1 // SPDX-License-Identifier: MIT 2 /* 3 * Copyright © 2019 Intel Corporation 4 */ 5 6 #include <drm/drm_atomic_state_helper.h> 7 #include <drm/drm_print.h> 8 #include <drm/intel/intel_pcode_regs.h> 9 10 #include "intel_bw.h" 11 #include "intel_crtc.h" 12 #include "intel_de.h" 13 #include "intel_display_core.h" 14 #include "intel_display_regs.h" 15 #include "intel_display_types.h" 16 #include "intel_display_utils.h" 17 #include "intel_dram.h" 18 #include "intel_mchbar.h" 19 #include "intel_parent.h" 20 #include "skl_watermark.h" 21 22 struct intel_bw_state { 23 struct intel_global_state base; 24 25 /* 26 * Contains a bit mask, used to determine, whether correspondent 27 * pipe allows SAGV or not. 28 */ 29 u8 pipe_sagv_reject; 30 31 /* 32 * From MTL onwards, to lock a QGV point, punit expects the peak BW of 33 * the selected QGV point as the parameter in multiples of 100MB/s 34 */ 35 u16 qgv_point_peakbw; 36 37 /* 38 * Current QGV points mask, which restricts 39 * some particular SAGV states, not to confuse 40 * with pipe_sagv_mask. 41 */ 42 u16 qgv_points_mask; 43 44 unsigned int data_rate[I915_MAX_PIPES]; 45 u8 num_active_planes[I915_MAX_PIPES]; 46 }; 47 48 /* Parameters for Qclk Geyserville (QGV) */ 49 struct intel_qgv_point { 50 u16 dclk, t_rp, t_rdpre, t_rc, t_ras, t_rcd; 51 }; 52 53 #define DEPROGBWPCLIMIT 60 54 55 #define PEAK_BW_THRESHOLD 20000 56 57 struct intel_psf_gv_point { 58 u8 clk; /* clock in multiples of 16.6666 MHz */ 59 }; 60 61 struct intel_qgv_info { 62 struct intel_qgv_point points[I915_NUM_QGV_POINTS]; 63 struct intel_psf_gv_point psf_points[I915_NUM_PSF_GV_POINTS]; 64 u8 num_qgv_points; 65 u8 num_psf_points; 66 u8 t_bl; 67 u8 max_numchannels; 68 u8 channel_width; 69 u8 deinterleave; 70 }; 71 72 static int dclk_freq_mhz(int ratio) 73 { 74 /* multiple of 16.666 MHz (100/6) */ 75 return DIV_ROUND_CLOSEST(ratio * 100, 6); 76 } 77 78 static int dg1_mchbar_read_qgv_point_info(struct intel_display *display, 79 struct intel_qgv_point *sp, 80 int point) 81 { 82 u32 dclk_ratio; 83 u32 val; 84 85 val = intel_mchbar_read(display, SA_PERF_STATUS_0_0_0_MCHBAR_PC); 86 dclk_ratio = REG_FIELD_GET(DG1_QCLK_RATIO_MASK, val); 87 if (val & DG1_QCLK_REFERENCE) 88 dclk_ratio *= 6; /* 6 * 16.666 MHz = 100 MHz */ 89 else 90 dclk_ratio *= 8; /* 8 * 16.666 MHz = 133 MHz */ 91 92 val = intel_mchbar_read(display, SKL_MC_BIOS_DATA_0_0_0_MCHBAR_PCU); 93 if (val & DG1_GEAR_TYPE) 94 dclk_ratio *= 2; 95 96 sp->dclk = dclk_freq_mhz(dclk_ratio); 97 if (sp->dclk == 0) 98 return -EINVAL; 99 100 val = intel_mchbar_read(display, MCHBAR_CH0_CR_TC_PRE_0_0_0_MCHBAR); 101 sp->t_rp = REG_FIELD_GET(DG1_DRAM_T_RP_MASK, val); 102 sp->t_rdpre = REG_FIELD_GET(DG1_DRAM_T_RDPRE_MASK, val); 103 104 val = intel_mchbar_read(display, MCHBAR_CH0_CR_TC_PRE_0_0_0_MCHBAR_HIGH); 105 sp->t_rcd = REG_FIELD_GET(DG1_DRAM_T_RCD_MASK, val); 106 sp->t_ras = REG_FIELD_GET(DG1_DRAM_T_RAS_MASK, val); 107 108 sp->t_rc = sp->t_rp + sp->t_ras; 109 110 return 0; 111 } 112 113 static int icl_pcode_read_qgv_point_info(struct intel_display *display, 114 struct intel_qgv_point *sp, 115 int point) 116 { 117 u32 val = 0, val2 = 0; 118 int ret; 119 120 ret = intel_parent_pcode_read(display, ICL_PCODE_MEM_SUBSYSYSTEM_INFO | 121 ICL_PCODE_MEM_SS_READ_QGV_POINT_INFO(point), 122 &val, &val2); 123 if (ret) 124 return ret; 125 126 sp->dclk = dclk_freq_mhz(val & 0xffff); 127 sp->t_rp = (val & 0xff0000) >> 16; 128 sp->t_rcd = (val & 0xff000000) >> 24; 129 130 sp->t_rdpre = val2 & 0xff; 131 sp->t_ras = (val2 & 0xff00) >> 8; 132 133 sp->t_rc = sp->t_rp + sp->t_ras; 134 135 return 0; 136 } 137 138 static int adls_pcode_read_psf_gv_point_info(struct intel_display *display, 139 struct intel_psf_gv_point *points) 140 { 141 u32 val = 0; 142 int ret; 143 int i; 144 145 ret = intel_parent_pcode_read(display, ICL_PCODE_MEM_SUBSYSYSTEM_INFO | 146 ADL_PCODE_MEM_SS_READ_PSF_GV_INFO, &val, NULL); 147 if (ret) 148 return ret; 149 150 for (i = 0; i < I915_NUM_PSF_GV_POINTS; i++) { 151 points[i].clk = val & 0xff; 152 val >>= 8; 153 } 154 155 return 0; 156 } 157 158 static u16 icl_qgv_points_mask(struct intel_display *display) 159 { 160 unsigned int num_psf_gv_points = display->bw.num_psf_gv_points; 161 unsigned int num_qgv_points = display->bw.num_qgv_points; 162 u16 qgv_points = 0, psf_points = 0; 163 164 /* 165 * We can _not_ use the whole ADLS_QGV_PT_MASK here, as PCode rejects 166 * it with failure if we try masking any unadvertised points. 167 * So need to operate only with those returned from PCode. 168 */ 169 if (num_qgv_points > 0) 170 qgv_points = GENMASK(num_qgv_points - 1, 0); 171 172 if (num_psf_gv_points > 0) 173 psf_points = GENMASK(num_psf_gv_points - 1, 0); 174 175 return ICL_PCODE_REQ_QGV_PT(qgv_points) | ADLS_PCODE_REQ_PSF_PT(psf_points); 176 } 177 178 static bool is_sagv_enabled(struct intel_display *display, u16 points_mask) 179 { 180 return !is_power_of_2(~points_mask & icl_qgv_points_mask(display) & 181 ICL_PCODE_REQ_QGV_PT_MASK); 182 } 183 184 static int icl_pcode_restrict_qgv_points(struct intel_display *display, 185 u32 points_mask) 186 { 187 int ret; 188 189 if (HAS_PMDEMAND(display)) 190 return 0; 191 192 /* bspec says to keep retrying for at least 1 ms */ 193 ret = intel_parent_pcode_request(display, ICL_PCODE_SAGV_DE_MEM_SS_CONFIG, 194 points_mask, 195 ICL_PCODE_REP_QGV_MASK | ADLS_PCODE_REP_PSF_MASK, 196 ICL_PCODE_REP_QGV_SAFE | ADLS_PCODE_REP_PSF_SAFE, 197 1); 198 199 if (ret < 0) { 200 drm_err(display->drm, 201 "Failed to disable qgv points (0x%x) points: 0x%x\n", 202 ret, points_mask); 203 return ret; 204 } 205 206 display->sagv.status = is_sagv_enabled(display, points_mask) ? 