xref: /linux/drivers/gpu/drm/i915/display/intel_vrr.c (revision 88b8c6ae2ccb3ef9dbb04c8e13a4d1a98c42e922)
1 // SPDX-License-Identifier: MIT
2 /*
3  * Copyright © 2020 Intel Corporation
4  *
5  */
6 
7 #include <drm/drm_print.h>
8 
9 #include "intel_alpm.h"
10 #include "intel_crtc.h"
11 #include "intel_de.h"
12 #include "intel_display_regs.h"
13 #include "intel_display_types.h"
14 #include "intel_dmc.h"
15 #include "intel_dmc_regs.h"
16 #include "intel_dp.h"
17 #include "intel_psr.h"
18 #include "intel_vrr.h"
19 #include "intel_vrr_regs.h"
20 #include "skl_prefill.h"
21 #include "skl_watermark.h"
22 
23 #define FIXED_POINT_PRECISION		100
24 #define CMRR_PRECISION_TOLERANCE	10
25 
26 /*
27  * Tunable parameters for DC Balance correction.
28  * These are captured based on experimentations.
29  */
30 #define DCB_CORRECTION_SENSITIVITY	30
31 #define DCB_CORRECTION_AGGRESSIVENESS	1000 /* ms × 100; 10 ms */
32 #define DCB_BLANK_TARGET		50
33 
34 bool intel_vrr_is_capable(struct intel_connector *connector)
35 {
36 	struct intel_display *display = to_intel_display(connector);
37 	const struct drm_display_info *info = &connector->base.display_info;
38 	struct intel_dp *intel_dp;
39 
40 	if (!HAS_VRR(display))
41 		return false;
42 
43 	/*
44 	 * DP Sink is capable of VRR video timings if
45 	 * Ignore MSA bit is set in DPCD.
46 	 * EDID monitor range also should be atleast 10 for reasonable
47 	 * Adaptive Sync or Variable Refresh Rate end user experience.
48 	 */
49 	switch (connector->base.connector_type) {
50 	case DRM_MODE_CONNECTOR_eDP:
51 		if (!connector->panel.vbt.vrr)
52 			return false;
53 		fallthrough;
54 	case DRM_MODE_CONNECTOR_DisplayPort:
55 		if (connector->mst.dp)
56 			return false;
57 		intel_dp = intel_attached_dp(connector);
58 		/*
59 		 * Among non-MST DP branch devices, only an HDMI 2.1 sink connected
60 		 * via a PCON could support VRR. However, supporting VRR through a
61 		 * PCON requires non-trivial changes that are not implemented yet.
62 		 * Until that support exists, avoid VRR on all DP branch devices.
63 		 *
64 		 * TODO: Add support for VRR for DP->HDMI 2.1 PCON.
65 		 */
66 		if (drm_dp_is_branch(intel_dp->dpcd))
67 			return false;
68 
69 		if (!drm_dp_sink_can_do_video_without_timing_msa(intel_dp->dpcd))
70 			return false;
71 
72 		break;
73 	default:
74 		return false;
75 	}
76 
77 	if (!info->monitor_range.min_vfreq || !info->monitor_range.max_vfreq ||
78 	    info->monitor_range.min_vfreq > info->monitor_range.max_vfreq)
79 		return false;
80 
81 	return info->monitor_range.max_vfreq - info->monitor_range.min_vfreq > 10;
82 }
83 
84 bool intel_vrr_is_in_range(struct intel_connector *connector, int vrefresh)
85 {
86 	const struct drm_display_info *info = &connector->base.display_info;
87 
88 	return intel_vrr_is_capable(connector) &&
89 		vrefresh >= info->monitor_range.min_vfreq &&
90 		vrefresh <= info->monitor_range.max_vfreq;
91 }
92 
93 bool intel_vrr_possible(const struct intel_crtc_state *crtc_state)
94 {
95 	return crtc_state->vrr.flipline;
96 }
97 
98 void
99 intel_vrr_check_modeset(struct intel_atomic_state *state)
100 {
101 	struct intel_crtc_state *old_crtc_state, *new_crtc_state;
102 	struct intel_crtc *crtc;
103 
104 	for_each_oldnew_intel_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state) {
105 		if (new_crtc_state->uapi.vrr_enabled !=
106 		    old_crtc_state->uapi.vrr_enabled)
107 			new_crtc_state->uapi.mode_changed = true;
108 	}
109 }
110 
111 static int intel_vrr_extra_vblank_delay(struct intel_display *display)
112 {
113 	/*
114 	 * On ICL/TGL VRR hardware inserts one extra scanline
115 	 * just after vactive, which pushes the vmin decision
116 	 * boundary ahead accordingly, and thus reduces the
117 	 * max guardband length by one scanline.
118 	 */
119 	return DISPLAY_VER(display) < 13 ? 1 : 0;
120 }
121 
122 static int intel_vrr_vmin_flipline_offset(struct intel_display *display)
123 {
124 	/*
125 	 * ICL/TGL hardware imposes flipline>=vmin+1
126 	 *
127 	 * We reduce the vmin value to compensate when programming the
128 	 * hardware. This approach allows flipline to remain set at the
129 	 * original value, and thus the frame will have the desired
130 	 * minimum vtotal.
131 	 */
132 	return DISPLAY_VER(display) < 13 ? 1 : 0;
133 }
134 
135 static int intel_vrr_guardband_to_pipeline_full(const struct intel_crtc_state *crtc_state,
136 						int guardband)
137 {
138 	/* hardware imposes one extra scanline somewhere */
139 	return guardband - crtc_state->framestart_delay - 1;
140 }
141 
142 static int intel_vrr_pipeline_full_to_guardband(const struct intel_crtc_state *crtc_state,
143 						int pipeline_full)
144 {
145 	/* hardware imposes one extra scanline somewhere */
146 	return pipeline_full + crtc_state->framestart_delay + 1;
147 }
148 
149 /*
150  * Without VRR registers get latched at:
151  *  vblank_start
152  *
153  * With VRR the earliest registers can get latched is:
154  *  intel_vrr_vmin_vblank_start(), which if we want to maintain
155  *  the correct min vtotal is >=vblank_start+1
156  *
157  * The latest point registers can get latched is the vmax decision boundary:
158  *  intel_vrr_vmax_vblank_start()
159  *
160  * Between those two points the vblank exit starts (and hence registers get
161  * latched) ASAP after a push is sent.
162  *
163  * framestart_delay is programmable 1-4.
