mstorage.c 32 KB

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  1. /*
  2. * Copyright (c) 2006-2018, RT-Thread Development Team
  3. *
  4. * SPDX-License-Identifier: Apache-2.0
  5. *
  6. * Change Logs:
  7. * Date Author Notes
  8. * 2012-10-01 Yi Qiu first version
  9. * 2012-11-25 Heyuanjie87 reduce the memory consumption
  10. * 2012-12-09 Heyuanjie87 change function and endpoint handler
  11. * 2013-07-25 Yi Qiu update for USB CV test
  12. */
  13. #include <rtthread.h>
  14. #include <rtservice.h>
  15. #include "drivers/usb_device.h"
  16. #include "mstorage.h"
  17. #ifdef RT_USB_DEVICE_MSTORAGE
  18. enum STAT
  19. {
  20. STAT_CBW,
  21. STAT_CMD,
  22. STAT_CSW,
  23. STAT_RECEIVE,
  24. STAT_SEND,
  25. };
  26. typedef enum
  27. {
  28. FIXED,
  29. COUNT,
  30. BLOCK_COUNT,
  31. }CB_SIZE_TYPE;
  32. typedef enum
  33. {
  34. DIR_IN,
  35. DIR_OUT,
  36. DIR_NONE,
  37. }CB_DIR;
  38. typedef rt_size_t (*cbw_handler)(ufunction_t func, ustorage_cbw_t cbw);
  39. struct scsi_cmd
  40. {
  41. rt_uint16_t cmd;
  42. cbw_handler handler;
  43. rt_size_t cmd_len;
  44. CB_SIZE_TYPE type;
  45. rt_size_t data_size;
  46. CB_DIR dir;
  47. };
  48. struct mstorage
  49. {
  50. struct ustorage_csw csw_response;
  51. uep_t ep_in;
  52. uep_t ep_out;
  53. int status;
  54. rt_uint32_t cb_data_size;
  55. rt_device_t disk;
  56. rt_uint32_t block;
  57. rt_int32_t count;
  58. rt_int32_t size;
  59. struct scsi_cmd* processing;
  60. struct rt_device_blk_geometry geometry;
  61. };
  62. ALIGN(4)
  63. static struct udevice_descriptor dev_desc =
  64. {
  65. USB_DESC_LENGTH_DEVICE, //bLength;
  66. USB_DESC_TYPE_DEVICE, //type;
  67. USB_BCD_VERSION, //bcdUSB;
  68. USB_CLASS_MASS_STORAGE, //bDeviceClass;
  69. 0x06, //bDeviceSubClass;
  70. 0x50, //bDeviceProtocol;
  71. 0x40, //bMaxPacketSize0;
  72. _VENDOR_ID, //idVendor;
  73. _PRODUCT_ID, //idProduct;
  74. USB_BCD_DEVICE, //bcdDevice;
  75. USB_STRING_MANU_INDEX, //iManufacturer;
  76. USB_STRING_PRODUCT_INDEX, //iProduct;
  77. USB_STRING_SERIAL_INDEX, //iSerialNumber;
  78. USB_DYNAMIC, //bNumConfigurations;
  79. };
  80. //FS and HS needed
  81. ALIGN(4)
  82. static struct usb_qualifier_descriptor dev_qualifier =
  83. {
  84. sizeof(dev_qualifier), //bLength
  85. USB_DESC_TYPE_DEVICEQUALIFIER, //bDescriptorType
  86. 0x0200, //bcdUSB
  87. USB_CLASS_MASS_STORAGE, //bDeviceClass
  88. 0x06, //bDeviceSubClass
  89. 0x50, //bDeviceProtocol
  90. 64, //bMaxPacketSize0
  91. 0x01, //bNumConfigurations
  92. 0,
  93. };
  94. ALIGN(4)
  95. const static struct umass_descriptor _mass_desc =
  96. {
  97. #ifdef RT_USB_DEVICE_COMPOSITE
  98. /* Interface Association Descriptor */
  99. {
  100. USB_DESC_LENGTH_IAD,
  101. USB_DESC_TYPE_IAD,
  102. USB_DYNAMIC,
  103. 0x01,
  104. USB_CLASS_MASS_STORAGE,
  105. 0x06,
  106. 0x50,
  107. 0x00,
  108. },
  109. #endif
  110. {
  111. USB_DESC_LENGTH_INTERFACE, //bLength;
  112. USB_DESC_TYPE_INTERFACE, //type;
  113. USB_DYNAMIC, //bInterfaceNumber;
  114. 0x00, //bAlternateSetting;
  115. 0x02, //bNumEndpoints
  116. USB_CLASS_MASS_STORAGE, //bInterfaceClass;
  117. 0x06, //bInterfaceSubClass;
  118. 0x50, //bInterfaceProtocol;
  119. 0x00, //iInterface;
  120. },
  121. {
  122. USB_DESC_LENGTH_ENDPOINT, //bLength;
  123. USB_DESC_TYPE_ENDPOINT, //type;
  124. USB_DYNAMIC | USB_DIR_OUT, //bEndpointAddress;
  125. USB_EP_ATTR_BULK, //bmAttributes;
  126. USB_DYNAMIC, //wMaxPacketSize;
  127. 0x00, //bInterval;
  128. },
  129. {
  130. USB_DESC_LENGTH_ENDPOINT, //bLength;
