1 /* 2 * Copyright (c) 2010-2011 Atheros Communications Inc. 3 * 4 * Permission to use, copy, modify, and/or distribute this software for any 5 * purpose with or without fee is hereby granted, provided that the above 6 * copyright notice and this permission notice appear in all copies. 7 * 8 * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES 9 * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF 10 * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR 11 * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES 12 * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN 13 * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF 14 * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. 15 */ 16 17 #include <linux/export.h> 18 #include "hw.h" 19 #include "ar9003_phy.h" 20 21 #define AR9300_OFDM_RATES 8 22 #define AR9300_HT_SS_RATES 8 23 #define AR9300_HT_DS_RATES 8 24 #define AR9300_HT_TS_RATES 8 25 26 #define AR9300_11NA_OFDM_SHIFT 0 27 #define AR9300_11NA_HT_SS_SHIFT 8 28 #define AR9300_11NA_HT_DS_SHIFT 16 29 #define AR9300_11NA_HT_TS_SHIFT 24 30 31 #define AR9300_11NG_OFDM_SHIFT 4 32 #define AR9300_11NG_HT_SS_SHIFT 12 33 #define AR9300_11NG_HT_DS_SHIFT 20 34 #define AR9300_11NG_HT_TS_SHIFT 28 35 36 static const int firstep_table[] = 37 /* level: 0 1 2 3 4 5 6 7 8 */ 38 { -4, -2, 0, 2, 4, 6, 8, 10, 12 }; /* lvl 0-8, default 2 */ 39 40 static const int cycpwrThr1_table[] = 41 /* level: 0 1 2 3 4 5 6 7 8 */ 42 { -6, -4, -2, 0, 2, 4, 6, 8 }; /* lvl 0-7, default 3 */ 43 44 /* 45 * register values to turn OFDM weak signal detection OFF 46 */ 47 static const int m1ThreshLow_off = 127; 48 static const int m2ThreshLow_off = 127; 49 static const int m1Thresh_off = 127; 50 static const int m2Thresh_off = 127; 51 static const int m2CountThr_off = 31; 52 static const int m2CountThrLow_off = 63; 53 static const int m1ThreshLowExt_off = 127; 54 static const int m2ThreshLowExt_off = 127; 55 static const int m1ThreshExt_off = 127; 56 static const int m2ThreshExt_off = 127; 57 58 static const u8 ofdm2pwr[] = { 59 ALL_TARGET_LEGACY_6_24, 60 ALL_TARGET_LEGACY_6_24, 61 ALL_TARGET_LEGACY_6_24, 62 ALL_TARGET_LEGACY_6_24, 63 ALL_TARGET_LEGACY_6_24, 64 ALL_TARGET_LEGACY_36, 65 ALL_TARGET_LEGACY_48, 66 ALL_TARGET_LEGACY_54 67 }; 68 69 static const u8 mcs2pwr_ht20[] = { 70 ALL_TARGET_HT20_0_8_16, 71 ALL_TARGET_HT20_1_3_9_11_17_19, 72 ALL_TARGET_HT20_1_3_9_11_17_19, 73 ALL_TARGET_HT20_1_3_9_11_17_19, 74 ALL_TARGET_HT20_4, 75 ALL_TARGET_HT20_5, 76 ALL_TARGET_HT20_6, 77 ALL_TARGET_HT20_7, 78 ALL_TARGET_HT20_0_8_16, 79 ALL_TARGET_HT20_1_3_9_11_17_19, 80 ALL_TARGET_HT20_1_3_9_11_17_19, 81 ALL_TARGET_HT20_1_3_9_11_17_19, 82 ALL_TARGET_HT20_12, 83 ALL_TARGET_HT20_13, 84 ALL_TARGET_HT20_14, 85 ALL_TARGET_HT20_15, 86 ALL_TARGET_HT20_0_8_16, 87 ALL_TARGET_HT20_1_3_9_11_17_19, 88 ALL_TARGET_HT20_1_3_9_11_17_19, 89 ALL_TARGET_HT20_1_3_9_11_17_19, 90 ALL_TARGET_HT20_20, 91 ALL_TARGET_HT20_21, 92 ALL_TARGET_HT20_22, 93 ALL_TARGET_HT20_23 94 }; 95 96 static const u8 mcs2pwr_ht40[] = { 97 ALL_TARGET_HT40_0_8_16, 98 ALL_TARGET_HT40_1_3_9_11_17_19, 99 ALL_TARGET_HT40_1_3_9_11_17_19, 100 ALL_TARGET_HT40_1_3_9_11_17_19, 101 ALL_TARGET_HT40_4, 102 ALL_TARGET_HT40_5, 103 ALL_TARGET_HT40_6, 104 ALL_TARGET_HT40_7, 105 ALL_TARGET_HT40_0_8_16, 106 ALL_TARGET_HT40_1_3_9_11_17_19, 107 ALL_TARGET_HT40_1_3_9_11_17_19, 108 ALL_TARGET_HT40_1_3_9_11_17_19, 109 ALL_TARGET_HT40_12, 110 ALL_TARGET_HT40_13, 111 ALL_TARGET_HT40_14, 112 ALL_TARGET_HT40_15, 113 ALL_TARGET_HT40_0_8_16, 114 ALL_TARGET_HT40_1_3_9_11_17_19, 115 ALL_TARGET_HT40_1_3_9_11_17_19, 116 ALL_TARGET_HT40_1_3_9_11_17_19, 117 ALL_TARGET_HT40_20, 118 ALL_TARGET_HT40_21, 119 ALL_TARGET_HT40_22, 120 ALL_TARGET_HT40_23, 121 }; 122 123 /** 124 * ar9003_hw_set_channel - set channel on single-chip device 125 * @ah: atheros hardware structure 126 * @chan: 127 * 128 * This is the function to change channel on single-chip devices, that is 129 * for AR9300 family of chipsets. 130 * 131 * This function takes the channel value in MHz and sets 132 * hardware channel value. Assumes writes have been enabled to analog bus. 133 * 134 * Actual Expression, 135 * 136 * For 2GHz channel, 137 * Channel Frequency = (3/4) * freq_ref * (chansel[8:0] + chanfrac[16:0]/2^17) 138 * (freq_ref = 40MHz) 139 * 140 * For 5GHz channel, 141 * Channel Frequency = (3/2) * freq_ref * (chansel[8:0] + chanfrac[16:0]/2^10) 142 * (freq_ref = 40MHz/(24>>amodeRefSel)) 143 * 144 * For 5GHz channels which are 5MHz spaced, 145 * Channel Frequency = (3/2) * freq_ref * (chansel[8:0] + chanfrac[16:0]/2^17) 146 * (freq_ref = 40MHz) 147 */ 148 static int ar9003_hw_set_channel(struct ath_hw *ah, struct ath9k_channel *chan) 149 { 150 u16 bMode, fracMode = 0, aModeRefSel = 0; 151 u32 freq, chan_frac, div, channelSel = 0, reg32 = 0; 152 struct chan_centers centers; 153 int loadSynthChannel; 154 155 ath9k_hw_get_channel_centers(ah, chan, ¢ers); 156 freq = centers.synth_center; 157 158 if (freq < 4800) { /* 2 GHz, fractional mode */ 159 if (AR_SREV_9330(ah)) { 160 if (ah->is_clk_25mhz) 161 div = 75; 162 else 163 div = 120; 164 165 channelSel = (freq * 4) / div; 166 chan_frac = (((freq * 4) % div) * 0x20000) / div; 167 channelSel = (channelSel << 17) | chan_frac; 168 } else if (AR_SREV_9485(ah) || AR_SREV_9565(ah)) { 169 /* 170 * freq_ref = 40 / (refdiva >> amoderefsel); 171 * where refdiva=1 and amoderefsel=0 172 * ndiv = ((chan_mhz * 4) / 3) / freq_ref; 173 * chansel = int(ndiv), chanfrac = (ndiv - chansel) * 0x20000 174 */ 175 channelSel = (freq * 4) / 120; 176 chan_frac = (((freq * 4) % 120) * 0x20000) / 120; 177 channelSel = (channelSel << 17) | chan_frac; 178 } else if (AR_SREV_9340(ah)) { 179 if (ah->is_clk_25mhz) { 180 channelSel = (freq * 2) / 75; 181 chan_frac = (((freq * 2) % 75) * 0x20000) / 75; 182 channelSel = (channelSel << 17) | chan_frac; 183 } else { 184 channelSel = CHANSEL_2G(freq) >> 1; 185 } 186 } else if (AR_SREV_9550(ah) || AR_SREV_9531(ah) || 187 AR_SREV_9561(ah)) { 188 if (ah->is_clk_25mhz) 189 div = 75; 190 else 191 div = 120; 192 193 channelSel = (freq * 4) / div; 194 chan_frac = (((freq * 4) % div) * 0x20000) / div; 195 channelSel = (channelSel << 17) | chan_frac; 196 } else { 197 channelSel = CHANSEL_2G(freq); 198 } 199 /* Set to 2G mode */ 200 bMode = 1; 201 } else { 202 if ((AR_SREV_9340(ah) || AR_SREV_9550(ah) || 203 AR_SREV_9531(ah) || AR_SREV_9561(ah)) && 204 ah->is_clk_25mhz) { 205 channelSel = freq / 75; 206 chan_frac = ((freq % 75) * 0x20000) / 75; 207 channelSel = (channelSel << 17) | chan_frac; 208 } else { 209 channelSel = CHANSEL_5G(freq); 210 /* Doubler is ON, so, divide channelSel by 2. */ 211 channelSel >>= 1; 212 } 213 /* Set to 5G mode */ 214 bMode = 0; 215 } 216 217 /* Enable fractional mode for all channels */ 218 fracMode = 1; 219 aModeRefSel = 0; 220 loadSynthChannel = 0; 221 222 reg32 = (bMode << 29); 223 REG_WRITE(ah, AR_PHY_SYNTH_CONTROL, reg32); 224 225 /* Enable Long shift Select for Synthesizer */ 226 REG_RMW_FIELD(ah, AR_PHY_65NM_CH0_SYNTH4, 227 AR_PHY_SYNTH4_LONG_SHIFT_SELECT, 1); 228 229 /* Program Synth. setting */ 230 reg32 = (channelSel << 2) | (fracMode << 30) | 231 (aModeRefSel << 28) | (loadSynthChannel << 31); 232 REG_WRITE(ah, AR_PHY_65NM_CH0_SYNTH7, reg32); 233 234 /* Toggle Load Synth channel bit */ 235 loadSynthChannel = 1; 236 reg32 = (channelSel << 2) | (fracMode << 30) | 237 (aModeRefSel << 28) | (loadSynthChannel << 31); 238 REG_WRITE(ah, AR_PHY_65NM_CH0_SYNTH7, reg32); 239 240 ah->curchan = chan; 241 242 return 0; 243 } 244 245 /** 246 * ar9003_hw_spur_mitigate_mrc_cck - convert baseband spur frequency 247 * @ah: atheros hardware structure 248 * @chan: 249 * 250 * For single-chip solutions. Converts to baseband spur frequency given the 251 * input channel frequency and compute register settings below. 252 * 253 * Spur mitigation for MRC CCK 254 */ 255 static void ar9003_hw_spur_mitigate_mrc_cck(struct ath_hw *ah, 256 struct ath9k_channel *chan) 257 { 258 static const u32 spur_freq[4] = { 2420, 2440, 2464, 2480 }; 259 int cur_bb_spur, negative = 0, cck_spur_freq; 260 int i; 261 int range, max_spur_cnts, synth_freq; 262 u8 *spur_fbin_ptr = ar9003_get_spur_chan_ptr(ah, IS_CHAN_2GHZ(chan)); 263 264 /* 265 * Need to verify range +/- 10 MHz in control channel, otherwise spur 266 * is out-of-band and can be ignored. 267 */ 268 269 if (AR_SREV_9485(ah) || AR_SREV_9340(ah) || AR_SREV_9330(ah) || 270 AR_SREV_9550(ah) || AR_SREV_9561(ah)) { 271 if (spur_fbin_ptr[0] == 0) /* No spur */ 272 return; 273 max_spur_cnts = 5; 274 if (IS_CHAN_HT40(chan)) { 275 range = 19; 276 if (REG_READ_FIELD(ah, AR_PHY_GEN_CTRL, 277 AR_PHY_GC_DYN2040_PRI_CH) == 0) 278 synth_freq = chan->channel + 10; 279 else 280 synth_freq = chan->channel - 10; 281 } else { 282 range = 10; 283 synth_freq = chan->channel; 284 } 285 } else { 286 range = AR_SREV_9462(ah) ? 