164  */
165 
166 int intel_vrr_vmin_vtotal(const struct intel_crtc_state *crtc_state)
167 {
168 	/* Min vblank actually determined by flipline */
169 	return crtc_state->vrr.vmin;
170 }
171 
172 int intel_vrr_vmax_vtotal(const struct intel_crtc_state *crtc_state)
173 {
174 	return crtc_state->vrr.vmax;
175 }
176 
177 int intel_vrr_vmin_vblank_start(const struct intel_crtc_state *crtc_state)
178 {
179 	return intel_vrr_vmin_vtotal(crtc_state) - crtc_state->vrr.guardband;
180 }
181 
182 int intel_vrr_vmax_vblank_start(const struct intel_crtc_state *crtc_state)
183 {
184 	return intel_vrr_vmax_vtotal(crtc_state) - crtc_state->vrr.guardband;
185 }
186 
187 static bool
188 is_cmrr_frac_required(struct intel_crtc_state *crtc_state)
189 {
190 	struct intel_display *display = to_intel_display(crtc_state);
191 	int calculated_refresh_k, actual_refresh_k, pixel_clock_per_line;
192 	struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode;
193 
194 	/* Avoid CMRR for now till we have VRR with fixed timings working */
195 	if (!HAS_CMRR(display) || true)
196 		return false;
197 
198 	actual_refresh_k =
199 		drm_mode_vrefresh(adjusted_mode) * FIXED_POINT_PRECISION;
200 	pixel_clock_per_line =
201 		adjusted_mode->crtc_clock * 1000 / adjusted_mode->crtc_htotal;
202 	calculated_refresh_k =
203 		pixel_clock_per_line * FIXED_POINT_PRECISION / adjusted_mode->crtc_vtotal;
204 
205 	if ((actual_refresh_k - calculated_refresh_k) < CMRR_PRECISION_TOLERANCE)
206 		return false;
207 
208 	return true;
209 }
210 
211 static unsigned int
212 cmrr_get_vtotal(struct intel_crtc_state *crtc_state, bool video_mode_required)
213 {
214 	int multiplier_m = 1, multiplier_n = 1, vtotal, desired_refresh_rate;
215 	u64 adjusted_pixel_rate;
216 	struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode;
217 
218 	desired_refresh_rate = drm_mode_vrefresh(adjusted_mode);
219 
220 	if (video_mode_required) {
221 		multiplier_m = 1001;
222 		multiplier_n = 1000;
223 	}
224 
225 	crtc_state->cmrr.cmrr_n = mul_u32_u32(desired_refresh_rate * adjusted_mode->crtc_htotal,
226 					      multiplier_n);
227 	vtotal = DIV_ROUND_UP_ULL(mul_u32_u32(adjusted_mode->crtc_clock * 1000, multiplier_n),
228 				  crtc_state->cmrr.cmrr_n);
229 	adjusted_pixel_rate = mul_u32_u32(adjusted_mode->crtc_clock * 1000, multiplier_m);
230 	crtc_state->cmrr.cmrr_m = do_div(adjusted_pixel_rate, crtc_state->cmrr.cmrr_n);
231 
232 	return vtotal;
233 }
234 
235 static
236 void intel_vrr_compute_cmrr_timings(struct intel_crtc_state *crtc_state)
237 {
238 	/*
239 	 * TODO: Compute precise target refresh rate to determine
240 	 * if video_mode_required should be true. Currently set to
241 	 * false due to uncertainty about the precise target
242 	 * refresh Rate.
243 	 */
244 	crtc_state->vrr.vmax = cmrr_get_vtotal(crtc_state, false);
245 	crtc_state->vrr.vmin = crtc_state->vrr.vmax;
246 	crtc_state->vrr.flipline = crtc_state->vrr.vmin;
247 
248 	crtc_state->cmrr.enable = true;
249 	crtc_state->mode_flags |= I915_MODE_FLAG_VRR;
250 }
251 
252 static
253 void intel_vrr_compute_vrr_timings(struct intel_crtc_state *crtc_state,
254 				   int vmin, int vmax)
255 {
256 	crtc_state->vrr.vmax = vmax;
257 	crtc_state->vrr.vmin = vmin;
258 	crtc_state->vrr.flipline = crtc_state->vrr.vmin;
259 
260 	crtc_state->vrr.enable = true;
261 	crtc_state->mode_flags |= I915_MODE_FLAG_VRR;
262 }
263 
264 static
265 void intel_vrr_compute_fixed_rr_timings(struct intel_crtc_state *crtc_state)
266 {
267 	/* For fixed rr,  vmin = vmax = flipline */
268 	crtc_state->vrr.vmax = crtc_state->hw.adjusted_mode.crtc_vtotal;
269 	crtc_state->vrr.vmin = crtc_state->vrr.vmax;
270 	crtc_state->vrr.flipline = crtc_state->vrr.vmin;
271 }
272 
273 static int intel_vrr_hw_value(const struct intel_crtc_state *crtc_state,
274 			      int value)
275 {
276 	struct intel_display *display = to_intel_display(crtc_state);
277 
278 	/*
279 	 * On TGL vmin/vmax/flipline also need to be
280 	 * adjusted by the SCL to maintain correct vtotals.
281 	 */
282 	if (DISPLAY_VER(display) >= 13)
283 		return value;
284 	else
285 		return value - crtc_state->set_context_latency;
286 }
287 
288 static int intel_vrr_vblank_start(const struct intel_crtc_state *crtc_state,
289 				  int vmin_vmax)
290 {
291 	return intel_vrr_hw_value(crtc_state, vmin_vmax) - crtc_state->vrr.guardband;
292 }
293 
294 /*
295  * For fixed refresh rate mode Vmin, Vmax and Flipline all are set to
296  * Vtotal value.
297  */
298 static
299 int intel_vrr_fixed_rr_hw_vtotal(const struct intel_crtc_state *crtc_state)
300 {
301 	return intel_vrr_hw_value(crtc_state, crtc_state->hw.adjusted_mode.crtc_vtotal);
302 }
303 
304 static
305 int intel_vrr_fixed_rr_hw_vmax(const struct intel_crtc_state *crtc_state)
306 {
307 	return intel_vrr_fixed_rr_hw_vtotal(crtc_state);
308 }
309 
310 static
311 int intel_vrr_fixed_rr_hw_vmin(const struct intel_crtc_state *crtc_state)
312 {
313 	struct intel_display *display = to_intel_display(crtc_state);
314 
315 	return intel_vrr_fixed_rr_hw_vtotal(crtc_state) -
316 		intel_vrr_vmin_flipline_offset(display);
317 }
318 
319 static
320 int intel_vrr_fixed_rr_hw_flipline(const struct intel_crtc_state *crtc_state)
321 {
322 	return intel_vrr_fixed_rr_hw_vtotal(crtc_state);
323 }
324 
325 void intel_vrr_set_fixed_rr_timings(const struct intel_crtc_state *crtc_state)
326 {
327 	struct intel_display *display = to_intel_display(crtc_state);
328 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
329 
330 	if (!intel_vrr_possible(crtc_state))
331 		return;
332 
333 	intel_de_write(display, TRANS_VRR_VMIN(display, cpu_transcoder),
334 		       intel_vrr_fixed_rr_hw_vmin(crtc_state) - 1);
335 	intel_de_write(display, TRANS_VRR_VMAX(display, cpu_transcoder),
336 		       intel_vrr_fixed_rr_hw_vmax(crtc_state) - 1);
337 	intel_de_write(display, TRANS_VRR_FLIPLINE(display, cpu_transcoder),
338 		       intel_vrr_fixed_rr_hw_flipline(crtc_state) - 1);
339 }
340 
341 static
342 int intel_vrr_compute_vmin(struct intel_crtc_state *crtc_state)
343 {
344 	/*
345 	 * To make fixed rr and vrr work seamless the guardband/pipeline full
346 	 * should be set such that it satisfies both the fixed and variable
347 	 * timings.
348 	 * For this set the vmin as crtc_vtotal. With this we never need to
349 	 * change anything to do with the guardband.
