ar9003_calib.c 46.5 KB
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/*
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 * Copyright (c) 2010-2011 Atheros Communications Inc.
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 *
 * 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.
 */

#include "hw.h"
#include "hw-ops.h"
#include "ar9003_phy.h"
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#include "ar9003_rtt.h"
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#include "ar9003_mci.h"
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#define MAX_MEASUREMENT	MAX_IQCAL_MEASUREMENT
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#define MAX_MAG_DELTA	11
#define MAX_PHS_DELTA	10
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#define MAXIQCAL        3
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struct coeff {
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	int mag_coeff[AR9300_MAX_CHAINS][MAX_MEASUREMENT][MAXIQCAL];
	int phs_coeff[AR9300_MAX_CHAINS][MAX_MEASUREMENT][MAXIQCAL];
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	int iqc_coeff[2];
};

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enum ar9003_cal_types {
	IQ_MISMATCH_CAL = BIT(0),
};

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static void ar9003_hw_setup_calibration(struct ath_hw *ah,
					struct ath9k_cal_list *currCal)
{
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	struct ath_common *common = ath9k_hw_common(ah);

	/* Select calibration to run */
	switch (currCal->calData->calType) {
	case IQ_MISMATCH_CAL:
		/*
		 * Start calibration with
		 * 2^(INIT_IQCAL_LOG_COUNT_MAX+1) samples
		 */
		REG_RMW_FIELD(ah, AR_PHY_TIMING4,
			      AR_PHY_TIMING4_IQCAL_LOG_COUNT_MAX,
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			      currCal->calData->calCountMax);
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		REG_WRITE(ah, AR_PHY_CALMODE, AR_PHY_CALMODE_IQ);

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		ath_dbg(common, CALIBRATE,
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			"starting IQ Mismatch Calibration\n");
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		/* Kick-off cal */
		REG_SET_BIT(ah, AR_PHY_TIMING4, AR_PHY_TIMING4_DO_CAL);
		break;
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	default:
		ath_err(common, "Invalid calibration type\n");
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		break;
	}
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}

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/*
 * Generic calibration routine.
 * Recalibrate the lower PHY chips to account for temperature/environment
 * changes.
 */
static bool ar9003_hw_per_calibration(struct ath_hw *ah,
				      struct ath9k_channel *ichan,
				      u8 rxchainmask,
				      struct ath9k_cal_list *currCal)
{
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	struct ath9k_hw_cal_data *caldata = ah->caldata;
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	/* Cal is assumed not done until explicitly set below */
	bool iscaldone = false;

	/* Calibration in progress. */
	if (currCal->calState == CAL_RUNNING) {
		/* Check to see if it has finished. */
		if (!(REG_READ(ah, AR_PHY_TIMING4) & AR_PHY_TIMING4_DO_CAL)) {
			/*
			* Accumulate cal measures for active chains
			*/
			currCal->calData->calCollect(ah);
			ah->cal_samples++;

			if (ah->cal_samples >=
			    currCal->calData->calNumSamples) {
				unsigned int i, numChains = 0;
				for (i = 0; i < AR9300_MAX_CHAINS; i++) {
					if (rxchainmask & (1 << i))
						numChains++;
				}

				/*
				* Process accumulated data
				*/
				currCal->calData->calPostProc(ah, numChains);

				/* Calibration has finished. */
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				caldata->CalValid |= currCal->calData->calType;
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				currCal->calState = CAL_DONE;
				iscaldone = true;
			} else {
			/*
			 * Set-up collection of another sub-sample until we
			 * get desired number
			 */
			ar9003_hw_setup_calibration(ah, currCal);
			}
		}
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	} else if (!(caldata->CalValid & currCal->calData->calType)) {
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		/* If current cal is marked invalid in channel, kick it off */
		ath9k_hw_reset_calibration(ah, currCal);
	}

	return iscaldone;
}

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static int ar9003_hw_calibrate(struct ath_hw *ah, struct ath9k_channel *chan,
			       u8 rxchainmask, bool longcal)
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{
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	bool iscaldone = true;
	struct ath9k_cal_list *currCal = ah->cal_list_curr;
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	int ret;
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	/*
	 * For given calibration:
	 * 1. Call generic cal routine
	 * 2. When this cal is done (isCalDone) if we have more cals waiting
	 *    (eg after reset), mask this to upper layers by not propagating
	 *    isCalDone if it is set to TRUE.
	 *    Instead, change isCalDone to FALSE and setup the waiting cal(s)
	 *    to be run.
	 */
	if (currCal &&
	    (currCal->calState == CAL_RUNNING ||
	     currCal->calState == CAL_WAITING)) {
		iscaldone = ar9003_hw_per_calibration(ah, chan,
						      rxchainmask, currCal);
		if (iscaldone) {
			ah->cal_list_curr = currCal = currCal->calNext;

			if (currCal->calState == CAL_WAITING) {
				iscaldone = false;
				ath9k_hw_reset_calibration(ah, currCal);
			}
		}
	}
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	/*
	 * Do NF cal only at longer intervals. Get the value from
	 * the previous NF cal and update history buffer.
	 */
	if (longcal && ath9k_hw_getnf(ah, chan)) {
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		/*
		 * Load the NF from history buffer of the current channel.
		 * NF is slow time-variant, so it is OK to use a historical
		 * value.
		 */
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		ret = ath9k_hw_loadnf(ah, ah->curchan);
		if (ret < 0)
			return ret;
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		/* start NF calibration, without updating BB NF register */
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		ath9k_hw_start_nfcal(ah, false);
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	}

	return iscaldone;
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}

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static void ar9003_hw_iqcal_collect(struct ath_hw *ah)
{
	int i;

	/* Accumulate IQ cal measures for active chains */
	for (i = 0; i < AR5416_MAX_CHAINS; i++) {
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		if (ah->txchainmask & BIT(i)) {
			ah->totalPowerMeasI[i] +=
				REG_READ(ah, AR_PHY_CAL_MEAS_0(i));
			ah->totalPowerMeasQ[i] +=
				REG_READ(ah, AR_PHY_CAL_MEAS_1(i));
			ah->totalIqCorrMeas[i] +=
				(int32_t) REG_READ(ah, AR_PHY_CAL_MEAS_2(i));
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			ath_dbg(ath9k_hw_common(ah), CALIBRATE,
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				"%d: Chn %d pmi=0x%08x;pmq=0x%08x;iqcm=0x%08x;\n",
				ah->cal_samples, i, ah->totalPowerMeasI[i],
				ah->totalPowerMeasQ[i],
				ah->totalIqCorrMeas[i]);
		}
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	}
}

static void ar9003_hw_iqcalibrate(struct ath_hw *ah, u8 numChains)
{
	struct ath_common *common = ath9k_hw_common(ah);
	u32 powerMeasQ, powerMeasI, iqCorrMeas;
	u32 qCoffDenom, iCoffDenom;
	int32_t qCoff, iCoff;
	int iqCorrNeg, i;
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	static const u_int32_t offset_array[3] = {
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		AR_PHY_RX_IQCAL_CORR_B0,
		AR_PHY_RX_IQCAL_CORR_B1,
		AR_PHY_RX_IQCAL_CORR_B2,
	};

	for (i = 0; i < numChains; i++) {
		powerMeasI = ah->totalPowerMeasI[i];
		powerMeasQ = ah->totalPowerMeasQ[i];
		iqCorrMeas = ah->totalIqCorrMeas[i];

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		ath_dbg(common, CALIBRATE,
			"Starting IQ Cal and Correction for Chain %d\n", i);
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		ath_dbg(common, CALIBRATE,
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			"Original: Chn %d iq_corr_meas = 0x%08x\n",
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			i, ah->totalIqCorrMeas[i]);
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		iqCorrNeg = 0;

		if (iqCorrMeas > 0x80000000) {
			iqCorrMeas = (0xffffffff - iqCorrMeas) + 1;
			iqCorrNeg = 1;
		}

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		ath_dbg(common, CALIBRATE, "Chn %d pwr_meas_i = 0x%08x\n",
			i, powerMeasI);
		ath_dbg(common, CALIBRATE, "Chn %d pwr_meas_q = 0x%08x\n",
			i, powerMeasQ);
		ath_dbg(common, CALIBRATE, "iqCorrNeg is 0x%08x\n", iqCorrNeg);
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		iCoffDenom = (powerMeasI / 2 + powerMeasQ / 2) / 256;
		qCoffDenom = powerMeasQ / 64;

		if ((iCoffDenom != 0) && (qCoffDenom != 0)) {
			iCoff = iqCorrMeas / iCoffDenom;
			qCoff = powerMeasI / qCoffDenom - 64;
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			ath_dbg(common, CALIBRATE, "Chn %d iCoff = 0x%08x\n",
				i, iCoff);
			ath_dbg(common, CALIBRATE, "Chn %d qCoff = 0x%08x\n",
				i, qCoff);
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			/* Force bounds on iCoff */
			if (iCoff >= 63)
				iCoff = 63;
			else if (iCoff <= -63)
				iCoff = -63;

			/* Negate iCoff if iqCorrNeg == 0 */
			if (iqCorrNeg == 0x0)
				iCoff = -iCoff;

			/* Force bounds on qCoff */
			if (qCoff >= 63)
				qCoff = 63;
			else if (qCoff <= -63)
				qCoff = -63;

			iCoff = iCoff & 0x7f;
			qCoff = qCoff & 0x7f;

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			ath_dbg(common, CALIBRATE,
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				"Chn %d : iCoff = 0x%x  qCoff = 0x%x\n",
				i, iCoff, qCoff);
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			ath_dbg(common, CALIBRATE,
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				"Register offset (0x%04x) before update = 0x%x\n",
				offset_array[i],
				REG_READ(ah, offset_array[i]));
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			if (AR_SREV_9565(ah) &&
			    (iCoff == 63 || qCoff == 63 ||
			     iCoff == -63 || qCoff == -63))
				return;

