transport.c 38 KB

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  1. /* Driver for USB Mass Storage compliant devices
  2. *
  3. * $Id: transport.c,v 1.47 2002/04/22 03:39:43 mdharm Exp $
  4. *
  5. * Current development and maintenance by:
  6. * (c) 1999-2002 Matthew Dharm (mdharm-usb@one-eyed-alien.net)
  7. *
  8. * Developed with the assistance of:
  9. * (c) 2000 David L. Brown, Jr. (usb-storage@davidb.org)
  10. * (c) 2000 Stephen J. Gowdy (SGowdy@lbl.gov)
  11. * (c) 2002 Alan Stern <stern@rowland.org>
  12. *
  13. * Initial work by:
  14. * (c) 1999 Michael Gee (michael@linuxspecific.com)
  15. *
  16. * This driver is based on the 'USB Mass Storage Class' document. This
  17. * describes in detail the protocol used to communicate with such
  18. * devices. Clearly, the designers had SCSI and ATAPI commands in
  19. * mind when they created this document. The commands are all very
  20. * similar to commands in the SCSI-II and ATAPI specifications.
  21. *
  22. * It is important to note that in a number of cases this class
  23. * exhibits class-specific exemptions from the USB specification.
  24. * Notably the usage of NAK, STALL and ACK differs from the norm, in
  25. * that they are used to communicate wait, failed and OK on commands.
  26. *
  27. * Also, for certain devices, the interrupt endpoint is used to convey
  28. * status of a command.
  29. *
  30. * Please see http://www.one-eyed-alien.net/~mdharm/linux-usb for more
  31. * information about this driver.
  32. *
  33. * This program is free software; you can redistribute it and/or modify it
  34. * under the terms of the GNU General Public License as published by the
  35. * Free Software Foundation; either version 2, or (at your option) any
  36. * later version.
  37. *
  38. * This program is distributed in the hope that it will be useful, but
  39. * WITHOUT ANY WARRANTY; without even the implied warranty of
  40. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  41. * General Public License for more details.
  42. *
  43. * You should have received a copy of the GNU General Public License along
  44. * with this program; if not, write to the Free Software Foundation, Inc.,
  45. * 675 Mass Ave, Cambridge, MA 02139, USA.
  46. */
  47. #include <linux/sched.h>
  48. #include <linux/errno.h>
  49. #include <linux/slab.h>
  50. #include <scsi/scsi.h>
  51. #include <scsi/scsi_cmnd.h>
  52. #include <scsi/scsi_device.h>
  53. #include "usb.h"
  54. #include "transport.h"
  55. #include "protocol.h"
  56. #include "scsiglue.h"
  57. #include "debug.h"
  58. /***********************************************************************
  59. * Data transfer routines
  60. ***********************************************************************/
  61. /*
  62. * This is subtle, so pay attention:
  63. * ---------------------------------
  64. * We're very concerned about races with a command abort. Hanging this code
  65. * is a sure fire way to hang the kernel. (Note that this discussion applies
  66. * only to transactions resulting from a scsi queued-command, since only
  67. * these transactions are subject to a scsi abort. Other transactions, such
  68. * as those occurring during device-specific initialization, must be handled
  69. * by a separate code path.)
  70. *
  71. * The abort function (usb_storage_command_abort() in scsiglue.c) first
  72. * sets the machine state and the ABORTING bit in us->flags to prevent
  73. * new URBs from being submitted. It then calls usb_stor_stop_transport()
  74. * below, which atomically tests-and-clears the URB_ACTIVE bit in us->flags
  75. * to see if the current_urb needs to be stopped. Likewise, the SG_ACTIVE
  76. * bit is tested to see if the current_sg scatter-gather request needs to be
  77. * stopped. The timeout callback routine does much the same thing.
  78. *
  79. * When a disconnect occurs, the DISCONNECTING bit in us->flags is set to
  80. * prevent new URBs from being submitted, and usb_stor_stop_transport() is
  81. * called to stop any ongoing requests.
  82. *
  83. * The submit function first verifies that the submitting is allowed
  84. * (neither ABORTING nor DISCONNECTING bits are set) and that the submit
  85. * completes without errors, and only then sets the URB_ACTIVE bit. This
  86. * prevents the stop_transport() function from trying to cancel the URB
  87. * while the submit call is underway. Next, the submit function must test
  88. * the flags to see if an abort or disconnect occurred during the submission
  89. * or before the URB_ACTIVE bit was set. If so, it's essential to cancel
  90. * the URB if it hasn't been cancelled already (i.e., if the URB_ACTIVE bit
  91. * is still set). Either way, the function must then wait for the URB to
  92. * finish. Note that the URB can still be in progress even after a call to
  93. * usb_unlink_urb() returns.
  94. *
  95. * The idea is that (1) once the ABORTING or DISCONNECTING bit is set,
  96. * either the stop_transport() function or the submitting function
  97. * is guaranteed to call usb_unlink_urb() for an active URB,
  98. * and (2) test_and_clear_bit() prevents usb_unlink_urb() from being
  99. * called more than once or from being called during usb_submit_urb().
  100. */
  101. /* This is the completion handler which will wake us up when an URB
  102. * completes.
  103. */
  104. static void usb_stor_blocking_completion(struct urb *urb)
  105. {
  106. struct completion *urb_done_ptr = (struct completion *)urb->context;
  107. complete(urb_done_ptr);
  108. }
  109. /* This is the common part of the URB message submission code
  110. *
  111. * All URBs from the usb-storage driver involved in handling a queued scsi
  112. * command _must_ pass through this function (or something like it) for the
  113. * abort mechanisms to work properly.
