1 /* 2 * Copyright 2016 Advanced Micro Devices, Inc. 3 * 4 * Permission is hereby granted, free of charge, to any person obtaining a 5 * copy of this software and associated documentation files (the "Software"), 6 * to deal in the Software without restriction, including without limitation 7 * the rights to use, copy, modify, merge, publish, distribute, sublicense, 8 * and/or sell copies of the Software, and to permit persons to whom the 9 * Software is furnished to do so, subject to the following conditions: 10 * 11 * The above copyright notice and this permission notice shall be included in 12 * all copies or substantial portions of the Software. 13 * 14 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 15 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 16 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL 17 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR 18 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, 19 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR 20 * OTHER DEALINGS IN THE SOFTWARE. 21 * 22 * Authors: AMD 23 * 24 */ 25 26 #include <linux/slab.h> 27 28 #include "dm_services.h" 29 #include "dc.h" 30 #include "mod_freesync.h" 31 #include "core_types.h" 32 33 #define MOD_FREESYNC_MAX_CONCURRENT_STREAMS 32 34 35 #define MIN_REFRESH_RANGE 10 36 /* Refresh rate ramp at a fixed rate of 65 Hz/second */ 37 #define STATIC_SCREEN_RAMP_DELTA_REFRESH_RATE_PER_FRAME ((1000 / 60) * 65) 38 /* Number of elements in the render times cache array */ 39 #define RENDER_TIMES_MAX_COUNT 10 40 /* Threshold to exit/exit BTR (to avoid frequent enter-exits at the lower limit) */ 41 #define BTR_MAX_MARGIN 2500 42 /* Threshold to change BTR multiplier (to avoid frequent changes) */ 43 #define BTR_DRIFT_MARGIN 2000 44 /* Threshold to exit fixed refresh rate */ 45 #define FIXED_REFRESH_EXIT_MARGIN_IN_HZ 1 46 /* Number of consecutive frames to check before entering/exiting fixed refresh */ 47 #define FIXED_REFRESH_ENTER_FRAME_COUNT 5 48 #define FIXED_REFRESH_EXIT_FRAME_COUNT 10 49 50 struct core_freesync { 51 struct mod_freesync public; 52 struct dc *dc; 53 }; 54 55 #define MOD_FREESYNC_TO_CORE(mod_freesync)\ 56 container_of(mod_freesync, struct core_freesync, public) 57 58 struct mod_freesync *mod_freesync_create(struct dc *dc) 59 { 60 struct core_freesync *core_freesync = 61 kzalloc(sizeof(struct core_freesync), GFP_KERNEL); 62 63 if (core_freesync == NULL) 64 goto fail_alloc_context; 65 66 if (dc == NULL) 67 goto fail_construct; 68 69 core_freesync->dc = dc; 70 return &core_freesync->public; 71 72 fail_construct: 73 kfree(core_freesync); 74 75 fail_alloc_context: 76 return NULL; 77 } 78 79 void mod_freesync_destroy(struct mod_freesync *mod_freesync) 80 { 81 struct core_freesync *core_freesync = NULL; 82 if (mod_freesync == NULL) 83 return; 84 core_freesync = MOD_FREESYNC_TO_CORE(mod_freesync); 85 kfree(core_freesync); 86 } 87 88 #if 0 /* Unused currently */ 89 static unsigned int calc_refresh_in_uhz_from_duration( 90 unsigned int duration_in_ns) 91 { 92 unsigned int refresh_in_uhz = 93 ((unsigned int)(div64_u64((1000000000ULL * 1000000), 94 duration_in_ns))); 95 return refresh_in_uhz; 96 } 97 #endif 98 99 static unsigned int calc_duration_in_us_from_refresh_in_uhz( 100 unsigned int refresh_in_uhz) 101 { 102 unsigned int duration_in_us = 103 ((unsigned int)(div64_u64((1000000000ULL * 1000), 104 refresh_in_uhz))); 105 return duration_in_us; 106 } 107 108 static unsigned int calc_duration_in_us_from_v_total( 109 const struct dc_stream_state *stream, 110 const struct mod_vrr_params *in_vrr, 111 unsigned int v_total) 112 { 113 unsigned int duration_in_us = 114 (unsigned int)(div64_u64(((unsigned long long)(v_total) 115 * 10000) * stream->timing.h_total, 116 stream->timing.pix_clk_100hz)); 117 118 return duration_in_us; 119 } 120 121 static unsigned int calc_v_total_from_refresh( 122 const struct dc_stream_state *stream, 123 unsigned int refresh_in_uhz) 124 { 125 unsigned int v_total; 126 unsigned int frame_duration_in_ns; 127 128 frame_duration_in_ns = 129 ((unsigned int)(div64_u64((1000000000ULL * 1000000), 130 refresh_in_uhz))); 131 132 v_total = div64_u64(div64_u64(((unsigned long long)( 133 frame_duration_in_ns) * (stream->timing.pix_clk_100hz / 10)), 134 stream->timing.h_total), 1000000); 135 136 /* v_total cannot be less than nominal */ 137 if (v_total < stream->timing.v_total) { 138 ASSERT(v_total < stream->timing.v_total); 139 v_total = stream->timing.v_total; 140 } 141 142 return v_total; 143 } 144 145 static unsigned int calc_v_total_from_duration( 146 const struct dc_stream_state *stream, 147 const struct mod_vrr_params *vrr, 148 unsigned int duration_in_us) 149 { 150 unsigned int v_total = 0; 151 152 if (duration_in_us < vrr->min_duration_in_us) 153 duration_in_us = vrr->min_duration_in_us; 154 155 if (duration_in_us > vrr->max_duration_in_us) 156 duration_in_us = vrr->max_duration_in_us; 157 158 v_total = div64_u64(div64_u64(((unsigned long long)( 159 duration_in_us) * (stream->timing.pix_clk_100hz / 10)), 160 stream->timing.h_total), 1000); 161 162 /* v_total cannot be less than nominal */ 163 if (v_total < stream->timing.v_total) { 164 ASSERT(v_total < stream->timing.v_total); 165 v_total = stream->timing.v_total; 166 } 167 168 return v_total; 169 } 170 171 static void update_v_total_for_static_ramp( 172 struct core_freesync *core_freesync, 173 const struct