xref: /linux/drivers/gpu/drm/amd/display/dc/dc_dmub_srv.c (revision 64b4c4cdfddd31d3a0ec468afccb7ff7cd926682)
1 /*
2  * Copyright 2019 Advanced Micro Devices, Inc.
3  *
4  * Permission is hereby granted, free of charge, to any person obtaining a
5  * copy of this software and associated documentation files (the "Software"),
6  * to deal in the Software without restriction, including without limitation
7  * the rights to use, copy, modify, merge, publish, distribute, sublicense,
8  * and/or sell copies of the Software, and to permit persons to whom the
9  * Software is furnished to do so, subject to the following conditions:
10  *
11  * The above copyright notice and this permission notice shall be included in
12  * all copies or substantial portions of the Software.
13  *
14  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
15  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
16  * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
17  * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
18  * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
19  * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
20  * OTHER DEALINGS IN THE SOFTWARE.
21  *
22  * Authors: AMD
23  *
24  */
25 
26 #include "dm_services.h"
27 #include "dc.h"
28 #include "dc_dmub_srv.h"
29 #include "../dmub/dmub_srv.h"
30 #include "dm_helpers.h"
31 #include "dc_hw_types.h"
32 #include "core_types.h"
33 #include "../basics/conversion.h"
34 #include "cursor_reg_cache.h"
35 #include "resource.h"
36 #include "clk_mgr.h"
37 #include "dc_state_priv.h"
38 #include "dc_plane_priv.h"
39 
40 #define CTX dc_dmub_srv->ctx
41 #define DC_LOGGER CTX->logger
42 #define GPINT_RETRY_NUM 20
43 
44 #define MAX_WAIT_US 100000
45 
46 static void dc_dmub_srv_construct(struct dc_dmub_srv *dc_srv, struct dc *dc,
47 				  struct dmub_srv *dmub)
48 {
49 	dc_srv->dmub = dmub;
50 	dc_srv->ctx = dc->ctx;
51 }
52 
53 static void dc_dmub_srv_handle_failure(struct dc_dmub_srv *dc_dmub_srv)
54 {
55 	dc_dmub_srv_log_diagnostic_data(dc_dmub_srv);
56 	if (dc_dmub_srv->ctx->dc->debug.enable_dmu_recovery)
57 		dm_helpers_dmu_timeout(dc_dmub_srv->ctx);
58 }
59 
60 struct dc_dmub_srv *dc_dmub_srv_create(struct dc *dc, struct dmub_srv *dmub)
61 {
62 	struct dc_dmub_srv *dc_srv =
63 		kzalloc_obj(struct dc_dmub_srv);
64 
65 	if (dc_srv == NULL) {
66 		BREAK_TO_DEBUGGER();
67 		return NULL;
68 	}
69 
70 	dc_dmub_srv_construct(dc_srv, dc, dmub);
71 
72 	return dc_srv;
73 }
74 
75 void dc_dmub_srv_destroy(struct dc_dmub_srv **dmub_srv)
76 {
77 	if (*dmub_srv) {
78 		kfree(*dmub_srv);
79 		*dmub_srv = NULL;
80 	}
81 }
82 
83 bool dc_dmub_srv_wait_for_pending(struct dc_dmub_srv *dc_dmub_srv)
84 {
85 	struct dmub_srv *dmub;
86 	struct dc_context *dc_ctx;
87 	enum dmub_status status;
88 
89 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
90 		return false;
91 
92 	dc_ctx = dc_dmub_srv->ctx;
93 	dmub = dc_dmub_srv->dmub;
94 
95 	do {
96 		status = dmub_srv_wait_for_pending(dmub, MAX_WAIT_US);
97 	} while (dc_dmub_srv->ctx->dc->debug.disable_timeout && status != DMUB_STATUS_OK);
98 
99 	if (status != DMUB_STATUS_OK) {
100 		DC_ERROR("Error waiting for DMUB idle: status=%d\n", status);
101 		dc_dmub_srv_handle_failure(dc_dmub_srv);
102 	}
103 
104 	return status == DMUB_STATUS_OK;
105 }
106 
107 void dc_dmub_srv_clear_inbox0_ack(struct dc_dmub_srv *dc_dmub_srv)
108 {
109 	struct dmub_srv *dmub = dc_dmub_srv->dmub;
110 	struct dc_context *dc_ctx = dc_dmub_srv->ctx;
111 	enum dmub_status status = DMUB_STATUS_OK;
112 
113 	status = dmub_srv_clear_inbox0_ack(dmub);
114 	if (status != DMUB_STATUS_OK) {
115 		DC_ERROR("Error clearing INBOX0 ack: status=%d\n", status);
116 		dc_dmub_srv_handle_failure(dc_dmub_srv);
117 	}
118 }
119 
120 void dc_dmub_srv_wait_for_inbox0_ack(struct dc_dmub_srv *dc_dmub_srv)
121 {
122 	struct dmub_srv *dmub = dc_dmub_srv->dmub;
123 	struct dc_context *dc_ctx = dc_dmub_srv->ctx;
124 	enum dmub_status status = DMUB_STATUS_OK;
125 
126 	status = dmub_srv_wait_for_inbox0_ack(dmub, MAX_WAIT_US);
127 	if (status != DMUB_STATUS_OK) {
128 		DC_ERROR("Error waiting for INBOX0 HW Lock Ack\n");
129 		dc_dmub_srv_handle_failure(dc_dmub_srv);
130 	}
131 }
132 
133 void dc_dmub_srv_send_inbox0_cmd(struct dc_dmub_srv *dc_dmub_srv,
134 				 union dmub_inbox0_data_register data)
135 {
136 	struct dmub_srv *dmub = dc_dmub_srv->dmub;
137 	struct dc_context *dc_ctx = dc_dmub_srv->ctx;
138 	enum dmub_status status = DMUB_STATUS_OK;
139 
140 	status = dmub_srv_send_inbox0_cmd(dmub, data);
141 	if (status != DMUB_STATUS_OK) {
142 		DC_ERROR("Error sending INBOX0 cmd\n");
143 		dc_dmub_srv_handle_failure(dc_dmub_srv);
144 	}
145 }
146 
147 static bool dc_dmub_srv_reg_cmd_list_queue_execute(struct dc_dmub_srv *dc_dmub_srv,
148 		unsigned int count,
149 		union dmub_rb_cmd *cmd_list)
150 {
151 	struct dc_context *dc_ctx;
152 	struct dmub_srv *dmub;
153 	enum dmub_status status = DMUB_STATUS_OK;
154 	unsigned int i;
155 
156 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
157 		return false;
158 
159 	dc_ctx = dc_dmub_srv->ctx;
160 	dmub = dc_dmub_srv->dmub;
161 
162 	for (i = 0 ; i < count; i++) {
163 		/* confirm no messages pending */
164 		do {
165 			status = dmub_srv_wait_for_idle(dmub, MAX_WAIT_US);
166 		} while (dc_dmub_srv->ctx->dc->debug.disable_timeout && status != DMUB_STATUS_OK);
167 
168 		/* queue command */
169 		if (status == DMUB_STATUS_OK)
170 			status = dmub_srv_reg_cmd_execute(dmub, &cmd_list[i]);
171 
172 		/* check for errors */
173 		if (status != DMUB_STATUS_OK) {
174 			break;
175 		}
176 	}
177 
178 	if (status != DMUB_STATUS_OK) {
179 		if (status != DMUB_STATUS_POWER_STATE_D3) {
180 			DC_ERROR("Error starting DMUB execution: status=%d\n", status);
181 			dc_dmub_srv_handle_failure(dc_dmub_srv);
182 		}
183 		return false;
184 	}
185 
186 	return true;
187 }
188 
189 static bool dc_dmub_srv_fb_cmd_list_queue_execute(struct dc_dmub_srv *dc_dmub_srv,
190 		unsigned int count,
191 		union dmub_rb_cmd *cmd_list)
192 {
193 	struct dc_context *dc_ctx;
194 	struct dmub_srv *dmub;
195 	enum dmub_status status;
196 	unsigned int i;
197 
198 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
199 		return false;
200 
201 	dc_ctx = dc_dmub_srv->ctx;
202 	dmub = dc_dmub_srv->dmub;
203 
204 	for (i = 0 ; i < count; i++) {
205 		// Queue command
206 		if (!cmd_list[i].cmd_common.header.multi_cmd_pending ||
207 				dmub_rb_num_free(&dmub->inbox1.rb) >= count - i) {
208 			status = dmub_srv_fb_cmd_queue(dmub, &cmd_list[i]);
209 		} else {
210 			status = DMUB_STATUS_QUEUE_FULL;
211 		}
212 
213 		if (status == DMUB_STATUS_QUEUE_FULL) {
214 			/* Execute and wait for queue to become empty again. */
215 			status = dmub_srv_fb_cmd_execute(dmub);
216 			if (status == DMUB_STATUS_POWER_STATE_D3)
217 				return false;
218 
219 			do {
220 					status = dmub_srv_wait_for_inbox_free(dmub, MAX_WAIT_US, count - i);
221 			} while (dc_dmub_srv->ctx->dc->debug.disable_timeout && status != DMUB_STATUS_OK);
222 
223 			/* Requeue the command. */
224 			status = dmub_srv_fb_cmd_queue(dmub, &cmd_list[i]);
225 		}
226 
227 		if (status != DMUB_STATUS_OK) {
228 			if (status != DMUB_STATUS_POWER_STATE_D3) {
229 				DC_ERROR("Error queueing DMUB command: status=%d\n", status);
230 				dc_dmub_srv_handle_failure(dc_dmub_srv);
231 			}
232 			return false;
233 		}
234 	}
235 
236 	status = dmub_srv_fb_cmd_execute(dmub);
237 	if (status != DMUB_STATUS_OK) {
238 		if (status != DMUB_STATUS_POWER_STATE_D3) {
239 			DC_ERROR("Error starting DMUB execution: status=%d\n", status);
240 			dc_dmub_srv_handle_failure(dc_dmub_srv);
241 		}
242 		return false;
243 	}
244 
245 	return true;
246 }
247 
248 bool dc_dmub_srv_cmd_list_queue_execute(struct dc_dmub_srv *dc_dmub_srv,
249 		unsigned int count,
250 		union dmub_rb_cmd *cmd_list)
251 {
252 	bool res = false;
253 
254 	if (dc_dmub_srv && dc_dmub_srv->dmub) {
255 		if (dc_dmub_srv->dmub->inbox_type == DMUB_CMD_INTERFACE_REG) {
256 			res = dc_dmub_srv_reg_cmd_list_queue_execute(dc_dmub_srv, count, cmd_list);
257 		} else {
258 			res = dc_dmub_srv_fb_cmd_list_queue_execute(dc_dmub_srv, count, cmd_list);
259 		}
260 
261 		if (res)
262 			res = dmub_srv_update_inbox_status(dc_dmub_srv->dmub) == DMUB_STATUS_OK;
263 	}
264 
265 	return res;
266 }
267 
268 bool dc_dmub_srv_wait_for_idle(struct dc_dmub_srv *dc_dmub_srv,
269 		enum dm_dmub_wait_type wait_type,
270 		union dmub_rb_cmd *cmd_list)
271 {
272 	struct dmub_srv *dmub;
273 	enum dmub_status status;
274 
275 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
276 		return false;
277 
278 	dmub = dc_dmub_srv->dmub;
279 
280 	// Wait for DMUB to process command
281 	if (wait_type != DM_DMUB_WAIT_TYPE_NO_WAIT) {
282 		do {
283 			status = dmub_srv_wait_for_idle(dmub, MAX_WAIT_US);
284 		} while (dc_dmub_srv->ctx->dc->debug.disable_timeout && status != DMUB_STATUS_OK);
285 
286 		if (status != DMUB_STATUS_OK) {
287 			DC_LOG_DEBUG("No reply for DMUB command: status=%d\n", status);
288 			if (!dmub->debug.timeout_info.timeout_occured) {
289 				dmub->debug.timeout_info.timeout_occured = true;
290 				if (cmd_list)
291 					dmub->debug.timeout_info.timeout_cmd = *cmd_list;
292 				dmub->debug.timeout_info.timestamp = dm_get_timestamp(dc_dmub_srv->ctx);
293 			}
294 			dc_dmub_srv_handle_failure(dc_dmub_srv);
295 			return false;
296 		}
297 
298 		// Copy data back from ring buffer into command
299 		if (wait_type == DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY && cmd_list) {
300 			dmub_srv_cmd_get_response(dc_dmub_srv->dmub, cmd_list);
301 		}
302 	}
303 
304 	return true;
305 }
306 
307 bool dc_dmub_srv_cmd_run(struct dc_dmub_srv *dc_dmub_srv, union dmub_rb_cmd *cmd, enum dm_dmub_wait_type wait_type)
308 {
309 	return dc_dmub_srv_cmd_run_list(dc_dmub_srv, 1, cmd, wait_type);
310 }
311 
312 bool dc_dmub_srv_cmd_run_list(struct dc_dmub_srv *dc_dmub_srv, unsigned int count, union dmub_rb_cmd *cmd_list, enum dm_dmub_wait_type wait_type)
313 {
314 	if (!dc_dmub_srv_cmd_list_queue_execute(dc_dmub_srv, count, cmd_list))
315 		return false;
316 
317 	return dc_dmub_srv_wait_for_idle(dc_dmub_srv, wait_type, cmd_list);
318 }
319 
320 bool dc_dmub_srv_optimized_init_done(struct dc_dmub_srv *dc_dmub_srv)
321 {
322 	struct dmub_srv *dmub;
323 	struct dc_context *dc_ctx;
324 	union dmub_fw_boot_status boot_status;
325 	enum dmub_status status;
326 
327 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
328 		return false;
329 
330 	dmub = dc_dmub_srv->dmub;
331 	dc_ctx = dc_dmub_srv->ctx;
332 
333 	status = dmub_srv_get_fw_boot_status(dmub, &boot_status);
334 	if (status != DMUB_STATUS_OK) {
335 		DC_ERROR("Error querying DMUB boot status: error=%d\n", status);
336 		return false;
337 	}
338 
339 	return (bool)boot_status.bits.optimized_init_done;
340 }
341 
342 bool dc_dmub_srv_notify_stream_mask(struct dc_dmub_srv *dc_dmub_srv,
343 				    unsigned int stream_mask)
344 {
345 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
346 		return false;
347 
348 	return dc_wake_and_execute_gpint(dc_dmub_srv->ctx, DMUB_GPINT__IDLE_OPT_NOTIFY_STREAM_MASK,
349 				 (uint16_t)stream_mask, NULL, DM_DMUB_WAIT_TYPE_WAIT);
350 }
351 
352 bool dc_dmub_srv_is_restore_required(struct dc_dmub_srv *dc_dmub_srv)
353 {
354 	struct dmub_srv *dmub;
355 	struct dc_context *dc_ctx;
356 	union dmub_fw_boot_status boot_status;
357 	enum dmub_status status;
358 
359 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
360 		return false;
361 
362 	dmub = dc_dmub_srv->dmub;
363 	dc_ctx = dc_dmub_srv->ctx;
364 
365 	status = dmub_srv_get_fw_boot_status(dmub, &boot_status);
366 	if (status != DMUB_STATUS_OK) {
367 		DC_ERROR("Error querying DMUB boot status: error=%d\n", status);
368 		return false;
369 	}
370 
371 	return (bool)boot_status.bits.restore_required;
372 }
373 
374 bool dc_dmub_srv_get_dmub_outbox0_msg(const struct dc *dc, struct dmcub_trace_buf_entry *entry)
375 {
376 	struct dmub_srv *dmub = dc->ctx->dmub_srv->dmub;
377 	return dmub_srv_get_outbox0_msg(dmub, entry);
378 }
379 
380 void dc_dmub_trace_event_control(struct dc *dc, bool enable)
381 {
382 	dm_helpers_dmub_outbox_interrupt_control(dc->ctx, enable);
383 }
384 
385 void dc_dmub_srv_drr_update_cmd(struct dc *dc, uint32_t tg_inst, uint32_t vtotal_min, uint32_t vtotal_max)
386 {
387 	union dmub_rb_cmd cmd = { 0 };
388 
389 	cmd.drr_update.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH;
390 	cmd.drr_update.header.sub_type = DMUB_CMD__FAMS_DRR_UPDATE;
391 	cmd.drr_update.dmub_optc_state_req.v_total_max = vtotal_max;
392 	cmd.drr_update.dmub_optc_state_req.v_total_min = vtotal_min;
393 	cmd.drr_update.dmub_optc_state_req.tg_inst = tg_inst;
394 
395 	cmd.drr_update.header.payload_bytes = sizeof(cmd.drr_update) - sizeof(cmd.drr_update.header);
396 
397 	// Send the command to the DMCUB.
