rc.c 49.9 KB
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/*
 * Copyright (c) 2004 Video54 Technologies, Inc.
 * Copyright (c) 2004-2008 Atheros Communications, Inc.
 *
 * Permission to use, copy, modify, and/or distribute this software for any
 * purpose with or without fee is hereby granted, provided that the above
 * copyright notice and this permission notice appear in all copies.
 *
 * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
 * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
 * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
 * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
 * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
 * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
 * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
 */

/*
 * Atheros rate control algorithm
 */

#include "core.h"
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/* FIXME: remove this include! */
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#include "../net/mac80211/rate.h"

static struct ath_rate_table ar5416_11na_ratetable = {
	42,
	{
		{ TRUE, TRUE, WLAN_PHY_OFDM, 6000, /* 6 Mb */
			5400, 0x0b, 0x00, 12,
			0, 2, 1, 0, 0, 0, 0, 0 },
		{ TRUE,	TRUE, WLAN_PHY_OFDM, 9000, /* 9 Mb */
			7800,  0x0f, 0x00, 18,
			0, 3, 1, 1, 1, 1, 1, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 12000, /* 12 Mb */
			10000, 0x0a, 0x00, 24,
			2, 4, 2, 2, 2, 2, 2, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 18000, /* 18 Mb */
			13900, 0x0e, 0x00, 36,
			2, 6,  2, 3, 3, 3, 3, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 24000, /* 24 Mb */
			17300, 0x09, 0x00, 48,
			4, 10, 3, 4, 4, 4, 4, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 36000, /* 36 Mb */
			23000, 0x0d, 0x00, 72,
			4, 14, 3, 5, 5, 5, 5, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 48000, /* 48 Mb */
			27400, 0x08, 0x00, 96,
			4, 20, 3, 6, 6, 6, 6, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 54000, /* 54 Mb */
			29300, 0x0c, 0x00, 108,
			4, 23, 3, 7, 7, 7, 7, 0 },
		{ TRUE_20, TRUE_20, WLAN_PHY_HT_20_SS, 6500, /* 6.5 Mb */
			6400, 0x80, 0x00, 0,
			0, 2, 3, 8, 24, 8, 24, 3216 },
		{ TRUE_20, TRUE_20, WLAN_PHY_HT_20_SS, 13000, /* 13 Mb */
			12700, 0x81, 0x00, 1,
			2, 4, 3, 9, 25, 9, 25, 6434 },
		{ TRUE_20, TRUE_20, WLAN_PHY_HT_20_SS, 19500, /* 19.5 Mb */
			18800, 0x82, 0x00, 2,
			2, 6, 3, 10, 26, 10, 26, 9650 },
		{ TRUE_20, TRUE_20, WLAN_PHY_HT_20_SS, 26000, /* 26 Mb */
			25000, 0x83, 0x00, 3,
			4, 10, 3, 11, 27, 11, 27, 12868 },
		{ TRUE_20, TRUE_20, WLAN_PHY_HT_20_SS, 39000, /* 39 Mb */
			36700, 0x84, 0x00, 4,
			4, 14, 3, 12, 28, 12, 28, 19304 },
		{ FALSE, TRUE_20, WLAN_PHY_HT_20_SS, 52000, /* 52 Mb */
			48100, 0x85, 0x00, 5,
			4, 20, 3, 13, 29, 13, 29, 25740 },
		{ FALSE, TRUE_20, WLAN_PHY_HT_20_SS, 58500, /* 58.5 Mb */
			53500, 0x86, 0x00, 6,
			4, 23, 3, 14, 30, 14, 30,  28956 },
		{ FALSE, TRUE_20, WLAN_PHY_HT_20_SS, 65000, /* 65 Mb */
			59000, 0x87, 0x00, 7,
			4, 25, 3, 15, 31, 15, 32, 32180 },
		{ FALSE, FALSE, WLAN_PHY_HT_20_DS, 13000, /* 13 Mb */
			12700, 0x88, 0x00,
			8, 0, 2, 3, 16, 33, 16, 33, 6430 },
		{ FALSE, FALSE, WLAN_PHY_HT_20_DS, 26000, /* 26 Mb */
			24800, 0x89, 0x00, 9,
			2, 4, 3, 17, 34, 17, 34, 12860 },
		{ FALSE, FALSE, WLAN_PHY_HT_20_DS, 39000, /* 39 Mb */
			36600, 0x8a, 0x00, 10,
			2, 6, 3, 18, 35, 18, 35, 19300 },
		{ TRUE_20, FALSE, WLAN_PHY_HT_20_DS, 52000, /* 52 Mb */
			48100, 0x8b, 0x00, 11,
			4, 10, 3, 19, 36, 19, 36, 25736 },
		{ TRUE_20, FALSE, WLAN_PHY_HT_20_DS, 78000, /* 78 Mb */
			69500, 0x8c, 0x00, 12,
			4, 14, 3, 20, 37, 20, 37, 38600 },
		{ TRUE_20, FALSE, WLAN_PHY_HT_20_DS, 104000, /* 104 Mb */
			89500, 0x8d, 0x00, 13,
			4, 20, 3, 21, 38, 21, 38, 51472 },
		{ TRUE_20, FALSE, WLAN_PHY_HT_20_DS, 117000, /* 117 Mb */
			98900, 0x8e, 0x00, 14,
			4, 23, 3, 22, 39, 22, 39, 57890 },
		{ TRUE_20, FALSE, WLAN_PHY_HT_20_DS, 130000, /* 130 Mb */
			108300, 0x8f, 0x00, 15,
			4, 25, 3, 23, 40, 23, 41, 64320 },
		{ TRUE_40, TRUE_40, WLAN_PHY_HT_40_SS, 13500, /* 13.5 Mb */
			13200, 0x80, 0x00, 0,
			0, 2, 3, 8, 24, 24, 24, 6684 },
		{ TRUE_40, TRUE_40, WLAN_PHY_HT_40_SS, 27500, /* 27.0 Mb */
			25900, 0x81, 0x00, 1,
			2, 4, 3, 9, 25, 25, 25, 13368 },
		{ TRUE_40, TRUE_40, WLAN_PHY_HT_40_SS, 40500, /* 40.5 Mb */
			38600, 0x82, 0x00, 2,
			2, 6, 3, 10, 26, 26, 26, 20052 },
		{ TRUE_40, TRUE_40, WLAN_PHY_HT_40_SS, 54000, /* 54 Mb */
			49800, 0x83, 0x00, 3,
			4, 10, 3, 11, 27, 27, 27, 26738 },
		{ TRUE_40, TRUE_40, WLAN_PHY_HT_40_SS, 81500, /* 81 Mb */
			72200, 0x84, 0x00, 4,
			4, 14, 3, 12, 28, 28, 28, 40104 },
		{ FALSE, TRUE_40, WLAN_PHY_HT_40_SS, 108000, /* 108 Mb */
			92900, 0x85, 0x00, 5,
			4, 20, 3, 13, 29, 29, 29, 53476 },
		{ FALSE, TRUE_40, WLAN_PHY_HT_40_SS, 121500, /* 121.5 Mb */
			102700, 0x86, 0x00, 6,
			4, 23, 3, 14, 30, 30, 30, 60156 },
		{ FALSE, TRUE_40, WLAN_PHY_HT_40_SS, 135000, /* 135 Mb */
			112000, 0x87, 0x00, 7,
			4, 25, 3, 15, 31, 32, 32, 66840 },
		{ FALSE, TRUE_40, WLAN_PHY_HT_40_SS_HGI, 150000, /* 150 Mb */
			122000, 0x87, 0x00, 7,
			4, 25, 3, 15, 31, 32, 32, 74200 },
		{ FALSE, FALSE, WLAN_PHY_HT_40_DS, 27000, /* 27 Mb */
			25800, 0x88, 0x00, 8,
			0, 2, 3, 16, 33, 33, 33, 13360 },
		{ FALSE, FALSE, WLAN_PHY_HT_40_DS, 54000, /* 54 Mb */
			49800, 0x89, 0x00, 9,
			2, 4, 3, 17, 34, 34, 34, 26720 },
		{ FALSE, FALSE, WLAN_PHY_HT_40_DS, 81000, /* 81 Mb */
			71900, 0x8a, 0x00, 10,
			2, 6, 3, 18, 35, 35, 35, 40080 },
		{ TRUE_40, FALSE, WLAN_PHY_HT_40_DS, 108000, /* 108 Mb */
			92500, 0x8b, 0x00, 11,
			4, 10, 3, 19, 36, 36, 36, 53440 },
		{ TRUE_40, FALSE, WLAN_PHY_HT_40_DS, 162000, /* 162 Mb */
			130300, 0x8c, 0x00, 12,
			4, 14, 3, 20, 37, 37, 37, 80160 },
		{ TRUE_40, FALSE, WLAN_PHY_HT_40_DS, 216000, /* 216 Mb */
			162800, 0x8d, 0x00, 13,
			4, 20, 3, 21, 38, 38, 38, 106880 },
		{ TRUE_40, FALSE, WLAN_PHY_HT_40_DS, 243000, /* 243 Mb */
			178200, 0x8e, 0x00, 14,
			4, 23, 3, 22, 39, 39, 39, 120240 },
		{ TRUE_40, FALSE, WLAN_PHY_HT_40_DS, 270000, /* 270 Mb */
			192100, 0x8f, 0x00, 15,
			4, 25, 3, 23, 40, 41, 41, 133600 },
		{ TRUE_40, FALSE, WLAN_PHY_HT_40_DS_HGI, 300000, /* 300 Mb */
			207000, 0x8f, 0x00, 15,
			4, 25, 3, 23, 40, 41, 41, 148400 },
	},
	50,  /* probe interval */
	50,  /* rssi reduce interval */
	WLAN_RC_HT_FLAG,  /* Phy rates allowed initially */
};