dc_stream_state *stream, 174 struct mod_vrr_params *in_out_vrr) 175 { 176 unsigned int v_total = 0; 177 unsigned int current_duration_in_us = 178 calc_duration_in_us_from_v_total( 179 stream, in_out_vrr, 180 in_out_vrr->adjust.v_total_max); 181 unsigned int target_duration_in_us = 182 calc_duration_in_us_from_refresh_in_uhz( 183 in_out_vrr->fixed.target_refresh_in_uhz); 184 bool ramp_direction_is_up = (current_duration_in_us > 185 target_duration_in_us) ? true : false; 186 187 /* Calculate ratio between new and current frame duration with 3 digit */ 188 unsigned int frame_duration_ratio = div64_u64(1000000, 189 (1000 + div64_u64(((unsigned long long)( 190 STATIC_SCREEN_RAMP_DELTA_REFRESH_RATE_PER_FRAME) * 191 current_duration_in_us), 192 1000000))); 193 194 /* Calculate delta between new and current frame duration in us */ 195 unsigned int frame_duration_delta = div64_u64(((unsigned long long)( 196 current_duration_in_us) * 197 (1000 - frame_duration_ratio)), 1000); 198 199 /* Adjust frame duration delta based on ratio between current and 200 * standard frame duration (frame duration at 60 Hz refresh rate). 201 */ 202 unsigned int ramp_rate_interpolated = div64_u64(((unsigned long long)( 203 frame_duration_delta) * current_duration_in_us), 16666); 204 205 /* Going to a higher refresh rate (lower frame duration) */ 206 if (ramp_direction_is_up) { 207 /* Reduce frame duration */ 208 current_duration_in_us -= ramp_rate_interpolated; 209 210 /* Adjust for frame duration below min */ 211 if (current_duration_in_us <= target_duration_in_us) { 212 in_out_vrr->fixed.ramping_active = false; 213 in_out_vrr->fixed.ramping_done = true; 214 current_duration_in_us = 215 calc_duration_in_us_from_refresh_in_uhz( 216 in_out_vrr->fixed.target_refresh_in_uhz); 217 } 218 /* Going to a lower refresh rate (larger frame duration) */ 219 } else { 220 /* Increase frame duration */ 221 current_duration_in_us += ramp_rate_interpolated; 222 223 /* Adjust for frame duration above max */ 224 if (current_duration_in_us >= target_duration_in_us) { 225 in_out_vrr->fixed.ramping_active = false; 226 in_out_vrr->fixed.ramping_done = true; 227 current_duration_in_us = 228 calc_duration_in_us_from_refresh_in_uhz( 229 in_out_vrr->fixed.target_refresh_in_uhz); 230 } 231 } 232 233 v_total = div64_u64(div64_u64(((unsigned long long)( 234 current_duration_in_us) * (stream->timing.pix_clk_100hz / 10)), 235 stream->timing.h_total), 1000); 236 237 /* v_total cannot be less than nominal */ 238 if (v_total < stream->timing.v_total) 239 v_total = stream->timing.v_total; 240 241 in_out_vrr->adjust.v_total_min = v_total; 242 in_out_vrr->adjust.v_total_max = v_total; 243 } 244 245 static void apply_below_the_range(struct core_freesync *core_freesync, 246 const struct dc_stream_state *stream, 247 unsigned int last_render_time_in_us, 248 struct mod_vrr_params *in_out_vrr) 249 { 250 unsigned int inserted_frame_duration_in_us = 0; 251 unsigned int mid_point_frames_ceil = 0; 252 unsigned int mid_point_frames_floor = 0; 253 unsigned int frame_time_in_us = 0; 254 unsigned int delta_from_mid_point_in_us_1 = 0xFFFFFFFF; 255 unsigned int delta_from_mid_point_in_us_2 = 0xFFFFFFFF; 256 unsigned int frames_to_insert = 0; 257 unsigned int delta_from_mid_point_delta_in_us; 258 unsigned int max_render_time_in_us = 259 in_out_vrr->max_duration_in_us - in_out_vrr->btr.margin_in_us; 260 261 /* Program BTR */ 262 if ((last_render_time_in_us + in_out_vrr->btr.margin_in_us / 2) < max_render_time_in_us) { 263 /* Exit Below the Range */ 264 if (in_out_vrr->btr.btr_active) { 265 in_out_vrr->btr.frame_counter = 0; 266 in_out_vrr->btr.btr_active = false; 267 } 268 } else if (last_render_time_in_us > (max_render_time_in_us + in_out_vrr->btr.margin_in_us / 2)) { 269 /* Enter Below the Range */ 270 if (!in_out_vrr->btr.btr_active) { 271 in_out_vrr->btr.btr_active = true; 272 } 273 } 274 275 /* BTR set to "not active" so disengage */ 276 if (!in_out_vrr->btr.btr_active) { 277 in_out_vrr->btr.inserted_duration_in_us = 0; 278 in_out_vrr->btr.frames_to_insert = 0; 279 in_out_vrr->btr.frame_counter = 0; 280 281 /* Restore FreeSync */ 282 in_out_vrr->adjust.v_total_min = 283 calc_v_total_from_refresh(stream, 284 in_out_vrr->max_refresh_in_uhz); 285 in_out_vrr->adjust.v_total_max = 286 calc_v_total_from_refresh(stream, 287 in_out_vrr->min_refresh_in_uhz); 288 /* BTR set to "active" so engage */ 289 } else { 290 291 /* Calculate number of midPoint frames that could fit within 292 * the render time interval - take ceil of this value 293 */ 294 mid_point_frames_ceil = (last_render_time_in_us + 295 in_out_vrr->btr.mid_point_in_us - 1) / 296 in_out_vrr->btr.mid_point_in_us; 297 298 if (mid_point_frames_ceil > 0) { 299 frame_time_in_us = last_render_time_in_us / 300 mid_point_frames_ceil; 301 delta_from_mid_point_in_us_1 = 302 (in_out_vrr->btr.mid_point_in_us > 303 frame_time_in_us) ? 304 (in_out_vrr->btr.mid_point_in_us - frame_time_in_us) : 305 (frame_time_in_us - in_out_vrr->btr.mid_point_in_us); 306 } 307 308 /* Calculate number of midPoint frames that could fit within 309 * the render time interval - take floor of this value 310 */ 311 mid_point_frames_floor = last_render_time_in_us / 312 in_out_vrr->btr.mid_point_in_us; 313 314 if (mid_point_frames_floor > 0) { 315 316 frame_time_in_us = last_render_time_in_us / 317 mid_point_frames_floor; 318 delta_from_mid_point_in_us_2 = 319 (in_out_vrr->btr.mid_point_in_us > 320 frame_time_in_us) ? 