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			REG_RMW_FIELD(ah, offset_array[i],
				      AR_PHY_RX_IQCAL_CORR_IQCORR_Q_I_COFF,
				      iCoff);
			REG_RMW_FIELD(ah, offset_array[i],
				      AR_PHY_RX_IQCAL_CORR_IQCORR_Q_Q_COFF,
				      qCoff);
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			ath_dbg(common, CALIBRATE,
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				"Register offset (0x%04x) QI COFF (bitfields 0x%08x) after update = 0x%x\n",
				offset_array[i],
				AR_PHY_RX_IQCAL_CORR_IQCORR_Q_I_COFF,
				REG_READ(ah, offset_array[i]));
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			ath_dbg(common, CALIBRATE,
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				"Register offset (0x%04x) QQ COFF (bitfields 0x%08x) after update = 0x%x\n",
				offset_array[i],
				AR_PHY_RX_IQCAL_CORR_IQCORR_Q_Q_COFF,
				REG_READ(ah, offset_array[i]));

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			ath_dbg(common, CALIBRATE,
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				"IQ Cal and Correction done for Chain %d\n", i);
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		}
	}

	REG_SET_BIT(ah, AR_PHY_RX_IQCAL_CORR_B0,
		    AR_PHY_RX_IQCAL_CORR_IQCORR_ENABLE);
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	ath_dbg(common, CALIBRATE,
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		"IQ Cal and Correction (offset 0x%04x) enabled (bit position 0x%08x). New Value 0x%08x\n",
		(unsigned) (AR_PHY_RX_IQCAL_CORR_B0),
		AR_PHY_RX_IQCAL_CORR_IQCORR_ENABLE,
		REG_READ(ah, AR_PHY_RX_IQCAL_CORR_B0));
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}

static const struct ath9k_percal_data iq_cal_single_sample = {
	IQ_MISMATCH_CAL,
	MIN_CAL_SAMPLES,
	PER_MAX_LOG_COUNT,
	ar9003_hw_iqcal_collect,
	ar9003_hw_iqcalibrate
};

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static void ar9003_hw_init_cal_settings(struct ath_hw *ah)
{
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	ah->iq_caldata.calData = &iq_cal_single_sample;
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	if (AR_SREV_9300_20_OR_LATER(ah)) {
		ah->enabled_cals |= TX_IQ_CAL;
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		if (AR_SREV_9485_OR_LATER(ah) && !AR_SREV_9340(ah))
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			ah->enabled_cals |= TX_IQ_ON_AGC_CAL;
	}

	ah->supp_cals = IQ_MISMATCH_CAL;
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}

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#define OFF_UPPER_LT 24
#define OFF_LOWER_LT 7

static bool ar9003_hw_dynamic_osdac_selection(struct ath_hw *ah,
					      bool txiqcal_done)
{
	struct ath_common *common = ath9k_hw_common(ah);
	int ch0_done, osdac_ch0, dc_off_ch0_i1, dc_off_ch0_q1, dc_off_ch0_i2,
		dc_off_ch0_q2, dc_off_ch0_i3, dc_off_ch0_q3;
	int ch1_done, osdac_ch1, dc_off_ch1_i1, dc_off_ch1_q1, dc_off_ch1_i2,
		dc_off_ch1_q2, dc_off_ch1_i3, dc_off_ch1_q3;
	int ch2_done, osdac_ch2, dc_off_ch2_i1, dc_off_ch2_q1, dc_off_ch2_i2,
		dc_off_ch2_q2, dc_off_ch2_i3, dc_off_ch2_q3;
	bool status;
	u32 temp, val;

	/*
	 * Clear offset and IQ calibration, run AGC cal.
	 */
	REG_CLR_BIT(ah, AR_PHY_AGC_CONTROL,
		    AR_PHY_AGC_CONTROL_OFFSET_CAL);
	REG_CLR_BIT(ah, AR_PHY_TX_IQCAL_CONTROL_0,
		    AR_PHY_TX_IQCAL_CONTROL_0_ENABLE_TXIQ_CAL);
	REG_WRITE(ah, AR_PHY_AGC_CONTROL,
		  REG_READ(ah, AR_PHY_AGC_CONTROL) | AR_PHY_AGC_CONTROL_CAL);

	status = ath9k_hw_wait(ah, AR_PHY_AGC_CONTROL,
			       AR_PHY_AGC_CONTROL_CAL,
			       0, AH_WAIT_TIMEOUT);
	if (!status) {
		ath_dbg(common, CALIBRATE,
			"AGC cal without offset cal failed to complete in 1ms");
		return false;
	}

	/*
	 * Allow only offset calibration and disable the others
	 * (Carrier Leak calibration, TX Filter calibration and
	 *  Peak Detector offset calibration).
	 */
	REG_SET_BIT(ah, AR_PHY_AGC_CONTROL,
		    AR_PHY_AGC_CONTROL_OFFSET_CAL);
	REG_CLR_BIT(ah, AR_PHY_CL_CAL_CTL,
		    AR_PHY_CL_CAL_ENABLE);
	REG_CLR_BIT(ah, AR_PHY_AGC_CONTROL,
		    AR_PHY_AGC_CONTROL_FLTR_CAL);
	REG_CLR_BIT(ah, AR_PHY_AGC_CONTROL,
		    AR_PHY_AGC_CONTROL_PKDET_CAL);

	ch0_done = 0;
	ch1_done = 0;
	ch2_done = 0;

	while ((ch0_done == 0) || (ch1_done == 0) || (ch2_done == 0)) {
		osdac_ch0 = (REG_READ(ah, AR_PHY_65NM_CH0_BB1) >> 30) & 0x3;
		osdac_ch1 = (REG_READ(ah, AR_PHY_65NM_CH1_BB1) >> 30) & 0x3;
		osdac_ch2 = (REG_READ(ah, AR_PHY_65NM_CH2_BB1) >> 30) & 0x3;

		REG_SET_BIT(ah, AR_PHY_ACTIVE, AR_PHY_ACTIVE_EN);

		REG_WRITE(ah, AR_PHY_AGC_CONTROL,
			  REG_READ(ah, AR_PHY_AGC_CONTROL) | AR_PHY_AGC_CONTROL_CAL);

		status = ath9k_hw_wait(ah, AR_PHY_AGC_CONTROL,
				       AR_PHY_AGC_CONTROL_CAL,
				       0, AH_WAIT_TIMEOUT);
		if (!status) {
			ath_dbg(common, CALIBRATE,
				"DC offset cal failed to complete in 1ms");
			return false;
		}

		REG_CLR_BIT(ah, AR_PHY_ACTIVE, AR_PHY_ACTIVE_EN);

		/*
		 * High gain.
		 */
		REG_WRITE(ah, AR_PHY_65NM_CH0_BB3,
			  ((REG_READ(ah, AR_PHY_65NM_CH0_BB3) & 0xfffffcff) | (1 << 8)));
		REG_WRITE(ah, AR_PHY_65NM_CH1_BB3,
			  ((REG_READ(ah, AR_PHY_65NM_CH1_BB3) & 0xfffffcff) | (1 << 8)));
		REG_WRITE(ah, AR_PHY_65NM_CH2_BB3,
			  ((REG_READ(ah, AR_PHY_65NM_CH2_BB3) & 0xfffffcff) | (1 << 8)));

		temp = REG_READ(ah, AR_PHY_65NM_CH0_BB3);
		dc_off_ch0_i1 = (temp >> 26) & 0x1f;
		dc_off_ch0_q1 = (temp >> 21) & 0x1f;

		temp = REG_READ(ah, AR_PHY_65NM_CH1_BB3);
		dc_off_ch1_i1 = (temp >> 26) & 0x1f;
		dc_off_ch1_q1 = (temp >> 21) & 0x1f;

		temp = REG_READ(ah, AR_PHY_65NM_CH2_BB3);
		dc_off_ch2_i1 = (temp >> 26) & 0x1f;
		dc_off_ch2_q1 = (temp >> 21) & 0x1f;

		/*
		 * Low gain.
		 */
		REG_WRITE(ah, AR_PHY_65NM_CH0_BB3,
			  ((REG_READ(ah, AR_PHY_65NM_CH0_BB3) & 0xfffffcff) | (2 << 8)));
		REG_WRITE(ah, AR_PHY_65NM_CH1_BB3,
			  ((REG_READ(ah, AR_PHY_65NM_CH1_BB3) & 0xfffffcff) | (2 << 8)));
		REG_WRITE(ah, AR_PHY_65NM_CH2_BB3,
			  ((REG_READ(ah, AR_PHY_65NM_CH2_BB3) & 0xfffffcff) | (2 << 8)));

		temp = REG_READ(ah, AR_PHY_65NM_CH0_BB3);
		dc_off_ch0_i2 = (temp >> 26) & 0x1f;
		dc_off_ch0_q2 = (temp >> 21) & 0x1f;

		temp = REG_READ(ah, AR_PHY_65NM_CH1_BB3);
		dc_off_ch1_i2 = (temp >> 26) & 0x1f;
		dc_off_ch1_q2 = (temp >> 21) & 0x1f;

		temp = REG_READ(ah, AR_PHY_65NM_CH2_BB3);
		dc_off_ch2_i2 = (temp >> 26) & 0x1f;
		dc_off_ch2_q2 = (temp >> 21) & 0x1f;

