mmc.c 22 KB

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  1. /*
  2. * (C) Copyright 2003
  3. * Kyle Harris, kharris@nexus-tech.net
  4. *
  5. * SPDX-License-Identifier: GPL-2.0+
  6. */
  7. #include <common.h>
  8. #include <command.h>
  9. #include <console.h>
  10. #include <mmc.h>
  11. static int curr_device = -1;
  12. #ifndef CONFIG_GENERIC_MMC
  13. int do_mmc (cmd_tbl_t *cmdtp, int flag, int argc, char * const argv[])
  14. {
  15. int dev;
  16. if (argc < 2)
  17. return CMD_RET_USAGE;
  18. if (strcmp(argv[1], "init") == 0) {
  19. if (argc == 2) {
  20. if (curr_device < 0)
  21. dev = 1;
  22. else
  23. dev = curr_device;
  24. } else if (argc == 3) {
  25. dev = (int)simple_strtoul(argv[2], NULL, 10);
  26. } else {
  27. return CMD_RET_USAGE;
  28. }
  29. if (mmc_legacy_init(dev) != 0) {
  30. puts("No MMC card found\n");
  31. return 1;
  32. }
  33. curr_device = dev;
  34. printf("mmc%d is available\n", curr_device);
  35. } else if (strcmp(argv[1], "device") == 0) {
  36. if (argc == 2) {
  37. if (curr_device < 0) {
  38. puts("No MMC device available\n");
  39. return 1;
  40. }
  41. } else if (argc == 3) {
  42. dev = (int)simple_strtoul(argv[2], NULL, 10);
  43. #ifdef CONFIG_SYS_MMC_SET_DEV
  44. if (mmc_set_dev(dev) != 0)
  45. return 1;
  46. #endif
  47. curr_device = dev;
  48. } else {
  49. return CMD_RET_USAGE;
  50. }
  51. printf("mmc%d is current device\n", curr_device);
  52. } else {
  53. return CMD_RET_USAGE;
  54. }
  55. return 0;
  56. }
  57. U_BOOT_CMD(
  58. mmc, 3, 1, do_mmc,
  59. "MMC sub-system",
  60. "init [dev] - init MMC sub system\n"
  61. "mmc device [dev] - show or set current device"
  62. );
  63. #else /* !CONFIG_GENERIC_MMC */
  64. static void print_mmcinfo(struct mmc *mmc)
  65. {
  66. int i;
  67. printf("Device: %s\n", mmc->cfg->name);
  68. printf("Manufacturer ID: %x\n", mmc->cid[0] >> 24);
  69. printf("OEM: %x\n", (mmc->cid[0] >> 8) & 0xffff);
  70. printf("Name: %c%c%c%c%c \n", mmc->cid[0] & 0xff,
  71. (mmc->cid[1] >> 24), (mmc->cid[1] >> 16) & 0xff,
  72. (mmc->cid[1] >> 8) & 0xff, mmc->cid[1] & 0xff);
  73. printf("Tran Speed: %d\n", mmc->tran_speed);
  74. printf("Rd Block Len: %d\n", mmc->read_bl_len);
  75. printf("%s version %d.%d", IS_SD(mmc) ? "SD" : "MMC",
  76. EXTRACT_SDMMC_MAJOR_VERSION(mmc->version),
  77. EXTRACT_SDMMC_MINOR_VERSION(mmc->version));
  78. if (EXTRACT_SDMMC_CHANGE_VERSION(mmc->version) != 0)
  79. printf(".%d", EXTRACT_SDMMC_CHANGE_VERSION(mmc->version));
  80. printf("\n");
  81. printf("High Capacity: %s\n", mmc->high_capacity ? "Yes" : "No");
  82. puts("Capacity: ");
  83. print_size(mmc->capacity, "\n");
  84. printf("Bus Width: %d-bit%s\n", mmc->bus_width,
  85. mmc->ddr_mode ? " DDR" : "");
  86. puts("Erase Group Size: ");
  87. print_size(((u64)mmc->erase_grp_size) << 9, "\n");
  88. if (!IS_SD(mmc) && mmc->version >= MMC_VERSION_4_41) {
  89. bool has_enh = (mmc->part_support & ENHNCD_SUPPORT) != 0;
  90. bool usr_enh = has_enh && (mmc->part_attr & EXT_CSD_ENH_USR);
  91. puts("HC WP Group Size: ");
  92. print_size(((u64)mmc->hc_wp_grp_size) << 9, "\n");
  93. puts("User Capacity: ");
  94. print_size(mmc->capacity_user, usr_enh ? " ENH" : "");
  95. if (mmc->wr_rel_set & EXT_CSD_WR_DATA_REL_USR)
  96. puts(" WRREL\n");
  97. else
  98. putc('\n');
  99. if (usr_enh) {
