1 /*
2 * Copyright 2015 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 #include "dm_services.h"
26
27 #include "amdgpu.h"
28
29 #include "dc.h"
30
31 #include "core_status.h"
32 #include "core_types.h"
33 #include "hw_sequencer.h"
34 #include "dce/dce_hwseq.h"
35 #include "hw/dccg.h"
36
37 #include "resource.h"
38 #include "dc_state.h"
39 #include "dc_state_priv.h"
40 #include "dc_plane.h"
41 #include "dc_plane_priv.h"
42 #include "dc_stream_priv.h"
43
44 #include "gpio_service_interface.h"
45 #include "clk_mgr.h"
46 #include "clock_source.h"
47 #include "dc_bios_types.h"
48
49 #include "bios_parser_interface.h"
50 #include "bios/bios_parser_helper.h"
51 #include "include/irq_service_interface.h"
52 #include "transform.h"
53 #include "dmcu.h"
54 #include "dpp.h"
55 #include "timing_generator.h"
56 #include "abm.h"
57 #include "dio/virtual/virtual_link_encoder.h"
58 #include "hubp.h"
59
60 #include "link_hwss.h"
61 #include "link_encoder.h"
62 #include "link_enc_cfg.h"
63
64 #include "link_service.h"
65 #include "link/protocols/link_dp_capability.h"
66 #include "dm_helpers.h"
67 #include "mem_input.h"
68
69 #include "dc_dmub_srv.h"
70
71 #include "dsc.h"
72
73 #include "vm_helper.h"
74
75 #include "dce/dce_i2c.h"
76
77 #include "dmub/dmub_srv.h"
78
79 #include "dce/dmub_psr.h"
80
81 #include "dce/dmub_hw_lock_mgr.h"
82
83 #include "dc_trace.h"
84
85 #include "hw_sequencer_private.h"
86
87 #if defined(CONFIG_DRM_AMD_DC_FP)
88 #include "dml2_0/dml2_internal_types.h"
89 #include "soc_and_ip_translator.h"
90 #endif
91
92 #include "dce/dmub_outbox.h"
93
94 #define CTX \
95 dc->ctx
96
97 #define DC_LOGGER \
98 dc->ctx->logger
99
100 static const char DC_BUILD_ID[] = "production-build";
101
102 /**
103 * DOC: Overview
104 *
105 * DC is the OS-agnostic component of the amdgpu DC driver.
106 *
107 * DC maintains and validates a set of structs representing the state of the
108 * driver and writes that state to AMD hardware
109 *
110 * Main DC HW structs:
111 *
112 * struct dc - The central struct. One per driver. Created on driver load,
113 * destroyed on driver unload.
114 *
115 * struct dc_context - One per driver.
116 * Used as a backpointer by most other structs in dc.
117 *
118 * struct dc_link - One per connector (the physical DP, HDMI, miniDP, or eDP
119 * plugpoints). Created on driver load, destroyed on driver unload.
120 *
121 * struct dc_sink - One per display. Created on boot or hotplug.
122 * Destroyed on shutdown or hotunplug. A dc_link can have a local sink
123 * (the display directly attached). It may also have one or more remote
124 * sinks (in the Multi-Stream Transport case)
125 *
126 * struct resource_pool - One per driver. Represents the hw blocks not in the
127 * main pipeline. Not directly accessible by dm.
128 *
129 * Main dc state structs:
130 *
131 * These structs can be created and destroyed as needed. There is a full set of
132 * these structs in dc->current_state representing the currently programmed state.
133 *
134 * struct dc_state - The global DC state to track global state information,
135 * such as bandwidth values.
136 *
137 * struct dc_stream_state - Represents the hw configuration for the pipeline from
138 * a framebuffer to a display. Maps one-to-one with dc_sink.
139 *
140 * struct dc_plane_state - Represents a framebuffer. Each stream has at least one,
141 * and may have more in the Multi-Plane Overlay case.
142 *
143 * struct resource_context - Represents the programmable state of everything in
144 * the resource_pool. Not directly accessible by dm.
145 *
146 * struct pipe_ctx - A member of struct resource_context. Represents the
147 * internal hardware pipeline components. Each dc_plane_state has either
148 * one or two (in the pipe-split case).
149 */
150
151 /* Private functions */
152
elevate_update_type(struct dc_update_descriptor * descriptor,enum dc_update_type new_type,enum dc_lock_descriptor new_locks)153 static inline void elevate_update_type(
154 struct dc_update_descriptor *descriptor,
155 enum dc_update_type new_type,
156 enum dc_lock_descriptor new_locks
157 )
158 {
159 if (new_type > descriptor->update_type)
160 descriptor->update_type = new_type;
161
162 descriptor->lock_descriptor |= new_locks;
163 }
164
destroy_links(struct dc * dc)165 static void destroy_links(struct dc *dc)
166 {
167 uint32_t i;
168
169 for (i = 0; i < dc->link_count; i++) {
170 if (NULL != dc->links[i])
171 dc->link_srv->destroy_link(&dc->links[i]);
172 }
173 }
174
get_num_of_internal_disp(struct dc_link ** links,uint32_t num_links)175 static uint32_t get_num_of_internal_disp(struct dc_link **links, uint32_t num_links)
176 {
177 uint32_t i;
178 uint32_t count = 0;
179
180 for (i = 0; i < num_links; i++) {
181 if (links[i]->connector_signal == SIGNAL_TYPE_EDP ||
182 links[i]->is_internal_display)
183 count++;
184 }
185
186 return count;
187 }
188
get_seamless_boot_stream_count(struct dc_state * ctx)189 static int get_seamless_boot_stream_count(struct dc_state *ctx)
190 {
191 uint8_t i;
192 uint8_t seamless_boot_stream_count = 0;
193
194 for (i = 0; i < ctx->stream_count; i++)
195 if (ctx->streams[i]->apply_seamless_boot_optimization)
196 seamless_boot_stream_count++;
197
198 return seamless_boot_stream_count;
199 }
200
create_links(struct dc * dc,uint32_t num_virtual_links)201 static bool create_links(
202 struct dc *dc,
203 uint32_t num_virtual_links)
204 {
205 uint32_t i;
206 int connectors_num;
207 struct dc_bios *bios = dc->ctx->dc_bios;
208
209 dc->link_count = 0;
210
211 connectors_num = bios->funcs->get_connectors_number(bios);
212
213 DC_LOG_DC("BIOS object table - number of connectors: %d", connectors_num);
214
215 if (connectors_num > ENUM_ID_COUNT) {
216 dm_error(
217 "DC: Number of connectors %d exceeds maximum of %d!\n",
218 connectors_num,
219 ENUM_ID_COUNT);
220 return false;
221 }
222
223 dm_output_to_console(
224 "DC: %s: connectors_num: physical:%d, virtual:%d\n",
225 __func__,
226 connectors_num,
227 num_virtual_links);
228
229 /* When getting the number of connectors, the VBIOS reports the number of valid indices,
230 * but it doesn't say which indices are valid, and not every index has an actual connector.
231 * So, if we don't find a connector on an index, that is not an error.
232 *
233 * - There is no guarantee that the first N indices will be valid
234 * - VBIOS may report a higher amount of valid indices than there are actual connectors
235 * - Some VBIOS have valid configurations for more connectors than there actually are
236 * on the card. This may be because the manufacturer used the same VBIOS for different
237 * variants of the same card.
238 */
239 for (i = 0; dc->link_count < connectors_num && i < MAX_LINKS; i++) {
240 struct graphics_object_id connector_id = bios->funcs->get_connector_id(bios, (uint8_t)i);
241 struct link_init_data link_init_params = {0};
242 struct dc_link *link;
243
244 if (connector_id.id == CONNECTOR_ID_UNKNOWN)
245 continue;
246
247 DC_LOG_DC("BIOS object table - printing link object info for connector number: %d, link_index: %d", i, dc->link_count);
248
249 link_init_params.ctx = dc->ctx;
250 /* next BIOS object table connector */
251 link_init_params.connector_index = (uint8_t)i;
252 link_init_params.link_index = dc->link_count;
253 link_init_params.dc = dc;
254 link = dc->link_srv->create_link(&link_init_params);
255
256 if (link) {
257 dc->links[dc->link_count] = link;
258 link->dc = dc;
259 ++dc->link_count;
260 }
261 }
262
263 DC_LOG_DC("BIOS object table - end");
264
265 /* Create a link for each usb4 dpia port */
266 dc->lowest_dpia_link_index = MAX_LINKS;
267 for (i = 0; i < dc->res_pool->usb4_dpia_count; i++) {
268 struct link_init_data link_init_params = {0};
269 struct dc_link *link;
270
271 link_init_params.ctx = dc->ctx;
272 link_init_params.connector_index = (uint8_t)i;
273 link_init_params.link_index = dc->link_count;
274 link_init_params.dc = dc;
275 link_init_params.is_dpia_link = true;
276
277 link = dc->link_srv->create_link(&link_init_params);
278 if (link) {
279 if (dc->lowest_dpia_link_index > dc->link_count)
280 dc->lowest_dpia_link_index = dc->link_count;
281
282 dc->links[dc->link_count] = link;
283 link->dc = dc;
284 ++dc->link_count;
285 }
286 }
287
288 for (i = 0; i < num_virtual_links; i++) {
289 struct dc_link *link = kzalloc_obj(*link);
290 struct encoder_init_data enc_init = {0};
291
292 if (link == NULL) {
293 BREAK_TO_DEBUGGER();
294 goto failed_alloc;
295 }
296
297 link->link_index = dc->link_count;
298 dc->links[dc->link_count] = link;
299 dc->link_count++;
300
301 link->ctx = dc->ctx;
302 link->dc = dc;
303 link->connector_signal = SIGNAL_TYPE_VIRTUAL;
304 link->link_id.type = OBJECT_TYPE_CONNECTOR;
305 link->link_id.id = CONNECTOR_ID_VIRTUAL;
306 link->link_id.enum_id = ENUM_ID_1;
307 link->psr_settings.psr_version = DC_PSR_VERSION_UNSUPPORTED;
308 link->replay_settings.config.replay_version = DC_REPLAY_VERSION_UNSUPPORTED;
309 link->link_enc = kzalloc_obj(*link->link_enc);
310
311 if (!link->link_enc) {
312 BREAK_TO_DEBUGGER();
313 goto failed_alloc;
314 }
315
316 link->link_status.dpcd_caps = &link->dpcd_caps;
317
318 enc_init.ctx = dc->ctx;
319 enc_init.channel = CHANNEL_ID_UNKNOWN;
320 enc_init.hpd_source = HPD_SOURCEID_UNKNOWN;
321 enc_init.transmitter = TRANSMITTER_UNKNOWN;
322 enc_init.connector = link->link_id;
323 enc_init.encoder.type = OBJECT_TYPE_ENCODER;
324 enc_init.encoder.id = ENCODER_ID_INTERNAL_VIRTUAL;
325 enc_init.encoder.enum_id = ENUM_ID_1;
326 virtual_link_encoder_construct(link->link_enc, &enc_init);
327 }
328
329 dc->caps.num_of_internal_disp = get_num_of_internal_disp(dc->links, dc->link_count);
330
331 return true;
332
333 failed_alloc:
334 return false;
335 }
336
337 /* Create additional DIG link encoder objects if fewer than the platform
338 * supports were created during link construction. This can happen if the
339 * number of physical connectors is less than the number of DIGs.
340 */
create_link_encoders(struct dc * dc)341 static bool create_link_encoders(struct dc *dc)
342 {
343 bool res = true;
344 unsigned int num_usb4_dpia = dc->res_pool->res_cap->num_usb4_dpia;
345 unsigned int num_dig_link_enc = dc->res_pool->res_cap->num_dig_link_enc;
346 unsigned int i;
347
348 /* A platform without USB4 DPIA endpoints has a fixed mapping between DIG
349 * link encoders and physical display endpoints and does not require
350 * additional link encoder objects.
351 */
352 if (num_usb4_dpia == 0)
353 return res;
354
355 /* Create as many link encoder objects as the platform supports. DPIA
356 * endpoints can be programmably mapped to any DIG.
357 */
358 if (num_dig_link_enc > dc->res_pool->dig_link_enc_count) {
359 for (i = 0; i < num_dig_link_enc; i++) {
360 struct link_encoder *link_enc = dc->res_pool->link_encoders[i];
361
362 if (!link_enc && dc->res_pool->funcs->link_enc_create_minimal) {
363 link_enc = dc->res_pool->funcs->link_enc_create_minimal(dc->ctx,
364 (enum engine_id)(ENGINE_ID_DIGA + i));
365 if (link_enc) {
366 dc->res_pool->link_encoders[i] = link_enc;
367 dc->res_pool->dig_link_enc_count++;
368 } else {
369 res = false;
370 }
371 }
372 }
373 }
374
375 return res;
376 }
377
378 /* Destroy any additional DIG link encoder objects created by
379 * create_link_encoders().
380 * NB: Must only be called after destroy_links().
381 */
destroy_link_encoders(struct dc * dc)382 static void destroy_link_encoders(struct dc *dc)
383 {
384 unsigned int num_usb4_dpia;
385 unsigned int num_dig_link_enc;
386 unsigned int i;
387
388 if (!dc->res_pool)
389 return;
390
391 num_usb4_dpia = dc->res_pool->res_cap->num_usb4_dpia;
392 num_dig_link_enc = dc->res_pool->res_cap->num_dig_link_enc;
393
394 /* A platform without USB4 DPIA endpoints has a fixed mapping between DIG
395 * link encoders and physical display endpoints and does not require
396 * additional link encoder objects.
397 */
398 if (num_usb4_dpia == 0)
399 return;
400
401 for (i = 0; i < num_dig_link_enc; i++) {
402 struct link_encoder *link_enc = dc->res_pool->link_encoders[i];
403
404 if (link_enc) {
405 link_enc->funcs->destroy(&link_enc);
406 dc->res_pool->link_encoders[i] = NULL;
407 dc->res_pool->dig_link_enc_count--;
408 }
409 }
410 }
411
dc_perf_trace_create(void)412 static struct dc_perf_trace *dc_perf_trace_create(void)
413 {
414 return kzalloc_obj(struct dc_perf_trace);
415 }
416
dc_perf_trace_destroy(struct dc_perf_trace ** perf_trace)417 static void dc_perf_trace_destroy(struct dc_perf_trace **perf_trace)
418 {
419 kfree(*perf_trace);
420 *perf_trace = NULL;
421 }
422
set_long_vtotal(struct dc * dc,struct dc_stream_state * stream,struct dc_crtc_timing_adjust * adjust)423 static bool set_long_vtotal(struct dc *dc, struct dc_stream_state *stream, struct dc_crtc_timing_adjust *adjust)
424 {
425 if (!dc || !stream || !adjust)
426 return false;
427
428 if (!dc->current_state)
429 return false;
430
431 int i;
432
433 for (i = 0; i < MAX_PIPES; i++) {
434 struct pipe_ctx *pipe = &dc->current_state->res_ctx.pipe_ctx[i];
435
436 if (pipe->stream == stream && pipe->stream_res.tg) {
437 if (dc->hwss.set_long_vtotal)
438 dc->hwss.set_long_vtotal(&pipe, 1, adjust->v_total_min, adjust->v_total_max);
439
440 return true;
441 }
442 }
443
444 return false;
445 }
446
447 /**
448 * dc_stream_get_last_used_drr_vtotal - Looks up the pipe context of
449 * dc_stream_state and gets the last VTOTAL used by DRR (Dynamic Refresh Rate)
450 *
451 * @dc: [in] dc reference
452 * @stream: [in] Initial dc stream state
453 * @refresh_rate: [in] new refresh_rate
454 *
455 * Return: %true if the pipe context is found and there is an associated
456 * timing_generator for the DC;
457 * %false if the pipe context is not found or there is no
458 * timing_generator for the DC.
459 */
dc_stream_get_last_used_drr_vtotal(struct dc * dc,struct dc_stream_state * stream,uint32_t * refresh_rate)460 bool dc_stream_get_last_used_drr_vtotal(struct dc *dc,
461 struct dc_stream_state *stream,
462 uint32_t *refresh_rate)
463 {
464 bool status = false;
465
466 int i = 0;
467
468 dc_exit_ips_for_hw_access(dc);
469
470 for (i = 0; i < MAX_PIPES; i++) {
471 struct pipe_ctx *pipe = &dc->current_state->res_ctx.pipe_ctx[i];
472
473 if (pipe->stream == stream && pipe->stream_res.tg) {
474 /* Only execute if a function pointer has been defined for
475 * the DC version in question
476 */
477 if (pipe->stream_res.tg->funcs->get_last_used_drr_vtotal) {
478 pipe->stream_res.tg->funcs->get_last_used_drr_vtotal(pipe->stream_res.tg, refresh_rate);
479
480 status = true;
481
482 break;
483 }
484 }
485 }
486
487 return status;
488 }
489
490 #if defined(CONFIG_DRM_AMD_SECURE_DISPLAY)
491 static inline void
dc_stream_forward_dmub_crc_window(struct dc_dmub_srv * dmub_srv,struct rect * rect,struct otg_phy_mux * mux_mapping,bool is_stop)492 dc_stream_forward_dmub_crc_window(struct dc_dmub_srv *dmub_srv,
493 struct rect *rect, struct otg_phy_mux *mux_mapping, bool is_stop)
494 {
495 union dmub_rb_cmd cmd = {0};
496
497 cmd.secure_display.roi_info.phy_id = mux_mapping->phy_output_num;
498 cmd.secure_display.roi_info.otg_id = mux_mapping->otg_output_num;
499
500 if (is_stop) {
501 cmd.secure_display.header.type = DMUB_CMD__SECURE_DISPLAY;
502 cmd.secure_display.header.sub_type = DMUB_CMD__SECURE_DISPLAY_CRC_STOP_UPDATE;
503 } else {
504 cmd.secure_display.header.type = DMUB_CMD__SECURE_DISPLAY;
505 cmd.secure_display.header.sub_type = DMUB_CMD__SECURE_DISPLAY_CRC_WIN_NOTIFY;
506 cmd.secure_display.roi_info.x_start = rect->x;
507 cmd.secure_display.roi_info.y_start = rect->y;
508 cmd.secure_display.roi_info.x_end = rect->x + rect->width;
509 cmd.secure_display.roi_info.y_end = rect->y + rect->height;
510 }
511
512 dc_wake_and_execute_dmub_cmd(dmub_srv->ctx, &cmd, DM_DMUB_WAIT_TYPE_NO_WAIT);
513 }
514
515 static inline void
dc_stream_forward_dmcu_crc_window(struct dmcu * dmcu,struct rect * rect,struct otg_phy_mux * mux_mapping,bool is_stop)516 dc_stream_forward_dmcu_crc_window(struct dmcu *dmcu,
517 struct rect *rect, struct otg_phy_mux *mux_mapping, bool is_stop)
518 {
519 if (is_stop)
520 dmcu->funcs->stop_crc_win_update(dmcu, mux_mapping);
521 else
522 dmcu->funcs->forward_crc_window(dmcu, rect, mux_mapping);
523 }
524
525 bool
dc_stream_forward_crc_window(struct dc_stream_state * stream,struct rect * rect,uint8_t phy_id,bool is_stop)526 dc_stream_forward_crc_window(struct dc_stream_state *stream,
527 struct rect *rect, uint8_t phy_id, bool is_stop)
528 {
529 struct dmcu *dmcu;
530 struct dc_dmub_srv *dmub_srv;
531 struct otg_phy_mux mux_mapping;
532 struct pipe_ctx *pipe;
533 int i;
534 struct dc *dc = stream->ctx->dc;
535
536 for (i = 0; i < MAX_PIPES; i++) {
537 pipe = &dc->current_state->res_ctx.pipe_ctx[i];
538 if (pipe->stream == stream && !pipe->top_pipe && !pipe->prev_odm_pipe)
539 break;
540 }
541
542 /* Stream not found */
543 if (i == MAX_PIPES)
544 return false;
545
546 mux_mapping.phy_output_num = phy_id;
547 mux_mapping.otg_output_num = pipe->stream_res.tg->inst;
548
549 dmcu = dc->res_pool->dmcu;
550 dmub_srv = dc->ctx->dmub_srv;
551
552 /* forward to dmub */
553 if (dmub_srv)
554 dc_stream_forward_dmub_crc_window(dmub_srv, rect, &mux_mapping, is_stop);
555 /* forward to dmcu */
556 else if (dmcu && dmcu->funcs->is_dmcu_initialized(dmcu))
557 dc_stream_forward_dmcu_crc_window(dmcu, rect, &mux_mapping, is_stop);
558 else
559 return false;
560
561 return true;
562 }
563
564 static void
dc_stream_forward_dmub_multiple_crc_window(struct dc_dmub_srv * dmub_srv,struct crc_window * window,struct otg_phy_mux * mux_mapping,bool stop)565 dc_stream_forward_dmub_multiple_crc_window(struct dc_dmub_srv *dmub_srv,
566 struct crc_window *window, struct otg_phy_mux *mux_mapping, bool stop)
567 {
568 int i;
569 union dmub_rb_cmd cmd = {0};
570
571 cmd.secure_display.mul_roi_ctl.phy_id = mux_mapping->phy_output_num;
572 cmd.secure_display.mul_roi_ctl.otg_id = mux_mapping->otg_output_num;
573
574 cmd.secure_display.header.type = DMUB_CMD__SECURE_DISPLAY;
575
576 if (stop) {
577 cmd.secure_display.header.sub_type = DMUB_CMD__SECURE_DISPLAY_MULTIPLE_CRC_STOP_UPDATE;
578 } else {
579 cmd.secure_display.header.sub_type = DMUB_CMD__SECURE_DISPLAY_MULTIPLE_CRC_WIN_NOTIFY;
580 for (i = 0; i < MAX_CRC_WINDOW_NUM; i++) {
581 cmd.secure_display.mul_roi_ctl.roi_ctl[i].x_start = window[i].rect.x;
582 cmd.secure_display.mul_roi_ctl.roi_ctl[i].y_start = window[i].rect.y;
583 cmd.secure_display.mul_roi_ctl.roi_ctl[i].x_end = window[i].rect.x + window[i].rect.width;
584 cmd.secure_display.mul_roi_ctl.roi_ctl[i].y_end = window[i].rect.y + window[i].rect.height;
585 cmd.secure_display.mul_roi_ctl.roi_ctl[i].enable = window[i].enable;
586 }
587 }
588
589 dc_wake_and_execute_dmub_cmd(dmub_srv->ctx, &cmd, DM_DMUB_WAIT_TYPE_NO_WAIT);
590 }
591
592 bool
dc_stream_forward_multiple_crc_window(struct dc_stream_state * stream,struct crc_window * window,uint8_t phy_id,bool stop)593 dc_stream_forward_multiple_crc_window(struct dc_stream_state *stream,
594 struct crc_window *window, uint8_t phy_id, bool stop)
595 {
596 struct dc_dmub_srv *dmub_srv;
597 struct otg_phy_mux mux_mapping;
598 struct pipe_ctx *pipe;
599 int i;
600 struct dc *dc = stream->ctx->dc;
601
602 for (i = 0; i < MAX_PIPES; i++) {
603 pipe = &dc->current_state->res_ctx.pipe_ctx[i];
604 if (pipe->stream == stream && !pipe->top_pipe && !pipe->prev_odm_pipe)
605 break;
606 }
607
608 /* Stream not found */
609 if (i == MAX_PIPES)
610 return false;
611
612 mux_mapping.phy_output_num = phy_id;
613 mux_mapping.otg_output_num = pipe->stream_res.tg->inst;
614
615 dmub_srv = dc->ctx->dmub_srv;
616
617 /* forward to dmub only. no dmcu support*/
618 if (dmub_srv)
619 dc_stream_forward_dmub_multiple_crc_window(dmub_srv, window, &mux_mapping, stop);
620 else
621 return false;
622
623 return true;
624 }
625 #endif /* CONFIG_DRM_AMD_SECURE_DISPLAY */
626
627 /**
628 * dc_stream_configure_crc() - Configure CRC capture for the given stream.
629 * @dc: DC Object
630 * @stream: The stream to configure CRC on.
631 * @crc_window: CRC window (x/y start/end) information
632 * @enable: Enable CRC if true, disable otherwise.
633 * @continuous: Capture CRC on every frame if true. Otherwise, only capture
634 * once.
635 * @idx: Capture CRC on which CRC engine instance
636 * @reset: Reset CRC engine before the configuration
637 * @crc_poly_mode: CRC polynomial mode
638 *
639 * By default, the entire frame is used to calculate the CRC.
640 *
641 * Return: %false if the stream is not found or CRC capture is not supported;
642 * %true if the stream has been configured.
643 */
dc_stream_configure_crc(struct dc * dc,struct dc_stream_state * stream,struct crc_params * crc_window,bool enable,bool continuous,uint8_t idx,bool reset,enum crc_poly_mode crc_poly_mode)644 bool dc_stream_configure_crc(struct dc *dc, struct dc_stream_state *stream,
645 struct crc_params *crc_window, bool enable, bool continuous,
646 uint8_t idx, bool reset, enum crc_poly_mode crc_poly_mode)
647 {
648 struct pipe_ctx *pipe;
649 struct crc_params param;
650 struct timing_generator *tg;
651
652 pipe = resource_get_otg_master_for_stream(
653 &dc->current_state->res_ctx, stream);
654
655 /* Stream not found */
656 if (pipe == NULL)
657 return false;
658
659 dc_exit_ips_for_hw_access(dc);
660
661 /* By default, capture the full frame */
662 param.windowa_x_start = 0;
663 param.windowa_y_start = 0;
664 param.windowa_x_end = (uint16_t)pipe->stream->timing.h_addressable;
665 param.windowa_y_end = (uint16_t)pipe->stream->timing.v_addressable;
666 param.windowb_x_start = 0;
667 param.windowb_y_start = 0;
668 param.windowb_x_end = (uint16_t)pipe->stream->timing.h_addressable;
669 param.windowb_y_end = (uint16_t)pipe->stream->timing.v_addressable;
670 param.crc_poly_mode = crc_poly_mode;
671
672 if (crc_window) {
673 param.windowa_x_start = crc_window->windowa_x_start;
674 param.windowa_y_start = crc_window->windowa_y_start;
675 param.windowa_x_end = crc_window->windowa_x_end;
676 param.windowa_y_end = crc_window->windowa_y_end;
677 param.windowb_x_start = crc_window->windowb_x_start;
678 param.windowb_y_start = crc_window->windowb_y_start;
679 param.windowb_x_end = crc_window->windowb_x_end;
680 param.windowb_y_end = crc_window->windowb_y_end;
681 }
682
683 param.dsc_mode = pipe->stream->timing.flags.DSC ? 1:0;
684 param.odm_mode = pipe->next_odm_pipe ? 1:0;
685
686 /* Default to the union of both windows */
687 param.selection = UNION_WINDOW_A_B;
688 param.continuous_mode = continuous;
689 param.enable = enable;
690
691 param.crc_eng_inst = idx;
692 param.reset = reset;
693
694 tg = pipe->stream_res.tg;
695
696 /* Only call if supported */
697 if (tg->funcs->configure_crc)
698 return tg->funcs->configure_crc(tg, ¶m);
699 DC_LOG_WARNING("CRC capture not supported.");
700 return false;
701 }
702
703 /**
704 * dc_stream_get_crc() - Get CRC values for the given stream.
705 *
706 * @dc: DC object.
707 * @stream: The DC stream state of the stream to get CRCs from.
708 * @idx: index of crc engine to get CRC from
709 * @r_cr: CRC value for the red component.
710 * @g_y: CRC value for the green component.
711 * @b_cb: CRC value for the blue component.
712 *
713 * dc_stream_configure_crc needs to be called beforehand to enable CRCs.
714 *
715 * Return:
716 * %false if stream is not found, or if CRCs are not enabled.
717 */
dc_stream_get_crc(struct dc * dc,struct dc_stream_state * stream,uint8_t idx,uint32_t * r_cr,uint32_t * g_y,uint32_t * b_cb)718 bool dc_stream_get_crc(struct dc *dc, struct dc_stream_state *stream, uint8_t idx,
719 uint32_t *r_cr, uint32_t *g_y, uint32_t *b_cb)
720 {
721 int i;
722 struct pipe_ctx *pipe = NULL;
723 struct timing_generator *tg;
724
725 dc_exit_ips_for_hw_access(dc);
726
727 for (i = 0; i < MAX_PIPES; i++) {
728 pipe = &dc->current_state->res_ctx.pipe_ctx[i];
729 if (pipe->stream == stream)
730 break;
731 }
732 /* Stream not found */
733 if (i == MAX_PIPES)
734 return false;
735
736 tg = pipe->stream_res.tg;
737
738 if (tg->funcs->get_crc)
739 return tg->funcs->get_crc(tg, idx, r_cr, g_y, b_cb);
740 DC_LOG_WARNING("CRC capture not supported.");
741 return false;
742 }
743
dc_stream_set_dyn_expansion(struct dc * dc,struct dc_stream_state * stream,enum dc_dynamic_expansion option)744 void dc_stream_set_dyn_expansion(struct dc *dc, struct dc_stream_state *stream,
745 enum dc_dynamic_expansion option)
746 {
747 /* OPP FMT dyn expansion updates*/
748 int i;
749 struct pipe_ctx *pipe_ctx;
750
751 dc_exit_ips_for_hw_access(dc);
752
753 for (i = 0; i < MAX_PIPES; i++) {
754 if (dc->current_state->res_ctx.pipe_ctx[i].stream
755 == stream) {
756 pipe_ctx = &dc->current_state->res_ctx.pipe_ctx[i];
757 pipe_ctx->stream_res.opp->dyn_expansion = option;
758 pipe_ctx->stream_res.opp->funcs->opp_set_dyn_expansion(
759 pipe_ctx->stream_res.opp,
760 COLOR_SPACE_YCBCR601,
761 stream->timing.display_color_depth,
762 stream->signal);
763 }
764 }
765 }
766
dc_stream_set_dither_option(struct dc_stream_state * stream,enum dc_dither_option option)767 void dc_stream_set_dither_option(struct dc_stream_state *stream,
768 enum dc_dither_option option)
769 {
770 struct bit_depth_reduction_params params;
771 struct dc_link *link = stream->link;
772 struct resource_context *res_ctx = &link->dc->current_state->res_ctx;
773 struct pipe_ctx *otg_master;
774 struct pipe_ctx *opp_heads[MAX_PIPES];
775 int opp_cnt;
776 int i;
777
778 otg_master = resource_get_otg_master_for_stream(res_ctx, stream);
779 if (!otg_master)
780 return;
781 if (option > DITHER_OPTION_MAX)
782 return;
783
784 opp_cnt = resource_get_opp_heads_for_otg_master(otg_master, res_ctx, opp_heads);
785
786 if (opp_cnt == 0)
787 return;
788
789 dc_exit_ips_for_hw_access(stream->ctx->dc);
790
791 stream->dither_option = option;
792
793 memset(¶ms, 0, sizeof(params));
794 resource_build_bit_depth_reduction_params(stream, ¶ms);
795 stream->bit_depth_params = params;
796
797 /*
798 * Program bit-depth reduction (dither) on every OPP head of the
799 * stream. Under ODM combine there is more than one OPP head and they
800 * must all be kept in sync, otherwise (e.g. when CRC capture requests
801 * dither off) a secondary ODM segment can keep dither enabled and
802 * produce a different CRC than the primary segment.
803 */
804 for (i = 0; i < opp_cnt; i++) {
805 struct pipe_ctx *opp_head = opp_heads[i];
806
807 if (opp_head->plane_res.xfm &&
808 opp_head->plane_res.xfm->funcs->transform_set_pixel_storage_depth) {
809 opp_head->plane_res.xfm->funcs->transform_set_pixel_storage_depth(
810 opp_head->plane_res.xfm,
811 opp_head->plane_res.scl_data.lb_params.depth,
812 &stream->bit_depth_params);
813 }
814
815 if (opp_head->stream_res.opp &&
816 opp_head->stream_res.opp->funcs->opp_program_bit_depth_reduction) {
817 opp_head->stream_res.opp->funcs->opp_program_bit_depth_reduction(
818 opp_head->stream_res.opp, ¶ms);
819 }
820 }
821 }
822
dc_stream_set_gamut_remap(struct dc * dc,const struct dc_stream_state * stream)823 bool dc_stream_set_gamut_remap(struct dc *dc, const struct dc_stream_state *stream)
824 {
825 int i;
826 bool ret = false;
827 struct pipe_ctx *pipes;
828
829 dc_exit_ips_for_hw_access(dc);
830
831 for (i = 0; i < MAX_PIPES; i++) {
832 if (dc->current_state->res_ctx.pipe_ctx[i].stream == stream) {
833 pipes = &dc->current_state->res_ctx.pipe_ctx[i];
834 dc->hwss.program_gamut_remap(&(struct program_gamut_remap_params) {
835 .xfm = pipes->plane_res.xfm,
836 .dpp = pipes->plane_res.dpp,
837 .mpc = dc->res_pool->mpc,
838 .mpcc_id = pipes->plane_res.mpcc_inst,
839 .stream = pipes->stream,
840 .plane = pipes->plane_state,
841 .is_top_pipe = pipes->top_pipe == NULL,
842 });
843 ret = true;
844 }
845 }
846
847 return ret;
848 }
849
dc_stream_program_csc_matrix(struct dc * dc,struct dc_stream_state * stream)850 bool dc_stream_program_csc_matrix(struct dc *dc, struct dc_stream_state *stream)
851 {
852 int i;
853 bool ret = false;
854 struct pipe_ctx *pipes;
855
856 dc_exit_ips_for_hw_access(dc);
857
858 for (i = 0; i < MAX_PIPES; i++) {
859 if (dc->current_state->res_ctx.pipe_ctx[i].stream
860 == stream) {
861
862 pipes = &dc->current_state->res_ctx.pipe_ctx[i];
863 dc->hwss.program_output_csc(dc,
864 pipes,
865 stream->output_color_space,
866 stream->csc_color_matrix.matrix,
867 pipes->stream_res.opp->inst);
868 ret = true;
869 }
870 }
871
872 return ret;
873 }
874
dc_stream_set_static_screen_params(struct dc * dc,struct dc_stream_state ** streams,int num_streams,const struct dc_static_screen_params * params)875 void dc_stream_set_static_screen_params(struct dc *dc,
876 struct dc_stream_state **streams,
877 int num_streams,
878 const struct dc_static_screen_params *params)
879 {
880 int i, j;
881 struct pipe_ctx *pipes_affected[MAX_PIPES];
882 int num_pipes_affected = 0;
883
884 dc_exit_ips_for_hw_access(dc);
885
886 for (i = 0; i < num_streams; i++) {
887 struct dc_stream_state *stream = streams[i];
888
889 for (j = 0; j < MAX_PIPES; j++) {
890 if (dc->current_state->res_ctx.pipe_ctx[j].stream
891 == stream) {
892 pipes_affected[num_pipes_affected++] =
893 &dc->current_state->res_ctx.pipe_ctx[j];
894 }
895 }
896 }
897
898 dc->hwss.set_static_screen_control(pipes_affected, num_pipes_affected, params);
899 }
900
dc_destruct_update_scratch_pool(struct dc * dc)901 static void dc_destruct_update_scratch_pool(struct dc *dc)
902 {
903 unsigned int i;
904
905 for (i = 0; i < ARRAY_SIZE(dc->update_scratch_pool); i++) {
906 kfree(dc->update_scratch_pool[i]);
907 dc->update_scratch_pool[i] = NULL;
908 dc->update_scratch_in_use[i] = false;
909 }
910 }
911
dc_construct_update_scratch_pool(struct dc * dc)912 static bool dc_construct_update_scratch_pool(struct dc *dc)
913 {
914 unsigned int i;
915
916 for (i = 0; i < ARRAY_SIZE(dc->update_scratch_pool); i++) {
917 dc->update_scratch_pool[i] = kzalloc_obj(struct dc_update_scratch_space);
918 if (!dc->update_scratch_pool[i])
919 return false;
920 dc->update_scratch_in_use[i] = false;
921 }
922
923 return true;
924 }
925
dc_destruct(struct dc * dc)926 static void dc_destruct(struct dc *dc)
927 {
928 // reset link encoder assignment table on destruct
929 if (dc->res_pool && dc->res_pool->funcs->link_encs_assign &&
930 !dc->config.unify_link_enc_assignment)
931 link_enc_cfg_init(dc, dc->current_state);
932
933 dc_destruct_update_scratch_pool(dc);
934
935 if (dc->current_state) {
936 dc_state_release(dc->current_state);
937 dc->current_state = NULL;
938 }
939
940 destroy_links(dc);
941
942 destroy_link_encoders(dc);
943
944 if (dc->clk_mgr) {
945 dc_destroy_clk_mgr(dc->clk_mgr);
946 dc->clk_mgr = NULL;
947 }
948
949 dc_destroy_resource_pool(dc);
950 #ifdef CONFIG_DRM_AMD_DC_FP
951 dc_destroy_soc_and_ip_translator(&dc->soc_and_ip_translator);
952 #endif
953 if (dc->link_srv)
954 link_destroy_link_service(&dc->link_srv);
955
956 if (dc->ctx) {
957 if (dc->ctx->gpio_service)
958 dal_gpio_service_destroy(&dc->ctx->gpio_service);
959
960 if (dc->ctx->created_bios)
961 dal_bios_parser_destroy(&dc->ctx->dc_bios);
962 kfree(dc->ctx->logger);
963 dc_perf_trace_destroy(&dc->ctx->perf_trace);
964
965 kfree(dc->ctx);
966 dc->ctx = NULL;
967 }
968
969 kfree(dc->bw_vbios);
970 dc->bw_vbios = NULL;
971
972 kfree(dc->bw_dceip);
973 dc->bw_dceip = NULL;
974
975 kfree(dc->dcn_soc);
976 dc->dcn_soc = NULL;
977
978 kfree(dc->dcn_ip);
979 dc->dcn_ip = NULL;
980
981 kfree(dc->vm_helper);
982 dc->vm_helper = NULL;
983
984 }
985
dc_construct_ctx(struct dc * dc,const struct dc_init_data * init_params)986 static bool dc_construct_ctx(struct dc *dc,
987 const struct dc_init_data *init_params)
988 {
989 struct dc_context *dc_ctx;
990
991 dc_ctx = kzalloc_obj(*dc_ctx);
992 if (!dc_ctx)
993 return false;
994
995 dc_stream_init_rmcm_3dlut(dc);
996
997 dc_ctx->cgs_device = init_params->cgs_device;
998 dc_ctx->driver_context = init_params->driver;
999 dc_ctx->dc = dc;
1000 dc_ctx->asic_id = init_params->asic_id;
1001 dc_ctx->dc_sink_id_count = 0;
1002 dc_ctx->dc_stream_id_count = 0;
1003 dc_ctx->dce_environment = init_params->dce_environment;
1004 dc_ctx->dcn_reg_offsets = init_params->dcn_reg_offsets;
1005 dc_ctx->nbio_reg_offsets = init_params->nbio_reg_offsets;
1006 dc_ctx->clk_reg_offsets = init_params->clk_reg_offsets;
1007
1008 /* Create logger */
1009 dc_ctx->logger = kmalloc_obj(*dc_ctx->logger);
1010
1011 if (!dc_ctx->logger) {
1012 kfree(dc_ctx);
1013 return false;
1014 }
1015
1016 dc_ctx->logger->dev = adev_to_drm(init_params->driver);
1017 dc->dml.logger = dc_ctx->logger;
1018
1019 dc_ctx->dce_version = resource_parse_asic_id(init_params->asic_id);
1020
1021 dc_ctx->perf_trace = dc_perf_trace_create();
1022 if (!dc_ctx->perf_trace) {
1023 kfree(dc_ctx);
1024 ASSERT_CRITICAL(false);
1025 return false;
1026 }
1027
1028 dc->ctx = dc_ctx;
1029
1030 dc->link_srv = link_create_link_service();
1031 if (!dc->link_srv)
1032 return false;
1033
1034 return true;
1035 }
1036
dc_construct(struct dc * dc,const struct dc_init_data * init_params)1037 static bool dc_construct(struct dc *dc,
1038 const struct dc_init_data *init_params)
1039 {
1040 struct dc_context *dc_ctx;
1041 struct bw_calcs_dceip *dc_dceip;
1042 struct bw_calcs_vbios *dc_vbios;
1043 struct dcn_soc_bounding_box *dcn_soc;
1044 struct dcn_ip_params *dcn_ip;
1045
1046 dc->config = init_params->flags;
1047
1048 // Allocate memory for the vm_helper
1049 dc->vm_helper = kzalloc_obj(struct vm_helper);
1050 if (!dc->vm_helper) {
1051 dm_error("%s: failed to create dc->vm_helper\n", __func__);
1052 goto fail;
1053 }
1054
1055 memcpy(&dc->bb_overrides, &init_params->bb_overrides, sizeof(dc->bb_overrides));
1056
1057 dc_dceip = kzalloc_obj(*dc_dceip);
1058 if (!dc_dceip) {
1059 dm_error("%s: failed to create dceip\n", __func__);
1060 goto fail;
1061 }
1062
1063 dc->bw_dceip = dc_dceip;
1064
1065 dc_vbios = kzalloc_obj(*dc_vbios);
1066 if (!dc_vbios) {
1067 dm_error("%s: failed to create vbios\n", __func__);
1068 goto fail;
1069 }
1070
1071 dc->bw_vbios = dc_vbios;
1072 dcn_soc = kzalloc_obj(*dcn_soc);
1073 if (!dcn_soc) {
1074 dm_error("%s: failed to create dcn_soc\n", __func__);
1075 goto fail;
1076 }
1077
1078 dc->dcn_soc = dcn_soc;
1079
1080 dcn_ip = kzalloc_obj(*dcn_ip);
1081 if (!dcn_ip) {
1082 dm_error("%s: failed to create dcn_ip\n", __func__);
1083 goto fail;
1084 }
1085
1086 dc->dcn_ip = dcn_ip;
1087
1088 if (init_params->bb_from_dmub)
1089 dc->dml2_options.bb_from_dmub = init_params->bb_from_dmub;
1090 else
1091 dc->dml2_options.bb_from_dmub = NULL;
1092
1093 if (!dc_construct_ctx(dc, init_params)) {
1094 dm_error("%s: failed to create ctx\n", __func__);
1095 goto fail;
1096 }
1097
1098 dc_ctx = dc->ctx;
1099
1100 /* Resource should construct all asic specific resources.
1101 * This should be the only place where we need to parse the asic id
1102 */
1103 if (init_params->vbios_override)
1104 dc_ctx->dc_bios = init_params->vbios_override;
1105 else {
1106 /* Create BIOS parser */
1107 struct bp_init_data bp_init_data;
1108
1109 bp_init_data.ctx = dc_ctx;
1110 bp_init_data.bios = init_params->asic_id.atombios_base_address;
1111
1112 dc_ctx->dc_bios = dal_bios_parser_create(
1113 &bp_init_data, dc_ctx->dce_version);
1114
1115 if (!dc_ctx->dc_bios) {
1116 ASSERT_CRITICAL(false);
1117 goto fail;
1118 }
1119
1120 dc_ctx->created_bios = true;
1121 }
1122
1123 dc->vendor_signature = init_params->vendor_signature;
1124
1125 /* Create GPIO service */
1126 dc_ctx->gpio_service = dal_gpio_service_create(
1127 dc_ctx->dce_version,
1128 dc_ctx->dce_environment,
1129 dc_ctx);
1130
1131 if (!dc_ctx->gpio_service) {
1132 ASSERT_CRITICAL(false);
1133 goto fail;
1134 }
1135
1136 dc->res_pool = dc_create_resource_pool(dc, init_params, dc_ctx->dce_version);
1137 if (!dc->res_pool)
1138 goto fail;
1139
1140 /* set i2c speed if not done by the respective dcnxxx__resource.c */
1141 if (dc->caps.i2c_speed_in_khz_hdcp == 0)
1142 dc->caps.i2c_speed_in_khz_hdcp = dc->caps.i2c_speed_in_khz;
1143 if (dc->check_config.max_optimizable_video_width == 0)
1144 dc->check_config.max_optimizable_video_width = 5120;
1145 dc->clk_mgr = dc_clk_mgr_create(dc->ctx, dc->res_pool->pp_smu, dc->res_pool->dccg);
1146 if (!dc->clk_mgr)
1147 goto fail;
1148 #ifdef CONFIG_DRM_AMD_DC_FP
1149 dc->clk_mgr->force_smu_not_present = init_params->force_smu_not_present;
1150
1151 if (dc->res_pool->funcs->update_bw_bounding_box)
1152 dc->res_pool->funcs->update_bw_bounding_box(dc, dc->clk_mgr->bw_params);
1153 dc->soc_and_ip_translator = dc_create_soc_and_ip_translator(dc_ctx->dce_version);
1154 if (!dc->soc_and_ip_translator)
1155 goto fail;
1156 #endif
1157
1158 if (!create_links(dc, init_params->num_virtual_links))
1159 goto fail;
1160
1161 /* Create additional DIG link encoder objects if fewer than the platform
1162 * supports were created during link construction.
