block.c 67 KB

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  1. /*
  2. * Block driver for media (i.e., flash cards)
  3. *
  4. * Copyright 2002 Hewlett-Packard Company
  5. * Copyright 2005-2008 Pierre Ossman
  6. *
  7. * Use consistent with the GNU GPL is permitted,
  8. * provided that this copyright notice is
  9. * preserved in its entirety in all copies and derived works.
  10. *
  11. * HEWLETT-PACKARD COMPANY MAKES NO WARRANTIES, EXPRESSED OR IMPLIED,
  12. * AS TO THE USEFULNESS OR CORRECTNESS OF THIS CODE OR ITS
  13. * FITNESS FOR ANY PARTICULAR PURPOSE.
  14. *
  15. * Many thanks to Alessandro Rubini and Jonathan Corbet!
  16. *
  17. * Author: Andrew Christian
  18. * 28 May 2002
  19. */
  20. #include <linux/moduleparam.h>
  21. #include <linux/module.h>
  22. #include <linux/init.h>
  23. #include <linux/kernel.h>
  24. #include <linux/fs.h>
  25. #include <linux/slab.h>
  26. #include <linux/errno.h>
  27. #include <linux/hdreg.h>
  28. #include <linux/kdev_t.h>
  29. #include <linux/blkdev.h>
  30. #include <linux/mutex.h>
  31. #include <linux/scatterlist.h>
  32. #include <linux/string_helpers.h>
  33. #include <linux/delay.h>
  34. #include <linux/capability.h>
  35. #include <linux/compat.h>
  36. #include <linux/pm_runtime.h>
  37. #include <linux/mmc/ioctl.h>
  38. #include <linux/mmc/card.h>
  39. #include <linux/mmc/host.h>
  40. #include <linux/mmc/mmc.h>
  41. #include <linux/mmc/sd.h>
  42. #include <asm/uaccess.h>
  43. #include "queue.h"
  44. MODULE_ALIAS("mmc:block");
  45. #ifdef MODULE_PARAM_PREFIX
  46. #undef MODULE_PARAM_PREFIX
  47. #endif
  48. #define MODULE_PARAM_PREFIX "mmcblk."
  49. #define INAND_CMD38_ARG_EXT_CSD 113
  50. #define INAND_CMD38_ARG_ERASE 0x00
  51. #define INAND_CMD38_ARG_TRIM 0x01
  52. #define INAND_CMD38_ARG_SECERASE 0x80
  53. #define INAND_CMD38_ARG_SECTRIM1 0x81
  54. #define INAND_CMD38_ARG_SECTRIM2 0x88
  55. #define MMC_BLK_TIMEOUT_MS (10 * 60 * 1000) /* 10 minute timeout */
  56. #define MMC_SANITIZE_REQ_TIMEOUT 240000
  57. #define MMC_EXTRACT_INDEX_FROM_ARG(x) ((x & 0x00FF0000) >> 16)
  58. #define mmc_req_rel_wr(req) ((req->cmd_flags & REQ_FUA) && \
  59. (rq_data_dir(req) == WRITE))
  60. #define PACKED_CMD_VER 0x01
  61. #define PACKED_CMD_WR 0x02
  62. static DEFINE_MUTEX(block_mutex);
  63. /*
  64. * The defaults come from config options but can be overriden by module
  65. * or bootarg options.
  66. */
  67. static int perdev_minors = CONFIG_MMC_BLOCK_MINORS;
  68. /*
  69. * We've only got one major, so number of mmcblk devices is
  70. * limited to (1 << 20) / number of minors per device. It is also
  71. * currently limited by the size of the static bitmaps below.
  72. */
  73. static int max_devices;
  74. #define MAX_DEVICES 256
  75. /* TODO: Replace these with struct ida */
  76. static DECLARE_BITMAP(dev_use, MAX_DEVICES);
  77. static DECLARE_BITMAP(name_use, MAX_DEVICES);
  78. /*
  79. * There is one mmc_blk_data per slot.
  80. */
  81. struct mmc_blk_data {
  82. spinlock_t lock;
  83. struct gendisk *disk;
  84. struct mmc_queue queue;
  85. struct list_head part;
  86. unsigned int flags;
  87. #define MMC_BLK_CMD23 (1 << 0) /* Can do SET_BLOCK_COUNT for multiblock */
  88. #define MMC_BLK_REL_WR (1 << 1) /* MMC Reliable write support */
  89. #define MMC_BLK_PACKED_CMD (1 << 2) /* MMC packed command support */
  90. unsigned int usage;
  91. unsigned int read_only;
  92. unsigned int part_type;
  93. unsigned int name_idx;
  94. unsigned int reset_done;
  95. #define MMC_BLK_READ BIT(0)
  96. #define MMC_BLK_WRITE BIT(1)
  97. #define MMC_BLK_DISCARD BIT(2)
  98. #define MMC_BLK_SECDISCARD BIT(3)
  99. /*
  100. * Only set in main mmc_blk_data associated
  101. * with mmc_card with dev_set_drvdata, and keeps
  102. * track of the current selected device partition.
