1 /*
2 * rcar_du_crtc.c -- R-Car Display Unit CRTCs
3 *
4 * Copyright (C) 2013-2014 Renesas Electronics Corporation
5 *
6 * Contact: Laurent Pinchart (laurent.pinchart@ideasonboard.com)
7 *
8 * This program is free software; you can redistribute it and/or modify
9 * it under the terms of the GNU General Public License as published by
10 * the Free Software Foundation; either version 2 of the License, or
11 * (at your option) any later version.
12 */
13
14 #include <linux/clk.h>
15 #include <linux/mutex.h>
16
17 #include <drm/drmP.h>
18 #include <drm/drm_atomic.h>
19 #include <drm/drm_atomic_helper.h>
20 #include <drm/drm_crtc.h>
21 #include <drm/drm_crtc_helper.h>
22 #include <drm/drm_fb_cma_helper.h>
23 #include <drm/drm_gem_cma_helper.h>
24 #include <drm/drm_plane_helper.h>
25
26 #include "rcar_du_crtc.h"
27 #include "rcar_du_drv.h"
28 #include "rcar_du_kms.h"
29 #include "rcar_du_plane.h"
30 #include "rcar_du_regs.h"
31
rcar_du_crtc_read(struct rcar_du_crtc * rcrtc,u32 reg)32 static u32 rcar_du_crtc_read(struct rcar_du_crtc *rcrtc, u32 reg)
33 {
34 struct rcar_du_device *rcdu = rcrtc->group->dev;
35
36 return rcar_du_read(rcdu, rcrtc->mmio_offset + reg);
37 }
38
rcar_du_crtc_write(struct rcar_du_crtc * rcrtc,u32 reg,u32 data)39 static void rcar_du_crtc_write(struct rcar_du_crtc *rcrtc, u32 reg, u32 data)
40 {
41 struct rcar_du_device *rcdu = rcrtc->group->dev;
42
43 rcar_du_write(rcdu, rcrtc->mmio_offset + reg, data);
44 }
45
rcar_du_crtc_clr(struct rcar_du_crtc * rcrtc,u32 reg,u32 clr)46 static void rcar_du_crtc_clr(struct rcar_du_crtc *rcrtc, u32 reg, u32 clr)
47 {
48 struct rcar_du_device *rcdu = rcrtc->group->dev;
49
50 rcar_du_write(rcdu, rcrtc->mmio_offset + reg,
51 rcar_du_read(rcdu, rcrtc->mmio_offset + reg) & ~clr);
52 }
53
rcar_du_crtc_set(struct rcar_du_crtc * rcrtc,u32 reg,u32 set)54 static void rcar_du_crtc_set(struct rcar_du_crtc *rcrtc, u32 reg, u32 set)
55 {
56 struct rcar_du_device *rcdu = rcrtc->group->dev;
57
58 rcar_du_write(rcdu, rcrtc->mmio_offset + reg,
59 rcar_du_read(rcdu, rcrtc->mmio_offset + reg) | set);
60 }
61
rcar_du_crtc_clr_set(struct rcar_du_crtc * rcrtc,u32 reg,u32 clr,u32 set)62 static void rcar_du_crtc_clr_set(struct rcar_du_crtc *rcrtc, u32 reg,
63 u32 clr, u32 set)
64 {
65 struct rcar_du_device *rcdu = rcrtc->group->dev;
66 u32 value = rcar_du_read(rcdu, rcrtc->mmio_offset + reg);
67
68 rcar_du_write(rcdu, rcrtc->mmio_offset + reg, (value & ~clr) | set);
69 }
70
rcar_du_crtc_get(struct rcar_du_crtc * rcrtc)71 static int rcar_du_crtc_get(struct rcar_du_crtc *rcrtc)
72 {
73 int ret;
74
75 ret = clk_prepare_enable(rcrtc->clock);
76 if (ret < 0)
77 return ret;
78
79 ret = clk_prepare_enable(rcrtc->extclock);
80 if (ret < 0)
81 goto error_clock;
82
83 ret = rcar_du_group_get(rcrtc->group);
84 if (ret < 0)
85 goto error_group;
86
87 return 0;
88
89 error_group:
90 clk_disable_unprepare(rcrtc->extclock);
91 error_clock:
92 clk_disable_unprepare(rcrtc->clock);
93 return ret;
94 }
95
rcar_du_crtc_put(struct rcar_du_crtc * rcrtc)96 static void rcar_du_crtc_put(struct rcar_du_crtc *rcrtc)
97 {
98 rcar_du_group_put(rcrtc->group);
99
100 clk_disable_unprepare(rcrtc->extclock);
101 clk_disable_unprepare(rcrtc->clock);
102 }
103
104 /* -----------------------------------------------------------------------------
105 * Hardware Setup
106 */
107
rcar_du_crtc_set_display_timing(struct rcar_du_crtc * rcrtc)108 static void rcar_du_crtc_set_display_timing(struct rcar_du_crtc *rcrtc)
109 {
110 const struct drm_display_mode *mode = &rcrtc->crtc.state->adjusted_mode;
111 unsigned long mode_clock = mode->clock * 1000;
112 unsigned long clk;
113 u32 value;
114 u32 escr;
115 u32 div;
116
117 /* Compute the clock divisor and select the internal or external dot
118 * clock based on the requested frequency.
