rc.c 49.4 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) {
449 450
				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];
478 479 480 481
}

/* 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,
522 523 524 525
				 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

559 560 561
			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 =
606
					ath_rc_priv->valid_phy_ratecnt[phy];
607

608
				ath_rc_priv->valid_phy_rateidx[phy]
609
					[valid_rate_count] = j;
610 611
				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;

644 645 646 647
			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;

730 731
		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 ,
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				   struct ieee80211_tx_rate *rate,
809 810 811 812
				   u8 tries,
				   u8 rix,
				   int rtsctsenable)
{
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	rate->count = tries;
	rate->idx = rix;

	if (rtsctsenable)
		rate->flags |= IEEE80211_TX_RC_USE_RTS_CTS;
	if (WLAN_RC_PHY_40(rate_table->info[rix].phy))
		rate->flags |= IEEE80211_TX_RC_40_MHZ_WIDTH;
	if (WLAN_RC_PHY_SGI(rate_table->info[rix].phy))
		rate->flags |= IEEE80211_TX_RC_SHORT_GI;
	if (WLAN_RC_PHY_HT(rate_table->info[rix].phy))
		rate->flags |= IEEE80211_TX_RC_MCS;
824 825 826
}

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
				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,
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			    struct ieee80211_tx_info *tx_info, int *is_probe,
859 860 861 862
			    int is_retry)
{
	u8 try_per_rate = 0, i = 0, rix, nrix;
	struct ath_rate_table *rate_table;
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	struct ieee80211_tx_rate *rates = tx_info->control.rates;
864

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	rate_table = sc->hw_rate_table[sc->sc_curmode];
866
	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);
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	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,
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			&rates[i++], 1, nrix, FALSE);
876 877 878 879 880 881 882 883

		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,
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			&rates[i++], try_per_rate, nrix, 0);
885 886 887 888
	} 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,
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			&rates[i++], try_per_rate, nrix, FALSE);
890 891 892 893 894 895 896 897 898 899
	}

	/* 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;
901 902

		nrix = ath_rc_rate_getidx(sc, ath_rc_priv,
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					  rate_table, nrix, 1, min_rate);
904 905
		/* All other rates in the series have RTS enabled */
		ath_rc_rate_set_series(rate_table,
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				       &rates[i], try_num, nrix, TRUE);
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	}

	/*
	 * 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)) {
927 928 929 930
		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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			rates[3].idx = rates[2].idx;
			rates[3].flags = rates[2].flags;
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		}
	}
}

/*
 * 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,
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			      struct ieee80211_tx_info *tx_info,
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			      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,
S
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954
			rcflag, tx_info, 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;
S
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965
	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) +
S
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1010
				     ((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) {
S
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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) &&
S
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1147
					    (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 &&
S
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1165
	    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 +
S
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1189
			    rate_table->info[rate].rssi_ack_deltamin >
1190 1191 1192
			    ath_rc_priv->state[rate+1].rssi_thres) {
				ath_rc_priv->state[rate+1].rssi_thres =
					ath_rc_priv->state[rate].
S
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1193
					rssi_thres +
1194
					rate_table->info[rate].
S
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1195
					rssi_ack_deltamin;
1196 1197 1198 1199 1200 1201
			}
		}

		/* Make sure the rates below this have lower rssi thresholds. */
		for (rate = tx_rate - 1; rate >= 0; rate--) {
			if (rate_table->info[rate].phy !=
S
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1202
			    rate_table->info[tx_rate].phy)
1203 1204
				break;

1205
			if (ath_rc_priv->state[rate].rssi_thres +
S
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1206
			    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 <
S
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1209 1210
				    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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1215 1216 1217
						rssi_thres -
						rate_table->info[rate].
						rssi_ack_deltamin;
1218 1219
				}

1220
				if (ath_rc_priv->state[rate].rssi_thres <
S
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1221 1222
				    rate_table->info[rate].
				    rssi_ack_validmin) {
1223
					ath_rc_priv->state[rate].rssi_thres =
1224
						rate_table->info[rate].
S
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1225
						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 !=
S
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1236
			    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 >=
S
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1257
	    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 >
S
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1261
			    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 >=
S
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1270
	    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
	}
}

/*
 * 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,
S
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1286
			  struct ieee80211_tx_info *tx_info, int final_ts_idx,
1287 1288
			  int xretries, int long_retry)
{
S
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1289 1290
	struct ath_tx_info_priv *info_priv =
		(struct ath_tx_info_priv *)tx_info->rate_driver_data[0];
1291
	struct ath_rate_table *rate_table;
S
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1292
	struct ieee80211_tx_rate *rates = tx_info->status.rates;
1293 1294 1295
	u8 flags;
	u32 series = 0, rix;

