mmc.c 29 KB

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  1. /*
  2. * Copyright 2008, Freescale Semiconductor, Inc
  3. * Andy Fleming
  4. *
  5. * Based vaguely on the Linux code
  6. *
  7. * See file CREDITS for list of people who contributed to this
  8. * project.
  9. *
  10. * This program is free software; you can redistribute it and/or
  11. * modify it under the terms of the GNU General Public License as
  12. * published by the Free Software Foundation; either version 2 of
  13. * the License, or (at your option) any later version.
  14. *
  15. * This program is distributed in the hope that it will be useful,
  16. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  17. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  18. * GNU General Public License for more details.
  19. *
  20. * You should have received a copy of the GNU General Public License
  21. * along with this program; if not, write to the Free Software
  22. * Foundation, Inc., 59 Temple Place, Suite 330, Boston,
  23. * MA 02111-1307 USA
  24. */
  25. #include <config.h>
  26. #include <common.h>
  27. #include <command.h>
  28. #include <mmc.h>
  29. #include <part.h>
  30. #include <malloc.h>
  31. #include <linux/list.h>
  32. #include <div64.h>
  33. /* Set block count limit because of 16 bit register limit on some hardware*/
  34. #ifndef CONFIG_SYS_MMC_MAX_BLK_COUNT
  35. #define CONFIG_SYS_MMC_MAX_BLK_COUNT 65535
  36. #endif
  37. static struct list_head mmc_devices;
  38. static int cur_dev_num = -1;
  39. int __board_mmc_getcd(struct mmc *mmc) {
  40. return -1;
  41. }
  42. int board_mmc_getcd(struct mmc *mmc)__attribute__((weak,
  43. alias("__board_mmc_getcd")));
  44. #ifdef CONFIG_MMC_BOUNCE_BUFFER
  45. static int mmc_bounce_need_bounce(struct mmc_data *orig)
  46. {
  47. ulong addr, len;
  48. if (orig->flags & MMC_DATA_READ)
  49. addr = (ulong)orig->dest;
  50. else
  51. addr = (ulong)orig->src;
  52. if (addr % ARCH_DMA_MINALIGN) {
  53. debug("MMC: Unaligned data destination address %08lx!\n", addr);
  54. return 1;
  55. }
  56. len = (ulong)(orig->blocksize * orig->blocks);
  57. if (len % ARCH_DMA_MINALIGN) {
  58. debug("MMC: Unaligned data destination length %08lx!\n", len);
  59. return 1;
  60. }
  61. return 0;
  62. }
  63. static int mmc_bounce_buffer_start(struct mmc_data *backup,
  64. struct mmc_data *orig)
  65. {
  66. ulong origlen, len;
  67. void *buffer;
  68. if (!orig)
  69. return 0;
  70. if (!mmc_bounce_need_bounce(orig))
  71. return 0;
  72. memcpy(backup, orig, sizeof(struct mmc_data));
  73. origlen = orig->blocksize * orig->blocks;
  74. len = roundup(origlen, ARCH_DMA_MINALIGN);
  75. buffer = memalign(ARCH_DMA_MINALIGN, len);
  76. if (!buffer) {
  77. puts("MMC: Error allocating MMC bounce buffer!\n");
  78. return 1;
  79. }
  80. if (orig->flags & MMC_DATA_READ) {
  81. orig->dest = buffer;
  82. } else {
  83. memcpy(buffer, orig->src, origlen);
  84. orig->src = buffer;
  85. }
  86. return 0;
  87. }
  88. static void mmc_bounce_buffer_stop(struct mmc_data *backup,
  89. struct mmc_data *orig)
  90. {
  91. ulong len;
  92. if (!orig)
  93. return;
  94. if (!mmc_bounce_need_bounce(backup))
  95. return;
  96. if (backup->flags & MMC_DATA_READ) {
  97. len = backup->blocksize * backup->blocks;
  98. memcpy(backup->dest, orig->dest, len);
  99. free(orig->dest);
  100. orig->dest = backup->dest;
  101. } else {
  102. free((void *)orig->src);
  103. orig->src = backup->src;
  104. }
  105. return;
  106. }
  107. #else
  108. static inline int mmc_bounce_buffer_start(struct mmc_data *backup,
  109. struct mmc_data *orig) { return 0; }
  110. static inline void mmc_bounce_buffer_stop(struct mmc_data *backup,
  111. struct mmc_data *orig) { }
  112. #endif
  113. int mmc_send_cmd(struct mmc *mmc, struct mmc_cmd *cmd, struct mmc_data *data)
  114. {
  115. struct mmc_data backup;
  116. int ret;
  117. memset(&backup, 0, sizeof(backup));
  118. ret = mmc_bounce_buffer_start(&backup, data);
  119. if (ret)
  120. return ret;
  121. #ifdef CONFIG_MMC_TRACE
  122. int i;
  123. u8 *ptr;
  124. printf("CMD_SEND:%d\n", cmd->cmdidx);
  125. printf("\t\tARG\t\t\t 0x%08X\n", cmd->cmdarg);
  126. ret = mmc->send_cmd(mmc, cmd, data);
  127. switch (cmd->resp_type) {
  128. case MMC_RSP_NONE:
  129. printf("\t\tMMC_RSP_NONE\n");
  130. break;
  131. case MMC_RSP_R1:
  132. printf("\t\tMMC_RSP_R1,5,6,7 \t 0x%08X \n",
  133. cmd->response[0]);
  134. break;
  135. case MMC_RSP_R1b:
  136. printf("\t\tMMC_RSP_R1b\t\t 0x%08X \n",
