xref: /openbmc/linux/drivers/media/usb/uvc/uvc_video.c (revision fd5e9fccbd504c5179ab57ff695c610bca8809d6)
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  *      uvc_video.c  --  USB Video Class driver - Video handling
4  *
5  *      Copyright (C) 2005-2010
6  *          Laurent Pinchart (laurent.pinchart@ideasonboard.com)
7  */
8 
9 #include <linux/dma-mapping.h>
10 #include <linux/highmem.h>
11 #include <linux/kernel.h>
12 #include <linux/list.h>
13 #include <linux/module.h>
14 #include <linux/slab.h>
15 #include <linux/usb.h>
16 #include <linux/usb/hcd.h>
17 #include <linux/videodev2.h>
18 #include <linux/vmalloc.h>
19 #include <linux/wait.h>
20 #include <linux/atomic.h>
21 #include <asm/unaligned.h>
22 
23 #include <media/jpeg.h>
24 #include <media/v4l2-common.h>
25 
26 #include "uvcvideo.h"
27 
28 /* ------------------------------------------------------------------------
29  * UVC Controls
30  */
31 
__uvc_query_ctrl(struct uvc_device * dev,u8 query,u8 unit,u8 intfnum,u8 cs,void * data,u16 size,int timeout)32 static int __uvc_query_ctrl(struct uvc_device *dev, u8 query, u8 unit,
33 			u8 intfnum, u8 cs, void *data, u16 size,
34 			int timeout)
35 {
36 	u8 type = USB_TYPE_CLASS | USB_RECIP_INTERFACE;
37 	unsigned int pipe;
38 
39 	pipe = (query & 0x80) ? usb_rcvctrlpipe(dev->udev, 0)
40 			      : usb_sndctrlpipe(dev->udev, 0);
41 	type |= (query & 0x80) ? USB_DIR_IN : USB_DIR_OUT;
42 
43 	return usb_control_msg(dev->udev, pipe, query, type, cs << 8,
44 			unit << 8 | intfnum, data, size, timeout);
45 }
46 
uvc_query_name(u8 query)47 static const char *uvc_query_name(u8 query)
48 {
49 	switch (query) {
50 	case UVC_SET_CUR:
51 		return "SET_CUR";
52 	case UVC_GET_CUR:
53 		return "GET_CUR";
54 	case UVC_GET_MIN:
55 		return "GET_MIN";
56 	case UVC_GET_MAX:
57 		return "GET_MAX";
58 	case UVC_GET_RES:
59 		return "GET_RES";
60 	case UVC_GET_LEN:
61 		return "GET_LEN";
62 	case UVC_GET_INFO:
63 		return "GET_INFO";
64 	case UVC_GET_DEF:
65 		return "GET_DEF";
66 	default:
67 		return "<invalid>";
68 	}
69 }
70 
uvc_query_ctrl(struct uvc_device * dev,u8 query,u8 unit,u8 intfnum,u8 cs,void * data,u16 size)71 int uvc_query_ctrl(struct uvc_device *dev, u8 query, u8 unit,
72 			u8 intfnum, u8 cs, void *data, u16 size)
73 {
74 	int ret;
75 	u8 error;
76 	u8 tmp;
77 
78 	ret = __uvc_query_ctrl(dev, query, unit, intfnum, cs, data, size,
79 				UVC_CTRL_CONTROL_TIMEOUT);
80 	if (likely(ret == size))
81 		return 0;
82 
83 	/*
84 	 * Some devices return shorter USB control packets than expected if the
85 	 * returned value can fit in less bytes. Zero all the bytes that the
86 	 * device has not written.
87 	 *
88 	 * This quirk is applied to all controls, regardless of their data type.
89 	 * Most controls are little-endian integers, in which case the missing
90 	 * bytes become 0 MSBs. For other data types, a different heuristic
91 	 * could be implemented if a device is found needing it.
92 	 *
93 	 * We exclude UVC_GET_INFO from the quirk. UVC_GET_LEN does not need
94 	 * to be excluded because its size is always 1.
95 	 */
96 	if (ret > 0 && query != UVC_GET_INFO) {
97 		memset(data + ret, 0, size - ret);
98 		dev_warn_once(&dev->udev->dev,
99 			      "UVC non compliance: %s control %u on unit %u returned %d bytes when we expected %u.\n",
100 			      uvc_query_name(query), cs, unit, ret, size);
101 		return 0;
102 	}
103 
104 	if (ret != -EPIPE) {
105 		dev_err(&dev->udev->dev,
106 			"Failed to query (%s) UVC control %u on unit %u: %d (exp. %u).\n",
107 			uvc_query_name(query), cs, unit, ret, size);
108 		return ret < 0 ? ret : -EPIPE;
109 	}
110 
111 	/* Reuse data[0] to request the error code. */
112 	tmp = *(u8 *)data;
113 
114 	ret = __uvc_query_ctrl(dev, UVC_GET_CUR, 0, intfnum,
115 			       UVC_VC_REQUEST_ERROR_CODE_CONTROL, data, 1,
116 			       UVC_CTRL_CONTROL_TIMEOUT);
117 
118 	error = *(u8 *)data;
119 	*(u8 *)data = tmp;
120 
121 	if (ret != 1)
122 		return ret < 0 ? ret : -EPIPE;
123 
124 	uvc_dbg(dev, CONTROL, "Control error %u\n", error);
125 
126 	switch (error) {
127 	case 0:
128 		/* Cannot happen - we received a STALL */
129 		return -EPIPE;
130 	case 1: /* Not ready */
131 		return -EBUSY;
132 	case 2: /* Wrong state */
133 		return -EACCES;
134 	case 3: /* Power */
135 		return -EREMOTE;
136 	case 4: /* Out of range */
137 		return -ERANGE;
138 	case 5: /* Invalid unit */
139 	case 6: /* Invalid control */
140 	case 7: /* Invalid Request */
141 		/*
142 		 * The firmware has not properly implemented
143 		 * the control or there has been a HW error.
144 		 */
145 		return -EIO;
146 	case 8: /* Invalid value within range */
147 		return -EINVAL;
148 	default: /* reserved or unknown */
149 		break;
150 	}
151 
152 	return -EPIPE;
153 }
154 
155 static const struct usb_device_id elgato_cam_link_4k = {
156 	USB_DEVICE(0x0fd9, 0x0066)
157 };
158 
uvc_fixup_video_ctrl(struct uvc_streaming * stream,struct uvc_streaming_control * ctrl)159 static void uvc_fixup_video_ctrl(struct uvc_streaming *stream,
160 	struct uvc_streaming_control *ctrl)
161 {
162 	const struct uvc_format *format = NULL;
163 	const struct uvc_frame *frame = NULL;
164 	unsigned int i;
165 
166 	/*
167 	 * The response of the Elgato Cam Link 4K is incorrect: The second byte
168 	 * contains bFormatIndex (instead of being the second byte of bmHint).
169 	 * The first byte is always zero. The third byte is always 1.
170 	 *
171 	 * The UVC 1.5 class specification defines the first five bits in the
172 	 * bmHint bitfield. The remaining bits are reserved and should be zero.
173 	 * Therefore a valid bmHint will be less than 32.
174 	 *
175 	 * Latest Elgato Cam Link 4K firmware as of 2021-03-23 needs this fix.
176 	 * MCU: 20.02.19, FPGA: 67
177 	 */
178 	if (usb_match_one_id(stream->dev->intf, &elgato_cam_link_4k) &&
179 	    ctrl->bmHint > 255) {
180 		u8 corrected_format_index = ctrl->bmHint >> 8;
181 
182 		uvc_dbg(stream->dev, VIDEO,
183 			"Correct USB video probe response from {bmHint: 0x%04x, bFormatIndex: %u} to {bmHint: 0x%04x, bFormatIndex: %u}\n",
184 			ctrl->bmHint, ctrl->bFormatIndex,
185 			1, corrected_format_index);
186 		ctrl->bmHint = 1;
187 		ctrl->bFormatIndex = corrected_format_index;
188 	}
189 
190 	for (i = 0; i < stream->nformats; ++i) {
191 		if (stream->formats[i].index == ctrl->bFormatIndex) {
192 			format = &stream->formats[i];
193 			break;
194 		}
195 	}
196 
197 	if (format == NULL)
198 		return;
199 
200 	for (i = 0; i < format->nframes; ++i) {
201 		if (format->frames[i].bFrameIndex == ctrl->bFrameIndex) {
202 			frame = &format->frames[i];
203 			break;
204 		}
205 	}
206 
207 	if (frame == NULL)
208 		return;
209 
210 	if (!(format->flags & UVC_FMT_FLAG_COMPRESSED) ||
211 	     (ctrl->dwMaxVideoFrameSize == 0 &&
212 	      stream->dev->uvc_version < 0x0110))
213 		ctrl->dwMaxVideoFrameSize =
214 			frame->dwMaxVideoFrameBufferSize;
215 
216 	/*
217 	 * The "TOSHIBA Web Camera - 5M" Chicony device (04f2:b50b) seems to
218 	 * compute the bandwidth on 16 bits and erroneously sign-extend it to
219 	 * 32 bits, resulting in a huge bandwidth value. Detect and fix that
220 	 * condition by setting the 16 MSBs to 0 when they're all equal to 1.
221 	 */
222 	if ((ctrl->dwMaxPayloadTransferSize & 0xffff0000) == 0xffff0000)
223 		ctrl->dwMaxPayloadTransferSize &= ~0xffff0000;
224 
225 	if (!(format->flags & UVC_FMT_FLAG_COMPRESSED) &&
226 	    stream->dev->quirks & UVC_QUIRK_FIX_BANDWIDTH &&
227 	    stream->intf->num_altsetting > 1) {
228 		u32 interval;
229 		u32 bandwidth;
230 
231 		interval = (ctrl->dwFrameInterval > 100000)
232 			 ? ctrl->dwFrameInterval
233 			 : frame->dwFrameInterval[0];
234 
235 		/*
236 		 * Compute a bandwidth estimation by multiplying the frame
237 		 * size by the number of video frames per second, divide the
238 		 * result by the number of USB frames (or micro-frames for
239 		 * high- and super-speed devices) per second and add the UVC
240 		 * header size (assumed to be 12 bytes long).
241 		 */
242 		bandwidth = frame->wWidth * frame->wHeight / 8 * format->bpp;
243 		bandwidth *= 10000000 / interval + 1;
244 		bandwidth /= 1000;
245 		if (stream->dev->udev->speed >= USB_SPEED_HIGH)
246 			bandwidth /= 8;
247 		bandwidth += 12;
248 
249 		/*
250 		 * The bandwidth estimate is too low for many cameras. Don't use
251 		 * maximum packet sizes lower than 1024 bytes to try and work
252 		 * around the problem. According to measurements done on two
253 		 * different camera models, the value is high enough to get most
254 		 * resolutions working while not preventing two simultaneous
255 		 * VGA streams at 15 fps.
256 		 */
257 		bandwidth = max_t(u32, bandwidth, 1024);
258 
259 		ctrl->dwMaxPayloadTransferSize = bandwidth;
260 	}
261 }
262 
uvc_video_ctrl_size(struct uvc_streaming * stream)263 static size_t uvc_video_ctrl_size(struct uvc_streaming *stream)
264 {
265 	/*
266 	 * Return the size of the video probe and commit controls, which depends
267 	 * on the protocol version.
268 	 */
269 	if (stream->dev->uvc_version < 0x0110)
270 		return 26;
271 	else if (stream->dev->uvc_version < 0x0150)
272 		return 34;
273 	else
274 		return 48;
275 }
276 
uvc_get_video_ctrl(struct uvc_streaming * stream,struct uvc_streaming_control * ctrl,int probe,u8 query)277 static int uvc_get_video_ctrl(struct uvc_streaming *stream,
278 	struct uvc_streaming_control *ctrl, int probe, u8 query)
279 {
280 	u16 size = uvc_video_ctrl_size(stream);
281 	u8 *data;
282 	int ret;
283 
284 	if ((stream->dev->quirks & UVC_QUIRK_PROBE_DEF) &&
285 			query == UVC_GET_DEF)
286 		return -EIO;
287 
288 	data = kmalloc(size, GFP_KERNEL);
289 	if (data == NULL)
290 		return -ENOMEM;
291 
292 	ret = __uvc_query_ctrl(stream->dev, query, 0, stream->intfnum,
293 		probe ? UVC_VS_PROBE_CONTROL : UVC_VS_COMMIT_CONTROL, data,
294 		size, uvc_timeout_param);
295 
296 	if ((query == UVC_GET_MIN || query == UVC_GET_MAX) && ret == 2) {
297 		/*
298 		 * Some cameras, mostly based on Bison Electronics chipsets,
299 		 * answer a GET_MIN or GET_MAX request with the wCompQuality
300 		 * field only.