		/*
		 * Loopback.
		 */
		REG_WRITE(ah, AR_PHY_65NM_CH0_BB3,
			  ((REG_READ(ah, AR_PHY_65NM_CH0_BB3) & 0xfffffcff) | (3 << 8)));
		REG_WRITE(ah, AR_PHY_65NM_CH1_BB3,
			  ((REG_READ(ah, AR_PHY_65NM_CH1_BB3) & 0xfffffcff) | (3 << 8)));
		REG_WRITE(ah, AR_PHY_65NM_CH2_BB3,
			  ((REG_READ(ah, AR_PHY_65NM_CH2_BB3) & 0xfffffcff) | (3 << 8)));

		temp = REG_READ(ah, AR_PHY_65NM_CH0_BB3);
		dc_off_ch0_i3 = (temp >> 26) & 0x1f;
		dc_off_ch0_q3 = (temp >> 21) & 0x1f;

		temp = REG_READ(ah, AR_PHY_65NM_CH1_BB3);
		dc_off_ch1_i3 = (temp >> 26) & 0x1f;
		dc_off_ch1_q3 = (temp >> 21) & 0x1f;

		temp = REG_READ(ah, AR_PHY_65NM_CH2_BB3);
		dc_off_ch2_i3 = (temp >> 26) & 0x1f;
		dc_off_ch2_q3 = (temp >> 21) & 0x1f;

		if ((dc_off_ch0_i1 > OFF_UPPER_LT) || (dc_off_ch0_i1 < OFF_LOWER_LT) ||
		    (dc_off_ch0_i2 > OFF_UPPER_LT) || (dc_off_ch0_i2 < OFF_LOWER_LT) ||
		    (dc_off_ch0_i3 > OFF_UPPER_LT) || (dc_off_ch0_i3 < OFF_LOWER_LT) ||
		    (dc_off_ch0_q1 > OFF_UPPER_LT) || (dc_off_ch0_q1 < OFF_LOWER_LT) ||
		    (dc_off_ch0_q2 > OFF_UPPER_LT) || (dc_off_ch0_q2 < OFF_LOWER_LT) ||
		    (dc_off_ch0_q3 > OFF_UPPER_LT) || (dc_off_ch0_q3 < OFF_LOWER_LT)) {
			if (osdac_ch0 == 3) {
				ch0_done = 1;
			} else {
				osdac_ch0++;

				val = REG_READ(ah, AR_PHY_65NM_CH0_BB1) & 0x3fffffff;
				val |= (osdac_ch0 << 30);
				REG_WRITE(ah, AR_PHY_65NM_CH0_BB1, val);

				ch0_done = 0;
			}
		} else {
			ch0_done = 1;
		}

		if ((dc_off_ch1_i1 > OFF_UPPER_LT) || (dc_off_ch1_i1 < OFF_LOWER_LT) ||
		    (dc_off_ch1_i2 > OFF_UPPER_LT) || (dc_off_ch1_i2 < OFF_LOWER_LT) ||
		    (dc_off_ch1_i3 > OFF_UPPER_LT) || (dc_off_ch1_i3 < OFF_LOWER_LT) ||
		    (dc_off_ch1_q1 > OFF_UPPER_LT) || (dc_off_ch1_q1 < OFF_LOWER_LT) ||
		    (dc_off_ch1_q2 > OFF_UPPER_LT) || (dc_off_ch1_q2 < OFF_LOWER_LT) ||
		    (dc_off_ch1_q3 > OFF_UPPER_LT) || (dc_off_ch1_q3 < OFF_LOWER_LT)) {
			if (osdac_ch1 == 3) {
				ch1_done = 1;
			} else {
				osdac_ch1++;

				val = REG_READ(ah, AR_PHY_65NM_CH1_BB1) & 0x3fffffff;
				val |= (osdac_ch1 << 30);
				REG_WRITE(ah, AR_PHY_65NM_CH1_BB1, val);

				ch1_done = 0;
			}
		} else {
			ch1_done = 1;
		}

		if ((dc_off_ch2_i1 > OFF_UPPER_LT) || (dc_off_ch2_i1 < OFF_LOWER_LT) ||
		    (dc_off_ch2_i2 > OFF_UPPER_LT) || (dc_off_ch2_i2 < OFF_LOWER_LT) ||
		    (dc_off_ch2_i3 > OFF_UPPER_LT) || (dc_off_ch2_i3 < OFF_LOWER_LT) ||
		    (dc_off_ch2_q1 > OFF_UPPER_LT) || (dc_off_ch2_q1 < OFF_LOWER_LT) ||
		    (dc_off_ch2_q2 > OFF_UPPER_LT) || (dc_off_ch2_q2 < OFF_LOWER_LT) ||
		    (dc_off_ch2_q3 > OFF_UPPER_LT) || (dc_off_ch2_q3 < OFF_LOWER_LT)) {
			if (osdac_ch2 == 3) {
				ch2_done = 1;
			} else {
				osdac_ch2++;

				val = REG_READ(ah, AR_PHY_65NM_CH2_BB1) & 0x3fffffff;
				val |= (osdac_ch2 << 30);
				REG_WRITE(ah, AR_PHY_65NM_CH2_BB1, val);

				ch2_done = 0;
			}
		} else {
			ch2_done = 1;
		}
	}

	REG_CLR_BIT(ah, AR_PHY_AGC_CONTROL,
		    AR_PHY_AGC_CONTROL_OFFSET_CAL);
	REG_SET_BIT(ah, AR_PHY_ACTIVE, AR_PHY_ACTIVE_EN);

	/*
	 * We don't need to check txiqcal_done here since it is always
	 * set for AR9550.
	 */
	REG_SET_BIT(ah, AR_PHY_TX_IQCAL_CONTROL_0,
		    AR_PHY_TX_IQCAL_CONTROL_0_ENABLE_TXIQ_CAL);

	return true;
}

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/*
 * solve 4x4 linear equation used in loopback iq cal.
 */
static bool ar9003_hw_solve_iq_cal(struct ath_hw *ah,
				   s32 sin_2phi_1,
				   s32 cos_2phi_1,
				   s32 sin_2phi_2,
				   s32 cos_2phi_2,
				   s32 mag_a0_d0,
				   s32 phs_a0_d0,
				   s32 mag_a1_d0,
				   s32 phs_a1_d0,
				   s32 solved_eq[])
{
	s32 f1 = cos_2phi_1 - cos_2phi_2,
	    f3 = sin_2phi_1 - sin_2phi_2,
	    f2;
	s32 mag_tx, phs_tx, mag_rx, phs_rx;
	const s32 result_shift = 1 << 15;
	struct ath_common *common = ath9k_hw_common(ah);

570
	f2 = ((f1 >> 3) * (f1 >> 3) + (f3 >> 3) * (f3 >> 3)) >> 9;
571 572

	if (!f2) {
573
		ath_dbg(common, CALIBRATE, "Divide by 0\n");
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		return false;
	}

	/* mag mismatch, tx */
	mag_tx = f1 * (mag_a0_d0  - mag_a1_d0) + f3 * (phs_a0_d0 - phs_a1_d0);
	/* phs mismatch, tx */
	phs_tx = f3 * (-mag_a0_d0 + mag_a1_d0) + f1 * (phs_a0_d0 - phs_a1_d0);

	mag_tx = (mag_tx / f2);
	phs_tx = (phs_tx / f2);

	/* mag mismatch, rx */
	mag_rx = mag_a0_d0 - (cos_2phi_1 * mag_tx + sin_2phi_1 * phs_tx) /
		 result_shift;
	/* phs mismatch, rx */
	phs_rx = phs_a0_d0 + (sin_2phi_1 * mag_tx - cos_2phi_1 * phs_tx) /
		 result_shift;

	solved_eq[0] = mag_tx;
	solved_eq[1] = phs_tx;
	solved_eq[2] = mag_rx;
	solved_eq[3] = phs_rx;

	return true;
}

static s32 ar9003_hw_find_mag_approx(struct ath_hw *ah, s32 in_re, s32 in_im)
601
{
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	s32 abs_i = abs(in_re),
	    abs_q = abs(in_im),
	    max_abs, min_abs;

	if (abs_i > abs_q) {
		max_abs = abs_i;
		min_abs = abs_q;
	} else {
		max_abs = abs_q;
		min_abs = abs_i;
	}

	return max_abs - (max_abs / 32) + (min_abs / 8) + (min_abs / 4);
}

#define DELPT 32

static bool ar9003_hw_calc_iq_corr(struct ath_hw *ah,
				   s32 chain_idx,
				   const s32 iq_res[],
				   s32 iqc_coeff[])
{
	s32 i2_m_q2_a0_d0, i2_p_q2_a0_d0, iq_corr_a0_d0,
	    i2_m_q2_a0_d1, i2_p_q2_a0_d1, iq_corr_a0_d1,
	    i2_m_q2_a1_d0, i2_p_q2_a1_d0, iq_corr_a1_d0,
	    i2_m_q2_a1_d1, i2_p_q2_a1_d1, iq_corr_a1_d1;
	s32 mag_a0_d0, mag_a1_d0, mag_a0_d1, mag_a1_d1,
	    phs_a0_d0, phs_a1_d0, phs_a0_d1, phs_a1_d1,
	    sin_2phi_1, cos_2phi_1,
	    sin_2phi_2, cos_2phi_2;
	s32 mag_tx, phs_tx, mag_rx, phs_rx;
	s32 solved_eq[4], mag_corr_tx, phs_corr_tx, mag_corr_rx, phs_corr_rx,
	    q_q_coff, q_i_coff;
	const s32 res_scale = 1 << 15;
	const s32 delpt_shift = 1 << 8;
	s32 mag1, mag2;
	struct ath_common *common = ath9k_hw_common(ah);

	i2_m_q2_a0_d0 = iq_res[0] & 0xfff;
	i2_p_q2_a0_d0 = (iq_res[0] >> 12) & 0xfff;
	iq_corr_a0_d0 = ((iq_res[0] >> 24) & 0xff) + ((iq_res[1] & 0xf) << 8);

	if (i2_m_q2_a0_d0 > 0x800)
		i2_m_q2_a0_d0 = -((0xfff - i2_m_q2_a0_d0) + 1);