207 I915_SAGV_ENABLED : I915_SAGV_DISABLED; 208 209 return 0; 210 } 211 212 static int mtl_read_qgv_point_info(struct intel_display *display, 213 struct intel_qgv_point *sp, int point) 214 { 215 u32 val, val2; 216 217 val = intel_de_read(display, MTL_MEM_SS_INFO_QGV_POINT_LOW(point)); 218 val2 = intel_de_read(display, MTL_MEM_SS_INFO_QGV_POINT_HIGH(point)); 219 220 sp->dclk = dclk_freq_mhz(REG_FIELD_GET(MTL_DCLK_MASK, val)); 221 sp->t_rp = REG_FIELD_GET(MTL_TRP_MASK, val); 222 sp->t_rcd = REG_FIELD_GET(MTL_TRCD_MASK, val); 223 224 sp->t_rdpre = REG_FIELD_GET(MTL_TRDPRE_MASK, val2); 225 sp->t_ras = REG_FIELD_GET(MTL_TRAS_MASK, val2); 226 227 sp->t_rc = sp->t_rp + sp->t_ras; 228 229 return 0; 230 } 231 232 static int 233 intel_read_qgv_point_info(struct intel_display *display, 234 struct intel_qgv_point *sp, 235 int point) 236 { 237 if (DISPLAY_VER(display) >= 14) 238 return mtl_read_qgv_point_info(display, sp, point); 239 else if (display->platform.dg1) 240 return dg1_mchbar_read_qgv_point_info(display, sp, point); 241 else 242 return icl_pcode_read_qgv_point_info(display, sp, point); 243 } 244 245 static bool is_y_tile(struct intel_display *display) 246 { 247 /* assume Y tile may be used if supported */ 248 return !HAS_4TILE(display); 249 } 250 251 static int icl_init_qgv_info(struct intel_display *display, 252 const struct dram_info *dram_info, 253 struct intel_qgv_info *qi) 254 { 255 qi->num_qgv_points = dram_info->num_qgv_points; 256 qi->num_psf_points = dram_info->num_psf_gv_points; 257 258 if (DISPLAY_VER(display) >= 14) { 259 switch (dram_info->type) { 260 case INTEL_DRAM_DDR4: 261 qi->t_bl = 4; 262 qi->max_numchannels = 2; 263 qi->channel_width = 64; 264 qi->deinterleave = 2; 265 break; 266 case INTEL_DRAM_DDR5: 267 qi->t_bl = 8; 268 qi->max_numchannels = 4; 269 qi->channel_width = 32; 270 qi->deinterleave = 2; 271 break; 272 case INTEL_DRAM_LPDDR4: 273 case INTEL_DRAM_LPDDR5: 274 qi->t_bl = 16; 275 qi->max_numchannels = 8; 276 qi->channel_width = 16; 277 qi->deinterleave = 4; 278 break; 279 case INTEL_DRAM_GDDR: 280 case INTEL_DRAM_GDDR_ECC: 281 qi->channel_width = 32; 282 break; 283 default: 284 MISSING_CASE(dram_info->type); 285 return -EINVAL; 286 } 287 } else if (DISPLAY_VER(display) >= 12) { 288 switch (dram_info->type) { 289 case INTEL_DRAM_DDR4: 290 qi->t_bl = is_y_tile(display) ? 8 : 4; 291 qi->max_numchannels = 2; 292 qi->channel_width = 64; 293 qi->deinterleave = is_y_tile(display) ? 1 : 2; 294 break; 295 case INTEL_DRAM_DDR5: 296 qi->t_bl = is_y_tile(display) ? 16 : 8; 297 qi->max_numchannels = 4; 298 qi->channel_width = 32; 299 qi->deinterleave = is_y_tile(display) ? 1 : 2; 300 break; 301 case INTEL_DRAM_LPDDR4: 302 if (display->platform.rocketlake) { 303 qi->t_bl = 8; 304 qi->max_numchannels = 4; 305 qi->channel_width = 32; 306 qi->deinterleave = 2; 307 break; 308 } 309 fallthrough; 310 case INTEL_DRAM_LPDDR5: 311 qi->t_bl = 16; 312 qi->max_numchannels = 8; 313 qi->channel_width = 16; 314 qi->deinterleave = is_y_tile(display) ? 2 : 4; 315 break; 316 default: 317 qi->t_bl = 16; 318 qi->max_numchannels = 1; 319 break; 320 } 321 } else if (DISPLAY_VER(display) == 11) { 322 qi->t_bl = dram_info->type == INTEL_DRAM_DDR4 ? 4 : 8; 323 qi->max_numchannels = 1; 324 } 325 326 return 0; 327 } 328 329 static int icl_get_qgv_points(struct intel_display *display, 330 const struct dram_info *dram_info, 331 struct intel_qgv_info *qi) 332 { 333 int i, ret; 334 335 if (icl_init_qgv_info(display, dram_info, qi)) 336 return -EINVAL; 337 338 if (drm_WARN_ON(display->drm, 339 qi->num_qgv_points > ARRAY_SIZE(qi->points))) 340 qi->num_qgv_points = ARRAY_SIZE(qi->points); 341 342 for (i = 0; i < qi->num_qgv_points; i++) { 343 struct intel_qgv_point *sp = &qi->points[i]; 344 345 ret = intel_read_qgv_point_info(display, sp, i); 346 if (ret) { 347 drm_dbg_kms(display->drm, "Could not read QGV %d info\n", i); 348 return ret; 349 } 350 351 drm_dbg_kms(display->drm, 352 "QGV %d: DCLK=%d tRP=%d tRDPRE=%d tRAS=%d tRCD=%d tRC=%d\n", 353 i, sp->dclk, sp->t_rp, sp->t_rdpre, sp->t_ras, 354 sp->t_rcd, sp->t_rc); 355 } 356 357 if (qi->num_psf_points > 0) { 358 ret = adls_pcode_read_psf_gv_point_info(display, qi->psf_points); 359 if (ret) { 360 drm_err(display->drm, "Failed to read PSF point data; PSF points will not be considered in bandwidth calculations.\n"); 361 qi->num_psf_points = 0; 362 } 363 364 for (i = 0; i < qi->num_psf_points; i++) 365 drm_dbg_kms(display->drm, 366 "PSF GV %d: CLK=%d\n", 367 i, qi->psf_points[i].clk); 368 } 369 370 return 0; 371 } 372 373 static int adl_calc_psf_bw(int clk) 374 { 375 /* 376 * clk is multiples of 16.666MHz (100/6) 377 * According to BSpec PSF GV bandwidth is 378 * calculated as BW = 64 * clk * 16.666Mhz 379 */ 380 return DIV_ROUND_CLOSEST(64 * clk * 100, 6); 381 } 382 383 static int icl_sagv_max_dclk(const struct intel_qgv_info *qi) 384 { 385 u16 dclk = 0; 386 int i; 387 388 for (i = 0; i < qi->num_qgv_points; i++) 389 dclk = max(dclk, qi->points[i].dclk); 390 391 return dclk; 392 } 393 394 /* 395 * Bandwidth parameters that are tied to the SoC (as opposed to struct 396 * intel_display_bw_params). 