Merge branch 'for-4.8/hid-led' into for-linus
[deliverable/linux.git] / drivers / gpu / drm / drm_irq.c
1 /*
2 * drm_irq.c IRQ and vblank support
3 *
4 * \author Rickard E. (Rik) Faith <faith@valinux.com>
5 * \author Gareth Hughes <gareth@valinux.com>
6 */
7
8 /*
9 * Created: Fri Mar 19 14:30:16 1999 by faith@valinux.com
10 *
11 * Copyright 1999, 2000 Precision Insight, Inc., Cedar Park, Texas.
12 * Copyright 2000 VA Linux Systems, Inc., Sunnyvale, California.
13 * All Rights Reserved.
14 *
15 * Permission is hereby granted, free of charge, to any person obtaining a
16 * copy of this software and associated documentation files (the "Software"),
17 * to deal in the Software without restriction, including without limitation
18 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
19 * and/or sell copies of the Software, and to permit persons to whom the
20 * Software is furnished to do so, subject to the following conditions:
21 *
22 * The above copyright notice and this permission notice (including the next
23 * paragraph) shall be included in all copies or substantial portions of the
24 * Software.
25 *
26 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
27 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
28 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
29 * VA LINUX SYSTEMS AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM, DAMAGES OR
30 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
31 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
32 * OTHER DEALINGS IN THE SOFTWARE.
33 */
34
35 #include <drm/drmP.h>
36 #include "drm_trace.h"
37 #include "drm_internal.h"
38
39 #include <linux/interrupt.h> /* For task queue support */
40 #include <linux/slab.h>
41
42 #include <linux/vgaarb.h>
43 #include <linux/export.h>
44
45 /* Access macro for slots in vblank timestamp ringbuffer. */
46 #define vblanktimestamp(dev, pipe, count) \
47 ((dev)->vblank[pipe].time[(count) % DRM_VBLANKTIME_RBSIZE])
48
49 /* Retry timestamp calculation up to 3 times to satisfy
50 * drm_timestamp_precision before giving up.
51 */
52 #define DRM_TIMESTAMP_MAXRETRIES 3
53
54 /* Threshold in nanoseconds for detection of redundant
55 * vblank irq in drm_handle_vblank(). 1 msec should be ok.
56 */
57 #define DRM_REDUNDANT_VBLIRQ_THRESH_NS 1000000
58
59 static bool
60 drm_get_last_vbltimestamp(struct drm_device *dev, unsigned int pipe,
61 struct timeval *tvblank, unsigned flags);
62
63 static unsigned int drm_timestamp_precision = 20; /* Default to 20 usecs. */
64
65 /*
66 * Default to use monotonic timestamps for wait-for-vblank and page-flip
67 * complete events.
68 */
69 unsigned int drm_timestamp_monotonic = 1;
70
71 static int drm_vblank_offdelay = 5000; /* Default to 5000 msecs. */
72
73 module_param_named(vblankoffdelay, drm_vblank_offdelay, int, 0600);
74 module_param_named(timestamp_precision_usec, drm_timestamp_precision, int, 0600);
75 module_param_named(timestamp_monotonic, drm_timestamp_monotonic, int, 0600);
76 MODULE_PARM_DESC(vblankoffdelay, "Delay until vblank irq auto-disable [msecs] (0: never disable, <0: disable immediately)");
77 MODULE_PARM_DESC(timestamp_precision_usec, "Max. error on timestamps [usecs]");
78 MODULE_PARM_DESC(timestamp_monotonic, "Use monotonic timestamps");
79
80 static void store_vblank(struct drm_device *dev, unsigned int pipe,
81 u32 vblank_count_inc,
82 struct timeval *t_vblank, u32 last)
83 {
84 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
85 u32 tslot;
86
87 assert_spin_locked(&dev->vblank_time_lock);
88
89 vblank->last = last;
90
91 /* All writers hold the spinlock, but readers are serialized by
92 * the latching of vblank->count below.
93 */
94 tslot = vblank->count + vblank_count_inc;
95 vblanktimestamp(dev, pipe, tslot) = *t_vblank;
96
97 /*
98 * vblank timestamp updates are protected on the write side with
99 * vblank_time_lock, but on the read side done locklessly using a
100 * sequence-lock on the vblank counter. Ensure correct ordering using
101 * memory barrriers. We need the barrier both before and also after the
102 * counter update to synchronize with the next timestamp write.
103 * The read-side barriers for this are in drm_vblank_count_and_time.
104 */
105 smp_wmb();
106 vblank->count += vblank_count_inc;
107 smp_wmb();
108 }
109
110 /**
111 * drm_reset_vblank_timestamp - reset the last timestamp to the last vblank
112 * @dev: DRM device
113 * @pipe: index of CRTC for which to reset the timestamp
114 *
115 * Reset the stored timestamp for the current vblank count to correspond
116 * to the last vblank occurred.
117 *
118 * Only to be called from drm_vblank_on().
119 *
120 * Note: caller must hold dev->vbl_lock since this reads & writes
121 * device vblank fields.
122 */
123 static void drm_reset_vblank_timestamp(struct drm_device *dev, unsigned int pipe)
124 {
125 u32 cur_vblank;
126 bool rc;
127 struct timeval t_vblank;
128 int count = DRM_TIMESTAMP_MAXRETRIES;
129
130 spin_lock(&dev->vblank_time_lock);
131
132 /*
133 * sample the current counter to avoid random jumps
134 * when drm_vblank_enable() applies the diff
135 */
136 do {
137 cur_vblank = dev->driver->get_vblank_counter(dev, pipe);
138 rc = drm_get_last_vbltimestamp(dev, pipe, &t_vblank, 0);
139 } while (cur_vblank != dev->driver->get_vblank_counter(dev, pipe) && --count > 0);
140
141 /*
142 * Only reinitialize corresponding vblank timestamp if high-precision query
143 * available and didn't fail. Otherwise reinitialize delayed at next vblank
144 * interrupt and assign 0 for now, to mark the vblanktimestamp as invalid.
145 */
146 if (!rc)
147 t_vblank = (struct timeval) {0, 0};
148
149 /*
150 * +1 to make sure user will never see the same
151 * vblank counter value before and after a modeset
152 */
153 store_vblank(dev, pipe, 1, &t_vblank, cur_vblank);
154
155 spin_unlock(&dev->vblank_time_lock);
156 }
157
158 /**
159 * drm_update_vblank_count - update the master vblank counter
160 * @dev: DRM device
161 * @pipe: counter to update
162 *
163 * Call back into the driver to update the appropriate vblank counter
164 * (specified by @pipe). Deal with wraparound, if it occurred, and
165 * update the last read value so we can deal with wraparound on the next
166 * call if necessary.
167 *
168 * Only necessary when going from off->on, to account for frames we
169 * didn't get an interrupt for.
170 *
171 * Note: caller must hold dev->vbl_lock since this reads & writes
172 * device vblank fields.
173 */
174 static void drm_update_vblank_count(struct drm_device *dev, unsigned int pipe,
175 unsigned long flags)
176 {
177 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
178 u32 cur_vblank, diff;
179 bool rc;
180 struct timeval t_vblank;
181 int count = DRM_TIMESTAMP_MAXRETRIES;
182 int framedur_ns = vblank->framedur_ns;
183
184 /*
185 * Interrupts were disabled prior to this call, so deal with counter
186 * wrap if needed.
187 * NOTE! It's possible we lost a full dev->max_vblank_count + 1 events
188 * here if the register is small or we had vblank interrupts off for
189 * a long time.
190 *
191 * We repeat the hardware vblank counter & timestamp query until
192 * we get consistent results. This to prevent races between gpu
193 * updating its hardware counter while we are retrieving the
194 * corresponding vblank timestamp.
195 */
196 do {
197 cur_vblank = dev->driver->get_vblank_counter(dev, pipe);
198 rc = drm_get_last_vbltimestamp(dev, pipe, &t_vblank, flags);
199 } while (cur_vblank != dev->driver->get_vblank_counter(dev, pipe) && --count > 0);
200
201 if (dev->max_vblank_count != 0) {
202 /* trust the hw counter when it's around */
203 diff = (cur_vblank - vblank->last) & dev->max_vblank_count;
204 } else if (rc && framedur_ns) {
205 const struct timeval *t_old;
206 u64 diff_ns;
207
208 t_old = &vblanktimestamp(dev, pipe, vblank->count);
209 diff_ns = timeval_to_ns(&t_vblank) - timeval_to_ns(t_old);
210
211 /*
212 * Figure out how many vblanks we've missed based
213 * on the difference in the timestamps and the
214 * frame/field duration.
215 */
216 diff = DIV_ROUND_CLOSEST_ULL(diff_ns, framedur_ns);
217
218 if (diff == 0 && flags & DRM_CALLED_FROM_VBLIRQ)
219 DRM_DEBUG_VBL("crtc %u: Redundant vblirq ignored."
220 " diff_ns = %lld, framedur_ns = %d)\n",
221 pipe, (long long) diff_ns, framedur_ns);
222 } else {
223 /* some kind of default for drivers w/o accurate vbl timestamping */
224 diff = (flags & DRM_CALLED_FROM_VBLIRQ) != 0;
225 }
226
227 /*
228 * Within a drm_vblank_pre_modeset - drm_vblank_post_modeset
229 * interval? If so then vblank irqs keep running and it will likely
230 * happen that the hardware vblank counter is not trustworthy as it
231 * might reset at some point in that interval and vblank timestamps
232 * are not trustworthy either in that interval. Iow. this can result
233 * in a bogus diff >> 1 which must be avoided as it would cause
234 * random large forward jumps of the software vblank counter.
