 radio specific bias fiddling */ /* NB: these are deprecated; they exist for now for compatibility */ int ah_dma_beacon_response_time;/* in TU's */ int ah_sw_beacon_response_time; /* in TU's */ int ah_additional_swba_backoff; /* in TU's */ int ah_force_full_reset; /* force full chip reset rather then warm reset */ int ah_serialise_reg_war; /* force serialisation of register IO */ /* XXX these don't belong here, they're just for the ar9300 HAL port effort */ int ath_hal_desc_tpc; /* Per-packet TPC */ int ath_hal_sta_update_tx_pwr_enable; /* GreenTX */ int ath_hal_sta_update_tx_pwr_enable_S1; /* GreenTX */ int ath_hal_sta_update_tx_pwr_enable_S2; /* GreenTX */ int ath_hal_sta_update_tx_pwr_enable_S3; /* GreenTX */ /* I'm not sure what the default values for these should be */ int ath_hal_pll_pwr_save; int ath_hal_pcie_power_save_enable; int ath_hal_intr_mitigation_rx; int ath_hal_intr_mitigation_tx; int ath_hal_pcie_clock_req; #define AR_PCIE_PLL_PWRSAVE_CONTROL (1<<0) #define AR_PCIE_PLL_PWRSAVE_ON_D3 (1<<1) #define AR_PCIE_PLL_PWRSAVE_ON_D0 (1<<2) int ath_hal_pcie_waen; int ath_hal_pcie_ser_des_write; /* these are important for correct AR9300 behaviour */ int ath_hal_ht_enable; /* needs to be enabled for AR9300 HT */ int ath_hal_diversity_control; int ath_hal_antenna_switch_swap; int ath_hal_ext_lna_ctl_gpio; int ath_hal_spur_mode; int ath_hal_6mb_ack; /* should set this to 1 for 11a/11na? */ int ath_hal_enable_msi; /* enable MSI interrupts (needed?) */ int ath_hal_beacon_filter_interval; /* ok to be 0 for now? */ /* For now, set this to 0 - net80211 needs to know about hardware MFP support */ int ath_hal_mfp_support; int ath_hal_enable_ani; /* should set this.. */ int ath_hal_cwm_ignore_ext_cca; int ath_hal_show_bb_panic; int ath_hal_ant_ctrl_comm2g_switch_enable; int ath_hal_ext_atten_margin_cfg; int ath_hal_min_gainidx; int ath_hal_war70c; uint32_t ath_hal_mci_config; } HAL_OPS_CONFIG; /* * Hardware Access Layer (HAL) API. * * Clients of the HAL call ath_hal_attach to obtain a reference to an * ath_hal structure for use with the device. Hardware-related operations * that follow must call back into the HAL through interface, supplying * the reference as the first parameter. Note that before using the * reference returned by ath_hal_attach the caller should verify the * ABI version number. */ struct ath_hal { uint32_t ah_magic; /* consistency check magic number */ uint16_t ah_devid; /* PCI device ID */ uint16_t ah_subvendorid; /* PCI subvendor ID */ HAL_SOFTC ah_sc; /* back pointer to driver/os state */ HAL_BUS_TAG ah_st; /* params for register r+w */ HAL_BUS_HANDLE ah_sh; HAL_CTRY_CODE ah_countryCode; uint32_t ah_macVersion; /* MAC version id */ uint16_t ah_macRev; /* MAC revision */ uint16_t ah_phyRev; /* PHY revision */ /* NB: when only one radio is present the rev is in 5Ghz */ uint16_t ah_analog5GhzRev;/* 5GHz radio revision */ uint16_t ah_analog2GhzRev;/* 2GHz radio revision */ uint16_t *ah_eepromdata; /* eeprom buffer, if needed */ uint32_t ah_intrstate[8]; /* last int state */ uint32_t ah_syncstate; /* last sync intr state */ /* Current powerstate from HAL calls */ HAL_POWER_MODE ah_powerMode; HAL_OPS_CONFIG ah_config; const HAL_RATE_TABLE *__ahdecl(*ah_getRateTable)(struct ath_hal *, u_int mode); void __ahdecl(*ah_detach)(struct ath_hal*); /* Reset functions */ HAL_BOOL __ahdecl(*ah_reset)(struct ath_hal *, HAL_OPMODE, struct ieee80211_channel *, HAL_BOOL bChannelChange, HAL_RESET_TYPE resetType, HAL_STATUS *status); HAL_BOOL __ahdecl(*ah_phyDisable)(struct ath_hal *); HAL_BOOL __ahdecl(*ah_disable)(struct ath_hal *); void __ahdecl(*ah_configPCIE)(struct ath_hal *, HAL_BOOL restore, HAL_BOOL power_off); void __ahdecl(*ah_disablePCIE)(struct ath_hal *); void __ahdecl(*ah_setPCUConfig)(struct ath_hal *); HAL_BOOL __ahdecl(*ah_perCalibration)(struct ath_hal*, struct ieee80211_channel *, HAL_BOOL *); HAL_BOOL __ahdecl(*ah_perCalibrationN)(struct ath_hal *, struct ieee80211_channel *, u_int chainMask, HAL_BOOL longCal, HAL_BOOL *isCalDone); HAL_BOOL __ahdecl(*ah_resetCalValid)(struct ath_hal *, const struct ieee80211_channel *); HAL_BOOL __ahdecl(*ah_setTxPower)(struct ath_hal *, const struct ieee80211_channel *, uint16_t *); HAL_BOOL __ahdecl(*ah_setTxPowerLimit)(struct ath_hal *, uint32_t); HAL_BOOL __ahdecl(*ah_setBoardValues)(struct ath_hal *, const struct ieee80211_channel *); /* Transmit functions */ HAL_BOOL __ahdecl(*ah_updateTxTrigLevel)(struct ath_hal*, HAL_BOOL incTrigLevel); int __ahdecl(*ah_setupTxQueue)(struct ath_hal *, HAL_TX_QUEUE, const HAL_TXQ_INFO *qInfo); HAL_BOOL __ahdecl(*ah_setTxQueueProps)(struct ath_hal *, int q, const HAL_TXQ_INFO *qInfo); HAL_BOOL __ahdecl(*ah_getTxQueueProps)(struct ath_hal *, int q, HAL_TXQ_INFO *qInfo); HAL_BOOL __ahdecl(*ah_releaseTxQueue)(struct ath_hal *ah, u_int q); HAL_BOOL __ahdecl(*ah_resetTxQueue)(struct ath_hal *ah, u_int q); uint32_t __ahdecl(*ah_getTxDP)(struct ath_hal*, u_int); HAL_BOOL __ahdecl(*ah_setTxDP)(struct ath_hal*, u_int, uint32_t txdp); uint32_t __ahdecl(*ah_numTxPending)(struct ath_hal *, u_int q); HAL_BOOL __ahdecl(*ah_startTxDma)(struct ath_hal*, u_int); HAL_BOOL __ahdecl(*ah_stopTxDma)(struct ath_hal*, u_int); HAL_BOOL __ahdecl(*ah_setupTxDesc)(struct ath_hal *, struct ath_desc *, u_int pktLen, u_int hdrLen, HAL_PKT_TYPE type, u_int txPower, u_int txRate0, u_int txTries0, u_int keyIx, u_int antMode, u_int flags, u_int rtsctsRate, u_int rtsctsDuration, u_int compicvLen, u_int compivLen, u_int comp); HAL_BOOL __ahdecl(*ah_setupXTxDesc)(struct ath_hal *, struct ath_desc*, u_int txRate1, u_int txTries1, u_int txRate2, u_int txTries2, u_int txRate3, u_int txTries3); HAL_BOOL __ahdecl(*ah_fillTxDesc)(struct ath_hal *, struct ath_desc *, HAL_DMA_ADDR *bufAddrList, uint32_t *segLenList, u_int descId, u_int qcuId, HAL_BOOL firstSeg, HAL_BOOL lastSeg, const struct ath_desc *); HAL_STATUS __ahdecl(*ah_procTxDesc)(struct ath_hal *, struct ath_desc *, struct ath_tx_status *); void __ahdecl(*ah_getTxIntrQueue)(struct ath_hal *, uint32_t *); void __ahdecl(*ah_reqTxIntrDesc)(struct ath_hal *, struct ath_desc*); HAL_BOOL __ahdecl(*ah_getTxCompletionRates)(struct ath_hal *, const struct ath_desc *ds, int *rates, int *tries); void __ahdecl(*ah_setTxDescLink)(struct ath_hal *ah, void *ds, uint32_t link); void __ahdecl(*ah_getTxDescLink)(struct ath_hal *ah, void *ds, uint32_t *link); void __ahdecl(*ah_getTxDescLinkPtr)(struct ath_hal *ah, void *ds, uint32_t **linkptr); void __ahdecl(*ah_setupTxStatusRing)(struct ath_hal *, void *ts_start, uint32_t ts_paddr_start, uint16_t size); void __ahdecl(*ah_getTxRawTxDesc)(struct ath_hal *, u_int32_t *); /* Receive Functions */ uint32_t __ahdecl(*ah_getRxDP)(struct ath_hal*, HAL_RX_QUEUE); void __ahdecl(*ah_setRxDP)(struct ath_hal*, uint32_t rxdp, HAL_RX_QUEUE); void __ahdecl(*ah_enableReceive)(struct ath_hal*); HAL_BOOL __ahdecl(*ah_stopDmaReceive)(struct ath_hal*); void __ahdecl(*ah_startPcuReceive)(struct ath_hal*); void __ahdecl(*ah_stopPcuReceive)(struct ath_hal*); void __ahdecl(*ah_setMulticastFilter)(struct ath_hal*, uint32_t filter0, uint32_t filter1); HAL_BOOL __ahdecl(*ah_setMulticastFilterIndex)(struct ath_hal*, uint32_t index); HAL_BOOL __ahdecl(*ah_clrMulticastFilterIndex)(struct ath_hal*, uint32_t index); uint32_t __ahdecl(*ah_getRxFilter)(struct ath_hal*); void __ahdecl(*ah_setRxFilter)(struct ath_hal*, uint32_t); HAL_BOOL __ahdecl(*ah_setupRxDesc)(struct ath_hal *, struct ath_desc *, uint32_t size, u_int flags); HAL_STATUS __ahdecl(*ah_procRxDesc)(struct ath_hal *, struct ath_desc *, uint32_t phyAddr, struct ath_desc *next, uint64_t tsf, struct ath_rx_status *); void __ahdecl(*ah_rxMonitor)(struct ath_hal *, const HAL_NODE_STATS *, const struct ieee80211_channel *); void __ahdecl(*ah_aniPoll)(struct ath_hal *, const struct ieee80211_channel *); void __ahdecl(*ah_procMibEvent)(struct ath_hal *, const HAL_NODE_STATS *); /* Misc Functions */ HAL_STATUS __ahdecl(*ah_getCapability)(struct ath_hal *, HAL_CAPABILITY_TYPE, uint32_t capability, uint32_t *result); HAL_BOOL __ahdecl(*ah_setCapability)(struct ath_hal *, HAL_CAPABILITY_TYPE, uint32_t capability, uint32_t setting, HAL_STATUS *); HAL_BOOL __ahdecl(*ah_getDiagState)(struct ath_hal *, int request, const void *args, uint32_t argsize, void **result, uint32_t *resultsize); void __ahdecl(*ah_getMacAddress)(struct ath_hal *, uint8_t *); HAL_BOOL __ahdecl(*ah_setMacAddress)(struct ath_hal *, const uint8_t*); void __ahdecl(*ah_getBssIdMask)(struct ath_hal *, uint8_t *); HAL_BOOL __ahdecl(*ah_setBssIdMask)(struct ath_hal *, const uint8_t*); HAL_BOOL __ahdecl(*ah_setRegulatoryDomain)(struct ath_hal*, uint16_t, HAL_STATUS *); void __ahdecl(*ah_setLedState)(struct ath_hal*, HAL_LED_STATE); void __ahdecl(*ah_writeAssocid)(struct ath_hal*, const uint8_t *bssid, uint16_t assocId); HAL_BOOL __ahdecl(*ah_gpioCfgOutput)(struct ath_hal *, uint32_t gpio, HAL_GPIO_MUX_TYPE); HAL_BOOL __ahdecl(*ah_gpioCfgInput)(struct ath_hal *, uint32_t gpio); uint32_t __ahdecl(*ah_gpioGet)(struct ath_hal *, uint32_t gpio); HAL_BOOL __ahdecl(*ah_gpioSet)(struct ath_hal *, uint32_t gpio, uint32_t val); void __ahdecl(*ah_gpioSetIntr)(struct ath_hal*, u_int, uint32_t); uint32_t __ahdecl(*ah_getTsf32)(struct ath_hal*); uint64_t __ahdecl(*ah_getTsf64)(struct ath_hal*); void __ahdecl(*ah_setTsf64)(struct ath_hal *, uint64_t); void __ahdecl(*ah_resetTsf)(struct ath_hal*); HAL_BOOL __ahdecl(*ah_detectCardPresent)(struct ath_hal*); void __ahdecl(*ah_updateMibCounters)(struct ath_hal*, HAL_MIB_STATS*); HAL_RFGAIN __ahdecl(*ah_getRfGain)(struct ath_hal*); u_int __ahdecl(*ah_getDefAntenna)(struct ath_hal*); void __ahdecl(*ah_setDefAntenna)(struct ath_hal*, u_int); HAL_ANT_SETTING __ahdecl(*ah_getAntennaSwitch)(struct ath_hal*); HAL_BOOL __ahdecl(*ah_setAntennaSwitch)(struct ath_hal*, HAL_ANT_SETTING); HAL_BOOL __ahdecl(*ah_setSifsTime)(struct ath_hal*, u_int); u_int __ahdecl(*ah_getSifsTime)(struct ath_hal*); HAL_BOOL __ahdecl(*ah_setSlotTime)(struct ath_hal*, u_int); u_int __ahdecl(*ah_getSlotTime)(struct ath_hal*); HAL_BOOL __ahdecl(*ah_setAckTimeout)(struct ath_hal*, u_int); u_int __ahdecl(*ah_getAckTimeout)(struct ath_hal*); HAL_BOOL __ahdecl(*ah_setAckCTSRate)(struct ath_hal*, u_int); u_int __ahdecl(*ah_getAckCTSRate)(struct ath_hal*); HAL_BOOL __ahdecl(*ah_setCTSTimeout)(struct ath_hal*, u_int); u_int __ahdecl(*ah_getCTSTimeout)(struct ath_hal*); HAL_BOOL __ahdecl(*ah_setDecompMask)(struct ath_hal*, uint16_t, int); void __ahdecl(*ah_setCoverageClass)(struct ath_hal*, uint8_t, int); HAL_STATUS __ahdecl(*ah_setQuiet)(struct ath_hal *ah, uint32_t period, uint32_t duration, uint32_t nextStart, HAL_QUIET_FLAG flag); void __ahdecl(*ah_setChainMasks)(struct ath_hal *, uint32_t, uint32_t); /* DFS functions */ void __ahdecl(*ah_enableDfs)(struct ath_hal *ah, HAL_PHYERR_PARAM *pe); void __ahdecl(*ah_getDfsThresh)(struct ath_hal *ah, HAL_PHYERR_PARAM *pe); HAL_BOOL __ahdecl(*ah_getDfsDefaultThresh)(struct ath_hal *ah, HAL_PHYERR_PARAM *pe); HAL_BOOL __ahdecl(*ah_procRadarEvent)(struct ath_hal *ah, struct ath_rx_status *rxs, uint64_t fulltsf, const char *buf, HAL_DFS_EVENT *event); HAL_BOOL __ahdecl(*ah_isFastClockEnabled)(struct ath_hal *ah); /* Spectral Scan functions */ void __ahdecl(*ah_spectralConfigure)(struct ath_hal *ah, HAL_SPECTRAL_PARAM *sp); void __ahdecl(*ah_spectralGetConfig)(struct ath_hal *ah, HAL_SPECTRAL_PARAM *sp); void __ahdecl(*ah_spectralStart)(struct ath_hal *); void __ahdecl(*ah_spectralStop)(struct ath_hal *); HAL_BOOL __ahdecl(*ah_spectralIsEnabled)(struct ath_hal *); HAL_BOOL __ahdecl(*ah_spectralIsActive)(struct ath_hal *); /* XXX getNfPri() and getNfExt() */ /* Key Cache Functions */ uint32_t __ahdecl(*ah_getKeyCacheSize)(struct ath_hal*); HAL_BOOL __ahdecl(*ah_resetKeyCacheEntry)(struct ath_hal*, uint16_t); HAL_BOOL __ahdecl(*ah_isKeyCacheEntryValid)(struct ath_hal *, uint16_t); HAL_BOOL __ahdecl(*ah_setKeyCacheEntry)(struct ath_hal*, uint16_t, const HAL_KEYVAL *, const uint8_t *, int); HAL_BOOL __ahdecl(*ah_setKeyCacheEntryMac)(struct ath_hal*, uint16_t, const uint8_t *); /* Power Management Functions */ HAL_BOOL __ahdecl(*ah_setPowerMode)(struct ath_hal*, HAL_POWER_MODE mode, int setChip); HAL_POWER_MODE __ahdecl(*ah_getPowerMode)(struct ath_hal*); int16_t __ahdecl(*ah_getChanNoise)(struct ath_hal *, const struct ieee80211_channel *); /* Beacon Management Functions */ void __ahdecl(*ah_setBeaconTimers)(struct ath_hal*, const HAL_BEACON_TIMERS *); /* NB: deprecated, use ah_setBeaconTimers instead */ void __ahdecl(*ah_beaconInit)(struct ath_hal *, uint32_t nexttbtt, uint32_t intval); void __ahdecl(*ah_setStationBeaconTimers)(struct ath_hal*, const HAL_BEACON_STATE *); void __ahdecl(*ah_resetStationBeaconTimers)(struct ath_hal*); uint64_t __ahdecl(*ah_getNextTBTT)(struct ath_hal *); /* 802.11n Functions */ HAL_BOOL __ahdecl(*ah_chainTxDesc)(struct ath_hal *, struct ath_desc *, HAL_DMA_ADDR *bufAddrList, uint32_t *segLenList, u_int, u_int, HAL_PKT_TYPE, u_int, HAL_CIPHER, uint8_t, HAL_BOOL, HAL_BOOL, HAL_BOOL); HAL_BOOL __ahdecl(*ah_setupFirstTxDesc)(struct ath_hal *, struct ath_desc *, u_int, u_int, u_int, u_int, u_int, u_int, u_int, u_int); HAL_BOOL __ahdecl(*ah_setupLastTxDesc)(struct ath_hal *, struct ath_desc *, const struct ath_desc *); void __ahdecl(*ah_set11nRateScenario)(struct ath_hal *, struct ath_desc *, u_int, u_int, HAL_11N_RATE_SERIES [], u_int, u_int); /* * The next 4 (set11ntxdesc -> set11naggrlast) are specific * to the EDMA HAL. Descriptors are chained together by * using filltxdesc (not ChainTxDesc) and then setting the * aggregate flags appropriately using first/middle/last. */ void __ahdecl(*ah_set11nTxDesc)(struct ath_hal *, void *, u_int, HAL_PKT_TYPE, u_int, u_int, u_int); void __ahdecl(*ah_set11nAggrFirst)(struct ath_hal *, struct ath_desc *, u_int, u_int); void __ahdecl(*ah_set11nAggrMiddle)(struct ath_hal *, struct ath_desc *, u_int); void __ahdecl(*ah_set11nAggrLast)(struct ath_hal *, struct ath_desc *); void __ahdecl(*ah_clr11nAggr)(struct ath_hal *, struct ath_desc *); void __ahdecl(*ah_set11nBurstDuration)(struct ath_hal *, struct ath_desc *, u_int); void __ahdecl(*ah_set11nVirtMoreFrag)(struct ath_hal *, struct ath_desc *, u_int); HAL_BOOL __ahdecl(*ah_getMibCycleCounts) (struct ath_hal *, HAL_SURVEY_SAMPLE *); uint32_t __ahdecl(*ah_get11nExtBusy)(struct ath_hal *); void __ahdecl(*ah_set11nMac2040)(struct ath_hal *, HAL_HT_MACMODE); HAL_HT_RXCLEAR __ahdecl(*ah_get11nRxClear)(struct ath_hal *ah); void __ahdecl(*ah_set11nRxClear)(struct ath_hal *, HAL_HT_RXCLEAR); /* Interrupt functions */ HAL_BOOL __ahdecl(*ah_isInterruptPending)(struct ath_hal*); HAL_BOOL __ahdecl(*ah_getPendingInterrupts)(struct ath_hal*, HAL_INT*); HAL_INT __ahdecl(*ah_getInterrupts)(struct ath_hal*); HAL_INT __ahdecl(*ah_setInterrupts)(struct ath_hal*, HAL_INT); /* Bluetooth Coexistence functions */ void __ahdecl(*ah_btCoexSetInfo)(struct ath_hal *, HAL_BT_COEX_INFO *); void __ahdecl(*ah_btCoexSetConfig)(struct ath_hal *, HAL_BT_COEX_CONFIG *); void __ahdecl(*ah_btCoexSetQcuThresh)(struct ath_hal *, int); void __ahdecl(*ah_btCoexSetWeights)(struct ath_hal *, uint32_t); void __ahdecl(*ah_btCoexSetBmissThresh)(struct ath_hal *, uint32_t); void __ahdecl(*ah_btCoexSetParameter)(struct ath_hal *, uint32_t, uint32_t); void __ahdecl(*ah_btCoexDisable)(struct ath_hal *); int __ahdecl(*ah_btCoexEnable)(struct ath_hal *); /* Bluetooth MCI methods */ void __ahdecl(*ah_btMciSetup)(struct ath_hal *, uint32_t, void *, uint16_t, uint32_t); HAL_BOOL __ahdecl(*ah_btMciSendMessage)(struct ath_hal *, uint8_t, uint32_t, uint32_t *, uint8_t, HAL_BOOL, HAL_BOOL); uint32_t __ahdecl(*ah_btMciGetInterrupt)(struct ath_hal *, uint32_t *, uint32_t *); uint32_t __ahdecl(*ah_btMciState)(struct ath_hal *, uint32_t, uint32_t *); void __ahdecl(*ah_btMciDetach)(struct ath_hal *); /* LNA diversity configuration */ void __ahdecl(*ah_divLnaConfGet)(struct ath_hal *, HAL_ANT_COMB_CONFIG *); void __ahdecl(*ah_divLnaConfSet)(struct ath_hal *, HAL_ANT_COMB_CONFIG *); }; /* * Check the PCI vendor ID and device ID against Atheros' values * and return a printable description for any Atheros hardware. * AH_NULL is returned if the ID's do not describe Atheros hardware. */ extern const char *__ahdecl ath_hal_probe(uint16_t vendorid, uint16_t devid); /* * Attach the HAL for use with the specified device. The device is * defined by the PCI device ID. The caller provides an opaque pointer * to an upper-layer data structure (HAL_SOFTC) that is stored in the * HAL state block for later use. Hardware register accesses are done * using the specified bus tag and handle. On successful return a * reference to a state block is returned that must be supplied in all * subsequent HAL calls. Storage associated with this reference is * dynamically allocated and must be freed by calling the ah_detach * method when the client is done. If the attach operation fails a * null (AH_NULL) reference will be returned and a status code will * be returned if the status parameter is non-zero. */ extern struct ath_hal * __ahdecl ath_hal_attach(uint16_t devid, HAL_SOFTC, HAL_BUS_TAG, HAL_BUS_HANDLE, uint16_t *eepromdata, HAL_OPS_CONFIG *ah_config, HAL_STATUS* status); extern const