1 // SPDX-License-Identifier: MIT 2 /* 3 * Copyright 2015-2026 Advanced Micro Devices, Inc. 4 * 5 * Permission is hereby granted, free of charge, to any person obtaining a 6 * copy of this software and associated documentation files (the "Software"), 7 * to deal in the Software without restriction, including without limitation 8 * the rights to use, copy, modify, merge, publish, distribute, sublicense, 9 * and/or sell copies of the Software, and to permit persons to whom the 10 * Software is furnished to do so, subject to the following conditions: 11 * 12 * The above copyright notice and this permission notice shall be included in 13 * all copies or substantial portions of the Software. 14 * 15 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 16 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 17 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL 18 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR 19 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, 20 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR 21 * OTHER DEALINGS IN THE SOFTWARE. 22 * 23 * Authors: AMD 24 * 25 */ 26 27 /* The caprices of the preprocessor require that this be declared right here */ 28 #define CREATE_TRACE_POINTS 29 30 #include "dm_services_types.h" 31 #include "dc.h" 32 #include "link_enc_cfg.h" 33 #include "dc/inc/core_types.h" 34 #include "dal_asic_id.h" 35 #include "dmub/dmub_srv.h" 36 #include "dc/inc/hw/dmcu.h" 37 #include "dc/inc/hw/abm.h" 38 #include "dc/dc_dmub_srv.h" 39 #include "dc/dc_edid_parser.h" 40 #include "dc/dc_stat.h" 41 #include "dc/dc_state.h" 42 #include "amdgpu_dm_trace.h" 43 #include "link/protocols/link_dpcd.h" 44 #include "link_service_types.h" 45 #include "link/protocols/link_dp_capability.h" 46 #include "link/protocols/link_ddc.h" 47 48 #include "amdgpu.h" 49 #include "amdgpu_display.h" 50 #include "amdgpu_ucode.h" 51 #include "atom.h" 52 #include "amdgpu_dm.h" 53 #include "amdgpu_dm_plane.h" 54 #include "amdgpu_dm_crtc.h" 55 #include "amdgpu_dm_hdcp.h" 56 #include <drm/display/drm_hdcp_helper.h> 57 #include "amdgpu_dm_wb.h" 58 #include "amdgpu_atombios.h" 59 60 #include "amd_shared.h" 61 #include "amdgpu_dm_irq.h" 62 #include "dm_helpers.h" 63 #include "amdgpu_dm_mst_types.h" 64 #if defined(CONFIG_DEBUG_FS) 65 #include "amdgpu_dm_debugfs.h" 66 #endif 67 #include "amdgpu_dm_psr.h" 68 #include "amdgpu_dm_replay.h" 69 70 #include "ivsrcid/ivsrcid_vislands30.h" 71 72 #include <linux/backlight.h> 73 #include <linux/module.h> 74 #include <linux/moduleparam.h> 75 #include <linux/types.h> 76 #include <linux/pm_runtime.h> 77 #include <linux/pci.h> 78 #include <linux/power_supply.h> 79 #include <linux/firmware.h> 80 #include <linux/component.h> 81 #include <linux/sort.h> 82 83 #include <drm/drm_privacy_screen_consumer.h> 84 #include <drm/display/drm_dp_mst_helper.h> 85 #include <drm/display/drm_hdmi_helper.h> 86 #include <drm/drm_atomic.h> 87 #include <drm/drm_atomic_uapi.h> 88 #include <drm/drm_atomic_helper.h> 89 #include <drm/drm_blend.h> 90 #include <drm/drm_fixed.h> 91 #include <drm/drm_fourcc.h> 92 #include <drm/drm_edid.h> 93 #include <drm/drm_eld.h> 94 #include <drm/drm_mode.h> 95 #include <drm/drm_utils.h> 96 #include <drm/drm_vblank.h> 97 #include <drm/drm_audio_component.h> 98 #include <drm/drm_colorop.h> 99 #include <drm/drm_gem_atomic_helper.h> 100 101 #include <media/cec-notifier.h> 102 #include <acpi/video.h> 103 104 #include "ivsrcid/dcn/irqsrcs_dcn_1_0.h" 105 106 #include "modules/inc/mod_freesync.h" 107 #include "modules/inc/mod_power.h" 108 #include "modules/power/power_helpers.h" 109 110 static_assert(AMDGPU_DMUB_NOTIFICATION_MAX == DMUB_NOTIFICATION_MAX, "AMDGPU_DMUB_NOTIFICATION_MAX mismatch"); 111 112 #define FIRMWARE_RENOIR_DMUB "amdgpu/renoir_dmcub.bin" 113 MODULE_FIRMWARE(FIRMWARE_RENOIR_DMUB); 114 #define FIRMWARE_SIENNA_CICHLID_DMUB "amdgpu/sienna_cichlid_dmcub.bin" 115 MODULE_FIRMWARE(FIRMWARE_SIENNA_CICHLID_DMUB); 116 #define FIRMWARE_NAVY_FLOUNDER_DMUB "amdgpu/navy_flounder_dmcub.bin" 117 MODULE_FIRMWARE(FIRMWARE_NAVY_FLOUNDER_DMUB); 118 #define FIRMWARE_GREEN_SARDINE_DMUB "amdgpu/green_sardine_dmcub.bin" 119 MODULE_FIRMWARE(FIRMWARE_GREEN_SARDINE_DMUB); 120 #define FIRMWARE_VANGOGH_DMUB "amdgpu/vangogh_dmcub.bin" 121 MODULE_FIRMWARE(FIRMWARE_VANGOGH_DMUB); 122 #define FIRMWARE_DIMGREY_CAVEFISH_DMUB "amdgpu/dimgrey_cavefish_dmcub.bin" 123 MODULE_FIRMWARE(FIRMWARE_DIMGREY_CAVEFISH_DMUB); 124 #define FIRMWARE_BEIGE_GOBY_DMUB "amdgpu/beige_goby_dmcub.bin" 125 MODULE_FIRMWARE(FIRMWARE_BEIGE_GOBY_DMUB); 126 #define FIRMWARE_YELLOW_CARP_DMUB "amdgpu/yellow_carp_dmcub.bin" 127 MODULE_FIRMWARE(FIRMWARE_YELLOW_CARP_DMUB); 128 #define FIRMWARE_DCN_314_DMUB "amdgpu/dcn_3_1_4_dmcub.bin" 129 MODULE_FIRMWARE(FIRMWARE_DCN_314_DMUB); 130 #define FIRMWARE_DCN_315_DMUB "amdgpu/dcn_3_1_5_dmcub.bin" 131 MODULE_FIRMWARE(FIRMWARE_DCN_315_DMUB); 132 #define FIRMWARE_DCN316_DMUB "amdgpu/dcn_3_1_6_dmcub.bin" 133 MODULE_FIRMWARE(FIRMWARE_DCN316_DMUB); 134 135 #define FIRMWARE_DCN_V3_2_0_DMCUB "amdgpu/dcn_3_2_0_dmcub.bin" 136 MODULE_FIRMWARE(FIRMWARE_DCN_V3_2_0_DMCUB); 137 #define FIRMWARE_DCN_V3_2_1_DMCUB "amdgpu/dcn_3_2_1_dmcub.bin" 138 MODULE_FIRMWARE(FIRMWARE_DCN_V3_2_1_DMCUB); 139 140 #define FIRMWARE_RAVEN_DMCU "amdgpu/raven_dmcu.bin" 141 MODULE_FIRMWARE(FIRMWARE_RAVEN_DMCU); 142 143 #define FIRMWARE_NAVI12_DMCU "amdgpu/navi12_dmcu.bin" 144 MODULE_FIRMWARE(FIRMWARE_NAVI12_DMCU); 145 146 #define FIRMWARE_DCN_35_DMUB "amdgpu/dcn_3_5_dmcub.bin" 147 MODULE_FIRMWARE(FIRMWARE_DCN_35_DMUB); 148 149 #define FIRMWARE_DCN_351_DMUB "amdgpu/dcn_3_5_1_dmcub.bin" 150 MODULE_FIRMWARE(FIRMWARE_DCN_351_DMUB); 151 152 #define FIRMWARE_DCN_36_DMUB "amdgpu/dcn_3_6_dmcub.bin" 153 MODULE_FIRMWARE(FIRMWARE_DCN_36_DMUB); 154 155 #define FIRMWARE_DCN_401_DMUB "amdgpu/dcn_4_0_1_dmcub.bin" 156 MODULE_FIRMWARE(FIRMWARE_DCN_401_DMUB); 157 158 #define FIRMWARE_DCN_42_DMUB "amdgpu/dcn_4_2_dmcub.bin" 159 MODULE_FIRMWARE(FIRMWARE_DCN_42_DMUB); 160 161 #define FIRMWARE_DCN_42B_DMUB "amdgpu/dcn_4_2_1_dmcub.bin" 162 MODULE_FIRMWARE(FIRMWARE_DCN_42B_DMUB); 163 164 /** 165 * DOC: overview 166 * 167 * The AMDgpu display manager, **amdgpu_dm** (or even simpler, 168 * **dm**) sits between DRM and DC. It acts as a liaison, converting DRM 169 * requests into DC requests, and DC responses into DRM responses. 170 * 171 * The root control structure is &struct amdgpu_display_manager. 172 */ 173 174 /* basic init/fini API */ 175 static int amdgpu_dm_init(struct amdgpu_device *adev); 176 static void amdgpu_dm_fini(struct amdgpu_device *adev); 177 static bool is_freesync_video_mode(const struct drm_display_mode *mode, struct amdgpu_dm_connector *aconnector); 178 static void reset_freesync_config_for_crtc(struct dm_crtc_state *new_crtc_state); 179 static struct amdgpu_i2c_adapter * 180 create_i2c(struct ddc_service *ddc_service, bool oem); 181 182 static enum drm_mode_subconnector get_subconnector_type(struct dc_link *link) 183 { 184 switch (link->dpcd_caps.dongle_type) { 185 case DISPLAY_DONGLE_NONE: 186 return DRM_MODE_SUBCONNECTOR_Native; 187 case DISPLAY_DONGLE_DP_VGA_CONVERTER: 188 return DRM_MODE_SUBCONNECTOR_VGA; 189 case DISPLAY_DONGLE_DP_DVI_CONVERTER: 190 case DISPLAY_DONGLE_DP_DVI_DONGLE: 191 return DRM_MODE_SUBCONNECTOR_DVID; 192 case DISPLAY_DONGLE_DP_HDMI_CONVERTER: 193 case DISPLAY_DONGLE_DP_HDMI_DONGLE: 194 return DRM_MODE_SUBCONNECTOR_HDMIA; 195 case DISPLAY_DONGLE_DP_HDMI_MISMATCHED_DONGLE: 196 default: 197 return DRM_MODE_SUBCONNECTOR_Unknown; 198 } 199 } 200 201 static void update_subconnector_property(struct amdgpu_dm_connector *aconnector) 202 { 203 struct dc_link *link = aconnector->dc_link; 204 struct drm_connector *connector = &aconnector->base; 205 enum drm_mode_subconnector subconnector = DRM_MODE_SUBCONNECTOR_Unknown; 206 207 if (connector->connector_type != DRM_MODE_CONNECTOR_DisplayPort) 208 return; 209 210 if (aconnector->dc_sink) 211 subconnector = get_subconnector_type(link); 212 213 drm_object_property_set_value(&connector->base, 214 connector->dev->mode_config.dp_subconnector_property, 215 subconnector); 216 } 217 218 /* 219 * initializes drm_device display related structures, based on the information 220 * provided by DAL. The drm strcutures are: drm_crtc, drm_connector, 221 * drm_encoder, drm_mode_config 222 * 223 * Returns 0 on success 224 */ 225 static int amdgpu_dm_initialize_drm_device(struct amdgpu_device *adev); 226 /* removes and deallocates the drm structures, created by the above function */ 227 static void amdgpu_dm_destroy_drm_device(struct amdgpu_display_manager *dm); 228 229 static int amdgpu_dm_connector_init(struct amdgpu_display_manager *dm, 230 struct amdgpu_dm_connector *amdgpu_dm_connector, 231 u32 link_index, 232 struct amdgpu_encoder *amdgpu_encoder); 233 static int amdgpu_dm_encoder_init(struct drm_device *dev, 234 struct amdgpu_encoder *aencoder, 235 uint32_t link_index); 236 237 static int amdgpu_dm_connector_get_modes(struct drm_connector *connector); 238 239 static int amdgpu_dm_atomic_setup_commit(struct drm_atomic_commit *state); 240 static void amdgpu_dm_atomic_commit_tail(struct drm_atomic_commit *state); 241 242 static int amdgpu_dm_atomic_check(struct drm_device *dev, 243 struct drm_atomic_commit *state); 244 245 static void handle_hpd_irq_helper(struct amdgpu_dm_connector *aconnector); 246 static void handle_hpd_rx_irq(void *param); 247 248 static void amdgpu_dm_backlight_set_level(struct amdgpu_display_manager *dm, 249 int bl_idx, 250 u32 user_brightness); 251 252 static bool 253 is_timing_unchanged_for_freesync(struct drm_crtc_state *old_crtc_state, 254 struct drm_crtc_state *new_crtc_state); 255 /* 256 * dm_vblank_get_counter 257 * 258 * @brief 259 * Get counter for number of vertical blanks 260 * 261 * @param 262 * struct amdgpu_device *adev - [in] desired amdgpu device 263 * int disp_idx - [in] which CRTC to get the counter from 264 * 265 * @return 266 * Counter for vertical blanks 267 */ 268 static u32 dm_vblank_get_counter(struct amdgpu_device *adev, int crtc) 269 { 270 struct amdgpu_crtc *acrtc = NULL; 271 272 if (crtc >= adev->mode_info.num_crtc) 273 return 0; 274 275 acrtc = adev->mode_info.crtcs[crtc]; 276 277 if (!acrtc->dm_irq_params.stream) { 278 drm_err(adev_to_drm(adev), "dc_stream_state is NULL for crtc '%d'!\n", 279 crtc); 280 return 0; 281 } 282 283 return dc_stream_get_vblank_counter(acrtc->dm_irq_params.stream); 284 } 285 286 static int dm_crtc_get_scanoutpos(struct amdgpu_device *adev, int crtc, 287 u32 *vbl, u32 *position) 288 { 289 u32 v_blank_start = 0, v_blank_end = 0, h_position = 0, v_position = 0; 290 struct amdgpu_crtc *acrtc = NULL; 291 struct dc *dc = adev->dm.dc; 292 293 if ((crtc < 0) || (crtc >= adev->mode_info.num_crtc)) 294 return -EINVAL; 295 296 acrtc = adev->mode_info.crtcs[crtc]; 297 298 if (!acrtc->dm_irq_params.stream) { 299 drm_err(adev_to_drm(adev), "dc_stream_state is NULL for crtc '%d'!\n", 300 crtc); 301 return 0; 302 } 303 304 if (dc && dc->caps.ips_support && dc->idle_optimizations_allowed) 305 dc_allow_idle_optimizations(dc, false); 306 307 /* 308 * TODO rework base driver to use values directly. 309 * for now parse it back into reg-format 310 */ 311 dc_stream_get_scanoutpos(acrtc->dm_irq_params.stream, 312 &v_blank_start, 313 &v_blank_end, 314 &h_position, 315 &v_position); 316 317 *position = v_position | (h_position << 16); 318 *vbl = v_blank_start | (v_blank_end << 16); 319 320 return 0; 321 } 322 323 static bool dm_is_idle(struct amdgpu_ip_block *ip_block) 324 { 325 /* XXX todo */ 326 return true; 327 } 328 329 static int dm_wait_for_idle(struct amdgpu_ip_block *ip_block) 330 { 331 /* XXX todo */ 332 return 0; 333 } 334 335 static bool dm_check_soft_reset(struct amdgpu_ip_block *ip_block) 336 { 337 return false; 338 } 339 340 static int dm_soft_reset(struct amdgpu_ip_block *ip_block) 341 { 342 /* XXX todo */ 343 return 0; 344 } 345 346 static struct amdgpu_crtc * 347 get_crtc_by_otg_inst(struct amdgpu_device *adev, 348 int otg_inst) 349 { 350 struct drm_device *dev = adev_to_drm(adev); 351 struct drm_crtc *crtc; 352 struct amdgpu_crtc *amdgpu_crtc; 353 354 if (WARN_ON(otg_inst == -1)) 355 return adev->mode_info.crtcs[0]; 356 357 list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) { 358 amdgpu_crtc = to_amdgpu_crtc(crtc); 359 360 if (amdgpu_crtc->otg_inst == otg_inst) 361 return amdgpu_crtc; 362 } 363 364 return NULL; 365 } 366 367 static inline bool is_dc_timing_adjust_needed(struct dm_crtc_state *old_state, 368 struct dm_crtc_state *new_state) 369 { 370 if (new_state->stream->adjust.timing_adjust_pending) 371 return true; 372 if (new_state->freesync_config.state == VRR_STATE_ACTIVE_FIXED) 373 return true; 374 else if (amdgpu_dm_crtc_vrr_active(old_state) != amdgpu_dm_crtc_vrr_active(new_state)) 375 return true; 376 else 377 return false; 378 } 379 380 /* 381 * DC will program planes with their z-order determined by their ordering 382 * in the dc_surface_updates array. This comparator is used to sort them 383 * by descending zpos. 384 */ 385 static int dm_plane_layer_index_cmp(const void *a, const void *b) 386 { 387 const struct dc_surface_update *sa = (struct dc_surface_update *)a; 388 const struct dc_surface_update *sb = (struct dc_surface_update *)b; 389 390 /* Sort by descending dc_plane layer_index (i.e. normalized_zpos) */ 391 return sb->surface->layer_index - sa->surface->layer_index; 392 } 393 394 /** 395 * update_planes_and_stream_adapter() - Send planes to be updated in DC 396 * 397 * DC has a generic way to update planes and stream via 398 * dc_update_planes_and_stream function; however, DM might need some 399 * adjustments and preparation before calling it. This function is a wrapper 400 * for the dc_update_planes_and_stream that does any required configuration 401 * before passing control to DC. 402 * 403 * @dc: Display Core control structure 404 * @update_type: specify whether it is FULL/MEDIUM/FAST update 405 * @planes_count: planes count to update 406 * @stream: stream state 407 * @stream_update: stream update 408 * @array_of_surface_update: dc surface update pointer 409 * 410 */ 411 static inline bool update_planes_and_stream_adapter(struct dc *dc, 412 int update_type, 413 int planes_count, 414 struct dc_stream_state *stream, 415 struct dc_stream_update *stream_update, 416 struct dc_surface_update *array_of_surface_update) 417 { 418 sort(array_of_surface_update, planes_count, 419 sizeof(*array_of_surface_update), dm_plane_layer_index_cmp, NULL); 420 421 /* 422 * Previous frame finished and HW is ready for optimization. 423 */ 424 dc_post_update_surfaces_to_stream(dc); 425 426 return dc_update_planes_and_stream(dc, 427 array_of_surface_update, 428 planes_count, 429 stream, 430 stream_update); 431 } 432 433 /** 434 * dm_pflip_high_irq() - Handle pageflip interrupt 435 * @interrupt_params: ignored 436 * 437 * Handles the pageflip interrupt by notifying all interested parties 438 * that the pageflip has been completed. 439 */ 440 static void dm_pflip_high_irq(void *interrupt_params) 441 { 442 struct amdgpu_crtc *amdgpu_crtc; 443 struct common_irq_params *irq_params = interrupt_params; 444 struct amdgpu_device *adev = irq_params->adev; 445 struct drm_device *dev = adev_to_drm(adev); 446 unsigned long flags; 447 struct drm_pending_vblank_event *e; 448 u32 vpos, hpos, v_blank_start, v_blank_end; 449 bool vrr_active; 450 451 amdgpu_crtc = get_crtc_by_otg_inst(adev, irq_params->irq_src - IRQ_TYPE_PFLIP); 452 453 /* IRQ could occur when in initial stage */ 454 /* TODO work and BO cleanup */ 455 if (amdgpu_crtc == NULL) { 456 drm_dbg_state(dev, "CRTC is null, returning.\n"); 457 return; 458 } 459 460 spin_lock_irqsave(&adev_to_drm(adev)->event_lock, flags); 461 462 if (amdgpu_crtc->pflip_status != AMDGPU_FLIP_SUBMITTED) { 463 drm_dbg_state(dev, 464 "amdgpu_crtc->pflip_status = %d != AMDGPU_FLIP_SUBMITTED(%d) on crtc:%d[%p]\n", 465 amdgpu_crtc->pflip_status, AMDGPU_FLIP_SUBMITTED, 466 amdgpu_crtc->crtc_id, amdgpu_crtc); 467 spin_unlock_irqrestore(&adev_to_drm(adev)->event_lock, flags); 468 return; 469 } 470 471 /* page flip completed. */ 472 e = amdgpu_crtc->event; 473 amdgpu_crtc->event = NULL; 474 475 WARN_ON(!e); 476 477 vrr_active = amdgpu_dm_crtc_vrr_active_irq(amdgpu_crtc); 478 479 /* Fixed refresh rate, or VRR scanout position outside front-porch? */ 480 if (!vrr_active || 481 !dc_stream_get_scanoutpos(amdgpu_crtc->dm_irq_params.stream, &v_blank_start, 482 &v_blank_end, &hpos, &vpos) || 483 (vpos < v_blank_start)) { 484 /* Update to correct count and vblank timestamp if racing with 485 * vblank irq. This also updates to the correct vblank timestamp 486 * even in VRR mode, as scanout is past the front-porch atm. 487 */ 488 drm_crtc_accurate_vblank_count(&amdgpu_crtc->base); 489 490 /* Wake up userspace by sending the pageflip event with proper 491 * count and timestamp of vblank of flip completion. 492 */ 493 if (e) { 494 drm_crtc_send_vblank_event(&amdgpu_crtc->base, e); 495 496 /* Event sent, so done with vblank for this flip */ 497 drm_crtc_vblank_put(&amdgpu_crtc->base); 498 } 499 } else if (e) { 500 /* VRR active and inside front-porch: vblank count and 501 * timestamp for pageflip event will only be up to date after 502 * drm_crtc_handle_vblank() has been executed from late vblank 503 * irq handler after start of back-porch (vline 0). We queue the 504 * pageflip event for send-out by drm_crtc_handle_vblank() with 505 * updated timestamp and count, once it runs after us. 506 * 507 * We need to open-code this instead of using the helper 508 * drm_crtc_arm_vblank_event(), as that helper would 509 * call drm_crtc_accurate_vblank_count(), which we must 510 * not call in VRR mode while we are in front-porch! 511 */ 512 513 /* sequence will be replaced by real count during send-out. */ 514 e->sequence = drm_crtc_vblank_count(&amdgpu_crtc->base); 515 e->pipe = amdgpu_crtc->crtc_id; 516 517 list_add_tail(&e->base.link, &adev_to_drm(adev)->vblank_event_list); 518 e = NULL; 519 } 520 521 /* Keep track of vblank of this flip for flip throttling. We use the 522 * cooked hw counter, as that one incremented at start of this vblank 523 * of pageflip completion, so last_flip_vblank is the forbidden count 524 * for queueing new pageflips if vsync + VRR is enabled. 525 */ 526 amdgpu_crtc->dm_irq_params.last_flip_vblank = 527 amdgpu_get_vblank_counter_kms(&amdgpu_crtc->base); 528 529 amdgpu_crtc->pflip_status = AMDGPU_FLIP_NONE; 530 spin_unlock_irqrestore(&adev_to_drm(adev)->event_lock, flags); 531 532 drm_dbg_state(dev, 533 "crtc:%d[%p], pflip_stat:AMDGPU_FLIP_NONE, vrr[%d]-fp %d\n", 534 amdgpu_crtc->crtc_id, amdgpu_crtc, vrr_active, (int)!e); 535 } 536 537 static void dm_handle_vmin_vmax_update(struct work_struct *offload_work) 538 { 539 struct vupdate_offload_work *work = container_of(offload_work, struct vupdate_offload_work, work); 540 struct amdgpu_device *adev = work->adev; 541 struct dc_stream_state *stream = work->stream; 542 struct dc_crtc_timing_adjust *adjust = work->adjust; 543 544 mutex_lock(&adev->dm.dc_lock); 545 dc_stream_adjust_vmin_vmax(adev->dm.dc, stream, adjust); 546 mutex_unlock(&adev->dm.dc_lock); 547 548 dc_stream_release(stream); 549 kfree(work->adjust); 550 kfree(work); 551 } 552 553 static void schedule_dc_vmin_vmax(struct amdgpu_device *adev, 554 struct dc_stream_state *stream, 555 struct dc_crtc_timing_adjust *adjust) 556 { 557 struct vupdate_offload_work *offload_work = kzalloc_obj(*offload_work, 558 GFP_NOWAIT); 559 if (!offload_work) { 560 drm_dbg_driver(adev_to_drm(adev), "Failed to allocate vupdate_offload_work\n"); 561 return; 562 } 563 564 struct dc_crtc_timing_adjust *adjust_copy = kzalloc_obj(*adjust_copy, 565 GFP_NOWAIT); 566 if (!adjust_copy) { 567 drm_dbg_driver(adev_to_drm(adev), "Failed to allocate adjust_copy\n"); 568 kfree(offload_work); 569 return; 570 } 571 572 dc_stream_retain(stream); 573 memcpy(adjust_copy, adjust, sizeof(*adjust_copy)); 574 575 INIT_WORK(&offload_work->work, dm_handle_vmin_vmax_update); 576 offload_work->adev = adev; 577 offload_work->stream = stream; 578 offload_work->adjust = adjust_copy; 579 580 queue_work(system_percpu_wq, &offload_work->work); 581 } 582 583 /** 584 * dm_crtc_high_irq_handler() - Common OTG vblank/flip event handling 585 * @adev: amdgpu device 586 * @acrtc: the CRTC to service 587 * 588 * Performs writeback completion, vblank event handling, CRC processing, VRR BTR 589 * updates and pageflip completion delivery. 590 * 591 * On DCN this is driven by VUPDATE_NO_LOCK (the register latch point) from 592 * dm_vupdate_high_irq(); on DCE it is driven by VLINE0 at the start of vblank 593 * from dm_crtc_high_irq(). 594 */ 595 static void dm_crtc_high_irq_handler(struct amdgpu_device *adev, 596 struct amdgpu_crtc *acrtc) 597 { 598 struct drm_writeback_job *job; 599 unsigned long flags; 600 int vrr_active; 601 bool is_dcn = amdgpu_ip_version(adev, DCE_HWIP, 0) != 0; 602 603 if (acrtc->wb_conn) { 604 spin_lock_irqsave(&acrtc->wb_conn->job_lock, flags); 605 606 if (acrtc->wb_pending) { 607 job = list_first_entry_or_null(&acrtc->wb_conn->job_queue, 608 struct drm_writeback_job, 609 list_entry); 610 acrtc->wb_pending = false; 611 spin_unlock_irqrestore(&acrtc->wb_conn->job_lock, flags); 612 613 if (job) { 614 unsigned int v_total, refresh_hz; 615 struct dc_stream_state *stream = acrtc->dm_irq_params.stream; 616 617 v_total = stream->adjust.v_total_max ? 618 stream->adjust.v_total_max : stream->timing.v_total; 619 refresh_hz = div_u64((uint64_t) stream->timing.pix_clk_100hz * 620 100LL, (v_total * stream->timing.h_total)); 621 mdelay(1000 / refresh_hz); 622 623 drm_writeback_signal_completion(acrtc->wb_conn, 0); 624 dc_stream_fc_disable_writeback(adev->dm.dc, 625 acrtc->dm_irq_params.stream, 0); 626 } 627 } else 628 spin_unlock_irqrestore(&acrtc->wb_conn->job_lock, flags); 629 } 630 631 vrr_active = amdgpu_dm_crtc_vrr_active_irq(acrtc); 632 633 drm_dbg_vbl(adev_to_drm(adev), 634 "crtc:%d, vupdate-vrr:%d, planes:%d\n", acrtc->crtc_id, 635 vrr_active, acrtc->dm_irq_params.active_planes); 636 637 /** 638 * Core vblank handling. 639 * 640 * On DCN this handler runs at VUPDATE_NO_LOCK, the register latch 641 * point, which is the correct place to timestamp both VRR and non-VRR 642 * vblanks. 643 * 644 * On DCE this handler runs at the start of front-porch, where only 645 * non-VRR timestamping is valid; VRR vblank is deferred to 646 * dm_vupdate_high_irq() after end of front-porch. 647 */ 648 if (is_dcn || !vrr_active) 649 amdgpu_dm_crtc_handle_vblank(acrtc); 650 651 /** 652 * Following stuff must happen at start of vblank, for crc 653 * computation and below-the-range btr support in vrr mode. 654 */ 655 amdgpu_dm_crtc_handle_crc_irq(&acrtc->base); 656 657 /* BTR updates need to happen before VUPDATE on Vega and above. */ 658 if (adev->family < AMDGPU_FAMILY_AI) 659 return; 660 661 spin_lock_irqsave(&adev_to_drm(adev)->event_lock, flags); 662 663 if (acrtc->dm_irq_params.stream && 664 acrtc->dm_irq_params.vrr_params.supported) { 665 bool replay_en = acrtc->dm_irq_params.stream->link->replay_settings.replay_feature_enabled; 666 bool psr_en = acrtc->dm_irq_params.stream->link->psr_settings.psr_feature_enabled; 667 bool fs_active_var_en = acrtc->dm_irq_params.freesync_config.state == VRR_STATE_ACTIVE_VARIABLE; 668 669 mod_freesync_handle_v_update(adev->dm.freesync_module, 670 acrtc->dm_irq_params.stream, 671 &acrtc->dm_irq_params.vrr_params); 672 673 /* update vmin_vmax only if freesync is enabled, or only if PSR and REPLAY are disabled */ 674 if (fs_active_var_en || (!fs_active_var_en && !replay_en && !psr_en)) { 675 schedule_dc_vmin_vmax(adev, acrtc->dm_irq_params.stream, 676 &acrtc->dm_irq_params.vrr_params.adjust); 677 } 678 } 679 680 /* 681 * Deliver pageflip completion events (DCN only). 682 * 683 * Since GRPH_PFLIP is not used, VUPDATE_NO_LOCK is the flip latch 684 * point. Deliver any pending pageflip completion event from here, 685 * once HW has consumed the new address (the OTG no longer reports a 686 * pending flip). 687 * 688 * Also handle the case here where there aren't any active planes and 689 * DCN HUBP may be clock-gated, so the flip-pending status may be 690 * undefined. 691 */ 692 if (is_dcn && acrtc->pflip_status == AMDGPU_FLIP_SUBMITTED && 693 acrtc->event) { 694 695 if (!dc_get_flip_pending_on_otg(adev->dm.dc, acrtc->otg_inst)) { 696 drm_crtc_send_vblank_event(&acrtc->base, acrtc->event); 697 acrtc->event = NULL; 698 drm_crtc_vblank_put(&acrtc->base); 699 acrtc->pflip_status = AMDGPU_FLIP_NONE; 700 } 701 /* 702 * If the flip is still pending, leave it armed and 703 * retry on the next vupdate. 704 */ 705 } else if (is_dcn && acrtc->pflip_status == AMDGPU_FLIP_SUBMITTED && 706 acrtc->dm_irq_params.active_planes == 0) { 707 708 if (acrtc->event) { 709 drm_crtc_send_vblank_event(&acrtc->base, acrtc->event); 710 acrtc->event = NULL; 711 drm_crtc_vblank_put(&acrtc->base); 712 } 713 acrtc->pflip_status = AMDGPU_FLIP_NONE; 714 } 715 716 spin_unlock_irqrestore(&adev_to_drm(adev)->event_lock, flags); 717 } 718 719 static void dm_vupdate_high_irq(void *interrupt_params) 720 { 721 struct common_irq_params *irq_params = interrupt_params; 722 struct amdgpu_device *adev = irq_params->adev; 723 struct amdgpu_crtc *acrtc; 724 struct drm_device *drm_dev; 725 struct drm_vblank_crtc *vblank; 726 ktime_t frame_duration_ns, previous_timestamp; 727 unsigned long flags; 728 int vrr_active; 729 730 acrtc = get_crtc_by_otg_inst(adev, irq_params->irq_src - IRQ_TYPE_VUPDATE); 731 if (!acrtc) 732 return; 733 734 vrr_active = amdgpu_dm_crtc_vrr_active_irq(acrtc); 735 drm_dev = acrtc->base.dev; 736 vblank = drm_crtc_vblank_crtc(&acrtc->base); 737 previous_timestamp = atomic64_read(&irq_params->previous_timestamp); 738 frame_duration_ns = vblank->time - previous_timestamp; 739 740 if (frame_duration_ns > 0) { 741 trace_amdgpu_refresh_rate_track(acrtc->base.index, 742 frame_duration_ns, 743 ktime_divns(NSEC_PER_SEC, frame_duration_ns)); 744 atomic64_set(&irq_params->previous_timestamp, vblank->time); 745 } 746 747 drm_dbg_vbl(drm_dev, 748 "crtc:%d, vupdate-vrr:%d\n", acrtc->crtc_id, 749 vrr_active); 750 751 /* 752 * On DCN, VUPDATE_NO_LOCK is the single OTG interrupt used to deliver 753 * vblank and pageflip completion events; VSTARTUP and GRPH_PFLIP are 754 * not used. Run the full handler here. 755 */ 756 if (amdgpu_ip_version(adev, DCE_HWIP, 0) != 0) { 757 dm_crtc_high_irq_handler(adev, acrtc); 758 return; 759 } 760 761 /* DCE only below. */ 762 763 /* Core vblank handling is done here after end of front-porch in 764 * vrr mode, as vblank timestamping will give valid results 765 * while now done after front-porch. This will also deliver 766 * page-flip completion events that have been queued to us 767 * if a pageflip happened inside front-porch. 768 */ 769 if (vrr_active && acrtc->dm_irq_params.stream) { 770 bool replay_en = acrtc->dm_irq_params.stream->link->replay_settings.replay_feature_enabled; 771 bool psr_en = acrtc->dm_irq_params.stream->link->psr_settings.psr_feature_enabled; 772 bool fs_active_var_en = acrtc->dm_irq_params.freesync_config.state 773 == VRR_STATE_ACTIVE_VARIABLE; 774 775 amdgpu_dm_crtc_handle_vblank(acrtc); 776 777 /* BTR processing for pre-DCE12 ASICs */ 778 if (adev->family < AMDGPU_FAMILY_AI) { 779 spin_lock_irqsave(&adev_to_drm(adev)->event_lock, flags); 780 mod_freesync_handle_v_update( 781 adev->dm.freesync_module, 782 acrtc->dm_irq_params.stream, 783 &acrtc->dm_irq_params.vrr_params); 784 785 if (fs_active_var_en || (!fs_active_var_en && !replay_en && !psr_en)) { 786 schedule_dc_vmin_vmax(adev, 787 acrtc->dm_irq_params.stream, 788 &acrtc->dm_irq_params.vrr_params.adjust); 789 } 790 spin_unlock_irqrestore(&adev_to_drm(adev)->event_lock, flags); 791 } 792 } 793 } 794 795 /** 796 * dm_crtc_high_irq() - Handles CRTC interrupt 797 * @interrupt_params: used for determining the CRTC instance 798 * 799 * Handles the CRTC/VSYNC interrupt by notifying DRM's VBLANK event handler. 800 * 801 * Used on DCE (VLINE0, set to vblank start). On DCN the equivalent handling is 802 * driven by VUPDATE_NO_LOCK in dm_vupdate_high_irq(). 803 */ 804 static void dm_crtc_high_irq(void *interrupt_params) 805 { 806 struct common_irq_params *irq_params = interrupt_params; 807 struct amdgpu_device *adev = irq_params->adev; 808 struct amdgpu_crtc *acrtc; 809 810 acrtc = get_crtc_by_otg_inst(adev, irq_params->irq_src - IRQ_TYPE_VBLANK); 811 if (!acrtc) 812 return; 813 814 dm_crtc_high_irq_handler(adev, acrtc); 815 } 816 817 #if defined(CONFIG_DRM_AMD_SECURE_DISPLAY) 818 /** 819 * dm_dcn_vertical_interrupt0_high_irq() - Handles OTG Vertical interrupt0 for 820 * DCN generation ASICs 821 * @interrupt_params: interrupt parameters 822 * 823 * Used to set crc window/read out crc value at vertical line 0 position 824 */ 825 static void dm_dcn_vertical_interrupt0_high_irq(void *interrupt_params) 826 { 827 struct common_irq_params *irq_params = interrupt_params; 828 struct amdgpu_device *adev = irq_params->adev; 829 struct amdgpu_crtc *acrtc; 830 831 acrtc = get_crtc_by_otg_inst(adev, irq_params->irq_src - IRQ_TYPE_VLINE0); 832 833 if (!acrtc) 834 return; 835 836 amdgpu_dm_crtc_handle_crc_window_irq(&acrtc->base); 837 } 838 #endif /* CONFIG_DRM_AMD_SECURE_DISPLAY */ 839 840 /** 841 * dmub_aux_setconfig_callback - Callback for AUX or SET_CONFIG command. 842 * @adev: amdgpu_device pointer 843 * @notify: dmub notification structure 844 * 845 * Dmub AUX or SET_CONFIG command completion processing callback 846 * Copies dmub notification to DM which is to be read by AUX command. 847 * issuing thread and also signals the event to wake up the thread. 848 */ 849 static void dmub_aux_setconfig_callback(struct amdgpu_device *adev, 850 struct dmub_notification *notify) 851 { 852 if (adev->dm.dmub_notify) 853 memcpy(adev->dm.dmub_notify, notify, sizeof(struct dmub_notification)); 854 if (notify->type == DMUB_NOTIFICATION_AUX_REPLY) 855 complete(&adev->dm.dmub_aux_transfer_done); 856 } 857 858 static void dmub_aux_fused_io_callback(struct amdgpu_device *adev, 859 struct dmub_notification *notify) 860 { 861 if (!adev || !notify) { 862 ASSERT(false); 863 return; 864 } 865 866 const struct dmub_cmd_fused_request *req = ¬ify->fused_request; 867 const uint8_t ddc_line = req->u.aux.ddc_line; 868 869 if (ddc_line >= ARRAY_SIZE(adev->dm.fused_io)) { 870 ASSERT(false); 871 return; 872 } 873 874 struct fused_io_sync *sync = &adev->dm.fused_io[ddc_line]; 875 876 static_assert(sizeof(*req) <= sizeof(sync->reply_data), "Size mismatch"); 877 memcpy(sync->reply_data, req, sizeof(*req)); 878 complete(&sync->replied); 879 } 880 881 /** 882 * dmub_hpd_callback - DMUB HPD interrupt processing callback. 883 * @adev: amdgpu_device pointer 884 * @notify: dmub notification structure 885 * 886 * Dmub Hpd interrupt processing callback. Gets displayindex through the 887 * ink index and calls helper to do the processing. 888 */ 889 static void dmub_hpd_callback(struct amdgpu_device *adev, 890 struct dmub_notification *notify) 891 { 892 struct amdgpu_dm_connector *aconnector; 893 struct amdgpu_dm_connector *hpd_aconnector = NULL; 894 struct drm_connector *connector; 895 struct drm_connector_list_iter iter; 896 struct dc_link *link; 897 u8 link_index = 0; 898 struct drm_device *dev; 899 900 if (adev == NULL) 901 return; 902 903 if (notify == NULL) { 904 drm_err(adev_to_drm(adev), "DMUB HPD callback notification was NULL"); 905 return; 906 } 907 908 if (notify->link_index > adev->dm.dc->link_count) { 909 drm_err(adev_to_drm(adev), "DMUB HPD index (%u)is abnormal", notify->link_index); 910 return; 911 } 912 913 /* Skip DMUB HPD IRQ in suspend/resume. We will probe them later. */ 914 if (notify->type == DMUB_NOTIFICATION_HPD && adev->in_suspend) { 915 drm_info(adev_to_drm(adev), "Skip DMUB HPD IRQ callback in suspend/resume\n"); 916 return; 917 } 918 919 link_index = notify->link_index; 920 link = adev->dm.dc->links[link_index]; 921 dev = adev->dm.ddev; 922 923 drm_connector_list_iter_begin(dev, &iter); 924 drm_for_each_connector_iter(connector, &iter) { 925 926 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 927 continue; 928 929 aconnector = to_amdgpu_dm_connector(connector); 930 if (link && aconnector->dc_link == link) { 931 if (notify->type == DMUB_NOTIFICATION_HPD) 932 drm_info(adev_to_drm(adev), "DMUB HPD IRQ callback: link_index=%u\n", link_index); 933 else if (notify->type == DMUB_NOTIFICATION_HPD_IRQ) 934 drm_info(adev_to_drm(adev), "DMUB HPD RX IRQ callback: link_index=%u\n", link_index); 935 else 936 drm_warn(adev_to_drm(adev), "DMUB Unknown HPD callback type %d, link_index=%u\n", 937 notify->type, link_index); 938 939 hpd_aconnector = aconnector; 940 break; 941 } 942 } 943 drm_connector_list_iter_end(&iter); 944 945 if (hpd_aconnector) { 946 if (notify->type == DMUB_NOTIFICATION_HPD) { 947 if (hpd_aconnector->dc_link->hpd_status == (notify->hpd_status == DP_HPD_PLUG)) 948 drm_warn(adev_to_drm(adev), "DMUB reported hpd status unchanged. link_index=%u\n", link_index); 949 handle_hpd_irq_helper(hpd_aconnector); 950 } else if (notify->type == DMUB_NOTIFICATION_HPD_IRQ) { 951 handle_hpd_rx_irq(hpd_aconnector); 952 } 953 } 954 } 955 956 /** 957 * dmub_hpd_sense_callback - DMUB HPD sense processing callback. 958 * @adev: amdgpu_device pointer 959 * @notify: dmub notification structure 960 * 961 * HPD sense changes can occur during low power states and need to be 962 * notified from firmware to driver. 963 */ 964 static void dmub_hpd_sense_callback(struct amdgpu_device *adev, 965 struct dmub_notification *notify) 966 { 967 drm_dbg_driver(adev_to_drm(adev), "DMUB HPD SENSE callback.\n"); 968 } 969 970 /** 971 * register_dmub_notify_callback - Sets callback for DMUB notify 972 * @adev: amdgpu_device pointer 973 * @type: Type of dmub notification 974 * @callback: Dmub interrupt callback function 975 * @dmub_int_thread_offload: offload indicator 976 * 977 * API to register a dmub callback handler for a dmub notification 978 * Also sets indicator whether callback processing to be offloaded. 979 * to dmub interrupt handling thread 980 * Return: true if successfully registered, false if there is existing registration 981 */ 982 static bool register_dmub_notify_callback(struct amdgpu_device *adev, 983 enum dmub_notification_type type, 984 dmub_notify_interrupt_callback_t callback, 985 bool dmub_int_thread_offload) 986 { 987 if (callback != NULL && type < ARRAY_SIZE(adev->dm.dmub_thread_offload)) { 988 adev->dm.dmub_callback[type] = callback; 989 adev->dm.dmub_thread_offload[type] = dmub_int_thread_offload; 990 } else 991 return false; 992 993 return true; 994 } 995 996 static void dm_handle_hpd_work(struct work_struct *work) 997 { 998 struct dmub_hpd_work *dmub_hpd_wrk; 999 1000 dmub_hpd_wrk = container_of(work, struct dmub_hpd_work, handle_hpd_work); 1001 1002 if (!dmub_hpd_wrk->dmub_notify) { 1003 drm_err(adev_to_drm(dmub_hpd_wrk->adev), "dmub_hpd_wrk dmub_notify is NULL"); 1004 return; 1005 } 1006 1007 if (dmub_hpd_wrk->dmub_notify->type < ARRAY_SIZE(dmub_hpd_wrk->adev->dm.dmub_callback)) { 1008 dmub_hpd_wrk->adev->dm.dmub_callback[dmub_hpd_wrk->dmub_notify->type](dmub_hpd_wrk->adev, 1009 dmub_hpd_wrk->dmub_notify); 1010 } 1011 1012 kfree(dmub_hpd_wrk->dmub_notify); 1013 kfree(dmub_hpd_wrk); 1014 1015 } 1016 1017 static const char *dmub_notification_type_str(enum dmub_notification_type e) 1018 { 1019 switch (e) { 1020 case DMUB_NOTIFICATION_NO_DATA: 1021 return "NO_DATA"; 1022 case DMUB_NOTIFICATION_AUX_REPLY: 1023 return "AUX_REPLY"; 1024 case DMUB_NOTIFICATION_HPD: 1025 return "HPD"; 1026 case DMUB_NOTIFICATION_HPD_IRQ: 1027 return "HPD_IRQ"; 1028 case DMUB_NOTIFICATION_SET_CONFIG_REPLY: 1029 return "SET_CONFIG_REPLY"; 1030 case DMUB_NOTIFICATION_DPIA_NOTIFICATION: 1031 return "DPIA_NOTIFICATION"; 1032 case DMUB_NOTIFICATION_HPD_SENSE_NOTIFY: 1033 return "HPD_SENSE_NOTIFY"; 1034 case DMUB_NOTIFICATION_FUSED_IO: 1035 return "FUSED_IO"; 1036 default: 1037 return "<unknown>"; 1038 } 1039 } 1040 1041 #define DMUB_TRACE_MAX_READ 64 1042 /** 1043 * dm_dmub_outbox1_low_irq() - Handles Outbox interrupt 1044 * @interrupt_params: used for determining the Outbox instance 1045 * 1046 * Handles the Outbox Interrupt 1047 * event handler. 1048 */ 1049 static void dm_dmub_outbox1_low_irq(void *interrupt_params) 1050 { 1051 struct dmub_notification notify = {0}; 1052 struct common_irq_params *irq_params = interrupt_params; 1053 struct amdgpu_device *adev = irq_params->adev; 1054 struct amdgpu_display_manager *dm = &adev->dm; 1055 struct dmcub_trace_buf_entry entry = { 0 }; 1056 u32 count = 0; 1057 struct dmub_hpd_work *dmub_hpd_wrk; 1058 1059 do { 1060 if (dc_dmub_srv_get_dmub_outbox0_msg(dm->dc, &entry)) { 1061 trace_amdgpu_dmub_trace_high_irq(entry.trace_code, entry.tick_count, 1062 entry.param0, entry.param1); 1063 1064 drm_dbg_driver(adev_to_drm(adev), "trace_code:%u, tick_count:%u, param0:%u, param1:%u\n", 1065 entry.trace_code, entry.tick_count, entry.param0, entry.param1); 1066 } else 1067 break; 1068 1069 count++; 1070 1071 } while (count <= DMUB_TRACE_MAX_READ); 1072 1073 if (count > DMUB_TRACE_MAX_READ) 1074 drm_dbg_driver(adev_to_drm(adev), "Warning : count > DMUB_TRACE_MAX_READ"); 1075 1076 if (dc_enable_dmub_notifications(adev->dm.dc) && 1077 irq_params->irq_src == DC_IRQ_SOURCE_DMCUB_OUTBOX) { 1078 1079 do { 1080 dc_stat_get_dmub_notification(adev->dm.dc, ¬ify); 1081 if (notify.type >= ARRAY_SIZE(dm->dmub_thread_offload)) { 1082 drm_err(adev_to_drm(adev), "DM: notify type %d invalid!", notify.type); 1083 continue; 1084 } 1085 if (!dm->dmub_callback[notify.type]) { 1086 drm_warn(adev_to_drm(adev), "DMUB notification skipped due to no handler: type=%s\n", 1087 dmub_notification_type_str(notify.type)); 1088 continue; 1089 } 1090 if (dm->dmub_thread_offload[notify.type] == true) { 1091 dmub_hpd_wrk = kzalloc_obj(*dmub_hpd_wrk, 1092 GFP_ATOMIC); 1093 if (!dmub_hpd_wrk) { 1094 drm_err(adev_to_drm(adev), "Failed to allocate dmub_hpd_wrk"); 1095 return; 1096 } 1097 dmub_hpd_wrk->dmub_notify = kmemdup(¬ify, sizeof(struct dmub_notification), 1098 GFP_ATOMIC); 1099 if (!dmub_hpd_wrk->dmub_notify) { 1100 kfree(dmub_hpd_wrk); 1101 drm_err(adev_to_drm(adev), "Failed to allocate dmub_hpd_wrk->dmub_notify"); 1102 return; 1103 } 1104 INIT_WORK(&dmub_hpd_wrk->handle_hpd_work, dm_handle_hpd_work); 1105 dmub_hpd_wrk->adev = adev; 1106 queue_work(adev->dm.delayed_hpd_wq, &dmub_hpd_wrk->handle_hpd_work); 1107 } else { 1108 dm->dmub_callback[notify.type](adev, ¬ify); 1109 } 1110 } while (notify.pending_notification); 1111 } 1112 } 1113 1114 static int dm_set_clockgating_state(struct amdgpu_ip_block *ip_block, 1115 enum amd_clockgating_state state) 1116 { 1117 return 0; 1118 } 1119 1120 static int dm_set_powergating_state(struct amdgpu_ip_block *ip_block, 1121 enum amd_powergating_state state) 1122 { 1123 return 0; 1124 } 1125 1126 /* Prototypes of private functions */ 1127 static int dm_early_init(struct amdgpu_ip_block *ip_block); 1128 1129 /* Allocate memory for FBC compressed data */ 1130 static void amdgpu_dm_fbc_init(struct drm_connector *connector) 1131 { 1132 struct amdgpu_device *adev = drm_to_adev(connector->dev); 1133 struct dm_compressor_info *compressor = &adev->dm.compressor; 1134 struct amdgpu_dm_connector *aconn = to_amdgpu_dm_connector(connector); 1135 struct drm_display_mode *mode; 1136 unsigned long max_size = 0; 1137 1138 if (adev->dm.dc->fbc_compressor == NULL) 1139 return; 1140 1141 if (aconn->dc_link->connector_signal != SIGNAL_TYPE_EDP) 1142 return; 1143 1144 if (compressor->bo_ptr) 1145 return; 1146 1147 1148 list_for_each_entry(mode, &connector->modes, head) { 1149 if (max_size < (unsigned long) mode->htotal * mode->vtotal) 1150 max_size = (unsigned long) mode->htotal * mode->vtotal; 1151 } 1152 1153 if (max_size) { 1154 int r = amdgpu_bo_create_kernel(adev, max_size * 4, PAGE_SIZE, 1155 AMDGPU_GEM_DOMAIN_GTT, &compressor->bo_ptr, 1156 &compressor->gpu_addr, &compressor->cpu_addr); 1157 1158 if (r) 1159 drm_err(adev_to_drm(adev), "DM: Failed to initialize FBC\n"); 1160 else { 1161 adev->dm.dc->ctx->fbc_gpu_addr = compressor->gpu_addr; 1162 drm_info(adev_to_drm(adev), "DM: FBC alloc %lu\n", max_size*4); 1163 } 1164 1165 } 1166 1167 } 1168 1169 static int amdgpu_dm_audio_component_get_eld(struct device *kdev, int port, 1170 int pipe, bool *enabled, 1171 unsigned char *buf, int max_bytes) 1172 { 1173 struct drm_device *dev = dev_get_drvdata(kdev); 1174 struct amdgpu_device *adev = drm_to_adev(dev); 1175 struct drm_connector *connector; 1176 struct drm_connector_list_iter conn_iter; 1177 struct amdgpu_dm_connector *aconnector; 1178 int ret = 0; 1179 1180 *enabled = false; 1181 1182 mutex_lock(&adev->dm.audio_lock); 1183 1184 drm_connector_list_iter_begin(dev, &conn_iter); 1185 drm_for_each_connector_iter(connector, &conn_iter) { 1186 1187 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 1188 continue; 1189 1190 aconnector = to_amdgpu_dm_connector(connector); 1191 if (aconnector->audio_inst != port) 1192 continue; 1193 1194 *enabled = true; 1195 mutex_lock(&connector->eld_mutex); 1196 ret = drm_eld_size(connector->eld); 1197 memcpy(buf, connector->eld, min(max_bytes, ret)); 1198 mutex_unlock(&connector->eld_mutex); 1199 1200 break; 1201 } 1202 drm_connector_list_iter_end(&conn_iter); 1203 1204 mutex_unlock(&adev->dm.audio_lock); 1205 1206 drm_dbg_kms(adev_to_drm(adev), "Get ELD : idx=%d ret=%d en=%d\n", port, ret, *enabled); 1207 1208 return ret; 1209 } 1210 1211 static const struct drm_audio_component_ops amdgpu_dm_audio_component_ops = { 1212 .get_eld = amdgpu_dm_audio_component_get_eld, 1213 }; 1214 1215 static int amdgpu_dm_audio_component_bind(struct device *kdev, 1216 struct device *hda_kdev, void *data) 1217 { 1218 struct drm_device *dev = dev_get_drvdata(kdev); 1219 struct amdgpu_device *adev = drm_to_adev(dev); 1220 struct drm_audio_component *acomp = data; 1221 1222 acomp->ops = &amdgpu_dm_audio_component_ops; 1223 acomp->dev = kdev; 1224 adev->dm.audio_component = acomp; 1225 1226 return 0; 1227 } 1228 1229 static void amdgpu_dm_audio_component_unbind(struct device *kdev, 1230 struct device *hda_kdev, void *data) 1231 { 1232 struct amdgpu_device *adev = drm_to_adev(dev_get_drvdata(kdev)); 1233 struct drm_audio_component *acomp = data; 1234 1235 acomp->ops = NULL; 1236 acomp->dev = NULL; 1237 adev->dm.audio_component = NULL; 1238 } 1239 1240 static const struct component_ops amdgpu_dm_audio_component_bind_ops = { 1241 .bind = amdgpu_dm_audio_component_bind, 1242 .unbind = amdgpu_dm_audio_component_unbind, 1243 }; 1244 1245 static int amdgpu_dm_audio_init(struct amdgpu_device *adev) 1246 { 1247 int i, ret; 1248 1249 if (!amdgpu_audio) 1250 return 0; 1251 1252 adev->mode_info.audio.enabled = true; 1253 1254 adev->mode_info.audio.num_pins = adev->dm.dc->res_pool->audio_count; 1255 1256 for (i = 0; i < adev->mode_info.audio.num_pins; i++) { 1257 adev->mode_info.audio.pin[i].channels = -1; 1258 adev->mode_info.audio.pin[i].rate = -1; 1259 adev->mode_info.audio.pin[i].bits_per_sample = -1; 1260 adev->mode_info.audio.pin[i].status_bits = 0; 1261 adev->mode_info.audio.pin[i].category_code = 0; 1262 adev->mode_info.audio.pin[i].connected = false; 1263 adev->mode_info.audio.pin[i].id = 1264 adev->dm.dc->res_pool->audios[i]->inst; 1265 adev->mode_info.audio.pin[i].offset = 0; 1266 } 1267 1268 ret = component_add(adev->dev, &amdgpu_dm_audio_component_bind_ops); 1269 if (ret < 0) 1270 return ret; 1271 1272 adev->dm.audio_registered = true; 1273 1274 return 0; 1275 } 1276 1277 static void amdgpu_dm_audio_fini(struct amdgpu_device *adev) 1278 { 1279 if (!amdgpu_audio) 1280 return; 1281 1282 if (!adev->mode_info.audio.enabled) 1283 return; 1284 1285 if (adev->dm.audio_registered) { 1286 component_del(adev->dev, &amdgpu_dm_audio_component_bind_ops); 1287 adev->dm.audio_registered = false; 1288 } 1289 1290 /* TODO: Disable audio? */ 1291 1292 adev->mode_info.audio.enabled = false; 1293 } 1294 1295 static void amdgpu_dm_audio_eld_notify(struct amdgpu_device *adev, int pin) 1296 { 1297 struct drm_audio_component *acomp = adev->dm.audio_component; 1298 1299 if (acomp && acomp->audio_ops && acomp->audio_ops->pin_eld_notify) { 1300 drm_dbg_kms(adev_to_drm(adev), "Notify ELD: %d\n", pin); 1301 1302 acomp->audio_ops->pin_eld_notify(acomp->audio_ops->audio_ptr, 1303 pin, -1); 1304 } 1305 } 1306 1307 static int dm_dmub_hw_init(struct amdgpu_device *adev) 1308 { 1309 const struct dmcub_firmware_header_v1_0 *hdr; 1310 struct dmub_srv *dmub_srv = adev->dm.dmub_srv; 1311 struct dmub_srv_fb_info *fb_info = adev->dm.dmub_fb_info; 1312 const struct firmware *dmub_fw = adev->dm.dmub_fw; 1313 struct dc *dc = adev->dm.dc; 1314 struct dmcu *dmcu = adev->dm.dc->res_pool->dmcu; 1315 struct abm *abm = adev->dm.dc->res_pool->abm; 1316 struct dc_context *ctx = adev->dm.dc->ctx; 1317 struct dmub_srv_hw_params hw_params; 1318 enum dmub_status status; 1319 const unsigned char *fw_inst_const, *fw_bss_data; 1320 u32 i, fw_inst_const_size, fw_bss_data_size; 1321 bool has_hw_support; 1322 1323 if (!dmub_srv) 1324 /* DMUB isn't supported on the ASIC. */ 1325 return 0; 1326 1327 if (!fb_info) { 1328 drm_err(adev_to_drm(adev), "No framebuffer info for DMUB service.\n"); 1329 return -EINVAL; 1330 } 1331 1332 if (!dmub_fw) { 1333 /* Firmware required for DMUB support. */ 1334 drm_err(adev_to_drm(adev), "No firmware provided for DMUB.\n"); 1335 return -EINVAL; 1336 } 1337 1338 /* initialize register offsets for ASICs with runtime initialization available */ 1339 if (dmub_srv->hw_funcs.init_reg_offsets) 1340 dmub_srv->hw_funcs.init_reg_offsets(dmub_srv, ctx); 1341 1342 status = dmub_srv_has_hw_support(dmub_srv, &has_hw_support); 1343 if (status != DMUB_STATUS_OK) { 1344 drm_err(adev_to_drm(adev), "Error checking HW support for DMUB: %d\n", status); 1345 return -EINVAL; 1346 } 1347 1348 if (!has_hw_support) { 1349 drm_info(adev_to_drm(adev), "DMUB unsupported on ASIC\n"); 1350 return 0; 1351 } 1352 1353 /* Reset DMCUB if it was previously running - before we overwrite its memory. */ 1354 status = dmub_srv_hw_reset(dmub_srv); 1355 if (status != DMUB_STATUS_OK) 1356 drm_warn(adev_to_drm(adev), "Error resetting DMUB HW: %d\n", status); 1357 1358 hdr = (const struct dmcub_firmware_header_v1_0 *)dmub_fw->data; 1359 1360 fw_inst_const = dmub_fw->data + 1361 le32_to_cpu(hdr->header.ucode_array_offset_bytes) + 1362 PSP_HEADER_BYTES_256; 1363 1364 fw_bss_data = dmub_fw->data + 1365 le32_to_cpu(hdr->header.ucode_array_offset_bytes) + 1366 le32_to_cpu(hdr->inst_const_bytes); 1367 1368 /* Copy firmware and bios info into FB memory. */ 1369 fw_inst_const_size = adev->dm.fw_inst_size; 1370 1371 fw_bss_data_size = le32_to_cpu(hdr->bss_data_bytes); 1372 1373 /* if adev->firmware.load_type == AMDGPU_FW_LOAD_PSP, 1374 * amdgpu_ucode_init_single_fw will load dmub firmware 1375 * fw_inst_const part to cw0; otherwise, the firmware back door load 1376 * will be done by dm_dmub_hw_init 1377 */ 1378 if (adev->firmware.load_type != AMDGPU_FW_LOAD_PSP) { 1379 memcpy(fb_info->fb[DMUB_WINDOW_0_INST_CONST].cpu_addr, fw_inst_const, 1380 fw_inst_const_size); 1381 } 1382 1383 if (fw_bss_data_size) 1384 memcpy(fb_info->fb[DMUB_WINDOW_2_BSS_DATA].cpu_addr, 1385 fw_bss_data, fw_bss_data_size); 1386 1387 /* Copy firmware bios info into FB memory. */ 1388 memcpy(fb_info->fb[DMUB_WINDOW_3_VBIOS].cpu_addr, adev->bios, 1389 adev->bios_size); 1390 1391 /* Reset regions that need to be reset. */ 1392 memset(fb_info->fb[DMUB_WINDOW_4_MAILBOX].cpu_addr, 0, 1393 fb_info->fb[DMUB_WINDOW_4_MAILBOX].size); 1394 1395 memset(fb_info->fb[DMUB_WINDOW_5_TRACEBUFF].cpu_addr, 0, 1396 fb_info->fb[DMUB_WINDOW_5_TRACEBUFF].size); 1397 1398 memset(fb_info->fb[DMUB_WINDOW_6_FW_STATE].cpu_addr, 0, 1399 fb_info->fb[DMUB_WINDOW_6_FW_STATE].size); 1400 1401 memset(fb_info->fb[DMUB_WINDOW_SHARED_STATE].cpu_addr, 0, 1402 fb_info->fb[DMUB_WINDOW_SHARED_STATE].size); 1403 1404 /* Initialize hardware. */ 1405 memset(&hw_params, 0, sizeof(hw_params)); 1406 hw_params.soc_fb_info.fb_base = adev->gmc.fb_start; 1407 hw_params.soc_fb_info.fb_offset = adev->vm_manager.vram_base_offset; 1408 1409 /* backdoor load firmware and trigger dmub running */ 1410 if (adev->firmware.load_type != AMDGPU_FW_LOAD_PSP) 1411 hw_params.load_inst_const = true; 1412 1413 if (dmcu) 1414 hw_params.psp_version = dmcu->psp_version; 1415 1416 for (i = 0; i < fb_info->num_fb; ++i) 1417 hw_params.fb[i] = &fb_info->fb[i]; 1418 1419 /* Enable usb4 dpia in the FW APU */ 1420 if (dc->caps.is_apu && 1421 dc->res_pool->usb4_dpia_count != 0 && 1422 !dc->debug.dpia_debug.bits.disable_dpia) { 1423 hw_params.dpia_supported = true; 1424 hw_params.disable_dpia = dc->debug.dpia_debug.bits.disable_dpia; 1425 hw_params.dpia_hpd_int_enable_supported = false; 1426 hw_params.enable_non_transparent_setconfig = dc->config.consolidated_dpia_dp_lt; 1427 hw_params.disable_dpia_bw_allocation = !dc->config.usb4_bw_alloc_support; 1428 } 1429 1430 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 1431 case IP_VERSION(3, 5, 0): 1432 case IP_VERSION(3, 5, 1): 1433 case IP_VERSION(3, 6, 0): 1434 case IP_VERSION(4, 2, 0): 1435 case IP_VERSION(4, 2, 1): 1436 hw_params.ips_sequential_ono = adev->external_rev_id > 0x10; 1437 hw_params.lower_hbr3_phy_ssc = true; 1438 break; 1439 default: 1440 break; 1441 } 1442 1443 status = dmub_srv_hw_init(dmub_srv, &hw_params); 1444 if (status != DMUB_STATUS_OK) { 1445 drm_err(adev_to_drm(adev), "Error initializing DMUB HW: %d\n", status); 1446 return -EINVAL; 1447 } 1448 1449 /* Wait for firmware load to finish. */ 1450 status = dmub_srv_wait_for_auto_load(dmub_srv, 100000); 1451 if (status != DMUB_STATUS_OK) 1452 drm_warn(adev_to_drm(adev), "Wait for DMUB auto-load failed: %d\n", status); 1453 1454 /* Init DMCU and ABM if available. */ 1455 if (dmcu && abm) { 1456 dmcu->funcs->dmcu_init(dmcu); 1457 abm->dmcu_is_running = dmcu->funcs->is_dmcu_initialized(dmcu); 1458 } 1459 1460 if (!adev->dm.dc->ctx->dmub_srv) 1461 adev->dm.dc->ctx->dmub_srv = dc_dmub_srv_create(adev->dm.dc, dmub_srv); 1462 if (!adev->dm.dc->ctx->dmub_srv) { 1463 drm_err(adev_to_drm(adev), "Couldn't allocate DC DMUB server!\n"); 1464 return -ENOMEM; 1465 } 1466 1467 drm_info(adev_to_drm(adev), "DMUB hardware initialized: version=0x%08X\n", 1468 adev->dm.dmcub_fw_version); 1469 1470 /* Keeping sanity checks off if 1471 * DCN31 >= 4.0.59.0 1472 * DCN314 >= 8.0.16.0 1473 * Otherwise, turn on sanity checks 1474 */ 1475 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 1476 case IP_VERSION(3, 1, 2): 1477 case IP_VERSION(3, 1, 3): 1478 if (adev->dm.dmcub_fw_version && 1479 adev->dm.dmcub_fw_version >= DMUB_FW_VERSION(4, 0, 0) && 1480 adev->dm.dmcub_fw_version < DMUB_FW_VERSION(4, 0, 59)) 1481 adev->dm.dc->debug.sanity_checks = true; 1482 break; 1483 case IP_VERSION(3, 1, 4): 1484 if (adev->dm.dmcub_fw_version && 1485 adev->dm.dmcub_fw_version >= DMUB_FW_VERSION(4, 0, 0) && 1486 adev->dm.dmcub_fw_version < DMUB_FW_VERSION(8, 0, 16)) 1487 adev->dm.dc->debug.sanity_checks = true; 1488 break; 1489 default: 1490 break; 1491 } 1492 1493 return 0; 1494 } 1495 1496 static void dm_dmub_hw_resume(struct amdgpu_device *adev) 1497 { 1498 struct dmub_srv *dmub_srv = adev->dm.dmub_srv; 1499 enum dmub_status status; 1500 bool init; 1501 int r; 1502 1503 if (!dmub_srv) { 1504 /* DMUB isn't supported on the ASIC. */ 1505 return; 1506 } 1507 1508 status = dmub_srv_is_hw_init(dmub_srv, &init); 1509 if (status != DMUB_STATUS_OK) 1510 drm_warn(adev_to_drm(adev), "DMUB hardware init check failed: %d\n", status); 1511 1512 if (status == DMUB_STATUS_OK && init) { 1513 /* Wait for firmware load to finish. */ 1514 status = dmub_srv_wait_for_auto_load(dmub_srv, 100000); 1515 if (status != DMUB_STATUS_OK) 1516 drm_warn(adev_to_drm(adev), "Wait for DMUB auto-load failed: %d\n", status); 1517 } else { 1518 /* Perform the full hardware initialization. */ 1519 r = dm_dmub_hw_init(adev); 1520 if (r) 1521 drm_err(adev_to_drm(adev), "DMUB interface failed to initialize: status=%d\n", r); 1522 } 1523 } 1524 1525 static void mmhub_read_system_context(struct amdgpu_device *adev, struct dc_phy_addr_space_config *pa_config) 1526 { 1527 u64 pt_base; 1528 u32 logical_addr_low; 1529 u32 logical_addr_high; 1530 u32 agp_base, agp_bot, agp_top; 1531 PHYSICAL_ADDRESS_LOC page_table_start, page_table_end, page_table_base; 1532 1533 memset(pa_config, 0, sizeof(*pa_config)); 1534 1535 agp_base = 0; 1536 agp_bot = adev->gmc.agp_start >> 24; 1537 agp_top = adev->gmc.agp_end >> 24; 1538 1539 /* AGP aperture is disabled */ 1540 if (agp_bot > agp_top) { 1541 logical_addr_low = adev->gmc.fb_start >> 18; 1542 if (adev->apu_flags & (AMD_APU_IS_RAVEN2 | 1543 AMD_APU_IS_RENOIR | 1544 AMD_APU_IS_GREEN_SARDINE)) 1545 /* 1546 * Raven2 has a HW issue that it is unable to use the vram which 1547 * is out of MC_VM_SYSTEM_APERTURE_HIGH_ADDR. So here is the 1548 * workaround that increase system aperture high address (add 1) 1549 * to get rid of the VM fault and hardware hang. 1550 */ 1551 logical_addr_high = (adev->gmc.fb_end >> 18) + 0x1; 1552 else 1553 logical_addr_high = adev->gmc.fb_end >> 18; 1554 } else { 1555 logical_addr_low = min(adev->gmc.fb_start, adev->gmc.agp_start) >> 18; 1556 if (adev->apu_flags & (AMD_APU_IS_RAVEN2 | 1557 AMD_APU_IS_RENOIR | 1558 AMD_APU_IS_GREEN_SARDINE)) 1559 /* 1560 * Raven2 has a HW issue that it is unable to use the vram which 1561 * is out of MC_VM_SYSTEM_APERTURE_HIGH_ADDR. So here is the 1562 * workaround that increase system aperture high address (add 1) 1563 * to get rid of the VM fault and hardware hang. 1564 */ 1565 logical_addr_high = max((adev->gmc.fb_end >> 18) + 0x1, adev->gmc.agp_end >> 18); 1566 else 1567 logical_addr_high = max(adev->gmc.fb_end, adev->gmc.agp_end) >> 18; 1568 } 1569 1570 pt_base = amdgpu_gmc_pd_addr(adev->gart.bo); 1571 1572 page_table_start.high_part = upper_32_bits(adev->gmc.gart_start >> 1573 AMDGPU_GPU_PAGE_SHIFT); 1574 page_table_start.low_part = lower_32_bits(adev->gmc.gart_start >> 1575 AMDGPU_GPU_PAGE_SHIFT); 1576 page_table_end.high_part = upper_32_bits(adev->gmc.gart_end >> 1577 AMDGPU_GPU_PAGE_SHIFT); 1578 page_table_end.low_part = lower_32_bits(adev->gmc.gart_end >> 1579 AMDGPU_GPU_PAGE_SHIFT); 1580 page_table_base.high_part = upper_32_bits(pt_base); 1581 page_table_base.low_part = lower_32_bits(pt_base); 1582 1583 pa_config->system_aperture.start_addr = (uint64_t)logical_addr_low << 18; 1584 pa_config->system_aperture.end_addr = (uint64_t)logical_addr_high << 18; 1585 1586 pa_config->system_aperture.agp_base = (uint64_t)agp_base << 24; 1587 pa_config->system_aperture.agp_bot = (uint64_t)agp_bot << 24; 1588 pa_config->system_aperture.agp_top = (uint64_t)agp_top << 24; 1589 1590 pa_config->system_aperture.fb_base = adev->gmc.fb_start; 1591 pa_config->system_aperture.fb_offset = adev->vm_manager.vram_base_offset; 1592 pa_config->system_aperture.fb_top = adev->gmc.fb_end; 1593 1594 pa_config->gart_config.page_table_start_addr = page_table_start.quad_part << 12; 1595 pa_config->gart_config.page_table_end_addr = page_table_end.quad_part << 12; 1596 pa_config->gart_config.page_table_base_addr = page_table_base.quad_part; 1597 1598 pa_config->is_hvm_enabled = adev->mode_info.gpu_vm_support; 1599 1600 } 1601 1602 static void force_connector_state( 1603 struct amdgpu_dm_connector *aconnector, 1604 enum drm_connector_force force_state) 1605 { 1606 struct drm_connector *connector = &aconnector->base; 1607 1608 mutex_lock(&connector->dev->mode_config.mutex); 1609 aconnector->base.force = force_state; 1610 mutex_unlock(&connector->dev->mode_config.mutex); 1611 1612 mutex_lock(&aconnector->hpd_lock); 1613 drm_kms_helper_connector_hotplug_event(connector); 1614 mutex_unlock(&aconnector->hpd_lock); 1615 } 1616 1617 static void dm_handle_hpd_rx_offload_work(struct work_struct *work) 1618 { 1619 struct hpd_rx_irq_offload_work *offload_work; 1620 struct amdgpu_dm_connector *aconnector; 1621 struct dc_link *dc_link; 1622 struct amdgpu_device *adev; 1623 enum dc_connection_type new_connection_type = dc_connection_none; 1624 unsigned long flags; 1625 union test_response test_response; 1626 1627 memset(&test_response, 0, sizeof(test_response)); 1628 1629 offload_work = container_of(work, struct hpd_rx_irq_offload_work, work); 1630 aconnector = offload_work->offload_wq->aconnector; 1631 adev = offload_work->adev; 1632 1633 if (!aconnector) { 1634 drm_err(adev_to_drm(adev), "Can't retrieve aconnector in hpd_rx_irq_offload_work"); 1635 goto skip; 1636 } 1637 1638 dc_link = aconnector->dc_link; 1639 1640 mutex_lock(&aconnector->hpd_lock); 1641 if (!dc_link_detect_connection_type(dc_link, &new_connection_type)) 1642 drm_err(adev_to_drm(adev), "KMS: Failed to detect connector\n"); 1643 mutex_unlock(&aconnector->hpd_lock); 1644 1645 if (new_connection_type == dc_connection_none) 1646 goto skip; 1647 1648 if (amdgpu_in_reset(adev)) 1649 goto skip; 1650 1651 if (offload_work->data.bytes.device_service_irq.bits.UP_REQ_MSG_RDY || 1652 offload_work->data.bytes.device_service_irq.bits.DOWN_REP_MSG_RDY) { 1653 dm_handle_mst_sideband_msg_ready_event(&aconnector->mst_mgr, DOWN_OR_UP_MSG_RDY_EVENT); 1654 spin_lock_irqsave(&offload_work->offload_wq->offload_lock, flags); 1655 offload_work->offload_wq->is_handling_mst_msg_rdy_event = false; 1656 spin_unlock_irqrestore(&offload_work->offload_wq->offload_lock, flags); 1657 goto skip; 1658 } 1659 1660 mutex_lock(&adev->dm.dc_lock); 1661 if (offload_work->data.bytes.device_service_irq.bits.AUTOMATED_TEST) { 1662 dc_link_dp_handle_automated_test(dc_link); 1663 1664 if (aconnector->timing_changed) { 1665 /* force connector disconnect and reconnect */ 1666 force_connector_state(aconnector, DRM_FORCE_OFF); 1667 msleep(100); 1668 force_connector_state(aconnector, DRM_FORCE_UNSPECIFIED); 1669 } 1670 1671 test_response.bits.ACK = 1; 1672 1673 core_link_write_dpcd( 1674 dc_link, 1675 DP_TEST_RESPONSE, 1676 &test_response.raw, 1677 sizeof(test_response)); 1678 } else if ((dc_link->connector_signal != SIGNAL_TYPE_EDP) && 1679 dc_link_check_link_loss_status(dc_link, &offload_work->data) && 1680 dc_link_dp_allow_hpd_rx_irq(dc_link)) { 1681 /* offload_work->data is from handle_hpd_rx_irq-> 1682 * schedule_hpd_rx_offload_work.this is defer handle 1683 * for hpd short pulse. upon here, link status may be 1684 * changed, need get latest link status from dpcd 1685 * registers. if link status is good, skip run link 1686 * training again. 1687 */ 1688 union hpd_irq_data irq_data; 1689 1690 memset(&irq_data, 0, sizeof(irq_data)); 1691 1692 /* before dc_link_dp_handle_link_loss, allow new link lost handle 1693 * request be added to work queue if link lost at end of dc_link_ 1694 * dp_handle_link_loss 1695 */ 1696 spin_lock_irqsave(&offload_work->offload_wq->offload_lock, flags); 1697 offload_work->offload_wq->is_handling_link_loss = false; 1698 spin_unlock_irqrestore(&offload_work->offload_wq->offload_lock, flags); 1699 1700 if ((dc_link_dp_read_hpd_rx_irq_data(dc_link, &irq_data) == DC_OK) && 1701 dc_link_check_link_loss_status(dc_link, &irq_data)) 1702 dc_link_dp_handle_link_loss(dc_link); 1703 } 1704 mutex_unlock(&adev->dm.dc_lock); 1705 1706 skip: 1707 kfree(offload_work); 1708 1709 } 1710 1711 static struct hpd_rx_irq_offload_work_queue *hpd_rx_irq_create_workqueue(struct amdgpu_device *adev) 1712 { 1713 struct dc *dc = adev->dm.dc; 1714 int max_caps = dc->caps.max_links; 1715 int i = 0; 1716 struct hpd_rx_irq_offload_work_queue *hpd_rx_offload_wq = NULL; 1717 1718 hpd_rx_offload_wq = kzalloc_objs(*hpd_rx_offload_wq, max_caps); 1719 1720 if (!hpd_rx_offload_wq) 1721 return NULL; 1722 1723 1724 for (i = 0; i < max_caps; i++) { 1725 hpd_rx_offload_wq[i].wq = 1726 create_singlethread_workqueue("amdgpu_dm_hpd_rx_offload_wq"); 1727 1728 if (hpd_rx_offload_wq[i].wq == NULL) { 1729 drm_err(adev_to_drm(adev), "create amdgpu_dm_hpd_rx_offload_wq fail!"); 1730 goto out_err; 1731 } 1732 1733 spin_lock_init(&hpd_rx_offload_wq[i].offload_lock); 1734 } 1735 1736 return hpd_rx_offload_wq; 1737 1738 out_err: 1739 for (i = 0; i < max_caps; i++) { 1740 if (hpd_rx_offload_wq[i].wq) 1741 destroy_workqueue(hpd_rx_offload_wq[i].wq); 1742 } 1743 kfree(hpd_rx_offload_wq); 1744 return NULL; 1745 } 1746 1747 struct amdgpu_stutter_quirk { 1748 u16 chip_vendor; 1749 u16 chip_device; 1750 u16 subsys_vendor; 1751 u16 subsys_device; 1752 u8 revision; 1753 }; 1754 1755 static const struct amdgpu_stutter_quirk amdgpu_stutter_quirk_list[] = { 1756 /* https://bugzilla.kernel.org/show_bug.cgi?id=214417 */ 1757 { 0x1002, 0x15dd, 0x1002, 0x15dd, 0xc8 }, 1758 { 0, 0, 0, 0, 0 }, 1759 }; 1760 1761 static bool dm_should_disable_stutter(struct pci_dev *pdev) 1762 { 1763 const struct amdgpu_stutter_quirk *p = amdgpu_stutter_quirk_list; 1764 1765 while (p && p->chip_device != 0) { 1766 if (pdev->vendor == p->chip_vendor && 1767 pdev->device == p->chip_device && 1768 pdev->subsystem_vendor == p->subsys_vendor && 1769 pdev->subsystem_device == p->subsys_device && 1770 pdev->revision == p->revision) { 1771 return true; 1772 } 1773 ++p; 1774 } 1775 return false; 1776 } 1777 1778 1779 void* 1780 dm_allocate_gpu_mem( 1781 struct amdgpu_device *adev, 1782 enum dc_gpu_mem_alloc_type type, 1783 size_t size, 1784 long long *addr) 1785 { 1786 struct dal_allocation *da; 1787 u32 domain = (type == DC_MEM_ALLOC_TYPE_GART) ? 