  100. puts("User Enhanced Start: ");
  101. print_size(mmc->enh_user_start, "\n");
  102. puts("User Enhanced Size: ");
  103. print_size(mmc->enh_user_size, "\n");
  104. }
  105. puts("Boot Capacity: ");
  106. print_size(mmc->capacity_boot, has_enh ? " ENH\n" : "\n");
  107. puts("RPMB Capacity: ");
  108. print_size(mmc->capacity_rpmb, has_enh ? " ENH\n" : "\n");
  109. for (i = 0; i < ARRAY_SIZE(mmc->capacity_gp); i++) {
  110. bool is_enh = has_enh &&
  111. (mmc->part_attr & EXT_CSD_ENH_GP(i));
  112. if (mmc->capacity_gp[i]) {
  113. printf("GP%i Capacity: ", i+1);
  114. print_size(mmc->capacity_gp[i],
  115. is_enh ? " ENH" : "");
  116. if (mmc->wr_rel_set & EXT_CSD_WR_DATA_REL_GP(i))
  117. puts(" WRREL\n");
  118. else
  119. putc('\n');
  120. }
  121. }
  122. }
  123. }
  124. static struct mmc *init_mmc_device(int dev, bool force_init)
  125. {
  126. struct mmc *mmc;
  127. mmc = find_mmc_device(dev);
  128. if (!mmc) {
  129. printf("no mmc device at slot %x\n", dev);
  130. return NULL;
  131. }
  132. if (force_init)
  133. mmc->has_init = 0;
  134. if (mmc_init(mmc))
  135. return NULL;
  136. return mmc;
  137. }
  138. static int do_mmcinfo(cmd_tbl_t *cmdtp, int flag, int argc, char * const argv[])
  139. {
  140. struct mmc *mmc;
  141. if (curr_device < 0) {
  142. if (get_mmc_num() > 0)
  143. curr_device = 0;
  144. else {
  145. puts("No MMC device available\n");
  146. return 1;
  147. }
  148. }
  149. mmc = init_mmc_device(curr_device, false);
  150. if (!mmc)
  151. return CMD_RET_FAILURE;
  152. print_mmcinfo(mmc);
  153. return CMD_RET_SUCCESS;
  154. }
  155. #ifdef CONFIG_SUPPORT_EMMC_RPMB
  156. static int confirm_key_prog(void)
  157. {
  158. puts("Warning: Programming authentication key can be done only once !\n"
  159. " Use this command only if you are sure of what you are doing,\n"
  160. "Really perform the key programming? <y/N> ");
  161. if (confirm_yesno())
  162. return 1;
  163. puts("Authentication key programming aborted\n");
  164. return 0;
  165. }
  166. static int do_mmcrpmb_key(cmd_tbl_t *cmdtp, int flag,
  167. int argc, char * const argv[])
  168. {
  169. void *key_addr;
  170. struct mmc *mmc = find_mmc_device(curr_device);
  171. if (argc != 2)
  172. return CMD_RET_USAGE;
  173. key_addr = (void *)simple_strtoul(argv[1], NULL, 16);
  174. if (!confirm_key_prog())
  175. return CMD_RET_FAILURE;
  176. if (mmc_rpmb_set_key(mmc, key_addr)) {
  177. printf("ERROR - Key already programmed ?\n");
  178. return CMD_RET_FAILURE;
  179. }
  180. return CMD_RET_SUCCESS;
  181. }
  182. static int do_mmcrpmb_read(cmd_tbl_t *cmdtp, int flag,
  183. int argc, char * const argv[])
  184. {
  185. u16 blk, cnt;
  186. void *addr;
  187. int n;
  188. void *key_addr = NULL;
  189. struct mmc *mmc = find_mmc_device(curr_device);
  190. if (argc < 4)
  191. return CMD_RET_USAGE;
  192. addr = (void *)simple_strtoul(argv[1], NULL, 16);
  193. blk = simple_strtoul(argv[2], NULL, 16);
  194. cnt = simple_strtoul(argv[3], NULL, 16);
  195. if (argc == 5)
  196. key_addr = (void *)simple_strtoul(argv[4], NULL, 16);
  197. printf("\nMMC RPMB read: dev # %d, block # %d, count %d ... ",
  198. curr_device, blk, cnt);
  199. n = mmc_rpmb_read(mmc, addr, blk, cnt, key_addr);
  200. printf("%d RPMB blocks read: %s\n", n, (n == cnt) ? "OK" : "ERROR");
  201. if (n != cnt)