char *ath_hal_mac_name(struct ath_hal *); extern const char *ath_hal_rf_name(struct ath_hal *); /* * Regulatory interfaces. Drivers should use ath_hal_init_channels to * request a set of channels for a particular country code and/or * regulatory domain. If CTRY_DEFAULT and SKU_NONE are specified then * this list is constructed according to the contents of the EEPROM. * ath_hal_getchannels acts similarly but does not alter the operating * state; this can be used to collect information for a particular * regulatory configuration. Finally ath_hal_set_channels installs a * channel list constructed outside the driver. The HAL will adopt the * channel list and setup internal state according to the specified * regulatory configuration (e.g. conformance test limits). * * For all interfaces the channel list is returned in the supplied array. * maxchans defines the maximum size of this array. nchans contains the * actual number of channels returned. If a problem occurred then a * status code != HAL_OK is returned. */ struct ieee80211_channel; /* * Return a list of channels according to the specified regulatory. */ extern HAL_STATUS __ahdecl ath_hal_getchannels(struct ath_hal *, struct ieee80211_channel *chans, u_int maxchans, int *nchans, u_int modeSelect, HAL_CTRY_CODE cc, HAL_REG_DOMAIN regDmn, HAL_BOOL enableExtendedChannels); /* * Return a list of channels and install it as the current operating * regulatory list. */ extern HAL_STATUS __ahdecl ath_hal_init_channels(struct ath_hal *, struct ieee80211_channel *chans, u_int maxchans, int *nchans, u_int modeSelect, HAL_CTRY_CODE cc, HAL_REG_DOMAIN rd, HAL_BOOL enableExtendedChannels); /* * Install the list of channels as the current operating regulatory * and setup related state according to the country code and sku. */ extern HAL_STATUS __ahdecl ath_hal_set_channels(struct ath_hal *, struct ieee80211_channel *chans, int nchans, HAL_CTRY_CODE cc, HAL_REG_DOMAIN regDmn); /* * Fetch the ctl/ext noise floor values reported by a MIMO * radio. Returns 1 for valid results, 0 for invalid channel. */ extern int __ahdecl ath_hal_get_mimo_chan_noise(struct ath_hal *ah, const struct ieee80211_channel *chan, int16_t *nf_ctl, int16_t *nf_ext); /* * Calibrate noise floor data following a channel scan or similar. * This must be called prior retrieving noise floor data. */ extern void __ahdecl ath_hal_process_noisefloor(struct ath_hal *ah); /* * Return bit mask of wireless modes supported by the hardware. */ extern u_int __ahdecl ath_hal_getwirelessmodes(struct ath_hal*); /* * Get the HAL wireless mode for the given channel. */ extern int ath_hal_get_curmode(struct ath_hal *ah, const struct ieee80211_channel *chan); /* * Calculate the packet TX time for a legacy or 11n frame */ extern uint32_t __ahdecl ath_hal_pkt_txtime(struct ath_hal *ah, const HAL_RATE_TABLE *rates, uint32_t frameLen, uint16_t rateix, HAL_BOOL isht40, HAL_BOOL shortPreamble, HAL_BOOL includeSifs); /* * Calculate the duration of an 11n frame. */ extern uint32_t __ahdecl ath_computedur_ht(uint32_t frameLen, uint16_t rate, int streams, HAL_BOOL isht40, HAL_BOOL isShortGI); /* * Calculate the transmit duration of a legacy frame. */ extern uint16_t __ahdecl ath_hal_computetxtime(struct ath_hal *, const HAL_RATE_TABLE *rates, uint32_t frameLen, uint16_t rateix, HAL_BOOL shortPreamble, HAL_BOOL includeSifs); /* * Adjust the TSF. */ extern void __ahdecl ath_hal_adjusttsf(struct ath_hal *ah, int32_t tsfdelta); /* * Enable or disable CCA. */ void __ahdecl ath_hal_setcca(struct ath_hal *ah, int ena); /* * Get CCA setting. */ int __ahdecl ath_hal_getcca(struct ath_hal *ah); /* * Read EEPROM data from ah_eepromdata */ HAL_BOOL __ahdecl ath_hal_EepromDataRead(struct ath_hal *ah, u_int off, uint16_t *data); /* * For now, simply pass through MFP frames. */ static inline u_int32_t ath_hal_get_mfp_qos(struct ath_hal *ah) { //return AH_PRIVATE(ah)->ah_mfp_qos; return HAL_MFP_QOSDATA; } +/* + * Convert between microseconds and core system clocks. + */ +extern u_int ath_hal_mac_clks(struct ath_hal *ah, u_int usecs); +extern u_int ath_hal_mac_usec(struct ath_hal *ah, u_int clks); +extern uint64_t ath_hal_mac_psec(struct ath_hal *ah, u_int clks); + #endif /* _ATH_AH_H_ */ Index: head/sys/dev/ath/ath_hal/ah_internal.h =================================================================== --- head/sys/dev/ath/ath_hal/ah_internal.h (revision 305636) +++ head/sys/dev/ath/ath_hal/ah_internal.h (revision 305637) @@ -1,1047 +1,1041 @@ /* * Copyright (c) 2002-2009 Sam Leffler, Errno Consulting * Copyright (c) 2002-2008 Atheros Communications, Inc. * * Permission to use, copy, modify, and/or distribute this software for any * purpose with or without fee is hereby granted, provided that the above * copyright notice and this permission notice appear in all copies. * * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. * * $FreeBSD$ */ #ifndef _ATH_AH_INTERAL_H_ #define _ATH_AH_INTERAL_H_ /* * Atheros Device Hardware Access Layer (HAL). * * Internal definitions. */ #define AH_NULL 0 #define AH_MIN(a,b) ((a)<(b)?(a):(b)) #define AH_MAX(a,b) ((a)>(b)?(a):(b)) #include #include "opt_ah.h" /* needed for AH_SUPPORT_AR5416 */ #ifndef AH_SUPPORT_AR5416 #define AH_SUPPORT_AR5416 1 #endif #ifndef NBBY #define NBBY 8 /* number of bits/byte */ #endif #ifndef roundup #define roundup(x, y) ((((x)+((y)-1))/(y))*(y)) /* to any y */ #endif #ifndef howmany #define howmany(x, y) (((x)+((y)-1))/(y)) #endif #ifndef offsetof #define offsetof(type, field) ((size_t)(&((type *)0)->field)) #endif typedef struct { uint32_t start; /* first register */ uint32_t end; /* ending register or zero */ } HAL_REGRANGE; typedef struct { uint32_t addr; /* regiser address/offset */ uint32_t value; /* value to write */ } HAL_REGWRITE; /* * Transmit power scale factor. * * NB: This is not public because we want to discourage the use of * scaling; folks should use the tx power limit interface. */ typedef enum { HAL_TP_SCALE_MAX = 0, /* no scaling (default) */ HAL_TP_SCALE_50 = 1, /* 50% of max (-3 dBm) */ HAL_TP_SCALE_25 = 2, /* 25% of max (-6 dBm) */ HAL_TP_SCALE_12 = 3, /* 12% of max (-9 dBm) */ HAL_TP_SCALE_MIN = 4, /* min, but still on */ } HAL_TP_SCALE; typedef enum { HAL_CAP_RADAR = 0, /* Radar capability */ HAL_CAP_AR = 1, /* AR capability */ } HAL_PHYDIAG_CAPS; /* * Enable/disable strong signal fast diversity */ #define HAL_CAP_STRONG_DIV 2 /* * Each chip or class of chips registers to offer support. */ struct ath_hal_chip { const char *name; const char *(*probe)(uint16_t vendorid, uint16_t devid); struct ath_hal *(*attach)(uint16_t devid, HAL_SOFTC, HAL_BUS_TAG, HAL_BUS_HANDLE, uint16_t *eepromdata, HAL_OPS_CONFIG *ah, HAL_STATUS *error); }; #ifndef AH_CHIP #define AH_CHIP(_name, _probe, _attach) \ static struct ath_hal_chip _name##_chip = { \ .name = #_name, \ .probe = _probe, \ .attach = _attach \ }; \ OS_DATA_SET(ah_chips, _name##_chip) #endif /* * Each RF backend registers to offer support; this is mostly * used by multi-chip 5212 solutions. Single-chip solutions * have a fixed idea about which RF to use. */ struct ath_hal_rf { const char *name; HAL_BOOL (*probe)(struct ath_hal *ah); HAL_BOOL (*attach)(struct ath_hal *ah, HAL_STATUS *ecode); }; #ifndef AH_RF #define AH_RF(_name, _probe, _attach) \ static struct ath_hal_rf _name##_rf = { \ .name = __STRING(_name), \ .probe = _probe, \ .attach = _attach \ }; \ OS_DATA_SET(ah_rfs, _name##_rf) #endif struct ath_hal_rf *ath_hal_rfprobe(struct ath_hal *ah, HAL_STATUS *ecode); /* * Maximum number of internal channels. Entries are per unique * frequency so this might be need to be increased to handle all * usage cases; typically no more than 32 are really needed but * dynamically allocating the data structures is a bit painful * right now. */ #ifndef AH_MAXCHAN #define AH_MAXCHAN 96 #endif #define HAL_NF_CAL_HIST_LEN_FULL 5 #define HAL_NF_CAL_HIST_LEN_SMALL 1 #define HAL_NUM_NF_READINGS 6 /* 3 chains * (ctl + ext) */ #define HAL_NF_LOAD_DELAY 1000 /* * PER_CHAN doesn't work for now, as it looks like the device layer * has to pre-populate the per-channel list with nominal values. */ //#define ATH_NF_PER_CHAN 1 typedef struct { u_int8_t curr_index; int8_t invalidNFcount; /* TO DO: REMOVE THIS! */ int16_t priv_nf[HAL_NUM_NF_READINGS]; } HAL_NFCAL_BASE; typedef struct { HAL_NFCAL_BASE base; int16_t nf_cal_buffer[HAL_NF_CAL_HIST_LEN_FULL][HAL_NUM_NF_READINGS]; } HAL_NFCAL_HIST_FULL; typedef struct { HAL_NFCAL_BASE base; int16_t nf_cal_buffer[HAL_NF_CAL_HIST_LEN_SMALL][HAL_NUM_NF_READINGS]; } HAL_NFCAL_HIST_SMALL; #ifdef ATH_NF_PER_CHAN typedef HAL_NFCAL_HIST_FULL HAL_CHAN_NFCAL_HIST; #define AH_HOME_CHAN_NFCAL_HIST(ah, ichan) (ichan ? &ichan->nf_cal_hist: NULL) #else typedef HAL_NFCAL_HIST_SMALL HAL_CHAN_NFCAL_HIST; #define AH_HOME_CHAN_NFCAL_HIST(ah, ichan) (&AH_PRIVATE(ah)->nf_cal_hist) #endif /* ATH_NF_PER_CHAN */ /* * Internal per-channel state. These are found * using ic_devdata in the ieee80211_channel. */ typedef struct { uint16_t channel; /* h/w frequency, NB: may be mapped */ uint8_t privFlags; #define CHANNEL_IQVALID 0x01 /* IQ calibration valid */ #define CHANNEL_ANI_INIT 0x02 /* ANI state initialized */ #define CHANNEL_ANI_SETUP 0x04 /* ANI state setup */ #define CHANNEL_MIMO_NF_VALID 0x04 /* Mimo NF values are valid */ uint8_t calValid; /* bitmask of cal types */ int8_t iCoff; int8_t qCoff; int16_t rawNoiseFloor; int16_t noiseFloorAdjust; #ifdef AH_SUPPORT_AR5416 int16_t noiseFloorCtl[AH_MAX_CHAINS]; int16_t noiseFloorExt[AH_MAX_CHAINS]; #endif /* AH_SUPPORT_AR5416 */ uint16_t mainSpur; /* cached spur value for this channel */ /*XXX TODO: make these part of privFlags */ uint8_t paprd_done:1, /* 1: PAPRD DONE, 0: PAPRD Cal not done */ paprd_table_write_done:1; /* 1: DONE, 0: Cal data write not done */ int one_time_cals_done; HAL_CHAN_NFCAL_HIST nf_cal_hist; } HAL_CHANNEL_INTERNAL; /* channel requires noise floor check */ #define CHANNEL_NFCREQUIRED IEEE80211_CHAN_PRIV0 /* all full-width channels */ #define IEEE80211_CHAN_ALLFULL \ (IEEE80211_CHAN_ALL - (IEEE80211_CHAN_HALF | IEEE80211_CHAN_QUARTER)) #define IEEE80211_CHAN_ALLTURBOFULL \ (IEEE80211_CHAN_ALLTURBO - \ (IEEE80211_CHAN_HALF | IEEE80211_CHAN_QUARTER)) typedef struct { uint32_t halChanSpreadSupport : 1, halSleepAfterBeaconBroken : 1, halCompressSupport : 1, halBurstSupport : 1, halFastFramesSupport : 1, halChapTuningSupport : 1, halTurboGSupport : 1, halTurboPrimeSupport : 1, halMicAesCcmSupport : 1, halMicCkipSupport : 1, halMicTkipSupport : 1, halTkipMicTxRxKeySupport : 1, halCipherAesCcmSupport : 1, halCipherCkipSupport : 1, halCipherTkipSupport : 1, halPSPollBroken : 1, halVEOLSupport : 1, halBssIdMaskSupport : 1, halMcastKeySrchSupport : 1, halTsfAddSupport : 1, halChanHalfRate : 1, halChanQuarterRate : 1, halHTSupport : 1, halHTSGI20Support : 1, halRfSilentSupport : 1, halHwPhyCounterSupport : 1, halWowSupport : 1, halWowMatchPatternExact : 1, halAutoSleepSupport : 1, halFastCCSupport : 1, halBtCoexSupport : 1; uint32_t halRxStbcSupport : 1, halTxStbcSupport : 1, halGTTSupport : 1, halCSTSupport : 1, halRifsRxSupport : 1, halRifsTxSupport : 1, hal4AddrAggrSupport : 1, halExtChanDfsSupport : 1, halUseCombinedRadarRssi : 1, halForcePpmSupport : 1, halEnhancedPmSupport : 1, halEnhancedDfsSupport : 1, halMbssidAggrSupport : 1, halBssidMatchSupport : 1, hal4kbSplitTransSupport : 1, halHasRxSelfLinkedTail : 1, halSupportsFastClock5GHz : 1, halHasBBReadWar : 1, halSerialiseRegWar : 1, halMciSupport : 1, halRxTxAbortSupport : 1, halPaprdEnabled : 1, halHasUapsdSupport : 1, halWpsPushButtonSupport : 1, halBtCoexApsmWar : 1, halGenTimerSupport : 1, halLDPCSupport : 1, halHwBeaconProcSupport : 1, halEnhancedDmaSupport : 1; uint32_t halIsrRacSupport : 1, halApmEnable : 1, halIntrMitigation : 1, hal49GhzSupport : 1, halAntDivCombSupport : 1, halAntDivCombSupportOrg : 1, halRadioRetentionSupport : 1, halSpectralScanSupport : 1, halRxUsingLnaMixing : 1, halRxDoMyBeacon : 1, halHwUapsdTrig : 1; uint32_t halWirelessModes; uint16_t halTotalQueues; uint16_t halKeyCacheSize; uint16_t halLow5GhzChan, halHigh5GhzChan; uint16_t halLow2GhzChan, halHigh2GhzChan; int halTxTstampPrecision; int halRxTstampPrecision; int halRtsAggrLimit; uint8_t halTxChainMask; uint8_t halRxChainMask; uint8_t halNumGpioPins; uint8_t halNumAntCfg2GHz; uint8_t halNumAntCfg5GHz; uint32_t halIntrMask; uint8_t halTxStreams; uint8_t halRxStreams; HAL_MFP_OPT_T halMfpSupport; /* AR9300 HAL porting capabilities */ int hal_paprd_enabled; int hal_pcie_lcr_offset; int hal_pcie_lcr_extsync_en; int halNumTxMaps; int halTxDescLen; int halTxStatusLen; int halRxStatusLen; int halRxHpFifoDepth; int halRxLpFifoDepth; uint32_t halRegCap; /* XXX needed? */ int halNumMRRetries; int hal_ani_poll_interval; int hal_channel_switch_time_usec; } HAL_CAPABILITIES; struct regDomain; /* * Definitions for ah_flags in ath_hal_private */ #define AH_USE_EEPROM 0x1 #define AH_IS_HB63 0x2 /* * The ``private area'' follows immediately after the ``public area'' * in the data structure returned by ath_hal_attach. Private data are * used by device-independent code such as the regulatory domain support. * In general, code within the HAL should never depend on data in the * public area. Instead any public data needed internally should be * shadowed here. * * When declaring a device-specific ath_hal data structure this structure * is assumed to at the front; e.g. * * struct ath_hal_5212 { * struct ath_hal_private ah_priv; * ... * }; * * It might be better to manage the method pointers in this structure * using an indirect pointer to a read-only data structure but this would * disallow class-style method overriding. */ struct ath_hal_private { struct ath_hal h; /* public area */ /* NB: all methods go first to simplify initialization */ HAL_BOOL (*ah_getChannelEdges)(struct ath_hal*, uint16_t channelFlags, uint16_t *lowChannel, uint16_t *highChannel); u_int (*ah_getWirelessModes)(struct ath_hal*); HAL_BOOL (*ah_eepromRead)(struct ath_hal *, u_int off, uint16_t *data); HAL_BOOL (*ah_eepromWrite)(struct ath_hal *, u_int off, uint16_t data); HAL_BOOL (*ah_getChipPowerLimits)(struct ath_hal *, struct ieee80211_channel *); int16_t (*ah_getNfAdjust)(struct ath_hal *, const HAL_CHANNEL_INTERNAL*); void (*ah_getNoiseFloor)(struct ath_hal *, int16_t nfarray[]); void *ah_eeprom; /* opaque EEPROM state */ uint16_t ah_eeversion; /* EEPROM version */ void (*ah_eepromDetach)(struct ath_hal *); HAL_STATUS (*ah_eepromGet)(struct ath_hal *, int, void *); HAL_STATUS (*ah_eepromSet)(struct ath_hal *, int, int); uint16_t (*ah_getSpurChan)(struct ath_hal *, int, HAL_BOOL); HAL_BOOL (*ah_eepromDiag)(struct ath_hal *, int request, const void *args, uint32_t argsize, void **result, uint32_t *resultsize); /* * Device revision information. */ uint16_t ah_devid; /* PCI device ID */ uint16_t ah_subvendorid; /* PCI subvendor ID */ uint32_t ah_macVersion; /* MAC version id */ uint16_t ah_macRev; /* MAC revision */ uint16_t ah_phyRev; /* PHY revision */ uint16_t ah_analog5GhzRev; /* 2GHz radio revision */ uint16_t ah_analog2GhzRev; /* 5GHz radio revision */ uint32_t ah_flags; /* misc flags */ uint8_t ah_ispcie; /* PCIE, special treatment */ uint8_t ah_devType; /* card type - CB, PCI, PCIe */ HAL_OPMODE ah_opmode; /* operating mode from reset */ const struct ieee80211_channel *ah_curchan;/* operating channel */ HAL_CAPABILITIES ah_caps; /* device capabilities */ uint32_t ah_diagreg; /* user-specified AR_DIAG_SW */ int16_t ah_powerLimit; /* tx power cap */ uint16_t ah_maxPowerLevel; /* calculated max tx power */ u_int ah_tpScale; /* tx power scale factor */ u_int16_t ah_extraTxPow; /* low rates extra-txpower */ uint32_t ah_11nCompat; /* 11n compat controls */ /* * State for regulatory domain handling. */ HAL_REG_DOMAIN ah_currentRD; /* EEPROM regulatory domain */ HAL_REG_DOMAIN ah_currentRDext; /* EEPROM extended regdomain flags */ HAL_DFS_DOMAIN ah_dfsDomain; /* current DFS domain */ HAL_CHANNEL_INTERNAL ah_channels[AH_MAXCHAN]; /* private chan state */ u_int ah_nchan; /* valid items in ah_channels */ const struct regDomain *ah_rd2GHz; /* reg state for 2G band */ const struct regDomain *ah_rd5GHz; /* reg state for 5G band */ uint8_t ah_coverageClass; /* coverage class */ /* * RF Silent handling; setup according to the EEPROM. */ uint16_t ah_rfsilent; /* GPIO pin + polarity */ HAL_BOOL ah_rfkillEnabled; /* enable/disable RfKill */ /* * Diagnostic support for discriminating HIUERR reports. */ uint32_t ah_fatalState[6]; /* AR_ISR+shadow regs */ int ah_rxornIsFatal; /* how to treat HAL_INT_RXORN */ /* Only used if ATH_NF_PER_CHAN is defined */ HAL_NFCAL_HIST_FULL nf_cal_hist; /* * Channel survey history - current channel only. */ HAL_CHANNEL_SURVEY ah_chansurvey; /* channel survey */ }; #define AH_PRIVATE(_ah) ((struct ath_hal_private *)(_ah)) #define ath_hal_getChannelEdges(_ah, _cf, _lc, _hc) \ AH_PRIVATE(_ah)->ah_getChannelEdges(_ah, _cf, _lc, _hc) #define ath_hal_getWirelessModes(_ah) \ AH_PRIVATE(_ah)->ah_getWirelessModes(_ah) #define ath_hal_eepromRead(_ah, _off, _data) \ AH_PRIVATE(_ah)->ah_eepromRead(_ah, _off, _data) #define ath_hal_eepromWrite(_ah, _off, _data) \ AH_PRIVATE(_ah)->ah_eepromWrite(_ah, _off, _data) #define