1163 */
1164 if (!create_link_encoders(dc))
1165 goto fail;
1166
1167 /* Creation of current_state must occur after dc->dml
1168 * is initialized in dc_create_resource_pool because
1169 * on creation it copies the contents of dc->dml
1170 */
1171 dc->current_state = dc_state_create(dc, NULL);
1172
1173 if (!dc->current_state) {
1174 dm_error("%s: failed to create validate ctx\n", __func__);
1175 goto fail;
1176 }
1177
1178 if (!dc_construct_update_scratch_pool(dc)) {
1179 dm_error("%s: failed to create update scratch pool\n", __func__);
1180 goto fail;
1181 }
1182
1183 return true;
1184
1185 fail:
1186 return false;
1187 }
1188
disable_all_writeback_pipes_for_stream(const struct dc * dc,struct dc_stream_state * stream,struct dc_state * context)1189 static void disable_all_writeback_pipes_for_stream(
1190 const struct dc *dc,
1191 struct dc_stream_state *stream,
1192 struct dc_state *context)
1193 {
1194 (void)dc;
1195 (void)context;
1196 unsigned int i;
1197
1198 for (i = 0; i < stream->num_wb_info; i++)
1199 stream->writeback_info[i].wb_enabled = false;
1200 }
1201
apply_ctx_interdependent_lock(struct dc * dc,struct dc_state * context,struct dc_stream_state * stream,bool lock)1202 static void apply_ctx_interdependent_lock(struct dc *dc,
1203 struct dc_state *context,
1204 struct dc_stream_state *stream,
1205 bool lock)
1206 {
1207 (void)dc;
1208 (void)context;
1209 unsigned int i;
1210
1211 /* Checks if interdependent update function pointer is NULL or not, takes care of DCE110 case */
1212 if (dc->hwss.interdependent_update_lock)
1213 dc->hwss.interdependent_update_lock(dc, context, lock);
1214 else {
1215 for (i = 0; i < dc->res_pool->pipe_count; i++) {
1216 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[i];
1217 struct pipe_ctx *old_pipe_ctx = &dc->current_state->res_ctx.pipe_ctx[i];
1218
1219 // Copied conditions that were previously in dce110_apply_ctx_for_surface
1220 if (stream == pipe_ctx->stream) {
1221 if (resource_is_pipe_type(pipe_ctx, OPP_HEAD) &&
1222 (pipe_ctx->plane_state || old_pipe_ctx->plane_state))
1223 dc->hwss.pipe_control_lock(dc, pipe_ctx, lock);
1224 }
1225 }
1226 }
1227 }
1228
dc_update_visual_confirm_color(struct dc * dc,struct dc_state * context,struct pipe_ctx * pipe_ctx)1229 static void dc_update_visual_confirm_color(struct dc *dc, struct dc_state *context, struct pipe_ctx *pipe_ctx)
1230 {
1231 if (dc->debug.visual_confirm & VISUAL_CONFIRM_EXPLICIT) {
1232 memcpy(&pipe_ctx->visual_confirm_color, &pipe_ctx->plane_state->visual_confirm_color,
1233 sizeof(pipe_ctx->visual_confirm_color));
1234 return;
1235 }
1236
1237 if (dc->ctx->dce_version >= DCN_VERSION_1_0) {
1238 memset(&pipe_ctx->visual_confirm_color, 0, sizeof(struct tg_color));
1239
1240 if (dc->debug.visual_confirm == VISUAL_CONFIRM_HDR)
1241 get_hdr_visual_confirm_color(pipe_ctx, &(pipe_ctx->visual_confirm_color));
1242 else if (dc->debug.visual_confirm == VISUAL_CONFIRM_SURFACE)
1243 get_surface_visual_confirm_color(pipe_ctx, &(pipe_ctx->visual_confirm_color));
1244 else if (dc->debug.visual_confirm == VISUAL_CONFIRM_SWIZZLE)
1245 get_surface_tile_visual_confirm_color(pipe_ctx, &(pipe_ctx->visual_confirm_color));
1246 else if (dc->debug.visual_confirm == VISUAL_CONFIRM_HW_CURSOR)
1247 get_cursor_visual_confirm_color(pipe_ctx, &(pipe_ctx->visual_confirm_color));
1248 else if (dc->debug.visual_confirm == VISUAL_CONFIRM_DCC)
1249 get_dcc_visual_confirm_color(dc, pipe_ctx, &(pipe_ctx->visual_confirm_color));
1250 else {
1251 if (dc->ctx->dce_version < DCN_VERSION_2_0)
1252 color_space_to_black_color(
1253 dc, pipe_ctx->stream->output_color_space, &(pipe_ctx->visual_confirm_color));
1254 }
1255 if (dc->ctx->dce_version >= DCN_VERSION_2_0) {
1256 if (dc->debug.visual_confirm == VISUAL_CONFIRM_MPCTREE)
1257 get_mpctree_visual_confirm_color(pipe_ctx, &(pipe_ctx->visual_confirm_color));
1258 else if (dc->debug.visual_confirm == VISUAL_CONFIRM_SUBVP)
1259 get_subvp_visual_confirm_color(pipe_ctx, &(pipe_ctx->visual_confirm_color));
1260 else if (dc->debug.visual_confirm == VISUAL_CONFIRM_MCLK_SWITCH)
1261 get_mclk_switch_visual_confirm_color(pipe_ctx, &(pipe_ctx->visual_confirm_color));
1262 else if (dc->debug.visual_confirm == VISUAL_CONFIRM_FAMS2)
1263 get_fams2_visual_confirm_color(dc, context, pipe_ctx, &(pipe_ctx->visual_confirm_color));
1264 else if (dc->debug.visual_confirm == VISUAL_CONFIRM_VABC)
1265 get_vabc_visual_confirm_color(pipe_ctx, &(pipe_ctx->visual_confirm_color));
1266 else if (dc->debug.visual_confirm == VISUAL_CONFIRM_BOOSTED_REFRESH_RATE)
1267 get_refresh_rate_confirm_color(pipe_ctx, &(pipe_ctx->visual_confirm_color));
1268 }
1269 }
1270 }
1271
dc_get_visual_confirm_for_stream(struct dc * dc,struct dc_stream_state * stream_state,struct tg_color * color)1272 void dc_get_visual_confirm_for_stream(
1273 struct dc *dc,
1274 struct dc_stream_state *stream_state,
1275 struct tg_color *color)
1276 {
1277 struct dc_stream_status *stream_status = dc_stream_get_status(stream_state);
1278 struct pipe_ctx *pipe_ctx;
1279 int i;
1280 struct dc_plane_state *plane_state = NULL;
1281
1282 if (!stream_status)
1283 return;
1284
1285 switch (dc->debug.visual_confirm) {
1286 case VISUAL_CONFIRM_DISABLE:
1287 return;
1288 case VISUAL_CONFIRM_PSR:
1289 case VISUAL_CONFIRM_FAMS:
1290 pipe_ctx = dc_stream_get_pipe_ctx(stream_state);
1291 if (!pipe_ctx)
1292 return;
1293 dc_dmub_srv_get_visual_confirm_color_cmd(dc, pipe_ctx);
1294 memcpy(color, &dc->ctx->dmub_srv->dmub->visual_confirm_color, sizeof(struct tg_color));
1295 return;
1296
1297 default:
1298 /* find plane with highest layer_index */
1299 for (i = 0; i < stream_status->plane_count; i++) {
1300 if (stream_status->plane_states[i]->visible)
1301 plane_state = stream_status->plane_states[i];
1302 }
1303 if (!plane_state)
1304 return;
1305 /* find pipe that contains plane with highest layer index */
1306 for (i = 0; i < MAX_PIPES; i++) {
1307 struct pipe_ctx *pipe = &dc->current_state->res_ctx.pipe_ctx[i];
1308
1309 if (pipe->plane_state == plane_state) {
1310 memcpy(color, &pipe->visual_confirm_color, sizeof(struct tg_color));
1311 return;
1312 }
1313 }
1314 }
1315 }
1316
1317 /**
1318 * dc_stream_adjust_vmin_vmax - look up pipe context & update parts of DRR
1319 * @dc: dc reference
1320 * @stream: Initial dc stream state
1321 * @adjust: Updated parameters for vertical_total_min and vertical_total_max
1322 *
1323 * Looks up the pipe context of dc_stream_state and updates the
1324 * vertical_total_min and vertical_total_max of the DRR, Dynamic Refresh
1325 * Rate, which is a power-saving feature that targets reducing panel
1326 * refresh rate while the screen is static
1327 *
1328 * Return: %true if the pipe context is found and adjusted;
1329 * %false if the pipe context is not found.
1330 */
dc_stream_adjust_vmin_vmax(struct dc * dc,struct dc_stream_state * stream,struct dc_crtc_timing_adjust * adjust)1331 bool dc_stream_adjust_vmin_vmax(struct dc *dc,
1332 struct dc_stream_state *stream,
1333 struct dc_crtc_timing_adjust *adjust)
1334 {
1335 int i;
1336
1337 /*
1338 * Don't adjust DRR while there's bandwidth optimizations pending to
1339 * avoid conflicting with firmware updates.
1340 */
1341 if (dc->ctx->dce_version > DCE_VERSION_MAX) {
1342 if (dc->optimized_required &&
1343 (stream->adjust.v_total_max != adjust->v_total_max ||
1344 stream->adjust.v_total_min != adjust->v_total_min)) {
1345 stream->adjust.timing_adjust_pending = true;
1346 return false;
1347 }
1348 }
1349
1350 dc_exit_ips_for_hw_access(dc);
1351
1352 stream->adjust.v_total_max = adjust->v_total_max;
1353 stream->adjust.v_total_mid = adjust->v_total_mid;
1354 stream->adjust.v_total_mid_frame_num = adjust->v_total_mid_frame_num;
1355 stream->adjust.v_total_min = adjust->v_total_min;
1356 stream->adjust.allow_otg_v_count_halt = adjust->allow_otg_v_count_halt;
1357
1358 if (dc->caps.max_v_total != 0 &&
1359 (adjust->v_total_max > dc->caps.max_v_total || adjust->v_total_min > dc->caps.max_v_total)) {
1360 stream->adjust.timing_adjust_pending = false;
1361 if (adjust->allow_otg_v_count_halt)
1362 return set_long_vtotal(dc, stream, adjust);
1363 else
1364 return false;
1365 }
1366
1367 for (i = 0; i < MAX_PIPES; i++) {
1368 struct pipe_ctx *pipe = &dc->current_state->res_ctx.pipe_ctx[i];
1369
1370 if (pipe->stream == stream && pipe->stream_res.tg) {
1371 dc->hwss.set_drr(&pipe,
1372 1,
1373 *adjust);
1374 stream->adjust.timing_adjust_pending = false;
1375
1376 if (dc->debug.visual_confirm == VISUAL_CONFIRM_BOOSTED_REFRESH_RATE) {
1377 if (pipe->stream && pipe->plane_state) {
1378 dc_update_visual_confirm_color(dc, dc->current_state, pipe);
1379 dc->hwss.update_visual_confirm_color(dc, pipe, pipe->plane_res.hubp->mpcc_id);
1380
1381 }
1382 }
1383
1384 if (dc->hwss.notify_cursor_offload_drr_update)
1385 dc->hwss.notify_cursor_offload_drr_update(dc, dc->current_state, stream);
1386
1387 return true;
1388 }
1389 }
1390
1391 return false;
1392 }
1393
disable_dangling_plane(struct dc * dc,struct dc_state * context)1394 static void disable_dangling_plane(struct dc *dc, struct dc_state *context)
1395 {
1396 unsigned int i, j;
1397 struct dc_state *dangling_context = dc_state_create_current_copy(dc);
1398 struct dc_state *current_ctx;
1399 struct pipe_ctx *pipe;
1400 struct timing_generator *tg;
1401
1402 if (dangling_context == NULL)
1403 return;
1404
1405 for (i = 0; i < dc->res_pool->pipe_count; i++) {
1406 struct dc_stream_state *old_stream =
1407 dc->current_state->res_ctx.pipe_ctx[i].stream;
1408 bool should_disable = true;
1409 bool pipe_split_change = false;
1410
1411 if ((context->res_ctx.pipe_ctx[i].top_pipe) &&
1412 (dc->current_state->res_ctx.pipe_ctx[i].top_pipe))
1413 pipe_split_change = context->res_ctx.pipe_ctx[i].top_pipe->pipe_idx !=
1414 dc->current_state->res_ctx.pipe_ctx[i].top_pipe->pipe_idx;
1415 else
1416 pipe_split_change = context->res_ctx.pipe_ctx[i].top_pipe !=
1417 dc->current_state->res_ctx.pipe_ctx[i].top_pipe;
1418
1419 for (j = 0; j < context->stream_count; j++) {
1420 if (old_stream == context->streams[j]) {
1421 should_disable = false;
1422 break;
1423 }
1424 }
1425 if (!should_disable && pipe_split_change &&
1426 dc->current_state->stream_count != context->stream_count)
1427 should_disable = true;
1428
1429 if (old_stream && !dc->current_state->res_ctx.pipe_ctx[i].top_pipe &&
1430 !dc->current_state->res_ctx.pipe_ctx[i].prev_odm_pipe) {
1431 struct pipe_ctx *old_pipe, *new_pipe;
1432
1433 old_pipe = &dc->current_state->res_ctx.pipe_ctx[i];
1434 new_pipe = &context->res_ctx.pipe_ctx[i];
1435
1436 if (old_pipe->plane_state && !new_pipe->plane_state)
1437 should_disable = true;
1438 }
1439
1440 if (should_disable && old_stream) {
1441 bool is_phantom = dc_state_get_stream_subvp_type(dc->current_state, old_stream) == SUBVP_PHANTOM;
1442 pipe = &dc->current_state->res_ctx.pipe_ctx[i];
1443 tg = pipe->stream_res.tg;
1444 /* When disabling plane for a phantom pipe, we must turn on the
1445 * phantom OTG so the disable programming gets the double buffer
1446 * update. Otherwise the pipe will be left in a partially disabled
1447 * state that can result in underflow or hang when enabling it
1448 * again for different use.
1449 */
1450 if (is_phantom) {
1451 if (tg->funcs->enable_crtc) {
1452 if (dc->hwseq->funcs.blank_pixel_data)
1453 dc->hwseq->funcs.blank_pixel_data(dc, pipe, true);
1454 tg->funcs->enable_crtc(tg);
1455 }
1456 }
1457
1458 if (is_phantom)
1459 dc_state_rem_all_phantom_planes_for_stream(dc, old_stream, dangling_context, true);
1460 else
1461 dc_state_rem_all_planes_for_stream(dc, old_stream, dangling_context);
1462 disable_all_writeback_pipes_for_stream(dc, old_stream, dangling_context);
1463
1464 if (pipe->stream && pipe->plane_state) {
1465 if (!dc->debug.using_dml2)
1466 set_p_state_switch_method(dc, context, pipe);
1467 dc_update_visual_confirm_color(dc, context, pipe);
1468 }
1469
1470 if (dc->hwss.apply_ctx_for_surface) {
1471 apply_ctx_interdependent_lock(dc, dc->current_state, old_stream, true);
1472 dc->hwss.apply_ctx_for_surface(dc, old_stream, 0, dangling_context);
1473 apply_ctx_interdependent_lock(dc, dc->current_state, old_stream, false);
1474 dc->hwss.post_unlock_program_front_end(dc, dangling_context);
1475 }
1476
1477 if (dc->res_pool->funcs->prepare_mcache_programming)
1478 dc->res_pool->funcs->prepare_mcache_programming(dc, dangling_context);
1479 if (dc->hwss.program_front_end_for_ctx) {
1480 dc->hwss.interdependent_update_lock(dc, dc->current_state, true);
1481 dc->hwss.program_front_end_for_ctx(dc, dangling_context);
1482 dc->hwss.interdependent_update_lock(dc, dc->current_state, false);
1483 dc->hwss.post_unlock_program_front_end(dc, dangling_context);
1484 }
1485 /* We need to put the phantom OTG back into it's default (disabled) state or we
1486 * can get corruption when transition from one SubVP config to a different one.
1487 * The OTG is set to disable on falling edge of VUPDATE so the plane disable
1488 * will still get it's double buffer update.
1489 */
1490 if (is_phantom) {
1491 if (tg->funcs->disable_phantom_crtc)
1492 tg->funcs->disable_phantom_crtc(tg);
1493 }
1494 }
1495 }
1496
1497 current_ctx = dc->current_state;
1498 dc->current_state = dangling_context;
1499 dc_state_release(current_ctx);
1500 }
1501
disable_vbios_mode_if_required(struct dc * dc,struct dc_state * context)1502 static void disable_vbios_mode_if_required(
1503 struct dc *dc,
1504 struct dc_state *context)
1505 {
1506 unsigned int i, j;
1507
1508 /* check if timing_changed, disable stream*/
1509 for (i = 0; i < dc->res_pool->pipe_count; i++) {
1510 struct dc_stream_state *stream = NULL;
1511 struct dc_link *link = NULL;
1512 struct pipe_ctx *pipe = NULL;
1513
1514 pipe = &context->res_ctx.pipe_ctx[i];
1515 stream = pipe->stream;
1516 if (stream == NULL)
1517 continue;
1518
1519 if (stream->apply_seamless_boot_optimization)
1520 continue;
1521
1522 // only looking for first odm pipe
1523 if (pipe->prev_odm_pipe)
1524 continue;
1525
1526 if (stream->link->local_sink &&
1527 stream->link->local_sink->sink_signal == SIGNAL_TYPE_EDP) {
1528 link = stream->link;
1529 }
1530
1531 if (link != NULL && link->link_enc->funcs->is_dig_enabled(link->link_enc)) {
1532 unsigned int enc_inst, tg_inst = 0;
1533 unsigned int pix_clk_100hz = 0;
1534
1535 enc_inst = link->link_enc->funcs->get_dig_frontend(link->link_enc);
1536 if (enc_inst != ENGINE_ID_UNKNOWN) {
1537 for (j = 0; j < dc->res_pool->stream_enc_count; j++) {
1538 if (dc->res_pool->stream_enc[j]->id == enc_inst) {
1539 tg_inst = dc->res_pool->stream_enc[j]->funcs->dig_source_otg(
1540 dc->res_pool->stream_enc[j]);
1541 break;
1542 }
1543 }
1544
1545 dc->res_pool->dp_clock_source->funcs->get_dp_dto_frequency_100hz(
1546 dc->res_pool->dp_clock_source,
1547 tg_inst, &pix_clk_100hz);
1548
1549 if (link->link_status.link_active) {
1550 uint32_t requested_pix_clk_100hz =
1551 pipe->stream_res.pix_clk_params.requested_pix_clk_100hz;
1552
1553 if (pix_clk_100hz != requested_pix_clk_100hz) {
1554 dc->link_srv->set_dpms_off(pipe);
1555 pipe->stream->dpms_off = false;
1556 }
1557 }
1558 }
1559 }
1560 }
1561 }
1562
1563 /* Public functions */
1564
dc_create(const struct dc_init_data * init_params)1565 struct dc *dc_create(const struct dc_init_data *init_params)
1566 {
1567 struct dc *dc = kvzalloc_obj(*dc);
1568 unsigned int full_pipe_count;
1569
1570 if (!dc)
1571 return NULL;
1572
1573 if (init_params->dce_environment == DCE_ENV_VIRTUAL_HW) {
1574 dc->caps.linear_pitch_alignment = 64;
1575 if (!dc_construct_ctx(dc, init_params))
1576 goto destruct_dc;
1577 } else {
1578 if (!dc_construct(dc, init_params))
1579 goto destruct_dc;
1580
1581 full_pipe_count = dc->res_pool->pipe_count;
1582 if (dc->res_pool->underlay_pipe_index != NO_UNDERLAY_PIPE)
1583 full_pipe_count--;
1584 dc->caps.max_streams = min(
1585 full_pipe_count,
1586 dc->res_pool->stream_enc_count);
1587
1588 dc->caps.max_links = dc->link_count;
1589 dc->caps.max_audios = dc->res_pool->audio_count;
1590 dc->caps.linear_pitch_alignment = 64;
1591
1592 dc->caps.max_dp_protocol_version = DP_VERSION_1_4;
1593
1594 dc->caps.max_otg_num = dc->res_pool->res_cap->num_timing_generator;
1595
1596 if (dc->res_pool->dmcu != NULL)
1597 dc->versions.dmcu_version = dc->res_pool->dmcu->dmcu_version;
1598 }
1599
1600 dc->dcn_reg_offsets = init_params->dcn_reg_offsets;
1601 dc->nbio_reg_offsets = init_params->nbio_reg_offsets;
1602 dc->clk_reg_offsets = init_params->clk_reg_offsets;
1603
1604 /* Populate versioning information */
1605 dc->versions.dc_ver = DC_VER;
1606
1607 dc->build_id = DC_BUILD_ID;
1608
1609 DC_LOG_DC("Display Core initialized\n");
1610
1611 return dc;
1612
1613 destruct_dc:
1614 dc_destruct(dc);
1615 kvfree(dc);
1616 return NULL;
1617 }
1618
detect_edp_presence(struct dc * dc)1619 static void detect_edp_presence(struct dc *dc)
1620 {
1621 struct dc_link *edp_links[MAX_NUM_EDP];
1622 struct dc_link *edp_link = NULL;
1623 enum dc_connection_type type;
1624 unsigned int i, edp_num;
1625
1626 dc_get_edp_links(dc, edp_links, &edp_num);
1627 if (!edp_num)
1628 return;
1629
1630 for (i = 0; i < edp_num; i++) {
1631 edp_link = edp_links[i];
1632 if (dc->config.edp_not_connected) {
1633 edp_link->edp_sink_present = false;
1634 } else {
1635 dc_link_detect_connection_type(edp_link, &type);
1636 edp_link->edp_sink_present = (type != dc_connection_none);
1637 }
1638 }
1639 }
1640
dc_hardware_init(struct dc * dc)1641 void dc_hardware_init(struct dc *dc)
1642 {
1643
1644 detect_edp_presence(dc);
1645 if (dc->ctx->dce_environment != DCE_ENV_VIRTUAL_HW)
1646 dc->hwss.init_hw(dc);
1647 dc_dmub_srv_notify_fw_dc_power_state(dc->ctx->dmub_srv, DC_ACPI_CM_POWER_STATE_D0);
1648 }
1649
dc_init_callbacks(struct dc * dc,const struct dc_callback_init * init_params)1650 void dc_init_callbacks(struct dc *dc,
1651 const struct dc_callback_init *init_params)
1652 {
1653 dc->ctx->cp_psp = init_params->cp_psp;
1654 }
1655
dc_deinit_callbacks(struct dc * dc)1656 void dc_deinit_callbacks(struct dc *dc)
1657 {
1658 memset(&dc->ctx->cp_psp, 0, sizeof(dc->ctx->cp_psp));
1659 }
1660
dc_destroy(struct dc ** dc)1661 void dc_destroy(struct dc **dc)
1662 {
1663 dc_destruct(*dc);
1664 kvfree(*dc);
1665 *dc = NULL;
1666 }
1667
enable_timing_multisync(struct dc * dc,struct dc_state * ctx)1668 static void enable_timing_multisync(
1669 struct dc *dc,
1670 struct dc_state *ctx)
1671 {
1672 int i, multisync_count = 0;
1673 int pipe_count = dc->res_pool->pipe_count;
1674 struct pipe_ctx *multisync_pipes[MAX_PIPES] = { NULL };
1675
1676 for (i = 0; i < pipe_count; i++) {
1677 if (!ctx->res_ctx.pipe_ctx[i].stream ||
1678 !ctx->res_ctx.pipe_ctx[i].stream->triggered_crtc_reset.enabled)
1679 continue;
1680 if (ctx->res_ctx.pipe_ctx[i].stream == ctx->res_ctx.pipe_ctx[i].stream->triggered_crtc_reset.event_source)
1681 continue;
1682 multisync_pipes[multisync_count] = &ctx->res_ctx.pipe_ctx[i];
1683 multisync_count++;
1684 }
1685
1686 if (multisync_count > 0) {
1687 dc->hwss.enable_per_frame_crtc_position_reset(
1688 dc, multisync_count, multisync_pipes);
1689 }
1690 }
1691
program_timing_sync(struct dc * dc,struct dc_state * ctx)1692 static void program_timing_sync(
1693 struct dc *dc,
1694 struct dc_state *ctx)
1695 {
1696 int i, j, k;
1697 int group_index = 0;
1698 int num_group = 0;
1699 int pipe_count = dc->res_pool->pipe_count;
1700 struct pipe_ctx *unsynced_pipes[MAX_PIPES] = { NULL };
1701
1702 for (i = 0; i < pipe_count; i++) {
1703 if (!ctx->res_ctx.pipe_ctx[i].stream
1704 || ctx->res_ctx.pipe_ctx[i].top_pipe
1705 || ctx->res_ctx.pipe_ctx[i].prev_odm_pipe)
1706 continue;
1707
1708 unsynced_pipes[i] = &ctx->res_ctx.pipe_ctx[i];
1709 }
1710
1711 for (i = 0; i < pipe_count; i++) {
1712 int group_size = 1;
1713 enum timing_synchronization_type sync_type = NOT_SYNCHRONIZABLE;
1714 struct pipe_ctx *pipe_set[MAX_PIPES];
1715
1716 if (!unsynced_pipes[i])
1717 continue;
1718
1719 pipe_set[0] = unsynced_pipes[i];
1720 unsynced_pipes[i] = NULL;
1721
1722 /* Add tg to the set, search rest of the tg's for ones with
1723 * same timing, add all tgs with same timing to the group
1724 */
1725 for (j = i + 1; j < pipe_count; j++) {
1726 if (!unsynced_pipes[j])
1727 continue;
1728 if (sync_type != TIMING_SYNCHRONIZABLE &&
1729 dc->hwss.enable_vblanks_synchronization &&
1730 unsynced_pipes[j]->stream_res.tg->funcs->align_vblanks &&
1731 resource_are_vblanks_synchronizable(
1732 unsynced_pipes[j]->stream,
1733 pipe_set[0]->stream)) {
1734 sync_type = VBLANK_SYNCHRONIZABLE;
1735 pipe_set[group_size] = unsynced_pipes[j];
1736 unsynced_pipes[j] = NULL;
1737 group_size++;
1738 } else
1739 if (sync_type != VBLANK_SYNCHRONIZABLE &&
1740 resource_are_streams_timing_synchronizable(
1741 unsynced_pipes[j]->stream,
1742 pipe_set[0]->stream)) {
1743 sync_type = TIMING_SYNCHRONIZABLE;
1744 pipe_set[group_size] = unsynced_pipes[j];
1745 unsynced_pipes[j] = NULL;
1746 group_size++;
1747 }
1748 }
1749
1750 /* set first unblanked pipe as master */
1751 for (j = 0; j < group_size; j++) {
1752 bool is_blanked;
1753
1754 if (pipe_set[j]->stream_res.opp->funcs->dpg_is_blanked)
1755 is_blanked =
1756 pipe_set[j]->stream_res.opp->funcs->dpg_is_blanked(pipe_set[j]->stream_res.opp);
1757 else
1758 is_blanked =
1759 pipe_set[j]->stream_res.tg->funcs->is_blanked(pipe_set[j]->stream_res.tg);
1760 if (!is_blanked) {
1761 if (j == 0)
1762 break;
1763
1764 swap(pipe_set[0], pipe_set[j]);
1765 break;
1766 }
1767 }
1768
1769 for (k = 0; k < group_size; k++) {
1770 struct dc_stream_status *status = dc_state_get_stream_status(ctx, pipe_set[k]->stream);
1771
1772 if (!status)
1773 continue;
1774
1775 status->timing_sync_info.group_id = num_group;
1776 status->timing_sync_info.group_size = group_size;
1777 if (k == 0)
1778 status->timing_sync_info.master = true;
1779 else
1780 status->timing_sync_info.master = false;
1781
1782 }
1783
1784 /* remove any other unblanked pipes as they have already been synced */
1785 if (dc->config.use_pipe_ctx_sync_logic) {
1786 /* check pipe's syncd to decide which pipe to be removed */
1787 for (j = 1; j < group_size; j++) {
1788 if (pipe_set[j]->pipe_idx_syncd == pipe_set[0]->pipe_idx_syncd) {
1789 group_size--;
1790 pipe_set[j] = pipe_set[group_size];
1791 j--;
1792 } else
1793 /* link slave pipe's syncd with master pipe */
1794 pipe_set[j]->pipe_idx_syncd = pipe_set[0]->pipe_idx_syncd;
1795 }
1796 } else {
1797 /* remove any other pipes by checking valid plane */
1798 for (j = j + 1; j < group_size; j++) {
1799 bool is_blanked;
1800
1801 if (pipe_set[j]->stream_res.opp->funcs->dpg_is_blanked)
1802 is_blanked =
1803 pipe_set[j]->stream_res.opp->funcs->dpg_is_blanked(pipe_set[j]->stream_res.opp);
1804 else
1805 is_blanked =
1806 pipe_set[j]->stream_res.tg->funcs->is_blanked(pipe_set[j]->stream_res.tg);
1807 if (!is_blanked) {
1808 group_size--;
1809 pipe_set[j] = pipe_set[group_size];
1810 j--;
1811 }
1812 }
1813 }
1814
1815 if (group_size > 1) {
1816 if (sync_type == TIMING_SYNCHRONIZABLE) {
1817 dc->hwss.enable_timing_synchronization(
1818 dc, ctx, group_index, group_size, pipe_set);
1819 } else
1820 if (sync_type == VBLANK_SYNCHRONIZABLE) {
1821 dc->hwss.enable_vblanks_synchronization(
1822 dc, group_index, group_size, pipe_set);
1823 }
1824 group_index++;
1825 }
1826 num_group++;
1827 }
1828 }
1829
streams_changed(struct dc * dc,struct dc_stream_state * streams[],uint8_t stream_count)1830 static bool streams_changed(struct dc *dc,
1831 struct dc_stream_state *streams[],
1832 uint8_t stream_count)
1833 {
1834 uint8_t i;
1835
1836 if (stream_count != dc->current_state->stream_count)
1837 return true;
1838
1839 for (i = 0; i < dc->current_state->stream_count; i++) {
1840 if (dc->current_state->streams[i] != streams[i])
1841 return true;
1842 if (!streams[i]->link->link_state_valid)
1843 return true;
1844 }
1845
1846 return false;
1847 }
1848
dc_validate_boot_timing(const struct dc * dc,const struct dc_sink * sink,struct dc_crtc_timing * crtc_timing)1849 bool dc_validate_boot_timing(const struct dc *dc,
1850 const struct dc_sink *sink,
1851 struct dc_crtc_timing *crtc_timing)
1852 {
1853 struct timing_generator *tg;
1854 struct stream_encoder *se = NULL;
1855
1856 struct dc_crtc_timing hw_crtc_timing = {0};
1857
1858 struct dc_link *link = sink->link;
1859 unsigned int i, enc_inst;
1860 unsigned int tg_inst = 0;
1861
1862 /* Support seamless boot on EDP displays only */
1863 if (sink->sink_signal != SIGNAL_TYPE_EDP) {
1864 return false;
1865 }
1866
1867 if (dc->debug.force_odm_combine) {
1868 DC_LOG_DEBUG("boot timing validation failed due to force_odm_combine\n");
1869 return false;
1870 }
1871
1872 /* Check for enabled DIG to identify enabled display */
1873 if (!link->link_enc->funcs->is_dig_enabled(link->link_enc)) {
1874 DC_LOG_DEBUG("boot timing validation failed due to disabled DIG\n");
1875 return false;
1876 }
1877
1878 enc_inst = link->link_enc->funcs->get_dig_frontend(link->link_enc);
1879
1880 if (enc_inst == ENGINE_ID_UNKNOWN) {
1881 DC_LOG_DEBUG("boot timing validation failed due to unknown DIG engine ID\n");
1882 return false;
1883 }
1884
1885 for (i = 0; i < dc->res_pool->stream_enc_count; i++) {
1886 if (dc->res_pool->stream_enc[i]->id == enc_inst) {
1887
1888 se = dc->res_pool->stream_enc[i];
1889
1890 tg_inst = dc->res_pool->stream_enc[i]->funcs->dig_source_otg(
1891 dc->res_pool->stream_enc[i]);
1892 break;
1893 }
1894 }
1895
1896 // tg_inst not found
1897 if (i == dc->res_pool->stream_enc_count) {
1898 DC_LOG_DEBUG("boot timing validation failed due to timing generator instance not found\n");
1899 return false;
1900 }
1901
1902 if (tg_inst >= dc->res_pool->timing_generator_count) {
1903 DC_LOG_DEBUG("boot timing validation failed due to invalid timing generator count\n");
1904 return false;
1905 }
1906
1907 if (tg_inst != link->link_enc->preferred_engine) {
1908 DC_LOG_DEBUG("boot timing validation failed due to non-preferred timing generator\n");
1909 return false;
1910 }
1911
1912 tg = dc->res_pool->timing_generators[tg_inst];
1913
1914 if (!tg->funcs->get_hw_timing) {
1915 DC_LOG_DEBUG("boot timing validation failed due to missing get_hw_timing callback\n");
1916 return false;
1917 }
1918
1919 if (!tg->funcs->get_hw_timing(tg, &hw_crtc_timing)) {
1920 DC_LOG_DEBUG("boot timing validation failed due to failed get_hw_timing return\n");
1921 return false;
1922 }
1923
1924 if (crtc_timing->h_total != hw_crtc_timing.h_total) {
1925 DC_LOG_DEBUG("boot timing validation failed due to h_total mismatch\n");
1926 return false;
1927 }
1928
1929 if (crtc_timing->h_border_left != hw_crtc_timing.h_border_left) {
1930 DC_LOG_DEBUG("boot timing validation failed due to h_border_left mismatch\n");
1931 return false;
1932 }
1933
1934 if (crtc_timing->h_addressable != hw_crtc_timing.h_addressable) {
1935 DC_LOG_DEBUG("boot timing validation failed due to h_addressable mismatch\n");
1936 return false;
1937 }
1938
1939 if (crtc_timing->h_border_right != hw_crtc_timing.h_border_right) {
1940 DC_LOG_DEBUG("boot timing validation failed due to h_border_right mismatch\n");
1941 return false;
1942 }
1943
1944 if (crtc_timing->h_front_porch != hw_crtc_timing.h_front_porch) {
1945 DC_LOG_DEBUG("boot timing validation failed due to h_front_porch mismatch\n");
1946 return false;
1947 }
1948
1949 if (crtc_timing->h_sync_width != hw_crtc_timing.h_sync_width) {
1950 DC_LOG_DEBUG("boot timing validation failed due to h_sync_width mismatch\n");
1951 return false;
1952 }
1953
1954 if (crtc_timing->v_total != hw_crtc_timing.v_total) {
1955 DC_LOG_DEBUG("boot timing validation failed due to v_total mismatch\n");
1956 return false;
1957 }
1958
1959 if (crtc_timing->v_border_top != hw_crtc_timing.v_border_top) {
1960 DC_LOG_DEBUG("boot timing validation failed due to v_border_top mismatch\n");
1961 return false;
1962 }
1963
1964 if (crtc_timing->v_addressable != hw_crtc_timing.v_addressable) {
1965 DC_LOG_DEBUG("boot timing validation failed due to v_addressable mismatch\n");
1966 return false;
1967 }
1968
1969 if (crtc_timing->v_border_bottom != hw_crtc_timing.v_border_bottom) {
1970 DC_LOG_DEBUG("boot timing validation failed due to v_border_bottom mismatch\n");
1971 return false;
1972 }
1973
1974 if (crtc_timing->v_front_porch != hw_crtc_timing.v_front_porch) {
1975 DC_LOG_DEBUG("boot timing validation failed due to v_front_porch mismatch\n");
1976 return false;
1977 }
1978
1979 if (crtc_timing->v_sync_width != hw_crtc_timing.v_sync_width) {
1980 DC_LOG_DEBUG("boot timing validation failed due to v_sync_width mismatch\n");
1981 return false;
1982 }
1983
1984 if (crtc_timing->flags.DSC) {
1985 struct display_stream_compressor *dsc = NULL;
1986 struct dcn_dsc_state dsc_state = {0};
1987
1988 if (dc->ctx->dce_version < DCN_VERSION_4_2) {
1989 /*vbios enabled eDP dsc for one of DCN315 only but it has known issue,
1990 since there is no production bios update, block it there*/
1991 DC_LOG_DEBUG("boot timing validation failed due to unsupported DSC on this ASIC\n");
1992 return false;
1993 }
1994
1995 /* Find DSC associated with this timing generator */
1996 if (tg_inst < (unsigned int)dc->res_pool->res_cap->num_dsc) {
1997 dsc = dc->res_pool->dscs[tg_inst];
1998 }
1999
2000 if (!dsc || !dsc->funcs->dsc_read_state) {
2001 DC_LOG_DEBUG("boot timing validation failed due to no DSC resource or read function\n");
2002 return false;
2003 }
2004
2005 /* Read current DSC hardware state */
2006 dsc->funcs->dsc_read_state(dsc, &dsc_state);
2007
2008 /* Check if DSC is actually enabled in hardware */
2009 if (dsc_state.dsc_clock_en == 0) {
2010 DC_LOG_DEBUG("boot timing validation failed due to DSC not enabled in hardware\n");
2011 return false;
2012 }
2013
2014 uint32_t num_slices_h = 0;
2015 uint32_t num_slices_v = 0;
2016
2017 if (dsc_state.dsc_slice_width > 0) {
2018 num_slices_h = (crtc_timing->h_addressable + dsc_state.dsc_slice_width - 1) / dsc_state.dsc_slice_width;
2019 }
2020
2021 if (dsc_state.dsc_slice_height > 0) {
2022 num_slices_v = (crtc_timing->v_addressable + dsc_state.dsc_slice_height - 1) / dsc_state.dsc_slice_height;
2023 }
2024
2025 if (crtc_timing->dsc_cfg.num_slices_h != num_slices_h) {
2026 DC_LOG_DEBUG("boot timing validation failed due to num_slices_h mismatch\n");
2027 return false;
2028 }
2029
2030 if (crtc_timing->dsc_cfg.num_slices_v != num_slices_v) {
2031 DC_LOG_DEBUG("boot timing validation failed due to num_slices_v mismatch\n");
2032 return false;
2033 }
2034
2035 if (crtc_timing->dsc_cfg.bits_per_pixel != dsc_state.dsc_bits_per_pixel) {
2036 DC_LOG_DEBUG("boot timing validation failed due to bits_per_pixel mismatch\n");
2037 return false;
2038 }
2039
2040 if (crtc_timing->dsc_cfg.block_pred_enable != dsc_state.dsc_block_pred_enable) {
2041 DC_LOG_DEBUG("boot timing validation failed due to block_pred_enable mismatch\n");
2042 return false;
2043 }
2044
2045 if (crtc_timing->dsc_cfg.linebuf_depth != dsc_state.dsc_line_buf_depth) {
2046 DC_LOG_DEBUG("boot timing validation failed due to linebuf_depth mismatch\n");
2047 return false;
2048 }
2049
2050 if (crtc_timing->dsc_cfg.version_minor != dsc_state.dsc_version_minor) {
2051 DC_LOG_DEBUG("boot timing validation failed due to version_minor mismatch\n");
2052 return false;
2053 }
2054
2055 if (crtc_timing->dsc_cfg.ycbcr422_simple != dsc_state.dsc_simple_422) {
2056 DC_LOG_DEBUG("boot timing validation failed due to pixel encoding mismatch\n");
2057 return false;
2058 }
2059
2060 // Skip checks for is_frl, is_dp, and rc_buffer_size which are not programmed by vbios
2061 // or not necessary for seamless boot validation.
2062 }
2063
2064 if (dc_is_dp_signal(link->connector_signal)) {
2065 unsigned int pix_clk_100hz = 0;
2066 uint32_t numOdmPipes = 1;
2067 uint32_t id_src[4] = {0};
2068
2069 dc->res_pool->dp_clock_source->funcs->get_dp_dto_frequency_100hz(
2070 dc->res_pool->dp_clock_source,
2071 tg_inst, &pix_clk_100hz);
2072
2073 if (tg->funcs->get_optc_source)
2074 tg->funcs->get_optc_source(tg,
2075 &numOdmPipes, &id_src[0], &id_src[1]);
2076
2077 if (numOdmPipes == 2) {
2078 pix_clk_100hz *= 2;
2079 } else if (numOdmPipes == 4) {
2080 pix_clk_100hz *= 4;
2081 } else if (se && se->funcs->get_pixels_per_cycle) {
2082 uint32_t pixels_per_cycle = se->funcs->get_pixels_per_cycle(se);
2083
2084 if (pixels_per_cycle != 1 && !dc->debug.enable_dp_dig_pixel_rate_div_policy) {
2085 DC_LOG_DEBUG("boot timing validation failed due to pixels_per_cycle\n");
2086 return false;
2087 }
2088
2089 pix_clk_100hz *= pixels_per_cycle;
2090 }
2091
2092 // Note: In rare cases, HW pixclk may differ from crtc's pixclk
2093 // slightly due to rounding issues in 10 kHz units.
2094 if (crtc_timing->pix_clk_100hz != pix_clk_100hz) {
2095 DC_LOG_DEBUG("boot timing validation failed due to pix_clk_100hz mismatch\n");
2096 return false;
2097 }
2098
2099 if (!se || !se->funcs->dp_get_pixel_format) {
2100 DC_LOG_DEBUG("boot timing validation failed due to missing dp_get_pixel_format\n");
2101 return false;
2102 }
2103
2104 if (!se->funcs->dp_get_pixel_format(
2105 se,
2106 &hw_crtc_timing.pixel_encoding,
2107 &hw_crtc_timing.display_color_depth)) {
2108 DC_LOG_DEBUG("boot timing validation failed due to dp_get_pixel_format failure\n");
2109 return false;
2110 }
2111
2112 if (hw_crtc_timing.display_color_depth != crtc_timing->display_color_depth) {
2113 DC_LOG_DEBUG("boot timing validation failed due to display_color_depth mismatch\n");
2114 return false;
2115 }
2116
2117 if (hw_crtc_timing.pixel_encoding != crtc_timing->pixel_encoding) {
2118 DC_LOG_DEBUG("boot timing validation failed due to pixel_encoding mismatch\n");
2119 return false;
2120 }
2121 }
2122
2123
2124 if (link->dpcd_caps.dprx_feature.bits.VSC_SDP_COLORIMETRY_SUPPORTED) {
2125 DC_LOG_DEBUG("boot timing validation failed due to VSC SDP colorimetry\n");
2126 return false;
2127 }
2128
2129 if (link->dpcd_caps.channel_coding_cap.bits.DP_128b_132b_SUPPORTED) {
2130 DC_LOG_DEBUG("boot timing validation failed due to DP 128b/132b\n");
2131 return false;
2132 }
2133
2134 if (dc->link_srv->edp_is_ilr_optimization_required(link, crtc_timing)) {
2135 DC_LOG_EVENT_LINK_TRAINING("Seamless boot disabled to optimize eDP link rate\n");
2136 return false;
2137 }
2138
2139 return true;
2140 }
2141
should_update_pipe_for_stream(struct dc_state * context,struct pipe_ctx * pipe_ctx,struct dc_stream_state * stream)2142 static inline bool should_update_pipe_for_stream(
2143 struct dc_state *context,
2144 struct pipe_ctx *pipe_ctx,
2145 struct dc_stream_state *stream)
2146 {
2147 return (pipe_ctx->stream && pipe_ctx->stream == stream);
2148 }
2149
should_update_pipe_for_plane(struct dc_state * context,struct pipe_ctx * pipe_ctx,struct dc_plane_state * plane_state)2150 static inline bool should_update_pipe_for_plane(
2151 struct dc_state *context,
2152 struct pipe_ctx *pipe_ctx,
2153 struct dc_plane_state *plane_state)
2154 {
2155 return (pipe_ctx->plane_state == plane_state);
2156 }
2157
dc_enable_stereo(struct dc * dc,struct dc_state * context,struct dc_stream_state * streams[],uint8_t stream_count)2158 void dc_enable_stereo(
2159 struct dc *dc,
2160 struct dc_state *context,
2161 struct dc_stream_state *streams[],
2162 uint8_t stream_count)
2163 {
2164 int i, j;
2165 struct pipe_ctx *pipe;
2166
2167 dc_exit_ips_for_hw_access(dc);
2168
2169 for (i = 0; i < MAX_PIPES; i++) {
2170 if (context != NULL) {
2171 pipe = &context->res_ctx.pipe_ctx[i];
2172 } else {
2173 context = dc->current_state;
2174 pipe = &dc->current_state->res_ctx.pipe_ctx[i];
2175 }
2176
2177 for (j = 0; pipe && j < stream_count; j++) {
2178 if (should_update_pipe_for_stream(context, pipe, streams[j]) &&
2179 dc->hwss.setup_stereo)
2180 dc->hwss.setup_stereo(pipe, dc);
2181 }
2182 }
2183 }
2184
dc_trigger_sync(struct dc * dc,struct dc_state * context)2185 void dc_trigger_sync(struct dc *dc, struct dc_state *context)
2186 {
2187 if (context->stream_count > 1 && !dc->debug.disable_timing_sync) {
2188 dc_exit_ips_for_hw_access(dc);
2189
2190 enable_timing_multisync(dc, context);
2191 program_timing_sync(dc, context);
2192 }
2193 }
2194
get_stream_mask(struct dc * dc,struct dc_state * context)2195 static uint8_t get_stream_mask(struct dc *dc, struct dc_state *context)
2196 {
2197 unsigned int i;
2198 unsigned int stream_mask = 0;
2199
2200 for (i = 0; i < dc->res_pool->pipe_count; i++) {
2201 if (context->res_ctx.pipe_ctx[i].stream)
2202 stream_mask |= 1 << i;
2203 }
2204
2205 return (uint8_t)stream_mask;
2206 }
2207
dc_z10_restore(const struct dc * dc)2208 void dc_z10_restore(const struct dc *dc)
2209 {
2210 if (dc->hwss.z10_restore)
2211 dc->hwss.z10_restore(dc);
2212 }
2213
dc_z10_save_init(struct dc * dc)2214 void dc_z10_save_init(struct dc *dc)
2215 {
2216 if (dc->hwss.z10_save_init)
2217 dc->hwss.z10_save_init(dc);
2218 }
2219
2220 /* Set a pipe unlock order based on the change in DET allocation and stores it in dc scratch memory
2221 * Prevents over allocation of DET during unlock process
2222 * e.g. 2 pipe config with different streams with a max of 20 DET segments
2223 * Before: After:
2224 * - Pipe0: 10 DET segments - Pipe0: 12 DET segments
2225 * - Pipe1: 10 DET segments - Pipe1: 8 DET segments
2226 * If Pipe0 gets updated first, 22 DET segments will be allocated
2227 */
determine_pipe_unlock_order(struct dc * dc,struct dc_state * context)2228 static void determine_pipe_unlock_order(struct dc *dc, struct dc_state *context)
2229 {
2230 unsigned int i = 0;
2231 struct pipe_ctx *pipe = NULL;
2232 struct timing_generator *tg = NULL;
2233
2234 if (!dc->config.set_pipe_unlock_order)
2235 return;
2236
2237 memset(dc->scratch.pipes_to_unlock_first, 0, sizeof(dc->scratch.pipes_to_unlock_first));
2238 for (i = 0; i < dc->res_pool->pipe_count; i++) {
2239 pipe = &context->res_ctx.pipe_ctx[i];
2240 tg = pipe->stream_res.tg;
2241
2242 if (!resource_is_pipe_type(pipe, OTG_MASTER) ||
2243 !tg->funcs->is_tg_enabled(tg) ||
2244 dc_state_get_pipe_subvp_type(context, pipe) == SUBVP_PHANTOM) {
2245 continue;
2246 }
2247
2248 if (resource_calculate_det_for_stream(context, pipe) <
2249 resource_calculate_det_for_stream(dc->current_state, &dc->current_state->res_ctx.pipe_ctx[i])) {
2250 dc->scratch.pipes_to_unlock_first[i] = true;
2251 }
2252 }
2253 }
2254
2255 /**
2256 * dc_commit_state_no_check - Apply context to the hardware
2257 *
2258 * @dc: DC object with the current status to be updated
2259 * @context: New state that will become the current status at the end of this function
2260 *
2261 * Applies given context to the hardware and copy it into current context.
2262 * It's up to the user to release the src context afterwards.
2263 *
2264 * Return: an enum dc_status result code for the operation
2265 */
dc_commit_state_no_check(struct dc * dc,struct dc_state * context)2266 static enum dc_status dc_commit_state_no_check(struct dc *dc, struct dc_state *context)
2267 {
2268 struct dc_bios *dcb = dc->ctx->dc_bios;
2269 enum dc_status result = DC_ERROR_UNEXPECTED;
2270 struct pipe_ctx *pipe;
2271 unsigned int i, k, l;
2272 struct dc_stream_state *dc_streams[MAX_STREAMS] = {0};
2273 struct dc_state *old_state;
2274 bool subvp_prev_use = false;
2275
2276 dc_z10_restore(dc);
2277 dc_allow_idle_optimizations(dc, false);
2278
2279 for (i = 0; i < dc->res_pool->pipe_count; i++) {
2280 struct pipe_ctx *old_pipe = &dc->current_state->res_ctx.pipe_ctx[i];
2281
2282 /* Check old context for SubVP */
2283 subvp_prev_use |= (dc_state_get_pipe_subvp_type(dc->current_state, old_pipe) == SUBVP_PHANTOM);
2284 if (subvp_prev_use)
2285 break;
2286 }
2287
2288 for (i = 0; i < context->stream_count; i++)
2289 dc_streams[i] = context->streams[i];
2290
2291 if (!dcb->funcs->is_accelerated_mode(dcb)) {
2292 disable_vbios_mode_if_required(dc, context);
2293 dc->hwss.enable_accelerated_mode(dc, context);
2294 } else if (get_seamless_boot_stream_count(dc->current_state) > 0) {
2295 /* If the previous Stream still retains the apply seamless boot flag,
2296 * it means the OS has not actually performed a flip yet.