  103. */
  104. unsigned int part_curr;
  105. struct device_attribute force_ro;
  106. struct device_attribute power_ro_lock;
  107. int area_type;
  108. };
  109. static DEFINE_MUTEX(open_lock);
  110. enum {
  111. MMC_PACKED_NR_IDX = -1,
  112. MMC_PACKED_NR_ZERO,
  113. MMC_PACKED_NR_SINGLE,
  114. };
  115. module_param(perdev_minors, int, 0444);
  116. MODULE_PARM_DESC(perdev_minors, "Minors numbers to allocate per device");
  117. static inline int mmc_blk_part_switch(struct mmc_card *card,
  118. struct mmc_blk_data *md);
  119. static int get_card_status(struct mmc_card *card, u32 *status, int retries);
  120. static inline void mmc_blk_clear_packed(struct mmc_queue_req *mqrq)
  121. {
  122. struct mmc_packed *packed = mqrq->packed;
  123. BUG_ON(!packed);
  124. mqrq->cmd_type = MMC_PACKED_NONE;
  125. packed->nr_entries = MMC_PACKED_NR_ZERO;
  126. packed->idx_failure = MMC_PACKED_NR_IDX;
  127. packed->retries = 0;
  128. packed->blocks = 0;
  129. }
  130. static struct mmc_blk_data *mmc_blk_get(struct gendisk *disk)
  131. {
  132. struct mmc_blk_data *md;
  133. mutex_lock(&open_lock);
  134. md = disk->private_data;
  135. if (md && md->usage == 0)
  136. md = NULL;
  137. if (md)
  138. md->usage++;
  139. mutex_unlock(&open_lock);
  140. return md;
  141. }
  142. static inline int mmc_get_devidx(struct gendisk *disk)
  143. {
  144. int devidx = disk->first_minor / perdev_minors;
  145. return devidx;
  146. }
  147. static void mmc_blk_put(struct mmc_blk_data *md)
  148. {
  149. mutex_lock(&open_lock);
  150. md->usage--;
  151. if (md->usage == 0) {
  152. int devidx = mmc_get_devidx(md->disk);
  153. blk_cleanup_queue(md->queue.queue);
  154. __clear_bit(devidx, dev_use);
  155. put_disk(md->disk);
  156. kfree(md);
  157. }
  158. mutex_unlock(&open_lock);
  159. }
  160. static ssize_t power_ro_lock_show(struct device *dev,
  161. struct device_attribute *attr, char *buf)
  162. {
  163. int ret;
  164. struct mmc_blk_data *md = mmc_blk_get(dev_to_disk(dev));
  165. struct mmc_card *card = md->queue.card;
  166. int locked = 0;
  167. if (card->ext_csd.boot_ro_lock & EXT_CSD_BOOT_WP_B_PERM_WP_EN)
  168. locked = 2;
  169. else if (card->ext_csd.boot_ro_lock & EXT_CSD_BOOT_WP_B_PWR_WP_EN)
  170. locked = 1;
  171. ret = snprintf(buf, PAGE_SIZE, "%d\n", locked);
  172. mmc_blk_put(md);
  173. return ret;
  174. }
  175. static ssize_t power_ro_lock_store(struct device *dev,
  176. struct device_attribute *attr, const char *buf, size_t count)
  177. {
  178. int ret;
  179. struct mmc_blk_data *md, *part_md;
  180. struct mmc_card *card;
  181. unsigned long set;
  182. if (kstrtoul(buf, 0, &set))
  183. return -EINVAL;
  184. if (set != 1)
  185. return count;
  186. md = mmc_blk_get(dev_to_disk(dev));
  187. card = md->queue.card;
  188. mmc_get_card(card);
  189. ret = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL, EXT_CSD_BOOT_WP,
  190. card->ext_csd.boot_ro_lock |
  191. EXT_CSD_BOOT_WP_B_PWR_WP_EN,
  192. card->ext_csd.part_time);
  193. if (ret)
  194. pr_err("%s: Locking boot partition ro until next power on failed: %d\n", md->disk->disk_name, ret);
  195. else
  196. card->ext_csd.boot_ro_lock |= EXT_CSD_BOOT_WP_B_PWR_WP_EN;
  197. mmc_put_card(card);
  198. if (!ret) {
  199. pr_info("%s: Locking boot partition ro until next power on\n",
