1 /* 2 * Copyright 2019 Advanced Micro Devices, Inc. 3 * 4 * Permission is hereby granted, free of charge, to any person obtaining a 5 * copy of this software and associated documentation files (the "Software"), 6 * to deal in the Software without restriction, including without limitation 7 * the rights to use, copy, modify, merge, publish, distribute, sublicense, 8 * and/or sell copies of the Software, and to permit persons to whom the 9 * Software is furnished to do so, subject to the following conditions: 10 * 11 * The above copyright notice and this permission notice shall be included in 12 * all copies or substantial portions of the Software. 13 * 14 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 15 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 16 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL 17 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR 18 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, 19 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR 20 * OTHER DEALINGS IN THE SOFTWARE. 21 * 22 * Authors: AMD 23 * 24 */ 25 26 #include "dm_services.h" 27 #include "dc.h" 28 #include "dc_dmub_srv.h" 29 #include "../dmub/dmub_srv.h" 30 #include "dm_helpers.h" 31 #include "dc_hw_types.h" 32 #include "core_types.h" 33 #include "../basics/conversion.h" 34 #include "cursor_reg_cache.h" 35 #include "resource.h" 36 #include "clk_mgr.h" 37 #include "dc_state_priv.h" 38 #include "dc_plane_priv.h" 39 40 #define CTX dc_dmub_srv->ctx 41 #define DC_LOGGER CTX->logger 42 #define GPINT_RETRY_NUM 20 43 44 #define MAX_WAIT_US 100000 45 46 static void dc_dmub_srv_construct(struct dc_dmub_srv *dc_srv, struct dc *dc, 47 struct dmub_srv *dmub) 48 { 49 dc_srv->dmub = dmub; 50 dc_srv->ctx = dc->ctx; 51 } 52 53 static void dc_dmub_srv_handle_failure(struct dc_dmub_srv *dc_dmub_srv) 54 { 55 dc_dmub_srv_log_diagnostic_data(dc_dmub_srv); 56 if (dc_dmub_srv->ctx->dc->debug.enable_dmu_recovery) 57 dm_helpers_dmu_timeout(dc_dmub_srv->ctx); 58 } 59 60 struct dc_dmub_srv *dc_dmub_srv_create(struct dc *dc, struct dmub_srv *dmub) 61 { 62 struct dc_dmub_srv *dc_srv = 63 kzalloc_obj(struct dc_dmub_srv); 64 65 if (dc_srv == NULL) { 66 BREAK_TO_DEBUGGER(); 67 return NULL; 68 } 69 70 dc_dmub_srv_construct(dc_srv, dc, dmub); 71 72 return dc_srv; 73 } 74 75 void dc_dmub_srv_destroy(struct dc_dmub_srv **dmub_srv) 76 { 77 if (*dmub_srv) { 78 kfree(*dmub_srv); 79 *dmub_srv = NULL; 80 } 81 } 82 83 bool dc_dmub_srv_wait_for_pending(struct dc_dmub_srv *dc_dmub_srv) 84 { 85 struct dmub_srv *dmub; 86 struct dc_context *dc_ctx; 87 enum dmub_status status; 88 89 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 90 return false; 91 92 dc_ctx = dc_dmub_srv->ctx; 93 dmub = dc_dmub_srv->dmub; 94 95 do { 96 status = dmub_srv_wait_for_pending(dmub, MAX_WAIT_US); 97 } while (dc_dmub_srv->ctx->dc->debug.disable_timeout && status != DMUB_STATUS_OK); 98 99 if (status != DMUB_STATUS_OK) { 100 DC_ERROR("Error waiting for DMUB idle: status=%d\n", status); 101 dc_dmub_srv_handle_failure(dc_dmub_srv); 102 } 103 104 return status == DMUB_STATUS_OK; 105 } 106 107 void dc_dmub_srv_clear_inbox0_ack(struct dc_dmub_srv *dc_dmub_srv) 108 { 109 struct dmub_srv *dmub = dc_dmub_srv->dmub; 110 struct dc_context *dc_ctx = dc_dmub_srv->ctx; 111 enum dmub_status status = DMUB_STATUS_OK; 112 113 status = dmub_srv_clear_inbox0_ack(dmub); 114 if (status != DMUB_STATUS_OK) { 115 DC_ERROR("Error clearing INBOX0 ack: status=%d\n", status); 116 dc_dmub_srv_handle_failure(dc_dmub_srv); 117 } 118 } 119 120 void dc_dmub_srv_wait_for_inbox0_ack(struct dc_dmub_srv *dc_dmub_srv) 121 { 122 struct dmub_srv *dmub = dc_dmub_srv->dmub; 123 struct dc_context *dc_ctx = dc_dmub_srv->ctx; 124 enum dmub_status status = DMUB_STATUS_OK; 125 126 status = dmub_srv_wait_for_inbox0_ack(dmub, MAX_WAIT_US); 127 if (status != DMUB_STATUS_OK) { 128 DC_ERROR("Error waiting for INBOX0 HW Lock Ack\n"); 129 dc_dmub_srv_handle_failure(dc_dmub_srv); 130 } 131 } 132 133 void dc_dmub_srv_send_inbox0_cmd(struct dc_dmub_srv *dc_dmub_srv, 134 union dmub_inbox0_data_register data) 135 { 136 struct dmub_srv *dmub = dc_dmub_srv->dmub; 137 struct dc_context *dc_ctx = dc_dmub_srv->ctx; 138 enum dmub_status status = DMUB_STATUS_OK; 139 140 status = dmub_srv_send_inbox0_cmd(dmub, data); 141 if (status != DMUB_STATUS_OK) { 142 DC_ERROR("Error sending INBOX0 cmd\n"); 143 dc_dmub_srv_handle_failure(dc_dmub_srv); 144 } 145 } 146 147 static bool dc_dmub_srv_reg_cmd_list_queue_execute(struct dc_dmub_srv *dc_dmub_srv, 148 unsigned int count, 149 union dmub_rb_cmd *cmd_list) 150 { 151 struct dc_context *dc_ctx; 152 struct dmub_srv *dmub; 153 enum dmub_status status = DMUB_STATUS_OK; 154 unsigned int i; 155 156 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 157 return false; 158 159 dc_ctx = dc_dmub_srv->ctx; 160 dmub = dc_dmub_srv->dmub; 161 162 for (i = 0 ; i < count; i++) { 163 /* confirm no messages pending */ 164 do { 165 status = dmub_srv_wait_for_idle(dmub, MAX_WAIT_US); 166 } while (dc_dmub_srv->ctx->dc->debug.disable_timeout && status != DMUB_STATUS_OK); 167 168 /* queue command */ 169 if (status == DMUB_STATUS_OK) 170 status = dmub_srv_reg_cmd_execute(dmub, &cmd_list[i]); 171 172 /* check for errors */ 173 if (status != DMUB_STATUS_OK) { 174 break; 175 } 176 } 177 178 if (status != DMUB_STATUS_OK) { 179 if (status != DMUB_STATUS_POWER_STATE_D3) { 180 DC_ERROR("Error starting DMUB execution: status=%d\n", status); 181 dc_dmub_srv_handle_failure(dc_dmub_srv); 182 } 183 return false; 184 } 185 186 return true; 187 } 188 189 static bool dc_dmub_srv_fb_cmd_list_queue_execute(struct dc_dmub_srv *dc_dmub_srv, 190 unsigned int count, 191 union dmub_rb_cmd *cmd_list) 192 { 193 struct dc_context *dc_ctx; 194 struct dmub_srv *dmub; 195 enum dmub_status status; 196 unsigned int i; 197 198 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 199 return false; 200 201 dc_ctx = dc_dmub_srv->ctx; 202 dmub = dc_dmub_srv->dmub; 203 204 for (i = 0 ; i < count; i++) { 205 // Queue command 206 if (!cmd_list[i].cmd_common.header.multi_cmd_pending || 207 dmub_rb_num_free(&dmub->inbox1.rb) >= count - i) { 208 status = dmub_srv_fb_cmd_queue(dmub, &cmd_list[i]); 209 } else { 210 status = DMUB_STATUS_QUEUE_FULL; 211 } 212 213 if (status == DMUB_STATUS_QUEUE_FULL) { 214 /* Execute and wait for queue to become empty again. */ 215 status = dmub_srv_fb_cmd_execute(dmub); 216 if (status == DMUB_STATUS_POWER_STATE_D3) 217 return false; 218 219 do { 220 status = dmub_srv_wait_for_inbox_free(dmub, MAX_WAIT_US, count - i); 221 } while (dc_dmub_srv->ctx->dc->debug.disable_timeout && status != DMUB_STATUS_OK); 222 223 /* Requeue the command. */ 224 status = dmub_srv_fb_cmd_queue(dmub, &cmd_list[i]); 225 } 226 227 if (status != DMUB_STATUS_OK) { 228 if (status != DMUB_STATUS_POWER_STATE_D3) { 229 DC_ERROR("Error queueing DMUB command: status=%d\n", status); 230 dc_dmub_srv_handle_failure(dc_dmub_srv); 231 } 232 return false; 233 } 234 } 235 236 status = dmub_srv_fb_cmd_execute(dmub); 237 if (status != DMUB_STATUS_OK) { 238 if (status != DMUB_STATUS_POWER_STATE_D3) { 239 DC_ERROR("Error starting DMUB execution: status=%d\n", status); 240 dc_dmub_srv_handle_failure(dc_dmub_srv); 241 } 242 return false; 243 } 244 245 return true; 246 } 247 248 bool dc_dmub_srv_cmd_list_queue_execute(struct dc_dmub_srv *dc_dmub_srv, 249 unsigned int count, 250 union dmub_rb_cmd *cmd_list) 251 { 252 bool res = false; 253 254 if (dc_dmub_srv && dc_dmub_srv->dmub) { 255 if (dc_dmub_srv->dmub->inbox_type == DMUB_CMD_INTERFACE_REG) { 256 res = dc_dmub_srv_reg_cmd_list_queue_execute(dc_dmub_srv, count, cmd_list); 257 } else { 258 res = dc_dmub_srv_fb_cmd_list_queue_execute(dc_dmub_srv, count, cmd_list); 259 } 260 261 if (res) 262 res = dmub_srv_update_inbox_status(dc_dmub_srv->dmub) == DMUB_STATUS_OK; 263 } 264 265 return res; 266 } 267 268 bool dc_dmub_srv_wait_for_idle(struct dc_dmub_srv *dc_dmub_srv, 269 enum dm_dmub_wait_type wait_type, 270 union dmub_rb_cmd *cmd_list) 271 { 272 struct dmub_srv *dmub; 273 enum dmub_status status; 274 275 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 276 return false; 277 278 dmub = dc_dmub_srv->dmub; 279 280 // Wait for DMUB to process command 281 if (wait_type != DM_DMUB_WAIT_TYPE_NO_WAIT) { 282 do { 283 status = dmub_srv_wait_for_idle(dmub, MAX_WAIT_US); 284 } while (dc_dmub_srv->ctx->dc->debug.disable_timeout && status != DMUB_STATUS_OK); 285 286 if (status != DMUB_STATUS_OK) { 287 DC_LOG_DEBUG("No reply for DMUB command: status=%d\n", status); 288 if (!dmub->debug.timeout_info.timeout_occured) { 289 dmub->debug.timeout_info.timeout_occured = true; 290 if (cmd_list) 291 dmub->debug.timeout_info.timeout_cmd = *cmd_list; 292 dmub->debug.timeout_info.timestamp = dm_get_timestamp(dc_dmub_srv->ctx); 293 } 294 dc_dmub_srv_handle_failure(dc_dmub_srv); 295 return false; 296 } 297 298 // Copy data back from ring buffer into command 299 if (wait_type == DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY && cmd_list) { 300 dmub_srv_cmd_get_response(dc_dmub_srv->dmub, cmd_list); 301 } 302 } 303 304 return true; 305 } 306 307 bool dc_dmub_srv_cmd_run(struct dc_dmub_srv *dc_dmub_srv, union dmub_rb_cmd *cmd, enum dm_dmub_wait_type wait_type) 308 { 309 return dc_dmub_srv_cmd_run_list(dc_dmub_srv, 1, cmd, wait_type); 310 } 311 312 bool dc_dmub_srv_cmd_run_list(struct dc_dmub_srv *dc_dmub_srv, unsigned int count, union dmub_rb_cmd *cmd_list, enum dm_dmub_wait_type wait_type) 313 { 314 if (!dc_dmub_srv_cmd_list_queue_execute(dc_dmub_srv, count, cmd_list)) 315 return false; 316 317 return dc_dmub_srv_wait_for_idle(dc_dmub_srv, wait_type, cmd_list); 318 } 319 320 bool dc_dmub_srv_optimized_init_done(struct dc_dmub_srv *dc_dmub_srv) 321 { 322 struct dmub_srv *dmub; 323 struct dc_context *dc_ctx; 324 union dmub_fw_boot_status boot_status; 325 enum dmub_status status; 326 327 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 328 return false; 329 330 dmub = dc_dmub_srv->dmub; 331 dc_ctx = dc_dmub_srv->ctx; 332 333 status = dmub_srv_get_fw_boot_status(dmub, &boot_status); 334 if (status != DMUB_STATUS_OK) { 335 DC_ERROR("Error querying DMUB boot status: error=%d\n", status); 336 return false; 337 } 338 339 return (bool)boot_status.bits.optimized_init_done; 340 } 341 342 bool dc_dmub_srv_notify_stream_mask(struct dc_dmub_srv *dc_dmub_srv, 343 unsigned int stream_mask) 344 { 345 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 346 return false; 347 348 return dc_wake_and_execute_gpint(dc_dmub_srv->ctx, DMUB_GPINT__IDLE_OPT_NOTIFY_STREAM_MASK, 349 (uint16_t)stream_mask, NULL, DM_DMUB_WAIT_TYPE_WAIT); 350 } 351 352 bool dc_dmub_srv_is_restore_required(struct dc_dmub_srv *dc_dmub_srv) 353 { 354 struct dmub_srv *dmub; 355 struct dc_context *dc_ctx; 356 union dmub_fw_boot_status boot_status; 357 enum dmub_status status; 358 359 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 360 return false; 361 362 dmub = dc_dmub_srv->dmub; 363 dc_ctx = dc_dmub_srv->ctx; 364 365 status = dmub_srv_get_fw_boot_status(dmub, &boot_status); 366 if (status != DMUB_STATUS_OK) { 367 DC_ERROR("Error querying DMUB boot status: error=%d\n", status); 368 return false; 369 } 370 371 return (bool)boot_status.bits.restore_required; 372 } 373 374 bool dc_dmub_srv_get_dmub_outbox0_msg(const struct dc *dc, struct dmcub_trace_buf_entry *entry) 375 { 376 struct dmub_srv *dmub = dc->ctx->dmub_srv->dmub; 377 return dmub_srv_get_outbox0_msg(dmub, entry); 378 } 379 380 void dc_dmub_trace_event_control(struct dc *dc, bool enable) 381 { 382 dm_helpers_dmub_outbox_interrupt_control(dc->ctx, enable); 383 } 384 385 void dc_dmub_srv_drr_update_cmd(struct dc *dc, uint32_t tg_inst, uint32_t vtotal_min, uint32_t vtotal_max) 386 { 387 union dmub_rb_cmd cmd = { 0 }; 388 389 cmd.drr_update.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH; 390 cmd.drr_update.header.sub_type = DMUB_CMD__FAMS_DRR_UPDATE; 391 cmd.drr_update.dmub_optc_state_req.v_total_max = vtotal_max; 392 cmd.drr_update.dmub_optc_state_req.v_total_min = vtotal_min; 393 cmd.drr_update.dmub_optc_state_req.tg_inst = tg_inst; 394 395 cmd.drr_update.header.payload_bytes = sizeof(cmd.drr_update) - sizeof(cmd.drr_update.header); 396 397 // Send the command to the DMCUB. 