  137. cmd->response[0]);
  138. break;
  139. case MMC_RSP_R2:
  140. printf("\t\tMMC_RSP_R2\t\t 0x%08X \n",
  141. cmd->response[0]);
  142. printf("\t\t \t\t 0x%08X \n",
  143. cmd->response[1]);
  144. printf("\t\t \t\t 0x%08X \n",
  145. cmd->response[2]);
  146. printf("\t\t \t\t 0x%08X \n",
  147. cmd->response[3]);
  148. printf("\n");
  149. printf("\t\t\t\t\tDUMPING DATA\n");
  150. for (i = 0; i < 4; i++) {
  151. int j;
  152. printf("\t\t\t\t\t%03d - ", i*4);
  153. ptr = (u8 *)&cmd->response[i];
  154. ptr += 3;
  155. for (j = 0; j < 4; j++)
  156. printf("%02X ", *ptr--);
  157. printf("\n");
  158. }
  159. break;
  160. case MMC_RSP_R3:
  161. printf("\t\tMMC_RSP_R3,4\t\t 0x%08X \n",
  162. cmd->response[0]);
  163. break;
  164. default:
  165. printf("\t\tERROR MMC rsp not supported\n");
  166. break;
  167. }
  168. #else
  169. ret = mmc->send_cmd(mmc, cmd, data);
  170. #endif
  171. mmc_bounce_buffer_stop(&backup, data);
  172. return ret;
  173. }
  174. int mmc_send_status(struct mmc *mmc, int timeout)
  175. {
  176. struct mmc_cmd cmd;
  177. int err, retries = 5;
  178. #ifdef CONFIG_MMC_TRACE
  179. int status;
  180. #endif
  181. cmd.cmdidx = MMC_CMD_SEND_STATUS;
  182. cmd.resp_type = MMC_RSP_R1;
  183. if (!mmc_host_is_spi(mmc))
  184. cmd.cmdarg = mmc->rca << 16;
  185. do {
  186. err = mmc_send_cmd(mmc, &cmd, NULL);
  187. if (!err) {
  188. if ((cmd.response[0] & MMC_STATUS_RDY_FOR_DATA) &&
  189. (cmd.response[0] & MMC_STATUS_CURR_STATE) !=
  190. MMC_STATE_PRG)
  191. break;
  192. else if (cmd.response[0] & MMC_STATUS_MASK) {
  193. printf("Status Error: 0x%08X\n",
  194. cmd.response[0]);
  195. return COMM_ERR;
  196. }
  197. } else if (--retries < 0)
  198. return err;
  199. udelay(1000);
  200. } while (timeout--);
  201. #ifdef CONFIG_MMC_TRACE
  202. status = (cmd.response[0] & MMC_STATUS_CURR_STATE) >> 9;
  203. printf("CURR STATE:%d\n", status);
  204. #endif
  205. if (timeout <= 0) {
  206. printf("Timeout waiting card ready\n");
  207. return TIMEOUT;
  208. }
  209. return 0;
  210. }
  211. int mmc_set_blocklen(struct mmc *mmc, int len)
  212. {
  213. struct mmc_cmd cmd;
  214. cmd.cmdidx = MMC_CMD_SET_BLOCKLEN;
  215. cmd.resp_type = MMC_RSP_R1;
  216. cmd.cmdarg = len;
  217. return mmc_send_cmd(mmc, &cmd, NULL);
  218. }
  219. struct mmc *find_mmc_device(int dev_num)
  220. {
  221. struct mmc *m;
  222. struct list_head *entry;
  223. list_for_each(entry, &mmc_devices) {
  224. m = list_entry(entry, struct mmc, link);
  225. if (m->block_dev.dev == dev_num)
  226. return m;
  227. }
  228. printf("MMC Device %d not found\n", dev_num);
  229. return NULL;
  230. }
  231. static ulong mmc_erase_t(struct mmc *mmc, ulong start, lbaint_t blkcnt)
  232. {
  233. struct mmc_cmd cmd;
  234. ulong end;
  235. int err, start_cmd, end_cmd;
  236. if (mmc->high_capacity)
  237. end = start + blkcnt - 1;
  238. else {
  239. end = (start + blkcnt - 1) * mmc->write_bl_len;
  240. start *= mmc->write_bl_len;
  241. }
  242. if (IS_SD(mmc)) {
  243. start_cmd = SD_CMD_ERASE_WR_BLK_START;
  244. end_cmd = SD_CMD_ERASE_WR_BLK_END;
  245. } else {
  246. start_cmd = MMC_CMD_ERASE_GROUP_START;
  247. end_cmd = MMC_CMD_ERASE_GROUP_END;
  248. }
  249. cmd.cmdidx = start_cmd;
  250. cmd.cmdarg = start;
  251. cmd.resp_type = MMC_RSP_R1;
  252. err = mmc_send_cmd(mmc, &cmd, NULL);
  253. if (err)
  254. goto err_out;
  255. cmd.cmdidx = end_cmd;
  256. cmd.cmdarg = end;
  257. err = mmc_send_cmd(mmc, &cmd, NULL);
  258. if (err)
  259. goto err_out;
  260. cmd.cmdidx = MMC_CMD_ERASE;
  261. cmd.cmdarg = SECURE_ERASE;
  262. cmd.resp_type = MMC_RSP_R1b;
  263. err = mmc_send_cmd(mmc, &cmd, NULL);
  264. if (err)
  265. goto err_out;
  266. return 0;
  267. err_out:
  268. puts("mmc erase failed\n");
  269. return err;
  270. }
  271. static unsigned long
  272. mmc_berase(int dev_num, unsigned long start, lbaint_t blkcnt)
  273. {
  274. int err = 0;
  275. struct mmc *mmc = find_mmc_device(dev_num);
  276. lbaint_t blk = 0, blk_r = 0;
  277. int timeout = 1000;
  278. if (!mmc)
  279. return -1;
  280. if ((start % mmc->erase_grp_size) || (blkcnt % mmc->erase_grp_size))
  281. printf("\n\nCaution! Your devices Erase group is 0x%x\n"
  282. "The erase range would be change to 0x%lx~0x%lx\n\n",
  283. mmc->erase_grp_size, start & ~(mmc->erase_grp_size - 1),
  284. ((start + blkcnt + mmc->erase_grp_size)
  285. & ~(mmc->erase_grp_size - 1)) - 1);
  286. while (blk < blkcnt) {
  287. blk_r = ((blkcnt - blk) > mmc->erase_grp_size) ?
