mirror of
https://github.com/proski/madwifi
synced 2024-11-22 06:21:47 +03:00
5702465321
git-svn-id: http://madwifi-project.org/svn/madwifi/trunk@3978 0192ed92-7a03-0410-a25b-9323aeb14dbd
332 lines
9.2 KiB
C
332 lines
9.2 KiB
C
/*
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* Copyright (c) 2002-2008 Sam Leffler, Errno Consulting
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* Copyright (c) 2002-2008 Atheros Communications, Inc.
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*
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* Permission to use, copy, modify, and/or distribute this software for any
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* purpose with or without fee is hereby granted, provided that the above
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* copyright notice and this permission notice appear in all copies.
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*
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* THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
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* WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
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* MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
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* ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
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* WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
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* ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
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* OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
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*
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* $FreeBSD$
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*/
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#include "opt_ah.h"
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#include "ah.h"
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#include "ah_internal.h"
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#include "ah_devid.h"
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#include "ar5212/ar5212.h"
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#include "ar5212/ar5212reg.h"
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#include "ar5212/ar5212phy.h"
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#include "ah_eeprom_v3.h"
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static const GAIN_OPTIMIZATION_LADDER gainLadder = {
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9, /* numStepsInLadder */
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4, /* defaultStepNum */
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{ { {4, 1, 1, 1}, 6, "FG8"},
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{ {4, 0, 1, 1}, 4, "FG7"},
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{ {3, 1, 1, 1}, 3, "FG6"},
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{ {4, 0, 0, 1}, 1, "FG5"},
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{ {4, 1, 1, 0}, 0, "FG4"}, /* noJack */
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{ {4, 0, 1, 0}, -2, "FG3"}, /* halfJack */
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{ {3, 1, 1, 0}, -3, "FG2"}, /* clip3 */
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{ {4, 0, 0, 0}, -4, "FG1"}, /* noJack */
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{ {2, 1, 1, 0}, -6, "FG0"} /* clip2 */
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}
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};
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static const GAIN_OPTIMIZATION_LADDER gainLadder5112 = {
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8, /* numStepsInLadder */
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1, /* defaultStepNum */
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{ { {3, 0,0,0, 0,0,0}, 6, "FG7"}, /* most fixed gain */
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{ {2, 0,0,0, 0,0,0}, 0, "FG6"},
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{ {1, 0,0,0, 0,0,0}, -3, "FG5"},
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{ {0, 0,0,0, 0,0,0}, -6, "FG4"},
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{ {0, 1,1,0, 0,0,0}, -8, "FG3"},
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{ {0, 1,1,0, 1,1,0}, -10, "FG2"},
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{ {0, 1,0,1, 1,1,0}, -13, "FG1"},
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{ {0, 1,0,1, 1,0,1}, -16, "FG0"}, /* least fixed gain */
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}
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};
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/*
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* Initialize the gain structure to good values
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*/
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void
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ar5212InitializeGainValues(struct ath_hal *ah)
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{
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struct ath_hal_5212 *ahp = AH5212(ah);
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GAIN_VALUES *gv = &ahp->ah_gainValues;
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/* initialize gain optimization values */
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if (IS_RAD5112_ANY(ah)) {
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gv->currStepNum = gainLadder5112.defaultStepNum;
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gv->currStep =
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&gainLadder5112.optStep[gainLadder5112.defaultStepNum];
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gv->active = AH_TRUE;
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gv->loTrig = 20;
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gv->hiTrig = 85;
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} else {
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gv->currStepNum = gainLadder.defaultStepNum;
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gv->currStep = &gainLadder.optStep[gainLadder.defaultStepNum];
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gv->active = AH_TRUE;
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gv->loTrig = 20;
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gv->hiTrig = 35;
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}
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}
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#define MAX_ANALOG_START 319 /* XXX */
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/*
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* Find analog bits of given parameter data and return a reversed value
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*/
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static uint32_t
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ar5212GetRfField(uint32_t *rfBuf, uint32_t numBits, uint32_t firstBit, uint32_t column)
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{
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uint32_t reg32 = 0, mask, arrayEntry, lastBit;
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uint32_t bitPosition, bitsShifted;
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int32_t bitsLeft;
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HALASSERT(column <= 3);
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HALASSERT(numBits <= 32);
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HALASSERT(firstBit + numBits <= MAX_ANALOG_START);
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arrayEntry = (firstBit - 1) / 8;
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bitPosition = (firstBit - 1) % 8;
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bitsLeft = numBits;
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bitsShifted = 0;
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while (bitsLeft > 0) {
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lastBit = (bitPosition + bitsLeft > 8) ?