	if (i2_p_q2_a0_d0 > 0x800)
		i2_p_q2_a0_d0 = -((0xfff - i2_p_q2_a0_d0) + 1);

	if (iq_corr_a0_d0 > 0x800)
		iq_corr_a0_d0 = -((0xfff - iq_corr_a0_d0) + 1);

	i2_m_q2_a0_d1 = (iq_res[1] >> 4) & 0xfff;
	i2_p_q2_a0_d1 = (iq_res[2] & 0xfff);
	iq_corr_a0_d1 = (iq_res[2] >> 12) & 0xfff;

	if (i2_m_q2_a0_d1 > 0x800)
		i2_m_q2_a0_d1 = -((0xfff - i2_m_q2_a0_d1) + 1);

	if (iq_corr_a0_d1 > 0x800)
		iq_corr_a0_d1 = -((0xfff - iq_corr_a0_d1) + 1);

	i2_m_q2_a1_d0 = ((iq_res[2] >> 24) & 0xff) + ((iq_res[3] & 0xf) << 8);
	i2_p_q2_a1_d0 = (iq_res[3] >> 4) & 0xfff;
	iq_corr_a1_d0 = iq_res[4] & 0xfff;

	if (i2_m_q2_a1_d0 > 0x800)
		i2_m_q2_a1_d0 = -((0xfff - i2_m_q2_a1_d0) + 1);

	if (i2_p_q2_a1_d0 > 0x800)
		i2_p_q2_a1_d0 = -((0xfff - i2_p_q2_a1_d0) + 1);

	if (iq_corr_a1_d0 > 0x800)
		iq_corr_a1_d0 = -((0xfff - iq_corr_a1_d0) + 1);

	i2_m_q2_a1_d1 = (iq_res[4] >> 12) & 0xfff;
	i2_p_q2_a1_d1 = ((iq_res[4] >> 24) & 0xff) + ((iq_res[5] & 0xf) << 8);
	iq_corr_a1_d1 = (iq_res[5] >> 4) & 0xfff;

	if (i2_m_q2_a1_d1 > 0x800)
		i2_m_q2_a1_d1 = -((0xfff - i2_m_q2_a1_d1) + 1);

	if (i2_p_q2_a1_d1 > 0x800)
		i2_p_q2_a1_d1 = -((0xfff - i2_p_q2_a1_d1) + 1);

	if (iq_corr_a1_d1 > 0x800)
		iq_corr_a1_d1 = -((0xfff - iq_corr_a1_d1) + 1);

	if ((i2_p_q2_a0_d0 == 0) || (i2_p_q2_a0_d1 == 0) ||
	    (i2_p_q2_a1_d0 == 0) || (i2_p_q2_a1_d1 == 0)) {
691
		ath_dbg(common, CALIBRATE,
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			"Divide by 0:\n"
			"a0_d0=%d\n"
			"a0_d1=%d\n"
			"a2_d0=%d\n"
			"a1_d1=%d\n",
			i2_p_q2_a0_d0, i2_p_q2_a0_d1,
			i2_p_q2_a1_d0, i2_p_q2_a1_d1);
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		return false;
	}

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	if ((i2_p_q2_a0_d0 < 1024) || (i2_p_q2_a0_d0 > 2047) ||
            (i2_p_q2_a1_d0 < 0) || (i2_p_q2_a1_d1 < 0) ||
            (i2_p_q2_a0_d0 <= i2_m_q2_a0_d0) ||
            (i2_p_q2_a0_d0 <= iq_corr_a0_d0) ||
            (i2_p_q2_a0_d1 <= i2_m_q2_a0_d1) ||
            (i2_p_q2_a0_d1 <= iq_corr_a0_d1) ||
            (i2_p_q2_a1_d0 <= i2_m_q2_a1_d0) ||
            (i2_p_q2_a1_d0 <= iq_corr_a1_d0) ||
            (i2_p_q2_a1_d1 <= i2_m_q2_a1_d1) ||
            (i2_p_q2_a1_d1 <= iq_corr_a1_d1)) {
		return false;
	}

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	mag_a0_d0 = (i2_m_q2_a0_d0 * res_scale) / i2_p_q2_a0_d0;
	phs_a0_d0 = (iq_corr_a0_d0 * res_scale) / i2_p_q2_a0_d0;

	mag_a0_d1 = (i2_m_q2_a0_d1 * res_scale) / i2_p_q2_a0_d1;
	phs_a0_d1 = (iq_corr_a0_d1 * res_scale) / i2_p_q2_a0_d1;

	mag_a1_d0 = (i2_m_q2_a1_d0 * res_scale) / i2_p_q2_a1_d0;
	phs_a1_d0 = (iq_corr_a1_d0 * res_scale) / i2_p_q2_a1_d0;

	mag_a1_d1 = (i2_m_q2_a1_d1 * res_scale) / i2_p_q2_a1_d1;
	phs_a1_d1 = (iq_corr_a1_d1 * res_scale) / i2_p_q2_a1_d1;

	/* w/o analog phase shift */
	sin_2phi_1 = (((mag_a0_d0 - mag_a0_d1) * delpt_shift) / DELPT);
	/* w/o analog phase shift */
	cos_2phi_1 = (((phs_a0_d1 - phs_a0_d0) * delpt_shift) / DELPT);
	/* w/  analog phase shift */
	sin_2phi_2 = (((mag_a1_d0 - mag_a1_d1) * delpt_shift) / DELPT);
	/* w/  analog phase shift */
	cos_2phi_2 = (((phs_a1_d1 - phs_a1_d0) * delpt_shift) / DELPT);

	/*
	 * force sin^2 + cos^2 = 1;
	 * find magnitude by approximation
	 */
	mag1 = ar9003_hw_find_mag_approx(ah, cos_2phi_1, sin_2phi_1);
	mag2 = ar9003_hw_find_mag_approx(ah, cos_2phi_2, sin_2phi_2);

	if ((mag1 == 0) || (mag2 == 0)) {
744
		ath_dbg(common, CALIBRATE, "Divide by 0: mag1=%d, mag2=%d\n",
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			mag1, mag2);
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		return false;
	}

	/* normalization sin and cos by mag */
	sin_2phi_1 = (sin_2phi_1 * res_scale / mag1);
	cos_2phi_1 = (cos_2phi_1 * res_scale / mag1);
	sin_2phi_2 = (sin_2phi_2 * res_scale / mag2);
	cos_2phi_2 = (cos_2phi_2 * res_scale / mag2);

	/* calculate IQ mismatch */
	if (!ar9003_hw_solve_iq_cal(ah,
			     sin_2phi_1, cos_2phi_1,
			     sin_2phi_2, cos_2phi_2,
			     mag_a0_d0, phs_a0_d0,
			     mag_a1_d0,
			     phs_a1_d0, solved_eq)) {
762 763
		ath_dbg(common, CALIBRATE,
			"Call to ar9003_hw_solve_iq_cal() failed\n");
764 765 766 767 768 769 770 771
		return false;
	}

	mag_tx = solved_eq[0];
	phs_tx = solved_eq[1];
	mag_rx = solved_eq[2];
	phs_rx = solved_eq[3];

772
	ath_dbg(common, CALIBRATE,
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		"chain %d: mag mismatch=%d phase mismatch=%d\n",
		chain_idx, mag_tx/res_scale, phs_tx/res_scale);
775 776

	if (res_scale == mag_tx) {
777
		ath_dbg(common, CALIBRATE,
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			"Divide by 0: mag_tx=%d, res_scale=%d\n",
			mag_tx, res_scale);
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		return false;
	}

	/* calculate and quantize Tx IQ correction factor */
	mag_corr_tx = (mag_tx * res_scale) / (res_scale - mag_tx);
	phs_corr_tx = -phs_tx;

	q_q_coff = (mag_corr_tx * 128 / res_scale);
	q_i_coff = (phs_corr_tx * 256 / res_scale);

790
	ath_dbg(common, CALIBRATE, "tx chain %d: mag corr=%d  phase corr=%d\n",
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		chain_idx, q_q_coff, q_i_coff);
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	if (q_i_coff < -63)
		q_i_coff = -63;
	if (q_i_coff > 63)
		q_i_coff = 63;
	if (q_q_coff < -63)
		q_q_coff = -63;
	if (q_q_coff > 63)
		q_q_coff = 63;

802
	iqc_coeff[0] = (q_q_coff * 128) + (0x7f & q_i_coff);
803

804
	ath_dbg(common, CALIBRATE, "tx chain %d: iq corr coeff=%x\n",
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		chain_idx, iqc_coeff[0]);
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	if (-mag_rx == res_scale) {
808
		ath_dbg(common, CALIBRATE,
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			"Divide by 0: mag_rx=%d, res_scale=%d\n",
			mag_rx, res_scale);
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		return false;
	}

	/* calculate and quantize Rx IQ correction factors */
	mag_corr_rx = (-mag_rx * res_scale) / (res_scale + mag_rx);
	phs_corr_rx = -phs_rx;

	q_q_coff = (mag_corr_rx * 128 / res_scale);
	q_i_coff = (phs_corr_rx * 256 / res_scale);

821
	ath_dbg(common, CALIBRATE, "rx chain %d: mag corr=%d  phase corr=%d\n",
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		chain_idx, q_q_coff, q_i_coff);
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	if (q_i_coff < -63)
		q_i_coff = -63;
	if (q_i_coff > 63)
		q_i_coff = 63;
	if (q_q_coff < -63)
		q_q_coff = -63;
	if (q_q_coff > 63)
		q_q_coff = 63;

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	iqc_coeff[1] = (q_q_coff * 128) + (0x7f & q_i_coff);
834

835
	ath_dbg(common, CALIBRATE, "rx chain %d: iq corr coeff=%x\n",
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		chain_idx, iqc_coeff[1]);
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	return true;
}