397 */ 398 struct intel_soc_bw_params { 399 u8 deprogbwlimit; 400 u8 derating; 401 }; 402 403 static const struct intel_soc_bw_params icl_bw_params = { 404 .deprogbwlimit = 25, 405 .derating = 10, 406 }; 407 408 static const struct intel_soc_bw_params tgl_bw_params = { 409 .deprogbwlimit = 34, 410 .derating = 10, 411 }; 412 413 static const struct intel_soc_bw_params rkl_bw_params = { 414 .deprogbwlimit = 20, 415 .derating = 10, 416 }; 417 418 static const struct intel_soc_bw_params adl_s_bw_params = { 419 .deprogbwlimit = 38, 420 .derating = 10, 421 }; 422 423 static const struct intel_soc_bw_params adl_p_bw_params = { 424 .deprogbwlimit = 38, 425 .derating = 20, 426 }; 427 428 static const struct intel_soc_bw_params bmg_bw_params = { 429 .deprogbwlimit = 53, 430 .derating = 30, 431 }; 432 433 static const struct intel_soc_bw_params bmg_ecc_bw_params = { 434 .deprogbwlimit = 53, 435 .derating = 45, 436 }; 437 438 static const struct intel_soc_bw_params ptl_bw_params = { 439 .deprogbwlimit = 65, 440 .derating = 10, 441 }; 442 443 static const struct intel_soc_bw_params wcl_bw_params = { 444 .deprogbwlimit = 22, 445 .derating = 10, 446 }; 447 448 static const struct intel_soc_bw_params *get_soc_bw_params(struct intel_display *display, 449 const struct dram_info *dram_info) 450 { 451 if (display->platform.icelake || 452 display->platform.jasperlake || 453 display->platform.elkhartlake) 454 return &icl_bw_params; 455 else if (display->platform.tigerlake || 456 display->platform.dg1) 457 return &tgl_bw_params; 458 else if (display->platform.rocketlake) 459 return &rkl_bw_params; 460 else if (display->platform.alderlake_s || 461 display->platform.meteorlake || 462 display->platform.lunarlake) 463 return &adl_s_bw_params; 464 else if (display->platform.alderlake_p) 465 return &adl_p_bw_params; 466 else if (display->platform.battlemage && 467 dram_info->type == INTEL_DRAM_GDDR_ECC) 468 return &bmg_ecc_bw_params; 469 else if (display->platform.battlemage) 470 return &bmg_bw_params; 471 else if (display->platform.pantherlake_wildcatlake) 472 return &wcl_bw_params; 473 else if (display->platform.pantherlake || 474 display->platform.novalake) 475 return &ptl_bw_params; 476 477 return NULL; 478 } 479 480 /* 481 * Bandwidth parameters that are tied to the display IP (as opposed to struct 482 * intel_soc_bw_params). 483 */ 484 struct intel_display_bw_params { 485 u16 displayrtids; 486 u8 deburst; 487 }; 488 489 static const struct intel_display_bw_params gen11_bw_params = { 490 .deburst = 8, 491 .displayrtids = 128, 492 }; 493 494 static const struct intel_display_bw_params gen12_bw_params = { 495 .deburst = 16, 496 .displayrtids = 256, 497 }; 498 499 static const struct intel_display_bw_params xelpdp_bw_params = { 500 .deburst = 32, 501 .displayrtids = 256, 502 }; 503 504 static const struct intel_display_bw_params *get_display_bw_params(struct intel_display *display) 505 { 506 if (DISPLAY_VER(display) >= 14) { 507 return &xelpdp_bw_params; 508 } else if (DISPLAY_VER(display) >= 12) { 509 /* 510 * RKL's SoC was based on ICL and the display, even though being 511 * gen12, had changes to the memory interface to match gen11's, 512 * consequently inheriting gen11's display-specific bandwidth 513 * parameters. 514 */ 515 if (display->platform.rocketlake) 516 return &gen11_bw_params; 517 else 518 return &gen12_bw_params; 519 } else if (DISPLAY_VER(display) == 11) { 520 return &gen11_bw_params; 521 } 522 523 return NULL; 524 } 525 526 static void update_sagv_status(struct intel_display *display, int qgv_points) 527 { 528 /* 529 * In case if SAGV is disabled in BIOS, we always get 1 530 * SAGV point, but we can't send PCode commands to restrict it 531 * as it will fail and pointless anyway. 532 */ 533 if (qgv_points == 1) 534 display->sagv.status = I915_SAGV_NOT_CONTROLLED; 535 else 536 display->sagv.status = I915_SAGV_ENABLED; 537 } 538 539 static int icl_get_bw_info(struct intel_display *display, 540 const struct dram_info *dram_info, 541 const struct intel_soc_bw_params *soc_bw_params, 542 const struct intel_display_bw_params *display_bw_params) 543 { 544 struct intel_qgv_info qi = {}; 545 int num_channels = max_t(u8, 1, dram_info->num_channels); 546 int ipqdepth, ipqdepthpch = 16; 547 int dclk_max; 548 int maxdebw; 549 int num_groups = ARRAY_SIZE(display->bw.max); 550 int i, ret; 551 552 ret = icl_get_qgv_points(display, dram_info, &qi); 553 if (ret) { 554 drm_dbg_kms(display->drm, 555 "Failed to get memory subsystem information, ignoring bandwidth limits"); 556 return ret; 557 } 558 559 dclk_max = icl_sagv_max_dclk(&qi); 560 maxdebw = min(soc_bw_params->deprogbwlimit * 1000, dclk_max * 16 * 6 / 10); 561 ipqdepth = min(ipqdepthpch, display_bw_params->displayrtids / num_channels); 562 qi.deinterleave = DIV_ROUND_UP(num_channels, is_y_tile(display) ? 4 : 2); 563 564 display->bw.num_qgv_points = qi.num_qgv_points; 565 display->bw.num_psf_gv_points = qi.num_psf_points; 566 567 for (i = 0; i < num_groups; i++) { 568 struct intel_bw_info *bi = &display->bw.max[i]; 569 int clpchgroup; 570 int j; 571 572 clpchgroup = (display_bw_params->deburst * qi.deinterleave / num_channels) << i; 573 bi->num_planes = (ipqdepth - clpchgroup) / clpchgroup + 1; 574 575 for (j = 0; j < qi.num_qgv_points; j++) { 576 const struct intel_qgv_point *sp = &qi.points[j]; 577 int ct, bw; 578 579 /* 580 * Max row cycle time 581 * 582 * FIXME what is the logic behind the 583 * assumed burst length? 584 */ 585 ct = max_t(int, sp->t_rc, sp->t_rp + sp->t_rcd + 586 (clpchgroup - 1) * qi.t_bl + sp->t_rdpre); 587 bw = sp->dclk * clpchgroup * 32 * num_channels / ct; 588 589 bi->deratedbw[j] = min(maxdebw, 590 bw * (100 - soc_bw_params->derating) / 100); 591 592 drm_dbg_kms(display->drm, 593 "BW%d / QGV %d: num_planes=%d deratedbw=%u\n", 594 i, j, bi->num_planes, bi->deratedbw[j]); 595 } 596 } 597 598 return 0; 599 } 600 601 static int tgl_peakbw(int num_channels, int channel_width, int dclk) 602 { 603 return num_channels * (channel_width / 8) * dclk; 604 } 605 606 static void xe3_add_peakbw_threshold(struct intel_display *display) 607 { 608 u8 qgv_points = display->bw.num_qgv_points; 609 610 if (!HAS_PEAK_BW_THRESHOLD(display)) 611 return; 612 613 if (qgv_points >= I915_NUM_QGV_POINTS) { 614 drm_dbg_kms(display->drm, "QGV points maxed out; skipping peak bandwidth threshold.