1788 AMDGPU_GEM_DOMAIN_GTT : AMDGPU_GEM_DOMAIN_VRAM; 1789 int ret; 1790 1791 da = kzalloc_obj(struct dal_allocation); 1792 if (!da) 1793 return NULL; 1794 1795 ret = amdgpu_bo_create_kernel(adev, size, PAGE_SIZE, 1796 domain, &da->bo, 1797 &da->gpu_addr, &da->cpu_ptr); 1798 1799 *addr = da->gpu_addr; 1800 1801 if (ret) { 1802 kfree(da); 1803 return NULL; 1804 } 1805 1806 /* add da to list in dm */ 1807 list_add(&da->list, &adev->dm.da_list); 1808 1809 return da->cpu_ptr; 1810 } 1811 1812 void 1813 dm_free_gpu_mem( 1814 struct amdgpu_device *adev, 1815 enum dc_gpu_mem_alloc_type type, 1816 void *pvMem) 1817 { 1818 struct dal_allocation *da; 1819 1820 /* walk the da list in DM */ 1821 list_for_each_entry(da, &adev->dm.da_list, list) { 1822 if (pvMem == da->cpu_ptr) { 1823 amdgpu_bo_free_kernel(&da->bo, &da->gpu_addr, &da->cpu_ptr); 1824 list_del(&da->list); 1825 kfree(da); 1826 break; 1827 } 1828 } 1829 1830 } 1831 1832 static enum dmub_status 1833 dm_dmub_send_vbios_gpint_command(struct amdgpu_device *adev, 1834 enum dmub_gpint_command command_code, 1835 uint16_t param, 1836 uint32_t timeout_us) 1837 { 1838 union dmub_gpint_data_register reg, test; 1839 uint32_t i; 1840 1841 /* Assume that VBIOS DMUB is ready to take commands */ 1842 1843 reg.bits.status = 1; 1844 reg.bits.command_code = command_code; 1845 reg.bits.param = param; 1846 1847 cgs_write_register(adev->dm.cgs_device, 0x34c0 + 0x01f8, reg.all); 1848 1849 for (i = 0; i < timeout_us; ++i) { 1850 udelay(1); 1851 1852 /* Check if our GPINT got acked */ 1853 reg.bits.status = 0; 1854 test = (union dmub_gpint_data_register) 1855 cgs_read_register(adev->dm.cgs_device, 0x34c0 + 0x01f8); 1856 1857 if (test.all == reg.all) 1858 return DMUB_STATUS_OK; 1859 } 1860 1861 return DMUB_STATUS_TIMEOUT; 1862 } 1863 1864 static void *dm_dmub_get_vbios_bounding_box(struct amdgpu_device *adev) 1865 { 1866 void *bb; 1867 long long addr; 1868 unsigned int bb_size; 1869 int i = 0; 1870 uint16_t chunk; 1871 enum dmub_gpint_command send_addrs[] = { 1872 DMUB_GPINT__SET_BB_ADDR_WORD0, 1873 DMUB_GPINT__SET_BB_ADDR_WORD1, 1874 DMUB_GPINT__SET_BB_ADDR_WORD2, 1875 DMUB_GPINT__SET_BB_ADDR_WORD3, 1876 }; 1877 enum dmub_status ret; 1878 1879 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 1880 case IP_VERSION(4, 0, 1): 1881 bb_size = sizeof(struct dml2_soc_bb); 1882 break; 1883 case IP_VERSION(4, 2, 0): 1884 case IP_VERSION(4, 2, 1): 1885 bb_size = sizeof(struct dml2_soc_bb); 1886 break; 1887 default: 1888 return NULL; 1889 } 1890 1891 bb = dm_allocate_gpu_mem(adev, 1892 DC_MEM_ALLOC_TYPE_GART, 1893 bb_size, 1894 &addr); 1895 if (!bb) 1896 return NULL; 1897 1898 for (i = 0; i < 4; i++) { 1899 /* Extract 16-bit chunk */ 1900 chunk = ((uint64_t) addr >> (i * 16)) & 0xFFFF; 1901 /* Send the chunk */ 1902 ret = dm_dmub_send_vbios_gpint_command(adev, send_addrs[i], chunk, 30000); 1903 if (ret != DMUB_STATUS_OK) 1904 goto free_bb; 1905 } 1906 1907 /* Now ask DMUB to copy the bb */ 1908 ret = dm_dmub_send_vbios_gpint_command(adev, DMUB_GPINT__BB_COPY, 1, 200000); 1909 if (ret != DMUB_STATUS_OK) 1910 goto free_bb; 1911 1912 return bb; 1913 1914 free_bb: 1915 dm_free_gpu_mem(adev, DC_MEM_ALLOC_TYPE_GART, (void *) bb); 1916 return NULL; 1917 1918 } 1919 1920 static enum dmub_ips_disable_type dm_get_default_ips_mode( 1921 struct amdgpu_device *adev) 1922 { 1923 enum dmub_ips_disable_type ret = DMUB_IPS_ENABLE; 1924 1925 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 1926 case IP_VERSION(3, 5, 0): 1927 case IP_VERSION(3, 6, 0): 1928 case IP_VERSION(3, 5, 1): 1929 ret = DMUB_IPS_RCG_IN_ACTIVE_IPS2_IN_OFF; 1930 break; 1931 case IP_VERSION(4, 2, 0): 1932 case IP_VERSION(4, 2, 1): 1933 ret = DMUB_IPS_ENABLE; 1934 break; 1935 default: 1936 /* ASICs older than DCN35 do not have IPSs */ 1937 if (amdgpu_ip_version(adev, DCE_HWIP, 0) < IP_VERSION(3, 5, 0)) 1938 ret = DMUB_IPS_DISABLE_ALL; 1939 break; 1940 } 1941 1942 return ret; 1943 } 1944 1945 static int amdgpu_dm_init_power_module(struct amdgpu_display_manager *dm) 1946 { 1947 struct mod_power_init_params init_data[MAX_NUM_EDP]; 1948 1949 if (dm->num_of_edps == 0) { 1950 drm_dbg_driver( 1951 dm->ddev, 1952 "amdgpu: No eDP detected, skip initializing power module\n"); 1953 return 0; 1954 } 1955 1956 /* Initialize all the power module parameters */ 1957 for (int i = 0; i < dm->num_of_edps; i++) { 1958 init_data[i].allow_psr_smu_optimizations = 1959 !!(amdgpu_dc_feature_mask & DC_PSR_ALLOW_SMU_OPT); 1960 init_data[i].allow_psr_multi_disp_optimizations = 1961 !!(amdgpu_dc_feature_mask & DC_PSR_ALLOW_MULTI_DISP_OPT); 1962 /* See dm_late_init */ 1963 init_data[i].backlight_ramping_override = false; 1964 init_data[i].backlight_ramping_start = 0xCCCC; 1965 init_data[i].backlight_ramping_reduction = 0xCCCCCCCC; 1966 init_data[i].def_varibright_level = 0; 1967 init_data[i].abm_config_setting = 0; 1968 init_data[i].num_backlight_levels = 101; 1969 init_data[i].use_nits_based_brightness = false; 1970 init_data[i].panel_max_millinits = 0; 1971 init_data[i].panel_min_millinits = 0; 1972 init_data[i].disable_fractional_pwm = 1973 !(amdgpu_dc_feature_mask & DC_DISABLE_FRACTIONAL_PWM_MASK); 1974 init_data[i].use_custom_backlight_caps = false; 1975 init_data[i].custom_backlight_caps_config_no = 0; 1976 init_data[i].use_linear_backlight_curve = false; 1977 init_data[i].def_varibright_enable = 0; 1978 init_data[i].varibright_level = 0; 1979 /* 1980 * Power module uses 16-bit backlight levels (0xFFFF max) rather 1981 * than 8-bit(0XFF max) 1982 */ 1983 init_data[i].min_backlight_pwm = 1984 dm->backlight_caps[i].min_input_signal * 0x101; 1985 init_data[i].max_backlight_pwm = 1986 dm->backlight_caps[i].max_input_signal * 0x101; 1987 init_data[i].min_abm_backlight = 1988 dm->backlight_caps[i].min_input_signal * 0x101; 1989 1990 /* Min backlight level after ABM reduction, Don't allow below 1% 1991 * 0xFFFF x 0.01 = 0x28F 1992 */ 1993 init_data[i].min_abm_backlight = (init_data[i].min_abm_backlight < 0x28F) ? 1994 0x28F : init_data[i].min_abm_backlight; 1995 } 1996 1997 dm->power_module = mod_power_create(dm->dc, init_data, dm->num_of_edps); 1998 if (!dm->power_module) { 1999 drm_err(dm->ddev, "amdgpu: Error allocating memory for power module\n"); 2000 return -ENOMEM; 2001 } 2002 2003 mod_power_hw_init(dm->power_module); 2004 drm_dbg_driver(dm->ddev, "amdgpu: Power module init done\n"); 2005 2006 return 0; 2007 } 2008 2009 static void hdmi_frl_status_polling_work(struct work_struct *work) 2010 { 2011 struct amdgpu_display_manager *dm = 2012 container_of(to_delayed_work(work), struct amdgpu_display_manager, 2013 hdmi_frl_status_polling_work); 2014 struct dc *dc = dm->dc; 2015 struct dc_link *dc_link; 2016 bool link_update = false; 2017 2018 for (int i = 0; i < MAX_LINKS; i++) { 2019 dc_link = dc->links[i]; 2020 2021 if (!dc_link || !dc_link->local_sink) 2022 continue; 2023 2024 if (!dc_is_hdmi_signal(dc_link->connector_signal)) 2025 continue; 2026 2027 if (dc_link->connector_signal != SIGNAL_TYPE_HDMI_FRL) 2028 continue; 2029 2030 link_update = dc_link_frl_poll_status_flag(dc_link); 2031 if (link_update) { 2032 mutex_lock(&dm->dc_lock); 2033 dc_link_detect(dc_link, DETECT_REASON_RETRAIN); 2034 mutex_unlock(&dm->dc_lock); 2035 } 2036 } 2037 2038 queue_delayed_work(dm->hdmi_frl_status_polling_wq, 2039 &dm->hdmi_frl_status_polling_work, 2040 msecs_to_jiffies(dm->hdmi_frl_status_polling_delay_ms)); 2041 } 2042 2043 static int amdgpu_dm_init(struct amdgpu_device *adev) 2044 { 2045 struct dc_init_data init_data; 2046 struct dc_callback_init init_params; 2047 int r; 2048 2049 adev->dm.ddev = adev_to_drm(adev); 2050 adev->dm.adev = adev; 2051 2052 /* Zero all the fields */ 2053 memset(&init_data, 0, sizeof(init_data)); 2054 memset(&init_params, 0, sizeof(init_params)); 2055 2056 mutex_init(&adev->dm.dpia_aux_lock); 2057 mutex_init(&adev->dm.dc_lock); 2058 mutex_init(&adev->dm.audio_lock); 2059 2060 spin_lock_init(&adev->dm.dmub_lock); 2061 2062 if (amdgpu_dm_irq_init(adev)) { 2063 drm_err(adev_to_drm(adev), "failed to initialize DM IRQ support.\n"); 2064 goto error; 2065 } 2066 2067 /* special handling for early revisions of GC 11.5.4 */ 2068 if (amdgpu_ip_version(adev, GC_HWIP, 0) == IP_VERSION(11, 5, 4)) 2069 init_data.asic_id.chip_family = AMDGPU_FAMILY_GC_11_5_4; 2070 else 2071 init_data.asic_id.chip_family = adev->family; 2072 2073 init_data.asic_id.pci_revision_id = adev->pdev->revision; 2074 init_data.asic_id.hw_internal_rev = adev->external_rev_id; 2075 init_data.asic_id.chip_id = adev->pdev->device; 2076 2077 init_data.asic_id.vram_width = adev->gmc.vram_width; 2078 /* TODO: initialize init_data.asic_id.vram_type here!!!! */ 2079 init_data.asic_id.atombios_base_address = 2080 adev->mode_info.atom_context->bios; 2081 2082 init_data.driver = adev; 2083 2084 /* cgs_device was created in dm_sw_init() */ 2085 init_data.cgs_device = adev->dm.cgs_device; 2086 2087 init_data.dce_environment = DCE_ENV_PRODUCTION_DRV; 2088 2089 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 2090 case IP_VERSION(2, 1, 0): 2091 switch (adev->dm.dmcub_fw_version) { 2092 case 0: /* development */ 2093 case 0x1: /* linux-firmware.git hash 6d9f399 */ 2094 case 0x01000000: /* linux-firmware.git hash 9a0b0f4 */ 2095 init_data.flags.disable_dmcu = false; 2096 break; 2097 default: 2098 init_data.flags.disable_dmcu = true; 2099 } 2100 break; 2101 case IP_VERSION(2, 0, 3): 2102 init_data.flags.disable_dmcu = true; 2103 break; 2104 default: 2105 break; 2106 } 2107 2108 /* APU support S/G display by default except: 2109 * ASICs before Carrizo, 2110 * RAVEN1 (Users reported stability issue) 2111 */ 2112 2113 if (adev->asic_type < CHIP_CARRIZO) { 2114 init_data.flags.gpu_vm_support = false; 2115 } else if (adev->asic_type == CHIP_RAVEN) { 2116 if (adev->apu_flags & AMD_APU_IS_RAVEN) 2117 init_data.flags.gpu_vm_support = false; 2118 else 2119 init_data.flags.gpu_vm_support = (amdgpu_sg_display != 0); 2120 } else { 2121 if (amdgpu_ip_version(adev, DCE_HWIP, 0) == IP_VERSION(2, 0, 3)) 2122 init_data.flags.gpu_vm_support = (amdgpu_sg_display == 1); 2123 else 2124 init_data.flags.gpu_vm_support = 2125 (amdgpu_sg_display != 0) && (adev->flags & AMD_IS_APU); 2126 } 2127 2128 adev->mode_info.gpu_vm_support = init_data.flags.gpu_vm_support; 2129 2130 if (amdgpu_dc_feature_mask & DC_FBC_MASK) 2131 init_data.flags.fbc_support = true; 2132 2133 if (amdgpu_dc_feature_mask & DC_MULTI_MON_PP_MCLK_SWITCH_MASK) 2134 init_data.flags.multi_mon_pp_mclk_switch = true; 2135 2136 if (amdgpu_dc_feature_mask & DC_DISABLE_FRACTIONAL_PWM_MASK) 2137 init_data.flags.disable_fractional_pwm = true; 2138 2139 if (amdgpu_dc_feature_mask & DC_EDP_NO_POWER_SEQUENCING) 2140 init_data.flags.edp_no_power_sequencing = true; 2141 2142 if (amdgpu_dc_feature_mask & DC_DISABLE_LTTPR_DP1_4A) 2143 init_data.flags.allow_lttpr_non_transparent_mode.bits.DP1_4A = true; 2144 if (amdgpu_dc_feature_mask & DC_DISABLE_LTTPR_DP2_0) 2145 init_data.flags.allow_lttpr_non_transparent_mode.bits.DP2_0 = true; 2146 2147 if (amdgpu_dc_feature_mask & DC_FRL_MASK) 2148 init_data.flags.enable_frl = true; 2149 2150 init_data.flags.seamless_boot_edp_requested = false; 2151 2152 if (amdgpu_device_seamless_boot_supported(adev)) { 2153 init_data.flags.seamless_boot_edp_requested = true; 2154 init_data.flags.allow_seamless_boot_optimization = true; 2155 drm_dbg(adev->dm.ddev, "Seamless boot requested\n"); 2156 } 2157 2158 init_data.flags.enable_mipi_converter_optimization = true; 2159 2160 init_data.dcn_reg_offsets = adev->reg_offset[DCE_HWIP][0]; 2161 init_data.nbio_reg_offsets = adev->reg_offset[NBIO_HWIP][0]; 2162 init_data.clk_reg_offsets = adev->reg_offset[CLK_HWIP][0]; 2163 2164 if (amdgpu_dc_debug_mask & DC_DISABLE_IPS) 2165 init_data.flags.disable_ips = DMUB_IPS_DISABLE_ALL; 2166 else if (amdgpu_dc_debug_mask & DC_DISABLE_IPS_DYNAMIC) 2167 init_data.flags.disable_ips = DMUB_IPS_DISABLE_DYNAMIC; 2168 else if (amdgpu_dc_debug_mask & DC_DISABLE_IPS2_DYNAMIC) 2169 init_data.flags.disable_ips = DMUB_IPS_RCG_IN_ACTIVE_IPS2_IN_OFF; 2170 else if (amdgpu_dc_debug_mask & DC_FORCE_IPS_ENABLE) 2171 init_data.flags.disable_ips = DMUB_IPS_ENABLE; 2172 else 2173 init_data.flags.disable_ips = dm_get_default_ips_mode(adev); 2174 2175 init_data.flags.disable_ips_in_vpb = 0; 2176 2177 /* DCN35 and above supports dynamic DTBCLK switch */ 2178 if (amdgpu_ip_version(adev, DCE_HWIP, 0) >= IP_VERSION(3, 5, 0)) 2179 init_data.flags.allow_0_dtb_clk = true; 2180 2181 /* Enable DWB for tested platforms only */ 2182 if (amdgpu_ip_version(adev, DCE_HWIP, 0) >= IP_VERSION(3, 0, 0)) 2183 init_data.num_virtual_links = 1; 2184 2185 /* DCN42 and above dpia switch to unified link training path */ 2186 if (amdgpu_ip_version(adev, DCE_HWIP, 0) >= IP_VERSION(4, 2, 0)) { 2187 init_data.flags.consolidated_dpia_dp_lt = true; 2188 init_data.flags.enable_dpia_pre_training = true; 2189 init_data.flags.unify_link_enc_assignment = true; 2190 init_data.flags.usb4_bw_alloc_support = true; 2191 } 2192 2193 /* DCN201 audio desyncs using DP SS */ 2194 if (adev->apu_flags & AMD_APU_IS_CYAN_SKILLFISH2) 2195 init_data.flags.ignore_dpref_ss = true; 2196 2197 retrieve_dmi_info(&adev->dm); 2198 if (adev->dm.edp0_on_dp1_quirk) 2199 init_data.flags.support_edp0_on_dp1 = true; 2200 2201 if (adev->dm.bb_from_dmub) 2202 init_data.bb_from_dmub = adev->dm.bb_from_dmub; 2203 else 2204 init_data.bb_from_dmub = NULL; 2205 2206 /* Display Core create. */ 2207 adev->dm.dc = dc_create(&init_data); 2208 2209 if (adev->dm.dc) { 2210 drm_info(adev_to_drm(adev), "Display Core v%s initialized on %s\n", DC_VER, 2211 dce_version_to_string(adev->dm.dc->ctx->dce_version)); 2212 } else { 2213 drm_info(adev_to_drm(adev), "Display Core failed to initialize with v%s!\n", DC_VER); 2214 goto error; 2215 } 2216 2217 if (amdgpu_dc_debug_mask & DC_DISABLE_PIPE_SPLIT) { 2218 adev->dm.dc->debug.force_single_disp_pipe_split = false; 2219 adev->dm.dc->debug.pipe_split_policy = MPC_SPLIT_AVOID; 2220 } 2221 2222 if (adev->asic_type != CHIP_CARRIZO && adev->asic_type != CHIP_STONEY) 2223 adev->dm.dc->debug.disable_stutter = amdgpu_pp_feature_mask & PP_STUTTER_MODE ? false : true; 2224 if (dm_should_disable_stutter(adev->pdev)) 2225 adev->dm.dc->debug.disable_stutter = true; 2226 2227 if (amdgpu_dc_debug_mask & DC_DISABLE_STUTTER) 2228 adev->dm.dc->debug.disable_stutter = true; 2229 2230 if (amdgpu_dc_debug_mask & DC_DISABLE_DSC) 2231 adev->dm.dc->debug.disable_dsc = true; 2232 2233 if (amdgpu_dc_debug_mask & DC_DISABLE_CLOCK_GATING) 2234 adev->dm.dc->debug.disable_clock_gate = true; 2235 2236 if (amdgpu_dc_debug_mask & DC_FORCE_SUBVP_MCLK_SWITCH) 2237 adev->dm.dc->debug.force_subvp_mclk_switch = true; 2238 2239 if (amdgpu_dc_debug_mask & DC_DISABLE_SUBVP_FAMS) { 2240 adev->dm.dc->debug.force_disable_subvp = true; 2241 adev->dm.dc->debug.fams2_config.bits.enable = false; 2242 } 2243 2244 if (amdgpu_dc_debug_mask & DC_ENABLE_DML2) { 2245 adev->dm.dc->debug.using_dml2 = true; 2246 adev->dm.dc->debug.using_dml21 = true; 2247 } 2248 2249 if (amdgpu_dc_debug_mask & DC_HDCP_LC_FORCE_FW_ENABLE) 2250 adev->dm.dc->debug.hdcp_lc_force_fw_enable = true; 2251 2252 if (amdgpu_dc_debug_mask & DC_HDCP_LC_ENABLE_SW_FALLBACK) 2253 adev->dm.dc->debug.hdcp_lc_enable_sw_fallback = true; 2254 2255 if (amdgpu_dc_debug_mask & DC_SKIP_DETECTION_LT) 2256 adev->dm.dc->debug.skip_detection_link_training = true; 2257 2258 adev->dm.dc->debug.visual_confirm = amdgpu_dc_visual_confirm; 2259 2260 /* TODO: Remove after DP2 receiver gets proper support of Cable ID feature */ 2261 adev->dm.dc->debug.ignore_cable_id = true; 2262 2263 if (adev->dm.dc->caps.dp_hdmi21_pcon_support) 2264 drm_info(adev_to_drm(adev), "DP-HDMI FRL PCON supported\n"); 2265 2266 r = dm_dmub_hw_init(adev); 2267 if (r) { 2268 drm_err(adev_to_drm(adev), "DMUB interface failed to initialize: status=%d\n", r); 2269 goto error; 2270 } 2271 2272 dc_hardware_init(adev->dm.dc); 2273 2274 adev->dm.hpd_rx_offload_wq = hpd_rx_irq_create_workqueue(adev); 2275 if (!adev->dm.hpd_rx_offload_wq) { 2276 drm_err(adev_to_drm(adev), "failed to create hpd rx offload workqueue.\n"); 2277 goto error; 2278 } 2279 2280 if ((adev->flags & AMD_IS_APU) && (adev->asic_type >= CHIP_CARRIZO)) { 2281 struct dc_phy_addr_space_config pa_config; 2282 2283 mmhub_read_system_context(adev, &pa_config); 2284 2285 // Call the DC init_memory func 2286 dc_setup_system_context(adev->dm.dc, &pa_config); 2287 } 2288 2289 adev->dm.freesync_module = mod_freesync_create(adev->dm.dc); 2290 if (!adev->dm.freesync_module) { 2291 drm_err(adev_to_drm(adev), 2292 "failed to initialize freesync_module.\n"); 2293 } else 2294 drm_dbg_driver(adev_to_drm(adev), "freesync_module init done %p.\n", 2295 adev->dm.freesync_module); 2296 2297 amdgpu_dm_init_color_mod(); 2298 2299 if (adev->dm.dc->caps.max_links > 0) { 2300 adev->dm.vblank_control_workqueue = 2301 create_singlethread_workqueue("dm_vblank_control_workqueue"); 2302 if (!adev->dm.vblank_control_workqueue) 2303 drm_err(adev_to_drm(adev), "failed to initialize vblank_workqueue.\n"); 2304 } 2305 2306 if (adev->dm.dc->caps.ips_support && 2307 adev->dm.dc->config.disable_ips != DMUB_IPS_DISABLE_ALL) 2308 adev->dm.idle_workqueue = idle_create_workqueue(adev); 2309 2310 if (adev->dm.dc->caps.max_links > 0 && adev->family >= AMDGPU_FAMILY_RV) { 2311 adev->dm.hdcp_workqueue = hdcp_create_workqueue(adev, &init_params.cp_psp, adev->dm.dc); 2312 2313 if (!adev->dm.hdcp_workqueue) 2314 drm_err(adev_to_drm(adev), "failed to initialize hdcp_workqueue.\n"); 2315 else 2316 drm_dbg_driver(adev_to_drm(adev), 2317 "hdcp_workqueue init done %p.\n", 2318 adev->dm.hdcp_workqueue); 2319 2320 dc_init_callbacks(adev->dm.dc, &init_params); 2321 } 2322 if (adev->dm.dc->caps.max_links > 0) { 2323 adev->dm.hdmi_frl_status_polling_wq = 2324 create_singlethread_workqueue("hdmi_frl_status_polling_workqueue"); 2325 if (!adev->dm.hdmi_frl_status_polling_wq) 2326 drm_err(adev_to_drm(adev), "failed to initialize hdmi_frl_status_polling_workqueue\n"); 2327 adev->dm.hdmi_frl_status_polling_delay_ms = 200; 2328 INIT_DELAYED_WORK(&adev->dm.hdmi_frl_status_polling_work, hdmi_frl_status_polling_work); 2329 } 2330 if (dc_is_dmub_outbox_supported(adev->dm.dc)) { 2331 init_completion(&adev->dm.dmub_aux_transfer_done); 2332 adev->dm.dmub_notify = kzalloc_obj(struct dmub_notification); 2333 if (!adev->dm.dmub_notify) { 2334 drm_info(adev_to_drm(adev), "fail to allocate adev->dm.dmub_notify"); 2335 goto error; 2336 } 2337 2338 adev->dm.delayed_hpd_wq = create_singlethread_workqueue("amdgpu_dm_hpd_wq"); 2339 if (!adev->dm.delayed_hpd_wq) { 2340 drm_err(adev_to_drm(adev), "failed to create hpd offload workqueue.\n"); 2341 goto error; 2342 } 2343 2344 amdgpu_dm_outbox_init(adev); 2345 if (!register_dmub_notify_callback(adev, DMUB_NOTIFICATION_AUX_REPLY, 2346 dmub_aux_setconfig_callback, false)) { 2347 drm_err(adev_to_drm(adev), "fail to register dmub aux callback"); 2348 goto error; 2349 } 2350 2351 for (size_t i = 0; i < ARRAY_SIZE(adev->dm.fused_io); i++) 2352 init_completion(&adev->dm.fused_io[i].replied); 2353 2354 if (!register_dmub_notify_callback(adev, DMUB_NOTIFICATION_FUSED_IO, 2355 dmub_aux_fused_io_callback, false)) { 2356 drm_err(adev_to_drm(adev), "fail to register dmub fused io callback"); 2357 goto error; 2358 } 2359 /* Enable outbox notification only after IRQ handlers are registered and DMUB is alive. 2360 * It is expected that DMUB will resend any pending notifications at this point. Note 2361 * that hpd and hpd_irq handler registration are deferred to register_hpd_handlers() to 2362 * align legacy interface initialization sequence. Connection status will be proactivly 2363 * detected once in the amdgpu_dm_initialize_drm_device. 2364 */ 2365 dc_enable_dmub_outbox(adev->dm.dc); 2366 2367 /* DPIA trace goes to dmesg logs only if outbox is enabled */ 2368 if (amdgpu_dc_debug_mask & DC_ENABLE_DPIA_TRACE) 2369 dc_dmub_srv_enable_dpia_trace(adev->dm.dc); 2370 } 2371 2372 if (amdgpu_dm_initialize_drm_device(adev)) { 2373 drm_err(adev_to_drm(adev), 2374 "failed to initialize sw for display support.\n"); 2375 goto error; 2376 } 2377 2378 if (amdgpu_dm_init_power_module(&adev->dm)) 2379 goto error; 2380 2381 /* create fake encoders for MST */ 2382 dm_dp_create_fake_mst_encoders(adev); 2383 2384 /* TODO: Add_display_info? */ 2385 2386 /* TODO use dynamic cursor width */ 2387 adev_to_drm(adev)->mode_config.cursor_width = adev->dm.dc->caps.max_cursor_size; 2388 adev_to_drm(adev)->mode_config.cursor_height = adev->dm.dc->caps.max_cursor_size; 2389 2390 if (drm_vblank_init(adev_to_drm(adev), adev->dm.display_indexes_num)) { 2391 drm_err(adev_to_drm(adev), 2392 "failed to initialize vblank for display support.\n"); 2393 goto error; 2394 } 2395 2396 #if defined(CONFIG_DRM_AMD_SECURE_DISPLAY) 2397 amdgpu_dm_crtc_secure_display_create_contexts(adev); 2398 if (!adev->dm.secure_display_ctx.crtc_ctx) 2399 drm_err(adev_to_drm(adev), "failed to initialize secure display contexts.\n"); 2400 2401 if (amdgpu_ip_version(adev, DCE_HWIP, 0) >= IP_VERSION(4, 0, 1)) 2402 adev->dm.secure_display_ctx.support_mul_roi = true; 2403 2404 #endif 2405 2406 drm_dbg_driver(adev_to_drm(adev), "KMS initialized.\n"); 2407 2408 return 0; 2409 error: 2410 amdgpu_dm_fini(adev); 2411 2412 return -EINVAL; 2413 } 2414 2415 static int amdgpu_dm_early_fini(struct amdgpu_ip_block *ip_block) 2416 { 2417 struct amdgpu_device *adev = ip_block->adev; 2418 2419 amdgpu_dm_audio_fini(adev); 2420 2421 return 0; 2422 } 2423 2424 static void amdgpu_dm_fini(struct amdgpu_device *adev) 2425 { 2426 int i; 2427 2428 if (adev->dm.vblank_control_workqueue) { 2429 destroy_workqueue(adev->dm.vblank_control_workqueue); 2430 adev->dm.vblank_control_workqueue = NULL; 2431 } 2432 2433 if (adev->dm.idle_workqueue) { 2434 if (adev->dm.idle_workqueue->running) { 2435 adev->dm.idle_workqueue->enable = false; 2436 flush_work(&adev->dm.idle_workqueue->work); 2437 } 2438 2439 kfree(adev->dm.idle_workqueue); 2440 adev->dm.idle_workqueue = NULL; 2441 } 2442 2443 /* 2444 * Disable ISM before dc_destroy() invalidates dm->dc. 2445 * 2446 * Quiesce workers first without dc_lock (they take dc_lock 2447 * themselves, so syncing under it would deadlock), then drive the 2448 * FSM back to FULL_POWER_RUNNING under dc_lock. 2449 */ 2450 amdgpu_dm_ism_disable(&adev->dm); 2451 scoped_guard(mutex, &adev->dm.dc_lock) 2452 amdgpu_dm_ism_force_full_power(&adev->dm); 2453 2454 amdgpu_dm_destroy_drm_device(&adev->dm); 2455 2456 #if defined(CONFIG_DRM_AMD_SECURE_DISPLAY) 2457 if (adev->dm.secure_display_ctx.crtc_ctx) { 2458 for (i = 0; i < adev->mode_info.num_crtc; i++) { 2459 if (adev->dm.secure_display_ctx.crtc_ctx[i].crtc) { 2460 flush_work(&adev->dm.secure_display_ctx.crtc_ctx[i].notify_ta_work); 2461 flush_work(&adev->dm.secure_display_ctx.crtc_ctx[i].forward_roi_work); 2462 } 2463 } 2464 kfree(adev->dm.secure_display_ctx.crtc_ctx); 2465 adev->dm.secure_display_ctx.crtc_ctx = NULL; 2466 } 2467 #endif 2468 if (adev->dm.hdcp_workqueue) { 2469 hdcp_destroy(&adev->dev->kobj, adev->dm.hdcp_workqueue); 2470 adev->dm.hdcp_workqueue = NULL; 2471 } 2472 2473 if (adev->dm.dc) { 2474 dc_deinit_callbacks(adev->dm.dc); 2475 dc_dmub_srv_destroy(&adev->dm.dc->ctx->dmub_srv); 2476 if (dc_enable_dmub_notifications(adev->dm.dc)) { 2477 kfree(adev->dm.dmub_notify); 2478 adev->dm.dmub_notify = NULL; 2479 destroy_workqueue(adev->dm.delayed_hpd_wq); 2480 adev->dm.delayed_hpd_wq = NULL; 2481 } 2482 } 2483 2484 if (adev->dm.dmub_bo) 2485 amdgpu_bo_free_kernel(&adev->dm.dmub_bo, 2486 &adev->dm.dmub_bo_gpu_addr, 2487 &adev->dm.dmub_bo_cpu_addr); 2488 2489 if (adev->dm.boot_time_crc_info.bo_ptr) 2490 amdgpu_bo_free_kernel(&adev->dm.boot_time_crc_info.bo_ptr, 2491 &adev->dm.boot_time_crc_info.gpu_addr, 2492 &adev->dm.boot_time_crc_info.cpu_addr); 2493 2494 if (adev->dm.hpd_rx_offload_wq && adev->dm.dc) { 2495 for (i = 0; i < adev->dm.dc->caps.max_links; i++) { 2496 if (adev->dm.hpd_rx_offload_wq[i].wq) { 2497 destroy_workqueue(adev->dm.hpd_rx_offload_wq[i].wq); 2498 adev->dm.hpd_rx_offload_wq[i].wq = NULL; 2499 } 2500 } 2501 2502 kfree(adev->dm.hpd_rx_offload_wq); 2503 adev->dm.hpd_rx_offload_wq = NULL; 2504 } 2505 2506 /* DC Destroy TODO: Replace destroy DAL */ 2507 if (adev->dm.dc) 2508 dc_destroy(&adev->dm.dc); 2509 /* 2510 * TODO: pageflip, vlank interrupt 2511 * 2512 * amdgpu_dm_irq_fini(adev); 2513 */ 2514 2515 if (adev->dm.cgs_device) { 2516 amdgpu_cgs_destroy_device(adev->dm.cgs_device); 2517 adev->dm.cgs_device = NULL; 2518 } 2519 if (adev->dm.freesync_module) { 2520 mod_freesync_destroy(adev->dm.freesync_module); 2521 adev->dm.freesync_module = NULL; 2522 } 2523 2524 if (adev->dm.power_module) { 2525 mod_power_destroy(adev->dm.power_module); 2526 adev->dm.power_module = NULL; 2527 } 2528 mutex_destroy(&adev->dm.audio_lock); 2529 mutex_destroy(&adev->dm.dc_lock); 2530 mutex_destroy(&adev->dm.dpia_aux_lock); 2531 } 2532 2533 static int load_dmcu_fw(struct amdgpu_device *adev) 2534 { 2535 const char *fw_name_dmcu = NULL; 2536 int r; 2537 const struct dmcu_firmware_header_v1_0 *hdr; 2538 2539 switch (adev->asic_type) { 2540 #if defined(CONFIG_DRM_AMD_DC_SI) 2541 case CHIP_TAHITI: 2542 case CHIP_PITCAIRN: 2543 case CHIP_VERDE: 2544 case CHIP_OLAND: 2545 #endif 2546 case CHIP_BONAIRE: 2547 case CHIP_HAWAII: 2548 case CHIP_KAVERI: 2549 case CHIP_KABINI: 2550 case CHIP_MULLINS: 2551 case CHIP_TONGA: 2552 case CHIP_FIJI: 2553 case CHIP_CARRIZO: 2554 case CHIP_STONEY: 2555 case CHIP_POLARIS11: 2556 case CHIP_POLARIS10: 2557 case CHIP_POLARIS12: 2558 case CHIP_VEGAM: 2559 case CHIP_VEGA10: 2560 case CHIP_VEGA12: 2561 case CHIP_VEGA20: 2562 return 0; 2563 case CHIP_NAVI12: 2564 fw_name_dmcu = FIRMWARE_NAVI12_DMCU; 2565 break; 2566 case CHIP_RAVEN: 2567 if (ASICREV_IS_PICASSO(adev->external_rev_id)) 2568 fw_name_dmcu = FIRMWARE_RAVEN_DMCU; 2569 else if (ASICREV_IS_RAVEN2(adev->external_rev_id)) 2570 fw_name_dmcu = FIRMWARE_RAVEN_DMCU; 2571 else 2572 return 0; 2573 break; 2574 default: 2575 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 2576 case IP_VERSION(2, 0, 2): 2577 case IP_VERSION(2, 0, 3): 2578 case IP_VERSION(2, 0, 0): 2579 case IP_VERSION(2, 1, 0): 2580 case IP_VERSION(3, 0, 0): 2581 case IP_VERSION(3, 0, 2): 2582 case IP_VERSION(3, 0, 3): 2583 case IP_VERSION(3, 0, 1): 2584 case IP_VERSION(3, 1, 2): 2585 case IP_VERSION(3, 1, 3): 2586 case IP_VERSION(3, 1, 4): 2587 case IP_VERSION(3, 1, 5): 2588 case IP_VERSION(3, 1, 6): 2589 case IP_VERSION(3, 2, 0): 2590 case IP_VERSION(3, 2, 1): 2591 case IP_VERSION(3, 5, 0): 2592 case IP_VERSION(3, 5, 1): 2593 case IP_VERSION(3, 6, 0): 2594 case IP_VERSION(4, 0, 1): 2595 case IP_VERSION(4, 2, 0): 2596 case IP_VERSION(4, 2, 1): 2597 return 0; 2598 default: 2599 break; 2600 } 2601 drm_err(adev_to_drm(adev), "Unsupported ASIC type: 0x%X\n", adev->asic_type); 2602 return -EINVAL; 2603 } 2604 2605 if (adev->firmware.load_type != AMDGPU_FW_LOAD_PSP) { 2606 drm_dbg_kms(adev_to_drm(adev), "dm: DMCU firmware not supported on direct or SMU loading\n"); 2607 return 0; 2608 } 2609 2610 r = amdgpu_ucode_request(adev, &adev->dm.fw_dmcu, AMDGPU_UCODE_REQUIRED, 2611 "%s", fw_name_dmcu); 2612 if (r == -ENODEV) { 2613 /* DMCU firmware is not necessary, so don't raise a fuss if it's missing */ 2614 drm_dbg_kms(adev_to_drm(adev), "dm: DMCU firmware not found\n"); 2615 adev->dm.fw_dmcu = NULL; 2616 return 0; 2617 } 2618 if (r) { 2619 drm_err(adev_to_drm(adev), "amdgpu_dm: Can't validate firmware \"%s\"\n", 2620 fw_name_dmcu); 2621 amdgpu_ucode_release(&adev->dm.fw_dmcu); 2622 return r; 2623 } 2624 2625 hdr = (const struct dmcu_firmware_header_v1_0 *)adev->dm.fw_dmcu->data; 2626 adev->firmware.ucode[AMDGPU_UCODE_ID_DMCU_ERAM].ucode_id = AMDGPU_UCODE_ID_DMCU_ERAM; 2627 adev->firmware.ucode[AMDGPU_UCODE_ID_DMCU_ERAM].fw = adev->dm.fw_dmcu; 2628 adev->firmware.fw_size += 2629 ALIGN(le32_to_cpu(hdr->header.ucode_size_bytes) - le32_to_cpu(hdr->intv_size_bytes), PAGE_SIZE); 2630 2631 adev->firmware.ucode[AMDGPU_UCODE_ID_DMCU_INTV].ucode_id = AMDGPU_UCODE_ID_DMCU_INTV; 2632 adev->firmware.ucode[AMDGPU_UCODE_ID_DMCU_INTV].fw = adev->dm.fw_dmcu; 2633 adev->firmware.fw_size += 2634 ALIGN(le32_to_cpu(hdr->intv_size_bytes), PAGE_SIZE); 2635 2636 adev->dm.dmcu_fw_version = le32_to_cpu(hdr->header.ucode_version); 2637 2638 drm_dbg_kms(adev_to_drm(adev), "PSP loading DMCU firmware\n"); 2639 2640 return 0; 2641 } 2642 2643 static uint32_t amdgpu_dm_dmub_reg_read(void *ctx, uint32_t address) 2644 { 2645 struct amdgpu_device *adev = ctx; 2646 2647 return dm_read_reg(adev->dm.dc->ctx, address); 2648 } 2649 2650 static void amdgpu_dm_dmub_reg_write(void *ctx, uint32_t address, 2651 uint32_t value) 2652 { 2653 struct amdgpu_device *adev = ctx; 2654 2655 return dm_write_reg(adev->dm.dc->ctx, address, value); 2656 } 2657 2658 static int dm_dmub_sw_init(struct amdgpu_device *adev) 2659 { 2660 struct dmub_srv_create_params create_params; 2661 struct dmub_srv_fw_meta_info_params fw_meta_info_params; 2662 struct dmub_srv_region_params region_params; 2663 struct dmub_srv_region_info region_info; 2664 struct dmub_srv_memory_params memory_params; 2665 struct dmub_fw_meta_info fw_info; 2666 struct dmub_srv_fb_info *fb_info; 2667 struct dmub_srv *dmub_srv; 2668 const struct dmcub_firmware_header_v1_0 *hdr; 2669 enum dmub_asic dmub_asic; 2670 enum dmub_status status; 2671 static enum dmub_window_memory_type window_memory_type[DMUB_WINDOW_TOTAL] = { 2672 DMUB_WINDOW_MEMORY_TYPE_FB, //DMUB_WINDOW_0_INST_CONST 2673 DMUB_WINDOW_MEMORY_TYPE_FB, //DMUB_WINDOW_1_STACK 2674 DMUB_WINDOW_MEMORY_TYPE_FB, //DMUB_WINDOW_2_BSS_DATA 2675 DMUB_WINDOW_MEMORY_TYPE_FB, //DMUB_WINDOW_3_VBIOS 2676 DMUB_WINDOW_MEMORY_TYPE_FB, //DMUB_WINDOW_4_MAILBOX 2677 DMUB_WINDOW_MEMORY_TYPE_FB, //DMUB_WINDOW_5_TRACEBUFF 2678 DMUB_WINDOW_MEMORY_TYPE_FB, //DMUB_WINDOW_6_FW_STATE 2679 DMUB_WINDOW_MEMORY_TYPE_FB, //DMUB_WINDOW_7_SCRATCH_MEM 2680 DMUB_WINDOW_MEMORY_TYPE_FB, //DMUB_WINDOW_IB_MEM 2681 DMUB_WINDOW_MEMORY_TYPE_FB, //DMUB_WINDOW_SHARED_STATE 2682 DMUB_WINDOW_MEMORY_TYPE_FB, //DMUB_WINDOW_LSDMA_BUFFER 2683 DMUB_WINDOW_MEMORY_TYPE_FB, //DMUB_WINDOW_CURSOR_OFFLOAD 2684 }; 2685 int r; 2686 2687 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 2688 case IP_VERSION(2, 1, 0): 2689 dmub_asic = DMUB_ASIC_DCN21; 2690 break; 2691 case IP_VERSION(3, 0, 0): 2692 dmub_asic = DMUB_ASIC_DCN30; 2693 break; 2694 case IP_VERSION(3, 0, 1): 2695 dmub_asic = DMUB_ASIC_DCN301; 2696 break; 2697 case IP_VERSION(3, 0, 2): 2698 dmub_asic = DMUB_ASIC_DCN302; 2699 break; 2700 case IP_VERSION(3, 0, 3): 2701 dmub_asic = DMUB_ASIC_DCN303; 2702 break; 2703 case IP_VERSION(3, 1, 2): 2704 case IP_VERSION(3, 1, 3): 2705 dmub_asic = (adev->external_rev_id == YELLOW_CARP_B0) ? DMUB_ASIC_DCN31B : DMUB_ASIC_DCN31; 2706 break; 2707 case IP_VERSION(3, 1, 4): 2708 dmub_asic = DMUB_ASIC_DCN314; 2709 break; 2710 case IP_VERSION(3, 1, 5): 2711 dmub_asic = DMUB_ASIC_DCN315; 2712 break; 2713 case IP_VERSION(3, 1, 6): 2714 dmub_asic = DMUB_ASIC_DCN316; 2715 break; 2716 case IP_VERSION(3, 2, 0): 2717 dmub_asic = DMUB_ASIC_DCN32; 2718 break; 2719 case IP_VERSION(3, 2, 1): 2720 dmub_asic = DMUB_ASIC_DCN321; 2721 break; 2722 case IP_VERSION(3, 5, 0): 2723 case IP_VERSION(3, 5, 1): 2724 dmub_asic = DMUB_ASIC_DCN35; 2725 break; 2726 case IP_VERSION(3, 6, 0): 2727 dmub_asic = DMUB_ASIC_DCN36; 2728 break; 2729 case IP_VERSION(4, 0, 1): 2730 dmub_asic = DMUB_ASIC_DCN401; 2731 break; 2732 case IP_VERSION(4, 2, 0): 2733 dmub_asic = DMUB_ASIC_DCN42; 2734 break; 2735 case IP_VERSION(4, 2, 1): 2736 dmub_asic = DMUB_ASIC_DCN42B; 2737 break; 2738 default: 2739 /* ASIC doesn't support DMUB. */ 2740 return 0; 2741 } 2742 2743 hdr = (const struct dmcub_firmware_header_v1_0 *)adev->dm.dmub_fw->data; 2744 adev->dm.dmcub_fw_version = le32_to_cpu(hdr->header.ucode_version); 2745 2746 if (adev->firmware.load_type == AMDGPU_FW_LOAD_PSP) { 2747 adev->firmware.ucode[AMDGPU_UCODE_ID_DMCUB].ucode_id = 2748 AMDGPU_UCODE_ID_DMCUB; 2749 adev->firmware.ucode[AMDGPU_UCODE_ID_DMCUB].fw = 2750 adev->dm.dmub_fw; 2751 adev->firmware.fw_size += 2752 ALIGN(le32_to_cpu(hdr->inst_const_bytes), PAGE_SIZE); 2753 2754 drm_info(adev_to_drm(adev), "Loading DMUB firmware via PSP: version=0x%08X\n", 2755 adev->dm.dmcub_fw_version); 2756 } 2757 2758 2759 adev->dm.dmub_srv = kzalloc_obj(*adev->dm.dmub_srv); 2760 dmub_srv = adev->dm.dmub_srv; 2761 2762 if (!dmub_srv) { 2763 drm_err(adev_to_drm(adev), "Failed to allocate DMUB service!\n"); 2764 return -ENOMEM; 2765 } 2766 2767 memset(&create_params, 0, sizeof(create_params)); 2768 create_params.user_ctx = adev; 2769 create_params.funcs.reg_read = amdgpu_dm_dmub_reg_read; 2770 create_params.funcs.reg_write = amdgpu_dm_dmub_reg_write; 2771 create_params.asic = dmub_asic; 2772 2773 /* Create the DMUB service. */ 2774 status = dmub_srv_create(dmub_srv, &create_params); 2775 if (status != DMUB_STATUS_OK) { 2776 drm_err(adev_to_drm(adev), "Error creating DMUB service: %d\n", status); 2777 return -EINVAL; 2778 } 2779 2780 /* Extract the FW meta info. */ 2781 memset(&fw_meta_info_params, 0, sizeof(fw_meta_info_params)); 2782 2783 fw_meta_info_params.inst_const_size = le32_to_cpu(hdr->inst_const_bytes) - 2784 PSP_HEADER_BYTES_256; 2785 fw_meta_info_params.bss_data_size = le32_to_cpu(hdr->bss_data_bytes); 2786 fw_meta_info_params.fw_inst_const = adev->dm.dmub_fw->data + 2787 le32_to_cpu(hdr->header.ucode_array_offset_bytes) + 2788 PSP_HEADER_BYTES_256; 2789 fw_meta_info_params.fw_bss_data = fw_meta_info_params.bss_data_size ? adev->dm.dmub_fw->data + 2790 le32_to_cpu(hdr->header.ucode_array_offset_bytes) + 2791 le32_to_cpu(hdr->inst_const_bytes) : NULL; 2792 fw_meta_info_params.custom_psp_footer_size = 0; 2793 2794 status = dmub_srv_get_fw_meta_info_from_raw_fw(&fw_meta_info_params, &fw_info); 2795 if (status != DMUB_STATUS_OK) { 2796 /* Skip returning early, just log the error. */ 2797 drm_err(adev_to_drm(adev), "Error getting DMUB FW meta info: %d\n", status); 2798 // return -EINVAL; 2799 } 2800 2801 /* Calculate the size of all the regions for the DMUB service. */ 2802 memset(®ion_params, 0, sizeof(region_params)); 2803 2804 region_params.inst_const_size = fw_meta_info_params.inst_const_size; 2805 region_params.bss_data_size = fw_meta_info_params.bss_data_size; 2806 region_params.vbios_size = adev->bios_size; 2807 region_params.fw_bss_data = fw_meta_info_params.fw_bss_data; 2808 region_params.fw_inst_const = fw_meta_info_params.fw_inst_const; 2809 region_params.window_memory_type = window_memory_type; 2810 region_params.fw_info = (status == DMUB_STATUS_OK) ? &fw_info : NULL; 2811 2812 status = dmub_srv_calc_region_info(dmub_srv, ®ion_params, 2813 ®ion_info); 2814 2815 if (status != DMUB_STATUS_OK) { 2816 drm_err(adev_to_drm(adev), "Error calculating DMUB region info: %d\n", status); 2817 return -EINVAL; 2818 } 2819 2820 /* 2821 * Allocate a framebuffer based on the total size of all the regions. 2822 * TODO: Move this into GART. 2823 */ 2824 r = amdgpu_bo_create_kernel(adev, region_info.fb_size, PAGE_SIZE, 2825 AMDGPU_GEM_DOMAIN_VRAM | 2826 AMDGPU_GEM_DOMAIN_GTT, 2827 &adev->dm.dmub_bo, 2828 &adev->dm.dmub_bo_gpu_addr, 2829 &adev->dm.dmub_bo_cpu_addr); 2830 if (r) 2831 return r; 2832 2833 /* Rebase the regions on the framebuffer address. */ 2834 memset(&memory_params, 0, sizeof(memory_params)); 2835 memory_params.cpu_fb_addr = adev->dm.dmub_bo_cpu_addr; 2836 memory_params.gpu_fb_addr = adev->dm.dmub_bo_gpu_addr; 2837 memory_params.region_info = ®ion_info; 2838 memory_params.window_memory_type = window_memory_type; 2839 2840 adev->dm.dmub_fb_info = kzalloc_obj(*adev->dm.dmub_fb_info); 2841 fb_info = adev->dm.dmub_fb_info; 2842 2843 if (!fb_info) { 2844 drm_err(adev_to_drm(adev), 2845 "Failed to allocate framebuffer info for DMUB service!\n"); 2846 return -ENOMEM; 2847 } 2848 2849 status = dmub_srv_calc_mem_info(dmub_srv, &memory_params, fb_info); 2850 if (status != DMUB_STATUS_OK) { 2851 drm_err(adev_to_drm(adev), "Error calculating DMUB FB info: %d\n", status); 2852 return -EINVAL; 2853 } 2854 2855 adev->dm.bb_from_dmub = dm_dmub_get_vbios_bounding_box(adev); 2856 adev->dm.fw_inst_size = fw_meta_info_params.inst_const_size; 2857 2858 return 0; 2859 } 2860 2861 static int dm_sw_init(struct amdgpu_ip_block *ip_block) 2862 { 2863 struct amdgpu_device *adev = ip_block->adev; 2864 int r; 2865 2866 adev->dm.cgs_device = amdgpu_cgs_create_device(adev); 2867 2868 if (!adev->dm.cgs_device) { 2869 drm_err(adev_to_drm(adev), "failed to create cgs device.\n"); 2870 return -EINVAL; 2871 } 2872 2873 /* Moved from dm init since we need to use allocations for storing bounding box data */ 2874 INIT_LIST_HEAD(&adev->dm.da_list); 2875 2876 r = dm_dmub_sw_init(adev); 2877 if (r) 2878 return r; 2879 2880 return load_dmcu_fw(adev); 2881 } 2882 2883 static int dm_sw_fini(struct amdgpu_ip_block *ip_block) 2884 { 2885 struct amdgpu_device *adev = ip_block->adev; 2886 struct dal_allocation *da; 2887 2888 list_for_each_entry(da, &adev->dm.da_list, list) { 2889 if (adev->dm.bb_from_dmub == (void *) da->cpu_ptr) { 2890 amdgpu_bo_free_kernel(&da->bo, &da->gpu_addr, &da->cpu_ptr); 2891 list_del(&da->list); 2892 kfree(da); 2893 adev->dm.bb_from_dmub = NULL; 2894 break; 2895 } 2896 } 2897 2898 2899 kfree(adev->dm.dmub_fb_info); 2900 adev->dm.dmub_fb_info = NULL; 2901 2902 if (adev->dm.dmub_srv) { 2903 dmub_srv_destroy(adev->dm.dmub_srv); 2904 kfree(adev->dm.dmub_srv); 2905 adev->dm.dmub_srv = NULL; 2906 } 2907 2908 amdgpu_ucode_release(&adev->dm.dmub_fw); 2909 amdgpu_ucode_release(&adev->dm.fw_dmcu); 2910 2911 return 0; 2912 } 2913 2914 static int detect_mst_link_for_all_connectors(struct drm_device *dev) 2915 { 2916 struct amdgpu_dm_connector *aconnector; 2917 struct drm_connector *connector; 2918 struct drm_connector_list_iter iter; 2919 int ret = 0; 2920 2921 drm_connector_list_iter_begin(dev, &iter); 2922 drm_for_each_connector_iter(connector, &iter) { 2923 2924 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 2925 continue; 2926 2927 aconnector = to_amdgpu_dm_connector(connector); 2928 if (aconnector->dc_link->type == dc_connection_mst_branch && 2929 aconnector->mst_mgr.aux) { 2930 drm_dbg_kms(dev, "DM_MST: starting TM on aconnector: %p [id: %d]\n", 2931 aconnector, 2932 aconnector->base.base.id); 2933 2934 ret = drm_dp_mst_topology_mgr_set_mst(&aconnector->mst_mgr, true); 2935 if (ret < 0) { 2936 drm_err(dev, "DM_MST: Failed to start MST\n"); 2937 aconnector->dc_link->type = 2938 dc_connection_single; 2939 ret = dm_helpers_dp_mst_stop_top_mgr(aconnector->dc_link->ctx, 2940 aconnector->dc_link); 2941 break; 2942 } 2943 } 2944 } 2945 drm_connector_list_iter_end(&iter); 2946 2947 return ret; 2948 } 2949 2950 static void amdgpu_dm_boot_time_crc_init(struct amdgpu_device *adev) 2951 { 2952 struct dm_boot_time_crc_info *bootcrc_info = NULL; 2953 struct dmub_srv *dmub = NULL; 2954 union dmub_fw_boot_options option = {0}; 2955 int ret = 0; 2956 const uint32_t fb_size = 3 * 1024 * 1024; /* 3MB for DCC pattern */ 2957 2958 if (!adev || !adev->dm.dc || !adev->dm.dc->ctx || 2959 !adev->dm.dc->ctx->dmub_srv) { 2960 return; 2961 } 2962 2963 dmub = adev->dm.dc->ctx->dmub_srv->dmub; 2964 bootcrc_info = &adev->dm.boot_time_crc_info; 2965 2966 if (!dmub || !dmub->hw_funcs.get_fw_boot_option) { 2967 drm_dbg(adev_to_drm(adev), "failed to init boot time crc buffer\n"); 2968 return; 2969 } 2970 2971 option = dmub->hw_funcs.get_fw_boot_option(dmub); 2972 2973 /* Return if boot time CRC is not enabled */ 2974 if (option.bits.bootcrc_en_at_S0i3 == 0) 2975 return; 2976 2977 /* Create a buffer for boot time CRC */ 2978 ret = amdgpu_bo_create_kernel(adev, fb_size, PAGE_SIZE, 2979 AMDGPU_GEM_DOMAIN_VRAM | AMDGPU_GEM_DOMAIN_GTT, 2980 &bootcrc_info->bo_ptr, 2981 &bootcrc_info->gpu_addr, 2982 &bootcrc_info->cpu_addr); 2983 2984 if (ret) { 2985 drm_dbg(adev_to_drm(adev), "failed to create boot time crc buffer\n"); 2986 } else { 2987 bootcrc_info->size = fb_size; 2988 2989 drm_dbg(adev_to_drm(adev), "boot time crc buffer created addr 0x%llx, size %u\n", 2990 bootcrc_info->gpu_addr, bootcrc_info->size); 2991 2992 /* Send the buffer info to DMUB */ 2993 dc_dmub_srv_boot_time_crc_init(adev->dm.dc, 2994 bootcrc_info->gpu_addr, bootcrc_info->size); 2995 } 2996 } 2997 2998 static int dm_late_init(struct amdgpu_ip_block *ip_block) 2999 { 3000 struct amdgpu_device *adev = ip_block->adev; 3001 3002 struct dmcu_iram_parameters params; 3003 unsigned int linear_lut[16]; 3004 int i; 3005 struct dmcu *dmcu = NULL; 3006 3007 dmcu = adev->dm.dc->res_pool->dmcu; 3008 3009 /* Init the boot time CRC (skip in resume) */ 3010 if ((adev->in_suspend == 0) && 3011 (amdgpu_ip_version(adev, DCE_HWIP, 0) == IP_VERSION(3, 6, 0))) 3012 amdgpu_dm_boot_time_crc_init(adev); 3013 3014 for (i = 0; i < 16; i++) 3015 linear_lut[i] = 0xFFFF * i / 15; 3016 3017 params.set = 0; 3018 params.backlight_ramping_override = false; 3019 params.backlight_ramping_start = 0xCCCC; 3020 params.backlight_ramping_reduction = 0xCCCCCCCC; 3021 params.backlight_lut_array_size = 16; 3022 params.backlight_lut_array = linear_lut; 3023 3024 /* Min backlight level after ABM reduction, Don't allow below 1% 3025 * 0xFFFF x 0.01 = 0x28F 3026 */ 3027 params.min_abm_backlight = 0x28F; 3028 /* In the case where abm is implemented on dmcub, 3029 * dmcu object will be null. 3030 * ABM 2.4 and up are implemented on dmcub. 3031 */ 3032 if (dmcu) { 3033 if (!dmcu_load_iram(dmcu, params)) 3034 return -EINVAL; 3035 } else if (adev->dm.dc->ctx->dmub_srv) { 3036 struct dc_link *edp_links[MAX_NUM_EDP]; 3037 int edp_num; 3038 3039 dc_get_edp_links(adev->dm.dc, edp_links, &edp_num); 3040 for (i = 0; i < edp_num; i++) { 3041 if (!dmub_init_abm_config(adev->dm.dc->res_pool, params, i)) 3042 return -EINVAL; 3043 } 3044 } 3045 3046 return detect_mst_link_for_all_connectors(adev_to_drm(adev)); 3047 } 3048 3049 static void resume_mst_branch_status(struct drm_dp_mst_topology_mgr *mgr) 3050 { 3051 u8 buf[UUID_SIZE]; 3052 guid_t guid; 3053 int ret; 3054 3055 mutex_lock(&mgr->lock); 3056 if (!mgr->mst_primary) 3057 goto out_fail; 3058 3059 if (drm_dp_read_dpcd_caps(mgr->aux, mgr->dpcd) < 0) { 3060 drm_dbg_kms(mgr->dev, "dpcd read failed - undocked during suspend?\n"); 3061 goto out_fail; 3062 } 3063 3064 ret = drm_dp_dpcd_writeb(mgr->aux, DP_MSTM_CTRL, 3065 DP_MST_EN | 3066 DP_UP_REQ_EN | 3067 DP_UPSTREAM_IS_SRC); 3068 if (ret < 0) { 3069 drm_dbg_kms(mgr->dev, "mst write failed - undocked during suspend?\n"); 3070 goto out_fail; 3071 } 3072 3073 /* Some hubs forget their guids after they resume */ 3074 ret = drm_dp_dpcd_read(mgr->aux, DP_GUID, buf, sizeof(buf)); 3075 if (ret != sizeof(buf)) { 3076 drm_dbg_kms(mgr->dev, "dpcd read failed - undocked during suspend?\n"); 3077 goto out_fail; 3078 } 3079 3080 import_guid(&guid, buf); 3081 3082 if (guid_is_null(&guid)) { 3083 guid_gen(&guid); 3084 export_guid(buf, &guid); 3085 3086 ret = drm_dp_dpcd_write(mgr->aux, DP_GUID, buf, sizeof(buf)); 3087 3088 if (ret != sizeof(buf)) { 3089 drm_dbg_kms(mgr->dev, "check mstb guid failed - undocked during suspend?\n"); 3090 goto out_fail; 3091 } 3092 } 3093 3094 guid_copy(&mgr->mst_primary->guid, &guid); 3095 3096 out_fail: 3097 mutex_unlock(&mgr->lock); 3098 } 3099 3100 void hdmi_cec_unset_edid(struct amdgpu_dm_connector *aconnector) 3101 { 3102 struct cec_notifier *n = aconnector->notifier; 3103 3104 if (!n) 3105 return; 3106 3107 cec_notifier_phys_addr_invalidate(n); 3108 } 3109 3110 void hdmi_cec_set_edid(struct amdgpu_dm_connector *aconnector) 3111 { 3112 struct drm_connector *connector = &aconnector->base; 3113 struct cec_notifier *n = aconnector->notifier; 3114 3115 if (!n) 3116 return; 3117 3118 cec_notifier_set_phys_addr(n, 3119 connector->display_info.source_physical_address); 3120 } 3121 3122 static void s3_handle_hdmi_cec(struct drm_device *ddev, bool suspend) 3123 { 3124 struct amdgpu_dm_connector *aconnector; 3125 struct drm_connector *connector; 3126 struct drm_connector_list_iter conn_iter; 3127 3128 drm_connector_list_iter_begin(ddev, &conn_iter); 3129 drm_for_each_connector_iter(connector, &conn_iter) { 3130 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 3131 continue; 3132 3133 aconnector = to_amdgpu_dm_connector(connector); 3134 if (suspend) 3135 hdmi_cec_unset_edid(aconnector); 3136 else 3137 hdmi_cec_set_edid(aconnector); 3138 } 3139 drm_connector_list_iter_end(&conn_iter); 3140 } 3141 3142 static void s3_handle_mst(struct drm_device *dev, bool suspend) 3143 { 3144 struct amdgpu_dm_connector *aconnector; 3145 struct drm_connector *connector; 3146 struct drm_connector_list_iter iter; 3147 struct drm_dp_mst_topology_mgr *mgr; 3148 3149 drm_connector_list_iter_begin(dev, &iter); 3150 drm_for_each_connector_iter(connector, &iter) { 3151 3152 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 3153 continue; 3154 3155 aconnector = to_amdgpu_dm_connector(connector); 3156 if (aconnector->dc_link->type != dc_connection_mst_branch || 3157 aconnector->mst_root) 3158 continue; 3159 3160 mgr = &aconnector->mst_mgr; 3161 3162 if (suspend) { 3163 drm_dp_mst_topology_mgr_suspend(mgr); 3164 } else { 3165 /* if extended timeout is supported in hardware, 3166 * default to LTTPR timeout (3.2ms) first as a W/A for DP link layer 3167 * CTS 4.2.1.1 regression introduced by CTS specs requirement update. 3168 */ 3169 try_to_configure_aux_timeout(aconnector->dc_link->ddc, LINK_AUX_DEFAULT_LTTPR_TIMEOUT_PERIOD); 3170 if (!dp_is_lttpr_present(aconnector->dc_link)) 3171 try_to_configure_aux_timeout(aconnector->dc_link->ddc, LINK_AUX_DEFAULT_TIMEOUT_PERIOD); 3172 3173 /* TODO: move resume_mst_branch_status() into drm mst resume again 3174 * once topology probing work is pulled out from mst resume into mst 3175 * resume 2nd step. mst resume 2nd step should be called after old 3176 * state getting restored (i.e. drm_atomic_helper_resume()). 3177 */ 3178 resume_mst_branch_status(mgr); 3179 } 3180 } 3181 drm_connector_list_iter_end(&iter); 3182 } 3183 3184 static int amdgpu_dm_smu_write_watermarks_table(struct amdgpu_device *adev) 3185 { 3186 int ret = 0; 3187 3188 /* This interface is for dGPU Navi1x.Linux dc-pplib interface depends 3189 * on window driver dc implementation. 3190 * For Navi1x, clock settings of dcn watermarks are fixed. the settings 3191 * should be passed to smu during boot up and resume from s3. 3192 * boot up: dc calculate dcn watermark clock settings within dc_create, 3193 * dcn20_resource_construct 3194 * then call pplib functions below to pass the settings to smu: 3195 * smu_set_watermarks_for_clock_ranges 3196 * smu_set_watermarks_table 3197 * navi10_set_watermarks_table 3198 * smu_write_watermarks_table 3199 * 3200 * For Renoir, clock settings of dcn watermark are also fixed values. 3201 * dc has implemented different flow for window driver: 3202 * dc_hardware_init / dc_set_power_state 3203 * dcn10_init_hw 3204 * notify_wm_ranges 3205 * set_wm_ranges 3206 * -- Linux 3207 * smu_set_watermarks_for_clock_ranges 3208 * renoir_set_watermarks_table 3209 * smu_write_watermarks_table 3210 * 3211 * For Linux, 3212 * dc_hardware_init -> amdgpu_dm_init 3213 * dc_set_power_state --> dm_resume 3214 * 3215 * therefore, this function apply to navi10/12/14 but not Renoir 3216 * * 3217 */ 3218 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 3219 case IP_VERSION(2, 0, 2): 3220 case IP_VERSION(2, 0, 0): 3221 break; 3222 default: 3223 return 0; 3224 } 3225 3226 ret = amdgpu_dpm_write_watermarks_table(adev); 3227 if (ret) { 3228 drm_err(adev_to_drm(adev), "Failed to update WMTABLE!\n"); 3229 return ret; 3230 } 3231 3232 return 0; 3233 } 3234 3235 static int dm_oem_i2c_hw_init(struct amdgpu_device *adev) 3236 { 3237 struct amdgpu_display_manager *dm = &adev->dm; 3238 struct amdgpu_i2c_adapter *oem_i2c; 3239 struct ddc_service *oem_ddc_service; 3240 int r; 3241 3242 oem_ddc_service = dc_get_oem_i2c_device(adev->dm.dc); 3243 if (oem_ddc_service) { 3244 oem_i2c = create_i2c(oem_ddc_service, true); 3245 if (!oem_i2c) { 3246 drm_info(adev_to_drm(adev), "Failed to create oem i2c adapter data\n"); 3247 return -ENOMEM; 3248 } 3249 3250 r = devm_i2c_add_adapter(adev->dev, &oem_i2c->base); 3251 if (r) { 3252 drm_info(adev_to_drm(adev), "Failed to register oem i2c\n"); 3253 kfree(oem_i2c); 3254 return r; 3255 } 3256 dm->oem_i2c = oem_i2c; 3257 } 3258 3259 return 0; 3260 } 3261 3262 /** 3263 * dm_hw_init() - Initialize DC device 3264 * @ip_block: Pointer to the amdgpu_ip_block for this hw instance. 3265 * 3266 * Initialize the &struct amdgpu_display_manager device. This involves calling 3267 * the initializers of each DM component, then populating the struct with them. 3268 * 3269 * Although the function implies hardware initialization, both hardware and 3270 * software are initialized here. Splitting them out to their relevant init 3271 * hooks is a future TODO item. 3272 * 3273 * Some notable things that are initialized here: 3274 * 3275 * - Display Core, both software and hardware 3276 * - DC modules that we need (freesync and color management) 3277 * - DRM software states 3278 * - Interrupt sources and handlers 3279 * - Vblank support 3280 * - Debug FS entries, if enabled 3281 */ 3282 static int dm_hw_init(struct amdgpu_ip_block *ip_block) 3283 { 3284 struct amdgpu_device *adev = ip_block->adev; 3285 int r; 3286 3287 /* Create DAL display manager */ 3288 r = amdgpu_dm_init(adev); 3289 if (r) 3290 return r; 3291 amdgpu_dm_hpd_init(adev); 3292 3293 r = dm_oem_i2c_hw_init(adev); 3294 if (r) 3295 drm_info(adev_to_drm(adev), "Failed to add OEM i2c bus\n"); 3296 3297 return 0; 3298 } 3299 3300 /** 3301 * dm_hw_fini() - Teardown DC device 3302 * @ip_block: Pointer to the amdgpu_ip_block for this hw instance. 3303 * 3304 * Teardown components within &struct amdgpu_display_manager that require 3305 * cleanup. This involves cleaning up the DRM device, DC, and any modules that 3306 * were loaded. Also flush IRQ workqueues and disable them. 3307 */ 3308 static int dm_hw_fini(struct amdgpu_ip_block *ip_block) 3309 { 3310 struct amdgpu_device *adev = ip_block->adev; 3311 3312 amdgpu_dm_hpd_fini(adev); 3313 3314 amdgpu_dm_irq_fini(adev); 3315 amdgpu_dm_fini(adev); 3316 return 0; 3317 } 3318 3319 3320 static void dm_gpureset_toggle_interrupts(struct amdgpu_device *adev, 3321 struct dc_state *state, bool enable) 3322 { 3323 enum dc_irq_source irq_source; 3324 struct amdgpu_crtc *acrtc; 3325 int rc = -EBUSY; 3326 int i = 0; 3327 3328 for (i = 0; i < state->stream_count; i++) { 3329 acrtc = get_crtc_by_otg_inst( 3330 adev, state->stream_status[i].primary_otg_inst); 3331 3332 if (acrtc && state->stream_status[i].plane_count != 0 && 3333 amdgpu_ip_version(adev, DCE_HWIP, 0) == 0) { 3334 irq_source = IRQ_TYPE_PFLIP + acrtc->otg_inst; 3335 rc = dc_interrupt_set(adev->dm.dc, irq_source, enable) ? 0 : -EBUSY; 3336 if (rc) 3337 drm_warn(adev_to_drm(adev), "Failed to %s pflip interrupts\n", 3338 enable ? "enable" : "disable"); 3339 3340 if (dc_supports_vrr(adev->dm.dc->ctx->dce_version)) { 3341 if (enable) { 3342 if (amdgpu_dm_crtc_vrr_active( 3343 to_dm_crtc_state(acrtc->base.state))) 3344 rc = amdgpu_dm_crtc_set_vupdate_irq( 3345 &acrtc->base, true); 3346 } else 3347 rc = amdgpu_dm_crtc_set_vupdate_irq( 3348 &acrtc->base, false); 3349 3350 if (rc) 3351 drm_warn(adev_to_drm(adev), "Failed to %sable vupdate interrupt\n", 3352 enable ? "en" : "dis"); 3353 } 3354 3355 irq_source = IRQ_TYPE_VBLANK + acrtc->otg_inst; 3356 /* During gpu-reset we disable and then enable vblank irq, so 3357 * don't use amdgpu_irq_get/put() to avoid refcount change. 3358 */ 3359 if (!dc_interrupt_set(adev->dm.dc, irq_source, enable)) 3360 drm_warn(adev_to_drm(adev), "Failed to %sable vblank interrupt\n", enable ? "en" : "dis"); 3361 3362 } else if (acrtc && state->stream_status[i].plane_count != 0) { 3363 /* DCN only needs to toggle VUPDATE_NO_LOCK */ 3364 rc = amdgpu_dm_crtc_set_vupdate_irq(&acrtc->base, enable); 3365 if (rc) 3366 drm_warn(adev_to_drm(adev), "Failed to %sable vupdate interrupt\n", 3367 enable ? "en" : "dis"); 3368 } 3369 } 3370 3371 } 3372 3373 DEFINE_FREE(state_release, struct dc_state *, if (_T) dc_state_release(_T)) 3374 3375 static enum dc_status amdgpu_dm_commit_zero_streams(struct dc *dc) 3376 { 3377 struct dc_state *context __free(state_release) = NULL; 3378 int i; 3379 struct dc_stream_state *del_streams[MAX_PIPES]; 3380 int del_streams_count = 0; 3381 struct dc_commit_streams_params params = {}; 3382 3383 memset(del_streams, 0, sizeof(del_streams)); 3384 3385 context = dc_state_create_current_copy(dc); 3386 if (context == NULL) 3387 return DC_ERROR_UNEXPECTED; 3388 3389 /* First remove from context all streams */ 3390 for (i = 0; i < context->stream_count; i++) { 3391 struct dc_stream_state *stream = context->streams[i]; 3392 3393 del_streams[del_streams_count++] = stream; 3394 } 3395 3396 /* Remove all planes for removed streams and then remove the streams */ 3397 for (i = 0; i < del_streams_count; i++) { 3398 enum dc_status res; 3399 3400 if (!dc_state_rem_all_planes_for_stream(dc, del_streams[i], context)) 3401 return DC_FAIL_DETACH_SURFACES; 3402 3403 res = dc_state_remove_stream(dc, context, del_streams[i]); 3404 if (res != DC_OK) 3405 return res; 3406 } 3407 3408 params.streams = context->streams; 3409 params.stream_count = context->stream_count; 3410 3411 return dc_commit_streams(dc, ¶ms); 3412 } 3413 3414 static void hpd_rx_irq_work_suspend(struct amdgpu_display_manager *dm) 3415 { 3416 int i; 3417 3418 if (dm->hpd_rx_offload_wq) { 3419 for (i = 0; i < dm->dc->caps.max_links; i++) 3420 flush_workqueue(dm->hpd_rx_offload_wq[i].wq); 3421 } 3422 } 3423 3424 static int dm_cache_state(struct amdgpu_device *adev) 3425 { 3426 int r; 3427 3428 adev->dm.cached_state = drm_atomic_helper_suspend(adev_to_drm(adev)); 3429 if (IS_ERR(adev->dm.cached_state)) { 3430 r = PTR_ERR(adev->dm.cached_state); 3431 adev->dm.cached_state = NULL; 3432 } 3433 3434 return adev->dm.cached_state ? 0 : r; 3435 } 3436 3437 static void dm_destroy_cached_state(struct amdgpu_device *adev) 3438 { 3439 struct amdgpu_display_manager *dm = &adev->dm; 3440 struct drm_device *ddev = adev_to_drm(adev); 3441 struct dm_plane_state *dm_new_plane_state; 3442 struct drm_plane_state *new_plane_state; 3443 struct dm_crtc_state *dm_new_crtc_state; 3444 struct drm_crtc_state *new_crtc_state; 3445 struct drm_plane *plane; 3446 struct drm_crtc *crtc; 3447 int i; 3448 3449 if (!dm->cached_state) 3450 return; 3451 3452 /* Force mode set in atomic commit */ 3453 for_each_new_crtc_in_state(dm->cached_state, crtc, new_crtc_state, i) { 3454 new_crtc_state->active_changed = true; 3455 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 3456 reset_freesync_config_for_crtc(dm_new_crtc_state); 3457 } 3458 3459 /* 3460 * atomic_check is expected to create the dc states. We need to release 3461 * them here, since they were duplicated as part of the suspend 3462 * procedure. 3463 */ 3464 for_each_new_crtc_in_state(dm->cached_state, crtc, new_crtc_state, i) { 3465 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 3466 if (dm_new_crtc_state->stream) { 3467 WARN_ON(kref_read(&dm_new_crtc_state->stream->refcount) > 1); 3468 dc_stream_release(dm_new_crtc_state->stream); 3469 dm_new_crtc_state->stream = NULL; 3470 } 3471 dm_new_crtc_state->base.color_mgmt_changed = true; 3472 } 3473 3474 for_each_new_plane_in_state(dm->cached_state, plane, new_plane_state, i) { 3475 dm_new_plane_state = to_dm_plane_state(new_plane_state); 3476 if (dm_new_plane_state->dc_state) { 3477 WARN_ON(kref_read(&dm_new_plane_state->dc_state->refcount) > 1); 3478 dc_plane_state_release(dm_new_plane_state->dc_state); 3479 dm_new_plane_state->dc_state = NULL; 3480 } 3481 } 3482 3483 drm_atomic_helper_resume(ddev, dm->cached_state); 3484 3485 dm->cached_state = NULL; 3486 } 3487 3488 static int dm_suspend(struct amdgpu_ip_block *ip_block) 3489 { 3490 struct amdgpu_device *adev = ip_block->adev; 3491 struct amdgpu_display_manager *dm = &adev->dm; 3492 3493 if (amdgpu_in_reset(adev)) { 3494 enum dc_status res; 3495 3496 /* Quiesce ISM workers before taking dc_lock (workers take 3497 * dc_lock themselves; syncing under it would deadlock). 3498 */ 3499 amdgpu_dm_ism_disable(dm); 3500 3501 mutex_lock(&dm->dc_lock); 3502 3503 amdgpu_dm_ism_force_full_power(dm); 3504 dc_allow_idle_optimizations(adev->dm.dc, false); 3505 3506 dm->cached_dc_state = dc_state_create_copy(dm->dc->current_state); 3507 3508 if (dm->cached_dc_state) 3509 dm_gpureset_toggle_interrupts(adev, dm->cached_dc_state, false); 3510 3511 res = amdgpu_dm_commit_zero_streams(dm->dc); 3512 if (res != DC_OK) { 3513 drm_err(adev_to_drm(adev), "Failed to commit zero streams: %d\n", res); 3514 return -EINVAL; 3515 } 3516 3517 amdgpu_dm_irq_suspend(adev); 3518 3519 hpd_rx_irq_work_suspend(dm); 3520 3521 return 0; 3522 } 3523 3524 if (!adev->dm.cached_state) { 3525 int r = dm_cache_state(adev); 3526 3527 if (r) 3528 return r; 3529 } 3530 3531 s3_handle_hdmi_cec(adev_to_drm(adev), true); 3532 3533 s3_handle_mst(adev_to_drm(adev), true); 3534 3535 amdgpu_dm_irq_suspend(adev); 3536 3537 /* 3538 * Quiesce ISM workers before taking dc_lock (workers take dc_lock 3539 * themselves; syncing under it would deadlock). 3540 */ 3541 amdgpu_dm_ism_disable(dm); 3542 scoped_guard(mutex, &dm->dc_lock) 3543 amdgpu_dm_ism_force_full_power(dm); 3544 3545 hpd_rx_irq_work_suspend(dm); 3546 3547 dc_set_power_state(dm->dc, DC_ACPI_CM_POWER_STATE_D3); 3548 3549 if (dm->dc->caps.ips_support && adev->in_s0ix) 3550 dc_allow_idle_optimizations(dm->dc, true); 3551 3552 dc_dmub_srv_set_power_state(dm->dc->ctx->dmub_srv, DC_ACPI_CM_POWER_STATE_D3); 3553 3554 return 0; 3555 } 3556 3557 struct drm_connector * 3558 amdgpu_dm_find_first_crtc_matching_connector(struct drm_atomic_commit *state, 3559 struct drm_crtc *crtc) 3560 { 3561 u32 i; 3562 struct drm_connector_state *new_con_state; 3563 struct drm_connector *connector; 3564 struct drm_crtc *crtc_from_state; 3565 3566 for_each_new_connector_in_state(state, connector, new_con_state, i) { 3567 crtc_from_state = new_con_state->crtc; 3568 3569 if (crtc_from_state == crtc) 3570 return connector; 3571 } 3572 3573 return NULL; 3574 } 3575 3576 static void emulated_link_detect(struct dc_link *link) 3577 { 3578 struct dc_sink_init_data sink_init_data = { 0 }; 3579 struct display_sink_capability sink_caps = { 0 }; 3580 enum dc_edid_status edid_status; 3581 struct dc_context *dc_ctx = link->ctx; 3582 struct drm_device *dev = adev_to_drm(dc_ctx->driver_context); 3583 struct dc_sink *sink = NULL; 3584 struct dc_sink *prev_sink = NULL; 3585 3586 link->type = dc_connection_none; 3587 prev_sink = link->local_sink; 3588 3589 if (prev_sink) 3590 dc_sink_release(prev_sink); 3591 3592 switch (link->connector_signal) { 3593 case SIGNAL_TYPE_HDMI_TYPE_A: { 3594 sink_caps.transaction_type = DDC_TRANSACTION_TYPE_I2C; 3595 sink_caps.signal = SIGNAL_TYPE_HDMI_TYPE_A; 3596 break; 3597 } 3598 3599 case SIGNAL_TYPE_DVI_SINGLE_LINK: { 3600 sink_caps.transaction_type = DDC_TRANSACTION_TYPE_I2C; 3601 sink_caps.signal = SIGNAL_TYPE_DVI_SINGLE_LINK; 3602 break; 3603 } 3604 3605 case SIGNAL_TYPE_DVI_DUAL_LINK: { 3606 sink_caps.transaction_type = DDC_TRANSACTION_TYPE_I2C; 3607 sink_caps.signal = SIGNAL_TYPE_DVI_DUAL_LINK; 3608 break; 3609 } 3610 3611 case SIGNAL_TYPE_LVDS: { 3612 sink_caps.transaction_type = DDC_TRANSACTION_TYPE_I2C; 3613 sink_caps.signal = SIGNAL_TYPE_LVDS; 3614 break; 3615 } 3616 3617 case SIGNAL_TYPE_EDP: { 3618 sink_caps.transaction_type = 3619 DDC_TRANSACTION_TYPE_I2C_OVER_AUX; 3620 sink_caps.signal = SIGNAL_TYPE_EDP; 3621 break; 3622 } 3623 3624 case SIGNAL_TYPE_DISPLAY_PORT: { 3625 sink_caps.transaction_type = 3626 DDC_TRANSACTION_TYPE_I2C_OVER_AUX; 3627 sink_caps.signal = SIGNAL_TYPE_VIRTUAL; 3628 break; 3629 } 3630 3631 default: 3632 drm_err(dev, "Invalid connector type! signal:%d\n", 3633 link->connector_signal); 3634 return; 3635 } 3636 3637 sink_init_data.link = link; 3638 sink_init_data.sink_signal = sink_caps.signal; 3639 3640 sink = dc_sink_create(&sink_init_data); 3641 if (!sink) { 3642 drm_err(dev, "Failed to create sink!