1/*
2 *      uvc_video.c  --  USB Video Class driver - Video handling
3 *
4 *      Copyright (C) 2005-2010
5 *          Laurent Pinchart (laurent.pinchart@ideasonboard.com)
6 *
7 *      This program is free software; you can redistribute it and/or modify
8 *      it under the terms of the GNU General Public License as published by
9 *      the Free Software Foundation; either version 2 of the License, or
10 *      (at your option) any later version.
11 *
12 */
13
14#include <linux/kernel.h>
15#include <linux/list.h>
16#include <linux/module.h>
17#include <linux/slab.h>
18#include <linux/usb.h>
19#include <linux/videodev2.h>
20#include <linux/vmalloc.h>
21#include <linux/wait.h>
22#include <linux/atomic.h>
23#include <asm/unaligned.h>
24
25#include <media/v4l2-common.h>
26
27#include "uvcvideo.h"
28
29/* ------------------------------------------------------------------------
30 * UVC Controls
31 */
32
33static int __uvc_query_ctrl(struct uvc_device *dev, __u8 query, __u8 unit,
34			__u8 intfnum, __u8 cs, void *data, __u16 size,
35			int timeout)
36{
37	__u8 type = USB_TYPE_CLASS | USB_RECIP_INTERFACE;
38	unsigned int pipe;
39
40	pipe = (query & 0x80) ? usb_rcvctrlpipe(dev->udev, 0)
41			      : usb_sndctrlpipe(dev->udev, 0);
42	type |= (query & 0x80) ? USB_DIR_IN : USB_DIR_OUT;
43
44	return usb_control_msg(dev->udev, pipe, query, type, cs << 8,
45			unit << 8 | intfnum, data, size, timeout);
46}
47
48static const char *uvc_query_name(__u8 query)
49{
50	switch (query) {
51	case UVC_SET_CUR:
52		return "SET_CUR";
53	case UVC_GET_CUR:
54		return "GET_CUR";
55	case UVC_GET_MIN:
56		return "GET_MIN";
57	case UVC_GET_MAX:
58		return "GET_MAX";
59	case UVC_GET_RES:
60		return "GET_RES";
61	case UVC_GET_LEN:
62		return "GET_LEN";
63	case UVC_GET_INFO:
64		return "GET_INFO";
65	case UVC_GET_DEF:
66		return "GET_DEF";
67	default:
68		return "<invalid>";
69	}
70}
71
72int uvc_query_ctrl(struct uvc_device *dev, __u8 query, __u8 unit,
73			__u8 intfnum, __u8 cs, void *data, __u16 size)
74{
75	int ret;
76
77	ret = __uvc_query_ctrl(dev, query, unit, intfnum, cs, data, size,
78				UVC_CTRL_CONTROL_TIMEOUT);
79	if (ret != size) {
80		uvc_printk(KERN_ERR, "Failed to query (%s) UVC control %u on "
81			"unit %u: %d (exp. %u).\n", uvc_query_name(query), cs,
82			unit, ret, size);
83		return -EIO;
84	}
85
86	return 0;
87}
88
89static void uvc_fixup_video_ctrl(struct uvc_streaming *stream,
90	struct uvc_streaming_control *ctrl)
91{
92	struct uvc_format *format = NULL;
93	struct uvc_frame *frame = NULL;
94	unsigned int i;
95
96	for (i = 0; i < stream->nformats; ++i) {
97		if (stream->format[i].index == ctrl->bFormatIndex) {
98			format = &stream->format[i];
99			break;
100		}
101	}
102
103	if (format == NULL)
104		return;
105
106	for (i = 0; i < format->nframes; ++i) {
107		if (format->frame[i].bFrameIndex == ctrl->bFrameIndex) {
108			frame = &format->frame[i];
109			break;
110		}
111	}
112
113	if (frame == NULL)
114		return;
115
116	if (!(format->flags & UVC_FMT_FLAG_COMPRESSED) ||
117	     (ctrl->dwMaxVideoFrameSize == 0 &&
118	      stream->dev->uvc_version < 0x0110))
119		ctrl->dwMaxVideoFrameSize =
120			frame->dwMaxVideoFrameBufferSize;
121
122	/* The "TOSHIBA Web Camera - 5M" Chicony device (04f2:b50b) seems to
123	 * compute the bandwidth on 16 bits and erroneously sign-extend it to
124	 * 32 bits, resulting in a huge bandwidth value. Detect and fix that
125	 * condition by setting the 16 MSBs to 0 when they're all equal to 1.
126	 */
127	if ((ctrl->dwMaxPayloadTransferSize & 0xffff0000) == 0xffff0000)
128		ctrl->dwMaxPayloadTransferSize &= ~0xffff0000;
129
130	if (!(format->flags & UVC_FMT_FLAG_COMPRESSED) &&
131	    stream->dev->quirks & UVC_QUIRK_FIX_BANDWIDTH &&
132	    stream->intf->num_altsetting > 1) {
133		u32 interval;
134		u32 bandwidth;
135
136		interval = (ctrl->dwFrameInterval > 100000)
137			 ? ctrl->dwFrameInterval
138			 : frame->dwFrameInterval[0];
139
140		/* Compute a bandwidth estimation by multiplying the frame
141		 * size by the number of video frames per second, divide the
142		 * result by the number of USB frames (or micro-frames for
143		 * high-speed devices) per second and add the UVC header size
144		 * (assumed to be 12 bytes long).
145		 */
146		bandwidth = frame->wWidth * frame->wHeight / 8 * format->bpp;
147		bandwidth *= 10000000 / interval + 1;
148		bandwidth /= 1000;
149		if (stream->dev->udev->speed == USB_SPEED_HIGH)
150			bandwidth /= 8;
151		bandwidth += 12;
152
153		/* The bandwidth estimate is too low for many cameras. Don't use
154		 * maximum packet sizes lower than 1024 bytes to try and work
155		 * around the problem. According to measurements done on two
156		 * different camera models, the value is high enough to get most
157		 * resolutions working while not preventing two simultaneous
158		 * VGA streams at 15 fps.
159		 */
160		bandwidth = max_t(u32, bandwidth, 1024);
161
162		ctrl->dwMaxPayloadTransferSize = bandwidth;
163	}
164}
165
166static int uvc_get_video_ctrl(struct uvc_streaming *stream,
167	struct uvc_streaming_control *ctrl, int probe, __u8 query)
168{
169	__u8 *data;
170	__u16 size;
171	int ret;
172
173	size = stream->dev->uvc_version >= 0x0110 ? 34 : 26;
174	if ((stream->dev->quirks & UVC_QUIRK_PROBE_DEF) &&
175			query == UVC_GET_DEF)
176		return -EIO;
177
178	data = kmalloc(size, GFP_KERNEL);
179	if (data == NULL)
180		return -ENOMEM;
181
182	ret = __uvc_query_ctrl(stream->dev, query, 0, stream->intfnum,
183		probe ? UVC_VS_PROBE_CONTROL : UVC_VS_COMMIT_CONTROL, data,
184		size, uvc_timeout_param);
185
186	if ((query == UVC_GET_MIN || query == UVC_GET_MAX) && ret == 2) {
187		/* Some cameras, mostly based on Bison Electronics chipsets,
188		 * answer a GET_MIN or GET_MAX request with the wCompQuality
189		 * field only.
190		 */
191		uvc_warn_once(stream->dev, UVC_WARN_MINMAX, "UVC non "
192			"compliance - GET_MIN/MAX(PROBE) incorrectly "
193			"supported. Enabling workaround.\n");
194		memset(ctrl, 0, sizeof *ctrl);
195		ctrl->wCompQuality = le16_to_cpup((__le16 *)data);
196		ret = 0;
197		goto out;
198	} else if (query == UVC_GET_DEF && probe == 1 && ret != size) {
199		/* Many cameras don't support the GET_DEF request on their
200		 * video probe control. Warn once and return, the caller will
201		 * fall back to GET_CUR.
202		 */
203		uvc_warn_once(stream->dev, UVC_WARN_PROBE_DEF, "UVC non "
204			"compliance - GET_DEF(PROBE) not supported. "
205			"Enabling workaround.\n");
206		ret = -EIO;
207		goto out;
208	} else if (ret != size) {
209		uvc_printk(KERN_ERR, "Failed to query (%u) UVC %s control : "
210			"%d (exp. %u).\n", query, probe ? "probe" : "commit",
211			ret, size);
212		ret = -EIO;
213		goto out;
214	}
215
216	ctrl->bmHint = le16_to_cpup((__le16 *)&data[0]);
217	ctrl->bFormatIndex = data[2];
218	ctrl->bFrameIndex = data[3];
219	ctrl->dwFrameInterval = le32_to_cpup((__le32 *)&data[4]);
220	ctrl->wKeyFrameRate = le16_to_cpup((__le16 *)&data[8]);
221	ctrl->wPFrameRate = le16_to_cpup((__le16 *)&data[10]);
222	ctrl->wCompQuality = le16_to_cpup((__le16 *)&data[12]);
223	ctrl->wCompWindowSize = le16_to_cpup((__le16 *)&data[14]);
224	ctrl->wDelay = le16_to_cpup((__le16 *)&data[16]);
225	ctrl->dwMaxVideoFrameSize = get_unaligned_le32(&data[18]);
226	ctrl->dwMaxPayloadTransferSize = get_unaligned_le32(&data[22]);
227
228	if (size == 34) {
229		ctrl->dwClockFrequency = get_unaligned_le32(&data[26]);
230		ctrl->bmFramingInfo = data[30];
231		ctrl->bPreferedVersion = data[31];
232		ctrl->bMinVersion = data[32];
233		ctrl->bMaxVersion = data[33];
234	} else {
235		ctrl->dwClockFrequency = stream->dev->clock_frequency;
236		ctrl->bmFramingInfo = 0;
237		ctrl->bPreferedVersion = 0;
238		ctrl->bMinVersion = 0;
239		ctrl->bMaxVersion = 0;
240	}
241
242	/* Some broken devices return null or wrong dwMaxVideoFrameSize and
243	 * dwMaxPayloadTransferSize fields. Try to get the value from the
244	 * format and frame descriptors.
