1 | /* |
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2 | * Simple 802.11 rate-control algorithm for gPXE. |
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3 | * |
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4 | * Copyright (c) 2009 Joshua Oreman <oremanj@rwcr.net>. |
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5 | * |
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6 | * This program is free software; you can redistribute it and/or |
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7 | * modify it under the terms of the GNU General Public License as |
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8 | * published by the Free Software Foundation; either version 2 of the |
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9 | * License, or any later version. |
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10 | * |
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11 | * This program is distributed in the hope that it will be useful, but |
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12 | * WITHOUT ANY WARRANTY; without even the implied warranty of |
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13 | * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU |
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14 | * General Public License for more details. |
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15 | * |
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16 | * You should have received a copy of the GNU General Public License |
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17 | * along with this program; if not, write to the Free Software |
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18 | * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. |
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19 | */ |
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20 | |
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21 | FILE_LICENCE ( GPL2_OR_LATER ); |
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22 | |
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23 | #include <stdlib.h> |
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24 | #include <gpxe/net80211.h> |
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25 | |
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26 | /** |
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27 | * @file |
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28 | * |
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29 | * Simple 802.11 rate-control algorithm |
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30 | */ |
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31 | |
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32 | /** @page rc80211 Rate control philosophy |
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33 | * |
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34 | * We want to maximize our transmission speed, to the extent that we |
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35 | * can do that without dropping undue numbers of packets. We also |
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36 | * don't want to take up very much code space, so our algorithm has to |
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37 | * be pretty simple |
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38 | * |
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39 | * When we receive a packet, we know what rate it was transmitted at, |
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40 | * and whether it had to be retransmitted to get to us. |
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41 | * |
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42 | * When we send a packet, we hear back how many times it had to be |
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43 | * retried to get through, and whether it got through at all. |
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44 | * |
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45 | * Indications of TX success are more reliable than RX success, but RX |
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46 | * information helps us know where to start. |
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47 | * |
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48 | * To handle all of this, we keep for each rate and each direction (TX |
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49 | * and RX separately) some state information for the most recent |
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50 | * packets on that rate and the number of packets for which we have |
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51 | * information. The state is a 32-bit unsigned integer in which two |
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52 | * bits represent a packet: 11 if it went through well, 10 if it went |
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53 | * through with one retry, 01 if it went through with more than one |
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54 | * retry, or 00 if it didn't go through at all. We define the |
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55 | * "goodness" for a particular (rate, direction) combination as the |
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56 | * sum of all the 2-bit fields, times 33, divided by the number of |
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57 | * 2-bit fields containing valid information (16 except when we're |
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58 | * starting out). The number produced is between 0 and 99; we use -1 |
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59 | * for rates with less than 4 RX packets or 1 TX, as an indicator that |
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60 | * we do not have enough information to rely on them. |
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61 | * |
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62 | * In deciding which rates are best, we find the weighted average of |
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63 | * TX and RX goodness, where the weighting is by number of packets |
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64 | * with data and TX packets are worth 4 times as much as RX packets. |
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65 | * The weighted average is called "net goodness" and is also a number |
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66 | * between 0 and 99. If 3 consecutive packets fail transmission |
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67 | * outright, we automatically ratchet down the rate; otherwise, we |
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68 | * switch to the best rate whenever the current rate's goodness falls |
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69 | * below some threshold, and try increasing our rate when the goodness |
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70 | * is very high. |
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71 | * |
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72 | * This system is optimized for gPXE's style of usage. Because normal |
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73 | * operation always involves receiving something, we'll make our way |
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74 | * to the best rate pretty quickly. We tend to follow the lead of the |
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75 | * sending AP in choosing rates, but we won't use rates for long that |
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76 | * don't work well for us in transmission. We assume gPXE won't be |
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77 | * running for long enough that rate patterns will change much, so we |
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78 | * don't have to keep time counters or the like. And if this doesn't |
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79 | * work well in practice there are many ways it could be tweaked. |
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80 | * |
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81 | * To avoid staying at 1Mbps for a long time, we don't track any |
