11e10b93dSalc /*
21e10b93dSalc  * Copyright (c) 2008 Sam Leffler, Errno Consulting
31e10b93dSalc  * Copyright (c) 2008 Atheros Communications, Inc.
41e10b93dSalc  *
51e10b93dSalc  * Permission to use, copy, modify, and/or distribute this software for any
61e10b93dSalc  * purpose with or without fee is hereby granted, provided that the above
71e10b93dSalc  * copyright notice and this permission notice appear in all copies.
81e10b93dSalc  *
91e10b93dSalc  * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
101e10b93dSalc  * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
111e10b93dSalc  * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
121e10b93dSalc  * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
131e10b93dSalc  * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
141e10b93dSalc  * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
151e10b93dSalc  * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
161e10b93dSalc  *
17*98c00ab4Smrg  * $Id: ah_eeprom_v1.c,v 1.5 2021/04/13 03:27:13 mrg Exp $
181e10b93dSalc  */
191e10b93dSalc #include "opt_ah.h"
201e10b93dSalc 
211e10b93dSalc #include "ah.h"
221e10b93dSalc #include "ah_internal.h"
231e10b93dSalc #include "ah_eeprom_v1.h"
241e10b93dSalc 
251e10b93dSalc static HAL_STATUS
v1EepromGet(struct ath_hal * ah,int param,void * val)261e10b93dSalc v1EepromGet(struct ath_hal *ah, int param, void *val)
271e10b93dSalc {
281e10b93dSalc 	HAL_EEPROM_v1 *ee = AH_PRIVATE(ah)->ah_eeprom;
291e10b93dSalc 	uint32_t sum;
301e10b93dSalc 	uint16_t eeval;
311e10b93dSalc 	uint8_t *macaddr;
321e10b93dSalc 	int i;
331e10b93dSalc 
341e10b93dSalc 	switch (param) {
351e10b93dSalc         case AR_EEP_MACADDR:		/* Get MAC Address */
361e10b93dSalc 		sum = 0;
371e10b93dSalc 		macaddr = val;
381e10b93dSalc 		for (i = 0; i < 3; i++) {
391e10b93dSalc 			if (!ath_hal_eepromRead(ah, AR_EEPROM_MAC(i), &eeval)) {
401e10b93dSalc 				HALDEBUG(ah, HAL_DEBUG_ANY,
411e10b93dSalc 				    "%s: cannot read EEPROM location %u\n",
421e10b93dSalc 				    __func__, i);
431e10b93dSalc 				return HAL_EEREAD;
441e10b93dSalc 			}
451e10b93dSalc 			sum += eeval;
461e10b93dSalc 			macaddr[2*i + 0] = eeval >> 8;
471e10b93dSalc 			macaddr[2*i + 1] = eeval & 0xff;
481e10b93dSalc 		}
491e10b93dSalc 		if (sum == 0 || sum == 0xffff*3) {
501e10b93dSalc 			HALDEBUG(ah, HAL_DEBUG_ANY, "%s: bad mac address %s\n",
511e10b93dSalc 			    __func__, ath_hal_ether_sprintf(macaddr));
521e10b93dSalc 			return HAL_EEBADMAC;
531e10b93dSalc 		}
541e10b93dSalc 		return HAL_OK;
551e10b93dSalc         case AR_EEP_REGDMN_0:
561e10b93dSalc 		*(uint16_t *) val = ee->ee_regDomain[0];
571e10b93dSalc 		return HAL_OK;
581e10b93dSalc         case AR_EEP_RFKILL:
591e10b93dSalc 		HALASSERT(val == AH_NULL);
601e10b93dSalc 		return ee->ee_rfKill ? HAL_OK : HAL_EIO;
611e10b93dSalc 	case AR_EEP_WRITEPROTECT:
621e10b93dSalc 		HALASSERT(val == AH_NULL);
631e10b93dSalc 		return (ee->ee_protect & AR_EEPROM_PROTOTECT_WP_128_191) ?