245	 */
246	uvc_fixup_video_ctrl(stream, ctrl);
247	ret = 0;
248
249out:
250	kfree(data);
251	return ret;
252}
253
254static int uvc_set_video_ctrl(struct uvc_streaming *stream,
255	struct uvc_streaming_control *ctrl, int probe)
256{
257	__u8 *data;
258	__u16 size;
259	int ret;
260
261	size = stream->dev->uvc_version >= 0x0110 ? 34 : 26;
262	data = kzalloc(size, GFP_KERNEL);
263	if (data == NULL)
264		return -ENOMEM;
265
266	*(__le16 *)&data[0] = cpu_to_le16(ctrl->bmHint);
267	data[2] = ctrl->bFormatIndex;
268	data[3] = ctrl->bFrameIndex;
269	*(__le32 *)&data[4] = cpu_to_le32(ctrl->dwFrameInterval);
270	*(__le16 *)&data[8] = cpu_to_le16(ctrl->wKeyFrameRate);
271	*(__le16 *)&data[10] = cpu_to_le16(ctrl->wPFrameRate);
272	*(__le16 *)&data[12] = cpu_to_le16(ctrl->wCompQuality);
273	*(__le16 *)&data[14] = cpu_to_le16(ctrl->wCompWindowSize);
274	*(__le16 *)&data[16] = cpu_to_le16(ctrl->wDelay);
275	put_unaligned_le32(ctrl->dwMaxVideoFrameSize, &data[18]);
276	put_unaligned_le32(ctrl->dwMaxPayloadTransferSize, &data[22]);
277
278	if (size == 34) {
279		put_unaligned_le32(ctrl->dwClockFrequency, &data[26]);
280		data[30] = ctrl->bmFramingInfo;
281		data[31] = ctrl->bPreferedVersion;
282		data[32] = ctrl->bMinVersion;
283		data[33] = ctrl->bMaxVersion;
284	}
285
286	ret = __uvc_query_ctrl(stream->dev, UVC_SET_CUR, 0, stream->intfnum,
287		probe ? UVC_VS_PROBE_CONTROL : UVC_VS_COMMIT_CONTROL, data,
288		size, uvc_timeout_param);
289	if (ret != size) {
290		uvc_printk(KERN_ERR, "Failed to set UVC %s control : "
291			"%d (exp. %u).\n", probe ? "probe" : "commit",
292			ret, size);
293		ret = -EIO;
294	}
295
296	kfree(data);
297	return ret;
298}
299
300int uvc_probe_video(struct uvc_streaming *stream,
301	struct uvc_streaming_control *probe)
302{
303	struct uvc_streaming_control probe_min, probe_max;
304	__u16 bandwidth;
305	unsigned int i;
306	int ret;
307
308	/* Perform probing. The device should adjust the requested values
309	 * according to its capabilities. However, some devices, namely the
310	 * first generation UVC Logitech webcams, don't implement the Video
311	 * Probe control properly, and just return the needed bandwidth. For
312	 * that reason, if the needed bandwidth exceeds the maximum available
313	 * bandwidth, try to lower the quality.
314	 */
315	ret = uvc_set_video_ctrl(stream, probe, 1);
316	if (ret < 0)
317		goto done;
318
319	/* Get the minimum and maximum values for compression settings. */
320	if (!(stream->dev->quirks & UVC_QUIRK_PROBE_MINMAX)) {
321		ret = uvc_get_video_ctrl(stream, &probe_min, 1, UVC_GET_MIN);
322		if (ret < 0)
323			goto done;
324		ret = uvc_get_video_ctrl(stream, &probe_max, 1, UVC_GET_MAX);
325		if (ret < 0)
326			goto done;
327
328		probe->wCompQuality = probe_max.wCompQuality;
329	}
330
331	for (i = 0; i < 2; ++i) {
332		ret = uvc_set_video_ctrl(stream, probe, 1);
333		if (ret < 0)
334			goto done;
335		ret = uvc_get_video_ctrl(stream, probe, 1, UVC_GET_CUR);
336		if (ret < 0)
337			goto done;
338
339		if (stream->intf->num_altsetting == 1)
340			break;
341
342		bandwidth = probe->dwMaxPayloadTransferSize;
343		if (bandwidth <= stream->maxpsize)
344			break;
345
346		if (stream->dev->quirks & UVC_QUIRK_PROBE_MINMAX) {
347			ret = -ENOSPC;
348			goto done;
349		}
350
351		/* TODO: negotiate compression parameters */
352		probe->wKeyFrameRate = probe_min.wKeyFrameRate;
353		probe->wPFrameRate = probe_min.wPFrameRate;
354		probe->wCompQuality = probe_max.wCompQuality;
355		probe->wCompWindowSize = probe_min.wCompWindowSize;
356	}
357
358done:
359	return ret;
360}
361
362static int uvc_commit_video(struct uvc_streaming *stream,
363			    struct uvc_streaming_control *probe)
364{
365	return uvc_set_video_ctrl(stream, probe, 0);
366}
367
368/* -----------------------------------------------------------------------------
369 * Clocks and timestamps
370 */
371
372static inline void uvc_video_get_ts(struct timespec *ts)
373{
374	if (uvc_clock_param == CLOCK_MONOTONIC)
375		ktime_get_ts(ts);
376	else
377		ktime_get_real_ts(ts);
378}
379
380static void
381uvc_video_clock_decode(struct uvc_streaming *stream, struct uvc_buffer *buf,
382		       const __u8 *data, int len)
383{
384	struct uvc_clock_sample *sample;
385	unsigned int header_size;
386	bool has_pts = false;
387	bool has_scr = false;
388	unsigned long flags;
389	struct timespec ts;
390	u16 host_sof;
391	u16 dev_sof;
392
393	switch (data[1] & (UVC_STREAM_PTS | UVC_STREAM_SCR)) {
394	case UVC_STREAM_PTS | UVC_STREAM_SCR:
395		header_size = 12;
396		has_pts = true;
397		has_scr = true;
398		break;
399	case UVC_STREAM_PTS:
400		header_size = 6;
401		has_pts = true;
402		break;
403	case UVC_STREAM_SCR:
404		header_size = 8;
405		has_scr = true;
406		break;
407	default:
408		header_size = 2;
409		break;
410	}
411
412	/* Check for invalid headers. */
413	if (len < header_size)
414		return;
415
416	/* Extract the timestamps:
417	 *
418	 * - store the frame PTS in the buffer structure
419	 * - if the SCR field is present, retrieve the host SOF counter and
420	 *   kernel timestamps and store them with the SCR STC and SOF fields
421	 *   in the ring buffer
422	 */
423	if (has_pts && buf != NULL)
424		buf->pts = get_unaligned_le32(&data[2]);
425
426	if (!has_scr)
427		return;
428
429	/* To limit the amount of data, drop SCRs with an SOF identical to the
430	 * previous one.
431	 */
432	dev_sof = get_unaligned_le16(&data[header_size - 2]);
433	if (dev_sof == stream->clock.last_sof)
434		return;
435
436	stream->clock.last_sof = dev_sof;
437
438	host_sof = usb_get_current_frame_number(stream->dev->udev);
439	uvc_video_get_ts(&ts);
440
441	/* The UVC specification allows device implementations that can't obtain
442	 * the USB frame number to keep their own frame counters as long as they
443	 * match the size and frequency of the frame number associated with USB
444	 * SOF tokens. The SOF values sent by such devices differ from the USB
445	 * SOF tokens by a fixed offset that needs to be estimated and accounted
446	 * for to make timestamp recovery as accurate as possible.
447	 *
448	 * The offset is estimated the first time a device SOF value is received
449	 * as the difference between the host and device SOF values. As the two
450	 * SOF values can differ slightly due to transmission delays, consider
451	 * that the offset is null if the difference is not higher than 10 ms
452	 * (negative differences can not happen and are thus considered as an
453	 * offset). The video commit control wDelay field should be used to
454	 * compute a dynamic threshold instead of using a fixed 10 ms value, but
455	 * devices don't report reliable wDelay values.
456	 *
457	 * See uvc_video_clock_host_sof() for an explanation regarding why only
458	 * the 8 LSBs of the delta are kept.