  114. */
  115. static int usb_stor_msg_common(struct us_data *us, int timeout)
  116. {
  117. struct completion urb_done;
  118. long timeleft;
  119. int status;
  120. /* don't submit URBs during abort/disconnect processing */
  121. if (us->flags & ABORTING_OR_DISCONNECTING)
  122. return -EIO;
  123. /* set up data structures for the wakeup system */
  124. init_completion(&urb_done);
  125. /* fill the common fields in the URB */
  126. us->current_urb->context = &urb_done;
  127. us->current_urb->actual_length = 0;
  128. us->current_urb->error_count = 0;
  129. us->current_urb->status = 0;
  130. /* we assume that if transfer_buffer isn't us->iobuf then it
  131. * hasn't been mapped for DMA. Yes, this is clunky, but it's
  132. * easier than always having the caller tell us whether the
  133. * transfer buffer has already been mapped. */
  134. us->current_urb->transfer_flags = URB_NO_SETUP_DMA_MAP;
  135. if (us->current_urb->transfer_buffer == us->iobuf)
  136. us->current_urb->transfer_flags |= URB_NO_TRANSFER_DMA_MAP;
  137. us->current_urb->transfer_dma = us->iobuf_dma;
  138. us->current_urb->setup_dma = us->cr_dma;
  139. /* submit the URB */
  140. status = usb_submit_urb(us->current_urb, GFP_NOIO);
  141. if (status) {
  142. /* something went wrong */
  143. return status;
  144. }
  145. /* since the URB has been submitted successfully, it's now okay
  146. * to cancel it */
  147. set_bit(US_FLIDX_URB_ACTIVE, &us->flags);
  148. /* did an abort/disconnect occur during the submission? */
  149. if (us->flags & ABORTING_OR_DISCONNECTING) {
  150. /* cancel the URB, if it hasn't been cancelled already */
  151. if (test_and_clear_bit(US_FLIDX_URB_ACTIVE, &us->flags)) {
  152. US_DEBUGP("-- cancelling URB\n");
  153. usb_unlink_urb(us->current_urb);
  154. }
  155. }
  156. /* wait for the completion of the URB */
  157. timeleft = wait_for_completion_interruptible_timeout(
  158. &urb_done, timeout ? : MAX_SCHEDULE_TIMEOUT);
  159. clear_bit(US_FLIDX_URB_ACTIVE, &us->flags);
  160. if (timeleft <= 0) {
  161. US_DEBUGP("%s -- cancelling URB\n",
  162. timeleft == 0 ? "Timeout" : "Signal");
  163. usb_kill_urb(us->current_urb);
  164. }
  165. /* return the URB status */
  166. return us->current_urb->status;
  167. }
  168. /*
  169. * Transfer one control message, with timeouts, and allowing early
  170. * termination. Return codes are usual -Exxx, *not* USB_STOR_XFER_xxx.
  171. */
  172. int usb_stor_control_msg(struct us_data *us, unsigned int pipe,
  173. u8 request, u8 requesttype, u16 value, u16 index,
  174. void *data, u16 size, int timeout)
  175. {
  176. int status;
  177. US_DEBUGP("%s: rq=%02x rqtype=%02x value=%04x index=%02x len=%u\n",
  178. __FUNCTION__, request, requesttype,
  179. value, index, size);
  180. /* fill in the devrequest structure */
  181. us->cr->bRequestType = requesttype;
  182. us->cr->bRequest = request;
  183. us->cr->wValue = cpu_to_le16(value);
  184. us->cr->wIndex = cpu_to_le16(index);
  185. us->cr->wLength = cpu_to_le16(size);
  186. /* fill and submit the URB */
  187. usb_fill_control_urb(us->current_urb, us->pusb_dev, pipe,
  188. (unsigned char*) us->cr, data, size,
  189. usb_stor_blocking_completion, NULL);
  190. status = usb_stor_msg_common(us, timeout);
  191. /* return the actual length of the data transferred if no error */
  192. if (status == 0)
  193. status = us->current_urb->actual_length;
  194. return status;
  195. }
  196. /* This is a version of usb_clear_halt() that allows early termination and
  197. * doesn't read the status from the device -- this is because some devices
  198. * crash their internal firmware when the status is requested after a halt.
  199. *
  200. * A definitive list of these 'bad' devices is too difficult to maintain or
  201. * make complete enough to be useful. This problem was first observed on the
  202. * Hagiwara FlashGate DUAL unit. However, bus traces reveal that neither
  203. * MacOS nor Windows checks the status after clearing a halt.
  204. *
  205. * Since many vendors in this space limit their testing to interoperability
  206. * with these two OSes, specification violations like this one are common.
  207. */
  208. int usb_stor_clear_halt(struct us_data *us, unsigned int pipe)
  209. {
  210. int result;
  211. int endp = usb_pipeendpoint(pipe);
  212. if (usb_pipein (pipe))
  213. endp |= USB_DIR_IN;
  214. result = usb_stor_control_msg(us, us->send_ctrl_pipe,
  215. USB_REQ_CLEAR_FEATURE, USB_RECIP_ENDPOINT,
  216. USB_ENDPOINT_HALT, endp,
  217. NULL, 0, 3*HZ);
  218. /* reset the endpoint toggle */
  219. if (result >= 0)
  220. usb_settoggle(us->pusb_dev, usb_pipeendpoint(pipe),
  221. usb_pipeout(pipe), 0);
  222. US_DEBUGP("%s: result = %d\n", __FUNCTION__, result);
  223. return result;
  224. }
  225. /*
  226. * Interpret the results of a URB transfer
  227. *
  228. * This function prints appropriate debugging messages, clears halts on
  229. * non-control endpoints, and translates the status to the corresponding
  230. * USB_STOR_XFER_xxx return code.
  231. */
  232. static int interpret_urb_result(struct us_data *us, unsigned int pipe,
  233. unsigned int length, int result, unsigned int partial)
  234. {
  235. US_DEBUGP("Status code %d; transferred %u/%u\n",
  236. result, partial, length);
  237. switch (result) {
  238. /* no error code; did we send all the data? */
  239. case 0:
  240. if (partial != length) {
  241. US_DEBUGP("-- short transfer\n");
  242. return USB_STOR_XFER_SHORT;
  243. }
  244. US_DEBUGP("-- transfer complete\n");
  245. return USB_STOR_XFER_GOOD;
  246. /* stalled */
  247. case -EPIPE:
  248. /* for control endpoints, (used by CB[I]) a stall indicates
  249. * a failed command */
  250. if (usb_pipecontrol(pipe)) {
  251. US_DEBUGP("-- stall on control pipe\n");
  252. return USB_STOR_XFER_STALLED;
  253. }
  254. /* for other sorts of endpoint, clear the stall */
  255. US_DEBUGP("clearing endpoint halt for pipe 0x%x\n", pipe);
  256. if (usb_stor_clear_halt(us, pipe) < 0)
  257. return USB_STOR_XFER_ERROR;
  258. return USB_STOR_XFER_STALLED;
  259. /* babble - the device tried to send more than we wanted to read */
  260. case -EOVERFLOW:
  261. US_DEBUGP("-- babble\n");
  262. return USB_STOR_XFER_LONG;
  263. /* the transfer was cancelled by abort, disconnect, or timeout */
  264. case -ECONNRESET:
  265. US_DEBUGP("-- transfer cancelled\n");
  266. return USB_STOR_XFER_ERROR;
  267. /* short scatter-gather read transfer */
  268. case -EREMOTEIO:
  269. US_DEBUGP("-- short read transfer\n");
  270. return USB_STOR_XFER_SHORT;
  271. /* abort or disconnect in progress */
  272. case -EIO:
  273. US_DEBUGP("-- abort or disconnect in progress\n");
  274. return USB_STOR_XFER_ERROR;
  275. /* the catch-all error case */
  276. default:
  277. US_DEBUGP("-- unknown error\n");
  278. return USB_STOR_XFER_ERROR;
  279. }
  280. }
  281. /*
  282. * Transfer one control message, without timeouts, but allowing early
  283. * termination. Return codes are USB_STOR_XFER_xxx.