  202. return CMD_RET_FAILURE;
  203. return CMD_RET_SUCCESS;
  204. }
  205. static int do_mmcrpmb_write(cmd_tbl_t *cmdtp, int flag,
  206. int argc, char * const argv[])
  207. {
  208. u16 blk, cnt;
  209. void *addr;
  210. int n;
  211. void *key_addr;
  212. struct mmc *mmc = find_mmc_device(curr_device);
  213. if (argc != 5)
  214. return CMD_RET_USAGE;
  215. addr = (void *)simple_strtoul(argv[1], NULL, 16);
  216. blk = simple_strtoul(argv[2], NULL, 16);
  217. cnt = simple_strtoul(argv[3], NULL, 16);
  218. key_addr = (void *)simple_strtoul(argv[4], NULL, 16);
  219. printf("\nMMC RPMB write: dev # %d, block # %d, count %d ... ",
  220. curr_device, blk, cnt);
  221. n = mmc_rpmb_write(mmc, addr, blk, cnt, key_addr);
  222. printf("%d RPMB blocks written: %s\n", n, (n == cnt) ? "OK" : "ERROR");
  223. if (n != cnt)
  224. return CMD_RET_FAILURE;
  225. return CMD_RET_SUCCESS;
  226. }
  227. static int do_mmcrpmb_counter(cmd_tbl_t *cmdtp, int flag,
  228. int argc, char * const argv[])
  229. {
  230. unsigned long counter;
  231. struct mmc *mmc = find_mmc_device(curr_device);
  232. if (mmc_rpmb_get_counter(mmc, &counter))
  233. return CMD_RET_FAILURE;
  234. printf("RPMB Write counter= %lx\n", counter);
  235. return CMD_RET_SUCCESS;
  236. }
  237. static cmd_tbl_t cmd_rpmb[] = {
  238. U_BOOT_CMD_MKENT(key, 2, 0, do_mmcrpmb_key, "", ""),
  239. U_BOOT_CMD_MKENT(read, 5, 1, do_mmcrpmb_read, "", ""),
  240. U_BOOT_CMD_MKENT(write, 5, 0, do_mmcrpmb_write, "", ""),
  241. U_BOOT_CMD_MKENT(counter, 1, 1, do_mmcrpmb_counter, "", ""),
  242. };
  243. static int do_mmcrpmb(cmd_tbl_t *cmdtp, int flag,
  244. int argc, char * const argv[])
  245. {
  246. cmd_tbl_t *cp;
  247. struct mmc *mmc;
  248. char original_part;
  249. int ret;
  250. cp = find_cmd_tbl(argv[1], cmd_rpmb, ARRAY_SIZE(cmd_rpmb));
  251. /* Drop the rpmb subcommand */
  252. argc--;
  253. argv++;
  254. if (cp == NULL || argc > cp->maxargs)
  255. return CMD_RET_USAGE;
  256. if (flag == CMD_FLAG_REPEAT && !cp->repeatable)
  257. return CMD_RET_SUCCESS;
  258. mmc = init_mmc_device(curr_device, false);
  259. if (!mmc)
  260. return CMD_RET_FAILURE;
  261. if (!(mmc->version & MMC_VERSION_MMC)) {
  262. printf("It is not a EMMC device\n");
  263. return CMD_RET_FAILURE;
  264. }
  265. if (mmc->version < MMC_VERSION_4_41) {
  266. printf("RPMB not supported before version 4.41\n");
  267. return CMD_RET_FAILURE;
  268. }
  269. /* Switch to the RPMB partition */
  270. original_part = mmc->block_dev.hwpart;
  271. if (blk_select_hwpart_devnum(IF_TYPE_MMC, curr_device, MMC_PART_RPMB) !=
  272. 0)
  273. return CMD_RET_FAILURE;
  274. ret = cp->cmd(cmdtp, flag, argc, argv);
  275. /* Return to original partition */
  276. if (blk_select_hwpart_devnum(IF_TYPE_MMC, curr_device, original_part) !=
  277. 0)
  278. return CMD_RET_FAILURE;
  279. return ret;
  280. }
  281. #endif
  282. static int do_mmc_read(cmd_tbl_t *cmdtp, int flag,
  283. int argc, char * const argv[])
  284. {
  285. struct mmc *mmc;
  286. u32 blk, cnt, n;
  287. void *addr;
  288. if (argc != 4)
  289. return CMD_RET_USAGE;
  290. addr = (void *)simple_strtoul(argv[1], NULL, 16);
  291. blk = simple_strtoul(argv[2], NULL, 16);
  292. cnt = simple_strtoul(argv[3], NULL, 16);
  293. mmc = init_mmc_device(curr_device, false);
  294. if (!mmc)
  295. return CMD_RET_FAILURE;