2297 * At this point, if we receive dc_commit_streams again, we should
2298 * once more check whether the actual HW timing matches what the OS
2299 * has provided
2300 */
2301 disable_vbios_mode_if_required(dc, context);
2302 }
2303
2304 if (dc->hwseq->funcs.wait_for_pipe_update_if_needed) {
2305 for (i = 0; i < dc->res_pool->pipe_count; i++) {
2306 pipe = &context->res_ctx.pipe_ctx[i];
2307 //Only delay otg master for a given config
2308 if (resource_is_pipe_type(pipe, OTG_MASTER)) {
2309 //dc_commit_state_no_check is always a full update
2310 dc->hwseq->funcs.wait_for_pipe_update_if_needed(dc, pipe, false);
2311 break;
2312 }
2313 }
2314 }
2315
2316 if (context->stream_count > get_seamless_boot_stream_count(context) ||
2317 context->stream_count == 0)
2318 dc->hwss.prepare_bandwidth(dc, context);
2319
2320 /* When SubVP is active, all HW programming must be done while
2321 * SubVP lock is acquired
2322 */
2323 if (dc->hwss.subvp_pipe_control_lock)
2324 dc->hwss.subvp_pipe_control_lock(dc, context, true, true, NULL, subvp_prev_use);
2325 if (dc->hwss.dmub_hw_control_lock)
2326 dc->hwss.dmub_hw_control_lock(dc, context, true);
2327
2328 if (dc->hwss.update_dsc_pg)
2329 dc->hwss.update_dsc_pg(dc, context, false);
2330
2331 disable_dangling_plane(dc, context);
2332 /* re-program planes for existing stream, in case we need to
2333 * free up plane resource for later use
2334 */
2335 if (dc->hwss.apply_ctx_for_surface) {
2336 for (i = 0; i < context->stream_count; i++) {
2337 if (context->streams[i]->mode_changed)
2338 continue;
2339 apply_ctx_interdependent_lock(dc, context, context->streams[i], true);
2340 dc->hwss.apply_ctx_for_surface(
2341 dc, context->streams[i],
2342 context->stream_status[i].plane_count,
2343 context); /* use new pipe config in new context */
2344 apply_ctx_interdependent_lock(dc, context, context->streams[i], false);
2345 dc->hwss.post_unlock_program_front_end(dc, context);
2346 }
2347 }
2348
2349 /* Program hardware */
2350 for (i = 0; i < dc->res_pool->pipe_count; i++) {
2351 pipe = &context->res_ctx.pipe_ctx[i];
2352 dc->hwss.wait_for_mpcc_disconnect(dc, dc->res_pool, pipe);
2353 }
2354
2355 for (i = 0; i < dc->current_state->stream_count; i++)
2356 dc_dmub_srv_control_cursor_offload(dc, dc->current_state, dc->current_state->streams[i], false);
2357
2358 result = dc->hwss.apply_ctx_to_hw(dc, context);
2359
2360 for (i = 0; i < context->stream_count; i++)
2361 dc_dmub_srv_control_cursor_offload(dc, context, context->streams[i], true);
2362
2363 if (result != DC_OK) {
2364 /* Application of dc_state to hardware stopped. */
2365 dc->current_state->res_ctx.link_enc_cfg_ctx.mode = LINK_ENC_CFG_STEADY;
2366 return result;
2367 }
2368
2369 dc_trigger_sync(dc, context);
2370
2371 /* Full update should unconditionally be triggered when dc_commit_state_no_check is called */
2372 for (i = 0; i < context->stream_count; i++) {
2373 uint32_t prev_dsc_changed = context->streams[i]->update_flags.bits.dsc_changed;
2374
2375 stream_update_flags_set_full(&context->streams[i]->update_flags);
2376 context->streams[i]->update_flags.bits.dsc_changed = prev_dsc_changed;
2377 }
2378
2379 determine_pipe_unlock_order(dc, context);
2380 /* Program all planes within new context*/
2381 if (dc->res_pool->funcs->prepare_mcache_programming)
2382 dc->res_pool->funcs->prepare_mcache_programming(dc, context);
2383 if (dc->hwss.program_front_end_for_ctx) {
2384 dc->hwss.interdependent_update_lock(dc, context, true);
2385 dc->hwss.program_front_end_for_ctx(dc, context);
2386
2387 if (dc->hwseq->funcs.set_wait_for_update_needed_for_pipe) {
2388 for (i = 0; i < dc->res_pool->pipe_count; i++) {
2389 pipe = &context->res_ctx.pipe_ctx[i];
2390 dc->hwseq->funcs.set_wait_for_update_needed_for_pipe(dc, pipe);
2391 }
2392 }
2393
2394 dc->hwss.interdependent_update_lock(dc, context, false);
2395 dc->hwss.post_unlock_program_front_end(dc, context);
2396 }
2397
2398 if (dc->hwss.commit_subvp_config)
2399 dc->hwss.commit_subvp_config(dc, context);
2400 if (dc->hwss.subvp_pipe_control_lock)
2401 dc->hwss.subvp_pipe_control_lock(dc, context, false, true, NULL, subvp_prev_use);
2402 if (dc->hwss.dmub_hw_control_lock)
2403 dc->hwss.dmub_hw_control_lock(dc, context, false);
2404
2405 for (i = 0; i < context->stream_count; i++) {
2406 const struct dc_link *link = context->streams[i]->link;
2407
2408 if (!context->streams[i]->mode_changed)
2409 continue;
2410
2411 if (dc->hwss.apply_ctx_for_surface) {
2412 apply_ctx_interdependent_lock(dc, context, context->streams[i], true);
2413 dc->hwss.apply_ctx_for_surface(
2414 dc, context->streams[i],
2415 context->stream_status[i].plane_count,
2416 context);
2417 apply_ctx_interdependent_lock(dc, context, context->streams[i], false);
2418 dc->hwss.post_unlock_program_front_end(dc, context);
2419 }
2420
2421 /*
2422 * enable stereo
2423 * TODO rework dc_enable_stereo call to work with validation sets?
2424 */
2425 for (k = 0; k < MAX_PIPES; k++) {
2426 pipe = &context->res_ctx.pipe_ctx[k];
2427
2428 for (l = 0 ; pipe && l < context->stream_count; l++) {
2429 if (context->streams[l] &&
2430 context->streams[l] == pipe->stream &&
2431 dc->hwss.setup_stereo)
2432 dc->hwss.setup_stereo(pipe, dc);
2433 }
2434 }
2435
2436 CONN_MSG_MODE(link, "{%dx%d, %dx%d@%dKhz}",
2437 context->streams[i]->timing.h_addressable,
2438 context->streams[i]->timing.v_addressable,
2439 context->streams[i]->timing.h_total,
2440 context->streams[i]->timing.v_total,
2441 context->streams[i]->timing.pix_clk_100hz / 10);
2442 }
2443
2444 dc_enable_stereo(dc, context, dc_streams, context->stream_count);
2445
2446 if (get_seamless_boot_stream_count(context) == 0 ||
2447 context->stream_count == 0) {
2448 /* Must wait for no flips to be pending before doing optimize bw */
2449 hwss_wait_for_no_pipes_pending(dc, context);
2450 /*
2451 * optimized dispclk depends on ODM setup. Need to wait for ODM
2452 * update pending complete before optimizing bandwidth.
2453 */
2454 hwss_wait_for_odm_update_pending_complete(dc, context);
2455 /* pplib is notified if disp_num changed */
2456 dc->hwss.optimize_bandwidth(dc, context);
2457 /* Need to do otg sync again as otg could be out of sync due to otg
2458 * workaround applied during clock update
2459 */
2460 dc_trigger_sync(dc, context);
2461 }
2462
2463 if (dc->hwss.update_dsc_pg)
2464 dc->hwss.update_dsc_pg(dc, context, true);
2465
2466 if (dc->ctx->dce_version >= DCE_VERSION_MAX)
2467 TRACE_DCN_CLOCK_STATE(&context->bw_ctx.bw.dcn.clk);
2468 else
2469 TRACE_DCE_CLOCK_STATE(&context->bw_ctx.bw.dce);
2470
2471 context->stream_mask = get_stream_mask(dc, context);
2472
2473 if (context->stream_mask != dc->current_state->stream_mask)
2474 dc_dmub_srv_notify_stream_mask(dc->ctx->dmub_srv, context->stream_mask);
2475
2476 for (i = 0; i < context->stream_count; i++)
2477 context->streams[i]->mode_changed = false;
2478
2479 /* Clear update flags that were set earlier to avoid redundant programming */
2480 for (i = 0; i < context->stream_count; i++) {
2481 stream_update_flags_clear(&context->streams[i]->update_flags);
2482 }
2483
2484 old_state = dc->current_state;
2485 dc->current_state = context;
2486
2487 dc_state_release(old_state);
2488
2489 dc_state_retain(dc->current_state);
2490
2491 return result;
2492 }
2493
2494 static bool commit_minimal_transition_state(struct dc *dc,
2495 struct dc_state *transition_base_context);
2496
2497 /**
2498 * dc_commit_streams - Commit current stream state
2499 *
2500 * @dc: DC object with the commit state to be configured in the hardware
2501 * @params: Parameters for the commit, including the streams to be committed
2502 *
2503 * Function responsible for commit streams change to the hardware.
2504 *
2505 * Return:
2506 * Return DC_OK if everything work as expected, otherwise, return a dc_status
2507 * code.
2508 */
dc_commit_streams(struct dc * dc,struct dc_commit_streams_params * params)2509 enum dc_status dc_commit_streams(struct dc *dc, struct dc_commit_streams_params *params)
2510 {
2511 unsigned int i, j;
2512 struct dc_state *context;
2513 enum dc_status res = DC_OK;
2514 struct dc_validation_set set = {0};
2515 struct pipe_ctx *pipe;
2516 bool handle_exit_odm2to1 = false;
2517
2518 if (!params)
2519 return DC_ERROR_UNEXPECTED;
2520
2521 if (dc->ctx->dce_environment == DCE_ENV_VIRTUAL_HW)
2522 return res;
2523
2524 if (!streams_changed(dc, params->streams, params->stream_count) &&
2525 dc->current_state->power_source == params->power_source)
2526 return res;
2527
2528 dc_exit_ips_for_hw_access(dc);
2529
2530 DC_LOG_DC("%s: %d streams\n", __func__, params->stream_count);
2531
2532 for (i = 0; i < params->stream_count; i++) {
2533 struct dc_stream_state *stream = params->streams[i];
2534 struct dc_stream_status *status = dc_stream_get_status(stream);
2535 struct dc_sink *sink = stream->sink;
2536
2537 /* revalidate streams */
2538 if (!dc_is_virtual_signal(sink->sink_signal)) {
2539 res = dc_validate_stream(dc, stream);
2540 if (res != DC_OK)
2541 return res;
2542 }
2543
2544
2545 dc_stream_log(dc, stream);
2546
2547 set.streams[i].stream = stream;
2548
2549 if (status) {
2550 set.streams[i].plane_count = (uint8_t)status->plane_count;
2551 for (j = 0; j < (unsigned int)status->plane_count; j++)
2552 set.streams[i].plane_states[j] = status->plane_states[j];
2553 }
2554 }
2555 set.stream_count = (uint8_t)params->stream_count;
2556
2557 /* ODM Combine 2:1 power optimization is only applied for single stream
2558 * scenario, it uses extra pipes than needed to reduce power consumption
2559 * We need to switch off this feature to make room for new streams.
2560 */
2561 if (params->stream_count > dc->current_state->stream_count &&
2562 dc->current_state->stream_count == 1) {
2563 for (i = 0; i < dc->res_pool->pipe_count; i++) {
2564 pipe = &dc->current_state->res_ctx.pipe_ctx[i];
2565 if (pipe->next_odm_pipe)
2566 handle_exit_odm2to1 = true;
2567 }
2568 }
2569
2570 if (handle_exit_odm2to1)
2571 res = commit_minimal_transition_state(dc, dc->current_state);
2572
2573 context = dc_state_create_current_copy(dc);
2574 if (!context)
2575 goto context_alloc_fail;
2576
2577 context->power_source = params->power_source;
2578
2579 res = dc_validate_with_context(dc, &set, context, DC_VALIDATE_MODE_AND_PROGRAMMING);
2580
2581 /*
2582 * Only update link encoder to stream assignment after bandwidth validation passed.
2583 */
2584 if (res == DC_OK && dc->res_pool->funcs->link_encs_assign && !dc->config.unify_link_enc_assignment)
2585 dc->res_pool->funcs->link_encs_assign(
2586 dc, context, context->streams, context->stream_count);
2587
2588 if (res != DC_OK) {
2589 BREAK_TO_DEBUGGER();
2590 goto fail;
2591 }
2592
2593 /*
2594 * If not already seamless, make transition seamless by inserting intermediate minimal transition
2595 */
2596 if (dc->hwss.is_pipe_topology_transition_seamless &&
2597 !dc->hwss.is_pipe_topology_transition_seamless(dc, dc->current_state, context)) {
2598 res = commit_minimal_transition_state(dc, context);
2599 if (res != DC_OK) {
2600 BREAK_TO_DEBUGGER();
2601 goto fail;
2602 }
2603 }
2604
2605 res = dc_commit_state_no_check(dc, context);
2606
2607 for (i = 0; i < params->stream_count; i++) {
2608 for (j = 0; j < context->stream_count; j++) {
2609 if (params->streams[i]->stream_id == context->streams[j]->stream_id)
2610 params->streams[i]->out.otg_offset = (uint8_t)context->stream_status[j].primary_otg_inst;
2611
2612 if (dc_is_embedded_signal(params->streams[i]->signal)) {
2613 struct dc_stream_status *status = dc_state_get_stream_status(context, params->streams[i]);
2614
2615 if (!status)
2616 continue;
2617
2618 if (dc->hwss.is_abm_supported)
2619 status->is_abm_supported = dc->hwss.is_abm_supported(dc, context, params->streams[i]);
2620 else
2621 status->is_abm_supported = true;
2622 }
2623 }
2624 }
2625
2626 fail:
2627 dc_state_release(context);
2628
2629 context_alloc_fail:
2630
2631 DC_LOG_DC("%s Finished.\n", __func__);
2632
2633 return res;
2634 }
2635
dc_acquire_release_mpc_3dlut(struct dc * dc,bool acquire,struct dc_stream_state * stream,struct dc_3dlut ** lut,struct dc_transfer_func ** shaper)2636 bool dc_acquire_release_mpc_3dlut(
2637 struct dc *dc, bool acquire,
2638 struct dc_stream_state *stream,
2639 struct dc_3dlut **lut,
2640 struct dc_transfer_func **shaper)
2641 {
2642 unsigned int pipe_idx;
2643 bool ret = false;
2644 bool found_pipe_idx = false;
2645 const struct resource_pool *pool = dc->res_pool;
2646 struct resource_context *res_ctx = &dc->current_state->res_ctx;
2647 int mpcc_id = 0;
2648
2649 if (pool && res_ctx) {
2650 if (acquire) {
2651 /*find pipe idx for the given stream*/
2652 for (pipe_idx = 0; pipe_idx < pool->pipe_count; pipe_idx++) {
2653 if (res_ctx->pipe_ctx[pipe_idx].stream == stream) {
2654 found_pipe_idx = true;
2655 mpcc_id = res_ctx->pipe_ctx[pipe_idx].plane_res.hubp->inst;
2656 break;
2657 }
2658 }
2659 } else
2660 found_pipe_idx = true;/*for release pipe_idx is not required*/
2661
2662 if (found_pipe_idx) {
2663 if (acquire && pool->funcs->acquire_post_bldn_3dlut)
2664 ret = pool->funcs->acquire_post_bldn_3dlut(res_ctx, pool, mpcc_id, lut, shaper);
2665 else if (!acquire && pool->funcs->release_post_bldn_3dlut)
2666 ret = pool->funcs->release_post_bldn_3dlut(res_ctx, pool, lut, shaper);
2667 }
2668 }
2669 return ret;
2670 }
2671
is_flip_pending_in_pipes(struct dc * dc,struct dc_state * context)2672 static bool is_flip_pending_in_pipes(struct dc *dc, struct dc_state *context)
2673 {
2674 int i;
2675 struct pipe_ctx *pipe;
2676
2677 for (i = 0; i < MAX_PIPES; i++) {
2678 pipe = &context->res_ctx.pipe_ctx[i];
2679
2680 // Don't check flip pending on phantom pipes
2681 if (!pipe->plane_state || (dc_state_get_pipe_subvp_type(context, pipe) == SUBVP_PHANTOM))
2682 continue;
2683
2684 /* Must set to false to start with, due to OR in update function */
2685 pipe->plane_state->status.is_flip_pending = false;
2686 dc->hwss.update_pending_status(pipe);
2687 if (pipe->plane_state->status.is_flip_pending)
2688 return true;
2689 }
2690 return false;
2691 }
2692
2693 /* Perform updates here which need to be deferred until next vupdate
2694 *
2695 * i.e. blnd lut, 3dlut, and shaper lut bypass regs are double buffered
2696 * but forcing lut memory to shutdown state is immediate. This causes
2697 * single frame corruption as lut gets disabled mid-frame unless shutdown
2698 * is deferred until after entering bypass.
2699 */
process_deferred_updates(struct dc * dc)2700 static void process_deferred_updates(struct dc *dc)
2701 {
2702 int i = 0;
2703
2704 if (dc->debug.enable_mem_low_power.bits.cm) {
2705 ASSERT(dc->dcn_ip->max_num_dpp);
2706 for (i = 0; i < dc->dcn_ip->max_num_dpp; i++)
2707 if (dc->res_pool->dpps[i]->funcs->dpp_deferred_update)
2708 dc->res_pool->dpps[i]->funcs->dpp_deferred_update(dc->res_pool->dpps[i]);
2709 }
2710 }
2711
dc_post_update_surfaces_to_stream(struct dc * dc)2712 void dc_post_update_surfaces_to_stream(struct dc *dc)
2713 {
2714 unsigned int i;
2715 struct dc_state *context = dc->current_state;
2716
2717 if ((!dc->optimized_required) || get_seamless_boot_stream_count(context) > 0)
2718 return;
2719
2720 post_surface_trace(dc);
2721
2722 /*
2723 * Only relevant for DCN behavior where we can guarantee the optimization
2724 * is safe to apply - retain the legacy behavior for DCE.
2725 */
2726
2727 if (dc->ctx->dce_version < DCE_VERSION_MAX)
2728 TRACE_DCE_CLOCK_STATE(&context->bw_ctx.bw.dce);
2729 else {
2730 TRACE_DCN_CLOCK_STATE(&context->bw_ctx.bw.dcn.clk);
2731
2732 if (is_flip_pending_in_pipes(dc, context))
2733 return;
2734
2735 for (i = 0; i < dc->res_pool->pipe_count; i++)
2736 if (context->res_ctx.pipe_ctx[i].stream == NULL ||
2737 context->res_ctx.pipe_ctx[i].plane_state == NULL) {
2738 context->res_ctx.pipe_ctx[i].pipe_idx = (uint8_t)i;
2739 dc->hwss.disable_plane(dc, context, &context->res_ctx.pipe_ctx[i]);
2740 }
2741
2742 process_deferred_updates(dc);
2743
2744 dc->hwss.optimize_bandwidth(dc, context);
2745
2746 if (dc->hwss.update_dsc_pg)
2747 dc->hwss.update_dsc_pg(dc, context, true);
2748 }
2749
2750 dc->optimized_required = false;
2751 }
2752
dc_get_default_tiling_info(const struct dc * dc,struct dc_tiling_info * tiling_info)2753 void dc_get_default_tiling_info(const struct dc *dc, struct dc_tiling_info *tiling_info)
2754 {
2755 if (!dc || !tiling_info)
2756 return;
2757 if (dc->res_pool && dc->res_pool->funcs && dc->res_pool->funcs->get_default_tiling_info) {
2758 dc->res_pool->funcs->get_default_tiling_info(tiling_info);
2759 return;
2760 }
2761 }
2762
dc_set_generic_gpio_for_stereo(bool enable,struct gpio_service * gpio_service)2763 bool dc_set_generic_gpio_for_stereo(bool enable,
2764 struct gpio_service *gpio_service)
2765 {
2766 enum gpio_result gpio_result = GPIO_RESULT_NON_SPECIFIC_ERROR;
2767 struct gpio_pin_info pin_info;
2768 struct gpio *generic;
2769 struct gpio_generic_mux_config *config = kzalloc_obj(struct gpio_generic_mux_config);
2770
2771 if (!config)
2772 return false;
2773 pin_info = dal_gpio_get_generic_pin_info(gpio_service, GPIO_ID_GENERIC, 0);
2774
2775 if (pin_info.mask == 0xFFFFFFFF || pin_info.offset == 0xFFFFFFFF) {
2776 kfree(config);
2777 return false;
2778 } else {
2779 generic = dal_gpio_service_create_generic_mux(
2780 gpio_service,
2781 pin_info.offset,
2782 pin_info.mask);
2783 }
2784
2785 if (!generic) {
2786 kfree(config);
2787 return false;
2788 }
2789
2790 gpio_result = dal_gpio_open(generic, GPIO_MODE_OUTPUT);
2791
2792 config->enable_output_from_mux = enable;
2793 config->mux_select = GPIO_SIGNAL_SOURCE_PASS_THROUGH_STEREO_SYNC;
2794
2795 if (gpio_result == GPIO_RESULT_OK)
2796 gpio_result = dal_mux_setup_config(generic, config);
2797
2798 if (gpio_result == GPIO_RESULT_OK) {
2799 dal_gpio_close(generic);
2800 dal_gpio_destroy_generic_mux(&generic);
2801 kfree(config);
2802 return true;
2803 } else {
2804 dal_gpio_close(generic);
2805 dal_gpio_destroy_generic_mux(&generic);
2806 kfree(config);
2807 return false;
2808 }
2809 }
2810
is_surface_in_context(const struct dc_state * context,const struct dc_plane_state * plane_state)2811 static bool is_surface_in_context(
2812 const struct dc_state *context,
2813 const struct dc_plane_state *plane_state)
2814 {
2815 int j;
2816
2817 for (j = 0; j < MAX_PIPES; j++) {
2818 const struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
2819
2820 if (plane_state == pipe_ctx->plane_state) {
2821 return true;
2822 }
2823 }
2824
2825 return false;
2826 }
2827
get_plane_info_update_type(const struct dc_surface_update * u)2828 static struct dc_update_descriptor get_plane_info_update_type(const struct dc_surface_update *u)
2829 {
2830 struct pipe_update_bits *update_bits = &u->surface->update_bits;
2831 struct dc_update_descriptor update_type = { UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_NONE };
2832
2833 if (!u->plane_info)
2834 return update_type;
2835
2836 // `plane_info` present means at least `STREAM` lock is required
2837 elevate_update_type(&update_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
2838
2839 if (u->plane_info->color_space != u->surface->color_space) {
2840 update_bits->color_space_change = 1;
2841 elevate_update_type(&update_type, UPDATE_TYPE_MED, LOCK_DESCRIPTOR_STREAM);
2842 }
2843
2844 if (u->plane_info->horizontal_mirror != u->surface->horizontal_mirror) {
2845 update_bits->horizontal_mirror_change = 1;
2846 elevate_update_type(&update_type, UPDATE_TYPE_MED, LOCK_DESCRIPTOR_STREAM);
2847 }
2848
2849 if (u->plane_info->rotation != u->surface->rotation) {
2850 update_bits->rotation_change = 1;
2851 elevate_update_type(&update_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
2852 }
2853
2854 if (u->plane_info->format != u->surface->format) {
2855 update_bits->pixel_format_change = 1;
2856 elevate_update_type(&update_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
2857 }
2858
2859 if (u->plane_info->stereo_format != u->surface->stereo_format) {
2860 update_bits->stereo_format_change = 1;
2861 elevate_update_type(&update_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
2862 }
2863
2864 if (u->plane_info->per_pixel_alpha != u->surface->per_pixel_alpha) {
2865 update_bits->per_pixel_alpha_change = 1;
2866 elevate_update_type(&update_type, UPDATE_TYPE_MED, LOCK_DESCRIPTOR_STREAM);
2867 }
2868
2869 if (u->plane_info->global_alpha_value != u->surface->global_alpha_value) {
2870 update_bits->global_alpha_change = 1;
2871 elevate_update_type(&update_type, UPDATE_TYPE_MED, LOCK_DESCRIPTOR_STREAM);
2872 }
2873
2874 if (u->plane_info->dcc.enable != u->surface->dcc.enable
2875 || u->plane_info->dcc.dcc_ind_blk != u->surface->dcc.dcc_ind_blk
2876 || u->plane_info->dcc.meta_pitch != u->surface->dcc.meta_pitch) {
2877 /* During DCC on/off, stutter period is calculated before
2878 * DCC has fully transitioned. This results in incorrect
2879 * stutter period calculation. Triggering a full update will
2880 * recalculate stutter period.
2881 */
2882 update_bits->dcc_change = 1;
2883 elevate_update_type(&update_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
2884 }
2885
2886 if (resource_pixel_format_to_bpp(u->plane_info->format) !=
2887 resource_pixel_format_to_bpp(u->surface->format)) {
2888 /* different bytes per element will require full bandwidth
2889 * and DML calculation
2890 */
2891 update_bits->bpp_change = 1;
2892 elevate_update_type(&update_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
2893 }
2894
2895 if (u->plane_info->plane_size.surface_pitch != u->surface->plane_size.surface_pitch
2896 || u->plane_info->plane_size.chroma_pitch != u->surface->plane_size.chroma_pitch) {
2897 update_bits->plane_size_change = 1;
2898 elevate_update_type(&update_type, UPDATE_TYPE_MED, LOCK_DESCRIPTOR_STREAM);
2899 }
2900
2901 const struct dc_tiling_info *tiling = &u->plane_info->tiling_info;
2902
2903 if (memcmp(tiling, &u->surface->tiling_info, sizeof(*tiling)) != 0) {
2904 update_bits->swizzle_change = 1;
2905
2906 if (tiling->flags.avoid_full_update_on_tiling_change) {
2907 elevate_update_type(&update_type, UPDATE_TYPE_MED, LOCK_DESCRIPTOR_STREAM);
2908 } else {
2909 update_bits->bandwidth_change = 1;
2910 elevate_update_type(&update_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
2911 }
2912 }
2913
2914 /* This should be UPDATE_TYPE_FAST if nothing has changed. */
2915 return update_type;
2916 }
2917
get_scaling_info_update_type(const struct dc_check_config * check_config,const struct dc_surface_update * u)2918 static struct dc_update_descriptor get_scaling_info_update_type(
2919 const struct dc_check_config *check_config,
2920 const struct dc_surface_update *u)
2921 {
2922 struct pipe_update_bits *update_bits = &u->surface->update_bits;
2923 struct dc_update_descriptor update_type = { UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_NONE };
2924
2925 if (!u->scaling_info)
2926 return update_type;
2927
2928 // `scaling_info` present means at least `STREAM` lock is required
2929 elevate_update_type(&update_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
2930
2931 if (u->scaling_info->src_rect.width != u->surface->src_rect.width
2932 || u->scaling_info->src_rect.height != u->surface->src_rect.height
2933 || u->scaling_info->dst_rect.width != u->surface->dst_rect.width
2934 || u->scaling_info->dst_rect.height != u->surface->dst_rect.height
2935 || u->scaling_info->clip_rect.width != u->surface->clip_rect.width
2936 || u->scaling_info->clip_rect.height != u->surface->clip_rect.height
2937 || u->scaling_info->scaling_quality.integer_scaling !=
2938 u->surface->scaling_quality.integer_scaling) {
2939 update_bits->scaling_change = 1;
2940 elevate_update_type(&update_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
2941
2942 if (u->scaling_info->src_rect.width > u->surface->src_rect.width
2943 || u->scaling_info->src_rect.height > u->surface->src_rect.height)
2944 /* Making src rect bigger requires a bandwidth change */
2945 update_bits->clock_change = 1;
2946
2947 if ((u->scaling_info->dst_rect.width < u->surface->dst_rect.width
2948 || u->scaling_info->dst_rect.height < u->surface->dst_rect.height)
2949 && (u->scaling_info->dst_rect.width < u->surface->src_rect.width
2950 || u->scaling_info->dst_rect.height < u->surface->src_rect.height))
2951 /* Making dst rect smaller requires a bandwidth change */
2952 update_bits->bandwidth_change = 1;
2953
2954 if (u->scaling_info->src_rect.width > (int)check_config->max_optimizable_video_width &&
2955 (u->scaling_info->clip_rect.width > u->surface->clip_rect.width ||
2956 u->scaling_info->clip_rect.height > u->surface->clip_rect.height))
2957 /* Changing clip size of a large surface may result in MPC slice count change */
2958 update_bits->bandwidth_change = 1;
2959 }
2960
2961 if (u->scaling_info->src_rect.x != u->surface->src_rect.x
2962 || u->scaling_info->src_rect.y != u->surface->src_rect.y
2963 || u->scaling_info->clip_rect.x != u->surface->clip_rect.x
2964 || u->scaling_info->clip_rect.y != u->surface->clip_rect.y
2965 || u->scaling_info->dst_rect.x != u->surface->dst_rect.x
2966 || u->scaling_info->dst_rect.y != u->surface->dst_rect.y) {
2967 elevate_update_type(&update_type, UPDATE_TYPE_MED, LOCK_DESCRIPTOR_STREAM);
2968 update_bits->position_change = 1;
2969 }
2970
2971 return update_type;
2972 }
2973
det_surface_update(const struct dc_check_config * check_config,struct dc_surface_update * u)2974 static struct dc_update_descriptor det_surface_update(
2975 const struct dc_check_config *check_config,
2976 struct dc_surface_update *u)
2977 {
2978 struct dc_update_descriptor overall_type = { UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_NONE };
2979 struct pipe_update_bits *update_bits = &u->surface->update_bits;
2980
2981 if (u->surface->force_full_update) {
2982 dc_pipe_update_bits_set_full(update_bits);
2983 elevate_update_type(&overall_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
2984 return overall_type;
2985 }
2986
2987 dc_pipe_update_bits_clear(update_bits);
2988
2989 struct dc_update_descriptor inner_type = get_plane_info_update_type(u);
2990 elevate_update_type(&overall_type, inner_type.update_type, inner_type.lock_descriptor);
2991
2992 inner_type = get_scaling_info_update_type(check_config, u);
2993 elevate_update_type(&overall_type, inner_type.update_type, inner_type.lock_descriptor);
2994
2995 if (u->flip_addr) {
2996 update_bits->addr_update = 1;
2997 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
2998
2999 if (u->flip_addr->address.tmz_surface != u->surface->address.tmz_surface) {
3000 update_bits->tmz_changed = 1;
3001 elevate_update_type(&overall_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
3002 }
3003 }
3004 if (u->in_transfer_func) {
3005 update_bits->in_transfer_func_change = 1;
3006 elevate_update_type(&overall_type, UPDATE_TYPE_MED, LOCK_DESCRIPTOR_STREAM);
3007 }
3008
3009 if (u->input_csc_color_matrix) {
3010 update_bits->input_csc_change = 1;
3011 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3012 }
3013
3014 if (u->cursor_csc_color_matrix) {
3015 update_bits->cursor_csc_color_matrix_change = 1;
3016 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3017 }
3018
3019 if (u->coeff_reduction_factor) {
3020 update_bits->coeff_reduction_change = 1;
3021 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3022 }
3023
3024 if (u->gamut_remap_matrix) {
3025 update_bits->gamut_remap_change = 1;
3026 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3027 }
3028
3029 if ((u->cm && (u->cm->flags.bits.blend_enable ||
3030 u->cm->flags.bits.blend_enable != u->surface->cm.flags.bits.blend_enable)) ||
3031 (u->gamma && dce_use_lut(u->plane_info ? u->plane_info->format : u->surface->format))) {
3032 update_bits->gamma_change = 1;
3033 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3034 }
3035
3036 if (u->cm && (u->cm->flags.bits.lut3d_enable || u->surface->cm.flags.bits.lut3d_enable)) {
3037 update_bits->lut_3d = 1;
3038 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3039 }
3040
3041 if (u->cm && u->cm->flags.bits.lut3d_dma_enable != u->surface->cm.flags.bits.lut3d_dma_enable &&
3042 u->cm->flags.bits.lut3d_enable && u->surface->cm.flags.bits.lut3d_enable) {
3043 /* Toggling 3DLUT loading between DMA and Host is illegal */
3044 BREAK_TO_DEBUGGER();
3045 }
3046
3047 if (u->cm && u->cm->flags.bits.lut3d_enable && !u->cm->flags.bits.lut3d_dma_enable) {
3048 /* Host loading 3DLUT requires full update but only stream lock */
3049 elevate_update_type(&overall_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_STREAM);
3050 }
3051
3052 if (u->hdr_mult.value)
3053 if (u->hdr_mult.value != u->surface->hdr_mult.value) {
3054 // TODO: Should be fast?
3055 update_bits->hdr_mult = 1;
3056 elevate_update_type(&overall_type, UPDATE_TYPE_MED, LOCK_DESCRIPTOR_STREAM);
3057 }
3058
3059 if (u->sdr_white_level_nits)
3060 if (u->sdr_white_level_nits != u->surface->sdr_white_level_nits) {
3061 // TODO: Should be fast?
3062 update_bits->sdr_white_level_nits = 1;
3063 elevate_update_type(&overall_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
3064 }
3065
3066 if (u->cm_hist_control) {
3067 update_bits->cm_hist_change = 1;
3068 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3069 }
3070
3071 if (u->cm) {
3072 const union dc_plane_cm_flags blend_only_flags = {
3073 .bits = {
3074 .blend_enable = 1,
3075 }
3076 };
3077
3078 if ((u->cm->flags.all != blend_only_flags.all && u->cm->flags.all != 0) ||
3079 (u->surface->cm.flags.all != blend_only_flags.all && u->surface->cm.flags.all != 0)) {
3080 elevate_update_type(&overall_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
3081 }
3082 }
3083
3084 if (check_config->enable_legacy_fast_update &&
3085 (update_bits->gamma_change ||
3086 update_bits->gamut_remap_change ||
3087 update_bits->input_csc_change ||
3088 update_bits->cm_hist_change ||
3089 update_bits->coeff_reduction_change ||
3090 update_bits->cursor_csc_color_matrix_change)) {
3091 elevate_update_type(&overall_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
3092 }
3093 return overall_type;
3094 }
3095
3096 /* May need to flip the desktop plane in cases where MPO plane receives a flip but desktop plane doesn't
3097 * while both planes are flip_immediate
3098 */
force_immediate_gsl_plane_flip(struct dc * dc,struct dc_surface_update * updates,int surface_count)3099 static void force_immediate_gsl_plane_flip(struct dc *dc, struct dc_surface_update *updates, int surface_count)
3100 {
3101 (void)dc;
3102 bool has_flip_immediate_plane = false;
3103 int i;
3104
3105 for (i = 0; i < surface_count; i++) {
3106 if (updates[i].surface->flip_immediate) {
3107 has_flip_immediate_plane = true;
3108 break;
3109 }
3110 }
3111
3112 if (has_flip_immediate_plane && surface_count > 1) {
3113 for (i = 0; i < surface_count; i++) {
3114 if (updates[i].surface->flip_immediate)
3115 updates[i].surface->update_bits.addr_update = 1;
3116 }
3117 }
3118 }
3119
check_update_surfaces_for_stream(const struct dc_check_config * check_config,struct dc_surface_update * updates,int surface_count,struct dc_stream_update * stream_update)3120 static struct dc_update_descriptor check_update_surfaces_for_stream(
3121 const struct dc_check_config *check_config,
3122 struct dc_surface_update *updates,
3123 int surface_count,
3124 struct dc_stream_update *stream_update)
3125 {
3126 struct dc_update_descriptor overall_type = { UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_NONE };
3127
3128 /* When countdown finishes, promote this flip to full to trigger deferred final transition */
3129 if (check_config->deferred_transition_state && !check_config->transition_countdown_to_steady_state) {
3130 elevate_update_type(&overall_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
3131 }
3132
3133 if (stream_update && stream_update->pending_test_pattern) {
3134 elevate_update_type(&overall_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
3135 }
3136
3137 if (stream_update && stream_update->hw_cursor_req) {
3138 elevate_update_type(&overall_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
3139 }
3140
3141 /* some stream updates require passive update */
3142 if (stream_update) {
3143 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3144
3145 union stream_update_flags *su_flags = &stream_update->stream->update_flags;
3146
3147 if ((stream_update->src.height != 0 && stream_update->src.width != 0) ||
3148 (stream_update->dst.height != 0 && stream_update->dst.width != 0) ||
3149 stream_update->integer_scaling_update)
3150 su_flags->bits.scaling = 1;
3151
3152 if (check_config->enable_legacy_fast_update && stream_update->out_transfer_func)
3153 su_flags->bits.out_tf = 1;
3154
3155 if (stream_update->abm_level)
3156 su_flags->bits.abm_level = 1;
3157
3158 if (stream_update->dpms_off) {
3159 su_flags->bits.dpms_off = 1;
3160 elevate_update_type(&overall_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL | LOCK_DESCRIPTOR_LINK);
3161 }
3162
3163 if (check_config->enable_legacy_fast_update && stream_update->gamut_remap)
3164 su_flags->bits.gamut_remap = 1;
3165
3166 if (stream_update->wb_update)
3167 su_flags->bits.wb_update = 1;
3168
3169 if (stream_update->dsc_config)
3170 su_flags->bits.dsc_changed = 1;
3171
3172 if (stream_update->mst_bw_update)
3173 su_flags->bits.mst_bw = 1;
3174
3175 if (stream_update->stream->freesync_on_desktop &&
3176 (stream_update->vrr_infopacket || stream_update->allow_freesync ||
3177 stream_update->vrr_active_variable || stream_update->vrr_active_fixed))
3178 su_flags->bits.fams_changed = 1;
3179
3180 if (stream_update->scaler_sharpener_update)
3181 su_flags->bits.scaler_sharpener = 1;
3182
3183 if (stream_update->sharpening_required)
3184 su_flags->bits.sharpening_required = 1;
3185
3186 if (stream_update->output_color_space)
3187 su_flags->bits.out_csc = 1;
3188
3189 // TODO: Make each elevation explicit, as to not override fast stream in crct_timing_adjust
3190 if (su_flags->raw)
3191 elevate_update_type(&overall_type, UPDATE_TYPE_FULL, LOCK_DESCRIPTOR_GLOBAL);
3192
3193 // Non-global cases
3194
3195 if (stream_update->gamut_remap) {
3196 su_flags->bits.gamut_remap = 1;
3197 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3198 }
3199
3200 if ((stream_update->hdr_static_metadata && !stream_update->stream->use_dynamic_meta) ||
3201 stream_update->output_color_space ||
3202 stream_update->vrr_infopacket ||
3203 stream_update->vsc_infopacket ||
3204 stream_update->vsp_infopacket ||
3205 stream_update->hfvsif_infopacket ||
3206 stream_update->adaptive_sync_infopacket ||
3207 stream_update->vtem_infopacket ||
3208 stream_update->avi_infopacket) {
3209 su_flags->bits.info_frame = 1;
3210 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3211 }
3212
3213 if (stream_update->hdr_static_metadata && stream_update->stream->use_dynamic_meta) {
3214 su_flags->bits.dmdata = 1;
3215 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3216 }
3217
3218 if (stream_update->output_csc_transform) {
3219 su_flags->bits.out_csc = 1;
3220 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3221 }
3222
3223 if (!check_config->enable_legacy_fast_update && stream_update->out_transfer_func) {
3224 su_flags->bits.out_tf = 1;
3225 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3226 }
3227
3228 if (stream_update->periodic_interrupt) {
3229 su_flags->bits.periodic_interrupt = 1;
3230 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3231 }
3232
3233 if (stream_update->dither_option) {
3234 su_flags->bits.dither = 1;
3235 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3236 }
3237
3238 if (stream_update->cursor_attributes) {
3239 su_flags->bits.cursor_attr = 1;
3240 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3241 }
3242
3243 if (stream_update->cursor_position) {
3244 su_flags->bits.cursor_pos = 1;
3245 elevate_update_type(&overall_type, UPDATE_TYPE_FAST, LOCK_DESCRIPTOR_STREAM);
3246 }
3247 }
3248
3249 for (int i = 0 ; i < surface_count; i++) {
3250 struct dc_update_descriptor inner_type =
3251 det_surface_update(check_config, &updates[i]);
3252
3253 elevate_update_type(&overall_type, inner_type.update_type, inner_type.lock_descriptor);
3254 }
3255
3256 return overall_type;
3257 }
3258
3259 /**
3260 * dc_check_state_update - Classify a dc_state_update by locking / re-entrancy requirements.
3261 * @check_config: ASIC capabilities and display configuration context
3262 * @updates: root update object describing the full desired commit
3263 *
3264 * Determines whether the update requires a fast, medium, or full lock
3265 * by inspecting the stream, stream_update, and surface_updates carried on
3266 * the root object. A probe update elevates the result to at least MED with
3267 * the PROBE lock, so a probe-carrying commit takes the probe mutex.
3268 *
3269 * Return: dc_update_descriptor with update_type and lock_descriptor.
3270 */
dc_check_state_update(const struct dc_check_config * check_config,const struct dc_state_update * updates)3271 struct dc_update_descriptor dc_check_state_update(
3272 const struct dc_check_config *check_config,
3273 const struct dc_state_update *updates)
3274 {
3275 struct dc_update_descriptor desc = {0};
3276
3277 if (updates->stream_update)
3278 stream_update_flags_clear(&updates->stream_update->stream->update_flags);
3279 for (int i = 0; i < updates->surface_count; i++)
3280 dc_pipe_update_bits_clear(&updates->surface_updates[i].surface->update_bits);
3281
3282 desc = check_update_surfaces_for_stream(check_config, updates->surface_updates,
3283 updates->surface_count, updates->stream_update);
3284
3285 if (updates->probe_updates && updates->probe_updates->probe_count > 0)
3286 elevate_update_type(&desc, UPDATE_TYPE_MED, LOCK_DESCRIPTOR_PROBE);
3287
3288 return desc;
3289 }
3290
3291 /**
3292 * dc_check_update_surfaces_for_stream - Shim for dc_check_state_update.
3293 * @check_config: ASIC capabilities and display configuration context
3294 * @updates: array of surface update descriptors
3295 * @surface_count: number of entries in @updates
3296 * @stream_update: optional stream update
3297 *
3298 * Packs the individual arguments into a dc_state_update and forwards to
3299 * dc_check_state_update(). Preserved for out-of-tree and incremental callers.
3300 *
3301 * Return: dc_update_descriptor with update_type and lock_descriptor.