  284. */
  285. int usb_stor_ctrl_transfer(struct us_data *us, unsigned int pipe,
  286. u8 request, u8 requesttype, u16 value, u16 index,
  287. void *data, u16 size)
  288. {
  289. int result;
  290. US_DEBUGP("%s: rq=%02x rqtype=%02x value=%04x index=%02x len=%u\n",
  291. __FUNCTION__, request, requesttype,
  292. value, index, size);
  293. /* fill in the devrequest structure */
  294. us->cr->bRequestType = requesttype;
  295. us->cr->bRequest = request;
  296. us->cr->wValue = cpu_to_le16(value);
  297. us->cr->wIndex = cpu_to_le16(index);
  298. us->cr->wLength = cpu_to_le16(size);
  299. /* fill and submit the URB */
  300. usb_fill_control_urb(us->current_urb, us->pusb_dev, pipe,
  301. (unsigned char*) us->cr, data, size,
  302. usb_stor_blocking_completion, NULL);
  303. result = usb_stor_msg_common(us, 0);
  304. return interpret_urb_result(us, pipe, size, result,
  305. us->current_urb->actual_length);
  306. }
  307. /*
  308. * Receive one interrupt buffer, without timeouts, but allowing early
  309. * termination. Return codes are USB_STOR_XFER_xxx.
  310. *
  311. * This routine always uses us->recv_intr_pipe as the pipe and
  312. * us->ep_bInterval as the interrupt interval.
  313. */
  314. static int usb_stor_intr_transfer(struct us_data *us, void *buf,
  315. unsigned int length)
  316. {
  317. int result;
  318. unsigned int pipe = us->recv_intr_pipe;
  319. unsigned int maxp;
  320. US_DEBUGP("%s: xfer %u bytes\n", __FUNCTION__, length);
  321. /* calculate the max packet size */
  322. maxp = usb_maxpacket(us->pusb_dev, pipe, usb_pipeout(pipe));
  323. if (maxp > length)
  324. maxp = length;
  325. /* fill and submit the URB */
  326. usb_fill_int_urb(us->current_urb, us->pusb_dev, pipe, buf,
  327. maxp, usb_stor_blocking_completion, NULL,
  328. us->ep_bInterval);
  329. result = usb_stor_msg_common(us, 0);
  330. return interpret_urb_result(us, pipe, length, result,
  331. us->current_urb->actual_length);
  332. }
  333. /*
  334. * Transfer one buffer via bulk pipe, without timeouts, but allowing early
  335. * termination. Return codes are USB_STOR_XFER_xxx. If the bulk pipe
  336. * stalls during the transfer, the halt is automatically cleared.
  337. */
  338. int usb_stor_bulk_transfer_buf(struct us_data *us, unsigned int pipe,
  339. void *buf, unsigned int length, unsigned int *act_len)
  340. {
  341. int result;
  342. US_DEBUGP("%s: xfer %u bytes\n", __FUNCTION__, length);
  343. /* fill and submit the URB */
  344. usb_fill_bulk_urb(us->current_urb, us->pusb_dev, pipe, buf, length,
  345. usb_stor_blocking_completion, NULL);
  346. result = usb_stor_msg_common(us, 0);
  347. /* store the actual length of the data transferred */
  348. if (act_len)
  349. *act_len = us->current_urb->actual_length;
  350. return interpret_urb_result(us, pipe, length, result,
  351. us->current_urb->actual_length);
  352. }
  353. /*
  354. * Transfer a scatter-gather list via bulk transfer
  355. *
  356. * This function does basically the same thing as usb_stor_bulk_transfer_buf()
  357. * above, but it uses the usbcore scatter-gather library.
  358. */
  359. static int usb_stor_bulk_transfer_sglist(struct us_data *us, unsigned int pipe,
  360. struct scatterlist *sg, int num_sg, unsigned int length,
  361. unsigned int *act_len)
  362. {
  363. int result;
  364. /* don't submit s-g requests during abort/disconnect processing */
  365. if (us->flags & ABORTING_OR_DISCONNECTING)
  366. return USB_STOR_XFER_ERROR;
  367. /* initialize the scatter-gather request block */
  368. US_DEBUGP("%s: xfer %u bytes, %d entries\n", __FUNCTION__,
  369. length, num_sg);
  370. result = usb_sg_init(&us->current_sg, us->pusb_dev, pipe, 0,
  371. sg, num_sg, length, SLAB_NOIO);
  372. if (result) {
  373. US_DEBUGP("usb_sg_init returned %d\n", result);
  374. return USB_STOR_XFER_ERROR;
  375. }
  376. /* since the block has been initialized successfully, it's now
  377. * okay to cancel it */
  378. set_bit(US_FLIDX_SG_ACTIVE, &us->flags);
  379. /* did an abort/disconnect occur during the submission? */
  380. if (us->flags & ABORTING_OR_DISCONNECTING) {
  381. /* cancel the request, if it hasn't been cancelled already */
  382. if (test_and_clear_bit(US_FLIDX_SG_ACTIVE, &us->flags)) {
  383. US_DEBUGP("-- cancelling sg request\n");
  384. usb_sg_cancel(&us->current_sg);
  385. }
  386. }
  387. /* wait for the completion of the transfer */
  388. usb_sg_wait(&us->current_sg);
  389. clear_bit(US_FLIDX_SG_ACTIVE, &us->flags);
  390. result = us->current_sg.status;
  391. if (act_len)
  392. *act_len = us->current_sg.bytes;
  393. return interpret_urb_result(us, pipe, length, result,
  394. us->current_sg.bytes);
  395. }
  396. /*
  397. * Transfer an entire SCSI command's worth of data payload over the bulk
  398. * pipe.
