xref: /linux/drivers/media/v4l2-core/v4l2-mem2mem.c (revision dc3e0896003ee9b3bcc34c53965dc4bbc8671c44)
1 /*
2  * Memory-to-memory device framework for Video for Linux 2 and videobuf.
3  *
4  * Helper functions for devices that use videobuf buffers for both their
5  * source and destination.
6  *
7  * Copyright (c) 2009-2010 Samsung Electronics Co., Ltd.
8  * Pawel Osciak, <pawel@osciak.com>
9  * Marek Szyprowski, <m.szyprowski@samsung.com>
10  *
11  * This program is free software; you can redistribute it and/or modify
12  * it under the terms of the GNU General Public License as published by the
13  * Free Software Foundation; either version 2 of the License, or (at your
14  * option) any later version.
15  */
16 #include <linux/module.h>
17 #include <linux/sched.h>
18 #include <linux/slab.h>
19 
20 #include <media/media-device.h>
21 #include <media/videobuf2-v4l2.h>
22 #include <media/v4l2-mem2mem.h>
23 #include <media/v4l2-dev.h>
24 #include <media/v4l2-device.h>
25 #include <media/v4l2-fh.h>
26 #include <media/v4l2-event.h>
27 
28 MODULE_DESCRIPTION("Mem to mem device framework for videobuf");
29 MODULE_AUTHOR("Pawel Osciak, <pawel@osciak.com>");
30 MODULE_LICENSE("GPL");
31 
32 static bool debug;
33 module_param(debug, bool, 0644);
34 
35 #define dprintk(fmt, arg...)						\
36 	do {								\
37 		if (debug)						\
38 			printk(KERN_DEBUG "%s: " fmt, __func__, ## arg);\
39 	} while (0)
40 
41 
42 /* Instance is already queued on the job_queue */
43 #define TRANS_QUEUED		(1 << 0)
44 /* Instance is currently running in hardware */
45 #define TRANS_RUNNING		(1 << 1)
46 /* Instance is currently aborting */
47 #define TRANS_ABORT		(1 << 2)
48 
49 
50 /* Offset base for buffers on the destination queue - used to distinguish
51  * between source and destination buffers when mmapping - they receive the same
52  * offsets but for different queues */
53 #define DST_QUEUE_OFF_BASE	(1 << 30)
54 
55 enum v4l2_m2m_entity_type {
56 	MEM2MEM_ENT_TYPE_SOURCE,
57 	MEM2MEM_ENT_TYPE_SINK,
58 	MEM2MEM_ENT_TYPE_PROC
59 };
60 
61 static const char * const m2m_entity_name[] = {
62 	"source",
63 	"sink",
64 	"proc"
65 };
66 
67 /**
68  * struct v4l2_m2m_dev - per-device context
69  * @source:		&struct media_entity pointer with the source entity
70  *			Used only when the M2M device is registered via
71  *			v4l2_m2m_unregister_media_controller().
72  * @source_pad:		&struct media_pad with the source pad.
73  *			Used only when the M2M device is registered via
74  *			v4l2_m2m_unregister_media_controller().
75  * @sink:		&struct media_entity pointer with the sink entity
76  *			Used only when the M2M device is registered via
77  *			v4l2_m2m_unregister_media_controller().
78  * @sink_pad:		&struct media_pad with the sink pad.
79  *			Used only when the M2M device is registered via
80  *			v4l2_m2m_unregister_media_controller().
81  * @proc:		&struct media_entity pointer with the M2M device itself.
82  * @proc_pads:		&struct media_pad with the @proc pads.
83  *			Used only when the M2M device is registered via
84  *			v4l2_m2m_unregister_media_controller().
85  * @intf_devnode:	&struct media_intf devnode pointer with the interface
86  *			with controls the M2M device.
87  * @curr_ctx:		currently running instance
88  * @job_queue:		instances queued to run
89  * @job_spinlock:	protects job_queue
90  * @m2m_ops:		driver callbacks
91  */
92 struct v4l2_m2m_dev {
93 	struct v4l2_m2m_ctx	*curr_ctx;
94 #ifdef CONFIG_MEDIA_CONTROLLER
95 	struct media_entity	*source;
96 	struct media_pad	source_pad;
97 	struct media_entity	sink;
98 	struct media_pad	sink_pad;
99 	struct media_entity	proc;
100 	struct media_pad	proc_pads[2];
101 	struct media_intf_devnode *intf_devnode;
102 #endif
103 
104 	struct list_head	job_queue;
105 	spinlock_t		job_spinlock;
106 
107 	const struct v4l2_m2m_ops *m2m_ops;
108 };
109 
110 static struct v4l2_m2m_queue_ctx *get_queue_ctx(struct v4l2_m2m_ctx *m2m_ctx,
111 						enum v4l2_buf_type type)
112 {
113 	if (V4L2_TYPE_IS_OUTPUT(type))
114 		return &m2m_ctx->out_q_ctx;
115 	else
116 		return &m2m_ctx->cap_q_ctx;
117 }
118 
119 struct vb2_queue *v4l2_m2m_get_vq(struct v4l2_m2m_ctx *m2m_ctx,
120 				       enum v4l2_buf_type type)
121 {
122 	struct v4l2_m2m_queue_ctx *q_ctx;
123 
124 	q_ctx = get_queue_ctx(m2m_ctx, type);
125 	if (!q_ctx)
126 		return NULL;
127 
128 	return &q_ctx->q;
129 }
130 EXPORT_SYMBOL(v4l2_m2m_get_vq);
131 
132 void *v4l2_m2m_next_buf(struct v4l2_m2m_queue_ctx *q_ctx)