3302 */
dc_check_update_surfaces_for_stream(const struct dc_check_config * check_config,struct dc_surface_update * updates,int surface_count,struct dc_stream_update * stream_update)3303 struct dc_update_descriptor dc_check_update_surfaces_for_stream(
3304 const struct dc_check_config *check_config,
3305 struct dc_surface_update *updates,
3306 int surface_count,
3307 struct dc_stream_update *stream_update)
3308 {
3309 struct dc_state_update root = {
3310 .stream = stream_update ? stream_update->stream : NULL,
3311 .stream_update = stream_update,
3312 .surface_updates = updates,
3313 .surface_count = surface_count,
3314 .probe_updates = NULL
3315 };
3316
3317 return dc_check_state_update(check_config, &root);
3318 }
3319
stream_get_status(struct dc_state * ctx,struct dc_stream_state * stream)3320 static struct dc_stream_status *stream_get_status(
3321 struct dc_state *ctx,
3322 struct dc_stream_state *stream)
3323 {
3324 uint8_t i;
3325
3326 for (i = 0; i < ctx->stream_count; i++) {
3327 if (stream == ctx->streams[i]) {
3328 return &ctx->stream_status[i];
3329 }
3330 }
3331
3332 return NULL;
3333 }
3334
3335 static const enum dc_update_type update_surface_trace_level = UPDATE_TYPE_FULL;
3336
copy_surface_update_to_plane(struct dc_plane_state * surface,struct dc_surface_update * srf_update)3337 static void copy_surface_update_to_plane(
3338 struct dc_plane_state *surface,
3339 struct dc_surface_update *srf_update)
3340 {
3341 if (srf_update->flip_addr) {
3342 surface->address = srf_update->flip_addr->address;
3343 surface->flip_immediate =
3344 srf_update->flip_addr->flip_immediate;
3345 surface->time.time_elapsed_in_us[surface->time.index] =
3346 (unsigned int)(srf_update->flip_addr->flip_timestamp_in_us -
3347 surface->time.prev_update_time_in_us);
3348 surface->time.prev_update_time_in_us =
3349 (unsigned int)srf_update->flip_addr->flip_timestamp_in_us;
3350 surface->time.index++;
3351 if (surface->time.index >= DC_PLANE_UPDATE_TIMES_MAX)
3352 surface->time.index = 0;
3353
3354 surface->triplebuffer_flips = srf_update->flip_addr->triplebuffer_flips;
3355 }
3356
3357 if (srf_update->scaling_info) {
3358 surface->scaling_quality =
3359 srf_update->scaling_info->scaling_quality;
3360 surface->dst_rect =
3361 srf_update->scaling_info->dst_rect;
3362 surface->src_rect =
3363 srf_update->scaling_info->src_rect;
3364 surface->clip_rect =
3365 srf_update->scaling_info->clip_rect;
3366 }
3367
3368 if (srf_update->plane_info) {
3369 surface->color_space =
3370 srf_update->plane_info->color_space;
3371 surface->format =
3372 srf_update->plane_info->format;
3373 surface->plane_size =
3374 srf_update->plane_info->plane_size;
3375 surface->rotation =
3376 srf_update->plane_info->rotation;
3377 surface->horizontal_mirror =
3378 srf_update->plane_info->horizontal_mirror;
3379 surface->stereo_format =
3380 srf_update->plane_info->stereo_format;
3381 surface->tiling_info =
3382 srf_update->plane_info->tiling_info;
3383 surface->visible =
3384 srf_update->plane_info->visible;
3385 surface->per_pixel_alpha =
3386 srf_update->plane_info->per_pixel_alpha;
3387 surface->global_alpha =
3388 srf_update->plane_info->global_alpha;
3389 surface->global_alpha_value =
3390 srf_update->plane_info->global_alpha_value;
3391 surface->dcc =
3392 srf_update->plane_info->dcc;
3393 surface->layer_index =
3394 srf_update->plane_info->layer_index;
3395 surface->scaling_linearity =
3396 srf_update->plane_info->scaling_linearity;
3397 surface->cositing =
3398 srf_update->plane_info->cositing;
3399 }
3400
3401 if (srf_update->gamma) {
3402 memcpy(&surface->gamma_correction.entries,
3403 &srf_update->gamma->entries,
3404 sizeof(struct dc_gamma_entries));
3405 surface->gamma_correction.is_identity =
3406 srf_update->gamma->is_identity;
3407 surface->gamma_correction.num_entries =
3408 srf_update->gamma->num_entries;
3409 surface->gamma_correction.type =
3410 srf_update->gamma->type;
3411 }
3412 if (srf_update->cm_hist_control) {
3413 memcpy(&surface->cm_hist_control,
3414 srf_update->cm_hist_control,
3415 sizeof(surface->cm_hist_control));
3416 }
3417
3418 if (srf_update->in_transfer_func) {
3419 surface->in_transfer_func.sdr_ref_white_level =
3420 srf_update->in_transfer_func->sdr_ref_white_level;
3421 surface->in_transfer_func.tf =
3422 srf_update->in_transfer_func->tf;
3423 surface->in_transfer_func.type =
3424 srf_update->in_transfer_func->type;
3425 memcpy(&surface->in_transfer_func.tf_pts,
3426 &srf_update->in_transfer_func->tf_pts,
3427 sizeof(struct dc_transfer_func_distributed_points));
3428 }
3429
3430 /* Shaper, 3DLUT, 1DLUT */
3431 if (srf_update->cm) {
3432 struct kref refcount = surface->cm.refcount;
3433
3434 memcpy(&surface->cm, srf_update->cm, sizeof(surface->cm));
3435 surface->cm.refcount = refcount;
3436
3437 }
3438
3439 if (srf_update->hdr_mult.value)
3440 surface->hdr_mult =
3441 srf_update->hdr_mult;
3442
3443 if (srf_update->sdr_white_level_nits)
3444 surface->sdr_white_level_nits =
3445 srf_update->sdr_white_level_nits;
3446
3447 if (srf_update->input_csc_color_matrix)
3448 surface->input_csc_color_matrix =
3449 *srf_update->input_csc_color_matrix;
3450
3451 if (srf_update->coeff_reduction_factor)
3452 surface->coeff_reduction_factor =
3453 *srf_update->coeff_reduction_factor;
3454
3455 if (srf_update->gamut_remap_matrix)
3456 surface->gamut_remap_matrix =
3457 *srf_update->gamut_remap_matrix;
3458
3459 if (srf_update->cursor_csc_color_matrix)
3460 surface->cursor_csc_color_matrix =
3461 *srf_update->cursor_csc_color_matrix;
3462
3463 if (srf_update->bias_and_scale.bias_and_scale_valid)
3464 surface->bias_and_scale =
3465 srf_update->bias_and_scale;
3466 }
3467
copy_stream_update_to_stream(struct dc * dc,struct dc_state * context,struct dc_stream_state * stream,struct dc_stream_update * update)3468 static void copy_stream_update_to_stream(struct dc *dc,
3469 struct dc_state *context,
3470 struct dc_stream_state *stream,
3471 struct dc_stream_update *update)
3472 {
3473 (void)context;
3474 struct dc_context *dc_ctx = dc->ctx;
3475
3476 if (update == NULL || stream == NULL)
3477 return;
3478
3479 if (update->src.height && update->src.width)
3480 stream->src = update->src;
3481
3482 if (update->dst.height && update->dst.width)
3483 stream->dst = update->dst;
3484
3485 if (update->out_transfer_func) {
3486 stream->out_transfer_func.sdr_ref_white_level =
3487 update->out_transfer_func->sdr_ref_white_level;
3488 stream->out_transfer_func.tf = update->out_transfer_func->tf;
3489 stream->out_transfer_func.type =
3490 update->out_transfer_func->type;
3491 memcpy(&stream->out_transfer_func.tf_pts,
3492 &update->out_transfer_func->tf_pts,
3493 sizeof(struct dc_transfer_func_distributed_points));
3494 }
3495
3496 if (update->hdr_static_metadata)
3497 stream->hdr_static_metadata = *update->hdr_static_metadata;
3498
3499 if (update->abm_level)
3500 stream->abm_level = *update->abm_level;
3501
3502 if (update->periodic_interrupt)
3503 stream->periodic_interrupt = *update->periodic_interrupt;
3504
3505 if (update->gamut_remap)
3506 stream->gamut_remap_matrix = *update->gamut_remap;
3507
3508 /* Note: this being updated after mode set is currently not a use case
3509 * however if it arises OCSC would need to be reprogrammed at the
3510 * minimum
3511 */
3512 if (update->output_color_space)
3513 stream->output_color_space = *update->output_color_space;
3514
3515 if (update->output_csc_transform)
3516 stream->csc_color_matrix = *update->output_csc_transform;
3517
3518 if (update->vrr_infopacket)
3519 stream->vrr_infopacket = *update->vrr_infopacket;
3520
3521 if (update->hw_cursor_req)
3522 stream->hw_cursor_req = *update->hw_cursor_req;
3523
3524 if (update->allow_freesync)
3525 stream->allow_freesync = *update->allow_freesync;
3526
3527 if (update->vrr_active_variable)
3528 stream->vrr_active_variable = *update->vrr_active_variable;
3529
3530 if (update->vrr_active_fixed)
3531 stream->vrr_active_fixed = *update->vrr_active_fixed;
3532
3533 if (update->crtc_timing_adjust) {
3534 if (stream->adjust.v_total_min != update->crtc_timing_adjust->v_total_min ||
3535 stream->adjust.v_total_max != update->crtc_timing_adjust->v_total_max ||
3536 stream->adjust.timing_adjust_pending)
3537 update->crtc_timing_adjust->timing_adjust_pending = true;
3538 stream->adjust = *update->crtc_timing_adjust;
3539 update->crtc_timing_adjust->timing_adjust_pending = false;
3540 }
3541
3542 if (update->dpms_off)
3543 stream->dpms_off = *update->dpms_off;
3544
3545 if (update->hfvsif_infopacket)
3546 stream->hfvsif_infopacket = *update->hfvsif_infopacket;
3547
3548 if (update->vtem_infopacket)
3549 stream->vtem_infopacket = *update->vtem_infopacket;
3550
3551 if (update->vsc_infopacket)
3552 stream->vsc_infopacket = *update->vsc_infopacket;
3553
3554 if (update->vsp_infopacket)
3555 stream->vsp_infopacket = *update->vsp_infopacket;
3556
3557 if (update->adaptive_sync_infopacket)
3558 stream->adaptive_sync_infopacket = *update->adaptive_sync_infopacket;
3559
3560 if (update->avi_infopacket)
3561 stream->avi_infopacket = *update->avi_infopacket;
3562
3563 if (update->dither_option)
3564 stream->dither_option = *update->dither_option;
3565
3566 if (update->pending_test_pattern)
3567 stream->test_pattern = *update->pending_test_pattern;
3568 /* update current stream with writeback info */
3569 if (update->wb_update) {
3570 unsigned int i;
3571
3572 stream->num_wb_info = update->wb_update->num_wb_info;
3573 ASSERT(stream->num_wb_info <= MAX_DWB_PIPES);
3574 for (i = 0; i < stream->num_wb_info; i++)
3575 stream->writeback_info[i] =
3576 update->wb_update->writeback_info[i];
3577 }
3578 if (update->dsc_config) {
3579 struct dc_dsc_config old_dsc_cfg = stream->timing.dsc_cfg;
3580 uint32_t old_dsc_enabled = stream->timing.flags.DSC;
3581 uint32_t enable_dsc = (update->dsc_config->num_slices_h != 0 &&
3582 update->dsc_config->num_slices_v != 0);
3583
3584 /* Use temporarry context for validating new DSC config */
3585 struct dc_state *dsc_validate_context = dc_state_create_copy(dc->current_state);
3586
3587 if (dsc_validate_context) {
3588 stream->timing.dsc_cfg = *update->dsc_config;
3589 stream->timing.flags.DSC = enable_dsc;
3590 if (dc->res_pool->funcs->validate_bandwidth(dc, dsc_validate_context,
3591 DC_VALIDATE_MODE_ONLY) != DC_OK) {
3592 stream->timing.dsc_cfg = old_dsc_cfg;
3593 stream->timing.flags.DSC = old_dsc_enabled;
3594 update->dsc_config = NULL;
3595 }
3596
3597 dc_state_release(dsc_validate_context);
3598 } else {
3599 DC_ERROR("Failed to allocate new validate context for DSC change\n");
3600 update->dsc_config = NULL;
3601 }
3602 }
3603 if (update->scaler_sharpener_update)
3604 stream->scaler_sharpener_update = *update->scaler_sharpener_update;
3605 if (update->sharpening_required)
3606 stream->sharpening_required = *update->sharpening_required;
3607
3608 if (update->blending_linearity)
3609 stream->blending_linearity = *update->blending_linearity;
3610
3611 if (update->drr_trigger_mode) {
3612 stream->drr_trigger_mode = *update->drr_trigger_mode;
3613 }
3614 }
3615
backup_planes_and_stream_state(struct dc_scratch_space * scratch,struct dc_stream_state * stream)3616 static void backup_planes_and_stream_state(
3617 struct dc_scratch_space *scratch,
3618 struct dc_stream_state *stream)
3619 {
3620 int i;
3621 struct dc_stream_status *status = dc_stream_get_status(stream);
3622
3623 if (!status)
3624 return;
3625
3626 for (i = 0; i < status->plane_count; i++) {
3627 dc_plane_copy_config(&scratch->plane_states[i], status->plane_states[i]);
3628 }
3629 scratch->stream_state = *stream;
3630 }
3631
restore_planes_and_stream_state(struct dc_scratch_space * scratch,struct dc_stream_state * stream)3632 static void restore_planes_and_stream_state(
3633 struct dc_scratch_space *scratch,
3634 struct dc_stream_state *stream)
3635 {
3636 int i;
3637 struct dc_stream_status *status = dc_stream_get_status(stream);
3638
3639 if (!status)
3640 return;
3641
3642 for (i = 0; i < status->plane_count; i++) {
3643 dc_plane_copy_config(status->plane_states[i], &scratch->plane_states[i]);
3644 }
3645
3646 // refcount is persistent
3647 struct kref temp_refcount = stream->refcount;
3648 *stream = scratch->stream_state;
3649 stream->refcount = temp_refcount;
3650 }
3651
3652 /**
3653 * update_seamless_boot_flags() - Helper function for updating seamless boot flags
3654 *
3655 * @dc: Current DC state
3656 * @context: New DC state to be programmed
3657 * @surface_count: Number of surfaces that have an updated
3658 * @stream: Corresponding stream to be updated in the current flip
3659 *
3660 * Updating seamless boot flags do not need to be part of the commit sequence. This
3661 * helper function will update the seamless boot flags on each flip (if required)
3662 * outside of the HW commit sequence (fast or slow).
3663 *
3664 * Return: void
3665 */
update_seamless_boot_flags(struct dc * dc,struct dc_state * context,int surface_count,struct dc_stream_state * stream)3666 static void update_seamless_boot_flags(struct dc *dc,
3667 struct dc_state *context,
3668 int surface_count,
3669 struct dc_stream_state *stream)
3670 {
3671 if (get_seamless_boot_stream_count(context) > 0 && (surface_count > 0 || stream->dpms_off)) {
3672 /* Optimize seamless boot flag keeps clocks and watermarks high until
3673 * first flip. After first flip, optimization is required to lower
3674 * bandwidth. Important to note that it is expected UEFI will
3675 * only light up a single display on POST, therefore we only expect
3676 * one stream with seamless boot flag set.
3677 */
3678 if (stream->apply_seamless_boot_optimization) {
3679 stream->apply_seamless_boot_optimization = false;
3680
3681 if (get_seamless_boot_stream_count(context) == 0)
3682 dc->optimized_required = true;
3683 }
3684 }
3685 }
3686
3687 static bool full_update_required_weak(
3688 const struct dc *dc,
3689 const struct dc_surface_update *srf_updates,
3690 int surface_count,
3691 const struct dc_stream_update *stream_update,
3692 const struct dc_stream_state *stream);
3693
backup_and_set_minimal_pipe_split_policy(struct dc * dc,struct dc_state * context,struct pipe_split_policy_backup * policy)3694 static void backup_and_set_minimal_pipe_split_policy(struct dc *dc,
3695 struct dc_state *context,
3696 struct pipe_split_policy_backup *policy)
3697 {
3698 int i;
3699
3700 if (!dc->config.is_vmin_only_asic) {
3701 policy->mpc_policy = dc->debug.pipe_split_policy;
3702 dc->debug.pipe_split_policy = MPC_SPLIT_AVOID;
3703 }
3704 policy->dynamic_odm_policy = dc->debug.enable_single_display_2to1_odm_policy;
3705 dc->debug.enable_single_display_2to1_odm_policy = false;
3706 policy->subvp_policy = dc->debug.force_disable_subvp;
3707 dc->debug.force_disable_subvp = true;
3708 for (i = 0; i < context->stream_count; i++) {
3709 policy->force_odm[i] = context->streams[i]->debug.force_odm_combine_segments;
3710 if (context->streams[i]->debug.allow_transition_for_forced_odm)
3711 context->streams[i]->debug.force_odm_combine_segments = 0;
3712 }
3713 }
3714
restore_minimal_pipe_split_policy(struct dc * dc,struct dc_state * context,struct pipe_split_policy_backup * policy)3715 static void restore_minimal_pipe_split_policy(struct dc *dc,
3716 struct dc_state *context,
3717 struct pipe_split_policy_backup *policy)
3718 {
3719 uint8_t i;
3720
3721 if (!dc->config.is_vmin_only_asic)
3722 dc->debug.pipe_split_policy = policy->mpc_policy;
3723 dc->debug.enable_single_display_2to1_odm_policy =
3724 policy->dynamic_odm_policy;
3725 dc->debug.force_disable_subvp = policy->subvp_policy;
3726 for (i = 0; i < context->stream_count; i++)
3727 context->streams[i]->debug.force_odm_combine_segments = policy->force_odm[i];
3728 }
3729
3730 /**
3731 * update_planes_and_stream_state() - The function takes planes and stream
3732 * updates as inputs and determines the appropriate update type. If update type
3733 * is FULL, the function allocates a new context, populates and validates it.
3734 * Otherwise, it updates current dc context. The function will return both
3735 * new_context and new_update_type back to the caller. The function also backs
3736 * up both current and new contexts into corresponding dc state scratch memory.
3737 * TODO: The function does too many things, and even conditionally allocates dc
3738 * context memory implicitly. We should consider to break it down.
3739 *
3740 * @dc: Current DC state
3741 * @srf_updates: an array of surface updates
3742 * @surface_count: surface update count
3743 * @stream: Corresponding stream to be updated
3744 * @stream_update: stream update
3745 * @update_descriptor: describes what plane and stream changes to apply
3746 * @new_update_type: [out] determined update type by the function
3747 * @new_context: [out] new context allocated and validated if update type is
3748 * FULL, reference to current context if update type is less than FULL.
3749 *
3750 * Return: true if a valid update is populated into new_context, false
3751 * otherwise.
3752 */
update_planes_and_stream_state(struct dc * dc,struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_state * stream,struct dc_stream_update * stream_update,enum dc_update_type * new_update_type,struct dc_state ** new_context)3753 static bool update_planes_and_stream_state(struct dc *dc,
3754 struct dc_surface_update *srf_updates, int surface_count,
3755 struct dc_stream_state *stream,
3756 struct dc_stream_update *stream_update,
3757 enum dc_update_type *new_update_type,
3758 struct dc_state **new_context)
3759 {
3760 struct dc_state *context;
3761 int i;
3762 unsigned int j;
3763 enum dc_update_type update_type;
3764 const struct dc_stream_status *stream_status;
3765 struct dc_context *dc_ctx = dc->ctx;
3766
3767 stream_status = dc_stream_get_status(stream);
3768
3769 if (!stream_status) {
3770 if (surface_count) /* Only an error condition if surf_count non-zero*/
3771 ASSERT(false);
3772
3773 return false; /* Cannot commit surface to stream that is not committed */
3774 }
3775
3776 context = dc->current_state;
3777 update_type = dc_check_update_surfaces_for_stream(
3778 &dc->check_config, srf_updates, surface_count, stream_update).update_type;
3779 if (full_update_required_weak(dc, srf_updates, surface_count, stream_update, stream))
3780 update_type = UPDATE_TYPE_FULL;
3781
3782 /* It is possible to receive a flip for one plane while there are multiple flip_immediate planes in the same stream.
3783 * E.g. Desktop and MPO plane are flip_immediate but only the MPO plane received a flip
3784 * Force the other flip_immediate planes to flip so GSL doesn't wait for a flip that won't come.
3785 */
3786 force_immediate_gsl_plane_flip(dc, srf_updates, surface_count);
3787 if (update_type == UPDATE_TYPE_FULL)
3788 backup_planes_and_stream_state(&dc->scratch.current_state, stream);
3789
3790 /* update current stream with the new updates */
3791 copy_stream_update_to_stream(dc, context, stream, stream_update);
3792
3793 /* do not perform surface update if surface has invalid dimensions
3794 * (all zero) and no scaling_info is provided
3795 */
3796 if (surface_count > 0) {
3797 for (i = 0; i < surface_count; i++) {
3798 if ((srf_updates[i].surface->src_rect.width == 0 ||
3799 srf_updates[i].surface->src_rect.height == 0 ||
3800 srf_updates[i].surface->dst_rect.width == 0 ||
3801 srf_updates[i].surface->dst_rect.height == 0) &&
3802 (!srf_updates[i].scaling_info ||
3803 srf_updates[i].scaling_info->src_rect.width == 0 ||
3804 srf_updates[i].scaling_info->src_rect.height == 0 ||
3805 srf_updates[i].scaling_info->dst_rect.width == 0 ||
3806 srf_updates[i].scaling_info->dst_rect.height == 0)) {
3807 DC_ERROR("Invalid src/dst rects in surface update!\n");
3808 return false;
3809 }
3810 }
3811 }
3812
3813 if (update_type == UPDATE_TYPE_FULL) {
3814 if (stream_update) {
3815 uint32_t dsc_changed = stream_update->stream->update_flags.bits.dsc_changed;
3816 stream_update_flags_set_full(&stream_update->stream->update_flags);
3817 stream_update->stream->update_flags.bits.dsc_changed = dsc_changed;
3818 }
3819 for (i = 0; i < surface_count; i++)
3820 dc_pipe_update_bits_set_full(&srf_updates[i].surface->update_bits);
3821 }
3822
3823 if (update_type >= update_surface_trace_level)
3824 update_surface_trace(dc, srf_updates, surface_count);
3825
3826 for (i = 0; i < surface_count; i++)
3827 copy_surface_update_to_plane(srf_updates[i].surface, &srf_updates[i]);
3828
3829 if (update_type >= UPDATE_TYPE_FULL) {
3830 struct dc_plane_state *new_planes[MAX_SURFACES] = {0};
3831
3832 for (i = 0; i < surface_count; i++)
3833 new_planes[i] = srf_updates[i].surface;
3834
3835 /* initialize scratch memory for building context */
3836 context = dc_state_create_copy(dc->current_state);
3837 if (context == NULL) {
3838 DC_ERROR("Failed to allocate new validate context!\n");
3839 return false;
3840 }
3841
3842 /* For each full update, remove all existing phantom pipes first.
3843 * Ensures that we have enough pipes for newly added MPO planes
3844 */
3845 dc_state_remove_phantom_streams_and_planes(dc, context);
3846 dc_state_release_phantom_streams_and_planes(dc, context);
3847
3848 /*remove old surfaces from context */
3849 if (!dc_state_rem_all_planes_for_stream(dc, stream, context)) {
3850
3851 BREAK_TO_DEBUGGER();
3852 goto fail;
3853 }
3854
3855 /* add surface to context */
3856 if (!dc_state_add_all_planes_for_stream(dc, stream, new_planes, surface_count, context)) {
3857
3858 BREAK_TO_DEBUGGER();
3859 goto fail;
3860 }
3861 }
3862
3863 /* save update parameters into surface */
3864 for (i = 0; i < surface_count; i++) {
3865 struct dc_plane_state *surface = srf_updates[i].surface;
3866
3867 if (update_type != UPDATE_TYPE_MED)
3868 continue;
3869 if (surface->update_bits.position_change) {
3870 for (j = 0; j < dc->res_pool->pipe_count; j++) {
3871 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
3872
3873 if (pipe_ctx->plane_state != surface)
3874 continue;
3875
3876 resource_build_scaling_params(pipe_ctx);
3877 }
3878 }
3879 }
3880
3881 if (update_type == UPDATE_TYPE_FULL) {
3882 struct pipe_split_policy_backup policy;
3883 bool minimize = false;
3884
3885 if (dc->check_config.deferred_transition_state) {
3886 if (dc->check_config.transition_countdown_to_steady_state) {
3887 /* During countdown, all new contexts created as minimal transition states */
3888 minimize = true;
3889 } else {
3890 dc->check_config.deferred_transition_state = false;
3891 }
3892 }
3893
3894 if (minimize)
3895 backup_and_set_minimal_pipe_split_policy(dc, context, &policy);
3896
3897 if (dc->res_pool->funcs->validate_bandwidth(dc, context, DC_VALIDATE_MODE_AND_PROGRAMMING) != DC_OK) {
3898 if (minimize)
3899 restore_minimal_pipe_split_policy(dc, context, &policy);
3900 BREAK_TO_DEBUGGER();
3901 goto fail;
3902 }
3903
3904 if (minimize)
3905 restore_minimal_pipe_split_policy(dc, context, &policy);
3906 }
3907 update_seamless_boot_flags(dc, context, surface_count, stream);
3908
3909 *new_context = context;
3910 *new_update_type = update_type;
3911 if (update_type == UPDATE_TYPE_FULL)
3912 backup_planes_and_stream_state(&dc->scratch.new_state, stream);
3913
3914 return true;
3915
3916 fail:
3917 dc_state_release(context);
3918
3919 return false;
3920
3921 }
3922
program_cursor_attributes_sequence(struct dc * dc,struct dc_stream_state * stream,struct dc_state * context,struct block_sequence_state * seq_state)3923 static void program_cursor_attributes_sequence(
3924 struct dc *dc,
3925 struct dc_stream_state *stream,
3926 struct dc_state *context,
3927 struct block_sequence_state *seq_state)
3928 {
3929 int k;
3930 struct pipe_ctx *pipe_to_program = NULL;
3931 bool enable_cursor_offload = dc_dmub_srv_is_cursor_offload_enabled(dc);
3932
3933 for (k = 0; k < (int)dc->res_pool->pipe_count; k++) {
3934 struct pipe_ctx *tmp_pipe = &context->res_ctx.pipe_ctx[k];
3935
3936 if (tmp_pipe->stream != stream)
3937 continue;
3938
3939 if (!pipe_to_program) {
3940 pipe_to_program = tmp_pipe;
3941
3942 if (enable_cursor_offload && dc->hwss.begin_cursor_offload_update) {
3943 hwss_add_begin_cursor_offload_update(seq_state, dc, tmp_pipe);
3944 } else {
3945 hwss_add_cursor_lock(seq_state, dc, pipe_to_program, true);
3946 if (pipe_to_program->next_odm_pipe)
3947 hwss_add_cursor_lock(seq_state, dc, pipe_to_program->next_odm_pipe, true);
3948 }
3949 }
3950
3951 hwss_add_set_cursor_attribute(seq_state, dc, tmp_pipe);
3952 if (dc->ctx->dmub_srv)
3953 hwss_add_send_update_cursor_info_to_dmu(seq_state, tmp_pipe, k);
3954 if (dc->hwss.set_cursor_sdr_white_level)
3955 hwss_add_set_cursor_sdr_white_level(seq_state, dc, tmp_pipe);
3956 if (enable_cursor_offload && dc->hwss.update_cursor_offload_pipe)
3957 hwss_add_update_cursor_offload_pipe(seq_state, dc, tmp_pipe);
3958 }
3959
3960 if (pipe_to_program) {
3961 if (enable_cursor_offload && dc->hwss.commit_cursor_offload_update) {
3962 hwss_add_commit_cursor_offload_update(seq_state, dc, pipe_to_program);
3963 } else {
3964 hwss_add_cursor_lock(seq_state, dc, pipe_to_program, false);
3965 if (pipe_to_program->next_odm_pipe)
3966 hwss_add_cursor_lock(seq_state, dc, pipe_to_program->next_odm_pipe, false);
3967 }
3968 }
3969 }
3970
program_cursor_position_sequence(struct dc * dc,struct dc_stream_state * stream,struct dc_state * context,struct block_sequence_state * seq_state)3971 static void program_cursor_position_sequence(
3972 struct dc *dc,
3973 struct dc_stream_state *stream,
3974 struct dc_state *context,
3975 struct block_sequence_state *seq_state)
3976 {
3977 int k;
3978 struct pipe_ctx *pipe_to_program = NULL;
3979 bool enable_cursor_offload = dc_dmub_srv_is_cursor_offload_enabled(dc);
3980
3981 for (k = 0; k < (int)dc->res_pool->pipe_count; k++) {
3982 struct pipe_ctx *tmp_pipe = &context->res_ctx.pipe_ctx[k];
3983
3984 if (tmp_pipe->stream != stream ||
3985 (!tmp_pipe->plane_res.mi && !tmp_pipe->plane_res.hubp) ||
3986 !tmp_pipe->plane_state ||
3987 (!tmp_pipe->plane_res.xfm && !tmp_pipe->plane_res.dpp) ||
3988 (!tmp_pipe->plane_res.ipp && !tmp_pipe->plane_res.dpp))
3989 continue;
3990
3991 if (!pipe_to_program) {
3992 pipe_to_program = tmp_pipe;
3993
3994 if (enable_cursor_offload && dc->hwss.begin_cursor_offload_update)
3995 hwss_add_begin_cursor_offload_update(seq_state, dc, tmp_pipe);
3996 else
3997 hwss_add_cursor_lock(seq_state, dc, pipe_to_program, true);
3998 }
3999
4000 hwss_add_set_cursor_position(seq_state, dc, tmp_pipe);
4001 if (enable_cursor_offload && dc->hwss.update_cursor_offload_pipe)
4002 hwss_add_update_cursor_offload_pipe(seq_state, dc, tmp_pipe);
4003
4004 if (dc->ctx->dmub_srv)
4005 hwss_add_send_update_cursor_info_to_dmu(seq_state, tmp_pipe, k);
4006 }
4007
4008 if (pipe_to_program) {
4009 if (enable_cursor_offload && dc->hwss.commit_cursor_offload_update)
4010 hwss_add_commit_cursor_offload_update(seq_state, dc, pipe_to_program);
4011 else
4012 hwss_add_cursor_lock(seq_state, dc, pipe_to_program, false);
4013 }
4014 }
4015
add_update_info_frame_sequence(struct block_sequence_state * seq_state,struct pipe_ctx * pipe_ctx)4016 static void add_update_info_frame_sequence(
4017 struct block_sequence_state *seq_state,
4018 struct pipe_ctx *pipe_ctx)
4019 {
4020 bool is_hdmi_tmds;
4021 bool is_dp;
4022 bool is_hdmi_frl;
4023
4024 if (!pipe_ctx || !pipe_ctx->stream)
4025 return;
4026
4027 if (pipe_ctx->stream_res.stream_enc == NULL &&
4028 pipe_ctx->stream_res.hpo_frl_stream_enc == NULL)
4029 return;
4030
4031 is_hdmi_tmds = dc_is_hdmi_tmds_signal(pipe_ctx->stream->signal);
4032 is_dp = dc_is_dp_signal(pipe_ctx->stream->signal);
4033
4034 is_hdmi_frl = dc_is_hdmi_frl_signal(pipe_ctx->stream->signal);
4035 if (!is_hdmi_tmds && !is_dp && !is_hdmi_frl)
4036 return;
4037
4038 if (is_hdmi_tmds) {
4039 hwss_add_stream_enc_update_hdmi_info_packets(seq_state, pipe_ctx);
4040 return;
4041 }
4042
4043 if (is_hdmi_frl) {
4044 hwss_add_hpo_frl_stream_enc_update_hdmi_info_packets(seq_state, pipe_ctx);
4045 return;
4046 }
4047
4048 if (is_dp) {
4049 if (dp_is_128b_132b_signal(pipe_ctx)) {
4050 hwss_add_hpo_dp_stream_enc_update_dp_info_packets_sdp_line_num(seq_state, pipe_ctx);
4051 hwss_add_hpo_dp_stream_enc_update_dp_info_packets(seq_state, pipe_ctx);
4052 } else {
4053 hwss_add_stream_enc_update_dp_info_packets_sdp_line_num(seq_state, pipe_ctx);
4054 hwss_add_stream_enc_update_dp_info_packets(seq_state, pipe_ctx);
4055 }
4056 }
4057 }
4058
add_link_update_dsc_config_sequence(struct block_sequence_state * seq_state,struct pipe_ctx * pipe_ctx,struct dsc_config * dsc_cfg,struct dsc_optc_config * dsc_optc_cfg)4059 static void add_link_update_dsc_config_sequence(
4060 struct block_sequence_state *seq_state,
4061 struct pipe_ctx *pipe_ctx,
4062 struct dsc_config *dsc_cfg,
4063 struct dsc_optc_config *dsc_optc_cfg)
4064 {
4065 struct display_stream_compressor *dsc = pipe_ctx->stream_res.dsc;
4066 struct dc_stream_state *stream = pipe_ctx->stream;
4067 struct dc *dc = stream->ctx->dc;
4068 struct dccg *dccg = dc->res_pool->dccg;
4069 struct pipe_ctx *top_pipe = pipe_ctx;
4070 struct pipe_ctx *odm_pipe = NULL;
4071 int opp_cnt = 1;
4072 bool should_use_dto_dscclk = false;
4073 struct dsc_config dsc_pps_cfg;
4074 uint8_t *dsc_packed_pps = stream->dsc_packed_pps;
4075 int last_dsc_set_config_step = 0;
4076
4077 if (!stream->timing.flags.DSC || !dsc)
4078 return;
4079
4080 while (top_pipe->prev_odm_pipe)
4081 top_pipe = top_pipe->prev_odm_pipe;
4082
4083 for (odm_pipe = top_pipe->next_odm_pipe; odm_pipe; odm_pipe = odm_pipe->next_odm_pipe)
4084 opp_cnt++;
4085
4086 memset(dsc_cfg, 0, sizeof(*dsc_cfg));
4087 memset(dsc_optc_cfg, 0, sizeof(*dsc_optc_cfg));
4088
4089 dsc_cfg->pic_width = (stream->timing.h_addressable +
4090 top_pipe->dsc_padding_params.dsc_hactive_padding +
4091 stream->timing.h_border_left +
4092 stream->timing.h_border_right) / opp_cnt;
4093 dsc_cfg->pic_height = stream->timing.v_addressable +
4094 stream->timing.v_border_top +
4095 stream->timing.v_border_bottom;
4096 dsc_cfg->pixel_encoding = stream->timing.pixel_encoding;
4097 dsc_cfg->color_depth = stream->timing.display_color_depth;
4098 dsc_cfg->is_odm = top_pipe->next_odm_pipe ? true : false;
4099 dsc_cfg->dc_dsc_cfg = stream->timing.dsc_cfg;
4100 ASSERT(dsc_cfg->dc_dsc_cfg.num_slices_h % opp_cnt == 0);
4101 dsc_cfg->dc_dsc_cfg.num_slices_h /= opp_cnt;
4102 dsc_cfg->dsc_padding = 0;
4103
4104 if (dccg && dccg->funcs->set_dto_dscclk &&
4105 stream->timing.pix_clk_100hz > 480000)
4106 should_use_dto_dscclk = true;
4107
4108 if (should_use_dto_dscclk)
4109 hwss_add_dccg_set_dto_dscclk(seq_state, dccg, dsc->inst,
4110 dsc_cfg->dc_dsc_cfg.num_slices_h);
4111
4112 last_dsc_set_config_step = *seq_state->num_steps;
4113 hwss_add_dsc_set_config(seq_state, dsc, dsc_cfg, dsc_optc_cfg);
4114 hwss_add_dsc_enable_with_opp(seq_state, top_pipe);
4115
4116 for (odm_pipe = top_pipe->next_odm_pipe; odm_pipe; odm_pipe = odm_pipe->next_odm_pipe) {
4117 struct display_stream_compressor *odm_dsc = odm_pipe->stream_res.dsc;
4118
4119 if (should_use_dto_dscclk)
4120 hwss_add_dccg_set_dto_dscclk(seq_state, dccg, odm_dsc->inst,
4121 dsc_cfg->dc_dsc_cfg.num_slices_h);
4122
4123 last_dsc_set_config_step = *seq_state->num_steps;
4124 hwss_add_dsc_set_config(seq_state, odm_dsc, dsc_cfg, dsc_optc_cfg);
4125 hwss_add_dsc_enable_with_opp(seq_state, odm_pipe);
4126 }
4127
4128 if (dc_is_dp_signal(stream->signal) && !dp_is_128b_132b_signal(pipe_ctx))
4129 hwss_add_stream_enc_dp_set_dsc_config(seq_state,
4130 pipe_ctx->stream_res.stream_enc,
4131 &seq_state->steps[last_dsc_set_config_step].params.dsc_set_config_simple_params.dsc_optc_cfg);
4132
4133 hwss_add_tg_set_dsc_config(seq_state, top_pipe->stream_res.tg,
4134 &seq_state->steps[last_dsc_set_config_step].params.dsc_set_config_simple_params.dsc_optc_cfg, true);
4135
4136 memset(&dsc_pps_cfg, 0, sizeof(dsc_pps_cfg));
4137 dsc_pps_cfg.pic_width = stream->timing.h_addressable +
4138 stream->timing.h_border_left + stream->timing.h_border_right;
4139 dsc_pps_cfg.pic_height = stream->timing.v_addressable +
4140 stream->timing.v_border_top + stream->timing.v_border_bottom;
4141 dsc_pps_cfg.pixel_encoding = stream->timing.pixel_encoding;
4142 dsc_pps_cfg.color_depth = stream->timing.display_color_depth;
4143 dsc_pps_cfg.is_odm = top_pipe->next_odm_pipe ? true : false;
4144 dsc_pps_cfg.dc_dsc_cfg = stream->timing.dsc_cfg;
4145 dsc_pps_cfg.dsc_padding = top_pipe->dsc_padding_params.dsc_hactive_padding;
4146
4147 if (dsc->funcs->dsc_get_packed_pps) {
4148 dsc->funcs->dsc_get_packed_pps(dsc, &dsc_pps_cfg, dsc_packed_pps);
4149
4150 if (dc_is_dp_signal(stream->signal)) {
4151 if (dp_is_128b_132b_signal(pipe_ctx))
4152 hwss_add_hpo_dp_stream_enc_dp_set_dsc_pps_info_packet(seq_state,
4153 pipe_ctx->stream_res.hpo_dp_stream_enc,
4154 true, dsc_packed_pps, false);
4155 else
4156 hwss_add_stream_enc_dp_set_dsc_pps_info_packet(seq_state,
4157 pipe_ctx->stream_res.stream_enc,
4158 true, dsc_packed_pps, false);
4159 }
4160 else if (dc_is_hdmi_frl_signal(stream->signal)) {
4161 hwss_add_hpo_frl_stream_enc_set_dsc_config(seq_state,
4162 pipe_ctx->stream_res.hpo_frl_stream_enc,
4163 &stream->timing,
4164 dsc_packed_pps);
4165 }
4166 }
4167 }
4168
commit_planes_do_stream_update_sequence(struct dc * dc,struct dc_stream_state * stream,struct dc_stream_update * stream_update,enum dc_update_type update_type,struct dc_state * context,struct block_sequence block_sequence[MAX_HWSS_BLOCK_SEQUENCE_SIZE],unsigned int * num_steps)4169 static void commit_planes_do_stream_update_sequence(struct dc *dc,
4170 struct dc_stream_state *stream,
4171 struct dc_stream_update *stream_update,
4172 enum dc_update_type update_type,
4173 struct dc_state *context,
4174 struct block_sequence block_sequence[MAX_HWSS_BLOCK_SEQUENCE_SIZE],
4175 unsigned int *num_steps)
4176 {
4177 int j;
4178 struct block_sequence_state seq_state = { .steps = block_sequence, .num_steps = num_steps };
4179 unsigned int dsc_cfg_index = 0;
4180 *num_steps = 0; // Initialize to 0
4181
4182 // Stream updates
4183 for (j = 0; j < (int)dc->res_pool->pipe_count; j++) {
4184 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
4185
4186 if (resource_is_pipe_type(pipe_ctx, OTG_MASTER) && pipe_ctx->stream == stream) {
4187
4188 if (stream_update->periodic_interrupt && dc->hwss.setup_periodic_interrupt)
4189 hwss_add_setup_periodic_interrupt(&seq_state, dc, pipe_ctx);
4190
4191 if ((stream_update->hdr_static_metadata && !stream->use_dynamic_meta) ||
4192 stream_update->output_color_space ||
4193 stream_update->vrr_infopacket ||
4194 stream_update->vsc_infopacket ||
4195 stream_update->vsp_infopacket ||
4196 stream_update->hfvsif_infopacket ||
4197 stream_update->adaptive_sync_infopacket ||
4198 stream_update->vtem_infopacket ||
4199 stream_update->avi_infopacket) {
4200 resource_build_info_frame(pipe_ctx);
4201 add_update_info_frame_sequence(&seq_state, pipe_ctx);
4202
4203 if (dc_is_dp_signal(pipe_ctx->stream->signal))
4204 hwss_add_dp_trace_source_sequence(&seq_state,
4205 pipe_ctx->stream->link,
4206 DPCD_SOURCE_SEQ_AFTER_UPDATE_INFO_FRAME);
4207 }
4208
4209 if (stream_update->hdr_static_metadata &&
4210 stream->use_dynamic_meta &&
4211 dc->hwss.set_dmdata_attributes &&
4212 pipe_ctx->stream->dmdata_address.quad_part != 0)
4213 hwss_add_set_dmdata_attributes(&seq_state, pipe_ctx);
4214
4215 if (stream_update->gamut_remap)
4216 hwss_add_dpp_program_gamut_remap(&seq_state, pipe_ctx);
4217
4218 if (stream_update->output_csc_transform)
4219 hwss_add_program_output_csc(&seq_state, dc, pipe_ctx,
4220 stream->output_color_space,
4221 stream->csc_color_matrix.matrix,
4222 pipe_ctx->stream_res.opp->inst);
4223
4224 if (stream_update->dither_option) {
4225 struct pipe_ctx *odm_pipe = pipe_ctx->next_odm_pipe;
4226 resource_build_bit_depth_reduction_params(pipe_ctx->stream,
4227 &pipe_ctx->stream->bit_depth_params);
4228 hwss_add_opp_program_fmt(&seq_state, pipe_ctx->stream_res.opp,
4229 &stream->bit_depth_params,
4230 &stream->clamping);
4231 while (odm_pipe) {
4232 hwss_add_opp_program_fmt(&seq_state, odm_pipe->stream_res.opp,
4233 &stream->bit_depth_params,
4234 &stream->clamping);
4235 odm_pipe = odm_pipe->next_odm_pipe;
4236 }
4237 }
4238
4239 if (stream_update->cursor_attributes)
4240 program_cursor_attributes_sequence(dc, stream, context, &seq_state);
4241
4242 if (stream_update->cursor_position)
4243 program_cursor_position_sequence(dc, stream, context, &seq_state);
4244
4245 /* Full fe update*/
4246 if (update_type == UPDATE_TYPE_FAST)
4247 continue;
4248
4249 if (stream_update->dsc_config)
4250 if (dsc_cfg_index < MAX_PIPES) {
4251 struct dsc_config dsc_cfg;
4252 struct dsc_optc_config dsc_optc_cfg;
4253
4254 add_link_update_dsc_config_sequence(&seq_state,
4255 pipe_ctx,
4256 &dsc_cfg,
4257 &dsc_optc_cfg);
4258 }
4259
4260 if (stream_update->mst_bw_update) {
4261 if (stream_update->mst_bw_update->is_increase)
4262 hwss_add_link_increase_mst_payload(&seq_state,
4263 pipe_ctx,
4264 stream_update->mst_bw_update->mst_stream_bw);
4265 else
4266 hwss_add_link_reduce_mst_payload(&seq_state,
4267 pipe_ctx,
4268 stream_update->mst_bw_update->mst_stream_bw);
4269 }
4270
4271 if (stream_update->pending_test_pattern) {
4272 /*
4273 * test pattern params depends on ODM topology
4274 * changes that we could be applying to front
4275 * end. Since at the current stage front end
4276 * changes are not yet applied. We can only
4277 * apply test pattern in hw based on current
4278 * state and populate the final test pattern
4279 * params in new state. If current and new test
4280 * pattern params are different as result of
4281 * different ODM topology being used, it will be
4282 * detected and handle during front end
4283 * programming update.
4284 */
4285 hwss_add_dp_set_test_pattern(&seq_state,
4286 stream->link,
4287 stream->test_pattern.type,
4288 stream->test_pattern.color_space,
4289 stream->test_pattern.p_link_settings,
4290 stream->test_pattern.p_custom_pattern,
4291 stream->test_pattern.cust_pattern_size);
4292 resource_build_test_pattern_params(&context->res_ctx, pipe_ctx);
4293 }
4294
4295 if (stream_update->dpms_off) {
4296 // DPMS should not use partially updated pipe context
4297 struct pipe_ctx *dpms_pipe_ctx = &dc->current_state->res_ctx.pipe_ctx[j];
4298
4299 if (*stream_update->dpms_off) {
4300 hwss_add_link_set_dpms_off(&seq_state, dpms_pipe_ctx);
4301 /* for dpms, keep acquired resources*/
4302 if (dpms_pipe_ctx->stream_res.audio && !dc->debug.az_endpoint_mute_only)
4303 hwss_add_disable_audio_stream(&seq_state, dpms_pipe_ctx);
4304
4305 hwss_add_dc_set_optimized_required(&seq_state, dc, true);
4306
4307 } else {
4308 if (get_seamless_boot_stream_count(context) == 0 && dc->hwss.prepare_bandwidth_sequence)
4309 dc->hwss.prepare_bandwidth_sequence(dc, dc->current_state, &seq_state);
4310 hwss_add_link_set_dpms_on(&seq_state, dc->current_state, dpms_pipe_ctx);
4311 }
4312 } else if (pipe_ctx->stream->link->wa_flags.blank_stream_on_ocs_change && stream_update->output_color_space
4313 && !stream->dpms_off && dc_is_dp_signal(pipe_ctx->stream->signal)) {
4314 /*
4315 * Workaround for firmware issue in some receivers where they don't pick up
4316 * correct output color space unless DP link is disabled/re-enabled
4317 */
4318 hwss_add_link_set_dpms_on(&seq_state, dc->current_state, pipe_ctx);
4319 }
4320
4321 if (stream_update->abm_level && pipe_ctx->stream_res.abm) {
4322 bool should_program_abm = true;
4323
4324 // if otg funcs defined check if blanked before programming
4325 if (pipe_ctx->stream_res.tg->funcs->is_blanked)
4326 if (pipe_ctx->stream_res.tg->funcs->is_blanked(pipe_ctx->stream_res.tg))
4327 should_program_abm = false;
4328
4329 if (should_program_abm) {
4330 if (*stream_update->abm_level == ABM_LEVEL_IMMEDIATE_DISABLE) {
4331 hwss_add_abm_set_immediate_disable(&seq_state, dc, pipe_ctx);
4332 } else {
4333 hwss_add_abm_set_level(&seq_state, pipe_ctx->stream_res.abm, stream->abm_level);
4334 }
4335 }
4336 }
4337 }
4338 }
4339 }
4340
commit_planes_do_stream_update(struct dc * dc,struct dc_stream_state * stream,struct dc_stream_update * stream_update,enum dc_update_type update_type,struct dc_state * context)4341 static void commit_planes_do_stream_update(struct dc *dc,
4342 struct dc_stream_state *stream,
4343 struct dc_stream_update *stream_update,
4344 enum dc_update_type update_type,
4345 struct dc_state *context)
4346 {
4347 unsigned int j;
4348
4349 // Check if block sequence programming is enabled
4350 if (dc->debug.enable_block_sequence_programming) {
4351 unsigned int num_steps = 0;
4352
4353 // Build the block sequence using context's pre-allocated array
4354 commit_planes_do_stream_update_sequence(dc, stream, stream_update,
4355 update_type, context, context->block_sequence, &num_steps);
4356
4357 // Execute the block sequence
4358 if (num_steps > 0)
4359 hwss_execute_sequence(dc, context->block_sequence, num_steps);
4360
4361 return;
4362 }
4363
4364 // Legacy path (existing implementation)
4365 // Stream updates
4366 for (j = 0; j < dc->res_pool->pipe_count; j++) {
4367 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
4368
4369 if (resource_is_pipe_type(pipe_ctx, OTG_MASTER) && pipe_ctx->stream == stream) {
4370
4371 if (stream_update->periodic_interrupt && dc->hwss.setup_periodic_interrupt)
4372 dc->hwss.setup_periodic_interrupt(dc, pipe_ctx);
4373
4374 if ((stream_update->hdr_static_metadata && !stream->use_dynamic_meta) ||
4375 stream_update->output_color_space ||
4376 stream_update->vrr_infopacket ||
4377 stream_update->vsc_infopacket ||
4378 stream_update->vsp_infopacket ||
4379 stream_update->hfvsif_infopacket ||
4380 stream_update->adaptive_sync_infopacket ||
4381 stream_update->vtem_infopacket ||
4382 stream_update->avi_infopacket) {
4383 resource_build_info_frame(pipe_ctx);
4384 dc->hwss.update_info_frame(pipe_ctx);
4385
4386 if (dc_is_dp_signal(pipe_ctx->stream->signal))
4387 dc->link_srv->dp_trace_source_sequence(
4388 pipe_ctx->stream->link,
4389 DPCD_SOURCE_SEQ_AFTER_UPDATE_INFO_FRAME);
4390 }
4391
4392 if (stream_update->hdr_static_metadata &&
4393 stream->use_dynamic_meta &&
4394 dc->hwss.set_dmdata_attributes &&
4395 pipe_ctx->stream->dmdata_address.quad_part != 0)
4396 dc->hwss.set_dmdata_attributes(pipe_ctx);
4397
4398 if (stream_update->gamut_remap)
4399 dc_stream_set_gamut_remap(dc, stream);
4400
4401 if (stream_update->output_csc_transform)
4402 dc_stream_program_csc_matrix(dc, stream);
4403
4404 if (stream_update->dither_option) {
4405 struct pipe_ctx *odm_pipe = pipe_ctx->next_odm_pipe;
4406 resource_build_bit_depth_reduction_params(pipe_ctx->stream,
4407 &pipe_ctx->stream->bit_depth_params);
4408 pipe_ctx->stream_res.opp->funcs->opp_program_fmt(pipe_ctx->stream_res.opp,
4409 &stream->bit_depth_params,
4410 &stream->clamping);
4411 while (odm_pipe) {
4412 odm_pipe->stream_res.opp->funcs->opp_program_fmt(odm_pipe->stream_res.opp,
4413 &stream->bit_depth_params,
4414 &stream->clamping);
4415 odm_pipe = odm_pipe->next_odm_pipe;
4416 }
4417 }
4418
4419 if (stream_update->cursor_attributes)
4420 program_cursor_attributes(dc, stream);
4421
4422 if (stream_update->cursor_position)
4423 program_cursor_position(dc, stream);
4424
4425 /* Full fe update*/
4426 if (update_type == UPDATE_TYPE_FAST)
4427 continue;
4428
4429 if (stream_update->dsc_config)
4430 dc->link_srv->update_dsc_config(pipe_ctx);
4431
4432 if (stream_update->mst_bw_update) {
4433 if (stream_update->mst_bw_update->is_increase)
4434 dc->link_srv->increase_mst_payload(pipe_ctx,
4435 stream_update->mst_bw_update->mst_stream_bw);
4436 else
4437 dc->link_srv->reduce_mst_payload(pipe_ctx,
4438 stream_update->mst_bw_update->mst_stream_bw);
4439 }
4440
4441 if (stream_update->pending_test_pattern) {
4442 /*
4443 * test pattern params depends on ODM topology
4444 * changes that we could be applying to front
4445 * end. Since at the current stage front end
4446 * changes are not yet applied. We can only
4447 * apply test pattern in hw based on current
4448 * state and populate the final test pattern
4449 * params in new state. If current and new test
4450 * pattern params are different as result of
4451 * different ODM topology being used, it will be
4452 * detected and handle during front end
4453 * programming update.