235 */
236 if (diff > 1 && (vblank->inmodeset & 0x2)) {
237 DRM_DEBUG_VBL("clamping vblank bump to 1 on crtc %u: diffr=%u"
238 " due to pre-modeset.\n", pipe, diff);
239 diff = 1;
240 }
241
242 /*
243 * FIMXE: Need to replace this hack with proper seqlocks.
244 *
245 * Restrict the bump of the software vblank counter to a safe maximum
246 * value of +1 whenever there is the possibility that concurrent readers
247 * of vblank timestamps could be active at the moment, as the current
248 * implementation of the timestamp caching and updating is not safe
249 * against concurrent readers for calls to store_vblank() with a bump
250 * of anything but +1. A bump != 1 would very likely return corrupted
251 * timestamps to userspace, because the same slot in the cache could
252 * be concurrently written by store_vblank() and read by one of those
253 * readers without the read-retry logic detecting the collision.
254 *
255 * Concurrent readers can exist when we are called from the
256 * drm_vblank_off() or drm_vblank_on() functions and other non-vblank-
257 * irq callers. However, all those calls to us are happening with the
258 * vbl_lock locked to prevent drm_vblank_get(), so the vblank refcount
259 * can't increase while we are executing. Therefore a zero refcount at
260 * this point is safe for arbitrary counter bumps if we are called
261 * outside vblank irq, a non-zero count is not 100% safe. Unfortunately
262 * we must also accept a refcount of 1, as whenever we are called from
263 * drm_vblank_get() -> drm_vblank_enable() the refcount will be 1 and
264 * we must let that one pass through in order to not lose vblank counts
265 * during vblank irq off - which would completely defeat the whole
266 * point of this routine.
267 *
268 * Whenever we are called from vblank irq, we have to assume concurrent
269 * readers exist or can show up any time during our execution, even if
270 * the refcount is currently zero, as vblank irqs are usually only
271 * enabled due to the presence of readers, and because when we are called
272 * from vblank irq we can't hold the vbl_lock to protect us from sudden
273 * bumps in vblank refcount. Therefore also restrict bumps to +1 when
274 * called from vblank irq.
275 */
276 if ((diff > 1) && (atomic_read(&vblank->refcount) > 1 ||
277 (flags & DRM_CALLED_FROM_VBLIRQ))) {
278 DRM_DEBUG_VBL("clamping vblank bump to 1 on crtc %u: diffr=%u "
279 "refcount %u, vblirq %u\n", pipe, diff,
280 atomic_read(&vblank->refcount),
281 (flags & DRM_CALLED_FROM_VBLIRQ) != 0);
282 diff = 1;
283 }
284
285 DRM_DEBUG_VBL("updating vblank count on crtc %u:"
286 " current=%u, diff=%u, hw=%u hw_last=%u\n",
287 pipe, vblank->count, diff, cur_vblank, vblank->last);
288
289 if (diff == 0) {
290 WARN_ON_ONCE(cur_vblank != vblank->last);
291 return;
292 }
293
294 /*
295 * Only reinitialize corresponding vblank timestamp if high-precision query
296 * available and didn't fail, or we were called from the vblank interrupt.
297 * Otherwise reinitialize delayed at next vblank interrupt and assign 0
298 * for now, to mark the vblanktimestamp as invalid.
299 */
300 if (!rc && (flags & DRM_CALLED_FROM_VBLIRQ) == 0)
301 t_vblank = (struct timeval) {0, 0};
302
303 store_vblank(dev, pipe, diff, &t_vblank, cur_vblank);
304 }
305
306 /*
307 * Disable vblank irq's on crtc, make sure that last vblank count
308 * of hardware and corresponding consistent software vblank counter
309 * are preserved, even if there are any spurious vblank irq's after
310 * disable.
311 */
312 static void vblank_disable_and_save(struct drm_device *dev, unsigned int pipe)
313 {
314 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
315 unsigned long irqflags;
316
317 /* Prevent vblank irq processing while disabling vblank irqs,
318 * so no updates of timestamps or count can happen after we've
319 * disabled. Needed to prevent races in case of delayed irq's.
320 */
321 spin_lock_irqsave(&dev->vblank_time_lock, irqflags);
322
323 /*
324 * Only disable vblank interrupts if they're enabled. This avoids
325 * calling the ->disable_vblank() operation in atomic context with the
326 * hardware potentially runtime suspended.
327 */
328 if (vblank->enabled) {
329 dev->driver->disable_vblank(dev, pipe);
330 vblank->enabled = false;
331 }
332
333 /*
334 * Always update the count and timestamp to maintain the
335 * appearance that the counter has been ticking all along until
336 * this time. This makes the count account for the entire time
337 * between drm_vblank_on() and drm_vblank_off().
338 */
339 drm_update_vblank_count(dev, pipe, 0);
340
341 spin_unlock_irqrestore(&dev->vblank_time_lock, irqflags);
342 }
343
344 static void vblank_disable_fn(unsigned long arg)
345 {
346 struct drm_vblank_crtc *vblank = (void *)arg;
347 struct drm_device *dev = vblank->dev;
348 unsigned int pipe = vblank->pipe;
349 unsigned long irqflags;
350
351 spin_lock_irqsave(&dev->vbl_lock, irqflags);
352 if (atomic_read(&vblank->refcount) == 0 && vblank->enabled) {
353 DRM_DEBUG("disabling vblank on crtc %u\n", pipe);
354 vblank_disable_and_save(dev, pipe);
355 }
356 spin_unlock_irqrestore(&dev->vbl_lock, irqflags);
357 }
358
359 /**
360 * drm_vblank_cleanup - cleanup vblank support
361 * @dev: DRM device
362 *
363 * This function cleans up any resources allocated in drm_vblank_init.
364 */
365 void drm_vblank_cleanup(struct drm_device *dev)
366 {
367 unsigned int pipe;
368
369 /* Bail if the driver didn't call drm_vblank_init() */
370 if (dev->num_crtcs == 0)
371 return;
372
373 for (pipe = 0; pipe < dev->num_crtcs; pipe++) {
374 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
375
376 WARN_ON(vblank->enabled &&
377 drm_core_check_feature(dev, DRIVER_MODESET));
378
379 del_timer_sync(&vblank->disable_timer);
380 }
381
382 kfree(dev->vblank);
383
384 dev->num_crtcs = 0;
385 }
386 EXPORT_SYMBOL(drm_vblank_cleanup);
387
388 /**
389 * drm_vblank_init - initialize vblank support
390 * @dev: DRM device
391 * @num_crtcs: number of CRTCs supported by @dev
392 *
393 * This function initializes vblank support for @num_crtcs display pipelines.
394 *
395 * Returns:
396 * Zero on success or a negative error code on failure.
397 */
398 int drm_vblank_init(struct drm_device *dev, unsigned int num_crtcs)
399 {
400 int ret = -ENOMEM;
401 unsigned int i;
402
403 spin_lock_init(&dev->vbl_lock);
404 spin_lock_init(&dev->vblank_time_lock);
405
406 dev->num_crtcs = num_crtcs;
407
408 dev->vblank = kcalloc(num_crtcs, sizeof(*dev->vblank), GFP_KERNEL);
409 if (!dev->vblank)
410 goto err;
411
412 for (i = 0; i < num_crtcs; i++) {
413 struct drm_vblank_crtc *vblank = &dev->vblank[i];
414
415 vblank->dev = dev;
416 vblank->pipe = i;
417 init_waitqueue_head(&vblank->queue);
418 setup_timer(&vblank->disable_timer, vblank_disable_fn,
419 (unsigned long)vblank);
420 }
421
422 DRM_INFO("Supports vblank timestamp caching Rev 2 (21.10.2013).\n");
423
424 /* Driver specific high-precision vblank timestamping supported? */
425 if (dev->driver->get_vblank_timestamp)
426 DRM_INFO("Driver supports precise vblank timestamp query.\n");
427 else
428 DRM_INFO("No driver support for vblank timestamp query.\n");
429
430 /* Must have precise timestamping for reliable vblank instant disable */
431 if (dev->vblank_disable_immediate && !dev->driver->get_vblank_timestamp) {
432 dev->vblank_disable_immediate = false;
433 DRM_INFO("Setting vblank_disable_immediate to false because "
434 "get_vblank_timestamp == NULL\n");
435 }
436
437 return 0;
438
439 err:
440 dev->num_crtcs = 0;
441 return ret;
442 }
443 EXPORT_SYMBOL(drm_vblank_init);
444
445 static void drm_irq_vgaarb_nokms(void *cookie, bool state)
446 {
447 struct drm_device *dev = cookie;
448
449 if (dev->driver->vgaarb_irq) {
450 dev->driver->vgaarb_irq(dev, state);
451 return;
452 }
453
454 if (!dev->irq_enabled)
455 return;
456
457 if (state) {
458 if (dev->driver->irq_uninstall)
459 dev->driver->irq_uninstall(dev);
460 } else {
461 if (dev->driver->irq_preinstall)
462 dev->driver->irq_preinstall(dev);
463 if (dev->driver->irq_postinstall)
464 dev->driver->irq_postinstall(dev);
465 }
466 }
467
468 /**
469 * drm_irq_install - install IRQ handler
470 * @dev: DRM device
471 * @irq: IRQ number to install the handler for
472 *
473 * Initializes the IRQ related data. Installs the handler, calling the driver
474 * irq_preinstall() and irq_postinstall() functions before and after the
475 * installation.
