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3ed4351a
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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 * Permission is hereby granted, free of charge, to any person obtaining a
8 * copy of this software and associated documentation files (the "Software"),
9 * to deal in the Software without restriction, including without limitation
10 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
11 * and/or sell copies of the Software, and to permit persons to whom the
12 * Software is furnished to do so, subject to the following conditions:
13 *
14 * The above copyright notice and this permission notice (including the next
15 * paragraph) shall be included in all copies or substantial portions of the
16 * Software.
17 *
18 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
19 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
20 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
21 * VA LINUX SYSTEMS AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM, DAMAGES OR
22 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
23 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
24 * OTHER DEALINGS IN THE SOFTWARE.
25 */
26
27#include <drm/drm_vblank.h>
28#include <drm/drmP.h>
29#include <linux/export.h>
30
31#include "drm_trace.h"
32#include "drm_internal.h"
33
57d30230
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34/**
35 * DOC: vblank handling
36 *
37 * Vertical blanking plays a major role in graphics rendering. To achieve
38 * tear-free display, users must synchronize page flips and/or rendering to
39 * vertical blanking. The DRM API offers ioctls to perform page flips
40 * synchronized to vertical blanking and wait for vertical blanking.
41 *
42 * The DRM core handles most of the vertical blanking management logic, which
43 * involves filtering out spurious interrupts, keeping race-free blanking
44 * counters, coping with counter wrap-around and resets and keeping use counts.
45 * It relies on the driver to generate vertical blanking interrupts and
46 * optionally provide a hardware vertical blanking counter.
47 *
48 * Drivers must initialize the vertical blanking handling core with a call to
49 * drm_vblank_init(). Minimally, a driver needs to implement
50 * &drm_crtc_funcs.enable_vblank and &drm_crtc_funcs.disable_vblank plus call
51 * drm_crtc_handle_vblank() in it's vblank interrupt handler for working vblank
52 * support.
53 *
54 * Vertical blanking interrupts can be enabled by the DRM core or by drivers
55 * themselves (for instance to handle page flipping operations). The DRM core
56 * maintains a vertical blanking use count to ensure that the interrupts are not
57 * disabled while a user still needs them. To increment the use count, drivers
58 * call drm_crtc_vblank_get() and release the vblank reference again with
59 * drm_crtc_vblank_put(). In between these two calls vblank interrupts are
60 * guaranteed to be enabled.
61 *
62 * On many hardware disabling the vblank interrupt cannot be done in a race-free
63 * manner, see &drm_driver.vblank_disable_immediate and
64 * &drm_driver.max_vblank_count. In that case the vblank core only disables the
65 * vblanks after a timer has expired, which can be configured through the
66 * ``vblankoffdelay`` module parameter.
67 */
68
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69/* Retry timestamp calculation up to 3 times to satisfy
70 * drm_timestamp_precision before giving up.
71 */
72#define DRM_TIMESTAMP_MAXRETRIES 3
73
74/* Threshold in nanoseconds for detection of redundant
75 * vblank irq in drm_handle_vblank(). 1 msec should be ok.
76 */
77#define DRM_REDUNDANT_VBLIRQ_THRESH_NS 1000000
78
79static bool
80drm_get_last_vbltimestamp(struct drm_device *dev, unsigned int pipe,
67680d3c 81 ktime_t *tvblank, bool in_vblank_irq);
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82
83static unsigned int drm_timestamp_precision = 20; /* Default to 20 usecs. */
84
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85static int drm_vblank_offdelay = 5000; /* Default to 5000 msecs. */
86
87module_param_named(vblankoffdelay, drm_vblank_offdelay, int, 0600);
88module_param_named(timestamp_precision_usec, drm_timestamp_precision, int, 0600);
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89MODULE_PARM_DESC(vblankoffdelay, "Delay until vblank irq auto-disable [msecs] (0: never disable, <0: disable immediately)");
90MODULE_PARM_DESC(timestamp_precision_usec, "Max. error on timestamps [usecs]");
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91
92static void store_vblank(struct drm_device *dev, unsigned int pipe,
93 u32 vblank_count_inc,
67680d3c 94 ktime_t t_vblank, u32 last)
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95{
96 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
97
98 assert_spin_locked(&dev->vblank_time_lock);
99
100 vblank->last = last;
101
102 write_seqlock(&vblank->seqlock);
67680d3c 103 vblank->time = t_vblank;
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104 vblank->count += vblank_count_inc;
105 write_sequnlock(&vblank->seqlock);
106}
107
108/*
109 * "No hw counter" fallback implementation of .get_vblank_counter() hook,
110 * if there is no useable hardware frame counter available.
111 */
112static u32 drm_vblank_no_hw_counter(struct drm_device *dev, unsigned int pipe)
113{
114 WARN_ON_ONCE(dev->max_vblank_count != 0);
115 return 0;
116}
117
118static u32 __get_vblank_counter(struct drm_device *dev, unsigned int pipe)
119{
120 if (drm_core_check_feature(dev, DRIVER_MODESET)) {
121 struct drm_crtc *crtc = drm_crtc_from_index(dev, pipe);
122
123 if (crtc->funcs->get_vblank_counter)
124 return crtc->funcs->get_vblank_counter(crtc);
125 }
126
127 if (dev->driver->get_vblank_counter)
128 return dev->driver->get_vblank_counter(dev, pipe);
129
130 return drm_vblank_no_hw_counter(dev, pipe);
131}
132
133/*
134 * Reset the stored timestamp for the current vblank count to correspond
135 * to the last vblank occurred.
136 *
137 * Only to be called from drm_crtc_vblank_on().
138 *
139 * Note: caller must hold &drm_device.vbl_lock since this reads & writes
140 * device vblank fields.
141 */
142static void drm_reset_vblank_timestamp(struct drm_device *dev, unsigned int pipe)
143{
144 u32 cur_vblank;
145 bool rc;
67680d3c 146 ktime_t t_vblank;
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147 int count = DRM_TIMESTAMP_MAXRETRIES;
148
149 spin_lock(&dev->vblank_time_lock);
150
151 /*
152 * sample the current counter to avoid random jumps
153 * when drm_vblank_enable() applies the diff
154 */
155 do {
156 cur_vblank = __get_vblank_counter(dev, pipe);
157 rc = drm_get_last_vbltimestamp(dev, pipe, &t_vblank, false);
158 } while (cur_vblank != __get_vblank_counter(dev, pipe) && --count > 0);
159
160 /*
161 * Only reinitialize corresponding vblank timestamp if high-precision query
162 * available and didn't fail. Otherwise reinitialize delayed at next vblank
163 * interrupt and assign 0 for now, to mark the vblanktimestamp as invalid.
164 */
165 if (!rc)
67680d3c 166 t_vblank = 0;
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167
168 /*
169 * +1 to make sure user will never see the same
170 * vblank counter value before and after a modeset
171 */
67680d3c 172 store_vblank(dev, pipe, 1, t_vblank, cur_vblank);
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173
174 spin_unlock(&dev->vblank_time_lock);
175}
176
177/*
178 * Call back into the driver to update the appropriate vblank counter
179 * (specified by @pipe). Deal with wraparound, if it occurred, and
180 * update the last read value so we can deal with wraparound on the next
181 * call if necessary.
182 *
183 * Only necessary when going from off->on, to account for frames we
184 * didn't get an interrupt for.
185 *
186 * Note: caller must hold &drm_device.vbl_lock since this reads & writes
187 * device vblank fields.
188 */
189static void drm_update_vblank_count(struct drm_device *dev, unsigned int pipe,
190 bool in_vblank_irq)
191{
192 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
193 u32 cur_vblank, diff;
194 bool rc;
67680d3c 195 ktime_t t_vblank;
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196 int count = DRM_TIMESTAMP_MAXRETRIES;
197 int framedur_ns = vblank->framedur_ns;
198
199 /*
200 * Interrupts were disabled prior to this call, so deal with counter
201 * wrap if needed.
202 * NOTE! It's possible we lost a full dev->max_vblank_count + 1 events
203 * here if the register is small or we had vblank interrupts off for
204 * a long time.
205 *
206 * We repeat the hardware vblank counter & timestamp query until
207 * we get consistent results. This to prevent races between gpu
208 * updating its hardware counter while we are retrieving the
209 * corresponding vblank timestamp.
210 */
211 do {
212 cur_vblank = __get_vblank_counter(dev, pipe);
213 rc = drm_get_last_vbltimestamp(dev, pipe, &t_vblank, in_vblank_irq);
214 } while (cur_vblank != __get_vblank_counter(dev, pipe) && --count > 0);
215
216 if (dev->max_vblank_count != 0) {
217 /* trust the hw counter when it's around */
218 diff = (cur_vblank - vblank->last) & dev->max_vblank_count;
219 } else if (rc && framedur_ns) {
67680d3c 220 u64 diff_ns = ktime_to_ns(ktime_sub(t_vblank, vblank->time));
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221
222 /*
223 * Figure out how many vblanks we've missed based
224 * on the difference in the timestamps and the
225 * frame/field duration.
