mmc.c 59 KB

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  1. /*
  2. * linux/drivers/mmc/core/mmc.c
  3. *
  4. * Copyright (C) 2003-2004 Russell King, All Rights Reserved.
  5. * Copyright (C) 2005-2007 Pierre Ossman, All Rights Reserved.
  6. * MMCv4 support Copyright (C) 2006 Philip Langdale, All Rights Reserved.
  7. *
  8. * This program is free software; you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License version 2 as
  10. * published by the Free Software Foundation.
  11. */
  12. #include <linux/err.h>
  13. #include <linux/of.h>
  14. #include <linux/slab.h>
  15. #include <linux/stat.h>
  16. #include <linux/pm_runtime.h>
  17. #include <linux/mmc/host.h>
  18. #include <linux/mmc/card.h>
  19. #include <linux/mmc/mmc.h>
  20. #include "core.h"
  21. #include "card.h"
  22. #include "host.h"
  23. #include "bus.h"
  24. #include "mmc_ops.h"
  25. #include "quirks.h"
  26. #include "sd_ops.h"
  27. #include "pwrseq.h"
  28. #define DEFAULT_CMD6_TIMEOUT_MS 500
  29. static const unsigned int tran_exp[] = {
  30. 10000, 100000, 1000000, 10000000,
  31. 0, 0, 0, 0
  32. };
  33. static const unsigned char tran_mant[] = {
  34. 0, 10, 12, 13, 15, 20, 25, 30,
  35. 35, 40, 45, 50, 55, 60, 70, 80,
  36. };
  37. static const unsigned int taac_exp[] = {
  38. 1, 10, 100, 1000, 10000, 100000, 1000000, 10000000,
  39. };
  40. static const unsigned int taac_mant[] = {
  41. 0, 10, 12, 13, 15, 20, 25, 30,
  42. 35, 40, 45, 50, 55, 60, 70, 80,
  43. };
  44. #define UNSTUFF_BITS(resp,start,size) \
  45. ({ \
  46. const int __size = size; \
  47. const u32 __mask = (__size < 32 ? 1 << __size : 0) - 1; \
  48. const int __off = 3 - ((start) / 32); \
  49. const int __shft = (start) & 31; \
  50. u32 __res; \
  51. \
  52. __res = resp[__off] >> __shft; \
  53. if (__size + __shft > 32) \
  54. __res |= resp[__off-1] << ((32 - __shft) % 32); \
  55. __res & __mask; \
  56. })
  57. /*
  58. * Given the decoded CSD structure, decode the raw CID to our CID structure.
  59. */
  60. static int mmc_decode_cid(struct mmc_card *card)
  61. {
  62. u32 *resp = card->raw_cid;
  63. /*
  64. * The selection of the format here is based upon published
  65. * specs from sandisk and from what people have reported.
  66. */
  67. switch (card->csd.mmca_vsn) {
  68. case 0: /* MMC v1.0 - v1.2 */
  69. case 1: /* MMC v1.4 */
  70. card->cid.manfid = UNSTUFF_BITS(resp, 104, 24);
  71. card->cid.prod_name[0] = UNSTUFF_BITS(resp, 96, 8);
  72. card->cid.prod_name[1] = UNSTUFF_BITS(resp, 88, 8);
  73. card->cid.prod_name[2] = UNSTUFF_BITS(resp, 80, 8);
  74. card->cid.prod_name[3] = UNSTUFF_BITS(resp, 72, 8);
  75. card->cid.prod_name[4] = UNSTUFF_BITS(resp, 64, 8);
  76. card->cid.prod_name[5] = UNSTUFF_BITS(resp, 56, 8);
  77. card->cid.prod_name[6] = UNSTUFF_BITS(resp, 48, 8);
  78. card->cid.hwrev = UNSTUFF_BITS(resp, 44, 4);
  79. card->cid.fwrev = UNSTUFF_BITS(resp, 40, 4);
  80. card->cid.serial = UNSTUFF_BITS(resp, 16, 24);
  81. card->cid.month = UNSTUFF_BITS(resp, 12, 4);
  82. card->cid.year = UNSTUFF_BITS(resp, 8, 4) + 1997;
  83. break;
  84. case 2: /* MMC v2.0 - v2.2 */
  85. case 3: /* MMC v3.1 - v3.3 */
  86. case 4: /* MMC v4 */
  87. card->cid.manfid = UNSTUFF_BITS(resp, 120, 8);
  88. card->cid.oemid = UNSTUFF_BITS(resp, 104, 16);
  89. card->cid.prod_name[0] = UNSTUFF_BITS(resp, 96, 8);
  90. card->cid.prod_name[1] = UNSTUFF_BITS(resp, 88, 8);
  91. card->cid.prod_name[2] = UNSTUFF_BITS(resp, 80, 8);
  92. card->cid.prod_name[3] = UNSTUFF_BITS(resp, 72, 8);
  93. card->cid.prod_name[4] = UNSTUFF_BITS(resp, 64, 8);
  94. card->cid.prod_name[5] = UNSTUFF_BITS(resp, 56, 8);
  95. card->cid.prv = UNSTUFF_BITS(resp, 48, 8);
  96. card->cid.serial = UNSTUFF_BITS(resp, 16, 32);
  97. card->cid.month = UNSTUFF_BITS(resp, 12, 4);
  98. card->cid.year = UNSTUFF_BITS(resp, 8, 4) + 1997;
  99. break;
  100. default:
  101. pr_err("%s: card has unknown MMCA version %d\n",
  102. mmc_hostname(card->host), card->csd.mmca_vsn);
  103. return -EINVAL;
  104. }
  105. return 0;
  106. }
  107. static void mmc_set_erase_size(struct mmc_card *card)
  108. {
  109. if (card->ext_csd.erase_group_def & 1)
  110. card->erase_size = card->ext_csd.hc_erase_size;
  111. else
  112. card->erase_size = card->csd.erase_size;
  113. mmc_init_erase(card);
  114. }
  115. /*
  116. * Given a 128-bit response, decode to our card CSD structure.
  117. */
  118. static int mmc_decode_csd(struct mmc_card *card)
  119. {
  120. struct mmc_csd *csd = &card->csd;
  121. unsigned int e, m, a, b;
  122. u32 *resp = card->raw_csd;
  123. /*
  124. * We only understand CSD structure v1.1 and v1.2.
  125. * v1.2 has extra information in bits 15, 11 and 10.
  126. * We also support eMMC v4.4 & v4.41.
  127. */
  128. csd->structure = UNSTUFF_BITS(resp, 126, 2);
  129. if (csd->structure == 0) {
  130. pr_err("%s: unrecognised CSD structure version %d\n",
  131. mmc_hostname(card->host), csd->structure);
  132. return -EINVAL;
  133. }
  134. csd->mmca_vsn = UNSTUFF_BITS(resp, 122, 4);
  135. m = UNSTUFF_BITS(resp, 115, 4);
  136. e = UNSTUFF_BITS(resp, 112, 3);
  137. csd->taac_ns = (taac_exp[e] * taac_mant[m] + 9) / 10;
  138. csd->taac_clks = UNSTUFF_BITS(resp, 104, 8) * 100;
  139. m = UNSTUFF_BITS(resp, 99, 4);
  140. e = UNSTUFF_BITS(resp, 96, 3);
  141. csd->max_dtr = tran_exp[e] * tran_mant[m];
  142. csd->cmdclass = UNSTUFF_BITS(resp, 84, 12);
  143. e = UNSTUFF_BITS(resp, 47, 3);
  144. m = UNSTUFF_BITS(resp, 62, 12);
  145. csd->capacity = (1 + m) << (e + 2);
  146. csd->read_blkbits = UNSTUFF_BITS(resp, 80, 4);
  147. csd->read_partial = UNSTUFF_BITS(resp, 79, 1);
  148. csd->write_misalign = UNSTUFF_BITS(resp, 78, 1);
  149. csd->read_misalign = UNSTUFF_BITS(resp, 77, 1);
  150. csd->dsr_imp = UNSTUFF_BITS(resp, 76, 1);
  151. csd->r2w_factor = UNSTUFF_BITS(resp, 26, 3);
  152. csd->write_blkbits = UNSTUFF_BITS(resp, 22, 4);
  153. csd->write_partial = UNSTUFF_BITS(resp, 21, 1);
  154. if (csd->write_blkbits >= 9) {
  155. a = UNSTUFF_BITS(resp, 42, 5);
  156. b = UNSTUFF_BITS(resp, 37, 5);
  157. csd->erase_size = (a + 1) * (b + 1);
  158. csd->erase_size <<= csd->write_blkbits - 9;
  159. }
  160. return 0;
  161. }
  162. static void mmc_select_card_type(struct mmc_card *card)
  163. {
  164. struct mmc_host *host = card->host;
  165. u8 card_type = card->ext_csd.raw_card_type;
  166. u32 caps = host->caps, caps2 = host->caps2;
  167. unsigned int hs_max_dtr = 0, hs200_max_dtr = 0;
  168. unsigned int avail_type = 0;
  169. if (caps & MMC_CAP_MMC_HIGHSPEED &&
  170. card_type & EXT_CSD_CARD_TYPE_HS_26) {
  171. hs_max_dtr = MMC_HIGH_26_MAX_DTR;
  172. avail_type |= EXT_CSD_CARD_TYPE_HS_26;
  173. }
  174. if (caps & MMC_CAP_MMC_HIGHSPEED &&
  175. card_type & EXT_CSD_CARD_TYPE_HS_52) {
  176. hs_max_dtr = MMC_HIGH_52_MAX_DTR;
  177. avail_type |= EXT_CSD_CARD_TYPE_HS_52;
  178. }
  179. if (caps & (MMC_CAP_1_8V_DDR | MMC_CAP_3_3V_DDR) &&
  180. card_type & EXT_CSD_CARD_TYPE_DDR_1_8V) {
  181. hs_max_dtr = MMC_HIGH_DDR_MAX_DTR;
  182. avail_type |= EXT_CSD_CARD_TYPE_DDR_1_8V;
  183. }
  184. if (caps & MMC_CAP_1_2V_DDR &&
  185. card_type & EXT_CSD_CARD_TYPE_DDR_1_2V) {
  186. hs_max_dtr = MMC_HIGH_DDR_MAX_DTR;
  187. avail_type |= EXT_CSD_CARD_TYPE_DDR_1_2V;
  188. }
  189. if (caps2 & MMC_CAP2_HS200_1_8V_SDR &&
  190. card_type & EXT_CSD_CARD_TYPE_HS200_1_8V) {
  191. hs200_max_dtr = MMC_HS200_MAX_DTR;
  192. avail_type |= EXT_CSD_CARD_TYPE_HS200_1_8V;
  193. }
  194. if (caps2 & MMC_CAP2_HS200_1_2V_SDR &&
  195. card_type & EXT_CSD_CARD_TYPE_HS200_1_2V) {
  196. hs200_max_dtr = MMC_HS200_MAX_DTR;
  197. avail_type |= EXT_CSD_CARD_TYPE_HS200_1_2V;
  198. }
  199. if (caps2 & MMC_CAP2_HS400_1_8V &&
  200. card_type & EXT_CSD_CARD_TYPE_HS400_1_8V) {
  201. hs200_max_dtr = MMC_HS200_MAX_DTR;
  202. avail_type |= EXT_CSD_CARD_TYPE_HS400_1_8V;
  203. }
  204. if (caps2 & MMC_CAP2_HS400_1_2V &&
  205. card_type & EXT_CSD_CARD_TYPE_HS400_1_2V) {
  206. hs200_max_dtr = MMC_HS200_MAX_DTR;
  207. avail_type |= EXT_CSD_CARD_TYPE_HS400_1_2V;
  208. }
  209. if ((caps2 & MMC_CAP2_HS400_ES) &&
  210. card->ext_csd.strobe_support &&
  211. (avail_type & EXT_CSD_CARD_TYPE_HS400))
  212. avail_type |= EXT_CSD_CARD_TYPE_HS400ES;
  213. card->ext_csd.hs_max_dtr = hs_max_dtr;
  214. card->ext_csd.hs200_max_dtr = hs200_max_dtr;
  215. card->mmc_avail_type = avail_type;
  216. }
  217. static void mmc_manage_enhanced_area(struct mmc_card *card, u8 *ext_csd)
  218. {
  219. u8 hc_erase_grp_sz, hc_wp_grp_sz;
  220. /*
  221. * Disable these attributes by default
  222. */
  223. card->ext_csd.enhanced_area_offset = -EINVAL;
  224. card->ext_csd.enhanced_area_size = -EINVAL;
  225. /*
  226. * Enhanced area feature support -- check whether the eMMC
  227. * card has the Enhanced area enabled. If so, export enhanced
  228. * area offset and size to user by adding sysfs interface.