476 *
477 * This is the simplified helper interface provided for drivers with no special
478 * needs. Drivers which need to install interrupt handlers for multiple
479 * interrupts must instead set drm_device->irq_enabled to signal the DRM core
480 * that vblank interrupts are available.
481 *
482 * Returns:
483 * Zero on success or a negative error code on failure.
484 */
485 int drm_irq_install(struct drm_device *dev, int irq)
486 {
487 int ret;
488 unsigned long sh_flags = 0;
489
490 if (!drm_core_check_feature(dev, DRIVER_HAVE_IRQ))
491 return -EINVAL;
492
493 if (irq == 0)
494 return -EINVAL;
495
496 /* Driver must have been initialized */
497 if (!dev->dev_private)
498 return -EINVAL;
499
500 if (dev->irq_enabled)
501 return -EBUSY;
502 dev->irq_enabled = true;
503
504 DRM_DEBUG("irq=%d\n", irq);
505
506 /* Before installing handler */
507 if (dev->driver->irq_preinstall)
508 dev->driver->irq_preinstall(dev);
509
510 /* Install handler */
511 if (drm_core_check_feature(dev, DRIVER_IRQ_SHARED))
512 sh_flags = IRQF_SHARED;
513
514 ret = request_irq(irq, dev->driver->irq_handler,
515 sh_flags, dev->driver->name, dev);
516
517 if (ret < 0) {
518 dev->irq_enabled = false;
519 return ret;
520 }
521
522 if (!drm_core_check_feature(dev, DRIVER_MODESET))
523 vga_client_register(dev->pdev, (void *)dev, drm_irq_vgaarb_nokms, NULL);
524
525 /* After installing handler */
526 if (dev->driver->irq_postinstall)
527 ret = dev->driver->irq_postinstall(dev);
528
529 if (ret < 0) {
530 dev->irq_enabled = false;
531 if (!drm_core_check_feature(dev, DRIVER_MODESET))
532 vga_client_register(dev->pdev, NULL, NULL, NULL);
533 free_irq(irq, dev);
534 } else {
535 dev->irq = irq;
536 }
537
538 return ret;
539 }
540 EXPORT_SYMBOL(drm_irq_install);
541
542 /**
543 * drm_irq_uninstall - uninstall the IRQ handler
544 * @dev: DRM device
545 *
546 * Calls the driver's irq_uninstall() function and unregisters the IRQ handler.
547 * This should only be called by drivers which used drm_irq_install() to set up
548 * their interrupt handler. Other drivers must only reset
549 * drm_device->irq_enabled to false.
550 *
551 * Note that for kernel modesetting drivers it is a bug if this function fails.
552 * The sanity checks are only to catch buggy user modesetting drivers which call
553 * the same function through an ioctl.
554 *
555 * Returns:
556 * Zero on success or a negative error code on failure.
557 */
558 int drm_irq_uninstall(struct drm_device *dev)
559 {
560 unsigned long irqflags;
561 bool irq_enabled;
562 int i;
563
564 if (!drm_core_check_feature(dev, DRIVER_HAVE_IRQ))
565 return -EINVAL;
566
567 irq_enabled = dev->irq_enabled;
568 dev->irq_enabled = false;
569
570 /*
571 * Wake up any waiters so they don't hang. This is just to paper over
572 * isssues for UMS drivers which aren't in full control of their
573 * vblank/irq handling. KMS drivers must ensure that vblanks are all
574 * disabled when uninstalling the irq handler.
575 */
576 if (dev->num_crtcs) {
577 spin_lock_irqsave(&dev->vbl_lock, irqflags);
578 for (i = 0; i < dev->num_crtcs; i++) {
579 struct drm_vblank_crtc *vblank = &dev->vblank[i];
580
581 if (!vblank->enabled)
582 continue;
583
584 WARN_ON(drm_core_check_feature(dev, DRIVER_MODESET));
585
586 vblank_disable_and_save(dev, i);
587 wake_up(&vblank->queue);
588 }
589 spin_unlock_irqrestore(&dev->vbl_lock, irqflags);
590 }
591
592 if (!irq_enabled)
593 return -EINVAL;
594
595 DRM_DEBUG("irq=%d\n", dev->irq);
596
597 if (!drm_core_check_feature(dev, DRIVER_MODESET))
598 vga_client_register(dev->pdev, NULL, NULL, NULL);
599
600 if (dev->driver->irq_uninstall)
601 dev->driver->irq_uninstall(dev);
602
603 free_irq(dev->irq, dev);
604
605 return 0;
606 }
607 EXPORT_SYMBOL(drm_irq_uninstall);
608
609 /*
610 * IRQ control ioctl.
611 *
612 * \param inode device inode.
613 * \param file_priv DRM file private.
614 * \param cmd command.
615 * \param arg user argument, pointing to a drm_control structure.
616 * \return zero on success or a negative number on failure.
617 *
618 * Calls irq_install() or irq_uninstall() according to \p arg.
619 */
620 int drm_control(struct drm_device *dev, void *data,
621 struct drm_file *file_priv)
622 {
623 struct drm_control *ctl = data;
624 int ret = 0, irq;
625
626 /* if we haven't irq we fallback for compatibility reasons -
627 * this used to be a separate function in drm_dma.h
628 */
629
630 if (!drm_core_check_feature(dev, DRIVER_HAVE_IRQ))
631 return 0;
632 if (drm_core_check_feature(dev, DRIVER_MODESET))
633 return 0;
634 /* UMS was only ever support on pci devices. */
635 if (WARN_ON(!dev->pdev))
636 return -EINVAL;
637
638 switch (ctl->func) {
639 case DRM_INST_HANDLER:
640 irq = dev->pdev->irq;
641
642 if (dev->if_version < DRM_IF_VERSION(1, 2) &&
643 ctl->irq != irq)
644 return -EINVAL;
645 mutex_lock(&dev->struct_mutex);
646 ret = drm_irq_install(dev, irq);
647 mutex_unlock(&dev->struct_mutex);
648
649 return ret;
650 case DRM_UNINST_HANDLER:
651 mutex_lock(&dev->struct_mutex);
652 ret = drm_irq_uninstall(dev);
653 mutex_unlock(&dev->struct_mutex);
654
655 return ret;
656 default:
657 return -EINVAL;
658 }
659 }
660
661 /**
662 * drm_calc_timestamping_constants - calculate vblank timestamp constants
663 * @crtc: drm_crtc whose timestamp constants should be updated.
664 * @mode: display mode containing the scanout timings
665 *
666 * Calculate and store various constants which are later
667 * needed by vblank and swap-completion timestamping, e.g,
668 * by drm_calc_vbltimestamp_from_scanoutpos(). They are
669 * derived from CRTC's true scanout timing, so they take
670 * things like panel scaling or other adjustments into account.
671 */
672 void drm_calc_timestamping_constants(struct drm_crtc *crtc,
673 const struct drm_display_mode *mode)
674 {
675 struct drm_device *dev = crtc->dev;
676 unsigned int pipe = drm_crtc_index(crtc);
677 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
678 int linedur_ns = 0, framedur_ns = 0;
679 int dotclock = mode->crtc_clock;
680
681 if (!dev->num_crtcs)
682 return;
683
684 if (WARN_ON(pipe >= dev->num_crtcs))
685 return;
686
687 /* Valid dotclock? */
688 if (dotclock > 0) {
689 int frame_size = mode->crtc_htotal * mode->crtc_vtotal;
690
691 /*
692 * Convert scanline length in pixels and video
693 * dot clock to line duration and frame duration
694 * in nanoseconds:
695 */
696 linedur_ns = div_u64((u64) mode->crtc_htotal * 1000000, dotclock);
697 framedur_ns = div_u64((u64) frame_size * 1000000, dotclock);
698
699 /*
700 * Fields of interlaced scanout modes are only half a frame duration.
701 */
702 if (mode->flags & DRM_MODE_FLAG_INTERLACE)
703 framedur_ns /= 2;
704 } else
705 DRM_ERROR("crtc %u: Can't calculate constants, dotclock = 0!\n",
706 crtc->base.id);
707
708 vblank->linedur_ns = linedur_ns;
709 vblank->framedur_ns = framedur_ns;
710
711 DRM_DEBUG("crtc %u: hwmode: htotal %d, vtotal %d, vdisplay %d\n",
712 crtc->base.id, mode->crtc_htotal,
713 mode->crtc_vtotal, mode->crtc_vdisplay);
714 DRM_DEBUG("crtc %u: clock %d kHz framedur %d linedur %d\n",
715 crtc->base.id, dotclock, framedur_ns, linedur_ns);
716 }
717 EXPORT_SYMBOL(drm_calc_timestamping_constants);
718
719 /**
720 * drm_calc_vbltimestamp_from_scanoutpos - precise vblank timestamp helper
721 * @dev: DRM device
722 * @pipe: index of CRTC whose vblank timestamp to retrieve
723 * @max_error: Desired maximum allowable error in timestamps (nanosecs)
724 * On return contains true maximum error of timestamp
725 * @vblank_time: Pointer to struct timeval which should receive the timestamp
726 * @flags: Flags to pass to driver:
727 * 0 = Default,
728 * DRM_CALLED_FROM_VBLIRQ = If function is called from vbl IRQ handler
729 * @mode: mode which defines the scanout timings
730 *
731 * Implements calculation of exact vblank timestamps from given drm_display_mode
732 * timings and current video scanout position of a CRTC. This can be called from
733 * within get_vblank_timestamp() implementation of a kms driver to implement the
734 * actual timestamping.