133 {
134 	struct v4l2_m2m_buffer *b;
135 	unsigned long flags;
136 
137 	spin_lock_irqsave(&q_ctx->rdy_spinlock, flags);
138 
139 	if (list_empty(&q_ctx->rdy_queue)) {
140 		spin_unlock_irqrestore(&q_ctx->rdy_spinlock, flags);
141 		return NULL;
142 	}
143 
144 	b = list_first_entry(&q_ctx->rdy_queue, struct v4l2_m2m_buffer, list);
145 	spin_unlock_irqrestore(&q_ctx->rdy_spinlock, flags);
146 	return &b->vb;
147 }
148 EXPORT_SYMBOL_GPL(v4l2_m2m_next_buf);
149 
150 void *v4l2_m2m_last_buf(struct v4l2_m2m_queue_ctx *q_ctx)
151 {
152 	struct v4l2_m2m_buffer *b;
153 	unsigned long flags;
154 
155 	spin_lock_irqsave(&q_ctx->rdy_spinlock, flags);
156 
157 	if (list_empty(&q_ctx->rdy_queue)) {
158 		spin_unlock_irqrestore(&q_ctx->rdy_spinlock, flags);
159 		return NULL;
160 	}
161 
162 	b = list_last_entry(&q_ctx->rdy_queue, struct v4l2_m2m_buffer, list);
163 	spin_unlock_irqrestore(&q_ctx->rdy_spinlock, flags);
164 	return &b->vb;
165 }
166 EXPORT_SYMBOL_GPL(v4l2_m2m_last_buf);
167 
168 void *v4l2_m2m_buf_remove(struct v4l2_m2m_queue_ctx *q_ctx)
169 {
170 	struct v4l2_m2m_buffer *b;
171 	unsigned long flags;
172 
173 	spin_lock_irqsave(&q_ctx->rdy_spinlock, flags);
174 	if (list_empty(&q_ctx->rdy_queue)) {
175 		spin_unlock_irqrestore(&q_ctx->rdy_spinlock, flags);
176 		return NULL;
177 	}
178 	b = list_first_entry(&q_ctx->rdy_queue, struct v4l2_m2m_buffer, list);
179 	list_del(&b->list);
180 	q_ctx->num_rdy--;
181 	spin_unlock_irqrestore(&q_ctx->rdy_spinlock, flags);
182 
183 	return &b->vb;
184 }
185 EXPORT_SYMBOL_GPL(v4l2_m2m_buf_remove);
186 
187 void v4l2_m2m_buf_remove_by_buf(struct v4l2_m2m_queue_ctx *q_ctx,
188 				struct vb2_v4l2_buffer *vbuf)
189 {
190 	struct v4l2_m2m_buffer *b;
191 	unsigned long flags;
192 
193 	spin_lock_irqsave(&q_ctx->rdy_spinlock, flags);
194 	b = container_of(vbuf, struct v4l2_m2m_buffer, vb);
195 	list_del(&b->list);
196 	q_ctx->num_rdy--;
197 	spin_unlock_irqrestore(&q_ctx->rdy_spinlock, flags);
198 }
199 EXPORT_SYMBOL_GPL(v4l2_m2m_buf_remove_by_buf);
200 
201 struct vb2_v4l2_buffer *
202 v4l2_m2m_buf_remove_by_idx(struct v4l2_m2m_queue_ctx *q_ctx, unsigned int idx)
203 
204 {
205 	struct v4l2_m2m_buffer *b, *tmp;
206 	struct vb2_v4l2_buffer *ret = NULL;
207 	unsigned long flags;
208 
209 	spin_lock_irqsave(&q_ctx->rdy_spinlock, flags);
210 	list_for_each_entry_safe(b, tmp, &q_ctx->rdy_queue, list) {
211 		if (b->vb.vb2_buf.index == idx) {
212 			list_del(&b->list);
213 			q_ctx->num_rdy--;
214 			ret = &b->vb;
215 			break;
216 		}
217 	}
218 	spin_unlock_irqrestore(&q_ctx->rdy_spinlock, flags);
219 
220 	return ret;
221 }
222 EXPORT_SYMBOL_GPL(v4l2_m2m_buf_remove_by_idx);
223 
224 /*
225  * Scheduling handlers
226  */
227 
228 void *v4l2_m2m_get_curr_priv(struct v4l2_m2m_dev *m2m_dev)
229 {
230 	unsigned long flags;
231 	void *ret = NULL;
232 
233 	spin_lock_irqsave(&m2m_dev->job_spinlock, flags);
234 	if (m2m_dev->curr_ctx)
235 		ret = m2m_dev->curr_ctx->priv;
236 	spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags);
237 
238 	return ret;
239 }
240 EXPORT_SYMBOL(v4l2_m2m_get_curr_priv);
241 
242 /**
243  * v4l2_m2m_try_run() - select next job to perform and run it if possible
244  * @m2m_dev: per-device context
245  *
246  * Get next transaction (if present) from the waiting jobs list and run it.
247  */
248 static void v4l2_m2m_try_run(struct v4l2_m2m_dev *m2m_dev)
249 {
250 	unsigned long flags;
251 
252 	spin_lock_irqsave(&m2m_dev->job_spinlock, flags);
253 	if (NULL != m2m_dev->curr_ctx) {
254 		spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags);
255 		dprintk("Another instance is running, won't run now\n");
256 		return;
257 	}
258 
259 	if (list_empty(&m2m_dev->job_queue)) {
260 		spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags);
261 		dprintk("No job pending\n");
262 		return;
263 	}
264 
265 	m2m_dev->curr_ctx = list_first_entry(&m2m_dev->job_queue,
266 				   struct v4l2_m2m_ctx, queue);
267 	m2m_dev->curr_ctx->job_flags |= TRANS_RUNNING;
268 	spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags);
269 
270 	dprintk("Running job on m2m_ctx: %p\n", m2m_dev->curr_ctx);
271 	m2m_dev->m2m_ops->device_run(m2m_dev->curr_ctx->priv);
272 }
273 
274 /*
275  * __v4l2_m2m_try_queue() - queue a job
276  * @m2m_dev: m2m device
277  * @m2m_ctx: m2m context
278  *
279  * Check if this context is ready to queue a job.
280  *
281  * This function can run in interrupt context.