  131. USB_DESC_TYPE_ENDPOINT, //type;
  132. USB_DYNAMIC | USB_DIR_IN, //bEndpointAddress;
  133. USB_EP_ATTR_BULK, //bmAttributes;
  134. USB_DYNAMIC, //wMaxPacketSize;
  135. 0x00, //bInterval;
  136. },
  137. };
  138. ALIGN(4)
  139. const static char* _ustring[] =
  140. {
  141. "Language",
  142. "RT-Thread Team.",
  143. "RTT Mass Storage",
  144. "320219198301",
  145. "Configuration",
  146. "Interface",
  147. };
  148. static rt_size_t _test_unit_ready(ufunction_t func, ustorage_cbw_t cbw);
  149. static rt_size_t _request_sense(ufunction_t func, ustorage_cbw_t cbw);
  150. static rt_size_t _inquiry_cmd(ufunction_t func, ustorage_cbw_t cbw);
  151. static rt_size_t _allow_removal(ufunction_t func, ustorage_cbw_t cbw);
  152. static rt_size_t _start_stop(ufunction_t func, ustorage_cbw_t cbw);
  153. static rt_size_t _mode_sense_6(ufunction_t func, ustorage_cbw_t cbw);
  154. static rt_size_t _read_capacities(ufunction_t func, ustorage_cbw_t cbw);
  155. static rt_size_t _read_capacity(ufunction_t func, ustorage_cbw_t cbw);
  156. static rt_size_t _read_10(ufunction_t func, ustorage_cbw_t cbw);
  157. static rt_size_t _write_10(ufunction_t func, ustorage_cbw_t cbw);
  158. static rt_size_t _verify_10(ufunction_t func, ustorage_cbw_t cbw);
  159. ALIGN(4)
  160. static struct scsi_cmd cmd_data[] =
  161. {
  162. {SCSI_TEST_UNIT_READY, _test_unit_ready, 6, FIXED, 0, DIR_NONE},
  163. {SCSI_REQUEST_SENSE, _request_sense, 6, COUNT, 0, DIR_IN},
  164. {SCSI_INQUIRY_CMD, _inquiry_cmd, 6, COUNT, 0, DIR_IN},
  165. {SCSI_ALLOW_REMOVAL, _allow_removal, 6, FIXED, 0, DIR_NONE},
  166. {SCSI_MODE_SENSE_6, _mode_sense_6, 6, COUNT, 0, DIR_IN},
  167. {SCSI_START_STOP, _start_stop, 6, FIXED, 0, DIR_NONE},
  168. {SCSI_READ_CAPACITIES, _read_capacities, 10, COUNT, 0, DIR_NONE},
  169. {SCSI_READ_CAPACITY, _read_capacity, 10, FIXED, 8, DIR_IN},
  170. {SCSI_READ_10, _read_10, 10, BLOCK_COUNT, 0, DIR_IN},
  171. {SCSI_WRITE_10, _write_10, 10, BLOCK_COUNT, 0, DIR_OUT},
  172. {SCSI_VERIFY_10, _verify_10, 10, FIXED, 0, DIR_NONE},
  173. };
  174. static void _send_status(ufunction_t func)
  175. {
  176. struct mstorage *data;
  177. RT_ASSERT(func != RT_NULL);
  178. RT_DEBUG_LOG(RT_DEBUG_USB, ("_send_status\n"));
  179. data = (struct mstorage*)func->user_data;
  180. data->ep_in->request.buffer = (rt_uint8_t*)&data->csw_response;
  181. data->ep_in->request.size = SIZEOF_CSW;
  182. data->ep_in->request.req_type = UIO_REQUEST_WRITE;
  183. rt_usbd_io_request(func->device, data->ep_in, &data->ep_in->request);
  184. data->status = STAT_CSW;
  185. }
  186. static rt_size_t _test_unit_ready(ufunction_t func, ustorage_cbw_t cbw)
  187. {
  188. struct mstorage *data;
  189. RT_ASSERT(func != RT_NULL);
  190. RT_ASSERT(func->device != RT_NULL);
  191. RT_DEBUG_LOG(RT_DEBUG_USB, ("_test_unit_ready\n"));
  192. data = (struct mstorage*)func->user_data;
  193. data->csw_response.status = 0;
  194. return 0;
  195. }
  196. static rt_size_t _allow_removal(ufunction_t func, ustorage_cbw_t cbw)
  197. {
  198. struct mstorage *data;
  199. RT_ASSERT(func != RT_NULL);
  200. RT_ASSERT(func->device != RT_NULL);
  201. RT_DEBUG_LOG(RT_DEBUG_USB, ("_allow_removal\n"));
  202. data = (struct mstorage*)func->user_data;
  203. data->csw_response.status = 0;
  204. return 0;
  205. }
  206. /**
  207. * This function will handle inquiry command request.
  208. *
  209. * @param func the usb function object.
  210. * @param cbw the command block wrapper.
  211. *
  212. * @return RT_EOK on successful.