\n"); 615 return; 616 } 617 618 if (qgv_points <= 1) 619 return; 620 621 display->bw.num_qgv_points++; 622 623 display->bw.peakbw[qgv_points] = PEAK_BW_THRESHOLD; 624 625 for (int i = 0; i < ARRAY_SIZE(display->bw.max); i++) 626 display->bw.max[i].deratedbw[qgv_points] = PEAK_BW_THRESHOLD; 627 628 drm_dbg_kms(display->drm, "An extra QGV point %d added for Peak bw threshod of %d\n", 629 qgv_points, PEAK_BW_THRESHOLD); 630 } 631 632 static int tgl_get_bw_info(struct intel_display *display, 633 const struct dram_info *dram_info, 634 const struct intel_soc_bw_params *soc_bw_params, 635 const struct intel_display_bw_params *display_bw_params) 636 { 637 struct intel_qgv_info qi = {}; 638 int num_channels = max_t(u8, 1, dram_info->num_channels); 639 int ipqdepth, ipqdepthpch = 16; 640 int maxdebw, peakbw; 641 int clperchgroup; 642 int num_groups = ARRAY_SIZE(display->bw.max); 643 int i, ret; 644 645 ret = icl_get_qgv_points(display, dram_info, &qi); 646 if (ret) { 647 drm_dbg_kms(display->drm, 648 "Failed to get memory subsystem information, ignoring bandwidth limits"); 649 return ret; 650 } 651 652 if (DISPLAY_VER(display) < 14 && 653 (dram_info->type == INTEL_DRAM_LPDDR4 || dram_info->type == INTEL_DRAM_LPDDR5)) 654 num_channels *= 2; 655 656 if (num_channels < qi.max_numchannels && DISPLAY_VER(display) >= 12) 657 qi.deinterleave = max(qi.deinterleave / 2, 1); 658 659 if (DISPLAY_VER(display) >= 12 && num_channels > qi.max_numchannels) 660 drm_warn(display->drm, "Number of channels exceeds max number of channels."); 661 if (qi.max_numchannels != 0) 662 num_channels = min_t(u8, num_channels, qi.max_numchannels); 663 664 peakbw = tgl_peakbw(num_channels, qi.channel_width, icl_sagv_max_dclk(&qi)); 665 maxdebw = min(soc_bw_params->deprogbwlimit * 1000, peakbw * DEPROGBWPCLIMIT / 100); 666 667 ipqdepth = min(ipqdepthpch, display_bw_params->displayrtids / num_channels); 668 /* 669 * clperchgroup = 4kpagespermempage * clperchperblock, 670 * clperchperblock = 8 / num_channels * interleave 671 */ 672 clperchgroup = 4 * (8 / num_channels) * qi.deinterleave; 673 674 display->bw.num_qgv_points = qi.num_qgv_points; 675 display->bw.num_psf_gv_points = qi.num_psf_points; 676 677 display->bw.max[0].num_planes = U8_MAX; 678 679 for (i = 0; i < num_groups; i++) { 680 struct intel_bw_info *bi = &display->bw.max[i]; 681 int clpchgroup; 682 int j; 683 684 clpchgroup = (display_bw_params->deburst * qi.deinterleave / num_channels) << i; 685 686 if (i < num_groups - 1) { 687 struct intel_bw_info *bi_next = &display->bw.max[i + 1]; 688 689 if (clpchgroup < clperchgroup) 690 bi_next->num_planes = (ipqdepth - clpchgroup) / clpchgroup; 691 else 692 bi_next->num_planes = 0; 693 } 694 695 for (j = 0; j < qi.num_qgv_points; j++) { 696 const struct intel_qgv_point *sp = &qi.points[j]; 697 int ct, bw; 698 699 /* 700 * Max row cycle time 701 * 702 * FIXME what is the logic behind the 703 * assumed burst length? 704 */ 705 ct = max_t(int, sp->t_rc, sp->t_rp + sp->t_rcd + 706 (clpchgroup - 1) * qi.t_bl + sp->t_rdpre); 707 bw = sp->dclk * clpchgroup * 32 * num_channels / ct; 708 709 bi->deratedbw[j] = min(maxdebw, 710 bw * (100 - soc_bw_params->derating) / 100); 711 712 drm_dbg_kms(display->drm, 713 "BW%d / QGV %d: num_planes=%d deratedbw=%u\n", 714 i, j, bi->num_planes, bi->deratedbw[j]); 715 } 716 } 717 718 for (i = 0; i < qi.num_qgv_points; i++) { 719 const struct intel_qgv_point *sp = &qi.points[i]; 720 721 display->bw.peakbw[i] = tgl_peakbw(num_channels, qi.channel_width, sp->dclk); 722 723 drm_dbg_kms(display->drm, "QGV %d: peakbw=%u\n", i, display->bw.peakbw[i]); 724 } 725 726 /* For xe3 cases add an extra qgv point for Peak bw threshold */ 727 xe3_add_peakbw_threshold(display); 728 729 for (i = 0; i < qi.num_psf_points; i++) { 730 const struct intel_psf_gv_point *sp = &qi.psf_points[i]; 731 732 display->bw.psf_bw[i] = adl_calc_psf_bw(sp->clk); 733 734 drm_dbg_kms(display->drm, "PSF GV %d: bw=%u\n", i, display->bw.psf_bw[i]); 735 } 736 737 return 0; 738 } 739 740 static void dg2_get_bw_info(struct intel_display *display) 741 { 742 int i; 743 744 display->bw.num_qgv_points = 1; 745 746 display->bw.max[0].num_planes = U8_MAX; 747 display->bw.max[0].deratedbw[0] = display->platform.dg2_g11 ? 38000 : 50000; 748 749 drm_dbg_kms(display->drm, 750 "QGV 0: deratedbw=%u\n", 751 display->bw.max[0].deratedbw[0]); 752 753 /* Bandwidth does not depend on # of planes; set all groups the same */ 754 for (i = 1; i < ARRAY_SIZE(display->bw.max); i++) 755 display->bw.max[i] = display->bw.max[0]; 756 } 757 758 static int xe2_hpd_get_bw_info(struct intel_display *display, 759 const struct dram_info *dram_info, 760 const struct intel_soc_bw_params *soc_bw_params) 761 { 762 struct intel_qgv_info qi = {}; 763 int num_channels = dram_info->num_channels; 764 int peakbw, maxdebw; 765 int ret, i; 766 767 ret = icl_get_qgv_points(display, dram_info, &qi); 768 if (ret) { 769 drm_dbg_kms(display->drm, 770 "Failed to get memory subsystem information, ignoring bandwidth limits"); 771 return ret; 772 } 773 774 peakbw = tgl_peakbw(num_channels, qi.channel_width, icl_sagv_max_dclk(&qi)); 775 maxdebw = min(soc_bw_params->deprogbwlimit * 1000, peakbw * DEPROGBWPCLIMIT / 100); 776 777 display->bw.num_qgv_points = qi.num_qgv_points; 778 779 display->bw.max[0].num_planes = U8_MAX; 780 781 for (i = 0; i < qi.num_qgv_points; i++) { 782 const struct intel_qgv_point *sp = &qi.points[i]; 783 int bw = tgl_peakbw(num_channels, qi.channel_width, sp->dclk); 784 785 display->bw.max[0].deratedbw[i] = 786 min(maxdebw, (100 - soc_bw_params->derating) * bw / 100); 787 788 display->bw.peakbw[i] = bw; 789 790 drm_dbg_kms(display->drm, "QGV %d: deratedbw=%u peakbw=%u\n", 791 i, display->bw.max[0].deratedbw[i], display->bw.peakbw[i]); 792 } 793 794 /* Bandwidth does not depend on # of planes; set all groups the same */ 795 for (i = 1; i < ARRAY_SIZE(display->bw.max); i++) 796 display->bw.max[i] = display->bw.max[0]; 797 798 /* 799 * Xe2_HPD should always have exactly two QGV points representing 800 * battery and plugged-in operation. 