  399. *
  400. * Note that this uses usb_stor_bulk_transfer_buf() and
  401. * usb_stor_bulk_transfer_sglist() to achieve its goals --
  402. * this function simply determines whether we're going to use
  403. * scatter-gather or not, and acts appropriately.
  404. */
  405. int usb_stor_bulk_transfer_sg(struct us_data* us, unsigned int pipe,
  406. void *buf, unsigned int length_left, int use_sg, int *residual)
  407. {
  408. int result;
  409. unsigned int partial;
  410. /* are we scatter-gathering? */
  411. if (use_sg) {
  412. /* use the usb core scatter-gather primitives */
  413. result = usb_stor_bulk_transfer_sglist(us, pipe,
  414. (struct scatterlist *) buf, use_sg,
  415. length_left, &partial);
  416. length_left -= partial;
  417. } else {
  418. /* no scatter-gather, just make the request */
  419. result = usb_stor_bulk_transfer_buf(us, pipe, buf,
  420. length_left, &partial);
  421. length_left -= partial;
  422. }
  423. /* store the residual and return the error code */
  424. if (residual)
  425. *residual = length_left;
  426. return result;
  427. }
  428. /***********************************************************************
  429. * Transport routines
  430. ***********************************************************************/
  431. /* Invoke the transport and basic error-handling/recovery methods
  432. *
  433. * This is used by the protocol layers to actually send the message to
  434. * the device and receive the response.
  435. */
  436. void usb_stor_invoke_transport(struct scsi_cmnd *srb, struct us_data *us)
  437. {
  438. int need_auto_sense;
  439. int result;
  440. /* send the command to the transport layer */
  441. srb->resid = 0;
  442. result = us->transport(srb, us);
  443. /* if the command gets aborted by the higher layers, we need to
  444. * short-circuit all other processing
  445. */
  446. if (test_bit(US_FLIDX_TIMED_OUT, &us->flags)) {
  447. US_DEBUGP("-- command was aborted\n");
  448. srb->result = DID_ABORT << 16;
  449. goto Handle_Errors;
  450. }
  451. /* if there is a transport error, reset and don't auto-sense */
  452. if (result == USB_STOR_TRANSPORT_ERROR) {
  453. US_DEBUGP("-- transport indicates error, resetting\n");
  454. srb->result = DID_ERROR << 16;
  455. goto Handle_Errors;
  456. }
  457. /* if the transport provided its own sense data, don't auto-sense */
  458. if (result == USB_STOR_TRANSPORT_NO_SENSE) {
  459. srb->result = SAM_STAT_CHECK_CONDITION;
  460. return;
  461. }
  462. srb->result = SAM_STAT_GOOD;
  463. /* Determine if we need to auto-sense
  464. *
  465. * I normally don't use a flag like this, but it's almost impossible
  466. * to understand what's going on here if I don't.
  467. */
  468. need_auto_sense = 0;
  469. /*
  470. * If we're running the CB transport, which is incapable
  471. * of determining status on its own, we will auto-sense
  472. * unless the operation involved a data-in transfer. Devices
  473. * can signal most data-in errors by stalling the bulk-in pipe.
  474. */
  475. if ((us->protocol == US_PR_CB || us->protocol == US_PR_DPCM_USB) &&
  476. srb->sc_data_direction != DMA_FROM_DEVICE) {
  477. US_DEBUGP("-- CB transport device requiring auto-sense\n");
  478. need_auto_sense = 1;
  479. }
  480. /*
  481. * If we have a failure, we're going to do a REQUEST_SENSE
  482. * automatically. Note that we differentiate between a command
  483. * "failure" and an "error" in the transport mechanism.
  484. */
  485. if (result == USB_STOR_TRANSPORT_FAILED) {
  486. US_DEBUGP("-- transport indicates command failure\n");
  487. need_auto_sense = 1;
  488. }
  489. /*
  490. * A short transfer on a command where we don't expect it
  491. * is unusual, but it doesn't mean we need to auto-sense.
  492. */
  493. if ((srb->resid > 0) &&
  494. !((srb->cmnd[0] == REQUEST_SENSE) ||
  495. (srb->cmnd[0] == INQUIRY) ||
  496. (srb->cmnd[0] == MODE_SENSE) ||
  497. (srb->cmnd[0] == LOG_SENSE) ||
  498. (srb->cmnd[0] == MODE_SENSE_10))) {
  499. US_DEBUGP("-- unexpectedly short transfer\n");
  500. }
  501. /* Now, if we need to do the auto-sense, let's do it */
  502. if (need_auto_sense) {
  503. int temp_result;
  504. void* old_request_buffer;
  505. unsigned short old_sg;
  506. unsigned old_request_bufflen;
  507. unsigned char old_sc_data_direction;
  508. unsigned char old_cmd_len;
  509. unsigned char old_cmnd[MAX_COMMAND_SIZE];
  510. int old_resid;
  511. US_DEBUGP("Issuing auto-REQUEST_SENSE\n");
  512. /* save the old command */
  513. memcpy(old_cmnd, srb->cmnd, MAX_COMMAND_SIZE);
  514. old_cmd_len = srb->cmd_len;
  515. /* set the command and the LUN */
  516. memset(srb->cmnd, 0, MAX_COMMAND_SIZE);
  517. srb->cmnd[0] = REQUEST_SENSE;
  518. srb->cmnd[1] = old_cmnd[1] & 0xE0;
  519. srb->cmnd[4] = 18;
  520. /* FIXME: we must do the protocol translation here */
  521. if (us->subclass == US_SC_RBC || us->subclass == US_SC_SCSI)
  522. srb->cmd_len = 6;
  523. else
  524. srb->cmd_len = 12;
  525. /* set the transfer direction */
  526. old_sc_data_direction = srb->sc_data_direction;
  527. srb->sc_data_direction = DMA_FROM_DEVICE;
  528. /* use the new buffer we have */
  529. old_request_buffer = srb->request_buffer;
  530. srb->request_buffer = us->sensebuf;
  531. /* set the buffer length for transfer */
  532. old_request_bufflen = srb->request_bufflen;