119 */
120 clk = clk_get_rate(rcrtc->clock);
121 div = DIV_ROUND_CLOSEST(clk, mode_clock);
122 div = clamp(div, 1U, 64U) - 1;
123 escr = div | ESCR_DCLKSEL_CLKS;
124
125 if (rcrtc->extclock) {
126 unsigned long extclk;
127 unsigned long extrate;
128 unsigned long rate;
129 u32 extdiv;
130
131 extclk = clk_get_rate(rcrtc->extclock);
132 extdiv = DIV_ROUND_CLOSEST(extclk, mode_clock);
133 extdiv = clamp(extdiv, 1U, 64U) - 1;
134
135 rate = clk / (div + 1);
136 extrate = extclk / (extdiv + 1);
137
138 if (abs((long)extrate - (long)mode_clock) <
139 abs((long)rate - (long)mode_clock)) {
140 dev_dbg(rcrtc->group->dev->dev,
141 "crtc%u: using external clock\n", rcrtc->index);
142 escr = extdiv | ESCR_DCLKSEL_DCLKIN;
143 }
144 }
145
146 rcar_du_group_write(rcrtc->group, rcrtc->index % 2 ? ESCR2 : ESCR,
147 escr);
148 rcar_du_group_write(rcrtc->group, rcrtc->index % 2 ? OTAR2 : OTAR, 0);
149
150 /* Signal polarities */
151 value = ((mode->flags & DRM_MODE_FLAG_PVSYNC) ? 0 : DSMR_VSL)
152 | ((mode->flags & DRM_MODE_FLAG_PHSYNC) ? 0 : DSMR_HSL)
153 | DSMR_DIPM_DE | DSMR_CSPM;
154 rcar_du_crtc_write(rcrtc, DSMR, value);
155
156 /* Display timings */
157 rcar_du_crtc_write(rcrtc, HDSR, mode->htotal - mode->hsync_start - 19);
158 rcar_du_crtc_write(rcrtc, HDER, mode->htotal - mode->hsync_start +
159 mode->hdisplay - 19);
160 rcar_du_crtc_write(rcrtc, HSWR, mode->hsync_end -
161 mode->hsync_start - 1);
162 rcar_du_crtc_write(rcrtc, HCR, mode->htotal - 1);
163
164 rcar_du_crtc_write(rcrtc, VDSR, mode->crtc_vtotal -
165 mode->crtc_vsync_end - 2);
166 rcar_du_crtc_write(rcrtc, VDER, mode->crtc_vtotal -
167 mode->crtc_vsync_end +
168 mode->crtc_vdisplay - 2);
169 rcar_du_crtc_write(rcrtc, VSPR, mode->crtc_vtotal -
170 mode->crtc_vsync_end +
171 mode->crtc_vsync_start - 1);
172 rcar_du_crtc_write(rcrtc, VCR, mode->crtc_vtotal - 1);
173
174 rcar_du_crtc_write(rcrtc, DESR, mode->htotal - mode->hsync_start);
175 rcar_du_crtc_write(rcrtc, DEWR, mode->hdisplay);
176 }
177
rcar_du_crtc_route_output(struct drm_crtc * crtc,enum rcar_du_output output)178 void rcar_du_crtc_route_output(struct drm_crtc *crtc,
179 enum rcar_du_output output)
180 {
181 struct rcar_du_crtc *rcrtc = to_rcar_crtc(crtc);
182 struct rcar_du_device *rcdu = rcrtc->group->dev;
183
184 /* Store the route from the CRTC output to the DU output. The DU will be
185 * configured when starting the CRTC.
