phy.c 67.4 KB
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/*
 * PHY functions
 *
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 * Copyright (c) 2004-2007 Reyk Floeter <reyk@openbsd.org>
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 * Copyright (c) 2006-2009 Nick Kossifidis <mickflemm@gmail.com>
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 * Copyright (c) 2007-2008 Jiri Slaby <jirislaby@gmail.com>
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 * Copyright (c) 2008-2009 Felix Fietkau <nbd@openwrt.org>
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 *
 * Permission to use, copy, modify, and 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.
 *
 */

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#define _ATH5K_PHY

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#include <linux/delay.h>

#include "ath5k.h"
#include "reg.h"
#include "base.h"
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#include "rfbuffer.h"
#include "rfgain.h"
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/*
 * Used to modify RF Banks before writing them to AR5K_RF_BUFFER
 */
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static unsigned int ath5k_hw_rfb_op(struct ath5k_hw *ah,
					const struct ath5k_rf_reg *rf_regs,
					u32 val, u8 reg_id, bool set)
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{
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	const struct ath5k_rf_reg *rfreg = NULL;
	u8 offset, bank, num_bits, col, position;
	u16 entry;
	u32 mask, data, last_bit, bits_shifted, first_bit;
	u32 *rfb;
	s32 bits_left;
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	int i;

	data = 0;
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	rfb = ah->ah_rf_banks;
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	for (i = 0; i < ah->ah_rf_regs_count; i++) {
		if (rf_regs[i].index == reg_id) {
			rfreg = &rf_regs[i];
			break;
		}
	}

	if (rfb == NULL || rfreg == NULL) {
		ATH5K_PRINTF("Rf register not found!\n");
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		/* should not happen */
		return 0;
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	}

	bank = rfreg->bank;
	num_bits = rfreg->field.len;
	first_bit = rfreg->field.pos;
	col = rfreg->field.col;

	/* first_bit is an offset from bank's
	 * start. Since we have all banks on
	 * the same array, we use this offset
	 * to mark each bank's start */
	offset = ah->ah_offset[bank];
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	/* Boundary check */
	if (!(col <= 3 && num_bits <= 32 && first_bit + num_bits <= 319)) {
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		ATH5K_PRINTF("invalid values at offset %u\n", offset);
		return 0;
	}

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	entry = ((first_bit - 1) / 8) + offset;
	position = (first_bit - 1) % 8;
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	if (set)
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		data = ath5k_hw_bitswap(val, num_bits);
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	for (bits_shifted = 0, bits_left = num_bits; bits_left > 0;
	position = 0, entry++) {

		last_bit = (position + bits_left > 8) ? 8 :
					position + bits_left;

		mask = (((1 << last_bit) - 1) ^ ((1 << position) - 1)) <<
								(col * 8);
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		if (set) {
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			rfb[entry] &= ~mask;
			rfb[entry] |= ((data << position) << (col * 8)) & mask;
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			data >>= (8 - position);
		} else {
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			data |= (((rfb[entry] & mask) >> (col * 8)) >> position)
				<< bits_shifted;
			bits_shifted += last_bit - position;
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		}

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		bits_left -= 8 - position;
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	}

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	data = set ? 1 : ath5k_hw_bitswap(data, num_bits);
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	return data;
}

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/**********************\
* RF Gain optimization *
\**********************/

/*
 * This code is used to optimize rf gain on different environments
 * (temprature mostly) based on feedback from a power detector.
 *
 * It's only used on RF5111 and RF5112, later RF chips seem to have
 * auto adjustment on hw -notice they have a much smaller BANK 7 and
 * no gain optimization ladder-.
 *
 * For more infos check out this patent doc
 * http://www.freepatentsonline.com/7400691.html
 *
 * This paper describes power drops as seen on the receiver due to
 * probe packets
 * http://www.cnri.dit.ie/publications/ICT08%20-%20Practical%20Issues
 * %20of%20Power%20Control.pdf
 *
 * And this is the MadWiFi bug entry related to the above
 * http://madwifi-project.org/ticket/1659
 * with various measurements and diagrams
 *
 * TODO: Deal with power drops due to probes by setting an apropriate
 * tx power on the probe packets ! Make this part of the calibration process.
 */

/* Initialize ah_gain durring attach */
int ath5k_hw_rfgain_opt_init(struct ath5k_hw *ah)
{
	/* Initialize the gain optimization values */
	switch (ah->ah_radio) {
	case AR5K_RF5111:
		ah->ah_gain.g_step_idx = rfgain_opt_5111.go_default;
		ah->ah_gain.g_low = 20;
		ah->ah_gain.g_high = 35;
		ah->ah_gain.g_state = AR5K_RFGAIN_ACTIVE;
		break;
	case AR5K_RF5112:
		ah->ah_gain.g_step_idx = rfgain_opt_5112.go_default;
		ah->ah_gain.g_low = 20;
		ah->ah_gain.g_high = 85;
		ah->ah_gain.g_state = AR5K_RFGAIN_ACTIVE;
		break;
	default:
		return -EINVAL;
	}

	return 0;
}

/* Schedule a gain probe check on the next transmited packet.
 * That means our next packet is going to be sent with lower
 * tx power and a Peak to Average Power Detector (PAPD) will try
 * to measure the gain.
 *
 * TODO: Use propper tx power setting for the probe packet so
 * that we don't observe a serious power drop on the receiver
 *
 * XXX:  How about forcing a tx packet (bypassing PCU arbitrator etc)
 * just after we enable the probe so that we don't mess with
 * standard traffic ? Maybe it's time to use sw interrupts and
 * a probe tasklet !!!
 */
static void ath5k_hw_request_rfgain_probe(struct ath5k_hw *ah)
{

	/* Skip if gain calibration is inactive or
	 * we already handle a probe request */
	if (ah->ah_gain.g_state != AR5K_RFGAIN_ACTIVE)
		return;

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	/* Send the packet with 2dB below max power as
	 * patent doc suggest */
	ath5k_hw_reg_write(ah, AR5K_REG_SM(ah->ah_txpower.txp_max_pwr - 4,
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			AR5K_PHY_PAPD_PROBE_TXPOWER) |
			AR5K_PHY_PAPD_PROBE_TX_NEXT, AR5K_PHY_PAPD_PROBE);

	ah->ah_gain.g_state = AR5K_RFGAIN_READ_REQUESTED;

}

/* Calculate gain_F measurement correction
 * based on the current step for RF5112 rev. 2 */
static u32 ath5k_hw_rf_gainf_corr(struct ath5k_hw *ah)
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{
	u32 mix, step;
	u32 *rf;
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	const struct ath5k_gain_opt *go;
	const struct ath5k_gain_opt_step *g_step;
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	const struct ath5k_rf_reg *rf_regs;
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	/* Only RF5112 Rev. 2 supports it */
	if ((ah->ah_radio != AR5K_RF5112) ||
	(ah->ah_radio_5ghz_revision <= AR5K_SREV_RAD_5112A))
		return 0;

	go = &rfgain_opt_5112;
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	rf_regs = rf_regs_5112a;
	ah->ah_rf_regs_count = ARRAY_SIZE(rf_regs_5112a);
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	g_step = &go->go_step[ah->ah_gain.g_step_idx];
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	if (ah->ah_rf_banks == NULL)
		return 0;

	rf = ah->ah_rf_banks;
	ah->ah_gain.g_f_corr = 0;

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	/* No VGA (Variable Gain Amplifier) override, skip */
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	if (ath5k_hw_rfb_op(ah, rf_regs, 0, AR5K_RF_MIXVGA_OVR, false) != 1)
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		return 0;

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	/* Mix gain stepping */
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	step = ath5k_hw_rfb_op(ah, rf_regs, 0, AR5K_RF_MIXGAIN_STEP, false);
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	/* Mix gain override */
	mix = g_step->gos_param[0];
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	switch (mix) {
	case 3:
		ah->ah_gain.g_f_corr = step * 2;
		break;
	case 2:
		ah->ah_gain.g_f_corr = (step - 5) * 2;
		break;
	case 1:
		ah->ah_gain.g_f_corr = step;
		break;
	default:
		ah->ah_gain.g_f_corr = 0;
		break;
	}

	return ah->ah_gain.g_f_corr;
}

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/* Check if current gain_F measurement is in the range of our
 * power detector windows. If we get a measurement outside range
 * we know it's not accurate (detectors can't measure anything outside
 * their detection window) so we must ignore it */
static bool ath5k_hw_rf_check_gainf_readback(struct ath5k_hw *ah)
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{
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	const struct ath5k_rf_reg *rf_regs;
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	u32 step, mix_ovr, level[4];
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	u32 *rf;

	if (ah->ah_rf_banks == NULL)
		return false;

	rf = ah->ah_rf_banks;

	if (ah->ah_radio == AR5K_RF5111) {
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		rf_regs = rf_regs_5111;
		ah->ah_rf_regs_count = ARRAY_SIZE(rf_regs_5111);

		step = ath5k_hw_rfb_op(ah, rf_regs, 0, AR5K_RF_RFGAIN_STEP,
			false);

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		level[0] = 0;
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		level[1] = (step == 63) ? 50 : step + 4;
		level[2] = (step != 63) ? 64 : level[0];
		level[3] = level[2] + 50 ;
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		ah->ah_gain.g_high = level[3] -
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			(step == 63 ? AR5K_GAIN_DYN_ADJUST_HI_MARGIN : -5);
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		ah->ah_gain.g_low = level[0] +
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			(step == 63 ? AR5K_GAIN_DYN_ADJUST_LO_MARGIN : 0);
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	} else {
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		rf_regs = rf_regs_5112;
		ah->ah_rf_regs_count = ARRAY_SIZE(rf_regs_5112);

		mix_ovr = ath5k_hw_rfb_op(ah, rf_regs, 0, AR5K_RF_MIXVGA_OVR,
			false);

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		level[0] = level[2] = 0;

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		if (mix_ovr == 1) {
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			level[1] = level[3] = 83;
		} else {
			level[1] = level[3] = 107;
			ah->ah_gain.g_high = 55;
		}
	}

	return (ah->ah_gain.g_current >= level[0] &&
			ah->ah_gain.g_current <= level[1]) ||
		(ah->ah_gain.g_current >= level[2] &&
			ah->ah_gain.g_current <= level[3]);
}

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/* Perform gain_F adjustment by choosing the right set
 * of parameters from rf gain optimization ladder */
static s8 ath5k_hw_rf_gainf_adjust(struct ath5k_hw *ah)
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{
	const struct ath5k_gain_opt *go;
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	const struct ath5k_gain_opt_step *g_step;
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	int ret = 0;

	switch (ah->ah_radio) {
	case AR5K_RF5111:
		go = &rfgain_opt_5111;
		break;
	case AR5K_RF5112:
		go = &rfgain_opt_5112;
		break;
	default:
		return 0;
	}

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	g_step = &go->go_step[ah->ah_gain.g_step_idx];
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	if (ah->ah_gain.g_current >= ah->ah_gain.g_high) {
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		/* Reached maximum */
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		if (ah->ah_gain.g_step_idx == 0)
			return -1;
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		for (ah->ah_gain.g_target = ah->ah_gain.g_current;
				ah->ah_gain.g_target >=  ah->ah_gain.g_high &&
				ah->ah_gain.g_step_idx > 0;
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				g_step = &go->go_step[ah->ah_gain.g_step_idx])
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			ah->ah_gain.g_target -= 2 *
			    (go->go_step[--(ah->ah_gain.g_step_idx)].gos_gain -
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			    g_step->gos_gain);
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		ret = 1;
		goto done;
	}

	if (ah->ah_gain.g_current <= ah->ah_gain.g_low) {
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		/* Reached minimum */
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		if (ah->ah_gain.g_step_idx == (go->go_steps_count - 1))
			return -2;
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		for (ah->ah_gain.g_target = ah->ah_gain.g_current;
				ah->ah_gain.g_target <= ah->ah_gain.g_low &&
				ah->ah_gain.g_step_idx < go->go_steps_count-1;
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				g_step = &go->go_step[ah->ah_gain.g_step_idx])
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			ah->ah_gain.g_target -= 2 *
			    (go->go_step[++ah->ah_gain.g_step_idx].gos_gain -
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			    g_step->gos_gain);
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		ret = 2;
		goto done;
	}

done:
	ATH5K_DBG(ah->ah_sc, ATH5K_DEBUG_CALIBRATE,
		"ret %d, gain step %u, current gain %u, target gain %u\n",
		ret, ah->ah_gain.g_step_idx, ah->ah_gain.g_current,
		ah->ah_gain.g_target);

	return ret;
}

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/* Main callback for thermal rf gain calibration engine
 * Check for a new gain reading and schedule an adjustment
 * if needed.
 *
 * TODO: Use sw interrupt to schedule reset if gain_F needs
 * adjustment */
enum ath5k_rfgain ath5k_hw_gainf_calibrate(struct ath5k_hw *ah)
{
	u32 data, type;
	struct ath5k_eeprom_info *ee = &ah->ah_capabilities.cap_eeprom;