459	 */
460	if (stream->clock.sof_offset == (u16)-1) {
461		u16 delta_sof = (host_sof - dev_sof) & 255;
462		if (delta_sof >= 10)
463			stream->clock.sof_offset = delta_sof;
464		else
465			stream->clock.sof_offset = 0;
466	}
467
468	dev_sof = (dev_sof + stream->clock.sof_offset) & 2047;
469
470	spin_lock_irqsave(&stream->clock.lock, flags);
471
472	sample = &stream->clock.samples[stream->clock.head];
473	sample->dev_stc = get_unaligned_le32(&data[header_size - 6]);
474	sample->dev_sof = dev_sof;
475	sample->host_sof = host_sof;
476	sample->host_ts = ts;
477
478	/* Update the sliding window head and count. */
479	stream->clock.head = (stream->clock.head + 1) % stream->clock.size;
480
481	if (stream->clock.count < stream->clock.size)
482		stream->clock.count++;
483
484	spin_unlock_irqrestore(&stream->clock.lock, flags);
485}
486
487static void uvc_video_clock_reset(struct uvc_streaming *stream)
488{
489	struct uvc_clock *clock = &stream->clock;
490
491	clock->head = 0;
492	clock->count = 0;
493	clock->last_sof = -1;
494	clock->sof_offset = -1;
495}
496
497static int uvc_video_clock_init(struct uvc_streaming *stream)
498{
499	struct uvc_clock *clock = &stream->clock;
500
501	spin_lock_init(&clock->lock);
502	clock->size = 32;
503
504	clock->samples = kmalloc(clock->size * sizeof(*clock->samples),
505				 GFP_KERNEL);
506	if (clock->samples == NULL)
507		return -ENOMEM;
508
509	uvc_video_clock_reset(stream);
510
511	return 0;
512}
513
514static void uvc_video_clock_cleanup(struct uvc_streaming *stream)
515{
516	kfree(stream->clock.samples);
517	stream->clock.samples = NULL;
518}
519
520/*
521 * uvc_video_clock_host_sof - Return the host SOF value for a clock sample
522 *
523 * Host SOF counters reported by usb_get_current_frame_number() usually don't
524 * cover the whole 11-bits SOF range (0-2047) but are limited to the HCI frame
525 * schedule window. They can be limited to 8, 9 or 10 bits depending on the host
526 * controller and its configuration.
527 *
528 * We thus need to recover the SOF value corresponding to the host frame number.
529 * As the device and host frame numbers are sampled in a short interval, the
530 * difference between their values should be equal to a small delta plus an
531 * integer multiple of 256 caused by the host frame number limited precision.
532 *
533 * To obtain the recovered host SOF value, compute the small delta by masking
534 * the high bits of the host frame counter and device SOF difference and add it
535 * to the device SOF value.
536 */
537static u16 uvc_video_clock_host_sof(const struct uvc_clock_sample *sample)
538{
539	/* The delta value can be negative. */
540	s8 delta_sof;
541
542	delta_sof = (sample->host_sof - sample->dev_sof) & 255;
543
544	return (sample->dev_sof + delta_sof) & 2047;
545}
546
547/*
548 * uvc_video_clock_update - Update the buffer timestamp
549 *
550 * This function converts the buffer PTS timestamp to the host clock domain by
551 * going through the USB SOF clock domain and stores the result in the V4L2
552 * buffer timestamp field.
553 *
554 * The relationship between the device clock and the host clock isn't known.
555 * However, the device and the host share the common USB SOF clock which can be
556 * used to recover that relationship.
557 *
558 * The relationship between the device clock and the USB SOF clock is considered
559 * to be linear over the clock samples sliding window and is given by
560 *
561 * SOF = m * PTS + p
562 *
563 * Several methods to compute the slope (m) and intercept (p) can be used. As
564 * the clock drift should be small compared to the sliding window size, we
565 * assume that the line that goes through the points at both ends of the window
566 * is a good approximation. Naming those points P1 and P2, we get
567 *
568 * SOF = (SOF2 - SOF1) / (STC2 - STC1) * PTS
569 *     + (SOF1 * STC2 - SOF2 * STC1) / (STC2 - STC1)
570 *
571 * or
572 *
573 * SOF = ((SOF2 - SOF1) * PTS + SOF1 * STC2 - SOF2 * STC1) / (STC2 - STC1)   (1)
574 *
575 * to avoid losing precision in the division. Similarly, the host timestamp is
576 * computed with
577 *
578 * TS = ((TS2 - TS1) * PTS + TS1 * SOF2 - TS2 * SOF1) / (SOF2 - SOF1)	     (2)
579 *
580 * SOF values are coded on 11 bits by USB. We extend their precision with 16
581 * decimal bits, leading to a 11.16 coding.
582 *
583 * TODO: To avoid surprises with device clock values, PTS/STC timestamps should
584 * be normalized using the nominal device clock frequency reported through the
585 * UVC descriptors.
586 *
587 * Both the PTS/STC and SOF counters roll over, after a fixed but device
588 * specific amount of time for PTS/STC and after 2048ms for SOF. As long as the
589 * sliding window size is smaller than the rollover period, differences computed
590 * on unsigned integers will produce the correct result. However, the p term in
591 * the linear relations will be miscomputed.
592 *
593 * To fix the issue, we subtract a constant from the PTS and STC values to bring
594 * PTS to half the 32 bit STC range. The sliding window STC values then fit into
595 * the 32 bit range without any rollover.
596 *
597 * Similarly, we add 2048 to the device SOF values to make sure that the SOF
598 * computed by (1) will never be smaller than 0. This offset is then compensated
599 * by adding 2048 to the SOF values used in (2). However, this doesn't prevent
600 * rollovers between (1) and (2): the SOF value computed by (1) can be slightly
601 * lower than 4096, and the host SOF counters can have rolled over to 2048. This
602 * case is handled by subtracting 2048 from the SOF value if it exceeds the host
603 * SOF value at the end of the sliding window.
604 *
605 * Finally we subtract a constant from the host timestamps to bring the first
606 * timestamp of the sliding window to 1s.
607 */
608void uvc_video_clock_update(struct uvc_streaming *stream,
609			    struct vb2_v4l2_buffer *vbuf,
610			    struct uvc_buffer *buf)
611{
612	struct uvc_clock *clock = &stream->clock;
613	struct uvc_clock_sample *first;
614	struct uvc_clock_sample *last;
615	unsigned long flags;
616	struct timespec ts;
617	u32 delta_stc;
618	u32 y1, y2;
619	u32 x1, x2;
620	u32 mean;
621	u32 sof;
622	u32 div;
623	u32 rem;
624	u64 y;
625
626	if (!uvc_hw_timestamps_param)
627		return;
628
629	spin_lock_irqsave(&clock->lock, flags);
630
631	if (clock->count < clock->size)
632		goto done;
633
634	first = &clock->samples[clock->head];
635	last = &clock->samples[(clock->head - 1) % clock->size];
636
637	/* First step, PTS to SOF conversion. */
638	delta_stc = buf->pts - (1UL << 31);
639	x1 = first->dev_stc - delta_stc;
640	x2 = last->dev_stc - delta_stc;
641	if (x1 == x2)
642		goto done;
643
644	y1 = (first->dev_sof + 2048) << 16;
645	y2 = (last->dev_sof + 2048) << 16;
646	if (y2 < y1)
647		y2 += 2048 << 16;
648
649	y = (u64)(y2 - y1) * (1ULL << 31) + (u64)y1 * (u64)x2
650	  - (u64)y2 * (u64)x1;
651	y = div_u64(y, x2 - x1);
652
653	sof = y;
654
655	uvc_trace(UVC_TRACE_CLOCK, "%s: PTS %u y %llu.%06llu SOF %u.%06llu "
656		  "(x1 %u x2 %u y1 %u y2 %u SOF offset %u)\n",
657		  stream->dev->name, buf->pts,
658		  y >> 16, div_u64((y & 0xffff) * 1000000, 65536),
659		  sof >> 16, div_u64(((u64)sof & 0xffff) * 1000000LLU, 65536),
660		  x1, x2, y1, y2, clock->sof_offset);
661
662	/* Second step, SOF to host clock conversion. */
663	x1 = (uvc_video_clock_host_sof(first) + 2048) << 16;
664	x2 = (uvc_video_clock_host_sof(last) + 2048) << 16;
665	if (x2 < x1)
666		x2 += 2048 << 16;
667	if (x1 == x2)
668		goto done;
669
670	ts = timespec_sub(last->host_ts, first->host_ts);
671	y1 = NSEC_PER_SEC;
672	y2 = (ts.tv_sec + 1) * NSEC_PER_SEC + ts.tv_nsec;
673
674	/* Interpolated and host SOF timestamps can wrap around at slightly
675	 * different times. Handle this by adding or removing 2048 to or from
676	 * the computed SOF value to keep it close to the SOF samples mean
677	 * value.