  533. srb->request_bufflen = US_SENSE_SIZE;
  534. /* set up for no scatter-gather use */
  535. old_sg = srb->use_sg;
  536. srb->use_sg = 0;
  537. /* issue the auto-sense command */
  538. old_resid = srb->resid;
  539. srb->resid = 0;
  540. temp_result = us->transport(us->srb, us);
  541. /* let's clean up right away */
  542. memcpy(srb->sense_buffer, us->sensebuf, US_SENSE_SIZE);
  543. srb->resid = old_resid;
  544. srb->request_buffer = old_request_buffer;
  545. srb->request_bufflen = old_request_bufflen;
  546. srb->use_sg = old_sg;
  547. srb->sc_data_direction = old_sc_data_direction;
  548. srb->cmd_len = old_cmd_len;
  549. memcpy(srb->cmnd, old_cmnd, MAX_COMMAND_SIZE);
  550. if (test_bit(US_FLIDX_TIMED_OUT, &us->flags)) {
  551. US_DEBUGP("-- auto-sense aborted\n");
  552. srb->result = DID_ABORT << 16;
  553. goto Handle_Errors;
  554. }
  555. if (temp_result != USB_STOR_TRANSPORT_GOOD) {
  556. US_DEBUGP("-- auto-sense failure\n");
  557. /* we skip the reset if this happens to be a
  558. * multi-target device, since failure of an
  559. * auto-sense is perfectly valid
  560. */
  561. srb->result = DID_ERROR << 16;
  562. if (!(us->flags & US_FL_SCM_MULT_TARG))
  563. goto Handle_Errors;
  564. return;
  565. }
  566. US_DEBUGP("-- Result from auto-sense is %d\n", temp_result);
  567. US_DEBUGP("-- code: 0x%x, key: 0x%x, ASC: 0x%x, ASCQ: 0x%x\n",
  568. srb->sense_buffer[0],
  569. srb->sense_buffer[2] & 0xf,
  570. srb->sense_buffer[12],
  571. srb->sense_buffer[13]);
  572. #ifdef CONFIG_USB_STORAGE_DEBUG
  573. usb_stor_show_sense(
  574. srb->sense_buffer[2] & 0xf,
  575. srb->sense_buffer[12],
  576. srb->sense_buffer[13]);
  577. #endif
  578. /* set the result so the higher layers expect this data */
  579. srb->result = SAM_STAT_CHECK_CONDITION;
  580. /* If things are really okay, then let's show that. Zero
  581. * out the sense buffer so the higher layers won't realize
  582. * we did an unsolicited auto-sense. */
  583. if (result == USB_STOR_TRANSPORT_GOOD &&
  584. /* Filemark 0, ignore EOM, ILI 0, no sense */
  585. (srb->sense_buffer[2] & 0xaf) == 0 &&
  586. /* No ASC or ASCQ */
  587. srb->sense_buffer[12] == 0 &&
  588. srb->sense_buffer[13] == 0) {
  589. srb->result = SAM_STAT_GOOD;
  590. srb->sense_buffer[0] = 0x0;
  591. }
  592. }
  593. /* Did we transfer less than the minimum amount required? */
  594. if (srb->result == SAM_STAT_GOOD &&
  595. srb->request_bufflen - srb->resid < srb->underflow)
  596. srb->result = (DID_ERROR << 16) | (SUGGEST_RETRY << 24);
  597. return;
  598. /* Error and abort processing: try to resynchronize with the device
  599. * by issuing a port reset. If that fails, try a class-specific
  600. * device reset. */
  601. Handle_Errors:
  602. /* Set the RESETTING bit, and clear the ABORTING bit so that
  603. * the reset may proceed. */
  604. scsi_lock(us_to_host(us));
  605. set_bit(US_FLIDX_RESETTING, &us->flags);
  606. clear_bit(US_FLIDX_ABORTING, &us->flags);
  607. scsi_unlock(us_to_host(us));
  608. /* We must release the device lock because the pre_reset routine
  609. * will want to acquire it. */
  610. mutex_unlock(&us->dev_mutex);
  611. result = usb_stor_port_reset(us);
  612. mutex_lock(&us->dev_mutex);
  613. if (result < 0) {
  614. scsi_lock(us_to_host(us));
  615. usb_stor_report_device_reset(us);
  616. scsi_unlock(us_to_host(us));
  617. us->transport_reset(us);
  618. }
  619. clear_bit(US_FLIDX_RESETTING, &us->flags);
  620. }
  621. /* Stop the current URB transfer */
  622. void usb_stor_stop_transport(struct us_data *us)
  623. {
  624. US_DEBUGP("%s called\n", __FUNCTION__);
  625. /* If the state machine is blocked waiting for an URB,
  626. * let's wake it up. The test_and_clear_bit() call
  627. * guarantees that if a URB has just been submitted,
  628. * it won't be cancelled more than once. */
  629. if (test_and_clear_bit(US_FLIDX_URB_ACTIVE, &us->flags)) {
  630. US_DEBUGP("-- cancelling URB\n");
  631. usb_unlink_urb(us->current_urb);
  632. }
  633. /* If we are waiting for a scatter-gather operation, cancel it. */
  634. if (test_and_clear_bit(US_FLIDX_SG_ACTIVE, &us->flags)) {
  635. US_DEBUGP("-- cancelling sg request\n");
  636. usb_sg_cancel(&us->current_sg);
  637. }
  638. }
  639. /*
  640. * Control/Bulk/Interrupt transport
  641. */
  642. int usb_stor_CBI_transport(struct scsi_cmnd *srb, struct us_data *us)
  643. {
  644. unsigned int transfer_length = srb->request_bufflen;
  645. unsigned int pipe = 0;
  646. int result;
  647. /* COMMAND STAGE */
  648. /* let's send the command via the control pipe */
  649. result = usb_stor_ctrl_transfer(us, us->send_ctrl_pipe,
  650. US_CBI_ADSC,
  651. USB_TYPE_CLASS | USB_RECIP_INTERFACE, 0,
  652. us->ifnum, srb->cmnd, srb->cmd_len);
  653. /* check the return code for the command */
  654. US_DEBUGP("Call to usb_stor_ctrl_transfer() returned %d\n", result);
  655. /* if we stalled the command, it means command failed */
  656. if (result == USB_STOR_XFER_STALLED) {
  657. return USB_STOR_TRANSPORT_FAILED;
  658. }
  659. /* Uh oh... serious problem here */
  660. if (result != USB_STOR_XFER_GOOD) {
  661. return USB_STOR_TRANSPORT_ERROR;
  662. }
  663. /* DATA STAGE */
  664. /* transfer the data payload for this command, if one exists*/
  665. if (transfer_length) {
  666. pipe = srb->sc_data_direction == DMA_FROM_DEVICE ?
