1 // SPDX-License-Identifier: MIT 2 /* 3 * Copyright © 2020 Intel Corporation 4 * 5 */ 6 7 #include <drm/drm_print.h> 8 #include <drm/intel/step.h> 9 10 #include "intel_alpm.h" 11 #include "intel_cmtg.h" 12 #include "intel_crtc.h" 13 #include "intel_de.h" 14 #include "intel_display_limits.h" 15 #include "intel_display_regs.h" 16 #include "intel_display_types.h" 17 #include "intel_dmc.h" 18 #include "intel_dmc_regs.h" 19 #include "intel_dp.h" 20 #include "intel_psr.h" 21 #include "intel_vrr.h" 22 #include "intel_vrr_regs.h" 23 #include "skl_prefill.h" 24 #include "skl_watermark.h" 25 26 #define FIXED_POINT_PRECISION 100 27 #define CMRR_PRECISION_TOLERANCE 10 28 29 /* 30 * Tunable parameters for DC Balance correction. 31 * These are captured based on experimentations. 32 */ 33 #define DCB_CORRECTION_SENSITIVITY 30 34 #define DCB_CORRECTION_AGGRESSIVENESS 1000 /* ms × 100; 10 ms */ 35 #define DCB_BLANK_TARGET 50 36 37 bool intel_vrr_is_capable(struct intel_connector *connector) 38 { 39 struct intel_display *display = to_intel_display(connector); 40 const struct drm_display_info *info = &connector->base.display_info; 41 struct intel_dp *intel_dp; 42 43 if (!HAS_VRR(display)) 44 return false; 45 46 /* 47 * DP Sink is capable of VRR video timings if 48 * Ignore MSA bit is set in DPCD. 49 * EDID monitor range also should be atleast 10 for reasonable 50 * Adaptive Sync or Variable Refresh Rate end user experience. 51 */ 52 switch (connector->base.connector_type) { 53 case DRM_MODE_CONNECTOR_eDP: 54 if (!connector->panel.vbt.vrr) 55 return false; 56 fallthrough; 57 case DRM_MODE_CONNECTOR_DisplayPort: 58 if (connector->mst.dp) 59 return false; 60 intel_dp = intel_attached_dp(connector); 61 /* 62 * Among non-MST DP branch devices, only an HDMI 2.1 sink connected 63 * via a PCON could support VRR. However, supporting VRR through a 64 * PCON requires non-trivial changes that are not implemented yet. 65 * Until that support exists, avoid VRR on all DP branch devices. 66 * 67 * TODO: Add support for VRR for DP->HDMI 2.1 PCON. 68 */ 69 if (drm_dp_is_branch(intel_dp->dpcd)) 70 return false; 71 72 if (!drm_dp_sink_can_do_video_without_timing_msa(intel_dp->dpcd)) 73 return false; 74 75 break; 76 default: 77 return false; 78 } 79 80 if (!info->monitor_range.min_vfreq || !info->monitor_range.max_vfreq || 81 info->monitor_range.min_vfreq > info->monitor_range.max_vfreq) 82 return false; 83 84 return info->monitor_range.max_vfreq - info->monitor_range.min_vfreq > 10; 85 } 86 87 bool intel_vrr_is_in_range(struct intel_connector *connector, int vrefresh) 88 { 89 const struct drm_display_info *info = &connector->base.display_info; 90 91 return intel_vrr_is_capable(connector) && 92 vrefresh >= info->monitor_range.min_vfreq && 93 vrefresh <= info->monitor_range.max_vfreq; 94 } 95 96 bool intel_vrr_possible(const struct intel_crtc_state *crtc_state) 97 { 98 return crtc_state->vrr.flipline; 99 } 100 101 void 102 intel_vrr_check_modeset(struct intel_atomic_state *state) 103 { 104 struct intel_crtc_state *old_crtc_state, *new_crtc_state; 105 struct intel_crtc *crtc; 106 107 for_each_oldnew_intel_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state) { 108 if (new_crtc_state->uapi.vrr_enabled != 109 old_crtc_state->uapi.vrr_enabled) 110 new_crtc_state->uapi.mode_changed = true; 111 } 112 } 113 114 static int intel_vrr_extra_vblank_delay(struct intel_display *display) 115 { 116 /* 117 * On ICL/TGL VRR hardware inserts one extra scanline 118 * just after vactive, which pushes the vmin decision 119 * boundary ahead accordingly, and thus reduces the 120 * max guardband length by one scanline. 121 */ 122 return DISPLAY_VER(display) < 13 ? 1 : 0; 123 } 124 125 static int intel_vrr_vmin_flipline_offset(struct intel_display *display) 126 { 127 /* 128 * ICL/TGL hardware imposes flipline>=vmin+1 129 * 130 * We reduce the vmin value to compensate when programming the 131 * hardware. This approach allows flipline to remain set at the 132 * original value, and thus the frame will have the desired 133 * minimum vtotal. 134 */ 135 return DISPLAY_VER(display) < 13 ? 1 : 0; 136 } 137 138 static int intel_vrr_guardband_to_pipeline_full(const struct intel_crtc_state *crtc_state, 139 int guardband) 140 { 141 /* hardware imposes one extra scanline somewhere */ 142 return guardband - crtc_state->framestart_delay - 1; 143 } 144 145 static int intel_vrr_pipeline_full_to_guardband(const struct intel_crtc_state *crtc_state, 146 int pipeline_full) 147 { 148 /* hardware imposes one extra scanline somewhere */ 149 return pipeline_full + crtc_state->framestart_delay + 1; 150 } 151 152 /* 153 * Without VRR registers get latched at: 154 * vblank_start 155 * 156 * With VRR the earliest registers can get latched is: 157 * intel_vrr_vmin_vblank_start(), which if we want to maintain 158 * the correct min vtotal is >=vblank_start+1 159 * 160 * The latest point registers can get latched is the vmax decision boundary: 161 * intel_vrr_vmax_vblank_start() 162 * 163 * Between those two points the vblank exit starts (and hence registers get 164 * latched) ASAP after a push is sent. 165 * 166 * framestart_delay is programmable 1-4. 