735 *
736 * Should return timestamps conforming to the OML_sync_control OpenML
737 * extension specification. The timestamp corresponds to the end of
738 * the vblank interval, aka start of scanout of topmost-leftmost display
739 * pixel in the following video frame.
740 *
741 * Requires support for optional dev->driver->get_scanout_position()
742 * in kms driver, plus a bit of setup code to provide a drm_display_mode
743 * that corresponds to the true scanout timing.
744 *
745 * The current implementation only handles standard video modes. It
746 * returns as no operation if a doublescan or interlaced video mode is
747 * active. Higher level code is expected to handle this.
748 *
749 * Returns:
750 * Negative value on error, failure or if not supported in current
751 * video mode:
752 *
753 * -EINVAL - Invalid CRTC.
754 * -EAGAIN - Temporary unavailable, e.g., called before initial modeset.
755 * -ENOTSUPP - Function not supported in current display mode.
756 * -EIO - Failed, e.g., due to failed scanout position query.
757 *
758 * Returns or'ed positive status flags on success:
759 *
760 * DRM_VBLANKTIME_SCANOUTPOS_METHOD - Signal this method used for timestamping.
761 * DRM_VBLANKTIME_INVBL - Timestamp taken while scanout was in vblank interval.
762 *
763 */
764 int drm_calc_vbltimestamp_from_scanoutpos(struct drm_device *dev,
765 unsigned int pipe,
766 int *max_error,
767 struct timeval *vblank_time,
768 unsigned flags,
769 const struct drm_display_mode *mode)
770 {
771 struct timeval tv_etime;
772 ktime_t stime, etime;
773 unsigned int vbl_status;
774 int ret = DRM_VBLANKTIME_SCANOUTPOS_METHOD;
775 int vpos, hpos, i;
776 int delta_ns, duration_ns;
777
778 if (pipe >= dev->num_crtcs) {
779 DRM_ERROR("Invalid crtc %u\n", pipe);
780 return -EINVAL;
781 }
782
783 /* Scanout position query not supported? Should not happen. */
784 if (!dev->driver->get_scanout_position) {
785 DRM_ERROR("Called from driver w/o get_scanout_position()!?\n");
786 return -EIO;
787 }
788
789 /* If mode timing undefined, just return as no-op:
790 * Happens during initial modesetting of a crtc.
791 */
792 if (mode->crtc_clock == 0) {
793 DRM_DEBUG("crtc %u: Noop due to uninitialized mode.\n", pipe);
794 return -EAGAIN;
795 }
796
797 /* Get current scanout position with system timestamp.
798 * Repeat query up to DRM_TIMESTAMP_MAXRETRIES times
799 * if single query takes longer than max_error nanoseconds.
800 *
801 * This guarantees a tight bound on maximum error if
802 * code gets preempted or delayed for some reason.
803 */
804 for (i = 0; i < DRM_TIMESTAMP_MAXRETRIES; i++) {
805 /*
806 * Get vertical and horizontal scanout position vpos, hpos,
807 * and bounding timestamps stime, etime, pre/post query.
808 */
809 vbl_status = dev->driver->get_scanout_position(dev, pipe, flags,
810 &vpos, &hpos,
811 &stime, &etime,
812 mode);
813
814 /* Return as no-op if scanout query unsupported or failed. */
815 if (!(vbl_status & DRM_SCANOUTPOS_VALID)) {
816 DRM_DEBUG("crtc %u : scanoutpos query failed [0x%x].\n",
817 pipe, vbl_status);
818 return -EIO;
819 }
820
821 /* Compute uncertainty in timestamp of scanout position query. */
822 duration_ns = ktime_to_ns(etime) - ktime_to_ns(stime);
823
824 /* Accept result with < max_error nsecs timing uncertainty. */
825 if (duration_ns <= *max_error)
826 break;
827 }
828
829 /* Noisy system timing? */
830 if (i == DRM_TIMESTAMP_MAXRETRIES) {
831 DRM_DEBUG("crtc %u: Noisy timestamp %d us > %d us [%d reps].\n",
832 pipe, duration_ns/1000, *max_error/1000, i);
833 }
834
835 /* Return upper bound of timestamp precision error. */
836 *max_error = duration_ns;
837
838 /* Check if in vblank area:
839 * vpos is >=0 in video scanout area, but negative
840 * within vblank area, counting down the number of lines until
841 * start of scanout.
842 */
843 if (vbl_status & DRM_SCANOUTPOS_IN_VBLANK)
844 ret |= DRM_VBLANKTIME_IN_VBLANK;
845
846 /* Convert scanout position into elapsed time at raw_time query
847 * since start of scanout at first display scanline. delta_ns
848 * can be negative if start of scanout hasn't happened yet.
849 */
850 delta_ns = div_s64(1000000LL * (vpos * mode->crtc_htotal + hpos),
851 mode->crtc_clock);
852
853 if (!drm_timestamp_monotonic)
854 etime = ktime_mono_to_real(etime);
855
856 /* save this only for debugging purposes */
857 tv_etime = ktime_to_timeval(etime);
858 /* Subtract time delta from raw timestamp to get final
859 * vblank_time timestamp for end of vblank.
860 */
861 etime = ktime_sub_ns(etime, delta_ns);
862 *vblank_time = ktime_to_timeval(etime);
863
864 DRM_DEBUG_VBL("crtc %u : v 0x%x p(%d,%d)@ %ld.%ld -> %ld.%ld [e %d us, %d rep]\n",
865 pipe, vbl_status, hpos, vpos,
866 (long)tv_etime.tv_sec, (long)tv_etime.tv_usec,
867 (long)vblank_time->tv_sec, (long)vblank_time->tv_usec,
868 duration_ns/1000, i);
869
870 return ret;
871 }
872 EXPORT_SYMBOL(drm_calc_vbltimestamp_from_scanoutpos);
873
874 static struct timeval get_drm_timestamp(void)
875 {
876 ktime_t now;
877
878 now = drm_timestamp_monotonic ? ktime_get() : ktime_get_real();
879 return ktime_to_timeval(now);
880 }
881
882 /**
883 * drm_get_last_vbltimestamp - retrieve raw timestamp for the most recent
884 * vblank interval
885 * @dev: DRM device
886 * @pipe: index of CRTC whose vblank timestamp to retrieve
887 * @tvblank: Pointer to target struct timeval which should receive the timestamp
888 * @flags: Flags to pass to driver:
889 * 0 = Default,
890 * DRM_CALLED_FROM_VBLIRQ = If function is called from vbl IRQ handler
891 *
892 * Fetches the system timestamp corresponding to the time of the most recent
893 * vblank interval on specified CRTC. May call into kms-driver to
894 * compute the timestamp with a high-precision GPU specific method.
895 *
896 * Returns zero if timestamp originates from uncorrected do_gettimeofday()
897 * call, i.e., it isn't very precisely locked to the true vblank.
898 *
899 * Returns:
900 * True if timestamp is considered to be very precise, false otherwise.
901 */
902 static bool
903 drm_get_last_vbltimestamp(struct drm_device *dev, unsigned int pipe,
904 struct timeval *tvblank, unsigned flags)
905 {
906 int ret;
907
908 /* Define requested maximum error on timestamps (nanoseconds). */
909 int max_error = (int) drm_timestamp_precision * 1000;
910
911 /* Query driver if possible and precision timestamping enabled. */
912 if (dev->driver->get_vblank_timestamp && (max_error > 0)) {
913 ret = dev->driver->get_vblank_timestamp(dev, pipe, &max_error,
914 tvblank, flags);
915 if (ret > 0)
916 return true;
917 }
918
919 /* GPU high precision timestamp query unsupported or failed.
920 * Return current monotonic/gettimeofday timestamp as best estimate.
921 */
922 *tvblank = get_drm_timestamp();
923
924 return false;
925 }
926
927 /**
928 * drm_vblank_count - retrieve "cooked" vblank counter value
929 * @dev: DRM device
930 * @pipe: index of CRTC for which to retrieve the counter
931 *
932 * Fetches the "cooked" vblank count value that represents the number of
933 * vblank events since the system was booted, including lost events due to
934 * modesetting activity.
935 *
936 * This is the legacy version of drm_crtc_vblank_count().
937 *
938 * Returns:
939 * The software vblank counter.
940 */
941 u32 drm_vblank_count(struct drm_device *dev, unsigned int pipe)
942 {
943 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
944
945 if (WARN_ON(pipe >= dev->num_crtcs))
946 return 0;
947
948 return vblank->count;
949 }
950 EXPORT_SYMBOL(drm_vblank_count);
951
952 /**
953 * drm_crtc_vblank_count - retrieve "cooked" vblank counter value
954 * @crtc: which counter to retrieve
955 *
956 * Fetches the "cooked" vblank count value that represents the number of
957 * vblank events since the system was booted, including lost events due to
958 * modesetting activity.
959 *
960 * This is the native KMS version of drm_vblank_count().
961 *
962 * Returns:
963 * The software vblank counter.
964 */
965 u32 drm_crtc_vblank_count(struct drm_crtc *crtc)
966 {
967 return drm_vblank_count(crtc->dev, drm_crtc_index(crtc));
968 }
969 EXPORT_SYMBOL(drm_crtc_vblank_count);
970
971 /**
972 * drm_vblank_count_and_time - retrieve "cooked" vblank counter value and the
973 * system timestamp corresponding to that vblank counter value.
974 * @dev: DRM device
975 * @pipe: index of CRTC whose counter to retrieve
976 * @vblanktime: Pointer to struct timeval to receive the vblank timestamp.