S
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1296
	rate_table = sc->hw_rate_table[sc->sc_curmode];
1297 1298 1299 1300 1301 1302 1303 1304

	/*
	 * 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++) {
S
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1305 1306
			if (rates[series].count != 0) {
				flags = rates[series].flags;
1307 1308
				/* If HT40 and we have switched mode from
				 * 40 to 20 => don't update */
S
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1309
				if ((flags & IEEE80211_TX_RC_40_MHZ_WIDTH) &&
1310
					(ath_rc_priv->rc_phy_mode !=
S
Sujith 已提交
1311
					(flags & IEEE80211_TX_RC_40_MHZ_WIDTH)))
1312
					return;
S
Sujith 已提交
1313 1314
				if ((flags & IEEE80211_TX_RC_40_MHZ_WIDTH) &&
					(flags & IEEE80211_TX_RC_SHORT_GI))
1315
					rix = rate_table->info[
S
Sujith 已提交
1316 1317
						rates[series].idx].ht_index;
				else if (flags & IEEE80211_TX_RC_SHORT_GI)
1318
					rix = rate_table->info[
S
Sujith 已提交
1319 1320
						rates[series].idx].sgi_index;
				else if (flags & IEEE80211_TX_RC_40_MHZ_WIDTH)
1321
					rix = rate_table->info[
S
Sujith 已提交
1322
						rates[series].idx].cw40index;
1323 1324
				else
					rix = rate_table->info[
S
Sujith 已提交
1325
						rates[series].idx].base_index;
1326 1327 1328
				ath_rc_update_ht(sc, ath_rc_priv,
						info_priv, rix,
						xretries ? 1 : 2,
S
Sujith 已提交
1329
						rates[series].count);
1330 1331 1332 1333 1334 1335 1336 1337 1338
			}
		}
	} 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.
		 */
S
Sujith 已提交
1339
		if (rates[0].count == 1 && xretries == 1)
1340 1341 1342
			xretries = 2;
	}

S
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1343
	flags = rates[series].flags;
1344
	/* If HT40 and we have switched mode from 40 to 20 => don't update */
S
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1345 1346
	if ((flags & IEEE80211_TX_RC_40_MHZ_WIDTH) &&
		(ath_rc_priv->rc_phy_mode != (flags & IEEE80211_TX_RC_40_MHZ_WIDTH)))
1347 1348
		return;

S
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1349 1350 1351 1352 1353 1354
	if ((flags & IEEE80211_TX_RC_40_MHZ_WIDTH) && (flags & IEEE80211_TX_RC_SHORT_GI))
		rix = rate_table->info[rates[series].idx].ht_index;
	else if (flags & IEEE80211_TX_RC_SHORT_GI)
		rix = rate_table->info[rates[series].idx].sgi_index;
	else if (flags & IEEE80211_TX_RC_40_MHZ_WIDTH)
		rix = rate_table->info[rates[series].idx].cw40index;
1355
	else
S
Sujith 已提交
1356
		rix = rate_table->info[rates[series].idx].base_index;
1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367

	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,
S
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1368
				 struct ieee80211_tx_info *tx_info)
1369
{
S
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1370 1371
	struct ath_tx_info_priv *info_priv =
		(struct ath_tx_info_priv *)tx_info->rate_driver_data[0];
1372 1373 1374
	int final_ts_idx = info_priv->tx.ts_rateindex;
	int tx_status = 0, is_underrun = 0;

S
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1375
	if (info_priv->tx.ts_status & ATH9K_TXERR_FILT)
1376 1377 1378 1379
		return;

	if (info_priv->tx.ts_rssi > 0) {
		ATH_RSSI_LPF(an->an_chainmask_sel.tx_avgrssi,
S
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1380
			     info_priv->tx.ts_rssi);
1381 1382 1383 1384 1385 1386 1387 1388 1389 1390
	}

	/*
	 * 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) &&
S
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1391
		((sc->sc_ah->ah_txTrigLevel) >= rc_priv->tx_triglevel_max)) {
1392 1393 1394 1395 1396 1397 1398 1399
		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;

S
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1400
	ath_rc_update(sc, rc_priv, tx_info, final_ts_idx, tx_status,
1401 1402 1403 1404
		      (is_underrun) ? ATH_11N_TXMAXTRY :
		      info_priv->tx.ts_longretry);
}