226 */
227 diff = DIV_ROUND_CLOSEST_ULL(diff_ns, framedur_ns);
228
229 if (diff == 0 && in_vblank_irq)
230 DRM_DEBUG_VBL("crtc %u: Redundant vblirq ignored."
231 " diff_ns = %lld, framedur_ns = %d)\n",
232 pipe, (long long) diff_ns, framedur_ns);
233 } else {
234 /* some kind of default for drivers w/o accurate vbl timestamping */
235 diff = in_vblank_irq ? 1 : 0;
236 }
237
238 /*
239 * Within a drm_vblank_pre_modeset - drm_vblank_post_modeset
240 * interval? If so then vblank irqs keep running and it will likely
241 * happen that the hardware vblank counter is not trustworthy as it
242 * might reset at some point in that interval and vblank timestamps
243 * are not trustworthy either in that interval. Iow. this can result
244 * in a bogus diff >> 1 which must be avoided as it would cause
245 * random large forward jumps of the software vblank counter.
246 */
247 if (diff > 1 && (vblank->inmodeset & 0x2)) {
248 DRM_DEBUG_VBL("clamping vblank bump to 1 on crtc %u: diffr=%u"
249 " due to pre-modeset.\n", pipe, diff);
250 diff = 1;
251 }
252
253 DRM_DEBUG_VBL("updating vblank count on crtc %u:"
570e8696 254 " current=%llu, diff=%u, hw=%u hw_last=%u\n",
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255 pipe, vblank->count, diff, cur_vblank, vblank->last);
256
257 if (diff == 0) {
258 WARN_ON_ONCE(cur_vblank != vblank->last);
259 return;
260 }
261
262 /*
263 * Only reinitialize corresponding vblank timestamp if high-precision query
264 * available and didn't fail, or we were called from the vblank interrupt.
265 * Otherwise reinitialize delayed at next vblank interrupt and assign 0
266 * for now, to mark the vblanktimestamp as invalid.
267 */
138b87fa 268 if (!rc && !in_vblank_irq)
67680d3c 269 t_vblank = 0;
3ed4351a 270
67680d3c 271 store_vblank(dev, pipe, diff, t_vblank, cur_vblank);
3ed4351a
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272}
273
274static u32 drm_vblank_count(struct drm_device *dev, unsigned int pipe)
275{
276 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
277
278 if (WARN_ON(pipe >= dev->num_crtcs))
279 return 0;
280
281 return vblank->count;
282}
283
284/**
ca814b25 285 * drm_crtc_accurate_vblank_count - retrieve the master vblank counter
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286 * @crtc: which counter to retrieve
287 *
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288 * This function is similar to drm_crtc_vblank_count() but this function
289 * interpolates to handle a race with vblank interrupts using the high precision
290 * timestamping support.
3ed4351a 291 *
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292 * This is mostly useful for hardware that can obtain the scanout position, but
293 * doesn't have a hardware frame counter.
3ed4351a 294 */
ca814b25 295u32 drm_crtc_accurate_vblank_count(struct drm_crtc *crtc)
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296{
297 struct drm_device *dev = crtc->dev;
298 unsigned int pipe = drm_crtc_index(crtc);
299 u32 vblank;
300 unsigned long flags;
301
302 WARN(!dev->driver->get_vblank_timestamp,
303 "This function requires support for accurate vblank timestamps.");
304
305 spin_lock_irqsave(&dev->vblank_time_lock, flags);
306
307 drm_update_vblank_count(dev, pipe, false);
308 vblank = drm_vblank_count(dev, pipe);
309
310 spin_unlock_irqrestore(&dev->vblank_time_lock, flags);
311
312 return vblank;
313}
ca814b25 314EXPORT_SYMBOL(drm_crtc_accurate_vblank_count);
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315
316static void __disable_vblank(struct drm_device *dev, unsigned int pipe)
317{
318 if (drm_core_check_feature(dev, DRIVER_MODESET)) {
319 struct drm_crtc *crtc = drm_crtc_from_index(dev, pipe);
320
321 if (crtc->funcs->disable_vblank) {
322 crtc->funcs->disable_vblank(crtc);
323 return;
324 }
325 }
326
327 dev->driver->disable_vblank(dev, pipe);
328}
329
330/*
331 * Disable vblank irq's on crtc, make sure that last vblank count
332 * of hardware and corresponding consistent software vblank counter
333 * are preserved, even if there are any spurious vblank irq's after
334 * disable.
335 */
336void drm_vblank_disable_and_save(struct drm_device *dev, unsigned int pipe)
337{
338 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
339 unsigned long irqflags;
340
341 assert_spin_locked(&dev->vbl_lock);
342
343 /* Prevent vblank irq processing while disabling vblank irqs,
344 * so no updates of timestamps or count can happen after we've
345 * disabled. Needed to prevent races in case of delayed irq's.
346 */
347 spin_lock_irqsave(&dev->vblank_time_lock, irqflags);
348
349 /*
350 * Only disable vblank interrupts if they're enabled. This avoids
351 * calling the ->disable_vblank() operation in atomic context with the
352 * hardware potentially runtime suspended.
353 */
354 if (vblank->enabled) {
355 __disable_vblank(dev, pipe);
356 vblank->enabled = false;
357 }
358
359 /*
360 * Always update the count and timestamp to maintain the
361 * appearance that the counter has been ticking all along until
362 * this time. This makes the count account for the entire time
363 * between drm_crtc_vblank_on() and drm_crtc_vblank_off().
364 */
365 drm_update_vblank_count(dev, pipe, false);
366
367 spin_unlock_irqrestore(&dev->vblank_time_lock, irqflags);
368}
369
370static void vblank_disable_fn(unsigned long arg)
371{
372 struct drm_vblank_crtc *vblank = (void *)arg;
373 struct drm_device *dev = vblank->dev;
374 unsigned int pipe = vblank->pipe;
375 unsigned long irqflags;
376
377 spin_lock_irqsave(&dev->vbl_lock, irqflags);
378 if (atomic_read(&vblank->refcount) == 0 && vblank->enabled) {
379 DRM_DEBUG("disabling vblank on crtc %u\n", pipe);
380 drm_vblank_disable_and_save(dev, pipe);
381 }
382 spin_unlock_irqrestore(&dev->vbl_lock, irqflags);
383}
384
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385void drm_vblank_cleanup(struct drm_device *dev)
386{
387 unsigned int pipe;
388
389 /* Bail if the driver didn't call drm_vblank_init() */
390 if (dev->num_crtcs == 0)
391 return;
392
393 for (pipe = 0; pipe < dev->num_crtcs; pipe++) {
394 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
395
396 WARN_ON(READ_ONCE(vblank->enabled) &&
397 drm_core_check_feature(dev, DRIVER_MODESET));
398
399 del_timer_sync(&vblank->disable_timer);
400 }
401
402 kfree(dev->vblank);
403
404 dev->num_crtcs = 0;
405}
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406
407/**
408 * drm_vblank_init - initialize vblank support
409 * @dev: DRM device
410 * @num_crtcs: number of CRTCs supported by @dev
411 *
412 * This function initializes vblank support for @num_crtcs display pipelines.
b4164d66
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413 * Cleanup is handled by the DRM core, or through calling drm_dev_fini() for
414 * drivers with a &drm_driver.release callback.
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415 *
416 * Returns:
417 * Zero on success or a negative error code on failure.
418 */
419int drm_vblank_init(struct drm_device *dev, unsigned int num_crtcs)
420{
421 int ret = -ENOMEM;
422 unsigned int i;
423
424 spin_lock_init(&dev->vbl_lock);
425 spin_lock_init(&dev->vblank_time_lock);
426
427 dev->num_crtcs = num_crtcs;
428
429 dev->vblank = kcalloc(num_crtcs, sizeof(*dev->vblank), GFP_KERNEL);
430 if (!dev->vblank)
431 goto err;
432
433 for (i = 0; i < num_crtcs; i++) {
434 struct drm_vblank_crtc *vblank = &dev->vblank[i];
435
436 vblank->dev = dev;
437 vblank->pipe = i;
438 init_waitqueue_head(&vblank->queue);
439 setup_timer(&vblank->disable_timer, vblank_disable_fn,
440 (unsigned long)vblank);
441 seqlock_init(&vblank->seqlock);
442 }
443
444 DRM_INFO("Supports vblank timestamp caching Rev 2 (21.10.2013).\n");
445
446 /* Driver specific high-precision vblank timestamping supported? */
447 if (dev->driver->get_vblank_timestamp)
448 DRM_INFO("Driver supports precise vblank timestamp query.\n");
449 else
450 DRM_INFO("No driver support for vblank timestamp query.\n");
451
452 /* Must have precise timestamping for reliable vblank instant disable */
453 if (dev->vblank_disable_immediate && !dev->driver->get_vblank_timestamp) {
454 dev->vblank_disable_immediate = false;
455 DRM_INFO("Setting vblank_disable_immediate to false because "
456 "get_vblank_timestamp == NULL\n");
457 }
458
459 return 0;
460
461err:
462 dev->num_crtcs = 0;
463 return ret;
464}
465EXPORT_SYMBOL(drm_vblank_init);
466
467/**
468 * drm_crtc_vblank_waitqueue - get vblank waitqueue for the CRTC
469 * @crtc: which CRTC's vblank waitqueue to retrieve
470 *
471 * This function returns a pointer to the vblank waitqueue for the CRTC.
472 * Drivers can use this to implement vblank waits using wait_event() and related
473 * functions.