167 */ 168 169 int intel_vrr_vmin_vtotal(const struct intel_crtc_state *crtc_state) 170 { 171 /* Min vblank actually determined by flipline */ 172 return crtc_state->vrr.vmin; 173 } 174 175 int intel_vrr_vmax_vtotal(const struct intel_crtc_state *crtc_state) 176 { 177 return crtc_state->vrr.vmax; 178 } 179 180 int intel_vrr_vmin_vblank_start(const struct intel_crtc_state *crtc_state) 181 { 182 return intel_vrr_vmin_vtotal(crtc_state) - crtc_state->vrr.guardband; 183 } 184 185 int intel_vrr_vmax_vblank_start(const struct intel_crtc_state *crtc_state) 186 { 187 return intel_vrr_vmax_vtotal(crtc_state) - crtc_state->vrr.guardband; 188 } 189 190 static bool 191 is_cmrr_frac_required(struct intel_crtc_state *crtc_state) 192 { 193 struct intel_display *display = to_intel_display(crtc_state); 194 int calculated_refresh_k, actual_refresh_k, pixel_clock_per_line; 195 struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode; 196 197 /* Avoid CMRR for now till we have VRR with fixed timings working */ 198 if (!HAS_CMRR(display) || true) 199 return false; 200 201 actual_refresh_k = 202 drm_mode_vrefresh(adjusted_mode) * FIXED_POINT_PRECISION; 203 pixel_clock_per_line = 204 adjusted_mode->crtc_clock * 1000 / adjusted_mode->crtc_htotal; 205 calculated_refresh_k = 206 pixel_clock_per_line * FIXED_POINT_PRECISION / adjusted_mode->crtc_vtotal; 207 208 if ((actual_refresh_k - calculated_refresh_k) < CMRR_PRECISION_TOLERANCE) 209 return false; 210 211 return true; 212 } 213 214 static unsigned int 215 cmrr_get_vtotal(struct intel_crtc_state *crtc_state, bool video_mode_required) 216 { 217 int multiplier_m = 1, multiplier_n = 1, vtotal, desired_refresh_rate; 218 u64 adjusted_pixel_rate; 219 struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode; 220 221 desired_refresh_rate = drm_mode_vrefresh(adjusted_mode); 222 223 if (video_mode_required) { 224 multiplier_m = 1001; 225 multiplier_n = 1000; 226 } 227 228 crtc_state->cmrr.cmrr_n = mul_u32_u32(desired_refresh_rate * adjusted_mode->crtc_htotal, 229 multiplier_n); 230 vtotal = DIV_ROUND_UP_ULL(mul_u32_u32(adjusted_mode->crtc_clock * 1000, multiplier_n), 231 crtc_state->cmrr.cmrr_n); 232 adjusted_pixel_rate = mul_u32_u32(adjusted_mode->crtc_clock * 1000, multiplier_m); 233 crtc_state->cmrr.cmrr_m = do_div(adjusted_pixel_rate, crtc_state->cmrr.cmrr_n); 234 235 return vtotal; 236 } 237 238 static 239 void intel_vrr_compute_cmrr_timings(struct intel_crtc_state *crtc_state) 240 { 241 /* 242 * TODO: Compute precise target refresh rate to determine 243 * if video_mode_required should be true. Currently set to 244 * false due to uncertainty about the precise target 245 * refresh Rate. 246 */ 247 crtc_state->vrr.vmax = cmrr_get_vtotal(crtc_state, false); 248 crtc_state->vrr.vmin = crtc_state->vrr.vmax; 249 crtc_state->vrr.flipline = crtc_state->vrr.vmin; 250 251 crtc_state->cmrr.enable = true; 252 crtc_state->mode_flags |= I915_MODE_FLAG_VRR; 253 } 254 255 static 256 void intel_vrr_compute_vrr_timings(struct intel_crtc_state *crtc_state, 257 int vmin, int vmax) 258 { 259 crtc_state->vrr.vmax = vmax; 260 crtc_state->vrr.vmin = vmin; 261 crtc_state->vrr.flipline = crtc_state->vrr.vmin; 262 263 crtc_state->vrr.enable = true; 264 crtc_state->mode_flags |= I915_MODE_FLAG_VRR; 265 } 266 267 static 268 void intel_vrr_compute_fixed_rr_timings(struct intel_crtc_state *crtc_state) 269 { 270 /* For fixed rr, vmin = vmax = flipline */ 271 crtc_state->vrr.vmax = crtc_state->hw.adjusted_mode.crtc_vtotal; 272 crtc_state->vrr.vmin = crtc_state->vrr.vmax; 273 crtc_state->vrr.flipline = crtc_state->vrr.vmin; 274 } 275 276 static int intel_vrr_hw_value(const struct intel_crtc_state *crtc_state, 277 int value) 278 { 279 struct intel_display *display = to_intel_display(crtc_state); 280 281 /* 282 * On TGL vmin/vmax/flipline also need to be 283 * adjusted by the SCL to maintain correct vtotals. 284 */ 285 if (DISPLAY_VER(display) >= 13) 286 return value; 287 else 288 return value - crtc_state->set_context_latency; 289 } 290 291 static int intel_vrr_vblank_start(const struct intel_crtc_state *crtc_state, 292 int vmin_vmax) 293 { 294 return intel_vrr_hw_value(crtc_state, vmin_vmax) - crtc_state->vrr.guardband; 295 } 296 297 /* 298 * For fixed refresh rate mode Vmin, Vmax and Flipline all are set to 299 * Vtotal value. 300 */ 301 static 302 int intel_vrr_fixed_rr_hw_vtotal(const struct intel_crtc_state *crtc_state) 303 { 304 return intel_vrr_hw_value(crtc_state, crtc_state->hw.adjusted_mode.crtc_vtotal); 305 } 306 307 static 308 int intel_vrr_fixed_rr_hw_vmax(const struct intel_crtc_state *crtc_state) 309 { 310 return intel_vrr_fixed_rr_hw_vtotal(crtc_state); 311 } 312 313 static 314 int intel_vrr_fixed_rr_hw_vmin(const struct intel_crtc_state *crtc_state) 315 { 316 struct intel_display *display = to_intel_display(crtc_state); 317 318 return intel_vrr_fixed_rr_hw_vtotal(crtc_state) - 319 intel_vrr_vmin_flipline_offset(display); 320 } 321 322 static 323 int intel_vrr_fixed_rr_hw_flipline(const struct intel_crtc_state *crtc_state) 324 { 325 return intel_vrr_fixed_rr_hw_vtotal(crtc_state); 326 } 327 328 void intel_vrr_set_fixed_rr_timings(const struct intel_crtc_state *crtc_state, 329 enum transcoder transcoder) 330 { 331 struct intel_display *display = to_intel_display(crtc_state); 332 333 if (!intel_vrr_possible(crtc_state)) 334 return; 335 336 intel_de_write(display, TRANS_VRR_VMIN(display, transcoder), 337 intel_vrr_fixed_rr_hw_vmin(crtc_state) - 1); 338 intel_de_write(display, TRANS_VRR_VMAX(display, transcoder), 339 intel_vrr_fixed_rr_hw_vmax(crtc_state) - 1); 340 intel_de_write(display, TRANS_VRR_FLIPLINE(display, transcoder), 341 intel_vrr_fixed_rr_hw_flipline(crtc_state) - 1); 342 } 343 344 static 345 int intel_vrr_compute_vmin(struct intel_crtc_state *crtc_state) 346 { 347 /* 348 * To make fixed rr and vrr work seamless the guardband/pipeline full 349 * should be set such that it satisfies both the fixed and variable 350 * timings. 