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82 | * transmitted packets until we've set our rate based on received |
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83 | * packets. |
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84 | */ |
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85 | |
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86 | /** Two-bit packet status indicator for a packet with no retries */ |
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87 | #define RC_PKT_OK 0x3 |
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88 | |
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89 | /** Two-bit packet status indicator for a packet with one retry */ |
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90 | #define RC_PKT_RETRIED_ONCE 0x2 |
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91 | |
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92 | /** Two-bit packet status indicator for a TX packet with multiple retries |
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93 | * |
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94 | * It is not possible to tell whether an RX packet had one or multiple |
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95 | * retries; we rely instead on the fact that failed RX packets won't |
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96 | * get to us at all, so if we receive a lot of RX packets on a certain |
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97 | * rate it must be pretty good. |
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98 | */ |
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99 | #define RC_PKT_RETRIED_MULTI 0x1 |
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100 | |
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101 | /** Two-bit packet status indicator for a TX packet that was never ACKed |
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102 | * |
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103 | * It is not possible to tell whether an RX packet was setn if it |
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104 | * didn't get through to us, but if we don't see one we won't increase |
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105 | * the goodness for its rate. This asymmetry is part of why TX packets |
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106 | * are weighted much more heavily than RX. |
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107 | */ |
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108 | #define RC_PKT_FAILED 0x0 |
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109 | |
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110 | /** Number of times to weight TX packets more heavily than RX packets */ |
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111 | #define RC_TX_FACTOR 4 |
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112 | |
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113 | /** Number of consecutive failed TX packets that cause an automatic rate drop */ |
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114 | #define RC_TX_EMERG_FAIL 3 |
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115 | |
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116 | /** Minimum net goodness below which we will search for a better rate */ |
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117 | #define RC_GOODNESS_MIN 85 |
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118 | |
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119 | /** Maximum net goodness above which we will try to increase our rate */ |
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120 | #define RC_GOODNESS_MAX 95 |
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121 | |
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122 | /** Minimum (num RX + @c RC_TX_FACTOR * num TX) to use a certain rate */ |
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123 | #define RC_UNCERTAINTY_THRESH 4 |
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124 | |
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125 | /** TX direction */ |
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126 | #define TX 0 |
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127 | |
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128 | /** RX direction */ |
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129 | #define RX 1 |
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130 | |
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131 | /** A rate control context */ |
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132 | struct rc80211_ctx |
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133 | { |
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134 | /** Goodness state for each rate, TX and RX */ |
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135 | u32 goodness[2][NET80211_MAX_RATES]; |
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136 | |
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137 | /** Number of packets recorded for each rate */ |
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138 | u8 count[2][NET80211_MAX_RATES]; |
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139 | |
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140 | /** Indication of whether we've set the device rate yet */ |
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141 | int started; |
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142 | |
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143 | /** Counter of all packets sent and received */ |
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144 | int packets; |
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145 | }; |
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146 | |
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147 | /** |
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148 | * Initialize rate-control algorithm |
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149 | * |
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150 | * @v dev 802.11 device |
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151 | * @ret ctx Rate-control context, to be stored in @c dev->rctl |
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152 | */ |
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153 | struct rc80211_ctx * rc80211_init ( struct net80211_device *dev __unused ) |
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154 | { |
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155 | struct rc80211_ctx *ret = zalloc ( sizeof ( *ret ) ); |
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156 | return ret; |
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157 | } |
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158 | |
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159 | /** |
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160 | * Calculate net goodness for a certain rate |
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161 | * |
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162 | * @v ctx Rate-control context |
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163 | * @v rate_idx Index of rate to calculate net goodness for |
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164 | */ |
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165 | static int rc80211_calc_net_goodness ( struct rc80211_ctx *ctx, |
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166 | int rate_idx ) |
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167 | { |
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168 | int sum[2], num[2], dir, pkt; |
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169 | |
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170 | for ( dir = 0; dir < 2; dir++ ) { |
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171 | u32 good = ctx->goodness[dir][rate_idx]; |
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172 | |
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173 | num[dir] = ctx->count[dir][rate_idx]; |
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174 | sum[dir] = 0; |
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175 | |