	ATH5K_TRACE(ah->ah_sc);

	if (ah->ah_rf_banks == NULL ||
	ah->ah_gain.g_state == AR5K_RFGAIN_INACTIVE)
		return AR5K_RFGAIN_INACTIVE;

	/* No check requested, either engine is inactive
	 * or an adjustment is already requested */
	if (ah->ah_gain.g_state != AR5K_RFGAIN_READ_REQUESTED)
		goto done;

	/* Read the PAPD (Peak to Average Power Detector)
	 * register */
	data = ath5k_hw_reg_read(ah, AR5K_PHY_PAPD_PROBE);

	/* No probe is scheduled, read gain_F measurement */
	if (!(data & AR5K_PHY_PAPD_PROBE_TX_NEXT)) {
		ah->ah_gain.g_current = data >> AR5K_PHY_PAPD_PROBE_GAINF_S;
		type = AR5K_REG_MS(data, AR5K_PHY_PAPD_PROBE_TYPE);

		/* If tx packet is CCK correct the gain_F measurement
		 * by cck ofdm gain delta */
		if (type == AR5K_PHY_PAPD_PROBE_TYPE_CCK) {
			if (ah->ah_radio_5ghz_revision >= AR5K_SREV_RAD_5112A)
				ah->ah_gain.g_current +=
					ee->ee_cck_ofdm_gain_delta;
			else
				ah->ah_gain.g_current +=
					AR5K_GAIN_CCK_PROBE_CORR;
		}

		/* Further correct gain_F measurement for
		 * RF5112A radios */
		if (ah->ah_radio_5ghz_revision >= AR5K_SREV_RAD_5112A) {
			ath5k_hw_rf_gainf_corr(ah);
			ah->ah_gain.g_current =
				ah->ah_gain.g_current >= ah->ah_gain.g_f_corr ?
				(ah->ah_gain.g_current-ah->ah_gain.g_f_corr) :
				0;
		}

		/* Check if measurement is ok and if we need
		 * to adjust gain, schedule a gain adjustment,
		 * else switch back to the acive state */
		if (ath5k_hw_rf_check_gainf_readback(ah) &&
		AR5K_GAIN_CHECK_ADJUST(&ah->ah_gain) &&
		ath5k_hw_rf_gainf_adjust(ah)) {
			ah->ah_gain.g_state = AR5K_RFGAIN_NEED_CHANGE;
		} else {
			ah->ah_gain.g_state = AR5K_RFGAIN_ACTIVE;
		}
	}

done:
	return ah->ah_gain.g_state;
}

/* Write initial rf gain table to set the RF sensitivity
 * this one works on all RF chips and has nothing to do
 * with gain_F calibration */
int ath5k_hw_rfgain_init(struct ath5k_hw *ah, unsigned int freq)
{
	const struct ath5k_ini_rfgain *ath5k_rfg;
	unsigned int i, size;

	switch (ah->ah_radio) {
	case AR5K_RF5111:
		ath5k_rfg = rfgain_5111;
		size = ARRAY_SIZE(rfgain_5111);
		break;
	case AR5K_RF5112:
		ath5k_rfg = rfgain_5112;
		size = ARRAY_SIZE(rfgain_5112);
		break;
	case AR5K_RF2413:
		ath5k_rfg = rfgain_2413;
		size = ARRAY_SIZE(rfgain_2413);
		break;
	case AR5K_RF2316:
		ath5k_rfg = rfgain_2316;
		size = ARRAY_SIZE(rfgain_2316);
		break;
	case AR5K_RF5413:
		ath5k_rfg = rfgain_5413;
		size = ARRAY_SIZE(rfgain_5413);
		break;
	case AR5K_RF2317:
	case AR5K_RF2425:
		ath5k_rfg = rfgain_2425;
		size = ARRAY_SIZE(rfgain_2425);
		break;
	default:
		return -EINVAL;
	}

	switch (freq) {
	case AR5K_INI_RFGAIN_2GHZ:
	case AR5K_INI_RFGAIN_5GHZ:
		break;
	default:
		return -EINVAL;
	}

	for (i = 0; i < size; i++) {
		AR5K_REG_WAIT(i);
		ath5k_hw_reg_write(ah, ath5k_rfg[i].rfg_value[freq],
			(u32)ath5k_rfg[i].rfg_register);
	}

	return 0;
}



/********************\
* RF Registers setup *
\********************/

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/*
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 * Setup RF registers by writing rf buffer on hw
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 */
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int ath5k_hw_rfregs_init(struct ath5k_hw *ah, struct ieee80211_channel *channel,
		unsigned int mode)
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{
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	const struct ath5k_rf_reg *rf_regs;
	const struct ath5k_ini_rfbuffer *ini_rfb;
	const struct ath5k_gain_opt *go = NULL;
	const struct ath5k_gain_opt_step *g_step;
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	struct ath5k_eeprom_info *ee = &ah->ah_capabilities.cap_eeprom;
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	u8 ee_mode = 0;
	u32 *rfb;
	int i, obdb = -1, bank = -1;
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	switch (ah->ah_radio) {
	case AR5K_RF5111:
		rf_regs = rf_regs_5111;
		ah->ah_rf_regs_count = ARRAY_SIZE(rf_regs_5111);
		ini_rfb = rfb_5111;
		ah->ah_rf_banks_size = ARRAY_SIZE(rfb_5111);
		go = &rfgain_opt_5111;
		break;
	case AR5K_RF5112:
		if (ah->ah_radio_5ghz_revision >= AR5K_SREV_RAD_5112A) {
			rf_regs = rf_regs_5112a;
			ah->ah_rf_regs_count = ARRAY_SIZE(rf_regs_5112a);
			ini_rfb = rfb_5112a;
			ah->ah_rf_banks_size = ARRAY_SIZE(rfb_5112a);
		} else {
			rf_regs = rf_regs_5112;
			ah->ah_rf_regs_count = ARRAY_SIZE(rf_regs_5112);
			ini_rfb = rfb_5112;
			ah->ah_rf_banks_size = ARRAY_SIZE(rfb_5112);
		}
		go = &rfgain_opt_5112;
		break;
	case AR5K_RF2413:
		rf_regs = rf_regs_2413;
		ah->ah_rf_regs_count = ARRAY_SIZE(rf_regs_2413);
		ini_rfb = rfb_2413;
		ah->ah_rf_banks_size = ARRAY_SIZE(rfb_2413);
		break;
	case AR5K_RF2316:
		rf_regs = rf_regs_2316;
		ah->ah_rf_regs_count = ARRAY_SIZE(rf_regs_2316);
		ini_rfb = rfb_2316;
		ah->ah_rf_banks_size = ARRAY_SIZE(rfb_2316);
		break;
	case AR5K_RF5413:
		rf_regs = rf_regs_5413;
		ah->ah_rf_regs_count = ARRAY_SIZE(rf_regs_5413);
		ini_rfb = rfb_5413;
		ah->ah_rf_banks_size = ARRAY_SIZE(rfb_5413);
		break;
	case AR5K_RF2317:
		rf_regs = rf_regs_2425;
		ah->ah_rf_regs_count = ARRAY_SIZE(rf_regs_2425);
		ini_rfb = rfb_2317;
		ah->ah_rf_banks_size = ARRAY_SIZE(rfb_2317);
		break;
	case AR5K_RF2425:
		rf_regs = rf_regs_2425;
		ah->ah_rf_regs_count = ARRAY_SIZE(rf_regs_2425);
		if (ah->ah_mac_srev < AR5K_SREV_AR2417) {
			ini_rfb = rfb_2425;
			ah->ah_rf_banks_size = ARRAY_SIZE(rfb_2425);
		} else {
			ini_rfb = rfb_2417;
			ah->ah_rf_banks_size = ARRAY_SIZE(rfb_2417);
		}
		break;
	default:
		return -EINVAL;
	}
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	/* If it's the first time we set rf buffer, allocate
	 * ah->ah_rf_banks based on ah->ah_rf_banks_size
	 * we set above */
	if (ah->ah_rf_banks == NULL) {
		ah->ah_rf_banks = kmalloc(sizeof(u32) * ah->ah_rf_banks_size,
								GFP_KERNEL);
		if (ah->ah_rf_banks == NULL) {
			ATH5K_ERR(ah->ah_sc, "out of memory\n");
			return -ENOMEM;
		}
	}
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	/* Copy values to modify them */
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	rfb = ah->ah_rf_banks;

	for (i = 0; i < ah->ah_rf_banks_size; i++) {
		if (ini_rfb[i].rfb_bank >= AR5K_MAX_RF_BANKS) {
597 598 599 600
			ATH5K_ERR(ah->ah_sc, "invalid bank\n");
			return -EINVAL;
		}

601 602 603
		/* Bank changed, write down the offset */
		if (bank != ini_rfb[i].rfb_bank) {
			bank = ini_rfb[i].rfb_bank;
604 605 606
			ah->ah_offset[bank] = i;
		}

607
		rfb[i] = ini_rfb[i].rfb_mode_data[mode];
608 609
	}

610
	/* Set Output and Driver bias current (OB/DB) */
611
	if (channel->hw_value & CHANNEL_2GHZ) {
612

613
		if (channel->hw_value & CHANNEL_CCK)
614 615 616 617
			ee_mode = AR5K_EEPROM_MODE_11B;
		else
			ee_mode = AR5K_EEPROM_MODE_11G;

618 619 620 621 622 623 624 625 626 627 628 629
		/* For RF511X/RF211X combination we
		 * use b_OB and b_DB parameters stored
		 * in eeprom on ee->ee_ob[ee_mode][0]
		 *
		 * For all other chips we use OB/DB for 2Ghz
		 * stored in the b/g modal section just like
		 * 802.11a on ee->ee_ob[ee_mode][1] */
		if ((ah->ah_radio == AR5K_RF5111) ||
		(ah->ah_radio == AR5K_RF5112))
			obdb = 0;
		else
			obdb = 1;
630

631 632
		ath5k_hw_rfb_op(ah, rf_regs, ee->ee_ob[ee_mode][obdb],
						AR5K_RF_OB_2GHZ, true);
633

634 635 636 637 638 639 640 641 642
		ath5k_hw_rfb_op(ah, rf_regs, ee->ee_db[ee_mode][obdb],
						AR5K_RF_DB_2GHZ, true);

	/* RF5111 always needs OB/DB for 5GHz, even if we use 2GHz */
	} else if ((channel->hw_value & CHANNEL_5GHZ) ||
			(ah->ah_radio == AR5K_RF5111)) {

		/* For 11a, Turbo and XR we need to choose
		 * OB/DB based on frequency range */
643
		ee_mode = AR5K_EEPROM_MODE_11A;
644 645 646 647
		obdb =	 channel->center_freq >= 5725 ? 3 :
			(channel->center_freq >= 5500 ? 2 :
			(channel->center_freq >= 5260 ? 1 :
			 (channel->center_freq > 4000 ? 0 : -1)));
648

649
		if (obdb < 0)
650 651
			return -EINVAL;

652 653 654 655 656
		ath5k_hw_rfb_op(ah, rf_regs, ee->ee_ob[ee_mode][obdb],
						AR5K_RF_OB_5GHZ, true);

		ath5k_hw_rfb_op(ah, rf_regs, ee->ee_db[ee_mode][obdb],
						AR5K_RF_DB_5GHZ, true);
657 658
	}

659
	g_step = &go->go_step[ah->ah_gain.g_step_idx];
660

661 662
	/* Bank Modifications (chip-specific) */
	if (ah->ah_radio == AR5K_RF5111) {
663

664 665
		/* Set gain_F settings according to current step */
		if (channel->hw_value & CHANNEL_OFDM) {
666

667 668 669
			AR5K_REG_WRITE_BITS(ah, AR5K_PHY_FRAME_CTL,
					AR5K_PHY_FRAME_CTL_TX_CLIP,
					g_step->gos_param[0]);
670

671 672
			ath5k_hw_rfb_op(ah, rf_regs, g_step->gos_param[1],
							AR5K_RF_PWD_90, true);
673

674 675
			ath5k_hw_rfb_op(ah, rf_regs, g_step->gos_param[2],
							AR5K_RF_PWD_84, true);
676

677 678
			ath5k_hw_rfb_op(ah, rf_regs, g_step->gos_param[3],
						AR5K_RF_RFGAIN_SEL, true);
679

680 681 682
			/* We programmed gain_F parameters, switch back
			 * to active state */
			ah->ah_gain.g_state = AR5K_RFGAIN_ACTIVE;
683

684
		}
685

686
		/* Bank 6/7 setup */
687

688 689
		ath5k_hw_rfb_op(ah, rf_regs, !ee->ee_xpd[ee_mode],
						AR5K_RF_PWD_XPD, true);
690

691 692
		ath5k_hw_rfb_op(ah, rf_regs, ee->ee_x_gain[ee_mode],
						AR5K_RF_XPD_GAIN, true);
693