350 	 */
351 	return crtc_state->hw.adjusted_mode.crtc_vtotal;
352 }
353 
354 static
355 int intel_vrr_compute_vmax(struct intel_connector *connector,
356 			   const struct drm_display_mode *adjusted_mode)
357 {
358 	const struct drm_display_info *info = &connector->base.display_info;
359 	int vmax;
360 
361 	vmax = adjusted_mode->crtc_clock * 1000 /
362 		(adjusted_mode->crtc_htotal * info->monitor_range.min_vfreq);
363 	vmax = max_t(int, vmax, adjusted_mode->crtc_vtotal);
364 
365 	return vmax;
366 }
367 
368 static bool intel_vrr_dc_balance_possible(const struct intel_crtc_state *crtc_state)
369 {
370 	struct intel_display *display = to_intel_display(crtc_state);
371 	struct intel_crtc *crtc = to_intel_crtc(crtc_state->uapi.crtc);
372 	enum pipe pipe = crtc->pipe;
373 
374 	/*
375 	 * FIXME: Currently Firmware supports DC Balancing on PIPE A
376 	 * and PIPE B. Account those limitation while computing DC
377 	 * Balance parameters.
378 	 */
379 	return (HAS_VRR_DC_BALANCE(display) &&
380 		((pipe == PIPE_A) || (pipe == PIPE_B)));
381 }
382 
383 static void
384 intel_vrr_dc_balance_compute_config(struct intel_crtc_state *crtc_state)
385 {
386 	int guardband_usec, adjustment_usec;
387 	struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode;
388 
389 	if (!intel_vrr_dc_balance_possible(crtc_state) || !crtc_state->vrr.enable)
390 		return;
391 
392 	crtc_state->vrr.dc_balance.vmax = crtc_state->vrr.vmax;
393 	crtc_state->vrr.dc_balance.vmin = crtc_state->vrr.vmin;
394 	crtc_state->vrr.dc_balance.max_increase =
395 		crtc_state->vrr.vmax - crtc_state->vrr.vmin;
396 	crtc_state->vrr.dc_balance.max_decrease =
397 		crtc_state->vrr.vmax - crtc_state->vrr.vmin;
398 	crtc_state->vrr.dc_balance.guardband =
399 		DIV_ROUND_UP(crtc_state->vrr.dc_balance.vmax *
400 			     DCB_CORRECTION_SENSITIVITY, 100);
401 	guardband_usec =
402 		intel_scanlines_to_usecs(adjusted_mode,
403 					 crtc_state->vrr.dc_balance.guardband);
404 	/*
405 	 *  The correction_aggressiveness/100 is the number of milliseconds to
406 	 *  adjust by when the balance is at twice the guardband.
407 	 *  guardband_slope = correction_aggressiveness / (guardband * 100)
408 	 */
409 	adjustment_usec = DCB_CORRECTION_AGGRESSIVENESS * 10;
410 	crtc_state->vrr.dc_balance.slope =
411 		DIV_ROUND_UP(adjustment_usec, guardband_usec);
412 	crtc_state->vrr.dc_balance.vblank_target =
413 		DIV_ROUND_UP((crtc_state->vrr.vmax - crtc_state->vrr.vmin) *
414 			     DCB_BLANK_TARGET, 100);
415 	crtc_state->vrr.dc_balance.enable = true;
416 }
417 
418 void
419 intel_vrr_compute_config(struct intel_crtc_state *crtc_state,
420 			 struct drm_connector_state *conn_state)
421 {
422 	struct intel_display *display = to_intel_display(crtc_state);
423 	struct intel_connector *connector =
424 		to_intel_connector(conn_state->connector);
425 	struct intel_dp *intel_dp = intel_attached_dp(connector);
426 	bool is_edp = intel_dp_is_edp(intel_dp);
427 	struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode;
428 	int vmin, vmax;
429 
430 	if (!HAS_VRR(display))
431 		return;
432 
433 	if (adjusted_mode->flags & DRM_MODE_FLAG_INTERLACE)
434 		return;
435 
436 	crtc_state->vrr.in_range =
437 		intel_vrr_is_in_range(connector, drm_mode_vrefresh(adjusted_mode));
438 
439 	/*
440 	 * Allow fixed refresh rate with VRR Timing Generator.
441 	 * For now set the vrr.in_range to 0, to allow fixed_rr but skip actual
442 	 * VRR and LRR.
443 	 * #TODO For actual VRR with joiner, we need to figure out how to
444 	 * correctly sequence transcoder level stuff vs. pipe level stuff
445 	 * in the commit.
446 	 */
447 	if (crtc_state->joiner_pipes)
448 		crtc_state->vrr.in_range = false;
449 
450 	vmin = intel_vrr_compute_vmin(crtc_state);
451 
452 	if (crtc_state->vrr.in_range) {
453 		if (HAS_LRR(display))
454 			crtc_state->update_lrr = true;
455 		vmax = intel_vrr_compute_vmax(connector, adjusted_mode);
456 	} else {
457 		vmax = vmin;
458 	}
459 
460 	if (crtc_state->uapi.vrr_enabled && vmin < vmax)
461 		intel_vrr_compute_vrr_timings(crtc_state, vmin, vmax);
462 	else if (is_cmrr_frac_required(crtc_state) && is_edp)
463 		intel_vrr_compute_cmrr_timings(crtc_state);
464 	else
465 		intel_vrr_compute_fixed_rr_timings(crtc_state);
466 
467 	if (HAS_AS_SDP(display)) {
468 		crtc_state->vrr.vsync_start =
469 			(crtc_state->hw.adjusted_mode.crtc_vtotal -
470 			 crtc_state->hw.adjusted_mode.crtc_vsync_start);
471 		crtc_state->vrr.vsync_end =
472 			(crtc_state->hw.adjusted_mode.crtc_vtotal -
473 			 crtc_state->hw.adjusted_mode.crtc_vsync_end);
474 	}
475 
476 	intel_vrr_dc_balance_compute_config(crtc_state);
477 }
478 
479 static int
480 intel_vrr_max_hw_guardband(const struct intel_crtc_state *crtc_state)
481 {
482 	struct intel_display *display = to_intel_display(crtc_state);
483 	int max_pipeline_full = REG_FIELD_MAX(VRR_CTL_PIPELINE_FULL_MASK);
484 
485 	if (DISPLAY_VER(display) >= 13)
486 		return REG_FIELD_MAX(XELPD_VRR_CTL_VRR_GUARDBAND_MASK);
487 	else
488 		return intel_vrr_pipeline_full_to_guardband(crtc_state,
489 							    max_pipeline_full);
490 }
491 
492 static int
493 intel_vrr_max_vblank_guardband(const struct intel_crtc_state *crtc_state)
494 {
495 	struct intel_display *display = to_intel_display(crtc_state);
496 	const struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode;
497 
498 	return crtc_state->vrr.vmin -
499 	       adjusted_mode->crtc_vdisplay -
500 	       crtc_state->set_context_latency -
501 	       intel_vrr_extra_vblank_delay(display);
502 }
503 
504 static int
505 intel_vrr_max_guardband(struct intel_crtc_state *crtc_state)
506 {
507 	return min(intel_vrr_max_hw_guardband(crtc_state),
508 		   intel_vrr_max_vblank_guardband(crtc_state));
509 }
510 
511 static
512 int intel_vrr_compute_optimized_guardband(struct intel_crtc_state *crtc_state)
513 {
514 	struct intel_display *display = to_intel_display(crtc_state);
515 	struct skl_prefill_ctx prefill_ctx;
516 	int prefill_latency_us;
517 	int guardband = 0;
518 
519 	skl_prefill_init_worst(&prefill_ctx, crtc_state);
520 
521 	/*
522 	 * The SoC power controller runs SAGV mutually exclusive with package C states,
523 	 * so the max of package C and SAGV latencies is used to compute the min prefill guardband.