5 : 10; 287 max_spur_cnts = 4; 288 synth_freq = chan->channel; 289 } 290 291 for (i = 0; i < max_spur_cnts; i++) { 292 if (AR_SREV_9462(ah) && (i == 0 || i == 3)) 293 continue; 294 295 negative = 0; 296 if (AR_SREV_9485(ah) || AR_SREV_9340(ah) || AR_SREV_9330(ah) || 297 AR_SREV_9550(ah) || AR_SREV_9561(ah)) 298 cur_bb_spur = ath9k_hw_fbin2freq(spur_fbin_ptr[i], 299 IS_CHAN_2GHZ(chan)); 300 else 301 cur_bb_spur = spur_freq[i]; 302 303 cur_bb_spur -= synth_freq; 304 if (cur_bb_spur < 0) { 305 negative = 1; 306 cur_bb_spur = -cur_bb_spur; 307 } 308 if (cur_bb_spur < range) { 309 cck_spur_freq = (int)((cur_bb_spur << 19) / 11); 310 311 if (negative == 1) 312 cck_spur_freq = -cck_spur_freq; 313 314 cck_spur_freq = cck_spur_freq & 0xfffff; 315 316 REG_RMW_FIELD(ah, AR_PHY_AGC_CONTROL, 317 AR_PHY_AGC_CONTROL_YCOK_MAX, 0x7); 318 REG_RMW_FIELD(ah, AR_PHY_CCK_SPUR_MIT, 319 AR_PHY_CCK_SPUR_MIT_SPUR_RSSI_THR, 0x7f); 320 REG_RMW_FIELD(ah, AR_PHY_CCK_SPUR_MIT, 321 AR_PHY_CCK_SPUR_MIT_SPUR_FILTER_TYPE, 322 0x2); 323 REG_RMW_FIELD(ah, AR_PHY_CCK_SPUR_MIT, 324 AR_PHY_CCK_SPUR_MIT_USE_CCK_SPUR_MIT, 325 0x1); 326 REG_RMW_FIELD(ah, AR_PHY_CCK_SPUR_MIT, 327 AR_PHY_CCK_SPUR_MIT_CCK_SPUR_FREQ, 328 cck_spur_freq); 329 330 return; 331 } 332 } 333 334 REG_RMW_FIELD(ah, AR_PHY_AGC_CONTROL, 335 AR_PHY_AGC_CONTROL_YCOK_MAX, 0x5); 336 REG_RMW_FIELD(ah, AR_PHY_CCK_SPUR_MIT, 337 AR_PHY_CCK_SPUR_MIT_USE_CCK_SPUR_MIT, 0x0); 338 REG_RMW_FIELD(ah, AR_PHY_CCK_SPUR_MIT, 339 AR_PHY_CCK_SPUR_MIT_CCK_SPUR_FREQ, 0x0); 340 } 341 342 /* Clean all spur register fields */ 343 static void ar9003_hw_spur_ofdm_clear(struct ath_hw *ah) 344 { 345 REG_RMW_FIELD(ah, AR_PHY_TIMING4, 346 AR_PHY_TIMING4_ENABLE_SPUR_FILTER, 0); 347 REG_RMW_FIELD(ah, AR_PHY_TIMING11, 348 AR_PHY_TIMING11_SPUR_FREQ_SD, 0); 349 REG_RMW_FIELD(ah, AR_PHY_TIMING11, 350 AR_PHY_TIMING11_SPUR_DELTA_PHASE, 0); 351 REG_RMW_FIELD(ah, AR_PHY_SFCORR_EXT, 352 AR_PHY_SFCORR_EXT_SPUR_SUBCHANNEL_SD, 0); 353 REG_RMW_FIELD(ah, AR_PHY_TIMING11, 354 AR_PHY_TIMING11_USE_SPUR_FILTER_IN_AGC, 0); 355 REG_RMW_FIELD(ah, AR_PHY_TIMING11, 356 AR_PHY_TIMING11_USE_SPUR_FILTER_IN_SELFCOR, 0); 357 REG_RMW_FIELD(ah, AR_PHY_TIMING4, 358 AR_PHY_TIMING4_ENABLE_SPUR_RSSI, 0); 359 REG_RMW_FIELD(ah, AR_PHY_SPUR_REG, 360 AR_PHY_SPUR_REG_EN_VIT_SPUR_RSSI, 0); 361 REG_RMW_FIELD(ah, AR_PHY_SPUR_REG, 362 AR_PHY_SPUR_REG_ENABLE_NF_RSSI_SPUR_MIT, 0); 363 364 REG_RMW_FIELD(ah, AR_PHY_SPUR_REG, 365 AR_PHY_SPUR_REG_ENABLE_MASK_PPM, 0); 366 REG_RMW_FIELD(ah, AR_PHY_TIMING4, 367 AR_PHY_TIMING4_ENABLE_PILOT_MASK, 0); 368 REG_RMW_FIELD(ah, AR_PHY_TIMING4, 369 AR_PHY_TIMING4_ENABLE_CHAN_MASK, 0); 370 REG_RMW_FIELD(ah, AR_PHY_PILOT_SPUR_MASK, 371 AR_PHY_PILOT_SPUR_MASK_CF_PILOT_MASK_IDX_A, 0); 372 REG_RMW_FIELD(ah, AR_PHY_SPUR_MASK_A, 373 AR_PHY_SPUR_MASK_A_CF_PUNC_MASK_IDX_A, 0); 374 REG_RMW_FIELD(ah, AR_PHY_CHAN_SPUR_MASK, 375 AR_PHY_CHAN_SPUR_MASK_CF_CHAN_MASK_IDX_A, 0); 376 REG_RMW_FIELD(ah, AR_PHY_PILOT_SPUR_MASK, 377 AR_PHY_PILOT_SPUR_MASK_CF_PILOT_MASK_A, 0); 378 REG_RMW_FIELD(ah, AR_PHY_CHAN_SPUR_MASK, 379 AR_PHY_CHAN_SPUR_MASK_CF_CHAN_MASK_A, 0); 380 REG_RMW_FIELD(ah, AR_PHY_SPUR_MASK_A, 381 AR_PHY_SPUR_MASK_A_CF_PUNC_MASK_A, 0); 382 REG_RMW_FIELD(ah, AR_PHY_SPUR_REG, 383 AR_PHY_SPUR_REG_MASK_RATE_CNTL, 0); 384 } 385 386 static void ar9003_hw_spur_ofdm(struct ath_hw *ah, 387 int freq_offset, 388 int spur_freq_sd, 389 int spur_delta_phase, 390 int spur_subchannel_sd, 391 int range, 392 int synth_freq) 393 { 394 int mask_index = 0; 395 396 /* OFDM Spur mitigation */ 397 REG_RMW_FIELD(ah, AR_PHY_TIMING4, 398 AR_PHY_TIMING4_ENABLE_SPUR_FILTER, 0x1); 399 REG_RMW_FIELD(ah, AR_PHY_TIMING11, 400 AR_PHY_TIMING11_SPUR_FREQ_SD, spur_freq_sd); 401 REG_RMW_FIELD(ah, AR_PHY_TIMING11, 402 AR_PHY_TIMING11_SPUR_DELTA_PHASE, spur_delta_phase); 403 REG_RMW_FIELD(ah, AR_PHY_SFCORR_EXT, 404 AR_PHY_SFCORR_EXT_SPUR_SUBCHANNEL_SD, spur_subchannel_sd); 405 REG_RMW_FIELD(ah, AR_PHY_TIMING11, 406 AR_PHY_TIMING11_USE_SPUR_FILTER_IN_AGC, 0x1); 407 408 if (!(AR_SREV_9565(ah) && range == 10 && synth_freq == 2437)) 409 REG_RMW_FIELD(ah, AR_PHY_TIMING11, 410 AR_PHY_TIMING11_USE_SPUR_FILTER_IN_SELFCOR, 0x1); 411 412 REG_RMW_FIELD(ah, AR_PHY_TIMING4, 413 AR_PHY_TIMING4_ENABLE_SPUR_RSSI, 0x1); 414 REG_RMW_FIELD(ah, AR_PHY_SPUR_REG, 415 AR_PHY_SPUR_REG_SPUR_RSSI_THRESH, 34); 416 REG_RMW_FIELD(ah, AR_PHY_SPUR_REG, 417 AR_PHY_SPUR_REG_EN_VIT_SPUR_RSSI, 1); 418 419 if (!AR_SREV_9340(ah) && 420 REG_READ_FIELD(ah, AR_PHY_MODE, 421 AR_PHY_MODE_DYNAMIC) == 0x1) 422 REG_RMW_FIELD(ah, AR_PHY_SPUR_REG, 423 AR_PHY_SPUR_REG_ENABLE_NF_RSSI_SPUR_MIT, 1); 424 425 mask_index = (freq_offset << 4) / 5; 426 if (mask_index < 0) 427 mask_index = mask_index - 1; 428 429 mask_index = mask_index & 0x7f; 430 431 REG_RMW_FIELD(ah, AR_PHY_SPUR_REG, 432 AR_PHY_SPUR_REG_ENABLE_MASK_PPM, 0x1); 433 REG_RMW_FIELD(ah, AR_PHY_TIMING4, 434 AR_PHY_TIMING4_ENABLE_PILOT_MASK, 0x1); 435 REG_RMW_FIELD(ah, AR_PHY_TIMING4, 436 AR_PHY_TIMING4_ENABLE_CHAN_MASK, 0x1); 437 REG_RMW_FIELD(ah, AR_PHY_PILOT_SPUR_MASK, 438 AR_PHY_PILOT_SPUR_MASK_CF_PILOT_MASK_IDX_A, mask_index); 439 REG_RMW_FIELD(ah, AR_PHY_SPUR_MASK_A, 440 AR_PHY_SPUR_MASK_A_CF_PUNC_MASK_IDX_A, mask_index); 441 REG_RMW_FIELD(ah, AR_PHY_CHAN_SPUR_MASK, 442 AR_PHY_CHAN_SPUR_MASK_CF_CHAN_MASK_IDX_A, mask_index); 443 REG_RMW_FIELD(ah, AR_PHY_PILOT_SPUR_MASK, 444 AR_PHY_PILOT_SPUR_MASK_CF_PILOT_MASK_A, 0xc); 445 REG_RMW_FIELD(ah, AR_PHY_CHAN_SPUR_MASK, 446 AR_PHY_CHAN_SPUR_MASK_CF_CHAN_MASK_A, 0xc); 447 REG_RMW_FIELD(ah, AR_PHY_SPUR_MASK_A, 448 AR_PHY_SPUR_MASK_A_CF_PUNC_MASK_A, 0xa0); 449 REG_RMW_FIELD(ah, AR_PHY_SPUR_REG, 450 AR_PHY_SPUR_REG_MASK_RATE_CNTL, 0xff); 451 } 452 453 static void ar9003_hw_spur_ofdm_9565(struct ath_hw *ah, 454 int freq_offset) 455 { 456 int mask_index = 0; 457 458 mask_index = (freq_offset << 4) / 5; 459 if (mask_index < 0) 460 mask_index = mask_index - 1; 461 462 mask_index = mask_index & 0x7f; 463 464 REG_RMW_FIELD(ah, AR_PHY_PILOT_SPUR_MASK, 465 AR_PHY_PILOT_SPUR_MASK_CF_PILOT_MASK_IDX_B, 466 mask_index); 467 468 /* A == B */ 469 REG_RMW_FIELD(ah, AR_PHY_SPUR_MASK_B, 470 AR_PHY_SPUR_MASK_A_CF_PUNC_MASK_IDX_A, 471 mask_index); 472 473 REG_RMW_FIELD(ah, AR_PHY_CHAN_SPUR_MASK, 474 AR_PHY_CHAN_SPUR_MASK_CF_CHAN_MASK_IDX_B, 475 mask_index); 476 REG_RMW_FIELD(ah, AR_PHY_PILOT_SPUR_MASK, 477 AR_PHY_PILOT_SPUR_MASK_CF_PILOT_MASK_B, 0xe); 478 REG_RMW_FIELD(ah, AR_PHY_CHAN_SPUR_MASK, 479 AR_PHY_CHAN_SPUR_MASK_CF_CHAN_MASK_B, 0xe); 480 481 /* A == B */ 482 REG_RMW_FIELD(ah, AR_PHY_SPUR_MASK_B, 483 AR_PHY_SPUR_MASK_A_CF_PUNC_MASK_A, 0xa0); 484 } 485 486 static void ar9003_hw_spur_ofdm_work(struct ath_hw *ah, 487 struct ath9k_channel *chan, 488 int freq_offset, 489 int range, 490 int synth_freq) 491 { 492 int spur_freq_sd = 0; 493 int spur_subchannel_sd = 0; 494 int spur_delta_phase = 0; 495 496 if (IS_CHAN_HT40(chan)) { 497 if (freq_offset < 0) { 498 if (REG_READ_FIELD(ah, AR_PHY_GEN_CTRL, 499 AR_PHY_GC_DYN2040_PRI_CH) == 0x0) 500 spur_subchannel_sd = 1; 501 else 502 spur_subchannel_sd = 0; 503 504 spur_freq_sd = ((freq_offset + 10) << 9) / 11; 505 506 } else { 507 if (REG_READ_FIELD(ah, AR_PHY_GEN_CTRL, 508 AR_PHY_GC_DYN2040_PRI_CH) == 0x0) 509 spur_subchannel_sd = 0; 510 else 511 spur_subchannel_sd = 1; 512 513 spur_freq_sd = ((freq_offset - 10) << 9) / 11; 514 515 } 516 517 spur_delta_phase = (freq_offset << 17) / 5; 518 519 } else { 520 spur_subchannel_sd = 0; 521 spur_freq_sd = (freq_offset << 9) /11; 522 spur_delta_phase = (freq_offset << 18) / 5; 523 } 524 525 spur_freq_sd = spur_freq_sd & 0x3ff; 526 spur_delta_phase = spur_delta_phase & 0xfffff; 527 528 ar9003_hw_spur_ofdm(ah, 529 freq_offset, 530 spur_freq_sd, 531 spur_delta_phase, 532 spur_subchannel_sd, 533 range, synth_freq); 534 } 535 536 /* Spur mitigation for OFDM */ 537 static void ar9003_hw_spur_mitigate_ofdm(struct ath_hw *ah, 538 struct ath9k_channel *chan) 539 { 540 int synth_freq; 541 int range = 10; 542 int freq_offset = 0; 543 int mode; 544 u8* spurChansPtr; 545 unsigned int i; 546 struct ar9300_eeprom *eep = &ah->eeprom.ar9300_eep; 547 548 if (IS_CHAN_5GHZ(chan)) { 549 spurChansPtr = &(eep->modalHeader5G.spurChans[0]); 550 mode = 0; 551 } 552 else { 553 spurChansPtr = &(eep->modalHeader2G.spurChans[0]); 554 mode = 1; 555 } 556 557 if (spurChansPtr[0] == 0) 558 return; /* No spur in the mode */ 559 560 if (IS_CHAN_HT40(chan)) { 561 range = 19; 562 if (REG_READ_FIELD(ah, AR_PHY_GEN_CTRL, 563 AR_PHY_GC_DYN2040_PRI_CH) == 0x0) 564 synth_freq = chan->channel - 10; 565 else 566 synth_freq = chan->channel + 10; 567 } else { 568 range = 10; 569 synth_freq = chan->channel; 570 } 571 572 ar9003_hw_spur_ofdm_clear(ah); 573 574 for (i = 0; i < AR_EEPROM_MODAL_SPURS && spurChansPtr[i]; i++) { 575 freq_offset = ath9k_hw_fbin2freq(spurChansPtr[i], mode); 576 freq_offset -= synth_freq; 577 if (abs(freq_offset) < range) { 578 ar9003_hw_spur_ofdm_work(ah, chan, freq_offset, 579 range, synth_freq); 580 581 if (AR_SREV_9565(ah) && (i < 4)) { 582 freq_offset = ath9k_hw_fbin2freq(spurChansPtr[i + 1], 583 mode); 584 freq_offset -= synth_freq; 585 if (abs(freq_offset) < range) 