iwl-nvm-parse.c 27.7 KB
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/******************************************************************************
 *
 * This file is provided under a dual BSD/GPLv2 license.  When using or
 * redistributing this file, you may do so under either license.
 *
 * GPL LICENSE SUMMARY
 *
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 * Copyright(c) 2008 - 2014 Intel Corporation. All rights reserved.
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 * Copyright(c) 2013 - 2015 Intel Mobile Communications GmbH
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 * Copyright(c) 2016 Intel Deutschland GmbH
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 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of version 2 of the GNU General Public License as
 * published by the Free Software Foundation.
 *
 * This program is distributed in the hope that it will be useful, but
 * WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
 * General Public License for more details.
 *
 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software
 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110,
 * USA
 *
 * The full GNU General Public License is included in this distribution
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 * in the file called COPYING.
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 *
 * Contact Information:
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 *  Intel Linux Wireless <linuxwifi@intel.com>
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 * Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
 *
 * BSD LICENSE
 *
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 * Copyright(c) 2005 - 2014 Intel Corporation. All rights reserved.
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 * Copyright(c) 2013 - 2015 Intel Mobile Communications GmbH
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 * All rights reserved.
 *
 * Redistribution and use in source and binary forms, with or without
 * modification, are permitted provided that the following conditions
 * are met:
 *
 *  * Redistributions of source code must retain the above copyright
 *    notice, this list of conditions and the following disclaimer.
 *  * Redistributions in binary form must reproduce the above copyright
 *    notice, this list of conditions and the following disclaimer in
 *    the documentation and/or other materials provided with the
 *    distribution.
 *  * Neither the name Intel Corporation nor the names of its
 *    contributors may be used to endorse or promote products derived
 *    from this software without specific prior written permission.
 *
 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
 * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
 * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
 * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
 *****************************************************************************/
#include <linux/types.h>
#include <linux/slab.h>
#include <linux/export.h>
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#include <linux/etherdevice.h>
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#include <linux/pci.h>
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#include "iwl-drv.h"
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#include "iwl-modparams.h"
#include "iwl-nvm-parse.h"
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#include "iwl-prph.h"
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#include "iwl-io.h"
#include "iwl-csr.h"
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/* NVM offsets (in words) definitions */
enum wkp_nvm_offsets {
	/* NVM HW-Section offset (in words) definitions */
	HW_ADDR = 0x15,

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	/* NVM SW-Section offset (in words) definitions */
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	NVM_SW_SECTION = 0x1C0,
	NVM_VERSION = 0,
	RADIO_CFG = 1,
	SKU = 2,
	N_HW_ADDRS = 3,
	NVM_CHANNELS = 0x1E0 - NVM_SW_SECTION,

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	/* NVM calibration section offset (in words) definitions */
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	NVM_CALIB_SECTION = 0x2B8,
	XTAL_CALIB = 0x316 - NVM_CALIB_SECTION
};

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enum family_8000_nvm_offsets {
	/* NVM HW-Section offset (in words) definitions */
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	HW_ADDR0_WFPM_FAMILY_8000 = 0x12,
	HW_ADDR1_WFPM_FAMILY_8000 = 0x16,
	HW_ADDR0_PCIE_FAMILY_8000 = 0x8A,
	HW_ADDR1_PCIE_FAMILY_8000 = 0x8E,
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	MAC_ADDRESS_OVERRIDE_FAMILY_8000 = 1,

	/* NVM SW-Section offset (in words) definitions */
	NVM_SW_SECTION_FAMILY_8000 = 0x1C0,
	NVM_VERSION_FAMILY_8000 = 0,
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	RADIO_CFG_FAMILY_8000 = 0,
	SKU_FAMILY_8000 = 2,
	N_HW_ADDRS_FAMILY_8000 = 3,
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	/* NVM REGULATORY -Section offset (in words) definitions */
	NVM_CHANNELS_FAMILY_8000 = 0,
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	NVM_LAR_OFFSET_FAMILY_8000_OLD = 0x4C7,
	NVM_LAR_OFFSET_FAMILY_8000 = 0x507,
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	NVM_LAR_ENABLED_FAMILY_8000 = 0x7,
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	/* NVM calibration section offset (in words) definitions */
	NVM_CALIB_SECTION_FAMILY_8000 = 0x2B8,
	XTAL_CALIB_FAMILY_8000 = 0x316 - NVM_CALIB_SECTION_FAMILY_8000
};

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/* SKU Capabilities (actual values from NVM definition) */
enum nvm_sku_bits {
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	NVM_SKU_CAP_BAND_24GHZ		= BIT(0),
	NVM_SKU_CAP_BAND_52GHZ		= BIT(1),
	NVM_SKU_CAP_11N_ENABLE		= BIT(2),
	NVM_SKU_CAP_11AC_ENABLE		= BIT(3),
	NVM_SKU_CAP_MIMO_DISABLE	= BIT(5),
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};

/*
 * These are the channel numbers in the order that they are stored in the NVM
 */
static const u8 iwl_nvm_channels[] = {
	/* 2.4 GHz */
	1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14,
	/* 5 GHz */
	36, 40, 44 , 48, 52, 56, 60, 64,
	100, 104, 108, 112, 116, 120, 124, 128, 132, 136, 140, 144,
	149, 153, 157, 161, 165
};