  288. mmc->erase_grp_size : (blkcnt - blk);
  289. err = mmc_erase_t(mmc, start + blk, blk_r);
  290. if (err)
  291. break;
  292. blk += blk_r;
  293. /* Waiting for the ready status */
  294. if (mmc_send_status(mmc, timeout))
  295. return 0;
  296. }
  297. return blk;
  298. }
  299. static ulong
  300. mmc_write_blocks(struct mmc *mmc, ulong start, lbaint_t blkcnt, const void*src)
  301. {
  302. struct mmc_cmd cmd;
  303. struct mmc_data data;
  304. int timeout = 1000;
  305. if ((start + blkcnt) > mmc->block_dev.lba) {
  306. printf("MMC: block number 0x%lx exceeds max(0x%lx)\n",
  307. start + blkcnt, mmc->block_dev.lba);
  308. return 0;
  309. }
  310. if (blkcnt > 1)
  311. cmd.cmdidx = MMC_CMD_WRITE_MULTIPLE_BLOCK;
  312. else
  313. cmd.cmdidx = MMC_CMD_WRITE_SINGLE_BLOCK;
  314. if (mmc->high_capacity)
  315. cmd.cmdarg = start;
  316. else
  317. cmd.cmdarg = start * mmc->write_bl_len;
  318. cmd.resp_type = MMC_RSP_R1;
  319. data.src = src;
  320. data.blocks = blkcnt;
  321. data.blocksize = mmc->write_bl_len;
  322. data.flags = MMC_DATA_WRITE;
  323. if (mmc_send_cmd(mmc, &cmd, &data)) {
  324. printf("mmc write failed\n");
  325. return 0;
  326. }
  327. /* SPI multiblock writes terminate using a special
  328. * token, not a STOP_TRANSMISSION request.
  329. */
  330. if (!mmc_host_is_spi(mmc) && blkcnt > 1) {
  331. cmd.cmdidx = MMC_CMD_STOP_TRANSMISSION;
  332. cmd.cmdarg = 0;
  333. cmd.resp_type = MMC_RSP_R1b;
  334. if (mmc_send_cmd(mmc, &cmd, NULL)) {
  335. printf("mmc fail to send stop cmd\n");
  336. return 0;
  337. }
  338. }
  339. /* Waiting for the ready status */
  340. if (mmc_send_status(mmc, timeout))
  341. return 0;
  342. return blkcnt;
  343. }
  344. static ulong
  345. mmc_bwrite(int dev_num, ulong start, lbaint_t blkcnt, const void*src)
  346. {
  347. lbaint_t cur, blocks_todo = blkcnt;
  348. struct mmc *mmc = find_mmc_device(dev_num);
  349. if (!mmc)
  350. return 0;
  351. if (mmc_set_blocklen(mmc, mmc->write_bl_len))
  352. return 0;
  353. do {
  354. cur = (blocks_todo > mmc->b_max) ? mmc->b_max : blocks_todo;
  355. if(mmc_write_blocks(mmc, start, cur, src) != cur)
  356. return 0;
  357. blocks_todo -= cur;
  358. start += cur;
  359. src += cur * mmc->write_bl_len;
  360. } while (blocks_todo > 0);
  361. return blkcnt;
  362. }
  363. int mmc_read_blocks(struct mmc *mmc, void *dst, ulong start, lbaint_t blkcnt)
  364. {
  365. struct mmc_cmd cmd;
  366. struct mmc_data data;
  367. if (blkcnt > 1)
  368. cmd.cmdidx = MMC_CMD_READ_MULTIPLE_BLOCK;
  369. else
  370. cmd.cmdidx = MMC_CMD_READ_SINGLE_BLOCK;
  371. if (mmc->high_capacity)
  372. cmd.cmdarg = start;
  373. else
  374. cmd.cmdarg = start * mmc->read_bl_len;
  375. cmd.resp_type = MMC_RSP_R1;
  376. data.dest = dst;
  377. data.blocks = blkcnt;
  378. data.blocksize = mmc->read_bl_len;
  379. data.flags = MMC_DATA_READ;
  380. if (mmc_send_cmd(mmc, &cmd, &data))
  381. return 0;
  382. if (blkcnt > 1) {
  383. cmd.cmdidx = MMC_CMD_STOP_TRANSMISSION;
  384. cmd.cmdarg = 0;
  385. cmd.resp_type = MMC_RSP_R1b;
  386. if (mmc_send_cmd(mmc, &cmd, NULL)) {
  387. printf("mmc fail to send stop cmd\n");
  388. return 0;
  389. }
  390. }
  391. return blkcnt;
  392. }
  393. static ulong mmc_bread(int dev_num, ulong start, lbaint_t blkcnt, void *dst)
  394. {
  395. lbaint_t cur, blocks_todo = blkcnt;
  396. if (blkcnt == 0)
  397. return 0;
  398. struct mmc *mmc = find_mmc_device(dev_num);
  399. if (!mmc)
  400. return 0;
  401. if ((start + blkcnt) > mmc->block_dev.lba) {
  402. printf("MMC: block number 0x%lx exceeds max(0x%lx)\n",
  403. start + blkcnt, mmc->block_dev.lba);
  404. return 0;
  405. }
  406. if (mmc_set_blocklen(mmc, mmc->read_bl_len))
  407. return 0;
  408. do {
  409. cur = (blocks_todo > mmc->b_max) ? mmc->b_max : blocks_todo;
  410. if(mmc_read_blocks(mmc, dst, start, cur) != cur)
  411. return 0;
  412. blocks_todo -= cur;
  413. start += cur;
  414. dst += cur * mmc->read_bl_len;
  415. } while (blocks_todo > 0);
  416. return blkcnt;
  417. }
  418. int mmc_go_idle(struct mmc* mmc)
  419. {
  420. struct mmc_cmd cmd;
  421. int err;
  422. udelay(1000);
  423. cmd.cmdidx = MMC_CMD_GO_IDLE_STATE;
  424. cmd.cmdarg = 0;
  425. cmd.resp_type = MMC_RSP_NONE;
  426. err = mmc_send_cmd(mmc, &cmd, NULL);
  427. if (err)
  428. return err;
  429. udelay(2000);
  430. return 0;
  431. }
  432. int
  433. sd_send_op_cond(struct mmc *mmc)
  434. {
  435. int timeout = 1000;
  436. int err;
  437. struct mmc_cmd cmd;
  438. do {
  439. cmd.cmdidx = MMC_CMD_APP_CMD;
  440. cmd.resp_type = MMC_RSP_R1;
  441. cmd.cmdarg = 0;
  442. err = mmc_send_cmd(mmc, &cmd, NULL);
  443. if (err)
  444. return err;
  445. cmd.cmdidx = SD_CMD_APP_SEND_OP_COND;
  446. cmd.resp_type = MMC_RSP_R3;
  447. /*
  448. * Most cards do not answer if some reserved bits
  449. * in the ocr are set. However, Some controller
  450. * can set bit 7 (reserved for low voltages), but
  451. * how to manage low voltages SD card is not yet
  452. * specified.