/* TRUE_ALL - valid for 20/40/Legacy,
 * TRUE - Legacy only,
 * TRUE_20 - HT 20 only,
 * TRUE_40 - HT 40 only */

/* 4ms frame limit not used for NG mode.  The values filled
 * for HT are the 64K max aggregate limit */

static struct ath_rate_table ar5416_11ng_ratetable = {
	46,
	{
		{ TRUE_ALL, TRUE_ALL, WLAN_PHY_CCK, 1000, /* 1 Mb */
			900, 0x1b, 0x00, 2,
			0, 0, 1, 0, 0, 0, 0, 0 },
		{ TRUE_ALL, TRUE_ALL, WLAN_PHY_CCK, 2000, /* 2 Mb */
			1900, 0x1a, 0x04, 4,
			1, 1, 1, 1, 1, 1, 1, 0 },
		{ TRUE_ALL, TRUE_ALL, WLAN_PHY_CCK, 5500, /* 5.5 Mb */
			4900, 0x19, 0x04, 11,
			2, 2, 2, 2, 2, 2, 2, 0 },
		{ TRUE_ALL, TRUE_ALL, WLAN_PHY_CCK, 11000, /* 11 Mb */
			8100, 0x18, 0x04, 22,
			3, 3, 2, 3, 3, 3, 3, 0 },
		{ FALSE, FALSE, WLAN_PHY_OFDM, 6000, /* 6 Mb */
			5400, 0x0b, 0x00, 12,
			4, 2, 1, 4, 4, 4, 4, 0 },
		{ FALSE, FALSE, WLAN_PHY_OFDM, 9000, /* 9 Mb */
			7800, 0x0f, 0x00, 18,
			4, 3, 1, 5, 5, 5, 5, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 12000, /* 12 Mb */
			10100, 0x0a, 0x00, 24,
			6, 4, 1, 6, 6, 6, 6, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 18000, /* 18 Mb */
			14100,  0x0e, 0x00, 36,
			6, 6, 2, 7, 7, 7, 7, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 24000, /* 24 Mb */
			17700, 0x09, 0x00, 48,
			8, 10, 3, 8, 8, 8, 8, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 36000, /* 36 Mb */
			23700, 0x0d, 0x00, 72,
			8, 14, 3, 9, 9, 9, 9, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 48000, /* 48 Mb */
			27400, 0x08, 0x00, 96,
			8, 20, 3, 10, 10, 10, 10, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 54000, /* 54 Mb */
			30900, 0x0c, 0x00, 108,
			8, 23, 3, 11, 11, 11, 11, 0 },
		{ FALSE, FALSE, WLAN_PHY_HT_20_SS, 6500, /* 6.5 Mb */
			6400, 0x80, 0x00, 0,
			4, 2, 3, 12, 28, 12, 28, 3216 },
		{ TRUE_20, TRUE_20, WLAN_PHY_HT_20_SS, 13000, /* 13 Mb */
			12700, 0x81, 0x00, 1,
			6, 4, 3, 13, 29, 13, 29, 6434 },
		{ TRUE_20, TRUE_20, WLAN_PHY_HT_20_SS, 19500, /* 19.5 Mb */
			18800, 0x82, 0x00, 2,
			6, 6, 3, 14, 30, 14, 30, 9650 },
		{ TRUE_20, TRUE_20, WLAN_PHY_HT_20_SS, 26000, /* 26 Mb */
			25000, 0x83, 0x00, 3,
			8, 10, 3, 15, 31, 15, 31, 12868 },
		{ TRUE_20, TRUE_20, WLAN_PHY_HT_20_SS, 39000, /* 39 Mb */
			36700, 0x84, 0x00, 4,
			8, 14, 3, 16, 32, 16, 32, 19304 },
		{ FALSE, TRUE_20, WLAN_PHY_HT_20_SS, 52000, /* 52 Mb */
			48100, 0x85, 0x00, 5,
			8, 20, 3, 17, 33, 17, 33, 25740 },
		{ FALSE,  TRUE_20, WLAN_PHY_HT_20_SS, 58500, /* 58.5 Mb */
			53500, 0x86, 0x00, 6,
			8, 23, 3, 18, 34, 18, 34, 28956 },
		{ FALSE, TRUE_20, WLAN_PHY_HT_20_SS, 65000, /* 65 Mb */
			59000, 0x87, 0x00, 7,
			8, 25, 3, 19, 35, 19, 36, 32180 },
		{ FALSE, FALSE, WLAN_PHY_HT_20_DS, 13000, /* 13 Mb */
			12700, 0x88, 0x00, 8,
			4, 2, 3, 20, 37, 20, 37, 6430 },
		{ FALSE, FALSE, WLAN_PHY_HT_20_DS, 26000, /* 26 Mb */
			24800, 0x89, 0x00, 9,
			6, 4, 3, 21, 38, 21, 38, 12860 },
		{ FALSE, FALSE, WLAN_PHY_HT_20_DS, 39000, /* 39 Mb */
			36600, 0x8a, 0x00, 10,
			6, 6, 3, 22, 39, 22, 39, 19300 },
		{ TRUE_20, FALSE, WLAN_PHY_HT_20_DS, 52000, /* 52 Mb */
			48100, 0x8b, 0x00, 11,
			8, 10, 3, 23, 40, 23, 40, 25736 },
		{ TRUE_20, FALSE, WLAN_PHY_HT_20_DS, 78000, /* 78 Mb */
			69500, 0x8c, 0x00, 12,
			8, 14, 3, 24, 41, 24, 41, 38600 },
		{ TRUE_20, FALSE, WLAN_PHY_HT_20_DS, 104000, /* 104 Mb */
			89500, 0x8d, 0x00, 13,
			8, 20, 3, 25, 42, 25, 42, 51472 },
		{ TRUE_20, FALSE, WLAN_PHY_HT_20_DS, 117000, /* 117 Mb */
			98900, 0x8e, 0x00, 14,
			8, 23, 3, 26, 43, 26, 44, 57890 },
		{ TRUE_20, FALSE, WLAN_PHY_HT_20_DS, 130000, /* 130 Mb */
			108300, 0x8f, 0x00, 15,
			8, 25, 3, 27, 44, 27, 45, 64320 },
		{ TRUE_40, TRUE_40, WLAN_PHY_HT_40_SS, 13500, /* 13.5 Mb */
			13200, 0x80, 0x00, 0,
			8, 2, 3, 12, 28, 28, 28, 6684 },
		{ TRUE_40, TRUE_40, WLAN_PHY_HT_40_SS, 27500, /* 27.0 Mb */
			25900, 0x81, 0x00, 1,
			8, 4, 3, 13, 29, 29, 29, 13368 },
		{ TRUE_40, TRUE_40, WLAN_PHY_HT_40_SS, 40500, /* 40.5 Mb */
			38600, 0x82, 0x00, 2,
			8, 6, 3, 14, 30, 30, 30, 20052 },
		{ TRUE_40, TRUE_40, WLAN_PHY_HT_40_SS, 54000, /* 54 Mb */
			49800, 0x83, 0x00, 3,
			8, 10, 3, 15, 31, 31, 31, 26738 },
		{ TRUE_40, TRUE_40, WLAN_PHY_HT_40_SS, 81500, /* 81 Mb */
			72200, 0x84, 0x00, 4,
			8, 14, 3, 16, 32, 32, 32, 40104 },
		{ FALSE, TRUE_40, WLAN_PHY_HT_40_SS, 108000, /* 108 Mb */
			92900, 0x85, 0x00, 5,
			8, 20, 3, 17, 33, 33, 33, 53476 },
		{ FALSE,  TRUE_40, WLAN_PHY_HT_40_SS, 121500, /* 121.5 Mb */
			102700, 0x86, 0x00, 6,
			8, 23, 3, 18, 34, 34, 34, 60156 },
		{ FALSE, TRUE_40, WLAN_PHY_HT_40_SS, 135000, /* 135 Mb */
			112000, 0x87, 0x00, 7,
			8, 23, 3, 19, 35, 36, 36, 66840 },
		{ FALSE, TRUE_40, WLAN_PHY_HT_40_SS_HGI, 150000, /* 150 Mb */
			122000, 0x87, 0x00, 7,
			8, 25, 3, 19, 35, 36, 36, 74200 },
		{ FALSE, FALSE, WLAN_PHY_HT_40_DS, 27000, /* 27 Mb */
			25800, 0x88, 0x00, 8,
			8, 2, 3, 20, 37, 37, 37, 13360 },
		{ FALSE, FALSE, WLAN_PHY_HT_40_DS, 54000, /* 54 Mb */
			49800, 0x89, 0x00, 9,
			8, 4, 3, 21, 38, 38, 38, 26720 },
		{ FALSE, FALSE, WLAN_PHY_HT_40_DS, 81000, /* 81 Mb */
			71900, 0x8a, 0x00, 10,
			8, 6, 3, 22, 39, 39, 39, 40080 },
		{ TRUE_40, FALSE, WLAN_PHY_HT_40_DS, 108000, /* 108 Mb */
			92500, 0x8b, 0x00, 11,
			8, 10, 3, 23, 40, 40, 40, 53440 },
		{ TRUE_40, FALSE, WLAN_PHY_HT_40_DS, 162000, /* 162 Mb */
			130300, 0x8c, 0x00, 12,
			8, 14, 3, 24, 41, 41, 41, 80160 },
		{ TRUE_40, FALSE, WLAN_PHY_HT_40_DS, 216000, /* 216 Mb */
			162800, 0x8d, 0x00, 13,
			8, 20, 3, 25, 42, 42, 42, 106880 },
		{ TRUE_40, FALSE, WLAN_PHY_HT_40_DS, 243000, /* 243 Mb */
			178200, 0x8e, 0x00, 14,
			8, 23, 3, 26, 43, 43, 43, 120240 },
		{ TRUE_40, FALSE, WLAN_PHY_HT_40_DS, 270000, /* 270 Mb */
			192100, 0x8f, 0x00, 15,
			8, 23, 3, 27, 44, 45, 45, 133600 },
		{ TRUE_40, FALSE, WLAN_PHY_HT_40_DS_HGI, 300000, /* 300 Mb */
			207000, 0x8f, 0x00, 15,
			8, 25, 3, 27, 44, 45, 45, 148400 },
		},
	50,  /* probe interval */
	50,  /* rssi reduce interval */
	WLAN_RC_HT_FLAG,  /* Phy rates allowed initially */
};