586 ar9003_hw_spur_ofdm_9565(ah, freq_offset); 587 } 588 589 break; 590 } 591 } 592 } 593 594 static void ar9003_hw_spur_mitigate(struct ath_hw *ah, 595 struct ath9k_channel *chan) 596 { 597 if (!AR_SREV_9565(ah)) 598 ar9003_hw_spur_mitigate_mrc_cck(ah, chan); 599 ar9003_hw_spur_mitigate_ofdm(ah, chan); 600 } 601 602 static u32 ar9003_hw_compute_pll_control_soc(struct ath_hw *ah, 603 struct ath9k_channel *chan) 604 { 605 u32 pll; 606 607 pll = SM(0x5, AR_RTC_9300_SOC_PLL_REFDIV); 608 609 if (chan && IS_CHAN_HALF_RATE(chan)) 610 pll |= SM(0x1, AR_RTC_9300_SOC_PLL_CLKSEL); 611 else if (chan && IS_CHAN_QUARTER_RATE(chan)) 612 pll |= SM(0x2, AR_RTC_9300_SOC_PLL_CLKSEL); 613 614 pll |= SM(0x2c, AR_RTC_9300_SOC_PLL_DIV_INT); 615 616 return pll; 617 } 618 619 static u32 ar9003_hw_compute_pll_control(struct ath_hw *ah, 620 struct ath9k_channel *chan) 621 { 622 u32 pll; 623 624 pll = SM(0x5, AR_RTC_9300_PLL_REFDIV); 625 626 if (chan && IS_CHAN_HALF_RATE(chan)) 627 pll |= SM(0x1, AR_RTC_9300_PLL_CLKSEL); 628 else if (chan && IS_CHAN_QUARTER_RATE(chan)) 629 pll |= SM(0x2, AR_RTC_9300_PLL_CLKSEL); 630 631 pll |= SM(0x2c, AR_RTC_9300_PLL_DIV); 632 633 return pll; 634 } 635 636 static void ar9003_hw_set_channel_regs(struct ath_hw *ah, 637 struct ath9k_channel *chan) 638 { 639 u32 phymode; 640 u32 enableDacFifo = 0; 641 642 enableDacFifo = 643 (REG_READ(ah, AR_PHY_GEN_CTRL) & AR_PHY_GC_ENABLE_DAC_FIFO); 644 645 /* Enable 11n HT, 20 MHz */ 646 phymode = AR_PHY_GC_HT_EN | AR_PHY_GC_SHORT_GI_40 | enableDacFifo; 647 648 if (!AR_SREV_9561(ah)) 649 phymode |= AR_PHY_GC_SINGLE_HT_LTF1; 650 651 /* Configure baseband for dynamic 20/40 operation */ 652 if (IS_CHAN_HT40(chan)) { 653 phymode |= AR_PHY_GC_DYN2040_EN; 654 /* Configure control (primary) channel at +-10MHz */ 655 if (IS_CHAN_HT40PLUS(chan)) 656 phymode |= AR_PHY_GC_DYN2040_PRI_CH; 657 658 } 659 660 /* make sure we preserve INI settings */ 661 phymode |= REG_READ(ah, AR_PHY_GEN_CTRL); 662 /* turn off Green Field detection for STA for now */ 663 phymode &= ~AR_PHY_GC_GF_DETECT_EN; 664 665 REG_WRITE(ah, AR_PHY_GEN_CTRL, phymode); 666 667 /* Configure MAC for 20/40 operation */ 668 ath9k_hw_set11nmac2040(ah, chan); 669 670 /* global transmit timeout (25 TUs default)*/ 671 REG_WRITE(ah, AR_GTXTO, 25 << AR_GTXTO_TIMEOUT_LIMIT_S); 672 /* carrier sense timeout */ 673 REG_WRITE(ah, AR_CST, 0xF << AR_CST_TIMEOUT_LIMIT_S); 674 } 675 676 static void ar9003_hw_init_bb(struct ath_hw *ah, 677 struct ath9k_channel *chan) 678 { 679 u32 synthDelay; 680 681 /* 682 * Wait for the frequency synth to settle (synth goes on 683 * via AR_PHY_ACTIVE_EN). Read the phy active delay register. 684 * Value is in 100ns increments. 685 */ 686 synthDelay = REG_READ(ah, AR_PHY_RX_DELAY) & AR_PHY_RX_DELAY_DELAY; 687 688 /* Activate the PHY (includes baseband activate + synthesizer on) */ 689 REG_WRITE(ah, AR_PHY_ACTIVE, AR_PHY_ACTIVE_EN); 690 ath9k_hw_synth_delay(ah, chan, synthDelay); 691 } 692 693 void ar9003_hw_set_chain_masks(struct ath_hw *ah, u8 rx, u8 tx) 694 { 695 if (ah->caps.tx_chainmask == 5 || ah->caps.rx_chainmask == 5) 696 REG_SET_BIT(ah, AR_PHY_ANALOG_SWAP, 697 AR_PHY_SWAP_ALT_CHAIN); 698 699 REG_WRITE(ah, AR_PHY_RX_CHAINMASK, rx); 700 REG_WRITE(ah, AR_PHY_CAL_CHAINMASK, rx); 701 702 if ((ah->caps.hw_caps & ATH9K_HW_CAP_APM) && (tx == 0x7)) 703 tx = 3; 704 705 REG_WRITE(ah, AR_SELFGEN_MASK, tx); 706 } 707 708 /* 709 * Override INI values with chip specific configuration. 710 */ 711 static void ar9003_hw_override_ini(struct ath_hw *ah) 712 { 713 u32 val; 714 715 /* 716 * Set the RX_ABORT and RX_DIS and clear it only after 717 * RXE is set for MAC. This prevents frames with 718 * corrupted descriptor status. 719 */ 720 REG_SET_BIT(ah, AR_DIAG_SW, (AR_DIAG_RX_DIS | AR_DIAG_RX_ABORT)); 721 722 /* 723 * For AR9280 and above, there is a new feature that allows 724 * Multicast search based on both MAC Address and Key ID. By default, 725 * this feature is enabled. But since the driver is not using this 726 * feature, we switch it off; otherwise multicast search based on 727 * MAC addr only will fail. 728 */ 729 val = REG_READ(ah, AR_PCU_MISC_MODE2) & (~AR_ADHOC_MCAST_KEYID_ENABLE); 730 val |= AR_AGG_WEP_ENABLE_FIX | 731 AR_AGG_WEP_ENABLE | 732 AR_PCU_MISC_MODE2_CFP_IGNORE; 733 REG_WRITE(ah, AR_PCU_MISC_MODE2, val); 734 735 if (AR_SREV_9462(ah) || AR_SREV_9565(ah)) { 736 REG_WRITE(ah, AR_GLB_SWREG_DISCONT_MODE, 737 AR_GLB_SWREG_DISCONT_EN_BT_WLAN); 738 739 if (REG_READ_FIELD(ah, AR_PHY_TX_IQCAL_CONTROL_0, 740 AR_PHY_TX_IQCAL_CONTROL_0_ENABLE_TXIQ_CAL)) 741 ah->enabled_cals |= TX_IQ_CAL; 742 else 743 ah->enabled_cals &= ~TX_IQ_CAL; 744 745 } 746 747 if (REG_READ(ah, AR_PHY_CL_CAL_CTL) & AR_PHY_CL_CAL_ENABLE) 748 ah->enabled_cals |= TX_CL_CAL; 749 else 750 ah->enabled_cals &= ~TX_CL_CAL; 751 752 if (AR_SREV_9340(ah) || AR_SREV_9531(ah) || AR_SREV_9550(ah) || 753 AR_SREV_9561(ah)) { 754 if (ah->is_clk_25mhz) { 755 REG_WRITE(ah, AR_RTC_DERIVED_CLK, 0x17c << 1); 756 REG_WRITE(ah, AR_SLP32_MODE, 0x0010f3d7); 757 REG_WRITE(ah, AR_SLP32_INC, 0x0001e7ae); 758 } else { 759 REG_WRITE(ah, AR_RTC_DERIVED_CLK, 0x261 << 1); 760 REG_WRITE(ah, AR_SLP32_MODE, 0x0010f400); 761 REG_WRITE(ah, AR_SLP32_INC, 0x0001e800); 762 } 763 udelay(100); 764 } 765 } 766 767 static void ar9003_hw_prog_ini(struct ath_hw *ah, 768 struct ar5416IniArray *iniArr, 769 int column) 770 { 771 unsigned int i, regWrites = 0; 772 773 /* New INI format: Array may be undefined (pre, core, post arrays) */ 774 if (!iniArr->ia_array) 775 return; 776 777 /* 778 * New INI format: Pre, core, and post arrays for a given subsystem 779 * may be modal (> 2 columns) or non-modal (2 columns). Determine if 780 * the array is non-modal and force the column to 1. 781 */ 782 if (column >= iniArr->ia_columns) 783 column = 1; 784 785 for (i = 0; i < iniArr->ia_rows; i++) { 786 u32 reg = INI_RA(iniArr, i, 0); 787 u32 val = INI_RA(iniArr, i, column); 788 789 REG_WRITE(ah, reg, val); 790 791 DO_DELAY(regWrites); 792 } 793 } 794 795 static int ar9550_hw_get_modes_txgain_index(struct ath_hw *ah, 796 struct ath9k_channel *chan) 797 { 798 int ret; 799 800 if (IS_CHAN_2GHZ(chan)) { 801 if (IS_CHAN_HT40(chan)) 802 return 7; 803 else 804 return 8; 805 } 806 807 if (chan->channel <= 5350) 808 ret = 1; 809 else if ((chan->channel > 5350) && (chan->channel <= 5600)) 810 ret = 3; 811 else 812 ret = 5; 813 814 if (IS_CHAN_HT40(chan)) 815 ret++; 816 817 return ret; 818 } 819 820 static int ar9561_hw_get_modes_txgain_index(struct ath_hw *ah, 821 struct ath9k_channel *chan) 822 { 823 if (IS_CHAN_2GHZ(chan)) { 824 if (IS_CHAN_HT40(chan)) 825 return 1; 826 else 827 return 2; 828 } 829 830 return 0; 831 } 832 833 static void ar9003_doubler_fix(struct ath_hw *ah) 834 { 835 if (AR_SREV_9300(ah) || AR_SREV_9580(ah) || AR_SREV_9550(ah)) { 836 REG_RMW(ah, AR_PHY_65NM_CH0_RXTX2, 837 1 << AR_PHY_65NM_CH0_RXTX2_SYNTHON_MASK_S | 838 1 << AR_PHY_65NM_CH0_RXTX2_SYNTHOVR_MASK_S, 0); 839 REG_RMW(ah, AR_PHY_65NM_CH1_RXTX2, 840 1 << AR_PHY_65NM_CH0_RXTX2_SYNTHON_MASK_S | 841 1 << AR_PHY_65NM_CH0_RXTX2_SYNTHOVR_MASK_S, 0); 842 REG_RMW(ah, AR_PHY_65NM_CH2_RXTX2, 843 1 << AR_PHY_65NM_CH0_RXTX2_SYNTHON_MASK_S | 844 1 << AR_PHY_65NM_CH0_RXTX2_SYNTHOVR_MASK_S, 0); 845 846 udelay(200); 847 848 REG_CLR_BIT(ah, AR_PHY_65NM_CH0_RXTX2, 849 AR_PHY_65NM_CH0_RXTX2_SYNTHON_MASK); 850 REG_CLR_BIT(ah, AR_PHY_65NM_CH1_RXTX2, 851 AR_PHY_65NM_CH0_RXTX2_SYNTHON_MASK); 852 REG_CLR_BIT(ah, AR_PHY_65NM_CH2_RXTX2, 853 AR_PHY_65NM_CH0_RXTX2_SYNTHON_MASK); 854 855 udelay(1); 856 857 REG_RMW_FIELD(ah, AR_PHY_65NM_CH0_RXTX2, 858 AR_PHY_65NM_CH0_RXTX2_SYNTHON_MASK, 1); 859 REG_RMW_FIELD(ah, AR_PHY_65NM_CH1_RXTX2, 860 AR_PHY_65NM_CH0_RXTX2_SYNTHON_MASK, 1); 861 REG_RMW_FIELD(ah, AR_PHY_65NM_CH2_RXTX2, 862 AR_PHY_65NM_CH0_RXTX2_SYNTHON_MASK, 1); 863 864 udelay(200); 865 866 REG_RMW_FIELD(ah, AR_PHY_65NM_CH0_SYNTH12, 867 AR_PHY_65NM_CH0_SYNTH12_VREFMUL3, 0xf); 868 869 REG_RMW(ah, AR_PHY_65NM_CH0_RXTX2, 0, 870 1 << AR_PHY_65NM_CH0_RXTX2_SYNTHON_MASK_S | 871 1 << AR_PHY_65NM_CH0_RXTX2_SYNTHOVR_MASK_S); 872 REG_RMW(ah, AR_PHY_65NM_CH1_RXTX2, 0, 873 1 << AR_PHY_65NM_CH0_RXTX2_SYNTHON_MASK_S | 874 1 << AR_PHY_65NM_CH0_RXTX2_SYNTHOVR_MASK_S); 875 REG_RMW(ah, AR_PHY_65NM_CH2_RXTX2, 0, 876 1 << AR_PHY_65NM_CH0_RXTX2_SYNTHON_MASK_S | 877 1 << AR_PHY_65NM_CH0_RXTX2_SYNTHOVR_MASK_S); 878 } 879 } 880 881 static int ar9003_hw_process_ini(struct ath_hw *ah, 882 struct ath9k_channel *chan) 883 { 884 unsigned int regWrites = 0, i; 885 u32 modesIndex; 886 887 if (IS_CHAN_5GHZ(chan)) 888 modesIndex = IS_CHAN_HT40(chan) ? 2 : 1; 889 else 890 modesIndex = IS_CHAN_HT40(chan) ? 3 : 4; 891 892 /* 893 * SOC, MAC, BB, RADIO initvals. 894 */ 895 for (i = 0; i < ATH_INI_NUM_SPLIT; i++) { 896 ar9003_hw_prog_ini(ah, &ah->iniSOC[i], modesIndex); 897 ar9003_hw_prog_ini(ah, &ah->iniMac[i], modesIndex); 898 ar9003_hw_prog_ini(ah, &ah->iniBB[i], modesIndex); 899 ar9003_hw_prog_ini(ah, &ah->iniRadio[i], modesIndex); 900 if (i == ATH_INI_POST && AR_SREV_9462_20_OR_LATER(ah)) 901 ar9003_hw_prog_ini(ah, 902 &ah->ini_radio_post_sys2ant, 903 modesIndex); 904 } 905 906 ar9003_doubler_fix(ah); 907 908 /* 909 * RXGAIN initvals. 