\n"); 3643 return; 3644 } 3645 3646 /* dc_sink_create returns a new reference */ 3647 link->local_sink = sink; 3648 3649 edid_status = dm_helpers_read_local_edid( 3650 link->ctx, 3651 link, 3652 sink); 3653 3654 if (edid_status != EDID_OK) 3655 drm_err(dev, "Failed to read EDID\n"); 3656 3657 } 3658 3659 static void dm_gpureset_commit_state(struct dc_state *dc_state, 3660 struct amdgpu_display_manager *dm) 3661 { 3662 struct { 3663 struct dc_surface_update surface_updates[MAX_SURFACES]; 3664 struct dc_plane_info plane_infos[MAX_SURFACES]; 3665 struct dc_scaling_info scaling_infos[MAX_SURFACES]; 3666 struct dc_flip_addrs flip_addrs[MAX_SURFACES]; 3667 struct dc_stream_update stream_update; 3668 } *bundle __free(kfree); 3669 int k, m; 3670 3671 bundle = kzalloc_obj(*bundle); 3672 3673 if (!bundle) { 3674 drm_err(dm->ddev, "Failed to allocate update bundle\n"); 3675 return; 3676 } 3677 3678 for (k = 0; k < dc_state->stream_count; k++) { 3679 bundle->stream_update.stream = dc_state->streams[k]; 3680 3681 for (m = 0; m < dc_state->stream_status[k].plane_count; m++) { 3682 bundle->surface_updates[m].surface = 3683 dc_state->stream_status[k].plane_states[m]; 3684 bundle->surface_updates[m].surface->force_full_update = 3685 true; 3686 } 3687 3688 update_planes_and_stream_adapter(dm->dc, 3689 UPDATE_TYPE_FULL, 3690 dc_state->stream_status[k].plane_count, 3691 dc_state->streams[k], 3692 &bundle->stream_update, 3693 bundle->surface_updates); 3694 } 3695 } 3696 3697 static void apply_delay_after_dpcd_poweroff(struct amdgpu_device *adev, 3698 struct dc_sink *sink) 3699 { 3700 struct dc_panel_patch *ppatch = NULL; 3701 3702 if (!sink) 3703 return; 3704 3705 ppatch = &sink->edid_caps.panel_patch; 3706 if (ppatch->wait_after_dpcd_poweroff_ms) { 3707 msleep(ppatch->wait_after_dpcd_poweroff_ms); 3708 drm_dbg_driver(adev_to_drm(adev), 3709 "%s: adding a %ds delay as w/a for panel\n", 3710 __func__, 3711 ppatch->wait_after_dpcd_poweroff_ms / 1000); 3712 } 3713 } 3714 3715 /** 3716 * amdgpu_dm_dump_links_and_sinks - Debug dump of all DC links and their sinks 3717 * @adev: amdgpu device pointer 3718 * 3719 * Iterates through all DC links and dumps information about local and remote 3720 * (MST) sinks. Should be called after connector detection is complete to see 3721 * the final state of all links. 3722 */ 3723 static void amdgpu_dm_dump_links_and_sinks(struct amdgpu_device *adev) 3724 { 3725 struct dc *dc = adev->dm.dc; 3726 struct drm_device *dev = adev_to_drm(adev); 3727 int li; 3728 3729 if (!dc) 3730 return; 3731 3732 for (li = 0; li < dc->link_count; li++) { 3733 struct dc_link *l = dc->links[li]; 3734 const char *name = NULL; 3735 int rs; 3736 3737 if (!l) 3738 continue; 3739 if (l->local_sink && l->local_sink->edid_caps.display_name[0]) 3740 name = l->local_sink->edid_caps.display_name; 3741 else 3742 name = "n/a"; 3743 3744 drm_dbg_kms(dev, 3745 "LINK_DUMP[%d]: local_sink=%p type=%d sink_signal=%d sink_count=%u edid_name=%s mst_capable=%d mst_alloc_streams=%d\n", 3746 li, 3747 l->local_sink, 3748 l->type, 3749 l->local_sink ? l->local_sink->sink_signal : SIGNAL_TYPE_NONE, 3750 l->sink_count, 3751 name, 3752 l->dpcd_caps.is_mst_capable, 3753 l->mst_stream_alloc_table.stream_count); 3754 3755 /* Dump remote (MST) sinks if any */ 3756 for (rs = 0; rs < l->sink_count; rs++) { 3757 struct dc_sink *rsink = l->remote_sinks[rs]; 3758 const char *rname = NULL; 3759 3760 if (!rsink) 3761 continue; 3762 if (rsink->edid_caps.display_name[0]) 3763 rname = rsink->edid_caps.display_name; 3764 else 3765 rname = "n/a"; 3766 drm_dbg_kms(dev, 3767 " REMOTE_SINK[%d:%d]: sink=%p signal=%d edid_name=%s\n", 3768 li, rs, 3769 rsink, 3770 rsink->sink_signal, 3771 rname); 3772 } 3773 } 3774 } 3775 3776 static int dm_resume(struct amdgpu_ip_block *ip_block) 3777 { 3778 struct amdgpu_device *adev = ip_block->adev; 3779 struct drm_device *ddev = adev_to_drm(adev); 3780 struct amdgpu_display_manager *dm = &adev->dm; 3781 struct amdgpu_dm_connector *aconnector; 3782 struct drm_connector *connector; 3783 struct drm_connector_list_iter iter; 3784 struct dm_atomic_state *dm_state = to_dm_atomic_state(dm->atomic_obj.state); 3785 enum dc_connection_type new_connection_type = dc_connection_none; 3786 struct dc_state *dc_state; 3787 int i, r, j; 3788 struct dc_commit_streams_params commit_params = {}; 3789 3790 if (dm->dc->caps.ips_support) { 3791 if (!amdgpu_in_reset(adev)) 3792 mutex_lock(&dm->dc_lock); 3793 3794 /* Need to set POWER_STATE_D0 first or it will not execute 3795 * idle_power_optimizations command to DMUB. 3796 */ 3797 dc_dmub_srv_set_power_state(dm->dc->ctx->dmub_srv, DC_ACPI_CM_POWER_STATE_D0); 3798 dc_dmub_srv_apply_idle_power_optimizations(dm->dc, false); 3799 3800 if (!amdgpu_in_reset(adev)) 3801 mutex_unlock(&dm->dc_lock); 3802 } 3803 3804 if (amdgpu_in_reset(adev)) { 3805 dc_state = dm->cached_dc_state; 3806 3807 /* 3808 * The dc->current_state is backed up into dm->cached_dc_state 3809 * before we commit 0 streams. 3810 * 3811 * DC will clear link encoder assignments on the real state 3812 * but the changes won't propagate over to the copy we made 3813 * before the 0 streams commit. 3814 * 3815 * DC expects that link encoder assignments are *not* valid 3816 * when committing a state, so as a workaround we can copy 3817 * off of the current state. 3818 * 3819 * We lose the previous assignments, but we had already 3820 * commit 0 streams anyway. 3821 */ 3822 link_enc_cfg_copy(adev->dm.dc->current_state, dc_state); 3823 3824 r = dm_dmub_hw_init(adev); 3825 if (r) { 3826 drm_err(adev_to_drm(adev), "DMUB interface failed to initialize: status=%d\n", r); 3827 return r; 3828 } 3829 3830 dc_dmub_srv_set_power_state(dm->dc->ctx->dmub_srv, DC_ACPI_CM_POWER_STATE_D0); 3831 dc_set_power_state(dm->dc, DC_ACPI_CM_POWER_STATE_D0); 3832 3833 dc_resume(dm->dc); 3834 3835 amdgpu_dm_ism_enable(dm); 3836 amdgpu_dm_irq_resume_early(adev); 3837 3838 for (i = 0; i < dc_state->stream_count; i++) { 3839 dc_state->streams[i]->mode_changed = true; 3840 for (j = 0; j < dc_state->stream_status[i].plane_count; j++) { 3841 dc_state->stream_status[i].plane_states[j]->update_flags.raw 3842 = 0xffffffff; 3843 } 3844 } 3845 3846 if (dc_is_dmub_outbox_supported(adev->dm.dc)) { 3847 amdgpu_dm_outbox_init(adev); 3848 dc_enable_dmub_outbox(adev->dm.dc); 3849 } 3850 3851 commit_params.streams = dc_state->streams; 3852 commit_params.stream_count = dc_state->stream_count; 3853 dc_exit_ips_for_hw_access(dm->dc); 3854 WARN_ON(!dc_commit_streams(dm->dc, &commit_params)); 3855 3856 dm_gpureset_commit_state(dm->cached_dc_state, dm); 3857 3858 dm_gpureset_toggle_interrupts(adev, dm->cached_dc_state, true); 3859 3860 dc_state_release(dm->cached_dc_state); 3861 dm->cached_dc_state = NULL; 3862 3863 amdgpu_dm_irq_resume_late(adev); 3864 3865 mutex_unlock(&dm->dc_lock); 3866 3867 /* set the backlight after a reset */ 3868 for (i = 0; i < dm->num_of_edps; i++) { 3869 if (dm->backlight_dev[i]) 3870 amdgpu_dm_backlight_set_level(dm, i, dm->brightness[i]); 3871 } 3872 3873 return 0; 3874 } 3875 /* Recreate dc_state - DC invalidates it when setting power state to S3. */ 3876 dc_state_release(dm_state->context); 3877 dm_state->context = dc_state_create(dm->dc, NULL); 3878 /* TODO: Remove dc_state->dccg, use dc->dccg directly. */ 3879 3880 /* Before powering on DC we need to re-initialize DMUB. */ 3881 dm_dmub_hw_resume(adev); 3882 3883 /* Re-enable outbox interrupts for DPIA. */ 3884 if (dc_is_dmub_outbox_supported(adev->dm.dc)) { 3885 amdgpu_dm_outbox_init(adev); 3886 dc_enable_dmub_outbox(adev->dm.dc); 3887 } 3888 3889 /* power on hardware */ 3890 dc_dmub_srv_set_power_state(dm->dc->ctx->dmub_srv, DC_ACPI_CM_POWER_STATE_D0); 3891 dc_set_power_state(dm->dc, DC_ACPI_CM_POWER_STATE_D0); 3892 3893 /* program HPD filter */ 3894 dc_resume(dm->dc); 3895 3896 scoped_guard(mutex, &dm->dc_lock) 3897 amdgpu_dm_ism_enable(dm); 3898 3899 /* 3900 * early enable HPD Rx IRQ, should be done before set mode as short 3901 * pulse interrupts are used for MST 3902 */ 3903 amdgpu_dm_irq_resume_early(adev); 3904 3905 s3_handle_hdmi_cec(ddev, false); 3906 3907 /* On resume we need to rewrite the MSTM control bits to enable MST*/ 3908 s3_handle_mst(ddev, false); 3909 3910 /* Do detection*/ 3911 drm_connector_list_iter_begin(ddev, &iter); 3912 drm_for_each_connector_iter(connector, &iter) { 3913 bool ret; 3914 3915 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 3916 continue; 3917 3918 aconnector = to_amdgpu_dm_connector(connector); 3919 3920 if (!aconnector->dc_link) 3921 continue; 3922 3923 /* 3924 * this is the case when traversing through already created end sink 3925 * MST connectors, should be skipped 3926 */ 3927 if (aconnector->mst_root) 3928 continue; 3929 3930 /* Skip eDP detection, when there is no sink present */ 3931 if (aconnector->dc_link->connector_signal == SIGNAL_TYPE_EDP && 3932 !aconnector->dc_link->edp_sink_present) 3933 continue; 3934 3935 guard(mutex)(&aconnector->hpd_lock); 3936 if (!dc_link_detect_connection_type(aconnector->dc_link, &new_connection_type)) 3937 drm_err(adev_to_drm(adev), "KMS: Failed to detect connector\n"); 3938 3939 if (aconnector->base.force && new_connection_type == dc_connection_none) { 3940 emulated_link_detect(aconnector->dc_link); 3941 } else { 3942 guard(mutex)(&dm->dc_lock); 3943 dc_exit_ips_for_hw_access(dm->dc); 3944 ret = dc_link_detect(aconnector->dc_link, DETECT_REASON_RESUMEFROMS3S4); 3945 if (ret) { 3946 /* w/a delay for certain panels */ 3947 apply_delay_after_dpcd_poweroff(adev, aconnector->dc_sink); 3948 } 3949 } 3950 3951 if (aconnector->fake_enable && aconnector->dc_link->local_sink) 3952 aconnector->fake_enable = false; 3953 3954 if (aconnector->dc_sink) 3955 dc_sink_release(aconnector->dc_sink); 3956 aconnector->dc_sink = NULL; 3957 amdgpu_dm_update_connector_after_detect(aconnector); 3958 } 3959 drm_connector_list_iter_end(&iter); 3960 3961 dm_destroy_cached_state(adev); 3962 3963 /* Do mst topology probing after resuming cached state*/ 3964 drm_connector_list_iter_begin(ddev, &iter); 3965 drm_for_each_connector_iter(connector, &iter) { 3966 bool init = false; 3967 3968 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 3969 continue; 3970 3971 aconnector = to_amdgpu_dm_connector(connector); 3972 if (aconnector->dc_link->type != dc_connection_mst_branch || 3973 aconnector->mst_root) 3974 continue; 3975 3976 scoped_guard(mutex, &aconnector->mst_mgr.lock) { 3977 init = !aconnector->mst_mgr.mst_primary; 3978 } 3979 if (init) 3980 dm_helpers_dp_mst_start_top_mgr(aconnector->dc_link->ctx, 3981 aconnector->dc_link, false); 3982 else 3983 drm_dp_mst_topology_queue_probe(&aconnector->mst_mgr); 3984 } 3985 drm_connector_list_iter_end(&iter); 3986 3987 /* Debug dump: list all DC links and their associated sinks after detection 3988 * is complete for all connectors. This provides a comprehensive view of the 3989 * final state without repeating the dump for each connector. 3990 */ 3991 amdgpu_dm_dump_links_and_sinks(adev); 3992 3993 amdgpu_dm_irq_resume_late(adev); 3994 3995 amdgpu_dm_smu_write_watermarks_table(adev); 3996 3997 drm_kms_helper_hotplug_event(ddev); 3998 3999 return 0; 4000 } 4001 4002 /** 4003 * DOC: DM Lifecycle 4004 * 4005 * DM (and consequently DC) is registered in the amdgpu base driver as a IP 4006 * block. When CONFIG_DRM_AMD_DC is enabled, the DM device IP block is added to 4007 * the base driver's device list to be initialized and torn down accordingly. 4008 * 4009 * The functions to do so are provided as hooks in &struct amd_ip_funcs. 4010 */ 4011 4012 static const struct amd_ip_funcs amdgpu_dm_funcs = { 4013 .name = "dm", 4014 .early_init = dm_early_init, 4015 .late_init = dm_late_init, 4016 .sw_init = dm_sw_init, 4017 .sw_fini = dm_sw_fini, 4018 .early_fini = amdgpu_dm_early_fini, 4019 .hw_init = dm_hw_init, 4020 .hw_fini = dm_hw_fini, 4021 .suspend = dm_suspend, 4022 .resume = dm_resume, 4023 .is_idle = dm_is_idle, 4024 .wait_for_idle = dm_wait_for_idle, 4025 .check_soft_reset = dm_check_soft_reset, 4026 .soft_reset = dm_soft_reset, 4027 .set_clockgating_state = dm_set_clockgating_state, 4028 .set_powergating_state = dm_set_powergating_state, 4029 }; 4030 4031 const struct amdgpu_ip_block_version dm_ip_block = { 4032 .type = AMD_IP_BLOCK_TYPE_DCE, 4033 .major = 1, 4034 .minor = 0, 4035 .rev = 0, 4036 .funcs = &amdgpu_dm_funcs, 4037 }; 4038 4039 4040 /** 4041 * DOC: atomic 4042 * 4043 * *WIP* 4044 */ 4045 4046 static const struct drm_mode_config_funcs amdgpu_dm_mode_funcs = { 4047 .fb_create = amdgpu_display_user_framebuffer_create, 4048 .get_format_info = amdgpu_dm_plane_get_format_info, 4049 .atomic_check = amdgpu_dm_atomic_check, 4050 .atomic_commit = drm_atomic_helper_commit, 4051 }; 4052 4053 static struct drm_mode_config_helper_funcs amdgpu_dm_mode_config_helperfuncs = { 4054 .atomic_commit_tail = amdgpu_dm_atomic_commit_tail, 4055 .atomic_commit_setup = amdgpu_dm_atomic_setup_commit, 4056 }; 4057 4058 #define DDC_MANUFACTURERNAME_SAMSUNG 0x2D4C 4059 4060 static void dm_set_panel_type(struct amdgpu_dm_connector *aconnector) 4061 { 4062 struct drm_connector *connector = &aconnector->base; 4063 struct drm_display_info *display_info = &connector->display_info; 4064 struct dc_link *link = aconnector->dc_link; 4065 struct amdgpu_device *adev; 4066 4067 adev = drm_to_adev(connector->dev); 4068 4069 link->panel_type = PANEL_TYPE_NONE; 4070 4071 switch (display_info->amd_vsdb.panel_type) { 4072 case AMD_VSDB_PANEL_TYPE_OLED: 4073 link->panel_type = PANEL_TYPE_OLED; 4074 break; 4075 case AMD_VSDB_PANEL_TYPE_MINILED: 4076 link->panel_type = PANEL_TYPE_MINILED; 4077 break; 4078 } 4079 4080 /* If VSDB didn't determine panel type, check DPCD ext caps */ 4081 if (link->panel_type == PANEL_TYPE_NONE) { 4082 if (link->dpcd_sink_ext_caps.bits.miniled == 1) 4083 link->panel_type = PANEL_TYPE_MINILED; 4084 if (link->dpcd_sink_ext_caps.bits.oled == 1) 4085 link->panel_type = PANEL_TYPE_OLED; 4086 } 4087 4088 /* 4089 * TODO: get panel type from DID2 that has device technology field 4090 * to specify if it's OLED or not. But we need to wait for DID2 4091 * support in DC and EDID parser to be able to use it here. 4092 */ 4093 4094 if (link->panel_type == PANEL_TYPE_NONE) { 4095 struct drm_amd_vsdb_info *vsdb = &display_info->amd_vsdb; 4096 u32 lum1_max = vsdb->luminance_range1.max_luminance; 4097 u32 lum2_max = vsdb->luminance_range2.max_luminance; 4098 4099 if (vsdb->version && link->local_sink && 4100 link->local_sink->edid_caps.manufacturer_id == 4101 DDC_MANUFACTURERNAME_SAMSUNG && 4102 lum1_max >= ((lum2_max * 3) / 2)) 4103 link->panel_type = PANEL_TYPE_MINILED; 4104 } 4105 4106 if (link->panel_type == PANEL_TYPE_OLED) 4107 drm_object_property_set_value(&connector->base, 4108 adev_to_drm(adev)->mode_config.panel_type_property, 4109 DRM_MODE_PANEL_TYPE_OLED); 4110 else 4111 drm_object_property_set_value(&connector->base, 4112 adev_to_drm(adev)->mode_config.panel_type_property, 4113 DRM_MODE_PANEL_TYPE_UNKNOWN); 4114 4115 drm_dbg_kms(aconnector->base.dev, "Panel type: %d\n", link->panel_type); 4116 } 4117 4118 static void update_connector_ext_caps(struct amdgpu_dm_connector *aconnector) 4119 { 4120 const struct drm_panel_backlight_quirk *panel_backlight_quirk; 4121 struct amdgpu_dm_backlight_caps *caps; 4122 struct drm_connector *conn_base; 4123 struct amdgpu_device *adev; 4124 struct drm_luminance_range_info *luminance_range; 4125 struct drm_device *drm; 4126 4127 if (aconnector->bl_idx == -1 || 4128 aconnector->dc_link->connector_signal != SIGNAL_TYPE_EDP) 4129 return; 4130 4131 conn_base = &aconnector->base; 4132 drm = conn_base->dev; 4133 adev = drm_to_adev(drm); 4134 4135 caps = &adev->dm.backlight_caps[aconnector->bl_idx]; 4136 caps->ext_caps = &aconnector->dc_link->dpcd_sink_ext_caps; 4137 caps->aux_support = false; 4138 4139 panel_backlight_quirk = drm_get_panel_backlight_quirk(aconnector->drm_edid); 4140 4141 if (caps->ext_caps->bits.oled == 1 4142 /* 4143 * || 4144 * caps->ext_caps->bits.sdr_aux_backlight_control == 1 || 4145 * caps->ext_caps->bits.hdr_aux_backlight_control == 1 4146 */) 4147 caps->aux_support = true; 4148 4149 if (amdgpu_backlight == 0) 4150 caps->aux_support = false; 4151 else if (amdgpu_backlight == 1) 4152 caps->aux_support = true; 4153 else if (!IS_ERR_OR_NULL(panel_backlight_quirk) && 4154 panel_backlight_quirk->force_pwm) 4155 caps->aux_support = false; 4156 if (caps->aux_support) 4157 aconnector->dc_link->backlight_control_type = BACKLIGHT_CONTROL_AMD_AUX; 4158 4159 luminance_range = &conn_base->display_info.luminance_range; 4160 4161 if (luminance_range->max_luminance) 4162 caps->aux_max_input_signal = luminance_range->max_luminance; 4163 else 4164 caps->aux_max_input_signal = 512; 4165 4166 if (luminance_range->min_luminance) 4167 caps->aux_min_input_signal = luminance_range->min_luminance; 4168 else 4169 caps->aux_min_input_signal = 1; 4170 4171 if (!IS_ERR_OR_NULL(panel_backlight_quirk)) { 4172 if (panel_backlight_quirk->min_brightness) { 4173 caps->min_input_signal = 4174 panel_backlight_quirk->min_brightness - 1; 4175 drm_info(drm, 4176 "Applying panel backlight quirk, min_brightness: %d\n", 4177 caps->min_input_signal); 4178 } 4179 if (panel_backlight_quirk->brightness_mask) { 4180 drm_info(drm, 4181 "Applying panel backlight quirk, brightness_mask: 0x%X\n", 4182 panel_backlight_quirk->brightness_mask); 4183 caps->brightness_mask = 4184 panel_backlight_quirk->brightness_mask; 4185 } 4186 } 4187 } 4188 4189 DEFINE_FREE(sink_release, struct dc_sink *, if (_T) dc_sink_release(_T)) 4190 4191 void amdgpu_dm_update_connector_after_detect( 4192 struct amdgpu_dm_connector *aconnector) 4193 { 4194 struct drm_connector *connector = &aconnector->base; 4195 struct dc_sink *sink __free(sink_release) = NULL; 4196 struct drm_device *dev = connector->dev; 4197 4198 /* MST handled by drm_mst framework */ 4199 if (aconnector->mst_mgr.mst_state == true) 4200 return; 4201 4202 sink = aconnector->dc_link->local_sink; 4203 if (sink) 4204 dc_sink_retain(sink); 4205 4206 /* 4207 * Edid mgmt connector gets first update only in mode_valid hook and then 4208 * the connector sink is set to either fake or physical sink depends on link status. 4209 * Skip if already done during boot. 4210 */ 4211 if (aconnector->base.force != DRM_FORCE_UNSPECIFIED 4212 && aconnector->dc_em_sink) { 4213 4214 /* 4215 * For S3 resume with headless use eml_sink to fake stream 4216 * because on resume connector->sink is set to NULL 4217 */ 4218 guard(mutex)(&dev->mode_config.mutex); 4219 4220 if (sink) { 4221 if (aconnector->dc_sink) { 4222 amdgpu_dm_update_freesync_caps(connector, NULL, true); 4223 /* 4224 * retain and release below are used to 4225 * bump up refcount for sink because the link doesn't point 4226 * to it anymore after disconnect, so on next crtc to connector 4227 * reshuffle by UMD we will get into unwanted dc_sink release 4228 */ 4229 dc_sink_release(aconnector->dc_sink); 4230 } 4231 aconnector->dc_sink = sink; 4232 dc_sink_retain(aconnector->dc_sink); 4233 amdgpu_dm_update_freesync_caps(connector, 4234 aconnector->drm_edid, true); 4235 } else { 4236 amdgpu_dm_update_freesync_caps(connector, NULL, true); 4237 if (!aconnector->dc_sink) { 4238 aconnector->dc_sink = aconnector->dc_em_sink; 4239 dc_sink_retain(aconnector->dc_sink); 4240 } 4241 } 4242 4243 return; 4244 } 4245 4246 /* 4247 * TODO: temporary guard to look for proper fix 4248 * if this sink is MST sink, we should not do anything 4249 */ 4250 if (sink && sink->sink_signal == SIGNAL_TYPE_DISPLAY_PORT_MST) 4251 return; 4252 4253 if (aconnector->dc_sink == sink) { 4254 /* 4255 * We got a DP short pulse (Link Loss, DP CTS, etc...). 4256 * Do nothing!! 4257 */ 4258 drm_dbg_kms(dev, "DCHPD: connector_id=%d: dc_sink didn't change.\n", 4259 aconnector->connector_id); 4260 return; 4261 } 4262 4263 drm_dbg_kms(dev, "DCHPD: connector_id=%d: Old sink=%p New sink=%p\n", 4264 aconnector->connector_id, aconnector->dc_sink, sink); 4265 4266 /* When polling, DRM has already locked the mutex for us. */ 4267 if (!drm_kms_helper_is_poll_worker()) 4268 mutex_lock(&dev->mode_config.mutex); 4269 4270 /* 4271 * 1. Update status of the drm connector 4272 * 2. Send an event and let userspace tell us what to do 4273 */ 4274 if (sink) { 4275 /* 4276 * TODO: check if we still need the S3 mode update workaround. 4277 * If yes, put it here. 4278 */ 4279 if (aconnector->dc_sink) { 4280 amdgpu_dm_update_freesync_caps(connector, NULL, true); 4281 dc_sink_release(aconnector->dc_sink); 4282 } 4283 4284 aconnector->dc_sink = sink; 4285 dc_sink_retain(aconnector->dc_sink); 4286 drm_edid_free(aconnector->drm_edid); 4287 aconnector->drm_edid = NULL; 4288 if (sink->dc_edid.length == 0) { 4289 hdmi_cec_unset_edid(aconnector); 4290 if (aconnector->dc_link->aux_mode) { 4291 drm_dp_cec_unset_edid(&aconnector->dm_dp_aux.aux); 4292 } 4293 } else { 4294 const struct edid *edid = (const struct edid *)sink->dc_edid.raw_edid; 4295 4296 aconnector->drm_edid = drm_edid_alloc(edid, sink->dc_edid.length); 4297 drm_edid_connector_update(connector, aconnector->drm_edid); 4298 4299 hdmi_cec_set_edid(aconnector); 4300 if (aconnector->dc_link->aux_mode) 4301 drm_dp_cec_attach(&aconnector->dm_dp_aux.aux, 4302 connector->display_info.source_physical_address); 4303 } 4304 4305 if (!aconnector->timing_requested) { 4306 aconnector->timing_requested = 4307 kzalloc_obj(struct dc_crtc_timing); 4308 if (!aconnector->timing_requested) 4309 drm_err(dev, 4310 "failed to create aconnector->requested_timing\n"); 4311 } 4312 4313 amdgpu_dm_update_freesync_caps(connector, aconnector->drm_edid, true); 4314 update_connector_ext_caps(aconnector); 4315 dm_set_panel_type(aconnector); 4316 } else { 4317 hdmi_cec_unset_edid(aconnector); 4318 drm_dp_cec_unset_edid(&aconnector->dm_dp_aux.aux); 4319 amdgpu_dm_update_freesync_caps(connector, NULL, true); 4320 aconnector->num_modes = 0; 4321 dc_sink_release(aconnector->dc_sink); 4322 aconnector->dc_sink = NULL; 4323 drm_edid_free(aconnector->drm_edid); 4324 aconnector->drm_edid = NULL; 4325 kfree(aconnector->timing_requested); 4326 aconnector->timing_requested = NULL; 4327 /* Set CP to DESIRED if it was ENABLED, so we can re-enable it again on hotplug */ 4328 if (connector->state->content_protection == DRM_MODE_CONTENT_PROTECTION_ENABLED) 4329 connector->state->content_protection = DRM_MODE_CONTENT_PROTECTION_DESIRED; 4330 } 4331 4332 update_subconnector_property(aconnector); 4333 4334 /* When polling, the mutex will be unlocked for us by DRM. */ 4335 if (!drm_kms_helper_is_poll_worker()) 4336 mutex_unlock(&dev->mode_config.mutex); 4337 } 4338 4339 static bool are_sinks_equal(const struct dc_sink *sink1, const struct dc_sink *sink2) 4340 { 4341 if (!sink1 || !sink2) 4342 return false; 4343 if (sink1->sink_signal != sink2->sink_signal) 4344 return false; 4345 4346 if (sink1->dc_edid.length != sink2->dc_edid.length) 4347 return false; 4348 4349 if (memcmp(sink1->dc_edid.raw_edid, sink2->dc_edid.raw_edid, 4350 sink1->dc_edid.length) != 0) 4351 return false; 4352 return true; 4353 } 4354 4355 4356 /** 4357 * DOC: hdmi_hpd_debounce_work 4358 * 4359 * HDMI HPD debounce delay in milliseconds. When an HDMI display toggles HPD 4360 * (such as during power save transitions), this delay determines how long to 4361 * wait before processing the HPD event. This allows distinguishing between a 4362 * physical unplug (>hdmi_hpd_debounce_delay) 4363 * and a spontaneous RX HPD toggle (<hdmi_hpd_debounce_delay). 4364 * 4365 * If the toggle is less than this delay, the driver compares sink capabilities 4366 * and permits a hotplug event if they changed. 4367 * 4368 * The default value of 1500ms was chosen based on experimental testing with 4369 * various monitors that exhibit spontaneous HPD toggling behavior. 4370 */ 4371 static void hdmi_hpd_debounce_work(struct work_struct *work) 4372 { 4373 struct amdgpu_dm_connector *aconnector = 4374 container_of(to_delayed_work(work), struct amdgpu_dm_connector, 4375 hdmi_hpd_debounce_work); 4376 struct drm_connector *connector = &aconnector->base; 4377 struct drm_device *dev = connector->dev; 4378 struct amdgpu_device *adev = drm_to_adev(dev); 4379 struct dc *dc = aconnector->dc_link->ctx->dc; 4380 bool fake_reconnect = false; 4381 bool reallow_idle = false; 4382 bool ret = false; 4383 guard(mutex)(&aconnector->hpd_lock); 4384 4385 /* Re-detect the display */ 4386 scoped_guard(mutex, &adev->dm.dc_lock) { 4387 if (dc->caps.ips_support && dc->ctx->dmub_srv->idle_allowed) { 4388 dc_allow_idle_optimizations(dc, false); 4389 reallow_idle = true; 4390 } 4391 ret = dc_link_detect(aconnector->dc_link, DETECT_REASON_HPD); 4392 } 4393 4394 if (ret) { 4395 /* Apply workaround delay for certain panels */ 4396 apply_delay_after_dpcd_poweroff(adev, aconnector->dc_sink); 4397 /* Compare sinks to determine if this was a spontaneous HPD toggle */ 4398 if (are_sinks_equal(aconnector->dc_link->local_sink, aconnector->hdmi_prev_sink)) { 4399 /* 4400 * Sinks match - this was a spontaneous HDMI HPD toggle. 4401 */ 4402 drm_dbg_kms(dev, "HDMI HPD: Sink unchanged after debounce, internal re-enable\n"); 4403 fake_reconnect = true; 4404 } 4405 4406 /* Update connector state */ 4407 amdgpu_dm_update_connector_after_detect(aconnector); 4408 4409 drm_modeset_lock_all(dev); 4410 dm_restore_drm_connector_state(dev, connector); 4411 drm_modeset_unlock_all(dev); 4412 4413 /* Only notify OS if sink actually changed */ 4414 if (!fake_reconnect && aconnector->base.force == DRM_FORCE_UNSPECIFIED) 4415 drm_kms_helper_hotplug_event(dev); 4416 } 4417 4418 /* Release the cached sink reference */ 4419 if (aconnector->hdmi_prev_sink) { 4420 dc_sink_release(aconnector->hdmi_prev_sink); 4421 aconnector->hdmi_prev_sink = NULL; 4422 } 4423 4424 scoped_guard(mutex, &adev->dm.dc_lock) { 4425 if (reallow_idle && dc->caps.ips_support) 4426 dc_allow_idle_optimizations(dc, true); 4427 } 4428 } 4429 4430 static void handle_hpd_irq_helper(struct amdgpu_dm_connector *aconnector) 4431 { 4432 struct drm_connector *connector = &aconnector->base; 4433 struct drm_device *dev = connector->dev; 4434 enum dc_connection_type new_connection_type = dc_connection_none; 4435 struct amdgpu_device *adev = drm_to_adev(dev); 4436 struct dm_connector_state *dm_con_state = to_dm_connector_state(connector->state); 4437 struct dc *dc = aconnector->dc_link->ctx->dc; 4438 bool ret = false; 4439 bool debounce_required = false; 4440 4441 if (adev->dm.disable_hpd_irq) 4442 return; 4443 4444 /* 4445 * In case of failure or MST no need to update connector status or notify the OS 4446 * since (for MST case) MST does this in its own context. 4447 */ 4448 guard(mutex)(&aconnector->hpd_lock); 4449 4450 if (adev->dm.hdcp_workqueue) { 4451 hdcp_reset_display(adev->dm.hdcp_workqueue, aconnector->dc_link->link_index); 4452 dm_con_state->update_hdcp = true; 4453 } 4454 if (aconnector->fake_enable) 4455 aconnector->fake_enable = false; 4456 4457 aconnector->timing_changed = false; 4458 4459 if (!dc_link_detect_connection_type(aconnector->dc_link, &new_connection_type)) 4460 drm_err(adev_to_drm(adev), "KMS: Failed to detect connector\n"); 4461 4462 /* 4463 * Check for HDMI disconnect with debounce enabled. 4464 */ 4465 debounce_required = (aconnector->hdmi_hpd_debounce_delay_ms > 0 && 4466 dc_is_hdmi_signal(aconnector->dc_link->connector_signal) && 4467 new_connection_type == dc_connection_none && 4468 aconnector->dc_link->local_sink != NULL); 4469 4470 if (aconnector->base.force && new_connection_type == dc_connection_none) { 4471 emulated_link_detect(aconnector->dc_link); 4472 4473 drm_modeset_lock_all(dev); 4474 dm_restore_drm_connector_state(dev, connector); 4475 drm_modeset_unlock_all(dev); 4476 4477 if (aconnector->base.force == DRM_FORCE_UNSPECIFIED) 4478 drm_kms_helper_connector_hotplug_event(connector); 4479 } else if (debounce_required) { 4480 /* 4481 * HDMI disconnect detected - schedule delayed work instead of 4482 * processing immediately. This allows us to coalesce spurious 4483 * HDMI signals from physical unplugs. 4484 */ 4485 drm_dbg_kms(dev, "HDMI HPD: Disconnect detected, scheduling debounce work (%u ms)\n", 4486 aconnector->hdmi_hpd_debounce_delay_ms); 4487 4488 /* Cache the current sink for later comparison */ 4489 if (aconnector->hdmi_prev_sink) 4490 dc_sink_release(aconnector->hdmi_prev_sink); 4491 aconnector->hdmi_prev_sink = aconnector->dc_link->local_sink; 4492 if (aconnector->hdmi_prev_sink) 4493 dc_sink_retain(aconnector->hdmi_prev_sink); 4494 4495 /* Schedule delayed detection. */ 4496 if (mod_delayed_work(system_percpu_wq, 4497 &aconnector->hdmi_hpd_debounce_work, 4498 msecs_to_jiffies(aconnector->hdmi_hpd_debounce_delay_ms))) 4499 drm_dbg_kms(dev, "HDMI HPD: Re-scheduled debounce work\n"); 4500 4501 } else { 4502 4503 /* If the aconnector->hdmi_hpd_debounce_work is scheduled, exit early */ 4504 if (delayed_work_pending(&aconnector->hdmi_hpd_debounce_work)) 4505 return; 4506 4507 scoped_guard(mutex, &adev->dm.dc_lock) { 4508 dc_exit_ips_for_hw_access(dc); 4509 ret = dc_link_detect(aconnector->dc_link, DETECT_REASON_HPD); 4510 } 4511 if (ret) { 4512 /* w/a delay for certain panels */ 4513 apply_delay_after_dpcd_poweroff(adev, aconnector->dc_sink); 4514 amdgpu_dm_update_connector_after_detect(aconnector); 4515 4516 drm_modeset_lock_all(dev); 4517 dm_restore_drm_connector_state(dev, connector); 4518 drm_modeset_unlock_all(dev); 4519 4520 if (aconnector->base.force == DRM_FORCE_UNSPECIFIED) 4521 drm_kms_helper_connector_hotplug_event(connector); 4522 } 4523 } 4524 } 4525 4526 static void handle_hpd_irq(void *param) 4527 { 4528 struct amdgpu_dm_connector *aconnector = (struct amdgpu_dm_connector *)param; 4529 4530 handle_hpd_irq_helper(aconnector); 4531 4532 } 4533 4534 static void schedule_hpd_rx_offload_work(struct amdgpu_device *adev, struct hpd_rx_irq_offload_work_queue *offload_wq, 4535 union hpd_irq_data hpd_irq_data) 4536 { 4537 struct hpd_rx_irq_offload_work *offload_work = kzalloc_obj(*offload_work); 4538 4539 if (!offload_work) { 4540 drm_err(adev_to_drm(adev), "Failed to allocate hpd_rx_irq_offload_work.\n"); 4541 return; 4542 } 4543 4544 INIT_WORK(&offload_work->work, dm_handle_hpd_rx_offload_work); 4545 offload_work->data = hpd_irq_data; 4546 offload_work->offload_wq = offload_wq; 4547 offload_work->adev = adev; 4548 4549 queue_work(offload_wq->wq, &offload_work->work); 4550 drm_dbg_kms(adev_to_drm(adev), "queue work to handle hpd_rx offload work"); 4551 } 4552 4553 static void handle_hpd_rx_irq(void *param) 4554 { 4555 struct amdgpu_dm_connector *aconnector = (struct amdgpu_dm_connector *)param; 4556 struct drm_connector *connector = &aconnector->base; 4557 struct drm_device *dev = connector->dev; 4558 struct dc_link *dc_link = aconnector->dc_link; 4559 bool is_mst_root_connector = aconnector->mst_mgr.mst_state; 4560 bool result = false; 4561 enum dc_connection_type new_connection_type = dc_connection_none; 4562 struct amdgpu_device *adev = drm_to_adev(dev); 4563 union hpd_irq_data hpd_irq_data; 4564 bool link_loss = false; 4565 bool has_left_work = false; 4566 int idx = dc_link->link_index; 4567 struct hpd_rx_irq_offload_work_queue *offload_wq = &adev->dm.hpd_rx_offload_wq[idx]; 4568 struct dc *dc = aconnector->dc_link->ctx->dc; 4569 4570 memset(&hpd_irq_data, 0, sizeof(hpd_irq_data)); 4571 4572 if (adev->dm.disable_hpd_irq) 4573 return; 4574 4575 /* 4576 * TODO:Temporary add mutex to protect hpd interrupt not have a gpio 4577 * conflict, after implement i2c helper, this mutex should be 4578 * retired. 4579 */ 4580 mutex_lock(&aconnector->hpd_lock); 4581 4582 result = dc_link_handle_hpd_rx_irq(dc_link, &hpd_irq_data, 4583 &link_loss, true, &has_left_work); 4584 4585 if (!has_left_work) 4586 goto out; 4587 4588 if (hpd_irq_data.bytes.device_service_irq.bits.AUTOMATED_TEST) { 4589 schedule_hpd_rx_offload_work(adev, offload_wq, hpd_irq_data); 4590 goto out; 4591 } 4592 4593 if (dc_link_dp_allow_hpd_rx_irq(dc_link)) { 4594 if (hpd_irq_data.bytes.device_service_irq.bits.UP_REQ_MSG_RDY || 4595 hpd_irq_data.bytes.device_service_irq.bits.DOWN_REP_MSG_RDY) { 4596 bool skip = false; 4597 4598 /* 4599 * DOWN_REP_MSG_RDY is also handled by polling method 4600 * mgr->cbs->poll_hpd_irq() 4601 */ 4602 spin_lock(&offload_wq->offload_lock); 4603 skip = offload_wq->is_handling_mst_msg_rdy_event; 4604 4605 if (!skip) 4606 offload_wq->is_handling_mst_msg_rdy_event = true; 4607 4608 spin_unlock(&offload_wq->offload_lock); 4609 4610 if (!skip) 4611 schedule_hpd_rx_offload_work(adev, offload_wq, hpd_irq_data); 4612 4613 goto out; 4614 } 4615 4616 if (link_loss) { 4617 bool skip = false; 4618 4619 spin_lock(&offload_wq->offload_lock); 4620 skip = offload_wq->is_handling_link_loss; 4621 4622 if (!skip) 4623 offload_wq->is_handling_link_loss = true; 4624 4625 spin_unlock(&offload_wq->offload_lock); 4626 4627 if (!skip) 4628 schedule_hpd_rx_offload_work(adev, offload_wq, hpd_irq_data); 4629 4630 goto out; 4631 } 4632 } 4633 4634 out: 4635 if (result && !is_mst_root_connector) { 4636 /* Downstream Port status changed. */ 4637 if (!dc_link_detect_connection_type(dc_link, &new_connection_type)) 4638 drm_err(adev_to_drm(adev), "KMS: Failed to detect connector\n"); 4639 4640 if (aconnector->base.force && new_connection_type == dc_connection_none) { 4641 emulated_link_detect(dc_link); 4642 4643 if (aconnector->fake_enable) 4644 aconnector->fake_enable = false; 4645 4646 amdgpu_dm_update_connector_after_detect(aconnector); 4647 4648 4649 drm_modeset_lock_all(dev); 4650 dm_restore_drm_connector_state(dev, connector); 4651 drm_modeset_unlock_all(dev); 4652 4653 drm_kms_helper_connector_hotplug_event(connector); 4654 } else { 4655 bool ret = false; 4656 4657 mutex_lock(&adev->dm.dc_lock); 4658 dc_exit_ips_for_hw_access(dc); 4659 ret = dc_link_detect(dc_link, DETECT_REASON_HPDRX); 4660 mutex_unlock(&adev->dm.dc_lock); 4661 4662 if (ret) { 4663 if (aconnector->fake_enable) 4664 aconnector->fake_enable = false; 4665 4666 amdgpu_dm_update_connector_after_detect(aconnector); 4667 4668 drm_modeset_lock_all(dev); 4669 dm_restore_drm_connector_state(dev, connector); 4670 drm_modeset_unlock_all(dev); 4671 4672 drm_kms_helper_connector_hotplug_event(connector); 4673 } 4674 } 4675 } 4676 if (hpd_irq_data.bytes.device_service_irq.bits.CP_IRQ) { 4677 if (adev->dm.hdcp_workqueue) 4678 hdcp_handle_cpirq(adev->dm.hdcp_workqueue, aconnector->base.index); 4679 } 4680 4681 if (dc_link->type != dc_connection_mst_branch) 4682 drm_dp_cec_irq(&aconnector->dm_dp_aux.aux); 4683 4684 mutex_unlock(&aconnector->hpd_lock); 4685 } 4686 4687 static int register_hpd_handlers(struct amdgpu_device *adev) 4688 { 4689 struct drm_device *dev = adev_to_drm(adev); 4690 struct drm_connector *connector; 4691 struct amdgpu_dm_connector *aconnector; 4692 const struct dc_link *dc_link; 4693 struct dc_interrupt_params int_params = {0}; 4694 4695 int_params.requested_polarity = INTERRUPT_POLARITY_DEFAULT; 4696 int_params.current_polarity = INTERRUPT_POLARITY_DEFAULT; 4697 4698 if (dc_is_dmub_outbox_supported(adev->dm.dc)) { 4699 if (!register_dmub_notify_callback(adev, DMUB_NOTIFICATION_HPD, 4700 dmub_hpd_callback, true)) { 4701 drm_err(adev_to_drm(adev), "fail to register dmub hpd callback"); 4702 return -EINVAL; 4703 } 4704 4705 if (!register_dmub_notify_callback(adev, DMUB_NOTIFICATION_HPD_IRQ, 4706 dmub_hpd_callback, true)) { 4707 drm_err(adev_to_drm(adev), "fail to register dmub hpd callback"); 4708 return -EINVAL; 4709 } 4710 4711 if (!register_dmub_notify_callback(adev, DMUB_NOTIFICATION_HPD_SENSE_NOTIFY, 4712 dmub_hpd_sense_callback, true)) { 4713 drm_err(adev_to_drm(adev), "fail to register dmub hpd sense callback"); 4714 return -EINVAL; 4715 } 4716 } 4717 4718 list_for_each_entry(connector, 4719 &dev->mode_config.connector_list, head) { 4720 4721 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 4722 continue; 4723 4724 aconnector = to_amdgpu_dm_connector(connector); 4725 dc_link = aconnector->dc_link; 4726 4727 if (dc_link->irq_source_hpd != DC_IRQ_SOURCE_INVALID) { 4728 int_params.int_context = INTERRUPT_LOW_IRQ_CONTEXT; 4729 int_params.irq_source = dc_link->irq_source_hpd; 4730 4731 if (int_params.irq_source == DC_IRQ_SOURCE_INVALID || 4732 int_params.irq_source < DC_IRQ_SOURCE_HPD1 || 4733 int_params.irq_source > DC_IRQ_SOURCE_HPD6) { 4734 drm_err(adev_to_drm(adev), "Failed to register hpd irq!\n"); 4735 return -EINVAL; 4736 } 4737 4738 if (!amdgpu_dm_irq_register_interrupt(adev, &int_params, 4739 handle_hpd_irq, (void *) aconnector)) 4740 return -ENOMEM; 4741 } 4742 4743 if (dc_link->irq_source_hpd_rx != DC_IRQ_SOURCE_INVALID) { 4744 4745 /* Also register for DP short pulse (hpd_rx). */ 4746 int_params.int_context = INTERRUPT_LOW_IRQ_CONTEXT; 4747 int_params.irq_source = dc_link->irq_source_hpd_rx; 4748 4749 if (int_params.irq_source == DC_IRQ_SOURCE_INVALID || 4750 int_params.irq_source < DC_IRQ_SOURCE_HPD1RX || 4751 int_params.irq_source > DC_IRQ_SOURCE_HPD6RX) { 4752 drm_err(adev_to_drm(adev), "Failed to register hpd rx irq!\n"); 4753 return -EINVAL; 4754 } 4755 4756 if (!amdgpu_dm_irq_register_interrupt(adev, &int_params, 4757 handle_hpd_rx_irq, (void *) aconnector)) 4758 return -ENOMEM; 4759 } 4760 } 4761 return 0; 4762 } 4763 4764 /* Register IRQ sources and initialize IRQ callbacks */ 4765 static int dce110_register_irq_handlers(struct amdgpu_device *adev) 4766 { 4767 struct dc *dc = adev->dm.dc; 4768 struct common_irq_params *c_irq_params; 4769 struct dc_interrupt_params int_params = {0}; 4770 int r; 4771 int i; 4772 unsigned int src_id; 4773 unsigned int client_id = AMDGPU_IRQ_CLIENTID_LEGACY; 4774 /* Use different interrupts for VBLANK on DCE 6 vs. newer. */ 4775 const unsigned int vblank_d1 = 4776 adev->dm.dc->ctx->dce_version >= DCE_VERSION_8_0 4777 ? VISLANDS30_IV_SRCID_D1_VERTICAL_INTERRUPT0 : 1; 4778 4779 if (adev->family >= AMDGPU_FAMILY_AI) 4780 client_id = SOC15_IH_CLIENTID_DCE; 4781 4782 int_params.requested_polarity = INTERRUPT_POLARITY_DEFAULT; 4783 int_params.current_polarity = INTERRUPT_POLARITY_DEFAULT; 4784 4785 /* 4786 * Actions of amdgpu_irq_add_id(): 4787 * 1. Register a set() function with base driver. 4788 * Base driver will call set() function to enable/disable an 4789 * interrupt in DC hardware. 4790 * 2. Register amdgpu_dm_irq_handler(). 4791 * Base driver will call amdgpu_dm_irq_handler() for ALL interrupts 4792 * coming from DC hardware. 4793 * amdgpu_dm_irq_handler() will re-direct the interrupt to DC 4794 * for acknowledging and handling. 4795 */ 4796 4797 /* Use VBLANK interrupt */ 4798 for (i = 0; i < adev->mode_info.num_crtc; i++) { 4799 src_id = vblank_d1 + i; 4800 r = amdgpu_irq_add_id(adev, client_id, src_id, &adev->crtc_irq); 4801 if (r) { 4802 drm_err(adev_to_drm(adev), "Failed to add crtc irq id!\n"); 4803 return r; 4804 } 4805 4806 int_params.int_context = INTERRUPT_HIGH_IRQ_CONTEXT; 4807 int_params.irq_source = 4808 dc_interrupt_to_irq_source(dc, src_id, 0); 4809 4810 if (int_params.irq_source == DC_IRQ_SOURCE_INVALID || 4811 int_params.irq_source < DC_IRQ_SOURCE_VBLANK1 || 4812 int_params.irq_source > DC_IRQ_SOURCE_VBLANK6) { 4813 drm_err(adev_to_drm(adev), "Failed to register vblank irq!\n"); 4814 return -EINVAL; 4815 } 4816 4817 c_irq_params = &adev->dm.vblank_params[int_params.irq_source - DC_IRQ_SOURCE_VBLANK1]; 4818 4819 c_irq_params->adev = adev; 4820 c_irq_params->irq_src = int_params.irq_source; 4821 4822 if (!amdgpu_dm_irq_register_interrupt(adev, &int_params, 4823 dm_crtc_high_irq, c_irq_params)) 4824 return -ENOMEM; 4825 } 4826 4827 if (dc_supports_vrr(adev->dm.dc->ctx->dce_version)) { 4828 /* Use VUPDATE interrupt */ 4829 for (i = 0; i < adev->mode_info.num_crtc; i++) { 4830 src_id = VISLANDS30_IV_SRCID_D1_V_UPDATE_INT + i * 2; 4831 r = amdgpu_irq_add_id(adev, client_id, src_id, &adev->vupdate_irq); 4832 if (r) { 4833 drm_err(adev_to_drm(adev), "Failed to add vupdate irq id!\n"); 4834 return r; 4835 } 4836 4837 int_params.int_context = INTERRUPT_HIGH_IRQ_CONTEXT; 4838 int_params.irq_source = 4839 dc_interrupt_to_irq_source(dc, src_id, 0); 4840 4841 if (int_params.irq_source == DC_IRQ_SOURCE_INVALID || 4842 int_params.irq_source < DC_IRQ_SOURCE_VUPDATE1 || 4843 int_params.irq_source > DC_IRQ_SOURCE_VUPDATE6) { 4844 drm_err(adev_to_drm(adev), "Failed to register vupdate irq!\n"); 4845 return -EINVAL; 4846 } 4847 4848 c_irq_params = &adev->dm.vupdate_params[ 4849 int_params.irq_source - DC_IRQ_SOURCE_VUPDATE1]; 4850 c_irq_params->adev = adev; 4851 c_irq_params->irq_src = int_params.irq_source; 4852 4853 if (!amdgpu_dm_irq_register_interrupt(adev, &int_params, 4854 dm_vupdate_high_irq, c_irq_params)) 4855 return -ENOMEM; 4856 } 4857 } 4858 4859 /* Use GRPH_PFLIP interrupt */ 4860 for (i = VISLANDS30_IV_SRCID_D1_GRPH_PFLIP; 4861 i <= VISLANDS30_IV_SRCID_D6_GRPH_PFLIP; i += 2) { 4862 r = amdgpu_irq_add_id(adev, client_id, i, &adev->pageflip_irq); 4863 if (r) { 4864 drm_err(adev_to_drm(adev), "Failed to add page flip irq id!\n"); 4865 return r; 4866 } 4867 4868 int_params.int_context = INTERRUPT_HIGH_IRQ_CONTEXT; 4869 int_params.irq_source = 4870 dc_interrupt_to_irq_source(dc, i, 0); 4871 4872 if (int_params.irq_source == DC_IRQ_SOURCE_INVALID || 4873 int_params.irq_source < DC_IRQ_SOURCE_PFLIP_FIRST || 4874 int_params.irq_source > DC_IRQ_SOURCE_PFLIP_LAST) { 4875 drm_err(adev_to_drm(adev), "Failed to register pflip irq!\n"); 4876 return -EINVAL; 4877 } 4878 4879 c_irq_params = &adev->dm.pflip_params[int_params.irq_source - DC_IRQ_SOURCE_PFLIP_FIRST]; 4880 4881 c_irq_params->adev = adev; 4882 c_irq_params->irq_src = int_params.irq_source; 4883 4884 if (!amdgpu_dm_irq_register_interrupt(adev, &int_params, 4885 dm_pflip_high_irq, c_irq_params)) 4886 return -ENOMEM; 4887 } 4888 4889 /* HPD */ 4890 r = amdgpu_irq_add_id(adev, client_id, 4891 VISLANDS30_IV_SRCID_HOTPLUG_DETECT_A, &adev->hpd_irq); 4892 if (r) { 4893 drm_err(adev_to_drm(adev), "Failed to add hpd irq id!\n"); 4894 return r; 4895 } 4896 4897 r = register_hpd_handlers(adev); 4898 4899 return r; 4900 } 4901 4902 /* Register IRQ sources and initialize IRQ callbacks */ 4903 static int dcn10_register_irq_handlers(struct amdgpu_device *adev) 4904 { 4905 struct dc *dc = adev->dm.dc; 4906 struct common_irq_params *c_irq_params; 4907 struct dc_interrupt_params int_params = {0}; 4908 int r; 4909 int i; 4910 #if defined(CONFIG_DRM_AMD_SECURE_DISPLAY) 4911 static const unsigned int vrtl_int_srcid[] = { 4912 DCN_1_0__SRCID__OTG1_VERTICAL_INTERRUPT0_CONTROL, 4913 DCN_1_0__SRCID__OTG2_VERTICAL_INTERRUPT0_CONTROL, 4914 DCN_1_0__SRCID__OTG3_VERTICAL_INTERRUPT0_CONTROL, 4915 DCN_1_0__SRCID__OTG4_VERTICAL_INTERRUPT0_CONTROL, 4916 DCN_1_0__SRCID__OTG5_VERTICAL_INTERRUPT0_CONTROL, 4917 DCN_1_0__SRCID__OTG6_VERTICAL_INTERRUPT0_CONTROL 4918 }; 4919 #endif 4920 4921 int_params.requested_polarity = INTERRUPT_POLARITY_DEFAULT; 4922 int_params.current_polarity = INTERRUPT_POLARITY_DEFAULT; 4923 4924 /* 4925 * Actions of amdgpu_irq_add_id(): 4926 * 1. Register a set() function with base driver. 4927 * Base driver will call set() function to enable/disable an 4928 * interrupt in DC hardware. 4929 * 2. Register amdgpu_dm_irq_handler(). 4930 * Base driver will call amdgpu_dm_irq_handler() for ALL interrupts 4931 * coming from DC hardware. 4932 * amdgpu_dm_irq_handler() will re-direct the interrupt to DC 4933 * for acknowledging and handling. 4934 */ 4935 4936 /* Use otg vertical line interrupt */ 4937 #if defined(CONFIG_DRM_AMD_SECURE_DISPLAY) 4938 for (i = 0; i <= adev->mode_info.num_crtc - 1; i++) { 4939 r = amdgpu_irq_add_id(adev, SOC15_IH_CLIENTID_DCE, 4940 vrtl_int_srcid[i], &adev->vline0_irq); 4941 4942 if (r) { 4943 drm_err(adev_to_drm(adev), "Failed to add vline0 irq id!\n"); 4944 return r; 4945 } 4946 4947 int_params.int_context = INTERRUPT_HIGH_IRQ_CONTEXT; 4948 int_params.irq_source = 4949 dc_interrupt_to_irq_source(dc, vrtl_int_srcid[i], 0); 4950 4951 if (int_params.irq_source == DC_IRQ_SOURCE_INVALID || 4952 int_params.irq_source < DC_IRQ_SOURCE_DC1_VLINE0 || 4953 int_params.irq_source > DC_IRQ_SOURCE_DC6_VLINE0) { 4954 drm_err(adev_to_drm(adev), "Failed to register vline0 irq!\n"); 4955 return -EINVAL; 4956 } 4957 4958 c_irq_params = &adev->dm.vline0_params[int_params.irq_source 4959 - DC_IRQ_SOURCE_DC1_VLINE0]; 4960 4961 c_irq_params->adev = adev; 4962 c_irq_params->irq_src = int_params.irq_source; 4963 4964 if (!amdgpu_dm_irq_register_interrupt(adev, &int_params, 4965 dm_dcn_vertical_interrupt0_high_irq, 4966 c_irq_params)) 4967 return -ENOMEM; 4968 } 4969 #endif 4970 4971 /* Use VUPDATE_NO_LOCK interrupt on DCN, which seems to correspond to 4972 * the regular VUPDATE interrupt on DCE. We want DC_IRQ_SOURCE_VUPDATEx 4973 * to trigger at end of each vblank, regardless of state of the lock, 4974 * matching DCE behaviour. 4975 */ 4976 for (i = DCN_1_0__SRCID__OTG0_IHC_V_UPDATE_NO_LOCK_INTERRUPT; 4977 i <= DCN_1_0__SRCID__OTG0_IHC_V_UPDATE_NO_LOCK_INTERRUPT + adev->mode_info.num_crtc - 1; 4978 i++) { 4979 r = amdgpu_irq_add_id(adev, SOC15_IH_CLIENTID_DCE, i, &adev->vupdate_irq); 4980 4981 if (r) { 4982 drm_err(adev_to_drm(adev), "Failed to add vupdate irq id!\n"); 4983 return r; 4984 } 4985 4986 int_params.int_context = INTERRUPT_HIGH_IRQ_CONTEXT; 4987 int_params.irq_source = 4988 dc_interrupt_to_irq_source(dc, i, 0); 4989 4990 if (int_params.irq_source == DC_IRQ_SOURCE_INVALID || 4991 int_params.irq_source < DC_IRQ_SOURCE_VUPDATE1 || 4992 int_params.irq_source > DC_IRQ_SOURCE_VUPDATE6) { 4993 drm_err(adev_to_drm(adev), "Failed to register vupdate irq!\n"); 4994 return -EINVAL; 4995 } 4996 4997 c_irq_params = &adev->dm.vupdate_params[int_params.irq_source - DC_IRQ_SOURCE_VUPDATE1]; 4998 4999 c_irq_params->adev = adev; 5000 c_irq_params->irq_src = int_params.irq_source; 5001 5002 if (!amdgpu_dm_irq_register_interrupt(adev, &int_params, 5003 dm_vupdate_high_irq, c_irq_params)) 5004 return -ENOMEM; 5005 } 5006 5007 /* HPD */ 5008 r = amdgpu_irq_add_id(adev, SOC15_IH_CLIENTID_DCE, DCN_1_0__SRCID__DC_HPD1_INT, 5009 &adev->hpd_irq); 5010 if (r) { 5011 drm_err(adev_to_drm(adev), "Failed to add hpd irq id!\n"); 5012 return r; 5013 } 5014 5015 r = register_hpd_handlers(adev); 5016 5017 return r; 5018 } 5019 /* Register Outbox IRQ sources and initialize IRQ callbacks */ 5020 static int register_outbox_irq_handlers(struct amdgpu_device *adev) 5021 { 5022 struct dc *dc = adev->dm.dc; 5023 struct common_irq_params *c_irq_params; 5024 struct dc_interrupt_params int_params = {0}; 5025 int r, i; 5026 5027 int_params.requested_polarity = INTERRUPT_POLARITY_DEFAULT; 5028 int_params.current_polarity = INTERRUPT_POLARITY_DEFAULT; 5029 5030 r = amdgpu_irq_add_id(adev, SOC15_IH_CLIENTID_DCE, DCN_1_0__SRCID__DMCUB_OUTBOX_LOW_PRIORITY_READY_INT, 5031 &adev->dmub_outbox_irq); 5032 if (r) { 5033 drm_err(adev_to_drm(adev), "Failed to add outbox irq id!\n"); 5034 return r; 5035 } 5036 5037 if (dc->ctx->dmub_srv) { 5038 i = DCN_1_0__SRCID__DMCUB_OUTBOX_LOW_PRIORITY_READY_INT; 5039 int_params.int_context = INTERRUPT_LOW_IRQ_CONTEXT; 5040 int_params.irq_source = 5041 dc_interrupt_to_irq_source(dc, i, 0); 5042 5043 c_irq_params = &adev->dm.dmub_outbox_params[0]; 5044 5045 c_irq_params->adev = adev; 5046 c_irq_params->irq_src = int_params.irq_source; 5047 5048 if (!amdgpu_dm_irq_register_interrupt(adev, &int_params, 5049 dm_dmub_outbox1_low_irq, c_irq_params)) 5050 return -ENOMEM; 5051 } 5052 5053 return 0; 5054 } 5055 5056 /* 5057 * Acquires the lock for the atomic state object and returns 5058 * the new atomic state. 5059 * 5060 * This should only be called during atomic check. 5061 */ 5062 int dm_atomic_get_state(struct drm_atomic_commit *state, 5063 struct dm_atomic_state **dm_state) 5064 { 5065 struct drm_device *dev = state->dev; 5066 struct amdgpu_device *adev = drm_to_adev(dev); 5067 struct amdgpu_display_manager *dm = &adev->dm; 5068 struct drm_private_state *priv_state; 5069 5070 if (*dm_state) 5071 return 0; 5072 5073 priv_state = drm_atomic_get_private_obj_state(state, &dm->atomic_obj); 5074 if (IS_ERR(priv_state)) 5075 return PTR_ERR(priv_state); 5076 5077 *dm_state = to_dm_atomic_state(priv_state); 5078 5079 return 0; 5080 } 5081 5082 static struct dm_atomic_state * 5083 dm_atomic_get_new_state(struct drm_atomic_commit *state) 5084 { 5085 struct drm_device *dev = state->dev; 5086 struct amdgpu_device *adev = drm_to_adev(dev); 5087 struct amdgpu_display_manager *dm = &adev->dm; 5088 struct drm_private_obj *obj; 5089 struct drm_private_state *new_obj_state; 5090 int i; 5091 5092 for_each_new_private_obj_in_state(state, obj, new_obj_state, i) { 5093 if (obj->funcs == dm->atomic_obj.funcs) 5094 return to_dm_atomic_state(new_obj_state); 5095 } 5096 5097 return NULL; 5098 } 5099 5100 static struct drm_private_state * 5101 dm_atomic_duplicate_state(struct drm_private_obj *obj) 5102 { 5103 struct dm_atomic_state *old_state, *new_state; 5104 5105 new_state = kzalloc_obj(*new_state); 5106 if (!new_state) 5107 return NULL; 5108 5109 __drm_atomic_helper_private_obj_duplicate_state(obj, &new_state->base); 5110 5111 old_state = to_dm_atomic_state(obj->state); 5112 5113 if (old_state && old_state->context) 5114 new_state->context = dc_state_create_copy(old_state->context); 5115 5116 if (!new_state->context) { 5117 kfree(new_state); 5118 return NULL; 5119 } 5120 5121 return &new_state->base; 5122 } 5123 5124 static void dm_atomic_destroy_state(struct drm_private_obj *obj, 5125 struct drm_private_state *state) 5126 { 5127 struct dm_atomic_state *dm_state = to_dm_atomic_state(state); 5128 5129 if (dm_state && dm_state->context) 5130 dc_state_release(dm_state->context); 5131 5132 kfree(dm_state); 5133 } 5134 5135 static struct drm_private_state * 5136 dm_atomic_create_state(struct drm_private_obj *obj) 5137 { 5138 struct amdgpu_device *adev = drm_to_adev(obj->dev); 5139 struct dm_atomic_state *dm_state; 5140 struct dc_state *context; 5141 5142 dm_state = kzalloc_obj(*dm_state); 5143 if (!dm_state) 5144 return ERR_PTR(-ENOMEM); 5145 5146 context = dc_state_create_current_copy(adev->dm.dc); 5147 if (!context) { 5148 kfree(dm_state); 5149 return ERR_PTR(-ENOMEM); 5150 } 5151 5152 __drm_atomic_helper_private_obj_create_state(obj, &dm_state->base); 5153 dm_state->context = context; 5154 5155 return &dm_state->base; 5156 } 5157 5158 static struct drm_private_state_funcs dm_atomic_state_funcs = { 5159 .atomic_create_state = dm_atomic_create_state, 5160 .atomic_duplicate_state = dm_atomic_duplicate_state, 5161 .atomic_destroy_state = dm_atomic_destroy_state, 5162 }; 5163 5164 static int amdgpu_dm_mode_config_init(struct amdgpu_device *adev) 5165 { 5166 int r; 5167 5168 adev->mode_info.mode_config_initialized = true; 5169 5170 adev_to_drm(adev)->mode_config.funcs = (void *)&amdgpu_dm_mode_funcs; 5171 adev_to_drm(adev)->mode_config.helper_private = &amdgpu_dm_mode_config_helperfuncs; 5172 5173 adev_to_drm(adev)->mode_config.max_width = 16384; 5174 adev_to_drm(adev)->mode_config.max_height = 16384; 5175 5176 adev_to_drm(adev)->mode_config.preferred_depth = 24; 5177 if (adev->asic_type == CHIP_HAWAII) 5178 /* disable prefer shadow for now due to hibernation issues */ 5179 adev_to_drm(adev)->mode_config.prefer_shadow = 0; 5180 else 5181 adev_to_drm(adev)->mode_config.prefer_shadow = 1; 5182 /* indicates support for immediate flip */ 5183 adev_to_drm(adev)->mode_config.async_page_flip = true; 5184 5185 drm_atomic_private_obj_init(adev_to_drm(adev), 5186 &adev->dm.atomic_obj, 5187 &dm_atomic_state_funcs); 5188 5189 r = amdgpu_display_modeset_create_props(adev); 5190 if (r) 5191 return r; 5192 5193 #ifdef AMD_PRIVATE_COLOR 5194 if (amdgpu_dm_create_color_properties(adev)) 5195 return -ENOMEM; 5196 #endif 5197 5198 r = amdgpu_dm_audio_init(adev); 5199 if (r) 5200 return r; 5201 5202 return 0; 5203 } 5204 5205 #define AMDGPU_DM_DEFAULT_MIN_BACKLIGHT 12 5206 #define AMDGPU_DM_DEFAULT_MAX_BACKLIGHT 255 5207 #define AMDGPU_DM_MIN_SPREAD ((AMDGPU_DM_DEFAULT_MAX_BACKLIGHT - AMDGPU_DM_DEFAULT_MIN_BACKLIGHT) / 2) 5208 #define AUX_BL_DEFAULT_TRANSITION_TIME_MS 50 5209 5210 void amdgpu_dm_update_backlight_caps(struct amdgpu_display_manager *dm, 5211 int bl_idx) 5212 { 5213 struct amdgpu_dm_backlight_caps *caps = &dm->backlight_caps[bl_idx]; 5214 5215 if (caps->caps_valid) 5216 return; 5217 5218 #if defined(CONFIG_ACPI) 5219 amdgpu_acpi_get_backlight_caps(caps); 5220 5221 /* validate the firmware value is sane */ 5222 if (caps->caps_valid) { 5223 int spread = caps->max_input_signal - caps->min_input_signal; 5224 5225 if (caps->max_input_signal > AMDGPU_DM_DEFAULT_MAX_BACKLIGHT || 5226 caps->min_input_signal < 0 || 5227 spread > AMDGPU_DM_DEFAULT_MAX_BACKLIGHT || 5228 spread < AMDGPU_DM_MIN_SPREAD) { 5229 drm_dbg_kms(adev_to_drm(dm->adev), "DM: Invalid backlight caps: min=%d, max=%d\n", 5230 caps->min_input_signal, caps->max_input_signal); 5231 caps->caps_valid = false; 5232 } 5233 } 5234 5235 if (!caps->caps_valid) { 5236 caps->min_input_signal = AMDGPU_DM_DEFAULT_MIN_BACKLIGHT; 5237 caps->max_input_signal = AMDGPU_DM_DEFAULT_MAX_BACKLIGHT; 5238 caps->caps_valid = true; 5239 } 5240 #else 5241 if (caps->aux_support) 5242 return; 5243 5244 caps->min_input_signal = AMDGPU_DM_DEFAULT_MIN_BACKLIGHT; 5245 caps->max_input_signal = AMDGPU_DM_DEFAULT_MAX_BACKLIGHT; 5246 caps->caps_valid = true; 5247 #endif 5248 } 5249 5250 static int get_brightness_range(const struct amdgpu_dm_backlight_caps *caps, 5251 unsigned int *min, unsigned int *max) 5252 { 5253 if (!caps) 5254 return 0; 5255 5256 if (caps->aux_support) { 5257 // Firmware limits are in nits, DC API wants millinits. 5258 *max = 1000 * caps->aux_max_input_signal; 5259 *min = 1000 * caps->aux_min_input_signal; 5260 } else { 5261 // Firmware limits are 8-bit, PWM control is 16-bit. 5262 *max = 0x101 * caps->max_input_signal; 5263 *min = 0x101 * caps->min_input_signal; 5264 } 5265 return 1; 5266 } 5267 5268 /* Rescale from [min..max] to [0..AMDGPU_MAX_BL_LEVEL] */ 5269 static inline u32 scale_input_to_fw(int min, int max, u64 input) 5270 { 5271 return DIV_ROUND_CLOSEST_ULL(input * AMDGPU_MAX_BL_LEVEL, max - min); 5272 } 5273 5274 /* Rescale from [0..AMDGPU_MAX_BL_LEVEL] to [min..max] */ 5275 static inline u32 scale_fw_to_input(int min, int max, u64 input) 5276 { 5277 return min + DIV_ROUND_CLOSEST_ULL(input * (max - min), AMDGPU_MAX_BL_LEVEL); 5278 } 5279 5280 static void convert_custom_brightness(const struct amdgpu_dm_backlight_caps *caps, 5281 unsigned int min, unsigned int max, 5282 uint32_t *user_brightness) 5283 { 5284 u32 brightness = scale_input_to_fw(min, max, *user_brightness); 5285 u8 lower_signal, upper_signal, upper_lum, lower_lum, lum; 5286 int left, right; 5287 5288 if (amdgpu_dc_debug_mask & DC_DISABLE_CUSTOM_BRIGHTNESS_CURVE) 5289 return; 5290 5291 if (!caps->data_points) 5292 return; 5293 5294 /* 5295 * Handle the case where brightness is below the first data point 5296 * Interpolate between (0,0) and (first_signal, first_lum) 5297 */ 5298 if (brightness < caps->luminance_data[0].input_signal) { 5299 lum = DIV_ROUND_CLOSEST(caps->luminance_data[0].luminance * brightness, 5300 caps->luminance_data[0].input_signal); 5301 goto scale; 5302 } 5303 5304 left = 0; 5305 right = caps->data_points - 1; 5306 while (left <= right) { 5307 int mid = left + (right - left) / 2; 5308 u8 signal = caps->luminance_data[mid].input_signal; 5309 5310 /* Exact match found */ 5311 if (signal == brightness) { 5312 lum = caps->luminance_data[mid].luminance; 5313 goto scale; 5314 } 5315 5316 if (signal < brightness) 5317 left = mid + 1; 5318 else 5319 right = mid - 1; 5320 } 5321 5322 /* verify bound */ 5323 if (left >= caps->data_points) 5324 left = caps->data_points - 1; 5325 5326 /* At this point, left > right */ 5327 lower_signal = caps->luminance_data[right].input_signal; 5328 upper_signal = caps->luminance_data[left].input_signal; 5329 lower_lum = caps->luminance_data[right].luminance; 5330 upper_lum = caps->luminance_data[left].luminance; 5331 5332 /* interpolate */ 5333 if (right == left || !lower_lum) 5334 lum = upper_lum; 5335 else 5336 lum = lower_lum + DIV_ROUND_CLOSEST((upper_lum - lower_lum) * 5337 (brightness - lower_signal), 5338 upper_signal - lower_signal); 5339 scale: 5340 *user_brightness = scale_fw_to_input(min, max, 5341 DIV_ROUND_CLOSEST(lum * brightness, 101)); 5342 } 5343 5344 static u32 convert_brightness_from_user(const struct amdgpu_dm_backlight_caps *caps, 5345 uint32_t brightness) 5346 { 5347 unsigned int min, max; 5348 5349 if (!get_brightness_range(caps, &min, &max)) 5350 return brightness; 5351 5352 convert_custom_brightness(caps, min, max, &brightness); 5353 5354 // Rescale 0..max to min..max 5355 return min + DIV_ROUND_CLOSEST_ULL((u64)(max - min) * brightness, max); 5356 } 5357 5358 static u32 convert_brightness_to_user(const struct amdgpu_dm_backlight_caps *caps, 5359 uint32_t brightness) 5360 { 5361 unsigned int min, max; 5362 5363 if (!get_brightness_range(caps, &min, &max)) 5364 return brightness; 5365 5366 if (brightness < min) 5367 return 0; 5368 // Rescale min..max to 0..max 5369 return DIV_ROUND_CLOSEST_ULL((u64)max * (brightness - min), 5370 max - min); 5371 } 5372 5373 static struct dc_stream_state *dm_find_stream_with_link( 5374 struct amdgpu_display_manager *dm, 5375 struct dc_link *link) 5376 { 5377 struct dc_state *cur_dc_state = dm->dc->current_state; 5378 struct dc_stream_state *stream = NULL; 5379 int i; 5380 5381 for (i = 0; i < cur_dc_state->stream_count; i++) { 5382 stream = cur_dc_state->streams[i]; 5383 if (stream->link == link) 5384 return stream; 5385 } 5386 5387 return NULL; 5388 } 5389 5390 static void amdgpu_dm_backlight_set_level(struct amdgpu_display_manager *dm, 5391 int bl_idx, 5392 u32 user_brightness) 5393 { 5394 struct amdgpu_dm_backlight_caps *caps; 5395 struct dc_link *link; 5396 u32 brightness = 0; 5397 bool rc = false, reallow_idle = false; 5398 struct drm_connector *connector; 5399 struct dc_stream_state *stream; 5400 unsigned int min, max; 5401 5402 list_for_each_entry(connector, &dm->ddev->mode_config.connector_list, head) { 5403 struct amdgpu_dm_connector *aconnector = to_amdgpu_dm_connector(connector); 5404 5405 if (aconnector->bl_idx != bl_idx) 5406 continue; 5407 5408 /* if connector is off, save the brightness for next time it's on */ 5409 if (!aconnector->base.encoder) { 5410 dm->brightness[bl_idx] = user_brightness; 5411 dm->actual_brightness[bl_idx] = 0; 5412 return; 5413 } 5414 } 5415 5416 amdgpu_dm_update_backlight_caps(dm, bl_idx); 5417 caps = &dm->backlight_caps[bl_idx]; 5418 5419 dm->brightness[bl_idx] = user_brightness; 5420 /* update scratch register */ 5421 if (bl_idx == 0) 5422 amdgpu_atombios_scratch_regs_set_backlight_level(dm->adev, dm->brightness[bl_idx]); 5423 brightness = convert_brightness_from_user(caps, dm->brightness[bl_idx]); 5424 link = (struct dc_link *)dm->backlight_link[bl_idx]; 5425 5426 /* Apply brightness quirk */ 5427 if (caps->brightness_mask) 5428 brightness |= caps->brightness_mask; 5429 5430 if (trace_amdgpu_dm_brightness_enabled()) { 5431 trace_amdgpu_dm_brightness(__builtin_return_address(0), 5432 user_brightness, 5433 brightness, 5434 caps->aux_support, 5435 power_supply_is_system_supplied() > 0); 5436 } 5437 5438 stream = dm_find_stream_with_link(dm, link); 5439 if (!stream) 5440 return; 5441 5442 mutex_lock(&dm->dc_lock); 5443 if (dm->dc->caps.ips_support && dm->dc->ctx->dmub_srv->idle_allowed) { 5444 dc_allow_idle_optimizations(dm->dc, false); 5445 reallow_idle = true; 5446 } 5447 5448 if (caps->aux_support) { 5449 rc = mod_power_set_backlight_nits(dm->power_module, stream, brightness, 5450 AUX_BL_DEFAULT_TRANSITION_TIME_MS, false, true); 5451 } else { 5452 /* power module uses millipercent */ 5453 get_brightness_range(caps, &min, &max); 5454 brightness = DIV_ROUND_CLOSEST(brightness * 100, (max - min)) * 1000; 5455 rc = mod_power_set_backlight_percent(dm->power_module, stream, 5456 brightness, 0, false); 5457 } 5458 5459 /* 5460 * Some kms clients create a ramped backlight transition effect 5461 * by rapidly changing the backlight. Yet we must wait on dmcub 5462 * fw to exit psr/replay before programming backlight. To 5463 * prevent lag, keep disable psr/replay and let the next atomic 5464 * flip clear the event. 