398 	dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT);
399 }
400 
401 void dc_dmub_srv_set_drr_manual_trigger_cmd(struct dc *dc, uint32_t tg_inst)
402 {
403 	union dmub_rb_cmd cmd = { 0 };
404 
405 	cmd.drr_update.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH;
406 	cmd.drr_update.header.sub_type = DMUB_CMD__FAMS_SET_MANUAL_TRIGGER;
407 	cmd.drr_update.dmub_optc_state_req.tg_inst = tg_inst;
408 
409 	cmd.drr_update.header.payload_bytes = sizeof(cmd.drr_update) - sizeof(cmd.drr_update.header);
410 
411 	// Send the command to the DMCUB.
412 	dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT);
413 }
414 
415 static uint8_t dc_dmub_srv_get_pipes_for_stream(struct dc *dc, struct dc_stream_state *stream)
416 {
417 	uint8_t pipes = 0;
418 	uint8_t i = 0;
419 
420 	for (i = 0; i < MAX_PIPES; i++) {
421 		struct pipe_ctx *pipe = &dc->current_state->res_ctx.pipe_ctx[i];
422 
423 		if (pipe->stream == stream && pipe->stream_res.tg)
424 			pipes = i;
425 	}
426 	return pipes;
427 }
428 
429 static void dc_dmub_srv_populate_fams_pipe_info(struct dc *dc, struct dc_state *context,
430 		struct pipe_ctx *head_pipe,
431 		struct dmub_cmd_fw_assisted_mclk_switch_pipe_data *fams_pipe_data)
432 {
433 	unsigned int j;
434 	int pipe_idx = 0;
435 
436 	fams_pipe_data->pipe_index[pipe_idx++] = (uint8_t)head_pipe->plane_res.hubp->inst;
437 	for (j = 0; j < dc->res_pool->pipe_count; j++) {
438 		struct pipe_ctx *split_pipe = &context->res_ctx.pipe_ctx[j];
439 
440 		if (split_pipe->stream == head_pipe->stream && (split_pipe->top_pipe || split_pipe->prev_odm_pipe)) {
441 			fams_pipe_data->pipe_index[pipe_idx++] = (uint8_t)split_pipe->plane_res.hubp->inst;
442 		}
443 	}
444 	fams_pipe_data->pipe_count = (uint8_t)pipe_idx;
445 }
446 
447 bool dc_dmub_srv_p_state_delegate(struct dc *dc, bool should_manage_pstate, struct dc_state *context)
448 {
449 	union dmub_rb_cmd cmd = { 0 };
450 	struct dmub_cmd_fw_assisted_mclk_switch_config *config_data = &cmd.fw_assisted_mclk_switch.config_data;
451 	unsigned int i = 0;
452 	int k = 0;
453 	int ramp_up_num_steps = 1; // TODO: Ramp is currently disabled. Reenable it.
454 	uint8_t visual_confirm_enabled;
455 	struct dc_stream_status *stream_status = NULL;
456 
457 	if (dc == NULL)
458 		return false;
459 
460 	visual_confirm_enabled = (uint8_t)(dc->debug.visual_confirm == VISUAL_CONFIRM_FAMS);
461 
462 	// Format command.
463 	cmd.fw_assisted_mclk_switch.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH;
464 	cmd.fw_assisted_mclk_switch.header.sub_type = DMUB_CMD__FAMS_SETUP_FW_CTRL;
465 	cmd.fw_assisted_mclk_switch.config_data.fams_enabled = should_manage_pstate;
466 	cmd.fw_assisted_mclk_switch.config_data.visual_confirm_enabled = visual_confirm_enabled;
467 
468 	if (should_manage_pstate) {
469 		for (i = 0; i < dc->res_pool->pipe_count; i++) {
470 			struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[i];
471 
472 			if (!pipe->stream)
473 				continue;
474 
475 			/* If FAMS is being used to support P-State and there is a stream
476 			 * that does not use FAMS, we are in an FPO + VActive scenario.
477 			 * Assign vactive stretch margin in this case.
478 			 */
479 			stream_status = dc_state_get_stream_status(context, pipe->stream);
480 			if (stream_status && !stream_status->fpo_in_use) {
481 				cmd.fw_assisted_mclk_switch.config_data.vactive_stretch_margin_us =
482 					(uint16_t)dc->debug.fpo_vactive_margin_us;
483 				break;
484 			}
485 		}
486 	}
487 
488 	for (i = 0, k = 0; context && i < dc->res_pool->pipe_count; i++) {
489 		struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[i];
490 
491 		if (!resource_is_pipe_type(pipe, OTG_MASTER))
492 			continue;
493 
494 		stream_status = dc_state_get_stream_status(context, pipe->stream);
495 		if (stream_status && stream_status->fpo_in_use) {
496 			struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[i];
497 			uint8_t min_refresh_in_hz;
498 
499 			min_refresh_in_hz = (uint8_t)((pipe->stream->timing.min_refresh_in_uhz + 999999) / 1000000);
500 
501 			config_data->pipe_data[k].pix_clk_100hz = pipe->stream->timing.pix_clk_100hz;
502 			config_data->pipe_data[k].min_refresh_in_hz = min_refresh_in_hz;
503 			config_data->pipe_data[k].max_ramp_step = (uint8_t)ramp_up_num_steps;
504 			config_data->pipe_data[k].pipes = dc_dmub_srv_get_pipes_for_stream(dc, pipe->stream);
505 			dc_dmub_srv_populate_fams_pipe_info(dc, context, pipe, &config_data->pipe_data[k]);
506 			k++;
507 		}
508 	}
509 	cmd.fw_assisted_mclk_switch.header.payload_bytes =
510 		sizeof(cmd.fw_assisted_mclk_switch) - sizeof(cmd.fw_assisted_mclk_switch.header);
511 
512 	// Send the command to the DMCUB.
513 	dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT);
514 
515 	return true;
516 }
517 
518 void dc_dmub_srv_query_caps_cmd(struct dc_dmub_srv *dc_dmub_srv)
519 {
520 	union dmub_rb_cmd cmd = { 0 };
521 
522 	if (dc_dmub_srv->ctx->dc->debug.dmcub_emulation)
523 		return;
524 
525 	memset(&cmd, 0, sizeof(cmd));
526 
527 	/* Prepare fw command */
528 	cmd.query_feature_caps.header.type = DMUB_CMD__QUERY_FEATURE_CAPS;
529 	cmd.query_feature_caps.header.sub_type = 0;
530 	cmd.query_feature_caps.header.ret_status = 1;
531 	cmd.query_feature_caps.header.payload_bytes = sizeof(struct dmub_cmd_query_feature_caps_data);
532 
533 	/* If command was processed, copy feature caps to dmub srv */
534 	if (dc_wake_and_execute_dmub_cmd(dc_dmub_srv->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY) &&
535 	    cmd.query_feature_caps.header.ret_status == 0) {
536 		memcpy(&dc_dmub_srv->dmub->feature_caps,
537 		       &cmd.query_feature_caps.query_feature_caps_data,
538 		       sizeof(struct dmub_feature_caps));
539 	}
540 }
541 
542 void dc_dmub_srv_get_visual_confirm_color_cmd(struct dc *dc, struct pipe_ctx *pipe_ctx)
543 {
544 	union dmub_rb_cmd cmd = { 0 };
545 	unsigned int panel_inst = 0;
546 
547 	if (!dc_get_edp_link_panel_inst(dc, pipe_ctx->stream->link, &panel_inst) &&
548 			dc->debug.visual_confirm == VISUAL_CONFIRM_DISABLE)
549 		return;
550 
551 	memset(&cmd, 0, sizeof(cmd));
552 
553 	// Prepare fw command
554 	cmd.visual_confirm_color.header.type = DMUB_CMD__GET_VISUAL_CONFIRM_COLOR;
555 	cmd.visual_confirm_color.header.sub_type = 0;
556 	cmd.visual_confirm_color.header.ret_status = 1;
557 	cmd.visual_confirm_color.header.payload_bytes = sizeof(struct dmub_cmd_visual_confirm_color_data);
558 	cmd.visual_confirm_color.visual_confirm_color_data.visual_confirm_color.panel_inst = (uint16_t)panel_inst;
559 
560 	// If command was processed, copy feature caps to dmub srv
561 	if (dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY) &&
562 		cmd.visual_confirm_color.header.ret_status == 0) {
563 		memcpy(&dc->ctx->dmub_srv->dmub->visual_confirm_color,
564 			&cmd.visual_confirm_color.visual_confirm_color_data,
565 			sizeof(struct dmub_visual_confirm_color));
566 	}
567 }
568 
569 /**
570  * populate_subvp_cmd_drr_info - Helper to populate DRR pipe info for the DMCUB subvp command
571  *
572  * @dc: [in] pointer to dc object
573  * @subvp_pipe: [in] pipe_ctx for the SubVP pipe
574  * @vblank_pipe: [in] pipe_ctx for the DRR pipe
575  * @pipe_data: [in] Pipe data which stores the VBLANK/DRR info
576  * @context: [in] DC state for access to phantom stream
577  *
578  * Populate the DMCUB SubVP command with DRR pipe info. All the information
579  * required for calculating the SubVP + DRR microschedule is populated here.
580  *
581  * High level algorithm:
582  * 1. Get timing for SubVP pipe, phantom pipe, and DRR pipe
583  * 2. Calculate the min and max vtotal which supports SubVP + DRR microschedule
584  * 3. Populate the drr_info with the min and max supported vtotal values
585  */
586 static void populate_subvp_cmd_drr_info(struct dc *dc,
587 		struct dc_state *context,
588 		struct pipe_ctx *subvp_pipe,
589 		struct pipe_ctx *vblank_pipe,
590 		struct dmub_cmd_fw_assisted_mclk_switch_pipe_data_v2 *pipe_data)
591 {
592 	struct dc_stream_state *phantom_stream = dc_state_get_paired_subvp_stream(context, subvp_pipe->stream);
593 	struct dc_crtc_timing *main_timing = &subvp_pipe->stream->timing;
594 	struct dc_crtc_timing *phantom_timing;
595 	struct dc_crtc_timing *drr_timing = &vblank_pipe->stream->timing;
596 	uint64_t drr_frame_us = 0;
597 	uint64_t min_drr_supported_us = 0;
598 	uint64_t max_drr_supported_us = 0;
599 	uint64_t max_drr_vblank_us = 0;
600 	uint64_t max_drr_mallregion_us = 0;
601 	uint64_t mall_region_us = 0;
602 	uint64_t prefetch_us = 0;
603 	uint64_t subvp_active_us = 0;
604 	uint64_t drr_active_us = 0;
605 	uint64_t min_vtotal_supported = 0;
606 	uint64_t max_vtotal_supported = 0;
607 
608 	if (!phantom_stream)
609 		return;
610 
611 	phantom_timing = &phantom_stream->timing;
612 
613 	pipe_data->pipe_config.vblank_data.drr_info.drr_in_use = true;
614 	pipe_data->pipe_config.vblank_data.drr_info.use_ramping = false; // for now don't use ramping
615 	pipe_data->pipe_config.vblank_data.drr_info.drr_window_size_ms = 4; // hardcode 4ms DRR window for now
616 
617 	drr_frame_us = div64_u64(((uint64_t)drr_timing->v_total * drr_timing->h_total * 1000000),
618 			(((uint64_t)drr_timing->pix_clk_100hz * 100)));
619 	// P-State allow width and FW delays already included phantom_timing->v_addressable
620 	mall_region_us = div64_u64(((uint64_t)phantom_timing->v_addressable * phantom_timing->h_total * 1000000),
621 			(((uint64_t)phantom_timing->pix_clk_100hz * 100)));
622 	min_drr_supported_us = drr_frame_us + mall_region_us + SUBVP_DRR_MARGIN_US;
623 	min_vtotal_supported = div64_u64(((uint64_t)drr_timing->pix_clk_100hz * 100 * min_drr_supported_us),
624 			(((uint64_t)drr_timing->h_total * 1000000)));
625 
626 	prefetch_us = div64_u64(((uint64_t)(phantom_timing->v_total - phantom_timing->v_front_porch) * phantom_timing->h_total * 1000000),
627 			(((uint64_t)phantom_timing->pix_clk_100hz * 100) + dc->caps.subvp_prefetch_end_to_mall_start_us));
628 	subvp_active_us = div64_u64(((uint64_t)main_timing->v_addressable * main_timing->h_total * 1000000),
629 			(((uint64_t)main_timing->pix_clk_100hz * 100)));
630 	drr_active_us = div64_u64(((uint64_t)drr_timing->v_addressable * drr_timing->h_total * 1000000),
631 			(((uint64_t)drr_timing->pix_clk_100hz * 100)));
632 	max_drr_vblank_us = div64_u64((subvp_active_us - prefetch_us -
633 			dc->caps.subvp_fw_processing_delay_us - drr_active_us), 2) + drr_active_us;
634 	max_drr_mallregion_us = subvp_active_us - prefetch_us - mall_region_us - dc->caps.subvp_fw_processing_delay_us;
635 	max_drr_supported_us = max_drr_vblank_us > max_drr_mallregion_us ? max_drr_vblank_us : max_drr_mallregion_us;
636 	max_vtotal_supported = div64_u64(((uint64_t)drr_timing->pix_clk_100hz * 100 * max_drr_supported_us),
637 			(((uint64_t)drr_timing->h_total * 1000000)));
638 
639 	/* When calculating the max vtotal supported for SubVP + DRR cases, add
640 	 * margin due to possible rounding errors (being off by 1 line in the
641 	 * FW calculation can incorrectly push the P-State switch to wait 1 frame
642 	 * longer).
643 	 */
644 	max_vtotal_supported = max_vtotal_supported - dc->caps.subvp_drr_max_vblank_margin_us;
645 
646 	pipe_data->pipe_config.vblank_data.drr_info.min_vtotal_supported = (uint16_t)min_vtotal_supported;
647 	pipe_data->pipe_config.vblank_data.drr_info.max_vtotal_supported = (uint16_t)max_vtotal_supported;
648 	pipe_data->pipe_config.vblank_data.drr_info.drr_vblank_start_margin =
649 		(uint16_t)dc->caps.subvp_drr_vblank_start_margin_us;
650 }
651 
652 /**
653  * populate_subvp_cmd_vblank_pipe_info - Helper to populate VBLANK pipe info for the DMUB subvp command
654  *
655  * @dc: [in] current dc state
656  * @context: [in] new dc state
657  * @cmd: [in] DMUB cmd to be populated with SubVP info
658  * @vblank_pipe: [in] pipe_ctx for the VBLANK pipe
659  * @cmd_pipe_index: [in] index for the pipe array in DMCUB SubVP cmd
660  *
661  * Populate the DMCUB SubVP command with VBLANK pipe info. All the information
662  * required to calculate the microschedule for SubVP + VBLANK case is stored in
663  * the pipe_data (subvp_data and vblank_data).  Also check if the VBLANK pipe
664  * is a DRR display -- if it is make a call to populate drr_info.