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(8) : (bitPosition + bitsLeft);
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mask = (((1 << lastBit) - 1) ^ ((1 << bitPosition) - 1)) <<
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(column * 8);
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reg32 |= (((rfBuf[arrayEntry] & mask) >> (column * 8)) >>
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bitPosition) << bitsShifted;
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bitsShifted += lastBit - bitPosition;
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bitsLeft -= (8 - bitPosition);
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bitPosition = 0;
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arrayEntry++;
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}
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reg32 = ath_hal_reverseBits(reg32, numBits);
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return reg32;
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}
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static HAL_BOOL
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ar5212InvalidGainReadback(struct ath_hal *ah, GAIN_VALUES *gv)
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{
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uint32_t gStep, g, mixOvr;
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uint32_t L1, L2, L3, L4;
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if (IS_RAD5112_ANY(ah)) {
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mixOvr = ar5212GetRfField(ar5212GetRfBank(ah, 7), 1, 36, 0);
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L1 = 0;
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L2 = 107;
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L3 = 0;
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L4 = 107;
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if (mixOvr == 1) {
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L2 = 83;
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L4 = 83;
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gv->hiTrig = 55;
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}
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} else {
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gStep = ar5212GetRfField(ar5212GetRfBank(ah, 7), 6, 37, 0);
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L1 = 0;
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L2 = (gStep == 0x3f) ? 50 : gStep + 4;
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L3 = (gStep != 0x3f) ? 0x40 : L1;
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L4 = L3 + 50;
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gv->loTrig = L1 + (gStep == 0x3f ? DYN_ADJ_LO_MARGIN : 0);
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/* never adjust if != 0x3f */
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gv->hiTrig = L4 - (gStep == 0x3f ? DYN_ADJ_UP_MARGIN : -5);
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}
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g = gv->currGain;
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return !((g >= L1 && g<= L2) || (g >= L3 && g <= L4));
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}
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/*
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* Enable the probe gain check on the next packet
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*/
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void
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ar5212RequestRfgain(struct ath_hal *ah)
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{
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struct ath_hal_5212 *ahp = AH5212(ah);
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uint32_t probePowerIndex;
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/* Enable the gain readback probe */
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probePowerIndex = ahp->ah_ofdmTxPower + ahp->ah_txPowerIndexOffset;
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OS_REG_WRITE(ah, AR_PHY_PAPD_PROBE,
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SM(probePowerIndex, AR_PHY_PAPD_PROBE_POWERTX)
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| AR_PHY_PAPD_PROBE_NEXT_TX);
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ahp->ah_rfgainState = HAL_RFGAIN_READ_REQUESTED;
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}
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/*
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* Check to see if our readback gain level sits within the linear
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* region of our current variable attenuation window
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*/
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static HAL_BOOL
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ar5212IsGainAdjustNeeded(struct ath_hal *ah, const GAIN_VALUES *gv)
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{
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return (gv->currGain <= gv->loTrig || gv->currGain >= gv->hiTrig);
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}
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/*
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* Move the rabbit ears in the correct direction.
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*/
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static int32_t
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ar5212AdjustGain(struct ath_hal *ah, GAIN_VALUES *gv)
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{
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const GAIN_OPTIMIZATION_LADDER *gl;
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if (IS_RAD5112_ANY(ah))
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gl = &gainLadder5112;
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else
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gl = &gainLadder;
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gv->currStep = &gl->optStep[gv->currStepNum];
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if (gv->currGain >= gv->hiTrig) {
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if (gv->currStepNum == 0) {
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HALDEBUG(ah, HAL_DEBUG_ANY, "%s: Max gain limit.\n",
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__func__);
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return -1;
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}
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HALDEBUG(ah, HAL_DEBUG_RFPARAM,
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"%s: Adding gain: currG=%d [%s] --> ",
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__func__, gv->currGain, gv->currStep->stepName);
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gv->targetGain = gv->currGain;
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while (gv->targetGain >= gv->hiTrig && gv->currStepNum > 0) {
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gv->targetGain -= 2 * (gl->optStep[--(gv->currStepNum)].stepGain -
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gv->currStep->stepGain);
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gv->currStep = &gl->optStep[gv->currStepNum];
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}
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HALDEBUG(ah, HAL_DEBUG_RFPARAM, "targG=%d [%s]\n",
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gv->targetGain, gv->currStep->stepName);
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return 1;
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}
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if (gv->currGain <= gv->loTrig) {
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if (gv->currStepNum == gl->numStepsInLadder-1) {
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HALDEBUG(ah, HAL_DEBUG_RFPARAM,
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"%s: Min gain limit.\n", __func__);
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return -2;
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}