351 * For this set the vmin as crtc_vtotal. With this we never need to 352 * change anything to do with the guardband. 353 */ 354 return crtc_state->hw.adjusted_mode.crtc_vtotal; 355 } 356 357 static 358 int intel_vrr_compute_vmax(struct intel_connector *connector, 359 const struct drm_display_mode *adjusted_mode) 360 { 361 const struct drm_display_info *info = &connector->base.display_info; 362 int vmax; 363 364 vmax = adjusted_mode->crtc_clock * 1000 / 365 (adjusted_mode->crtc_htotal * info->monitor_range.min_vfreq); 366 vmax = max_t(int, vmax, adjusted_mode->crtc_vtotal); 367 368 return vmax; 369 } 370 371 static bool intel_vrr_dc_balance_possible(const struct intel_crtc_state *crtc_state) 372 { 373 struct intel_display *display = to_intel_display(crtc_state); 374 struct intel_crtc *crtc = to_intel_crtc(crtc_state->uapi.crtc); 375 enum pipe pipe = crtc->pipe; 376 377 /* 378 * FIXME: Currently Firmware supports DC Balancing on PIPE A 379 * and PIPE B. Account those limitation while computing DC 380 * Balance parameters. 381 */ 382 return (HAS_VRR_DC_BALANCE(display) && 383 ((pipe == PIPE_A) || (pipe == PIPE_B))); 384 } 385 386 static void 387 intel_vrr_dc_balance_compute_config(struct intel_crtc_state *crtc_state) 388 { 389 int guardband_usec, adjustment_usec; 390 struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode; 391 392 if (!intel_vrr_dc_balance_possible(crtc_state) || !crtc_state->vrr.enable) 393 return; 394 395 crtc_state->vrr.dc_balance.vmax = crtc_state->vrr.vmax; 396 crtc_state->vrr.dc_balance.vmin = crtc_state->vrr.vmin; 397 crtc_state->vrr.dc_balance.max_increase = 398 crtc_state->vrr.vmax - crtc_state->vrr.vmin; 399 crtc_state->vrr.dc_balance.max_decrease = 400 crtc_state->vrr.vmax - crtc_state->vrr.vmin; 401 crtc_state->vrr.dc_balance.guardband = 402 DIV_ROUND_UP(crtc_state->vrr.dc_balance.vmax * 403 DCB_CORRECTION_SENSITIVITY, 100); 404 guardband_usec = 405 intel_scanlines_to_usecs(adjusted_mode, 406 crtc_state->vrr.dc_balance.guardband); 407 /* 408 * The correction_aggressiveness/100 is the number of milliseconds to 409 * adjust by when the balance is at twice the guardband. 410 * guardband_slope = correction_aggressiveness / (guardband * 100) 411 */ 412 adjustment_usec = DCB_CORRECTION_AGGRESSIVENESS * 10; 413 crtc_state->vrr.dc_balance.slope = 414 DIV_ROUND_UP(adjustment_usec, guardband_usec); 415 crtc_state->vrr.dc_balance.vblank_target = 416 DIV_ROUND_UP((crtc_state->vrr.vmax - crtc_state->vrr.vmin) * 417 DCB_BLANK_TARGET, 100); 418 crtc_state->vrr.dc_balance.enable = true; 419 } 420 421 void 422 intel_vrr_compute_config(struct intel_crtc_state *crtc_state, 423 struct drm_connector_state *conn_state) 424 { 425 struct intel_display *display = to_intel_display(crtc_state); 426 struct intel_connector *connector = 427 to_intel_connector(conn_state->connector); 428 struct intel_dp *intel_dp = intel_attached_dp(connector); 429 bool is_edp = intel_dp_is_edp(intel_dp); 430 struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode; 431 int vmin, vmax; 432 433 if (!HAS_VRR(display)) 434 return; 435 436 if (adjusted_mode->flags & DRM_MODE_FLAG_INTERLACE) 437 return; 438 439 crtc_state->vrr.in_range = 440 intel_vrr_is_in_range(connector, drm_mode_vrefresh(adjusted_mode)); 441 442 /* 443 * Allow fixed refresh rate with VRR Timing Generator. 444 * For now set the vrr.in_range to 0, to allow fixed_rr but skip actual 445 * VRR and LRR. 446 * #TODO For actual VRR with joiner, we need to figure out how to 447 * correctly sequence transcoder level stuff vs. pipe level stuff 448 * in the commit. 449 */ 450 if (crtc_state->joiner_pipes) 451 crtc_state->vrr.in_range = false; 452 453 vmin = intel_vrr_compute_vmin(crtc_state); 454 455 if (crtc_state->vrr.in_range) { 456 if (HAS_LRR(display)) 457 crtc_state->update_lrr = true; 458 vmax = intel_vrr_compute_vmax(connector, adjusted_mode); 459 } else { 460 vmax = vmin; 461 } 462 463 if (crtc_state->uapi.vrr_enabled && vmin < vmax) 464 intel_vrr_compute_vrr_timings(crtc_state, vmin, vmax); 465 else if (is_cmrr_frac_required(crtc_state) && is_edp) 466 intel_vrr_compute_cmrr_timings(crtc_state); 467 else 468 intel_vrr_compute_fixed_rr_timings(crtc_state); 469 470 if (HAS_AS_SDP(display)) { 471 crtc_state->vrr.vsync_start = 472 (crtc_state->hw.adjusted_mode.crtc_vtotal - 473 crtc_state->hw.adjusted_mode.crtc_vsync_start); 474 crtc_state->vrr.vsync_end = 475 (crtc_state->hw.adjusted_mode.crtc_vtotal - 476 crtc_state->hw.adjusted_mode.crtc_vsync_end); 477 } 478 479 intel_vrr_dc_balance_compute_config(crtc_state); 480 } 481 482 static int 483 intel_vrr_max_hw_guardband(const struct intel_crtc_state *crtc_state) 484 { 485 struct intel_display *display = to_intel_display(crtc_state); 486 int max_pipeline_full = REG_FIELD_MAX(VRR_CTL_PIPELINE_FULL_MASK); 487 488 if (DISPLAY_VER(display) >= 13) 489 return REG_FIELD_MAX(XELPD_VRR_CTL_VRR_GUARDBAND_MASK); 490 else 491 return intel_vrr_pipeline_full_to_guardband(crtc_state, 492 max_pipeline_full); 493 } 494 495 static int 496 