977 *
978 * Fetches the "cooked" vblank count value that represents the number of
979 * vblank events since the system was booted, including lost events due to
980 * modesetting activity. Returns corresponding system timestamp of the time
981 * of the vblank interval that corresponds to the current vblank counter value.
982 *
983 * This is the legacy version of drm_crtc_vblank_count_and_time().
984 */
985 u32 drm_vblank_count_and_time(struct drm_device *dev, unsigned int pipe,
986 struct timeval *vblanktime)
987 {
988 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
989 int count = DRM_TIMESTAMP_MAXRETRIES;
990 u32 cur_vblank;
991
992 if (WARN_ON(pipe >= dev->num_crtcs))
993 return 0;
994
995 /*
996 * Vblank timestamps are read lockless. To ensure consistency the vblank
997 * counter is rechecked and ordering is ensured using memory barriers.
998 * This works like a seqlock. The write-side barriers are in store_vblank.
999 */
1000 do {
1001 cur_vblank = vblank->count;
1002 smp_rmb();
1003 *vblanktime = vblanktimestamp(dev, pipe, cur_vblank);
1004 smp_rmb();
1005 } while (cur_vblank != vblank->count && --count > 0);
1006
1007 return cur_vblank;
1008 }
1009 EXPORT_SYMBOL(drm_vblank_count_and_time);
1010
1011 /**
1012 * drm_crtc_vblank_count_and_time - retrieve "cooked" vblank counter value
1013 * and the system timestamp corresponding to that vblank counter value
1014 * @crtc: which counter to retrieve
1015 * @vblanktime: Pointer to struct timeval to receive the vblank timestamp.
1016 *
1017 * Fetches the "cooked" vblank count value that represents the number of
1018 * vblank events since the system was booted, including lost events due to
1019 * modesetting activity. Returns corresponding system timestamp of the time
1020 * of the vblank interval that corresponds to the current vblank counter value.
1021 *
1022 * This is the native KMS version of drm_vblank_count_and_time().
1023 */
1024 u32 drm_crtc_vblank_count_and_time(struct drm_crtc *crtc,
1025 struct timeval *vblanktime)
1026 {
1027 return drm_vblank_count_and_time(crtc->dev, drm_crtc_index(crtc),
1028 vblanktime);
1029 }
1030 EXPORT_SYMBOL(drm_crtc_vblank_count_and_time);
1031
1032 static void send_vblank_event(struct drm_device *dev,
1033 struct drm_pending_vblank_event *e,
1034 unsigned long seq, struct timeval *now)
1035 {
1036 e->event.sequence = seq;
1037 e->event.tv_sec = now->tv_sec;
1038 e->event.tv_usec = now->tv_usec;
1039
1040 drm_send_event_locked(dev, &e->base);
1041
1042 trace_drm_vblank_event_delivered(e->base.pid, e->pipe,
1043 e->event.sequence);
1044 }
1045
1046 /**
1047 * drm_arm_vblank_event - arm vblank event after pageflip
1048 * @dev: DRM device
1049 * @pipe: CRTC index
1050 * @e: the event to prepare to send
1051 *
1052 * A lot of drivers need to generate vblank events for the very next vblank
1053 * interrupt. For example when the page flip interrupt happens when the page
1054 * flip gets armed, but not when it actually executes within the next vblank
1055 * period. This helper function implements exactly the required vblank arming
1056 * behaviour.
1057 *
1058 * Caller must hold event lock. Caller must also hold a vblank reference for
1059 * the event @e, which will be dropped when the next vblank arrives.
1060 *
1061 * This is the legacy version of drm_crtc_arm_vblank_event().
1062 */
1063 void drm_arm_vblank_event(struct drm_device *dev, unsigned int pipe,
1064 struct drm_pending_vblank_event *e)
1065 {
1066 assert_spin_locked(&dev->event_lock);
1067
1068 e->pipe = pipe;
1069 e->event.sequence = drm_vblank_count(dev, pipe);
1070 list_add_tail(&e->base.link, &dev->vblank_event_list);
1071 }
1072 EXPORT_SYMBOL(drm_arm_vblank_event);
1073
1074 /**
1075 * drm_crtc_arm_vblank_event - arm vblank event after pageflip
1076 * @crtc: the source CRTC of the vblank event
1077 * @e: the event to send
1078 *
1079 * A lot of drivers need to generate vblank events for the very next vblank
1080 * interrupt. For example when the page flip interrupt happens when the page
1081 * flip gets armed, but not when it actually executes within the next vblank
1082 * period. This helper function implements exactly the required vblank arming
1083 * behaviour.
1084 *
1085 * Caller must hold event lock. Caller must also hold a vblank reference for
1086 * the event @e, which will be dropped when the next vblank arrives.
1087 *
1088 * This is the native KMS version of drm_arm_vblank_event().
1089 */
1090 void drm_crtc_arm_vblank_event(struct drm_crtc *crtc,
1091 struct drm_pending_vblank_event *e)
1092 {
1093 drm_arm_vblank_event(crtc->dev, drm_crtc_index(crtc), e);
1094 }
1095 EXPORT_SYMBOL(drm_crtc_arm_vblank_event);
1096
1097 /**
1098 * drm_send_vblank_event - helper to send vblank event after pageflip
1099 * @dev: DRM device
1100 * @pipe: CRTC index
1101 * @e: the event to send
1102 *
1103 * Updates sequence # and timestamp on event, and sends it to userspace.
1104 * Caller must hold event lock.
1105 *
1106 * This is the legacy version of drm_crtc_send_vblank_event().
1107 */
1108 void drm_send_vblank_event(struct drm_device *dev, unsigned int pipe,
1109 struct drm_pending_vblank_event *e)
1110 {
1111 struct timeval now;
1112 unsigned int seq;
1113
1114 if (dev->num_crtcs > 0) {
1115 seq = drm_vblank_count_and_time(dev, pipe, &now);
1116 } else {
1117 seq = 0;
1118
1119 now = get_drm_timestamp();
1120 }
1121 e->pipe = pipe;
1122 send_vblank_event(dev, e, seq, &now);
1123 }
1124 EXPORT_SYMBOL(drm_send_vblank_event);
1125
1126 /**
1127 * drm_crtc_send_vblank_event - helper to send vblank event after pageflip
1128 * @crtc: the source CRTC of the vblank event
1129 * @e: the event to send
1130 *
1131 * Updates sequence # and timestamp on event, and sends it to userspace.
1132 * Caller must hold event lock.
1133 *
1134 * This is the native KMS version of drm_send_vblank_event().
1135 */
1136 void drm_crtc_send_vblank_event(struct drm_crtc *crtc,
1137 struct drm_pending_vblank_event *e)
1138 {
1139 drm_send_vblank_event(crtc->dev, drm_crtc_index(crtc), e);
1140 }
1141 EXPORT_SYMBOL(drm_crtc_send_vblank_event);
1142
1143 /**
1144 * drm_vblank_enable - enable the vblank interrupt on a CRTC
1145 * @dev: DRM device
1146 * @pipe: CRTC index
1147 *
1148 * Returns:
1149 * Zero on success or a negative error code on failure.
1150 */
1151 static int drm_vblank_enable(struct drm_device *dev, unsigned int pipe)
1152 {
1153 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1154 int ret = 0;
1155
1156 assert_spin_locked(&dev->vbl_lock);
1157
1158 spin_lock(&dev->vblank_time_lock);
1159
1160 if (!vblank->enabled) {
1161 /*
1162 * Enable vblank irqs under vblank_time_lock protection.
1163 * All vblank count & timestamp updates are held off
1164 * until we are done reinitializing master counter and
1165 * timestamps. Filtercode in drm_handle_vblank() will
1166 * prevent double-accounting of same vblank interval.
1167 */
1168 ret = dev->driver->enable_vblank(dev, pipe);
1169 DRM_DEBUG("enabling vblank on crtc %u, ret: %d\n", pipe, ret);
1170 if (ret)
1171 atomic_dec(&vblank->refcount);
1172 else {
1173 vblank->enabled = true;
1174 drm_update_vblank_count(dev, pipe, 0);
1175 }
1176 }
1177
1178 spin_unlock(&dev->vblank_time_lock);
1179
1180 return ret;
1181 }
1182
1183 /**
1184 * drm_vblank_get - get a reference count on vblank events
1185 * @dev: DRM device
1186 * @pipe: index of CRTC to own
1187 *
1188 * Acquire a reference count on vblank events to avoid having them disabled
1189 * while in use.
1190 *
1191 * This is the legacy version of drm_crtc_vblank_get().
1192 *
1193 * Returns:
1194 * Zero on success or a negative error code on failure.
1195 */
1196 int drm_vblank_get(struct drm_device *dev, unsigned int pipe)
1197 {
1198 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1199 unsigned long irqflags;
1200 int ret = 0;
1201
1202 if (!dev->num_crtcs)
1203 return -EINVAL;
1204
1205 if (WARN_ON(pipe >= dev->num_crtcs))
1206 return -EINVAL;
1207
1208 spin_lock_irqsave(&dev->vbl_lock, irqflags);
1209 /* Going from 0->1 means we have to enable interrupts again */
1210 if (atomic_add_return(1, &vblank->refcount) == 1) {
1211 ret = drm_vblank_enable(dev, pipe);
1212 } else {
1213 if (!vblank->enabled) {
1214 atomic_dec(&vblank->refcount);
1215 ret = -EINVAL;
1216 }
1217 }
1218 spin_unlock_irqrestore(&dev->vbl_lock, irqflags);
1219
1220 return ret;
1221 }
1222 EXPORT_SYMBOL(drm_vblank_get);
1223
1224 /**
1225 * drm_crtc_vblank_get - get a reference count on vblank events
1226 * @crtc: which CRTC to own
1227 *
1228 * Acquire a reference count on vblank events to avoid having them disabled
1229 * while in use.