  453. */
  454. cmd.cmdarg = mmc_host_is_spi(mmc) ? 0 :
  455. (mmc->voltages & 0xff8000);
  456. if (mmc->version == SD_VERSION_2)
  457. cmd.cmdarg |= OCR_HCS;
  458. err = mmc_send_cmd(mmc, &cmd, NULL);
  459. if (err)
  460. return err;
  461. udelay(1000);
  462. } while ((!(cmd.response[0] & OCR_BUSY)) && timeout--);
  463. if (timeout <= 0)
  464. return UNUSABLE_ERR;
  465. if (mmc->version != SD_VERSION_2)
  466. mmc->version = SD_VERSION_1_0;
  467. if (mmc_host_is_spi(mmc)) { /* read OCR for spi */
  468. cmd.cmdidx = MMC_CMD_SPI_READ_OCR;
  469. cmd.resp_type = MMC_RSP_R3;
  470. cmd.cmdarg = 0;
  471. err = mmc_send_cmd(mmc, &cmd, NULL);
  472. if (err)
  473. return err;
  474. }
  475. mmc->ocr = cmd.response[0];
  476. mmc->high_capacity = ((mmc->ocr & OCR_HCS) == OCR_HCS);
  477. mmc->rca = 0;
  478. return 0;
  479. }
  480. int mmc_send_op_cond(struct mmc *mmc)
  481. {
  482. int timeout = 10000;
  483. struct mmc_cmd cmd;
  484. int err;
  485. /* Some cards seem to need this */
  486. mmc_go_idle(mmc);
  487. /* Asking to the card its capabilities */
  488. cmd.cmdidx = MMC_CMD_SEND_OP_COND;
  489. cmd.resp_type = MMC_RSP_R3;
  490. cmd.cmdarg = 0;
  491. err = mmc_send_cmd(mmc, &cmd, NULL);
  492. if (err)
  493. return err;
  494. udelay(1000);
  495. do {
  496. cmd.cmdidx = MMC_CMD_SEND_OP_COND;
  497. cmd.resp_type = MMC_RSP_R3;
  498. cmd.cmdarg = (mmc_host_is_spi(mmc) ? 0 :
  499. (mmc->voltages &
  500. (cmd.response[0] & OCR_VOLTAGE_MASK)) |
  501. (cmd.response[0] & OCR_ACCESS_MODE));
  502. if (mmc->host_caps & MMC_MODE_HC)
  503. cmd.cmdarg |= OCR_HCS;
  504. err = mmc_send_cmd(mmc, &cmd, NULL);
  505. if (err)
  506. return err;
  507. udelay(1000);
  508. } while (!(cmd.response[0] & OCR_BUSY) && timeout--);
  509. if (timeout <= 0)
  510. return UNUSABLE_ERR;
  511. if (mmc_host_is_spi(mmc)) { /* read OCR for spi */
  512. cmd.cmdidx = MMC_CMD_SPI_READ_OCR;
  513. cmd.resp_type = MMC_RSP_R3;
  514. cmd.cmdarg = 0;
  515. err = mmc_send_cmd(mmc, &cmd, NULL);
  516. if (err)
  517. return err;
  518. }
  519. mmc->version = MMC_VERSION_UNKNOWN;
  520. mmc->ocr = cmd.response[0];
  521. mmc->high_capacity = ((mmc->ocr & OCR_HCS) == OCR_HCS);
  522. mmc->rca = 0;
  523. return 0;
  524. }
  525. int mmc_send_ext_csd(struct mmc *mmc, u8 *ext_csd)
  526. {
  527. struct mmc_cmd cmd;
  528. struct mmc_data data;
  529. int err;
  530. /* Get the Card Status Register */
  531. cmd.cmdidx = MMC_CMD_SEND_EXT_CSD;
  532. cmd.resp_type = MMC_RSP_R1;
  533. cmd.cmdarg = 0;
  534. data.dest = (char *)ext_csd;
  535. data.blocks = 1;
  536. data.blocksize = 512;
  537. data.flags = MMC_DATA_READ;
  538. err = mmc_send_cmd(mmc, &cmd, &data);
  539. return err;
  540. }
  541. int mmc_switch(struct mmc *mmc, u8 set, u8 index, u8 value)
  542. {
  543. struct mmc_cmd cmd;
  544. int timeout = 1000;
  545. int ret;
  546. cmd.cmdidx = MMC_CMD_SWITCH;
  547. cmd.resp_type = MMC_RSP_R1b;
  548. cmd.cmdarg = (MMC_SWITCH_MODE_WRITE_BYTE << 24) |
  549. (index << 16) |
  550. (value << 8);
  551. ret = mmc_send_cmd(mmc, &cmd, NULL);
  552. /* Waiting for the ready status */
  553. if (!ret)
  554. ret = mmc_send_status(mmc, timeout);
  555. return ret;
  556. }
  557. int mmc_change_freq(struct mmc *mmc)
  558. {
  559. ALLOC_CACHE_ALIGN_BUFFER(u8, ext_csd, 512);
  560. char cardtype;
  561. int err;
  562. mmc->card_caps = 0;
  563. if (mmc_host_is_spi(mmc))
  564. return 0;
  565. /* Only version 4 supports high-speed */
  566. if (mmc->version < MMC_VERSION_4)
  567. return 0;
  568. err = mmc_send_ext_csd(mmc, ext_csd);
  569. if (err)
  570. return err;
  571. cardtype = ext_csd[EXT_CSD_CARD_TYPE] & 0xf;
  572. err = mmc_switch(mmc, EXT_CSD_CMD_SET_NORMAL, EXT_CSD_HS_TIMING, 1);
  573. if (err)
  574. return err;