474 */
475wait_queue_head_t *drm_crtc_vblank_waitqueue(struct drm_crtc *crtc)
476{
477 return &crtc->dev->vblank[drm_crtc_index(crtc)].queue;
478}
479EXPORT_SYMBOL(drm_crtc_vblank_waitqueue);
480
481
482/**
483 * drm_calc_timestamping_constants - calculate vblank timestamp constants
484 * @crtc: drm_crtc whose timestamp constants should be updated.
485 * @mode: display mode containing the scanout timings
486 *
57d30230
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487 * Calculate and store various constants which are later needed by vblank and
488 * swap-completion timestamping, e.g, by
489 * drm_calc_vbltimestamp_from_scanoutpos(). They are derived from CRTC's true
490 * scanout timing, so they take things like panel scaling or other adjustments
491 * into account.
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492 */
493void drm_calc_timestamping_constants(struct drm_crtc *crtc,
494 const struct drm_display_mode *mode)
495{
496 struct drm_device *dev = crtc->dev;
497 unsigned int pipe = drm_crtc_index(crtc);
498 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
499 int linedur_ns = 0, framedur_ns = 0;
500 int dotclock = mode->crtc_clock;
501
502 if (!dev->num_crtcs)
503 return;
504
505 if (WARN_ON(pipe >= dev->num_crtcs))
506 return;
507
508 /* Valid dotclock? */
509 if (dotclock > 0) {
510 int frame_size = mode->crtc_htotal * mode->crtc_vtotal;
511
512 /*
513 * Convert scanline length in pixels and video
514 * dot clock to line duration and frame duration
515 * in nanoseconds:
516 */
517 linedur_ns = div_u64((u64) mode->crtc_htotal * 1000000, dotclock);
518 framedur_ns = div_u64((u64) frame_size * 1000000, dotclock);
519
520 /*
521 * Fields of interlaced scanout modes are only half a frame duration.
522 */
523 if (mode->flags & DRM_MODE_FLAG_INTERLACE)
524 framedur_ns /= 2;
525 } else
526 DRM_ERROR("crtc %u: Can't calculate constants, dotclock = 0!\n",
527 crtc->base.id);
528
529 vblank->linedur_ns = linedur_ns;
530 vblank->framedur_ns = framedur_ns;
531 vblank->hwmode = *mode;
532
533 DRM_DEBUG("crtc %u: hwmode: htotal %d, vtotal %d, vdisplay %d\n",
534 crtc->base.id, mode->crtc_htotal,
535 mode->crtc_vtotal, mode->crtc_vdisplay);
536 DRM_DEBUG("crtc %u: clock %d kHz framedur %d linedur %d\n",
537 crtc->base.id, dotclock, framedur_ns, linedur_ns);
538}
539EXPORT_SYMBOL(drm_calc_timestamping_constants);
540
541/**
542 * drm_calc_vbltimestamp_from_scanoutpos - precise vblank timestamp helper
543 * @dev: DRM device
544 * @pipe: index of CRTC whose vblank timestamp to retrieve
545 * @max_error: Desired maximum allowable error in timestamps (nanosecs)
546 * On return contains true maximum error of timestamp
67680d3c 547 * @vblank_time: Pointer to time which should receive the timestamp
3ed4351a
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548 * @in_vblank_irq:
549 * True when called from drm_crtc_handle_vblank(). Some drivers
550 * need to apply some workarounds for gpu-specific vblank irq quirks
551 * if flag is set.
552 *
553 * Implements calculation of exact vblank timestamps from given drm_display_mode
57d30230
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554 * timings and current video scanout position of a CRTC. This can be directly
555 * used as the &drm_driver.get_vblank_timestamp implementation of a kms driver
556 * if &drm_driver.get_scanout_position is implemented.
3ed4351a 557 *
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558 * The current implementation only handles standard video modes. For double scan
559 * and interlaced modes the driver is supposed to adjust the hardware mode
560 * (taken from &drm_crtc_state.adjusted mode for atomic modeset drivers) to
561 * match the scanout position reported.
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562 *
563 * Note that atomic drivers must call drm_calc_timestamping_constants() before
564 * enabling a CRTC. The atomic helpers already take care of that in
565 * drm_atomic_helper_update_legacy_modeset_state().
566 *
567 * Returns:
568 *
569 * Returns true on success, and false on failure, i.e. when no accurate
570 * timestamp could be acquired.
571 */
572bool drm_calc_vbltimestamp_from_scanoutpos(struct drm_device *dev,
573 unsigned int pipe,
574 int *max_error,
67680d3c 575 ktime_t *vblank_time,
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576 bool in_vblank_irq)
577{
67680d3c 578 struct timespec64 ts_etime, ts_vblank_time;
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579 ktime_t stime, etime;
580 bool vbl_status;
581 struct drm_crtc *crtc;
582 const struct drm_display_mode *mode;
583 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
584 int vpos, hpos, i;
585 int delta_ns, duration_ns;
586
587 if (!drm_core_check_feature(dev, DRIVER_MODESET))
588 return false;
589
590 crtc = drm_crtc_from_index(dev, pipe);
591
592 if (pipe >= dev->num_crtcs || !crtc) {
593 DRM_ERROR("Invalid crtc %u\n", pipe);
594 return false;
595 }
596
597 /* Scanout position query not supported? Should not happen. */
598 if (!dev->driver->get_scanout_position) {
599 DRM_ERROR("Called from driver w/o get_scanout_position()!?\n");
600 return false;
601 }
602
603 if (drm_drv_uses_atomic_modeset(dev))
604 mode = &vblank->hwmode;
605 else
606 mode = &crtc->hwmode;
607
608 /* If mode timing undefined, just return as no-op:
609 * Happens during initial modesetting of a crtc.
610 */
611 if (mode->crtc_clock == 0) {
612 DRM_DEBUG("crtc %u: Noop due to uninitialized mode.\n", pipe);
613 WARN_ON_ONCE(drm_drv_uses_atomic_modeset(dev));
614
615 return false;
616 }
617
618 /* Get current scanout position with system timestamp.
619 * Repeat query up to DRM_TIMESTAMP_MAXRETRIES times
620 * if single query takes longer than max_error nanoseconds.
621 *
622 * This guarantees a tight bound on maximum error if
623 * code gets preempted or delayed for some reason.
624 */
625 for (i = 0; i < DRM_TIMESTAMP_MAXRETRIES; i++) {
626 /*
627 * Get vertical and horizontal scanout position vpos, hpos,
628 * and bounding timestamps stime, etime, pre/post query.
629 */
630 vbl_status = dev->driver->get_scanout_position(dev, pipe,
631 in_vblank_irq,
632 &vpos, &hpos,
633 &stime, &etime,
634 mode);
635
636 /* Return as no-op if scanout query unsupported or failed. */
637 if (!vbl_status) {
638 DRM_DEBUG("crtc %u : scanoutpos query failed.\n",
639 pipe);
640 return false;
641 }
642
643 /* Compute uncertainty in timestamp of scanout position query. */
644 duration_ns = ktime_to_ns(etime) - ktime_to_ns(stime);
645
646 /* Accept result with < max_error nsecs timing uncertainty. */
647 if (duration_ns <= *max_error)
648 break;
649 }
650
651 /* Noisy system timing? */
652 if (i == DRM_TIMESTAMP_MAXRETRIES) {
653 DRM_DEBUG("crtc %u: Noisy timestamp %d us > %d us [%d reps].\n",
654 pipe, duration_ns/1000, *max_error/1000, i);
655 }
656
657 /* Return upper bound of timestamp precision error. */
658 *max_error = duration_ns;
659
660 /* Convert scanout position into elapsed time at raw_time query
661 * since start of scanout at first display scanline. delta_ns
662 * can be negative if start of scanout hasn't happened yet.
663 */
664 delta_ns = div_s64(1000000LL * (vpos * mode->crtc_htotal + hpos),
665 mode->crtc_clock);
666
3ed4351a 667 /* save this only for debugging purposes */
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668 ts_etime = ktime_to_timespec64(etime);
669 ts_vblank_time = ktime_to_timespec64(*vblank_time);
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670 /* Subtract time delta from raw timestamp to get final
671 * vblank_time timestamp for end of vblank.
672 */
673 etime = ktime_sub_ns(etime, delta_ns);
67680d3c 674 *vblank_time = etime;
3ed4351a 675
67680d3c 676 DRM_DEBUG_VBL("crtc %u : v p(%d,%d)@ %lld.%06ld -> %lld.%06ld [e %d us, %d rep]\n",
3ed4351a 677 pipe, hpos, vpos,
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678 (u64)ts_etime.tv_sec, ts_etime.tv_nsec / 1000,
679 (u64)ts_vblank_time.tv_sec, ts_vblank_time.tv_nsec / 1000,
680 duration_ns / 1000, i);
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681
682 return true;
683}
684EXPORT_SYMBOL(drm_calc_vbltimestamp_from_scanoutpos);
685
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686/**
687 * drm_get_last_vbltimestamp - retrieve raw timestamp for the most recent
688 * vblank interval
689 * @dev: DRM device
690 * @pipe: index of CRTC whose vblank timestamp to retrieve
67680d3c 691 * @tvblank: Pointer to target time which should receive the timestamp
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692 * @in_vblank_irq:
693 * True when called from drm_crtc_handle_vblank(). Some drivers
694 * need to apply some workarounds for gpu-specific vblank irq quirks
695 * if flag is set.