  213. */
  214. static rt_size_t _inquiry_cmd(ufunction_t func, ustorage_cbw_t cbw)
  215. {
  216. struct mstorage *data;
  217. rt_uint8_t *buf;
  218. RT_ASSERT(func != RT_NULL);
  219. RT_ASSERT(func->device != RT_NULL);
  220. RT_ASSERT(cbw != RT_NULL);
  221. RT_DEBUG_LOG(RT_DEBUG_USB, ("_inquiry_cmd\n"));
  222. data = (struct mstorage*)func->user_data;
  223. buf = data->ep_in->buffer;
  224. *(rt_uint32_t*)&buf[0] = 0x0 | (0x80 << 8);
  225. *(rt_uint32_t*)&buf[4] = 31;
  226. rt_memset(&buf[8], 0x20, 28);
  227. rt_memcpy(&buf[8], "RTT", 3);
  228. rt_memcpy(&buf[16], "USB Disk", 8);
  229. data->cb_data_size = MIN(data->cb_data_size, SIZEOF_INQUIRY_CMD);
  230. data->ep_in->request.buffer = buf;
  231. data->ep_in->request.size = data->cb_data_size;
  232. data->ep_in->request.req_type = UIO_REQUEST_WRITE;
  233. rt_usbd_io_request(func->device, data->ep_in, &data->ep_in->request);
  234. data->status = STAT_CMD;
  235. return data->cb_data_size;
  236. }
  237. /**
  238. * This function will handle sense request.
  239. *
  240. * @param func the usb function object.
  241. * @param cbw the command block wrapper.
  242. *
  243. * @return RT_EOK on successful.
  244. */
  245. static rt_size_t _request_sense(ufunction_t func, ustorage_cbw_t cbw)
  246. {
  247. struct mstorage *data;
  248. struct request_sense_data *buf;
  249. RT_ASSERT(func != RT_NULL);
  250. RT_ASSERT(func->device != RT_NULL);
  251. RT_ASSERT(cbw != RT_NULL);
  252. RT_DEBUG_LOG(RT_DEBUG_USB, ("_request_sense\n"));
  253. data = (struct mstorage*)func->user_data;
  254. buf = (struct request_sense_data *)data->ep_in->buffer;
  255. buf->ErrorCode = 0x70;
  256. buf->Valid = 0;
  257. buf->SenseKey = 2;
  258. buf->Information[0] = 0;
  259. buf->Information[1] = 0;
  260. buf->Information[2] = 0;
  261. buf->Information[3] = 0;
  262. buf->AdditionalSenseLength = 0x0a;
  263. buf->AdditionalSenseCode = 0x3a;
  264. buf->AdditionalSenseCodeQualifier = 0;
  265. data->cb_data_size = MIN(data->cb_data_size, SIZEOF_REQUEST_SENSE);
  266. data->ep_in->request.buffer = (rt_uint8_t*)data->ep_in->buffer;
  267. data->ep_in->request.size = data->cb_data_size;
  268. data->ep_in->request.req_type = UIO_REQUEST_WRITE;
  269. rt_usbd_io_request(func->device, data->ep_in, &data->ep_in->request);
  270. data->status = STAT_CMD;
  271. return data->cb_data_size;
  272. }
  273. /**
  274. * This function will handle mode_sense_6 request.
  275. *
  276. * @param func the usb function object.
  277. * @param cbw the command block wrapper.
  278. *
  279. * @return RT_EOK on successful.
  280. */
  281. static rt_size_t _mode_sense_6(ufunction_t func, ustorage_cbw_t cbw)
  282. {
  283. struct mstorage *data;
  284. rt_uint8_t *buf;
  285. RT_ASSERT(func != RT_NULL);
  286. RT_ASSERT(func->device != RT_NULL);
  287. RT_ASSERT(cbw != RT_NULL);
  288. RT_DEBUG_LOG(RT_DEBUG_USB, ("_mode_sense_6\n"));
  289. data = (struct mstorage*)func->user_data;
  290. buf = data->ep_in->buffer;
  291. buf[0] = 3;
  292. buf[1] = 0;
  293. buf[2] = 0;
  294. buf[3] = 0;
  295. data->cb_data_size = MIN(data->cb_data_size, SIZEOF_MODE_SENSE_6);
  296. data->ep_in->request.buffer = buf;
  297. data->ep_in->request.size = data->cb_data_size;
  298. data->ep_in->request.req_type = UIO_REQUEST_WRITE;
  299. rt_usbd_io_request(func->device, data->ep_in, &data->ep_in->request);
  300. data->status = STAT_CMD;
  301. return data->cb_data_size;
  302. }
  303. /**
  304. * This function will handle read_capacities request.
  305. *
  306. * @param func the usb function object.
  307. * @param cbw the command block wrapper.
  308. *
  309. * @return RT_EOK on successful.
  310. */
  311. static rt_size_t _read_capacities(ufunction_t func, ustorage_cbw_t cbw)
  312. {
  313. struct mstorage *data;
  314. rt_uint8_t *buf;
  315. rt_uint32_t sector_count, sector_size;
  316. RT_ASSERT(func != RT_NULL);
  317. RT_ASSERT(func->device != RT_NULL);
  318. RT_ASSERT(cbw != RT_NULL);
  319. RT_DEBUG_LOG(RT_DEBUG_USB, ("_read_capacities\n"));
  320. data = (struct mstorage*)func->user_data;
  321. buf = data->ep_in->buffer;
  322. sector_count = data->geometry.sector_count;
  323. sector_size = data->geometry.bytes_per_sector;
  324. *(rt_uint32_t*)&buf[0] = 0x08000000;
  325. buf[4] = sector_count >> 24;
  326. buf[5] = 0xff & (sector_count >> 16);
  327. buf[6] = 0xff & (sector_count >> 8);
  328. buf[7] = 0xff & (sector_count);
  329. buf[8] = 0x02;
  330. buf[9] = 0xff & (sector_size >> 16);
  331. buf[10] = 0xff & (sector_size >> 8);
  332. buf[11] = 0xff & sector_size;
  333. data->cb_data_size = MIN(data->cb_data_size, SIZEOF_READ_CAPACITIES);
  334. data->ep_in->request.buffer = buf;
  335. data->ep_in->request.size = data->cb_data_size;
  336. data->ep_in->request.req_type = UIO_REQUEST_WRITE;
  337. rt_usbd_io_request(func->device, data->ep_in, &data->ep_in->request);
  338. data->status = STAT_CMD;
  339. return data->cb_data_size;
  340. }
  341. /**
  342. * This function will handle read_capacity request.