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static const u8 iwl_nvm_channels_family_8000[] = {
	/* 2.4 GHz */
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	1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14,
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	/* 5 GHz */
	36, 40, 44, 48, 52, 56, 60, 64, 68, 72, 76, 80, 84, 88, 92,
	96, 100, 104, 108, 112, 116, 120, 124, 128, 132, 136, 140, 144,
	149, 153, 157, 161, 165, 169, 173, 177, 181
};

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#define IWL_NUM_CHANNELS		ARRAY_SIZE(iwl_nvm_channels)
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#define IWL_NUM_CHANNELS_FAMILY_8000	ARRAY_SIZE(iwl_nvm_channels_family_8000)
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#define NUM_2GHZ_CHANNELS		14
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#define NUM_2GHZ_CHANNELS_FAMILY_8000	14
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#define FIRST_2GHZ_HT_MINUS		5
#define LAST_2GHZ_HT_PLUS		9
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#define LAST_5GHZ_HT			165
#define LAST_5GHZ_HT_FAMILY_8000	181
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#define N_HW_ADDR_MASK			0xF
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/* rate data (static) */
static struct ieee80211_rate iwl_cfg80211_rates[] = {
	{ .bitrate = 1 * 10, .hw_value = 0, .hw_value_short = 0, },
	{ .bitrate = 2 * 10, .hw_value = 1, .hw_value_short = 1,
	  .flags = IEEE80211_RATE_SHORT_PREAMBLE, },
	{ .bitrate = 5.5 * 10, .hw_value = 2, .hw_value_short = 2,
	  .flags = IEEE80211_RATE_SHORT_PREAMBLE, },
	{ .bitrate = 11 * 10, .hw_value = 3, .hw_value_short = 3,
	  .flags = IEEE80211_RATE_SHORT_PREAMBLE, },
	{ .bitrate = 6 * 10, .hw_value = 4, .hw_value_short = 4, },
	{ .bitrate = 9 * 10, .hw_value = 5, .hw_value_short = 5, },
	{ .bitrate = 12 * 10, .hw_value = 6, .hw_value_short = 6, },
	{ .bitrate = 18 * 10, .hw_value = 7, .hw_value_short = 7, },
	{ .bitrate = 24 * 10, .hw_value = 8, .hw_value_short = 8, },
	{ .bitrate = 36 * 10, .hw_value = 9, .hw_value_short = 9, },
	{ .bitrate = 48 * 10, .hw_value = 10, .hw_value_short = 10, },
	{ .bitrate = 54 * 10, .hw_value = 11, .hw_value_short = 11, },
};
#define RATES_24_OFFS	0
#define N_RATES_24	ARRAY_SIZE(iwl_cfg80211_rates)
#define RATES_52_OFFS	4
#define N_RATES_52	(N_RATES_24 - RATES_52_OFFS)

/**
 * enum iwl_nvm_channel_flags - channel flags in NVM
 * @NVM_CHANNEL_VALID: channel is usable for this SKU/geo
 * @NVM_CHANNEL_IBSS: usable as an IBSS channel
 * @NVM_CHANNEL_ACTIVE: active scanning allowed
 * @NVM_CHANNEL_RADAR: radar detection required
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 * @NVM_CHANNEL_INDOOR_ONLY: only indoor use is allowed
 * @NVM_CHANNEL_GO_CONCURRENT: GO operation is allowed when connected to BSS
 *	on same channel on 2.4 or same UNII band on 5.2
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 * @NVM_CHANNEL_WIDE: 20 MHz channel okay (?)
 * @NVM_CHANNEL_40MHZ: 40 MHz channel okay (?)
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 * @NVM_CHANNEL_80MHZ: 80 MHz channel okay (?)
 * @NVM_CHANNEL_160MHZ: 160 MHz channel okay (?)
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 */
enum iwl_nvm_channel_flags {
	NVM_CHANNEL_VALID = BIT(0),
	NVM_CHANNEL_IBSS = BIT(1),
	NVM_CHANNEL_ACTIVE = BIT(3),
	NVM_CHANNEL_RADAR = BIT(4),
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	NVM_CHANNEL_INDOOR_ONLY = BIT(5),
	NVM_CHANNEL_GO_CONCURRENT = BIT(6),
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	NVM_CHANNEL_WIDE = BIT(8),
	NVM_CHANNEL_40MHZ = BIT(9),
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	NVM_CHANNEL_80MHZ = BIT(10),
	NVM_CHANNEL_160MHZ = BIT(11),
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};

#define CHECK_AND_PRINT_I(x)	\
	((ch_flags & NVM_CHANNEL_##x) ? # x " " : "")

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static u32 iwl_get_channel_flags(u8 ch_num, int ch_idx, bool is_5ghz,
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				 u16 nvm_flags, const struct iwl_cfg *cfg)
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{
	u32 flags = IEEE80211_CHAN_NO_HT40;
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	u32 last_5ghz_ht = LAST_5GHZ_HT;