678	 */
679	mean = (x1 + x2) / 2;
680	if (mean - (1024 << 16) > sof)
681		sof += 2048 << 16;
682	else if (sof > mean + (1024 << 16))
683		sof -= 2048 << 16;
684
685	y = (u64)(y2 - y1) * (u64)sof + (u64)y1 * (u64)x2
686	  - (u64)y2 * (u64)x1;
687	y = div_u64(y, x2 - x1);
688
689	div = div_u64_rem(y, NSEC_PER_SEC, &rem);
690	ts.tv_sec = first->host_ts.tv_sec - 1 + div;
691	ts.tv_nsec = first->host_ts.tv_nsec + rem;
692	if (ts.tv_nsec >= NSEC_PER_SEC) {
693		ts.tv_sec++;
694		ts.tv_nsec -= NSEC_PER_SEC;
695	}
696
697	uvc_trace(UVC_TRACE_CLOCK, "%s: SOF %u.%06llu y %llu ts %lu.%06lu "
698		  "buf ts %lu.%06lu (x1 %u/%u/%u x2 %u/%u/%u y1 %u y2 %u)\n",
699		  stream->dev->name,
700		  sof >> 16, div_u64(((u64)sof & 0xffff) * 1000000LLU, 65536),
701		  y, ts.tv_sec, ts.tv_nsec / NSEC_PER_USEC,
702		  vbuf->timestamp.tv_sec,
703		  (unsigned long)vbuf->timestamp.tv_usec,
704		  x1, first->host_sof, first->dev_sof,
705		  x2, last->host_sof, last->dev_sof, y1, y2);
706
707	/* Update the V4L2 buffer. */
708	vbuf->timestamp.tv_sec = ts.tv_sec;
709	vbuf->timestamp.tv_usec = ts.tv_nsec / NSEC_PER_USEC;
710
711done:
712	spin_unlock_irqrestore(&stream->clock.lock, flags);
713}
714
715/* ------------------------------------------------------------------------
716 * Stream statistics
717 */
718
719static void uvc_video_stats_decode(struct uvc_streaming *stream,
720		const __u8 *data, int len)
721{
722	unsigned int header_size;
723	bool has_pts = false;
724	bool has_scr = false;
725	u16 uninitialized_var(scr_sof);
726	u32 uninitialized_var(scr_stc);
727	u32 uninitialized_var(pts);
728
729	if (stream->stats.stream.nb_frames == 0 &&
730	    stream->stats.frame.nb_packets == 0)
731		ktime_get_ts(&stream->stats.stream.start_ts);
732
733	switch (data[1] & (UVC_STREAM_PTS | UVC_STREAM_SCR)) {
734	case UVC_STREAM_PTS | UVC_STREAM_SCR:
735		header_size = 12;
736		has_pts = true;
737		has_scr = true;
738		break;
739	case UVC_STREAM_PTS:
740		header_size = 6;
741		has_pts = true;
742		break;
743	case UVC_STREAM_SCR:
744		header_size = 8;
745		has_scr = true;
746		break;
747	default:
748		header_size = 2;
749		break;
750	}
751
752	/* Check for invalid headers. */
753	if (len < header_size || data[0] < header_size) {
754		stream->stats.frame.nb_invalid++;
755		return;
756	}
757
758	/* Extract the timestamps. */
759	if (has_pts)
760		pts = get_unaligned_le32(&data[2]);
761
762	if (has_scr) {
763		scr_stc = get_unaligned_le32(&data[header_size - 6]);
764		scr_sof = get_unaligned_le16(&data[header_size - 2]);
765	}
766
767	/* Is PTS constant through the whole frame ? */
768	if (has_pts && stream->stats.frame.nb_pts) {
769		if (stream->stats.frame.pts != pts) {
770			stream->stats.frame.nb_pts_diffs++;
771			stream->stats.frame.last_pts_diff =
772				stream->stats.frame.nb_packets;
773		}
774	}
775
776	if (has_pts) {
777		stream->stats.frame.nb_pts++;
778		stream->stats.frame.pts = pts;
779	}
780
781	/* Do all frames have a PTS in their first non-empty packet, or before
782	 * their first empty packet ?
783	 */
784	if (stream->stats.frame.size == 0) {
785		if (len > header_size)
786			stream->stats.frame.has_initial_pts = has_pts;
787		if (len == header_size && has_pts)
788			stream->stats.frame.has_early_pts = true;
789	}
790
791	/* Do the SCR.STC and SCR.SOF fields vary through the frame ? */
792	if (has_scr && stream->stats.frame.nb_scr) {
793		if (stream->stats.frame.scr_stc != scr_stc)
794			stream->stats.frame.nb_scr_diffs++;
795	}
796
797	if (has_scr) {
798		/* Expand the SOF counter to 32 bits and store its value. */
799		if (stream->stats.stream.nb_frames > 0 ||
800		    stream->stats.frame.nb_scr > 0)
801			stream->stats.stream.scr_sof_count +=
802				(scr_sof - stream->stats.stream.scr_sof) % 2048;
803		stream->stats.stream.scr_sof = scr_sof;
804
805		stream->stats.frame.nb_scr++;
806		stream->stats.frame.scr_stc = scr_stc;
807		stream->stats.frame.scr_sof = scr_sof;
808
809		if (scr_sof < stream->stats.stream.min_sof)
810			stream->stats.stream.min_sof = scr_sof;
811		if (scr_sof > stream->stats.stream.max_sof)
812			stream->stats.stream.max_sof = scr_sof;
813	}
814
815	/* Record the first non-empty packet number. */
816	if (stream->stats.frame.size == 0 && len > header_size)
817		stream->stats.frame.first_data = stream->stats.frame.nb_packets;
818
819	/* Update the frame size. */
820	stream->stats.frame.size += len - header_size;
821
822	/* Update the packets counters. */
823	stream->stats.frame.nb_packets++;
824	if (len > header_size)
825		stream->stats.frame.nb_empty++;
826
827	if (data[1] & UVC_STREAM_ERR)
828		stream->stats.frame.nb_errors++;
829}
830
831static void uvc_video_stats_update(struct uvc_streaming *stream)
832{
833	struct uvc_stats_frame *frame = &stream->stats.frame;
834
835	uvc_trace(UVC_TRACE_STATS, "frame %u stats: %u/%u/%u packets, "
836		  "%u/%u/%u pts (%searly %sinitial), %u/%u scr, "
837		  "last pts/stc/sof %u/%u/%u\n",
838		  stream->sequence, frame->first_data,
839		  frame->nb_packets - frame->nb_empty, frame->nb_packets,
840		  frame->nb_pts_diffs, frame->last_pts_diff, frame->nb_pts,
841		  frame->has_early_pts ? "" : "!",
842		  frame->has_initial_pts ? "" : "!",
843		  frame->nb_scr_diffs, frame->nb_scr,
844		  frame->pts, frame->scr_stc, frame->scr_sof);
845
846	stream->stats.stream.nb_frames++;
847	stream->stats.stream.nb_packets += stream->stats.frame.nb_packets;
848	stream->stats.stream.nb_empty += stream->stats.frame.nb_empty;
849	stream->stats.stream.nb_errors += stream->stats.frame.nb_errors;
850	stream->stats.stream.nb_invalid += stream->stats.frame.nb_invalid;
851
852	if (frame->has_early_pts)
853		stream->stats.stream.nb_pts_early++;
854	if (frame->has_initial_pts)
855		stream->stats.stream.nb_pts_initial++;
856	if (frame->last_pts_diff <= frame->first_data)
857		stream->stats.stream.nb_pts_constant++;
858	if (frame->nb_scr >= frame->nb_packets - frame->nb_empty)
859		stream->stats.stream.nb_scr_count_ok++;
860	if (frame->nb_scr_diffs + 1 == frame->nb_scr)
861		stream->stats.stream.nb_scr_diffs_ok++;
862
863	memset(&stream->stats.frame, 0, sizeof(stream->stats.frame));
864}
865
866size_t uvc_video_stats_dump(struct uvc_streaming *stream, char *buf,
867			    size_t size)
868{
869	unsigned int scr_sof_freq;
870	unsigned int duration;
871	struct timespec ts;
872	size_t count = 0;
873
874	ts.tv_sec = stream->stats.stream.stop_ts.tv_sec
875		  - stream->stats.stream.start_ts.tv_sec;
876	ts.tv_nsec = stream->stats.stream.stop_ts.tv_nsec
877		   - stream->stats.stream.start_ts.tv_nsec;
878	if (ts.tv_nsec < 0) {
879		ts.tv_sec--;
880		ts.tv_nsec += 1000000000;
881	}
882
883	/* Compute the SCR.SOF frequency estimate. At the nominal 1kHz SOF
884	 * frequency this will not overflow before more than 1h.
885	 */
886	duration = ts.tv_sec * 1000 + ts.tv_nsec / 1000000;
887	if (duration != 0)
888		scr_sof_freq = stream->stats.stream.scr_sof_count * 1000
889			     / duration;
890	else
891		scr_sof_freq = 0;
892
893	count += scnprintf(buf + count, size - count,
894			   "frames:  %u\npackets: %u\nempty:   %u\n"
895			   "errors:  %u\ninvalid: %u\n",
896			   stream->stats.stream.nb_frames,
897			   stream->stats.stream.nb_packets,
898			   stream->stats.stream.nb_empty,
899			   stream->stats.stream.nb_errors,
900			   stream->stats.stream.nb_invalid);
901	count += scnprintf(buf + count, size - count,
902			   "pts: %u early, %u initial, %u ok\n",
903			   stream->stats.stream.nb_pts_early,
904			   stream->stats.stream.nb_pts_initial,
905			   stream->stats.stream.nb_pts_constant);
906	count += scnprintf(buf + count, size - count,
907			   "scr: %u count ok, %u diff ok\n",
908			   stream->stats.stream.nb_scr_count_ok,
909			   stream->stats.stream.nb_scr_diffs_ok);
910	count += scnprintf(buf + count, size - count,
911			   "sof: %u <= sof <= %u, freq %u.%03u kHz\n",
912			   stream->stats.stream.min_sof,
913			   stream->stats.stream.max_sof,
914			   scr_sof_freq / 1000, scr_sof_freq % 1000);
915
916	return count;
917}
918
919static void uvc_video_stats_start(struct uvc_streaming *stream)
920{
921	memset(&stream->stats, 0, sizeof(stream->stats));
922	stream->stats.stream.min_sof = 2048;
923}
924
925static void uvc_video_stats_stop(struct uvc_streaming *stream)
926{
927	ktime_get_ts(&stream->stats.stream.stop_ts);
928}
929
930/* ------------------------------------------------------------------------
931 * Video codecs
932 */
933
934/* Video payload decoding is handled by uvc_video_decode_start(),
935 * uvc_video_decode_data() and uvc_video_decode_end().