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static void ar9003_hw_detect_outlier(int mp_coeff[][MAXIQCAL],
				     int nmeasurement,
843
				     int max_delta)
844
{
845 846
	int mp_max = -64, max_idx = 0;
	int mp_min = 63, min_idx = 0;
847
	int mp_avg = 0, i, outlier_idx = 0, mp_count = 0;
848 849 850

	/* find min/max mismatch across all calibrated gains */
	for (i = 0; i < nmeasurement; i++) {
851 852
		if (mp_coeff[i][0] > mp_max) {
			mp_max = mp_coeff[i][0];
853
			max_idx = i;
854 855
		} else if (mp_coeff[i][0] < mp_min) {
			mp_min = mp_coeff[i][0];
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			min_idx = i;
		}
	}
859

860 861
	/* find average (exclude max abs value) */
	for (i = 0; i < nmeasurement; i++) {
862 863 864
		if ((abs(mp_coeff[i][0]) < abs(mp_max)) ||
		    (abs(mp_coeff[i][0]) < abs(mp_min))) {
			mp_avg += mp_coeff[i][0];
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			mp_count++;
		}
867
	}
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	/*
	 * finding mean magnitude/phase if possible, otherwise
	 * just use the last value as the mean
	 */
	if (mp_count)
		mp_avg /= mp_count;
	else
876
		mp_avg = mp_coeff[nmeasurement - 1][0];
877

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	/* detect outlier */
	if (abs(mp_max - mp_min) > max_delta) {
		if (abs(mp_max - mp_avg) > abs(mp_min - mp_avg))
			outlier_idx = max_idx;
		else
			outlier_idx = min_idx;
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885
		mp_coeff[outlier_idx][0] = mp_avg;
886
	}
887 888
}

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static void ar9003_hw_tx_iq_cal_outlier_detection(struct ath_hw *ah,
						  struct coeff *coeff,
						  bool is_reusable)
892 893
{
	int i, im, nmeasurement;
894
	int magnitude, phase;
895
	u32 tx_corr_coeff[MAX_MEASUREMENT][AR9300_MAX_CHAINS];
896
	struct ath9k_hw_cal_data *caldata = ah->caldata;
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	memset(tx_corr_coeff, 0, sizeof(tx_corr_coeff));
	for (i = 0; i < MAX_MEASUREMENT / 2; i++) {
		tx_corr_coeff[i * 2][0] = tx_corr_coeff[(i * 2) + 1][0] =
					AR_PHY_TX_IQCAL_CORR_COEFF_B0(i);
		if (!AR_SREV_9485(ah)) {
			tx_corr_coeff[i * 2][1] =
			tx_corr_coeff[(i * 2) + 1][1] =
					AR_PHY_TX_IQCAL_CORR_COEFF_B1(i);

			tx_corr_coeff[i * 2][2] =
			tx_corr_coeff[(i * 2) + 1][2] =
					AR_PHY_TX_IQCAL_CORR_COEFF_B2(i);
		}
	}

	/* Load the average of 2 passes */
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	for (i = 0; i < AR9300_MAX_CHAINS; i++) {
		if (!(ah->txchainmask & (1 << i)))
			continue;
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		nmeasurement = REG_READ_FIELD(ah,
				AR_PHY_TX_IQCAL_STATUS_B0,
				AR_PHY_CALIBRATED_GAINS_0);
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		if (nmeasurement > MAX_MEASUREMENT)
			nmeasurement = MAX_MEASUREMENT;

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		/*
		 * Skip normal outlier detection for AR9550.
		 */
		if (!AR_SREV_9550(ah)) {
			/* detect outlier only if nmeasurement > 1 */
			if (nmeasurement > 1) {
				/* Detect magnitude outlier */
				ar9003_hw_detect_outlier(coeff->mag_coeff[i],
							 nmeasurement,
							 MAX_MAG_DELTA);

				/* Detect phase outlier */
				ar9003_hw_detect_outlier(coeff->phs_coeff[i],
							 nmeasurement,
							 MAX_PHS_DELTA);
			}
940
		}
941

942
		for (im = 0; im < nmeasurement; im++) {
943 944
			magnitude = coeff->mag_coeff[i][im][0];
			phase = coeff->phs_coeff[i][im][0];
945

946 947
			coeff->iqc_coeff[0] =
				(phase & 0x7f) | ((magnitude & 0x7f) << 7);
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			if ((im % 2) == 0)
				REG_RMW_FIELD(ah, tx_corr_coeff[im][i],
					AR_PHY_TX_IQCAL_CORR_COEFF_00_COEFF_TABLE,
					coeff->iqc_coeff[0]);
			else
				REG_RMW_FIELD(ah, tx_corr_coeff[im][i],
					AR_PHY_TX_IQCAL_CORR_COEFF_01_COEFF_TABLE,
					coeff->iqc_coeff[0]);
957 958 959 960

			if (caldata)
				caldata->tx_corr_coeff[im][i] =
					coeff->iqc_coeff[0];
961
		}
962 963
		if (caldata)
			caldata->num_measures[i] = nmeasurement;
964 965 966 967 968 969
	}

	REG_RMW_FIELD(ah, AR_PHY_TX_IQCAL_CONTROL_3,
		      AR_PHY_TX_IQCAL_CONTROL_3_IQCORR_EN, 0x1);
	REG_RMW_FIELD(ah, AR_PHY_RX_IQCAL_CORR_B0,
		      AR_PHY_RX_IQCAL_CORR_B0_LOOPBACK_IQCORR_EN, 0x1);
970

971 972 973 974 975 976
	if (caldata) {
		if (is_reusable)
			set_bit(TXIQCAL_DONE, &caldata->cal_flags);
		else
			clear_bit(TXIQCAL_DONE, &caldata->cal_flags);
	}
977 978 979 980

	return;
}

981
static bool ar9003_hw_tx_iq_cal_run(struct ath_hw *ah)
982 983
{
	struct ath_common *common = ath9k_hw_common(ah);
984 985 986 987 988 989 990 991
	u8 tx_gain_forced;

	tx_gain_forced = REG_READ_FIELD(ah, AR_PHY_TX_FORCED_GAIN,
					AR_PHY_TXGAIN_FORCE);
	if (tx_gain_forced)
		REG_RMW_FIELD(ah, AR_PHY_TX_FORCED_GAIN,
			      AR_PHY_TXGAIN_FORCE, 0);

992 993 994 995 996 997
	REG_RMW_FIELD(ah, AR_PHY_TX_IQCAL_START,
		      AR_PHY_TX_IQCAL_START_DO_CAL, 1);

	if (!ath9k_hw_wait(ah, AR_PHY_TX_IQCAL_START,
			AR_PHY_TX_IQCAL_START_DO_CAL, 0,
			AH_WAIT_TIMEOUT)) {
998
		ath_dbg(common, CALIBRATE, "Tx IQ Cal is not completed\n");
999 1000 1001
		return false;
	}
	return true;
1002 1003
}

1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057
static void __ar955x_tx_iq_cal_sort(struct ath_hw *ah,
				    struct coeff *coeff,
				    int i, int nmeasurement)
{
	struct ath_common *common = ath9k_hw_common(ah);
	int im, ix, iy, temp;

	for (im = 0; im < nmeasurement; im++) {
		for (ix = 0; ix < MAXIQCAL - 1; ix++) {
			for (iy = ix + 1; iy <= MAXIQCAL - 1; iy++) {
				if (coeff->mag_coeff[i][im][iy] <
				    coeff->mag_coeff[i][im][ix]) {
					temp = coeff->mag_coeff[i][im][ix];
					coeff->mag_coeff[i][im][ix] =
						coeff->mag_coeff[i][im][iy];
					coeff->mag_coeff[i][im][iy] = temp;
				}
				if (coeff->phs_coeff[i][im][iy] <
				    coeff->phs_coeff[i][im][ix]) {
					temp = coeff->phs_coeff[i][im][ix];
					coeff->phs_coeff[i][im][ix] =
						coeff->phs_coeff[i][im][iy];
					coeff->phs_coeff[i][im][iy] = temp;
				}
			}
		}
		coeff->mag_coeff[i][im][0] = coeff->mag_coeff[i][im][MAXIQCAL / 2];
		coeff->phs_coeff[i][im][0] = coeff->phs_coeff[i][im][MAXIQCAL / 2];

		ath_dbg(common, CALIBRATE,
			"IQCAL: Median [ch%d][gain%d]: mag = %d phase = %d\n",
			i, im,
			coeff->mag_coeff[i][im][0],
			coeff->phs_coeff[i][im][0]);
	}
}

static bool ar955x_tx_iq_cal_median(struct ath_hw *ah,
				    struct coeff *coeff,
				    int iqcal_idx,
				    int nmeasurement)
{
	int i;

	if ((iqcal_idx + 1) != MAXIQCAL)
		return false;

	for (i = 0; i < AR9300_MAX_CHAINS; i++) {
		__ar955x_tx_iq_cal_sort(ah, coeff, i, nmeasurement);
	}

	return true;
}

1058 1059 1060
static void ar9003_hw_tx_iq_cal_post_proc(struct ath_hw *ah,
					  int iqcal_idx,
					  bool is_reusable)
1061 1062 1063
{
	struct ath_common *common = ath9k_hw_common(ah);
	const u32 txiqcal_status[AR9300_MAX_CHAINS] = {
1064
		AR_PHY_TX_IQCAL_STATUS_B0,
1065 1066 1067 1068 1069 1070 1071 1072
		AR_PHY_TX_IQCAL_STATUS_B1,
		AR_PHY_TX_IQCAL_STATUS_B2,
	};
	const u_int32_t chan_info_tab[] = {
		AR_PHY_CHAN_INFO_TAB_0,
		AR_PHY_CHAN_INFO_TAB_1,
		AR_PHY_CHAN_INFO_TAB_2,
	};
1073
	static struct coeff coeff;
1074
	s32 iq_res[6];
1075
	int i, im, j;
1076 1077
	int nmeasurement = 0;
	bool outlier_detect = true;
1078 1079

	for (i = 0; i < AR9300_MAX_CHAINS; i++) {
1080 1081
		if (!(ah->txchainmask & (1 << i)))
			continue;
1082