665  */
666 static void populate_subvp_cmd_vblank_pipe_info(struct dc *dc,
667 		struct dc_state *context,
668 		union dmub_rb_cmd *cmd,
669 		struct pipe_ctx *vblank_pipe,
670 		uint8_t cmd_pipe_index)
671 {
672 	uint32_t i;
673 	struct pipe_ctx *pipe = NULL;
674 	struct dmub_cmd_fw_assisted_mclk_switch_pipe_data_v2 *pipe_data =
675 			&cmd->fw_assisted_mclk_switch_v2.config_data.pipe_data[cmd_pipe_index];
676 
677 	// Find the SubVP pipe
678 	for (i = 0; i < dc->res_pool->pipe_count; i++) {
679 		pipe = &context->res_ctx.pipe_ctx[i];
680 
681 		// We check for master pipe, but it shouldn't matter since we only need
682 		// the pipe for timing info (stream should be same for any pipe splits)
683 		if (!resource_is_pipe_type(pipe, OTG_MASTER) ||
684 				!resource_is_pipe_type(pipe, DPP_PIPE))
685 			continue;
686 
687 		// Find the SubVP pipe
688 		if (dc_state_get_pipe_subvp_type(context, pipe) == SUBVP_MAIN)
689 			break;
690 	}
691 
692 	pipe_data->mode = VBLANK;
693 	pipe_data->pipe_config.vblank_data.pix_clk_100hz = vblank_pipe->stream->timing.pix_clk_100hz;
694 	pipe_data->pipe_config.vblank_data.vblank_start = (uint16_t)(vblank_pipe->stream->timing.v_total -
695 							vblank_pipe->stream->timing.v_front_porch);
696 	pipe_data->pipe_config.vblank_data.vtotal = (uint16_t)vblank_pipe->stream->timing.v_total;
697 	pipe_data->pipe_config.vblank_data.htotal = (uint16_t)vblank_pipe->stream->timing.h_total;
698 	pipe_data->pipe_config.vblank_data.vblank_pipe_index = vblank_pipe->pipe_idx;
699 	pipe_data->pipe_config.vblank_data.vstartup_start = (uint16_t)vblank_pipe->pipe_dlg_param.vstartup_start;
700 	pipe_data->pipe_config.vblank_data.vblank_end =
701 			(uint16_t)(vblank_pipe->stream->timing.v_total -
702 			vblank_pipe->stream->timing.v_front_porch - vblank_pipe->stream->timing.v_addressable);
703 
704 	if (vblank_pipe->stream->ignore_msa_timing_param &&
705 		(vblank_pipe->stream->allow_freesync || vblank_pipe->stream->vrr_active_variable || vblank_pipe->stream->vrr_active_fixed))
706 		populate_subvp_cmd_drr_info(dc, context, pipe, vblank_pipe, pipe_data);
707 }
708 
709 /**
710  * update_subvp_prefetch_end_to_mall_start - Helper for SubVP + SubVP case
711  *
712  * @dc: [in] current dc state
713  * @context: [in] new dc state
714  * @cmd: [in] DMUB cmd to be populated with SubVP info
715  * @subvp_pipes: [in] Array of SubVP pipes (should always be length 2)
716  *
717  * For SubVP + SubVP, we use a single vertical interrupt to start the
718  * microschedule for both SubVP pipes. In order for this to work correctly, the
719  * MALL REGION of both SubVP pipes must start at the same time. This function
720  * lengthens the prefetch end to mall start delay of the SubVP pipe that has
721  * the shorter prefetch so that both MALL REGION's will start at the same time.
722  */
723 static void update_subvp_prefetch_end_to_mall_start(struct dc *dc,
724 		struct dc_state *context,
725 		union dmub_rb_cmd *cmd,
726 		struct pipe_ctx *subvp_pipes[])
727 {
728 	uint32_t subvp0_prefetch_us = 0;
729 	uint32_t subvp1_prefetch_us = 0;
730 	uint32_t prefetch_delta_us = 0;
731 	struct dc_stream_state *phantom_stream0 = NULL;
732 	struct dc_stream_state *phantom_stream1 = NULL;
733 	struct dc_crtc_timing *phantom_timing0 = NULL;
734 	struct dc_crtc_timing *phantom_timing1 = NULL;
735 	struct dmub_cmd_fw_assisted_mclk_switch_pipe_data_v2 *pipe_data = NULL;
736 
737 	phantom_stream0 = dc_state_get_paired_subvp_stream(context, subvp_pipes[0]->stream);
738 	if (!phantom_stream0)
739 		return;
740 
741 	phantom_stream1 = dc_state_get_paired_subvp_stream(context, subvp_pipes[1]->stream);
742 	if (!phantom_stream1)
743 		return;
744 
745 	phantom_timing0 = &phantom_stream0->timing;
746 	phantom_timing1 = &phantom_stream1->timing;
747 
748 	subvp0_prefetch_us = (uint32_t)div64_u64(((uint64_t)(phantom_timing0->v_total - phantom_timing0->v_front_porch) *
749 			(uint64_t)phantom_timing0->h_total * 1000000),
750 			(((uint64_t)phantom_timing0->pix_clk_100hz * 100) + dc->caps.subvp_prefetch_end_to_mall_start_us));
751 	subvp1_prefetch_us = (uint32_t)div64_u64(((uint64_t)(phantom_timing1->v_total - phantom_timing1->v_front_porch) *
752 			(uint64_t)phantom_timing1->h_total * 1000000),
753 			(((uint64_t)phantom_timing1->pix_clk_100hz * 100) + dc->caps.subvp_prefetch_end_to_mall_start_us));
754 
755 	// Whichever SubVP PIPE has the smaller prefetch (including the prefetch end to mall start time)
756 	// should increase it's prefetch time to match the other
757 	if (subvp0_prefetch_us > subvp1_prefetch_us) {
758 		pipe_data = &cmd->fw_assisted_mclk_switch_v2.config_data.pipe_data[1];
759 		prefetch_delta_us = subvp0_prefetch_us - subvp1_prefetch_us;
760 pipe_data->pipe_config.subvp_data.prefetch_to_mall_start_lines =
761 				(uint16_t)div64_u64(((uint64_t)(dc->caps.subvp_prefetch_end_to_mall_start_us + prefetch_delta_us) *
762 					((uint64_t)phantom_timing1->pix_clk_100hz * 100) + ((uint64_t)phantom_timing1->h_total * 1000000 - 1)),
763 					((uint64_t)phantom_timing1->h_total * 1000000));
764 
765 	} else if (subvp1_prefetch_us >  subvp0_prefetch_us) {
766 		pipe_data = &cmd->fw_assisted_mclk_switch_v2.config_data.pipe_data[0];
767 		prefetch_delta_us = subvp1_prefetch_us - subvp0_prefetch_us;
768 		pipe_data->pipe_config.subvp_data.prefetch_to_mall_start_lines =
769 				(uint16_t)div64_u64(((uint64_t)(dc->caps.subvp_prefetch_end_to_mall_start_us + prefetch_delta_us) *
770 					((uint64_t)phantom_timing0->pix_clk_100hz * 100) + ((uint64_t)phantom_timing0->h_total * 1000000 - 1)),
771 					((uint64_t)phantom_timing0->h_total * 1000000));
772 	}
773 }
774 
775 /**
776  * populate_subvp_cmd_pipe_info - Helper to populate the SubVP pipe info for the DMUB subvp command
777  *
778  * @dc: [in] current dc state
779  * @context: [in] new dc state
780  * @cmd: [in] DMUB cmd to be populated with SubVP info
781  * @subvp_pipe: [in] pipe_ctx for the SubVP pipe
782  * @cmd_pipe_index: [in] index for the pipe array in DMCUB SubVP cmd
783  *
784  * Populate the DMCUB SubVP command with SubVP pipe info. All the information
785  * required to calculate the microschedule for the SubVP pipe is stored in the
786  * pipe_data of the DMCUB SubVP command.
787  */
788 static void populate_subvp_cmd_pipe_info(struct dc *dc,
789 		struct dc_state *context,
790 		union dmub_rb_cmd *cmd,
791 		struct pipe_ctx *subvp_pipe,
792 		uint8_t cmd_pipe_index)
793 {
794 	uint32_t j;
795 	struct dmub_cmd_fw_assisted_mclk_switch_pipe_data_v2 *pipe_data =
796 			&cmd->fw_assisted_mclk_switch_v2.config_data.pipe_data[cmd_pipe_index];
797 	struct dc_stream_state *phantom_stream = dc_state_get_paired_subvp_stream(context, subvp_pipe->stream);
798 	struct dc_crtc_timing *main_timing = &subvp_pipe->stream->timing;
799 	struct dc_crtc_timing *phantom_timing;
800 	uint32_t out_num_stream, out_den_stream, out_num_plane, out_den_plane, out_num, out_den;
801 
802 	if (!phantom_stream)
803 		return;
804 
805 	phantom_timing = &phantom_stream->timing;
806 
807 	pipe_data->mode = SUBVP;
808 	pipe_data->pipe_config.subvp_data.pix_clk_100hz = subvp_pipe->stream->timing.pix_clk_100hz;
809 	pipe_data->pipe_config.subvp_data.htotal = (uint16_t)subvp_pipe->stream->timing.h_total;
810 	pipe_data->pipe_config.subvp_data.vtotal = (uint16_t)subvp_pipe->stream->timing.v_total;
811 	pipe_data->pipe_config.subvp_data.main_vblank_start =
812 			(uint16_t)(main_timing->v_total - main_timing->v_front_porch);
813 	pipe_data->pipe_config.subvp_data.main_vblank_end =
814 			(uint16_t)(main_timing->v_total - main_timing->v_front_porch - main_timing->v_addressable);
815 	pipe_data->pipe_config.subvp_data.mall_region_lines = (uint16_t)phantom_timing->v_addressable;
816 	pipe_data->pipe_config.subvp_data.main_pipe_index = (uint8_t)subvp_pipe->stream_res.tg->inst;
817 	pipe_data->pipe_config.subvp_data.is_drr = subvp_pipe->stream->ignore_msa_timing_param &&
818 		(subvp_pipe->stream->allow_freesync || subvp_pipe->stream->vrr_active_variable || subvp_pipe->stream->vrr_active_fixed);
819 
820 	/* Calculate the scaling factor from the src and dst height.
821 	 * e.g. If 3840x2160 being downscaled to 1920x1080, the scaling factor is 1/2.
822 	 * Reduce the fraction 1080/2160 = 1/2 for the "scaling factor"
823 	 *
824 	 * Make sure to combine stream and plane scaling together.
825 	 */
826 	reduce_fraction(subvp_pipe->stream->src.height, subvp_pipe->stream->dst.height,
827 			&out_num_stream, &out_den_stream);
828 	reduce_fraction(subvp_pipe->plane_state->src_rect.height, subvp_pipe->plane_state->dst_rect.height,
829 			&out_num_plane, &out_den_plane);
830 	reduce_fraction(out_num_stream * out_num_plane, out_den_stream * out_den_plane, &out_num, &out_den);
831 	pipe_data->pipe_config.subvp_data.scale_factor_numerator = (uint8_t)out_num;
832 	pipe_data->pipe_config.subvp_data.scale_factor_denominator = (uint8_t)out_den;
833 
834 	// Prefetch lines is equal to VACTIVE + BP + VSYNC
835 	pipe_data->pipe_config.subvp_data.prefetch_lines =
836 			(uint16_t)(phantom_timing->v_total - phantom_timing->v_front_porch);
837 
838 	// Round up
839 	pipe_data->pipe_config.subvp_data.prefetch_to_mall_start_lines =
840 			(uint16_t)div64_u64(((uint64_t)dc->caps.subvp_prefetch_end_to_mall_start_us * ((uint64_t)phantom_timing->pix_clk_100hz * 100) +
841 					((uint64_t)phantom_timing->h_total * 1000000 - 1)), ((uint64_t)phantom_timing->h_total * 1000000));
842 	pipe_data->pipe_config.subvp_data.processing_delay_lines =
843 			(uint16_t)div64_u64(((uint64_t)(dc->caps.subvp_fw_processing_delay_us) * ((uint64_t)phantom_timing->pix_clk_100hz * 100) +
844 					((uint64_t)phantom_timing->h_total * 1000000 - 1)), ((uint64_t)phantom_timing->h_total * 1000000));
845 
846 	if (subvp_pipe->bottom_pipe) {
847 		pipe_data->pipe_config.subvp_data.main_split_pipe_index = (uint8_t)subvp_pipe->bottom_pipe->pipe_idx;
848 	} else if (subvp_pipe->next_odm_pipe) {
849 		pipe_data->pipe_config.subvp_data.main_split_pipe_index = (uint8_t)subvp_pipe->next_odm_pipe->pipe_idx;
850 	} else {
851 		pipe_data->pipe_config.subvp_data.main_split_pipe_index = 0xF;
852 	}
853 
854 	// Find phantom pipe index based on phantom stream
855 	for (j = 0; j < dc->res_pool->pipe_count; j++) {
856 		struct pipe_ctx *phantom_pipe = &context->res_ctx.pipe_ctx[j];
857 
858 		if (resource_is_pipe_type(phantom_pipe, OTG_MASTER) &&
859 				phantom_pipe->stream == dc_state_get_paired_subvp_stream(context, subvp_pipe->stream)) {
860 			pipe_data->pipe_config.subvp_data.phantom_pipe_index = (uint8_t)phantom_pipe->stream_res.tg->inst;
861 			if (phantom_pipe->bottom_pipe) {
862 				pipe_data->pipe_config.subvp_data.phantom_split_pipe_index = (uint8_t)phantom_pipe->bottom_pipe->plane_res.hubp->inst;
863 			} else if (phantom_pipe->next_odm_pipe) {
864 				pipe_data->pipe_config.subvp_data.phantom_split_pipe_index = (uint8_t)phantom_pipe->next_odm_pipe->plane_res.hubp->inst;
865 			} else {
866 				pipe_data->pipe_config.subvp_data.phantom_split_pipe_index = 0xF;
867 			}
868 			break;
869 		}
870 	}
871 }
872 
873 /**
874  * dc_dmub_setup_subvp_dmub_command - Populate the DMCUB SubVP command
875  *
876  * @dc: [in] current dc state
877  * @context: [in] new dc state
878  * @enable: [in] if true enables the pipes population
879  *
880  * This function loops through each pipe and populates the DMUB SubVP CMD info
881  * based on the pipe (e.g. SubVP, VBLANK).
882  */
883 void dc_dmub_setup_subvp_dmub_command(struct dc *dc,
884 		struct dc_state *context,
885 		bool enable)
886 {
887 	uint8_t cmd_pipe_index = 0;
888 	uint32_t i;
889 	uint8_t subvp_count = 0;
890 	union dmub_rb_cmd cmd;
891 	struct pipe_ctx *subvp_pipes[2];
892 	uint32_t wm_val_refclk = 0;
893 	enum mall_stream_type pipe_mall_type;
894 
895 	memset(&cmd, 0, sizeof(cmd));
896 	// FW command for SUBVP
897 	cmd.fw_assisted_mclk_switch_v2.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH;
898 	cmd.fw_assisted_mclk_switch_v2.header.sub_type = DMUB_CMD__HANDLE_SUBVP_CMD;
899 	cmd.fw_assisted_mclk_switch_v2.header.payload_bytes =
900 			sizeof(cmd.fw_assisted_mclk_switch_v2) - sizeof(cmd.fw_assisted_mclk_switch_v2.header);
901 
902 	for (i = 0; i < dc->res_pool->pipe_count; i++) {
903 		struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[i];
904 
905 		/* For SubVP pipe count, only count the top most (ODM / MPC) pipe
906 		 */
907 		if (resource_is_pipe_type(pipe, OTG_MASTER) &&
908 				resource_is_pipe_type(pipe, DPP_PIPE) &&
909 				dc_state_get_pipe_subvp_type(context, pipe) == SUBVP_MAIN)
910 			subvp_pipes[subvp_count++] = pipe;
911 	}
912 
913 	if (enable) {
914 		// For each pipe that is a "main" SUBVP pipe, fill in pipe data for DMUB SUBVP cmd
915 		for (i = 0; i < dc->res_pool->pipe_count; i++) {
916 			struct pipe_ctx *pipe = &context->res_ctx.pipe_ctx[i];
917 			pipe_mall_type = dc_state_get_pipe_subvp_type(context, pipe);
918 
919 			if (!pipe->stream)
920 				continue;
921 
922 			/* When populating subvp cmd info, only pass in the top most (ODM / MPC) pipe.