694 695
		ath5k_hw_rfb_op(ah, rf_regs, ee->ee_i_gain[ee_mode],
						AR5K_RF_GAIN_I, true);
696

697 698
		ath5k_hw_rfb_op(ah, rf_regs, ee->ee_xpd[ee_mode],
						AR5K_RF_PLO_SEL, true);
699

700
		/* TODO: Half/quarter channel support */
701 702
	}

703
	if (ah->ah_radio == AR5K_RF5112) {
704

705 706
		/* Set gain_F settings according to current step */
		if (channel->hw_value & CHANNEL_OFDM) {
707

708 709
			ath5k_hw_rfb_op(ah, rf_regs, g_step->gos_param[0],
						AR5K_RF_MIXGAIN_OVR, true);
710

711 712
			ath5k_hw_rfb_op(ah, rf_regs, g_step->gos_param[1],
						AR5K_RF_PWD_138, true);
713

714 715
			ath5k_hw_rfb_op(ah, rf_regs, g_step->gos_param[2],
						AR5K_RF_PWD_137, true);
716

717 718
			ath5k_hw_rfb_op(ah, rf_regs, g_step->gos_param[3],
						AR5K_RF_PWD_136, true);
719

720 721
			ath5k_hw_rfb_op(ah, rf_regs, g_step->gos_param[4],
						AR5K_RF_PWD_132, true);
722

723 724
			ath5k_hw_rfb_op(ah, rf_regs, g_step->gos_param[5],
						AR5K_RF_PWD_131, true);
725

726 727
			ath5k_hw_rfb_op(ah, rf_regs, g_step->gos_param[6],
						AR5K_RF_PWD_130, true);
728

729 730 731 732
			/* We programmed gain_F parameters, switch back
			 * to active state */
			ah->ah_gain.g_state = AR5K_RFGAIN_ACTIVE;
		}
733

734
		/* Bank 6/7 setup */
735

736 737
		ath5k_hw_rfb_op(ah, rf_regs, ee->ee_xpd[ee_mode],
						AR5K_RF_XPD_SEL, true);
738

739 740 741 742 743
		if (ah->ah_radio_5ghz_revision < AR5K_SREV_RAD_5112A) {
			/* Rev. 1 supports only one xpd */
			ath5k_hw_rfb_op(ah, rf_regs,
						ee->ee_x_gain[ee_mode],
						AR5K_RF_XPD_GAIN, true);
744

745 746 747 748 749 750 751 752
		} else {
			/* TODO: Set high and low gain bits */
			ath5k_hw_rfb_op(ah, rf_regs,
						ee->ee_x_gain[ee_mode],
						AR5K_RF_PD_GAIN_LO, true);
			ath5k_hw_rfb_op(ah, rf_regs,
						ee->ee_x_gain[ee_mode],
						AR5K_RF_PD_GAIN_HI, true);
753

754 755 756
			/* Lower synth voltage on Rev 2 */
			ath5k_hw_rfb_op(ah, rf_regs, 2,
					AR5K_RF_HIGH_VC_CP, true);
757

758 759
			ath5k_hw_rfb_op(ah, rf_regs, 2,
					AR5K_RF_MID_VC_CP, true);
760

761 762
			ath5k_hw_rfb_op(ah, rf_regs, 2,
					AR5K_RF_LOW_VC_CP, true);
N
Nick Kossifidis 已提交
763

764 765
			ath5k_hw_rfb_op(ah, rf_regs, 2,
					AR5K_RF_PUSH_UP, true);
N
Nick Kossifidis 已提交
766

767 768 769 770
			/* Decrease power consumption on 5213+ BaseBand */
			if (ah->ah_phy_revision >= AR5K_SREV_PHY_5212A) {
				ath5k_hw_rfb_op(ah, rf_regs, 1,
						AR5K_RF_PAD2GND, true);
N
Nick Kossifidis 已提交
771

772 773
				ath5k_hw_rfb_op(ah, rf_regs, 1,
						AR5K_RF_XB2_LVL, true);
N
Nick Kossifidis 已提交
774

775 776
				ath5k_hw_rfb_op(ah, rf_regs, 1,
						AR5K_RF_XB5_LVL, true);
777

778 779
				ath5k_hw_rfb_op(ah, rf_regs, 1,
						AR5K_RF_PWD_167, true);
780

781 782 783
				ath5k_hw_rfb_op(ah, rf_regs, 1,
						AR5K_RF_PWD_166, true);
			}
784 785
		}

786 787
		ath5k_hw_rfb_op(ah, rf_regs, ee->ee_i_gain[ee_mode],
						AR5K_RF_GAIN_I, true);
788

789
		/* TODO: Half/quarter channel support */
790

791
	}
792

793 794
	if (ah->ah_radio == AR5K_RF5413 &&
	channel->hw_value & CHANNEL_2GHZ) {
795

796 797
		ath5k_hw_rfb_op(ah, rf_regs, 1, AR5K_RF_DERBY_CHAN_SEL_MODE,
									true);
798

799 800 801 802 803
		/* Set optimum value for early revisions (on pci-e chips) */
		if (ah->ah_mac_srev >= AR5K_SREV_AR5424 &&
		ah->ah_mac_srev < AR5K_SREV_AR5413)
			ath5k_hw_rfb_op(ah, rf_regs, ath5k_hw_bitswap(6, 3),
						AR5K_RF_PWD_ICLOBUF_2G, true);
804 805 806

	}

807 808 809 810 811
	/* Write RF banks on hw */
	for (i = 0; i < ah->ah_rf_banks_size; i++) {
		AR5K_REG_WAIT(i);
		ath5k_hw_reg_write(ah, rfb[i], ini_rfb[i].rfb_ctrl_register);
	}
812

813
	return 0;
814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851
}


/**************************\
  PHY/RF channel functions
\**************************/

/*
 * Check if a channel is supported
 */
bool ath5k_channel_ok(struct ath5k_hw *ah, u16 freq, unsigned int flags)
{
	/* Check if the channel is in our supported range */
	if (flags & CHANNEL_2GHZ) {
		if ((freq >= ah->ah_capabilities.cap_range.range_2ghz_min) &&
		    (freq <= ah->ah_capabilities.cap_range.range_2ghz_max))
			return true;
	} else if (flags & CHANNEL_5GHZ)
		if ((freq >= ah->ah_capabilities.cap_range.range_5ghz_min) &&
		    (freq <= ah->ah_capabilities.cap_range.range_5ghz_max))
			return true;

	return false;
}

/*
 * Convertion needed for RF5110
 */
static u32 ath5k_hw_rf5110_chan2athchan(struct ieee80211_channel *channel)
{
	u32 athchan;

	/*
	 * Convert IEEE channel/MHz to an internal channel value used
	 * by the AR5210 chipset. This has not been verified with
	 * newer chipsets like the AR5212A who have a completely
	 * different RF/PHY part.
	 */
852 853 854 855
	athchan = (ath5k_hw_bitswap(
			(ieee80211_frequency_to_channel(
				channel->center_freq) - 24) / 2, 5)
				<< 1) | (1 << 6) | 0x1;
856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913
	return athchan;
}

/*
 * Set channel on RF5110
 */
static int ath5k_hw_rf5110_channel(struct ath5k_hw *ah,
		struct ieee80211_channel *channel)
{
	u32 data;

	/*
	 * Set the channel and wait
	 */
	data = ath5k_hw_rf5110_chan2athchan(channel);
	ath5k_hw_reg_write(ah, data, AR5K_RF_BUFFER);
	ath5k_hw_reg_write(ah, 0, AR5K_RF_BUFFER_CONTROL_0);
	mdelay(1);

	return 0;
}

/*
 * Convertion needed for 5111
 */
static int ath5k_hw_rf5111_chan2athchan(unsigned int ieee,
		struct ath5k_athchan_2ghz *athchan)
{
	int channel;

	/* Cast this value to catch negative channel numbers (>= -19) */
	channel = (int)ieee;

	/*
	 * Map 2GHz IEEE channel to 5GHz Atheros channel
	 */
	if (channel <= 13) {
		athchan->a2_athchan = 115 + channel;
		athchan->a2_flags = 0x46;
	} else if (channel == 14) {
		athchan->a2_athchan = 124;
		athchan->a2_flags = 0x44;
	} else if (channel >= 15 && channel <= 26) {
		athchan->a2_athchan = ((channel - 14) * 4) + 132;
		athchan->a2_flags = 0x46;
	} else
		return -EINVAL;

	return 0;
}

/*
 * Set channel on 5111
 */
static int ath5k_hw_rf5111_channel(struct ath5k_hw *ah,
		struct ieee80211_channel *channel)
{
	struct ath5k_athchan_2ghz ath5k_channel_2ghz;
914 915
	unsigned int ath5k_channel =
		ieee80211_frequency_to_channel(channel->center_freq);
916 917 918 919 920 921 922 923
	u32 data0, data1, clock;
	int ret;

	/*
	 * Set the channel on the RF5111 radio
	 */
	data0 = data1 = 0;

924
	if (channel->hw_value & CHANNEL_2GHZ) {
925
		/* Map 2GHz channel to 5GHz Atheros channel ID */
926 927 928
		ret = ath5k_hw_rf5111_chan2athchan(
			ieee80211_frequency_to_channel(channel->center_freq),
			&ath5k_channel_2ghz);
929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964
		if (ret)
			return ret;

		ath5k_channel = ath5k_channel_2ghz.a2_athchan;
		data0 = ((ath5k_hw_bitswap(ath5k_channel_2ghz.a2_flags, 8) & 0xff)
		    << 5) | (1 << 4);
	}

	if (ath5k_channel < 145 || !(ath5k_channel & 1)) {
		clock = 1;
		data1 = ((ath5k_hw_bitswap(ath5k_channel - 24, 8) & 0xff) << 2) |
			(clock << 1) | (1 << 10) | 1;
	} else {
		clock = 0;
		data1 = ((ath5k_hw_bitswap((ath5k_channel - 24) / 2, 8) & 0xff)
			<< 2) | (clock << 1) | (1 << 10) | 1;
	}

	ath5k_hw_reg_write(ah, (data1 & 0xff) | ((data0 & 0xff) << 8),
			AR5K_RF_BUFFER);
	ath5k_hw_reg_write(ah, ((data1 >> 8) & 0xff) | (data0 & 0xff00),
			AR5K_RF_BUFFER_CONTROL_3);

	return 0;
}

/*
 * Set channel on 5112 and newer
 */
static int ath5k_hw_rf5112_channel(struct ath5k_hw *ah,
		struct ieee80211_channel *channel)
{
	u32 data, data0, data1, data2;
	u16 c;

	data = data0 = data1 = data2 = 0;
965
	c = channel->center_freq;
966 967 968 969 970 971 972 973 974 975 976 977

	if (c < 4800) {
		if (!((c - 2224) % 5)) {
			data0 = ((2 * (c - 704)) - 3040) / 10;
			data1 = 1;
		} else if (!((c - 2192) % 5)) {
			data0 = ((2 * (c - 672)) - 3040) / 10;
			data1 = 0;
		} else
			return -EINVAL;

		data0 = ath5k_hw_bitswap((data0 << 2) & 0xff, 8);
978
	} else if ((c - (c % 5)) != 2 || c > 5435) {
979 980 981 982 983 984 985 986 987 988 989
		if (!(c % 20) && c >= 5120) {
			data0 = ath5k_hw_bitswap(((c - 4800) / 20 << 2), 8);
			data2 = ath5k_hw_bitswap(3, 2);
		} else if (!(c % 10)) {
			data0 = ath5k_hw_bitswap(((c - 4800) / 10 << 1), 8);
			data2 = ath5k_hw_bitswap(2, 2);
		} else if (!(c % 5)) {
			data0 = ath5k_hw_bitswap((c - 4800) / 5, 8);
			data2 = ath5k_hw_bitswap(1, 2);
		} else
			return -EINVAL;
990 991 992
	} else {
		data0 = ath5k_hw_bitswap((10 * (c - 2) - 4800) / 25 + 1, 8);
		data2 = ath5k_hw_bitswap(0, 2);
993 994 995 996 997 998 999 1000 1001 1002
	}

	data = (data0 << 4) | (data1 << 1) | (data2 << 2) | 0x1001;

	ath5k_hw_reg_write(ah, data & 0xff, AR5K_RF_BUFFER);
	ath5k_hw_reg_write(ah, (data >> 8) & 0x7f, AR5K_RF_BUFFER_CONTROL_5);

	return 0;
}

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
/*
 * Set the channel on the RF2425
 */
static int ath5k_hw_rf2425_channel(struct ath5k_hw *ah,
		struct ieee80211_channel *channel)
{
	u32 data, data0, data2;
	u16 c;

	data = data0 = data2 = 0;
	c = channel->center_freq;

	if (c < 4800) {
		data0 = ath5k_hw_bitswap((c - 2272), 8);
		data2 = 0;
	/* ? 5GHz ? */
	} else if ((c - (c % 5)) != 2 || c > 5435) {
		if (!(c % 20) && c < 5120)
			data0 = ath5k_hw_bitswap(((c - 4800) / 20 << 2), 8);
		else if (!(c % 10))
			data0 = ath5k_hw_bitswap(((c - 4800) / 10 << 1), 8);
		else if (!(c % 5))
			data0 = ath5k_hw_bitswap((c - 4800) / 5, 8);
		else
			return -EINVAL;
		data2 = ath5k_hw_bitswap(1, 2);
	} else {
		data0 = ath5k_hw_bitswap((10 * (c - 2) - 4800) / 25 + 1, 8);
		data2 = ath5k_hw_bitswap(0, 2);
	}

	data = (data0 << 4) | data2 << 2 | 0x1001;

	ath5k_hw_reg_write(ah, data & 0xff, AR5K_RF_BUFFER);
	ath5k_hw_reg_write(ah, (data >> 8) & 0x7f, AR5K_RF_BUFFER_CONTROL_5);

	return 0;
}

1042 1043 1044 1045 1046 1047 1048
/*
 * Set a channel on the radio chip
 */
int ath5k_hw_channel(struct ath5k_hw *ah, struct ieee80211_channel *channel)
{
	int ret;
	/*
1049 1050 1051 1052 1053
	 * Check bounds supported by the PHY (we don't care about regultory
	 * restrictions at this point). Note: hw_value already has the band
	 * (CHANNEL_2GHZ, or CHANNEL_5GHZ) so we inform ath5k_channel_ok()
	 * of the band by that */
	if (!ath5k_channel_ok(ah, channel->center_freq, channel->hw_value)) {
1054
		ATH5K_ERR(ah->ah_sc,
1055 1056
			"channel frequency (%u MHz) out of supported "
			"band range\n",
1057
			channel->center_freq);
1058
			return -EINVAL;
1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070
	}