524 	 * PM delay = max(sagv_latency, pkgc_max_latency (highest enabled wm level 1 and up))
525 	 */
526 	prefill_latency_us = max(display->sagv.block_time_us,
527 				 skl_watermark_max_latency(display, 1));
528 
529 	guardband = skl_prefill_min_guardband(&prefill_ctx,
530 					      crtc_state,
531 					      prefill_latency_us);
532 
533 	if (intel_crtc_has_dp_encoder(crtc_state)) {
534 		guardband = max(guardband, intel_psr_min_guardband(crtc_state));
535 		guardband = max(guardband, intel_dp_sdp_min_guardband(crtc_state, true));
536 		guardband = max(guardband, intel_alpm_lobf_min_guardband(crtc_state));
537 	}
538 
539 	return guardband;
540 }
541 
542 static bool intel_vrr_use_optimized_guardband(const struct intel_crtc_state *crtc_state)
543 {
544 	/*
545 	 * #TODO: Enable optimized guardband for HDMI
546 	 * For HDMI lot of infoframes are transmitted a line or two after vsync.
547 	 * Since with optimized guardband the double bufferring point is at delayed vblank,
548 	 * we need to ensure that vsync happens after delayed vblank for the HDMI case.
549 	 */
550 	if (intel_crtc_has_type(crtc_state, INTEL_OUTPUT_HDMI))
551 		return false;
552 
553 	return true;
554 }
555 
556 void intel_vrr_compute_guardband(struct intel_crtc_state *crtc_state)
557 {
558 	struct intel_display *display = to_intel_display(crtc_state);
559 	struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode;
560 	struct drm_display_mode *pipe_mode = &crtc_state->hw.pipe_mode;
561 	int guardband;
562 
563 	if (!intel_vrr_possible(crtc_state))
564 		return;
565 
566 	if (intel_vrr_use_optimized_guardband(crtc_state))
567 		guardband = intel_vrr_compute_optimized_guardband(crtc_state);
568 	else
569 		guardband = crtc_state->vrr.vmin - adjusted_mode->crtc_vdisplay;
570 
571 	crtc_state->vrr.guardband = min(guardband, intel_vrr_max_guardband(crtc_state));
572 
573 	if (intel_vrr_always_use_vrr_tg(display)) {
574 		adjusted_mode->crtc_vblank_start  =
575 			adjusted_mode->crtc_vtotal - crtc_state->vrr.guardband;
576 		/*
577 		 * pipe_mode has already been derived from the
578 		 * original adjusted_mode, keep the two in sync.
579 		 */
580 		pipe_mode->crtc_vblank_start =
581 			adjusted_mode->crtc_vblank_start;
582 	}
583 
584 	if (DISPLAY_VER(display) < 13)
585 		crtc_state->vrr.pipeline_full =
586 			intel_vrr_guardband_to_pipeline_full(crtc_state,
587 							     crtc_state->vrr.guardband);
588 }
589 
590 static u32 trans_vrr_ctl(const struct intel_crtc_state *crtc_state)
591 {
592 	struct intel_display *display = to_intel_display(crtc_state);
593 
594 	if (DISPLAY_VER(display) >= 14)
595 		return VRR_CTL_FLIP_LINE_EN |
596 			XELPD_VRR_CTL_VRR_GUARDBAND(crtc_state->vrr.guardband);
597 	else if (DISPLAY_VER(display) >= 13)
598 		return VRR_CTL_IGN_MAX_SHIFT | VRR_CTL_FLIP_LINE_EN |
599 			XELPD_VRR_CTL_VRR_GUARDBAND(crtc_state->vrr.guardband);
600 	else
601 		return VRR_CTL_IGN_MAX_SHIFT | VRR_CTL_FLIP_LINE_EN |
602 			VRR_CTL_PIPELINE_FULL(crtc_state->vrr.pipeline_full) |
603 			VRR_CTL_PIPELINE_FULL_OVERRIDE;
604 }
605 
606 void intel_vrr_set_transcoder_timings(const struct intel_crtc_state *crtc_state)
607 {
608 	struct intel_display *display = to_intel_display(crtc_state);
609 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
610 
611 	if (!HAS_VRR(display))
612 		return;
613 
614 	/*
615 	 * Bspec says:
616 	 * "(note: VRR needs to be programmed after
617 	 *  TRANS_DDI_FUNC_CTL and before TRANS_CONF)."
618 	 *
619 	 * In practice it turns out that ICL can hang if
620 	 * TRANS_VRR_VMAX/FLIPLINE are written before
621 	 * enabling TRANS_DDI_FUNC_CTL.
622 	 */
623 	drm_WARN_ON(display->drm,
624 		    !(intel_de_read(display, TRANS_DDI_FUNC_CTL(display, cpu_transcoder)) & TRANS_DDI_FUNC_ENABLE));
625 
626 	/*
627 	 * This bit seems to have two meanings depending on the platform:
628 	 * TGL: generate VRR "safe window" for DSB vblank waits
629 	 * ADL/DG2: make TRANS_SET_CONTEXT_LATENCY effective with VRR
630 	 */
631 	if (IS_DISPLAY_VER(display, 12, 13))
632 		intel_de_rmw(display, CHICKEN_TRANS(display, cpu_transcoder),
633 			     0, PIPE_VBLANK_WITH_DELAY);
634 
635 	if (!intel_vrr_possible(crtc_state)) {
636 		intel_de_write(display,
637 			       TRANS_VRR_CTL(display, cpu_transcoder), 0);
638 		return;
639 	}
640 
641 	if (crtc_state->cmrr.enable) {
642 		intel_de_write(display, TRANS_CMRR_M_HI(display, cpu_transcoder),
643 			       upper_32_bits(crtc_state->cmrr.cmrr_m));
644 		intel_de_write(display, TRANS_CMRR_M_LO(display, cpu_transcoder),
645 			       lower_32_bits(crtc_state->cmrr.cmrr_m));
646 		intel_de_write(display, TRANS_CMRR_N_HI(display, cpu_transcoder),
647 			       upper_32_bits(crtc_state->cmrr.cmrr_n));
648 		intel_de_write(display, TRANS_CMRR_N_LO(display, cpu_transcoder),
649 			       lower_32_bits(crtc_state->cmrr.cmrr_n));
650 	}
651 
652 	intel_vrr_set_fixed_rr_timings(crtc_state);
653 
654 	if (!intel_vrr_always_use_vrr_tg(display))
655 		intel_de_write(display, TRANS_VRR_CTL(display, cpu_transcoder),
656 			       trans_vrr_ctl(crtc_state));
657 
658 	if (HAS_AS_SDP(display))
659 		intel_de_write(display,
660 			       TRANS_VRR_VSYNC(display, cpu_transcoder),
661 			       VRR_VSYNC_END(crtc_state->vrr.vsync_end) |
662 			       VRR_VSYNC_START(crtc_state->vrr.vsync_start));
663 
664 	/*
665 	 * For BMG and LNL+ onwards the EMP_AS_SDP_TL is used for programming
666 	 * double buffering point and transmission line for VRR packets for
667 	 * HDMI2.1/DP/eDP/DP->HDMI2.1 PCON.