398 dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT); 399 } 400 401 void dc_dmub_srv_set_drr_manual_trigger_cmd(struct dc *dc, uint32_t tg_inst) 402 { 403 union dmub_rb_cmd cmd = { 0 }; 404 405 cmd.drr_update.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH; 406 cmd.drr_update.header.sub_type = DMUB_CMD__FAMS_SET_MANUAL_TRIGGER; 407 cmd.drr_update.dmub_optc_state_req.tg_inst = tg_inst; 408 409 cmd.drr_update.header.payload_bytes = sizeof(cmd.drr_update) - sizeof(cmd.drr_update.header); 410 411 // Send the command to the DMCUB. 412 dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT); 413 } 414 415 static uint8_t dc_dmub_srv_get_pipes_for_stream(struct dc *dc, struct dc_stream_state *stream) 416 { 417 uint8_t pipes = 0; 418 uint8_t i = 0; 419 420 for (i = 0; i < MAX_PIPES; i++) { 421 struct pipe_ctx *pipe = &dc->current_state->res_ctx.pipe_ctx[i]; 422 423 if (pipe->stream == stream && pipe->stream_res.tg) 424 pipes = i; 425 } 426 return pipes; 427 } 428 429 static void dc_dmub_srv_populate_fams_pipe_info(struct dc *dc, struct dc_state *context, 430 struct pipe_ctx *head_pipe, 431 struct dmub_cmd_fw_assisted_mclk_switch_pipe_data *fams_pipe_data) 432 { 433 unsigned int j; 434 int pipe_idx = 0; 435 436 fams_pipe_data->pipe_index[pipe_idx++] = (uint8_t)head_pipe->plane_res.hubp->inst; 437 for (j = 0; j < dc->res_pool->pipe_count; j++) { 438 struct pipe_ctx *split_pipe = &context->res_ctx.pipe_ctx[j]; 439 440 if (split_pipe->stream == head_pipe->stream && (split_pipe->top_pipe || split_pipe->prev_odm_pipe)) { 441 fams_pipe_data->pipe_index[pipe_idx++] = (uint8_t)split_pipe->plane_res.hubp->inst; 442 } 443 } 444 fams_pipe_data->pipe_count = (uint8_t)pipe_idx; 445 } 446 447 bool dc_dmub_srv_p_state_delegate(struct dc *dc, bool should_manage_pstate, struct dc_state *context) 448 { 449 union dmub_rb_cmd cmd = { 0 }; 450 struct dmub_cmd_fw_assisted_mclk_switch_config *config_data = &cmd.fw_assisted_mclk_switch.config_data; 451 unsigned int i = 0; 452 int k = 0; 453 int ramp_up_num_steps = 1; // TODO: Ramp is currently disabled. Reenable it. 454 uint8_t visual_confirm_enabled; 455 struct dc_stream_status *stream_status = NULL; 456 457 if (dc == NULL) 458 return false; 459 460 visual_confirm_enabled = (uint8_t)(dc->debug.visual_confirm == VISUAL_CONFIRM_FAMS); 461 462 // Format command. 463 cmd.fw_assisted_mclk_switch.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH; 464 cmd.fw_assisted_mclk_switch.header.sub_type = DMUB_CMD__FAMS_SETUP_FW_CTRL; 465 cmd.fw_assisted_mclk_switch.config_data.fams_enabled = should_manage_pstate; 466 cmd.fw_assisted_mclk_switch.config_data.visual_confirm_enabled = visual_confirm_enabled; 467 468 if (should_manage_pstate) { 469 for (i = 0; i < dc->res_pool->pipe_count; i++) { 470 struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[i]; 471 472 if (!pipe->stream) 473 continue; 474 475 /* If FAMS is being used to support P-State and there is a stream 476 * that does not use FAMS, we are in an FPO + VActive scenario. 477 * Assign vactive stretch margin in this case. 478 */ 479 stream_status = dc_state_get_stream_status(context, pipe->stream); 480 if (stream_status && !stream_status->fpo_in_use) { 481 cmd.fw_assisted_mclk_switch.config_data.vactive_stretch_margin_us = 482 (uint16_t)dc->debug.fpo_vactive_margin_us; 483 break; 484 } 485 } 486 } 487 488 for (i = 0, k = 0; context && i < dc->res_pool->pipe_count; i++) { 489 struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[i]; 490 491 if (!resource_is_pipe_type(pipe, OTG_MASTER)) 492 continue; 493 494 stream_status = dc_state_get_stream_status(context, pipe->stream); 495 if (stream_status && stream_status->fpo_in_use) { 496 struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[i]; 497 uint8_t min_refresh_in_hz; 498 499 min_refresh_in_hz = (uint8_t)((pipe->stream->timing.min_refresh_in_uhz + 999999) / 1000000); 500 501 config_data->pipe_data[k].pix_clk_100hz = pipe->stream->timing.pix_clk_100hz; 502 config_data->pipe_data[k].min_refresh_in_hz = min_refresh_in_hz; 503 config_data->pipe_data[k].max_ramp_step = (uint8_t)ramp_up_num_steps; 504 config_data->pipe_data[k].pipes = dc_dmub_srv_get_pipes_for_stream(dc, pipe->stream); 505 dc_dmub_srv_populate_fams_pipe_info(dc, context, pipe, &config_data->pipe_data[k]); 506 k++; 507 } 508 } 509 cmd.fw_assisted_mclk_switch.header.payload_bytes = 510 sizeof(cmd.fw_assisted_mclk_switch) - sizeof(cmd.fw_assisted_mclk_switch.header); 511 512 // Send the command to the DMCUB. 513 dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT); 514 515 return true; 516 } 517 518 void dc_dmub_srv_query_caps_cmd(struct dc_dmub_srv *dc_dmub_srv) 519 { 520 union dmub_rb_cmd cmd = { 0 }; 521 522 if (dc_dmub_srv->ctx->dc->debug.dmcub_emulation) 523 return; 524 525 memset(&cmd, 0, sizeof(cmd)); 526 527 /* Prepare fw command */ 528 cmd.query_feature_caps.header.type = DMUB_CMD__QUERY_FEATURE_CAPS; 529 cmd.query_feature_caps.header.sub_type = 0; 530 cmd.query_feature_caps.header.ret_status = 1; 531 cmd.query_feature_caps.header.payload_bytes = sizeof(struct dmub_cmd_query_feature_caps_data); 532 533 /* If command was processed, copy feature caps to dmub srv */ 534 if (dc_wake_and_execute_dmub_cmd(dc_dmub_srv->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY) && 535 cmd.query_feature_caps.header.ret_status == 0) { 536 memcpy(&dc_dmub_srv->dmub->feature_caps, 537 &cmd.query_feature_caps.query_feature_caps_data, 538 sizeof(struct dmub_feature_caps)); 539 } 540 } 541 542 void dc_dmub_srv_get_visual_confirm_color_cmd(struct dc *dc, struct pipe_ctx *pipe_ctx) 543 { 544 union dmub_rb_cmd cmd = { 0 }; 545 unsigned int panel_inst = 0; 546 547 if (!dc_get_edp_link_panel_inst(dc, pipe_ctx->stream->link, &panel_inst) && 548 dc->debug.visual_confirm == VISUAL_CONFIRM_DISABLE) 549 return; 550 551 memset(&cmd, 0, sizeof(cmd)); 552 553 // Prepare fw command 554 cmd.visual_confirm_color.header.type = DMUB_CMD__GET_VISUAL_CONFIRM_COLOR; 555 cmd.visual_confirm_color.header.sub_type = 0; 556 cmd.visual_confirm_color.header.ret_status = 1; 557 cmd.visual_confirm_color.header.payload_bytes = sizeof(struct dmub_cmd_visual_confirm_color_data); 558 cmd.visual_confirm_color.visual_confirm_color_data.visual_confirm_color.panel_inst = (uint16_t)panel_inst; 559 560 // If command was processed, copy feature caps to dmub srv 561 if (dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY) && 562 cmd.visual_confirm_color.header.ret_status == 0) { 563 memcpy(&dc->ctx->dmub_srv->dmub->visual_confirm_color, 564 &cmd.visual_confirm_color.visual_confirm_color_data, 565 sizeof(struct dmub_visual_confirm_color)); 566 } 567 } 568 569 /** 570 * populate_subvp_cmd_drr_info - Helper to populate DRR pipe info for the DMCUB subvp command 571 * 572 * @dc: [in] pointer to dc object 573 * @subvp_pipe: [in] pipe_ctx for the SubVP pipe 574 * @vblank_pipe: [in] pipe_ctx for the DRR pipe 575 * @pipe_data: [in] Pipe data which stores the VBLANK/DRR info 576 * @context: [in] DC state for access to phantom stream 577 * 578 * Populate the DMCUB SubVP command with DRR pipe info. All the information 579 * required for calculating the SubVP + DRR microschedule is populated here. 580 * 581 * High level algorithm: 582 * 1. Get timing for SubVP pipe, phantom pipe, and DRR pipe 583 * 2. Calculate the min and max vtotal which supports SubVP + DRR microschedule 584 * 3. Populate the drr_info with the min and max supported vtotal values 585 */ 586 static void populate_subvp_cmd_drr_info(struct dc *dc, 587 struct dc_state *context, 588 struct pipe_ctx *subvp_pipe, 589 struct pipe_ctx *vblank_pipe, 590 struct dmub_cmd_fw_assisted_mclk_switch_pipe_data_v2 *pipe_data) 591 { 592 struct dc_stream_state *phantom_stream = dc_state_get_paired_subvp_stream(context, subvp_pipe->stream); 593 struct dc_crtc_timing *main_timing = &subvp_pipe->stream->timing; 594 struct dc_crtc_timing *phantom_timing; 595 struct dc_crtc_timing *drr_timing = &vblank_pipe->stream->timing; 596 uint64_t drr_frame_us = 0; 597 uint64_t min_drr_supported_us = 0; 598 uint64_t max_drr_supported_us = 0; 599 uint64_t max_drr_vblank_us = 0; 600 uint64_t max_drr_mallregion_us = 0; 601 uint64_t mall_region_us = 0; 602 uint64_t prefetch_us = 0; 603 uint64_t subvp_active_us = 0; 604 uint64_t drr_active_us = 0; 605 uint64_t min_vtotal_supported = 0; 606 uint64_t max_vtotal_supported = 0; 607 608 if (!phantom_stream) 609 return; 610 611 phantom_timing = &phantom_stream->timing; 612 613 pipe_data->pipe_config.vblank_data.drr_info.drr_in_use = true; 614 pipe_data->pipe_config.vblank_data.drr_info.use_ramping = false; // for now don't use ramping 615 pipe_data->pipe_config.vblank_data.drr_info.drr_window_size_ms = 4; // hardcode 4ms DRR window for now 616 617 drr_frame_us = div64_u64(((uint64_t)drr_timing->v_total * drr_timing->h_total * 1000000), 618 (((uint64_t)drr_timing->pix_clk_100hz * 100))); 619 // P-State allow width and FW delays already included phantom_timing->v_addressable 620 mall_region_us = div64_u64(((uint64_t)phantom_timing->v_addressable * phantom_timing->h_total * 1000000), 621 (((uint64_t)phantom_timing->pix_clk_100hz * 100))); 622 min_drr_supported_us = drr_frame_us + mall_region_us + SUBVP_DRR_MARGIN_US; 623 min_vtotal_supported = div64_u64(((uint64_t)drr_timing->pix_clk_100hz * 100 * min_drr_supported_us), 624 (((uint64_t)drr_timing->h_total * 1000000))); 625 626 prefetch_us = div64_u64(((uint64_t)(phantom_timing->v_total - phantom_timing->v_front_porch) * phantom_timing->h_total * 1000000), 627 (((uint64_t)phantom_timing->pix_clk_100hz * 100) + dc->caps.subvp_prefetch_end_to_mall_start_us)); 628 subvp_active_us = div64_u64(((uint64_t)main_timing->v_addressable * main_timing->h_total * 1000000), 629 (((uint64_t)main_timing->pix_clk_100hz * 100))); 630 drr_active_us = div64_u64(((uint64_t)drr_timing->v_addressable * drr_timing->h_total * 1000000), 631 (((uint64_t)drr_timing->pix_clk_100hz * 100))); 632 max_drr_vblank_us = div64_u64((subvp_active_us - prefetch_us - 633 dc->caps.subvp_fw_processing_delay_us - drr_active_us), 2) + drr_active_us; 634 max_drr_mallregion_us = subvp_active_us - prefetch_us - mall_region_us - dc->caps.subvp_fw_processing_delay_us; 635 max_drr_supported_us = max_drr_vblank_us > max_drr_mallregion_us ? max_drr_vblank_us : max_drr_mallregion_us; 636 max_vtotal_supported = div64_u64(((uint64_t)drr_timing->pix_clk_100hz * 100 * max_drr_supported_us), 637 (((uint64_t)drr_timing->h_total * 1000000))); 638 639 /* When calculating the max vtotal supported for SubVP + DRR cases, add 640 * margin due to possible rounding errors (being off by 1 line in the 641 * FW calculation can incorrectly push the P-State switch to wait 1 frame 642 * longer). 