	/*
	 * Set the channel and wait
	 */
	switch (ah->ah_radio) {
	case AR5K_RF5110:
		ret = ath5k_hw_rf5110_channel(ah, channel);
		break;
	case AR5K_RF5111:
		ret = ath5k_hw_rf5111_channel(ah, channel);
		break;
1071 1072 1073
	case AR5K_RF2425:
		ret = ath5k_hw_rf2425_channel(ah, channel);
		break;
1074 1075 1076 1077 1078 1079 1080 1081
	default:
		ret = ath5k_hw_rf5112_channel(ah, channel);
		break;
	}

	if (ret)
		return ret;

1082 1083 1084 1085 1086 1087 1088 1089 1090
	/* Set JAPAN setting for channel 14 */
	if (channel->center_freq == 2484) {
		AR5K_REG_ENABLE_BITS(ah, AR5K_PHY_CCKTXCTL,
				AR5K_PHY_CCKTXCTL_JAPAN);
	} else {
		AR5K_REG_ENABLE_BITS(ah, AR5K_PHY_CCKTXCTL,
				AR5K_PHY_CCKTXCTL_WORLD);
	}

1091 1092 1093
	ah->ah_current_channel.center_freq = channel->center_freq;
	ah->ah_current_channel.hw_value = channel->hw_value;
	ah->ah_turbo = channel->hw_value == CHANNEL_T ? true : false;
1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120

	return 0;
}

/*****************\
  PHY calibration
\*****************/

/**
 * ath5k_hw_noise_floor_calibration - perform PHY noise floor calibration
 *
 * @ah: struct ath5k_hw pointer we are operating on
 * @freq: the channel frequency, just used for error logging
 *
 * This function performs a noise floor calibration of the PHY and waits for
 * it to complete. Then the noise floor value is compared to some maximum
 * noise floor we consider valid.
 *
 * Note that this is different from what the madwifi HAL does: it reads the
 * noise floor and afterwards initiates the calibration. Since the noise floor
 * calibration can take some time to finish, depending on the current channel
 * use, that avoids the occasional timeout warnings we are seeing now.
 *
 * See the following link for an Atheros patent on noise floor calibration:
 * http://patft.uspto.gov/netacgi/nph-Parser?Sect1=PTO1&Sect2=HITOFF&d=PALL \
 * &p=1&u=%2Fnetahtml%2FPTO%2Fsrchnum.htm&r=1&f=G&l=50&s1=7245893.PN.&OS=PN/7
 *
1121 1122
 * XXX: Since during noise floor calibration antennas are detached according to
 * the patent, we should stop tx queues here.
1123 1124 1125 1126 1127 1128 1129 1130 1131
 */
int
ath5k_hw_noise_floor_calibration(struct ath5k_hw *ah, short freq)
{
	int ret;
	unsigned int i;
	s32 noise_floor;

	/*
1132
	 * Enable noise floor calibration
1133 1134 1135 1136 1137 1138 1139 1140 1141
	 */
	AR5K_REG_ENABLE_BITS(ah, AR5K_PHY_AGCCTL,
				AR5K_PHY_AGCCTL_NF);

	ret = ath5k_hw_register_timeout(ah, AR5K_PHY_AGCCTL,
			AR5K_PHY_AGCCTL_NF, 0, false);
	if (ret) {
		ATH5K_ERR(ah->ah_sc,
			"noise floor calibration timeout (%uMHz)\n", freq);
1142
		return -EAGAIN;
1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163
	}

	/* Wait until the noise floor is calibrated and read the value */
	for (i = 20; i > 0; i--) {
		mdelay(1);
		noise_floor = ath5k_hw_reg_read(ah, AR5K_PHY_NF);
		noise_floor = AR5K_PHY_NF_RVAL(noise_floor);
		if (noise_floor & AR5K_PHY_NF_ACTIVE) {
			noise_floor = AR5K_PHY_NF_AVAL(noise_floor);

			if (noise_floor <= AR5K_TUNE_NOISE_FLOOR)
				break;
		}
	}

	ATH5K_DBG_UNLIMIT(ah->ah_sc, ATH5K_DEBUG_CALIBRATE,
		"noise floor %d\n", noise_floor);

	if (noise_floor > AR5K_TUNE_NOISE_FLOOR) {
		ATH5K_ERR(ah->ah_sc,
			"noise floor calibration failed (%uMHz)\n", freq);
1164
		return -EAGAIN;
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
	}

	ah->ah_noise_floor = noise_floor;

	return 0;
}

/*
 * Perform a PHY calibration on RF5110
 * -Fix BPSK/QAM Constellation (I/Q correction)
 * -Calculate Noise Floor
 */
static int ath5k_hw_rf5110_calibrate(struct ath5k_hw *ah,
		struct ieee80211_channel *channel)
{
	u32 phy_sig, phy_agc, phy_sat, beacon;
	int ret;

	/*
	 * Disable beacons and RX/TX queues, wait
	 */
	AR5K_REG_ENABLE_BITS(ah, AR5K_DIAG_SW_5210,
		AR5K_DIAG_SW_DIS_TX | AR5K_DIAG_SW_DIS_RX_5210);
	beacon = ath5k_hw_reg_read(ah, AR5K_BEACON_5210);
	ath5k_hw_reg_write(ah, beacon & ~AR5K_BEACON_ENABLE, AR5K_BEACON_5210);

1191
	mdelay(2);
1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257

	/*
	 * Set the channel (with AGC turned off)
	 */
	AR5K_REG_ENABLE_BITS(ah, AR5K_PHY_AGC, AR5K_PHY_AGC_DISABLE);
	udelay(10);
	ret = ath5k_hw_channel(ah, channel);

	/*
	 * Activate PHY and wait
	 */
	ath5k_hw_reg_write(ah, AR5K_PHY_ACT_ENABLE, AR5K_PHY_ACT);
	mdelay(1);

	AR5K_REG_DISABLE_BITS(ah, AR5K_PHY_AGC, AR5K_PHY_AGC_DISABLE);

	if (ret)
		return ret;

	/*
	 * Calibrate the radio chip
	 */

	/* Remember normal state */
	phy_sig = ath5k_hw_reg_read(ah, AR5K_PHY_SIG);
	phy_agc = ath5k_hw_reg_read(ah, AR5K_PHY_AGCCOARSE);
	phy_sat = ath5k_hw_reg_read(ah, AR5K_PHY_ADCSAT);

	/* Update radio registers */
	ath5k_hw_reg_write(ah, (phy_sig & ~(AR5K_PHY_SIG_FIRPWR)) |
		AR5K_REG_SM(-1, AR5K_PHY_SIG_FIRPWR), AR5K_PHY_SIG);

	ath5k_hw_reg_write(ah, (phy_agc & ~(AR5K_PHY_AGCCOARSE_HI |
			AR5K_PHY_AGCCOARSE_LO)) |
		AR5K_REG_SM(-1, AR5K_PHY_AGCCOARSE_HI) |
		AR5K_REG_SM(-127, AR5K_PHY_AGCCOARSE_LO), AR5K_PHY_AGCCOARSE);

	ath5k_hw_reg_write(ah, (phy_sat & ~(AR5K_PHY_ADCSAT_ICNT |
			AR5K_PHY_ADCSAT_THR)) |
		AR5K_REG_SM(2, AR5K_PHY_ADCSAT_ICNT) |
		AR5K_REG_SM(12, AR5K_PHY_ADCSAT_THR), AR5K_PHY_ADCSAT);

	udelay(20);

	AR5K_REG_ENABLE_BITS(ah, AR5K_PHY_AGC, AR5K_PHY_AGC_DISABLE);
	udelay(10);
	ath5k_hw_reg_write(ah, AR5K_PHY_RFSTG_DISABLE, AR5K_PHY_RFSTG);
	AR5K_REG_DISABLE_BITS(ah, AR5K_PHY_AGC, AR5K_PHY_AGC_DISABLE);

	mdelay(1);

	/*
	 * Enable calibration and wait until completion
	 */
	AR5K_REG_ENABLE_BITS(ah, AR5K_PHY_AGCCTL, AR5K_PHY_AGCCTL_CAL);

	ret = ath5k_hw_register_timeout(ah, AR5K_PHY_AGCCTL,
			AR5K_PHY_AGCCTL_CAL, 0, false);

	/* Reset to normal state */
	ath5k_hw_reg_write(ah, phy_sig, AR5K_PHY_SIG);
	ath5k_hw_reg_write(ah, phy_agc, AR5K_PHY_AGCCOARSE);
	ath5k_hw_reg_write(ah, phy_sat, AR5K_PHY_ADCSAT);

	if (ret) {
		ATH5K_ERR(ah->ah_sc, "calibration timeout (%uMHz)\n",
1258
				channel->center_freq);
1259 1260 1261
		return ret;
	}

1262
	ath5k_hw_noise_floor_calibration(ah, channel->center_freq);
1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274

	/*
	 * Re-enable RX/TX and beacons
	 */
	AR5K_REG_DISABLE_BITS(ah, AR5K_DIAG_SW_5210,
		AR5K_DIAG_SW_DIS_TX | AR5K_DIAG_SW_DIS_RX_5210);
	ath5k_hw_reg_write(ah, beacon, AR5K_BEACON_5210);

	return 0;
}

/*
1275
 * Perform a PHY calibration on RF5111/5112 and newer chips
1276 1277 1278 1279 1280 1281
 */
static int ath5k_hw_rf511x_calibrate(struct ath5k_hw *ah,
		struct ieee80211_channel *channel)
{
	u32 i_pwr, q_pwr;
	s32 iq_corr, i_coff, i_coffd, q_coff, q_coffd;
1282
	int i;
1283 1284
	ATH5K_TRACE(ah->ah_sc);

1285
	if (!ah->ah_calibration ||
1286
		ath5k_hw_reg_read(ah, AR5K_PHY_IQ) & AR5K_PHY_IQ_RUN)
1287 1288
		goto done;

1289 1290 1291 1292 1293 1294
	/* Calibration has finished, get the results and re-run */
	for (i = 0; i <= 10; i++) {
		iq_corr = ath5k_hw_reg_read(ah, AR5K_PHY_IQRES_CAL_CORR);
		i_pwr = ath5k_hw_reg_read(ah, AR5K_PHY_IQRES_CAL_PWR_I);
		q_pwr = ath5k_hw_reg_read(ah, AR5K_PHY_IQRES_CAL_PWR_Q);
	}
1295 1296

	i_coffd = ((i_pwr >> 1) + (q_pwr >> 1)) >> 7;
1297
	q_coffd = q_pwr >> 7;
1298

1299
	/* No correction */
1300 1301 1302 1303 1304
	if (i_coffd == 0 || q_coffd == 0)
		goto done;

	i_coff = ((-iq_corr) / i_coffd) & 0x3f;

1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319
	/* Boundary check */
	if (i_coff > 31)
		i_coff = 31;
	if (i_coff < -32)
		i_coff = -32;

	q_coff = (((s32)i_pwr / q_coffd) - 128) & 0x1f;

	/* Boundary check */
	if (q_coff > 15)
		q_coff = 15;
	if (q_coff < -16)
		q_coff = -16;