  667. us->recv_bulk_pipe : us->send_bulk_pipe;
  668. result = usb_stor_bulk_transfer_sg(us, pipe,
  669. srb->request_buffer, transfer_length,
  670. srb->use_sg, &srb->resid);
  671. US_DEBUGP("CBI data stage result is 0x%x\n", result);
  672. /* if we stalled the data transfer it means command failed */
  673. if (result == USB_STOR_XFER_STALLED)
  674. return USB_STOR_TRANSPORT_FAILED;
  675. if (result > USB_STOR_XFER_STALLED)
  676. return USB_STOR_TRANSPORT_ERROR;
  677. }
  678. /* STATUS STAGE */
  679. result = usb_stor_intr_transfer(us, us->iobuf, 2);
  680. US_DEBUGP("Got interrupt data (0x%x, 0x%x)\n",
  681. us->iobuf[0], us->iobuf[1]);
  682. if (result != USB_STOR_XFER_GOOD)
  683. return USB_STOR_TRANSPORT_ERROR;
  684. /* UFI gives us ASC and ASCQ, like a request sense
  685. *
  686. * REQUEST_SENSE and INQUIRY don't affect the sense data on UFI
  687. * devices, so we ignore the information for those commands. Note
  688. * that this means we could be ignoring a real error on these
  689. * commands, but that can't be helped.
  690. */
  691. if (us->subclass == US_SC_UFI) {
  692. if (srb->cmnd[0] == REQUEST_SENSE ||
  693. srb->cmnd[0] == INQUIRY)
  694. return USB_STOR_TRANSPORT_GOOD;
  695. if (us->iobuf[0])
  696. goto Failed;
  697. return USB_STOR_TRANSPORT_GOOD;
  698. }
  699. /* If not UFI, we interpret the data as a result code
  700. * The first byte should always be a 0x0.
  701. *
  702. * Some bogus devices don't follow that rule. They stuff the ASC
  703. * into the first byte -- so if it's non-zero, call it a failure.
  704. */
  705. if (us->iobuf[0]) {
  706. US_DEBUGP("CBI IRQ data showed reserved bType 0x%x\n",
  707. us->iobuf[0]);
  708. goto Failed;
  709. }
  710. /* The second byte & 0x0F should be 0x0 for good, otherwise error */
  711. switch (us->iobuf[1] & 0x0F) {
  712. case 0x00:
  713. return USB_STOR_TRANSPORT_GOOD;
  714. case 0x01:
  715. goto Failed;
  716. }
  717. return USB_STOR_TRANSPORT_ERROR;
  718. /* the CBI spec requires that the bulk pipe must be cleared
  719. * following any data-in/out command failure (section 2.4.3.1.3)
  720. */
  721. Failed:
  722. if (pipe)
  723. usb_stor_clear_halt(us, pipe);
  724. return USB_STOR_TRANSPORT_FAILED;
  725. }
  726. /*
  727. * Control/Bulk transport
  728. */
  729. int usb_stor_CB_transport(struct scsi_cmnd *srb, struct us_data *us)
  730. {
  731. unsigned int transfer_length = srb->request_bufflen;
  732. int result;
  733. /* COMMAND STAGE */
  734. /* let's send the command via the control pipe */
  735. result = usb_stor_ctrl_transfer(us, us->send_ctrl_pipe,
  736. US_CBI_ADSC,
  737. USB_TYPE_CLASS | USB_RECIP_INTERFACE, 0,
  738. us->ifnum, srb->cmnd, srb->cmd_len);
  739. /* check the return code for the command */
  740. US_DEBUGP("Call to usb_stor_ctrl_transfer() returned %d\n", result);
  741. /* if we stalled the command, it means command failed */
  742. if (result == USB_STOR_XFER_STALLED) {
  743. return USB_STOR_TRANSPORT_FAILED;
  744. }
  745. /* Uh oh... serious problem here */
  746. if (result != USB_STOR_XFER_GOOD) {
  747. return USB_STOR_TRANSPORT_ERROR;
  748. }
  749. /* DATA STAGE */
  750. /* transfer the data payload for this command, if one exists*/
  751. if (transfer_length) {
  752. unsigned int pipe = srb->sc_data_direction == DMA_FROM_DEVICE ?
  753. us->recv_bulk_pipe : us->send_bulk_pipe;
  754. result = usb_stor_bulk_transfer_sg(us, pipe,
  755. srb->request_buffer, transfer_length,
  756. srb->use_sg, &srb->resid);
  757. US_DEBUGP("CB data stage result is 0x%x\n", result);
  758. /* if we stalled the data transfer it means command failed */
  759. if (result == USB_STOR_XFER_STALLED)
  760. return USB_STOR_TRANSPORT_FAILED;
  761. if (result > USB_STOR_XFER_STALLED)
  762. return USB_STOR_TRANSPORT_ERROR;
  763. }
  764. /* STATUS STAGE */
  765. /* NOTE: CB does not have a status stage. Silly, I know. So
  766. * we have to catch this at a higher level.
  767. */
  768. return USB_STOR_TRANSPORT_GOOD;
  769. }
  770. /*
  771. * Bulk only transport
  772. */
  773. /* Determine what the maximum LUN supported is */
  774. int usb_stor_Bulk_max_lun(struct us_data *us)
  775. {
  776. int result;
  777. /* issue the command */
  778. us->iobuf[0] = 0;
  779. result = usb_stor_control_msg(us, us->recv_ctrl_pipe,
  780. US_BULK_GET_MAX_LUN,
  781. USB_DIR_IN | USB_TYPE_CLASS |
  782. USB_RECIP_INTERFACE,
  783. 0, us->ifnum, us->iobuf, 1, HZ);
  784. US_DEBUGP("GetMaxLUN command result is %d, data is %d\n",
  785. result, us->iobuf[0]);
  786. /* if we have a successful request, return the result */
  787. if (result > 0)
  788. return us->iobuf[0];
  789. /*
  790. * Some devices (i.e. Iomega Zip100) need this -- apparently
  791. * the bulk pipes get STALLed when the GetMaxLUN request is
  792. * processed. This is, in theory, harmless to all other devices
  793. * (regardless of if they stall or not).
  794. */
  795. if (result == -EPIPE) {
  796. usb_stor_clear_halt(us, us->recv_bulk_pipe);
  797. usb_stor_clear_halt(us, us->send_bulk_pipe);
  798. }
  799. /*
  800. * Some devices don't like GetMaxLUN. They may STALL the control
  801. * pipe, they may return a zero-length result, they may do nothing at
  802. * all and timeout, or they may fail in even more bizarrely creative
  803. * ways. In these cases the best approach is to use the default
  804. * value: only one LUN.