  343. *
  344. * @param func the usb function object.
  345. * @param cbw the command block wapper.
  346. *
  347. * @return RT_EOK on successful.
  348. */
  349. static rt_size_t _read_capacity(ufunction_t func, ustorage_cbw_t cbw)
  350. {
  351. struct mstorage *data;
  352. rt_uint8_t *buf;
  353. rt_uint32_t sector_count, sector_size;
  354. RT_ASSERT(func != RT_NULL);
  355. RT_ASSERT(func->device != RT_NULL);
  356. RT_ASSERT(cbw != RT_NULL);
  357. RT_DEBUG_LOG(RT_DEBUG_USB, ("_read_capacity\n"));
  358. data = (struct mstorage*)func->user_data;
  359. buf = data->ep_in->buffer;
  360. sector_count = data->geometry.sector_count;
  361. sector_size = data->geometry.bytes_per_sector;
  362. buf[0] = sector_count >> 24;
  363. buf[1] = 0xff & (sector_count >> 16);
  364. buf[2] = 0xff & (sector_count >> 8);
  365. buf[3] = 0xff & (sector_count);
  366. buf[4] = 0x0;
  367. buf[5] = 0xff & (sector_size >> 16);
  368. buf[6] = 0xff & (sector_size >> 8);
  369. buf[7] = 0xff & sector_size;
  370. data->cb_data_size = MIN(data->cb_data_size, SIZEOF_READ_CAPACITY);
  371. data->ep_in->request.buffer = buf;
  372. data->ep_in->request.size = data->cb_data_size;
  373. data->ep_in->request.req_type = UIO_REQUEST_WRITE;
  374. rt_usbd_io_request(func->device, data->ep_in, &data->ep_in->request);
  375. data->status = STAT_CMD;
  376. return data->cb_data_size;
  377. }
  378. /**
  379. * This function will handle read_10 request.
  380. *
  381. * @param func the usb function object.
  382. * @param cbw the command block wrapper.
  383. *
  384. * @return RT_EOK on successful.
  385. */
  386. static rt_size_t _read_10(ufunction_t func, ustorage_cbw_t cbw)
  387. {
  388. struct mstorage *data;
  389. rt_size_t size;
  390. RT_ASSERT(func != RT_NULL);
  391. RT_ASSERT(func->device != RT_NULL);
  392. RT_ASSERT(cbw != RT_NULL);
  393. data = (struct mstorage*)func->user_data;
  394. data->block = cbw->cb[2]<<24 | cbw->cb[3]<<16 | cbw->cb[4]<<8 |
  395. cbw->cb[5]<<0;
  396. data->count = cbw->cb[7]<<8 | cbw->cb[8]<<0;
  397. RT_ASSERT(data->count < data->geometry.sector_count);
  398. data->csw_response.data_reside = data->cb_data_size;
  399. size = rt_device_read(data->disk, data->block, data->ep_in->buffer, 1);
  400. if(size == 0)
  401. {
  402. rt_kprintf("read data error\n");
  403. }
  404. data->ep_in->request.buffer = data->ep_in->buffer;
  405. data->ep_in->request.size = data->geometry.bytes_per_sector;
  406. data->ep_in->request.req_type = UIO_REQUEST_WRITE;
  407. rt_usbd_io_request(func->device, data->ep_in, &data->ep_in->request);
  408. data->status = STAT_SEND;
  409. return data->geometry.bytes_per_sector;
  410. }
  411. /**
  412. * This function will handle write_10 request.
  413. *
  414. * @param func the usb function object.
  415. * @param cbw the command block wrapper.
  416. *
  417. * @return RT_EOK on successful.
  418. */
  419. static rt_size_t _write_10(ufunction_t func, ustorage_cbw_t cbw)
  420. {
  421. struct mstorage *data;
  422. RT_ASSERT(func != RT_NULL);
  423. RT_ASSERT(func->device != RT_NULL);
  424. RT_ASSERT(cbw != RT_NULL);
  425. data = (struct mstorage*)func->user_data;
  426. data->block = cbw->cb[2]<<24 | cbw->cb[3]<<16 | cbw->cb[4]<<8 |
  427. cbw->cb[5]<<0;
  428. data->count = cbw->cb[7]<<8 | cbw->cb[8];
  429. data->csw_response.data_reside = cbw->xfer_len;
  430. data->size = data->count * data->geometry.bytes_per_sector;
  431. RT_DEBUG_LOG(RT_DEBUG_USB, ("_write_10 count 0x%x block 0x%x 0x%x\n",
  432. data->count, data->block, data->geometry.sector_count));
  433. data->csw_response.data_reside = data->cb_data_size;
  434. data->ep_out->request.buffer = data->ep_out->buffer;
  435. data->ep_out->request.size = data->geometry.bytes_per_sector;
  436. data->ep_out->request.req_type = UIO_REQUEST_READ_FULL;
  437. rt_usbd_io_request(func->device, data->ep_out, &data->ep_out->request);
  438. data->status = STAT_RECEIVE;
  439. return data->geometry.bytes_per_sector;
  440. }
  441. /**
  442. * This function will handle verify_10 request.
