1 /*
2 * videobuf2-core.c - video buffer 2 core framework
3 *
4 * Copyright (C) 2010 Samsung Electronics
5 *
6 * Author: Pawel Osciak <pawel@osciak.com>
7 * Marek Szyprowski <m.szyprowski@samsung.com>
8 *
9 * The vb2_thread implementation was based on code from videobuf-dvb.c:
10 * (c) 2004 Gerd Knorr <kraxel@bytesex.org> [SUSE Labs]
11 *
12 * This program is free software; you can redistribute it and/or modify
13 * it under the terms of the GNU General Public License as published by
14 * the Free Software Foundation.
15 */
16
17 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
18
19 #include <linux/err.h>
20 #include <linux/kernel.h>
21 #include <linux/module.h>
22 #include <linux/mm.h>
23 #include <linux/poll.h>
24 #include <linux/slab.h>
25 #include <linux/sched.h>
26 #include <linux/freezer.h>
27 #include <linux/kthread.h>
28
29 #include <media/videobuf2-core.h>
30 #include <media/v4l2-mc.h>
31
32 #include <trace/events/vb2.h>
33
34 static int debug;
35 module_param(debug, int, 0644);
36
37 #define dprintk(q, level, fmt, arg...) \
38 do { \
39 if (debug >= level) \
40 pr_info("[%s] %s: " fmt, (q)->name, __func__, \
41 ## arg); \
42 } while (0)
43
44 #ifdef CONFIG_VIDEO_ADV_DEBUG
45
46 /*
47 * If advanced debugging is on, then count how often each op is called
48 * successfully, which can either be per-buffer or per-queue.
49 *
50 * This makes it easy to check that the 'init' and 'cleanup'
51 * (and variations thereof) stay balanced.
52 */
53
54 #define log_memop(vb, op) \
55 dprintk((vb)->vb2_queue, 2, "call_memop(%d, %s)%s\n", \
56 (vb)->index, #op, \
57 (vb)->vb2_queue->mem_ops->op ? "" : " (nop)")
58
59 #define call_memop(vb, op, args...) \
60 ({ \
61 struct vb2_queue *_q = (vb)->vb2_queue; \
62 int err; \
63 \
64 log_memop(vb, op); \
65 err = _q->mem_ops->op ? _q->mem_ops->op(args) : 0; \
66 if (!err) \
67 (vb)->cnt_mem_ ## op++; \
68 err; \
69 })
70
71 #define call_ptr_memop(vb, op, args...) \
72 ({ \
73 struct vb2_queue *_q = (vb)->vb2_queue; \
74 void *ptr; \
75 \
76 log_memop(vb, op); \
77 ptr = _q->mem_ops->op ? _q->mem_ops->op(args) : NULL; \
78 if (!IS_ERR_OR_NULL(ptr)) \
79 (vb)->cnt_mem_ ## op++; \
80 ptr; \
81 })
82
83 #define call_void_memop(vb, op, args...) \
84 ({ \
85 struct vb2_queue *_q = (vb)->vb2_queue; \
86 \
87 log_memop(vb, op); \
88 if (_q->mem_ops->op) \
89 _q->mem_ops->op(args); \
90 (vb)->cnt_mem_ ## op++; \
91 })
92
93 #define log_qop(q, op) \
94 dprintk(q, 2, "call_qop(%s)%s\n", #op, \
95 (q)->ops->op ? "" : " (nop)")
96
97 #define call_qop(q, op, args...) \
98 ({ \
99 int err; \
100 \
101 log_qop(q, op); \
102 err = (q)->ops->op ? (q)->ops->op(args) : 0; \
103 if (!err) \
104 (q)->cnt_ ## op++; \
105 err; \
106 })
107
108 #define call_void_qop(q, op, args...) \
109 ({ \
110 log_qop(q, op); \
111 if ((q)->ops->op) \
112 (q)->ops->op(args); \
113 (q)->cnt_ ## op++; \
114 })
115
116 #define log_vb_qop(vb, op, args...) \
117 dprintk((vb)->vb2_queue, 2, "call_vb_qop(%d, %s)%s\n", \
118 (vb)->index, #op, \
119 (vb)->vb2_queue->ops->op ? "" : " (nop)")
120
121 #define call_vb_qop(vb, op, args...) \
122 ({ \
123 int err; \
124 \
125 log_vb_qop(vb, op); \
126 err = (vb)->vb2_queue->ops->op ? \
127 (vb)->vb2_queue->ops->op(args) : 0; \
128 if (!err) \
129 (vb)->cnt_ ## op++; \
130 err; \
131 })
132
133 #define call_void_vb_qop(vb, op, args...) \
134 ({ \
135 log_vb_qop(vb, op); \
136 if ((vb)->vb2_queue->ops->op) \
137 (vb)->vb2_queue->ops->op(args); \
138 (vb)->cnt_ ## op++; \
139 })
140
141 #else
142
143 #define call_memop(vb, op, args...) \
144 ((vb)->vb2_queue->mem_ops->op ? \
145 (vb)->vb2_queue->mem_ops->op(args) : 0)
146
147 #define call_ptr_memop(vb, op, args...) \
148 ((vb)->vb2_queue->mem_ops->op ? \
149 (vb)->vb2_queue->mem_ops->op(args) : NULL)
150
151 #define call_void_memop(vb, op, args...) \
152 do { \
153 if ((vb)->vb2_queue->mem_ops->op) \
154 (vb)->vb2_queue->mem_ops->op(args); \
155 } while (0)
156
157 #define call_qop(q, op, args...) \
158 ((q)->ops->op ? (q)->ops->op(args) : 0)
159
160 #define call_void_qop(q, op, args...) \
161 do { \
162 if ((q)->ops->op) \
163 (q)->ops->op(args); \
164 } while (0)
165
166 #define call_vb_qop(vb, op, args...) \
167 ((vb)->vb2_queue->ops->op ? (vb)->vb2_queue->ops->op(args) : 0)
168
169 #define call_void_vb_qop(vb, op, args...) \
170 do { \
171 if ((vb)->vb2_queue->ops->op) \
172 (vb)->vb2_queue->ops->op(args); \
173 } while (0)
174
175 #endif
176
177 #define call_bufop(q, op, args...) \
178 ({ \
179 int ret = 0; \
180 if (q && q->buf_ops && q->buf_ops->op) \
181 ret = q->buf_ops->op(args); \
182 ret; \
183 })
184
185 #define call_void_bufop(q, op, args...) \
186 ({ \
187 if (q && q->buf_ops && q->buf_ops->op) \
188 q->buf_ops->op(args); \
189 })
190
191 static void __vb2_queue_cancel(struct vb2_queue *q);
192 static void __enqueue_in_driver(struct vb2_buffer *vb);
193
vb2_state_name(enum vb2_buffer_state s)194 static const char *vb2_state_name(enum vb2_buffer_state s)
195 {
196 static const char * const state_names[] = {
197 [VB2_BUF_STATE_DEQUEUED] = "dequeued",
198 [VB2_BUF_STATE_IN_REQUEST] = "in request",
199 [VB2_BUF_STATE_PREPARING] = "preparing",
200 [VB2_BUF_STATE_QUEUED] = "queued",
201 [VB2_BUF_STATE_ACTIVE] = "active",
202 [VB2_BUF_STATE_DONE] = "done",
203 [VB2_BUF_STATE_ERROR] = "error",
204 };
205
206 if ((unsigned int)(s) < ARRAY_SIZE(state_names))
207 return state_names[s];
208 return "unknown";
209 }
210
211 /*
212 * __vb2_buf_mem_alloc() - allocate video memory for the given buffer
213 */
__vb2_buf_mem_alloc(struct vb2_buffer * vb)214 static int __vb2_buf_mem_alloc(struct vb2_buffer *vb)
215 {
216 struct vb2_queue *q = vb->vb2_queue;
217 void *mem_priv;
218 int plane;
219 int ret = -ENOMEM;
220
221 /*
222 * Allocate memory for all planes in this buffer
223 * NOTE: mmapped areas should be page aligned
224 */
225 for (plane = 0; plane < vb->num_planes; ++plane) {
226 /* Memops alloc requires size to be page aligned. */
227 unsigned long size = PAGE_ALIGN(vb->planes[plane].length);
228
229 /* Did it wrap around? */
230 if (size < vb->planes[plane].length)
231 goto free;
232
233 mem_priv = call_ptr_memop(vb, alloc,
234 q->alloc_devs[plane] ? : q->dev,
235 q->dma_attrs, size, q->dma_dir, q->gfp_flags);
236 if (IS_ERR_OR_NULL(mem_priv)) {
237 if (mem_priv)
238 ret = PTR_ERR(mem_priv);
239 goto free;
240 }
241
242 /* Associate allocator private data with this plane */
243 vb->planes[plane].mem_priv = mem_priv;
244 }
245
246 return 0;
247 free:
248 /* Free already allocated memory if one of the allocations failed */
249 for (; plane > 0; --plane) {
250 call_void_memop(vb, put, vb->planes[plane - 1].mem_priv);
251 vb->planes[plane - 1].mem_priv = NULL;
252 }
253
254 return ret;
255 }
256
257 /*
258 * __vb2_buf_mem_free() - free memory of the given buffer
259 */
__vb2_buf_mem_free(struct vb2_buffer * vb)260 static void __vb2_buf_mem_free(struct vb2_buffer *vb)
261 {
262 unsigned int plane;
263
264 for (plane = 0; plane < vb->num_planes; ++plane) {
265 call_void_memop(vb, put, vb->planes[plane].mem_priv);
266 vb->planes[plane].mem_priv = NULL;
267 dprintk(vb->vb2_queue, 3, "freed plane %d of buffer %d\n",
268 plane, vb->index);
269 }
270 }
271
272 /*
273 * __vb2_buf_userptr_put() - release userspace memory associated with
274 * a USERPTR buffer
275 */
__vb2_buf_userptr_put(struct vb2_buffer * vb)276 static void __vb2_buf_userptr_put(struct vb2_buffer *vb)
277 {
278 unsigned int plane;
279
280 for (plane = 0; plane < vb->num_planes; ++plane) {
281 if (vb->planes[plane].mem_priv)
282 call_void_memop(vb, put_userptr, vb->planes[plane].mem_priv);
283 vb->planes[plane].mem_priv = NULL;
284 }
285 }
286
287 /*
288 * __vb2_plane_dmabuf_put() - release memory associated with
289 * a DMABUF shared plane
290 */
__vb2_plane_dmabuf_put(struct vb2_buffer * vb,struct vb2_plane * p)291 static void __vb2_plane_dmabuf_put(struct vb2_buffer *vb, struct vb2_plane *p)
292 {
293 if (!p->mem_priv)
294 return;
295
296 if (p->dbuf_mapped)
297 call_void_memop(vb, unmap_dmabuf, p->mem_priv);
298
299 call_void_memop(vb, detach_dmabuf, p->mem_priv);
300 dma_buf_put(p->dbuf);
301 p->mem_priv = NULL;
302 p->dbuf = NULL;
303 p->dbuf_mapped = 0;
304 }
305
306 /*
307 * __vb2_buf_dmabuf_put() - release memory associated with
308 * a DMABUF shared buffer
309 */
__vb2_buf_dmabuf_put(struct vb2_buffer * vb)310 static void __vb2_buf_dmabuf_put(struct vb2_buffer *vb)
311 {
312 unsigned int plane;
313
314 for (plane = 0; plane < vb->num_planes; ++plane)
315 __vb2_plane_dmabuf_put(vb, &vb->planes[plane]);
316 }
317
318 /*
319 * __vb2_buf_mem_prepare() - call ->prepare() on buffer's private memory
320 * to sync caches
321 */
__vb2_buf_mem_prepare(struct vb2_buffer * vb)322 static void __vb2_buf_mem_prepare(struct vb2_buffer *vb)
323 {
324 unsigned int plane;
325
326 if (vb->synced)
327 return;
328
329 if (vb->need_cache_sync_on_prepare) {
330 for (plane = 0; plane < vb->num_planes; ++plane)
331 call_void_memop(vb, prepare,
332 vb->planes[plane].mem_priv);
333 }
334 vb->synced = 1;
335 }
336
337 /*
338 * __vb2_buf_mem_finish() - call ->finish on buffer's private memory
339 * to sync caches
340 */
__vb2_buf_mem_finish(struct vb2_buffer * vb)341 static void __vb2_buf_mem_finish(struct vb2_buffer *vb)
342 {
343 unsigned int plane;
344
345 if (!vb->synced)
346 return;
347
348 if (vb->need_cache_sync_on_finish) {
349 for (plane = 0; plane < vb->num_planes; ++plane)
350 call_void_memop(vb, finish,
351 vb->planes[plane].mem_priv);
352 }
353 vb->synced = 0;
354 }
355
356 /*
357 * __setup_offsets() - setup unique offsets ("cookies") for every plane in
358 * the buffer.
359 */
__setup_offsets(struct vb2_buffer * vb)360 static void __setup_offsets(struct vb2_buffer *vb)
361 {
362 struct vb2_queue *q = vb->vb2_queue;
363 unsigned int plane;
364 unsigned long off = 0;
365
366 if (vb->index) {
367 struct vb2_buffer *prev = q->bufs[vb->index - 1];
368 struct vb2_plane *p = &prev->planes[prev->num_planes - 1];
369
370 off = PAGE_ALIGN(p->m.offset + p->length);
371 }
372
373 for (plane = 0; plane < vb->num_planes; ++plane) {
374 vb->planes[plane].m.offset = off;
375
376 dprintk(q, 3, "buffer %d, plane %d offset 0x%08lx\n",
377 vb->index, plane, off);
378
379 off += vb->planes[plane].length;
380 off = PAGE_ALIGN(off);
381 }
382 }
383
384 /*
385 * __vb2_queue_alloc() - allocate videobuf buffer structures and (for MMAP type)
386 * video buffer memory for all buffers/planes on the queue and initializes the
387 * queue
388 *
389 * Returns the number of buffers successfully allocated.