5465 * 5466 * ToDo: use ISM to handle rapidly backlight change 5467 * 5468 * Rapidly backlight change is similar to rapidly cursor events, 5469 * which is now handled by ISM. ISM can delay the event until system 5470 * is really idle, so we may use ISM to handle backlight change as well. 5471 */ 5472 amdgpu_dm_psr_set_event(dm, stream, true, 5473 psr_event_hw_programming, true); 5474 amdgpu_dm_replay_set_event(dm, stream, true, 5475 replay_event_hw_programming, true); 5476 5477 if (dm->dc->caps.ips_support && reallow_idle) 5478 dc_allow_idle_optimizations(dm->dc, true); 5479 5480 mutex_unlock(&dm->dc_lock); 5481 5482 if (rc) 5483 dm->actual_brightness[bl_idx] = user_brightness; 5484 } 5485 5486 static int amdgpu_dm_backlight_update_status(struct backlight_device *bd) 5487 { 5488 struct amdgpu_display_manager *dm = bl_get_data(bd); 5489 int i; 5490 5491 for (i = 0; i < dm->num_of_edps; i++) { 5492 if (bd == dm->backlight_dev[i]) 5493 break; 5494 } 5495 if (i >= AMDGPU_DM_MAX_NUM_EDP) 5496 i = 0; 5497 amdgpu_dm_backlight_set_level(dm, i, bd->props.brightness); 5498 5499 return 0; 5500 } 5501 5502 static u32 amdgpu_dm_backlight_get_level(struct amdgpu_display_manager *dm, 5503 int bl_idx) 5504 { 5505 int ret; 5506 struct amdgpu_dm_backlight_caps caps; 5507 struct dc_link *link = (struct dc_link *)dm->backlight_link[bl_idx]; 5508 5509 amdgpu_dm_update_backlight_caps(dm, bl_idx); 5510 caps = dm->backlight_caps[bl_idx]; 5511 5512 if (caps.aux_support) { 5513 u32 avg, peak; 5514 5515 if (!dc_link_get_backlight_level_nits(link, &avg, &peak)) 5516 return dm->brightness[bl_idx]; 5517 return convert_brightness_to_user(&caps, avg); 5518 } 5519 5520 ret = dc_link_get_backlight_level(link); 5521 5522 if (ret == DC_ERROR_UNEXPECTED) 5523 return dm->brightness[bl_idx]; 5524 5525 return convert_brightness_to_user(&caps, ret); 5526 } 5527 5528 static int amdgpu_dm_backlight_get_brightness(struct backlight_device *bd) 5529 { 5530 struct amdgpu_display_manager *dm = bl_get_data(bd); 5531 int i; 5532 5533 for (i = 0; i < dm->num_of_edps; i++) { 5534 if (bd == dm->backlight_dev[i]) 5535 break; 5536 } 5537 if (i >= AMDGPU_DM_MAX_NUM_EDP) 5538 i = 0; 5539 return amdgpu_dm_backlight_get_level(dm, i); 5540 } 5541 5542 static const struct backlight_ops amdgpu_dm_backlight_ops = { 5543 .options = BL_CORE_SUSPENDRESUME, 5544 .get_brightness = amdgpu_dm_backlight_get_brightness, 5545 .update_status = amdgpu_dm_backlight_update_status, 5546 }; 5547 5548 static void 5549 amdgpu_dm_register_backlight_device(struct amdgpu_dm_connector *aconnector) 5550 { 5551 struct drm_device *drm = aconnector->base.dev; 5552 struct amdgpu_display_manager *dm = &drm_to_adev(drm)->dm; 5553 struct backlight_properties props = { 0 }; 5554 struct amdgpu_dm_backlight_caps *caps; 5555 char bl_name[16]; 5556 int min, max; 5557 int real_brightness; 5558 int init_brightness; 5559 5560 if (aconnector->bl_idx == -1) 5561 return; 5562 5563 if (!acpi_video_backlight_use_native()) { 5564 drm_info(drm, "Skipping amdgpu DM backlight registration\n"); 5565 /* Try registering an ACPI video backlight device instead. */ 5566 acpi_video_register_backlight(); 5567 return; 5568 } 5569 5570 caps = &dm->backlight_caps[aconnector->bl_idx]; 5571 if (get_brightness_range(caps, &min, &max)) { 5572 if (power_supply_is_system_supplied() > 0) 5573 props.brightness = DIV_ROUND_CLOSEST(max * caps->ac_level, 100); 5574 else 5575 props.brightness = DIV_ROUND_CLOSEST(max * caps->dc_level, 100); 5576 /* min is zero, so max needs to be adjusted */ 5577 props.max_brightness = max; 5578 drm_dbg(drm, "Backlight caps: min: %d, max: %d, ac %d, dc %d\n", min, max, 5579 caps->ac_level, caps->dc_level); 5580 } else 5581 props.brightness = props.max_brightness = MAX_BACKLIGHT_LEVEL; 5582 5583 init_brightness = props.brightness; 5584 5585 if (caps->data_points && !(amdgpu_dc_debug_mask & DC_DISABLE_CUSTOM_BRIGHTNESS_CURVE)) { 5586 drm_info(drm, "Using custom brightness curve\n"); 5587 props.scale = BACKLIGHT_SCALE_NON_LINEAR; 5588 } else 5589 props.scale = BACKLIGHT_SCALE_LINEAR; 5590 props.type = BACKLIGHT_RAW; 5591 5592 snprintf(bl_name, sizeof(bl_name), "amdgpu_bl%d", 5593 drm->primary->index + aconnector->bl_idx); 5594 5595 dm->backlight_dev[aconnector->bl_idx] = 5596 backlight_device_register(bl_name, aconnector->base.kdev, dm, 5597 &amdgpu_dm_backlight_ops, &props); 5598 dm->brightness[aconnector->bl_idx] = props.brightness; 5599 5600 if (IS_ERR(dm->backlight_dev[aconnector->bl_idx])) { 5601 drm_err(drm, "DM: Backlight registration failed!\n"); 5602 dm->backlight_dev[aconnector->bl_idx] = NULL; 5603 } else { 5604 /* 5605 * dm->brightness[x] can be inconsistent just after startup until 5606 * ops.get_brightness is called. 5607 */ 5608 real_brightness = 5609 amdgpu_dm_backlight_ops.get_brightness(dm->backlight_dev[aconnector->bl_idx]); 5610 5611 if (real_brightness != init_brightness) { 5612 dm->actual_brightness[aconnector->bl_idx] = real_brightness; 5613 dm->brightness[aconnector->bl_idx] = real_brightness; 5614 } 5615 drm_dbg_driver(drm, "DM: Registered Backlight device: %s\n", bl_name); 5616 } 5617 } 5618 5619 static int initialize_plane(struct amdgpu_display_manager *dm, 5620 struct amdgpu_mode_info *mode_info, int plane_id, 5621 enum drm_plane_type plane_type, 5622 const struct dc_plane_cap *plane_cap) 5623 { 5624 struct drm_plane *plane; 5625 unsigned long possible_crtcs; 5626 int ret = 0; 5627 5628 plane = kzalloc_obj(struct drm_plane); 5629 if (!plane) { 5630 drm_err(adev_to_drm(dm->adev), "KMS: Failed to allocate plane\n"); 5631 return -ENOMEM; 5632 } 5633 plane->type = plane_type; 5634 5635 /* 5636 * HACK: IGT tests expect that the primary plane for a CRTC 5637 * can only have one possible CRTC. Only expose support for 5638 * any CRTC if they're not going to be used as a primary plane 5639 * for a CRTC - like overlay or underlay planes. 5640 */ 5641 possible_crtcs = 1 << plane_id; 5642 if (plane_id >= dm->dc->caps.max_streams) 5643 possible_crtcs = 0xff; 5644 5645 ret = amdgpu_dm_plane_init(dm, plane, possible_crtcs, plane_cap); 5646 5647 if (ret) { 5648 drm_err(adev_to_drm(dm->adev), "KMS: Failed to initialize plane\n"); 5649 kfree(plane); 5650 return ret; 5651 } 5652 5653 if (mode_info) 5654 mode_info->planes[plane_id] = plane; 5655 5656 return ret; 5657 } 5658 5659 5660 static void setup_backlight_device(struct amdgpu_display_manager *dm, 5661 struct amdgpu_dm_connector *aconnector) 5662 { 5663 struct amdgpu_dm_backlight_caps *caps; 5664 struct dc_link *link = aconnector->dc_link; 5665 int bl_idx = dm->num_of_edps; 5666 5667 if (!(link->connector_signal & (SIGNAL_TYPE_EDP | SIGNAL_TYPE_LVDS)) || 5668 link->type == dc_connection_none) 5669 return; 5670 5671 if (dm->num_of_edps >= AMDGPU_DM_MAX_NUM_EDP) { 5672 drm_warn(adev_to_drm(dm->adev), "Too much eDP connections, skipping backlight setup for additional eDPs\n"); 5673 return; 5674 } 5675 5676 aconnector->bl_idx = bl_idx; 5677 5678 amdgpu_dm_update_backlight_caps(dm, bl_idx); 5679 dm->backlight_link[bl_idx] = link; 5680 dm->num_of_edps++; 5681 5682 update_connector_ext_caps(aconnector); 5683 caps = &dm->backlight_caps[aconnector->bl_idx]; 5684 5685 /* Only offer ABM property when non-OLED and user didn't turn off by module parameter */ 5686 if (caps->ext_caps && !caps->ext_caps->bits.oled && amdgpu_dm_abm_level < 0) 5687 drm_object_attach_property(&aconnector->base.base, 5688 dm->adev->mode_info.abm_level_property, 5689 ABM_SYSFS_CONTROL); 5690 } 5691 5692 static void amdgpu_set_panel_orientation(struct drm_connector *connector); 5693 5694 5695 5696 /* 5697 * In this architecture, the association 5698 * connector -> encoder -> crtc 5699 * id not really requried. The crtc and connector will hold the 5700 * display_index as an abstraction to use with DAL component 5701 * 5702 * Returns 0 on success 5703 */ 5704 static int amdgpu_dm_initialize_drm_device(struct amdgpu_device *adev) 5705 { 5706 struct amdgpu_display_manager *dm = &adev->dm; 5707 s32 i; 5708 struct amdgpu_dm_connector *aconnector = NULL; 5709 struct amdgpu_encoder *aencoder = NULL; 5710 struct amdgpu_mode_info *mode_info = &adev->mode_info; 5711 u32 link_cnt; 5712 s32 primary_planes; 5713 enum dc_connection_type new_connection_type = dc_connection_none; 5714 const struct dc_plane_cap *plane; 5715 bool psr_feature_enabled = false; 5716 bool replay_feature_enabled = false; 5717 int max_overlay = dm->dc->caps.max_slave_planes; 5718 5719 dm->display_indexes_num = dm->dc->caps.max_streams; 5720 /* Update the actual used number of crtc */ 5721 adev->mode_info.num_crtc = adev->dm.display_indexes_num; 5722 5723 amdgpu_dm_set_irq_funcs(adev); 5724 5725 link_cnt = dm->dc->caps.max_links; 5726 if (amdgpu_dm_mode_config_init(dm->adev)) { 5727 drm_err(adev_to_drm(adev), "DM: Failed to initialize mode config\n"); 5728 return -EINVAL; 5729 } 5730 5731 /* There is one primary plane per CRTC */ 5732 primary_planes = dm->dc->caps.max_streams; 5733 if (primary_planes > AMDGPU_MAX_PLANES) { 5734 drm_err(adev_to_drm(adev), "DM: Plane nums out of 6 planes\n"); 5735 return -EINVAL; 5736 } 5737 5738 /* 5739 * Initialize primary planes, implicit planes for legacy IOCTLS. 5740 * Order is reversed to match iteration order in atomic check. 5741 */ 5742 for (i = (primary_planes - 1); i >= 0; i--) { 5743 plane = &dm->dc->caps.planes[i]; 5744 5745 if (initialize_plane(dm, mode_info, i, 5746 DRM_PLANE_TYPE_PRIMARY, plane)) { 5747 drm_err(adev_to_drm(adev), "KMS: Failed to initialize primary plane\n"); 5748 goto fail; 5749 } 5750 } 5751 5752 /* 5753 * Initialize overlay planes, index starting after primary planes. 5754 * These planes have a higher DRM index than the primary planes since 5755 * they should be considered as having a higher z-order. 5756 * Order is reversed to match iteration order in atomic check. 5757 * 5758 * Only support DCN for now, and only expose one so we don't encourage 5759 * userspace to use up all the pipes. 5760 */ 5761 for (i = 0; i < dm->dc->caps.max_planes; ++i) { 5762 struct dc_plane_cap *plane = &dm->dc->caps.planes[i]; 5763 5764 /* Do not create overlay if MPO disabled */ 5765 if (amdgpu_dc_debug_mask & DC_DISABLE_MPO) 5766 break; 5767 5768 if (plane->type != DC_PLANE_TYPE_DCN_UNIVERSAL) 5769 continue; 5770 5771 if (!plane->pixel_format_support.argb8888) 5772 continue; 5773 5774 if (max_overlay-- == 0) 5775 break; 5776 5777 if (initialize_plane(dm, NULL, primary_planes + i, 5778 DRM_PLANE_TYPE_OVERLAY, plane)) { 5779 drm_err(adev_to_drm(adev), "KMS: Failed to initialize overlay plane\n"); 5780 goto fail; 5781 } 5782 } 5783 5784 for (i = 0; i < dm->dc->caps.max_streams; i++) 5785 if (amdgpu_dm_crtc_init(dm, mode_info->planes[i], i)) { 5786 drm_err(adev_to_drm(adev), "KMS: Failed to initialize crtc\n"); 5787 goto fail; 5788 } 5789 5790 /* Use Outbox interrupt */ 5791 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 5792 case IP_VERSION(3, 0, 0): 5793 case IP_VERSION(3, 1, 2): 5794 case IP_VERSION(3, 1, 3): 5795 case IP_VERSION(3, 1, 4): 5796 case IP_VERSION(3, 1, 5): 5797 case IP_VERSION(3, 1, 6): 5798 case IP_VERSION(3, 2, 0): 5799 case IP_VERSION(3, 2, 1): 5800 case IP_VERSION(2, 1, 0): 5801 case IP_VERSION(3, 5, 0): 5802 case IP_VERSION(3, 5, 1): 5803 case IP_VERSION(3, 6, 0): 5804 case IP_VERSION(4, 0, 1): 5805 case IP_VERSION(4, 2, 0): 5806 case IP_VERSION(4, 2, 1): 5807 if (register_outbox_irq_handlers(dm->adev)) { 5808 drm_err(adev_to_drm(adev), "DM: Failed to initialize IRQ\n"); 5809 goto fail; 5810 } 5811 break; 5812 default: 5813 drm_dbg_kms(adev_to_drm(adev), "Unsupported DCN IP version for outbox: 0x%X\n", 5814 amdgpu_ip_version(adev, DCE_HWIP, 0)); 5815 } 5816 5817 /* Determine whether to enable PSR support by default. */ 5818 if (!(amdgpu_dc_debug_mask & DC_DISABLE_PSR)) { 5819 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 5820 case IP_VERSION(3, 1, 2): 5821 case IP_VERSION(3, 1, 3): 5822 case IP_VERSION(3, 1, 4): 5823 case IP_VERSION(3, 1, 5): 5824 case IP_VERSION(3, 1, 6): 5825 case IP_VERSION(3, 2, 0): 5826 case IP_VERSION(3, 2, 1): 5827 case IP_VERSION(3, 5, 0): 5828 case IP_VERSION(3, 5, 1): 5829 case IP_VERSION(3, 6, 0): 5830 case IP_VERSION(4, 0, 1): 5831 case IP_VERSION(4, 2, 0): 5832 case IP_VERSION(4, 2, 1): 5833 psr_feature_enabled = true; 5834 break; 5835 default: 5836 psr_feature_enabled = amdgpu_dc_feature_mask & DC_PSR_MASK; 5837 break; 5838 } 5839 } 5840 5841 /* Determine whether to enable Replay support by default. */ 5842 if (!(amdgpu_dc_debug_mask & DC_DISABLE_REPLAY)) { 5843 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 5844 case IP_VERSION(3, 1, 4): 5845 case IP_VERSION(3, 2, 0): 5846 case IP_VERSION(3, 2, 1): 5847 case IP_VERSION(3, 5, 0): 5848 case IP_VERSION(3, 5, 1): 5849 case IP_VERSION(3, 6, 0): 5850 case IP_VERSION(4, 2, 0): 5851 case IP_VERSION(4, 2, 1): 5852 replay_feature_enabled = true; 5853 break; 5854 5855 default: 5856 replay_feature_enabled = amdgpu_dc_feature_mask & DC_REPLAY_MASK; 5857 break; 5858 } 5859 } 5860 5861 if (link_cnt > MAX_LINKS) { 5862 drm_err(adev_to_drm(adev), 5863 "KMS: Cannot support more than %d display indexes\n", 5864 MAX_LINKS); 5865 goto fail; 5866 } 5867 5868 /* loops over all connectors on the board */ 5869 for (i = 0; i < link_cnt; i++) { 5870 struct dc_link *link = NULL; 5871 5872 link = dc_get_link_at_index(dm->dc, i); 5873 5874 if (link->connector_signal == SIGNAL_TYPE_VIRTUAL) { 5875 struct amdgpu_dm_wb_connector *wbcon = kzalloc_obj(*wbcon); 5876 5877 if (!wbcon) { 5878 drm_err(adev_to_drm(adev), "KMS: Failed to allocate writeback connector\n"); 5879 continue; 5880 } 5881 5882 if (amdgpu_dm_wb_connector_init(dm, wbcon, i)) { 5883 drm_err(adev_to_drm(adev), "KMS: Failed to initialize writeback connector\n"); 5884 kfree(wbcon); 5885 continue; 5886 } 5887 5888 link->psr_settings.psr_feature_enabled = false; 5889 link->psr_settings.psr_version = DC_PSR_VERSION_UNSUPPORTED; 5890 5891 continue; 5892 } 5893 5894 aconnector = kzalloc_obj(*aconnector); 5895 if (!aconnector) 5896 goto fail; 5897 5898 aencoder = kzalloc_obj(*aencoder); 5899 if (!aencoder) 5900 goto fail; 5901 5902 if (amdgpu_dm_encoder_init(dm->ddev, aencoder, i)) { 5903 drm_err(adev_to_drm(adev), "KMS: Failed to initialize encoder\n"); 5904 goto fail; 5905 } 5906 5907 if (amdgpu_dm_connector_init(dm, aconnector, i, aencoder)) { 5908 drm_err(adev_to_drm(adev), "KMS: Failed to initialize connector\n"); 5909 goto fail; 5910 } 5911 5912 if (dm->hpd_rx_offload_wq) 5913 dm->hpd_rx_offload_wq[aconnector->base.index].aconnector = 5914 aconnector; 5915 5916 if (!dc_link_detect_connection_type(link, &new_connection_type)) 5917 drm_err(adev_to_drm(adev), "KMS: Failed to detect connector\n"); 5918 5919 if (aconnector->base.force && new_connection_type == dc_connection_none) { 5920 emulated_link_detect(link); 5921 amdgpu_dm_update_connector_after_detect(aconnector); 5922 } else { 5923 bool ret = false; 5924 5925 mutex_lock(&dm->dc_lock); 5926 dc_exit_ips_for_hw_access(dm->dc); 5927 ret = dc_link_detect(link, DETECT_REASON_BOOT); 5928 mutex_unlock(&dm->dc_lock); 5929 5930 if (ret) { 5931 amdgpu_dm_update_connector_after_detect(aconnector); 5932 setup_backlight_device(dm, aconnector); 5933 5934 /* Disable PSR if Replay can be enabled */ 5935 if (replay_feature_enabled) 5936 if (amdgpu_dm_set_replay_caps(link, aconnector)) 5937 psr_feature_enabled = false; 5938 5939 if (psr_feature_enabled) { 5940 amdgpu_dm_set_psr_caps(link, aconnector); 5941 drm_info(adev_to_drm(adev), "%s: PSR support %d, DC PSR ver %d, sink PSR ver %d DPCD caps 0x%x su_y_granularity %d\n", 5942 aconnector->base.name, 5943 link->psr_settings.psr_feature_enabled, 5944 link->psr_settings.psr_version, 5945 link->dpcd_caps.psr_info.psr_version, 5946 link->dpcd_caps.psr_info.psr_dpcd_caps.raw, 5947 link->dpcd_caps.psr_info.psr2_su_y_granularity_cap); 5948 } 5949 } 5950 } 5951 amdgpu_set_panel_orientation(&aconnector->base); 5952 } 5953 5954 /* Debug dump: list all DC links and their associated sinks after detection 5955 * is complete for all connectors. This provides a comprehensive view of the 5956 * final state without repeating the dump for each connector. 5957 */ 5958 amdgpu_dm_dump_links_and_sinks(adev); 5959 5960 /* Software is initialized. Now we can register interrupt handlers. */ 5961 switch (adev->asic_type) { 5962 #if defined(CONFIG_DRM_AMD_DC_SI) 5963 case CHIP_TAHITI: 5964 case CHIP_PITCAIRN: 5965 case CHIP_VERDE: 5966 case CHIP_OLAND: 5967 #endif 5968 case CHIP_BONAIRE: 5969 case CHIP_HAWAII: 5970 case CHIP_KAVERI: 5971 case CHIP_KABINI: 5972 case CHIP_MULLINS: 5973 case CHIP_TONGA: 5974 case CHIP_FIJI: 5975 case CHIP_CARRIZO: 5976 case CHIP_STONEY: 5977 case CHIP_POLARIS11: 5978 case CHIP_POLARIS10: 5979 case CHIP_POLARIS12: 5980 case CHIP_VEGAM: 5981 case CHIP_VEGA10: 5982 case CHIP_VEGA12: 5983 case CHIP_VEGA20: 5984 if (dce110_register_irq_handlers(dm->adev)) { 5985 drm_err(adev_to_drm(adev), "DM: Failed to initialize IRQ\n"); 5986 goto fail; 5987 } 5988 break; 5989 default: 5990 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 5991 case IP_VERSION(1, 0, 0): 5992 case IP_VERSION(1, 0, 1): 5993 case IP_VERSION(2, 0, 2): 5994 case IP_VERSION(2, 0, 3): 5995 case IP_VERSION(2, 0, 0): 5996 case IP_VERSION(2, 1, 0): 5997 case IP_VERSION(3, 0, 0): 5998 case IP_VERSION(3, 0, 2): 5999 case IP_VERSION(3, 0, 3): 6000 case IP_VERSION(3, 0, 1): 6001 case IP_VERSION(3, 1, 2): 6002 case IP_VERSION(3, 1, 3): 6003 case IP_VERSION(3, 1, 4): 6004 case IP_VERSION(3, 1, 5): 6005 case IP_VERSION(3, 1, 6): 6006 case IP_VERSION(3, 2, 0): 6007 case IP_VERSION(3, 2, 1): 6008 case IP_VERSION(3, 5, 0): 6009 case IP_VERSION(3, 5, 1): 6010 case IP_VERSION(3, 6, 0): 6011 case IP_VERSION(4, 0, 1): 6012 case IP_VERSION(4, 2, 0): 6013 case IP_VERSION(4, 2, 1): 6014 if (dcn10_register_irq_handlers(dm->adev)) { 6015 drm_err(adev_to_drm(adev), "DM: Failed to initialize IRQ\n"); 6016 goto fail; 6017 } 6018 break; 6019 default: 6020 drm_err(adev_to_drm(adev), "Unsupported DCE IP versions: 0x%X\n", 6021 amdgpu_ip_version(adev, DCE_HWIP, 0)); 6022 goto fail; 6023 } 6024 break; 6025 } 6026 6027 return 0; 6028 fail: 6029 kfree(aencoder); 6030 kfree(aconnector); 6031 6032 return -EINVAL; 6033 } 6034 6035 static void amdgpu_dm_destroy_drm_device(struct amdgpu_display_manager *dm) 6036 { 6037 if (dm->atomic_obj.state) 6038 drm_atomic_private_obj_fini(&dm->atomic_obj); 6039 } 6040 6041 /****************************************************************************** 6042 * amdgpu_display_funcs functions 6043 *****************************************************************************/ 6044 6045 /* 6046 * dm_bandwidth_update - program display watermarks 6047 * 6048 * @adev: amdgpu_device pointer 6049 * 6050 * Calculate and program the display watermarks and line buffer allocation. 6051 */ 6052 static void dm_bandwidth_update(struct amdgpu_device *adev) 6053 { 6054 /* TODO: implement later */ 6055 } 6056 6057 static const struct amdgpu_display_funcs dm_display_funcs = { 6058 .bandwidth_update = dm_bandwidth_update, /* called unconditionally */ 6059 .vblank_get_counter = dm_vblank_get_counter,/* called unconditionally */ 6060 .backlight_set_level = NULL, /* never called for DC */ 6061 .backlight_get_level = NULL, /* never called for DC */ 6062 .hpd_sense = NULL,/* called unconditionally */ 6063 .hpd_set_polarity = NULL, /* called unconditionally */ 6064 .hpd_get_gpio_reg = NULL, /* VBIOS parsing. DAL does it. */ 6065 .page_flip_get_scanoutpos = 6066 dm_crtc_get_scanoutpos,/* called unconditionally */ 6067 .add_encoder = NULL, /* VBIOS parsing. DAL does it. */ 6068 .add_connector = NULL, /* VBIOS parsing. DAL does it. */ 6069 }; 6070 6071 #if defined(CONFIG_DEBUG_KERNEL_DC) 6072 6073 static ssize_t s3_debug_store(struct device *device, 6074 struct device_attribute *attr, 6075 const char *buf, 6076 size_t count) 6077 { 6078 int ret; 6079 int s3_state; 6080 struct drm_device *drm_dev = dev_get_drvdata(device); 6081 struct amdgpu_device *adev = drm_to_adev(drm_dev); 6082 struct amdgpu_ip_block *ip_block; 6083 6084 ip_block = amdgpu_device_ip_get_ip_block(adev, AMD_IP_BLOCK_TYPE_DCE); 6085 if (!ip_block) 6086 return -EINVAL; 6087 6088 ret = kstrtoint(buf, 0, &s3_state); 6089 6090 if (ret == 0) { 6091 if (s3_state) { 6092 dm_resume(ip_block); 6093 drm_kms_helper_hotplug_event(adev_to_drm(adev)); 6094 } else 6095 dm_suspend(ip_block); 6096 } 6097 6098 return ret == 0 ? count : 0; 6099 } 6100 6101 DEVICE_ATTR_WO(s3_debug); 6102 6103 #endif 6104 6105 static int dm_init_microcode(struct amdgpu_device *adev) 6106 { 6107 char *fw_name_dmub; 6108 int r; 6109 6110 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 6111 case IP_VERSION(2, 1, 0): 6112 fw_name_dmub = FIRMWARE_RENOIR_DMUB; 6113 if (ASICREV_IS_GREEN_SARDINE(adev->external_rev_id)) 6114 fw_name_dmub = FIRMWARE_GREEN_SARDINE_DMUB; 6115 break; 6116 case IP_VERSION(3, 0, 0): 6117 if (amdgpu_ip_version(adev, GC_HWIP, 0) == IP_VERSION(10, 3, 0)) 6118 fw_name_dmub = FIRMWARE_SIENNA_CICHLID_DMUB; 6119 else 6120 fw_name_dmub = FIRMWARE_NAVY_FLOUNDER_DMUB; 6121 break; 6122 case IP_VERSION(3, 0, 1): 6123 fw_name_dmub = FIRMWARE_VANGOGH_DMUB; 6124 break; 6125 case IP_VERSION(3, 0, 2): 6126 fw_name_dmub = FIRMWARE_DIMGREY_CAVEFISH_DMUB; 6127 break; 6128 case IP_VERSION(3, 0, 3): 6129 fw_name_dmub = FIRMWARE_BEIGE_GOBY_DMUB; 6130 break; 6131 case IP_VERSION(3, 1, 2): 6132 case IP_VERSION(3, 1, 3): 6133 fw_name_dmub = FIRMWARE_YELLOW_CARP_DMUB; 6134 break; 6135 case IP_VERSION(3, 1, 4): 6136 fw_name_dmub = FIRMWARE_DCN_314_DMUB; 6137 break; 6138 case IP_VERSION(3, 1, 5): 6139 fw_name_dmub = FIRMWARE_DCN_315_DMUB; 6140 break; 6141 case IP_VERSION(3, 1, 6): 6142 fw_name_dmub = FIRMWARE_DCN316_DMUB; 6143 break; 6144 case IP_VERSION(3, 2, 0): 6145 fw_name_dmub = FIRMWARE_DCN_V3_2_0_DMCUB; 6146 break; 6147 case IP_VERSION(3, 2, 1): 6148 fw_name_dmub = FIRMWARE_DCN_V3_2_1_DMCUB; 6149 break; 6150 case IP_VERSION(3, 5, 0): 6151 fw_name_dmub = FIRMWARE_DCN_35_DMUB; 6152 break; 6153 case IP_VERSION(3, 5, 1): 6154 fw_name_dmub = FIRMWARE_DCN_351_DMUB; 6155 break; 6156 case IP_VERSION(3, 6, 0): 6157 fw_name_dmub = FIRMWARE_DCN_36_DMUB; 6158 break; 6159 case IP_VERSION(4, 0, 1): 6160 fw_name_dmub = FIRMWARE_DCN_401_DMUB; 6161 break; 6162 case IP_VERSION(4, 2, 0): 6163 fw_name_dmub = FIRMWARE_DCN_42_DMUB; 6164 break; 6165 case IP_VERSION(4, 2, 1): 6166 fw_name_dmub = FIRMWARE_DCN_42B_DMUB; 6167 break; 6168 default: 6169 /* ASIC doesn't support DMUB. */ 6170 return 0; 6171 } 6172 r = amdgpu_ucode_request(adev, &adev->dm.dmub_fw, AMDGPU_UCODE_REQUIRED, 6173 "%s", fw_name_dmub); 6174 return r; 6175 } 6176 6177 static int dm_early_init(struct amdgpu_ip_block *ip_block) 6178 { 6179 struct amdgpu_device *adev = ip_block->adev; 6180 struct amdgpu_mode_info *mode_info = &adev->mode_info; 6181 struct atom_context *ctx = mode_info->atom_context; 6182 int index = GetIndexIntoMasterTable(DATA, Object_Header); 6183 u16 data_offset; 6184 6185 /* if there is no object header, skip DM */ 6186 if (!amdgpu_atom_parse_data_header(ctx, index, NULL, NULL, NULL, &data_offset)) { 6187 adev->harvest_ip_mask |= AMD_HARVEST_IP_DMU_MASK; 6188 drm_info(adev_to_drm(adev), "No object header, skipping DM\n"); 6189 return -ENOENT; 6190 } 6191 6192 switch (adev->asic_type) { 6193 #if defined(CONFIG_DRM_AMD_DC_SI) 6194 case CHIP_TAHITI: 6195 case CHIP_PITCAIRN: 6196 case CHIP_VERDE: 6197 adev->mode_info.num_crtc = 6; 6198 adev->mode_info.num_hpd = 6; 6199 adev->mode_info.num_dig = 6; 6200 break; 6201 case CHIP_OLAND: 6202 adev->mode_info.num_crtc = 2; 6203 adev->mode_info.num_hpd = 2; 6204 adev->mode_info.num_dig = 2; 6205 break; 6206 #endif 6207 case CHIP_BONAIRE: 6208 case CHIP_HAWAII: 6209 adev->mode_info.num_crtc = 6; 6210 adev->mode_info.num_hpd = 6; 6211 adev->mode_info.num_dig = 6; 6212 break; 6213 case CHIP_KAVERI: 6214 adev->mode_info.num_crtc = 4; 6215 adev->mode_info.num_hpd = 6; 6216 adev->mode_info.num_dig = 7; 6217 break; 6218 case CHIP_KABINI: 6219 case CHIP_MULLINS: 6220 adev->mode_info.num_crtc = 2; 6221 adev->mode_info.num_hpd = 6; 6222 adev->mode_info.num_dig = 6; 6223 break; 6224 case CHIP_FIJI: 6225 case CHIP_TONGA: 6226 adev->mode_info.num_crtc = 6; 6227 adev->mode_info.num_hpd = 6; 6228 adev->mode_info.num_dig = 7; 6229 break; 6230 case CHIP_CARRIZO: 6231 adev->mode_info.num_crtc = 3; 6232 adev->mode_info.num_hpd = 6; 6233 adev->mode_info.num_dig = 9; 6234 break; 6235 case CHIP_STONEY: 6236 adev->mode_info.num_crtc = 2; 6237 adev->mode_info.num_hpd = 6; 6238 adev->mode_info.num_dig = 9; 6239 break; 6240 case CHIP_POLARIS11: 6241 case CHIP_POLARIS12: 6242 adev->mode_info.num_crtc = 5; 6243 adev->mode_info.num_hpd = 5; 6244 adev->mode_info.num_dig = 5; 6245 break; 6246 case CHIP_POLARIS10: 6247 case CHIP_VEGAM: 6248 adev->mode_info.num_crtc = 6; 6249 adev->mode_info.num_hpd = 6; 6250 adev->mode_info.num_dig = 6; 6251 break; 6252 case CHIP_VEGA10: 6253 case CHIP_VEGA12: 6254 case CHIP_VEGA20: 6255 adev->mode_info.num_crtc = 6; 6256 adev->mode_info.num_hpd = 6; 6257 adev->mode_info.num_dig = 6; 6258 break; 6259 default: 6260 6261 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 6262 case IP_VERSION(2, 0, 2): 6263 case IP_VERSION(3, 0, 0): 6264 adev->mode_info.num_crtc = 6; 6265 adev->mode_info.num_hpd = 6; 6266 adev->mode_info.num_dig = 6; 6267 break; 6268 case IP_VERSION(2, 0, 0): 6269 case IP_VERSION(3, 0, 2): 6270 adev->mode_info.num_crtc = 5; 6271 adev->mode_info.num_hpd = 5; 6272 adev->mode_info.num_dig = 5; 6273 break; 6274 case IP_VERSION(2, 0, 3): 6275 case IP_VERSION(3, 0, 3): 6276 adev->mode_info.num_crtc = 2; 6277 adev->mode_info.num_hpd = 2; 6278 adev->mode_info.num_dig = 2; 6279 break; 6280 case IP_VERSION(1, 0, 0): 6281 case IP_VERSION(1, 0, 1): 6282 case IP_VERSION(3, 0, 1): 6283 case IP_VERSION(2, 1, 0): 6284 case IP_VERSION(3, 1, 2): 6285 case IP_VERSION(3, 1, 3): 6286 case IP_VERSION(3, 1, 4): 6287 case IP_VERSION(3, 1, 5): 6288 case IP_VERSION(3, 1, 6): 6289 case IP_VERSION(3, 2, 0): 6290 case IP_VERSION(3, 2, 1): 6291 case IP_VERSION(3, 5, 0): 6292 case IP_VERSION(3, 5, 1): 6293 case IP_VERSION(3, 6, 0): 6294 case IP_VERSION(4, 0, 1): 6295 case IP_VERSION(4, 2, 0): 6296 case IP_VERSION(4, 2, 1): 6297 adev->mode_info.num_crtc = 4; 6298 adev->mode_info.num_hpd = 4; 6299 adev->mode_info.num_dig = 4; 6300 break; 6301 default: 6302 drm_err(adev_to_drm(adev), "Unsupported DCE IP versions: 0x%x\n", 6303 amdgpu_ip_version(adev, DCE_HWIP, 0)); 6304 return -EINVAL; 6305 } 6306 break; 6307 } 6308 6309 if (adev->mode_info.funcs == NULL) 6310 adev->mode_info.funcs = &dm_display_funcs; 6311 6312 /* 6313 * Note: Do NOT change adev->reg.audio_endpt.rreg and 6314 * adev->reg.audio_endpt.wreg because they are initialised in 6315 * amdgpu_device_init() 6316 */ 6317 #if defined(CONFIG_DEBUG_KERNEL_DC) 6318 device_create_file( 6319 adev_to_drm(adev)->dev, 6320 &dev_attr_s3_debug); 6321 #endif 6322 adev->dc_enabled = true; 6323 6324 return dm_init_microcode(adev); 6325 } 6326 6327 static bool modereset_required(struct drm_crtc_state *crtc_state) 6328 { 6329 return !crtc_state->active && drm_atomic_crtc_needs_modeset(crtc_state); 6330 } 6331 6332 static void amdgpu_dm_encoder_destroy(struct drm_encoder *encoder) 6333 { 6334 drm_encoder_cleanup(encoder); 6335 kfree(encoder); 6336 } 6337 6338 static const struct drm_encoder_funcs amdgpu_dm_encoder_funcs = { 6339 .destroy = amdgpu_dm_encoder_destroy, 6340 }; 6341 6342 static int 6343 fill_plane_color_attributes(const struct drm_plane_state *plane_state, 6344 const enum surface_pixel_format format, 6345 enum dc_color_space *color_space) 6346 { 6347 bool full_range; 6348 6349 *color_space = COLOR_SPACE_SRGB; 6350 6351 /* Ignore properties when DRM_CLIENT_CAP_PLANE_COLOR_PIPELINE is set */ 6352 if (plane_state->state && plane_state->state->plane_color_pipeline) 6353 return 0; 6354 6355 /* DRM color properties only affect non-RGB formats. */ 6356 if (format < SURFACE_PIXEL_FORMAT_VIDEO_BEGIN) 6357 return 0; 6358 6359 full_range = (plane_state->color_range == DRM_COLOR_YCBCR_FULL_RANGE); 6360 6361 switch (plane_state->color_encoding) { 6362 case DRM_COLOR_YCBCR_BT601: 6363 if (full_range) 6364 *color_space = COLOR_SPACE_YCBCR601; 6365 else 6366 *color_space = COLOR_SPACE_YCBCR601_LIMITED; 6367 break; 6368 6369 case DRM_COLOR_YCBCR_BT709: 6370 if (full_range) 6371 *color_space = COLOR_SPACE_YCBCR709; 6372 else 6373 *color_space = COLOR_SPACE_YCBCR709_LIMITED; 6374 break; 6375 6376 case DRM_COLOR_YCBCR_BT2020: 6377 if (full_range) 6378 *color_space = COLOR_SPACE_2020_YCBCR_FULL; 6379 else 6380 *color_space = COLOR_SPACE_2020_YCBCR_LIMITED; 6381 break; 6382 6383 default: 6384 return -EINVAL; 6385 } 6386 6387 return 0; 6388 } 6389 6390 static int 6391 fill_dc_plane_info_and_addr(struct amdgpu_device *adev, 6392 const struct drm_plane_state *plane_state, 6393 const u64 tiling_flags, 6394 struct dc_plane_info *plane_info, 6395 struct dc_plane_address *address, 6396 bool tmz_surface) 6397 { 6398 const struct drm_framebuffer *fb = plane_state->fb; 6399 const struct amdgpu_framebuffer *afb = 6400 to_amdgpu_framebuffer(plane_state->fb); 6401 int ret; 6402 6403 memset(plane_info, 0, sizeof(*plane_info)); 6404 6405 switch (fb->format->format) { 6406 case DRM_FORMAT_C8: 6407 plane_info->format = 6408 SURFACE_PIXEL_FORMAT_GRPH_PALETA_256_COLORS; 6409 break; 6410 case DRM_FORMAT_RGB565: 6411 plane_info->format = SURFACE_PIXEL_FORMAT_GRPH_RGB565; 6412 break; 6413 case DRM_FORMAT_XRGB8888: 6414 case DRM_FORMAT_ARGB8888: 6415 plane_info->format = SURFACE_PIXEL_FORMAT_GRPH_ARGB8888; 6416 break; 6417 case DRM_FORMAT_XRGB2101010: 6418 case DRM_FORMAT_ARGB2101010: 6419 plane_info->format = SURFACE_PIXEL_FORMAT_GRPH_ARGB2101010; 6420 break; 6421 case DRM_FORMAT_XBGR2101010: 6422 case DRM_FORMAT_ABGR2101010: 6423 plane_info->format = SURFACE_PIXEL_FORMAT_GRPH_ABGR2101010; 6424 break; 6425 case DRM_FORMAT_XBGR8888: 6426 case DRM_FORMAT_ABGR8888: 6427 plane_info->format = SURFACE_PIXEL_FORMAT_GRPH_ABGR8888; 6428 break; 6429 case DRM_FORMAT_NV21: 6430 plane_info->format = SURFACE_PIXEL_FORMAT_VIDEO_420_YCbCr; 6431 break; 6432 case DRM_FORMAT_NV12: 6433 plane_info->format = SURFACE_PIXEL_FORMAT_VIDEO_420_YCrCb; 6434 break; 6435 case DRM_FORMAT_P010: 6436 plane_info->format = SURFACE_PIXEL_FORMAT_VIDEO_420_10bpc_YCrCb; 6437 break; 6438 case DRM_FORMAT_XRGB16161616F: 6439 case DRM_FORMAT_ARGB16161616F: 6440 plane_info->format = SURFACE_PIXEL_FORMAT_GRPH_ARGB16161616F; 6441 break; 6442 case DRM_FORMAT_XBGR16161616F: 6443 case DRM_FORMAT_ABGR16161616F: 6444 plane_info->format = SURFACE_PIXEL_FORMAT_GRPH_ABGR16161616F; 6445 break; 6446 case DRM_FORMAT_XRGB16161616: 6447 case DRM_FORMAT_ARGB16161616: 6448 plane_info->format = SURFACE_PIXEL_FORMAT_GRPH_ARGB16161616; 6449 break; 6450 case DRM_FORMAT_XBGR16161616: 6451 case DRM_FORMAT_ABGR16161616: 6452 plane_info->format = SURFACE_PIXEL_FORMAT_GRPH_ABGR16161616; 6453 break; 6454 default: 6455 drm_err(adev_to_drm(adev), 6456 "Unsupported screen format %p4cc\n", 6457 &fb->format->format); 6458 return -EINVAL; 6459 } 6460 6461 switch (plane_state->rotation & DRM_MODE_ROTATE_MASK) { 6462 case DRM_MODE_ROTATE_0: 6463 plane_info->rotation = ROTATION_ANGLE_0; 6464 break; 6465 case DRM_MODE_ROTATE_90: 6466 plane_info->rotation = ROTATION_ANGLE_90; 6467 break; 6468 case DRM_MODE_ROTATE_180: 6469 plane_info->rotation = ROTATION_ANGLE_180; 6470 break; 6471 case DRM_MODE_ROTATE_270: 6472 plane_info->rotation = ROTATION_ANGLE_270; 6473 break; 6474 default: 6475 plane_info->rotation = ROTATION_ANGLE_0; 6476 break; 6477 } 6478 6479 6480 plane_info->visible = true; 6481 plane_info->stereo_format = PLANE_STEREO_FORMAT_NONE; 6482 6483 plane_info->layer_index = plane_state->normalized_zpos; 6484 6485 ret = fill_plane_color_attributes(plane_state, plane_info->format, 6486 &plane_info->color_space); 6487 if (ret) 6488 return ret; 6489 6490 ret = amdgpu_dm_plane_fill_plane_buffer_attributes(adev, afb, plane_info->format, 6491 plane_info->rotation, tiling_flags, 6492 &plane_info->tiling_info, 6493 &plane_info->plane_size, 6494 &plane_info->dcc, address, 6495 tmz_surface); 6496 if (ret) 6497 return ret; 6498 6499 amdgpu_dm_plane_fill_blending_from_plane_state( 6500 plane_state, &plane_info->per_pixel_alpha, &plane_info->pre_multiplied_alpha, 6501 &plane_info->global_alpha, &plane_info->global_alpha_value); 6502 6503 return 0; 6504 } 6505 6506 static int fill_dc_plane_attributes(struct amdgpu_device *adev, 6507 struct dc_plane_state *dc_plane_state, 6508 struct drm_plane_state *plane_state, 6509 struct drm_crtc_state *crtc_state) 6510 { 6511 struct dm_crtc_state *dm_crtc_state = to_dm_crtc_state(crtc_state); 6512 struct amdgpu_framebuffer *afb = (struct amdgpu_framebuffer *)plane_state->fb; 6513 struct dc_scaling_info scaling_info; 6514 struct dc_plane_info plane_info; 6515 int ret; 6516 6517 ret = amdgpu_dm_plane_fill_dc_scaling_info(adev, plane_state, &scaling_info); 6518 if (ret) 6519 return ret; 6520 6521 dc_plane_state->src_rect = scaling_info.src_rect; 6522 dc_plane_state->dst_rect = scaling_info.dst_rect; 6523 dc_plane_state->clip_rect = scaling_info.clip_rect; 6524 dc_plane_state->scaling_quality = scaling_info.scaling_quality; 6525 6526 ret = fill_dc_plane_info_and_addr(adev, plane_state, 6527 afb->tiling_flags, 6528 &plane_info, 6529 &dc_plane_state->address, 6530 afb->tmz_surface); 6531 if (ret) 6532 return ret; 6533 6534 dc_plane_state->format = plane_info.format; 6535 dc_plane_state->color_space = plane_info.color_space; 6536 dc_plane_state->format = plane_info.format; 6537 dc_plane_state->plane_size = plane_info.plane_size; 6538 dc_plane_state->rotation = plane_info.rotation; 6539 dc_plane_state->horizontal_mirror = plane_info.horizontal_mirror; 6540 dc_plane_state->stereo_format = plane_info.stereo_format; 6541 dc_plane_state->tiling_info = plane_info.tiling_info; 6542 dc_plane_state->visible = plane_info.visible; 6543 dc_plane_state->per_pixel_alpha = plane_info.per_pixel_alpha; 6544 dc_plane_state->pre_multiplied_alpha = plane_info.pre_multiplied_alpha; 6545 dc_plane_state->global_alpha = plane_info.global_alpha; 6546 dc_plane_state->global_alpha_value = plane_info.global_alpha_value; 6547 dc_plane_state->dcc = plane_info.dcc; 6548 dc_plane_state->layer_index = plane_info.layer_index; 6549 dc_plane_state->flip_int_enabled = true; 6550 6551 /* 6552 * Always set input transfer function, since plane state is refreshed 6553 * every time. 6554 */ 6555 ret = amdgpu_dm_update_plane_color_mgmt(dm_crtc_state, 6556 plane_state, 6557 dc_plane_state); 6558 if (ret) 6559 return ret; 6560 6561 return 0; 6562 } 6563 6564 static inline void fill_dc_dirty_rect(struct drm_plane *plane, 6565 struct rect *dirty_rect, int32_t x, 6566 s32 y, s32 width, s32 height, 6567 int *i, bool ffu) 6568 { 6569 WARN_ON(*i >= DC_MAX_DIRTY_RECTS); 6570 6571 dirty_rect->x = x; 6572 dirty_rect->y = y; 6573 dirty_rect->width = width; 6574 dirty_rect->height = height; 6575 6576 if (ffu) 6577 drm_dbg(plane->dev, 6578 "[PLANE:%d] PSR FFU dirty rect size (%d, %d)\n", 6579 plane->base.id, width, height); 6580 else 6581 drm_dbg(plane->dev, 6582 "[PLANE:%d] PSR SU dirty rect at (%d, %d) size (%d, %d)", 6583 plane->base.id, x, y, width, height); 6584 6585 (*i)++; 6586 } 6587 6588 /** 6589 * fill_dc_dirty_rects() - Fill DC dirty regions for PSR selective updates 6590 * 6591 * @plane: DRM plane containing dirty regions that need to be flushed to the eDP 6592 * remote fb 6593 * @old_plane_state: Old state of @plane 6594 * @new_plane_state: New state of @plane 6595 * @crtc_state: New state of CRTC connected to the @plane 6596 * @flip_addrs: DC flip tracking struct, which also tracts dirty rects 6597 * @is_psr_su: Flag indicating whether Panel Self Refresh Selective Update (PSR SU) is enabled. 6598 * If PSR SU is enabled and damage clips are available, only the regions of the screen 6599 * that have changed will be updated. If PSR SU is not enabled, 6600 * or if damage clips are not available, the entire screen will be updated. 6601 * @dirty_regions_changed: dirty regions changed 6602 * 6603 * For PSR SU, DC informs the DMUB uController of dirty rectangle regions 6604 * (referred to as "damage clips" in DRM nomenclature) that require updating on 6605 * the eDP remote buffer. The responsibility of specifying the dirty regions is 6606 * amdgpu_dm's. 6607 * 6608 * A damage-aware DRM client should fill the FB_DAMAGE_CLIPS property on the 6609 * plane with regions that require flushing to the eDP remote buffer. In 6610 * addition, certain use cases - such as cursor and multi-plane overlay (MPO) - 6611 * implicitly provide damage clips without any client support via the plane 6612 * bounds. 6613 */ 6614 static void fill_dc_dirty_rects(struct drm_plane *plane, 6615 struct drm_plane_state *old_plane_state, 6616 struct drm_plane_state *new_plane_state, 6617 struct drm_crtc_state *crtc_state, 6618 struct dc_flip_addrs *flip_addrs, 6619 bool is_psr_su, 6620 bool *dirty_regions_changed) 6621 { 6622 struct dm_crtc_state *dm_crtc_state = to_dm_crtc_state(crtc_state); 6623 struct rect *dirty_rects = flip_addrs->dirty_rects; 6624 u32 num_clips = 0; 6625 struct drm_mode_rect *clips = NULL; 6626 bool bb_changed; 6627 bool fb_changed; 6628 u32 i = 0; 6629 *dirty_regions_changed = false; 6630 6631 /* 6632 * Cursor plane has it's own dirty rect update interface. See 6633 * dcn10_dmub_update_cursor_data and dmub_cmd_update_cursor_info_data 6634 */ 6635 if (plane->type == DRM_PLANE_TYPE_CURSOR) 6636 return; 6637 6638 if (new_plane_state->rotation != DRM_MODE_ROTATE_0) 6639 goto ffu; 6640 6641 if (!new_plane_state->ignore_damage_clips) { 6642 num_clips = drm_plane_get_damage_clips_count(new_plane_state); 6643 clips = drm_plane_get_damage_clips(new_plane_state); 6644 } 6645 6646 if (num_clips && (!amdgpu_damage_clips || (amdgpu_damage_clips < 0 && 6647 is_psr_su))) 6648 goto ffu; 6649 6650 if (!dm_crtc_state->mpo_requested) { 6651 if (!num_clips || num_clips > DC_MAX_DIRTY_RECTS) 6652 goto ffu; 6653 6654 for (; flip_addrs->dirty_rect_count < num_clips; clips++) 6655 fill_dc_dirty_rect(new_plane_state->plane, 6656 &dirty_rects[flip_addrs->dirty_rect_count], 6657 clips->x1, clips->y1, 6658 clips->x2 - clips->x1, clips->y2 - clips->y1, 6659 &flip_addrs->dirty_rect_count, 6660 false); 6661 return; 6662 } 6663 6664 /* 6665 * MPO is requested. Add entire plane bounding box to dirty rects if 6666 * flipped to or damaged. 6667 * 6668 * If plane is moved or resized, also add old bounding box to dirty 6669 * rects. 6670 */ 6671 fb_changed = old_plane_state->fb->base.id != 6672 new_plane_state->fb->base.id; 6673 bb_changed = (old_plane_state->crtc_x != new_plane_state->crtc_x || 6674 old_plane_state->crtc_y != new_plane_state->crtc_y || 6675 old_plane_state->crtc_w != new_plane_state->crtc_w || 6676 old_plane_state->crtc_h != new_plane_state->crtc_h); 6677 6678 drm_dbg(plane->dev, 6679 "[PLANE:%d] PSR bb_changed:%d fb_changed:%d num_clips:%d\n", 6680 new_plane_state->plane->base.id, 6681 bb_changed, fb_changed, num_clips); 6682 6683 *dirty_regions_changed = bb_changed; 6684 6685 if ((num_clips + (bb_changed ? 2 : 0)) > DC_MAX_DIRTY_RECTS) 6686 goto ffu; 6687 6688 if (bb_changed) { 6689 fill_dc_dirty_rect(new_plane_state->plane, &dirty_rects[i], 6690 new_plane_state->crtc_x, 6691 new_plane_state->crtc_y, 6692 new_plane_state->crtc_w, 6693 new_plane_state->crtc_h, &i, false); 6694 6695 /* Add old plane bounding-box if plane is moved or resized */ 6696 fill_dc_dirty_rect(new_plane_state->plane, &dirty_rects[i], 6697 old_plane_state->crtc_x, 6698 old_plane_state->crtc_y, 6699 old_plane_state->crtc_w, 6700 old_plane_state->crtc_h, &i, false); 6701 } 6702 6703 if (num_clips) { 6704 for (; i < num_clips; clips++) 6705 fill_dc_dirty_rect(new_plane_state->plane, 6706 &dirty_rects[i], clips->x1, 6707 clips->y1, clips->x2 - clips->x1, 6708 clips->y2 - clips->y1, &i, false); 6709 } else if (fb_changed && !bb_changed) { 6710 fill_dc_dirty_rect(new_plane_state->plane, &dirty_rects[i], 6711 new_plane_state->crtc_x, 6712 new_plane_state->crtc_y, 6713 new_plane_state->crtc_w, 6714 new_plane_state->crtc_h, &i, false); 6715 } 6716 6717 flip_addrs->dirty_rect_count = i; 6718 return; 6719 6720 ffu: 6721 fill_dc_dirty_rect(new_plane_state->plane, &dirty_rects[0], 0, 0, 6722 dm_crtc_state->base.mode.crtc_hdisplay, 6723 dm_crtc_state->base.mode.crtc_vdisplay, 6724 &flip_addrs->dirty_rect_count, true); 6725 } 6726 6727 static void update_stream_scaling_settings(struct drm_device *dev, 6728 const struct drm_display_mode *mode, 6729 const struct dm_connector_state *dm_state, 6730 struct dc_stream_state *stream) 6731 { 6732 enum amdgpu_rmx_type rmx_type; 6733 6734 struct rect src = { 0 }; /* viewport in composition space*/ 6735 struct rect dst = { 0 }; /* stream addressable area */ 6736 6737 /* no mode. nothing to be done */ 6738 if (!mode) 6739 return; 6740 6741 /* Full screen scaling by default */ 6742 src.width = mode->hdisplay; 6743 src.height = mode->vdisplay; 6744 dst.width = stream->timing.h_addressable; 6745 dst.height = stream->timing.v_addressable; 6746 6747 if (dm_state) { 6748 rmx_type = dm_state->scaling; 6749 if (rmx_type == RMX_ASPECT || rmx_type == RMX_OFF) { 6750 if (src.width * dst.height < 6751 src.height * dst.width) { 6752 /* height needs less upscaling/more downscaling */ 6753 dst.width = src.width * 6754 dst.height / src.height; 6755 } else { 6756 /* width needs less upscaling/more downscaling */ 6757 dst.height = src.height * 6758 dst.width / src.width; 6759 } 6760 } else if (rmx_type == RMX_CENTER) { 6761 dst = src; 6762 } 6763 6764 dst.x = (stream->timing.h_addressable - dst.width) / 2; 6765 dst.y = (stream->timing.v_addressable - dst.height) / 2; 6766 6767 if (dm_state->underscan_enable) { 6768 dst.x += dm_state->underscan_hborder / 2; 6769 dst.y += dm_state->underscan_vborder / 2; 6770 dst.width -= dm_state->underscan_hborder; 6771 dst.height -= dm_state->underscan_vborder; 6772 } 6773 } 6774 6775 stream->src = src; 6776 stream->dst = dst; 6777 6778 drm_dbg_kms(dev, "Destination Rectangle x:%d y:%d width:%d height:%d\n", 6779 dst.x, dst.y, dst.width, dst.height); 6780 6781 } 6782 6783 static enum dc_color_depth 6784 convert_color_depth_from_display_info(const struct drm_connector *connector, 6785 bool is_y420, int requested_bpc) 6786 { 6787 u8 bpc; 6788 6789 if (is_y420) { 6790 bpc = 8; 6791 6792 /* Cap display bpc based on HDMI 2.0 HF-VSDB */ 6793 if (connector->display_info.hdmi.y420_dc_modes & DRM_EDID_YCBCR420_DC_48) 6794 bpc = 16; 6795 else if (connector->display_info.hdmi.y420_dc_modes & DRM_EDID_YCBCR420_DC_36) 6796 bpc = 12; 6797 else if (connector->display_info.hdmi.y420_dc_modes & DRM_EDID_YCBCR420_DC_30) 6798 bpc = 10; 6799 } else { 6800 bpc = (uint8_t)connector->display_info.bpc; 6801 /* Assume 8 bpc by default if no bpc is specified. */ 6802 bpc = bpc ? bpc : 8; 6803 } 6804 6805 if (requested_bpc > 0) { 6806 /* 6807 * Cap display bpc based on the user requested value. 6808 * 6809 * The value for state->max_bpc may not correctly updated 6810 * depending on when the connector gets added to the state 6811 * or if this was called outside of atomic check, so it 6812 * can't be used directly. 6813 */ 6814 bpc = min_t(u8, bpc, requested_bpc); 6815 6816 /* Round down to the nearest even number. */ 6817 bpc = bpc - (bpc & 1); 6818 } 6819 6820 switch (bpc) { 6821 case 0: 6822 /* 6823 * Temporary Work around, DRM doesn't parse color depth for 6824 * EDID revision before 1.4 6825 * TODO: Fix edid parsing 6826 */ 6827 return COLOR_DEPTH_888; 6828 case 6: 6829 return COLOR_DEPTH_666; 6830 case 8: 6831 return COLOR_DEPTH_888; 6832 case 10: 6833 return COLOR_DEPTH_101010; 6834 case 12: 6835 return COLOR_DEPTH_121212; 6836 case 14: 6837 return COLOR_DEPTH_141414; 6838 case 16: 6839 return COLOR_DEPTH_161616; 6840 default: 6841 return COLOR_DEPTH_UNDEFINED; 6842 } 6843 } 6844 6845 static enum dc_aspect_ratio 6846 get_aspect_ratio(const struct drm_display_mode *mode_in) 6847 { 6848 /* 1-1 mapping, since both enums follow the HDMI spec. */ 6849 return (enum dc_aspect_ratio) mode_in->picture_aspect_ratio; 6850 } 6851 6852 static enum dc_color_space 6853 get_output_color_space(const struct dc_crtc_timing *dc_crtc_timing, 6854 const struct drm_connector_state *connector_state) 6855 { 6856 enum dc_color_space color_space = COLOR_SPACE_SRGB; 6857 6858 switch (connector_state->colorspace) { 6859 case DRM_MODE_COLORIMETRY_BT601_YCC: 6860 if (dc_crtc_timing->flags.Y_ONLY) 6861 color_space = COLOR_SPACE_YCBCR601_LIMITED; 6862 else 6863 color_space = COLOR_SPACE_YCBCR601; 6864 break; 6865 case DRM_MODE_COLORIMETRY_BT709_YCC: 6866 if (dc_crtc_timing->flags.Y_ONLY) 6867 color_space = COLOR_SPACE_YCBCR709_LIMITED; 6868 else 6869 color_space = COLOR_SPACE_YCBCR709; 6870 break; 6871 case DRM_MODE_COLORIMETRY_OPRGB: 6872 color_space = COLOR_SPACE_ADOBERGB; 6873 break; 6874 case DRM_MODE_COLORIMETRY_BT2020_RGB: 6875 case DRM_MODE_COLORIMETRY_BT2020_YCC: 6876 if (dc_crtc_timing->pixel_encoding == PIXEL_ENCODING_RGB) 6877 color_space = COLOR_SPACE_2020_RGB_FULLRANGE; 6878 else 6879 color_space = COLOR_SPACE_2020_YCBCR_LIMITED; 6880 break; 6881 case DRM_MODE_COLORIMETRY_DEFAULT: // ITU601 6882 default: 6883 if (dc_crtc_timing->pixel_encoding == PIXEL_ENCODING_RGB) { 6884 color_space = COLOR_SPACE_SRGB; 6885 if (connector_state->hdmi.broadcast_rgb == DRM_HDMI_BROADCAST_RGB_LIMITED) 6886 color_space = COLOR_SPACE_SRGB_LIMITED; 6887 /* 6888 * 27030khz is the separation point between HDTV and SDTV 6889 * according to HDMI spec, we use YCbCr709 and YCbCr601 6890 * respectively 6891 */ 6892 } else if (dc_crtc_timing->pix_clk_100hz > 270300) { 6893 if (dc_crtc_timing->flags.Y_ONLY) 6894 color_space = 6895 COLOR_SPACE_YCBCR709_LIMITED; 6896 else 6897 color_space = COLOR_SPACE_YCBCR709; 6898 } else { 6899 if (dc_crtc_timing->flags.Y_ONLY) 6900 color_space = 6901 COLOR_SPACE_YCBCR601_LIMITED; 6902 else 6903 color_space = COLOR_SPACE_YCBCR601; 6904 } 6905 break; 6906 } 6907 6908 return color_space; 6909 } 6910 6911 static enum display_content_type 6912 get_output_content_type(const struct drm_connector_state *connector_state) 6913 { 6914 switch (connector_state->content_type) { 6915 default: 6916 case DRM_MODE_CONTENT_TYPE_NO_DATA: 6917 return DISPLAY_CONTENT_TYPE_NO_DATA; 6918 case DRM_MODE_CONTENT_TYPE_GRAPHICS: 6919 return DISPLAY_CONTENT_TYPE_GRAPHICS; 6920 case DRM_MODE_CONTENT_TYPE_PHOTO: 6921 return DISPLAY_CONTENT_TYPE_PHOTO; 6922 case DRM_MODE_CONTENT_TYPE_CINEMA: 6923 return DISPLAY_CONTENT_TYPE_CINEMA; 6924 case DRM_MODE_CONTENT_TYPE_GAME: 6925 return DISPLAY_CONTENT_TYPE_GAME; 6926 } 6927 } 6928 6929 static bool adjust_colour_depth_from_display_info( 6930 struct dc_crtc_timing *timing_out, 6931 const struct drm_display_info *info) 6932 { 6933 enum dc_color_depth depth = timing_out->display_color_depth; 6934 int normalized_clk; 6935 6936 do { 6937 normalized_clk = timing_out->pix_clk_100hz / 10; 6938 /* YCbCr 4:2:0 requires additional adjustment of 1/2 */ 6939 if (timing_out->pixel_encoding == PIXEL_ENCODING_YCBCR420) 6940 normalized_clk /= 2; 6941 /* Adjusting pix clock following on HDMI spec based on colour depth */ 6942 switch (depth) { 6943 case COLOR_DEPTH_888: 6944 break; 6945 case COLOR_DEPTH_101010: 6946 normalized_clk = (normalized_clk * 30) / 24; 6947 break; 6948 case COLOR_DEPTH_121212: 6949 normalized_clk = (normalized_clk * 36) / 24; 6950 break; 6951 case COLOR_DEPTH_161616: 6952 normalized_clk = (normalized_clk * 48) / 24; 6953 break; 6954 default: 6955 /* The above depths are the only ones valid for HDMI. */ 6956 return false; 6957 } 6958 if (normalized_clk <= info->max_tmds_clock) { 6959 timing_out->display_color_depth = depth; 6960 return true; 6961 } 6962 } while (--depth > COLOR_DEPTH_666); 6963 return false; 6964 } 6965 6966 static void fill_stream_properties_from_drm_display_mode( 6967 struct dc_stream_state *stream, 6968 const struct drm_display_mode *mode_in, 6969 const struct drm_connector *connector, 6970 const struct drm_connector_state *connector_state, 6971 const struct dc_stream_state *old_stream, 6972 int requested_bpc) 6973 { 6974 struct dc_crtc_timing *timing_out = &stream->timing; 6975 const struct drm_display_info *info = &connector->display_info; 6976 struct amdgpu_dm_connector *aconnector = NULL; 6977 struct hdmi_vendor_infoframe hv_frame; 6978 struct hdmi_avi_infoframe avi_frame; 6979 ssize_t err; 6980 6981 if (connector->connector_type != DRM_MODE_CONNECTOR_WRITEBACK) 6982 aconnector = to_amdgpu_dm_connector(connector); 6983 6984 memset(&hv_frame, 0, sizeof(hv_frame)); 6985 memset(&avi_frame, 0, sizeof(avi_frame)); 6986 6987 timing_out->h_border_left = 0; 6988 timing_out->h_border_right = 0; 6989 timing_out->v_border_top = 0; 6990 timing_out->v_border_bottom = 0; 6991 /* TODO: un-hardcode */ 6992 if (drm_mode_is_420_only(info, mode_in) 6993 && (stream->signal == SIGNAL_TYPE_HDMI_TYPE_A || 6994 stream->signal == SIGNAL_TYPE_HDMI_FRL) 6995 && aconnector 6996 && aconnector->force_yuv_pixel_format == PIXEL_ENCODING_YCBCR420) 6997 timing_out->pixel_encoding = PIXEL_ENCODING_YCBCR420; 6998 else if (drm_mode_is_420_also(info, mode_in) 6999 && aconnector 7000 && (aconnector->force_yuv_pixel_format == PIXEL_ENCODING_YCBCR420 7001 || aconnector->force_yuv420_output)) 7002 timing_out->pixel_encoding = PIXEL_ENCODING_YCBCR420; 7003 else if ((connector->display_info.color_formats & BIT(DRM_OUTPUT_COLOR_FORMAT_YCBCR422)) 7004 && aconnector 7005 && (aconnector->force_yuv_pixel_format == PIXEL_ENCODING_YCBCR422 7006 || aconnector->force_yuv422_output)) 7007 timing_out->pixel_encoding = PIXEL_ENCODING_YCBCR422; 7008 else if ((connector->display_info.color_formats & BIT(DRM_OUTPUT_COLOR_FORMAT_YCBCR444)) 7009 && (stream->signal == SIGNAL_TYPE_HDMI_TYPE_A || 7010 stream->signal == SIGNAL_TYPE_HDMI_FRL) 7011 && aconnector 7012 && aconnector->force_yuv_pixel_format == PIXEL_ENCODING_YCBCR444) 7013 timing_out->pixel_encoding = PIXEL_ENCODING_YCBCR444; 7014 else 7015 timing_out->pixel_encoding = PIXEL_ENCODING_RGB; 7016 7017 timing_out->timing_3d_format = TIMING_3D_FORMAT_NONE; 7018 timing_out->display_color_depth = convert_color_depth_from_display_info( 7019 connector, 7020 (timing_out->pixel_encoding == PIXEL_ENCODING_YCBCR420), 7021 requested_bpc); 7022 timing_out->scan_type = SCANNING_TYPE_NODATA; 7023 timing_out->hdmi_vic = 0; 7024 7025 if (old_stream) { 7026 timing_out->vic = old_stream->timing.vic; 7027 timing_out->flags.HSYNC_POSITIVE_POLARITY = old_stream->timing.flags.HSYNC_POSITIVE_POLARITY; 7028 timing_out->flags.VSYNC_POSITIVE_POLARITY = old_stream->timing.flags.VSYNC_POSITIVE_POLARITY; 7029 } else { 7030 timing_out->vic = drm_match_cea_mode(mode_in); 7031 if (mode_in->flags & DRM_MODE_FLAG_PHSYNC) 7032 timing_out->flags.HSYNC_POSITIVE_POLARITY = 1; 7033 if (mode_in->flags & DRM_MODE_FLAG_PVSYNC) 7034 timing_out->flags.VSYNC_POSITIVE_POLARITY = 1; 7035 } 7036 7037 if (stream->signal == SIGNAL_TYPE_HDMI_TYPE_A || 7038 stream->signal == SIGNAL_TYPE_HDMI_FRL) { 7039 err = drm_hdmi_avi_infoframe_from_display_mode(&avi_frame, 7040 (struct drm_connector *)connector, 7041 mode_in); 7042 if (err < 0) 7043 drm_warn_once(connector->dev, "Failed to setup avi infoframe on connector %s: %zd\n", 7044 connector->name, err); 7045 timing_out->vic = avi_frame.video_code; 7046 err = drm_hdmi_vendor_infoframe_from_display_mode(&hv_frame, 7047 (struct drm_connector *)connector, 7048 mode_in); 7049 if (err < 0) 7050 drm_warn_once(connector->dev, "Failed to setup vendor infoframe on connector %s: %zd\n", 7051 connector->name, err); 7052 timing_out->hdmi_vic = hv_frame.vic; 7053 } 7054 7055 if (aconnector && is_freesync_video_mode(mode_in, aconnector)) { 7056 timing_out->h_addressable = mode_in->hdisplay; 7057 timing_out->h_total = mode_in->htotal; 7058 timing_out->h_sync_width = mode_in->hsync_end - mode_in->hsync_start; 7059 timing_out->h_front_porch = mode_in->hsync_start - mode_in->hdisplay; 7060 timing_out->v_total = mode_in->vtotal; 7061 timing_out->v_addressable = mode_in->vdisplay; 7062 timing_out->v_front_porch = mode_in->vsync_start - mode_in->vdisplay; 7063 timing_out->v_sync_width = mode_in->vsync_end - mode_in->vsync_start; 7064 timing_out->pix_clk_100hz = mode_in->clock * 10; 7065 } else { 7066 timing_out->h_addressable = mode_in->crtc_hdisplay; 7067 timing_out->h_total = mode_in->crtc_htotal; 7068 timing_out->h_sync_width = mode_in->crtc_hsync_end - mode_in->crtc_hsync_start; 7069 timing_out->h_front_porch = mode_in->crtc_hsync_start - mode_in->crtc_hdisplay; 7070 timing_out->v_total = mode_in->crtc_vtotal; 7071 timing_out->v_addressable = mode_in->crtc_vdisplay; 7072 timing_out->v_front_porch = mode_in->crtc_vsync_start - mode_in->crtc_vdisplay; 7073 timing_out->v_sync_width = mode_in->crtc_vsync_end - mode_in->crtc_vsync_start; 7074 timing_out->pix_clk_100hz = mode_in->crtc_clock * 10; 7075 } 7076 7077 timing_out->aspect_ratio = get_aspect_ratio(mode_in); 7078 7079 stream->out_transfer_func.type = TF_TYPE_PREDEFINED; 7080 stream->out_transfer_func.tf = TRANSFER_FUNCTION_SRGB; 7081 if (stream->signal == SIGNAL_TYPE_HDMI_TYPE_A) { 7082 if (!adjust_colour_depth_from_display_info(timing_out, info) && 7083 drm_mode_is_420_also(info, mode_in) && 7084 timing_out->pixel_encoding != PIXEL_ENCODING_YCBCR420) { 7085 timing_out->pixel_encoding = PIXEL_ENCODING_YCBCR420; 7086 adjust_colour_depth_from_display_info(timing_out, info); 7087 } 7088 } 7089 7090 stream->output_color_space = get_output_color_space(timing_out, connector_state); 7091 stream->content_type = get_output_content_type(connector_state); 7092 } 7093 7094 static void fill_audio_info(struct audio_info *audio_info, 7095 const struct drm_connector *drm_connector, 7096 const struct dc_sink *dc_sink) 7097 { 7098 int i = 0; 7099 int cea_revision = 0; 7100 const struct dc_edid_caps *edid_caps = &dc_sink->edid_caps; 7101 7102 audio_info->manufacture_id = edid_caps->manufacturer_id; 7103 audio_info->product_id = edid_caps->product_id; 7104 7105 cea_revision = drm_connector->display_info.cea_rev; 7106 7107 strscpy(audio_info->display_name, 7108 edid_caps->display_name, 7109 AUDIO_INFO_DISPLAY_NAME_SIZE_IN_CHARS); 7110 7111 if (cea_revision >= 3) { 7112 audio_info->mode_count = edid_caps->audio_mode_count; 7113 7114 for (i = 0; i < audio_info->mode_count; ++i) { 7115 audio_info->modes[i].format_code = 7116 (enum audio_format_code) 7117 (edid_caps->audio_modes[i].format_code); 7118 audio_info->modes[i].channel_count = 7119 edid_caps->audio_modes[i].channel_count; 7120 audio_info->modes[i].sample_rates.all = 7121 edid_caps->audio_modes[i].sample_rate; 7122 audio_info->modes[i].sample_size = 7123 edid_caps->audio_modes[i].sample_size; 7124 } 7125 } 7126 7127 audio_info->flags.all = edid_caps->speaker_flags; 7128 7129 /* TODO: We only check for the progressive mode, check for interlace mode too */ 7130 if (drm_connector->latency_present[0]) { 7131 audio_info->video_latency = drm_connector->video_latency[0]; 7132 audio_info->audio_latency = drm_connector->audio_latency[0]; 7133 } 7134 7135 /* TODO: For DP, video and audio latency should be calculated from DPCD caps */ 7136 7137 } 7138 7139 static void 7140 copy_crtc_timing_for_drm_display_mode(const struct drm_display_mode *src_mode, 7141 struct drm_display_mode *dst_mode) 7142 { 7143 dst_mode->crtc_hdisplay = src_mode->crtc_hdisplay; 7144 dst_mode->crtc_vdisplay = src_mode->crtc_vdisplay; 7145 dst_mode->crtc_clock = src_mode->crtc_clock; 7146 dst_mode->crtc_hblank_start = src_mode->crtc_hblank_start; 7147 dst_mode->crtc_hblank_end = src_mode->crtc_hblank_end; 7148 dst_mode->crtc_hsync_start = src_mode->crtc_hsync_start; 7149 dst_mode->crtc_hsync_end = src_mode->crtc_hsync_end; 7150 dst_mode->crtc_htotal = src_mode->crtc_htotal; 7151 dst_mode->crtc_hskew = src_mode->crtc_hskew; 7152 dst_mode->crtc_vblank_start = src_mode->crtc_vblank_start; 7153 dst_mode->crtc_vblank_end = src_mode->crtc_vblank_end; 7154 dst_mode->crtc_vsync_start = src_mode->crtc_vsync_start; 7155 dst_mode->crtc_vsync_end = src_mode->crtc_vsync_end; 7156 dst_mode->crtc_vtotal = src_mode->crtc_vtotal; 7157 } 7158 7159 static void 7160 decide_crtc_timing_for_drm_display_mode(struct drm_display_mode *drm_mode, 7161 const struct drm_display_mode *native_mode, 7162 bool scale_enabled) 7163 { 7164 if (scale_enabled || ( 7165 native_mode->clock == drm_mode->clock && 7166 native_mode->htotal == drm_mode->htotal && 7167 native_mode->vtotal == drm_mode->vtotal)) { 7168 if (native_mode->crtc_clock) 7169 copy_crtc_timing_for_drm_display_mode(native_mode, drm_mode); 7170 } else { 7171 /* no scaling nor amdgpu inserted, no need to patch */ 7172 } 7173 } 7174 7175 static struct dc_sink * 7176 create_fake_sink(struct drm_device *dev, struct dc_link *link) 7177 { 7178 struct dc_sink_init_data sink_init_data = { 0 }; 7179 struct dc_sink *sink = NULL; 7180 7181 sink_init_data.link = link; 7182 sink_init_data.sink_signal = link->connector_signal; 7183 7184 sink = dc_sink_create(&sink_init_data); 7185 if (!sink) { 7186 drm_err(dev, "Failed to create sink!\n"); 7187 return NULL; 7188 } 7189 sink->sink_signal = SIGNAL_TYPE_VIRTUAL; 7190 7191 return sink; 7192 } 7193 7194 static void set_multisync_trigger_params( 7195 struct dc_stream_state *stream) 7196 { 7197 struct dc_stream_state *master = NULL; 7198 7199 if (stream->triggered_crtc_reset.enabled) { 7200 master = stream->triggered_crtc_reset.event_source; 7201 stream->triggered_crtc_reset.event = 7202 master->timing.flags.VSYNC_POSITIVE_POLARITY ? 7203 CRTC_EVENT_VSYNC_RISING : CRTC_EVENT_VSYNC_FALLING; 7204 stream->triggered_crtc_reset.delay = TRIGGER_DELAY_NEXT_PIXEL; 7205 } 7206 } 7207 7208 static void set_master_stream(struct dc_stream_state *stream_set[], 7209 int stream_count) 7210 { 7211 int j, highest_rfr = 0, master_stream = 0; 7212 7213 for (j = 0; j < stream_count; j++) { 7214 if (stream_set[j] && stream_set[j]->triggered_crtc_reset.enabled) { 7215 int refresh_rate = 0; 7216 7217 refresh_rate = (stream_set[j]->timing.pix_clk_100hz*100)/ 7218 (stream_set[j]->timing.h_total*stream_set[j]->timing.v_total); 7219 if (refresh_rate > highest_rfr) { 7220 highest_rfr = refresh_rate; 7221 master_stream = j; 7222 } 7223 } 7224 } 7225 for (j = 0; j < stream_count; j++) { 7226 if (stream_set[j]) 7227 stream_set[j]->triggered_crtc_reset.event_source = stream_set[master_stream]; 7228 } 7229 } 7230 7231 static void dm_enable_per_frame_crtc_master_sync(struct dc_state *context) 7232 { 7233 int i = 0; 7234 struct dc_stream_state *stream; 7235 7236 if (context->stream_count < 2) 7237 return; 7238 for (i = 0; i < context->stream_count ; i++) { 7239 if (!context->streams[i]) 7240 continue; 7241 /* 7242 * TODO: add a function to read AMD VSDB bits and set 7243 * crtc_sync_master.multi_sync_enabled flag 7244 * For now it's set to false 7245 */ 7246 } 7247 7248 set_master_stream(context->streams, context->stream_count); 7249 7250 for (i = 0; i < context->stream_count ; i++) { 7251 stream = context->streams[i]; 7252 7253 if (!stream) 7254 continue; 7255 7256 set_multisync_trigger_params(stream); 7257 } 7258 } 7259 7260 /** 7261 * DOC: FreeSync Video 7262 * 7263 * When a userspace application wants to play a video, the content follows a 7264 * standard format definition that usually specifies the FPS for that format. 7265 * The below list illustrates some video format and the expected FPS, 7266 * respectively: 7267 * 7268 * - TV/NTSC (23.976 FPS) 7269 * - Cinema (24 FPS) 7270 * - TV/PAL (25 FPS) 7271 * - TV/NTSC (29.97 FPS) 7272 * - TV/NTSC (30 FPS) 7273 * - Cinema HFR (48 FPS) 7274 * - TV/PAL (50 FPS) 7275 * - Commonly used (60 FPS) 7276 * - Multiples of 24 (48,72,96 FPS) 7277 * 7278 * The list of standards video format is not huge and can be added to the 7279 * connector modeset list beforehand. With that, userspace can leverage 7280 * FreeSync to extends the front porch in order to attain the target refresh 7281 * rate. Such a switch will happen seamlessly, without screen blanking or 7282 * reprogramming of the output in any other way. If the userspace requests a 7283 * modesetting change compatible with FreeSync modes that only differ in the 7284 * refresh rate, DC will skip the full update and avoid blink during the 7285 * transition. For example, the video player can change the modesetting from 7286 * 60Hz to 30Hz for playing TV/NTSC content when it goes full screen without 7287 * causing any display blink. This same concept can be applied to a mode 7288 * setting change. 7289 */ 7290 static struct drm_display_mode * 7291 get_highest_refresh_rate_mode(struct amdgpu_dm_connector *aconnector, 7292 bool use_probed_modes) 7293 { 7294 struct drm_display_mode *m, *m_pref = NULL; 7295 u16 current_refresh, highest_refresh; 7296 struct list_head *list_head = use_probed_modes ? 7297 &aconnector->base.probed_modes : 7298 &aconnector->base.modes; 7299 7300 if (aconnector->base.connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 7301 return NULL; 7302 7303 if (aconnector->freesync_vid_base.clock != 0) 7304 return &aconnector->freesync_vid_base; 7305 7306 /* Find the preferred mode */ 7307 list_for_each_entry(m, list_head, head) { 7308 if (m->type & DRM_MODE_TYPE_PREFERRED) { 7309 m_pref = m; 7310 break; 7311 } 7312 } 7313 7314 if (!m_pref) { 7315 /* Probably an EDID with no preferred mode. Fallback to first entry */ 7316 m_pref = list_first_entry_or_null( 7317 &aconnector->base.modes, struct drm_display_mode, head); 7318 if (!m_pref) { 7319 drm_dbg_driver(aconnector->base.dev, "No preferred mode found in EDID\n"); 7320 return NULL; 7321 } 7322 } 7323 7324 highest_refresh = drm_mode_vrefresh(m_pref); 7325 7326 /* 7327 * Find the mode with highest refresh rate with same resolution. 