4454 */
4455 dc->link_srv->dp_set_test_pattern(stream->link,
4456 stream->test_pattern.type,
4457 stream->test_pattern.color_space,
4458 stream->test_pattern.p_link_settings,
4459 stream->test_pattern.p_custom_pattern,
4460 stream->test_pattern.cust_pattern_size);
4461 resource_build_test_pattern_params(&context->res_ctx, pipe_ctx);
4462 }
4463
4464 // DPMS should not use partially updated pipe context
4465 struct pipe_ctx *dpms_pipe_ctx = &dc->current_state->res_ctx.pipe_ctx[j];
4466
4467 if (stream_update->dpms_off) {
4468 if (*stream_update->dpms_off) {
4469 dc->link_srv->set_dpms_off(dpms_pipe_ctx);
4470 /* for dpms, keep acquired resources*/
4471 if (dpms_pipe_ctx->stream_res.audio && !dc->debug.az_endpoint_mute_only) {
4472 struct audio *audio = dpms_pipe_ctx->stream_res.audio;
4473
4474 audio->funcs->az_disable(audio);
4475 }
4476
4477 dc->optimized_required = true;
4478
4479 } else {
4480 if (get_seamless_boot_stream_count(context) == 0)
4481 dc->hwss.prepare_bandwidth(dc, dc->current_state);
4482 dc->link_srv->set_dpms_on(dc->current_state, dpms_pipe_ctx);
4483 }
4484 } else if (dpms_pipe_ctx->stream->link->wa_flags.blank_stream_on_ocs_change &&
4485 stream_update->output_color_space &&
4486 !stream->dpms_off && dc_is_dp_signal(dpms_pipe_ctx->stream->signal)) {
4487 /*
4488 * Workaround for firmware issue in some receivers where they don't pick up
4489 * correct output color space unless DP link is disabled/re-enabled
4490 */
4491 dc->link_srv->set_dpms_on(dc->current_state, dpms_pipe_ctx);
4492 }
4493
4494 if (stream_update->abm_level && pipe_ctx->stream_res.abm) {
4495 bool should_program_abm = true;
4496
4497 // if otg funcs defined check if blanked before programming
4498 if (pipe_ctx->stream_res.tg->funcs->is_blanked)
4499 if (pipe_ctx->stream_res.tg->funcs->is_blanked(pipe_ctx->stream_res.tg))
4500 should_program_abm = false;
4501
4502 if (should_program_abm) {
4503 if (*stream_update->abm_level == ABM_LEVEL_IMMEDIATE_DISABLE) {
4504 dc->hwss.set_abm_immediate_disable(pipe_ctx);
4505 } else {
4506 pipe_ctx->stream_res.abm->funcs->set_abm_level(
4507 pipe_ctx->stream_res.abm, stream->abm_level);
4508 }
4509 }
4510 }
4511 }
4512 }
4513 }
4514
dc_dmub_should_send_dirty_rect_cmd(struct dc * dc,struct dc_stream_state * stream)4515 static bool dc_dmub_should_send_dirty_rect_cmd(struct dc *dc, struct dc_stream_state *stream)
4516 {
4517 (void)dc;
4518 if ((stream->link->psr_settings.psr_version == DC_PSR_VERSION_SU_1
4519 || stream->link->psr_settings.psr_version == DC_PSR_VERSION_1)
4520 && stream->ctx->dce_version >= DCN_VERSION_3_1)
4521 return true;
4522
4523 if (stream->link->replay_settings.config.replay_supported)
4524 return true;
4525
4526 if (stream->ctx->dce_version >= DCN_VERSION_3_5 && stream->abm_level)
4527 return true;
4528
4529 return false;
4530 }
4531
dc_dmub_update_dirty_rect(struct dc * dc,int surface_count,struct dc_stream_state * stream,const struct dc_surface_update * srf_updates,struct dc_state * context)4532 void dc_dmub_update_dirty_rect(struct dc *dc,
4533 int surface_count,
4534 struct dc_stream_state *stream,
4535 const struct dc_surface_update *srf_updates,
4536 struct dc_state *context)
4537 {
4538 union dmub_rb_cmd cmd;
4539 struct dmub_cmd_update_dirty_rect_data *update_dirty_rect;
4540 int i;
4541 unsigned int j;
4542 unsigned int panel_inst = 0;
4543
4544 if (!dc_dmub_should_send_dirty_rect_cmd(dc, stream))
4545 return;
4546
4547 if (!dc->config.frame_update_cmd_version2 && !dc_get_edp_link_panel_inst(dc, stream->link, &panel_inst))
4548 return;
4549
4550 memset(&cmd, 0x0, sizeof(cmd));
4551 cmd.update_dirty_rect.header.type = DMUB_CMD__UPDATE_DIRTY_RECT;
4552 cmd.update_dirty_rect.header.sub_type = 0;
4553 cmd.update_dirty_rect.header.payload_bytes =
4554 sizeof(cmd.update_dirty_rect) -
4555 sizeof(cmd.update_dirty_rect.header);
4556 update_dirty_rect = &cmd.update_dirty_rect.update_dirty_rect_data;
4557 for (i = 0; i < surface_count; i++) {
4558 struct dc_plane_state *plane_state = srf_updates[i].surface;
4559 const struct dc_flip_addrs *flip_addr = srf_updates[i].flip_addr;
4560
4561 if (!srf_updates[i].surface || !flip_addr)
4562 continue;
4563 /* Do not send in immediate flip mode */
4564 if (srf_updates[i].surface->flip_immediate)
4565 continue;
4566
4567 if (dc->config.frame_update_cmd_version2)
4568 update_dirty_rect->cmd_version = DMUB_CMD_CURSOR_UPDATE_VERSION_2;
4569 else
4570 update_dirty_rect->cmd_version = DMUB_CMD_CURSOR_UPDATE_VERSION_1;
4571
4572 update_dirty_rect->dirty_rect_count = (uint8_t)flip_addr->dirty_rect_count;
4573 memcpy(update_dirty_rect->src_dirty_rects, flip_addr->dirty_rects,
4574 sizeof(flip_addr->dirty_rects));
4575 for (j = 0; j < dc->res_pool->pipe_count; j++) {
4576 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
4577
4578 if (pipe_ctx->stream != stream)
4579 continue;
4580 if (pipe_ctx->plane_state != plane_state)
4581 continue;
4582
4583 update_dirty_rect->panel_inst = (uint8_t)panel_inst;
4584 update_dirty_rect->pipe_idx = (uint8_t)j;
4585 update_dirty_rect->otg_inst = (uint8_t)pipe_ctx->stream_res.tg->inst;
4586 dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_NO_WAIT);
4587 }
4588 }
4589 }
4590
build_dmub_update_dirty_rect(struct dc * dc,int surface_count,struct dc_stream_state * stream,struct dc_surface_update * srf_updates,struct dc_state * context,struct dc_dmub_cmd dc_dmub_cmd[],unsigned int * dmub_cmd_count)4591 static void build_dmub_update_dirty_rect(
4592 struct dc *dc,
4593 int surface_count,
4594 struct dc_stream_state *stream,
4595 struct dc_surface_update *srf_updates,
4596 struct dc_state *context,
4597 struct dc_dmub_cmd dc_dmub_cmd[],
4598 unsigned int *dmub_cmd_count)
4599 {
4600 union dmub_rb_cmd cmd;
4601 struct dmub_cmd_update_dirty_rect_data *update_dirty_rect;
4602 int i;
4603 unsigned int j;
4604 unsigned int panel_inst = 0;
4605
4606 if (!dc_dmub_should_send_dirty_rect_cmd(dc, stream))
4607 return;
4608
4609 if (!dc->config.frame_update_cmd_version2 && !dc_get_edp_link_panel_inst(dc, stream->link, &panel_inst))
4610 return;
4611
4612 memset(&cmd, 0x0, sizeof(cmd));
4613 cmd.update_dirty_rect.header.type = DMUB_CMD__UPDATE_DIRTY_RECT;
4614 cmd.update_dirty_rect.header.sub_type = 0;
4615 cmd.update_dirty_rect.header.payload_bytes =
4616 sizeof(cmd.update_dirty_rect) -
4617 sizeof(cmd.update_dirty_rect.header);
4618 update_dirty_rect = &cmd.update_dirty_rect.update_dirty_rect_data;
4619 for (i = 0; i < surface_count; i++) {
4620 struct dc_plane_state *plane_state = srf_updates[i].surface;
4621 const struct dc_flip_addrs *flip_addr = srf_updates[i].flip_addr;
4622
4623 if (!srf_updates[i].surface || !flip_addr)
4624 continue;
4625 /* Do not send in immediate flip mode */
4626 if (srf_updates[i].surface->flip_immediate)
4627 continue;
4628
4629 if (dc->config.frame_update_cmd_version2)
4630 update_dirty_rect->cmd_version = DMUB_CMD_CURSOR_UPDATE_VERSION_2;
4631 else
4632 update_dirty_rect->cmd_version = DMUB_CMD_CURSOR_UPDATE_VERSION_1;
4633
4634 update_dirty_rect->dirty_rect_count = (uint8_t)flip_addr->dirty_rect_count;
4635 memcpy(update_dirty_rect->src_dirty_rects, flip_addr->dirty_rects,
4636 sizeof(flip_addr->dirty_rects));
4637 for (j = 0; j < dc->res_pool->pipe_count; j++) {
4638 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
4639
4640 if (pipe_ctx->stream != stream)
4641 continue;
4642 if (pipe_ctx->plane_state != plane_state)
4643 continue;
4644 update_dirty_rect->panel_inst = (uint8_t)panel_inst;
4645 update_dirty_rect->pipe_idx = (uint8_t)j;
4646 update_dirty_rect->otg_inst = (uint8_t)pipe_ctx->stream_res.tg->inst;
4647 dc_dmub_cmd[*dmub_cmd_count].dmub_cmd = cmd;
4648 dc_dmub_cmd[*dmub_cmd_count].wait_type = DM_DMUB_WAIT_TYPE_NO_WAIT;
4649 (*dmub_cmd_count)++;
4650 }
4651 }
4652 }
4653
4654 /**
4655 * dc_check_address_only_update - Check if addr_update is the sole flag set
4656 *
4657 * @update_bits: The pipe update bits to check
4658 *
4659 * Determines whether an update contains only an address change with no other
4660 * pending updates.
4661 *
4662 * Return: %true if addr_update is the sole bit set, %false otherwise.
4663 */
dc_check_address_only_update(struct pipe_update_bits update_bits)4664 bool dc_check_address_only_update(struct pipe_update_bits update_bits)
4665 {
4666 struct pipe_update_bits check = update_bits; /* 1. Copy all flags from input */
4667
4668 check.addr_update = 0; /* 2. Zero the addr_update bit in the copy */
4669 return update_bits.addr_update && /* 3. Check addr_update was set in original */
4670 !dc_pipe_update_bits_is_any_set(&check); /* 4. Check no other bits remain in the copy */
4671 }
4672
4673 /**
4674 * build_dmub_cmd_list() - Build an array of DMCUB commands to be sent to DMCUB
4675 *
4676 * @dc: Current DC state
4677 * @srf_updates: Array of surface updates
4678 * @surface_count: Number of surfaces that have an updated
4679 * @stream: Corresponding stream to be updated in the current flip
4680 * @context: New DC state to be programmed
4681 *
4682 * @dc_dmub_cmd: Array of DMCUB commands to be sent to DMCUB
4683 * @dmub_cmd_count: Count indicating the number of DMCUB commands in dc_dmub_cmd array
4684 *
4685 * This function builds an array of DMCUB commands to be sent to DMCUB. This function is required
4686 * to build an array of commands and have them sent while the OTG lock is acquired.
4687 *
4688 * Return: void
4689 */
build_dmub_cmd_list(struct dc * dc,struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_state * stream,struct dc_state * context,struct dc_dmub_cmd dc_dmub_cmd[],unsigned int * dmub_cmd_count)4690 static void build_dmub_cmd_list(struct dc *dc,
4691 struct dc_surface_update *srf_updates,
4692 int surface_count,
4693 struct dc_stream_state *stream,
4694 struct dc_state *context,
4695 struct dc_dmub_cmd dc_dmub_cmd[],
4696 unsigned int *dmub_cmd_count)
4697 {
4698 // Initialize cmd count to 0
4699 *dmub_cmd_count = 0;
4700 build_dmub_update_dirty_rect(dc, surface_count, stream, srf_updates, context, dc_dmub_cmd, dmub_cmd_count);
4701 }
4702
commit_plane_for_stream_offload_fams2_flip(struct dc * dc,struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_state * stream,struct dc_state * context)4703 static void commit_plane_for_stream_offload_fams2_flip(struct dc *dc,
4704 struct dc_surface_update *srf_updates,
4705 int surface_count,
4706 struct dc_stream_state *stream,
4707 struct dc_state *context)
4708 {
4709 int i;
4710 unsigned int j;
4711
4712 /* update dirty rect for PSR */
4713 dc_dmub_update_dirty_rect(dc, surface_count, stream,
4714 srf_updates, context);
4715
4716 /* Perform requested Updates */
4717 for (i = 0; i < surface_count; i++) {
4718 struct dc_plane_state *plane_state = srf_updates[i].surface;
4719
4720 for (j = 0; j < dc->res_pool->pipe_count; j++) {
4721 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
4722
4723 if (!should_update_pipe_for_stream(context, pipe_ctx, stream))
4724 continue;
4725
4726 if (!should_update_pipe_for_plane(context, pipe_ctx, plane_state))
4727 continue;
4728
4729 /* update pipe context for plane */
4730 if (pipe_ctx->plane_state->update_bits.addr_update)
4731 dc->hwss.update_plane_addr(dc, pipe_ctx);
4732 }
4733 }
4734
4735 /* Send commands to DMCUB */
4736 dc_dmub_srv_fams2_passthrough_flip(dc,
4737 context,
4738 stream,
4739 srf_updates,
4740 surface_count);
4741 }
4742
commit_planes_for_stream_fast(struct dc * dc,struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_state * stream,struct dc_stream_update * stream_update,enum dc_update_type update_type,struct dc_state * context)4743 static void commit_planes_for_stream_fast(struct dc *dc,
4744 struct dc_surface_update *srf_updates,
4745 int surface_count,
4746 struct dc_stream_state *stream,
4747 struct dc_stream_update *stream_update,
4748 enum dc_update_type update_type,
4749 struct dc_state *context)
4750 {
4751 int i;
4752 unsigned int j;
4753 struct pipe_ctx *top_pipe_to_program = NULL;
4754 struct dc_stream_status *stream_status = NULL;
4755 bool should_offload_fams2_flip = false;
4756 bool should_lock_all_pipes = (update_type != UPDATE_TYPE_FAST);
4757
4758 if (should_lock_all_pipes)
4759 determine_pipe_unlock_order(dc, context);
4760
4761 if (dc->debug.fams2_config.bits.enable &&
4762 dc->debug.fams2_config.bits.enable_offload_flip &&
4763 dc_state_is_fams2_in_use(dc, context)) {
4764 /* if not offloading to HWFQ, offload to FAMS2 if needed */
4765 should_offload_fams2_flip = true;
4766 for (i = 0; i < surface_count; i++) {
4767 if (srf_updates[i].surface &&
4768 dc_pipe_update_bits_is_any_set(&srf_updates[i].surface->update_bits) &&
4769 !dc_check_address_only_update(srf_updates[i].surface->update_bits)) {
4770 /* more than address update, need to acquire FAMS2 lock */
4771 should_offload_fams2_flip = false;
4772 break;
4773 }
4774 }
4775 if (stream_update) {
4776 /* more than address update, need to acquire FAMS2 lock */
4777 should_offload_fams2_flip = false;
4778 }
4779 }
4780
4781 dc_exit_ips_for_hw_access(dc);
4782
4783 dc_z10_restore(dc);
4784
4785 top_pipe_to_program = resource_get_otg_master_for_stream(
4786 &context->res_ctx,
4787 stream);
4788
4789 if (!top_pipe_to_program)
4790 return;
4791
4792 for (i = 0; i < (int)dc->res_pool->pipe_count; i++) {
4793 struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[i];
4794
4795 if (pipe->stream && pipe->plane_state) {
4796 if (!dc->debug.using_dml2)
4797 set_p_state_switch_method(dc, context, pipe);
4798
4799 if (dc->debug.visual_confirm)
4800 dc_update_visual_confirm_color(dc, context, pipe);
4801 }
4802 }
4803
4804 for (i = 0; i < surface_count; i++) {
4805 struct dc_plane_state *plane_state = srf_updates[i].surface;
4806 /*set logical flag for lock/unlock use*/
4807 for (j = 0; j < dc->res_pool->pipe_count; j++) {
4808 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
4809
4810 if (!pipe_ctx->plane_state)
4811 continue;
4812 if (!should_update_pipe_for_plane(context, pipe_ctx, plane_state))
4813 continue;
4814
4815 pipe_ctx->plane_state->triplebuffer_flips = false;
4816 if (update_type == UPDATE_TYPE_FAST &&
4817 dc->hwss.program_triplebuffer != NULL &&
4818 !pipe_ctx->plane_state->flip_immediate && dc->debug.enable_tri_buf) {
4819 /*triple buffer for VUpdate only*/
4820 pipe_ctx->plane_state->triplebuffer_flips = true;
4821 }
4822 }
4823 }
4824
4825 stream_status = dc_state_get_stream_status(context, stream);
4826
4827 if (should_offload_fams2_flip) {
4828 commit_plane_for_stream_offload_fams2_flip(dc,
4829 srf_updates,
4830 surface_count,
4831 stream,
4832 context);
4833 } else if (stream_status) {
4834 build_dmub_cmd_list(dc,
4835 srf_updates,
4836 surface_count,
4837 stream,
4838 context,
4839 context->dc_dmub_cmd,
4840 &(context->dmub_cmd_count));
4841 hwss_build_fast_sequence(dc,
4842 context->dc_dmub_cmd,
4843 context->dmub_cmd_count,
4844 context->block_sequence,
4845 &(context->block_sequence_steps),
4846 top_pipe_to_program,
4847 stream_status,
4848 context);
4849 hwss_execute_sequence(dc,
4850 context->block_sequence,
4851 context->block_sequence_steps);
4852 }
4853
4854 /* Clear update flags so next flip doesn't have redundant programming
4855 * (if there's no stream update, the update flags are not cleared).
4856 * Surface updates are cleared unconditionally at the beginning of each flip,
4857 * so no need to clear here.
4858 */
4859 if (top_pipe_to_program->stream)
4860 stream_update_flags_clear(&top_pipe_to_program->stream->update_flags);
4861 }
4862
commit_planes_for_stream(struct dc * dc,const struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_state * stream,struct dc_stream_update * stream_update,enum dc_update_type update_type,struct dc_state * context)4863 static void commit_planes_for_stream(struct dc *dc,
4864 const struct dc_surface_update *srf_updates,
4865 int surface_count,
4866 struct dc_stream_state *stream,
4867 struct dc_stream_update *stream_update,
4868 enum dc_update_type update_type,
4869 struct dc_state *context)
4870 {
4871 int i;
4872 unsigned int j, pipe_idx;
4873 struct pipe_ctx *top_pipe_to_program = NULL;
4874 bool should_lock_all_pipes = (update_type != UPDATE_TYPE_FAST);
4875 bool subvp_prev_use = false;
4876 bool subvp_curr_use = false;
4877 uint8_t current_stream_mask = 0;
4878
4879 if (should_lock_all_pipes)
4880 determine_pipe_unlock_order(dc, context);
4881 // Once we apply the new subvp context to hardware it won't be in the
4882 // dc->current_state anymore, so we have to cache it before we apply
4883 // the new SubVP context
4884 subvp_prev_use = false;
4885 dc_exit_ips_for_hw_access(dc);
4886
4887 dc_z10_restore(dc);
4888 if (update_type == UPDATE_TYPE_FULL && dc->optimized_required)
4889 hwss_process_outstanding_hw_updates(dc, dc->current_state);
4890
4891 if (update_type != UPDATE_TYPE_FAST && dc->res_pool->funcs->prepare_mcache_programming)
4892 dc->res_pool->funcs->prepare_mcache_programming(dc, context);
4893
4894 for (pipe_idx = 0; pipe_idx < dc->res_pool->pipe_count; pipe_idx++) {
4895 struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[pipe_idx];
4896
4897 if (pipe->stream && pipe->plane_state) {
4898 if (!dc->debug.using_dml2)
4899 set_p_state_switch_method(dc, context, pipe);
4900
4901 if (dc->debug.visual_confirm)
4902 dc_update_visual_confirm_color(dc, context, pipe);
4903 }
4904 }
4905
4906 if (update_type == UPDATE_TYPE_FULL) {
4907 dc_allow_idle_optimizations(dc, false);
4908
4909 if (get_seamless_boot_stream_count(context) == 0)
4910 dc->hwss.prepare_bandwidth(dc, context);
4911
4912 if (dc->hwss.update_dsc_pg)
4913 dc->hwss.update_dsc_pg(dc, context, false);
4914
4915 context_clock_trace(dc, context);
4916 }
4917
4918 if (update_type == UPDATE_TYPE_FULL)
4919 hwss_wait_for_outstanding_hw_updates(dc, dc->current_state);
4920
4921 top_pipe_to_program = resource_get_otg_master_for_stream(
4922 &context->res_ctx,
4923 stream);
4924 ASSERT(top_pipe_to_program != NULL);
4925
4926 for (pipe_idx = 0; pipe_idx < dc->res_pool->pipe_count; pipe_idx++) {
4927 struct pipe_ctx *old_pipe = &dc->current_state->res_ctx.pipe_ctx[pipe_idx];
4928
4929 // Check old context for SubVP
4930 subvp_prev_use |= (dc_state_get_pipe_subvp_type(dc->current_state, old_pipe) == SUBVP_PHANTOM);
4931 if (subvp_prev_use)
4932 break;
4933 }
4934
4935 for (pipe_idx = 0; pipe_idx < dc->res_pool->pipe_count; pipe_idx++) {
4936 struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[pipe_idx];
4937
4938 if (dc_state_get_pipe_subvp_type(context, pipe) == SUBVP_PHANTOM) {
4939 subvp_curr_use = true;
4940 break;
4941 }
4942 }
4943
4944 if (stream->test_pattern.type != DP_TEST_PATTERN_VIDEO_MODE) {
4945 struct pipe_ctx *mpcc_pipe;
4946 struct pipe_ctx *odm_pipe;
4947
4948 for (mpcc_pipe = top_pipe_to_program; mpcc_pipe; mpcc_pipe = mpcc_pipe->bottom_pipe)
4949 for (odm_pipe = mpcc_pipe; odm_pipe; odm_pipe = odm_pipe->next_odm_pipe)
4950 odm_pipe->ttu_regs.min_ttu_vblank = MAX_TTU;
4951 }
4952
4953 if ((update_type != UPDATE_TYPE_FAST) && stream->update_flags.bits.dsc_changed)
4954 if (top_pipe_to_program &&
4955 top_pipe_to_program->stream_res.tg->funcs->lock_doublebuffer_enable) {
4956 if (should_use_dmub_inbox1_lock(dc, stream->link)) {
4957 union dmub_hw_lock_flags hw_locks = { 0 };
4958 struct dmub_hw_lock_inst_flags inst_flags = { 0 };
4959
4960 hw_locks.bits.lock_dig = 1;
4961 inst_flags.dig_inst = (uint8_t)top_pipe_to_program->stream_res.tg->inst;
4962
4963 dmub_hw_lock_mgr_cmd(dc->ctx->dmub_srv,
4964 true,
4965 &hw_locks,
4966 &inst_flags);
4967 } else
4968 top_pipe_to_program->stream_res.tg->funcs->lock_doublebuffer_enable(
4969 top_pipe_to_program->stream_res.tg);
4970 }
4971
4972 if (dc->hwss.wait_for_dcc_meta_propagation) {
4973 dc->hwss.wait_for_dcc_meta_propagation(dc, top_pipe_to_program);
4974 }
4975
4976 if (dc->hwseq->funcs.wait_for_pipe_update_if_needed)
4977 dc->hwseq->funcs.wait_for_pipe_update_if_needed(dc, top_pipe_to_program, update_type < UPDATE_TYPE_FULL);
4978
4979 if (should_lock_all_pipes && dc->hwss.interdependent_update_lock) {
4980 if (dc->hwss.subvp_pipe_control_lock)
4981 dc->hwss.subvp_pipe_control_lock(dc, context, true, should_lock_all_pipes, NULL, subvp_prev_use);
4982
4983 if (dc->hwss.dmub_hw_control_lock)
4984 dc->hwss.dmub_hw_control_lock(dc, context, true);
4985
4986 dc->hwss.interdependent_update_lock(dc, context, true);
4987 } else {
4988 if (dc->hwss.subvp_pipe_control_lock)
4989 dc->hwss.subvp_pipe_control_lock(dc, context, true, should_lock_all_pipes, top_pipe_to_program, subvp_prev_use);
4990
4991 if (dc->hwss.dmub_hw_control_lock)
4992 dc->hwss.dmub_hw_control_lock(dc, context, true);
4993
4994 /* Lock the top pipe while updating plane addrs, since freesync requires
4995 * plane addr update event triggers to be synchronized.
4996 * top_pipe_to_program is expected to never be NULL
4997 */
4998 dc->hwss.pipe_control_lock(dc, top_pipe_to_program, true);
4999 }
5000
5001 dc_dmub_update_dirty_rect(dc, surface_count, stream, srf_updates, context);
5002
5003 // Stream updates
5004 if (stream_update)
5005 commit_planes_do_stream_update(dc, stream, stream_update, update_type, context);
5006
5007 if (surface_count == 0) {
5008 /*
5009 * In case of turning off screen, no need to program front end a second time.
5010 * just return after program blank.
5011 */
5012 if (dc->hwss.apply_ctx_for_surface)
5013 dc->hwss.apply_ctx_for_surface(dc, stream, 0, context);
5014 if (dc->hwss.program_front_end_for_ctx)
5015 dc->hwss.program_front_end_for_ctx(dc, context);
5016
5017 if (should_lock_all_pipes && dc->hwss.interdependent_update_lock) {
5018 dc->hwss.interdependent_update_lock(dc, context, false);
5019 } else {
5020 dc->hwss.pipe_control_lock(dc, top_pipe_to_program, false);
5021 }
5022 dc->hwss.post_unlock_program_front_end(dc, context);
5023
5024 if (update_type != UPDATE_TYPE_FAST)
5025 if (dc->hwss.commit_subvp_config)
5026 dc->hwss.commit_subvp_config(dc, context);
5027
5028 /* Since phantom pipe programming is moved to post_unlock_program_front_end,
5029 * move the SubVP lock to after the phantom pipes have been setup
5030 */
5031 if (dc->hwss.subvp_pipe_control_lock)
5032 dc->hwss.subvp_pipe_control_lock(dc, context, false, should_lock_all_pipes,
5033 NULL, subvp_prev_use);
5034
5035 if (dc->hwss.dmub_hw_control_lock)
5036 dc->hwss.dmub_hw_control_lock(dc, context, false);
5037 return;
5038 }
5039
5040 if (update_type != UPDATE_TYPE_FAST) {
5041 for (j = 0; j < dc->res_pool->pipe_count; j++) {
5042 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
5043
5044 if ((dc->debug.visual_confirm == VISUAL_CONFIRM_SUBVP ||
5045 dc->debug.visual_confirm == VISUAL_CONFIRM_MCLK_SWITCH) &&
5046 pipe_ctx->stream && pipe_ctx->plane_state) {
5047 /* Only update visual confirm for SUBVP and Mclk switching here.
5048 * The bar appears on all pipes, so we need to update the bar on all displays,
5049 * so the information doesn't get stale.
5050 */
5051 dc->hwss.update_visual_confirm_color(dc, pipe_ctx,
5052 pipe_ctx->plane_res.hubp->inst);
5053 }
5054 }
5055 }
5056
5057 for (i = 0; i < surface_count; i++) {
5058 struct dc_plane_state *plane_state = srf_updates[i].surface;
5059
5060 /*set logical flag for lock/unlock use*/
5061 for (j = 0; j < dc->res_pool->pipe_count; j++) {
5062 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
5063 if (!pipe_ctx->plane_state)
5064 continue;
5065 if (!should_update_pipe_for_plane(context, pipe_ctx, plane_state))
5066 continue;
5067 pipe_ctx->plane_state->triplebuffer_flips = false;
5068 if (update_type == UPDATE_TYPE_FAST &&
5069 dc->hwss.program_triplebuffer != NULL &&
5070 !pipe_ctx->plane_state->flip_immediate && dc->debug.enable_tri_buf) {
5071 /*triple buffer for VUpdate only*/
5072 pipe_ctx->plane_state->triplebuffer_flips = true;
5073 }
5074 }
5075 if (update_type == UPDATE_TYPE_FULL) {
5076 /* force vsync flip when reconfiguring pipes to prevent underflow */
5077 plane_state->flip_immediate = false;
5078 plane_state->triplebuffer_flips = false;
5079 }
5080 }
5081
5082 // Update Type FULL, Surface updates
5083 for (j = 0; j < dc->res_pool->pipe_count; j++) {
5084 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
5085
5086 if (!pipe_ctx->top_pipe &&
5087 !pipe_ctx->prev_odm_pipe &&
5088 should_update_pipe_for_stream(context, pipe_ctx, stream)) {
5089 struct dc_stream_status *pipe_stream_status = NULL;
5090
5091 if (!pipe_ctx->plane_state)
5092 continue;
5093
5094 /* Full fe update*/
5095 if (update_type == UPDATE_TYPE_FAST)
5096 continue;
5097
5098 pipe_stream_status =
5099 stream_get_status(context, pipe_ctx->stream);
5100
5101 if (dc->hwss.apply_ctx_for_surface && pipe_stream_status)
5102 dc->hwss.apply_ctx_for_surface(
5103 dc, pipe_ctx->stream, pipe_stream_status->plane_count, context);
5104 }
5105 }
5106
5107 for (j = 0; j < dc->res_pool->pipe_count; j++) {
5108 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
5109
5110 if (!pipe_ctx->plane_state)
5111 continue;
5112
5113 /* Full fe update*/
5114 if (update_type == UPDATE_TYPE_FAST)
5115 continue;
5116
5117 ASSERT(!pipe_ctx->plane_state->triplebuffer_flips);
5118 if (dc->hwss.program_triplebuffer != NULL && dc->debug.enable_tri_buf) {
5119 /*turn off triple buffer for full update*/
5120 dc->hwss.program_triplebuffer(
5121 dc, pipe_ctx, pipe_ctx->plane_state->triplebuffer_flips);
5122 }
5123 }
5124
5125 if (dc->hwss.program_front_end_for_ctx && update_type != UPDATE_TYPE_FAST) {
5126 dc->hwss.program_front_end_for_ctx(dc, context);
5127
5128 //Pipe busy until some frame and line #
5129 if (dc->hwseq->funcs.set_wait_for_update_needed_for_pipe && update_type == UPDATE_TYPE_FULL) {
5130 for (j = 0; j < dc->res_pool->pipe_count; j++) {
5131 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
5132
5133 dc->hwseq->funcs.set_wait_for_update_needed_for_pipe(dc, pipe_ctx);
5134 }
5135 }
5136
5137 if (dc->debug.validate_dml_output) {
5138 for (pipe_idx = 0; pipe_idx < dc->res_pool->pipe_count; pipe_idx++) {
5139 struct pipe_ctx *cur_pipe = &context->res_ctx.pipe_ctx[pipe_idx];
5140 if (cur_pipe->stream == NULL)
5141 continue;
5142
5143 cur_pipe->plane_res.hubp->funcs->validate_dml_output(
5144 cur_pipe->plane_res.hubp, dc->ctx,
5145 &context->res_ctx.pipe_ctx[pipe_idx].rq_regs,
5146 &context->res_ctx.pipe_ctx[pipe_idx].dlg_regs,
5147 &context->res_ctx.pipe_ctx[pipe_idx].ttu_regs);
5148 }
5149 }
5150 }
5151
5152 // Update Type FAST, Surface updates
5153 if (update_type == UPDATE_TYPE_FAST) {
5154 if (dc->hwss.set_flip_control_gsl)
5155 for (i = 0; i < surface_count; i++) {
5156 struct dc_plane_state *plane_state = srf_updates[i].surface;
5157
5158 for (j = 0; j < dc->res_pool->pipe_count; j++) {
5159 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
5160
5161 if (!should_update_pipe_for_stream(context, pipe_ctx, stream))
5162 continue;
5163
5164 if (!should_update_pipe_for_plane(context, pipe_ctx, plane_state))
5165 continue;
5166
5167 // GSL has to be used for flip immediate
5168 dc->hwss.set_flip_control_gsl(pipe_ctx,
5169 pipe_ctx->plane_state->flip_immediate);
5170 }
5171 }
5172
5173 /* Perform requested Updates */
5174 for (i = 0; i < surface_count; i++) {
5175 struct dc_plane_state *plane_state = srf_updates[i].surface;
5176
5177 for (j = 0; j < dc->res_pool->pipe_count; j++) {
5178 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
5179
5180 if (!should_update_pipe_for_stream(context, pipe_ctx, stream))
5181 continue;
5182
5183 if (!should_update_pipe_for_plane(context, pipe_ctx, plane_state))
5184 continue;
5185
5186 if (srf_updates[i].cm &&
5187 srf_updates[i].cm->flags.bits.lut3d_enable &&
5188 srf_updates[i].cm->flags.bits.lut3d_dma_enable &&
5189 dc->hwss.trigger_3dlut_dma_load)
5190 dc->hwss.trigger_3dlut_dma_load(pipe_ctx);
5191
5192 /*program triple buffer after lock based on flip type*/
5193 if (dc->hwss.program_triplebuffer != NULL && dc->debug.enable_tri_buf) {
5194 /*only enable triplebuffer for fast_update*/
5195 dc->hwss.program_triplebuffer(
5196 dc, pipe_ctx, pipe_ctx->plane_state->triplebuffer_flips);
5197 }
5198 if (pipe_ctx->plane_state->update_bits.addr_update)
5199 dc->hwss.update_plane_addr(dc, pipe_ctx);
5200 }
5201 }
5202 }
5203
5204 if (should_lock_all_pipes && dc->hwss.interdependent_update_lock) {
5205 dc->hwss.interdependent_update_lock(dc, context, false);
5206 } else {
5207 dc->hwss.pipe_control_lock(dc, top_pipe_to_program, false);
5208 }
5209
5210 if ((update_type != UPDATE_TYPE_FAST) && stream->update_flags.bits.dsc_changed)
5211 if (top_pipe_to_program &&
5212 top_pipe_to_program->stream_res.tg->funcs->lock_doublebuffer_enable) {
5213 top_pipe_to_program->stream_res.tg->funcs->wait_for_state(
5214 top_pipe_to_program->stream_res.tg,
5215 CRTC_STATE_VACTIVE);
5216 top_pipe_to_program->stream_res.tg->funcs->wait_for_state(
5217 top_pipe_to_program->stream_res.tg,
5218 CRTC_STATE_VBLANK);
5219 top_pipe_to_program->stream_res.tg->funcs->wait_for_state(
5220 top_pipe_to_program->stream_res.tg,
5221 CRTC_STATE_VACTIVE);
5222
5223 if (should_use_dmub_inbox1_lock(dc, stream->link)) {
5224 union dmub_hw_lock_flags hw_locks = { 0 };
5225 struct dmub_hw_lock_inst_flags inst_flags = { 0 };
5226
5227 hw_locks.bits.lock_dig = 1;
5228 inst_flags.dig_inst = (uint8_t)top_pipe_to_program->stream_res.tg->inst;
5229
5230 dmub_hw_lock_mgr_cmd(dc->ctx->dmub_srv,
5231 false,
5232 &hw_locks,
5233 &inst_flags);
5234 } else
5235 top_pipe_to_program->stream_res.tg->funcs->lock_doublebuffer_disable(
5236 top_pipe_to_program->stream_res.tg);
5237 }
5238
5239 if (subvp_curr_use) {
5240 /* If enabling subvp or transitioning from subvp->subvp, enable the
5241 * phantom streams before we program front end for the phantom pipes.
5242 */
5243 if (update_type != UPDATE_TYPE_FAST) {
5244 if (dc->hwss.enable_phantom_streams)
5245 dc->hwss.enable_phantom_streams(dc, context);
5246 }
5247 }
5248
5249 if (update_type != UPDATE_TYPE_FAST)
5250 dc->hwss.post_unlock_program_front_end(dc, context);
5251
5252 if (subvp_prev_use && !subvp_curr_use) {
5253 /* If disabling subvp, disable phantom streams after front end
5254 * programming has completed (we turn on phantom OTG in order
5255 * to complete the plane disable for phantom pipes).
5256 */
5257
5258 if (dc->hwss.disable_phantom_streams)
5259 dc->hwss.disable_phantom_streams(dc, context);
5260 }
5261
5262 if (update_type != UPDATE_TYPE_FAST)
5263 if (dc->hwss.commit_subvp_config)
5264 dc->hwss.commit_subvp_config(dc, context);
5265 /* Since phantom pipe programming is moved to post_unlock_program_front_end,
5266 * move the SubVP lock to after the phantom pipes have been setup
5267 */
5268 if (should_lock_all_pipes && dc->hwss.interdependent_update_lock) {
5269 if (dc->hwss.subvp_pipe_control_lock)
5270 dc->hwss.subvp_pipe_control_lock(dc, context, false, should_lock_all_pipes, NULL, subvp_prev_use);
5271 if (dc->hwss.dmub_hw_control_lock)
5272 dc->hwss.dmub_hw_control_lock(dc, context, false);
5273 } else {
5274 if (dc->hwss.subvp_pipe_control_lock)
5275 dc->hwss.subvp_pipe_control_lock(dc, context, false, should_lock_all_pipes, top_pipe_to_program, subvp_prev_use);
5276 if (dc->hwss.dmub_hw_control_lock)
5277 dc->hwss.dmub_hw_control_lock(dc, context, false);
5278 }
5279
5280 // Fire manual trigger only when bottom plane is flipped
5281 for (j = 0; j < dc->res_pool->pipe_count; j++) {
5282 struct pipe_ctx *pipe_ctx = &context->res_ctx.pipe_ctx[j];
5283
5284 if (!pipe_ctx->plane_state)
5285 continue;
5286
5287 if (pipe_ctx->bottom_pipe || pipe_ctx->next_odm_pipe ||
5288 !pipe_ctx->stream || !should_update_pipe_for_stream(context, pipe_ctx, stream) ||
5289 !pipe_ctx->plane_state->update_bits.addr_update ||
5290 pipe_ctx->plane_state->skip_manual_trigger)
5291 continue;
5292
5293 if (dc->hwss.program_cursor_offload_now)
5294 dc->hwss.program_cursor_offload_now(dc, pipe_ctx);
5295 if (pipe_ctx->stream_res.tg->funcs->program_manual_trigger)
5296 pipe_ctx->stream_res.tg->funcs->program_manual_trigger(pipe_ctx->stream_res.tg);
5297 }
5298
5299 current_stream_mask = get_stream_mask(dc, context);
5300 if (current_stream_mask != context->stream_mask) {
5301 context->stream_mask = current_stream_mask;
5302 dc_dmub_srv_notify_stream_mask(dc->ctx->dmub_srv, current_stream_mask);
5303 }
5304 }
5305
5306 /**
5307 * could_mpcc_tree_change_for_active_pipes - Check if an OPP associated with MPCC might change
5308 *
5309 * @dc: Used to get the current state status
5310 * @stream: Target stream, which we want to remove the attached planes
5311 * @srf_updates: Array of surface updates
5312 * @surface_count: Number of surface update
5313 * @is_plane_addition: [in] Fill out with true if it is a plane addition case
5314 *
5315 * DCN32x and newer support a feature named Dynamic ODM which can conflict with
5316 * the MPO if used simultaneously in some specific configurations (e.g.,
5317 * 4k@144). This function checks if the incoming context requires applying a
5318 * transition state with unnecessary pipe splitting and ODM disabled to
5319 * circumvent our hardware limitations to prevent this edge case. If the OPP
5320 * associated with an MPCC might change due to plane additions, this function
5321 * returns true.
5322 *
5323 * Return:
5324 * Return true if OPP and MPCC might change, otherwise, return false.
5325 */
could_mpcc_tree_change_for_active_pipes(struct dc * dc,struct dc_stream_state * stream,struct dc_surface_update * srf_updates,int surface_count,bool * is_plane_addition)5326 static bool could_mpcc_tree_change_for_active_pipes(struct dc *dc,
5327 struct dc_stream_state *stream,
5328 struct dc_surface_update *srf_updates,
5329 int surface_count,
5330 bool *is_plane_addition)
5331 {
5332 (void)srf_updates;
5333
5334 struct dc_stream_status *cur_stream_status = stream_get_status(dc->current_state, stream);
5335 bool force_minimal_pipe_splitting = false;
5336 bool subvp_active = false;
5337 uint32_t i;
5338
5339 *is_plane_addition = false;
5340
5341 if (cur_stream_status &&
5342 dc->current_state->stream_count > 0 &&
5343 dc->debug.pipe_split_policy != MPC_SPLIT_AVOID) {
5344 /* determine if minimal transition is required due to MPC*/
5345 if (surface_count > 0) {
5346 if (cur_stream_status->plane_count > surface_count) {
5347 force_minimal_pipe_splitting = true;
5348 } else if (cur_stream_status->plane_count < surface_count) {
5349 force_minimal_pipe_splitting = true;
5350 *is_plane_addition = true;
5351 }
5352 }
5353 }
5354
5355 if (cur_stream_status &&
5356 dc->current_state->stream_count == 1 &&
5357 dc->debug.enable_single_display_2to1_odm_policy) {
5358 /* determine if minimal transition is required due to dynamic ODM*/
5359 if (surface_count > 0) {
5360 if (cur_stream_status->plane_count > 2 && cur_stream_status->plane_count > surface_count) {
5361 force_minimal_pipe_splitting = true;
5362 } else if (surface_count > 2 && cur_stream_status->plane_count < surface_count) {
5363 force_minimal_pipe_splitting = true;
5364 *is_plane_addition = true;
5365 }
5366 }
5367 }
5368
5369 for (i = 0; i < dc->res_pool->pipe_count; i++) {
5370 struct pipe_ctx *pipe = &dc->current_state->res_ctx.pipe_ctx[i];
5371
5372 if (dc_state_get_pipe_subvp_type(dc->current_state, pipe) != SUBVP_NONE) {
5373 subvp_active = true;
5374 break;
5375 }
5376 }
5377
5378 /* For SubVP when adding or removing planes we need to add a minimal transition
5379 * (even when disabling all planes). Whenever disabling a phantom pipe, we
5380 * must use the minimal transition path to disable the pipe correctly.
5381 *
5382 * We want to use the minimal transition whenever subvp is active, not only if
5383 * a plane is being added / removed from a subvp stream (MPO plane can be added
5384 * to a DRR pipe of SubVP + DRR config, in which case we still want to run through
5385 * a min transition to disable subvp.
5386 */
5387 if (cur_stream_status && subvp_active) {
5388 /* determine if minimal transition is required due to SubVP*/
5389 if (cur_stream_status->plane_count > surface_count) {
5390 force_minimal_pipe_splitting = true;
5391 } else if (cur_stream_status->plane_count < surface_count) {
5392 force_minimal_pipe_splitting = true;
5393 *is_plane_addition = true;
5394 }
5395 }
5396
5397 return force_minimal_pipe_splitting;
5398 }
5399
5400
release_minimal_transition_state(struct dc * dc,struct dc_state * minimal_transition_context,struct dc_state * base_context,struct pipe_split_policy_backup * policy)5401 static void release_minimal_transition_state(struct dc *dc,
5402 struct dc_state *minimal_transition_context,
5403 struct dc_state *base_context,
5404 struct pipe_split_policy_backup *policy)
5405 {
5406 restore_minimal_pipe_split_policy(dc, base_context, policy);
5407 dc_state_release(minimal_transition_context);
5408 }
5409
force_vsync_flip_in_minimal_transition_context(struct dc_state * context)5410 static void force_vsync_flip_in_minimal_transition_context(struct dc_state *context)
5411 {
5412 uint8_t i;
5413 int j;
5414 struct dc_stream_status *stream_status;
5415
5416 for (i = 0; i < context->stream_count; i++) {
5417 stream_status = &context->stream_status[i];
5418
5419 for (j = 0; j < stream_status->plane_count; j++)
5420 stream_status->plane_states[j]->flip_immediate = false;
5421 }
5422 }
5423
create_minimal_transition_state(struct dc * dc,struct dc_state * base_context,struct pipe_split_policy_backup * policy)5424 static struct dc_state *create_minimal_transition_state(struct dc *dc,
5425 struct dc_state *base_context, struct pipe_split_policy_backup *policy)
5426 {
5427 struct dc_state *minimal_transition_context = NULL;
5428
5429 minimal_transition_context = dc_state_create_copy(base_context);
5430 if (!minimal_transition_context)
5431 return NULL;
5432
5433 backup_and_set_minimal_pipe_split_policy(dc, base_context, policy);
5434 /* commit minimal state */
5435 if (dc->res_pool->funcs->validate_bandwidth(dc, minimal_transition_context,
5436 DC_VALIDATE_MODE_AND_PROGRAMMING) == DC_OK) {
5437 /* prevent underflow and corruption when reconfiguring pipes */
5438 force_vsync_flip_in_minimal_transition_context(minimal_transition_context);
5439 } else {
5440 /*
5441 * This should never happen, minimal transition state should
5442 * always be validated first before adding pipe split features.
5443 */
5444 release_minimal_transition_state(dc, minimal_transition_context, base_context, policy);
5445 BREAK_TO_DEBUGGER();
5446 minimal_transition_context = NULL;
5447 }
5448 return minimal_transition_context;
5449 }
5450
is_pipe_topology_transition_seamless_with_intermediate_step(struct dc * dc,struct dc_state * initial_state,struct dc_state * intermediate_state,struct dc_state * final_state)5451 static bool is_pipe_topology_transition_seamless_with_intermediate_step(
5452 struct dc *dc,
5453 struct dc_state *initial_state,
5454 struct dc_state *intermediate_state,
5455 struct dc_state *final_state)
5456 {
5457 return dc->hwss.is_pipe_topology_transition_seamless(dc, initial_state,
5458 intermediate_state) &&
5459 dc->hwss.is_pipe_topology_transition_seamless(dc,
5460 intermediate_state, final_state);
5461 }
5462
swap_and_release_current_context(struct dc * dc,struct dc_state * new_context,struct dc_stream_state * stream)5463 static void swap_and_release_current_context(struct dc *dc,
5464 struct dc_state *new_context, struct dc_stream_state *stream)
5465 {
5466
5467 unsigned int i;
5468 struct dc_state *old = dc->current_state;
5469 struct pipe_ctx *pipe_ctx;
5470
5471 /* Since memory free requires elevated IRQ, an interrupt
5472 * request is generated by mem free. If this happens
5473 * between freeing and reassigning the context, our vsync
5474 * interrupt will call into dc and cause a memory
5475 * corruption. Hence, we first reassign the context,
5476 * then free the old context.
5477 */
5478 dc->current_state = new_context;
5479 dc_state_release(old);
5480
5481 // clear any forced full updates
5482 for (i = 0; i < dc->res_pool->pipe_count; i++) {
5483 pipe_ctx = &new_context->res_ctx.pipe_ctx[i];
5484
5485 if (pipe_ctx->plane_state && pipe_ctx->stream == stream)
5486 pipe_ctx->plane_state->force_full_update = false;
5487 }
5488 }
5489
initialize_empty_surface_updates(struct dc_stream_state * stream,struct dc_surface_update * srf_updates)5490 static int initialize_empty_surface_updates(
5491 struct dc_stream_state *stream,
5492 struct dc_surface_update *srf_updates)
5493 {
5494 struct dc_stream_status *status = dc_stream_get_status(stream);
5495 int i;
5496
5497 if (!status)
5498 return 0;
5499
5500 for (i = 0; i < status->plane_count; i++)
5501 srf_updates[i].surface = status->plane_states[i];
5502
5503 return status->plane_count;
5504 }
5505
commit_minimal_transition_based_on_new_context(struct dc * dc,struct dc_state * new_context,struct dc_stream_state * stream,struct dc_stream_update * stream_update,struct dc_surface_update * srf_updates,int surface_count)5506 static bool commit_minimal_transition_based_on_new_context(struct dc *dc,
5507 struct dc_state *new_context,
5508 struct dc_stream_state *stream,
5509 struct dc_stream_update *stream_update,
5510 struct dc_surface_update *srf_updates,
5511 int surface_count)
5512 {
5513 bool success = false;
5514 struct pipe_split_policy_backup policy;
5515 struct dc_state *intermediate_context =
5516 create_minimal_transition_state(dc, new_context,
5517 &policy);
5518
5519 if (intermediate_context) {
5520 if (is_pipe_topology_transition_seamless_with_intermediate_step(
5521 dc,
5522 dc->current_state,
5523 intermediate_context,
5524 new_context)) {
5525 DC_LOG_DC("commit minimal transition state: base = new state\n");
5526 commit_planes_for_stream(dc, srf_updates,
5527 surface_count, stream, stream_update,
5528 UPDATE_TYPE_FULL, intermediate_context);
5529 swap_and_release_current_context(
5530 dc, intermediate_context, stream);
5531 dc_state_retain(dc->current_state);
5532 success = true;
5533 }
5534 release_minimal_transition_state(
5535 dc, intermediate_context, new_context, &policy);
5536 }
5537 return success;
5538 }
5539
commit_minimal_transition_based_on_current_context(struct dc * dc,struct dc_state * new_context,struct dc_stream_state * stream)5540 static bool commit_minimal_transition_based_on_current_context(struct dc *dc,
5541 struct dc_state *new_context, struct dc_stream_state *stream)
5542 {
5543 bool success = false;
5544 struct pipe_split_policy_backup policy;
5545 struct dc_state *intermediate_context;
5546 struct dc_state *old_current_state = dc->current_state;
5547 struct dc_surface_update srf_updates[MAX_SURFACES] = {0};
5548 int surface_count;
5549
5550 /*
5551 * Both current and new contexts share the same stream and plane state
5552 * pointers. When new context is validated, stream and planes get
5553 * populated with new updates such as new plane addresses. This makes
5554 * the current context no longer valid because stream and planes are
5555 * modified from the original. We backup current stream and plane states
5556 * into scratch space whenever we are populating new context. So we can
5557 * restore the original values back by calling the restore function now.