1230 *
1231 * This is the native kms version of drm_vblank_get().
1232 *
1233 * Returns:
1234 * Zero on success or a negative error code on failure.
1235 */
1236 int drm_crtc_vblank_get(struct drm_crtc *crtc)
1237 {
1238 return drm_vblank_get(crtc->dev, drm_crtc_index(crtc));
1239 }
1240 EXPORT_SYMBOL(drm_crtc_vblank_get);
1241
1242 /**
1243 * drm_vblank_put - release ownership of vblank events
1244 * @dev: DRM device
1245 * @pipe: index of CRTC to release
1246 *
1247 * Release ownership of a given vblank counter, turning off interrupts
1248 * if possible. Disable interrupts after drm_vblank_offdelay milliseconds.
1249 *
1250 * This is the legacy version of drm_crtc_vblank_put().
1251 */
1252 void drm_vblank_put(struct drm_device *dev, unsigned int pipe)
1253 {
1254 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1255
1256 if (WARN_ON(pipe >= dev->num_crtcs))
1257 return;
1258
1259 if (WARN_ON(atomic_read(&vblank->refcount) == 0))
1260 return;
1261
1262 /* Last user schedules interrupt disable */
1263 if (atomic_dec_and_test(&vblank->refcount)) {
1264 if (drm_vblank_offdelay == 0)
1265 return;
1266 else if (dev->vblank_disable_immediate || drm_vblank_offdelay < 0)
1267 vblank_disable_fn((unsigned long)vblank);
1268 else
1269 mod_timer(&vblank->disable_timer,
1270 jiffies + ((drm_vblank_offdelay * HZ)/1000));
1271 }
1272 }
1273 EXPORT_SYMBOL(drm_vblank_put);
1274
1275 /**
1276 * drm_crtc_vblank_put - give up ownership of vblank events
1277 * @crtc: which counter to give up
1278 *
1279 * Release ownership of a given vblank counter, turning off interrupts
1280 * if possible. Disable interrupts after drm_vblank_offdelay milliseconds.
1281 *
1282 * This is the native kms version of drm_vblank_put().
1283 */
1284 void drm_crtc_vblank_put(struct drm_crtc *crtc)
1285 {
1286 drm_vblank_put(crtc->dev, drm_crtc_index(crtc));
1287 }
1288 EXPORT_SYMBOL(drm_crtc_vblank_put);
1289
1290 /**
1291 * drm_wait_one_vblank - wait for one vblank
1292 * @dev: DRM device
1293 * @pipe: CRTC index
1294 *
1295 * This waits for one vblank to pass on @pipe, using the irq driver interfaces.
1296 * It is a failure to call this when the vblank irq for @pipe is disabled, e.g.
1297 * due to lack of driver support or because the crtc is off.
1298 */
1299 void drm_wait_one_vblank(struct drm_device *dev, unsigned int pipe)
1300 {
1301 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1302 int ret;
1303 u32 last;
1304
1305 if (WARN_ON(pipe >= dev->num_crtcs))
1306 return;
1307
1308 ret = drm_vblank_get(dev, pipe);
1309 if (WARN(ret, "vblank not available on crtc %i, ret=%i\n", pipe, ret))
1310 return;
1311
1312 last = drm_vblank_count(dev, pipe);
1313
1314 ret = wait_event_timeout(vblank->queue,
1315 last != drm_vblank_count(dev, pipe),
1316 msecs_to_jiffies(100));
1317
1318 WARN(ret == 0, "vblank wait timed out on crtc %i\n", pipe);
1319
1320 drm_vblank_put(dev, pipe);
1321 }
1322 EXPORT_SYMBOL(drm_wait_one_vblank);
1323
1324 /**
1325 * drm_crtc_wait_one_vblank - wait for one vblank
1326 * @crtc: DRM crtc
1327 *
1328 * This waits for one vblank to pass on @crtc, using the irq driver interfaces.
1329 * It is a failure to call this when the vblank irq for @crtc is disabled, e.g.
1330 * due to lack of driver support or because the crtc is off.
1331 */
1332 void drm_crtc_wait_one_vblank(struct drm_crtc *crtc)
1333 {
1334 drm_wait_one_vblank(crtc->dev, drm_crtc_index(crtc));
1335 }
1336 EXPORT_SYMBOL(drm_crtc_wait_one_vblank);
1337
1338 /**
1339 * drm_vblank_off - disable vblank events on a CRTC
1340 * @dev: DRM device
1341 * @pipe: CRTC index
1342 *
1343 * Drivers can use this function to shut down the vblank interrupt handling when
1344 * disabling a crtc. This function ensures that the latest vblank frame count is
1345 * stored so that drm_vblank_on() can restore it again.
1346 *
1347 * Drivers must use this function when the hardware vblank counter can get
1348 * reset, e.g. when suspending.
1349 *
1350 * This is the legacy version of drm_crtc_vblank_off().
1351 */
1352 void drm_vblank_off(struct drm_device *dev, unsigned int pipe)
1353 {
1354 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1355 struct drm_pending_vblank_event *e, *t;
1356 struct timeval now;
1357 unsigned long irqflags;
1358 unsigned int seq;
1359
1360 if (WARN_ON(pipe >= dev->num_crtcs))
1361 return;
1362
1363 spin_lock_irqsave(&dev->event_lock, irqflags);
1364
1365 spin_lock(&dev->vbl_lock);
1366 DRM_DEBUG_VBL("crtc %d, vblank enabled %d, inmodeset %d\n",
1367 pipe, vblank->enabled, vblank->inmodeset);
1368
1369 /* Avoid redundant vblank disables without previous drm_vblank_on(). */
1370 if (drm_core_check_feature(dev, DRIVER_ATOMIC) || !vblank->inmodeset)
1371 vblank_disable_and_save(dev, pipe);
1372
1373 wake_up(&vblank->queue);
1374
1375 /*
1376 * Prevent subsequent drm_vblank_get() from re-enabling
1377 * the vblank interrupt by bumping the refcount.
1378 */
1379 if (!vblank->inmodeset) {
1380 atomic_inc(&vblank->refcount);
1381 vblank->inmodeset = 1;
1382 }
1383 spin_unlock(&dev->vbl_lock);
1384
1385 /* Send any queued vblank events, lest the natives grow disquiet */
1386 seq = drm_vblank_count_and_time(dev, pipe, &now);
1387
1388 list_for_each_entry_safe(e, t, &dev->vblank_event_list, base.link) {
1389 if (e->pipe != pipe)
1390 continue;
1391 DRM_DEBUG("Sending premature vblank event on disable: "
1392 "wanted %d, current %d\n",
1393 e->event.sequence, seq);
1394 list_del(&e->base.link);
1395 drm_vblank_put(dev, pipe);
1396 send_vblank_event(dev, e, seq, &now);
1397 }
1398 spin_unlock_irqrestore(&dev->event_lock, irqflags);
1399 }
1400 EXPORT_SYMBOL(drm_vblank_off);
1401
1402 /**
1403 * drm_crtc_vblank_off - disable vblank events on a CRTC
1404 * @crtc: CRTC in question
1405 *
1406 * Drivers can use this function to shut down the vblank interrupt handling when
1407 * disabling a crtc. This function ensures that the latest vblank frame count is
1408 * stored so that drm_vblank_on can restore it again.
1409 *
1410 * Drivers must use this function when the hardware vblank counter can get
1411 * reset, e.g. when suspending.
1412 *
1413 * This is the native kms version of drm_vblank_off().
1414 */
1415 void drm_crtc_vblank_off(struct drm_crtc *crtc)
1416 {
1417 drm_vblank_off(crtc->dev, drm_crtc_index(crtc));
1418 }
1419 EXPORT_SYMBOL(drm_crtc_vblank_off);
1420
1421 /**
1422 * drm_crtc_vblank_reset - reset vblank state to off on a CRTC
1423 * @crtc: CRTC in question
1424 *
1425 * Drivers can use this function to reset the vblank state to off at load time.
1426 * Drivers should use this together with the drm_crtc_vblank_off() and
1427 * drm_crtc_vblank_on() functions. The difference compared to
1428 * drm_crtc_vblank_off() is that this function doesn't save the vblank counter
1429 * and hence doesn't need to call any driver hooks.
1430 */
1431 void drm_crtc_vblank_reset(struct drm_crtc *crtc)
1432 {
1433 struct drm_device *dev = crtc->dev;
1434 unsigned long irqflags;
1435 unsigned int pipe = drm_crtc_index(crtc);
1436 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1437
1438 spin_lock_irqsave(&dev->vbl_lock, irqflags);
1439 /*
1440 * Prevent subsequent drm_vblank_get() from enabling the vblank
1441 * interrupt by bumping the refcount.