641e10b93dSalc 		    HAL_OK : HAL_EIO;
651e10b93dSalc         default:
661e10b93dSalc 		HALASSERT(0);
671e10b93dSalc 		return HAL_EINVAL;
681e10b93dSalc 	}
691e10b93dSalc }
701e10b93dSalc 
711e10b93dSalc static HAL_BOOL
v1EepromSet(struct ath_hal * ah,int param,int v)721e10b93dSalc v1EepromSet(struct ath_hal *ah, int param, int v)
731e10b93dSalc {
74*98c00ab4Smrg 	return AH_FALSE;
751e10b93dSalc }
761e10b93dSalc 
771e10b93dSalc static HAL_BOOL
v1EepromDiag(struct ath_hal * ah,int request,const void * args,uint32_t argsize,void ** result,uint32_t * resultsize)781e10b93dSalc v1EepromDiag(struct ath_hal *ah, int request,
791e10b93dSalc      const void *args, uint32_t argsize, void **result, uint32_t *resultsize)
801e10b93dSalc {
811e10b93dSalc 	HAL_EEPROM_v1 *ee = AH_PRIVATE(ah)->ah_eeprom;
821e10b93dSalc 
831e10b93dSalc 	switch (request) {
841e10b93dSalc 	case HAL_DIAG_EEPROM:
851e10b93dSalc 		*result = ee;
861e10b93dSalc 		*resultsize = sizeof(*ee);
871e10b93dSalc 		return AH_TRUE;
881e10b93dSalc 	}
891e10b93dSalc 	return AH_FALSE;
901e10b93dSalc }
911e10b93dSalc 
921e10b93dSalc static uint16_t
v1EepromGetSpurChan(struct ath_hal * ah,int ix,HAL_BOOL is2GHz)931e10b93dSalc v1EepromGetSpurChan(struct ath_hal *ah, int ix, HAL_BOOL is2GHz)
941e10b93dSalc {
951e10b93dSalc 	return AR_NO_SPUR;
961e10b93dSalc }
971e10b93dSalc 
981e10b93dSalc /*
991e10b93dSalc  * Reclaim any EEPROM-related storage.
1001e10b93dSalc  */
1011e10b93dSalc static void
v1EepromDetach(struct ath_hal * ah)1021e10b93dSalc v1EepromDetach(struct ath_hal *ah)
1031e10b93dSalc {
1041e10b93dSalc 	HAL_EEPROM_v1 *ee = AH_PRIVATE(ah)->ah_eeprom;
1051e10b93dSalc 
1061e10b93dSalc 	ath_hal_free(ee);
1071e10b93dSalc 	AH_PRIVATE(ah)->ah_eeprom = AH_NULL;
1081e10b93dSalc }
1091e10b93dSalc 
1101e10b93dSalc HAL_STATUS
ath_hal_v1EepromAttach(struct ath_hal * ah)1111e10b93dSalc ath_hal_v1EepromAttach(struct ath_hal *ah)
1121e10b93dSalc {
1131e10b93dSalc 	HAL_EEPROM_v1 *ee = AH_PRIVATE(ah)->ah_eeprom;
1141e10b93dSalc 	uint16_t athvals[AR_EEPROM_ATHEROS_MAX];	/* XXX off stack */
115a9d4fb0bSalc 	uint16_t protect, eeprom_version, eeval;
1161e10b93dSalc 	uint32_t sum;
1171e10b93dSalc 	int i, loc;
1181e10b93dSalc 
1191e10b93dSalc 	HALASSERT(ee == AH_NULL);
1201e10b93dSalc 
1211e10b93dSalc 	if (!ath_hal_eepromRead(ah, AR_EEPROM_MAGIC, &eeval)) {
1221e10b93dSalc 		HALDEBUG(ah, HAL_DEBUG_ANY,
1231e10b93dSalc 		    "%s: cannot read EEPROM magic number\n", __func__);
1241e10b93dSalc 		return HAL_EEREAD;
1251e10b93dSalc 	}
1261e10b93dSalc 	if (eeval != 0x5aa5) {
1271e10b93dSalc 		HALDEBUG(ah, HAL_DEBUG_ANY,
1281e10b93dSalc 		    "%s: invalid EEPROM magic number 0x%x\n", __func__, eeval);
1291e10b93dSalc 		return HAL_EEMAGIC;
1301e10b93dSalc 	}
1311e10b93dSalc 
1321e10b93dSalc 	if (!ath_hal_eepromRead(ah, AR_EEPROM_PROTECT, &protect)) {
1331e10b93dSalc 		HALDEBUG(ah, HAL_DEBUG_ANY,
1341e10b93dSalc 		    "%s: cannot read EEPROM protection bits; read locked?\n",
1351e10b93dSalc 		    __func__);
1361e10b93dSalc 		return HAL_EEREAD;
1371e10b93dSalc 	}
1381e10b93dSalc 	HALDEBUG(ah, HAL_DEBUG_ATTACH, "EEPROM protect 0x%x\n", protect);
1391e10b93dSalc 	/* XXX check proper access before continuing */
1401e10b93dSalc 
141a9d4fb0bSalc 	if (!ath_hal_eepromRead(ah, AR_EEPROM_VERSION, &eeprom_version)) {
1421e10b93dSalc 		HALDEBUG(ah, HAL_DEBUG_ANY,
1431e10b93dSalc 		    "%s: unable to read EEPROM version\n", __func__);
1441e10b93dSalc 		return HAL_EEREAD;
1451e10b93dSalc 	}
146a9d4fb0bSalc 	if (((eeprom_version>>12) & 0xf) != 1) {
1471e10b93dSalc 		/*
1481e10b93dSalc 		 * This code only groks the version 1 EEPROM layout.