ath_hal_gpioCfgOutput(_ah, _gpio, _type) \ (_ah)->ah_gpioCfgOutput(_ah, _gpio, _type) #define ath_hal_gpioCfgInput(_ah, _gpio) \ (_ah)->ah_gpioCfgInput(_ah, _gpio) #define ath_hal_gpioGet(_ah, _gpio) \ (_ah)->ah_gpioGet(_ah, _gpio) #define ath_hal_gpioSet(_ah, _gpio, _val) \ (_ah)->ah_gpioSet(_ah, _gpio, _val) #define ath_hal_gpioSetIntr(_ah, _gpio, _ilevel) \ (_ah)->ah_gpioSetIntr(_ah, _gpio, _ilevel) #define ath_hal_getpowerlimits(_ah, _chan) \ AH_PRIVATE(_ah)->ah_getChipPowerLimits(_ah, _chan) #define ath_hal_getNfAdjust(_ah, _c) \ AH_PRIVATE(_ah)->ah_getNfAdjust(_ah, _c) #define ath_hal_getNoiseFloor(_ah, _nfArray) \ AH_PRIVATE(_ah)->ah_getNoiseFloor(_ah, _nfArray) #define ath_hal_configPCIE(_ah, _reset, _poweroff) \ (_ah)->ah_configPCIE(_ah, _reset, _poweroff) #define ath_hal_disablePCIE(_ah) \ (_ah)->ah_disablePCIE(_ah) #define ath_hal_setInterrupts(_ah, _mask) \ (_ah)->ah_setInterrupts(_ah, _mask) #define ath_hal_isrfkillenabled(_ah) \ (ath_hal_getcapability(_ah, HAL_CAP_RFSILENT, 1, AH_NULL) == HAL_OK) #define ath_hal_enable_rfkill(_ah, _v) \ ath_hal_setcapability(_ah, HAL_CAP_RFSILENT, 1, _v, AH_NULL) #define ath_hal_hasrfkill_int(_ah) \ (ath_hal_getcapability(_ah, HAL_CAP_RFSILENT, 3, AH_NULL) == HAL_OK) #define ath_hal_eepromDetach(_ah) do { \ if (AH_PRIVATE(_ah)->ah_eepromDetach != AH_NULL) \ AH_PRIVATE(_ah)->ah_eepromDetach(_ah); \ } while (0) #define ath_hal_eepromGet(_ah, _param, _val) \ AH_PRIVATE(_ah)->ah_eepromGet(_ah, _param, _val) #define ath_hal_eepromSet(_ah, _param, _val) \ AH_PRIVATE(_ah)->ah_eepromSet(_ah, _param, _val) #define ath_hal_eepromGetFlag(_ah, _param) \ (AH_PRIVATE(_ah)->ah_eepromGet(_ah, _param, AH_NULL) == HAL_OK) #define ath_hal_getSpurChan(_ah, _ix, _is2G) \ AH_PRIVATE(_ah)->ah_getSpurChan(_ah, _ix, _is2G) #define ath_hal_eepromDiag(_ah, _request, _a, _asize, _r, _rsize) \ AH_PRIVATE(_ah)->ah_eepromDiag(_ah, _request, _a, _asize, _r, _rsize) #ifndef _NET_IF_IEEE80211_H_ /* * Stuff that would naturally come from _ieee80211.h */ #define IEEE80211_ADDR_LEN 6 #define IEEE80211_WEP_IVLEN 3 /* 24bit */ #define IEEE80211_WEP_KIDLEN 1 /* 1 octet */ #define IEEE80211_WEP_CRCLEN 4 /* CRC-32 */ #define IEEE80211_CRC_LEN 4 #define IEEE80211_MAX_LEN (2300 + IEEE80211_CRC_LEN + \ (IEEE80211_WEP_IVLEN + IEEE80211_WEP_KIDLEN + IEEE80211_WEP_CRCLEN)) #endif /* _NET_IF_IEEE80211_H_ */ #define HAL_TXQ_USE_LOCKOUT_BKOFF_DIS 0x00000001 #define INIT_AIFS 2 #define INIT_CWMIN 15 #define INIT_CWMIN_11B 31 #define INIT_CWMAX 1023 #define INIT_SH_RETRY 10 #define INIT_LG_RETRY 10 #define INIT_SSH_RETRY 32 #define INIT_SLG_RETRY 32 typedef struct { uint32_t tqi_ver; /* HAL TXQ verson */ HAL_TX_QUEUE tqi_type; /* hw queue type*/ HAL_TX_QUEUE_SUBTYPE tqi_subtype; /* queue subtype, if applicable */ HAL_TX_QUEUE_FLAGS tqi_qflags; /* queue flags */ uint32_t tqi_priority; uint32_t tqi_aifs; /* aifs */ uint32_t tqi_cwmin; /* cwMin */ uint32_t tqi_cwmax; /* cwMax */ uint16_t tqi_shretry; /* frame short retry limit */ uint16_t tqi_lgretry; /* frame long retry limit */ uint32_t tqi_cbrPeriod; uint32_t tqi_cbrOverflowLimit; uint32_t tqi_burstTime; uint32_t tqi_readyTime; uint32_t tqi_physCompBuf; uint32_t tqi_intFlags; /* flags for internal use */ } HAL_TX_QUEUE_INFO; extern HAL_BOOL ath_hal_setTxQProps(struct ath_hal *ah, HAL_TX_QUEUE_INFO *qi, const HAL_TXQ_INFO *qInfo); extern HAL_BOOL ath_hal_getTxQProps(struct ath_hal *ah, HAL_TXQ_INFO *qInfo, const HAL_TX_QUEUE_INFO *qi); #define HAL_SPUR_VAL_MASK 0x3FFF #define HAL_SPUR_CHAN_WIDTH 87 #define HAL_BIN_WIDTH_BASE_100HZ 3125 #define HAL_BIN_WIDTH_TURBO_100HZ 6250 #define HAL_MAX_BINS_ALLOWED 28 #define IS_CHAN_5GHZ(_c) ((_c)->channel > 4900) #define IS_CHAN_2GHZ(_c) (!IS_CHAN_5GHZ(_c)) #define IS_CHAN_IN_PUBLIC_SAFETY_BAND(_c) ((_c) > 4940 && (_c) < 4990) /* * Deduce if the host cpu has big- or litt-endian byte order. */ static __inline__ int isBigEndian(void) { union { int32_t i; char c[4]; } u; u.i = 1; return (u.c[0] == 0); } /* unalligned little endian access */ #define LE_READ_2(p) \ ((uint16_t) \ ((((const uint8_t *)(p))[0] ) | (((const uint8_t *)(p))[1]<< 8))) #define LE_READ_4(p) \ ((uint32_t) \ ((((const uint8_t *)(p))[0] ) | (((const uint8_t *)(p))[1]<< 8) |\ (((const uint8_t *)(p))[2]<<16) | (((const uint8_t *)(p))[3]<<24))) /* * Register manipulation macros that expect bit field defines * to follow the convention that an _S suffix is appended for * a shift count, while the field mask has no suffix. */ #define SM(_v, _f) (((_v) << _f##_S) & (_f)) #define MS(_v, _f) (((_v) & (_f)) >> _f##_S) #define OS_REG_RMW(_a, _r, _set, _clr) \ OS_REG_WRITE(_a, _r, (OS_REG_READ(_a, _r) & ~(_clr)) | (_set)) #define OS_REG_RMW_FIELD(_a, _r, _f, _v) \ OS_REG_WRITE(_a, _r, \ (OS_REG_READ(_a, _r) &~ (_f)) | (((_v) << _f##_S) & (_f))) #define OS_REG_SET_BIT(_a, _r, _f) \ OS_REG_WRITE(_a, _r, OS_REG_READ(_a, _r) | (_f)) #define OS_REG_CLR_BIT(_a, _r, _f) \ OS_REG_WRITE(_a, _r, OS_REG_READ(_a, _r) &~ (_f)) #define OS_REG_IS_BIT_SET(_a, _r, _f) \ ((OS_REG_READ(_a, _r) & (_f)) != 0) #define OS_REG_RMW_FIELD_ALT(_a, _r, _f, _v) \ OS_REG_WRITE(_a, _r, \ (OS_REG_READ(_a, _r) &~(_f<<_f##_S)) | \ (((_v) << _f##_S) & (_f<<_f##_S))) #define OS_REG_READ_FIELD(_a, _r, _f) \ (((OS_REG_READ(_a, _r) & _f) >> _f##_S)) #define OS_REG_READ_FIELD_ALT(_a, _r, _f) \ ((OS_REG_READ(_a, _r) >> (_f##_S))&(_f)) /* Analog register writes may require a delay between each one (eg Merlin?) */ #define OS_A_REG_RMW_FIELD(_a, _r, _f, _v) \ do { OS_REG_WRITE(_a, _r, (OS_REG_READ(_a, _r) &~ (_f)) | \ (((_v) << _f##_S) & (_f))) ; OS_DELAY(100); } while (0) #define OS_A_REG_WRITE(_a, _r, _v) \ do { OS_REG_WRITE(_a, _r, _v); OS_DELAY(100); } while (0) /* wait for the register contents to have the specified value */ extern HAL_BOOL ath_hal_wait(struct ath_hal *, u_int reg, uint32_t mask, uint32_t val); extern HAL_BOOL ath_hal_waitfor(struct ath_hal *, u_int reg, uint32_t mask, uint32_t val, uint32_t timeout); /* return the first n bits in val reversed */ extern uint32_t ath_hal_reverseBits(uint32_t val, uint32_t n); /* printf interfaces */ extern void ath_hal_printf(struct ath_hal *, const char*, ...) __printflike(2,3); extern void ath_hal_vprintf(struct ath_hal *, const char*, __va_list) __printflike(2, 0); extern const char* ath_hal_ether_sprintf(const uint8_t *mac); /* allocate and free memory */ extern void *ath_hal_malloc(size_t); extern void ath_hal_free(void *); /* common debugging interfaces */ #ifdef AH_DEBUG #include "ah_debug.h" extern int ath_hal_debug; /* Global debug flags */ /* * The typecast is purely because some callers will pass in * AH_NULL directly rather than using a NULL ath_hal pointer. */ #define HALDEBUG(_ah, __m, ...) \ do { \ if ((__m) == HAL_DEBUG_UNMASKABLE || \ ath_hal_debug & (__m) || \ ((_ah) != NULL && \ ((struct ath_hal *) (_ah))->ah_config.ah_debug & (__m))) { \ DO_HALDEBUG((_ah), (__m), __VA_ARGS__); \ } \ } while(0); extern void DO_HALDEBUG(struct ath_hal *ah, u_int mask, const char* fmt, ...) __printflike(3,4); #else #define HALDEBUG(_ah, __m, ...) #endif /* AH_DEBUG */ /* * Register logging definitions shared with ardecode. */ #include "ah_decode.h" /* * Common assertion interface. Note: it is a bad idea to generate * an assertion failure for any recoverable event. Instead catch * the violation and, if possible, fix it up or recover from it; either * with an error return value or a diagnostic messages. System software * does not panic unless the situation is hopeless. */ #ifdef AH_ASSERT extern void ath_hal_assert_failed(const char* filename, int lineno, const char* msg); #define HALASSERT(_x) do { \ if (!(_x)) { \ ath_hal_assert_failed(__FILE__, __LINE__, #_x); \ } \ } while (0) #else #define HALASSERT(_x) #endif /* AH_ASSERT */ /* * Regulatory domain support. */ /* * Return the max allowed antenna gain and apply any regulatory * domain specific changes. */ u_int ath_hal_getantennareduction(struct ath_hal *ah, const struct ieee80211_channel *chan, u_int twiceGain); /* * Return the test group for the specific channel based on * the current regulatory setup. */ u_int ath_hal_getctl(struct ath_hal *, const struct ieee80211_channel *); /* * Map a public channel definition to the corresponding * internal data structure. This implicitly specifies * whether or not the specified channel is ok to use * based on the current regulatory domain constraints. */ #ifndef AH_DEBUG static OS_INLINE HAL_CHANNEL_INTERNAL * ath_hal_checkchannel(struct ath_hal *ah, const struct ieee80211_channel *c) { HAL_CHANNEL_INTERNAL *cc; HALASSERT(c->ic_devdata < AH_PRIVATE(ah)->ah_nchan); cc = &AH_PRIVATE(ah)->ah_channels[c->ic_devdata]; HALASSERT(c->ic_freq == cc->channel || IEEE80211_IS_CHAN_GSM(c)); return cc; } #else /* NB: non-inline version that checks state */ HAL_CHANNEL_INTERNAL *ath_hal_checkchannel(struct ath_hal *, const struct ieee80211_channel *); #endif /* AH_DEBUG */ /* * Return the h/w frequency for a channel. This may be * different from ic_freq if this is a GSM device that * takes 2.4GHz frequencies and down-converts them. */ static OS_INLINE uint16_t ath_hal_gethwchannel(struct ath_hal *ah, const struct ieee80211_channel *c) { return ath_hal_checkchannel(ah, c)->channel; } /* - * Convert between microseconds and core system clocks. - */ -extern u_int ath_hal_mac_clks(struct ath_hal *ah, u_int usecs); -extern u_int ath_hal_mac_usec(struct ath_hal *ah, u_int clks); - -/* * Generic get/set capability support. Each chip overrides * this routine to support chip-specific capabilities. */ extern HAL_STATUS ath_hal_getcapability(struct ath_hal *ah, HAL_CAPABILITY_TYPE type, uint32_t capability, uint32_t *result); extern HAL_BOOL ath_hal_setcapability(struct ath_hal *ah, HAL_CAPABILITY_TYPE type, uint32_t capability, uint32_t setting, HAL_STATUS *status); /* The diagnostic codes used to be internally defined here -adrian */ #include "ah_diagcodes.h" /* * The AR5416 and later HALs have MAC and baseband hang checking. */ typedef struct { uint32_t hang_reg_offset; uint32_t hang_val; uint32_t hang_mask; uint32_t hang_offset; } hal_hw_hang_check_t; typedef struct { uint32_t dma_dbg_3; uint32_t dma_dbg_4; uint32_t dma_dbg_5; uint32_t dma_dbg_6; } mac_dbg_regs_t; typedef enum { dcu_chain_state = 0x1, dcu_complete_state = 0x2, qcu_state = 0x4, qcu_fsp_ok = 0x8, qcu_fsp_state = 0x10, qcu_stitch_state = 0x20, qcu_fetch_state = 0x40, qcu_complete_state = 0x80 } hal_mac_hangs_t; typedef struct { int states; uint8_t dcu_chain_state; uint8_t dcu_complete_state; uint8_t qcu_state; uint8_t qcu_fsp_ok; uint8_t qcu_fsp_state; uint8_t qcu_stitch_state; uint8_t qcu_fetch_state; uint8_t qcu_complete_state; } hal_mac_hang_check_t; enum { HAL_BB_HANG_DFS = 0x0001, HAL_BB_HANG_RIFS = 0x0002, HAL_BB_HANG_RX_CLEAR = 0x0004, HAL_BB_HANG_UNKNOWN = 0x0080, HAL_MAC_HANG_SIG1 = 0x0100, HAL_MAC_HANG_SIG2 = 0x0200, HAL_MAC_HANG_UNKNOWN = 0x8000, HAL_BB_HANGS = HAL_BB_HANG_DFS | HAL_BB_HANG_RIFS | HAL_BB_HANG_RX_CLEAR | HAL_BB_HANG_UNKNOWN, HAL_MAC_HANGS = HAL_MAC_HANG_SIG1 | HAL_MAC_HANG_SIG2 | HAL_MAC_HANG_UNKNOWN, }; /* Merge these with above */ typedef enum hal_hw_hangs { HAL_DFS_BB_HANG_WAR = 0x1, HAL_RIFS_BB_HANG_WAR = 0x2, HAL_RX_STUCK_LOW_BB_HANG_WAR = 0x4, HAL_MAC_HANG_WAR = 0x8, HAL_PHYRESTART_CLR_WAR = 0x10, HAL_MAC_HANG_DETECTED = 0x40000000, HAL_BB_HANG_DETECTED = 0x80000000 } hal_hw_hangs_t; /* * Device revision information. */ typedef struct { uint16_t ah_devid; /* PCI device ID */ uint16_t ah_subvendorid; /* PCI subvendor ID */ uint32_t ah_macVersion; /* MAC version id */ uint16_t ah_macRev; /* MAC revision */ uint16_t ah_phyRev; /* PHY revision */ uint16_t ah_analog5GhzRev; /* 2GHz radio revision */ uint16_t ah_analog2GhzRev; /* 5GHz radio revision */ } HAL_REVS; /* * Argument payload for HAL_DIAG_SETKEY. */ typedef struct { HAL_KEYVAL dk_keyval; uint16_t dk_keyix; /* key index */ uint8_t dk_mac[IEEE80211_ADDR_LEN]; int dk_xor; /* XOR key data */ } HAL_DIAG_KEYVAL; /* * Argument payload for HAL_DIAG_EEWRITE. */ typedef struct { uint16_t ee_off; /* eeprom offset */ uint16_t ee_data; /* write data */ } HAL_DIAG_EEVAL; typedef struct { u_int offset; /* reg offset */ uint32_t val; /* reg value */ } HAL_DIAG_REGVAL; /* * 11n compatibility tweaks. */ #define HAL_DIAG_11N_SERVICES 0x00000003 #define HAL_DIAG_11N_SERVICES_S 0 #define HAL_DIAG_11N_TXSTOMP 0x0000000c #define HAL_DIAG_11N_TXSTOMP_S 2 typedef struct { int maxNoiseImmunityLevel; /* [0..4] */ int totalSizeDesired[5]; int coarseHigh[5]; int coarseLow[5]; int firpwr[5]; int maxSpurImmunityLevel; /* [0..7] */ int cycPwrThr1[8]; int maxFirstepLevel; /* [0..2] */ int firstep[3]; uint32_t ofdmTrigHigh; uint32_t ofdmTrigLow; int32_t cckTrigHigh; int32_t cckTrigLow; int32_t rssiThrLow; int32_t rssiThrHigh; int period; /* update listen period */ } HAL_ANI_PARAMS; extern HAL_BOOL ath_hal_getdiagstate(struct ath_hal *ah, int request, const void *args, uint32_t argsize, void **result, uint32_t *resultsize); /* * Setup a h/w rate table for use. */ extern void ath_hal_setupratetable(struct ath_hal *ah, HAL_RATE_TABLE *rt); /* * Common routine for implementing getChanNoise api. */ int16_t ath_hal_getChanNoise(struct ath_hal *, const struct ieee80211_channel *); /* * Initialization support. */ typedef struct { const uint32_t *data; int rows, cols; } HAL_INI_ARRAY; #define HAL_INI_INIT(_ia, _data, _cols) do { \ (_ia)->data = (const uint32_t *)(_data); \ (_ia)->rows = sizeof(_data) / sizeof((_data)[0]); \ (_ia)->cols = (_cols); \ } while (0) #define HAL_INI_VAL(_ia, _r, _c) \ ((_ia)->data[((_r)*(_ia)->cols) + (_c)]) /* * OS_DELAY() does a PIO READ on the PCI bus which allows * other cards' DMA reads to complete in the middle of our reset. */ #define DMA_YIELD(x) do { \ if ((++(x) % 64) == 0) \ OS_DELAY(1); \ } while (0) #define HAL_INI_WRITE_ARRAY(ah, regArray, col, regWr) do { \ int r; \ for (r = 0; r < N(regArray); r++) { \ OS_REG_WRITE(ah, (regArray)[r][0], (regArray)[r][col]); \ DMA_YIELD(regWr); \ } \ } while (0) #define HAL_INI_WRITE_BANK(ah, regArray, bankData, regWr) do { \ int r; \ for (r = 0; r < N(regArray); r++) { \ OS_REG_WRITE(ah, (regArray)[r][0], (bankData)[r]); \ DMA_YIELD(regWr); \ } \ } while (0) extern int ath_hal_ini_write(struct ath_hal *ah, const HAL_INI_ARRAY *ia, int col, int regWr); extern void ath_hal_ini_bank_setup(uint32_t data[], const HAL_INI_ARRAY *ia, int col); extern int ath_hal_ini_bank_write(struct ath_hal *ah, const HAL_INI_ARRAY *ia, const uint32_t data[], int regWr); #define CCK_SIFS_TIME 10 #define CCK_PREAMBLE_BITS 144 #define CCK_PLCP_BITS 48 #define OFDM_SIFS_TIME 16 #define OFDM_PREAMBLE_TIME 20 #define OFDM_PLCP_BITS 22 #define OFDM_SYMBOL_TIME 4 #define OFDM_HALF_SIFS_TIME 32 #define OFDM_HALF_PREAMBLE_TIME 40 #define OFDM_HALF_PLCP_BITS 22 #define OFDM_HALF_SYMBOL_TIME 8 #define OFDM_QUARTER_SIFS_TIME 64 #define OFDM_QUARTER_PREAMBLE_TIME 80 #define OFDM_QUARTER_PLCP_BITS 22 #define OFDM_QUARTER_SYMBOL_TIME 16 #define TURBO_SIFS_TIME 8 #define TURBO_PREAMBLE_TIME 14 #define TURBO_PLCP_BITS 22 #define TURBO_SYMBOL_TIME 4 #define WLAN_CTRL_FRAME_SIZE (2+2+6+4) /* ACK+FCS */ /* Generic EEPROM board value functions */ extern HAL_BOOL ath_ee_getLowerUpperIndex(uint8_t target, uint8_t *pList, uint16_t listSize, uint16_t *indexL, uint16_t *indexR); extern HAL_BOOL ath_ee_FillVpdTable(uint8_t pwrMin, uint8_t pwrMax, uint8_t *pPwrList, uint8_t *pVpdList, uint16_t numIntercepts, uint8_t *pRetVpdList); extern int16_t ath_ee_interpolate(uint16_t target, uint16_t srcLeft, uint16_t srcRight, int16_t targetLeft, int16_t targetRight); /* Whether 5ghz fast clock is needed */ /* * The chipset (Merlin, AR9300/later) should set the capability flag below; * this flag simply says that the hardware can do it, not that the EEPROM * says it can. * * Merlin 2.0/2.1 chips with an EEPROM version > 16 do 5ghz fast clock * if the relevant eeprom flag is set. * Merlin 2.0/2.1 chips with an EEPROM version <= 16 do 5ghz fast clock * by default. */ #define IS_5GHZ_FAST_CLOCK_EN(_ah, _c) \ (IEEE80211_IS_CHAN_5GHZ(_c) && \ AH_PRIVATE((_ah))->ah_caps.halSupportsFastClock5GHz && \ ath_hal_eepromGetFlag((_ah), AR_EEP_FSTCLK_5G)) /* * Fetch the maximum regulatory domain power for the given channel * in 1/2dBm steps. */ static inline int ath_hal_get_twice_max_regpower(struct ath_hal_private *ahp, const HAL_CHANNEL_INTERNAL *ichan, const struct ieee80211_channel *chan) { struct ath_hal *ah = &ahp->h; if (! chan) { ath_hal_printf(ah, "%s: called with chan=NULL!