390 */
__vb2_queue_alloc(struct vb2_queue * q,enum vb2_memory memory,unsigned int num_buffers,unsigned int num_planes,const unsigned plane_sizes[VB2_MAX_PLANES])391 static int __vb2_queue_alloc(struct vb2_queue *q, enum vb2_memory memory,
392 unsigned int num_buffers, unsigned int num_planes,
393 const unsigned plane_sizes[VB2_MAX_PLANES])
394 {
395 unsigned int buffer, plane;
396 struct vb2_buffer *vb;
397 int ret;
398
399 /* Ensure that q->num_buffers+num_buffers is below VB2_MAX_FRAME */
400 num_buffers = min_t(unsigned int, num_buffers,
401 VB2_MAX_FRAME - q->num_buffers);
402
403 for (buffer = 0; buffer < num_buffers; ++buffer) {
404 /* Allocate videobuf buffer structures */
405 vb = kzalloc(q->buf_struct_size, GFP_KERNEL);
406 if (!vb) {
407 dprintk(q, 1, "memory alloc for buffer struct failed\n");
408 break;
409 }
410
411 vb->state = VB2_BUF_STATE_DEQUEUED;
412 vb->vb2_queue = q;
413 vb->num_planes = num_planes;
414 vb->index = q->num_buffers + buffer;
415 vb->type = q->type;
416 vb->memory = memory;
417 /*
418 * We need to set these flags here so that the videobuf2 core
419 * will call ->prepare()/->finish() cache sync/flush on vb2
420 * buffers when appropriate. However, we can avoid explicit
421 * ->prepare() and ->finish() cache sync for DMABUF buffers,
422 * because DMA exporter takes care of it.
423 */
424 if (q->memory != VB2_MEMORY_DMABUF) {
425 vb->need_cache_sync_on_prepare = 1;
426 vb->need_cache_sync_on_finish = 1;
427 }
428 for (plane = 0; plane < num_planes; ++plane) {
429 vb->planes[plane].length = plane_sizes[plane];
430 vb->planes[plane].min_length = plane_sizes[plane];
431 }
432 call_void_bufop(q, init_buffer, vb);
433
434 q->bufs[vb->index] = vb;
435
436 /* Allocate video buffer memory for the MMAP type */
437 if (memory == VB2_MEMORY_MMAP) {
438 ret = __vb2_buf_mem_alloc(vb);
439 if (ret) {
440 dprintk(q, 1, "failed allocating memory for buffer %d\n",
441 buffer);
442 q->bufs[vb->index] = NULL;
443 kfree(vb);
444 break;
445 }
446 __setup_offsets(vb);
447 /*
448 * Call the driver-provided buffer initialization
449 * callback, if given. An error in initialization
450 * results in queue setup failure.
451 */
452 ret = call_vb_qop(vb, buf_init, vb);
453 if (ret) {
454 dprintk(q, 1, "buffer %d %p initialization failed\n",
455 buffer, vb);
456 __vb2_buf_mem_free(vb);
457 q->bufs[vb->index] = NULL;
458 kfree(vb);
459 break;
460 }
461 }
462 }
463
464 dprintk(q, 3, "allocated %d buffers, %d plane(s) each\n",
465 buffer, num_planes);
466
467 return buffer;
468 }
469
470 /*
471 * __vb2_free_mem() - release all video buffer memory for a given queue
472 */
__vb2_free_mem(struct vb2_queue * q,unsigned int buffers)473 static void __vb2_free_mem(struct vb2_queue *q, unsigned int buffers)
474 {
475 unsigned int buffer;
476 struct vb2_buffer *vb;
477
478 for (buffer = q->num_buffers - buffers; buffer < q->num_buffers;
479 ++buffer) {
480 vb = q->bufs[buffer];
481 if (!vb)
482 continue;
483
484 /* Free MMAP buffers or release USERPTR buffers */
485 if (q->memory == VB2_MEMORY_MMAP)
486 __vb2_buf_mem_free(vb);
487 else if (q->memory == VB2_MEMORY_DMABUF)
488 __vb2_buf_dmabuf_put(vb);
489 else
490 __vb2_buf_userptr_put(vb);
491 }
492 }
493
494 /*
495 * __vb2_queue_free() - free buffers at the end of the queue - video memory and
496 * related information, if no buffers are left return the queue to an
497 * uninitialized state. Might be called even if the queue has already been freed.
498 */
__vb2_queue_free(struct vb2_queue * q,unsigned int buffers)499 static int __vb2_queue_free(struct vb2_queue *q, unsigned int buffers)
500 {
501 unsigned int buffer;
502
503 /*
504 * Sanity check: when preparing a buffer the queue lock is released for
505 * a short while (see __buf_prepare for the details), which would allow
506 * a race with a reqbufs which can call this function. Removing the
507 * buffers from underneath __buf_prepare is obviously a bad idea, so we
508 * check if any of the buffers is in the state PREPARING, and if so we
509 * just return -EAGAIN.
510 */
511 for (buffer = q->num_buffers - buffers; buffer < q->num_buffers;
512 ++buffer) {
513 if (q->bufs[buffer] == NULL)
514 continue;
515 if (q->bufs[buffer]->state == VB2_BUF_STATE_PREPARING) {
516 dprintk(q, 1, "preparing buffers, cannot free\n");
517 return -EAGAIN;
518 }
519 }
520
521 /* Call driver-provided cleanup function for each buffer, if provided */
522 for (buffer = q->num_buffers - buffers; buffer < q->num_buffers;
523 ++buffer) {
524 struct vb2_buffer *vb = q->bufs[buffer];
525
526 if (vb && vb->planes[0].mem_priv)
527 call_void_vb_qop(vb, buf_cleanup, vb);
528 }
529
530 /* Release video buffer memory */
531 __vb2_free_mem(q, buffers);
532
533 #ifdef CONFIG_VIDEO_ADV_DEBUG
534 /*
535 * Check that all the calls were balances during the life-time of this
536 * queue. If not (or if the debug level is 1 or up), then dump the
537 * counters to the kernel log.
538 */
539 if (q->num_buffers) {
540 bool unbalanced = q->cnt_start_streaming != q->cnt_stop_streaming ||
541 q->cnt_wait_prepare != q->cnt_wait_finish;
542
543 if (unbalanced || debug) {
544 pr_info("counters for queue %p:%s\n", q,
545 unbalanced ? " UNBALANCED!" : "");
546 pr_info(" setup: %u start_streaming: %u stop_streaming: %u\n",
547 q->cnt_queue_setup, q->cnt_start_streaming,
548 q->cnt_stop_streaming);
549 pr_info(" wait_prepare: %u wait_finish: %u\n",
550 q->cnt_wait_prepare, q->cnt_wait_finish);
551 }
552 q->cnt_queue_setup = 0;
553 q->cnt_wait_prepare = 0;
554 q->cnt_wait_finish = 0;
555 q->cnt_start_streaming = 0;
556 q->cnt_stop_streaming = 0;
557 }
558 for (buffer = 0; buffer < q->num_buffers; ++buffer) {
559 struct vb2_buffer *vb = q->bufs[buffer];
560 bool unbalanced = vb->cnt_mem_alloc != vb->cnt_mem_put ||
561 vb->cnt_mem_prepare != vb->cnt_mem_finish ||
562 vb->cnt_mem_get_userptr != vb->cnt_mem_put_userptr ||
563 vb->cnt_mem_attach_dmabuf != vb->cnt_mem_detach_dmabuf ||
564 vb->cnt_mem_map_dmabuf != vb->cnt_mem_unmap_dmabuf ||
565 vb->cnt_buf_queue != vb->cnt_buf_done ||
566 vb->cnt_buf_prepare != vb->cnt_buf_finish ||
567 vb->cnt_buf_init != vb->cnt_buf_cleanup;
568
569 if (unbalanced || debug) {
570 pr_info(" counters for queue %p, buffer %d:%s\n",
571 q, buffer, unbalanced ? " UNBALANCED!" : "");
572 pr_info(" buf_init: %u buf_cleanup: %u buf_prepare: %u buf_finish: %u\n",
573 vb->cnt_buf_init, vb->cnt_buf_cleanup,
574 vb->cnt_buf_prepare, vb->cnt_buf_finish);
575 pr_info(" buf_out_validate: %u buf_queue: %u buf_done: %u buf_request_complete: %u\n",
576 vb->cnt_buf_out_validate, vb->cnt_buf_queue,
577 vb->cnt_buf_done, vb->cnt_buf_request_complete);
578 pr_info(" alloc: %u put: %u prepare: %u finish: %u mmap: %u\n",
579 vb->cnt_mem_alloc, vb->cnt_mem_put,
580 vb->cnt_mem_prepare, vb->cnt_mem_finish,
581 vb->cnt_mem_mmap);
582 pr_info(" get_userptr: %u put_userptr: %u\n",
583 vb->cnt_mem_get_userptr, vb->cnt_mem_put_userptr);
584 pr_info(" attach_dmabuf: %u detach_dmabuf: %u map_dmabuf: %u unmap_dmabuf: %u\n",
585 vb->cnt_mem_attach_dmabuf, vb->cnt_mem_detach_dmabuf,
586 vb->cnt_mem_map_dmabuf, vb->cnt_mem_unmap_dmabuf);
587 pr_info(" get_dmabuf: %u num_users: %u vaddr: %u cookie: %u\n",
588 vb->cnt_mem_get_dmabuf,
589 vb->cnt_mem_num_users,
590 vb->cnt_mem_vaddr,
591 vb->cnt_mem_cookie);
592 }
593 }
594 #endif
595
596 /* Free videobuf buffers */
597 for (buffer = q->num_buffers - buffers; buffer < q->num_buffers;
598 ++buffer) {
599 kfree(q->bufs[buffer]);
600 q->bufs[buffer] = NULL;
601 }
602
603 q->num_buffers -= buffers;
604 if (!q->num_buffers) {
605 q->memory = VB2_MEMORY_UNKNOWN;
606 INIT_LIST_HEAD(&q->queued_list);
607 }
608 return 0;
609 }
610
vb2_buffer_in_use(struct vb2_queue * q,struct vb2_buffer * vb)611 bool vb2_buffer_in_use(struct vb2_queue *q, struct vb2_buffer *vb)
612 {
613 unsigned int plane;
614 for (plane = 0; plane < vb->num_planes; ++plane) {
615 void *mem_priv = vb->planes[plane].mem_priv;
616 /*
617 * If num_users() has not been provided, call_memop
618 * will return 0, apparently nobody cares about this
619 * case anyway. If num_users() returns more than 1,
620 * we are not the only user of the plane's memory.
621 */
622 if (mem_priv && call_memop(vb, num_users, mem_priv) > 1)
623 return true;
624 }
625 return false;
626 }
627 EXPORT_SYMBOL(vb2_buffer_in_use);
628
629 /*
630 * __buffers_in_use() - return true if any buffers on the queue are in use and
631 * the queue cannot be freed (by the means of REQBUFS(0)) call
632 */
__buffers_in_use(struct vb2_queue * q)633 static bool __buffers_in_use(struct vb2_queue *q)
634 {
635 unsigned int buffer;
636 for (buffer = 0; buffer < q->num_buffers; ++buffer) {
637 if (vb2_buffer_in_use(q, q->bufs[buffer]))
638 return true;
639 }
640 return false;
641 }
642
vb2_core_querybuf(struct vb2_queue * q,unsigned int index,void * pb)643 void vb2_core_querybuf(struct vb2_queue *q, unsigned int index, void *pb)
644 {
645 call_void_bufop(q, fill_user_buffer, q->bufs[index], pb);
646 }
647 EXPORT_SYMBOL_GPL(vb2_core_querybuf);
648
649 /*
650 * __verify_userptr_ops() - verify that all memory operations required for
651 * USERPTR queue type have been provided
652 */
__verify_userptr_ops(struct vb2_queue * q)653 static int __verify_userptr_ops(struct vb2_queue *q)
654 {
655 if (!(q->io_modes & VB2_USERPTR) || !q->mem_ops->get_userptr ||
656 !q->mem_ops->put_userptr)
657 return -EINVAL;
658
659 return 0;
660 }
661
662 /*
663 * __verify_mmap_ops() - verify that all memory operations required for
664 * MMAP queue type have been provided
665 */
__verify_mmap_ops(struct vb2_queue * q)666 static int __verify_mmap_ops(struct vb2_queue *q)
667 {
668 if (!(q->io_modes & VB2_MMAP) || !q->mem_ops->alloc ||
669 !q->mem_ops->put || !q->mem_ops->mmap)
670 return -EINVAL;
671
672 return 0;
673 }
674
675 /*
676 * __verify_dmabuf_ops() - verify that all memory operations required for
677 * DMABUF queue type have been provided
678 */
__verify_dmabuf_ops(struct vb2_queue * q)679 static int __verify_dmabuf_ops(struct vb2_queue *q)
680 {
681 if (!(q->io_modes & VB2_DMABUF) || !q->mem_ops->attach_dmabuf ||
682 !q->mem_ops->detach_dmabuf || !q->mem_ops->map_dmabuf ||
683 !q->mem_ops->unmap_dmabuf)
684 return -EINVAL;
685
686 return 0;
687 }
688
vb2_verify_memory_type(struct vb2_queue * q,enum vb2_memory memory,unsigned int type)689 int vb2_verify_memory_type(struct vb2_queue *q,
690 enum vb2_memory memory, unsigned int type)
691 {
692 if (memory != VB2_MEMORY_MMAP && memory != VB2_MEMORY_USERPTR &&
693 memory != VB2_MEMORY_DMABUF) {
694 dprintk(q, 1, "unsupported memory type\n");
695 return -EINVAL;
696 }
697
698 if (type != q->type) {
699 dprintk(q, 1, "requested type is incorrect\n");
700 return -EINVAL;
701 }
702
703 /*
704 * Make sure all the required memory ops for given memory type
705 * are available.
706 */
707 if (memory == VB2_MEMORY_MMAP && __verify_mmap_ops(q)) {
708 dprintk(q, 1, "MMAP for current setup unsupported\n");
709 return -EINVAL;
710 }
711
712 if (memory == VB2_MEMORY_USERPTR && __verify_userptr_ops(q)) {
713 dprintk(q, 1, "USERPTR for current setup unsupported\n");
714 return -EINVAL;
715 }
716
717 if (memory == VB2_MEMORY_DMABUF && __verify_dmabuf_ops(q)) {
718 dprintk(q, 1, "DMABUF for current setup unsupported\n");
719 return -EINVAL;
720 }
721
722 /*
723 * Place the busy tests at the end: -EBUSY can be ignored when
724 * create_bufs is called with count == 0, but count == 0 should still
725 * do the memory and type validation.