1405 1406 1407 1408
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)
1409 1410
{
	struct ath_rate_table *rate_table = NULL;
1411 1412
	struct ath_rateset *rateset = &ath_rc_priv->neg_rates;
	u8 *ht_mcs = (u8 *)&ath_rc_priv->neg_ht_rates;
1413 1414
	u8 i, j, k, hi = 0, hthi = 0;

S
Sujith 已提交
1415
	rate_table = sc->hw_rate_table[sc->sc_curmode];
1416

1417 1418
	if (sta->ht_cap.ht_supported) {
		if (sband->band == IEEE80211_BAND_2GHZ)
S
Sujith 已提交
1419
			rate_table = sc->hw_rate_table[ATH9K_MODE_11NG_HT20];
1420
		else
S
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1421
			rate_table = sc->hw_rate_table[ATH9K_MODE_11NA_HT20];
1422 1423 1424 1425 1426 1427

		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;
	}

1428 1429
	/* Initial rate table size. Will change depending
	 * on the working rate set */
1430
	ath_rc_priv->rate_table_size = MAX_TX_RATE_TBL;
1431 1432

	/* Initialize thresholds according to the global rate table */
1433
	for (i = 0 ; i < ath_rc_priv->rate_table_size; i++) {
1434
		ath_rc_priv->state[i].rssi_thres =
1435
			rate_table->info[i].rssi_ack_validmin;
1436
		ath_rc_priv->state[i].per = 0;
1437 1438 1439
	}

	/* Determine the valid rates */
1440
	ath_rc_init_valid_txmask(ath_rc_priv);
1441 1442 1443

	for (i = 0; i < WLAN_RC_PHY_MAX; i++) {
		for (j = 0; j < MAX_TX_RATE_PHY; j++)
1444 1445
			ath_rc_priv->valid_phy_rateidx[i][j] = 0;
		ath_rc_priv->valid_phy_ratecnt[i] = 0;
1446
	}
1447
	ath_rc_priv->rc_phy_mode = (ath_rc_priv->ht_cap & WLAN_RC_40_FLAG);
1448 1449

	/* Set stream capability */
1450
	ath_rc_priv->single_stream = (ath_rc_priv->ht_cap & WLAN_RC_DS_FLAG) ? 0 : 1;
1451 1452 1453 1454

	if (!rateset->rs_nrates) {
		/* No working rate, just initialize valid rates */
		hi = ath_rc_sib_init_validrates(ath_rc_priv, rate_table,
1455
						ath_rc_priv->ht_cap);
1456 1457 1458
	} else {
		/* Use intersection of working rates and valid rates */
		hi = ath_rc_sib_setvalid_rates(ath_rc_priv, rate_table,
1459 1460
					       rateset, ath_rc_priv->ht_cap);
		if (ath_rc_priv->ht_cap & WLAN_RC_HT_FLAG) {
1461 1462 1463
			hthi = ath_rc_sib_setvalid_htrates(ath_rc_priv,
							   rate_table,
							   ht_mcs,
1464
							   ath_rc_priv->ht_cap);
1465 1466 1467 1468
		}
		hi = A_MAX(hi, hthi);
	}

1469 1470 1471
	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);
1472 1473

	for (i = 0, k = 0; i < WLAN_RC_PHY_MAX; i++) {
1474 1475 1476
		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];
1477 1478 1479
		}

		if (!ath_rc_valid_phyrate(i, rate_table->initial_ratemax, TRUE)
1480
		    || !ath_rc_priv->valid_phy_ratecnt[i])
1481 1482
			continue;

1483
		ath_rc_priv->rate_max_phy = ath_rc_priv->valid_phy_rateidx[i][j-1];
1484
	}
1485
	ASSERT(ath_rc_priv->rate_table_size <= MAX_TX_RATE_TBL);
1486 1487
	ASSERT(k <= MAX_TX_RATE_TBL);

1488
	ath_rc_priv->max_valid_rate = k;
1489 1490 1491 1492 1493
	/*
	 * 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
	 */
1494 1495
	ath_rc_sort_validrates(rate_table, ath_rc_priv);
	ath_rc_priv->rate_max_phy = ath_rc_priv->valid_rate_index[k-4];
1496 1497 1498
}

/* Rate Control callbacks */
1499 1500
static void ath_tx_status(void *priv, struct ieee80211_supported_band *sband,
			  struct ieee80211_sta *sta, void *priv_sta,
1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511
			  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;
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	tx_info_priv = (struct ath_tx_info_priv *)tx_info->rate_driver_data[0];
1513

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	an = (struct ath_node *)sta->drv_priv;
1515