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HALDEBUG(ah, HAL_DEBUG_RFPARAM,
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"%s: Deducting gain: currG=%d [%s] --> ",
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__func__, gv->currGain, gv->currStep->stepName);
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gv->targetGain = gv->currGain;
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while (gv->targetGain <= gv->loTrig &&
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gv->currStepNum < (gl->numStepsInLadder - 1)) {
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gv->targetGain -= 2 *
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(gl->optStep[++(gv->currStepNum)].stepGain - gv->currStep->stepGain);
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gv->currStep = &gl->optStep[gv->currStepNum];
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}
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HALDEBUG(ah, HAL_DEBUG_RFPARAM, "targG=%d [%s]\n",
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gv->targetGain, gv->currStep->stepName);
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return 2;
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}
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return 0; /* caller didn't call needAdjGain first */
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}
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/*
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* Read rf register to determine if gainF needs correction
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*/
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static void
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ar5212GetGainFCorrection(struct ath_hal *ah)
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{
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struct ath_hal_5212 *ahp = AH5212(ah);
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GAIN_VALUES *gv = &ahp->ah_gainValues;
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HALASSERT(IS_RADX112_REV2(ah));
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gv->gainFCorrection = 0;
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if (ar5212GetRfField(ar5212GetRfBank(ah, 7), 1, 36, 0) == 1) {
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uint32_t mixGain = gv->currStep->paramVal[0];
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uint32_t gainStep =
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ar5212GetRfField(ar5212GetRfBank(ah, 7), 4, 32, 0);
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switch (mixGain) {
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case 0 :
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gv->gainFCorrection = 0;
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break;
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case 1 :
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gv->gainFCorrection = gainStep;
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break;
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case 2 :
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gv->gainFCorrection = 2 * gainStep - 5;
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break;
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case 3 :
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gv->gainFCorrection = 2 * gainStep;
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break;
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}
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}
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}
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/*
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* Exported call to check for a recent gain reading and return
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* the current state of the thermal calibration gain engine.
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*/
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HAL_RFGAIN
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ar5212GetRfgain(struct ath_hal *ah)
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{
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struct ath_hal_5212 *ahp = AH5212(ah);
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GAIN_VALUES *gv = &ahp->ah_gainValues;
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uint32_t rddata, probeType;
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/* NB: beware of touching the BB when PHY is powered down */
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if (!gv->active || !ahp->ah_phyPowerOn)
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return HAL_RFGAIN_INACTIVE;
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if (ahp->ah_rfgainState == HAL_RFGAIN_READ_REQUESTED) {
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/* Caller had asked to setup a new reading. Check it. */
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rddata = OS_REG_READ(ah, AR_PHY_PAPD_PROBE);
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if ((rddata & AR_PHY_PAPD_PROBE_NEXT_TX) == 0) {
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/* bit got cleared, we have a new reading. */
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gv->currGain = rddata >> AR_PHY_PAPD_PROBE_GAINF_S;
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probeType = MS(rddata, AR_PHY_PAPD_PROBE_TYPE);
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if (probeType == AR_PHY_PAPD_PROBE_TYPE_CCK) {
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const HAL_EEPROM *ee = AH_PRIVATE(ah)->ah_eeprom;
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HALASSERT(IS_RAD5112_ANY(ah));
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HALASSERT(ah->ah_magic == AR5212_MAGIC);
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if (AH_PRIVATE(ah)->ah_phyRev >= AR_PHY_CHIP_ID_REV_2)
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gv->currGain += ee->ee_cckOfdmGainDelta;
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else
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gv->currGain += PHY_PROBE_CCK_CORRECTION;
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}
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if (IS_RADX112_REV2(ah)) {
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ar5212GetGainFCorrection(ah);
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if (gv->currGain >= gv->gainFCorrection)
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gv->currGain -= gv->gainFCorrection;
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else
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gv->currGain = 0;
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}
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/* inactive by default */
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ahp->ah_rfgainState = HAL_RFGAIN_INACTIVE;
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if (!ar5212InvalidGainReadback(ah, gv) &&
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ar5212IsGainAdjustNeeded(ah, gv) &&
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ar5212AdjustGain(ah, gv) > 0) {
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/*
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* Change needed. Copy ladder info
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* into eeprom info.
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*/
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ahp->ah_rfgainState = HAL_RFGAIN_NEED_CHANGE;
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/* for ap51 */
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ahp->ah_cwCalRequire = AH_TRUE;
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/* Request IQ recalibration for temperature chang */
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ahp->ah_bIQCalibration = IQ_CAL_INACTIVE;
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}
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}
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}
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return ahp->ah_rfgainState;
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}
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