696 *
697 * Fetches the system timestamp corresponding to the time of the most recent
698 * vblank interval on specified CRTC. May call into kms-driver to
699 * compute the timestamp with a high-precision GPU specific method.
700 *
701 * Returns zero if timestamp originates from uncorrected do_gettimeofday()
702 * call, i.e., it isn't very precisely locked to the true vblank.
703 *
704 * Returns:
705 * True if timestamp is considered to be very precise, false otherwise.
706 */
707static bool
708drm_get_last_vbltimestamp(struct drm_device *dev, unsigned int pipe,
67680d3c 709 ktime_t *tvblank, bool in_vblank_irq)
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710{
711 bool ret = false;
712
713 /* Define requested maximum error on timestamps (nanoseconds). */
714 int max_error = (int) drm_timestamp_precision * 1000;
715
716 /* Query driver if possible and precision timestamping enabled. */
717 if (dev->driver->get_vblank_timestamp && (max_error > 0))
718 ret = dev->driver->get_vblank_timestamp(dev, pipe, &max_error,
719 tvblank, in_vblank_irq);
720
721 /* GPU high precision timestamp query unsupported or failed.
722 * Return current monotonic/gettimeofday timestamp as best estimate.
723 */
724 if (!ret)
25e1a798 725 *tvblank = ktime_get();
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726
727 return ret;
728}
729
730/**
731 * drm_crtc_vblank_count - retrieve "cooked" vblank counter value
732 * @crtc: which counter to retrieve
733 *
734 * Fetches the "cooked" vblank count value that represents the number of
735 * vblank events since the system was booted, including lost events due to
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736 * modesetting activity. Note that this timer isn't correct against a racing
737 * vblank interrupt (since it only reports the software vblank counter), see
ca814b25 738 * drm_crtc_accurate_vblank_count() for such use-cases.
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739 *
740 * Returns:
741 * The software vblank counter.
742 */
570e8696 743u64 drm_crtc_vblank_count(struct drm_crtc *crtc)
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744{
745 return drm_vblank_count(crtc->dev, drm_crtc_index(crtc));
746}
747EXPORT_SYMBOL(drm_crtc_vblank_count);
748
570e8696
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749/**
750 * drm_vblank_count_and_time - retrieve "cooked" vblank counter value and the
751 * system timestamp corresponding to that vblank counter value.
752 * @dev: DRM device
753 * @pipe: index of CRTC whose counter to retrieve
754 * @vblanktime: Pointer to ktime_t to receive the vblank timestamp.
755 *
756 * Fetches the "cooked" vblank count value that represents the number of
757 * vblank events since the system was booted, including lost events due to
758 * modesetting activity. Returns corresponding system timestamp of the time
759 * of the vblank interval that corresponds to the current vblank counter value.
760 *
761 * This is the legacy version of drm_crtc_vblank_count_and_time().
762 */
763static u64 drm_vblank_count_and_time(struct drm_device *dev, unsigned int pipe,
67680d3c 764 ktime_t *vblanktime)
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765{
766 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
570e8696 767 u64 vblank_count;
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768 unsigned int seq;
769
770 if (WARN_ON(pipe >= dev->num_crtcs)) {
67680d3c 771 *vblanktime = 0;
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772 return 0;
773 }
774
775 do {
776 seq = read_seqbegin(&vblank->seqlock);
777 vblank_count = vblank->count;
778 *vblanktime = vblank->time;
779 } while (read_seqretry(&vblank->seqlock, seq));
780
781 return vblank_count;
782}
783
784/**
785 * drm_crtc_vblank_count_and_time - retrieve "cooked" vblank counter value
786 * and the system timestamp corresponding to that vblank counter value
787 * @crtc: which counter to retrieve
67680d3c 788 * @vblanktime: Pointer to time to receive the vblank timestamp.
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789 *
790 * Fetches the "cooked" vblank count value that represents the number of
791 * vblank events since the system was booted, including lost events due to
792 * modesetting activity. Returns corresponding system timestamp of the time
793 * of the vblank interval that corresponds to the current vblank counter value.
794 */
570e8696 795u64 drm_crtc_vblank_count_and_time(struct drm_crtc *crtc,
67680d3c 796 ktime_t *vblanktime)
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797{
798 return drm_vblank_count_and_time(crtc->dev, drm_crtc_index(crtc),
799 vblanktime);
800}
801EXPORT_SYMBOL(drm_crtc_vblank_count_and_time);
802
803static void send_vblank_event(struct drm_device *dev,
804 struct drm_pending_vblank_event *e,
570e8696 805 u64 seq, ktime_t now)
3ed4351a 806{
bd386e51 807 struct timespec64 tv;
3ed4351a 808
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809 switch (e->event.base.type) {
810 case DRM_EVENT_VBLANK:
811 case DRM_EVENT_FLIP_COMPLETE:
812 tv = ktime_to_timespec64(now);
813 e->event.vbl.sequence = seq;
814 /*
815 * e->event is a user space structure, with hardcoded unsigned
816 * 32-bit seconds/microseconds. This is safe as we always use
817 * monotonic timestamps since linux-4.15
818 */
819 e->event.vbl.tv_sec = tv.tv_sec;
820 e->event.vbl.tv_usec = tv.tv_nsec / 1000;
821 break;
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822 case DRM_EVENT_CRTC_SEQUENCE:
823 if (seq)
824 e->event.seq.sequence = seq;
825 e->event.seq.time_ns = ktime_to_ns(now);
826 break;
bd386e51
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827 }
828 trace_drm_vblank_event_delivered(e->base.file_priv, e->pipe, seq);
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829 drm_send_event_locked(dev, &e->base);
830}
831
832/**
833 * drm_crtc_arm_vblank_event - arm vblank event after pageflip
834 * @crtc: the source CRTC of the vblank event
835 * @e: the event to send
836 *
837 * A lot of drivers need to generate vblank events for the very next vblank
838 * interrupt. For example when the page flip interrupt happens when the page
839 * flip gets armed, but not when it actually executes within the next vblank
840 * period. This helper function implements exactly the required vblank arming
841 * behaviour.
842 *
843 * NOTE: Drivers using this to send out the &drm_crtc_state.event as part of an
844 * atomic commit must ensure that the next vblank happens at exactly the same
845 * time as the atomic commit is committed to the hardware. This function itself
e13a0583 846 * does **not** protect against the next vblank interrupt racing with either this
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847 * function call or the atomic commit operation. A possible sequence could be:
848 *
849 * 1. Driver commits new hardware state into vblank-synchronized registers.
850 * 2. A vblank happens, committing the hardware state. Also the corresponding
851 * vblank interrupt is fired off and fully processed by the interrupt
852 * handler.
853 * 3. The atomic commit operation proceeds to call drm_crtc_arm_vblank_event().
854 * 4. The event is only send out for the next vblank, which is wrong.
855 *
856 * An equivalent race can happen when the driver calls
857 * drm_crtc_arm_vblank_event() before writing out the new hardware state.
858 *
859 * The only way to make this work safely is to prevent the vblank from firing
860 * (and the hardware from committing anything else) until the entire atomic
861 * commit sequence has run to completion. If the hardware does not have such a
862 * feature (e.g. using a "go" bit), then it is unsafe to use this functions.
863 * Instead drivers need to manually send out the event from their interrupt
864 * handler by calling drm_crtc_send_vblank_event() and make sure that there's no
865 * possible race with the hardware committing the atomic update.
866 *
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867 * Caller must hold a vblank reference for the event @e, which will be dropped
868 * when the next vblank arrives.
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869 */
870void drm_crtc_arm_vblank_event(struct drm_crtc *crtc,
871 struct drm_pending_vblank_event *e)
872{
873 struct drm_device *dev = crtc->dev;
874 unsigned int pipe = drm_crtc_index(crtc);
875
876 assert_spin_locked(&dev->event_lock);
877
878 e->pipe = pipe;
570e8696 879 e->sequence = drm_crtc_accurate_vblank_count(crtc) + 1;
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880 list_add_tail(&e->base.link, &dev->vblank_event_list);
881}
882EXPORT_SYMBOL(drm_crtc_arm_vblank_event);
883
884/**
885 * drm_crtc_send_vblank_event - helper to send vblank event after pageflip
886 * @crtc: the source CRTC of the vblank event
887 * @e: the event to send
888 *
889 * Updates sequence # and timestamp on event for the most recently processed
890 * vblank, and sends it to userspace. Caller must hold event lock.
891 *
892 * See drm_crtc_arm_vblank_event() for a helper which can be used in certain
893 * situation, especially to send out events for atomic commit operations.