282  */
283 static void __v4l2_m2m_try_queue(struct v4l2_m2m_dev *m2m_dev,
284 				 struct v4l2_m2m_ctx *m2m_ctx)
285 {
286 	unsigned long flags_job, flags_out, flags_cap;
287 
288 	dprintk("Trying to schedule a job for m2m_ctx: %p\n", m2m_ctx);
289 
290 	if (!m2m_ctx->out_q_ctx.q.streaming
291 	    || !m2m_ctx->cap_q_ctx.q.streaming) {
292 		dprintk("Streaming needs to be on for both queues\n");
293 		return;
294 	}
295 
296 	spin_lock_irqsave(&m2m_dev->job_spinlock, flags_job);
297 
298 	/* If the context is aborted then don't schedule it */
299 	if (m2m_ctx->job_flags & TRANS_ABORT) {
300 		spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags_job);
301 		dprintk("Aborted context\n");
302 		return;
303 	}
304 
305 	if (m2m_ctx->job_flags & TRANS_QUEUED) {
306 		spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags_job);
307 		dprintk("On job queue already\n");
308 		return;
309 	}
310 
311 	spin_lock_irqsave(&m2m_ctx->out_q_ctx.rdy_spinlock, flags_out);
312 	if (list_empty(&m2m_ctx->out_q_ctx.rdy_queue)
313 	    && !m2m_ctx->out_q_ctx.buffered) {
314 		spin_unlock_irqrestore(&m2m_ctx->out_q_ctx.rdy_spinlock,
315 					flags_out);
316 		spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags_job);
317 		dprintk("No input buffers available\n");
318 		return;
319 	}
320 	spin_lock_irqsave(&m2m_ctx->cap_q_ctx.rdy_spinlock, flags_cap);
321 	if (list_empty(&m2m_ctx->cap_q_ctx.rdy_queue)
322 	    && !m2m_ctx->cap_q_ctx.buffered) {
323 		spin_unlock_irqrestore(&m2m_ctx->cap_q_ctx.rdy_spinlock,
324 					flags_cap);
325 		spin_unlock_irqrestore(&m2m_ctx->out_q_ctx.rdy_spinlock,
326 					flags_out);
327 		spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags_job);
328 		dprintk("No output buffers available\n");
329 		return;
330 	}
331 	spin_unlock_irqrestore(&m2m_ctx->cap_q_ctx.rdy_spinlock, flags_cap);
332 	spin_unlock_irqrestore(&m2m_ctx->out_q_ctx.rdy_spinlock, flags_out);
333 
334 	if (m2m_dev->m2m_ops->job_ready
335 		&& (!m2m_dev->m2m_ops->job_ready(m2m_ctx->priv))) {
336 		spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags_job);
337 		dprintk("Driver not ready\n");
338 		return;
339 	}
340 
341 	list_add_tail(&m2m_ctx->queue, &m2m_dev->job_queue);
342 	m2m_ctx->job_flags |= TRANS_QUEUED;
343 
344 	spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags_job);
345 }
346 
347 /**
348  * v4l2_m2m_try_schedule() - schedule and possibly run a job for any context
349  * @m2m_ctx: m2m context
350  *
351  * Check if this context is ready to queue a job. If suitable,
352  * run the next queued job on the mem2mem device.
353  *
354  * This function shouldn't run in interrupt context.
355  *
356  * Note that v4l2_m2m_try_schedule() can schedule one job for this context,
357  * and then run another job for another context.
358  */
359 void v4l2_m2m_try_schedule(struct v4l2_m2m_ctx *m2m_ctx)
360 {
361 	struct v4l2_m2m_dev *m2m_dev = m2m_ctx->m2m_dev;
362 
363 	__v4l2_m2m_try_queue(m2m_dev, m2m_ctx);
364 	v4l2_m2m_try_run(m2m_dev);
365 }
366 EXPORT_SYMBOL_GPL(v4l2_m2m_try_schedule);
367 
368 /**
369  * v4l2_m2m_cancel_job() - cancel pending jobs for the context
370  * @m2m_ctx: m2m context with jobs to be canceled
371  *
372  * In case of streamoff or release called on any context,
373  * 1] If the context is currently running, then abort job will be called
374  * 2] If the context is queued, then the context will be removed from
375  *    the job_queue
376  */
377 static void v4l2_m2m_cancel_job(struct v4l2_m2m_ctx *m2m_ctx)
378 {
379 	struct v4l2_m2m_dev *m2m_dev;
380 	unsigned long flags;
381 
382 	m2m_dev = m2m_ctx->m2m_dev;
383 	spin_lock_irqsave(&m2m_dev->job_spinlock, flags);
384 
385 	m2m_ctx->job_flags |= TRANS_ABORT;
386 	if (m2m_ctx->job_flags & TRANS_RUNNING) {
387 		spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags);
388 		if (m2m_dev->m2m_ops->job_abort)
389 			m2m_dev->m2m_ops->job_abort(m2m_ctx->priv);
390 		dprintk("m2m_ctx %p running, will wait to complete\n", m2m_ctx);
391 		wait_event(m2m_ctx->finished,
392 				!(m2m_ctx->job_flags & TRANS_RUNNING));
393 	} else if (m2m_ctx->job_flags & TRANS_QUEUED) {
394 		list_del(&m2m_ctx->queue);
395 		m2m_ctx->job_flags &= ~(TRANS_QUEUED | TRANS_RUNNING);
396 		spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags);
397 		dprintk("m2m_ctx: %p had been on queue and was removed\n",
398 			m2m_ctx);
399 	} else {
400 		/* Do nothing, was not on queue/running */
401 		spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags);