643 */ 644 max_vtotal_supported = max_vtotal_supported - dc->caps.subvp_drr_max_vblank_margin_us; 645 646 pipe_data->pipe_config.vblank_data.drr_info.min_vtotal_supported = (uint16_t)min_vtotal_supported; 647 pipe_data->pipe_config.vblank_data.drr_info.max_vtotal_supported = (uint16_t)max_vtotal_supported; 648 pipe_data->pipe_config.vblank_data.drr_info.drr_vblank_start_margin = 649 (uint16_t)dc->caps.subvp_drr_vblank_start_margin_us; 650 } 651 652 /** 653 * populate_subvp_cmd_vblank_pipe_info - Helper to populate VBLANK pipe info for the DMUB subvp command 654 * 655 * @dc: [in] current dc state 656 * @context: [in] new dc state 657 * @cmd: [in] DMUB cmd to be populated with SubVP info 658 * @vblank_pipe: [in] pipe_ctx for the VBLANK pipe 659 * @cmd_pipe_index: [in] index for the pipe array in DMCUB SubVP cmd 660 * 661 * Populate the DMCUB SubVP command with VBLANK pipe info. All the information 662 * required to calculate the microschedule for SubVP + VBLANK case is stored in 663 * the pipe_data (subvp_data and vblank_data). Also check if the VBLANK pipe 664 * is a DRR display -- if it is make a call to populate drr_info. 665 */ 666 static void populate_subvp_cmd_vblank_pipe_info(struct dc *dc, 667 struct dc_state *context, 668 union dmub_rb_cmd *cmd, 669 struct pipe_ctx *vblank_pipe, 670 uint8_t cmd_pipe_index) 671 { 672 uint32_t i; 673 struct pipe_ctx *pipe = NULL; 674 struct dmub_cmd_fw_assisted_mclk_switch_pipe_data_v2 *pipe_data = 675 &cmd->fw_assisted_mclk_switch_v2.config_data.pipe_data[cmd_pipe_index]; 676 677 // Find the SubVP pipe 678 for (i = 0; i < dc->res_pool->pipe_count; i++) { 679 pipe = &context->res_ctx.pipe_ctx[i]; 680 681 // We check for master pipe, but it shouldn't matter since we only need 682 // the pipe for timing info (stream should be same for any pipe splits) 683 if (!resource_is_pipe_type(pipe, OTG_MASTER) || 684 !resource_is_pipe_type(pipe, DPP_PIPE)) 685 continue; 686 687 // Find the SubVP pipe 688 if (dc_state_get_pipe_subvp_type(context, pipe) == SUBVP_MAIN) 689 break; 690 } 691 692 pipe_data->mode = VBLANK; 693 pipe_data->pipe_config.vblank_data.pix_clk_100hz = vblank_pipe->stream->timing.pix_clk_100hz; 694 pipe_data->pipe_config.vblank_data.vblank_start = (uint16_t)(vblank_pipe->stream->timing.v_total - 695 vblank_pipe->stream->timing.v_front_porch); 696 pipe_data->pipe_config.vblank_data.vtotal = (uint16_t)vblank_pipe->stream->timing.v_total; 697 pipe_data->pipe_config.vblank_data.htotal = (uint16_t)vblank_pipe->stream->timing.h_total; 698 pipe_data->pipe_config.vblank_data.vblank_pipe_index = vblank_pipe->pipe_idx; 699 pipe_data->pipe_config.vblank_data.vstartup_start = (uint16_t)vblank_pipe->pipe_dlg_param.vstartup_start; 700 pipe_data->pipe_config.vblank_data.vblank_end = 701 (uint16_t)(vblank_pipe->stream->timing.v_total - 702 vblank_pipe->stream->timing.v_front_porch - vblank_pipe->stream->timing.v_addressable); 703 704 if (vblank_pipe->stream->ignore_msa_timing_param && 705 (vblank_pipe->stream->allow_freesync || vblank_pipe->stream->vrr_active_variable || vblank_pipe->stream->vrr_active_fixed)) 706 populate_subvp_cmd_drr_info(dc, context, pipe, vblank_pipe, pipe_data); 707 } 708 709 /** 710 * update_subvp_prefetch_end_to_mall_start - Helper for SubVP + SubVP case 711 * 712 * @dc: [in] current dc state 713 * @context: [in] new dc state 714 * @cmd: [in] DMUB cmd to be populated with SubVP info 715 * @subvp_pipes: [in] Array of SubVP pipes (should always be length 2) 716 * 717 * For SubVP + SubVP, we use a single vertical interrupt to start the 718 * microschedule for both SubVP pipes. In order for this to work correctly, the 719 * MALL REGION of both SubVP pipes must start at the same time. This function 720 * lengthens the prefetch end to mall start delay of the SubVP pipe that has 721 * the shorter prefetch so that both MALL REGION's will start at the same time. 722 */ 723 static void update_subvp_prefetch_end_to_mall_start(struct dc *dc, 724 struct dc_state *context, 725 union dmub_rb_cmd *cmd, 726 struct pipe_ctx *subvp_pipes[]) 727 { 728 uint32_t subvp0_prefetch_us = 0; 729 uint32_t subvp1_prefetch_us = 0; 730 uint32_t prefetch_delta_us = 0; 731 struct dc_stream_state *phantom_stream0 = NULL; 732 struct dc_stream_state *phantom_stream1 = NULL; 733 struct dc_crtc_timing *phantom_timing0 = NULL; 734 struct dc_crtc_timing *phantom_timing1 = NULL; 735 struct dmub_cmd_fw_assisted_mclk_switch_pipe_data_v2 *pipe_data = NULL; 736 737 phantom_stream0 = dc_state_get_paired_subvp_stream(context, subvp_pipes[0]->stream); 738 if (!phantom_stream0) 739 return; 740 741 phantom_stream1 = dc_state_get_paired_subvp_stream(context, subvp_pipes[1]->stream); 742 if (!phantom_stream1) 743 return; 744 745 phantom_timing0 = &phantom_stream0->timing; 746 phantom_timing1 = &phantom_stream1->timing; 747 748 subvp0_prefetch_us = (uint32_t)div64_u64(((uint64_t)(phantom_timing0->v_total - phantom_timing0->v_front_porch) * 749 (uint64_t)phantom_timing0->h_total * 1000000), 750 (((uint64_t)phantom_timing0->pix_clk_100hz * 100) + dc->caps.subvp_prefetch_end_to_mall_start_us)); 751 subvp1_prefetch_us = (uint32_t)div64_u64(((uint64_t)(phantom_timing1->v_total - phantom_timing1->v_front_porch) * 752 (uint64_t)phantom_timing1->h_total * 1000000), 753 (((uint64_t)phantom_timing1->pix_clk_100hz * 100) + dc->caps.subvp_prefetch_end_to_mall_start_us)); 754 755 // Whichever SubVP PIPE has the smaller prefetch (including the prefetch end to mall start time) 756 // should increase it's prefetch time to match the other 757 if (subvp0_prefetch_us > subvp1_prefetch_us) { 758 pipe_data = &cmd->fw_assisted_mclk_switch_v2.config_data.pipe_data[1]; 759 prefetch_delta_us = subvp0_prefetch_us - subvp1_prefetch_us; 760 pipe_data->pipe_config.subvp_data.prefetch_to_mall_start_lines = 761 (uint16_t)div64_u64(((uint64_t)(dc->caps.subvp_prefetch_end_to_mall_start_us + prefetch_delta_us) * 762 ((uint64_t)phantom_timing1->pix_clk_100hz * 100) + ((uint64_t)phantom_timing1->h_total * 1000000 - 1)), 763 ((uint64_t)phantom_timing1->h_total * 1000000)); 764 765 } else if (subvp1_prefetch_us > subvp0_prefetch_us) { 766 pipe_data = &cmd->fw_assisted_mclk_switch_v2.config_data.pipe_data[0]; 767 prefetch_delta_us = subvp1_prefetch_us - subvp0_prefetch_us; 768 pipe_data->pipe_config.subvp_data.prefetch_to_mall_start_lines = 769 (uint16_t)div64_u64(((uint64_t)(dc->caps.subvp_prefetch_end_to_mall_start_us + prefetch_delta_us) * 770 ((uint64_t)phantom_timing0->pix_clk_100hz * 100) + ((uint64_t)phantom_timing0->h_total * 1000000 - 1)), 771 ((uint64_t)phantom_timing0->h_total * 1000000)); 772 } 773 } 774 775 /** 776 * populate_subvp_cmd_pipe_info - Helper to populate the SubVP pipe info for the DMUB subvp command 777 * 778 * @dc: [in] current dc state 779 * @context: [in] new dc state 780 * @cmd: [in] DMUB cmd to be populated with SubVP info 781 * @subvp_pipe: [in] pipe_ctx for the SubVP pipe 782 * @cmd_pipe_index: [in] index for the pipe array in DMCUB SubVP cmd 783 * 784 * Populate the DMCUB SubVP command with SubVP pipe info. All the information 785 * required to calculate the microschedule for the SubVP pipe is stored in the 786 * pipe_data of the DMCUB SubVP command. 787 */ 788 static void populate_subvp_cmd_pipe_info(struct dc *dc, 789 struct dc_state *context, 790 union dmub_rb_cmd *cmd, 791 struct pipe_ctx *subvp_pipe, 792 uint8_t cmd_pipe_index) 793 { 794 uint32_t j; 795 struct dmub_cmd_fw_assisted_mclk_switch_pipe_data_v2 *pipe_data = 796 &cmd->fw_assisted_mclk_switch_v2.config_data.pipe_data[cmd_pipe_index]; 797 struct dc_stream_state *phantom_stream = dc_state_get_paired_subvp_stream(context, subvp_pipe->stream); 798 struct dc_crtc_timing *main_timing = &subvp_pipe->stream->timing; 799 struct dc_crtc_timing *phantom_timing; 800 uint32_t out_num_stream, out_den_stream, out_num_plane, out_den_plane, out_num, out_den; 801 802 if (!phantom_stream) 803 return; 804 805 phantom_timing = &phantom_stream->timing; 806 807 pipe_data->mode = SUBVP; 808 pipe_data->pipe_config.subvp_data.pix_clk_100hz = subvp_pipe->stream->timing.pix_clk_100hz; 809 pipe_data->pipe_config.subvp_data.htotal = (uint16_t)subvp_pipe->stream->timing.h_total; 810 pipe_data->pipe_config.subvp_data.vtotal = (uint16_t)subvp_pipe->stream->timing.v_total; 811 pipe_data->pipe_config.subvp_data.main_vblank_start = 812 (uint16_t)(main_timing->v_total - main_timing->v_front_porch); 813 pipe_data->pipe_config.subvp_data.main_vblank_end = 814 (uint16_t)(main_timing->v_total - main_timing->v_front_porch - main_timing->v_addressable); 815 pipe_data->pipe_config.subvp_data.mall_region_lines = (uint16_t)phantom_timing->v_addressable; 816 pipe_data->pipe_config.subvp_data.main_pipe_index = (uint8_t)subvp_pipe->stream_res.tg->inst; 817 pipe_data->pipe_config.subvp_data.is_drr = subvp_pipe->stream->ignore_msa_timing_param && 818 (subvp_pipe->stream->allow_freesync || subvp_pipe->stream->vrr_active_variable || subvp_pipe->stream->vrr_active_fixed); 819 820 /* Calculate the scaling factor from the src and dst height. 821 * e.g. If 3840x2160 being downscaled to 1920x1080, the scaling factor is 1/2. 822 * Reduce the fraction 1080/2160 = 1/2 for the "scaling factor" 823 * 824 * Make sure to combine stream and plane scaling together. 825 */ 826 reduce_fraction(subvp_pipe->stream->src.height, subvp_pipe->stream->dst.height, 827 &out_num_stream, &out_den_stream); 828 reduce_fraction(subvp_pipe->plane_state->src_rect.height, subvp_pipe->plane_state->dst_rect.height, 829 &out_num_plane, &out_den_plane); 830 reduce_fraction(out_num_stream * out_num_plane, out_den_stream * out_den_plane, &out_num, &out_den); 831 pipe_data->pipe_config.subvp_data.scale_factor_numerator = (uint8_t)out_num; 832 pipe_data->pipe_config.subvp_data.scale_factor_denominator = (uint8_t)out_den; 833 834 // Prefetch lines is equal to VACTIVE + BP + VSYNC 835 pipe_data->pipe_config.subvp_data.prefetch_lines = 836 (uint16_t)(phantom_timing->v_total - phantom_timing->v_front_porch); 837 838 // Round up 839 pipe_data->pipe_config.subvp_data.prefetch_to_mall_start_lines = 840 (uint16_t)div64_u64(((uint64_t)dc->caps.subvp_prefetch_end_to_mall_start_us * ((uint64_t)phantom_timing->pix_clk_100hz * 100) + 841 ((uint64_t)phantom_timing->h_total * 1000000 - 1)), ((uint64_t)phantom_timing->h_total * 1000000)); 842 pipe_data->pipe_config.subvp_data.processing_delay_lines = 843 (uint16_t)div64_u64(((uint64_t)(dc->caps.subvp_fw_processing_delay_us) * ((uint64_t)phantom_timing->pix_clk_100hz * 100) + 844 ((uint64_t)phantom_timing->h_total * 1000000 - 1)), ((uint64_t)phantom_timing->h_total * 1000000)); 845 846 if (subvp_pipe->bottom_pipe) { 847 pipe_data->pipe_config.subvp_data.main_split_pipe_index = (uint8_t)subvp_pipe->bottom_pipe->pipe_idx; 848 } else if (subvp_pipe->next_odm_pipe) { 849 pipe_data->pipe_config.subvp_data.main_split_pipe_index = (uint8_t)subvp_pipe->next_odm_pipe->pipe_idx; 850 } else { 851 pipe_data->pipe_config.subvp_data.main_split_pipe_index = 0xF; 852 } 853 854 // Find phantom pipe index based on phantom stream 855 for (j = 0; j < dc->res_pool->pipe_count; j++) { 856 struct pipe_ctx *phantom_pipe = &context->res_ctx.pipe_ctx[j]; 857 858 if (resource_is_pipe_type(phantom_pipe, OTG_MASTER) && 859 phantom_pipe->stream == dc_state_get_paired_subvp_stream(context, subvp_pipe->stream)) { 860 pipe_data->pipe_config.subvp_data.phantom_pipe_index = (uint8_t)phantom_pipe->stream_res.tg->inst; 861 if (phantom_pipe->bottom_pipe) { 862 pipe_data->pipe_config.subvp_data.phantom_split_pipe_index = (uint8_t)phantom_pipe->bottom_pipe->plane_res.hubp->inst; 863 } else if (phantom_pipe->next_odm_pipe) { 864 pipe_data->pipe_config.subvp_data.phantom_split_pipe_index = (uint8_t)phantom_pipe->next_odm_pipe->plane_res.hubp->inst; 865 } else { 866 pipe_data->pipe_config.subvp_data.phantom_split_pipe_index = 0xF; 867 } 868 break; 869 } 870 } 871 } 872 873 /** 874 * dc_dmub_setup_subvp_dmub_command - Populate the DMCUB SubVP command 875 * 876 * @dc: [in] current dc state 877 * @context: [in] new dc state 878 * @enable: [in] if true enables the pipes population 879 * 880 * This function loops through each pipe and populates the DMUB SubVP CMD info 881 * based on the pipe (e.g. SubVP, VBLANK). 882 */ 883 void dc_dmub_setup_subvp_dmub_command(struct dc *dc, 884 struct dc_state *context, 885 bool enable) 886 { 887 uint8_t cmd_pipe_index = 0; 888 uint32_t i; 889 uint8_t subvp_count = 0; 890 union dmub_rb_cmd cmd; 891 struct pipe_ctx *subvp_pipes[2]; 892 uint32_t wm_val_refclk = 0; 893 enum mall_stream_type pipe_mall_type; 894 895 memset(&cmd, 0, sizeof(cmd)); 896 // FW command for SUBVP 897 cmd.fw_assisted_mclk_switch_v2.