	if (cfg->device_family == IWL_DEVICE_FAMILY_8000)
		last_5ghz_ht = LAST_5GHZ_HT_FAMILY_8000;
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	if (!is_5ghz && (nvm_flags & NVM_CHANNEL_40MHZ)) {
		if (ch_num <= LAST_2GHZ_HT_PLUS)
			flags &= ~IEEE80211_CHAN_NO_HT40PLUS;
		if (ch_num >= FIRST_2GHZ_HT_MINUS)
			flags &= ~IEEE80211_CHAN_NO_HT40MINUS;
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	} else if (ch_num <= last_5ghz_ht && (nvm_flags & NVM_CHANNEL_40MHZ)) {
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		if ((ch_idx - NUM_2GHZ_CHANNELS) % 2 == 0)
			flags &= ~IEEE80211_CHAN_NO_HT40PLUS;
		else
			flags &= ~IEEE80211_CHAN_NO_HT40MINUS;
	}
	if (!(nvm_flags & NVM_CHANNEL_80MHZ))
		flags |= IEEE80211_CHAN_NO_80MHZ;
	if (!(nvm_flags & NVM_CHANNEL_160MHZ))
		flags |= IEEE80211_CHAN_NO_160MHZ;

	if (!(nvm_flags & NVM_CHANNEL_IBSS))
		flags |= IEEE80211_CHAN_NO_IR;

	if (!(nvm_flags & NVM_CHANNEL_ACTIVE))
		flags |= IEEE80211_CHAN_NO_IR;

	if (nvm_flags & NVM_CHANNEL_RADAR)
		flags |= IEEE80211_CHAN_RADAR;

	if (nvm_flags & NVM_CHANNEL_INDOOR_ONLY)
		flags |= IEEE80211_CHAN_INDOOR_ONLY;

	/* Set the GO concurrent flag only in case that NO_IR is set.
	 * Otherwise it is meaningless
	 */
	if ((nvm_flags & NVM_CHANNEL_GO_CONCURRENT) &&
	    (flags & IEEE80211_CHAN_NO_IR))
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		flags |= IEEE80211_CHAN_IR_CONCURRENT;
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	return flags;
}

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static int iwl_init_channel_map(struct device *dev, const struct iwl_cfg *cfg,
				struct iwl_nvm_data *data,
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				const __le16 * const nvm_ch_flags,
				bool lar_supported)
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{
	int ch_idx;
	int n_channels = 0;
	struct ieee80211_channel *channel;
	u16 ch_flags;
	bool is_5ghz;
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	int num_of_ch, num_2ghz_channels;
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	const u8 *nvm_chan;

	if (cfg->device_family != IWL_DEVICE_FAMILY_8000) {
		num_of_ch = IWL_NUM_CHANNELS;
		nvm_chan = &iwl_nvm_channels[0];
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		num_2ghz_channels = NUM_2GHZ_CHANNELS;
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	} else {
		num_of_ch = IWL_NUM_CHANNELS_FAMILY_8000;
		nvm_chan = &iwl_nvm_channels_family_8000[0];
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		num_2ghz_channels = NUM_2GHZ_CHANNELS_FAMILY_8000;
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	}
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	for (ch_idx = 0; ch_idx < num_of_ch; ch_idx++) {
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		ch_flags = __le16_to_cpup(nvm_ch_flags + ch_idx);
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		if (ch_idx >= num_2ghz_channels &&
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		    !data->sku_cap_band_52GHz_enable)
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			continue;
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		if (ch_flags & NVM_CHANNEL_160MHZ)
			data->vht160_supported = true;

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		if (!lar_supported && !(ch_flags & NVM_CHANNEL_VALID)) {
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			/*
			 * Channels might become valid later if lar is
			 * supported, hence we still want to add them to
			 * the list of supported channels to cfg80211.
			 */
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			IWL_DEBUG_EEPROM(dev,
					 "Ch. %d Flags %x [%sGHz] - No traffic\n",
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					 nvm_chan[ch_idx],
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					 ch_flags,
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					 (ch_idx >= num_2ghz_channels) ?
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					 "5.2" : "2.4");
			continue;
		}

		channel = &data->channels[n_channels];
		n_channels++;

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		channel->hw_value = nvm_chan[ch_idx];
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		channel->band = (ch_idx < num_2ghz_channels) ?
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				NL80211_BAND_2GHZ : NL80211_BAND_5GHZ;
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		channel->center_freq =
			ieee80211_channel_to_frequency(
				channel->hw_value, channel->band);

		/* Initialize regulatory-based run-time data */

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		/*
		 * Default value - highest tx power value.  max_power
		 * is not used in mvm, and is used for backwards compatibility
		 */
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		channel->max_power = IWL_DEFAULT_MAX_TX_POWER;
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		is_5ghz = channel->band == NL80211_BAND_5GHZ;
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		/* don't put limitations in case we're using LAR */
		if (!lar_supported)
			channel->flags = iwl_get_channel_flags(nvm_chan[ch_idx],
							       ch_idx, is_5ghz,
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							       ch_flags, cfg);
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		else
			channel->flags = 0;