910 */ 911 REG_WRITE_ARRAY(&ah->iniModesRxGain, 1, regWrites); 912 913 if (AR_SREV_9462_20_OR_LATER(ah)) { 914 /* 915 * CUS217 mix LNA mode. 916 */ 917 if (ar9003_hw_get_rx_gain_idx(ah) == 2) { 918 REG_WRITE_ARRAY(&ah->ini_modes_rxgain_bb_core, 919 1, regWrites); 920 REG_WRITE_ARRAY(&ah->ini_modes_rxgain_bb_postamble, 921 modesIndex, regWrites); 922 } 923 924 /* 925 * 5G-XLNA 926 */ 927 if ((ar9003_hw_get_rx_gain_idx(ah) == 2) || 928 (ar9003_hw_get_rx_gain_idx(ah) == 3)) { 929 REG_WRITE_ARRAY(&ah->ini_modes_rxgain_xlna, 930 modesIndex, regWrites); 931 } 932 } 933 934 if (AR_SREV_9550(ah) || AR_SREV_9561(ah)) 935 REG_WRITE_ARRAY(&ah->ini_modes_rx_gain_bounds, modesIndex, 936 regWrites); 937 938 if (AR_SREV_9561(ah) && (ar9003_hw_get_rx_gain_idx(ah) == 0)) 939 REG_WRITE_ARRAY(&ah->ini_modes_rxgain_xlna, 940 modesIndex, regWrites); 941 /* 942 * TXGAIN initvals. 943 */ 944 if (AR_SREV_9550(ah) || AR_SREV_9531(ah) || AR_SREV_9561(ah)) { 945 int modes_txgain_index = 1; 946 947 if (AR_SREV_9550(ah)) 948 modes_txgain_index = ar9550_hw_get_modes_txgain_index(ah, chan); 949 950 if (AR_SREV_9561(ah)) 951 modes_txgain_index = 952 ar9561_hw_get_modes_txgain_index(ah, chan); 953 954 if (modes_txgain_index < 0) 955 return -EINVAL; 956 957 REG_WRITE_ARRAY(&ah->iniModesTxGain, modes_txgain_index, 958 regWrites); 959 } else { 960 REG_WRITE_ARRAY(&ah->iniModesTxGain, modesIndex, regWrites); 961 } 962 963 /* 964 * For 5GHz channels requiring Fast Clock, apply 965 * different modal values. 966 */ 967 if (IS_CHAN_A_FAST_CLOCK(ah, chan)) 968 REG_WRITE_ARRAY(&ah->iniModesFastClock, 969 modesIndex, regWrites); 970 971 /* 972 * Clock frequency initvals. 973 */ 974 REG_WRITE_ARRAY(&ah->iniAdditional, 1, regWrites); 975 976 /* 977 * JAPAN regulatory. 978 */ 979 if (chan->channel == 2484) 980 ar9003_hw_prog_ini(ah, &ah->iniCckfirJapan2484, 1); 981 982 ah->modes_index = modesIndex; 983 ar9003_hw_override_ini(ah); 984 ar9003_hw_set_channel_regs(ah, chan); 985 ar9003_hw_set_chain_masks(ah, ah->rxchainmask, ah->txchainmask); 986 ath9k_hw_apply_txpower(ah, chan, false); 987 988 return 0; 989 } 990 991 static void ar9003_hw_set_rfmode(struct ath_hw *ah, 992 struct ath9k_channel *chan) 993 { 994 u32 rfMode = 0; 995 996 if (chan == NULL) 997 return; 998 999 if (IS_CHAN_2GHZ(chan)) 1000 rfMode |= AR_PHY_MODE_DYNAMIC; 1001 else 1002 rfMode |= AR_PHY_MODE_OFDM; 1003 1004 if (IS_CHAN_A_FAST_CLOCK(ah, chan)) 1005 rfMode |= (AR_PHY_MODE_DYNAMIC | AR_PHY_MODE_DYN_CCK_DISABLE); 1006 1007 if (rfMode & (AR_PHY_MODE_QUARTER | AR_PHY_MODE_HALF)) 1008 REG_RMW_FIELD(ah, AR_PHY_FRAME_CTL, 1009 AR_PHY_FRAME_CTL_CF_OVERLAP_WINDOW, 3); 1010 1011 REG_WRITE(ah, AR_PHY_MODE, rfMode); 1012 } 1013 1014 static void ar9003_hw_mark_phy_inactive(struct ath_hw *ah) 1015 { 1016 REG_WRITE(ah, AR_PHY_ACTIVE, AR_PHY_ACTIVE_DIS); 1017 } 1018 1019 static void ar9003_hw_set_delta_slope(struct ath_hw *ah, 1020 struct ath9k_channel *chan) 1021 { 1022 u32 coef_scaled, ds_coef_exp, ds_coef_man; 1023 u32 clockMhzScaled = 0x64000000; 1024 struct chan_centers centers; 1025 1026 /* 1027 * half and quarter rate can divide the scaled clock by 2 or 4 1028 * scale for selected channel bandwidth 1029 */ 1030 if (IS_CHAN_HALF_RATE(chan)) 1031 clockMhzScaled = clockMhzScaled >> 1; 1032 else if (IS_CHAN_QUARTER_RATE(chan)) 1033 clockMhzScaled = clockMhzScaled >> 2; 1034 1035 /* 1036 * ALGO -> coef = 1e8/fcarrier*fclock/40; 1037 * scaled coef to provide precision for this floating calculation 1038 */ 1039 ath9k_hw_get_channel_centers(ah, chan, ¢ers); 1040 coef_scaled = clockMhzScaled / centers.synth_center; 1041 1042 ath9k_hw_get_delta_slope_vals(ah, coef_scaled, &ds_coef_man, 1043 &ds_coef_exp); 1044 1045 REG_RMW_FIELD(ah, AR_PHY_TIMING3, 1046 AR_PHY_TIMING3_DSC_MAN, ds_coef_man); 1047 REG_RMW_FIELD(ah, AR_PHY_TIMING3, 1048 AR_PHY_TIMING3_DSC_EXP, ds_coef_exp); 1049 1050 /* 1051 * For Short GI, 1052 * scaled coeff is 9/10 that of normal coeff 1053 */ 1054 coef_scaled = (9 * coef_scaled) / 10; 1055 1056 ath9k_hw_get_delta_slope_vals(ah, coef_scaled, &ds_coef_man, 1057 &ds_coef_exp); 1058 1059 /* for short gi */ 1060 REG_RMW_FIELD(ah, AR_PHY_SGI_DELTA, 1061 AR_PHY_SGI_DSC_MAN, ds_coef_man); 1062 REG_RMW_FIELD(ah, AR_PHY_SGI_DELTA, 1063 AR_PHY_SGI_DSC_EXP, ds_coef_exp); 1064 } 1065 1066 static bool ar9003_hw_rfbus_req(struct ath_hw *ah) 1067 { 1068 REG_WRITE(ah, AR_PHY_RFBUS_REQ, AR_PHY_RFBUS_REQ_EN); 1069 return ath9k_hw_wait(ah, AR_PHY_RFBUS_GRANT, AR_PHY_RFBUS_GRANT_EN, 1070 AR_PHY_RFBUS_GRANT_EN, AH_WAIT_TIMEOUT); 1071 } 1072 1073 /* 1074 * Wait for the frequency synth to settle (synth goes on via PHY_ACTIVE_EN). 1075 * Read the phy active delay register. Value is in 100ns increments. 1076 */ 1077 static void ar9003_hw_rfbus_done(struct ath_hw *ah) 1078 { 1079 u32 synthDelay = REG_READ(ah, AR_PHY_RX_DELAY) & AR_PHY_RX_DELAY_DELAY; 1080 1081 ath9k_hw_synth_delay(ah, ah->curchan, synthDelay); 1082 1083 REG_WRITE(ah, AR_PHY_RFBUS_REQ, 0); 1084 } 1085 1086 static bool ar9003_hw_ani_control(struct ath_hw *ah, 1087 enum ath9k_ani_cmd cmd, int param) 1088 { 1089 struct ath_common *common = ath9k_hw_common(ah); 1090 struct ath9k_channel *chan = ah->curchan; 1091 struct ar5416AniState *aniState = &ah->ani; 1092 int m1ThreshLow, m2ThreshLow; 1093 int m1Thresh, m2Thresh; 1094 int m2CountThr, m2CountThrLow; 1095 int m1ThreshLowExt, m2ThreshLowExt; 1096 int m1ThreshExt, m2ThreshExt; 1097 s32 value, value2; 1098 1099 switch (cmd & ah->ani_function) { 1100 case ATH9K_ANI_OFDM_WEAK_SIGNAL_DETECTION:{ 1101 /* 1102 * on == 1 means ofdm weak signal detection is ON 1103 * on == 1 is the default, for less noise immunity 1104 * 1105 * on == 0 means ofdm weak signal detection is OFF 1106 * on == 0 means more noise imm 1107 */ 1108 u32 on = param ? 1 : 0; 1109 1110 if (AR_SREV_9462(ah) || AR_SREV_9565(ah)) 1111 goto skip_ws_det; 1112 1113 m1ThreshLow = on ? 1114 aniState->iniDef.m1ThreshLow : m1ThreshLow_off; 1115 m2ThreshLow = on ? 1116 aniState->iniDef.m2ThreshLow : m2ThreshLow_off; 1117 m1Thresh = on ? 1118 aniState->iniDef.m1Thresh : m1Thresh_off; 1119 m2Thresh = on ? 1120 aniState->iniDef.m2Thresh : m2Thresh_off; 1121 m2CountThr = on ? 1122 aniState->iniDef.m2CountThr : m2CountThr_off; 1123 m2CountThrLow = on ? 1124 aniState->iniDef.m2CountThrLow : m2CountThrLow_off; 1125 m1ThreshLowExt = on ? 1126 aniState->iniDef.m1ThreshLowExt : m1ThreshLowExt_off; 1127 m2ThreshLowExt = on ? 1128 aniState->iniDef.m2ThreshLowExt : m2ThreshLowExt_off; 1129 m1ThreshExt = on ? 1130 aniState->iniDef.m1ThreshExt : m1ThreshExt_off; 1131 m2ThreshExt = on ? 1132 aniState->iniDef.m2ThreshExt : m2ThreshExt_off; 1133 1134 REG_RMW_FIELD(ah, AR_PHY_SFCORR_LOW, 1135 AR_PHY_SFCORR_LOW_M1_THRESH_LOW, 1136 m1ThreshLow); 1137 REG_RMW_FIELD(ah, AR_PHY_SFCORR_LOW, 1138 AR_PHY_SFCORR_LOW_M2_THRESH_LOW, 1139 m2ThreshLow); 1140 REG_RMW_FIELD(ah, AR_PHY_SFCORR, 1141 AR_PHY_SFCORR_M1_THRESH, 1142 m1Thresh); 1143 REG_RMW_FIELD(ah, AR_PHY_SFCORR, 1144 AR_PHY_SFCORR_M2_THRESH, 1145 m2Thresh); 1146 REG_RMW_FIELD(ah, AR_PHY_SFCORR, 1147 AR_PHY_SFCORR_M2COUNT_THR, 1148 m2CountThr); 1149 REG_RMW_FIELD(ah, AR_PHY_SFCORR_LOW, 1150 AR_PHY_SFCORR_LOW_M2COUNT_THR_LOW, 1151 m2CountThrLow); 1152 REG_RMW_FIELD(ah, AR_PHY_SFCORR_EXT, 1153 AR_PHY_SFCORR_EXT_M1_THRESH_LOW, 1154 m1ThreshLowExt); 1155 REG_RMW_FIELD(ah, AR_PHY_SFCORR_EXT, 1156 AR_PHY_SFCORR_EXT_M2_THRESH_LOW, 1157 m2ThreshLowExt); 1158 REG_RMW_FIELD(ah, AR_PHY_SFCORR_EXT, 1159 AR_PHY_SFCORR_EXT_M1_THRESH, 1160 m1ThreshExt); 1161 REG_RMW_FIELD(ah, AR_PHY_SFCORR_EXT, 1162 AR_PHY_SFCORR_EXT_M2_THRESH, 1163 m2ThreshExt); 1164 skip_ws_det: 1165 if (on) 1166 REG_SET_BIT(ah, AR_PHY_SFCORR_LOW, 1167 AR_PHY_SFCORR_LOW_USE_SELF_CORR_LOW); 1168 else 1169 REG_CLR_BIT(ah, AR_PHY_SFCORR_LOW, 1170 AR_PHY_SFCORR_LOW_USE_SELF_CORR_LOW); 1171 1172 if (on != aniState->ofdmWeakSigDetect) { 1173 ath_dbg(common, ANI, 1174 "** ch %d: ofdm weak signal: %s=>%s\n", 1175 chan->channel, 1176 aniState->ofdmWeakSigDetect ? 