801 */ 802 drm_WARN_ON(display->drm, qi.num_qgv_points != 2); 803 804 return 0; 805 } 806 807 static unsigned int icl_max_bw_index(struct intel_display *display, 808 int num_planes, int qgv_point) 809 { 810 int i; 811 812 if (qgv_point >= display->bw.num_qgv_points) 813 return UINT_MAX; 814 815 /* 816 * Let's return max bw for 0 planes 817 */ 818 num_planes = max(1, num_planes); 819 820 for (i = 0; i < ARRAY_SIZE(display->bw.max); i++) { 821 const struct intel_bw_info *bi = 822 &display->bw.max[i]; 823 824 if (num_planes >= bi->num_planes) 825 return i; 826 } 827 828 return UINT_MAX; 829 } 830 831 static unsigned int tgl_max_bw_index(struct intel_display *display, 832 int num_planes, int qgv_point) 833 { 834 int i; 835 836 if (qgv_point >= display->bw.num_qgv_points) 837 return UINT_MAX; 838 839 for (i = ARRAY_SIZE(display->bw.max) - 1; i >= 0; i--) { 840 const struct intel_bw_info *bi = 841 &display->bw.max[i]; 842 843 if (num_planes <= bi->num_planes) 844 return i; 845 } 846 847 return UINT_MAX; 848 } 849 850 static unsigned int adl_psf_bw(struct intel_display *display, 851 int psf_gv_point) 852 { 853 return display->bw.psf_bw[psf_gv_point]; 854 } 855 856 static unsigned int icl_qgv_bw(struct intel_display *display, 857 int num_active_planes, int qgv_point) 858 { 859 unsigned int idx; 860 861 if (DISPLAY_VER(display) >= 12) 862 idx = tgl_max_bw_index(display, num_active_planes, qgv_point); 863 else 864 idx = icl_max_bw_index(display, num_active_planes, qgv_point); 865 866 if (idx >= ARRAY_SIZE(display->bw.max)) 867 return 0; 868 869 return display->bw.max[idx].deratedbw[qgv_point]; 870 } 871 872 void intel_bw_init_hw(struct intel_display *display) 873 { 874 const struct dram_info *dram_info; 875 const struct intel_soc_bw_params *soc_bw_params; 876 const struct intel_display_bw_params *display_bw_params; 877 878 if (!HAS_DISPLAY(display)) 879 return; 880 881 dram_info = intel_dram_info(display); 882 soc_bw_params = get_soc_bw_params(display, dram_info); 883 display_bw_params = get_display_bw_params(display); 884 885 /* 886 * Starting with Xe3p_LPD, the hardware tells us whether memory has ECC 887 * enabled that would impact display bandwidth. However, so far there 888 * are no instructions in Bspec on how to handle that case. Let's 889 * complain if we ever find such a scenario. 890 */ 891 if (DISPLAY_VER(display) >= 35) 892 drm_WARN_ON(display->drm, dram_info->ecc_impacting_de_bw); 893 894 if (DISPLAY_VERx100(display) >= 1401 && display->platform.dgfx) { 895 xe2_hpd_get_bw_info(display, dram_info, soc_bw_params); 896 } else if (display->platform.dg2) { 897 dg2_get_bw_info(display); 898 } else if (DISPLAY_VER(display) >= 12) { 899 tgl_get_bw_info(display, dram_info, soc_bw_params, display_bw_params); 900 } else if (DISPLAY_VER(display) == 11) { 901 icl_get_bw_info(display, dram_info, soc_bw_params, display_bw_params); 902 } 903 904 update_sagv_status(display, display->bw.num_qgv_points); 905 } 906 907 static unsigned int intel_bw_num_active_planes(struct intel_display *display, 908 const struct intel_bw_state *bw_state) 909 { 910 unsigned int num_active_planes = 0; 911 enum pipe pipe; 912 913 for_each_pipe(display, pipe) 914 num_active_planes += bw_state->num_active_planes[pipe]; 915 916 return num_active_planes; 917 } 918 919 static unsigned int intel_bw_data_rate(struct intel_display *display, 920 const struct intel_bw_state *bw_state) 921 { 922 unsigned int data_rate = 0; 923 enum pipe pipe; 924 925 for_each_pipe(display, pipe) 926 data_rate += bw_state->data_rate[pipe]; 927 928 if (DISPLAY_VER(display) >= 13 && intel_display_vtd_active(display)) 929 data_rate = DIV_ROUND_UP(data_rate * 105, 100); 930 931 return data_rate; 932 } 933 934 struct intel_bw_state *to_intel_bw_state(struct intel_global_state *obj_state) 935 { 936 return container_of(obj_state, struct intel_bw_state, base); 937 } 938 939 struct intel_bw_state * 940 intel_atomic_get_old_bw_state(struct intel_atomic_state *state) 941 { 942 struct intel_display *display = to_intel_display(state); 943 struct intel_global_state *bw_state; 944 945 bw_state = intel_atomic_get_old_global_obj_state(state, &display->bw.obj); 946 947 return to_intel_bw_state(bw_state); 948 } 949 950 struct intel_bw_state * 951 intel_atomic_get_new_bw_state(struct intel_atomic_state *state) 952 { 953 struct intel_display *display = to_intel_display(state); 954 struct intel_global_state *bw_state; 955 956 bw_state = intel_atomic_get_new_global_obj_state(state, &display->bw.obj); 957 958 return to_intel_bw_state(bw_state); 959 } 960 961 struct intel_bw_state * 962 intel_atomic_get_bw_state(struct intel_atomic_state *state) 963 { 964 struct intel_display *display = to_intel_display(state); 965 struct intel_global_state *bw_state; 966 967 bw_state = intel_atomic_get_global_obj_state(state, &display->bw.obj); 968 if (IS_ERR(bw_state)) 969 return ERR_CAST(bw_state); 970 971 return to_intel_bw_state(bw_state); 972 } 973 974 static unsigned int icl_max_bw_qgv_point_mask(struct intel_display *display, 975 int num_active_planes) 976 { 977 unsigned int num_qgv_points = display->bw.num_qgv_points; 978 unsigned int max_bw_point = 0; 979 unsigned int max_bw = 0; 980 int i; 981 982 for (i = 0; i < num_qgv_points; i++) { 983 unsigned int max_data_rate = 984 icl_qgv_bw(display, num_active_planes, i); 985 986 /* 987 * We need to know which qgv point gives us 988 * maximum bandwidth in order to disable SAGV 989 * if we find that we exceed SAGV block time 990 * with watermarks. By that moment we already 