726 */
727 if (vb2_fileio_is_active(q)) {
728 dprintk(q, 1, "file io in progress\n");
729 return -EBUSY;
730 }
731 return 0;
732 }
733 EXPORT_SYMBOL(vb2_verify_memory_type);
734
vb2_core_reqbufs(struct vb2_queue * q,enum vb2_memory memory,unsigned int * count)735 int vb2_core_reqbufs(struct vb2_queue *q, enum vb2_memory memory,
736 unsigned int *count)
737 {
738 unsigned int num_buffers, allocated_buffers, num_planes = 0;
739 unsigned plane_sizes[VB2_MAX_PLANES] = { };
740 unsigned int i;
741 int ret;
742
743 if (q->streaming) {
744 dprintk(q, 1, "streaming active\n");
745 return -EBUSY;
746 }
747
748 if (q->waiting_in_dqbuf && *count) {
749 dprintk(q, 1, "another dup()ped fd is waiting for a buffer\n");
750 return -EBUSY;
751 }
752
753 if (*count == 0 || q->num_buffers != 0 ||
754 (q->memory != VB2_MEMORY_UNKNOWN && q->memory != memory)) {
755 /*
756 * We already have buffers allocated, so first check if they
757 * are not in use and can be freed.
758 */
759 mutex_lock(&q->mmap_lock);
760 if (debug && q->memory == VB2_MEMORY_MMAP &&
761 __buffers_in_use(q))
762 dprintk(q, 1, "memory in use, orphaning buffers\n");
763
764 /*
765 * Call queue_cancel to clean up any buffers in the
766 * QUEUED state which is possible if buffers were prepared or
767 * queued without ever calling STREAMON.
768 */
769 __vb2_queue_cancel(q);
770 ret = __vb2_queue_free(q, q->num_buffers);
771 mutex_unlock(&q->mmap_lock);
772 if (ret)
773 return ret;
774
775 /*
776 * In case of REQBUFS(0) return immediately without calling
777 * driver's queue_setup() callback and allocating resources.
778 */
779 if (*count == 0)
780 return 0;
781 }
782
783 /*
784 * Make sure the requested values and current defaults are sane.
785 */
786 WARN_ON(q->min_buffers_needed > VB2_MAX_FRAME);
787 num_buffers = max_t(unsigned int, *count, q->min_buffers_needed);
788 num_buffers = min_t(unsigned int, num_buffers, VB2_MAX_FRAME);
789 memset(q->alloc_devs, 0, sizeof(q->alloc_devs));
790 /*
791 * Set this now to ensure that drivers see the correct q->memory value
792 * in the queue_setup op.
793 */
794 mutex_lock(&q->mmap_lock);
795 q->memory = memory;
796 mutex_unlock(&q->mmap_lock);
797
798 /*
799 * Ask the driver how many buffers and planes per buffer it requires.
800 * Driver also sets the size and allocator context for each plane.
801 */
802 ret = call_qop(q, queue_setup, q, &num_buffers, &num_planes,
803 plane_sizes, q->alloc_devs);
804 if (ret)
805 goto error;
806
807 /* Check that driver has set sane values */
808 if (WARN_ON(!num_planes)) {
809 ret = -EINVAL;
810 goto error;
811 }
812
813 for (i = 0; i < num_planes; i++)
814 if (WARN_ON(!plane_sizes[i])) {
815 ret = -EINVAL;
816 goto error;
817 }
818
819 /* Finally, allocate buffers and video memory */
820 allocated_buffers =
821 __vb2_queue_alloc(q, memory, num_buffers, num_planes, plane_sizes);
822 if (allocated_buffers == 0) {
823 dprintk(q, 1, "memory allocation failed\n");
824 ret = -ENOMEM;
825 goto error;
826 }
827
828 /*
829 * There is no point in continuing if we can't allocate the minimum
830 * number of buffers needed by this vb2_queue.
831 */
832 if (allocated_buffers < q->min_buffers_needed)
833 ret = -ENOMEM;
834
835 /*
836 * Check if driver can handle the allocated number of buffers.
837 */
838 if (!ret && allocated_buffers < num_buffers) {
839 num_buffers = allocated_buffers;
840 /*
841 * num_planes is set by the previous queue_setup(), but since it
842 * signals to queue_setup() whether it is called from create_bufs()
843 * vs reqbufs() we zero it here to signal that queue_setup() is
844 * called for the reqbufs() case.
845 */
846 num_planes = 0;
847
848 ret = call_qop(q, queue_setup, q, &num_buffers,
849 &num_planes, plane_sizes, q->alloc_devs);
850
851 if (!ret && allocated_buffers < num_buffers)
852 ret = -ENOMEM;
853
854 /*
855 * Either the driver has accepted a smaller number of buffers,
856 * or .queue_setup() returned an error
857 */
858 }
859
860 mutex_lock(&q->mmap_lock);
861 q->num_buffers = allocated_buffers;
862
863 if (ret < 0) {
864 /*
865 * Note: __vb2_queue_free() will subtract 'allocated_buffers'
866 * from q->num_buffers and it will reset q->memory to
867 * VB2_MEMORY_UNKNOWN.
868 */
869 __vb2_queue_free(q, allocated_buffers);
870 mutex_unlock(&q->mmap_lock);
871 return ret;
872 }
873 mutex_unlock(&q->mmap_lock);
874
875 /*
876 * Return the number of successfully allocated buffers
877 * to the userspace.
878 */
879 *count = allocated_buffers;
880 q->waiting_for_buffers = !q->is_output;
881
882 return 0;
883
884 error:
885 mutex_lock(&q->mmap_lock);
886 q->memory = VB2_MEMORY_UNKNOWN;
887 mutex_unlock(&q->mmap_lock);
888 return ret;
889 }
890 EXPORT_SYMBOL_GPL(vb2_core_reqbufs);
891
vb2_core_create_bufs(struct vb2_queue * q,enum vb2_memory memory,unsigned int * count,unsigned int requested_planes,const unsigned int requested_sizes[])892 int vb2_core_create_bufs(struct vb2_queue *q, enum vb2_memory memory,
893 unsigned int *count,
894 unsigned int requested_planes,
895 const unsigned int requested_sizes[])
896 {
897 unsigned int num_planes = 0, num_buffers, allocated_buffers;
898 unsigned plane_sizes[VB2_MAX_PLANES] = { };
899 bool no_previous_buffers = !q->num_buffers;
900 int ret;
901
902 if (q->num_buffers == VB2_MAX_FRAME) {
903 dprintk(q, 1, "maximum number of buffers already allocated\n");
904 return -ENOBUFS;
905 }
906
907 if (no_previous_buffers) {
908 if (q->waiting_in_dqbuf && *count) {
909 dprintk(q, 1, "another dup()ped fd is waiting for a buffer\n");
910 return -EBUSY;
911 }
912 memset(q->alloc_devs, 0, sizeof(q->alloc_devs));
913 /*
914 * Set this now to ensure that drivers see the correct q->memory
915 * value in the queue_setup op.
916 */
917 mutex_lock(&q->mmap_lock);
918 q->memory = memory;
919 mutex_unlock(&q->mmap_lock);
920 q->waiting_for_buffers = !q->is_output;
921 } else {
922 if (q->memory != memory) {
923 dprintk(q, 1, "memory model mismatch\n");
924 return -EINVAL;
925 }
926 }
927
928 num_buffers = min(*count, VB2_MAX_FRAME - q->num_buffers);
929
930 if (requested_planes && requested_sizes) {
931 num_planes = requested_planes;
932 memcpy(plane_sizes, requested_sizes, sizeof(plane_sizes));
933 }
934
935 /*
936 * Ask the driver, whether the requested number of buffers, planes per
937 * buffer and their sizes are acceptable
938 */
939 ret = call_qop(q, queue_setup, q, &num_buffers,
940 &num_planes, plane_sizes, q->alloc_devs);
941 if (ret)
942 goto error;
943
944 /* Finally, allocate buffers and video memory */
945 allocated_buffers = __vb2_queue_alloc(q, memory, num_buffers,
946 num_planes, plane_sizes);
947 if (allocated_buffers == 0) {
948 dprintk(q, 1, "memory allocation failed\n");
949 ret = -ENOMEM;
950 goto error;
951 }
952
953 /*
954 * Check if driver can handle the so far allocated number of buffers.
955 */
956 if (allocated_buffers < num_buffers) {
957 num_buffers = allocated_buffers;
958
959 /*
960 * q->num_buffers contains the total number of buffers, that the
961 * queue driver has set up
962 */
963 ret = call_qop(q, queue_setup, q, &num_buffers,
964 &num_planes, plane_sizes, q->alloc_devs);
965
966 if (!ret && allocated_buffers < num_buffers)
967 ret = -ENOMEM;
968
969 /*
970 * Either the driver has accepted a smaller number of buffers,
971 * or .queue_setup() returned an error
972 */
973 }
974
975 mutex_lock(&q->mmap_lock);
976 q->num_buffers += allocated_buffers;
977
978 if (ret < 0) {
979 /*
980 * Note: __vb2_queue_free() will subtract 'allocated_buffers'
981 * from q->num_buffers and it will reset q->memory to
982 * VB2_MEMORY_UNKNOWN.
983 */
984 __vb2_queue_free(q, allocated_buffers);
985 mutex_unlock(&q->mmap_lock);
986 return -ENOMEM;
987 }
988 mutex_unlock(&q->mmap_lock);
989
990 /*
991 * Return the number of successfully allocated buffers
992 * to the userspace.
993 */
994 *count = allocated_buffers;
995
996 return 0;
997
998 error:
999 if (no_previous_buffers) {
1000 mutex_lock(&q->mmap_lock);
1001 q->memory = VB2_MEMORY_UNKNOWN;
1002 mutex_unlock(&q->mmap_lock);
1003 }
1004 return ret;
1005 }
1006 EXPORT_SYMBOL_GPL(vb2_core_create_bufs);
1007
vb2_plane_vaddr(struct vb2_buffer * vb,unsigned int plane_no)1008 void *vb2_plane_vaddr(struct vb2_buffer *vb, unsigned int plane_no)
1009 {
1010 if (plane_no >= vb->num_planes || !vb->planes[plane_no].mem_priv)
1011 return NULL;
1012
1013 return call_ptr_memop(vb, vaddr, vb->planes[plane_no].mem_priv);
1014
1015 }
1016 EXPORT_SYMBOL_GPL(vb2_plane_vaddr);
1017
vb2_plane_cookie(struct vb2_buffer * vb,unsigned int plane_no)1018 void *vb2_plane_cookie(struct vb2_buffer *vb, unsigned int plane_no)
1019 {
1020 if (plane_no >= vb->num_planes || !vb->planes[plane_no].mem_priv)
1021 return NULL;
1022
1023 return call_ptr_memop(vb, cookie, vb->planes[plane_no].mem_priv);
1024 }
1025 EXPORT_SYMBOL_GPL(vb2_plane_cookie);
1026
vb2_buffer_done(struct vb2_buffer * vb,enum vb2_buffer_state state)1027 void vb2_buffer_done(struct vb2_buffer *vb, enum vb2_buffer_state state)
1028 {
1029 struct vb2_queue *q = vb->vb2_queue;
1030 unsigned long flags;
1031
1032 if (WARN_ON(vb->state != VB2_BUF_STATE_ACTIVE))
1033 return;
1034
1035 if (WARN_ON(state != VB2_BUF_STATE_DONE &&
1036 state != VB2_BUF_STATE_ERROR &&
1037 state != VB2_BUF_STATE_QUEUED))
1038 state = VB2_BUF_STATE_ERROR;
1039
1040 #ifdef CONFIG_VIDEO_ADV_DEBUG
1041 /*
1042 * Although this is not a callback, it still does have to balance
1043 * with the buf_queue op. So update this counter manually.
1044 */
1045 vb->cnt_buf_done++;
1046 #endif
1047 dprintk(q, 4, "done processing on buffer %d, state: %s\n",
1048 vb->index, vb2_state_name(state));
1049
1050 if (state != VB2_BUF_STATE_QUEUED)
1051 __vb2_buf_mem_finish(vb);
1052
1053 spin_lock_irqsave(&q->done_lock, flags);
1054 if (state == VB2_BUF_STATE_QUEUED) {
1055 vb->state = VB2_BUF_STATE_QUEUED;
1056 } else {
1057 /* Add the buffer to the done buffers list */
1058 list_add_tail(&vb->done_entry, &q->done_list);
1059 vb->state = state;
1060 }
1061 atomic_dec(&q->owned_by_drv_count);
1062
1063 if (state != VB2_BUF_STATE_QUEUED && vb->req_obj.req) {
1064 media_request_object_unbind(&vb->req_obj);
1065 media_request_object_put(&vb->req_obj);
1066 }
1067
1068 spin_unlock_irqrestore(&q->done_lock, flags);
1069
1070 trace_vb2_buf_done(q, vb);
1071
1072 switch (state) {
1073 case VB2_BUF_STATE_QUEUED:
1074 return;
1075 default:
1076 /* Inform any processes that may be waiting for buffers */
1077 wake_up(&q->done_wq);
1078 break;
1079 }
1080 }
1081 EXPORT_SYMBOL_GPL(vb2_buffer_done);
1082
vb2_discard_done(struct vb2_queue * q)1083 void vb2_discard_done(struct vb2_queue *q)
1084 {
1085 struct vb2_buffer *vb;
1086 unsigned long flags;
1087
1088 spin_lock_irqsave(&q->done_lock, flags);
1089 list_for_each_entry(vb, &q->done_list, done_entry)
1090 vb->state = VB2_BUF_STATE_ERROR;
1091 spin_unlock_irqrestore(&q->done_lock, flags);
1092 }
1093 EXPORT_SYMBOL_GPL(vb2_discard_done);
1094
1095 /*
1096 * __prepare_mmap() - prepare an MMAP buffer
1097 */
__prepare_mmap(struct vb2_buffer * vb)1098 static int __prepare_mmap(struct vb2_buffer *vb)
1099 {
1100 int ret = 0;
1101
1102 ret = call_bufop(vb->vb2_queue, fill_vb2_buffer,
1103 vb, vb->planes);
1104 return ret ? ret : call_vb_qop(vb, buf_prepare, vb);
1105 }
1106
1107 /*
1108 * __prepare_userptr() - prepare a USERPTR buffer
1109 */
__prepare_userptr(struct vb2_buffer * vb)1110 static int __prepare_userptr(struct vb2_buffer *vb)
1111 {
1112 struct vb2_plane planes[VB2_MAX_PLANES];
1113 struct vb2_queue *q = vb->vb2_queue;
1114 void *mem_priv;
1115 unsigned int plane;
1116 int ret = 0;
1117 bool reacquired = vb->planes[0].mem_priv == NULL;
1118
1119 memset(planes, 0, sizeof(planes[0]) * vb->num_planes);
1120 /* Copy relevant information provided by the userspace */
1121 ret = call_bufop(vb->vb2_queue, fill_vb2_buffer,
1122 vb, planes);
1123 if (ret)
1124 return ret;
1125
1126 for (plane = 0; plane < vb->num_planes; ++plane) {
1127 /* Skip the plane if already verified */
1128 if (vb->planes[plane].m.userptr &&
1129 vb->planes[plane].m.userptr == planes[plane].m.userptr
1130 && vb->planes[plane].length == planes[plane].length)
1131 continue;
1132
1133 dprintk(q, 3, "userspace address for plane %d changed, reacquiring memory\n",
1134 plane);
1135
1136 /* Check if the provided plane buffer is large enough */
1137 if (planes[plane].length < vb->planes[plane].min_length) {
1138 dprintk(q, 1, "provided buffer size %u is less than setup size %u for plane %d\n",
1139 planes[plane].length,
1140 vb->planes[plane].min_length,
1141 plane);
1142 ret = -EINVAL;
1143 goto err;
1144 }
1145
1146 /* Release previously acquired memory if present */
1147 if (vb->planes[plane].mem_priv) {
1148 if (!reacquired) {
1149 reacquired = true;
1150 vb->copied_timestamp = 0;
1151 call_void_vb_qop(vb, buf_cleanup, vb);
1152 }
1153 call_void_memop(vb, put_userptr, vb->planes[plane].mem_priv);
1154 }
1155
1156 vb->planes[plane].mem_priv = NULL;
1157 vb->planes[plane].bytesused = 0;
1158 vb->planes[plane].length = 0;
1159 vb->planes[plane].m.userptr = 0;
1160 vb->planes[plane].data_offset = 0;
1161
1162 /* Acquire each plane's memory */
1163 mem_priv = call_ptr_memop(vb, get_userptr,
1164 q->alloc_devs[plane] ? : q->dev,
1165 planes[plane].m.userptr,
1166 planes[plane].length, q->dma_dir);
1167 if (IS_ERR(mem_priv)) {
1168 dprintk(q, 1, "failed acquiring userspace memory for plane %d\n",
1169 plane);
1170 ret = PTR_ERR(mem_priv);
1171 goto err;
1172 }
1173 vb->planes[plane].mem_priv = mem_priv;
1174 }
1175
1176 /*
1177 * Now that everything is in order, copy relevant information
1178 * provided by userspace.