\n", __func__); return (0); } return (chan->ic_maxpower); } /* * Get the maximum antenna gain allowed, in 1/2dBm steps. */ static inline int ath_hal_getantennaallowed(struct ath_hal *ah, const struct ieee80211_channel *chan) { if (! chan) return (0); return (chan->ic_maxantgain); } /* * Map the given 2GHz channel to an IEEE number. */ extern int ath_hal_mhz2ieee_2ghz(struct ath_hal *, int freq); /* * Clear the channel survey data. */ extern void ath_hal_survey_clear(struct ath_hal *ah); /* * Add a sample to the channel survey data. */ extern void ath_hal_survey_add_sample(struct ath_hal *ah, HAL_SURVEY_SAMPLE *hs); #endif /* _ATH_AH_INTERAL_H_ */ Index: head/sys/dev/ath/ath_hal/ar5416/ar5416_reset.c =================================================================== --- head/sys/dev/ath/ath_hal/ar5416/ar5416_reset.c (revision 305636) +++ head/sys/dev/ath/ath_hal/ar5416/ar5416_reset.c (revision 305637) @@ -1,2891 +1,2894 @@ /* * Copyright (c) 2002-2009 Sam Leffler, Errno Consulting * Copyright (c) 2002-2008 Atheros Communications, Inc. * * Permission to use, copy, modify, and/or distribute this software for any * purpose with or without fee is hereby granted, provided that the above * copyright notice and this permission notice appear in all copies. * * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. * * $FreeBSD$ */ #include "opt_ah.h" #include "ah.h" #include "ah_internal.h" #include "ah_devid.h" #include "ah_eeprom_v14.h" #include "ar5416/ar5416.h" #include "ar5416/ar5416reg.h" #include "ar5416/ar5416phy.h" /* Eeprom versioning macros. Returns true if the version is equal or newer than the ver specified */ #define EEP_MINOR(_ah) \ (AH_PRIVATE(_ah)->ah_eeversion & AR5416_EEP_VER_MINOR_MASK) #define IS_EEP_MINOR_V2(_ah) (EEP_MINOR(_ah) >= AR5416_EEP_MINOR_VER_2) #define IS_EEP_MINOR_V3(_ah) (EEP_MINOR(_ah) >= AR5416_EEP_MINOR_VER_3) /* Additional Time delay to wait after activiting the Base band */ #define BASE_ACTIVATE_DELAY 100 /* 100 usec */ #define PLL_SETTLE_DELAY 300 /* 300 usec */ #define RTC_PLL_SETTLE_DELAY 1000 /* 1 ms */ static void ar5416InitDMA(struct ath_hal *ah); static void ar5416InitBB(struct ath_hal *ah, const struct ieee80211_channel *); static void ar5416InitIMR(struct ath_hal *ah, HAL_OPMODE opmode); static void ar5416InitQoS(struct ath_hal *ah); static void ar5416InitUserSettings(struct ath_hal *ah); static void ar5416OverrideIni(struct ath_hal *ah, const struct ieee80211_channel *); #if 0 static HAL_BOOL ar5416ChannelChange(struct ath_hal *, const struct ieee80211_channel *); #endif static void ar5416SetDeltaSlope(struct ath_hal *, const struct ieee80211_channel *); static HAL_BOOL ar5416SetResetPowerOn(struct ath_hal *ah); static HAL_BOOL ar5416SetReset(struct ath_hal *ah, int type); static HAL_BOOL ar5416SetPowerPerRateTable(struct ath_hal *ah, struct ar5416eeprom *pEepData, const struct ieee80211_channel *chan, int16_t *ratesArray, uint16_t cfgCtl, uint16_t AntennaReduction, uint16_t twiceMaxRegulatoryPower, uint16_t powerLimit); static void ar5416Set11nRegs(struct ath_hal *ah, const struct ieee80211_channel *chan); static void ar5416MarkPhyInactive(struct ath_hal *ah); static void ar5416SetIFSTiming(struct ath_hal *ah, const struct ieee80211_channel *chan); /* * Places the device in and out of reset and then places sane * values in the registers based on EEPROM config, initialization * vectors (as determined by the mode), and station configuration * * bChannelChange is used to preserve DMA/PCU registers across * a HW Reset during channel change. */ HAL_BOOL ar5416Reset(struct ath_hal *ah, HAL_OPMODE opmode, struct ieee80211_channel *chan, HAL_BOOL bChannelChange, HAL_RESET_TYPE resetType, HAL_STATUS *status) { #define N(a) (sizeof (a) / sizeof (a[0])) #define FAIL(_code) do { ecode = _code; goto bad; } while (0) struct ath_hal_5212 *ahp = AH5212(ah); HAL_CHANNEL_INTERNAL *ichan; uint32_t saveDefAntenna, saveLedState; uint32_t macStaId1; uint16_t rfXpdGain[2]; HAL_STATUS ecode; uint32_t powerVal, rssiThrReg; uint32_t ackTpcPow, ctsTpcPow, chirpTpcPow; int i; uint64_t tsf = 0; OS_MARK(ah, AH_MARK_RESET, bChannelChange); /* Bring out of sleep mode */ if (!ar5416SetPowerMode(ah, HAL_PM_AWAKE, AH_TRUE)) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: chip did not wakeup\n", __func__); FAIL(HAL_EIO); } /* * Map public channel to private. */ ichan = ath_hal_checkchannel(ah, chan); if (ichan == AH_NULL) FAIL(HAL_EINVAL); switch (opmode) { case HAL_M_STA: case HAL_M_IBSS: case HAL_M_HOSTAP: case HAL_M_MONITOR: break; default: HALDEBUG(ah, HAL_DEBUG_ANY, "%s: invalid operating mode %u\n", __func__, opmode); FAIL(HAL_EINVAL); break; } HALASSERT(AH_PRIVATE(ah)->ah_eeversion >= AR_EEPROM_VER14_1); /* Blank the channel survey statistics */ ath_hal_survey_clear(ah); /* XXX Turn on fast channel change for 5416 */ /* * Preserve the bmiss rssi threshold and count threshold * across resets */ rssiThrReg = OS_REG_READ(ah, AR_RSSI_THR); /* If reg is zero, first time thru set to default val */ if (rssiThrReg == 0) rssiThrReg = INIT_RSSI_THR; /* * Preserve the antenna on a channel change */ saveDefAntenna = OS_REG_READ(ah, AR_DEF_ANTENNA); /* * Don't do this for the AR9285 - it breaks RX for single * antenna designs when diversity is disabled. * * I'm not sure what this was working around; it may be * something to do with the AR5416. Certainly this register * isn't supposed to be used by the MIMO chips for anything * except for defining the default antenna when an external * phase array / smart antenna is connected. * * See PR: kern/179269 . */ if ((! AR_SREV_KITE(ah)) && saveDefAntenna == 0) /* XXX magic constants */ saveDefAntenna = 1; /* Save hardware flag before chip reset clears the register */ macStaId1 = OS_REG_READ(ah, AR_STA_ID1) & (AR_STA_ID1_BASE_RATE_11B | AR_STA_ID1_USE_DEFANT); /* Save led state from pci config register */ saveLedState = OS_REG_READ(ah, AR_MAC_LED) & (AR_MAC_LED_ASSOC | AR_MAC_LED_MODE | AR_MAC_LED_BLINK_THRESH_SEL | AR_MAC_LED_BLINK_SLOW); /* For chips on which the RTC reset is done, save TSF before it gets cleared */ if (AR_SREV_HOWL(ah) || (AR_SREV_MERLIN(ah) && ath_hal_eepromGetFlag(ah, AR_EEP_OL_PWRCTRL)) || (ah->ah_config.ah_force_full_reset)) tsf = ar5416GetTsf64(ah); /* Mark PHY as inactive; marked active in ar5416InitBB() */ ar5416MarkPhyInactive(ah); if (!ar5416ChipReset(ah, chan)) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: chip reset failed\n", __func__); FAIL(HAL_EIO); } /* Restore TSF */ if (tsf) ar5416SetTsf64(ah, tsf); OS_MARK(ah, AH_MARK_RESET_LINE, __LINE__); if (AR_SREV_MERLIN_10_OR_LATER(ah)) OS_REG_SET_BIT(ah, AR_GPIO_INPUT_EN_VAL, AR_GPIO_JTAG_DISABLE); AH5416(ah)->ah_writeIni(ah, chan); if(AR_SREV_KIWI_13_OR_LATER(ah) ) { /* Enable ASYNC FIFO */ OS_REG_SET_BIT(ah, AR_MAC_PCU_ASYNC_FIFO_REG3, AR_MAC_PCU_ASYNC_FIFO_REG3_DATAPATH_SEL); OS_REG_SET_BIT(ah, AR_PHY_MODE, AR_PHY_MODE_ASYNCFIFO); OS_REG_CLR_BIT(ah, AR_MAC_PCU_ASYNC_FIFO_REG3, AR_MAC_PCU_ASYNC_FIFO_REG3_SOFT_RESET); OS_REG_SET_BIT(ah, AR_MAC_PCU_ASYNC_FIFO_REG3, AR_MAC_PCU_ASYNC_FIFO_REG3_SOFT_RESET); } /* Override ini values (that can be overriden in this fashion) */ ar5416OverrideIni(ah, chan); /* Setup 11n MAC/Phy mode registers */ ar5416Set11nRegs(ah, chan); OS_MARK(ah, AH_MARK_RESET_LINE, __LINE__); /* * Some AR91xx SoC devices frequently fail to accept TSF writes * right after the chip reset. When that happens, write a new * value after the initvals have been applied, with an offset * based on measured time difference */ if (AR_SREV_HOWL(ah) && (ar5416GetTsf64(ah) < tsf)) { tsf += 1500; ar5416SetTsf64(ah, tsf); } HALDEBUG(ah, HAL_DEBUG_RESET, ">>>2 %s: AR_PHY_DAG_CTRLCCK=0x%x\n", __func__, OS_REG_READ(ah,AR_PHY_DAG_CTRLCCK)); HALDEBUG(ah, HAL_DEBUG_RESET, ">>>2 %s: AR_PHY_ADC_CTL=0x%x\n", __func__, OS_REG_READ(ah,AR_PHY_ADC_CTL)); /* * This routine swaps the analog chains - it should be done * before any radio register twiddling is done. */ ar5416InitChainMasks(ah); /* Setup the open-loop power calibration if required */ if (ath_hal_eepromGetFlag(ah, AR_EEP_OL_PWRCTRL)) { AH5416(ah)->ah_olcInit(ah); AH5416(ah)->ah_olcTempCompensation(ah); } /* Setup the transmit power values. */ if (!ah->ah_setTxPower(ah, chan, rfXpdGain)) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: error init'ing transmit power\n", __func__); FAIL(HAL_EIO); } /* Write the analog registers */ if (!ahp->ah_rfHal->setRfRegs(ah, chan, IEEE80211_IS_CHAN_2GHZ(chan) ? 2: 1, rfXpdGain)) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: ar5212SetRfRegs failed\n", __func__); FAIL(HAL_EIO); } /* Write delta slope for OFDM enabled modes (A, G, Turbo) */ if (IEEE80211_IS_CHAN_OFDM(chan)|| IEEE80211_IS_CHAN_HT(chan)) ar5416SetDeltaSlope(ah, chan); AH5416(ah)->ah_spurMitigate(ah, chan); /* Setup board specific options for EEPROM version 3 */ if (!ah->ah_setBoardValues(ah, chan)) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: error setting board options\n", __func__); FAIL(HAL_EIO); } OS_MARK(ah, AH_MARK_RESET_LINE, __LINE__); OS_REG_WRITE(ah, AR_STA_ID0, LE_READ_4(ahp->ah_macaddr)); OS_REG_WRITE(ah, AR_STA_ID1, LE_READ_2(ahp->ah_macaddr + 4) | macStaId1 | AR_STA_ID1_RTS_USE_DEF | ahp->ah_staId1Defaults ); ar5212SetOperatingMode(ah, opmode); /* Set Venice BSSID mask according to current state */ OS_REG_WRITE(ah, AR_BSSMSKL, LE_READ_4(ahp->ah_bssidmask)); OS_REG_WRITE(ah, AR_BSSMSKU, LE_READ_2(ahp->ah_bssidmask + 4)); /* Restore previous led state */ if (AR_SREV_HOWL(ah)) OS_REG_WRITE(ah, AR_MAC_LED, AR_MAC_LED_ASSOC_ACTIVE | AR_CFG_SCLK_32KHZ); else OS_REG_WRITE(ah, AR_MAC_LED, OS_REG_READ(ah, AR_MAC_LED) | saveLedState); /* Start TSF2 for generic timer 8-15 */ #ifdef NOTYET if (AR_SREV_KIWI(ah)) ar5416StartTsf2(ah); #endif /* * Enable Bluetooth Coexistence if it's enabled. */ if (AH5416(ah)->ah_btCoexConfigType != HAL_BT_COEX_CFG_NONE) ar5416InitBTCoex(ah); /* Restore previous antenna */ OS_REG_WRITE(ah, AR_DEF_ANTENNA, saveDefAntenna); /* then our BSSID and associate id */ OS_REG_WRITE(ah, AR_BSS_ID0, LE_READ_4(ahp->ah_bssid)); OS_REG_WRITE(ah, AR_BSS_ID1, LE_READ_2(ahp->ah_bssid + 4) | (ahp->ah_assocId & 0x3fff) << AR_BSS_ID1_AID_S); /* Restore bmiss rssi & count thresholds */ OS_REG_WRITE(ah, AR_RSSI_THR, ahp->ah_rssiThr); OS_REG_WRITE(ah, AR_ISR, ~0); /* cleared on write */ /* Restore bmiss rssi & count thresholds */ OS_REG_WRITE(ah, AR_RSSI_THR, rssiThrReg); if (!ar5212SetChannel(ah, chan)) FAIL(HAL_EIO); OS_MARK(ah, AH_MARK_RESET_LINE, __LINE__); /* Set 1:1 QCU to DCU mapping for all queues */ for (i = 0; i < AR_NUM_DCU; i++) OS_REG_WRITE(ah, AR_DQCUMASK(i), 1 << i); ahp->ah_intrTxqs = 0; for (i = 0; i < AH_PRIVATE(ah)->ah_caps.halTotalQueues; i++) ah->ah_resetTxQueue(ah, i); ar5416InitIMR(ah, opmode); ar5416SetCoverageClass(ah, AH_PRIVATE(ah)->ah_coverageClass, 1); ar5416InitQoS(ah); /* This may override the AR_DIAG_SW register */ ar5416InitUserSettings(ah); /* XXX this won't work for AR9287! */ if (IEEE80211_IS_CHAN_HALF(chan) || IEEE80211_IS_CHAN_QUARTER(chan)) { ar5416SetIFSTiming(ah, chan); #if 0 /* * AR5413? * Force window_length for 1/2 and 1/4 rate channels, * the ini file sets this to zero otherwise. */ OS_REG_RMW_FIELD(ah, AR_PHY_FRAME_CTL, AR_PHY_FRAME_CTL_WINLEN, 3); } #endif } if (AR_SREV_KIWI_13_OR_LATER(ah)) { /* * Enable ASYNC FIFO * * If Async FIFO is enabled, the following counters change * as MAC now runs at 117 Mhz instead of 88/44MHz when * async FIFO is disabled. * * Overwrite the delay/timeouts initialized in ProcessIni() * above. */ OS_REG_WRITE(ah, AR_D_GBL_IFS_SIFS, AR_D_GBL_IFS_SIFS_ASYNC_FIFO_DUR); OS_REG_WRITE(ah, AR_D_GBL_IFS_SLOT, AR_D_GBL_IFS_SLOT_ASYNC_FIFO_DUR); OS_REG_WRITE(ah, AR_D_GBL_IFS_EIFS, AR_D_GBL_IFS_EIFS_ASYNC_FIFO_DUR); OS_REG_WRITE(ah, AR_TIME_OUT, AR_TIME_OUT_ACK_CTS_ASYNC_FIFO_DUR); OS_REG_WRITE(ah, AR_USEC, AR_USEC_ASYNC_FIFO_DUR); OS_REG_SET_BIT(ah, AR_MAC_PCU_LOGIC_ANALYZER, AR_MAC_PCU_LOGIC_ANALYZER_DISBUG20768); OS_REG_RMW_FIELD(ah, AR_AHB_MODE, AR_AHB_CUSTOM_BURST_EN, AR_AHB_CUSTOM_BURST_ASYNC_FIFO_VAL); } if (AR_SREV_KIWI_13_OR_LATER(ah)) { /* Enable AGGWEP to accelerate encryption engine */ OS_REG_SET_BIT(ah, AR_PCU_MISC_MODE2, AR_PCU_MISC_MODE2_ENABLE_AGGWEP); } /* * disable seq number generation in hw */ OS_REG_WRITE(ah, AR_STA_ID1, OS_REG_READ(ah, AR_STA_ID1) | AR_STA_ID1_PRESERVE_SEQNUM); ar5416InitDMA(ah); /* * program OBS bus to see MAC interrupts */ OS_REG_WRITE(ah, AR_OBS, 8); /* * Disable the "general" TX/RX mitigation timers. */ OS_REG_WRITE(ah, AR_MIRT, 0); #ifdef AH_AR5416_INTERRUPT_MITIGATION /* * This initialises the RX interrupt mitigation timers. * * The mitigation timers begin at idle and are triggered * upon the RXOK of a single frame (or sub-frame, for A-MPDU.) * Then, the RX mitigation interrupt will fire: * * + 250uS after the last RX'ed frame, or * + 700uS after the first RX'ed frame * * Thus, the LAST field dictates the extra latency * induced by the RX mitigation method and the FIRST * field dictates how long to delay before firing an * RX mitigation interrupt. * * Please note this only seems to be for RXOK frames; * not CRC or PHY error frames. * */ OS_REG_RMW_FIELD(ah, AR_RIMT, AR_RIMT_LAST, 250); OS_REG_RMW_FIELD(ah, AR_RIMT, AR_RIMT_FIRST, 700); #endif ar5416InitBB(ah, chan); /* Setup compression registers */ ar5212SetCompRegs(ah); /* XXX not needed? */ /* * 5416 baseband will check the per rate power table * and select the lower of the two */ ackTpcPow = 63; ctsTpcPow = 63; chirpTpcPow = 63; powerVal = SM(ackTpcPow, AR_TPC_ACK) | SM(ctsTpcPow, AR_TPC_CTS) | SM(chirpTpcPow, AR_TPC_CHIRP); OS_REG_WRITE(ah, AR_TPC, powerVal); if (!ar5416InitCal(ah, chan)) FAIL(HAL_ESELFTEST); ar5416RestoreChainMask(ah); AH_PRIVATE(ah)->ah_opmode = opmode; /* record operating mode */ if (bChannelChange && !IEEE80211_IS_CHAN_DFS(chan)) chan->ic_state &= ~IEEE80211_CHANSTATE_CWINT; if (AR_SREV_HOWL(ah)) { /* * Enable the MBSSID block-ack fix for HOWL. * This feature is only supported on Howl 1.4, but it is safe to * set bit 22 of STA_ID1 on other Howl revisions (1.1, 1.2, 1.3), * since bit 22 is unused in those Howl revisions. */ unsigned int reg; reg = (OS_REG_READ(ah, AR_STA_ID1) | (1<<22)); OS_REG_WRITE(ah,AR_STA_ID1, reg); ath_hal_printf(ah, "MBSSID Set bit 22 of AR_STA_ID 0x%x\n", reg); } HALDEBUG(ah, HAL_DEBUG_RESET, "%s: done\n", __func__); OS_MARK(ah, AH_MARK_RESET_DONE, 0); return AH_TRUE; bad: OS_MARK(ah, AH_MARK_RESET_DONE, ecode); if (status != AH_NULL) *status = ecode; return AH_FALSE; #undef FAIL #undef N } #if 0 /* * This channel change evaluates whether the selected hardware can * perform a synthesizer-only channel change (no reset). If the * TX is not stopped, or the RFBus cannot be granted in the given * time, the function returns false as a reset is necessary */ HAL_BOOL ar5416ChannelChange(struct ath_hal *ah, const structu ieee80211_channel *chan) { uint32_t ulCount; uint32_t data, synthDelay, qnum; uint16_t rfXpdGain[4]; struct ath_hal_5212 *ahp = AH5212(ah); HAL_CHANNEL_INTERNAL *ichan; /* * Map public channel to private. */ ichan = ath_hal_checkchannel(ah, chan); /* TX must be stopped or RF Bus grant will not work */ for (qnum = 0; qnum < AH_PRIVATE(ah)->ah_caps.halTotalQueues; qnum++) { if (ar5212NumTxPending(ah, qnum)) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: frames pending on queue %d\n", __func__, qnum); return AH_FALSE; } } /* * Kill last Baseband Rx Frame - Request analog bus grant */ OS_REG_WRITE(ah, AR_PHY_RFBUS_REQ, AR_PHY_RFBUS_REQ_REQUEST); if (!ath_hal_wait(ah, AR_PHY_RFBUS_GNT, AR_PHY_RFBUS_GRANT_EN, AR_PHY_RFBUS_GRANT_EN)) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: could not kill baseband rx\n", __func__); return AH_FALSE; } ar5416Set11nRegs(ah, chan); /* NB: setup 5416-specific regs */ /* Change the synth */ if (!ar5212SetChannel(ah, chan)) return AH_FALSE; /* Setup the transmit power values. */ if (!ah->ah_setTxPower(ah, chan, rfXpdGain)) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: error init'ing transmit power\n", __func__); return AH_FALSE; } /* * Wait for the frequency synth to settle (synth goes on * via PHY_ACTIVE_EN). Read the phy active delay register. * Value is in 100ns increments. */ data = OS_REG_READ(ah, AR_PHY_RX_DELAY) & AR_PHY_RX_DELAY_DELAY; if (IS_CHAN_CCK(ichan)) { synthDelay = (4 * data) / 22; } else { synthDelay = data / 10; } OS_DELAY(synthDelay + BASE_ACTIVATE_DELAY); /* Release the RFBus Grant */ OS_REG_WRITE(ah, AR_PHY_RFBUS_REQ, 0); /* Write delta slope for OFDM enabled modes (A, G, Turbo) */ if (IEEE80211_IS_CHAN_OFDM(ichan)|| IEEE80211_IS_CHAN_HT(chan)) { HALASSERT(AH_PRIVATE(ah)->ah_eeversion >= AR_EEPROM_VER5_3); ar5212SetSpurMitigation(ah, chan); ar5416SetDeltaSlope(ah, chan); } /* XXX spur mitigation for Melin */ if (!IEEE80211_IS_CHAN_DFS(chan)) chan->ic_state &= ~IEEE80211_CHANSTATE_CWINT; ichan->channel_time = 0; ichan->tsf_last = ar5416GetTsf64(ah); ar5212TxEnable(ah, AH_TRUE); return AH_TRUE; } #endif static void ar5416InitDMA(struct ath_hal *ah) { struct ath_hal_5212 *ahp = AH5212(ah); /* * set AHB_MODE not to do cacheline prefetches */ OS_REG_SET_BIT(ah, AR_AHB_MODE, AR_AHB_PREFETCH_RD_EN); /* * let mac dma reads be in 128 byte chunks */ OS_REG_WRITE(ah, AR_TXCFG, (OS_REG_READ(ah, AR_TXCFG) & ~AR_TXCFG_DMASZ_MASK) | AR_TXCFG_DMASZ_128B); /* * let mac dma writes be in 128 byte chunks */ /* * XXX If you change this, you must change the headroom * assigned in ah_maxTxTrigLev - see ar5416InitState(). */ OS_REG_WRITE(ah, AR_RXCFG, (OS_REG_READ(ah, AR_RXCFG) & ~AR_RXCFG_DMASZ_MASK) | AR_RXCFG_DMASZ_128B); /* restore TX trigger level */ OS_REG_WRITE(ah, AR_TXCFG, (OS_REG_READ(ah, AR_TXCFG) &~ AR_FTRIG) | SM(ahp->ah_txTrigLev, AR_FTRIG)); /* * Setup receive FIFO threshold to hold off TX activities */ OS_REG_WRITE(ah, AR_RXFIFO_CFG, 0x200); /* * reduce the number of usable entries in PCU TXBUF to avoid * wrap around. */ if (AR_SREV_KITE(ah)) /* * For AR9285 the number of Fifos are