1491e10b93dSalc 		 */
1501e10b93dSalc 		HALDEBUG(ah, HAL_DEBUG_ANY,
151c3d9f7dbSalc 		    "%s: unsupported EEPROM version 0x%x found\n",
152c3d9f7dbSalc 		    __func__, eeprom_version);
1531e10b93dSalc 		return HAL_EEVERSION;
1541e10b93dSalc 	}
1551e10b93dSalc 
1561e10b93dSalc 	/*
1571e10b93dSalc 	 * Read the Atheros EEPROM entries and calculate the checksum.
1581e10b93dSalc 	 */
1591e10b93dSalc 	sum = 0;
1601e10b93dSalc 	for (i = 0; i < AR_EEPROM_ATHEROS_MAX; i++) {
1611e10b93dSalc 		if (!ath_hal_eepromRead(ah, AR_EEPROM_ATHEROS(i), &athvals[i]))
1621e10b93dSalc 			return HAL_EEREAD;
1631e10b93dSalc 		sum ^= athvals[i];
1641e10b93dSalc 	}
1651e10b93dSalc 	if (sum != 0xffff) {
1661e10b93dSalc 		HALDEBUG(ah, HAL_DEBUG_ANY, "%s: bad EEPROM checksum 0x%x\n",
1671e10b93dSalc 		    __func__, sum);
1681e10b93dSalc 		return HAL_EEBADSUM;
1691e10b93dSalc 	}
1701e10b93dSalc 
1711e10b93dSalc 	/*
1721e10b93dSalc 	 * Valid checksum, fetch the regulatory domain and save values.
1731e10b93dSalc 	 */
1741e10b93dSalc 	if (!ath_hal_eepromRead(ah, AR_EEPROM_REG_DOMAIN, &eeval)) {
1751e10b93dSalc 		HALDEBUG(ah, HAL_DEBUG_ANY,
1761e10b93dSalc 		    "%s: cannot read regdomain from EEPROM\n", __func__);
1771e10b93dSalc 		return HAL_EEREAD;
1781e10b93dSalc 	}
1791e10b93dSalc 
1801e10b93dSalc 	ee = ath_hal_malloc(sizeof(HAL_EEPROM_v1));
1811e10b93dSalc 	if (ee == AH_NULL) {
1821e10b93dSalc 		/* XXX message */
1831e10b93dSalc 		return HAL_ENOMEM;
1841e10b93dSalc 	}
1851e10b93dSalc 
186a9d4fb0bSalc 	ee->ee_version		= eeprom_version;
1871e10b93dSalc 	ee->ee_protect		= protect;
1881e10b93dSalc 	ee->ee_antenna		= athvals[2];
1891e10b93dSalc 	ee->ee_biasCurrents	= athvals[3];
1901e10b93dSalc 	ee->ee_thresh62	= athvals[4] & 0xff;
1911e10b93dSalc 	ee->ee_xlnaOn		= (athvals[4] >> 8) & 0xff;
1921e10b93dSalc 	ee->ee_xpaOn		= athvals[5] & 0xff;
1931e10b93dSalc 	ee->ee_xpaOff		= (athvals[5] >> 8) & 0xff;
1941e10b93dSalc 	ee->ee_regDomain[0]	= (athvals[6] >> 8) & 0xff;
1951e10b93dSalc 	ee->ee_regDomain[1]	= athvals[6] & 0xff;
1961e10b93dSalc 	ee->ee_regDomain[2]	= (athvals[7] >> 8) & 0xff;
1971e10b93dSalc 	ee->ee_regDomain[3]	= athvals[7] & 0xff;
1981e10b93dSalc 	ee->ee_rfKill		= athvals[8] & 0x1;
1991e10b93dSalc 	ee->ee_devType		= (athvals[8] >> 1) & 0x7;
2001e10b93dSalc 
2011e10b93dSalc 	for (i = 0, loc = AR_EEPROM_ATHEROS_TP_SETTINGS; i < AR_CHANNELS_MAX; i++, loc += AR_TP_SETTINGS_SIZE) {
2021e10b93dSalc 		struct tpcMap *chan = &ee->ee_tpc[i];
2031e10b93dSalc 
2041e10b93dSalc 		/* Copy pcdac and gain_f values from EEPROM */
2051e10b93dSalc 		chan->pcdac[0]	= (athvals[loc] >> 10) & 0x3F;
2061e10b93dSalc 		chan->gainF[0]	= (athvals[loc] >> 4) & 0x3F;
2071e10b93dSalc 		chan->pcdac[1]	= ((athvals[loc] << 2) & 0x3C)