1177 "on" : "off", 1178 on ? "on" : "off"); 1179 if (on) 1180 ah->stats.ast_ani_ofdmon++; 1181 else 1182 ah->stats.ast_ani_ofdmoff++; 1183 aniState->ofdmWeakSigDetect = on; 1184 } 1185 break; 1186 } 1187 case ATH9K_ANI_FIRSTEP_LEVEL:{ 1188 u32 level = param; 1189 1190 if (level >= ARRAY_SIZE(firstep_table)) { 1191 ath_dbg(common, ANI, 1192 "ATH9K_ANI_FIRSTEP_LEVEL: level out of range (%u > %zu)\n", 1193 level, ARRAY_SIZE(firstep_table)); 1194 return false; 1195 } 1196 1197 /* 1198 * make register setting relative to default 1199 * from INI file & cap value 1200 */ 1201 value = firstep_table[level] - 1202 firstep_table[ATH9K_ANI_FIRSTEP_LVL] + 1203 aniState->iniDef.firstep; 1204 if (value < ATH9K_SIG_FIRSTEP_SETTING_MIN) 1205 value = ATH9K_SIG_FIRSTEP_SETTING_MIN; 1206 if (value > ATH9K_SIG_FIRSTEP_SETTING_MAX) 1207 value = ATH9K_SIG_FIRSTEP_SETTING_MAX; 1208 REG_RMW_FIELD(ah, AR_PHY_FIND_SIG, 1209 AR_PHY_FIND_SIG_FIRSTEP, 1210 value); 1211 /* 1212 * we need to set first step low register too 1213 * make register setting relative to default 1214 * from INI file & cap value 1215 */ 1216 value2 = firstep_table[level] - 1217 firstep_table[ATH9K_ANI_FIRSTEP_LVL] + 1218 aniState->iniDef.firstepLow; 1219 if (value2 < ATH9K_SIG_FIRSTEP_SETTING_MIN) 1220 value2 = ATH9K_SIG_FIRSTEP_SETTING_MIN; 1221 if (value2 > ATH9K_SIG_FIRSTEP_SETTING_MAX) 1222 value2 = ATH9K_SIG_FIRSTEP_SETTING_MAX; 1223 1224 REG_RMW_FIELD(ah, AR_PHY_FIND_SIG_LOW, 1225 AR_PHY_FIND_SIG_LOW_FIRSTEP_LOW, value2); 1226 1227 if (level != aniState->firstepLevel) { 1228 ath_dbg(common, ANI, 1229 "** ch %d: level %d=>%d[def:%d] firstep[level]=%d ini=%d\n", 1230 chan->channel, 1231 aniState->firstepLevel, 1232 level, 1233 ATH9K_ANI_FIRSTEP_LVL, 1234 value, 1235 aniState->iniDef.firstep); 1236 ath_dbg(common, ANI, 1237 "** ch %d: level %d=>%d[def:%d] firstep_low[level]=%d ini=%d\n", 1238 chan->channel, 1239 aniState->firstepLevel, 1240 level, 1241 ATH9K_ANI_FIRSTEP_LVL, 1242 value2, 1243 aniState->iniDef.firstepLow); 1244 if (level > aniState->firstepLevel) 1245 ah->stats.ast_ani_stepup++; 1246 else if (level < aniState->firstepLevel) 1247 ah->stats.ast_ani_stepdown++; 1248 aniState->firstepLevel = level; 1249 } 1250 break; 1251 } 1252 case ATH9K_ANI_SPUR_IMMUNITY_LEVEL:{ 1253 u32 level = param; 1254 1255 if (level >= ARRAY_SIZE(cycpwrThr1_table)) { 1256 ath_dbg(common, ANI, 1257 "ATH9K_ANI_SPUR_IMMUNITY_LEVEL: level out of range (%u > %zu)\n", 1258 level, ARRAY_SIZE(cycpwrThr1_table)); 1259 return false; 1260 } 1261 /* 1262 * make register setting relative to default 1263 * from INI file & cap value 1264 */ 1265 value = cycpwrThr1_table[level] - 1266 cycpwrThr1_table[ATH9K_ANI_SPUR_IMMUNE_LVL] + 1267 aniState->iniDef.cycpwrThr1; 1268 if (value < ATH9K_SIG_SPUR_IMM_SETTING_MIN) 1269 value = ATH9K_SIG_SPUR_IMM_SETTING_MIN; 1270 if (value > ATH9K_SIG_SPUR_IMM_SETTING_MAX) 1271 value = ATH9K_SIG_SPUR_IMM_SETTING_MAX; 1272 REG_RMW_FIELD(ah, AR_PHY_TIMING5, 1273 AR_PHY_TIMING5_CYCPWR_THR1, 1274 value); 1275 1276 /* 1277 * set AR_PHY_EXT_CCA for extension channel 1278 * make register setting relative to default 1279 * from INI file & cap value 1280 */ 1281 value2 = cycpwrThr1_table[level] - 1282 cycpwrThr1_table[ATH9K_ANI_SPUR_IMMUNE_LVL] + 1283 aniState->iniDef.cycpwrThr1Ext; 1284 if (value2 < ATH9K_SIG_SPUR_IMM_SETTING_MIN) 1285 value2 = ATH9K_SIG_SPUR_IMM_SETTING_MIN; 1286 if (value2 > ATH9K_SIG_SPUR_IMM_SETTING_MAX) 1287 value2 = ATH9K_SIG_SPUR_IMM_SETTING_MAX; 1288 REG_RMW_FIELD(ah, AR_PHY_EXT_CCA, 1289 AR_PHY_EXT_CYCPWR_THR1, value2); 1290 1291 if (level != aniState->spurImmunityLevel) { 1292 ath_dbg(common, ANI, 1293 "** ch %d: level %d=>%d[def:%d] cycpwrThr1[level]=%d ini=%d\n", 1294 chan->channel, 1295 aniState->spurImmunityLevel, 1296 level, 1297 ATH9K_ANI_SPUR_IMMUNE_LVL, 1298 value, 1299 aniState->iniDef.cycpwrThr1); 1300 ath_dbg(common, ANI, 1301 "** ch %d: level %d=>%d[def:%d] cycpwrThr1Ext[level]=%d ini=%d\n", 1302 chan->channel, 1303 aniState->spurImmunityLevel, 1304 level, 1305 ATH9K_ANI_SPUR_IMMUNE_LVL, 1306 value2, 1307 aniState->iniDef.cycpwrThr1Ext); 1308 if (level > aniState->spurImmunityLevel) 1309 ah->stats.ast_ani_spurup++; 1310 else if (level < aniState->spurImmunityLevel) 1311 ah->stats.ast_ani_spurdown++; 1312 aniState->spurImmunityLevel = level; 1313 } 1314 break; 1315 } 1316 case ATH9K_ANI_MRC_CCK:{ 1317 /* 1318 * is_on == 1 means MRC CCK ON (default, less noise imm) 1319 * is_on == 0 means MRC CCK is OFF (more noise imm) 1320 */ 1321 bool is_on = param ? 1 : 0; 1322 1323 if (ah->caps.rx_chainmask == 1) 1324 break; 1325 1326 REG_RMW_FIELD(ah, AR_PHY_MRC_CCK_CTRL, 1327 AR_PHY_MRC_CCK_ENABLE, is_on); 1328 REG_RMW_FIELD(ah, AR_PHY_MRC_CCK_CTRL, 1329 AR_PHY_MRC_CCK_MUX_REG, is_on); 1330 if (is_on != aniState->mrcCCK) { 1331 ath_dbg(common, ANI, "** ch %d: MRC CCK: %s=>%s\n", 1332 chan->channel, 1333 aniState->mrcCCK ? "on" : "off", 1334 is_on ? "on" : "off"); 1335 if (is_on) 1336 ah->stats.ast_ani_ccklow++; 1337 else 1338 ah->stats.ast_ani_cckhigh++; 1339 aniState->mrcCCK = is_on; 1340 } 1341 break; 1342 } 1343 default: 1344 ath_dbg(common, ANI, "invalid cmd %u\n", cmd); 1345 return false; 1346 } 1347 1348 ath_dbg(common, ANI, 1349 "ANI parameters: SI=%d, ofdmWS=%s FS=%d MRCcck=%s listenTime=%d ofdmErrs=%d cckErrs=%d\n", 1350 aniState->spurImmunityLevel, 1351 aniState->ofdmWeakSigDetect ? "on" : "off", 1352 aniState->firstepLevel, 1353 aniState->mrcCCK ? "on" : "off", 1354 aniState->listenTime, 1355 aniState->ofdmPhyErrCount, 1356 aniState->cckPhyErrCount); 1357 return true; 1358 } 1359 1360 static void ar9003_hw_do_getnf(struct ath_hw *ah, 1361 int16_t nfarray[NUM_NF_READINGS]) 1362 { 1363 #define AR_PHY_CH_MINCCA_PWR 0x1FF00000 1364 #define AR_PHY_CH_MINCCA_PWR_S 20 1365 #define AR_PHY_CH_EXT_MINCCA_PWR 0x01FF0000 1366 #define AR_PHY_CH_EXT_MINCCA_PWR_S 16 1367 1368 int16_t nf; 1369 int i; 1370 1371 for (i = 0; i < AR9300_MAX_CHAINS; i++) { 1372 if (ah->rxchainmask & BIT(i)) { 1373 nf = MS(REG_READ(ah, ah->nf_regs[i]), 1374 AR_PHY_CH_MINCCA_PWR); 1375 nfarray[i] = sign_extend32(nf, 8); 1376 1377 if (IS_CHAN_HT40(ah->curchan)) { 1378 u8 ext_idx = AR9300_MAX_CHAINS + i; 1379 1380 nf = MS(REG_READ(ah, ah->nf_regs[ext_idx]), 1381 AR_PHY_CH_EXT_MINCCA_PWR); 1382 nfarray[ext_idx] = sign_extend32(nf, 8); 1383 } 1384 } 1385 } 1386 } 1387 1388 static void ar9003_hw_set_nf_limits(struct ath_hw *ah) 1389 { 1390 ah->nf_2g.max = AR_PHY_CCA_MAX_GOOD_VAL_9300_2GHZ; 1391 ah->nf_2g.min = AR_PHY_CCA_MIN_GOOD_VAL_9300_2GHZ; 1392 ah->nf_2g.nominal = AR_PHY_CCA_NOM_VAL_9300_2GHZ; 1393 ah->nf_5g.max = AR_PHY_CCA_MAX_GOOD_VAL_9300_5GHZ; 1394 ah->nf_5g.min = AR_PHY_CCA_MIN_GOOD_VAL_9300_5GHZ; 1395 ah->nf_5g.nominal = AR_PHY_CCA_NOM_VAL_9300_5GHZ; 1396 1397 if (AR_SREV_9330(ah)) 1398 ah->nf_2g.nominal = AR_PHY_CCA_NOM_VAL_9330_2GHZ; 1399 1400 if (AR_SREV_9462(ah) || AR_SREV_9565(ah)) { 1401 ah->nf_2g.min = AR_PHY_CCA_MIN_GOOD_VAL_9462_2GHZ; 1402 ah->nf_2g.nominal = AR_PHY_CCA_NOM_VAL_9462_2GHZ; 1403 ah->nf_5g.min = AR_PHY_CCA_MIN_GOOD_VAL_9462_5GHZ; 1404 ah->nf_5g.nominal = AR_PHY_CCA_NOM_VAL_9462_5GHZ; 1405 } 1406 } 1407 1408 /* 1409 * Initialize the ANI register values with default (ini) values. 1410 * This routine is called during a (full) hardware reset after 1411 * all the registers are initialised from the INI. 1412 */ 1413 static void ar9003_hw_ani_cache_ini_regs(struct ath_hw *ah) 1414 { 1415 struct ar5416AniState *aniState; 1416 struct ath_common *common = ath9k_hw_common(ah); 1417 struct ath9k_channel *chan = ah->curchan; 1418 struct ath9k_ani_default *iniDef; 1419 u32 val; 1420 1421 aniState = &ah->ani; 1422 iniDef = &aniState->iniDef; 1423 1424 ath_dbg(common, ANI, "ver %d.%d opmode %u chan %d Mhz\n", 1425 ah->hw_version.macVersion, 1426 ah->hw_version.macRev, 1427 ah->opmode, 1428 chan->channel); 1429 1430 val = REG_READ(ah, AR_PHY_SFCORR); 1431 iniDef->m1Thresh = MS(val, AR_PHY_SFCORR_M1_THRESH); 1432 iniDef->m2Thresh = MS(val, AR_PHY_SFCORR_M2_THRESH); 1433 iniDef->m2CountThr = MS(val, AR_PHY_SFCORR_M2COUNT_THR); 1434 1435 val = REG_READ(ah, AR_PHY_SFCORR_LOW); 1436 iniDef->m1ThreshLow = MS(val, AR_PHY_SFCORR_LOW_M1_THRESH_LOW); 1437 iniDef->m2ThreshLow = MS(val, AR_PHY_SFCORR_LOW_M2_THRESH_LOW); 1438 iniDef->m2CountThrLow = MS(val, AR_PHY_SFCORR_LOW_M2COUNT_THR_LOW); 1439 1440 val = REG_READ(ah, AR_PHY_SFCORR_EXT); 1441 iniDef->m1ThreshExt = MS(val, AR_PHY_SFCORR_EXT_M1_THRESH); 1442 iniDef->m2ThreshExt = MS(val, AR_PHY_SFCORR_EXT_M2_THRESH); 1443 iniDef->m1ThreshLowExt = MS(val, AR_PHY_SFCORR_EXT_M1_THRESH_LOW); 1444 iniDef->m2ThreshLowExt = MS(val, AR_PHY_SFCORR_EXT_M2_THRESH_LOW); 1445 iniDef->firstep = REG_READ_FIELD(ah, 1446 AR_PHY_FIND_SIG, 1447 AR_PHY_FIND_SIG_FIRSTEP); 1448 iniDef->firstepLow = REG_READ_FIELD(ah, 1449 AR_PHY_FIND_SIG_LOW, 1450 AR_PHY_FIND_SIG_LOW_FIRSTEP_LOW); 1451 iniDef->cycpwrThr1 = REG_READ_FIELD(ah, 1452 AR_PHY_TIMING5, 1453 AR_PHY_TIMING5_CYCPWR_THR1); 1454 iniDef->cycpwrThr1Ext = REG_READ_FIELD(ah, 1455 AR_PHY_EXT_CCA, 1456 AR_PHY_EXT_CYCPWR_THR1); 1457 1458 /* these levels just got reset to defaults by the INI */ 1459 aniState->spurImmunityLevel = ATH9K_ANI_SPUR_IMMUNE_LVL; 1460 aniState->firstepLevel = ATH9K_ANI_FIRSTEP_LVL; 1461 aniState->ofdmWeakSigDetect = true; 1462 aniState->mrcCCK = true; 1463 } 1464 1465 static void ar9003_hw_set_radar_params(struct ath_hw *ah, 1466 struct ath_hw_radar_conf *conf) 1467 { 1468 unsigned int regWrites = 0; 1469 u32 radar_0 = 0, radar_1; 1470 1471 if (!conf) { 1472 REG_CLR_BIT(ah, AR_PHY_RADAR_0, AR_PHY_RADAR_0_ENA); 1473 return; 1474 } 1475 1476 radar_0 |= AR_PHY_RADAR_0_ENA | AR_PHY_RADAR_0_FFT_ENA; 1477 radar_0 |= SM(conf->fir_power, AR_PHY_RADAR_0_FIRPWR); 1478 radar_0 |= SM(conf->radar_rssi, AR_PHY_RADAR_0_RRSSI); 1479 radar_0 |= SM(conf->pulse_height, AR_PHY_RADAR_0_HEIGHT); 1480 radar_0 |= SM(conf->pulse_rssi, AR_PHY_RADAR_0_PRSSI); 1481 radar_0 |= SM(conf->pulse_inband, AR_PHY_RADAR_0_INBAND); 1482 1483 radar_1 = REG_READ(ah, AR_PHY_RADAR_1); 1484 radar_1 &= ~(AR_PHY_RADAR_1_MAXLEN | AR_PHY_RADAR_1_RELSTEP_THRESH | 1485 AR_PHY_RADAR_1_RELPWR_THRESH); 1486 radar_1 |= AR_PHY_RADAR_1_MAX_RRSSI; 1487 radar_1 |= AR_PHY_RADAR_1_BLOCK_CHECK; 1488 radar_1 |= SM(conf->pulse_maxlen, AR_PHY_RADAR_1_MAXLEN); 1489 radar_1 |= SM(conf->pulse_inband_step, AR_PHY_RADAR_1_RELSTEP_THRESH); 1490 radar_1 |= SM(conf->radar_inband, AR_PHY_RADAR_1_RELPWR_THRESH); 1491 1492 REG_WRITE(ah, AR_PHY_RADAR_0, radar_0); 1493 REG_WRITE(ah, AR_PHY_RADAR_1, radar_1); 1494 if (conf->ext_channel) 1495 REG_SET_BIT(ah, AR_PHY_RADAR_EXT, AR_PHY_RADAR_EXT_ENA); 1496 else 1497 REG_CLR_BIT(ah, AR_PHY_RADAR_EXT, AR_PHY_RADAR_EXT_ENA); 1498 1499 if (AR_SREV_9300(ah) || AR_SREV_9340(ah) || AR_SREV_9580(ah)) { 1500 REG_WRITE_ARRAY(&ah->ini_dfs, 1501 IS_CHAN_HT40(ah->curchan) ? 