1083 1084 1085 1086 1087
		nmeasurement = REG_READ_FIELD(ah,
				AR_PHY_TX_IQCAL_STATUS_B0,
				AR_PHY_CALIBRATED_GAINS_0);
		if (nmeasurement > MAX_MEASUREMENT)
			nmeasurement = MAX_MEASUREMENT;
1088

1089
		for (im = 0; im < nmeasurement; im++) {
1090 1091
			ath_dbg(common, CALIBRATE,
				"Doing Tx IQ Cal for chain %d\n", i);
1092

1093 1094
			if (REG_READ(ah, txiqcal_status[i]) &
					AR_PHY_TX_IQCAL_STATUS_FAILED) {
1095 1096
				ath_dbg(common, CALIBRATE,
					"Tx IQ Cal failed for chain %d\n", i);
1097 1098
				goto tx_iqcal_fail;
			}
1099

1100 1101
			for (j = 0; j < 3; j++) {
				u32 idx = 2 * j, offset = 4 * (3 * im + j);
1102

1103
				REG_RMW_FIELD(ah,
1104 1105 1106 1107
						AR_PHY_CHAN_INFO_MEMORY,
						AR_PHY_CHAN_INFO_TAB_S2_READ,
						0);

1108 1109 1110 1111
				/* 32 bits */
				iq_res[idx] = REG_READ(ah,
						chan_info_tab[i] +
						offset);
1112

1113
				REG_RMW_FIELD(ah,
1114 1115 1116 1117
						AR_PHY_CHAN_INFO_MEMORY,
						AR_PHY_CHAN_INFO_TAB_S2_READ,
						1);

1118 1119 1120
				/* 16 bits */
				iq_res[idx + 1] = 0xffff & REG_READ(ah,
						chan_info_tab[i] + offset);
1121

1122 1123
				ath_dbg(common, CALIBRATE,
					"IQ_RES[%d]=0x%x IQ_RES[%d]=0x%x\n",
1124 1125 1126
					idx, iq_res[idx], idx + 1,
					iq_res[idx + 1]);
			}
1127

1128 1129
			if (!ar9003_hw_calc_iq_corr(ah, i, iq_res,
						coeff.iqc_coeff)) {
1130 1131
				ath_dbg(common, CALIBRATE,
					"Failed in calculation of IQ correction\n");
1132 1133
				goto tx_iqcal_fail;
			}
1134

1135
			coeff.phs_coeff[i][im][iqcal_idx] =
1136
				coeff.iqc_coeff[0] & 0x7f;
1137
			coeff.mag_coeff[i][im][iqcal_idx] =
1138
				(coeff.iqc_coeff[0] >> 7) & 0x7f;
1139

1140 1141 1142 1143
			if (coeff.mag_coeff[i][im][iqcal_idx] > 63)
				coeff.mag_coeff[i][im][iqcal_idx] -= 128;
			if (coeff.phs_coeff[i][im][iqcal_idx] > 63)
				coeff.phs_coeff[i][im][iqcal_idx] -= 128;
1144 1145
		}
	}
1146 1147 1148 1149 1150 1151

	if (AR_SREV_9550(ah))
		outlier_detect = ar955x_tx_iq_cal_median(ah, &coeff,
							 iqcal_idx, nmeasurement);
	if (outlier_detect)
		ar9003_hw_tx_iq_cal_outlier_detection(ah, &coeff, is_reusable);
1152 1153 1154 1155

	return;

tx_iqcal_fail:
1156
	ath_dbg(common, CALIBRATE, "Tx IQ Cal failed\n");
1157 1158
	return;
}
1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202

static void ar9003_hw_tx_iq_cal_reload(struct ath_hw *ah)
{
	struct ath9k_hw_cal_data *caldata = ah->caldata;
	u32 tx_corr_coeff[MAX_MEASUREMENT][AR9300_MAX_CHAINS];
	int i, im;

	memset(tx_corr_coeff, 0, sizeof(tx_corr_coeff));
	for (i = 0; i < MAX_MEASUREMENT / 2; i++) {
		tx_corr_coeff[i * 2][0] = tx_corr_coeff[(i * 2) + 1][0] =
					AR_PHY_TX_IQCAL_CORR_COEFF_B0(i);
		if (!AR_SREV_9485(ah)) {
			tx_corr_coeff[i * 2][1] =
			tx_corr_coeff[(i * 2) + 1][1] =
					AR_PHY_TX_IQCAL_CORR_COEFF_B1(i);

			tx_corr_coeff[i * 2][2] =
			tx_corr_coeff[(i * 2) + 1][2] =
					AR_PHY_TX_IQCAL_CORR_COEFF_B2(i);
		}
	}

	for (i = 0; i < AR9300_MAX_CHAINS; i++) {
		if (!(ah->txchainmask & (1 << i)))
			continue;

		for (im = 0; im < caldata->num_measures[i]; im++) {
			if ((im % 2) == 0)
				REG_RMW_FIELD(ah, tx_corr_coeff[im][i],
				     AR_PHY_TX_IQCAL_CORR_COEFF_00_COEFF_TABLE,
				     caldata->tx_corr_coeff[im][i]);
			else
				REG_RMW_FIELD(ah, tx_corr_coeff[im][i],
				     AR_PHY_TX_IQCAL_CORR_COEFF_01_COEFF_TABLE,
				     caldata->tx_corr_coeff[im][i]);
		}
	}

	REG_RMW_FIELD(ah, AR_PHY_TX_IQCAL_CONTROL_3,
		      AR_PHY_TX_IQCAL_CONTROL_3_IQCORR_EN, 0x1);
	REG_RMW_FIELD(ah, AR_PHY_RX_IQCAL_CORR_B0,
		      AR_PHY_RX_IQCAL_CORR_B0_LOOPBACK_IQCORR_EN, 0x1);
}

1203 1204
static void ar9003_hw_manual_peak_cal(struct ath_hw *ah, u8 chain, bool is_2g)
{
1205
	int offset[8] = {0}, total = 0, test;
1206
	int agc_out, i, peak_detect_threshold = 0;
1207 1208 1209

	if (AR_SREV_9550(ah) || AR_SREV_9531(ah))
		peak_detect_threshold = 8;
1210 1211
	else if (AR_SREV_9561(ah))
		peak_detect_threshold = 11;
1212

1213 1214 1215
	/*
	 * Turn off LNA/SW.
	 */
1216 1217 1218 1219 1220
	REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_GAINSTAGES(chain),
		      AR_PHY_65NM_RXRF_GAINSTAGES_RX_OVERRIDE, 0x1);
	REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_GAINSTAGES(chain),
		      AR_PHY_65NM_RXRF_GAINSTAGES_LNAON_CALDC, 0x0);

1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232
	if (AR_SREV_9003_PCOEM(ah) || AR_SREV_9330_11(ah)) {
		if (is_2g)
			REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_GAINSTAGES(chain),
				      AR_PHY_65NM_RXRF_GAINSTAGES_LNA2G_GAIN_OVR, 0x0);
		else
			REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_GAINSTAGES(chain),
				      AR_PHY_65NM_RXRF_GAINSTAGES_LNA5G_GAIN_OVR, 0x0);
	}

	/*
	 * Turn off RXON.
	 */
1233 1234 1235 1236 1237
	REG_RMW_FIELD(ah, AR_PHY_65NM_RXTX2(chain),
		      AR_PHY_65NM_RXTX2_RXON_OVR, 0x1);
	REG_RMW_FIELD(ah, AR_PHY_65NM_RXTX2(chain),
		      AR_PHY_65NM_RXTX2_RXON, 0x0);

1238 1239 1240
	/*
	 * Turn on AGC for cal.
	 */
1241 1242 1243 1244 1245 1246
	REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_AGC(chain),
		      AR_PHY_65NM_RXRF_AGC_AGC_OVERRIDE, 0x1);
	REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_AGC(chain),
		      AR_PHY_65NM_RXRF_AGC_AGC_ON_OVR, 0x1);
	REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_AGC(chain),
		      AR_PHY_65NM_RXRF_AGC_AGC_CAL_OVR, 0x1);
1247

1248
	if (AR_SREV_9330_11(ah))
1249
		REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_AGC(chain),
1250
			      AR_PHY_65NM_RXRF_AGC_AGC2G_CALDAC_OVR, 0x0);
1251

1252 1253 1254 1255 1256 1257 1258 1259
	if (is_2g)
		REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_AGC(chain),
			      AR_PHY_65NM_RXRF_AGC_AGC2G_DBDAC_OVR,
			      peak_detect_threshold);
	else
		REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_AGC(chain),
			      AR_PHY_65NM_RXRF_AGC_AGC5G_DBDAC_OVR,
			      peak_detect_threshold);
1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284 1285 1286

	for (i = 6; i > 0; i--) {
		offset[i] = BIT(i - 1);
		test = total + offset[i];

		if (is_2g)
			REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_AGC(chain),
				      AR_PHY_65NM_RXRF_AGC_AGC2G_CALDAC_OVR,
				      test);
		else
			REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_AGC(chain),
				      AR_PHY_65NM_RXRF_AGC_AGC5G_CALDAC_OVR,
				      test);
		udelay(100);
		agc_out = REG_READ_FIELD(ah, AR_PHY_65NM_RXRF_AGC(chain),
					 AR_PHY_65NM_RXRF_AGC_AGC_OUT);
		offset[i] = (agc_out) ? 0 : 1;
		total += (offset[i] << (i - 1));
	}

	if (is_2g)
		REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_AGC(chain),
			      AR_PHY_65NM_RXRF_AGC_AGC2G_CALDAC_OVR, total);
	else
		REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_AGC(chain),
			      AR_PHY_65NM_RXRF_AGC_AGC5G_CALDAC_OVR, total);