321 (in_out_vrr->btr.mid_point_in_us - frame_time_in_us) : 322 (frame_time_in_us - in_out_vrr->btr.mid_point_in_us); 323 } 324 325 /* Choose number of frames to insert based on how close it 326 * can get to the mid point of the variable range. 327 * - Delta for CEIL: delta_from_mid_point_in_us_1 328 * - Delta for FLOOR: delta_from_mid_point_in_us_2 329 */ 330 if ((last_render_time_in_us / mid_point_frames_ceil) < in_out_vrr->min_duration_in_us) { 331 /* Check for out of range. 332 * If using CEIL produces a value that is out of range, 333 * then we are forced to use FLOOR. 334 */ 335 frames_to_insert = mid_point_frames_floor; 336 } else if (mid_point_frames_floor < 2) { 337 /* Check if FLOOR would result in non-LFC. In this case 338 * choose to use CEIL 339 */ 340 frames_to_insert = mid_point_frames_ceil; 341 } else if (delta_from_mid_point_in_us_1 < delta_from_mid_point_in_us_2) { 342 /* If choosing CEIL results in a frame duration that is 343 * closer to the mid point of the range. 344 * Choose CEIL 345 */ 346 frames_to_insert = mid_point_frames_ceil; 347 } else { 348 /* If choosing FLOOR results in a frame duration that is 349 * closer to the mid point of the range. 350 * Choose FLOOR 351 */ 352 frames_to_insert = mid_point_frames_floor; 353 } 354 355 /* Prefer current frame multiplier when BTR is enabled unless it drifts 356 * too far from the midpoint 357 */ 358 if (delta_from_mid_point_in_us_1 < delta_from_mid_point_in_us_2) { 359 delta_from_mid_point_delta_in_us = delta_from_mid_point_in_us_2 - 360 delta_from_mid_point_in_us_1; 361 } else { 362 delta_from_mid_point_delta_in_us = delta_from_mid_point_in_us_1 - 363 delta_from_mid_point_in_us_2; 364 } 365 if (in_out_vrr->btr.frames_to_insert != 0 && 366 delta_from_mid_point_delta_in_us < BTR_DRIFT_MARGIN) { 367 if (((last_render_time_in_us / in_out_vrr->btr.frames_to_insert) < 368 max_render_time_in_us) && 369 ((last_render_time_in_us / in_out_vrr->btr.frames_to_insert) > 370 in_out_vrr->min_duration_in_us)) 371 frames_to_insert = in_out_vrr->btr.frames_to_insert; 372 } 373 374 /* Either we've calculated the number of frames to insert, 375 * or we need to insert min duration frames 376 */ 377 if (last_render_time_in_us / frames_to_insert < 378 in_out_vrr->min_duration_in_us){ 379 frames_to_insert -= (frames_to_insert > 1) ? 380 1 : 0; 381 } 382 383 if (frames_to_insert > 0) 384 inserted_frame_duration_in_us = last_render_time_in_us / 385 frames_to_insert; 386 387 if (inserted_frame_duration_in_us < in_out_vrr->min_duration_in_us) 388 inserted_frame_duration_in_us = in_out_vrr->min_duration_in_us; 389 390 /* Cache the calculated variables */ 391 in_out_vrr->btr.inserted_duration_in_us = 392 inserted_frame_duration_in_us; 393 in_out_vrr->btr.frames_to_insert = frames_to_insert; 394 in_out_vrr->btr.frame_counter = frames_to_insert; 395 } 396 } 397 398 static void apply_fixed_refresh(struct core_freesync *core_freesync, 399 const struct dc_stream_state *stream, 400 unsigned int last_render_time_in_us, 401 struct mod_vrr_params *in_out_vrr) 402 { 403 bool update = false; 404 unsigned int max_render_time_in_us = in_out_vrr->max_duration_in_us; 405 406 /* Compute the exit refresh rate and exit frame duration */ 407 unsigned int exit_refresh_rate_in_milli_hz = ((1000000000/max_render_time_in_us) 408 + (1000*FIXED_REFRESH_EXIT_MARGIN_IN_HZ)); 409 unsigned int exit_frame_duration_in_us = 1000000000/exit_refresh_rate_in_milli_hz; 410 411 if (last_render_time_in_us < exit_frame_duration_in_us) { 412 /* Exit Fixed Refresh mode */ 413 if (in_out_vrr->fixed.fixed_active) { 414 in_out_vrr->fixed.frame_counter++; 415 416 if (in_out_vrr->fixed.frame_counter > 417 FIXED_REFRESH_EXIT_FRAME_COUNT) { 418 in_out_vrr->fixed.frame_counter = 0; 419 in_out_vrr->fixed.fixed_active = false; 420 in_out_vrr->fixed.target_refresh_in_uhz = 0; 421 update = true; 422 } 423 } else 424 in_out_vrr->fixed.frame_counter = 0; 425 } else if (last_render_time_in_us > max_render_time_in_us) { 426 /* Enter Fixed Refresh mode */ 427 if (!in_out_vrr->fixed.fixed_active) { 428 in_out_vrr->fixed.frame_counter++; 429 430 if (in_out_vrr->fixed.frame_counter > 431 FIXED_REFRESH_ENTER_FRAME_COUNT) { 432 in_out_vrr->fixed.frame_counter = 0; 433 in_out_vrr->fixed.fixed_active = true; 434 in_out_vrr->fixed.target_refresh_in_uhz = 435 in_out_vrr->max_refresh_in_uhz; 436 update = true; 437 } 438 } else 439 in_out_vrr->fixed.frame_counter = 0; 440 } 441 442 if (update) { 443 if (in_out_vrr->fixed.fixed_active) { 444 in_out_vrr->adjust.v_total_min = 445 calc_v_total_from_refresh( 446 stream, in_out_vrr->max_refresh_in_uhz); 447 in_out_vrr->adjust.v_total_max = 448 in_out_vrr->adjust.v_total_min; 449 } else { 450 in_out_vrr->adjust.v_total_min = 451 calc_v_total_from_refresh(stream, 452 in_out_vrr->max_refresh_in_uhz); 453 in_out_vrr->adjust.v_total_max = 454 calc_v_total_from_refresh(stream, 455 in_out_vrr->min_refresh_in_uhz); 456 } 457 } 458 } 459 460 static bool vrr_settings_require_update(struct core_freesync *core_freesync, 461 struct mod_freesync_config *in_config, 462 unsigned int min_refresh_in_uhz, 463 unsigned int max_refresh_in_uhz, 464 struct mod_vrr_params *in_vrr) 465 { 466 if (in_vrr->state != in_config->state) { 467 return true; 468 } else if (in_vrr->state == VRR_STATE_ACTIVE_FIXED && 469 in_vrr->fixed.target_refresh_in_uhz != 470 in_config->fixed_refresh_in_uhz) { 471 return true; 472 } else if (in_vrr->min_refresh_in_uhz != min_refresh_in_uhz) { 473 return true; 474 } else if (in_vrr->max_refresh_in_uhz != max_refresh_in_uhz) { 475 return true; 476 } 477 478 return false; 479 } 480 481 bool mod_freesync_get_vmin_vmax(struct mod_freesync *mod_freesync, 482 const struct dc_stream_state *stream, 483 unsigned int *vmin, 484 unsigned int *vmax) 485 { 486 *vmin = stream->adjust.v_total_min; 487 *vmax = stream->adjust.v_total_max; 488 489 return true; 490 } 491 492 bool mod_freesync_get_v_position(struct mod_freesync *mod_freesync, 493 struct dc_stream_state *stream, 494 unsigned int *nom_v_pos, 495 unsigned int *v_pos) 496 { 497 struct core_freesync *core_freesync = NULL; 498 struct crtc_position position; 499 500 if (mod_freesync == NULL) 501 return false; 502 503 core_freesync = MOD_FREESYNC_TO_CORE(mod_freesync); 504 505 if (dc_stream_get_crtc_position(core_freesync->dc, &stream, 1, 506 &position.vertical_count, 507 &position.nominal_vcount)) { 508 509 *nom_v_pos = position.nominal_vcount; 510 *v_pos = position.vertical_count; 511 512 return true; 513 } 514 515 return false; 516 } 517 518 static void build_vrr_infopacket_data_v1(const struct mod_vrr_params *vrr, 519 struct dc_info_packet *infopacket) 520 { 521 /* PB1 = 0x1A (24bit AMD IEEE OUI (0x00001A) - Byte 0) */ 522 infopacket->sb[1] = 0x1A; 523 524 /* PB2 = 0x00 (24bit AMD IEEE OUI (0x00001A) - Byte 1) */ 525 infopacket->sb[2] = 0x00; 526 527 /* PB3 = 0x00 (24bit AMD IEEE OUI (0x00001A) - Byte 2) */ 528 infopacket->sb[3] = 0x00; 529 530 /* PB4 = Reserved */ 531 532 /* PB5 = Reserved */ 533 534 /* PB6 = [Bits 7:3 = Reserved] */ 535 536 /* PB6 = [Bit 0 = FreeSync Supported] */ 537 if (vrr->state != VRR_STATE_UNSUPPORTED) 538 infopacket->sb[6] |= 0x01; 539 540 /* PB6 = [Bit 1 = FreeSync Enabled] */ 541 if (vrr->state != VRR_STATE_DISABLED && 542 vrr->state != VRR_STATE_UNSUPPORTED) 543 infopacket->sb[6] |= 0x02; 544 545 /* PB6 = [Bit 2 = FreeSync Active] */ 546 if (vrr->state == VRR_STATE_ACTIVE_VARIABLE || 547 vrr->state == VRR_STATE_ACTIVE_FIXED) 548 infopacket->sb[6] |= 0x04; 549 550 // For v1 & 2 infoframes program nominal if non-fs mode, otherwise full range 551 /* PB7 = FreeSync Minimum refresh rate (Hz) */ 552 if (vrr->state == VRR_STATE_ACTIVE_VARIABLE || 553 vrr->state == VRR_STATE_ACTIVE_FIXED) { 554 infopacket->sb[7] = (unsigned char)((vrr->min_refresh_in_uhz + 500000) / 1000000); 555 } else { 556 infopacket->sb[7] = (unsigned char)((vrr->max_refresh_in_uhz + 500000) / 1000000); 557 } 558 559 /* PB8 = FreeSync Maximum refresh rate (Hz) 560 * Note: We should never go above the field rate of the mode timing set. 561 */ 562 infopacket->sb[8] = (unsigned char)((vrr->max_refresh_in_uhz + 500000) / 1000000); 563 564 /* FreeSync HDR */ 565 infopacket->sb[9] = 0; 566 infopacket->sb[10] = 0; 567 } 568 569 static void build_vrr_infopacket_data_v3(const struct mod_vrr_params *vrr, 570 struct dc_info_packet *infopacket) 571 { 572 unsigned int min_refresh; 573 unsigned int max_refresh; 574 unsigned int fixed_refresh; 575 unsigned int min_programmed; 576 unsigned int max_programmed; 577 578 /* PB1 = 0x1A (24bit AMD IEEE OUI (0x00001A) - Byte 0) */ 579 infopacket->sb[1] = 0x1A; 580 581 /* PB2 = 0x00 (24bit AMD IEEE OUI (0x00001A) - Byte 1) */ 582 infopacket->sb[2] = 0x00; 583 584 /* PB3 = 0x00 (24bit AMD IEEE OUI (0x00001A) - Byte 2) */ 585 infopacket->sb[3] = 0x00; 586 587 /* PB4 = Reserved */ 588 589 /* PB5 = Reserved */ 590 591 /* PB6 = [Bits 7:3 = Reserved] */ 592 593 /* PB6 = [Bit 0 = FreeSync Supported] */ 594 if (vrr->state != VRR_STATE_UNSUPPORTED) 595 infopacket->sb[6] |= 0x01; 596 597 /* PB6 = [Bit 1 = FreeSync Enabled] */ 598 if (vrr->state != VRR_STATE_DISABLED && 599 vrr->state != VRR_STATE_UNSUPPORTED) 600 infopacket->sb[6] |= 0x02; 601 602 /* PB6 = [Bit 2 = FreeSync Active] */ 603 if (vrr->state == VRR_STATE_ACTIVE_VARIABLE || 604 vrr->state == VRR_STATE_ACTIVE_FIXED) 605 infopacket->sb[6] |= 0x04; 606 607 min_refresh = (vrr->min_refresh_in_uhz + 500000) / 1000000; 608 max_refresh = (vrr->max_refresh_in_uhz + 500000) / 1000000; 609 fixed_refresh = (vrr->fixed_refresh_in_uhz + 500000) / 1000000; 610 611 min_programmed = (vrr->state == VRR_STATE_ACTIVE_FIXED) ? fixed_refresh : 612 (vrr->state == VRR_STATE_ACTIVE_VARIABLE) ? min_refresh : 613 (vrr->state == VRR_STATE_INACTIVE) ? min_refresh : 614 max_refresh; // Non-fs case, program nominal range 615 616 max_programmed = (vrr->state == VRR_STATE_ACTIVE_FIXED) ? fixed_refresh : 617 (vrr->state == VRR_STATE_ACTIVE_VARIABLE) ? max_refresh : 618 max_refresh;// Non-fs case, program nominal range 619 620 /* PB7 = FreeSync Minimum refresh rate (Hz) */ 621 infopacket->sb[7] = min_programmed & 0xFF; 622 623 /* PB8 = FreeSync Maximum refresh rate (Hz) */ 624 infopacket->sb[8] = max_programmed & 0xFF; 625 626 /* PB11 : MSB FreeSync Minimum refresh rate [Hz] - bits 9:8 */ 627 infopacket->sb[11] = (min_programmed >> 8) & 0x03; 628 629 /* PB12 : MSB FreeSync Maximum refresh rate [Hz] - bits 9:8 */ 630 infopacket->sb[12] = (max_programmed >> 8) & 0x03; 631 632 /* PB16 : Reserved bits 7:1, FixedRate bit 0 */ 633 infopacket->sb[16] = (vrr->state == VRR_STATE_ACTIVE_FIXED) ? 