936 *
937 * uvc_video_decode_start is called with URB data at the start of a bulk or
938 * isochronous payload. It processes header data and returns the header size
939 * in bytes if successful. If an error occurs, it returns a negative error
940 * code. The following error codes have special meanings.
941 *
942 * - EAGAIN informs the caller that the current video buffer should be marked
943 *   as done, and that the function should be called again with the same data
944 *   and a new video buffer. This is used when end of frame conditions can be
945 *   reliably detected at the beginning of the next frame only.
946 *
947 * If an error other than -EAGAIN is returned, the caller will drop the current
948 * payload. No call to uvc_video_decode_data and uvc_video_decode_end will be
949 * made until the next payload. -ENODATA can be used to drop the current
950 * payload if no other error code is appropriate.
951 *
952 * uvc_video_decode_data is called for every URB with URB data. It copies the
953 * data to the video buffer.
954 *
955 * uvc_video_decode_end is called with header data at the end of a bulk or
956 * isochronous payload. It performs any additional header data processing and
957 * returns 0 or a negative error code if an error occurred. As header data have
958 * already been processed by uvc_video_decode_start, this functions isn't
959 * required to perform sanity checks a second time.
960 *
961 * For isochronous transfers where a payload is always transferred in a single
962 * URB, the three functions will be called in a row.
963 *
964 * To let the decoder process header data and update its internal state even
965 * when no video buffer is available, uvc_video_decode_start must be prepared
966 * to be called with a NULL buf parameter. uvc_video_decode_data and
967 * uvc_video_decode_end will never be called with a NULL buffer.
968 */
969static int uvc_video_decode_start(struct uvc_streaming *stream,
970		struct uvc_buffer *buf, const __u8 *data, int len)
971{
972	__u8 fid;
973
974	/* Sanity checks:
975	 * - packet must be at least 2 bytes long
976	 * - bHeaderLength value must be at least 2 bytes (see above)
977	 * - bHeaderLength value can't be larger than the packet size.
978	 */
979	if (len < 2 || data[0] < 2 || data[0] > len) {
980		stream->stats.frame.nb_invalid++;
981		return -EINVAL;
982	}
983
984	fid = data[1] & UVC_STREAM_FID;
985
986	/* Increase the sequence number regardless of any buffer states, so
987	 * that discontinuous sequence numbers always indicate lost frames.
988	 */
989	if (stream->last_fid != fid) {
990		stream->sequence++;
991		if (stream->sequence)
992			uvc_video_stats_update(stream);
993	}
994
995	uvc_video_clock_decode(stream, buf, data, len);
996	uvc_video_stats_decode(stream, data, len);
997
998	/* Store the payload FID bit and return immediately when the buffer is
999	 * NULL.
1000	 */
1001	if (buf == NULL) {
1002		stream->last_fid = fid;
1003		return -ENODATA;
1004	}
1005
1006	/* Mark the buffer as bad if the error bit is set. */
1007	if (data[1] & UVC_STREAM_ERR) {
1008		uvc_trace(UVC_TRACE_FRAME, "Marking buffer as bad (error bit "
1009			  "set).\n");
1010		buf->error = 1;
1011	}
1012
1013	/* Synchronize to the input stream by waiting for the FID bit to be
1014	 * toggled when the the buffer state is not UVC_BUF_STATE_ACTIVE.
1015	 * stream->last_fid is initialized to -1, so the first isochronous
1016	 * frame will always be in sync.
1017	 *
1018	 * If the device doesn't toggle the FID bit, invert stream->last_fid
1019	 * when the EOF bit is set to force synchronisation on the next packet.
1020	 */
1021	if (buf->state != UVC_BUF_STATE_ACTIVE) {
1022		struct timespec ts;
1023
1024		if (fid == stream->last_fid) {
1025			uvc_trace(UVC_TRACE_FRAME, "Dropping payload (out of "
1026				"sync).\n");
1027			if ((stream->dev->quirks & UVC_QUIRK_STREAM_NO_FID) &&
1028			    (data[1] & UVC_STREAM_EOF))
1029				stream->last_fid ^= UVC_STREAM_FID;
1030			return -ENODATA;
1031		}
1032
1033		uvc_video_get_ts(&ts);
1034
1035		buf->buf.field = V4L2_FIELD_NONE;
1036		buf->buf.sequence = stream->sequence;
1037		buf->buf.timestamp.tv_sec = ts.tv_sec;
1038		buf->buf.timestamp.tv_usec =
1039			ts.tv_nsec / NSEC_PER_USEC;
1040
1041		/* TODO: Handle PTS and SCR. */
1042		buf->state = UVC_BUF_STATE_ACTIVE;
1043	}
1044
1045	/* Mark the buffer as done if we're at the beginning of a new frame.
1046	 * End of frame detection is better implemented by checking the EOF
1047	 * bit (FID bit toggling is delayed by one frame compared to the EOF
1048	 * bit), but some devices don't set the bit at end of frame (and the
1049	 * last payload can be lost anyway). We thus must check if the FID has
1050	 * been toggled.
1051	 *
1052	 * stream->last_fid is initialized to -1, so the first isochronous
1053	 * frame will never trigger an end of frame detection.
1054	 *
1055	 * Empty buffers (bytesused == 0) don't trigger end of frame detection
1056	 * as it doesn't make sense to return an empty buffer. This also
1057	 * avoids detecting end of frame conditions at FID toggling if the
1058	 * previous payload had the EOF bit set.
1059	 */
1060	if (fid != stream->last_fid && buf->bytesused != 0) {
1061		uvc_trace(UVC_TRACE_FRAME, "Frame complete (FID bit "
1062				"toggled).\n");
1063		buf->state = UVC_BUF_STATE_READY;
1064		return -EAGAIN;
1065	}
1066
1067	stream->last_fid = fid;
1068
1069	return data[0];
1070}
1071
1072static void uvc_video_decode_data(struct uvc_streaming *stream,
1073		struct uvc_buffer *buf, const __u8 *data, int len)
1074{
1075	unsigned int maxlen, nbytes;
1076	void *mem;
1077
1078	if (len <= 0)
1079		return;
1080
1081	/* Copy the video data to the buffer. */
1082	maxlen = buf->length - buf->bytesused;
1083	mem = buf->mem + buf->bytesused;
1084	nbytes = min((unsigned int)len, maxlen);
1085	memcpy(mem, data, nbytes);
1086	buf->bytesused += nbytes;
1087
1088	/* Complete the current frame if the buffer size was exceeded. */
1089	if (len > maxlen) {
1090		uvc_trace(UVC_TRACE_FRAME, "Frame complete (overflow).\n");
1091		buf->state = UVC_BUF_STATE_READY;
1092	}
1093}
1094
1095static void uvc_video_decode_end(struct uvc_streaming *stream,
1096		struct uvc_buffer *buf, const __u8 *data, int len)
1097{
1098	/* Mark the buffer as done if the EOF marker is set. */
1099	if (data[1] & UVC_STREAM_EOF && buf->bytesused != 0) {
1100		uvc_trace(UVC_TRACE_FRAME, "Frame complete (EOF found).\n");
1101		if (data[0] == len)
1102			uvc_trace(UVC_TRACE_FRAME, "EOF in empty payload.\n");
1103		buf->state = UVC_BUF_STATE_READY;
1104		if (stream->dev->quirks & UVC_QUIRK_STREAM_NO_FID)
1105			stream->last_fid ^= UVC_STREAM_FID;
1106	}
1107}
1108
1109/* Video payload encoding is handled by uvc_video_encode_header() and
1110 * uvc_video_encode_data(). Only bulk transfers are currently supported.
1111 *
1112 * uvc_video_encode_header is called at the start of a payload. It adds header
1113 * data to the transfer buffer and returns the header size. As the only known
1114 * UVC output device transfers a whole frame in a single payload, the EOF bit
1115 * is always set in the header.
1116 *
1117 * uvc_video_encode_data is called for every URB and copies the data from the
1118 * video buffer to the transfer buffer.
1119 */
1120static int uvc_video_encode_header(struct uvc_streaming *stream,
1121		struct uvc_buffer *buf, __u8 *data, int len)
1122{
1123	data[0] = 2;	/* Header length */
1124	data[1] = UVC_STREAM_EOH | UVC_STREAM_EOF
1125		| (stream->last_fid & UVC_STREAM_FID);
1126	return 2;
1127}
1128
1129static int uvc_video_encode_data(struct uvc_streaming *stream,
1130		struct uvc_buffer *buf, __u8 *data, int len)
1131{
1132	struct uvc_video_queue *queue = &stream->queue;
1133	unsigned int nbytes;
1134	void *mem;
1135
1136	/* Copy video data to the URB buffer. */
1137	mem = buf->mem + queue->buf_used;
1138	nbytes = min((unsigned int)len, buf->bytesused - queue->buf_used);
1139	nbytes = min(stream->bulk.max_payload_size - stream->bulk.payload_size,
1140			nbytes);
1141	memcpy(data, mem, nbytes);
1142
1143	queue->buf_used += nbytes;
1144
1145	return nbytes;
1146}
1147
1148/* ------------------------------------------------------------------------
1149 * URB handling
1150 */
1151
1152/*
1153 * Set error flag for incomplete buffer.
1154 */
1155static void uvc_video_validate_buffer(const struct uvc_streaming *stream,
1156				      struct uvc_buffer *buf)
1157{
1158	if (stream->ctrl.dwMaxVideoFrameSize != buf->bytesused &&
1159	    !(stream->cur_format->flags & UVC_FMT_FLAG_COMPRESSED))
1160		buf->error = 1;
1161}
1162
1163/*
1164 * Completion handler for video URBs.