668 	 * Since currently we support VRR only for DP/eDP, so this is programmed
669 	 * to for Adaptive Sync SDP to Vsync start.
670 	 */
671 	if (DISPLAY_VERx100(display) == 1401 || DISPLAY_VER(display) >= 20)
672 		intel_de_write(display,
673 			       EMP_AS_SDP_TL(display, cpu_transcoder),
674 			       EMP_AS_SDP_DB_TL(crtc_state->vrr.vsync_start));
675 }
676 
677 void
678 intel_vrr_dcb_increment_flip_count(struct intel_crtc_state *crtc_state,
679 				   struct intel_crtc *crtc)
680 {
681 	struct intel_display *display = to_intel_display(crtc_state);
682 	enum pipe pipe = crtc->pipe;
683 
684 	if (!crtc_state->vrr.dc_balance.enable)
685 		return;
686 
687 	intel_de_write(display, PIPEDMC_DCB_FLIP_COUNT(pipe),
688 		       ++crtc->dc_balance.flip_count);
689 }
690 
691 void
692 intel_vrr_dcb_reset(const struct intel_crtc_state *old_crtc_state,
693 		    struct intel_crtc *crtc)
694 {
695 	struct intel_display *display = to_intel_display(old_crtc_state);
696 	enum pipe pipe = crtc->pipe;
697 
698 	if (!old_crtc_state->vrr.dc_balance.enable)
699 		return;
700 
701 	intel_de_write(display, PIPEDMC_DCB_FLIP_COUNT(pipe), 0);
702 	intel_de_write(display, PIPEDMC_DCB_BALANCE_RESET(pipe), 0);
703 }
704 
705 static u32 trans_vrr_push(const struct intel_crtc_state *crtc_state,
706 			  bool send_push)
707 {
708 	struct intel_display *display = to_intel_display(crtc_state);
709 	u32 trans_vrr_push = 0;
710 
711 	if (intel_vrr_always_use_vrr_tg(display) ||
712 	    crtc_state->vrr.enable)
713 		trans_vrr_push |= TRANS_PUSH_EN;
714 
715 	if (send_push)
716 		trans_vrr_push |= TRANS_PUSH_SEND;
717 
718 	if (HAS_PSR_TRANS_PUSH_FRAME_CHANGE(display))
719 		trans_vrr_push |= LNL_TRANS_PUSH_PSR_PR_EN;
720 
721 	return trans_vrr_push;
722 }
723 
724 void intel_vrr_send_push(struct intel_dsb *dsb,
725 			 const struct intel_crtc_state *crtc_state)
726 {
727 	struct intel_display *display = to_intel_display(crtc_state);
728 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
729 
730 	if (!crtc_state->vrr.enable && !intel_psr_use_trans_push(crtc_state))
731 		return;
732 
733 	if (dsb)
734 		intel_dsb_nonpost_start(dsb);
735 
736 	intel_de_write_dsb(display, dsb,
737 			   TRANS_PUSH(display, cpu_transcoder),
738 			   trans_vrr_push(crtc_state, true));
739 	if (dsb)
740 		intel_dsb_nonpost_end(dsb);
741 }
742 
743 void intel_vrr_check_push_sent(struct intel_dsb *dsb,
744 			       const struct intel_crtc_state *crtc_state)
745 {
746 	struct intel_display *display = to_intel_display(crtc_state);
747 	struct intel_crtc *crtc = to_intel_crtc(crtc_state->uapi.crtc);
748 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
749 
750 	if (!crtc_state->vrr.enable)
751 		return;
752 
753 	/*
754 	 * Make sure the push send bit has cleared. This should
755 	 * already be the case as long as the caller makes sure
756 	 * this is called after the delayed vblank has occurred.
757 	 */
758 	if (dsb) {
759 		int wait_us, count;
760 
761 		wait_us = 2;
762 		count = 1;
763 
764 		/*
765 		 * If the bit hasn't cleared the DSB will
766 		 * raise the poll error interrupt.
767 		 */
768 		intel_dsb_poll(dsb, TRANS_PUSH(display, cpu_transcoder),
769 			       TRANS_PUSH_SEND, 0, wait_us, count);
770 	} else {
771 		if (intel_vrr_is_push_sent(crtc_state))
772 			drm_err(display->drm, "[CRTC:%d:%s] VRR push send still pending\n",
773 				crtc->base.base.id, crtc->base.name);
774 	}
775 }
776 
777 bool intel_vrr_is_push_sent(const struct intel_crtc_state *crtc_state)
778 {
779 	struct intel_display *display = to_intel_display(crtc_state);
780 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
781 
782 	if (!crtc_state->vrr.enable)
783 		return false;
784 
785 	return intel_de_read(display, TRANS_PUSH(display, cpu_transcoder)) & TRANS_PUSH_SEND;
786 }
787 
788 bool intel_vrr_always_use_vrr_tg(struct intel_display *display)
789 {
790 	if (!HAS_VRR(display))
791 		return false;
792 
793 	if (DISPLAY_VER(display) >= 30)
794 		return true;
795 
796 	return false;
797 }
798 
799 static int intel_vrr_hw_vmin(const struct intel_crtc_state *crtc_state)
800 {
801 	struct intel_display *display = to_intel_display(crtc_state);
802 
803 	return intel_vrr_hw_value(crtc_state, crtc_state->vrr.vmin) -
804 		intel_vrr_vmin_flipline_offset(display);
805 }
806 
807 static int intel_vrr_hw_vmax(const struct intel_crtc_state *crtc_state)
808 {
809 	return intel_vrr_hw_value(crtc_state, crtc_state->vrr.vmax);
810 }
811 
812 static int intel_vrr_hw_flipline(const struct intel_crtc_state *crtc_state)
813 {
814 	return intel_vrr_hw_value(crtc_state, crtc_state->vrr.flipline);
815 }
816 
817 static void intel_vrr_set_vrr_timings(const struct intel_crtc_state *crtc_state)
818 {
819 	struct intel_display *display = to_intel_display(crtc_state);
820 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
821 
822 	intel_de_write(display, TRANS_VRR_VMIN(display, cpu_transcoder),
823 		       intel_vrr_hw_vmin(crtc_state) - 1);
824 	intel_de_write(display, TRANS_VRR_VMAX(display, cpu_transcoder),
825 		       intel_vrr_hw_vmax(crtc_state) - 1);
826 	intel_de_write(display, TRANS_VRR_FLIPLINE(display, cpu_transcoder),
827 		       intel_vrr_hw_flipline(crtc_state) - 1);