1 : 0; 634 635 //FreeSync HDR 636 infopacket->sb[9] = 0; 637 infopacket->sb[10] = 0; 638 } 639 640 static void build_vrr_infopacket_fs2_data(enum color_transfer_func app_tf, 641 struct dc_info_packet *infopacket) 642 { 643 if (app_tf != TRANSFER_FUNC_UNKNOWN) { 644 infopacket->valid = true; 645 646 infopacket->sb[6] |= 0x08; // PB6 = [Bit 3 = Native Color Active] 647 648 if (app_tf == TRANSFER_FUNC_GAMMA_22) { 649 infopacket->sb[9] |= 0x04; // PB6 = [Bit 2 = Gamma 2.2 EOTF Active] 650 } 651 } 652 } 653 654 static void build_vrr_infopacket_header_v1(enum signal_type signal, 655 struct dc_info_packet *infopacket, 656 unsigned int *payload_size) 657 { 658 if (dc_is_hdmi_signal(signal)) { 659 660 /* HEADER */ 661 662 /* HB0 = Packet Type = 0x83 (Source Product 663 * Descriptor InfoFrame) 664 */ 665 infopacket->hb0 = DC_HDMI_INFOFRAME_TYPE_SPD; 666 667 /* HB1 = Version = 0x01 */ 668 infopacket->hb1 = 0x01; 669 670 /* HB2 = [Bits 7:5 = 0] [Bits 4:0 = Length = 0x08] */ 671 infopacket->hb2 = 0x08; 672 673 *payload_size = 0x08; 674 675 } else if (dc_is_dp_signal(signal)) { 676 677 /* HEADER */ 678 679 /* HB0 = Secondary-data Packet ID = 0 - Only non-zero 680 * when used to associate audio related info packets 681 */ 682 infopacket->hb0 = 0x00; 683 684 /* HB1 = Packet Type = 0x83 (Source Product 685 * Descriptor InfoFrame) 686 */ 687 infopacket->hb1 = DC_HDMI_INFOFRAME_TYPE_SPD; 688 689 /* HB2 = [Bits 7:0 = Least significant eight bits - 690 * For INFOFRAME, the value must be 1Bh] 691 */ 692 infopacket->hb2 = 0x1B; 693 694 /* HB3 = [Bits 7:2 = INFOFRAME SDP Version Number = 0x1] 695 * [Bits 1:0 = Most significant two bits = 0x00] 696 */ 697 infopacket->hb3 = 0x04; 698 699 *payload_size = 0x1B; 700 } 701 } 702 703 static void build_vrr_infopacket_header_v2(enum signal_type signal, 704 struct dc_info_packet *infopacket, 705 unsigned int *payload_size) 706 { 707 if (dc_is_hdmi_signal(signal)) { 708 709 /* HEADER */ 710 711 /* HB0 = Packet Type = 0x83 (Source Product 712 * Descriptor InfoFrame) 713 */ 714 infopacket->hb0 = DC_HDMI_INFOFRAME_TYPE_SPD; 715 716 /* HB1 = Version = 0x02 */ 717 infopacket->hb1 = 0x02; 718 719 /* HB2 = [Bits 7:5 = 0] [Bits 4:0 = Length = 0x09] */ 720 infopacket->hb2 = 0x09; 721 722 *payload_size = 0x0A; 723 724 } else if (dc_is_dp_signal(signal)) { 725 726 /* HEADER */ 727 728 /* HB0 = Secondary-data Packet ID = 0 - Only non-zero 729 * when used to associate audio related info packets 730 */ 731 infopacket->hb0 = 0x00; 732 733 /* HB1 = Packet Type = 0x83 (Source Product 734 * Descriptor InfoFrame) 735 */ 736 infopacket->hb1 = DC_HDMI_INFOFRAME_TYPE_SPD; 737 738 /* HB2 = [Bits 7:0 = Least significant eight bits - 739 * For INFOFRAME, the value must be 1Bh] 740 */ 741 infopacket->hb2 = 0x1B; 742 743 /* HB3 = [Bits 7:2 = INFOFRAME SDP Version Number = 0x2] 744 * [Bits 1:0 = Most significant two bits = 0x00] 745 */ 746 infopacket->hb3 = 0x08; 747 748 *payload_size = 0x1B; 749 } 750 } 751 752 static void build_vrr_infopacket_header_v3(enum signal_type signal, 753 struct dc_info_packet *infopacket, 754 unsigned int *payload_size) 755 { 756 unsigned char version; 757 758 version = 3; 759 if (dc_is_hdmi_signal(signal)) { 760 761 /* HEADER */ 762 763 /* HB0 = Packet Type = 0x83 (Source Product 764 * Descriptor InfoFrame) 765 */ 766 infopacket->hb0 = DC_HDMI_INFOFRAME_TYPE_SPD; 767 768 /* HB1 = Version = 0x03 */ 769 infopacket->hb1 = version; 770 771 /* HB2 = [Bits 7:5 = 0] [Bits 4:0 = Length] */ 772 *payload_size = 0x10; 773 infopacket->hb2 = *payload_size - 1; //-1 for checksum 774 775 } else if (dc_is_dp_signal(signal)) { 776 777 /* HEADER */ 778 779 /* HB0 = Secondary-data Packet ID = 0 - Only non-zero 780 * when used to associate audio related info packets 781 */ 782 infopacket->hb0 = 0x00; 783 784 /* HB1 = Packet Type = 0x83 (Source Product 785 * Descriptor InfoFrame) 786 */ 787 infopacket->hb1 = DC_HDMI_INFOFRAME_TYPE_SPD; 788 789 /* HB2 = [Bits 7:0 = Least significant eight bits - 790 * For INFOFRAME, the value must be 1Bh] 791 */ 792 infopacket->hb2 = 0x1B; 793 794 /* HB3 = [Bits 7:2 = INFOFRAME SDP Version Number = 0x2] 795 * [Bits 1:0 = Most significant two bits = 0x00] 796 */ 797 798 infopacket->hb3 = (version & 0x3F) << 2; 799 800 *payload_size = 0x1B; 801 } 802 } 803 804 static void build_vrr_infopacket_checksum(unsigned int *payload_size, 805 struct dc_info_packet *infopacket) 806 { 807 /* Calculate checksum */ 808 unsigned int idx = 0; 809 unsigned char checksum = 0; 810 811 checksum += infopacket->hb0; 812 checksum += infopacket->hb1; 813 checksum += infopacket->hb2; 814 checksum += infopacket->hb3; 815 816 for (idx = 1; idx <= *payload_size; idx++) 817 checksum += infopacket->sb[idx]; 818 819 /* PB0 = Checksum (one byte complement) */ 820 infopacket->sb[0] = (unsigned char)(0x100 - checksum); 821 822 infopacket->valid = true; 823 } 824 825 static void build_vrr_infopacket_v1(enum signal_type signal, 826 const struct mod_vrr_params *vrr, 827 struct dc_info_packet *infopacket) 828 { 829 /* SPD info packet for FreeSync */ 830 unsigned int payload_size = 0; 831 832 build_vrr_infopacket_header_v1(signal, infopacket, &payload_size); 833 build_vrr_infopacket_data_v1(vrr, infopacket); 834 build_vrr_infopacket_checksum(&payload_size, infopacket); 835 836 infopacket->valid = true; 837 } 838 839 static void build_vrr_infopacket_v2(enum signal_type signal, 840 const struct mod_vrr_params *vrr, 841 enum color_transfer_func app_tf, 842 struct dc_info_packet *infopacket) 843 { 844 unsigned int payload_size = 0; 845 846 build_vrr_infopacket_header_v2(signal, infopacket, &payload_size); 847 build_vrr_infopacket_data_v1(vrr, infopacket); 848 849 build_vrr_infopacket_fs2_data(app_tf, infopacket); 850 851 build_vrr_infopacket_checksum(&payload_size, infopacket); 852 853 infopacket->valid = true; 854 } 855 #ifndef TRIM_FSFT 856 static void build_vrr_infopacket_fast_transport_data( 857 bool ftActive, 858 unsigned int ftOutputRate, 859 struct dc_info_packet *infopacket) 860 { 861 /* PB9 : bit7 - fast transport Active*/ 862 unsigned char activeBit = (ftActive) ? 