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		IWL_DEBUG_EEPROM(dev,
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				 "Ch. %d [%sGHz] flags 0x%x %s%s%s%s%s%s%s%s%s%s(%ddBm): Ad-Hoc %ssupported\n",
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				 channel->hw_value,
				 is_5ghz ? "5.2" : "2.4",
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				 ch_flags,
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				 CHECK_AND_PRINT_I(VALID),
				 CHECK_AND_PRINT_I(IBSS),
				 CHECK_AND_PRINT_I(ACTIVE),
				 CHECK_AND_PRINT_I(RADAR),
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				 CHECK_AND_PRINT_I(INDOOR_ONLY),
				 CHECK_AND_PRINT_I(GO_CONCURRENT),
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				 CHECK_AND_PRINT_I(WIDE),
				 CHECK_AND_PRINT_I(40MHZ),
				 CHECK_AND_PRINT_I(80MHZ),
				 CHECK_AND_PRINT_I(160MHZ),
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				 channel->max_power,
				 ((ch_flags & NVM_CHANNEL_IBSS) &&
				  !(ch_flags & NVM_CHANNEL_RADAR))
					? "" : "not ");
	}

	return n_channels;
}

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static void iwl_init_vht_hw_capab(const struct iwl_cfg *cfg,
				  struct iwl_nvm_data *data,
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				  struct ieee80211_sta_vht_cap *vht_cap,
				  u8 tx_chains, u8 rx_chains)
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{
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	int num_rx_ants = num_of_ant(rx_chains);
	int num_tx_ants = num_of_ant(tx_chains);
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	unsigned int max_ampdu_exponent = (cfg->max_vht_ampdu_exponent ?:
					   IEEE80211_VHT_MAX_AMPDU_1024K);
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	vht_cap->vht_supported = true;

	vht_cap->cap = IEEE80211_VHT_CAP_SHORT_GI_80 |
		       IEEE80211_VHT_CAP_RXSTBC_1 |
		       IEEE80211_VHT_CAP_SU_BEAMFORMEE_CAPABLE |
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		       3 << IEEE80211_VHT_CAP_BEAMFORMEE_STS_SHIFT |
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		       max_ampdu_exponent <<
		       IEEE80211_VHT_CAP_MAX_A_MPDU_LENGTH_EXPONENT_SHIFT;
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	if (data->vht160_supported)
		vht_cap->cap |=
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			IEEE80211_VHT_CAP_SUPP_CHAN_WIDTH_160MHZ;
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	if (cfg->vht_mu_mimo_supported)
		vht_cap->cap |= IEEE80211_VHT_CAP_MU_BEAMFORMEE_CAPABLE;

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Eyal Shapira 已提交
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	if (cfg->ht_params->ldpc)
		vht_cap->cap |= IEEE80211_VHT_CAP_RXLDPC;

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	if (data->sku_cap_mimo_disabled) {
		num_rx_ants = 1;
		num_tx_ants = 1;
	}

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	if (num_tx_ants > 1)
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		vht_cap->cap |= IEEE80211_VHT_CAP_TXSTBC;
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	else
		vht_cap->cap |= IEEE80211_VHT_CAP_TX_ANTENNA_PATTERN;
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	switch (iwlwifi_mod_params.amsdu_size) {
	case IWL_AMSDU_4K:
		vht_cap->cap |= IEEE80211_VHT_CAP_MAX_MPDU_LENGTH_3895;
		break;
	case IWL_AMSDU_8K:
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		vht_cap->cap |= IEEE80211_VHT_CAP_MAX_MPDU_LENGTH_7991;
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		break;
	case IWL_AMSDU_12K:
		vht_cap->cap |= IEEE80211_VHT_CAP_MAX_MPDU_LENGTH_11454;
		break;
	default:
		break;
	}
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	vht_cap->vht_mcs.rx_mcs_map =
		cpu_to_le16(IEEE80211_VHT_MCS_SUPPORT_0_9 << 0 |
			    IEEE80211_VHT_MCS_SUPPORT_0_9 << 2 |
			    IEEE80211_VHT_MCS_NOT_SUPPORTED << 4 |
			    IEEE80211_VHT_MCS_NOT_SUPPORTED << 6 |
			    IEEE80211_VHT_MCS_NOT_SUPPORTED << 8 |
			    IEEE80211_VHT_MCS_NOT_SUPPORTED << 10 |
			    IEEE80211_VHT_MCS_NOT_SUPPORTED << 12 |
			    IEEE80211_VHT_MCS_NOT_SUPPORTED << 14);

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	if (num_rx_ants == 1 || cfg->rx_with_siso_diversity) {
		vht_cap->cap |= IEEE80211_VHT_CAP_RX_ANTENNA_PATTERN;
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		/* this works because NOT_SUPPORTED == 3 */
		vht_cap->vht_mcs.rx_mcs_map |=
			cpu_to_le16(IEEE80211_VHT_MCS_NOT_SUPPORTED << 2);
	}

	vht_cap->vht_mcs.tx_mcs_map = vht_cap->vht_mcs.rx_mcs_map;
}

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static void iwl_init_sbands(struct device *dev, const struct iwl_cfg *cfg,
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			    struct iwl_nvm_data *data,
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			    const __le16 *ch_section,
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			    u8 tx_chains, u8 rx_chains, bool lar_supported)
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{
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	int n_channels;
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	int n_used = 0;
	struct ieee80211_supported_band *sband;