  229. */
  230. if ((ext_csd[EXT_CSD_PARTITION_SUPPORT] & 0x2) &&
  231. (ext_csd[EXT_CSD_PARTITION_ATTRIBUTE] & 0x1)) {
  232. if (card->ext_csd.partition_setting_completed) {
  233. hc_erase_grp_sz =
  234. ext_csd[EXT_CSD_HC_ERASE_GRP_SIZE];
  235. hc_wp_grp_sz =
  236. ext_csd[EXT_CSD_HC_WP_GRP_SIZE];
  237. /*
  238. * calculate the enhanced data area offset, in bytes
  239. */
  240. card->ext_csd.enhanced_area_offset =
  241. (((unsigned long long)ext_csd[139]) << 24) +
  242. (((unsigned long long)ext_csd[138]) << 16) +
  243. (((unsigned long long)ext_csd[137]) << 8) +
  244. (((unsigned long long)ext_csd[136]));
  245. if (mmc_card_blockaddr(card))
  246. card->ext_csd.enhanced_area_offset <<= 9;
  247. /*
  248. * calculate the enhanced data area size, in kilobytes
  249. */
  250. card->ext_csd.enhanced_area_size =
  251. (ext_csd[142] << 16) + (ext_csd[141] << 8) +
  252. ext_csd[140];
  253. card->ext_csd.enhanced_area_size *=
  254. (size_t)(hc_erase_grp_sz * hc_wp_grp_sz);
  255. card->ext_csd.enhanced_area_size <<= 9;
  256. } else {
  257. pr_warn("%s: defines enhanced area without partition setting complete\n",
  258. mmc_hostname(card->host));
  259. }
  260. }
  261. }
  262. static void mmc_part_add(struct mmc_card *card, unsigned int size,
  263. unsigned int part_cfg, char *name, int idx, bool ro,
  264. int area_type)
  265. {
  266. card->part[card->nr_parts].size = size;
  267. card->part[card->nr_parts].part_cfg = part_cfg;
  268. sprintf(card->part[card->nr_parts].name, name, idx);
  269. card->part[card->nr_parts].force_ro = ro;
  270. card->part[card->nr_parts].area_type = area_type;
  271. card->nr_parts++;
  272. }
  273. static void mmc_manage_gp_partitions(struct mmc_card *card, u8 *ext_csd)
  274. {
  275. int idx;
  276. u8 hc_erase_grp_sz, hc_wp_grp_sz;
  277. unsigned int part_size;
  278. /*
  279. * General purpose partition feature support --
  280. * If ext_csd has the size of general purpose partitions,
  281. * set size, part_cfg, partition name in mmc_part.
  282. */
  283. if (ext_csd[EXT_CSD_PARTITION_SUPPORT] &
  284. EXT_CSD_PART_SUPPORT_PART_EN) {
  285. hc_erase_grp_sz =
  286. ext_csd[EXT_CSD_HC_ERASE_GRP_SIZE];
  287. hc_wp_grp_sz =
  288. ext_csd[EXT_CSD_HC_WP_GRP_SIZE];
  289. for (idx = 0; idx < MMC_NUM_GP_PARTITION; idx++) {
  290. if (!ext_csd[EXT_CSD_GP_SIZE_MULT + idx * 3] &&
  291. !ext_csd[EXT_CSD_GP_SIZE_MULT + idx * 3 + 1] &&
  292. !ext_csd[EXT_CSD_GP_SIZE_MULT + idx * 3 + 2])
  293. continue;
  294. if (card->ext_csd.partition_setting_completed == 0) {
  295. pr_warn("%s: has partition size defined without partition complete\n",
  296. mmc_hostname(card->host));
  297. break;
  298. }
  299. part_size =
  300. (ext_csd[EXT_CSD_GP_SIZE_MULT + idx * 3 + 2]
  301. << 16) +
  302. (ext_csd[EXT_CSD_GP_SIZE_MULT + idx * 3 + 1]
  303. << 8) +
  304. ext_csd[EXT_CSD_GP_SIZE_MULT + idx * 3];
  305. part_size *= (size_t)(hc_erase_grp_sz *
  306. hc_wp_grp_sz);
  307. mmc_part_add(card, part_size << 19,
  308. EXT_CSD_PART_CONFIG_ACC_GP0 + idx,
  309. "gp%d", idx, false,
  310. MMC_BLK_DATA_AREA_GP);
  311. }
  312. }
  313. }
  314. /* Minimum partition switch timeout in milliseconds */
  315. #define MMC_MIN_PART_SWITCH_TIME 300
  316. /*
  317. * Decode extended CSD.
  318. */
  319. static int mmc_decode_ext_csd(struct mmc_card *card, u8 *ext_csd)
  320. {
  321. int err = 0, idx;
  322. unsigned int part_size;
  323. struct device_node *np;
  324. bool broken_hpi = false;
  325. /* Version is coded in the CSD_STRUCTURE byte in the EXT_CSD register */
  326. card->ext_csd.raw_ext_csd_structure = ext_csd[EXT_CSD_STRUCTURE];
  327. if (card->csd.structure == 3) {
  328. if (card->ext_csd.raw_ext_csd_structure > 2) {
  329. pr_err("%s: unrecognised EXT_CSD structure "
  330. "version %d\n", mmc_hostname(card->host),
  331. card->ext_csd.raw_ext_csd_structure);
  332. err = -EINVAL;
  333. goto out;
  334. }
  335. }
  336. np = mmc_of_find_child_device(card->host, 0);
  337. if (np && of_device_is_compatible(np, "mmc-card"))
  338. broken_hpi = of_property_read_bool(np, "broken-hpi");
  339. of_node_put(np);
  340. /*
  341. * The EXT_CSD format is meant to be forward compatible. As long
  342. * as CSD_STRUCTURE does not change, all values for EXT_CSD_REV
  343. * are authorized, see JEDEC JESD84-B50 section B.8.
  344. */
  345. card->ext_csd.rev = ext_csd[EXT_CSD_REV];
  346. /* fixup device after ext_csd revision field is updated */
  347. mmc_fixup_device(card, mmc_ext_csd_fixups);
  348. card->ext_csd.raw_sectors[0] = ext_csd[EXT_CSD_SEC_CNT + 0];
  349. card->ext_csd.raw_sectors[1] = ext_csd[EXT_CSD_SEC_CNT + 1];
  350. card->ext_csd.raw_sectors[2] = ext_csd[EXT_CSD_SEC_CNT + 2];
  351. card->ext_csd.raw_sectors[3] = ext_csd[EXT_CSD_SEC_CNT + 3];
  352. if (card->ext_csd.rev >= 2) {
  353. card->ext_csd.sectors =
  354. ext_csd[EXT_CSD_SEC_CNT + 0] << 0 |
  355. ext_csd[EXT_CSD_SEC_CNT + 1] << 8 |
  356. ext_csd[EXT_CSD_SEC_CNT + 2] << 16 |
  357. ext_csd[EXT_CSD_SEC_CNT + 3] << 24;
  358. /* Cards with density > 2GiB are sector addressed */
  359. if (card->ext_csd.sectors > (2u * 1024 * 1024 * 1024) / 512)
  360. mmc_card_set_blockaddr(card);
  361. }
  362. card->ext_csd.strobe_support = ext_csd[EXT_CSD_STROBE_SUPPORT];
  363. card->ext_csd.raw_card_type = ext_csd[EXT_CSD_CARD_TYPE];
  364. mmc_select_card_type(card);
  365. card->ext_csd.raw_s_a_timeout = ext_csd[EXT_CSD_S_A_TIMEOUT];
  366. card->ext_csd.raw_erase_timeout_mult =
  367. ext_csd[EXT_CSD_ERASE_TIMEOUT_MULT];
  368. card->ext_csd.raw_hc_erase_grp_size =
  369. ext_csd[EXT_CSD_HC_ERASE_GRP_SIZE];
  370. if (card->ext_csd.rev >= 3) {
  371. u8 sa_shift = ext_csd[EXT_CSD_S_A_TIMEOUT];
  372. card->ext_csd.part_config = ext_csd[EXT_CSD_PART_CONFIG];
  373. /* EXT_CSD value is in units of 10ms, but we store in ms */
  374. card->ext_csd.part_time = 10 * ext_csd[EXT_CSD_PART_SWITCH_TIME];
  375. /* Some eMMC set the value too low so set a minimum */
  376. if (card->ext_csd.part_time &&
  377. card->ext_csd.part_time < MMC_MIN_PART_SWITCH_TIME)
  378. card->ext_csd.part_time = MMC_MIN_PART_SWITCH_TIME;
  379. /* Sleep / awake timeout in 100ns units */
  380. if (sa_shift > 0 && sa_shift <= 0x17)
  381. card->ext_csd.sa_timeout =
  382. 1 << ext_csd[EXT_CSD_S_A_TIMEOUT];
  383. card->ext_csd.erase_group_def =
  384. ext_csd[EXT_CSD_ERASE_GROUP_DEF];
  385. card->ext_csd.hc_erase_timeout = 300 *
  386. ext_csd[EXT_CSD_ERASE_TIMEOUT_MULT];
  387. card->ext_csd.hc_erase_size =
  388. ext_csd[EXT_CSD_HC_ERASE_GRP_SIZE] << 10;
  389. card->ext_csd.rel_sectors = ext_csd[EXT_CSD_REL_WR_SEC_C];
  390. /*
  391. * There are two boot regions of equal size, defined in
  392. * multiples of 128K.
  393. */
  394. if (ext_csd[EXT_CSD_BOOT_MULT] && mmc_boot_partition_access(card->host)) {
  395. for (idx = 0; idx < MMC_NUM_BOOT_PARTITION; idx++) {
  396. part_size = ext_csd[EXT_CSD_BOOT_MULT] << 17;
  397. mmc_part_add(card, part_size,
  398. EXT_CSD_PART_CONFIG_ACC_BOOT0 + idx,
  399. "boot%d", idx, true,
  400. MMC_BLK_DATA_AREA_BOOT);
  401. }
  402. }
  403. }
  404. card->ext_csd.raw_hc_erase_gap_size =
  405. ext_csd[EXT_CSD_HC_WP_GRP_SIZE];
  406. card->ext_csd.raw_sec_trim_mult =
  407. ext_csd[EXT_CSD_SEC_TRIM_MULT];
  408. card->ext_csd.raw_sec_erase_mult =
  409. ext_csd[EXT_CSD_SEC_ERASE_MULT];
  410. card->ext_csd.raw_sec_feature_support =
  411. ext_csd[EXT_CSD_SEC_FEATURE_SUPPORT];
  412. card->ext_csd.raw_trim_mult =
  413. ext_csd[EXT_CSD_TRIM_MULT];
  414. card->ext_csd.raw_partition_support = ext_csd[EXT_CSD_PARTITION_SUPPORT];
  415. card->ext_csd.raw_driver_strength = ext_csd[EXT_CSD_DRIVER_STRENGTH];
  416. if (card->ext_csd.rev >= 4) {
  417. if (ext_csd[EXT_CSD_PARTITION_SETTING_COMPLETED] &
  418. EXT_CSD_PART_SETTING_COMPLETED)
  419. card->ext_csd.partition_setting_completed = 1;
  420. else
  421. card->ext_csd.partition_setting_completed = 0;
  422. mmc_manage_enhanced_area(card, ext_csd);
  423. mmc_manage_gp_partitions(card, ext_csd);
  424. card->ext_csd.sec_trim_mult =
  425. ext_csd[EXT_CSD_SEC_TRIM_MULT];
  426. card->ext_csd.sec_erase_mult =
  427. ext_csd[EXT_CSD_SEC_ERASE_MULT];
  428. card->ext_csd.sec_feature_support =
  429. ext_csd[EXT_CSD_SEC_FEATURE_SUPPORT];
  430. card->ext_csd.trim_timeout = 300 *
  431. ext_csd[EXT_CSD_TRIM_MULT];
  432. /*
  433. * Note that the call to mmc_part_add above defaults to read
  434. * only. If this default assumption is changed, the call must
  435. * take into account the value of boot_locked below.