  296. printf("\nMMC read: dev # %d, block # %d, count %d ... ",
  297. curr_device, blk, cnt);
  298. n = blk_dread(mmc_get_blk_desc(mmc), blk, cnt, addr);
  299. /* flush cache after read */
  300. flush_cache((ulong)addr, cnt * 512); /* FIXME */
  301. printf("%d blocks read: %s\n", n, (n == cnt) ? "OK" : "ERROR");
  302. return (n == cnt) ? CMD_RET_SUCCESS : CMD_RET_FAILURE;
  303. }
  304. static int do_mmc_write(cmd_tbl_t *cmdtp, int flag,
  305. int argc, char * const argv[])
  306. {
  307. struct mmc *mmc;
  308. u32 blk, cnt, n;
  309. void *addr;
  310. if (argc != 4)
  311. return CMD_RET_USAGE;
  312. addr = (void *)simple_strtoul(argv[1], NULL, 16);
  313. blk = simple_strtoul(argv[2], NULL, 16);
  314. cnt = simple_strtoul(argv[3], NULL, 16);
  315. mmc = init_mmc_device(curr_device, false);
  316. if (!mmc)
  317. return CMD_RET_FAILURE;
  318. printf("\nMMC write: dev # %d, block # %d, count %d ... ",
  319. curr_device, blk, cnt);
  320. if (mmc_getwp(mmc) == 1) {
  321. printf("Error: card is write protected!\n");
  322. return CMD_RET_FAILURE;
  323. }
  324. n = blk_dwrite(mmc_get_blk_desc(mmc), blk, cnt, addr);
  325. printf("%d blocks written: %s\n", n, (n == cnt) ? "OK" : "ERROR");
  326. return (n == cnt) ? CMD_RET_SUCCESS : CMD_RET_FAILURE;
  327. }
  328. static int do_mmc_erase(cmd_tbl_t *cmdtp, int flag,
  329. int argc, char * const argv[])
  330. {
  331. struct mmc *mmc;
  332. u32 blk, cnt, n;
  333. if (argc != 3)
  334. return CMD_RET_USAGE;
  335. blk = simple_strtoul(argv[1], NULL, 16);
  336. cnt = simple_strtoul(argv[2], NULL, 16);
  337. mmc = init_mmc_device(curr_device, false);
  338. if (!mmc)
  339. return CMD_RET_FAILURE;
  340. printf("\nMMC erase: dev # %d, block # %d, count %d ... ",
  341. curr_device, blk, cnt);
  342. if (mmc_getwp(mmc) == 1) {
  343. printf("Error: card is write protected!\n");
  344. return CMD_RET_FAILURE;
  345. }
  346. n = blk_derase(mmc_get_blk_desc(mmc), blk, cnt);
  347. printf("%d blocks erased: %s\n", n, (n == cnt) ? "OK" : "ERROR");
  348. return (n == cnt) ? CMD_RET_SUCCESS : CMD_RET_FAILURE;
  349. }
  350. static int do_mmc_rescan(cmd_tbl_t *cmdtp, int flag,
  351. int argc, char * const argv[])
  352. {
  353. struct mmc *mmc;
  354. mmc = init_mmc_device(curr_device, true);
  355. if (!mmc)
  356. return CMD_RET_FAILURE;
  357. return CMD_RET_SUCCESS;
  358. }
  359. static int do_mmc_part(cmd_tbl_t *cmdtp, int flag,
  360. int argc, char * const argv[])
  361. {
  362. struct blk_desc *mmc_dev;
  363. struct mmc *mmc;
  364. mmc = init_mmc_device(curr_device, false);
  365. if (!mmc)
  366. return CMD_RET_FAILURE;
  367. mmc_dev = blk_get_devnum_by_type(IF_TYPE_MMC, curr_device);
  368. if (mmc_dev != NULL && mmc_dev->type != DEV_TYPE_UNKNOWN) {
  369. part_print(mmc_dev);
  370. return CMD_RET_SUCCESS;
  371. }
  372. puts("get mmc type error!\n");
  373. return CMD_RET_FAILURE;
  374. }
  375. static int do_mmc_dev(cmd_tbl_t *cmdtp, int flag,
  376. int argc, char * const argv[])
  377. {
  378. int dev, part = 0, ret;
  379. struct mmc *mmc;
  380. if (argc == 1) {
  381. dev = curr_device;
  382. } else if (argc == 2) {
  383. dev = simple_strtoul(argv[1], NULL, 10);
  384. } else if (argc == 3) {
  385. dev = (int)simple_strtoul(argv[1], NULL, 10);
  386. part = (int)simple_strtoul(argv[2], NULL, 10);
