sd.c 15 KB

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  1. /*
  2. * File : sd.c
  3. * This file is part of RT-Thread RTOS
  4. * COPYRIGHT (C) 2006, RT-Thread Development Team
  5. *
  6. * The license and distribution terms for this file may be
  7. * found in the file LICENSE in this distribution or at
  8. * http://www.rt-thread.org/license/LICENSE
  9. *
  10. * Change Logs:
  11. * Date Author Notes
  12. * 2011-07-25 weety first version
  13. */
  14. #include <drivers/mmcsd_core.h>
  15. #include <drivers/sd.h>
  16. static const rt_uint32_t tran_unit[] = {
  17. 10000, 100000, 1000000, 10000000,
  18. 0, 0, 0, 0
  19. };
  20. static const rt_uint8_t tran_value[] = {
  21. 0, 10, 12, 13, 15, 20, 25, 30,
  22. 35, 40, 45, 50, 55, 60, 70, 80,
  23. };
  24. static const rt_uint32_t tacc_uint[] = {
  25. 1, 10, 100, 1000, 10000, 100000, 1000000, 10000000,
  26. };
  27. static const rt_uint8_t tacc_value[] = {
  28. 0, 10, 12, 13, 15, 20, 25, 30,
  29. 35, 40, 45, 50, 55, 60, 70, 80,
  30. };
  31. rt_inline rt_uint32_t GET_BITS(rt_uint32_t *resp, rt_uint32_t start, rt_uint32_t size)
  32. {
  33. const rt_int32_t __size = size;
  34. const rt_uint32_t __mask = (__size < 32 ? 1 << __size : 0) - 1;
  35. const rt_int32_t __off = 3 - ((start) / 32);
  36. const rt_int32_t __shft = (start) & 31;
  37. rt_uint32_t __res;
  38. __res = resp[__off] >> __shft;
  39. if (__size + __shft > 32)
  40. __res |= resp[__off-1] << ((32 - __shft) % 32);
  41. return __res & __mask;
  42. }
  43. static rt_int32_t mmcsd_parse_csd(struct rt_mmcsd_card *card)
  44. {
  45. struct rt_mmcsd_csd *csd = &card->csd;
  46. rt_uint32_t *resp = card->resp_csd;
  47. csd->csd_structure = GET_BITS(resp, 126, 2);
  48. switch (csd->csd_structure) {
  49. case 0:
  50. csd->taac = GET_BITS(resp, 112, 8);
  51. csd->nsac = GET_BITS(resp, 104, 8);
  52. csd->tran_speed = GET_BITS(resp, 96, 8);
  53. csd->card_cmd_class = GET_BITS(resp, 84, 12);
  54. csd->rd_blk_len = GET_BITS(resp, 80, 4);
  55. csd->rd_blk_part = GET_BITS(resp, 79, 1);
  56. csd->wr_blk_misalign = GET_BITS(resp, 78, 1);
  57. csd->rd_blk_misalign = GET_BITS(resp, 77, 1);
  58. csd->dsr_imp = GET_BITS(resp, 76, 1);
  59. csd->c_size = GET_BITS(resp, 62, 12);
  60. csd->c_size_mult = GET_BITS(resp, 47, 3);
  61. csd->r2w_factor = GET_BITS(resp, 26, 3);
  62. csd->wr_blk_len = GET_BITS(resp, 22, 4);
  63. csd->wr_blk_partial = GET_BITS(resp, 21, 1);
  64. csd->csd_crc = GET_BITS(resp, 1, 7);
  65. card->card_blksize = 1 << csd->rd_blk_len;
  66. card->card_capacity = (csd->c_size + 1) << (csd->c_size_mult + 2);
  67. card->card_capacity *= card->card_blksize;
  68. card->card_capacity >>= 10; /* unit:KB */
  69. card->tacc_clks = csd->nsac * 100;
  70. card->tacc_ns = (tacc_uint[csd->taac&0x07] * tacc_value[(csd->taac&0x78)>>3] + 9) / 10;
  71. card->max_data_rate = tran_unit[csd->tran_speed&0x07] * tran_value[(csd->tran_speed&0x78)>>3];
  72. #if 0
  73. val = GET_BITS(resp, 115, 4);
  74. unit = GET_BITS(resp, 112, 3);
  75. csd->tacc_ns = (tacc_uint[unit] * tacc_value[val] + 9) / 10;
  76. csd->tacc_clks = GET_BITS(resp, 104, 8) * 100;
  77. val = GET_BITS(resp, 99, 4);
  78. unit = GET_BITS(resp, 96, 3);
  79. csd->max_data_rate = tran_unit[unit] * tran_value[val];
  80. csd->ccc = GET_BITS(resp, 84, 12);
  81. unit = GET_BITS(resp, 47, 3);
  82. val = GET_BITS(resp, 62, 12);
  83. csd->device_size = (1 + val) << (unit + 2);
  84. csd->read_bl_len = GET_BITS(resp, 80, 4);
  85. csd->write_bl_len = GET_BITS(resp, 22, 4);
  86. csd->r2w_factor = GET_BITS(resp, 26, 3);
  87. #endif
  88. break;
  89. case 1:
  90. card->flags |= CARD_FLAG_SDHC;
  91. /*This field is fixed to 0Eh, which indicates 1 ms.