894 */
895void drm_crtc_send_vblank_event(struct drm_crtc *crtc,
896 struct drm_pending_vblank_event *e)
897{
898 struct drm_device *dev = crtc->dev;
570e8696
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899 u64 seq;
900 unsigned int pipe = drm_crtc_index(crtc);
67680d3c 901 ktime_t now;
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902
903 if (dev->num_crtcs > 0) {
904 seq = drm_vblank_count_and_time(dev, pipe, &now);
905 } else {
906 seq = 0;
907
25e1a798 908 now = ktime_get();
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909 }
910 e->pipe = pipe;
67680d3c 911 send_vblank_event(dev, e, seq, now);
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912}
913EXPORT_SYMBOL(drm_crtc_send_vblank_event);
914
915static int __enable_vblank(struct drm_device *dev, unsigned int pipe)
916{
917 if (drm_core_check_feature(dev, DRIVER_MODESET)) {
918 struct drm_crtc *crtc = drm_crtc_from_index(dev, pipe);
919
920 if (crtc->funcs->enable_vblank)
921 return crtc->funcs->enable_vblank(crtc);
922 }
923
924 return dev->driver->enable_vblank(dev, pipe);
925}
926
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927static int drm_vblank_enable(struct drm_device *dev, unsigned int pipe)
928{
929 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
930 int ret = 0;
931
932 assert_spin_locked(&dev->vbl_lock);
933
934 spin_lock(&dev->vblank_time_lock);
935
936 if (!vblank->enabled) {
937 /*
938 * Enable vblank irqs under vblank_time_lock protection.
939 * All vblank count & timestamp updates are held off
940 * until we are done reinitializing master counter and
941 * timestamps. Filtercode in drm_handle_vblank() will
942 * prevent double-accounting of same vblank interval.
943 */
944 ret = __enable_vblank(dev, pipe);
945 DRM_DEBUG("enabling vblank on crtc %u, ret: %d\n", pipe, ret);
946 if (ret) {
947 atomic_dec(&vblank->refcount);
948 } else {
949 drm_update_vblank_count(dev, pipe, 0);
950 /* drm_update_vblank_count() includes a wmb so we just
951 * need to ensure that the compiler emits the write
952 * to mark the vblank as enabled after the call
953 * to drm_update_vblank_count().
954 */
955 WRITE_ONCE(vblank->enabled, true);
956 }
957 }
958
959 spin_unlock(&dev->vblank_time_lock);
960
961 return ret;
962}
963
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964static int drm_vblank_get(struct drm_device *dev, unsigned int pipe)
965{
966 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
967 unsigned long irqflags;
968 int ret = 0;
969
970 if (!dev->num_crtcs)
971 return -EINVAL;
972
973 if (WARN_ON(pipe >= dev->num_crtcs))
974 return -EINVAL;
975
976 spin_lock_irqsave(&dev->vbl_lock, irqflags);
977 /* Going from 0->1 means we have to enable interrupts again */
978 if (atomic_add_return(1, &vblank->refcount) == 1) {
979 ret = drm_vblank_enable(dev, pipe);
980 } else {
981 if (!vblank->enabled) {
982 atomic_dec(&vblank->refcount);
983 ret = -EINVAL;
984 }
985 }
986 spin_unlock_irqrestore(&dev->vbl_lock, irqflags);
987
988 return ret;
989}
990
991/**
992 * drm_crtc_vblank_get - get a reference count on vblank events
993 * @crtc: which CRTC to own
994 *
995 * Acquire a reference count on vblank events to avoid having them disabled
996 * while in use.
997 *
998 * Returns:
999 * Zero on success or a negative error code on failure.
1000 */
1001int drm_crtc_vblank_get(struct drm_crtc *crtc)
1002{
1003 return drm_vblank_get(crtc->dev, drm_crtc_index(crtc));
1004}
1005EXPORT_SYMBOL(drm_crtc_vblank_get);
1006
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1007static void drm_vblank_put(struct drm_device *dev, unsigned int pipe)
1008{
1009 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1010
1011 if (WARN_ON(pipe >= dev->num_crtcs))
1012 return;
1013
1014 if (WARN_ON(atomic_read(&vblank->refcount) == 0))
1015 return;
1016
1017 /* Last user schedules interrupt disable */
1018 if (atomic_dec_and_test(&vblank->refcount)) {
1019 if (drm_vblank_offdelay == 0)
1020 return;
1021 else if (drm_vblank_offdelay < 0)
1022 vblank_disable_fn((unsigned long)vblank);
1023 else if (!dev->vblank_disable_immediate)
1024 mod_timer(&vblank->disable_timer,
1025 jiffies + ((drm_vblank_offdelay * HZ)/1000));
1026 }
1027}
1028
1029/**
1030 * drm_crtc_vblank_put - give up ownership of vblank events
1031 * @crtc: which counter to give up
1032 *
1033 * Release ownership of a given vblank counter, turning off interrupts
1034 * if possible. Disable interrupts after drm_vblank_offdelay milliseconds.
1035 */
1036void drm_crtc_vblank_put(struct drm_crtc *crtc)
1037{
1038 drm_vblank_put(crtc->dev, drm_crtc_index(crtc));
1039}
1040EXPORT_SYMBOL(drm_crtc_vblank_put);
1041
1042/**
1043 * drm_wait_one_vblank - wait for one vblank
1044 * @dev: DRM device
1045 * @pipe: CRTC index
1046 *
1047 * This waits for one vblank to pass on @pipe, using the irq driver interfaces.
1048 * It is a failure to call this when the vblank irq for @pipe is disabled, e.g.
1049 * due to lack of driver support or because the crtc is off.
57d30230
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1050 *
1051 * This is the legacy version of drm_crtc_wait_one_vblank().
3ed4351a
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1052 */
1053void drm_wait_one_vblank(struct drm_device *dev, unsigned int pipe)
1054{
1055 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1056 int ret;
1057 u32 last;
1058
1059 if (WARN_ON(pipe >= dev->num_crtcs))
1060 return;
1061
1062 ret = drm_vblank_get(dev, pipe);
1063 if (WARN(ret, "vblank not available on crtc %i, ret=%i\n", pipe, ret))
1064 return;
1065
1066 last = drm_vblank_count(dev, pipe);
1067
1068 ret = wait_event_timeout(vblank->queue,
1069 last != drm_vblank_count(dev, pipe),
1070 msecs_to_jiffies(100));
1071
1072 WARN(ret == 0, "vblank wait timed out on crtc %i\n", pipe);
1073
1074 drm_vblank_put(dev, pipe);
1075}
1076EXPORT_SYMBOL(drm_wait_one_vblank);
1077
1078/**
1079 * drm_crtc_wait_one_vblank - wait for one vblank
1080 * @crtc: DRM crtc
1081 *
1082 * This waits for one vblank to pass on @crtc, using the irq driver interfaces.
1083 * It is a failure to call this when the vblank irq for @crtc is disabled, e.g.
1084 * due to lack of driver support or because the crtc is off.
1085 */
1086void drm_crtc_wait_one_vblank(struct drm_crtc *crtc)
1087{
1088 drm_wait_one_vblank(crtc->dev, drm_crtc_index(crtc));
1089}
1090EXPORT_SYMBOL(drm_crtc_wait_one_vblank);
1091
1092/**
1093 * drm_crtc_vblank_off - disable vblank events on a CRTC
1094 * @crtc: CRTC in question
1095 *
1096 * Drivers can use this function to shut down the vblank interrupt handling when
1097 * disabling a crtc. This function ensures that the latest vblank frame count is
1098 * stored so that drm_vblank_on can restore it again.
1099 *
1100 * Drivers must use this function when the hardware vblank counter can get
57d30230 1101 * reset, e.g. when suspending or disabling the @crtc in general.
3ed4351a
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1102 */
1103void drm_crtc_vblank_off(struct drm_crtc *crtc)
1104{
1105 struct drm_device *dev = crtc->dev;
1106 unsigned int pipe = drm_crtc_index(crtc);
1107 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1108 struct drm_pending_vblank_event *e, *t;
67680d3c
AB
1109
1110 ktime_t now;
3ed4351a 1111 unsigned long irqflags;
570e8696 1112 u64 seq;
3ed4351a
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1113
1114 if (WARN_ON(pipe >= dev->num_crtcs))
1115 return;
1116
1117 spin_lock_irqsave(&dev->event_lock, irqflags);
1118
1119 spin_lock(&dev->vbl_lock);
1120 DRM_DEBUG_VBL("crtc %d, vblank enabled %d, inmodeset %d\n",
1121 pipe, vblank->enabled, vblank->inmodeset);
1122
1123 /* Avoid redundant vblank disables without previous
1124 * drm_crtc_vblank_on(). */
1125 if (drm_core_check_feature(dev, DRIVER_ATOMIC) || !vblank->inmodeset)
1126 drm_vblank_disable_and_save(dev, pipe);
1127
1128 wake_up(&vblank->queue);
1129
1130 /*
1131 * Prevent subsequent drm_vblank_get() from re-enabling
1132 * the vblank interrupt by bumping the refcount.
1133 */
1134 if (!vblank->inmodeset) {
1135 atomic_inc(&vblank->refcount);
1136 vblank->inmodeset = 1;
1137 }
1138 spin_unlock(&dev->vbl_lock);
1139
1140 /* Send any queued vblank events, lest the natives grow disquiet */
1141 seq = drm_vblank_count_and_time(dev, pipe, &now);
1142
1143 list_for_each_entry_safe(e, t, &dev->vblank_event_list, base.link) {
1144 if (e->pipe != pipe)
1145 continue;
1146 DRM_DEBUG("Sending premature vblank event on disable: "
570e8696
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1147 "wanted %llu, current %llu\n",
1148 e->sequence, seq);
3ed4351a
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1149 list_del(&e->base.link);
1150 drm_vblank_put(dev, pipe);
67680d3c 1151 send_vblank_event(dev, e, seq, now);
3ed4351a
DV
1152 }
1153 spin_unlock_irqrestore(&dev->event_lock, irqflags);
1154
1155 /* Will be reset by the modeset helpers when re-enabling the crtc by
1156 * calling drm_calc_timestamping_constants(). */
1157 vblank->hwmode.crtc_clock = 0;
1158}
1159EXPORT_SYMBOL(drm_crtc_vblank_off);
1160
1161/**
1162 * drm_crtc_vblank_reset - reset vblank state to off on a CRTC
1163 * @crtc: CRTC in question
1164 *
1165 * Drivers can use this function to reset the vblank state to off at load time.
