usb_storage.c 36 KB

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  1. /*
  2. * Most of this source has been derived from the Linux USB
  3. * project:
  4. * (c) 1999-2002 Matthew Dharm (mdharm-usb@one-eyed-alien.net)
  5. * (c) 2000 David L. Brown, Jr. (usb-storage@davidb.org)
  6. * (c) 1999 Michael Gee (michael@linuxspecific.com)
  7. * (c) 2000 Yggdrasil Computing, Inc.
  8. *
  9. *
  10. * Adapted for U-Boot:
  11. * (C) Copyright 2001 Denis Peter, MPL AG Switzerland
  12. *
  13. * For BBB support (C) Copyright 2003
  14. * Gary Jennejohn, DENX Software Engineering <gj@denx.de>
  15. *
  16. * BBB support based on /sys/dev/usb/umass.c from
  17. * FreeBSD.
  18. *
  19. * See file CREDITS for list of people who contributed to this
  20. * project.
  21. *
  22. * This program is free software; you can redistribute it and/or
  23. * modify it under the terms of the GNU General Public License as
  24. * published by the Free Software Foundation; either version 2 of
  25. * the License, or (at your option) any later version.
  26. *
  27. * This program is distributed in the hope that it will be useful,
  28. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  29. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  30. * GNU General Public License for more details.
  31. *
  32. * You should have received a copy of the GNU General Public License
  33. * along with this program; if not, write to the Free Software
  34. * Foundation, Inc., 59 Temple Place, Suite 330, Boston,
  35. * MA 02111-1307 USA
  36. *
  37. */
  38. /* Note:
  39. * Currently only the CBI transport protocoll has been implemented, and it
  40. * is only tested with a TEAC USB Floppy. Other Massstorages with CBI or CB
  41. * transport protocoll may work as well.
  42. */
  43. /*
  44. * New Note:
  45. * Support for USB Mass Storage Devices (BBB) has been added. It has
  46. * only been tested with USB memory sticks.
  47. * Nota bene: if you are using the BBB support with a little-endian
  48. * CPU then you MUST define LITTLEENDIAN in the configuration file!
  49. */
  50. #include <common.h>
  51. #include <command.h>
  52. #include <asm/byteorder.h>
  53. #include <asm/processor.h>
  54. #include <part.h>
  55. #include <usb.h>
  56. #undef USB_STOR_DEBUG
  57. #undef BBB_COMDAT_TRACE
  58. #undef BBB_XPORT_TRACE
  59. #ifdef USB_STOR_DEBUG
  60. #define USB_STOR_PRINTF(fmt,args...) printf (fmt ,##args)
  61. #else
  62. #define USB_STOR_PRINTF(fmt,args...)
  63. #endif
  64. #include <scsi.h>
  65. /* direction table -- this indicates the direction of the data
  66. * transfer for each command code -- a 1 indicates input
  67. */
  68. unsigned char us_direction[256/8] = {
  69. 0x28, 0x81, 0x14, 0x14, 0x20, 0x01, 0x90, 0x77,
  70. 0x0C, 0x20, 0x00, 0x04, 0x00, 0x00, 0x00, 0x00,
  71. 0x00, 0x00, 0x00, 0x00, 0x00, 0x01, 0x00, 0x01,
  72. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00
  73. };
  74. #define US_DIRECTION(x) ((us_direction[x>>3] >> (x & 7)) & 1)
  75. static unsigned char usb_stor_buf[512];
  76. static ccb usb_ccb;
  77. /*
  78. * CBI style
  79. */
  80. #define US_CBI_ADSC 0
  81. /*
  82. * BULK only
  83. */
  84. #define US_BBB_RESET 0xff
  85. #define US_BBB_GET_MAX_LUN 0xfe
  86. /* Command Block Wrapper */
  87. typedef struct {
  88. __u32 dCBWSignature;
  89. # define CBWSIGNATURE 0x43425355
  90. __u32 dCBWTag;
  91. __u32 dCBWDataTransferLength;
  92. __u8 bCBWFlags;
  93. # define CBWFLAGS_OUT 0x00
  94. # define CBWFLAGS_IN 0x80
  95. __u8 bCBWLUN;
  96. __u8 bCDBLength;
  97. # define CBWCDBLENGTH 16
  98. __u8 CBWCDB[CBWCDBLENGTH];
  99. } umass_bbb_cbw_t;
  100. #define UMASS_BBB_CBW_SIZE 31
  101. static __u32 CBWTag = 0;
  102. /* Command Status Wrapper */
  103. typedef struct {
  104. __u32 dCSWSignature;
  105. # define CSWSIGNATURE 0x53425355
  106. __u32 dCSWTag;
  107. __u32 dCSWDataResidue;
  108. __u8 bCSWStatus;
  109. # define CSWSTATUS_GOOD 0x0
  110. # define CSWSTATUS_FAILED 0x1
  111. # define CSWSTATUS_PHASE 0x2
  112. } umass_bbb_csw_t;
  113. #define UMASS_BBB_CSW_SIZE 13
  114. #define USB_MAX_STOR_DEV 5
  115. static int usb_max_devs = 0; /* number of highest available usb device */
  116. static block_dev_desc_t usb_dev_desc[USB_MAX_STOR_DEV];
  117. struct us_data;
  118. typedef int (*trans_cmnd)(ccb*, struct us_data*);
  119. typedef int (*trans_reset)(struct us_data*);
  120. struct us_data {
  121. struct usb_device *pusb_dev; /* this usb_device */
  122. unsigned int flags; /* from filter initially */
  123. unsigned char ifnum; /* interface number */
  124. unsigned char ep_in; /* in endpoint */
  125. unsigned char ep_out; /* out ....... */
  126. unsigned char ep_int; /* interrupt . */
  127. unsigned char subclass; /* as in overview */
  128. unsigned char protocol; /* .............. */
  129. unsigned char attention_done; /* force attn on first cmd */
  130. unsigned short ip_data; /* interrupt data */
  131. int action; /* what to do */
  132. int ip_wanted; /* needed */
  133. int *irq_handle; /* for USB int requests */
  134. unsigned int irqpipe; /* pipe for release_irq */
  135. unsigned char irqmaxp; /* max packed for irq Pipe */
  136. unsigned char irqinterval; /* Intervall for IRQ Pipe */
  137. ccb *srb; /* current srb */
  138. trans_reset transport_reset; /* reset routine */
  139. trans_cmnd transport; /* transport routine */
  140. };
  141. static struct us_data usb_stor[USB_MAX_STOR_DEV];
  142. #define USB_STOR_TRANSPORT_GOOD 0
  143. #define USB_STOR_TRANSPORT_FAILED -1
  144. #define USB_STOR_TRANSPORT_ERROR -2
  145. int usb_stor_get_info(struct usb_device *dev, struct us_data *us, block_dev_desc_t *dev_desc);
  146. int usb_storage_probe(struct usb_device *dev, unsigned int ifnum,struct us_data *ss);
  147. unsigned long usb_stor_read(int device, unsigned long blknr, unsigned long blkcnt, void *buffer);
  148. struct usb_device * usb_get_dev_index(int index);
  149. void uhci_show_temp_int_td(void);
  150. block_dev_desc_t *usb_stor_get_dev(int index)
  151. {
  152. return (index < USB_MAX_STOR_DEV) ? &usb_dev_desc[index] : NULL;
  153. }
  154. void usb_show_progress(void)
  155. {
  156. printf(".");
  157. }
  158. /*********************************************************************************