static struct ath_rate_table ar5416_11a_ratetable = {
	8,
	{
		{ TRUE, TRUE, WLAN_PHY_OFDM, 6000, /* 6 Mb */
			5400, 0x0b, 0x00, (0x80|12),
			0, 2, 1, 0, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 9000, /* 9 Mb */
			7800, 0x0f, 0x00, 18,
			0, 3, 1, 1, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 12000, /* 12 Mb */
			10000, 0x0a, 0x00, (0x80|24),
			2, 4, 2, 2, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 18000, /* 18 Mb */
			13900, 0x0e, 0x00, 36,
			2, 6, 2, 3, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 24000, /* 24 Mb */
			17300, 0x09, 0x00, (0x80|48),
			4, 10, 3, 4, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 36000, /* 36 Mb */
			23000, 0x0d, 0x00, 72,
			4, 14, 3, 5, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 48000, /* 48 Mb */
			27400, 0x08, 0x00, 96,
			4, 19, 3, 6, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 54000, /* 54 Mb */
			29300, 0x0c, 0x00, 108,
			4, 23, 3, 7, 0 },
	},
	50,  /* probe interval */
	50,  /* rssi reduce interval */
	0,   /* Phy rates allowed initially */
};

static struct ath_rate_table ar5416_11g_ratetable = {
	12,
	{
		{ TRUE, TRUE, WLAN_PHY_CCK, 1000, /* 1 Mb */
			900, 0x1b, 0x00, 2,
			0, 0, 1, 0, 0 },
		{ TRUE, TRUE, WLAN_PHY_CCK, 2000, /* 2 Mb */
			1900, 0x1a, 0x04, 4,
			1, 1, 1, 1, 0 },
		{ TRUE, TRUE, WLAN_PHY_CCK, 5500, /* 5.5 Mb */
			4900, 0x19, 0x04, 11,
			2, 2, 2, 2, 0 },
		{ TRUE, TRUE, WLAN_PHY_CCK, 11000, /* 11 Mb */
			8100, 0x18, 0x04, 22,
			3, 3, 2, 3, 0 },
		{ FALSE, FALSE, WLAN_PHY_OFDM, 6000, /* 6 Mb */
			5400, 0x0b, 0x00, 12,
			4, 2, 1, 4, 0 },
		{ FALSE, FALSE, WLAN_PHY_OFDM, 9000, /* 9 Mb */
			7800, 0x0f, 0x00, 18,
			4, 3, 1, 5, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 12000, /* 12 Mb */
			10000, 0x0a, 0x00, 24,
			6, 4, 1, 6, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 18000, /* 18 Mb */
			13900, 0x0e, 0x00, 36,
			6, 6, 2, 7, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 24000, /* 24 Mb */
			17300, 0x09, 0x00, 48,
			8, 10, 3, 8, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 36000, /* 36 Mb */
			23000, 0x0d, 0x00, 72,
			8, 14, 3, 9, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 48000, /* 48 Mb */
			27400, 0x08, 0x00, 96,
			8, 19, 3, 10, 0 },
		{ TRUE, TRUE, WLAN_PHY_OFDM, 54000, /* 54 Mb */
			29300, 0x0c, 0x00, 108,
			8, 23, 3, 11, 0 },
	},
	50,  /* probe interval */
	50,  /* rssi reduce interval */
	0,   /* Phy rates allowed initially */
};

static struct ath_rate_table ar5416_11b_ratetable = {
	4,
	{
		{ TRUE, TRUE, WLAN_PHY_CCK, 1000, /* 1 Mb */
			900, 0x1b,  0x00, (0x80|2),
			0, 0, 1, 0, 0 },
		{ TRUE, TRUE, WLAN_PHY_CCK, 2000, /* 2 Mb */
			1800, 0x1a, 0x04, (0x80|4),
			1, 1, 1, 1, 0 },
		{ TRUE, TRUE, WLAN_PHY_CCK, 5500, /* 5.5 Mb */
			4300, 0x19, 0x04, (0x80|11),
			1, 2, 2, 2, 0 },
		{ TRUE, TRUE, WLAN_PHY_CCK, 11000, /* 11 Mb */
			7100, 0x18, 0x04, (0x80|22),
			1, 4, 100, 3, 0 },
	},
	100, /* probe interval */
	100, /* rssi reduce interval */
	0,   /* Phy rates allowed initially */
};

/*
 * Return the median of three numbers
 */
static inline int8_t median(int8_t a, int8_t b, int8_t c)
{
	if (a >= b) {
		if (b >= c)
			return b;
		else if (a > c)
			return c;
		else
			return a;
	} else {
		if (a >= c)
			return a;
		else if (b >= c)
			return c;
		else
			return b;
	}
}

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static void ath_rc_sort_validrates(struct ath_rate_table *rate_table,
438
				   struct ath_rate_node *ath_rc_priv)
439 440 441
{
	u8 i, j, idx, idx_next;

442
	for (i = ath_rc_priv->max_valid_rate - 1; i > 0; i--) {
443
		for (j = 0; j <= i-1; j++) {
444 445
			idx = ath_rc_priv->valid_rate_index[j];
			idx_next = ath_rc_priv->valid_rate_index[j+1];
446 447 448

			if (rate_table->info[idx].ratekbps >
				rate_table->info[idx_next].ratekbps) {
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				ath_rc_priv->valid_rate_index[j] = idx_next;
				ath_rc_priv->valid_rate_index[j+1] = idx;
451 452 453 454 455 456 457
			}
		}
	}
}

/* Access functions for valid_txrate_mask */

458
static void ath_rc_init_valid_txmask(struct ath_rate_node *ath_rc_priv)
459 460 461
{
	u8 i;

462 463
	for (i = 0; i < ath_rc_priv->rate_table_size; i++)
		ath_rc_priv->valid_rate_index[i] = FALSE;
464 465
}

466
static inline void ath_rc_set_valid_txmask(struct ath_rate_node *ath_rc_priv,
467 468
					   u8 index, int valid_tx_rate)
{
469 470
	ASSERT(index <= ath_rc_priv->rate_table_size);
	ath_rc_priv->valid_rate_index[index] = valid_tx_rate ? TRUE : FALSE;
471 472
}

473
static inline int ath_rc_isvalid_txmask(struct ath_rate_node *ath_rc_priv,
474 475
					u8 index)
{
476 477
	ASSERT(index <= ath_rc_priv->rate_table_size);
	return ath_rc_priv->valid_rate_index[index];
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}

/* Iterators for valid_txrate_mask */
static inline int
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ath_rc_get_nextvalid_txrate(struct ath_rate_table *rate_table,
483
			    struct ath_rate_node *ath_rc_priv,
484 485 486 487 488
			    u8 cur_valid_txrate,
			    u8 *next_idx)
{
	u8 i;

489 490 491
	for (i = 0; i < ath_rc_priv->max_valid_rate - 1; i++) {
		if (ath_rc_priv->valid_rate_index[i] == cur_valid_txrate) {
			*next_idx = ath_rc_priv->valid_rate_index[i+1];
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			return TRUE;
		}
	}

	/* No more valid rates */
	*next_idx = 0;
	return FALSE;
}

/* Return true only for single stream */

static int ath_rc_valid_phyrate(u32 phy, u32 capflag, int ignore_cw)
{
	if (WLAN_RC_PHY_HT(phy) & !(capflag & WLAN_RC_HT_FLAG))
		return FALSE;
	if (WLAN_RC_PHY_DS(phy) && !(capflag & WLAN_RC_DS_FLAG))
		return FALSE;
	if (WLAN_RC_PHY_SGI(phy) && !(capflag & WLAN_RC_SGI_FLAG))
		return FALSE;
	if (!ignore_cw && WLAN_RC_PHY_HT(phy))
		if (WLAN_RC_PHY_40(phy) && !(capflag & WLAN_RC_40_FLAG))
			return FALSE;
		if (!WLAN_RC_PHY_40(phy) && (capflag & WLAN_RC_40_FLAG))
			return FALSE;
	return TRUE;
}

static inline int
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ath_rc_get_nextlowervalid_txrate(struct ath_rate_table *rate_table,
521
				 struct ath_rate_node *ath_rc_priv,
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				 u8 cur_valid_txrate, u8 *next_idx)
{
	int8_t i;

526 527 528
	for (i = 1; i < ath_rc_priv->max_valid_rate ; i++) {
		if (ath_rc_priv->valid_rate_index[i] == cur_valid_txrate) {
			*next_idx = ath_rc_priv->valid_rate_index[i-1];
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			return TRUE;
		}
	}
	return FALSE;
}