1 << 7 : 0; 863 864 infopacket->sb[1] &= ~activeBit; //clear bit 865 infopacket->sb[1] |= activeBit; //set bit 866 867 /* PB13 : Target Output Pixel Rate [kHz] - bits 7:0 */ 868 infopacket->sb[13] = ftOutputRate & 0xFF; 869 870 /* PB14 : Target Output Pixel Rate [kHz] - bits 15:8 */ 871 infopacket->sb[14] = (ftOutputRate >> 8) & 0xFF; 872 873 /* PB15 : Target Output Pixel Rate [kHz] - bits 23:16 */ 874 infopacket->sb[15] = (ftOutputRate >> 16) & 0xFF; 875 876 } 877 #endif 878 879 static void build_vrr_infopacket_v3(enum signal_type signal, 880 const struct mod_vrr_params *vrr, 881 #ifndef TRIM_FSFT 882 bool ftActive, unsigned int ftOutputRate, 883 #endif 884 enum color_transfer_func app_tf, 885 struct dc_info_packet *infopacket) 886 { 887 unsigned int payload_size = 0; 888 889 build_vrr_infopacket_header_v3(signal, infopacket, &payload_size); 890 build_vrr_infopacket_data_v3(vrr, infopacket); 891 892 build_vrr_infopacket_fs2_data(app_tf, infopacket); 893 894 #ifndef TRIM_FSFT 895 build_vrr_infopacket_fast_transport_data( 896 ftActive, 897 ftOutputRate, 898 infopacket); 899 #endif 900 901 build_vrr_infopacket_checksum(&payload_size, infopacket); 902 903 infopacket->valid = true; 904 } 905 906 void mod_freesync_build_vrr_infopacket(struct mod_freesync *mod_freesync, 907 const struct dc_stream_state *stream, 908 const struct mod_vrr_params *vrr, 909 enum vrr_packet_type packet_type, 910 enum color_transfer_func app_tf, 911 struct dc_info_packet *infopacket) 912 { 913 /* SPD info packet for FreeSync 914 * VTEM info packet for HdmiVRR 915 * Check if Freesync is supported. Return if false. If true, 916 * set the corresponding bit in the info packet 917 */ 918 if (!vrr->send_info_frame) 919 return; 920 921 switch (packet_type) { 922 case PACKET_TYPE_FS_V3: 923 #ifndef TRIM_FSFT 924 // always populate with pixel rate. 925 build_vrr_infopacket_v3( 926 stream->signal, vrr, 927 stream->timing.flags.FAST_TRANSPORT, 928 (stream->timing.flags.FAST_TRANSPORT) ? 929 stream->timing.fast_transport_output_rate_100hz : 930 stream->timing.pix_clk_100hz, 931 app_tf, infopacket); 932 #else 933 build_vrr_infopacket_v3(stream->signal, vrr, app_tf, infopacket); 934 #endif 935 break; 936 case PACKET_TYPE_FS_V2: 937 build_vrr_infopacket_v2(stream->signal, vrr, app_tf, infopacket); 938 break; 939 case PACKET_TYPE_VRR: 940 case PACKET_TYPE_FS_V1: 941 default: 942 build_vrr_infopacket_v1(stream->signal, vrr, infopacket); 943 } 944 } 945 946 void mod_freesync_build_vrr_params(struct mod_freesync *mod_freesync, 947 const struct dc_stream_state *stream, 948 struct mod_freesync_config *in_config, 949 struct mod_vrr_params *in_out_vrr) 950 { 951 struct core_freesync *core_freesync = NULL; 952 unsigned long long nominal_field_rate_in_uhz = 0; 953 unsigned long long rounded_nominal_in_uhz = 0; 954 unsigned int refresh_range = 0; 955 unsigned long long min_refresh_in_uhz = 0; 956 unsigned long long max_refresh_in_uhz = 0; 957 958 if (mod_freesync == NULL) 959 return; 960 961 core_freesync = MOD_FREESYNC_TO_CORE(mod_freesync); 962 963 /* Calculate nominal field rate for stream */ 964 nominal_field_rate_in_uhz = 965 mod_freesync_calc_nominal_field_rate(stream); 966 967 min_refresh_in_uhz = in_config->min_refresh_in_uhz; 968 max_refresh_in_uhz = in_config->max_refresh_in_uhz; 969 970 /* Full range may be larger than current video timing, so cap at nominal */ 971 if (max_refresh_in_uhz > nominal_field_rate_in_uhz) 972 max_refresh_in_uhz = nominal_field_rate_in_uhz; 973 974 /* Full range may be larger than current video timing, so cap at nominal */ 975 if (min_refresh_in_uhz > max_refresh_in_uhz) 976 min_refresh_in_uhz = max_refresh_in_uhz; 977 978 /* If a monitor reports exactly max refresh of 2x of min, enforce it on nominal */ 979 rounded_nominal_in_uhz = 980 div_u64(nominal_field_rate_in_uhz + 50000, 100000) * 100000; 981 if (in_config->max_refresh_in_uhz == (2 * in_config->min_refresh_in_uhz) && 982 in_config->max_refresh_in_uhz == rounded_nominal_in_uhz) 983 min_refresh_in_uhz = div_u64(nominal_field_rate_in_uhz, 2); 984 985 if (!vrr_settings_require_update(core_freesync, 986 in_config, (unsigned int)min_refresh_in_uhz, (unsigned int)max_refresh_in_uhz, 987 in_out_vrr)) 988 return; 989 990 in_out_vrr->state = in_config->state; 991 in_out_vrr->send_info_frame = in_config->vsif_supported; 992 993 if (in_config->state == VRR_STATE_UNSUPPORTED) { 994 in_out_vrr->state = VRR_STATE_UNSUPPORTED; 995 in_out_vrr->supported = false; 996 in_out_vrr->adjust.v_total_min = stream->timing.v_total; 997 in_out_vrr->adjust.v_total_max = stream->timing.v_total; 998 999 return; 1000 1001 } else { 1002 in_out_vrr->min_refresh_in_uhz = (unsigned int)min_refresh_in_uhz; 1003 in_out_vrr->max_duration_in_us = 1004 calc_duration_in_us_from_refresh_in_uhz( 1005 (unsigned int)min_refresh_in_uhz); 1006 1007 