  159. * show info on storage devices; 'usb start/init' must be invoked earlier
  160. * as we only retrieve structures populated during devices initialization
  161. */
  162. int usb_stor_info(void)
  163. {
  164. int i;
  165. if (usb_max_devs > 0) {
  166. for (i = 0; i < usb_max_devs; i++) {
  167. printf (" Device %d: ", i);
  168. dev_print(&usb_dev_desc[i]);
  169. }
  170. return 0;
  171. }
  172. printf("No storage devices, perhaps not 'usb start'ed..?\n");
  173. return 1;
  174. }
  175. /*********************************************************************************
  176. * scan the usb and reports device info
  177. * to the user if mode = 1
  178. * returns current device or -1 if no
  179. */
  180. int usb_stor_scan(int mode)
  181. {
  182. unsigned char i;
  183. struct usb_device *dev;
  184. /* GJ */
  185. memset(usb_stor_buf, 0, sizeof(usb_stor_buf));
  186. if(mode==1) {
  187. printf(" scanning bus for storage devices... ");
  188. }
  189. usb_disable_asynch(1); /* asynch transfer not allowed */
  190. for(i=0;i<USB_MAX_STOR_DEV;i++) {
  191. memset(&usb_dev_desc[i],0,sizeof(block_dev_desc_t));
  192. usb_dev_desc[i].target=0xff;
  193. usb_dev_desc[i].if_type=IF_TYPE_USB;
  194. usb_dev_desc[i].dev=i;
  195. usb_dev_desc[i].part_type=PART_TYPE_UNKNOWN;
  196. usb_dev_desc[i].block_read=usb_stor_read;
  197. }
  198. usb_max_devs=0;
  199. for(i=0;i<USB_MAX_DEVICE;i++) {
  200. dev=usb_get_dev_index(i); /* get device */
  201. USB_STOR_PRINTF("i=%d\n",i);
  202. if(dev==NULL) {
  203. break; /* no more devices avaiable */
  204. }
  205. if(usb_storage_probe(dev,0,&usb_stor[usb_max_devs])) { /* ok, it is a storage devices */
  206. /* get info and fill it in */
  207. if(usb_stor_get_info(dev, &usb_stor[usb_max_devs], &usb_dev_desc[usb_max_devs]))
  208. usb_max_devs++;
  209. } /* if storage device */
  210. if(usb_max_devs==USB_MAX_STOR_DEV) {
  211. printf("max USB Storage Device reached: %d stopping\n",usb_max_devs);
  212. break;
  213. }
  214. } /* for */
  215. usb_disable_asynch(0); /* asynch transfer allowed */
  216. printf("%d Storage Device(s) found\n", usb_max_devs);
  217. if(usb_max_devs>0)
  218. return 0;
  219. else
  220. return-1;
  221. }
  222. static int usb_stor_irq(struct usb_device *dev)
  223. {
  224. struct us_data *us;
  225. us=(struct us_data *)dev->privptr;
  226. if(us->ip_wanted) {
  227. us->ip_wanted=0;
  228. }
  229. return 0;
  230. }
  231. #ifdef USB_STOR_DEBUG
  232. static void usb_show_srb(ccb * pccb)
  233. {
  234. int i;
  235. printf("SRB: len %d datalen 0x%lX\n ",pccb->cmdlen,pccb->datalen);
  236. for(i=0;i<12;i++) {
  237. printf("%02X ",pccb->cmd[i]);
  238. }
  239. printf("\n");
  240. }
  241. static void display_int_status(unsigned long tmp)
  242. {
  243. printf("Status: %s %s %s %s %s %s %s\n",
  244. (tmp & USB_ST_ACTIVE) ? "Active" : "",
  245. (tmp & USB_ST_STALLED) ? "Stalled" : "",
  246. (tmp & USB_ST_BUF_ERR) ? "Buffer Error" : "",
  247. (tmp & USB_ST_BABBLE_DET) ? "Babble Det" : "",
  248. (tmp & USB_ST_NAK_REC) ? "NAKed" : "",
  249. (tmp & USB_ST_CRC_ERR) ? "CRC Error" : "",
  250. (tmp & USB_ST_BIT_ERR) ? "Bitstuff Error" : "");
  251. }
  252. #endif
  253. /***********************************************************************
  254. * Data transfer routines
  255. ***********************************************************************/
  256. static int us_one_transfer(struct us_data *us, int pipe, char *buf, int length)
  257. {
  258. int max_size;
  259. int this_xfer;
  260. int result;
  261. int partial;
  262. int maxtry;
  263. int stat;
  264. /* determine the maximum packet size for these transfers */
  265. max_size = usb_maxpacket(us->pusb_dev, pipe) * 16;
  266. /* while we have data left to transfer */
  267. while (length) {
  268. /* calculate how long this will be -- maximum or a remainder */
  269. this_xfer = length > max_size ? max_size : length;
  270. length -= this_xfer;
  271. /* setup the retry counter */
  272. maxtry = 10;
  273. /* set up the transfer loop */
  274. do {
  275. /* transfer the data */
  276. USB_STOR_PRINTF("Bulk xfer 0x%x(%d) try #%d\n",
  277. (unsigned int)buf, this_xfer, 11 - maxtry);
  278. result = usb_bulk_msg(us->pusb_dev, pipe, buf,
  279. this_xfer, &partial, USB_CNTL_TIMEOUT*5);
  280. USB_STOR_PRINTF("bulk_msg returned %d xferred %d/%d\n",
  281. result, partial, this_xfer);
  282. if(us->pusb_dev->status!=0) {
  283. /* if we stall, we need to clear it before we go on */
  284. #ifdef USB_STOR_DEBUG
  285. display_int_status(us->pusb_dev->status);
  286. #endif
  287. if (us->pusb_dev->status & USB_ST_STALLED) {
  288. USB_STOR_PRINTF("stalled ->clearing endpoint halt for pipe 0x%x\n", pipe);
  289. stat = us->pusb_dev->status;
  290. usb_clear_halt(us->pusb_dev, pipe);
  291. us->pusb_dev->status=stat;
  292. if(this_xfer == partial) {
  293. USB_STOR_PRINTF("bulk transferred with error %X, but data ok\n",us->pusb_dev->status);
  294. return 0;
  295. }
  296. else
  297. return result;
  298. }
  299. if (us->pusb_dev->status & USB_ST_NAK_REC) {
  300. USB_STOR_PRINTF("Device NAKed bulk_msg\n");
  301. return result;
  302. }
  303. if(this_xfer == partial) {
  304. USB_STOR_PRINTF("bulk transferred with error %d, but data ok\n",us->pusb_dev->status);
  305. return 0;
  306. }
  307. /* if our try counter reaches 0, bail out */
  308. USB_STOR_PRINTF("bulk transferred with error %d, data %d\n",us->pusb_dev->status,partial);
  309. if (!maxtry--)
  310. return result;
  311. }
  312. /* update to show what data was transferred */
  313. this_xfer -= partial;
  314. buf += partial;
  315. /* continue until this transfer is done */
  316. } while ( this_xfer );
  317. }
  318. /* if we get here, we're done and successful */
  319. return 0;
  320. }
  321. static int usb_stor_BBB_reset(struct us_data *us)
  322. {
  323. int result;
  324. unsigned int pipe;
  325. /*
  326. * Reset recovery (5.3.4 in Universal Serial Bus Mass Storage Class)
  327. *
  328. * For Reset Recovery the host shall issue in the following order:
  329. * a) a Bulk-Only Mass Storage Reset
  330. * b) a Clear Feature HALT to the Bulk-In endpoint
  331. * c) a Clear Feature HALT to the Bulk-Out endpoint
  332. *
  333. * This is done in 3 steps.