2081e10b93dSalc 				| ((athvals[loc+1] >> 14) & 0x03);
2091e10b93dSalc 		chan->gainF[1]	= (athvals[loc+1] >> 8) & 0x3F;
2101e10b93dSalc 		chan->pcdac[2]	= (athvals[loc+1] >> 2) & 0x3F;
2111e10b93dSalc 		chan->gainF[2]	= ((athvals[loc+1] << 4) & 0x30)
2121e10b93dSalc 				| ((athvals[loc+2] >> 12) & 0x0F);
2131e10b93dSalc 		chan->pcdac[3]	= (athvals[loc+2] >> 6) & 0x3F;
2141e10b93dSalc 		chan->gainF[3]	= athvals[loc+2] & 0x3F;
2151e10b93dSalc 		chan->pcdac[4]	= (athvals[loc+3] >> 10) & 0x3F;
2161e10b93dSalc 		chan->gainF[4]	= (athvals[loc+3] >> 4) & 0x3F;
2171e10b93dSalc 		chan->pcdac[5]	= ((athvals[loc+3] << 2) & 0x3C)
2181e10b93dSalc 				| ((athvals[loc+4] >> 14) & 0x03);
2191e10b93dSalc 		chan->gainF[5]	= (athvals[loc+4] >> 8) & 0x3F;
2201e10b93dSalc 		chan->pcdac[6]	= (athvals[loc+4] >> 2) & 0x3F;
2211e10b93dSalc 		chan->gainF[6]	= ((athvals[loc+4] << 4) & 0x30)
2221e10b93dSalc 				| ((athvals[loc+5] >> 12) & 0x0F);
2231e10b93dSalc 		chan->pcdac[7]	= (athvals[loc+5] >> 6) & 0x3F;
2241e10b93dSalc 		chan->gainF[7]	= athvals[loc+5] & 0x3F;
2251e10b93dSalc 		chan->pcdac[8]	= (athvals[loc+6] >> 10) & 0x3F;
2261e10b93dSalc 		chan->gainF[8]	= (athvals[loc+6] >> 4) & 0x3F;
2271e10b93dSalc 		chan->pcdac[9]	= ((athvals[loc+6] << 2) & 0x3C)
2281e10b93dSalc 				| ((athvals[loc+7] >> 14) & 0x03);
2291e10b93dSalc 		chan->gainF[9]	= (athvals[loc+7] >> 8) & 0x3F;
2301e10b93dSalc 		chan->pcdac[10]	= (athvals[loc+7] >> 2) & 0x3F;
2311e10b93dSalc 		chan->gainF[10]	= ((athvals[loc+7] << 4) & 0x30)
2321e10b93dSalc 				| ((athvals[loc+8] >> 12) & 0x0F);
2331e10b93dSalc 
2341e10b93dSalc 		/* Copy Regulatory Domain and Rate Information from EEPROM */
2351e10b93dSalc 		chan->rate36	= (athvals[loc+8] >> 6) & 0x3F;
2361e10b93dSalc 		chan->rate48	= athvals[loc+8] & 0x3F;
2371e10b93dSalc 		chan->rate54	= (athvals[loc+9] >> 10) & 0x3F;
2381e10b93dSalc 		chan->regdmn[0]	= (athvals[loc+9] >> 4) & 0x3F;
2391e10b93dSalc 		chan->regdmn[1]	= ((athvals[loc+9] << 2) & 0x3C)
2401e10b93dSalc 				| ((athvals[loc+10] >> 14) & 0x03);
2411e10b93dSalc 		chan->regdmn[2]	= (athvals[loc+10] >> 8) & 0x3F;
2421e10b93dSalc 		chan->regdmn[3]	= (athvals[loc+10] >> 2) & 0x3F;
2431e10b93dSalc 	}
2441e10b93dSalc 
2451e10b93dSalc 	AH_PRIVATE(ah)->ah_eeprom = ee;
246a9d4fb0bSalc 	AH_PRIVATE(ah)->ah_eeversion = eeprom_version;
2471e10b93dSalc 	AH_PRIVATE(ah)->ah_eepromDetach = v1EepromDetach;
2481e10b93dSalc 	AH_PRIVATE(ah)->ah_eepromGet = v1EepromGet;
2491e10b93dSalc 	AH_PRIVATE(ah)->ah_eepromSet = v1EepromSet;
2501e10b93dSalc 	AH_PRIVATE(ah)->ah_getSpurChan = v1EepromGetSpurChan;
2511e10b93dSalc 	AH_PRIVATE(ah)->ah_eepromDiag = v1EepromDiag;
2521e10b93dSalc 	return HAL_OK;
2531e10b93dSalc }
254