reduced to half. * So set the usable tx buf size also to half to * avoid data/delimiter underruns */ OS_REG_WRITE(ah, AR_PCU_TXBUF_CTRL, AR_9285_PCU_TXBUF_CTRL_USABLE_SIZE); else OS_REG_WRITE(ah, AR_PCU_TXBUF_CTRL, AR_PCU_TXBUF_CTRL_USABLE_SIZE); } static void ar5416InitBB(struct ath_hal *ah, const struct ieee80211_channel *chan) { uint32_t synthDelay; /* * Wait for the frequency synth to settle (synth goes on * via AR_PHY_ACTIVE_EN). Read the phy active delay register. * Value is in 100ns increments. */ synthDelay = OS_REG_READ(ah, AR_PHY_RX_DELAY) & AR_PHY_RX_DELAY_DELAY; if (IEEE80211_IS_CHAN_CCK(chan)) { synthDelay = (4 * synthDelay) / 22; } else { synthDelay /= 10; } /* Turn on PLL on 5416 */ HALDEBUG(ah, HAL_DEBUG_RESET, "%s %s channel\n", __func__, IEEE80211_IS_CHAN_5GHZ(chan) ? "5GHz" : "2GHz"); /* Activate the PHY (includes baseband activate and synthesizer on) */ OS_REG_WRITE(ah, AR_PHY_ACTIVE, AR_PHY_ACTIVE_EN); /* * If the AP starts the calibration before the base band timeout * completes we could get rx_clear false triggering. Add an * extra BASE_ACTIVATE_DELAY usecs to ensure this condition * does not happen. */ if (IEEE80211_IS_CHAN_HALF(chan)) { OS_DELAY((synthDelay << 1) + BASE_ACTIVATE_DELAY); } else if (IEEE80211_IS_CHAN_QUARTER(chan)) { OS_DELAY((synthDelay << 2) + BASE_ACTIVATE_DELAY); } else { OS_DELAY(synthDelay + BASE_ACTIVATE_DELAY); } } static void ar5416InitIMR(struct ath_hal *ah, HAL_OPMODE opmode) { struct ath_hal_5212 *ahp = AH5212(ah); /* * Setup interrupt handling. Note that ar5212ResetTxQueue * manipulates the secondary IMR's as queues are enabled * and disabled. This is done with RMW ops to insure the * settings we make here are preserved. */ ahp->ah_maskReg = AR_IMR_TXERR | AR_IMR_TXURN | AR_IMR_RXERR | AR_IMR_RXORN | AR_IMR_BCNMISC; #ifdef AH_AR5416_INTERRUPT_MITIGATION ahp->ah_maskReg |= AR_IMR_RXINTM | AR_IMR_RXMINTR; #else ahp->ah_maskReg |= AR_IMR_RXOK; #endif ahp->ah_maskReg |= AR_IMR_TXOK; if (opmode == HAL_M_HOSTAP) ahp->ah_maskReg |= AR_IMR_MIB; OS_REG_WRITE(ah, AR_IMR, ahp->ah_maskReg); #ifdef ADRIAN_NOTYET /* This is straight from ath9k */ if (! AR_SREV_HOWL(ah)) { OS_REG_WRITE(ah, AR_INTR_SYNC_CAUSE, 0xFFFFFFFF); OS_REG_WRITE(ah, AR_INTR_SYNC_ENABLE, AR_INTR_SYNC_DEFAULT); OS_REG_WRITE(ah, AR_INTR_SYNC_MASK, 0); } #endif /* Enable bus errors that are OR'd to set the HIUERR bit */ #if 0 OS_REG_WRITE(ah, AR_IMR_S2, OS_REG_READ(ah, AR_IMR_S2) | AR_IMR_S2_GTT | AR_IMR_S2_CST); #endif } static void ar5416InitQoS(struct ath_hal *ah) { /* QoS support */ OS_REG_WRITE(ah, AR_QOS_CONTROL, 0x100aa); /* XXX magic */ OS_REG_WRITE(ah, AR_QOS_SELECT, 0x3210); /* XXX magic */ /* Turn on NOACK Support for QoS packets */ OS_REG_WRITE(ah, AR_NOACK, SM(2, AR_NOACK_2BIT_VALUE) | SM(5, AR_NOACK_BIT_OFFSET) | SM(0, AR_NOACK_BYTE_OFFSET)); /* * initialize TXOP for all TIDs */ OS_REG_WRITE(ah, AR_TXOP_X, AR_TXOP_X_VAL); OS_REG_WRITE(ah, AR_TXOP_0_3, 0xFFFFFFFF); OS_REG_WRITE(ah, AR_TXOP_4_7, 0xFFFFFFFF); OS_REG_WRITE(ah, AR_TXOP_8_11, 0xFFFFFFFF); OS_REG_WRITE(ah, AR_TXOP_12_15, 0xFFFFFFFF); } static void ar5416InitUserSettings(struct ath_hal *ah) { struct ath_hal_5212 *ahp = AH5212(ah); /* Restore user-specified settings */ if (ahp->ah_miscMode != 0) OS_REG_WRITE(ah, AR_MISC_MODE, OS_REG_READ(ah, AR_MISC_MODE) | ahp->ah_miscMode); if (ahp->ah_sifstime != (u_int) -1) ar5212SetSifsTime(ah, ahp->ah_sifstime); if (ahp->ah_slottime != (u_int) -1) ar5212SetSlotTime(ah, ahp->ah_slottime); if (ahp->ah_acktimeout != (u_int) -1) ar5212SetAckTimeout(ah, ahp->ah_acktimeout); if (ahp->ah_ctstimeout != (u_int) -1) ar5212SetCTSTimeout(ah, ahp->ah_ctstimeout); if (AH_PRIVATE(ah)->ah_diagreg != 0) OS_REG_WRITE(ah, AR_DIAG_SW, AH_PRIVATE(ah)->ah_diagreg); if (AH5416(ah)->ah_globaltxtimeout != (u_int) -1) ar5416SetGlobalTxTimeout(ah, AH5416(ah)->ah_globaltxtimeout); } static void ar5416SetRfMode(struct ath_hal *ah, const struct ieee80211_channel *chan) { uint32_t rfMode; if (chan == AH_NULL) return; /* treat channel B as channel G , no B mode suport in owl */ rfMode = IEEE80211_IS_CHAN_CCK(chan) ? AR_PHY_MODE_DYNAMIC : AR_PHY_MODE_OFDM; if (AR_SREV_MERLIN_20(ah) && IS_5GHZ_FAST_CLOCK_EN(ah, chan)) { /* phy mode bits for 5GHz channels require Fast Clock */ rfMode |= AR_PHY_MODE_DYNAMIC | AR_PHY_MODE_DYN_CCK_DISABLE; } else if (!AR_SREV_MERLIN_10_OR_LATER(ah)) { rfMode |= IEEE80211_IS_CHAN_5GHZ(chan) ? AR_PHY_MODE_RF5GHZ : AR_PHY_MODE_RF2GHZ; } OS_REG_WRITE(ah, AR_PHY_MODE, rfMode); } /* * Places the hardware into reset and then pulls it out of reset */ HAL_BOOL ar5416ChipReset(struct ath_hal *ah, const struct ieee80211_channel *chan) { OS_MARK(ah, AH_MARK_CHIPRESET, chan ? chan->ic_freq : 0); /* * Warm reset is optimistic for open-loop TX power control. */ if (AR_SREV_MERLIN(ah) && ath_hal_eepromGetFlag(ah, AR_EEP_OL_PWRCTRL)) { if (!ar5416SetResetReg(ah, HAL_RESET_POWER_ON)) return AH_FALSE; } else if (ah->ah_config.ah_force_full_reset) { if (!ar5416SetResetReg(ah, HAL_RESET_POWER_ON)) return AH_FALSE; } else { if (!ar5416SetResetReg(ah, HAL_RESET_WARM)) return AH_FALSE; } /* Bring out of sleep mode (AGAIN) */ if (!ar5416SetPowerMode(ah, HAL_PM_AWAKE, AH_TRUE)) return AH_FALSE; #ifdef notyet ahp->ah_chipFullSleep = AH_FALSE; #endif AH5416(ah)->ah_initPLL(ah, chan); /* * Perform warm reset before the mode/PLL/turbo registers * are changed in order to deactivate the radio. Mode changes * with an active radio can result in corrupted shifts to the * radio device. */ ar5416SetRfMode(ah, chan); return AH_TRUE; } /* * Delta slope coefficient computation. * Required for OFDM operation. */ static void ar5416GetDeltaSlopeValues(struct ath_hal *ah, uint32_t coef_scaled, uint32_t *coef_mantissa, uint32_t *coef_exponent) { #define COEF_SCALE_S 24 uint32_t coef_exp, coef_man; /* * ALGO -> coef_exp = 14-floor(log2(coef)); * floor(log2(x)) is the highest set bit position */ for (coef_exp = 31; coef_exp > 0; coef_exp--) if ((coef_scaled >> coef_exp) & 0x1) break; /* A coef_exp of 0 is a legal bit position but an unexpected coef_exp */ HALASSERT(coef_exp); coef_exp = 14 - (coef_exp - COEF_SCALE_S); /* * ALGO -> coef_man = floor(coef* 2^coef_exp+0.5); * The coefficient is already shifted up for scaling */ coef_man = coef_scaled + (1 << (COEF_SCALE_S - coef_exp - 1)); *coef_mantissa = coef_man >> (COEF_SCALE_S - coef_exp); *coef_exponent = coef_exp - 16; #undef COEF_SCALE_S } void ar5416SetDeltaSlope(struct ath_hal *ah, const struct ieee80211_channel *chan) { #define INIT_CLOCKMHZSCALED 0x64000000 uint32_t coef_scaled, ds_coef_exp, ds_coef_man; uint32_t clockMhzScaled; CHAN_CENTERS centers; /* half and quarter rate can divide the scaled clock by 2 or 4 respectively */ /* scale for selected channel bandwidth */ clockMhzScaled = INIT_CLOCKMHZSCALED; if (IEEE80211_IS_CHAN_TURBO(chan)) clockMhzScaled <<= 1; else if (IEEE80211_IS_CHAN_HALF(chan)) clockMhzScaled >>= 1; else if (IEEE80211_IS_CHAN_QUARTER(chan)) clockMhzScaled >>= 2; /* * ALGO -> coef = 1e8/fcarrier*fclock/40; * scaled coef to provide precision for this floating calculation */ ar5416GetChannelCenters(ah, chan, ¢ers); coef_scaled = clockMhzScaled / centers.synth_center; ar5416GetDeltaSlopeValues(ah, coef_scaled, &ds_coef_man, &ds_coef_exp); OS_REG_RMW_FIELD(ah, AR_PHY_TIMING3, AR_PHY_TIMING3_DSC_MAN, ds_coef_man); OS_REG_RMW_FIELD(ah, AR_PHY_TIMING3, AR_PHY_TIMING3_DSC_EXP, ds_coef_exp); /* * For Short GI, * scaled coeff is 9/10 that of normal coeff */ coef_scaled = (9 * coef_scaled)/10; ar5416GetDeltaSlopeValues(ah, coef_scaled, &ds_coef_man, &ds_coef_exp); /* for short gi */ OS_REG_RMW_FIELD(ah, AR_PHY_HALFGI, AR_PHY_HALFGI_DSC_MAN, ds_coef_man); OS_REG_RMW_FIELD(ah, AR_PHY_HALFGI, AR_PHY_HALFGI_DSC_EXP, ds_coef_exp); #undef INIT_CLOCKMHZSCALED } /* * Set a limit on the overall output power. Used for dynamic * transmit power control and the like. * * NB: limit is in units of 0.5 dbM. */ HAL_BOOL ar5416SetTxPowerLimit(struct ath_hal *ah, uint32_t limit) { uint16_t dummyXpdGains[2]; AH_PRIVATE(ah)->ah_powerLimit = AH_MIN(limit, MAX_RATE_POWER); return ah->ah_setTxPower(ah, AH_PRIVATE(ah)->ah_curchan, dummyXpdGains); } HAL_BOOL ar5416GetChipPowerLimits(struct ath_hal *ah, struct ieee80211_channel *chan) { struct ath_hal_5212 *ahp = AH5212(ah); int16_t minPower, maxPower; /* * Get Pier table max and min powers. */ if (ahp->ah_rfHal->getChannelMaxMinPower(ah, chan, &maxPower, &minPower)) { /* NB: rf code returns 1/4 dBm units, convert */ chan->ic_maxpower = maxPower / 2; chan->ic_minpower = minPower / 2; } else { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: no min/max power for %u/0x%x\n", __func__, chan->ic_freq, chan->ic_flags); chan->ic_maxpower = AR5416_MAX_RATE_POWER; chan->ic_minpower = 0; } HALDEBUG(ah, HAL_DEBUG_RESET, "Chan %d: MaxPow = %d MinPow = %d\n", chan->ic_freq, chan->ic_maxpower, chan->ic_minpower); return AH_TRUE; } /************************************************************** * ar5416WriteTxPowerRateRegisters * * Write the TX power rate registers from the raw values given * in ratesArray[]. * * The CCK and HT40 rate registers are only written if needed. * HT20 and 11g/11a OFDM rate registers are always written. * * The values written are raw values which should be written * to the registers - so it's up to the caller to pre-adjust * them (eg CCK power offset value, or Merlin TX power offset, * etc.) */ void ar5416WriteTxPowerRateRegisters(struct ath_hal *ah, const struct ieee80211_channel *chan, const int16_t ratesArray[]) { #define POW_SM(_r, _s) (((_r) & 0x3f) << (_s)) /* Write the OFDM power per rate set */ OS_REG_WRITE(ah, AR_PHY_POWER_TX_RATE1, POW_SM(ratesArray[rate18mb], 24) | POW_SM(ratesArray[rate12mb], 16) | POW_SM(ratesArray[rate9mb], 8) | POW_SM(ratesArray[rate6mb], 0) ); OS_REG_WRITE(ah, AR_PHY_POWER_TX_RATE2, POW_SM(ratesArray[rate54mb], 24) | POW_SM(ratesArray[rate48mb], 16) | POW_SM(ratesArray[rate36mb], 8) | POW_SM(ratesArray[rate24mb], 0) ); if (IEEE80211_IS_CHAN_2GHZ(chan)) { /* Write the CCK power per rate set */ OS_REG_WRITE(ah, AR_PHY_POWER_TX_RATE3, POW_SM(ratesArray[rate2s], 24) | POW_SM(ratesArray[rate2l], 16) | POW_SM(ratesArray[rateXr], 8) /* XR target power */ | POW_SM(ratesArray[rate1l], 0) ); OS_REG_WRITE(ah, AR_PHY_POWER_TX_RATE4, POW_SM(ratesArray[rate11s], 24) | POW_SM(ratesArray[rate11l], 16) | POW_SM(ratesArray[rate5_5s], 8) | POW_SM(ratesArray[rate5_5l], 0) ); HALDEBUG(ah, HAL_DEBUG_RESET, "%s AR_PHY_POWER_TX_RATE3=0x%x AR_PHY_POWER_TX_RATE4=0x%x\n", __func__, OS_REG_READ(ah,AR_PHY_POWER_TX_RATE3), OS_REG_READ(ah,AR_PHY_POWER_TX_RATE4)); } /* Write the HT20 power per rate set */ OS_REG_WRITE(ah, AR_PHY_POWER_TX_RATE5, POW_SM(ratesArray[rateHt20_3], 24) | POW_SM(ratesArray[rateHt20_2], 16) | POW_SM(ratesArray[rateHt20_1], 8) | POW_SM(ratesArray[rateHt20_0], 0) ); OS_REG_WRITE(ah, AR_PHY_POWER_TX_RATE6, POW_SM(ratesArray[rateHt20_7], 24) | POW_SM(ratesArray[rateHt20_6], 16) | POW_SM(ratesArray[rateHt20_5], 8) | POW_SM(ratesArray[rateHt20_4], 0) ); if (IEEE80211_IS_CHAN_HT40(chan)) { /* Write the HT40 power per rate set */ OS_REG_WRITE(ah, AR_PHY_POWER_TX_RATE7, POW_SM(ratesArray[rateHt40_3], 24) | POW_SM(ratesArray[rateHt40_2], 16) | POW_SM(ratesArray[rateHt40_1], 8) | POW_SM(ratesArray[rateHt40_0], 0) ); OS_REG_WRITE(ah, AR_PHY_POWER_TX_RATE8, POW_SM(ratesArray[rateHt40_7], 24) | POW_SM(ratesArray[rateHt40_6], 16) | POW_SM(ratesArray[rateHt40_5], 8) | POW_SM(ratesArray[rateHt40_4], 0) ); /* Write the Dup/Ext 40 power per rate set */ OS_REG_WRITE(ah, AR_PHY_POWER_TX_RATE9, POW_SM(ratesArray[rateExtOfdm], 24) | POW_SM(ratesArray[rateExtCck], 16) | POW_SM(ratesArray[rateDupOfdm], 8) | POW_SM(ratesArray[rateDupCck], 0) ); } /* * Set max power to 30 dBm and, optionally, * enable TPC in tx descriptors. */ OS_REG_WRITE(ah, AR_PHY_POWER_TX_RATE_MAX, MAX_RATE_POWER | (AH5212(ah)->ah_tpcEnabled ? AR_PHY_POWER_TX_RATE_MAX_TPC_ENABLE : 0)); #undef POW_SM } /************************************************************** * ar5416SetTransmitPower * * Set the transmit power in the baseband for the given * operating channel and mode. */ HAL_BOOL ar5416SetTransmitPower(struct ath_hal *ah, const struct ieee80211_channel *chan, uint16_t *rfXpdGain) { #define N(a) (sizeof (a) / sizeof (a[0])) #define POW_SM(_r, _s) (((_r) & 0x3f) << (_s)) MODAL_EEP_HEADER *pModal; struct ath_hal_5212 *ahp = AH5212(ah); int16_t txPowerIndexOffset = 0; int i; uint16_t cfgCtl; uint16_t powerLimit; uint16_t twiceAntennaReduction; uint16_t twiceMaxRegulatoryPower; int16_t maxPower; HAL_EEPROM_v14 *ee = AH_PRIVATE(ah)->ah_eeprom; struct ar5416eeprom *pEepData = &ee->ee_base; HALASSERT(AH_PRIVATE(ah)->ah_eeversion >= AR_EEPROM_VER14_1); /* * Default to 2, is overridden based on the EEPROM version / value. */ AH5416(ah)->ah_ht40PowerIncForPdadc = 2; /* Setup info for the actual eeprom */ OS_MEMZERO(AH5416(ah)->ah_ratesArray, sizeof(AH5416(ah)->ah_ratesArray)); cfgCtl = ath_hal_getctl(ah, chan); powerLimit = chan->ic_maxregpower * 2; twiceAntennaReduction = chan->ic_maxantgain; twiceMaxRegulatoryPower = AH_MIN(MAX_RATE_POWER, AH_PRIVATE(ah)->ah_powerLimit); pModal = &pEepData->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)]; HALDEBUG(ah, HAL_DEBUG_RESET, "%s Channel=%u CfgCtl=%u\n", __func__,chan->ic_freq, cfgCtl ); if (IS_EEP_MINOR_V2(ah)) { AH5416(ah)->ah_ht40PowerIncForPdadc = pModal->ht40PowerIncForPdadc; } if (!ar5416SetPowerPerRateTable(ah, pEepData, chan, &AH5416(ah)->ah_ratesArray[0], cfgCtl, twiceAntennaReduction, twiceMaxRegulatoryPower, powerLimit)) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: unable to set tx power per rate table\n", __func__); return AH_FALSE; } if (!AH5416(ah)->ah_setPowerCalTable(ah, pEepData, chan, &txPowerIndexOffset)) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: unable to set power table\n", __func__); return AH_FALSE; } maxPower = AH_MAX(AH5416(ah)->ah_ratesArray[rate6mb], AH5416(ah)->ah_ratesArray[rateHt20_0]); if (IEEE80211_IS_CHAN_2GHZ(chan)) { maxPower = AH_MAX(maxPower, AH5416(ah)->ah_ratesArray[rate1l]); } if (IEEE80211_IS_CHAN_HT40(chan)) { maxPower = AH_MAX(maxPower, AH5416(ah)->ah_ratesArray[rateHt40_0]); } ahp->ah_tx6PowerInHalfDbm = maxPower; AH_PRIVATE(ah)->ah_maxPowerLevel = maxPower; ahp->ah_txPowerIndexOffset = txPowerIndexOffset; /* * txPowerIndexOffset is set by the SetPowerTable() call - * adjust the rate table (0 offset if rates EEPROM not loaded) */ for (i = 0; i < N(AH5416(ah)->ah_ratesArray); i++) { AH5416(ah)->ah_ratesArray[i] = (int16_t)(txPowerIndexOffset + AH5416(ah)->ah_ratesArray[i]); if (AH5416(ah)->ah_ratesArray[i] > AR5416_MAX_RATE_POWER) AH5416(ah)->ah_ratesArray[i] = AR5416_MAX_RATE_POWER; } #ifdef AH_EEPROM_DUMP /* * Dump the rate array whilst it represents the intended dBm*2 * values versus what's being adjusted before being programmed * in. Keep this in mind if you code up this function and enable * this debugging; the values won't necessarily be what's being * programmed into the hardware. */ ar5416PrintPowerPerRate(ah, AH5416(ah)->ah_ratesArray); #endif /* * Merlin and later have a power offset, so subtract * pwr_table_offset * 2 from each value. The default * power offset is -5 dBm - ie, a register value of 0 * equates to a TX power of -5 dBm. */ if (AR_SREV_MERLIN_20_OR_LATER(ah)) { int8_t pwr_table_offset; (void) ath_hal_eepromGet(ah, AR_EEP_PWR_TABLE_OFFSET, &pwr_table_offset); /* Underflow power gets clamped at raw value 0 */ /* Overflow power gets camped at AR5416_MAX_RATE_POWER */ for (i = 0; i < N(AH5416(ah)->ah_ratesArray); i++) { /* * + pwr_table_offset is in dBm * + ratesArray is in 1/2 dBm */ AH5416(ah)->ah_ratesArray[i] -= (pwr_table_offset * 2); if (AH5416(ah)->ah_ratesArray[i] < 0) AH5416(ah)->ah_ratesArray[i] = 0; else if (AH5416(ah)->ah_ratesArray[i] > AR5416_MAX_RATE_POWER) AH5416(ah)->ah_ratesArray[i] = AR5416_MAX_RATE_POWER; } } /* * Adjust rates for OLC where needed * * The following CCK rates need adjusting when doing 2.4ghz * CCK transmission. * * + rate2s, rate2l, rate1l, rate11s, rate11l, rate5_5s, rate5_5l * + rateExtCck, rateDupCck * * They're adjusted here regardless. The hardware then gets * programmed as needed. 