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH; 898 cmd.fw_assisted_mclk_switch_v2.header.sub_type = DMUB_CMD__HANDLE_SUBVP_CMD; 899 cmd.fw_assisted_mclk_switch_v2.header.payload_bytes = 900 sizeof(cmd.fw_assisted_mclk_switch_v2) - sizeof(cmd.fw_assisted_mclk_switch_v2.header); 901 902 for (i = 0; i < dc->res_pool->pipe_count; i++) { 903 struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[i]; 904 905 /* For SubVP pipe count, only count the top most (ODM / MPC) pipe 906 */ 907 if (resource_is_pipe_type(pipe, OTG_MASTER) && 908 resource_is_pipe_type(pipe, DPP_PIPE) && 909 dc_state_get_pipe_subvp_type(context, pipe) == SUBVP_MAIN) 910 subvp_pipes[subvp_count++] = pipe; 911 } 912 913 if (enable) { 914 // For each pipe that is a "main" SUBVP pipe, fill in pipe data for DMUB SUBVP cmd 915 for (i = 0; i < dc->res_pool->pipe_count; i++) { 916 struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[i]; 917 pipe_mall_type = dc_state_get_pipe_subvp_type(context, pipe); 918 919 if (!pipe->stream) 920 continue; 921 922 /* When populating subvp cmd info, only pass in the top most (ODM / MPC) pipe. 923 * Any ODM or MPC splits being used in SubVP will be handled internally in 924 * populate_subvp_cmd_pipe_info 925 */ 926 if (resource_is_pipe_type(pipe, OTG_MASTER) && 927 resource_is_pipe_type(pipe, DPP_PIPE) && 928 pipe_mall_type == SUBVP_MAIN) { 929 populate_subvp_cmd_pipe_info(dc, context, &cmd, pipe, cmd_pipe_index++); 930 } else if (resource_is_pipe_type(pipe, OTG_MASTER) && 931 resource_is_pipe_type(pipe, DPP_PIPE) && 932 pipe_mall_type == SUBVP_NONE) { 933 // Don't need to check for ActiveDRAMClockChangeMargin < 0, not valid in cases where 934 // we run through DML without calculating "natural" P-state support 935 populate_subvp_cmd_vblank_pipe_info(dc, context, &cmd, pipe, cmd_pipe_index++); 936 937 } 938 } 939 if (subvp_count == 2) { 940 update_subvp_prefetch_end_to_mall_start(dc, context, &cmd, subvp_pipes); 941 } 942 cmd.fw_assisted_mclk_switch_v2.config_data.pstate_allow_width_us = (uint8_t)dc->caps.subvp_pstate_allow_width_us; 943 cmd.fw_assisted_mclk_switch_v2.config_data.vertical_int_margin_us = (uint8_t)dc->caps.subvp_vertical_int_margin_us; 944 945 // Store the original watermark value for this SubVP config so we can lower it when the 946 // MCLK switch starts 947 wm_val_refclk = context->bw_ctx.bw.dcn.watermarks.a.cstate_pstate.pstate_change_ns * 948 (dc->res_pool->ref_clocks.dchub_ref_clock_inKhz / 1000) / 1000; 949 950 cmd.fw_assisted_mclk_switch_v2.config_data.watermark_a_cache = (uint16_t)(wm_val_refclk < 0xFFFF ? wm_val_refclk : 0xFFFF); 951 } 952 953 dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT); 954 } 955 956 bool dc_dmub_srv_get_diagnostic_data(struct dc_dmub_srv *dc_dmub_srv) 957 { 958 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 959 return false; 960 return dmub_srv_get_diagnostic_data(dc_dmub_srv->dmub); 961 } 962 963 void dc_dmub_srv_log_diagnostic_data(struct dc_dmub_srv *dc_dmub_srv) 964 { 965 uint32_t i; 966 967 if (!dc_dmub_srv) 968 return; 969 970 if (!dc_dmub_srv->dmub) { 971 DC_LOG_ERROR("%s: invalid parameters.", __func__); 972 return; 973 } 974 975 DC_LOG_ERROR("%s: DMCUB error - collecting diagnostic data\n", __func__); 976 977 if (!dc_dmub_srv_get_diagnostic_data(dc_dmub_srv)) { 978 DC_LOG_ERROR("%s: dc_dmub_srv_get_diagnostic_data failed.", __func__); 979 return; 980 } 981 982 DC_LOG_DEBUG("DMCUB STATE:"); 983 DC_LOG_DEBUG(" dmcub_version : %08x", dc_dmub_srv->dmub->debug.dmcub_version); 984 DC_LOG_DEBUG(" scratch [0] : %08x", dc_dmub_srv->dmub->debug.scratch[0]); 985 DC_LOG_DEBUG(" scratch [1] : %08x", dc_dmub_srv->dmub->debug.scratch[1]); 986 DC_LOG_DEBUG(" scratch [2] : %08x", dc_dmub_srv->dmub->debug.scratch[2]); 987 DC_LOG_DEBUG(" scratch [3] : %08x", dc_dmub_srv->dmub->debug.scratch[3]); 988 DC_LOG_DEBUG(" scratch [4] : %08x", dc_dmub_srv->dmub->debug.scratch[4]); 989 DC_LOG_DEBUG(" scratch [5] : %08x", dc_dmub_srv->dmub->debug.scratch[5]); 990 DC_LOG_DEBUG(" scratch [6] : %08x", dc_dmub_srv->dmub->debug.scratch[6]); 991 DC_LOG_DEBUG(" scratch [7] : %08x", dc_dmub_srv->dmub->debug.scratch[7]); 992 DC_LOG_DEBUG(" scratch [8] : %08x", dc_dmub_srv->dmub->debug.scratch[8]); 993 DC_LOG_DEBUG(" scratch [9] : %08x", dc_dmub_srv->dmub->debug.scratch[9]); 994 DC_LOG_DEBUG(" scratch [10] : %08x", dc_dmub_srv->dmub->debug.scratch[10]); 995 DC_LOG_DEBUG(" scratch [11] : %08x", dc_dmub_srv->dmub->debug.scratch[11]); 996 DC_LOG_DEBUG(" scratch [12] : %08x", dc_dmub_srv->dmub->debug.scratch[12]); 997 DC_LOG_DEBUG(" scratch [13] : %08x", dc_dmub_srv->dmub->debug.scratch[13]); 998 DC_LOG_DEBUG(" scratch [14] : %08x", dc_dmub_srv->dmub->debug.scratch[14]); 999 DC_LOG_DEBUG(" scratch [15] : %08x", dc_dmub_srv->dmub->debug.scratch[15]); 1000 for (i = 0; i < DMUB_PC_SNAPSHOT_COUNT; i++) 1001 DC_LOG_DEBUG(" pc[%d] : %08x", i, dc_dmub_srv->dmub->debug.pc[i]); 1002 DC_LOG_DEBUG(" unk_fault_addr : %08x", dc_dmub_srv->dmub->debug.undefined_address_fault_addr); 1003 DC_LOG_DEBUG(" inst_fault_addr : %08x", dc_dmub_srv->dmub->debug.inst_fetch_fault_addr); 1004 DC_LOG_DEBUG(" data_fault_addr : %08x", dc_dmub_srv->dmub->debug.data_write_fault_addr); 1005 DC_LOG_DEBUG(" inbox1_rptr : %08x", dc_dmub_srv->dmub->debug.inbox1_rptr); 1006 DC_LOG_DEBUG(" inbox1_wptr : %08x", dc_dmub_srv->dmub->debug.inbox1_wptr); 1007 DC_LOG_DEBUG(" inbox1_size : %08x", dc_dmub_srv->dmub->debug.inbox1_size); 1008 DC_LOG_DEBUG(" inbox0_rptr : %08x", dc_dmub_srv->dmub->debug.inbox0_rptr); 1009 DC_LOG_DEBUG(" inbox0_wptr : %08x", dc_dmub_srv->dmub->debug.inbox0_wptr); 1010 DC_LOG_DEBUG(" inbox0_size : %08x", dc_dmub_srv->dmub->debug.inbox0_size); 1011 DC_LOG_DEBUG(" outbox1_rptr : %08x", dc_dmub_srv->dmub->debug.outbox1_rptr); 1012 DC_LOG_DEBUG(" outbox1_wptr : %08x", dc_dmub_srv->dmub->debug.outbox1_wptr); 1013 DC_LOG_DEBUG(" outbox1_size : %08x", dc_dmub_srv->dmub->debug.outbox1_size); 1014 DC_LOG_DEBUG(" is_enabled : %d", dc_dmub_srv->dmub->debug.is_dmcub_enabled); 1015 DC_LOG_DEBUG(" is_soft_reset : %d", dc_dmub_srv->dmub->debug.is_dmcub_soft_reset); 1016 DC_LOG_DEBUG(" is_secure_reset : %d", dc_dmub_srv->dmub->debug.is_dmcub_secure_reset); 1017 DC_LOG_DEBUG(" is_traceport_en : %d", dc_dmub_srv->dmub->debug.is_traceport_en); 1018 DC_LOG_DEBUG(" is_cw0_en : %d", dc_dmub_srv->dmub->debug.is_cw0_enabled); 1019 DC_LOG_DEBUG(" is_cw6_en : %d", dc_dmub_srv->dmub->debug.is_cw6_enabled); 1020 DC_LOG_DEBUG(" is_pwait : %d", dc_dmub_srv->dmub->debug.is_pwait); 1021 } 1022 1023 static bool dc_dmub_should_update_cursor_data(struct pipe_ctx *pipe_ctx) 1024 { 1025 if (pipe_ctx->plane_state != NULL) { 1026 if (pipe_ctx->plane_state->address.type == PLN_ADDR_TYPE_VIDEO_PROGRESSIVE || 1027 resource_can_pipe_disable_cursor(pipe_ctx)) 1028 return false; 1029 } 1030 1031 if ((pipe_ctx->stream->link->psr_settings.psr_version == DC_PSR_VERSION_SU_1 || 1032 pipe_ctx->stream->link->psr_settings.psr_version == DC_PSR_VERSION_1) && 1033 pipe_ctx->stream->ctx->dce_version >= DCN_VERSION_3_1) 1034 return true; 1035 1036 if (pipe_ctx->stream->link->replay_settings.config.replay_supported) 1037 return true; 1038 1039 return false; 1040 } 1041 1042 static void dc_build_cursor_update_payload0( 1043 struct pipe_ctx *pipe_ctx, uint8_t p_idx, 1044 struct dmub_cmd_update_cursor_payload0 *payload) 1045 { 1046 struct dc *dc = pipe_ctx->stream->ctx->dc; 1047 struct hubp *hubp = pipe_ctx->plane_res.hubp; 1048 unsigned int panel_inst = 0; 1049 1050 if (dc->config.frame_update_cmd_version2 == true) { 1051 /* Don't need panel_inst for command version2 */ 1052 payload->cmd_version = DMUB_CMD_CURSOR_UPDATE_VERSION_2; 1053 } else { 1054 if (!dc_get_edp_link_panel_inst(hubp->ctx->dc, 1055 pipe_ctx->stream->link, &panel_inst)) 1056 return; 1057 payload->cmd_version = DMUB_CMD_CURSOR_UPDATE_VERSION_1; 1058 } 1059 1060 /* Payload: Cursor Rect is built from position & attribute 1061 * x & y are obtained from postion 1062 */ 1063 payload->cursor_rect.x = hubp->cur_rect.x; 1064 payload->cursor_rect.y = hubp->cur_rect.y; 1065 /* w & h are obtained from attribute */ 1066 payload->cursor_rect.width = hubp->cur_rect.w; 1067 payload->cursor_rect.height = hubp->cur_rect.h; 1068 1069 payload->enable = (uint8_t)hubp->pos.cur_ctl.bits.cur_enable; 1070 payload->pipe_idx = p_idx; 1071 payload->panel_inst = (uint8_t)panel_inst; 1072 payload->otg_inst = (uint8_t)pipe_ctx->stream_res.tg->inst; 1073 } 1074 1075 static void dc_build_cursor_position_update_payload0( 1076 struct dmub_cmd_update_cursor_payload0 *pl, const uint8_t p_idx, 1077 const struct hubp *hubp, const struct dpp *dpp) 1078 { 1079 /* Hubp */ 1080 pl->position_cfg.pHubp.cur_ctl.raw = hubp->pos.cur_ctl.raw; 1081 pl->position_cfg.pHubp.position.raw = hubp->pos.position.raw; 1082 pl->position_cfg.pHubp.hot_spot.raw = hubp->pos.hot_spot.raw; 1083 pl->position_cfg.pHubp.dst_offset.raw = hubp->pos.dst_offset.raw; 1084 1085 /* dpp */ 1086 pl->position_cfg.pDpp.cur0_ctl.raw = dpp->pos.cur0_ctl.raw; 1087 pl->position_cfg.pipe_idx = p_idx; 1088 } 1089 1090 static void dc_build_cursor_attribute_update_payload1( 1091 struct dmub_cursor_attributes_cfg *pl_A, const uint8_t p_idx, 1092 const struct hubp *hubp, const struct dpp *dpp) 1093 { 1094 (void)p_idx; 1095 /* Hubp */ 1096 pl_A->aHubp.SURFACE_ADDR_HIGH = hubp->att.SURFACE_ADDR_HIGH; 1097 pl_A->aHubp.SURFACE_ADDR = hubp->att.SURFACE_ADDR; 1098 pl_A->aHubp.cur_ctl.raw = hubp->att.cur_ctl.raw; 1099 pl_A->aHubp.size.raw = hubp->att.size.raw; 1100 pl_A->aHubp.settings.raw = hubp->att.settings.raw; 1101 1102 /* dpp */ 1103 pl_A->aDpp.cur0_ctl.raw = dpp->att.cur0_ctl.raw; 1104 } 1105 1106 /** 1107 * dc_send_update_cursor_info_to_dmu - Populate the DMCUB Cursor update info command 1108 * 1109 * @pCtx: [in] pipe context 1110 * @pipe_idx: [in] pipe index 1111 * 1112 * This function would store the cursor related information and pass it into 1113 * dmub 1114 */ 1115 void dc_send_update_cursor_info_to_dmu( 1116 struct pipe_ctx *pCtx, uint8_t pipe_idx) 1117 { 1118 union dmub_rb_cmd cmd[2]; 1119 union dmub_cmd_update_cursor_info_data *update_cursor_info_0 = 1120 &cmd[0].update_cursor_info.update_cursor_info_data; 1121 1122 memset(cmd, 0, sizeof(cmd)); 1123 1124 if (!dc_dmub_should_update_cursor_data(pCtx)) 1125 return; 1126 /* 1127 * Since we use multi_cmd_pending for dmub command, the 2nd command is 1128 * only assigned to store cursor attributes info. 1129 * 1st command can view as 2 parts, 1st is for PSR/Replay data, the other 1130 * is to store cursor position info. 1131 * 1132 * Command heaer type must be the same type if using multi_cmd_pending. 1133 * Besides, while process 2nd command in DMU, the sub type is useless. 1134 * So it's meanless to pass the sub type header with different type. 1135 */ 1136 1137 { 1138 /* Build Payload#0 Header */ 1139 cmd[0].update_cursor_info.header.type = DMUB_CMD__UPDATE_CURSOR_INFO; 1140 cmd[0].update_cursor_info.header.payload_bytes = 1141 sizeof(cmd[0].update_cursor_info.update_cursor_info_data); 1142 cmd[0].update_cursor_info.header.multi_cmd_pending = 1; //To combine multi dmu cmd, 1st cmd 1143 1144 /* Prepare Payload */ 1145 dc_build_cursor_update_payload0(pCtx, pipe_idx, &update_cursor_info_0->payload0); 1146 1147 dc_build_cursor_position_update_payload0(&update_cursor_info_0->payload0, pipe_idx, 1148 pCtx->plane_res.hubp, pCtx->plane_res.dpp); 1149 } 1150 { 1151 /* Build Payload#1 Header */ 1152 cmd[1].update_cursor_info.header.type = DMUB_CMD__UPDATE_CURSOR_INFO; 1153 cmd[1].update_cursor_info.header.payload_bytes = sizeof(struct cursor_attributes_cfg); 1154 cmd[1].update_cursor_info.header.multi_cmd_pending = 0; //Indicate it's the last command. 