923 			 * Any ODM or MPC splits being used in SubVP will be handled internally in
924 			 * populate_subvp_cmd_pipe_info
925 			 */
926 			if (resource_is_pipe_type(pipe, OTG_MASTER) &&
927 					resource_is_pipe_type(pipe, DPP_PIPE) &&
928 					pipe_mall_type == SUBVP_MAIN) {
929 				populate_subvp_cmd_pipe_info(dc, context, &cmd, pipe, cmd_pipe_index++);
930 			} else if (resource_is_pipe_type(pipe, OTG_MASTER) &&
931 					resource_is_pipe_type(pipe, DPP_PIPE) &&
932 					pipe_mall_type == SUBVP_NONE) {
933 				// Don't need to check for ActiveDRAMClockChangeMargin < 0, not valid in cases where
934 				// we run through DML without calculating "natural" P-state support
935 				populate_subvp_cmd_vblank_pipe_info(dc, context, &cmd, pipe, cmd_pipe_index++);
936 
937 			}
938 		}
939 		if (subvp_count == 2) {
940 			update_subvp_prefetch_end_to_mall_start(dc, context, &cmd, subvp_pipes);
941 		}
942 		cmd.fw_assisted_mclk_switch_v2.config_data.pstate_allow_width_us = (uint8_t)dc->caps.subvp_pstate_allow_width_us;
943 		cmd.fw_assisted_mclk_switch_v2.config_data.vertical_int_margin_us = (uint8_t)dc->caps.subvp_vertical_int_margin_us;
944 
945 		// Store the original watermark value for this SubVP config so we can lower it when the
946 		// MCLK switch starts
947 		wm_val_refclk = context->bw_ctx.bw.dcn.watermarks.a.cstate_pstate.pstate_change_ns *
948 				(dc->res_pool->ref_clocks.dchub_ref_clock_inKhz / 1000) / 1000;
949 
950 		cmd.fw_assisted_mclk_switch_v2.config_data.watermark_a_cache = (uint16_t)(wm_val_refclk < 0xFFFF ? wm_val_refclk : 0xFFFF);
951 	}
952 
953 	dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT);
954 }
955 
956 bool dc_dmub_srv_get_diagnostic_data(struct dc_dmub_srv *dc_dmub_srv)
957 {
958 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
959 		return false;
960 	return dmub_srv_get_diagnostic_data(dc_dmub_srv->dmub);
961 }
962 
963 void dc_dmub_srv_log_diagnostic_data(struct dc_dmub_srv *dc_dmub_srv)
964 {
965 	uint32_t i;
966 
967 	if (!dc_dmub_srv)
968 		return;
969 
970 	if (!dc_dmub_srv->dmub) {
971 		DC_LOG_ERROR("%s: invalid parameters.", __func__);
972 		return;
973 	}
974 
975 	DC_LOG_ERROR("%s: DMCUB error - collecting diagnostic data\n", __func__);
976 
977 	if (!dc_dmub_srv_get_diagnostic_data(dc_dmub_srv)) {
978 		DC_LOG_ERROR("%s: dc_dmub_srv_get_diagnostic_data failed.", __func__);
979 		return;
980 	}
981 
982 	DC_LOG_DEBUG("DMCUB STATE:");
983 	DC_LOG_DEBUG("    dmcub_version      : %08x", dc_dmub_srv->dmub->debug.dmcub_version);
984 	DC_LOG_DEBUG("    scratch  [0]       : %08x", dc_dmub_srv->dmub->debug.scratch[0]);
985 	DC_LOG_DEBUG("    scratch  [1]       : %08x", dc_dmub_srv->dmub->debug.scratch[1]);
986 	DC_LOG_DEBUG("    scratch  [2]       : %08x", dc_dmub_srv->dmub->debug.scratch[2]);
987 	DC_LOG_DEBUG("    scratch  [3]       : %08x", dc_dmub_srv->dmub->debug.scratch[3]);
988 	DC_LOG_DEBUG("    scratch  [4]       : %08x", dc_dmub_srv->dmub->debug.scratch[4]);
989 	DC_LOG_DEBUG("    scratch  [5]       : %08x", dc_dmub_srv->dmub->debug.scratch[5]);
990 	DC_LOG_DEBUG("    scratch  [6]       : %08x", dc_dmub_srv->dmub->debug.scratch[6]);
991 	DC_LOG_DEBUG("    scratch  [7]       : %08x", dc_dmub_srv->dmub->debug.scratch[7]);
992 	DC_LOG_DEBUG("    scratch  [8]       : %08x", dc_dmub_srv->dmub->debug.scratch[8]);
993 	DC_LOG_DEBUG("    scratch  [9]       : %08x", dc_dmub_srv->dmub->debug.scratch[9]);
994 	DC_LOG_DEBUG("    scratch [10]       : %08x", dc_dmub_srv->dmub->debug.scratch[10]);
995 	DC_LOG_DEBUG("    scratch [11]       : %08x", dc_dmub_srv->dmub->debug.scratch[11]);
996 	DC_LOG_DEBUG("    scratch [12]       : %08x", dc_dmub_srv->dmub->debug.scratch[12]);
997 	DC_LOG_DEBUG("    scratch [13]       : %08x", dc_dmub_srv->dmub->debug.scratch[13]);
998 	DC_LOG_DEBUG("    scratch [14]       : %08x", dc_dmub_srv->dmub->debug.scratch[14]);
999 	DC_LOG_DEBUG("    scratch [15]       : %08x", dc_dmub_srv->dmub->debug.scratch[15]);
1000 	for (i = 0; i < DMUB_PC_SNAPSHOT_COUNT; i++)
1001 		DC_LOG_DEBUG("    pc[%d]             : %08x", i, dc_dmub_srv->dmub->debug.pc[i]);
1002 	DC_LOG_DEBUG("    unk_fault_addr     : %08x", dc_dmub_srv->dmub->debug.undefined_address_fault_addr);
1003 	DC_LOG_DEBUG("    inst_fault_addr    : %08x", dc_dmub_srv->dmub->debug.inst_fetch_fault_addr);
1004 	DC_LOG_DEBUG("    data_fault_addr    : %08x", dc_dmub_srv->dmub->debug.data_write_fault_addr);
1005 	DC_LOG_DEBUG("    inbox1_rptr        : %08x", dc_dmub_srv->dmub->debug.inbox1_rptr);
1006 	DC_LOG_DEBUG("    inbox1_wptr        : %08x", dc_dmub_srv->dmub->debug.inbox1_wptr);
1007 	DC_LOG_DEBUG("    inbox1_size        : %08x", dc_dmub_srv->dmub->debug.inbox1_size);
1008 	DC_LOG_DEBUG("    inbox0_rptr        : %08x", dc_dmub_srv->dmub->debug.inbox0_rptr);
1009 	DC_LOG_DEBUG("    inbox0_wptr        : %08x", dc_dmub_srv->dmub->debug.inbox0_wptr);
1010 	DC_LOG_DEBUG("    inbox0_size        : %08x", dc_dmub_srv->dmub->debug.inbox0_size);
1011 	DC_LOG_DEBUG("    outbox1_rptr       : %08x", dc_dmub_srv->dmub->debug.outbox1_rptr);
1012 	DC_LOG_DEBUG("    outbox1_wptr       : %08x", dc_dmub_srv->dmub->debug.outbox1_wptr);
1013 	DC_LOG_DEBUG("    outbox1_size       : %08x", dc_dmub_srv->dmub->debug.outbox1_size);
1014 	DC_LOG_DEBUG("    is_enabled         : %d", dc_dmub_srv->dmub->debug.is_dmcub_enabled);
1015 	DC_LOG_DEBUG("    is_soft_reset      : %d", dc_dmub_srv->dmub->debug.is_dmcub_soft_reset);
1016 	DC_LOG_DEBUG("    is_secure_reset    : %d", dc_dmub_srv->dmub->debug.is_dmcub_secure_reset);
1017 	DC_LOG_DEBUG("    is_traceport_en    : %d", dc_dmub_srv->dmub->debug.is_traceport_en);
1018 	DC_LOG_DEBUG("    is_cw0_en          : %d", dc_dmub_srv->dmub->debug.is_cw0_enabled);
1019 	DC_LOG_DEBUG("    is_cw6_en          : %d", dc_dmub_srv->dmub->debug.is_cw6_enabled);
1020 	DC_LOG_DEBUG("    is_pwait           : %d", dc_dmub_srv->dmub->debug.is_pwait);
1021 }
1022 
1023 static bool dc_dmub_should_update_cursor_data(struct pipe_ctx *pipe_ctx)
1024 {
1025 	if (pipe_ctx->plane_state != NULL) {
1026 		if (pipe_ctx->plane_state->address.type == PLN_ADDR_TYPE_VIDEO_PROGRESSIVE ||
1027 			resource_can_pipe_disable_cursor(pipe_ctx))
1028 			return false;
1029 	}
1030 
1031 	if ((pipe_ctx->stream->link->psr_settings.psr_version == DC_PSR_VERSION_SU_1 ||
1032 		pipe_ctx->stream->link->psr_settings.psr_version == DC_PSR_VERSION_1) &&
1033 		pipe_ctx->stream->ctx->dce_version >= DCN_VERSION_3_1)
1034 		return true;
1035 
1036 	if (pipe_ctx->stream->link->replay_settings.config.replay_supported)
1037 		return true;
1038 
1039 	return false;
1040 }
1041 
1042 static void dc_build_cursor_update_payload0(
1043 		struct pipe_ctx *pipe_ctx, uint8_t p_idx,
1044 		struct dmub_cmd_update_cursor_payload0 *payload)
1045 {
1046 	struct dc *dc = pipe_ctx->stream->ctx->dc;
1047 	struct hubp *hubp = pipe_ctx->plane_res.hubp;
1048 	unsigned int panel_inst = 0;
1049 
1050 	if (dc->config.frame_update_cmd_version2 == true) {
1051 		/* Don't need panel_inst for command version2 */
1052 		payload->cmd_version = DMUB_CMD_CURSOR_UPDATE_VERSION_2;
1053 	} else {
1054 		if (!dc_get_edp_link_panel_inst(hubp->ctx->dc,
1055 			pipe_ctx->stream->link, &panel_inst))
1056 			return;
1057 		payload->cmd_version = DMUB_CMD_CURSOR_UPDATE_VERSION_1;
1058 	}
1059 
1060 	/* Payload: Cursor Rect is built from position & attribute
1061 	 * x & y are obtained from postion
1062 	 */
1063 	payload->cursor_rect.x = hubp->cur_rect.x;
1064 	payload->cursor_rect.y = hubp->cur_rect.y;
1065 	/* w & h are obtained from attribute */
1066 	payload->cursor_rect.width  = hubp->cur_rect.w;
1067 	payload->cursor_rect.height = hubp->cur_rect.h;
1068 
1069 	payload->enable      = (uint8_t)hubp->pos.cur_ctl.bits.cur_enable;
1070 	payload->pipe_idx    = p_idx;
1071 	payload->panel_inst  = (uint8_t)panel_inst;
1072 	payload->otg_inst    = (uint8_t)pipe_ctx->stream_res.tg->inst;
1073 }
1074 
1075 static void dc_build_cursor_position_update_payload0(
1076 		struct dmub_cmd_update_cursor_payload0 *pl, const uint8_t p_idx,
1077 		const struct hubp *hubp, const struct dpp *dpp)
1078 {
1079 	/* Hubp */
1080 	pl->position_cfg.pHubp.cur_ctl.raw  = hubp->pos.cur_ctl.raw;
1081 	pl->position_cfg.pHubp.position.raw = hubp->pos.position.raw;
1082 	pl->position_cfg.pHubp.hot_spot.raw = hubp->pos.hot_spot.raw;
1083 	pl->position_cfg.pHubp.dst_offset.raw = hubp->pos.dst_offset.raw;
1084 
1085 	/* dpp */
1086 	pl->position_cfg.pDpp.cur0_ctl.raw = dpp->pos.cur0_ctl.raw;
1087 	pl->position_cfg.pipe_idx = p_idx;
1088 }
1089 
1090 static void dc_build_cursor_attribute_update_payload1(
1091 		struct dmub_cursor_attributes_cfg *pl_A, const uint8_t p_idx,
1092 		const struct hubp *hubp, const struct dpp *dpp)
1093 {
1094 	(void)p_idx;
1095 	/* Hubp */
1096 	pl_A->aHubp.SURFACE_ADDR_HIGH = hubp->att.SURFACE_ADDR_HIGH;
1097 	pl_A->aHubp.SURFACE_ADDR = hubp->att.SURFACE_ADDR;
1098 	pl_A->aHubp.cur_ctl.raw  = hubp->att.cur_ctl.raw;
1099 	pl_A->aHubp.size.raw     = hubp->att.size.raw;
1100 	pl_A->aHubp.settings.raw = hubp->att.settings.raw;
1101 
1102 	/* dpp */
1103 	pl_A->aDpp.cur0_ctl.raw = dpp->att.cur0_ctl.raw;
1104 }
1105 
1106 /**
1107  * dc_send_update_cursor_info_to_dmu - Populate the DMCUB Cursor update info command
1108  *
1109  * @pCtx: [in] pipe context
1110  * @pipe_idx: [in] pipe index
1111  *
1112  * This function would store the cursor related information and pass it into
1113  * dmub
1114  */
1115 void dc_send_update_cursor_info_to_dmu(
1116 		struct pipe_ctx *pCtx, uint8_t pipe_idx)
1117 {
1118 	union dmub_rb_cmd cmd[2];
1119 	union dmub_cmd_update_cursor_info_data *update_cursor_info_0 =
1120 					&cmd[0].update_cursor_info.update_cursor_info_data;
1121 
1122 	memset(cmd, 0, sizeof(cmd));
1123 
1124 	if (!dc_dmub_should_update_cursor_data(pCtx))
1125 		return;
1126 	/*
1127 	 * Since we use multi_cmd_pending for dmub command, the 2nd command is
1128 	 * only assigned to store cursor attributes info.
1129 	 * 1st command can view as 2 parts, 1st is for PSR/Replay data, the other
1130 	 * is to store cursor position info.
1131 	 *
1132 	 * Command heaer type must be the same type if using  multi_cmd_pending.
1133 	 * Besides, while process 2nd command in DMU, the sub type is useless.
1134 	 * So it's meanless to pass the sub type header with different type.
1135 	 */
1136 
1137 	{
1138 		/* Build Payload#0 Header */
1139 		cmd[0].update_cursor_info.header.type = DMUB_CMD__UPDATE_CURSOR_INFO;
1140 		cmd[0].update_cursor_info.header.payload_bytes =
1141 				sizeof(cmd[0].update_cursor_info.update_cursor_info_data);
1142 		cmd[0].update_cursor_info.header.multi_cmd_pending = 1; //To combine multi dmu cmd, 1st cmd
1143 
1144 		/* Prepare Payload */
1145 		dc_build_cursor_update_payload0(pCtx, pipe_idx, &update_cursor_info_0->payload0);
1146 
1147 		dc_build_cursor_position_update_payload0(&update_cursor_info_0->payload0, pipe_idx,
1148 				pCtx->plane_res.hubp, pCtx->plane_res.dpp);
1149 		}
1150 	{
1151 		/* Build Payload#1 Header */
1152 		cmd[1].update_cursor_info.header.type = DMUB_CMD__UPDATE_CURSOR_INFO;
1153 		cmd[1].update_cursor_info.header.payload_bytes = sizeof(struct cursor_attributes_cfg);
1154 		cmd[1].update_cursor_info.header.multi_cmd_pending = 0; //Indicate it's the last command.