828 }
829 
830 static void
831 intel_vrr_enable_dc_balancing(const struct intel_crtc_state *crtc_state)
832 {
833 	struct intel_display *display = to_intel_display(crtc_state);
834 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
835 	struct intel_crtc *crtc = to_intel_crtc(crtc_state->uapi.crtc);
836 	enum pipe pipe = crtc->pipe;
837 	u32 vrr_ctl = intel_de_read(display, TRANS_VRR_CTL(display, cpu_transcoder));
838 
839 	if (!crtc_state->vrr.dc_balance.enable)
840 		return;
841 
842 	intel_de_write(display, TRANS_VRR_DCB_ADJ_VMAX_CFG(cpu_transcoder),
843 		       VRR_DCB_ADJ_VMAX(crtc_state->vrr.vmax - 1));
844 	intel_de_write(display, TRANS_VRR_DCB_ADJ_VMAX_CFG_LIVE(cpu_transcoder),
845 		       VRR_DCB_ADJ_VMAX(crtc_state->vrr.vmax - 1));
846 	intel_de_write(display, TRANS_VRR_DCB_VMAX(cpu_transcoder),
847 		       VRR_DCB_VMAX(crtc_state->vrr.vmax - 1));
848 	intel_de_write(display, TRANS_VRR_DCB_VMAX_LIVE(cpu_transcoder),
849 		       VRR_DCB_VMAX(crtc_state->vrr.vmax - 1));
850 	intel_de_write(display, TRANS_VRR_DCB_FLIPLINE(cpu_transcoder),
851 		       VRR_DCB_FLIPLINE(crtc_state->vrr.flipline - 1));
852 	intel_de_write(display, TRANS_VRR_DCB_FLIPLINE_LIVE(cpu_transcoder),
853 		       VRR_DCB_FLIPLINE(crtc_state->vrr.flipline - 1));
854 	intel_de_write(display, TRANS_VRR_DCB_ADJ_FLIPLINE_CFG_LIVE(cpu_transcoder),
855 		       VRR_DCB_ADJ_FLIPLINE(crtc_state->vrr.flipline - 1));
856 	intel_de_write(display, TRANS_VRR_DCB_ADJ_FLIPLINE_CFG(cpu_transcoder),
857 		       VRR_DCB_ADJ_FLIPLINE(crtc_state->vrr.flipline - 1));
858 	intel_de_write(display, PIPEDMC_DCB_VMIN(pipe),
859 		       crtc_state->vrr.dc_balance.vmin - 1);
860 	intel_de_write(display, PIPEDMC_DCB_VMAX(pipe),
861 		       crtc_state->vrr.dc_balance.vmax - 1);
862 	intel_de_write(display, PIPEDMC_DCB_MAX_INCREASE(pipe),
863 		       crtc_state->vrr.dc_balance.max_increase);
864 	intel_de_write(display, PIPEDMC_DCB_MAX_DECREASE(pipe),
865 		       crtc_state->vrr.dc_balance.max_decrease);
866 	intel_de_write(display, PIPEDMC_DCB_GUARDBAND(pipe),
867 		       crtc_state->vrr.dc_balance.guardband);
868 	intel_de_write(display, PIPEDMC_DCB_SLOPE(pipe),
869 		       crtc_state->vrr.dc_balance.slope);
870 	intel_de_write(display, PIPEDMC_DCB_VBLANK(pipe),
871 		       crtc_state->vrr.dc_balance.vblank_target);
872 	intel_dmc_configure_dc_balance_event(display, pipe, true);
873 	intel_de_write(display, TRANS_ADAPTIVE_SYNC_DCB_CTL(cpu_transcoder),
874 		       ADAPTIVE_SYNC_COUNTER_EN);
875 	intel_pipedmc_dcb_enable(NULL, crtc);
876 
877 	vrr_ctl |= VRR_CTL_DCB_ADJ_ENABLE;
878 	intel_de_write(display, TRANS_VRR_CTL(display, cpu_transcoder), vrr_ctl);
879 }
880 
881 static void
882 intel_vrr_disable_dc_balancing(const struct intel_crtc_state *old_crtc_state)
883 {
884 	struct intel_display *display = to_intel_display(old_crtc_state);
885 	enum transcoder cpu_transcoder = old_crtc_state->cpu_transcoder;
886 	struct intel_crtc *crtc = to_intel_crtc(old_crtc_state->uapi.crtc);
887 	enum pipe pipe = crtc->pipe;
888 	u32 vrr_ctl = intel_de_read(display, TRANS_VRR_CTL(display, cpu_transcoder));
889 
890 	if (!old_crtc_state->vrr.dc_balance.enable)
891 		return;
892 
893 	intel_pipedmc_dcb_disable(NULL, crtc);
894 	intel_dmc_configure_dc_balance_event(display, pipe, false);
895 	intel_de_write(display, TRANS_ADAPTIVE_SYNC_DCB_CTL(cpu_transcoder), 0);
896 	intel_de_write(display, PIPEDMC_DCB_VMIN(pipe), 0);
897 	intel_de_write(display, PIPEDMC_DCB_VMAX(pipe), 0);
898 	intel_de_write(display, PIPEDMC_DCB_MAX_INCREASE(pipe), 0);
899 	intel_de_write(display, PIPEDMC_DCB_MAX_DECREASE(pipe), 0);
900 	intel_de_write(display, PIPEDMC_DCB_GUARDBAND(pipe), 0);
901 	intel_de_write(display, PIPEDMC_DCB_SLOPE(pipe), 0);
902 	intel_de_write(display, PIPEDMC_DCB_VBLANK(pipe), 0);
903 	intel_de_write(display, TRANS_VRR_DCB_ADJ_VMAX_CFG_LIVE(cpu_transcoder), 0);
904 	intel_de_write(display, TRANS_VRR_DCB_ADJ_FLIPLINE_CFG_LIVE(cpu_transcoder), 0);
905 	intel_de_write(display, TRANS_VRR_DCB_VMAX_LIVE(cpu_transcoder), 0);
906 	intel_de_write(display, TRANS_VRR_DCB_FLIPLINE_LIVE(cpu_transcoder), 0);
907 	intel_de_write(display, TRANS_VRR_DCB_ADJ_VMAX_CFG(cpu_transcoder), 0);
908 	intel_de_write(display, TRANS_VRR_DCB_ADJ_FLIPLINE_CFG(cpu_transcoder), 0);
909 	intel_de_write(display, TRANS_VRR_DCB_VMAX(cpu_transcoder), 0);
910 	intel_de_write(display, TRANS_VRR_DCB_FLIPLINE(cpu_transcoder), 0);
911 
912 	vrr_ctl &= ~VRR_CTL_DCB_ADJ_ENABLE;
913 	intel_de_write(display, TRANS_VRR_CTL(display, cpu_transcoder), vrr_ctl);
914 }
915 
916 static void intel_vrr_tg_enable(const struct intel_crtc_state *crtc_state,
917 				bool cmrr_enable)
918 {
919 	struct intel_display *display = to_intel_display(crtc_state);
920 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
921 	u32 vrr_ctl;
922 
923 	intel_de_write(display, TRANS_PUSH(display, cpu_transcoder),
924 		       trans_vrr_push(crtc_state, false));
925 
926 	vrr_ctl = VRR_CTL_VRR_ENABLE | trans_vrr_ctl(crtc_state);
927 
928 	/*
929 	 * FIXME this might be broken as bspec seems to imply that
930 	 * even VRR_CTL_CMRR_ENABLE is armed by TRANS_CMRR_N_HI
931 	 * when enabling CMRR (but not when disabling CMRR?).