  575. /* Now check to see that it worked */
  576. err = mmc_send_ext_csd(mmc, ext_csd);
  577. if (err)
  578. return err;
  579. /* No high-speed support */
  580. if (!ext_csd[EXT_CSD_HS_TIMING])
  581. return 0;
  582. /* High Speed is set, there are two types: 52MHz and 26MHz */
  583. if (cardtype & MMC_HS_52MHZ)
  584. mmc->card_caps |= MMC_MODE_HS_52MHz | MMC_MODE_HS;
  585. else
  586. mmc->card_caps |= MMC_MODE_HS;
  587. return 0;
  588. }
  589. int mmc_switch_part(int dev_num, unsigned int part_num)
  590. {
  591. struct mmc *mmc = find_mmc_device(dev_num);
  592. if (!mmc)
  593. return -1;
  594. return mmc_switch(mmc, EXT_CSD_CMD_SET_NORMAL, EXT_CSD_PART_CONF,
  595. (mmc->part_config & ~PART_ACCESS_MASK)
  596. | (part_num & PART_ACCESS_MASK));
  597. }
  598. int mmc_getcd(struct mmc *mmc)
  599. {
  600. int cd;
  601. cd = board_mmc_getcd(mmc);
  602. if ((cd < 0) && mmc->getcd)
  603. cd = mmc->getcd(mmc);
  604. return cd;
  605. }
  606. int sd_switch(struct mmc *mmc, int mode, int group, u8 value, u8 *resp)
  607. {
  608. struct mmc_cmd cmd;
  609. struct mmc_data data;
  610. /* Switch the frequency */
  611. cmd.cmdidx = SD_CMD_SWITCH_FUNC;
  612. cmd.resp_type = MMC_RSP_R1;
  613. cmd.cmdarg = (mode << 31) | 0xffffff;
  614. cmd.cmdarg &= ~(0xf << (group * 4));
  615. cmd.cmdarg |= value << (group * 4);
  616. data.dest = (char *)resp;
  617. data.blocksize = 64;
  618. data.blocks = 1;
  619. data.flags = MMC_DATA_READ;
  620. return mmc_send_cmd(mmc, &cmd, &data);
  621. }
  622. int sd_change_freq(struct mmc *mmc)
  623. {
  624. int err;
  625. struct mmc_cmd cmd;
  626. ALLOC_CACHE_ALIGN_BUFFER(uint, scr, 2);
  627. ALLOC_CACHE_ALIGN_BUFFER(uint, switch_status, 16);
  628. struct mmc_data data;
  629. int timeout;
  630. mmc->card_caps = 0;
  631. if (mmc_host_is_spi(mmc))
  632. return 0;
  633. /* Read the SCR to find out if this card supports higher speeds */
  634. cmd.cmdidx = MMC_CMD_APP_CMD;
  635. cmd.resp_type = MMC_RSP_R1;
  636. cmd.cmdarg = mmc->rca << 16;
  637. err = mmc_send_cmd(mmc, &cmd, NULL);
  638. if (err)
  639. return err;
  640. cmd.cmdidx = SD_CMD_APP_SEND_SCR;
  641. cmd.resp_type = MMC_RSP_R1;
  642. cmd.cmdarg = 0;
  643. timeout = 3;
  644. retry_scr:
  645. data.dest = (char *)scr;
  646. data.blocksize = 8;
  647. data.blocks = 1;
  648. data.flags = MMC_DATA_READ;
  649. err = mmc_send_cmd(mmc, &cmd, &data);
  650. if (err) {
  651. if (timeout--)
  652. goto retry_scr;
  653. return err;
  654. }
  655. mmc->scr[0] = __be32_to_cpu(scr[0]);
  656. mmc->scr[1] = __be32_to_cpu(scr[1]);
  657. switch ((mmc->scr[0] >> 24) & 0xf) {
  658. case 0:
  659. mmc->version = SD_VERSION_1_0;
  660. break;
  661. case 1:
  662. mmc->version = SD_VERSION_1_10;
  663. break;
  664. case 2:
  665. mmc->version = SD_VERSION_2;
  666. break;
  667. default:
  668. mmc->version = SD_VERSION_1_0;
  669. break;
  670. }
  671. if (mmc->scr[0] & SD_DATA_4BIT)
  672. mmc->card_caps |= MMC_MODE_4BIT;
  673. /* Version 1.0 doesn't support switching */
  674. if (mmc->version == SD_VERSION_1_0)
  675. return 0;
  676. timeout = 4;
  677. while (timeout--) {
  678. err = sd_switch(mmc, SD_SWITCH_CHECK, 0, 1,
  679. (u8 *)switch_status);
  680. if (err)
  681. return err;
  682. /* The high-speed function is busy. Try again */
  683. if (!(__be32_to_cpu(switch_status[7]) & SD_HIGHSPEED_BUSY))
  684. break;
  685. }
  686. /* If high-speed isn't supported, we return */
  687. if (!(__be32_to_cpu(switch_status[3]) & SD_HIGHSPEED_SUPPORTED))
  688. return 0;
  689. /*
  690. * If the host doesn't support SD_HIGHSPEED, do not switch card to
  691. * HIGHSPEED mode even if the card support SD_HIGHSPPED.
  692. * This can avoid furthur problem when the card runs in different
  693. * mode between the host.