	/* Commit new I/Q value */
1320 1321 1322
	AR5K_REG_ENABLE_BITS(ah, AR5K_PHY_IQ, AR5K_PHY_IQ_CORR_ENABLE |
		((u32)q_coff) | ((u32)i_coff << AR5K_PHY_IQ_CORR_Q_I_COFF_S));

1323 1324 1325 1326 1327 1328
	/* Re-enable calibration -if we don't we'll commit
	 * the same values again and again */
	AR5K_REG_WRITE_BITS(ah, AR5K_PHY_IQ,
			AR5K_PHY_IQ_CAL_NUM_LOG_MAX, 15);
	AR5K_REG_ENABLE_BITS(ah, AR5K_PHY_IQ, AR5K_PHY_IQ_RUN);

1329
done:
1330 1331 1332 1333 1334

	/* TODO: Separate noise floor calibration from I/Q calibration
	 * since noise floor calibration interrupts rx path while I/Q
	 * calibration doesn't. We don't need to run noise floor calibration
	 * as often as I/Q calibration.*/
1335
	ath5k_hw_noise_floor_calibration(ah, channel->center_freq);
1336

1337 1338
	/* Initiate a gain_F calibration */
	ath5k_hw_request_rfgain_probe(ah);
1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383 1384 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

	return 0;
}

/*
 * Perform a PHY calibration
 */
int ath5k_hw_phy_calibrate(struct ath5k_hw *ah,
		struct ieee80211_channel *channel)
{
	int ret;

	if (ah->ah_radio == AR5K_RF5110)
		ret = ath5k_hw_rf5110_calibrate(ah, channel);
	else
		ret = ath5k_hw_rf511x_calibrate(ah, channel);

	return ret;
}

int ath5k_hw_phy_disable(struct ath5k_hw *ah)
{
	ATH5K_TRACE(ah->ah_sc);
	/*Just a try M.F.*/
	ath5k_hw_reg_write(ah, AR5K_PHY_ACT_DISABLE, AR5K_PHY_ACT);

	return 0;
}

/********************\
  Misc PHY functions
\********************/

/*
 * Get the PHY Chip revision
 */
u16 ath5k_hw_radio_revision(struct ath5k_hw *ah, unsigned int chan)
{
	unsigned int i;
	u32 srev;
	u16 ret;

	ATH5K_TRACE(ah->ah_sc);

	/*
	 * Set the radio chip access register
	 */
	switch (chan) {
	case CHANNEL_2GHZ:
		ath5k_hw_reg_write(ah, AR5K_PHY_SHIFT_2GHZ, AR5K_PHY(0));
		break;
	case CHANNEL_5GHZ:
		ath5k_hw_reg_write(ah, AR5K_PHY_SHIFT_5GHZ, AR5K_PHY(0));
		break;
	default:
		return 0;
	}

	mdelay(2);

	/* ...wait until PHY is ready and read the selected radio revision */
	ath5k_hw_reg_write(ah, 0x00001c16, AR5K_PHY(0x34));

	for (i = 0; i < 8; i++)
		ath5k_hw_reg_write(ah, 0x00010000, AR5K_PHY(0x20));

	if (ah->ah_version == AR5K_AR5210) {
		srev = ath5k_hw_reg_read(ah, AR5K_PHY(256) >> 28) & 0xf;
		ret = (u16)ath5k_hw_bitswap(srev, 4) + 1;
	} else {
		srev = (ath5k_hw_reg_read(ah, AR5K_PHY(0x100)) >> 24) & 0xff;
		ret = (u16)ath5k_hw_bitswap(((srev & 0xf0) >> 4) |
				((srev & 0x0f) << 4), 8);
	}

	/* Reset to the 5GHz mode */
	ath5k_hw_reg_write(ah, AR5K_PHY_SHIFT_5GHZ, AR5K_PHY(0));

	return ret;
}

void /*TODO:Boundary check*/
ath5k_hw_set_def_antenna(struct ath5k_hw *ah, unsigned int ant)
{
	ATH5K_TRACE(ah->ah_sc);
	/*Just a try M.F.*/
	if (ah->ah_version != AR5K_AR5210)
		ath5k_hw_reg_write(ah, ant, AR5K_DEFAULT_ANTENNA);
}

unsigned int ath5k_hw_get_def_antenna(struct ath5k_hw *ah)
{
	ATH5K_TRACE(ah->ah_sc);
	/*Just a try M.F.*/
	if (ah->ah_version != AR5K_AR5210)
		return ath5k_hw_reg_read(ah, AR5K_DEFAULT_ANTENNA);

	return false; /*XXX: What do we return for 5210 ?*/
}

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 1482 1483 1484 1485 1486 1487 1488 1489

/****************\
* TX power setup *
\****************/

/*
 * Helper functions
 */

/*
 * Do linear interpolation between two given (x, y) points
 */
static s16
ath5k_get_interpolated_value(s16 target, s16 x_left, s16 x_right,
					s16 y_left, s16 y_right)
{
	s16 ratio, result;

	/* Avoid divide by zero and skip interpolation
	 * if we have the same point */
	if ((x_left == x_right) || (y_left == y_right))
		return y_left;

	/*
	 * Since we use ints and not fps, we need to scale up in
	 * order to get a sane ratio value (or else we 'll eg. get
	 * always 1 instead of 1.25, 1.75 etc). We scale up by 100
	 * to have some accuracy both for 0.5 and 0.25 steps.
	 */
	ratio = ((100 * y_right - 100 * y_left)/(x_right - x_left));

	/* Now scale down to be in range */
	result = y_left + (ratio * (target - x_left) / 100);

	return result;
}

/*
 * Find vertical boundary (min pwr) for the linear PCDAC curve.
 *
 * Since we have the top of the curve and we draw the line below
 * until we reach 1 (1 pcdac step) we need to know which point
 * (x value) that is so that we don't go below y axis and have negative
 * pcdac values when creating the curve, or fill the table with zeroes.
 */
static s16
ath5k_get_linear_pcdac_min(const u8 *stepL, const u8 *stepR,
				const s16 *pwrL, const s16 *pwrR)
{
	s8 tmp;
	s16 min_pwrL, min_pwrR;
1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504
	s16 pwr_i;

	if (pwrL[0] == pwrL[1])
		min_pwrL = pwrL[0];
	else {
		pwr_i = pwrL[0];
		do {
			pwr_i--;
			tmp = (s8) ath5k_get_interpolated_value(pwr_i,
							pwrL[0], pwrL[1],
							stepL[0], stepL[1]);
		} while (tmp > 1);

		min_pwrL = pwr_i;
	}
1505

1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518
	if (pwrR[0] == pwrR[1])
		min_pwrR = pwrR[0];
	else {
		pwr_i = pwrR[0];
		do {
			pwr_i--;
			tmp = (s8) ath5k_get_interpolated_value(pwr_i,
							pwrR[0], pwrR[1],
							stepR[0], stepR[1]);
		} while (tmp > 1);

		min_pwrR = pwr_i;
	}
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 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659 1660 1661 1662 1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720 1721 1722 1723 1724 1725 1726 1727 1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765 1766 1767 1768 1769 1770 1771 1772 1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826 1827 1828 1829 1830 1831 1832 1833 1834

	/* Keep the right boundary so that it works for both curves */
	return max(min_pwrL, min_pwrR);
}

/*
 * Interpolate (pwr,vpd) points to create a Power to PDADC or a
 * Power to PCDAC curve.
 *
 * Each curve has power on x axis (in 0.5dB units) and PCDAC/PDADC
 * steps (offsets) on y axis. Power can go up to 31.5dB and max
 * PCDAC/PDADC step for each curve is 64 but we can write more than
 * one curves on hw so we can go up to 128 (which is the max step we
 * can write on the final table).
 *
 * We write y values (PCDAC/PDADC steps) on hw.
 */
static void
ath5k_create_power_curve(s16 pmin, s16 pmax,
			const s16 *pwr, const u8 *vpd,
			u8 num_points,
			u8 *vpd_table, u8 type)
{
	u8 idx[2] = { 0, 1 };
	s16 pwr_i = 2*pmin;
	int i;

	if (num_points < 2)
		return;

	/* We want the whole line, so adjust boundaries
	 * to cover the entire power range. Note that
	 * power values are already 0.25dB so no need
	 * to multiply pwr_i by 2 */
	if (type == AR5K_PWRTABLE_LINEAR_PCDAC) {
		pwr_i = pmin;
		pmin = 0;
		pmax = 63;
	}

	/* Find surrounding turning points (TPs)
	 * and interpolate between them */
	for (i = 0; (i <= (u16) (pmax - pmin)) &&
	(i < AR5K_EEPROM_POWER_TABLE_SIZE); i++) {

		/* We passed the right TP, move to the next set of TPs
		 * if we pass the last TP, extrapolate above using the last
		 * two TPs for ratio */
		if ((pwr_i > pwr[idx[1]]) && (idx[1] < num_points - 1)) {
			idx[0]++;
			idx[1]++;
		}

		vpd_table[i] = (u8) ath5k_get_interpolated_value(pwr_i,
						pwr[idx[0]], pwr[idx[1]],
						vpd[idx[0]], vpd[idx[1]]);

		/* Increase by 0.5dB
		 * (0.25 dB units) */
		pwr_i += 2;
	}
}

/*
 * Get the surrounding per-channel power calibration piers
 * for a given frequency so that we can interpolate between
 * them and come up with an apropriate dataset for our current
 * channel.
 */
static void
ath5k_get_chan_pcal_surrounding_piers(struct ath5k_hw *ah,
			struct ieee80211_channel *channel,
			struct ath5k_chan_pcal_info **pcinfo_l,
			struct ath5k_chan_pcal_info **pcinfo_r)
{
	struct ath5k_eeprom_info *ee = &ah->ah_capabilities.cap_eeprom;
	struct ath5k_chan_pcal_info *pcinfo;
	u8 idx_l, idx_r;
	u8 mode, max, i;
	u32 target = channel->center_freq;

	idx_l = 0;
	idx_r = 0;

	if (!(channel->hw_value & CHANNEL_OFDM)) {
		pcinfo = ee->ee_pwr_cal_b;
		mode = AR5K_EEPROM_MODE_11B;
	} else if (channel->hw_value & CHANNEL_2GHZ) {
		pcinfo = ee->ee_pwr_cal_g;
		mode = AR5K_EEPROM_MODE_11G;
	} else {
		pcinfo = ee->ee_pwr_cal_a;
		mode = AR5K_EEPROM_MODE_11A;
	}
	max = ee->ee_n_piers[mode] - 1;

	/* Frequency is below our calibrated
	 * range. Use the lowest power curve
	 * we have */
	if (target < pcinfo[0].freq) {
		idx_l = idx_r = 0;
		goto done;
	}

	/* Frequency is above our calibrated
	 * range. Use the highest power curve
	 * we have */
	if (target > pcinfo[max].freq) {
		idx_l = idx_r = max;
		goto done;
	}

	/* Frequency is inside our calibrated
	 * channel range. Pick the surrounding
	 * calibration piers so that we can
	 * interpolate */
	for (i = 0; i <= max; i++) {

		/* Frequency matches one of our calibration
		 * piers, no need to interpolate, just use
		 * that calibration pier */
		if (pcinfo[i].freq == target) {
			idx_l = idx_r = i;
			goto done;
		}

		/* We found a calibration pier that's above
		 * frequency, use this pier and the previous
		 * one to interpolate */
		if (target < pcinfo[i].freq) {
			idx_r = i;
			idx_l = idx_r - 1;
			goto done;
		}
	}

done:
	*pcinfo_l = &pcinfo[idx_l];
	*pcinfo_r = &pcinfo[idx_r];

	return;
}

/*
 * Get the surrounding per-rate power calibration data
 * for a given frequency and interpolate between power
 * values to set max target power supported by hw for
 * each rate.
 */
static void
ath5k_get_rate_pcal_data(struct ath5k_hw *ah,
			struct ieee80211_channel *channel,
			struct ath5k_rate_pcal_info *rates)
{
	struct ath5k_eeprom_info *ee = &ah->ah_capabilities.cap_eeprom;
	struct ath5k_rate_pcal_info *rpinfo;
	u8 idx_l, idx_r;
	u8 mode, max, i;
	u32 target = channel->center_freq;

	idx_l = 0;
	idx_r = 0;

	if (!(channel->hw_value & CHANNEL_OFDM)) {
		rpinfo = ee->ee_rate_tpwr_b;
		mode = AR5K_EEPROM_MODE_11B;
	} else if (channel->hw_value & CHANNEL_2GHZ) {
		rpinfo = ee->ee_rate_tpwr_g;
		mode = AR5K_EEPROM_MODE_11G;
	} else {
		rpinfo = ee->ee_rate_tpwr_a;
		mode = AR5K_EEPROM_MODE_11A;
	}
	max = ee->ee_rate_target_pwr_num[mode] - 1;