301 		 */
302 		uvc_warn_once(stream->dev, UVC_WARN_MINMAX, "UVC non "
303 			"compliance - GET_MIN/MAX(PROBE) incorrectly "
304 			"supported. Enabling workaround.\n");
305 		memset(ctrl, 0, sizeof(*ctrl));
306 		ctrl->wCompQuality = le16_to_cpup((__le16 *)data);
307 		ret = 0;
308 		goto out;
309 	} else if (query == UVC_GET_DEF && probe == 1 && ret != size) {
310 		/*
311 		 * Many cameras don't support the GET_DEF request on their
312 		 * video probe control. Warn once and return, the caller will
313 		 * fall back to GET_CUR.
314 		 */
315 		uvc_warn_once(stream->dev, UVC_WARN_PROBE_DEF, "UVC non "
316 			"compliance - GET_DEF(PROBE) not supported. "
317 			"Enabling workaround.\n");
318 		ret = -EIO;
319 		goto out;
320 	} else if (ret != size) {
321 		dev_err(&stream->intf->dev,
322 			"Failed to query (%u) UVC %s control : %d (exp. %u).\n",
323 			query, probe ? "probe" : "commit", ret, size);
324 		ret = (ret == -EPROTO) ? -EPROTO : -EIO;
325 		goto out;
326 	}
327 
328 	ctrl->bmHint = le16_to_cpup((__le16 *)&data[0]);
329 	ctrl->bFormatIndex = data[2];
330 	ctrl->bFrameIndex = data[3];
331 	ctrl->dwFrameInterval = le32_to_cpup((__le32 *)&data[4]);
332 	ctrl->wKeyFrameRate = le16_to_cpup((__le16 *)&data[8]);
333 	ctrl->wPFrameRate = le16_to_cpup((__le16 *)&data[10]);
334 	ctrl->wCompQuality = le16_to_cpup((__le16 *)&data[12]);
335 	ctrl->wCompWindowSize = le16_to_cpup((__le16 *)&data[14]);
336 	ctrl->wDelay = le16_to_cpup((__le16 *)&data[16]);
337 	ctrl->dwMaxVideoFrameSize = get_unaligned_le32(&data[18]);
338 	ctrl->dwMaxPayloadTransferSize = get_unaligned_le32(&data[22]);
339 
340 	if (size >= 34) {
341 		ctrl->dwClockFrequency = get_unaligned_le32(&data[26]);
342 		ctrl->bmFramingInfo = data[30];
343 		ctrl->bPreferedVersion = data[31];
344 		ctrl->bMinVersion = data[32];
345 		ctrl->bMaxVersion = data[33];
346 	} else {
347 		ctrl->dwClockFrequency = stream->dev->clock_frequency;
348 		ctrl->bmFramingInfo = 0;
349 		ctrl->bPreferedVersion = 0;
350 		ctrl->bMinVersion = 0;
351 		ctrl->bMaxVersion = 0;
352 	}
353 
354 	/*
355 	 * Some broken devices return null or wrong dwMaxVideoFrameSize and
356 	 * dwMaxPayloadTransferSize fields. Try to get the value from the
357 	 * format and frame descriptors.
358 	 */
359 	uvc_fixup_video_ctrl(stream, ctrl);
360 	ret = 0;
361 
362 out:
363 	kfree(data);
364 	return ret;
365 }
366 
uvc_set_video_ctrl(struct uvc_streaming * stream,struct uvc_streaming_control * ctrl,int probe)367 static int uvc_set_video_ctrl(struct uvc_streaming *stream,
368 	struct uvc_streaming_control *ctrl, int probe)
369 {
370 	u16 size = uvc_video_ctrl_size(stream);
371 	u8 *data;
372 	int ret;
373 
374 	data = kzalloc(size, GFP_KERNEL);
375 	if (data == NULL)
376 		return -ENOMEM;
377 
378 	*(__le16 *)&data[0] = cpu_to_le16(ctrl->bmHint);
379 	data[2] = ctrl->bFormatIndex;
380 	data[3] = ctrl->bFrameIndex;
381 	*(__le32 *)&data[4] = cpu_to_le32(ctrl->dwFrameInterval);
382 	*(__le16 *)&data[8] = cpu_to_le16(ctrl->wKeyFrameRate);
383 	*(__le16 *)&data[10] = cpu_to_le16(ctrl->wPFrameRate);
384 	*(__le16 *)&data[12] = cpu_to_le16(ctrl->wCompQuality);
385 	*(__le16 *)&data[14] = cpu_to_le16(ctrl->wCompWindowSize);
386 	*(__le16 *)&data[16] = cpu_to_le16(ctrl->wDelay);
387 	put_unaligned_le32(ctrl->dwMaxVideoFrameSize, &data[18]);
388 	put_unaligned_le32(ctrl->dwMaxPayloadTransferSize, &data[22]);
389 
390 	if (size >= 34) {
391 		put_unaligned_le32(ctrl->dwClockFrequency, &data[26]);
392 		data[30] = ctrl->bmFramingInfo;
393 		data[31] = ctrl->bPreferedVersion;
394 		data[32] = ctrl->bMinVersion;
395 		data[33] = ctrl->bMaxVersion;
396 	}
397 
398 	ret = __uvc_query_ctrl(stream->dev, UVC_SET_CUR, 0, stream->intfnum,
399 		probe ? UVC_VS_PROBE_CONTROL : UVC_VS_COMMIT_CONTROL, data,
400 		size, uvc_timeout_param);
401 	if (ret != size) {
402 		dev_err(&stream->intf->dev,
403 			"Failed to set UVC %s control : %d (exp. %u).\n",
404 			probe ? "probe" : "commit", ret, size);
405 		ret = -EIO;
406 	}
407 
408 	kfree(data);
409 	return ret;
410 }
411 
uvc_probe_video(struct uvc_streaming * stream,struct uvc_streaming_control * probe)412 int uvc_probe_video(struct uvc_streaming *stream,
413 	struct uvc_streaming_control *probe)
414 {
415 	struct uvc_streaming_control probe_min, probe_max;
416 	unsigned int i;
417 	int ret;
418 
419 	/*
420 	 * Perform probing. The device should adjust the requested values
421 	 * according to its capabilities. However, some devices, namely the
422 	 * first generation UVC Logitech webcams, don't implement the Video
423 	 * Probe control properly, and just return the needed bandwidth. For
424 	 * that reason, if the needed bandwidth exceeds the maximum available
425 	 * bandwidth, try to lower the quality.
426 	 */
427 	ret = uvc_set_video_ctrl(stream, probe, 1);
428 	if (ret < 0)
429 		goto done;
430 
431 	/* Get the minimum and maximum values for compression settings. */
432 	if (!(stream->dev->quirks & UVC_QUIRK_PROBE_MINMAX)) {
433 		ret = uvc_get_video_ctrl(stream, &probe_min, 1, UVC_GET_MIN);
434 		if (ret < 0)
435 			goto done;
436 		ret = uvc_get_video_ctrl(stream, &probe_max, 1, UVC_GET_MAX);
437 		if (ret < 0)
438 			goto done;
439 
440 		probe->wCompQuality = probe_max.wCompQuality;
441 	}
442 
443 	for (i = 0; i < 2; ++i) {
444 		ret = uvc_set_video_ctrl(stream, probe, 1);
445 		if (ret < 0)
446 			goto done;
447 		ret = uvc_get_video_ctrl(stream, probe, 1, UVC_GET_CUR);
448 		if (ret < 0)
449 			goto done;
450 
451 		if (stream->intf->num_altsetting == 1)
452 			break;
453 
454 		if (probe->dwMaxPayloadTransferSize <= stream->maxpsize)
455 			break;
456 
457 		if (stream->dev->quirks & UVC_QUIRK_PROBE_MINMAX) {
458 			ret = -ENOSPC;
459 			goto done;
460 		}
461 
462 		/* TODO: negotiate compression parameters */
463 		probe->wKeyFrameRate = probe_min.wKeyFrameRate;
464 		probe->wPFrameRate = probe_min.wPFrameRate;
465 		probe->wCompQuality = probe_max.wCompQuality;
466 		probe->wCompWindowSize = probe_min.wCompWindowSize;
467 	}
468 
469 done:
470 	return ret;
471 }
472 
uvc_commit_video(struct uvc_streaming * stream,struct uvc_streaming_control * probe)473 static int uvc_commit_video(struct uvc_streaming *stream,
474 			    struct uvc_streaming_control *probe)
475 {
476 	return uvc_set_video_ctrl(stream, probe, 0);
477 }
478 
479 /* -----------------------------------------------------------------------------
480  * Clocks and timestamps
481  */
482 
uvc_video_get_time(void)483 static inline ktime_t uvc_video_get_time(void)
484 {
485 	if (uvc_clock_param == CLOCK_MONOTONIC)
486 		return ktime_get();
487 	else
488 		return ktime_get_real();
489 }
490 
491 static void
uvc_video_clock_decode(struct uvc_streaming * stream,struct uvc_buffer * buf,const u8 * data,int len)492 uvc_video_clock_decode(struct uvc_streaming *stream, struct uvc_buffer *buf,
493 		       const u8 *data, int len)
494 {
495 	struct uvc_clock_sample *sample;
496 	unsigned int header_size;
497 	bool has_pts = false;
498 	bool has_scr = false;
499 	unsigned long flags;
500 	ktime_t time;
501 	u16 host_sof;
502 	u16 dev_sof;
503 	u32 dev_stc;
504 
505 	switch (data[1] & (UVC_STREAM_PTS | UVC_STREAM_SCR)) {
506 	case UVC_STREAM_PTS | UVC_STREAM_SCR:
507 		header_size = 12;
508 		has_pts = true;
509 		has_scr = true;
510 		break;
511 	case UVC_STREAM_PTS:
512 		header_size = 6;
513 		has_pts = true;
514 		break;
515 	case UVC_STREAM_SCR:
516 		header_size = 8;
517 		has_scr = true;
518 		break;
519 	default:
520 		header_size = 2;
521 		break;
522 	}
523 
524 	/* Check for invalid headers. */
525 	if (len < header_size)
526 		return;
527 
528 	/*
529 	 * Extract the timestamps:
530 	 *
531 	 * - store the frame PTS in the buffer structure
532 	 * - if the SCR field is present, retrieve the host SOF counter and
533 	 *   kernel timestamps and store them with the SCR STC and SOF fields
534 	 *   in the ring buffer
535 	 */
536 	if (has_pts && buf != NULL)
537 		buf->pts = get_unaligned_le32(&data[2]);
538 
539 	if (!has_scr)
540 		return;
541 
542 	/*
543 	 * To limit the amount of data, drop SCRs with an SOF identical to the
544 	 * previous one. This filtering is also needed to support UVC 1.5, where
545 	 * all the data packets of the same frame contains the same SOF. In that
546 	 * case only the first one will match the host_sof.
547 	 */
548 	dev_sof = get_unaligned_le16(&data[header_size - 2]);
549 	if (dev_sof == stream->clock.last_sof)
550 		return;
551 
552 	dev_stc = get_unaligned_le32(&data[header_size - 6]);
553 
554 	/*
555 	 * STC (Source Time Clock) is the clock used by the camera. The UVC 1.5
556 	 * standard states that it "must be captured when the first video data
557 	 * of a video frame is put on the USB bus". This is generally understood
558 	 * as requiring devices to clear the payload header's SCR bit before
559 	 * the first packet containing video data.
560 	 *
561 	 * Most vendors follow that interpretation, but some (namely SunplusIT
562 	 * on some devices) always set the `UVC_STREAM_SCR` bit, fill the SCR
563 	 * field with 0's,and expect that the driver only processes the SCR if
564 	 * there is data in the packet.
565 	 *
566 	 * Ignore all the hardware timestamp information if we haven't received
567 	 * any data for this frame yet, the packet contains no data, and both
568 	 * STC and SOF are zero. This heuristics should be safe on compliant
569 	 * devices. This should be safe with compliant devices, as in the very
570 	 * unlikely case where a UVC 1.1 device would send timing information
571 	 * only before the first packet containing data, and both STC and SOF
572 	 * happen to be zero for a particular frame, we would only miss one
573 	 * clock sample from many and the clock recovery algorithm wouldn't
574 	 * suffer from this condition.
575 	 */
576 	if (buf && buf->bytesused == 0 && len == header_size &&
577 	    dev_stc == 0 && dev_sof == 0)
578 		return;
579 
580 	stream->clock.last_sof = dev_sof;
581 
582 	host_sof = usb_get_current_frame_number(stream->dev->udev);
583 
584 	/*
585 	 * On some devices, like the Logitech C922, the device SOF does not run
586 	 * at a stable rate of 1kHz. For those devices use the host SOF instead.
587 	 * In the tests performed so far, this improves the timestamp precision.
588 	 * This is probably explained by a small packet handling jitter from the
589 	 * host, but the exact reason hasn't been fully determined.