1155 1156 dc_build_cursor_attribute_update_payload1( 1157 &cmd[1].update_cursor_info.update_cursor_info_data.payload1.attribute_cfg, 1158 pipe_idx, pCtx->plane_res.hubp, pCtx->plane_res.dpp); 1159 1160 /* Combine 2nd cmds update_curosr_info to DMU */ 1161 dc_wake_and_execute_dmub_cmd_list(pCtx->stream->ctx, 2, cmd, DM_DMUB_WAIT_TYPE_WAIT); 1162 } 1163 } 1164 1165 bool dc_dmub_check_min_version(struct dmub_srv *srv) 1166 { 1167 if (!srv->hw_funcs.is_psrsu_supported) 1168 return true; 1169 return srv->hw_funcs.is_psrsu_supported(srv); 1170 } 1171 1172 void dc_dmub_srv_enable_dpia_trace(const struct dc *dc) 1173 { 1174 struct dc_dmub_srv *dc_dmub_srv = dc->ctx->dmub_srv; 1175 1176 if (!dc_dmub_srv) 1177 return; 1178 1179 if (!dc_dmub_srv->dmub) { 1180 DC_LOG_ERROR("%s: invalid parameters.", __func__); 1181 return; 1182 } 1183 1184 if (!dc_wake_and_execute_gpint(dc->ctx, DMUB_GPINT__SET_TRACE_BUFFER_MASK_WORD1, 1185 0x0010, NULL, DM_DMUB_WAIT_TYPE_WAIT)) { 1186 DC_LOG_ERROR("timeout updating trace buffer mask word\n"); 1187 return; 1188 } 1189 1190 if (!dc_wake_and_execute_gpint(dc->ctx, DMUB_GPINT__UPDATE_TRACE_BUFFER_MASK, 1191 0x0000, NULL, DM_DMUB_WAIT_TYPE_WAIT)) { 1192 DC_LOG_ERROR("timeout updating trace buffer mask word\n"); 1193 return; 1194 } 1195 1196 DC_LOG_DEBUG("Enabled DPIA trace\n"); 1197 } 1198 1199 void dc_dmub_srv_subvp_save_surf_addr(const struct dc_dmub_srv *dc_dmub_srv, const struct dc_plane_address *addr, uint8_t subvp_index) 1200 { 1201 dmub_srv_subvp_save_surf_addr(dc_dmub_srv->dmub, addr, subvp_index); 1202 } 1203 1204 void dc_dmub_srv_cursor_offload_init(struct dc *dc) 1205 { 1206 struct dmub_rb_cmd_cursor_offload_init *init; 1207 struct dc_dmub_srv *dc_dmub_srv = dc->ctx->dmub_srv; 1208 union dmub_rb_cmd cmd; 1209 1210 if (!dc->config.enable_cursor_offload) 1211 return; 1212 1213 if (!dc_dmub_srv->dmub->meta_info.feature_bits.bits.cursor_offload_v1_support) 1214 return; 1215 1216 if (!dc_dmub_srv->dmub->cursor_offload_fb.gpu_addr || !dc_dmub_srv->dmub->cursor_offload_fb.cpu_addr) 1217 return; 1218 1219 if (!dc_dmub_srv->dmub->cursor_offload_v1) 1220 return; 1221 1222 if (!dc_dmub_srv->dmub->shared_state) 1223 return; 1224 1225 memset(&cmd, 0, sizeof(cmd)); 1226 1227 init = &cmd.cursor_offload_init; 1228 init->header.type = DMUB_CMD__CURSOR_OFFLOAD; 1229 init->header.sub_type = DMUB_CMD__CURSOR_OFFLOAD_INIT; 1230 init->header.payload_bytes = sizeof(init->init_data); 1231 init->init_data.state_addr.quad_part = dc_dmub_srv->dmub->cursor_offload_fb.gpu_addr; 1232 init->init_data.state_size = dc_dmub_srv->dmub->cursor_offload_fb.size; 1233 1234 dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT); 1235 1236 dc_dmub_srv->cursor_offload_enabled = true; 1237 } 1238 1239 void dc_dmub_srv_control_cursor_offload(struct dc *dc, struct dc_state *context, 1240 const struct dc_stream_state *stream, bool enable) 1241 { 1242 struct pipe_ctx const *pipe_ctx; 1243 struct dmub_rb_cmd_cursor_offload_stream_cntl *cntl; 1244 union dmub_rb_cmd cmd; 1245 1246 if (!dc_dmub_srv_is_cursor_offload_enabled(dc)) 1247 return; 1248 1249 if (!stream) 1250 return; 1251 1252 pipe_ctx = resource_get_otg_master_for_stream(&context->res_ctx, stream); 1253 if (!pipe_ctx || !pipe_ctx->stream_res.tg || pipe_ctx->stream != stream) 1254 return; 1255 1256 memset(&cmd, 0, sizeof(cmd)); 1257 1258 cntl = &cmd.cursor_offload_stream_ctnl; 1259 cntl->header.type = DMUB_CMD__CURSOR_OFFLOAD; 1260 cntl->header.sub_type = 1261 enable ? DMUB_CMD__CURSOR_OFFLOAD_STREAM_ENABLE : DMUB_CMD__CURSOR_OFFLOAD_STREAM_DISABLE; 1262 cntl->header.payload_bytes = sizeof(cntl->data); 1263 1264 cntl->data.otg_inst = pipe_ctx->stream_res.tg->inst; 1265 cntl->data.line_time_in_ns = 1u + (uint32_t)(div64_u64(stream->timing.h_total * 1000000ull, 1266 stream->timing.pix_clk_100hz / 10)); 1267 1268 cntl->data.v_total_max = stream->adjust.v_total_max > stream->timing.v_total ? 1269 stream->adjust.v_total_max : 1270 stream->timing.v_total; 1271 1272 dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, 1273 enable ? DM_DMUB_WAIT_TYPE_NO_WAIT : DM_DMUB_WAIT_TYPE_WAIT); 1274 } 1275 1276 void dc_dmub_srv_program_cursor_now(struct dc *dc, const struct pipe_ctx *pipe) 1277 { 1278 struct dmub_rb_cmd_cursor_offload_stream_cntl *cntl; 1279 union dmub_rb_cmd cmd; 1280 1281 if (!dc_dmub_srv_is_cursor_offload_enabled(dc)) 1282 return; 1283 1284 if (!pipe || !pipe->stream || !pipe->stream_res.tg) 1285 return; 1286 1287 memset(&cmd, 0, sizeof(cmd)); 1288 1289 cntl = &cmd.cursor_offload_stream_ctnl; 1290 cntl->header.type = DMUB_CMD__CURSOR_OFFLOAD; 1291 cntl->header.sub_type = DMUB_CMD__CURSOR_OFFLOAD_STREAM_PROGRAM; 1292 cntl->header.payload_bytes = sizeof(cntl->data); 1293 cntl->data.otg_inst = pipe->stream_res.tg->inst; 1294 1295 dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_NO_WAIT); 1296 } 1297 1298 bool dc_dmub_srv_is_hw_pwr_up(struct dc_dmub_srv *dc_dmub_srv, bool wait) 1299 { 1300 struct dc_context *dc_ctx; 1301 enum dmub_status status; 1302 1303 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 1304 return true; 1305 1306 if (dc_dmub_srv->ctx->dc->debug.dmcub_emulation) 1307 return true; 1308 1309 dc_ctx = dc_dmub_srv->ctx; 1310 1311 if (wait) { 1312 if (dc_dmub_srv->ctx->dc->debug.disable_timeout) { 1313 do { 1314 status = dmub_srv_wait_for_hw_pwr_up(dc_dmub_srv->dmub, 500000); 1315 } while (status != DMUB_STATUS_OK); 1316 } else { 1317 status = dmub_srv_wait_for_hw_pwr_up(dc_dmub_srv->dmub, 500000); 1318 if (status != DMUB_STATUS_OK) { 1319 DC_ERROR("Error querying DMUB hw power up status: error=%d\n", status); 1320 return false; 1321 } 1322 } 1323 } else 1324 return dmub_srv_is_hw_pwr_up(dc_dmub_srv->dmub); 1325 1326 return true; 1327 } 1328 1329 static int count_active_streams(const struct dc *dc) 1330 { 1331 int i, count = 0; 1332 1333 for (i = 0; i < dc->current_state->stream_count; ++i) { 1334 struct dc_stream_state *stream = dc->current_state->streams[i]; 1335 1336 if (stream && (!stream->dpms_off || dc->config.disable_ips_in_dpms_off)) 1337 count += 1; 1338 } 1339 1340 return count; 1341 } 1342 1343 static void dc_dmub_srv_notify_idle(const struct dc *dc, bool allow_idle) 1344 { 1345 volatile const struct dmub_shared_state_ips_fw *ips_fw; 1346 struct dc_dmub_srv *dc_dmub_srv; 1347 union dmub_rb_cmd cmd = {0}; 1348 1349 if (dc->debug.dmcub_emulation) 1350 return; 1351 1352 if (!dc->ctx->dmub_srv || !dc->ctx->dmub_srv->dmub) 1353 return; 1354 1355 dc_dmub_srv = dc->ctx->dmub_srv; 1356 ips_fw = &dc_dmub_srv->dmub->shared_state[DMUB_SHARED_SHARE_FEATURE__IPS_FW].data.ips_fw; 1357 1358 memset(&cmd, 0, sizeof(cmd)); 1359 cmd.idle_opt_notify_idle.header.type = DMUB_CMD__IDLE_OPT; 1360 cmd.idle_opt_notify_idle.header.sub_type = DMUB_CMD__IDLE_OPT_DCN_NOTIFY_IDLE; 1361 cmd.idle_opt_notify_idle.header.payload_bytes = 1362 sizeof(cmd.idle_opt_notify_idle) - 1363 sizeof(cmd.idle_opt_notify_idle.header); 1364 1365 cmd.idle_opt_notify_idle.cntl_data.driver_idle = allow_idle; 1366 1367 if (dc->work_arounds.skip_psr_ips_crtc_disable) 1368 cmd.idle_opt_notify_idle.cntl_data.skip_otg_disable = true; 1369 1370 if (allow_idle) { 1371 volatile struct dmub_shared_state_ips_driver *ips_driver = 1372 &dc_dmub_srv->dmub->shared_state[DMUB_SHARED_SHARE_FEATURE__IPS_DRIVER].data.ips_driver; 1373 union dmub_shared_state_ips_driver_signals new_signals; 1374 1375 DC_LOG_IPS( 1376 "%s wait idle (ips1_commit=%u ips2_commit=%u)", 1377 __func__, 1378 ips_fw->signals.bits.ips1_commit, 1379 ips_fw->signals.bits.ips2_commit); 1380 1381 dc_dmub_srv_wait_for_idle(dc->ctx->dmub_srv, DM_DMUB_WAIT_TYPE_WAIT, NULL); 1382 1383 memset(&new_signals, 0, sizeof(new_signals)); 1384 1385 new_signals.bits.allow_idle = 1; /* always set */ 1386 1387 if (dc->config.disable_ips == DMUB_IPS_ENABLE || 1388 dc->config.disable_ips == DMUB_IPS_DISABLE_DYNAMIC) { 1389 new_signals.bits.allow_pg = 1; 1390 new_signals.bits.allow_ips1 = 1; 1391 new_signals.bits.allow_ips2 = 1; 1392 new_signals.bits.allow_z10 = 1; 1393 // New in IPSv2.0 1394 new_signals.bits.allow_ips1z8 = 1; 1395 } else if (dc->config.disable_ips == DMUB_IPS_DISABLE_IPS1) { 1396 new_signals.bits.allow_ips1 = 1; 1397 } else if (dc->config.disable_ips == DMUB_IPS_DISABLE_IPS2) { 1398 // IPSv1.0 only 1399 new_signals.bits.allow_pg = 1; 1400 new_signals.bits.allow_ips1 = 1; 1401 } else if (dc->config.disable_ips == DMUB_IPS_DISABLE_IPS2_Z10) { 1402 // IPSv1.0 only 1403 new_signals.bits.allow_pg = 1; 1404 new_signals.bits.allow_ips1 = 1; 1405 new_signals.bits.allow_ips2 = 1; 1406 } else if (dc->config.disable_ips == DMUB_IPS_RCG_IN_ACTIVE_IPS2_IN_OFF) { 1407 /* TODO: Move this logic out to hwseq */ 1408 if (count_active_streams(dc) == 0) { 1409 /* IPS2 - Display off */ 1410 new_signals.bits.allow_pg = 1; 1411 new_signals.bits.allow_ips1 = 1; 1412 new_signals.bits.allow_ips2 = 1; 1413 new_signals.bits.allow_z10 = 1; 1414 // New in IPSv2.0 1415 new_signals.bits.allow_ips1z8 = 1; 1416 } else { 1417 /* RCG only */ 1418 new_signals.bits.allow_pg = 0; 1419 new_signals.bits.allow_ips1 = 1; 1420 new_signals.bits.allow_ips2 = 0; 1421 new_signals.bits.allow_z10 = 0; 1422 } 1423 } else if (dc->config.disable_ips == DMUB_IPS_DISABLE_Z8_RETENTION) { 1424 new_signals.bits.allow_pg = 1; 1425 new_signals.bits.allow_ips1 = 1; 1426 new_signals.bits.allow_ips2 = 1; 1427 new_signals.bits.allow_z10 = 1; 1428 } 1429 // Setting RCG allow bits (IPSv2.0) 1430 if (dc->config.disable_ips_rcg == DMUB_IPS_RCG_ENABLE) { 1431 new_signals.bits.allow_ips0_rcg = 1; 1432 new_signals.bits.allow_ips1_rcg = 1; 1433 } else if (dc->config.disable_ips_rcg == DMUB_IPS0_RCG_DISABLE) { 1434 new_signals.bits.allow_ips1_rcg = 1; 1435 } else if (dc->config.disable_ips_rcg == DMUB_IPS1_RCG_DISABLE) { 1436 new_signals.bits.allow_ips0_rcg = 1; 1437 } 1438 // IPS dynamic allow bits (IPSv2 change, vpb use case) 1439 if (dc->config.disable_ips_in_vpb == DMUB_IPS_VPB_ENABLE_IPS1_AND_RCG) { 1440 new_signals.bits.allow_dynamic_ips1 = 1; 1441 } else if (dc->config.disable_ips_in_vpb == DMUB_IPS_VPB_ENABLE_ALL) { 1442 new_signals.bits.allow_dynamic_ips1 = 1; 1443 new_signals.bits.allow_dynamic_ips1_z8 = 1; 1444 } 1445 ips_driver->signals = new_signals; 1446 dc_dmub_srv->driver_signals = ips_driver->signals; 1447 } 1448 1449 DC_LOG_IPS( 1450 "%s send allow_idle=%d (ips1_commit=%u ips2_commit=%u)", 1451 __func__, 1452 allow_idle, 1453 ips_fw->signals.bits.ips1_commit, 1454 ips_fw->signals.bits.ips2_commit); 1455 1456 /* NOTE: This does not use the "wake" interface since this is part of the wake path. */ 1457 /* We also do not perform a wait since DMCUB could enter idle after the notification. */ 1458 dm_execute_dmub_cmd(dc->ctx, &cmd, allow_idle ? DM_DMUB_WAIT_TYPE_NO_WAIT : DM_DMUB_WAIT_TYPE_WAIT); 1459 1460 /* Register access should stop at this point. */ 1461 if (allow_idle) 1462 dc_dmub_srv->needs_idle_wake = true; 1463 } 1464 1465 static void dc_dmub_srv_exit_low_power_state(const struct dc *dc) 1466 { 1467 struct dc_dmub_srv *dc_dmub_srv; 1468 uint32_t rcg_exit_count = 0, ips1_exit_count = 0, ips2_exit_count = 0, ips1z8_exit_count = 0; 1469 1470 if (dc->debug.dmcub_emulation) 1471 return; 1472 1473 if (!dc->ctx->dmub_srv || !dc->ctx->dmub_srv->dmub) 1474 return; 1475 1476 dc_dmub_srv = dc->ctx->dmub_srv; 1477 1478 if (dc->clk_mgr->funcs->exit_low_power_state) { 1479 volatile const struct dmub_shared_state_ips_fw *ips_fw = 1480 &dc_dmub_srv->dmub->shared_state[DMUB_SHARED_SHARE_FEATURE__IPS_FW].data.ips_fw; 1481 volatile struct dmub_shared_state_ips_driver *ips_driver = 1482 &dc_dmub_srv->dmub->shared_state[DMUB_SHARED_SHARE_FEATURE__IPS_DRIVER].data.ips_driver; 1483 union dmub_shared_state_ips_driver_signals prev_driver_signals = ips_driver->signals; 1484 1485 rcg_exit_count = ips_fw->rcg_exit_count; 1486 ips1_exit_count = ips_fw->ips1_exit_count; 1487 ips2_exit_count = ips_fw->ips2_exit_count; 1488 ips1z8_exit_count = ips_fw->ips1_z8ret_exit_count; 1489 1490 ips_driver->signals.all = 0; 1491 dc_dmub_srv->driver_signals = ips_driver->signals; 1492 1493 DC_LOG_IPS( 1494 "%s (allow ips1=%u ips2=%u) (commit ips1=%u ips2=%u ips1z8=%u) (count rcg=%u ips1=%u ips2=%u ips1_z8=%u)", 1495 __func__, 1496 ips_driver->signals.bits.allow_ips1, 1497 ips_driver->signals.bits.allow_ips2, 1498 ips_fw->signals.bits.ips1_commit, 1499 ips_fw->signals.bits.ips2_commit, 1500 ips_fw->signals.bits.ips1z8_commit, 1501 ips_fw->rcg_entry_count, 1502 ips_fw->ips1_entry_count, 1503 ips_fw->ips2_entry_count, 1504 ips_fw->ips1_z8ret_entry_count); 1505 1506 /* Note: register access has technically not resumed for DCN here, but we 1507 * need to be message PMFW through our standard register interface. 