1166 * Drivers should use this together with the drm_crtc_vblank_off() and
1167 * drm_crtc_vblank_on() functions. The difference compared to
1168 * drm_crtc_vblank_off() is that this function doesn't save the vblank counter
1169 * and hence doesn't need to call any driver hooks.
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1170 *
1171 * This is useful for recovering driver state e.g. on driver load, or on resume.
3ed4351a
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1172 */
1173void drm_crtc_vblank_reset(struct drm_crtc *crtc)
1174{
1175 struct drm_device *dev = crtc->dev;
1176 unsigned long irqflags;
1177 unsigned int pipe = drm_crtc_index(crtc);
1178 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1179
1180 spin_lock_irqsave(&dev->vbl_lock, irqflags);
1181 /*
1182 * Prevent subsequent drm_vblank_get() from enabling the vblank
1183 * interrupt by bumping the refcount.
1184 */
1185 if (!vblank->inmodeset) {
1186 atomic_inc(&vblank->refcount);
1187 vblank->inmodeset = 1;
1188 }
1189 spin_unlock_irqrestore(&dev->vbl_lock, irqflags);
1190
1191 WARN_ON(!list_empty(&dev->vblank_event_list));
1192}
1193EXPORT_SYMBOL(drm_crtc_vblank_reset);
1194
1195/**
1196 * drm_crtc_vblank_on - enable vblank events on a CRTC
1197 * @crtc: CRTC in question
1198 *
1199 * This functions restores the vblank interrupt state captured with
57d30230
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1200 * drm_crtc_vblank_off() again and is generally called when enabling @crtc. Note
1201 * that calls to drm_crtc_vblank_on() and drm_crtc_vblank_off() can be
1202 * unbalanced and so can also be unconditionally called in driver load code to
1203 * reflect the current hardware state of the crtc.
3ed4351a
DV
1204 */
1205void drm_crtc_vblank_on(struct drm_crtc *crtc)
1206{
1207 struct drm_device *dev = crtc->dev;
1208 unsigned int pipe = drm_crtc_index(crtc);
1209 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1210 unsigned long irqflags;
1211
1212 if (WARN_ON(pipe >= dev->num_crtcs))
1213 return;
1214
1215 spin_lock_irqsave(&dev->vbl_lock, irqflags);
1216 DRM_DEBUG_VBL("crtc %d, vblank enabled %d, inmodeset %d\n",
1217 pipe, vblank->enabled, vblank->inmodeset);
1218
1219 /* Drop our private "prevent drm_vblank_get" refcount */
1220 if (vblank->inmodeset) {
1221 atomic_dec(&vblank->refcount);
1222 vblank->inmodeset = 0;
1223 }
1224
1225 drm_reset_vblank_timestamp(dev, pipe);
1226
1227 /*
1228 * re-enable interrupts if there are users left, or the
1229 * user wishes vblank interrupts to be enabled all the time.
1230 */
1231 if (atomic_read(&vblank->refcount) != 0 || drm_vblank_offdelay == 0)
1232 WARN_ON(drm_vblank_enable(dev, pipe));
1233 spin_unlock_irqrestore(&dev->vbl_lock, irqflags);
1234}
1235EXPORT_SYMBOL(drm_crtc_vblank_on);
1236
1237static void drm_legacy_vblank_pre_modeset(struct drm_device *dev,
1238 unsigned int pipe)
1239{
1240 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1241
1242 /* vblank is not initialized (IRQ not installed ?), or has been freed */
1243 if (!dev->num_crtcs)
1244 return;
1245
1246 if (WARN_ON(pipe >= dev->num_crtcs))
1247 return;
1248
1249 /*
1250 * To avoid all the problems that might happen if interrupts
1251 * were enabled/disabled around or between these calls, we just
1252 * have the kernel take a reference on the CRTC (just once though
1253 * to avoid corrupting the count if multiple, mismatch calls occur),
1254 * so that interrupts remain enabled in the interim.
1255 */
1256 if (!vblank->inmodeset) {
1257 vblank->inmodeset = 0x1;
1258 if (drm_vblank_get(dev, pipe) == 0)
1259 vblank->inmodeset |= 0x2;
1260 }
1261}
1262
1263static void drm_legacy_vblank_post_modeset(struct drm_device *dev,
1264 unsigned int pipe)
1265{
1266 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1267 unsigned long irqflags;
1268
1269 /* vblank is not initialized (IRQ not installed ?), or has been freed */
1270 if (!dev->num_crtcs)
1271 return;
1272
1273 if (WARN_ON(pipe >= dev->num_crtcs))
1274 return;
1275
1276 if (vblank->inmodeset) {
1277 spin_lock_irqsave(&dev->vbl_lock, irqflags);
1278 drm_reset_vblank_timestamp(dev, pipe);
1279 spin_unlock_irqrestore(&dev->vbl_lock, irqflags);
1280
1281 if (vblank->inmodeset & 0x2)
1282 drm_vblank_put(dev, pipe);
1283
1284 vblank->inmodeset = 0;
1285 }
1286}
1287
b6dcaaac
DV
1288int drm_legacy_modeset_ctl_ioctl(struct drm_device *dev, void *data,
1289 struct drm_file *file_priv)
3ed4351a
DV
1290{
1291 struct drm_modeset_ctl *modeset = data;
1292 unsigned int pipe;
1293
1294 /* If drm_vblank_init() hasn't been called yet, just no-op */
1295 if (!dev->num_crtcs)
1296 return 0;
1297
1298 /* KMS drivers handle this internally */
1299 if (!drm_core_check_feature(dev, DRIVER_LEGACY))
1300 return 0;
1301
1302 pipe = modeset->crtc;
1303 if (pipe >= dev->num_crtcs)
1304 return -EINVAL;
1305
1306 switch (modeset->cmd) {
1307 case _DRM_PRE_MODESET:
1308 drm_legacy_vblank_pre_modeset(dev, pipe);
1309 break;
1310 case _DRM_POST_MODESET:
1311 drm_legacy_vblank_post_modeset(dev, pipe);
1312 break;
1313 default:
1314 return -EINVAL;
1315 }
1316
1317 return 0;
1318}
1319
570e8696 1320static inline bool vblank_passed(u64 seq, u64 ref)
3ed4351a
DV
1321{
1322 return (seq - ref) <= (1 << 23);
1323}
1324
1325static int drm_queue_vblank_event(struct drm_device *dev, unsigned int pipe,
570e8696 1326 u64 req_seq,
3ed4351a
DV
1327 union drm_wait_vblank *vblwait,
1328 struct drm_file *file_priv)
1329{
1330 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1331 struct drm_pending_vblank_event *e;
67680d3c 1332 ktime_t now;
3ed4351a 1333 unsigned long flags;
570e8696 1334 u64 seq;
3ed4351a
DV
1335 int ret;
1336
1337 e = kzalloc(sizeof(*e), GFP_KERNEL);
1338 if (e == NULL) {
1339 ret = -ENOMEM;
1340 goto err_put;
1341 }
1342
1343 e->pipe = pipe;
1344 e->event.base.type = DRM_EVENT_VBLANK;
bd386e51
KP
1345 e->event.base.length = sizeof(e->event.vbl);
1346 e->event.vbl.user_data = vblwait->request.signal;
1347 e->event.vbl.crtc_id = 0;
1348 if (drm_core_check_feature(dev, DRIVER_MODESET)) {
1349 struct drm_crtc *crtc = drm_crtc_from_index(dev, pipe);
1350 if (crtc)
1351 e->event.vbl.crtc_id = crtc->base.id;
1352 }
3ed4351a
DV
1353
1354 spin_lock_irqsave(&dev->event_lock, flags);
1355
1356 /*
1357 * drm_crtc_vblank_off() might have been called after we called
1358 * drm_vblank_get(). drm_crtc_vblank_off() holds event_lock around the
1359 * vblank disable, so no need for further locking. The reference from
1360 * drm_vblank_get() protects against vblank disable from another source.