intel_vrr_max_vblank_guardband(const struct intel_crtc_state *crtc_state) 497 { 498 struct intel_display *display = to_intel_display(crtc_state); 499 const struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode; 500 501 return crtc_state->vrr.vmin - 502 adjusted_mode->crtc_vdisplay - 503 crtc_state->set_context_latency - 504 intel_vrr_extra_vblank_delay(display); 505 } 506 507 static int 508 intel_vrr_max_guardband(struct intel_crtc_state *crtc_state) 509 { 510 return min(intel_vrr_max_hw_guardband(crtc_state), 511 intel_vrr_max_vblank_guardband(crtc_state)); 512 } 513 514 static 515 int intel_vrr_compute_optimized_guardband(struct intel_crtc_state *crtc_state) 516 { 517 struct intel_display *display = to_intel_display(crtc_state); 518 struct skl_prefill_ctx prefill_ctx; 519 int prefill_latency_us; 520 int guardband = 0; 521 522 skl_prefill_init_worst(&prefill_ctx, crtc_state); 523 524 /* 525 * The SoC power controller runs SAGV mutually exclusive with package C states, 526 * so the max of package C and SAGV latencies is used to compute the min prefill guardband. 527 * PM delay = max(sagv_latency, pkgc_max_latency (highest enabled wm level 1 and up)) 528 */ 529 prefill_latency_us = max(display->sagv.block_time_us, 530 skl_watermark_max_latency(display, 1)); 531 532 guardband = skl_prefill_min_guardband(&prefill_ctx, 533 crtc_state, 534 prefill_latency_us); 535 536 if (intel_crtc_has_dp_encoder(crtc_state)) { 537 guardband = max(guardband, intel_psr_min_guardband(crtc_state)); 538 guardband = max(guardband, intel_dp_sdp_min_guardband(crtc_state, true)); 539 guardband = max(guardband, intel_alpm_lobf_min_guardband(crtc_state)); 540 } 541 542 return guardband; 543 } 544 545 static bool intel_vrr_use_optimized_guardband(const struct intel_crtc_state *crtc_state) 546 { 547 /* 548 * #TODO: Enable optimized guardband for HDMI 549 * For HDMI lot of infoframes are transmitted a line or two after vsync. 550 * Since with optimized guardband the double bufferring point is at delayed vblank, 551 * we need to ensure that vsync happens after delayed vblank for the HDMI case. 552 */ 553 if (intel_crtc_has_type(crtc_state, INTEL_OUTPUT_HDMI)) 554 return false; 555 556 return true; 557 } 558 559 void intel_vrr_compute_guardband(struct intel_crtc_state *crtc_state) 560 { 561 struct intel_display *display = to_intel_display(crtc_state); 562 struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode; 563 struct drm_display_mode *pipe_mode = &crtc_state->hw.pipe_mode; 564 int guardband; 565 566 if (!intel_vrr_possible(crtc_state)) 567 return; 568 569 if (intel_vrr_use_optimized_guardband(crtc_state)) 570 guardband = intel_vrr_compute_optimized_guardband(crtc_state); 571 else 572 guardband = crtc_state->vrr.vmin - adjusted_mode->crtc_vdisplay; 573 574 crtc_state->vrr.guardband = min(guardband, intel_vrr_max_guardband(crtc_state)); 575 576 if (intel_vrr_always_use_vrr_tg(display)) { 577 adjusted_mode->crtc_vblank_start = 578 adjusted_mode->crtc_vtotal - crtc_state->vrr.guardband; 579 /* 580 * pipe_mode has already been derived from the 581 * original adjusted_mode, keep the two in sync. 582 */ 583 pipe_mode->crtc_vblank_start = 584 adjusted_mode->crtc_vblank_start; 585 } 586 587 if (DISPLAY_VER(display) < 13) 588 crtc_state->vrr.pipeline_full = 589 intel_vrr_guardband_to_pipeline_full(crtc_state, 590 crtc_state->vrr.guardband); 591 } 592 593 static u32 trans_vrr_ctl(const struct intel_crtc_state *crtc_state) 594 { 595 struct intel_display *display = to_intel_display(crtc_state); 596 597 if (DISPLAY_VER(display) >= 14) 598 return VRR_CTL_FLIP_LINE_EN | 599 XELPD_VRR_CTL_VRR_GUARDBAND(crtc_state->vrr.guardband); 600 else if (DISPLAY_VER(display) >= 13) 601 return VRR_CTL_IGN_MAX_SHIFT | VRR_CTL_FLIP_LINE_EN | 602 XELPD_VRR_CTL_VRR_GUARDBAND(crtc_state->vrr.guardband); 603 else 604 return VRR_CTL_IGN_MAX_SHIFT | VRR_CTL_FLIP_LINE_EN | 605 VRR_CTL_PIPELINE_FULL(crtc_state->vrr.pipeline_full) | 606 VRR_CTL_PIPELINE_FULL_OVERRIDE; 607 } 608 609 void intel_vrr_set_transcoder_timings(const struct intel_crtc_state *crtc_state) 610 { 611 struct intel_display *display = to_intel_display(crtc_state); 612 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 613 614 if (!HAS_VRR(display)) 615 return; 616 617 /* 618 * Bspec says: 619 * "(note: VRR needs to be programmed after 620 * TRANS_DDI_FUNC_CTL and before TRANS_CONF)." 621 * 622 * In practice it turns out that ICL can hang if 623 * TRANS_VRR_VMAX/FLIPLINE are written before 624 * enabling TRANS_DDI_FUNC_CTL. 625 */ 626 drm_WARN_ON(display->drm, 627 !(intel_de_read(display, TRANS_DDI_FUNC_CTL(display, cpu_transcoder)) & TRANS_DDI_FUNC_ENABLE)); 628 629 /* 630 * This bit seems to have two meanings depending on the platform: 631 * TGL: generate VRR "safe window" for DSB vblank waits 632 * ADL/DG2: make TRANS_SET_CONTEXT_LATENCY effective with VRR 633 */ 634 if (IS_DISPLAY_VER(display, 12, 13)) 635 intel_de_rmw(display, CHICKEN_TRANS(display, cpu_transcoder), 636 0, PIPE_VBLANK_WITH_DELAY); 637 638 if (!intel_vrr_possible(crtc_state)) { 639 intel_de_write(display, 640 TRANS_VRR_CTL(display, cpu_transcoder), 0); 641 return; 642 } 643 644 if (crtc_state->cmrr.enable) { 645 intel_de_write(display, TRANS_CMRR_M_HI(display, cpu_transcoder), 646 upper_32_bits(crtc_state->cmrr.cmrr_m)); 647 intel_de_write(display, TRANS_CMRR_M_LO(display, cpu_transcoder), 648 