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176 | for ( pkt = 0; pkt < num[dir]; pkt++ ) |
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177 | sum[dir] += ( good >> ( 2 * pkt ) ) & 0x3; |
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178 | } |
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179 | |
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180 | if ( ( num[TX] * RC_TX_FACTOR + num[RX] ) < RC_UNCERTAINTY_THRESH ) |
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181 | return -1; |
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182 | |
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183 | return ( 33 * ( sum[TX] * RC_TX_FACTOR + sum[RX] ) / |
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184 | ( num[TX] * RC_TX_FACTOR + num[RX] ) ); |
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185 | } |
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186 | |
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187 | /** |
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188 | * Determine the best rate to switch to and return it |
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189 | * |
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190 | * @v dev 802.11 device |
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191 | * @ret rate_idx Index of the best rate to switch to |
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192 | */ |
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193 | static int rc80211_pick_best ( struct net80211_device *dev ) |
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194 | { |
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195 | struct rc80211_ctx *ctx = dev->rctl; |
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196 | int best_net_good = 0, best_rate = -1, i; |
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197 | |
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198 | for ( i = 0; i < dev->nr_rates; i++ ) { |
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199 | int net_good = rc80211_calc_net_goodness ( ctx, i ); |
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200 | |
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201 | if ( net_good > best_net_good || |
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202 | ( best_net_good > RC_GOODNESS_MIN && |
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203 | net_good > RC_GOODNESS_MIN ) ) { |
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204 | best_net_good = net_good; |
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205 | best_rate = i; |
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206 | } |
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207 | } |
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208 | |
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209 | if ( best_rate >= 0 ) { |
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210 | int old_good = rc80211_calc_net_goodness ( ctx, dev->rate ); |
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211 | if ( old_good != best_net_good ) |
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212 | DBGC ( ctx, "802.11 RC %p switching from goodness " |
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213 | "%d to %d\n", ctx, old_good, best_net_good ); |
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214 | |
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215 | ctx->started = 1; |
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216 | return best_rate; |
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217 | } |
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218 | |
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219 | return dev->rate; |
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220 | } |
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221 | |
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222 | /** |
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223 | * Set 802.11 device rate |
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224 | * |
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225 | * @v dev 802.11 device |
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226 | * @v rate_idx Index of rate to switch to |
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227 | * |
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228 | * This is a thin wrapper around net80211_set_rate_idx to insert a |
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229 | * debugging message where appropriate. |
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230 | */ |
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231 | static inline void rc80211_set_rate ( struct net80211_device *dev, |
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232 | int rate_idx ) |
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233 | { |
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234 | DBGC ( dev->rctl, "802.11 RC %p changing rate %d->%d Mbps\n", dev->rctl, |
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235 | dev->rates[dev->rate] / 10, dev->rates[rate_idx] / 10 ); |
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236 | |
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237 | net80211_set_rate_idx ( dev, rate_idx ); |
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238 | } |
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239 | |
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240 | /** |
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241 | * Check rate-control state and change rate if necessary |
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242 | * |
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243 | * @v dev 802.11 device |
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244 | */ |
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245 | static void rc80211_maybe_set_new ( struct net80211_device *dev ) |
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246 | { |
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247 | struct rc80211_ctx *ctx = dev->rctl; |
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248 | int net_good; |
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249 | |
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250 | net_good = rc80211_calc_net_goodness ( ctx, dev->rate ); |
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251 | |
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252 | if ( ! ctx->started ) { |
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253 | rc80211_set_rate ( dev, rc80211_pick_best ( dev ) ); |
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254 | return; |
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255 | } |
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256 | |
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257 | if ( net_good < 0 ) /* insufficient data */ |
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258 | return; |
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259 | |
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260 | if ( net_good > RC_GOODNESS_MAX && dev->rate + 1 < dev->nr_rates ) { |
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261 | int higher = rc80211_calc_net_goodness ( ctx, dev->rate + 1 ); |
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262 | if ( higher > net_good || higher < 0 ) |
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263 | rc80211_set_rate ( dev, dev->rate + 1 ); |
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264 | else |
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265 | rc80211_set_rate ( dev, rc80211_pick_best ( dev ) ); |
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266 | } |
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267 | |
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268 | if ( net_good < RC_GOODNESS_MIN ) { |
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269 | rc80211_set_rate ( dev, rc80211_pick_best ( dev ) ); |
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270 | } |
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271 | } |
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272 | |
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273 | /** |
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274 | * Update rate-control state |
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275 | * |