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	if (cfg->device_family != IWL_DEVICE_FAMILY_8000)
		n_channels = iwl_init_channel_map(
				dev, cfg, data,
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				&ch_section[NVM_CHANNELS], lar_supported);
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	else
		n_channels = iwl_init_channel_map(
				dev, cfg, data,
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				&ch_section[NVM_CHANNELS_FAMILY_8000],
				lar_supported);
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	sband = &data->bands[NL80211_BAND_2GHZ];
	sband->band = NL80211_BAND_2GHZ;
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	sband->bitrates = &iwl_cfg80211_rates[RATES_24_OFFS];
	sband->n_bitrates = N_RATES_24;
	n_used += iwl_init_sband_channels(data, sband, n_channels,
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					  NL80211_BAND_2GHZ);
	iwl_init_ht_hw_capab(cfg, data, &sband->ht_cap, NL80211_BAND_2GHZ,
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			     tx_chains, rx_chains);
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	sband = &data->bands[NL80211_BAND_5GHZ];
	sband->band = NL80211_BAND_5GHZ;
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	sband->bitrates = &iwl_cfg80211_rates[RATES_52_OFFS];
	sband->n_bitrates = N_RATES_52;
	n_used += iwl_init_sband_channels(data, sband, n_channels,
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					  NL80211_BAND_5GHZ);
	iwl_init_ht_hw_capab(cfg, data, &sband->ht_cap, NL80211_BAND_5GHZ,
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			     tx_chains, rx_chains);
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	if (data->sku_cap_11ac_enable && !iwlwifi_mod_params.disable_11ac)
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		iwl_init_vht_hw_capab(cfg, data, &sband->vht_cap,
				      tx_chains, rx_chains);
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	if (n_channels != n_used)
		IWL_ERR_DEV(dev, "NVM: used only %d of %d channels\n",
			    n_used, n_channels);
}

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static int iwl_get_sku(const struct iwl_cfg *cfg, const __le16 *nvm_sw,
		       const __le16 *phy_sku)
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{
	if (cfg->device_family != IWL_DEVICE_FAMILY_8000)
		return le16_to_cpup(nvm_sw + SKU);
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	return le32_to_cpup((__le32 *)(phy_sku + SKU_FAMILY_8000));
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}

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static int iwl_get_nvm_version(const struct iwl_cfg *cfg, const __le16 *nvm_sw)
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{
	if (cfg->device_family != IWL_DEVICE_FAMILY_8000)
		return le16_to_cpup(nvm_sw + NVM_VERSION);
	else
		return le32_to_cpup((__le32 *)(nvm_sw +
					       NVM_VERSION_FAMILY_8000));
}

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static int iwl_get_radio_cfg(const struct iwl_cfg *cfg, const __le16 *nvm_sw,
			     const __le16 *phy_sku)
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{
	if (cfg->device_family != IWL_DEVICE_FAMILY_8000)
		return le16_to_cpup(nvm_sw + RADIO_CFG);
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	return le32_to_cpup((__le32 *)(phy_sku + RADIO_CFG_FAMILY_8000));
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}

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static int iwl_get_n_hw_addrs(const struct iwl_cfg *cfg, const __le16 *nvm_sw)
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{
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	int n_hw_addr;

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	if (cfg->device_family != IWL_DEVICE_FAMILY_8000)
		return le16_to_cpup(nvm_sw + N_HW_ADDRS);
512

513
	n_hw_addr = le32_to_cpup((__le32 *)(nvm_sw + N_HW_ADDRS_FAMILY_8000));
514 515

	return n_hw_addr & N_HW_ADDR_MASK;
516 517 518 519 520 521 522 523 524 525 526 527 528 529 530 531 532 533 534
}

static void iwl_set_radio_cfg(const struct iwl_cfg *cfg,
			      struct iwl_nvm_data *data,
			      u32 radio_cfg)
{
	if (cfg->device_family != IWL_DEVICE_FAMILY_8000) {
		data->radio_cfg_type = NVM_RF_CFG_TYPE_MSK(radio_cfg);
		data->radio_cfg_step = NVM_RF_CFG_STEP_MSK(radio_cfg);
		data->radio_cfg_dash = NVM_RF_CFG_DASH_MSK(radio_cfg);
		data->radio_cfg_pnum = NVM_RF_CFG_PNUM_MSK(radio_cfg);
		return;
	}

	/* set the radio configuration for family 8000 */
	data->radio_cfg_type = NVM_RF_CFG_TYPE_MSK_FAMILY_8000(radio_cfg);
	data->radio_cfg_step = NVM_RF_CFG_STEP_MSK_FAMILY_8000(radio_cfg);
	data->radio_cfg_dash = NVM_RF_CFG_DASH_MSK_FAMILY_8000(radio_cfg);
	data->radio_cfg_pnum = NVM_RF_CFG_FLAVOR_MSK_FAMILY_8000(radio_cfg);
535 536
	data->valid_tx_ant = NVM_RF_CFG_TX_ANT_MSK_FAMILY_8000(radio_cfg);
	data->valid_rx_ant = NVM_RF_CFG_RX_ANT_MSK_FAMILY_8000(radio_cfg);
537 538
}

539 540 541 542 543 544 545 546 547 548 549 550 551 552 553 554 555 556 557 558 559 560 561 562 563 564 565 566 567 568
static void iwl_flip_hw_address(__le32 mac_addr0, __le32 mac_addr1, u8 *dest)
{
	const u8 *hw_addr;

	hw_addr = (const u8 *)&mac_addr0;
	dest[0] = hw_addr[3];
	dest[1] = hw_addr[2];
	dest[2] = hw_addr[1];
	dest[3] = hw_addr[0];

	hw_addr = (const u8 *)&mac_addr1;
	dest[4] = hw_addr[1];
	dest[5] = hw_addr[0];
}

static void iwl_set_hw_address_from_csr(struct iwl_trans *trans,
					struct iwl_nvm_data *data)
{
	__le32 mac_addr0 = cpu_to_le32(iwl_read32(trans, CSR_MAC_ADDR0_STRAP));
	__le32 mac_addr1 = cpu_to_le32(iwl_read32(trans, CSR_MAC_ADDR1_STRAP));