  92. The host should not use TAAC, NSAC, and R2W_FACTOR
  93. to calculate timeout and should uses fixed timeout
  94. values for read and write operations*/
  95. csd->taac = GET_BITS(resp, 112, 8);
  96. csd->nsac = GET_BITS(resp, 104, 8);
  97. csd->tran_speed = GET_BITS(resp, 96, 8);
  98. csd->card_cmd_class = GET_BITS(resp, 84, 12);
  99. csd->rd_blk_len = GET_BITS(resp, 80, 4);
  100. csd->rd_blk_part = GET_BITS(resp, 79, 1);
  101. csd->wr_blk_misalign = GET_BITS(resp, 78, 1);
  102. csd->rd_blk_misalign = GET_BITS(resp, 77, 1);
  103. csd->dsr_imp = GET_BITS(resp, 76, 1);
  104. csd->c_size = GET_BITS(resp, 48, 22);
  105. csd->r2w_factor = GET_BITS(resp, 26, 3);
  106. csd->wr_blk_len = GET_BITS(resp, 22, 4);
  107. csd->wr_blk_partial = GET_BITS(resp, 21, 1);
  108. csd->csd_crc = GET_BITS(resp, 1, 7);
  109. card->card_blksize = 512;
  110. card->card_capacity = (csd->c_size + 1) * 512; /* unit:KB */
  111. card->tacc_clks = 0;
  112. card->tacc_ns = 0;
  113. card->max_data_rate = tran_unit[csd->tran_speed&0x07] * tran_value[(csd->tran_speed&0x78)>>3];
  114. #if 0
  115. csd->tacc_ns = 0;
  116. csd->tacc_clks = 0;
  117. val = GET_BITS(resp, 99, 4);
  118. unit = GET_BITS(resp, 96, 3);
  119. csd->max_data_rate = tran_unit[unit] * tran_value[val];
  120. csd->ccc = GET_BITS(resp, 84, 12);
  121. val = GET_BITS(resp, 48, 22);
  122. csd->device_size = (1 + val) << 10;
  123. csd->read_bl_len = 9;
  124. csd->write_bl_len = 9;
  125. /* host should not use this factor and should use 250ms for write timeout */
  126. csd->r2w_factor = 2;
  127. #endif
  128. break;
  129. default:
  130. rt_kprintf("unrecognised CSD structure version %d\n", csd->csd_structure);
  131. return -RT_ERROR;
  132. }
  133. rt_kprintf("SD card capacity %d KB\n", card->card_capacity);
  134. return 0;
  135. }
  136. static rt_int32_t mmcsd_parse_scr(struct rt_mmcsd_card *card)
  137. {
  138. struct rt_sd_scr *scr = &card->scr;
  139. rt_uint32_t resp[4];
  140. resp[3] = card->resp_scr[1];
  141. resp[2] = card->resp_scr[0];
  142. scr->sd_version = GET_BITS(resp, 56, 4);
  143. scr->sd_bus_widths = GET_BITS(resp, 48, 4);
  144. return 0;
  145. }
  146. static rt_int32_t mmcsd_switch(struct rt_mmcsd_card *card)
  147. {
  148. rt_int32_t err;
  149. struct rt_mmcsd_host *host = card->host;
  150. struct rt_mmcsd_req req;
  151. struct rt_mmcsd_cmd cmd;
  152. struct rt_mmcsd_data data;
  153. rt_uint8_t *buf;
  154. buf = (rt_uint8_t*)rt_malloc(64);
  155. if (!buf)
  156. {
  157. rt_kprintf("alloc memory failed\n");
  158. return -RT_ENOMEM;
  159. }
  160. if (card->card_type != CARD_TYPE_SD)
  161. goto err;