1155 
1156 		dc_build_cursor_attribute_update_payload1(
1157 				&cmd[1].update_cursor_info.update_cursor_info_data.payload1.attribute_cfg,
1158 				pipe_idx, pCtx->plane_res.hubp, pCtx->plane_res.dpp);
1159 
1160 		/* Combine 2nd cmds update_curosr_info to DMU */
1161 		dc_wake_and_execute_dmub_cmd_list(pCtx->stream->ctx, 2, cmd, DM_DMUB_WAIT_TYPE_WAIT);
1162 	}
1163 }
1164 
1165 bool dc_dmub_check_min_version(struct dmub_srv *srv)
1166 {
1167 	if (!srv->hw_funcs.is_psrsu_supported)
1168 		return true;
1169 	return srv->hw_funcs.is_psrsu_supported(srv);
1170 }
1171 
1172 void dc_dmub_srv_enable_dpia_trace(const struct dc *dc)
1173 {
1174 	struct dc_dmub_srv *dc_dmub_srv = dc->ctx->dmub_srv;
1175 
1176 	if (!dc_dmub_srv)
1177 		return;
1178 
1179 	if (!dc_dmub_srv->dmub) {
1180 		DC_LOG_ERROR("%s: invalid parameters.", __func__);
1181 		return;
1182 	}
1183 
1184 	if (!dc_wake_and_execute_gpint(dc->ctx, DMUB_GPINT__SET_TRACE_BUFFER_MASK_WORD1,
1185 				       0x0010, NULL, DM_DMUB_WAIT_TYPE_WAIT)) {
1186 		DC_LOG_ERROR("timeout updating trace buffer mask word\n");
1187 		return;
1188 	}
1189 
1190 	if (!dc_wake_and_execute_gpint(dc->ctx, DMUB_GPINT__UPDATE_TRACE_BUFFER_MASK,
1191 				       0x0000, NULL, DM_DMUB_WAIT_TYPE_WAIT)) {
1192 		DC_LOG_ERROR("timeout updating trace buffer mask word\n");
1193 		return;
1194 	}
1195 
1196 	DC_LOG_DEBUG("Enabled DPIA trace\n");
1197 }
1198 
1199 void dc_dmub_srv_subvp_save_surf_addr(const struct dc_dmub_srv *dc_dmub_srv, const struct dc_plane_address *addr, uint8_t subvp_index)
1200 {
1201 	dmub_srv_subvp_save_surf_addr(dc_dmub_srv->dmub, addr, subvp_index);
1202 }
1203 
1204 void dc_dmub_srv_cursor_offload_init(struct dc *dc)
1205 {
1206 	struct dmub_rb_cmd_cursor_offload_init *init;
1207 	struct dc_dmub_srv *dc_dmub_srv = dc->ctx->dmub_srv;
1208 	union dmub_rb_cmd cmd;
1209 
1210 	if (!dc->config.enable_cursor_offload)
1211 		return;
1212 
1213 	if (!dc_dmub_srv->dmub->meta_info.feature_bits.bits.cursor_offload_v1_support)
1214 		return;
1215 
1216 	if (!dc_dmub_srv->dmub->cursor_offload_fb.gpu_addr || !dc_dmub_srv->dmub->cursor_offload_fb.cpu_addr)
1217 		return;
1218 
1219 	if (!dc_dmub_srv->dmub->cursor_offload_v1)
1220 		return;
1221 
1222 	if (!dc_dmub_srv->dmub->shared_state)
1223 		return;
1224 
1225 	memset(&cmd, 0, sizeof(cmd));
1226 
1227 	init = &cmd.cursor_offload_init;
1228 	init->header.type = DMUB_CMD__CURSOR_OFFLOAD;
1229 	init->header.sub_type = DMUB_CMD__CURSOR_OFFLOAD_INIT;
1230 	init->header.payload_bytes = sizeof(init->init_data);
1231 	init->init_data.state_addr.quad_part = dc_dmub_srv->dmub->cursor_offload_fb.gpu_addr;
1232 	init->init_data.state_size = dc_dmub_srv->dmub->cursor_offload_fb.size;
1233 
1234 	dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT);
1235 
1236 	dc_dmub_srv->cursor_offload_enabled = true;
1237 }
1238 
1239 void dc_dmub_srv_control_cursor_offload(struct dc *dc, struct dc_state *context,
1240 					const struct dc_stream_state *stream, bool enable)
1241 {
1242 	struct pipe_ctx const *pipe_ctx;
1243 	struct dmub_rb_cmd_cursor_offload_stream_cntl *cntl;
1244 	union dmub_rb_cmd cmd;
1245 
1246 	if (!dc_dmub_srv_is_cursor_offload_enabled(dc))
1247 		return;
1248 
1249 	if (!stream)
1250 		return;
1251 
1252 	pipe_ctx = resource_get_otg_master_for_stream(&context->res_ctx, stream);
1253 	if (!pipe_ctx || !pipe_ctx->stream_res.tg || pipe_ctx->stream != stream)
1254 		return;
1255 
1256 	memset(&cmd, 0, sizeof(cmd));
1257 
1258 	cntl = &cmd.cursor_offload_stream_ctnl;
1259 	cntl->header.type = DMUB_CMD__CURSOR_OFFLOAD;
1260 	cntl->header.sub_type =
1261 		enable ? DMUB_CMD__CURSOR_OFFLOAD_STREAM_ENABLE : DMUB_CMD__CURSOR_OFFLOAD_STREAM_DISABLE;
1262 	cntl->header.payload_bytes = sizeof(cntl->data);
1263 
1264 	cntl->data.otg_inst = pipe_ctx->stream_res.tg->inst;
1265 	cntl->data.line_time_in_ns = 1u + (uint32_t)(div64_u64(stream->timing.h_total * 1000000ull,
1266 							       stream->timing.pix_clk_100hz / 10));
1267 
1268 	cntl->data.v_total_max = stream->adjust.v_total_max > stream->timing.v_total ?
1269 					 stream->adjust.v_total_max :
1270 					 stream->timing.v_total;
1271 
1272 	dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd,
1273 				     enable ? DM_DMUB_WAIT_TYPE_NO_WAIT : DM_DMUB_WAIT_TYPE_WAIT);
1274 }
1275 
1276 void dc_dmub_srv_program_cursor_now(struct dc *dc, const struct pipe_ctx *pipe)
1277 {
1278 	struct dmub_rb_cmd_cursor_offload_stream_cntl *cntl;
1279 	union dmub_rb_cmd cmd;
1280 
1281 	if (!dc_dmub_srv_is_cursor_offload_enabled(dc))
1282 		return;
1283 
1284 	if (!pipe || !pipe->stream || !pipe->stream_res.tg)
1285 		return;
1286 
1287 	memset(&cmd, 0, sizeof(cmd));
1288 
1289 	cntl = &cmd.cursor_offload_stream_ctnl;
1290 	cntl->header.type = DMUB_CMD__CURSOR_OFFLOAD;
1291 	cntl->header.sub_type = DMUB_CMD__CURSOR_OFFLOAD_STREAM_PROGRAM;
1292 	cntl->header.payload_bytes = sizeof(cntl->data);
1293 	cntl->data.otg_inst = pipe->stream_res.tg->inst;
1294 
1295 	dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_NO_WAIT);
1296 }
1297 
1298 bool dc_dmub_srv_is_hw_pwr_up(struct dc_dmub_srv *dc_dmub_srv, bool wait)
1299 {
1300 	struct dc_context *dc_ctx;
1301 	enum dmub_status status;
1302 
1303 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
1304 		return true;
1305 
1306 	if (dc_dmub_srv->ctx->dc->debug.dmcub_emulation)
1307 		return true;
1308 
1309 	dc_ctx = dc_dmub_srv->ctx;
1310 
1311 	if (wait) {
1312 		if (dc_dmub_srv->ctx->dc->debug.disable_timeout) {
1313 			do {
1314 				status = dmub_srv_wait_for_hw_pwr_up(dc_dmub_srv->dmub, 500000);
1315 			} while (status != DMUB_STATUS_OK);
1316 		} else {
1317 			status = dmub_srv_wait_for_hw_pwr_up(dc_dmub_srv->dmub, 500000);
1318 			if (status != DMUB_STATUS_OK) {
1319 				DC_ERROR("Error querying DMUB hw power up status: error=%d\n", status);
1320 				return false;
1321 			}
1322 		}
1323 	} else
1324 		return dmub_srv_is_hw_pwr_up(dc_dmub_srv->dmub);
1325 
1326 	return true;
1327 }
1328 
1329 static int count_active_streams(const struct dc *dc)
1330 {
1331 	int i, count = 0;
1332 
1333 	for (i = 0; i < dc->current_state->stream_count; ++i) {
1334 		struct dc_stream_state *stream = dc->current_state->streams[i];
1335 
1336 		if (stream && (!stream->dpms_off || dc->config.disable_ips_in_dpms_off))
1337 			count += 1;
1338 	}
1339 
1340 	return count;
1341 }
1342 
1343 static void dc_dmub_srv_notify_idle(const struct dc *dc, bool allow_idle)
1344 {
1345 	volatile const struct dmub_shared_state_ips_fw *ips_fw;
1346 	struct dc_dmub_srv *dc_dmub_srv;
1347 	union dmub_rb_cmd cmd = {0};
1348 
1349 	if (dc->debug.dmcub_emulation)
1350 		return;
1351 
1352 	if (!dc->ctx->dmub_srv || !dc->ctx->dmub_srv->dmub)
1353 		return;
1354 
1355 	dc_dmub_srv = dc->ctx->dmub_srv;
1356 	ips_fw = &dc_dmub_srv->dmub->shared_state[DMUB_SHARED_SHARE_FEATURE__IPS_FW].data.ips_fw;
1357 
1358 	memset(&cmd, 0, sizeof(cmd));
1359 	cmd.idle_opt_notify_idle.header.type = DMUB_CMD__IDLE_OPT;
1360 	cmd.idle_opt_notify_idle.header.sub_type = DMUB_CMD__IDLE_OPT_DCN_NOTIFY_IDLE;
1361 	cmd.idle_opt_notify_idle.header.payload_bytes =
1362 		sizeof(cmd.idle_opt_notify_idle) -
1363 		sizeof(cmd.idle_opt_notify_idle.header);
1364 
1365 	cmd.idle_opt_notify_idle.cntl_data.driver_idle = allow_idle;
1366 
1367 	if (dc->work_arounds.skip_psr_ips_crtc_disable)
1368 		cmd.idle_opt_notify_idle.cntl_data.skip_otg_disable = true;
1369 
1370 	if (allow_idle) {
1371 		volatile struct dmub_shared_state_ips_driver *ips_driver =
1372 			&dc_dmub_srv->dmub->shared_state[DMUB_SHARED_SHARE_FEATURE__IPS_DRIVER].data.ips_driver;
1373 		union dmub_shared_state_ips_driver_signals new_signals;
1374 
1375 		DC_LOG_IPS(
1376 			"%s wait idle (ips1_commit=%u ips2_commit=%u)",
1377 			__func__,
1378 			ips_fw->signals.bits.ips1_commit,
1379 			ips_fw->signals.bits.ips2_commit);
1380 
1381 		dc_dmub_srv_wait_for_idle(dc->ctx->dmub_srv, DM_DMUB_WAIT_TYPE_WAIT, NULL);
1382 
1383 		memset(&new_signals, 0, sizeof(new_signals));
1384 
1385 		new_signals.bits.allow_idle = 1; /* always set */
1386 
1387 		if (dc->config.disable_ips == DMUB_IPS_ENABLE ||
1388 		    dc->config.disable_ips == DMUB_IPS_DISABLE_DYNAMIC) {
1389 			new_signals.bits.allow_pg = 1;
1390 			new_signals.bits.allow_ips1 = 1;
1391 			new_signals.bits.allow_ips2 = 1;
1392 			new_signals.bits.allow_z10 = 1;
1393 			// New in IPSv2.0
1394 			new_signals.bits.allow_ips1z8 = 1;
1395 		} else if (dc->config.disable_ips == DMUB_IPS_DISABLE_IPS1) {
1396 			new_signals.bits.allow_ips1 = 1;
1397 		} else if (dc->config.disable_ips == DMUB_IPS_DISABLE_IPS2) {
1398 			// IPSv1.0 only
1399 			new_signals.bits.allow_pg = 1;
1400 			new_signals.bits.allow_ips1 = 1;
1401 		} else if (dc->config.disable_ips == DMUB_IPS_DISABLE_IPS2_Z10) {
1402 			// IPSv1.0 only
1403 			new_signals.bits.allow_pg = 1;
1404 			new_signals.bits.allow_ips1 = 1;
1405 			new_signals.bits.allow_ips2 = 1;
1406 		} else if (dc->config.disable_ips == DMUB_IPS_RCG_IN_ACTIVE_IPS2_IN_OFF) {
1407 			/* TODO: Move this logic out to hwseq */
1408 			if (count_active_streams(dc) == 0) {
1409 				/* IPS2 - Display off */
1410 				new_signals.bits.allow_pg = 1;
1411 				new_signals.bits.allow_ips1 = 1;
1412 				new_signals.bits.allow_ips2 = 1;
1413 				new_signals.bits.allow_z10 = 1;
1414 				// New in IPSv2.0
1415 				new_signals.bits.allow_ips1z8 = 1;
1416 			} else {
1417 				/* RCG only */
1418 				new_signals.bits.allow_pg = 0;
1419 				new_signals.bits.allow_ips1 = 1;
1420 				new_signals.bits.allow_ips2 = 0;
1421 				new_signals.bits.allow_z10 = 0;
1422 			}
1423 		} else if (dc->config.disable_ips == DMUB_IPS_DISABLE_Z8_RETENTION) {
1424 			new_signals.bits.allow_pg = 1;
1425 			new_signals.bits.allow_ips1 = 1;
1426 			new_signals.bits.allow_ips2 = 1;
1427 			new_signals.bits.allow_z10 = 1;
1428 		}
1429 		// Setting RCG allow bits (IPSv2.0)
1430 		if (dc->config.disable_ips_rcg == DMUB_IPS_RCG_ENABLE) {
1431 			new_signals.bits.allow_ips0_rcg = 1;
1432 			new_signals.bits.allow_ips1_rcg = 1;
1433 		} else if (dc->config.disable_ips_rcg == DMUB_IPS0_RCG_DISABLE) {
1434 			new_signals.bits.allow_ips1_rcg = 1;
1435 		} else if (dc->config.disable_ips_rcg == DMUB_IPS1_RCG_DISABLE) {
1436 			new_signals.bits.allow_ips0_rcg = 1;
1437 		}
1438 		// IPS dynamic allow bits (IPSv2 change, vpb use case)
1439 		if (dc->config.disable_ips_in_vpb == DMUB_IPS_VPB_ENABLE_IPS1_AND_RCG) {
1440 			new_signals.bits.allow_dynamic_ips1 = 1;
1441 		} else if (dc->config.disable_ips_in_vpb == DMUB_IPS_VPB_ENABLE_ALL) {
1442 			new_signals.bits.allow_dynamic_ips1 = 1;
1443 			new_signals.bits.allow_dynamic_ips1_z8 = 1;
1444 		}
1445 		ips_driver->signals = new_signals;
1446 		dc_dmub_srv->driver_signals = ips_driver->signals;
1447 	}
1448 
1449 	DC_LOG_IPS(
1450 		"%s send allow_idle=%d (ips1_commit=%u ips2_commit=%u)",
1451 		__func__,
1452 		allow_idle,
1453 		ips_fw->signals.bits.ips1_commit,
1454 		ips_fw->signals.bits.ips2_commit);
1455 
1456 	/* NOTE: This does not use the "wake" interface since this is part of the wake path. */
1457 	/* We also do not perform a wait since DMCUB could enter idle after the notification. */
1458 	dm_execute_dmub_cmd(dc->ctx, &cmd, allow_idle ? DM_DMUB_WAIT_TYPE_NO_WAIT : DM_DMUB_WAIT_TYPE_WAIT);
1459 
1460 	/* Register access should stop at this point. */
1461 	if (allow_idle)
1462 		dc_dmub_srv->needs_idle_wake = true;
1463 }
1464 
1465 static void dc_dmub_srv_exit_low_power_state(const struct dc *dc)
1466 {
1467 	struct dc_dmub_srv *dc_dmub_srv;
1468 	uint32_t rcg_exit_count = 0, ips1_exit_count = 0, ips2_exit_count = 0, ips1z8_exit_count = 0;
1469 
1470 	if (dc->debug.dmcub_emulation)
1471 		return;
1472 
1473 	if (!dc->ctx->dmub_srv || !dc->ctx->dmub_srv->dmub)
1474 		return;
1475 
1476 	dc_dmub_srv = dc->ctx->dmub_srv;
1477 
1478 	if (dc->clk_mgr->funcs->exit_low_power_state) {
1479 		volatile const struct dmub_shared_state_ips_fw *ips_fw =
1480 			&dc_dmub_srv->dmub->shared_state[DMUB_SHARED_SHARE_FEATURE__IPS_FW].data.ips_fw;
1481 		volatile struct dmub_shared_state_ips_driver *ips_driver =
1482 			&dc_dmub_srv->dmub->shared_state[DMUB_SHARED_SHARE_FEATURE__IPS_DRIVER].data.ips_driver;
1483 		union dmub_shared_state_ips_driver_signals prev_driver_signals = ips_driver->signals;
1484 
1485 		rcg_exit_count = ips_fw->rcg_exit_count;
1486 		ips1_exit_count = ips_fw->ips1_exit_count;
1487 		ips2_exit_count = ips_fw->ips2_exit_count;
1488 		ips1z8_exit_count = ips_fw->ips1_z8ret_exit_count;
1489 
1490 		ips_driver->signals.all = 0;
1491 		dc_dmub_srv->driver_signals = ips_driver->signals;
1492 
1493 		DC_LOG_IPS(
1494 			"%s (allow ips1=%u ips2=%u) (commit ips1=%u ips2=%u ips1z8=%u) (count rcg=%u ips1=%u ips2=%u ips1_z8=%u)",
1495 			__func__,
1496 			ips_driver->signals.bits.allow_ips1,
1497 			ips_driver->signals.bits.allow_ips2,
1498 			ips_fw->signals.bits.ips1_commit,
1499 			ips_fw->signals.bits.ips2_commit,
1500 			ips_fw->signals.bits.ips1z8_commit,
1501 			ips_fw->rcg_entry_count,
1502 			ips_fw->ips1_entry_count,
1503 			ips_fw->ips2_entry_count,
1504 			ips_fw->ips1_z8ret_entry_count);
1505 
1506 		/* Note: register access has technically not resumed for DCN here, but we
1507 		 * need to be message PMFW through our standard register interface.