590 	 */
591 	if (stream->dev->quirks & UVC_QUIRK_INVALID_DEVICE_SOF)
592 		dev_sof = host_sof;
593 
594 	time = uvc_video_get_time();
595 
596 	/*
597 	 * The UVC specification allows device implementations that can't obtain
598 	 * the USB frame number to keep their own frame counters as long as they
599 	 * match the size and frequency of the frame number associated with USB
600 	 * SOF tokens. The SOF values sent by such devices differ from the USB
601 	 * SOF tokens by a fixed offset that needs to be estimated and accounted
602 	 * for to make timestamp recovery as accurate as possible.
603 	 *
604 	 * The offset is estimated the first time a device SOF value is received
605 	 * as the difference between the host and device SOF values. As the two
606 	 * SOF values can differ slightly due to transmission delays, consider
607 	 * that the offset is null if the difference is not higher than 10 ms
608 	 * (negative differences can not happen and are thus considered as an
609 	 * offset). The video commit control wDelay field should be used to
610 	 * compute a dynamic threshold instead of using a fixed 10 ms value, but
611 	 * devices don't report reliable wDelay values.
612 	 *
613 	 * See uvc_video_clock_host_sof() for an explanation regarding why only
614 	 * the 8 LSBs of the delta are kept.
615 	 */
616 	if (stream->clock.sof_offset == (u16)-1) {
617 		u16 delta_sof = (host_sof - dev_sof) & 255;
618 		if (delta_sof >= 10)
619 			stream->clock.sof_offset = delta_sof;
620 		else
621 			stream->clock.sof_offset = 0;
622 	}
623 
624 	dev_sof = (dev_sof + stream->clock.sof_offset) & 2047;
625 
626 	spin_lock_irqsave(&stream->clock.lock, flags);
627 
628 	sample = &stream->clock.samples[stream->clock.head];
629 	sample->dev_stc = dev_stc;
630 	sample->dev_sof = dev_sof;
631 	sample->host_sof = host_sof;
632 	sample->host_time = time;
633 
634 	/* Update the sliding window head and count. */
635 	stream->clock.head = (stream->clock.head + 1) % stream->clock.size;
636 
637 	if (stream->clock.count < stream->clock.size)
638 		stream->clock.count++;
639 
640 	spin_unlock_irqrestore(&stream->clock.lock, flags);
641 }
642 
uvc_video_clock_reset(struct uvc_streaming * stream)643 static void uvc_video_clock_reset(struct uvc_streaming *stream)
644 {
645 	struct uvc_clock *clock = &stream->clock;
646 
647 	clock->head = 0;
648 	clock->count = 0;
649 	clock->last_sof = -1;
650 	clock->sof_offset = -1;
651 }
652 
uvc_video_clock_init(struct uvc_streaming * stream)653 static int uvc_video_clock_init(struct uvc_streaming *stream)
654 {
655 	struct uvc_clock *clock = &stream->clock;
656 
657 	spin_lock_init(&clock->lock);
658 	clock->size = 32;
659 
660 	clock->samples = kmalloc_array(clock->size, sizeof(*clock->samples),
661 				       GFP_KERNEL);
662 	if (clock->samples == NULL)
663 		return -ENOMEM;
664 
665 	uvc_video_clock_reset(stream);
666 
667 	return 0;
668 }
669 
uvc_video_clock_cleanup(struct uvc_streaming * stream)670 static void uvc_video_clock_cleanup(struct uvc_streaming *stream)
671 {
672 	kfree(stream->clock.samples);
673 	stream->clock.samples = NULL;
674 }
675 
676 /*
677  * uvc_video_clock_host_sof - Return the host SOF value for a clock sample
678  *
679  * Host SOF counters reported by usb_get_current_frame_number() usually don't
680  * cover the whole 11-bits SOF range (0-2047) but are limited to the HCI frame
681  * schedule window. They can be limited to 8, 9 or 10 bits depending on the host
682  * controller and its configuration.
683  *
684  * We thus need to recover the SOF value corresponding to the host frame number.
685  * As the device and host frame numbers are sampled in a short interval, the
686  * difference between their values should be equal to a small delta plus an
687  * integer multiple of 256 caused by the host frame number limited precision.
688  *
689  * To obtain the recovered host SOF value, compute the small delta by masking
690  * the high bits of the host frame counter and device SOF difference and add it
691  * to the device SOF value.
692  */
uvc_video_clock_host_sof(const struct uvc_clock_sample * sample)693 static u16 uvc_video_clock_host_sof(const struct uvc_clock_sample *sample)
694 {
695 	/* The delta value can be negative. */
696 	s8 delta_sof;
697 
698 	delta_sof = (sample->host_sof - sample->dev_sof) & 255;
699 
700 	return (sample->dev_sof + delta_sof) & 2047;
701 }
702 
703 /*
704  * uvc_video_clock_update - Update the buffer timestamp
705  *
706  * This function converts the buffer PTS timestamp to the host clock domain by
707  * going through the USB SOF clock domain and stores the result in the V4L2
708  * buffer timestamp field.
709  *
710  * The relationship between the device clock and the host clock isn't known.
711  * However, the device and the host share the common USB SOF clock which can be
712  * used to recover that relationship.
713  *
714  * The relationship between the device clock and the USB SOF clock is considered
715  * to be linear over the clock samples sliding window and is given by
716  *
717  * SOF = m * PTS + p
718  *
719  * Several methods to compute the slope (m) and intercept (p) can be used. As
720  * the clock drift should be small compared to the sliding window size, we
721  * assume that the line that goes through the points at both ends of the window
722  * is a good approximation. Naming those points P1 and P2, we get
723  *
724  * SOF = (SOF2 - SOF1) / (STC2 - STC1) * PTS
725  *     + (SOF1 * STC2 - SOF2 * STC1) / (STC2 - STC1)
726  *
727  * or
728  *
729  * SOF = ((SOF2 - SOF1) * PTS + SOF1 * STC2 - SOF2 * STC1) / (STC2 - STC1)   (1)
730  *
731  * to avoid losing precision in the division. Similarly, the host timestamp is
732  * computed with
733  *
734  * TS = ((TS2 - TS1) * SOF + TS1 * SOF2 - TS2 * SOF1) / (SOF2 - SOF1)	     (2)
735  *
736  * SOF values are coded on 11 bits by USB. We extend their precision with 16
737  * decimal bits, leading to a 11.16 coding.
738  *
739  * TODO: To avoid surprises with device clock values, PTS/STC timestamps should
740  * be normalized using the nominal device clock frequency reported through the
741  * UVC descriptors.
742  *
743  * Both the PTS/STC and SOF counters roll over, after a fixed but device
744  * specific amount of time for PTS/STC and after 2048ms for SOF. As long as the
745  * sliding window size is smaller than the rollover period, differences computed
746  * on unsigned integers will produce the correct result. However, the p term in
747  * the linear relations will be miscomputed.
748  *
749  * To fix the issue, we subtract a constant from the PTS and STC values to bring
750  * PTS to half the 32 bit STC range. The sliding window STC values then fit into
751  * the 32 bit range without any rollover.
752  *
753  * Similarly, we add 2048 to the device SOF values to make sure that the SOF
754  * computed by (1) will never be smaller than 0. This offset is then compensated
755  * by adding 2048 to the SOF values used in (2). However, this doesn't prevent
756  * rollovers between (1) and (2): the SOF value computed by (1) can be slightly
757  * lower than 4096, and the host SOF counters can have rolled over to 2048. This
758  * case is handled by subtracting 2048 from the SOF value if it exceeds the host
759  * SOF value at the end of the sliding window.
760  *
761  * Finally we subtract a constant from the host timestamps to bring the first
762  * timestamp of the sliding window to 1s.
763  */
uvc_video_clock_update(struct uvc_streaming * stream,struct vb2_v4l2_buffer * vbuf,struct uvc_buffer * buf)764 void uvc_video_clock_update(struct uvc_streaming *stream,
765 			    struct vb2_v4l2_buffer *vbuf,
766 			    struct uvc_buffer *buf)
767 {
768 	struct uvc_clock *clock = &stream->clock;
769 	struct uvc_clock_sample *first;
770 	struct uvc_clock_sample *last;
771 	unsigned long flags;
772 	u64 timestamp;
773 	u32 delta_stc;
774 	u32 y1;
775 	u32 x1, x2;
776 	u32 mean;
777 	u32 sof;
778 	u64 y, y2;
779 
780 	if (!uvc_hw_timestamps_param)
781 		return;
782 
783 	/*
784 	 * We will get called from __vb2_queue_cancel() if there are buffers
785 	 * done but not dequeued by the user, but the sample array has already
786 	 * been released at that time. Just bail out in that case.
787 	 */
788 	if (!clock->samples)
789 		return;
790 
791 	spin_lock_irqsave(&clock->lock, flags);
792 
793 	if (clock->count < clock->size)
794 		goto done;
795 
796 	first = &clock->samples[clock->head];
797 	last = &clock->samples[(clock->head - 1) % clock->size];
798 
799 	/* First step, PTS to SOF conversion. */
800 	delta_stc = buf->pts - (1UL << 31);
801 	x1 = first->dev_stc - delta_stc;
802 	x2 = last->dev_stc - delta_stc;
803 	if (x1 == x2)
804 		goto done;
805 
806 	y1 = (first->dev_sof + 2048) << 16;
807 	y2 = (last->dev_sof + 2048) << 16;
808 	if (y2 < y1)
809 		y2 += 2048 << 16;
810 
811 	y = (u64)(y2 - y1) * (1ULL << 31) + (u64)y1 * (u64)x2
812 	  - (u64)y2 * (u64)x1;
813 	y = div_u64(y, x2 - x1);
814 
815 	sof = y;
816 
817 	uvc_dbg(stream->dev, CLOCK,
818 		"%s: PTS %u y %llu.%06llu SOF %u.%06llu (x1 %u x2 %u y1 %u y2 %llu SOF offset %u)\n",
819 		stream->dev->name, buf->pts,
820 		y >> 16, div_u64((y & 0xffff) * 1000000, 65536),
821 		sof >> 16, div_u64(((u64)sof & 0xffff) * 1000000LLU, 65536),
822 		x1, x2, y1, y2, clock->sof_offset);
823 
824 	/* Second step, SOF to host clock conversion. */
825 	x1 = (uvc_video_clock_host_sof(first) + 2048) << 16;
826 	x2 = (uvc_video_clock_host_sof(last) + 2048) << 16;
827 	if (x2 < x1)
828 		x2 += 2048 << 16;
829 	if (x1 == x2)
830 		goto done;
831 
832 	y1 = NSEC_PER_SEC;
833 	y2 = ktime_to_ns(ktime_sub(last->host_time, first->host_time)) + y1;
834 
835 	/*
836 	 * Interpolated and host SOF timestamps can wrap around at slightly
837 	 * different times. Handle this by adding or removing 2048 to or from
838 	 * the computed SOF value to keep it close to the SOF samples mean
839 	 * value.
840 	 */
841 	mean = (x1 + x2) / 2;
842 	if (mean - (1024 << 16) > sof)
843 		sof += 2048 << 16;
844 	else if (sof > mean + (1024 << 16))
845 		sof -= 2048 << 16;
846 
847 	y = (u64)(y2 - y1) * (u64)sof + (u64)y1 * (u64)x2
848 	  - (u64)y2 * (u64)x1;
849 	y = div_u64(y, x2 - x1);
850 
851 	timestamp = ktime_to_ns(first->host_time) + y - y1;
852 
853 	uvc_dbg(stream->dev, CLOCK,
854 		"%s: SOF %u.%06llu y %llu ts %llu buf ts %llu (x1 %u/%u/%u x2 %u/%u/%u y1 %u y2 %llu)\n",
855 		stream->dev->name,
856 		sof >> 16, div_u64(((u64)sof & 0xffff) * 1000000LLU, 65536),
857 		y, timestamp, vbuf->vb2_buf.timestamp,
858 		x1, first->host_sof, first->dev_sof,
859 		x2, last->host_sof, last->dev_sof, y1, y2);
860 
861 	/* Update the V4L2 buffer. */
862 	vbuf->vb2_buf.timestamp = timestamp;
863 
864 done:
865 	spin_unlock_irqrestore(&clock->lock, flags);
866 }
867 
868 /* ------------------------------------------------------------------------
869  * Stream statistics
870  */
871 
uvc_video_stats_decode(struct uvc_streaming * stream,const u8 * data,int len)872 static void uvc_video_stats_decode(struct uvc_streaming *stream,
873 		const u8 *data, int len)
874 {
875 	unsigned int header_size;
876 	bool has_pts = false;
877 	bool has_scr = false;
878 	u16 scr_sof;
879 	u32 scr_stc;
880 	u32 pts;
881 
882 	if (stream->stats.stream.nb_frames == 0 &&
883 	    stream->stats.frame.nb_packets == 0)
884 		stream->stats.stream.start_ts = ktime_get();
885 
886 	switch (data[1] & (UVC_STREAM_PTS | UVC_STREAM_SCR)) {
887 	case UVC_STREAM_PTS | UVC_STREAM_SCR:
888 		header_size = 12;
889 		has_pts = true;
890 		has_scr = true;
891 		break;
892 	case UVC_STREAM_PTS:
893 		header_size = 6;
894 		has_pts = true;
895 		break;
896 	case UVC_STREAM_SCR:
897 		header_size = 8;
898 		has_scr = true;
899 		break;
900 	default:
901 		header_size = 2;
902 		break;
903 	}
904 
905 	/* Check for invalid headers. */
906 	if (len < header_size || data[0] < header_size) {
907 		stream->stats.frame.nb_invalid++;
908 		return;
909 	}
910 
911 	/* Extract the timestamps. */
912 	if (has_pts)
913 		pts = get_unaligned_le32(&data[2]);
914 
915 	if (has_scr) {
916 		scr_stc = get_unaligned_le32(&data[header_size - 6]);
917 		scr_sof = get_unaligned_le16(&data[header_size - 2]);
918 	}
919 
920 	/* Is PTS constant through the whole frame ? */
921 	if (has_pts && stream->stats.frame.nb_pts) {
922 		if (stream->stats.frame.pts != pts) {
923 			stream->stats.frame.nb_pts_diffs++;
924 			stream->stats.frame.last_pts_diff =
925 				stream->stats.frame.nb_packets;
926 		}
927 	}
928 
929 	if (has_pts) {
930 		stream->stats.frame.nb_pts++;
931 		stream->stats.frame.pts = pts;
932 	}
933 
934 	/*
935 	 * Do all frames have a PTS in their first non-empty packet, or before
936 	 * their first empty packet ?