7328 * For some monitors, preferred mode is not the mode with highest 7329 * supported refresh rate. 7330 */ 7331 list_for_each_entry(m, list_head, head) { 7332 current_refresh = drm_mode_vrefresh(m); 7333 7334 if (m->hdisplay == m_pref->hdisplay && 7335 m->vdisplay == m_pref->vdisplay && 7336 highest_refresh < current_refresh) { 7337 highest_refresh = current_refresh; 7338 m_pref = m; 7339 } 7340 } 7341 7342 drm_mode_copy(&aconnector->freesync_vid_base, m_pref); 7343 return m_pref; 7344 } 7345 7346 static bool is_freesync_video_mode(const struct drm_display_mode *mode, 7347 struct amdgpu_dm_connector *aconnector) 7348 { 7349 struct drm_display_mode *high_mode; 7350 int timing_diff; 7351 7352 high_mode = get_highest_refresh_rate_mode(aconnector, false); 7353 if (!high_mode || !mode) 7354 return false; 7355 7356 timing_diff = high_mode->vtotal - mode->vtotal; 7357 7358 if (high_mode->clock == 0 || high_mode->clock != mode->clock || 7359 high_mode->hdisplay != mode->hdisplay || 7360 high_mode->vdisplay != mode->vdisplay || 7361 high_mode->hsync_start != mode->hsync_start || 7362 high_mode->hsync_end != mode->hsync_end || 7363 high_mode->htotal != mode->htotal || 7364 high_mode->hskew != mode->hskew || 7365 high_mode->vscan != mode->vscan || 7366 high_mode->vsync_start - mode->vsync_start != timing_diff || 7367 high_mode->vsync_end - mode->vsync_end != timing_diff) 7368 return false; 7369 else 7370 return true; 7371 } 7372 7373 #if defined(CONFIG_DRM_AMD_DC_FP) 7374 static void update_dsc_caps(struct amdgpu_dm_connector *aconnector, 7375 struct dc_sink *sink, struct dc_stream_state *stream, 7376 struct dsc_dec_dpcd_caps *dsc_caps) 7377 { 7378 stream->timing.flags.DSC = 0; 7379 dsc_caps->is_dsc_supported = false; 7380 7381 if (aconnector->dc_link && (sink->sink_signal == SIGNAL_TYPE_DISPLAY_PORT || 7382 sink->sink_signal == SIGNAL_TYPE_EDP)) { 7383 if (sink->link->dpcd_caps.dongle_type == DISPLAY_DONGLE_NONE) 7384 dc_dsc_parse_dsc_dpcd(aconnector->dc_link->ctx->dc, 7385 aconnector->dc_link->dpcd_caps.dsc_caps.dsc_basic_caps.raw, 7386 aconnector->dc_link->dpcd_caps.dsc_caps.dsc_branch_decoder_caps.raw, 7387 dsc_caps); 7388 else if (sink->link->dpcd_caps.dongle_type == DISPLAY_DONGLE_DP_HDMI_CONVERTER) { 7389 if (aconnector->dc_link->dpcd_caps.dsc_caps.dsc_basic_caps.fields.dsc_support.DSC_PASSTHROUGH_SUPPORT && 7390 !aconnector->dsc_settings.dsc_force_disable_passthrough && 7391 aconnector->dc_link->dpcd_caps.dongle_caps.dp_hdmi_frl_max_link_bw_in_kbps > 0 && 7392 sink->edid_caps.frl_dsc_support && 7393 sink->edid_caps.max_frl_rate > 0 && 7394 sink->edid_caps.frl_dsc_max_frl_rate > 0) 7395 dc_dsc_parse_dsc_edid(aconnector->dc_link->ctx->dc, &sink->edid_caps, dsc_caps); 7396 else 7397 dc_dsc_parse_dsc_dpcd(aconnector->dc_link->ctx->dc, 7398 aconnector->dc_link->dpcd_caps.dsc_caps.dsc_basic_caps.raw, 7399 aconnector->dc_link->dpcd_caps.dsc_caps.dsc_branch_decoder_caps.raw, 7400 dsc_caps); 7401 } 7402 } else if (aconnector->dc_link && sink->sink_signal == SIGNAL_TYPE_HDMI_FRL) { 7403 if (sink->edid_caps.frl_dsc_support && 7404 sink->edid_caps.max_frl_rate > 0 && 7405 sink->edid_caps.frl_dsc_max_frl_rate > 0) 7406 dc_dsc_parse_dsc_edid(aconnector->dc_link->ctx->dc, &sink->edid_caps, dsc_caps); 7407 } 7408 } 7409 7410 static void apply_dsc_policy_for_edp(struct amdgpu_dm_connector *aconnector, 7411 struct dc_sink *sink, struct dc_stream_state *stream, 7412 struct dsc_dec_dpcd_caps *dsc_caps, 7413 uint32_t max_dsc_target_bpp_limit_override) 7414 { 7415 const struct dc_link_settings *verified_link_cap = NULL; 7416 u32 link_bw_in_kbps; 7417 u32 edp_min_bpp_x16, edp_max_bpp_x16; 7418 struct dc *dc = sink->ctx->dc; 7419 struct dc_dsc_bw_range bw_range = {0}; 7420 struct dc_dsc_config dsc_cfg = {0}; 7421 struct dc_dsc_config_options dsc_options = {0}; 7422 7423 dc_dsc_get_default_config_option(dc, &dsc_options); 7424 dsc_options.max_target_bpp_limit_override_x16 = max_dsc_target_bpp_limit_override * 16; 7425 7426 verified_link_cap = dc_link_get_link_cap(stream->link); 7427 link_bw_in_kbps = dc_link_bandwidth_kbps(stream->link, verified_link_cap); 7428 edp_min_bpp_x16 = 8 * 16; 7429 edp_max_bpp_x16 = 8 * 16; 7430 7431 if (edp_max_bpp_x16 > dsc_caps->edp_max_bits_per_pixel) 7432 edp_max_bpp_x16 = dsc_caps->edp_max_bits_per_pixel; 7433 7434 if (edp_max_bpp_x16 < edp_min_bpp_x16) 7435 edp_min_bpp_x16 = edp_max_bpp_x16; 7436 7437 if (dc_dsc_compute_bandwidth_range(dc->res_pool->dscs[0], 7438 dc->debug.dsc_min_slice_height_override, 7439 edp_min_bpp_x16, edp_max_bpp_x16, 7440 dsc_caps, 7441 &stream->timing, 7442 dc_link_get_highest_encoding_format(aconnector->dc_link), 7443 &bw_range)) { 7444 7445 if (bw_range.max_kbps < link_bw_in_kbps) { 7446 if (dc_dsc_compute_config(dc->res_pool->dscs[0], 7447 dsc_caps, 7448 &dsc_options, 7449 0, 7450 &stream->timing, 7451 dc_link_get_highest_encoding_format(aconnector->dc_link), 7452 &dsc_cfg)) { 7453 stream->timing.dsc_cfg = dsc_cfg; 7454 stream->timing.flags.DSC = 1; 7455 stream->timing.dsc_cfg.bits_per_pixel = edp_max_bpp_x16; 7456 } 7457 return; 7458 } 7459 } 7460 7461 if (dc_dsc_compute_config(dc->res_pool->dscs[0], 7462 dsc_caps, 7463 &dsc_options, 7464 link_bw_in_kbps, 7465 &stream->timing, 7466 dc_link_get_highest_encoding_format(aconnector->dc_link), 7467 &dsc_cfg)) { 7468 stream->timing.dsc_cfg = dsc_cfg; 7469 stream->timing.flags.DSC = 1; 7470 } 7471 } 7472 7473 static void apply_dsc_policy_for_stream(struct amdgpu_dm_connector *aconnector, 7474 struct dc_sink *sink, struct dc_stream_state *stream, 7475 struct dsc_dec_dpcd_caps *dsc_caps) 7476 { 7477 struct drm_connector *drm_connector = &aconnector->base; 7478 u32 link_bandwidth_kbps; 7479 struct dc *dc = sink->ctx->dc; 7480 const struct dc_hdmi_frl_link_settings *frl_verified_link_cap = NULL; 7481 u32 converter_bw_in_kbps; 7482 u32 sink_bw_in_kbps; 7483 u32 dsc_sink_bw_in_kbps; 7484 u32 max_supported_bw_in_kbps, timing_bw_in_kbps; 7485 u32 dsc_max_supported_bw_in_kbps; 7486 u32 max_dsc_target_bpp_limit_override = 7487 drm_connector->display_info.max_dsc_bpp; 7488 struct dc_dsc_config_options dsc_options = {0}; 7489 7490 dc_dsc_get_default_config_option(dc, &dsc_options); 7491 dsc_options.max_target_bpp_limit_override_x16 = max_dsc_target_bpp_limit_override * 16; 7492 7493 link_bandwidth_kbps = dc_link_bandwidth_kbps(aconnector->dc_link, 7494 dc_link_get_link_cap(aconnector->dc_link)); 7495 7496 /* Set DSC policy according to dsc_clock_en */ 7497 dc_dsc_policy_set_enable_dsc_when_not_needed( 7498 aconnector->dsc_settings.dsc_force_enable == DSC_CLK_FORCE_ENABLE); 7499 7500 if (sink->sink_signal == SIGNAL_TYPE_EDP && 7501 !aconnector->dc_link->panel_config.dsc.disable_dsc_edp && 7502 dc->caps.edp_dsc_support && aconnector->dsc_settings.dsc_force_enable != DSC_CLK_FORCE_DISABLE) { 7503 7504 apply_dsc_policy_for_edp(aconnector, sink, stream, dsc_caps, max_dsc_target_bpp_limit_override); 7505 7506 } else if (sink->sink_signal == SIGNAL_TYPE_DISPLAY_PORT) { 7507 if (sink->link->dpcd_caps.dongle_type == DISPLAY_DONGLE_NONE) { 7508 if (dc_dsc_compute_config(aconnector->dc_link->ctx->dc->res_pool->dscs[0], 7509 dsc_caps, 7510 &dsc_options, 7511 link_bandwidth_kbps, 7512 &stream->timing, 7513 dc_link_get_highest_encoding_format(aconnector->dc_link), 7514 &stream->timing.dsc_cfg)) { 7515 stream->timing.flags.DSC = 1; 7516 drm_dbg_driver(drm_connector->dev, "%s: SST_DSC [%s] DSC is selected from SST RX\n", 7517 __func__, drm_connector->name); 7518 } 7519 } else if (sink->link->dpcd_caps.dongle_type == DISPLAY_DONGLE_DP_HDMI_CONVERTER) { 7520 timing_bw_in_kbps = dc_bandwidth_in_kbps_from_timing(&stream->timing, 7521 dc_link_get_highest_encoding_format(aconnector->dc_link)); 7522 converter_bw_in_kbps = aconnector->dc_link->dpcd_caps.dongle_caps.dp_hdmi_frl_max_link_bw_in_kbps; 7523 sink_bw_in_kbps = dc_link_bw_kbps_from_raw_frl_link_rate_data(dc, sink->edid_caps.max_frl_rate); 7524 dsc_sink_bw_in_kbps = dc_link_bw_kbps_from_raw_frl_link_rate_data(dc, sink->edid_caps.frl_dsc_max_frl_rate); 7525 7526 if (dsc_caps->is_frl) { 7527 max_supported_bw_in_kbps = min(link_bandwidth_kbps, converter_bw_in_kbps); 7528 max_supported_bw_in_kbps = min(max_supported_bw_in_kbps, sink_bw_in_kbps); 7529 dsc_max_supported_bw_in_kbps = min(max_supported_bw_in_kbps, dsc_sink_bw_in_kbps); 7530 } else { 7531 max_supported_bw_in_kbps = link_bandwidth_kbps; 7532 dsc_max_supported_bw_in_kbps = link_bandwidth_kbps; 7533 } 7534 7535 if (timing_bw_in_kbps > max_supported_bw_in_kbps && 7536 max_supported_bw_in_kbps > 0 && 7537 dsc_max_supported_bw_in_kbps > 0) 7538 if (dc_dsc_compute_config(aconnector->dc_link->ctx->dc->res_pool->dscs[0], 7539 dsc_caps, 7540 &dsc_options, 7541 dsc_max_supported_bw_in_kbps, 7542 &stream->timing, 7543 dc_link_get_highest_encoding_format(aconnector->dc_link), 7544 &stream->timing.dsc_cfg)) { 7545 stream->timing.flags.DSC = 1; 7546 drm_dbg_driver(drm_connector->dev, "%s: SST_DSC [%s] DSC is selected from %s\n", 7547 __func__, drm_connector->name, 7548 (dsc_caps->is_frl == 1) ? "HDMI FRL RX" : "DP-HDMI PCON"); 7549 } 7550 } 7551 } 7552 else if (aconnector->dc_link && sink->sink_signal == SIGNAL_TYPE_HDMI_FRL) { 7553 struct dc_dsc_policy dsc_policy = {0}; 7554 7555 frl_verified_link_cap = dc_link_get_frl_link_cap(stream->link); 7556 if (frl_verified_link_cap->frl_link_rate != HDMI_FRL_LINK_RATE_DISABLE && 7557 aconnector->dc_link->frl_flags.force_frl_dsc) { 7558 dc_dsc_policy_set_enable_dsc_when_not_needed(true); 7559 dc_dsc_get_policy_for_timing(&stream->timing, 0, &dsc_policy, dc_link_get_highest_encoding_format(stream->link)); 7560 } 7561 7562 timing_bw_in_kbps = dc_bandwidth_in_kbps_from_timing(&stream->timing, DC_LINK_ENCODING_HDMI_FRL); 7563 link_bandwidth_kbps = dc_link_frl_bandwidth_kbps(stream->link, frl_verified_link_cap->frl_link_rate); 7564 dsc_sink_bw_in_kbps = dc_link_bw_kbps_from_raw_frl_link_rate_data(dc, sink->edid_caps.frl_dsc_max_frl_rate); 7565 7566 if ((timing_bw_in_kbps > link_bandwidth_kbps && dsc_sink_bw_in_kbps > 0) || 7567 (dsc_policy.enable_dsc_when_not_needed || dsc_options.force_dsc_when_not_needed)) { 7568 if (dc_dsc_compute_config(aconnector->dc_link->ctx->dc->res_pool->dscs[0], 7569 dsc_caps, 7570 &dsc_options, 7571 dsc_sink_bw_in_kbps, 7572 &stream->timing, 7573 dc_link_get_highest_encoding_format(aconnector->dc_link), 7574 &stream->timing.dsc_cfg)) { 7575 stream->timing.flags.DSC = 1; 7576 drm_dbg_driver(drm_connector->dev, "%s: HDMI_FRL_DSC [%s] DSC is selected from HDMI FRL RX\n", 7577 __func__, drm_connector->name); 7578 } 7579 } 7580 } 7581 7582 /* Overwrite the stream flag if DSC is enabled through debugfs */ 7583 if (aconnector->dsc_settings.dsc_force_enable == DSC_CLK_FORCE_ENABLE) 7584 stream->timing.flags.DSC = 1; 7585 7586 if (stream->timing.flags.DSC && aconnector->dsc_settings.dsc_num_slices_h) 7587 stream->timing.dsc_cfg.num_slices_h = aconnector->dsc_settings.dsc_num_slices_h; 7588 7589 if (stream->timing.flags.DSC && aconnector->dsc_settings.dsc_num_slices_v) 7590 stream->timing.dsc_cfg.num_slices_v = aconnector->dsc_settings.dsc_num_slices_v; 7591 7592 if (stream->timing.flags.DSC && aconnector->dsc_settings.dsc_bits_per_pixel) 7593 stream->timing.dsc_cfg.bits_per_pixel = aconnector->dsc_settings.dsc_bits_per_pixel; 7594 } 7595 #endif 7596 7597 static struct dc_stream_state * 7598 create_stream_for_sink(struct drm_connector *connector, 7599 const struct drm_display_mode *drm_mode, 7600 const struct dm_connector_state *dm_state, 7601 const struct dc_stream_state *old_stream, 7602 int requested_bpc) 7603 { 7604 struct drm_device *dev = connector->dev; 7605 struct amdgpu_dm_connector *aconnector = NULL; 7606 struct drm_display_mode *preferred_mode = NULL; 7607 const struct drm_connector_state *con_state = &dm_state->base; 7608 struct dc_stream_state *stream = NULL; 7609 struct drm_display_mode mode; 7610 struct drm_display_mode saved_mode; 7611 struct drm_display_mode *freesync_mode = NULL; 7612 bool native_mode_found = false; 7613 bool recalculate_timing = false; 7614 bool scale = dm_state->scaling != RMX_OFF; 7615 int mode_refresh; 7616 int preferred_refresh = 0; 7617 enum color_transfer_func tf = TRANSFER_FUNC_UNKNOWN; 7618 #if defined(CONFIG_DRM_AMD_DC_FP) 7619 struct dsc_dec_dpcd_caps dsc_caps = {0}; 7620 #endif 7621 struct dc_link *link = NULL; 7622 struct dc_sink *sink = NULL; 7623 7624 drm_mode_init(&mode, drm_mode); 7625 memset(&saved_mode, 0, sizeof(saved_mode)); 7626 7627 if (connector->connector_type != DRM_MODE_CONNECTOR_WRITEBACK) { 7628 aconnector = NULL; 7629 aconnector = to_amdgpu_dm_connector(connector); 7630 link = aconnector->dc_link; 7631 } else { 7632 struct drm_writeback_connector *wbcon = NULL; 7633 struct amdgpu_dm_wb_connector *dm_wbcon = NULL; 7634 7635 wbcon = drm_connector_to_writeback(connector); 7636 dm_wbcon = to_amdgpu_dm_wb_connector(wbcon); 7637 link = dm_wbcon->link; 7638 } 7639 7640 if (!aconnector || !aconnector->dc_sink) { 7641 sink = create_fake_sink(dev, link); 7642 if (!sink) 7643 return stream; 7644 7645 } else { 7646 sink = aconnector->dc_sink; 7647 dc_sink_retain(sink); 7648 } 7649 7650 stream = dc_create_stream_for_sink(sink); 7651 7652 if (stream == NULL) { 7653 drm_err(dev, "Failed to create stream for sink!\n"); 7654 goto finish; 7655 } 7656 7657 /* We leave this NULL for writeback connectors */ 7658 stream->dm_stream_context = aconnector; 7659 7660 stream->timing.flags.LTE_340MCSC_SCRAMBLE = 7661 connector->display_info.hdmi.scdc.scrambling.low_rates; 7662 7663 list_for_each_entry(preferred_mode, &connector->modes, head) { 7664 /* Search for preferred mode */ 7665 if (preferred_mode->type & DRM_MODE_TYPE_PREFERRED) { 7666 native_mode_found = true; 7667 break; 7668 } 7669 } 7670 if (!native_mode_found) 7671 preferred_mode = list_first_entry_or_null( 7672 &connector->modes, 7673 struct drm_display_mode, 7674 head); 7675 7676 mode_refresh = drm_mode_vrefresh(&mode); 7677 7678 if (preferred_mode == NULL) { 7679 /* 7680 * This may not be an error, the use case is when we have no 7681 * usermode calls to reset and set mode upon hotplug. In this 7682 * case, we call set mode ourselves to restore the previous mode 7683 * and the modelist may not be filled in time. 7684 */ 7685 drm_dbg_driver(dev, "No preferred mode found\n"); 7686 } else if (aconnector) { 7687 recalculate_timing = amdgpu_freesync_vid_mode && 7688 is_freesync_video_mode(&mode, aconnector); 7689 if (recalculate_timing) { 7690 freesync_mode = get_highest_refresh_rate_mode(aconnector, false); 7691 drm_mode_copy(&saved_mode, &mode); 7692 saved_mode.picture_aspect_ratio = mode.picture_aspect_ratio; 7693 drm_mode_copy(&mode, freesync_mode); 7694 mode.picture_aspect_ratio = saved_mode.picture_aspect_ratio; 7695 } else { 7696 decide_crtc_timing_for_drm_display_mode( 7697 &mode, preferred_mode, scale); 7698 7699 preferred_refresh = drm_mode_vrefresh(preferred_mode); 7700 } 7701 } 7702 7703 if (recalculate_timing) 7704 drm_mode_set_crtcinfo(&saved_mode, 0); 7705 7706 /* 7707 * If scaling is enabled and refresh rate didn't change 7708 * we copy the vic and polarities of the old timings 7709 */ 7710 if (!scale || mode_refresh != preferred_refresh) 7711 fill_stream_properties_from_drm_display_mode( 7712 stream, &mode, connector, con_state, NULL, 7713 requested_bpc); 7714 else 7715 fill_stream_properties_from_drm_display_mode( 7716 stream, &mode, connector, con_state, old_stream, 7717 requested_bpc); 7718 7719 /* The rest isn't needed for writeback connectors */ 7720 if (!aconnector) 7721 goto finish; 7722 7723 if (aconnector->timing_changed) { 7724 drm_dbg(aconnector->base.dev, 7725 "overriding timing for automated test, bpc %d, changing to %d\n", 7726 stream->timing.display_color_depth, 7727 aconnector->timing_requested->display_color_depth); 7728 stream->timing = *aconnector->timing_requested; 7729 } 7730 7731 #if defined(CONFIG_DRM_AMD_DC_FP) 7732 /* SST DSC determination policy */ 7733 update_dsc_caps(aconnector, sink, stream, &dsc_caps); 7734 if (aconnector->dsc_settings.dsc_force_enable != DSC_CLK_FORCE_DISABLE && dsc_caps.is_dsc_supported) 7735 apply_dsc_policy_for_stream(aconnector, sink, stream, &dsc_caps); 7736 #endif 7737 7738 update_stream_scaling_settings(dev, &mode, dm_state, stream); 7739 7740 fill_audio_info( 7741 &stream->audio_info, 7742 connector, 7743 sink); 7744 7745 update_stream_signal(stream, sink); 7746 7747 if (stream->signal == SIGNAL_TYPE_HDMI_TYPE_A || 7748 stream->signal == SIGNAL_TYPE_HDMI_FRL) 7749 mod_build_hf_vsif_infopacket(stream, &stream->vsp_infopacket, false, false); 7750 7751 if (stream->signal == SIGNAL_TYPE_DISPLAY_PORT || 7752 stream->signal == SIGNAL_TYPE_DISPLAY_PORT_MST || 7753 stream->signal == SIGNAL_TYPE_EDP) { 7754 const struct dc_edid_caps *edid_caps; 7755 unsigned int disable_colorimetry = 0; 7756 7757 if (aconnector->dc_sink) { 7758 edid_caps = &aconnector->dc_sink->edid_caps; 7759 disable_colorimetry = edid_caps->panel_patch.disable_colorimetry; 7760 } 7761 7762 // 7763 // should decide stream support vsc sdp colorimetry capability 7764 // before building vsc info packet 7765 // 7766 stream->use_vsc_sdp_for_colorimetry = stream->link->dpcd_caps.dpcd_rev.raw >= 0x14 && 7767 stream->link->dpcd_caps.dprx_feature.bits.VSC_SDP_COLORIMETRY_SUPPORTED && 7768 !disable_colorimetry; 7769 7770 if (stream->out_transfer_func.tf == TRANSFER_FUNCTION_GAMMA22) 7771 tf = TRANSFER_FUNC_GAMMA_22; 7772 mod_build_vsc_infopacket(stream, &stream->vsc_infopacket, stream->output_color_space, tf); 7773 aconnector->sr_skip_count = AMDGPU_DM_PSR_ENTRY_DELAY; 7774 7775 } 7776 finish: 7777 dc_sink_release(sink); 7778 7779 return stream; 7780 } 7781 7782 /** 7783 * amdgpu_dm_connector_poll - Poll a connector to see if it's connected to a display 7784 * @aconnector: DM connector to poll (owns @base drm_connector and @dc_link) 7785 * @force: if true, force polling even when DAC load detection was used 7786 * 7787 * Used for connectors that don't support HPD (hotplug detection) to 7788 * periodically check whether the connector is connected to a display. 7789 * 7790 * When connection was determined via DAC load detection, we avoid 7791 * re-running it on normal polls to prevent visible glitches, unless 7792 * @force is set. 7793 * 7794 * Return: The probed connector status (connected/disconnected/unknown). 7795 */ 7796 static enum drm_connector_status 7797 amdgpu_dm_connector_poll(struct amdgpu_dm_connector *aconnector, bool force) 7798 { 7799 struct drm_connector *connector = &aconnector->base; 7800 struct drm_device *dev = connector->dev; 7801 struct amdgpu_device *adev = drm_to_adev(dev); 7802 struct dc_link *link = aconnector->dc_link; 7803 enum dc_connection_type conn_type = dc_connection_none; 7804 enum drm_connector_status status = connector_status_disconnected; 7805 7806 /* When we determined the connection using DAC load detection, 7807 * do NOT poll the connector do detect disconnect because 7808 * that would run DAC load detection again which can cause 7809 * visible visual glitches. 7810 * 7811 * Only allow to poll such a connector again when forcing. 7812 */ 7813 if (!force && link->local_sink && link->type == dc_connection_analog_load) 7814 return connector->status; 7815 7816 mutex_lock(&aconnector->hpd_lock); 7817 7818 if (dc_link_detect_connection_type(aconnector->dc_link, &conn_type) && 7819 conn_type != dc_connection_none) { 7820 mutex_lock(&adev->dm.dc_lock); 7821 7822 /* Only call full link detection when a sink isn't created yet, 7823 * ie. just when the display is plugged in, otherwise we risk flickering. 7824 */ 7825 if (link->local_sink || 7826 dc_link_detect(link, DETECT_REASON_HPD)) 7827 status = connector_status_connected; 7828 7829 mutex_unlock(&adev->dm.dc_lock); 7830 } 7831 7832 if (connector->status != status) { 7833 if (status == connector_status_disconnected) { 7834 if (link->local_sink) 7835 dc_sink_release(link->local_sink); 7836 7837 link->local_sink = NULL; 7838 link->dpcd_sink_count = 0; 7839 link->type = dc_connection_none; 7840 } 7841 7842 amdgpu_dm_update_connector_after_detect(aconnector); 7843 } 7844 7845 mutex_unlock(&aconnector->hpd_lock); 7846 return status; 7847 } 7848 7849 /** 7850 * amdgpu_dm_connector_detect() - Detect whether a DRM connector is connected to a display 7851 * 7852 * A connector is considered connected when it has a sink that is not NULL. 7853 * For connectors that support HPD (hotplug detection), the connection is 7854 * handled in the HPD interrupt. 7855 * For connectors that may not support HPD, such as analog connectors, 7856 * DRM will call this function repeatedly to poll them. 7857 * 7858 * Notes: 7859 * 1. This interface is NOT called in context of HPD irq. 7860 * 2. This interface *is called* in context of user-mode ioctl. Which 7861 * makes it a bad place for *any* MST-related activity. 7862 * 7863 * @connector: The DRM connector we are checking. We convert it to 7864 * amdgpu_dm_connector so we can read the DC link and state. 7865 * @force: If true, do a full detect again. This is used even when 7866 * a lighter check would normally be used to avoid flicker. 7867 * 7868 * Return: The connector status (connected, disconnected, or unknown). 7869 * 7870 */ 7871 static enum drm_connector_status 7872 amdgpu_dm_connector_detect(struct drm_connector *connector, bool force) 7873 { 7874 struct amdgpu_dm_connector *aconnector = to_amdgpu_dm_connector(connector); 7875 7876 update_subconnector_property(aconnector); 7877 7878 if (aconnector->base.force == DRM_FORCE_ON || 7879 aconnector->base.force == DRM_FORCE_ON_DIGITAL) 7880 return connector_status_connected; 7881 else if (aconnector->base.force == DRM_FORCE_OFF) 7882 return connector_status_disconnected; 7883 7884 /* Poll analog connectors and only when either 7885 * disconnected or connected to an analog display. 7886 */ 7887 if (drm_kms_helper_is_poll_worker() && 7888 dc_connector_supports_analog(aconnector->dc_link->link_id.id) && 7889 (!aconnector->dc_sink || aconnector->dc_sink->edid_caps.analog)) 7890 return amdgpu_dm_connector_poll(aconnector, force); 7891 7892 return (aconnector->dc_sink ? connector_status_connected : 7893 connector_status_disconnected); 7894 } 7895 7896 int amdgpu_dm_connector_atomic_set_property(struct drm_connector *connector, 7897 struct drm_connector_state *connector_state, 7898 struct drm_property *property, 7899 uint64_t val) 7900 { 7901 struct drm_device *dev = connector->dev; 7902 struct amdgpu_device *adev = drm_to_adev(dev); 7903 struct dm_connector_state *dm_old_state = 7904 to_dm_connector_state(connector->state); 7905 struct dm_connector_state *dm_new_state = 7906 to_dm_connector_state(connector_state); 7907 7908 int ret = -EINVAL; 7909 7910 if (property == dev->mode_config.scaling_mode_property) { 7911 enum amdgpu_rmx_type rmx_type; 7912 7913 switch (val) { 7914 case DRM_MODE_SCALE_CENTER: 7915 rmx_type = RMX_CENTER; 7916 break; 7917 case DRM_MODE_SCALE_ASPECT: 7918 rmx_type = RMX_ASPECT; 7919 break; 7920 case DRM_MODE_SCALE_FULLSCREEN: 7921 rmx_type = RMX_FULL; 7922 break; 7923 case DRM_MODE_SCALE_NONE: 7924 default: 7925 rmx_type = RMX_OFF; 7926 break; 7927 } 7928 7929 if (dm_old_state->scaling == rmx_type) 7930 return 0; 7931 7932 dm_new_state->scaling = rmx_type; 7933 ret = 0; 7934 } else if (property == adev->mode_info.underscan_hborder_property) { 7935 dm_new_state->underscan_hborder = val; 7936 ret = 0; 7937 } else if (property == adev->mode_info.underscan_vborder_property) { 7938 dm_new_state->underscan_vborder = val; 7939 ret = 0; 7940 } else if (property == adev->mode_info.underscan_property) { 7941 dm_new_state->underscan_enable = val; 7942 ret = 0; 7943 } else if (property == adev->mode_info.abm_level_property) { 7944 switch (val) { 7945 case ABM_SYSFS_CONTROL: 7946 dm_new_state->abm_sysfs_forbidden = false; 7947 break; 7948 case ABM_LEVEL_OFF: 7949 dm_new_state->abm_sysfs_forbidden = true; 7950 dm_new_state->abm_level = ABM_LEVEL_IMMEDIATE_DISABLE; 7951 break; 7952 default: 7953 dm_new_state->abm_sysfs_forbidden = true; 7954 dm_new_state->abm_level = val; 7955 } 7956 ret = 0; 7957 } 7958 7959 return ret; 7960 } 7961 7962 int amdgpu_dm_connector_atomic_get_property(struct drm_connector *connector, 7963 const struct drm_connector_state *state, 7964 struct drm_property *property, 7965 uint64_t *val) 7966 { 7967 struct drm_device *dev = connector->dev; 7968 struct amdgpu_device *adev = drm_to_adev(dev); 7969 struct dm_connector_state *dm_state = 7970 to_dm_connector_state(state); 7971 int ret = -EINVAL; 7972 7973 if (property == dev->mode_config.scaling_mode_property) { 7974 switch (dm_state->scaling) { 7975 case RMX_CENTER: 7976 *val = DRM_MODE_SCALE_CENTER; 7977 break; 7978 case RMX_ASPECT: 7979 *val = DRM_MODE_SCALE_ASPECT; 7980 break; 7981 case RMX_FULL: 7982 *val = DRM_MODE_SCALE_FULLSCREEN; 7983 break; 7984 case RMX_OFF: 7985 default: 7986 *val = DRM_MODE_SCALE_NONE; 7987 break; 7988 } 7989 ret = 0; 7990 } else if (property == adev->mode_info.underscan_hborder_property) { 7991 *val = dm_state->underscan_hborder; 7992 ret = 0; 7993 } else if (property == adev->mode_info.underscan_vborder_property) { 7994 *val = dm_state->underscan_vborder; 7995 ret = 0; 7996 } else if (property == adev->mode_info.underscan_property) { 7997 *val = dm_state->underscan_enable; 7998 ret = 0; 7999 } else if (property == adev->mode_info.abm_level_property) { 8000 if (!dm_state->abm_sysfs_forbidden) 8001 *val = ABM_SYSFS_CONTROL; 8002 else 8003 *val = (dm_state->abm_level != ABM_LEVEL_IMMEDIATE_DISABLE) ? 8004 dm_state->abm_level : 0; 8005 ret = 0; 8006 } 8007 8008 return ret; 8009 } 8010 8011 /** 8012 * DOC: panel power savings 8013 * 8014 * The display manager allows you to set your desired **panel power savings** 8015 * level (between 0-4, with 0 representing off), e.g. using the following:: 8016 * 8017 * # echo 3 > /sys/class/drm/card0-eDP-1/amdgpu/panel_power_savings 8018 * 8019 * Modifying this value can have implications on color accuracy, so tread 8020 * carefully. 8021 */ 8022 8023 static ssize_t panel_power_savings_show(struct device *device, 8024 struct device_attribute *attr, 8025 char *buf) 8026 { 8027 struct drm_connector *connector = dev_get_drvdata(device); 8028 struct drm_device *dev = connector->dev; 8029 u8 val; 8030 8031 drm_modeset_lock(&dev->mode_config.connection_mutex, NULL); 8032 val = to_dm_connector_state(connector->state)->abm_level == 8033 ABM_LEVEL_IMMEDIATE_DISABLE ? 0 : 8034 to_dm_connector_state(connector->state)->abm_level; 8035 drm_modeset_unlock(&dev->mode_config.connection_mutex); 8036 8037 return sysfs_emit(buf, "%u\n", val); 8038 } 8039 8040 static ssize_t panel_power_savings_store(struct device *device, 8041 struct device_attribute *attr, 8042 const char *buf, size_t count) 8043 { 8044 struct drm_connector *connector = dev_get_drvdata(device); 8045 struct drm_device *dev = connector->dev; 8046 long val; 8047 int ret; 8048 8049 ret = kstrtol(buf, 0, &val); 8050 8051 if (ret) 8052 return ret; 8053 8054 if (val < 0 || val > 4) 8055 return -EINVAL; 8056 8057 drm_modeset_lock(&dev->mode_config.connection_mutex, NULL); 8058 if (to_dm_connector_state(connector->state)->abm_sysfs_forbidden) 8059 ret = -EBUSY; 8060 else 8061 to_dm_connector_state(connector->state)->abm_level = val ?: 8062 ABM_LEVEL_IMMEDIATE_DISABLE; 8063 drm_modeset_unlock(&dev->mode_config.connection_mutex); 8064 8065 if (ret) 8066 return ret; 8067 8068 drm_kms_helper_hotplug_event(dev); 8069 8070 return count; 8071 } 8072 8073 static DEVICE_ATTR_RW(panel_power_savings); 8074 8075 static struct attribute *amdgpu_attrs[] = { 8076 &dev_attr_panel_power_savings.attr, 8077 NULL 8078 }; 8079 8080 static const struct attribute_group amdgpu_group = { 8081 .name = "amdgpu", 8082 .attrs = amdgpu_attrs 8083 }; 8084 8085 static bool 8086 amdgpu_dm_should_create_sysfs(struct amdgpu_dm_connector *amdgpu_dm_connector) 8087 { 8088 if (amdgpu_dm_abm_level >= 0) 8089 return false; 8090 8091 if (amdgpu_dm_connector->base.connector_type != DRM_MODE_CONNECTOR_eDP) 8092 return false; 8093 8094 /* check for OLED panels */ 8095 if (amdgpu_dm_connector->bl_idx >= 0) { 8096 struct drm_device *drm = amdgpu_dm_connector->base.dev; 8097 struct amdgpu_display_manager *dm = &drm_to_adev(drm)->dm; 8098 struct amdgpu_dm_backlight_caps *caps; 8099 8100 caps = &dm->backlight_caps[amdgpu_dm_connector->bl_idx]; 8101 if (caps->aux_support) 8102 return false; 8103 } 8104 8105 return true; 8106 } 8107 8108 static void amdgpu_dm_connector_unregister(struct drm_connector *connector) 8109 { 8110 struct amdgpu_dm_connector *amdgpu_dm_connector = to_amdgpu_dm_connector(connector); 8111 8112 if (amdgpu_dm_should_create_sysfs(amdgpu_dm_connector)) 8113 sysfs_remove_group(&connector->kdev->kobj, &amdgpu_group); 8114 8115 cec_notifier_conn_unregister(amdgpu_dm_connector->notifier); 8116 drm_dp_aux_unregister(&amdgpu_dm_connector->dm_dp_aux.aux); 8117 } 8118 8119 static void amdgpu_dm_connector_destroy(struct drm_connector *connector) 8120 { 8121 struct amdgpu_dm_connector *aconnector = to_amdgpu_dm_connector(connector); 8122 struct amdgpu_device *adev = drm_to_adev(connector->dev); 8123 struct amdgpu_display_manager *dm = &adev->dm; 8124 8125 /* 8126 * Call only if mst_mgr was initialized before since it's not done 8127 * for all connector types. 8128 */ 8129 if (aconnector->mst_mgr.dev) 8130 drm_dp_mst_topology_mgr_destroy(&aconnector->mst_mgr); 8131 8132 /* Cancel and flush any pending HDMI HPD debounce work */ 8133 if (aconnector->hdmi_hpd_debounce_delay_ms) { 8134 cancel_delayed_work_sync(&aconnector->hdmi_hpd_debounce_work); 8135 if (aconnector->hdmi_prev_sink) { 8136 dc_sink_release(aconnector->hdmi_prev_sink); 8137 aconnector->hdmi_prev_sink = NULL; 8138 } 8139 } 8140 8141 if (aconnector->bl_idx != -1) { 8142 backlight_device_unregister(dm->backlight_dev[aconnector->bl_idx]); 8143 dm->backlight_dev[aconnector->bl_idx] = NULL; 8144 } 8145 8146 if (aconnector->dc_em_sink) 8147 dc_sink_release(aconnector->dc_em_sink); 8148 aconnector->dc_em_sink = NULL; 8149 if (aconnector->dc_sink) 8150 dc_sink_release(aconnector->dc_sink); 8151 aconnector->dc_sink = NULL; 8152 8153 drm_dp_cec_unregister_connector(&aconnector->dm_dp_aux.aux); 8154 drm_connector_unregister(connector); 8155 drm_connector_cleanup(connector); 8156 kfree(aconnector->dm_dp_aux.aux.name); 8157 8158 kfree(connector); 8159 } 8160 8161 void amdgpu_dm_connector_funcs_reset(struct drm_connector *connector) 8162 { 8163 struct dm_connector_state *state = 8164 to_dm_connector_state(connector->state); 8165 8166 if (connector->state) 8167 __drm_atomic_helper_connector_destroy_state(connector->state); 8168 8169 kfree(state); 8170 8171 state = kzalloc_obj(*state); 8172 8173 if (state) { 8174 state->scaling = RMX_OFF; 8175 state->underscan_enable = false; 8176 state->underscan_hborder = 0; 8177 state->underscan_vborder = 0; 8178 state->base.max_requested_bpc = 8; 8179 state->vcpi_slots = 0; 8180 state->pbn = 0; 8181 8182 if (connector->connector_type == DRM_MODE_CONNECTOR_eDP) { 8183 if (amdgpu_dm_abm_level <= 0) 8184 state->abm_level = ABM_LEVEL_IMMEDIATE_DISABLE; 8185 else 8186 state->abm_level = amdgpu_dm_abm_level; 8187 } 8188 8189 __drm_atomic_helper_connector_reset(connector, &state->base); 8190 } 8191 } 8192 8193 struct drm_connector_state * 8194 amdgpu_dm_connector_atomic_duplicate_state(struct drm_connector *connector) 8195 { 8196 struct dm_connector_state *state = 8197 to_dm_connector_state(connector->state); 8198 8199 struct dm_connector_state *new_state = 8200 kmemdup(state, sizeof(*state), GFP_KERNEL); 8201 8202 if (!new_state) 8203 return NULL; 8204 8205 __drm_atomic_helper_connector_duplicate_state(connector, &new_state->base); 8206 8207 new_state->freesync_capable = state->freesync_capable; 8208 new_state->abm_level = state->abm_level; 8209 new_state->scaling = state->scaling; 8210 new_state->underscan_enable = state->underscan_enable; 8211 new_state->underscan_hborder = state->underscan_hborder; 8212 new_state->underscan_vborder = state->underscan_vborder; 8213 new_state->vcpi_slots = state->vcpi_slots; 8214 new_state->pbn = state->pbn; 8215 return &new_state->base; 8216 } 8217 8218 static int 8219 amdgpu_dm_connector_late_register(struct drm_connector *connector) 8220 { 8221 struct amdgpu_dm_connector *amdgpu_dm_connector = 8222 to_amdgpu_dm_connector(connector); 8223 int r; 8224 8225 if (amdgpu_dm_should_create_sysfs(amdgpu_dm_connector)) { 8226 r = sysfs_create_group(&connector->kdev->kobj, 8227 &amdgpu_group); 8228 if (r) 8229 return r; 8230 } 8231 8232 amdgpu_dm_register_backlight_device(amdgpu_dm_connector); 8233 8234 if ((connector->connector_type == DRM_MODE_CONNECTOR_DisplayPort) || 8235 (connector->connector_type == DRM_MODE_CONNECTOR_eDP)) { 8236 amdgpu_dm_connector->dm_dp_aux.aux.dev = connector->kdev; 8237 r = drm_dp_aux_register(&amdgpu_dm_connector->dm_dp_aux.aux); 8238 if (r) 8239 return r; 8240 } 8241 8242 #if defined(CONFIG_DEBUG_FS) 8243 connector_debugfs_init(amdgpu_dm_connector); 8244 #endif 8245 8246 return 0; 8247 } 8248 8249 static void amdgpu_dm_connector_funcs_force(struct drm_connector *connector) 8250 { 8251 struct amdgpu_dm_connector *aconnector = to_amdgpu_dm_connector(connector); 8252 struct dc_link *dc_link = aconnector->dc_link; 8253 struct dc_sink *dc_em_sink = aconnector->dc_em_sink; 8254 const struct drm_edid *drm_edid; 8255 struct i2c_adapter *ddc; 8256 struct drm_device *dev = connector->dev; 8257 8258 if (dc_link && dc_link->aux_mode) 8259 ddc = &aconnector->dm_dp_aux.aux.ddc; 8260 else 8261 ddc = &aconnector->i2c->base; 8262 8263 drm_edid = drm_edid_read_ddc(connector, ddc); 8264 drm_edid_connector_update(connector, drm_edid); 8265 if (!drm_edid) { 8266 drm_err(dev, "No EDID found on connector: %s.\n", connector->name); 8267 return; 8268 } 8269 8270 aconnector->drm_edid = drm_edid; 8271 /* Update emulated (virtual) sink's EDID */ 8272 if (dc_em_sink && dc_link) { 8273 // FIXME: Get rid of drm_edid_raw() 8274 const struct edid *edid = drm_edid_raw(drm_edid); 8275 8276 memset(&dc_em_sink->edid_caps, 0, sizeof(struct dc_edid_caps)); 8277 memmove(dc_em_sink->dc_edid.raw_edid, edid, 8278 (edid->extensions + 1) * EDID_LENGTH); 8279 dm_helpers_parse_edid_caps( 8280 dc_link, 8281 &dc_em_sink->dc_edid, 8282 &dc_em_sink->edid_caps); 8283 } 8284 } 8285 8286 static const struct drm_connector_funcs amdgpu_dm_connector_funcs = { 8287 .reset = amdgpu_dm_connector_funcs_reset, 8288 .detect = amdgpu_dm_connector_detect, 8289 .fill_modes = drm_helper_probe_single_connector_modes, 8290 .destroy = amdgpu_dm_connector_destroy, 8291 .atomic_duplicate_state = amdgpu_dm_connector_atomic_duplicate_state, 8292 .atomic_destroy_state = drm_atomic_helper_connector_destroy_state, 8293 .atomic_set_property = amdgpu_dm_connector_atomic_set_property, 8294 .atomic_get_property = amdgpu_dm_connector_atomic_get_property, 8295 .late_register = amdgpu_dm_connector_late_register, 8296 .early_unregister = amdgpu_dm_connector_unregister, 8297 .force = amdgpu_dm_connector_funcs_force 8298 }; 8299 8300 static int get_modes(struct drm_connector *connector) 8301 { 8302 return amdgpu_dm_connector_get_modes(connector); 8303 } 8304 8305 static void create_eml_sink(struct amdgpu_dm_connector *aconnector) 8306 { 8307 struct drm_connector *connector = &aconnector->base; 8308 struct dc_link *dc_link = aconnector->dc_link; 8309 struct dc_sink_init_data init_params = { 8310 .link = aconnector->dc_link, 8311 .sink_signal = SIGNAL_TYPE_VIRTUAL 8312 }; 8313 const struct drm_edid *drm_edid; 8314 const struct edid *edid; 8315 struct i2c_adapter *ddc; 8316 8317 if (dc_link && dc_link->aux_mode) 8318 ddc = &aconnector->dm_dp_aux.aux.ddc; 8319 else 8320 ddc = &aconnector->i2c->base; 8321 8322 drm_edid = drm_edid_read_ddc(connector, ddc); 8323 drm_edid_connector_update(connector, drm_edid); 8324 if (!drm_edid) { 8325 drm_err(connector->dev, "No EDID found on connector: %s.\n", connector->name); 8326 return; 8327 } 8328 8329 if (connector->display_info.is_hdmi) 8330 init_params.sink_signal = SIGNAL_TYPE_HDMI_TYPE_A; 8331 8332 aconnector->drm_edid = drm_edid; 8333 8334 edid = drm_edid_raw(drm_edid); // FIXME: Get rid of drm_edid_raw() 8335 aconnector->dc_em_sink = dc_link_add_remote_sink( 8336 aconnector->dc_link, 8337 (uint8_t *)edid, 8338 (edid->extensions + 1) * EDID_LENGTH, 8339 &init_params); 8340 8341 if (aconnector->base.force == DRM_FORCE_ON) { 8342 aconnector->dc_sink = aconnector->dc_link->local_sink ? 8343 aconnector->dc_link->local_sink : 8344 aconnector->dc_em_sink; 8345 if (aconnector->dc_sink) 8346 dc_sink_retain(aconnector->dc_sink); 8347 } 8348 } 8349 8350 static void handle_edid_mgmt(struct amdgpu_dm_connector *aconnector) 8351 { 8352 struct dc_link *link = (struct dc_link *)aconnector->dc_link; 8353 8354 /* 8355 * In case of headless boot with force on for DP managed connector 8356 * Those settings have to be != 0 to get initial modeset 8357 */ 8358 if (link->connector_signal == SIGNAL_TYPE_DISPLAY_PORT) { 8359 link->verified_link_cap.lane_count = LANE_COUNT_FOUR; 8360 link->verified_link_cap.link_rate = LINK_RATE_HIGH2; 8361 } 8362 8363 create_eml_sink(aconnector); 8364 } 8365 8366 static enum dc_status dm_validate_stream_and_context(struct dc *dc, 8367 struct dc_stream_state *stream) 8368 { 8369 enum dc_status dc_result = DC_ERROR_UNEXPECTED; 8370 struct dc_plane_state *dc_plane_state = NULL; 8371 struct dc_state *dc_state = NULL; 8372 8373 if (!stream) 8374 goto cleanup; 8375 8376 dc_plane_state = dc_create_plane_state(dc); 8377 if (!dc_plane_state) 8378 goto cleanup; 8379 8380 dc_state = dc_state_create(dc, NULL); 8381 if (!dc_state) 8382 goto cleanup; 8383 8384 /* populate stream to plane */ 8385 dc_plane_state->src_rect.height = stream->src.height; 8386 dc_plane_state->src_rect.width = stream->src.width; 8387 dc_plane_state->dst_rect.height = stream->src.height; 8388 dc_plane_state->dst_rect.width = stream->src.width; 8389 dc_plane_state->clip_rect.height = stream->src.height; 8390 dc_plane_state->clip_rect.width = stream->src.width; 8391 dc_plane_state->plane_size.surface_pitch = ((stream->src.width + 255) / 256) * 256; 8392 dc_plane_state->plane_size.surface_size.height = stream->src.height; 8393 dc_plane_state->plane_size.surface_size.width = stream->src.width; 8394 dc_plane_state->plane_size.chroma_size.height = stream->src.height; 8395 dc_plane_state->plane_size.chroma_size.width = stream->src.width; 8396 dc_plane_state->format = SURFACE_PIXEL_FORMAT_GRPH_ARGB8888; 8397 dc_plane_state->tiling_info.gfx9.swizzle = DC_SW_UNKNOWN; 8398 dc_plane_state->rotation = ROTATION_ANGLE_0; 8399 dc_plane_state->is_tiling_rotated = false; 8400 dc_plane_state->tiling_info.gfx8.array_mode = DC_ARRAY_LINEAR_GENERAL; 8401 8402 dc_result = dc_validate_stream(dc, stream); 8403 if (dc_result == DC_OK) 8404 dc_result = dc_validate_plane(dc, dc_plane_state); 8405 8406 if (dc_result == DC_OK) 8407 dc_result = dc_state_add_stream(dc, dc_state, stream); 8408 8409 if (dc_result == DC_OK && !dc_state_add_plane( 8410 dc, 8411 stream, 8412 dc_plane_state, 8413 dc_state)) 8414 dc_result = DC_FAIL_ATTACH_SURFACES; 8415 8416 if (dc_result == DC_OK) 8417 dc_result = dc_validate_global_state(dc, dc_state, DC_VALIDATE_MODE_ONLY); 8418 8419 cleanup: 8420 if (dc_state) 8421 dc_state_release(dc_state); 8422 8423 if (dc_plane_state) 8424 dc_plane_state_release(dc_plane_state); 8425 8426 return dc_result; 8427 } 8428 8429 struct dc_stream_state * 8430 create_validate_stream_for_sink(struct drm_connector *connector, 8431 const struct drm_display_mode *drm_mode, 8432 const struct dm_connector_state *dm_state, 8433 const struct dc_stream_state *old_stream) 8434 { 8435 struct amdgpu_dm_connector *aconnector = NULL; 8436 struct amdgpu_device *adev = drm_to_adev(connector->dev); 8437 struct dc_stream_state *stream; 8438 const struct drm_connector_state *drm_state = dm_state ? &dm_state->base : NULL; 8439 int requested_bpc = drm_state ? drm_state->max_requested_bpc : 8; 8440 enum dc_status dc_result = DC_OK; 8441 uint8_t bpc_limit = 6; 8442 8443 if (!dm_state) 8444 return NULL; 8445 8446 if (connector->connector_type != DRM_MODE_CONNECTOR_WRITEBACK) 8447 aconnector = to_amdgpu_dm_connector(connector); 8448 8449 if (aconnector && 8450 (aconnector->dc_link->connector_signal == SIGNAL_TYPE_HDMI_TYPE_A || 8451 aconnector->dc_link->connector_signal == SIGNAL_TYPE_HDMI_FRL || 8452 aconnector->dc_link->dpcd_caps.dongle_type == DISPLAY_DONGLE_DP_HDMI_CONVERTER)) 8453 bpc_limit = 8; 8454 8455 do { 8456 drm_dbg_kms(connector->dev, "Trying with %d bpc\n", requested_bpc); 8457 stream = create_stream_for_sink(connector, drm_mode, 8458 dm_state, old_stream, 8459 requested_bpc); 8460 if (stream == NULL) { 8461 drm_err(adev_to_drm(adev), "Failed to create stream for sink!\n"); 8462 break; 8463 } 8464 8465 dc_result = dc_validate_stream(adev->dm.dc, stream); 8466 8467 if (!aconnector) /* writeback connector */ 8468 return stream; 8469 8470 if (dc_result == DC_OK && stream->signal == SIGNAL_TYPE_DISPLAY_PORT_MST) 8471 dc_result = dm_dp_mst_is_port_support_mode(aconnector, stream); 8472 8473 if (dc_result == DC_OK) 8474 dc_result = dm_validate_stream_and_context(adev->dm.dc, stream); 8475 8476 if (dc_result != DC_OK) { 8477 drm_dbg_kms(connector->dev, "Pruned mode %d x %d (clk %d) %s %s -- %s\n", 8478 drm_mode->hdisplay, 8479 drm_mode->vdisplay, 8480 drm_mode->clock, 8481 dc_pixel_encoding_to_str(stream->timing.pixel_encoding), 8482 dc_color_depth_to_str(stream->timing.display_color_depth), 8483 dc_status_to_str(dc_result)); 8484 8485 dc_stream_release(stream); 8486 stream = NULL; 8487 requested_bpc -= 2; /* lower bpc to retry validation */ 8488 } 8489 8490 } while (stream == NULL && requested_bpc >= bpc_limit); 8491 8492 switch (dc_result) { 8493 /* 8494 * If we failed to validate DP bandwidth stream with the requested RGB color depth, 8495 * we try to fallback and configure in order: 8496 * YUV422 (8bpc, 6bpc) 8497 * YUV420 (8bpc, 6bpc) 8498 */ 8499 case DC_FAIL_ENC_VALIDATE: 8500 case DC_EXCEED_DONGLE_CAP: 8501 case DC_NO_DP_LINK_BANDWIDTH: 8502 /* recursively entered twice and already tried both YUV422 and YUV420 */ 8503 if (aconnector->force_yuv422_output && aconnector->force_yuv420_output) 8504 break; 8505 /* first failure; try YUV422 */ 8506 if (!aconnector->force_yuv422_output) { 8507 drm_dbg_kms(connector->dev, "%s:%d Validation failed with %d, retrying w/ YUV422\n", 8508 __func__, __LINE__, dc_result); 8509 aconnector->force_yuv422_output = true; 8510 /* recursively entered and YUV422 failed, try YUV420 */ 8511 } else if (!aconnector->force_yuv420_output) { 8512 drm_dbg_kms(connector->dev, "%s:%d Validation failed with %d, retrying w/ YUV420\n", 8513 __func__, __LINE__, dc_result); 8514 aconnector->force_yuv420_output = true; 8515 } 8516 stream = create_validate_stream_for_sink(connector, drm_mode, 8517 dm_state, old_stream); 8518 aconnector->force_yuv422_output = false; 8519 aconnector->force_yuv420_output = false; 8520 break; 8521 case DC_OK: 8522 break; 8523 default: 8524 drm_dbg_kms(connector->dev, "%s:%d Unhandled validation failure %d\n", 8525 __func__, __LINE__, dc_result); 8526 break; 8527 } 8528 8529 return stream; 8530 } 8531 8532 enum drm_mode_status amdgpu_dm_connector_mode_valid(struct drm_connector *connector, 8533 const struct drm_display_mode *mode) 8534 { 8535 int result = MODE_ERROR; 8536 struct dc_sink *dc_sink; 8537 struct drm_display_mode *test_mode; 8538 /* TODO: Unhardcode stream count */ 8539 struct dc_stream_state *stream; 8540 /* we always have an amdgpu_dm_connector here since we got 8541 * here via the amdgpu_dm_connector_helper_funcs 8542 */ 8543 struct amdgpu_dm_connector *aconnector = to_amdgpu_dm_connector(connector); 8544 8545 if ((mode->flags & DRM_MODE_FLAG_INTERLACE) || 8546 (mode->flags & DRM_MODE_FLAG_DBLSCAN)) 8547 return result; 8548 8549 /* 8550 * Only run this the first time mode_valid is called to initilialize 8551 * EDID mgmt 8552 */ 8553 if (aconnector->base.force != DRM_FORCE_UNSPECIFIED && 8554 !aconnector->dc_em_sink) 8555 handle_edid_mgmt(aconnector); 8556 8557 dc_sink = to_amdgpu_dm_connector(connector)->dc_sink; 8558 8559 if (dc_sink == NULL && aconnector->base.force != DRM_FORCE_ON_DIGITAL && 8560 aconnector->base.force != DRM_FORCE_ON) { 8561 drm_err(connector->dev, "dc_sink is NULL!\n"); 8562 goto fail; 8563 } 8564 8565 test_mode = drm_mode_duplicate(connector->dev, mode); 8566 if (!test_mode) 8567 goto fail; 8568 8569 drm_mode_set_crtcinfo(test_mode, 0); 8570 8571 stream = create_validate_stream_for_sink(connector, test_mode, 8572 to_dm_connector_state(connector->state), 8573 NULL); 8574 drm_mode_destroy(connector->dev, test_mode); 8575 if (stream) { 8576 dc_stream_release(stream); 8577 result = MODE_OK; 8578 } 8579 8580 fail: 8581 /* TODO: error handling*/ 8582 return result; 8583 } 8584 8585 static int fill_hdr_info_packet(const struct drm_connector_state *state, 8586 struct dc_info_packet *out) 8587 { 8588 struct hdmi_drm_infoframe frame; 8589 unsigned char buf[30]; /* 26 + 4 */ 8590 ssize_t len; 8591 int ret, i; 8592 8593 memset(out, 0, sizeof(*out)); 8594 8595 if (!state->hdr_output_metadata) 8596 return 0; 8597 8598 ret = drm_hdmi_infoframe_set_hdr_metadata(&frame, state); 8599 if (ret) 8600 return ret; 8601 8602 len = hdmi_drm_infoframe_pack_only(&frame, buf, sizeof(buf)); 8603 if (len < 0) 8604 return (int)len; 8605 8606 /* Static metadata is a fixed 26 bytes + 4 byte header. */ 8607 if (len != 30) 8608 return -EINVAL; 8609 8610 /* Prepare the infopacket for DC. */ 8611 switch (state->connector->connector_type) { 8612 case DRM_MODE_CONNECTOR_HDMIA: 8613 out->hb0 = 0x87; /* type */ 8614 out->hb1 = 0x01; /* version */ 8615 out->hb2 = 0x1A; /* length */ 8616 out->sb[0] = buf[3]; /* checksum */ 8617 i = 1; 8618 break; 8619 8620 case DRM_MODE_CONNECTOR_DisplayPort: 8621 case DRM_MODE_CONNECTOR_eDP: 8622 out->hb0 = 0x00; /* sdp id, zero */ 8623 out->hb1 = 0x87; /* type */ 8624 out->hb2 = 0x1D; /* payload len - 1 */ 8625 out->hb3 = (0x13 << 2); /* sdp version */ 8626 out->sb[0] = 0x01; /* version */ 8627 out->sb[1] = 0x1A; /* length */ 8628 i = 2; 8629 break; 8630 8631 default: 8632 return -EINVAL; 8633 } 8634 8635 memcpy(&out->sb[i], &buf[4], 26); 8636 out->valid = true; 8637 8638 print_hex_dump(KERN_DEBUG, "HDR SB:", DUMP_PREFIX_NONE, 16, 1, out->sb, 8639 sizeof(out->sb), false); 8640 8641 return 0; 8642 } 8643 8644 static int 8645 amdgpu_dm_connector_atomic_check(struct drm_connector *conn, 8646 struct drm_atomic_commit *state) 8647 { 8648 struct drm_connector_state *new_con_state = 8649 drm_atomic_get_new_connector_state(state, conn); 8650 struct drm_connector_state *old_con_state = 8651 drm_atomic_get_old_connector_state(state, conn); 8652 struct drm_crtc *crtc = new_con_state->crtc; 8653 struct drm_crtc_state *new_crtc_state; 8654 struct amdgpu_dm_connector *aconn = to_amdgpu_dm_connector(conn); 8655 int ret; 8656 8657 if (WARN_ON(unlikely(!old_con_state || !new_con_state))) 8658 return -EINVAL; 8659 8660 trace_amdgpu_dm_connector_atomic_check(new_con_state); 8661 8662 if (conn->connector_type == DRM_MODE_CONNECTOR_DisplayPort) { 8663 ret = drm_dp_mst_root_conn_atomic_check(new_con_state, &aconn->mst_mgr); 8664 if (ret < 0) 8665 return ret; 8666 } 8667 8668 if (!crtc) 8669 return 0; 8670 8671 if (new_con_state->privacy_screen_sw_state != old_con_state->privacy_screen_sw_state) { 8672 new_crtc_state = drm_atomic_get_crtc_state(state, crtc); 8673 if (IS_ERR(new_crtc_state)) 8674 return PTR_ERR(new_crtc_state); 8675 8676 new_crtc_state->mode_changed = true; 8677 } 8678 8679 if (new_con_state->colorspace != old_con_state->colorspace) { 8680 new_crtc_state = drm_atomic_get_crtc_state(state, crtc); 8681 if (IS_ERR(new_crtc_state)) 8682 return PTR_ERR(new_crtc_state); 8683 8684 new_crtc_state->mode_changed = true; 8685 } 8686 8687 if (new_con_state->content_type != old_con_state->content_type) { 8688 new_crtc_state = drm_atomic_get_crtc_state(state, crtc); 8689 if (IS_ERR(new_crtc_state)) 8690 return PTR_ERR(new_crtc_state); 8691 8692 new_crtc_state->mode_changed = true; 8693 } 8694 8695 if (!drm_connector_atomic_hdr_metadata_equal(old_con_state, new_con_state)) { 8696 struct dc_info_packet hdr_infopacket; 8697 8698 ret = fill_hdr_info_packet(new_con_state, &hdr_infopacket); 8699 if (ret) 8700 return ret; 8701 8702 new_crtc_state = drm_atomic_get_crtc_state(state, crtc); 8703 if (IS_ERR(new_crtc_state)) 8704 return PTR_ERR(new_crtc_state); 8705 8706 /* 8707 * DC considers the stream backends changed if the 8708 * static metadata changes. Forcing the modeset also 8709 * gives a simple way for userspace to switch from 8710 * 8bpc to 10bpc when setting the metadata to enter 8711 * or exit HDR. 8712 * 8713 * Changing the static metadata after it's been 8714 * set is permissible, however. So only force a 8715 * modeset if we're entering or exiting HDR. 8716 */ 8717 new_crtc_state->mode_changed = new_crtc_state->mode_changed || 8718 !old_con_state->hdr_output_metadata || 8719 !new_con_state->hdr_output_metadata; 8720 } 8721 8722 return 0; 8723 } 8724 8725 static const struct drm_connector_helper_funcs 8726 amdgpu_dm_connector_helper_funcs = { 8727 /* 8728 * If hotplugging a second bigger display in FB Con mode, bigger resolution 8729 * modes will be filtered by drm_mode_validate_size(), and those modes 8730 * are missing after user start lightdm. So we need to renew modes list. 8731 * in get_modes call back, not just return the modes count 8732 */ 8733 .get_modes = get_modes, 8734 .mode_valid = amdgpu_dm_connector_mode_valid, 8735 .atomic_check = amdgpu_dm_connector_atomic_check, 8736 }; 8737 8738 static void dm_encoder_helper_disable(struct drm_encoder *encoder) 8739 { 8740 8741 } 8742 8743 int convert_dc_color_depth_into_bpc(enum dc_color_depth display_color_depth) 8744 { 8745 switch (display_color_depth) { 8746 case COLOR_DEPTH_666: 8747 return 6; 8748 case COLOR_DEPTH_888: 8749 return 8; 8750 case COLOR_DEPTH_101010: 8751 return 10; 8752 case COLOR_DEPTH_121212: 8753 return 12; 8754 case COLOR_DEPTH_141414: 8755 return 14; 8756 case COLOR_DEPTH_161616: 8757 return 16; 8758 default: 8759 break; 8760 } 8761 return 0; 8762 } 8763 8764 static int dm_encoder_helper_atomic_check(struct drm_encoder *encoder, 8765 struct drm_crtc_state *crtc_state, 8766 struct drm_connector_state *conn_state) 8767 { 8768 struct drm_atomic_commit *state = crtc_state->state; 8769 struct drm_connector *connector = conn_state->connector; 8770 struct amdgpu_dm_connector *aconnector = to_amdgpu_dm_connector(connector); 8771 struct dm_connector_state *dm_new_connector_state = to_dm_connector_state(conn_state); 8772 const struct drm_display_mode *adjusted_mode = &crtc_state->adjusted_mode; 8773 struct drm_dp_mst_topology_mgr *mst_mgr; 8774 struct drm_dp_mst_port *mst_port; 8775 struct drm_dp_mst_topology_state *mst_state; 8776 enum dc_color_depth color_depth; 8777 int clock, bpp = 0; 8778 bool is_y420 = false; 8779 8780 if ((connector->connector_type == DRM_MODE_CONNECTOR_eDP) || 8781 (connector->connector_type == DRM_MODE_CONNECTOR_LVDS)) { 8782 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 8783 struct drm_display_mode *native_mode = &amdgpu_encoder->native_mode; 8784 enum drm_mode_status result; 8785 8786 result = drm_crtc_helper_mode_valid_fixed(encoder->crtc, adjusted_mode, native_mode); 8787 if (result != MODE_OK && dm_new_connector_state->scaling == RMX_OFF) { 8788 drm_dbg_driver(encoder->dev, 8789 "mode %dx%d@%dHz is not native, enabling scaling\n", 8790 adjusted_mode->hdisplay, adjusted_mode->vdisplay, 8791 drm_mode_vrefresh(adjusted_mode)); 8792 dm_new_connector_state->scaling = RMX_ASPECT; 8793 } 8794 return 0; 8795 } 8796 8797 if (!aconnector->mst_output_port) 8798 return 0; 8799 8800 mst_port = aconnector->mst_output_port; 8801 mst_mgr = &aconnector->mst_root->mst_mgr; 8802 8803 if (!crtc_state->connectors_changed && !crtc_state->mode_changed) 8804 return 0; 8805 8806 mst_state = drm_atomic_get_mst_topology_state(state, mst_mgr); 8807 if (IS_ERR(mst_state)) 8808 return PTR_ERR(mst_state); 8809 8810 mst_state->pbn_div.full = dm_mst_get_pbn_divider(aconnector->mst_root->dc_link); 8811 8812 if (!state->duplicated) { 8813 int max_bpc = conn_state->max_requested_bpc; 8814 8815 is_y420 = drm_mode_is_420_also(&connector->display_info, adjusted_mode) && 8816 aconnector->force_yuv420_output; 8817 color_depth = convert_color_depth_from_display_info(connector, 8818 is_y420, 8819 max_bpc); 8820 bpp = convert_dc_color_depth_into_bpc(color_depth) * 3; 8821 clock = adjusted_mode->clock; 8822 dm_new_connector_state->pbn = drm_dp_calc_pbn_mode(clock, bpp << 4); 8823 } 8824 8825 dm_new_connector_state->vcpi_slots = 8826 drm_dp_atomic_find_time_slots(state, mst_mgr, mst_port, 8827 dm_new_connector_state->pbn); 8828 if (dm_new_connector_state->vcpi_slots < 0) { 8829 drm_dbg_atomic(connector->dev, "failed finding vcpi slots: %d\n", (int)dm_new_connector_state->vcpi_slots); 8830 return dm_new_connector_state->vcpi_slots; 8831 } 8832 return 0; 8833 } 8834 8835 const struct drm_encoder_helper_funcs amdgpu_dm_encoder_helper_funcs = { 8836 .disable = dm_encoder_helper_disable, 8837 .atomic_check = dm_encoder_helper_atomic_check 8838 }; 8839 8840 static int dm_update_mst_vcpi_slots_for_dsc(struct drm_atomic_commit *state, 8841 struct dc_state *dc_state, 8842 struct dsc_mst_fairness_vars *vars) 8843 { 8844 struct dc_stream_state *stream = NULL; 8845 struct drm_connector *connector; 8846 struct drm_connector_state *new_con_state; 8847 struct amdgpu_dm_connector *aconnector; 8848 struct dm_connector_state *dm_conn_state; 8849 int i, j, ret; 8850 int vcpi, pbn_div, pbn = 0, slot_num = 0; 8851 8852 for_each_new_connector_in_state(state, connector, new_con_state, i) { 8853 8854 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 8855 continue; 8856 8857 aconnector = to_amdgpu_dm_connector(connector); 8858 8859 if (!aconnector->mst_output_port) 8860 continue; 8861 8862 if (!new_con_state || !new_con_state->crtc) 8863 continue; 8864 8865 dm_conn_state = to_dm_connector_state(new_con_state); 8866 8867 for (j = 0; j < dc_state->stream_count; j++) { 8868 stream = dc_state->streams[j]; 8869 if (!stream) 8870 continue; 8871 8872 if ((struct amdgpu_dm_connector *)stream->dm_stream_context == aconnector) 8873 break; 8874 8875 stream = NULL; 8876 } 8877 8878 if (!stream) 8879 continue; 8880 8881 pbn_div = dm_mst_get_pbn_divider(stream->link); 8882 /* pbn is calculated by compute_mst_dsc_configs_for_state*/ 8883 for (j = 0; j < dc_state->stream_count; j++) { 8884 if (vars[j].aconnector == aconnector) { 8885 pbn = vars[j].pbn; 8886 break; 8887 } 8888 } 8889 8890 if (j == dc_state->stream_count || pbn_div == 0) 8891 continue; 8892 8893 slot_num = DIV_ROUND_UP(pbn, pbn_div); 8894 8895 if (stream->timing.flags.DSC != 1) { 8896 dm_conn_state->pbn = pbn; 8897 dm_conn_state->vcpi_slots = slot_num; 8898 8899 ret = drm_dp_mst_atomic_enable_dsc(state, aconnector->mst_output_port, 8900 dm_conn_state->pbn, false); 8901 if (ret < 0) 8902 return ret; 8903 8904 continue; 8905 } 8906 8907 vcpi = drm_dp_mst_atomic_enable_dsc(state, aconnector->mst_output_port, pbn, true); 8908 if (vcpi < 0) 8909 return vcpi; 8910 8911 dm_conn_state->pbn = pbn; 8912 dm_conn_state->vcpi_slots = vcpi; 8913 } 8914 return 0; 8915 } 8916 8917 static int to_drm_connector_type(enum signal_type st, uint32_t connector_id) 8918 { 8919 switch (st) { 8920 case SIGNAL_TYPE_HDMI_TYPE_A: 8921 return DRM_MODE_CONNECTOR_HDMIA; 8922 case SIGNAL_TYPE_EDP: 8923 return DRM_MODE_CONNECTOR_eDP; 8924 case SIGNAL_TYPE_LVDS: 8925 return DRM_MODE_CONNECTOR_LVDS; 8926 case SIGNAL_TYPE_RGB: 8927 return DRM_MODE_CONNECTOR_VGA; 8928 case SIGNAL_TYPE_DISPLAY_PORT: 8929 case SIGNAL_TYPE_DISPLAY_PORT_MST: 8930 /* External DP bridges have a different connector type. */ 8931 if (connector_id == CONNECTOR_ID_VGA) 8932 return DRM_MODE_CONNECTOR_VGA; 8933 else if (connector_id == CONNECTOR_ID_LVDS) 8934 return DRM_MODE_CONNECTOR_LVDS; 8935 8936 return DRM_MODE_CONNECTOR_DisplayPort; 8937 case SIGNAL_TYPE_DVI_DUAL_LINK: 8938 case SIGNAL_TYPE_DVI_SINGLE_LINK: 8939 if (connector_id == CONNECTOR_ID_SINGLE_LINK_DVII || 8940 connector_id == CONNECTOR_ID_DUAL_LINK_DVII) 8941 return DRM_MODE_CONNECTOR_DVII; 8942 8943 return DRM_MODE_CONNECTOR_DVID; 8944 case SIGNAL_TYPE_VIRTUAL: 8945 return DRM_MODE_CONNECTOR_VIRTUAL; 8946 8947 default: 8948 return DRM_MODE_CONNECTOR_Unknown; 8949 } 8950 } 8951 8952 static struct drm_encoder *amdgpu_dm_connector_to_encoder(struct drm_connector *connector) 8953 { 8954 struct drm_encoder *encoder; 8955 8956 /* There is only one encoder per connector */ 8957 drm_connector_for_each_possible_encoder(connector, encoder) 8958 return encoder; 8959 8960 return NULL; 8961 } 8962 8963 static void amdgpu_dm_get_native_mode(struct drm_connector *connector) 8964 { 8965 struct drm_encoder *encoder; 8966 struct amdgpu_encoder *amdgpu_encoder; 8967 8968 encoder = amdgpu_dm_connector_to_encoder(connector); 8969 8970 if (encoder == NULL) 8971 return; 8972 8973 amdgpu_encoder = to_amdgpu_encoder(encoder); 8974 8975 amdgpu_encoder->native_mode.clock = 0; 8976 8977 if (!list_empty(&connector->probed_modes)) { 8978 struct drm_display_mode *preferred_mode = NULL; 8979 8980 list_for_each_entry(preferred_mode, 8981 &connector->probed_modes, 8982 head) { 8983 if (preferred_mode->type & DRM_MODE_TYPE_PREFERRED) 8984 amdgpu_encoder->native_mode = *preferred_mode; 8985 8986 break; 8987 } 8988 8989 } 8990 } 8991 8992 static struct drm_display_mode * 8993 amdgpu_dm_create_common_mode(struct drm_encoder *encoder, 8994 const char *name, 8995 int hdisplay, int vdisplay) 8996 { 8997 struct drm_device *dev = encoder->dev; 8998 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 8999 struct drm_display_mode *mode = NULL; 9000 struct drm_display_mode *native_mode = &amdgpu_encoder->native_mode; 9001 9002 mode = drm_mode_duplicate(dev, native_mode); 9003 9004 if (mode == NULL) 9005 return NULL; 9006 9007 mode->hdisplay = hdisplay; 9008 mode->vdisplay = vdisplay; 9009 mode->type &= ~DRM_MODE_TYPE_PREFERRED; 9010 strscpy(mode->name, name, DRM_DISPLAY_MODE_LEN); 9011 9012 return mode; 9013 9014 } 9015 9016 static const struct amdgpu_dm_mode_size { 9017 char name[DRM_DISPLAY_MODE_LEN]; 9018 int w; 9019 int h; 9020 } common_modes[] = { 9021 { "640x480", 640, 480}, 9022 { "800x600", 800, 600}, 9023 { "1024x768", 1024, 768}, 9024 { "1280x720", 1280, 720}, 9025 { "1280x800", 1280, 800}, 9026 {"1280x1024", 1280, 1024}, 9027 { "1440x900", 1440, 900}, 9028 {"1680x1050", 1680, 1050}, 9029 {"1600x1200", 1600, 1200}, 9030 {"1920x1080", 1920, 1080}, 9031 {"1920x1200", 1920, 1200} 9032 }; 9033 9034 static void amdgpu_dm_connector_add_common_modes(struct drm_encoder *encoder, 9035 struct drm_connector *connector) 9036 { 9037 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 9038 struct drm_display_mode *mode = NULL; 9039 struct drm_display_mode *native_mode = &amdgpu_encoder->native_mode; 9040 struct amdgpu_dm_connector *amdgpu_dm_connector = 9041 to_amdgpu_dm_connector(connector); 9042 int i; 9043 int n; 9044 9045 if ((connector->connector_type != DRM_MODE_CONNECTOR_eDP) && 9046 (connector->connector_type != DRM_MODE_CONNECTOR_LVDS)) 9047 return; 9048 9049 n = ARRAY_SIZE(common_modes); 9050 9051 for (i = 0; i < n; i++) { 9052 struct drm_display_mode *curmode = NULL; 9053 bool mode_existed = false; 9054 9055 if (common_modes[i].w > native_mode->hdisplay || 9056 common_modes[i].h > native_mode->vdisplay || 9057 (common_modes[i].w == native_mode->hdisplay && 9058 common_modes[i].h == native_mode->vdisplay)) 9059 continue; 9060 9061 list_for_each_entry(curmode, &connector->probed_modes, head) { 9062 if (common_modes[i].w == curmode->hdisplay && 9063 common_modes[i].h == curmode->vdisplay) { 9064 mode_existed = true; 9065 break; 9066 } 9067 } 9068 9069 if (mode_existed) 9070 continue; 9071 9072 mode = amdgpu_dm_create_common_mode(encoder, 9073 common_modes[i].name, common_modes[i].w, 9074 common_modes[i].h); 9075 if (!mode) 9076 continue; 9077 9078 drm_mode_probed_add(connector, mode); 9079 amdgpu_dm_connector->num_modes++; 9080 } 9081 } 9082 9083 static void amdgpu_set_panel_orientation(struct drm_connector *connector) 9084 { 9085 struct drm_encoder *encoder; 9086 struct amdgpu_encoder *amdgpu_encoder; 9087 const struct drm_display_mode *native_mode; 9088 9089 if (connector->connector_type != DRM_MODE_CONNECTOR_eDP && 9090 connector->connector_type != DRM_MODE_CONNECTOR_LVDS) 9091 return; 9092 9093 mutex_lock(&connector->dev->mode_config.mutex); 9094 amdgpu_dm_connector_get_modes(connector); 9095 mutex_unlock(&connector->dev->mode_config.mutex); 9096 9097 encoder = amdgpu_dm_connector_to_encoder(connector); 9098 if (!encoder) 9099 return; 9100 9101 amdgpu_encoder = to_amdgpu_encoder(encoder); 9102 9103 native_mode = &amdgpu_encoder->native_mode; 9104 if (native_mode->hdisplay == 0 || native_mode->vdisplay == 0) 9105 return; 9106 9107 drm_connector_set_panel_orientation_with_quirk(connector, 9108 DRM_MODE_PANEL_ORIENTATION_UNKNOWN, 9109 native_mode->hdisplay, 9110 native_mode->vdisplay); 9111 } 9112 9113 static void amdgpu_dm_connector_ddc_get_modes(struct drm_connector *connector, 9114 const struct drm_edid *drm_edid) 9115 { 9116 struct amdgpu_dm_connector *amdgpu_dm_connector = 9117 to_amdgpu_dm_connector(connector); 9118 9119 if (drm_edid) { 9120 /* empty probed_modes */ 9121 INIT_LIST_HEAD(&connector->probed_modes); 9122 amdgpu_dm_connector->num_modes = 9123 drm_edid_connector_add_modes(connector); 9124 9125 /* sorting the probed modes before calling function 9126 * amdgpu_dm_get_native_mode() since EDID can have 9127 * more than one preferred mode. The modes that are 9128 * later in the probed mode list could be of higher 9129 * and preferred resolution. For example, 3840x2160 9130 * resolution in base EDID preferred timing and 4096x2160 9131 * preferred resolution in DID extension block later. 