5558 * This restores back the original stream and plane states associated
5559 * with the current state.
5560 */
5561 restore_planes_and_stream_state(&dc->scratch.current_state, stream);
5562 dc_state_retain(old_current_state);
5563 intermediate_context = create_minimal_transition_state(dc,
5564 old_current_state, &policy);
5565
5566 if (intermediate_context) {
5567 if (is_pipe_topology_transition_seamless_with_intermediate_step(
5568 dc,
5569 dc->current_state,
5570 intermediate_context,
5571 new_context)) {
5572 DC_LOG_DC("commit minimal transition state: base = current state\n");
5573 surface_count = initialize_empty_surface_updates(
5574 stream, srf_updates);
5575 commit_planes_for_stream(dc, srf_updates,
5576 surface_count, stream, NULL,
5577 UPDATE_TYPE_FULL, intermediate_context);
5578 swap_and_release_current_context(
5579 dc, intermediate_context, stream);
5580 dc_state_retain(dc->current_state);
5581 success = true;
5582 }
5583 release_minimal_transition_state(dc, intermediate_context,
5584 old_current_state, &policy);
5585 }
5586 dc_state_release(old_current_state);
5587 /*
5588 * Restore stream and plane states back to the values associated with
5589 * new context.
5590 */
5591 restore_planes_and_stream_state(&dc->scratch.new_state, stream);
5592 return success;
5593 }
5594
5595 /**
5596 * commit_minimal_transition_state_in_dc_update - Commit a minimal state based
5597 * on current or new context
5598 *
5599 * @dc: DC structure, used to get the current state
5600 * @new_context: New context
5601 * @stream: Stream getting the update for the flip
5602 * @srf_updates: Surface updates
5603 * @surface_count: Number of surfaces
5604 *
5605 * The function takes in current state and new state and determine a minimal
5606 * transition state as the intermediate step which could make the transition
5607 * between current and new states seamless. If found, it will commit the minimal
5608 * transition state and update current state to this minimal transition state
5609 * and return true, if not, it will return false.
5610 *
5611 * Return:
5612 * Return True if the minimal transition succeeded, false otherwise
5613 */
commit_minimal_transition_state_in_dc_update(struct dc * dc,struct dc_state * new_context,struct dc_stream_state * stream,struct dc_surface_update * srf_updates,int surface_count)5614 static bool commit_minimal_transition_state_in_dc_update(struct dc *dc,
5615 struct dc_state *new_context,
5616 struct dc_stream_state *stream,
5617 struct dc_surface_update *srf_updates,
5618 int surface_count)
5619 {
5620 bool success = commit_minimal_transition_based_on_new_context(
5621 dc, new_context, stream, NULL,
5622 srf_updates, surface_count);
5623 if (!success)
5624 success = commit_minimal_transition_based_on_current_context(dc,
5625 new_context, stream);
5626 if (!success)
5627 DC_LOG_ERROR("Fail to commit a seamless minimal transition state between current and new states.\nThis pipe topology update is non-seamless!\n");
5628 return success;
5629 }
5630
5631 /**
5632 * commit_minimal_transition_state - Create a transition pipe split state
5633 *
5634 * @dc: Used to get the current state status
5635 * @transition_base_context: New transition state
5636 *
5637 * In some specific configurations, such as pipe split on multi-display with
5638 * MPO and/or Dynamic ODM, removing a plane may cause unsupported pipe
5639 * programming when moving to new planes. To mitigate those types of problems,
5640 * this function adds a transition state that minimizes pipe usage before
5641 * programming the new configuration. When adding a new plane, the current
5642 * state requires the least pipes, so it is applied without splitting. When
5643 * removing a plane, the new state requires the least pipes, so it is applied
5644 * without splitting.
5645 *
5646 * Return:
5647 * Return false if something is wrong in the transition state.
5648 */
commit_minimal_transition_state(struct dc * dc,struct dc_state * transition_base_context)5649 static bool commit_minimal_transition_state(struct dc *dc,
5650 struct dc_state *transition_base_context)
5651 {
5652 struct dc_state *transition_context;
5653 struct pipe_split_policy_backup policy;
5654 enum dc_status ret = DC_ERROR_UNEXPECTED;
5655 unsigned int i, j;
5656 unsigned int pipe_in_use = 0;
5657 bool subvp_in_use = false;
5658 bool odm_in_use = false;
5659
5660 /* check current pipes in use*/
5661 for (i = 0; i < dc->res_pool->pipe_count; i++) {
5662 struct pipe_ctx *pipe = &transition_base_context->res_ctx.pipe_ctx[i];
5663
5664 if (pipe->plane_state)
5665 pipe_in_use++;
5666 }
5667
5668 /* If SubVP is enabled and we are adding or removing planes from any main subvp
5669 * pipe, we must use the minimal transition.
5670 */
5671 for (i = 0; i < dc->res_pool->pipe_count; i++) {
5672 struct pipe_ctx *pipe = &dc->current_state->res_ctx.pipe_ctx[i];
5673
5674 if (pipe->stream && dc_state_get_pipe_subvp_type(dc->current_state, pipe) == SUBVP_PHANTOM) {
5675 subvp_in_use = true;
5676 break;
5677 }
5678 }
5679
5680 /* If ODM is enabled and we are adding or removing planes from any ODM
5681 * pipe, we must use the minimal transition.
5682 */
5683 for (i = 0; i < dc->res_pool->pipe_count; i++) {
5684 struct pipe_ctx *pipe = &transition_base_context->res_ctx.pipe_ctx[i];
5685
5686 if (resource_is_pipe_type(pipe, OTG_MASTER)) {
5687 odm_in_use = resource_get_odm_slice_count(pipe) > 1;
5688 break;
5689 }
5690 }
5691
5692 /* When the OS add a new surface if we have been used all of pipes with odm combine
5693 * and mpc split feature, it need use commit_minimal_transition_state to transition safely.
5694 * After OS exit MPO, it will back to use odm and mpc split with all of pipes, we need
5695 * call it again. Otherwise return true to skip.
5696 *
5697 * Reduce the scenarios to use dc_commit_state_no_check in the stage of flip. Especially
5698 * enter/exit MPO when DCN still have enough resources.
5699 */
5700 if (pipe_in_use != dc->res_pool->pipe_count && !subvp_in_use && !odm_in_use)
5701 return true;
5702
5703 DC_LOG_DC("%s base = %s state, reason = %s\n", __func__,
5704 dc->current_state == transition_base_context ? "current" : "new",
5705 subvp_in_use ? "Subvp In Use" :
5706 odm_in_use ? "ODM in Use" :
5707 dc->debug.pipe_split_policy != MPC_SPLIT_AVOID ? "MPC in Use" :
5708 "Unknown");
5709
5710 dc_state_retain(transition_base_context);
5711 transition_context = create_minimal_transition_state(dc,
5712 transition_base_context, &policy);
5713 if (transition_context) {
5714 ret = dc_commit_state_no_check(dc, transition_context);
5715 release_minimal_transition_state(dc, transition_context, transition_base_context, &policy);
5716 }
5717 dc_state_release(transition_base_context);
5718
5719 if (ret != DC_OK) {
5720 /* this should never happen */
5721 BREAK_TO_DEBUGGER();
5722 return false;
5723 }
5724
5725 /* force full surface update */
5726 for (i = 0; i < dc->current_state->stream_count; i++) {
5727 for (j = 0; j < (unsigned int)dc->current_state->stream_status[i].plane_count; j++) {
5728 dc_pipe_update_bits_set_full(&dc->current_state->stream_status[i].plane_states[j]->update_bits);
5729 }
5730 }
5731
5732 return true;
5733 }
5734
populate_fast_updates(struct dc_fast_update * fast_update,struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_update * stream_update)5735 void populate_fast_updates(struct dc_fast_update *fast_update,
5736 struct dc_surface_update *srf_updates,
5737 int surface_count,
5738 struct dc_stream_update *stream_update)
5739 {
5740 int i = 0;
5741
5742 if (stream_update) {
5743 fast_update[0].out_transfer_func = stream_update->out_transfer_func;
5744 fast_update[0].output_csc_transform = stream_update->output_csc_transform;
5745 fast_update[0].cursor_attributes = stream_update->cursor_attributes;
5746 fast_update[0].cursor_position = stream_update->cursor_position;
5747 fast_update[0].periodic_interrupt = stream_update->periodic_interrupt;
5748 fast_update[0].dither_option = stream_update->dither_option;
5749 fast_update[0].gamut_remap = stream_update->gamut_remap;
5750 fast_update[0].vrr_infopacket = stream_update->vrr_infopacket;
5751 fast_update[0].vsc_infopacket = stream_update->vsc_infopacket;
5752 fast_update[0].vsp_infopacket = stream_update->vsp_infopacket;
5753 fast_update[0].hfvsif_infopacket = stream_update->hfvsif_infopacket;
5754 fast_update[0].vtem_infopacket = stream_update->vtem_infopacket;
5755 fast_update[0].adaptive_sync_infopacket = stream_update->adaptive_sync_infopacket;
5756 fast_update[0].avi_infopacket = stream_update->avi_infopacket;
5757 fast_update[0].hdr_static_metadata = stream_update->hdr_static_metadata;
5758 } else {
5759 fast_update[0].out_transfer_func = NULL;
5760 fast_update[0].output_csc_transform = NULL;
5761 fast_update[0].cursor_attributes = NULL;
5762 fast_update[0].cursor_position = NULL;
5763 fast_update[0].periodic_interrupt = NULL;
5764 fast_update[0].dither_option = NULL;
5765 fast_update[0].gamut_remap = NULL;
5766 fast_update[0].vrr_infopacket = NULL;
5767 fast_update[0].vsc_infopacket = NULL;
5768 fast_update[0].vsp_infopacket = NULL;
5769 fast_update[0].hfvsif_infopacket = NULL;
5770 fast_update[0].vtem_infopacket = NULL;
5771 fast_update[0].adaptive_sync_infopacket = NULL;
5772 fast_update[0].avi_infopacket = NULL;
5773 fast_update[0].hdr_static_metadata = NULL;
5774 }
5775
5776 for (i = 0; i < surface_count; i++) {
5777 fast_update[i].flip_addr = srf_updates[i].flip_addr;
5778 fast_update[i].gamma = srf_updates[i].gamma;
5779 fast_update[i].gamut_remap_matrix = srf_updates[i].gamut_remap_matrix;
5780 fast_update[i].input_csc_color_matrix = srf_updates[i].input_csc_color_matrix;
5781 fast_update[i].coeff_reduction_factor = srf_updates[i].coeff_reduction_factor;
5782 fast_update[i].cursor_csc_color_matrix = srf_updates[i].cursor_csc_color_matrix;
5783 fast_update[i].cm_hist_control = srf_updates[i].cm_hist_control;
5784 }
5785 }
5786
fast_updates_exist(const struct dc_fast_update * fast_update,int surface_count)5787 static bool fast_updates_exist(const struct dc_fast_update *fast_update, int surface_count)
5788 {
5789 int i;
5790
5791 if (fast_update[0].out_transfer_func ||
5792 fast_update[0].output_csc_transform ||
5793 fast_update[0].cursor_attributes ||
5794 fast_update[0].cursor_position ||
5795 fast_update[0].periodic_interrupt ||
5796 fast_update[0].dither_option ||
5797 fast_update[0].gamut_remap ||
5798 fast_update[0].vrr_infopacket ||
5799 fast_update[0].vsc_infopacket ||
5800 fast_update[0].vsp_infopacket ||
5801 fast_update[0].hfvsif_infopacket ||
5802 fast_update[0].vtem_infopacket ||
5803 fast_update[0].adaptive_sync_infopacket ||
5804 fast_update[0].avi_infopacket ||
5805 fast_update[0].hdr_static_metadata)
5806 return true;
5807
5808 for (i = 0; i < surface_count; i++) {
5809 if (fast_update[i].flip_addr ||
5810 fast_update[i].gamma ||
5811 fast_update[i].gamut_remap_matrix ||
5812 fast_update[i].input_csc_color_matrix ||
5813 fast_update[i].cursor_csc_color_matrix ||
5814 fast_update[i].cm_hist_control ||
5815 fast_update[i].coeff_reduction_factor)
5816 return true;
5817 }
5818
5819 return false;
5820 }
5821
fast_nonaddr_updates_exist(struct dc_fast_update * fast_update,int surface_count)5822 bool fast_nonaddr_updates_exist(struct dc_fast_update *fast_update, int surface_count)
5823 {
5824 int i;
5825
5826 if (fast_update[0].out_transfer_func ||
5827 fast_update[0].output_csc_transform ||
5828 fast_update[0].gamut_remap ||
5829 fast_update[0].cursor_attributes ||
5830 fast_update[0].cursor_position ||
5831 fast_update[0].periodic_interrupt ||
5832 fast_update[0].dither_option ||
5833 fast_update[0].vrr_infopacket ||
5834 fast_update[0].vsc_infopacket ||
5835 fast_update[0].vsp_infopacket ||
5836 fast_update[0].hfvsif_infopacket ||
5837 fast_update[0].vtem_infopacket ||
5838 fast_update[0].adaptive_sync_infopacket ||
5839 fast_update[0].avi_infopacket ||
5840 fast_update[0].hdr_static_metadata)
5841 return true;
5842
5843 for (i = 0; i < surface_count; i++) {
5844 if (fast_update[i].input_csc_color_matrix ||
5845 fast_update[i].gamma ||
5846 fast_update[i].gamut_remap_matrix ||
5847 fast_update[i].coeff_reduction_factor ||
5848 fast_update[i].cm_hist_control ||
5849 fast_update[i].cursor_csc_color_matrix)
5850 return true;
5851 }
5852
5853 return false;
5854 }
5855
full_update_required_weak(const struct dc * dc,const struct dc_surface_update * srf_updates,int surface_count,const struct dc_stream_update * stream_update,const struct dc_stream_state * stream)5856 static bool full_update_required_weak(
5857 const struct dc *dc,
5858 const struct dc_surface_update *srf_updates,
5859 int surface_count,
5860 const struct dc_stream_update *stream_update,
5861 const struct dc_stream_state *stream)
5862 {
5863 (void)stream_update;
5864 const struct dc_state *context = dc->current_state;
5865 if (srf_updates)
5866 for (int i = 0; i < surface_count; i++)
5867 if (!is_surface_in_context(context, srf_updates[i].surface))
5868 return true;
5869
5870 if (stream) {
5871 const struct dc_stream_status *stream_status = dc_stream_get_status_const(stream);
5872 if (stream_status == NULL || stream_status->plane_count != surface_count)
5873 return true;
5874 }
5875 if (dc->idle_optimizations_allowed)
5876 return true;
5877
5878 if (dc_can_clear_cursor_limit(dc))
5879 return true;
5880
5881 return false;
5882 }
5883
full_update_required(const struct dc * dc,const struct dc_surface_update * srf_updates,int surface_count,const struct dc_stream_update * stream_update,const struct dc_stream_state * stream)5884 static bool full_update_required(
5885 const struct dc *dc,
5886 const struct dc_surface_update *srf_updates,
5887 int surface_count,
5888 const struct dc_stream_update *stream_update,
5889 const struct dc_stream_state *stream)
5890 {
5891 if (full_update_required_weak(dc, srf_updates, surface_count, stream_update, stream))
5892 return true;
5893
5894 for (int i = 0; i < surface_count; i++) {
5895 if (srf_updates &&
5896 (srf_updates[i].plane_info ||
5897 srf_updates[i].scaling_info ||
5898 (srf_updates[i].hdr_mult.value &&
5899 srf_updates[i].hdr_mult.value != srf_updates->surface->hdr_mult.value) ||
5900 (srf_updates[i].sdr_white_level_nits &&
5901 srf_updates[i].sdr_white_level_nits != srf_updates->surface->sdr_white_level_nits) ||
5902 srf_updates[i].in_transfer_func ||
5903 srf_updates[i].surface->force_full_update ||
5904 (srf_updates[i].flip_addr &&
5905 srf_updates[i].flip_addr->address.tmz_surface != srf_updates[i].surface->address.tmz_surface)))
5906 return true;
5907 }
5908
5909 if (stream_update &&
5910 (((stream_update->src.height != 0 && stream_update->src.width != 0) ||
5911 (stream_update->dst.height != 0 && stream_update->dst.width != 0) ||
5912 stream_update->integer_scaling_update) ||
5913 stream_update->abm_level ||
5914 stream_update->dpms_off ||
5915 stream_update->allow_freesync ||
5916 stream_update->vrr_active_variable ||
5917 stream_update->vrr_active_fixed ||
5918 stream_update->output_color_space ||
5919 stream_update->wb_update ||
5920 stream_update->dsc_config ||
5921 stream_update->mst_bw_update ||
5922 stream_update->func_shaper ||
5923 stream_update->lut3d_func ||
5924 stream_update->pending_test_pattern ||
5925 stream_update->crtc_timing_adjust ||
5926 stream_update->scaler_sharpener_update ||
5927 stream_update->hw_cursor_req))
5928 return true;
5929
5930 return false;
5931 }
5932
fast_update_only(const struct dc * dc,const struct dc_fast_update * fast_update,const struct dc_surface_update * srf_updates,int surface_count,const struct dc_stream_update * stream_update,const struct dc_stream_state * stream)5933 static bool fast_update_only(
5934 const struct dc *dc,
5935 const struct dc_fast_update *fast_update,
5936 const struct dc_surface_update *srf_updates,
5937 int surface_count,
5938 const struct dc_stream_update *stream_update,
5939 const struct dc_stream_state *stream)
5940 {
5941 return fast_updates_exist(fast_update, surface_count)
5942 && !full_update_required(dc, srf_updates, surface_count, stream_update, stream);
5943 }
5944
update_planes_and_stream_v2(struct dc * dc,struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_state * stream,struct dc_stream_update * stream_update)5945 static bool update_planes_and_stream_v2(struct dc *dc,
5946 struct dc_surface_update *srf_updates, int surface_count,
5947 struct dc_stream_state *stream,
5948 struct dc_stream_update *stream_update)
5949 {
5950 struct dc_state *context;
5951 enum dc_update_type update_type;
5952 struct dc_fast_update fast_update[MAX_SURFACES] = {0};
5953
5954 /* In cases where MPO and split or ODM are used transitions can
5955 * cause underflow. Apply stream configuration with minimal pipe
5956 * split first to avoid unsupported transitions for active pipes.
5957 */
5958 bool force_minimal_pipe_splitting = 0;
5959 bool is_plane_addition = 0;
5960 bool is_fast_update_only;
5961
5962 populate_fast_updates(fast_update, srf_updates, surface_count, stream_update);
5963 is_fast_update_only = fast_update_only(dc, fast_update, srf_updates,
5964 surface_count, stream_update, stream);
5965 force_minimal_pipe_splitting = could_mpcc_tree_change_for_active_pipes(
5966 dc,
5967 stream,
5968 srf_updates,
5969 surface_count,
5970 &is_plane_addition);
5971
5972 /* on plane addition, minimal state is the current one */
5973 if (force_minimal_pipe_splitting && is_plane_addition &&
5974 !commit_minimal_transition_state(dc, dc->current_state))
5975 return false;
5976
5977 if (!update_planes_and_stream_state(
5978 dc,
5979 srf_updates,
5980 surface_count,
5981 stream,
5982 stream_update,
5983 &update_type,
5984 &context))
5985 return false;
5986
5987 /* on plane removal, minimal state is the new one */
5988 if (force_minimal_pipe_splitting && !is_plane_addition) {
5989 if (!commit_minimal_transition_state(dc, context)) {
5990 dc_state_release(context);
5991 return false;
5992 }
5993 update_type = UPDATE_TYPE_FULL;
5994 }
5995
5996 if (dc->hwss.is_pipe_topology_transition_seamless &&
5997 !dc->hwss.is_pipe_topology_transition_seamless(
5998 dc, dc->current_state, context))
5999 commit_minimal_transition_state_in_dc_update(dc, context, stream,
6000 srf_updates, surface_count);
6001
6002 if (is_fast_update_only && !dc->check_config.enable_legacy_fast_update) {
6003 commit_planes_for_stream_fast(dc,
6004 srf_updates,
6005 surface_count,
6006 stream,
6007 stream_update,
6008 update_type,
6009 context);
6010 } else {
6011 if (!stream_update &&
6012 dc->hwss.is_pipe_topology_transition_seamless &&
6013 !dc->hwss.is_pipe_topology_transition_seamless(
6014 dc, dc->current_state, context)) {
6015 DC_LOG_ERROR("performing non-seamless pipe topology transition with surface only update!\n");
6016 BREAK_TO_DEBUGGER();
6017 }
6018 commit_planes_for_stream(
6019 dc,
6020 srf_updates,
6021 surface_count,
6022 stream,
6023 stream_update,
6024 update_type,
6025 context);
6026 }
6027 if (dc->current_state != context)
6028 swap_and_release_current_context(dc, context, stream);
6029 return true;
6030 }
6031
commit_planes_and_stream_update_on_current_context(struct dc * dc,struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_state * stream,struct dc_stream_update * stream_update,enum dc_update_type update_type)6032 static void commit_planes_and_stream_update_on_current_context(struct dc *dc,
6033 struct dc_surface_update *srf_updates, int surface_count,
6034 struct dc_stream_state *stream,
6035 struct dc_stream_update *stream_update,
6036 enum dc_update_type update_type)
6037 {
6038 struct dc_fast_update fast_update[MAX_SURFACES] = {0};
6039
6040 ASSERT(update_type < UPDATE_TYPE_FULL);
6041 populate_fast_updates(fast_update, srf_updates, surface_count,
6042 stream_update);
6043 if (fast_update_only(dc, fast_update, srf_updates, surface_count,
6044 stream_update, stream) &&
6045 !dc->check_config.enable_legacy_fast_update)
6046 commit_planes_for_stream_fast(dc,
6047 srf_updates,
6048 surface_count,
6049 stream,
6050 stream_update,
6051 update_type,
6052 dc->current_state);
6053 else
6054 commit_planes_for_stream(
6055 dc,
6056 srf_updates,
6057 surface_count,
6058 stream,
6059 stream_update,
6060 update_type,
6061 dc->current_state);
6062 }
6063
commit_planes_and_stream_update_with_new_context(struct dc * dc,struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_state * stream,struct dc_stream_update * stream_update,enum dc_update_type update_type,struct dc_state * new_context)6064 static void commit_planes_and_stream_update_with_new_context(struct dc *dc,
6065 struct dc_surface_update *srf_updates, int surface_count,
6066 struct dc_stream_state *stream,
6067 struct dc_stream_update *stream_update,
6068 enum dc_update_type update_type,
6069 struct dc_state *new_context)
6070 {
6071 bool skip_new_context = false;
6072 ASSERT(update_type >= UPDATE_TYPE_FULL);
6073 /*
6074 * It is required by the feature design that all pipe topologies
6075 * using extra free pipes for power saving purposes such as
6076 * dynamic ODM or SubVp shall only be enabled when it can be
6077 * transitioned seamlessly to AND from its minimal transition
6078 * state. A minimal transition state is defined as the same dc
6079 * state but with all power saving features disabled. So it uses
6080 * the minimum pipe topology. When we can't seamlessly
6081 * transition from state A to state B, we will insert the
6082 * minimal transition state A' or B' in between so seamless
6083 * transition between A and B can be made possible.
6084 *
6085 * To optimize for the time it takes to execute flips,
6086 * the transition from the minimal state to the final state is
6087 * deferred until a steady state (no more transitions) is reached.
6088 */
6089 if (!dc->hwss.is_pipe_topology_transition_seamless(dc, dc->current_state, new_context)) {
6090 if (!dc->debug.disable_deferred_minimal_transitions) {
6091 dc->check_config.deferred_transition_state = true;
6092 dc->check_config.transition_countdown_to_steady_state =
6093 dc->debug.num_fast_flips_to_steady_state_override ?
6094 dc->debug.num_fast_flips_to_steady_state_override :
6095 NUM_FAST_FLIPS_TO_STEADY_STATE;
6096
6097 if (commit_minimal_transition_based_on_new_context(dc, new_context, stream, stream_update,
6098 srf_updates, surface_count)) {
6099 skip_new_context = true;
6100 dc_state_release(new_context);
6101 new_context = dc->current_state;
6102 } else {
6103 /*
6104 * In this case a new mpo plane is being enabled on pipes that were
6105 * previously in use, and the surface update to the existing plane
6106 * includes an alpha box where the new plane will be, so the update
6107 * from minimal to final cannot be deferred as the alpha box would
6108 * be visible to the user
6109 */
6110 commit_minimal_transition_based_on_current_context(dc, new_context, stream);
6111 }
6112 } else {
6113 commit_minimal_transition_state_in_dc_update(dc, new_context, stream,
6114 srf_updates, surface_count);
6115 }
6116 } else if (dc->check_config.deferred_transition_state) {
6117 /* reset countdown as steady state not reached */
6118 dc->check_config.transition_countdown_to_steady_state =
6119 dc->debug.num_fast_flips_to_steady_state_override ?
6120 dc->debug.num_fast_flips_to_steady_state_override :
6121 NUM_FAST_FLIPS_TO_STEADY_STATE;
6122 }
6123
6124 if (!skip_new_context) {
6125 commit_planes_for_stream(dc, srf_updates, surface_count, stream, stream_update, update_type, new_context);
6126 swap_and_release_current_context(dc, new_context, stream);
6127 }
6128 }
6129
update_planes_and_stream_v3(struct dc * dc,struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_state * stream,struct dc_stream_update * stream_update)6130 static bool update_planes_and_stream_v3(struct dc *dc,
6131 struct dc_surface_update *srf_updates, int surface_count,
6132 struct dc_stream_state *stream,
6133 struct dc_stream_update *stream_update)
6134 {
6135 struct dc_state *new_context;
6136 enum dc_update_type update_type;
6137
6138 /*
6139 * When this function returns true and new_context is not equal to
6140 * current state, the function allocates and validates a new dc state
6141 * and assigns it to new_context. The function expects that the caller
6142 * is responsible to free this memory when new_context is no longer
6143 * used. We swap current with new context and free current instead. So
6144 * new_context's memory will live until the next full update after it is
6145 * replaced by a newer context. Refer to the use of
6146 * swap_and_free_current_context below.
6147 */
6148 if (!update_planes_and_stream_state(dc, srf_updates, surface_count,
6149 stream, stream_update, &update_type,
6150 &new_context))
6151 return false;
6152
6153 if (new_context == dc->current_state) {
6154 commit_planes_and_stream_update_on_current_context(dc,
6155 srf_updates, surface_count, stream,
6156 stream_update, update_type);
6157
6158 if (dc->check_config.transition_countdown_to_steady_state)
6159 dc->check_config.transition_countdown_to_steady_state--;
6160 } else {
6161 commit_planes_and_stream_update_with_new_context(dc,
6162 srf_updates, surface_count, stream,
6163 stream_update, update_type, new_context);
6164 }
6165
6166 return true;
6167 }
6168
clear_update_bits(struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_state * stream)6169 static void clear_update_bits(struct dc_surface_update *srf_updates,
6170 int surface_count, struct dc_stream_state *stream)
6171 {
6172 int i;
6173
6174 if (stream)
6175 stream_update_flags_clear(&stream->update_flags);
6176
6177 for (i = 0; i < surface_count; i++)
6178 if (srf_updates[i].surface)
6179 dc_pipe_update_bits_clear(&srf_updates[i].surface->update_bits);
6180 }
6181
dc_update_scratch_acquire(struct dc * dc)6182 static struct dc_update_scratch_space *dc_update_scratch_acquire(struct dc *dc)
6183 {
6184 unsigned int i;
6185
6186 for (i = 0; i < ARRAY_SIZE(dc->update_scratch_pool); i++) {
6187 if (dc->update_scratch_in_use[i])
6188 continue;
6189
6190 dc->update_scratch_in_use[i] = true;
6191 return dc->update_scratch_pool[i];
6192 }
6193
6194 /* TODO: add recoverable scratch acquisition failure handling. */
6195 ASSERT(false);
6196 return NULL;
6197 }
6198
dc_update_scratch_release(struct dc * dc,struct dc_update_scratch_space * scratch)6199 static void dc_update_scratch_release(struct dc *dc,
6200 struct dc_update_scratch_space *scratch)
6201 {
6202 unsigned int i;
6203
6204 for (i = 0; i < ARRAY_SIZE(dc->update_scratch_pool); i++) {
6205 if (dc->update_scratch_pool[i] == scratch) {
6206 dc->update_scratch_in_use[i] = false;
6207 return;
6208 }
6209 }
6210 }
6211
6212 /**
6213 * dc_update_state - Commit an absolute dc_state_update.
6214 * @dc: DC structure
6215 * @updates: root update object carrying stream, plane, and probe updates
6216 * Return: true on success, false on failure.
6217 */
dc_update_state(struct dc * dc,const struct dc_state_update * updates)6218 bool dc_update_state(struct dc *dc, const struct dc_state_update *updates)
6219 {
6220 struct dc_update_scratch_space *scratch;
6221 bool more = true;
6222
6223 if (!dc || !updates)
6224 return false;
6225
6226 scratch = dc_update_state_init(dc, updates);
6227 if (!scratch)
6228 return false;
6229
6230 while (more) {
6231 if (!dc_update_state_prepare(scratch))
6232 return false;
6233
6234 dc_update_state_execute(scratch);
6235 more = dc_update_state_cleanup(scratch);
6236 }
6237
6238 return true;
6239 }
6240
6241 /**
6242 * dc_update_planes_and_stream - Shim for dc_update_state.
6243 * @dc: DC structure
6244 * @srf_updates: array of surface update descriptors
6245 * @surface_count: number of entries in @srf_updates
6246 * @stream: target stream
6247 * @stream_update: optional stream update
6248 *
6249 * Packs the individual arguments into a dc_state_update and forwards to
6250 * dc_update_state(). Preserved for out-of-tree and incremental callers.
6251 *
6252 * Return: true on success; false on failure.
6253 */
dc_update_planes_and_stream(struct dc * dc,struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_state * stream,struct dc_stream_update * stream_update)6254 bool dc_update_planes_and_stream(struct dc *dc,
6255 struct dc_surface_update *srf_updates, int surface_count,
6256 struct dc_stream_state *stream,
6257 struct dc_stream_update *stream_update)
6258 {
6259 struct dc_state_update updates = {
6260 .stream = stream,
6261 .stream_update = stream_update,
6262 .surface_updates = srf_updates,
6263 .surface_count = surface_count,
6264 };
6265
6266 return dc_update_state(dc, &updates);
6267 }
6268
dc_commit_updates_for_stream(struct dc * dc,struct dc_surface_update * srf_updates,int surface_count,struct dc_stream_state * stream,struct dc_stream_update * stream_update,struct dc_state * state)6269 void dc_commit_updates_for_stream(struct dc *dc,
6270 struct dc_surface_update *srf_updates,
6271 int surface_count,
6272 struct dc_stream_state *stream,
6273 struct dc_stream_update *stream_update,
6274 struct dc_state *state)
6275 {
6276 (void)state;
6277 bool ret = false;
6278
6279 dc_exit_ips_for_hw_access(dc);
6280 /* TODO: Since change commit sequence can have a huge impact,
6281 * we decided to only enable it for DCN3x. However, as soon as
6282 * we get more confident about this change we'll need to enable
6283 * the new sequence for all ASICs.
6284 */
6285 if (dc->ctx->dce_version >= DCN_VERSION_4_01) {
6286 ret = update_planes_and_stream_v3(dc, srf_updates, surface_count,
6287 stream, stream_update);
6288 } else {
6289 ret = update_planes_and_stream_v2(dc, srf_updates, surface_count,
6290 stream, stream_update);
6291 }
6292
6293 if (ret && dc->ctx->dce_version >= DCN_VERSION_3_2)
6294 clear_update_bits(srf_updates, surface_count, stream);
6295 }
6296
dc_get_current_stream_count(struct dc * dc)6297 uint8_t dc_get_current_stream_count(struct dc *dc)
6298 {
6299 return dc->current_state->stream_count;
6300 }
6301
dc_get_stream_at_index(struct dc * dc,uint8_t i)6302 struct dc_stream_state *dc_get_stream_at_index(struct dc *dc, uint8_t i)
6303 {
6304 if (i < dc->current_state->stream_count)
6305 return dc->current_state->streams[i];
6306 return NULL;
6307 }
6308
dc_interrupt_to_irq_source(struct dc * dc,uint32_t src_id,uint32_t ext_id)6309 enum dc_irq_source dc_interrupt_to_irq_source(
6310 struct dc *dc,
6311 uint32_t src_id,
6312 uint32_t ext_id)
6313 {
6314 return dal_irq_service_to_irq_source(dc->res_pool->irqs, src_id, ext_id);
6315 }
6316
6317 /*
6318 * dc_interrupt_set() - Enable/disable an AMD hw interrupt source
6319 */
dc_interrupt_set(struct dc * dc,enum dc_irq_source src,bool enable)6320 bool dc_interrupt_set(struct dc *dc, enum dc_irq_source src, bool enable)
6321 {
6322
6323 if (dc == NULL)
6324 return false;
6325
6326 return dal_irq_service_set(dc->res_pool->irqs, src, enable);
6327 }
6328
dc_interrupt_ack(struct dc * dc,enum dc_irq_source src)6329 void dc_interrupt_ack(struct dc *dc, enum dc_irq_source src)
6330 {
6331 dal_irq_service_ack(dc->res_pool->irqs, src);
6332 }
6333
6334 /* Preserve this tg if a physical link is still lighting a present display */
should_preserve_tg(struct dc * dc,struct timing_generator * tg)6335 static bool should_preserve_tg(struct dc *dc, struct timing_generator *tg)
6336 {
6337 unsigned int i, j;
6338
6339 /* Check if a physical link is lighting this tg */
6340 for (i = 0; i < dc->link_count; i++) {
6341 struct dc_link *link = dc->links[i];
6342 int fe;
6343
6344 if (!link || link->ep_type != DISPLAY_ENDPOINT_PHY ||
6345 !link->link_enc ||
6346 !link->link_enc->funcs->is_dig_enabled ||
6347 !link->link_enc->funcs->is_dig_enabled(link->link_enc) ||
6348 !link->link_enc->funcs->get_dig_frontend)
6349 continue;
6350
6351 /* Get the DIG front-end this link's encoder drives; skip if none */
6352 fe = link->link_enc->funcs->get_dig_frontend(link->link_enc);
6353 if (fe == ENGINE_ID_UNKNOWN)
6354 continue;
6355
6356 /* Find the stream encoder bound to this link's front-end */
6357 for (j = 0; j < dc->res_pool->stream_enc_count; j++) {
6358 struct stream_encoder *se = dc->res_pool->stream_enc[j];
6359
6360 /* Skip unless this stream encoder feeds our front-end and drives this tg */
6361 if (se->id != fe || !se->funcs->dig_source_otg ||
6362 (int)se->funcs->dig_source_otg(se) != tg->inst)
6363 continue;
6364
6365 /* This link drives the OTG: keep a seamless-boot eDP, or
6366 * any external link whose sink is still connected.
6367 */
6368 if (link->connector_signal == SIGNAL_TYPE_EDP)
6369 return true;
6370 if (link->link_enc->funcs->get_hpd_state &&
6371 dc->link_srv->get_hpd_state(link))
6372 return true;
6373 }
6374 }
6375
6376 return false;
6377 }
6378
6379 /*
6380 * GOP/vBIOS may leave an OPTC enabled for a display present at power-on but no
6381 * longer driven (e.g. external DP unplugged at boot). Such a dangling pipe keeps
6382 * DCN out of idle and blocks s0i3. If nothing needs to survive (no committed
6383 * stream or seamless-boot eDP) and no sink is still connected, power down all hw
6384 * blocks.
6385 */
dc_disable_dangling_timing_generators(struct dc * dc)6386 void dc_disable_dangling_timing_generators(struct dc *dc)
6387 {
6388 struct dce_hwseq *hws = dc->hwseq;
6389 bool any_dangling = false;
6390 bool any_preserved = false;
6391 bool any_connected = false;
6392 unsigned int i;
6393
6394 /* No real hw to touch on a virtual/emulated environment */
6395 if (dc->ctx->dce_environment == DCE_ENV_VIRTUAL_HW)
6396 return;
6397
6398 /* Wake hw out of IPS before reading/touching tg state */
6399 dc_exit_ips_for_hw_access(dc);
6400
6401 /* Classify every enabled tg as either to-preserve or dangling */
6402 for (i = 0; i < dc->res_pool->timing_generator_count; i++) {
6403 struct timing_generator *tg = dc->res_pool->timing_generators[i];
6404
6405 if (!tg || !tg->funcs->is_tg_enabled ||
6406 !tg->funcs->is_tg_enabled(tg))
6407 continue;
6408
6409 if (should_preserve_tg(dc, tg))
6410 any_preserved = true;
6411 else
6412 any_dangling = true;
6413 }
6414
6415 /* A physically connected sink (HPD asserted) will be re-lit by a
6416 * subsequent atomic commit. For that case we don't call the global
6417 * power_down().
6418 */
6419 for (i = 0; i < dc->link_count; i++) {
6420 struct dc_link *link = dc->links[i];
6421
6422 if (link && link->ep_type == DISPLAY_ENDPOINT_PHY &&
6423 link->link_enc && link->link_enc->funcs &&
6424 link->link_enc->funcs->get_hpd_state &&
6425 dc->link_srv->get_hpd_state(link)) {
6426 any_connected = true;
6427 break;
6428 }
6429 }
6430
6431 if (!any_dangling)
6432 return;
6433
6434 if (!any_preserved && !any_connected && hws && hws->funcs.power_down) {
6435 /* Truly headless / all sinks unplugged: nothing to preserve */
6436 DC_LOG_DC("%s: powering down dangling hw blocks to allow idle\n",
6437 __func__);
6438 hws->funcs.power_down(dc);
6439 return;
6440 }
6441 }
6442
6443 /*
6444 * dc_get_flip_pending_on_otg() - Check if a GRPH_FLIP is still pending on OTG
6445 *
6446 * @dc: display core context @otg_inst: OTG instance to query
6447 *
6448 * Reads the HUBP flip-pending status for the pipe(s) bound to @otg_inst,
6449 * returning true if any of them has not yet latched its programmed surface
6450 * address.
6451 *
6452 * Unlike dc_plane_get_status(), this does not take or mutate a dc_plane_state,
6453 * so it is safe to call from interrupt context without racing a concurrent
6454 * commit that may be updating plane state.
6455 *
6456 * Return: true if a flip is still pending on the OTG, false otherwise.
6457 */
dc_get_flip_pending_on_otg(struct dc * dc,int otg_inst)6458 bool dc_get_flip_pending_on_otg(struct dc *dc, int otg_inst)
6459 {
6460 bool flip_pending = false;
6461 unsigned int i;
6462
6463 if (!dc || !dc->current_state)
6464 return false;
6465
6466 dc_exit_ips_for_hw_access(dc);
6467
6468 for (i = 0; i < dc->res_pool->pipe_count; i++) {
6469 struct pipe_ctx *pipe_ctx = &dc->current_state->res_ctx.pipe_ctx[i];
6470 struct hubp *hubp = pipe_ctx->plane_res.hubp;
6471
6472 if (!pipe_ctx->plane_state || !pipe_ctx->stream_res.tg)
6473 continue;
6474
6475 if (pipe_ctx->stream_res.tg->inst != otg_inst)
6476 continue;
6477
6478 if (hubp && hubp->funcs->hubp_is_flip_pending &&
6479 hubp->funcs->hubp_is_flip_pending(hubp)) {
6480 flip_pending = true;
6481 break;
6482 }
6483 }
6484
6485 return flip_pending;
6486 }
6487
dc_power_down_on_boot(struct dc * dc)6488 void dc_power_down_on_boot(struct dc *dc)
6489 {
6490 if (dc->ctx->dce_environment != DCE_ENV_VIRTUAL_HW &&
6491 dc->hwss.power_down_on_boot) {
6492 if (dc->current_state->stream_count > 0)
6493 return;
6494
6495 if (dc->caps.ips_support)
6496 dc_exit_ips_for_hw_access(dc);
6497 dc->hwss.power_down_on_boot(dc);
6498
6499 if (dc->clk_mgr && dc->clk_mgr->funcs && dc->clk_mgr->funcs->notify_cstate_disable)
6500 dc->clk_mgr->funcs->notify_cstate_disable(dc->clk_mgr, false);
6501 }
6502 }
6503
dc_set_power_state(struct dc * dc,enum dc_acpi_cm_power_state power_state)6504 void dc_set_power_state(struct dc *dc, enum dc_acpi_cm_power_state power_state)
6505 {
6506 if (!dc->current_state)
6507 return;
6508
6509 dc_exit_ips_for_hw_access(dc);
6510
6511 switch (power_state) {
6512 case DC_ACPI_CM_POWER_STATE_D0:
6513 dc_state_construct(dc, dc->current_state);
6514
6515 dc_z10_restore(dc);
6516
6517 dc_dmub_srv_notify_fw_dc_power_state(dc->ctx->dmub_srv, power_state);
6518
6519 dc->hwss.init_hw(dc);
6520
6521 if (dc->hwss.init_sys_ctx != NULL &&
6522 dc->vm_pa_config.valid) {
6523 dc->hwss.init_sys_ctx(dc->hwseq, dc, &dc->vm_pa_config);
6524 }
6525 break;
6526 case DC_ACPI_CM_POWER_STATE_D3:
6527 if (dc->caps.ips_support)
6528 dc_dmub_srv_notify_fw_dc_power_state(dc->ctx->dmub_srv, DC_ACPI_CM_POWER_STATE_D3);
6529
6530 if (dc->caps.ips_v2_support) {
6531 if (dc->clk_mgr->funcs->set_low_power_state)
6532 dc->clk_mgr->funcs->set_low_power_state(dc->clk_mgr);
6533 }
6534 break;
6535 default:
6536 ASSERT(dc->current_state->stream_count == 0);
6537 dc_dmub_srv_notify_fw_dc_power_state(dc->ctx->dmub_srv, power_state);
6538
6539 dc_state_destruct(dc->current_state);
6540
6541 break;
6542 }
6543 }
6544
dc_resume(struct dc * dc)6545 void dc_resume(struct dc *dc)
6546 {
6547 uint32_t i;
6548
6549 for (i = 0; i < dc->link_count; i++)
6550 dc->link_srv->resume(dc->links[i]);
6551 }
6552
dc_is_dmcu_initialized(struct dc * dc)6553 bool dc_is_dmcu_initialized(struct dc *dc)
6554 {
6555 struct dmcu *dmcu = dc->res_pool->dmcu;
6556
6557 if (dmcu)
6558 return dmcu->funcs->is_dmcu_initialized(dmcu);
6559 return false;
6560 }
6561
dc_set_clock(struct dc * dc,enum dc_clock_type clock_type,uint32_t clk_khz,uint32_t stepping)6562 enum dc_status dc_set_clock(struct dc *dc, enum dc_clock_type clock_type, uint32_t clk_khz, uint32_t stepping)
6563 {
6564 if (dc->hwss.set_clock)
6565 return dc->hwss.set_clock(dc, clock_type, clk_khz, stepping);
6566 return DC_ERROR_UNEXPECTED;
6567 }
dc_get_clock(struct dc * dc,enum dc_clock_type clock_type,struct dc_clock_config * clock_cfg)6568 void dc_get_clock(struct dc *dc, enum dc_clock_type clock_type, struct dc_clock_config *clock_cfg)
6569 {
6570 if (dc->hwss.get_clock)
6571 dc->hwss.get_clock(dc, clock_type, clock_cfg);
6572 }
6573
6574 /* enable/disable eDP PSR without specify stream for eDP */
dc_set_psr_allow_active(struct dc * dc,bool enable)6575 bool dc_set_psr_allow_active(struct dc *dc, bool enable)
6576 {
6577 int i;
6578 bool allow_active;
6579
6580 for (i = 0; i < dc->current_state->stream_count ; i++) {
6581 struct dc_link *link;
6582 struct dc_stream_state *stream = dc->current_state->streams[i];
6583
6584 link = stream->link;
6585 if (!link)
6586 continue;
6587
6588 if (link->psr_settings.psr_feature_enabled) {
6589 if (enable && !link->psr_settings.psr_allow_active) {
6590 allow_active = true;
6591 if (!dc_link_set_psr_allow_active(link, &allow_active, false, false, NULL))
6592 return false;
6593 } else if (!enable && link->psr_settings.psr_allow_active) {
6594 allow_active = false;
6595 if (!dc_link_set_psr_allow_active(link, &allow_active, true, false, NULL))
6596 return false;
6597 }
6598 }
6599 }
6600
6601 return true;
6602 }
6603
6604 /* enable/disable eDP Replay without specify stream for eDP */
dc_set_replay_allow_active(struct dc * dc,bool active)6605 bool dc_set_replay_allow_active(struct dc *dc, bool active)
6606 {
6607 int i;
6608 bool allow_active;
6609
6610 for (i = 0; i < dc->current_state->stream_count; i++) {
6611 struct dc_link *link;
6612 struct dc_stream_state *stream = dc->current_state->streams[i];
6613
6614 link = stream->link;
6615 if (!link)
6616 continue;
6617
6618 if (link->replay_settings.replay_feature_enabled) {
6619 if (active && !link->replay_settings.replay_allow_active) {
6620 allow_active = true;
6621 if (!dc_link_set_replay_allow_active(link, &allow_active,
6622 false, false, NULL))
6623 return false;
6624 } else if (!active && link->replay_settings.replay_allow_active) {
6625 allow_active = false;
6626 if (!dc_link_set_replay_allow_active(link, &allow_active,
6627 true, false, NULL))
6628 return false;
6629 }
6630 }
6631 }
6632
6633 return true;
6634 }
6635
6636 /* set IPS disable state */
dc_set_ips_disable(struct dc * dc,unsigned int disable_ips)6637 bool dc_set_ips_disable(struct dc *dc, unsigned int disable_ips)
6638 {
6639 dc_exit_ips_for_hw_access(dc);
6640
6641 dc->config.disable_ips = disable_ips;
6642
6643 return true;
6644 }
6645
dc_allow_idle_optimizations_internal(struct dc * dc,bool allow,char const * caller_name)6646 void dc_allow_idle_optimizations_internal(struct dc *dc, bool allow, char const *caller_name)
6647 {
6648 int idle_fclk_khz = 0, idle_dramclk_khz = 0;
6649 unsigned int i = 0;
6650 enum mall_stream_type subvp_pipe_type[MAX_PIPES] = {0};
6651 struct pipe_ctx *pipe = NULL;
6652 struct dc_state *context = dc->current_state;
6653
6654 if (dc->debug.disable_idle_power_optimizations) {
6655 DC_LOG_DEBUG("%s: disabled\n", __func__);
6656 return;
6657 }
6658
6659 if (allow != dc->idle_optimizations_allowed)
6660 DC_LOG_IPS("%s: allow_idle old=%d new=%d (caller=%s)\n", __func__,
6661 dc->idle_optimizations_allowed, allow, caller_name);
6662
6663 if (dc->caps.ips_support && (dc->config.disable_ips == DMUB_IPS_DISABLE_ALL))
6664 return;
6665
6666 if (dc->clk_mgr != NULL && dc->clk_mgr->funcs->is_smu_present)
6667 if (!dc->clk_mgr->funcs->is_smu_present(dc->clk_mgr))
6668 return;
6669
6670 if (allow == dc->idle_optimizations_allowed)
6671 return;
6672
6673 if (dc->hwss.apply_idle_power_optimizations && dc->clk_mgr != NULL &&
6674 dc->hwss.apply_idle_power_optimizations(dc, allow)) {
6675 dc->idle_optimizations_allowed = allow;
6676 DC_LOG_DEBUG("%s: %s\n", __func__, allow ? "enabled" : "disabled");
6677 }
6678
6679 // log idle clocks and sub vp pipe types at idle optimization time
6680 if (dc->clk_mgr != NULL && dc->clk_mgr->funcs->get_hard_min_fclk)
6681 idle_fclk_khz = dc->clk_mgr->funcs->get_hard_min_fclk(dc->clk_mgr);
6682
6683 if (dc->clk_mgr != NULL && dc->clk_mgr->funcs->get_hard_min_memclk)
6684 idle_dramclk_khz = dc->clk_mgr->funcs->get_hard_min_memclk(dc->clk_mgr);
6685
6686 if (dc->res_pool && context) {
6687 for (i = 0; i < dc->res_pool->pipe_count; i++) {
6688 pipe = &context->res_ctx.pipe_ctx[i];
6689 subvp_pipe_type[i] = dc_state_get_pipe_subvp_type(context, pipe);
6690 }
6691 }
6692 if (!dc->caps.is_apu)
6693 DC_LOG_DC("%s: allow_idle=%d\n HardMinUClk_Khz=%d HardMinDramclk_Khz=%d\n Pipe_0=%d Pipe_1=%d Pipe_2=%d Pipe_3=%d Pipe_4=%d Pipe_5=%d (caller=%s)\n",
6694 __func__, allow, idle_fclk_khz, idle_dramclk_khz, subvp_pipe_type[0], subvp_pipe_type[1], subvp_pipe_type[2],
6695 subvp_pipe_type[3], subvp_pipe_type[4], subvp_pipe_type[5], caller_name);
6696
6697 }
6698
dc_exit_ips_for_hw_access_internal(struct dc * dc,const char * caller_name)6699 void dc_exit_ips_for_hw_access_internal(struct dc *dc, const char *caller_name)
6700 {
6701 if (dc->caps.ips_support)
6702 dc_allow_idle_optimizations_internal(dc, false, caller_name);
6703 }
6704
dc_dmub_is_ips_idle_state(struct dc * dc)6705 bool dc_dmub_is_ips_idle_state(struct dc *dc)
6706 {
6707 if (dc->debug.disable_idle_power_optimizations)
6708 return false;
6709
6710 if (!dc->caps.ips_support || (dc->config.disable_ips == DMUB_IPS_DISABLE_ALL))
6711 return false;
6712
6713 if (!dc->ctx->dmub_srv)
6714 return false;
6715
6716 return dc->ctx->dmub_srv->idle_allowed;
6717 }
6718
6719 /* set min and max memory clock to lowest and highest DPM level, respectively */
dc_unlock_memory_clock_frequency(struct dc * dc)6720 void dc_unlock_memory_clock_frequency(struct dc *dc)
6721 {
6722 if (dc->clk_mgr->funcs->set_hard_min_memclk)
6723 dc->clk_mgr->funcs->set_hard_min_memclk(dc->clk_mgr, false);
6724
6725 if (dc->clk_mgr->funcs->set_hard_max_memclk)
6726 dc->clk_mgr->funcs->set_hard_max_memclk(dc->clk_mgr);
6727 }
6728
6729 /* set min memory clock to the min required for current mode, max to maxDPM */
dc_lock_memory_clock_frequency(struct dc * dc)6730 void dc_lock_memory_clock_frequency(struct dc *dc)
6731 {
6732 if (dc->clk_mgr->funcs->get_memclk_states_from_smu)
6733 dc->clk_mgr->funcs->get_memclk_states_from_smu(dc->clk_mgr);
6734
6735 if (dc->clk_mgr->funcs->set_hard_min_memclk)
6736 dc->clk_mgr->funcs->set_hard_min_memclk(dc->clk_mgr, true);
6737
6738 if (dc->clk_mgr->funcs->set_hard_max_memclk)
6739 dc->clk_mgr->funcs->set_hard_max_memclk(dc->clk_mgr);
6740 }
6741
blank_and_force_memclk(struct dc * dc,bool apply,unsigned int memclk_mhz)6742 static void blank_and_force_memclk(struct dc *dc, bool apply, unsigned int memclk_mhz)
6743 {
6744 (void)apply;
6745 struct dc_state *context = dc->current_state;
6746 struct hubp *hubp;
6747 struct pipe_ctx *pipe;
6748 unsigned int i;
6749
6750 for (i = 0; i < dc->res_pool->pipe_count; i++) {
6751 pipe = &context->res_ctx.pipe_ctx[i];
6752
6753 if (pipe->stream != NULL) {
6754 dc->hwss.disable_pixel_data(dc, pipe, true);
6755
6756 // wait for double buffer
6757 pipe->stream_res.tg->funcs->wait_for_state(pipe->stream_res.tg, CRTC_STATE_VACTIVE);
6758 pipe->stream_res.tg->funcs->wait_for_state(pipe->stream_res.tg, CRTC_STATE_VBLANK);
6759 pipe->stream_res.tg->funcs->wait_for_state(pipe->stream_res.tg, CRTC_STATE_VACTIVE);
6760
6761 hubp = pipe->plane_res.hubp;
6762 hubp->funcs->set_blank_regs(hubp, true);
6763 }
6764 }
6765 if (dc->clk_mgr->funcs->set_max_memclk)
6766 dc->clk_mgr->funcs->set_max_memclk(dc->clk_mgr, memclk_mhz);
6767 if (dc->clk_mgr->funcs->set_min_memclk)
6768 dc->clk_mgr->funcs->set_min_memclk(dc->clk_mgr, memclk_mhz);
6769
6770 for (i = 0; i < dc->res_pool->pipe_count; i++) {
6771 pipe = &context->res_ctx.pipe_ctx[i];
6772
6773 if (pipe->stream != NULL) {
6774 dc->hwss.disable_pixel_data(dc, pipe, false);
6775
6776 hubp = pipe->plane_res.hubp;
6777 hubp->funcs->set_blank_regs(hubp, false);
6778 }
6779 }
6780 }
6781
6782
6783 /**
6784 * dc_enable_dcmode_clk_limit() - lower clocks in dc (battery) mode
6785 * @dc: pointer to dc of the dm calling this
6786 * @enable: True = transition to DC mode, false = transition back to AC mode
6787 *
6788 * Some SoCs define additional clock limits when in DC mode, DM should
6789 * invoke this function when the platform undergoes a power source transition
6790 * so DC can apply/unapply the limit. This interface may be disruptive to
6791 * the onscreen content.