  694. */
  695. if (!((mmc->host_caps & MMC_MODE_HS_52MHz) &&
  696. (mmc->host_caps & MMC_MODE_HS)))
  697. return 0;
  698. err = sd_switch(mmc, SD_SWITCH_SWITCH, 0, 1, (u8 *)switch_status);
  699. if (err)
  700. return err;
  701. if ((__be32_to_cpu(switch_status[4]) & 0x0f000000) == 0x01000000)
  702. mmc->card_caps |= MMC_MODE_HS;
  703. return 0;
  704. }
  705. /* frequency bases */
  706. /* divided by 10 to be nice to platforms without floating point */
  707. static const int fbase[] = {
  708. 10000,
  709. 100000,
  710. 1000000,
  711. 10000000,
  712. };
  713. /* Multiplier values for TRAN_SPEED. Multiplied by 10 to be nice
  714. * to platforms without floating point.
  715. */
  716. static const int multipliers[] = {
  717. 0, /* reserved */
  718. 10,
  719. 12,
  720. 13,
  721. 15,
  722. 20,
  723. 25,
  724. 30,
  725. 35,
  726. 40,
  727. 45,
  728. 50,
  729. 55,
  730. 60,
  731. 70,
  732. 80,
  733. };
  734. void mmc_set_ios(struct mmc *mmc)
  735. {
  736. mmc->set_ios(mmc);
  737. }
  738. void mmc_set_clock(struct mmc *mmc, uint clock)
  739. {
  740. if (clock > mmc->f_max)
  741. clock = mmc->f_max;
  742. if (clock < mmc->f_min)
  743. clock = mmc->f_min;
  744. mmc->clock = clock;
  745. mmc_set_ios(mmc);
  746. }
  747. void mmc_set_bus_width(struct mmc *mmc, uint width)
  748. {
  749. mmc->bus_width = width;
  750. mmc_set_ios(mmc);
  751. }
  752. int mmc_startup(struct mmc *mmc)
  753. {
  754. int err, width;
  755. uint mult, freq;
  756. u64 cmult, csize, capacity;
  757. struct mmc_cmd cmd;
  758. ALLOC_CACHE_ALIGN_BUFFER(u8, ext_csd, 512);
  759. ALLOC_CACHE_ALIGN_BUFFER(u8, test_csd, 512);
  760. int timeout = 1000;
  761. #ifdef CONFIG_MMC_SPI_CRC_ON
  762. if (mmc_host_is_spi(mmc)) { /* enable CRC check for spi */
  763. cmd.cmdidx = MMC_CMD_SPI_CRC_ON_OFF;
  764. cmd.resp_type = MMC_RSP_R1;
  765. cmd.cmdarg = 1;
  766. err = mmc_send_cmd(mmc, &cmd, NULL);
  767. if (err)
  768. return err;
  769. }
  770. #endif
  771. /* Put the Card in Identify Mode */
  772. cmd.cmdidx = mmc_host_is_spi(mmc) ? MMC_CMD_SEND_CID :
  773. MMC_CMD_ALL_SEND_CID; /* cmd not supported in spi */
  774. cmd.resp_type = MMC_RSP_R2;
  775. cmd.cmdarg = 0;
  776. err = mmc_send_cmd(mmc, &cmd, NULL);
  777. if (err)
  778. return err;
  779. memcpy(mmc->cid, cmd.response, 16);
  780. /*
  781. * For MMC cards, set the Relative Address.
  782. * For SD cards, get the Relatvie Address.
  783. * This also puts the cards into Standby State
  784. */
  785. if (!mmc_host_is_spi(mmc)) { /* cmd not supported in spi */
  786. cmd.cmdidx = SD_CMD_SEND_RELATIVE_ADDR;
  787. cmd.cmdarg = mmc->rca << 16;
  788. cmd.resp_type = MMC_RSP_R6;
  789. err = mmc_send_cmd(mmc, &cmd, NULL);
  790. if (err)
  791. return err;
  792. if (IS_SD(mmc))
  793. mmc->rca = (cmd.response[0] >> 16) & 0xffff;
  794. }
  795. /* Get the Card-Specific Data */
  796. cmd.cmdidx = MMC_CMD_SEND_CSD;
  797. cmd.resp_type = MMC_RSP_R2;
  798. cmd.cmdarg = mmc->rca << 16;
  799. err = mmc_send_cmd(mmc, &cmd, NULL);
  800. /* Waiting for the ready status */
  801. mmc_send_status(mmc, timeout);
  802. if (err)
  803. return err;
  804. mmc->csd[0] = cmd.response[0];
  805. mmc->csd[1] = cmd.response[1];
  806. mmc->csd[2] = cmd.response[2];
  807. mmc->csd[3] = cmd.response[3];
  808. if (mmc->version == MMC_VERSION_UNKNOWN) {
  809. int version = (cmd.response[0] >> 26) & 0xf;
  810. switch (version) {
  811. case 0:
  812. mmc->version = MMC_VERSION_1_2;
  813. break;
  814. case 1:
  815. mmc->version = MMC_VERSION_1_4;
  816. break;
  817. case 2:
  818. mmc->version = MMC_VERSION_2_2;
  819. break;
  820. case 3:
  821. mmc->version = MMC_VERSION_3;
  822. break;
  823. case 4:
  824. mmc->version = MMC_VERSION_4;
  825. break;
  826. default:
  827. mmc->version = MMC_VERSION_1_2;
  828. break;
  829. }
  830. }
  831. /* divide frequency by 10, since the mults are 10x bigger */
  832. freq = fbase[(cmd.response[0] & 0x7)];
  833. mult = multipliers[((cmd.response[0] >> 3) & 0xf)];
  834. mmc->tran_speed = freq * mult;
  835. mmc->read_bl_len = 1 << ((cmd.response[1] >> 16) & 0xf);
  836. if (IS_SD(mmc))
  837. mmc->write_bl_len = mmc->read_bl_len;
  838. else
  839. mmc->write_bl_len = 1 << ((cmd.response[3] >> 22) & 0xf);
  840. if (mmc->high_capacity) {
  841. csize = (mmc->csd[1] & 0x3f) << 16
  842. | (mmc->csd[2] & 0xffff0000) >> 16;