  387. if (part > PART_ACCESS_MASK) {
  388. printf("#part_num shouldn't be larger than %d\n",
  389. PART_ACCESS_MASK);
  390. return CMD_RET_FAILURE;
  391. }
  392. } else {
  393. return CMD_RET_USAGE;
  394. }
  395. mmc = init_mmc_device(dev, true);
  396. if (!mmc)
  397. return CMD_RET_FAILURE;
  398. ret = blk_select_hwpart_devnum(IF_TYPE_MMC, dev, part);
  399. printf("switch to partitions #%d, %s\n",
  400. part, (!ret) ? "OK" : "ERROR");
  401. if (ret)
  402. return 1;
  403. curr_device = dev;
  404. if (mmc->part_config == MMCPART_NOAVAILABLE)
  405. printf("mmc%d is current device\n", curr_device);
  406. else
  407. printf("mmc%d(part %d) is current device\n",
  408. curr_device, mmc_get_blk_desc(mmc)->hwpart);
  409. return CMD_RET_SUCCESS;
  410. }
  411. static int do_mmc_list(cmd_tbl_t *cmdtp, int flag,
  412. int argc, char * const argv[])
  413. {
  414. print_mmc_devices('\n');
  415. return CMD_RET_SUCCESS;
  416. }
  417. static int parse_hwpart_user(struct mmc_hwpart_conf *pconf,
  418. int argc, char * const argv[])
  419. {
  420. int i = 0;
  421. memset(&pconf->user, 0, sizeof(pconf->user));
  422. while (i < argc) {
  423. if (!strcmp(argv[i], "enh")) {
  424. if (i + 2 >= argc)
  425. return -1;
  426. pconf->user.enh_start =
  427. simple_strtoul(argv[i+1], NULL, 10);
  428. pconf->user.enh_size =
  429. simple_strtoul(argv[i+2], NULL, 10);
  430. i += 3;
  431. } else if (!strcmp(argv[i], "wrrel")) {
  432. if (i + 1 >= argc)
  433. return -1;
  434. pconf->user.wr_rel_change = 1;
  435. if (!strcmp(argv[i+1], "on"))
  436. pconf->user.wr_rel_set = 1;
  437. else if (!strcmp(argv[i+1], "off"))
  438. pconf->user.wr_rel_set = 0;
  439. else
  440. return -1;
  441. i += 2;
  442. } else {
  443. break;
  444. }
  445. }
  446. return i;
  447. }
  448. static int parse_hwpart_gp(struct mmc_hwpart_conf *pconf, int pidx,
  449. int argc, char * const argv[])
  450. {
  451. int i;
  452. memset(&pconf->gp_part[pidx], 0, sizeof(pconf->gp_part[pidx]));
  453. if (1 >= argc)
  454. return -1;
  455. pconf->gp_part[pidx].size = simple_strtoul(argv[0], NULL, 10);
  456. i = 1;
  457. while (i < argc) {
  458. if (!strcmp(argv[i], "enh")) {
  459. pconf->gp_part[pidx].enhanced = 1;
  460. i += 1;
  461. } else if (!strcmp(argv[i], "wrrel")) {
  462. if (i + 1 >= argc)
  463. return -1;
  464. pconf->gp_part[pidx].wr_rel_change = 1;
  465. if (!strcmp(argv[i+1], "on"))
  466. pconf->gp_part[pidx].wr_rel_set = 1;
  467. else if (!strcmp(argv[i+1], "off"))
  468. pconf->gp_part[pidx].wr_rel_set = 0;
  469. else
  470. return -1;
  471. i += 2;
  472. } else {
  473. break;
  474. }
  475. }
  476. return i;
  477. }
  478. static int do_mmc_hwpartition(cmd_tbl_t *cmdtp, int flag,
  479. int argc, char * const argv[])
  480. {
  481. struct mmc *mmc;
  482. struct mmc_hwpart_conf pconf = { };
  483. enum mmc_hwpart_conf_mode mode = MMC_HWPART_CONF_CHECK;
  484. int i, r, pidx;
  485. mmc = init_mmc_device(curr_device, false);
  486. if (!mmc)
  487. return CMD_RET_FAILURE;
  488. if (argc < 1)
  489. return CMD_RET_USAGE;
  490. i = 1;
  491. while (i < argc) {
  492. if (!strcmp(argv[i], "user")) {
  493. i++;
  494. r = parse_hwpart_user(&pconf, argc-i, &argv[i]);
  495. if (r < 0)
  496. return CMD_RET_USAGE;
  497. i += r;
  498. } else if (!strncmp(argv[i], "gp", 2) &&