991 * have those, as it is calculated earlier in 992 * intel_atomic_check, 993 */ 994 if (max_data_rate > max_bw) { 995 max_bw_point = BIT(i); 996 max_bw = max_data_rate; 997 } 998 } 999 1000 return max_bw_point; 1001 } 1002 1003 static u16 icl_prepare_qgv_points_mask(struct intel_display *display, 1004 unsigned int qgv_points, 1005 unsigned int psf_points) 1006 { 1007 return ~(ICL_PCODE_REQ_QGV_PT(qgv_points) | 1008 ADLS_PCODE_REQ_PSF_PT(psf_points)) & icl_qgv_points_mask(display); 1009 } 1010 1011 static unsigned int icl_max_bw_psf_gv_point_mask(struct intel_display *display) 1012 { 1013 unsigned int num_psf_gv_points = display->bw.num_psf_gv_points; 1014 unsigned int max_bw_point_mask = 0; 1015 unsigned int max_bw = 0; 1016 int i; 1017 1018 for (i = 0; i < num_psf_gv_points; i++) { 1019 unsigned int max_data_rate = adl_psf_bw(display, i); 1020 1021 if (max_data_rate > max_bw) { 1022 max_bw_point_mask = BIT(i); 1023 max_bw = max_data_rate; 1024 } else if (max_data_rate == max_bw) { 1025 max_bw_point_mask |= BIT(i); 1026 } 1027 } 1028 1029 return max_bw_point_mask; 1030 } 1031 1032 static void icl_force_disable_sagv(struct intel_display *display, 1033 struct intel_bw_state *bw_state) 1034 { 1035 unsigned int qgv_points = icl_max_bw_qgv_point_mask(display, 0); 1036 unsigned int psf_points = icl_max_bw_psf_gv_point_mask(display); 1037 1038 bw_state->qgv_points_mask = icl_prepare_qgv_points_mask(display, 1039 qgv_points, 1040 psf_points); 1041 1042 drm_dbg_kms(display->drm, "Forcing SAGV disable: mask 0x%x\n", 1043 bw_state->qgv_points_mask); 1044 1045 icl_pcode_restrict_qgv_points(display, bw_state->qgv_points_mask); 1046 } 1047 1048 void icl_sagv_pre_plane_update(struct intel_atomic_state *state) 1049 { 1050 struct intel_display *display = to_intel_display(state); 1051 const struct intel_bw_state *old_bw_state = 1052 intel_atomic_get_old_bw_state(state); 1053 const struct intel_bw_state *new_bw_state = 1054 intel_atomic_get_new_bw_state(state); 1055 u16 old_mask, new_mask; 1056 1057 if (!new_bw_state) 1058 return; 1059 1060 old_mask = old_bw_state->qgv_points_mask; 1061 new_mask = old_bw_state->qgv_points_mask | new_bw_state->qgv_points_mask; 1062 1063 if (old_mask == new_mask) 1064 return; 1065 1066 WARN_ON(!new_bw_state->base.changed); 1067 1068 drm_dbg_kms(display->drm, "Restricting QGV points: 0x%x -> 0x%x\n", 1069 old_mask, new_mask); 1070 1071 /* 1072 * Restrict required qgv points before updating the configuration. 1073 * According to BSpec we can't mask and unmask qgv points at the same 1074 * time. Also masking should be done before updating the configuration 1075 * and unmasking afterwards. 1076 */ 1077 icl_pcode_restrict_qgv_points(display, new_mask); 1078 } 1079 1080 void icl_sagv_post_plane_update(struct intel_atomic_state *state) 1081 { 1082 struct intel_display *display = to_intel_display(state); 1083 const struct intel_bw_state *old_bw_state = 1084 intel_atomic_get_old_bw_state(state); 1085 const struct intel_bw_state *new_bw_state = 1086 intel_atomic_get_new_bw_state(state); 1087 u16 old_mask, new_mask; 1088 1089 if (!new_bw_state) 1090 return; 1091 1092 old_mask = old_bw_state->qgv_points_mask | new_bw_state->qgv_points_mask; 1093 new_mask = new_bw_state->qgv_points_mask; 1094 1095 if (old_mask == new_mask) 1096 return; 1097 1098 WARN_ON(!new_bw_state->base.changed); 1099 1100 drm_dbg_kms(display->drm, "Relaxing QGV points: 0x%x -> 0x%x\n", 1101 old_mask, new_mask); 1102 1103 /* 1104 * Allow required qgv points after updating the configuration. 1105 * According to BSpec we can't mask and unmask qgv points at the same 1106 * time. Also masking should be done before updating the configuration 1107 * and unmasking afterwards. 1108 */ 1109 icl_pcode_restrict_qgv_points(display, new_mask); 1110 } 1111 1112 static int mtl_find_qgv_points(struct intel_display *display, 1113 unsigned int data_rate, 1114 unsigned int num_active_planes, 1115 struct intel_bw_state *new_bw_state) 1116 { 1117 unsigned int best_rate = UINT_MAX; 1118 unsigned int num_qgv_points = display->bw.num_qgv_points; 1119 unsigned int qgv_peak_bw = 0; 1120 int i; 1121 int ret; 1122 1123 ret = intel_atomic_lock_global_state(&new_bw_state->base); 1124 if (ret) 1125 return ret; 1126 1127 /* 1128 * If SAGV cannot be enabled, disable the pcode SAGV by passing all 1's 1129 * for qgv peak bw in PM Demand request. So assign UINT_MAX if SAGV is 1130 * not enabled. PM Demand code will clamp the value for the register 1131 */ 1132 if (!intel_bw_can_enable_sagv(display, new_bw_state)) { 1133 new_bw_state->qgv_point_peakbw = U16_MAX; 1134 drm_dbg_kms(display->drm, "No SAGV, use UINT_MAX as peak bw."); 1135 return 0; 1136 } 1137 1138 /* 1139 * Find the best QGV point by comparing the data_rate with max data rate 1140 * offered per plane group 1141 */ 1142 for (i = 0; i < num_qgv_points; i++) { 1143 unsigned int max_data_rate = 1144 icl_qgv_bw(display, num_active_planes, i); 1145 1146 if (max_data_rate < data_rate) 1147 continue; 1148 1149 if (max_data_rate < best_rate) { 1150 best_rate = max_data_rate; 1151 qgv_peak_bw = display->bw.peakbw[i]; 1152 } 1153 1154 drm_dbg_kms(display->drm, "QGV point %d: max bw %d required %d qgv_peak_bw: %d\n", 1155 i, max_data_rate, data_rate, qgv_peak_bw); 1156 } 1157 1158 drm_dbg_kms(display->drm, "Matching peaks QGV bw: %d for required data rate: %d\n", 1159 qgv_peak_bw, data_rate); 1160 1161 /* 1162 * The display configuration cannot be supported if no QGV point 1163 * satisfying the required data rate is found 1164 */ 1165 if (qgv_peak_bw == 0) { 1166 drm_dbg_kms(display->drm, "No QGV points for bw %d for display configuration(%d active planes).