1287 1288 1289
	/*
	 * Turn on LNA.
	 */
1290 1291
	REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_GAINSTAGES(chain),
		      AR_PHY_65NM_RXRF_GAINSTAGES_RX_OVERRIDE, 0);
1292 1293 1294
	/*
	 * Turn off RXON.
	 */
1295 1296
	REG_RMW_FIELD(ah, AR_PHY_65NM_RXTX2(chain),
		      AR_PHY_65NM_RXTX2_RXON_OVR, 0);
1297 1298 1299
	/*
	 * Turn off peak detect calibration.
	 */
1300 1301 1302 1303
	REG_RMW_FIELD(ah, AR_PHY_65NM_RXRF_AGC(chain),
		      AR_PHY_65NM_RXRF_AGC_AGC_CAL_OVR, 0);
}

1304 1305 1306
static void ar9003_hw_do_pcoem_manual_peak_cal(struct ath_hw *ah,
					       struct ath9k_channel *chan,
					       bool run_rtt_cal)
1307
{
1308
	struct ath9k_hw_cal_data *caldata = ah->caldata;
1309 1310
	int i;

1311 1312 1313
	if ((ah->caps.hw_caps & ATH9K_HW_CAP_RTT) && !run_rtt_cal)
		return;

1314 1315 1316 1317 1318
	for (i = 0; i < AR9300_MAX_CHAINS; i++) {
		if (!(ah->rxchainmask & (1 << i)))
			continue;
		ar9003_hw_manual_peak_cal(ah, i, IS_CHAN_2GHZ(chan));
	}
1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339

	if (caldata)
		set_bit(SW_PKDET_DONE, &caldata->cal_flags);

	if ((ah->caps.hw_caps & ATH9K_HW_CAP_RTT) && caldata) {
		if (IS_CHAN_2GHZ(chan)){
			caldata->caldac[0] = REG_READ_FIELD(ah,
						    AR_PHY_65NM_RXRF_AGC(0),
						    AR_PHY_65NM_RXRF_AGC_AGC2G_CALDAC_OVR);
			caldata->caldac[1] = REG_READ_FIELD(ah,
						    AR_PHY_65NM_RXRF_AGC(1),
						    AR_PHY_65NM_RXRF_AGC_AGC2G_CALDAC_OVR);
		} else {
			caldata->caldac[0] = REG_READ_FIELD(ah,
						    AR_PHY_65NM_RXRF_AGC(0),
						    AR_PHY_65NM_RXRF_AGC_AGC5G_CALDAC_OVR);
			caldata->caldac[1] = REG_READ_FIELD(ah,
						    AR_PHY_65NM_RXRF_AGC(1),
						    AR_PHY_65NM_RXRF_AGC_AGC5G_CALDAC_OVR);
		}
	}
1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356
}

static void ar9003_hw_cl_cal_post_proc(struct ath_hw *ah, bool is_reusable)
{
	u32 cl_idx[AR9300_MAX_CHAINS] = { AR_PHY_CL_TAB_0,
					  AR_PHY_CL_TAB_1,
					  AR_PHY_CL_TAB_2 };
	struct ath9k_hw_cal_data *caldata = ah->caldata;
	bool txclcal_done = false;
	int i, j;

	if (!caldata || !(ah->enabled_cals & TX_CL_CAL))
		return;

	txclcal_done = !!(REG_READ(ah, AR_PHY_AGC_CONTROL) &
			  AR_PHY_AGC_CONTROL_CLC_SUCCESS);

1357
	if (test_bit(TXCLCAL_DONE, &caldata->cal_flags)) {
1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370 1371 1372
		for (i = 0; i < AR9300_MAX_CHAINS; i++) {
			if (!(ah->txchainmask & (1 << i)))
				continue;
			for (j = 0; j < MAX_CL_TAB_ENTRY; j++)
				REG_WRITE(ah, CL_TAB_ENTRY(cl_idx[i]),
					  caldata->tx_clcal[i][j]);
		}
	} else if (is_reusable && txclcal_done) {
		for (i = 0; i < AR9300_MAX_CHAINS; i++) {
			if (!(ah->txchainmask & (1 << i)))
				continue;
			for (j = 0; j < MAX_CL_TAB_ENTRY; j++)
				caldata->tx_clcal[i][j] =
					REG_READ(ah, CL_TAB_ENTRY(cl_idx[i]));
		}
1373
		set_bit(TXCLCAL_DONE, &caldata->cal_flags);
1374 1375 1376
	}
}

1377 1378 1379 1380 1381 1382 1383
static bool ar9003_hw_init_cal_pcoem(struct ath_hw *ah,
				     struct ath9k_channel *chan)
{
	struct ath_common *common = ath9k_hw_common(ah);
	struct ath9k_hw_cal_data *caldata = ah->caldata;
	bool txiqcal_done = false;
	bool is_reusable = true, status = true;
1384
	bool run_rtt_cal = false, run_agc_cal;
1385 1386 1387 1388 1389 1390 1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481
	bool rtt = !!(ah->caps.hw_caps & ATH9K_HW_CAP_RTT);
	u32 rx_delay = 0;
	u32 agc_ctrl = 0, agc_supp_cals = AR_PHY_AGC_CONTROL_OFFSET_CAL |
					  AR_PHY_AGC_CONTROL_FLTR_CAL   |
					  AR_PHY_AGC_CONTROL_PKDET_CAL;

	/* Use chip chainmask only for calibration */
	ar9003_hw_set_chain_masks(ah, ah->caps.rx_chainmask, ah->caps.tx_chainmask);

	if (rtt) {
		if (!ar9003_hw_rtt_restore(ah, chan))
			run_rtt_cal = true;

		if (run_rtt_cal)
			ath_dbg(common, CALIBRATE, "RTT calibration to be done\n");
	}

	run_agc_cal = run_rtt_cal;

	if (run_rtt_cal) {
		ar9003_hw_rtt_enable(ah);
		ar9003_hw_rtt_set_mask(ah, 0x00);
		ar9003_hw_rtt_clear_hist(ah);
	}

	if (rtt) {
		if (!run_rtt_cal) {
			agc_ctrl = REG_READ(ah, AR_PHY_AGC_CONTROL);
			agc_supp_cals &= agc_ctrl;
			agc_ctrl &= ~(AR_PHY_AGC_CONTROL_OFFSET_CAL |
				      AR_PHY_AGC_CONTROL_FLTR_CAL |
				      AR_PHY_AGC_CONTROL_PKDET_CAL);
			REG_WRITE(ah, AR_PHY_AGC_CONTROL, agc_ctrl);
		} else {
			if (ah->ah_flags & AH_FASTCC)
				run_agc_cal = true;
		}
	}

	if (ah->enabled_cals & TX_CL_CAL) {
		if (caldata && test_bit(TXCLCAL_DONE, &caldata->cal_flags))
			REG_CLR_BIT(ah, AR_PHY_CL_CAL_CTL,
				    AR_PHY_CL_CAL_ENABLE);
		else {
			REG_SET_BIT(ah, AR_PHY_CL_CAL_CTL,
				    AR_PHY_CL_CAL_ENABLE);
			run_agc_cal = true;
		}
	}

	if ((IS_CHAN_HALF_RATE(chan) || IS_CHAN_QUARTER_RATE(chan)) ||
	    !(ah->enabled_cals & TX_IQ_CAL))
		goto skip_tx_iqcal;

	/* Do Tx IQ Calibration */
	REG_RMW_FIELD(ah, AR_PHY_TX_IQCAL_CONTROL_1,
		      AR_PHY_TX_IQCAL_CONTROL_1_IQCORR_I_Q_COFF_DELPT,
		      DELPT);

	/*
	 * For AR9485 or later chips, TxIQ cal runs as part of
	 * AGC calibration
	 */
	if (ah->enabled_cals & TX_IQ_ON_AGC_CAL) {
		if (caldata && !test_bit(TXIQCAL_DONE, &caldata->cal_flags))
			REG_SET_BIT(ah, AR_PHY_TX_IQCAL_CONTROL_0,
				    AR_PHY_TX_IQCAL_CONTROL_0_ENABLE_TXIQ_CAL);
		else
			REG_CLR_BIT(ah, AR_PHY_TX_IQCAL_CONTROL_0,
				    AR_PHY_TX_IQCAL_CONTROL_0_ENABLE_TXIQ_CAL);
		txiqcal_done = run_agc_cal = true;
	}

skip_tx_iqcal:
	if (ath9k_hw_mci_is_enabled(ah) && IS_CHAN_2GHZ(chan) && run_agc_cal)
		ar9003_mci_init_cal_req(ah, &is_reusable);

	if (REG_READ(ah, AR_PHY_CL_CAL_CTL) & AR_PHY_CL_CAL_ENABLE) {
		rx_delay = REG_READ(ah, AR_PHY_RX_DELAY);
		/* Disable BB_active */
		REG_WRITE(ah, AR_PHY_ACTIVE, AR_PHY_ACTIVE_DIS);
		udelay(5);
		REG_WRITE(ah, AR_PHY_RX_DELAY, AR_PHY_RX_DELAY_DELAY);
		REG_WRITE(ah, AR_PHY_ACTIVE, AR_PHY_ACTIVE_EN);
	}

	if (run_agc_cal || !(ah->ah_flags & AH_FASTCC)) {
		/* Calibrate the AGC */
		REG_WRITE(ah, AR_PHY_AGC_CONTROL,
			  REG_READ(ah, AR_PHY_AGC_CONTROL) |
			  AR_PHY_AGC_CONTROL_CAL);