  162. if (card->scr.sd_version < SCR_SPEC_VER_1)
  163. goto err;
  164. rt_memset(&cmd, 0, sizeof(struct rt_mmcsd_cmd));
  165. cmd.cmd_code = SD_SWITCH;
  166. cmd.arg = 0x00FFFFF1;
  167. cmd.flags = RESP_R1 | CMD_ADTC;
  168. rt_memset(&data, 0, sizeof(struct rt_mmcsd_data));
  169. mmcsd_set_data_timeout(&data, card);
  170. data.blksize = 64;
  171. data.blks = 1;
  172. data.flags = DATA_DIR_READ;
  173. data.buf = (rt_uint32_t *)buf;
  174. rt_memset(&req, 0, sizeof(struct rt_mmcsd_req));
  175. req.cmd = &cmd;
  176. req.data = &data;
  177. mmcsd_send_request(host, &req);
  178. if (cmd.err || data.err)
  179. {
  180. goto err1;
  181. }
  182. if (buf[13] & 0x02)
  183. card->hs_max_data_rate = 50000000;
  184. rt_memset(&cmd, 0, sizeof(struct rt_mmcsd_cmd));
  185. cmd.cmd_code = SD_SWITCH;
  186. cmd.arg = 0x80FFFFF1;
  187. cmd.flags = RESP_R1 | CMD_ADTC;
  188. rt_memset(&data, 0, sizeof(struct rt_mmcsd_data));
  189. mmcsd_set_data_timeout(&data, card);
  190. data.blksize = 64;
  191. data.blks = 1;
  192. data.flags = DATA_DIR_READ;
  193. data.buf = (rt_uint32_t *)buf;
  194. rt_memset(&req, 0, sizeof(struct rt_mmcsd_req));
  195. req.cmd = &cmd;
  196. req.data = &data;
  197. mmcsd_send_request(host, &req);
  198. if (cmd.err || data.err)
  199. {
  200. goto err1;
  201. }
  202. if ((buf[16] & 0xF) != 1)
  203. {
  204. rt_kprintf("switching card to high speed failed\n");
  205. goto err;
  206. }
  207. card->flags |= CARD_FLAG_HIGHSPEED;
  208. err:
  209. rt_free(buf);
  210. return 0;
  211. err1:
  212. if (cmd.err) err = cmd.err;
  213. if (data.err) err = data.err;
  214. return err;
  215. }
  216. static rt_err_t mmcsd_app_cmd(struct rt_mmcsd_host *host, struct rt_mmcsd_card *card)
  217. {
  218. rt_err_t err;
  219. struct rt_mmcsd_cmd cmd = {0};
  220. cmd.cmd_code = APP_CMD;
  221. if (card)
  222. {
  223. cmd.arg = card->rca << 16;
  224. cmd.flags = RESP_R1 | CMD_AC;
  225. }
  226. else
  227. {
  228. cmd.arg = 0;
  229. cmd.flags = RESP_R1 | CMD_BCR;
  230. }
  231. err = mmcsd_send_cmd(host, &cmd, 0);
  232. if (err)
  233. return err;
  234. /* Check that card supported application commands */
  235. if (!controller_is_spi(host) && !(cmd.resp[0] & R1_APP_CMD))
  236. return -RT_ERROR;
  237. return RT_EOK;
  238. }
  239. rt_err_t mmcsd_send_app_cmd(struct rt_mmcsd_host *host, struct rt_mmcsd_card *card,
  240. struct rt_mmcsd_cmd *cmd, int retry)
  241. {
  242. struct rt_mmcsd_req req;
  243. rt_uint32_t i;
  244. rt_err_t err;
  245. err = -RT_ERROR;
  246. /*
  247. * We have to resend MMC_APP_CMD for each attempt so
  248. * we cannot use the retries field in mmc_command.