1508 */ 1509 dc_dmub_srv->needs_idle_wake = false; 1510 1511 if (!dc->caps.ips_v2_support && ((prev_driver_signals.bits.allow_ips2 || prev_driver_signals.all == 0) && 1512 (!dc->debug.optimize_ips_handshake || 1513 ips_fw->signals.bits.ips2_commit || !ips_fw->signals.bits.in_idle))) { 1514 DC_LOG_IPS( 1515 "wait IPS2 eval (ips1_commit=%u ips2_commit=%u )", 1516 ips_fw->signals.bits.ips1_commit, 1517 ips_fw->signals.bits.ips2_commit); 1518 1519 if (!dc->debug.optimize_ips_handshake || !ips_fw->signals.bits.ips2_commit) 1520 udelay(dc->debug.ips2_eval_delay_us); 1521 1522 DC_LOG_IPS( 1523 "exit IPS2 #1 (ips1_commit=%u ips2_commit=%u)", 1524 ips_fw->signals.bits.ips1_commit, 1525 ips_fw->signals.bits.ips2_commit); 1526 1527 // Tell PMFW to exit low power state 1528 dc->clk_mgr->funcs->exit_low_power_state(dc->clk_mgr); 1529 1530 if (ips_fw->signals.bits.ips2_commit) { 1531 1532 DC_LOG_IPS( 1533 "wait IPS2 entry delay (ips1_commit=%u ips2_commit=%u)", 1534 ips_fw->signals.bits.ips1_commit, 1535 ips_fw->signals.bits.ips2_commit); 1536 1537 // Wait for IPS2 entry upper bound 1538 udelay(dc->debug.ips2_entry_delay_us); 1539 1540 DC_LOG_IPS( 1541 "exit IPS2 #2 (ips1_commit=%u ips2_commit=%u)", 1542 ips_fw->signals.bits.ips1_commit, 1543 ips_fw->signals.bits.ips2_commit); 1544 1545 dc->clk_mgr->funcs->exit_low_power_state(dc->clk_mgr); 1546 1547 DC_LOG_IPS( 1548 "wait IPS2 commit clear (ips1_commit=%u ips2_commit=%u)", 1549 ips_fw->signals.bits.ips1_commit, 1550 ips_fw->signals.bits.ips2_commit); 1551 1552 while (ips_fw->signals.bits.ips2_commit) 1553 udelay(1); 1554 1555 DC_LOG_IPS( 1556 "wait hw_pwr_up (ips1_commit=%u ips2_commit=%u)", 1557 ips_fw->signals.bits.ips1_commit, 1558 ips_fw->signals.bits.ips2_commit); 1559 1560 if (!dc_dmub_srv_is_hw_pwr_up(dc->ctx->dmub_srv, true)) 1561 ASSERT(0); 1562 1563 DC_LOG_IPS( 1564 "resync inbox1 (ips1_commit=%u ips2_commit=%u)", 1565 ips_fw->signals.bits.ips1_commit, 1566 ips_fw->signals.bits.ips2_commit); 1567 1568 dmub_srv_sync_inboxes(dc->ctx->dmub_srv->dmub); 1569 } 1570 } 1571 1572 dc_dmub_srv_notify_idle(dc, false); 1573 if (prev_driver_signals.bits.allow_ips1 || prev_driver_signals.all == 0) { 1574 DC_LOG_IPS( 1575 "wait for IPS1 commit clear (ips1_commit=%u ips2_commit=%u ips1z8=%u)", 1576 ips_fw->signals.bits.ips1_commit, 1577 ips_fw->signals.bits.ips2_commit, 1578 ips_fw->signals.bits.ips1z8_commit); 1579 1580 while (ips_fw->signals.bits.ips1_commit) 1581 udelay(1); 1582 1583 DC_LOG_IPS( 1584 "wait for IPS1 commit clear done (ips1_commit=%u ips2_commit=%u ips1z8=%u)", 1585 ips_fw->signals.bits.ips1_commit, 1586 ips_fw->signals.bits.ips2_commit, 1587 ips_fw->signals.bits.ips1z8_commit); 1588 } 1589 } 1590 1591 if (!dc_dmub_srv_is_hw_pwr_up(dc->ctx->dmub_srv, true)) 1592 ASSERT(0); 1593 1594 DC_LOG_IPS("%s exit (count rcg=%u ips1=%u ips2=%u ips1z8=%u)", 1595 __func__, 1596 rcg_exit_count, 1597 ips1_exit_count, 1598 ips2_exit_count, 1599 ips1z8_exit_count); 1600 } 1601 1602 void dc_dmub_srv_set_power_state(struct dc_dmub_srv *dc_dmub_srv, enum dc_acpi_cm_power_state power_state) 1603 { 1604 struct dmub_srv *dmub; 1605 1606 if (!dc_dmub_srv) 1607 return; 1608 1609 dmub = dc_dmub_srv->dmub; 1610 1611 if (power_state == DC_ACPI_CM_POWER_STATE_D0) 1612 dmub_srv_set_power_state(dmub, DMUB_POWER_STATE_D0); 1613 else 1614 dmub_srv_set_power_state(dmub, DMUB_POWER_STATE_D3); 1615 } 1616 1617 void dc_dmub_srv_notify_fw_dc_power_state(struct dc_dmub_srv *dc_dmub_srv, 1618 enum dc_acpi_cm_power_state power_state) 1619 { 1620 union dmub_rb_cmd cmd; 1621 1622 if (!dc_dmub_srv) 1623 return; 1624 1625 memset(&cmd, 0, sizeof(cmd)); 1626 1627 cmd.idle_opt_set_dc_power_state.header.type = DMUB_CMD__IDLE_OPT; 1628 cmd.idle_opt_set_dc_power_state.header.sub_type = DMUB_CMD__IDLE_OPT_SET_DC_POWER_STATE; 1629 cmd.idle_opt_set_dc_power_state.header.payload_bytes = 1630 sizeof(cmd.idle_opt_set_dc_power_state) - sizeof(cmd.idle_opt_set_dc_power_state.header); 1631 1632 if (power_state == DC_ACPI_CM_POWER_STATE_D0) { 1633 cmd.idle_opt_set_dc_power_state.data.power_state = DMUB_IDLE_OPT_DC_POWER_STATE_D0; 1634 } else if (power_state == DC_ACPI_CM_POWER_STATE_D3) { 1635 cmd.idle_opt_set_dc_power_state.data.power_state = DMUB_IDLE_OPT_DC_POWER_STATE_D3; 1636 } else { 1637 cmd.idle_opt_set_dc_power_state.data.power_state = DMUB_IDLE_OPT_DC_POWER_STATE_UNKNOWN; 1638 } 1639 1640 dc_wake_and_execute_dmub_cmd(dc_dmub_srv->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT); 1641 } 1642 1643 bool dc_dmub_srv_should_detect(struct dc_dmub_srv *dc_dmub_srv) 1644 { 1645 volatile const struct dmub_shared_state_ips_fw *ips_fw; 1646 bool reallow_idle = false, should_detect = false; 1647 1648 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 1649 return false; 1650 1651 if (dc_dmub_srv->dmub->shared_state && 1652 dc_dmub_srv->dmub->meta_info.feature_bits.bits.shared_state_link_detection) { 1653 ips_fw = &dc_dmub_srv->dmub->shared_state[DMUB_SHARED_SHARE_FEATURE__IPS_FW].data.ips_fw; 1654 return (bool)ips_fw->signals.bits.detection_required; 1655 } 1656 1657 /* Detection may require reading scratch 0 - exit out of idle prior to the read. */ 1658 if (dc_dmub_srv->idle_allowed) { 1659 dc_dmub_srv_apply_idle_power_optimizations(dc_dmub_srv->ctx->dc, false); 1660 reallow_idle = true; 1661 } 1662 1663 should_detect = dmub_srv_should_detect(dc_dmub_srv->dmub); 1664 1665 /* Re-enter idle if we're not about to immediately redetect links. */ 1666 if (!should_detect && reallow_idle && dc_dmub_srv->idle_exit_counter == 0 && 1667 !dc_dmub_srv->ctx->dc->debug.disable_dmub_reallow_idle) 1668 dc_dmub_srv_apply_idle_power_optimizations(dc_dmub_srv->ctx->dc, true); 1669 1670 return should_detect; 1671 } 1672 1673 void dc_dmub_srv_apply_idle_power_optimizations(const struct dc *dc, bool allow_idle) 1674 { 1675 struct dc_dmub_srv *dc_dmub_srv = dc->ctx->dmub_srv; 1676 1677 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 1678 return; 1679 1680 allow_idle &= (!dc->debug.ips_disallow_entry); 1681 1682 if (dc_dmub_srv->idle_allowed == allow_idle) 1683 return; 1684 1685 DC_LOG_IPS("%s state change: old=%d new=%d", __func__, dc_dmub_srv->idle_allowed, allow_idle); 1686 1687 /* 1688 * Entering a low power state requires a driver notification. 1689 * Powering up the hardware requires notifying PMFW and DMCUB. 1690 * Clearing the driver idle allow requires a DMCUB command. 1691 * DMCUB commands requires the DMCUB to be powered up and restored. 1692 */ 1693 1694 if (!allow_idle) { 1695 dc_dmub_srv->idle_exit_counter += 1; 1696 1697 dc_dmub_srv_exit_low_power_state(dc); 1698 /* 1699 * Idle is considered fully exited only after the sequence above 1700 * fully completes. If we have a race of two threads exiting 1701 * at the same time then it's safe to perform the sequence 1702 * twice as long as we're not re-entering. 1703 * 1704 * Infinite command submission is avoided by using the 1705 * dm_execute_dmub_cmd submission instead of the "wake" helpers. 1706 */ 1707 dc_dmub_srv->idle_allowed = false; 1708 1709 dc_dmub_srv->idle_exit_counter -= 1; 1710 if (dc_dmub_srv->idle_exit_counter < 0) { 1711 ASSERT(0); 1712 dc_dmub_srv->idle_exit_counter = 0; 1713 } 1714 } else { 1715 /* Consider idle as notified prior to the actual submission to 1716 * prevent multiple entries. */ 1717 dc_dmub_srv->idle_allowed = true; 1718 1719 dc_dmub_srv_notify_idle(dc, allow_idle); 1720 } 1721 } 1722 1723 bool dc_wake_and_execute_dmub_cmd(const struct dc_context *ctx, union dmub_rb_cmd *cmd, 1724 enum dm_dmub_wait_type wait_type) 1725 { 1726 return dc_wake_and_execute_dmub_cmd_list(ctx, 1, cmd, wait_type); 1727 } 1728 1729 bool dc_wake_and_execute_dmub_cmd_list(const struct dc_context *ctx, unsigned int count, 1730 union dmub_rb_cmd *cmd, enum dm_dmub_wait_type wait_type) 1731 { 1732 struct dc_dmub_srv *dc_dmub_srv = ctx->dmub_srv; 1733 bool result = false, reallow_idle = false; 1734 1735 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 1736 return false; 1737 1738 if (count == 0) 1739 return true; 1740 1741 if (dc_dmub_srv->idle_allowed) { 1742 dc_dmub_srv_apply_idle_power_optimizations(ctx->dc, false); 1743 reallow_idle = true; 1744 } 1745 1746 /* 1747 * These may have different implementations in DM, so ensure 1748 * that we guide it to the expected helper. 1749 */ 1750 if (count > 1) 1751 result = dm_execute_dmub_cmd_list(ctx, count, cmd, wait_type); 1752 else 1753 result = dm_execute_dmub_cmd(ctx, cmd, wait_type); 1754 1755 if (result && reallow_idle && dc_dmub_srv->idle_exit_counter == 0 && 1756 !ctx->dc->debug.disable_dmub_reallow_idle) 1757 dc_dmub_srv_apply_idle_power_optimizations(ctx->dc, true); 1758 1759 return result; 1760 } 1761 1762 static bool dc_dmub_execute_gpint(const struct dc_context *ctx, enum dmub_gpint_command command_code, 1763 uint16_t param, uint32_t *response, enum dm_dmub_wait_type wait_type) 1764 { 1765 struct dc_dmub_srv *dc_dmub_srv = ctx->dmub_srv; 1766 const uint32_t wait_us = wait_type == DM_DMUB_WAIT_TYPE_NO_WAIT ? 0 : 30; 1767 enum dmub_status status; 1768 1769 if (response) 1770 *response = 0; 1771 1772 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 1773 return false; 1774 1775 status = dmub_srv_send_gpint_command(dc_dmub_srv->dmub, command_code, param, wait_us); 1776 if (status != DMUB_STATUS_OK) { 1777 if (status == DMUB_STATUS_TIMEOUT && wait_type == DM_DMUB_WAIT_TYPE_NO_WAIT) 1778 return true; 1779 1780 return false; 1781 } 1782 1783 if (response && wait_type == DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY) 1784 dmub_srv_get_gpint_response(dc_dmub_srv->dmub, response); 1785 1786 return true; 1787 } 1788 1789 bool dc_wake_and_execute_gpint(const struct dc_context *ctx, enum dmub_gpint_command command_code, 1790 uint16_t param, uint32_t *response, enum dm_dmub_wait_type wait_type) 1791 { 1792 struct dc_dmub_srv *dc_dmub_srv = ctx->dmub_srv; 1793 bool result = false, reallow_idle = false; 1794 1795 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 1796 return false; 1797 1798 if (dc_dmub_srv->idle_allowed) { 1799 dc_dmub_srv_apply_idle_power_optimizations(ctx->dc, false); 1800 reallow_idle = true; 1801 } 1802 1803 result = dc_dmub_execute_gpint(ctx, command_code, param, response, wait_type); 1804 1805 if (result && reallow_idle && dc_dmub_srv->idle_exit_counter == 0 && 1806 !ctx->dc->debug.disable_dmub_reallow_idle) 1807 dc_dmub_srv_apply_idle_power_optimizations(ctx->dc, true); 1808 1809 return result; 1810 } 1811 1812 static void dc_dmub_srv_rb_based_fams2_update_config(struct dc *dc, 1813 struct dc_state *context, 1814 bool enable) 1815 { 1816 uint32_t num_cmds = 1; 1817 uint32_t i; 1818 union dmub_rb_cmd cmd[2 * MAX_STREAMS + 1]; 1819 struct dmub_rb_cmd_fams2 *global_cmd = &cmd[0].fams2_config; 1820 1821 memset(cmd, 0, sizeof(union dmub_rb_cmd) * (2 * MAX_STREAMS + 1)); 1822 /* fill in generic command header */ 1823 global_cmd->header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH; 1824 global_cmd->header.sub_type = DMUB_CMD__FAMS2_CONFIG; 1825 global_cmd->header.payload_bytes = 1826 sizeof(struct dmub_rb_cmd_fams2) - sizeof(struct dmub_cmd_header); 1827 1828 if (enable) { 1829 /* send global configuration parameters */ 1830 memcpy(&global_cmd->config.global, &context->bw_ctx.bw.dcn.fams2_global_config, sizeof(struct dmub_cmd_fams2_global_config)); 1831 1832 /* copy static feature configuration overrides */ 1833 global_cmd->config.global.features.bits.enable_stall_recovery = dc->debug.fams2_config.bits.enable_stall_recovery; 1834 global_cmd->config.global.features.bits.enable_debug = dc->debug.fams2_config.bits.enable_debug; 1835 global_cmd->config.global.features.bits.enable_offload_flip = dc->debug.fams2_config.bits.enable_offload_flip; 1836 1837 /* construct per-stream configs */ 1838 for (i = 0; i < context->bw_ctx.bw.dcn.fams2_global_config.num_streams; i++) { 1839 struct dmub_rb_cmd_fams2 *stream_base_cmd = &cmd[i+1].fams2_config; 1840 struct dmub_rb_cmd_fams2 *stream_sub_state_cmd = &cmd[i+1+context->bw_ctx.bw.dcn.fams2_global_config.num_streams].fams2_config; 1841 1842 /* configure command header */ 1843 stream_base_cmd->header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH; 1844 stream_base_cmd->header.sub_type = DMUB_CMD__FAMS2_CONFIG; 1845 stream_base_cmd->header.payload_bytes = 1846 sizeof(struct dmub_rb_cmd_fams2) - sizeof(struct dmub_cmd_header); 1847 