  334. *
  335. * If the reset doesn't succeed, the device should be port reset.
  336. *
  337. * This comment stolen from FreeBSD's /sys/dev/usb/umass.c.
  338. */
  339. USB_STOR_PRINTF("BBB_reset\n");
  340. result = usb_control_msg(us->pusb_dev, usb_sndctrlpipe(us->pusb_dev,0),
  341. US_BBB_RESET, USB_TYPE_CLASS | USB_RECIP_INTERFACE,
  342. 0, us->ifnum, 0, 0, USB_CNTL_TIMEOUT*5);
  343. if((result < 0) && (us->pusb_dev->status & USB_ST_STALLED))
  344. {
  345. USB_STOR_PRINTF("RESET:stall\n");
  346. return -1;
  347. }
  348. /* long wait for reset */
  349. wait_ms(150);
  350. USB_STOR_PRINTF("BBB_reset result %d: status %X reset\n",result,us->pusb_dev->status);
  351. pipe = usb_rcvbulkpipe(us->pusb_dev, us->ep_in);
  352. result = usb_clear_halt(us->pusb_dev, pipe);
  353. /* long wait for reset */
  354. wait_ms(150);
  355. USB_STOR_PRINTF("BBB_reset result %d: status %X clearing IN endpoint\n",result,us->pusb_dev->status);
  356. /* long wait for reset */
  357. pipe = usb_sndbulkpipe(us->pusb_dev, us->ep_out);
  358. result = usb_clear_halt(us->pusb_dev, pipe);
  359. wait_ms(150);
  360. USB_STOR_PRINTF("BBB_reset result %d: status %X clearing OUT endpoint\n",result,us->pusb_dev->status);
  361. USB_STOR_PRINTF("BBB_reset done\n");
  362. return 0;
  363. }
  364. /* FIXME: this reset function doesn't really reset the port, and it
  365. * should. Actually it should probably do what it's doing here, and
  366. * reset the port physically
  367. */
  368. static int usb_stor_CB_reset(struct us_data *us)
  369. {
  370. unsigned char cmd[12];
  371. int result;
  372. USB_STOR_PRINTF("CB_reset\n");
  373. memset(cmd, 0xFF, sizeof(cmd));
  374. cmd[0] = SCSI_SEND_DIAG;
  375. cmd[1] = 4;
  376. result = usb_control_msg(us->pusb_dev, usb_sndctrlpipe(us->pusb_dev,0),
  377. US_CBI_ADSC, USB_TYPE_CLASS | USB_RECIP_INTERFACE,
  378. 0, us->ifnum, cmd, sizeof(cmd), USB_CNTL_TIMEOUT*5);
  379. /* long wait for reset */
  380. wait_ms(1500);
  381. USB_STOR_PRINTF("CB_reset result %d: status %X clearing endpoint halt\n",result,us->pusb_dev->status);
  382. usb_clear_halt(us->pusb_dev, usb_rcvbulkpipe(us->pusb_dev, us->ep_in));
  383. usb_clear_halt(us->pusb_dev, usb_rcvbulkpipe(us->pusb_dev, us->ep_out));
  384. USB_STOR_PRINTF("CB_reset done\n");
  385. return 0;
  386. }
  387. /*
  388. * Set up the command for a BBB device. Note that the actual SCSI
  389. * command is copied into cbw.CBWCDB.
  390. */
  391. int usb_stor_BBB_comdat(ccb *srb, struct us_data *us)
  392. {
  393. int result;
  394. int actlen;
  395. int dir_in;
  396. unsigned int pipe;
  397. umass_bbb_cbw_t cbw;
  398. dir_in = US_DIRECTION(srb->cmd[0]);
  399. #ifdef BBB_COMDAT_TRACE
  400. printf("dir %d lun %d cmdlen %d cmd %p datalen %d pdata %p\n", dir_in, srb->lun, srb->cmdlen, srb->cmd, srb->datalen, srb->pdata);
  401. if (srb->cmdlen) {
  402. for(result = 0;result < srb->cmdlen;result++)
  403. printf("cmd[%d] %#x ", result, srb->cmd[result]);
  404. printf("\n");
  405. }
  406. #endif
  407. /* sanity checks */
  408. if (!(srb->cmdlen <= CBWCDBLENGTH)) {
  409. USB_STOR_PRINTF("usb_stor_BBB_comdat:cmdlen too large\n");
  410. return -1;
  411. }
  412. /* always OUT to the ep */
  413. pipe = usb_sndbulkpipe(us->pusb_dev, us->ep_out);
  414. cbw.dCBWSignature = cpu_to_le32(CBWSIGNATURE);
  415. cbw.dCBWTag = cpu_to_le32(CBWTag++);
  416. cbw.dCBWDataTransferLength = cpu_to_le32(srb->datalen);
  417. cbw.bCBWFlags = (dir_in? CBWFLAGS_IN : CBWFLAGS_OUT);
  418. cbw.bCBWLUN = srb->lun;
  419. cbw.bCDBLength = srb->cmdlen;
  420. /* copy the command data into the CBW command data buffer */
  421. /* DST SRC LEN!!! */
  422. memcpy(cbw.CBWCDB, srb->cmd, srb->cmdlen);
  423. result = usb_bulk_msg(us->pusb_dev, pipe, &cbw, UMASS_BBB_CBW_SIZE, &actlen, USB_CNTL_TIMEOUT*5);
  424. if (result < 0)
  425. USB_STOR_PRINTF("usb_stor_BBB_comdat:usb_bulk_msg error\n");
  426. return result;
  427. }
  428. /* FIXME: we also need a CBI_command which sets up the completion
  429. * interrupt, and waits for it
  430. */
  431. int usb_stor_CB_comdat(ccb *srb, struct us_data *us)
  432. {
  433. int result = 0;
  434. int dir_in,retry;
  435. unsigned int pipe;
  436. unsigned long status;
  437. retry=5;
  438. dir_in=US_DIRECTION(srb->cmd[0]);
  439. if(dir_in)
  440. pipe=usb_rcvbulkpipe(us->pusb_dev, us->ep_in);
  441. else
  442. pipe=usb_sndbulkpipe(us->pusb_dev, us->ep_out);
  443. while(retry--) {
  444. USB_STOR_PRINTF("CBI gets a command: Try %d\n",5-retry);
  445. #ifdef USB_STOR_DEBUG
  446. usb_show_srb(srb);
  447. #endif
  448. /* let's send the command via the control pipe */
  449. result = usb_control_msg(us->pusb_dev, usb_sndctrlpipe(us->pusb_dev,0),