9132 */ 9133 drm_mode_sort(&connector->probed_modes); 9134 amdgpu_dm_get_native_mode(connector); 9135 9136 /* Freesync capabilities are reset by calling 9137 * drm_edid_connector_add_modes() and need to be 9138 * restored here. 9139 */ 9140 amdgpu_dm_update_freesync_caps(connector, drm_edid, false); 9141 } else { 9142 amdgpu_dm_connector->num_modes = 0; 9143 } 9144 } 9145 9146 static bool is_duplicate_mode(struct amdgpu_dm_connector *aconnector, 9147 struct drm_display_mode *mode) 9148 { 9149 struct drm_display_mode *m; 9150 9151 list_for_each_entry(m, &aconnector->base.probed_modes, head) { 9152 if (drm_mode_equal(m, mode)) 9153 return true; 9154 } 9155 9156 return false; 9157 } 9158 9159 static uint add_fs_modes(struct amdgpu_dm_connector *aconnector) 9160 { 9161 const struct drm_display_mode *m; 9162 struct drm_display_mode *new_mode; 9163 uint i; 9164 u32 new_modes_count = 0; 9165 9166 /* Standard FPS values 9167 * 9168 * 23.976 - TV/NTSC 9169 * 24 - Cinema 9170 * 25 - TV/PAL 9171 * 29.97 - TV/NTSC 9172 * 30 - TV/NTSC 9173 * 48 - Cinema HFR 9174 * 50 - TV/PAL 9175 * 60 - Commonly used 9176 * 48,72,96,120 - Multiples of 24 9177 */ 9178 static const u32 common_rates[] = { 9179 23976, 24000, 25000, 29970, 30000, 9180 48000, 50000, 60000, 72000, 96000, 120000 9181 }; 9182 9183 /* 9184 * Find mode with highest refresh rate with the same resolution 9185 * as the preferred mode. Some monitors report a preferred mode 9186 * with lower resolution than the highest refresh rate supported. 9187 */ 9188 9189 m = get_highest_refresh_rate_mode(aconnector, true); 9190 if (!m) 9191 return 0; 9192 9193 for (i = 0; i < ARRAY_SIZE(common_rates); i++) { 9194 u64 target_vtotal, target_vtotal_diff; 9195 u64 num, den; 9196 9197 if (drm_mode_vrefresh(m) * 1000 < common_rates[i]) 9198 continue; 9199 9200 if (common_rates[i] < aconnector->min_vfreq * 1000 || 9201 common_rates[i] > aconnector->max_vfreq * 1000) 9202 continue; 9203 9204 num = (unsigned long long)m->clock * 1000 * 1000; 9205 den = common_rates[i] * (unsigned long long)m->htotal; 9206 target_vtotal = div_u64(num, den); 9207 target_vtotal_diff = target_vtotal - m->vtotal; 9208 9209 /* Check for illegal modes */ 9210 if (m->vsync_start + target_vtotal_diff < m->vdisplay || 9211 m->vsync_end + target_vtotal_diff < m->vsync_start || 9212 m->vtotal + target_vtotal_diff < m->vsync_end) 9213 continue; 9214 9215 new_mode = drm_mode_duplicate(aconnector->base.dev, m); 9216 if (!new_mode) 9217 goto out; 9218 9219 new_mode->vtotal += (u16)target_vtotal_diff; 9220 new_mode->vsync_start += (u16)target_vtotal_diff; 9221 new_mode->vsync_end += (u16)target_vtotal_diff; 9222 new_mode->type &= ~DRM_MODE_TYPE_PREFERRED; 9223 new_mode->type |= DRM_MODE_TYPE_DRIVER; 9224 9225 if (!is_duplicate_mode(aconnector, new_mode)) { 9226 drm_mode_probed_add(&aconnector->base, new_mode); 9227 new_modes_count += 1; 9228 } else 9229 drm_mode_destroy(aconnector->base.dev, new_mode); 9230 } 9231 out: 9232 return new_modes_count; 9233 } 9234 9235 static void amdgpu_dm_connector_add_freesync_modes(struct drm_connector *connector, 9236 const struct drm_edid *drm_edid) 9237 { 9238 struct amdgpu_dm_connector *amdgpu_dm_connector = 9239 to_amdgpu_dm_connector(connector); 9240 9241 if (!(amdgpu_freesync_vid_mode && drm_edid)) 9242 return; 9243 9244 if (!amdgpu_dm_connector->dc_sink || !amdgpu_dm_connector->dc_link) 9245 return; 9246 9247 if (!dc_supports_vrr(amdgpu_dm_connector->dc_sink->ctx->dce_version)) 9248 return; 9249 9250 if (dc_connector_supports_analog(amdgpu_dm_connector->dc_link->link_id.id) && 9251 amdgpu_dm_connector->dc_sink->edid_caps.analog) 9252 return; 9253 9254 if (amdgpu_dm_connector->max_vfreq - amdgpu_dm_connector->min_vfreq > 10) 9255 amdgpu_dm_connector->num_modes += 9256 add_fs_modes(amdgpu_dm_connector); 9257 } 9258 9259 static int amdgpu_dm_connector_get_modes(struct drm_connector *connector) 9260 { 9261 struct amdgpu_dm_connector *amdgpu_dm_connector = 9262 to_amdgpu_dm_connector(connector); 9263 struct dc_link *dc_link = amdgpu_dm_connector->dc_link; 9264 struct drm_encoder *encoder; 9265 const struct drm_edid *drm_edid = amdgpu_dm_connector->drm_edid; 9266 struct dc_link_settings *verified_link_cap = &dc_link->verified_link_cap; 9267 const struct dc *dc = dc_link->dc; 9268 9269 encoder = amdgpu_dm_connector_to_encoder(connector); 9270 9271 if (!drm_edid) { 9272 amdgpu_dm_connector->num_modes = 9273 drm_add_modes_noedid(connector, 640, 480); 9274 if (dc->link_srv->dp_get_encoding_format(verified_link_cap) == DP_128b_132b_ENCODING) 9275 amdgpu_dm_connector->num_modes += 9276 drm_add_modes_noedid(connector, 1920, 1080); 9277 9278 if (amdgpu_dm_connector->dc_sink && 9279 amdgpu_dm_connector->dc_sink->edid_caps.analog && 9280 dc_connector_supports_analog(dc_link->link_id.id)) { 9281 /* Analog monitor connected by DAC load detection. 9282 * Add common modes. It will be up to the user to select one that works. 9283 */ 9284 for (int i = 0; i < ARRAY_SIZE(common_modes); i++) 9285 amdgpu_dm_connector->num_modes += drm_add_modes_noedid( 9286 connector, common_modes[i].w, common_modes[i].h); 9287 } 9288 } else { 9289 amdgpu_dm_connector_ddc_get_modes(connector, drm_edid); 9290 if (encoder) 9291 amdgpu_dm_connector_add_common_modes(encoder, connector); 9292 amdgpu_dm_connector_add_freesync_modes(connector, drm_edid); 9293 } 9294 amdgpu_dm_fbc_init(connector); 9295 9296 return amdgpu_dm_connector->num_modes; 9297 } 9298 9299 static const u32 supported_colorspaces = 9300 BIT(DRM_MODE_COLORIMETRY_BT709_YCC) | 9301 BIT(DRM_MODE_COLORIMETRY_OPRGB) | 9302 BIT(DRM_MODE_COLORIMETRY_BT2020_RGB) | 9303 BIT(DRM_MODE_COLORIMETRY_BT2020_YCC); 9304 9305 void amdgpu_dm_connector_init_helper(struct amdgpu_display_manager *dm, 9306 struct amdgpu_dm_connector *aconnector, 9307 int connector_type, 9308 struct dc_link *link, 9309 int link_index) 9310 { 9311 struct amdgpu_device *adev = drm_to_adev(dm->ddev); 9312 9313 /* 9314 * Some of the properties below require access to state, like bpc. 9315 * Allocate some default initial connector state with our reset helper. 9316 */ 9317 if (aconnector->base.funcs->reset) 9318 aconnector->base.funcs->reset(&aconnector->base); 9319 9320 aconnector->connector_id = link_index; 9321 aconnector->bl_idx = -1; 9322 aconnector->dc_link = link; 9323 aconnector->base.interlace_allowed = false; 9324 aconnector->base.doublescan_allowed = false; 9325 aconnector->base.stereo_allowed = false; 9326 aconnector->base.dpms = DRM_MODE_DPMS_OFF; 9327 aconnector->hpd.hpd = AMDGPU_HPD_NONE; /* not used */ 9328 aconnector->audio_inst = -1; 9329 aconnector->pack_sdp_v1_3 = false; 9330 aconnector->as_type = ADAPTIVE_SYNC_TYPE_NONE; 9331 memset(&aconnector->vsdb_info, 0, sizeof(aconnector->vsdb_info)); 9332 mutex_init(&aconnector->hpd_lock); 9333 mutex_init(&aconnector->handle_mst_msg_ready); 9334 9335 /* 9336 * If HDMI HPD debounce delay is set, use the minimum between selected 9337 * value and AMDGPU_DM_MAX_HDMI_HPD_DEBOUNCE_MS 9338 */ 9339 if (amdgpu_hdmi_hpd_debounce_delay_ms) { 9340 aconnector->hdmi_hpd_debounce_delay_ms = min(amdgpu_hdmi_hpd_debounce_delay_ms, 9341 AMDGPU_DM_MAX_HDMI_HPD_DEBOUNCE_MS); 9342 INIT_DELAYED_WORK(&aconnector->hdmi_hpd_debounce_work, hdmi_hpd_debounce_work); 9343 aconnector->hdmi_prev_sink = NULL; 9344 } else { 9345 aconnector->hdmi_hpd_debounce_delay_ms = 0; 9346 } 9347 9348 /* 9349 * configure support HPD hot plug connector_>polled default value is 0 9350 * which means HPD hot plug not supported 9351 */ 9352 switch (connector_type) { 9353 case DRM_MODE_CONNECTOR_HDMIA: 9354 aconnector->base.polled = DRM_CONNECTOR_POLL_HPD; 9355 aconnector->base.ycbcr_420_allowed = 9356 link->link_enc->features.hdmi_ycbcr420_supported ? true : false; 9357 break; 9358 case DRM_MODE_CONNECTOR_DisplayPort: 9359 aconnector->base.polled = DRM_CONNECTOR_POLL_HPD; 9360 link->link_enc = link_enc_cfg_get_link_enc(link); 9361 ASSERT(link->link_enc); 9362 if (link->link_enc) 9363 aconnector->base.ycbcr_420_allowed = 9364 link->link_enc->features.dp_ycbcr420_supported ? true : false; 9365 break; 9366 case DRM_MODE_CONNECTOR_DVID: 9367 aconnector->base.polled = DRM_CONNECTOR_POLL_HPD; 9368 break; 9369 case DRM_MODE_CONNECTOR_DVII: 9370 case DRM_MODE_CONNECTOR_VGA: 9371 aconnector->base.polled = 9372 DRM_CONNECTOR_POLL_CONNECT | DRM_CONNECTOR_POLL_DISCONNECT; 9373 break; 9374 default: 9375 break; 9376 } 9377 9378 drm_object_attach_property(&aconnector->base.base, 9379 dm->ddev->mode_config.scaling_mode_property, 9380 DRM_MODE_SCALE_NONE); 9381 9382 if (connector_type == DRM_MODE_CONNECTOR_HDMIA 9383 || (connector_type == DRM_MODE_CONNECTOR_DisplayPort && !aconnector->mst_root)) 9384 drm_connector_attach_broadcast_rgb_property(&aconnector->base); 9385 9386 drm_object_attach_property(&aconnector->base.base, 9387 adev->mode_info.underscan_property, 9388 UNDERSCAN_OFF); 9389 drm_object_attach_property(&aconnector->base.base, 9390 adev->mode_info.underscan_hborder_property, 9391 0); 9392 drm_object_attach_property(&aconnector->base.base, 9393 adev->mode_info.underscan_vborder_property, 9394 0); 9395 9396 if (!aconnector->mst_root) 9397 drm_connector_attach_max_bpc_property(&aconnector->base, 8, 16); 9398 9399 aconnector->base.state->max_bpc = 16; 9400 aconnector->base.state->max_requested_bpc = aconnector->base.state->max_bpc; 9401 9402 if (connector_type == DRM_MODE_CONNECTOR_HDMIA) { 9403 /* Content Type is currently only implemented for HDMI. */ 9404 drm_connector_attach_content_type_property(&aconnector->base); 9405 } 9406 9407 if (connector_type == DRM_MODE_CONNECTOR_HDMIA) { 9408 if (!drm_mode_create_hdmi_colorspace_property(&aconnector->base, supported_colorspaces)) 9409 drm_connector_attach_colorspace_property(&aconnector->base); 9410 } else if ((connector_type == DRM_MODE_CONNECTOR_DisplayPort && !aconnector->mst_root) || 9411 connector_type == DRM_MODE_CONNECTOR_eDP) { 9412 if (!drm_mode_create_dp_colorspace_property(&aconnector->base, supported_colorspaces)) 9413 drm_connector_attach_colorspace_property(&aconnector->base); 9414 } 9415 9416 if (connector_type == DRM_MODE_CONNECTOR_HDMIA || 9417 connector_type == DRM_MODE_CONNECTOR_DisplayPort || 9418 connector_type == DRM_MODE_CONNECTOR_eDP) { 9419 drm_connector_attach_hdr_output_metadata_property(&aconnector->base); 9420 9421 if (!aconnector->mst_root) 9422 drm_connector_attach_vrr_capable_property(&aconnector->base); 9423 9424 if (adev->dm.hdcp_workqueue) 9425 drm_connector_attach_content_protection_property(&aconnector->base, true); 9426 } 9427 9428 if (connector_type == DRM_MODE_CONNECTOR_eDP) { 9429 struct drm_privacy_screen *privacy_screen; 9430 9431 drm_connector_attach_panel_type_property(&aconnector->base); 9432 9433 privacy_screen = drm_privacy_screen_get(adev_to_drm(adev)->dev, NULL); 9434 if (!IS_ERR(privacy_screen)) { 9435 drm_connector_attach_privacy_screen_provider(&aconnector->base, 9436 privacy_screen); 9437 } else if (PTR_ERR(privacy_screen) != -ENODEV) { 9438 drm_warn(adev_to_drm(adev), "Error getting privacy-screen\n"); 9439 } 9440 } 9441 } 9442 9443 static int amdgpu_dm_i2c_xfer(struct i2c_adapter *i2c_adap, 9444 struct i2c_msg *msgs, int num) 9445 { 9446 struct amdgpu_i2c_adapter *i2c = i2c_get_adapdata(i2c_adap); 9447 struct ddc_service *ddc_service = i2c->ddc_service; 9448 struct i2c_command cmd; 9449 int i; 9450 int result = -EIO; 9451 9452 if (!ddc_service->ddc_pin) 9453 return result; 9454 9455 cmd.payloads = kzalloc_objs(struct i2c_payload, num); 9456 9457 if (!cmd.payloads) 9458 return result; 9459 9460 cmd.number_of_payloads = num; 9461 cmd.engine = I2C_COMMAND_ENGINE_DEFAULT; 9462 cmd.speed = 100; 9463 9464 for (i = 0; i < num; i++) { 9465 cmd.payloads[i].write = !(msgs[i].flags & I2C_M_RD); 9466 cmd.payloads[i].address = msgs[i].addr; 9467 cmd.payloads[i].length = msgs[i].len; 9468 cmd.payloads[i].data = msgs[i].buf; 9469 } 9470 9471 if (i2c->oem) { 9472 if (dc_submit_i2c_oem( 9473 ddc_service->ctx->dc, 9474 &cmd)) 9475 result = num; 9476 } else { 9477 if (dc_submit_i2c( 9478 ddc_service->ctx->dc, 9479 ddc_service->link->link_index, 9480 &cmd)) 9481 result = num; 9482 } 9483 9484 kfree(cmd.payloads); 9485 return result; 9486 } 9487 9488 static u32 amdgpu_dm_i2c_func(struct i2c_adapter *adap) 9489 { 9490 return I2C_FUNC_I2C | I2C_FUNC_SMBUS_EMUL; 9491 } 9492 9493 static const struct i2c_algorithm amdgpu_dm_i2c_algo = { 9494 .master_xfer = amdgpu_dm_i2c_xfer, 9495 .functionality = amdgpu_dm_i2c_func, 9496 }; 9497 9498 static struct amdgpu_i2c_adapter * 9499 create_i2c(struct ddc_service *ddc_service, bool oem) 9500 { 9501 struct amdgpu_device *adev = ddc_service->ctx->driver_context; 9502 struct amdgpu_i2c_adapter *i2c; 9503 9504 i2c = kzalloc_obj(struct amdgpu_i2c_adapter); 9505 if (!i2c) 9506 return NULL; 9507 i2c->base.owner = THIS_MODULE; 9508 i2c->base.dev.parent = &adev->pdev->dev; 9509 i2c->base.algo = &amdgpu_dm_i2c_algo; 9510 if (oem) 9511 snprintf(i2c->base.name, sizeof(i2c->base.name), "AMDGPU DM i2c OEM bus"); 9512 else 9513 snprintf(i2c->base.name, sizeof(i2c->base.name), "AMDGPU DM i2c hw bus %d", 9514 ddc_service->link->link_index); 9515 i2c_set_adapdata(&i2c->base, i2c); 9516 i2c->ddc_service = ddc_service; 9517 i2c->oem = oem; 9518 9519 return i2c; 9520 } 9521 9522 int amdgpu_dm_initialize_hdmi_connector(struct amdgpu_dm_connector *aconnector) 9523 { 9524 struct cec_connector_info conn_info; 9525 struct drm_device *ddev = aconnector->base.dev; 9526 struct device *hdmi_dev = ddev->dev; 9527 9528 if (amdgpu_dc_debug_mask & DC_DISABLE_HDMI_CEC) { 9529 drm_info(ddev, "HDMI-CEC feature masked\n"); 9530 return -EINVAL; 9531 } 9532 9533 cec_fill_conn_info_from_drm(&conn_info, &aconnector->base); 9534 aconnector->notifier = 9535 cec_notifier_conn_register(hdmi_dev, NULL, &conn_info); 9536 if (!aconnector->notifier) { 9537 drm_err(ddev, "Failed to create cec notifier\n"); 9538 return -ENOMEM; 9539 } 9540 9541 return 0; 9542 } 9543 9544 /* 9545 * Note: this function assumes that dc_link_detect() was called for the 9546 * dc_link which will be represented by this aconnector. 9547 */ 9548 static int amdgpu_dm_connector_init(struct amdgpu_display_manager *dm, 9549 struct amdgpu_dm_connector *aconnector, 9550 u32 link_index, 9551 struct amdgpu_encoder *aencoder) 9552 { 9553 int res = 0; 9554 int connector_type; 9555 struct dc *dc = dm->dc; 9556 struct dc_link *link = dc_get_link_at_index(dc, link_index); 9557 struct amdgpu_i2c_adapter *i2c; 9558 9559 /* Not needed for writeback connector */ 9560 link->priv = aconnector; 9561 9562 9563 i2c = create_i2c(link->ddc, false); 9564 if (!i2c) { 9565 drm_err(adev_to_drm(dm->adev), "Failed to create i2c adapter data\n"); 9566 return -ENOMEM; 9567 } 9568 9569 aconnector->i2c = i2c; 9570 res = devm_i2c_add_adapter(dm->adev->dev, &i2c->base); 9571 9572 if (res) { 9573 drm_err(adev_to_drm(dm->adev), "Failed to register hw i2c %d\n", link->link_index); 9574 goto out_free; 9575 } 9576 9577 connector_type = to_drm_connector_type(link->connector_signal, link->link_id.id); 9578 9579 res = drm_connector_init_with_ddc( 9580 dm->ddev, 9581 &aconnector->base, 9582 &amdgpu_dm_connector_funcs, 9583 connector_type, 9584 &i2c->base); 9585 9586 if (res) { 9587 drm_err(adev_to_drm(dm->adev), "connector_init failed\n"); 9588 aconnector->connector_id = -1; 9589 goto out_free; 9590 } 9591 9592 drm_connector_helper_add( 9593 &aconnector->base, 9594 &amdgpu_dm_connector_helper_funcs); 9595 9596 amdgpu_dm_connector_init_helper( 9597 dm, 9598 aconnector, 9599 connector_type, 9600 link, 9601 link_index); 9602 9603 drm_connector_attach_encoder( 9604 &aconnector->base, &aencoder->base); 9605 9606 if (connector_type == DRM_MODE_CONNECTOR_HDMIA || 9607 connector_type == DRM_MODE_CONNECTOR_HDMIB) 9608 amdgpu_dm_initialize_hdmi_connector(aconnector); 9609 9610 if (dc_is_dp_signal(link->connector_signal)) 9611 amdgpu_dm_initialize_dp_connector(dm, aconnector, link->link_index); 9612 9613 out_free: 9614 if (res) { 9615 kfree(i2c); 9616 aconnector->i2c = NULL; 9617 } 9618 return res; 9619 } 9620 9621 int amdgpu_dm_get_encoder_crtc_mask(struct amdgpu_device *adev) 9622 { 9623 switch (adev->mode_info.num_crtc) { 9624 case 1: 9625 return 0x1; 9626 case 2: 9627 return 0x3; 9628 case 3: 9629 return 0x7; 9630 case 4: 9631 return 0xf; 9632 case 5: 9633 return 0x1f; 9634 case 6: 9635 default: 9636 return 0x3f; 9637 } 9638 } 9639 9640 static int amdgpu_dm_encoder_init(struct drm_device *dev, 9641 struct amdgpu_encoder *aencoder, 9642 uint32_t link_index) 9643 { 9644 struct amdgpu_device *adev = drm_to_adev(dev); 9645 9646 int res = drm_encoder_init(dev, 9647 &aencoder->base, 9648 &amdgpu_dm_encoder_funcs, 9649 DRM_MODE_ENCODER_TMDS, 9650 NULL); 9651 9652 aencoder->base.possible_crtcs = amdgpu_dm_get_encoder_crtc_mask(adev); 9653 9654 if (!res) 9655 aencoder->encoder_id = link_index; 9656 else 9657 aencoder->encoder_id = -1; 9658 9659 drm_encoder_helper_add(&aencoder->base, &amdgpu_dm_encoder_helper_funcs); 9660 9661 return res; 9662 } 9663 9664 static void manage_dm_interrupts(struct amdgpu_device *adev, 9665 struct amdgpu_crtc *acrtc, 9666 struct dm_crtc_state *acrtc_state) 9667 { /* 9668 * We cannot be sure that the frontend index maps to the same 9669 * backend index - some even map to more than one. 9670 * So we have to go through the CRTC to find the right IRQ. 9671 */ 9672 int irq_type = amdgpu_display_crtc_idx_to_irq_type( 9673 adev, 9674 acrtc->crtc_id); 9675 struct drm_device *dev = adev_to_drm(adev); 9676 9677 struct drm_vblank_crtc_config config = {0}; 9678 struct dc_crtc_timing *timing; 9679 int offdelay; 9680 9681 if (acrtc_state) { 9682 timing = &acrtc_state->stream->timing; 9683 9684 if (amdgpu_ip_version(adev, DCE_HWIP, 0) < 9685 IP_VERSION(3, 5, 0) || 9686 !(adev->flags & AMD_IS_APU)) { 9687 /* 9688 * Older HW and DGPU have issues with instant off; 9689 * use a 2 frame offdelay. 9690 */ 9691 offdelay = DIV64_U64_ROUND_UP((u64)20 * 9692 timing->v_total * 9693 timing->h_total, 9694 timing->pix_clk_100hz); 9695 9696 config.offdelay_ms = offdelay ?: 30; 9697 } else { 9698 /* offdelay_ms = 0 will never disable vblank */ 9699 config.offdelay_ms = 1; 9700 config.disable_immediate = true; 9701 } 9702 9703 drm_crtc_vblank_on_config(&acrtc->base, 9704 &config); 9705 /* 9706 * Since pflip_high_irq is no longer registered for DCN, grab an 9707 * extra reference to vupdate irq instead to workaround this 9708 * issue: 9709 * https://gitlab.freedesktop.org/drm/amd/-/work_items/3936 9710 * 9711 * The callbacks to drm_vblank_on/off should really take care of 9712 * this though. 9713 */ 9714 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 9715 case IP_VERSION(3, 0, 0): 9716 case IP_VERSION(3, 0, 2): 9717 case IP_VERSION(3, 0, 3): 9718 case IP_VERSION(3, 2, 0): 9719 if (amdgpu_irq_get(adev, &adev->vupdate_irq, irq_type)) 9720 drm_err(dev, "DM_IRQ: Cannot get vupdate irq!\n"); 9721 #if defined(CONFIG_DRM_AMD_SECURE_DISPLAY) 9722 if (amdgpu_irq_get(adev, &adev->vline0_irq, irq_type)) 9723 drm_err(dev, "DM_IRQ: Cannot get vline0 irq!\n"); 9724 #endif 9725 } 9726 9727 } else { 9728 /* Allow RX6xxx, RX7700, RX7800 GPUs to call amdgpu_irq_put.*/ 9729 switch (amdgpu_ip_version(adev, DCE_HWIP, 0)) { 9730 case IP_VERSION(3, 0, 0): 9731 case IP_VERSION(3, 0, 2): 9732 case IP_VERSION(3, 0, 3): 9733 case IP_VERSION(3, 2, 0): 9734 #if defined(CONFIG_DRM_AMD_SECURE_DISPLAY) 9735 if (amdgpu_irq_put(adev, &adev->vline0_irq, irq_type)) 9736 drm_err(dev, "DM_IRQ: Cannot put vline0 irq!\n"); 9737 #endif 9738 if (amdgpu_irq_put(adev, &adev->vupdate_irq, irq_type)) 9739 drm_err(dev, "DM_IRQ: Cannot put vupdate irq!\n"); 9740 } 9741 9742 drm_crtc_vblank_off(&acrtc->base); 9743 } 9744 } 9745 9746 static void dm_update_pflip_irq_state(struct amdgpu_device *adev, 9747 struct amdgpu_crtc *acrtc) 9748 { 9749 int irq_type = 9750 amdgpu_display_crtc_idx_to_irq_type(adev, acrtc->crtc_id); 9751 9752 /* GRPH_PFLIP is not used on DCN; nothing to reapply. */ 9753 if (amdgpu_ip_version(adev, DCE_HWIP, 0) != 0) 9754 return; 9755 9756 /** 9757 * This reads the current state for the IRQ and force reapplies 9758 * the setting to hardware. 9759 */ 9760 amdgpu_irq_update(adev, &adev->pageflip_irq, irq_type); 9761 } 9762 9763 static bool 9764 is_scaling_state_different(const struct dm_connector_state *dm_state, 9765 const struct dm_connector_state *old_dm_state) 9766 { 9767 if (dm_state->scaling != old_dm_state->scaling) 9768 return true; 9769 if (!dm_state->underscan_enable && old_dm_state->underscan_enable) { 9770 if (old_dm_state->underscan_hborder != 0 && old_dm_state->underscan_vborder != 0) 9771 return true; 9772 } else if (dm_state->underscan_enable && !old_dm_state->underscan_enable) { 9773 if (dm_state->underscan_hborder != 0 && dm_state->underscan_vborder != 0) 9774 return true; 9775 } else if (dm_state->underscan_hborder != old_dm_state->underscan_hborder || 9776 dm_state->underscan_vborder != old_dm_state->underscan_vborder) 9777 return true; 9778 return false; 9779 } 9780 9781 static bool is_content_protection_different(struct drm_crtc_state *new_crtc_state, 9782 struct drm_crtc_state *old_crtc_state, 9783 struct drm_connector_state *new_conn_state, 9784 struct drm_connector_state *old_conn_state, 9785 const struct drm_connector *connector, 9786 struct hdcp_workqueue *hdcp_w) 9787 { 9788 struct amdgpu_dm_connector *aconnector = to_amdgpu_dm_connector(connector); 9789 struct dm_connector_state *dm_con_state = to_dm_connector_state(connector->state); 9790 9791 pr_debug("[HDCP_DM] connector->index: %x connect_status: %x dpms: %x\n", 9792 connector->index, connector->status, connector->dpms); 9793 pr_debug("[HDCP_DM] state protection old: %x new: %x\n", 9794 old_conn_state->content_protection, new_conn_state->content_protection); 9795 9796 if (old_crtc_state) 9797 pr_debug("[HDCP_DM] old crtc en: %x a: %x m: %x a-chg: %x c-chg: %x\n", 9798 old_crtc_state->enable, 9799 old_crtc_state->active, 9800 old_crtc_state->mode_changed, 9801 old_crtc_state->active_changed, 9802 old_crtc_state->connectors_changed); 9803 9804 if (new_crtc_state) 9805 pr_debug("[HDCP_DM] NEW crtc en: %x a: %x m: %x a-chg: %x c-chg: %x\n", 9806 new_crtc_state->enable, 9807 new_crtc_state->active, 9808 new_crtc_state->mode_changed, 9809 new_crtc_state->active_changed, 9810 new_crtc_state->connectors_changed); 9811 9812 /* hdcp content type change */ 9813 if (old_conn_state->hdcp_content_type != new_conn_state->hdcp_content_type && 9814 new_conn_state->content_protection != DRM_MODE_CONTENT_PROTECTION_UNDESIRED) { 9815 new_conn_state->content_protection = DRM_MODE_CONTENT_PROTECTION_DESIRED; 9816 pr_debug("[HDCP_DM] Type0/1 change %s :true\n", __func__); 9817 return true; 9818 } 9819 9820 /* CP is being re enabled, ignore this */ 9821 if (old_conn_state->content_protection == DRM_MODE_CONTENT_PROTECTION_ENABLED && 9822 new_conn_state->content_protection == DRM_MODE_CONTENT_PROTECTION_DESIRED) { 9823 if (new_crtc_state && new_crtc_state->mode_changed) { 9824 new_conn_state->content_protection = DRM_MODE_CONTENT_PROTECTION_DESIRED; 9825 pr_debug("[HDCP_DM] ENABLED->DESIRED & mode_changed %s :true\n", __func__); 9826 return true; 9827 } 9828 new_conn_state->content_protection = DRM_MODE_CONTENT_PROTECTION_ENABLED; 9829 pr_debug("[HDCP_DM] ENABLED -> DESIRED %s :false\n", __func__); 9830 return false; 9831 } 9832 9833 /* S3 resume case, since old state will always be 0 (UNDESIRED) and the restored state will be ENABLED 9834 * 9835 * Handles: UNDESIRED -> ENABLED 9836 */ 9837 if (old_conn_state->content_protection == DRM_MODE_CONTENT_PROTECTION_UNDESIRED && 9838 new_conn_state->content_protection == DRM_MODE_CONTENT_PROTECTION_ENABLED) 9839 new_conn_state->content_protection = DRM_MODE_CONTENT_PROTECTION_DESIRED; 9840 9841 /* Stream removed and re-enabled 9842 * 9843 * Can sometimes overlap with the HPD case, 9844 * thus set update_hdcp to false to avoid 9845 * setting HDCP multiple times. 9846 * 9847 * Handles: DESIRED -> DESIRED (Special case) 9848 */ 9849 if (!(old_conn_state->crtc && old_conn_state->crtc->enabled) && 9850 new_conn_state->crtc && new_conn_state->crtc->enabled && 9851 connector->state->content_protection == DRM_MODE_CONTENT_PROTECTION_DESIRED) { 9852 dm_con_state->update_hdcp = false; 9853 pr_debug("[HDCP_DM] DESIRED->DESIRED (Stream removed and re-enabled) %s :true\n", 9854 __func__); 9855 return true; 9856 } 9857 9858 /* Hot-plug, headless s3, dpms 9859 * 9860 * Only start HDCP if the display is connected/enabled. 9861 * update_hdcp flag will be set to false until the next 9862 * HPD comes in. 9863 * 9864 * Handles: DESIRED -> DESIRED (Special case) 9865 */ 9866 if (dm_con_state->update_hdcp && 9867 new_conn_state->content_protection == DRM_MODE_CONTENT_PROTECTION_DESIRED && 9868 connector->dpms == DRM_MODE_DPMS_ON && aconnector->dc_sink != NULL) { 9869 dm_con_state->update_hdcp = false; 9870 pr_debug("[HDCP_DM] DESIRED->DESIRED (Hot-plug, headless s3, dpms) %s :true\n", 9871 __func__); 9872 return true; 9873 } 9874 9875 if (old_conn_state->content_protection == new_conn_state->content_protection) { 9876 if (new_conn_state->content_protection >= DRM_MODE_CONTENT_PROTECTION_DESIRED) { 9877 if (new_crtc_state && new_crtc_state->mode_changed) { 9878 pr_debug("[HDCP_DM] DESIRED->DESIRED or ENABLE->ENABLE mode_change %s :true\n", 9879 __func__); 9880 return true; 9881 } 9882 pr_debug("[HDCP_DM] DESIRED->DESIRED & ENABLE->ENABLE %s :false\n", 9883 __func__); 9884 return false; 9885 } 9886 9887 pr_debug("[HDCP_DM] UNDESIRED->UNDESIRED %s :false\n", __func__); 9888 return false; 9889 } 9890 9891 if (new_conn_state->content_protection != DRM_MODE_CONTENT_PROTECTION_ENABLED) { 9892 pr_debug("[HDCP_DM] UNDESIRED->DESIRED or DESIRED->UNDESIRED or ENABLED->UNDESIRED %s :true\n", 9893 __func__); 9894 return true; 9895 } 9896 9897 pr_debug("[HDCP_DM] DESIRED->ENABLED %s :false\n", __func__); 9898 return false; 9899 } 9900 9901 static void remove_stream(struct amdgpu_device *adev, 9902 struct amdgpu_crtc *acrtc, 9903 struct dc_stream_state *stream) 9904 { 9905 /* this is the update mode case */ 9906 9907 acrtc->otg_inst = -1; 9908 acrtc->enabled = false; 9909 } 9910 9911 static void update_freesync_state_on_stream( 9912 struct amdgpu_display_manager *dm, 9913 struct dm_crtc_state *new_crtc_state, 9914 struct dc_stream_state *new_stream, 9915 struct dc_plane_state *surface, 9916 u32 flip_timestamp_in_us) 9917 { 9918 struct mod_vrr_params vrr_params; 9919 struct dc_info_packet vrr_infopacket = {0}; 9920 struct amdgpu_device *adev = dm->adev; 9921 struct amdgpu_crtc *acrtc = to_amdgpu_crtc(new_crtc_state->base.crtc); 9922 unsigned long flags; 9923 bool pack_sdp_v1_3 = false; 9924 struct amdgpu_dm_connector *aconn; 9925 enum vrr_packet_type packet_type = PACKET_TYPE_VRR; 9926 9927 if (!new_stream) 9928 return; 9929 9930 /* 9931 * TODO: Determine why min/max totals and vrefresh can be 0 here. 9932 * For now it's sufficient to just guard against these conditions. 9933 */ 9934 9935 if (!new_stream->timing.h_total || !new_stream->timing.v_total) 9936 return; 9937 9938 spin_lock_irqsave(&adev_to_drm(adev)->event_lock, flags); 9939 vrr_params = acrtc->dm_irq_params.vrr_params; 9940 9941 if (surface) { 9942 mod_freesync_handle_preflip( 9943 dm->freesync_module, 9944 surface, 9945 new_stream, 9946 flip_timestamp_in_us, 9947 &vrr_params); 9948 9949 if (adev->family < AMDGPU_FAMILY_AI && 9950 amdgpu_dm_crtc_vrr_active(new_crtc_state)) { 9951 mod_freesync_handle_v_update(dm->freesync_module, 9952 new_stream, &vrr_params); 9953 9954 /* Need to call this before the frame ends. */ 9955 dc_stream_adjust_vmin_vmax(dm->dc, 9956 new_crtc_state->stream, 9957 &vrr_params.adjust); 9958 } 9959 } 9960 9961 aconn = (struct amdgpu_dm_connector *)new_stream->dm_stream_context; 9962 9963 if (aconn && (aconn->as_type == FREESYNC_TYPE_PCON_IN_WHITELIST || aconn->vsdb_info.replay_mode)) { 9964 pack_sdp_v1_3 = aconn->pack_sdp_v1_3; 9965 9966 if (aconn->vsdb_info.amd_vsdb_version == 1) 9967 packet_type = PACKET_TYPE_FS_V1; 9968 else if (aconn->vsdb_info.amd_vsdb_version == 2) 9969 packet_type = PACKET_TYPE_FS_V2; 9970 else if (aconn->vsdb_info.amd_vsdb_version == 3) 9971 packet_type = PACKET_TYPE_FS_V3; 9972 9973 mod_build_adaptive_sync_infopacket(new_stream, aconn->as_type, NULL, 9974 &new_stream->adaptive_sync_infopacket); 9975 } 9976 9977 mod_freesync_build_vrr_infopacket( 9978 dm->freesync_module, 9979 new_stream, 9980 &vrr_params, 9981 packet_type, 9982 TRANSFER_FUNC_UNKNOWN, 9983 &vrr_infopacket, 9984 pack_sdp_v1_3); 9985 9986 new_crtc_state->freesync_vrr_info_changed |= 9987 (memcmp(&new_crtc_state->vrr_infopacket, 9988 &vrr_infopacket, 9989 sizeof(vrr_infopacket)) != 0); 9990 9991 acrtc->dm_irq_params.vrr_params = vrr_params; 9992 new_crtc_state->vrr_infopacket = vrr_infopacket; 9993 9994 new_stream->vrr_infopacket = vrr_infopacket; 9995 new_stream->allow_freesync = mod_freesync_get_freesync_enabled(&vrr_params); 9996 9997 if (new_crtc_state->freesync_vrr_info_changed) 9998 drm_dbg_kms(adev_to_drm(adev), "VRR packet update: crtc=%u enabled=%d state=%d", 9999 new_crtc_state->base.crtc->base.id, 10000 (int)new_crtc_state->base.vrr_enabled, 10001 (int)vrr_params.state); 10002 10003 spin_unlock_irqrestore(&adev_to_drm(adev)->event_lock, flags); 10004 } 10005 10006 static void update_stream_irq_parameters( 10007 struct amdgpu_display_manager *dm, 10008 struct dm_crtc_state *new_crtc_state) 10009 { 10010 struct dc_stream_state *new_stream = new_crtc_state->stream; 10011 struct mod_vrr_params vrr_params; 10012 struct mod_freesync_config config = new_crtc_state->freesync_config; 10013 struct amdgpu_device *adev = dm->adev; 10014 struct amdgpu_crtc *acrtc = to_amdgpu_crtc(new_crtc_state->base.crtc); 10015 unsigned long flags; 10016 10017 if (!new_stream) 10018 return; 10019 10020 /* 10021 * TODO: Determine why min/max totals and vrefresh can be 0 here. 10022 * For now it's sufficient to just guard against these conditions. 10023 */ 10024 if (!new_stream->timing.h_total || !new_stream->timing.v_total) 10025 return; 10026 10027 spin_lock_irqsave(&adev_to_drm(adev)->event_lock, flags); 10028 vrr_params = acrtc->dm_irq_params.vrr_params; 10029 10030 if (new_crtc_state->vrr_supported && 10031 config.min_refresh_in_uhz && 10032 config.max_refresh_in_uhz) { 10033 /* 10034 * if freesync compatible mode was set, config.state will be set 10035 * in atomic check 10036 */ 10037 if (config.state == VRR_STATE_ACTIVE_FIXED && config.fixed_refresh_in_uhz && 10038 (!drm_atomic_crtc_needs_modeset(&new_crtc_state->base) || 10039 new_crtc_state->freesync_config.state == VRR_STATE_ACTIVE_FIXED)) { 10040 vrr_params.max_refresh_in_uhz = config.max_refresh_in_uhz; 10041 vrr_params.min_refresh_in_uhz = config.min_refresh_in_uhz; 10042 vrr_params.fixed_refresh_in_uhz = config.fixed_refresh_in_uhz; 10043 vrr_params.state = VRR_STATE_ACTIVE_FIXED; 10044 } else { 10045 config.state = new_crtc_state->base.vrr_enabled ? 10046 VRR_STATE_ACTIVE_VARIABLE : 10047 VRR_STATE_INACTIVE; 10048 } 10049 } else { 10050 config.state = VRR_STATE_UNSUPPORTED; 10051 } 10052 10053 mod_freesync_build_vrr_params(dm->freesync_module, 10054 new_stream, 10055 &config, &vrr_params); 10056 10057 new_crtc_state->freesync_config = config; 10058 /* Copy state for access from DM IRQ handler */ 10059 acrtc->dm_irq_params.freesync_config = config; 10060 acrtc->dm_irq_params.active_planes = new_crtc_state->active_planes; 10061 acrtc->dm_irq_params.vrr_params = vrr_params; 10062 spin_unlock_irqrestore(&adev_to_drm(adev)->event_lock, flags); 10063 } 10064 10065 static void amdgpu_dm_handle_vrr_transition(struct amdgpu_display_manager *dm, 10066 struct dm_crtc_state *old_state, 10067 struct dm_crtc_state *new_state) 10068 { 10069 struct amdgpu_device *adev = drm_to_adev(new_state->base.crtc->dev); 10070 bool old_vrr_active = amdgpu_dm_crtc_vrr_active(old_state); 10071 bool new_vrr_active = amdgpu_dm_crtc_vrr_active(new_state); 10072 10073 /* Only DCE gates vupdate on VRR, keep it enabled for DCN */ 10074 bool vrr_gates_vupdate = amdgpu_ip_version(adev, DCE_HWIP, 0) == 0; 10075 10076 if (!old_vrr_active && new_vrr_active) { 10077 /* Transition VRR inactive -> active: 10078 * While VRR is active, we must not disable vblank irq, as a 10079 * reenable after disable would compute bogus vblank/pflip 10080 * timestamps if it likely happened inside display front-porch. 10081 * 10082 * We also need vupdate irq for the actual core vblank handling 10083 * at end of vblank. 10084 */ 10085 if (vrr_gates_vupdate) 10086 WARN_ON(amdgpu_dm_crtc_set_vupdate_irq(new_state->base.crtc, true) != 0); 10087 WARN_ON(drm_crtc_vblank_get(new_state->base.crtc) != 0); 10088 drm_dbg_driver(new_state->base.crtc->dev, "%s: crtc=%u VRR off->on: Get vblank ref\n", 10089 __func__, new_state->base.crtc->base.id); 10090 10091 scoped_guard(mutex, &dm->dc_lock) { 10092 dc_exit_ips_for_hw_access(dm->dc); 10093 amdgpu_dm_psr_set_event(dm, new_state->stream, true, 10094 psr_event_vrr_transition, true); 10095 amdgpu_dm_replay_set_event(dm, new_state->stream, true, 10096 replay_event_vrr, true); 10097 } 10098 } else if (old_vrr_active && !new_vrr_active) { 10099 /* Transition VRR active -> inactive: 10100 * Allow vblank irq disable again for fixed refresh rate. 10101 */ 10102 if (vrr_gates_vupdate) 10103 WARN_ON(amdgpu_dm_crtc_set_vupdate_irq(new_state->base.crtc, false) != 0); 10104 drm_crtc_vblank_put(new_state->base.crtc); 10105 drm_dbg_driver(new_state->base.crtc->dev, "%s: crtc=%u VRR on->off: Drop vblank ref\n", 10106 __func__, new_state->base.crtc->base.id); 10107 10108 scoped_guard(mutex, &dm->dc_lock) { 10109 dc_exit_ips_for_hw_access(dm->dc); 10110 amdgpu_dm_psr_set_event(dm, new_state->stream, false, 10111 psr_event_vrr_transition, false); 10112 amdgpu_dm_replay_set_event(dm, new_state->stream, false, 10113 replay_event_vrr, false); 10114 } 10115 } 10116 } 10117 10118 static void amdgpu_dm_commit_cursors(struct drm_atomic_commit *state) 10119 { 10120 struct drm_plane *plane; 10121 struct drm_plane_state *old_plane_state; 10122 int i; 10123 10124 /* 10125 * TODO: Make this per-stream so we don't issue redundant updates for 10126 * commits with multiple streams. 10127 */ 10128 for_each_old_plane_in_state(state, plane, old_plane_state, i) 10129 if (plane->type == DRM_PLANE_TYPE_CURSOR) 10130 amdgpu_dm_plane_handle_cursor_update(plane, old_plane_state); 10131 } 10132 10133 static inline uint32_t get_mem_type(struct drm_framebuffer *fb) 10134 { 10135 struct amdgpu_bo *abo = gem_to_amdgpu_bo(fb->obj[0]); 10136 10137 return abo->tbo.resource ? abo->tbo.resource->mem_type : 0; 10138 } 10139 10140 static void amdgpu_dm_update_cursor(struct drm_plane *plane, 10141 struct drm_plane_state *old_plane_state, 10142 struct dc_stream_update *update) 10143 { 10144 struct amdgpu_device *adev = drm_to_adev(plane->dev); 10145 struct amdgpu_framebuffer *afb = to_amdgpu_framebuffer(plane->state->fb); 10146 struct drm_crtc *crtc = afb ? plane->state->crtc : old_plane_state->crtc; 10147 struct dm_crtc_state *crtc_state = crtc ? to_dm_crtc_state(crtc->state) : NULL; 10148 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 10149 uint64_t address = afb ? afb->address : 0; 10150 struct dc_cursor_position position = {0}; 10151 struct dc_cursor_attributes attributes; 10152 int ret; 10153 10154 if (!plane->state->fb && !old_plane_state->fb) 10155 return; 10156 10157 drm_dbg_atomic(plane->dev, "crtc_id=%d with size %d to %d\n", 10158 amdgpu_crtc->crtc_id, plane->state->crtc_w, 10159 plane->state->crtc_h); 10160 10161 ret = amdgpu_dm_plane_get_cursor_position(plane, crtc, &position); 10162 if (ret) 10163 return; 10164 10165 if (!position.enable) { 10166 /* turn off cursor */ 10167 if (crtc_state && crtc_state->stream) { 10168 dc_stream_set_cursor_position(crtc_state->stream, 10169 &position); 10170 update->cursor_position = &crtc_state->stream->cursor_position; 10171 } 10172 return; 10173 } 10174 10175 amdgpu_crtc->cursor_width = plane->state->crtc_w; 10176 amdgpu_crtc->cursor_height = plane->state->crtc_h; 10177 10178 memset(&attributes, 0, sizeof(attributes)); 10179 attributes.address.high_part = upper_32_bits(address); 10180 attributes.address.low_part = lower_32_bits(address); 10181 attributes.width = plane->state->crtc_w; 10182 attributes.height = plane->state->crtc_h; 10183 attributes.color_format = CURSOR_MODE_COLOR_PRE_MULTIPLIED_ALPHA; 10184 attributes.rotation_angle = 0; 10185 attributes.attribute_flags.value = 0; 10186 10187 /* Enable cursor degamma ROM on DCN3+ for implicit sRGB degamma in DRM 10188 * legacy gamma setup. 10189 */ 10190 if (crtc_state->cm_is_degamma_srgb && 10191 adev->dm.dc->caps.color.dpp.gamma_corr) 10192 attributes.attribute_flags.bits.ENABLE_CURSOR_DEGAMMA = 1; 10193 10194 if (afb) 10195 attributes.pitch = afb->base.pitches[0] / afb->base.format->cpp[0]; 10196 10197 if (crtc_state->stream) { 10198 if (!dc_stream_set_cursor_attributes(crtc_state->stream, 10199 &attributes)) 10200 drm_err(adev_to_drm(adev), "DC failed to set cursor attributes\n"); 10201 10202 update->cursor_attributes = &crtc_state->stream->cursor_attributes; 10203 10204 if (!dc_stream_set_cursor_position(crtc_state->stream, 10205 &position)) 10206 drm_err(adev_to_drm(adev), "DC failed to set cursor position\n"); 10207 10208 update->cursor_position = &crtc_state->stream->cursor_position; 10209 } 10210 } 10211 10212 static void amdgpu_dm_enable_self_refresh(struct amdgpu_display_manager *dm, 10213 struct amdgpu_crtc *acrtc_attach, 10214 const struct dm_crtc_state *acrtc_state, 10215 const u64 current_ts) 10216 { 10217 struct psr_settings *psr = &acrtc_state->stream->link->psr_settings; 10218 struct replay_settings *pr = &acrtc_state->stream->link->replay_settings; 10219 struct amdgpu_dm_connector *aconn = 10220 (struct amdgpu_dm_connector *)acrtc_state->stream->dm_stream_context; 10221 10222 /* Decrement skip count when SR is enabled and we're doing fast updates. */ 10223 if (acrtc_state->update_type == UPDATE_TYPE_FAST && 10224 (psr->psr_feature_enabled || pr->replay_feature_enabled)) { 10225 if (aconn->sr_skip_count > 0) 10226 aconn->sr_skip_count--; 10227 10228 /* Allow SR when skip count is 0. */ 10229 acrtc_attach->dm_irq_params.allow_sr_entry = !aconn->sr_skip_count; 10230 10231 /* 10232 * If sink supports PSR SU/Panel Replay, there is no need to rely on 10233 * a vblank event disable request to enable PSR/RP. PSR SU/RP 10234 * can be enabled immediately once OS demonstrates an 10235 * adequate number of fast atomic commits to notify KMD 10236 * of update events. 10237 * See `amdgpu_dm_crtc_vblank_control_worker()`. 10238 */ 10239 if (acrtc_attach->dm_irq_params.allow_sr_entry && 10240 (current_ts - psr->psr_dirty_rects_change_timestamp_ns) > 500000000) { 10241 amdgpu_dm_psr_set_event(dm, acrtc_state->stream, false, 10242 psr_event_hw_programming, false); 10243 10244 amdgpu_dm_replay_set_event(dm, acrtc_state->stream, false, 10245 replay_event_hw_programming, false); 10246 } 10247 } else { 10248 acrtc_attach->dm_irq_params.allow_sr_entry = false; 10249 } 10250 } 10251 10252 static void dm_arm_vblank_event(struct amdgpu_crtc *acrtc, 10253 struct dm_crtc_state *acrtc_state, 10254 bool pflip_update, 10255 bool cursor_update) 10256 { 10257 assert_spin_locked(&acrtc->base.dev->event_lock); 10258 10259 if (!acrtc->base.state->event || acrtc_state->active_planes == 0) 10260 return; 10261 10262 if (pflip_update) { 10263 WARN_ON(acrtc->pflip_status != AMDGPU_FLIP_NONE); 10264 WARN_ON(acrtc->event); 10265 10266 acrtc->pflip_status = AMDGPU_FLIP_SUBMITTED; 10267 acrtc->event = acrtc->base.state->event; 10268 acrtc->base.state->event = NULL; 10269 10270 drm_dbg_state(acrtc->base.dev, 10271 "crtc:%d, pflip_stat:AMDGPU_FLIP_SUBMITTED\n", 10272 acrtc->crtc_id); 10273 } else if (cursor_update) { 10274 acrtc->event = acrtc->base.state->event; 10275 acrtc->base.state->event = NULL; 10276 } 10277 } 10278 10279 /** 10280 * dm_arm_vblank_event_pre_programming - Prepare for programming 10281 * @acrtc: The amdgpu CRTC to prepare 10282 * @acrtc_state: The new CRTC state 10283 * @pflip_update: Whether a page flip is being programmed 10284 * @cursor_update: Whether a cursor update is being programmed 10285 * 10286 * Grab a reference on the vblank counter if a page flip or cursor update is to 10287 * be programmed. Do this before programming so the HW is not in any 10288 * idle-optimized state (such as PSR). 10289 */ 10290 static void dm_arm_vblank_event_pre_programming(struct amdgpu_crtc *acrtc, 10291 struct dm_crtc_state *acrtc_state, 10292 bool pflip_update, 10293 bool cursor_update) 10294 { 10295 assert_spin_locked(&acrtc->base.dev->event_lock); 10296 10297 if (!acrtc->base.state->event || acrtc_state->active_planes == 0) 10298 return; 10299 10300 if (pflip_update || cursor_update) 10301 drm_crtc_vblank_get(&acrtc->base); 10302 } 10303 10304 static void amdgpu_dm_commit_planes(struct drm_atomic_commit *state, 10305 struct drm_device *dev, 10306 struct amdgpu_display_manager *dm, 10307 struct drm_crtc *pcrtc, 10308 bool wait_for_vblank) 10309 { 10310 u32 i; 10311 u64 timestamp_ns = ktime_get_ns(); 10312 struct drm_plane *plane; 10313 struct drm_plane_state *old_plane_state, *new_plane_state; 10314 struct amdgpu_crtc *acrtc_attach = to_amdgpu_crtc(pcrtc); 10315 struct drm_crtc_state *new_pcrtc_state = 10316 drm_atomic_get_new_crtc_state(state, pcrtc); 10317 struct dm_crtc_state *acrtc_state = to_dm_crtc_state(new_pcrtc_state); 10318 struct dm_crtc_state *dm_old_crtc_state = 10319 to_dm_crtc_state(drm_atomic_get_old_crtc_state(state, pcrtc)); 10320 int planes_count = 0, vpos, hpos; 10321 unsigned long flags; 10322 u32 target_vblank, last_flip_vblank; 10323 bool vrr_active = amdgpu_dm_crtc_vrr_active(acrtc_state); 10324 bool cursor_update = false; 10325 bool pflip_present = false; 10326 bool immediate_flip = false; 10327 bool flip_latched_during_prog = false; 10328 bool dirty_rects_changed = false; 10329 bool updated_planes_and_streams = false; 10330 struct { 10331 struct dc_surface_update surface_updates[MAX_SURFACES]; 10332 struct dc_plane_info plane_infos[MAX_SURFACES]; 10333 struct dc_scaling_info scaling_infos[MAX_SURFACES]; 10334 struct dc_flip_addrs flip_addrs[MAX_SURFACES]; 10335 struct dc_stream_update stream_update; 10336 } *bundle; 10337 10338 bundle = kzalloc_obj(*bundle); 10339 10340 if (!bundle) { 10341 drm_err(dev, "Failed to allocate update bundle\n"); 10342 goto cleanup; 10343 } 10344 10345 /* 10346 * Disable the cursor first if we're disabling all the planes. 10347 * It'll remain on the screen after the planes are re-enabled 10348 * if we don't. 10349 * 10350 * If the cursor is transitioning from native to overlay mode, the 10351 * native cursor needs to be disabled first. 10352 */ 10353 if (acrtc_state->cursor_mode == DM_CURSOR_OVERLAY_MODE && 10354 dm_old_crtc_state->cursor_mode == DM_CURSOR_NATIVE_MODE) { 10355 struct dc_cursor_position cursor_position = {0}; 10356 10357 if (!dc_stream_set_cursor_position(acrtc_state->stream, 10358 &cursor_position)) 10359 drm_err(dev, "DC failed to disable native cursor\n"); 10360 10361 bundle->stream_update.cursor_position = 10362 &acrtc_state->stream->cursor_position; 10363 } 10364 10365 if (acrtc_state->active_planes == 0 && 10366 dm_old_crtc_state->cursor_mode == DM_CURSOR_NATIVE_MODE) 10367 amdgpu_dm_commit_cursors(state); 10368 10369 /* update planes when needed */ 10370 for_each_oldnew_plane_in_state(state, plane, old_plane_state, new_plane_state, i) { 10371 struct drm_crtc *crtc = new_plane_state->crtc; 10372 struct drm_crtc_state *new_crtc_state; 10373 struct drm_framebuffer *fb = new_plane_state->fb; 10374 struct amdgpu_framebuffer *afb = (struct amdgpu_framebuffer *)fb; 10375 bool plane_needs_flip; 10376 struct dc_plane_state *dc_plane; 10377 struct dm_plane_state *dm_new_plane_state = to_dm_plane_state(new_plane_state); 10378 10379 /* Cursor plane is handled after stream updates */ 10380 if (plane->type == DRM_PLANE_TYPE_CURSOR && 10381 acrtc_state->cursor_mode == DM_CURSOR_NATIVE_MODE) { 10382 if ((fb && crtc == pcrtc) || 10383 (old_plane_state->fb && old_plane_state->crtc == pcrtc)) { 10384 cursor_update = true; 10385 if (amdgpu_ip_version(dm->adev, DCE_HWIP, 0) != 0) 10386 amdgpu_dm_update_cursor(plane, old_plane_state, &bundle->stream_update); 10387 } 10388 10389 continue; 10390 } 10391 10392 if (!fb || !crtc || pcrtc != crtc) 10393 continue; 10394 10395 new_crtc_state = drm_atomic_get_new_crtc_state(state, crtc); 10396 if (!new_crtc_state->active) 10397 continue; 10398 10399 dc_plane = dm_new_plane_state->dc_state; 10400 if (!dc_plane) 10401 continue; 10402 10403 bundle->surface_updates[planes_count].surface = dc_plane; 10404 if (new_pcrtc_state->color_mgmt_changed || new_plane_state->color_mgmt_changed) { 10405 bundle->surface_updates[planes_count].gamma = &dc_plane->gamma_correction; 10406 bundle->surface_updates[planes_count].in_transfer_func = &dc_plane->in_transfer_func; 10407 bundle->surface_updates[planes_count].gamut_remap_matrix = &dc_plane->gamut_remap_matrix; 10408 bundle->surface_updates[planes_count].hdr_mult = dc_plane->hdr_mult; 10409 bundle->surface_updates[planes_count].func_shaper = &dc_plane->in_shaper_func; 10410 bundle->surface_updates[planes_count].lut3d_func = &dc_plane->lut3d_func; 10411 bundle->surface_updates[planes_count].blend_tf = &dc_plane->blend_tf; 10412 } 10413 10414 amdgpu_dm_plane_fill_dc_scaling_info(dm->adev, new_plane_state, 10415 &bundle->scaling_infos[planes_count]); 10416 10417 bundle->surface_updates[planes_count].scaling_info = 10418 &bundle->scaling_infos[planes_count]; 10419 10420 plane_needs_flip = old_plane_state->fb && new_plane_state->fb; 10421 10422 pflip_present = pflip_present || plane_needs_flip; 10423 10424 if (!plane_needs_flip) { 10425 planes_count += 1; 10426 continue; 10427 } 10428 10429 fill_dc_plane_info_and_addr( 10430 dm->adev, new_plane_state, 10431 afb->tiling_flags, 10432 &bundle->plane_infos[planes_count], 10433 &bundle->flip_addrs[planes_count].address, 10434 afb->tmz_surface); 10435 10436 drm_dbg_state(state->dev, "plane: id=%d dcc_en=%d\n", 10437 new_plane_state->plane->index, 10438 bundle->plane_infos[planes_count].dcc.enable); 10439 10440 bundle->surface_updates[planes_count].plane_info = 10441 &bundle->plane_infos[planes_count]; 10442 10443 if (acrtc_state->stream->link->psr_settings.psr_feature_enabled || 10444 acrtc_state->stream->link->replay_settings.replay_feature_enabled) { 10445 fill_dc_dirty_rects(plane, old_plane_state, 10446 new_plane_state, new_crtc_state, 10447 &bundle->flip_addrs[planes_count], 10448 acrtc_state->stream->link->psr_settings.psr_version == 10449 DC_PSR_VERSION_SU_1, 10450 &dirty_rects_changed); 10451 10452 /* 10453 * If the dirty regions changed, PSR-SU need to be disabled temporarily 10454 * and enabled it again after dirty regions are stable to avoid video glitch. 10455 * PSR-SU will be enabled in 10456 * amdgpu_dm_crtc_vblank_control_worker() if user 10457 * pause the video during the PSR-SU was disabled. 10458 */ 10459 if (acrtc_state->stream->link->psr_settings.psr_version >= DC_PSR_VERSION_SU_1 && 10460 acrtc_attach->dm_irq_params.allow_sr_entry && 10461 dirty_rects_changed) { 10462 mutex_lock(&dm->dc_lock); 10463 acrtc_state->stream->link->psr_settings.psr_dirty_rects_change_timestamp_ns = 10464 timestamp_ns; 10465 dc_exit_ips_for_hw_access(dm->dc); 10466 amdgpu_dm_psr_set_event(dm, acrtc_state->stream, true, 10467 psr_event_hw_programming, true); 10468 mutex_unlock(&dm->dc_lock); 10469 } 10470 } 10471 10472 /* 10473 * Only allow immediate flips for fast updates that don't 10474 * change memory domain, FB pitch, DCC state, rotation or 10475 * mirroring. 10476 * 10477 * dm_crtc_helper_atomic_check() only accepts async flips with 10478 * fast updates. 10479 */ 10480 if (crtc->state->async_flip && 10481 (acrtc_state->update_type != UPDATE_TYPE_FAST || 10482 get_mem_type(old_plane_state->fb) != get_mem_type(fb))) 10483 drm_warn_once(state->dev, 10484 "[PLANE:%d:%s] async flip with non-fast update\n", 10485 plane->base.id, plane->name); 10486 10487 bundle->flip_addrs[planes_count].flip_immediate = 10488 crtc->state->async_flip && 10489 acrtc_state->update_type == UPDATE_TYPE_FAST && 10490 get_mem_type(old_plane_state->fb) == get_mem_type(fb); 10491 10492 immediate_flip |= bundle->flip_addrs[planes_count].flip_immediate; 10493 10494 timestamp_ns = ktime_get_ns(); 10495 bundle->flip_addrs[planes_count].flip_timestamp_in_us = div_u64(timestamp_ns, 1000); 10496 bundle->surface_updates[planes_count].flip_addr = &bundle->flip_addrs[planes_count]; 10497 bundle->surface_updates[planes_count].surface = dc_plane; 10498 10499 if (!bundle->surface_updates[planes_count].surface) { 10500 drm_err(dev, "No surface for CRTC: id=%d\n", 10501 acrtc_attach->crtc_id); 10502 continue; 10503 } 10504 10505 if (plane == pcrtc->primary) 10506 update_freesync_state_on_stream( 10507 dm, 10508 acrtc_state, 10509 acrtc_state->stream, 10510 dc_plane, 10511 bundle->flip_addrs[planes_count].flip_timestamp_in_us); 10512 10513 drm_dbg_state(state->dev, "%s Flipping to hi: 0x%x, low: 0x%x\n", 10514 __func__, 10515 bundle->flip_addrs[planes_count].address.grph.addr.high_part, 10516 bundle->flip_addrs[planes_count].address.grph.addr.low_part); 10517 10518 planes_count += 1; 10519 10520 } 10521 10522 if (pflip_present) { 10523 if (!vrr_active) { 10524 /* Use old throttling in non-vrr fixed refresh rate mode 10525 * to keep flip scheduling based on target vblank counts 10526 * working in a backwards compatible way, e.g., for 10527 * clients using the GLX_OML_sync_control extension or 10528 * DRI3/Present extension with defined target_msc. 10529 */ 10530 last_flip_vblank = amdgpu_get_vblank_counter_kms(pcrtc); 10531 } else { 10532 /* For variable refresh rate mode only: 10533 * Get vblank of last completed flip to avoid > 1 vrr 10534 * flips per video frame by use of throttling, but allow 10535 * flip programming anywhere in the possibly large 10536 * variable vrr vblank interval for fine-grained flip 10537 * timing control and more opportunity to avoid stutter 10538 * on late submission of flips. 10539 */ 10540 spin_lock_irqsave(&pcrtc->dev->event_lock, flags); 10541 last_flip_vblank = acrtc_attach->dm_irq_params.last_flip_vblank; 10542 spin_unlock_irqrestore(&pcrtc->dev->event_lock, flags); 10543 } 10544 10545 target_vblank = last_flip_vblank + wait_for_vblank; 10546 10547 /* 10548 * Wait until we're out of the vertical blank period before the one 10549 * targeted by the flip 10550 */ 10551 while ((acrtc_attach->enabled && 10552 (amdgpu_display_get_crtc_scanoutpos(dm->ddev, acrtc_attach->crtc_id, 10553 0, &vpos, &hpos, NULL, 10554 NULL, &pcrtc->hwmode) 10555 & (DRM_SCANOUTPOS_VALID | DRM_SCANOUTPOS_IN_VBLANK)) == 10556 (DRM_SCANOUTPOS_VALID | DRM_SCANOUTPOS_IN_VBLANK) && 10557 (int)(target_vblank - 10558 amdgpu_get_vblank_counter_kms(pcrtc)) > 0)) { 10559 usleep_range(1000, 1100); 10560 } 10561 10562 if (acrtc_state->stream) { 10563 if (acrtc_state->freesync_vrr_info_changed) 10564 bundle->stream_update.vrr_infopacket = 10565 &acrtc_state->stream->vrr_infopacket; 10566 } 10567 } 10568 10569 scoped_guard(spinlock_irqsave, &pcrtc->dev->event_lock) { 10570 dm_arm_vblank_event_pre_programming(acrtc_attach, acrtc_state, 10571 pflip_present, 10572 cursor_update); 10573 /* 10574 * DCE depends on a combination of GRPH_FLIP, VLINE0, and 10575 * VUPDATE for event delivery. Only GRPH_FLIP handler can send 10576 * pflip events, and it only fires if HW latched to the flip. 10577 * Maintain legacy behavior by arming event before programming. 10578 */ 10579 if (amdgpu_ip_version(dm->adev, DCE_HWIP, 0) == 0) { 10580 dm_arm_vblank_event(acrtc_attach, acrtc_state, 10581 pflip_present, cursor_update); 10582 } 10583 } 10584 10585 /* Update the planes if changed or disable if we don't have any. */ 10586 if ((planes_count || acrtc_state->active_planes == 0) && 10587 acrtc_state->stream) { 10588 /* 10589 * If PSR or idle optimizations are enabled then flush out 10590 * any pending work before hardware programming. 10591 */ 10592 if (dm->vblank_control_workqueue) 10593 flush_workqueue(dm->vblank_control_workqueue); 10594 10595 bundle->stream_update.stream = acrtc_state->stream; 10596 if (new_pcrtc_state->mode_changed) { 10597 bundle->stream_update.src = acrtc_state->stream->src; 10598 bundle->stream_update.dst = acrtc_state->stream->dst; 10599 } 10600 10601 if (new_pcrtc_state->color_mgmt_changed) { 10602 /* 10603 * TODO: This isn't fully correct since we've actually 10604 * already modified the stream in place. 10605 */ 10606 bundle->stream_update.gamut_remap = 10607 &acrtc_state->stream->gamut_remap_matrix; 10608 bundle->stream_update.output_csc_transform = 10609 &acrtc_state->stream->csc_color_matrix; 10610 bundle->stream_update.out_transfer_func = 10611 &acrtc_state->stream->out_transfer_func; 10612 bundle->stream_update.lut3d_func = 10613 (struct dc_3dlut *) acrtc_state->stream->lut3d_func; 10614 bundle->stream_update.func_shaper = 10615 (struct dc_transfer_func *) acrtc_state->stream->func_shaper; 10616 } 10617 10618 acrtc_state->stream->abm_level = acrtc_state->abm_level; 10619 if (acrtc_state->abm_level != dm_old_crtc_state->abm_level) 10620 bundle->stream_update.abm_level = &acrtc_state->abm_level; 10621 10622 /* 10623 * If FreeSync state on the stream has changed then we need to 10624 * re-adjust the min/max bounds now that DC doesn't handle this 10625 * as part of commit. 10626 */ 10627 if (is_dc_timing_adjust_needed(dm_old_crtc_state, acrtc_state)) { 10628 spin_lock_irqsave(&pcrtc->dev->event_lock, flags); 10629 dc_stream_adjust_vmin_vmax( 10630 dm->dc, acrtc_state->stream, 10631 &acrtc_attach->dm_irq_params.vrr_params.adjust); 10632 spin_unlock_irqrestore(&pcrtc->dev->event_lock, flags); 10633 } 10634 mutex_lock(&dm->dc_lock); 10635 update_planes_and_stream_adapter(dm->dc, 10636 acrtc_state->update_type, 10637 planes_count, 10638 acrtc_state->stream, 10639 &bundle->stream_update, 10640 bundle->surface_updates); 10641 updated_planes_and_streams = true; 10642 10643 /** 10644 * Enable or disable the interrupts on the backend. 10645 * 10646 * Most pipes are put into power gating when unused. 10647 * 10648 * When power gating is enabled on a pipe we lose the 10649 * interrupt enablement state when power gating is disabled. 10650 * 10651 * So we need to update the IRQ control state in hardware 10652 * whenever the pipe turns on (since it could be previously 10653 * power gated) or off (since some pipes can't be power gated 10654 * on some ASICs). 10655 */ 10656 if (dm_old_crtc_state->active_planes != acrtc_state->active_planes) 10657 dm_update_pflip_irq_state(drm_to_adev(dev), 10658 acrtc_attach); 10659 amdgpu_dm_enable_self_refresh(dm, acrtc_attach, acrtc_state, 10660 timestamp_ns); 10661 mutex_unlock(&dm->dc_lock); 10662 } 10663 10664 /* 10665 * Update cursor state *after* programming all the planes. 10666 * This avoids redundant programming in the case where we're going 10667 * to be disabling a single plane - those pipes are being disabled. 10668 */ 10669 if (acrtc_state->active_planes && 10670 (!updated_planes_and_streams || amdgpu_ip_version(dm->adev, DCE_HWIP, 0) == 0) && 10671 acrtc_state->cursor_mode == DM_CURSOR_NATIVE_MODE) 10672 amdgpu_dm_commit_cursors(state); 10673 10674 /* 10675 * DCN specific vblank handling 10676 * ============================ 10677 * 10678 * With the event_lock held, arm the vblank event, and determine whether 10679 * deliver it immediately, or in VUPDATE_NO_LOCK IRQ (i.e. HW latch 10680 * point) handler. Do this *after* programming so that the IRQ handler 10681 * will not deliver the event before HW laches onto the programmed 10682 * values: 10683 * 10684 * Commit thread IRQ handler HW 10685 * ----------------------------------------------------------------- 10686 * arm_vblank_event() 10687 * vupdate() 10688 * vupdate_handler() 10689 * cook_timestamp() 10690 * # prev flip already latched, 10691 * # so flip_latched == true. 10692 * if event_armed && flip_latched: 10693 * send_vblank_event() 10694 * # sent before latch, **BAD!** 10695 * hw_program() 10696 * vupdate() 10697 * **latch** 10698 * 10699 * There's a consequence of arming after: it's possible for HW to latch 10700 * between start of HW programming and acrtc->event/pflip_status arming. 10701 * When this happens, the IRQ handler will send the event on the next 10702 * immediate latch point, even though HW has already latched. This is 10703 * handled by optimistically checking for HW latch after programming, 10704 * and if latched, send the event immediately: 10705 * 10706 * Commit thread IRQ handler HW 10707 * ----------------------------------------------------------------- 10708 * hw_program() 10709 * vupdate() 10710 * **latch** 10711 * vupdate_handler() 10712 * cook_timestamp() 10713 * # event_armed == false 10714 * # **no event sent!** 10715 * arm_vblank_event() 10716 * if flip_latched: 10717 * **send_vblank_event()** 10718 * disarm_vblank_event() 10719 * 10720 * The IRQ handler is expected to cook the timestamp, but we need to 10721 * cook the timestamp before optimistic sending as well. That's because 10722 * the following sequence is possible: 10723 * 10724 * Commit thread IRQ handler HW 10725 * ----------------------------------------------------------------- 10726 * hw_program() 10727 * arm_vblank_event() 10728 * vupdate() 10729 * **latch** 10730 * if flip_latched: 10731 * # Need cook before send! 10732 * **cook_timestamp()** 10733 * send_vblank_event() 10734 * disarm_vblank_event() 10735 * vupdate_handler() 10736 * cook_timestamp() 10737 * # event_armed == false 10738 * # no event sent! 10739 * 10740 * Cooking twice is OK, since DRM scanout accurate timestamps report A) 10741 * the previous vactive start if currently in vactive, or B) the next 10742 * vactive start if currently in vblank (see &get_vblank_counter). 'A)' 10743 * is what we want for the optimistic send, and for 'B)', we'll cook a 10744 * timestamp no later than the next IRQ handler run. 10745 * 10746 * The more correct fix is to wrap programming and arming with the 10747 * event_lock and thus serializing it with the IRQ handler. However, 10748 * there are various sleep-waits within 10749 * update_planes_and_stream_adapter() that makes spin locking illegal. 10750 * And on full updates, it can take 1-2 frame-times to return (see 10751 * commit_planes_for_stream). 10752 * 10753 * On DCE, GRPH_PFLIP IRQ is used and takes care of this. 10754 */ 10755 if (amdgpu_ip_version(dm->adev, DCE_HWIP, 0) != 0) { 10756 spin_lock_irqsave(&pcrtc->dev->event_lock, flags); 10757 10758 if (updated_planes_and_streams) { 10759 flip_latched_during_prog = 10760 !dc_get_flip_pending_on_otg(dm->dc, acrtc_attach->otg_inst); 10761 } 10762 10763 dm_arm_vblank_event(acrtc_attach, acrtc_state, 10764 pflip_present, cursor_update); 10765 10766 /* 10767 * Deliver the event immediately on immediate flip, or on a 10768 * update that has already latched. 10769 */ 10770 if ((immediate_flip || flip_latched_during_prog) && 10771 acrtc_attach->pflip_status == AMDGPU_FLIP_SUBMITTED && 10772 acrtc_attach->event) { 10773 drm_crtc_accurate_vblank_count(&acrtc_attach->base); 10774 drm_crtc_send_vblank_event(&acrtc_attach->base, 10775 acrtc_attach->event); 10776 acrtc_attach->event = NULL; 10777 drm_crtc_vblank_put(&acrtc_attach->base); 10778 acrtc_attach->pflip_status = AMDGPU_FLIP_NONE; 10779 } 10780 spin_unlock_irqrestore(&pcrtc->dev->event_lock, flags); 10781 } 10782 10783 cleanup: 10784 kfree(bundle); 10785 } 10786 10787 static void amdgpu_dm_commit_audio(struct drm_device *dev, 10788 struct drm_atomic_commit *state) 10789 { 10790 struct amdgpu_device *adev = drm_to_adev(dev); 10791 struct amdgpu_dm_connector *aconnector; 10792 struct drm_connector *connector; 10793 struct drm_connector_state *old_con_state, *new_con_state; 10794 struct drm_crtc_state *new_crtc_state; 10795 struct dm_crtc_state *new_dm_crtc_state; 10796 const struct dc_stream_status *status; 10797 int i, inst; 10798 10799 /* Notify device removals. */ 10800 for_each_oldnew_connector_in_state(state, connector, old_con_state, new_con_state, i) { 10801 if (old_con_state->crtc != new_con_state->crtc) { 10802 /* CRTC changes require notification. */ 10803 goto notify; 10804 } 10805 10806 if (!new_con_state->crtc) 10807 continue; 10808 10809 new_crtc_state = drm_atomic_get_new_crtc_state( 10810 state, new_con_state->crtc); 10811 10812 if (!new_crtc_state) 10813 continue; 10814 10815 if (!drm_atomic_crtc_needs_modeset(new_crtc_state)) 10816 continue; 10817 10818 notify: 10819 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 10820 continue; 10821 10822 aconnector = to_amdgpu_dm_connector(connector); 10823 10824 mutex_lock(&adev->dm.audio_lock); 10825 inst = aconnector->audio_inst; 10826 aconnector->audio_inst = -1; 10827 mutex_unlock(&adev->dm.audio_lock); 10828 10829 amdgpu_dm_audio_eld_notify(adev, inst); 10830 } 10831 10832 /* Notify audio device additions. */ 10833 for_each_new_connector_in_state(state, connector, new_con_state, i) { 10834 if (!new_con_state->crtc) 10835 continue; 10836 10837 new_crtc_state = drm_atomic_get_new_crtc_state( 10838 state, new_con_state->crtc); 10839 10840 if (!new_crtc_state) 10841 continue; 10842 10843 if (!drm_atomic_crtc_needs_modeset(new_crtc_state)) 10844 continue; 10845 10846 new_dm_crtc_state = to_dm_crtc_state(new_crtc_state); 10847 if (!new_dm_crtc_state->stream) 10848 continue; 10849 10850 status = dc_stream_get_status(new_dm_crtc_state->stream); 10851 if (!status) 10852 continue; 10853 10854 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 10855 continue; 10856 10857 aconnector = to_amdgpu_dm_connector(connector); 10858 10859 mutex_lock(&adev->dm.audio_lock); 10860 inst = status->audio_inst; 10861 aconnector->audio_inst = inst; 10862 mutex_unlock(&adev->dm.audio_lock); 10863 10864 amdgpu_dm_audio_eld_notify(adev, inst); 10865 } 10866 } 10867 10868 /* 10869 * amdgpu_dm_crtc_copy_transient_flags - copy mirrored flags from DRM to DC 10870 * @crtc_state: the DRM CRTC state 10871 * @stream_state: the DC stream state. 