	/* Get the surrounding calibration
	 * piers - same as above */
	if (target < rpinfo[0].freq) {
		idx_l = idx_r = 0;
		goto done;
	}

	if (target > rpinfo[max].freq) {
		idx_l = idx_r = max;
		goto done;
	}

	for (i = 0; i <= max; i++) {

		if (rpinfo[i].freq == target) {
			idx_l = idx_r = i;
			goto done;
		}

		if (target < rpinfo[i].freq) {
			idx_r = i;
			idx_l = idx_r - 1;
			goto done;
		}
	}

done:
	/* Now interpolate power value, based on the frequency */
	rates->freq = target;

	rates->target_power_6to24 =
		ath5k_get_interpolated_value(target, rpinfo[idx_l].freq,
					rpinfo[idx_r].freq,
					rpinfo[idx_l].target_power_6to24,
					rpinfo[idx_r].target_power_6to24);

	rates->target_power_36 =
		ath5k_get_interpolated_value(target, rpinfo[idx_l].freq,
					rpinfo[idx_r].freq,
					rpinfo[idx_l].target_power_36,
					rpinfo[idx_r].target_power_36);

	rates->target_power_48 =
		ath5k_get_interpolated_value(target, rpinfo[idx_l].freq,
					rpinfo[idx_r].freq,
					rpinfo[idx_l].target_power_48,
					rpinfo[idx_r].target_power_48);

	rates->target_power_54 =
		ath5k_get_interpolated_value(target, rpinfo[idx_l].freq,
					rpinfo[idx_r].freq,
					rpinfo[idx_l].target_power_54,
					rpinfo[idx_r].target_power_54);
}

/*
 * Get the max edge power for this channel if
 * we have such data from EEPROM's Conformance Test
 * Limits (CTL), and limit max power if needed.
 *
 * FIXME: Only works for world regulatory domains
 */
static void
ath5k_get_max_ctl_power(struct ath5k_hw *ah,
			struct ieee80211_channel *channel)
{
	struct ath5k_eeprom_info *ee = &ah->ah_capabilities.cap_eeprom;
	struct ath5k_edge_power *rep = ee->ee_ctl_pwr;
	u8 *ctl_val = ee->ee_ctl;
	s16 max_chan_pwr = ah->ah_txpower.txp_max_pwr / 4;
	s16 edge_pwr = 0;
	u8 rep_idx;
	u8 i, ctl_mode;
	u8 ctl_idx = 0xFF;
	u32 target = channel->center_freq;

	/* Find out a CTL for our mode that's not mapped
	 * on a specific reg domain.
	 *
	 * TODO: Map our current reg domain to one of the 3 available
	 * reg domain ids so that we can support more CTLs. */
	switch (channel->hw_value & CHANNEL_MODES) {
	case CHANNEL_A:
		ctl_mode = AR5K_CTL_11A | AR5K_CTL_NO_REGDOMAIN;
		break;
	case CHANNEL_G:
		ctl_mode = AR5K_CTL_11G | AR5K_CTL_NO_REGDOMAIN;
		break;
	case CHANNEL_B:
		ctl_mode = AR5K_CTL_11B | AR5K_CTL_NO_REGDOMAIN;
		break;
	case CHANNEL_T:
		ctl_mode = AR5K_CTL_TURBO | AR5K_CTL_NO_REGDOMAIN;
		break;
	case CHANNEL_TG:
		ctl_mode = AR5K_CTL_TURBOG | AR5K_CTL_NO_REGDOMAIN;
		break;
	case CHANNEL_XR:
		/* Fall through */
	default:
		return;
	}

	for (i = 0; i < ee->ee_ctls; i++) {
		if (ctl_val[i] == ctl_mode) {
			ctl_idx = i;
			break;
		}
	}

	/* If we have a CTL dataset available grab it and find the
	 * edge power for our frequency */
	if (ctl_idx == 0xFF)
		return;

	/* Edge powers are sorted by frequency from lower
	 * to higher. Each CTL corresponds to 8 edge power
	 * measurements. */
	rep_idx = ctl_idx * AR5K_EEPROM_N_EDGES;

	/* Don't do boundaries check because we
	 * might have more that one bands defined
	 * for this mode */

	/* Get the edge power that's closer to our
	 * frequency */
	for (i = 0; i < AR5K_EEPROM_N_EDGES; i++) {
		rep_idx += i;
		if (target <= rep[rep_idx].freq)
			edge_pwr = (s16) rep[rep_idx].edge;
	}

	if (edge_pwr)
		ah->ah_txpower.txp_max_pwr = 4*min(edge_pwr, max_chan_pwr);
}


/*
 * Power to PCDAC table functions
 */

1835
/*
1836 1837 1838 1839 1840
 * Fill Power to PCDAC table on RF5111
 *
 * No further processing is needed for RF5111, the only thing we have to
 * do is fill the values below and above calibration range since eeprom data
 * may not cover the entire PCDAC table.
1841
 */
1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852 1853 1854 1855 1856 1857 1858 1859 1860 1861 1862 1863 1864 1865 1866 1867 1868 1869 1870 1871 1872 1873 1874 1875
static void
ath5k_fill_pwr_to_pcdac_table(struct ath5k_hw *ah, s16* table_min,
							s16 *table_max)
{
	u8 	*pcdac_out = ah->ah_txpower.txp_pd_table;
	u8	*pcdac_tmp = ah->ah_txpower.tmpL[0];
	u8	pcdac_0, pcdac_n, pcdac_i, pwr_idx, i;
	s16	min_pwr, max_pwr;

	/* Get table boundaries */
	min_pwr = table_min[0];
	pcdac_0 = pcdac_tmp[0];

	max_pwr = table_max[0];
	pcdac_n = pcdac_tmp[table_max[0] - table_min[0]];

	/* Extrapolate below minimum using pcdac_0 */
	pcdac_i = 0;
	for (i = 0; i < min_pwr; i++)
		pcdac_out[pcdac_i++] = pcdac_0;

	/* Copy values from pcdac_tmp */
	pwr_idx = min_pwr;
	for (i = 0 ; pwr_idx <= max_pwr &&
	pcdac_i < AR5K_EEPROM_POWER_TABLE_SIZE; i++) {
		pcdac_out[pcdac_i++] = pcdac_tmp[i];
		pwr_idx++;
	}

	/* Extrapolate above maximum */
	while (pcdac_i < AR5K_EEPROM_POWER_TABLE_SIZE)
		pcdac_out[pcdac_i++] = pcdac_n;

}
1876 1877

/*
1878 1879 1880 1881 1882 1883 1884 1885 1886
 * Combine available XPD Curves and fill Linear Power to PCDAC table
 * on RF5112
 *
 * RFX112 can have up to 2 curves (one for low txpower range and one for
 * higher txpower range). We need to put them both on pcdac_out and place
 * them in the correct location. In case we only have one curve available
 * just fit it on pcdac_out (it's supposed to cover the entire range of
 * available pwr levels since it's always the higher power curve). Extrapolate
 * below and above final table if needed.
1887
 */
1888 1889 1890
static void
ath5k_combine_linear_pcdac_curves(struct ath5k_hw *ah, s16* table_min,
						s16 *table_max, u8 pdcurves)
1891
{
1892 1893 1894 1895 1896 1897 1898 1899 1900 1901 1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915 1916 1917 1918 1919 1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932 1933 1934 1935 1936 1937 1938 1939 1940 1941 1942 1943
	u8 	*pcdac_out = ah->ah_txpower.txp_pd_table;
	u8	*pcdac_low_pwr;
	u8	*pcdac_high_pwr;
	u8	*pcdac_tmp;
	u8	pwr;
	s16	max_pwr_idx;
	s16	min_pwr_idx;
	s16	mid_pwr_idx = 0;
	/* Edge flag turs on the 7nth bit on the PCDAC
	 * to delcare the higher power curve (force values
	 * to be greater than 64). If we only have one curve
	 * we don't need to set this, if we have 2 curves and
	 * fill the table backwards this can also be used to
	 * switch from higher power curve to lower power curve */
	u8	edge_flag;
	int	i;

	/* When we have only one curve available
	 * that's the higher power curve. If we have
	 * two curves the first is the high power curve
	 * and the next is the low power curve. */
	if (pdcurves > 1) {
		pcdac_low_pwr = ah->ah_txpower.tmpL[1];
		pcdac_high_pwr = ah->ah_txpower.tmpL[0];
		mid_pwr_idx = table_max[1] - table_min[1] - 1;
		max_pwr_idx = (table_max[0] - table_min[0]) / 2;

		/* If table size goes beyond 31.5dB, keep the
		 * upper 31.5dB range when setting tx power.
		 * Note: 126 = 31.5 dB in quarter dB steps */
		if (table_max[0] - table_min[1] > 126)
			min_pwr_idx = table_max[0] - 126;
		else
			min_pwr_idx = table_min[1];

		/* Since we fill table backwards
		 * start from high power curve */
		pcdac_tmp = pcdac_high_pwr;

		edge_flag = 0x40;
#if 0
		/* If both min and max power limits are in lower
		 * power curve's range, only use the low power curve.
		 * TODO: min/max levels are related to target
		 * power values requested from driver/user
		 * XXX: Is this really needed ? */
		if (min_pwr < table_max[1] &&
		max_pwr < table_max[1]) {
			edge_flag = 0;
			pcdac_tmp = pcdac_low_pwr;
			max_pwr_idx = (table_max[1] - table_min[1])/2;
		}
1944
#endif
1945 1946 1947 1948 1949 1950 1951 1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968 1969 1970 1971 1972 1973 1974 1975 1976 1977 1978 1979 1980 1981 1982 1983 1984 1985 1986 1987 1988 1989 1990 1991 1992
	} else {
		pcdac_low_pwr = ah->ah_txpower.tmpL[1]; /* Zeroed */
		pcdac_high_pwr = ah->ah_txpower.tmpL[0];
		min_pwr_idx = table_min[0];
		max_pwr_idx = (table_max[0] - table_min[0]) / 2;
		pcdac_tmp = pcdac_high_pwr;
		edge_flag = 0;
	}

	/* This is used when setting tx power*/
	ah->ah_txpower.txp_min_idx = min_pwr_idx/2;

	/* Fill Power to PCDAC table backwards */
	pwr = max_pwr_idx;
	for (i = 63; i >= 0; i--) {
		/* Entering lower power range, reset
		 * edge flag and set pcdac_tmp to lower
		 * power curve.*/
		if (edge_flag == 0x40 &&
		(2*pwr <= (table_max[1] - table_min[0]) || pwr == 0)) {
			edge_flag = 0x00;
			pcdac_tmp = pcdac_low_pwr;
			pwr = mid_pwr_idx/2;
		}

		/* Don't go below 1, extrapolate below if we have
		 * already swithced to the lower power curve -or
		 * we only have one curve and edge_flag is zero
		 * anyway */
		if (pcdac_tmp[pwr] < 1 && (edge_flag == 0x00)) {
			while (i >= 0) {
				pcdac_out[i] = pcdac_out[i + 1];
				i--;
			}
			break;
		}

		pcdac_out[i] = pcdac_tmp[pwr] | edge_flag;

		/* Extrapolate above if pcdac is greater than
		 * 126 -this can happen because we OR pcdac_out
		 * value with edge_flag on high power curve */
		if (pcdac_out[i] > 126)
			pcdac_out[i] = 126;

		/* Decrease by a 0.5dB step */
		pwr--;
	}
1993 1994
}

1995 1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013
/* Write PCDAC values on hw */
static void
ath5k_setup_pcdac_table(struct ath5k_hw *ah)
{
	u8 	*pcdac_out = ah->ah_txpower.txp_pd_table;
	int	i;

	/*
	 * Write TX power values
	 */
	for (i = 0; i < (AR5K_EEPROM_POWER_TABLE_SIZE / 2); i++) {
		ath5k_hw_reg_write(ah,
			(((pcdac_out[2*i + 0] << 8 | 0xff) & 0xffff) << 0) |
			(((pcdac_out[2*i + 1] << 8 | 0xff) & 0xffff) << 16),
			AR5K_PHY_PCDAC_TXPOWER(i));
	}
}


2014
/*
2015
 * Power to PDADC table functions
2016
 */
2017 2018 2019 2020 2021 2022 2023 2024 2025 2026 2027

/*
 * Set the gain boundaries and create final Power to PDADC table
 *
 * We can have up to 4 pd curves, we need to do a simmilar process
 * as we do for RF5112. This time we don't have an edge_flag but we
 * set the gain boundaries on a separate register.
 */
static void
ath5k_combine_pwr_to_pdadc_curves(struct ath5k_hw *ah,
			s16 *pwr_min, s16 *pwr_max, u8 pdcurves)
2028
{
2029 2030 2031 2032 2033 2034 2035 2036 2037 2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059 2060 2061 2062 2063 2064 2065 2066 2067 2068
	u8 gain_boundaries[AR5K_EEPROM_N_PD_GAINS];
	u8 *pdadc_out = ah->ah_txpower.txp_pd_table;
	u8 *pdadc_tmp;
	s16 pdadc_0;
	u8 pdadc_i, pdadc_n, pwr_step, pdg, max_idx, table_size;
	u8 pd_gain_overlap;