402 	}
403 }
404 
405 void v4l2_m2m_job_finish(struct v4l2_m2m_dev *m2m_dev,
406 			 struct v4l2_m2m_ctx *m2m_ctx)
407 {
408 	unsigned long flags;
409 
410 	spin_lock_irqsave(&m2m_dev->job_spinlock, flags);
411 	if (!m2m_dev->curr_ctx || m2m_dev->curr_ctx != m2m_ctx) {
412 		spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags);
413 		dprintk("Called by an instance not currently running\n");
414 		return;
415 	}
416 
417 	list_del(&m2m_dev->curr_ctx->queue);
418 	m2m_dev->curr_ctx->job_flags &= ~(TRANS_QUEUED | TRANS_RUNNING);
419 	wake_up(&m2m_dev->curr_ctx->finished);
420 	m2m_dev->curr_ctx = NULL;
421 
422 	spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags);
423 
424 	/* This instance might have more buffers ready, but since we do not
425 	 * allow more than one job on the job_queue per instance, each has
426 	 * to be scheduled separately after the previous one finishes. */
427 	v4l2_m2m_try_schedule(m2m_ctx);
428 }
429 EXPORT_SYMBOL(v4l2_m2m_job_finish);
430 
431 int v4l2_m2m_reqbufs(struct file *file, struct v4l2_m2m_ctx *m2m_ctx,
432 		     struct v4l2_requestbuffers *reqbufs)
433 {
434 	struct vb2_queue *vq;
435 	int ret;
436 
437 	vq = v4l2_m2m_get_vq(m2m_ctx, reqbufs->type);
438 	ret = vb2_reqbufs(vq, reqbufs);
439 	/* If count == 0, then the owner has released all buffers and he
440 	   is no longer owner of the queue. Otherwise we have an owner. */
441 	if (ret == 0)
442 		vq->owner = reqbufs->count ? file->private_data : NULL;
443 
444 	return ret;
445 }
446 EXPORT_SYMBOL_GPL(v4l2_m2m_reqbufs);
447 
448 int v4l2_m2m_querybuf(struct file *file, struct v4l2_m2m_ctx *m2m_ctx,
449 		      struct v4l2_buffer *buf)
450 {
451 	struct vb2_queue *vq;
452 	int ret = 0;
453 	unsigned int i;
454 
455 	vq = v4l2_m2m_get_vq(m2m_ctx, buf->type);
456 	ret = vb2_querybuf(vq, buf);
457 
458 	/* Adjust MMAP memory offsets for the CAPTURE queue */
459 	if (buf->memory == V4L2_MEMORY_MMAP && !V4L2_TYPE_IS_OUTPUT(vq->type)) {
460 		if (V4L2_TYPE_IS_MULTIPLANAR(vq->type)) {
461 			for (i = 0; i < buf->length; ++i)
462 				buf->m.planes[i].m.mem_offset
463 					+= DST_QUEUE_OFF_BASE;
464 		} else {
465 			buf->m.offset += DST_QUEUE_OFF_BASE;
466 		}
467 	}
468 
469 	return ret;
470 }
471 EXPORT_SYMBOL_GPL(v4l2_m2m_querybuf);
472 
473 int v4l2_m2m_qbuf(struct file *file, struct v4l2_m2m_ctx *m2m_ctx,
474 		  struct v4l2_buffer *buf)
475 {
476 	struct video_device *vdev = video_devdata(file);
477 	struct vb2_queue *vq;
478 	int ret;
479 
480 	vq = v4l2_m2m_get_vq(m2m_ctx, buf->type);
481 	if (!V4L2_TYPE_IS_OUTPUT(vq->type) &&
482 	    (buf->flags & V4L2_BUF_FLAG_REQUEST_FD)) {
483 		dprintk("%s: requests cannot be used with capture buffers\n",
484 			__func__);
485 		return -EPERM;
486 	}
487 	ret = vb2_qbuf(vq, vdev->v4l2_dev->mdev, buf);
488 	if (!ret && !(buf->flags & V4L2_BUF_FLAG_IN_REQUEST))
489 		v4l2_m2m_try_schedule(m2m_ctx);
490 
491 	return ret;
492 }
493 EXPORT_SYMBOL_GPL(v4l2_m2m_qbuf);
494 
495 int v4l2_m2m_dqbuf(struct file *file, struct v4l2_m2m_ctx *m2m_ctx,
496 		   struct v4l2_buffer *buf)
497 {
498 	struct vb2_queue *vq;
499 
500 	vq = v4l2_m2m_get_vq(m2m_ctx, buf->type);
501 	return vb2_dqbuf(vq, buf, file->f_flags & O_NONBLOCK);
502 }
503 EXPORT_SYMBOL_GPL(v4l2_m2m_dqbuf);
504 
505 int v4l2_m2m_prepare_buf(struct file *file, struct v4l2_m2m_ctx *m2m_ctx,
506 			 struct v4l2_buffer *buf)
507 {
508 	struct video_device *vdev = video_devdata(file);
509 	struct vb2_queue *vq;
510 
511 	vq = v4l2_m2m_get_vq(m2m_ctx, buf->type);
512 	return vb2_prepare_buf(vq, vdev->v4l2_dev->mdev, buf);
513 }
514 EXPORT_SYMBOL_GPL(v4l2_m2m_prepare_buf);
515 
516 int v4l2_m2m_create_bufs(struct file *file, struct v4l2_m2m_ctx *m2m_ctx,
517 			 struct v4l2_create_buffers *create)
518 {
519 	struct vb2_queue *vq;
520 
521 	vq = v4l2_m2m_get_vq(m2m_ctx, create->format.type);
522 	return vb2_create_bufs(vq, create);
523 }
524 EXPORT_SYMBOL_GPL(v4l2_m2m_create_bufs);
525 
526 int v4l2_m2m_expbuf(struct file *file, struct v4l2_m2m_ctx *m2m_ctx,
527 		  struct v4l2_exportbuffer *eb)
528 {
529 	struct vb2_queue *vq;
530 
531 	vq = v4l2_m2m_get_vq(m2m_ctx, eb->type);
532 	return vb2_expbuf(vq, eb);
533 }
534 EXPORT_SYMBOL_GPL(v4l2_m2m_expbuf);
535 
536 int v4l2_m2m_streamon(struct file *file, struct v4l2_m2m_ctx *m2m_ctx,
537 		      enum v4l2_buf_type type)
538 {
539 	struct vb2_queue *vq;
540 	int ret;
541 
542 	vq = v4l2_m2m_get_vq(m2m_ctx, type);
543 	ret = vb2_streamon(vq, type);