10872 * 10873 * Copy the mirrored transient state flags from DRM, to DC. It is used to bring 10874 * a dc_stream_state's flags in sync with a drm_crtc_state's flags. 10875 */ 10876 static void amdgpu_dm_crtc_copy_transient_flags(struct drm_crtc_state *crtc_state, 10877 struct dc_stream_state *stream_state) 10878 { 10879 stream_state->mode_changed = drm_atomic_crtc_needs_modeset(crtc_state); 10880 } 10881 10882 static void dm_clear_writeback(struct amdgpu_display_manager *dm, 10883 struct dm_crtc_state *crtc_state) 10884 { 10885 dc_stream_remove_writeback(dm->dc, crtc_state->stream, 0); 10886 } 10887 10888 /** 10889 * amdgpu_dm_mod_power_update_streams - update mod_power stream state on modeset 10890 * @state: the drm atomic state 10891 * @dm: the display manager to update mod_power on 10892 * 10893 * Notify mod_power of stream changes on modeset events, and disable PSR/Replay 10894 * in preparation for hardware programming. See also 10895 * amdgpu_dm_mod_power_setup_streams() for post-modeset mod_power setup. 10896 */ 10897 static void amdgpu_dm_mod_power_update_streams(struct drm_atomic_commit *state, 10898 struct amdgpu_display_manager *dm) 10899 { 10900 struct dm_crtc_state *dm_old_crtc_state, *dm_new_crtc_state; 10901 struct drm_crtc_state *old_crtc_state, *new_crtc_state; 10902 struct amdgpu_dm_connector *aconnector; 10903 struct drm_crtc *crtc; 10904 int i = 0; 10905 10906 for_each_oldnew_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state, i) { 10907 dm_old_crtc_state = to_dm_crtc_state(old_crtc_state); 10908 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 10909 10910 if (!drm_atomic_crtc_needs_modeset(new_crtc_state)) 10911 continue; 10912 10913 /* 10914 * Update mod_power on modeset event in preparation for hw 10915 * programming. Always use the old stream, since it would have 10916 * been previously added to mod_power. If old stream is null (on 10917 * crtc enable, for example), mod_power will no-op, which is the 10918 * desried behavior. 10919 */ 10920 if (old_crtc_state->active) { 10921 scoped_guard(mutex, &dm->dc_lock) { 10922 dc_exit_ips_for_hw_access(dm->dc); 10923 amdgpu_dm_psr_set_event(dm, dm_old_crtc_state->stream, true, 10924 psr_event_hw_programming, true); 10925 amdgpu_dm_replay_set_event(dm, dm_old_crtc_state->stream, true, 10926 replay_event_hw_programming, true); 10927 amdgpu_dm_replay_set_event(dm, dm_old_crtc_state->stream, false, 10928 replay_event_general_ui, false); 10929 } 10930 } 10931 10932 if (new_crtc_state->active) { 10933 aconnector = (struct amdgpu_dm_connector *) 10934 dm_new_crtc_state->stream->dm_stream_context; 10935 if (old_crtc_state->active) { 10936 mod_power_replace_stream(dm->power_module, 10937 dm_old_crtc_state->stream, 10938 dm_new_crtc_state->stream, 10939 &aconnector->psr_caps); 10940 } else { 10941 mod_power_add_stream(dm->power_module, 10942 dm_new_crtc_state->stream, 10943 &aconnector->psr_caps); 10944 } 10945 } else if (old_crtc_state->active) { 10946 mod_power_remove_stream(dm->power_module, 10947 dm_old_crtc_state->stream); 10948 } 10949 } 10950 } 10951 10952 /** 10953 * amdgpu_dm_mod_power_setup_streams - setup mod_power stream state post modeset 10954 * @state: the drm atomic state 10955 * @dm: the display manager to update mod_power on 10956 * 10957 * Notify mod_power of mode_change. This needs to be done after dc_stream 10958 * updates have been committed, and VRR parameters have been updated. 10959 */ 10960 static void amdgpu_dm_mod_power_setup_streams(struct drm_atomic_commit *state, 10961 struct amdgpu_display_manager *dm) 10962 { 10963 struct dm_crtc_state *dm_new_crtc_state; 10964 struct drm_crtc_state *new_crtc_state; 10965 struct amdgpu_crtc *acrtc; 10966 struct drm_crtc *crtc; 10967 int i = 0; 10968 10969 for_each_new_crtc_in_state(state, crtc, new_crtc_state, i) { 10970 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 10971 acrtc = to_amdgpu_crtc(crtc); 10972 10973 if (!drm_atomic_crtc_needs_modeset(new_crtc_state)) 10974 continue; 10975 10976 if (new_crtc_state->active) { 10977 amdgpu_dm_link_setup_replay(dm_new_crtc_state->stream, 10978 &acrtc->dm_irq_params.vrr_params); 10979 mod_power_notify_mode_change(dm->power_module, 10980 dm_new_crtc_state->stream, 10981 false); 10982 10983 /* 10984 * Block PSR / Replay on the new stream until display settles post-modeset. 10985 * These events will be cleared by amdgpu_dm_enable_self_refresh() once 10986 * allow_sr_entry becomes true. 10987 */ 10988 amdgpu_dm_psr_set_event(dm, dm_new_crtc_state->stream, true, 10989 psr_event_hw_programming, true); 10990 10991 amdgpu_dm_replay_set_event(dm, dm_new_crtc_state->stream, true, 10992 replay_event_hw_programming | replay_event_general_ui, 10993 true); 10994 } 10995 } 10996 10997 } 10998 10999 static void amdgpu_dm_commit_streams(struct drm_atomic_commit *state, 11000 struct dc_state *dc_state) 11001 { 11002 struct drm_device *dev = state->dev; 11003 struct amdgpu_device *adev = drm_to_adev(dev); 11004 struct amdgpu_display_manager *dm = &adev->dm; 11005 struct drm_crtc *crtc; 11006 struct drm_crtc_state *old_crtc_state, *new_crtc_state; 11007 struct dm_crtc_state *dm_old_crtc_state, *dm_new_crtc_state; 11008 struct drm_connector_state *old_con_state; 11009 struct drm_connector *connector; 11010 bool mode_set_reset_required = false; 11011 u32 i; 11012 struct dc_commit_streams_params params = {dc_state->streams, dc_state->stream_count}; 11013 bool set_backlight_level = false; 11014 11015 /* Disable writeback */ 11016 for_each_old_connector_in_state(state, connector, old_con_state, i) { 11017 struct dm_connector_state *dm_old_con_state; 11018 struct amdgpu_crtc *acrtc; 11019 11020 if (connector->connector_type != DRM_MODE_CONNECTOR_WRITEBACK) 11021 continue; 11022 11023 old_crtc_state = NULL; 11024 11025 dm_old_con_state = to_dm_connector_state(old_con_state); 11026 if (!dm_old_con_state->base.crtc) 11027 continue; 11028 11029 acrtc = to_amdgpu_crtc(dm_old_con_state->base.crtc); 11030 if (acrtc) 11031 old_crtc_state = drm_atomic_get_old_crtc_state(state, &acrtc->base); 11032 11033 if (!acrtc || !acrtc->wb_enabled) 11034 continue; 11035 11036 dm_old_crtc_state = to_dm_crtc_state(old_crtc_state); 11037 11038 dm_clear_writeback(dm, dm_old_crtc_state); 11039 acrtc->wb_enabled = false; 11040 } 11041 11042 amdgpu_dm_mod_power_update_streams(state, dm); 11043 11044 for_each_oldnew_crtc_in_state(state, crtc, old_crtc_state, 11045 new_crtc_state, i) { 11046 struct amdgpu_crtc *acrtc = to_amdgpu_crtc(crtc); 11047 11048 dm_old_crtc_state = to_dm_crtc_state(old_crtc_state); 11049 11050 if (old_crtc_state->active && 11051 (!new_crtc_state->active || 11052 drm_atomic_crtc_needs_modeset(new_crtc_state))) { 11053 manage_dm_interrupts(adev, acrtc, NULL); 11054 dc_stream_release(dm_old_crtc_state->stream); 11055 } 11056 } 11057 11058 drm_atomic_helper_calc_timestamping_constants(state); 11059 11060 /* update changed items */ 11061 for_each_oldnew_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state, i) { 11062 struct amdgpu_crtc *acrtc = to_amdgpu_crtc(crtc); 11063 11064 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 11065 dm_old_crtc_state = to_dm_crtc_state(old_crtc_state); 11066 11067 drm_dbg_state(state->dev, 11068 "amdgpu_crtc id:%d crtc_state_flags: enable:%d, active:%d, planes_changed:%d, mode_changed:%d,active_changed:%d,connectors_changed:%d\n", 11069 acrtc->crtc_id, 11070 new_crtc_state->enable, 11071 new_crtc_state->active, 11072 new_crtc_state->planes_changed, 11073 new_crtc_state->mode_changed, 11074 new_crtc_state->active_changed, 11075 new_crtc_state->connectors_changed); 11076 11077 /* Disable cursor if disabling crtc */ 11078 if (old_crtc_state->active && !new_crtc_state->active) { 11079 struct dc_cursor_position position; 11080 11081 memset(&position, 0, sizeof(position)); 11082 mutex_lock(&dm->dc_lock); 11083 dc_exit_ips_for_hw_access(dm->dc); 11084 dc_stream_program_cursor_position(dm_old_crtc_state->stream, &position); 11085 mutex_unlock(&dm->dc_lock); 11086 } 11087 11088 /* Copy all transient state flags into dc state */ 11089 if (dm_new_crtc_state->stream) { 11090 amdgpu_dm_crtc_copy_transient_flags(&dm_new_crtc_state->base, 11091 dm_new_crtc_state->stream); 11092 } 11093 11094 /* handles headless hotplug case, updating new_state and 11095 * aconnector as needed 11096 */ 11097 11098 if (amdgpu_dm_crtc_modeset_required(new_crtc_state, dm_new_crtc_state->stream, dm_old_crtc_state->stream)) { 11099 11100 drm_dbg_atomic(dev, 11101 "Atomic commit: SET crtc id %d: [%p]\n", 11102 acrtc->crtc_id, acrtc); 11103 11104 if (!dm_new_crtc_state->stream) { 11105 /* 11106 * this could happen because of issues with 11107 * userspace notifications delivery. 11108 * In this case userspace tries to set mode on 11109 * display which is disconnected in fact. 11110 * dc_sink is NULL in this case on aconnector. 11111 * We expect reset mode will come soon. 11112 * 11113 * This can also happen when unplug is done 11114 * during resume sequence ended 11115 * 11116 * In this case, we want to pretend we still 11117 * have a sink to keep the pipe running so that 11118 * hw state is consistent with the sw state 11119 */ 11120 drm_dbg_atomic(dev, 11121 "Failed to create new stream for crtc %d\n", 11122 acrtc->base.base.id); 11123 continue; 11124 } 11125 11126 if (dm_old_crtc_state->stream) 11127 remove_stream(adev, acrtc, dm_old_crtc_state->stream); 11128 11129 pm_runtime_get_noresume(dev->dev); 11130 11131 acrtc->enabled = true; 11132 acrtc->hw_mode = new_crtc_state->mode; 11133 crtc->hwmode = new_crtc_state->mode; 11134 mode_set_reset_required = true; 11135 set_backlight_level = true; 11136 } else if (modereset_required(new_crtc_state)) { 11137 drm_dbg_atomic(dev, 11138 "Atomic commit: RESET. crtc id %d:[%p]\n", 11139 acrtc->crtc_id, acrtc); 11140 /* i.e. reset mode */ 11141 if (dm_old_crtc_state->stream) 11142 remove_stream(adev, acrtc, dm_old_crtc_state->stream); 11143 11144 mode_set_reset_required = true; 11145 } 11146 } /* for_each_crtc_in_state() */ 11147 11148 /* if there mode set or reset, flush vblank work queue */ 11149 if (mode_set_reset_required) { 11150 if (dm->vblank_control_workqueue) 11151 flush_workqueue(dm->vblank_control_workqueue); 11152 } 11153 11154 dm_enable_per_frame_crtc_master_sync(dc_state); 11155 mutex_lock(&dm->dc_lock); 11156 dc_exit_ips_for_hw_access(dm->dc); 11157 WARN_ON(!dc_commit_streams(dm->dc, ¶ms)); 11158 11159 bool frl_stream_found = false; 11160 11161 for (i = 0; i < params.stream_count; i++) { 11162 struct dc_stream_state *stream = params.streams[i]; 11163 11164 if (stream->signal == SIGNAL_TYPE_HDMI_FRL) { 11165 frl_stream_found = true; 11166 break; 11167 } 11168 } 11169 if (frl_stream_found) { 11170 if (queue_delayed_work(dm->hdmi_frl_status_polling_wq, 11171 &dm->hdmi_frl_status_polling_work, 11172 msecs_to_jiffies(dm->hdmi_frl_status_polling_delay_ms))) 11173 drm_dbg_kms(dev, "200ms frl status polling starts ...\n"); 11174 } else { 11175 if (cancel_delayed_work_sync(&dm->hdmi_frl_status_polling_work)) 11176 drm_dbg_kms(dev, "200ms frl status polling stops ...\n"); 11177 } 11178 /* Allow idle optimization when vblank count is 0 for display off */ 11179 if ((dm->active_vblank_irq_count == 0) && amdgpu_dm_is_headless(dm->adev)) 11180 dc_allow_idle_optimizations(dm->dc, true); 11181 mutex_unlock(&dm->dc_lock); 11182 11183 for_each_new_crtc_in_state(state, crtc, new_crtc_state, i) { 11184 struct amdgpu_crtc *acrtc = to_amdgpu_crtc(crtc); 11185 11186 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 11187 11188 if (dm_new_crtc_state->stream != NULL) { 11189 const struct dc_stream_status *status = 11190 dc_stream_get_status(dm_new_crtc_state->stream); 11191 11192 if (!status) 11193 status = dc_state_get_stream_status(dc_state, 11194 dm_new_crtc_state->stream); 11195 if (!status) 11196 drm_err(dev, 11197 "got no status for stream %p on acrtc%p\n", 11198 dm_new_crtc_state->stream, acrtc); 11199 else 11200 acrtc->otg_inst = status->primary_otg_inst; 11201 } 11202 } 11203 11204 /* During boot up and resume the DC layer will reset the panel brightness 11205 * to fix a flicker issue. 11206 * It will cause the dm->actual_brightness is not the current panel brightness 11207 * level. (the dm->brightness is the correct panel level) 11208 * So we set the backlight level with dm->brightness value after set mode 11209 */ 11210 if (set_backlight_level) { 11211 for (i = 0; i < dm->num_of_edps; i++) { 11212 if (dm->backlight_dev[i]) 11213 amdgpu_dm_backlight_set_level(dm, i, dm->brightness[i]); 11214 } 11215 } 11216 } 11217 11218 static void dm_set_writeback(struct amdgpu_display_manager *dm, 11219 struct dm_crtc_state *crtc_state, 11220 struct drm_connector *connector, 11221 struct drm_connector_state *new_con_state) 11222 { 11223 struct drm_writeback_connector *wb_conn = drm_connector_to_writeback(connector); 11224 struct amdgpu_device *adev = dm->adev; 11225 struct amdgpu_crtc *acrtc; 11226 struct dc_writeback_info *wb_info; 11227 struct pipe_ctx *pipe = NULL; 11228 struct amdgpu_framebuffer *afb; 11229 int i = 0; 11230 11231 wb_info = kzalloc_obj(*wb_info); 11232 if (!wb_info) { 11233 drm_err(adev_to_drm(adev), "Failed to allocate wb_info\n"); 11234 return; 11235 } 11236 11237 acrtc = to_amdgpu_crtc(wb_conn->encoder.crtc); 11238 if (!acrtc) { 11239 drm_err(adev_to_drm(adev), "no amdgpu_crtc found\n"); 11240 kfree(wb_info); 11241 return; 11242 } 11243 11244 afb = to_amdgpu_framebuffer(new_con_state->writeback_job->fb); 11245 if (!afb) { 11246 drm_err(adev_to_drm(adev), "No amdgpu_framebuffer found\n"); 11247 kfree(wb_info); 11248 return; 11249 } 11250 11251 for (i = 0; i < MAX_PIPES; i++) { 11252 if (dm->dc->current_state->res_ctx.pipe_ctx[i].stream == crtc_state->stream) { 11253 pipe = &dm->dc->current_state->res_ctx.pipe_ctx[i]; 11254 break; 11255 } 11256 } 11257 11258 /* fill in wb_info */ 11259 wb_info->wb_enabled = true; 11260 11261 wb_info->dwb_pipe_inst = 0; 11262 wb_info->dwb_params.dwbscl_black_color = 0; 11263 wb_info->dwb_params.hdr_mult = 0x1F000; 11264 wb_info->dwb_params.csc_params.gamut_adjust_type = CM_GAMUT_ADJUST_TYPE_BYPASS; 11265 wb_info->dwb_params.csc_params.gamut_coef_format = CM_GAMUT_REMAP_COEF_FORMAT_S2_13; 11266 wb_info->dwb_params.output_depth = DWB_OUTPUT_PIXEL_DEPTH_10BPC; 11267 wb_info->dwb_params.cnv_params.cnv_out_bpc = DWB_CNV_OUT_BPC_10BPC; 11268 11269 /* width & height from crtc */ 11270 wb_info->dwb_params.cnv_params.src_width = acrtc->base.mode.crtc_hdisplay; 11271 wb_info->dwb_params.cnv_params.src_height = acrtc->base.mode.crtc_vdisplay; 11272 wb_info->dwb_params.dest_width = acrtc->base.mode.crtc_hdisplay; 11273 wb_info->dwb_params.dest_height = acrtc->base.mode.crtc_vdisplay; 11274 11275 wb_info->dwb_params.cnv_params.crop_en = false; 11276 wb_info->dwb_params.stereo_params.stereo_enabled = false; 11277 11278 wb_info->dwb_params.cnv_params.out_max_pix_val = 0x3ff; // 10 bits 11279 wb_info->dwb_params.cnv_params.out_min_pix_val = 0; 11280 wb_info->dwb_params.cnv_params.fc_out_format = DWB_OUT_FORMAT_32BPP_ARGB; 11281 wb_info->dwb_params.cnv_params.out_denorm_mode = DWB_OUT_DENORM_BYPASS; 11282 11283 wb_info->dwb_params.out_format = dwb_scaler_mode_bypass444; 11284 11285 wb_info->dwb_params.capture_rate = dwb_capture_rate_0; 11286 11287 wb_info->dwb_params.scaler_taps.h_taps = 1; 11288 wb_info->dwb_params.scaler_taps.v_taps = 1; 11289 wb_info->dwb_params.scaler_taps.h_taps_c = 1; 11290 wb_info->dwb_params.scaler_taps.v_taps_c = 1; 11291 wb_info->dwb_params.subsample_position = DWB_INTERSTITIAL_SUBSAMPLING; 11292 11293 wb_info->mcif_buf_params.luma_pitch = afb->base.pitches[0]; 11294 wb_info->mcif_buf_params.chroma_pitch = afb->base.pitches[1]; 11295 11296 for (i = 0; i < DWB_MCIF_BUF_COUNT; i++) { 11297 wb_info->mcif_buf_params.luma_address[i] = afb->address; 11298 wb_info->mcif_buf_params.chroma_address[i] = 0; 11299 } 11300 11301 wb_info->mcif_buf_params.p_vmid = 1; 11302 if (amdgpu_ip_version(adev, DCE_HWIP, 0) >= IP_VERSION(3, 0, 0)) { 11303 wb_info->mcif_warmup_params.start_address.quad_part = afb->address; 11304 wb_info->mcif_warmup_params.region_size = 11305 wb_info->mcif_buf_params.luma_pitch * wb_info->dwb_params.dest_height; 11306 } 11307 wb_info->mcif_warmup_params.p_vmid = 1; 11308 wb_info->writeback_source_plane = pipe->plane_state; 11309 11310 dc_stream_add_writeback(dm->dc, crtc_state->stream, wb_info); 11311 11312 acrtc->wb_pending = true; 11313 acrtc->wb_conn = wb_conn; 11314 drm_writeback_queue_job(wb_conn, new_con_state); 11315 } 11316 11317 static void amdgpu_dm_update_hdcp(struct drm_atomic_commit *state) 11318 { 11319 struct drm_connector_state *old_con_state, *new_con_state; 11320 struct drm_device *dev = state->dev; 11321 struct drm_connector *connector; 11322 struct amdgpu_device *adev = drm_to_adev(dev); 11323 int i; 11324 11325 if (!adev->dm.hdcp_workqueue) 11326 return; 11327 11328 for_each_oldnew_connector_in_state(state, connector, old_con_state, new_con_state, i) { 11329 struct dm_connector_state *dm_new_con_state = to_dm_connector_state(new_con_state); 11330 struct amdgpu_crtc *acrtc = to_amdgpu_crtc(dm_new_con_state->base.crtc); 11331 struct drm_crtc_state *old_crtc_state, *new_crtc_state; 11332 struct dm_crtc_state *dm_new_crtc_state; 11333 struct amdgpu_dm_connector *aconnector; 11334 11335 if (!connector || connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 11336 continue; 11337 11338 aconnector = to_amdgpu_dm_connector(connector); 11339 11340 drm_dbg(dev, "[HDCP_DM] -------------- i : %x ----------\n", i); 11341 11342 drm_dbg(dev, "[HDCP_DM] connector->index: %x connect_status: %x dpms: %x\n", 11343 connector->index, connector->status, connector->dpms); 11344 drm_dbg(dev, "[HDCP_DM] state protection old: %x new: %x\n", 11345 old_con_state->content_protection, new_con_state->content_protection); 11346 11347 if (aconnector->dc_sink) { 11348 if (aconnector->dc_sink->sink_signal != SIGNAL_TYPE_VIRTUAL && 11349 aconnector->dc_sink->sink_signal != SIGNAL_TYPE_NONE) { 11350 drm_dbg(dev, "[HDCP_DM] pipe_ctx dispname=%s\n", 11351 aconnector->dc_sink->edid_caps.display_name); 11352 } 11353 } 11354 11355 new_crtc_state = NULL; 11356 old_crtc_state = NULL; 11357 11358 if (acrtc) { 11359 new_crtc_state = drm_atomic_get_new_crtc_state(state, &acrtc->base); 11360 old_crtc_state = drm_atomic_get_old_crtc_state(state, &acrtc->base); 11361 } 11362 11363 if (old_crtc_state) 11364 drm_dbg(dev, "old crtc en: %x a: %x m: %x a-chg: %x c-chg: %x\n", 11365 old_crtc_state->enable, 11366 old_crtc_state->active, 11367 old_crtc_state->mode_changed, 11368 old_crtc_state->active_changed, 11369 old_crtc_state->connectors_changed); 11370 11371 if (new_crtc_state) 11372 drm_dbg(dev, "NEW crtc en: %x a: %x m: %x a-chg: %x c-chg: %x\n", 11373 new_crtc_state->enable, 11374 new_crtc_state->active, 11375 new_crtc_state->mode_changed, 11376 new_crtc_state->active_changed, 11377 new_crtc_state->connectors_changed); 11378 11379 11380 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 11381 11382 if (dm_new_crtc_state && dm_new_crtc_state->stream == NULL && 11383 connector->state->content_protection == DRM_MODE_CONTENT_PROTECTION_ENABLED) { 11384 hdcp_reset_display(adev->dm.hdcp_workqueue, aconnector->dc_link->link_index); 11385 new_con_state->content_protection = DRM_MODE_CONTENT_PROTECTION_DESIRED; 11386 dm_new_con_state->update_hdcp = true; 11387 continue; 11388 } 11389 11390 if (is_content_protection_different(new_crtc_state, old_crtc_state, new_con_state, 11391 old_con_state, connector, adev->dm.hdcp_workqueue)) { 11392 /* when display is unplugged from mst hub, connctor will 11393 * be destroyed within dm_dp_mst_connector_destroy. connector 11394 * hdcp perperties, like type, undesired, desired, enabled, 11395 * will be lost. So, save hdcp properties into hdcp_work within 11396 * amdgpu_dm_atomic_commit_tail. if the same display is 11397 * plugged back with same display index, its hdcp properties 11398 * will be retrieved from hdcp_work within dm_dp_mst_get_modes 11399 */ 11400 11401 bool enable_encryption = false; 11402 11403 if (new_con_state->content_protection == DRM_MODE_CONTENT_PROTECTION_DESIRED) 11404 enable_encryption = true; 11405 11406 if (aconnector->dc_link && aconnector->dc_sink && 11407 aconnector->dc_link->type == dc_connection_mst_branch) { 11408 struct hdcp_workqueue *hdcp_work = adev->dm.hdcp_workqueue; 11409 struct hdcp_workqueue *hdcp_w = 11410 &hdcp_work[aconnector->dc_link->link_index]; 11411 11412 hdcp_w->hdcp_content_type[connector->index] = 11413 new_con_state->hdcp_content_type; 11414 hdcp_w->content_protection[connector->index] = 11415 new_con_state->content_protection; 11416 } 11417 11418 if (new_crtc_state && new_crtc_state->mode_changed && 11419 new_con_state->content_protection >= DRM_MODE_CONTENT_PROTECTION_DESIRED) 11420 enable_encryption = true; 11421 11422 drm_info(dev, "[HDCP_DM] hdcp_update_display enable_encryption = %x\n", enable_encryption); 11423 11424 if (aconnector->dc_link) 11425 hdcp_update_display( 11426 adev->dm.hdcp_workqueue, aconnector->dc_link->link_index, aconnector, 11427 new_con_state->hdcp_content_type, enable_encryption); 11428 } 11429 } 11430 } 11431 11432 static int amdgpu_dm_atomic_setup_commit(struct drm_atomic_commit *state) 11433 { 11434 struct drm_crtc *crtc; 11435 struct drm_crtc_state *old_crtc_state, *new_crtc_state; 11436 struct dm_crtc_state *dm_old_crtc_state, *dm_new_crtc_state; 11437 int i, ret; 11438 11439 ret = drm_dp_mst_atomic_setup_commit(state); 11440 if (ret) 11441 return ret; 11442 11443 for_each_oldnew_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state, i) { 11444 dm_old_crtc_state = to_dm_crtc_state(old_crtc_state); 11445 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 11446 /* 11447 * Color management settings. We also update color properties 11448 * when a modeset is needed, to ensure it gets reprogrammed. 11449 */ 11450 if (dm_new_crtc_state->base.active && dm_new_crtc_state->stream && 11451 (dm_new_crtc_state->base.color_mgmt_changed || 11452 dm_old_crtc_state->regamma_tf != dm_new_crtc_state->regamma_tf || 11453 drm_atomic_crtc_needs_modeset(new_crtc_state))) { 11454 ret = amdgpu_dm_update_crtc_color_mgmt(dm_new_crtc_state); 11455 if (ret) { 11456 drm_dbg_atomic(state->dev, "Failed to update color state\n"); 11457 return ret; 11458 } 11459 } 11460 } 11461 11462 return 0; 11463 } 11464 11465 /** 11466 * amdgpu_dm_atomic_commit_tail() - AMDgpu DM's commit tail implementation. 11467 * @state: The atomic state to commit 11468 * 11469 * This will tell DC to commit the constructed DC state from atomic_check, 11470 * programming the hardware. Any failures here implies a hardware failure, since 11471 * atomic check should have filtered anything non-kosher. 11472 */ 11473 static void amdgpu_dm_atomic_commit_tail(struct drm_atomic_commit *state) 11474 { 11475 struct drm_device *dev = state->dev; 11476 struct amdgpu_device *adev = drm_to_adev(dev); 11477 struct amdgpu_display_manager *dm = &adev->dm; 11478 struct dm_atomic_state *dm_state; 11479 struct dc_state *dc_state = NULL; 11480 u32 i, j; 11481 struct drm_crtc *crtc; 11482 struct drm_crtc_state *old_crtc_state, *new_crtc_state; 11483 unsigned long flags; 11484 bool wait_for_vblank = true; 11485 struct drm_connector *connector; 11486 struct drm_connector_state *old_con_state = NULL, *new_con_state = NULL; 11487 struct dm_crtc_state *dm_old_crtc_state, *dm_new_crtc_state; 11488 int crtc_disable_count = 0; 11489 11490 trace_amdgpu_dm_atomic_commit_tail_begin(state); 11491 11492 drm_atomic_helper_update_legacy_modeset_state(dev, state); 11493 drm_dp_mst_atomic_wait_for_dependencies(state); 11494 11495 dm_state = dm_atomic_get_new_state(state); 11496 if (dm_state && dm_state->context) { 11497 dc_state = dm_state->context; 11498 amdgpu_dm_commit_streams(state, dc_state); 11499 } 11500 11501 amdgpu_dm_update_hdcp(state); 11502 11503 /* Handle connector state changes */ 11504 for_each_oldnew_connector_in_state(state, connector, old_con_state, new_con_state, i) { 11505 struct dm_connector_state *dm_new_con_state = to_dm_connector_state(new_con_state); 11506 struct dm_connector_state *dm_old_con_state = to_dm_connector_state(old_con_state); 11507 struct amdgpu_crtc *acrtc = to_amdgpu_crtc(dm_new_con_state->base.crtc); 11508 struct dc_surface_update *dummy_updates; 11509 struct dc_stream_update stream_update; 11510 struct dc_info_packet hdr_packet; 11511 struct dc_stream_status *status = NULL; 11512 bool abm_changed, hdr_changed, scaling_changed, output_color_space_changed = false; 11513 11514 memset(&stream_update, 0, sizeof(stream_update)); 11515 11516 if (acrtc) { 11517 new_crtc_state = drm_atomic_get_new_crtc_state(state, &acrtc->base); 11518 old_crtc_state = drm_atomic_get_old_crtc_state(state, &acrtc->base); 11519 } 11520 11521 /* Skip any modesets/resets */ 11522 if (!acrtc || drm_atomic_crtc_needs_modeset(new_crtc_state)) 11523 continue; 11524 11525 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 11526 dm_old_crtc_state = to_dm_crtc_state(old_crtc_state); 11527 11528 scaling_changed = is_scaling_state_different(dm_new_con_state, 11529 dm_old_con_state); 11530 11531 if ((new_con_state->hdmi.broadcast_rgb != old_con_state->hdmi.broadcast_rgb) && 11532 (dm_old_crtc_state->stream->output_color_space != 11533 get_output_color_space(&dm_new_crtc_state->stream->timing, new_con_state))) 11534 output_color_space_changed = true; 11535 11536 abm_changed = dm_new_crtc_state->abm_level != 11537 dm_old_crtc_state->abm_level; 11538 11539 hdr_changed = 11540 !drm_connector_atomic_hdr_metadata_equal(old_con_state, new_con_state); 11541 11542 if (!scaling_changed && !abm_changed && !hdr_changed && !output_color_space_changed) 11543 continue; 11544 11545 stream_update.stream = dm_new_crtc_state->stream; 11546 if (scaling_changed) { 11547 update_stream_scaling_settings(dev, &dm_new_con_state->base.crtc->mode, 11548 dm_new_con_state, dm_new_crtc_state->stream); 11549 11550 stream_update.src = dm_new_crtc_state->stream->src; 11551 stream_update.dst = dm_new_crtc_state->stream->dst; 11552 } 11553 11554 if (output_color_space_changed) { 11555 dm_new_crtc_state->stream->output_color_space 11556 = get_output_color_space(&dm_new_crtc_state->stream->timing, new_con_state); 11557 11558 stream_update.output_color_space = &dm_new_crtc_state->stream->output_color_space; 11559 } 11560 11561 if (abm_changed) { 11562 dm_new_crtc_state->stream->abm_level = dm_new_crtc_state->abm_level; 11563 11564 stream_update.abm_level = &dm_new_crtc_state->abm_level; 11565 } 11566 11567 if (hdr_changed) { 11568 fill_hdr_info_packet(new_con_state, &hdr_packet); 11569 stream_update.hdr_static_metadata = &hdr_packet; 11570 } 11571 11572 status = dc_stream_get_status(dm_new_crtc_state->stream); 11573 11574 if (WARN_ON(!status)) 11575 continue; 11576 11577 WARN_ON(!status->plane_count); 11578 11579 /* 11580 * TODO: DC refuses to perform stream updates without a dc_surface_update. 11581 * Here we create an empty update on each plane. 11582 * To fix this, DC should permit updating only stream properties. 11583 */ 11584 dummy_updates = kzalloc(sizeof(struct dc_surface_update) * MAX_SURFACES, GFP_KERNEL); 11585 if (!dummy_updates) { 11586 drm_err(adev_to_drm(adev), "Failed to allocate memory for dummy_updates.\n"); 11587 continue; 11588 } 11589 for (j = 0; j < status->plane_count; j++) 11590 dummy_updates[j].surface = status->plane_states[j]; 11591 11592 sort(dummy_updates, status->plane_count, 11593 sizeof(*dummy_updates), dm_plane_layer_index_cmp, NULL); 11594 11595 mutex_lock(&dm->dc_lock); 11596 dc_exit_ips_for_hw_access(dm->dc); 11597 dc_update_planes_and_stream(dm->dc, 11598 dummy_updates, 11599 status->plane_count, 11600 dm_new_crtc_state->stream, 11601 &stream_update); 11602 mutex_unlock(&dm->dc_lock); 11603 kfree(dummy_updates); 11604 11605 drm_connector_update_privacy_screen(new_con_state); 11606 } 11607 11608 /** 11609 * Enable interrupts for CRTCs that are newly enabled or went through 11610 * a modeset. It was intentionally deferred until after the front end 11611 * state was modified to wait until the OTG was on and so the IRQ 11612 * handlers didn't access stale or invalid state. 11613 */ 11614 for_each_oldnew_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state, i) { 11615 struct amdgpu_crtc *acrtc = to_amdgpu_crtc(crtc); 11616 #ifdef CONFIG_DEBUG_FS 11617 enum amdgpu_dm_pipe_crc_source cur_crc_src; 11618 #endif 11619 /* Count number of newly disabled CRTCs for dropping PM refs later. */ 11620 if (old_crtc_state->active && !new_crtc_state->active) 11621 crtc_disable_count++; 11622 11623 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 11624 dm_old_crtc_state = to_dm_crtc_state(old_crtc_state); 11625 11626 /* For freesync config update on crtc state and params for irq */ 11627 update_stream_irq_parameters(dm, dm_new_crtc_state); 11628 11629 #ifdef CONFIG_DEBUG_FS 11630 spin_lock_irqsave(&adev_to_drm(adev)->event_lock, flags); 11631 cur_crc_src = acrtc->dm_irq_params.crc_src; 11632 spin_unlock_irqrestore(&adev_to_drm(adev)->event_lock, flags); 11633 #endif 11634 11635 if (new_crtc_state->active && 11636 (!old_crtc_state->active || 11637 drm_atomic_crtc_needs_modeset(new_crtc_state))) { 11638 dc_stream_retain(dm_new_crtc_state->stream); 11639 acrtc->dm_irq_params.stream = dm_new_crtc_state->stream; 11640 manage_dm_interrupts(adev, acrtc, dm_new_crtc_state); 11641 } 11642 /* Handle vrr on->off / off->on transitions */ 11643 amdgpu_dm_handle_vrr_transition(dm, dm_old_crtc_state, dm_new_crtc_state); 11644 11645 #ifdef CONFIG_DEBUG_FS 11646 if (new_crtc_state->active && 11647 (!old_crtc_state->active || 11648 drm_atomic_crtc_needs_modeset(new_crtc_state))) { 11649 /** 11650 * Frontend may have changed so reapply the CRC capture 11651 * settings for the stream. 11652 */ 11653 if (amdgpu_dm_is_valid_crc_source(cur_crc_src)) { 11654 #if defined(CONFIG_DRM_AMD_SECURE_DISPLAY) 11655 if (amdgpu_dm_crc_window_is_activated(crtc)) { 11656 uint8_t cnt; 11657 11658 spin_lock_irqsave(&adev_to_drm(adev)->event_lock, flags); 11659 for (cnt = 0; cnt < MAX_CRC_WINDOW_NUM; cnt++) { 11660 if (acrtc->dm_irq_params.window_param[cnt].enable) { 11661 acrtc->dm_irq_params.window_param[cnt].update_win = true; 11662 11663 /** 11664 * It takes 2 frames for HW to stably generate CRC when 11665 * resuming from suspend, so we set skip_frame_cnt 2. 11666 */ 11667 acrtc->dm_irq_params.window_param[cnt].skip_frame_cnt = 2; 11668 } 11669 } 11670 spin_unlock_irqrestore(&adev_to_drm(adev)->event_lock, flags); 11671 } 11672 #endif 11673 if (amdgpu_dm_crtc_configure_crc_source( 11674 crtc, dm_new_crtc_state, cur_crc_src)) 11675 drm_dbg_atomic(dev, "Failed to configure crc source"); 11676 } 11677 } 11678 #endif 11679 } 11680 11681 amdgpu_dm_mod_power_setup_streams(state, dm); 11682 11683 for_each_new_crtc_in_state(state, crtc, new_crtc_state, j) 11684 if (new_crtc_state->async_flip) 11685 wait_for_vblank = false; 11686 11687 /* update planes when needed per crtc*/ 11688 for_each_new_crtc_in_state(state, crtc, new_crtc_state, j) { 11689 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 11690 11691 if (dm_new_crtc_state->stream) 11692 amdgpu_dm_commit_planes(state, dev, dm, crtc, wait_for_vblank); 11693 } 11694 11695 /* Enable writeback */ 11696 for_each_new_connector_in_state(state, connector, new_con_state, i) { 11697 struct dm_connector_state *dm_new_con_state = to_dm_connector_state(new_con_state); 11698 struct amdgpu_crtc *acrtc = to_amdgpu_crtc(dm_new_con_state->base.crtc); 11699 11700 if (connector->connector_type != DRM_MODE_CONNECTOR_WRITEBACK) 11701 continue; 11702 11703 if (!new_con_state->writeback_job) 11704 continue; 11705 11706 new_crtc_state = drm_atomic_get_new_crtc_state(state, &acrtc->base); 11707 11708 if (!new_crtc_state) 11709 continue; 11710 11711 if (acrtc->wb_enabled) 11712 continue; 11713 11714 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 11715 11716 dm_set_writeback(dm, dm_new_crtc_state, connector, new_con_state); 11717 acrtc->wb_enabled = true; 11718 } 11719 11720 /* Update audio instances for each connector. */ 11721 amdgpu_dm_commit_audio(dev, state); 11722 11723 /* restore the backlight level */ 11724 for (i = 0; i < dm->num_of_edps; i++) { 11725 if (dm->backlight_dev[i] && 11726 (dm->actual_brightness[i] != dm->brightness[i])) 11727 amdgpu_dm_backlight_set_level(dm, i, dm->brightness[i]); 11728 } 11729 11730 /* 11731 * send vblank event on all events not handled in flip and 11732 * mark consumed event for drm_atomic_helper_commit_hw_done 11733 */ 11734 spin_lock_irqsave(&adev_to_drm(adev)->event_lock, flags); 11735 for_each_new_crtc_in_state(state, crtc, new_crtc_state, i) { 11736 11737 if (new_crtc_state->event) 11738 drm_send_event_locked(dev, &new_crtc_state->event->base); 11739 11740 new_crtc_state->event = NULL; 11741 } 11742 spin_unlock_irqrestore(&adev_to_drm(adev)->event_lock, flags); 11743 11744 /* Signal HW programming completion */ 11745 drm_atomic_helper_commit_hw_done(state); 11746 11747 if (wait_for_vblank) 11748 drm_atomic_helper_wait_for_flip_done(dev, state); 11749 11750 drm_atomic_helper_cleanup_planes(dev, state); 11751 11752 /* Don't free the memory if we are hitting this as part of suspend. 11753 * This way we don't free any memory during suspend; see 11754 * amdgpu_bo_free_kernel(). The memory will be freed in the first 11755 * non-suspend modeset or when the driver is torn down. 11756 */ 11757 if (!adev->in_suspend) { 11758 /* return the stolen vga memory back to VRAM */ 11759 if (!adev->mman.keep_stolen_vga_memory) 11760 amdgpu_ttm_unmark_vram_reserved(adev, AMDGPU_RESV_STOLEN_VGA); 11761 amdgpu_ttm_unmark_vram_reserved(adev, AMDGPU_RESV_STOLEN_EXTENDED); 11762 } 11763 11764 /* 11765 * Finally, drop a runtime PM reference for each newly disabled CRTC, 11766 * so we can put the GPU into runtime suspend if we're not driving any 11767 * displays anymore 11768 */ 11769 for (i = 0; i < crtc_disable_count; i++) 11770 pm_runtime_put_autosuspend(dev->dev); 11771 pm_runtime_mark_last_busy(dev->dev); 11772 11773 trace_amdgpu_dm_atomic_commit_tail_finish(state); 11774 } 11775 11776 static int dm_force_atomic_commit(struct drm_connector *connector) 11777 { 11778 int ret = 0; 11779 struct drm_device *ddev = connector->dev; 11780 struct drm_atomic_commit *state = drm_atomic_commit_alloc(ddev); 11781 struct amdgpu_crtc *disconnected_acrtc = to_amdgpu_crtc(connector->encoder->crtc); 11782 struct drm_plane *plane = disconnected_acrtc->base.primary; 11783 struct drm_connector_state *conn_state; 11784 struct drm_crtc_state *crtc_state; 11785 struct drm_plane_state *plane_state; 11786 11787 if (!state) 11788 return -ENOMEM; 11789 11790 state->acquire_ctx = ddev->mode_config.acquire_ctx; 11791 11792 /* Construct an atomic state to restore previous display setting */ 11793 11794 /* 11795 * Attach connectors to drm_atomic_commit 11796 */ 11797 conn_state = drm_atomic_get_connector_state(state, connector); 11798 11799 /* Check for error in getting connector state */ 11800 if (IS_ERR(conn_state)) { 11801 ret = PTR_ERR(conn_state); 11802 goto out; 11803 } 11804 11805 /* Attach crtc to drm_atomic_commit*/ 11806 crtc_state = drm_atomic_get_crtc_state(state, &disconnected_acrtc->base); 11807 11808 /* Check for error in getting crtc state */ 11809 if (IS_ERR(crtc_state)) { 11810 ret = PTR_ERR(crtc_state); 11811 goto out; 11812 } 11813 11814 /* force a restore */ 11815 crtc_state->mode_changed = true; 11816 11817 /* Attach plane to drm_atomic_commit */ 11818 plane_state = drm_atomic_get_plane_state(state, plane); 11819 11820 /* Check for error in getting plane state */ 11821 if (IS_ERR(plane_state)) { 11822 ret = PTR_ERR(plane_state); 11823 goto out; 11824 } 11825 11826 /* Call commit internally with the state we just constructed */ 11827 ret = drm_atomic_commit(state); 11828 11829 out: 11830 drm_atomic_commit_put(state); 11831 if (ret) 11832 drm_err(ddev, "Restoring old state failed with %i\n", ret); 11833 11834 return ret; 11835 } 11836 11837 /* 11838 * This function handles all cases when set mode does not come upon hotplug. 11839 * This includes when a display is unplugged then plugged back into the 11840 * same port and when running without usermode desktop manager supprot 11841 */ 11842 void dm_restore_drm_connector_state(struct drm_device *dev, 11843 struct drm_connector *connector) 11844 { 11845 struct amdgpu_dm_connector *aconnector; 11846 struct amdgpu_crtc *disconnected_acrtc; 11847 struct dm_crtc_state *acrtc_state; 11848 11849 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 11850 return; 11851 11852 aconnector = to_amdgpu_dm_connector(connector); 11853 11854 if (!aconnector->dc_sink || !connector->state || !connector->encoder) 11855 return; 11856 11857 disconnected_acrtc = to_amdgpu_crtc(connector->encoder->crtc); 11858 if (!disconnected_acrtc) 11859 return; 11860 11861 acrtc_state = to_dm_crtc_state(disconnected_acrtc->base.state); 11862 if (!acrtc_state->stream) 11863 return; 11864 11865 /* 11866 * If the previous sink is not released and different from the current, 11867 * we deduce we are in a state where we can not rely on usermode call 11868 * to turn on the display, so we do it here 11869 */ 11870 if (acrtc_state->stream->sink != aconnector->dc_sink) 11871 dm_force_atomic_commit(&aconnector->base); 11872 } 11873 11874 /* 11875 * Grabs all modesetting locks to serialize against any blocking commits, 11876 * Waits for completion of all non blocking commits. 11877 */ 11878 static int do_aquire_global_lock(struct drm_device *dev, 11879 struct drm_atomic_commit *state) 11880 { 11881 struct drm_crtc *crtc; 11882 struct drm_crtc_commit *commit; 11883 long ret; 11884 11885 /* 11886 * Adding all modeset locks to aquire_ctx will 11887 * ensure that when the framework release it the 11888 * extra locks we are locking here will get released to 11889 */ 11890 ret = drm_modeset_lock_all_ctx(dev, state->acquire_ctx); 11891 if (ret) 11892 return ret; 11893 11894 list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) { 11895 spin_lock(&crtc->commit_lock); 11896 commit = list_first_entry_or_null(&crtc->commit_list, 11897 struct drm_crtc_commit, commit_entry); 11898 if (commit) 11899 drm_crtc_commit_get(commit); 11900 spin_unlock(&crtc->commit_lock); 11901 11902 if (!commit) 11903 continue; 11904 11905 /* 11906 * Make sure all pending HW programming completed and 11907 * page flips done 11908 */ 11909 ret = wait_for_completion_interruptible_timeout(&commit->hw_done, 10*HZ); 11910 11911 if (ret > 0) 11912 ret = wait_for_completion_interruptible_timeout( 11913 &commit->flip_done, 10*HZ); 11914 11915 if (ret == 0) 11916 drm_err(dev, "[CRTC:%d:%s] hw_done or flip_done timed out\n", 11917 crtc->base.id, crtc->name); 11918 11919 drm_crtc_commit_put(commit); 11920 } 11921 11922 return ret < 0 ? ret : 0; 11923 } 11924 11925 static void get_freesync_config_for_crtc( 11926 struct dm_crtc_state *new_crtc_state, 11927 struct dm_connector_state *new_con_state) 11928 { 11929 struct mod_freesync_config config = {0}; 11930 struct amdgpu_dm_connector *aconnector; 11931 struct drm_display_mode *mode = &new_crtc_state->base.mode; 11932 int vrefresh = drm_mode_vrefresh(mode); 11933 bool fs_vid_mode = false; 11934 11935 if (new_con_state->base.connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 11936 return; 11937 11938 aconnector = to_amdgpu_dm_connector(new_con_state->base.connector); 11939 11940 new_crtc_state->vrr_supported = new_con_state->freesync_capable && 11941 vrefresh >= aconnector->min_vfreq && 11942 vrefresh <= aconnector->max_vfreq; 11943 11944 if (new_crtc_state->vrr_supported) { 11945 new_crtc_state->stream->ignore_msa_timing_param = true; 11946 fs_vid_mode = new_crtc_state->freesync_config.state == VRR_STATE_ACTIVE_FIXED; 11947 11948 config.min_refresh_in_uhz = aconnector->min_vfreq * 1000000; 11949 config.max_refresh_in_uhz = aconnector->max_vfreq * 1000000; 11950 config.vsif_supported = true; 11951 config.btr = true; 11952 11953 if (fs_vid_mode) { 11954 config.state = VRR_STATE_ACTIVE_FIXED; 11955 config.fixed_refresh_in_uhz = new_crtc_state->freesync_config.fixed_refresh_in_uhz; 11956 goto out; 11957 } else if (new_crtc_state->base.vrr_enabled) { 11958 config.state = VRR_STATE_ACTIVE_VARIABLE; 11959 } else { 11960 config.state = VRR_STATE_INACTIVE; 11961 } 11962 } else { 11963 config.state = VRR_STATE_UNSUPPORTED; 11964 } 11965 out: 11966 new_crtc_state->freesync_config = config; 11967 } 11968 11969 static void reset_freesync_config_for_crtc( 11970 struct dm_crtc_state *new_crtc_state) 11971 { 11972 new_crtc_state->vrr_supported = false; 11973 11974 memset(&new_crtc_state->vrr_infopacket, 0, 11975 sizeof(new_crtc_state->vrr_infopacket)); 11976 } 11977 11978 static bool 11979 is_timing_unchanged_for_freesync(struct drm_crtc_state *old_crtc_state, 11980 struct drm_crtc_state *new_crtc_state) 11981 { 11982 const struct drm_display_mode *old_mode, *new_mode; 11983 11984 if (!old_crtc_state || !new_crtc_state) 11985 return false; 11986 11987 old_mode = &old_crtc_state->mode; 11988 new_mode = &new_crtc_state->mode; 11989 11990 if (old_mode->clock == new_mode->clock && 11991 old_mode->hdisplay == new_mode->hdisplay && 11992 old_mode->vdisplay == new_mode->vdisplay && 11993 old_mode->htotal == new_mode->htotal && 11994 old_mode->vtotal != new_mode->vtotal && 11995 old_mode->hsync_start == new_mode->hsync_start && 11996 old_mode->vsync_start != new_mode->vsync_start && 11997 old_mode->hsync_end == new_mode->hsync_end && 11998 old_mode->vsync_end != new_mode->vsync_end && 11999 old_mode->hskew == new_mode->hskew && 12000 old_mode->vscan == new_mode->vscan && 12001 (old_mode->vsync_end - old_mode->vsync_start) == 12002 (new_mode->vsync_end - new_mode->vsync_start)) 12003 return true; 12004 12005 return false; 12006 } 12007 12008 static void set_freesync_fixed_config(struct dm_crtc_state *dm_new_crtc_state) 12009 { 12010 u64 num, den, res; 12011 struct drm_crtc_state *new_crtc_state = &dm_new_crtc_state->base; 12012 12013 dm_new_crtc_state->freesync_config.state = VRR_STATE_ACTIVE_FIXED; 12014 12015 num = (unsigned long long)new_crtc_state->mode.clock * 1000 * 1000000; 12016 den = (unsigned long long)new_crtc_state->mode.htotal * 12017 (unsigned long long)new_crtc_state->mode.vtotal; 12018 12019 res = div_u64(num, den); 12020 dm_new_crtc_state->freesync_config.fixed_refresh_in_uhz = res; 12021 } 12022 12023 static int dm_update_crtc_state(struct amdgpu_display_manager *dm, 12024 struct drm_atomic_commit *state, 12025 struct drm_crtc *crtc, 12026 struct drm_crtc_state *old_crtc_state, 12027 struct drm_crtc_state *new_crtc_state, 12028 bool enable, 12029 bool *lock_and_validation_needed) 12030 { 12031 struct dm_atomic_state *dm_state = NULL; 12032 struct dm_crtc_state *dm_old_crtc_state, *dm_new_crtc_state; 12033 struct dc_stream_state *new_stream; 12034 struct amdgpu_device *adev = dm->adev; 12035 int ret = 0; 12036 12037 /* 12038 * TODO Move this code into dm_crtc_atomic_check once we get rid of dc_validation_set 12039 * update changed items 12040 */ 12041 struct amdgpu_crtc *acrtc = NULL; 12042 struct drm_connector *connector = NULL; 12043 struct amdgpu_dm_connector *aconnector = NULL; 12044 struct drm_connector_state *drm_new_conn_state = NULL, *drm_old_conn_state = NULL; 12045 struct dm_connector_state *dm_new_conn_state = NULL, *dm_old_conn_state = NULL; 12046 12047 new_stream = NULL; 12048 12049 dm_old_crtc_state = to_dm_crtc_state(old_crtc_state); 12050 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 12051 acrtc = to_amdgpu_crtc(crtc); 12052 connector = amdgpu_dm_find_first_crtc_matching_connector(state, crtc); 12053 if (connector) 12054 aconnector = to_amdgpu_dm_connector(connector); 12055 12056 /* TODO This hack should go away */ 12057 if (connector && enable) { 12058 /* Make sure fake sink is created in plug-in scenario */ 12059 drm_new_conn_state = drm_atomic_get_new_connector_state(state, 12060 connector); 12061 drm_old_conn_state = drm_atomic_get_old_connector_state(state, 12062 connector); 12063 12064 if (WARN_ON(!drm_new_conn_state)) { 12065 ret = -EINVAL; 12066 goto fail; 12067 } 12068 12069 dm_new_conn_state = to_dm_connector_state(drm_new_conn_state); 12070 dm_old_conn_state = to_dm_connector_state(drm_old_conn_state); 12071 12072 if (!drm_atomic_crtc_needs_modeset(new_crtc_state)) 12073 goto skip_modeset; 12074 12075 new_stream = create_validate_stream_for_sink(connector, 12076 &new_crtc_state->mode, 12077 dm_new_conn_state, 12078 dm_old_crtc_state->stream); 12079 12080 /* 12081 * we can have no stream on ACTION_SET if a display 12082 * was disconnected during S3, in this case it is not an 12083 * error, the OS will be updated after detection, and 12084 * will do the right thing on next atomic commit 12085 */ 12086 12087 if (!new_stream) { 12088 drm_dbg_driver(adev_to_drm(adev), "%s: Failed to create new stream for crtc %d\n", 12089 __func__, acrtc->base.base.id); 12090 ret = -ENOMEM; 12091 goto fail; 12092 } 12093 12094 /* 12095 * TODO: Check VSDB bits to decide whether this should 12096 * be enabled or not. 12097 */ 12098 new_stream->triggered_crtc_reset.enabled = 12099 dm->force_timing_sync; 12100 12101 dm_new_crtc_state->abm_level = dm_new_conn_state->abm_level; 12102 12103 ret = fill_hdr_info_packet(drm_new_conn_state, 12104 &new_stream->hdr_static_metadata); 12105 if (ret) 12106 goto fail; 12107 12108 /* 12109 * If we already removed the old stream from the context 12110 * (and set the new stream to NULL) then we can't reuse 12111 * the old stream even if the stream and scaling are unchanged. 12112 * We'll hit the BUG_ON and black screen. 12113 * 12114 * TODO: Refactor this function to allow this check to work 12115 * in all conditions. 12116 */ 12117 if (amdgpu_freesync_vid_mode && 12118 dm_new_crtc_state->stream && 12119 is_timing_unchanged_for_freesync(new_crtc_state, old_crtc_state)) 12120 goto skip_modeset; 12121 12122 if (dm_new_crtc_state->stream && 12123 dc_is_stream_unchanged(new_stream, dm_old_crtc_state->stream) && 12124 dc_is_stream_scaling_unchanged(new_stream, dm_old_crtc_state->stream)) { 12125 new_crtc_state->mode_changed = false; 12126 drm_dbg_driver(adev_to_drm(adev), "Mode change not required, setting mode_changed to %d", 12127 new_crtc_state->mode_changed); 12128 } 12129 } 12130 12131 /* mode_changed flag may get updated above, need to check again */ 12132 if (!drm_atomic_crtc_needs_modeset(new_crtc_state)) 12133 goto skip_modeset; 12134 12135 drm_dbg_state(state->dev, 12136 "amdgpu_crtc id:%d crtc_state_flags: enable:%d, active:%d, planes_changed:%d, mode_changed:%d,active_changed:%d,connectors_changed:%d\n", 12137 acrtc->crtc_id, 12138 new_crtc_state->enable, 12139 new_crtc_state->active, 12140 new_crtc_state->planes_changed, 12141 new_crtc_state->mode_changed, 12142 new_crtc_state->active_changed, 12143 new_crtc_state->connectors_changed); 12144 12145 /* Remove stream for any changed/disabled CRTC */ 12146 if (!enable) { 12147 12148 if (!dm_old_crtc_state->stream) 12149 goto skip_modeset; 12150 12151 /* Unset freesync video if it was active before */ 12152 if (dm_old_crtc_state->freesync_config.state == VRR_STATE_ACTIVE_FIXED) { 12153 dm_new_crtc_state->freesync_config.state = VRR_STATE_INACTIVE; 12154 dm_new_crtc_state->freesync_config.fixed_refresh_in_uhz = 0; 12155 } 12156 12157 /* Now check if we should set freesync video mode */ 12158 if (amdgpu_freesync_vid_mode && dm_new_crtc_state->stream && 12159 dc_is_stream_unchanged(new_stream, dm_old_crtc_state->stream) && 12160 dc_is_stream_scaling_unchanged(new_stream, dm_old_crtc_state->stream) && 12161 is_timing_unchanged_for_freesync(new_crtc_state, 12162 old_crtc_state)) { 12163 new_crtc_state->mode_changed = false; 12164 drm_dbg_driver(adev_to_drm(adev), 12165 "Mode change not required for front porch change, setting mode_changed to %d", 12166 new_crtc_state->mode_changed); 12167 12168 set_freesync_fixed_config(dm_new_crtc_state); 12169 12170 goto skip_modeset; 12171 } else if (amdgpu_freesync_vid_mode && aconnector && 12172 is_freesync_video_mode(&new_crtc_state->mode, 12173 aconnector)) { 12174 struct drm_display_mode *high_mode; 12175 12176 high_mode = get_highest_refresh_rate_mode(aconnector, false); 12177 if (!drm_mode_equal(&new_crtc_state->mode, high_mode)) 12178 set_freesync_fixed_config(dm_new_crtc_state); 12179 } 12180 12181 ret = dm_atomic_get_state(state, &dm_state); 12182 if (ret) 12183 goto fail; 12184 12185 drm_dbg_driver(adev_to_drm(adev), "Disabling DRM crtc: %d\n", 12186 crtc->base.id); 12187 12188 /* i.e. reset mode */ 12189 if (dc_state_remove_stream( 12190 dm->dc, 12191 dm_state->context, 12192 dm_old_crtc_state->stream) != DC_OK) { 12193 ret = -EINVAL; 12194 goto fail; 12195 } 12196 12197 dc_stream_release(dm_old_crtc_state->stream); 12198 dm_new_crtc_state->stream = NULL; 12199 12200 reset_freesync_config_for_crtc(dm_new_crtc_state); 12201 12202 *lock_and_validation_needed = true; 12203 12204 } else {/* Add stream for any updated/enabled CRTC */ 12205 /* 12206 * Quick fix to prevent NULL pointer on new_stream when 12207 * added MST connectors not found in existing crtc_state in the chained mode 12208 * TODO: need to dig out the root cause of that 12209 */ 12210 if (!connector) 12211 goto skip_modeset; 12212 12213 if (modereset_required(new_crtc_state)) 12214 goto skip_modeset; 12215 12216 if (amdgpu_dm_crtc_modeset_required(new_crtc_state, new_stream, 12217 dm_old_crtc_state->stream)) { 12218 12219 WARN_ON(dm_new_crtc_state->stream); 12220 12221 ret = dm_atomic_get_state(state, &dm_state); 12222 if (ret) 12223 goto fail; 12224 12225 dm_new_crtc_state->stream = new_stream; 12226 12227 dc_stream_retain(new_stream); 12228 12229 drm_dbg_atomic(adev_to_drm(adev), "Enabling DRM crtc: %d\n", 12230 crtc->base.id); 12231 12232 if (dc_state_add_stream( 12233 dm->dc, 12234 dm_state->context, 12235 dm_new_crtc_state->stream) != DC_OK) { 12236 ret = -EINVAL; 12237 goto fail; 12238 } 12239 12240 *lock_and_validation_needed = true; 12241 } 12242 } 12243 12244 skip_modeset: 12245 /* Release extra reference */ 12246 if (new_stream) 12247 dc_stream_release(new_stream); 12248 new_stream = NULL; 12249 12250 /* 12251 * We want to do dc stream updates that do not require a 12252 * full modeset below. 12253 */ 12254 if (!(enable && connector && new_crtc_state->active)) 12255 return 0; 12256 /* 12257 * Given above conditions, the dc state cannot be NULL because: 12258 * 1. We're in the process of enabling CRTCs (just been added 12259 * to the dc context, or already is on the context) 12260 * 2. Has a valid connector attached, and 12261 * 3. Is currently active and enabled. 12262 * => The dc stream state currently exists. 12263 */ 12264 BUG_ON(dm_new_crtc_state->stream == NULL); 12265 12266 /* Scaling or underscan settings */ 12267 if (is_scaling_state_different(dm_old_conn_state, dm_new_conn_state) || 12268 drm_atomic_crtc_needs_modeset(new_crtc_state)) 12269 update_stream_scaling_settings(adev_to_drm(adev), 12270 &new_crtc_state->mode, dm_new_conn_state, dm_new_crtc_state->stream); 12271 12272 /* ABM settings */ 12273 dm_new_crtc_state->abm_level = dm_new_conn_state->abm_level; 12274 12275 /* 12276 * Color management settings. We also update color properties 12277 * when a modeset is needed, to ensure it gets reprogrammed. 12278 */ 12279 if (dm_new_crtc_state->base.color_mgmt_changed || 12280 dm_old_crtc_state->regamma_tf != dm_new_crtc_state->regamma_tf || 12281 drm_atomic_crtc_needs_modeset(new_crtc_state)) { 12282 ret = amdgpu_dm_check_crtc_color_mgmt(dm_new_crtc_state, true); 12283 if (ret) 12284 goto fail; 12285 } 12286 12287 /* Update Freesync settings. */ 12288 get_freesync_config_for_crtc(dm_new_crtc_state, 12289 dm_new_conn_state); 12290 12291 return ret; 12292 12293 fail: 12294 if (new_stream) 12295 dc_stream_release(new_stream); 12296 return ret; 12297 } 12298 12299 static bool should_reset_plane(struct drm_atomic_commit *state, 12300 struct drm_plane *plane, 12301 struct drm_plane_state *old_plane_state, 12302 struct drm_plane_state *new_plane_state) 12303 { 12304 struct drm_plane *other; 12305 struct drm_plane_state *old_other_state, *new_other_state; 12306 struct drm_crtc_state *old_crtc_state, *new_crtc_state; 12307 struct dm_crtc_state *old_dm_crtc_state, *new_dm_crtc_state; 12308 struct amdgpu_device *adev = drm_to_adev(plane->dev); 12309 struct drm_connector_state *new_con_state; 12310 struct drm_connector *connector; 12311 int i; 12312 12313 /* 12314 * TODO: Remove this hack for all asics once it proves that the 12315 * fast updates works fine on DCN3.2+. 12316 */ 12317 if (amdgpu_ip_version(adev, DCE_HWIP, 0) < IP_VERSION(3, 2, 0) && 12318 state->allow_modeset) 12319 return true; 12320 12321 /* Check for writeback commit */ 12322 for_each_new_connector_in_state(state, connector, new_con_state, i) { 12323 if (connector->connector_type != DRM_MODE_CONNECTOR_WRITEBACK) 12324 continue; 12325 12326 if (new_con_state->writeback_job) 12327 return true; 12328 } 12329 12330 if (amdgpu_in_reset(adev) && state->allow_modeset) 12331 return true; 12332 12333 /* Exit early if we know that we're adding or removing the plane. */ 12334 if (old_plane_state->crtc != new_plane_state->crtc) 12335 return true; 12336 12337 /* old crtc == new_crtc == NULL, plane not in context. */ 12338 if (!new_plane_state->crtc) 12339 return false; 12340 12341 new_crtc_state = 12342 drm_atomic_get_new_crtc_state(state, new_plane_state->crtc); 12343 old_crtc_state = 12344 drm_atomic_get_old_crtc_state(state, old_plane_state->crtc); 12345 12346 if (!new_crtc_state) 12347 return true; 12348 12349 /* 12350 * A change in cursor mode means a new dc pipe needs to be acquired or 12351 * released from the state 12352 */ 12353 old_dm_crtc_state = to_dm_crtc_state(old_crtc_state); 12354 new_dm_crtc_state = to_dm_crtc_state(new_crtc_state); 12355 if (plane->type == DRM_PLANE_TYPE_CURSOR && 12356 old_dm_crtc_state != NULL && 12357 old_dm_crtc_state->cursor_mode != new_dm_crtc_state->cursor_mode) { 12358 return true; 12359 } 12360 12361 /* CRTC Degamma changes currently require us to recreate planes. */ 12362 if (new_crtc_state->color_mgmt_changed) 12363 return true; 12364 12365 /* Plane color pipeline or its colorop changes. */ 12366 if (new_plane_state->color_mgmt_changed) 12367 return true; 12368 12369 /* 12370 * On zpos change, planes need to be reordered by removing and re-adding 12371 * them one by one to the dc state, in order of descending zpos. 12372 * 12373 * TODO: We can likely skip bandwidth validation if the only thing that 12374 * changed about the plane was it'z z-ordering. 12375 */ 12376 if (old_plane_state->normalized_zpos != new_plane_state->normalized_zpos) 12377 return true; 12378 12379 if (drm_atomic_crtc_needs_modeset(new_crtc_state)) 12380 return true; 12381 12382 /* 12383 * If there are any new primary or overlay planes being added or 12384 * removed then the z-order can potentially change. To ensure 12385 * correct z-order and pipe acquisition the current DC architecture 12386 * requires us to remove and recreate all existing planes. 12387 * 12388 * TODO: Come up with a more elegant solution for this. 12389 */ 12390 for_each_oldnew_plane_in_state(state, other, old_other_state, new_other_state, i) { 12391 struct amdgpu_framebuffer *old_afb, *new_afb; 12392 struct dm_plane_state *dm_new_other_state, *dm_old_other_state; 12393 12394 dm_new_other_state = to_dm_plane_state(new_other_state); 12395 dm_old_other_state = to_dm_plane_state(old_other_state); 12396 12397 if (other->type == DRM_PLANE_TYPE_CURSOR) 12398 continue; 12399 12400 if (old_other_state->crtc != new_plane_state->crtc && 12401 new_other_state->crtc != new_plane_state->crtc) 12402 continue; 12403 12404 if (old_other_state->crtc != new_other_state->crtc) 12405 return true; 12406 12407 /* Src/dst size and scaling updates. */ 12408 if (old_other_state->src_w != new_other_state->src_w || 12409 old_other_state->src_h != new_other_state->src_h || 12410 old_other_state->crtc_w != new_other_state->crtc_w || 12411 old_other_state->crtc_h != new_other_state->crtc_h) 12412 return true; 12413 12414 /* Rotation / mirroring updates. */ 12415 if (old_other_state->rotation != new_other_state->rotation) 12416 return true; 12417 12418 /* Blending updates. */ 12419 if (old_other_state->pixel_blend_mode != 12420 new_other_state->pixel_blend_mode) 12421 return true; 12422 12423 /* Alpha updates. */ 12424 if (old_other_state->alpha != new_other_state->alpha) 12425 return true; 12426 12427 /* Colorspace changes. */ 12428 if (old_other_state->color_range != new_other_state->color_range || 12429 old_other_state->color_encoding != new_other_state->color_encoding) 12430 return true; 12431 12432 /* HDR/Transfer Function changes. */ 12433 if (dm_old_other_state->degamma_tf != dm_new_other_state->degamma_tf || 12434 dm_old_other_state->degamma_lut != dm_new_other_state->degamma_lut || 12435 dm_old_other_state->hdr_mult != dm_new_other_state->hdr_mult || 12436 dm_old_other_state->ctm != dm_new_other_state->ctm || 12437 dm_old_other_state->shaper_lut != dm_new_other_state->shaper_lut || 12438 dm_old_other_state->shaper_tf != dm_new_other_state->shaper_tf || 12439 dm_old_other_state->lut3d != dm_new_other_state->lut3d || 12440 dm_old_other_state->blend_lut != dm_new_other_state->blend_lut || 12441 dm_old_other_state->blend_tf != dm_new_other_state->blend_tf) 12442 return true; 12443 12444 /* Framebuffer checks fall at the end. */ 12445 if (!old_other_state->fb || !new_other_state->fb) 12446 continue; 12447 12448 /* Pixel format changes can require bandwidth updates. */ 12449 if (old_other_state->fb->format != new_other_state->fb->format) 12450 return true; 12451 12452 old_afb = (struct amdgpu_framebuffer *)old_other_state->fb; 12453 new_afb = (struct amdgpu_framebuffer *)new_other_state->fb; 12454 12455 /* Tiling and DCC changes also require bandwidth updates. */ 12456 if (old_afb->tiling_flags != new_afb->tiling_flags || 12457 old_afb->base.modifier != new_afb->base.modifier) 12458 return true; 12459 } 12460 12461 return false; 12462 } 12463 12464 static int dm_check_cursor_fb(struct amdgpu_crtc *new_acrtc, 12465 struct drm_plane_state *new_plane_state, 12466 struct drm_framebuffer *fb) 12467 { 12468 struct amdgpu_device *adev = drm_to_adev(new_acrtc->base.dev); 12469 struct amdgpu_framebuffer *afb = to_amdgpu_framebuffer(fb); 12470 unsigned int pitch; 12471 bool linear; 12472 12473 if (fb->width > new_acrtc->max_cursor_width || 12474 fb->height > new_acrtc->max_cursor_height) { 12475 drm_dbg_atomic(adev_to_drm(adev), "Bad cursor FB size %dx%d\n", 12476 new_plane_state->fb->width, 12477 new_plane_state->fb->height); 12478 return -EINVAL; 12479 } 12480 if (new_plane_state->src_w != fb->width << 16 || 12481 new_plane_state->src_h != fb->height << 16) { 12482 drm_dbg_atomic(adev_to_drm(adev), "Cropping not supported for cursor plane\n"); 12483 return -EINVAL; 12484 } 12485 12486 /* Pitch in pixels */ 12487 pitch = fb->pitches[0] / fb->format->cpp[0]; 12488 12489 if (fb->width != pitch) { 12490 drm_dbg_atomic(adev_to_drm(adev), "Cursor FB width %d doesn't match pitch %d", 12491 fb->width, pitch); 12492 return -EINVAL; 12493 } 12494 12495 switch (pitch) { 12496 case 64: 12497 case 128: 12498 case 256: 12499 /* FB pitch is supported by cursor plane */ 12500 break; 12501 default: 12502 drm_dbg_atomic(adev_to_drm(adev), "Bad cursor FB pitch %d px\n", pitch); 12503 return -EINVAL; 12504 } 12505 12506 /* Core DRM takes care of checking FB modifiers, so we only need to 12507 * check tiling flags when the FB doesn't have a modifier. 12508 */ 12509 if (!