	/* If OEM did not fuse address - get it from OTP */
	if (!mac_addr0 && !mac_addr1) {
		mac_addr0 = cpu_to_le32(iwl_read32(trans, CSR_MAC_ADDR0_OTP));
		mac_addr1 = cpu_to_le32(iwl_read32(trans, CSR_MAC_ADDR1_OTP));
	}

	iwl_flip_hw_address(mac_addr0, mac_addr1, data->hw_addr);
}

569
static void iwl_set_hw_address_family_8000(struct iwl_trans *trans,
570
					   const struct iwl_cfg *cfg,
571 572
					   struct iwl_nvm_data *data,
					   const __le16 *mac_override,
573
					   const __le16 *nvm_hw)
574 575 576 577
{
	const u8 *hw_addr;

	if (mac_override) {
578 579 580 581
		static const u8 reserved_mac[] = {
			0x02, 0xcc, 0xaa, 0xff, 0xee, 0x00
		};

582 583 584
		hw_addr = (const u8 *)(mac_override +
				 MAC_ADDRESS_OVERRIDE_FAMILY_8000);

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		/*
		 * Store the MAC address from MAO section.
		 * No byte swapping is required in MAO section
		 */
		memcpy(data->hw_addr, hw_addr, ETH_ALEN);
590

591 592 593 594 595 596
		/*
		 * Force the use of the OTP MAC address in case of reserved MAC
		 * address in the NVM, or if address is given but invalid.
		 */
		if (is_valid_ether_addr(data->hw_addr) &&
		    memcmp(reserved_mac, hw_addr, ETH_ALEN) != 0)
597
			return;
598

599 600
		IWL_ERR(trans,
			"mac address from nvm override section is not valid\n");
601 602
	}

603
	if (nvm_hw) {
604 605 606 607 608
		/* read the mac address from WFMP registers */
		__le32 mac_addr0 = cpu_to_le32(iwl_trans_read_prph(trans,
						WFMP_MAC_ADDR_0));
		__le32 mac_addr1 = cpu_to_le32(iwl_trans_read_prph(trans,
						WFMP_MAC_ADDR_1));
609 610

		iwl_flip_hw_address(mac_addr0, mac_addr1, data->hw_addr);
611

612 613
		return;
	}
614

615 616 617
	IWL_ERR(trans, "mac address is not found\n");
}

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static int iwl_set_hw_address(struct iwl_trans *trans,
			      const struct iwl_cfg *cfg,
			      struct iwl_nvm_data *data, const __le16 *nvm_hw,
			      const __le16 *mac_override)
622
{
623 624 625
	if (cfg->mac_addr_from_csr) {
		iwl_set_hw_address_from_csr(trans, data);
	} else if (cfg->device_family != IWL_DEVICE_FAMILY_8000) {
626 627 628 629 630 631 632 633 634 635 636 637 638
		const u8 *hw_addr = (const u8 *)(nvm_hw + HW_ADDR);

		/* The byte order is little endian 16 bit, meaning 214365 */
		data->hw_addr[0] = hw_addr[1];
		data->hw_addr[1] = hw_addr[0];
		data->hw_addr[2] = hw_addr[3];
		data->hw_addr[3] = hw_addr[2];
		data->hw_addr[4] = hw_addr[5];
		data->hw_addr[5] = hw_addr[4];
	} else {
		iwl_set_hw_address_family_8000(trans, cfg, data,
					       mac_override, nvm_hw);
	}
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	if (!is_valid_ether_addr(data->hw_addr)) {
		IWL_ERR(trans, "no valid mac address was found\n");
		return -EINVAL;
	}

	return 0;
646 647
}

648
struct iwl_nvm_data *
649
iwl_parse_nvm_data(struct iwl_trans *trans, const struct iwl_cfg *cfg,
650
		   const __le16 *nvm_hw, const __le16 *nvm_sw,
651
		   const __le16 *nvm_calib, const __le16 *regulatory,
652
		   const __le16 *mac_override, const __le16 *phy_sku,
653
		   u8 tx_chains, u8 rx_chains, bool lar_fw_supported)
654
{
655
	struct device *dev = trans->dev;
656
	struct iwl_nvm_data *data;
657 658
	bool lar_enabled;
	u32 sku, radio_cfg;
659
	u16 lar_config;
660
	const __le16 *ch_section;
661 662 663 664 665 666 667 668 669 670 671

	if (cfg->device_family != IWL_DEVICE_FAMILY_8000)
		data = kzalloc(sizeof(*data) +
			       sizeof(struct ieee80211_channel) *
			       IWL_NUM_CHANNELS,
			       GFP_KERNEL);
	else
		data = kzalloc(sizeof(*data) +
			       sizeof(struct ieee80211_channel) *
			       IWL_NUM_CHANNELS_FAMILY_8000,
			       GFP_KERNEL);
672 673 674
	if (!data)
		return NULL;

675
	data->nvm_version = iwl_get_nvm_version(cfg, nvm_sw);
676

677
	radio_cfg = iwl_get_radio_cfg(cfg, nvm_sw, phy_sku);
678
	iwl_set_radio_cfg(cfg, data, radio_cfg);
679 680 681 682
	if (data->valid_tx_ant)
		tx_chains &= data->valid_tx_ant;
	if (data->valid_rx_ant)
		rx_chains &= data->valid_rx_ant;
683