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276 | * @v dev 802.11 device |
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277 | * @v direction One of the direction constants TX or RX |
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278 | * @v rate_idx Index of rate at which packet was sent or received |
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279 | * @v retries Number of times packet was retried before success |
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280 | * @v failed If nonzero, the packet failed to get through |
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281 | */ |
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282 | static void rc80211_update ( struct net80211_device *dev, int direction, |
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283 | int rate_idx, int retries, int failed ) |
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284 | { |
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285 | struct rc80211_ctx *ctx = dev->rctl; |
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286 | u32 goodness = ctx->goodness[direction][rate_idx]; |
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287 | |
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288 | if ( ctx->count[direction][rate_idx] < 16 ) |
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289 | ctx->count[direction][rate_idx]++; |
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290 | |
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291 | goodness <<= 2; |
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292 | if ( failed ) |
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293 | goodness |= RC_PKT_FAILED; |
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294 | else if ( retries > 1 ) |
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295 | goodness |= RC_PKT_RETRIED_MULTI; |
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296 | else if ( retries ) |
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297 | goodness |= RC_PKT_RETRIED_ONCE; |
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298 | else |
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299 | goodness |= RC_PKT_OK; |
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300 | |
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301 | ctx->goodness[direction][rate_idx] = goodness; |
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302 | |
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303 | ctx->packets++; |
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304 | |
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305 | rc80211_maybe_set_new ( dev ); |
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306 | } |
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307 | |
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308 | /** |
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309 | * Update rate-control state for transmitted packet |
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310 | * |
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311 | * @v dev 802.11 device |
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312 | * @v retries Number of times packet was transmitted before success |
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313 | * @v rc Return status code for transmission |
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314 | */ |
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315 | void rc80211_update_tx ( struct net80211_device *dev, int retries, int rc ) |
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316 | { |
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317 | struct rc80211_ctx *ctx = dev->rctl; |
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318 | |
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319 | if ( ! ctx->started ) |
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320 | return; |
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321 | |
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322 | rc80211_update ( dev, TX, dev->rate, retries, rc ); |
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323 | |
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324 | /* Check if the last RC_TX_EMERG_FAIL packets have all failed */ |
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325 | if ( ! ( ctx->goodness[TX][dev->rate] & |
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326 | ( ( 1 << ( 2 * RC_TX_EMERG_FAIL ) ) - 1 ) ) ) { |
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327 | if ( dev->rate == 0 ) |
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328 | DBGC ( dev->rctl, "802.11 RC %p saw %d consecutive " |
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329 | "failed TX, but cannot lower rate any further\n", |
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330 | dev->rctl, RC_TX_EMERG_FAIL ); |
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331 | else { |
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332 | DBGC ( dev->rctl, "802.11 RC %p lowering rate (%d->%d " |
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333 | "Mbps) due to %d consecutive TX failures\n", |
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334 | dev->rctl, dev->rates[dev->rate] / 10, |
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335 | dev->rates[dev->rate - 1] / 10, |
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336 | RC_TX_EMERG_FAIL ); |
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337 | |
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338 | rc80211_set_rate ( dev, dev->rate - 1 ); |
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339 | } |
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340 | } |
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341 | } |
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342 | |
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343 | /** |
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344 | * Update rate-control state for received packet |
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345 | * |
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346 | * @v dev 802.11 device |
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347 | * @v retry Whether the received packet had been retransmitted |
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348 | * @v rate Rate at which packet was received, in 100 kbps units |
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349 | */ |
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350 | void rc80211_update_rx ( struct net80211_device *dev, int retry, u16 rate ) |
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351 | { |
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352 | int ridx; |
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353 | |
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354 | for ( ridx = 0; ridx < dev->nr_rates && dev->rates[ridx] != rate; |
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355 | ridx++ ) |
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356 | ; |
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357 | if ( ridx >= dev->nr_rates ) |
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358 | return; /* couldn't find the rate */ |
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359 | |
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360 | rc80211_update ( dev, RX, ridx, retry, 0 ); |
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361 | } |
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362 | |
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363 | /** |
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364 | * Free rate-control context |
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365 | * |
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366 | * @v ctx Rate-control context |
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367 | */ |
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368 | void rc80211_free ( struct rc80211_ctx *ctx ) |
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369 | { |
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370 | free ( ctx ); |
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371 | } |
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