1442 */
1443 if (!vblank->inmodeset) {
1444 atomic_inc(&vblank->refcount);
1445 vblank->inmodeset = 1;
1446 }
1447 spin_unlock_irqrestore(&dev->vbl_lock, irqflags);
1448
1449 WARN_ON(!list_empty(&dev->vblank_event_list));
1450 }
1451 EXPORT_SYMBOL(drm_crtc_vblank_reset);
1452
1453 /**
1454 * drm_vblank_on - enable vblank events on a CRTC
1455 * @dev: DRM device
1456 * @pipe: CRTC index
1457 *
1458 * This functions restores the vblank interrupt state captured with
1459 * drm_vblank_off() again. Note that calls to drm_vblank_on() and
1460 * drm_vblank_off() can be unbalanced and so can also be unconditionally called
1461 * in driver load code to reflect the current hardware state of the crtc.
1462 *
1463 * This is the legacy version of drm_crtc_vblank_on().
1464 */
1465 void drm_vblank_on(struct drm_device *dev, unsigned int pipe)
1466 {
1467 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1468 unsigned long irqflags;
1469
1470 if (WARN_ON(pipe >= dev->num_crtcs))
1471 return;
1472
1473 spin_lock_irqsave(&dev->vbl_lock, irqflags);
1474 DRM_DEBUG_VBL("crtc %d, vblank enabled %d, inmodeset %d\n",
1475 pipe, vblank->enabled, vblank->inmodeset);
1476
1477 /* Drop our private "prevent drm_vblank_get" refcount */
1478 if (vblank->inmodeset) {
1479 atomic_dec(&vblank->refcount);
1480 vblank->inmodeset = 0;
1481 }
1482
1483 drm_reset_vblank_timestamp(dev, pipe);
1484
1485 /*
1486 * re-enable interrupts if there are users left, or the
1487 * user wishes vblank interrupts to be enabled all the time.
1488 */
1489 if (atomic_read(&vblank->refcount) != 0 || drm_vblank_offdelay == 0)
1490 WARN_ON(drm_vblank_enable(dev, pipe));
1491 spin_unlock_irqrestore(&dev->vbl_lock, irqflags);
1492 }
1493 EXPORT_SYMBOL(drm_vblank_on);
1494
1495 /**
1496 * drm_crtc_vblank_on - enable vblank events on a CRTC
1497 * @crtc: CRTC in question
1498 *
1499 * This functions restores the vblank interrupt state captured with
1500 * drm_vblank_off() again. Note that calls to drm_vblank_on() and
1501 * drm_vblank_off() can be unbalanced and so can also be unconditionally called
1502 * in driver load code to reflect the current hardware state of the crtc.
1503 *
1504 * This is the native kms version of drm_vblank_on().
1505 */
1506 void drm_crtc_vblank_on(struct drm_crtc *crtc)
1507 {
1508 drm_vblank_on(crtc->dev, drm_crtc_index(crtc));
1509 }
1510 EXPORT_SYMBOL(drm_crtc_vblank_on);
1511
1512 /**
1513 * drm_vblank_pre_modeset - account for vblanks across mode sets
1514 * @dev: DRM device
1515 * @pipe: CRTC index
1516 *
1517 * Account for vblank events across mode setting events, which will likely
1518 * reset the hardware frame counter.
1519 *
1520 * This is done by grabbing a temporary vblank reference to ensure that the
1521 * vblank interrupt keeps running across the modeset sequence. With this the
1522 * software-side vblank frame counting will ensure that there are no jumps or
1523 * discontinuities.
1524 *
1525 * Unfortunately this approach is racy and also doesn't work when the vblank
1526 * interrupt stops running, e.g. across system suspend resume. It is therefore
1527 * highly recommended that drivers use the newer drm_vblank_off() and
1528 * drm_vblank_on() instead. drm_vblank_pre_modeset() only works correctly when
1529 * using "cooked" software vblank frame counters and not relying on any hardware
1530 * counters.
1531 *
1532 * Drivers must call drm_vblank_post_modeset() when re-enabling the same crtc
1533 * again.
1534 */
1535 void drm_vblank_pre_modeset(struct drm_device *dev, unsigned int pipe)
1536 {
1537 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1538
1539 /* vblank is not initialized (IRQ not installed ?), or has been freed */
1540 if (!dev->num_crtcs)
1541 return;
1542
1543 if (WARN_ON(pipe >= dev->num_crtcs))
1544 return;
1545
1546 /*
1547 * To avoid all the problems that might happen if interrupts
1548 * were enabled/disabled around or between these calls, we just
1549 * have the kernel take a reference on the CRTC (just once though
1550 * to avoid corrupting the count if multiple, mismatch calls occur),
1551 * so that interrupts remain enabled in the interim.
1552 */
1553 if (!vblank->inmodeset) {
1554 vblank->inmodeset = 0x1;
1555 if (drm_vblank_get(dev, pipe) == 0)
1556 vblank->inmodeset |= 0x2;
1557 }
1558 }
1559 EXPORT_SYMBOL(drm_vblank_pre_modeset);
1560
1561 /**
1562 * drm_vblank_post_modeset - undo drm_vblank_pre_modeset changes
1563 * @dev: DRM device
1564 * @pipe: CRTC index
1565 *
1566 * This function again drops the temporary vblank reference acquired in
1567 * drm_vblank_pre_modeset.
1568 */
1569 void drm_vblank_post_modeset(struct drm_device *dev, unsigned int pipe)
1570 {
1571 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1572 unsigned long irqflags;
1573
1574 /* vblank is not initialized (IRQ not installed ?), or has been freed */
1575 if (!dev->num_crtcs)
1576 return;
1577
1578 if (WARN_ON(pipe >= dev->num_crtcs))
1579 return;
1580
1581 if (vblank->inmodeset) {
1582 spin_lock_irqsave(&dev->vbl_lock, irqflags);
1583 drm_reset_vblank_timestamp(dev, pipe);
1584 spin_unlock_irqrestore(&dev->vbl_lock, irqflags);
1585
1586 if (vblank->inmodeset & 0x2)
1587 drm_vblank_put(dev, pipe);
1588
1589 vblank->inmodeset = 0;
1590 }
1591 }
1592 EXPORT_SYMBOL(drm_vblank_post_modeset);
1593
1594 /*
1595 * drm_modeset_ctl - handle vblank event counter changes across mode switch
1596 * @DRM_IOCTL_ARGS: standard ioctl arguments
1597 *
1598 * Applications should call the %_DRM_PRE_MODESET and %_DRM_POST_MODESET
1599 * ioctls around modesetting so that any lost vblank events are accounted for.
1600 *
1601 * Generally the counter will reset across mode sets. If interrupts are
1602 * enabled around this call, we don't have to do anything since the counter
1603 * will have already been incremented.
1604 */
1605 int drm_modeset_ctl(struct drm_device *dev, void *data,
1606 struct drm_file *file_priv)
1607 {
1608 struct drm_modeset_ctl *modeset = data;
1609 unsigned int pipe;
1610
1611 /* If drm_vblank_init() hasn't been called yet, just no-op */
1612 if (!dev->num_crtcs)
1613 return 0;
1614
1615 /* KMS drivers handle this internally */
1616 if (drm_core_check_feature(dev, DRIVER_MODESET))
1617 return 0;
1618
1619 pipe = modeset->crtc;
1620 if (pipe >= dev->num_crtcs)
1621 return -EINVAL;
1622
1623 switch (modeset->cmd) {
1624 case _DRM_PRE_MODESET:
1625 drm_vblank_pre_modeset(dev, pipe);
1626 break;
1627 case _DRM_POST_MODESET:
1628 drm_vblank_post_modeset(dev, pipe);
1629 break;
1630 default:
1631 return -EINVAL;
1632 }
1633
1634 return 0;
1635 }
1636
1637 static int drm_queue_vblank_event(struct drm_device *dev, unsigned int pipe,
1638 union drm_wait_vblank *vblwait,
1639 struct drm_file *file_priv)
1640 {
1641 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1642 struct drm_pending_vblank_event *e;
1643 struct timeval now;
1644 unsigned long flags;
1645 unsigned int seq;
1646 int ret;
1647
1648 e = kzalloc(sizeof(*e), GFP_KERNEL);
1649 if (e == NULL) {
1650 ret = -ENOMEM;
1651 goto err_put;
1652 }
1653
1654 e->pipe = pipe;
1655 e->base.pid = current->pid;
1656 e->event.base.type = DRM_EVENT_VBLANK;
1657 e->event.base.length = sizeof(e->event);
1658 e->event.user_data = vblwait->request.signal;
1659
1660 spin_lock_irqsave(&dev->event_lock, flags);
1661
1662 /*
1663 * drm_vblank_off() might have been called after we called
1664 * drm_vblank_get(). drm_vblank_off() holds event_lock
1665 * around the vblank disable, so no need for further locking.
1666 * The reference from drm_vblank_get() protects against
1667 * vblank disable from another source.
1668 */
1669 if (!vblank->enabled) {
1670 ret = -EINVAL;
1671 goto err_unlock;
1672 }
1673
1674 ret = drm_event_reserve_init_locked(dev, file_priv, &e->base,
1675 &e->event.base);
1676
1677 if (ret)
1678 goto err_unlock;
1679
1680 seq = drm_vblank_count_and_time(dev, pipe, &now);
1681
1682 if ((vblwait->request.type & _DRM_VBLANK_NEXTONMISS) &&
1683 (seq - vblwait->request.sequence) <= (1 << 23)) {
1684 vblwait->request.sequence = seq + 1;
1685 vblwait->reply.sequence = vblwait->request.sequence;
1686 }
1687
1688 DRM_DEBUG("event on vblank count %d, current %d, crtc %u\n",
1689 vblwait->request.sequence, seq, pipe);
1690
1691 trace_drm_vblank_event_queued(current->pid, pipe,
1692 vblwait->request.sequence);
1693
1694 e->event.sequence = vblwait->request.sequence;
1695 if ((seq - vblwait->request.sequence) <= (1 << 23)) {
1696 drm_vblank_put(dev, pipe);
1697 send_vblank_event(dev, e, seq, &now);
1698 vblwait->reply.sequence = seq;
1699 } else {
1700 /* drm_handle_vblank_events will call drm_vblank_put */
1701 list_add_tail(&e->base.link, &dev->vblank_event_list);
1702 vblwait->reply.sequence = vblwait->request.sequence;
1703 }
1704
1705 spin_unlock_irqrestore(&dev->event_lock, flags);
1706
1707 return 0;
1708
1709 err_unlock:
1710 spin_unlock_irqrestore(&dev->event_lock, flags);
1711 kfree(e);
1712 err_put:
1713 drm_vblank_put(dev, pipe);
1714 return ret;
1715 }
1716
1717 /*
1718 * Wait for VBLANK.