  443. *
  444. * @param func the usb function object.
  445. *
  446. * @return RT_EOK on successful.
  447. */
  448. static rt_size_t _verify_10(ufunction_t func, ustorage_cbw_t cbw)
  449. {
  450. struct mstorage *data;
  451. RT_ASSERT(func != RT_NULL);
  452. RT_ASSERT(func->device != RT_NULL);
  453. RT_DEBUG_LOG(RT_DEBUG_USB, ("_verify_10\n"));
  454. data = (struct mstorage*)func->user_data;
  455. data->csw_response.status = 0;
  456. return 0;
  457. }
  458. static rt_size_t _start_stop(ufunction_t func,
  459. ustorage_cbw_t cbw)
  460. {
  461. struct mstorage *data;
  462. RT_ASSERT(func != RT_NULL);
  463. RT_ASSERT(func->device != RT_NULL);
  464. RT_DEBUG_LOG(RT_DEBUG_USB, ("_start_stop\n"));
  465. data = (struct mstorage*)func->user_data;
  466. data->csw_response.status = 0;
  467. return 0;
  468. }
  469. static rt_err_t _ep_in_handler(ufunction_t func, rt_size_t size)
  470. {
  471. struct mstorage *data;
  472. RT_ASSERT(func != RT_NULL);
  473. RT_ASSERT(func->device != RT_NULL);
  474. RT_DEBUG_LOG(RT_DEBUG_USB, ("_ep_in_handler\n"));
  475. data = (struct mstorage*)func->user_data;
  476. switch(data->status)
  477. {
  478. case STAT_CSW:
  479. if(data->ep_in->request.size != SIZEOF_CSW)
  480. {
  481. rt_kprintf("Size of csw command error\n");
  482. rt_usbd_ep_set_stall(func->device, data->ep_in);
  483. }
  484. else
  485. {
  486. RT_DEBUG_LOG(RT_DEBUG_USB, ("return to cbw status\n"));
  487. data->ep_out->request.buffer = data->ep_out->buffer;
  488. data->ep_out->request.size = SIZEOF_CBW;
  489. data->ep_out->request.req_type = UIO_REQUEST_READ_FULL;
  490. rt_usbd_io_request(func->device, data->ep_out, &data->ep_out->request);
  491. data->status = STAT_CBW;
  492. }
  493. break;
  494. case STAT_CMD:
  495. if(data->csw_response.data_reside == 0xFF)
  496. {
  497. data->csw_response.data_reside = 0;
  498. }
  499. else
  500. {
  501. data->csw_response.data_reside -= data->ep_in->request.size;
  502. if(data->csw_response.data_reside != 0)
  503. {
  504. RT_DEBUG_LOG(RT_DEBUG_USB, ("data_reside %d, request %d\n",
  505. data->csw_response.data_reside, data->ep_in->request.size));
  506. if(data->processing->dir == DIR_OUT)
  507. {
  508. rt_usbd_ep_set_stall(func->device, data->ep_out);
  509. }
  510. else
  511. {
  512. rt_usbd_ep_set_stall(func->device, data->ep_in);
  513. }
  514. data->csw_response.data_reside = 0;
  515. }
  516. }
  517. _send_status(func);
  518. break;
  519. case STAT_SEND:
  520. data->csw_response.data_reside -= data->ep_in->request.size;
  521. data->count--;
  522. data->block++;
  523. if(data->count > 0 && data->csw_response.data_reside > 0)
  524. {
  525. if(rt_device_read(data->disk, data->block, data->ep_in->buffer, 1) == 0)
  526. {
  527. rt_kprintf("disk read error\n");
  528. rt_usbd_ep_set_stall(func->device, data->ep_in);
  529. return -RT_ERROR;
  530. }
  531. data->ep_in->request.buffer = data->ep_in->buffer;
  532. data->ep_in->request.size = data->geometry.bytes_per_sector;
  533. data->ep_in->request.req_type = UIO_REQUEST_WRITE;
  534. rt_usbd_io_request(func->device, data->ep_in, &data->ep_in->request);
  535. }
  536. else
  537. {
  538. _send_status(func);
  539. }
  540. break;
  541. }
  542. return RT_EOK;
  543. }
  544. #ifdef MASS_CBW_DUMP
  545. static void cbw_dump(struct ustorage_cbw* cbw)
  546. {
  547. RT_ASSERT(cbw != RT_NULL);
  548. RT_DEBUG_LOG(RT_DEBUG_USB, ("signature 0x%x\n", cbw->signature));
  549. RT_DEBUG_LOG(RT_DEBUG_USB, ("tag 0x%x\n", cbw->tag));
  550. RT_DEBUG_LOG(RT_DEBUG_USB, ("xfer_len 0x%x\n", cbw->xfer_len));