1179 */
1180 for (plane = 0; plane < vb->num_planes; ++plane) {
1181 vb->planes[plane].bytesused = planes[plane].bytesused;
1182 vb->planes[plane].length = planes[plane].length;
1183 vb->planes[plane].m.userptr = planes[plane].m.userptr;
1184 vb->planes[plane].data_offset = planes[plane].data_offset;
1185 }
1186
1187 if (reacquired) {
1188 /*
1189 * One or more planes changed, so we must call buf_init to do
1190 * the driver-specific initialization on the newly acquired
1191 * buffer, if provided.
1192 */
1193 ret = call_vb_qop(vb, buf_init, vb);
1194 if (ret) {
1195 dprintk(q, 1, "buffer initialization failed\n");
1196 goto err;
1197 }
1198 }
1199
1200 ret = call_vb_qop(vb, buf_prepare, vb);
1201 if (ret) {
1202 dprintk(q, 1, "buffer preparation failed\n");
1203 call_void_vb_qop(vb, buf_cleanup, vb);
1204 goto err;
1205 }
1206
1207 return 0;
1208 err:
1209 /* In case of errors, release planes that were already acquired */
1210 for (plane = 0; plane < vb->num_planes; ++plane) {
1211 if (vb->planes[plane].mem_priv)
1212 call_void_memop(vb, put_userptr,
1213 vb->planes[plane].mem_priv);
1214 vb->planes[plane].mem_priv = NULL;
1215 vb->planes[plane].m.userptr = 0;
1216 vb->planes[plane].length = 0;
1217 }
1218
1219 return ret;
1220 }
1221
1222 /*
1223 * __prepare_dmabuf() - prepare a DMABUF buffer
1224 */
__prepare_dmabuf(struct vb2_buffer * vb)1225 static int __prepare_dmabuf(struct vb2_buffer *vb)
1226 {
1227 struct vb2_plane planes[VB2_MAX_PLANES];
1228 struct vb2_queue *q = vb->vb2_queue;
1229 void *mem_priv;
1230 unsigned int plane;
1231 int ret = 0;
1232 bool reacquired = vb->planes[0].mem_priv == NULL;
1233
1234 memset(planes, 0, sizeof(planes[0]) * vb->num_planes);
1235 /* Copy relevant information provided by the userspace */
1236 ret = call_bufop(vb->vb2_queue, fill_vb2_buffer,
1237 vb, planes);
1238 if (ret)
1239 return ret;
1240
1241 for (plane = 0; plane < vb->num_planes; ++plane) {
1242 struct dma_buf *dbuf = dma_buf_get(planes[plane].m.fd);
1243
1244 if (IS_ERR_OR_NULL(dbuf)) {
1245 dprintk(q, 1, "invalid dmabuf fd for plane %d\n",
1246 plane);
1247 ret = -EINVAL;
1248 goto err;
1249 }
1250
1251 /* use DMABUF size if length is not provided */
1252 if (planes[plane].length == 0)
1253 planes[plane].length = dbuf->size;
1254
1255 if (planes[plane].length < vb->planes[plane].min_length) {
1256 dprintk(q, 1, "invalid dmabuf length %u for plane %d, minimum length %u\n",
1257 planes[plane].length, plane,
1258 vb->planes[plane].min_length);
1259 dma_buf_put(dbuf);
1260 ret = -EINVAL;
1261 goto err;
1262 }
1263
1264 /* Skip the plane if already verified */
1265 if (dbuf == vb->planes[plane].dbuf &&
1266 vb->planes[plane].length == planes[plane].length) {
1267 dma_buf_put(dbuf);
1268 continue;
1269 }
1270
1271 dprintk(q, 3, "buffer for plane %d changed\n", plane);
1272
1273 if (!reacquired) {
1274 reacquired = true;
1275 vb->copied_timestamp = 0;
1276 call_void_vb_qop(vb, buf_cleanup, vb);
1277 }
1278
1279 /* Release previously acquired memory if present */
1280 __vb2_plane_dmabuf_put(vb, &vb->planes[plane]);
1281 vb->planes[plane].bytesused = 0;
1282 vb->planes[plane].length = 0;
1283 vb->planes[plane].m.fd = 0;
1284 vb->planes[plane].data_offset = 0;
1285
1286 /* Acquire each plane's memory */
1287 mem_priv = call_ptr_memop(vb, attach_dmabuf,
1288 q->alloc_devs[plane] ? : q->dev,
1289 dbuf, planes[plane].length, q->dma_dir);
1290 if (IS_ERR(mem_priv)) {
1291 dprintk(q, 1, "failed to attach dmabuf\n");
1292 ret = PTR_ERR(mem_priv);
1293 dma_buf_put(dbuf);
1294 goto err;
1295 }
1296
1297 vb->planes[plane].dbuf = dbuf;
1298 vb->planes[plane].mem_priv = mem_priv;
1299 }
1300
1301 /*
1302 * This pins the buffer(s) with dma_buf_map_attachment()). It's done
1303 * here instead just before the DMA, while queueing the buffer(s) so
1304 * userspace knows sooner rather than later if the dma-buf map fails.
1305 */
1306 for (plane = 0; plane < vb->num_planes; ++plane) {
1307 if (vb->planes[plane].dbuf_mapped)
1308 continue;
1309
1310 ret = call_memop(vb, map_dmabuf, vb->planes[plane].mem_priv);
1311 if (ret) {
1312 dprintk(q, 1, "failed to map dmabuf for plane %d\n",
1313 plane);
1314 goto err;
1315 }
1316 vb->planes[plane].dbuf_mapped = 1;
1317 }
1318
1319 /*
1320 * Now that everything is in order, copy relevant information
1321 * provided by userspace.
1322 */
1323 for (plane = 0; plane < vb->num_planes; ++plane) {
1324 vb->planes[plane].bytesused = planes[plane].bytesused;
1325 vb->planes[plane].length = planes[plane].length;
1326 vb->planes[plane].m.fd = planes[plane].m.fd;
1327 vb->planes[plane].data_offset = planes[plane].data_offset;
1328 }
1329
1330 if (reacquired) {
1331 /*
1332 * Call driver-specific initialization on the newly acquired buffer,
1333 * if provided.
1334 */
1335 ret = call_vb_qop(vb, buf_init, vb);
1336 if (ret) {
1337 dprintk(q, 1, "buffer initialization failed\n");
1338 goto err;
1339 }
1340 }
1341
1342 ret = call_vb_qop(vb, buf_prepare, vb);
1343 if (ret) {
1344 dprintk(q, 1, "buffer preparation failed\n");
1345 call_void_vb_qop(vb, buf_cleanup, vb);
1346 goto err;
1347 }
1348
1349 return 0;
1350 err:
1351 /* In case of errors, release planes that were already acquired */
1352 __vb2_buf_dmabuf_put(vb);
1353
1354 return ret;
1355 }
1356
1357 /*
1358 * __enqueue_in_driver() - enqueue a vb2_buffer in driver for processing
1359 */
__enqueue_in_driver(struct vb2_buffer * vb)1360 static void __enqueue_in_driver(struct vb2_buffer *vb)
1361 {
1362 struct vb2_queue *q = vb->vb2_queue;
1363
1364 vb->state = VB2_BUF_STATE_ACTIVE;
1365 atomic_inc(&q->owned_by_drv_count);
1366
1367 trace_vb2_buf_queue(q, vb);
1368
1369 call_void_vb_qop(vb, buf_queue, vb);
1370 }
1371
__buf_prepare(struct vb2_buffer * vb)1372 static int __buf_prepare(struct vb2_buffer *vb)
1373 {
1374 struct vb2_queue *q = vb->vb2_queue;
1375 enum vb2_buffer_state orig_state = vb->state;
1376 int ret;
1377
1378 if (q->error) {
1379 dprintk(q, 1, "fatal error occurred on queue\n");
1380 return -EIO;
1381 }
1382
1383 if (vb->prepared)
1384 return 0;
1385 WARN_ON(vb->synced);
1386
1387 if (q->is_output) {
1388 ret = call_vb_qop(vb, buf_out_validate, vb);
1389 if (ret) {
1390 dprintk(q, 1, "buffer validation failed\n");
1391 return ret;
1392 }
1393 }
1394
1395 vb->state = VB2_BUF_STATE_PREPARING;
1396
1397 switch (q->memory) {
1398 case VB2_MEMORY_MMAP:
1399 ret = __prepare_mmap(vb);
1400 break;
1401 case VB2_MEMORY_USERPTR:
1402 ret = __prepare_userptr(vb);
1403 break;
1404 case VB2_MEMORY_DMABUF:
1405 ret = __prepare_dmabuf(vb);
1406 break;
1407 default:
1408 WARN(1, "Invalid queue type\n");
1409 ret = -EINVAL;
1410 break;
1411 }
1412
1413 if (ret) {
1414 dprintk(q, 1, "buffer preparation failed: %d\n", ret);
1415 vb->state = orig_state;
1416 return ret;
1417 }
1418
1419 __vb2_buf_mem_prepare(vb);
1420 vb->prepared = 1;
1421 vb->state = orig_state;
1422
1423 return 0;
1424 }
1425
vb2_req_prepare(struct media_request_object * obj)1426 static int vb2_req_prepare(struct media_request_object *obj)
1427 {
1428 struct vb2_buffer *vb = container_of(obj, struct vb2_buffer, req_obj);
1429 int ret;
1430
1431 if (WARN_ON(vb->state != VB2_BUF_STATE_IN_REQUEST))
1432 return -EINVAL;
1433
1434 mutex_lock(vb->vb2_queue->lock);
1435 ret = __buf_prepare(vb);
1436 mutex_unlock(vb->vb2_queue->lock);
1437 return ret;
1438 }
1439
1440 static void __vb2_dqbuf(struct vb2_buffer *vb);
1441
vb2_req_unprepare(struct media_request_object * obj)1442 static void vb2_req_unprepare(struct media_request_object *obj)
1443 {
1444 struct vb2_buffer *vb = container_of(obj, struct vb2_buffer, req_obj);
1445
1446 mutex_lock(vb->vb2_queue->lock);
1447 __vb2_dqbuf(vb);
1448 vb->state = VB2_BUF_STATE_IN_REQUEST;
1449 mutex_unlock(vb->vb2_queue->lock);
1450 WARN_ON(!vb->req_obj.req);
1451 }
1452
1453 int vb2_core_qbuf(struct vb2_queue *q, unsigned int index, void *pb,
1454 struct media_request *req);
1455
vb2_req_queue(struct media_request_object * obj)1456 static void vb2_req_queue(struct media_request_object *obj)
1457 {
1458 struct vb2_buffer *vb = container_of(obj, struct vb2_buffer, req_obj);
1459
1460 mutex_lock(vb->vb2_queue->lock);
1461 vb2_core_qbuf(vb->vb2_queue, vb->index, NULL, NULL);
1462 mutex_unlock(vb->vb2_queue->lock);
1463 }
1464
vb2_req_unbind(struct media_request_object * obj)1465 static void vb2_req_unbind(struct media_request_object *obj)
1466 {
1467 struct vb2_buffer *vb = container_of(obj, struct vb2_buffer, req_obj);
1468
1469 if (vb->state == VB2_BUF_STATE_IN_REQUEST)
1470 call_void_bufop(vb->vb2_queue, init_buffer, vb);
1471 }
1472
vb2_req_release(struct media_request_object * obj)1473 static void vb2_req_release(struct media_request_object *obj)
1474 {
1475 struct vb2_buffer *vb = container_of(obj, struct vb2_buffer, req_obj);
1476
1477 if (vb->state == VB2_BUF_STATE_IN_REQUEST) {
1478 vb->state = VB2_BUF_STATE_DEQUEUED;
1479 if (vb->request)
1480 media_request_put(vb->request);
1481 vb->request = NULL;
1482 }
1483 }
1484
1485 static const struct media_request_object_ops vb2_core_req_ops = {
1486 .prepare = vb2_req_prepare,
1487 .unprepare = vb2_req_unprepare,
1488 .queue = vb2_req_queue,
1489 .unbind = vb2_req_unbind,
1490 .release = vb2_req_release,
1491 };
1492
vb2_request_object_is_buffer(struct media_request_object * obj)1493 bool vb2_request_object_is_buffer(struct media_request_object *obj)
1494 {
1495 return obj->ops == &vb2_core_req_ops;
1496 }
1497 EXPORT_SYMBOL_GPL(vb2_request_object_is_buffer);
1498
vb2_request_buffer_cnt(struct media_request * req)1499 unsigned int vb2_request_buffer_cnt(struct media_request *req)
1500 {
1501 struct media_request_object *obj;
1502 unsigned long flags;
1503 unsigned int buffer_cnt = 0;
1504
1505 spin_lock_irqsave(&req->lock, flags);
1506 list_for_each_entry(obj, &req->objects, list)
1507 if (vb2_request_object_is_buffer(obj))
1508 buffer_cnt++;
1509 spin_unlock_irqrestore(&req->lock, flags);
1510
1511 return buffer_cnt;
1512 }
1513 EXPORT_SYMBOL_GPL(vb2_request_buffer_cnt);
1514
vb2_core_prepare_buf(struct vb2_queue * q,unsigned int index,void * pb)1515 int vb2_core_prepare_buf(struct vb2_queue *q, unsigned int index, void *pb)
1516 {
1517 struct vb2_buffer *vb;
1518 int ret;
1519
1520 vb = q->bufs[index];
1521 if (vb->state != VB2_BUF_STATE_DEQUEUED) {
1522 dprintk(q, 1, "invalid buffer state %s\n",
1523 vb2_state_name(vb->state));
1524 return -EINVAL;
1525 }
1526 if (vb->prepared) {
1527 dprintk(q, 1, "buffer already prepared\n");
1528 return -EINVAL;
1529 }
1530
1531 ret = __buf_prepare(vb);
1532 if (ret)
1533 return ret;
1534
1535 /* Fill buffer information for the userspace */
1536 call_void_bufop(q, fill_user_buffer, vb, pb);
1537
1538 dprintk(q, 2, "prepare of buffer %d succeeded\n", vb->index);
1539
1540 return 0;
1541 }
1542 EXPORT_SYMBOL_GPL(vb2_core_prepare_buf);
1543
1544 /*
1545 * vb2_start_streaming() - Attempt to start streaming.