  450. US_CBI_ADSC, USB_TYPE_CLASS | USB_RECIP_INTERFACE,
  451. 0, us->ifnum,
  452. srb->cmd, srb->cmdlen, USB_CNTL_TIMEOUT*5);
  453. USB_STOR_PRINTF("CB_transport: control msg returned %d, status %X\n",result,us->pusb_dev->status);
  454. /* check the return code for the command */
  455. if (result < 0) {
  456. if(us->pusb_dev->status & USB_ST_STALLED) {
  457. status=us->pusb_dev->status;
  458. USB_STOR_PRINTF(" stall during command found, clear pipe\n");
  459. usb_clear_halt(us->pusb_dev, usb_sndctrlpipe(us->pusb_dev,0));
  460. us->pusb_dev->status=status;
  461. }
  462. USB_STOR_PRINTF(" error during command %02X Stat = %X\n",srb->cmd[0],us->pusb_dev->status);
  463. return result;
  464. }
  465. /* transfer the data payload for this command, if one exists*/
  466. USB_STOR_PRINTF("CB_transport: control msg returned %d, direction is %s to go 0x%lx\n",result,dir_in ? "IN" : "OUT",srb->datalen);
  467. if (srb->datalen) {
  468. result = us_one_transfer(us, pipe, (char *)srb->pdata,srb->datalen);
  469. USB_STOR_PRINTF("CBI attempted to transfer data, result is %d status %lX, len %d\n", result,us->pusb_dev->status,us->pusb_dev->act_len);
  470. if(!(us->pusb_dev->status & USB_ST_NAK_REC))
  471. break;
  472. } /* if (srb->datalen) */
  473. else
  474. break;
  475. }
  476. /* return result */
  477. return result;
  478. }
  479. int usb_stor_CBI_get_status (ccb * srb, struct us_data *us)
  480. {
  481. int timeout;
  482. us->ip_wanted = 1;
  483. submit_int_msg (us->pusb_dev, us->irqpipe,
  484. (void *) &us->ip_data, us->irqmaxp, us->irqinterval);
  485. timeout = 1000;
  486. while (timeout--) {
  487. if ((volatile int *) us->ip_wanted == 0)
  488. break;
  489. wait_ms (10);
  490. }
  491. if (us->ip_wanted) {
  492. printf (" Did not get interrupt on CBI\n");
  493. us->ip_wanted = 0;
  494. return USB_STOR_TRANSPORT_ERROR;
  495. }
  496. USB_STOR_PRINTF
  497. ("Got interrupt data 0x%x, transfered %d status 0x%lX\n",
  498. us->ip_data, us->pusb_dev->irq_act_len,
  499. us->pusb_dev->irq_status);
  500. /* UFI gives us ASC and ASCQ, like a request sense */
  501. if (us->subclass == US_SC_UFI) {
  502. if (srb->cmd[0] == SCSI_REQ_SENSE ||
  503. srb->cmd[0] == SCSI_INQUIRY)
  504. return USB_STOR_TRANSPORT_GOOD; /* Good */
  505. else if (us->ip_data)
  506. return USB_STOR_TRANSPORT_FAILED;
  507. else
  508. return USB_STOR_TRANSPORT_GOOD;
  509. }
  510. /* otherwise, we interpret the data normally */
  511. switch (us->ip_data) {
  512. case 0x0001:
  513. return USB_STOR_TRANSPORT_GOOD;
  514. case 0x0002:
  515. return USB_STOR_TRANSPORT_FAILED;
  516. default:
  517. return USB_STOR_TRANSPORT_ERROR;
  518. } /* switch */
  519. return USB_STOR_TRANSPORT_ERROR;
  520. }
  521. #define USB_TRANSPORT_UNKNOWN_RETRY 5
  522. #define USB_TRANSPORT_NOT_READY_RETRY 10
  523. /* clear a stall on an endpoint - special for BBB devices */
  524. int usb_stor_BBB_clear_endpt_stall(struct us_data *us, __u8 endpt)
  525. {
  526. int result;
  527. /* ENDPOINT_HALT = 0, so set value to 0 */
  528. result = usb_control_msg(us->pusb_dev, usb_sndctrlpipe(us->pusb_dev,0),
  529. USB_REQ_CLEAR_FEATURE, USB_RECIP_ENDPOINT,
  530. 0, endpt, 0, 0, USB_CNTL_TIMEOUT*5);
  531. return result;
  532. }
  533. int usb_stor_BBB_transport(ccb *srb, struct us_data *us)
  534. {
  535. int result, retry;
  536. int dir_in;
  537. int actlen, data_actlen;
  538. unsigned int pipe, pipein, pipeout;
  539. umass_bbb_csw_t csw;
  540. #ifdef BBB_XPORT_TRACE
  541. unsigned char *ptr;
  542. int index;
  543. #endif
  544. dir_in = US_DIRECTION(srb->cmd[0]);
  545. /* COMMAND phase */
  546. USB_STOR_PRINTF("COMMAND phase\n");
  547. result = usb_stor_BBB_comdat(srb, us);
  548. if (result < 0) {
  549. USB_STOR_PRINTF("failed to send CBW status %ld\n",
  550. us->pusb_dev->status);
  551. usb_stor_BBB_reset(us);
  552. return USB_STOR_TRANSPORT_FAILED;
  553. }
  554. wait_ms(5);
  555. pipein = usb_rcvbulkpipe(us->pusb_dev, us->ep_in);
  556. pipeout = usb_sndbulkpipe(us->pusb_dev, us->ep_out);
  557. /* DATA phase + error handling */
  558. data_actlen = 0;
  559. /* no data, go immediately to the STATUS phase */
  560. if (srb->datalen == 0)
  561. goto st;
  562. USB_STOR_PRINTF("DATA phase\n");
  563. if (dir_in)
  564. pipe = pipein;
  565. else
  566. pipe = pipeout;
  567. result = usb_bulk_msg(us->pusb_dev, pipe, srb->pdata, srb->datalen, &data_actlen, USB_CNTL_TIMEOUT*5);
  568. /* special handling of STALL in DATA phase */
  569. if((result < 0) && (us->pusb_dev->status & USB_ST_STALLED)) {
  570. USB_STOR_PRINTF("DATA:stall\n");
  571. /* clear the STALL on the endpoint */
  572. result = usb_stor_BBB_clear_endpt_stall(us, dir_in? us->ep_in : us->ep_out);
  573. if (result >= 0)