684
	sku = iwl_get_sku(cfg, nvm_sw, phy_sku);
685 686 687 688 689
	data->sku_cap_band_24GHz_enable = sku & NVM_SKU_CAP_BAND_24GHZ;
	data->sku_cap_band_52GHz_enable = sku & NVM_SKU_CAP_BAND_52GHZ;
	data->sku_cap_11n_enable = sku & NVM_SKU_CAP_11N_ENABLE;
	if (iwlwifi_mod_params.disable_11n & IWL_DISABLE_HT_ALL)
		data->sku_cap_11n_enable = false;
690 691
	data->sku_cap_11ac_enable = data->sku_cap_11n_enable &&
				    (sku & NVM_SKU_CAP_11AC_ENABLE);
692
	data->sku_cap_mimo_disabled = sku & NVM_SKU_CAP_MIMO_DISABLE;
693

694
	data->n_hw_addrs = iwl_get_n_hw_addrs(cfg, nvm_sw);
695

696 697 698
	if (cfg->device_family != IWL_DEVICE_FAMILY_8000) {
		/* Checking for required sections */
		if (!nvm_calib) {
699 700
			IWL_ERR(trans,
				"Can't parse empty Calib NVM sections\n");
701
			kfree(data);
702 703 704 705 706
			return NULL;
		}
		/* in family 8000 Xtal calibration values moved to OTP */
		data->xtal_calib[0] = *(nvm_calib + XTAL_CALIB);
		data->xtal_calib[1] = *(nvm_calib + XTAL_CALIB + 1);
707 708
		lar_enabled = true;
		ch_section = nvm_sw;
709
	} else {
710 711 712 713 714
		u16 lar_offset = data->nvm_version < 0xE39 ?
				 NVM_LAR_OFFSET_FAMILY_8000_OLD :
				 NVM_LAR_OFFSET_FAMILY_8000;

		lar_config = le16_to_cpup(regulatory + lar_offset);
715 716
		data->lar_enabled = !!(lar_config &
				       NVM_LAR_ENABLED_FAMILY_8000);
717 718
		lar_enabled = data->lar_enabled;
		ch_section = regulatory;
719
	}
720

721 722 723 724 725 726
	/* If no valid mac address was found - bail out */
	if (iwl_set_hw_address(trans, cfg, data, nvm_hw, mac_override)) {
		kfree(data);
		return NULL;
	}

727 728
	iwl_init_sbands(dev, cfg, data, ch_section, tx_chains, rx_chains,
			lar_fw_supported && lar_enabled);
729
	data->calib_version = 255;
730 731 732

	return data;
}
733
IWL_EXPORT_SYMBOL(iwl_parse_nvm_data);
734 735

static u32 iwl_nvm_get_regdom_bw_flags(const u8 *nvm_chan,
736 737
				       int ch_idx, u16 nvm_flags,
				       const struct iwl_cfg *cfg)
738 739
{
	u32 flags = NL80211_RRF_NO_HT40;
740 741 742 743
	u32 last_5ghz_ht = LAST_5GHZ_HT;

	if (cfg->device_family == IWL_DEVICE_FAMILY_8000)
		last_5ghz_ht = LAST_5GHZ_HT_FAMILY_8000;
744 745 746 747 748 749 750

	if (ch_idx < NUM_2GHZ_CHANNELS &&
	    (nvm_flags & NVM_CHANNEL_40MHZ)) {
		if (nvm_chan[ch_idx] <= LAST_2GHZ_HT_PLUS)
			flags &= ~NL80211_RRF_NO_HT40PLUS;
		if (nvm_chan[ch_idx] >= FIRST_2GHZ_HT_MINUS)
			flags &= ~NL80211_RRF_NO_HT40MINUS;
751
	} else if (nvm_chan[ch_idx] <= last_5ghz_ht &&
752 753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783
		   (nvm_flags & NVM_CHANNEL_40MHZ)) {
		if ((ch_idx - NUM_2GHZ_CHANNELS) % 2 == 0)
			flags &= ~NL80211_RRF_NO_HT40PLUS;
		else
			flags &= ~NL80211_RRF_NO_HT40MINUS;
	}

	if (!(nvm_flags & NVM_CHANNEL_80MHZ))
		flags |= NL80211_RRF_NO_80MHZ;
	if (!(nvm_flags & NVM_CHANNEL_160MHZ))
		flags |= NL80211_RRF_NO_160MHZ;

	if (!(nvm_flags & NVM_CHANNEL_ACTIVE))
		flags |= NL80211_RRF_NO_IR;

	if (nvm_flags & NVM_CHANNEL_RADAR)
		flags |= NL80211_RRF_DFS;

	if (nvm_flags & NVM_CHANNEL_INDOOR_ONLY)
		flags |= NL80211_RRF_NO_OUTDOOR;