  436. */
  437. card->ext_csd.boot_ro_lock = ext_csd[EXT_CSD_BOOT_WP];
  438. card->ext_csd.boot_ro_lockable = true;
  439. /* Save power class values */
  440. card->ext_csd.raw_pwr_cl_52_195 =
  441. ext_csd[EXT_CSD_PWR_CL_52_195];
  442. card->ext_csd.raw_pwr_cl_26_195 =
  443. ext_csd[EXT_CSD_PWR_CL_26_195];
  444. card->ext_csd.raw_pwr_cl_52_360 =
  445. ext_csd[EXT_CSD_PWR_CL_52_360];
  446. card->ext_csd.raw_pwr_cl_26_360 =
  447. ext_csd[EXT_CSD_PWR_CL_26_360];
  448. card->ext_csd.raw_pwr_cl_200_195 =
  449. ext_csd[EXT_CSD_PWR_CL_200_195];
  450. card->ext_csd.raw_pwr_cl_200_360 =
  451. ext_csd[EXT_CSD_PWR_CL_200_360];
  452. card->ext_csd.raw_pwr_cl_ddr_52_195 =
  453. ext_csd[EXT_CSD_PWR_CL_DDR_52_195];
  454. card->ext_csd.raw_pwr_cl_ddr_52_360 =
  455. ext_csd[EXT_CSD_PWR_CL_DDR_52_360];
  456. card->ext_csd.raw_pwr_cl_ddr_200_360 =
  457. ext_csd[EXT_CSD_PWR_CL_DDR_200_360];
  458. }
  459. if (card->ext_csd.rev >= 5) {
  460. /* Adjust production date as per JEDEC JESD84-B451 */
  461. if (card->cid.year < 2010)
  462. card->cid.year += 16;
  463. /* check whether the eMMC card supports BKOPS */
  464. if (!mmc_card_broken_hpi(card) &&
  465. ext_csd[EXT_CSD_BKOPS_SUPPORT] & 0x1) {
  466. card->ext_csd.bkops = 1;
  467. card->ext_csd.man_bkops_en =
  468. (ext_csd[EXT_CSD_BKOPS_EN] &
  469. EXT_CSD_MANUAL_BKOPS_MASK);
  470. card->ext_csd.raw_bkops_status =
  471. ext_csd[EXT_CSD_BKOPS_STATUS];
  472. if (card->ext_csd.man_bkops_en)
  473. pr_debug("%s: MAN_BKOPS_EN bit is set\n",
  474. mmc_hostname(card->host));
  475. card->ext_csd.auto_bkops_en =
  476. (ext_csd[EXT_CSD_BKOPS_EN] &
  477. EXT_CSD_AUTO_BKOPS_MASK);
  478. if (card->ext_csd.auto_bkops_en)
  479. pr_debug("%s: AUTO_BKOPS_EN bit is set\n",
  480. mmc_hostname(card->host));
  481. }
  482. /* check whether the eMMC card supports HPI */
  483. if (!mmc_card_broken_hpi(card) &&
  484. !broken_hpi && (ext_csd[EXT_CSD_HPI_FEATURES] & 0x1)) {
  485. card->ext_csd.hpi = 1;
  486. if (ext_csd[EXT_CSD_HPI_FEATURES] & 0x2)
  487. card->ext_csd.hpi_cmd = MMC_STOP_TRANSMISSION;
  488. else
  489. card->ext_csd.hpi_cmd = MMC_SEND_STATUS;
  490. /*
  491. * Indicate the maximum timeout to close
  492. * a command interrupted by HPI
  493. */
  494. card->ext_csd.out_of_int_time =
  495. ext_csd[EXT_CSD_OUT_OF_INTERRUPT_TIME] * 10;
  496. }
  497. card->ext_csd.rel_param = ext_csd[EXT_CSD_WR_REL_PARAM];
  498. card->ext_csd.rst_n_function = ext_csd[EXT_CSD_RST_N_FUNCTION];
  499. /*
  500. * RPMB regions are defined in multiples of 128K.
  501. */
  502. card->ext_csd.raw_rpmb_size_mult = ext_csd[EXT_CSD_RPMB_MULT];
  503. if (ext_csd[EXT_CSD_RPMB_MULT] && mmc_host_cmd23(card->host)) {
  504. mmc_part_add(card, ext_csd[EXT_CSD_RPMB_MULT] << 17,
  505. EXT_CSD_PART_CONFIG_ACC_RPMB,
  506. "rpmb", 0, false,
  507. MMC_BLK_DATA_AREA_RPMB);
  508. }
  509. }
  510. card->ext_csd.raw_erased_mem_count = ext_csd[EXT_CSD_ERASED_MEM_CONT];
  511. if (ext_csd[EXT_CSD_ERASED_MEM_CONT])
  512. card->erased_byte = 0xFF;
  513. else
  514. card->erased_byte = 0x0;
  515. /* eMMC v4.5 or later */
  516. card->ext_csd.generic_cmd6_time = DEFAULT_CMD6_TIMEOUT_MS;
  517. if (card->ext_csd.rev >= 6) {
  518. card->ext_csd.feature_support |= MMC_DISCARD_FEATURE;
  519. card->ext_csd.generic_cmd6_time = 10 *
  520. ext_csd[EXT_CSD_GENERIC_CMD6_TIME];
  521. card->ext_csd.power_off_longtime = 10 *
  522. ext_csd[EXT_CSD_POWER_OFF_LONG_TIME];
  523. card->ext_csd.cache_size =
  524. ext_csd[EXT_CSD_CACHE_SIZE + 0] << 0 |
  525. ext_csd[EXT_CSD_CACHE_SIZE + 1] << 8 |
  526. ext_csd[EXT_CSD_CACHE_SIZE + 2] << 16 |
  527. ext_csd[EXT_CSD_CACHE_SIZE + 3] << 24;
  528. if (ext_csd[EXT_CSD_DATA_SECTOR_SIZE] == 1)
  529. card->ext_csd.data_sector_size = 4096;
  530. else
  531. card->ext_csd.data_sector_size = 512;
  532. if ((ext_csd[EXT_CSD_DATA_TAG_SUPPORT] & 1) &&
  533. (ext_csd[EXT_CSD_TAG_UNIT_SIZE] <= 8)) {
  534. card->ext_csd.data_tag_unit_size =
  535. ((unsigned int) 1 << ext_csd[EXT_CSD_TAG_UNIT_SIZE]) *
  536. (card->ext_csd.data_sector_size);
  537. } else {
  538. card->ext_csd.data_tag_unit_size = 0;
  539. }
  540. card->ext_csd.max_packed_writes =
  541. ext_csd[EXT_CSD_MAX_PACKED_WRITES];
  542. card->ext_csd.max_packed_reads =
  543. ext_csd[EXT_CSD_MAX_PACKED_READS];
  544. } else {
  545. card->ext_csd.data_sector_size = 512;
  546. }
  547. /* eMMC v5 or later */
  548. if (card->ext_csd.rev >= 7) {
  549. memcpy(card->ext_csd.fwrev, &ext_csd[EXT_CSD_FIRMWARE_VERSION],
  550. MMC_FIRMWARE_LEN);
  551. card->ext_csd.ffu_capable =
  552. (ext_csd[EXT_CSD_SUPPORTED_MODE] & 0x1) &&
  553. !(ext_csd[EXT_CSD_FW_CONFIG] & 0x1);
  554. card->ext_csd.pre_eol_info = ext_csd[EXT_CSD_PRE_EOL_INFO];
  555. card->ext_csd.device_life_time_est_typ_a =
  556. ext_csd[EXT_CSD_DEVICE_LIFE_TIME_EST_TYP_A];
  557. card->ext_csd.device_life_time_est_typ_b =
  558. ext_csd[EXT_CSD_DEVICE_LIFE_TIME_EST_TYP_B];
  559. }
  560. /* eMMC v5.1 or later */
  561. if (card->ext_csd.rev >= 8) {
  562. card->ext_csd.cmdq_support = ext_csd[EXT_CSD_CMDQ_SUPPORT] &
  563. EXT_CSD_CMDQ_SUPPORTED;
  564. card->ext_csd.cmdq_depth = (ext_csd[EXT_CSD_CMDQ_DEPTH] &
  565. EXT_CSD_CMDQ_DEPTH_MASK) + 1;
  566. /* Exclude inefficiently small queue depths */
  567. if (card->ext_csd.cmdq_depth <= 2) {
  568. card->ext_csd.cmdq_support = false;
  569. card->ext_csd.cmdq_depth = 0;
  570. }
  571. if (card->ext_csd.cmdq_support) {
  572. pr_debug("%s: Command Queue supported depth %u\n",
  573. mmc_hostname(card->host),
  574. card->ext_csd.cmdq_depth);
  575. }
  576. }
  577. out:
  578. return err;
  579. }
  580. static int mmc_read_ext_csd(struct mmc_card *card)
  581. {
  582. u8 *ext_csd;
  583. int err;
  584. if (!mmc_can_ext_csd(card))
  585. return 0;
  586. err = mmc_get_ext_csd(card, &ext_csd);
  587. if (err) {
  588. /* If the host or the card can't do the switch,
  589. * fail more gracefully. */
  590. if ((err != -EINVAL)
  591. && (err != -ENOSYS)
  592. && (err != -EFAULT))
  593. return err;
  594. /*
  595. * High capacity cards should have this "magic" size
  596. * stored in their CSD.