  499. strlen(argv[i]) == 3 &&
  500. argv[i][2] >= '1' && argv[i][2] <= '4') {
  501. pidx = argv[i][2] - '1';
  502. i++;
  503. r = parse_hwpart_gp(&pconf, pidx, argc-i, &argv[i]);
  504. if (r < 0)
  505. return CMD_RET_USAGE;
  506. i += r;
  507. } else if (!strcmp(argv[i], "check")) {
  508. mode = MMC_HWPART_CONF_CHECK;
  509. i++;
  510. } else if (!strcmp(argv[i], "set")) {
  511. mode = MMC_HWPART_CONF_SET;
  512. i++;
  513. } else if (!strcmp(argv[i], "complete")) {
  514. mode = MMC_HWPART_CONF_COMPLETE;
  515. i++;
  516. } else {
  517. return CMD_RET_USAGE;
  518. }
  519. }
  520. puts("Partition configuration:\n");
  521. if (pconf.user.enh_size) {
  522. puts("\tUser Enhanced Start: ");
  523. print_size(((u64)pconf.user.enh_start) << 9, "\n");
  524. puts("\tUser Enhanced Size: ");
  525. print_size(((u64)pconf.user.enh_size) << 9, "\n");
  526. } else {
  527. puts("\tNo enhanced user data area\n");
  528. }
  529. if (pconf.user.wr_rel_change)
  530. printf("\tUser partition write reliability: %s\n",
  531. pconf.user.wr_rel_set ? "on" : "off");
  532. for (pidx = 0; pidx < 4; pidx++) {
  533. if (pconf.gp_part[pidx].size) {
  534. printf("\tGP%i Capacity: ", pidx+1);
  535. print_size(((u64)pconf.gp_part[pidx].size) << 9,
  536. pconf.gp_part[pidx].enhanced ?
  537. " ENH\n" : "\n");
  538. } else {
  539. printf("\tNo GP%i partition\n", pidx+1);
  540. }
  541. if (pconf.gp_part[pidx].wr_rel_change)
  542. printf("\tGP%i write reliability: %s\n", pidx+1,
  543. pconf.gp_part[pidx].wr_rel_set ? "on" : "off");
  544. }
  545. if (!mmc_hwpart_config(mmc, &pconf, mode)) {
  546. if (mode == MMC_HWPART_CONF_COMPLETE)
  547. puts("Partitioning successful, "
  548. "power-cycle to make effective\n");
  549. return CMD_RET_SUCCESS;
  550. } else {
  551. puts("Failed!\n");
  552. return CMD_RET_FAILURE;
  553. }
  554. }
  555. #ifdef CONFIG_SUPPORT_EMMC_BOOT
  556. static int do_mmc_bootbus(cmd_tbl_t *cmdtp, int flag,
  557. int argc, char * const argv[])
  558. {
  559. int dev;
  560. struct mmc *mmc;
  561. u8 width, reset, mode;
  562. if (argc != 5)
  563. return CMD_RET_USAGE;
  564. dev = simple_strtoul(argv[1], NULL, 10);
  565. width = simple_strtoul(argv[2], NULL, 10);
  566. reset = simple_strtoul(argv[3], NULL, 10);
  567. mode = simple_strtoul(argv[4], NULL, 10);
  568. mmc = init_mmc_device(dev, false);
  569. if (!mmc)
  570. return CMD_RET_FAILURE;
  571. if (IS_SD(mmc)) {
  572. puts("BOOT_BUS_WIDTH only exists on eMMC\n");
  573. return CMD_RET_FAILURE;
  574. }
  575. /* acknowledge to be sent during boot operation */
  576. return mmc_set_boot_bus_width(mmc, width, reset, mode);
  577. }
  578. static int do_mmc_boot_resize(cmd_tbl_t *cmdtp, int flag,
  579. int argc, char * const argv[])
  580. {
  581. int dev;
  582. struct mmc *mmc;
  583. u32 bootsize, rpmbsize;
  584. if (argc != 4)
  585. return CMD_RET_USAGE;
  586. dev = simple_strtoul(argv[1], NULL, 10);
  587. bootsize = simple_strtoul(argv[2], NULL, 10);
  588. rpmbsize = simple_strtoul(argv[3], NULL, 10);
  589. mmc = init_mmc_device(dev, false);
  590. if (!mmc)
  591. return CMD_RET_FAILURE;
  592. if (IS_SD(mmc)) {
  593. printf("It is not a EMMC device\n");
  594. return CMD_RET_FAILURE;
  595. }
  596. if (mmc_boot_partition_size_change(mmc, bootsize, rpmbsize)) {
  597. printf("EMMC boot partition Size change Failed.\n");