stream_base_cmd->header.multi_cmd_pending = 1; 1848 stream_sub_state_cmd->header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH; 1849 stream_sub_state_cmd->header.sub_type = DMUB_CMD__FAMS2_CONFIG; 1850 stream_sub_state_cmd->header.payload_bytes = 1851 sizeof(struct dmub_rb_cmd_fams2) - sizeof(struct dmub_cmd_header); 1852 stream_sub_state_cmd->header.multi_cmd_pending = 1; 1853 /* copy stream static base state */ 1854 memcpy(&stream_base_cmd->config, 1855 &context->bw_ctx.bw.dcn.fams2_stream_base_params[i], 1856 sizeof(union dmub_cmd_fams2_config)); 1857 /* copy stream static sub state */ 1858 memcpy(&stream_sub_state_cmd->config, 1859 &context->bw_ctx.bw.dcn.fams2_stream_sub_params[i], 1860 sizeof(union dmub_cmd_fams2_config)); 1861 } 1862 } 1863 1864 /* apply feature configuration based on current driver state */ 1865 global_cmd->config.global.features.bits.enable_visual_confirm = dc->debug.visual_confirm == VISUAL_CONFIRM_FAMS2; 1866 global_cmd->config.global.features.bits.enable = enable && context->bw_ctx.bw.dcn.fams2_global_config.features.bits.enable; 1867 global_cmd->config.global.features.bits.enable_ppt_check = dc->debug.fams2_config.bits.enable_ppt_check; 1868 1869 if (enable) { 1870 /* set multi pending for global, and unset for last stream cmd */ 1871 global_cmd->header.multi_cmd_pending = 1; 1872 cmd[2 * context->bw_ctx.bw.dcn.fams2_global_config.num_streams].fams2_config.header.multi_cmd_pending = 0; 1873 num_cmds += 2 * context->bw_ctx.bw.dcn.fams2_global_config.num_streams; 1874 } 1875 1876 dm_execute_dmub_cmd_list(dc->ctx, num_cmds, cmd, DM_DMUB_WAIT_TYPE_WAIT); 1877 } 1878 1879 static void dc_dmub_srv_ib_based_fams2_update_config(struct dc *dc, 1880 struct dc_state *context, 1881 bool enable) 1882 { 1883 struct dmub_fams2_config_v2 *config = (struct dmub_fams2_config_v2 *)dc->ctx->dmub_srv->dmub->ib_mem_gart.cpu_addr; 1884 union dmub_rb_cmd cmd; 1885 uint32_t i; 1886 1887 memset(config, 0, sizeof(*config)); 1888 memset(&cmd, 0, sizeof(cmd)); 1889 1890 cmd.ib_fams2_config.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH; 1891 cmd.ib_fams2_config.header.sub_type = DMUB_CMD__FAMS2_IB_CONFIG; 1892 1893 cmd.ib_fams2_config.ib_data.src.quad_part = dc->ctx->dmub_srv->dmub->ib_mem_gart.gpu_addr; 1894 cmd.ib_fams2_config.ib_data.size = sizeof(*config); 1895 1896 if (enable) { 1897 /* send global configuration parameters */ 1898 memcpy(&config->global, &context->bw_ctx.bw.dcn.fams2_global_config, 1899 sizeof(struct dmub_cmd_fams2_global_config)); 1900 1901 /* copy static feature configuration overrides */ 1902 config->global.features.bits.enable_stall_recovery = dc->debug.fams2_config.bits.enable_stall_recovery; 1903 config->global.features.bits.enable_offload_flip = dc->debug.fams2_config.bits.enable_offload_flip; 1904 config->global.features.bits.enable_debug = dc->debug.fams2_config.bits.enable_debug; 1905 1906 /* construct per-stream configs */ 1907 for (i = 0; i < context->bw_ctx.bw.dcn.fams2_global_config.num_streams; i++) { 1908 /* copy stream static base state */ 1909 memcpy(&config->stream_v1[i].base, 1910 &context->bw_ctx.bw.dcn.fams2_stream_base_params[i], 1911 sizeof(config->stream_v1[i].base)); 1912 1913 /* copy stream static sub-state */ 1914 memcpy(&config->stream_v1[i].sub_state, 1915 &context->bw_ctx.bw.dcn.fams2_stream_sub_params_v2[i], 1916 sizeof(config->stream_v1[i].sub_state)); 1917 } 1918 } 1919 1920 config->global.features.bits.enable_visual_confirm = dc->debug.visual_confirm == VISUAL_CONFIRM_FAMS2; 1921 config->global.features.bits.enable = enable && context->bw_ctx.bw.dcn.fams2_global_config.features.bits.enable; 1922 config->global.features.bits.enable_ppt_check = dc->debug.fams2_config.bits.enable_ppt_check; 1923 1924 dm_execute_dmub_cmd_list(dc->ctx, 1, &cmd, DM_DMUB_WAIT_TYPE_WAIT); 1925 } 1926 1927 void dc_dmub_srv_fams2_update_config(struct dc *dc, 1928 struct dc_state *context, 1929 bool enable) 1930 { 1931 if (dc->debug.fams_version.major == 2) 1932 dc_dmub_srv_rb_based_fams2_update_config(dc, context, enable); 1933 if (dc->debug.fams_version.major == 3) 1934 dc_dmub_srv_ib_based_fams2_update_config(dc, context, enable); 1935 } 1936 1937 void dc_dmub_srv_fams2_drr_update(struct dc *dc, 1938 uint32_t tg_inst, 1939 uint32_t vtotal_min, 1940 uint32_t vtotal_max, 1941 uint32_t vtotal_mid, 1942 uint32_t vtotal_mid_frame_num, 1943 bool program_manual_trigger) 1944 { 1945 union dmub_rb_cmd cmd = { 0 }; 1946 1947 cmd.fams2_drr_update.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH; 1948 cmd.fams2_drr_update.header.sub_type = DMUB_CMD__FAMS2_DRR_UPDATE; 1949 cmd.fams2_drr_update.dmub_optc_state_req.tg_inst = (uint8_t)tg_inst; 1950 cmd.fams2_drr_update.dmub_optc_state_req.v_total_max = vtotal_max; 1951 cmd.fams2_drr_update.dmub_optc_state_req.v_total_min = vtotal_min; 1952 cmd.fams2_drr_update.dmub_optc_state_req.v_total_mid = vtotal_mid; 1953 cmd.fams2_drr_update.dmub_optc_state_req.v_total_mid_frame_num = vtotal_mid_frame_num; 1954 cmd.fams2_drr_update.dmub_optc_state_req.program_manual_trigger = program_manual_trigger; 1955 1956 cmd.fams2_drr_update.header.payload_bytes = 1957 sizeof(cmd.fams2_drr_update) - sizeof(cmd.fams2_drr_update.header); 1958 1959 dm_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT); 1960 } 1961 1962 void dc_dmub_srv_fams2_passthrough_flip( 1963 struct dc *dc, 1964 struct dc_state *state, 1965 struct dc_stream_state *stream, 1966 struct dc_surface_update *srf_updates, 1967 int surface_count) 1968 { 1969 int plane_index; 1970 union dmub_rb_cmd cmds[MAX_PLANES]; 1971 struct dc_plane_address *address; 1972 struct dc_plane_state *plane_state; 1973 int num_cmds = 0; 1974 struct dc_stream_status *stream_status = dc_stream_get_status(stream); 1975 1976 if (surface_count <= 0 || stream_status == NULL) 1977 return; 1978 1979 memset(cmds, 0, sizeof(union dmub_rb_cmd) * MAX_PLANES); 1980 1981 /* build command for each surface update */ 1982 for (plane_index = 0; plane_index < surface_count; plane_index++) { 1983 plane_state = srf_updates[plane_index].surface; 1984 address = &plane_state->address; 1985 1986 /* skip if there is no address update for plane */ 1987 if (!srf_updates[plane_index].flip_addr) 1988 continue; 1989 1990 /* build command header */ 1991 cmds[num_cmds].fams2_flip.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH; 1992 cmds[num_cmds].fams2_flip.header.sub_type = DMUB_CMD__FAMS2_FLIP; 1993 cmds[num_cmds].fams2_flip.header.payload_bytes = 1994 sizeof(struct dmub_rb_cmd_fams2_flip) - sizeof(struct dmub_cmd_header); 1995 1996 /* for chaining multiple commands, all but last command should set to 1 */ 1997 cmds[num_cmds].fams2_flip.header.multi_cmd_pending = 1; 1998 1999 /* set topology info */ 2000 cmds[num_cmds].fams2_flip.flip_info.pipe_mask = (uint8_t)dc_plane_get_pipe_mask(state, plane_state); 2001 if (stream_status) { 2002 cmds[num_cmds].fams2_flip.flip_info.otg_inst = (uint8_t)stream_status->primary_otg_inst; 2003 } 2004 cmds[num_cmds].fams2_flip.flip_info.config.bits.is_immediate = plane_state->flip_immediate; 2005 2006 /* build address info for command */ 2007 switch (address->type) { 2008 case PLN_ADDR_TYPE_GRAPHICS: 2009 if (address->grph.addr.quad_part == 0) { 2010 BREAK_TO_DEBUGGER(); 2011 break; 2012 } 2013 2014 cmds[num_cmds].fams2_flip.flip_info.addr_info.meta_addr_lo = 2015 address->grph.meta_addr.low_part; 2016 cmds[num_cmds].fams2_flip.flip_info.addr_info.meta_addr_hi = 2017 (uint16_t)address->grph.meta_addr.high_part; 2018 cmds[num_cmds].fams2_flip.flip_info.addr_info.surf_addr_lo = 2019 address->grph.addr.low_part; 2020 cmds[num_cmds].fams2_flip.flip_info.addr_info.surf_addr_hi = 2021 (uint16_t)address->grph.addr.high_part; 2022 break; 2023 case PLN_ADDR_TYPE_VIDEO_PROGRESSIVE: 2024 if (address->video_progressive.luma_addr.quad_part == 0 || 2025 address->video_progressive.chroma_addr.quad_part == 0) { 2026 BREAK_TO_DEBUGGER(); 2027 break; 2028 } 2029 2030 cmds[num_cmds].fams2_flip.flip_info.addr_info.meta_addr_lo = 2031 address->video_progressive.luma_meta_addr.low_part; 2032 cmds[num_cmds].fams2_flip.flip_info.addr_info.meta_addr_hi = 2033 (uint16_t)address->video_progressive.luma_meta_addr.high_part; 2034 cmds[num_cmds].fams2_flip.flip_info.addr_info.meta_addr_c_lo = 2035 address->video_progressive.chroma_meta_addr.low_part; 2036 cmds[num_cmds].fams2_flip.flip_info.addr_info.meta_addr_c_hi = 2037 (uint16_t)address->video_progressive.chroma_meta_addr.high_part; 2038 cmds[num_cmds].fams2_flip.flip_info.addr_info.surf_addr_lo = 2039 address->video_progressive.luma_addr.low_part; 2040 cmds[num_cmds].fams2_flip.flip_info.addr_info.surf_addr_hi = 2041 (uint16_t)address->video_progressive.luma_addr.high_part; 2042 cmds[num_cmds].fams2_flip.flip_info.addr_info.surf_addr_c_lo = 2043 address->video_progressive.chroma_addr.low_part; 2044 cmds[num_cmds].fams2_flip.flip_info.addr_info.surf_addr_c_hi = 2045 (uint16_t)address->video_progressive.chroma_addr.high_part; 2046 break; 2047 default: 2048 // Should never be hit 2049 BREAK_TO_DEBUGGER(); 2050 break; 2051 } 2052 2053 num_cmds++; 2054 } 2055 2056 if (num_cmds > 0) { 2057 cmds[num_cmds - 1].fams2_flip.header.multi_cmd_pending = 0; 2058 dm_execute_dmub_cmd_list(dc->ctx, num_cmds, cmds, DM_DMUB_WAIT_TYPE_WAIT); 2059 } 2060 } 2061 2062 2063 bool dc_dmub_srv_ips_residency_cntl(const struct dc_context *ctx, uint8_t panel_inst, bool start_measurement) 2064 { 2065 union dmub_rb_cmd cmd; 2066 2067 memset(&cmd, 0, sizeof(cmd)); 2068 2069 cmd.ips_residency_cntl.header.type = DMUB_CMD__IPS; 2070 cmd.ips_residency_cntl.header.sub_type = DMUB_CMD__IPS_RESIDENCY_CNTL; 2071 cmd.ips_residency_cntl.header.payload_bytes = sizeof(struct dmub_cmd_ips_residency_cntl_data); 2072 2073 // only panel_inst=0 is supported at the moment 2074 cmd.ips_residency_cntl.cntl_data.panel_inst = panel_inst; 2075 cmd.ips_residency_cntl.cntl_data.start_measurement = start_measurement; 2076 2077 if (!dc_wake_and_execute_dmub_cmd(ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY)) 2078 return false; 2079 2080 return true; 2081 } 2082 2083 bool dc_dmub_srv_ips_query_residency_info(const struct dc_context *ctx, uint8_t panel_inst, struct dmub_ips_residency_info *driver_info, 2084 enum ips_residency_mode ips_mode) 2085 { 2086 union dmub_rb_cmd cmd; 2087 uint32_t bytes = sizeof(struct dmub_ips_residency_info); 2088 2089 dmub_flush_buffer_mem(&ctx->dmub_srv->dmub->scratch_mem_fb); 2090 memset(&cmd, 0, sizeof(cmd)); 2091 2092 cmd.ips_query_residency_info.header.type = DMUB_CMD__IPS; 2093 cmd.ips_query_residency_info.header.sub_type = DMUB_CMD__IPS_QUERY_RESIDENCY_INFO; 2094 cmd.ips_query_residency_info.header.payload_bytes = sizeof(struct dmub_cmd_ips_query_residency_info_data); 2095 2096 cmd.ips_query_residency_info.info_data.dest.quad_part = ctx->dmub_srv->dmub->scratch_mem_fb.gpu_addr; 2097 cmd.ips_query_residency_info.info_data.size = bytes; 2098 cmd.ips_query_residency_info.info_data.panel_inst = panel_inst; 2099 cmd.ips_query_residency_info.info_data.ips_mode = (uint32_t)ips_mode; 2100 2101 if (!dc_wake_and_execute_dmub_cmd(ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY) || 2102 cmd.ips_query_residency_info.header.ret_status == 0) 2103 return false; 2104 2105 // copy the result to the output since ret_status != 0 means the command returned data 2106 memcpy(driver_info, ctx->dmub_srv->dmub->scratch_mem_fb.cpu_addr, bytes); 2107 2108 return true; 2109 } 2110 2111 bool dmub_lsdma_init(struct dc_dmub_srv *dc_dmub_srv) 2112 { 2113 struct dc_context *dc_ctx = dc_dmub_srv->ctx; 2114 union dmub_rb_cmd cmd; 2115 enum dm_dmub_wait_type wait_type; 2116 struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data; 2117 bool result; 2118 2119 if (!dc_dmub_srv->dmub->feature_caps.lsdma_support_in_dmu) 2120 return false; 2121 2122 memset(&cmd, 0, sizeof(cmd)); 2123 2124 cmd.cmd_common.header.type = DMUB_CMD__LSDMA; 2125 cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_INIT_CONFIG; 2126 wait_type = DM_DMUB_WAIT_TYPE_NO_WAIT; 2127 2128 lsdma_data->u.init_data.gpu_addr_base.quad_part = dc_ctx->dmub_srv->dmub->lsdma_rb_fb.gpu_addr; 2129 lsdma_data->u.init_data.ring_size = dc_ctx->dmub_srv->dmub->lsdma_rb_fb.size; 2130 2131 result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type); 2132 2133 if (!result) 2134 DC_ERROR("LSDMA Init failed in DMUB"); 2135 2136 return result; 2137 } 2138 2139 bool dmub_lsdma_send_linear_copy_command( 2140 struct dc_dmub_srv *dc_dmub_srv, 2141 uint64_t src_addr, 2142 uint64_t dst_addr, 2143 uint32_t count 2144 ) 2145 { 2146 struct dc_context *dc_ctx = dc_dmub_srv->ctx; 2147 union dmub_rb_cmd cmd; 2148 enum dm_dmub_wait_type wait_type; 2149 struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data; 2150 bool result; 2151 2152 memset(&cmd, 0, sizeof(cmd)); 2153 2154 cmd.cmd_common.header.type = DMUB_CMD__LSDMA; 2155 cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_LINEAR_COPY; 2156 wait_type = DM_DMUB_WAIT_TYPE_NO_WAIT; 2157 2158 lsdma_data->u.linear_copy_data.count = count - 1; // LSDMA controller expects bytes to copy -1 2159 lsdma_data->u.linear_copy_data.src_lo = src_addr & 0xFFFFFFFF; 2160 lsdma_data->u.linear_copy_data.src_hi = (src_addr >> 32) & 0xFFFFFFFF; 2161 lsdma_data->u.linear_copy_data.dst_lo = dst_addr & 0xFFFFFFFF; 2162 lsdma_data->u.linear_copy_data.dst_hi = (dst_addr >> 32) & 0xFFFFFFFF; 2163 2164 result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type); 2165 2166 if (!result) 2167 DC_ERROR("LSDMA Linear Copy failed in DMUB"); 2168 2169 return result; 2170 } 2171 2172 bool dmub_lsdma_send_linear_sub_window_copy_command( 2173 struct dc_dmub_srv *dc_dmub_srv, 2174 struct lsdma_linear_sub_window_copy_params copy_data 2175 ) 2176 { 2177 struct dc_context *dc_ctx = dc_dmub_srv->ctx; 2178 union dmub_rb_cmd cmd; 2179 enum dm_dmub_wait_type wait_type; 2180 struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data; 2181 bool result; 2182 2183 memset(&cmd, 0, sizeof(cmd)); 2184 2185 cmd.cmd_common.header.type = DMUB_CMD__LSDMA; 2186 cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_LINEAR_SUB_WINDOW_COPY; 2187 wait_type = DM_DMUB_WAIT_TYPE_NO_WAIT; 2188 2189 lsdma_data->u.linear_sub_window_copy_data.tmz = copy_data.tmz; 2190 lsdma_data->u.linear_sub_window_copy_data.element_size = copy_data.element_size; 2191 lsdma_data->u.linear_sub_window_copy_data.src_lo = copy_data.src_lo; 2192 lsdma_data->u.linear_sub_window_copy_data.src_hi = copy_data.src_hi; 2193 lsdma_data->u.linear_sub_window_copy_data.src_x = copy_data.src_x; 2194 lsdma_data->u.linear_sub_window_copy_data.src_y = copy_data.src_y; 2195 lsdma_data->u.linear_sub_window_copy_data.src_pitch = copy_data.src_pitch; 2196 lsdma_data->u.linear_sub_window_copy_data.src_slice_pitch = copy_data.src_slice_pitch; 2197 lsdma_data->u.linear_sub_window_copy_data.dst_lo = copy_data.dst_lo; 2198 lsdma_data->u.linear_sub_window_copy_data.dst_hi = copy_data.dst_hi; 2199 lsdma_data->u.linear_sub_window_copy_data.dst_x = copy_data.dst_x; 2200 lsdma_data->u.linear_sub_window_copy_data.dst_y = copy_data.dst_y; 2201 lsdma_data->u.linear_sub_window_copy_data.dst_pitch = copy_data.dst_pitch; 2202 lsdma_data->u.linear_sub_window_copy_data.dst_slice_pitch = copy_data.dst_slice_pitch; 2203 lsdma_data->u.linear_sub_window_copy_data.rect_x = copy_data.rect_x; 2204 lsdma_data->u.linear_sub_window_copy_data.rect_y = copy_data.rect_y; 2205 lsdma_data->u.linear_sub_window_copy_data.src_cache_policy = copy_data.src_cache_policy; 2206 lsdma_data->u.linear_sub_window_copy_data.dst_cache_policy = copy_data.dst_cache_policy; 2207 2208 result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type); 2209 2210 if (!result) 2211 DC_ERROR("LSDMA Linear Sub Window Copy failed in DMUB"); 2212 2213 return result; 2214 } 2215 2216 bool dmub_lsdma_send_tiled_to_tiled_copy_command( 2217 struct dc_dmub_srv *dc_dmub_srv, 2218 struct lsdma_send_tiled_to_tiled_copy_command_params params 2219 ) 2220 { 2221 struct dc_context *dc_ctx = dc_dmub_srv->ctx; 2222 union dmub_rb_cmd cmd; 2223 enum dm_dmub_wait_type wait_type; 2224 struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data; 2225 bool result; 2226 2227 memset(&cmd, 0, sizeof(cmd)); 2228 2229 cmd.cmd_common.header.type = DMUB_CMD__LSDMA; 2230 cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_TILED_TO_TILED_COPY; 2231 wait_type = DM_DMUB_WAIT_TYPE_NO_WAIT; 2232 2233 lsdma_data->u.tiled_copy_data.src_addr_lo = params.src_addr & 0xFFFFFFFF; 2234 lsdma_data->u.tiled_copy_data.src_addr_hi = (params.src_addr >> 32) & 0xFFFFFFFF; 2235 lsdma_data->u.tiled_copy_data.dst_addr_lo = params.dst_addr & 0xFFFFFFFF; 2236 lsdma_data->u.tiled_copy_data.dst_addr_hi = (params.dst_addr >> 32) & 0xFFFFFFFF; 2237 lsdma_data->u.tiled_copy_data.src_x = params.src_x; 2238 lsdma_data->u.tiled_copy_data.src_y = params.src_y; 2239 lsdma_data->u.tiled_copy_data.dst_x = params.dst_x; 2240 lsdma_data->u.tiled_copy_data.dst_y = params.dst_y; 2241 lsdma_data->u.tiled_copy_data.src_width = params.src_width; 2242 lsdma_data->u.tiled_copy_data.dst_width = params.dst_width; 2243 lsdma_data->u.tiled_copy_data.src_swizzle_mode = params.swizzle_mode; 2244 lsdma_data->u.tiled_copy_data.dst_swizzle_mode = params.swizzle_mode; 2245 lsdma_data->u.tiled_copy_data.src_element_size = params.element_size; 2246 lsdma_data->u.tiled_copy_data.dst_element_size = params.element_size; 2247 lsdma_data->u.tiled_copy_data.rect_x = params.rect_x; 2248 lsdma_data->u.tiled_copy_data.rect_y = params.rect_y; 2249 lsdma_data->u.tiled_copy_data.dcc = params.dcc; 2250 lsdma_data->u.tiled_copy_data.tmz = params.tmz; 2251 lsdma_data->u.tiled_copy_data.read_compress = params.read_compress; 2252 lsdma_data->u.tiled_copy_data.write_compress = params.write_compress; 2253 lsdma_data->u.tiled_copy_data.src_height = params.src_height; 2254 lsdma_data->u.tiled_copy_data.dst_height = params.dst_height; 2255 lsdma_data->u.tiled_copy_data.data_format = params.data_format; 2256 lsdma_data->u.tiled_copy_data.max_com = params.max_com; 2257 lsdma_data->u.tiled_copy_data.max_uncom = params.max_uncom; 2258 2259 result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type); 2260 2261 if (!result) 2262 DC_ERROR("LSDMA Tiled to Tiled Copy failed in DMUB"); 2263 2264 return result; 2265 } 2266 2267 bool dmub_lsdma_send_pio_copy_command( 2268 struct dc_dmub_srv *dc_dmub_srv, 2269 uint64_t src_addr, 2270 uint64_t dst_addr, 2271 uint32_t byte_count, 2272 uint32_t overlap_disable 2273 ) 2274 { 2275 struct dc_context *dc_ctx = dc_dmub_srv->ctx; 2276 union dmub_rb_cmd cmd; 2277 enum dm_dmub_wait_type wait_type; 2278 struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data; 2279 bool result; 2280 2281 memset(&cmd, 0, sizeof(cmd)); 2282 2283 cmd.cmd_common.header.type = DMUB_CMD__LSDMA; 2284 cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_PIO_COPY; 2285 wait_type = DM_DMUB_WAIT_TYPE_NO_WAIT; 2286 2287 lsdma_data->u.pio_copy_data.packet.fields.byte_count = byte_count; 2288 lsdma_data->u.pio_copy_data.packet.fields.overlap_disable = overlap_disable; 2289 lsdma_data->u.pio_copy_data.src_lo = src_addr & 0xFFFFFFFF; 2290 lsdma_data->u.pio_copy_data.src_hi = (src_addr >> 32) & 0xFFFFFFFF; 2291 lsdma_data->u.pio_copy_data.dst_lo = dst_addr & 0xFFFFFFFF; 2292 lsdma_data->u.pio_copy_data.dst_hi = (dst_addr >> 32) & 0xFFFFFFFF; 2293 2294 result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type); 2295 2296 if (!result) 2297 DC_ERROR("LSDMA PIO Copy failed in DMUB"); 2298 2299 return result; 2300 } 2301 2302 bool dmub_lsdma_send_pio_constfill_command( 2303 struct dc_dmub_srv *dc_dmub_srv, 2304 uint64_t dst_addr, 2305 uint32_t byte_count, 2306 uint32_t data 2307 ) 2308 { 2309 struct dc_context *dc_ctx = dc_dmub_srv->ctx; 2310 union dmub_rb_cmd cmd; 2311 enum dm_dmub_wait_type wait_type; 2312 struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data; 2313 bool result; 2314 2315 memset(&cmd, 0, sizeof(cmd)); 2316 2317 cmd.cmd_common.header.type = DMUB_CMD__LSDMA; 2318 cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_PIO_CONSTFILL; 2319 wait_type = DM_DMUB_WAIT_TYPE_NO_WAIT; 2320 2321 lsdma_data->u.pio_constfill_data.packet.fields.constant_fill = 1; 2322 lsdma_data->u.pio_constfill_data.packet.fields.byte_count = byte_count; 2323 lsdma_data->u.pio_constfill_data.dst_lo = dst_addr & 0xFFFFFFFF; 2324 lsdma_data->u.pio_constfill_data.dst_hi = (dst_addr >> 32) & 0xFFFFFFFF; 2325 lsdma_data->u.pio_constfill_data.data = data; 2326 2327 result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type); 2328 2329 if (!result) 2330 DC_ERROR("LSDMA PIO Constfill failed in DMUB"); 2331 2332 return result; 2333 } 2334 2335 bool dmub_lsdma_send_poll_reg_write_command(struct dc_dmub_srv *dc_dmub_srv, uint32_t reg_addr, uint32_t reg_data) 2336 { 2337 struct dc_context *dc_ctx = dc_dmub_srv->ctx; 2338 union dmub_rb_cmd cmd; 2339 enum dm_dmub_wait_type wait_type; 2340 struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data; 2341 bool result; 2342 2343 memset(&cmd, 0, sizeof(cmd)); 2344 2345 cmd.cmd_common.header.type = DMUB_CMD__LSDMA; 2346 cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_POLL_REG_WRITE; 2347 wait_type = DM_DMUB_WAIT_TYPE_NO_WAIT; 2348 2349 lsdma_data->u.reg_write_data.reg_addr = reg_addr; 2350 lsdma_data->u.reg_write_data.reg_data = reg_data; 2351 2352 result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type); 2353 2354 if (!result) 2355 DC_ERROR("LSDMA Poll Reg failed in DMUB"); 2356 2357 return result; 2358 } 2359 2360 bool dc_dmub_srv_is_cursor_offload_enabled(const struct dc *dc) 2361 { 2362 return dc->ctx->dmub_srv && dc->ctx->dmub_srv->cursor_offload_enabled; 2363 } 2364 2365 void dc_dmub_srv_boot_time_crc_init(const struct dc *dc, uint64_t gpu_addr, uint32_t size) 2366 { 2367 struct dc_dmub_srv *dc_dmub_srv; 2368 struct dc_context *dc_ctx; 2369 union dmub_rb_cmd cmd = {0}; 2370 bool result = false; 2371 2372 if (!dc || !dc->ctx || !dc->ctx->dmub_srv || size == 0) 2373 return; 2374 2375 dc_dmub_srv = dc->ctx->dmub_srv; 2376 dc_ctx = dc_dmub_srv->ctx; 2377 2378 memset(&cmd, 0, sizeof(cmd)); 2379 cmd.boot_time_crc_init.header.type = DMUB_CMD__BOOT_TIME_CRC; 2380 cmd.boot_time_crc_init.header.sub_type = DMUB_CMD__BOOT_TIME_CRC_INIT_MEM; 2381 cmd.boot_time_crc_init.header.payload_bytes = 2382 sizeof(struct dmub_rb_cmd_boot_time_crc_init); 2383 cmd.boot_time_crc_init.data.buffer_addr.quad_part = gpu_addr; 2384 cmd.boot_time_crc_init.data.buffer_size = size; 2385 2386 result = dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_NO_WAIT); 2387 2388 if (!result) 2389 DC_ERROR("Boot time crc init failed in DMUB"); 2390 } 2391 2392 void dc_dmub_srv_release_hw(const struct dc *dc) 2393 { 2394 struct dc_dmub_srv *dc_dmub_srv = dc->ctx->dmub_srv; 2395 union dmub_rb_cmd cmd = {0}; 2396 2397 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 2398 return; 2399 2400 memset(&cmd, 0, sizeof(cmd)); 2401 cmd.idle_opt_notify_idle.header.type = DMUB_CMD__IDLE_OPT; 2402 cmd.idle_opt_notify_idle.header.sub_type = DMUB_CMD__IDLE_OPT_RELEASE_HW; 2403 cmd.idle_opt_notify_idle.header.payload_bytes = 2404 sizeof(cmd.idle_opt_notify_idle) - 2405 sizeof(cmd.idle_opt_notify_idle.header); 2406 2407 dm_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT); 2408 } 2409 2410 void dc_dmub_srv_log_preos_dmcub_info(struct dc_dmub_srv *dc_dmub_srv) 2411 { 2412 struct dmub_srv *dmub; 2413 2414 if (!dc_dmub_srv || !dc_dmub_srv->dmub) 2415 return; 2416 2417 dmub = dc_dmub_srv->dmub; 2418 2419 if (dmub_srv_get_preos_info(dmub)) { 2420 DC_LOG_DEBUG("%s: PreOS DMCUB Info", __func__); 2421 DC_LOG_DEBUG("fw_version : 0x%08x", dmub->preos_info.fw_version); 2422 DC_LOG_DEBUG("boot_options : 0x%08x", dmub->preos_info.boot_options); 2423 DC_LOG_DEBUG("boot_status : 0x%08x", dmub->preos_info.boot_status); 2424 DC_LOG_DEBUG("trace_buffer_phy_addr : 0x%016llx", dmub->preos_info.trace_buffer_phy_addr); 2425 DC_LOG_DEBUG("trace_buffer_size_bytes : 0x%08x", dmub->preos_info.trace_buffer_size); 2426 DC_LOG_DEBUG("fb_base : 0x%016llx", dmub->preos_info.fb_base); 2427 DC_LOG_DEBUG("fb_offset : 0x%016llx", dmub->preos_info.fb_offset); 2428 } 2429 } 2430