\n", 1167 data_rate, num_active_planes); 1168 return -EINVAL; 1169 } 1170 1171 /* MTL PM DEMAND expects QGV BW parameter in multiples of 100 mbps */ 1172 new_bw_state->qgv_point_peakbw = qgv_peak_bw / 100; 1173 1174 return 0; 1175 } 1176 1177 static int icl_find_qgv_points(struct intel_display *display, 1178 unsigned int data_rate, 1179 unsigned int num_active_planes, 1180 const struct intel_bw_state *old_bw_state, 1181 struct intel_bw_state *new_bw_state) 1182 { 1183 unsigned int num_psf_gv_points = display->bw.num_psf_gv_points; 1184 unsigned int num_qgv_points = display->bw.num_qgv_points; 1185 u16 psf_points = 0; 1186 u16 qgv_points = 0; 1187 int i; 1188 int ret; 1189 1190 ret = intel_atomic_lock_global_state(&new_bw_state->base); 1191 if (ret) 1192 return ret; 1193 1194 for (i = 0; i < num_qgv_points; i++) { 1195 unsigned int max_data_rate = icl_qgv_bw(display, 1196 num_active_planes, i); 1197 if (max_data_rate >= data_rate) 1198 qgv_points |= BIT(i); 1199 1200 drm_dbg_kms(display->drm, "QGV point %d: max bw %d required %d\n", 1201 i, max_data_rate, data_rate); 1202 } 1203 1204 for (i = 0; i < num_psf_gv_points; i++) { 1205 unsigned int max_data_rate = adl_psf_bw(display, i); 1206 1207 if (max_data_rate >= data_rate) 1208 psf_points |= BIT(i); 1209 1210 drm_dbg_kms(display->drm, "PSF GV point %d: max bw %d" 1211 " required %d\n", 1212 i, max_data_rate, data_rate); 1213 } 1214 1215 /* 1216 * BSpec states that we always should have at least one allowed point 1217 * left, so if we couldn't - simply reject the configuration for obvious 1218 * reasons. 1219 */ 1220 if (qgv_points == 0) { 1221 drm_dbg_kms(display->drm, "No QGV points provide sufficient memory" 1222 " bandwidth %d for display configuration(%d active planes).\n", 1223 data_rate, num_active_planes); 1224 return -EINVAL; 1225 } 1226 1227 if (num_psf_gv_points > 0 && psf_points == 0) { 1228 drm_dbg_kms(display->drm, "No PSF GV points provide sufficient memory" 1229 " bandwidth %d for display configuration(%d active planes).\n", 1230 data_rate, num_active_planes); 1231 return -EINVAL; 1232 } 1233 1234 /* 1235 * Leave only single point with highest bandwidth, if 1236 * we can't enable SAGV due to the increased memory latency it may 1237 * cause. 1238 */ 1239 if (!intel_bw_can_enable_sagv(display, new_bw_state)) { 1240 qgv_points = icl_max_bw_qgv_point_mask(display, num_active_planes); 1241 drm_dbg_kms(display->drm, "No SAGV, using single QGV point mask 0x%x\n", 1242 qgv_points); 1243 } 1244 1245 /* 1246 * We store the ones which need to be masked as that is what PCode 1247 * actually accepts as a parameter. 1248 */ 1249 new_bw_state->qgv_points_mask = icl_prepare_qgv_points_mask(display, 1250 qgv_points, 1251 psf_points); 1252 /* 1253 * If the actual mask had changed we need to make sure that 1254 * the commits are serialized(in case this is a nomodeset, nonblocking) 1255 */ 1256 if (new_bw_state->qgv_points_mask != old_bw_state->qgv_points_mask) { 1257 ret = intel_atomic_serialize_global_state(&new_bw_state->base); 1258 if (ret) 1259 return ret; 1260 } 1261 1262 return 0; 1263 } 1264 1265 static int intel_bw_check_qgv_points(struct intel_display *display, 1266 const struct intel_bw_state *old_bw_state, 1267 struct intel_bw_state *new_bw_state) 1268 { 1269 unsigned int data_rate = intel_bw_data_rate(display, new_bw_state); 1270 unsigned int num_active_planes = 1271 intel_bw_num_active_planes(display, new_bw_state); 1272 1273 data_rate = DIV_ROUND_UP(data_rate, 1000); 1274 1275 if (HAS_PMDEMAND(display)) 1276 return mtl_find_qgv_points(display, data_rate, num_active_planes, 1277 new_bw_state); 1278 else 1279 return icl_find_qgv_points(display, data_rate, num_active_planes, 1280 old_bw_state, new_bw_state); 1281 } 1282 1283 static int intel_bw_check_data_rate(struct intel_atomic_state *state, bool *changed) 1284 { 1285 struct intel_display *display = to_intel_display(state); 1286 const struct intel_crtc_state *new_crtc_state, *old_crtc_state; 1287 struct intel_crtc *crtc; 1288 1289 for_each_oldnew_intel_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state) { 1290 unsigned int old_data_rate = 1291 intel_crtc_bw_data_rate(old_crtc_state); 1292 unsigned int new_data_rate = 1293 intel_crtc_bw_data_rate(new_crtc_state); 1294 unsigned int old_active_planes = 1295 intel_crtc_bw_num_active_planes(old_crtc_state); 1296 unsigned int new_active_planes = 1297 intel_crtc_bw_num_active_planes(new_crtc_state); 1298 struct intel_bw_state *new_bw_state; 1299 1300 /* 1301 * Avoid locking the bw state when 1302 * nothing significant has changed. 1303 */ 1304 if (old_data_rate == new_data_rate && 1305 old_active_planes == new_active_planes) 1306 continue; 1307 1308 new_bw_state = intel_atomic_get_bw_state(state); 1309 if (IS_ERR(new_bw_state)) 1310 return PTR_ERR(new_bw_state); 1311 1312 new_bw_state->data_rate[crtc->pipe] = new_data_rate; 1313 new_bw_state->num_active_planes[crtc->pipe] = new_active_planes; 1314 1315 *changed = true; 1316 1317 drm_dbg_kms(display->drm, 1318 "[CRTC:%d:%s] data rate %u num active planes %u\n", 1319 crtc->base.base.id, crtc->base.name, 1320 new_bw_state->data_rate[crtc->pipe], 1321 new_bw_state->num_active_planes[crtc->pipe]); 1322 } 1323 1324 return 0; 1325 } 1326 1327 static int intel_bw_check_sagv_mask(struct intel_atomic_state *state) 1328 { 1329 struct intel_display *display = to_intel_display(state); 1330 const struct intel_crtc_state *old_crtc_state; 1331 const struct intel_crtc_state *new_crtc_state; 1332 const struct intel_bw_state *old_bw_state = NULL; 1333 struct intel_bw_state *new_bw_state = NULL; 1334 struct intel_crtc *crtc; 1335 int ret; 1336 1337 for_each_oldnew_intel_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state) { 1338 if (intel_crtc_can_enable_sagv(old_crtc_state) == 1339 intel_crtc_can_enable_sagv(new_crtc_state)) 