544 	if (!ret)
545 		v4l2_m2m_try_schedule(m2m_ctx);
546 
547 	return ret;
548 }
549 EXPORT_SYMBOL_GPL(v4l2_m2m_streamon);
550 
551 int v4l2_m2m_streamoff(struct file *file, struct v4l2_m2m_ctx *m2m_ctx,
552 		       enum v4l2_buf_type type)
553 {
554 	struct v4l2_m2m_dev *m2m_dev;
555 	struct v4l2_m2m_queue_ctx *q_ctx;
556 	unsigned long flags_job, flags;
557 	int ret;
558 
559 	/* wait until the current context is dequeued from job_queue */
560 	v4l2_m2m_cancel_job(m2m_ctx);
561 
562 	q_ctx = get_queue_ctx(m2m_ctx, type);
563 	ret = vb2_streamoff(&q_ctx->q, type);
564 	if (ret)
565 		return ret;
566 
567 	m2m_dev = m2m_ctx->m2m_dev;
568 	spin_lock_irqsave(&m2m_dev->job_spinlock, flags_job);
569 	/* We should not be scheduled anymore, since we're dropping a queue. */
570 	if (m2m_ctx->job_flags & TRANS_QUEUED)
571 		list_del(&m2m_ctx->queue);
572 	m2m_ctx->job_flags = 0;
573 
574 	spin_lock_irqsave(&q_ctx->rdy_spinlock, flags);
575 	/* Drop queue, since streamoff returns device to the same state as after
576 	 * calling reqbufs. */
577 	INIT_LIST_HEAD(&q_ctx->rdy_queue);
578 	q_ctx->num_rdy = 0;
579 	spin_unlock_irqrestore(&q_ctx->rdy_spinlock, flags);
580 
581 	if (m2m_dev->curr_ctx == m2m_ctx) {
582 		m2m_dev->curr_ctx = NULL;
583 		wake_up(&m2m_ctx->finished);
584 	}
585 	spin_unlock_irqrestore(&m2m_dev->job_spinlock, flags_job);
586 
587 	return 0;
588 }
589 EXPORT_SYMBOL_GPL(v4l2_m2m_streamoff);
590 
591 __poll_t v4l2_m2m_poll(struct file *file, struct v4l2_m2m_ctx *m2m_ctx,
592 			   struct poll_table_struct *wait)
593 {
594 	struct video_device *vfd = video_devdata(file);
595 	__poll_t req_events = poll_requested_events(wait);
596 	struct vb2_queue *src_q, *dst_q;
597 	struct vb2_buffer *src_vb = NULL, *dst_vb = NULL;
598 	__poll_t rc = 0;
599 	unsigned long flags;
600 
601 	if (test_bit(V4L2_FL_USES_V4L2_FH, &vfd->flags)) {
602 		struct v4l2_fh *fh = file->private_data;
603 
604 		if (v4l2_event_pending(fh))
605 			rc = EPOLLPRI;
606 		else if (req_events & EPOLLPRI)
607 			poll_wait(file, &fh->wait, wait);
608 		if (!(req_events & (EPOLLOUT | EPOLLWRNORM | EPOLLIN | EPOLLRDNORM)))
609 			return rc;
610 	}
611 
612 	src_q = v4l2_m2m_get_src_vq(m2m_ctx);
613 	dst_q = v4l2_m2m_get_dst_vq(m2m_ctx);
614 
615 	/*
616 	 * There has to be at least one buffer queued on each queued_list, which
617 	 * means either in driver already or waiting for driver to claim it
618 	 * and start processing.
619 	 */
620 	if ((!src_q->streaming || list_empty(&src_q->queued_list))
621 		&& (!dst_q->streaming || list_empty(&dst_q->queued_list))) {
622 		rc |= EPOLLERR;
623 		goto end;
624 	}
625 
626 	spin_lock_irqsave(&src_q->done_lock, flags);
627 	if (list_empty(&src_q->done_list))
628 		poll_wait(file, &src_q->done_wq, wait);
629 	spin_unlock_irqrestore(&src_q->done_lock, flags);
630 
631 	spin_lock_irqsave(&dst_q->done_lock, flags);
632 	if (list_empty(&dst_q->done_list)) {
633 		/*
634 		 * If the last buffer was dequeued from the capture queue,
635 		 * return immediately. DQBUF will return -EPIPE.
636 		 */
637 		if (dst_q->last_buffer_dequeued) {
638 			spin_unlock_irqrestore(&dst_q->done_lock, flags);
639 			return rc | EPOLLIN | EPOLLRDNORM;
640 		}
641 
642 		poll_wait(file, &dst_q->done_wq, wait);
643 	}
644 	spin_unlock_irqrestore(&dst_q->done_lock, flags);
645 
646 	spin_lock_irqsave(&src_q->done_lock, flags);
647 	if (!list_empty(&src_q->done_list))
648 		src_vb = list_first_entry(&src_q->done_list, struct vb2_buffer,
649 						done_entry);
650 	if (src_vb && (src_vb->state == VB2_BUF_STATE_DONE
651 			|| src_vb->state == VB2_BUF_STATE_ERROR))
652 		rc |= EPOLLOUT | EPOLLWRNORM;
653 	spin_unlock_irqrestore(&src_q->done_lock, flags);
654 
655 	spin_lock_irqsave(&dst_q->done_lock, flags);
656 	if (!list_empty(&dst_q->done_list))
657 		dst_vb = list_first_entry(&dst_q->done_list, struct vb2_buffer,
658 						done_entry);
659 	if (dst_vb && (dst_vb->state == VB2_BUF_STATE_DONE
660 			|| dst_vb->state == VB2_BUF_STATE_ERROR))
661 		rc |= EPOLLIN | EPOLLRDNORM;
662 	spin_unlock_irqrestore(&dst_q->done_lock, flags);
663 
664 end:
665 	return rc;
666 }
667 EXPORT_SYMBOL_GPL(v4l2_m2m_poll);
668 
669 int v4l2_m2m_mmap(struct file *file, struct v4l2_m2m_ctx *m2m_ctx,
670 			 struct vm_area_struct *vma)
671 {
672 	unsigned long offset = vma->vm_pgoff << PAGE_SHIFT;
673 	struct vb2_queue *vq;
674 
675 	if (offset < DST_QUEUE_OFF_BASE) {
676 		vq = v4l2_m2m_get_src_vq(m2m_ctx);
677 	} else {