in_out_vrr->max_refresh_in_uhz = (unsigned int)max_refresh_in_uhz; 1008 in_out_vrr->min_duration_in_us = 1009 calc_duration_in_us_from_refresh_in_uhz( 1010 (unsigned int)max_refresh_in_uhz); 1011 1012 if (in_config->state == VRR_STATE_ACTIVE_FIXED) 1013 in_out_vrr->fixed_refresh_in_uhz = in_config->fixed_refresh_in_uhz; 1014 else 1015 in_out_vrr->fixed_refresh_in_uhz = 0; 1016 1017 refresh_range = div_u64(in_out_vrr->max_refresh_in_uhz + 500000, 1000000) - 1018 + div_u64(in_out_vrr->min_refresh_in_uhz + 500000, 1000000); 1019 1020 in_out_vrr->supported = true; 1021 } 1022 1023 in_out_vrr->fixed.ramping_active = in_config->ramping; 1024 1025 in_out_vrr->btr.btr_enabled = in_config->btr; 1026 1027 if (in_out_vrr->max_refresh_in_uhz < (2 * in_out_vrr->min_refresh_in_uhz)) 1028 in_out_vrr->btr.btr_enabled = false; 1029 else { 1030 in_out_vrr->btr.margin_in_us = in_out_vrr->max_duration_in_us - 1031 2 * in_out_vrr->min_duration_in_us; 1032 if (in_out_vrr->btr.margin_in_us > BTR_MAX_MARGIN) 1033 in_out_vrr->btr.margin_in_us = BTR_MAX_MARGIN; 1034 } 1035 1036 in_out_vrr->btr.btr_active = false; 1037 in_out_vrr->btr.inserted_duration_in_us = 0; 1038 in_out_vrr->btr.frames_to_insert = 0; 1039 in_out_vrr->btr.frame_counter = 0; 1040 in_out_vrr->fixed.fixed_active = false; 1041 in_out_vrr->fixed.target_refresh_in_uhz = 0; 1042 1043 in_out_vrr->btr.mid_point_in_us = 1044 (in_out_vrr->min_duration_in_us + 1045 in_out_vrr->max_duration_in_us) / 2; 1046 1047 if (in_out_vrr->state == VRR_STATE_UNSUPPORTED) { 1048 in_out_vrr->adjust.v_total_min = stream->timing.v_total; 1049 in_out_vrr->adjust.v_total_max = stream->timing.v_total; 1050 } else if (in_out_vrr->state == VRR_STATE_DISABLED) { 1051 in_out_vrr->adjust.v_total_min = stream->timing.v_total; 1052 in_out_vrr->adjust.v_total_max = stream->timing.v_total; 1053 } else if (in_out_vrr->state == VRR_STATE_INACTIVE) { 1054 in_out_vrr->adjust.v_total_min = stream->timing.v_total; 1055 in_out_vrr->adjust.v_total_max = stream->timing.v_total; 1056 } else if (in_out_vrr->state == VRR_STATE_ACTIVE_VARIABLE && 1057 refresh_range >= MIN_REFRESH_RANGE) { 1058 1059 in_out_vrr->adjust.v_total_min = 1060 calc_v_total_from_refresh(stream, 1061 in_out_vrr->max_refresh_in_uhz); 1062 in_out_vrr->adjust.v_total_max = 1063 calc_v_total_from_refresh(stream, 1064 in_out_vrr->min_refresh_in_uhz); 1065 } else if (in_out_vrr->state == VRR_STATE_ACTIVE_FIXED) { 1066 in_out_vrr->fixed.target_refresh_in_uhz = 1067 in_out_vrr->fixed_refresh_in_uhz; 1068 if (in_out_vrr->fixed.ramping_active && 1069 in_out_vrr->fixed.fixed_active) { 1070 /* Do not update vtotals if ramping is already active 1071 * in order to continue ramp from current refresh. 1072 */ 1073 in_out_vrr->fixed.fixed_active = true; 1074 } else { 1075 in_out_vrr->fixed.fixed_active = true; 1076 in_out_vrr->adjust.v_total_min = 1077 calc_v_total_from_refresh(stream, 1078 in_out_vrr->fixed.target_refresh_in_uhz); 1079 in_out_vrr->adjust.v_total_max = 1080 in_out_vrr->adjust.v_total_min; 1081 } 1082 } else { 1083 in_out_vrr->state = VRR_STATE_INACTIVE; 1084 in_out_vrr->adjust.v_total_min = stream->timing.v_total; 1085 in_out_vrr->adjust.v_total_max = stream->timing.v_total; 1086 } 1087 } 1088 1089 void mod_freesync_handle_preflip(struct mod_freesync *mod_freesync, 1090 const struct dc_plane_state *plane, 1091 const struct dc_stream_state *stream, 1092 unsigned int curr_time_stamp_in_us, 1093 struct mod_vrr_params *in_out_vrr) 1094 { 1095 struct core_freesync *core_freesync = NULL; 1096 unsigned int last_render_time_in_us = 0; 1097 unsigned int average_render_time_in_us = 0; 1098 1099 if (mod_freesync == NULL) 1100 return; 1101 1102 core_freesync = MOD_FREESYNC_TO_CORE(mod_freesync); 1103 1104 if (in_out_vrr->supported && 1105 in_out_vrr->state == VRR_STATE_ACTIVE_VARIABLE) { 1106 unsigned int i = 0; 1107 unsigned int oldest_index = plane->time.index + 1; 1108 1109 if (oldest_index >= DC_PLANE_UPDATE_TIMES_MAX) 1110 oldest_index = 0; 1111 1112 last_render_time_in_us = curr_time_stamp_in_us - 1113 plane->time.prev_update_time_in_us; 1114 1115 /* Sum off all entries except oldest one */ 1116 for (i = 0; i < DC_PLANE_UPDATE_TIMES_MAX; i++) { 1117 average_render_time_in_us += 1118 plane->time.time_elapsed_in_us[i]; 1119 } 1120 average_render_time_in_us -= 1121 plane->time.time_elapsed_in_us[oldest_index]; 1122 1123 /* Add render time for current flip */ 1124 average_render_time_in_us += last_render_time_in_us; 1125 average_render_time_in_us /= DC_PLANE_UPDATE_TIMES_MAX; 1126 1127 if (in_out_vrr->btr.btr_enabled) { 1128 apply_below_the_range(core_freesync, 1129 stream, 1130 last_render_time_in_us, 1131 in_out_vrr); 1132 } else { 1133 apply_fixed_refresh(core_freesync, 1134 stream, 1135 last_render_time_in_us, 1136 in_out_vrr); 1137 } 1138 1139 } 1140 } 1141 1142 void mod_freesync_handle_v_update(struct mod_freesync *mod_freesync, 1143 const struct dc_stream_state *stream, 1144 struct mod_vrr_params *in_out_vrr) 1145 { 1146 struct core_freesync *core_freesync = NULL; 1147 1148 if ((mod_freesync == NULL) || (stream == NULL) || (in_out_vrr == NULL)) 1149 return; 1150 1151 core_freesync = MOD_FREESYNC_TO_CORE(mod_freesync); 1152 1153 if (in_out_vrr->supported == false) 1154 return; 1155 1156 /* Below the Range Logic */ 1157 1158 /* Only execute if in fullscreen mode */ 1159 if (in_out_vrr->state == VRR_STATE_ACTIVE_VARIABLE && 1160 in_out_vrr->btr.btr_active) { 1161 /* TODO: pass in flag for Pre-DCE12 ASIC 1162 * in order for frame variable duration to take affect, 1163 * it needs to be done one VSYNC early, which is at 1164 * frameCounter == 1. 