6792 *
6793 * Context: Triggered by OS through DM interface, or manually by escape calls.
6794 * Need to hold a dclock when doing so.
6795 *
6796 * Return: none (void function)
6797 *
6798 */
dc_enable_dcmode_clk_limit(struct dc * dc,bool enable)6799 void dc_enable_dcmode_clk_limit(struct dc *dc, bool enable)
6800 {
6801 unsigned int softMax = 0, maxDPM = 0, funcMin = 0, i;
6802 bool p_state_change_support;
6803
6804 if (!dc->config.dc_mode_clk_limit_support)
6805 return;
6806
6807 softMax = dc->clk_mgr->bw_params->dc_mode_softmax_memclk;
6808 for (i = 0; i < dc->clk_mgr->bw_params->clk_table.num_entries; i++) {
6809 if (dc->clk_mgr->bw_params->clk_table.entries[i].memclk_mhz > maxDPM)
6810 maxDPM = dc->clk_mgr->bw_params->clk_table.entries[i].memclk_mhz;
6811 }
6812 funcMin = (dc->clk_mgr->clks.dramclk_khz + 999) / 1000;
6813 p_state_change_support = dc->clk_mgr->clks.p_state_change_support;
6814
6815 if (enable && !dc->clk_mgr->dc_mode_softmax_enabled) {
6816 if (p_state_change_support) {
6817 if (funcMin <= softMax && dc->clk_mgr->funcs->set_max_memclk)
6818 dc->clk_mgr->funcs->set_max_memclk(dc->clk_mgr, softMax);
6819 // else: No-Op
6820 } else {
6821 if (funcMin <= softMax)
6822 blank_and_force_memclk(dc, true, softMax);
6823 // else: No-Op
6824 }
6825 } else if (!enable && dc->clk_mgr->dc_mode_softmax_enabled) {
6826 if (p_state_change_support) {
6827 if (funcMin <= softMax && dc->clk_mgr->funcs->set_max_memclk)
6828 dc->clk_mgr->funcs->set_max_memclk(dc->clk_mgr, maxDPM);
6829 // else: No-Op
6830 } else {
6831 if (funcMin <= softMax)
6832 blank_and_force_memclk(dc, true, maxDPM);
6833 // else: No-Op
6834 }
6835 }
6836 dc->clk_mgr->dc_mode_softmax_enabled = enable;
6837 }
dc_is_plane_eligible_for_idle_optimizations(struct dc * dc,unsigned int pitch,unsigned int height,enum surface_pixel_format format,struct dc_cursor_attributes * cursor_attr)6838 bool dc_is_plane_eligible_for_idle_optimizations(struct dc *dc,
6839 unsigned int pitch,
6840 unsigned int height,
6841 enum surface_pixel_format format,
6842 struct dc_cursor_attributes *cursor_attr)
6843 {
6844 if (dc->hwss.does_plane_fit_in_mall && dc->hwss.does_plane_fit_in_mall(dc, pitch, height, format, cursor_attr))
6845 return true;
6846 return false;
6847 }
6848
6849 /* cleanup on driver unload */
dc_hardware_release(struct dc * dc)6850 void dc_hardware_release(struct dc *dc)
6851 {
6852 dc_mclk_switch_using_fw_based_vblank_stretch_shut_down(dc);
6853
6854 if (dc->hwss.hardware_release)
6855 dc->hwss.hardware_release(dc);
6856 }
6857
dc_mclk_switch_using_fw_based_vblank_stretch_shut_down(struct dc * dc)6858 void dc_mclk_switch_using_fw_based_vblank_stretch_shut_down(struct dc *dc)
6859 {
6860 if (dc->current_state)
6861 dc->current_state->bw_ctx.bw.dcn.clk.fw_based_mclk_switching_shut_down = true;
6862 }
6863
6864 /**
6865 * dc_is_dmub_outbox_supported - Check if DMUB firmware support outbox notification
6866 *
6867 * @dc: [in] dc structure
6868 *
6869 * Checks whether DMUB FW supports outbox notifications, if supported DM
6870 * should register outbox interrupt prior to actually enabling interrupts
6871 * via dc_enable_dmub_outbox
6872 *
6873 * Return:
6874 * True if DMUB FW supports outbox notifications, False otherwise
6875 */
dc_is_dmub_outbox_supported(struct dc * dc)6876 bool dc_is_dmub_outbox_supported(struct dc *dc)
6877 {
6878 if (!dc->caps.dmcub_support)
6879 return false;
6880
6881 switch (dc->ctx->asic_id.chip_family) {
6882
6883 case FAMILY_YELLOW_CARP:
6884 /* DCN31 B0 USB4 DPIA needs dmub notifications for interrupts */
6885 if (dc->ctx->asic_id.hw_internal_rev == YELLOW_CARP_B0 &&
6886 !dc->debug.dpia_debug.bits.disable_dpia)
6887 return true;
6888 break;
6889
6890 case AMDGPU_FAMILY_GC_11_0_1:
6891 case AMDGPU_FAMILY_GC_11_5_0:
6892 case AMDGPU_FAMILY_GC_11_5_4:
6893 if (!dc->debug.dpia_debug.bits.disable_dpia)
6894 return true;
6895 break;
6896
6897 default:
6898 break;
6899 }
6900
6901 /* dmub aux needs dmub notifications to be enabled */
6902 return dc->debug.enable_dmub_aux_for_legacy_ddc;
6903
6904 }
6905
6906 /**
6907 * dc_enable_dmub_notifications - Check if dmub fw supports outbox
6908 *
6909 * @dc: [in] dc structure
6910 *
6911 * Calls dc_is_dmub_outbox_supported to check if dmub fw supports outbox
6912 * notifications. All DMs shall switch to dc_is_dmub_outbox_supported. This
6913 * API shall be removed after switching.
6914 *
6915 * Return:
6916 * True if DMUB FW supports outbox notifications, False otherwise
6917 */
dc_enable_dmub_notifications(struct dc * dc)6918 bool dc_enable_dmub_notifications(struct dc *dc)
6919 {
6920 return dc_is_dmub_outbox_supported(dc);
6921 }
6922
6923 /**
6924 * dc_enable_dmub_outbox - Enables DMUB unsolicited notification
6925 *
6926 * @dc: [in] dc structure
6927 *
6928 * Enables DMUB unsolicited notifications to x86 via outbox.
6929 */
dc_enable_dmub_outbox(struct dc * dc)6930 void dc_enable_dmub_outbox(struct dc *dc)
6931 {
6932 struct dc_context *dc_ctx = dc->ctx;
6933
6934 dmub_enable_outbox_notification(dc_ctx->dmub_srv);
6935 DC_LOG_DC("%s: dmub outbox notifications enabled\n", __func__);
6936 }
6937
6938 /**
6939 * dc_process_dmub_aux_transfer_async - Submits aux command to dmub via inbox message
6940 * Sets port index appropriately for legacy DDC
6941 * @dc: dc structure
6942 * @link_index: link index
6943 * @payload: aux payload
6944 *
6945 * Returns: True if successful, False if failure
6946 */
dc_process_dmub_aux_transfer_async(struct dc * dc,uint32_t link_index,struct aux_payload * payload)6947 bool dc_process_dmub_aux_transfer_async(struct dc *dc,
6948 uint32_t link_index,
6949 struct aux_payload *payload)
6950 {
6951 uint8_t action;
6952 union dmub_rb_cmd cmd = {0};
6953
6954 if (link_index >= dc->link_count || !dc->links[link_index])
6955 return false;
6956
6957 if (payload->length > sizeof(cmd.dp_aux_access.aux_control.dpaux.data))
6958 return false;
6959
6960 cmd.dp_aux_access.header.type = DMUB_CMD__DP_AUX_ACCESS;
6961 cmd.dp_aux_access.header.payload_bytes = 0;
6962 /* For dpia, ddc_pin is set to NULL */
6963 if (!dc->links[link_index]->ddc->ddc_pin)
6964 cmd.dp_aux_access.aux_control.type = AUX_CHANNEL_DPIA;
6965 else
6966 cmd.dp_aux_access.aux_control.type = AUX_CHANNEL_LEGACY_DDC;
6967
6968 cmd.dp_aux_access.aux_control.instance = (uint8_t)dc->links[link_index]->ddc_hw_inst;
6969 cmd.dp_aux_access.aux_control.sw_crc_enabled = 0;
6970 cmd.dp_aux_access.aux_control.timeout = 0;
6971 cmd.dp_aux_access.aux_control.dpaux.address = payload->address;
6972 cmd.dp_aux_access.aux_control.dpaux.is_i2c_over_aux = payload->i2c_over_aux;
6973 cmd.dp_aux_access.aux_control.dpaux.length = (uint8_t)payload->length;
6974
6975 /* set aux action */
6976 if (payload->i2c_over_aux) {
6977 if (payload->write) {
6978 if (payload->mot)
6979 action = DP_AUX_REQ_ACTION_I2C_WRITE_MOT;
6980 else
6981 action = DP_AUX_REQ_ACTION_I2C_WRITE;
6982 } else {
6983 if (payload->mot)
6984 action = DP_AUX_REQ_ACTION_I2C_READ_MOT;
6985 else
6986 action = DP_AUX_REQ_ACTION_I2C_READ;
6987 }
6988 } else {
6989 if (payload->write)
6990 action = DP_AUX_REQ_ACTION_DPCD_WRITE;
6991 else
6992 action = DP_AUX_REQ_ACTION_DPCD_READ;
6993 }
6994
6995 cmd.dp_aux_access.aux_control.dpaux.action = action;
6996
6997 if (payload->length && payload->write) {
6998 memcpy(cmd.dp_aux_access.aux_control.dpaux.data,
6999 payload->data,
7000 payload->length
7001 );
7002 }
7003
7004 dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT);
7005
7006 return true;
7007 }
7008
dc_smart_power_oled_enable(const struct dc_link * link,bool enable,uint16_t peak_nits,uint8_t debug_control,uint16_t fixed_CLL,uint32_t triggerline)7009 bool dc_smart_power_oled_enable(const struct dc_link *link, bool enable, uint16_t peak_nits,
7010 uint8_t debug_control, uint16_t fixed_CLL, uint32_t triggerline)
7011 {
7012 bool status = false;
7013 struct dc *dc = link->ctx->dc;
7014 union dmub_rb_cmd cmd;
7015 uint8_t otg_inst = 0;
7016 unsigned int panel_inst = 0;
7017 struct pipe_ctx *pipe_ctx = NULL;
7018 struct resource_context *res_ctx = &link->ctx->dc->current_state->res_ctx;
7019 int i = 0;
7020
7021 // get panel_inst
7022 if (!dc_get_edp_link_panel_inst(dc, link, &panel_inst))
7023 return status;
7024
7025 // get otg_inst
7026 for (i = 0; i < MAX_PIPES; i++) {
7027 if (res_ctx &&
7028 res_ctx->pipe_ctx[i].stream &&
7029 res_ctx->pipe_ctx[i].stream->link &&
7030 res_ctx->pipe_ctx[i].stream->link == link &&
7031 res_ctx->pipe_ctx[i].stream->link->connector_signal == SIGNAL_TYPE_EDP) {
7032 pipe_ctx = &res_ctx->pipe_ctx[i];
7033 //TODO: refactor for multi edp support
7034 break;
7035 }
7036 }
7037
7038 if (pipe_ctx)
7039 otg_inst = (uint8_t)pipe_ctx->stream_res.tg->inst;
7040
7041 // before enable smart power OLED, we need to call set pipe for DMUB to set ABM config
7042 if (enable) {
7043 if (dc->hwss.set_pipe && pipe_ctx)
7044 dc->hwss.set_pipe(pipe_ctx);
7045 }
7046
7047 // fill in cmd
7048 memset(&cmd, 0, sizeof(cmd));
7049
7050 cmd.smart_power_oled_enable.header.type = DMUB_CMD__SMART_POWER_OLED;
7051 cmd.smart_power_oled_enable.header.sub_type = DMUB_CMD__SMART_POWER_OLED_ENABLE;
7052 cmd.smart_power_oled_enable.header.payload_bytes =
7053 sizeof(struct dmub_rb_cmd_smart_power_oled_enable_data) - sizeof(struct dmub_cmd_header);
7054 cmd.smart_power_oled_enable.header.ret_status = 1;
7055 cmd.smart_power_oled_enable.data.enable = enable;
7056 cmd.smart_power_oled_enable.data.panel_inst = (uint8_t)panel_inst;
7057 cmd.smart_power_oled_enable.data.peak_nits = peak_nits;
7058 cmd.smart_power_oled_enable.data.otg_inst = otg_inst;
7059 cmd.smart_power_oled_enable.data.digfe_inst = (uint8_t)link->link_enc->preferred_engine;
7060 cmd.smart_power_oled_enable.data.digbe_inst = (uint8_t)link->link_enc->transmitter;
7061
7062 cmd.smart_power_oled_enable.data.debugcontrol = debug_control;
7063 cmd.smart_power_oled_enable.data.triggerline = triggerline;
7064 cmd.smart_power_oled_enable.data.fixed_max_cll = fixed_CLL;
7065
7066 // send cmd
7067 status = dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT);
7068
7069 // Update firmware_controlled_hdr_info_packet state on successful command execution
7070 if (status && pipe_ctx)
7071 pipe_ctx->stream->firmware_controlled_hdr_info_packet = enable;
7072
7073 return status;
7074 }
7075
dc_smart_power_oled_get_max_cll(const struct dc_link * link,unsigned int * pCurrent_MaxCLL)7076 bool dc_smart_power_oled_get_max_cll(const struct dc_link *link, unsigned int *pCurrent_MaxCLL)
7077 {
7078 struct dc *dc = link->ctx->dc;
7079 union dmub_rb_cmd cmd;
7080 bool status = false;
7081 unsigned int panel_inst = 0;
7082
7083 // get panel_inst
7084 if (!dc_get_edp_link_panel_inst(dc, link, &panel_inst))
7085 return status;
7086
7087 // fill in cmd
7088 memset(&cmd, 0, sizeof(cmd));
7089
7090 cmd.smart_power_oled_getmaxcll.header.type = DMUB_CMD__SMART_POWER_OLED;
7091 cmd.smart_power_oled_getmaxcll.header.sub_type = DMUB_CMD__SMART_POWER_OLED_GETMAXCLL;
7092 cmd.smart_power_oled_getmaxcll.header.payload_bytes = sizeof(cmd.smart_power_oled_getmaxcll.data);
7093 cmd.smart_power_oled_getmaxcll.header.ret_status = 1;
7094
7095 cmd.smart_power_oled_getmaxcll.data.input.panel_inst = (uint8_t)panel_inst;
7096
7097 // send cmd and wait for reply
7098 status = dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY);
7099
7100 if (status)
7101 *pCurrent_MaxCLL = cmd.smart_power_oled_getmaxcll.data.output.current_max_cll;
7102 else
7103 *pCurrent_MaxCLL = 0;
7104
7105 return status;
7106 }
7107
get_link_index_from_dpia_port_index(const struct dc * dc,uint8_t dpia_port_index)7108 uint8_t get_link_index_from_dpia_port_index(const struct dc *dc,
7109 uint8_t dpia_port_index)
7110 {
7111 uint8_t index, link_index = 0xFF;
7112
7113 for (index = 0; index < dc->link_count; index++) {
7114 /* ddc_hw_inst has dpia port index for dpia links
7115 * and ddc instance for legacy links
7116 */
7117 if (!dc->links[index]->ddc->ddc_pin) {
7118 if (dc->links[index]->ddc_hw_inst == dpia_port_index) {
7119 link_index = index;
7120 break;
7121 }
7122 }
7123 }
7124 ASSERT(link_index != 0xFF);
7125 return link_index;
7126 }
7127
7128 /**
7129 * dc_process_dmub_set_config_async - Submits set_config command
7130 *
7131 * @dc: [in] dc structure
7132 * @link_index: [in] link_index: link index
7133 * @payload: [in] aux payload
7134 * @notify: [out] set_config immediate reply
7135 *
7136 * Submits set_config command to dmub via inbox message.
7137 *
7138 * Return:
7139 * True if successful, False if failure
7140 */
dc_process_dmub_set_config_async(struct dc * dc,uint32_t link_index,struct set_config_cmd_payload * payload,struct dmub_notification * notify)7141 bool dc_process_dmub_set_config_async(struct dc *dc,
7142 uint32_t link_index,
7143 struct set_config_cmd_payload *payload,
7144 struct dmub_notification *notify)
7145 {
7146 union dmub_rb_cmd cmd = {0};
7147 bool is_cmd_complete = true;
7148
7149 /* prepare SET_CONFIG command */
7150 cmd.set_config_access.header.type = DMUB_CMD__DPIA;
7151 cmd.set_config_access.header.sub_type = DMUB_CMD__DPIA_SET_CONFIG_ACCESS;
7152
7153 cmd.set_config_access.set_config_control.instance = (uint8_t)dc->links[link_index]->ddc_hw_inst;
7154 cmd.set_config_access.set_config_control.cmd_pkt.msg_type = payload->msg_type;
7155 cmd.set_config_access.set_config_control.cmd_pkt.msg_data = payload->msg_data;
7156
7157 if (!dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY)) {
7158 /* command is not processed by dmub */
7159 notify->sc_status = SET_CONFIG_UNKNOWN_ERROR;
7160 return is_cmd_complete;
7161 }
7162
7163 /* command processed by dmub, if ret_status is 1, it is completed instantly */
7164 if (cmd.set_config_access.header.ret_status == 1)
7165 notify->sc_status = cmd.set_config_access.set_config_control.immed_status;
7166 else
7167 /* cmd pending, will receive notification via outbox */
7168 is_cmd_complete = false;
7169
7170 return is_cmd_complete;
7171 }
7172
7173 /**
7174 * dc_process_dmub_set_mst_slots - Submits MST solt allocation
7175 *
7176 * @dc: [in] dc structure
7177 * @link_index: [in] link index
7178 * @mst_alloc_slots: [in] mst slots to be allotted
7179 * @mst_slots_in_use: [out] mst slots in use returned in failure case
7180 *
7181 * Submits mst slot allocation command to dmub via inbox message
7182 *
7183 * Return:
7184 * DC_OK if successful, DC_ERROR if failure
7185 */
dc_process_dmub_set_mst_slots(const struct dc * dc,uint32_t link_index,uint8_t mst_alloc_slots,uint8_t * mst_slots_in_use)7186 enum dc_status dc_process_dmub_set_mst_slots(const struct dc *dc,
7187 uint32_t link_index,
7188 uint8_t mst_alloc_slots,
7189 uint8_t *mst_slots_in_use)
7190 {
7191 union dmub_rb_cmd cmd = {0};
7192
7193 /* prepare MST_ALLOC_SLOTS command */
7194 cmd.set_mst_alloc_slots.header.type = DMUB_CMD__DPIA;
7195 cmd.set_mst_alloc_slots.header.sub_type = DMUB_CMD__DPIA_MST_ALLOC_SLOTS;
7196
7197 cmd.set_mst_alloc_slots.mst_slots_control.instance = (uint8_t)dc->links[link_index]->ddc_hw_inst;
7198 cmd.set_mst_alloc_slots.mst_slots_control.mst_alloc_slots = mst_alloc_slots;
7199
7200 if (!dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY))
7201 /* command is not processed by dmub */
7202 return DC_ERROR_UNEXPECTED;
7203
7204 /* command processed by dmub, if ret_status is 1 */
7205 if (cmd.set_config_access.header.ret_status != 1)
7206 /* command processing error */
7207 return DC_ERROR_UNEXPECTED;
7208
7209 /* command processed and we have a status of 2, mst not enabled in dpia */
7210 if (cmd.set_mst_alloc_slots.mst_slots_control.immed_status == 2)
7211 return DC_FAIL_UNSUPPORTED_1;
7212
7213 /* previously configured mst alloc and used slots did not match */
7214 if (cmd.set_mst_alloc_slots.mst_slots_control.immed_status == 3) {
7215 *mst_slots_in_use = cmd.set_mst_alloc_slots.mst_slots_control.mst_slots_in_use;
7216 return DC_NOT_SUPPORTED;
7217 }
7218
7219 return DC_OK;
7220 }
7221
7222 /**
7223 * dc_process_dmub_dpia_set_tps_notification - Submits tps notification
7224 *
7225 * @dc: [in] dc structure
7226 * @link_index: [in] link index
7227 * @tps: [in] request tps
7228 *
7229 * Submits set_tps_notification command to dmub via inbox message
7230 */
dc_process_dmub_dpia_set_tps_notification(const struct dc * dc,uint32_t link_index,uint8_t tps)7231 void dc_process_dmub_dpia_set_tps_notification(const struct dc *dc, uint32_t link_index, uint8_t tps)
7232 {
7233 union dmub_rb_cmd cmd = {0};
7234
7235 cmd.set_tps_notification.header.type = DMUB_CMD__DPIA;
7236 cmd.set_tps_notification.header.sub_type = DMUB_CMD__DPIA_SET_TPS_NOTIFICATION;
7237 cmd.set_tps_notification.tps_notification.instance = (uint8_t)dc->links[link_index]->ddc_hw_inst;
7238 cmd.set_tps_notification.tps_notification.tps = tps;
7239
7240 dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT);
7241 }
7242
7243 /**
7244 * dc_process_dmub_dpia_hpd_int_enable - Submits DPIA DPD interruption
7245 *
7246 * @dc: [in] dc structure
7247 * @hpd_int_enable: [in] 1 for hpd int enable, 0 to disable
7248 *
7249 * Submits dpia hpd int enable command to dmub via inbox message
7250 */
dc_process_dmub_dpia_hpd_int_enable(const struct dc * dc,uint32_t hpd_int_enable)7251 void dc_process_dmub_dpia_hpd_int_enable(const struct dc *dc,
7252 uint32_t hpd_int_enable)
7253 {
7254 union dmub_rb_cmd cmd = {0};
7255
7256 cmd.dpia_hpd_int_enable.header.type = DMUB_CMD__DPIA_HPD_INT_ENABLE;
7257 cmd.dpia_hpd_int_enable.enable = hpd_int_enable;
7258
7259 dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT);
7260
7261 DC_LOG_DEBUG("%s: hpd_int_enable(%d)\n", __func__, hpd_int_enable);
7262 }
7263
7264 /**
7265 * dc_print_dmub_diagnostic_data - Print DMUB diagnostic data for debugging
7266 *
7267 * @dc: [in] dc structure
7268 *
7269 *
7270 */
dc_print_dmub_diagnostic_data(const struct dc * dc)7271 void dc_print_dmub_diagnostic_data(const struct dc *dc)
7272 {
7273 dc_dmub_srv_log_diagnostic_data(dc->ctx->dmub_srv);
7274 }
7275
7276 /**
7277 * dc_disable_accelerated_mode - disable accelerated mode
7278 * @dc: dc structure
7279 */
dc_disable_accelerated_mode(struct dc * dc)7280 void dc_disable_accelerated_mode(struct dc *dc)
7281 {
7282 bios_set_scratch_acc_mode_change(dc->ctx->dc_bios, 0);
7283 }
7284
7285
7286 /**
7287 * dc_notify_vsync_int_state - notifies vsync enable/disable state
7288 * @dc: dc structure
7289 * @stream: stream where vsync int state changed
7290 * @enable: whether vsync is enabled or disabled
7291 *
7292 * Called when vsync is enabled/disabled Will notify DMUB to start/stop ABM
7293 * interrupts after steady state is reached.
7294 */
dc_notify_vsync_int_state(struct dc * dc,struct dc_stream_state * stream,bool enable)7295 void dc_notify_vsync_int_state(struct dc *dc, struct dc_stream_state *stream, bool enable)
7296 {
7297 unsigned int i, edp_num;
7298 struct pipe_ctx *pipe = NULL;
7299 struct dc_link *link = stream->sink->link;
7300 struct dc_link *edp_links[MAX_NUM_EDP];
7301
7302
7303 if (link->psr_settings.psr_feature_enabled)
7304 return;
7305
7306 if (link->replay_settings.replay_feature_enabled)
7307 return;
7308
7309 /*find primary pipe associated with stream*/
7310 for (i = 0; i < MAX_PIPES; i++) {
7311 pipe = &dc->current_state->res_ctx.pipe_ctx[i];
7312
7313 if (pipe->stream == stream && pipe->stream_res.tg)
7314 break;
7315 }
7316
7317 if (i == MAX_PIPES) {
7318 ASSERT(0);
7319 return;
7320 }
7321
7322 dc_get_edp_links(dc, edp_links, &edp_num);
7323
7324 /* Determine panel inst */
7325 for (i = 0; i < edp_num; i++) {
7326 if (edp_links[i] == link)
7327 break;
7328 }
7329
7330 if (i == edp_num) {
7331 return;
7332 }
7333
7334 if (pipe->stream_res.abm && pipe->stream_res.abm->funcs->set_abm_pause)
7335 pipe->stream_res.abm->funcs->set_abm_pause(pipe->stream_res.abm, !enable, i, pipe->stream_res.tg->inst);
7336 }
7337
7338 /*****************************************************************************
7339 * dc_abm_save_restore() - Interface to DC for save+pause and restore+un-pause
7340 * ABM
7341 * @dc: dc structure
7342 * @stream: stream where vsync int state changed
7343 * @pData: abm hw states
7344 *
7345 ****************************************************************************/
dc_abm_save_restore(struct dc * dc,struct dc_stream_state * stream,struct abm_save_restore * pData)7346 bool dc_abm_save_restore(
7347 struct dc *dc,
7348 struct dc_stream_state *stream,
7349 struct abm_save_restore *pData)
7350 {
7351 unsigned int i, edp_num;
7352 struct pipe_ctx *pipe = NULL;
7353 struct dc_link *link = stream->sink->link;
7354 struct dc_link *edp_links[MAX_NUM_EDP];
7355
7356 if (link->replay_settings.replay_feature_enabled)
7357 return false;
7358
7359 /*find primary pipe associated with stream*/
7360 for (i = 0; i < MAX_PIPES; i++) {
7361 pipe = &dc->current_state->res_ctx.pipe_ctx[i];
7362
7363 if (pipe->stream == stream && pipe->stream_res.tg)
7364 break;
7365 }
7366
7367 if (i == MAX_PIPES) {
7368 ASSERT(0);
7369 return false;
7370 }
7371
7372 dc_get_edp_links(dc, edp_links, &edp_num);
7373
7374 /* Determine panel inst */
7375 for (i = 0; i < edp_num; i++)
7376 if (edp_links[i] == link)
7377 break;
7378
7379 if (i == edp_num)
7380 return false;
7381
7382 if (pipe->stream_res.abm &&
7383 pipe->stream_res.abm->funcs->save_restore)
7384 return pipe->stream_res.abm->funcs->save_restore(
7385 pipe->stream_res.abm,
7386 i,
7387 pData);
7388 return false;
7389 }
7390
dc_query_current_properties(struct dc * dc,struct dc_current_properties * properties)7391 void dc_query_current_properties(struct dc *dc, struct dc_current_properties *properties)
7392 {
7393 unsigned int i;
7394 unsigned int max_cursor_size = dc->caps.max_cursor_size;
7395 unsigned int stream_cursor_size;
7396
7397 if (dc->debug.allow_sw_cursor_fallback && dc->res_pool->funcs->get_max_hw_cursor_size) {
7398 for (i = 0; i < dc->current_state->stream_count; i++) {
7399 stream_cursor_size = dc->res_pool->funcs->get_max_hw_cursor_size(dc,
7400 dc->current_state,
7401 dc->current_state->streams[i]);
7402
7403 if (stream_cursor_size < max_cursor_size) {
7404 max_cursor_size = stream_cursor_size;
7405 }
7406 }
7407 }
7408
7409 properties->cursor_size_limit = max_cursor_size;
7410 }
7411
7412 /**
7413 * dc_set_edp_power() - DM controls eDP power to be ON/OFF
7414 *
7415 * Called when DM wants to power on/off eDP.
7416 * Only work on links with flag skip_implict_edp_power_control is set.
7417 *
7418 * @dc: Current DC state
7419 * @edp_link: a link with eDP connector signal type
7420 * @powerOn: power on/off eDP
7421 *
7422 * Return: void
7423 */
dc_set_edp_power(const struct dc * dc,struct dc_link * edp_link,bool powerOn)7424 void dc_set_edp_power(const struct dc *dc, struct dc_link *edp_link,
7425 bool powerOn)
7426 {
7427 (void)dc;
7428 if (edp_link->connector_signal != SIGNAL_TYPE_EDP)
7429 return;
7430
7431 if (edp_link->skip_implict_edp_power_control == false)
7432 return;
7433
7434 edp_link->dc->link_srv->edp_set_panel_power(edp_link, powerOn);
7435 }
7436
7437 /**
7438 * dc_get_power_profile_for_dc_state() - extracts power profile from dc state
7439 *
7440 * Called when DM wants to make power policy decisions based on dc_state
7441 *
7442 * @context: Pointer to the dc_state from which the power profile is extracted.
7443 *
7444 * Return: The power profile structure containing the power level information.
7445 */
dc_get_power_profile_for_dc_state(const struct dc_state * context)7446 struct dc_power_profile dc_get_power_profile_for_dc_state(const struct dc_state *context)
7447 {
7448 struct dc_power_profile profile = { 0 };
7449
7450 profile.power_level = !context->bw_ctx.bw.dcn.clk.p_state_change_support;
7451 if (!context->clk_mgr || !context->clk_mgr->ctx || !context->clk_mgr->ctx->dc)
7452 return profile;
7453 struct dc *dc = context->clk_mgr->ctx->dc;
7454
7455 if (dc->res_pool->funcs->get_power_profile)
7456 profile.power_level = dc->res_pool->funcs->get_power_profile(context);
7457 return profile;
7458 }
7459
7460 /**
7461 * dc_get_det_buffer_size_from_state() - extracts detile buffer size from dc state
7462 *
7463 * This function is called to log the detile buffer size from the dc_state.
7464 *
7465 * @context: a pointer to the dc_state from which the detile buffer size is extracted.
7466 *
7467 * Return: the size of the detile buffer, or 0 if not available.
7468 */
dc_get_det_buffer_size_from_state(const struct dc_state * context)7469 unsigned int dc_get_det_buffer_size_from_state(const struct dc_state *context)
7470 {
7471 struct dc *dc = context->clk_mgr->ctx->dc;
7472
7473 if (dc->res_pool->funcs->get_det_buffer_size)
7474 return dc->res_pool->funcs->get_det_buffer_size(context);
7475 else
7476 return 0;
7477 }
7478
7479 /**
7480 * dc_get_host_router_index: Get index of host router from a dpia link
7481 *
7482 * This function return a host router index of the target link. If the target link is dpia link.
7483 *
7484 * @link: Pointer to the target link (input)
7485 * @host_router_index: Pointer to store the host router index of the target link (output).
7486 *
7487 * Return: true if the host router index is found and valid.