1719 *
1720 * \param inode device inode.
1721 * \param file_priv DRM file private.
1722 * \param cmd command.
1723 * \param data user argument, pointing to a drm_wait_vblank structure.
1724 * \return zero on success or a negative number on failure.
1725 *
1726 * This function enables the vblank interrupt on the pipe requested, then
1727 * sleeps waiting for the requested sequence number to occur, and drops
1728 * the vblank interrupt refcount afterwards. (vblank IRQ disable follows that
1729 * after a timeout with no further vblank waits scheduled).
1730 */
1731 int drm_wait_vblank(struct drm_device *dev, void *data,
1732 struct drm_file *file_priv)
1733 {
1734 struct drm_vblank_crtc *vblank;
1735 union drm_wait_vblank *vblwait = data;
1736 int ret;
1737 unsigned int flags, seq, pipe, high_pipe;
1738
1739 if (!dev->irq_enabled)
1740 return -EINVAL;
1741
1742 if (vblwait->request.type & _DRM_VBLANK_SIGNAL)
1743 return -EINVAL;
1744
1745 if (vblwait->request.type &
1746 ~(_DRM_VBLANK_TYPES_MASK | _DRM_VBLANK_FLAGS_MASK |
1747 _DRM_VBLANK_HIGH_CRTC_MASK)) {
1748 DRM_ERROR("Unsupported type value 0x%x, supported mask 0x%x\n",
1749 vblwait->request.type,
1750 (_DRM_VBLANK_TYPES_MASK | _DRM_VBLANK_FLAGS_MASK |
1751 _DRM_VBLANK_HIGH_CRTC_MASK));
1752 return -EINVAL;
1753 }
1754
1755 flags = vblwait->request.type & _DRM_VBLANK_FLAGS_MASK;
1756 high_pipe = (vblwait->request.type & _DRM_VBLANK_HIGH_CRTC_MASK);
1757 if (high_pipe)
1758 pipe = high_pipe >> _DRM_VBLANK_HIGH_CRTC_SHIFT;
1759 else
1760 pipe = flags & _DRM_VBLANK_SECONDARY ? 1 : 0;
1761 if (pipe >= dev->num_crtcs)
1762 return -EINVAL;
1763
1764 vblank = &dev->vblank[pipe];
1765
1766 ret = drm_vblank_get(dev, pipe);
1767 if (ret) {
1768 DRM_DEBUG("failed to acquire vblank counter, %d\n", ret);
1769 return ret;
1770 }
1771 seq = drm_vblank_count(dev, pipe);
1772
1773 switch (vblwait->request.type & _DRM_VBLANK_TYPES_MASK) {
1774 case _DRM_VBLANK_RELATIVE:
1775 vblwait->request.sequence += seq;
1776 vblwait->request.type &= ~_DRM_VBLANK_RELATIVE;
1777 case _DRM_VBLANK_ABSOLUTE:
1778 break;
1779 default:
1780 ret = -EINVAL;
1781 goto done;
1782 }
1783
1784 if (flags & _DRM_VBLANK_EVENT) {
1785 /* must hold on to the vblank ref until the event fires
1786 * drm_vblank_put will be called asynchronously
1787 */
1788 return drm_queue_vblank_event(dev, pipe, vblwait, file_priv);
1789 }
1790
1791 if ((flags & _DRM_VBLANK_NEXTONMISS) &&
1792 (seq - vblwait->request.sequence) <= (1<<23)) {
1793 vblwait->request.sequence = seq + 1;
1794 }
1795
1796 DRM_DEBUG("waiting on vblank count %d, crtc %u\n",
1797 vblwait->request.sequence, pipe);
1798 vblank->last_wait = vblwait->request.sequence;
1799 DRM_WAIT_ON(ret, vblank->queue, 3 * HZ,
1800 (((drm_vblank_count(dev, pipe) -
1801 vblwait->request.sequence) <= (1 << 23)) ||
1802 !vblank->enabled ||
1803 !dev->irq_enabled));
1804
1805 if (ret != -EINTR) {
1806 struct timeval now;
1807
1808 vblwait->reply.sequence = drm_vblank_count_and_time(dev, pipe, &now);
1809 vblwait->reply.tval_sec = now.tv_sec;
1810 vblwait->reply.tval_usec = now.tv_usec;
1811
1812 DRM_DEBUG("returning %d to client\n",
1813 vblwait->reply.sequence);
1814 } else {
1815 DRM_DEBUG("vblank wait interrupted by signal\n");
1816 }
1817
1818 done:
1819 drm_vblank_put(dev, pipe);
1820 return ret;
1821 }
1822
1823 static void drm_handle_vblank_events(struct drm_device *dev, unsigned int pipe)
1824 {
1825 struct drm_pending_vblank_event *e, *t;
1826 struct timeval now;
1827 unsigned int seq;
1828
1829 assert_spin_locked(&dev->event_lock);
1830
1831 seq = drm_vblank_count_and_time(dev, pipe, &now);
1832
1833 list_for_each_entry_safe(e, t, &dev->vblank_event_list, base.link) {
1834 if (e->pipe != pipe)
1835 continue;
1836 if ((seq - e->event.sequence) > (1<<23))
1837 continue;
1838
1839 DRM_DEBUG("vblank event on %d, current %d\n",
1840 e->event.sequence, seq);
1841
1842 list_del(&e->base.link);
1843 drm_vblank_put(dev, pipe);
1844 send_vblank_event(dev, e, seq, &now);
1845 }
1846
1847 trace_drm_vblank_event(pipe, seq);
1848 }
1849
1850 /**
1851 * drm_handle_vblank - handle a vblank event
1852 * @dev: DRM device
1853 * @pipe: index of CRTC where this event occurred
1854 *
1855 * Drivers should call this routine in their vblank interrupt handlers to
1856 * update the vblank counter and send any signals that may be pending.
1857 *
1858 * This is the legacy version of drm_crtc_handle_vblank().
1859 */
1860 bool drm_handle_vblank(struct drm_device *dev, unsigned int pipe)
1861 {
1862 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1863 unsigned long irqflags;
1864
1865 if (WARN_ON_ONCE(!dev->num_crtcs))
1866 return false;
1867
1868 if (WARN_ON(pipe >= dev->num_crtcs))
1869 return false;
1870
1871 spin_lock_irqsave(&dev->event_lock, irqflags);
1872
1873 /* Need timestamp lock to prevent concurrent execution with
1874 * vblank enable/disable, as this would cause inconsistent
1875 * or corrupted timestamps and vblank counts.
1876 */
1877 spin_lock(&dev->vblank_time_lock);
1878
1879 /* Vblank irq handling disabled. Nothing to do. */
1880 if (!vblank->enabled) {
1881 spin_unlock(&dev->vblank_time_lock);
1882 spin_unlock_irqrestore(&dev->event_lock, irqflags);
1883 return false;
1884 }
1885
1886 drm_update_vblank_count(dev, pipe, DRM_CALLED_FROM_VBLIRQ);
1887
1888 spin_unlock(&dev->vblank_time_lock);
1889
1890 wake_up(&vblank->queue);
1891 drm_handle_vblank_events(dev, pipe);
1892
1893 spin_unlock_irqrestore(&dev->event_lock, irqflags);
1894
1895 return true;
1896 }
1897 EXPORT_SYMBOL(drm_handle_vblank);
1898
1899 /**
1900 * drm_crtc_handle_vblank - handle a vblank event
1901 * @crtc: where this event occurred
1902 *
1903 * Drivers should call this routine in their vblank interrupt handlers to
1904 * update the vblank counter and send any signals that may be pending.
1905 *
1906 * This is the native KMS version of drm_handle_vblank().
1907 *
1908 * Returns:
1909 * True if the event was successfully handled, false on failure.
1910 */
1911 bool drm_crtc_handle_vblank(struct drm_crtc *crtc)
1912 {
1913 return drm_handle_vblank(crtc->dev, drm_crtc_index(crtc));
1914 }
1915 EXPORT_SYMBOL(drm_crtc_handle_vblank);
1916
1917 /**
1918 * drm_vblank_no_hw_counter - "No hw counter" implementation of .get_vblank_counter()
1919 * @dev: DRM device
1920 * @pipe: CRTC for which to read the counter
1921 *
1922 * Drivers can plug this into the .get_vblank_counter() function if
1923 * there is no useable hardware frame counter available.
1924 *
1925 * Returns:
1926 * 0
1927 */
1928 u32 drm_vblank_no_hw_counter(struct drm_device *dev, unsigned int pipe)
1929 {
1930 return 0;
1931 }
1932 EXPORT_SYMBOL(drm_vblank_no_hw_counter);
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