2 : 1, regWrites); 1502 } 1503 } 1504 1505 static void ar9003_hw_set_radar_conf(struct ath_hw *ah) 1506 { 1507 struct ath_hw_radar_conf *conf = &ah->radar_conf; 1508 1509 conf->fir_power = -28; 1510 conf->radar_rssi = 0; 1511 conf->pulse_height = 10; 1512 conf->pulse_rssi = 15; 1513 conf->pulse_inband = 8; 1514 conf->pulse_maxlen = 255; 1515 conf->pulse_inband_step = 12; 1516 conf->radar_inband = 8; 1517 } 1518 1519 static void ar9003_hw_antdiv_comb_conf_get(struct ath_hw *ah, 1520 struct ath_hw_antcomb_conf *antconf) 1521 { 1522 u32 regval; 1523 1524 regval = REG_READ(ah, AR_PHY_MC_GAIN_CTRL); 1525 antconf->main_lna_conf = (regval & AR_PHY_ANT_DIV_MAIN_LNACONF) >> 1526 AR_PHY_ANT_DIV_MAIN_LNACONF_S; 1527 antconf->alt_lna_conf = (regval & AR_PHY_ANT_DIV_ALT_LNACONF) >> 1528 AR_PHY_ANT_DIV_ALT_LNACONF_S; 1529 antconf->fast_div_bias = (regval & AR_PHY_ANT_FAST_DIV_BIAS) >> 1530 AR_PHY_ANT_FAST_DIV_BIAS_S; 1531 1532 if (AR_SREV_9330_11(ah)) { 1533 antconf->lna1_lna2_switch_delta = -1; 1534 antconf->lna1_lna2_delta = -9; 1535 antconf->div_group = 1; 1536 } else if (AR_SREV_9485(ah)) { 1537 antconf->lna1_lna2_switch_delta = -1; 1538 antconf->lna1_lna2_delta = -9; 1539 antconf->div_group = 2; 1540 } else if (AR_SREV_9565(ah)) { 1541 antconf->lna1_lna2_switch_delta = 3; 1542 antconf->lna1_lna2_delta = -9; 1543 antconf->div_group = 3; 1544 } else { 1545 antconf->lna1_lna2_switch_delta = -1; 1546 antconf->lna1_lna2_delta = -3; 1547 antconf->div_group = 0; 1548 } 1549 } 1550 1551 static void ar9003_hw_antdiv_comb_conf_set(struct ath_hw *ah, 1552 struct ath_hw_antcomb_conf *antconf) 1553 { 1554 u32 regval; 1555 1556 regval = REG_READ(ah, AR_PHY_MC_GAIN_CTRL); 1557 regval &= ~(AR_PHY_ANT_DIV_MAIN_LNACONF | 1558 AR_PHY_ANT_DIV_ALT_LNACONF | 1559 AR_PHY_ANT_FAST_DIV_BIAS | 1560 AR_PHY_ANT_DIV_MAIN_GAINTB | 1561 AR_PHY_ANT_DIV_ALT_GAINTB); 1562 regval |= ((antconf->main_lna_conf << AR_PHY_ANT_DIV_MAIN_LNACONF_S) 1563 & AR_PHY_ANT_DIV_MAIN_LNACONF); 1564 regval |= ((antconf->alt_lna_conf << AR_PHY_ANT_DIV_ALT_LNACONF_S) 1565 & AR_PHY_ANT_DIV_ALT_LNACONF); 1566 regval |= ((antconf->fast_div_bias << AR_PHY_ANT_FAST_DIV_BIAS_S) 1567 & AR_PHY_ANT_FAST_DIV_BIAS); 1568 regval |= ((antconf->main_gaintb << AR_PHY_ANT_DIV_MAIN_GAINTB_S) 1569 & AR_PHY_ANT_DIV_MAIN_GAINTB); 1570 regval |= ((antconf->alt_gaintb << AR_PHY_ANT_DIV_ALT_GAINTB_S) 1571 & AR_PHY_ANT_DIV_ALT_GAINTB); 1572 1573 REG_WRITE(ah, AR_PHY_MC_GAIN_CTRL, regval); 1574 } 1575 1576 #ifdef CONFIG_ATH9K_BTCOEX_SUPPORT 1577 1578 static void ar9003_hw_set_bt_ant_diversity(struct ath_hw *ah, bool enable) 1579 { 1580 struct ath9k_hw_capabilities *pCap = &ah->caps; 1581 u8 ant_div_ctl1; 1582 u32 regval; 1583 1584 if (!AR_SREV_9485(ah) && !AR_SREV_9565(ah)) 1585 return; 1586 1587 if (AR_SREV_9485(ah)) { 1588 regval = ar9003_hw_ant_ctrl_common_2_get(ah, 1589 IS_CHAN_2GHZ(ah->curchan)); 1590 if (enable) { 1591 regval &= ~AR_SWITCH_TABLE_COM2_ALL; 1592 regval |= ah->config.ant_ctrl_comm2g_switch_enable; 1593 } 1594 REG_RMW_FIELD(ah, AR_PHY_SWITCH_COM_2, 1595 AR_SWITCH_TABLE_COM2_ALL, regval); 1596 } 1597 1598 ant_div_ctl1 = ah->eep_ops->get_eeprom(ah, EEP_ANT_DIV_CTL1); 1599 1600 /* 1601 * Set MAIN/ALT LNA conf. 1602 * Set MAIN/ALT gain_tb. 1603 */ 1604 regval = REG_READ(ah, AR_PHY_MC_GAIN_CTRL); 1605 regval &= (~AR_ANT_DIV_CTRL_ALL); 1606 regval |= (ant_div_ctl1 & 0x3f) << AR_ANT_DIV_CTRL_ALL_S; 1607 REG_WRITE(ah, AR_PHY_MC_GAIN_CTRL, regval); 1608 1609 if (AR_SREV_9485_11_OR_LATER(ah)) { 1610 /* 1611 * Enable LNA diversity. 1612 */ 1613 regval = REG_READ(ah, AR_PHY_MC_GAIN_CTRL); 1614 regval &= ~AR_PHY_ANT_DIV_LNADIV; 1615 regval |= ((ant_div_ctl1 >> 6) & 0x1) << AR_PHY_ANT_DIV_LNADIV_S; 1616 if (enable) 1617 regval |= AR_ANT_DIV_ENABLE; 1618 1619 REG_WRITE(ah, AR_PHY_MC_GAIN_CTRL, regval); 1620 1621 /* 1622 * Enable fast antenna diversity. 1623 */ 1624 regval = REG_READ(ah, AR_PHY_CCK_DETECT); 1625 regval &= ~AR_FAST_DIV_ENABLE; 1626 regval |= ((ant_div_ctl1 >> 7) & 0x1) << AR_FAST_DIV_ENABLE_S; 1627 if (enable) 1628 regval |= AR_FAST_DIV_ENABLE; 1629 1630 REG_WRITE(ah, AR_PHY_CCK_DETECT, regval); 1631 1632 if (pCap->hw_caps & ATH9K_HW_CAP_ANT_DIV_COMB) { 1633 regval = REG_READ(ah, AR_PHY_MC_GAIN_CTRL); 1634 regval &= (~(AR_PHY_ANT_DIV_MAIN_LNACONF | 1635 AR_PHY_ANT_DIV_ALT_LNACONF | 1636 AR_PHY_ANT_DIV_ALT_GAINTB | 1637 AR_PHY_ANT_DIV_MAIN_GAINTB)); 1638 /* 1639 * Set MAIN to LNA1 and ALT to LNA2 at the 1640 * beginning. 1641 */ 1642 regval |= (ATH_ANT_DIV_COMB_LNA1 << 1643 AR_PHY_ANT_DIV_MAIN_LNACONF_S); 1644 regval |= (ATH_ANT_DIV_COMB_LNA2 << 1645 AR_PHY_ANT_DIV_ALT_LNACONF_S); 1646 REG_WRITE(ah, AR_PHY_MC_GAIN_CTRL, regval); 1647 } 1648 } else if (AR_SREV_9565(ah)) { 1649 if (enable) { 1650 REG_SET_BIT(ah, AR_PHY_MC_GAIN_CTRL, 1651 AR_ANT_DIV_ENABLE); 1652 REG_SET_BIT(ah, AR_PHY_MC_GAIN_CTRL, 1653 (1 << AR_PHY_ANT_SW_RX_PROT_S)); 1654 REG_SET_BIT(ah, AR_PHY_CCK_DETECT, 1655 AR_FAST_DIV_ENABLE); 1656 REG_SET_BIT(ah, AR_PHY_RESTART, 1657 AR_PHY_RESTART_ENABLE_DIV_M2FLAG); 1658 REG_SET_BIT(ah, AR_BTCOEX_WL_LNADIV, 1659 AR_BTCOEX_WL_LNADIV_FORCE_ON); 1660 } else { 1661 REG_CLR_BIT(ah, AR_PHY_MC_GAIN_CTRL, 1662 AR_ANT_DIV_ENABLE); 1663 REG_CLR_BIT(ah, AR_PHY_MC_GAIN_CTRL, 1664 (1 << AR_PHY_ANT_SW_RX_PROT_S)); 1665 REG_CLR_BIT(ah, AR_PHY_CCK_DETECT, 1666 AR_FAST_DIV_ENABLE); 1667 REG_CLR_BIT(ah, AR_PHY_RESTART, 1668 AR_PHY_RESTART_ENABLE_DIV_M2FLAG); 1669 REG_CLR_BIT(ah, AR_BTCOEX_WL_LNADIV, 1670 AR_BTCOEX_WL_LNADIV_FORCE_ON); 1671 1672 regval = REG_READ(ah, AR_PHY_MC_GAIN_CTRL); 1673 regval &= ~(AR_PHY_ANT_DIV_MAIN_LNACONF | 1674 AR_PHY_ANT_DIV_ALT_LNACONF | 1675 AR_PHY_ANT_DIV_MAIN_GAINTB | 1676 AR_PHY_ANT_DIV_ALT_GAINTB); 1677 regval |= (ATH_ANT_DIV_COMB_LNA1 << 1678 AR_PHY_ANT_DIV_MAIN_LNACONF_S); 1679 regval |= (ATH_ANT_DIV_COMB_LNA2 << 1680 AR_PHY_ANT_DIV_ALT_LNACONF_S); 1681 REG_WRITE(ah, AR_PHY_MC_GAIN_CTRL, regval); 1682 } 1683 } 1684 } 1685 1686 #endif 1687 1688 static int ar9003_hw_fast_chan_change(struct ath_hw *ah, 1689 struct ath9k_channel *chan, 1690 u8 *ini_reloaded) 1691 { 1692 unsigned int regWrites = 0; 1693 u32 modesIndex, txgain_index; 1694 1695 if (IS_CHAN_5GHZ(chan)) 1696 modesIndex = IS_CHAN_HT40(chan) ? 2 : 1; 1697 else 1698 modesIndex = IS_CHAN_HT40(chan) ? 3 : 4; 1699 1700 txgain_index = AR_SREV_9531(ah) ? 1 : modesIndex; 1701 1702 if (modesIndex == ah->modes_index) { 1703 *ini_reloaded = false; 1704 goto set_rfmode; 1705 } 1706 1707 ar9003_hw_prog_ini(ah, &ah->iniSOC[ATH_INI_POST], modesIndex); 1708 ar9003_hw_prog_ini(ah, &ah->iniMac[ATH_INI_POST], modesIndex); 1709 ar9003_hw_prog_ini(ah, &ah->iniBB[ATH_INI_POST], modesIndex); 1710 ar9003_hw_prog_ini(ah, &ah->iniRadio[ATH_INI_POST], modesIndex); 1711 1712 if (AR_SREV_9462_20_OR_LATER(ah)) 1713 ar9003_hw_prog_ini(ah, &ah->ini_radio_post_sys2ant, 1714 modesIndex); 1715 1716 REG_WRITE_ARRAY(&ah->iniModesTxGain, txgain_index, regWrites); 1717 1718 if (AR_SREV_9462_20_OR_LATER(ah)) { 1719 /* 1720 * CUS217 mix LNA mode. 1721 */ 1722 if (ar9003_hw_get_rx_gain_idx(ah) == 2) { 1723 REG_WRITE_ARRAY(&ah->ini_modes_rxgain_bb_core, 1724 1, regWrites); 1725 REG_WRITE_ARRAY(&ah->ini_modes_rxgain_bb_postamble, 1726 modesIndex, regWrites); 1727 } 1728 } 1729 1730 /* 1731 * For 5GHz channels requiring Fast Clock, apply 1732 * different modal values. 1733 */ 1734 if (IS_CHAN_A_FAST_CLOCK(ah, chan)) 1735 REG_WRITE_ARRAY(&ah->iniModesFastClock, modesIndex, regWrites); 1736 1737 if (AR_SREV_9565(ah)) 1738 REG_WRITE_ARRAY(&ah->iniModesFastClock, 1, regWrites); 1739 1740 /* 1741 * JAPAN regulatory. 