lower_32_bits(crtc_state->cmrr.cmrr_m)); 649 intel_de_write(display, TRANS_CMRR_N_HI(display, cpu_transcoder), 650 upper_32_bits(crtc_state->cmrr.cmrr_n)); 651 intel_de_write(display, TRANS_CMRR_N_LO(display, cpu_transcoder), 652 lower_32_bits(crtc_state->cmrr.cmrr_n)); 653 } 654 655 intel_vrr_set_fixed_rr_timings(crtc_state, cpu_transcoder); 656 intel_cmtg_set_vrr_timings(crtc_state); 657 658 if (!intel_vrr_always_use_vrr_tg(display)) 659 intel_de_write(display, TRANS_VRR_CTL(display, cpu_transcoder), 660 trans_vrr_ctl(crtc_state)); 661 662 if (HAS_AS_SDP(display)) 663 intel_de_write(display, 664 TRANS_VRR_VSYNC(display, cpu_transcoder), 665 VRR_VSYNC_END(crtc_state->vrr.vsync_end) | 666 VRR_VSYNC_START(crtc_state->vrr.vsync_start)); 667 668 /* 669 * For BMG and LNL+ onwards the EMP_AS_SDP_TL is used for programming 670 * double buffering point and transmission line for VRR packets for 671 * HDMI2.1/DP/eDP/DP->HDMI2.1 PCON. 672 * Since currently we support VRR only for DP/eDP, so this is programmed 673 * to for Adaptive Sync SDP to Vsync start. 674 */ 675 if (DISPLAY_VERx100(display) == 1401 || DISPLAY_VER(display) >= 20) 676 intel_de_write(display, 677 EMP_AS_SDP_TL(display, cpu_transcoder), 678 EMP_AS_SDP_DB_TL(crtc_state->vrr.vsync_start)); 679 } 680 681 void 682 intel_vrr_dcb_increment_flip_count(struct intel_crtc_state *crtc_state, 683 struct intel_crtc *crtc) 684 { 685 struct intel_display *display = to_intel_display(crtc_state); 686 enum pipe pipe = crtc->pipe; 687 688 if (!crtc_state->vrr.dc_balance.enable) 689 return; 690 691 intel_de_write(display, PIPEDMC_DCB_FLIP_COUNT(pipe), 692 ++crtc->dc_balance.flip_count); 693 } 694 695 void 696 intel_vrr_dcb_reset(const struct intel_crtc_state *old_crtc_state, 697 struct intel_crtc *crtc) 698 { 699 struct intel_display *display = to_intel_display(old_crtc_state); 700 enum pipe pipe = crtc->pipe; 701 702 if (!old_crtc_state->vrr.dc_balance.enable) 703 return; 704 705 intel_de_write(display, PIPEDMC_DCB_FLIP_COUNT(pipe), 0); 706 intel_de_write(display, PIPEDMC_DCB_BALANCE_RESET(pipe), 0); 707 } 708 709 static u32 trans_vrr_push(const struct intel_crtc_state *crtc_state, 710 bool send_push) 711 { 712 struct intel_display *display = to_intel_display(crtc_state); 713 u32 trans_vrr_push = 0; 714 715 if (intel_vrr_always_use_vrr_tg(display) || 716 crtc_state->vrr.enable) 717 trans_vrr_push |= TRANS_PUSH_EN; 718 719 if (send_push) 720 trans_vrr_push |= TRANS_PUSH_SEND; 721 722 if (HAS_PSR_TRANS_PUSH_FRAME_CHANGE(display)) 723 trans_vrr_push |= LNL_TRANS_PUSH_PSR_PR_EN; 724 725 return trans_vrr_push; 726 } 727 728 void intel_vrr_send_push(struct intel_dsb *dsb, 729 const struct intel_crtc_state *crtc_state) 730 { 731 struct intel_display *display = to_intel_display(crtc_state); 732 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 733 734 if (!crtc_state->vrr.enable && !intel_psr_use_trans_push(crtc_state)) 735 return; 736 737 if (dsb) 738 intel_dsb_nonpost_start(dsb); 739 740 intel_de_write_dsb(display, dsb, 741 TRANS_PUSH(display, cpu_transcoder), 742 trans_vrr_push(crtc_state, true)); 743 if (dsb) 744 intel_dsb_nonpost_end(dsb); 745 } 746 747 void intel_vrr_check_push_sent(struct intel_dsb *dsb, 748 const struct intel_crtc_state *crtc_state) 749 { 750 struct intel_display *display = to_intel_display(crtc_state); 751 struct intel_crtc *crtc = to_intel_crtc(crtc_state->uapi.crtc); 752 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 753 754 if (!crtc_state->vrr.enable) 755 return; 756 757 /* 758 * Make sure the push send bit has cleared. This should 759 * already be the case as long as the caller makes sure 760 * this is called after the delayed vblank has occurred. 761 */ 762 if (dsb) { 763 int wait_us, count; 764 765 wait_us = 2; 766 count = 1; 767 768 /* 769 * If the bit hasn't cleared the DSB will 770 * raise the poll error interrupt. 771 */ 772 intel_dsb_poll(dsb, TRANS_PUSH(display, cpu_transcoder), 773 TRANS_PUSH_SEND, 0, wait_us, count); 774 } else { 775 if (intel_vrr_is_push_sent(crtc_state)) 776 drm_err(display->drm, "[CRTC:%d:%s] VRR push send still pending\n", 777 crtc->base.base.id, crtc->base.name); 778 } 779 } 780 781 bool intel_vrr_is_push_sent(const struct intel_crtc_state *crtc_state) 782 { 783 struct intel_display *display = to_intel_display(crtc_state); 784 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 785 786 if (!crtc_state->vrr.enable) 787 return false; 788 789 return intel_de_read(display, TRANS_PUSH(display, cpu_transcoder)) & TRANS_PUSH_SEND; 790 } 791 792 bool intel_vrr_always_use_vrr_tg(struct intel_display *display) 793 { 794 if (!HAS_VRR(display)) 795 return false; 796 797 if (DISPLAY_VER(display) >= 30) 798 return true; 799 800 return false; 801 } 802 803 static int intel_vrr_hw_vmin(const struct intel_crtc_state *crtc_state) 804 { 805 struct intel_display *display = to_intel_display(crtc_state); 806 807 return intel_vrr_hw_value(crtc_state, crtc_state->vrr.vmin) - 808 intel_vrr_vmin_flipline_offset(display); 809 } 810 811 static int intel_vrr_hw_vmax(const struct intel_crtc_state *crtc_state) 812 { 813 return intel_vrr_hw_value(crtc_state, crtc_state->vrr.vmax); 814 } 815 816 static int intel_vrr_hw_flipline(const struct intel_crtc_state *crtc_state) 817 { 818 return intel_vrr_hw_value(crtc_state, crtc_state->vrr.flipline); 819 } 820 821 static void intel_vrr_set_vrr_timings(const struct intel_crtc_state *crtc_state) 822 { 823 struct intel_display *display = to_intel_display(crtc_state); 824 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 825 826 intel_de_write(display, TRANS_VRR_VMIN(display, cpu_transcoder), 827 intel_vrr_hw_vmin(crtc_state) - 1); 828 intel_de_write(display, TRANS_VRR_VMAX(display, cpu_transcoder), 829 intel_vrr_hw_vmax(crtc_state) - 1); 830 intel_de_write(display, TRANS_VRR_FLIPLINE(display, cpu_transcoder), 831 intel_vrr_hw_flipline(crtc_state) - 1); 832 } 833 834 static void 835 intel_vrr_enable_dc_balancing(const struct intel_crtc_state *crtc_state) 836 { 837 struct intel_display *display = to_intel_display(crtc_state); 838 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 839 struct intel_crtc *crtc = to_intel_crtc(crtc_state->uapi.crtc); 840 enum pipe pipe = crtc->pipe; 841 u32 vrr_ctl = intel_de_read(display, TRANS_VRR_CTL(display, cpu_transcoder)); 842 843 if (!crtc_state->vrr.dc_balance.enable) 844 return; 845 846 intel_de_write(display, TRANS_VRR_DCB_ADJ_VMAX_CFG(cpu_transcoder), 847 VRR_DCB_ADJ_VMAX(crtc_state->vrr.vmax - 1)); 848 intel_de_write(display, TRANS_VRR_DCB_ADJ_VMAX_CFG_LIVE(cpu_transcoder), 849 VRR_DCB_ADJ_VMAX(crtc_state->vrr.vmax - 1)); 850 intel_de_write(display, TRANS_VRR_DCB_VMAX(cpu_transcoder), 851 VRR_DCB_VMAX(crtc_state->vrr.vmax - 1)); 852 intel_de_write(display, TRANS_VRR_DCB_VMAX_LIVE(cpu_transcoder), 853 VRR_DCB_VMAX(crtc_state->vrr.vmax - 1)); 854 intel_de_write(display, TRANS_VRR_DCB_FLIPLINE(cpu_transcoder), 855 VRR_DCB_FLIPLINE(crtc_state->vrr.flipline - 1)); 856 intel_de_write(display, TRANS_VRR_DCB_FLIPLINE_LIVE(cpu_transcoder), 857 VRR_DCB_FLIPLINE(crtc_state->vrr.flipline - 1)); 858 intel_de_write(display, TRANS_VRR_DCB_ADJ_FLIPLINE_CFG_LIVE(cpu_transcoder), 859 VRR_DCB_ADJ_FLIPLINE(crtc_state->vrr.flipline - 1)); 860 intel_de_write(display, TRANS_VRR_DCB_ADJ_FLIPLINE_CFG(cpu_transcoder), 861 VRR_DCB_ADJ_FLIPLINE(crtc_state->vrr.flipline - 1)); 862 intel_de_write(display, PIPEDMC_DCB_VMIN(pipe), 863 crtc_state->vrr.dc_balance.vmin - 1); 864 intel_de_write(display, PIPEDMC_DCB_VMAX(pipe), 865 crtc_state->vrr.dc_balance.vmax - 1); 866 intel_de_write(display, PIPEDMC_DCB_MAX_INCREASE(pipe), 867 crtc_state->vrr.dc_balance.max_increase); 868 intel_de_write(display, PIPEDMC_DCB_MAX_DECREASE(pipe), 869 crtc_state->vrr.dc_balance.max_decrease); 870 intel_de_write(display, PIPEDMC_DCB_GUARDBAND(pipe), 871 crtc_state->vrr.dc_balance.guardband); 872 intel_de_write(display, PIPEDMC_DCB_SLOPE(pipe), 873 crtc_state->vrr.dc_balance.slope); 874 intel_de_write(display, PIPEDMC_DCB_VBLANK(pipe), 875 crtc_state->vrr.dc_balance.vblank_target); 876 intel_dmc_configure_dc_balance_event(display, pipe, true); 877 intel_de_write(display, TRANS_ADAPTIVE_SYNC_DCB_CTL(cpu_transcoder), 878 ADAPTIVE_SYNC_COUNTER_EN); 879 intel_pipedmc_dcb_enable(NULL, crtc); 880 881 vrr_ctl |= VRR_CTL_DCB_ADJ_ENABLE; 882 intel_de_write(display, TRANS_VRR_CTL(display, cpu_transcoder), vrr_ctl); 883 } 884 885 static void 886 intel_vrr_disable_dc_balancing(const struct intel_crtc_state *old_crtc_state) 887 { 888 struct intel_display *display = to_intel_display(old_crtc_state); 889 enum transcoder cpu_transcoder = old_crtc_state->cpu_transcoder; 890 struct intel_crtc *crtc = to_intel_crtc(old_crtc_state->uapi.crtc); 891 enum pipe pipe = crtc->pipe; 892 u32 vrr_ctl = intel_de_read(display, TRANS_VRR_CTL(display, cpu_transcoder)); 893 894 if (!old_crtc_state->vrr.dc_balance.enable) 895 return; 896 897 intel_pipedmc_dcb_disable(NULL, crtc); 898 intel_dmc_configure_dc_balance_event(display, pipe, false); 899 intel_de_write(display, TRANS_ADAPTIVE_SYNC_DCB_CTL(cpu_transcoder), 0); 900 intel_de_write(display, PIPEDMC_DCB_VMIN(pipe), 0); 901 intel_de_write(display, PIPEDMC_DCB_VMAX(pipe), 0); 902 intel_de_write(display, PIPEDMC_DCB_MAX_INCREASE(pipe), 0); 903 intel_de_write(display, PIPEDMC_DCB_MAX_DECREASE(pipe), 0); 904 intel_de_write(display, PIPEDMC_DCB_GUARDBAND(pipe), 0); 905 intel_de_write(display, PIPEDMC_DCB_SLOPE(pipe), 0); 906 intel_de_write(display, PIPEDMC_DCB_VBLANK(pipe), 0); 907 intel_de_write(display, TRANS_VRR_DCB_ADJ_VMAX_CFG_LIVE(cpu_transcoder), 0); 908 intel_de_write(display, TRANS_VRR_DCB_ADJ_FLIPLINE_CFG_LIVE(cpu_transcoder), 0); 909 intel_de_write(display, TRANS_VRR_DCB_VMAX_LIVE(cpu_transcoder), 0); 910 intel_de_write(display, TRANS_VRR_DCB_FLIPLINE_LIVE(cpu_transcoder), 0); 911 intel_de_write(display, TRANS_VRR_DCB_ADJ_VMAX_CFG(cpu_transcoder), 0); 912 intel_de_write(display, TRANS_VRR_DCB_ADJ_FLIPLINE_CFG(cpu_transcoder), 0); 913 intel_de_write(display, TRANS_VRR_DCB_VMAX(cpu_transcoder), 0); 914 intel_de_write(display, TRANS_VRR_DCB_FLIPLINE(cpu_transcoder), 0); 915 916 vrr_ctl &= ~VRR_CTL_DCB_ADJ_ENABLE; 917 intel_de_write(display, TRANS_VRR_CTL(display, cpu_transcoder), vrr_ctl); 918 } 919 920 static void intel_vrr_tg_enable(const struct intel_crtc_state *crtc_state, 921 bool cmrr_enable) 922 { 923 struct intel_display *display = to_intel_display(crtc_state); 924 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 925 u32 vrr_ctl; 926 927 intel_de_write(display, TRANS_PUSH(display, cpu_transcoder), 928 trans_vrr_push(crtc_state, false)); 929 930 vrr_ctl = VRR_CTL_VRR_ENABLE | trans_vrr_ctl(crtc_state); 931 932 /* 933 * FIXME this might be broken as bspec seems to imply that 934 * even VRR_CTL_CMRR_ENABLE is armed by TRANS_CMRR_N_HI 935 * when enabling CMRR (but not when disabling CMRR?). 