937 	 */
938 	if (stream->stats.frame.size == 0) {
939 		if (len > header_size)
940 			stream->stats.frame.has_initial_pts = has_pts;
941 		if (len == header_size && has_pts)
942 			stream->stats.frame.has_early_pts = true;
943 	}
944 
945 	/* Do the SCR.STC and SCR.SOF fields vary through the frame ? */
946 	if (has_scr && stream->stats.frame.nb_scr) {
947 		if (stream->stats.frame.scr_stc != scr_stc)
948 			stream->stats.frame.nb_scr_diffs++;
949 	}
950 
951 	if (has_scr) {
952 		/* Expand the SOF counter to 32 bits and store its value. */
953 		if (stream->stats.stream.nb_frames > 0 ||
954 		    stream->stats.frame.nb_scr > 0)
955 			stream->stats.stream.scr_sof_count +=
956 				(scr_sof - stream->stats.stream.scr_sof) % 2048;
957 		stream->stats.stream.scr_sof = scr_sof;
958 
959 		stream->stats.frame.nb_scr++;
960 		stream->stats.frame.scr_stc = scr_stc;
961 		stream->stats.frame.scr_sof = scr_sof;
962 
963 		if (scr_sof < stream->stats.stream.min_sof)
964 			stream->stats.stream.min_sof = scr_sof;
965 		if (scr_sof > stream->stats.stream.max_sof)
966 			stream->stats.stream.max_sof = scr_sof;
967 	}
968 
969 	/* Record the first non-empty packet number. */
970 	if (stream->stats.frame.size == 0 && len > header_size)
971 		stream->stats.frame.first_data = stream->stats.frame.nb_packets;
972 
973 	/* Update the frame size. */
974 	stream->stats.frame.size += len - header_size;
975 
976 	/* Update the packets counters. */
977 	stream->stats.frame.nb_packets++;
978 	if (len <= header_size)
979 		stream->stats.frame.nb_empty++;
980 
981 	if (data[1] & UVC_STREAM_ERR)
982 		stream->stats.frame.nb_errors++;
983 }
984 
uvc_video_stats_update(struct uvc_streaming * stream)985 static void uvc_video_stats_update(struct uvc_streaming *stream)
986 {
987 	struct uvc_stats_frame *frame = &stream->stats.frame;
988 
989 	uvc_dbg(stream->dev, STATS,
990 		"frame %u stats: %u/%u/%u packets, %u/%u/%u pts (%searly %sinitial), %u/%u scr, last pts/stc/sof %u/%u/%u\n",
991 		stream->sequence, frame->first_data,
992 		frame->nb_packets - frame->nb_empty, frame->nb_packets,
993 		frame->nb_pts_diffs, frame->last_pts_diff, frame->nb_pts,
994 		frame->has_early_pts ? "" : "!",
995 		frame->has_initial_pts ? "" : "!",
996 		frame->nb_scr_diffs, frame->nb_scr,
997 		frame->pts, frame->scr_stc, frame->scr_sof);
998 
999 	stream->stats.stream.nb_frames++;
1000 	stream->stats.stream.nb_packets += stream->stats.frame.nb_packets;
1001 	stream->stats.stream.nb_empty += stream->stats.frame.nb_empty;
1002 	stream->stats.stream.nb_errors += stream->stats.frame.nb_errors;
1003 	stream->stats.stream.nb_invalid += stream->stats.frame.nb_invalid;
1004 
1005 	if (frame->has_early_pts)
1006 		stream->stats.stream.nb_pts_early++;
1007 	if (frame->has_initial_pts)
1008 		stream->stats.stream.nb_pts_initial++;
1009 	if (frame->last_pts_diff <= frame->first_data)
1010 		stream->stats.stream.nb_pts_constant++;
1011 	if (frame->nb_scr >= frame->nb_packets - frame->nb_empty)
1012 		stream->stats.stream.nb_scr_count_ok++;
1013 	if (frame->nb_scr_diffs + 1 == frame->nb_scr)
1014 		stream->stats.stream.nb_scr_diffs_ok++;
1015 
1016 	memset(&stream->stats.frame, 0, sizeof(stream->stats.frame));
1017 }
1018 
uvc_video_stats_dump(struct uvc_streaming * stream,char * buf,size_t size)1019 size_t uvc_video_stats_dump(struct uvc_streaming *stream, char *buf,
1020 			    size_t size)
1021 {
1022 	unsigned int scr_sof_freq;
1023 	unsigned int duration;
1024 	size_t count = 0;
1025 
1026 	/*
1027 	 * Compute the SCR.SOF frequency estimate. At the nominal 1kHz SOF
1028 	 * frequency this will not overflow before more than 1h.
1029 	 */
1030 	duration = ktime_ms_delta(stream->stats.stream.stop_ts,
1031 				  stream->stats.stream.start_ts);
1032 	if (duration != 0)
1033 		scr_sof_freq = stream->stats.stream.scr_sof_count * 1000
1034 			     / duration;
1035 	else
1036 		scr_sof_freq = 0;
1037 
1038 	count += scnprintf(buf + count, size - count,
1039 			   "frames:  %u\npackets: %u\nempty:   %u\n"
1040 			   "errors:  %u\ninvalid: %u\n",
1041 			   stream->stats.stream.nb_frames,
1042 			   stream->stats.stream.nb_packets,
1043 			   stream->stats.stream.nb_empty,
1044 			   stream->stats.stream.nb_errors,
1045 			   stream->stats.stream.nb_invalid);
1046 	count += scnprintf(buf + count, size - count,
1047 			   "pts: %u early, %u initial, %u ok\n",
1048 			   stream->stats.stream.nb_pts_early,
1049 			   stream->stats.stream.nb_pts_initial,
1050 			   stream->stats.stream.nb_pts_constant);
1051 	count += scnprintf(buf + count, size - count,
1052 			   "scr: %u count ok, %u diff ok\n",
1053 			   stream->stats.stream.nb_scr_count_ok,
1054 			   stream->stats.stream.nb_scr_diffs_ok);
1055 	count += scnprintf(buf + count, size - count,
1056 			   "sof: %u <= sof <= %u, freq %u.%03u kHz\n",
1057 			   stream->stats.stream.min_sof,
1058 			   stream->stats.stream.max_sof,
1059 			   scr_sof_freq / 1000, scr_sof_freq % 1000);
1060 
1061 	return count;
1062 }
1063 
uvc_video_stats_start(struct uvc_streaming * stream)1064 static void uvc_video_stats_start(struct uvc_streaming *stream)
1065 {
1066 	memset(&stream->stats, 0, sizeof(stream->stats));
1067 	stream->stats.stream.min_sof = 2048;
1068 }
1069 
uvc_video_stats_stop(struct uvc_streaming * stream)1070 static void uvc_video_stats_stop(struct uvc_streaming *stream)
1071 {
1072 	stream->stats.stream.stop_ts = ktime_get();
1073 }
1074 
1075 /* ------------------------------------------------------------------------
1076  * Video codecs
1077  */
1078 
1079 /*
1080  * Video payload decoding is handled by uvc_video_decode_start(),
1081  * uvc_video_decode_data() and uvc_video_decode_end().
1082  *
1083  * uvc_video_decode_start is called with URB data at the start of a bulk or
1084  * isochronous payload. It processes header data and returns the header size
1085  * in bytes if successful. If an error occurs, it returns a negative error
1086  * code. The following error codes have special meanings.
1087  *
1088  * - EAGAIN informs the caller that the current video buffer should be marked
1089  *   as done, and that the function should be called again with the same data
1090  *   and a new video buffer. This is used when end of frame conditions can be
1091  *   reliably detected at the beginning of the next frame only.
1092  *
1093  * If an error other than -EAGAIN is returned, the caller will drop the current
1094  * payload. No call to uvc_video_decode_data and uvc_video_decode_end will be
1095  * made until the next payload. -ENODATA can be used to drop the current
1096  * payload if no other error code is appropriate.
1097  *
1098  * uvc_video_decode_data is called for every URB with URB data. It copies the
1099  * data to the video buffer.
1100  *
1101  * uvc_video_decode_end is called with header data at the end of a bulk or
1102  * isochronous payload. It performs any additional header data processing and
1103  * returns 0 or a negative error code if an error occurred. As header data have
1104  * already been processed by uvc_video_decode_start, this functions isn't
1105  * required to perform sanity checks a second time.
1106  *
1107  * For isochronous transfers where a payload is always transferred in a single
1108  * URB, the three functions will be called in a row.
1109  *
1110  * To let the decoder process header data and update its internal state even
1111  * when no video buffer is available, uvc_video_decode_start must be prepared
1112  * to be called with a NULL buf parameter. uvc_video_decode_data and
1113  * uvc_video_decode_end will never be called with a NULL buffer.
1114  */
uvc_video_decode_start(struct uvc_streaming * stream,struct uvc_buffer * buf,const u8 * data,int len)1115 static int uvc_video_decode_start(struct uvc_streaming *stream,
1116 		struct uvc_buffer *buf, const u8 *data, int len)
1117 {
1118 	u8 header_len;
1119 	u8 fid;
1120 
1121 	/*
1122 	 * Sanity checks:
1123 	 * - packet must be at least 2 bytes long
1124 	 * - bHeaderLength value must be at least 2 bytes (see above)
1125 	 * - bHeaderLength value can't be larger than the packet size.
1126 	 */
1127 	if (len < 2 || data[0] < 2 || data[0] > len) {
1128 		stream->stats.frame.nb_invalid++;
1129 		return -EINVAL;
1130 	}
1131 
1132 	header_len = data[0];
1133 	fid = data[1] & UVC_STREAM_FID;
1134 
1135 	/*
1136 	 * Increase the sequence number regardless of any buffer states, so
1137 	 * that discontinuous sequence numbers always indicate lost frames.
1138 	 */
1139 	if (stream->last_fid != fid) {
1140 		stream->sequence++;
1141 		if (stream->sequence)
1142 			uvc_video_stats_update(stream);
1143 	}
1144 
1145 	uvc_video_clock_decode(stream, buf, data, len);
1146 	uvc_video_stats_decode(stream, data, len);
1147 
1148 	/*
1149 	 * Store the payload FID bit and return immediately when the buffer is
1150 	 * NULL.
1151 	 */
1152 	if (buf == NULL) {
1153 		stream->last_fid = fid;
1154 		return -ENODATA;
1155 	}
1156 
1157 	/* Mark the buffer as bad if the error bit is set. */
1158 	if (data[1] & UVC_STREAM_ERR) {
1159 		uvc_dbg(stream->dev, FRAME,
1160 			"Marking buffer as bad (error bit set)\n");
1161 		buf->error = 1;
1162 	}
1163 
1164 	/*
1165 	 * Synchronize to the input stream by waiting for the FID bit to be
1166 	 * toggled when the buffer state is not UVC_BUF_STATE_ACTIVE.
1167 	 * stream->last_fid is initialized to -1, so the first isochronous
1168 	 * frame will always be in sync.
1169 	 *
1170 	 * If the device doesn't toggle the FID bit, invert stream->last_fid
1171 	 * when the EOF bit is set to force synchronisation on the next packet.