  805. */
  806. return 0;
  807. }
  808. int usb_stor_Bulk_transport(struct scsi_cmnd *srb, struct us_data *us)
  809. {
  810. struct bulk_cb_wrap *bcb = (struct bulk_cb_wrap *) us->iobuf;
  811. struct bulk_cs_wrap *bcs = (struct bulk_cs_wrap *) us->iobuf;
  812. unsigned int transfer_length = srb->request_bufflen;
  813. unsigned int residue;
  814. int result;
  815. int fake_sense = 0;
  816. unsigned int cswlen;
  817. unsigned int cbwlen = US_BULK_CB_WRAP_LEN;
  818. /* Take care of BULK32 devices; set extra byte to 0 */
  819. if ( unlikely(us->flags & US_FL_BULK32)) {
  820. cbwlen = 32;
  821. us->iobuf[31] = 0;
  822. }
  823. /* set up the command wrapper */
  824. bcb->Signature = cpu_to_le32(US_BULK_CB_SIGN);
  825. bcb->DataTransferLength = cpu_to_le32(transfer_length);
  826. bcb->Flags = srb->sc_data_direction == DMA_FROM_DEVICE ? 1 << 7 : 0;
  827. bcb->Tag = ++us->tag;
  828. bcb->Lun = srb->device->lun;
  829. if (us->flags & US_FL_SCM_MULT_TARG)
  830. bcb->Lun |= srb->device->id << 4;
  831. bcb->Length = srb->cmd_len;
  832. /* copy the command payload */
  833. memset(bcb->CDB, 0, sizeof(bcb->CDB));
  834. memcpy(bcb->CDB, srb->cmnd, bcb->Length);
  835. /* send it to out endpoint */
  836. US_DEBUGP("Bulk Command S 0x%x T 0x%x L %d F %d Trg %d LUN %d CL %d\n",
  837. le32_to_cpu(bcb->Signature), bcb->Tag,
  838. le32_to_cpu(bcb->DataTransferLength), bcb->Flags,
  839. (bcb->Lun >> 4), (bcb->Lun & 0x0F),
  840. bcb->Length);
  841. result = usb_stor_bulk_transfer_buf(us, us->send_bulk_pipe,
  842. bcb, cbwlen, NULL);
  843. US_DEBUGP("Bulk command transfer result=%d\n", result);
  844. if (result != USB_STOR_XFER_GOOD)
  845. return USB_STOR_TRANSPORT_ERROR;
  846. /* DATA STAGE */
  847. /* send/receive data payload, if there is any */
  848. /* Some USB-IDE converter chips need a 100us delay between the
  849. * command phase and the data phase. Some devices need a little
  850. * more than that, probably because of clock rate inaccuracies. */
  851. if (unlikely(us->flags & US_FL_GO_SLOW))
  852. udelay(125);
  853. if (transfer_length) {
  854. unsigned int pipe = srb->sc_data_direction == DMA_FROM_DEVICE ?
  855. us->recv_bulk_pipe : us->send_bulk_pipe;
  856. result = usb_stor_bulk_transfer_sg(us, pipe,
  857. srb->request_buffer, transfer_length,
  858. srb->use_sg, &srb->resid);
  859. US_DEBUGP("Bulk data transfer result 0x%x\n", result);
  860. if (result == USB_STOR_XFER_ERROR)
  861. return USB_STOR_TRANSPORT_ERROR;
  862. /* If the device tried to send back more data than the
  863. * amount requested, the spec requires us to transfer
  864. * the CSW anyway. Since there's no point retrying the
  865. * the command, we'll return fake sense data indicating
  866. * Illegal Request, Invalid Field in CDB.
  867. */
  868. if (result == USB_STOR_XFER_LONG)
  869. fake_sense = 1;
  870. }
  871. /* See flow chart on pg 15 of the Bulk Only Transport spec for
  872. * an explanation of how this code works.
  873. */
  874. /* get CSW for device status */
  875. US_DEBUGP("Attempting to get CSW...\n");
  876. result = usb_stor_bulk_transfer_buf(us, us->recv_bulk_pipe,
  877. bcs, US_BULK_CS_WRAP_LEN, &cswlen);
  878. /* Some broken devices add unnecessary zero-length packets to the
  879. * end of their data transfers. Such packets show up as 0-length
  880. * CSWs. If we encounter such a thing, try to read the CSW again.
  881. */
  882. if (result == USB_STOR_XFER_SHORT && cswlen == 0) {
  883. US_DEBUGP("Received 0-length CSW; retrying...\n");
  884. result = usb_stor_bulk_transfer_buf(us, us->recv_bulk_pipe,
  885. bcs, US_BULK_CS_WRAP_LEN, &cswlen);
  886. }
  887. /* did the attempt to read the CSW fail? */
  888. if (result == USB_STOR_XFER_STALLED) {
  889. /* get the status again */
  890. US_DEBUGP("Attempting to get CSW (2nd try)...\n");
  891. result = usb_stor_bulk_transfer_buf(us, us->recv_bulk_pipe,
  892. bcs, US_BULK_CS_WRAP_LEN, NULL);
  893. }
  894. /* if we still have a failure at this point, we're in trouble */
  895. US_DEBUGP("Bulk status result = %d\n", result);
  896. if (result != USB_STOR_XFER_GOOD)
  897. return USB_STOR_TRANSPORT_ERROR;
  898. /* check bulk status */
  899. residue = le32_to_cpu(bcs->Residue);
  900. US_DEBUGP("Bulk Status S 0x%x T 0x%x R %u Stat 0x%x\n",
  901. le32_to_cpu(bcs->Signature), bcs->Tag,
  902. residue, bcs->Status);
  903. if (bcs->Tag != us->tag || bcs->Status > US_BULK_STAT_PHASE) {
  904. US_DEBUGP("Bulk logical error\n");
  905. return USB_STOR_TRANSPORT_ERROR;
  906. }
  907. /* Some broken devices report odd signatures, so we do not check them
  908. * for validity against the spec. We store the first one we see,
  909. * and check subsequent transfers for validity against this signature.