  551. RT_DEBUG_LOG(RT_DEBUG_USB, ("dflags 0x%x\n", cbw->dflags));
  552. RT_DEBUG_LOG(RT_DEBUG_USB, ("lun 0x%x\n", cbw->lun));
  553. RT_DEBUG_LOG(RT_DEBUG_USB, ("cb_len 0x%x\n", cbw->cb_len));
  554. RT_DEBUG_LOG(RT_DEBUG_USB, ("cb[0] 0x%x\n", cbw->cb[0]));
  555. }
  556. #endif
  557. static struct scsi_cmd* _find_cbw_command(rt_uint16_t cmd)
  558. {
  559. int i;
  560. for(i=0; i<sizeof(cmd_data)/sizeof(struct scsi_cmd); i++)
  561. {
  562. if(cmd_data[i].cmd == cmd)
  563. return &cmd_data[i];
  564. }
  565. return RT_NULL;
  566. }
  567. static void _cb_len_calc(ufunction_t func, struct scsi_cmd* cmd,
  568. ustorage_cbw_t cbw)
  569. {
  570. struct mstorage *data;
  571. RT_ASSERT(func != RT_NULL);
  572. RT_ASSERT(cmd != RT_NULL);
  573. RT_ASSERT(cbw != RT_NULL);
  574. data = (struct mstorage*)func->user_data;
  575. if(cmd->cmd_len == 6)
  576. {
  577. switch(cmd->type)
  578. {
  579. case COUNT:
  580. data->cb_data_size = cbw->cb[4];
  581. break;
  582. case BLOCK_COUNT:
  583. data->cb_data_size = cbw->cb[4] * data->geometry.bytes_per_sector;
  584. break;
  585. case FIXED:
  586. data->cb_data_size = cmd->data_size;
  587. break;
  588. default:
  589. break;
  590. }
  591. }
  592. else if(cmd->cmd_len == 10)
  593. {
  594. switch(cmd->type)
  595. {
  596. case COUNT:
  597. data->cb_data_size = cbw->cb[7]<<8 | cbw->cb[8];
  598. break;
  599. case BLOCK_COUNT:
  600. data->cb_data_size = (cbw->cb[7]<<8 | cbw->cb[8]) *
  601. data->geometry.bytes_per_sector;
  602. break;
  603. case FIXED:
  604. data->cb_data_size = cmd->data_size;
  605. break;
  606. default:
  607. break;
  608. }
  609. }
  610. else
  611. {
  612. // rt_kprintf("cmd_len error %d\n", cmd->cmd_len);
  613. }
  614. }
  615. static rt_bool_t _cbw_verify(ufunction_t func, struct scsi_cmd* cmd,
  616. ustorage_cbw_t cbw)
  617. {
  618. struct mstorage *data;
  619. RT_ASSERT(cmd != RT_NULL);
  620. RT_ASSERT(cbw != RT_NULL);
  621. RT_ASSERT(func != RT_NULL);
  622. data = (struct mstorage*)func->user_data;
  623. if(cmd->cmd_len != cbw->cb_len)
  624. {
  625. // rt_kprintf("cb_len error\n");
  626. cmd->cmd_len = cbw->cb_len;
  627. }
  628. if(cbw->xfer_len > 0 && data->cb_data_size == 0)
  629. {
  630. rt_kprintf("xfer_len > 0 && data_size == 0\n");
  631. return RT_FALSE;
  632. }
  633. if(cbw->xfer_len == 0 && data->cb_data_size > 0)
  634. {
  635. rt_kprintf("xfer_len == 0 && data_size > 0");
  636. return RT_FALSE;
  637. }
  638. if(((cbw->dflags & USB_DIR_IN) && (cmd->dir == DIR_OUT)) ||
  639. (!(cbw->dflags & USB_DIR_IN) && (cmd->dir == DIR_IN)))
  640. {
  641. rt_kprintf("dir error\n");
  642. return RT_FALSE;
  643. }
  644. if(cbw->xfer_len > data->cb_data_size)
  645. {
  646. rt_kprintf("xfer_len > data_size\n");
  647. return RT_FALSE;
  648. }
  649. if(cbw->xfer_len < data->cb_data_size)
  650. {
  651. // rt_kprintf("xfer_len < data_size\n");
  652. data->cb_data_size = cbw->xfer_len;
  653. data->csw_response.status = 1;
  654. }
  655. return RT_TRUE;
  656. }
  657. static rt_size_t _cbw_handler(ufunction_t func, struct scsi_cmd* cmd,
  658. ustorage_cbw_t cbw)
  659. {
  660. struct mstorage *data;
  661. RT_ASSERT(func != RT_NULL);
  662. RT_ASSERT(cbw != RT_NULL);
  663. RT_ASSERT(cmd->handler != RT_NULL);
  664. data = (struct mstorage*)func->user_data;
  665. data->processing = cmd;
  666. return cmd->handler(func, cbw);
  667. }
  668. /**
  669. * This function will handle mass storage bulk out endpoint request.
  670. *
  671. * @param func the usb function object.
  672. * @param size request size.
  673. *
  674. * @return RT_EOK.