7488 *
7489 */
dc_get_host_router_index(const struct dc_link * link,unsigned int * host_router_index)7490 bool dc_get_host_router_index(const struct dc_link *link, unsigned int *host_router_index)
7491 {
7492 struct dc *dc;
7493
7494 if (!link || !host_router_index || link->ep_type != DISPLAY_ENDPOINT_USB4_DPIA)
7495 return false;
7496
7497 dc = link->ctx->dc;
7498
7499 if (link->link_index < dc->lowest_dpia_link_index)
7500 return false;
7501
7502 *host_router_index = (link->link_index - dc->lowest_dpia_link_index) / dc->caps.num_of_dpias_per_host_router;
7503 if (*host_router_index < dc->caps.num_of_host_routers)
7504 return true;
7505 else
7506 return false;
7507 }
7508
dc_is_cursor_limit_pending(struct dc * dc)7509 bool dc_is_cursor_limit_pending(struct dc *dc)
7510 {
7511 uint32_t i;
7512
7513 for (i = 0; i < dc->current_state->stream_count; i++) {
7514 if (dc_stream_is_cursor_limit_pending(dc, dc->current_state->streams[i]))
7515 return true;
7516 }
7517
7518 return false;
7519 }
7520
dc_can_clear_cursor_limit(const struct dc * dc)7521 bool dc_can_clear_cursor_limit(const struct dc *dc)
7522 {
7523 uint32_t i;
7524
7525 for (i = 0; i < dc->current_state->stream_count; i++) {
7526 if (dc_state_can_clear_stream_cursor_subvp_limit(dc->current_state->streams[i], dc->current_state))
7527 return true;
7528 }
7529
7530 return false;
7531 }
7532
dc_get_underflow_debug_data_for_otg(struct dc * dc,unsigned int primary_otg_inst,struct dc_underflow_debug_data * out_data)7533 void dc_get_underflow_debug_data_for_otg(struct dc *dc, unsigned int primary_otg_inst,
7534 struct dc_underflow_debug_data *out_data)
7535 {
7536 struct timing_generator *tg = NULL;
7537
7538 for (int i = 0; i < MAX_PIPES; i++) {
7539 if (dc->res_pool->timing_generators[i] &&
7540 dc->res_pool->timing_generators[i]->inst == primary_otg_inst) {
7541 tg = dc->res_pool->timing_generators[i];
7542 break;
7543 }
7544 }
7545
7546 dc_exit_ips_for_hw_access(dc);
7547 if (dc->hwss.get_underflow_debug_data)
7548 dc->hwss.get_underflow_debug_data(dc, tg, out_data);
7549 }
7550
dc_get_power_feature_status(struct dc * dc,unsigned int primary_otg_inst,struct power_features * out_data)7551 void dc_get_power_feature_status(struct dc *dc, unsigned int primary_otg_inst,
7552 struct power_features *out_data)
7553 {
7554 (void)primary_otg_inst;
7555 out_data->uclk_p_state = dc->current_state->clk_mgr->clks.p_state_change_support;
7556 out_data->fams = dc->current_state->bw_ctx.bw.dcn.clk.fw_based_mclk_switching;
7557 }
7558
dc_capture_register_software_state(struct dc * dc,struct dc_register_software_state * state)7559 bool dc_capture_register_software_state(struct dc *dc, struct dc_register_software_state *state)
7560 {
7561 struct dc_state *context;
7562 struct resource_context *res_ctx;
7563 unsigned int i;
7564 const unsigned int max_pipes = MAX_PIPES;
7565
7566 if (!dc || !dc->current_state || !state) {
7567 if (state)
7568 state->state_valid = false;
7569 return false;
7570 }
7571
7572 /* Initialize the state structure */
7573 memset(state, 0, sizeof(struct dc_register_software_state));
7574
7575 context = dc->current_state;
7576 res_ctx = &context->res_ctx;
7577
7578 /* Count active pipes and streams */
7579 state->active_pipe_count = 0;
7580 state->active_stream_count = context->stream_count;
7581
7582 for (i = 0; i < dc->res_pool->pipe_count; i++) {
7583 if (res_ctx->pipe_ctx[i].stream)
7584 state->active_pipe_count++;
7585 }
7586
7587 /* Capture HUBP programming state for each pipe */
7588 for (i = 0; i < max_pipes && i < dc->res_pool->pipe_count; i++) {
7589 struct pipe_ctx *pipe_ctx = &res_ctx->pipe_ctx[i];
7590
7591 state->hubp[i].valid_stream = false;
7592 if (!pipe_ctx->stream)
7593 continue;
7594
7595 state->hubp[i].valid_stream = true;
7596
7597 /* HUBP register programming variables */
7598 if (pipe_ctx->stream_res.tg)
7599 state->hubp[i].vtg_sel = pipe_ctx->stream_res.tg->inst;
7600
7601 state->hubp[i].hubp_clock_enable = (pipe_ctx->plane_res.hubp != NULL) ? 1 : 0;
7602
7603 state->hubp[i].valid_plane_state = false;
7604 if (pipe_ctx->plane_state) {
7605 state->hubp[i].valid_plane_state = true;
7606 state->hubp[i].surface_pixel_format = pipe_ctx->plane_state->format;
7607 state->hubp[i].rotation_angle = pipe_ctx->plane_state->rotation;
7608 state->hubp[i].h_mirror_en = pipe_ctx->plane_state->horizontal_mirror ? 1 : 0;
7609
7610 /* Surface size */
7611 if (pipe_ctx->plane_state->plane_size.surface_size.width > 0) {
7612 state->hubp[i].surface_size_width = pipe_ctx->plane_state->plane_size.surface_size.width;
7613 state->hubp[i].surface_size_height = pipe_ctx->plane_state->plane_size.surface_size.height;
7614 }
7615
7616 /* Viewport dimensions from scaler data */
7617 if (pipe_ctx->plane_state->src_rect.width > 0) {
7618 state->hubp[i].pri_viewport_width = pipe_ctx->plane_state->src_rect.width;
7619 state->hubp[i].pri_viewport_height = pipe_ctx->plane_state->src_rect.height;
7620 state->hubp[i].pri_viewport_x_start = pipe_ctx->plane_state->src_rect.x;
7621 state->hubp[i].pri_viewport_y_start = pipe_ctx->plane_state->src_rect.y;
7622 }
7623
7624 /* DCC settings */
7625 state->hubp[i].surface_dcc_en = (pipe_ctx->plane_state->dcc.enable) ? 1 : 0;
7626 state->hubp[i].surface_dcc_ind_64b_blk = pipe_ctx->plane_state->dcc.independent_64b_blks;
7627 state->hubp[i].surface_dcc_ind_128b_blk = pipe_ctx->plane_state->dcc.dcc_ind_blk;
7628
7629 /* Surface pitch */
7630 state->hubp[i].surface_pitch = pipe_ctx->plane_state->plane_size.surface_pitch;
7631 state->hubp[i].meta_pitch = pipe_ctx->plane_state->dcc.meta_pitch;
7632 state->hubp[i].chroma_pitch = pipe_ctx->plane_state->plane_size.chroma_pitch;
7633 state->hubp[i].meta_pitch_c = pipe_ctx->plane_state->dcc.meta_pitch_c;
7634
7635 /* Surface addresses - primary */
7636 state->hubp[i].primary_surface_address_low = pipe_ctx->plane_state->address.grph.addr.low_part;
7637 state->hubp[i].primary_surface_address_high = pipe_ctx->plane_state->address.grph.addr.high_part;
7638 state->hubp[i].primary_meta_surface_address_low = pipe_ctx->plane_state->address.grph.meta_addr.low_part;
7639 state->hubp[i].primary_meta_surface_address_high = pipe_ctx->plane_state->address.grph.meta_addr.high_part;
7640
7641 /* TMZ settings */
7642 state->hubp[i].primary_surface_tmz = pipe_ctx->plane_state->address.tmz_surface;
7643 state->hubp[i].primary_meta_surface_tmz = pipe_ctx->plane_state->address.tmz_surface;
7644
7645 /* Tiling configuration */
7646 state->hubp[i].min_dc_gfx_version9 = false;
7647 if (pipe_ctx->plane_state->tiling_info.gfxversion >= DcGfxVersion9) {
7648 state->hubp[i].min_dc_gfx_version9 = true;
7649 state->hubp[i].sw_mode = pipe_ctx->plane_state->tiling_info.gfx9.swizzle;
7650 state->hubp[i].num_pipes = pipe_ctx->plane_state->tiling_info.gfx9.num_pipes;
7651 state->hubp[i].num_banks = pipe_ctx->plane_state->tiling_info.gfx9.num_banks;
7652 state->hubp[i].pipe_interleave = pipe_ctx->plane_state->tiling_info.gfx9.pipe_interleave;
7653 state->hubp[i].num_shader_engines = pipe_ctx->plane_state->tiling_info.gfx9.num_shader_engines;
7654 state->hubp[i].num_rb_per_se = pipe_ctx->plane_state->tiling_info.gfx9.num_rb_per_se;
7655 state->hubp[i].num_pkrs = pipe_ctx->plane_state->tiling_info.gfx9.num_pkrs;
7656 }
7657 }
7658
7659 /* DML Request Size Configuration */
7660 if (pipe_ctx->rq_regs.rq_regs_l.chunk_size > 0) {
7661 state->hubp[i].rq_chunk_size = pipe_ctx->rq_regs.rq_regs_l.chunk_size;
7662 state->hubp[i].rq_min_chunk_size = pipe_ctx->rq_regs.rq_regs_l.min_chunk_size;
7663 state->hubp[i].rq_meta_chunk_size = pipe_ctx->rq_regs.rq_regs_l.meta_chunk_size;
7664 state->hubp[i].rq_min_meta_chunk_size = pipe_ctx->rq_regs.rq_regs_l.min_meta_chunk_size;
7665 state->hubp[i].rq_dpte_group_size = pipe_ctx->rq_regs.rq_regs_l.dpte_group_size;
7666 state->hubp[i].rq_mpte_group_size = pipe_ctx->rq_regs.rq_regs_l.mpte_group_size;
7667 state->hubp[i].rq_swath_height_l = pipe_ctx->rq_regs.rq_regs_l.swath_height;
7668 state->hubp[i].rq_pte_row_height_l = pipe_ctx->rq_regs.rq_regs_l.pte_row_height_linear;
7669 }
7670
7671 /* Chroma request size configuration */
7672 if (pipe_ctx->rq_regs.rq_regs_c.chunk_size > 0) {
7673 state->hubp[i].rq_chunk_size_c = pipe_ctx->rq_regs.rq_regs_c.chunk_size;
7674 state->hubp[i].rq_min_chunk_size_c = pipe_ctx->rq_regs.rq_regs_c.min_chunk_size;
7675 state->hubp[i].rq_meta_chunk_size_c = pipe_ctx->rq_regs.rq_regs_c.meta_chunk_size;
7676 state->hubp[i].rq_min_meta_chunk_size_c = pipe_ctx->rq_regs.rq_regs_c.min_meta_chunk_size;
7677 state->hubp[i].rq_dpte_group_size_c = pipe_ctx->rq_regs.rq_regs_c.dpte_group_size;
7678 state->hubp[i].rq_mpte_group_size_c = pipe_ctx->rq_regs.rq_regs_c.mpte_group_size;
7679 state->hubp[i].rq_swath_height_c = pipe_ctx->rq_regs.rq_regs_c.swath_height;
7680 state->hubp[i].rq_pte_row_height_c = pipe_ctx->rq_regs.rq_regs_c.pte_row_height_linear;
7681 }
7682
7683 /* DML expansion modes */
7684 state->hubp[i].drq_expansion_mode = pipe_ctx->rq_regs.drq_expansion_mode;
7685 state->hubp[i].prq_expansion_mode = pipe_ctx->rq_regs.prq_expansion_mode;
7686 state->hubp[i].mrq_expansion_mode = pipe_ctx->rq_regs.mrq_expansion_mode;
7687 state->hubp[i].crq_expansion_mode = pipe_ctx->rq_regs.crq_expansion_mode;
7688
7689 /* DML DLG parameters - nominal */
7690 state->hubp[i].dst_y_per_vm_vblank = pipe_ctx->dlg_regs.dst_y_per_vm_vblank;
7691 state->hubp[i].dst_y_per_row_vblank = pipe_ctx->dlg_regs.dst_y_per_row_vblank;
7692 state->hubp[i].dst_y_per_vm_flip = pipe_ctx->dlg_regs.dst_y_per_vm_flip;
7693 state->hubp[i].dst_y_per_row_flip = pipe_ctx->dlg_regs.dst_y_per_row_flip;
7694
7695 /* DML prefetch settings */
7696 state->hubp[i].dst_y_prefetch = pipe_ctx->dlg_regs.dst_y_prefetch;
7697 state->hubp[i].vratio_prefetch = pipe_ctx->dlg_regs.vratio_prefetch;
7698 state->hubp[i].vratio_prefetch_c = pipe_ctx->dlg_regs.vratio_prefetch_c;
7699
7700 /* TTU parameters */
7701 state->hubp[i].qos_level_low_wm = pipe_ctx->ttu_regs.qos_level_low_wm;
7702 state->hubp[i].qos_level_high_wm = pipe_ctx->ttu_regs.qos_level_high_wm;
7703 state->hubp[i].qos_level_flip = pipe_ctx->ttu_regs.qos_level_flip;
7704 state->hubp[i].min_ttu_vblank = pipe_ctx->ttu_regs.min_ttu_vblank;
7705 }
7706
7707 /* Capture HUBBUB programming state */
7708 if (dc->res_pool->hubbub) {
7709 /* Individual DET buffer sizes - software state variables that program DET registers */
7710 for (i = 0; i < 4u && i < dc->res_pool->pipe_count; i++) {
7711 uint32_t det_size = res_ctx->pipe_ctx[i].det_buffer_size_kb;
7712 switch (i) {
7713 case 0:
7714 state->hubbub.det0_size = det_size;
7715 break;
7716 case 1:
7717 state->hubbub.det1_size = det_size;
7718 break;
7719 case 2:
7720 state->hubbub.det2_size = det_size;
7721 break;
7722 case 3:
7723 state->hubbub.det3_size = det_size;
7724 break;
7725 }
7726 }
7727
7728 /* Compression buffer configuration - software state that programs COMPBUF_SIZE register */
7729 // TODO: Handle logic for legacy DCN pre-DCN401
7730 state->hubbub.compbuf_size = context->bw_ctx.bw.dcn.arb_regs.compbuf_size;
7731 }
7732
7733 /* Capture DPP programming state for each pipe */
7734 for (i = 0; i < max_pipes && i < dc->res_pool->pipe_count; i++) {
7735 struct pipe_ctx *pipe_ctx = &res_ctx->pipe_ctx[i];
7736
7737 if (!pipe_ctx->stream)
7738 continue;
7739
7740 state->dpp[i].dpp_clock_enable = (pipe_ctx->plane_res.dpp != NULL) ? 1 : 0;
7741
7742 if (pipe_ctx->plane_state && pipe_ctx->plane_res.scl_data.recout.width > 0) {
7743 /* Access dscl_prog_data directly - this contains the actual software state used for register programming */
7744 struct dscl_prog_data *dscl_data = &pipe_ctx->plane_res.scl_data.dscl_prog_data;
7745
7746 /* Recout (Rectangle of Interest) configuration - software state that programs RECOUT registers */
7747 state->dpp[i].recout_start_x = dscl_data->recout.x;
7748 state->dpp[i].recout_start_y = dscl_data->recout.y;
7749 state->dpp[i].recout_width = dscl_data->recout.width;
7750 state->dpp[i].recout_height = dscl_data->recout.height;
7751
7752 /* MPC (Multiple Pipe/Plane Combiner) size - software state that programs MPC_SIZE registers */
7753 state->dpp[i].mpc_width = dscl_data->mpc_size.width;
7754 state->dpp[i].mpc_height = dscl_data->mpc_size.height;
7755
7756 /* DSCL mode - software state that programs SCL_MODE registers */
7757 state->dpp[i].dscl_mode = dscl_data->dscl_mode;
7758
7759 /* Scaler ratios - software state that programs scale ratio registers (use actual programmed ratios) */
7760 state->dpp[i].horz_ratio_int = dscl_data->ratios.h_scale_ratio >> 19; // Extract integer part from programmed ratio
7761 state->dpp[i].vert_ratio_int = dscl_data->ratios.v_scale_ratio >> 19; // Extract integer part from programmed ratio
7762
7763 /* Basic scaler taps - software state that programs tap control registers (use actual programmed taps) */
7764 state->dpp[i].h_taps = dscl_data->taps.h_taps + 1; // dscl_prog_data.taps stores (taps - 1), so add 1 back
7765 state->dpp[i].v_taps = dscl_data->taps.v_taps + 1; // dscl_prog_data.taps stores (taps - 1), so add 1 back
7766 }
7767 }
7768
7769 /* Capture essential clock state for underflow analysis */
7770 if (dc->clk_mgr && dc->clk_mgr->clks.dispclk_khz > 0) {
7771 /* Core display clocks affecting bandwidth and timing */
7772 state->dccg.dispclk_khz = dc->clk_mgr->clks.dispclk_khz;
7773
7774 /* Per-pipe clock configuration - only capture what's essential */
7775 for (i = 0; i < max_pipes && i < dc->res_pool->pipe_count; i++) {
7776 struct pipe_ctx *pipe_ctx = &res_ctx->pipe_ctx[i];
7777 if (pipe_ctx->stream) {
7778 /* Essential clocks that directly affect underflow risk */
7779 state->dccg.dppclk_khz[i] = dc->clk_mgr->clks.dppclk_khz;
7780 state->dccg.pixclk_khz[i] = pipe_ctx->stream->timing.pix_clk_100hz / 10;
7781 state->dccg.dppclk_enable[i] = 1;
7782
7783 /* DP stream clock only for DP signals */
7784 if (pipe_ctx->stream->signal == SIGNAL_TYPE_DISPLAY_PORT ||
7785 pipe_ctx->stream->signal == SIGNAL_TYPE_DISPLAY_PORT_MST) {
7786 state->dccg.dpstreamclk_enable[i] = 1;
7787 } else {
7788 state->dccg.dpstreamclk_enable[i] = 0;
7789 }
7790 } else {
7791 /* Inactive pipe - no clocks */
7792 state->dccg.dppclk_khz[i] = 0;
7793 state->dccg.pixclk_khz[i] = 0;
7794 state->dccg.dppclk_enable[i] = 0;
7795 if (i < 4) {
7796 state->dccg.dpstreamclk_enable[i] = 0;
7797 }
7798 }
7799 }
7800
7801 /* DSC clock state - only when actually using DSC */
7802 for (i = 0; i < max_pipes; i++) {
7803 struct pipe_ctx *pipe_ctx = (i < dc->res_pool->pipe_count) ? &res_ctx->pipe_ctx[i] : NULL;
7804 if (pipe_ctx && pipe_ctx->stream && pipe_ctx->stream->timing.dsc_cfg.num_slices_h > 0) {
7805 state->dccg.dscclk_khz[i] = 400000; /* Typical DSC clock frequency */
7806 } else {
7807 state->dccg.dscclk_khz[i] = 0;
7808 }
7809 }
7810
7811 /* SYMCLK32 LE Control - only the essential HPO state for underflow analysis */
7812 for (i = 0; i < 2; i++) {
7813 state->dccg.symclk32_le_enable[i] = 0; /* Default: disabled */
7814 }
7815
7816 /* Check for active HPO usage that affects symclk32_le */
7817 for (unsigned int pipe_idx = 0; pipe_idx < MAX_PIPES && pipe_idx < dc->res_pool->pipe_count; pipe_idx++) {
7818 struct pipe_ctx *pipe_ctx = &res_ctx->pipe_ctx[pipe_idx];
7819 if (!pipe_ctx->stream)
7820 continue;
7821
7822 /* HPO FRL (HDMI FRL) streams use symclk32_le */
7823 if (pipe_ctx->stream_res.hpo_frl_stream_enc && pipe_ctx->link_res.hpo_frl_link_enc) {
7824 int hpo_le_inst = pipe_ctx->link_res.hpo_frl_link_enc->inst;
7825 if (hpo_le_inst >= 0 && hpo_le_inst < 2) {
7826 state->dccg.symclk32_le_enable[hpo_le_inst] = 1;
7827 }
7828 }
7829 }
7830 }
7831
7832 /* Capture essential DSC configuration for underflow analysis */
7833 for (i = 0; i < max_pipes && i < dc->res_pool->pipe_count; i++) {
7834 struct pipe_ctx *pipe_ctx = &res_ctx->pipe_ctx[i];
7835
7836 if (pipe_ctx->stream && pipe_ctx->stream->timing.dsc_cfg.num_slices_h > 0) {
7837 /* DSC is enabled - capture essential configuration */
7838 state->dsc[i].dsc_clock_enable = 1;
7839
7840 /* DSC configuration affecting bandwidth and timing */
7841 struct dc_dsc_config *dsc_cfg = &pipe_ctx->stream->timing.dsc_cfg;
7842 state->dsc[i].dsc_num_slices_h = dsc_cfg->num_slices_h;
7843 state->dsc[i].dsc_num_slices_v = dsc_cfg->num_slices_v;
7844 state->dsc[i].dsc_bits_per_pixel = dsc_cfg->bits_per_pixel;
7845
7846 /* OPP pipe source for DSC forwarding */
7847 if (pipe_ctx->stream_res.opp) {
7848 state->dsc[i].dscrm_dsc_forward_enable = 1;
7849 state->dsc[i].dscrm_dsc_opp_pipe_source = pipe_ctx->stream_res.opp->inst;
7850 } else {
7851 state->dsc[i].dscrm_dsc_forward_enable = 0;
7852 state->dsc[i].dscrm_dsc_opp_pipe_source = 0;
7853 }
7854 } else {
7855 /* DSC not enabled - clear all fields */
7856 memset(&state->dsc[i], 0, sizeof(state->dsc[i]));
7857 }
7858 }
7859
7860 /* Capture MPC programming state - comprehensive register field coverage */
7861 for (i = 0; i < max_pipes && i < dc->res_pool->pipe_count; i++) {
7862 struct pipe_ctx *pipe_ctx = &res_ctx->pipe_ctx[i];
7863
7864 if (pipe_ctx->plane_state && pipe_ctx->stream) {
7865 struct dc_plane_state *plane_state = pipe_ctx->plane_state;
7866
7867 /* MPCC blending tree and mode control - capture actual blend configuration */
7868 state->mpc.mpcc_mode[i] = (plane_state->cm.blend_func.type != TF_TYPE_BYPASS) ? 1 : 0;
7869 state->mpc.mpcc_alpha_blend_mode[i] = plane_state->per_pixel_alpha ? 1 : 0;
7870 state->mpc.mpcc_alpha_multiplied_mode[i] = plane_state->pre_multiplied_alpha ? 1 : 0;
7871 state->mpc.mpcc_blnd_active_overlap_only[i] = 0; /* Default - no overlap restriction */
7872 state->mpc.mpcc_global_alpha[i] = plane_state->global_alpha_value;
7873 state->mpc.mpcc_global_gain[i] = plane_state->global_alpha ? 255 : 0;
7874 state->mpc.mpcc_bg_bpc[i] = 8; /* Standard 8-bit background */
7875 state->mpc.mpcc_bot_gain_mode[i] = 0; /* Standard gain mode */
7876
7877 /* MPCC blending tree connections - capture tree topology */
7878 if (pipe_ctx->bottom_pipe) {
7879 state->mpc.mpcc_bot_sel[i] = pipe_ctx->bottom_pipe->pipe_idx;
7880 } else {
7881 state->mpc.mpcc_bot_sel[i] = 0xF; /* No bottom connection */
7882 }
7883 state->mpc.mpcc_top_sel[i] = pipe_ctx->pipe_idx; /* This pipe's DPP ID */
7884
7885 /* MPCC output gamma control - capture gamma programming */
7886 if (plane_state->gamma_correction.type != GAMMA_CS_TFM_1D && plane_state->gamma_correction.num_entries > 0) {
7887 state->mpc.mpcc_ogam_mode[i] = 1; /* Gamma enabled */
7888 state->mpc.mpcc_ogam_select[i] = 0; /* Bank A selection */
7889 state->mpc.mpcc_ogam_pwl_disable[i] = 0; /* PWL enabled */
7890 } else {
7891 state->mpc.mpcc_ogam_mode[i] = 0; /* Bypass mode */
7892 state->mpc.mpcc_ogam_select[i] = 0;
7893 state->mpc.mpcc_ogam_pwl_disable[i] = 1; /* PWL disabled */
7894 }
7895
7896 /* MPCC pipe assignment and operational status */
7897 if (pipe_ctx->stream_res.opp) {
7898 state->mpc.mpcc_opp_id[i] = pipe_ctx->stream_res.opp->inst;
7899 } else {
7900 state->mpc.mpcc_opp_id[i] = 0xF; /* No OPP assignment */
7901 }
7902
7903 /* MPCC status indicators - active pipe state */
7904 state->mpc.mpcc_idle[i] = 0; /* Active pipe - not idle */
7905 state->mpc.mpcc_busy[i] = 1; /* Active pipe - busy processing */
7906
7907 } else {
7908 /* Pipe not active - set disabled/idle state for all fields */
7909 state->mpc.mpcc_mode[i] = 0;
7910 state->mpc.mpcc_alpha_blend_mode[i] = 0;
7911 state->mpc.mpcc_alpha_multiplied_mode[i] = 0;
7912 state->mpc.mpcc_blnd_active_overlap_only[i] = 0;
7913 state->mpc.mpcc_global_alpha[i] = 0;
7914 state->mpc.mpcc_global_gain[i] = 0;
7915 state->mpc.mpcc_bg_bpc[i] = 0;
7916 state->mpc.mpcc_bot_gain_mode[i] = 0;
7917 state->mpc.mpcc_bot_sel[i] = 0xF; /* No bottom connection */
7918 state->mpc.mpcc_top_sel[i] = 0xF; /* No top connection */
7919 state->mpc.mpcc_ogam_mode[i] = 0; /* Bypass */
7920 state->mpc.mpcc_ogam_select[i] = 0;
7921 state->mpc.mpcc_ogam_pwl_disable[i] = 1; /* PWL disabled */
7922 state->mpc.mpcc_opp_id[i] = 0xF; /* No OPP assignment */
7923 state->mpc.mpcc_idle[i] = 1; /* Idle */
7924 state->mpc.mpcc_busy[i] = 0; /* Not busy */
7925 }
7926 }
7927
7928 /* Capture OPP programming state for each pipe - comprehensive register field coverage */
7929 for (i = 0; i < max_pipes && i < dc->res_pool->pipe_count; i++) {
7930 struct pipe_ctx *pipe_ctx = &res_ctx->pipe_ctx[i];
7931
7932 if (!pipe_ctx->stream)
7933 continue;
7934
7935 if (pipe_ctx->stream_res.opp) {
7936 struct dc_crtc_timing *timing = &pipe_ctx->stream->timing;
7937
7938 /* OPP Pipe Control */
7939 state->opp[i].opp_pipe_clock_enable = 1; /* Active pipe has clock enabled */
7940
7941 /* Display Pattern Generator (DPG) Control - 19 fields */
7942 if (pipe_ctx->stream->test_pattern.type != DP_TEST_PATTERN_VIDEO_MODE) {
7943 state->opp[i].dpg_enable = 1;
7944 } else {
7945 /* Video mode - DPG disabled */
7946 state->opp[i].dpg_enable = 0;
7947 }
7948
7949 /* Format Control (FMT) - 18 fields */
7950 state->opp[i].fmt_pixel_encoding = timing->pixel_encoding;
7951
7952 /* Chroma subsampling mode based on pixel encoding */
7953 if (timing->pixel_encoding == PIXEL_ENCODING_YCBCR420) {
7954 state->opp[i].fmt_subsampling_mode = 1; /* 4:2:0 subsampling */
7955 } else if (timing->pixel_encoding == PIXEL_ENCODING_YCBCR422) {
7956 state->opp[i].fmt_subsampling_mode = 2; /* 4:2:2 subsampling */
7957 } else {
7958 state->opp[i].fmt_subsampling_mode = 0; /* No subsampling (4:4:4) */
7959 }
7960
7961 state->opp[i].fmt_cbcr_bit_reduction_bypass = (timing->pixel_encoding == PIXEL_ENCODING_RGB) ? 1 : 0;
7962 state->opp[i].fmt_stereosync_override = (timing->timing_3d_format != TIMING_3D_FORMAT_NONE) ? 1 : 0;
7963
7964 /* Dithering control based on bit depth */
7965 if (timing->display_color_depth < COLOR_DEPTH_121212) {
7966 state->opp[i].fmt_spatial_dither_frame_counter_max = 15; /* Typical frame counter max */
7967 state->opp[i].fmt_spatial_dither_frame_counter_bit_swap = 0; /* No bit swapping */
7968 state->opp[i].fmt_spatial_dither_enable = 1;
7969 state->opp[i].fmt_spatial_dither_mode = 0; /* Spatial dithering mode */
7970 state->opp[i].fmt_spatial_dither_depth = timing->display_color_depth;
7971 state->opp[i].fmt_temporal_dither_enable = 0; /* Spatial dithering preferred */
7972 } else {
7973 state->opp[i].fmt_spatial_dither_frame_counter_max = 0;
7974 state->opp[i].fmt_spatial_dither_frame_counter_bit_swap = 0;
7975 state->opp[i].fmt_spatial_dither_enable = 0;
7976 state->opp[i].fmt_spatial_dither_mode = 0;
7977 state->opp[i].fmt_spatial_dither_depth = 0;
7978 state->opp[i].fmt_temporal_dither_enable = 0;
7979 }
7980
7981 /* Truncation control for bit depth reduction */
7982 if (timing->display_color_depth < COLOR_DEPTH_121212) {
7983 state->opp[i].fmt_truncate_enable = 1;
7984 state->opp[i].fmt_truncate_depth = timing->display_color_depth;
7985 state->opp[i].fmt_truncate_mode = 0; /* Round mode */
7986 } else {
7987 state->opp[i].fmt_truncate_enable = 0;
7988 state->opp[i].fmt_truncate_depth = 0;
7989 state->opp[i].fmt_truncate_mode = 0;
7990 }
7991
7992 /* Data clamping control */
7993 state->opp[i].fmt_clamp_data_enable = 1; /* Clamping typically enabled */
7994 state->opp[i].fmt_clamp_color_format = timing->pixel_encoding;
7995
7996 /* Dynamic expansion for limited range content */
7997 if (timing->pixel_encoding != PIXEL_ENCODING_RGB) {
7998 state->opp[i].fmt_dynamic_exp_enable = 1; /* YCbCr typically needs expansion */
7999 state->opp[i].fmt_dynamic_exp_mode = 0; /* Standard expansion */
8000 } else {
8001 state->opp[i].fmt_dynamic_exp_enable = 0; /* RGB typically full range */
8002 state->opp[i].fmt_dynamic_exp_mode = 0;
8003 }
8004
8005 /* Legacy field for compatibility */
8006 state->opp[i].fmt_bit_depth_control = timing->display_color_depth;
8007
8008 /* Output Buffer (OPPBUF) Control - 6 fields */
8009 state->opp[i].oppbuf_active_width = timing->h_addressable;
8010 state->opp[i].oppbuf_pixel_repetition = 0; /* No pixel repetition by default */
8011
8012 /* Multi-Stream Output (MSO) / ODM segmentation */
8013 if (pipe_ctx->next_odm_pipe) {
8014 state->opp[i].oppbuf_display_segmentation = 1; /* Segmented display */
8015 state->opp[i].oppbuf_overlap_pixel_num = 0; /* ODM overlap pixels */
8016 } else {
8017 state->opp[i].oppbuf_display_segmentation = 0; /* Single segment */
8018 state->opp[i].oppbuf_overlap_pixel_num = 0;
8019 }
8020
8021 /* 3D/Stereo control */
8022 if (timing->timing_3d_format != TIMING_3D_FORMAT_NONE) {
8023 state->opp[i].oppbuf_3d_vact_space1_size = 30; /* Typical stereo blanking */
8024 state->opp[i].oppbuf_3d_vact_space2_size = 30;
8025 } else {
8026 state->opp[i].oppbuf_3d_vact_space1_size = 0;
8027 state->opp[i].oppbuf_3d_vact_space2_size = 0;
8028 }
8029
8030 /* DSC Forward Config - 3 fields */
8031 if (timing->dsc_cfg.num_slices_h > 0) {
8032 state->opp[i].dscrm_dsc_forward_enable = 1;
8033 state->opp[i].dscrm_dsc_opp_pipe_source = pipe_ctx->stream_res.opp->inst;
8034 state->opp[i].dscrm_dsc_forward_enable_status = 1; /* Status follows enable */
8035 } else {
8036 state->opp[i].dscrm_dsc_forward_enable = 0;
8037 state->opp[i].dscrm_dsc_opp_pipe_source = 0;
8038 state->opp[i].dscrm_dsc_forward_enable_status = 0;
8039 }
8040 } else {
8041 /* No OPP resource - set all fields to disabled state */
8042 memset(&state->opp[i], 0, sizeof(state->opp[i]));
8043 }
8044 }
8045
8046 /* Capture OPTC programming state for each pipe - comprehensive register field coverage */
8047 for (i = 0; i < max_pipes && i < dc->res_pool->pipe_count; i++) {
8048 struct pipe_ctx *pipe_ctx = &res_ctx->pipe_ctx[i];
8049
8050 if (!pipe_ctx->stream)
8051 continue;
8052
8053 if (pipe_ctx->stream_res.tg) {
8054 struct dc_crtc_timing *timing = &pipe_ctx->stream->timing;
8055
8056 state->optc[i].otg_master_inst = pipe_ctx->stream_res.tg->inst;
8057
8058 /* OTG_CONTROL register - 5 fields */
8059 state->optc[i].otg_master_enable = 1; /* Active stream */
8060 state->optc[i].otg_disable_point_cntl = 0; /* Normal operation */
8061 state->optc[i].otg_start_point_cntl = 0; /* Normal start */
8062 state->optc[i].otg_field_number_cntl = (timing->flags.INTERLACE) ? 1 : 0;
8063 state->optc[i].otg_out_mux = 0; /* Direct output */
8064
8065 /* OTG Horizontal Timing - 7 fields */
8066 state->optc[i].otg_h_total = timing->h_total;
8067 state->optc[i].otg_h_blank_start = timing->h_addressable;
8068 state->optc[i].otg_h_blank_end = timing->h_total - timing->h_front_porch;
8069 state->optc[i].otg_h_sync_start = timing->h_addressable + timing->h_front_porch;
8070 state->optc[i].otg_h_sync_end = timing->h_addressable + timing->h_front_porch + timing->h_sync_width;
8071 state->optc[i].otg_h_sync_polarity = timing->flags.HSYNC_POSITIVE_POLARITY ? 0 : 1;
8072 state->optc[i].otg_h_timing_div_mode = (pipe_ctx->next_odm_pipe) ? 1 : 0; /* ODM divide mode */
8073
8074 /* OTG Vertical Timing - 7 fields */
8075 state->optc[i].otg_v_total = timing->v_total;
8076 state->optc[i].otg_v_blank_start = timing->v_addressable;
8077 state->optc[i].otg_v_blank_end = timing->v_total - timing->v_front_porch;
8078 state->optc[i].otg_v_sync_start = timing->v_addressable + timing->v_front_porch;
8079 state->optc[i].otg_v_sync_end = timing->v_addressable + timing->v_front_porch + timing->v_sync_width;
8080 state->optc[i].otg_v_sync_polarity = timing->flags.VSYNC_POSITIVE_POLARITY ? 0 : 1;
8081 state->optc[i].otg_v_sync_mode = 0; /* Normal sync mode */
8082
8083 /* Initialize remaining core fields with appropriate defaults */
8084 // TODO: Update logic for accurate vtotal min/max
8085 state->optc[i].otg_v_total_max = timing->v_total + 100; /* Typical DRR range */
8086 state->optc[i].otg_v_total_min = timing->v_total - 50;
8087 state->optc[i].otg_v_total_mid = timing->v_total;
8088
8089 /* ODM configuration */
8090 // TODO: Update logic to have complete ODM mappings (e.g. 3:1 and 4:1) stored in single pipe
8091 if (pipe_ctx->next_odm_pipe) {
8092 state->optc[i].optc_seg0_src_sel = pipe_ctx->stream_res.opp ? pipe_ctx->stream_res.opp->inst : 0;
8093 state->optc[i].optc_seg1_src_sel = pipe_ctx->next_odm_pipe->stream_res.opp ? pipe_ctx->next_odm_pipe->stream_res.opp->inst : 0;
8094 state->optc[i].optc_num_of_input_segment = 1; /* 2 segments - 1 */
8095 } else {
8096 state->optc[i].optc_seg0_src_sel = pipe_ctx->stream_res.opp ? pipe_ctx->stream_res.opp->inst : 0;
8097 state->optc[i].optc_seg1_src_sel = 0;
8098 state->optc[i].optc_num_of_input_segment = 0; /* Single segment */
8099 }
8100
8101 /* DSC configuration */
8102 if (timing->dsc_cfg.num_slices_h > 0) {
8103 state->optc[i].optc_dsc_mode = 1; /* DSC enabled */
8104 state->optc[i].optc_dsc_bytes_per_pixel = timing->dsc_cfg.bits_per_pixel / 16; /* Convert to bytes */
8105 state->optc[i].optc_dsc_slice_width = timing->h_addressable / timing->dsc_cfg.num_slices_h;
8106 } else {
8107 state->optc[i].optc_dsc_mode = 0;
8108 state->optc[i].optc_dsc_bytes_per_pixel = 0;
8109 state->optc[i].optc_dsc_slice_width = 0;
8110 }
8111
8112 /* Essential control fields */
8113 state->optc[i].otg_stereo_enable = (timing->timing_3d_format != TIMING_3D_FORMAT_NONE) ? 1 : 0;
8114 state->optc[i].otg_interlace_enable = timing->flags.INTERLACE ? 1 : 0;
8115 state->optc[i].otg_clock_enable = 1; /* OTG clock enabled */
8116 state->optc[i].vtg0_enable = 1; /* VTG enabled for timing generation */
8117
8118 /* Initialize other key fields to defaults */
8119 state->optc[i].optc_input_pix_clk_en = 1;
8120 state->optc[i].optc_segment_width = (pipe_ctx->next_odm_pipe) ? (timing->h_addressable / 2) : timing->h_addressable;
8121 state->optc[i].otg_vready_offset = 1;
8122 state->optc[i].otg_vstartup_start = timing->v_addressable + 10;
8123 state->optc[i].otg_vupdate_offset = 0;
8124 state->optc[i].otg_vupdate_width = 5;
8125 } else {
8126 /* No timing generator resource - initialize all fields to 0 */
8127 memset(&state->optc[i], 0, sizeof(state->optc[i]));
8128 }
8129 }
8130
8131 state->state_valid = true;
8132 return true;
8133 }
8134
dc_log_preos_dmcub_info(const struct dc * dc)8135 void dc_log_preos_dmcub_info(const struct dc *dc)
8136 {
8137 dc_dmub_srv_log_preos_dmcub_info(dc->ctx->dmub_srv);
8138 }
8139
dc_get_qos_info(struct dc * dc,struct dc_qos_info * info)8140 bool dc_get_qos_info(struct dc *dc, struct dc_qos_info *info)
8141 {
8142 const struct dc_clocks *clk = &dc->current_state->bw_ctx.bw.dcn.clk;
8143 struct dc_requested_memory_qos requested = {};
8144
8145 memset(info, 0, sizeof(*info));
8146
8147 info->dcn_bandwidth_ub_in_mbps = (uint32_t)(clk->fclk_khz / 1000 * 64);
8148
8149 if (dc->clk_mgr && dc->clk_mgr->funcs->get_requested_memory_qos) {
8150 dc->clk_mgr->funcs->get_requested_memory_qos(dc->clk_mgr, &requested);
8151 info->qos_bandwidth_lb_in_mbps = requested.bandwidth_lb_in_mbps;
8152 info->calculated_avg_bw_in_mbps = requested.calculated_avg_bw_in_mbps;
8153 info->qos_max_latency_ub_in_ns = requested.max_latency_ub_in_ns;
8154 info->qos_avg_latency_ub_in_ns = requested.avg_latency_ub_in_ns;
8155 info->qos_max_bw_budget_in_mbps = requested.max_bw_budget_in_mbps;
8156 }
8157
8158 return true;
8159 }
8160
dc_override_memory_bandwidth_request(struct dc * dc,unsigned int bw_mbps)8161 unsigned int dc_override_memory_bandwidth_request(
8162 struct dc *dc,
8163 unsigned int bw_mbps)
8164 {
8165 if (!dc->clk_mgr || !dc->clk_mgr->funcs)
8166 return 0;
8167
8168 return dc->clk_mgr->funcs->override_memory_bandwidth_request(
8169 dc->clk_mgr, bw_mbps * 1000) / 1000;
8170 }
8171
update_planes_and_stream_prepare_v2(struct dc_update_scratch_space * scratch)8172 static bool update_planes_and_stream_prepare_v2(
8173 struct dc_update_scratch_space *scratch
8174 )
8175 {
8176 // v2 is too tangled to break into stages, so just execute everything under lock
8177 dc_exit_ips_for_hw_access(scratch->dc);
8178 return update_planes_and_stream_v2(
8179 scratch->dc,
8180 scratch->surface_updates,
8181 scratch->surface_count,
8182 scratch->stream,
8183 scratch->stream_update
8184 );
8185 }
8186
update_planes_and_stream_execute_v2(const struct dc_update_scratch_space * scratch)8187 static void update_planes_and_stream_execute_v2(
8188 const struct dc_update_scratch_space *scratch
8189 )
8190 {
8191 // Nothing to do, see `update_planes_and_stream_prepare_v2`
8192 (void) scratch;
8193 }
8194
update_planes_and_stream_cleanup_v2(const struct dc_update_scratch_space * scratch)8195 static bool update_planes_and_stream_cleanup_v2(
8196 const struct dc_update_scratch_space *scratch
8197 )
8198 {
8199 if (scratch->do_clear_update_bits)
8200 clear_update_bits(scratch->surface_updates, scratch->surface_count, scratch->stream);
8201
8202 return false;
8203 }
8204
8205 static void update_planes_and_stream_cleanup_v3_release_minimal(
8206 struct dc_update_scratch_space *scratch,
8207 bool backup
8208 );
8209
update_planes_and_stream_prepare_v3_intermediate_seamless(struct dc_update_scratch_space * scratch)8210 static bool update_planes_and_stream_prepare_v3_intermediate_seamless(
8211 struct dc_update_scratch_space *scratch
8212 )
8213 {
8214 return is_pipe_topology_transition_seamless_with_intermediate_step(
8215 scratch->dc,
8216 scratch->dc->current_state,
8217 scratch->intermediate_context,
8218 scratch->new_context
8219 );
8220 }
8221
transition_countdown_init(struct dc * dc)8222 static void transition_countdown_init(struct dc *dc)
8223 {
8224 dc->check_config.transition_countdown_to_steady_state =
8225 dc->debug.num_fast_flips_to_steady_state_override ?
8226 dc->debug.num_fast_flips_to_steady_state_override :
8227 NUM_FAST_FLIPS_TO_STEADY_STATE;
8228 }
8229
update_planes_and_stream_prepare_v3(struct dc_update_scratch_space * scratch)8230 static bool update_planes_and_stream_prepare_v3(
8231 struct dc_update_scratch_space *scratch
8232 )
8233 {
8234 if (scratch->flow == UPDATE_V3_FLOW_NEW_CONTEXT_SEAMLESS) {
8235 return true;
8236 }
8237 ASSERT(scratch->flow == UPDATE_V3_FLOW_INVALID);
8238 dc_exit_ips_for_hw_access(scratch->dc);
8239
8240 /* HWSS path determination needs to be done prior to updating the surface and stream states. */
8241 struct dc_fast_update fast_update[MAX_SURFACES] = { 0 };
8242
8243 populate_fast_updates(fast_update,
8244 scratch->surface_updates,
8245 scratch->surface_count,
8246 scratch->stream_update);
8247
8248 const bool is_hwss_fast_path_only =
8249 fast_update_only(scratch->dc,
8250 fast_update,
8251 scratch->surface_updates,
8252 scratch->surface_count,
8253 scratch->stream_update,
8254 scratch->stream) &&
8255 !scratch->dc->check_config.enable_legacy_fast_update;
8256
8257 if (!update_planes_and_stream_state(
8258 scratch->dc,
8259 scratch->surface_updates,
8260 scratch->surface_count,
8261 scratch->stream,
8262 scratch->stream_update,
8263 &scratch->update_type,
8264 &scratch->new_context
8265 )) {
8266 return false;
8267 }
8268
8269 if (scratch->new_context == scratch->dc->current_state) {
8270 ASSERT(scratch->update_type < UPDATE_TYPE_FULL);
8271
8272 scratch->flow = is_hwss_fast_path_only
8273 ? UPDATE_V3_FLOW_NO_NEW_CONTEXT_CONTEXT_FAST
8274 : UPDATE_V3_FLOW_NO_NEW_CONTEXT_CONTEXT_FULL;
8275 return true;
8276 }
8277
8278 ASSERT(scratch->update_type >= UPDATE_TYPE_FULL);
8279
8280 const bool seamless = scratch->dc->hwss.is_pipe_topology_transition_seamless(
8281 scratch->dc,
8282 scratch->dc->current_state,
8283 scratch->new_context
8284 );
8285 if (seamless) {
8286 scratch->flow = UPDATE_V3_FLOW_NEW_CONTEXT_SEAMLESS;
8287 if (scratch->dc->check_config.deferred_transition_state)
8288 /* reset countdown as steady state not reached */
8289 transition_countdown_init(scratch->dc);
8290 return true;
8291 }
8292
8293 if (!scratch->dc->debug.disable_deferred_minimal_transitions) {
8294 scratch->dc->check_config.deferred_transition_state = true;
8295 transition_countdown_init(scratch->dc);
8296 }
8297
8298 scratch->intermediate_context = create_minimal_transition_state(
8299 scratch->dc,
8300 scratch->new_context,
8301 &scratch->intermediate_policy
8302 );
8303 if (scratch->intermediate_context) {
8304 if (update_planes_and_stream_prepare_v3_intermediate_seamless(scratch)) {
8305 scratch->flow = UPDATE_V3_FLOW_NEW_CONTEXT_MINIMAL_NEW;
8306 return true;
8307 }
8308
8309 update_planes_and_stream_cleanup_v3_release_minimal(scratch, false);
8310 }
8311
8312 scratch->backup_context = scratch->dc->current_state;
8313 restore_planes_and_stream_state(&scratch->dc->scratch.current_state, scratch->stream);
8314 dc_state_retain(scratch->backup_context);
8315 scratch->intermediate_context = create_minimal_transition_state(
8316 scratch->dc,
8317 scratch->backup_context,
8318 &scratch->intermediate_policy
8319 );
8320 if (scratch->intermediate_context) {
8321 if (update_planes_and_stream_prepare_v3_intermediate_seamless(scratch)) {
8322 scratch->flow = UPDATE_V3_FLOW_NEW_CONTEXT_MINIMAL_CURRENT;
8323 scratch->intermediate_count = initialize_empty_surface_updates(
8324 scratch->stream, scratch->intermediate_updates
8325 );
8326 return true;
8327 }
8328
8329 update_planes_and_stream_cleanup_v3_release_minimal(scratch, true);
8330 }
8331
8332 scratch->flow = UPDATE_V3_FLOW_INVALID;
8333 dc_state_release(scratch->backup_context);
8334 restore_planes_and_stream_state(&scratch->dc->scratch.new_state, scratch->stream);
8335 return false;
8336 }
8337
8338 /**
8339 * should_commit_intermediate_context - Does this flow commit a transient
8340 * minimal-transition intermediate context
8341 * @flow: the commit flow selected for this iteration
8342 *
8343 * Return: true if this iteration commits the intermediate context.
8344 */
should_commit_intermediate_context(enum update_v3_flow flow)8345 static bool should_commit_intermediate_context(enum update_v3_flow flow)
8346 {
8347 return flow == UPDATE_V3_FLOW_NEW_CONTEXT_MINIMAL_NEW
8348 || flow == UPDATE_V3_FLOW_NEW_CONTEXT_MINIMAL_CURRENT;
8349 }
8350
update_planes_and_stream_execute_v3_commit(const struct dc_update_scratch_space * scratch,bool intermediate_update,bool intermediate_context,bool use_stream_update)8351 static void update_planes_and_stream_execute_v3_commit(
8352 const struct dc_update_scratch_space *scratch,
8353 bool intermediate_update,
8354 bool intermediate_context,
8355 bool use_stream_update
8356 )
8357 {
8358 commit_planes_for_stream(
8359 scratch->dc,
8360 intermediate_update ? scratch->intermediate_updates : scratch->surface_updates,
8361 intermediate_update ? scratch->intermediate_count : scratch->surface_count,
8362 scratch->stream,
8363 use_stream_update ? scratch->stream_update : NULL,
8364 intermediate_context ? UPDATE_TYPE_FULL : scratch->update_type,
8365 // `dc->current_state` only used in `NO_NEW_CONTEXT`, where it is equal to `new_context`
8366 intermediate_context ? scratch->intermediate_context : scratch->new_context
8367 );
8368 }
8369
update_planes_and_stream_execute_v3(const struct dc_update_scratch_space * scratch)8370 static void update_planes_and_stream_execute_v3(
8371 const struct dc_update_scratch_space *scratch
8372 )
8373 {
8374 bool intermediate_context = should_commit_intermediate_context(scratch->flow);
8375
8376 switch (scratch->flow) {
8377 case UPDATE_V3_FLOW_NO_NEW_CONTEXT_CONTEXT_FAST:
8378 commit_planes_for_stream_fast(
8379 scratch->dc,
8380 scratch->surface_updates,
8381 scratch->surface_count,
8382 scratch->stream,
8383 scratch->stream_update,
8384 scratch->update_type,
8385 scratch->new_context
8386 );
8387 break;
8388
8389 case UPDATE_V3_FLOW_NO_NEW_CONTEXT_CONTEXT_FULL:
8390 case UPDATE_V3_FLOW_NEW_CONTEXT_SEAMLESS:
8391 update_planes_and_stream_execute_v3_commit(scratch, false, intermediate_context, true);
8392 break;
8393
8394 case UPDATE_V3_FLOW_NEW_CONTEXT_MINIMAL_NEW:
8395 update_planes_and_stream_execute_v3_commit(scratch, false, intermediate_context,
8396 scratch->dc->check_config.deferred_transition_state);
8397 break;
8398
8399 case UPDATE_V3_FLOW_NEW_CONTEXT_MINIMAL_CURRENT:
8400 update_planes_and_stream_execute_v3_commit(scratch, true, intermediate_context, false);
8401 break;
8402
8403 case UPDATE_V3_FLOW_INVALID:
8404 default:
8405 ASSERT(false);
8406 }
8407 }
8408
update_planes_and_stream_cleanup_v3_release_minimal(struct dc_update_scratch_space * scratch,bool backup)8409 static void update_planes_and_stream_cleanup_v3_release_minimal(
8410 struct dc_update_scratch_space *scratch,
8411 bool backup
8412 )
8413 {
8414 release_minimal_transition_state(
8415 scratch->dc,
8416 scratch->intermediate_context,
8417 backup ? scratch->backup_context : scratch->new_context,
8418 &scratch->intermediate_policy
8419 );
8420 }
8421
update_planes_and_stream_cleanup_v3_intermediate(struct dc_update_scratch_space * scratch,bool backup)8422 static void update_planes_and_stream_cleanup_v3_intermediate(
8423 struct dc_update_scratch_space *scratch,
8424 bool backup
8425 )
8426 {
8427 swap_and_release_current_context(scratch->dc, scratch->intermediate_context, scratch->stream);
8428 dc_state_retain(scratch->dc->current_state);
8429 update_planes_and_stream_cleanup_v3_release_minimal(scratch, backup);
8430 }
8431
update_planes_and_stream_cleanup_v3(struct dc_update_scratch_space * scratch)8432 static bool update_planes_and_stream_cleanup_v3(
8433 struct dc_update_scratch_space *scratch
8434 )
8435 {
8436 switch (scratch->flow) {
8437 case UPDATE_V3_FLOW_NO_NEW_CONTEXT_CONTEXT_FAST:
8438 case UPDATE_V3_FLOW_NO_NEW_CONTEXT_CONTEXT_FULL:
8439 if (scratch->dc->check_config.transition_countdown_to_steady_state)
8440 scratch->dc->check_config.transition_countdown_to_steady_state--;
8441 break;
8442
8443 case UPDATE_V3_FLOW_NEW_CONTEXT_SEAMLESS:
8444 swap_and_release_current_context(scratch->dc, scratch->new_context, scratch->stream);
8445 break;
8446
8447 case UPDATE_V3_FLOW_NEW_CONTEXT_MINIMAL_NEW:
8448 update_planes_and_stream_cleanup_v3_intermediate(scratch, false);
8449 if (scratch->dc->check_config.deferred_transition_state) {
8450 dc_state_release(scratch->new_context);
8451 } else {
8452 scratch->flow = UPDATE_V3_FLOW_NEW_CONTEXT_SEAMLESS;
8453 return true;
8454 }
8455 break;
8456
8457 case UPDATE_V3_FLOW_NEW_CONTEXT_MINIMAL_CURRENT:
8458 update_planes_and_stream_cleanup_v3_intermediate(scratch, true);
8459 dc_state_release(scratch->backup_context);
8460 restore_planes_and_stream_state(&scratch->dc->scratch.new_state, scratch->stream);
8461 scratch->flow = UPDATE_V3_FLOW_NEW_CONTEXT_SEAMLESS;
8462 return true;
8463
8464 case UPDATE_V3_FLOW_INVALID:
8465 default:
8466 ASSERT(false);
8467 }
8468
8469 if (scratch->do_clear_update_bits)
8470 clear_update_bits(scratch->surface_updates, scratch->surface_count, scratch->stream);
8471
8472 return false;
8473 }
8474
dc_update_state_init(struct dc * dc,const struct dc_state_update * updates)8475 struct dc_update_scratch_space *dc_update_state_init(
8476 struct dc *dc,
8477 const struct dc_state_update *updates
8478 )
8479 {
8480 const enum dce_version version = dc->ctx->dce_version;
8481 struct dc_update_scratch_space *scratch = dc_update_scratch_acquire(dc);
8482 const bool has_stream_or_plane = updates->stream || updates->stream_update || updates->surface_updates;
8483 const bool has_probe = updates->probe_updates;
8484 const bool surface_without_stream = updates->surface_updates && !updates->stream;
8485 const bool stream_update_without_stream = updates->stream_update && !updates->stream;
8486 const bool bad_surface_count = updates->surface_count > 0 && !updates->surface_updates;
8487
8488 if (!scratch)
8489 return NULL;
8490
8491 if (!has_stream_or_plane && !has_probe) {
8492 dc_update_scratch_release(dc, scratch);
8493 return NULL;
8494 }
8495
8496 if (surface_without_stream || stream_update_without_stream || bad_surface_count) {
8497 dc_update_scratch_release(dc, scratch);
8498 return NULL;
8499 }
8500
8501 *scratch = (struct dc_update_scratch_space){
8502 .dc = dc,
8503 .surface_updates = updates->surface_updates,
8504 .surface_count = updates->surface_count,
8505 .stream = updates->stream,
8506 .stream_update = updates->stream_update,
8507 .probe_updates = updates->probe_updates,
8508 .update_v3 = version >= DCN_VERSION_4_01
8509 || version == DCN_VERSION_3_2
8510 || version == DCN_VERSION_3_21,
8511 .do_clear_update_bits = version >= DCN_VERSION_1_0,
8512 .new_context = NULL,
8513 .flow = UPDATE_V3_FLOW_INVALID,
8514 };
8515
8516 return scratch;
8517 }
8518
8519 /**
8520 * dc_update_probes_prepare - Commit the desired probe set into new_context.
8521 * @scratch: commit scratch carrying the probe updates
8522 *
8523 * Return: true on success or when there is nothing to do; false when the
8524 * desired set is unachievable.
8525 */
dc_update_probes_prepare(struct dc_update_scratch_space * scratch)8526 static bool dc_update_probes_prepare(struct dc_update_scratch_space *scratch)
8527 {
8528 struct dc *dc = scratch->dc;
8529 const struct dc_probe_updates *probe_updates = scratch->probe_updates;
8530 uint8_t i;
8531
8532 if (!probe_updates)
8533 return true;
8534
8535 if (resource_validate_probe_set(dc, probe_updates->probes,
8536 (uint8_t)probe_updates->probe_count) != DC_OK)
8537 return false;
8538
8539 if (!scratch->new_context)
8540 scratch->new_context = dc->current_state;
8541
8542 for (i = 0; i < probe_updates->probe_count && i < MAX_PROBES; i++)
8543 scratch->new_context->probes[i] = probe_updates->probes[i];
8544 scratch->new_context->probe_count = probe_updates->probe_count;
8545
8546 return true;
8547 }
8548
8549 /**
8550 * dc_update_probes_execute - Program the committed probes.
8551 * @scratch: commit scratch carrying the probe updates
8552 *
8553 */
dc_update_probes_execute(const struct dc_update_scratch_space * scratch)8554 static void dc_update_probes_execute(const struct dc_update_scratch_space *scratch)
8555 {
8556 struct dc *dc = scratch->dc;
8557
8558 if (should_commit_intermediate_context(scratch->flow))
8559 return;
8560
8561 if (dc->hwss.program_perfmon)
8562 dc->hwss.program_perfmon(dc, scratch->new_context);
8563 }
8564
dc_update_state_prepare(struct dc_update_scratch_space * scratch)8565 bool dc_update_state_prepare(struct dc_update_scratch_space *scratch)
8566 {
8567 if (scratch->stream) {
8568 bool ok = scratch->update_v3
8569 ? update_planes_and_stream_prepare_v3(scratch)
8570 : update_planes_and_stream_prepare_v2(scratch);
8571
8572 if (!ok)
8573 goto release_scratch;
8574 }
8575
8576 if (!dc_update_probes_prepare(scratch))
8577 goto release_scratch;
8578
8579 return true;
8580
8581 release_scratch:
8582 /* execute and cleanup never run on this path, so release here. */
8583 dc_update_scratch_release(scratch->dc, scratch);
8584 return false;
8585 }
8586
dc_update_state_execute(const struct dc_update_scratch_space * scratch)8587 void dc_update_state_execute(
8588 const struct dc_update_scratch_space *scratch
8589 )
8590 {
8591 if (scratch->stream)
8592 scratch->update_v3
8593 ? update_planes_and_stream_execute_v3(scratch)
8594 : update_planes_and_stream_execute_v2(scratch);
8595
8596 if (scratch->probe_updates)
8597 dc_update_probes_execute(scratch);
8598 }
8599
dc_update_state_cleanup(struct dc_update_scratch_space * scratch)8600 bool dc_update_state_cleanup(
8601 struct dc_update_scratch_space *scratch
8602 )
8603 {
8604 bool more = false;
8605
8606 if (scratch->stream)
8607 more = scratch->update_v3
8608 ? update_planes_and_stream_cleanup_v3(scratch)
8609 : update_planes_and_stream_cleanup_v2(scratch);
8610
8611 if (!more)
8612 dc_update_scratch_release(scratch->dc, scratch);
8613
8614 return more;
8615 }
8616
8617