  574. /* continue on to STATUS phase */
  575. goto st;
  576. }
  577. if (result < 0) {
  578. USB_STOR_PRINTF("usb_bulk_msg error status %ld\n",
  579. us->pusb_dev->status);
  580. usb_stor_BBB_reset(us);
  581. return USB_STOR_TRANSPORT_FAILED;
  582. }
  583. #ifdef BBB_XPORT_TRACE
  584. for (index = 0; index < data_actlen; index++)
  585. printf("pdata[%d] %#x ", index, srb->pdata[index]);
  586. printf("\n");
  587. #endif
  588. /* STATUS phase + error handling */
  589. st:
  590. retry = 0;
  591. again:
  592. USB_STOR_PRINTF("STATUS phase\n");
  593. result = usb_bulk_msg(us->pusb_dev, pipein, &csw, UMASS_BBB_CSW_SIZE,
  594. &actlen, USB_CNTL_TIMEOUT*5);
  595. /* special handling of STALL in STATUS phase */
  596. if((result < 0) && (retry < 1) && (us->pusb_dev->status & USB_ST_STALLED)) {
  597. USB_STOR_PRINTF("STATUS:stall\n");
  598. /* clear the STALL on the endpoint */
  599. result = usb_stor_BBB_clear_endpt_stall(us, us->ep_in);
  600. if (result >= 0 && (retry++ < 1))
  601. /* do a retry */
  602. goto again;
  603. }
  604. if (result < 0) {
  605. USB_STOR_PRINTF("usb_bulk_msg error status %ld\n",
  606. us->pusb_dev->status);
  607. usb_stor_BBB_reset(us);
  608. return USB_STOR_TRANSPORT_FAILED;
  609. }
  610. #ifdef BBB_XPORT_TRACE
  611. ptr = (unsigned char *)&csw;
  612. for (index = 0; index < UMASS_BBB_CSW_SIZE; index++)
  613. printf("ptr[%d] %#x ", index, ptr[index]);
  614. printf("\n");
  615. #endif
  616. /* misuse pipe to get the residue */
  617. pipe = le32_to_cpu(csw.dCSWDataResidue);
  618. if (pipe == 0 && srb->datalen != 0 && srb->datalen - data_actlen != 0)
  619. pipe = srb->datalen - data_actlen;
  620. if (CSWSIGNATURE != le32_to_cpu(csw.dCSWSignature)) {
  621. USB_STOR_PRINTF("!CSWSIGNATURE\n");
  622. usb_stor_BBB_reset(us);
  623. return USB_STOR_TRANSPORT_FAILED;
  624. } else if ((CBWTag - 1) != le32_to_cpu(csw.dCSWTag)) {
  625. USB_STOR_PRINTF("!Tag\n");
  626. usb_stor_BBB_reset(us);
  627. return USB_STOR_TRANSPORT_FAILED;
  628. } else if (csw.bCSWStatus > CSWSTATUS_PHASE) {
  629. USB_STOR_PRINTF(">PHASE\n");
  630. usb_stor_BBB_reset(us);
  631. return USB_STOR_TRANSPORT_FAILED;
  632. } else if (csw.bCSWStatus == CSWSTATUS_PHASE) {
  633. USB_STOR_PRINTF("=PHASE\n");
  634. usb_stor_BBB_reset(us);
  635. return USB_STOR_TRANSPORT_FAILED;
  636. } else if (data_actlen > srb->datalen) {
  637. USB_STOR_PRINTF("transferred %dB instead of %dB\n",
  638. data_actlen, srb->datalen);
  639. return USB_STOR_TRANSPORT_FAILED;
  640. } else if (csw.bCSWStatus == CSWSTATUS_FAILED) {
  641. USB_STOR_PRINTF("FAILED\n");
  642. return USB_STOR_TRANSPORT_FAILED;
  643. }
  644. return result;
  645. }
  646. int usb_stor_CB_transport(ccb *srb, struct us_data *us)
  647. {
  648. int result,status;
  649. ccb *psrb;
  650. ccb reqsrb;
  651. int retry,notready;
  652. psrb = &reqsrb;
  653. status=USB_STOR_TRANSPORT_GOOD;
  654. retry=0;
  655. notready=0;
  656. /* issue the command */
  657. do_retry:
  658. result=usb_stor_CB_comdat(srb,us);
  659. USB_STOR_PRINTF("command / Data returned %d, status %X\n",result,us->pusb_dev->status);
  660. /* if this is an CBI Protocol, get IRQ */
  661. if(us->protocol==US_PR_CBI) {
  662. status=usb_stor_CBI_get_status(srb,us);
  663. /* if the status is error, report it */
  664. if(status==USB_STOR_TRANSPORT_ERROR) {
  665. USB_STOR_PRINTF(" USB CBI Command Error\n");
  666. return status;
  667. }
  668. srb->sense_buf[12]=(unsigned char)(us->ip_data>>8);
  669. srb->sense_buf[13]=(unsigned char)(us->ip_data&0xff);
  670. if(!us->ip_data) {
  671. /* if the status is good, report it */
  672. if(status==USB_STOR_TRANSPORT_GOOD) {
  673. USB_STOR_PRINTF(" USB CBI Command Good\n");
  674. return status;
  675. }
  676. }
  677. }
  678. /* do we have to issue an auto request? */
  679. /* HERE we have to check the result */
  680. if((result<0) && !(us->pusb_dev->status & USB_ST_STALLED)) {
  681. USB_STOR_PRINTF("ERROR %X\n",us->pusb_dev->status);
  682. us->transport_reset(us);
  683. return USB_STOR_TRANSPORT_ERROR;
  684. }
  685. if((us->protocol==US_PR_CBI) &&
  686. ((srb->cmd[0]==SCSI_REQ_SENSE) ||
  687. (srb->cmd[0]==SCSI_INQUIRY))) { /* do not issue an autorequest after request sense */
  688. USB_STOR_PRINTF("No auto request and good\n");
  689. return USB_STOR_TRANSPORT_GOOD;
  690. }
  691. /* issue an request_sense */
  692. memset(&psrb->cmd[0],0,12);
  693. psrb->cmd[0]=SCSI_REQ_SENSE;
  694. psrb->cmd[1]=srb->lun<<5;
  695. psrb->cmd[4]=18;
  696. psrb->datalen=18;
  697. psrb->pdata = &srb->sense_buf[0];
  698. psrb->cmdlen=12;
  699. /* issue the command */
  700. result=usb_stor_CB_comdat(psrb,us);
  701. USB_STOR_PRINTF("auto request returned %d\n",result);