  249. */
  250. for (i = 0;i <= retry;i++)
  251. {
  252. rt_memset(&req, 0, sizeof(struct rt_mmcsd_req));
  253. err = mmcsd_app_cmd(host, card);
  254. if (err)
  255. {
  256. /* no point in retrying; no APP commands allowed */
  257. if (controller_is_spi(host))
  258. {
  259. if (cmd->resp[0] & R1_SPI_ILLEGAL_COMMAND)
  260. break;
  261. }
  262. continue;
  263. }
  264. rt_memset(&req, 0, sizeof(struct rt_mmcsd_req));
  265. rt_memset(cmd->resp, 0, sizeof(cmd->resp));
  266. req.cmd = cmd;
  267. //cmd->data = NULL;
  268. mmcsd_send_request(host, &req);
  269. err = cmd->err;
  270. if (!cmd->err)
  271. break;
  272. /* no point in retrying illegal APP commands */
  273. if (controller_is_spi(host))
  274. {
  275. if (cmd->resp[0] & R1_SPI_ILLEGAL_COMMAND)
  276. break;
  277. }
  278. }
  279. return err;
  280. }
  281. rt_err_t mmcsd_app_set_bus_width(struct rt_mmcsd_card *card, rt_int32_t width)
  282. {
  283. rt_err_t err;
  284. struct rt_mmcsd_cmd cmd;
  285. rt_memset(&cmd, 0, sizeof(struct rt_mmcsd_cmd));
  286. cmd.cmd_code = SD_APP_SET_BUS_WIDTH;
  287. cmd.flags = RESP_R1 | CMD_AC;
  288. switch (width)
  289. {
  290. case MMCSD_BUS_WIDTH_1:
  291. cmd.arg = MMCSD_BUS_WIDTH_1;
  292. break;
  293. case MMCSD_BUS_WIDTH_4:
  294. cmd.arg = MMCSD_BUS_WIDTH_4;
  295. break;
  296. default:
  297. return -RT_ERROR;
  298. }
  299. err = mmcsd_send_app_cmd(card->host, card, &cmd, 3);
  300. if (err)
  301. return err;
  302. return RT_EOK;
  303. }
  304. rt_err_t mmcsd_send_app_op_cond(struct rt_mmcsd_host *host, rt_uint32_t ocr, rt_uint32_t *rocr)
  305. {
  306. struct rt_mmcsd_cmd cmd;
  307. rt_uint32_t i;
  308. rt_err_t err = RT_EOK;
  309. rt_memset(&cmd, 0, sizeof(struct rt_mmcsd_cmd));
  310. cmd.cmd_code = SD_APP_OP_COND;
  311. if (controller_is_spi(host))
  312. cmd.arg = ocr & (1 << 30); /* SPI only defines one bit */
  313. else
  314. cmd.arg = ocr;
  315. cmd.flags = RESP_SPI_R1 | RESP_R3 | CMD_BCR;
  316. for (i = 100; i; i--)
  317. {
  318. err = mmcsd_send_app_cmd(host, RT_NULL, &cmd, 3);
  319. if (err)
  320. break;
  321. /* if we're just probing, do a single pass */
  322. if (ocr == 0)
  323. break;
  324. /* otherwise wait until reset completes */
  325. if (controller_is_spi(host))
  326. {
  327. if (!(cmd.resp[0] & R1_SPI_IDLE))
  328. break;
  329. }
  330. else
  331. {
  332. if (cmd.resp[0] & CARD_BUSY)
  333. break;
  334. }
  335. err = -RT_ETIMEOUT;
  336. mmcsd_delay_ms(10); //delay 10ms
  337. }
  338. if (rocr && !controller_is_spi(host))
  339. *rocr = cmd.resp[0];
  340. return err;
  341. }
  342. /*
  343. * To support SD 2.0 cards, we must always invoke SD_SEND_IF_COND
  344. * before SD_APP_OP_COND. This command will harmlessly fail for
  345. * SD 1.0 cards.