1742 */ 1743 if (chan->channel == 2484) 1744 ar9003_hw_prog_ini(ah, &ah->iniCckfirJapan2484, 1); 1745 1746 ah->modes_index = modesIndex; 1747 *ini_reloaded = true; 1748 1749 set_rfmode: 1750 ar9003_hw_set_rfmode(ah, chan); 1751 return 0; 1752 } 1753 1754 static void ar9003_hw_spectral_scan_config(struct ath_hw *ah, 1755 struct ath_spec_scan *param) 1756 { 1757 u8 count; 1758 1759 if (!param->enabled) { 1760 REG_CLR_BIT(ah, AR_PHY_SPECTRAL_SCAN, 1761 AR_PHY_SPECTRAL_SCAN_ENABLE); 1762 return; 1763 } 1764 1765 REG_SET_BIT(ah, AR_PHY_RADAR_0, AR_PHY_RADAR_0_FFT_ENA); 1766 REG_SET_BIT(ah, AR_PHY_SPECTRAL_SCAN, AR_PHY_SPECTRAL_SCAN_ENABLE); 1767 1768 /* on AR93xx and newer, count = 0 will make the the chip send 1769 * spectral samples endlessly. Check if this really was intended, 1770 * and fix otherwise. 1771 */ 1772 count = param->count; 1773 if (param->endless) 1774 count = 0; 1775 else if (param->count == 0) 1776 count = 1; 1777 1778 if (param->short_repeat) 1779 REG_SET_BIT(ah, AR_PHY_SPECTRAL_SCAN, 1780 AR_PHY_SPECTRAL_SCAN_SHORT_REPEAT); 1781 else 1782 REG_CLR_BIT(ah, AR_PHY_SPECTRAL_SCAN, 1783 AR_PHY_SPECTRAL_SCAN_SHORT_REPEAT); 1784 1785 REG_RMW_FIELD(ah, AR_PHY_SPECTRAL_SCAN, 1786 AR_PHY_SPECTRAL_SCAN_COUNT, count); 1787 REG_RMW_FIELD(ah, AR_PHY_SPECTRAL_SCAN, 1788 AR_PHY_SPECTRAL_SCAN_PERIOD, param->period); 1789 REG_RMW_FIELD(ah, AR_PHY_SPECTRAL_SCAN, 1790 AR_PHY_SPECTRAL_SCAN_FFT_PERIOD, param->fft_period); 1791 1792 return; 1793 } 1794 1795 static void ar9003_hw_spectral_scan_trigger(struct ath_hw *ah) 1796 { 1797 /* Activate spectral scan */ 1798 REG_SET_BIT(ah, AR_PHY_SPECTRAL_SCAN, 1799 AR_PHY_SPECTRAL_SCAN_ACTIVE); 1800 } 1801 1802 static void ar9003_hw_spectral_scan_wait(struct ath_hw *ah) 1803 { 1804 struct ath_common *common = ath9k_hw_common(ah); 1805 1806 /* Poll for spectral scan complete */ 1807 if (!ath9k_hw_wait(ah, AR_PHY_SPECTRAL_SCAN, 1808 AR_PHY_SPECTRAL_SCAN_ACTIVE, 1809 0, AH_WAIT_TIMEOUT)) { 1810 ath_err(common, "spectral scan wait failed\n"); 1811 return; 1812 } 1813 } 1814 1815 static void ar9003_hw_tx99_start(struct ath_hw *ah, u32 qnum) 1816 { 1817 REG_SET_BIT(ah, AR_PHY_TEST, PHY_AGC_CLR); 1818 REG_SET_BIT(ah, 0x9864, 0x7f000); 1819 REG_SET_BIT(ah, 0x9924, 0x7f00fe); 1820 REG_CLR_BIT(ah, AR_DIAG_SW, AR_DIAG_RX_DIS); 1821 REG_WRITE(ah, AR_CR, AR_CR_RXD); 1822 REG_WRITE(ah, AR_DLCL_IFS(qnum), 0); 1823 REG_WRITE(ah, AR_D_GBL_IFS_SIFS, 20); /* 50 OK */ 1824 REG_WRITE(ah, AR_D_GBL_IFS_EIFS, 20); 1825 REG_WRITE(ah, AR_TIME_OUT, 0x00000400); 1826 REG_WRITE(ah, AR_DRETRY_LIMIT(qnum), 0xffffffff); 1827 REG_SET_BIT(ah, AR_QMISC(qnum), AR_Q_MISC_DCU_EARLY_TERM_REQ); 1828 } 1829 1830 static void ar9003_hw_tx99_stop(struct ath_hw *ah) 1831 { 1832 REG_CLR_BIT(ah, AR_PHY_TEST, PHY_AGC_CLR); 1833 REG_SET_BIT(ah, AR_DIAG_SW, AR_DIAG_RX_DIS); 1834 } 1835 1836 static void ar9003_hw_tx99_set_txpower(struct ath_hw *ah, u8 txpower) 1837 { 1838 static s16 p_pwr_array[ar9300RateSize] = { 0 }; 1839 unsigned int i; 1840 1841 if (txpower <= MAX_RATE_POWER) { 1842 for (i = 0; i < ar9300RateSize; i++) 1843 p_pwr_array[i] = txpower; 1844 } else { 1845 for (i = 0; i < ar9300RateSize; i++) 1846 p_pwr_array[i] = MAX_RATE_POWER; 1847 } 1848 1849 REG_WRITE(ah, 0xa458, 0); 1850 1851 REG_WRITE(ah, 0xa3c0, 1852 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_6_24], 24) | 1853 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_6_24], 16) | 1854 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_6_24], 8) | 1855 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_6_24], 0)); 1856 REG_WRITE(ah, 0xa3c4, 1857 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_54], 24) | 1858 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_48], 16) | 1859 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_36], 8) | 1860 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_6_24], 0)); 1861 REG_WRITE(ah, 0xa3c8, 1862 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_1L_5L], 24) | 1863 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_1L_5L], 16) | 1864 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_1L_5L], 0)); 1865 REG_WRITE(ah, 0xa3cc, 1866 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_11S], 24) | 1867 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_11L], 16) | 1868 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_5S], 8) | 1869 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_LEGACY_1L_5L], 0)); 1870 REG_WRITE(ah, 0xa3d0, 1871 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_5], 24) | 1872 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_4], 16) | 1873 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_1_3_9_11_17_19], 8)| 1874 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_0_8_16], 0)); 1875 REG_WRITE(ah, 0xa3d4, 1876 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_13], 24) | 1877 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_12], 16) | 1878 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_7], 8) | 1879 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_6], 0)); 1880 REG_WRITE(ah, 0xa3e4, 1881 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_21], 24) | 1882 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_20], 16) | 1883 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_15], 8) | 1884 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_14], 0)); 1885 REG_WRITE(ah, 0xa3e8, 1886 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_23], 24) | 1887 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_22], 16) | 1888 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_23], 8) | 1889 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT20_22], 0)); 1890 REG_WRITE(ah, 0xa3d8, 1891 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_5], 24) | 1892 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_4], 16) | 1893 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_1_3_9_11_17_19], 8) | 1894 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_0_8_16], 0)); 1895 REG_WRITE(ah, 0xa3dc, 1896 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_13], 24) | 1897 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_12], 16) | 1898 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_7], 8) | 1899 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_6], 0)); 1900 REG_WRITE(ah, 0xa3ec, 1901 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_21], 24) | 1902 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_20], 16) | 1903 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_15], 8) | 1904 ATH9K_POW_SM(p_pwr_array[ALL_TARGET_HT40_14], 0)); 1905 } 1906 1907 static void ar9003_hw_init_txpower_cck(struct ath_hw *ah, u8 *rate_array) 1908 { 1909 ah->tx_power[0] = rate_array[ALL_TARGET_LEGACY_1L_5L]; 1910 ah->tx_power[1] = rate_array[ALL_TARGET_LEGACY_1L_5L]; 1911 ah->tx_power[2] = min(rate_array[ALL_TARGET_LEGACY_1L_5L], 1912 rate_array[ALL_TARGET_LEGACY_5S]); 1913 ah->tx_power[3] = min(rate_array[ALL_TARGET_LEGACY_11L], 1914 rate_array[ALL_TARGET_LEGACY_11S]); 1915 } 1916 1917 static void ar9003_hw_init_txpower_ofdm(struct ath_hw *ah, u8 *rate_array, 1918 int offset) 1919 { 1920 int i, j; 1921 1922 for (i = offset; i < offset + AR9300_OFDM_RATES; i++) { 1923 /* OFDM rate to power table idx */ 1924 j = ofdm2pwr[i - offset]; 1925 ah->tx_power[i] = rate_array[j]; 1926 } 1927 } 1928 1929 static void ar9003_hw_init_txpower_ht(struct ath_hw *ah, u8 *rate_array, 1930 int ss_offset, int ds_offset, 1931 int ts_offset, bool is_40) 1932 { 1933 int i, j, mcs_idx = 0; 1934 const u8 *mcs2pwr = (is_40) ? mcs2pwr_ht40 : mcs2pwr_ht20; 1935 1936 for (i = ss_offset; i < ss_offset + AR9300_HT_SS_RATES; i++) { 1937 j = mcs2pwr[mcs_idx]; 1938 ah->tx_power[i] = rate_array[j]; 1939 mcs_idx++; 1940 } 1941 1942 for (i = ds_offset; i < ds_offset + AR9300_HT_DS_RATES; i++) { 1943 j = mcs2pwr[mcs_idx]; 1944 ah->tx_power[i] = rate_array[j]; 1945 mcs_idx++; 1946 } 1947 1948 for (i = ts_offset; i < ts_offset + AR9300_HT_TS_RATES; i++) { 1949 j = mcs2pwr[mcs_idx]; 1950 ah->tx_power[i] = rate_array[j]; 1951 mcs_idx++; 1952 } 1953 } 1954 1955 static void ar9003_hw_init_txpower_stbc(struct ath_hw *ah, int ss_offset, 1956 int ds_offset, int ts_offset) 1957 { 1958 memcpy(&ah->tx_power_stbc[ss_offset], &ah->tx_power[ss_offset], 1959 AR9300_HT_SS_RATES); 1960 memcpy(&ah->tx_power_stbc[ds_offset], &ah->tx_power[ds_offset], 1961 AR9300_HT_DS_RATES); 1962 memcpy(&ah->tx_power_stbc[ts_offset], &ah->tx_power[ts_offset], 1963 AR9300_HT_TS_RATES); 1964 } 1965 1966 void ar9003_hw_init_rate_txpower(struct ath_hw *ah, u8 *rate_array, 1967 struct ath9k_channel *chan) 1968 { 1969 if (IS_CHAN_5GHZ(chan)) { 1970 ar9003_hw_init_txpower_ofdm(ah, rate_array, 1971 AR9300_11NA_OFDM_SHIFT); 1972 if (IS_CHAN_HT20(chan) || IS_CHAN_HT40(chan)) { 1973 ar9003_hw_init_txpower_ht(ah, rate_array, 1974 AR9300_11NA_HT_SS_SHIFT, 1975 AR9300_11NA_HT_DS_SHIFT, 1976 AR9300_11NA_HT_TS_SHIFT, 1977 IS_CHAN_HT40(chan)); 1978 ar9003_hw_init_txpower_stbc(ah, 1979 AR9300_11NA_HT_SS_SHIFT, 1980 AR9300_11NA_HT_DS_SHIFT, 1981 AR9300_11NA_HT_TS_SHIFT); 1982 } 1983 } else { 1984 ar9003_hw_init_txpower_cck(ah, rate_array); 1985 ar9003_hw_init_txpower_ofdm(ah, rate_array, 1986 AR9300_11NG_OFDM_SHIFT); 1987 if (IS_CHAN_HT20(chan) || IS_CHAN_HT40(chan)) { 1988 ar9003_hw_init_txpower_ht(ah, rate_array, 1989 AR9300_11NG_HT_SS_SHIFT, 