932 	 */
933 	if (cmrr_enable)
934 		vrr_ctl |= VRR_CTL_CMRR_ENABLE;
935 
936 	intel_de_write(display, TRANS_VRR_CTL(display, cpu_transcoder), vrr_ctl);
937 }
938 
939 static void intel_vrr_tg_disable(const struct intel_crtc_state *old_crtc_state)
940 {
941 	struct intel_display *display = to_intel_display(old_crtc_state);
942 	enum transcoder cpu_transcoder = old_crtc_state->cpu_transcoder;
943 
944 	intel_de_write(display, TRANS_VRR_CTL(display, cpu_transcoder),
945 		       trans_vrr_ctl(old_crtc_state));
946 
947 	if (intel_de_wait_for_clear_ms(display,
948 				       TRANS_VRR_STATUS(display, cpu_transcoder),
949 				       VRR_STATUS_VRR_EN_LIVE, 1000))
950 		drm_err(display->drm, "Timed out waiting for VRR live status to clear\n");
951 
952 	intel_de_rmw(display, TRANS_PUSH(display, cpu_transcoder),
953 		     TRANS_PUSH_EN, 0);
954 }
955 
956 void intel_vrr_enable(const struct intel_crtc_state *crtc_state)
957 {
958 	struct intel_display *display = to_intel_display(crtc_state);
959 
960 	if (!crtc_state->vrr.enable)
961 		return;
962 
963 	intel_vrr_set_vrr_timings(crtc_state);
964 	intel_vrr_enable_dc_balancing(crtc_state);
965 
966 	if (!intel_vrr_always_use_vrr_tg(display))
967 		intel_vrr_tg_enable(crtc_state, crtc_state->cmrr.enable);
968 }
969 
970 void intel_vrr_disable(const struct intel_crtc_state *old_crtc_state)
971 {
972 	struct intel_display *display = to_intel_display(old_crtc_state);
973 
974 	if (!old_crtc_state->vrr.enable)
975 		return;
976 
977 	if (!intel_vrr_always_use_vrr_tg(display))
978 		intel_vrr_tg_disable(old_crtc_state);
979 
980 	intel_vrr_disable_dc_balancing(old_crtc_state);
981 	intel_vrr_set_fixed_rr_timings(old_crtc_state);
982 }
983 
984 void intel_vrr_transcoder_enable(const struct intel_crtc_state *crtc_state)
985 {
986 	struct intel_display *display = to_intel_display(crtc_state);
987 
988 	intel_vrr_set_transcoder_timings(crtc_state);
989 
990 	if (!intel_vrr_possible(crtc_state))
991 		return;
992 
993 	if (intel_vrr_always_use_vrr_tg(display))
994 		intel_vrr_tg_enable(crtc_state, false);
995 }
996 
997 void intel_vrr_transcoder_disable(const struct intel_crtc_state *old_crtc_state)
998 {
999 	struct intel_display *display = to_intel_display(old_crtc_state);
1000 
1001 	if (!intel_vrr_possible(old_crtc_state))
1002 		return;
1003 
1004 	if (intel_vrr_always_use_vrr_tg(display))
1005 		intel_vrr_tg_disable(old_crtc_state);
1006 }
1007 
1008 void intel_vrr_psr_frame_change_enable(const struct intel_crtc_state *crtc_state)
1009 {
1010 	struct intel_display *display = to_intel_display(crtc_state);
1011 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
1012 
1013 	intel_de_write(display, TRANS_PUSH(display, cpu_transcoder),
1014 		       trans_vrr_push(crtc_state, false));
1015 }
1016 
1017 bool intel_vrr_is_fixed_rr(const struct intel_crtc_state *crtc_state)
1018 {
1019 	return crtc_state->vrr.flipline &&
1020 	       crtc_state->vrr.flipline == crtc_state->vrr.vmax &&
1021 	       crtc_state->vrr.flipline == crtc_state->vrr.vmin;
1022 }
1023 
1024 static
1025 void intel_vrr_get_dc_balance_config(struct intel_crtc_state *crtc_state)
1026 {
1027 	u32 reg_val;
1028 	struct intel_display *display = to_intel_display(crtc_state);
1029 	struct intel_crtc *crtc = to_intel_crtc(crtc_state->uapi.crtc);
1030 	enum pipe pipe = crtc->pipe;
1031 
1032 	if (!intel_vrr_dc_balance_possible(crtc_state))
1033 		return;
1034 
1035 	reg_val = intel_de_read(display, PIPEDMC_DCB_VMIN(pipe));
1036 	crtc_state->vrr.dc_balance.vmin = reg_val ? reg_val + 1 : 0;
1037 
1038 	reg_val = intel_de_read(display, PIPEDMC_DCB_VMAX(pipe));
1039 	crtc_state->vrr.dc_balance.vmax = reg_val ? reg_val + 1 : 0;
1040 
1041 	crtc_state->vrr.dc_balance.guardband =
1042 		intel_de_read(display, PIPEDMC_DCB_GUARDBAND(pipe));
1043 	crtc_state->vrr.dc_balance.max_increase =
1044 		intel_de_read(display, PIPEDMC_DCB_MAX_INCREASE(pipe));
1045 	crtc_state->vrr.dc_balance.max_decrease =
1046 		intel_de_read(display, PIPEDMC_DCB_MAX_DECREASE(pipe));
1047 	crtc_state->vrr.dc_balance.slope =
1048 		intel_de_read(display, PIPEDMC_DCB_SLOPE(pipe));
1049 	crtc_state->vrr.dc_balance.vblank_target =
1050 		intel_de_read(display, PIPEDMC_DCB_VBLANK(pipe));
1051 }
1052 
1053 void intel_vrr_get_config(struct intel_crtc_state *crtc_state)
1054 {
1055 	struct intel_display *display = to_intel_display(crtc_state);
1056 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
1057 	u32 trans_vrr_ctl, trans_vrr_vsync;
1058 	bool vrr_enable;
1059 
1060 	trans_vrr_ctl = intel_de_read(display,
1061 				      TRANS_VRR_CTL(display, cpu_transcoder));
1062 
1063 	if (HAS_CMRR(display))
1064 		crtc_state->cmrr.enable = (trans_vrr_ctl & VRR_CTL_CMRR_ENABLE);
1065 
1066 	if (crtc_state->cmrr.enable) {
1067 		crtc_state->cmrr.cmrr_n =
1068 			intel_de_read64_2x32(display, TRANS_CMRR_N_LO(display, cpu_transcoder));
1069 		crtc_state->cmrr.cmrr_m =
1070 			intel_de_read64_2x32(display, TRANS_CMRR_M_LO(display, cpu_transcoder));
1071 	}
1072 
1073 	if (DISPLAY_VER(display) >= 13) {
1074 		crtc_state->vrr.guardband =
1075 			REG_FIELD_GET(XELPD_VRR_CTL_VRR_GUARDBAND_MASK, trans_vrr_ctl);
1076 	} else {
1077 		if (trans_vrr_ctl & VRR_CTL_PIPELINE_FULL_OVERRIDE) {
1078 			crtc_state->vrr.pipeline_full =
1079 				REG_FIELD_GET(VRR_CTL_PIPELINE_FULL_MASK, trans_vrr_ctl);
1080 
1081 			crtc_state->vrr.guardband =
1082 				intel_vrr_pipeline_full_to_guardband(crtc_state,
1083 								     crtc_state->vrr.pipeline_full);
1084 		}
1085 	}
1086 
1087 	if (trans_vrr_ctl & VRR_CTL_FLIP_LINE_EN) {
1088 		crtc_state->vrr.flipline = intel_de_read(display,
1089 							 TRANS_VRR_FLIPLINE(display, cpu_transcoder)) + 1;
1090 		crtc_state->vrr.vmax = intel_de_read(display,
1091 						     TRANS_VRR_VMAX(display, cpu_transcoder)) + 1;
1092 		crtc_state->vrr.vmin = intel_de_read(display,
1093 						     TRANS_VRR_VMIN(display, cpu_transcoder)) + 1;
1094 
1095 		if (DISPLAY_VER(display) < 13) {
1096 			/* undo what intel_vrr_hw_value() does when writing the values */
1097 			crtc_state->vrr.flipline += crtc_state->set_context_latency;
1098 			crtc_state->vrr.vmax += crtc_state->set_context_latency;
1099 			crtc_state->vrr.vmin += crtc_state->set_context_latency;
1100 
1101 			crtc_state->vrr.vmin += intel_vrr_vmin_flipline_offset(display);
1102 		}
1103 
1104 		/*
1105 		 * For platforms that always use VRR Timing Generator, the VTOTAL.Vtotal
1106 		 * bits are not filled. Since for these platforms TRAN_VMIN is always
1107 		 * filled with crtc_vtotal, use TRAN_VRR_VMIN to get the vtotal for
1108 		 * adjusted_mode.