1172 	 */
1173 	if (buf->state != UVC_BUF_STATE_ACTIVE) {
1174 		if (fid == stream->last_fid) {
1175 			uvc_dbg(stream->dev, FRAME,
1176 				"Dropping payload (out of sync)\n");
1177 			if ((stream->dev->quirks & UVC_QUIRK_STREAM_NO_FID) &&
1178 			    (data[1] & UVC_STREAM_EOF))
1179 				stream->last_fid ^= UVC_STREAM_FID;
1180 			return -ENODATA;
1181 		}
1182 
1183 		buf->buf.field = V4L2_FIELD_NONE;
1184 		buf->buf.sequence = stream->sequence;
1185 		buf->buf.vb2_buf.timestamp = ktime_to_ns(uvc_video_get_time());
1186 
1187 		/* TODO: Handle PTS and SCR. */
1188 		buf->state = UVC_BUF_STATE_ACTIVE;
1189 	}
1190 
1191 	/*
1192 	 * Mark the buffer as done if we're at the beginning of a new frame.
1193 	 * End of frame detection is better implemented by checking the EOF
1194 	 * bit (FID bit toggling is delayed by one frame compared to the EOF
1195 	 * bit), but some devices don't set the bit at end of frame (and the
1196 	 * last payload can be lost anyway). We thus must check if the FID has
1197 	 * been toggled.
1198 	 *
1199 	 * stream->last_fid is initialized to -1, so the first isochronous
1200 	 * frame will never trigger an end of frame detection.
1201 	 *
1202 	 * Empty buffers (bytesused == 0) don't trigger end of frame detection
1203 	 * as it doesn't make sense to return an empty buffer. This also
1204 	 * avoids detecting end of frame conditions at FID toggling if the
1205 	 * previous payload had the EOF bit set.
1206 	 */
1207 	if (fid != stream->last_fid && buf->bytesused != 0) {
1208 		uvc_dbg(stream->dev, FRAME,
1209 			"Frame complete (FID bit toggled)\n");
1210 		buf->state = UVC_BUF_STATE_READY;
1211 		return -EAGAIN;
1212 	}
1213 
1214 	/*
1215 	 * Some cameras, when running two parallel streams (one MJPEG alongside
1216 	 * another non-MJPEG stream), are known to lose the EOF packet for a frame.
1217 	 * We can detect the end of a frame by checking for a new SOI marker, as
1218 	 * the SOI always lies on the packet boundary between two frames for
1219 	 * these devices.
1220 	 */
1221 	if (stream->dev->quirks & UVC_QUIRK_MJPEG_NO_EOF &&
1222 	    (stream->cur_format->fcc == V4L2_PIX_FMT_MJPEG ||
1223 	    stream->cur_format->fcc == V4L2_PIX_FMT_JPEG)) {
1224 		const u8 *packet = data + header_len;
1225 
1226 		if (len >= header_len + 2 &&
1227 		    packet[0] == 0xff && packet[1] == JPEG_MARKER_SOI &&
1228 		    buf->bytesused != 0) {
1229 			buf->state = UVC_BUF_STATE_READY;
1230 			buf->error = 1;
1231 			stream->last_fid ^= UVC_STREAM_FID;
1232 			return -EAGAIN;
1233 		}
1234 	}
1235 
1236 	stream->last_fid = fid;
1237 
1238 	return header_len;
1239 }
1240 
uvc_stream_dir(struct uvc_streaming * stream)1241 static inline enum dma_data_direction uvc_stream_dir(
1242 				struct uvc_streaming *stream)
1243 {
1244 	if (stream->type == V4L2_BUF_TYPE_VIDEO_CAPTURE)
1245 		return DMA_FROM_DEVICE;
1246 	else
1247 		return DMA_TO_DEVICE;
1248 }
1249 
uvc_stream_to_dmadev(struct uvc_streaming * stream)1250 static inline struct device *uvc_stream_to_dmadev(struct uvc_streaming *stream)
1251 {
1252 	return bus_to_hcd(stream->dev->udev->bus)->self.sysdev;
1253 }
1254 
uvc_submit_urb(struct uvc_urb * uvc_urb,gfp_t mem_flags)1255 static int uvc_submit_urb(struct uvc_urb *uvc_urb, gfp_t mem_flags)
1256 {
1257 	/* Sync DMA. */
1258 	dma_sync_sgtable_for_device(uvc_stream_to_dmadev(uvc_urb->stream),
1259 				    uvc_urb->sgt,
1260 				    uvc_stream_dir(uvc_urb->stream));
1261 	return usb_submit_urb(uvc_urb->urb, mem_flags);
1262 }
1263 
1264 /*
1265  * uvc_video_decode_data_work: Asynchronous memcpy processing
1266  *
1267  * Copy URB data to video buffers in process context, releasing buffer
1268  * references and requeuing the URB when done.
1269  */
uvc_video_copy_data_work(struct work_struct * work)1270 static void uvc_video_copy_data_work(struct work_struct *work)
1271 {
1272 	struct uvc_urb *uvc_urb = container_of(work, struct uvc_urb, work);
1273 	unsigned int i;
1274 	int ret;
1275 
1276 	for (i = 0; i < uvc_urb->async_operations; i++) {
1277 		struct uvc_copy_op *op = &uvc_urb->copy_operations[i];
1278 
1279 		memcpy(op->dst, op->src, op->len);
1280 
1281 		/* Release reference taken on this buffer. */
1282 		uvc_queue_buffer_release(op->buf);
1283 	}
1284 
1285 	ret = uvc_submit_urb(uvc_urb, GFP_KERNEL);
1286 	if (ret < 0)
1287 		dev_err(&uvc_urb->stream->intf->dev,
1288 			"Failed to resubmit video URB (%d).\n", ret);
1289 }
1290 
uvc_video_decode_data(struct uvc_urb * uvc_urb,struct uvc_buffer * buf,const u8 * data,int len)1291 static void uvc_video_decode_data(struct uvc_urb *uvc_urb,
1292 		struct uvc_buffer *buf, const u8 *data, int len)
1293 {
1294 	unsigned int active_op = uvc_urb->async_operations;
1295 	struct uvc_copy_op *op = &uvc_urb->copy_operations[active_op];
1296 	unsigned int maxlen;
1297 
1298 	if (len <= 0)
1299 		return;
1300 
1301 	maxlen = buf->length - buf->bytesused;
1302 
1303 	/* Take a buffer reference for async work. */
1304 	kref_get(&buf->ref);
1305 
1306 	op->buf = buf;
1307 	op->src = data;
1308 	op->dst = buf->mem + buf->bytesused;
1309 	op->len = min_t(unsigned int, len, maxlen);
1310 
1311 	buf->bytesused += op->len;
1312 
1313 	/* Complete the current frame if the buffer size was exceeded. */
1314 	if (len > maxlen) {
1315 		uvc_dbg(uvc_urb->stream->dev, FRAME,
1316 			"Frame complete (overflow)\n");
1317 		buf->error = 1;
1318 		buf->state = UVC_BUF_STATE_READY;
1319 	}
1320 
1321 	uvc_urb->async_operations++;
1322 }
1323 
uvc_video_decode_end(struct uvc_streaming * stream,struct uvc_buffer * buf,const u8 * data,int len)1324 static void uvc_video_decode_end(struct uvc_streaming *stream,
1325 		struct uvc_buffer *buf, const u8 *data, int len)
1326 {
1327 	/* Mark the buffer as done if the EOF marker is set. */
1328 	if (data[1] & UVC_STREAM_EOF && buf->bytesused != 0) {
1329 		uvc_dbg(stream->dev, FRAME, "Frame complete (EOF found)\n");
1330 		if (data[0] == len)
1331 			uvc_dbg(stream->dev, FRAME, "EOF in empty payload\n");
1332 		buf->state = UVC_BUF_STATE_READY;
1333 		if (stream->dev->quirks & UVC_QUIRK_STREAM_NO_FID)
1334 			stream->last_fid ^= UVC_STREAM_FID;
1335 	}
1336 }
1337 
1338 /*
1339  * Video payload encoding is handled by uvc_video_encode_header() and
1340  * uvc_video_encode_data(). Only bulk transfers are currently supported.
1341  *
1342  * uvc_video_encode_header is called at the start of a payload. It adds header
1343  * data to the transfer buffer and returns the header size. As the only known
1344  * UVC output device transfers a whole frame in a single payload, the EOF bit
1345  * is always set in the header.
1346  *
1347  * uvc_video_encode_data is called for every URB and copies the data from the
1348  * video buffer to the transfer buffer.
1349  */
uvc_video_encode_header(struct uvc_streaming * stream,struct uvc_buffer * buf,u8 * data,int len)1350 static int uvc_video_encode_header(struct uvc_streaming *stream,
1351 		struct uvc_buffer *buf, u8 *data, int len)
1352 {
1353 	data[0] = 2;	/* Header length */
1354 	data[1] = UVC_STREAM_EOH | UVC_STREAM_EOF
1355 		| (stream->last_fid & UVC_STREAM_FID);
1356 	return 2;
1357 }
1358 
uvc_video_encode_data(struct uvc_streaming * stream,struct uvc_buffer * buf,u8 * data,int len)1359 static int uvc_video_encode_data(struct uvc_streaming *stream,
1360 		struct uvc_buffer *buf, u8 *data, int len)
1361 {
1362 	struct uvc_video_queue *queue = &stream->queue;
1363 	unsigned int nbytes;
1364 	void *mem;
1365 
1366 	/* Copy video data to the URB buffer. */
1367 	mem = buf->mem + queue->buf_used;
1368 	nbytes = min((unsigned int)len, buf->bytesused - queue->buf_used);
1369 	nbytes = min(stream->bulk.max_payload_size - stream->bulk.payload_size,
1370 			nbytes);
1371 	memcpy(data, mem, nbytes);
1372 
1373 	queue->buf_used += nbytes;
1374 
1375 	return nbytes;
1376 }
1377 
1378 /* ------------------------------------------------------------------------
1379  * Metadata
1380  */
1381 
1382 /*
1383  * Additionally to the payload headers we also want to provide the user with USB
1384  * Frame Numbers and system time values. The resulting buffer is thus composed
1385  * of blocks, containing a 64-bit timestamp in  nanoseconds, a 16-bit USB Frame
1386  * Number, and a copy of the payload header.
1387  *
1388  * Ideally we want to capture all payload headers for each frame. However, their
1389  * number is unknown and unbound. We thus drop headers that contain no vendor
1390  * data and that either contain no SCR value or an SCR value identical to the
1391  * previous header.
1392  */
uvc_video_decode_meta(struct uvc_streaming * stream,struct uvc_buffer * meta_buf,const u8 * mem,unsigned int length)1393 static void uvc_video_decode_meta(struct uvc_streaming *stream,
1394 				  struct uvc_buffer *meta_buf,
1395 				  const u8 *mem, unsigned int length)
1396 {
1397 	struct uvc_meta_buf *meta;
1398 	size_t len_std = 2;
1399 	bool has_pts, has_scr;
1400 	unsigned long flags;
1401 	unsigned int sof;
1402 	ktime_t time;
1403 	const u8 *scr;
1404 
1405 	if (!meta_buf || length == 2)
1406 		return;
1407 
1408 	if (meta_buf->length - meta_buf->bytesused <
1409 	    length + sizeof(meta->ns) + sizeof(meta->sof)) {
1410 		meta_buf->error = 1;
1411 		return;
1412 	}
1413 
1414 	has_pts = mem[1] & UVC_STREAM_PTS;
1415 	has_scr = mem[1] & UVC_STREAM_SCR;
1416 
1417 	if (has_pts) {
1418 		len_std += 4;
1419 		scr = mem + 6;
1420 	} else {
1421 		scr = mem + 2;
1422 	}
1423 
1424 	if (has_scr)
1425 		len_std += 6;
1426 
1427 	if (stream->meta.format == V4L2_META_FMT_UVC)
1428 		length = len_std;
1429 
1430 	if (length == len_std && (!has_scr ||
1431 				  !memcmp(scr, stream->clock.last_scr, 6)))
1432 		return;
1433 
1434 	meta = (struct uvc_meta_buf *)((u8 *)meta_buf->mem + meta_buf->bytesused);
1435 	local_irq_save(flags);
1436 	time = uvc_video_get_time();
1437 	sof = usb_get_current_frame_number(stream->dev->udev);
1438 	local_irq_restore(flags);
1439 	put_unaligned(ktime_to_ns(time), &meta->ns);
1440 	put_unaligned(sof, &meta->sof);
1441 
1442 	if (has_scr)
1443 		memcpy(stream->clock.last_scr, scr, 6);
1444 
1445 	meta->length = mem[0];
1446 	meta->flags  = mem[1];
1447 	memcpy(meta->buf, &mem[2], length - 2);
1448 	meta_buf->bytesused += length + sizeof(meta->ns) + sizeof(meta->sof);
1449 
1450 	uvc_dbg(stream->dev, FRAME,
1451 		"%s(): t-sys %lluns, SOF %u, len %u, flags 0x%x, PTS %u, STC %u frame SOF %u\n",
1452 		__func__, ktime_to_ns(time), meta->sof, meta->length,
1453 		meta->flags,
1454 		has_pts ? *(u32 *)meta->buf : 0,
1455 		has_scr ? *(u32 *)scr : 0,
1456 		has_scr ? *(u32 *)(scr + 4) & 0x7ff : 0);
1457 }
1458 
1459 /* ------------------------------------------------------------------------
1460  * URB handling
1461  */
1462 
1463 /*
1464  * Set error flag for incomplete buffer.