/*
 * Initialize the Valid Rate Index from valid entries in Rate Table
 */
static u8
ath_rc_sib_init_validrates(struct ath_rate_node *ath_rc_priv,
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			   struct ath_rate_table *rate_table,
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			   u32 capflag)
{
	u8 i, hi = 0;
	u32 valid;

	for (i = 0; i < rate_table->rate_cnt; i++) {
		valid = (ath_rc_priv->single_stream ?
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			 rate_table->info[i].valid_single_stream :
			 rate_table->info[i].valid);
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		if (valid == TRUE) {
			u32 phy = rate_table->info[i].phy;
			u8 valid_rate_count = 0;

			if (!ath_rc_valid_phyrate(phy, capflag, FALSE))
				continue;

557
			valid_rate_count = ath_rc_priv->valid_phy_ratecnt[phy];
558

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			ath_rc_priv->valid_phy_rateidx[phy][valid_rate_count] = i;
			ath_rc_priv->valid_phy_ratecnt[phy] += 1;
			ath_rc_set_valid_txmask(ath_rc_priv, i, TRUE);
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			hi = A_MAX(hi, i);
		}
	}
	return hi;
}

/*
 * Initialize the Valid Rate Index from Rate Set
 */
static u8
ath_rc_sib_setvalid_rates(struct ath_rate_node *ath_rc_priv,
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			  struct ath_rate_table *rate_table,
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			  struct ath_rateset *rateset,
			  u32 capflag)
{
	/* XXX: Clean me up and make identation friendly */
	u8 i, j, hi = 0;

	/* Use intersection of working rates and valid rates */
	for (i = 0; i < rateset->rs_nrates; i++) {
		for (j = 0; j < rate_table->rate_cnt; j++) {
			u32 phy = rate_table->info[j].phy;
			u32 valid = (ath_rc_priv->single_stream ?
				rate_table->info[j].valid_single_stream :
				rate_table->info[j].valid);

			/* We allow a rate only if its valid and the
			 * capflag matches one of the validity
			 * (TRUE/TRUE_20/TRUE_40) flags */

			/* XXX: catch the negative of this branch
			 * first and then continue */
			if (((rateset->rs_rates[i] & 0x7F) ==
				(rate_table->info[j].dot11rate & 0x7F)) &&
				((valid & WLAN_RC_CAP_MODE(capflag)) ==
				WLAN_RC_CAP_MODE(capflag)) &&
				!WLAN_RC_PHY_HT(phy)) {

				u8 valid_rate_count = 0;

				if (!ath_rc_valid_phyrate(phy, capflag, FALSE))
					continue;

				valid_rate_count =
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					ath_rc_priv->valid_phy_ratecnt[phy];
607

608
				ath_rc_priv->valid_phy_rateidx[phy]
609
					[valid_rate_count] = j;
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				ath_rc_priv->valid_phy_ratecnt[phy] += 1;
				ath_rc_set_valid_txmask(ath_rc_priv, j, TRUE);
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				hi = A_MAX(hi, j);
			}
		}
	}
	return hi;
}

static u8
ath_rc_sib_setvalid_htrates(struct ath_rate_node *ath_rc_priv,
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			    struct ath_rate_table *rate_table,
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			    u8 *mcs_set, u32 capflag)
{
	u8 i, j, hi = 0;

	/* Use intersection of working rates and valid rates */
	for (i = 0; i <  ((struct ath_rateset *)mcs_set)->rs_nrates; i++) {
		for (j = 0; j < rate_table->rate_cnt; j++) {
			u32 phy = rate_table->info[j].phy;
			u32 valid = (ath_rc_priv->single_stream ?
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				     rate_table->info[j].valid_single_stream :
				     rate_table->info[j].valid);
633 634

			if (((((struct ath_rateset *)
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			       mcs_set)->rs_rates[i] & 0x7F) !=
			     (rate_table->info[j].dot11rate & 0x7F)) ||
			    !WLAN_RC_PHY_HT(phy) ||
			    !WLAN_RC_PHY_HT_VALID(valid, capflag))
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				continue;

			if (!ath_rc_valid_phyrate(phy, capflag, FALSE))
				continue;

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			ath_rc_priv->valid_phy_rateidx[phy]
				[ath_rc_priv->valid_phy_ratecnt[phy]] = j;
			ath_rc_priv->valid_phy_ratecnt[phy] += 1;
			ath_rc_set_valid_txmask(ath_rc_priv, j, TRUE);
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			hi = A_MAX(hi, j);
		}
	}
	return hi;
}

u8 ath_rate_findrateix(struct ath_softc *sc,
655
		       u8 dot11rate)
656
{
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	struct ath_rate_table *ratetable;
658 659
	int i;

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	ratetable = sc->hw_rate_table[sc->sc_curmode];
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	if (WARN_ON(!ratetable))
		return 0;

	for (i = 0; i < ratetable->rate_cnt; i++) {
		if ((ratetable->info[i].dot11rate & 0x7f) == (dot11rate & 0x7f))
			return i;
	}

	return 0;
}

static u8 ath_rc_ratefind_ht(struct ath_softc *sc,
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			     struct ath_rate_node *ath_rc_priv,
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			     struct ath_rate_table *rate_table,
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			     int probe_allowed, int *is_probing,
			     int is_retry)
678 679 680 681 682 683 684
{
	u32 dt, best_thruput, this_thruput, now_msec;
	u8 rate, next_rate, best_rate, maxindex, minindex;
	int8_t  rssi_last, rssi_reduce = 0, index = 0;

	*is_probing = FALSE;

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	rssi_last = median(ath_rc_priv->rssi_last,
			   ath_rc_priv->rssi_last_prev,
			   ath_rc_priv->rssi_last_prev2);
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	/*
	 * Age (reduce) last ack rssi based on how old it is.
	 * The bizarre numbers are so the delta is 160msec,
	 * meaning we divide by 16.
	 *   0msec   <= dt <= 25msec:   don't derate
	 *   25msec  <= dt <= 185msec:  derate linearly from 0 to 10dB
	 *   185msec <= dt:             derate by 10dB
	 */

	now_msec = jiffies_to_msecs(jiffies);
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	dt = now_msec - ath_rc_priv->rssi_time;
700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717

	if (dt >= 185)
		rssi_reduce = 10;
	else if (dt >= 25)
		rssi_reduce = (u8)((dt - 25) >> 4);

	/* Now reduce rssi_last by rssi_reduce */
	if (rssi_last < rssi_reduce)
		rssi_last = 0;
	else
		rssi_last -= rssi_reduce;

	/*
	 * Now look up the rate in the rssi table and return it.
	 * If no rates match then we return 0 (lowest rate)
	 */

	best_thruput = 0;
718
	maxindex = ath_rc_priv->max_valid_rate-1;
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	minindex = 0;
	best_rate = minindex;

	/*
	 * Try the higher rate first. It will reduce memory moving time
	 * if we have very good channel characteristics.
	 */
	for (index = maxindex; index >= minindex ; index--) {
		u8 per_thres;

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		rate = ath_rc_priv->valid_rate_index[index];
		if (rate > ath_rc_priv->rate_max_phy)
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			continue;

		/*
		 * For TCP the average collision rate is around 11%,
		 * so we ignore PERs less than this.  This is to
		 * prevent the rate we are currently using (whose
		 * PER might be in the 10-15 range because of TCP
		 * collisions) looking worse than the next lower
		 * rate whose PER has decayed close to 0.  If we
		 * used to next lower rate, its PER would grow to
		 * 10-15 and we would be worse off then staying
		 * at the current rate.
		 */
745
		per_thres = ath_rc_priv->state[rate].per;
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		if (per_thres < 12)
			per_thres = 12;

		this_thruput = rate_table->info[rate].user_ratekbps *
			(100 - per_thres);

		if (best_thruput <= this_thruput) {
			best_thruput = this_thruput;
			best_rate    = rate;
		}
	}

	rate = best_rate;

	/* if we are retrying for more than half the number
	 * of max retries, use the min rate for the next retry
	 */
	if (is_retry)
764
		rate = ath_rc_priv->valid_rate_index[minindex];
765

766
	ath_rc_priv->rssi_last_lookup = rssi_last;
767 768 769 770 771 772

	/*
	 * Must check the actual rate (ratekbps) to account for
	 * non-monoticity of 11g's rate table
	 */

773 774
	if (rate >= ath_rc_priv->rate_max_phy && probe_allowed) {
		rate = ath_rc_priv->rate_max_phy;
775 776 777 778

		/* Probe the next allowed phy state */
		/* FIXME:XXXX Check to make sure ratMax is checked properly */
		if (ath_rc_get_nextvalid_txrate(rate_table,
779 780
						ath_rc_priv, rate, &next_rate) &&
		    (now_msec - ath_rc_priv->probe_time >
781
		     rate_table->probe_interval) &&
782
		    (ath_rc_priv->hw_maxretry_pktcnt >= 1)) {
783
			rate = next_rate;
784 785 786
			ath_rc_priv->probe_rate = rate;
			ath_rc_priv->probe_time = now_msec;
			ath_rc_priv->hw_maxretry_pktcnt = 0;
787 788 789 790 791 792 793 794 795 796
			*is_probing = TRUE;
		}
	}

	/*
	 * Make sure rate is not higher than the allowed maximum.
	 * We should also enforce the min, but I suspect the min is
	 * normally 1 rather than 0 because of the rate 9 vs 6 issue
	 * in the old code.
	 */
797 798
	if (rate > (ath_rc_priv->rate_table_size - 1))
		rate = ath_rc_priv->rate_table_size - 1;
799 800