  702. /* if this is an CBI Protocol, get IRQ */
  703. if(us->protocol==US_PR_CBI) {
  704. status=usb_stor_CBI_get_status(psrb,us);
  705. }
  706. if((result<0)&&!(us->pusb_dev->status & USB_ST_STALLED)) {
  707. USB_STOR_PRINTF(" AUTO REQUEST ERROR %d\n",us->pusb_dev->status);
  708. return USB_STOR_TRANSPORT_ERROR;
  709. }
  710. USB_STOR_PRINTF("autorequest returned 0x%02X 0x%02X 0x%02X 0x%02X\n",srb->sense_buf[0],srb->sense_buf[2],srb->sense_buf[12],srb->sense_buf[13]);
  711. /* Check the auto request result */
  712. if((srb->sense_buf[2]==0) &&
  713. (srb->sense_buf[12]==0) &&
  714. (srb->sense_buf[13]==0)) /* ok, no sense */
  715. return USB_STOR_TRANSPORT_GOOD;
  716. /* Check the auto request result */
  717. switch(srb->sense_buf[2]) {
  718. case 0x01: /* Recovered Error */
  719. return USB_STOR_TRANSPORT_GOOD;
  720. break;
  721. case 0x02: /* Not Ready */
  722. if(notready++ > USB_TRANSPORT_NOT_READY_RETRY) {
  723. printf("cmd 0x%02X returned 0x%02X 0x%02X 0x%02X 0x%02X (NOT READY)\n",
  724. srb->cmd[0],srb->sense_buf[0],srb->sense_buf[2],srb->sense_buf[12],srb->sense_buf[13]);
  725. return USB_STOR_TRANSPORT_FAILED;
  726. } else {
  727. wait_ms(100);
  728. goto do_retry;
  729. }
  730. break;
  731. default:
  732. if(retry++ > USB_TRANSPORT_UNKNOWN_RETRY) {
  733. printf("cmd 0x%02X returned 0x%02X 0x%02X 0x%02X 0x%02X\n",
  734. srb->cmd[0],srb->sense_buf[0],srb->sense_buf[2],srb->sense_buf[12],srb->sense_buf[13]);
  735. return USB_STOR_TRANSPORT_FAILED;
  736. } else {
  737. goto do_retry;
  738. }
  739. break;
  740. }
  741. return USB_STOR_TRANSPORT_FAILED;
  742. }
  743. static int usb_inquiry(ccb *srb,struct us_data *ss)
  744. {
  745. int retry,i;
  746. retry=5;
  747. do {
  748. memset(&srb->cmd[0],0,12);
  749. srb->cmd[0]=SCSI_INQUIRY;
  750. srb->cmd[1]=srb->lun<<5;
  751. srb->cmd[4]=36;
  752. srb->datalen=36;
  753. srb->cmdlen=12;
  754. i=ss->transport(srb,ss);
  755. USB_STOR_PRINTF("inquiry returns %d\n",i);
  756. if(i==0)
  757. break;
  758. } while(retry--);
  759. if(!retry) {
  760. printf("error in inquiry\n");
  761. return -1;
  762. }
  763. return 0;
  764. }
  765. static int usb_request_sense(ccb *srb,struct us_data *ss)
  766. {
  767. char *ptr;
  768. ptr=(char *)srb->pdata;
  769. memset(&srb->cmd[0],0,12);
  770. srb->cmd[0]=SCSI_REQ_SENSE;
  771. srb->cmd[1]=srb->lun<<5;
  772. srb->cmd[4]=18;
  773. srb->datalen=18;
  774. srb->pdata = &srb->sense_buf[0];
  775. srb->cmdlen=12;
  776. ss->transport(srb,ss);
  777. USB_STOR_PRINTF("Request Sense returned %02X %02X %02X\n",srb->sense_buf[2],srb->sense_buf[12],srb->sense_buf[13]);
  778. srb->pdata=(uchar *)ptr;
  779. return 0;
  780. }
  781. static int usb_test_unit_ready(ccb *srb,struct us_data *ss)
  782. {
  783. int retries = 10;
  784. do {
  785. memset(&srb->cmd[0],0,12);
  786. srb->cmd[0]=SCSI_TST_U_RDY;
  787. srb->cmd[1]=srb->lun<<5;
  788. srb->datalen=0;
  789. srb->cmdlen=12;
  790. if(ss->transport(srb,ss)==USB_STOR_TRANSPORT_GOOD) {
  791. return 0;
  792. }
  793. usb_request_sense (srb, ss);
  794. wait_ms (100);
  795. } while(retries--);
  796. return -1;
  797. }
  798. static int usb_read_capacity(ccb *srb,struct us_data *ss)
  799. {
  800. int retry;
  801. retry = 3; /* retries */
  802. do {
  803. memset(&srb->cmd[0],0,12);
  804. srb->cmd[0]=SCSI_RD_CAPAC;
  805. srb->cmd[1]=srb->lun<<5;
  806. srb->datalen=8;
  807. srb->cmdlen=12;
  808. if(ss->transport(srb,ss)==USB_STOR_TRANSPORT_GOOD) {
  809. return 0;
  810. }
  811. } while(retry--);
  812. return -1;
  813. }
  814. static int usb_read_10(ccb *srb,struct us_data *ss, unsigned long start, unsigned short blocks)
  815. {
  816. memset(&srb->cmd[0],0,12);
  817. srb->cmd[0]=SCSI_READ10;
  818. srb->cmd[1]=srb->lun<<5;
  819. srb->cmd[2]=((unsigned char) (start>>24))&0xff;
  820. srb->cmd[3]=((unsigned char) (start>>16))&0xff;
  821. srb->cmd[4]=((unsigned char) (start>>8))&0xff;
  822. srb->cmd[5]=((unsigned char) (start))&0xff;
  823. srb->cmd[7]=((unsigned char) (blocks>>8))&0xff;
  824. srb->cmd[8]=(unsigned char) blocks & 0xff;
  825. srb->cmdlen=12;
  826. USB_STOR_PRINTF("read10: start %lx blocks %x\n",start,blocks);
  827. return ss->transport(srb,ss);
  828. }
  829. #ifdef CONFIG_USB_BIN_FIXUP
  830. /*
  831. * Some USB storage devices queried for SCSI identification data respond with
  832. * binary strings, which if output to the console freeze the terminal. The
  833. * workaround is to modify the vendor and product strings read from such
  834. * device with proper values (as reported by 'usb info').
  835. *
  836. * Vendor and product length limits are taken from the definition of
  837. * block_dev_desc_t in include/part.h.