1546 * @q: videobuf2 queue
1547 *
1548 * Attempt to start streaming. When this function is called there must be
1549 * at least q->min_buffers_needed buffers queued up (i.e. the minimum
1550 * number of buffers required for the DMA engine to function). If the
1551 * @start_streaming op fails it is supposed to return all the driver-owned
1552 * buffers back to vb2 in state QUEUED. Check if that happened and if
1553 * not warn and reclaim them forcefully.
1554 */
vb2_start_streaming(struct vb2_queue * q)1555 static int vb2_start_streaming(struct vb2_queue *q)
1556 {
1557 struct vb2_buffer *vb;
1558 int ret;
1559
1560 /*
1561 * If any buffers were queued before streamon,
1562 * we can now pass them to driver for processing.
1563 */
1564 list_for_each_entry(vb, &q->queued_list, queued_entry)
1565 __enqueue_in_driver(vb);
1566
1567 /* Tell the driver to start streaming */
1568 q->start_streaming_called = 1;
1569 ret = call_qop(q, start_streaming, q,
1570 atomic_read(&q->owned_by_drv_count));
1571 if (!ret)
1572 return 0;
1573
1574 q->start_streaming_called = 0;
1575
1576 dprintk(q, 1, "driver refused to start streaming\n");
1577 /*
1578 * If you see this warning, then the driver isn't cleaning up properly
1579 * after a failed start_streaming(). See the start_streaming()
1580 * documentation in videobuf2-core.h for more information how buffers
1581 * should be returned to vb2 in start_streaming().
1582 */
1583 if (WARN_ON(atomic_read(&q->owned_by_drv_count))) {
1584 unsigned i;
1585
1586 /*
1587 * Forcefully reclaim buffers if the driver did not
1588 * correctly return them to vb2.
1589 */
1590 for (i = 0; i < q->num_buffers; ++i) {
1591 vb = q->bufs[i];
1592 if (vb->state == VB2_BUF_STATE_ACTIVE)
1593 vb2_buffer_done(vb, VB2_BUF_STATE_QUEUED);
1594 }
1595 /* Must be zero now */
1596 WARN_ON(atomic_read(&q->owned_by_drv_count));
1597 }
1598 /*
1599 * If done_list is not empty, then start_streaming() didn't call
1600 * vb2_buffer_done(vb, VB2_BUF_STATE_QUEUED) but STATE_ERROR or
1601 * STATE_DONE.
1602 */
1603 WARN_ON(!list_empty(&q->done_list));
1604 return ret;
1605 }
1606
vb2_core_qbuf(struct vb2_queue * q,unsigned int index,void * pb,struct media_request * req)1607 int vb2_core_qbuf(struct vb2_queue *q, unsigned int index, void *pb,
1608 struct media_request *req)
1609 {
1610 struct vb2_buffer *vb;
1611 enum vb2_buffer_state orig_state;
1612 int ret;
1613
1614 if (q->error) {
1615 dprintk(q, 1, "fatal error occurred on queue\n");
1616 return -EIO;
1617 }
1618
1619 vb = q->bufs[index];
1620
1621 if (!req && vb->state != VB2_BUF_STATE_IN_REQUEST &&
1622 q->requires_requests) {
1623 dprintk(q, 1, "qbuf requires a request\n");
1624 return -EBADR;
1625 }
1626
1627 if ((req && q->uses_qbuf) ||
1628 (!req && vb->state != VB2_BUF_STATE_IN_REQUEST &&
1629 q->uses_requests)) {
1630 dprintk(q, 1, "queue in wrong mode (qbuf vs requests)\n");
1631 return -EBUSY;
1632 }
1633
1634 if (req) {
1635 int ret;
1636
1637 q->uses_requests = 1;
1638 if (vb->state != VB2_BUF_STATE_DEQUEUED) {
1639 dprintk(q, 1, "buffer %d not in dequeued state\n",
1640 vb->index);
1641 return -EINVAL;
1642 }
1643
1644 if (q->is_output && !vb->prepared) {
1645 ret = call_vb_qop(vb, buf_out_validate, vb);
1646 if (ret) {
1647 dprintk(q, 1, "buffer validation failed\n");
1648 return ret;
1649 }
1650 }
1651
1652 media_request_object_init(&vb->req_obj);
1653
1654 /* Make sure the request is in a safe state for updating. */
1655 ret = media_request_lock_for_update(req);
1656 if (ret)
1657 return ret;
1658 ret = media_request_object_bind(req, &vb2_core_req_ops,
1659 q, true, &vb->req_obj);
1660 media_request_unlock_for_update(req);
1661 if (ret)
1662 return ret;
1663
1664 vb->state = VB2_BUF_STATE_IN_REQUEST;
1665
1666 /*
1667 * Increment the refcount and store the request.
1668 * The request refcount is decremented again when the
1669 * buffer is dequeued. This is to prevent vb2_buffer_done()
1670 * from freeing the request from interrupt context, which can
1671 * happen if the application closed the request fd after
1672 * queueing the request.
1673 */
1674 media_request_get(req);
1675 vb->request = req;
1676
1677 /* Fill buffer information for the userspace */
1678 if (pb) {
1679 call_void_bufop(q, copy_timestamp, vb, pb);
1680 call_void_bufop(q, fill_user_buffer, vb, pb);
1681 }
1682
1683 dprintk(q, 2, "qbuf of buffer %d succeeded\n", vb->index);
1684 return 0;
1685 }
1686
1687 if (vb->state != VB2_BUF_STATE_IN_REQUEST)
1688 q->uses_qbuf = 1;
1689
1690 switch (vb->state) {
1691 case VB2_BUF_STATE_DEQUEUED:
1692 case VB2_BUF_STATE_IN_REQUEST:
1693 if (!vb->prepared) {
1694 ret = __buf_prepare(vb);
1695 if (ret)
1696 return ret;
1697 }
1698 break;
1699 case VB2_BUF_STATE_PREPARING:
1700 dprintk(q, 1, "buffer still being prepared\n");
1701 return -EINVAL;
1702 default:
1703 dprintk(q, 1, "invalid buffer state %s\n",
1704 vb2_state_name(vb->state));
1705 return -EINVAL;
1706 }
1707
1708 /*
1709 * Add to the queued buffers list, a buffer will stay on it until
1710 * dequeued in dqbuf.
1711 */
1712 orig_state = vb->state;
1713 list_add_tail(&vb->queued_entry, &q->queued_list);
1714 q->queued_count++;
1715 q->waiting_for_buffers = false;
1716 vb->state = VB2_BUF_STATE_QUEUED;
1717
1718 if (pb)
1719 call_void_bufop(q, copy_timestamp, vb, pb);
1720
1721 trace_vb2_qbuf(q, vb);
1722
1723 /*
1724 * If already streaming, give the buffer to driver for processing.
1725 * If not, the buffer will be given to driver on next streamon.
1726 */
1727 if (q->start_streaming_called)
1728 __enqueue_in_driver(vb);
1729
1730 /* Fill buffer information for the userspace */
1731 if (pb)
1732 call_void_bufop(q, fill_user_buffer, vb, pb);
1733
1734 /*
1735 * If streamon has been called, and we haven't yet called
1736 * start_streaming() since not enough buffers were queued, and
1737 * we now have reached the minimum number of queued buffers,
1738 * then we can finally call start_streaming().
1739 */
1740 if (q->streaming && !q->start_streaming_called &&
1741 q->queued_count >= q->min_buffers_needed) {
1742 ret = vb2_start_streaming(q);
1743 if (ret) {
1744 /*
1745 * Since vb2_core_qbuf will return with an error,
1746 * we should return it to state DEQUEUED since
1747 * the error indicates that the buffer wasn't queued.
1748 */
1749 list_del(&vb->queued_entry);
1750 q->queued_count--;
1751 vb->state = orig_state;
1752 return ret;
1753 }
1754 }
1755
1756 dprintk(q, 2, "qbuf of buffer %d succeeded\n", vb->index);
1757 return 0;
1758 }
1759 EXPORT_SYMBOL_GPL(vb2_core_qbuf);
1760
1761 /*
1762 * __vb2_wait_for_done_vb() - wait for a buffer to become available
1763 * for dequeuing
1764 *
1765 * Will sleep if required for nonblocking == false.
1766 */
__vb2_wait_for_done_vb(struct vb2_queue * q,int nonblocking)1767 static int __vb2_wait_for_done_vb(struct vb2_queue *q, int nonblocking)
1768 {
1769 /*
1770 * All operations on vb_done_list are performed under done_lock
1771 * spinlock protection. However, buffers may be removed from
1772 * it and returned to userspace only while holding both driver's
1773 * lock and the done_lock spinlock. Thus we can be sure that as
1774 * long as we hold the driver's lock, the list will remain not
1775 * empty if list_empty() check succeeds.
1776 */
1777
1778 for (;;) {
1779 int ret;
1780
1781 if (q->waiting_in_dqbuf) {
1782 dprintk(q, 1, "another dup()ped fd is waiting for a buffer\n");
1783 return -EBUSY;
1784 }
1785
1786 if (!q->streaming) {
1787 dprintk(q, 1, "streaming off, will not wait for buffers\n");
1788 return -EINVAL;
1789 }
1790
1791 if (q->error) {
1792 dprintk(q, 1, "Queue in error state, will not wait for buffers\n");
1793 return -EIO;
1794 }
1795
1796 if (q->last_buffer_dequeued) {
1797 dprintk(q, 3, "last buffer dequeued already, will not wait for buffers\n");
1798 return -EPIPE;
1799 }
1800
1801 if (!list_empty(&q->done_list)) {
1802 /*
1803 * Found a buffer that we were waiting for.
1804 */
1805 break;
1806 }
1807
1808 if (nonblocking) {
1809 dprintk(q, 3, "nonblocking and no buffers to dequeue, will not wait\n");
1810 return -EAGAIN;
1811 }
1812
1813 q->waiting_in_dqbuf = 1;
1814 /*
1815 * We are streaming and blocking, wait for another buffer to
1816 * become ready or for streamoff. Driver's lock is released to
1817 * allow streamoff or qbuf to be called while waiting.
1818 */
1819 call_void_qop(q, wait_prepare, q);
1820
1821 /*
1822 * All locks have been released, it is safe to sleep now.
1823 */
1824 dprintk(q, 3, "will sleep waiting for buffers\n");
1825 ret = wait_event_interruptible(q->done_wq,
1826 !list_empty(&q->done_list) || !q->streaming ||
1827 q->error);
1828
1829 /*
1830 * We need to reevaluate both conditions again after reacquiring
1831 * the locks or return an error if one occurred.
1832 */
1833 call_void_qop(q, wait_finish, q);
1834 q->waiting_in_dqbuf = 0;
1835 if (ret) {
1836 dprintk(q, 1, "sleep was interrupted\n");
1837 return ret;
1838 }
1839 }
1840 return 0;
1841 }
1842
1843 /*
1844 * __vb2_get_done_vb() - get a buffer ready for dequeuing
1845 *
1846 * Will sleep if required for nonblocking == false.
1847 */
__vb2_get_done_vb(struct vb2_queue * q,struct vb2_buffer ** vb,void * pb,int nonblocking)1848 static int __vb2_get_done_vb(struct vb2_queue *q, struct vb2_buffer **vb,
1849 void *pb, int nonblocking)
1850 {
1851 unsigned long flags;
1852 int ret = 0;
1853
1854 /*
1855 * Wait for at least one buffer to become available on the done_list.
1856 */
1857 ret = __vb2_wait_for_done_vb(q, nonblocking);
1858 if (ret)
1859 return ret;
1860
1861 /*
1862 * Driver's lock has been held since we last verified that done_list
1863 * is not empty, so no need for another list_empty(done_list) check.
1864 */
1865 spin_lock_irqsave(&q->done_lock, flags);
1866 *vb = list_first_entry(&q->done_list, struct vb2_buffer, done_entry);
1867 /*
1868 * Only remove the buffer from done_list if all planes can be
1869 * handled. Some cases such as V4L2 file I/O and DVB have pb
1870 * == NULL; skip the check then as there's nothing to verify.