936 */ 937 if (cmrr_enable) 938 vrr_ctl |= VRR_CTL_CMRR_ENABLE; 939 940 intel_de_write(display, TRANS_VRR_CTL(display, cpu_transcoder), vrr_ctl); 941 942 intel_cmtg_set_vrr_ctl(crtc_state); 943 } 944 945 static void intel_vrr_tg_disable(const struct intel_crtc_state *old_crtc_state) 946 { 947 struct intel_display *display = to_intel_display(old_crtc_state); 948 enum transcoder cpu_transcoder = old_crtc_state->cpu_transcoder; 949 950 intel_de_write(display, TRANS_VRR_CTL(display, cpu_transcoder), 951 trans_vrr_ctl(old_crtc_state)); 952 953 if (intel_de_wait_for_clear_ms(display, 954 TRANS_VRR_STATUS(display, cpu_transcoder), 955 VRR_STATUS_VRR_EN_LIVE, 1000)) 956 drm_err(display->drm, "Timed out waiting for VRR live status to clear\n"); 957 958 intel_de_rmw(display, TRANS_PUSH(display, cpu_transcoder), 959 TRANS_PUSH_EN, 0); 960 } 961 962 void intel_vrr_enable(const struct intel_crtc_state *crtc_state) 963 { 964 struct intel_display *display = to_intel_display(crtc_state); 965 966 if (!crtc_state->vrr.enable) 967 return; 968 969 intel_vrr_set_vrr_timings(crtc_state); 970 intel_vrr_enable_dc_balancing(crtc_state); 971 972 if (!intel_vrr_always_use_vrr_tg(display)) 973 intel_vrr_tg_enable(crtc_state, crtc_state->cmrr.enable); 974 } 975 976 void intel_vrr_disable(const struct intel_crtc_state *old_crtc_state) 977 { 978 struct intel_display *display = to_intel_display(old_crtc_state); 979 980 if (!old_crtc_state->vrr.enable) 981 return; 982 983 if (!intel_vrr_always_use_vrr_tg(display)) 984 intel_vrr_tg_disable(old_crtc_state); 985 986 intel_vrr_disable_dc_balancing(old_crtc_state); 987 intel_vrr_set_fixed_rr_timings(old_crtc_state, old_crtc_state->cpu_transcoder); 988 } 989 990 void intel_vrr_transcoder_enable(const struct intel_crtc_state *crtc_state) 991 { 992 struct intel_display *display = to_intel_display(crtc_state); 993 994 intel_vrr_set_transcoder_timings(crtc_state); 995 996 if (!intel_vrr_possible(crtc_state)) 997 return; 998 999 if (intel_vrr_always_use_vrr_tg(display)) 1000 intel_vrr_tg_enable(crtc_state, false); 1001 } 1002 1003 void intel_vrr_transcoder_disable(const struct intel_crtc_state *old_crtc_state) 1004 { 1005 struct intel_display *display = to_intel_display(old_crtc_state); 1006 1007 if (!intel_vrr_possible(old_crtc_state)) 1008 return; 1009 1010 if (intel_vrr_always_use_vrr_tg(display)) 1011 intel_vrr_tg_disable(old_crtc_state); 1012 } 1013 1014 void intel_vrr_psr_frame_change_enable(const struct intel_crtc_state *crtc_state) 1015 { 1016 struct intel_display *display = to_intel_display(crtc_state); 1017 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 1018 1019 intel_de_write(display, TRANS_PUSH(display, cpu_transcoder), 1020 trans_vrr_push(crtc_state, false)); 1021 } 1022 1023 bool intel_vrr_is_fixed_rr(const struct intel_crtc_state *crtc_state) 1024 { 1025 return crtc_state->vrr.flipline && 1026 crtc_state->vrr.flipline == crtc_state->vrr.vmax && 1027 crtc_state->vrr.flipline == crtc_state->vrr.vmin; 1028 } 1029 1030 static 1031 void intel_vrr_get_dc_balance_config(struct intel_crtc_state *crtc_state) 1032 { 1033 u32 reg_val; 1034 struct intel_display *display = to_intel_display(crtc_state); 1035 struct intel_crtc *crtc = to_intel_crtc(crtc_state->uapi.crtc); 1036 enum pipe pipe = crtc->pipe; 1037 1038 if (!intel_vrr_dc_balance_possible(crtc_state)) 1039 return; 1040 1041 reg_val = intel_de_read(display, PIPEDMC_DCB_VMIN(pipe)); 1042 crtc_state->vrr.dc_balance.vmin = reg_val ? reg_val + 1 : 0; 1043 1044 reg_val = intel_de_read(display, PIPEDMC_DCB_VMAX(pipe)); 1045 crtc_state->vrr.dc_balance.vmax = reg_val ? reg_val + 1 : 0; 1046 1047 crtc_state->vrr.dc_balance.guardband = 1048 intel_de_read(display, PIPEDMC_DCB_GUARDBAND(pipe)); 1049 crtc_state->vrr.dc_balance.max_increase = 1050 intel_de_read(display, PIPEDMC_DCB_MAX_INCREASE(pipe)); 1051 crtc_state->vrr.dc_balance.max_decrease = 1052 intel_de_read(display, PIPEDMC_DCB_MAX_DECREASE(pipe)); 1053 crtc_state->vrr.dc_balance.slope = 1054 intel_de_read(display, PIPEDMC_DCB_SLOPE(pipe)); 1055 crtc_state->vrr.dc_balance.vblank_target = 1056 intel_de_read(display, PIPEDMC_DCB_VBLANK(pipe)); 1057 } 1058 1059 void intel_vrr_get_config(struct intel_crtc_state *crtc_state) 1060 { 1061 struct intel_display *display = to_intel_display(crtc_state); 1062 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 1063 u32 trans_vrr_ctl, trans_vrr_vsync; 1064 bool vrr_enable; 1065 1066 trans_vrr_ctl = intel_de_read(display, 1067 TRANS_VRR_CTL(display, cpu_transcoder)); 1068 1069 if (HAS_CMRR(display)) 1070 crtc_state->cmrr.enable = (trans_vrr_ctl & VRR_CTL_CMRR_ENABLE); 1071 1072 if (crtc_state->cmrr.enable) { 1073 crtc_state->cmrr.cmrr_n = 1074 intel_de_read64_2x32(display, TRANS_CMRR_N_LO(display, cpu_transcoder)); 1075 crtc_state->cmrr.cmrr_m = 1076 intel_de_read64_2x32(display, TRANS_CMRR_M_LO(display, cpu_transcoder)); 1077 } 1078 1079 if (DISPLAY_VER(display) >= 13) { 1080 crtc_state->vrr.guardband = 1081 REG_FIELD_GET(XELPD_VRR_CTL_VRR_GUARDBAND_MASK, trans_vrr_ctl); 1082 } else { 1083 if (trans_vrr_ctl & VRR_CTL_PIPELINE_FULL_OVERRIDE) { 1084 crtc_state->vrr.pipeline_full = 1085 REG_FIELD_GET(VRR_CTL_PIPELINE_FULL_MASK, trans_vrr_ctl); 1086 1087 crtc_state->vrr.guardband = 1088 intel_vrr_pipeline_full_to_guardband(crtc_state, 1089 crtc_state->vrr.pipeline_full); 