  838. */
  839. static void usb_bin_fixup(struct usb_device_descriptor descriptor,
  840. unsigned char vendor[],
  841. unsigned char product[]) {
  842. const unsigned char max_vendor_len = 40;
  843. const unsigned char max_product_len = 20;
  844. if (descriptor.idVendor == 0x0424 && descriptor.idProduct == 0x223a) {
  845. strncpy ((char *)vendor, "SMSC", max_vendor_len);
  846. strncpy ((char *)product, "Flash Media Cntrller", max_product_len);
  847. }
  848. }
  849. #endif /* CONFIG_USB_BIN_FIXUP */
  850. #define USB_MAX_READ_BLK 20
  851. unsigned long usb_stor_read(int device, unsigned long blknr, unsigned long blkcnt, void *buffer)
  852. {
  853. unsigned long start,blks, buf_addr;
  854. unsigned short smallblks;
  855. struct usb_device *dev;
  856. int retry,i;
  857. ccb *srb = &usb_ccb;
  858. if (blkcnt == 0)
  859. return 0;
  860. device &= 0xff;
  861. /* Setup device
  862. */
  863. USB_STOR_PRINTF("\nusb_read: dev %d \n",device);
  864. dev=NULL;
  865. for(i=0;i<USB_MAX_DEVICE;i++) {
  866. dev=usb_get_dev_index(i);
  867. if(dev==NULL) {
  868. return 0;
  869. }
  870. if(dev->devnum==usb_dev_desc[device].target)
  871. break;
  872. }
  873. usb_disable_asynch(1); /* asynch transfer not allowed */
  874. srb->lun=usb_dev_desc[device].lun;
  875. buf_addr=(unsigned long)buffer;
  876. start=blknr;
  877. blks=blkcnt;
  878. if(usb_test_unit_ready(srb,(struct us_data *)dev->privptr)) {
  879. printf("Device NOT ready\n Request Sense returned %02X %02X %02X\n",
  880. srb->sense_buf[2],srb->sense_buf[12],srb->sense_buf[13]);
  881. return 0;
  882. }
  883. USB_STOR_PRINTF("\nusb_read: dev %d startblk %lx, blccnt %lx buffer %lx\n",device,start,blks, buf_addr);
  884. do {
  885. retry=2;
  886. srb->pdata=(unsigned char *)buf_addr;
  887. if(blks>USB_MAX_READ_BLK) {
  888. smallblks=USB_MAX_READ_BLK;
  889. } else {
  890. smallblks=(unsigned short) blks;
  891. }
  892. retry_it:
  893. if(smallblks==USB_MAX_READ_BLK)
  894. usb_show_progress();
  895. srb->datalen=usb_dev_desc[device].blksz * smallblks;
  896. srb->pdata=(unsigned char *)buf_addr;
  897. if(usb_read_10(srb,(struct us_data *)dev->privptr, start, smallblks)) {
  898. USB_STOR_PRINTF("Read ERROR\n");
  899. usb_request_sense(srb,(struct us_data *)dev->privptr);
  900. if(retry--)
  901. goto retry_it;
  902. blkcnt-=blks;
  903. break;
  904. }
  905. start+=smallblks;
  906. blks-=smallblks;
  907. buf_addr+=srb->datalen;
  908. } while(blks!=0);
  909. USB_STOR_PRINTF("usb_read: end startblk %lx, blccnt %x buffer %lx\n",start,smallblks,buf_addr);
  910. usb_disable_asynch(0); /* asynch transfer allowed */
  911. if(blkcnt>=USB_MAX_READ_BLK)
  912. printf("\n");
  913. return(blkcnt);
  914. }
  915. /* Probe to see if a new device is actually a Storage device */
  916. int usb_storage_probe(struct usb_device *dev, unsigned int ifnum,struct us_data *ss)
  917. {
  918. struct usb_interface_descriptor *iface;
  919. int i;
  920. unsigned int flags = 0;
  921. int protocol = 0;
  922. int subclass = 0;
  923. /* let's examine the device now */
  924. iface = &dev->config.if_desc[ifnum];
  925. #if 0
  926. /* this is the place to patch some storage devices */
  927. USB_STOR_PRINTF("iVendor %X iProduct %X\n",dev->descriptor.idVendor,dev->descriptor.idProduct);
  928. if ((dev->descriptor.idVendor) == 0x066b && (dev->descriptor.idProduct) == 0x0103) {
  929. USB_STOR_PRINTF("patched for E-USB\n");
  930. protocol = US_PR_CB;
  931. subclass = US_SC_UFI; /* an assumption */
  932. }
  933. #endif
  934. if (dev->descriptor.bDeviceClass != 0 ||
  935. iface->bInterfaceClass != USB_CLASS_MASS_STORAGE ||
  936. iface->bInterfaceSubClass < US_SC_MIN ||
  937. iface->bInterfaceSubClass > US_SC_MAX) {
  938. /* if it's not a mass storage, we go no further */
  939. return 0;
  940. }
  941. memset(ss, 0, sizeof(struct us_data));
  942. /* At this point, we know we've got a live one */
  943. USB_STOR_PRINTF("\n\nUSB Mass Storage device detected\n");
  944. /* Initialize the us_data structure with some useful info */
  945. ss->flags = flags;
  946. ss->ifnum = ifnum;
  947. ss->pusb_dev = dev;
  948. ss->attention_done = 0;
  949. /* If the device has subclass and protocol, then use that. Otherwise,
  950. * take data from the specific interface.
  951. */
  952. if (subclass) {
  953. ss->subclass = subclass;
  954. ss->protocol = protocol;
  955. } else {
  956. ss->subclass = iface->bInterfaceSubClass;
  957. ss->protocol = iface->bInterfaceProtocol;
  958. }
  959. /* set the handler pointers based on the protocol */
  960. USB_STOR_PRINTF("Transport: ");
  961. switch (ss->protocol) {
  962. case US_PR_CB:
  963. USB_STOR_PRINTF("Control/Bulk\n");
  964. ss->transport = usb_stor_CB_transport;
  965. ss->transport_reset = usb_stor_CB_reset;
  966. break;
  967. case US_PR_CBI:
  968. USB_STOR_PRINTF("Control/Bulk/Interrupt\n");
  969. ss->transport = usb_stor_CB_transport;
  970. ss->transport_reset = usb_stor_CB_reset;
  971. break;
  972. case US_PR_BULK:
  973. USB_STOR_PRINTF("Bulk/Bulk/Bulk\n");
  974. ss->transport = usb_stor_BBB_transport;
  975. ss->transport_reset = usb_stor_BBB_reset;
  976. break;
  977. default:
  978. printf("USB Storage Transport unknown / not yet implemented\n");
  979. return 0;
  980. break;
  981. }
  982. /*
  983. * We are expecting a minimum of 2 endpoints - in and out (bulk).
  984. * An optional interrupt is OK (necessary for CBI protocol).
  985. * We will ignore any others.