  597. */
  598. if (card->csd.capacity == (4096 * 512)) {
  599. pr_err("%s: unable to read EXT_CSD on a possible high capacity card. Card will be ignored.\n",
  600. mmc_hostname(card->host));
  601. } else {
  602. pr_warn("%s: unable to read EXT_CSD, performance might suffer\n",
  603. mmc_hostname(card->host));
  604. err = 0;
  605. }
  606. return err;
  607. }
  608. err = mmc_decode_ext_csd(card, ext_csd);
  609. kfree(ext_csd);
  610. return err;
  611. }
  612. static int mmc_compare_ext_csds(struct mmc_card *card, unsigned bus_width)
  613. {
  614. u8 *bw_ext_csd;
  615. int err;
  616. if (bus_width == MMC_BUS_WIDTH_1)
  617. return 0;
  618. err = mmc_get_ext_csd(card, &bw_ext_csd);
  619. if (err)
  620. return err;
  621. /* only compare read only fields */
  622. err = !((card->ext_csd.raw_partition_support ==
  623. bw_ext_csd[EXT_CSD_PARTITION_SUPPORT]) &&
  624. (card->ext_csd.raw_erased_mem_count ==
  625. bw_ext_csd[EXT_CSD_ERASED_MEM_CONT]) &&
  626. (card->ext_csd.rev ==
  627. bw_ext_csd[EXT_CSD_REV]) &&
  628. (card->ext_csd.raw_ext_csd_structure ==
  629. bw_ext_csd[EXT_CSD_STRUCTURE]) &&
  630. (card->ext_csd.raw_card_type ==
  631. bw_ext_csd[EXT_CSD_CARD_TYPE]) &&
  632. (card->ext_csd.raw_s_a_timeout ==
  633. bw_ext_csd[EXT_CSD_S_A_TIMEOUT]) &&
  634. (card->ext_csd.raw_hc_erase_gap_size ==
  635. bw_ext_csd[EXT_CSD_HC_WP_GRP_SIZE]) &&
  636. (card->ext_csd.raw_erase_timeout_mult ==
  637. bw_ext_csd[EXT_CSD_ERASE_TIMEOUT_MULT]) &&
  638. (card->ext_csd.raw_hc_erase_grp_size ==
  639. bw_ext_csd[EXT_CSD_HC_ERASE_GRP_SIZE]) &&
  640. (card->ext_csd.raw_sec_trim_mult ==
  641. bw_ext_csd[EXT_CSD_SEC_TRIM_MULT]) &&
  642. (card->ext_csd.raw_sec_erase_mult ==
  643. bw_ext_csd[EXT_CSD_SEC_ERASE_MULT]) &&
  644. (card->ext_csd.raw_sec_feature_support ==
  645. bw_ext_csd[EXT_CSD_SEC_FEATURE_SUPPORT]) &&
  646. (card->ext_csd.raw_trim_mult ==
  647. bw_ext_csd[EXT_CSD_TRIM_MULT]) &&
  648. (card->ext_csd.raw_sectors[0] ==
  649. bw_ext_csd[EXT_CSD_SEC_CNT + 0]) &&
  650. (card->ext_csd.raw_sectors[1] ==
  651. bw_ext_csd[EXT_CSD_SEC_CNT + 1]) &&
  652. (card->ext_csd.raw_sectors[2] ==
  653. bw_ext_csd[EXT_CSD_SEC_CNT + 2]) &&
  654. (card->ext_csd.raw_sectors[3] ==
  655. bw_ext_csd[EXT_CSD_SEC_CNT + 3]) &&
  656. (card->ext_csd.raw_pwr_cl_52_195 ==
  657. bw_ext_csd[EXT_CSD_PWR_CL_52_195]) &&
  658. (card->ext_csd.raw_pwr_cl_26_195 ==
  659. bw_ext_csd[EXT_CSD_PWR_CL_26_195]) &&
  660. (card->ext_csd.raw_pwr_cl_52_360 ==
  661. bw_ext_csd[EXT_CSD_PWR_CL_52_360]) &&
  662. (card->ext_csd.raw_pwr_cl_26_360 ==
  663. bw_ext_csd[EXT_CSD_PWR_CL_26_360]) &&
  664. (card->ext_csd.raw_pwr_cl_200_195 ==
  665. bw_ext_csd[EXT_CSD_PWR_CL_200_195]) &&
  666. (card->ext_csd.raw_pwr_cl_200_360 ==
  667. bw_ext_csd[EXT_CSD_PWR_CL_200_360]) &&
  668. (card->ext_csd.raw_pwr_cl_ddr_52_195 ==
  669. bw_ext_csd[EXT_CSD_PWR_CL_DDR_52_195]) &&
  670. (card->ext_csd.raw_pwr_cl_ddr_52_360 ==
  671. bw_ext_csd[EXT_CSD_PWR_CL_DDR_52_360]) &&
  672. (card->ext_csd.raw_pwr_cl_ddr_200_360 ==
  673. bw_ext_csd[EXT_CSD_PWR_CL_DDR_200_360]));
  674. if (err)
  675. err = -EINVAL;
  676. kfree(bw_ext_csd);
  677. return err;
  678. }
  679. MMC_DEV_ATTR(cid, "%08x%08x%08x%08x\n", card->raw_cid[0], card->raw_cid[1],
  680. card->raw_cid[2], card->raw_cid[3]);
  681. MMC_DEV_ATTR(csd, "%08x%08x%08x%08x\n", card->raw_csd[0], card->raw_csd[1],
  682. card->raw_csd[2], card->raw_csd[3]);
  683. MMC_DEV_ATTR(date, "%02d/%04d\n", card->cid.month, card->cid.year);
  684. MMC_DEV_ATTR(erase_size, "%u\n", card->erase_size << 9);
  685. MMC_DEV_ATTR(preferred_erase_size, "%u\n", card->pref_erase << 9);
  686. MMC_DEV_ATTR(ffu_capable, "%d\n", card->ext_csd.ffu_capable);
  687. MMC_DEV_ATTR(hwrev, "0x%x\n", card->cid.hwrev);
  688. MMC_DEV_ATTR(manfid, "0x%06x\n", card->cid.manfid);
  689. MMC_DEV_ATTR(name, "%s\n", card->cid.prod_name);
  690. MMC_DEV_ATTR(oemid, "0x%04x\n", card->cid.oemid);
  691. MMC_DEV_ATTR(prv, "0x%x\n", card->cid.prv);
  692. MMC_DEV_ATTR(rev, "0x%x\n", card->ext_csd.rev);
  693. MMC_DEV_ATTR(pre_eol_info, "0x%02x\n", card->ext_csd.pre_eol_info);
  694. MMC_DEV_ATTR(life_time, "0x%02x 0x%02x\n",
  695. card->ext_csd.device_life_time_est_typ_a,
  696. card->ext_csd.device_life_time_est_typ_b);
  697. MMC_DEV_ATTR(serial, "0x%08x\n", card->cid.serial);
  698. MMC_DEV_ATTR(enhanced_area_offset, "%llu\n",
  699. card->ext_csd.enhanced_area_offset);
  700. MMC_DEV_ATTR(enhanced_area_size, "%u\n", card->ext_csd.enhanced_area_size);
  701. MMC_DEV_ATTR(raw_rpmb_size_mult, "%#x\n", card->ext_csd.raw_rpmb_size_mult);
  702. MMC_DEV_ATTR(rel_sectors, "%#x\n", card->ext_csd.rel_sectors);
  703. MMC_DEV_ATTR(ocr, "0x%08x\n", card->ocr);
  704. MMC_DEV_ATTR(rca, "0x%04x\n", card->rca);
  705. MMC_DEV_ATTR(cmdq_en, "%d\n", card->ext_csd.cmdq_en);
  706. static ssize_t mmc_fwrev_show(struct device *dev,
  707. struct device_attribute *attr,
  708. char *buf)
  709. {
  710. struct mmc_card *card = mmc_dev_to_card(dev);
  711. if (card->ext_csd.rev < 7) {
  712. return sprintf(buf, "0x%x\n", card->cid.fwrev);
  713. } else {
  714. return sprintf(buf, "0x%*phN\n", MMC_FIRMWARE_LEN,
  715. card->ext_csd.fwrev);
  716. }
  717. }
  718. static DEVICE_ATTR(fwrev, S_IRUGO, mmc_fwrev_show, NULL);
  719. static ssize_t mmc_dsr_show(struct device *dev,
  720. struct device_attribute *attr,
  721. char *buf)
  722. {
  723. struct mmc_card *card = mmc_dev_to_card(dev);
  724. struct mmc_host *host = card->host;
  725. if (card->csd.dsr_imp && host->dsr_req)
  726. return sprintf(buf, "0x%x\n", host->dsr);
  727. else
  728. /* return default DSR value */
  729. return sprintf(buf, "0x%x\n", 0x404);
  730. }
  731. static DEVICE_ATTR(dsr, S_IRUGO, mmc_dsr_show, NULL);
  732. static struct attribute *mmc_std_attrs[] = {
  733. &dev_attr_cid.attr,
  734. &dev_attr_csd.attr,
  735. &dev_attr_date.attr,
  736. &dev_attr_erase_size.attr,
  737. &dev_attr_preferred_erase_size.attr,
  738. &dev_attr_fwrev.attr,
  739. &dev_attr_ffu_capable.attr,
  740. &dev_attr_hwrev.attr,
  741. &dev_attr_manfid.attr,
  742. &dev_attr_name.attr,
  743. &dev_attr_oemid.attr,
  744. &dev_attr_prv.attr,
  745. &dev_attr_rev.attr,
  746. &dev_attr_pre_eol_info.attr,
  747. &dev_attr_life_time.attr,
  748. &dev_attr_serial.attr,
  749. &dev_attr_enhanced_area_offset.attr,
  750. &dev_attr_enhanced_area_size.attr,
  751. &dev_attr_raw_rpmb_size_mult.attr,
  752. &dev_attr_rel_sectors.attr,
  753. &dev_attr_ocr.attr,
  754. &dev_attr_rca.attr,
  755. &dev_attr_dsr.attr,
  756. &dev_attr_cmdq_en.attr,
  757. NULL,
  758. };
  759. ATTRIBUTE_GROUPS(mmc_std);
  760. static struct device_type mmc_type = {
  761. .groups = mmc_std_groups,
  762. };
  763. /*
  764. * Select the PowerClass for the current bus width
  765. * If power class is defined for 4/8 bit bus in the
  766. * extended CSD register, select it by executing the
  767. * mmc_switch command.
  768. */
  769. static int __mmc_select_powerclass(struct mmc_card *card,
  770. unsigned int bus_width)
  771. {
  772. struct mmc_host *host = card->host;
  773. struct mmc_ext_csd *ext_csd = &card->ext_csd;
  774. unsigned int pwrclass_val = 0;
  775. int err = 0;
  776. switch (1 << host->ios.vdd) {
  777. case MMC_VDD_165_195:
  778. if (host->ios.clock <= MMC_HIGH_26_MAX_DTR)
  779. pwrclass_val = ext_csd->raw_pwr_cl_26_195;
  780. else if (host->ios.clock <= MMC_HIGH_52_MAX_DTR)
  781. pwrclass_val = (bus_width <= EXT_CSD_BUS_WIDTH_8) ?
  782. ext_csd->raw_pwr_cl_52_195 :
  783. ext_csd->raw_pwr_cl_ddr_52_195;
  784. else if (host->ios.clock <= MMC_HS200_MAX_DTR)
  785. pwrclass_val = ext_csd->raw_pwr_cl_200_195;
  786. break;
  787. case MMC_VDD_27_28:
  788. case MMC_VDD_28_29:
  789. case MMC_VDD_29_30:
  790. case MMC_VDD_30_31:
  791. case MMC_VDD_31_32:
  792. case MMC_VDD_32_33:
  793. case MMC_VDD_33_34:
  794. case MMC_VDD_34_35:
  795. case MMC_VDD_35_36:
  796. if (host->ios.clock <= MMC_HIGH_26_MAX_DTR)
  797. pwrclass_val = ext_csd->raw_pwr_cl_26_360;
  798. else if (host->ios.clock <= MMC_HIGH_52_MAX_DTR)
  799. pwrclass_val = (bus_width <= EXT_CSD_BUS_WIDTH_8) ?
  800. ext_csd->raw_pwr_cl_52_360 :
  801. ext_csd->raw_pwr_cl_ddr_52_360;
  802. else if (host->ios.clock <= MMC_HS200_MAX_DTR)
  803. pwrclass_val = (bus_width == EXT_CSD_DDR_BUS_WIDTH_8) ?