1465  */
uvc_video_validate_buffer(const struct uvc_streaming * stream,struct uvc_buffer * buf)1466 static void uvc_video_validate_buffer(const struct uvc_streaming *stream,
1467 				      struct uvc_buffer *buf)
1468 {
1469 	if (stream->ctrl.dwMaxVideoFrameSize != buf->bytesused &&
1470 	    !(stream->cur_format->flags & UVC_FMT_FLAG_COMPRESSED))
1471 		buf->error = 1;
1472 }
1473 
1474 /*
1475  * Completion handler for video URBs.
1476  */
1477 
uvc_video_next_buffers(struct uvc_streaming * stream,struct uvc_buffer ** video_buf,struct uvc_buffer ** meta_buf)1478 static void uvc_video_next_buffers(struct uvc_streaming *stream,
1479 		struct uvc_buffer **video_buf, struct uvc_buffer **meta_buf)
1480 {
1481 	uvc_video_validate_buffer(stream, *video_buf);
1482 
1483 	if (*meta_buf) {
1484 		struct vb2_v4l2_buffer *vb2_meta = &(*meta_buf)->buf;
1485 		const struct vb2_v4l2_buffer *vb2_video = &(*video_buf)->buf;
1486 
1487 		vb2_meta->sequence = vb2_video->sequence;
1488 		vb2_meta->field = vb2_video->field;
1489 		vb2_meta->vb2_buf.timestamp = vb2_video->vb2_buf.timestamp;
1490 
1491 		(*meta_buf)->state = UVC_BUF_STATE_READY;
1492 		if (!(*meta_buf)->error)
1493 			(*meta_buf)->error = (*video_buf)->error;
1494 		*meta_buf = uvc_queue_next_buffer(&stream->meta.queue,
1495 						  *meta_buf);
1496 	}
1497 	*video_buf = uvc_queue_next_buffer(&stream->queue, *video_buf);
1498 }
1499 
uvc_video_decode_isoc(struct uvc_urb * uvc_urb,struct uvc_buffer * buf,struct uvc_buffer * meta_buf)1500 static void uvc_video_decode_isoc(struct uvc_urb *uvc_urb,
1501 			struct uvc_buffer *buf, struct uvc_buffer *meta_buf)
1502 {
1503 	struct urb *urb = uvc_urb->urb;
1504 	struct uvc_streaming *stream = uvc_urb->stream;
1505 	u8 *mem;
1506 	int ret, i;
1507 
1508 	for (i = 0; i < urb->number_of_packets; ++i) {
1509 		if (urb->iso_frame_desc[i].status < 0) {
1510 			uvc_dbg(stream->dev, FRAME,
1511 				"USB isochronous frame lost (%d)\n",
1512 				urb->iso_frame_desc[i].status);
1513 			/* Mark the buffer as faulty. */
1514 			if (buf != NULL)
1515 				buf->error = 1;
1516 			continue;
1517 		}
1518 
1519 		/* Decode the payload header. */
1520 		mem = urb->transfer_buffer + urb->iso_frame_desc[i].offset;
1521 		do {
1522 			ret = uvc_video_decode_start(stream, buf, mem,
1523 				urb->iso_frame_desc[i].actual_length);
1524 			if (ret == -EAGAIN)
1525 				uvc_video_next_buffers(stream, &buf, &meta_buf);
1526 		} while (ret == -EAGAIN);
1527 
1528 		if (ret < 0)
1529 			continue;
1530 
1531 		uvc_video_decode_meta(stream, meta_buf, mem, ret);
1532 
1533 		/* Decode the payload data. */
1534 		uvc_video_decode_data(uvc_urb, buf, mem + ret,
1535 			urb->iso_frame_desc[i].actual_length - ret);
1536 
1537 		/* Process the header again. */
1538 		uvc_video_decode_end(stream, buf, mem,
1539 			urb->iso_frame_desc[i].actual_length);
1540 
1541 		if (buf->state == UVC_BUF_STATE_READY)
1542 			uvc_video_next_buffers(stream, &buf, &meta_buf);
1543 	}
1544 }
1545 
uvc_video_decode_bulk(struct uvc_urb * uvc_urb,struct uvc_buffer * buf,struct uvc_buffer * meta_buf)1546 static void uvc_video_decode_bulk(struct uvc_urb *uvc_urb,
1547 			struct uvc_buffer *buf, struct uvc_buffer *meta_buf)
1548 {
1549 	struct urb *urb = uvc_urb->urb;
1550 	struct uvc_streaming *stream = uvc_urb->stream;
1551 	u8 *mem;
1552 	int len, ret;
1553 
1554 	/*
1555 	 * Ignore ZLPs if they're not part of a frame, otherwise process them
1556 	 * to trigger the end of payload detection.
1557 	 */
1558 	if (urb->actual_length == 0 && stream->bulk.header_size == 0)
1559 		return;
1560 
1561 	mem = urb->transfer_buffer;
1562 	len = urb->actual_length;
1563 	stream->bulk.payload_size += len;
1564 
1565 	/*
1566 	 * If the URB is the first of its payload, decode and save the
1567 	 * header.
1568 	 */
1569 	if (stream->bulk.header_size == 0 && !stream->bulk.skip_payload) {
1570 		do {
1571 			ret = uvc_video_decode_start(stream, buf, mem, len);
1572 			if (ret == -EAGAIN)
1573 				uvc_video_next_buffers(stream, &buf, &meta_buf);
1574 		} while (ret == -EAGAIN);
1575 
1576 		/* If an error occurred skip the rest of the payload. */
1577 		if (ret < 0 || buf == NULL) {
1578 			stream->bulk.skip_payload = 1;
1579 		} else {
1580 			memcpy(stream->bulk.header, mem, ret);
1581 			stream->bulk.header_size = ret;
1582 
1583 			uvc_video_decode_meta(stream, meta_buf, mem, ret);
1584 
1585 			mem += ret;
1586 			len -= ret;
1587 		}
1588 	}
1589 
1590 	/*
1591 	 * The buffer queue might have been cancelled while a bulk transfer
1592 	 * was in progress, so we can reach here with buf equal to NULL. Make
1593 	 * sure buf is never dereferenced if NULL.
1594 	 */
1595 
1596 	/* Prepare video data for processing. */
1597 	if (!stream->bulk.skip_payload && buf != NULL)
1598 		uvc_video_decode_data(uvc_urb, buf, mem, len);
1599 
1600 	/*
1601 	 * Detect the payload end by a URB smaller than the maximum size (or
1602 	 * a payload size equal to the maximum) and process the header again.
1603 	 */
1604 	if (urb->actual_length < urb->transfer_buffer_length ||
1605 	    stream->bulk.payload_size >= stream->bulk.max_payload_size) {
1606 		if (!stream->bulk.skip_payload && buf != NULL) {
1607 			uvc_video_decode_end(stream, buf, stream->bulk.header,
1608 				stream->bulk.payload_size);
1609 			if (buf->state == UVC_BUF_STATE_READY)
1610 				uvc_video_next_buffers(stream, &buf, &meta_buf);
1611 		}
1612 
1613 		stream->bulk.header_size = 0;
1614 		stream->bulk.skip_payload = 0;
1615 		stream->bulk.payload_size = 0;
1616 	}
1617 }
1618 
uvc_video_encode_bulk(struct uvc_urb * uvc_urb,struct uvc_buffer * buf,struct uvc_buffer * meta_buf)1619 static void uvc_video_encode_bulk(struct uvc_urb *uvc_urb,
1620 	struct uvc_buffer *buf, struct uvc_buffer *meta_buf)
1621 {
1622 	struct urb *urb = uvc_urb->urb;
1623 	struct uvc_streaming *stream = uvc_urb->stream;
1624 
1625 	u8 *mem = urb->transfer_buffer;
1626 	int len = stream->urb_size, ret;
1627 
1628 	if (buf == NULL) {
1629 		urb->transfer_buffer_length = 0;
1630 		return;
1631 	}
1632 
1633 	/* If the URB is the first of its payload, add the header. */
1634 	if (stream->bulk.header_size == 0) {
1635 		ret = uvc_video_encode_header(stream, buf, mem, len);
1636 		stream->bulk.header_size = ret;
1637 		stream->bulk.payload_size += ret;
1638 		mem += ret;
1639 		len -= ret;
1640 	}
1641 
1642 	/* Process video data. */
1643 	ret = uvc_video_encode_data(stream, buf, mem, len);
1644 
1645 	stream->bulk.payload_size += ret;
1646 	len -= ret;
1647 
1648 	if (buf->bytesused == stream->queue.buf_used ||
1649 	    stream->bulk.payload_size == stream->bulk.max_payload_size) {
1650 		if (buf->bytesused == stream->queue.buf_used) {
1651 			stream->queue.buf_used = 0;
1652 			buf->state = UVC_BUF_STATE_READY;
1653 			buf->buf.sequence = ++stream->sequence;
1654 			uvc_queue_next_buffer(&stream->queue, buf);
1655 			stream->last_fid ^= UVC_STREAM_FID;
1656 		}
1657 
1658 		stream->bulk.header_size = 0;
1659 		stream->bulk.payload_size = 0;
1660 	}
1661 
1662 	urb->transfer_buffer_length = stream->urb_size - len;
1663 }
1664 
uvc_video_complete(struct urb * urb)1665 static void uvc_video_complete(struct urb *urb)
1666 {
1667 	struct uvc_urb *uvc_urb = urb->context;
1668 	struct uvc_streaming *stream = uvc_urb->stream;
1669 	struct uvc_video_queue *queue = &stream->queue;
1670 	struct uvc_video_queue *qmeta = &stream->meta.queue;
1671 	struct vb2_queue *vb2_qmeta = stream->meta.vdev.queue;
1672 	struct uvc_buffer *buf = NULL;
1673 	struct uvc_buffer *buf_meta = NULL;
1674 	unsigned long flags;
1675 	int ret;
1676 
1677 	switch (urb->status) {
1678 	case 0:
1679 		break;
1680 
1681 	default:
1682 		dev_warn(&stream->intf->dev,
1683 			 "Non-zero status (%d) in video completion handler.\n",
1684 			 urb->status);
1685 		fallthrough;
1686 	case -ENOENT:		/* usb_poison_urb() called. */
1687 		if (stream->frozen)
1688 			return;
1689 		fallthrough;
1690 	case -ECONNRESET:	/* usb_unlink_urb() called. */
1691 	case -ESHUTDOWN:	/* The endpoint is being disabled. */
1692 		uvc_queue_cancel(queue, urb->status == -ESHUTDOWN);
1693 		if (vb2_qmeta)
1694 			uvc_queue_cancel(qmeta, urb->status == -ESHUTDOWN);
1695 		return;
1696 	}
1697 
1698 	buf = uvc_queue_get_current_buffer(queue);
1699 
1700 	if (vb2_qmeta) {
1701 		spin_lock_irqsave(&qmeta->irqlock, flags);
1702 		if (!list_empty(&qmeta->irqqueue))
1703 			buf_meta = list_first_entry(&qmeta->irqqueue,
1704 						    struct uvc_buffer, queue);
1705 		spin_unlock_irqrestore(&qmeta->irqlock, flags);
1706 	}
1707 
1708 	/* Re-initialise the URB async work. */
1709 	uvc_urb->async_operations = 0;
1710 
1711 	/* Sync DMA and invalidate vmap range. */
1712 	dma_sync_sgtable_for_cpu(uvc_stream_to_dmadev(uvc_urb->stream),
1713 				 uvc_urb->sgt, uvc_stream_dir(stream));
1714 	invalidate_kernel_vmap_range(uvc_urb->buffer,
1715 				     uvc_urb->stream->urb_size);
1716 
1717 	/*
1718 	 * Process the URB headers, and optionally queue expensive memcpy tasks
1719 	 * to be deferred to a work queue.
1720 	 */
1721 	stream->decode(uvc_urb, buf, buf_meta);
1722 
1723 	/* If no async work is needed, resubmit the URB immediately. */
1724 	if (!uvc_urb->async_operations) {
1725 		ret = uvc_submit_urb(uvc_urb, GFP_ATOMIC);
1726 		if (ret < 0)
1727 			dev_err(&stream->intf->dev,
1728 				"Failed to resubmit video URB (%d).\n", ret);
1729 		return;
1730 	}
1731 
1732 	queue_work(stream->async_wq, &uvc_urb->work);
1733 }
1734 
1735 /*
1736  * Free transfer buffers.