	ASSERT((rate_table->info[rate].valid && !ath_rc_priv->single_stream) ||
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	       (rate_table->info[rate].valid_single_stream &&
		ath_rc_priv->single_stream));
803 804 805 806

	return rate;
}

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static void ath_rc_rate_set_series(struct ath_rate_table *rate_table ,
808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826
				   struct ath_rc_series *series,
				   u8 tries,
				   u8 rix,
				   int rtsctsenable)
{
	series->tries = tries;
	series->flags = (rtsctsenable ? ATH_RC_RTSCTS_FLAG : 0) |
		(WLAN_RC_PHY_DS(rate_table->info[rix].phy) ?
		 ATH_RC_DS_FLAG : 0) |
		(WLAN_RC_PHY_40(rate_table->info[rix].phy) ?
		 ATH_RC_CW40_FLAG : 0) |
		(WLAN_RC_PHY_SGI(rate_table->info[rix].phy) ?
		 ATH_RC_SGI_FLAG : 0);

	series->rix = rate_table->info[rix].base_index;
	series->max_4ms_framelen = rate_table->info[rix].max_4ms_framelen;
}

static u8 ath_rc_rate_getidx(struct ath_softc *sc,
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			     struct ath_rate_node *ath_rc_priv,
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			     struct ath_rate_table *rate_table,
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			     u8 rix, u16 stepdown,
			     u16 min_rate)
831 832 833 834 835 836 837
{
	u32 j;
	u8 nextindex;

	if (min_rate) {
		for (j = RATE_TABLE_SIZE; j > 0; j--) {
			if (ath_rc_get_nextlowervalid_txrate(rate_table,
838
						ath_rc_priv, rix, &nextindex))
839 840 841 842 843 844 845
				rix = nextindex;
			else
				break;
		}
	} else {
		for (j = stepdown; j > 0; j--) {
			if (ath_rc_get_nextlowervalid_txrate(rate_table,
846
						ath_rc_priv, rix, &nextindex))
847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863
				rix = nextindex;
			else
				break;
		}
	}
	return rix;
}

static void ath_rc_ratefind(struct ath_softc *sc,
			    struct ath_rate_node *ath_rc_priv,
			    int num_tries, int num_rates, unsigned int rcflag,
			    struct ath_rc_series series[], int *is_probe,
			    int is_retry)
{
	u8 try_per_rate = 0, i = 0, rix, nrix;
	struct ath_rate_table *rate_table;

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	rate_table = sc->hw_rate_table[sc->sc_curmode];
865
	rix = ath_rc_ratefind_ht(sc, ath_rc_priv, rate_table,
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				 (rcflag & ATH_RC_PROBE_ALLOWED) ? 1 : 0,
				 is_probe, is_retry);
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
	nrix = rix;

	if ((rcflag & ATH_RC_PROBE_ALLOWED) && (*is_probe)) {
		/* set one try for probe rates. For the
		 * probes don't enable rts */
		ath_rc_rate_set_series(rate_table,
			&series[i++], 1, nrix, FALSE);

		try_per_rate = (num_tries/num_rates);
		/* Get the next tried/allowed rate. No RTS for the next series
		 * after the probe rate
		 */
		nrix = ath_rc_rate_getidx(sc,
			ath_rc_priv, rate_table, nrix, 1, FALSE);
		ath_rc_rate_set_series(rate_table,
			&series[i++], try_per_rate, nrix, 0);
	} else {
		try_per_rate = (num_tries/num_rates);
		/* Set the choosen rate. No RTS for first series entry. */
		ath_rc_rate_set_series(rate_table,
			&series[i++], try_per_rate, nrix, FALSE);
	}

	/* Fill in the other rates for multirate retry */
	for ( ; i < num_rates; i++) {
		u8 try_num;
		u8 min_rate;

		try_num = ((i + 1) == num_rates) ?
			num_tries - (try_per_rate * i) : try_per_rate ;
		min_rate = (((i + 1) == num_rates) &&
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			    (rcflag & ATH_RC_MINRATE_LASTRATE)) ? 1 : 0;
900 901

		nrix = ath_rc_rate_getidx(sc, ath_rc_priv,
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					  rate_table, nrix, 1, min_rate);
903 904
		/* All other rates in the series have RTS enabled */
		ath_rc_rate_set_series(rate_table,
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				       &series[i], try_num, nrix, TRUE);
906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922
	}

	/*
	 * NB:Change rate series to enable aggregation when operating
	 * at lower MCS rates. When first rate in series is MCS2
	 * in HT40 @ 2.4GHz, series should look like:
	 *
	 * {MCS2, MCS1, MCS0, MCS0}.
	 *
	 * When first rate in series is MCS3 in HT20 @ 2.4GHz, series should
	 * look like:
	 *
	 * {MCS3, MCS2, MCS1, MCS1}
	 *
	 * So, set fourth rate in series to be same as third one for
	 * above conditions.
	 */
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	if ((sc->sc_curmode == ATH9K_MODE_11NG_HT20) ||
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	    (sc->sc_curmode == ATH9K_MODE_11NG_HT40PLUS) ||
	    (sc->sc_curmode == ATH9K_MODE_11NG_HT40MINUS)) {
926 927 928 929
		u8  dot11rate = rate_table->info[rix].dot11rate;
		u8 phy = rate_table->info[rix].phy;
		if (i == 4 &&
		    ((dot11rate == 2 && phy == WLAN_RC_PHY_HT_40_SS) ||
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		     (dot11rate == 3 && phy == WLAN_RC_PHY_HT_20_SS))) {
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			series[3].rix = series[2].rix;
			series[3].flags = series[2].flags;
			series[3].max_4ms_framelen = series[2].max_4ms_framelen;
		}
	}
}

/*
 * Return the Tx rate series.
 */
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static void ath_rate_findrate(struct ath_softc *sc,
			      struct ath_rate_node *ath_rc_priv,
			      int num_tries,
			      int num_rates,
			      unsigned int rcflag,
			      struct ath_rc_series series[],
			      int *is_probe,
			      int is_retry)
949 950 951 952
{
	if (!num_rates || !num_tries)
		return;

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	ath_rc_ratefind(sc, ath_rc_priv, num_tries, num_rates,
			rcflag, series, is_probe, is_retry);
955 956 957 958 959 960 961 962 963 964
}

static void ath_rc_update_ht(struct ath_softc *sc,
			     struct ath_rate_node *ath_rc_priv,
			     struct ath_tx_info_priv *info_priv,
			     int tx_rate, int xretries, int retries)
{
	u32 now_msec = jiffies_to_msecs(jiffies);
	int state_change = FALSE, rate, count;
	u8 last_per;
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	struct ath_rate_table *rate_table = sc->hw_rate_table[sc->sc_curmode];
966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992
	static u32 nretry_to_per_lookup[10] = {
		100 * 0 / 1,
		100 * 1 / 4,
		100 * 1 / 2,
		100 * 3 / 4,
		100 * 4 / 5,
		100 * 5 / 6,
		100 * 6 / 7,
		100 * 7 / 8,
		100 * 8 / 9,
		100 * 9 / 10
	};

	if (!ath_rc_priv)
		return;

	ASSERT(tx_rate >= 0);
	if (tx_rate < 0)
		return;

	/* To compensate for some imbalance between ctrl and ext. channel */

	if (WLAN_RC_PHY_40(rate_table->info[tx_rate].phy))
		info_priv->tx.ts_rssi =
			info_priv->tx.ts_rssi < 3 ? 0 :
			info_priv->tx.ts_rssi - 3;

993
	last_per = ath_rc_priv->state[tx_rate].per;
994 995 996 997

	if (xretries) {
		/* Update the PER. */
		if (xretries == 1) {
998 999 1000
			ath_rc_priv->state[tx_rate].per += 30;
			if (ath_rc_priv->state[tx_rate].per > 100)
				ath_rc_priv->state[tx_rate].per = 100;
1001 1002
		} else {
			/* xretries == 2 */
1003
			count = ARRAY_SIZE(nretry_to_per_lookup);
1004 1005 1006
			if (retries >= count)
				retries = count - 1;
			/* new_PER = 7/8*old_PER + 1/8*(currentPER) */
1007 1008 1009
			ath_rc_priv->state[tx_rate].per =
				(u8)(ath_rc_priv->state[tx_rate].per -
				     (ath_rc_priv->state[tx_rate].per >> 3) +
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				     ((100) >> 3));
1011 1012 1013 1014
		}

		/* xretries == 1 or 2 */

1015 1016
		if (ath_rc_priv->probe_rate == tx_rate)
			ath_rc_priv->probe_rate = 0;
1017 1018 1019 1020

	} else {	/* xretries == 0 */
		/* Update the PER. */
		/* Make sure it doesn't index out of array's bounds. */
1021
		count = ARRAY_SIZE(nretry_to_per_lookup);
1022 1023 1024
		if (retries >= count)
			retries = count - 1;
		if (info_priv->n_bad_frames) {
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			/* new_PER = 7/8*old_PER + 1/8*(currentPER)
1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037
			 * Assuming that n_frames is not 0.  The current PER
			 * from the retries is 100 * retries / (retries+1),
			 * since the first retries attempts failed, and the
			 * next one worked.  For the one that worked,
			 * n_bad_frames subframes out of n_frames wored,
			 * so the PER for that part is
			 * 100 * n_bad_frames / n_frames, and it contributes
			 * 100 * n_bad_frames / (n_frames * (retries+1)) to
			 * the above PER.  The expression below is a
			 * simplified version of the sum of these two terms.
			 */
			if (info_priv->n_frames > 0)
1038
				ath_rc_priv->state[tx_rate].per
1039
				      = (u8)
1040 1041
					(ath_rc_priv->state[tx_rate].per -
					(ath_rc_priv->state[tx_rate].per >> 3) +
1042 1043 1044 1045 1046 1047 1048
					((100*(retries*info_priv->n_frames +
					info_priv->n_bad_frames) /
					(info_priv->n_frames *
						(retries+1))) >> 3));
		} else {
			/* new_PER = 7/8*old_PER + 1/8*(currentPER) */