  843. cmult = 8;
  844. } else {
  845. csize = (mmc->csd[1] & 0x3ff) << 2
  846. | (mmc->csd[2] & 0xc0000000) >> 30;
  847. cmult = (mmc->csd[2] & 0x00038000) >> 15;
  848. }
  849. mmc->capacity = (csize + 1) << (cmult + 2);
  850. mmc->capacity *= mmc->read_bl_len;
  851. if (mmc->read_bl_len > 512)
  852. mmc->read_bl_len = 512;
  853. if (mmc->write_bl_len > 512)
  854. mmc->write_bl_len = 512;
  855. /* Select the card, and put it into Transfer Mode */
  856. if (!mmc_host_is_spi(mmc)) { /* cmd not supported in spi */
  857. cmd.cmdidx = MMC_CMD_SELECT_CARD;
  858. cmd.resp_type = MMC_RSP_R1;
  859. cmd.cmdarg = mmc->rca << 16;
  860. err = mmc_send_cmd(mmc, &cmd, NULL);
  861. if (err)
  862. return err;
  863. }
  864. /*
  865. * For SD, its erase group is always one sector
  866. */
  867. mmc->erase_grp_size = 1;
  868. mmc->part_config = MMCPART_NOAVAILABLE;
  869. if (!IS_SD(mmc) && (mmc->version >= MMC_VERSION_4)) {
  870. /* check ext_csd version and capacity */
  871. err = mmc_send_ext_csd(mmc, ext_csd);
  872. if (!err & (ext_csd[EXT_CSD_REV] >= 2)) {
  873. /*
  874. * According to the JEDEC Standard, the value of
  875. * ext_csd's capacity is valid if the value is more
  876. * than 2GB
  877. */
  878. capacity = ext_csd[EXT_CSD_SEC_CNT] << 0
  879. | ext_csd[EXT_CSD_SEC_CNT + 1] << 8
  880. | ext_csd[EXT_CSD_SEC_CNT + 2] << 16
  881. | ext_csd[EXT_CSD_SEC_CNT + 3] << 24;
  882. capacity *= 512;
  883. if ((capacity >> 20) > 2 * 1024)
  884. mmc->capacity = capacity;
  885. }
  886. /*
  887. * Check whether GROUP_DEF is set, if yes, read out
  888. * group size from ext_csd directly, or calculate
  889. * the group size from the csd value.
  890. */
  891. if (ext_csd[EXT_CSD_ERASE_GROUP_DEF])
  892. mmc->erase_grp_size =
  893. ext_csd[EXT_CSD_HC_ERASE_GRP_SIZE] * 512 * 1024;
  894. else {
  895. int erase_gsz, erase_gmul;
  896. erase_gsz = (mmc->csd[2] & 0x00007c00) >> 10;
  897. erase_gmul = (mmc->csd[2] & 0x000003e0) >> 5;
  898. mmc->erase_grp_size = (erase_gsz + 1)
  899. * (erase_gmul + 1);
  900. }
  901. /* store the partition info of emmc */
  902. if ((ext_csd[EXT_CSD_PARTITIONING_SUPPORT] & PART_SUPPORT) ||
  903. ext_csd[EXT_CSD_BOOT_MULT])
  904. mmc->part_config = ext_csd[EXT_CSD_PART_CONF];
  905. }
  906. if (IS_SD(mmc))
  907. err = sd_change_freq(mmc);
  908. else
  909. err = mmc_change_freq(mmc);
  910. if (err)
  911. return err;
  912. /* Restrict card's capabilities by what the host can do */
  913. mmc->card_caps &= mmc->host_caps;
  914. if (IS_SD(mmc)) {
  915. if (mmc->card_caps & MMC_MODE_4BIT) {
  916. cmd.cmdidx = MMC_CMD_APP_CMD;
  917. cmd.resp_type = MMC_RSP_R1;
  918. cmd.cmdarg = mmc->rca << 16;
  919. err = mmc_send_cmd(mmc, &cmd, NULL);
  920. if (err)
  921. return err;
  922. cmd.cmdidx = SD_CMD_APP_SET_BUS_WIDTH;
  923. cmd.resp_type = MMC_RSP_R1;
  924. cmd.cmdarg = 2;
  925. err = mmc_send_cmd(mmc, &cmd, NULL);
  926. if (err)
  927. return err;
  928. mmc_set_bus_width(mmc, 4);
  929. }
  930. if (mmc->card_caps & MMC_MODE_HS)
  931. mmc->tran_speed = 50000000;
  932. else
  933. mmc->tran_speed = 25000000;
  934. } else {
  935. width = ((mmc->host_caps & MMC_MODE_MASK_WIDTH_BITS) >>
  936. MMC_MODE_WIDTH_BITS_SHIFT);
  937. for (; width >= 0; width--) {
  938. /* Set the card to use 4 bit*/
  939. err = mmc_switch(mmc, EXT_CSD_CMD_SET_NORMAL,
  940. EXT_CSD_BUS_WIDTH, width);
  941. if (err)
  942. continue;
  943. if (!width) {
  944. mmc_set_bus_width(mmc, 1);
  945. break;
  946. } else
  947. mmc_set_bus_width(mmc, 4 * width);
  948. err = mmc_send_ext_csd(mmc, test_csd);
  949. if (!err && ext_csd[EXT_CSD_PARTITIONING_SUPPORT] \
  950. == test_csd[EXT_CSD_PARTITIONING_SUPPORT]
  951. && ext_csd[EXT_CSD_ERASE_GROUP_DEF] \
  952. == test_csd[EXT_CSD_ERASE_GROUP_DEF] \
  953. && ext_csd[EXT_CSD_REV] \
  954. == test_csd[EXT_CSD_REV]
  955. && ext_csd[EXT_CSD_HC_ERASE_GRP_SIZE] \
  956. == test_csd[EXT_CSD_HC_ERASE_GRP_SIZE]
  957. && memcmp(&ext_csd[EXT_CSD_SEC_CNT], \
  958. &test_csd[EXT_CSD_SEC_CNT], 4) == 0) {
  959. mmc->card_caps |= width;
  960. break;
  961. }
  962. }
  963. if (mmc->card_caps & MMC_MODE_HS) {
  964. if (mmc->card_caps & MMC_MODE_HS_52MHz)
  965. mmc->tran_speed = 52000000;
  966. else
  967. mmc->tran_speed = 26000000;
  968. }
  969. }
  970. mmc_set_clock(mmc, mmc->tran_speed);