186 */
187 rcrtc->outputs |= BIT(output);
188
189 /* Store RGB routing to DPAD0, the hardware will be configured when
190 * starting the CRTC.
191 */
192 if (output == RCAR_DU_OUTPUT_DPAD0)
193 rcdu->dpad0_source = rcrtc->index;
194 }
195
plane_zpos(struct rcar_du_plane * plane)196 static unsigned int plane_zpos(struct rcar_du_plane *plane)
197 {
198 return to_rcar_plane_state(plane->plane.state)->zpos;
199 }
200
201 static const struct rcar_du_format_info *
plane_format(struct rcar_du_plane * plane)202 plane_format(struct rcar_du_plane *plane)
203 {
204 return to_rcar_plane_state(plane->plane.state)->format;
205 }
206
rcar_du_crtc_update_planes(struct rcar_du_crtc * rcrtc)207 static void rcar_du_crtc_update_planes(struct rcar_du_crtc *rcrtc)
208 {
209 struct rcar_du_plane *planes[RCAR_DU_NUM_HW_PLANES];
210 unsigned int num_planes = 0;
211 unsigned int dptsr_planes;
212 unsigned int hwplanes = 0;
213 unsigned int prio = 0;
214 unsigned int i;
215 u32 dspr = 0;
216
217 for (i = 0; i < rcrtc->group->num_planes; ++i) {
218 struct rcar_du_plane *plane = &rcrtc->group->planes[i];
219 unsigned int j;
220
221 if (plane->plane.state->crtc != &rcrtc->crtc)
222 continue;
223
224 /* Insert the plane in the sorted planes array. */
225 for (j = num_planes++; j > 0; --j) {
226 if (plane_zpos(planes[j-1]) <= plane_zpos(plane))
227 break;
228 planes[j] = planes[j-1];
229 }
230
231 planes[j] = plane;
232 prio += plane_format(plane)->planes * 4;
233 }
234
235 for (i = 0; i < num_planes; ++i) {
236 struct rcar_du_plane *plane = planes[i];
237 struct drm_plane_state *state = plane->plane.state;
238 unsigned int index = to_rcar_plane_state(state)->hwindex;
239
240 prio -= 4;
241 dspr |= (index + 1) << prio;
242 hwplanes |= 1 << index;
243
244 if (plane_format(plane)->planes == 2) {
245 index = (index + 1) % 8;
246
247 prio -= 4;
248 dspr |= (index + 1) << prio;
249 hwplanes |= 1 << index;
250 }
251 }
252
253 /* Update the planes to display timing and dot clock generator
254 * associations.
255 *
256 * Updating the DPTSR register requires restarting the CRTC group,
257 * resulting in visible flicker. To mitigate the issue only update the
258 * association if needed by enabled planes. Planes being disabled will
259 * keep their current association.