  986. */
  987. for (i = 0; i < iface->bNumEndpoints; i++) {
  988. /* is it an BULK endpoint? */
  989. if ((iface->ep_desc[i].bmAttributes & USB_ENDPOINT_XFERTYPE_MASK)
  990. == USB_ENDPOINT_XFER_BULK) {
  991. if (iface->ep_desc[i].bEndpointAddress & USB_DIR_IN)
  992. ss->ep_in = iface->ep_desc[i].bEndpointAddress &
  993. USB_ENDPOINT_NUMBER_MASK;
  994. else
  995. ss->ep_out = iface->ep_desc[i].bEndpointAddress &
  996. USB_ENDPOINT_NUMBER_MASK;
  997. }
  998. /* is it an interrupt endpoint? */
  999. if ((iface->ep_desc[i].bmAttributes & USB_ENDPOINT_XFERTYPE_MASK)
  1000. == USB_ENDPOINT_XFER_INT) {
  1001. ss->ep_int = iface->ep_desc[i].bEndpointAddress &
  1002. USB_ENDPOINT_NUMBER_MASK;
  1003. ss->irqinterval = iface->ep_desc[i].bInterval;
  1004. }
  1005. }
  1006. USB_STOR_PRINTF("Endpoints In %d Out %d Int %d\n",
  1007. ss->ep_in, ss->ep_out, ss->ep_int);
  1008. /* Do some basic sanity checks, and bail if we find a problem */
  1009. if (usb_set_interface(dev, iface->bInterfaceNumber, 0) ||
  1010. !ss->ep_in || !ss->ep_out ||
  1011. (ss->protocol == US_PR_CBI && ss->ep_int == 0)) {
  1012. USB_STOR_PRINTF("Problems with device\n");
  1013. return 0;
  1014. }
  1015. /* set class specific stuff */
  1016. /* We only handle certain protocols. Currently, these are
  1017. * the only ones.
  1018. * The SFF8070 accepts the requests used in u-boot
  1019. */
  1020. if (ss->subclass != US_SC_UFI && ss->subclass != US_SC_SCSI &&
  1021. ss->subclass != US_SC_8070) {
  1022. printf("Sorry, protocol %d not yet supported.\n",ss->subclass);
  1023. return 0;
  1024. }
  1025. if(ss->ep_int) { /* we had found an interrupt endpoint, prepare irq pipe */
  1026. /* set up the IRQ pipe and handler */
  1027. ss->irqinterval = (ss->irqinterval > 0) ? ss->irqinterval : 255;
  1028. ss->irqpipe = usb_rcvintpipe(ss->pusb_dev, ss->ep_int);
  1029. ss->irqmaxp = usb_maxpacket(dev, ss->irqpipe);
  1030. dev->irq_handle=usb_stor_irq;
  1031. }
  1032. dev->privptr=(void *)ss;
  1033. return 1;
  1034. }
  1035. int usb_stor_get_info(struct usb_device *dev,struct us_data *ss,block_dev_desc_t *dev_desc)
  1036. {
  1037. unsigned char perq,modi;
  1038. unsigned long cap[2];
  1039. unsigned long *capacity,*blksz;
  1040. ccb *pccb = &usb_ccb;
  1041. /* for some reasons a couple of devices would not survive this reset */
  1042. if (
  1043. /* Sony USM256E */
  1044. (dev->descriptor.idVendor == 0x054c &&
  1045. dev->descriptor.idProduct == 0x019e)
  1046. ||
  1047. /* USB007 Mini-USB2 Flash Drive */
  1048. (dev->descriptor.idVendor == 0x066f &&
  1049. dev->descriptor.idProduct == 0x2010)
  1050. ||
  1051. /* SanDisk Corporation Cruzer Micro 20044318410546613953 */
  1052. (dev->descriptor.idVendor == 0x0781 &&
  1053. dev->descriptor.idProduct == 0x5151)
  1054. )
  1055. USB_STOR_PRINTF("usb_stor_get_info: skipping RESET..\n");
  1056. else
  1057. ss->transport_reset(ss);
  1058. pccb->pdata = usb_stor_buf;
  1059. dev_desc->target = dev->devnum;
  1060. pccb->lun = dev_desc->lun;
  1061. USB_STOR_PRINTF(" address %d\n",dev_desc->target);
  1062. if(usb_inquiry(pccb,ss))
  1063. return -1;
  1064. perq = usb_stor_buf[0];
  1065. modi = usb_stor_buf[1];
  1066. if((perq & 0x1f) == 0x1f) {
  1067. return 0; /* skip unknown devices */
  1068. }
  1069. if((modi&0x80) == 0x80) {/* drive is removable */
  1070. dev_desc->removable = 1;
  1071. }
  1072. memcpy(&dev_desc->vendor[0], &usb_stor_buf[8], 8);
  1073. memcpy(&dev_desc->product[0], &usb_stor_buf[16], 16);
  1074. memcpy(&dev_desc->revision[0], &usb_stor_buf[32], 4);
  1075. dev_desc->vendor[8] = 0;
  1076. dev_desc->product[16] = 0;
  1077. dev_desc->revision[4] = 0;
  1078. #ifdef CONFIG_USB_BIN_FIXUP
  1079. usb_bin_fixup(dev->descriptor, (uchar *)dev_desc->vendor, (uchar *)dev_desc->product);
  1080. #endif /* CONFIG_USB_BIN_FIXUP */
  1081. USB_STOR_PRINTF("ISO Vers %X, Response Data %X\n",usb_stor_buf[2],usb_stor_buf[3]);
  1082. if(usb_test_unit_ready(pccb,ss)) {
  1083. printf("Device NOT ready\n Request Sense returned %02X %02X %02X\n",pccb->sense_buf[2],pccb->sense_buf[12],pccb->sense_buf[13]);
  1084. if(dev_desc->removable == 1) {
  1085. dev_desc->type = perq;
  1086. return 1;
  1087. }
  1088. else
  1089. return 0;
  1090. }
  1091. pccb->pdata = (unsigned char *)&cap[0];
  1092. memset(pccb->pdata,0,8);
  1093. if(usb_read_capacity(pccb,ss) != 0) {
  1094. printf("READ_CAP ERROR\n");
  1095. cap[0] = 2880;
  1096. cap[1] = 0x200;
  1097. }
  1098. USB_STOR_PRINTF("Read Capacity returns: 0x%lx, 0x%lx\n",cap[0],cap[1]);
  1099. #if 0
  1100. if(cap[0]>(0x200000 * 10)) /* greater than 10 GByte */
  1101. cap[0]>>=16;
  1102. #endif
  1103. cap[0] = cpu_to_be32(cap[0]);
  1104. cap[1] = cpu_to_be32(cap[1]);
  1105. /* this assumes bigendian! */
  1106. cap[0] += 1;
  1107. capacity = &cap[0];
  1108. blksz = &cap[1];
  1109. USB_STOR_PRINTF("Capacity = 0x%lx, blocksz = 0x%lx\n",*capacity,*blksz);
  1110. dev_desc->lba = *capacity;
  1111. dev_desc->blksz = *blksz;
  1112. dev_desc->type = perq;
  1113. USB_STOR_PRINTF(" address %d\n",dev_desc->target);
  1114. USB_STOR_PRINTF("partype: %d\n",dev_desc->part_type);
  1115. init_part(dev_desc);
  1116. USB_STOR_PRINTF("partype: %d\n",dev_desc->part_type);
  1117. return 1;
  1118. }