  971. /* fill in device description */
  972. mmc->block_dev.lun = 0;
  973. mmc->block_dev.type = 0;
  974. mmc->block_dev.blksz = mmc->read_bl_len;
  975. mmc->block_dev.lba = lldiv(mmc->capacity, mmc->read_bl_len);
  976. sprintf(mmc->block_dev.vendor, "Man %06x Snr %08x", mmc->cid[0] >> 8,
  977. (mmc->cid[2] << 8) | (mmc->cid[3] >> 24));
  978. sprintf(mmc->block_dev.product, "%c%c%c%c%c", mmc->cid[0] & 0xff,
  979. (mmc->cid[1] >> 24), (mmc->cid[1] >> 16) & 0xff,
  980. (mmc->cid[1] >> 8) & 0xff, mmc->cid[1] & 0xff);
  981. sprintf(mmc->block_dev.revision, "%d.%d", mmc->cid[2] >> 28,
  982. (mmc->cid[2] >> 24) & 0xf);
  983. #if !defined(CONFIG_SPL_BUILD) || defined(CONFIG_SPL_LIBDISK_SUPPORT)
  984. init_part(&mmc->block_dev);
  985. #endif
  986. return 0;
  987. }
  988. int mmc_send_if_cond(struct mmc *mmc)
  989. {
  990. struct mmc_cmd cmd;
  991. int err;
  992. cmd.cmdidx = SD_CMD_SEND_IF_COND;
  993. /* We set the bit if the host supports voltages between 2.7 and 3.6 V */
  994. cmd.cmdarg = ((mmc->voltages & 0xff8000) != 0) << 8 | 0xaa;
  995. cmd.resp_type = MMC_RSP_R7;
  996. err = mmc_send_cmd(mmc, &cmd, NULL);
  997. if (err)
  998. return err;
  999. if ((cmd.response[0] & 0xff) != 0xaa)
  1000. return UNUSABLE_ERR;
  1001. else
  1002. mmc->version = SD_VERSION_2;
  1003. return 0;
  1004. }
  1005. int mmc_register(struct mmc *mmc)
  1006. {
  1007. /* Setup the universal parts of the block interface just once */
  1008. mmc->block_dev.if_type = IF_TYPE_MMC;
  1009. mmc->block_dev.dev = cur_dev_num++;
  1010. mmc->block_dev.removable = 1;
  1011. mmc->block_dev.block_read = mmc_bread;
  1012. mmc->block_dev.block_write = mmc_bwrite;
  1013. mmc->block_dev.block_erase = mmc_berase;
  1014. if (!mmc->b_max)
  1015. mmc->b_max = CONFIG_SYS_MMC_MAX_BLK_COUNT;
  1016. INIT_LIST_HEAD (&mmc->link);
  1017. list_add_tail (&mmc->link, &mmc_devices);
  1018. return 0;
  1019. }
  1020. #ifdef CONFIG_PARTITIONS
  1021. block_dev_desc_t *mmc_get_dev(int dev)
  1022. {
  1023. struct mmc *mmc = find_mmc_device(dev);
  1024. if (!mmc || mmc_init(mmc))
  1025. return NULL;
  1026. return &mmc->block_dev;
  1027. }
  1028. #endif
  1029. int mmc_init(struct mmc *mmc)
  1030. {
  1031. int err;
  1032. if (mmc_getcd(mmc) == 0) {
  1033. mmc->has_init = 0;
  1034. printf("MMC: no card present\n");
  1035. return NO_CARD_ERR;
  1036. }
  1037. if (mmc->has_init)
  1038. return 0;
  1039. err = mmc->init(mmc);
  1040. if (err)
  1041. return err;
  1042. mmc_set_bus_width(mmc, 1);
  1043. mmc_set_clock(mmc, 1);
  1044. /* Reset the Card */
  1045. err = mmc_go_idle(mmc);
  1046. if (err)
  1047. return err;
  1048. /* The internal partition reset to user partition(0) at every CMD0*/
  1049. mmc->part_num = 0;
  1050. /* Test for SD version 2 */
  1051. err = mmc_send_if_cond(mmc);
  1052. /* Now try to get the SD card's operating condition */
  1053. err = sd_send_op_cond(mmc);
  1054. /* If the command timed out, we check for an MMC card */
  1055. if (err == TIMEOUT) {
  1056. err = mmc_send_op_cond(mmc);
  1057. if (err) {
  1058. printf("Card did not respond to voltage select!\n");
  1059. return UNUSABLE_ERR;
  1060. }
  1061. }
  1062. err = mmc_startup(mmc);
  1063. if (err)
  1064. mmc->has_init = 0;
  1065. else
  1066. mmc->has_init = 1;
  1067. return err;
  1068. }
  1069. /*
  1070. * CPU and board-specific MMC initializations. Aliased function
  1071. * signals caller to move on
  1072. */
  1073. static int __def_mmc_init(bd_t *bis)
  1074. {
  1075. return -1;
  1076. }
  1077. int cpu_mmc_init(bd_t *bis) __attribute__((weak, alias("__def_mmc_init")));
  1078. int board_mmc_init(bd_t *bis) __attribute__((weak, alias("__def_mmc_init")));
  1079. void print_mmc_devices(char separator)
  1080. {
  1081. struct mmc *m;
  1082. struct list_head *entry;
  1083. list_for_each(entry, &mmc_devices) {
  1084. m = list_entry(entry, struct mmc, link);
  1085. printf("%s: %d", m->name, m->block_dev.dev);
  1086. if (entry->next != &mmc_devices)
  1087. printf("%c ", separator);
  1088. }
  1089. printf("\n");
  1090. }
  1091. int get_mmc_num(void)
  1092. {
  1093. return cur_dev_num;
  1094. }
  1095. int mmc_initialize(bd_t *bis)
  1096. {
  1097. INIT_LIST_HEAD (&mmc_devices);
  1098. cur_dev_num = 0;
  1099. if (board_mmc_init(bis) < 0)
  1100. cpu_mmc_init(bis);
  1101. print_mmc_devices(',');
  1102. return 0;
  1103. }