(fb->flags & DRM_MODE_FB_MODIFIERS)) { 12510 if (adev->family == AMDGPU_FAMILY_GC_12_0_0) { 12511 linear = AMDGPU_TILING_GET(afb->tiling_flags, GFX12_SWIZZLE_MODE) == 0; 12512 } else if (adev->family >= AMDGPU_FAMILY_AI) { 12513 linear = AMDGPU_TILING_GET(afb->tiling_flags, SWIZZLE_MODE) == 0; 12514 } else { 12515 linear = AMDGPU_TILING_GET(afb->tiling_flags, ARRAY_MODE) != DC_ARRAY_2D_TILED_THIN1 && 12516 AMDGPU_TILING_GET(afb->tiling_flags, ARRAY_MODE) != DC_ARRAY_1D_TILED_THIN1 && 12517 AMDGPU_TILING_GET(afb->tiling_flags, MICRO_TILE_MODE) == 0; 12518 } 12519 if (!linear) { 12520 drm_dbg_atomic(adev_to_drm(adev), "Cursor FB not linear"); 12521 return -EINVAL; 12522 } 12523 } 12524 12525 return 0; 12526 } 12527 12528 /* 12529 * Helper function for checking the cursor in native mode 12530 */ 12531 static int dm_check_native_cursor_state(struct drm_crtc *new_plane_crtc, 12532 struct drm_plane *plane, 12533 struct drm_plane_state *new_plane_state, 12534 bool enable) 12535 { 12536 12537 struct amdgpu_crtc *new_acrtc; 12538 int ret; 12539 12540 if (!enable || !new_plane_crtc || 12541 drm_atomic_plane_disabling(plane->state, new_plane_state)) 12542 return 0; 12543 12544 new_acrtc = to_amdgpu_crtc(new_plane_crtc); 12545 12546 if (new_plane_state->src_x != 0 || new_plane_state->src_y != 0) { 12547 drm_dbg_atomic(new_plane_crtc->dev, "Cropping not supported for cursor plane\n"); 12548 return -EINVAL; 12549 } 12550 12551 if (new_plane_state->fb) { 12552 ret = dm_check_cursor_fb(new_acrtc, new_plane_state, 12553 new_plane_state->fb); 12554 if (ret) 12555 return ret; 12556 } 12557 12558 return 0; 12559 } 12560 12561 static bool dm_should_update_native_cursor(struct drm_atomic_commit *state, 12562 struct drm_crtc *old_plane_crtc, 12563 struct drm_crtc *new_plane_crtc, 12564 bool enable) 12565 { 12566 struct drm_crtc_state *old_crtc_state, *new_crtc_state; 12567 struct dm_crtc_state *dm_old_crtc_state, *dm_new_crtc_state; 12568 12569 if (!enable) { 12570 if (old_plane_crtc == NULL) 12571 return true; 12572 12573 old_crtc_state = drm_atomic_get_old_crtc_state( 12574 state, old_plane_crtc); 12575 dm_old_crtc_state = to_dm_crtc_state(old_crtc_state); 12576 12577 return dm_old_crtc_state->cursor_mode == DM_CURSOR_NATIVE_MODE; 12578 } else { 12579 if (new_plane_crtc == NULL) 12580 return true; 12581 12582 new_crtc_state = drm_atomic_get_new_crtc_state( 12583 state, new_plane_crtc); 12584 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 12585 12586 return dm_new_crtc_state->cursor_mode == DM_CURSOR_NATIVE_MODE; 12587 } 12588 } 12589 12590 static int dm_update_plane_state(struct dc *dc, 12591 struct drm_atomic_commit *state, 12592 struct drm_plane *plane, 12593 struct drm_plane_state *old_plane_state, 12594 struct drm_plane_state *new_plane_state, 12595 bool enable, 12596 bool *lock_and_validation_needed, 12597 bool *is_top_most_overlay) 12598 { 12599 12600 struct dm_atomic_state *dm_state = NULL; 12601 struct drm_crtc *new_plane_crtc, *old_plane_crtc; 12602 struct drm_crtc_state *old_crtc_state, *new_crtc_state; 12603 struct dm_crtc_state *dm_new_crtc_state, *dm_old_crtc_state; 12604 struct dm_plane_state *dm_new_plane_state, *dm_old_plane_state; 12605 bool needs_reset, update_native_cursor; 12606 int ret = 0; 12607 12608 12609 new_plane_crtc = new_plane_state->crtc; 12610 old_plane_crtc = old_plane_state->crtc; 12611 dm_new_plane_state = to_dm_plane_state(new_plane_state); 12612 dm_old_plane_state = to_dm_plane_state(old_plane_state); 12613 12614 update_native_cursor = dm_should_update_native_cursor(state, 12615 old_plane_crtc, 12616 new_plane_crtc, 12617 enable); 12618 12619 if (plane->type == DRM_PLANE_TYPE_CURSOR && update_native_cursor) { 12620 ret = dm_check_native_cursor_state(new_plane_crtc, plane, 12621 new_plane_state, enable); 12622 if (ret) 12623 return ret; 12624 12625 return 0; 12626 } 12627 12628 needs_reset = should_reset_plane(state, plane, old_plane_state, 12629 new_plane_state); 12630 12631 /* Remove any changed/removed planes */ 12632 if (!enable) { 12633 if (!needs_reset) 12634 return 0; 12635 12636 if (!old_plane_crtc) 12637 return 0; 12638 12639 old_crtc_state = drm_atomic_get_old_crtc_state( 12640 state, old_plane_crtc); 12641 dm_old_crtc_state = to_dm_crtc_state(old_crtc_state); 12642 12643 if (!dm_old_crtc_state->stream) 12644 return 0; 12645 12646 drm_dbg_atomic(old_plane_crtc->dev, "Disabling DRM plane: %d on DRM crtc %d\n", 12647 plane->base.id, old_plane_crtc->base.id); 12648 12649 ret = dm_atomic_get_state(state, &dm_state); 12650 if (ret) 12651 return ret; 12652 12653 if (!dc_state_remove_plane( 12654 dc, 12655 dm_old_crtc_state->stream, 12656 dm_old_plane_state->dc_state, 12657 dm_state->context)) { 12658 12659 return -EINVAL; 12660 } 12661 12662 if (dm_old_plane_state->dc_state) 12663 dc_plane_state_release(dm_old_plane_state->dc_state); 12664 12665 dm_new_plane_state->dc_state = NULL; 12666 12667 *lock_and_validation_needed = true; 12668 12669 } else { /* Add new planes */ 12670 struct dc_plane_state *dc_new_plane_state; 12671 12672 if (drm_atomic_plane_disabling(plane->state, new_plane_state)) 12673 return 0; 12674 12675 if (!new_plane_crtc) 12676 return 0; 12677 12678 new_crtc_state = drm_atomic_get_new_crtc_state(state, new_plane_crtc); 12679 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 12680 12681 if (!dm_new_crtc_state->stream) 12682 return 0; 12683 12684 if (!needs_reset) 12685 return 0; 12686 12687 ret = amdgpu_dm_plane_helper_check_state(new_plane_state, new_crtc_state); 12688 if (ret) 12689 goto out; 12690 12691 WARN_ON(dm_new_plane_state->dc_state); 12692 12693 dc_new_plane_state = dc_create_plane_state(dc); 12694 if (!dc_new_plane_state) { 12695 ret = -ENOMEM; 12696 goto out; 12697 } 12698 12699 drm_dbg_atomic(new_plane_crtc->dev, "Enabling DRM plane: %d on DRM crtc %d\n", 12700 plane->base.id, new_plane_crtc->base.id); 12701 12702 ret = fill_dc_plane_attributes( 12703 drm_to_adev(new_plane_crtc->dev), 12704 dc_new_plane_state, 12705 new_plane_state, 12706 new_crtc_state); 12707 if (ret) { 12708 dc_plane_state_release(dc_new_plane_state); 12709 goto out; 12710 } 12711 12712 ret = dm_atomic_get_state(state, &dm_state); 12713 if (ret) { 12714 dc_plane_state_release(dc_new_plane_state); 12715 goto out; 12716 } 12717 12718 /* 12719 * Any atomic check errors that occur after this will 12720 * not need a release. The plane state will be attached 12721 * to the stream, and therefore part of the atomic 12722 * state. It'll be released when the atomic state is 12723 * cleaned. 12724 */ 12725 if (!dc_state_add_plane( 12726 dc, 12727 dm_new_crtc_state->stream, 12728 dc_new_plane_state, 12729 dm_state->context)) { 12730 12731 dc_plane_state_release(dc_new_plane_state); 12732 ret = -EINVAL; 12733 goto out; 12734 } 12735 12736 dm_new_plane_state->dc_state = dc_new_plane_state; 12737 12738 dm_new_crtc_state->mpo_requested |= (plane->type == DRM_PLANE_TYPE_OVERLAY); 12739 12740 /* Tell DC to do a full surface update every time there 12741 * is a plane change. Inefficient, but works for now. 12742 */ 12743 dm_new_plane_state->dc_state->update_flags.bits.full_update = 1; 12744 12745 *lock_and_validation_needed = true; 12746 } 12747 12748 out: 12749 /* If enabling cursor overlay failed, attempt fallback to native mode */ 12750 if (enable && ret == -EINVAL && plane->type == DRM_PLANE_TYPE_CURSOR) { 12751 ret = dm_check_native_cursor_state(new_plane_crtc, plane, 12752 new_plane_state, enable); 12753 if (ret) 12754 return ret; 12755 12756 dm_new_crtc_state->cursor_mode = DM_CURSOR_NATIVE_MODE; 12757 } 12758 12759 return ret; 12760 } 12761 12762 static void dm_get_oriented_plane_size(struct drm_plane_state *plane_state, 12763 int *src_w, int *src_h) 12764 { 12765 switch (plane_state->rotation & DRM_MODE_ROTATE_MASK) { 12766 case DRM_MODE_ROTATE_90: 12767 case DRM_MODE_ROTATE_270: 12768 *src_w = plane_state->src_h >> 16; 12769 *src_h = plane_state->src_w >> 16; 12770 break; 12771 case DRM_MODE_ROTATE_0: 12772 case DRM_MODE_ROTATE_180: 12773 default: 12774 *src_w = plane_state->src_w >> 16; 12775 *src_h = plane_state->src_h >> 16; 12776 break; 12777 } 12778 } 12779 12780 static void 12781 dm_get_plane_scale(struct drm_plane_state *plane_state, 12782 int *out_plane_scale_w, int *out_plane_scale_h) 12783 { 12784 int plane_src_w, plane_src_h; 12785 12786 dm_get_oriented_plane_size(plane_state, &plane_src_w, &plane_src_h); 12787 *out_plane_scale_w = plane_src_w ? plane_state->crtc_w * 1000 / plane_src_w : 0; 12788 *out_plane_scale_h = plane_src_h ? plane_state->crtc_h * 1000 / plane_src_h : 0; 12789 } 12790 12791 /* 12792 * The normalized_zpos value cannot be used by this iterator directly. It's only 12793 * calculated for enabled planes, potentially causing normalized_zpos collisions 12794 * between enabled/disabled planes in the atomic state. We need a unique value 12795 * so that the iterator will not generate the same object twice, or loop 12796 * indefinitely. 12797 */ 12798 static inline struct __drm_planes_state *__get_next_zpos( 12799 struct drm_atomic_commit *state, 12800 struct __drm_planes_state *prev) 12801 { 12802 unsigned int highest_zpos = 0, prev_zpos = 256; 12803 uint32_t highest_id = 0, prev_id = UINT_MAX; 12804 struct drm_plane_state *new_plane_state; 12805 struct drm_plane *plane; 12806 int i, highest_i = -1; 12807 12808 if (prev != NULL) { 12809 prev_zpos = prev->new_state->zpos; 12810 prev_id = prev->ptr->base.id; 12811 } 12812 12813 for_each_new_plane_in_state(state, plane, new_plane_state, i) { 12814 /* Skip planes with higher zpos than the previously returned */ 12815 if (new_plane_state->zpos > prev_zpos || 12816 (new_plane_state->zpos == prev_zpos && 12817 plane->base.id >= prev_id)) 12818 continue; 12819 12820 /* Save the index of the plane with highest zpos */ 12821 if (new_plane_state->zpos > highest_zpos || 12822 (new_plane_state->zpos == highest_zpos && 12823 plane->base.id > highest_id)) { 12824 highest_zpos = new_plane_state->zpos; 12825 highest_id = plane->base.id; 12826 highest_i = i; 12827 } 12828 } 12829 12830 if (highest_i < 0) 12831 return NULL; 12832 12833 return &state->planes[highest_i]; 12834 } 12835 12836 /* 12837 * Use the uniqueness of the plane's (zpos, drm obj ID) combination to iterate 12838 * by descending zpos, as read from the new plane state. This is the same 12839 * ordering as defined by drm_atomic_normalize_zpos(). 12840 */ 12841 #define for_each_oldnew_plane_in_descending_zpos(__state, plane, old_plane_state, new_plane_state) \ 12842 for (struct __drm_planes_state *__i = __get_next_zpos((__state), NULL); \ 12843 __i != NULL; __i = __get_next_zpos((__state), __i)) \ 12844 for_each_if(((plane) = __i->ptr, \ 12845 (void)(plane) /* Only to avoid unused-but-set-variable warning */, \ 12846 (old_plane_state) = __i->old_state, \ 12847 (new_plane_state) = __i->new_state, 1)) 12848 12849 static int add_affected_mst_dsc_crtcs(struct drm_atomic_commit *state, struct drm_crtc *crtc) 12850 { 12851 struct drm_connector *connector; 12852 struct drm_connector_state *conn_state, *old_conn_state; 12853 struct amdgpu_dm_connector *aconnector = NULL; 12854 int i; 12855 12856 for_each_oldnew_connector_in_state(state, connector, old_conn_state, conn_state, i) { 12857 if (!conn_state->crtc) 12858 conn_state = old_conn_state; 12859 12860 if (conn_state->crtc != crtc) 12861 continue; 12862 12863 if (connector->connector_type == DRM_MODE_CONNECTOR_WRITEBACK) 12864 continue; 12865 12866 aconnector = to_amdgpu_dm_connector(connector); 12867 if (!aconnector->mst_output_port || !aconnector->mst_root) 12868 aconnector = NULL; 12869 else 12870 break; 12871 } 12872 12873 if (!aconnector) 12874 return 0; 12875 12876 return drm_dp_mst_add_affected_dsc_crtcs(state, &aconnector->mst_root->mst_mgr); 12877 } 12878 12879 /** 12880 * DOC: Cursor Modes - Native vs Overlay 12881 * 12882 * In native mode, the cursor uses a integrated cursor pipe within each DCN hw 12883 * plane. It does not require a dedicated hw plane to enable, but it is 12884 * subjected to the same z-order and scaling as the hw plane. It also has format 12885 * restrictions, a RGB cursor in native mode cannot be enabled within a non-RGB 12886 * hw plane. 12887 * 12888 * In overlay mode, the cursor uses a separate DCN hw plane, and thus has its 12889 * own scaling and z-pos. It also has no blending restrictions. It lends to a 12890 * cursor behavior more akin to a DRM client's expectations. However, it does 12891 * occupy an extra DCN plane, and therefore will only be used if a DCN plane is 12892 * available. 12893 */ 12894 12895 /** 12896 * dm_plane_color_pipeline_active() - Check if a plane's color pipeline active. 12897 * @state: DRM atomic state 12898 * @plane: DRM plane to check 12899 * @use_old: if true, inspect the old colorop states; otherwise the new ones 12900 * 12901 * A color pipeline may be selected (color_pipeline != NULL) but still is 12902 * inactive if every colorop in the chain is bypassed. Only return 12903 * true when at least one colorop has bypass == false, meaning the cursor 12904 * would be subjected to the transformation in native mode. 12905 * 12906 * Return: true if the pipeline modifies pixels, false otherwise. 12907 */ 12908 static bool dm_plane_color_pipeline_active(struct drm_atomic_commit *state, 12909 struct drm_plane *plane, 12910 bool use_old) 12911 { 12912 struct drm_colorop *colorop; 12913 struct drm_colorop_state *old_colorop_state, *new_colorop_state; 12914 int i; 12915 12916 for_each_oldnew_colorop_in_state(state, colorop, old_colorop_state, new_colorop_state, i) { 12917 struct drm_colorop_state *cstate = use_old ? old_colorop_state : new_colorop_state; 12918 12919 if (cstate->colorop->plane != plane) 12920 continue; 12921 if (!cstate->bypass) 12922 return true; 12923 } 12924 return false; 12925 } 12926 12927 /** 12928 * dm_crtc_get_cursor_mode() - Determine the required cursor mode on crtc 12929 * @adev: amdgpu device 12930 * @state: DRM atomic state 12931 * @dm_crtc_state: amdgpu state for the CRTC containing the cursor 12932 * @cursor_mode: Returns the required cursor mode on dm_crtc_state 12933 * 12934 * Get whether the cursor should be enabled in native mode, or overlay mode, on 12935 * the dm_crtc_state. 12936 * 12937 * The cursor should be enabled in overlay mode if there exists an underlying 12938 * plane - on which the cursor may be blended - that is either YUV formatted, 12939 * scaled differently from the cursor, or has a color pipeline active. 12940 * 12941 * Since zpos info is required, drm_atomic_normalize_zpos must be called before 12942 * calling this function. 12943 * 12944 * Return: 0 on success, or an error code if getting the cursor plane state 12945 * failed. 12946 */ 12947 static int dm_crtc_get_cursor_mode(struct amdgpu_device *adev, 12948 struct drm_atomic_commit *state, 12949 struct dm_crtc_state *dm_crtc_state, 12950 enum amdgpu_dm_cursor_mode *cursor_mode) 12951 { 12952 struct drm_plane_state *old_plane_state, *plane_state, *cursor_state; 12953 struct drm_crtc_state *crtc_state = &dm_crtc_state->base; 12954 struct drm_plane *plane; 12955 bool consider_mode_change = false; 12956 bool entire_crtc_covered = false; 12957 bool cursor_changed = false; 12958 int underlying_scale_w, underlying_scale_h; 12959 int cursor_scale_w, cursor_scale_h; 12960 int i; 12961 12962 /* Overlay cursor not supported on HW before DCN 12963 * DCN401/420 does not have the cursor-on-scaled-plane or cursor-on-yuv-plane restrictions 12964 * as previous DCN generations, so enable native mode on DCN401/420 12965 * 12966 * Always set native cursor mode when the CRTC is disabled, 12967 * to make sure it doesn't cause atomic commits to fail when 12968 * they are trying to disable the CRTC. 12969 */ 12970 if (amdgpu_ip_version(adev, DCE_HWIP, 0) == IP_VERSION(4, 0, 1) || 12971 amdgpu_ip_version(adev, DCE_HWIP, 0) == IP_VERSION(4, 2, 0) || 12972 amdgpu_ip_version(adev, DCE_HWIP, 0) == IP_VERSION(4, 2, 1) || 12973 !dm_crtc_state->base.enable) { 12974 *cursor_mode = DM_CURSOR_NATIVE_MODE; 12975 return 0; 12976 } 12977 12978 /* Init cursor_mode to be the same as current */ 12979 *cursor_mode = dm_crtc_state->cursor_mode; 12980 12981 /* 12982 * Cursor mode can change if a plane's format changes, scale changes, is 12983 * enabled/disabled, z-order changes, or color management properties change. 12984 */ 12985 for_each_oldnew_plane_in_state(state, plane, old_plane_state, plane_state, i) { 12986 int new_scale_w, new_scale_h, old_scale_w, old_scale_h; 12987 12988 /* Only care about planes on this CRTC */ 12989 if ((drm_plane_mask(plane) & crtc_state->plane_mask) == 0) 12990 continue; 12991 12992 if (plane->type == DRM_PLANE_TYPE_CURSOR) 12993 cursor_changed = true; 12994 12995 if (drm_atomic_plane_enabling(old_plane_state, plane_state) || 12996 drm_atomic_plane_disabling(old_plane_state, plane_state) || 12997 old_plane_state->fb->format != plane_state->fb->format) { 12998 consider_mode_change = true; 12999 break; 13000 } 13001 13002 dm_get_plane_scale(plane_state, &new_scale_w, &new_scale_h); 13003 dm_get_plane_scale(old_plane_state, &old_scale_w, &old_scale_h); 13004 if (new_scale_w != old_scale_w || new_scale_h != old_scale_h) { 13005 consider_mode_change = true; 13006 break; 13007 } 13008 13009 if (dm_plane_color_pipeline_active(state, plane, true) != 13010 dm_plane_color_pipeline_active(state, plane, false)) { 13011 consider_mode_change = true; 13012 break; 13013 } 13014 } 13015 13016 if (!consider_mode_change && !crtc_state->zpos_changed) 13017 return 0; 13018 13019 /* 13020 * If no cursor change on this CRTC, and not enabled on this CRTC, then 13021 * no need to set cursor mode. This avoids needlessly locking the cursor 13022 * state. 13023 */ 13024 if (!cursor_changed && 13025 !(drm_plane_mask(crtc_state->crtc->cursor) & crtc_state->plane_mask)) { 13026 return 0; 13027 } 13028 13029 cursor_state = drm_atomic_get_plane_state(state, 13030 crtc_state->crtc->cursor); 13031 if (IS_ERR(cursor_state)) 13032 return PTR_ERR(cursor_state); 13033 13034 /* Cursor is disabled */ 13035 if (!cursor_state->fb) 13036 return 0; 13037 13038 /* For all planes in descending z-order (all of which are below cursor 13039 * as per zpos definitions), check their scaling and format 13040 */ 13041 for_each_oldnew_plane_in_descending_zpos(state, plane, old_plane_state, plane_state) { 13042 13043 /* Only care about non-cursor planes on this CRTC */ 13044 if ((drm_plane_mask(plane) & crtc_state->plane_mask) == 0 || 13045 plane->type == DRM_PLANE_TYPE_CURSOR) 13046 continue; 13047 13048 /* Underlying plane is YUV format - use overlay cursor */ 13049 if (amdgpu_dm_plane_is_video_format(plane_state->fb->format->format)) { 13050 *cursor_mode = DM_CURSOR_OVERLAY_MODE; 13051 return 0; 13052 } 13053 13054 /* Underlying plane has an active color pipeline - cursor would be transformed */ 13055 if (dm_plane_color_pipeline_active(state, plane, false)) { 13056 *cursor_mode = DM_CURSOR_OVERLAY_MODE; 13057 return 0; 13058 } 13059 13060 dm_get_plane_scale(plane_state, 13061 &underlying_scale_w, &underlying_scale_h); 13062 dm_get_plane_scale(cursor_state, 13063 &cursor_scale_w, &cursor_scale_h); 13064 13065 /* Underlying plane has different scale - use overlay cursor */ 13066 if (cursor_scale_w != underlying_scale_w && 13067 cursor_scale_h != underlying_scale_h) { 13068 *cursor_mode = DM_CURSOR_OVERLAY_MODE; 13069 return 0; 13070 } 13071 13072 /* If this plane covers the whole CRTC, no need to check planes underneath */ 13073 if (plane_state->crtc_x <= 0 && plane_state->crtc_y <= 0 && 13074 plane_state->crtc_x + plane_state->crtc_w >= crtc_state->mode.hdisplay && 13075 plane_state->crtc_y + plane_state->crtc_h >= crtc_state->mode.vdisplay) { 13076 entire_crtc_covered = true; 13077 break; 13078 } 13079 } 13080 13081 /* If planes do not cover the entire CRTC, use overlay mode to enable 13082 * cursor over holes 13083 */ 13084 if (entire_crtc_covered) 13085 *cursor_mode = DM_CURSOR_NATIVE_MODE; 13086 else 13087 *cursor_mode = DM_CURSOR_OVERLAY_MODE; 13088 13089 return 0; 13090 } 13091 13092 static bool amdgpu_dm_crtc_mem_type_changed(struct drm_device *dev, 13093 struct drm_atomic_commit *state, 13094 struct drm_crtc_state *crtc_state) 13095 { 13096 struct drm_plane *plane; 13097 struct drm_plane_state *new_plane_state, *old_plane_state; 13098 13099 drm_for_each_plane_mask(plane, dev, crtc_state->plane_mask) { 13100 new_plane_state = drm_atomic_get_new_plane_state(state, plane); 13101 old_plane_state = drm_atomic_get_old_plane_state(state, plane); 13102 13103 if (!old_plane_state || !new_plane_state) 13104 continue; 13105 13106 if (old_plane_state->fb && new_plane_state->fb && 13107 get_mem_type(old_plane_state->fb) != get_mem_type(new_plane_state->fb)) 13108 return true; 13109 } 13110 13111 return false; 13112 } 13113 13114 /** 13115 * amdgpu_dm_atomic_check() - Atomic check implementation for AMDgpu DM. 13116 * 13117 * @dev: The DRM device 13118 * @state: The atomic state to commit 13119 * 13120 * Validate that the given atomic state is programmable by DC into hardware. 13121 * This involves constructing a &struct dc_state reflecting the new hardware 13122 * state we wish to commit, then querying DC to see if it is programmable. It's 13123 * important not to modify the existing DC state. Otherwise, atomic_check 13124 * may unexpectedly commit hardware changes. 13125 * 13126 * When validating the DC state, it's important that the right locks are 13127 * acquired. For full updates case which removes/adds/updates streams on one 13128 * CRTC while flipping on another CRTC, acquiring global lock will guarantee 13129 * that any such full update commit will wait for completion of any outstanding 13130 * flip using DRMs synchronization events. 13131 * 13132 * Note that DM adds the affected connectors for all CRTCs in state, when that 13133 * might not seem necessary. This is because DC stream creation requires the 13134 * DC sink, which is tied to the DRM connector state. Cleaning this up should 13135 * be possible but non-trivial - a possible TODO item. 13136 * 13137 * Return: -Error code if validation failed. 13138 */ 13139 static int amdgpu_dm_atomic_check(struct drm_device *dev, 13140 struct drm_atomic_commit *state) 13141 { 13142 struct amdgpu_device *adev = drm_to_adev(dev); 13143 struct dm_atomic_state *dm_state = NULL; 13144 struct dc *dc = adev->dm.dc; 13145 struct drm_connector *connector; 13146 struct drm_connector_state *old_con_state, *new_con_state; 13147 struct drm_crtc *crtc; 13148 struct drm_crtc_state *old_crtc_state, *new_crtc_state; 13149 struct drm_plane *plane; 13150 struct drm_plane_state *old_plane_state, *new_plane_state, *new_cursor_state; 13151 enum dc_status status; 13152 int ret, i; 13153 bool lock_and_validation_needed = false; 13154 bool is_top_most_overlay = true; 13155 struct dm_crtc_state *dm_old_crtc_state, *dm_new_crtc_state; 13156 struct drm_dp_mst_topology_mgr *mgr; 13157 struct drm_dp_mst_topology_state *mst_state; 13158 struct dsc_mst_fairness_vars vars[MAX_PIPES] = {0}; 13159 13160 trace_amdgpu_dm_atomic_check_begin(state); 13161 13162 ret = drm_atomic_helper_check_modeset(dev, state); 13163 if (ret) { 13164 drm_dbg_atomic(dev, "drm_atomic_helper_check_modeset() failed\n"); 13165 goto fail; 13166 } 13167 13168 /* Check connector changes */ 13169 for_each_oldnew_connector_in_state(state, connector, old_con_state, new_con_state, i) { 13170 struct dm_connector_state *dm_old_con_state = to_dm_connector_state(old_con_state); 13171 struct dm_connector_state *dm_new_con_state = to_dm_connector_state(new_con_state); 13172 13173 /* Skip connectors that are disabled or part of modeset already. */ 13174 if (!new_con_state->crtc) 13175 continue; 13176 13177 new_crtc_state = drm_atomic_get_crtc_state(state, new_con_state->crtc); 13178 if (IS_ERR(new_crtc_state)) { 13179 drm_dbg_atomic(dev, "drm_atomic_get_crtc_state() failed\n"); 13180 ret = PTR_ERR(new_crtc_state); 13181 goto fail; 13182 } 13183 13184 if (dm_old_con_state->abm_level != dm_new_con_state->abm_level || 13185 dm_old_con_state->scaling != dm_new_con_state->scaling) 13186 new_crtc_state->connectors_changed = true; 13187 } 13188 13189 if (dc_resource_is_dsc_encoding_supported(dc)) { 13190 for_each_oldnew_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state, i) { 13191 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 13192 dm_new_crtc_state->mode_changed_independent_from_dsc = new_crtc_state->mode_changed; 13193 } 13194 13195 for_each_oldnew_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state, i) { 13196 if (drm_atomic_crtc_needs_modeset(new_crtc_state)) { 13197 ret = add_affected_mst_dsc_crtcs(state, crtc); 13198 if (ret) { 13199 drm_dbg_atomic(dev, "add_affected_mst_dsc_crtcs() failed\n"); 13200 goto fail; 13201 } 13202 } 13203 } 13204 } 13205 for_each_oldnew_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state, i) { 13206 dm_old_crtc_state = to_dm_crtc_state(old_crtc_state); 13207 13208 if (!drm_atomic_crtc_needs_modeset(new_crtc_state) && 13209 !new_crtc_state->color_mgmt_changed && 13210 old_crtc_state->vrr_enabled == new_crtc_state->vrr_enabled && 13211 dm_old_crtc_state->dsc_force_changed == false) 13212 continue; 13213 13214 ret = amdgpu_dm_verify_lut_sizes(new_crtc_state); 13215 if (ret) { 13216 drm_dbg_atomic(dev, "amdgpu_dm_verify_lut_sizes() failed\n"); 13217 goto fail; 13218 } 13219 13220 if (!new_crtc_state->enable) 13221 continue; 13222 13223 ret = drm_atomic_add_affected_connectors(state, crtc); 13224 if (ret) { 13225 drm_dbg_atomic(dev, "drm_atomic_add_affected_connectors() failed\n"); 13226 goto fail; 13227 } 13228 13229 ret = drm_atomic_add_affected_planes(state, crtc); 13230 if (ret) { 13231 drm_dbg_atomic(dev, "drm_atomic_add_affected_planes() failed\n"); 13232 goto fail; 13233 } 13234 13235 if (dm_old_crtc_state->dsc_force_changed) 13236 new_crtc_state->mode_changed = true; 13237 } 13238 13239 /* 13240 * Add all primary and overlay planes on the CRTC to the state 13241 * whenever a plane is enabled to maintain correct z-ordering 13242 * and to enable fast surface updates. 13243 */ 13244 drm_for_each_crtc(crtc, dev) { 13245 bool modified = false; 13246 13247 for_each_oldnew_plane_in_state(state, plane, old_plane_state, new_plane_state, i) { 13248 if (plane->type == DRM_PLANE_TYPE_CURSOR) 13249 continue; 13250 13251 if (new_plane_state->crtc == crtc || 13252 old_plane_state->crtc == crtc) { 13253 modified = true; 13254 break; 13255 } 13256 } 13257 13258 if (!modified) 13259 continue; 13260 13261 drm_for_each_plane_mask(plane, state->dev, crtc->state->plane_mask) { 13262 if (plane->type == DRM_PLANE_TYPE_CURSOR) 13263 continue; 13264 13265 new_plane_state = 13266 drm_atomic_get_plane_state(state, plane); 13267 13268 if (IS_ERR(new_plane_state)) { 13269 ret = PTR_ERR(new_plane_state); 13270 drm_dbg_atomic(dev, "new_plane_state is BAD\n"); 13271 goto fail; 13272 } 13273 } 13274 } 13275 13276 /* 13277 * DC consults the zpos (layer_index in DC terminology) to determine the 13278 * hw plane on which to enable the hw cursor (see 13279 * `dcn10_can_pipe_disable_cursor`). By now, all modified planes are in 13280 * atomic state, so call drm helper to normalize zpos. 13281 */ 13282 ret = drm_atomic_normalize_zpos(dev, state); 13283 if (ret) { 13284 drm_dbg(dev, "drm_atomic_normalize_zpos() failed\n"); 13285 goto fail; 13286 } 13287 13288 /* 13289 * Determine whether cursors on each CRTC should be enabled in native or 13290 * overlay mode. 13291 */ 13292 for_each_new_crtc_in_state(state, crtc, new_crtc_state, i) { 13293 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 13294 13295 ret = dm_crtc_get_cursor_mode(adev, state, dm_new_crtc_state, 13296 &dm_new_crtc_state->cursor_mode); 13297 if (ret) { 13298 drm_dbg(dev, "Failed to determine cursor mode\n"); 13299 goto fail; 13300 } 13301 13302 /* 13303 * If overlay cursor is needed, DC cannot go through the 13304 * native cursor update path. All enabled planes on the CRTC 13305 * need to be added for DC to not disable a plane by mistake 13306 */ 13307 if (dm_new_crtc_state->cursor_mode == DM_CURSOR_OVERLAY_MODE) { 13308 if (amdgpu_ip_version(adev, DCE_HWIP, 0) == 0) { 13309 drm_dbg(dev, "Overlay cursor not supported on DCE\n"); 13310 ret = -EINVAL; 13311 goto fail; 13312 } 13313 13314 ret = drm_atomic_add_affected_planes(state, crtc); 13315 if (ret) 13316 goto fail; 13317 } 13318 } 13319 13320 /* Remove exiting planes if they are modified */ 13321 for_each_oldnew_plane_in_descending_zpos(state, plane, old_plane_state, new_plane_state) { 13322 13323 ret = dm_update_plane_state(dc, state, plane, 13324 old_plane_state, 13325 new_plane_state, 13326 false, 13327 &lock_and_validation_needed, 13328 &is_top_most_overlay); 13329 if (ret) { 13330 drm_dbg_atomic(dev, "dm_update_plane_state() failed\n"); 13331 goto fail; 13332 } 13333 } 13334 13335 /* Disable all crtcs which require disable */ 13336 for_each_oldnew_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state, i) { 13337 ret = dm_update_crtc_state(&adev->dm, state, crtc, 13338 old_crtc_state, 13339 new_crtc_state, 13340 false, 13341 &lock_and_validation_needed); 13342 if (ret) { 13343 drm_dbg_atomic(dev, "DISABLE: dm_update_crtc_state() failed\n"); 13344 goto fail; 13345 } 13346 } 13347 13348 /* Enable all crtcs which require enable */ 13349 for_each_oldnew_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state, i) { 13350 ret = dm_update_crtc_state(&adev->dm, state, crtc, 13351 old_crtc_state, 13352 new_crtc_state, 13353 true, 13354 &lock_and_validation_needed); 13355 if (ret) { 13356 drm_dbg_atomic(dev, "ENABLE: dm_update_crtc_state() failed\n"); 13357 goto fail; 13358 } 13359 } 13360 13361 /* Add new/modified planes */ 13362 for_each_oldnew_plane_in_descending_zpos(state, plane, old_plane_state, new_plane_state) { 13363 ret = dm_update_plane_state(dc, state, plane, 13364 old_plane_state, 13365 new_plane_state, 13366 true, 13367 &lock_and_validation_needed, 13368 &is_top_most_overlay); 13369 if (ret) { 13370 drm_dbg_atomic(dev, "dm_update_plane_state() failed\n"); 13371 goto fail; 13372 } 13373 } 13374 13375 #if defined(CONFIG_DRM_AMD_DC_FP) 13376 if (dc_resource_is_dsc_encoding_supported(dc)) { 13377 ret = pre_validate_dsc(state, &dm_state, vars); 13378 if (ret != 0) 13379 goto fail; 13380 } 13381 #endif 13382 13383 /* Run this here since we want to validate the streams we created */ 13384 ret = drm_atomic_helper_check_planes(dev, state); 13385 if (ret) { 13386 drm_dbg_atomic(dev, "drm_atomic_helper_check_planes() failed\n"); 13387 goto fail; 13388 } 13389 13390 for_each_new_crtc_in_state(state, crtc, new_crtc_state, i) { 13391 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 13392 if (dm_new_crtc_state->mpo_requested) 13393 drm_dbg_atomic(dev, "MPO enablement requested on crtc:[%p]\n", crtc); 13394 } 13395 13396 /* Check cursor restrictions */ 13397 for_each_new_crtc_in_state(state, crtc, new_crtc_state, i) { 13398 enum amdgpu_dm_cursor_mode required_cursor_mode; 13399 int is_rotated, is_scaled; 13400 13401 /* Overlay cusor not subject to native cursor restrictions */ 13402 dm_new_crtc_state = to_dm_crtc_state(new_crtc_state); 13403 if (dm_new_crtc_state->cursor_mode == DM_CURSOR_OVERLAY_MODE) 13404 continue; 13405 13406 /* Check if rotation or scaling is enabled on DCN401 */ 13407 if ((drm_plane_mask(crtc->cursor) & 13408 new_crtc_state->plane_mask) && 13409 (amdgpu_ip_version(adev, DCE_HWIP, 0) == IP_VERSION(4, 2, 1) || 13410 amdgpu_ip_version(adev, DCE_HWIP, 0) == IP_VERSION(4, 2, 0) || 13411 amdgpu_ip_version(adev, DCE_HWIP, 0) == IP_VERSION(4, 0, 1))) { 13412 new_cursor_state = drm_atomic_get_new_plane_state(state, crtc->cursor); 13413 13414 is_rotated = new_cursor_state && 13415 ((new_cursor_state->rotation & DRM_MODE_ROTATE_MASK) != DRM_MODE_ROTATE_0); 13416 is_scaled = new_cursor_state && ((new_cursor_state->src_w >> 16 != new_cursor_state->crtc_w) || 13417 (new_cursor_state->src_h >> 16 != new_cursor_state->crtc_h)); 13418 13419 if (is_rotated || is_scaled) { 13420 drm_dbg_driver( 13421 crtc->dev, 13422 "[CRTC:%d:%s] cannot enable hardware cursor due to rotation/scaling\n", 13423 crtc->base.id, crtc->name); 13424 ret = -EINVAL; 13425 goto fail; 13426 } 13427 } 13428 13429 /* If HW can only do native cursor, check restrictions again */ 13430 ret = dm_crtc_get_cursor_mode(adev, state, dm_new_crtc_state, 13431 &required_cursor_mode); 13432 if (ret) { 13433 drm_dbg_driver(crtc->dev, 13434 "[CRTC:%d:%s] Checking cursor mode failed\n", 13435 crtc->base.id, crtc->name); 13436 goto fail; 13437 } else if (required_cursor_mode == DM_CURSOR_OVERLAY_MODE) { 13438 drm_dbg_driver(crtc->dev, 13439 "[CRTC:%d:%s] Cannot enable native cursor due to scaling, YUV, or color pipeline restrictions\n", 13440 crtc->base.id, crtc->name); 13441 ret = -EINVAL; 13442 goto fail; 13443 } 13444 } 13445 13446 if (state->legacy_cursor_update) { 13447 /* 13448 * This is a fast cursor update coming from the plane update 13449 * helper, check if it can be done asynchronously for better 13450 * performance. 13451 */ 13452 state->async_update = 13453 !drm_atomic_helper_async_check(dev, state); 13454 13455 /* 13456 * Skip the remaining global validation if this is an async 13457 * update. Cursor updates can be done without affecting 13458 * state or bandwidth calcs and this avoids the performance 13459 * penalty of locking the private state object and 13460 * allocating a new dc_state. 13461 */ 13462 if (state->async_update) 13463 return 0; 13464 } 13465 13466 /* Check scaling and underscan changes*/ 13467 /* TODO Removed scaling changes validation due to inability to commit 13468 * new stream into context w\o causing full reset. Need to 13469 * decide how to handle. 13470 */ 13471 for_each_oldnew_connector_in_state(state, connector, old_con_state, new_con_state, i) { 13472 struct dm_connector_state *dm_old_con_state = to_dm_connector_state(old_con_state); 13473 struct dm_connector_state *dm_new_con_state = to_dm_connector_state(new_con_state); 13474 struct amdgpu_crtc *acrtc = to_amdgpu_crtc(dm_new_con_state->base.crtc); 13475 13476 /* Skip any modesets/resets */ 13477 if (!acrtc || drm_atomic_crtc_needs_modeset( 13478 drm_atomic_get_new_crtc_state(state, &acrtc->base))) 13479 continue; 13480 13481 /* Skip any thing not scale or underscan changes */ 13482 if (!is_scaling_state_different(dm_new_con_state, dm_old_con_state)) 13483 continue; 13484 13485 lock_and_validation_needed = true; 13486 } 13487 13488 /* set the slot info for each mst_state based on the link encoding format */ 13489 for_each_new_mst_mgr_in_state(state, mgr, mst_state, i) { 13490 struct amdgpu_dm_connector *aconnector; 13491 struct drm_connector *connector; 13492 struct drm_connector_list_iter iter; 13493 u8 link_coding_cap; 13494 13495 drm_connector_list_iter_begin(dev, &iter); 13496 drm_for_each_connector_iter(connector, &iter) { 13497 if (connector->index == mst_state->mgr->conn_base_id) { 13498 aconnector = to_amdgpu_dm_connector(connector); 13499 link_coding_cap = dc_link_dp_mst_decide_link_encoding_format(aconnector->dc_link); 13500 drm_dp_mst_update_slots(mst_state, link_coding_cap); 13501 13502 break; 13503 } 13504 } 13505 drm_connector_list_iter_end(&iter); 13506 } 13507 13508 /** 13509 * Streams and planes are reset when there are changes that affect 13510 * bandwidth. Anything that affects bandwidth needs to go through 13511 * DC global validation to ensure that the configuration can be applied 13512 * to hardware. 13513 * 13514 * We have to currently stall out here in atomic_check for outstanding 13515 * commits to finish in this case because our IRQ handlers reference 13516 * DRM state directly - we can end up disabling interrupts too early 13517 * if we don't. 13518 * 13519 * TODO: Remove this stall and drop DM state private objects. 13520 */ 13521 if (lock_and_validation_needed) { 13522 ret = dm_atomic_get_state(state, &dm_state); 13523 if (ret) { 13524 drm_dbg_atomic(dev, "dm_atomic_get_state() failed\n"); 13525 goto fail; 13526 } 13527 13528 ret = do_aquire_global_lock(dev, state); 13529 if (ret) { 13530 drm_dbg_atomic(dev, "do_aquire_global_lock() failed\n"); 13531 goto fail; 13532 } 13533 13534 #if defined(CONFIG_DRM_AMD_DC_FP) 13535 if (dc_resource_is_dsc_encoding_supported(dc)) { 13536 ret = compute_mst_dsc_configs_for_state(state, dm_state->context, vars); 13537 if (ret) { 13538 drm_dbg_atomic(dev, "MST_DSC compute_mst_dsc_configs_for_state() failed\n"); 13539 ret = -EINVAL; 13540 goto fail; 13541 } 13542 } 13543 #endif 13544 13545 ret = dm_update_mst_vcpi_slots_for_dsc(state, dm_state->context, vars); 13546 if (ret) { 13547 drm_dbg_atomic(dev, "dm_update_mst_vcpi_slots_for_dsc() failed\n"); 13548 goto fail; 13549 } 13550 13551 /* 13552 * Perform validation of MST topology in the state: 13553 * We need to perform MST atomic check before calling 13554 * dc_validate_global_state(), or there is a chance 13555 * to get stuck in an infinite loop and hang eventually. 13556 */ 13557 ret = drm_dp_mst_atomic_check(state); 13558 if (ret) { 13559 drm_dbg_atomic(dev, "MST drm_dp_mst_atomic_check() failed\n"); 13560 goto fail; 13561 } 13562 status = dc_validate_global_state(dc, dm_state->context, DC_VALIDATE_MODE_ONLY); 13563 if (status != DC_OK) { 13564 drm_dbg_atomic(dev, "DC global validation failure: %s (%d)", 13565 dc_status_to_str(status), status); 13566 ret = -EINVAL; 13567 goto fail; 13568 } 13569 } else { 13570 /* 13571 * The commit is a fast update. Fast updates shouldn't change 13572 * the DC context, affect global validation, and can have their 13573 * commit work done in parallel with other commits not touching 13574 * the same resource. If we have a new DC context as part of 13575 * the DM atomic state from validation we need to free it and 13576 * retain the existing one instead. 13577 * 13578 * Furthermore, since the DM atomic state only contains the DC 13579 * context and can safely be annulled, we can free the state 13580 * and clear the associated private object now to free 13581 * some memory and avoid a possible use-after-free later. 13582 */ 13583 13584 for (i = 0; i < state->num_private_objs; i++) { 13585 struct drm_private_obj *obj = state->private_objs[i].ptr; 13586 13587 if (obj->funcs == adev->dm.atomic_obj.funcs) { 13588 int j = state->num_private_objs-1; 13589 13590 dm_atomic_destroy_state(obj, 13591 state->private_objs[i].state_to_destroy); 13592 13593 /* If i is not at the end of the array then the 13594 * last element needs to be moved to where i was 13595 * before the array can safely be truncated. 13596 */ 13597 if (i != j) 13598 state->private_objs[i] = 13599 state->private_objs[j]; 13600 13601 state->private_objs[j].ptr = NULL; 13602 state->private_objs[j].state_to_destroy = NULL; 13603 state->private_objs[j].old_state = NULL; 13604 state->private_objs[j].new_state = NULL; 13605 13606 state->num_private_objs = j; 13607 break; 13608 } 13609 } 13610 } 13611 13612 /* Store the overall update type for use later in atomic check. */ 13613 for_each_new_crtc_in_state(state, crtc, new_crtc_state, i) { 13614 struct dm_crtc_state *dm_new_crtc_state = 13615 to_dm_crtc_state(new_crtc_state); 13616 13617 /* 13618 * Only allow async flips for fast updates that don't change 13619 * the FB pitch, the DCC state, rotation, mem_type, etc. 13620 */ 13621 if (new_crtc_state->async_flip && 13622 (lock_and_validation_needed || 13623 amdgpu_dm_crtc_mem_type_changed(dev, state, new_crtc_state))) { 13624 drm_dbg_atomic(crtc->dev, 13625 "[CRTC:%d:%s] async flips are only supported for fast updates\n", 13626 crtc->base.id, crtc->name); 13627 ret = -EINVAL; 13628 goto fail; 13629 } 13630 13631 dm_new_crtc_state->update_type = lock_and_validation_needed ? 13632 UPDATE_TYPE_FULL : UPDATE_TYPE_FAST; 13633 } 13634 13635 /* Must be success */ 13636 WARN_ON(ret); 13637 13638 trace_amdgpu_dm_atomic_check_finish(state, ret); 13639 13640 return ret; 13641 13642 fail: 13643 if (ret == -EDEADLK) 13644 drm_dbg_atomic(dev, "Atomic check stopped to avoid deadlock.\n"); 13645 else if (ret == -EINTR || ret == -EAGAIN || ret == -ERESTARTSYS) 13646 drm_dbg_atomic(dev, "Atomic check stopped due to signal.\n"); 13647 else 13648 drm_dbg_atomic(dev, "Atomic check failed with err: %d\n", ret); 13649 13650 trace_amdgpu_dm_atomic_check_finish(state, ret); 13651 13652 return ret; 13653 } 13654 13655 static bool dm_edid_parser_send_cea(struct amdgpu_display_manager *dm, 13656 unsigned int offset, 13657 unsigned int total_length, 13658 u8 *data, 13659 unsigned int length, 13660 struct amdgpu_hdmi_vsdb_info *vsdb) 13661 { 13662 bool res; 13663 union dmub_rb_cmd cmd; 13664 struct dmub_cmd_send_edid_cea *input; 13665 struct dmub_cmd_edid_cea_output *output; 13666 13667 if (length > DMUB_EDID_CEA_DATA_CHUNK_BYTES) 13668 return false; 13669 13670 memset(&cmd, 0, sizeof(cmd)); 13671 13672 input = &cmd.edid_cea.data.input; 13673 13674 cmd.edid_cea.header.type = DMUB_CMD__EDID_CEA; 13675 cmd.edid_cea.header.sub_type = 0; 13676 cmd.edid_cea.header.payload_bytes = 13677 sizeof(cmd.edid_cea) - sizeof(cmd.edid_cea.header); 13678 input->offset = offset; 13679 input->length = length; 13680 input->cea_total_length = total_length; 13681 memcpy(input->payload, data, length); 13682 13683 res = dc_wake_and_execute_dmub_cmd(dm->dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY); 13684 if (!res) { 13685 drm_err(adev_to_drm(dm->adev), "EDID CEA parser failed\n"); 13686 return false; 13687 } 13688 13689 output = &cmd.edid_cea.data.output; 13690 13691 if (output->type == DMUB_CMD__EDID_CEA_ACK) { 13692 if (!output->ack.success) { 13693 drm_err(adev_to_drm(dm->adev), "EDID CEA ack failed at offset %d\n", 13694 output->ack.offset); 13695 } 13696 } else if (output->type == DMUB_CMD__EDID_CEA_AMD_VSDB) { 13697 if (!output->amd_vsdb.vsdb_found) 13698 return false; 13699 13700 vsdb->freesync_supported = output->amd_vsdb.freesync_supported; 13701 vsdb->amd_vsdb_version = output->amd_vsdb.amd_vsdb_version; 13702 vsdb->min_refresh_rate_hz = output->amd_vsdb.min_frame_rate; 13703 vsdb->max_refresh_rate_hz = output->amd_vsdb.max_frame_rate; 13704 vsdb->freesync_mccs_vcp_code = output->amd_vsdb.freesync_mccs_vcp_code; 13705 } else { 13706 drm_warn(adev_to_drm(dm->adev), "Unknown EDID CEA parser results\n"); 13707 return false; 13708 } 13709 13710 return true; 13711 } 13712 13713 static bool parse_edid_cea_dmcu(struct amdgpu_display_manager *dm, 13714 u8 *edid_ext, int len, 13715 struct amdgpu_hdmi_vsdb_info *vsdb_info) 13716 { 13717 int i; 13718 13719 /* send extension block to DMCU for parsing */ 13720 for (i = 0; i < len; i += 8) { 13721 bool res; 13722 int offset; 13723 13724 /* send 8 bytes a time */ 13725 if (!dc_edid_parser_send_cea(dm->dc, i, len, &edid_ext[i], 8)) 13726 return false; 13727 13728 if (i+8 == len) { 13729 /* EDID block sent completed, expect result */ 13730 int version, min_rate, max_rate; 13731 13732 res = dc_edid_parser_recv_amd_vsdb(dm->dc, &version, &min_rate, &max_rate); 13733 if (res) { 13734 /* amd vsdb found */ 13735 vsdb_info->freesync_supported = 1; 13736 vsdb_info->amd_vsdb_version = version; 13737 vsdb_info->min_refresh_rate_hz = min_rate; 13738 vsdb_info->max_refresh_rate_hz = max_rate; 13739 /* Not enabled on DMCU*/ 13740 vsdb_info->freesync_mccs_vcp_code = 0; 13741 return true; 13742 } 13743 /* not amd vsdb */ 13744 return false; 13745 } 13746 13747 /* check for ack*/ 13748 res = dc_edid_parser_recv_cea_ack(dm->dc, &offset); 13749 if (!res) 13750 return false; 13751 } 13752 13753 return false; 13754 } 13755 13756 static bool parse_edid_cea_dmub(struct amdgpu_display_manager *dm, 13757 u8 *edid_ext, int len, 13758 struct amdgpu_hdmi_vsdb_info *vsdb_info) 13759 { 13760 int i; 13761 13762 /* send extension block to DMCU for parsing */ 13763 for (i = 0; i < len; i += 8) { 13764 /* send 8 bytes a time */ 13765 if (!dm_edid_parser_send_cea(dm, i, len, &edid_ext[i], 8, vsdb_info)) 13766 return false; 13767 } 13768 13769 return vsdb_info->freesync_supported; 13770 } 13771 13772 static bool parse_edid_cea(struct amdgpu_dm_connector *aconnector, 13773 u8 *edid_ext, int len, 13774 struct amdgpu_hdmi_vsdb_info *vsdb_info) 13775 { 13776 struct amdgpu_device *adev = drm_to_adev(aconnector->base.dev); 13777 bool ret; 13778 13779 mutex_lock(&adev->dm.dc_lock); 13780 if (adev->dm.dmub_srv) 13781 ret = parse_edid_cea_dmub(&adev->dm, edid_ext, len, vsdb_info); 13782 else 13783 ret = parse_edid_cea_dmcu(&adev->dm, edid_ext, len, vsdb_info); 13784 mutex_unlock(&adev->dm.dc_lock); 13785 return ret; 13786 } 13787 13788 static void parse_edid_displayid_vrr(struct drm_connector *connector, 13789 const struct edid *edid) 13790 { 13791 u8 *edid_ext = NULL; 13792 int i; 13793 int j = 0; 13794 u16 min_vfreq; 13795 u16 max_vfreq; 13796 13797 if (!edid || !edid->extensions) 13798 return; 13799 13800 /* Find DisplayID extension */ 13801 for (i = 0; i < edid->extensions; i++) { 13802 edid_ext = (void *)(edid + (i + 1)); 13803 if (edid_ext[0] == DISPLAYID_EXT) 13804 break; 13805 } 13806 13807 if (i == edid->extensions) 13808 return; 13809 13810 while (j < EDID_LENGTH) { 13811 /* Get dynamic video timing range from DisplayID if available */ 13812 if (EDID_LENGTH - j > 13 && edid_ext[j] == 0x25 && 13813 (edid_ext[j+1] & 0xFE) == 0 && (edid_ext[j+2] == 9)) { 13814 min_vfreq = edid_ext[j+9]; 13815 if (edid_ext[j+1] & 7) 13816 max_vfreq = edid_ext[j+10] + ((edid_ext[j+11] & 3) << 8); 13817 else 13818 max_vfreq = edid_ext[j+10]; 13819 13820 if (max_vfreq && min_vfreq) { 13821 connector->display_info.monitor_range.max_vfreq = max_vfreq; 13822 connector->display_info.monitor_range.min_vfreq = min_vfreq; 13823 13824 return; 13825 } 13826 } 13827 j++; 13828 } 13829 } 13830 13831 static int get_amd_vsdb(struct amdgpu_dm_connector *aconnector, 13832 struct amdgpu_hdmi_vsdb_info *vsdb_info) 13833 { 13834 struct drm_connector *connector = &aconnector->base; 13835 13836 vsdb_info->replay_mode = connector->display_info.amd_vsdb.replay_mode; 13837 vsdb_info->amd_vsdb_version = connector->display_info.amd_vsdb.version; 13838 13839 return connector->display_info.amd_vsdb.version != 0; 13840 } 13841 13842 static int parse_hdmi_amd_vsdb(struct amdgpu_dm_connector *aconnector, 13843 const struct edid *edid, 13844 struct amdgpu_hdmi_vsdb_info *vsdb_info) 13845 { 13846 u8 *edid_ext = NULL; 13847 int i; 13848 bool valid_vsdb_found = false; 13849 13850 /*----- drm_find_cea_extension() -----*/ 13851 /* No EDID or EDID extensions */ 13852 if (edid == NULL || edid->extensions == 0) 13853 return -ENODEV; 13854 13855 /* Find CEA extension */ 13856 for (i = 0; i < edid->extensions; i++) { 13857 edid_ext = (uint8_t *)edid + EDID_LENGTH * (i + 1); 13858 if (edid_ext[0] == CEA_EXT) 13859 break; 13860 } 13861 13862 if (i == edid->extensions) 13863 return -ENODEV; 13864 13865 /*----- cea_db_offsets() -----*/ 13866 if (edid_ext[0] != CEA_EXT) 13867 return -ENODEV; 13868 13869 valid_vsdb_found = parse_edid_cea(aconnector, edid_ext, EDID_LENGTH, vsdb_info); 13870 13871 return valid_vsdb_found ? i : -ENODEV; 13872 } 13873 13874 /** 13875 * amdgpu_dm_update_freesync_caps - Update Freesync capabilities 13876 * 13877 * @connector: Connector to query. 13878 * @drm_edid: DRM EDID from monitor 13879 * @do_mccs: Controls whether MCCS (Monitor Control Command Set) over 13880 * DDC (Display Data Channel) transactions are performed. When true, 13881 * the driver queries the monitor to get or update additional FreeSync 13882 * capability information. When false, these transactions are skipped. 13883 * 13884 * Amdgpu supports Freesync in DP and HDMI displays, and it is required to keep 13885 * track of some of the display information in the internal data struct used by 13886 * amdgpu_dm. This function checks which type of connector we need to set the 13887 * FreeSync parameters. 13888 */ 13889 void amdgpu_dm_update_freesync_caps(struct drm_connector *connector, 13890 const struct drm_edid *drm_edid, bool do_mccs) 13891 { 13892 int i = 0; 13893 struct amdgpu_dm_connector *amdgpu_dm_connector = 13894 to_amdgpu_dm_connector(connector); 13895 struct dm_connector_state *dm_con_state = NULL; 13896 struct dc_sink *sink; 13897 struct amdgpu_device *adev = drm_to_adev(connector->dev); 13898 struct amdgpu_hdmi_vsdb_info vsdb_info = {0}; 13899 const struct edid *edid; 13900 bool freesync_capable = false; 13901 enum adaptive_sync_type as_type = ADAPTIVE_SYNC_TYPE_NONE; 13902 13903 if (!connector->state) { 13904 drm_err(adev_to_drm(adev), "%s - Connector has no state", __func__); 13905 goto update; 13906 } 13907 13908 sink = amdgpu_dm_connector->dc_sink ? 13909 amdgpu_dm_connector->dc_sink : 13910 amdgpu_dm_connector->dc_em_sink; 13911 13912 drm_edid_connector_update(connector, drm_edid); 13913 13914 if (!drm_edid || !sink) { 13915 dm_con_state = to_dm_connector_state(connector->state); 13916 13917 amdgpu_dm_connector->min_vfreq = 0; 13918 amdgpu_dm_connector->max_vfreq = 0; 13919 freesync_capable = false; 13920 13921 goto update; 13922 } 13923 13924 dm_con_state = to_dm_connector_state(connector->state); 13925 13926 if (!adev->dm.freesync_module || !dc_supports_vrr(sink->ctx->dce_version)) 13927 goto update; 13928 13929 edid = drm_edid_raw(drm_edid); // FIXME: Get rid of drm_edid_raw() 13930 13931 /* Some eDP panels only have the refresh rate range info in DisplayID */ 13932 if ((connector->display_info.monitor_range.min_vfreq == 0 || 13933 connector->display_info.monitor_range.max_vfreq == 0)) 13934 parse_edid_displayid_vrr(connector, edid); 13935 13936 if (edid && (sink->sink_signal == SIGNAL_TYPE_DISPLAY_PORT || 13937 sink->sink_signal == SIGNAL_TYPE_EDP)) { 13938 if (amdgpu_dm_connector->dc_link && 13939 amdgpu_dm_connector->dc_link->dpcd_caps.allow_invalid_MSA_timing_param) { 13940 amdgpu_dm_connector->min_vfreq = connector->display_info.monitor_range.min_vfreq; 13941 amdgpu_dm_connector->max_vfreq = connector->display_info.monitor_range.max_vfreq; 13942 if (amdgpu_dm_connector->max_vfreq - amdgpu_dm_connector->min_vfreq > 10) 13943 freesync_capable = true; 13944 } 13945 13946 get_amd_vsdb(amdgpu_dm_connector, &vsdb_info); 13947 13948 if (vsdb_info.replay_mode) { 13949 amdgpu_dm_connector->vsdb_info.replay_mode = vsdb_info.replay_mode; 13950 amdgpu_dm_connector->vsdb_info.amd_vsdb_version = vsdb_info.amd_vsdb_version; 13951 amdgpu_dm_connector->as_type = ADAPTIVE_SYNC_TYPE_EDP; 13952 } 13953 13954 } else if (drm_edid && sink->sink_signal == SIGNAL_TYPE_HDMI_TYPE_A) { 13955 i = parse_hdmi_amd_vsdb(amdgpu_dm_connector, edid, &vsdb_info); 13956 if (i >= 0) { 13957 amdgpu_dm_connector->vsdb_info = vsdb_info; 13958 sink->edid_caps.freesync_vcp_code = vsdb_info.freesync_mccs_vcp_code; 13959 13960 if (vsdb_info.freesync_supported) { 13961 amdgpu_dm_connector->min_vfreq = vsdb_info.min_refresh_rate_hz; 13962 amdgpu_dm_connector->max_vfreq = vsdb_info.max_refresh_rate_hz; 13963 if (amdgpu_dm_connector->max_vfreq - amdgpu_dm_connector->min_vfreq > 10) 13964 freesync_capable = true; 13965 13966 connector->display_info.monitor_range.min_vfreq = vsdb_info.min_refresh_rate_hz; 13967 connector->display_info.monitor_range.max_vfreq = vsdb_info.max_refresh_rate_hz; 13968 } 13969 } 13970 } 13971 13972 if (amdgpu_dm_connector->dc_link) 13973 as_type = dm_get_adaptive_sync_support_type(amdgpu_dm_connector->dc_link); 13974 13975 if (as_type == FREESYNC_TYPE_PCON_IN_WHITELIST) { 13976 i = parse_hdmi_amd_vsdb(amdgpu_dm_connector, edid, &vsdb_info); 13977 if (i >= 0) { 13978 amdgpu_dm_connector->vsdb_info = vsdb_info; 13979 sink->edid_caps.freesync_vcp_code = vsdb_info.freesync_mccs_vcp_code; 13980 13981 if (vsdb_info.freesync_supported && vsdb_info.amd_vsdb_version > 0) { 13982 amdgpu_dm_connector->pack_sdp_v1_3 = true; 13983 amdgpu_dm_connector->as_type = as_type; 13984 13985 amdgpu_dm_connector->min_vfreq = vsdb_info.min_refresh_rate_hz; 13986 amdgpu_dm_connector->max_vfreq = vsdb_info.max_refresh_rate_hz; 13987 if (amdgpu_dm_connector->max_vfreq - amdgpu_dm_connector->min_vfreq > 10) 13988 freesync_capable = true; 13989 13990 connector->display_info.monitor_range.min_vfreq = vsdb_info.min_refresh_rate_hz; 13991 connector->display_info.monitor_range.max_vfreq = vsdb_info.max_refresh_rate_hz; 13992 } 13993 } 13994 } 13995 13996 /* Handle MCCS */ 13997 if (do_mccs) { 13998 dm_helpers_read_mccs_caps(adev->dm.dc->ctx, amdgpu_dm_connector->dc_link, sink); 13999 14000 if (sink->edid_caps.freesync_vcp_code && !sink->mccs_caps.freesync_supported) 14001 freesync_capable = false; 14002 14003 if (sink->mccs_caps.freesync_supported && freesync_capable) 14004 dm_helpers_mccs_vcp_set(adev->dm.dc->ctx, amdgpu_dm_connector->dc_link, sink); 14005 } 14006 14007 update: 14008 if (dm_con_state) 14009 dm_con_state->freesync_capable = freesync_capable; 14010 14011 if (connector->state && amdgpu_dm_connector->dc_link && !freesync_capable && 14012 amdgpu_dm_connector->dc_link->replay_settings.config.replay_supported) { 14013 amdgpu_dm_connector->dc_link->replay_settings.config.replay_supported = false; 14014 amdgpu_dm_connector->dc_link->replay_settings.replay_feature_enabled = false; 14015 } 14016 14017 if (connector->vrr_capable_property) 14018 drm_connector_set_vrr_capable_property(connector, 14019 freesync_capable); 14020 } 14021 14022 void amdgpu_dm_trigger_timing_sync(struct drm_device *dev) 14023 { 14024 struct amdgpu_device *adev = drm_to_adev(dev); 14025 struct dc *dc = adev->dm.dc; 14026 int i; 14027 14028 mutex_lock(&adev->dm.dc_lock); 14029 if (dc->current_state) { 14030 for (i = 0; i < dc->current_state->stream_count; ++i) 14031 dc->current_state->streams[i] 14032 ->triggered_crtc_reset.enabled = 14033 adev->dm.force_timing_sync; 14034 14035 dm_enable_per_frame_crtc_master_sync(dc->current_state); 14036 dc_trigger_sync(dc, dc->current_state); 14037 } 14038 mutex_unlock(&adev->dm.dc_lock); 14039 } 14040 14041 static inline void amdgpu_dm_exit_ips_for_hw_access(struct dc *dc) 14042 { 14043 if (dc->ctx->dmub_srv && !dc->ctx->dmub_srv->idle_exit_counter) 14044 dc_exit_ips_for_hw_access(dc); 14045 } 14046 14047 void dm_write_reg_func(const struct dc_context *ctx, uint32_t address, 14048 u32 value, const char *func_name) 14049 { 14050 #ifdef DM_CHECK_ADDR_0 14051 if (address == 0) { 14052 drm_err(adev_to_drm(ctx->driver_context), 14053 "invalid register write. address = 0"); 14054 return; 14055 } 14056 #endif 14057 14058 amdgpu_dm_exit_ips_for_hw_access(ctx->dc); 14059 cgs_write_register(ctx->cgs_device, address, value); 14060 trace_amdgpu_dc_wreg(&ctx->perf_trace->write_count, address, value); 14061 } 14062 14063 uint32_t dm_read_reg_func(const struct dc_context *ctx, uint32_t address, 14064 const char *func_name) 14065 { 14066 u32 value; 14067 #ifdef DM_CHECK_ADDR_0 14068 if (address == 0) { 14069 drm_err(adev_to_drm(ctx->driver_context), 14070 "invalid register read; address = 0\n"); 14071 return 0; 14072 } 14073 #endif 14074 14075 if (ctx->dmub_srv && 14076 ctx->dmub_srv->reg_helper_offload.gather_in_progress && 14077 !ctx->dmub_srv->reg_helper_offload.should_burst_write) { 14078 ASSERT(false); 14079 return 0; 14080 } 14081 14082 amdgpu_dm_exit_ips_for_hw_access(ctx->dc); 14083 14084 value = cgs_read_register(ctx->cgs_device, address); 14085 14086 trace_amdgpu_dc_rreg(&ctx->perf_trace->read_count, address, value); 14087 14088 return value; 14089 } 14090 14091 int amdgpu_dm_process_dmub_aux_transfer_sync( 14092 struct dc_context *ctx, 14093 unsigned int link_index, 14094 struct aux_payload *payload, 14095 enum aux_return_code_type *operation_result) 14096 { 14097 struct amdgpu_device *adev = ctx->driver_context; 14098 struct dmub_notification *p_notify = adev->dm.dmub_notify; 14099 int ret = -1; 14100 14101 mutex_lock(&adev->dm.dpia_aux_lock); 14102 if (!dc_process_dmub_aux_transfer_async(ctx->dc, link_index, payload)) { 14103 *operation_result = AUX_RET_ERROR_ENGINE_ACQUIRE; 14104 goto out; 14105 } 14106 14107 if (!wait_for_completion_timeout(&adev->dm.dmub_aux_transfer_done, 10 * HZ)) { 14108 drm_err(adev_to_drm(adev), "wait_for_completion_timeout timeout!"); 14109 *operation_result = AUX_RET_ERROR_TIMEOUT; 14110 goto out; 14111 } 14112 14113 if (p_notify->result != AUX_RET_SUCCESS) { 14114 /* 14115 * Transient states before tunneling is enabled could 14116 * lead to this error. We can ignore this for now. 14117 */ 14118 if (p_notify->result == AUX_RET_ERROR_PROTOCOL_ERROR) { 14119 drm_warn(adev_to_drm(adev), "DPIA AUX failed on 0x%x(%d), error %d\n", 14120 payload->address, payload->length, 14121 p_notify->result); 14122 } 14123 *operation_result = p_notify->result; 14124 goto out; 14125 } 14126 14127 payload->reply[0] = adev->dm.dmub_notify->aux_reply.command & 0xF; 14128 if (adev->dm.dmub_notify->aux_reply.command & 0xF0) 14129 /* The reply is stored in the top nibble of the command. */ 14130 payload->reply[0] = (adev->dm.dmub_notify->aux_reply.command >> 4) & 0xF; 14131 14132 /*write req may receive a byte indicating partially written number as well*/ 14133 if (p_notify->aux_reply.length) 14134 memcpy(payload->data, p_notify->aux_reply.data, 14135 p_notify->aux_reply.length); 14136 14137 /* success */ 14138 ret = p_notify->aux_reply.length; 14139 *operation_result = p_notify->result; 14140 out: 14141 reinit_completion(&adev->dm.dmub_aux_transfer_done); 14142 mutex_unlock(&adev->dm.dpia_aux_lock); 14143 return ret; 14144 } 14145 14146 static void abort_fused_io( 14147 struct dc_context *ctx, 14148 const struct dmub_cmd_fused_request *request 14149 ) 14150 { 14151 union dmub_rb_cmd command = { 0 }; 14152 struct dmub_rb_cmd_fused_io *io = &command.fused_io; 14153 14154 io->header.type = DMUB_CMD__FUSED_IO; 14155 io->header.sub_type = DMUB_CMD__FUSED_IO_ABORT; 14156 io->header.payload_bytes = sizeof(*io) - sizeof(io->header); 14157 io->request = *request; 14158 dm_execute_dmub_cmd(ctx, &command, DM_DMUB_WAIT_TYPE_NO_WAIT); 14159 } 14160 14161 static bool execute_fused_io( 14162 struct amdgpu_device *dev, 14163 struct dc_context *ctx, 14164 union dmub_rb_cmd *commands, 14165 uint8_t count, 14166 uint32_t timeout_us 14167 ) 14168 { 14169 const uint8_t ddc_line = commands[0].fused_io.request.u.aux.ddc_line; 14170 14171 if (ddc_line >= ARRAY_SIZE(dev->dm.fused_io)) 14172 return false; 14173 14174 struct fused_io_sync *sync = &dev->dm.fused_io[ddc_line]; 14175 struct dmub_rb_cmd_fused_io *first = &commands[0].fused_io; 14176 const bool result = dm_execute_dmub_cmd_list(ctx, count, commands, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY) 14177 && first->header.ret_status 14178 && first->request.status == FUSED_REQUEST_STATUS_SUCCESS; 14179 14180 if (!result) 14181 return false; 14182 14183 while (wait_for_completion_timeout(&sync->replied, usecs_to_jiffies(timeout_us))) { 14184 reinit_completion(&sync->replied); 14185 14186 struct dmub_cmd_fused_request *reply = (struct dmub_cmd_fused_request *) sync->reply_data; 14187 14188 static_assert(sizeof(*reply) <= sizeof(sync->reply_data), "Size mismatch"); 14189 14190 if (reply->identifier == first->request.identifier) { 14191 first->request = *reply; 14192 return true; 14193 } 14194 } 14195 14196 reinit_completion(&sync->replied); 14197 first->request.status = FUSED_REQUEST_STATUS_TIMEOUT; 14198 abort_fused_io(ctx, &first->request); 14199 return false; 14200 } 14201 14202 bool amdgpu_dm_execute_fused_io( 14203 struct amdgpu_device *dev, 14204 struct dc_link *link, 14205 union dmub_rb_cmd *commands, 14206 uint8_t count, 14207 uint32_t timeout_us) 14208 { 14209 struct amdgpu_display_manager *dm = &dev->dm; 14210 14211 mutex_lock(&dm->dpia_aux_lock); 14212 14213 const bool result = execute_fused_io(dev, link->ctx, commands, count, timeout_us); 14214 14215 mutex_unlock(&dm->dpia_aux_lock); 14216 return result; 14217 } 14218 14219 int amdgpu_dm_process_dmub_set_config_sync( 14220 struct dc_context *ctx, 14221 unsigned int link_index, 14222 struct set_config_cmd_payload *payload, 14223 enum set_config_status *operation_result) 14224 { 14225 struct amdgpu_device *adev = ctx->driver_context; 14226 bool is_cmd_complete; 14227 int ret; 14228 14229 mutex_lock(&adev->dm.dpia_aux_lock); 14230 is_cmd_complete = dc_process_dmub_set_config_async(ctx->dc, 14231 link_index, payload, adev->dm.dmub_notify); 14232 14233 if (is_cmd_complete || wait_for_completion_timeout(&adev->dm.dmub_aux_transfer_done, 10 * HZ)) { 14234 ret = 0; 14235 *operation_result = adev->dm.dmub_notify->sc_status; 14236 } else { 14237 drm_err(adev_to_drm(adev), "wait_for_completion_timeout timeout!"); 14238 ret = -1; 14239 *operation_result = SET_CONFIG_UNKNOWN_ERROR; 14240 } 14241 14242 if (!is_cmd_complete) 14243 reinit_completion(&adev->dm.dmub_aux_transfer_done); 14244 mutex_unlock(&adev->dm.dpia_aux_lock); 14245 return ret; 14246 } 14247 14248 bool dm_execute_dmub_cmd(const struct dc_context *ctx, union dmub_rb_cmd *cmd, enum dm_dmub_wait_type wait_type) 14249 { 14250 struct amdgpu_device *adev = ctx->driver_context; 14251 14252 guard(spinlock_irqsave)(&adev->dm.dmub_lock); 14253 return dc_dmub_srv_cmd_run(ctx->dmub_srv, cmd, wait_type); 14254 } 14255 14256 bool dm_execute_dmub_cmd_list(const struct dc_context *ctx, unsigned int count, union dmub_rb_cmd *cmd, enum dm_dmub_wait_type wait_type) 14257 { 14258 struct amdgpu_device *adev = ctx->driver_context; 14259 14260 guard(spinlock_irqsave)(&adev->dm.dmub_lock); 14261 return dc_dmub_srv_cmd_run_list(ctx->dmub_srv, count, cmd, wait_type); 14262 } 14263 14264 void dm_acpi_process_phy_transition_interlock( 14265 const struct dc_context *ctx, 14266 struct dm_process_phy_transition_init_params process_phy_transition_init_params) 14267 { 14268 // Not yet implemented 14269 } 14270