1871 */
1872 if (pb)
1873 ret = call_bufop(q, verify_planes_array, *vb, pb);
1874 if (!ret)
1875 list_del(&(*vb)->done_entry);
1876 spin_unlock_irqrestore(&q->done_lock, flags);
1877
1878 return ret;
1879 }
1880
vb2_wait_for_all_buffers(struct vb2_queue * q)1881 int vb2_wait_for_all_buffers(struct vb2_queue *q)
1882 {
1883 if (!q->streaming) {
1884 dprintk(q, 1, "streaming off, will not wait for buffers\n");
1885 return -EINVAL;
1886 }
1887
1888 if (q->start_streaming_called)
1889 wait_event(q->done_wq, !atomic_read(&q->owned_by_drv_count));
1890 return 0;
1891 }
1892 EXPORT_SYMBOL_GPL(vb2_wait_for_all_buffers);
1893
1894 /*
1895 * __vb2_dqbuf() - bring back the buffer to the DEQUEUED state
1896 */
__vb2_dqbuf(struct vb2_buffer * vb)1897 static void __vb2_dqbuf(struct vb2_buffer *vb)
1898 {
1899 struct vb2_queue *q = vb->vb2_queue;
1900
1901 /* nothing to do if the buffer is already dequeued */
1902 if (vb->state == VB2_BUF_STATE_DEQUEUED)
1903 return;
1904
1905 vb->state = VB2_BUF_STATE_DEQUEUED;
1906
1907 call_void_bufop(q, init_buffer, vb);
1908 }
1909
vb2_core_dqbuf(struct vb2_queue * q,unsigned int * pindex,void * pb,bool nonblocking)1910 int vb2_core_dqbuf(struct vb2_queue *q, unsigned int *pindex, void *pb,
1911 bool nonblocking)
1912 {
1913 struct vb2_buffer *vb = NULL;
1914 int ret;
1915
1916 ret = __vb2_get_done_vb(q, &vb, pb, nonblocking);
1917 if (ret < 0)
1918 return ret;
1919
1920 switch (vb->state) {
1921 case VB2_BUF_STATE_DONE:
1922 dprintk(q, 3, "returning done buffer\n");
1923 break;
1924 case VB2_BUF_STATE_ERROR:
1925 dprintk(q, 3, "returning done buffer with errors\n");
1926 break;
1927 default:
1928 dprintk(q, 1, "invalid buffer state %s\n",
1929 vb2_state_name(vb->state));
1930 return -EINVAL;
1931 }
1932
1933 call_void_vb_qop(vb, buf_finish, vb);
1934 vb->prepared = 0;
1935
1936 if (pindex)
1937 *pindex = vb->index;
1938
1939 /* Fill buffer information for the userspace */
1940 if (pb)
1941 call_void_bufop(q, fill_user_buffer, vb, pb);
1942
1943 /* Remove from videobuf queue */
1944 list_del(&vb->queued_entry);
1945 q->queued_count--;
1946
1947 trace_vb2_dqbuf(q, vb);
1948
1949 /* go back to dequeued state */
1950 __vb2_dqbuf(vb);
1951
1952 if (WARN_ON(vb->req_obj.req)) {
1953 media_request_object_unbind(&vb->req_obj);
1954 media_request_object_put(&vb->req_obj);
1955 }
1956 if (vb->request)
1957 media_request_put(vb->request);
1958 vb->request = NULL;
1959
1960 dprintk(q, 2, "dqbuf of buffer %d, state: %s\n",
1961 vb->index, vb2_state_name(vb->state));
1962
1963 return 0;
1964
1965 }
1966 EXPORT_SYMBOL_GPL(vb2_core_dqbuf);
1967
1968 /*
1969 * __vb2_queue_cancel() - cancel and stop (pause) streaming
1970 *
1971 * Removes all queued buffers from driver's queue and all buffers queued by
1972 * userspace from videobuf's queue. Returns to state after reqbufs.
1973 */
__vb2_queue_cancel(struct vb2_queue * q)1974 static void __vb2_queue_cancel(struct vb2_queue *q)
1975 {
1976 unsigned int i;
1977
1978 /*
1979 * Tell driver to stop all transactions and release all queued
1980 * buffers.
1981 */
1982 if (q->start_streaming_called)
1983 call_void_qop(q, stop_streaming, q);
1984
1985 /*
1986 * If you see this warning, then the driver isn't cleaning up properly
1987 * in stop_streaming(). See the stop_streaming() documentation in
1988 * videobuf2-core.h for more information how buffers should be returned
1989 * to vb2 in stop_streaming().
1990 */
1991 if (WARN_ON(atomic_read(&q->owned_by_drv_count))) {
1992 for (i = 0; i < q->num_buffers; ++i)
1993 if (q->bufs[i]->state == VB2_BUF_STATE_ACTIVE) {
1994 pr_warn("driver bug: stop_streaming operation is leaving buf %p in active state\n",
1995 q->bufs[i]);
1996 vb2_buffer_done(q->bufs[i], VB2_BUF_STATE_ERROR);
1997 }
1998 /* Must be zero now */
1999 WARN_ON(atomic_read(&q->owned_by_drv_count));
2000 }
2001
2002 q->streaming = 0;
2003 q->start_streaming_called = 0;
2004 q->queued_count = 0;
2005 q->error = 0;
2006 q->uses_requests = 0;
2007 q->uses_qbuf = 0;
2008
2009 /*
2010 * Remove all buffers from videobuf's list...
2011 */
2012 INIT_LIST_HEAD(&q->queued_list);
2013 /*
2014 * ...and done list; userspace will not receive any buffers it
2015 * has not already dequeued before initiating cancel.
2016 */
2017 INIT_LIST_HEAD(&q->done_list);
2018 atomic_set(&q->owned_by_drv_count, 0);
2019 wake_up_all(&q->done_wq);
2020
2021 /*
2022 * Reinitialize all buffers for next use.
2023 * Make sure to call buf_finish for any queued buffers. Normally
2024 * that's done in dqbuf, but that's not going to happen when we
2025 * cancel the whole queue. Note: this code belongs here, not in
2026 * __vb2_dqbuf() since in vb2_core_dqbuf() there is a critical
2027 * call to __fill_user_buffer() after buf_finish(). That order can't
2028 * be changed, so we can't move the buf_finish() to __vb2_dqbuf().
2029 */
2030 for (i = 0; i < q->num_buffers; ++i) {
2031 struct vb2_buffer *vb = q->bufs[i];
2032 struct media_request *req = vb->req_obj.req;
2033
2034 /*
2035 * If a request is associated with this buffer, then
2036 * call buf_request_cancel() to give the driver to complete()
2037 * related request objects. Otherwise those objects would
2038 * never complete.
2039 */
2040 if (req) {
2041 enum media_request_state state;
2042 unsigned long flags;
2043
2044 spin_lock_irqsave(&req->lock, flags);
2045 state = req->state;
2046 spin_unlock_irqrestore(&req->lock, flags);
2047
2048 if (state == MEDIA_REQUEST_STATE_QUEUED)
2049 call_void_vb_qop(vb, buf_request_complete, vb);
2050 }
2051
2052 __vb2_buf_mem_finish(vb);
2053
2054 if (vb->prepared) {
2055 call_void_vb_qop(vb, buf_finish, vb);
2056 vb->prepared = 0;
2057 }
2058 __vb2_dqbuf(vb);
2059
2060 if (vb->req_obj.req) {
2061 media_request_object_unbind(&vb->req_obj);
2062 media_request_object_put(&vb->req_obj);
2063 }
2064 if (vb->request)
2065 media_request_put(vb->request);
2066 vb->request = NULL;
2067 vb->copied_timestamp = 0;
2068 }
2069 }
2070
vb2_core_streamon(struct vb2_queue * q,unsigned int type)2071 int vb2_core_streamon(struct vb2_queue *q, unsigned int type)
2072 {
2073 int ret;
2074
2075 if (type != q->type) {
2076 dprintk(q, 1, "invalid stream type\n");
2077 return -EINVAL;
2078 }
2079
2080 if (q->streaming) {
2081 dprintk(q, 3, "already streaming\n");
2082 return 0;
2083 }
2084
2085 if (!q->num_buffers) {
2086 dprintk(q, 1, "no buffers have been allocated\n");
2087 return -EINVAL;
2088 }
2089
2090 if (q->num_buffers < q->min_buffers_needed) {
2091 dprintk(q, 1, "need at least %u allocated buffers\n",
2092 q->min_buffers_needed);
2093 return -EINVAL;
2094 }
2095
2096 /*
2097 * Tell driver to start streaming provided sufficient buffers
2098 * are available.
2099 */
2100 if (q->queued_count >= q->min_buffers_needed) {
2101 ret = v4l_vb2q_enable_media_source(q);
2102 if (ret)
2103 return ret;
2104 ret = vb2_start_streaming(q);
2105 if (ret)
2106 return ret;
2107 }
2108
2109 q->streaming = 1;
2110
2111 dprintk(q, 3, "successful\n");
2112 return 0;
2113 }
2114 EXPORT_SYMBOL_GPL(vb2_core_streamon);
2115
vb2_queue_error(struct vb2_queue * q)2116 void vb2_queue_error(struct vb2_queue *q)
2117 {
2118 q->error = 1;
2119
2120 wake_up_all(&q->done_wq);
2121 }
2122 EXPORT_SYMBOL_GPL(vb2_queue_error);
2123
vb2_core_streamoff(struct vb2_queue * q,unsigned int type)2124 int vb2_core_streamoff(struct vb2_queue *q, unsigned int type)
2125 {
2126 if (type != q->type) {
2127 dprintk(q, 1, "invalid stream type\n");
2128 return -EINVAL;
2129 }
2130
2131 /*
2132 * Cancel will pause streaming and remove all buffers from the driver
2133 * and videobuf, effectively returning control over them to userspace.
2134 *
2135 * Note that we do this even if q->streaming == 0: if you prepare or
2136 * queue buffers, and then call streamoff without ever having called
2137 * streamon, you would still expect those buffers to be returned to
2138 * their normal dequeued state.
2139 */
2140 __vb2_queue_cancel(q);
2141 q->waiting_for_buffers = !q->is_output;
2142 q->last_buffer_dequeued = false;
2143
2144 dprintk(q, 3, "successful\n");
2145 return 0;
2146 }
2147 EXPORT_SYMBOL_GPL(vb2_core_streamoff);
2148
2149 /*
2150 * __find_plane_by_offset() - find plane associated with the given offset off
2151 */
__find_plane_by_offset(struct vb2_queue * q,unsigned long off,unsigned int * _buffer,unsigned int * _plane)2152 static int __find_plane_by_offset(struct vb2_queue *q, unsigned long off,
2153 unsigned int *_buffer, unsigned int *_plane)
2154 {
2155 struct vb2_buffer *vb;
2156 unsigned int buffer, plane;
2157
2158 /*
2159 * Sanity checks to ensure the lock is held, MEMORY_MMAP is
2160 * used and fileio isn't active.
2161 */
2162 lockdep_assert_held(&q->mmap_lock);
2163
2164 if (q->memory != VB2_MEMORY_MMAP) {
2165 dprintk(q, 1, "queue is not currently set up for mmap\n");
2166 return -EINVAL;
2167 }
2168
2169 if (vb2_fileio_is_active(q)) {
2170 dprintk(q, 1, "file io in progress\n");
2171 return -EBUSY;
2172 }
2173
2174 /*
2175 * Go over all buffers and their planes, comparing the given offset
2176 * with an offset assigned to each plane. If a match is found,
2177 * return its buffer and plane numbers.
2178 */
2179 for (buffer = 0; buffer < q->num_buffers; ++buffer) {
2180 vb = q->bufs[buffer];
2181
2182 for (plane = 0; plane < vb->num_planes; ++plane) {
2183 if (vb->planes[plane].m.offset == off) {
2184 *_buffer = buffer;
2185 *_plane = plane;
2186 return 0;
2187 }
2188 }
2189 }
2190
2191 return -EINVAL;
2192 }
2193
vb2_core_expbuf(struct vb2_queue * q,int * fd,unsigned int type,unsigned int index,unsigned int plane,unsigned int flags)2194 int vb2_core_expbuf(struct vb2_queue *q, int *fd, unsigned int type,
2195 unsigned int index, unsigned int plane, unsigned int flags)
2196 {
2197 struct vb2_buffer *vb = NULL;
2198 struct vb2_plane *vb_plane;
2199 int ret;
2200 struct dma_buf *dbuf;
2201
2202 if (q->memory != VB2_MEMORY_MMAP) {
2203 dprintk(q, 1, "queue is not currently set up for mmap\n");
2204 return -EINVAL;
2205 }
2206
2207 if (!q->mem_ops->get_dmabuf) {
2208 dprintk(q, 1, "queue does not support DMA buffer exporting\n");
2209 return -EINVAL;
2210 }
2211
2212 if (flags & ~(O_CLOEXEC | O_ACCMODE)) {
2213 dprintk(q, 1, "queue does support only O_CLOEXEC and access mode flags\n");
2214 return -EINVAL;
2215 }
2216
2217 if (type != q->type) {
2218 dprintk(q, 1, "invalid buffer type\n");
2219 return -EINVAL;
2220 }
2221
2222 if (index >= q->num_buffers) {
2223 dprintk(q, 1, "buffer index out of range\n");
2224 return -EINVAL;
2225 }
2226
2227 vb = q->bufs[index];
2228
2229 if (plane >= vb->num_planes) {
2230 dprintk(q, 1, "buffer plane out of range\n");
2231 return -EINVAL;
2232 }
2233
2234 if (vb2_fileio_is_active(q)) {
2235 dprintk(q, 1, "expbuf: file io in progress\n");
2236 return -EBUSY;
2237 }
2238
2239 vb_plane = &vb->planes[plane];
2240
2241 dbuf = call_ptr_memop(vb, get_dmabuf, vb_plane->mem_priv,
2242 flags & O_ACCMODE);
2243 if (IS_ERR_OR_NULL(dbuf)) {
2244 dprintk(q, 1, "failed to export buffer %d, plane %d\n",
2245 index, plane);
2246 return -EINVAL;
2247 }
2248
2249 ret = dma_buf_fd(dbuf, flags & ~O_ACCMODE);
2250 if (ret < 0) {
2251 dprintk(q, 3, "buffer %d, plane %d failed to export (%d)\n",
2252 index, plane, ret);
2253 dma_buf_put(dbuf);
2254 return ret;
2255 }
2256
2257 dprintk(q, 3, "buffer %d, plane %d exported as %d descriptor\n",
2258 index, plane, ret);
2259 *fd = ret;
2260
2261 return 0;
2262 }
2263 EXPORT_SYMBOL_GPL(vb2_core_expbuf);
2264
vb2_mmap(struct vb2_queue * q,struct vm_area_struct * vma)2265 int vb2_mmap(struct vb2_queue *q, struct vm_area_struct *vma)
2266 {
2267 unsigned long off = vma->vm_pgoff << PAGE_SHIFT;
2268 struct vb2_buffer *vb;
2269 unsigned int buffer = 0, plane = 0;
2270 int ret;
2271 unsigned long length;
2272
2273 /*
2274 * Check memory area access mode.