1508 		 */
1509 		dc_dmub_srv->needs_idle_wake = false;
1510 
1511 		if (!dc->caps.ips_v2_support && ((prev_driver_signals.bits.allow_ips2 || prev_driver_signals.all == 0) &&
1512 		    (!dc->debug.optimize_ips_handshake ||
1513 		     ips_fw->signals.bits.ips2_commit || !ips_fw->signals.bits.in_idle))) {
1514 			DC_LOG_IPS(
1515 				"wait IPS2 eval (ips1_commit=%u ips2_commit=%u )",
1516 				ips_fw->signals.bits.ips1_commit,
1517 				ips_fw->signals.bits.ips2_commit);
1518 
1519 			if (!dc->debug.optimize_ips_handshake || !ips_fw->signals.bits.ips2_commit)
1520 				udelay(dc->debug.ips2_eval_delay_us);
1521 
1522 			DC_LOG_IPS(
1523 				"exit IPS2 #1 (ips1_commit=%u ips2_commit=%u)",
1524 				ips_fw->signals.bits.ips1_commit,
1525 				ips_fw->signals.bits.ips2_commit);
1526 
1527 			// Tell PMFW to exit low power state
1528 			dc->clk_mgr->funcs->exit_low_power_state(dc->clk_mgr);
1529 
1530 			if (ips_fw->signals.bits.ips2_commit) {
1531 
1532 				DC_LOG_IPS(
1533 					"wait IPS2 entry delay (ips1_commit=%u ips2_commit=%u)",
1534 					ips_fw->signals.bits.ips1_commit,
1535 					ips_fw->signals.bits.ips2_commit);
1536 
1537 				// Wait for IPS2 entry upper bound
1538 				udelay(dc->debug.ips2_entry_delay_us);
1539 
1540 				DC_LOG_IPS(
1541 					"exit IPS2 #2 (ips1_commit=%u ips2_commit=%u)",
1542 					ips_fw->signals.bits.ips1_commit,
1543 					ips_fw->signals.bits.ips2_commit);
1544 
1545 				dc->clk_mgr->funcs->exit_low_power_state(dc->clk_mgr);
1546 
1547 				DC_LOG_IPS(
1548 					"wait IPS2 commit clear (ips1_commit=%u ips2_commit=%u)",
1549 					ips_fw->signals.bits.ips1_commit,
1550 					ips_fw->signals.bits.ips2_commit);
1551 
1552 				while (ips_fw->signals.bits.ips2_commit)
1553 					udelay(1);
1554 
1555 				DC_LOG_IPS(
1556 					"wait hw_pwr_up (ips1_commit=%u ips2_commit=%u)",
1557 					ips_fw->signals.bits.ips1_commit,
1558 					ips_fw->signals.bits.ips2_commit);
1559 
1560 				if (!dc_dmub_srv_is_hw_pwr_up(dc->ctx->dmub_srv, true))
1561 					ASSERT(0);
1562 
1563 				DC_LOG_IPS(
1564 					"resync inbox1 (ips1_commit=%u ips2_commit=%u)",
1565 					ips_fw->signals.bits.ips1_commit,
1566 					ips_fw->signals.bits.ips2_commit);
1567 
1568 				dmub_srv_sync_inboxes(dc->ctx->dmub_srv->dmub);
1569 			}
1570 		}
1571 
1572 		dc_dmub_srv_notify_idle(dc, false);
1573 		if (prev_driver_signals.bits.allow_ips1 || prev_driver_signals.all == 0) {
1574 			DC_LOG_IPS(
1575 				"wait for IPS1 commit clear (ips1_commit=%u ips2_commit=%u ips1z8=%u)",
1576 				ips_fw->signals.bits.ips1_commit,
1577 				ips_fw->signals.bits.ips2_commit,
1578 				ips_fw->signals.bits.ips1z8_commit);
1579 
1580 			while (ips_fw->signals.bits.ips1_commit)
1581 				udelay(1);
1582 
1583 			DC_LOG_IPS(
1584 				"wait for IPS1 commit clear done (ips1_commit=%u ips2_commit=%u ips1z8=%u)",
1585 				ips_fw->signals.bits.ips1_commit,
1586 				ips_fw->signals.bits.ips2_commit,
1587 				ips_fw->signals.bits.ips1z8_commit);
1588 		}
1589 	}
1590 
1591 	if (!dc_dmub_srv_is_hw_pwr_up(dc->ctx->dmub_srv, true))
1592 		ASSERT(0);
1593 
1594 	DC_LOG_IPS("%s exit (count rcg=%u ips1=%u ips2=%u ips1z8=%u)",
1595 		__func__,
1596 		rcg_exit_count,
1597 		ips1_exit_count,
1598 		ips2_exit_count,
1599 		ips1z8_exit_count);
1600 }
1601 
1602 void dc_dmub_srv_set_power_state(struct dc_dmub_srv *dc_dmub_srv, enum dc_acpi_cm_power_state power_state)
1603 {
1604 	struct dmub_srv *dmub;
1605 
1606 	if (!dc_dmub_srv)
1607 		return;
1608 
1609 	dmub = dc_dmub_srv->dmub;
1610 
1611 	if (power_state == DC_ACPI_CM_POWER_STATE_D0)
1612 		dmub_srv_set_power_state(dmub, DMUB_POWER_STATE_D0);
1613 	else
1614 		dmub_srv_set_power_state(dmub, DMUB_POWER_STATE_D3);
1615 }
1616 
1617 void dc_dmub_srv_notify_fw_dc_power_state(struct dc_dmub_srv *dc_dmub_srv,
1618 					  enum dc_acpi_cm_power_state power_state)
1619 {
1620 	union dmub_rb_cmd cmd;
1621 
1622 	if (!dc_dmub_srv)
1623 		return;
1624 
1625 	memset(&cmd, 0, sizeof(cmd));
1626 
1627 	cmd.idle_opt_set_dc_power_state.header.type = DMUB_CMD__IDLE_OPT;
1628 	cmd.idle_opt_set_dc_power_state.header.sub_type = DMUB_CMD__IDLE_OPT_SET_DC_POWER_STATE;
1629 	cmd.idle_opt_set_dc_power_state.header.payload_bytes =
1630 		sizeof(cmd.idle_opt_set_dc_power_state) - sizeof(cmd.idle_opt_set_dc_power_state.header);
1631 
1632 	if (power_state == DC_ACPI_CM_POWER_STATE_D0) {
1633 		cmd.idle_opt_set_dc_power_state.data.power_state = DMUB_IDLE_OPT_DC_POWER_STATE_D0;
1634 	} else if (power_state == DC_ACPI_CM_POWER_STATE_D3) {
1635 		cmd.idle_opt_set_dc_power_state.data.power_state = DMUB_IDLE_OPT_DC_POWER_STATE_D3;
1636 	} else {
1637 		cmd.idle_opt_set_dc_power_state.data.power_state = DMUB_IDLE_OPT_DC_POWER_STATE_UNKNOWN;
1638 	}
1639 
1640 	dc_wake_and_execute_dmub_cmd(dc_dmub_srv->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT);
1641 }
1642 
1643 bool dc_dmub_srv_should_detect(struct dc_dmub_srv *dc_dmub_srv)
1644 {
1645 	volatile const struct dmub_shared_state_ips_fw *ips_fw;
1646 	bool reallow_idle = false, should_detect = false;
1647 
1648 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
1649 		return false;
1650 
1651 	if (dc_dmub_srv->dmub->shared_state &&
1652 	    dc_dmub_srv->dmub->meta_info.feature_bits.bits.shared_state_link_detection) {
1653 		ips_fw = &dc_dmub_srv->dmub->shared_state[DMUB_SHARED_SHARE_FEATURE__IPS_FW].data.ips_fw;
1654 		return (bool)ips_fw->signals.bits.detection_required;
1655 	}
1656 
1657 	/* Detection may require reading scratch 0 - exit out of idle prior to the read. */
1658 	if (dc_dmub_srv->idle_allowed) {
1659 		dc_dmub_srv_apply_idle_power_optimizations(dc_dmub_srv->ctx->dc, false);
1660 		reallow_idle = true;
1661 	}
1662 
1663 	should_detect = dmub_srv_should_detect(dc_dmub_srv->dmub);
1664 
1665 	/* Re-enter idle if we're not about to immediately redetect links. */
1666 	if (!should_detect && reallow_idle && dc_dmub_srv->idle_exit_counter == 0 &&
1667 	    !dc_dmub_srv->ctx->dc->debug.disable_dmub_reallow_idle)
1668 		dc_dmub_srv_apply_idle_power_optimizations(dc_dmub_srv->ctx->dc, true);
1669 
1670 	return should_detect;
1671 }
1672 
1673 void dc_dmub_srv_apply_idle_power_optimizations(const struct dc *dc, bool allow_idle)
1674 {
1675 	struct dc_dmub_srv *dc_dmub_srv = dc->ctx->dmub_srv;
1676 
1677 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
1678 		return;
1679 
1680 	allow_idle &= (!dc->debug.ips_disallow_entry);
1681 
1682 	if (dc_dmub_srv->idle_allowed == allow_idle)
1683 		return;
1684 
1685 	DC_LOG_IPS("%s state change: old=%d new=%d", __func__, dc_dmub_srv->idle_allowed, allow_idle);
1686 
1687 	/*
1688 	 * Entering a low power state requires a driver notification.
1689 	 * Powering up the hardware requires notifying PMFW and DMCUB.
1690 	 * Clearing the driver idle allow requires a DMCUB command.
1691 	 * DMCUB commands requires the DMCUB to be powered up and restored.
1692 	 */
1693 
1694 	if (!allow_idle) {
1695 		dc_dmub_srv->idle_exit_counter += 1;
1696 
1697 		dc_dmub_srv_exit_low_power_state(dc);
1698 		/*
1699 		 * Idle is considered fully exited only after the sequence above
1700 		 * fully completes. If we have a race of two threads exiting
1701 		 * at the same time then it's safe to perform the sequence
1702 		 * twice as long as we're not re-entering.
1703 		 *
1704 		 * Infinite command submission is avoided by using the
1705 		 * dm_execute_dmub_cmd submission instead of the "wake" helpers.
1706 		 */
1707 		dc_dmub_srv->idle_allowed = false;
1708 
1709 		dc_dmub_srv->idle_exit_counter -= 1;
1710 		if (dc_dmub_srv->idle_exit_counter < 0) {
1711 			ASSERT(0);
1712 			dc_dmub_srv->idle_exit_counter = 0;
1713 		}
1714 	} else {
1715 		/* Consider idle as notified prior to the actual submission to
1716 		 * prevent multiple entries. */
1717 		dc_dmub_srv->idle_allowed = true;
1718 
1719 		dc_dmub_srv_notify_idle(dc, allow_idle);
1720 	}
1721 }
1722 
1723 bool dc_wake_and_execute_dmub_cmd(const struct dc_context *ctx, union dmub_rb_cmd *cmd,
1724 				  enum dm_dmub_wait_type wait_type)
1725 {
1726 	return dc_wake_and_execute_dmub_cmd_list(ctx, 1, cmd, wait_type);
1727 }
1728 
1729 bool dc_wake_and_execute_dmub_cmd_list(const struct dc_context *ctx, unsigned int count,
1730 				       union dmub_rb_cmd *cmd, enum dm_dmub_wait_type wait_type)
1731 {
1732 	struct dc_dmub_srv *dc_dmub_srv = ctx->dmub_srv;
1733 	bool result = false, reallow_idle = false;
1734 
1735 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
1736 		return false;
1737 
1738 	if (count == 0)
1739 		return true;
1740 
1741 	if (dc_dmub_srv->idle_allowed) {
1742 		dc_dmub_srv_apply_idle_power_optimizations(ctx->dc, false);
1743 		reallow_idle = true;
1744 	}
1745 
1746 	/*
1747 	 * These may have different implementations in DM, so ensure
1748 	 * that we guide it to the expected helper.
1749 	 */
1750 	if (count > 1)
1751 		result = dm_execute_dmub_cmd_list(ctx, count, cmd, wait_type);
1752 	else
1753 		result = dm_execute_dmub_cmd(ctx, cmd, wait_type);
1754 
1755 	if (result && reallow_idle && dc_dmub_srv->idle_exit_counter == 0 &&
1756 	    !ctx->dc->debug.disable_dmub_reallow_idle)
1757 		dc_dmub_srv_apply_idle_power_optimizations(ctx->dc, true);
1758 
1759 	return result;
1760 }
1761 
1762 static bool dc_dmub_execute_gpint(const struct dc_context *ctx, enum dmub_gpint_command command_code,
1763 				  uint16_t param, uint32_t *response, enum dm_dmub_wait_type wait_type)
1764 {
1765 	struct dc_dmub_srv *dc_dmub_srv = ctx->dmub_srv;
1766 	const uint32_t wait_us = wait_type == DM_DMUB_WAIT_TYPE_NO_WAIT ? 0 : 30;
1767 	enum dmub_status status;
1768 
1769 	if (response)
1770 		*response = 0;
1771 
1772 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
1773 		return false;
1774 
1775 	status = dmub_srv_send_gpint_command(dc_dmub_srv->dmub, command_code, param, wait_us);
1776 	if (status != DMUB_STATUS_OK) {
1777 		if (status == DMUB_STATUS_TIMEOUT && wait_type == DM_DMUB_WAIT_TYPE_NO_WAIT)
1778 			return true;
1779 
1780 		return false;
1781 	}
1782 
1783 	if (response && wait_type == DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY)
1784 		dmub_srv_get_gpint_response(dc_dmub_srv->dmub, response);
1785 
1786 	return true;
1787 }
1788 
1789 bool dc_wake_and_execute_gpint(const struct dc_context *ctx, enum dmub_gpint_command command_code,
1790 			       uint16_t param, uint32_t *response, enum dm_dmub_wait_type wait_type)
1791 {
1792 	struct dc_dmub_srv *dc_dmub_srv = ctx->dmub_srv;
1793 	bool result = false, reallow_idle = false;
1794 
1795 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
1796 		return false;
1797 
1798 	if (dc_dmub_srv->idle_allowed) {
1799 		dc_dmub_srv_apply_idle_power_optimizations(ctx->dc, false);
1800 		reallow_idle = true;
1801 	}
1802 
1803 	result = dc_dmub_execute_gpint(ctx, command_code, param, response, wait_type);
1804 
1805 	if (result && reallow_idle && dc_dmub_srv->idle_exit_counter == 0 &&
1806 	    !ctx->dc->debug.disable_dmub_reallow_idle)
1807 		dc_dmub_srv_apply_idle_power_optimizations(ctx->dc, true);
1808 
1809 	return result;
1810 }
1811 
1812 static void dc_dmub_srv_rb_based_fams2_update_config(struct dc *dc,
1813 		struct dc_state *context,
1814 		bool enable)
1815 {
1816 	uint32_t num_cmds = 1;
1817 	uint32_t i;
1818 	union dmub_rb_cmd cmd[2 * MAX_STREAMS + 1];
1819 	struct dmub_rb_cmd_fams2 *global_cmd = &cmd[0].fams2_config;
1820 
1821 	memset(cmd, 0, sizeof(union dmub_rb_cmd) * (2 * MAX_STREAMS + 1));
1822 	/* fill in generic command header */
1823 	global_cmd->header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH;
1824 	global_cmd->header.sub_type = DMUB_CMD__FAMS2_CONFIG;
1825 	global_cmd->header.payload_bytes =
1826 			sizeof(struct dmub_rb_cmd_fams2) - sizeof(struct dmub_cmd_header);
1827 
1828 	if (enable) {
1829 		/* send global configuration parameters */
1830 		memcpy(&global_cmd->config.global, &context->bw_ctx.bw.dcn.fams2_global_config, sizeof(struct dmub_cmd_fams2_global_config));
1831 
1832 		/* copy static feature configuration overrides */
1833 		global_cmd->config.global.features.bits.enable_stall_recovery = dc->debug.fams2_config.bits.enable_stall_recovery;
1834 		global_cmd->config.global.features.bits.enable_debug = dc->debug.fams2_config.bits.enable_debug;
1835 		global_cmd->config.global.features.bits.enable_offload_flip = dc->debug.fams2_config.bits.enable_offload_flip;
1836 
1837 		/* construct per-stream configs */
1838 		for (i = 0; i < context->bw_ctx.bw.dcn.fams2_global_config.num_streams; i++) {
1839 			struct dmub_rb_cmd_fams2 *stream_base_cmd = &cmd[i+1].fams2_config;
1840 			struct dmub_rb_cmd_fams2 *stream_sub_state_cmd = &cmd[i+1+context->bw_ctx.bw.dcn.fams2_global_config.num_streams].fams2_config;
1841 
1842 			/* configure command header */
1843 			stream_base_cmd->header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH;
1844 			stream_base_cmd->header.sub_type = DMUB_CMD__FAMS2_CONFIG;