1049 1050 1051
			ath_rc_priv->state[tx_rate].per = (u8)
				(ath_rc_priv->state[tx_rate].per -
				(ath_rc_priv->state[tx_rate].per >> 3) +
1052 1053 1054
				(nretry_to_per_lookup[retries] >> 3));
		}

1055 1056 1057 1058
		ath_rc_priv->rssi_last_prev2 = ath_rc_priv->rssi_last_prev;
		ath_rc_priv->rssi_last_prev  = ath_rc_priv->rssi_last;
		ath_rc_priv->rssi_last = info_priv->tx.ts_rssi;
		ath_rc_priv->rssi_time = now_msec;
1059 1060 1061 1062 1063 1064

		/*
		 * If we got at most one retry then increase the max rate if
		 * this was a probe.  Otherwise, ignore the probe.
		 */

1065
		if (ath_rc_priv->probe_rate && ath_rc_priv->probe_rate == tx_rate) {
1066 1067 1068 1069 1070 1071 1072 1073 1074
			if (retries > 0 || 2 * info_priv->n_bad_frames >
				info_priv->n_frames) {
				/*
				 * Since we probed with just a single attempt,
				 * any retries means the probe failed.  Also,
				 * if the attempt worked, but more than half
				 * the subframes were bad then also consider
				 * the probe a failure.
				 */
1075
				ath_rc_priv->probe_rate = 0;
1076 1077 1078
			} else {
				u8 probe_rate = 0;

1079 1080
				ath_rc_priv->rate_max_phy = ath_rc_priv->probe_rate;
				probe_rate = ath_rc_priv->probe_rate;
1081

1082 1083
				if (ath_rc_priv->state[probe_rate].per > 30)
					ath_rc_priv->state[probe_rate].per = 20;
1084

1085
				ath_rc_priv->probe_rate = 0;
1086 1087 1088 1089 1090 1091 1092

				/*
				 * Since this probe succeeded, we allow the next
				 * probe twice as soon.  This allows the maxRate
				 * to move up faster if the probes are
				 * succesful.
				 */
1093
				ath_rc_priv->probe_time = now_msec -
1094 1095 1096 1097 1098 1099 1100 1101 1102 1103
					rate_table->probe_interval / 2;
			}
		}

		if (retries > 0) {
			/*
			 * Don't update anything.  We don't know if
			 * this was because of collisions or poor signal.
			 *
			 * Later: if rssi_ack is close to
1104
			 * ath_rc_priv->state[txRate].rssi_thres and we see lots
1105
			 * of retries, then we could increase
1106
			 * ath_rc_priv->state[txRate].rssi_thres.
1107
			 */
1108
			ath_rc_priv->hw_maxretry_pktcnt = 0;
1109 1110 1111 1112 1113
		} else {
			/*
			 * It worked with no retries. First ignore bogus (small)
			 * rssi_ack values.
			 */
1114 1115 1116
			if (tx_rate == ath_rc_priv->rate_max_phy &&
			    ath_rc_priv->hw_maxretry_pktcnt < 255) {
				ath_rc_priv->hw_maxretry_pktcnt++;
1117 1118 1119 1120 1121
			}

			if (info_priv->tx.ts_rssi >=
				rate_table->info[tx_rate].rssi_ack_validmin) {
				/* Average the rssi */
1122 1123 1124 1125
				if (tx_rate != ath_rc_priv->rssi_sum_rate) {
					ath_rc_priv->rssi_sum_rate = tx_rate;
					ath_rc_priv->rssi_sum =
						ath_rc_priv->rssi_sum_cnt = 0;
1126 1127
				}

1128 1129
				ath_rc_priv->rssi_sum += info_priv->tx.ts_rssi;
				ath_rc_priv->rssi_sum_cnt++;
1130

1131
				if (ath_rc_priv->rssi_sum_cnt > 4) {
1132
					int32_t rssi_ackAvg =
1133
						(ath_rc_priv->rssi_sum + 2) / 4;
1134
					int8_t rssi_thres =
1135
						ath_rc_priv->state[tx_rate].
1136 1137 1138 1139 1140
						rssi_thres;
					int8_t rssi_ack_vmin =
						rate_table->info[tx_rate].
						rssi_ack_validmin;

1141 1142
					ath_rc_priv->rssi_sum =
						ath_rc_priv->rssi_sum_cnt = 0;
1143 1144 1145 1146

					/* Now reduce the current
					 * rssi threshold. */
					if ((rssi_ackAvg < rssi_thres + 2) &&
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					    (rssi_thres > rssi_ack_vmin)) {
1148
						ath_rc_priv->state[tx_rate].
1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163
							rssi_thres--;
					}

					state_change = TRUE;
				}
			}
		}
	}

	/* For all cases */

	/*
	 * If this rate looks bad (high PER) then stop using it for
	 * a while (except if we are probing).
	 */
1164
	if (ath_rc_priv->state[tx_rate].per >= 55 && tx_rate > 0 &&
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	    rate_table->info[tx_rate].ratekbps <=
1166 1167 1168
	    rate_table->info[ath_rc_priv->rate_max_phy].ratekbps) {
		ath_rc_get_nextlowervalid_txrate(rate_table, ath_rc_priv,
				 (u8) tx_rate, &ath_rc_priv->rate_max_phy);
1169 1170

		/* Don't probe for a little while. */
1171
		ath_rc_priv->probe_time = now_msec;
1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182
	}

	if (state_change) {
		/*
		 * Make sure the rates above this have higher rssi thresholds.
		 * (Note:  Monotonicity is kept within the OFDM rates and
		 *         within the CCK rates. However, no adjustment is
		 *         made to keep the rssi thresholds monotonically
		 *         increasing between the CCK and OFDM rates.)
		 */
		for (rate = tx_rate; rate <
1183
				ath_rc_priv->rate_table_size - 1; rate++) {
1184 1185 1186 1187
			if (rate_table->info[rate+1].phy !=
				rate_table->info[tx_rate].phy)
				break;

1188
			if (ath_rc_priv->state[rate].rssi_thres +
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			    rate_table->info[rate].rssi_ack_deltamin >
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			    ath_rc_priv->state[rate+1].rssi_thres) {
				ath_rc_priv->state[rate+1].rssi_thres =
					ath_rc_priv->state[rate].
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					rssi_thres +
1194
					rate_table->info[rate].
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					rssi_ack_deltamin;
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			}
		}

		/* Make sure the rates below this have lower rssi thresholds. */
		for (rate = tx_rate - 1; rate >= 0; rate--) {
			if (rate_table->info[rate].phy !=
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			    rate_table->info[tx_rate].phy)
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				break;

1205
			if (ath_rc_priv->state[rate].rssi_thres +
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			    rate_table->info[rate].rssi_ack_deltamin >
1207 1208
			    ath_rc_priv->state[rate+1].rssi_thres) {
				if (ath_rc_priv->state[rate+1].rssi_thres <
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				    rate_table->info[rate].
				    rssi_ack_deltamin)
1211
					ath_rc_priv->state[rate].rssi_thres = 0;
1212
				else {
1213 1214
					ath_rc_priv->state[rate].rssi_thres =
						ath_rc_priv->state[rate+1].
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						rssi_thres -
						rate_table->info[rate].
						rssi_ack_deltamin;
1218 1219
				}

1220
				if (ath_rc_priv->state[rate].rssi_thres <
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				    rate_table->info[rate].
				    rssi_ack_validmin) {
1223
					ath_rc_priv->state[rate].rssi_thres =
1224
						rate_table->info[rate].
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						rssi_ack_validmin;
1226 1227 1228 1229 1230 1231 1232
				}
			}
		}
	}

	/* Make sure the rates below this have lower PER */
	/* Monotonicity is kept only for rates below the current rate. */
1233
	if (ath_rc_priv->state[tx_rate].per < last_per) {
1234 1235
		for (rate = tx_rate - 1; rate >= 0; rate--) {
			if (rate_table->info[rate].phy !=
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			    rate_table->info[tx_rate].phy)
1237 1238
				break;

1239 1240 1241 1242
			if (ath_rc_priv->state[rate].per >
			    ath_rc_priv->state[rate+1].per) {
				ath_rc_priv->state[rate].per =
					ath_rc_priv->state[rate+1].per;
1243 1244 1245 1246 1247
			}
		}
	}

	/* Maintain monotonicity for rates above the current rate */
1248 1249 1250 1251
	for (rate = tx_rate; rate < ath_rc_priv->rate_table_size - 1; rate++) {
		if (ath_rc_priv->state[rate+1].per < ath_rc_priv->state[rate].per)
			ath_rc_priv->state[rate+1].per =
				ath_rc_priv->state[rate].per;
1252 1253 1254 1255
	}

	/* Every so often, we reduce the thresholds and
	 * PER (different for CCK and OFDM). */
1256
	if (now_msec - ath_rc_priv->rssi_down_time >=
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	    rate_table->rssi_reduce_interval) {
1258

1259 1260
		for (rate = 0; rate < ath_rc_priv->rate_table_size; rate++) {
			if (ath_rc_priv->state[rate].rssi_thres >
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			    rate_table->info[rate].rssi_ack_validmin)
1262
				ath_rc_priv->state[rate].rssi_thres -= 1;
1263
		}
1264
		ath_rc_priv->rssi_down_time = now_msec;
1265 1266 1267 1268
	}

	/* Every so often, we reduce the thresholds
	 * and PER (different for CCK and OFDM). */
1269
	if (now_msec - ath_rc_priv->per_down_time >=
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	    rate_table->rssi_reduce_interval) {
1271 1272 1273
		for (rate = 0; rate < ath_rc_priv->rate_table_size; rate++) {
			ath_rc_priv->state[rate].per =
				7 * ath_rc_priv->state[rate].per / 8;
1274 1275
		}