678 		vq = v4l2_m2m_get_dst_vq(m2m_ctx);
679 		vma->vm_pgoff -= (DST_QUEUE_OFF_BASE >> PAGE_SHIFT);
680 	}
681 
682 	return vb2_mmap(vq, vma);
683 }
684 EXPORT_SYMBOL(v4l2_m2m_mmap);
685 
686 #if defined(CONFIG_MEDIA_CONTROLLER)
687 void v4l2_m2m_unregister_media_controller(struct v4l2_m2m_dev *m2m_dev)
688 {
689 	media_remove_intf_links(&m2m_dev->intf_devnode->intf);
690 	media_devnode_remove(m2m_dev->intf_devnode);
691 
692 	media_entity_remove_links(m2m_dev->source);
693 	media_entity_remove_links(&m2m_dev->sink);
694 	media_entity_remove_links(&m2m_dev->proc);
695 	media_device_unregister_entity(m2m_dev->source);
696 	media_device_unregister_entity(&m2m_dev->sink);
697 	media_device_unregister_entity(&m2m_dev->proc);
698 	kfree(m2m_dev->source->name);
699 	kfree(m2m_dev->sink.name);
700 	kfree(m2m_dev->proc.name);
701 }
702 EXPORT_SYMBOL_GPL(v4l2_m2m_unregister_media_controller);
703 
704 static int v4l2_m2m_register_entity(struct media_device *mdev,
705 	struct v4l2_m2m_dev *m2m_dev, enum v4l2_m2m_entity_type type,
706 	struct video_device *vdev, int function)
707 {
708 	struct media_entity *entity;
709 	struct media_pad *pads;
710 	char *name;
711 	unsigned int len;
712 	int num_pads;
713 	int ret;
714 
715 	switch (type) {
716 	case MEM2MEM_ENT_TYPE_SOURCE:
717 		entity = m2m_dev->source;
718 		pads = &m2m_dev->source_pad;
719 		pads[0].flags = MEDIA_PAD_FL_SOURCE;
720 		num_pads = 1;
721 		break;
722 	case MEM2MEM_ENT_TYPE_SINK:
723 		entity = &m2m_dev->sink;
724 		pads = &m2m_dev->sink_pad;
725 		pads[0].flags = MEDIA_PAD_FL_SINK;
726 		num_pads = 1;
727 		break;
728 	case MEM2MEM_ENT_TYPE_PROC:
729 		entity = &m2m_dev->proc;
730 		pads = m2m_dev->proc_pads;
731 		pads[0].flags = MEDIA_PAD_FL_SINK;
732 		pads[1].flags = MEDIA_PAD_FL_SOURCE;
733 		num_pads = 2;
734 		break;
735 	default:
736 		return -EINVAL;
737 	}
738 
739 	entity->obj_type = MEDIA_ENTITY_TYPE_BASE;
740 	if (type != MEM2MEM_ENT_TYPE_PROC) {
741 		entity->info.dev.major = VIDEO_MAJOR;
742 		entity->info.dev.minor = vdev->minor;
743 	}
744 	len = strlen(vdev->name) + 2 + strlen(m2m_entity_name[type]);
745 	name = kmalloc(len, GFP_KERNEL);
746 	if (!name)
747 		return -ENOMEM;
748 	snprintf(name, len, "%s-%s", vdev->name, m2m_entity_name[type]);
749 	entity->name = name;
750 	entity->function = function;
751 
752 	ret = media_entity_pads_init(entity, num_pads, pads);
753 	if (ret)
754 		return ret;
755 	ret = media_device_register_entity(mdev, entity);
756 	if (ret)
757 		return ret;
758 
759 	return 0;
760 }
761 
762 int v4l2_m2m_register_media_controller(struct v4l2_m2m_dev *m2m_dev,
763 		struct video_device *vdev, int function)
764 {
765 	struct media_device *mdev = vdev->v4l2_dev->mdev;
766 	struct media_link *link;
767 	int ret;
768 
769 	if (!mdev)
770 		return 0;
771 
772 	/* A memory-to-memory device consists in two
773 	 * DMA engine and one video processing entities.
774 	 * The DMA engine entities are linked to a V4L interface
775 	 */
776 
777 	/* Create the three entities with their pads */
778 	m2m_dev->source = &vdev->entity;
779 	ret = v4l2_m2m_register_entity(mdev, m2m_dev,
780 			MEM2MEM_ENT_TYPE_SOURCE, vdev, MEDIA_ENT_F_IO_V4L);
781 	if (ret)
782 		return ret;
783 	ret = v4l2_m2m_register_entity(mdev, m2m_dev,
784 			MEM2MEM_ENT_TYPE_PROC, vdev, function);
785 	if (ret)
786 		goto err_rel_entity0;
787 	ret = v4l2_m2m_register_entity(mdev, m2m_dev,
788 			MEM2MEM_ENT_TYPE_SINK, vdev, MEDIA_ENT_F_IO_V4L);
789 	if (ret)
790 		goto err_rel_entity1;
791 
792 	/* Connect the three entities */
793 	ret = media_create_pad_link(m2m_dev->source, 0, &m2m_dev->proc, 1,
794 			MEDIA_LNK_FL_IMMUTABLE | MEDIA_LNK_FL_ENABLED);
795 	if (ret)
796 		goto err_rel_entity2;
797 
798 	ret = media_create_pad_link(&m2m_dev->proc, 0, &m2m_dev->sink, 0,
799 			MEDIA_LNK_FL_IMMUTABLE | MEDIA_LNK_FL_ENABLED);
800 	if (ret)
801 		goto err_rm_links0;
802 
803 	/* Create video interface */
804 	m2m_dev->intf_devnode = media_devnode_create(mdev,
805 			MEDIA_INTF_T_V4L_VIDEO, 0,
806 			VIDEO_MAJOR, vdev->minor);
807 	if (!m2m_dev->intf_devnode) {
808 		ret = -ENOMEM;
809 		goto err_rm_links1;
810 	}
811 
812 	/* Connect the two DMA engines to the interface */
813 	link = media_create_intf_link(m2m_dev->source,
814 			&m2m_dev->intf_devnode->intf,
815 			MEDIA_LNK_FL_IMMUTABLE | MEDIA_LNK_FL_ENABLED);
816 	if (!link) {
817 		ret = -ENOMEM;
818 		goto err_rm_devnode;
819 	}
820 
821 	link = media_create_intf_link(&m2m_dev->sink,