		/* Poll for offset calibration complete */
		status = ath9k_hw_wait(ah, AR_PHY_AGC_CONTROL,
				       AR_PHY_AGC_CONTROL_CAL,
				       0, AH_WAIT_TIMEOUT);

1482
		ar9003_hw_do_pcoem_manual_peak_cal(ah, chan, run_rtt_cal);
1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507 1508
	}

	if (REG_READ(ah, AR_PHY_CL_CAL_CTL) & AR_PHY_CL_CAL_ENABLE) {
		REG_WRITE(ah, AR_PHY_RX_DELAY, rx_delay);
		udelay(5);
	}

	if (ath9k_hw_mci_is_enabled(ah) && IS_CHAN_2GHZ(chan) && run_agc_cal)
		ar9003_mci_init_cal_done(ah);

	if (rtt && !run_rtt_cal) {
		agc_ctrl |= agc_supp_cals;
		REG_WRITE(ah, AR_PHY_AGC_CONTROL, agc_ctrl);
	}

	if (!status) {
		if (run_rtt_cal)
			ar9003_hw_rtt_disable(ah);

		ath_dbg(common, CALIBRATE,
			"offset calibration failed to complete in %d ms; noisy environment?\n",
			AH_WAIT_TIMEOUT / 1000);
		return false;
	}

	if (txiqcal_done)
1509
		ar9003_hw_tx_iq_cal_post_proc(ah, 0, is_reusable);
1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533 1534 1535 1536 1537 1538 1539 1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554
	else if (caldata && test_bit(TXIQCAL_DONE, &caldata->cal_flags))
		ar9003_hw_tx_iq_cal_reload(ah);

	ar9003_hw_cl_cal_post_proc(ah, is_reusable);

	if (run_rtt_cal && caldata) {
		if (is_reusable) {
			if (!ath9k_hw_rfbus_req(ah)) {
				ath_err(ath9k_hw_common(ah),
					"Could not stop baseband\n");
			} else {
				ar9003_hw_rtt_fill_hist(ah);

				if (test_bit(SW_PKDET_DONE, &caldata->cal_flags))
					ar9003_hw_rtt_load_hist(ah);
			}

			ath9k_hw_rfbus_done(ah);
		}

		ar9003_hw_rtt_disable(ah);
	}

	/* Revert chainmask to runtime parameters */
	ar9003_hw_set_chain_masks(ah, ah->rxchainmask, ah->txchainmask);

	/* Initialize list pointers */
	ah->cal_list = ah->cal_list_last = ah->cal_list_curr = NULL;

	INIT_CAL(&ah->iq_caldata);
	INSERT_CAL(ah, &ah->iq_caldata);
	ath_dbg(common, CALIBRATE, "enabling IQ Calibration\n");

	/* Initialize current pointer to first element in list */
	ah->cal_list_curr = ah->cal_list;

	if (ah->cal_list_curr)
		ath9k_hw_reset_calibration(ah, ah->cal_list_curr);

	if (caldata)
		caldata->CalValid = 0;

	return true;
}

1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577
static bool do_ar9003_agc_cal(struct ath_hw *ah)
{
	struct ath_common *common = ath9k_hw_common(ah);
	bool status;

	REG_WRITE(ah, AR_PHY_AGC_CONTROL,
		  REG_READ(ah, AR_PHY_AGC_CONTROL) |
		  AR_PHY_AGC_CONTROL_CAL);

	status = ath9k_hw_wait(ah, AR_PHY_AGC_CONTROL,
			       AR_PHY_AGC_CONTROL_CAL,
			       0, AH_WAIT_TIMEOUT);
	if (!status) {
		ath_dbg(common, CALIBRATE,
			"offset calibration failed to complete in %d ms,"
			"noisy environment?\n",
			AH_WAIT_TIMEOUT / 1000);
		return false;
	}

	return true;
}

1578 1579
static bool ar9003_hw_init_cal_soc(struct ath_hw *ah,
				   struct ath9k_channel *chan)
1580 1581
{
	struct ath_common *common = ath9k_hw_common(ah);
1582
	struct ath9k_hw_cal_data *caldata = ah->caldata;
1583
	bool txiqcal_done = false;
1584
	bool status = true;
1585
	bool run_agc_cal = false, sep_iq_cal = false;
1586
	int i = 0;
1587

1588
	/* Use chip chainmask only for calibration */
1589 1590
	ar9003_hw_set_chain_masks(ah, ah->caps.rx_chainmask, ah->caps.tx_chainmask);

1591
	if (ah->enabled_cals & TX_CL_CAL) {
1592 1593
		REG_SET_BIT(ah, AR_PHY_CL_CAL_CTL, AR_PHY_CL_CAL_ENABLE);
		run_agc_cal = true;
1594
	}
1595

S
Sujith Manoharan 已提交
1596
	if (IS_CHAN_HALF_RATE(chan) || IS_CHAN_QUARTER_RATE(chan))
1597 1598
		goto skip_tx_iqcal;

1599
	/* Do Tx IQ Calibration */
1600 1601 1602
	REG_RMW_FIELD(ah, AR_PHY_TX_IQCAL_CONTROL_1,
		      AR_PHY_TX_IQCAL_CONTROL_1_IQCORR_I_Q_COFF_DELPT,
		      DELPT);
1603

1604 1605
	/*
	 * For AR9485 or later chips, TxIQ cal runs as part of
1606
	 * AGC calibration. Specifically, AR9550 in SoC chips.
1607
	 */
1608
	if (ah->enabled_cals & TX_IQ_ON_AGC_CAL) {
1609 1610 1611 1612 1613 1614
		if (REG_READ_FIELD(ah, AR_PHY_TX_IQCAL_CONTROL_0,
				   AR_PHY_TX_IQCAL_CONTROL_0_ENABLE_TXIQ_CAL)) {
				txiqcal_done = true;
		} else {
			txiqcal_done = false;
		}
1615
		run_agc_cal = true;
1616
	} else {
1617
		sep_iq_cal = true;
1618
		run_agc_cal = true;
1619
	}
1620

1621 1622 1623
	/*
	 * In the SoC family, this will run for AR9300, AR9331 and AR9340.
	 */
1624 1625 1626 1627 1628 1629
	if (sep_iq_cal) {
		txiqcal_done = ar9003_hw_tx_iq_cal_run(ah);
		REG_WRITE(ah, AR_PHY_ACTIVE, AR_PHY_ACTIVE_DIS);
		udelay(5);
		REG_WRITE(ah, AR_PHY_ACTIVE, AR_PHY_ACTIVE_EN);
	}
1630

1631 1632 1633 1634 1635
	if (AR_SREV_9550(ah) && IS_CHAN_2GHZ(chan)) {
		if (!ar9003_hw_dynamic_osdac_selection(ah, txiqcal_done))
			return false;
	}

1636
skip_tx_iqcal:
1637
	if (run_agc_cal || !(ah->ah_flags & AH_FASTCC)) {
1638 1639 1640 1641 1642 1643
		for (i = 0; i < AR9300_MAX_CHAINS; i++) {
			if (!(ah->rxchainmask & (1 << i)))
				continue;

			ar9003_hw_manual_peak_cal(ah, i,
						  IS_CHAN_2GHZ(chan));
1644
		}
1645

1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657
		/*
		 * For non-AR9550 chips, we just trigger AGC calibration
		 * in the HW, poll for completion and then process
		 * the results.
		 *
		 * For AR955x, we run it multiple times and use
		 * median IQ correction.
		 */
		if (!AR_SREV_9550(ah)) {
			status = do_ar9003_agc_cal(ah);
			if (!status)
				return false;
1658

1659 1660 1661 1662 1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674
			if (txiqcal_done)
				ar9003_hw_tx_iq_cal_post_proc(ah, 0, false);
		} else {
			if (!txiqcal_done) {
				status = do_ar9003_agc_cal(ah);
				if (!status)
					return false;
			} else {
				for (i = 0; i < MAXIQCAL; i++) {
					status = do_ar9003_agc_cal(ah);
					if (!status)
						return false;
					ar9003_hw_tx_iq_cal_post_proc(ah, i, false);
				}
			}
		}
1675 1676
	}

1677 1678 1679
	/* Revert chainmask to runtime parameters */
	ar9003_hw_set_chain_masks(ah, ah->rxchainmask, ah->txchainmask);

1680 1681 1682
	/* Initialize list pointers */
	ah->cal_list = ah->cal_list_last = ah->cal_list_curr = NULL;

1683 1684 1685
	INIT_CAL(&ah->iq_caldata);
	INSERT_CAL(ah, &ah->iq_caldata);
	ath_dbg(common, CALIBRATE, "enabling IQ Calibration\n");
1686 1687 1688 1689 1690 1691 1692

	/* Initialize current pointer to first element in list */
	ah->cal_list_curr = ah->cal_list;

	if (ah->cal_list_curr)
		ath9k_hw_reset_calibration(ah, ah->cal_list_curr);

1693 1694
	if (caldata)
		caldata->CalValid = 0;
1695 1696

	return true;
1697 1698
}

1699 1700 1701 1702 1703
void ar9003_hw_attach_calib_ops(struct ath_hw *ah)
{
	struct ath_hw_private_ops *priv_ops = ath9k_hw_private_ops(ah);
	struct ath_hw_ops *ops = ath9k_hw_ops(ah);

1704
	if (AR_SREV_9003_PCOEM(ah))
1705 1706 1707 1708
		priv_ops->init_cal = ar9003_hw_init_cal_pcoem;
	else
		priv_ops->init_cal = ar9003_hw_init_cal_soc;

1709 1710 1711 1712 1713
	priv_ops->init_cal_settings = ar9003_hw_init_cal_settings;
	priv_ops->setup_calibration = ar9003_hw_setup_calibration;

	ops->calibrate = ar9003_hw_calibrate;
}