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