2275 */
2276 if (!(vma->vm_flags & VM_SHARED)) {
2277 dprintk(q, 1, "invalid vma flags, VM_SHARED needed\n");
2278 return -EINVAL;
2279 }
2280 if (q->is_output) {
2281 if (!(vma->vm_flags & VM_WRITE)) {
2282 dprintk(q, 1, "invalid vma flags, VM_WRITE needed\n");
2283 return -EINVAL;
2284 }
2285 } else {
2286 if (!(vma->vm_flags & VM_READ)) {
2287 dprintk(q, 1, "invalid vma flags, VM_READ needed\n");
2288 return -EINVAL;
2289 }
2290 }
2291
2292 mutex_lock(&q->mmap_lock);
2293
2294 /*
2295 * Find the plane corresponding to the offset passed by userspace. This
2296 * will return an error if not MEMORY_MMAP or file I/O is in progress.
2297 */
2298 ret = __find_plane_by_offset(q, off, &buffer, &plane);
2299 if (ret)
2300 goto unlock;
2301
2302 vb = q->bufs[buffer];
2303
2304 /*
2305 * MMAP requires page_aligned buffers.
2306 * The buffer length was page_aligned at __vb2_buf_mem_alloc(),
2307 * so, we need to do the same here.
2308 */
2309 length = PAGE_ALIGN(vb->planes[plane].length);
2310 if (length < (vma->vm_end - vma->vm_start)) {
2311 dprintk(q, 1,
2312 "MMAP invalid, as it would overflow buffer length\n");
2313 ret = -EINVAL;
2314 goto unlock;
2315 }
2316
2317 /*
2318 * vm_pgoff is treated in V4L2 API as a 'cookie' to select a buffer,
2319 * not as a in-buffer offset. We always want to mmap a whole buffer
2320 * from its beginning.
2321 */
2322 vma->vm_pgoff = 0;
2323
2324 ret = call_memop(vb, mmap, vb->planes[plane].mem_priv, vma);
2325
2326 unlock:
2327 mutex_unlock(&q->mmap_lock);
2328 if (ret)
2329 return ret;
2330
2331 dprintk(q, 3, "buffer %d, plane %d successfully mapped\n", buffer, plane);
2332 return 0;
2333 }
2334 EXPORT_SYMBOL_GPL(vb2_mmap);
2335
2336 #ifndef CONFIG_MMU
vb2_get_unmapped_area(struct vb2_queue * q,unsigned long addr,unsigned long len,unsigned long pgoff,unsigned long flags)2337 unsigned long vb2_get_unmapped_area(struct vb2_queue *q,
2338 unsigned long addr,
2339 unsigned long len,
2340 unsigned long pgoff,
2341 unsigned long flags)
2342 {
2343 unsigned long off = pgoff << PAGE_SHIFT;
2344 struct vb2_buffer *vb;
2345 unsigned int buffer, plane;
2346 void *vaddr;
2347 int ret;
2348
2349 mutex_lock(&q->mmap_lock);
2350
2351 /*
2352 * Find the plane corresponding to the offset passed by userspace. This
2353 * will return an error if not MEMORY_MMAP or file I/O is in progress.
2354 */
2355 ret = __find_plane_by_offset(q, off, &buffer, &plane);
2356 if (ret)
2357 goto unlock;
2358
2359 vb = q->bufs[buffer];
2360
2361 vaddr = vb2_plane_vaddr(vb, plane);
2362 mutex_unlock(&q->mmap_lock);
2363 return vaddr ? (unsigned long)vaddr : -EINVAL;
2364
2365 unlock:
2366 mutex_unlock(&q->mmap_lock);
2367 return ret;
2368 }
2369 EXPORT_SYMBOL_GPL(vb2_get_unmapped_area);
2370 #endif
2371
vb2_core_queue_init(struct vb2_queue * q)2372 int vb2_core_queue_init(struct vb2_queue *q)
2373 {
2374 /*
2375 * Sanity check
2376 */
2377 if (WARN_ON(!q) ||
2378 WARN_ON(!q->ops) ||
2379 WARN_ON(!q->mem_ops) ||
2380 WARN_ON(!q->type) ||
2381 WARN_ON(!q->io_modes) ||
2382 WARN_ON(!q->ops->queue_setup) ||
2383 WARN_ON(!q->ops->buf_queue))
2384 return -EINVAL;
2385
2386 if (WARN_ON(q->requires_requests && !q->supports_requests))
2387 return -EINVAL;
2388
2389 INIT_LIST_HEAD(&q->queued_list);
2390 INIT_LIST_HEAD(&q->done_list);
2391 spin_lock_init(&q->done_lock);
2392 mutex_init(&q->mmap_lock);
2393 init_waitqueue_head(&q->done_wq);
2394
2395 q->memory = VB2_MEMORY_UNKNOWN;
2396
2397 if (q->buf_struct_size == 0)
2398 q->buf_struct_size = sizeof(struct vb2_buffer);
2399
2400 if (q->bidirectional)
2401 q->dma_dir = DMA_BIDIRECTIONAL;
2402 else
2403 q->dma_dir = q->is_output ? DMA_TO_DEVICE : DMA_FROM_DEVICE;
2404
2405 if (q->name[0] == '\0')
2406 snprintf(q->name, sizeof(q->name), "%s-%p",
2407 q->is_output ? "out" : "cap", q);
2408
2409 return 0;
2410 }
2411 EXPORT_SYMBOL_GPL(vb2_core_queue_init);
2412
2413 static int __vb2_init_fileio(struct vb2_queue *q, int read);
2414 static int __vb2_cleanup_fileio(struct vb2_queue *q);
vb2_core_queue_release(struct vb2_queue * q)2415 void vb2_core_queue_release(struct vb2_queue *q)
2416 {
2417 __vb2_cleanup_fileio(q);
2418 __vb2_queue_cancel(q);
2419 mutex_lock(&q->mmap_lock);
2420 __vb2_queue_free(q, q->num_buffers);
2421 mutex_unlock(&q->mmap_lock);
2422 }
2423 EXPORT_SYMBOL_GPL(vb2_core_queue_release);
2424
vb2_core_poll(struct vb2_queue * q,struct file * file,poll_table * wait)2425 __poll_t vb2_core_poll(struct vb2_queue *q, struct file *file,
2426 poll_table *wait)
2427 {
2428 __poll_t req_events = poll_requested_events(wait);
2429 struct vb2_buffer *vb = NULL;
2430 unsigned long flags;
2431
2432 if (!q->is_output && !(req_events & (EPOLLIN | EPOLLRDNORM)))
2433 return 0;
2434 if (q->is_output && !(req_events & (EPOLLOUT | EPOLLWRNORM)))
2435 return 0;
2436
2437 poll_wait(file, &q->done_wq, wait);
2438
2439 /*
2440 * Start file I/O emulator only if streaming API has not been used yet.
2441 */
2442 if (q->num_buffers == 0 && !vb2_fileio_is_active(q)) {
2443 if (!q->is_output && (q->io_modes & VB2_READ) &&
2444 (req_events & (EPOLLIN | EPOLLRDNORM))) {
2445 if (__vb2_init_fileio(q, 1))
2446 return EPOLLERR;
2447 }
2448 if (q->is_output && (q->io_modes & VB2_WRITE) &&
2449 (req_events & (EPOLLOUT | EPOLLWRNORM))) {
2450 if (__vb2_init_fileio(q, 0))
2451 return EPOLLERR;
2452 /*
2453 * Write to OUTPUT queue can be done immediately.
2454 */
2455 return EPOLLOUT | EPOLLWRNORM;
2456 }
2457 }
2458
2459 /*
2460 * There is nothing to wait for if the queue isn't streaming, or if the
2461 * error flag is set.
2462 */
2463 if (!vb2_is_streaming(q) || q->error)
2464 return EPOLLERR;
2465
2466 /*
2467 * If this quirk is set and QBUF hasn't been called yet then
2468 * return EPOLLERR as well. This only affects capture queues, output
2469 * queues will always initialize waiting_for_buffers to false.
2470 * This quirk is set by V4L2 for backwards compatibility reasons.
2471 */
2472 if (q->quirk_poll_must_check_waiting_for_buffers &&
2473 q->waiting_for_buffers && (req_events & (EPOLLIN | EPOLLRDNORM)))
2474 return EPOLLERR;
2475
2476 /*
2477 * For output streams you can call write() as long as there are fewer
2478 * buffers queued than there are buffers available.
2479 */
2480 if (q->is_output && q->fileio && q->queued_count < q->num_buffers)
2481 return EPOLLOUT | EPOLLWRNORM;
2482
2483 if (list_empty(&q->done_list)) {
2484 /*
2485 * If the last buffer was dequeued from a capture queue,
2486 * return immediately. DQBUF will return -EPIPE.
2487 */
2488 if (q->last_buffer_dequeued)
2489 return EPOLLIN | EPOLLRDNORM;
2490 }
2491
2492 /*
2493 * Take first buffer available for dequeuing.
2494 */
2495 spin_lock_irqsave(&q->done_lock, flags);
2496 if (!list_empty(&q->done_list))
2497 vb = list_first_entry(&q->done_list, struct vb2_buffer,
2498 done_entry);
2499 spin_unlock_irqrestore(&q->done_lock, flags);
2500
2501 if (vb && (vb->state == VB2_BUF_STATE_DONE
2502 || vb->state == VB2_BUF_STATE_ERROR)) {
2503 return (q->is_output) ?
2504 EPOLLOUT | EPOLLWRNORM :
2505 EPOLLIN | EPOLLRDNORM;
2506 }
2507 return 0;
2508 }
2509 EXPORT_SYMBOL_GPL(vb2_core_poll);
2510
2511 /*
2512 * struct vb2_fileio_buf - buffer context used by file io emulator
2513 *
2514 * vb2 provides a compatibility layer and emulator of file io (read and
2515 * write) calls on top of streaming API. This structure is used for
2516 * tracking context related to the buffers.
2517 */
2518 struct vb2_fileio_buf {
2519 void *vaddr;
2520 unsigned int size;
2521 unsigned int pos;
2522 unsigned int queued:1;
2523 };
2524
2525 /*
2526 * struct vb2_fileio_data - queue context used by file io emulator
2527 *
2528 * @cur_index: the index of the buffer currently being read from or
2529 * written to. If equal to q->num_buffers then a new buffer
2530 * must be dequeued.
2531 * @initial_index: in the read() case all buffers are queued up immediately
2532 * in __vb2_init_fileio() and __vb2_perform_fileio() just cycles
2533 * buffers. However, in the write() case no buffers are initially
2534 * queued, instead whenever a buffer is full it is queued up by
2535 * __vb2_perform_fileio(). Only once all available buffers have
2536 * been queued up will __vb2_perform_fileio() start to dequeue
2537 * buffers. This means that initially __vb2_perform_fileio()
2538 * needs to know what buffer index to use when it is queuing up
2539 * the buffers for the first time. That initial index is stored
2540 * in this field. Once it is equal to q->num_buffers all
2541 * available buffers have been queued and __vb2_perform_fileio()
2542 * should start the normal dequeue/queue cycle.
2543 *
2544 * vb2 provides a compatibility layer and emulator of file io (read and
2545 * write) calls on top of streaming API. For proper operation it required
2546 * this structure to save the driver state between each call of the read
2547 * or write function.
2548 */
2549 struct vb2_fileio_data {
2550 unsigned int count;
2551 unsigned int type;
2552 unsigned int memory;
2553 struct vb2_fileio_buf bufs[VB2_MAX_FRAME];
2554 unsigned int cur_index;
2555 unsigned int initial_index;
2556 unsigned int q_count;
2557 unsigned int dq_count;
2558 unsigned read_once:1;
2559 unsigned write_immediately:1;
2560 };
2561
2562 /*
2563 * __vb2_init_fileio() - initialize file io emulator
2564 * @q: videobuf2 queue
2565 * @read: mode selector (1 means read, 0 means write)
2566 */
__vb2_init_fileio(struct vb2_queue * q,int read)2567 static int __vb2_init_fileio(struct vb2_queue *q, int read)
2568 {
2569 struct vb2_fileio_data *fileio;
2570 int i, ret;
2571 unsigned int count = 0;
2572
2573 /*
2574 * Sanity check
2575 */
2576 if (WARN_ON((read && !(q->io_modes & VB2_READ)) ||
2577 (!read && !(q->io_modes & VB2_WRITE))))
2578 return -EINVAL;
2579
2580 /*
2581 * Check if device supports mapping buffers to kernel virtual space.
2582 */
2583 if (!q->mem_ops->vaddr)
2584 return -EBUSY;
2585
2586 /*
2587 * Check if streaming api has not been already activated.
2588 */
2589 if (q->streaming || q->num_buffers > 0)
2590 return -EBUSY;
2591
2592 /*
2593 * Start with count 1, driver can increase it in queue_setup()
2594 */
2595 count = 1;
2596
2597 dprintk(q, 3, "setting up file io: mode %s, count %d, read_once %d, write_immediately %d\n",
2598 (read) ? "read" : "write", count, q->fileio_read_once,
2599 q->fileio_write_immediately);
2600
2601 fileio = kzalloc(sizeof(*fileio), GFP_KERNEL);
2602 if (fileio == NULL)
2603 return -ENOMEM;
2604
2605 fileio->read_once = q->fileio_read_once;
2606 fileio->write_immediately = q->fileio_write_immediately;
2607
2608 /*
2609 * Request buffers and use MMAP type to force driver
2610 * to allocate buffers by itself.
2611 */
2612 fileio->count = count;
2613 fileio->memory = VB2_MEMORY_MMAP;
2614 fileio->type = q->type;
2615 q->fileio = fileio;
2616 ret = vb2_core_reqbufs(q, fileio->memory, &fileio->count);
2617 if (ret)
2618 goto err_kfree;
2619
2620 /*
2621 * Check if plane_count is correct
2622 * (multiplane buffers are not supported).