1276
		ath_rc_priv->per_down_time = now_msec;
1277 1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294
	}
}

/*
 * This routine is called in rate control callback tx_status() to give
 * the status of previous frames.
 */
static void ath_rc_update(struct ath_softc *sc,
			  struct ath_rate_node *ath_rc_priv,
			  struct ath_tx_info_priv *info_priv, int final_ts_idx,
			  int xretries, int long_retry)
{
	struct ath_rate_table *rate_table;
	struct ath_rc_series rcs[4];
	u8 flags;
	u32 series = 0, rix;

	memcpy(rcs, info_priv->rcs, 4 * sizeof(rcs[0]));
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	rate_table = sc->hw_rate_table[sc->sc_curmode];
1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309
	ASSERT(rcs[0].tries != 0);

	/*
	 * If the first rate is not the final index, there
	 * are intermediate rate failures to be processed.
	 */
	if (final_ts_idx != 0) {
		/* Process intermediate rates that failed.*/
		for (series = 0; series < final_ts_idx ; series++) {
			if (rcs[series].tries != 0) {
				flags = rcs[series].flags;
				/* If HT40 and we have switched mode from
				 * 40 to 20 => don't update */
				if ((flags & ATH_RC_CW40_FLAG) &&
1310
					(ath_rc_priv->rc_phy_mode !=
1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345
					(flags & ATH_RC_CW40_FLAG)))
					return;
				if ((flags & ATH_RC_CW40_FLAG) &&
					(flags & ATH_RC_SGI_FLAG))
					rix = rate_table->info[
						rcs[series].rix].ht_index;
				else if (flags & ATH_RC_SGI_FLAG)
					rix = rate_table->info[
						rcs[series].rix].sgi_index;
				else if (flags & ATH_RC_CW40_FLAG)
					rix = rate_table->info[
						rcs[series].rix].cw40index;
				else
					rix = rate_table->info[
						rcs[series].rix].base_index;
				ath_rc_update_ht(sc, ath_rc_priv,
						info_priv, rix,
						xretries ? 1 : 2,
						rcs[series].tries);
			}
		}
	} else {
		/*
		 * Handle the special case of MIMO PS burst, where the second
		 * aggregate is sent out with only one rate and one try.
		 * Treating it as an excessive retry penalizes the rate
		 * inordinately.
		 */
		if (rcs[0].tries == 1 && xretries == 1)
			xretries = 2;
	}

	flags = rcs[series].flags;
	/* If HT40 and we have switched mode from 40 to 20 => don't update */
	if ((flags & ATH_RC_CW40_FLAG) &&
1346
		(ath_rc_priv->rc_phy_mode != (flags & ATH_RC_CW40_FLAG)))
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
		return;

	if ((flags & ATH_RC_CW40_FLAG) && (flags & ATH_RC_SGI_FLAG))
		rix = rate_table->info[rcs[series].rix].ht_index;
	else if (flags & ATH_RC_SGI_FLAG)
		rix = rate_table->info[rcs[series].rix].sgi_index;
	else if (flags & ATH_RC_CW40_FLAG)
		rix = rate_table->info[rcs[series].rix].cw40index;
	else
		rix = rate_table->info[rcs[series].rix].base_index;

	ath_rc_update_ht(sc, ath_rc_priv, info_priv, rix,
		xretries, long_retry);
}

/*
 * Process a tx descriptor for a completed transmit (success or failure).
 */
static void ath_rate_tx_complete(struct ath_softc *sc,
				 struct ath_node *an,
				 struct ath_rate_node *rc_priv,
				 struct ath_tx_info_priv *info_priv)
{
	int final_ts_idx = info_priv->tx.ts_rateindex;
	int tx_status = 0, is_underrun = 0;

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	if (info_priv->tx.ts_status & ATH9K_TXERR_FILT)
1374 1375 1376 1377
		return;

	if (info_priv->tx.ts_rssi > 0) {
		ATH_RSSI_LPF(an->an_chainmask_sel.tx_avgrssi,
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			     info_priv->tx.ts_rssi);
1379 1380 1381 1382 1383 1384 1385 1386 1387 1388
	}

	/*
	 * If underrun error is seen assume it as an excessive retry only
	 * if prefetch trigger level have reached the max (0x3f for 5416)
	 * Adjust the long retry as if the frame was tried ATH_11N_TXMAXTRY
	 * times. This affects how ratectrl updates PER for the failed rate.
	 */
	if (info_priv->tx.ts_flags &
		(ATH9K_TX_DATA_UNDERRUN | ATH9K_TX_DELIM_UNDERRUN) &&
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		((sc->sc_ah->ah_txTrigLevel) >= rc_priv->tx_triglevel_max)) {
1390 1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402
		tx_status = 1;
		is_underrun = 1;
	}

	if ((info_priv->tx.ts_status & ATH9K_TXERR_XRETRY) ||
			(info_priv->tx.ts_status & ATH9K_TXERR_FIFO))
		tx_status = 1;

	ath_rc_update(sc, rc_priv, info_priv, final_ts_idx, tx_status,
		      (is_underrun) ? ATH_11N_TXMAXTRY :
		      info_priv->tx.ts_longretry);
}

1403 1404 1405 1406
static void ath_rc_init(struct ath_softc *sc,
			struct ath_rate_node *ath_rc_priv,
			struct ieee80211_supported_band *sband,
			struct ieee80211_sta *sta)
1407 1408
{
	struct ath_rate_table *rate_table = NULL;
1409 1410
	struct ath_rateset *rateset = &ath_rc_priv->neg_rates;
	u8 *ht_mcs = (u8 *)&ath_rc_priv->neg_ht_rates;
1411 1412
	u8 i, j, k, hi = 0, hthi = 0;

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	rate_table = sc->hw_rate_table[sc->sc_curmode];
1414

1415 1416
	if (sta->ht_cap.ht_supported) {
		if (sband->band == IEEE80211_BAND_2GHZ)
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			rate_table = sc->hw_rate_table[ATH9K_MODE_11NG_HT20];
1418
		else
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			rate_table = sc->hw_rate_table[ATH9K_MODE_11NA_HT20];
1420 1421 1422 1423 1424 1425

		ath_rc_priv->ht_cap = (WLAN_RC_HT_FLAG | WLAN_RC_DS_FLAG);
		if (sta->ht_cap.cap & IEEE80211_HT_CAP_SUP_WIDTH_20_40)
			ath_rc_priv->ht_cap |= WLAN_RC_40_FLAG;
	}

1426 1427
	/* Initial rate table size. Will change depending
	 * on the working rate set */
1428
	ath_rc_priv->rate_table_size = MAX_TX_RATE_TBL;
1429 1430

	/* Initialize thresholds according to the global rate table */
1431
	for (i = 0 ; i < ath_rc_priv->rate_table_size; i++) {
1432
		ath_rc_priv->state[i].rssi_thres =
1433
			rate_table->info[i].rssi_ack_validmin;
1434
		ath_rc_priv->state[i].per = 0;
1435 1436 1437
	}

	/* Determine the valid rates */
1438
	ath_rc_init_valid_txmask(ath_rc_priv);
1439 1440 1441

	for (i = 0; i < WLAN_RC_PHY_MAX; i++) {
		for (j = 0; j < MAX_TX_RATE_PHY; j++)
1442 1443
			ath_rc_priv->valid_phy_rateidx[i][j] = 0;
		ath_rc_priv->valid_phy_ratecnt[i] = 0;
1444
	}
1445
	ath_rc_priv->rc_phy_mode = (ath_rc_priv->ht_cap & WLAN_RC_40_FLAG);
1446 1447

	/* Set stream capability */
1448
	ath_rc_priv->single_stream = (ath_rc_priv->ht_cap & WLAN_RC_DS_FLAG) ? 0 : 1;
1449 1450 1451 1452

	if (!rateset->rs_nrates) {
		/* No working rate, just initialize valid rates */
		hi = ath_rc_sib_init_validrates(ath_rc_priv, rate_table,
1453
						ath_rc_priv->ht_cap);
1454 1455 1456
	} else {
		/* Use intersection of working rates and valid rates */
		hi = ath_rc_sib_setvalid_rates(ath_rc_priv, rate_table,
1457 1458
					       rateset, ath_rc_priv->ht_cap);
		if (ath_rc_priv->ht_cap & WLAN_RC_HT_FLAG) {
1459 1460 1461
			hthi = ath_rc_sib_setvalid_htrates(ath_rc_priv,
							   rate_table,
							   ht_mcs,
1462
							   ath_rc_priv->ht_cap);
1463 1464 1465 1466
		}
		hi = A_MAX(hi, hthi);
	}

1467 1468 1469
	ath_rc_priv->rate_table_size = hi + 1;
	ath_rc_priv->rate_max_phy = 0;
	ASSERT(ath_rc_priv->rate_table_size <= MAX_TX_RATE_TBL);
1470 1471

	for (i = 0, k = 0; i < WLAN_RC_PHY_MAX; i++) {
1472 1473 1474
		for (j = 0; j < ath_rc_priv->valid_phy_ratecnt[i]; j++) {
			ath_rc_priv->valid_rate_index[k++] =
				ath_rc_priv->valid_phy_rateidx[i][j];
1475 1476 1477
		}

		if (!ath_rc_valid_phyrate(i, rate_table->initial_ratemax, TRUE)
1478
		    || !ath_rc_priv->valid_phy_ratecnt[i])
1479 1480
			continue;