1165 * For DCE12 and newer updates to V_TOTAL_MIN/MAX 1166 * will take affect on current frame 1167 */ 1168 if (in_out_vrr->btr.frames_to_insert == 1169 in_out_vrr->btr.frame_counter) { 1170 in_out_vrr->adjust.v_total_min = 1171 calc_v_total_from_duration(stream, 1172 in_out_vrr, 1173 in_out_vrr->btr.inserted_duration_in_us); 1174 in_out_vrr->adjust.v_total_max = 1175 in_out_vrr->adjust.v_total_min; 1176 } 1177 1178 if (in_out_vrr->btr.frame_counter > 0) 1179 in_out_vrr->btr.frame_counter--; 1180 1181 /* Restore FreeSync */ 1182 if (in_out_vrr->btr.frame_counter == 0) { 1183 in_out_vrr->adjust.v_total_min = 1184 calc_v_total_from_refresh(stream, 1185 in_out_vrr->max_refresh_in_uhz); 1186 in_out_vrr->adjust.v_total_max = 1187 calc_v_total_from_refresh(stream, 1188 in_out_vrr->min_refresh_in_uhz); 1189 } 1190 } 1191 1192 /* If in fullscreen freesync mode or in video, do not program 1193 * static screen ramp values 1194 */ 1195 if (in_out_vrr->state == VRR_STATE_ACTIVE_VARIABLE) 1196 in_out_vrr->fixed.ramping_active = false; 1197 1198 /* Gradual Static Screen Ramping Logic 1199 * Execute if ramp is active and user enabled freesync static screen 1200 */ 1201 if (in_out_vrr->state == VRR_STATE_ACTIVE_FIXED && 1202 in_out_vrr->fixed.ramping_active) { 1203 update_v_total_for_static_ramp( 1204 core_freesync, stream, in_out_vrr); 1205 } 1206 } 1207 1208 void mod_freesync_get_settings(struct mod_freesync *mod_freesync, 1209 const struct mod_vrr_params *vrr, 1210 unsigned int *v_total_min, unsigned int *v_total_max, 1211 unsigned int *event_triggers, 1212 unsigned int *window_min, unsigned int *window_max, 1213 unsigned int *lfc_mid_point_in_us, 1214 unsigned int *inserted_frames, 1215 unsigned int *inserted_duration_in_us) 1216 { 1217 if (mod_freesync == NULL) 1218 return; 1219 1220 if (vrr->supported) { 1221 *v_total_min = vrr->adjust.v_total_min; 1222 *v_total_max = vrr->adjust.v_total_max; 1223 *event_triggers = 0; 1224 *lfc_mid_point_in_us = vrr->btr.mid_point_in_us; 1225 *inserted_frames = vrr->btr.frames_to_insert; 1226 *inserted_duration_in_us = vrr->btr.inserted_duration_in_us; 1227 } 1228 } 1229 1230 unsigned long long mod_freesync_calc_nominal_field_rate( 1231 const struct dc_stream_state *stream) 1232 { 1233 unsigned long long nominal_field_rate_in_uhz = 0; 1234 unsigned int total = stream->timing.h_total * stream->timing.v_total; 1235 1236 /* Calculate nominal field rate for stream, rounded up to nearest integer */ 1237 nominal_field_rate_in_uhz = stream->timing.pix_clk_100hz; 1238 nominal_field_rate_in_uhz *= 100000000ULL; 1239 1240 nominal_field_rate_in_uhz = div_u64(nominal_field_rate_in_uhz, total); 1241 1242 return nominal_field_rate_in_uhz; 1243 } 1244 1245 bool mod_freesync_is_valid_range(uint32_t min_refresh_cap_in_uhz, 1246 uint32_t max_refresh_cap_in_uhz, 1247 uint32_t nominal_field_rate_in_uhz) 1248 { 1249 1250 /* Typically nominal refresh calculated can have some fractional part. 1251 * Allow for some rounding error of actual video timing by taking floor 1252 * of caps and request. Round the nominal refresh rate. 1253 * 1254 * Dividing will convert everything to units in Hz although input 1255 * variable name is in uHz! 1256 * 1257 * Also note, this takes care of rounding error on the nominal refresh 1258 * so by rounding error we only expect it to be off by a small amount, 1259 * such as < 0.1 Hz. i.e. 143.9xxx or 144.1xxx. 1260 * 1261 * Example 1. Caps Min = 40 Hz, Max = 144 Hz 1262 * Request Min = 40 Hz, Max = 144 Hz 1263 * Nominal = 143.5x Hz rounded to 144 Hz 1264 * This function should allow this as valid request 1265 * 1266 * Example 2. Caps Min = 40 Hz, Max = 144 Hz 1267 * Request Min = 40 Hz, Max = 144 Hz 1268 * Nominal = 144.4x Hz rounded to 144 Hz 1269 * This function should allow this as valid request 1270 * 1271 * Example 3. Caps Min = 40 Hz, Max = 144 Hz 1272 * Request Min = 40 Hz, Max = 144 Hz 1273 * Nominal = 120.xx Hz rounded to 120 Hz 1274 * This function should return NOT valid since the requested 1275 * max is greater than current timing's nominal 1276 * 1277 * Example 4. Caps Min = 40 Hz, Max = 120 Hz 1278 * Request Min = 40 Hz, Max = 120 Hz 1279 * Nominal = 144.xx Hz rounded to 144 Hz 1280 * This function should return NOT valid since the nominal 1281 * is greater than the capability's max refresh 1282 */ 1283 nominal_field_rate_in_uhz = 1284 div_u64(nominal_field_rate_in_uhz + 500000, 1000000); 1285 min_refresh_cap_in_uhz /= 1000000; 1286 max_refresh_cap_in_uhz /= 1000000; 1287 1288 /* Check nominal is within range */ 1289 if (nominal_field_rate_in_uhz > max_refresh_cap_in_uhz || 1290 nominal_field_rate_in_uhz < min_refresh_cap_in_uhz) 1291 return false; 1292 1293 /* If nominal is less than max, limit the max allowed refresh rate */ 1294 if (nominal_field_rate_in_uhz < max_refresh_cap_in_uhz) 1295 max_refresh_cap_in_uhz = nominal_field_rate_in_uhz; 1296 1297 /* Check min is within range */ 1298 if (min_refresh_cap_in_uhz > max_refresh_cap_in_uhz) 1299 return false; 1300 1301 /* For variable range, check for at least 10 Hz range */ 1302 if (nominal_field_rate_in_uhz - min_refresh_cap_in_uhz < 10) 1303 return false; 1304 1305 return true; 1306 } 1307 1308