	/* Note: Register value is initialized on initvals
	 * there is no feedback from hw.
	 * XXX: What about pd_gain_overlap from EEPROM ? */
	pd_gain_overlap = (u8) ath5k_hw_reg_read(ah, AR5K_PHY_TPC_RG5) &
		AR5K_PHY_TPC_RG5_PD_GAIN_OVERLAP;

	/* Create final PDADC table */
	for (pdg = 0, pdadc_i = 0; pdg < pdcurves; pdg++) {
		pdadc_tmp = ah->ah_txpower.tmpL[pdg];

		if (pdg == pdcurves - 1)
			/* 2 dB boundary stretch for last
			 * (higher power) curve */
			gain_boundaries[pdg] = pwr_max[pdg] + 4;
		else
			/* Set gain boundary in the middle
			 * between this curve and the next one */
			gain_boundaries[pdg] =
				(pwr_max[pdg] + pwr_min[pdg + 1]) / 2;

		/* Sanity check in case our 2 db stretch got out of
		 * range. */
		if (gain_boundaries[pdg] > AR5K_TUNE_MAX_TXPOWER)
			gain_boundaries[pdg] = AR5K_TUNE_MAX_TXPOWER;

		/* For the first curve (lower power)
		 * start from 0 dB */
		if (pdg == 0)
			pdadc_0 = 0;
		else
			/* For the other curves use the gain overlap */
			pdadc_0 = (gain_boundaries[pdg - 1] - pwr_min[pdg]) -
							pd_gain_overlap;
2069

2070 2071 2072 2073 2074 2075 2076 2077 2078 2079 2080 2081 2082 2083 2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101 2102 2103 2104 2105 2106 2107 2108 2109 2110 2111 2112
		/* Force each power step to be at least 0.5 dB */
		if ((pdadc_tmp[1] - pdadc_tmp[0]) > 1)
			pwr_step = pdadc_tmp[1] - pdadc_tmp[0];
		else
			pwr_step = 1;

		/* If pdadc_0 is negative, we need to extrapolate
		 * below this pdgain by a number of pwr_steps */
		while ((pdadc_0 < 0) && (pdadc_i < 128)) {
			s16 tmp = pdadc_tmp[0] + pdadc_0 * pwr_step;
			pdadc_out[pdadc_i++] = (tmp < 0) ? 0 : (u8) tmp;
			pdadc_0++;
		}

		/* Set last pwr level, using gain boundaries */
		pdadc_n = gain_boundaries[pdg] + pd_gain_overlap - pwr_min[pdg];
		/* Limit it to be inside pwr range */
		table_size = pwr_max[pdg] - pwr_min[pdg];
		max_idx = (pdadc_n < table_size) ? pdadc_n : table_size;

		/* Fill pdadc_out table */
		while (pdadc_0 < max_idx)
			pdadc_out[pdadc_i++] = pdadc_tmp[pdadc_0++];

		/* Need to extrapolate above this pdgain? */
		if (pdadc_n <= max_idx)
			continue;

		/* Force each power step to be at least 0.5 dB */
		if ((pdadc_tmp[table_size - 1] - pdadc_tmp[table_size - 2]) > 1)
			pwr_step = pdadc_tmp[table_size - 1] -
						pdadc_tmp[table_size - 2];
		else
			pwr_step = 1;

		/* Extrapolate above */
		while ((pdadc_0 < (s16) pdadc_n) &&
		(pdadc_i < AR5K_EEPROM_POWER_TABLE_SIZE * 2)) {
			s16 tmp = pdadc_tmp[table_size - 1] +
					(pdadc_0 - max_idx) * pwr_step;
			pdadc_out[pdadc_i++] = (tmp > 127) ? 127 : (u8) tmp;
			pdadc_0++;
		}
2113 2114
	}

2115 2116 2117 2118 2119 2120 2121 2122 2123 2124 2125 2126 2127 2128 2129 2130 2131 2132 2133 2134 2135 2136 2137 2138 2139 2140 2141 2142 2143 2144 2145 2146 2147 2148 2149 2150 2151 2152 2153 2154 2155 2156 2157 2158 2159 2160 2161
	while (pdg < AR5K_EEPROM_N_PD_GAINS) {
		gain_boundaries[pdg] = gain_boundaries[pdg - 1];
		pdg++;
	}

	while (pdadc_i < AR5K_EEPROM_POWER_TABLE_SIZE * 2) {
		pdadc_out[pdadc_i] = pdadc_out[pdadc_i - 1];
		pdadc_i++;
	}

	/* Set gain boundaries */
	ath5k_hw_reg_write(ah,
		AR5K_REG_SM(pd_gain_overlap,
			AR5K_PHY_TPC_RG5_PD_GAIN_OVERLAP) |
		AR5K_REG_SM(gain_boundaries[0],
			AR5K_PHY_TPC_RG5_PD_GAIN_BOUNDARY_1) |
		AR5K_REG_SM(gain_boundaries[1],
			AR5K_PHY_TPC_RG5_PD_GAIN_BOUNDARY_2) |
		AR5K_REG_SM(gain_boundaries[2],
			AR5K_PHY_TPC_RG5_PD_GAIN_BOUNDARY_3) |
		AR5K_REG_SM(gain_boundaries[3],
			AR5K_PHY_TPC_RG5_PD_GAIN_BOUNDARY_4),
		AR5K_PHY_TPC_RG5);

	/* Used for setting rate power table */
	ah->ah_txpower.txp_min_idx = pwr_min[0];

}

/* Write PDADC values on hw */
static void
ath5k_setup_pwr_to_pdadc_table(struct ath5k_hw *ah,
			u8 pdcurves, u8 *pdg_to_idx)
{
	u8 *pdadc_out = ah->ah_txpower.txp_pd_table;
	u32 reg;
	u8 i;

	/* Select the right pdgain curves */

	/* Clear current settings */
	reg = ath5k_hw_reg_read(ah, AR5K_PHY_TPC_RG1);
	reg &= ~(AR5K_PHY_TPC_RG1_PDGAIN_1 |
		AR5K_PHY_TPC_RG1_PDGAIN_2 |
		AR5K_PHY_TPC_RG1_PDGAIN_3 |
		AR5K_PHY_TPC_RG1_NUM_PD_GAIN);

N
Nick Kossifidis 已提交
2162
	/*
2163
	 * Use pd_gains curve from eeprom
N
Nick Kossifidis 已提交
2164
	 *
2165 2166 2167 2168
	 * This overrides the default setting from initvals
	 * in case some vendors (e.g. Zcomax) don't use the default
	 * curves. If we don't honor their settings we 'll get a
	 * 5dB (1 * gain overlap ?) drop.
N
Nick Kossifidis 已提交
2169
	 */
2170
	reg |= AR5K_REG_SM(pdcurves, AR5K_PHY_TPC_RG1_NUM_PD_GAIN);
N
Nick Kossifidis 已提交
2171

2172 2173 2174 2175 2176 2177 2178 2179 2180 2181 2182 2183
	switch (pdcurves) {
	case 3:
		reg |= AR5K_REG_SM(pdg_to_idx[2], AR5K_PHY_TPC_RG1_PDGAIN_3);
		/* Fall through */
	case 2:
		reg |= AR5K_REG_SM(pdg_to_idx[1], AR5K_PHY_TPC_RG1_PDGAIN_2);
		/* Fall through */
	case 1:
		reg |= AR5K_REG_SM(pdg_to_idx[0], AR5K_PHY_TPC_RG1_PDGAIN_1);
		break;
	}
	ath5k_hw_reg_write(ah, reg, AR5K_PHY_TPC_RG1);
2184 2185 2186 2187 2188 2189

	/*
	 * Write TX power values
	 */
	for (i = 0; i < (AR5K_EEPROM_POWER_TABLE_SIZE / 2); i++) {
		ath5k_hw_reg_write(ah,
2190 2191 2192 2193 2194 2195 2196 2197 2198 2199 2200 2201 2202 2203 2204 2205 2206 2207 2208 2209 2210 2211 2212 2213 2214 2215 2216 2217 2218 2219 2220 2221 2222 2223 2224 2225 2226 2227 2228 2229 2230 2231 2232 2233 2234 2235 2236 2237 2238 2239 2240 2241 2242 2243 2244 2245 2246 2247 2248 2249 2250 2251 2252 2253 2254 2255 2256 2257 2258 2259 2260 2261 2262 2263 2264 2265 2266 2267 2268 2269 2270 2271 2272 2273 2274 2275 2276 2277 2278 2279 2280 2281 2282 2283 2284 2285 2286 2287 2288 2289 2290 2291 2292 2293 2294 2295 2296 2297 2298 2299 2300 2301 2302 2303 2304 2305 2306 2307 2308 2309 2310 2311 2312 2313 2314 2315 2316 2317 2318 2319 2320 2321 2322 2323 2324 2325 2326 2327 2328 2329 2330 2331 2332 2333 2334 2335
			((pdadc_out[4*i + 0] & 0xff) << 0) |
			((pdadc_out[4*i + 1] & 0xff) << 8) |
			((pdadc_out[4*i + 2] & 0xff) << 16) |
			((pdadc_out[4*i + 3] & 0xff) << 24),
			AR5K_PHY_PDADC_TXPOWER(i));
	}
}


/*
 * Common code for PCDAC/PDADC tables
 */

/*
 * This is the main function that uses all of the above
 * to set PCDAC/PDADC table on hw for the current channel.
 * This table is used for tx power calibration on the basband,
 * without it we get weird tx power levels and in some cases
 * distorted spectral mask
 */
static int
ath5k_setup_channel_powertable(struct ath5k_hw *ah,
			struct ieee80211_channel *channel,
			u8 ee_mode, u8 type)
{
	struct ath5k_pdgain_info *pdg_L, *pdg_R;
	struct ath5k_chan_pcal_info *pcinfo_L;
	struct ath5k_chan_pcal_info *pcinfo_R;
	struct ath5k_eeprom_info *ee = &ah->ah_capabilities.cap_eeprom;
	u8 *pdg_curve_to_idx = ee->ee_pdc_to_idx[ee_mode];
	s16 table_min[AR5K_EEPROM_N_PD_GAINS];
	s16 table_max[AR5K_EEPROM_N_PD_GAINS];
	u8 *tmpL;
	u8 *tmpR;
	u32 target = channel->center_freq;
	int pdg, i;

	/* Get surounding freq piers for this channel */
	ath5k_get_chan_pcal_surrounding_piers(ah, channel,
						&pcinfo_L,
						&pcinfo_R);

	/* Loop over pd gain curves on
	 * surounding freq piers by index */
	for (pdg = 0; pdg < ee->ee_pd_gains[ee_mode]; pdg++) {

		/* Fill curves in reverse order
		 * from lower power (max gain)
		 * to higher power. Use curve -> idx
		 * backmaping we did on eeprom init */
		u8 idx = pdg_curve_to_idx[pdg];

		/* Grab the needed curves by index */
		pdg_L = &pcinfo_L->pd_curves[idx];
		pdg_R = &pcinfo_R->pd_curves[idx];

		/* Initialize the temp tables */
		tmpL = ah->ah_txpower.tmpL[pdg];
		tmpR = ah->ah_txpower.tmpR[pdg];

		/* Set curve's x boundaries and create
		 * curves so that they cover the same
		 * range (if we don't do that one table
		 * will have values on some range and the
		 * other one won't have any so interpolation
		 * will fail) */
		table_min[pdg] = min(pdg_L->pd_pwr[0],
					pdg_R->pd_pwr[0]) / 2;

		table_max[pdg] = max(pdg_L->pd_pwr[pdg_L->pd_points - 1],
				pdg_R->pd_pwr[pdg_R->pd_points - 1]) / 2;

		/* Now create the curves on surrounding channels
		 * and interpolate if needed to get the final
		 * curve for this gain on this channel */
		switch (type) {
		case AR5K_PWRTABLE_LINEAR_PCDAC:
			/* Override min/max so that we don't loose
			 * accuracy (don't divide by 2) */
			table_min[pdg] = min(pdg_L->pd_pwr[0],
						pdg_R->pd_pwr[0]);

			table_max[pdg] =
				max(pdg_L->pd_pwr[pdg_L->pd_points - 1],
					pdg_R->pd_pwr[pdg_R->pd_points - 1]);

			/* Override minimum so that we don't get
			 * out of bounds while extrapolating
			 * below. Don't do this when we have 2
			 * curves and we are on the high power curve
			 * because table_min is ok in this case */
			if (!(ee->ee_pd_gains[ee_mode] > 1 && pdg == 0)) {

				table_min[pdg] =
					ath5k_get_linear_pcdac_min(pdg_L->pd_step,
								pdg_R->pd_step,
								pdg_L->pd_pwr,
								pdg_R->pd_pwr);