2623 */
2624 if (q->bufs[0]->num_planes != 1) {
2625 ret = -EBUSY;
2626 goto err_reqbufs;
2627 }
2628
2629 /*
2630 * Get kernel address of each buffer.
2631 */
2632 for (i = 0; i < q->num_buffers; i++) {
2633 fileio->bufs[i].vaddr = vb2_plane_vaddr(q->bufs[i], 0);
2634 if (fileio->bufs[i].vaddr == NULL) {
2635 ret = -EINVAL;
2636 goto err_reqbufs;
2637 }
2638 fileio->bufs[i].size = vb2_plane_size(q->bufs[i], 0);
2639 }
2640
2641 /*
2642 * Read mode requires pre queuing of all buffers.
2643 */
2644 if (read) {
2645 /*
2646 * Queue all buffers.
2647 */
2648 for (i = 0; i < q->num_buffers; i++) {
2649 ret = vb2_core_qbuf(q, i, NULL, NULL);
2650 if (ret)
2651 goto err_reqbufs;
2652 fileio->bufs[i].queued = 1;
2653 }
2654 /*
2655 * All buffers have been queued, so mark that by setting
2656 * initial_index to q->num_buffers
2657 */
2658 fileio->initial_index = q->num_buffers;
2659 fileio->cur_index = q->num_buffers;
2660 }
2661
2662 /*
2663 * Start streaming.
2664 */
2665 ret = vb2_core_streamon(q, q->type);
2666 if (ret)
2667 goto err_reqbufs;
2668
2669 return ret;
2670
2671 err_reqbufs:
2672 fileio->count = 0;
2673 vb2_core_reqbufs(q, fileio->memory, &fileio->count);
2674
2675 err_kfree:
2676 q->fileio = NULL;
2677 kfree(fileio);
2678 return ret;
2679 }
2680
2681 /*
2682 * __vb2_cleanup_fileio() - free resourced used by file io emulator
2683 * @q: videobuf2 queue
2684 */
__vb2_cleanup_fileio(struct vb2_queue * q)2685 static int __vb2_cleanup_fileio(struct vb2_queue *q)
2686 {
2687 struct vb2_fileio_data *fileio = q->fileio;
2688
2689 if (fileio) {
2690 vb2_core_streamoff(q, q->type);
2691 q->fileio = NULL;
2692 fileio->count = 0;
2693 vb2_core_reqbufs(q, fileio->memory, &fileio->count);
2694 kfree(fileio);
2695 dprintk(q, 3, "file io emulator closed\n");
2696 }
2697 return 0;
2698 }
2699
2700 /*
2701 * __vb2_perform_fileio() - perform a single file io (read or write) operation
2702 * @q: videobuf2 queue
2703 * @data: pointed to target userspace buffer
2704 * @count: number of bytes to read or write
2705 * @ppos: file handle position tracking pointer
2706 * @nonblock: mode selector (1 means blocking calls, 0 means nonblocking)
2707 * @read: access mode selector (1 means read, 0 means write)
2708 */
__vb2_perform_fileio(struct vb2_queue * q,char __user * data,size_t count,loff_t * ppos,int nonblock,int read)2709 static size_t __vb2_perform_fileio(struct vb2_queue *q, char __user *data, size_t count,
2710 loff_t *ppos, int nonblock, int read)
2711 {
2712 struct vb2_fileio_data *fileio;
2713 struct vb2_fileio_buf *buf;
2714 bool is_multiplanar = q->is_multiplanar;
2715 /*
2716 * When using write() to write data to an output video node the vb2 core
2717 * should copy timestamps if V4L2_BUF_FLAG_TIMESTAMP_COPY is set. Nobody
2718 * else is able to provide this information with the write() operation.
2719 */
2720 bool copy_timestamp = !read && q->copy_timestamp;
2721 unsigned index;
2722 int ret;
2723
2724 dprintk(q, 3, "mode %s, offset %ld, count %zd, %sblocking\n",
2725 read ? "read" : "write", (long)*ppos, count,
2726 nonblock ? "non" : "");
2727
2728 if (!data)
2729 return -EINVAL;
2730
2731 if (q->waiting_in_dqbuf) {
2732 dprintk(q, 3, "another dup()ped fd is %s\n",
2733 read ? "reading" : "writing");
2734 return -EBUSY;
2735 }
2736
2737 /*
2738 * Initialize emulator on first call.
2739 */
2740 if (!vb2_fileio_is_active(q)) {
2741 ret = __vb2_init_fileio(q, read);
2742 dprintk(q, 3, "vb2_init_fileio result: %d\n", ret);
2743 if (ret)
2744 return ret;
2745 }
2746 fileio = q->fileio;
2747
2748 /*
2749 * Check if we need to dequeue the buffer.
2750 */
2751 index = fileio->cur_index;
2752 if (index >= q->num_buffers) {
2753 struct vb2_buffer *b;
2754
2755 /*
2756 * Call vb2_dqbuf to get buffer back.
2757 */
2758 ret = vb2_core_dqbuf(q, &index, NULL, nonblock);
2759 dprintk(q, 5, "vb2_dqbuf result: %d\n", ret);
2760 if (ret)
2761 return ret;
2762 fileio->dq_count += 1;
2763
2764 fileio->cur_index = index;
2765 buf = &fileio->bufs[index];
2766 b = q->bufs[index];
2767
2768 /*
2769 * Get number of bytes filled by the driver
2770 */
2771 buf->pos = 0;
2772 buf->queued = 0;
2773 buf->size = read ? vb2_get_plane_payload(q->bufs[index], 0)
2774 : vb2_plane_size(q->bufs[index], 0);
2775 /* Compensate for data_offset on read in the multiplanar case. */
2776 if (is_multiplanar && read &&
2777 b->planes[0].data_offset < buf->size) {
2778 buf->pos = b->planes[0].data_offset;
2779 buf->size -= buf->pos;
2780 }
2781 } else {
2782 buf = &fileio->bufs[index];
2783 }
2784
2785 /*
2786 * Limit count on last few bytes of the buffer.
2787 */
2788 if (buf->pos + count > buf->size) {
2789 count = buf->size - buf->pos;
2790 dprintk(q, 5, "reducing read count: %zd\n", count);
2791 }
2792
2793 /*
2794 * Transfer data to userspace.
2795 */
2796 dprintk(q, 3, "copying %zd bytes - buffer %d, offset %u\n",
2797 count, index, buf->pos);
2798 if (read)
2799 ret = copy_to_user(data, buf->vaddr + buf->pos, count);
2800 else
2801 ret = copy_from_user(buf->vaddr + buf->pos, data, count);
2802 if (ret) {
2803 dprintk(q, 3, "error copying data\n");
2804 return -EFAULT;
2805 }
2806
2807 /*
2808 * Update counters.
2809 */
2810 buf->pos += count;
2811 *ppos += count;
2812
2813 /*
2814 * Queue next buffer if required.
2815 */
2816 if (buf->pos == buf->size || (!read && fileio->write_immediately)) {
2817 struct vb2_buffer *b = q->bufs[index];
2818
2819 /*
2820 * Check if this is the last buffer to read.
2821 */
2822 if (read && fileio->read_once && fileio->dq_count == 1) {
2823 dprintk(q, 3, "read limit reached\n");
2824 return __vb2_cleanup_fileio(q);
2825 }
2826
2827 /*
2828 * Call vb2_qbuf and give buffer to the driver.
2829 */
2830 b->planes[0].bytesused = buf->pos;
2831
2832 if (copy_timestamp)
2833 b->timestamp = ktime_get_ns();
2834 ret = vb2_core_qbuf(q, index, NULL, NULL);
2835 dprintk(q, 5, "vb2_dbuf result: %d\n", ret);
2836 if (ret)
2837 return ret;
2838
2839 /*
2840 * Buffer has been queued, update the status
2841 */
2842 buf->pos = 0;
2843 buf->queued = 1;
2844 buf->size = vb2_plane_size(q->bufs[index], 0);
2845 fileio->q_count += 1;
2846 /*
2847 * If we are queuing up buffers for the first time, then
2848 * increase initial_index by one.
2849 */
2850 if (fileio->initial_index < q->num_buffers)
2851 fileio->initial_index++;
2852 /*
2853 * The next buffer to use is either a buffer that's going to be
2854 * queued for the first time (initial_index < q->num_buffers)
2855 * or it is equal to q->num_buffers, meaning that the next
2856 * time we need to dequeue a buffer since we've now queued up
2857 * all the 'first time' buffers.
2858 */
2859 fileio->cur_index = fileio->initial_index;
2860 }
2861
2862 /*
2863 * Return proper number of bytes processed.
2864 */
2865 if (ret == 0)
2866 ret = count;
2867 return ret;
2868 }
2869
vb2_read(struct vb2_queue * q,char __user * data,size_t count,loff_t * ppos,int nonblocking)2870 size_t vb2_read(struct vb2_queue *q, char __user *data, size_t count,
2871 loff_t *ppos, int nonblocking)
2872 {
2873 return __vb2_perform_fileio(q, data, count, ppos, nonblocking, 1);
2874 }
2875 EXPORT_SYMBOL_GPL(vb2_read);
2876
vb2_write(struct vb2_queue * q,const char __user * data,size_t count,loff_t * ppos,int nonblocking)2877 size_t vb2_write(struct vb2_queue *q, const char __user *data, size_t count,
2878 loff_t *ppos, int nonblocking)
2879 {
2880 return __vb2_perform_fileio(q, (char __user *) data, count,
2881 ppos, nonblocking, 0);
2882 }
2883 EXPORT_SYMBOL_GPL(vb2_write);
2884
2885 struct vb2_threadio_data {
2886 struct task_struct *thread;
2887 vb2_thread_fnc fnc;
2888 void *priv;
2889 bool stop;
2890 };
2891
vb2_thread(void * data)2892 static int vb2_thread(void *data)
2893 {
2894 struct vb2_queue *q = data;
2895 struct vb2_threadio_data *threadio = q->threadio;
2896 bool copy_timestamp = false;
2897 unsigned prequeue = 0;
2898 unsigned index = 0;
2899 int ret = 0;
2900
2901 if (q->is_output) {
2902 prequeue = q->num_buffers;
2903 copy_timestamp = q->copy_timestamp;
2904 }
2905
2906 set_freezable();
2907
2908 for (;;) {
2909 struct vb2_buffer *vb;
2910
2911 /*
2912 * Call vb2_dqbuf to get buffer back.
2913 */
2914 if (prequeue) {
2915 vb = q->bufs[index++];
2916 prequeue--;
2917 } else {
2918 call_void_qop(q, wait_finish, q);
2919 if (!threadio->stop)
2920 ret = vb2_core_dqbuf(q, &index, NULL, 0);
2921 call_void_qop(q, wait_prepare, q);
2922 dprintk(q, 5, "file io: vb2_dqbuf result: %d\n", ret);
2923 if (!ret)
2924 vb = q->bufs[index];
2925 }
2926 if (ret || threadio->stop)
2927 break;
2928 try_to_freeze();
2929
2930 if (vb->state != VB2_BUF_STATE_ERROR)
2931 if (threadio->fnc(vb, threadio->priv))
2932 break;
2933 call_void_qop(q, wait_finish, q);
2934 if (copy_timestamp)
2935 vb->timestamp = ktime_get_ns();
2936 if (!threadio->stop)
2937 ret = vb2_core_qbuf(q, vb->index, NULL, NULL);
2938 call_void_qop(q, wait_prepare, q);
2939 if (ret || threadio->stop)
2940 break;
2941 }
2942
2943 /* Hmm, linux becomes *very* unhappy without this ... */
2944 while (!kthread_should_stop()) {
2945 set_current_state(TASK_INTERRUPTIBLE);
2946 schedule();
2947 }
2948 return 0;
2949 }
2950
2951 /*
2952 * This function should not be used for anything else but the videobuf2-dvb
2953 * support. If you think you have another good use-case for this, then please
2954 * contact the linux-media mailinglist first.
2955 */
vb2_thread_start(struct vb2_queue * q,vb2_thread_fnc fnc,void * priv,const char * thread_name)2956 int vb2_thread_start(struct vb2_queue *q, vb2_thread_fnc fnc, void *priv,
2957 const char *thread_name)
2958 {
2959 struct vb2_threadio_data *threadio;
2960 int ret = 0;
2961
2962 if (q->threadio)
2963 return -EBUSY;
2964 if (vb2_is_busy(q))
2965 return -EBUSY;
2966 if (WARN_ON(q->fileio))
2967 return -EBUSY;
2968
2969 threadio = kzalloc(sizeof(*threadio), GFP_KERNEL);
2970 if (threadio == NULL)
2971 return -ENOMEM;
2972 threadio->fnc = fnc;
2973 threadio->priv = priv;
2974
2975 ret = __vb2_init_fileio(q, !q->is_output);
2976 dprintk(q, 3, "file io: vb2_init_fileio result: %d\n", ret);
2977 if (ret)
2978 goto nomem;
2979 q->threadio = threadio;
2980 threadio->thread = kthread_run(vb2_thread, q, "vb2-%s", thread_name);
2981 if (IS_ERR(threadio->thread)) {
2982 ret = PTR_ERR(threadio->thread);
2983 threadio->thread = NULL;
2984 goto nothread;
2985 }
2986 return 0;
2987
2988 nothread:
2989 __vb2_cleanup_fileio(q);
2990 nomem:
2991 kfree(threadio);
2992 return ret;
2993 }
2994 EXPORT_SYMBOL_GPL(vb2_thread_start);
2995
vb2_thread_stop(struct vb2_queue * q)2996 int vb2_thread_stop(struct vb2_queue *q)
2997 {
2998 struct vb2_threadio_data *threadio = q->threadio;
2999 int err;
3000
3001 if (threadio == NULL)
3002 return 0;
3003 threadio->stop = true;
3004 /* Wake up all pending sleeps in the thread */
3005 vb2_queue_error(q);
3006 err = kthread_stop(threadio->thread);
3007 __vb2_cleanup_fileio(q);
3008 threadio->thread = NULL;
3009 kfree(threadio);
3010 q->threadio = NULL;
3011 return err;
3012 }
3013 EXPORT_SYMBOL_GPL(vb2_thread_stop);
3014
3015 MODULE_DESCRIPTION("Media buffer core framework");
3016 MODULE_AUTHOR("Pawel Osciak <pawel@osciak.com>, Marek Szyprowski");
3017 MODULE_LICENSE("GPL");
3018