1165 */
1166static void uvc_video_decode_isoc(struct urb *urb, struct uvc_streaming *stream,
1167	struct uvc_buffer *buf)
1168{
1169	u8 *mem;
1170	int ret, i;
1171
1172	for (i = 0; i < urb->number_of_packets; ++i) {
1173		if (urb->iso_frame_desc[i].status < 0) {
1174			uvc_trace(UVC_TRACE_FRAME, "USB isochronous frame "
1175				"lost (%d).\n", urb->iso_frame_desc[i].status);
1176			/* Mark the buffer as faulty. */
1177			if (buf != NULL)
1178				buf->error = 1;
1179			continue;
1180		}
1181
1182		/* Decode the payload header. */
1183		mem = urb->transfer_buffer + urb->iso_frame_desc[i].offset;
1184		do {
1185			ret = uvc_video_decode_start(stream, buf, mem,
1186				urb->iso_frame_desc[i].actual_length);
1187			if (ret == -EAGAIN) {
1188				uvc_video_validate_buffer(stream, buf);
1189				buf = uvc_queue_next_buffer(&stream->queue,
1190							    buf);
1191			}
1192		} while (ret == -EAGAIN);
1193
1194		if (ret < 0)
1195			continue;
1196
1197		/* Decode the payload data. */
1198		uvc_video_decode_data(stream, buf, mem + ret,
1199			urb->iso_frame_desc[i].actual_length - ret);
1200
1201		/* Process the header again. */
1202		uvc_video_decode_end(stream, buf, mem,
1203			urb->iso_frame_desc[i].actual_length);
1204
1205		if (buf->state == UVC_BUF_STATE_READY) {
1206			uvc_video_validate_buffer(stream, buf);
1207			buf = uvc_queue_next_buffer(&stream->queue, buf);
1208		}
1209	}
1210}
1211
1212static void uvc_video_decode_bulk(struct urb *urb, struct uvc_streaming *stream,
1213	struct uvc_buffer *buf)
1214{
1215	u8 *mem;
1216	int len, ret;
1217
1218	/*
1219	 * Ignore ZLPs if they're not part of a frame, otherwise process them
1220	 * to trigger the end of payload detection.
1221	 */
1222	if (urb->actual_length == 0 && stream->bulk.header_size == 0)
1223		return;
1224
1225	mem = urb->transfer_buffer;
1226	len = urb->actual_length;
1227	stream->bulk.payload_size += len;
1228
1229	/* If the URB is the first of its payload, decode and save the
1230	 * header.
1231	 */
1232	if (stream->bulk.header_size == 0 && !stream->bulk.skip_payload) {
1233		do {
1234			ret = uvc_video_decode_start(stream, buf, mem, len);
1235			if (ret == -EAGAIN)
1236				buf = uvc_queue_next_buffer(&stream->queue,
1237							    buf);
1238		} while (ret == -EAGAIN);
1239
1240		/* If an error occurred skip the rest of the payload. */
1241		if (ret < 0 || buf == NULL) {
1242			stream->bulk.skip_payload = 1;
1243		} else {
1244			memcpy(stream->bulk.header, mem, ret);
1245			stream->bulk.header_size = ret;
1246
1247			mem += ret;
1248			len -= ret;
1249		}
1250	}
1251
1252	/* The buffer queue might have been cancelled while a bulk transfer
1253	 * was in progress, so we can reach here with buf equal to NULL. Make
1254	 * sure buf is never dereferenced if NULL.
1255	 */
1256
1257	/* Process video data. */
1258	if (!stream->bulk.skip_payload && buf != NULL)
1259		uvc_video_decode_data(stream, buf, mem, len);
1260
1261	/* Detect the payload end by a URB smaller than the maximum size (or
1262	 * a payload size equal to the maximum) and process the header again.
1263	 */
1264	if (urb->actual_length < urb->transfer_buffer_length ||
1265	    stream->bulk.payload_size >= stream->bulk.max_payload_size) {
1266		if (!stream->bulk.skip_payload && buf != NULL) {
1267			uvc_video_decode_end(stream, buf, stream->bulk.header,
1268				stream->bulk.payload_size);
1269			if (buf->state == UVC_BUF_STATE_READY)
1270				buf = uvc_queue_next_buffer(&stream->queue,
1271							    buf);
1272		}
1273
1274		stream->bulk.header_size = 0;
1275		stream->bulk.skip_payload = 0;
1276		stream->bulk.payload_size = 0;
1277	}
1278}
1279
1280static void uvc_video_encode_bulk(struct urb *urb, struct uvc_streaming *stream,
1281	struct uvc_buffer *buf)
1282{
1283	u8 *mem = urb->transfer_buffer;
1284	int len = stream->urb_size, ret;
1285
1286	if (buf == NULL) {
1287		urb->transfer_buffer_length = 0;
1288		return;
1289	}
1290
1291	/* If the URB is the first of its payload, add the header. */
1292	if (stream->bulk.header_size == 0) {
1293		ret = uvc_video_encode_header(stream, buf, mem, len);
1294		stream->bulk.header_size = ret;
1295		stream->bulk.payload_size += ret;
1296		mem += ret;
1297		len -= ret;
1298	}
1299
1300	/* Process video data. */
1301	ret = uvc_video_encode_data(stream, buf, mem, len);
1302
1303	stream->bulk.payload_size += ret;
1304	len -= ret;
1305
1306	if (buf->bytesused == stream->queue.buf_used ||
1307	    stream->bulk.payload_size == stream->bulk.max_payload_size) {
1308		if (buf->bytesused == stream->queue.buf_used) {
1309			stream->queue.buf_used = 0;
1310			buf->state = UVC_BUF_STATE_READY;
1311			buf->buf.sequence = ++stream->sequence;
1312			uvc_queue_next_buffer(&stream->queue, buf);
1313			stream->last_fid ^= UVC_STREAM_FID;
1314		}
1315
1316		stream->bulk.header_size = 0;
1317		stream->bulk.payload_size = 0;
1318	}
1319
1320	urb->transfer_buffer_length = stream->urb_size - len;
1321}
1322
1323static void uvc_video_complete(struct urb *urb)
1324{
1325	struct uvc_streaming *stream = urb->context;
1326	struct uvc_video_queue *queue = &stream->queue;
1327	struct uvc_buffer *buf = NULL;
1328	unsigned long flags;
1329	int ret;
1330
1331	switch (urb->status) {
1332	case 0:
1333		break;
1334
1335	default:
1336		uvc_printk(KERN_WARNING, "Non-zero status (%d) in video "
1337			"completion handler.\n", urb->status);
1338
1339	case -ENOENT:		/* usb_kill_urb() called. */
1340		if (stream->frozen)
1341			return;
1342
1343	case -ECONNRESET:	/* usb_unlink_urb() called. */
1344	case -ESHUTDOWN:	/* The endpoint is being disabled. */
1345		uvc_queue_cancel(queue, urb->status == -ESHUTDOWN);
1346		return;
1347	}
1348
1349	spin_lock_irqsave(&queue->irqlock, flags);
1350	if (!list_empty(&queue->irqqueue))
1351		buf = list_first_entry(&queue->irqqueue, struct uvc_buffer,
1352				       queue);
1353	spin_unlock_irqrestore(&queue->irqlock, flags);
1354
1355	stream->decode(urb, stream, buf);
1356
1357	if ((ret = usb_submit_urb(urb, GFP_ATOMIC)) < 0) {
1358		uvc_printk(KERN_ERR, "Failed to resubmit video URB (%d).\n",
1359			ret);
1360	}
1361}
1362
1363/*
1364 * Free transfer buffers.
1365 */
1366static void uvc_free_urb_buffers(struct uvc_streaming *stream)
1367{
1368	unsigned int i;
1369
1370	for (i = 0; i < UVC_URBS; ++i) {
1371		if (stream->urb_buffer[i]) {
1372#ifndef CONFIG_DMA_NONCOHERENT
1373			usb_free_coherent(stream->dev->udev, stream->urb_size,
1374				stream->urb_buffer[i], stream->urb_dma[i]);
1375#else
1376			kfree(stream->urb_buffer[i]);
1377#endif
1378			stream->urb_buffer[i] = NULL;
1379		}
1380	}
1381
1382	stream->urb_size = 0;
1383}
1384
1385/*
1386 * Allocate transfer buffers. This function can be called with buffers
1387 * already allocated when resuming from suspend, in which case it will
1388 * return without touching the buffers.
1389 *
1390 * Limit the buffer size to UVC_MAX_PACKETS bulk/isochronous packets. If the
1391 * system is too low on memory try successively smaller numbers of packets
1392 * until allocation succeeds.
1393 *
1394 * Return the number of allocated packets on success or 0 when out of memory.
1395 */
1396static int uvc_alloc_urb_buffers(struct uvc_streaming *stream,
1397	unsigned int size, unsigned int psize, gfp_t gfp_flags)
1398{
1399	unsigned int npackets;
1400	unsigned int i;
1401
1402	/* Buffers are already allocated, bail out. */
1403	if (stream->urb_size)
1404		return stream->urb_size / psize;
1405
1406	/* Compute the number of packets. Bulk endpoints might transfer UVC
1407	 * payloads across multiple URBs.