822 			&m2m_dev->intf_devnode->intf,
823 			MEDIA_LNK_FL_IMMUTABLE | MEDIA_LNK_FL_ENABLED);
824 	if (!link) {
825 		ret = -ENOMEM;
826 		goto err_rm_intf_link;
827 	}
828 	return 0;
829 
830 err_rm_intf_link:
831 	media_remove_intf_links(&m2m_dev->intf_devnode->intf);
832 err_rm_devnode:
833 	media_devnode_remove(m2m_dev->intf_devnode);
834 err_rm_links1:
835 	media_entity_remove_links(&m2m_dev->sink);
836 err_rm_links0:
837 	media_entity_remove_links(&m2m_dev->proc);
838 	media_entity_remove_links(m2m_dev->source);
839 err_rel_entity2:
840 	media_device_unregister_entity(&m2m_dev->proc);
841 	kfree(m2m_dev->proc.name);
842 err_rel_entity1:
843 	media_device_unregister_entity(&m2m_dev->sink);
844 	kfree(m2m_dev->sink.name);
845 err_rel_entity0:
846 	media_device_unregister_entity(m2m_dev->source);
847 	kfree(m2m_dev->source->name);
848 	return ret;
849 	return 0;
850 }
851 EXPORT_SYMBOL_GPL(v4l2_m2m_register_media_controller);
852 #endif
853 
854 struct v4l2_m2m_dev *v4l2_m2m_init(const struct v4l2_m2m_ops *m2m_ops)
855 {
856 	struct v4l2_m2m_dev *m2m_dev;
857 
858 	if (!m2m_ops || WARN_ON(!m2m_ops->device_run))
859 		return ERR_PTR(-EINVAL);
860 
861 	m2m_dev = kzalloc(sizeof *m2m_dev, GFP_KERNEL);
862 	if (!m2m_dev)
863 		return ERR_PTR(-ENOMEM);
864 
865 	m2m_dev->curr_ctx = NULL;
866 	m2m_dev->m2m_ops = m2m_ops;
867 	INIT_LIST_HEAD(&m2m_dev->job_queue);
868 	spin_lock_init(&m2m_dev->job_spinlock);
869 
870 	return m2m_dev;
871 }
872 EXPORT_SYMBOL_GPL(v4l2_m2m_init);
873 
874 void v4l2_m2m_release(struct v4l2_m2m_dev *m2m_dev)
875 {
876 	kfree(m2m_dev);
877 }
878 EXPORT_SYMBOL_GPL(v4l2_m2m_release);
879 
880 struct v4l2_m2m_ctx *v4l2_m2m_ctx_init(struct v4l2_m2m_dev *m2m_dev,
881 		void *drv_priv,
882 		int (*queue_init)(void *priv, struct vb2_queue *src_vq, struct vb2_queue *dst_vq))
883 {
884 	struct v4l2_m2m_ctx *m2m_ctx;
885 	struct v4l2_m2m_queue_ctx *out_q_ctx, *cap_q_ctx;
886 	int ret;
887 
888 	m2m_ctx = kzalloc(sizeof *m2m_ctx, GFP_KERNEL);
889 	if (!m2m_ctx)
890 		return ERR_PTR(-ENOMEM);
891 
892 	m2m_ctx->priv = drv_priv;
893 	m2m_ctx->m2m_dev = m2m_dev;
894 	init_waitqueue_head(&m2m_ctx->finished);
895 
896 	out_q_ctx = &m2m_ctx->out_q_ctx;
897 	cap_q_ctx = &m2m_ctx->cap_q_ctx;
898 
899 	INIT_LIST_HEAD(&out_q_ctx->rdy_queue);
900 	INIT_LIST_HEAD(&cap_q_ctx->rdy_queue);
901 	spin_lock_init(&out_q_ctx->rdy_spinlock);
902 	spin_lock_init(&cap_q_ctx->rdy_spinlock);
903 
904 	INIT_LIST_HEAD(&m2m_ctx->queue);
905 
906 	ret = queue_init(drv_priv, &out_q_ctx->q, &cap_q_ctx->q);
907 
908 	if (ret)
909 		goto err;
910 	/*
911 	 * If both queues use same mutex assign it as the common buffer
912 	 * queues lock to the m2m context. This lock is used in the
913 	 * v4l2_m2m_ioctl_* helpers.
914 	 */
915 	if (out_q_ctx->q.lock == cap_q_ctx->q.lock)
916 		m2m_ctx->q_lock = out_q_ctx->q.lock;
917 
918 	return m2m_ctx;
919 err:
920 	kfree(m2m_ctx);
921 	return ERR_PTR(ret);
922 }
923 EXPORT_SYMBOL_GPL(v4l2_m2m_ctx_init);
924 
925 void v4l2_m2m_ctx_release(struct v4l2_m2m_ctx *m2m_ctx)
926 {
927 	/* wait until the current context is dequeued from job_queue */
928 	v4l2_m2m_cancel_job(m2m_ctx);
929 
930 	vb2_queue_release(&m2m_ctx->cap_q_ctx.q);
931 	vb2_queue_release(&m2m_ctx->out_q_ctx.q);
932 
933 	kfree(m2m_ctx);
934 }
935 EXPORT_SYMBOL_GPL(v4l2_m2m_ctx_release);
936 
937 void v4l2_m2m_buf_queue(struct v4l2_m2m_ctx *m2m_ctx,
938 		struct vb2_v4l2_buffer *vbuf)
939 {
940 	struct v4l2_m2m_buffer *b = container_of(vbuf,
941 				struct v4l2_m2m_buffer, vb);
942 	struct v4l2_m2m_queue_ctx *q_ctx;
943 	unsigned long flags;
944 
945 	q_ctx = get_queue_ctx(m2m_ctx, vbuf->vb2_buf.vb2_queue->type);
946 	if (!q_ctx)
947 		return;
948 
949 	spin_lock_irqsave(&q_ctx->rdy_spinlock, flags);
950 	list_add_tail(&b->list, &q_ctx->rdy_queue);
951 	q_ctx->num_rdy++;
952 	spin_unlock_irqrestore(&q_ctx->rdy_spinlock, flags);
953 }
954 EXPORT_SYMBOL_GPL(v4l2_m2m_buf_queue);
955 
956 void v4l2_m2m_request_queue(struct media_request *req)
957 {
958 	struct media_request_object *obj, *obj_safe;
959 	struct v4l2_m2m_ctx *m2m_ctx = NULL;
960 
961 	/*
962 	 * Queue all objects. Note that buffer objects are at the end of the
963 	 * objects list, after all other object types. Once buffer objects
964 	 * are queued, the driver might delete them immediately (if the driver
965 	 * processes the buffer at once), so we have to use
966 	 * list_for_each_entry_safe() to handle the case where the object we
967 	 * queue is deleted.