  804. ext_csd->raw_pwr_cl_ddr_200_360 :
  805. ext_csd->raw_pwr_cl_200_360;
  806. break;
  807. default:
  808. pr_warn("%s: Voltage range not supported for power class\n",
  809. mmc_hostname(host));
  810. return -EINVAL;
  811. }
  812. if (bus_width & (EXT_CSD_BUS_WIDTH_8 | EXT_CSD_DDR_BUS_WIDTH_8))
  813. pwrclass_val = (pwrclass_val & EXT_CSD_PWR_CL_8BIT_MASK) >>
  814. EXT_CSD_PWR_CL_8BIT_SHIFT;
  815. else
  816. pwrclass_val = (pwrclass_val & EXT_CSD_PWR_CL_4BIT_MASK) >>
  817. EXT_CSD_PWR_CL_4BIT_SHIFT;
  818. /* If the power class is different from the default value */
  819. if (pwrclass_val > 0) {
  820. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  821. EXT_CSD_POWER_CLASS,
  822. pwrclass_val,
  823. card->ext_csd.generic_cmd6_time);
  824. }
  825. return err;
  826. }
  827. static int mmc_select_powerclass(struct mmc_card *card)
  828. {
  829. struct mmc_host *host = card->host;
  830. u32 bus_width, ext_csd_bits;
  831. int err, ddr;
  832. /* Power class selection is supported for versions >= 4.0 */
  833. if (!mmc_can_ext_csd(card))
  834. return 0;
  835. bus_width = host->ios.bus_width;
  836. /* Power class values are defined only for 4/8 bit bus */
  837. if (bus_width == MMC_BUS_WIDTH_1)
  838. return 0;
  839. ddr = card->mmc_avail_type & EXT_CSD_CARD_TYPE_DDR_52;
  840. if (ddr)
  841. ext_csd_bits = (bus_width == MMC_BUS_WIDTH_8) ?
  842. EXT_CSD_DDR_BUS_WIDTH_8 : EXT_CSD_DDR_BUS_WIDTH_4;
  843. else
  844. ext_csd_bits = (bus_width == MMC_BUS_WIDTH_8) ?
  845. EXT_CSD_BUS_WIDTH_8 : EXT_CSD_BUS_WIDTH_4;
  846. err = __mmc_select_powerclass(card, ext_csd_bits);
  847. if (err)
  848. pr_warn("%s: power class selection to bus width %d ddr %d failed\n",
  849. mmc_hostname(host), 1 << bus_width, ddr);
  850. return err;
  851. }
  852. /*
  853. * Set the bus speed for the selected speed mode.
  854. */
  855. static void mmc_set_bus_speed(struct mmc_card *card)
  856. {
  857. unsigned int max_dtr = (unsigned int)-1;
  858. if ((mmc_card_hs200(card) || mmc_card_hs400(card)) &&
  859. max_dtr > card->ext_csd.hs200_max_dtr)
  860. max_dtr = card->ext_csd.hs200_max_dtr;
  861. else if (mmc_card_hs(card) && max_dtr > card->ext_csd.hs_max_dtr)
  862. max_dtr = card->ext_csd.hs_max_dtr;
  863. else if (max_dtr > card->csd.max_dtr)
  864. max_dtr = card->csd.max_dtr;
  865. mmc_set_clock(card->host, max_dtr);
  866. }
  867. /*
  868. * Select the bus width amoung 4-bit and 8-bit(SDR).
  869. * If the bus width is changed successfully, return the selected width value.
  870. * Zero is returned instead of error value if the wide width is not supported.
  871. */
  872. static int mmc_select_bus_width(struct mmc_card *card)
  873. {
  874. static unsigned ext_csd_bits[] = {
  875. EXT_CSD_BUS_WIDTH_8,
  876. EXT_CSD_BUS_WIDTH_4,
  877. };
  878. static unsigned bus_widths[] = {
  879. MMC_BUS_WIDTH_8,
  880. MMC_BUS_WIDTH_4,
  881. };
  882. struct mmc_host *host = card->host;
  883. unsigned idx, bus_width = 0;
  884. int err = 0;
  885. if (!mmc_can_ext_csd(card) ||
  886. !(host->caps & (MMC_CAP_4_BIT_DATA | MMC_CAP_8_BIT_DATA)))
  887. return 0;
  888. idx = (host->caps & MMC_CAP_8_BIT_DATA) ? 0 : 1;
  889. /*
  890. * Unlike SD, MMC cards dont have a configuration register to notify
  891. * supported bus width. So bus test command should be run to identify
  892. * the supported bus width or compare the ext csd values of current
  893. * bus width and ext csd values of 1 bit mode read earlier.
  894. */
  895. for (; idx < ARRAY_SIZE(bus_widths); idx++) {
  896. /*
  897. * Host is capable of 8bit transfer, then switch
  898. * the device to work in 8bit transfer mode. If the
  899. * mmc switch command returns error then switch to
  900. * 4bit transfer mode. On success set the corresponding
  901. * bus width on the host.
  902. */
  903. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  904. EXT_CSD_BUS_WIDTH,
  905. ext_csd_bits[idx],
  906. card->ext_csd.generic_cmd6_time);
  907. if (err)
  908. continue;
  909. bus_width = bus_widths[idx];
  910. mmc_set_bus_width(host, bus_width);
  911. /*
  912. * If controller can't handle bus width test,
  913. * compare ext_csd previously read in 1 bit mode
  914. * against ext_csd at new bus width
  915. */
  916. if (!(host->caps & MMC_CAP_BUS_WIDTH_TEST))
  917. err = mmc_compare_ext_csds(card, bus_width);
  918. else
  919. err = mmc_bus_test(card, bus_width);
  920. if (!err) {
  921. err = bus_width;
  922. break;
  923. } else {
  924. pr_warn("%s: switch to bus width %d failed\n",
  925. mmc_hostname(host), 1 << bus_width);
  926. }
  927. }
  928. return err;
  929. }
  930. /*
  931. * Switch to the high-speed mode
  932. */
  933. static int mmc_select_hs(struct mmc_card *card)
  934. {
  935. int err;
  936. err = __mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  937. EXT_CSD_HS_TIMING, EXT_CSD_TIMING_HS,
  938. card->ext_csd.generic_cmd6_time, MMC_TIMING_MMC_HS,
  939. true, true, true);
  940. if (err)
  941. pr_warn("%s: switch to high-speed failed, err:%d\n",
  942. mmc_hostname(card->host), err);
  943. return err;
  944. }
  945. /*
  946. * Activate wide bus and DDR if supported.
  947. */
  948. static int mmc_select_hs_ddr(struct mmc_card *card)
  949. {
  950. struct mmc_host *host = card->host;
  951. u32 bus_width, ext_csd_bits;
  952. int err = 0;
  953. if (!(card->mmc_avail_type & EXT_CSD_CARD_TYPE_DDR_52))
  954. return 0;
  955. bus_width = host->ios.bus_width;
  956. if (bus_width == MMC_BUS_WIDTH_1)
  957. return 0;
  958. ext_csd_bits = (bus_width == MMC_BUS_WIDTH_8) ?
  959. EXT_CSD_DDR_BUS_WIDTH_8 : EXT_CSD_DDR_BUS_WIDTH_4;
  960. err = __mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  961. EXT_CSD_BUS_WIDTH,
  962. ext_csd_bits,
  963. card->ext_csd.generic_cmd6_time,
  964. MMC_TIMING_MMC_DDR52,
  965. true, true, true);
  966. if (err) {
  967. pr_err("%s: switch to bus width %d ddr failed\n",
  968. mmc_hostname(host), 1 << bus_width);
  969. return err;
  970. }
  971. /*
  972. * eMMC cards can support 3.3V to 1.2V i/o (vccq)
  973. * signaling.
  974. *
  975. * EXT_CSD_CARD_TYPE_DDR_1_8V means 3.3V or 1.8V vccq.
  976. *
  977. * 1.8V vccq at 3.3V core voltage (vcc) is not required
  978. * in the JEDEC spec for DDR.
  979. *
  980. * Even (e)MMC card can support 3.3v to 1.2v vccq, but not all
  981. * host controller can support this, like some of the SDHCI
  982. * controller which connect to an eMMC device. Some of these
  983. * host controller still needs to use 1.8v vccq for supporting
  984. * DDR mode.
  985. *
  986. * So the sequence will be:
  987. * if (host and device can both support 1.2v IO)
  988. * use 1.2v IO;
  989. * else if (host and device can both support 1.8v IO)
  990. * use 1.8v IO;
  991. * so if host and device can only support 3.3v IO, this is the
  992. * last choice.
  993. *
  994. * WARNING: eMMC rules are NOT the same as SD DDR
  995. */
  996. if (card->mmc_avail_type & EXT_CSD_CARD_TYPE_DDR_1_2V) {
  997. err = mmc_set_signal_voltage(host, MMC_SIGNAL_VOLTAGE_120);
  998. if (!err)
  999. return 0;
  1000. }
  1001. if (card->mmc_avail_type & EXT_CSD_CARD_TYPE_DDR_1_8V &&
  1002. host->caps & MMC_CAP_1_8V_DDR)
  1003. err = mmc_set_signal_voltage(host, MMC_SIGNAL_VOLTAGE_180);
  1004. /* make sure vccq is 3.3v after switching disaster */
  1005. if (err)
  1006. err = mmc_set_signal_voltage(host, MMC_SIGNAL_VOLTAGE_330);
  1007. return err;
  1008. }
  1009. static int mmc_select_hs400(struct mmc_card *card)
  1010. {
  1011. struct mmc_host *host = card->host;
  1012. unsigned int max_dtr;
  1013. int err = 0;
  1014. u8 val;
  1015. /*
  1016. * HS400 mode requires 8-bit bus width
  1017. */
  1018. if (!(card->mmc_avail_type & EXT_CSD_CARD_TYPE_HS400 &&
  1019. host->ios.bus_width == MMC_BUS_WIDTH_8))
  1020. return 0;
  1021. /* Switch card to HS mode */
  1022. val = EXT_CSD_TIMING_HS;
  1023. err = __mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1024. EXT_CSD_HS_TIMING, val,
  1025. card->ext_csd.generic_cmd6_time, 0,
  1026. true, false, true);
  1027. if (err) {
  1028. pr_err("%s: switch to high-speed from hs200 failed, err:%d\n",
  1029. mmc_hostname(host), err);
  1030. return err;
  1031. }
  1032. /* Set host controller to HS timing */
  1033. mmc_set_timing(card->host, MMC_TIMING_MMC_HS);
  1034. /* Prepare host to downgrade to HS timing */
  1035. if (host->ops->hs400_downgrade)
  1036. host->ops->hs400_downgrade(host);
  1037. /* Reduce frequency to HS frequency */
  1038. max_dtr = card->ext_csd.hs_max_dtr;
  1039. mmc_set_clock(host, max_dtr);
  1040. err = mmc_switch_status(card);
  1041. if (err)
  1042. goto out_err;
  1043. /* Switch card to DDR */
  1044. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1045. EXT_CSD_BUS_WIDTH,
  1046. EXT_CSD_DDR_BUS_WIDTH_8,
  1047. card->ext_csd.generic_cmd6_time);
  1048. if (err) {
  1049. pr_err("%s: switch to bus width for hs400 failed, err:%d\n",
  1050. mmc_hostname(host), err);
  1051. return err;
  1052. }
  1053. /* Switch card to HS400 */
  1054. val = EXT_CSD_TIMING_HS400 |
  1055. card->drive_strength << EXT_CSD_DRV_STR_SHIFT;
  1056. err = __mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1057. EXT_CSD_HS_TIMING, val,
  1058. card->ext_csd.generic_cmd6_time, 0,
  1059. true, false, true);
  1060. if (err) {
  1061. pr_err("%s: switch to hs400 failed, err:%d\n",
  1062. mmc_hostname(host), err);
  1063. return err;
  1064. }
  1065. /* Set host controller to HS400 timing and frequency */
  1066. mmc_set_timing(host, MMC_TIMING_MMC_HS400);
  1067. mmc_set_bus_speed(card);
  1068. err = mmc_switch_status(card);
  1069. if (err)
  1070. goto out_err;
  1071. if (host->ops->hs400_complete)
  1072. host->ops->hs400_complete(host);
  1073. return 0;
  1074. out_err:
  1075. pr_err("%s: %s failed, error %d\n", mmc_hostname(card->host),
  1076. __func__, err);
  1077. return err;
  1078. }
  1079. int mmc_hs200_to_hs400(struct mmc_card *card)
  1080. {
  1081. return mmc_select_hs400(card);
  1082. }
  1083. int mmc_hs400_to_hs200(struct mmc_card *card)
  1084. {
  1085. struct mmc_host *host = card->host;
  1086. unsigned int max_dtr;
  1087. int err;
  1088. u8 val;
  1089. /* Reduce frequency to HS */
  1090. max_dtr = card->ext_csd.hs_max_dtr;
  1091. mmc_set_clock(host, max_dtr);
  1092. /* Switch HS400 to HS DDR */
  1093. val = EXT_CSD_TIMING_HS;
  1094. err = __mmc_switch(card, EXT_CSD_CMD_SET_NORMAL, EXT_CSD_HS_TIMING,
  1095. val, card->ext_csd.generic_cmd6_time, 0,
  1096. true, false, true);
  1097. if (err)
  1098. goto out_err;
  1099. mmc_set_timing(host, MMC_TIMING_MMC_DDR52);
  1100. err = mmc_switch_status(card);
  1101. if (err)
  1102. goto out_err;
  1103. /* Switch HS DDR to HS */
  1104. err = __mmc_switch(card, EXT_CSD_CMD_SET_NORMAL, EXT_CSD_BUS_WIDTH,
  1105. EXT_CSD_BUS_WIDTH_8, card->ext_csd.generic_cmd6_time,
  1106. 0, true, false, true);
  1107. if (err)
  1108. goto out_err;
  1109. mmc_set_timing(host, MMC_TIMING_MMC_HS);
  1110. if (host->ops->hs400_downgrade)
  1111. host->ops->hs400_downgrade(host);
  1112. err = mmc_switch_status(card);
  1113. if (err)
  1114. goto out_err;
  1115. /* Switch HS to HS200 */
  1116. val = EXT_CSD_TIMING_HS200 |
  1117. card->drive_strength << EXT_CSD_DRV_STR_SHIFT;
  1118. err = __mmc_switch(card, EXT_CSD_CMD_SET_NORMAL, EXT_CSD_HS_TIMING,
  1119. val, card->ext_csd.generic_cmd6_time, 0,
  1120. true, false, true);
  1121. if (err)
  1122. goto out_err;
  1123. mmc_set_timing(host, MMC_TIMING_MMC_HS200);
  1124. /*
  1125. * For HS200, CRC errors are not a reliable way to know the switch
  1126. * failed. If there really is a problem, we would expect tuning will
  1127. * fail and the result ends up the same.