1481
		ath_rc_priv->rate_max_phy = ath_rc_priv->valid_phy_rateidx[i][j-1];
1482
	}
1483
	ASSERT(ath_rc_priv->rate_table_size <= MAX_TX_RATE_TBL);
1484 1485
	ASSERT(k <= MAX_TX_RATE_TBL);

1486
	ath_rc_priv->max_valid_rate = k;
1487 1488 1489 1490 1491
	/*
	 * Some third party vendors don't send the supported rate series in
	 * order. So sorting to make sure its in order, otherwise our RateFind
	 * Algo will select wrong rates
	 */
1492 1493
	ath_rc_sort_validrates(rate_table, ath_rc_priv);
	ath_rc_priv->rate_max_phy = ath_rc_priv->valid_rate_index[k-4];
1494 1495 1496
}

/* Rate Control callbacks */
1497 1498
static void ath_tx_status(void *priv, struct ieee80211_supported_band *sband,
			  struct ieee80211_sta *sta, void *priv_sta,
1499 1500 1501 1502 1503 1504 1505 1506 1507 1508 1509
			  struct sk_buff *skb)
{
	struct ath_softc *sc = priv;
	struct ath_tx_info_priv *tx_info_priv;
	struct ath_node *an;
	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(skb);
	struct ieee80211_hdr *hdr;
	__le16 fc;

	hdr = (struct ieee80211_hdr *)skb->data;
	fc = hdr->frame_control;
1510 1511
	/* XXX: UGLY HACK!! */
	tx_info_priv = (struct ath_tx_info_priv *)tx_info->control.vif;
1512

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	an = (struct ath_node *)sta->drv_priv;
1514

1515
	if (tx_info_priv == NULL)
1516
		return;
1517 1518

	if (an && priv_sta && ieee80211_is_data(fc))
1519
		ath_rate_tx_complete(sc, an, priv_sta, tx_info_priv);
1520 1521 1522

	kfree(tx_info_priv);
	tx_info->control.vif = NULL;
1523 1524
}

1525 1526
static void ath_get_rate(void *priv, struct ieee80211_sta *sta, void *priv_sta,
			 struct ieee80211_tx_rate_control *txrc)
1527
{
1528 1529
	struct ieee80211_supported_band *sband = txrc->sband;
	struct sk_buff *skb = txrc->skb;
1530
	struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)skb->data;
1531
	struct ath_softc *sc = priv;
1532 1533
	struct ieee80211_hw *hw = sc->hw;
	struct ath_tx_info_priv *tx_info_priv;
1534
	struct ath_rate_node *ath_rc_priv = priv_sta;
1535 1536
	struct ath_node *an;
	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(skb);
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	int is_probe = FALSE;
1538 1539 1540 1541 1542 1543
	s8 lowest_idx;
	__le16 fc = hdr->frame_control;
	u8 *qc, tid;

	DPRINTF(sc, ATH_DBG_RATE, "%s\n", __func__);

1544 1545 1546 1547
	/* allocate driver private area of tx_info, XXX: UGLY HACK! */
	tx_info->control.vif = kzalloc(sizeof(*tx_info_priv), GFP_ATOMIC);
	tx_info_priv = (struct ath_tx_info_priv *)tx_info->control.vif;
	ASSERT(tx_info_priv != NULL);
1548

1549
	lowest_idx = rate_lowest_index(sband, sta);
1550 1551 1552
	tx_info_priv->min_rate = (sband->bitrates[lowest_idx].bitrate * 2) / 10;
	/* lowest rate for management and multicast/broadcast frames */
	if (!ieee80211_is_data(fc) ||
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	    is_multicast_ether_addr(hdr->addr1) || !sta) {
1554
		tx_info->control.rates[0].idx = lowest_idx;
1555 1556 1557 1558 1559 1560 1561 1562 1563 1564
		return;
	}

	/* Find tx rate for unicast frames */
	ath_rate_findrate(sc, ath_rc_priv,
			  ATH_11N_TXMAXTRY, 4,
			  ATH_RC_PROBE_ALLOWED,
			  tx_info_priv->rcs,
			  &is_probe,
			  false);
1565
#if 0
1566
	if (is_probe)
1567
		sel->probe_idx = ath_rc_priv->tx_ratectrl.probe_rate;
1568
#endif
1569 1570 1571 1572 1573 1574 1575

	/* Ratecontrol sometimes returns invalid rate index */
	if (tx_info_priv->rcs[0].rix != 0xff)
		ath_rc_priv->prev_data_rix = tx_info_priv->rcs[0].rix;
	else
		tx_info_priv->rcs[0].rix = ath_rc_priv->prev_data_rix;

1576
	tx_info->control.rates[0].idx = tx_info_priv->rcs[0].rix;
1577 1578 1579

	/* Check if aggregation has to be enabled for this tid */

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	if (hw->conf.ht.enabled) {
1581 1582 1583
		if (ieee80211_is_data_qos(fc)) {
			qc = ieee80211_get_qos_ctl(hdr);
			tid = qc[0] & 0xf;
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			an = (struct ath_node *)sta->drv_priv;
1585

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1586 1587
			if(ath_tx_aggr_check(sc, an, tid))
				ieee80211_start_tx_ba_session(hw, hdr->addr1, tid);
1588 1589 1590 1591
		}
	}
}

1592 1593
static void ath_rate_init(void *priv, struct ieee80211_supported_band *sband,
                          struct ieee80211_sta *sta, void *priv_sta)
1594
{
1595
	struct ath_softc *sc = priv;
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	struct ath_rate_node *ath_rc_priv = priv_sta;
1597 1598
	int i, j = 0;

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	for (i = 0; i < sband->n_bitrates; i++) {
		if (sta->supp_rates[sband->band] & BIT(i)) {
			ath_rc_priv->neg_rates.rs_rates[j]
				= (sband->bitrates[i].bitrate * 2) / 10;
			j++;
		}
	}
	ath_rc_priv->neg_rates.rs_nrates = j;
1607

1608
	if (sta->ht_cap.ht_supported) {
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		for (i = 0, j = 0; i < 77; i++) {
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			if (sta->ht_cap.mcs.rx_mask[i/8] & (1<<(i%8)))
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				ath_rc_priv->neg_ht_rates.rs_rates[j++] = i;
1612 1613 1614
			if (j == ATH_RATE_MAX)
				break;
		}
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		ath_rc_priv->neg_ht_rates.rs_nrates = j;
1616
	}
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1617

1618
	ath_rc_init(sc, priv_sta, sband, sta);
1619 1620
}

1621
static void *ath_rate_alloc(struct ieee80211_hw *hw, struct dentry *debugfsdir)
1622
{
1623
	return hw->priv;
1624 1625 1626 1627 1628 1629 1630
}

static void ath_rate_free(void *priv)
{
	return;
}

1631
static void *ath_rate_alloc_sta(void *priv, struct ieee80211_sta *sta, gfp_t gfp)
1632 1633 1634 1635
{
	struct ath_softc *sc = priv;
	struct ath_rate_node *rate_priv;

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	rate_priv = kzalloc(sizeof(struct ath_rate_node), gfp);
1637
	if (!rate_priv) {
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1638 1639 1640
		DPRINTF(sc, ATH_DBG_FATAL,
			"%s: Unable to allocate private rc structure\n",
			__func__);
1641 1642
		return NULL;
	}
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1643 1644

	rate_priv->rssi_down_time = jiffies_to_msecs(jiffies);
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	rate_priv->tx_triglevel_max = sc->sc_ah->ah_caps.tx_triglevel_max;
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1646

1647 1648 1649
	return rate_priv;
}

1650 1651
static void ath_rate_free_sta(void *priv, struct ieee80211_sta *sta,
			      void *priv_sta)
1652 1653 1654
{
	struct ath_rate_node *rate_priv = priv_sta;

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	kfree(rate_priv);
1656 1657 1658 1659 1660 1661 1662 1663 1664 1665 1666
}

static struct rate_control_ops ath_rate_ops = {
	.module = NULL,
	.name = "ath9k_rate_control",
	.tx_status = ath_tx_status,
	.get_rate = ath_get_rate,
	.rate_init = ath_rate_init,
	.alloc = ath_rate_alloc,
	.free = ath_rate_free,
	.alloc_sta = ath_rate_alloc_sta,
1667
	.free_sta = ath_rate_free_sta,
1668 1669
};

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1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691
void ath_rate_attach(struct ath_softc *sc)
{
	sc->hw_rate_table[ATH9K_MODE_11B] =
		&ar5416_11b_ratetable;
	sc->hw_rate_table[ATH9K_MODE_11A] =
		&ar5416_11a_ratetable;
	sc->hw_rate_table[ATH9K_MODE_11G] =
		&ar5416_11g_ratetable;
	sc->hw_rate_table[ATH9K_MODE_11NA_HT20] =
		&ar5416_11na_ratetable;
	sc->hw_rate_table[ATH9K_MODE_11NG_HT20] =
		&ar5416_11ng_ratetable;
	sc->hw_rate_table[ATH9K_MODE_11NA_HT40PLUS] =
		&ar5416_11na_ratetable;
	sc->hw_rate_table[ATH9K_MODE_11NA_HT40MINUS] =
		&ar5416_11na_ratetable;
	sc->hw_rate_table[ATH9K_MODE_11NG_HT40PLUS] =
		&ar5416_11ng_ratetable;
	sc->hw_rate_table[ATH9K_MODE_11NG_HT40MINUS] =
		&ar5416_11ng_ratetable;
}

1692 1693 1694 1695 1696 1697 1698 1699 1700 1701
int ath_rate_control_register(void)
{
	return ieee80211_rate_control_register(&ath_rate_ops);
}

void ath_rate_control_unregister(void)
{
	ieee80211_rate_control_unregister(&ath_rate_ops);
}