260 */
261 mutex_lock(&rcrtc->group->lock);
262
263 dptsr_planes = rcrtc->index % 2 ? rcrtc->group->dptsr_planes | hwplanes
264 : rcrtc->group->dptsr_planes & ~hwplanes;
265
266 if (dptsr_planes != rcrtc->group->dptsr_planes) {
267 rcar_du_group_write(rcrtc->group, DPTSR,
268 (dptsr_planes << 16) | dptsr_planes);
269 rcrtc->group->dptsr_planes = dptsr_planes;
270
271 if (rcrtc->group->used_crtcs)
272 rcar_du_group_restart(rcrtc->group);
273 }
274
275 mutex_unlock(&rcrtc->group->lock);
276
277 rcar_du_group_write(rcrtc->group, rcrtc->index % 2 ? DS2PR : DS1PR,
278 dspr);
279 }
280
281 /* -----------------------------------------------------------------------------
282 * Page Flip
283 */
284
rcar_du_crtc_cancel_page_flip(struct rcar_du_crtc * rcrtc,struct drm_file * file)285 void rcar_du_crtc_cancel_page_flip(struct rcar_du_crtc *rcrtc,
286 struct drm_file *file)
287 {
288 struct drm_pending_vblank_event *event;
289 struct drm_device *dev = rcrtc->crtc.dev;
290 unsigned long flags;
291
292 /* Destroy the pending vertical blanking event associated with the
293 * pending page flip, if any, and disable vertical blanking interrupts.
294 */
295 spin_lock_irqsave(&dev->event_lock, flags);
296 event = rcrtc->event;
297 if (event && event->base.file_priv == file) {
298 rcrtc->event = NULL;
299 event->base.destroy(&event->base);
300 drm_crtc_vblank_put(&rcrtc->crtc);
301 }
302 spin_unlock_irqrestore(&dev->event_lock, flags);
303 }
304
rcar_du_crtc_finish_page_flip(struct rcar_du_crtc * rcrtc)305 static void rcar_du_crtc_finish_page_flip(struct rcar_du_crtc *rcrtc)
306 {
307 struct drm_pending_vblank_event *event;
308 struct drm_device *dev = rcrtc->crtc.dev;
309 unsigned long flags;
310
311 spin_lock_irqsave(&dev->event_lock, flags);
312 event = rcrtc->event;
313 rcrtc->event = NULL;
314 spin_unlock_irqrestore(&dev->event_lock, flags);
315
316 if (event == NULL)
317 return;
318
319 spin_lock_irqsave(&dev->event_lock, flags);
320 drm_send_vblank_event(dev, rcrtc->index, event);
321 wake_up(&rcrtc->flip_wait);
322 spin_unlock_irqrestore(&dev->event_lock, flags);
323
324 drm_crtc_vblank_put(&rcrtc->crtc);
325 }
326
rcar_du_crtc_page_flip_pending(struct rcar_du_crtc * rcrtc)327 static bool rcar_du_crtc_page_flip_pending(struct rcar_du_crtc *rcrtc)
328 {
329 struct drm_device *dev = rcrtc->crtc.dev;
330 unsigned long flags;
331 bool pending;
332
333 spin_lock_irqsave(&dev->event_lock, flags);
334 pending = rcrtc->event != NULL;
335 spin_unlock_irqrestore(&dev->event_lock, flags);
336
337 return pending;
338 }
339
rcar_du_crtc_wait_page_flip(struct rcar_du_crtc * rcrtc)340 static void rcar_du_crtc_wait_page_flip(struct rcar_du_crtc *rcrtc)
341 {
342 struct rcar_du_device *rcdu = rcrtc->group->dev;
343
344 if (wait_event_timeout(rcrtc->flip_wait,
345 !rcar_du_crtc_page_flip_pending(rcrtc),
346 msecs_to_jiffies(50)))
347 return;
348
349 dev_warn(rcdu->dev, "page flip timeout\n");
350
351 rcar_du_crtc_finish_page_flip(rcrtc);
352 }
353
354 /* -----------------------------------------------------------------------------
355 * Start/Stop and Suspend/Resume
356 */
357
rcar_du_crtc_start(struct rcar_du_crtc * rcrtc)358 static void rcar_du_crtc_start(struct rcar_du_crtc *rcrtc)
359 {
360 struct drm_crtc *crtc = &rcrtc->crtc;
361 bool interlaced;
362
363 if (rcrtc->started)
364 return;
365
366 /* Set display off and background to black */
367 rcar_du_crtc_write(rcrtc, DOOR, DOOR_RGB(0, 0, 0));
368 rcar_du_crtc_write(rcrtc, BPOR, BPOR_RGB(0, 0, 0));
369
370 /* Configure display timings and output routing */
371 rcar_du_crtc_set_display_timing(rcrtc);
372 rcar_du_group_set_routing(rcrtc->group);
373
374 /* Start with all planes disabled. */
375 rcar_du_group_write(rcrtc->group, rcrtc->index % 2 ? DS2PR : DS1PR, 0);
376
377 /* Select master sync mode. This enables display operation in master
378 * sync mode (with the HSYNC and VSYNC signals configured as outputs and
379 * actively driven).