  1128. */
  1129. err = __mmc_switch_status(card, false);
  1130. if (err)
  1131. goto out_err;
  1132. mmc_set_bus_speed(card);
  1133. /* Prepare tuning for HS400 mode. */
  1134. if (host->ops->prepare_hs400_tuning)
  1135. host->ops->prepare_hs400_tuning(host, &host->ios);
  1136. return 0;
  1137. out_err:
  1138. pr_err("%s: %s failed, error %d\n", mmc_hostname(card->host),
  1139. __func__, err);
  1140. return err;
  1141. }
  1142. static void mmc_select_driver_type(struct mmc_card *card)
  1143. {
  1144. int card_drv_type, drive_strength, drv_type = 0;
  1145. int fixed_drv_type = card->host->fixed_drv_type;
  1146. card_drv_type = card->ext_csd.raw_driver_strength |
  1147. mmc_driver_type_mask(0);
  1148. if (fixed_drv_type >= 0)
  1149. drive_strength = card_drv_type & mmc_driver_type_mask(fixed_drv_type)
  1150. ? fixed_drv_type : 0;
  1151. else
  1152. drive_strength = mmc_select_drive_strength(card,
  1153. card->ext_csd.hs200_max_dtr,
  1154. card_drv_type, &drv_type);
  1155. card->drive_strength = drive_strength;
  1156. if (drv_type)
  1157. mmc_set_driver_type(card->host, drv_type);
  1158. }
  1159. static int mmc_select_hs400es(struct mmc_card *card)
  1160. {
  1161. struct mmc_host *host = card->host;
  1162. int err = -EINVAL;
  1163. u8 val;
  1164. if (!(host->caps & MMC_CAP_8_BIT_DATA)) {
  1165. err = -ENOTSUPP;
  1166. goto out_err;
  1167. }
  1168. if (card->mmc_avail_type & EXT_CSD_CARD_TYPE_HS400_1_2V)
  1169. err = mmc_set_signal_voltage(host, MMC_SIGNAL_VOLTAGE_120);
  1170. if (err && card->mmc_avail_type & EXT_CSD_CARD_TYPE_HS400_1_8V)
  1171. err = mmc_set_signal_voltage(host, MMC_SIGNAL_VOLTAGE_180);
  1172. /* If fails try again during next card power cycle */
  1173. if (err)
  1174. goto out_err;
  1175. err = mmc_select_bus_width(card);
  1176. if (err != MMC_BUS_WIDTH_8) {
  1177. pr_err("%s: switch to 8bit bus width failed, err:%d\n",
  1178. mmc_hostname(host), err);
  1179. err = err < 0 ? err : -ENOTSUPP;
  1180. goto out_err;
  1181. }
  1182. /* Switch card to HS mode */
  1183. err = __mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1184. EXT_CSD_HS_TIMING, EXT_CSD_TIMING_HS,
  1185. card->ext_csd.generic_cmd6_time, 0,
  1186. true, false, true);
  1187. if (err) {
  1188. pr_err("%s: switch to hs for hs400es failed, err:%d\n",
  1189. mmc_hostname(host), err);
  1190. goto out_err;
  1191. }
  1192. mmc_set_timing(host, MMC_TIMING_MMC_HS);
  1193. err = mmc_switch_status(card);
  1194. if (err)
  1195. goto out_err;
  1196. mmc_set_clock(host, card->ext_csd.hs_max_dtr);
  1197. /* Switch card to DDR with strobe bit */
  1198. val = EXT_CSD_DDR_BUS_WIDTH_8 | EXT_CSD_BUS_WIDTH_STROBE;
  1199. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1200. EXT_CSD_BUS_WIDTH,
  1201. val,
  1202. card->ext_csd.generic_cmd6_time);
  1203. if (err) {
  1204. pr_err("%s: switch to bus width for hs400es failed, err:%d\n",
  1205. mmc_hostname(host), err);
  1206. goto out_err;
  1207. }
  1208. mmc_select_driver_type(card);
  1209. /* Switch card to HS400 */
  1210. val = EXT_CSD_TIMING_HS400 |
  1211. card->drive_strength << EXT_CSD_DRV_STR_SHIFT;
  1212. err = __mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1213. EXT_CSD_HS_TIMING, val,
  1214. card->ext_csd.generic_cmd6_time, 0,
  1215. true, false, true);
  1216. if (err) {
  1217. pr_err("%s: switch to hs400es failed, err:%d\n",
  1218. mmc_hostname(host), err);
  1219. goto out_err;
  1220. }
  1221. /* Set host controller to HS400 timing and frequency */
  1222. mmc_set_timing(host, MMC_TIMING_MMC_HS400);
  1223. /* Controller enable enhanced strobe function */
  1224. host->ios.enhanced_strobe = true;
  1225. if (host->ops->hs400_enhanced_strobe)
  1226. host->ops->hs400_enhanced_strobe(host, &host->ios);
  1227. err = mmc_switch_status(card);
  1228. if (err)
  1229. goto out_err;
  1230. return 0;
  1231. out_err:
  1232. pr_err("%s: %s failed, error %d\n", mmc_hostname(card->host),
  1233. __func__, err);
  1234. return err;
  1235. }
  1236. /*
  1237. * For device supporting HS200 mode, the following sequence
  1238. * should be done before executing the tuning process.
  1239. * 1. set the desired bus width(4-bit or 8-bit, 1-bit is not supported)
  1240. * 2. switch to HS200 mode
  1241. * 3. set the clock to > 52Mhz and <=200MHz
  1242. */
  1243. static int mmc_select_hs200(struct mmc_card *card)
  1244. {
  1245. struct mmc_host *host = card->host;
  1246. unsigned int old_timing, old_signal_voltage;
  1247. int err = -EINVAL;
  1248. u8 val;
  1249. old_signal_voltage = host->ios.signal_voltage;
  1250. if (card->mmc_avail_type & EXT_CSD_CARD_TYPE_HS200_1_2V)
  1251. err = mmc_set_signal_voltage(host, MMC_SIGNAL_VOLTAGE_120);
  1252. if (err && card->mmc_avail_type & EXT_CSD_CARD_TYPE_HS200_1_8V)
  1253. err = mmc_set_signal_voltage(host, MMC_SIGNAL_VOLTAGE_180);
  1254. /* If fails try again during next card power cycle */
  1255. if (err)
  1256. return err;
  1257. mmc_select_driver_type(card);
  1258. /*
  1259. * Set the bus width(4 or 8) with host's support and
  1260. * switch to HS200 mode if bus width is set successfully.
  1261. */
  1262. err = mmc_select_bus_width(card);
  1263. if (err > 0) {
  1264. val = EXT_CSD_TIMING_HS200 |
  1265. card->drive_strength << EXT_CSD_DRV_STR_SHIFT;
  1266. err = __mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1267. EXT_CSD_HS_TIMING, val,
  1268. card->ext_csd.generic_cmd6_time, 0,
  1269. true, false, true);
  1270. if (err)
  1271. goto err;
  1272. old_timing = host->ios.timing;
  1273. mmc_set_timing(host, MMC_TIMING_MMC_HS200);
  1274. /*
  1275. * For HS200, CRC errors are not a reliable way to know the
  1276. * switch failed. If there really is a problem, we would expect
  1277. * tuning will fail and the result ends up the same.
  1278. */
  1279. err = __mmc_switch_status(card, false);
  1280. /*
  1281. * mmc_select_timing() assumes timing has not changed if
  1282. * it is a switch error.
  1283. */
  1284. if (err == -EBADMSG)
  1285. mmc_set_timing(host, old_timing);
  1286. }
  1287. err:
  1288. if (err) {
  1289. /* fall back to the old signal voltage, if fails report error */
  1290. if (mmc_set_signal_voltage(host, old_signal_voltage))
  1291. err = -EIO;
  1292. pr_err("%s: %s failed, error %d\n", mmc_hostname(card->host),
  1293. __func__, err);
  1294. }
  1295. return err;
  1296. }
  1297. /*
  1298. * Activate High Speed, HS200 or HS400ES mode if supported.
  1299. */
  1300. static int mmc_select_timing(struct mmc_card *card)
  1301. {
  1302. int err = 0;
  1303. if (!mmc_can_ext_csd(card))
  1304. goto bus_speed;
  1305. if (card->mmc_avail_type & EXT_CSD_CARD_TYPE_HS400ES)
  1306. err = mmc_select_hs400es(card);
  1307. else if (card->mmc_avail_type & EXT_CSD_CARD_TYPE_HS200)
  1308. err = mmc_select_hs200(card);
  1309. else if (card->mmc_avail_type & EXT_CSD_CARD_TYPE_HS)
  1310. err = mmc_select_hs(card);
  1311. if (err && err != -EBADMSG)
  1312. return err;
  1313. bus_speed:
  1314. /*
  1315. * Set the bus speed to the selected bus timing.
  1316. * If timing is not selected, backward compatible is the default.
  1317. */
  1318. mmc_set_bus_speed(card);
  1319. return 0;
  1320. }
  1321. /*
  1322. * Execute tuning sequence to seek the proper bus operating
  1323. * conditions for HS200 and HS400, which sends CMD21 to the device.
  1324. */
  1325. static int mmc_hs200_tuning(struct mmc_card *card)
  1326. {
  1327. struct mmc_host *host = card->host;
  1328. /*
  1329. * Timing should be adjusted to the HS400 target
  1330. * operation frequency for tuning process
  1331. */
  1332. if (card->mmc_avail_type & EXT_CSD_CARD_TYPE_HS400 &&
  1333. host->ios.bus_width == MMC_BUS_WIDTH_8)
  1334. if (host->ops->prepare_hs400_tuning)
  1335. host->ops->prepare_hs400_tuning(host, &host->ios);
  1336. return mmc_execute_tuning(card);
  1337. }
  1338. /*
  1339. * Handle the detection and initialisation of a card.