				/* Don't go too low because we will
				 * miss the upper part of the curve.
				 * Note: 126 = 31.5dB (max power supported)
				 * in 0.25dB units */
				if (table_max[pdg] - table_min[pdg] > 126)
					table_min[pdg] = table_max[pdg] - 126;
			}

			/* Fall through */
		case AR5K_PWRTABLE_PWR_TO_PCDAC:
		case AR5K_PWRTABLE_PWR_TO_PDADC:

			ath5k_create_power_curve(table_min[pdg],
						table_max[pdg],
						pdg_L->pd_pwr,
						pdg_L->pd_step,
						pdg_L->pd_points, tmpL, type);

			/* We are in a calibration
			 * pier, no need to interpolate
			 * between freq piers */
			if (pcinfo_L == pcinfo_R)
				continue;

			ath5k_create_power_curve(table_min[pdg],
						table_max[pdg],
						pdg_R->pd_pwr,
						pdg_R->pd_step,
						pdg_R->pd_points, tmpR, type);
			break;
		default:
			return -EINVAL;
		}

		/* Interpolate between curves
		 * of surounding freq piers to
		 * get the final curve for this
		 * pd gain. Re-use tmpL for interpolation
		 * output */
		for (i = 0; (i < (u16) (table_max[pdg] - table_min[pdg])) &&
		(i < AR5K_EEPROM_POWER_TABLE_SIZE); i++) {
			tmpL[i] = (u8) ath5k_get_interpolated_value(target,
							(s16) pcinfo_L->freq,
							(s16) pcinfo_R->freq,
							(s16) tmpL[i],
							(s16) tmpR[i]);
		}
2336 2337
	}

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	/* Now we have a set of curves for this
	 * channel on tmpL (x range is table_max - table_min
	 * and y values are tmpL[pdg][]) sorted in the same
	 * order as EEPROM (because we've used the backmaping).
	 * So for RF5112 it's from higher power to lower power
	 * and for RF2413 it's from lower power to higher power.
	 * For RF5111 we only have one curve. */

	/* Fill min and max power levels for this
	 * channel by interpolating the values on
	 * surounding channels to complete the dataset */
	ah->ah_txpower.txp_min_pwr = ath5k_get_interpolated_value(target,
					(s16) pcinfo_L->freq,
					(s16) pcinfo_R->freq,
					pcinfo_L->min_pwr, pcinfo_R->min_pwr);

	ah->ah_txpower.txp_max_pwr = ath5k_get_interpolated_value(target,
					(s16) pcinfo_L->freq,
					(s16) pcinfo_R->freq,
					pcinfo_L->max_pwr, pcinfo_R->max_pwr);

	/* We are ready to go, fill PCDAC/PDADC
	 * table and write settings on hardware */
	switch (type) {
	case AR5K_PWRTABLE_LINEAR_PCDAC:
		/* For RF5112 we can have one or two curves
		 * and each curve covers a certain power lvl
		 * range so we need to do some more processing */
		ath5k_combine_linear_pcdac_curves(ah, table_min, table_max,
						ee->ee_pd_gains[ee_mode]);

		/* Set txp.offset so that we can
		 * match max power value with max
		 * table index */
		ah->ah_txpower.txp_offset = 64 - (table_max[0] / 2);

		/* Write settings on hw */
		ath5k_setup_pcdac_table(ah);
		break;
	case AR5K_PWRTABLE_PWR_TO_PCDAC:
		/* We are done for RF5111 since it has only
		 * one curve, just fit the curve on the table */
		ath5k_fill_pwr_to_pcdac_table(ah, table_min, table_max);

		/* No rate powertable adjustment for RF5111 */
		ah->ah_txpower.txp_min_idx = 0;
		ah->ah_txpower.txp_offset = 0;

		/* Write settings on hw */
		ath5k_setup_pcdac_table(ah);
		break;
	case AR5K_PWRTABLE_PWR_TO_PDADC:
		/* Set PDADC boundaries and fill
		 * final PDADC table */
		ath5k_combine_pwr_to_pdadc_curves(ah, table_min, table_max,
						ee->ee_pd_gains[ee_mode]);

		/* Write settings on hw */
		ath5k_setup_pwr_to_pdadc_table(ah, pdg, pdg_curve_to_idx);

		/* Set txp.offset, note that table_min
		 * can be negative */
		ah->ah_txpower.txp_offset = table_min[0];
		break;
	default:
		return -EINVAL;
	}

	return 0;
}


/*
 * Per-rate tx power setting
 *
 * This is the code that sets the desired tx power (below
 * maximum) on hw for each rate (we also have TPC that sets
 * power per packet). We do that by providing an index on the
 * PCDAC/PDADC table we set up.
 */

/*
 * Set rate power table
 *
 * For now we only limit txpower based on maximum tx power
 * supported by hw (what's inside rate_info). We need to limit
 * this even more, based on regulatory domain etc.
 *
 * Rate power table contains indices to PCDAC/PDADC table (0.5dB steps)
 * and is indexed as follows:
 * rates[0] - rates[7] -> OFDM rates
 * rates[8] - rates[14] -> CCK rates
 * rates[15] -> XR rates (they all have the same power)
 */
static void
ath5k_setup_rate_powertable(struct ath5k_hw *ah, u16 max_pwr,
			struct ath5k_rate_pcal_info *rate_info,
			u8 ee_mode)
{
	unsigned int i;
	u16 *rates;

	/* max_pwr is power level we got from driver/user in 0.5dB
	 * units, switch to 0.25dB units so we can compare */
	max_pwr *= 2;
	max_pwr = min(max_pwr, (u16) ah->ah_txpower.txp_max_pwr) / 2;

	/* apply rate limits */
	rates = ah->ah_txpower.txp_rates_power_table;

	/* OFDM rates 6 to 24Mb/s */
	for (i = 0; i < 5; i++)
		rates[i] = min(max_pwr, rate_info->target_power_6to24);

	/* Rest OFDM rates */
	rates[5] = min(rates[0], rate_info->target_power_36);
	rates[6] = min(rates[0], rate_info->target_power_48);
	rates[7] = min(rates[0], rate_info->target_power_54);

	/* CCK rates */
	/* 1L */
	rates[8] = min(rates[0], rate_info->target_power_6to24);
	/* 2L */
	rates[9] = min(rates[0], rate_info->target_power_36);
	/* 2S */
	rates[10] = min(rates[0], rate_info->target_power_36);
	/* 5L */
	rates[11] = min(rates[0], rate_info->target_power_48);
	/* 5S */
	rates[12] = min(rates[0], rate_info->target_power_48);
	/* 11L */
	rates[13] = min(rates[0], rate_info->target_power_54);
	/* 11S */
	rates[14] = min(rates[0], rate_info->target_power_54);

	/* XR rates */
	rates[15] = min(rates[0], rate_info->target_power_6to24);

	/* CCK rates have different peak to average ratio
	 * so we have to tweak their power so that gainf
	 * correction works ok. For this we use OFDM to
	 * CCK delta from eeprom */
	if ((ee_mode == AR5K_EEPROM_MODE_11G) &&
	(ah->ah_phy_revision < AR5K_SREV_PHY_5212A))
		for (i = 8; i <= 15; i++)
			rates[i] -= ah->ah_txpower.txp_cck_ofdm_gainf_delta;

	ah->ah_txpower.txp_min_pwr = rates[7];
	ah->ah_txpower.txp_max_pwr = rates[0];
	ah->ah_txpower.txp_ofdm = rates[7];
}


/*
 * Set transmition power
 */
int
ath5k_hw_txpower(struct ath5k_hw *ah, struct ieee80211_channel *channel,
		u8 ee_mode, u8 txpower)
{
	struct ath5k_rate_pcal_info rate_info;
	u8 type;
	int ret;

	ATH5K_TRACE(ah->ah_sc);
	if (txpower > AR5K_TUNE_MAX_TXPOWER) {
		ATH5K_ERR(ah->ah_sc, "invalid tx power: %u\n", txpower);
		return -EINVAL;
	}
	if (txpower == 0)
		txpower = AR5K_TUNE_DEFAULT_TXPOWER;

	/* Reset TX power values */
	memset(&ah->ah_txpower, 0, sizeof(ah->ah_txpower));
	ah->ah_txpower.txp_tpc = AR5K_TUNE_TPC_TXPOWER;
	ah->ah_txpower.txp_min_pwr = 0;
	ah->ah_txpower.txp_max_pwr = AR5K_TUNE_MAX_TXPOWER;

	/* Initialize TX power table */
	switch (ah->ah_radio) {
	case AR5K_RF5111:
		type = AR5K_PWRTABLE_PWR_TO_PCDAC;
		break;
	case AR5K_RF5112:
		type = AR5K_PWRTABLE_LINEAR_PCDAC;
		break;
	case AR5K_RF2413:
	case AR5K_RF5413:
	case AR5K_RF2316:
	case AR5K_RF2317:
	case AR5K_RF2425:
		type = AR5K_PWRTABLE_PWR_TO_PDADC;
		break;
	default:
		return -EINVAL;
	}

	/* FIXME: Only on channel/mode change */
	ret = ath5k_setup_channel_powertable(ah, channel, ee_mode, type);
	if (ret)
		return ret;

	/* Limit max power if we have a CTL available */
	ath5k_get_max_ctl_power(ah, channel);

	/* FIXME: Tx power limit for this regdomain
	 * XXX: Mac80211/CRDA will do that anyway ? */

	/* FIXME: Antenna reduction stuff */

	/* FIXME: Limit power on turbo modes */

	/* FIXME: TPC scale reduction */

	/* Get surounding channels for per-rate power table
	 * calibration */
	ath5k_get_rate_pcal_data(ah, channel, &rate_info);

	/* Setup rate power table */
	ath5k_setup_rate_powertable(ah, txpower, &rate_info, ee_mode);

	/* Write rate power table on hw */
2560 2561 2562 2563 2564 2565 2566 2567 2568 2569 2570 2571 2572 2573 2574 2575
	ath5k_hw_reg_write(ah, AR5K_TXPOWER_OFDM(3, 24) |
		AR5K_TXPOWER_OFDM(2, 16) | AR5K_TXPOWER_OFDM(1, 8) |
		AR5K_TXPOWER_OFDM(0, 0), AR5K_PHY_TXPOWER_RATE1);

	ath5k_hw_reg_write(ah, AR5K_TXPOWER_OFDM(7, 24) |
		AR5K_TXPOWER_OFDM(6, 16) | AR5K_TXPOWER_OFDM(5, 8) |
		AR5K_TXPOWER_OFDM(4, 0), AR5K_PHY_TXPOWER_RATE2);

	ath5k_hw_reg_write(ah, AR5K_TXPOWER_CCK(10, 24) |
		AR5K_TXPOWER_CCK(9, 16) | AR5K_TXPOWER_CCK(15, 8) |
		AR5K_TXPOWER_CCK(8, 0), AR5K_PHY_TXPOWER_RATE3);

	ath5k_hw_reg_write(ah, AR5K_TXPOWER_CCK(14, 24) |
		AR5K_TXPOWER_CCK(13, 16) | AR5K_TXPOWER_CCK(12, 8) |
		AR5K_TXPOWER_CCK(11, 0), AR5K_PHY_TXPOWER_RATE4);

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	/* FIXME: TPC support */
	if (ah->ah_txpower.txp_tpc) {
2578 2579
		ath5k_hw_reg_write(ah, AR5K_PHY_TXPOWER_RATE_MAX_TPC_ENABLE |
			AR5K_TUNE_MAX_TXPOWER, AR5K_PHY_TXPOWER_RATE_MAX);
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		ath5k_hw_reg_write(ah,
			AR5K_REG_MS(AR5K_TUNE_MAX_TXPOWER, AR5K_TPC_ACK) |
			AR5K_REG_MS(AR5K_TUNE_MAX_TXPOWER, AR5K_TPC_CTS) |
			AR5K_REG_MS(AR5K_TUNE_MAX_TXPOWER, AR5K_TPC_CHIRP),
			AR5K_TPC);
	} else {
2587 2588
		ath5k_hw_reg_write(ah, AR5K_PHY_TXPOWER_RATE_MAX |
			AR5K_TUNE_MAX_TXPOWER, AR5K_PHY_TXPOWER_RATE_MAX);
2589
	}
2590 2591 2592 2593

	return 0;
}

2594
int ath5k_hw_set_txpower_limit(struct ath5k_hw *ah, u8 mode, u8 txpower)
2595 2596 2597 2598 2599 2600
{
	/*Just a try M.F.*/
	struct ieee80211_channel *channel = &ah->ah_current_channel;

	ATH5K_TRACE(ah->ah_sc);
	ATH5K_DBG(ah->ah_sc, ATH5K_DEBUG_TXPOWER,
2601
		"changing txpower to %d\n", txpower);
2602

2603
	return ath5k_hw_txpower(ah, channel, mode, txpower);
2604
}
N
Nick Kossifidis 已提交
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#undef _ATH5K_PHY