1990 AR9300_11NG_HT_DS_SHIFT, 1991 AR9300_11NG_HT_TS_SHIFT, 1992 IS_CHAN_HT40(chan)); 1993 ar9003_hw_init_txpower_stbc(ah, 1994 AR9300_11NG_HT_SS_SHIFT, 1995 AR9300_11NG_HT_DS_SHIFT, 1996 AR9300_11NG_HT_TS_SHIFT); 1997 } 1998 } 1999 } 2000 2001 void ar9003_hw_attach_phy_ops(struct ath_hw *ah) 2002 { 2003 struct ath_hw_private_ops *priv_ops = ath9k_hw_private_ops(ah); 2004 struct ath_hw_ops *ops = ath9k_hw_ops(ah); 2005 static const u32 ar9300_cca_regs[6] = { 2006 AR_PHY_CCA_0, 2007 AR_PHY_CCA_1, 2008 AR_PHY_CCA_2, 2009 AR_PHY_EXT_CCA, 2010 AR_PHY_EXT_CCA_1, 2011 AR_PHY_EXT_CCA_2, 2012 }; 2013 2014 priv_ops->rf_set_freq = ar9003_hw_set_channel; 2015 priv_ops->spur_mitigate_freq = ar9003_hw_spur_mitigate; 2016 2017 if (AR_SREV_9340(ah) || AR_SREV_9550(ah) || AR_SREV_9531(ah) || 2018 AR_SREV_9561(ah)) 2019 priv_ops->compute_pll_control = ar9003_hw_compute_pll_control_soc; 2020 else 2021 priv_ops->compute_pll_control = ar9003_hw_compute_pll_control; 2022 2023 priv_ops->set_channel_regs = ar9003_hw_set_channel_regs; 2024 priv_ops->init_bb = ar9003_hw_init_bb; 2025 priv_ops->process_ini = ar9003_hw_process_ini; 2026 priv_ops->set_rfmode = ar9003_hw_set_rfmode; 2027 priv_ops->mark_phy_inactive = ar9003_hw_mark_phy_inactive; 2028 priv_ops->set_delta_slope = ar9003_hw_set_delta_slope; 2029 priv_ops->rfbus_req = ar9003_hw_rfbus_req; 2030 priv_ops->rfbus_done = ar9003_hw_rfbus_done; 2031 priv_ops->ani_control = ar9003_hw_ani_control; 2032 priv_ops->do_getnf = ar9003_hw_do_getnf; 2033 priv_ops->ani_cache_ini_regs = ar9003_hw_ani_cache_ini_regs; 2034 priv_ops->set_radar_params = ar9003_hw_set_radar_params; 2035 priv_ops->fast_chan_change = ar9003_hw_fast_chan_change; 2036 2037 ops->antdiv_comb_conf_get = ar9003_hw_antdiv_comb_conf_get; 2038 ops->antdiv_comb_conf_set = ar9003_hw_antdiv_comb_conf_set; 2039 ops->spectral_scan_config = ar9003_hw_spectral_scan_config; 2040 ops->spectral_scan_trigger = ar9003_hw_spectral_scan_trigger; 2041 ops->spectral_scan_wait = ar9003_hw_spectral_scan_wait; 2042 2043 #ifdef CONFIG_ATH9K_BTCOEX_SUPPORT 2044 ops->set_bt_ant_diversity = ar9003_hw_set_bt_ant_diversity; 2045 #endif 2046 ops->tx99_start = ar9003_hw_tx99_start; 2047 ops->tx99_stop = ar9003_hw_tx99_stop; 2048 ops->tx99_set_txpower = ar9003_hw_tx99_set_txpower; 2049 2050 ar9003_hw_set_nf_limits(ah); 2051 ar9003_hw_set_radar_conf(ah); 2052 memcpy(ah->nf_regs, ar9300_cca_regs, sizeof(ah->nf_regs)); 2053 } 2054 2055 /* 2056 * Baseband Watchdog signatures: 2057 * 2058 * 0x04000539: BB hang when operating in HT40 DFS Channel. 2059 * Full chip reset is not required, but a recovery 2060 * mechanism is needed. 2061 * 2062 * 0x1300000a: Related to CAC deafness. 2063 * Chip reset is not required. 2064 * 2065 * 0x0400000a: Related to CAC deafness. 2066 * Full chip reset is required. 2067 * 2068 * 0x04000b09: RX state machine gets into an illegal state 2069 * when a packet with unsupported rate is received. 2070 * Full chip reset is required and PHY_RESTART has 2071 * to be disabled. 2072 * 2073 * 0x04000409: Packet stuck on receive. 2074 * Full chip reset is required for all chips except AR9340. 2075 */ 2076 2077 /* 2078 * ar9003_hw_bb_watchdog_check(): Returns true if a chip reset is required. 2079 */ 2080 bool ar9003_hw_bb_watchdog_check(struct ath_hw *ah) 2081 { 2082 u32 val; 2083 2084 switch(ah->bb_watchdog_last_status) { 2085 case 0x04000539: 2086 val = REG_READ(ah, AR_PHY_RADAR_0); 2087 val &= (~AR_PHY_RADAR_0_FIRPWR); 2088 val |= SM(0x7f, AR_PHY_RADAR_0_FIRPWR); 2089 REG_WRITE(ah, AR_PHY_RADAR_0, val); 2090 udelay(1); 2091 val = REG_READ(ah, AR_PHY_RADAR_0); 2092 val &= ~AR_PHY_RADAR_0_FIRPWR; 2093 val |= SM(AR9300_DFS_FIRPWR, AR_PHY_RADAR_0_FIRPWR); 2094 REG_WRITE(ah, AR_PHY_RADAR_0, val); 2095 2096 return false; 2097 case 0x1300000a: 2098 return false; 2099 case 0x0400000a: 2100 case 0x04000b09: 2101 return true; 2102 case 0x04000409: 2103 if (AR_SREV_9340(ah) || AR_SREV_9531(ah)) 2104 return false; 2105 else 2106 return true; 2107 default: 2108 /* 2109 * For any other unknown signatures, do a 2110 * full chip reset. 2111 */ 2112 return true; 2113 } 2114 } 2115 EXPORT_SYMBOL(ar9003_hw_bb_watchdog_check); 2116 2117 void ar9003_hw_bb_watchdog_config(struct ath_hw *ah) 2118 { 2119 struct ath_common *common = ath9k_hw_common(ah); 2120 u32 idle_tmo_ms = ah->bb_watchdog_timeout_ms; 2121 u32 val, idle_count; 2122 2123 if (!idle_tmo_ms) { 2124 /* disable IRQ, disable chip-reset for BB panic */ 2125 REG_WRITE(ah, AR_PHY_WATCHDOG_CTL_2, 2126 REG_READ(ah, AR_PHY_WATCHDOG_CTL_2) & 2127 ~(AR_PHY_WATCHDOG_RST_ENABLE | 2128 AR_PHY_WATCHDOG_IRQ_ENABLE)); 2129 2130 /* disable watchdog in non-IDLE mode, disable in IDLE mode */ 2131 REG_WRITE(ah, AR_PHY_WATCHDOG_CTL_1, 2132 REG_READ(ah, AR_PHY_WATCHDOG_CTL_1) & 2133 ~(AR_PHY_WATCHDOG_NON_IDLE_ENABLE | 2134 AR_PHY_WATCHDOG_IDLE_ENABLE)); 2135 2136 ath_dbg(common, RESET, "Disabled BB Watchdog\n"); 2137 return; 2138 } 2139 2140 /* enable IRQ, disable chip-reset for BB watchdog */ 2141 val = REG_READ(ah, AR_PHY_WATCHDOG_CTL_2) & AR_PHY_WATCHDOG_CNTL2_MASK; 2142 REG_WRITE(ah, AR_PHY_WATCHDOG_CTL_2, 2143 (val | AR_PHY_WATCHDOG_IRQ_ENABLE) & 2144 ~AR_PHY_WATCHDOG_RST_ENABLE); 2145 2146 /* bound limit to 10 secs */ 2147 if (idle_tmo_ms > 10000) 2148 idle_tmo_ms = 10000; 2149 2150 /* 2151 * The time unit for watchdog event is 2^15 44/88MHz cycles. 2152 * 2153 * For HT20 we have a time unit of 2^15/44 MHz = .74 ms per tick 2154 * For HT40 we have a time unit of 2^15/88 MHz = .37 ms per tick 2155 * 2156 * Given we use fast clock now in 5 GHz, these time units should 2157 * be common for both 2 GHz and 5 GHz. 2158 */ 2159 idle_count = (100 * idle_tmo_ms) / 74; 2160 if (ah->curchan && IS_CHAN_HT40(ah->curchan)) 2161 idle_count = (100 * idle_tmo_ms) / 37; 2162 2163 /* 2164 * enable watchdog in non-IDLE mode, disable in IDLE mode, 2165 * set idle time-out. 2166 */ 2167 REG_WRITE(ah, AR_PHY_WATCHDOG_CTL_1, 2168 AR_PHY_WATCHDOG_NON_IDLE_ENABLE | 2169 AR_PHY_WATCHDOG_IDLE_MASK | 2170 (AR_PHY_WATCHDOG_NON_IDLE_MASK & (idle_count << 2))); 2171 2172 ath_dbg(common, RESET, "Enabled BB Watchdog timeout (%u ms)\n", 2173 idle_tmo_ms); 2174 } 2175 2176 void ar9003_hw_bb_watchdog_read(struct ath_hw *ah) 2177 { 2178 /* 2179 * we want to avoid printing in ISR context so we save the 2180 * watchdog status to be printed later in bottom half context. 2181 */ 2182 ah->bb_watchdog_last_status = REG_READ(ah, AR_PHY_WATCHDOG_STATUS); 2183 2184 /* 2185 * the watchdog timer should reset on status read but to be sure 2186 * sure we write 0 to the watchdog status bit. 2187 */ 2188 REG_WRITE(ah, AR_PHY_WATCHDOG_STATUS, 2189 ah->bb_watchdog_last_status & ~AR_PHY_WATCHDOG_STATUS_CLR); 2190 } 2191 2192 void ar9003_hw_bb_watchdog_dbg_info(struct ath_hw *ah) 2193 { 2194 struct ath_common *common = ath9k_hw_common(ah); 2195 u32 status; 2196 2197 if (likely(!(common->debug_mask & ATH_DBG_RESET))) 2198 return; 2199 2200 status = ah->bb_watchdog_last_status; 2201 ath_dbg(common, RESET, 2202 "\n==== BB update: BB status=0x%08x ====\n", status); 2203 ath_dbg(common, RESET, 2204 "** BB state: wd=%u det=%u rdar=%u rOFDM=%d rCCK=%u tOFDM=%u tCCK=%u agc=%u src=%u **\n", 2205 MS(status, AR_PHY_WATCHDOG_INFO), 2206 MS(status, AR_PHY_WATCHDOG_DET_HANG), 2207 MS(status, AR_PHY_WATCHDOG_RADAR_SM), 2208 MS(status, AR_PHY_WATCHDOG_RX_OFDM_SM), 2209 MS(status, AR_PHY_WATCHDOG_RX_CCK_SM), 2210 MS(status, AR_PHY_WATCHDOG_TX_OFDM_SM), 2211 MS(status, AR_PHY_WATCHDOG_TX_CCK_SM), 2212 MS(status, AR_PHY_WATCHDOG_AGC_SM), 2213 MS(status, AR_PHY_WATCHDOG_SRCH_SM)); 2214 2215 ath_dbg(common, RESET, "** BB WD cntl: cntl1=0x%08x cntl2=0x%08x **\n", 2216 REG_READ(ah, AR_PHY_WATCHDOG_CTL_1), 2217 REG_READ(ah, AR_PHY_WATCHDOG_CTL_2)); 2218 ath_dbg(common, RESET, "** BB mode: BB_gen_controls=0x%08x **\n", 2219 REG_READ(ah, AR_PHY_GEN_CTRL)); 2220 2221 #define PCT(_field) (common->cc_survey._field * 100 / common->cc_survey.cycles) 2222 if (common->cc_survey.cycles) 2223 ath_dbg(common, RESET, 2224 "** BB busy times: rx_clear=%d%%, rx_frame=%d%%, tx_frame=%d%% **\n", 2225 PCT(rx_busy), PCT(rx_frame), PCT(tx_frame)); 2226 2227 ath_dbg(common, RESET, "==== BB update: done ====\n\n"); 2228 } 2229 EXPORT_SYMBOL(ar9003_hw_bb_watchdog_dbg_info); 2230 2231 void ar9003_hw_disable_phy_restart(struct ath_hw *ah) 2232 { 2233 u8 result; 2234 u32 val; 2235 2236 /* While receiving unsupported rate frame rx state machine 2237 * gets into a state 0xb and if phy_restart happens in that 2238 * state, BB would go hang. If RXSM is in 0xb state after 2239 * first bb panic, ensure to disable the phy_restart. 2240 */ 2241 result = MS(ah->bb_watchdog_last_status, AR_PHY_WATCHDOG_RX_OFDM_SM); 2242 2243 if ((result == 0xb) || ah->bb_hang_rx_ofdm) { 2244 ah->bb_hang_rx_ofdm = true; 2245 val = REG_READ(ah, AR_PHY_RESTART); 2246 val &= ~AR_PHY_RESTART_ENA; 2247 REG_WRITE(ah, AR_PHY_RESTART, val); 2248 } 2249 } 2250 EXPORT_SYMBOL(ar9003_hw_disable_phy_restart); 2251