  1340. *
  1341. * In the case of a resume, "oldcard" will contain the card
  1342. * we're trying to reinitialise.
  1343. */
  1344. static int mmc_init_card(struct mmc_host *host, u32 ocr,
  1345. struct mmc_card *oldcard)
  1346. {
  1347. struct mmc_card *card;
  1348. int err;
  1349. u32 cid[4];
  1350. u32 rocr;
  1351. WARN_ON(!host->claimed);
  1352. /* Set correct bus mode for MMC before attempting init */
  1353. if (!mmc_host_is_spi(host))
  1354. mmc_set_bus_mode(host, MMC_BUSMODE_OPENDRAIN);
  1355. /*
  1356. * Since we're changing the OCR value, we seem to
  1357. * need to tell some cards to go back to the idle
  1358. * state. We wait 1ms to give cards time to
  1359. * respond.
  1360. * mmc_go_idle is needed for eMMC that are asleep
  1361. */
  1362. mmc_go_idle(host);
  1363. /* The extra bit indicates that we support high capacity */
  1364. err = mmc_send_op_cond(host, ocr | (1 << 30), &rocr);
  1365. if (err)
  1366. goto err;
  1367. /*
  1368. * For SPI, enable CRC as appropriate.
  1369. */
  1370. if (mmc_host_is_spi(host)) {
  1371. err = mmc_spi_set_crc(host, use_spi_crc);
  1372. if (err)
  1373. goto err;
  1374. }
  1375. /*
  1376. * Fetch CID from card.
  1377. */
  1378. err = mmc_send_cid(host, cid);
  1379. if (err)
  1380. goto err;
  1381. if (oldcard) {
  1382. if (memcmp(cid, oldcard->raw_cid, sizeof(cid)) != 0) {
  1383. err = -ENOENT;
  1384. goto err;
  1385. }
  1386. card = oldcard;
  1387. } else {
  1388. /*
  1389. * Allocate card structure.
  1390. */
  1391. card = mmc_alloc_card(host, &mmc_type);
  1392. if (IS_ERR(card)) {
  1393. err = PTR_ERR(card);
  1394. goto err;
  1395. }
  1396. card->ocr = ocr;
  1397. card->type = MMC_TYPE_MMC;
  1398. card->rca = 1;
  1399. memcpy(card->raw_cid, cid, sizeof(card->raw_cid));
  1400. }
  1401. /*
  1402. * Call the optional HC's init_card function to handle quirks.
  1403. */
  1404. if (host->ops->init_card)
  1405. host->ops->init_card(host, card);
  1406. /*
  1407. * For native busses: set card RCA and quit open drain mode.
  1408. */
  1409. if (!mmc_host_is_spi(host)) {
  1410. err = mmc_set_relative_addr(card);
  1411. if (err)
  1412. goto free_card;
  1413. mmc_set_bus_mode(host, MMC_BUSMODE_PUSHPULL);
  1414. }
  1415. if (!oldcard) {
  1416. /*
  1417. * Fetch CSD from card.
  1418. */
  1419. err = mmc_send_csd(card, card->raw_csd);
  1420. if (err)
  1421. goto free_card;
  1422. err = mmc_decode_csd(card);
  1423. if (err)
  1424. goto free_card;
  1425. err = mmc_decode_cid(card);
  1426. if (err)
  1427. goto free_card;
  1428. }
  1429. /*
  1430. * handling only for cards supporting DSR and hosts requesting
  1431. * DSR configuration
  1432. */
  1433. if (card->csd.dsr_imp && host->dsr_req)
  1434. mmc_set_dsr(host);
  1435. /*
  1436. * Select card, as all following commands rely on that.
  1437. */
  1438. if (!mmc_host_is_spi(host)) {
  1439. err = mmc_select_card(card);
  1440. if (err)
  1441. goto free_card;
  1442. }
  1443. if (!oldcard) {
  1444. /* Read extended CSD. */
  1445. err = mmc_read_ext_csd(card);
  1446. if (err)
  1447. goto free_card;
  1448. /*
  1449. * If doing byte addressing, check if required to do sector
  1450. * addressing. Handle the case of <2GB cards needing sector
  1451. * addressing. See section 8.1 JEDEC Standard JED84-A441;
  1452. * ocr register has bit 30 set for sector addressing.
  1453. */
  1454. if (rocr & BIT(30))
  1455. mmc_card_set_blockaddr(card);
  1456. /* Erase size depends on CSD and Extended CSD */
  1457. mmc_set_erase_size(card);
  1458. }
  1459. /* Enable ERASE_GRP_DEF. This bit is lost after a reset or power off. */
  1460. if (card->ext_csd.rev >= 3) {
  1461. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1462. EXT_CSD_ERASE_GROUP_DEF, 1,
  1463. card->ext_csd.generic_cmd6_time);
  1464. if (err && err != -EBADMSG)
  1465. goto free_card;
  1466. if (err) {
  1467. err = 0;
  1468. /*
  1469. * Just disable enhanced area off & sz
  1470. * will try to enable ERASE_GROUP_DEF
  1471. * during next time reinit
  1472. */
  1473. card->ext_csd.enhanced_area_offset = -EINVAL;
  1474. card->ext_csd.enhanced_area_size = -EINVAL;
  1475. } else {
  1476. card->ext_csd.erase_group_def = 1;
  1477. /*
  1478. * enable ERASE_GRP_DEF successfully.
  1479. * This will affect the erase size, so
  1480. * here need to reset erase size
  1481. */
  1482. mmc_set_erase_size(card);
  1483. }
  1484. }
  1485. /*
  1486. * Ensure eMMC user default partition is enabled
  1487. */
  1488. if (card->ext_csd.part_config & EXT_CSD_PART_CONFIG_ACC_MASK) {
  1489. card->ext_csd.part_config &= ~EXT_CSD_PART_CONFIG_ACC_MASK;
  1490. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL, EXT_CSD_PART_CONFIG,
  1491. card->ext_csd.part_config,
  1492. card->ext_csd.part_time);
  1493. if (err && err != -EBADMSG)
  1494. goto free_card;
  1495. }
  1496. /*
  1497. * Enable power_off_notification byte in the ext_csd register
  1498. */
  1499. if (card->ext_csd.rev >= 6) {
  1500. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1501. EXT_CSD_POWER_OFF_NOTIFICATION,
  1502. EXT_CSD_POWER_ON,
  1503. card->ext_csd.generic_cmd6_time);
  1504. if (err && err != -EBADMSG)
  1505. goto free_card;
  1506. /*
  1507. * The err can be -EBADMSG or 0,
  1508. * so check for success and update the flag
  1509. */
  1510. if (!err)
  1511. card->ext_csd.power_off_notification = EXT_CSD_POWER_ON;
  1512. }
  1513. /*
  1514. * Select timing interface
  1515. */
  1516. err = mmc_select_timing(card);
  1517. if (err)
  1518. goto free_card;
  1519. if (mmc_card_hs200(card)) {
  1520. err = mmc_hs200_tuning(card);
  1521. if (err)
  1522. goto free_card;
  1523. err = mmc_select_hs400(card);
  1524. if (err)
  1525. goto free_card;
  1526. } else if (!mmc_card_hs400es(card)) {
  1527. /* Select the desired bus width optionally */
  1528. err = mmc_select_bus_width(card);
  1529. if (err > 0 && mmc_card_hs(card)) {
  1530. err = mmc_select_hs_ddr(card);
  1531. if (err)
  1532. goto free_card;
  1533. }
  1534. }
  1535. /*
  1536. * Choose the power class with selected bus interface
  1537. */
  1538. mmc_select_powerclass(card);
  1539. /*
  1540. * Enable HPI feature (if supported)
  1541. */
  1542. if (card->ext_csd.hpi) {
  1543. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1544. EXT_CSD_HPI_MGMT, 1,
  1545. card->ext_csd.generic_cmd6_time);
  1546. if (err && err != -EBADMSG)
  1547. goto free_card;
  1548. if (err) {
  1549. pr_warn("%s: Enabling HPI failed\n",
  1550. mmc_hostname(card->host));
  1551. err = 0;
  1552. } else
  1553. card->ext_csd.hpi_en = 1;
  1554. }
  1555. /*
  1556. * If cache size is higher than 0, this indicates
  1557. * the existence of cache and it can be turned on.
  1558. */
  1559. if (!mmc_card_broken_hpi(card) &&
  1560. card->ext_csd.cache_size > 0) {
  1561. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1562. EXT_CSD_CACHE_CTRL, 1,
  1563. card->ext_csd.generic_cmd6_time);
  1564. if (err && err != -EBADMSG)
  1565. goto free_card;
  1566. /*
  1567. * Only if no error, cache is turned on successfully.
  1568. */
  1569. if (err) {
  1570. pr_warn("%s: Cache is supported, but failed to turn on (%d)\n",
  1571. mmc_hostname(card->host), err);
  1572. card->ext_csd.cache_ctrl = 0;
  1573. err = 0;
  1574. } else {
  1575. card->ext_csd.cache_ctrl = 1;
  1576. }
  1577. }
  1578. /*
  1579. * Enable Command Queue if supported. Note that Packed Commands cannot
  1580. * be used with Command Queue.
  1581. */
  1582. card->ext_csd.cmdq_en = false;
  1583. if (card->ext_csd.cmdq_support && host->caps2 & MMC_CAP2_CQE) {
  1584. err = mmc_cmdq_enable(card);
  1585. if (err && err != -EBADMSG)
  1586. goto free_card;
  1587. if (err) {
  1588. pr_warn("%s: Enabling CMDQ failed\n",
  1589. mmc_hostname(card->host));
  1590. card->ext_csd.cmdq_support = false;
  1591. card->ext_csd.cmdq_depth = 0;
  1592. err = 0;
  1593. }
  1594. }
  1595. /*
  1596. * In some cases (e.g. RPMB or mmc_test), the Command Queue must be
  1597. * disabled for a time, so a flag is needed to indicate to re-enable the
  1598. * Command Queue.
  1599. */
  1600. card->reenable_cmdq = card->ext_csd.cmdq_en;
  1601. if (card->ext_csd.cmdq_en && !host->cqe_enabled) {
  1602. err = host->cqe_ops->cqe_enable(host, card);
  1603. if (err) {
  1604. pr_err("%s: Failed to enable CQE, error %d\n",
  1605. mmc_hostname(host), err);
  1606. } else {
  1607. host->cqe_enabled = true;
  1608. pr_info("%s: Command Queue Engine enabled\n",
  1609. mmc_hostname(host));
  1610. }
  1611. }
  1612. if (host->caps2 & MMC_CAP2_AVOID_3_3V &&
  1613. host->ios.signal_voltage == MMC_SIGNAL_VOLTAGE_330) {
  1614. pr_err("%s: Host failed to negotiate down from 3.3V\n",
  1615. mmc_hostname(host));
  1616. err = -EINVAL;
  1617. goto free_card;
  1618. }
  1619. if (!oldcard)
  1620. host->card = card;
  1621. return 0;
  1622. free_card:
  1623. if (!oldcard)
  1624. mmc_remove_card(card);
  1625. err:
  1626. return err;
  1627. }
  1628. static int mmc_can_sleep(struct mmc_card *card)
  1629. {
  1630. return (card && card->ext_csd.rev >= 3);
  1631. }
  1632. static int mmc_sleep(struct mmc_host *host)
  1633. {
  1634. struct mmc_command cmd = {};
  1635. struct mmc_card *card = host->card;
  1636. unsigned int timeout_ms = DIV_ROUND_UP(card->ext_csd.sa_timeout, 10000);
  1637. int err;
  1638. /* Re-tuning can't be done once the card is deselected */
  1639. mmc_retune_hold(host);
  1640. err = mmc_deselect_cards(host);
  1641. if (err)
  1642. goto out_release;
  1643. cmd.opcode = MMC_SLEEP_AWAKE;
  1644. cmd.arg = card->rca << 16;
  1645. cmd.arg |= 1 << 15;
  1646. /*
  1647. * If the max_busy_timeout of the host is specified, validate it against
  1648. * the sleep cmd timeout. A failure means we need to prevent the host
  1649. * from doing hw busy detection, which is done by converting to a R1
  1650. * response instead of a R1B.