  346. */
  347. rt_err_t mmcsd_send_if_cond(struct rt_mmcsd_host *host, rt_uint32_t ocr)
  348. {
  349. struct rt_mmcsd_cmd cmd;
  350. rt_err_t err;
  351. rt_uint8_t pattern;
  352. cmd.cmd_code = SD_SEND_IF_COND;
  353. cmd.arg = ((ocr & 0xFF8000) != 0) << 8 | 0xAA;
  354. cmd.flags = RESP_SPI_R7 | RESP_R7 | CMD_BCR;
  355. err = mmcsd_send_cmd(host, &cmd, 0);
  356. if (err)
  357. return err;
  358. if (controller_is_spi(host))
  359. pattern = cmd.resp[1] & 0xFF;
  360. else
  361. pattern = cmd.resp[0] & 0xFF;
  362. if (pattern != 0xAA)
  363. return -RT_ERROR;
  364. return RT_EOK;
  365. }
  366. rt_err_t mmcsd_get_card_addr(struct rt_mmcsd_host *host, rt_uint32_t *rca)
  367. {
  368. rt_err_t err;
  369. struct rt_mmcsd_cmd cmd;
  370. rt_memset(&cmd, 0, sizeof(struct rt_mmcsd_cmd));
  371. cmd.cmd_code = SD_SEND_RELATIVE_ADDR;
  372. cmd.arg = 0;
  373. cmd.flags = RESP_R6 | CMD_BCR;
  374. err = mmcsd_send_cmd(host, &cmd, 3);
  375. if (err)
  376. return err;
  377. *rca = cmd.resp[0] >> 16;
  378. return RT_EOK;
  379. }
  380. #define be32_to_cpu(x) ((rt_uint32_t)( \
  381. (((rt_uint32_t)(x) & (rt_uint32_t)0x000000ffUL) << 24) | \
  382. (((rt_uint32_t)(x) & (rt_uint32_t)0x0000ff00UL) << 8) | \
  383. (((rt_uint32_t)(x) & (rt_uint32_t)0x00ff0000UL) >> 8) | \
  384. (((rt_uint32_t)(x) & (rt_uint32_t)0xff000000UL) >> 24)))
  385. rt_int32_t mmcsd_get_scr(struct rt_mmcsd_card *card, rt_uint32_t *scr)
  386. {
  387. rt_int32_t err;
  388. struct rt_mmcsd_req req;
  389. struct rt_mmcsd_cmd cmd;
  390. struct rt_mmcsd_data data;
  391. err = mmcsd_app_cmd(card->host, card);
  392. if (err)
  393. return err;
  394. rt_memset(&req, 0, sizeof(struct rt_mmcsd_req));
  395. rt_memset(&cmd, 0, sizeof(struct rt_mmcsd_cmd));
  396. rt_memset(&data, 0, sizeof(struct rt_mmcsd_data));
  397. req.cmd = &cmd;
  398. req.data = &data;
  399. cmd.cmd_code = SD_APP_SEND_SCR;
  400. cmd.arg = 0;
  401. cmd.flags = RESP_SPI_R1 | RESP_R1 | CMD_ADTC;
  402. data.blksize = 8;
  403. data.blks = 1;
  404. data.flags = DATA_DIR_READ;
  405. data.buf = scr;
  406. mmcsd_set_data_timeout(&data, card);
  407. mmcsd_send_request(card->host, &req);
  408. if (cmd.err)
  409. return cmd.err;
  410. if (data.err)
  411. return data.err;
  412. scr[0] = be32_to_cpu(scr[0]);
  413. scr[1] = be32_to_cpu(scr[1]);
  414. return 0;
  415. }
  416. static rt_int32_t mmcsd_sd_init_card(struct rt_mmcsd_host *host, rt_uint32_t ocr)
  417. {
  418. struct rt_mmcsd_card *card;
  419. rt_int32_t err;
  420. rt_uint32_t resp[4];
  421. rt_uint32_t max_data_rate;
  422. mmcsd_go_idle(host);
  423. /*
  424. * If SD_SEND_IF_COND indicates an SD 2.0
  425. * compliant card and we should set bit 30
  426. * of the ocr to indicate that we can handle
  427. * block-addressed SDHC cards.
  428. */
  429. err = mmcsd_send_if_cond(host, ocr);
  430. if (!err)
  431. ocr |= 1 << 30;
  432. err = mmcsd_send_app_op_cond(host, ocr, RT_NULL);
  433. if (err)
  434. goto err;
  435. if (controller_is_spi(host))
  436. err = mmcsd_get_cid(host, resp);
  437. else
  438. err = mmcsd_all_get_cid(host, resp);
  439. if (err)
  440. goto err;
  441. card = rt_malloc(sizeof(struct rt_mmcsd_card));
  442. if (!card)
  443. {
  444. rt_kprintf("malloc card failed\n");
  445. err = -RT_ENOMEM;
  446. goto err;
  447. }
  448. rt_memset(card, 0, sizeof(struct rt_mmcsd_card));
  449. card->card_type = CARD_TYPE_SD;
  450. card->host = host;
  451. rt_memcpy(card->resp_cid, resp, sizeof(card->resp_cid));
  452. /*
  453. * For native busses: get card RCA and quit open drain mode.