  598. return CMD_RET_FAILURE;
  599. }
  600. printf("EMMC boot partition Size %d MB\n", bootsize);
  601. printf("EMMC RPMB partition Size %d MB\n", rpmbsize);
  602. return CMD_RET_SUCCESS;
  603. }
  604. static int do_mmc_partconf(cmd_tbl_t *cmdtp, int flag,
  605. int argc, char * const argv[])
  606. {
  607. int dev;
  608. struct mmc *mmc;
  609. u8 ack, part_num, access;
  610. if (argc != 5)
  611. return CMD_RET_USAGE;
  612. dev = simple_strtoul(argv[1], NULL, 10);
  613. ack = simple_strtoul(argv[2], NULL, 10);
  614. part_num = simple_strtoul(argv[3], NULL, 10);
  615. access = simple_strtoul(argv[4], NULL, 10);
  616. mmc = init_mmc_device(dev, false);
  617. if (!mmc)
  618. return CMD_RET_FAILURE;
  619. if (IS_SD(mmc)) {
  620. puts("PARTITION_CONFIG only exists on eMMC\n");
  621. return CMD_RET_FAILURE;
  622. }
  623. /* acknowledge to be sent during boot operation */
  624. return mmc_set_part_conf(mmc, ack, part_num, access);
  625. }
  626. static int do_mmc_rst_func(cmd_tbl_t *cmdtp, int flag,
  627. int argc, char * const argv[])
  628. {
  629. int dev;
  630. struct mmc *mmc;
  631. u8 enable;
  632. /*
  633. * Set the RST_n_ENABLE bit of RST_n_FUNCTION
  634. * The only valid values are 0x0, 0x1 and 0x2 and writing
  635. * a value of 0x1 or 0x2 sets the value permanently.
  636. */
  637. if (argc != 3)
  638. return CMD_RET_USAGE;
  639. dev = simple_strtoul(argv[1], NULL, 10);
  640. enable = simple_strtoul(argv[2], NULL, 10);
  641. if (enable > 2) {
  642. puts("Invalid RST_n_ENABLE value\n");
  643. return CMD_RET_USAGE;
  644. }
  645. mmc = init_mmc_device(dev, false);
  646. if (!mmc)
  647. return CMD_RET_FAILURE;
  648. if (IS_SD(mmc)) {
  649. puts("RST_n_FUNCTION only exists on eMMC\n");
  650. return CMD_RET_FAILURE;
  651. }
  652. return mmc_set_rst_n_function(mmc, enable);
  653. }
  654. #endif
  655. static int do_mmc_setdsr(cmd_tbl_t *cmdtp, int flag,
  656. int argc, char * const argv[])
  657. {
  658. struct mmc *mmc;
  659. u32 val;
  660. int ret;
  661. if (argc != 2)
  662. return CMD_RET_USAGE;
  663. val = simple_strtoul(argv[2], NULL, 16);
  664. mmc = find_mmc_device(curr_device);
  665. if (!mmc) {
  666. printf("no mmc device at slot %x\n", curr_device);
  667. return CMD_RET_FAILURE;
  668. }
  669. ret = mmc_set_dsr(mmc, val);
  670. printf("set dsr %s\n", (!ret) ? "OK, force rescan" : "ERROR");
  671. if (!ret) {
  672. mmc->has_init = 0;
  673. if (mmc_init(mmc))
  674. return CMD_RET_FAILURE;
  675. else
  676. return CMD_RET_SUCCESS;
  677. }
  678. return ret;
  679. }
  680. static cmd_tbl_t cmd_mmc[] = {
  681. U_BOOT_CMD_MKENT(info, 1, 0, do_mmcinfo, "", ""),
  682. U_BOOT_CMD_MKENT(read, 4, 1, do_mmc_read, "", ""),
  683. U_BOOT_CMD_MKENT(write, 4, 0, do_mmc_write, "", ""),
  684. U_BOOT_CMD_MKENT(erase, 3, 0, do_mmc_erase, "", ""),
  685. U_BOOT_CMD_MKENT(rescan, 1, 1, do_mmc_rescan, "", ""),
  686. U_BOOT_CMD_MKENT(part, 1, 1, do_mmc_part, "", ""),
  687. U_BOOT_CMD_MKENT(dev, 3, 0, do_mmc_dev, "", ""),
  688. U_BOOT_CMD_MKENT(list, 1, 1, do_mmc_list, "", ""),
  689. U_BOOT_CMD_MKENT(hwpartition, 28, 0, do_mmc_hwpartition, "", ""),
  690. #ifdef CONFIG_SUPPORT_EMMC_BOOT
  691. U_BOOT_CMD_MKENT(bootbus, 5, 0, do_mmc_bootbus, "", ""),
  692. U_BOOT_CMD_MKENT(bootpart-resize, 4, 0, do_mmc_boot_resize, "", ""),