	/* Set the GO concurrent flag only in case that NO_IR is set.
	 * Otherwise it is meaningless
	 */
	if ((nvm_flags & NVM_CHANNEL_GO_CONCURRENT) &&
	    (flags & NL80211_RRF_NO_IR))
		flags |= NL80211_RRF_GO_CONCURRENT;

	return flags;
}

struct ieee80211_regdomain *
784 785
iwl_parse_nvm_mcc_info(struct device *dev, const struct iwl_cfg *cfg,
		       int num_of_ch, __le32 *channels, u16 fw_mcc)
786 787 788
{
	int ch_idx;
	u16 ch_flags, prev_ch_flags = 0;
789 790
	const u8 *nvm_chan = cfg->device_family == IWL_DEVICE_FAMILY_8000 ?
			     iwl_nvm_channels_family_8000 : iwl_nvm_channels;
791 792 793
	struct ieee80211_regdomain *regd;
	int size_of_regd;
	struct ieee80211_reg_rule *rule;
794
	enum nl80211_band band;
795 796 797
	int center_freq, prev_center_freq = 0;
	int valid_rules = 0;
	bool new_rule;
798 799
	int max_num_ch = cfg->device_family == IWL_DEVICE_FAMILY_8000 ?
			 IWL_NUM_CHANNELS_FAMILY_8000 : IWL_NUM_CHANNELS;
800 801 802 803

	if (WARN_ON_ONCE(num_of_ch > NL80211_MAX_SUPP_REG_RULES))
		return ERR_PTR(-EINVAL);

804 805 806
	if (WARN_ON(num_of_ch > max_num_ch))
		num_of_ch = max_num_ch;

807 808 809 810 811 812 813 814 815 816 817 818 819 820 821
	IWL_DEBUG_DEV(dev, IWL_DL_LAR, "building regdom for %d channels\n",
		      num_of_ch);

	/* build a regdomain rule for every valid channel */
	size_of_regd =
		sizeof(struct ieee80211_regdomain) +
		num_of_ch * sizeof(struct ieee80211_reg_rule);

	regd = kzalloc(size_of_regd, GFP_KERNEL);
	if (!regd)
		return ERR_PTR(-ENOMEM);

	for (ch_idx = 0; ch_idx < num_of_ch; ch_idx++) {
		ch_flags = (u16)__le32_to_cpup(channels + ch_idx);
		band = (ch_idx < NUM_2GHZ_CHANNELS) ?
822
		       NL80211_BAND_2GHZ : NL80211_BAND_5GHZ;
823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853
		center_freq = ieee80211_channel_to_frequency(nvm_chan[ch_idx],
							     band);
		new_rule = false;

		if (!(ch_flags & NVM_CHANNEL_VALID)) {
			IWL_DEBUG_DEV(dev, IWL_DL_LAR,
				      "Ch. %d Flags %x [%sGHz] - No traffic\n",
				      nvm_chan[ch_idx],
				      ch_flags,
				      (ch_idx >= NUM_2GHZ_CHANNELS) ?
				      "5.2" : "2.4");
			continue;
		}

		/* we can't continue the same rule */
		if (ch_idx == 0 || prev_ch_flags != ch_flags ||
		    center_freq - prev_center_freq > 20) {
			valid_rules++;
			new_rule = true;
		}

		rule = &regd->reg_rules[valid_rules - 1];

		if (new_rule)
			rule->freq_range.start_freq_khz =
						MHZ_TO_KHZ(center_freq - 10);

		rule->freq_range.end_freq_khz = MHZ_TO_KHZ(center_freq + 10);

		/* this doesn't matter - not used by FW */
		rule->power_rule.max_antenna_gain = DBI_TO_MBI(6);
854 855
		rule->power_rule.max_eirp =
			DBM_TO_MBM(IWL_DEFAULT_MAX_TX_POWER);
856 857

		rule->flags = iwl_nvm_get_regdom_bw_flags(nvm_chan, ch_idx,
858
							  ch_flags, cfg);
859 860 861 862 863 864 865 866 867

		/* rely on auto-calculation to merge BW of contiguous chans */
		rule->flags |= NL80211_RRF_AUTO_BW;
		rule->freq_range.max_bandwidth_khz = 0;

		prev_ch_flags = ch_flags;
		prev_center_freq = center_freq;

		IWL_DEBUG_DEV(dev, IWL_DL_LAR,
868
			      "Ch. %d [%sGHz] %s%s%s%s%s%s%s%s%s(0x%02x): Ad-Hoc %ssupported\n",
869
			      center_freq,
870
			      band == NL80211_BAND_5GHZ ? "5.2" : "2.4",
871 872 873 874 875 876 877 878 879 880
			      CHECK_AND_PRINT_I(VALID),
			      CHECK_AND_PRINT_I(ACTIVE),
			      CHECK_AND_PRINT_I(RADAR),
			      CHECK_AND_PRINT_I(WIDE),
			      CHECK_AND_PRINT_I(40MHZ),
			      CHECK_AND_PRINT_I(80MHZ),
			      CHECK_AND_PRINT_I(160MHZ),
			      CHECK_AND_PRINT_I(INDOOR_ONLY),
			      CHECK_AND_PRINT_I(GO_CONCURRENT),
			      ch_flags,
881
			      ((ch_flags & NVM_CHANNEL_ACTIVE) &&
882 883 884 885 886 887 888 889 890 891 892 893 894
			       !(ch_flags & NVM_CHANNEL_RADAR))
					 ? "" : "not ");
	}

	regd->n_reg_rules = valid_rules;

	/* set alpha2 from FW. */
	regd->alpha2[0] = fw_mcc >> 8;
	regd->alpha2[1] = fw_mcc & 0xff;

	return regd;
}
IWL_EXPORT_SYMBOL(iwl_parse_nvm_mcc_info);