380 */
381 interlaced = rcrtc->crtc.mode.flags & DRM_MODE_FLAG_INTERLACE;
382 rcar_du_crtc_clr_set(rcrtc, DSYSR, DSYSR_TVM_MASK | DSYSR_SCM_MASK,
383 (interlaced ? DSYSR_SCM_INT_VIDEO : 0) |
384 DSYSR_TVM_MASTER);
385
386 rcar_du_group_start_stop(rcrtc->group, true);
387
388 /* Turn vertical blanking interrupt reporting back on. */
389 drm_crtc_vblank_on(crtc);
390
391 rcrtc->started = true;
392 }
393
rcar_du_crtc_stop(struct rcar_du_crtc * rcrtc)394 static void rcar_du_crtc_stop(struct rcar_du_crtc *rcrtc)
395 {
396 struct drm_crtc *crtc = &rcrtc->crtc;
397
398 if (!rcrtc->started)
399 return;
400
401 /* Disable all planes and wait for the change to take effect. This is
402 * required as the DSnPR registers are updated on vblank, and no vblank
403 * will occur once the CRTC is stopped. Disabling planes when starting
404 * the CRTC thus wouldn't be enough as it would start scanning out
405 * immediately from old frame buffers until the next vblank.
406 *
407 * This increases the CRTC stop delay, especially when multiple CRTCs
408 * are stopped in one operation as we now wait for one vblank per CRTC.
409 * Whether this can be improved needs to be researched.
410 */
411 rcar_du_group_write(rcrtc->group, rcrtc->index % 2 ? DS2PR : DS1PR, 0);
412 drm_crtc_wait_one_vblank(crtc);
413
414 /* Disable vertical blanking interrupt reporting. We first need to wait
415 * for page flip completion before stopping the CRTC as userspace
416 * expects page flips to eventually complete.
417 */
418 rcar_du_crtc_wait_page_flip(rcrtc);
419 drm_crtc_vblank_off(crtc);
420
421 /* Select switch sync mode. This stops display operation and configures
422 * the HSYNC and VSYNC signals as inputs.
423 */
424 rcar_du_crtc_clr_set(rcrtc, DSYSR, DSYSR_TVM_MASK, DSYSR_TVM_SWITCH);
425
426 rcar_du_group_start_stop(rcrtc->group, false);
427
428 rcrtc->started = false;
429 }
430
rcar_du_crtc_suspend(struct rcar_du_crtc * rcrtc)431 void rcar_du_crtc_suspend(struct rcar_du_crtc *rcrtc)
432 {
433 rcar_du_crtc_stop(rcrtc);
434 rcar_du_crtc_put(rcrtc);
435 }
436
rcar_du_crtc_resume(struct rcar_du_crtc * rcrtc)437 void rcar_du_crtc_resume(struct rcar_du_crtc *rcrtc)
438 {
439 unsigned int i;
440
441 if (!rcrtc->enabled)
442 return;
443
444 rcar_du_crtc_get(rcrtc);
445 rcar_du_crtc_start(rcrtc);
446
447 /* Commit the planes state. */
448 for (i = 0; i < rcrtc->group->num_planes; ++i) {
449 struct rcar_du_plane *plane = &rcrtc->group->planes[i];
450
451 if (plane->plane.state->crtc != &rcrtc->crtc)
452 continue;
453
454 rcar_du_plane_setup(plane);
455 }
456
457 rcar_du_crtc_update_planes(rcrtc);
458 }
459
460 /* -----------------------------------------------------------------------------
461 * CRTC Functions
462 */
463
rcar_du_crtc_enable(struct drm_crtc * crtc)464 static void rcar_du_crtc_enable(struct drm_crtc *crtc)
465 {
466 struct rcar_du_crtc *rcrtc = to_rcar_crtc(crtc);
467