1737  */
uvc_free_urb_buffers(struct uvc_streaming * stream)1738 static void uvc_free_urb_buffers(struct uvc_streaming *stream)
1739 {
1740 	struct device *dma_dev = uvc_stream_to_dmadev(stream);
1741 	struct uvc_urb *uvc_urb;
1742 
1743 	for_each_uvc_urb(uvc_urb, stream) {
1744 		if (!uvc_urb->buffer)
1745 			continue;
1746 
1747 		dma_vunmap_noncontiguous(dma_dev, uvc_urb->buffer);
1748 		dma_free_noncontiguous(dma_dev, stream->urb_size, uvc_urb->sgt,
1749 				       uvc_stream_dir(stream));
1750 
1751 		uvc_urb->buffer = NULL;
1752 		uvc_urb->sgt = NULL;
1753 	}
1754 
1755 	stream->urb_size = 0;
1756 }
1757 
uvc_alloc_urb_buffer(struct uvc_streaming * stream,struct uvc_urb * uvc_urb,gfp_t gfp_flags)1758 static bool uvc_alloc_urb_buffer(struct uvc_streaming *stream,
1759 				 struct uvc_urb *uvc_urb, gfp_t gfp_flags)
1760 {
1761 	struct device *dma_dev = uvc_stream_to_dmadev(stream);
1762 
1763 	uvc_urb->sgt = dma_alloc_noncontiguous(dma_dev, stream->urb_size,
1764 					       uvc_stream_dir(stream),
1765 					       gfp_flags, 0);
1766 	if (!uvc_urb->sgt)
1767 		return false;
1768 	uvc_urb->dma = uvc_urb->sgt->sgl->dma_address;
1769 
1770 	uvc_urb->buffer = dma_vmap_noncontiguous(dma_dev, stream->urb_size,
1771 						 uvc_urb->sgt);
1772 	if (!uvc_urb->buffer) {
1773 		dma_free_noncontiguous(dma_dev, stream->urb_size,
1774 				       uvc_urb->sgt,
1775 				       uvc_stream_dir(stream));
1776 		uvc_urb->sgt = NULL;
1777 		return false;
1778 	}
1779 
1780 	return true;
1781 }
1782 
1783 /*
1784  * Allocate transfer buffers. This function can be called with buffers
1785  * already allocated when resuming from suspend, in which case it will
1786  * return without touching the buffers.
1787  *
1788  * Limit the buffer size to UVC_MAX_PACKETS bulk/isochronous packets. If the
1789  * system is too low on memory try successively smaller numbers of packets
1790  * until allocation succeeds.
1791  *
1792  * Return the number of allocated packets on success or 0 when out of memory.
1793  */
uvc_alloc_urb_buffers(struct uvc_streaming * stream,unsigned int size,unsigned int psize,gfp_t gfp_flags)1794 static int uvc_alloc_urb_buffers(struct uvc_streaming *stream,
1795 	unsigned int size, unsigned int psize, gfp_t gfp_flags)
1796 {
1797 	unsigned int npackets;
1798 	unsigned int i;
1799 
1800 	/* Buffers are already allocated, bail out. */
1801 	if (stream->urb_size)
1802 		return stream->urb_size / psize;
1803 
1804 	/*
1805 	 * Compute the number of packets. Bulk endpoints might transfer UVC
1806 	 * payloads across multiple URBs.
1807 	 */
1808 	npackets = DIV_ROUND_UP(size, psize);
1809 	if (npackets > UVC_MAX_PACKETS)
1810 		npackets = UVC_MAX_PACKETS;
1811 
1812 	/* Retry allocations until one succeed. */
1813 	for (; npackets > 1; npackets /= 2) {
1814 		stream->urb_size = psize * npackets;
1815 
1816 		for (i = 0; i < UVC_URBS; ++i) {
1817 			struct uvc_urb *uvc_urb = &stream->uvc_urb[i];
1818 
1819 			if (!uvc_alloc_urb_buffer(stream, uvc_urb, gfp_flags)) {
1820 				uvc_free_urb_buffers(stream);
1821 				break;
1822 			}
1823 
1824 			uvc_urb->stream = stream;
1825 		}
1826 
1827 		if (i == UVC_URBS) {
1828 			uvc_dbg(stream->dev, VIDEO,
1829 				"Allocated %u URB buffers of %ux%u bytes each\n",
1830 				UVC_URBS, npackets, psize);
1831 			return npackets;
1832 		}
1833 	}
1834 
1835 	uvc_dbg(stream->dev, VIDEO,
1836 		"Failed to allocate URB buffers (%u bytes per packet)\n",
1837 		psize);
1838 	return 0;
1839 }
1840 
1841 /*
1842  * Uninitialize isochronous/bulk URBs and free transfer buffers.
1843  */
uvc_video_stop_transfer(struct uvc_streaming * stream,int free_buffers)1844 static void uvc_video_stop_transfer(struct uvc_streaming *stream,
1845 				    int free_buffers)
1846 {
1847 	struct uvc_urb *uvc_urb;
1848 
1849 	uvc_video_stats_stop(stream);
1850 
1851 	/*
1852 	 * We must poison the URBs rather than kill them to ensure that even
1853 	 * after the completion handler returns, any asynchronous workqueues
1854 	 * will be prevented from resubmitting the URBs.
1855 	 */
1856 	for_each_uvc_urb(uvc_urb, stream)
1857 		usb_poison_urb(uvc_urb->urb);
1858 
1859 	flush_workqueue(stream->async_wq);
1860 
1861 	for_each_uvc_urb(uvc_urb, stream) {
1862 		usb_free_urb(uvc_urb->urb);
1863 		uvc_urb->urb = NULL;
1864 	}
1865 
1866 	if (free_buffers)
1867 		uvc_free_urb_buffers(stream);
1868 }
1869 
1870 /*
1871  * Compute the maximum number of bytes per interval for an endpoint.
1872  */
uvc_endpoint_max_bpi(struct usb_device * dev,struct usb_host_endpoint * ep)1873 u16 uvc_endpoint_max_bpi(struct usb_device *dev, struct usb_host_endpoint *ep)
1874 {
1875 	u16 psize;
1876 
1877 	switch (dev->speed) {
1878 	case USB_SPEED_SUPER:
1879 	case USB_SPEED_SUPER_PLUS:
1880 		return le16_to_cpu(ep->ss_ep_comp.wBytesPerInterval);
1881 	default:
1882 		psize = usb_endpoint_maxp(&ep->desc);
1883 		psize *= usb_endpoint_maxp_mult(&ep->desc);
1884 		return psize;
1885 	}
1886 }
1887 
1888 /*
1889  * Initialize isochronous URBs and allocate transfer buffers. The packet size
1890  * is given by the endpoint.
1891  */
uvc_init_video_isoc(struct uvc_streaming * stream,struct usb_host_endpoint * ep,gfp_t gfp_flags)1892 static int uvc_init_video_isoc(struct uvc_streaming *stream,
1893 	struct usb_host_endpoint *ep, gfp_t gfp_flags)
1894 {
1895 	struct urb *urb;
1896 	struct uvc_urb *uvc_urb;
1897 	unsigned int npackets, i;
1898 	u16 psize;
1899 	u32 size;
1900 
1901 	psize = uvc_endpoint_max_bpi(stream->dev->udev, ep);
1902 	size = stream->ctrl.dwMaxVideoFrameSize;
1903 
1904 	npackets = uvc_alloc_urb_buffers(stream, size, psize, gfp_flags);
1905 	if (npackets == 0)
1906 		return -ENOMEM;
1907 
1908 	size = npackets * psize;
1909 
1910 	for_each_uvc_urb(uvc_urb, stream) {
1911 		urb = usb_alloc_urb(npackets, gfp_flags);
1912 		if (urb == NULL) {
1913 			uvc_video_stop_transfer(stream, 1);
1914 			return -ENOMEM;
1915 		}
1916 
1917 		urb->dev = stream->dev->udev;
1918 		urb->context = uvc_urb;
1919 		urb->pipe = usb_rcvisocpipe(stream->dev->udev,
1920 				ep->desc.bEndpointAddress);
1921 		urb->transfer_flags = URB_ISO_ASAP | URB_NO_TRANSFER_DMA_MAP;
1922 		urb->transfer_dma = uvc_urb->dma;
1923 		urb->interval = ep->desc.bInterval;
1924 		urb->transfer_buffer = uvc_urb->buffer;
1925 		urb->complete = uvc_video_complete;
1926 		urb->number_of_packets = npackets;
1927 		urb->transfer_buffer_length = size;
1928 
1929 		for (i = 0; i < npackets; ++i) {
1930 			urb->iso_frame_desc[i].offset = i * psize;
1931 			urb->iso_frame_desc[i].length = psize;
1932 		}
1933 
1934 		uvc_urb->urb = urb;
1935 	}
1936 
1937 	return 0;
1938 }
1939 
1940 /*
1941  * Initialize bulk URBs and allocate transfer buffers. The packet size is
1942  * given by the endpoint.
1943  */
uvc_init_video_bulk(struct uvc_streaming * stream,struct usb_host_endpoint * ep,gfp_t gfp_flags)1944 static int uvc_init_video_bulk(struct uvc_streaming *stream,
1945 	struct usb_host_endpoint *ep, gfp_t gfp_flags)
1946 {
1947 	struct urb *urb;
1948 	struct uvc_urb *uvc_urb;
1949 	unsigned int npackets, pipe;
1950 	u16 psize;
1951 	u32 size;
1952 
1953 	psize = usb_endpoint_maxp(&ep->desc);
1954 	size = stream->ctrl.dwMaxPayloadTransferSize;
1955 	stream->bulk.max_payload_size = size;
1956 
1957 	npackets = uvc_alloc_urb_buffers(stream, size, psize, gfp_flags);
1958 	if (npackets == 0)
1959 		return -ENOMEM;
1960 
1961 	size = npackets * psize;
1962 
1963 	if (usb_endpoint_dir_in(&ep->desc))
1964 		pipe = usb_rcvbulkpipe(stream->dev->udev,
1965 				       ep->desc.bEndpointAddress);
1966 	else
1967 		pipe = usb_sndbulkpipe(stream->dev->udev,
1968 				       ep->desc.bEndpointAddress);
1969 
1970 	if (stream->type == V4L2_BUF_TYPE_VIDEO_OUTPUT)
1971 		size = 0;
1972 
1973 	for_each_uvc_urb(uvc_urb, stream) {
1974 		urb = usb_alloc_urb(0, gfp_flags);
1975 		if (urb == NULL) {
1976 			uvc_video_stop_transfer(stream, 1);
1977 			return -ENOMEM;
1978 		}
1979 
1980 		usb_fill_bulk_urb(urb, stream->dev->udev, pipe,	uvc_urb->buffer,
1981 				  size, uvc_video_complete, uvc_urb);
1982 		urb->transfer_flags = URB_NO_TRANSFER_DMA_MAP;
1983 		urb->transfer_dma = uvc_urb->dma;
1984 
1985 		uvc_urb->urb = urb;
1986 	}
1987 
1988 	return 0;
1989 }
1990 
1991 /*
1992  * Initialize isochronous/bulk URBs and allocate transfer buffers.
1993  */
uvc_video_start_transfer(struct uvc_streaming * stream,gfp_t gfp_flags)1994 static int uvc_video_start_transfer(struct uvc_streaming *stream,
1995 				    gfp_t gfp_flags)
1996 {
1997 	struct usb_interface *intf = stream->intf;
1998 	struct usb_host_endpoint *ep;
1999 	struct uvc_urb *uvc_urb;
2000 	unsigned int i;
2001 	int ret;
2002 
2003 	stream->sequence = -1;
2004 	stream->last_fid = -1;
2005 	stream->bulk.header_size = 0;
2006 	stream->bulk.skip_payload = 0;
2007 	stream->bulk.payload_size = 0;
2008 
2009 	uvc_video_stats_start(stream);
2010 
2011 	if (intf->num_altsetting > 1) {
2012 		struct usb_host_endpoint *best_ep = NULL;
2013 		unsigned int best_psize = UINT_MAX;
2014 		unsigned int bandwidth;
2015 		unsigned int altsetting;
2016 		int intfnum = stream->intfnum;
2017 
2018 		/* Isochronous endpoint, select the alternate setting. */
2019 		bandwidth = stream->ctrl.dwMaxPayloadTransferSize;
2020 
2021 		if (bandwidth == 0) {
2022 			uvc_dbg(stream->dev, VIDEO,
2023 				"Device requested null bandwidth, defaulting to lowest\n");
2024 			bandwidth = 1;
2025 		} else {
2026 			uvc_dbg(stream->dev, VIDEO,
2027 				"Device requested %u B/frame bandwidth\n",
2028 				bandwidth);
2029 		}
2030 
2031 		for (i = 0; i < intf->num_altsetting; ++i) {
2032 			struct usb_host_interface *alts;
2033 			unsigned int psize;
2034 
2035 			alts = &intf->altsetting[i];
2036 			ep = uvc_find_endpoint(alts,
2037 				stream->header.bEndpointAddress);
2038 			if (ep == NULL)
2039 				continue;
2040 
2041 			/* Check if the bandwidth is high enough. */
2042 			psize = uvc_endpoint_max_bpi(stream->dev->udev, ep);
2043 			if (psize >= bandwidth && psize <= best_psize) {
2044 				altsetting = alts->desc.bAlternateSetting;
2045 				best_psize = psize;
2046 				best_ep = ep;
2047 			}
2048 		}
2049 
2050 		if (best_ep == NULL) {
2051 			uvc_dbg(stream->dev, VIDEO,
2052 				"No fast enough alt setting for requested bandwidth\n");
2053 			return -EIO;
2054 		}
2055 
2056 		uvc_dbg(stream->dev, VIDEO,
2057 			"Selecting alternate setting %u (%u B/frame bandwidth)\n",
2058 			altsetting, best_psize);
2059 
2060 		/*
2061 		 * Some devices, namely the Logitech C910 and B910, are unable
2062 		 * to recover from a USB autosuspend, unless the alternate
2063 		 * setting of the streaming interface is toggled.