1408	 */
1409	npackets = DIV_ROUND_UP(size, psize);
1410	if (npackets > UVC_MAX_PACKETS)
1411		npackets = UVC_MAX_PACKETS;
1412
1413	/* Retry allocations until one succeed. */
1414	for (; npackets > 1; npackets /= 2) {
1415		for (i = 0; i < UVC_URBS; ++i) {
1416			stream->urb_size = psize * npackets;
1417#ifndef CONFIG_DMA_NONCOHERENT
1418			stream->urb_buffer[i] = usb_alloc_coherent(
1419				stream->dev->udev, stream->urb_size,
1420				gfp_flags | __GFP_NOWARN, &stream->urb_dma[i]);
1421#else
1422			stream->urb_buffer[i] =
1423			    kmalloc(stream->urb_size, gfp_flags | __GFP_NOWARN);
1424#endif
1425			if (!stream->urb_buffer[i]) {
1426				uvc_free_urb_buffers(stream);
1427				break;
1428			}
1429		}
1430
1431		if (i == UVC_URBS) {
1432			uvc_trace(UVC_TRACE_VIDEO, "Allocated %u URB buffers "
1433				"of %ux%u bytes each.\n", UVC_URBS, npackets,
1434				psize);
1435			return npackets;
1436		}
1437	}
1438
1439	uvc_trace(UVC_TRACE_VIDEO, "Failed to allocate URB buffers (%u bytes "
1440		"per packet).\n", psize);
1441	return 0;
1442}
1443
1444/*
1445 * Uninitialize isochronous/bulk URBs and free transfer buffers.
1446 */
1447static void uvc_uninit_video(struct uvc_streaming *stream, int free_buffers)
1448{
1449	struct urb *urb;
1450	unsigned int i;
1451
1452	uvc_video_stats_stop(stream);
1453
1454	for (i = 0; i < UVC_URBS; ++i) {
1455		urb = stream->urb[i];
1456		if (urb == NULL)
1457			continue;
1458
1459		usb_kill_urb(urb);
1460		usb_free_urb(urb);
1461		stream->urb[i] = NULL;
1462	}
1463
1464	if (free_buffers)
1465		uvc_free_urb_buffers(stream);
1466}
1467
1468/*
1469 * Compute the maximum number of bytes per interval for an endpoint.
1470 */
1471static unsigned int uvc_endpoint_max_bpi(struct usb_device *dev,
1472					 struct usb_host_endpoint *ep)
1473{
1474	u16 psize;
1475
1476	switch (dev->speed) {
1477	case USB_SPEED_SUPER:
1478		return le16_to_cpu(ep->ss_ep_comp.wBytesPerInterval);
1479	case USB_SPEED_HIGH:
1480		psize = usb_endpoint_maxp(&ep->desc);
1481		return (psize & 0x07ff) * (1 + ((psize >> 11) & 3));
1482	case USB_SPEED_WIRELESS:
1483		psize = usb_endpoint_maxp(&ep->desc);
1484		return psize;
1485	default:
1486		psize = usb_endpoint_maxp(&ep->desc);
1487		return psize & 0x07ff;
1488	}
1489}
1490
1491/*
1492 * Initialize isochronous URBs and allocate transfer buffers. The packet size
1493 * is given by the endpoint.
1494 */
1495static int uvc_init_video_isoc(struct uvc_streaming *stream,
1496	struct usb_host_endpoint *ep, gfp_t gfp_flags)
1497{
1498	struct urb *urb;
1499	unsigned int npackets, i, j;
1500	u16 psize;
1501	u32 size;
1502
1503	psize = uvc_endpoint_max_bpi(stream->dev->udev, ep);
1504	size = stream->ctrl.dwMaxVideoFrameSize;
1505
1506	npackets = uvc_alloc_urb_buffers(stream, size, psize, gfp_flags);
1507	if (npackets == 0)
1508		return -ENOMEM;
1509
1510	size = npackets * psize;
1511
1512	for (i = 0; i < UVC_URBS; ++i) {
1513		urb = usb_alloc_urb(npackets, gfp_flags);
1514		if (urb == NULL) {
1515			uvc_uninit_video(stream, 1);
1516			return -ENOMEM;
1517		}
1518
1519		urb->dev = stream->dev->udev;
1520		urb->context = stream;
1521		urb->pipe = usb_rcvisocpipe(stream->dev->udev,
1522				ep->desc.bEndpointAddress);
1523#ifndef CONFIG_DMA_NONCOHERENT
1524		urb->transfer_flags = URB_ISO_ASAP | URB_NO_TRANSFER_DMA_MAP;
1525		urb->transfer_dma = stream->urb_dma[i];
1526#else
1527		urb->transfer_flags = URB_ISO_ASAP;
1528#endif
1529		urb->interval = ep->desc.bInterval;
1530		urb->transfer_buffer = stream->urb_buffer[i];
1531		urb->complete = uvc_video_complete;
1532		urb->number_of_packets = npackets;
1533		urb->transfer_buffer_length = size;
1534
1535		for (j = 0; j < npackets; ++j) {
1536			urb->iso_frame_desc[j].offset = j * psize;
1537			urb->iso_frame_desc[j].length = psize;
1538		}
1539
1540		stream->urb[i] = urb;
1541	}
1542
1543	return 0;
1544}
1545
1546/*
1547 * Initialize bulk URBs and allocate transfer buffers. The packet size is
1548 * given by the endpoint.
1549 */
1550static int uvc_init_video_bulk(struct uvc_streaming *stream,
1551	struct usb_host_endpoint *ep, gfp_t gfp_flags)
1552{
1553	struct urb *urb;
1554	unsigned int npackets, pipe, i;
1555	u16 psize;
1556	u32 size;
1557
1558	psize = usb_endpoint_maxp(&ep->desc) & 0x7ff;
1559	size = stream->ctrl.dwMaxPayloadTransferSize;
1560	stream->bulk.max_payload_size = size;
1561
1562	npackets = uvc_alloc_urb_buffers(stream, size, psize, gfp_flags);
1563	if (npackets == 0)
1564		return -ENOMEM;
1565
1566	size = npackets * psize;
1567
1568	if (usb_endpoint_dir_in(&ep->desc))
1569		pipe = usb_rcvbulkpipe(stream->dev->udev,
1570				       ep->desc.bEndpointAddress);
1571	else
1572		pipe = usb_sndbulkpipe(stream->dev->udev,
1573				       ep->desc.bEndpointAddress);
1574
1575	if (stream->type == V4L2_BUF_TYPE_VIDEO_OUTPUT)
1576		size = 0;
1577
1578	for (i = 0; i < UVC_URBS; ++i) {
1579		urb = usb_alloc_urb(0, gfp_flags);
1580		if (urb == NULL) {
1581			uvc_uninit_video(stream, 1);
1582			return -ENOMEM;
1583		}
1584
1585		usb_fill_bulk_urb(urb, stream->dev->udev, pipe,
1586			stream->urb_buffer[i], size, uvc_video_complete,
1587			stream);
1588#ifndef CONFIG_DMA_NONCOHERENT
1589		urb->transfer_flags = URB_NO_TRANSFER_DMA_MAP;
1590		urb->transfer_dma = stream->urb_dma[i];
1591#endif
1592
1593		stream->urb[i] = urb;
1594	}
1595
1596	return 0;
1597}
1598
1599/*
1600 * Initialize isochronous/bulk URBs and allocate transfer buffers.
1601 */
1602static int uvc_init_video(struct uvc_streaming *stream, gfp_t gfp_flags)
1603{
1604	struct usb_interface *intf = stream->intf;
1605	struct usb_host_endpoint *ep;
1606	unsigned int i;
1607	int ret;
1608
1609	stream->sequence = -1;
1610	stream->last_fid = -1;
1611	stream->bulk.header_size = 0;
1612	stream->bulk.skip_payload = 0;
1613	stream->bulk.payload_size = 0;
1614
1615	uvc_video_stats_start(stream);
1616
1617	if (intf->num_altsetting > 1) {
1618		struct usb_host_endpoint *best_ep = NULL;
1619		unsigned int best_psize = UINT_MAX;
1620		unsigned int bandwidth;
1621		unsigned int uninitialized_var(altsetting);
1622		int intfnum = stream->intfnum;
1623
1624		/* Isochronous endpoint, select the alternate setting. */
1625		bandwidth = stream->ctrl.dwMaxPayloadTransferSize;
1626
1627		if (bandwidth == 0) {
1628			uvc_trace(UVC_TRACE_VIDEO, "Device requested null "
1629				"bandwidth, defaulting to lowest.\n");
1630			bandwidth = 1;
1631		} else {
1632			uvc_trace(UVC_TRACE_VIDEO, "Device requested %u "
1633				"B/frame bandwidth.\n", bandwidth);
1634		}
1635
1636		for (i = 0; i < intf->num_altsetting; ++i) {
1637			struct usb_host_interface *alts;
1638			unsigned int psize;
1639
1640			alts = &intf->altsetting[i];
1641			ep = uvc_find_endpoint(alts,
1642				stream->header.bEndpointAddress);
1643			if (ep == NULL)
1644				continue;
1645
1646			/* Check if the bandwidth is high enough. */
1647			psize = uvc_endpoint_max_bpi(stream->dev->udev, ep);
1648			if (psize >= bandwidth && psize <= best_psize) {
1649				altsetting = alts->desc.bAlternateSetting;
1650				best_psize = psize;
1651				best_ep = ep;
1652			}
1653		}
1654
1655		if (best_ep == NULL) {
1656			uvc_trace(UVC_TRACE_VIDEO, "No fast enough alt setting "
1657				"for requested bandwidth.\n");
1658			return -EIO;
1659		}
1660
1661		uvc_trace(UVC_TRACE_VIDEO, "Selecting alternate setting %u "
1662			"(%u B/frame bandwidth).\n", altsetting, best_psize);
1663
1664		ret = usb_set_interface(stream->dev->udev, intfnum, altsetting);
1665		if (ret < 0)
1666			return ret;
1667
1668		ret = uvc_init_video_isoc(stream, best_ep, gfp_flags);
1669	} else {
1670		/* Bulk endpoint, proceed to URB initialization. */
1671		ep = uvc_find_endpoint(&intf->altsetting[0],
1672				stream->header.bEndpointAddress);
1673		if (ep == NULL)
1674			return -EIO;
1675
1676		ret = uvc_init_video_bulk(stream, ep, gfp_flags);
1677	}
1678
1679	if (ret < 0)
1680		return ret;
1681
1682	/* Submit the URBs. */
1683	for (i = 0; i < UVC_URBS; ++i) {
1684		ret = usb_submit_urb(stream->urb[i], gfp_flags);
1685		if (ret < 0) {
1686			uvc_printk(KERN_ERR, "Failed to submit URB %u "
1687					"(%d).\n", i, ret);
1688			uvc_uninit_video(stream, 1);
1689			return ret;
1690		}
1691	}
1692
1693	/* The Logitech C920 temporarily forgets that it should not be adjusting
1694	 * Exposure Absolute during init so restore controls to stored values.