  675. */
  676. static rt_err_t _ep_out_handler(ufunction_t func, rt_size_t size)
  677. {
  678. struct mstorage *data;
  679. struct scsi_cmd* cmd;
  680. rt_size_t len;
  681. struct ustorage_cbw* cbw;
  682. RT_ASSERT(func != RT_NULL);
  683. RT_ASSERT(func->device != RT_NULL);
  684. RT_DEBUG_LOG(RT_DEBUG_USB, ("_ep_out_handler %d\n", size));
  685. data = (struct mstorage*)func->user_data;
  686. cbw = (struct ustorage_cbw*)data->ep_out->buffer;
  687. if(data->status == STAT_CBW)
  688. {
  689. /* dump cbw information */
  690. if(cbw->signature != CBW_SIGNATURE || size != SIZEOF_CBW)
  691. {
  692. goto exit;
  693. }
  694. data->csw_response.signature = CSW_SIGNATURE;
  695. data->csw_response.tag = cbw->tag;
  696. data->csw_response.data_reside = cbw->xfer_len;
  697. data->csw_response.status = 0;
  698. RT_DEBUG_LOG(RT_DEBUG_USB, ("ep_out reside %d\n", data->csw_response.data_reside));
  699. cmd = _find_cbw_command(cbw->cb[0]);
  700. if(cmd == RT_NULL)
  701. {
  702. rt_kprintf("can't find cbw command\n");
  703. goto exit;
  704. }
  705. _cb_len_calc(func, cmd, cbw);
  706. if(!_cbw_verify(func, cmd, cbw))
  707. {
  708. goto exit;
  709. }
  710. len = _cbw_handler(func, cmd, cbw);
  711. if(len == 0)
  712. {
  713. _send_status(func);
  714. }
  715. return RT_EOK;
  716. }
  717. else if(data->status == STAT_RECEIVE)
  718. {
  719. RT_DEBUG_LOG(RT_DEBUG_USB, ("\nwrite size %d block 0x%x oount 0x%x\n",
  720. size, data->block, data->size));
  721. data->size -= size;
  722. data->csw_response.data_reside -= size;
  723. rt_device_write(data->disk, data->block, data->ep_out->buffer, 1);
  724. if(data->csw_response.data_reside != 0)
  725. {
  726. data->ep_out->request.buffer = data->ep_out->buffer;
  727. data->ep_out->request.size = data->geometry.bytes_per_sector;
  728. data->ep_out->request.req_type = UIO_REQUEST_READ_FULL;
  729. rt_usbd_io_request(func->device, data->ep_out, &data->ep_out->request);
  730. data->block ++;
  731. }
  732. else
  733. {
  734. _send_status(func);
  735. }
  736. return RT_EOK;
  737. }
  738. exit:
  739. if(data->csw_response.data_reside)
  740. {
  741. if(cbw->dflags & USB_DIR_IN)
  742. {
  743. rt_usbd_ep_set_stall(func->device, data->ep_in);
  744. }
  745. else
  746. {
  747. rt_usbd_ep_set_stall(func->device, data->ep_in);
  748. rt_usbd_ep_set_stall(func->device, data->ep_out);
  749. }
  750. }
  751. data->csw_response.status = 1;
  752. _send_status(func);
  753. return -RT_ERROR;
  754. }
  755. /**
  756. * This function will handle mass storage interface request.
  757. *
  758. * @param func the usb function object.
  759. * @param setup the setup request.
  760. *
  761. * @return RT_EOK on successful.
  762. */
  763. static rt_err_t _interface_handler(ufunction_t func, ureq_t setup)
  764. {
  765. rt_uint8_t lun = 0;
  766. RT_ASSERT(func != RT_NULL);
  767. RT_ASSERT(func->device != RT_NULL);
  768. RT_ASSERT(setup != RT_NULL);
  769. RT_DEBUG_LOG(RT_DEBUG_USB, ("mstorage_interface_handler\n"));
  770. switch(setup->bRequest)
  771. {
  772. case USBREQ_GET_MAX_LUN:
  773. RT_DEBUG_LOG(RT_DEBUG_USB, ("USBREQ_GET_MAX_LUN\n"));
  774. if(setup->wValue || setup->wLength != 1)
  775. {
  776. rt_usbd_ep0_set_stall(func->device);
  777. }
  778. else
  779. {
  780. rt_usbd_ep0_write(func->device, &lun, setup->wLength);
  781. }
  782. break;
  783. case USBREQ_MASS_STORAGE_RESET:
  784. RT_DEBUG_LOG(RT_DEBUG_USB, ("USBREQ_MASS_STORAGE_RESET\n"));
  785. if(setup->wValue || setup->wLength != 0)
  786. {
  787. rt_usbd_ep0_set_stall(func->device);
  788. }
  789. else
  790. {
  791. dcd_ep0_send_status(func->device->dcd);
  792. }
  793. break;
  794. default:
  795. rt_kprintf("unknown interface request\n");
  796. break;
  797. }
  798. return RT_EOK;
  799. }
  800. /**
  801. * This function will run mass storage function, it will be called on handle set configuration request.
  802. *
  803. * @param func the usb function object.
  804. *
  805. * @return RT_EOK on successful.
  806. */
  807. static rt_err_t _function_enable(ufunction_t func)
  808. {
  809. struct mstorage *data;
  810. RT_ASSERT(func != RT_NULL);
  811. RT_DEBUG_LOG(RT_DEBUG_USB, ("Mass storage function enabled\n"));
  812. data = (struct mstorage*)func->user_data;
  813. data->disk = rt_device_find(RT_USB_MSTORAGE_DISK_NAME);
  814. if(data->disk == RT_NULL)
  815. {
  816. rt_kprintf("no data->disk named %s\n", RT_USB_MSTORAGE_DISK_NAME);
  817. return -RT_ERROR;
  818. }
  819. if(rt_device_open(data->disk, RT_DEVICE_OFLAG_RDWR) != RT_EOK)
  820. {
  821. rt_kprintf("disk open error\n");
  822. return -RT_ERROR;
  823. }
  824. if(rt_device_control(data->disk, RT_DEVICE_CTRL_BLK_GETGEOME,
  825. (void*)&data->geometry) != RT_EOK)
  826. {
  827. rt_kprintf("get disk info error\n");
  828. return -RT_ERROR;
  829. }
  830. data->ep_in->buffer = (rt_uint8_t*)rt_malloc(data->geometry.bytes_per_sector);
  831. if(data->ep_in->buffer == RT_NULL)
  832. {
  833. rt_kprintf("no memory\n");
  834. return -RT_ENOMEM;
  835. }
  836. data->ep_out->buffer = (rt_uint8_t*)rt_malloc(data->geometry.bytes_per_sector);
  837. if(data->ep_out->buffer == RT_NULL)
  838. {
  839. rt_free(data->ep_in->buffer);
  840. rt_kprintf("no memory\n");
  841. return -RT_ENOMEM;
  842. }
  843. /* prepare to read CBW request */
  844. data->ep_out->request.buffer = data->ep_out->buffer;
  845. data->ep_out->request.size = SIZEOF_CBW;
  846. data->ep_out->request.req_type = UIO_REQUEST_READ_FULL;
  847. rt_usbd_io_request(func->device, data->ep_out, &data->ep_out->request);
  848. return RT_EOK;
  849. }
  850. /**
  851. * This function will stop mass storage function, it will be called on handle set configuration request.