1845 			stream_base_cmd->header.payload_bytes =
1846 					sizeof(struct dmub_rb_cmd_fams2) - sizeof(struct dmub_cmd_header);
1847 			stream_base_cmd->header.multi_cmd_pending = 1;
1848 			stream_sub_state_cmd->header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH;
1849 			stream_sub_state_cmd->header.sub_type = DMUB_CMD__FAMS2_CONFIG;
1850 			stream_sub_state_cmd->header.payload_bytes =
1851 					sizeof(struct dmub_rb_cmd_fams2) - sizeof(struct dmub_cmd_header);
1852 			stream_sub_state_cmd->header.multi_cmd_pending = 1;
1853 			/* copy stream static base state */
1854 			memcpy(&stream_base_cmd->config,
1855 					&context->bw_ctx.bw.dcn.fams2_stream_base_params[i],
1856 					sizeof(union dmub_cmd_fams2_config));
1857 			/* copy stream static sub state */
1858 			memcpy(&stream_sub_state_cmd->config,
1859 					&context->bw_ctx.bw.dcn.fams2_stream_sub_params[i],
1860 					sizeof(union dmub_cmd_fams2_config));
1861 		}
1862 	}
1863 
1864 	/* apply feature configuration based on current driver state */
1865 	global_cmd->config.global.features.bits.enable_visual_confirm = dc->debug.visual_confirm == VISUAL_CONFIRM_FAMS2;
1866 	global_cmd->config.global.features.bits.enable = enable && context->bw_ctx.bw.dcn.fams2_global_config.features.bits.enable;
1867 	global_cmd->config.global.features.bits.enable_ppt_check = dc->debug.fams2_config.bits.enable_ppt_check;
1868 
1869 	if (enable) {
1870 		/* set multi pending for global, and unset for last stream cmd */
1871 		global_cmd->header.multi_cmd_pending = 1;
1872 		cmd[2 * context->bw_ctx.bw.dcn.fams2_global_config.num_streams].fams2_config.header.multi_cmd_pending = 0;
1873 		num_cmds += 2 * context->bw_ctx.bw.dcn.fams2_global_config.num_streams;
1874 	}
1875 
1876 	dm_execute_dmub_cmd_list(dc->ctx, num_cmds, cmd, DM_DMUB_WAIT_TYPE_WAIT);
1877 }
1878 
1879 static void dc_dmub_srv_ib_based_fams2_update_config(struct dc *dc,
1880 		struct dc_state *context,
1881 		bool enable)
1882 {
1883 	struct dmub_fams2_config_v2 *config = (struct dmub_fams2_config_v2 *)dc->ctx->dmub_srv->dmub->ib_mem_gart.cpu_addr;
1884 	union dmub_rb_cmd cmd;
1885 	uint32_t i;
1886 
1887 	memset(config, 0, sizeof(*config));
1888 	memset(&cmd, 0, sizeof(cmd));
1889 
1890 	cmd.ib_fams2_config.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH;
1891 	cmd.ib_fams2_config.header.sub_type = DMUB_CMD__FAMS2_IB_CONFIG;
1892 
1893 	cmd.ib_fams2_config.ib_data.src.quad_part = dc->ctx->dmub_srv->dmub->ib_mem_gart.gpu_addr;
1894 	cmd.ib_fams2_config.ib_data.size = sizeof(*config);
1895 
1896 	if (enable) {
1897 		/* send global configuration parameters */
1898 		memcpy(&config->global, &context->bw_ctx.bw.dcn.fams2_global_config,
1899 			sizeof(struct dmub_cmd_fams2_global_config));
1900 
1901 		/* copy static feature configuration overrides */
1902 		config->global.features.bits.enable_stall_recovery = dc->debug.fams2_config.bits.enable_stall_recovery;
1903 		config->global.features.bits.enable_offload_flip = dc->debug.fams2_config.bits.enable_offload_flip;
1904 		config->global.features.bits.enable_debug = dc->debug.fams2_config.bits.enable_debug;
1905 
1906 		/* construct per-stream configs */
1907 		for (i = 0; i < context->bw_ctx.bw.dcn.fams2_global_config.num_streams; i++) {
1908 			/* copy stream static base state */
1909 			memcpy(&config->stream_v1[i].base,
1910 				&context->bw_ctx.bw.dcn.fams2_stream_base_params[i],
1911 				sizeof(config->stream_v1[i].base));
1912 
1913 			/* copy stream static sub-state */
1914 			memcpy(&config->stream_v1[i].sub_state,
1915 				&context->bw_ctx.bw.dcn.fams2_stream_sub_params_v2[i],
1916 				sizeof(config->stream_v1[i].sub_state));
1917 		}
1918 	}
1919 
1920 	config->global.features.bits.enable_visual_confirm = dc->debug.visual_confirm == VISUAL_CONFIRM_FAMS2;
1921 	config->global.features.bits.enable = enable && context->bw_ctx.bw.dcn.fams2_global_config.features.bits.enable;
1922 	config->global.features.bits.enable_ppt_check = dc->debug.fams2_config.bits.enable_ppt_check;
1923 
1924 	dm_execute_dmub_cmd_list(dc->ctx, 1, &cmd, DM_DMUB_WAIT_TYPE_WAIT);
1925 }
1926 
1927 void dc_dmub_srv_fams2_update_config(struct dc *dc,
1928 		struct dc_state *context,
1929 		bool enable)
1930 {
1931 	if (dc->debug.fams_version.major == 2)
1932 		dc_dmub_srv_rb_based_fams2_update_config(dc, context, enable);
1933 	if (dc->debug.fams_version.major == 3)
1934 		dc_dmub_srv_ib_based_fams2_update_config(dc, context, enable);
1935 }
1936 
1937 void dc_dmub_srv_fams2_drr_update(struct dc *dc,
1938 		uint32_t tg_inst,
1939 		uint32_t vtotal_min,
1940 		uint32_t vtotal_max,
1941 		uint32_t vtotal_mid,
1942 		uint32_t vtotal_mid_frame_num,
1943 		bool program_manual_trigger)
1944 {
1945 	union dmub_rb_cmd cmd = { 0 };
1946 
1947 	cmd.fams2_drr_update.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH;
1948 	cmd.fams2_drr_update.header.sub_type = DMUB_CMD__FAMS2_DRR_UPDATE;
1949 	cmd.fams2_drr_update.dmub_optc_state_req.tg_inst = (uint8_t)tg_inst;
1950 	cmd.fams2_drr_update.dmub_optc_state_req.v_total_max = vtotal_max;
1951 	cmd.fams2_drr_update.dmub_optc_state_req.v_total_min = vtotal_min;
1952 	cmd.fams2_drr_update.dmub_optc_state_req.v_total_mid = vtotal_mid;
1953 	cmd.fams2_drr_update.dmub_optc_state_req.v_total_mid_frame_num = vtotal_mid_frame_num;
1954 	cmd.fams2_drr_update.dmub_optc_state_req.program_manual_trigger = program_manual_trigger;
1955 
1956 	cmd.fams2_drr_update.header.payload_bytes =
1957 			sizeof(cmd.fams2_drr_update) - sizeof(cmd.fams2_drr_update.header);
1958 
1959 	dm_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT);
1960 }
1961 
1962 void dc_dmub_srv_fams2_passthrough_flip(
1963 		struct dc *dc,
1964 		struct dc_state *state,
1965 		struct dc_stream_state *stream,
1966 		struct dc_surface_update *srf_updates,
1967 		int surface_count)
1968 {
1969 	int plane_index;
1970 	union dmub_rb_cmd cmds[MAX_PLANES];
1971 	struct dc_plane_address *address;
1972 	struct dc_plane_state *plane_state;
1973 	int num_cmds = 0;
1974 	struct dc_stream_status *stream_status = dc_stream_get_status(stream);
1975 
1976 	if (surface_count <= 0 || stream_status == NULL)
1977 		return;
1978 
1979 	memset(cmds, 0, sizeof(union dmub_rb_cmd) * MAX_PLANES);
1980 
1981 	/* build command for each surface update */
1982 	for (plane_index = 0; plane_index < surface_count; plane_index++) {
1983 		plane_state = srf_updates[plane_index].surface;
1984 		address = &plane_state->address;
1985 
1986 		/* skip if there is no address update for plane */
1987 		if (!srf_updates[plane_index].flip_addr)
1988 			continue;
1989 
1990 		/* build command header */
1991 		cmds[num_cmds].fams2_flip.header.type = DMUB_CMD__FW_ASSISTED_MCLK_SWITCH;
1992 		cmds[num_cmds].fams2_flip.header.sub_type = DMUB_CMD__FAMS2_FLIP;
1993 		cmds[num_cmds].fams2_flip.header.payload_bytes =
1994 				sizeof(struct dmub_rb_cmd_fams2_flip) - sizeof(struct dmub_cmd_header);
1995 
1996 		/* for chaining multiple commands, all but last command should set to 1 */
1997 		cmds[num_cmds].fams2_flip.header.multi_cmd_pending = 1;
1998 
1999 		/* set topology info */
2000 		cmds[num_cmds].fams2_flip.flip_info.pipe_mask = (uint8_t)dc_plane_get_pipe_mask(state, plane_state);
2001 		if (stream_status) {
2002 			cmds[num_cmds].fams2_flip.flip_info.otg_inst = (uint8_t)stream_status->primary_otg_inst;
2003 		}
2004 		cmds[num_cmds].fams2_flip.flip_info.config.bits.is_immediate = plane_state->flip_immediate;
2005 
2006 		/* build address info for command */
2007 		switch (address->type) {
2008 		case PLN_ADDR_TYPE_GRAPHICS:
2009 			if (address->grph.addr.quad_part == 0) {
2010 				BREAK_TO_DEBUGGER();
2011 				break;
2012 			}
2013 
2014 			cmds[num_cmds].fams2_flip.flip_info.addr_info.meta_addr_lo =
2015 					address->grph.meta_addr.low_part;
2016 			cmds[num_cmds].fams2_flip.flip_info.addr_info.meta_addr_hi =
2017 					(uint16_t)address->grph.meta_addr.high_part;
2018 			cmds[num_cmds].fams2_flip.flip_info.addr_info.surf_addr_lo =
2019 					address->grph.addr.low_part;
2020 			cmds[num_cmds].fams2_flip.flip_info.addr_info.surf_addr_hi =
2021 					(uint16_t)address->grph.addr.high_part;
2022 			break;
2023 		case PLN_ADDR_TYPE_VIDEO_PROGRESSIVE:
2024 			if (address->video_progressive.luma_addr.quad_part == 0 ||
2025 				address->video_progressive.chroma_addr.quad_part == 0) {
2026 				BREAK_TO_DEBUGGER();
2027 				break;
2028 			}
2029 
2030 			cmds[num_cmds].fams2_flip.flip_info.addr_info.meta_addr_lo =
2031 					address->video_progressive.luma_meta_addr.low_part;
2032 			cmds[num_cmds].fams2_flip.flip_info.addr_info.meta_addr_hi =
2033 					(uint16_t)address->video_progressive.luma_meta_addr.high_part;
2034 			cmds[num_cmds].fams2_flip.flip_info.addr_info.meta_addr_c_lo =
2035 					address->video_progressive.chroma_meta_addr.low_part;
2036 			cmds[num_cmds].fams2_flip.flip_info.addr_info.meta_addr_c_hi =
2037 					(uint16_t)address->video_progressive.chroma_meta_addr.high_part;
2038 			cmds[num_cmds].fams2_flip.flip_info.addr_info.surf_addr_lo =
2039 					address->video_progressive.luma_addr.low_part;
2040 			cmds[num_cmds].fams2_flip.flip_info.addr_info.surf_addr_hi =
2041 					(uint16_t)address->video_progressive.luma_addr.high_part;
2042 			cmds[num_cmds].fams2_flip.flip_info.addr_info.surf_addr_c_lo =
2043 					address->video_progressive.chroma_addr.low_part;
2044 			cmds[num_cmds].fams2_flip.flip_info.addr_info.surf_addr_c_hi =
2045 					(uint16_t)address->video_progressive.chroma_addr.high_part;
2046 			break;
2047 		default:
2048 			// Should never be hit
2049 			BREAK_TO_DEBUGGER();
2050 			break;
2051 		}
2052 
2053 		num_cmds++;
2054 	}
2055 
2056 	if (num_cmds > 0)  {
2057 		cmds[num_cmds - 1].fams2_flip.header.multi_cmd_pending = 0;
2058 		dm_execute_dmub_cmd_list(dc->ctx, num_cmds, cmds, DM_DMUB_WAIT_TYPE_WAIT);
2059 	}
2060 }
2061 
2062 
2063 bool dc_dmub_srv_ips_residency_cntl(const struct dc_context *ctx, uint8_t panel_inst, bool start_measurement)
2064 {
2065 	union dmub_rb_cmd cmd;
2066 
2067 	memset(&cmd, 0, sizeof(cmd));
2068 
2069 	cmd.ips_residency_cntl.header.type = DMUB_CMD__IPS;
2070 	cmd.ips_residency_cntl.header.sub_type = DMUB_CMD__IPS_RESIDENCY_CNTL;
2071 	cmd.ips_residency_cntl.header.payload_bytes = sizeof(struct dmub_cmd_ips_residency_cntl_data);
2072 
2073 	// only panel_inst=0 is supported at the moment
2074 	cmd.ips_residency_cntl.cntl_data.panel_inst = panel_inst;
2075 	cmd.ips_residency_cntl.cntl_data.start_measurement = start_measurement;
2076 
2077 	if (!dc_wake_and_execute_dmub_cmd(ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY))
2078 		return false;
2079 
2080 	return true;
2081 }
2082 
2083 bool dc_dmub_srv_ips_query_residency_info(const struct dc_context *ctx, uint8_t panel_inst, struct dmub_ips_residency_info *driver_info,
2084 					  enum ips_residency_mode ips_mode)
2085 {
2086 	union dmub_rb_cmd cmd;
2087 	uint32_t bytes = sizeof(struct dmub_ips_residency_info);
2088 
2089 	dmub_flush_buffer_mem(&ctx->dmub_srv->dmub->scratch_mem_fb);
2090 	memset(&cmd, 0, sizeof(cmd));
2091 
2092 	cmd.ips_query_residency_info.header.type = DMUB_CMD__IPS;
2093 	cmd.ips_query_residency_info.header.sub_type = DMUB_CMD__IPS_QUERY_RESIDENCY_INFO;
2094 	cmd.ips_query_residency_info.header.payload_bytes = sizeof(struct dmub_cmd_ips_query_residency_info_data);
2095 
2096 	cmd.ips_query_residency_info.info_data.dest.quad_part = ctx->dmub_srv->dmub->scratch_mem_fb.gpu_addr;
2097 	cmd.ips_query_residency_info.info_data.size = bytes;
2098 	cmd.ips_query_residency_info.info_data.panel_inst = panel_inst;
2099 	cmd.ips_query_residency_info.info_data.ips_mode = (uint32_t)ips_mode;
2100 
2101 	if (!dc_wake_and_execute_dmub_cmd(ctx, &cmd, DM_DMUB_WAIT_TYPE_WAIT_WITH_REPLY) ||
2102 					  cmd.ips_query_residency_info.header.ret_status == 0)
2103 		return false;
2104 
2105 	// copy the result to the output since ret_status != 0 means the command returned data
2106 	memcpy(driver_info, ctx->dmub_srv->dmub->scratch_mem_fb.cpu_addr, bytes);
2107 
2108 	return true;
2109 }
2110 
2111 bool dmub_lsdma_init(struct dc_dmub_srv *dc_dmub_srv)
2112 {
2113 	struct dc_context *dc_ctx = dc_dmub_srv->ctx;
2114 	union dmub_rb_cmd cmd;
2115 	enum dm_dmub_wait_type wait_type;
2116 	struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data;
2117 	bool result;
2118 
2119 	if (!dc_dmub_srv->dmub->feature_caps.lsdma_support_in_dmu)
2120 		return false;
2121 
2122 	memset(&cmd, 0, sizeof(cmd));
2123 
2124 	cmd.cmd_common.header.type     = DMUB_CMD__LSDMA;
2125 	cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_INIT_CONFIG;
2126 	wait_type                      = DM_DMUB_WAIT_TYPE_NO_WAIT;
2127 
2128 	lsdma_data->u.init_data.gpu_addr_base.quad_part = dc_ctx->dmub_srv->dmub->lsdma_rb_fb.gpu_addr;
2129 	lsdma_data->u.init_data.ring_size               = dc_ctx->dmub_srv->dmub->lsdma_rb_fb.size;