5GHz operation doesn't program in CCK * rates for legacy mode but they seem to be initialised for * HT40 regardless of channel type. */ if (AR_SREV_MERLIN_20_OR_LATER(ah) && ath_hal_eepromGetFlag(ah, AR_EEP_OL_PWRCTRL)) { int adj[] = { rate2s, rate2l, rate1l, rate11s, rate11l, rate5_5s, rate5_5l, rateExtCck, rateDupCck }; int cck_ofdm_delta = 2; int i; for (i = 0; i < N(adj); i++) { AH5416(ah)->ah_ratesArray[adj[i]] -= cck_ofdm_delta; if (AH5416(ah)->ah_ratesArray[adj[i]] < 0) AH5416(ah)->ah_ratesArray[adj[i]] = 0; } } /* * Adjust the HT40 power to meet the correct target TX power * for 40MHz mode, based on TX power curves that are established * for 20MHz mode. * * XXX handle overflow/too high power level? */ if (IEEE80211_IS_CHAN_HT40(chan)) { AH5416(ah)->ah_ratesArray[rateHt40_0] += AH5416(ah)->ah_ht40PowerIncForPdadc; AH5416(ah)->ah_ratesArray[rateHt40_1] += AH5416(ah)->ah_ht40PowerIncForPdadc; AH5416(ah)->ah_ratesArray[rateHt40_2] += AH5416(ah)->ah_ht40PowerIncForPdadc; AH5416(ah)->ah_ratesArray[rateHt40_3] += AH5416(ah)->ah_ht40PowerIncForPdadc; AH5416(ah)->ah_ratesArray[rateHt40_4] += AH5416(ah)->ah_ht40PowerIncForPdadc; AH5416(ah)->ah_ratesArray[rateHt40_5] += AH5416(ah)->ah_ht40PowerIncForPdadc; AH5416(ah)->ah_ratesArray[rateHt40_6] += AH5416(ah)->ah_ht40PowerIncForPdadc; AH5416(ah)->ah_ratesArray[rateHt40_7] += AH5416(ah)->ah_ht40PowerIncForPdadc; } /* Write the TX power rate registers */ ar5416WriteTxPowerRateRegisters(ah, chan, AH5416(ah)->ah_ratesArray); /* Write the Power subtraction for dynamic chain changing, for per-packet powertx */ OS_REG_WRITE(ah, AR_PHY_POWER_TX_SUB, POW_SM(pModal->pwrDecreaseFor3Chain, 6) | POW_SM(pModal->pwrDecreaseFor2Chain, 0) ); return AH_TRUE; #undef POW_SM #undef N } /* * Exported call to check for a recent gain reading and return * the current state of the thermal calibration gain engine. */ HAL_RFGAIN ar5416GetRfgain(struct ath_hal *ah) { return (HAL_RFGAIN_INACTIVE); } /* * Places all of hardware into reset */ HAL_BOOL ar5416Disable(struct ath_hal *ah) { if (!ar5416SetPowerMode(ah, HAL_PM_AWAKE, AH_TRUE)) return AH_FALSE; if (! ar5416SetResetReg(ah, HAL_RESET_COLD)) return AH_FALSE; AH5416(ah)->ah_initPLL(ah, AH_NULL); return (AH_TRUE); } /* * Places the PHY and Radio chips into reset. A full reset * must be called to leave this state. The PCI/MAC/PCU are * not placed into reset as we must receive interrupt to * re-enable the hardware. */ HAL_BOOL ar5416PhyDisable(struct ath_hal *ah) { if (! ar5416SetResetReg(ah, HAL_RESET_WARM)) return AH_FALSE; AH5416(ah)->ah_initPLL(ah, AH_NULL); return (AH_TRUE); } /* * Write the given reset bit mask into the reset register */ HAL_BOOL ar5416SetResetReg(struct ath_hal *ah, uint32_t type) { /* * Set force wake */ OS_REG_WRITE(ah, AR_RTC_FORCE_WAKE, AR_RTC_FORCE_WAKE_EN | AR_RTC_FORCE_WAKE_ON_INT); switch (type) { case HAL_RESET_POWER_ON: return ar5416SetResetPowerOn(ah); case HAL_RESET_WARM: case HAL_RESET_COLD: return ar5416SetReset(ah, type); default: HALASSERT(AH_FALSE); return AH_FALSE; } } static HAL_BOOL ar5416SetResetPowerOn(struct ath_hal *ah) { /* Power On Reset (Hard Reset) */ /* * Set force wake * * If the MAC was running, previously calling * reset will wake up the MAC but it may go back to sleep * before we can start polling. * Set force wake stops that * This must be called before initiating a hard reset. */ OS_REG_WRITE(ah, AR_RTC_FORCE_WAKE, AR_RTC_FORCE_WAKE_EN | AR_RTC_FORCE_WAKE_ON_INT); /* * PowerOn reset can be used in open loop power control or failure recovery. * If we do RTC reset while DMA is still running, hardware may corrupt memory. * Therefore, we need to reset AHB first to stop DMA. */ if (! AR_SREV_HOWL(ah)) OS_REG_WRITE(ah, AR_RC, AR_RC_AHB); /* * RTC reset and clear */ OS_REG_WRITE(ah, AR_RTC_RESET, 0); OS_DELAY(20); if (! AR_SREV_HOWL(ah)) OS_REG_WRITE(ah, AR_RC, 0); OS_REG_WRITE(ah, AR_RTC_RESET, 1); /* * Poll till RTC is ON */ if (!ath_hal_wait(ah, AR_RTC_STATUS, AR_RTC_PM_STATUS_M, AR_RTC_STATUS_ON)) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: RTC not waking up\n", __func__); return AH_FALSE; } return ar5416SetReset(ah, HAL_RESET_COLD); } static HAL_BOOL ar5416SetReset(struct ath_hal *ah, int type) { uint32_t tmpReg, mask; uint32_t rst_flags; #ifdef AH_SUPPORT_AR9130 /* Because of the AR9130 specific registers */ if (AR_SREV_HOWL(ah)) { HALDEBUG(ah, HAL_DEBUG_ANY, "[ath] HOWL: Fiddling with derived clk!\n"); uint32_t val = OS_REG_READ(ah, AR_RTC_DERIVED_CLK); val &= ~AR_RTC_DERIVED_CLK_PERIOD; val |= SM(1, AR_RTC_DERIVED_CLK_PERIOD); OS_REG_WRITE(ah, AR_RTC_DERIVED_CLK, val); (void) OS_REG_READ(ah, AR_RTC_DERIVED_CLK); } #endif /* AH_SUPPORT_AR9130 */ /* * Force wake */ OS_REG_WRITE(ah, AR_RTC_FORCE_WAKE, AR_RTC_FORCE_WAKE_EN | AR_RTC_FORCE_WAKE_ON_INT); #ifdef AH_SUPPORT_AR9130 if (AR_SREV_HOWL(ah)) { rst_flags = AR_RTC_RC_MAC_WARM | AR_RTC_RC_MAC_COLD | AR_RTC_RC_COLD_RESET | AR_RTC_RC_WARM_RESET; } else { #endif /* AH_SUPPORT_AR9130 */ /* * Reset AHB * * (In case the last interrupt source was a bus timeout.) * XXX TODO: this is not the way to do it! It should be recorded * XXX by the interrupt handler and passed _into_ the * XXX reset path routine so this occurs. */ tmpReg = OS_REG_READ(ah, AR_INTR_SYNC_CAUSE); if (tmpReg & (AR_INTR_SYNC_LOCAL_TIMEOUT|AR_INTR_SYNC_RADM_CPL_TIMEOUT)) { OS_REG_WRITE(ah, AR_INTR_SYNC_ENABLE, 0); OS_REG_WRITE(ah, AR_RC, AR_RC_AHB|AR_RC_HOSTIF); } else { OS_REG_WRITE(ah, AR_RC, AR_RC_AHB); } rst_flags = AR_RTC_RC_MAC_WARM; if (type == HAL_RESET_COLD) rst_flags |= AR_RTC_RC_MAC_COLD; #ifdef AH_SUPPORT_AR9130 } #endif /* AH_SUPPORT_AR9130 */ OS_REG_WRITE(ah, AR_RTC_RC, rst_flags); if (AR_SREV_HOWL(ah)) OS_DELAY(10000); else OS_DELAY(100); /* * Clear resets and force wakeup */ OS_REG_WRITE(ah, AR_RTC_RC, 0); if (!ath_hal_wait(ah, AR_RTC_RC, AR_RTC_RC_M, 0)) { HALDEBUG(ah, HAL_DEBUG_ANY, "%s: RTC stuck in MAC reset\n", __func__); return AH_FALSE; } /* Clear AHB reset */ if (! AR_SREV_HOWL(ah)) OS_REG_WRITE(ah, AR_RC, 0); if (AR_SREV_HOWL(ah)) OS_DELAY(50); if (AR_SREV_HOWL(ah)) { uint32_t mask; mask = OS_REG_READ(ah, AR_CFG); if (mask & (AR_CFG_SWRB | AR_CFG_SWTB | AR_CFG_SWRG)) { HALDEBUG(ah, HAL_DEBUG_RESET, "CFG Byte Swap Set 0x%x\n", mask); } else { mask = INIT_CONFIG_STATUS | AR_CFG_SWRB | AR_CFG_SWTB; OS_REG_WRITE(ah, AR_CFG, mask); HALDEBUG(ah, HAL_DEBUG_RESET, "Setting CFG 0x%x\n", OS_REG_READ(ah, AR_CFG)); } } else { if (type == HAL_RESET_COLD) { if (isBigEndian()) { /* * Set CFG, little-endian for descriptor accesses. */ mask = INIT_CONFIG_STATUS | AR_CFG_SWRD; #ifndef AH_NEED_DESC_SWAP mask |= AR_CFG_SWTD; #endif HALDEBUG(ah, HAL_DEBUG_RESET, "%s Applying descriptor swap\n", __func__); OS_REG_WRITE(ah, AR_CFG, mask); } else OS_REG_WRITE(ah, AR_CFG, INIT_CONFIG_STATUS); } } return AH_TRUE; } void ar5416InitChainMasks(struct ath_hal *ah) { int rx_chainmask = AH5416(ah)->ah_rx_chainmask; /* Flip this for this chainmask regardless of chip */ if (rx_chainmask == 0x5) OS_REG_SET_BIT(ah, AR_PHY_ANALOG_SWAP, AR_PHY_SWAP_ALT_CHAIN); /* * Workaround for OWL 1.0 calibration failure; enable multi-chain; * then set true mask after calibration. */ if (IS_5416V1(ah) && (rx_chainmask == 0x5 || rx_chainmask == 0x3)) { OS_REG_WRITE(ah, AR_PHY_RX_CHAINMASK, 0x7); OS_REG_WRITE(ah, AR_PHY_CAL_CHAINMASK, 0x7); } else { OS_REG_WRITE(ah, AR_PHY_RX_CHAINMASK, AH5416(ah)->ah_rx_chainmask); OS_REG_WRITE(ah, AR_PHY_CAL_CHAINMASK, AH5416(ah)->ah_rx_chainmask); } OS_REG_WRITE(ah, AR_SELFGEN_MASK, AH5416(ah)->ah_tx_chainmask); if (AH5416(ah)->ah_tx_chainmask == 0x5) OS_REG_SET_BIT(ah, AR_PHY_ANALOG_SWAP, AR_PHY_SWAP_ALT_CHAIN); if (AR_SREV_HOWL(ah)) { OS_REG_WRITE(ah, AR_PHY_ANALOG_SWAP, OS_REG_READ(ah, AR_PHY_ANALOG_SWAP) | 0x00000001); } } /* * Work-around for Owl 1.0 calibration failure. * * ar5416InitChainMasks sets the RX chainmask to 0x7 if it's Owl 1.0 * due to init calibration failures. ar5416RestoreChainMask restores * these registers to the correct setting. */ void ar5416RestoreChainMask(struct ath_hal *ah) { int rx_chainmask = AH5416(ah)->ah_rx_chainmask; if (IS_5416V1(ah) && (rx_chainmask == 0x5 || rx_chainmask == 0x3)) { OS_REG_WRITE(ah, AR_PHY_RX_CHAINMASK, rx_chainmask); OS_REG_WRITE(ah, AR_PHY_CAL_CHAINMASK, rx_chainmask); } } void ar5416InitPLL(struct ath_hal *ah, const struct ieee80211_channel *chan) { uint32_t pll = AR_RTC_PLL_REFDIV_5 | AR_RTC_PLL_DIV2; if (chan != AH_NULL) { if (IEEE80211_IS_CHAN_HALF(chan)) pll |= SM(0x1, AR_RTC_PLL_CLKSEL); else if (IEEE80211_IS_CHAN_QUARTER(chan)) pll |= SM(0x2, AR_RTC_PLL_CLKSEL); if (IEEE80211_IS_CHAN_5GHZ(chan)) pll |= SM(0xa, AR_RTC_PLL_DIV); else pll |= SM(0xb, AR_RTC_PLL_DIV); } else pll |= SM(0xb, AR_RTC_PLL_DIV); OS_REG_WRITE(ah, AR_RTC_PLL_CONTROL, pll); /* TODO: * For multi-band owl, switch between bands by reiniting the PLL. */ OS_DELAY(RTC_PLL_SETTLE_DELAY); OS_REG_WRITE(ah, AR_RTC_SLEEP_CLK, AR_RTC_SLEEP_DERIVED_CLK); } static void ar5416SetDefGainValues(struct ath_hal *ah, const MODAL_EEP_HEADER *pModal, const struct ar5416eeprom *eep, uint8_t txRxAttenLocal, int regChainOffset, int i) { if (IS_EEP_MINOR_V3(ah)) { txRxAttenLocal = pModal->txRxAttenCh[i]; if (AR_SREV_MERLIN_10_OR_LATER(ah)) { OS_REG_RMW_FIELD(ah, AR_PHY_GAIN_2GHZ + regChainOffset, AR_PHY_GAIN_2GHZ_XATTEN1_MARGIN, pModal->bswMargin[i]); OS_REG_RMW_FIELD(ah, AR_PHY_GAIN_2GHZ + regChainOffset, AR_PHY_GAIN_2GHZ_XATTEN1_DB, pModal->bswAtten[i]); OS_REG_RMW_FIELD(ah, AR_PHY_GAIN_2GHZ + regChainOffset, AR_PHY_GAIN_2GHZ_XATTEN2_MARGIN, pModal->xatten2Margin[i]); OS_REG_RMW_FIELD(ah, AR_PHY_GAIN_2GHZ + regChainOffset, AR_PHY_GAIN_2GHZ_XATTEN2_DB, pModal->xatten2Db[i]); } else { OS_REG_RMW_FIELD(ah, AR_PHY_GAIN_2GHZ + regChainOffset, AR_PHY_GAIN_2GHZ_BSW_MARGIN, pModal->bswMargin[i]); OS_REG_RMW_FIELD(ah, AR_PHY_GAIN_2GHZ + regChainOffset, AR_PHY_GAIN_2GHZ_BSW_ATTEN, pModal->bswAtten[i]); } } if (AR_SREV_MERLIN_10_OR_LATER(ah)) { OS_REG_RMW_FIELD(ah, AR_PHY_RXGAIN + regChainOffset, AR9280_PHY_RXGAIN_TXRX_ATTEN, txRxAttenLocal); OS_REG_RMW_FIELD(ah, AR_PHY_RXGAIN + regChainOffset, AR9280_PHY_RXGAIN_TXRX_MARGIN, pModal->rxTxMarginCh[i]); } else { OS_REG_RMW_FIELD(ah, AR_PHY_RXGAIN + regChainOffset, AR_PHY_RXGAIN_TXRX_ATTEN, txRxAttenLocal); OS_REG_RMW_FIELD(ah, AR_PHY_GAIN_2GHZ + regChainOffset, AR_PHY_GAIN_2GHZ_RXTX_MARGIN, pModal->rxTxMarginCh[i]); } } /* * Get the register chain offset for the given chain. * * Take into account the register chain swapping with AR5416 v2.0. * * XXX make sure that the reg chain swapping is only done for * XXX AR5416 v2.0 or greater, and not later chips? */ int ar5416GetRegChainOffset(struct ath_hal *ah, int i) { int regChainOffset; if (AR_SREV_5416_V20_OR_LATER(ah) && (AH5416(ah)->ah_rx_chainmask == 0x5 || AH5416(ah)->ah_tx_chainmask == 0x5) && (i != 0)) { /* Regs are swapped from chain 2 to 1 for 5416 2_0 with * only chains 0 and 2 populated */ regChainOffset = (i == 1) ? 0x2000 : 0x1000; } else { regChainOffset = i * 0x1000; } return regChainOffset; } /* * Read EEPROM header info and program the device for correct operation * given the channel value. */ HAL_BOOL ar5416SetBoardValues(struct ath_hal *ah, const struct ieee80211_channel *chan) { const HAL_EEPROM_v14 *ee = AH_PRIVATE(ah)->ah_eeprom; const struct ar5416eeprom *eep = &ee->ee_base; const MODAL_EEP_HEADER *pModal; int i, regChainOffset; uint8_t txRxAttenLocal; /* workaround for eeprom versions <= 14.2 */ HALASSERT(AH_PRIVATE(ah)->ah_eeversion >= AR_EEPROM_VER14_1); pModal = &eep->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)]; /* NB: workaround for eeprom versions <= 14.2 */ txRxAttenLocal = IEEE80211_IS_CHAN_2GHZ(chan) ? 23 : 44; OS_REG_WRITE(ah, AR_PHY_SWITCH_COM, pModal->antCtrlCommon); for (i = 0; i < AR5416_MAX_CHAINS; i++) { if (AR_SREV_MERLIN(ah)) { if (i >= 2) break; } regChainOffset = ar5416GetRegChainOffset(ah, i); OS_REG_WRITE(ah, AR_PHY_SWITCH_CHAIN_0 + regChainOffset, pModal->antCtrlChain[i]); OS_REG_WRITE(ah, AR_PHY_TIMING_CTRL4 + regChainOffset, (OS_REG_READ(ah, AR_PHY_TIMING_CTRL4 + regChainOffset) & ~(AR_PHY_TIMING_CTRL4_IQCORR_Q_Q_COFF | AR_PHY_TIMING_CTRL4_IQCORR_Q_I_COFF)) | SM(pModal->iqCalICh[i], AR_PHY_TIMING_CTRL4_IQCORR_Q_I_COFF) | SM(pModal->iqCalQCh[i], AR_PHY_TIMING_CTRL4_IQCORR_Q_Q_COFF)); /* * Large signal upgrade, * If 14.3 or later EEPROM, use * txRxAttenLocal = pModal->txRxAttenCh[i] * else txRxAttenLocal is fixed value above. */ if ((i == 0) || AR_SREV_5416_V20_OR_LATER(ah)) ar5416SetDefGainValues(ah, pModal, eep, txRxAttenLocal, regChainOffset, i); } if (AR_SREV_MERLIN_10_OR_LATER(ah)) { if (IEEE80211_IS_CHAN_2GHZ(chan)) { OS_A_REG_RMW_FIELD(ah, AR_AN_RF2G1_CH0, AR_AN_RF2G1_CH0_OB, pModal->ob); OS_A_REG_RMW_FIELD(ah, AR_AN_RF2G1_CH0, AR_AN_RF2G1_CH0_DB, pModal->db); OS_A_REG_RMW_FIELD(ah, AR_AN_RF2G1_CH1, AR_AN_RF2G1_CH1_OB, pModal->ob_ch1); OS_A_REG_RMW_FIELD(ah, AR_AN_RF2G1_CH1, AR_AN_RF2G1_CH1_DB, pModal->db_ch1); } else { OS_A_REG_RMW_FIELD(ah, AR_AN_RF5G1_CH0, AR_AN_RF5G1_CH0_OB5, pModal->ob); OS_A_REG_RMW_FIELD(ah, AR_AN_RF5G1_CH0, AR_AN_RF5G1_CH0_DB5, pModal->db); OS_A_REG_RMW_FIELD(ah, AR_AN_RF5G1_CH1, AR_AN_RF5G1_CH1_OB5, pModal->ob_ch1); OS_A_REG_RMW_FIELD(ah, AR_AN_RF5G1_CH1, AR_AN_RF5G1_CH1_DB5, pModal->db_ch1); } OS_A_REG_RMW_FIELD(ah, AR_AN_TOP2, AR_AN_TOP2_XPABIAS_LVL, pModal->xpaBiasLvl); OS_A_REG_RMW_FIELD(ah, AR_AN_TOP2, AR_AN_TOP2_LOCALBIAS, !!(pModal->flagBits & AR5416_EEP_FLAG_LOCALBIAS)); OS_A_REG_RMW_FIELD(ah, AR_PHY_XPA_CFG, AR_PHY_FORCE_XPA_CFG, !!(pModal->flagBits & AR5416_EEP_FLAG_FORCEXPAON)); } OS_REG_RMW_FIELD(ah, AR_PHY_SETTLING, AR_PHY_SETTLING_SWITCH, pModal->switchSettling); OS_REG_RMW_FIELD(ah, AR_PHY_DESIRED_SZ, AR_PHY_DESIRED_SZ_ADC, pModal->adcDesiredSize); if (! AR_SREV_MERLIN_10_OR_LATER(ah)) OS_REG_RMW_FIELD(ah, AR_PHY_DESIRED_SZ, AR_PHY_DESIRED_SZ_PGA, pModal->pgaDesiredSize); OS_REG_WRITE(ah, AR_PHY_RF_CTL4, SM(pModal->txEndToXpaOff, AR_PHY_RF_CTL4_TX_END_XPAA_OFF) | SM(pModal->txEndToXpaOff, AR_PHY_RF_CTL4_TX_END_XPAB_OFF) | SM(pModal->txFrameToXpaOn, AR_PHY_RF_CTL4_FRAME_XPAA_ON) | SM(pModal->txFrameToXpaOn, AR_PHY_RF_CTL4_FRAME_XPAB_ON)); OS_REG_RMW_FIELD(ah, AR_PHY_RF_CTL3, AR_PHY_TX_END_TO_A2_RX_ON, pModal->txEndToRxOn); if (AR_SREV_MERLIN_10_OR_LATER(ah)) { OS_REG_RMW_FIELD(ah, AR_PHY_CCA, AR9280_PHY_CCA_THRESH62, pModal->thresh62); OS_REG_RMW_FIELD(ah, AR_PHY_EXT_CCA0, AR_PHY_EXT_CCA0_THRESH62, pModal->thresh62); } else { OS_REG_RMW_FIELD(ah, AR_PHY_CCA, AR_PHY_CCA_THRESH62, pModal->thresh62); OS_REG_RMW_FIELD(ah, AR_PHY_EXT_CCA, AR_PHY_EXT_CCA_THRESH62, pModal->thresh62); } /* Minor Version Specific application */ if (IS_EEP_MINOR_V2(ah)) { OS_REG_RMW_FIELD(ah, AR_PHY_RF_CTL2, AR_PHY_TX_FRAME_TO_DATA_START, pModal->txFrameToDataStart); OS_REG_RMW_FIELD(ah, AR_PHY_RF_CTL2, AR_PHY_TX_FRAME_TO_PA_ON, pModal->txFrameToPaOn); } if (IS_EEP_MINOR_V3(ah) && IEEE80211_IS_CHAN_HT40(chan)) /* Overwrite switch settling with HT40 value */ OS_REG_RMW_FIELD(ah, AR_PHY_SETTLING, AR_PHY_SETTLING_SWITCH, pModal->swSettleHt40); if (AR_SREV_MERLIN_20_OR_LATER(ah) && EEP_MINOR(ah) >= AR5416_EEP_MINOR_VER_19) OS_REG_RMW_FIELD(ah, AR_PHY_CCK_TX_CTRL, AR_PHY_CCK_TX_CTRL_TX_DAC_SCALE_CCK, pModal->miscBits); if (AR_SREV_MERLIN_20(ah) && EEP_MINOR(ah) >= AR5416_EEP_MINOR_VER_20) { if (IEEE80211_IS_CHAN_2GHZ(chan)) OS_A_REG_RMW_FIELD(ah, AR_AN_TOP1, AR_AN_TOP1_DACIPMODE, eep->baseEepHeader.dacLpMode); else if (eep->baseEepHeader.dacHiPwrMode_5G) OS_A_REG_RMW_FIELD(ah, AR_AN_TOP1, AR_AN_TOP1_DACIPMODE, 0); else OS_A_REG_RMW_FIELD(ah, AR_AN_TOP1, AR_AN_TOP1_DACIPMODE, eep->baseEepHeader.dacLpMode); OS_DELAY(100); OS_REG_RMW_FIELD(ah, AR_PHY_FRAME_CTL, AR_PHY_FRAME_CTL_TX_CLIP, pModal->miscBits >> 2); OS_REG_RMW_FIELD(ah, AR_PHY_TX_PWRCTRL9, AR_PHY_TX_DESIRED_SCALE_CCK, eep->baseEepHeader.desiredScaleCCK); } return (AH_TRUE); } /* * Helper functions common for AP/CB/XB */ /* * Set the target power array "ratesArray" from the * given set of target powers. * * This is used by the various chipset/EEPROM TX power * setup routines. */ void ar5416SetRatesArrayFromTargetPower(struct ath_hal *ah, const struct ieee80211_channel *chan, int16_t *ratesArray, const CAL_TARGET_POWER_LEG *targetPowerCck, const CAL_TARGET_POWER_LEG *targetPowerCckExt, const CAL_TARGET_POWER_LEG *targetPowerOfdm, const CAL_TARGET_POWER_LEG *targetPowerOfdmExt, const CAL_TARGET_POWER_HT *targetPowerHt20, const CAL_TARGET_POWER_HT *targetPowerHt40) { #define N(a) (sizeof(a)/sizeof(a[0])) int i; /* Blank the rates array, to be consistent */ for (i = 0; i < Ar5416RateSize; i++) ratesArray[i] = 0; /* Set rates Array from collected data */ ratesArray[rate6mb] = ratesArray[rate9mb] = ratesArray[rate12mb] = ratesArray[rate18mb] = ratesArray[rate24mb] = targetPowerOfdm->tPow2x[0]; ratesArray[rate36mb] = targetPowerOfdm->tPow2x[1]; ratesArray[rate48mb] = targetPowerOfdm->tPow2x[2]; ratesArray[rate54mb] = targetPowerOfdm->tPow2x[3]; ratesArray[rateXr] = targetPowerOfdm->tPow2x[0]; for (i = 0; i < N(targetPowerHt20->tPow2x); i++) { ratesArray[rateHt20_0 + i] = targetPowerHt20->tPow2x[i]; } if (IEEE80211_IS_CHAN_2GHZ(chan)) { ratesArray[rate1l] = targetPowerCck->tPow2x[0]; ratesArray[rate2s] = ratesArray[rate2l] = targetPowerCck->tPow2x[1]; ratesArray[rate5_5s] = ratesArray[rate5_5l] = targetPowerCck->tPow2x[2]; ratesArray[rate11s] = ratesArray[rate11l] = targetPowerCck->tPow2x[3]; } if (IEEE80211_IS_CHAN_HT40(chan)) { for (i = 0; i < N(targetPowerHt40->tPow2x); i++) { ratesArray[rateHt40_0 + i] = targetPowerHt40->tPow2x[i]; } ratesArray[rateDupOfdm] = targetPowerHt40->tPow2x[0]; ratesArray[rateDupCck] = targetPowerHt40->tPow2x[0]; ratesArray[rateExtOfdm] = targetPowerOfdmExt->tPow2x[0]; if (IEEE80211_IS_CHAN_2GHZ(chan)) { ratesArray[rateExtCck] = targetPowerCckExt->tPow2x[0]; } } #undef N } /* * ar5416SetPowerPerRateTable * * Sets the transmit power in the baseband for the given * operating channel and mode. */ static HAL_BOOL ar5416SetPowerPerRateTable(struct ath_hal *ah, struct ar5416eeprom *pEepData, const struct ieee80211_channel *chan, int16_t *ratesArray, uint16_t cfgCtl, uint16_t AntennaReduction, uint16_t twiceMaxRegulatoryPower, uint16_t powerLimit) { #define N(a) (sizeof(a)/sizeof(a[0])) /* Local defines to distinguish between extension and control CTL's */ #define EXT_ADDITIVE (0x8000) #define CTL_11A_EXT (CTL_11A | EXT_ADDITIVE) #define CTL_11G_EXT (CTL_11G | EXT_ADDITIVE) #define CTL_11B_EXT (CTL_11B | EXT_ADDITIVE) uint16_t twiceMaxEdgePower = AR5416_MAX_RATE_POWER; int i; int16_t twiceLargestAntenna; CAL_CTL_DATA *rep; CAL_TARGET_POWER_LEG targetPowerOfdm, targetPowerCck = {0, {0, 0, 0, 0}}; CAL_TARGET_POWER_LEG targetPowerOfdmExt = {0, {0, 0, 0, 0}}, targetPowerCckExt = {0, {0, 0, 0, 0}}; CAL_TARGET_POWER_HT targetPowerHt20, targetPowerHt40 = {0, {0, 0, 0, 0}}; int16_t scaledPower, minCtlPower; #define SUB_NUM_CTL_MODES_AT_5G_40 2 /* excluding HT40, EXT-OFDM */ #define SUB_NUM_CTL_MODES_AT_2G_40 3 /* excluding HT40, EXT-OFDM, EXT-CCK */ static const uint16_t ctlModesFor11a[] = { CTL_11A, CTL_5GHT20, CTL_11A_EXT, CTL_5GHT40 }; static const uint16_t ctlModesFor11g[] = { CTL_11B, CTL_11G, CTL_2GHT20, CTL_11B_EXT, CTL_11G_EXT, CTL_2GHT40 }; const uint16_t *pCtlMode; uint16_t numCtlModes, ctlMode, freq; CHAN_CENTERS centers; ar5416GetChannelCenters(ah, chan, ¢ers); /* Compute TxPower reduction due to Antenna Gain */ twiceLargestAntenna = AH_MAX(AH_MAX( pEepData->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)].antennaGainCh[0], pEepData->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)].antennaGainCh[1]), pEepData->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)].antennaGainCh[2]); #if 0 /* Turn it back on if we need to calculate per chain antenna gain reduction */ /* Use only if the expected gain > 6dbi */ /* Chain 0 is always used */ twiceLargestAntenna = pEepData->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)].antennaGainCh[0]; /* Look at antenna gains of Chains 1 and 2 if the TX mask is set */ if (ahp->ah_tx_chainmask & 0x2) twiceLargestAntenna = AH_MAX(twiceLargestAntenna, pEepData->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)].antennaGainCh[1]); if (ahp->ah_tx_chainmask & 0x4) twiceLargestAntenna = AH_MAX(twiceLargestAntenna, pEepData->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)].antennaGainCh[2]); #endif twiceLargestAntenna = (int16_t)AH_MIN((AntennaReduction) - twiceLargestAntenna, 0); /* XXX setup for 5212 use (really used?) */ ath_hal_eepromSet(ah, IEEE80211_IS_CHAN_2GHZ(chan) ? AR_EEP_ANTGAINMAX_2 : AR_EEP_ANTGAINMAX_5, twiceLargestAntenna); /* * scaledPower is the minimum of the user input power level and * the regulatory allowed power level */ scaledPower = AH_MIN(powerLimit, twiceMaxRegulatoryPower + twiceLargestAntenna); /* Reduce scaled Power by number of chains active to get to per chain tx power level */ /* TODO: better value than these? */ switch (owl_get_ntxchains(AH5416(ah)->ah_tx_chainmask)) { case 1: break; case 2: scaledPower -= pEepData->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)].pwrDecreaseFor2Chain; break; case 3: scaledPower -= pEepData->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)].pwrDecreaseFor3Chain; break; default: return AH_FALSE; /* Unsupported number of chains */ } scaledPower = AH_MAX(0, scaledPower); /* Get target powers from EEPROM - our baseline for TX Power */ if (IEEE80211_IS_CHAN_2GHZ(chan)) { /* Setup for CTL modes */ numCtlModes = N(ctlModesFor11g) - SUB_NUM_CTL_MODES_AT_2G_40; /* CTL_11B, CTL_11G, CTL_2GHT20 */ pCtlMode = ctlModesFor11g; ar5416GetTargetPowersLeg(ah, chan, pEepData->calTargetPowerCck, AR5416_NUM_2G_CCK_TARGET_POWERS, &targetPowerCck, 4, AH_FALSE); ar5416GetTargetPowersLeg(ah, chan, pEepData->calTargetPower2G, AR5416_NUM_2G_20_TARGET_POWERS, &targetPowerOfdm, 4, AH_FALSE); ar5416GetTargetPowers(ah, chan, pEepData->calTargetPower2GHT20, AR5416_NUM_2G_20_TARGET_POWERS, &targetPowerHt20, 8, AH_FALSE); if (IEEE80211_IS_CHAN_HT40(chan)) { numCtlModes = N(ctlModesFor11g); /* All 2G CTL's */ ar5416GetTargetPowers(ah, chan, pEepData->calTargetPower2GHT40, AR5416_NUM_2G_40_TARGET_POWERS, &targetPowerHt40, 8, AH_TRUE); /* Get target powers for extension channels */ ar5416GetTargetPowersLeg(ah, chan, pEepData->calTargetPowerCck, AR5416_NUM_2G_CCK_TARGET_POWERS, &targetPowerCckExt, 4, AH_TRUE); ar5416GetTargetPowersLeg(ah, chan, pEepData->calTargetPower2G, AR5416_NUM_2G_20_TARGET_POWERS, &targetPowerOfdmExt, 4, AH_TRUE); } } else { /* Setup for CTL modes */ numCtlModes = N(ctlModesFor11a) - SUB_NUM_CTL_MODES_AT_5G_40; /* CTL_11A, CTL_5GHT20 */ pCtlMode = ctlModesFor11a; ar5416GetTargetPowersLeg(ah, chan, pEepData->calTargetPower5G, AR5416_NUM_5G_20_TARGET_POWERS, &targetPowerOfdm, 4, AH_FALSE); ar5416GetTargetPowers(ah, chan, pEepData->calTargetPower5GHT20, AR5416_NUM_5G_20_TARGET_POWERS, &targetPowerHt20, 8, AH_FALSE); if (IEEE80211_IS_CHAN_HT40(chan)) { numCtlModes = N(ctlModesFor11a); /* All 5G CTL's */ ar5416GetTargetPowers(ah, chan, pEepData->calTargetPower5GHT40, AR5416_NUM_5G_40_TARGET_POWERS, &targetPowerHt40, 8, AH_TRUE); ar5416GetTargetPowersLeg(ah, chan, pEepData->calTargetPower5G, AR5416_NUM_5G_20_TARGET_POWERS, &targetPowerOfdmExt, 4, AH_TRUE); } } /* * For MIMO, need to apply regulatory caps individually across dynamically * running modes: CCK, OFDM, HT20, HT40 * * The outer loop walks through each possible applicable runtime mode. * The inner loop walks through each ctlIndex entry in EEPROM. * The ctl value is encoded as [7:4] == test group, [3:0] == test mode. * */ for (ctlMode = 0; ctlMode < numCtlModes; ctlMode++) { HAL_BOOL isHt40CtlMode = (pCtlMode[ctlMode] == CTL_5GHT40) || (pCtlMode[ctlMode] == CTL_2GHT40); if (isHt40CtlMode) { freq = centers.ctl_center; } else if (pCtlMode[ctlMode] & EXT_ADDITIVE) { freq = centers.ext_center; } else { freq = centers.ctl_center; } /* walk through each CTL index stored in EEPROM */ for (i = 0; (i < AR5416_NUM_CTLS) && pEepData->ctlIndex[i]; i++) { uint16_t twiceMinEdgePower; /* compare test group from regulatory channel list with test mode from pCtlMode list */ if ((((cfgCtl & ~CTL_MODE_M) | (pCtlMode[ctlMode] & CTL_MODE_M)) == pEepData->ctlIndex[i]) || (((cfgCtl & ~CTL_MODE_M) | (pCtlMode[ctlMode] & CTL_MODE_M)) == ((pEepData->ctlIndex[i] & CTL_MODE_M) | SD_NO_CTL))) { rep = &(pEepData->ctlData[i]); twiceMinEdgePower = ar5416GetMaxEdgePower(freq, rep->ctlEdges[owl_get_ntxchains(AH5416(ah)->ah_tx_chainmask) - 1], IEEE80211_IS_CHAN_2GHZ(chan)); if ((cfgCtl & ~CTL_MODE_M) == SD_NO_CTL) { /* Find the minimum of all CTL edge powers that apply to this channel */ twiceMaxEdgePower = AH_MIN(twiceMaxEdgePower, twiceMinEdgePower); } else { /* specific */ twiceMaxEdgePower = twiceMinEdgePower; break; } } } minCtlPower = (uint8_t)AH_MIN(twiceMaxEdgePower, scaledPower); /* Apply ctl mode to correct target power set */ switch(pCtlMode[ctlMode]) { case CTL_11B: for (i = 0; i < N(targetPowerCck.tPow2x); i++) { targetPowerCck.tPow2x[i] = (uint8_t)AH_MIN(targetPowerCck.tPow2x[i], minCtlPower); } break; case CTL_11A: case CTL_11G: for (i = 0; i < N(targetPowerOfdm.tPow2x); i++) { targetPowerOfdm.tPow2x[i] = (uint8_t)AH_MIN(targetPowerOfdm.tPow2x[i], minCtlPower); } break; case CTL_5GHT20: case CTL_2GHT20: for (i = 0; i < N(targetPowerHt20.tPow2x); i++) { targetPowerHt20.tPow2x[i] = (uint8_t)AH_MIN(targetPowerHt20.tPow2x[i], minCtlPower); } break; case CTL_11B_EXT: targetPowerCckExt.tPow2x[0] = (uint8_t)AH_MIN(targetPowerCckExt.tPow2x[0], minCtlPower); break; case CTL_11A_EXT: case CTL_11G_EXT: targetPowerOfdmExt.tPow2x[0] = (uint8_t)AH_MIN(targetPowerOfdmExt.tPow2x[0], minCtlPower); break; case CTL_5GHT40: case CTL_2GHT40: for (i = 0; i < N(targetPowerHt40.tPow2x); i++) { targetPowerHt40.tPow2x[i] = (uint8_t)AH_MIN(targetPowerHt40.tPow2x[i], minCtlPower); } break; default: return AH_FALSE; break; } } /* end ctl mode checking */ /* Set rates Array from collected data */ ar5416SetRatesArrayFromTargetPower(ah, chan, ratesArray, &targetPowerCck, &targetPowerCckExt, &targetPowerOfdm, &targetPowerOfdmExt, &targetPowerHt20, &targetPowerHt40); return AH_TRUE; #undef EXT_ADDITIVE #undef CTL_11A_EXT #undef CTL_11G_EXT #undef CTL_11B_EXT #undef SUB_NUM_CTL_MODES_AT_5G_40 #undef SUB_NUM_CTL_MODES_AT_2G_40 #undef N } /************************************************************************** * fbin2freq * * Get channel value from binary representation held in eeprom * RETURNS: the frequency in MHz */ static uint16_t fbin2freq(uint8_t fbin, HAL_BOOL is2GHz) { /* * Reserved value 0xFF provides an empty definition both as * an fbin and as a frequency - do not convert */ if (fbin == AR5416_BCHAN_UNUSED) { return fbin; } return (uint16_t)((is2GHz) ? (2300 + fbin) : (4800 + 5 * fbin)); } /* * ar5416GetMaxEdgePower * * Find the maximum conformance test limit for the given channel and CTL info */ uint16_t ar5416GetMaxEdgePower(uint16_t freq, CAL_CTL_EDGES *pRdEdgesPower, HAL_BOOL is2GHz) { uint16_t twiceMaxEdgePower = AR5416_MAX_RATE_POWER; int i; /* Get the edge power */ for (i = 0; (i < AR5416_NUM_BAND_EDGES) && (pRdEdgesPower[i].bChannel != AR5416_BCHAN_UNUSED) ; i++) { /* * If there's an exact channel match or an inband flag set * on the lower channel use the given rdEdgePower */ if (freq == fbin2freq(pRdEdgesPower[i].bChannel, is2GHz)) { twiceMaxEdgePower = MS(pRdEdgesPower[i].tPowerFlag, CAL_CTL_EDGES_POWER); break; } else if ((i > 0) && (freq < fbin2freq(pRdEdgesPower[i].bChannel, is2GHz))) { if (fbin2freq(pRdEdgesPower[i - 1].bChannel, is2GHz) < freq && (pRdEdgesPower[i - 1].tPowerFlag & CAL_CTL_EDGES_FLAG) != 0) { twiceMaxEdgePower = MS(pRdEdgesPower[i - 1].tPowerFlag, CAL_CTL_EDGES_POWER); } /* Leave loop - no more affecting edges possible in this monotonic increasing list */ break; } } HALASSERT(twiceMaxEdgePower > 0); return twiceMaxEdgePower; } /************************************************************** * ar5416GetTargetPowers * * Return the rates of target power for the given target power table * channel, and number of channels */ void ar5416GetTargetPowers(struct ath_hal *ah, const struct ieee80211_channel *chan, CAL_TARGET_POWER_HT *powInfo, uint16_t numChannels, CAL_TARGET_POWER_HT *pNewPower, uint16_t numRates, HAL_BOOL isHt40Target) { uint16_t clo, chi; int i; int matchIndex = -1, lowIndex = -1; uint16_t freq; CHAN_CENTERS centers; ar5416GetChannelCenters(ah, chan, ¢ers); freq = isHt40Target ? centers.synth_center : centers.ctl_center; /* Copy the target powers into the temp channel list */ if (freq <= fbin2freq(powInfo[0].bChannel, IEEE80211_IS_CHAN_2GHZ(chan))) { matchIndex = 0; } else { for (i = 0; (i < numChannels) && (powInfo[i].bChannel != AR5416_BCHAN_UNUSED); i++) { if (freq == fbin2freq(powInfo[i].bChannel, IEEE80211_IS_CHAN_2GHZ(chan))) { matchIndex = i; break; } else if ((freq < fbin2freq(powInfo[i].bChannel, IEEE80211_IS_CHAN_2GHZ(chan))) && (freq > fbin2freq(powInfo[i - 1].bChannel, IEEE80211_IS_CHAN_2GHZ(chan)))) { lowIndex = i - 1; break; } } if ((matchIndex == -1) && (lowIndex == -1)) { HALASSERT(freq > fbin2freq(powInfo[i - 1].bChannel, IEEE80211_IS_CHAN_2GHZ(chan))); matchIndex = i - 1; } } if (matchIndex != -1) { OS_MEMCPY(pNewPower, &powInfo[matchIndex], sizeof(*pNewPower)); } else { HALASSERT(lowIndex != -1); /* * Get the lower and upper channels, target powers, * and interpolate between them. */ clo = fbin2freq(powInfo[lowIndex].bChannel, IEEE80211_IS_CHAN_2GHZ(chan)); chi = fbin2freq(powInfo[lowIndex + 1].bChannel, IEEE80211_IS_CHAN_2GHZ(chan)); for (i = 0; i < numRates; i++) { pNewPower->tPow2x[i] = (uint8_t)ath_ee_interpolate(freq, clo, chi, powInfo[lowIndex].tPow2x[i], powInfo[lowIndex + 1].tPow2x[i]); } } } /************************************************************** * ar5416GetTargetPowersLeg * * Return the four rates of target power for the given target power table * channel, and number of channels */ void ar5416GetTargetPowersLeg(struct ath_hal *ah, const struct ieee80211_channel *chan, CAL_TARGET_POWER_LEG *powInfo, uint16_t numChannels, CAL_TARGET_POWER_LEG *pNewPower, uint16_t numRates, HAL_BOOL isExtTarget) { uint16_t clo, chi; int i; int matchIndex = -1, lowIndex = -1; uint16_t freq; CHAN_CENTERS centers; ar5416GetChannelCenters(ah, chan, ¢ers); freq = (isExtTarget) ? centers.ext_center :centers.ctl_center; /* Copy the target powers into the temp channel list */ if (freq <= fbin2freq(powInfo[0].bChannel, IEEE80211_IS_CHAN_2GHZ(chan))) { matchIndex = 0; } else { for (i = 0; (i < numChannels) && (powInfo[i].bChannel != AR5416_BCHAN_UNUSED); i++) { if (freq == fbin2freq(powInfo[i].bChannel, IEEE80211_IS_CHAN_2GHZ(chan))) { matchIndex = i; break; } else if ((freq < fbin2freq(powInfo[i].bChannel, IEEE80211_IS_CHAN_2GHZ(chan))) && (freq > fbin2freq(powInfo[i - 1].bChannel, IEEE80211_IS_CHAN_2GHZ(chan)))) { lowIndex = i - 1; break; } } if ((matchIndex == -1) && (lowIndex == -1)) { HALASSERT(freq > fbin2freq(powInfo[i - 1].bChannel, IEEE80211_IS_CHAN_2GHZ(chan))); matchIndex = i - 1; } } if (matchIndex != -1) { OS_MEMCPY(pNewPower, &powInfo[matchIndex], sizeof(*pNewPower)); } else { HALASSERT(lowIndex != -1); /* * Get the lower and upper channels, target powers, * and interpolate between them. */ clo = fbin2freq(powInfo[lowIndex].bChannel, IEEE80211_IS_CHAN_2GHZ(chan)); chi = fbin2freq(powInfo[lowIndex + 1].bChannel, IEEE80211_IS_CHAN_2GHZ(chan)); for (i = 0; i < numRates; i++) { pNewPower->tPow2x[i] = (uint8_t)ath_ee_interpolate(freq, clo, chi, powInfo[lowIndex].tPow2x[i], powInfo[lowIndex + 1].tPow2x[i]); } } } /* * Set the gain boundaries for the given radio chain. * * The gain boundaries tell the hardware at what point in the * PDADC array to "switch over" from one PD gain setting * to another. There's also a gain overlap between two * PDADC array gain curves where there's valid PD values * for 2 gain settings. * * The hardware uses the gain overlap and gain boundaries * to determine which gain curve to use for the given * target TX power. */ void ar5416SetGainBoundariesClosedLoop(struct ath_hal *ah, int i, uint16_t pdGainOverlap_t2, uint16_t gainBoundaries[]) { int regChainOffset; regChainOffset = ar5416GetRegChainOffset(ah, i); HALDEBUG(ah, HAL_DEBUG_EEPROM, "%s: chain %d: gainOverlap_t2: %d," " gainBoundaries: %d, %d, %d, %d\n", __func__, i, pdGainOverlap_t2, gainBoundaries[0], gainBoundaries[1], gainBoundaries[2], gainBoundaries[3]); OS_REG_WRITE(ah, AR_PHY_TPCRG5 + regChainOffset, SM(pdGainOverlap_t2, AR_PHY_TPCRG5_PD_GAIN_OVERLAP) | SM(gainBoundaries[0], AR_PHY_TPCRG5_PD_GAIN_BOUNDARY_1) | SM(gainBoundaries[1], AR_PHY_TPCRG5_PD_GAIN_BOUNDARY_2) | SM(gainBoundaries[2], AR_PHY_TPCRG5_PD_GAIN_BOUNDARY_3) | SM(gainBoundaries[3], AR_PHY_TPCRG5_PD_GAIN_BOUNDARY_4)); } /* * Get the gain values and the number of gain levels given * in xpdMask. * * The EEPROM xpdMask determines which power detector gain * levels were used during calibration. Each of these mask * bits maps to a fixed gain level in hardware. */ uint16_t ar5416GetXpdGainValues(struct ath_hal *ah, uint16_t xpdMask, uint16_t xpdGainValues[]) { int i; uint16_t numXpdGain = 0; for (i = 1; i <= AR5416_PD_GAINS_IN_MASK; i++) { if ((xpdMask >> (AR5416_PD_GAINS_IN_MASK - i)) & 1) { if (numXpdGain >= AR5416_NUM_PD_GAINS) { HALASSERT(0); break; } xpdGainValues[numXpdGain] = (uint16_t)(AR5416_PD_GAINS_IN_MASK - i); numXpdGain++; } } return numXpdGain; } /* * Write the detector gain and biases. * * There are four power detector gain levels. The xpdMask in the EEPROM * determines which power detector gain levels have TX power calibration * data associated with them. This function writes the number of * PD gain levels and their values into the hardware. * * This is valid for all TX chains - the calibration data itself however * will likely differ per-chain. */ void ar5416WriteDetectorGainBiases(struct ath_hal *ah, uint16_t numXpdGain, uint16_t xpdGainValues[]) { HALDEBUG(ah, HAL_DEBUG_EEPROM, "%s: numXpdGain: %d," " xpdGainValues: %d, %d, %d\n", __func__, numXpdGain, xpdGainValues[0], xpdGainValues[1], xpdGainValues[2]); OS_REG_WRITE(ah, AR_PHY_TPCRG1, (OS_REG_READ(ah, AR_PHY_TPCRG1) & ~(AR_PHY_TPCRG1_NUM_PD_GAIN | AR_PHY_TPCRG1_PD_GAIN_1 | AR_PHY_TPCRG1_PD_GAIN_2 | AR_PHY_TPCRG1_PD_GAIN_3)) | SM(numXpdGain - 1, AR_PHY_TPCRG1_NUM_PD_GAIN) | SM(xpdGainValues[0], AR_PHY_TPCRG1_PD_GAIN_1 ) | SM(xpdGainValues[1], AR_PHY_TPCRG1_PD_GAIN_2) | SM(xpdGainValues[2], AR_PHY_TPCRG1_PD_GAIN_3)); } /* * Write the PDADC array to the given radio chain i. * * The 32 PDADC registers are written without any care about * their contents - so if various chips treat values as "special", * this routine will not care. */ void ar5416WritePdadcValues(struct ath_hal *ah, int i, uint8_t pdadcValues[]) { int regOffset, regChainOffset; int j; int reg32; regChainOffset = ar5416GetRegChainOffset(ah, i); regOffset = AR_PHY_BASE + (672 << 2) + regChainOffset; for (j = 0; j < 32; j++) { reg32 = ((pdadcValues[4*j + 0] & 0xFF) << 0) | ((pdadcValues[4*j + 1] & 0xFF) << 8) | ((pdadcValues[4*j + 2] & 0xFF) << 16) | ((pdadcValues[4*j + 3] & 0xFF) << 24) ; OS_REG_WRITE(ah, regOffset, reg32); HALDEBUG(ah, HAL_DEBUG_EEPROM, "PDADC: Chain %d |" " PDADC %3d Value %3d | PDADC %3d Value %3d | PDADC %3d" " Value %3d | PDADC %3d Value %3d |\n", i, 4*j, pdadcValues[4*j], 4*j+1, pdadcValues[4*j + 1], 4*j+2, pdadcValues[4*j + 2], 4*j+3, pdadcValues[4*j + 3]); regOffset += 4; } } /************************************************************** * ar5416SetPowerCalTable * * Pull the PDADC piers from cal data and interpolate them across the given * points as well