  910. */
  911. if (!us->bcs_signature) {
  912. us->bcs_signature = bcs->Signature;
  913. if (us->bcs_signature != cpu_to_le32(US_BULK_CS_SIGN))
  914. US_DEBUGP("Learnt BCS signature 0x%08X\n",
  915. le32_to_cpu(us->bcs_signature));
  916. } else if (bcs->Signature != us->bcs_signature) {
  917. US_DEBUGP("Signature mismatch: got %08X, expecting %08X\n",
  918. le32_to_cpu(bcs->Signature),
  919. le32_to_cpu(us->bcs_signature));
  920. return USB_STOR_TRANSPORT_ERROR;
  921. }
  922. /* try to compute the actual residue, based on how much data
  923. * was really transferred and what the device tells us */
  924. if (residue) {
  925. if (!(us->flags & US_FL_IGNORE_RESIDUE)) {
  926. residue = min(residue, transfer_length);
  927. srb->resid = max(srb->resid, (int) residue);
  928. }
  929. }
  930. /* based on the status code, we report good or bad */
  931. switch (bcs->Status) {
  932. case US_BULK_STAT_OK:
  933. /* device babbled -- return fake sense data */
  934. if (fake_sense) {
  935. memcpy(srb->sense_buffer,
  936. usb_stor_sense_invalidCDB,
  937. sizeof(usb_stor_sense_invalidCDB));
  938. return USB_STOR_TRANSPORT_NO_SENSE;
  939. }
  940. /* command good -- note that data could be short */
  941. return USB_STOR_TRANSPORT_GOOD;
  942. case US_BULK_STAT_FAIL:
  943. /* command failed */
  944. return USB_STOR_TRANSPORT_FAILED;
  945. case US_BULK_STAT_PHASE:
  946. /* phase error -- note that a transport reset will be
  947. * invoked by the invoke_transport() function
  948. */
  949. return USB_STOR_TRANSPORT_ERROR;
  950. }
  951. /* we should never get here, but if we do, we're in trouble */
  952. return USB_STOR_TRANSPORT_ERROR;
  953. }
  954. /***********************************************************************
  955. * Reset routines
  956. ***********************************************************************/
  957. /* This is the common part of the device reset code.
  958. *
  959. * It's handy that every transport mechanism uses the control endpoint for
  960. * resets.
  961. *
  962. * Basically, we send a reset with a 5-second timeout, so we don't get
  963. * jammed attempting to do the reset.
  964. */
  965. static int usb_stor_reset_common(struct us_data *us,
  966. u8 request, u8 requesttype,
  967. u16 value, u16 index, void *data, u16 size)
  968. {
  969. int result;
  970. int result2;
  971. if (test_bit(US_FLIDX_DISCONNECTING, &us->flags)) {
  972. US_DEBUGP("No reset during disconnect\n");
  973. return -EIO;
  974. }
  975. result = usb_stor_control_msg(us, us->send_ctrl_pipe,
  976. request, requesttype, value, index, data, size,
  977. 5*HZ);
  978. if (result < 0) {
  979. US_DEBUGP("Soft reset failed: %d\n", result);
  980. return result;
  981. }
  982. /* Give the device some time to recover from the reset,
  983. * but don't delay disconnect processing. */
  984. wait_event_interruptible_timeout(us->delay_wait,
  985. test_bit(US_FLIDX_DISCONNECTING, &us->flags),
  986. HZ*6);
  987. if (test_bit(US_FLIDX_DISCONNECTING, &us->flags)) {
  988. US_DEBUGP("Reset interrupted by disconnect\n");
  989. return -EIO;
  990. }
  991. US_DEBUGP("Soft reset: clearing bulk-in endpoint halt\n");
  992. result = usb_stor_clear_halt(us, us->recv_bulk_pipe);
  993. US_DEBUGP("Soft reset: clearing bulk-out endpoint halt\n");
  994. result2 = usb_stor_clear_halt(us, us->send_bulk_pipe);
  995. /* return a result code based on the result of the clear-halts */
  996. if (result >= 0)
  997. result = result2;
  998. if (result < 0)
  999. US_DEBUGP("Soft reset failed\n");
  1000. else
  1001. US_DEBUGP("Soft reset done\n");
  1002. return result;
  1003. }
  1004. /* This issues a CB[I] Reset to the device in question
  1005. */
  1006. #define CB_RESET_CMD_SIZE 12
  1007. int usb_stor_CB_reset(struct us_data *us)
  1008. {
  1009. US_DEBUGP("%s called\n", __FUNCTION__);
  1010. memset(us->iobuf, 0xFF, CB_RESET_CMD_SIZE);
  1011. us->iobuf[0] = SEND_DIAGNOSTIC;
  1012. us->iobuf[1] = 4;
  1013. return usb_stor_reset_common(us, US_CBI_ADSC,
  1014. USB_TYPE_CLASS | USB_RECIP_INTERFACE,
  1015. 0, us->ifnum, us->iobuf, CB_RESET_CMD_SIZE);
  1016. }
  1017. /* This issues a Bulk-only Reset to the device in question, including
  1018. * clearing the subsequent endpoint halts that may occur.
  1019. */
  1020. int usb_stor_Bulk_reset(struct us_data *us)
  1021. {
  1022. US_DEBUGP("%s called\n", __FUNCTION__);
  1023. return usb_stor_reset_common(us, US_BULK_RESET_REQUEST,
  1024. USB_TYPE_CLASS | USB_RECIP_INTERFACE,
  1025. 0, us->ifnum, NULL, 0);
  1026. }
  1027. /* Issue a USB port reset to the device. The caller must not hold
  1028. * us->dev_mutex.
  1029. */
  1030. int usb_stor_port_reset(struct us_data *us)
  1031. {
  1032. int result, rc_lock;
  1033. result = rc_lock =
  1034. usb_lock_device_for_reset(us->pusb_dev, us->pusb_intf);
  1035. if (result < 0)
  1036. US_DEBUGP("unable to lock device for reset: %d\n", result);
  1037. else {
  1038. /* Were we disconnected while waiting for the lock? */
  1039. if (test_bit(US_FLIDX_DISCONNECTING, &us->flags)) {
  1040. result = -EIO;
  1041. US_DEBUGP("No reset during disconnect\n");
  1042. } else {
  1043. result = usb_reset_composite_device(
  1044. us->pusb_dev, us->pusb_intf);
  1045. US_DEBUGP("usb_reset_composite_device returns %d\n",
  1046. result);
  1047. }
  1048. if (rc_lock)
  1049. usb_unlock_device(us->pusb_dev);
  1050. }
  1051. return result;
  1052. }