968 	 */
969 	list_for_each_entry_safe(obj, obj_safe, &req->objects, list) {
970 		struct v4l2_m2m_ctx *m2m_ctx_obj;
971 		struct vb2_buffer *vb;
972 
973 		if (!obj->ops->queue)
974 			continue;
975 
976 		if (vb2_request_object_is_buffer(obj)) {
977 			/* Sanity checks */
978 			vb = container_of(obj, struct vb2_buffer, req_obj);
979 			WARN_ON(!V4L2_TYPE_IS_OUTPUT(vb->vb2_queue->type));
980 			m2m_ctx_obj = container_of(vb->vb2_queue,
981 						   struct v4l2_m2m_ctx,
982 						   out_q_ctx.q);
983 			WARN_ON(m2m_ctx && m2m_ctx_obj != m2m_ctx);
984 			m2m_ctx = m2m_ctx_obj;
985 		}
986 
987 		/*
988 		 * The buffer we queue here can in theory be immediately
989 		 * unbound, hence the use of list_for_each_entry_safe()
990 		 * above and why we call the queue op last.
991 		 */
992 		obj->ops->queue(obj);
993 	}
994 
995 	WARN_ON(!m2m_ctx);
996 
997 	if (m2m_ctx)
998 		v4l2_m2m_try_schedule(m2m_ctx);
999 }
1000 EXPORT_SYMBOL_GPL(v4l2_m2m_request_queue);
1001 
1002 /* Videobuf2 ioctl helpers */
1003 
1004 int v4l2_m2m_ioctl_reqbufs(struct file *file, void *priv,
1005 				struct v4l2_requestbuffers *rb)
1006 {
1007 	struct v4l2_fh *fh = file->private_data;
1008 
1009 	return v4l2_m2m_reqbufs(file, fh->m2m_ctx, rb);
1010 }
1011 EXPORT_SYMBOL_GPL(v4l2_m2m_ioctl_reqbufs);
1012 
1013 int v4l2_m2m_ioctl_create_bufs(struct file *file, void *priv,
1014 				struct v4l2_create_buffers *create)
1015 {
1016 	struct v4l2_fh *fh = file->private_data;
1017 
1018 	return v4l2_m2m_create_bufs(file, fh->m2m_ctx, create);
1019 }
1020 EXPORT_SYMBOL_GPL(v4l2_m2m_ioctl_create_bufs);
1021 
1022 int v4l2_m2m_ioctl_querybuf(struct file *file, void *priv,
1023 				struct v4l2_buffer *buf)
1024 {
1025 	struct v4l2_fh *fh = file->private_data;
1026 
1027 	return v4l2_m2m_querybuf(file, fh->m2m_ctx, buf);
1028 }
1029 EXPORT_SYMBOL_GPL(v4l2_m2m_ioctl_querybuf);
1030 
1031 int v4l2_m2m_ioctl_qbuf(struct file *file, void *priv,
1032 				struct v4l2_buffer *buf)
1033 {
1034 	struct v4l2_fh *fh = file->private_data;
1035 
1036 	return v4l2_m2m_qbuf(file, fh->m2m_ctx, buf);
1037 }
1038 EXPORT_SYMBOL_GPL(v4l2_m2m_ioctl_qbuf);
1039 
1040 int v4l2_m2m_ioctl_dqbuf(struct file *file, void *priv,
1041 				struct v4l2_buffer *buf)
1042 {
1043 	struct v4l2_fh *fh = file->private_data;
1044 
1045 	return v4l2_m2m_dqbuf(file, fh->m2m_ctx, buf);
1046 }
1047 EXPORT_SYMBOL_GPL(v4l2_m2m_ioctl_dqbuf);
1048 
1049 int v4l2_m2m_ioctl_prepare_buf(struct file *file, void *priv,
1050 			       struct v4l2_buffer *buf)
1051 {
1052 	struct v4l2_fh *fh = file->private_data;
1053 
1054 	return v4l2_m2m_prepare_buf(file, fh->m2m_ctx, buf);
1055 }
1056 EXPORT_SYMBOL_GPL(v4l2_m2m_ioctl_prepare_buf);
1057 
1058 int v4l2_m2m_ioctl_expbuf(struct file *file, void *priv,
1059 				struct v4l2_exportbuffer *eb)
1060 {
1061 	struct v4l2_fh *fh = file->private_data;
1062 
1063 	return v4l2_m2m_expbuf(file, fh->m2m_ctx, eb);
1064 }
1065 EXPORT_SYMBOL_GPL(v4l2_m2m_ioctl_expbuf);
1066 
1067 int v4l2_m2m_ioctl_streamon(struct file *file, void *priv,
1068 				enum v4l2_buf_type type)
1069 {
1070 	struct v4l2_fh *fh = file->private_data;
1071 
1072 	return v4l2_m2m_streamon(file, fh->m2m_ctx, type);
1073 }
1074 EXPORT_SYMBOL_GPL(v4l2_m2m_ioctl_streamon);
1075 
1076 int v4l2_m2m_ioctl_streamoff(struct file *file, void *priv,
1077 				enum v4l2_buf_type type)
1078 {
1079 	struct v4l2_fh *fh = file->private_data;
1080 
1081 	return v4l2_m2m_streamoff(file, fh->m2m_ctx, type);
1082 }
1083 EXPORT_SYMBOL_GPL(v4l2_m2m_ioctl_streamoff);
1084 
1085 /*
1086  * v4l2_file_operations helpers. It is assumed here same lock is used
1087  * for the output and the capture buffer queue.
1088  */
1089 
1090 int v4l2_m2m_fop_mmap(struct file *file, struct vm_area_struct *vma)
1091 {
1092 	struct v4l2_fh *fh = file->private_data;
1093 
1094 	return v4l2_m2m_mmap(file, fh->m2m_ctx, vma);
1095 }
1096 EXPORT_SYMBOL_GPL(v4l2_m2m_fop_mmap);
1097 
1098 __poll_t v4l2_m2m_fop_poll(struct file *file, poll_table *wait)
1099 {
1100 	struct v4l2_fh *fh = file->private_data;
1101 	struct v4l2_m2m_ctx *m2m_ctx = fh->m2m_ctx;
1102 	__poll_t ret;
1103 
1104 	if (m2m_ctx->q_lock)
1105 		mutex_lock(m2m_ctx->q_lock);
1106 
1107 	ret = v4l2_m2m_poll(file, m2m_ctx, wait);
1108 
1109 	if (m2m_ctx->q_lock)
1110 		mutex_unlock(m2m_ctx->q_lock);
1111 
1112 	return ret;
1113 }
1114 EXPORT_SYMBOL_GPL(v4l2_m2m_fop_poll);
1115 
1116