1340 continue; 1341 1342 new_bw_state = intel_atomic_get_bw_state(state); 1343 if (IS_ERR(new_bw_state)) 1344 return PTR_ERR(new_bw_state); 1345 1346 old_bw_state = intel_atomic_get_old_bw_state(state); 1347 1348 if (intel_crtc_can_enable_sagv(new_crtc_state)) 1349 new_bw_state->pipe_sagv_reject &= ~BIT(crtc->pipe); 1350 else 1351 new_bw_state->pipe_sagv_reject |= BIT(crtc->pipe); 1352 } 1353 1354 if (!new_bw_state) 1355 return 0; 1356 1357 if (intel_bw_can_enable_sagv(display, new_bw_state) != 1358 intel_bw_can_enable_sagv(display, old_bw_state)) { 1359 ret = intel_atomic_serialize_global_state(&new_bw_state->base); 1360 if (ret) 1361 return ret; 1362 } else if (new_bw_state->pipe_sagv_reject != old_bw_state->pipe_sagv_reject) { 1363 ret = intel_atomic_lock_global_state(&new_bw_state->base); 1364 if (ret) 1365 return ret; 1366 } 1367 1368 return 0; 1369 } 1370 1371 int intel_bw_atomic_check(struct intel_atomic_state *state) 1372 { 1373 struct intel_display *display = to_intel_display(state); 1374 bool changed = false; 1375 struct intel_bw_state *new_bw_state; 1376 const struct intel_bw_state *old_bw_state; 1377 int ret; 1378 1379 if (DISPLAY_VER(display) < 9) 1380 return 0; 1381 1382 ret = intel_bw_check_sagv_mask(state); 1383 if (ret) 1384 return ret; 1385 1386 /* FIXME earlier gens need some checks too */ 1387 if (DISPLAY_VER(display) < 11) 1388 return 0; 1389 1390 ret = intel_bw_check_data_rate(state, &changed); 1391 if (ret) 1392 return ret; 1393 1394 old_bw_state = intel_atomic_get_old_bw_state(state); 1395 new_bw_state = intel_atomic_get_new_bw_state(state); 1396 1397 if (new_bw_state && 1398 intel_bw_can_enable_sagv(display, old_bw_state) != 1399 intel_bw_can_enable_sagv(display, new_bw_state)) 1400 changed = true; 1401 1402 /* 1403 * If none of our inputs (data rates, number of active 1404 * planes, SAGV yes/no) changed then nothing to do here. 1405 */ 1406 if (!changed) 1407 return 0; 1408 1409 ret = intel_bw_check_qgv_points(display, old_bw_state, new_bw_state); 1410 if (ret) 1411 return ret; 1412 1413 return 0; 1414 } 1415 1416 static void intel_bw_crtc_update(struct intel_bw_state *bw_state, 1417 const struct intel_crtc_state *crtc_state) 1418 { 1419 struct intel_display *display = to_intel_display(crtc_state); 1420 struct intel_crtc *crtc = to_intel_crtc(crtc_state->uapi.crtc); 1421 1422 bw_state->data_rate[crtc->pipe] = 1423 intel_crtc_bw_data_rate(crtc_state); 1424 bw_state->num_active_planes[crtc->pipe] = 1425 intel_crtc_bw_num_active_planes(crtc_state); 1426 1427 drm_dbg_kms(display->drm, "pipe %c data rate %u num active planes %u\n", 1428 pipe_name(crtc->pipe), 1429 bw_state->data_rate[crtc->pipe], 1430 bw_state->num_active_planes[crtc->pipe]); 1431 } 1432 1433 void intel_bw_update_hw_state(struct intel_display *display) 1434 { 1435 struct intel_bw_state *bw_state = 1436 to_intel_bw_state(display->bw.obj.state); 1437 struct intel_crtc *crtc; 1438 1439 if (DISPLAY_VER(display) < 9) 1440 return; 1441 1442 bw_state->pipe_sagv_reject = 0; 1443 1444 for_each_intel_crtc(display, crtc) { 1445 const struct intel_crtc_state *crtc_state = 1446 to_intel_crtc_state(crtc->base.state); 1447 enum pipe pipe = crtc->pipe; 1448 1449 if (DISPLAY_VER(display) >= 11) 1450 intel_bw_crtc_update(bw_state, crtc_state); 1451 1452 /* initially SAGV has been forced off */ 1453 bw_state->pipe_sagv_reject |= BIT(pipe); 1454 } 1455 } 1456 1457 void intel_bw_crtc_disable_noatomic(struct intel_crtc *crtc) 1458 { 1459 struct intel_display *display = to_intel_display(crtc); 1460 struct intel_bw_state *bw_state = 1461 to_intel_bw_state(display->bw.obj.state); 1462 enum pipe pipe = crtc->pipe; 1463 1464 if (DISPLAY_VER(display) < 9) 1465 return; 1466 1467 bw_state->data_rate[pipe] = 0; 1468 bw_state->num_active_planes[pipe] = 0; 1469 } 1470 1471 static struct intel_global_state * 1472 intel_bw_duplicate_state(struct intel_global_obj *obj) 1473 { 1474 struct intel_bw_state *state; 1475 1476 state = kmemdup(obj->state, sizeof(*state), GFP_KERNEL); 1477 if (!state) 1478 return NULL; 1479 1480 return &state->base; 1481 } 1482 1483 static void intel_bw_destroy_state(struct intel_global_obj *obj, 1484 struct intel_global_state *state) 1485 { 1486 kfree(state); 1487 } 1488 1489 static const struct intel_global_state_funcs intel_bw_funcs = { 1490 .atomic_duplicate_state = intel_bw_duplicate_state, 1491 .atomic_destroy_state = intel_bw_destroy_state, 1492 }; 1493 1494 int intel_bw_init(struct intel_display *display) 1495 { 1496 struct intel_bw_state *state; 1497 1498 state = kzalloc_obj(*state); 1499 if (!state) 1500 return -ENOMEM; 1501 1502 intel_atomic_global_obj_init(display, &display->bw.obj, 1503 &state->base, &intel_bw_funcs); 1504 1505 /* 1506 * Limit this only if we have SAGV. And for Display version 14 onwards 1507 * sagv is handled though pmdemand requests 1508 */ 1509 if (intel_has_sagv(display) && IS_DISPLAY_VER(display, 11, 13)) 1510 icl_force_disable_sagv(display, state); 1511 1512 return 0; 1513 } 1514 1515 bool intel_bw_pmdemand_needs_update(struct intel_atomic_state *state) 1516 { 1517 const struct intel_bw_state *new_bw_state, *old_bw_state; 1518 1519 new_bw_state = intel_atomic_get_new_bw_state(state); 1520 old_bw_state = intel_atomic_get_old_bw_state(state); 1521 1522 if (new_bw_state && 1523 new_bw_state->qgv_point_peakbw != old_bw_state->qgv_point_peakbw) 1524 return true; 1525 1526 return false; 1527 } 1528 1529 bool intel_bw_can_enable_sagv(struct intel_display *display, 1530 const struct intel_bw_state *bw_state) 1531 { 1532 return bw_state->pipe_sagv_reject == 0; 1533 } 1534 1535 int intel_bw_qgv_point_peakbw(const struct intel_bw_state *bw_state) 1536 { 1537 return bw_state->qgv_point_peakbw; 1538 } 1539