1109 		 */
1110 		if (intel_vrr_always_use_vrr_tg(display))
1111 			crtc_state->hw.adjusted_mode.crtc_vtotal =
1112 				intel_vrr_vmin_vtotal(crtc_state);
1113 
1114 		if (HAS_AS_SDP(display)) {
1115 			trans_vrr_vsync =
1116 				intel_de_read(display,
1117 					      TRANS_VRR_VSYNC(display, cpu_transcoder));
1118 			crtc_state->vrr.vsync_start =
1119 				REG_FIELD_GET(VRR_VSYNC_START_MASK, trans_vrr_vsync);
1120 			crtc_state->vrr.vsync_end =
1121 				REG_FIELD_GET(VRR_VSYNC_END_MASK, trans_vrr_vsync);
1122 		}
1123 	}
1124 
1125 	vrr_enable = trans_vrr_ctl & VRR_CTL_VRR_ENABLE;
1126 
1127 	if (intel_vrr_always_use_vrr_tg(display))
1128 		crtc_state->vrr.enable = vrr_enable && !intel_vrr_is_fixed_rr(crtc_state);
1129 	else
1130 		crtc_state->vrr.enable = vrr_enable;
1131 
1132 	intel_vrr_get_dc_balance_config(crtc_state);
1133 
1134 	/*
1135 	 * #TODO: For Both VRR and CMRR the flag I915_MODE_FLAG_VRR is set for mode_flags.
1136 	 * Since CMRR is currently disabled, set this flag for VRR for now.
1137 	 * Need to keep this in mind while re-enabling CMRR.
1138 	 */
1139 	if (crtc_state->vrr.enable)
1140 		crtc_state->mode_flags |= I915_MODE_FLAG_VRR;
1141 
1142 	/*
1143 	 * For platforms that always use the VRR timing generator, we overwrite
1144 	 * crtc_vblank_start with vtotal - guardband to reflect the delayed
1145 	 * vblank start. This works for both default and optimized guardband values.
1146 	 * On other platforms, we keep the original value from
1147 	 * intel_get_transcoder_timings() and apply adjustments only in VRR-specific
1148 	 * paths as needed.
1149 	 */
1150 	if (intel_vrr_always_use_vrr_tg(display))
1151 		crtc_state->hw.adjusted_mode.crtc_vblank_start =
1152 			crtc_state->hw.adjusted_mode.crtc_vtotal -
1153 			crtc_state->vrr.guardband;
1154 }
1155 
1156 int intel_vrr_safe_window_start(const struct intel_crtc_state *crtc_state)
1157 {
1158 	struct intel_display *display = to_intel_display(crtc_state);
1159 
1160 	if (DISPLAY_VER(display) >= 30)
1161 		return crtc_state->hw.adjusted_mode.crtc_vdisplay -
1162 		       crtc_state->set_context_latency;
1163 	else
1164 		return crtc_state->hw.adjusted_mode.crtc_vdisplay;
1165 }
1166 
1167 static int
1168 intel_vrr_dcb_vmin_vblank_start(const struct intel_crtc_state *crtc_state)
1169 {
1170 	return (intel_vrr_dcb_vmin_vblank_start_next(crtc_state) < 0) ?
1171 		intel_vrr_dcb_vmin_vblank_start_final(crtc_state) :
1172 		intel_vrr_dcb_vmin_vblank_start_next(crtc_state);
1173 }
1174 
1175 int intel_vrr_vmin_safe_window_end(const struct intel_crtc_state *crtc_state)
1176 {
1177 	int vmin_vblank_start = crtc_state->vrr.dc_balance.enable ?
1178 			intel_vrr_dcb_vmin_vblank_start(crtc_state) :
1179 			intel_vrr_vmin_vblank_start(crtc_state);
1180 
1181 	return vmin_vblank_start - crtc_state->set_context_latency;
1182 }
1183 
1184 int intel_vrr_dcb_vmin_vblank_start_next(const struct intel_crtc_state *crtc_state)
1185 {
1186 	struct intel_display *display = to_intel_display(crtc_state);
1187 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
1188 	u32 tmp = 0;
1189 
1190 	tmp = intel_de_read(display, TRANS_VRR_DCB_ADJ_FLIPLINE_CFG_LIVE(cpu_transcoder));
1191 
1192 	if (REG_FIELD_GET(VRR_DCB_ADJ_FLIPLINE_CNT_MASK, tmp) == 0)
1193 		return -EINVAL;
1194 
1195 	return intel_vrr_vblank_start(crtc_state, VRR_DCB_ADJ_FLIPLINE(tmp) + 1);
1196 }
1197 
1198 int intel_vrr_dcb_vmax_vblank_start_next(const struct intel_crtc_state *crtc_state)
1199 {
1200 	struct intel_display *display = to_intel_display(crtc_state);
1201 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
1202 	u32 tmp = 0;
1203 
1204 	tmp = intel_de_read(display, TRANS_VRR_DCB_ADJ_VMAX_CFG_LIVE(cpu_transcoder));
1205 
1206 	if (REG_FIELD_GET(VRR_DCB_ADJ_VMAX_CNT_MASK, tmp) == 0)
1207 		return -EINVAL;
1208 
1209 	return intel_vrr_vblank_start(crtc_state, VRR_DCB_ADJ_VMAX(tmp) + 1);
1210 }
1211 
1212 int intel_vrr_dcb_vmin_vblank_start_final(const struct intel_crtc_state *crtc_state)
1213 {
1214 	struct intel_display *display = to_intel_display(crtc_state);
1215 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
1216 	u32 tmp = 0;
1217 
1218 	tmp = intel_de_read(display, TRANS_VRR_DCB_FLIPLINE_LIVE(cpu_transcoder));
1219 
1220 	return intel_vrr_vblank_start(crtc_state, VRR_DCB_FLIPLINE(tmp) + 1);
1221 }
1222 
1223 int intel_vrr_dcb_vmax_vblank_start_final(const struct intel_crtc_state *crtc_state)
1224 {
1225 	struct intel_display *display = to_intel_display(crtc_state);
1226 	enum transcoder cpu_transcoder = crtc_state->cpu_transcoder;
1227 	u32 tmp = 0;
1228 
1229 	tmp = intel_de_read(display, TRANS_VRR_DCB_VMAX_LIVE(cpu_transcoder));
1230 
1231 	return intel_vrr_vblank_start(crtc_state, VRR_DCB_VMAX(tmp) + 1);
1232 }
1233