1695	 */
1696	if (stream->dev->quirks & UVC_QUIRK_RESTORE_CTRLS_ON_INIT)
1697		uvc_ctrl_restore_values(stream->dev);
1698
1699	return 0;
1700}
1701
1702/* --------------------------------------------------------------------------
1703 * Suspend/resume
1704 */
1705
1706/*
1707 * Stop streaming without disabling the video queue.
1708 *
1709 * To let userspace applications resume without trouble, we must not touch the
1710 * video buffers in any way. We mark the device as frozen to make sure the URB
1711 * completion handler won't try to cancel the queue when we kill the URBs.
1712 */
1713int uvc_video_suspend(struct uvc_streaming *stream)
1714{
1715	if (!uvc_queue_streaming(&stream->queue))
1716		return 0;
1717
1718	stream->frozen = 1;
1719	uvc_uninit_video(stream, 0);
1720	usb_set_interface(stream->dev->udev, stream->intfnum, 0);
1721	return 0;
1722}
1723
1724/*
1725 * Reconfigure the video interface and restart streaming if it was enabled
1726 * before suspend.
1727 *
1728 * If an error occurs, disable the video queue. This will wake all pending
1729 * buffers, making sure userspace applications are notified of the problem
1730 * instead of waiting forever.
1731 */
1732int uvc_video_resume(struct uvc_streaming *stream, int reset)
1733{
1734	int ret;
1735
1736	/* If the bus has been reset on resume, set the alternate setting to 0.
1737	 * This should be the default value, but some devices crash or otherwise
1738	 * misbehave if they don't receive a SET_INTERFACE request before any
1739	 * other video control request.
1740	 */
1741	if (reset)
1742		usb_set_interface(stream->dev->udev, stream->intfnum, 0);
1743
1744	stream->frozen = 0;
1745
1746	uvc_video_clock_reset(stream);
1747
1748	if (!uvc_queue_streaming(&stream->queue))
1749		return 0;
1750
1751	ret = uvc_commit_video(stream, &stream->ctrl);
1752	if (ret < 0)
1753		return ret;
1754
1755	return uvc_init_video(stream, GFP_NOIO);
1756}
1757
1758/* ------------------------------------------------------------------------
1759 * Video device
1760 */
1761
1762/*
1763 * Initialize the UVC video device by switching to alternate setting 0 and
1764 * retrieve the default format.
1765 *
1766 * Some cameras (namely the Fuji Finepix) set the format and frame
1767 * indexes to zero. The UVC standard doesn't clearly make this a spec
1768 * violation, so try to silently fix the values if possible.
1769 *
1770 * This function is called before registering the device with V4L.
1771 */
1772int uvc_video_init(struct uvc_streaming *stream)
1773{
1774	struct uvc_streaming_control *probe = &stream->ctrl;
1775	struct uvc_format *format = NULL;
1776	struct uvc_frame *frame = NULL;
1777	unsigned int i;
1778	int ret;
1779
1780	if (stream->nformats == 0) {
1781		uvc_printk(KERN_INFO, "No supported video formats found.\n");
1782		return -EINVAL;
1783	}
1784
1785	atomic_set(&stream->active, 0);
1786
1787	/* Alternate setting 0 should be the default, yet the XBox Live Vision
1788	 * Cam (and possibly other devices) crash or otherwise misbehave if
1789	 * they don't receive a SET_INTERFACE request before any other video
1790	 * control request.
1791	 */
1792	usb_set_interface(stream->dev->udev, stream->intfnum, 0);
1793
1794	/* Set the streaming probe control with default streaming parameters
1795	 * retrieved from the device. Webcams that don't suport GET_DEF
1796	 * requests on the probe control will just keep their current streaming
1797	 * parameters.
1798	 */
1799	if (uvc_get_video_ctrl(stream, probe, 1, UVC_GET_DEF) == 0)
1800		uvc_set_video_ctrl(stream, probe, 1);
1801
1802	/* Initialize the streaming parameters with the probe control current
1803	 * value. This makes sure SET_CUR requests on the streaming commit
1804	 * control will always use values retrieved from a successful GET_CUR
1805	 * request on the probe control, as required by the UVC specification.
1806	 */
1807	ret = uvc_get_video_ctrl(stream, probe, 1, UVC_GET_CUR);
1808	if (ret < 0)
1809		return ret;
1810
1811	/* Check if the default format descriptor exists. Use the first
1812	 * available format otherwise.
1813	 */
1814	for (i = stream->nformats; i > 0; --i) {
1815		format = &stream->format[i-1];
1816		if (format->index == probe->bFormatIndex)
1817			break;
1818	}
1819
1820	if (format->nframes == 0) {
1821		uvc_printk(KERN_INFO, "No frame descriptor found for the "
1822			"default format.\n");
1823		return -EINVAL;
1824	}
1825
1826	/* Zero bFrameIndex might be correct. Stream-based formats (including
1827	 * MPEG-2 TS and DV) do not support frames but have a dummy frame
1828	 * descriptor with bFrameIndex set to zero. If the default frame
1829	 * descriptor is not found, use the first available frame.
1830	 */
1831	for (i = format->nframes; i > 0; --i) {
1832		frame = &format->frame[i-1];
1833		if (frame->bFrameIndex == probe->bFrameIndex)
1834			break;
1835	}
1836
1837	probe->bFormatIndex = format->index;
1838	probe->bFrameIndex = frame->bFrameIndex;
1839
1840	stream->def_format = format;
1841	stream->cur_format = format;
1842	stream->cur_frame = frame;
1843
1844	/* Select the video decoding function */
1845	if (stream->type == V4L2_BUF_TYPE_VIDEO_CAPTURE) {
1846		if (stream->dev->quirks & UVC_QUIRK_BUILTIN_ISIGHT)
1847			stream->decode = uvc_video_decode_isight;
1848		else if (stream->intf->num_altsetting > 1)
1849			stream->decode = uvc_video_decode_isoc;
1850		else
1851			stream->decode = uvc_video_decode_bulk;
1852	} else {
1853		if (stream->intf->num_altsetting == 1)
1854			stream->decode = uvc_video_encode_bulk;
1855		else {
1856			uvc_printk(KERN_INFO, "Isochronous endpoints are not "
1857				"supported for video output devices.\n");
1858			return -EINVAL;
1859		}
1860	}
1861
1862	return 0;
1863}
1864
1865/*
1866 * Enable or disable the video stream.
1867 */
1868int uvc_video_enable(struct uvc_streaming *stream, int enable)
1869{
1870	int ret;
1871
1872	if (!enable) {
1873		uvc_uninit_video(stream, 1);
1874		if (stream->intf->num_altsetting > 1) {
1875			usb_set_interface(stream->dev->udev,
1876					  stream->intfnum, 0);
1877		} else {
1878			/* UVC doesn't specify how to inform a bulk-based device
1879			 * when the video stream is stopped. Windows sends a
1880			 * CLEAR_FEATURE(HALT) request to the video streaming
1881			 * bulk endpoint, mimic the same behaviour.
1882			 */
1883			unsigned int epnum = stream->header.bEndpointAddress
1884					   & USB_ENDPOINT_NUMBER_MASK;
1885			unsigned int dir = stream->header.bEndpointAddress
1886					 & USB_ENDPOINT_DIR_MASK;
1887			unsigned int pipe;
1888
1889			pipe = usb_sndbulkpipe(stream->dev->udev, epnum) | dir;
1890			usb_clear_halt(stream->dev->udev, pipe);
1891		}
1892
1893		uvc_video_clock_cleanup(stream);
1894		return 0;
1895	}
1896
1897	ret = uvc_video_clock_init(stream);
1898	if (ret < 0)
1899		return ret;
1900
1901	/* Commit the streaming parameters. */
1902	ret = uvc_commit_video(stream, &stream->ctrl);
1903	if (ret < 0)
1904		goto error_commit;
1905
1906	ret = uvc_init_video(stream, GFP_KERNEL);
1907	if (ret < 0)
1908		goto error_video;
1909
1910	return 0;
1911
1912error_video:
1913	usb_set_interface(stream->dev->udev, stream->intfnum, 0);
1914error_commit:
1915	uvc_video_clock_cleanup(stream);
1916
1917	return ret;
1918}
1919