1361 */
1362 if (!READ_ONCE(vblank->enabled)) {
1363 ret = -EINVAL;
1364 goto err_unlock;
1365 }
1366
1367 ret = drm_event_reserve_init_locked(dev, file_priv, &e->base,
1368 &e->event.base);
1369
1370 if (ret)
1371 goto err_unlock;
1372
1373 seq = drm_vblank_count_and_time(dev, pipe, &now);
1374
570e8696
KP
1375 DRM_DEBUG("event on vblank count %llu, current %llu, crtc %u\n",
1376 req_seq, seq, pipe);
3ed4351a 1377
570e8696 1378 trace_drm_vblank_event_queued(file_priv, pipe, req_seq);
3ed4351a 1379
570e8696
KP
1380 e->sequence = req_seq;
1381 if (vblank_passed(seq, req_seq)) {
3ed4351a 1382 drm_vblank_put(dev, pipe);
67680d3c 1383 send_vblank_event(dev, e, seq, now);
3ed4351a
DV
1384 vblwait->reply.sequence = seq;
1385 } else {
1386 /* drm_handle_vblank_events will call drm_vblank_put */
1387 list_add_tail(&e->base.link, &dev->vblank_event_list);
570e8696 1388 vblwait->reply.sequence = req_seq;
3ed4351a
DV
1389 }
1390
1391 spin_unlock_irqrestore(&dev->event_lock, flags);
1392
1393 return 0;
1394
1395err_unlock:
1396 spin_unlock_irqrestore(&dev->event_lock, flags);
1397 kfree(e);
1398err_put:
1399 drm_vblank_put(dev, pipe);
1400 return ret;
1401}
1402
1403static bool drm_wait_vblank_is_query(union drm_wait_vblank *vblwait)
1404{
1405 if (vblwait->request.sequence)
1406 return false;
1407
1408 return _DRM_VBLANK_RELATIVE ==
1409 (vblwait->request.type & (_DRM_VBLANK_TYPES_MASK |
1410 _DRM_VBLANK_EVENT |
1411 _DRM_VBLANK_NEXTONMISS));
1412}
1413
570e8696
KP
1414/*
1415 * Widen a 32-bit param to 64-bits.
1416 *
1417 * \param narrow 32-bit value (missing upper 32 bits)
1418 * \param near 64-bit value that should be 'close' to near
1419 *
1420 * This function returns a 64-bit value using the lower 32-bits from
1421 * 'narrow' and constructing the upper 32-bits so that the result is
1422 * as close as possible to 'near'.
1423 */
1424
1425static u64 widen_32_to_64(u32 narrow, u64 near)
1426{
1427 return near + (s32) (narrow - near);
1428}
1429
67680d3c
AB
1430static void drm_wait_vblank_reply(struct drm_device *dev, unsigned int pipe,
1431 struct drm_wait_vblank_reply *reply)
1432{
1433 ktime_t now;
1434 struct timespec64 ts;
1435
1436 /*
1437 * drm_wait_vblank_reply is a UAPI structure that uses 'long'
25e1a798
AB
1438 * to store the seconds. This is safe as we always use monotonic
1439 * timestamps since linux-4.15.
67680d3c
AB
1440 */
1441 reply->sequence = drm_vblank_count_and_time(dev, pipe, &now);
1442 ts = ktime_to_timespec64(now);
1443 reply->tval_sec = (u32)ts.tv_sec;
1444 reply->tval_usec = ts.tv_nsec / 1000;
1445}
1446
b6dcaaac
DV
1447int drm_wait_vblank_ioctl(struct drm_device *dev, void *data,
1448 struct drm_file *file_priv)
3ed4351a 1449{
7de440db 1450 struct drm_crtc *crtc;
3ed4351a
DV
1451 struct drm_vblank_crtc *vblank;
1452 union drm_wait_vblank *vblwait = data;
1453 int ret;
570e8696 1454 u64 req_seq, seq;
7de440db 1455 unsigned int pipe_index;
570e8696 1456 unsigned int flags, pipe, high_pipe;
3ed4351a
DV
1457
1458 if (!dev->irq_enabled)
1459 return -EINVAL;
1460
1461 if (vblwait->request.type & _DRM_VBLANK_SIGNAL)
1462 return -EINVAL;
1463
1464 if (vblwait->request.type &
1465 ~(_DRM_VBLANK_TYPES_MASK | _DRM_VBLANK_FLAGS_MASK |
1466 _DRM_VBLANK_HIGH_CRTC_MASK)) {
1467 DRM_ERROR("Unsupported type value 0x%x, supported mask 0x%x\n",
1468 vblwait->request.type,
1469 (_DRM_VBLANK_TYPES_MASK | _DRM_VBLANK_FLAGS_MASK |
1470 _DRM_VBLANK_HIGH_CRTC_MASK));
1471 return -EINVAL;
1472 }
1473
1474 flags = vblwait->request.type & _DRM_VBLANK_FLAGS_MASK;
1475 high_pipe = (vblwait->request.type & _DRM_VBLANK_HIGH_CRTC_MASK);
1476 if (high_pipe)
7de440db 1477 pipe_index = high_pipe >> _DRM_VBLANK_HIGH_CRTC_SHIFT;
3ed4351a 1478 else
7de440db
KP
1479 pipe_index = flags & _DRM_VBLANK_SECONDARY ? 1 : 0;
1480
1481 /* Convert lease-relative crtc index into global crtc index */
1482 if (drm_core_check_feature(dev, DRIVER_MODESET)) {
1483 pipe = 0;
1484 drm_for_each_crtc(crtc, dev) {
1485 if (drm_lease_held(file_priv, crtc->base.id)) {
1486 if (pipe_index == 0)
1487 break;
1488 pipe_index--;
1489 }
1490 pipe++;
1491 }
1492 } else {
1493 pipe = pipe_index;
1494 }
1495
3ed4351a
DV
1496 if (pipe >= dev->num_crtcs)
1497 return -EINVAL;
1498
1499 vblank = &dev->vblank[pipe];
1500
1501 /* If the counter is currently enabled and accurate, short-circuit
1502 * queries to return the cached timestamp of the last vblank.
1503 */
1504 if (dev->vblank_disable_immediate &&
1505 drm_wait_vblank_is_query(vblwait) &&
1506 READ_ONCE(vblank->enabled)) {
67680d3c 1507 drm_wait_vblank_reply(dev, pipe, &vblwait->reply);
3ed4351a
DV
1508 return 0;
1509 }
1510
1511 ret = drm_vblank_get(dev, pipe);
1512 if (ret) {
1513 DRM_DEBUG("crtc %d failed to acquire vblank counter, %d\n", pipe, ret);
1514 return ret;
1515 }
1516 seq = drm_vblank_count(dev, pipe);
1517
1518 switch (vblwait->request.type & _DRM_VBLANK_TYPES_MASK) {
1519 case _DRM_VBLANK_RELATIVE:
570e8696
KP
1520 req_seq = seq + vblwait->request.sequence;
1521 vblwait->request.sequence = req_seq;
3ed4351a 1522 vblwait->request.type &= ~_DRM_VBLANK_RELATIVE;
570e8696 1523 break;
3ed4351a 1524 case _DRM_VBLANK_ABSOLUTE:
570e8696 1525 req_seq = widen_32_to_64(vblwait->request.sequence, seq);
3ed4351a
DV
1526 break;
1527 default:
1528 ret = -EINVAL;
1529 goto done;
1530 }
1531
1532 if ((flags & _DRM_VBLANK_NEXTONMISS) &&
570e8696
KP
1533 vblank_passed(seq, req_seq)) {
1534 req_seq = seq + 1;
1535 vblwait->request.type &= ~_DRM_VBLANK_NEXTONMISS;
1536 vblwait->request.sequence = req_seq;
1537 }
3ed4351a
DV
1538
1539 if (flags & _DRM_VBLANK_EVENT) {
1540 /* must hold on to the vblank ref until the event fires
1541 * drm_vblank_put will be called asynchronously
1542 */
570e8696 1543 return drm_queue_vblank_event(dev, pipe, req_seq, vblwait, file_priv);
3ed4351a
DV
1544 }
1545
570e8696
KP
1546 if (req_seq != seq) {
1547 DRM_DEBUG("waiting on vblank count %llu, crtc %u\n",
1548 req_seq, pipe);
3ed4351a
DV
1549 DRM_WAIT_ON(ret, vblank->queue, 3 * HZ,
1550 vblank_passed(drm_vblank_count(dev, pipe),
570e8696 1551 req_seq) ||
3ed4351a
DV
1552 !READ_ONCE(vblank->enabled));
1553 }
1554
1555 if (ret != -EINTR) {
67680d3c 1556 drm_wait_vblank_reply(dev, pipe, &vblwait->reply);
3ed4351a
DV
1557
1558 DRM_DEBUG("crtc %d returning %u to client\n",
1559 pipe, vblwait->reply.sequence);
1560 } else {
1561 DRM_DEBUG("crtc %d vblank wait interrupted by signal\n", pipe);
1562 }
1563
1564done:
1565 drm_vblank_put(dev, pipe);
1566 return ret;
1567}
1568
1569static void drm_handle_vblank_events(struct drm_device *dev, unsigned int pipe)
1570{
1571 struct drm_pending_vblank_event *e, *t;
67680d3c 1572 ktime_t now;
570e8696 1573 u64 seq;
3ed4351a
DV
1574
1575 assert_spin_locked(&dev->event_lock);
1576
1577 seq = drm_vblank_count_and_time(dev, pipe, &now);
1578
1579 list_for_each_entry_safe(e, t, &dev->vblank_event_list, base.link) {
1580 if (e->pipe != pipe)
1581 continue;
570e8696 1582 if (!vblank_passed(seq, e->sequence))
3ed4351a
DV
1583 continue;
1584
570e8696
KP
1585 DRM_DEBUG("vblank event on %llu, current %llu\n",
1586 e->sequence, seq);
3ed4351a
DV
1587
1588 list_del(&e->base.link);
1589 drm_vblank_put(dev, pipe);
67680d3c 1590 send_vblank_event(dev, e, seq, now);
3ed4351a
DV
1591 }
1592
1593 trace_drm_vblank_event(pipe, seq);
1594}
1595
1596/**
1597 * drm_handle_vblank - handle a vblank event
1598 * @dev: DRM device
1599 * @pipe: index of CRTC where this event occurred
1600 *
1601 * Drivers should call this routine in their vblank interrupt handlers to
1602 * update the vblank counter and send any signals that may be pending.