1516
	if (tx_info_priv == NULL)
1517
		return;
1518 1519

	if (an && priv_sta && ieee80211_is_data(fc))
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		ath_rate_tx_complete(sc, an, priv_sta, tx_info);
1521 1522

	kfree(tx_info_priv);
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
	struct ieee80211_hw *hw = sc->hw;
1533
	struct ath_rate_node *ath_rc_priv = priv_sta;
1534 1535
	struct ath_node *an;
	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(skb);
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	int is_probe = FALSE;
1537 1538 1539 1540
	__le16 fc = hdr->frame_control;
	u8 *qc, tid;

	/* lowest rate for management and multicast/broadcast frames */
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1541 1542 1543 1544
	if (!ieee80211_is_data(fc) || is_multicast_ether_addr(hdr->addr1)) {
		tx_info->control.rates[0].idx = rate_lowest_index(sband, sta);
		tx_info->control.rates[0].count =
			is_multicast_ether_addr(hdr->addr1) ? 1 : ATH_MGT_TXMAXTRY;
1545 1546 1547 1548 1549 1550 1551
		return;
	}

	/* Find tx rate for unicast frames */
	ath_rate_findrate(sc, ath_rc_priv,
			  ATH_11N_TXMAXTRY, 4,
			  ATH_RC_PROBE_ALLOWED,
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			  tx_info,
1553 1554 1555 1556
			  &is_probe,
			  false);

	/* Check if aggregation has to be enabled for this tid */
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1557
	if (hw->conf.ht.enabled) {
1558 1559 1560
		if (ieee80211_is_data_qos(fc)) {
			qc = ieee80211_get_qos_ctl(hdr);
			tid = qc[0] & 0xf;
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1561
			an = (struct ath_node *)sta->drv_priv;
1562

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1563 1564
			if(ath_tx_aggr_check(sc, an, tid))
				ieee80211_start_tx_ba_session(hw, hdr->addr1, tid);
1565 1566 1567 1568
		}
	}
}

1569 1570
static void ath_rate_init(void *priv, struct ieee80211_supported_band *sband,
                          struct ieee80211_sta *sta, void *priv_sta)
1571
{
1572
	struct ath_softc *sc = priv;
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	struct ath_rate_node *ath_rc_priv = priv_sta;
1574 1575
	int i, j = 0;

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1576 1577 1578 1579 1580 1581 1582 1583
	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;
1584

1585
	if (sta->ht_cap.ht_supported) {
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		for (i = 0, j = 0; i < 77; i++) {
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1587
			if (sta->ht_cap.mcs.rx_mask[i/8] & (1<<(i%8)))
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1588
				ath_rc_priv->neg_ht_rates.rs_rates[j++] = i;
1589 1590 1591
			if (j == ATH_RATE_MAX)
				break;
		}
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1592
		ath_rc_priv->neg_ht_rates.rs_nrates = j;
1593
	}
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1594

1595
	ath_rc_init(sc, priv_sta, sband, sta);
1596 1597
}

1598
static void *ath_rate_alloc(struct ieee80211_hw *hw, struct dentry *debugfsdir)
1599
{
1600
	return hw->priv;
1601 1602 1603 1604 1605 1606 1607
}

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

1608
static void *ath_rate_alloc_sta(void *priv, struct ieee80211_sta *sta, gfp_t gfp)
1609 1610 1611 1612
{
	struct ath_softc *sc = priv;
	struct ath_rate_node *rate_priv;

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1613
	rate_priv = kzalloc(sizeof(struct ath_rate_node), gfp);
1614
	if (!rate_priv) {
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1615 1616 1617
		DPRINTF(sc, ATH_DBG_FATAL,
			"%s: Unable to allocate private rc structure\n",
			__func__);
1618 1619
		return NULL;
	}
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1620 1621

	rate_priv->rssi_down_time = jiffies_to_msecs(jiffies);
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1622
	rate_priv->tx_triglevel_max = sc->sc_ah->ah_caps.tx_triglevel_max;
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1623

1624 1625 1626
	return rate_priv;
}

1627 1628
static void ath_rate_free_sta(void *priv, struct ieee80211_sta *sta,
			      void *priv_sta)
1629 1630 1631
{
	struct ath_rate_node *rate_priv = priv_sta;

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1632
	kfree(rate_priv);
1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643
}

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,
1644
	.free_sta = ath_rate_free_sta,
1645 1646
};

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1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659 1660 1661 1662 1663 1664 1665 1666 1667 1668
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;
}

1669 1670 1671 1672 1673 1674 1675 1676 1677 1678
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);
}