  693. U_BOOT_CMD_MKENT(partconf, 5, 0, do_mmc_partconf, "", ""),
  694. U_BOOT_CMD_MKENT(rst-function, 3, 0, do_mmc_rst_func, "", ""),
  695. #endif
  696. #ifdef CONFIG_SUPPORT_EMMC_RPMB
  697. U_BOOT_CMD_MKENT(rpmb, CONFIG_SYS_MAXARGS, 1, do_mmcrpmb, "", ""),
  698. #endif
  699. U_BOOT_CMD_MKENT(setdsr, 2, 0, do_mmc_setdsr, "", ""),
  700. };
  701. static int do_mmcops(cmd_tbl_t *cmdtp, int flag, int argc, char * const argv[])
  702. {
  703. cmd_tbl_t *cp;
  704. cp = find_cmd_tbl(argv[1], cmd_mmc, ARRAY_SIZE(cmd_mmc));
  705. /* Drop the mmc command */
  706. argc--;
  707. argv++;
  708. if (cp == NULL || argc > cp->maxargs)
  709. return CMD_RET_USAGE;
  710. if (flag == CMD_FLAG_REPEAT && !cp->repeatable)
  711. return CMD_RET_SUCCESS;
  712. if (curr_device < 0) {
  713. if (get_mmc_num() > 0) {
  714. curr_device = 0;
  715. } else {
  716. puts("No MMC device available\n");
  717. return CMD_RET_FAILURE;
  718. }
  719. }
  720. return cp->cmd(cmdtp, flag, argc, argv);
  721. }
  722. U_BOOT_CMD(
  723. mmc, 29, 1, do_mmcops,
  724. "MMC sub system",
  725. "info - display info of the current MMC device\n"
  726. "mmc read addr blk# cnt\n"
  727. "mmc write addr blk# cnt\n"
  728. "mmc erase blk# cnt\n"
  729. "mmc rescan\n"
  730. "mmc part - lists available partition on current mmc device\n"
  731. "mmc dev [dev] [part] - show or set current mmc device [partition]\n"
  732. "mmc list - lists available devices\n"
  733. "mmc hwpartition [args...] - does hardware partitioning\n"
  734. " arguments (sizes in 512-byte blocks):\n"
  735. " [user [enh start cnt] [wrrel {on|off}]] - sets user data area attributes\n"
  736. " [gp1|gp2|gp3|gp4 cnt [enh] [wrrel {on|off}]] - general purpose partition\n"
  737. " [check|set|complete] - mode, complete set partitioning completed\n"
  738. " WARNING: Partitioning is a write-once setting once it is set to complete.\n"
  739. " Power cycling is required to initialize partitions after set to complete.\n"
  740. #ifdef CONFIG_SUPPORT_EMMC_BOOT
  741. "mmc bootbus dev boot_bus_width reset_boot_bus_width boot_mode\n"
  742. " - Set the BOOT_BUS_WIDTH field of the specified device\n"
  743. "mmc bootpart-resize <dev> <boot part size MB> <RPMB part size MB>\n"
  744. " - Change sizes of boot and RPMB partitions of specified device\n"
  745. "mmc partconf dev boot_ack boot_partition partition_access\n"
  746. " - Change the bits of the PARTITION_CONFIG field of the specified device\n"
  747. "mmc rst-function dev value\n"
  748. " - Change the RST_n_FUNCTION field of the specified device\n"
  749. " WARNING: This is a write-once field and 0 / 1 / 2 are the only valid values.\n"
  750. #endif
  751. #ifdef CONFIG_SUPPORT_EMMC_RPMB
  752. "mmc rpmb read addr blk# cnt [address of auth-key] - block size is 256 bytes\n"
  753. "mmc rpmb write addr blk# cnt <address of auth-key> - block size is 256 bytes\n"
  754. "mmc rpmb key <address of auth-key> - program the RPMB authentication key.\n"
  755. "mmc rpmb counter - read the value of the write counter\n"
  756. #endif
  757. "mmc setdsr <value> - set DSR register value\n"
  758. );
  759. /* Old command kept for compatibility. Same as 'mmc info' */
  760. U_BOOT_CMD(
  761. mmcinfo, 1, 0, do_mmcinfo,
  762. "display MMC info",
  763. "- display info of the current MMC device"
  764. );
  765. #endif /* !CONFIG_GENERIC_MMC */