2130 
2131 	result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type);
2132 
2133 	if (!result)
2134 		DC_ERROR("LSDMA Init failed in DMUB");
2135 
2136 	return result;
2137 }
2138 
2139 bool dmub_lsdma_send_linear_copy_command(
2140 	struct dc_dmub_srv *dc_dmub_srv,
2141 	uint64_t src_addr,
2142 	uint64_t dst_addr,
2143 	uint32_t count
2144 )
2145 {
2146 	struct dc_context *dc_ctx = dc_dmub_srv->ctx;
2147 	union dmub_rb_cmd cmd;
2148 	enum dm_dmub_wait_type wait_type;
2149 	struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data;
2150 	bool result;
2151 
2152 	memset(&cmd, 0, sizeof(cmd));
2153 
2154 	cmd.cmd_common.header.type     = DMUB_CMD__LSDMA;
2155 	cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_LINEAR_COPY;
2156 	wait_type                      = DM_DMUB_WAIT_TYPE_NO_WAIT;
2157 
2158 	lsdma_data->u.linear_copy_data.count   = count - 1; // LSDMA controller expects bytes to copy -1
2159 	lsdma_data->u.linear_copy_data.src_lo  = src_addr & 0xFFFFFFFF;
2160 	lsdma_data->u.linear_copy_data.src_hi  = (src_addr >> 32) & 0xFFFFFFFF;
2161 	lsdma_data->u.linear_copy_data.dst_lo  = dst_addr & 0xFFFFFFFF;
2162 	lsdma_data->u.linear_copy_data.dst_hi  = (dst_addr >> 32) & 0xFFFFFFFF;
2163 
2164 	result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type);
2165 
2166 	if (!result)
2167 		DC_ERROR("LSDMA Linear Copy failed in DMUB");
2168 
2169 	return result;
2170 }
2171 
2172 bool dmub_lsdma_send_linear_sub_window_copy_command(
2173 	struct dc_dmub_srv *dc_dmub_srv,
2174 	struct lsdma_linear_sub_window_copy_params copy_data
2175 )
2176 {
2177 	struct dc_context *dc_ctx = dc_dmub_srv->ctx;
2178 	union dmub_rb_cmd cmd;
2179 	enum dm_dmub_wait_type wait_type;
2180 	struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data;
2181 	bool result;
2182 
2183 	memset(&cmd, 0, sizeof(cmd));
2184 
2185 	cmd.cmd_common.header.type     = DMUB_CMD__LSDMA;
2186 	cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_LINEAR_SUB_WINDOW_COPY;
2187 	wait_type                      = DM_DMUB_WAIT_TYPE_NO_WAIT;
2188 
2189 	lsdma_data->u.linear_sub_window_copy_data.tmz              = copy_data.tmz;
2190 	lsdma_data->u.linear_sub_window_copy_data.element_size     = copy_data.element_size;
2191 	lsdma_data->u.linear_sub_window_copy_data.src_lo           = copy_data.src_lo;
2192 	lsdma_data->u.linear_sub_window_copy_data.src_hi           = copy_data.src_hi;
2193 	lsdma_data->u.linear_sub_window_copy_data.src_x            = copy_data.src_x;
2194 	lsdma_data->u.linear_sub_window_copy_data.src_y            = copy_data.src_y;
2195 	lsdma_data->u.linear_sub_window_copy_data.src_pitch        = copy_data.src_pitch;
2196 	lsdma_data->u.linear_sub_window_copy_data.src_slice_pitch  = copy_data.src_slice_pitch;
2197 	lsdma_data->u.linear_sub_window_copy_data.dst_lo           = copy_data.dst_lo;
2198 	lsdma_data->u.linear_sub_window_copy_data.dst_hi           = copy_data.dst_hi;
2199 	lsdma_data->u.linear_sub_window_copy_data.dst_x            = copy_data.dst_x;
2200 	lsdma_data->u.linear_sub_window_copy_data.dst_y            = copy_data.dst_y;
2201 	lsdma_data->u.linear_sub_window_copy_data.dst_pitch        = copy_data.dst_pitch;
2202 	lsdma_data->u.linear_sub_window_copy_data.dst_slice_pitch  = copy_data.dst_slice_pitch;
2203 	lsdma_data->u.linear_sub_window_copy_data.rect_x           = copy_data.rect_x;
2204 	lsdma_data->u.linear_sub_window_copy_data.rect_y           = copy_data.rect_y;
2205 	lsdma_data->u.linear_sub_window_copy_data.src_cache_policy = copy_data.src_cache_policy;
2206 	lsdma_data->u.linear_sub_window_copy_data.dst_cache_policy = copy_data.dst_cache_policy;
2207 
2208 	result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type);
2209 
2210 	if (!result)
2211 		DC_ERROR("LSDMA Linear Sub Window Copy failed in DMUB");
2212 
2213 	return result;
2214 }
2215 
2216 bool dmub_lsdma_send_tiled_to_tiled_copy_command(
2217 	struct dc_dmub_srv *dc_dmub_srv,
2218 	struct lsdma_send_tiled_to_tiled_copy_command_params params
2219 )
2220 {
2221 	struct dc_context *dc_ctx = dc_dmub_srv->ctx;
2222 	union dmub_rb_cmd cmd;
2223 	enum dm_dmub_wait_type wait_type;
2224 	struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data;
2225 	bool result;
2226 
2227 	memset(&cmd, 0, sizeof(cmd));
2228 
2229 	cmd.cmd_common.header.type     = DMUB_CMD__LSDMA;
2230 	cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_TILED_TO_TILED_COPY;
2231 	wait_type                      = DM_DMUB_WAIT_TYPE_NO_WAIT;
2232 
2233 	lsdma_data->u.tiled_copy_data.src_addr_lo      = params.src_addr & 0xFFFFFFFF;
2234 	lsdma_data->u.tiled_copy_data.src_addr_hi      = (params.src_addr >> 32) & 0xFFFFFFFF;
2235 	lsdma_data->u.tiled_copy_data.dst_addr_lo      = params.dst_addr & 0xFFFFFFFF;
2236 	lsdma_data->u.tiled_copy_data.dst_addr_hi      = (params.dst_addr >> 32) & 0xFFFFFFFF;
2237 	lsdma_data->u.tiled_copy_data.src_x            = params.src_x;
2238 	lsdma_data->u.tiled_copy_data.src_y            = params.src_y;
2239 	lsdma_data->u.tiled_copy_data.dst_x            = params.dst_x;
2240 	lsdma_data->u.tiled_copy_data.dst_y            = params.dst_y;
2241 	lsdma_data->u.tiled_copy_data.src_width        = params.src_width;
2242 	lsdma_data->u.tiled_copy_data.dst_width        = params.dst_width;
2243 	lsdma_data->u.tiled_copy_data.src_swizzle_mode = params.swizzle_mode;
2244 	lsdma_data->u.tiled_copy_data.dst_swizzle_mode = params.swizzle_mode;
2245 	lsdma_data->u.tiled_copy_data.src_element_size = params.element_size;
2246 	lsdma_data->u.tiled_copy_data.dst_element_size = params.element_size;
2247 	lsdma_data->u.tiled_copy_data.rect_x           = params.rect_x;
2248 	lsdma_data->u.tiled_copy_data.rect_y           = params.rect_y;
2249 	lsdma_data->u.tiled_copy_data.dcc              = params.dcc;
2250 	lsdma_data->u.tiled_copy_data.tmz              = params.tmz;
2251 	lsdma_data->u.tiled_copy_data.read_compress    = params.read_compress;
2252 	lsdma_data->u.tiled_copy_data.write_compress   = params.write_compress;
2253 	lsdma_data->u.tiled_copy_data.src_height       = params.src_height;
2254 	lsdma_data->u.tiled_copy_data.dst_height       = params.dst_height;
2255 	lsdma_data->u.tiled_copy_data.data_format      = params.data_format;
2256 	lsdma_data->u.tiled_copy_data.max_com          = params.max_com;
2257 	lsdma_data->u.tiled_copy_data.max_uncom        = params.max_uncom;
2258 
2259 	result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type);
2260 
2261 	if (!result)
2262 		DC_ERROR("LSDMA Tiled to Tiled Copy failed in DMUB");
2263 
2264 	return result;
2265 }
2266 
2267 bool dmub_lsdma_send_pio_copy_command(
2268 	struct dc_dmub_srv *dc_dmub_srv,
2269 	uint64_t src_addr,
2270 	uint64_t dst_addr,
2271 	uint32_t byte_count,
2272 	uint32_t overlap_disable
2273 )
2274 {
2275 	struct dc_context *dc_ctx = dc_dmub_srv->ctx;
2276 	union dmub_rb_cmd cmd;
2277 	enum dm_dmub_wait_type wait_type;
2278 	struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data;
2279 	bool result;
2280 
2281 	memset(&cmd, 0, sizeof(cmd));
2282 
2283 	cmd.cmd_common.header.type     = DMUB_CMD__LSDMA;
2284 	cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_PIO_COPY;
2285 	wait_type                      = DM_DMUB_WAIT_TYPE_NO_WAIT;
2286 
2287 	lsdma_data->u.pio_copy_data.packet.fields.byte_count      = byte_count;
2288 	lsdma_data->u.pio_copy_data.packet.fields.overlap_disable = overlap_disable;
2289 	lsdma_data->u.pio_copy_data.src_lo                        = src_addr & 0xFFFFFFFF;
2290 	lsdma_data->u.pio_copy_data.src_hi                        = (src_addr >> 32) & 0xFFFFFFFF;
2291 	lsdma_data->u.pio_copy_data.dst_lo                        = dst_addr & 0xFFFFFFFF;
2292 	lsdma_data->u.pio_copy_data.dst_hi                        = (dst_addr >> 32) & 0xFFFFFFFF;
2293 
2294 	result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type);
2295 
2296 	if (!result)
2297 		DC_ERROR("LSDMA PIO Copy failed in DMUB");
2298 
2299 	return result;
2300 }
2301 
2302 bool dmub_lsdma_send_pio_constfill_command(
2303 	struct dc_dmub_srv *dc_dmub_srv,
2304 	uint64_t dst_addr,
2305 	uint32_t byte_count,
2306 	uint32_t data
2307 )
2308 {
2309 	struct dc_context *dc_ctx = dc_dmub_srv->ctx;
2310 	union dmub_rb_cmd cmd;
2311 	enum dm_dmub_wait_type wait_type;
2312 	struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data;
2313 	bool result;
2314 
2315 	memset(&cmd, 0, sizeof(cmd));
2316 
2317 	cmd.cmd_common.header.type     = DMUB_CMD__LSDMA;
2318 	cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_PIO_CONSTFILL;
2319 	wait_type                      = DM_DMUB_WAIT_TYPE_NO_WAIT;
2320 
2321 	lsdma_data->u.pio_constfill_data.packet.fields.constant_fill = 1;
2322 	lsdma_data->u.pio_constfill_data.packet.fields.byte_count    = byte_count;
2323 	lsdma_data->u.pio_constfill_data.dst_lo                      = dst_addr & 0xFFFFFFFF;
2324 	lsdma_data->u.pio_constfill_data.dst_hi                      = (dst_addr >> 32) & 0xFFFFFFFF;
2325 	lsdma_data->u.pio_constfill_data.data                        = data;
2326 
2327 	result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type);
2328 
2329 	if (!result)
2330 		DC_ERROR("LSDMA PIO Constfill failed in DMUB");
2331 
2332 	return result;
2333 }
2334 
2335 bool dmub_lsdma_send_poll_reg_write_command(struct dc_dmub_srv *dc_dmub_srv, uint32_t reg_addr, uint32_t reg_data)
2336 {
2337 	struct dc_context *dc_ctx = dc_dmub_srv->ctx;
2338 	union dmub_rb_cmd cmd;
2339 	enum dm_dmub_wait_type wait_type;
2340 	struct dmub_cmd_lsdma_data *lsdma_data = &cmd.lsdma.lsdma_data;
2341 	bool result;
2342 
2343 	memset(&cmd, 0, sizeof(cmd));
2344 
2345 	cmd.cmd_common.header.type     = DMUB_CMD__LSDMA;
2346 	cmd.cmd_common.header.sub_type = DMUB_CMD__LSDMA_POLL_REG_WRITE;
2347 	wait_type                      = DM_DMUB_WAIT_TYPE_NO_WAIT;
2348 
2349 	lsdma_data->u.reg_write_data.reg_addr = reg_addr;
2350 	lsdma_data->u.reg_write_data.reg_data = reg_data;
2351 
2352 	result = dc_wake_and_execute_dmub_cmd(dc_ctx, &cmd, wait_type);
2353 
2354 	if (!result)
2355 		DC_ERROR("LSDMA Poll Reg failed in DMUB");
2356 
2357 	return result;
2358 }
2359 
2360 bool dc_dmub_srv_is_cursor_offload_enabled(const struct dc *dc)
2361 {
2362 	return dc->ctx->dmub_srv && dc->ctx->dmub_srv->cursor_offload_enabled;
2363 }
2364 
2365 void dc_dmub_srv_boot_time_crc_init(const struct dc *dc, uint64_t gpu_addr, uint32_t size)
2366 {
2367 	struct dc_dmub_srv *dc_dmub_srv;
2368 	struct dc_context *dc_ctx;
2369 	union dmub_rb_cmd cmd = {0};
2370 	bool result = false;
2371 
2372 	if (!dc || !dc->ctx || !dc->ctx->dmub_srv || size == 0)
2373 		return;
2374 
2375 	dc_dmub_srv = dc->ctx->dmub_srv;
2376 	dc_ctx = dc_dmub_srv->ctx;
2377 
2378 	memset(&cmd, 0, sizeof(cmd));
2379 	cmd.boot_time_crc_init.header.type = DMUB_CMD__BOOT_TIME_CRC;
2380 	cmd.boot_time_crc_init.header.sub_type = DMUB_CMD__BOOT_TIME_CRC_INIT_MEM;
2381 	cmd.boot_time_crc_init.header.payload_bytes =
2382 		sizeof(struct dmub_rb_cmd_boot_time_crc_init);
2383 	cmd.boot_time_crc_init.data.buffer_addr.quad_part = gpu_addr;
2384 	cmd.boot_time_crc_init.data.buffer_size = size;
2385 
2386 	result = dc_wake_and_execute_dmub_cmd(dc->ctx, &cmd, DM_DMUB_WAIT_TYPE_NO_WAIT);
2387 
2388 	if (!result)
2389 		DC_ERROR("Boot time crc init failed in DMUB");
2390 }
2391 
2392 void dc_dmub_srv_release_hw(const struct dc *dc)
2393 {
2394 	struct dc_dmub_srv *dc_dmub_srv = dc->ctx->dmub_srv;
2395 	union dmub_rb_cmd cmd = {0};
2396 
2397 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
2398 		return;
2399 
2400 	memset(&cmd, 0, sizeof(cmd));
2401 	cmd.idle_opt_notify_idle.header.type = DMUB_CMD__IDLE_OPT;
2402 	cmd.idle_opt_notify_idle.header.sub_type = DMUB_CMD__IDLE_OPT_RELEASE_HW;
2403 	cmd.idle_opt_notify_idle.header.payload_bytes =
2404 		sizeof(cmd.idle_opt_notify_idle) -
2405 		sizeof(cmd.idle_opt_notify_idle.header);
2406 
2407 	dm_execute_dmub_cmd(dc->ctx, &cmd,  DM_DMUB_WAIT_TYPE_WAIT);
2408 }
2409 
2410 void dc_dmub_srv_log_preos_dmcub_info(struct dc_dmub_srv *dc_dmub_srv)
2411 {
2412 	struct dmub_srv *dmub;
2413 
2414 	if (!dc_dmub_srv || !dc_dmub_srv->dmub)
2415 		return;
2416 
2417 	dmub = dc_dmub_srv->dmub;
2418 
2419 	if (dmub_srv_get_preos_info(dmub)) {
2420 		DC_LOG_DEBUG("%s: PreOS DMCUB Info", __func__);
2421 		DC_LOG_DEBUG("fw_version				: 0x%08x", dmub->preos_info.fw_version);
2422 		DC_LOG_DEBUG("boot_options				: 0x%08x", dmub->preos_info.boot_options);
2423 		DC_LOG_DEBUG("boot_status				: 0x%08x", dmub->preos_info.boot_status);
2424 		DC_LOG_DEBUG("trace_buffer_phy_addr		: 0x%016llx", dmub->preos_info.trace_buffer_phy_addr);
2425 		DC_LOG_DEBUG("trace_buffer_size_bytes	: 0x%08x", dmub->preos_info.trace_buffer_size);
2426 		DC_LOG_DEBUG("fb_base					: 0x%016llx", dmub->preos_info.fb_base);
2427 		DC_LOG_DEBUG("fb_offset					: 0x%016llx", dmub->preos_info.fb_offset);
2428 	}
2429 }
2430