  1651. */
  1652. if (host->max_busy_timeout && (timeout_ms > host->max_busy_timeout)) {
  1653. cmd.flags = MMC_RSP_R1 | MMC_CMD_AC;
  1654. } else {
  1655. cmd.flags = MMC_RSP_R1B | MMC_CMD_AC;
  1656. cmd.busy_timeout = timeout_ms;
  1657. }
  1658. err = mmc_wait_for_cmd(host, &cmd, 0);
  1659. if (err)
  1660. goto out_release;
  1661. /*
  1662. * If the host does not wait while the card signals busy, then we will
  1663. * will have to wait the sleep/awake timeout. Note, we cannot use the
  1664. * SEND_STATUS command to poll the status because that command (and most
  1665. * others) is invalid while the card sleeps.
  1666. */
  1667. if (!cmd.busy_timeout || !(host->caps & MMC_CAP_WAIT_WHILE_BUSY))
  1668. mmc_delay(timeout_ms);
  1669. out_release:
  1670. mmc_retune_release(host);
  1671. return err;
  1672. }
  1673. static int mmc_can_poweroff_notify(const struct mmc_card *card)
  1674. {
  1675. return card &&
  1676. mmc_card_mmc(card) &&
  1677. (card->ext_csd.power_off_notification == EXT_CSD_POWER_ON);
  1678. }
  1679. static int mmc_poweroff_notify(struct mmc_card *card, unsigned int notify_type)
  1680. {
  1681. unsigned int timeout = card->ext_csd.generic_cmd6_time;
  1682. int err;
  1683. /* Use EXT_CSD_POWER_OFF_SHORT as default notification type. */
  1684. if (notify_type == EXT_CSD_POWER_OFF_LONG)
  1685. timeout = card->ext_csd.power_off_longtime;
  1686. err = __mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1687. EXT_CSD_POWER_OFF_NOTIFICATION,
  1688. notify_type, timeout, 0, true, false, false);
  1689. if (err)
  1690. pr_err("%s: Power Off Notification timed out, %u\n",
  1691. mmc_hostname(card->host), timeout);
  1692. /* Disable the power off notification after the switch operation. */
  1693. card->ext_csd.power_off_notification = EXT_CSD_NO_POWER_NOTIFICATION;
  1694. return err;
  1695. }
  1696. /*
  1697. * Host is being removed. Free up the current card.
  1698. */
  1699. static void mmc_remove(struct mmc_host *host)
  1700. {
  1701. mmc_remove_card(host->card);
  1702. host->card = NULL;
  1703. }
  1704. /*
  1705. * Card detection - card is alive.
  1706. */
  1707. static int mmc_alive(struct mmc_host *host)
  1708. {
  1709. return mmc_send_status(host->card, NULL);
  1710. }
  1711. /*
  1712. * Card detection callback from host.
  1713. */
  1714. static void mmc_detect(struct mmc_host *host)
  1715. {
  1716. int err;
  1717. mmc_get_card(host->card, NULL);
  1718. /*
  1719. * Just check if our card has been removed.
  1720. */
  1721. err = _mmc_detect_card_removed(host);
  1722. mmc_put_card(host->card, NULL);
  1723. if (err) {
  1724. mmc_remove(host);
  1725. mmc_claim_host(host);
  1726. mmc_detach_bus(host);
  1727. mmc_power_off(host);
  1728. mmc_release_host(host);
  1729. }
  1730. }
  1731. static int _mmc_suspend(struct mmc_host *host, bool is_suspend)
  1732. {
  1733. int err = 0;
  1734. unsigned int notify_type = is_suspend ? EXT_CSD_POWER_OFF_SHORT :
  1735. EXT_CSD_POWER_OFF_LONG;
  1736. mmc_claim_host(host);
  1737. if (mmc_card_suspended(host->card))
  1738. goto out;
  1739. if (mmc_card_doing_bkops(host->card)) {
  1740. err = mmc_stop_bkops(host->card);
  1741. if (err)
  1742. goto out;
  1743. }
  1744. err = mmc_flush_cache(host->card);
  1745. if (err)
  1746. goto out;
  1747. if (mmc_can_poweroff_notify(host->card) &&
  1748. ((host->caps2 & MMC_CAP2_FULL_PWR_CYCLE) || !is_suspend))
  1749. err = mmc_poweroff_notify(host->card, notify_type);
  1750. else if (mmc_can_sleep(host->card))
  1751. err = mmc_sleep(host);
  1752. else if (!mmc_host_is_spi(host))
  1753. err = mmc_deselect_cards(host);
  1754. if (!err) {
  1755. mmc_power_off(host);
  1756. mmc_card_set_suspended(host->card);
  1757. }
  1758. out:
  1759. mmc_release_host(host);
  1760. return err;
  1761. }
  1762. /*
  1763. * Suspend callback
  1764. */
  1765. static int mmc_suspend(struct mmc_host *host)
  1766. {
  1767. int err;
  1768. err = _mmc_suspend(host, true);
  1769. if (!err) {
  1770. pm_runtime_disable(&host->card->dev);
  1771. pm_runtime_set_suspended(&host->card->dev);
  1772. }
  1773. return err;
  1774. }
  1775. /*
  1776. * This function tries to determine if the same card is still present
  1777. * and, if so, restore all state to it.
  1778. */
  1779. static int _mmc_resume(struct mmc_host *host)
  1780. {
  1781. int err = 0;
  1782. mmc_claim_host(host);
  1783. if (!mmc_card_suspended(host->card))
  1784. goto out;
  1785. mmc_power_up(host, host->card->ocr);
  1786. err = mmc_init_card(host, host->card->ocr, host->card);
  1787. mmc_card_clr_suspended(host->card);
  1788. out:
  1789. mmc_release_host(host);
  1790. return err;
  1791. }
  1792. /*
  1793. * Shutdown callback
  1794. */
  1795. static int mmc_shutdown(struct mmc_host *host)
  1796. {
  1797. int err = 0;
  1798. /*
  1799. * In a specific case for poweroff notify, we need to resume the card
  1800. * before we can shutdown it properly.
  1801. */
  1802. if (mmc_can_poweroff_notify(host->card) &&
  1803. !(host->caps2 & MMC_CAP2_FULL_PWR_CYCLE))
  1804. err = _mmc_resume(host);
  1805. if (!err)
  1806. err = _mmc_suspend(host, false);
  1807. return err;
  1808. }
  1809. /*
  1810. * Callback for resume.
  1811. */
  1812. static int mmc_resume(struct mmc_host *host)
  1813. {
  1814. pm_runtime_enable(&host->card->dev);
  1815. return 0;
  1816. }
  1817. /*
  1818. * Callback for runtime_suspend.
  1819. */
  1820. static int mmc_runtime_suspend(struct mmc_host *host)
  1821. {
  1822. int err;
  1823. if (!(host->caps & MMC_CAP_AGGRESSIVE_PM))
  1824. return 0;
  1825. err = _mmc_suspend(host, true);
  1826. if (err)
  1827. pr_err("%s: error %d doing aggressive suspend\n",
  1828. mmc_hostname(host), err);
  1829. return err;
  1830. }
  1831. /*
  1832. * Callback for runtime_resume.
  1833. */
  1834. static int mmc_runtime_resume(struct mmc_host *host)
  1835. {
  1836. int err;
  1837. err = _mmc_resume(host);
  1838. if (err && err != -ENOMEDIUM)
  1839. pr_err("%s: error %d doing runtime resume\n",
  1840. mmc_hostname(host), err);
  1841. return 0;
  1842. }
  1843. static int mmc_can_reset(struct mmc_card *card)
  1844. {
  1845. u8 rst_n_function;
  1846. rst_n_function = card->ext_csd.rst_n_function;
  1847. if ((rst_n_function & EXT_CSD_RST_N_EN_MASK) != EXT_CSD_RST_N_ENABLED)
  1848. return 0;
  1849. return 1;
  1850. }
  1851. static int _mmc_hw_reset(struct mmc_host *host)
  1852. {
  1853. struct mmc_card *card = host->card;
  1854. /*
  1855. * In the case of recovery, we can't expect flushing the cache to work
  1856. * always, but we have a go and ignore errors.
  1857. */
  1858. mmc_flush_cache(host->card);
  1859. if ((host->caps & MMC_CAP_HW_RESET) && host->ops->hw_reset &&
  1860. mmc_can_reset(card)) {
  1861. /* If the card accept RST_n signal, send it. */
  1862. mmc_set_clock(host, host->f_init);
  1863. host->ops->hw_reset(host);
  1864. /* Set initial state and call mmc_set_ios */
  1865. mmc_set_initial_state(host);
  1866. } else {
  1867. /* Do a brute force power cycle */
  1868. mmc_power_cycle(host, card->ocr);
  1869. mmc_pwrseq_reset(host);
  1870. }
  1871. return mmc_init_card(host, card->ocr, card);
  1872. }
  1873. static const struct mmc_bus_ops mmc_ops = {
  1874. .remove = mmc_remove,
  1875. .detect = mmc_detect,
  1876. .suspend = mmc_suspend,
  1877. .resume = mmc_resume,
  1878. .runtime_suspend = mmc_runtime_suspend,
  1879. .runtime_resume = mmc_runtime_resume,
  1880. .alive = mmc_alive,
  1881. .shutdown = mmc_shutdown,
  1882. .hw_reset = _mmc_hw_reset,
  1883. };
  1884. /*
  1885. * Starting point for MMC card init.
  1886. */
  1887. int mmc_attach_mmc(struct mmc_host *host)
  1888. {
  1889. int err;
  1890. u32 ocr, rocr;
  1891. WARN_ON(!host->claimed);
  1892. /* Set correct bus mode for MMC before attempting attach */
  1893. if (!mmc_host_is_spi(host))
  1894. mmc_set_bus_mode(host, MMC_BUSMODE_OPENDRAIN);
  1895. err = mmc_send_op_cond(host, 0, &ocr);
  1896. if (err)
  1897. return err;
  1898. mmc_attach_bus(host, &mmc_ops);
  1899. if (host->ocr_avail_mmc)
  1900. host->ocr_avail = host->ocr_avail_mmc;
  1901. /*
  1902. * We need to get OCR a different way for SPI.
  1903. */
  1904. if (mmc_host_is_spi(host)) {
  1905. err = mmc_spi_read_ocr(host, 1, &ocr);
  1906. if (err)
  1907. goto err;
  1908. }
  1909. rocr = mmc_select_voltage(host, ocr);
  1910. /*
  1911. * Can we support the voltage of the card?
  1912. */
  1913. if (!rocr) {
  1914. err = -EINVAL;
  1915. goto err;
  1916. }
  1917. /*
  1918. * Detect and init the card.
  1919. */
  1920. err = mmc_init_card(host, rocr, NULL);
  1921. if (err)
  1922. goto err;
  1923. mmc_release_host(host);
  1924. err = mmc_add_card(host->card);
  1925. if (err)
  1926. goto remove_card;
  1927. mmc_claim_host(host);
  1928. return 0;
  1929. remove_card:
  1930. mmc_remove_card(host->card);
  1931. mmc_claim_host(host);
  1932. host->card = NULL;
  1933. err:
  1934. mmc_detach_bus(host);
  1935. pr_err("%s: error %d whilst initialising MMC card\n",
  1936. mmc_hostname(host), err);
  1937. return err;
  1938. }