  852. *
  853. * @param device the usb device object.
  854. *
  855. * @return RT_EOK on successful.
  856. */
  857. static rt_err_t _function_disable(ufunction_t func)
  858. {
  859. struct mstorage *data;
  860. RT_ASSERT(func != RT_NULL);
  861. RT_DEBUG_LOG(RT_DEBUG_USB, ("Mass storage function disabled\n"));
  862. data = (struct mstorage*)func->user_data;
  863. if(data->ep_in->buffer != RT_NULL)
  864. {
  865. rt_free(data->ep_in->buffer);
  866. data->ep_in->buffer = RT_NULL;
  867. }
  868. if(data->ep_out->buffer != RT_NULL)
  869. {
  870. rt_free(data->ep_out->buffer);
  871. data->ep_out->buffer = RT_NULL;
  872. }
  873. if(data->disk != RT_NULL)
  874. {
  875. rt_device_close(data->disk);
  876. data->disk = RT_NULL;
  877. }
  878. data->status = STAT_CBW;
  879. return RT_EOK;
  880. }
  881. static struct ufunction_ops ops =
  882. {
  883. _function_enable,
  884. _function_disable,
  885. RT_NULL,
  886. };
  887. static rt_err_t _mstorage_descriptor_config(umass_desc_t desc, rt_uint8_t cintf_nr, rt_uint8_t device_is_hs)
  888. {
  889. #ifdef RT_USB_DEVICE_COMPOSITE
  890. desc->iad_desc.bFirstInterface = cintf_nr;
  891. #endif
  892. desc->ep_out_desc.wMaxPacketSize = device_is_hs ? 512 : 64;
  893. desc->ep_in_desc.wMaxPacketSize = device_is_hs ? 512 : 64;
  894. return RT_EOK;
  895. }
  896. /**
  897. * This function will create a mass storage function instance.
  898. *
  899. * @param device the usb device object.
  900. *
  901. * @return RT_EOK on successful.
  902. */
  903. ufunction_t rt_usbd_function_mstorage_create(udevice_t device)
  904. {
  905. uintf_t intf;
  906. struct mstorage *data;
  907. ufunction_t func;
  908. ualtsetting_t setting;
  909. umass_desc_t mass_desc;
  910. /* parameter check */
  911. RT_ASSERT(device != RT_NULL);
  912. /* set usb device string description */
  913. rt_usbd_device_set_string(device, _ustring);
  914. /* create a mass storage function */
  915. func = rt_usbd_function_new(device, &dev_desc, &ops);
  916. device->dev_qualifier = &dev_qualifier;
  917. /* allocate memory for mass storage function data */
  918. data = (struct mstorage*)rt_malloc(sizeof(struct mstorage));
  919. rt_memset(data, 0, sizeof(struct mstorage));
  920. func->user_data = (void*)data;
  921. /* create an interface object */
  922. intf = rt_usbd_interface_new(device, _interface_handler);
  923. /* create an alternate setting object */
  924. setting = rt_usbd_altsetting_new(sizeof(struct umass_descriptor));
  925. /* config desc in alternate setting */
  926. rt_usbd_altsetting_config_descriptor(setting, &_mass_desc, (rt_off_t)&((umass_desc_t)0)->intf_desc);
  927. /* configure the msc interface descriptor */
  928. _mstorage_descriptor_config(setting->desc, intf->intf_num, device->dcd->device_is_hs);
  929. /* create a bulk out and a bulk in endpoint */
  930. mass_desc = (umass_desc_t)setting->desc;
  931. data->ep_in = rt_usbd_endpoint_new(&mass_desc->ep_in_desc, _ep_in_handler);
  932. data->ep_out = rt_usbd_endpoint_new(&mass_desc->ep_out_desc, _ep_out_handler);
  933. /* add the bulk out and bulk in endpoint to the alternate setting */
  934. rt_usbd_altsetting_add_endpoint(setting, data->ep_out);
  935. rt_usbd_altsetting_add_endpoint(setting, data->ep_in);
  936. /* add the alternate setting to the interface, then set default setting */
  937. rt_usbd_interface_add_altsetting(intf, setting);
  938. rt_usbd_set_altsetting(intf, 0);
  939. /* add the interface to the mass storage function */
  940. rt_usbd_function_add_interface(func, intf);
  941. return func;
  942. }
  943. struct udclass msc_class =
  944. {
  945. .rt_usbd_function_create = rt_usbd_function_mstorage_create
  946. };
  947. int rt_usbd_msc_class_register(void)
  948. {
  949. rt_usbd_class_register(&msc_class);
  950. return 0;
  951. }
  952. INIT_PREV_EXPORT(rt_usbd_msc_class_register);
  953. #endif