  454. */
  455. if (!controller_is_spi(host))
  456. {
  457. err = mmcsd_get_card_addr(host, &card->rca);
  458. if (err)
  459. goto err1;
  460. mmcsd_set_bus_mode(host, MMCSD_BUSMODE_PUSHPULL);
  461. }
  462. err = mmcsd_get_csd(card, card->resp_csd);
  463. if (err)
  464. goto err1;
  465. err = mmcsd_parse_csd(card);
  466. if (err)
  467. goto err1;
  468. if (!controller_is_spi(host))
  469. {
  470. err = mmcsd_select_card(card);
  471. if (err)
  472. goto err1;
  473. }
  474. err = mmcsd_get_scr(card, card->resp_scr);
  475. if (err)
  476. goto err1;
  477. mmcsd_parse_scr(card);
  478. if (controller_is_spi(host))
  479. {
  480. err = mmcsd_spi_use_crc(host, 1);
  481. if (err)
  482. goto err1;
  483. }
  484. /*
  485. * change SD card to high-speed, only SD2.0 spec
  486. */
  487. err = mmcsd_switch(card);
  488. if (err)
  489. goto err1;
  490. /* set bus speed */
  491. max_data_rate = (unsigned int)-1;
  492. if (card->flags & CARD_FLAG_HIGHSPEED)
  493. {
  494. if (max_data_rate > card->hs_max_data_rate)
  495. max_data_rate = card->hs_max_data_rate;
  496. }
  497. else if (max_data_rate > card->max_data_rate)
  498. {
  499. max_data_rate = card->max_data_rate;
  500. }
  501. mmcsd_set_clock(host, max_data_rate);
  502. /*switch bus width*/
  503. if ((host->flags & MMCSD_BUSWIDTH_4) &&
  504. (card->scr.sd_bus_widths & SD_SCR_BUS_WIDTH_4))
  505. {
  506. err = mmcsd_app_set_bus_width(card, MMCSD_BUS_WIDTH_4);
  507. if (err)
  508. goto err1;
  509. mmcsd_set_bus_width(host, MMCSD_BUS_WIDTH_4);
  510. }
  511. host->card = card;
  512. return 0;
  513. err1:
  514. rt_free(card);
  515. err:
  516. return err;
  517. }
  518. /*
  519. * Starting point for SD card init.
  520. */
  521. rt_int32_t init_sd(struct rt_mmcsd_host *host, rt_uint32_t ocr)
  522. {
  523. rt_int32_t err;
  524. rt_uint32_t current_ocr;
  525. /*
  526. * We need to get OCR a different way for SPI.
  527. */
  528. if (controller_is_spi(host)) {
  529. mmcsd_go_idle(host);
  530. err = mmcsd_spi_read_ocr(host, 0, &ocr);
  531. if (err)
  532. goto err;
  533. }
  534. if (ocr & VDD_165_195) {
  535. rt_kprintf(" SD card claims to support the "
  536. "incompletely defined 'low voltage range'. This "
  537. "will be ignored.\n");
  538. ocr &= ~VDD_165_195;
  539. }
  540. current_ocr = mmcsd_select_voltage(host, ocr);
  541. /*
  542. * Can we support the voltage(s) of the card(s)?
  543. */
  544. if (!current_ocr) {
  545. err = -RT_ERROR;
  546. goto err;
  547. }
  548. /*
  549. * Detect and init the card.
  550. */
  551. err = mmcsd_sd_init_card(host, current_ocr);
  552. if (err)
  553. goto err;
  554. mmcsd_host_unlock(host);
  555. err = rt_mmcsd_blk_probe(host->card);
  556. if (err)
  557. goto remove_card;
  558. mmcsd_host_lock(host);
  559. return 0;
  560. remove_card:
  561. mmcsd_host_lock(host);
  562. rt_mmcsd_blk_remove(host->card);
  563. rt_free(host->card);
  564. host->card = RT_NULL;
  565. err:
  566. rt_kprintf("init SD card failed\n");
  567. return err;
  568. }