1603 *
1604 * This is the legacy version of drm_crtc_handle_vblank().
1605 */
1606bool drm_handle_vblank(struct drm_device *dev, unsigned int pipe)
1607{
1608 struct drm_vblank_crtc *vblank = &dev->vblank[pipe];
1609 unsigned long irqflags;
1610 bool disable_irq;
1611
1612 if (WARN_ON_ONCE(!dev->num_crtcs))
1613 return false;
1614
1615 if (WARN_ON(pipe >= dev->num_crtcs))
1616 return false;
1617
1618 spin_lock_irqsave(&dev->event_lock, irqflags);
1619
1620 /* Need timestamp lock to prevent concurrent execution with
1621 * vblank enable/disable, as this would cause inconsistent
1622 * or corrupted timestamps and vblank counts.
1623 */
1624 spin_lock(&dev->vblank_time_lock);
1625
1626 /* Vblank irq handling disabled. Nothing to do. */
1627 if (!vblank->enabled) {
1628 spin_unlock(&dev->vblank_time_lock);
1629 spin_unlock_irqrestore(&dev->event_lock, irqflags);
1630 return false;
1631 }
1632
1633 drm_update_vblank_count(dev, pipe, true);
1634
1635 spin_unlock(&dev->vblank_time_lock);
1636
1637 wake_up(&vblank->queue);
1638
1639 /* With instant-off, we defer disabling the interrupt until after
1640 * we finish processing the following vblank after all events have
1641 * been signaled. The disable has to be last (after
1642 * drm_handle_vblank_events) so that the timestamp is always accurate.
1643 */
1644 disable_irq = (dev->vblank_disable_immediate &&
1645 drm_vblank_offdelay > 0 &&
1646 !atomic_read(&vblank->refcount));
1647
1648 drm_handle_vblank_events(dev, pipe);
1649
1650 spin_unlock_irqrestore(&dev->event_lock, irqflags);
1651
1652 if (disable_irq)
1653 vblank_disable_fn((unsigned long)vblank);
1654
1655 return true;
1656}
1657EXPORT_SYMBOL(drm_handle_vblank);
1658
1659/**
1660 * drm_crtc_handle_vblank - handle a vblank event
1661 * @crtc: where this event occurred
1662 *
1663 * Drivers should call this routine in their vblank interrupt handlers to
1664 * update the vblank counter and send any signals that may be pending.
1665 *
1666 * This is the native KMS version of drm_handle_vblank().
1667 *
1668 * Returns:
1669 * True if the event was successfully handled, false on failure.
1670 */
1671bool drm_crtc_handle_vblank(struct drm_crtc *crtc)
1672{
1673 return drm_handle_vblank(crtc->dev, drm_crtc_index(crtc));
1674}
1675EXPORT_SYMBOL(drm_crtc_handle_vblank);
3064abfa
KP
1676
1677/*
1678 * Get crtc VBLANK count.
1679 *
1680 * \param dev DRM device
1681 * \param data user arguement, pointing to a drm_crtc_get_sequence structure.
1682 * \param file_priv drm file private for the user's open file descriptor
1683 */
1684
1685int drm_crtc_get_sequence_ioctl(struct drm_device *dev, void *data,
1686 struct drm_file *file_priv)
1687{
1688 struct drm_crtc *crtc;
1689 struct drm_vblank_crtc *vblank;
1690 int pipe;
1691 struct drm_crtc_get_sequence *get_seq = data;
1692 ktime_t now;
1693 bool vblank_enabled;
1694 int ret;
1695
1696 if (!drm_core_check_feature(dev, DRIVER_MODESET))
1697 return -EINVAL;
1698
1699 if (!dev->irq_enabled)
1700 return -EINVAL;
1701
1702 crtc = drm_crtc_find(dev, file_priv, get_seq->crtc_id);
1703 if (!crtc)
1704 return -ENOENT;
1705
1706 pipe = drm_crtc_index(crtc);
1707
1708 vblank = &dev->vblank[pipe];
1709 vblank_enabled = dev->vblank_disable_immediate && READ_ONCE(vblank->enabled);
1710
1711 if (!vblank_enabled) {
1712 ret = drm_crtc_vblank_get(crtc);
1713 if (ret) {
1714 DRM_DEBUG("crtc %d failed to acquire vblank counter, %d\n", pipe, ret);
1715 return ret;
1716 }
1717 }
1718 drm_modeset_lock(&crtc->mutex, NULL);
1719 if (crtc->state)
1720 get_seq->active = crtc->state->enable;
1721 else
1722 get_seq->active = crtc->enabled;
1723 drm_modeset_unlock(&crtc->mutex);
1724 get_seq->sequence = drm_vblank_count_and_time(dev, pipe, &now);
1725 get_seq->sequence_ns = ktime_to_ns(now);
1726 if (!vblank_enabled)
1727 drm_crtc_vblank_put(crtc);
1728 return 0;
1729}
1730
1731/*
1732 * Queue a event for VBLANK sequence
1733 *
1734 * \param dev DRM device
1735 * \param data user arguement, pointing to a drm_crtc_queue_sequence structure.
1736 * \param file_priv drm file private for the user's open file descriptor
1737 */
1738
1739int drm_crtc_queue_sequence_ioctl(struct drm_device *dev, void *data,
1740 struct drm_file *file_priv)
1741{
1742 struct drm_crtc *crtc;
1743 struct drm_vblank_crtc *vblank;
1744 int pipe;
1745 struct drm_crtc_queue_sequence *queue_seq = data;
1746 ktime_t now;
1747 struct drm_pending_vblank_event *e;
1748 u32 flags;
1749 u64 seq;
1750 u64 req_seq;
1751 int ret;
1752 unsigned long spin_flags;
1753
1754 if (!drm_core_check_feature(dev, DRIVER_MODESET))
1755 return -EINVAL;
1756
1757 if (!dev->irq_enabled)
1758 return -EINVAL;
1759
1760 crtc = drm_crtc_find(dev, file_priv, queue_seq->crtc_id);
1761 if (!crtc)
1762 return -ENOENT;
1763
1764 flags = queue_seq->flags;
1765 /* Check valid flag bits */
1766 if (flags & ~(DRM_CRTC_SEQUENCE_RELATIVE|
1767 DRM_CRTC_SEQUENCE_NEXT_ON_MISS))
1768 return -EINVAL;
1769
1770 pipe = drm_crtc_index(crtc);
1771
1772 vblank = &dev->vblank[pipe];
1773
1774 e = kzalloc(sizeof(*e), GFP_KERNEL);
1775 if (e == NULL)
1776 return -ENOMEM;
1777
1778 ret = drm_crtc_vblank_get(crtc);
1779 if (ret) {
1780 DRM_DEBUG("crtc %d failed to acquire vblank counter, %d\n", pipe, ret);
1781 goto err_free;
1782 }
1783
1784 seq = drm_vblank_count_and_time(dev, pipe, &now);
1785 req_seq = queue_seq->sequence;
1786
1787 if (flags & DRM_CRTC_SEQUENCE_RELATIVE)
1788 req_seq += seq;
1789
1790 if ((flags & DRM_CRTC_SEQUENCE_NEXT_ON_MISS) && vblank_passed(seq, req_seq))
1791 req_seq = seq + 1;
1792
1793 e->pipe = pipe;
1794 e->event.base.type = DRM_EVENT_CRTC_SEQUENCE;
1795 e->event.base.length = sizeof(e->event.seq);
1796 e->event.seq.user_data = queue_seq->user_data;
1797
1798 spin_lock_irqsave(&dev->event_lock, spin_flags);
1799
1800 /*
1801 * drm_crtc_vblank_off() might have been called after we called
1802 * drm_crtc_vblank_get(). drm_crtc_vblank_off() holds event_lock around the
1803 * vblank disable, so no need for further locking. The reference from
1804 * drm_crtc_vblank_get() protects against vblank disable from another source.
1805 */
1806 if (!READ_ONCE(vblank->enabled)) {
1807 ret = -EINVAL;
1808 goto err_unlock;
1809 }
1810
1811 ret = drm_event_reserve_init_locked(dev, file_priv, &e->base,
1812 &e->event.base);
1813
1814 if (ret)
1815 goto err_unlock;
1816
1817 e->sequence = req_seq;
1818
1819 if (vblank_passed(seq, req_seq)) {
1820 drm_crtc_vblank_put(crtc);
1821 send_vblank_event(dev, e, seq, now);
1822 queue_seq->sequence = seq;
1823 } else {
1824 /* drm_handle_vblank_events will call drm_vblank_put */
1825 list_add_tail(&e->base.link, &dev->vblank_event_list);
1826 queue_seq->sequence = req_seq;
1827 }
1828
1829 spin_unlock_irqrestore(&dev->event_lock, spin_flags);
1830 return 0;
1831
1832err_unlock:
1833 spin_unlock_irqrestore(&dev->event_lock, spin_flags);
1834 drm_crtc_vblank_put(crtc);
1835err_free:
1836 kfree(e);
1837 return ret;
1838}