1090 } 1091 } 1092 1093 if (trans_vrr_ctl & VRR_CTL_FLIP_LINE_EN) { 1094 crtc_state->vrr.flipline = intel_de_read(display, 1095 TRANS_VRR_FLIPLINE(display, cpu_transcoder)) + 1; 1096 crtc_state->vrr.vmax = intel_de_read(display, 1097 TRANS_VRR_VMAX(display, cpu_transcoder)) + 1; 1098 crtc_state->vrr.vmin = intel_de_read(display, 1099 TRANS_VRR_VMIN(display, cpu_transcoder)) + 1; 1100 1101 if (DISPLAY_VER(display) < 13) { 1102 /* undo what intel_vrr_hw_value() does when writing the values */ 1103 crtc_state->vrr.flipline += crtc_state->set_context_latency; 1104 crtc_state->vrr.vmax += crtc_state->set_context_latency; 1105 crtc_state->vrr.vmin += crtc_state->set_context_latency; 1106 1107 crtc_state->vrr.vmin += intel_vrr_vmin_flipline_offset(display); 1108 } 1109 1110 if (display->platform.novalake && 1111 IS_DISPLAY_STEP(display, STEP_A0, STEP_C0)) 1112 crtc_state->hw.adjusted_mode.crtc_vtotal = 1113 intel_vrr_vmin_vtotal(crtc_state); 1114 1115 if (HAS_AS_SDP(display)) { 1116 trans_vrr_vsync = 1117 intel_de_read(display, 1118 TRANS_VRR_VSYNC(display, cpu_transcoder)); 1119 crtc_state->vrr.vsync_start = 1120 REG_FIELD_GET(VRR_VSYNC_START_MASK, trans_vrr_vsync); 1121 crtc_state->vrr.vsync_end = 1122 REG_FIELD_GET(VRR_VSYNC_END_MASK, trans_vrr_vsync); 1123 } 1124 } 1125 1126 vrr_enable = trans_vrr_ctl & VRR_CTL_VRR_ENABLE; 1127 1128 if (intel_vrr_always_use_vrr_tg(display)) 1129 crtc_state->vrr.enable = vrr_enable && !intel_vrr_is_fixed_rr(crtc_state); 1130 else 1131 crtc_state->vrr.enable = vrr_enable; 1132 1133 intel_vrr_get_dc_balance_config(crtc_state); 1134 1135 /* 1136 * #TODO: For Both VRR and CMRR the flag I915_MODE_FLAG_VRR is set for mode_flags. 1137 * Since CMRR is currently disabled, set this flag for VRR for now. 1138 * Need to keep this in mind while re-enabling CMRR. 1139 */ 1140 if (crtc_state->vrr.enable) 1141 crtc_state->mode_flags |= I915_MODE_FLAG_VRR; 1142 1143 /* 1144 * For platforms that always use the VRR timing generator, we overwrite 1145 * crtc_vblank_start with vtotal - guardband to reflect the delayed 1146 * vblank start. This works for both default and optimized guardband values. 1147 * On other platforms, we keep the original value from 1148 * intel_get_transcoder_timings() and apply adjustments only in VRR-specific 1149 * paths as needed. 1150 */ 1151 if (intel_vrr_always_use_vrr_tg(display)) 1152 crtc_state->hw.adjusted_mode.crtc_vblank_start = 1153 crtc_state->hw.adjusted_mode.crtc_vtotal - 1154 crtc_state->vrr.guardband; 1155 } 1156 1157 int intel_vrr_safe_window_start(const struct intel_crtc_state *crtc_state) 1158 { 1159 struct intel_display *display = to_intel_display(crtc_state); 1160 1161 if (DISPLAY_VER(display) >= 30) 1162 return crtc_state->hw.adjusted_mode.crtc_vdisplay - 1163 crtc_state->set_context_latency; 1164 else 1165 return crtc_state->hw.adjusted_mode.crtc_vdisplay; 1166 } 1167 1168 static int 1169 intel_vrr_dcb_vmin_vblank_start(const struct intel_crtc_state *crtc_state) 1170 { 1171 return (intel_vrr_dcb_vmin_vblank_start_next(crtc_state) < 0) ? 1172 intel_vrr_dcb_vmin_vblank_start_final(crtc_state) : 1173 intel_vrr_dcb_vmin_vblank_start_next(crtc_state); 1174 } 1175 1176 int intel_vrr_vmin_safe_window_end(const struct intel_crtc_state *crtc_state) 1177 { 1178 int vmin_vblank_start = crtc_state->vrr.dc_balance.enable ? 1179 intel_vrr_dcb_vmin_vblank_start(crtc_state) : 1180 intel_vrr_vmin_vblank_start(crtc_state); 1181 1182 return vmin_vblank_start - crtc_state->set_context_latency; 1183 } 1184 1185 int intel_vrr_dcb_vmin_vblank_start_next(const struct intel_crtc_state *crtc_state) 1186 { 1187 struct intel_display *display = to_intel_display(crtc_state); 1188 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 1189 u32 tmp = 0; 1190 1191 tmp = intel_de_read(display, TRANS_VRR_DCB_ADJ_FLIPLINE_CFG_LIVE(cpu_transcoder)); 1192 1193 if (REG_FIELD_GET(VRR_DCB_ADJ_FLIPLINE_CNT_MASK, tmp) == 0) 1194 return -EINVAL; 1195 1196 return intel_vrr_vblank_start(crtc_state, VRR_DCB_ADJ_FLIPLINE(tmp) + 1); 1197 } 1198 1199 int intel_vrr_dcb_vmax_vblank_start_next(const struct intel_crtc_state *crtc_state) 1200 { 1201 struct intel_display *display = to_intel_display(crtc_state); 1202 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 1203 u32 tmp = 0; 1204 1205 tmp = intel_de_read(display, TRANS_VRR_DCB_ADJ_VMAX_CFG_LIVE(cpu_transcoder)); 1206 1207 if (REG_FIELD_GET(VRR_DCB_ADJ_VMAX_CNT_MASK, tmp) == 0) 1208 return -EINVAL; 1209 1210 return intel_vrr_vblank_start(crtc_state, VRR_DCB_ADJ_VMAX(tmp) + 1); 1211 } 1212 1213 int intel_vrr_dcb_vmin_vblank_start_final(const struct intel_crtc_state *crtc_state) 1214 { 1215 struct intel_display *display = to_intel_display(crtc_state); 1216 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 1217 u32 tmp = 0; 1218 1219 tmp = intel_de_read(display, TRANS_VRR_DCB_FLIPLINE_LIVE(cpu_transcoder)); 1220 1221 return intel_vrr_vblank_start(crtc_state, VRR_DCB_FLIPLINE(tmp) + 1); 1222 } 1223 1224 int intel_vrr_dcb_vmax_vblank_start_final(const struct intel_crtc_state *crtc_state) 1225 { 1226 struct intel_display *display = to_intel_display(crtc_state); 1227 enum transcoder cpu_transcoder = crtc_state->cpu_transcoder; 1228 u32 tmp = 0; 1229 1230 tmp = intel_de_read(display, TRANS_VRR_DCB_VMAX_LIVE(cpu_transcoder)); 1231 1232 return intel_vrr_vblank_start(crtc_state, VRR_DCB_VMAX(tmp) + 1); 1233 } 1234