468 if (rcrtc->enabled)
469 return;
470
471 rcar_du_crtc_get(rcrtc);
472 rcar_du_crtc_start(rcrtc);
473
474 rcrtc->enabled = true;
475 }
476
rcar_du_crtc_disable(struct drm_crtc * crtc)477 static void rcar_du_crtc_disable(struct drm_crtc *crtc)
478 {
479 struct rcar_du_crtc *rcrtc = to_rcar_crtc(crtc);
480
481 if (!rcrtc->enabled)
482 return;
483
484 rcar_du_crtc_stop(rcrtc);
485 rcar_du_crtc_put(rcrtc);
486
487 rcrtc->enabled = false;
488 rcrtc->outputs = 0;
489 }
490
rcar_du_crtc_mode_fixup(struct drm_crtc * crtc,const struct drm_display_mode * mode,struct drm_display_mode * adjusted_mode)491 static bool rcar_du_crtc_mode_fixup(struct drm_crtc *crtc,
492 const struct drm_display_mode *mode,
493 struct drm_display_mode *adjusted_mode)
494 {
495 /* TODO Fixup modes */
496 return true;
497 }
498
rcar_du_crtc_atomic_begin(struct drm_crtc * crtc,struct drm_crtc_state * old_crtc_state)499 static void rcar_du_crtc_atomic_begin(struct drm_crtc *crtc,
500 struct drm_crtc_state *old_crtc_state)
501 {
502 struct drm_pending_vblank_event *event = crtc->state->event;
503 struct rcar_du_crtc *rcrtc = to_rcar_crtc(crtc);
504 struct drm_device *dev = rcrtc->crtc.dev;
505 unsigned long flags;
506
507 if (event) {
508 WARN_ON(drm_crtc_vblank_get(crtc) != 0);
509
510 spin_lock_irqsave(&dev->event_lock, flags);
511 rcrtc->event = event;
512 spin_unlock_irqrestore(&dev->event_lock, flags);
513 }
514 }
515
rcar_du_crtc_atomic_flush(struct drm_crtc * crtc,struct drm_crtc_state * old_crtc_state)516 static void rcar_du_crtc_atomic_flush(struct drm_crtc *crtc,
517 struct drm_crtc_state *old_crtc_state)
518 {
519 struct rcar_du_crtc *rcrtc = to_rcar_crtc(crtc);
520
521 rcar_du_crtc_update_planes(rcrtc);
522 }
523
524 static const struct drm_crtc_helper_funcs crtc_helper_funcs = {
525 .mode_fixup = rcar_du_crtc_mode_fixup,
526 .disable = rcar_du_crtc_disable,
527 .enable = rcar_du_crtc_enable,
528 .atomic_begin = rcar_du_crtc_atomic_begin,
529 .atomic_flush = rcar_du_crtc_atomic_flush,
530 };
531
532 static const struct drm_crtc_funcs crtc_funcs = {
533 .reset = drm_atomic_helper_crtc_reset,
534 .destroy = drm_crtc_cleanup,
535 .set_config = drm_atomic_helper_set_config,
536 .page_flip = drm_atomic_helper_page_flip,
537 .atomic_duplicate_state = drm_atomic_helper_crtc_duplicate_state,
538 .atomic_destroy_state = drm_atomic_helper_crtc_destroy_state,
539 };
540
541 /* -----------------------------------------------------------------------------
542 * Interrupt Handling
543 */
544
rcar_du_crtc_irq(int irq,void * arg)545 static irqreturn_t rcar_du_crtc_irq(int irq, void *arg)
546 {
547 struct rcar_du_crtc *rcrtc = arg;
548 irqreturn_t ret = IRQ_NONE;
549 u32 status;
550
551 status = rcar_du_crtc_read(rcrtc, DSSR);
552 rcar_du_crtc_write(rcrtc, DSRCR, status & DSRCR_MASK);
553
554 if (status & DSSR_FRM) {
555 drm_handle_vblank(rcrtc->crtc.dev, rcrtc->index);
556 rcar_du_crtc_finish_page_flip(rcrtc);