2064 		 */
2065 		if (stream->dev->quirks & UVC_QUIRK_WAKE_AUTOSUSPEND) {
2066 			usb_set_interface(stream->dev->udev, intfnum,
2067 					  altsetting);
2068 			usb_set_interface(stream->dev->udev, intfnum, 0);
2069 		}
2070 
2071 		ret = usb_set_interface(stream->dev->udev, intfnum, altsetting);
2072 		if (ret < 0)
2073 			return ret;
2074 
2075 		ret = uvc_init_video_isoc(stream, best_ep, gfp_flags);
2076 	} else {
2077 		/* Bulk endpoint, proceed to URB initialization. */
2078 		ep = uvc_find_endpoint(&intf->altsetting[0],
2079 				stream->header.bEndpointAddress);
2080 		if (ep == NULL)
2081 			return -EIO;
2082 
2083 		/* Reject broken descriptors. */
2084 		if (usb_endpoint_maxp(&ep->desc) == 0)
2085 			return -EIO;
2086 
2087 		ret = uvc_init_video_bulk(stream, ep, gfp_flags);
2088 	}
2089 
2090 	if (ret < 0)
2091 		return ret;
2092 
2093 	/* Submit the URBs. */
2094 	for_each_uvc_urb(uvc_urb, stream) {
2095 		ret = uvc_submit_urb(uvc_urb, gfp_flags);
2096 		if (ret < 0) {
2097 			dev_err(&stream->intf->dev,
2098 				"Failed to submit URB %u (%d).\n",
2099 				uvc_urb_index(uvc_urb), ret);
2100 			uvc_video_stop_transfer(stream, 1);
2101 			return ret;
2102 		}
2103 	}
2104 
2105 	/*
2106 	 * The Logitech C920 temporarily forgets that it should not be adjusting
2107 	 * Exposure Absolute during init so restore controls to stored values.
2108 	 */
2109 	if (stream->dev->quirks & UVC_QUIRK_RESTORE_CTRLS_ON_INIT)
2110 		uvc_ctrl_restore_values(stream->dev);
2111 
2112 	return 0;
2113 }
2114 
2115 /* --------------------------------------------------------------------------
2116  * Suspend/resume
2117  */
2118 
2119 /*
2120  * Stop streaming without disabling the video queue.
2121  *
2122  * To let userspace applications resume without trouble, we must not touch the
2123  * video buffers in any way. We mark the device as frozen to make sure the URB
2124  * completion handler won't try to cancel the queue when we kill the URBs.
2125  */
uvc_video_suspend(struct uvc_streaming * stream)2126 int uvc_video_suspend(struct uvc_streaming *stream)
2127 {
2128 	if (!uvc_queue_streaming(&stream->queue))
2129 		return 0;
2130 
2131 	stream->frozen = 1;
2132 	uvc_video_stop_transfer(stream, 0);
2133 	usb_set_interface(stream->dev->udev, stream->intfnum, 0);
2134 	return 0;
2135 }
2136 
2137 /*
2138  * Reconfigure the video interface and restart streaming if it was enabled
2139  * before suspend.
2140  *
2141  * If an error occurs, disable the video queue. This will wake all pending
2142  * buffers, making sure userspace applications are notified of the problem
2143  * instead of waiting forever.
2144  */
uvc_video_resume(struct uvc_streaming * stream,int reset)2145 int uvc_video_resume(struct uvc_streaming *stream, int reset)
2146 {
2147 	int ret;
2148 
2149 	/*
2150 	 * If the bus has been reset on resume, set the alternate setting to 0.
2151 	 * This should be the default value, but some devices crash or otherwise
2152 	 * misbehave if they don't receive a SET_INTERFACE request before any
2153 	 * other video control request.
2154 	 */
2155 	if (reset)
2156 		usb_set_interface(stream->dev->udev, stream->intfnum, 0);
2157 
2158 	stream->frozen = 0;
2159 
2160 	uvc_video_clock_reset(stream);
2161 
2162 	if (!uvc_queue_streaming(&stream->queue))
2163 		return 0;
2164 
2165 	ret = uvc_commit_video(stream, &stream->ctrl);
2166 	if (ret < 0)
2167 		return ret;
2168 
2169 	return uvc_video_start_transfer(stream, GFP_NOIO);
2170 }
2171 
2172 /* ------------------------------------------------------------------------
2173  * Video device
2174  */
2175 
2176 /*
2177  * Initialize the UVC video device by switching to alternate setting 0 and
2178  * retrieve the default format.
2179  *
2180  * Some cameras (namely the Fuji Finepix) set the format and frame
2181  * indexes to zero. The UVC standard doesn't clearly make this a spec
2182  * violation, so try to silently fix the values if possible.
2183  *
2184  * This function is called before registering the device with V4L.
2185  */
uvc_video_init(struct uvc_streaming * stream)2186 int uvc_video_init(struct uvc_streaming *stream)
2187 {
2188 	struct uvc_streaming_control *probe = &stream->ctrl;
2189 	const struct uvc_format *format = NULL;
2190 	const struct uvc_frame *frame = NULL;
2191 	struct uvc_urb *uvc_urb;
2192 	unsigned int i;
2193 	int ret;
2194 
2195 	if (stream->nformats == 0) {
2196 		dev_info(&stream->intf->dev,
2197 			 "No supported video formats found.\n");
2198 		return -EINVAL;
2199 	}
2200 
2201 	atomic_set(&stream->active, 0);
2202 
2203 	/*
2204 	 * Alternate setting 0 should be the default, yet the XBox Live Vision
2205 	 * Cam (and possibly other devices) crash or otherwise misbehave if
2206 	 * they don't receive a SET_INTERFACE request before any other video
2207 	 * control request.
2208 	 */
2209 	usb_set_interface(stream->dev->udev, stream->intfnum, 0);
2210 
2211 	/*
2212 	 * Set the streaming probe control with default streaming parameters
2213 	 * retrieved from the device. Webcams that don't support GET_DEF
2214 	 * requests on the probe control will just keep their current streaming
2215 	 * parameters.
2216 	 */
2217 	if (uvc_get_video_ctrl(stream, probe, 1, UVC_GET_DEF) == 0)
2218 		uvc_set_video_ctrl(stream, probe, 1);
2219 
2220 	/*
2221 	 * Initialize the streaming parameters with the probe control current
2222 	 * value. This makes sure SET_CUR requests on the streaming commit
2223 	 * control will always use values retrieved from a successful GET_CUR
2224 	 * request on the probe control, as required by the UVC specification.
2225 	 */
2226 	ret = uvc_get_video_ctrl(stream, probe, 1, UVC_GET_CUR);
2227 
2228 	/*
2229 	 * Elgato Cam Link 4k can be in a stalled state if the resolution of
2230 	 * the external source has changed while the firmware initializes.
2231 	 * Once in this state, the device is useless until it receives a
2232 	 * USB reset. It has even been observed that the stalled state will
2233 	 * continue even after unplugging the device.
2234 	 */
2235 	if (ret == -EPROTO &&
2236 	    usb_match_one_id(stream->dev->intf, &elgato_cam_link_4k)) {
2237 		dev_err(&stream->intf->dev, "Elgato Cam Link 4K firmware crash detected\n");
2238 		dev_err(&stream->intf->dev, "Resetting the device, unplug and replug to recover\n");
2239 		usb_reset_device(stream->dev->udev);
2240 	}
2241 
2242 	if (ret < 0)
2243 		return ret;
2244 
2245 	/*
2246 	 * Check if the default format descriptor exists. Use the first
2247 	 * available format otherwise.
2248 	 */
2249 	for (i = stream->nformats; i > 0; --i) {
2250 		format = &stream->formats[i-1];
2251 		if (format->index == probe->bFormatIndex)
2252 			break;
2253 	}
2254 
2255 	if (format->nframes == 0) {
2256 		dev_info(&stream->intf->dev,
2257 			 "No frame descriptor found for the default format.\n");
2258 		return -EINVAL;
2259 	}
2260 
2261 	/*
2262 	 * Zero bFrameIndex might be correct. Stream-based formats (including
2263 	 * MPEG-2 TS and DV) do not support frames but have a dummy frame
2264 	 * descriptor with bFrameIndex set to zero. If the default frame
2265 	 * descriptor is not found, use the first available frame.
2266 	 */
2267 	for (i = format->nframes; i > 0; --i) {
2268 		frame = &format->frames[i-1];
2269 		if (frame->bFrameIndex == probe->bFrameIndex)
2270 			break;
2271 	}
2272 
2273 	probe->bFormatIndex = format->index;
2274 	probe->bFrameIndex = frame->bFrameIndex;
2275 
2276 	stream->def_format = format;
2277 	stream->cur_format = format;
2278 	stream->cur_frame = frame;
2279 
2280 	/* Select the video decoding function */
2281 	if (stream->type == V4L2_BUF_TYPE_VIDEO_CAPTURE) {
2282 		if (stream->dev->quirks & UVC_QUIRK_BUILTIN_ISIGHT)
2283 			stream->decode = uvc_video_decode_isight;
2284 		else if (stream->intf->num_altsetting > 1)
2285 			stream->decode = uvc_video_decode_isoc;
2286 		else
2287 			stream->decode = uvc_video_decode_bulk;
2288 	} else {
2289 		if (stream->intf->num_altsetting == 1)
2290 			stream->decode = uvc_video_encode_bulk;
2291 		else {
2292 			dev_info(&stream->intf->dev,
2293 				 "Isochronous endpoints are not supported for video output devices.\n");
2294 			return -EINVAL;
2295 		}
2296 	}
2297 
2298 	/* Prepare asynchronous work items. */
2299 	for_each_uvc_urb(uvc_urb, stream)
2300 		INIT_WORK(&uvc_urb->work, uvc_video_copy_data_work);
2301 
2302 	return 0;
2303 }
2304 
uvc_video_start_streaming(struct uvc_streaming * stream)2305 int uvc_video_start_streaming(struct uvc_streaming *stream)
2306 {
2307 	int ret;
2308 
2309 	ret = uvc_video_clock_init(stream);
2310 	if (ret < 0)
2311 		return ret;
2312 
2313 	/* Commit the streaming parameters. */
2314 	ret = uvc_commit_video(stream, &stream->ctrl);
2315 	if (ret < 0)
2316 		goto error_commit;
2317 
2318 	ret = uvc_video_start_transfer(stream, GFP_KERNEL);
2319 	if (ret < 0)
2320 		goto error_video;
2321 
2322 	return 0;
2323 
2324 error_video:
2325 	usb_set_interface(stream->dev->udev, stream->intfnum, 0);
2326 error_commit:
2327 	uvc_video_clock_cleanup(stream);
2328 
2329 	return ret;
2330 }
2331 
uvc_video_stop_streaming(struct uvc_streaming * stream)2332 void uvc_video_stop_streaming(struct uvc_streaming *stream)
2333 {
2334 	uvc_video_stop_transfer(stream, 1);
2335 
2336 	if (stream->intf->num_altsetting > 1) {
2337 		usb_set_interface(stream->dev->udev, stream->intfnum, 0);
2338 	} else {
2339 		/*
2340 		 * UVC doesn't specify how to inform a bulk-based device
2341 		 * when the video stream is stopped. Windows sends a
2342 		 * CLEAR_FEATURE(HALT) request to the video streaming
2343 		 * bulk endpoint, mimic the same behaviour.
2344 		 */
2345 		unsigned int epnum = stream->header.bEndpointAddress
2346 				   & USB_ENDPOINT_NUMBER_MASK;
2347 		unsigned int dir = stream->header.bEndpointAddress
2348 				 & USB_ENDPOINT_DIR_MASK;
2349 		unsigned int pipe;
2350 
2351 		pipe = usb_sndbulkpipe(stream->dev->udev, epnum) | dir;
2352 		usb_clear_halt(stream->dev->udev, pipe);
2353 	}
2354 
2355 	uvc_video_clock_cleanup(stream);
2356 }
2357