as from the nearest pier(s) to get a power detector * linear voltage to power level table. */ HAL_BOOL ar5416SetPowerCalTable(struct ath_hal *ah, struct ar5416eeprom *pEepData, const struct ieee80211_channel *chan, int16_t *pTxPowerIndexOffset) { CAL_DATA_PER_FREQ *pRawDataset; uint8_t *pCalBChans = AH_NULL; uint16_t pdGainOverlap_t2; static uint8_t pdadcValues[AR5416_NUM_PDADC_VALUES]; uint16_t gainBoundaries[AR5416_PD_GAINS_IN_MASK]; uint16_t numPiers, i; int16_t tMinCalPower; uint16_t numXpdGain, xpdMask; uint16_t xpdGainValues[AR5416_NUM_PD_GAINS]; uint32_t regChainOffset; OS_MEMZERO(xpdGainValues, sizeof(xpdGainValues)); xpdMask = pEepData->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)].xpdGain; if (IS_EEP_MINOR_V2(ah)) { pdGainOverlap_t2 = pEepData->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)].pdGainOverlap; } else { pdGainOverlap_t2 = (uint16_t)(MS(OS_REG_READ(ah, AR_PHY_TPCRG5), AR_PHY_TPCRG5_PD_GAIN_OVERLAP)); } if (IEEE80211_IS_CHAN_2GHZ(chan)) { pCalBChans = pEepData->calFreqPier2G; numPiers = AR5416_NUM_2G_CAL_PIERS; } else { pCalBChans = pEepData->calFreqPier5G; numPiers = AR5416_NUM_5G_CAL_PIERS; } /* Calculate the value of xpdgains from the xpdGain Mask */ numXpdGain = ar5416GetXpdGainValues(ah, xpdMask, xpdGainValues); /* Write the detector gain biases and their number */ ar5416WriteDetectorGainBiases(ah, numXpdGain, xpdGainValues); for (i = 0; i < AR5416_MAX_CHAINS; i++) { regChainOffset = ar5416GetRegChainOffset(ah, i); if (pEepData->baseEepHeader.txMask & (1 << i)) { if (IEEE80211_IS_CHAN_2GHZ(chan)) { pRawDataset = pEepData->calPierData2G[i]; } else { pRawDataset = pEepData->calPierData5G[i]; } /* Fetch the gain boundaries and the PDADC values */ ar5416GetGainBoundariesAndPdadcs(ah, chan, pRawDataset, pCalBChans, numPiers, pdGainOverlap_t2, &tMinCalPower, gainBoundaries, pdadcValues, numXpdGain); if ((i == 0) || AR_SREV_5416_V20_OR_LATER(ah)) { ar5416SetGainBoundariesClosedLoop(ah, i, pdGainOverlap_t2, gainBoundaries); } /* Write the power values into the baseband power table */ ar5416WritePdadcValues(ah, i, pdadcValues); } } *pTxPowerIndexOffset = 0; return AH_TRUE; } /************************************************************** * ar5416GetGainBoundariesAndPdadcs * * Uses the data points read from EEPROM to reconstruct the pdadc power table * Called by ar5416SetPowerCalTable only. */ void ar5416GetGainBoundariesAndPdadcs(struct ath_hal *ah, const struct ieee80211_channel *chan, CAL_DATA_PER_FREQ *pRawDataSet, uint8_t * bChans, uint16_t availPiers, uint16_t tPdGainOverlap, int16_t *pMinCalPower, uint16_t * pPdGainBoundaries, uint8_t * pPDADCValues, uint16_t numXpdGains) { int i, j, k; int16_t ss; /* potentially -ve index for taking care of pdGainOverlap */ uint16_t idxL, idxR, numPiers; /* Pier indexes */ /* filled out Vpd table for all pdGains (chanL) */ static uint8_t vpdTableL[AR5416_NUM_PD_GAINS][AR5416_MAX_PWR_RANGE_IN_HALF_DB]; /* filled out Vpd table for all pdGains (chanR) */ static uint8_t vpdTableR[AR5416_NUM_PD_GAINS][AR5416_MAX_PWR_RANGE_IN_HALF_DB]; /* filled out Vpd table for all pdGains (interpolated) */ static uint8_t vpdTableI[AR5416_NUM_PD_GAINS][AR5416_MAX_PWR_RANGE_IN_HALF_DB]; uint8_t *pVpdL, *pVpdR, *pPwrL, *pPwrR; uint8_t minPwrT4[AR5416_NUM_PD_GAINS]; uint8_t maxPwrT4[AR5416_NUM_PD_GAINS]; int16_t vpdStep; int16_t tmpVal; uint16_t sizeCurrVpdTable, maxIndex, tgtIndex; HAL_BOOL match; int16_t minDelta = 0; CHAN_CENTERS centers; ar5416GetChannelCenters(ah, chan, ¢ers); /* Trim numPiers for the number of populated channel Piers */ for (numPiers = 0; numPiers < availPiers; numPiers++) { if (bChans[numPiers] == AR5416_BCHAN_UNUSED) { break; } } /* Find pier indexes around the current channel */ match = ath_ee_getLowerUpperIndex((uint8_t)FREQ2FBIN(centers.synth_center, IEEE80211_IS_CHAN_2GHZ(chan)), bChans, numPiers, &idxL, &idxR); if (match) { /* Directly fill both vpd tables from the matching index */ for (i = 0; i < numXpdGains; i++) { minPwrT4[i] = pRawDataSet[idxL].pwrPdg[i][0]; maxPwrT4[i] = pRawDataSet[idxL].pwrPdg[i][4]; ath_ee_FillVpdTable(minPwrT4[i], maxPwrT4[i], pRawDataSet[idxL].pwrPdg[i], pRawDataSet[idxL].vpdPdg[i], AR5416_PD_GAIN_ICEPTS, vpdTableI[i]); } } else { for (i = 0; i < numXpdGains; i++) { pVpdL = pRawDataSet[idxL].vpdPdg[i]; pPwrL = pRawDataSet[idxL].pwrPdg[i]; pVpdR = pRawDataSet[idxR].vpdPdg[i]; pPwrR = pRawDataSet[idxR].pwrPdg[i]; /* Start Vpd interpolation from the max of the minimum powers */ minPwrT4[i] = AH_MAX(pPwrL[0], pPwrR[0]); /* End Vpd interpolation from the min of the max powers */ maxPwrT4[i] = AH_MIN(pPwrL[AR5416_PD_GAIN_ICEPTS - 1], pPwrR[AR5416_PD_GAIN_ICEPTS - 1]); HALASSERT(maxPwrT4[i] > minPwrT4[i]); /* Fill pier Vpds */ ath_ee_FillVpdTable(minPwrT4[i], maxPwrT4[i], pPwrL, pVpdL, AR5416_PD_GAIN_ICEPTS, vpdTableL[i]); ath_ee_FillVpdTable(minPwrT4[i], maxPwrT4[i], pPwrR, pVpdR, AR5416_PD_GAIN_ICEPTS, vpdTableR[i]); /* Interpolate the final vpd */ for (j = 0; j <= (maxPwrT4[i] - minPwrT4[i]) / 2; j++) { vpdTableI[i][j] = (uint8_t)(ath_ee_interpolate((uint16_t)FREQ2FBIN(centers.synth_center, IEEE80211_IS_CHAN_2GHZ(chan)), bChans[idxL], bChans[idxR], vpdTableL[i][j], vpdTableR[i][j])); } } } *pMinCalPower = (int16_t)(minPwrT4[0] / 2); k = 0; /* index for the final table */ for (i = 0; i < numXpdGains; i++) { if (i == (numXpdGains - 1)) { pPdGainBoundaries[i] = (uint16_t)(maxPwrT4[i] / 2); } else { pPdGainBoundaries[i] = (uint16_t)((maxPwrT4[i] + minPwrT4[i+1]) / 4); } pPdGainBoundaries[i] = (uint16_t)AH_MIN(AR5416_MAX_RATE_POWER, pPdGainBoundaries[i]); /* NB: only applies to owl 1.0 */ if ((i == 0) && !AR_SREV_5416_V20_OR_LATER(ah) ) { /* * fix the gain delta, but get a delta that can be applied to min to * keep the upper power values accurate, don't think max needs to * be adjusted because should not be at that area of the table? */ minDelta = pPdGainBoundaries[0] - 23; pPdGainBoundaries[0] = 23; } else { minDelta = 0; } /* Find starting index for this pdGain */ if (i == 0) { if (AR_SREV_MERLIN_10_OR_LATER(ah)) ss = (int16_t)(0 - (minPwrT4[i] / 2)); else ss = 0; /* for the first pdGain, start from index 0 */ } else { /* need overlap entries extrapolated below. */ ss = (int16_t)((pPdGainBoundaries[i-1] - (minPwrT4[i] / 2)) - tPdGainOverlap + 1 + minDelta); } vpdStep = (int16_t)(vpdTableI[i][1] - vpdTableI[i][0]); vpdStep = (int16_t)((vpdStep < 1) ? 1 : vpdStep); /* *-ve ss indicates need to extrapolate data below for this pdGain */ while ((ss < 0) && (k < (AR5416_NUM_PDADC_VALUES - 1))) { tmpVal = (int16_t)(vpdTableI[i][0] + ss * vpdStep); pPDADCValues[k++] = (uint8_t)((tmpVal < 0) ? 0 : tmpVal); ss++; } sizeCurrVpdTable = (uint8_t)((maxPwrT4[i] - minPwrT4[i]) / 2 +1); tgtIndex = (uint8_t)(pPdGainBoundaries[i] + tPdGainOverlap - (minPwrT4[i] / 2)); maxIndex = (tgtIndex < sizeCurrVpdTable) ? tgtIndex : sizeCurrVpdTable; while ((ss < maxIndex) && (k < (AR5416_NUM_PDADC_VALUES - 1))) { pPDADCValues[k++] = vpdTableI[i][ss++]; } vpdStep = (int16_t)(vpdTableI[i][sizeCurrVpdTable - 1] - vpdTableI[i][sizeCurrVpdTable - 2]); vpdStep = (int16_t)((vpdStep < 1) ? 1 : vpdStep); /* * for last gain, pdGainBoundary == Pmax_t2, so will * have to extrapolate */ if (tgtIndex >= maxIndex) { /* need to extrapolate above */ while ((ss <= tgtIndex) && (k < (AR5416_NUM_PDADC_VALUES - 1))) { tmpVal = (int16_t)((vpdTableI[i][sizeCurrVpdTable - 1] + (ss - maxIndex +1) * vpdStep)); pPDADCValues[k++] = (uint8_t)((tmpVal > 255) ? 255 : tmpVal); ss++; } } /* extrapolated above */ } /* for all pdGainUsed */ /* Fill out pdGainBoundaries - only up to 2 allowed here, but hardware allows up to 4 */ while (i < AR5416_PD_GAINS_IN_MASK) { pPdGainBoundaries[i] = pPdGainBoundaries[i-1]; i++; } while (k < AR5416_NUM_PDADC_VALUES) { pPDADCValues[k] = pPDADCValues[k-1]; k++; } return; } /* * The linux ath9k driver and (from what I've been told) the reference * Atheros driver enables the 11n PHY by default whether or not it's * configured. */ static void ar5416Set11nRegs(struct ath_hal *ah, const struct ieee80211_channel *chan) { uint32_t phymode; uint32_t enableDacFifo = 0; HAL_HT_MACMODE macmode; /* MAC - 20/40 mode */ if (AR_SREV_KITE_10_OR_LATER(ah)) enableDacFifo = (OS_REG_READ(ah, AR_PHY_TURBO) & AR_PHY_FC_ENABLE_DAC_FIFO); /* Enable 11n HT, 20 MHz */ phymode = AR_PHY_FC_HT_EN | AR_PHY_FC_SHORT_GI_40 | AR_PHY_FC_SINGLE_HT_LTF1 | AR_PHY_FC_WALSH | enableDacFifo; /* Configure baseband for dynamic 20/40 operation */ if (IEEE80211_IS_CHAN_HT40(chan)) { phymode |= AR_PHY_FC_DYN2040_EN; /* Configure control (primary) channel at +-10MHz */ if (IEEE80211_IS_CHAN_HT40U(chan)) phymode |= AR_PHY_FC_DYN2040_PRI_CH; #if 0 /* Configure 20/25 spacing */ if (ht->ht_extprotspacing == HAL_HT_EXTPROTSPACING_25) phymode |= AR_PHY_FC_DYN2040_EXT_CH; #endif macmode = HAL_HT_MACMODE_2040; } else macmode = HAL_HT_MACMODE_20; OS_REG_WRITE(ah, AR_PHY_TURBO, phymode); /* Configure MAC for 20/40 operation */ ar5416Set11nMac2040(ah, macmode); /* global transmit timeout (25 TUs default)*/ /* XXX - put this elsewhere??? */ OS_REG_WRITE(ah, AR_GTXTO, 25 << AR_GTXTO_TIMEOUT_LIMIT_S) ; /* carrier sense timeout */ OS_REG_SET_BIT(ah, AR_GTTM, AR_GTTM_CST_USEC); OS_REG_WRITE(ah, AR_CST, 0xF << AR_CST_TIMEOUT_LIMIT_S); } void ar5416GetChannelCenters(struct ath_hal *ah, const struct ieee80211_channel *chan, CHAN_CENTERS *centers) { uint16_t freq = ath_hal_gethwchannel(ah, chan); centers->ctl_center = freq; centers->synth_center = freq; /* * In 20/40 phy mode, the center frequency is * "between" the control and extension channels. */ if (IEEE80211_IS_CHAN_HT40U(chan)) { centers->synth_center += HT40_CHANNEL_CENTER_SHIFT; centers->ext_center = centers->synth_center + HT40_CHANNEL_CENTER_SHIFT; } else if (IEEE80211_IS_CHAN_HT40D(chan)) { centers->synth_center -= HT40_CHANNEL_CENTER_SHIFT; centers->ext_center = centers->synth_center - HT40_CHANNEL_CENTER_SHIFT; } else { centers->ext_center = freq; } } /* * Override the INI vals being programmed. */ static void ar5416OverrideIni(struct ath_hal *ah, const struct ieee80211_channel *chan) { uint32_t val; /* * Set the RX_ABORT and RX_DIS and clear if off only after * RXE is set for MAC. This prevents frames with corrupted * descriptor status. */ OS_REG_SET_BIT(ah, AR_DIAG_SW, (AR_DIAG_RX_DIS | AR_DIAG_RX_ABORT)); if (AR_SREV_MERLIN_10_OR_LATER(ah)) { val = OS_REG_READ(ah, AR_PCU_MISC_MODE2); val &= (~AR_PCU_MISC_MODE2_ADHOC_MCAST_KEYID_ENABLE); if (!AR_SREV_9271(ah)) val &= ~AR_PCU_MISC_MODE2_HWWAR1; if (AR_SREV_KIWI_10_OR_LATER(ah)) val = val & (~AR_PCU_MISC_MODE2_HWWAR2); OS_REG_WRITE(ah, AR_PCU_MISC_MODE2, val); } /* * Disable RIFS search on some chips to avoid baseband * hang issues. */ if (AR_SREV_HOWL(ah) || AR_SREV_SOWL(ah)) (void) ar5416SetRifsDelay(ah, chan, AH_FALSE); if (!AR_SREV_5416_V20_OR_LATER(ah) || AR_SREV_MERLIN(ah)) return; /* * Disable BB clock gating * Necessary to avoid issues on AR5416 2.0 */ OS_REG_WRITE(ah, 0x9800 + (651 << 2), 0x11); } struct ini { uint32_t *data; /* NB: !const */ int rows, cols; }; /* * Override XPA bias level based on operating frequency. * This is a v14 EEPROM specific thing for the AR9160. */ void ar5416EepromSetAddac(struct ath_hal *ah, const struct ieee80211_channel *chan) { #define XPA_LVL_FREQ(cnt) (pModal->xpaBiasLvlFreq[cnt]) MODAL_EEP_HEADER *pModal; HAL_EEPROM_v14 *ee = AH_PRIVATE(ah)->ah_eeprom; struct ar5416eeprom *eep = &ee->ee_base; uint8_t biaslevel; if (! AR_SREV_SOWL(ah)) return; if (EEP_MINOR(ah) < AR5416_EEP_MINOR_VER_7) return; pModal = &(eep->modalHeader[IEEE80211_IS_CHAN_2GHZ(chan)]); if (pModal->xpaBiasLvl != 0xff) biaslevel = pModal->xpaBiasLvl; else { uint16_t resetFreqBin, freqBin, freqCount = 0; CHAN_CENTERS centers; ar5416GetChannelCenters(ah, chan, ¢ers); resetFreqBin = FREQ2FBIN(centers.synth_center, IEEE80211_IS_CHAN_2GHZ(chan)); freqBin = XPA_LVL_FREQ(0) & 0xff; biaslevel = (uint8_t) (XPA_LVL_FREQ(0) >> 14); freqCount++; while (freqCount < 3) { if (XPA_LVL_FREQ(freqCount) == 0x0) break; freqBin = XPA_LVL_FREQ(freqCount) & 0xff; if (resetFreqBin >= freqBin) biaslevel = (uint8_t)(XPA_LVL_FREQ(freqCount) >> 14); else break; freqCount++; } } HALDEBUG(ah, HAL_DEBUG_EEPROM, "%s: overriding XPA bias level = %d\n", __func__, biaslevel); /* * This is a dirty workaround for the const initval data, * which will upset multiple AR9160's on the same board. * * The HAL should likely just have a private copy of the addac * data per instance. */ if (IEEE80211_IS_CHAN_2GHZ(chan)) HAL_INI_VAL((struct ini *) &AH5416(ah)->ah_ini_addac, 7, 1) = (HAL_INI_VAL(&AH5416(ah)->ah_ini_addac, 7, 1) & (~0x18)) | biaslevel << 3; else HAL_INI_VAL((struct ini *) &AH5416(ah)->ah_ini_addac, 6, 1) = (HAL_INI_VAL(&AH5416(ah)->ah_ini_addac, 6, 1) & (~0xc0)) | biaslevel << 6; #undef XPA_LVL_FREQ } static void ar5416MarkPhyInactive(struct ath_hal *ah) { OS_REG_WRITE(ah, AR_PHY_ACTIVE, AR_PHY_ACTIVE_DIS); } #define AR5416_IFS_SLOT_FULL_RATE_40 0x168 /* 9 us half, 40 MHz core clock (9*40) */ #define AR5416_IFS_SLOT_HALF_RATE_40 0x104 /* 13 us half, 20 MHz core clock (13*20) */ #define AR5416_IFS_SLOT_QUARTER_RATE_40 0xD2 /* 21 us quarter, 10 MHz core clock (21*10) */ #define AR5416_IFS_EIFS_FULL_RATE_40 0xE60 /* (74 + (2 * 9)) * 40MHz core clock */ #define AR5416_IFS_EIFS_HALF_RATE_40 0xDAC /* (149 + (2 * 13)) * 20MHz core clock */ #define AR5416_IFS_EIFS_QUARTER_RATE_40 0xD48 /* (298 + (2 * 21)) * 10MHz core clock */ #define AR5416_IFS_SLOT_FULL_RATE_44 0x18c /* 9 us half, 44 MHz core clock (9*44) */ #define AR5416_IFS_SLOT_HALF_RATE_44 0x11e /* 13 us half, 22 MHz core clock (13*22) */ #define AR5416_IFS_SLOT_QUARTER_RATE_44 0xe7 /* 21 us quarter, 11 MHz core clock (21*11) */ #define AR5416_IFS_EIFS_FULL_RATE_44 0xfd0 /* (74 + (2 * 9)) * 44MHz core clock */ #define AR5416_IFS_EIFS_HALF_RATE_44 0xf0a /* (149 + (2 * 13)) * 22MHz core clock */ #define AR5416_IFS_EIFS_QUARTER_RATE_44 0xe9c /* (298 + (2 * 21)) * 11MHz core clock */ #define AR5416_INIT_USEC_40 40 #define AR5416_HALF_RATE_USEC_40 19 /* ((40 / 2) - 1 ) */ #define AR5416_QUARTER_RATE_USEC_40 9 /* ((40 / 4) - 1 ) */ #define AR5416_INIT_USEC_44 44 #define AR5416_HALF_RATE_USEC_44 21 /* ((44 / 2) - 1 ) */ #define AR5416_QUARTER_RATE_USEC_44 10 /* ((44 / 4) - 1 ) */ /* XXX What should these be for 40/44MHz clocks (and half/quarter) ? */ #define AR5416_RX_NON_FULL_RATE_LATENCY 63 #define AR5416_TX_HALF_RATE_LATENCY 108 #define AR5416_TX_QUARTER_RATE_LATENCY 216 /* * Adjust various register settings based on half/quarter rate clock setting. * This includes: * * + USEC, TX/RX latency, * + IFS params: slot, eifs, misc etc. * * TODO: * * + Verify which other registers need to be tweaked; * + Verify the behaviour of this for 5GHz fast and non-fast clock mode; * + This just plain won't work for long distance links - the coverage class * code isn't aware of the slot/ifs/ACK/RTS timeout values that need to * change; * + Verify whether the 32KHz USEC value needs to be kept for the 802.11n * series chips? * + Calculate/derive values for 2GHz, 5GHz, 5GHz fast clock */ static void ar5416SetIFSTiming(struct ath_hal *ah, const struct ieee80211_channel *chan) { uint32_t txLat, rxLat, usec, slot, refClock, eifs, init_usec; int clk_44 = 0; HALASSERT(IEEE80211_IS_CHAN_HALF(chan) || IEEE80211_IS_CHAN_QUARTER(chan)); /* 2GHz and 5GHz fast clock - 44MHz; else 40MHz */ if (IEEE80211_IS_CHAN_2GHZ(chan)) clk_44 = 1; else if (IEEE80211_IS_CHAN_5GHZ(chan) && IS_5GHZ_FAST_CLOCK_EN(ah, chan)) clk_44 = 1; /* XXX does this need save/restoring for the 11n chips? */ + /* + * XXX TODO: should mask out the txlat/rxlat/usec values? + */ refClock = OS_REG_READ(ah, AR_USEC) & AR_USEC_USEC32; /* * XXX This really should calculate things, not use * hard coded values! Ew. */ if (IEEE80211_IS_CHAN_HALF(chan)) { if (clk_44) { slot = AR5416_IFS_SLOT_HALF_RATE_44; rxLat = AR5416_RX_NON_FULL_RATE_LATENCY << AR5416_USEC_RX_LAT_S; txLat = AR5416_TX_HALF_RATE_LATENCY << AR5416_USEC_TX_LAT_S; usec = AR5416_HALF_RATE_USEC_44; eifs = AR5416_IFS_EIFS_HALF_RATE_44; init_usec = AR5416_INIT_USEC_44 >> 1; } else { slot = AR5416_IFS_SLOT_HALF_RATE_40; rxLat = AR5416_RX_NON_FULL_RATE_LATENCY << AR5416_USEC_RX_LAT_S; txLat = AR5416_TX_HALF_RATE_LATENCY << AR5416_USEC_TX_LAT_S; usec = AR5416_HALF_RATE_USEC_40; eifs = AR5416_IFS_EIFS_HALF_RATE_40; init_usec = AR5416_INIT_USEC_40 >> 1; } } else { /* quarter rate */ if (clk_44) { slot = AR5416_IFS_SLOT_QUARTER_RATE_44; rxLat = AR5416_RX_NON_FULL_RATE_LATENCY << AR5416_USEC_RX_LAT_S; txLat = AR5416_TX_QUARTER_RATE_LATENCY << AR5416_USEC_TX_LAT_S; usec = AR5416_QUARTER_RATE_USEC_44; eifs = AR5416_IFS_EIFS_QUARTER_RATE_44; init_usec = AR5416_INIT_USEC_44 >> 2; } else { slot = AR5416_IFS_SLOT_QUARTER_RATE_40; rxLat = AR5416_RX_NON_FULL_RATE_LATENCY << AR5416_USEC_RX_LAT_S; txLat = AR5416_TX_QUARTER_RATE_LATENCY << AR5416_USEC_TX_LAT_S; usec = AR5416_QUARTER_RATE_USEC_40; eifs = AR5416_IFS_EIFS_QUARTER_RATE_40; init_usec = AR5416_INIT_USEC_40 >> 2; } } /* XXX verify these! */ OS_REG_WRITE(ah, AR_USEC, (usec | refClock | txLat | rxLat)); OS_REG_WRITE(ah, AR_D_GBL_IFS_SLOT, slot); OS_REG_WRITE(ah, AR_D_GBL_IFS_EIFS, eifs); OS_REG_RMW_FIELD(ah, AR_D_GBL_IFS_MISC, AR_D_GBL_IFS_MISC_USEC_DURATION, init_usec); }