557 ret = IRQ_HANDLED;
558 }
559
560 return ret;
561 }
562
563 /* -----------------------------------------------------------------------------
564 * Initialization
565 */
566
rcar_du_crtc_create(struct rcar_du_group * rgrp,unsigned int index)567 int rcar_du_crtc_create(struct rcar_du_group *rgrp, unsigned int index)
568 {
569 static const unsigned int mmio_offsets[] = {
570 DU0_REG_OFFSET, DU1_REG_OFFSET, DU2_REG_OFFSET
571 };
572
573 struct rcar_du_device *rcdu = rgrp->dev;
574 struct platform_device *pdev = to_platform_device(rcdu->dev);
575 struct rcar_du_crtc *rcrtc = &rcdu->crtcs[index];
576 struct drm_crtc *crtc = &rcrtc->crtc;
577 unsigned int irqflags;
578 struct clk *clk;
579 char clk_name[9];
580 char *name;
581 int irq;
582 int ret;
583
584 /* Get the CRTC clock and the optional external clock. */
585 if (rcar_du_has(rcdu, RCAR_DU_FEATURE_CRTC_IRQ_CLOCK)) {
586 sprintf(clk_name, "du.%u", index);
587 name = clk_name;
588 } else {
589 name = NULL;
590 }
591
592 rcrtc->clock = devm_clk_get(rcdu->dev, name);
593 if (IS_ERR(rcrtc->clock)) {
594 dev_err(rcdu->dev, "no clock for CRTC %u\n", index);
595 return PTR_ERR(rcrtc->clock);
596 }
597
598 sprintf(clk_name, "dclkin.%u", index);
599 clk = devm_clk_get(rcdu->dev, clk_name);
600 if (!IS_ERR(clk)) {
601 rcrtc->extclock = clk;
602 } else if (PTR_ERR(rcrtc->clock) == -EPROBE_DEFER) {
603 dev_info(rcdu->dev, "can't get external clock %u\n", index);
604 return -EPROBE_DEFER;
605 }
606
607 init_waitqueue_head(&rcrtc->flip_wait);
608
609 rcrtc->group = rgrp;
610 rcrtc->mmio_offset = mmio_offsets[index];
611 rcrtc->index = index;
612 rcrtc->enabled = false;
613
614 ret = drm_crtc_init_with_planes(rcdu->ddev, crtc,
615 &rgrp->planes[index % 2].plane,
616 NULL, &crtc_funcs);
617 if (ret < 0)
618 return ret;
619
620 drm_crtc_helper_add(crtc, &crtc_helper_funcs);
621
622 /* Start with vertical blanking interrupt reporting disabled. */
623 drm_crtc_vblank_off(crtc);
624
625 /* Register the interrupt handler. */
626 if (rcar_du_has(rcdu, RCAR_DU_FEATURE_CRTC_IRQ_CLOCK)) {
627 irq = platform_get_irq(pdev, index);
628 irqflags = 0;
629 } else {
630 irq = platform_get_irq(pdev, 0);
631 irqflags = IRQF_SHARED;
632 }
633
634 if (irq < 0) {
635 dev_err(rcdu->dev, "no IRQ for CRTC %u\n", index);
636 return irq;
637 }
638
639 ret = devm_request_irq(rcdu->dev, irq, rcar_du_crtc_irq, irqflags,
640 dev_name(rcdu->dev), rcrtc);
641 if (ret < 0) {
642 dev_err(rcdu->dev,
643 "failed to register IRQ for CRTC %u\n", index);
644 return ret;
645 }
646
647 return 0;
648 }
649
rcar_du_crtc_enable_vblank(struct rcar_du_crtc * rcrtc,bool enable)650 void rcar_du_crtc_enable_vblank(struct rcar_du_crtc *rcrtc, bool enable)
651 {
652 if (enable) {
653 rcar_du_crtc_write(rcrtc, DSRCR, DSRCR_VBCL);
654 rcar_du_crtc_set(rcrtc, DIER, DIER_VBE);
655 } else {
656 rcar_du_crtc_clr(rcrtc, DIER, DIER_VBE);
657 }
658 }
659