  200. md->disk->disk_name);
  201. set_disk_ro(md->disk, 1);
  202. list_for_each_entry(part_md, &md->part, part)
  203. if (part_md->area_type == MMC_BLK_DATA_AREA_BOOT) {
  204. pr_info("%s: Locking boot partition ro until next power on\n", part_md->disk->disk_name);
  205. set_disk_ro(part_md->disk, 1);
  206. }
  207. }
  208. mmc_blk_put(md);
  209. return count;
  210. }
  211. static ssize_t force_ro_show(struct device *dev, struct device_attribute *attr,
  212. char *buf)
  213. {
  214. int ret;
  215. struct mmc_blk_data *md = mmc_blk_get(dev_to_disk(dev));
  216. ret = snprintf(buf, PAGE_SIZE, "%d\n",
  217. get_disk_ro(dev_to_disk(dev)) ^
  218. md->read_only);
  219. mmc_blk_put(md);
  220. return ret;
  221. }
  222. static ssize_t force_ro_store(struct device *dev, struct device_attribute *attr,
  223. const char *buf, size_t count)
  224. {
  225. int ret;
  226. char *end;
  227. struct mmc_blk_data *md = mmc_blk_get(dev_to_disk(dev));
  228. unsigned long set = simple_strtoul(buf, &end, 0);
  229. if (end == buf) {
  230. ret = -EINVAL;
  231. goto out;
  232. }
  233. set_disk_ro(dev_to_disk(dev), set || md->read_only);
  234. ret = count;
  235. out:
  236. mmc_blk_put(md);
  237. return ret;
  238. }
  239. static int mmc_blk_open(struct block_device *bdev, fmode_t mode)
  240. {
  241. struct mmc_blk_data *md = mmc_blk_get(bdev->bd_disk);
  242. int ret = -ENXIO;
  243. mutex_lock(&block_mutex);
  244. if (md) {
  245. if (md->usage == 2)
  246. check_disk_change(bdev);
  247. ret = 0;
  248. if ((mode & FMODE_WRITE) && md->read_only) {
  249. mmc_blk_put(md);
  250. ret = -EROFS;
  251. }
  252. }
  253. mutex_unlock(&block_mutex);
  254. return ret;
  255. }
  256. static void mmc_blk_release(struct gendisk *disk, fmode_t mode)
  257. {
  258. struct mmc_blk_data *md = disk->private_data;
  259. mutex_lock(&block_mutex);
  260. mmc_blk_put(md);
  261. mutex_unlock(&block_mutex);
  262. }
  263. static int
  264. mmc_blk_getgeo(struct block_device *bdev, struct hd_geometry *geo)
  265. {
  266. geo->cylinders = get_capacity(bdev->bd_disk) / (4 * 16);
  267. geo->heads = 4;
  268. geo->sectors = 16;
  269. return 0;
  270. }
  271. struct mmc_blk_ioc_data {
  272. struct mmc_ioc_cmd ic;
  273. unsigned char *buf;
  274. u64 buf_bytes;
  275. };
  276. static struct mmc_blk_ioc_data *mmc_blk_ioctl_copy_from_user(
  277. struct mmc_ioc_cmd __user *user)
  278. {
  279. struct mmc_blk_ioc_data *idata;
  280. int err;
  281. idata = kmalloc(sizeof(*idata), GFP_KERNEL);
  282. if (!idata) {
  283. err = -ENOMEM;
  284. goto out;
  285. }
  286. if (copy_from_user(&idata->ic, user, sizeof(idata->ic))) {
  287. err = -EFAULT;
  288. goto idata_err;
  289. }
  290. idata->buf_bytes = (u64) idata->ic.blksz * idata->ic.blocks;
  291. if (idata->buf_bytes > MMC_IOC_MAX_BYTES) {
  292. err = -EOVERFLOW;
  293. goto idata_err;
  294. }
  295. if (!idata->buf_bytes)
  296. return idata;
  297. idata->buf = kmalloc(idata->buf_bytes, GFP_KERNEL);
  298. if (!idata->buf) {
  299. err = -ENOMEM;
  300. goto idata_err;
  301. }
  302. if (copy_from_user(idata->buf, (void __user *)(unsigned long)
  303. idata->ic.data_ptr, idata->buf_bytes)) {
  304. err = -EFAULT;
  305. goto copy_err;
  306. }
  307. return idata;
  308. copy_err:
  309. kfree(idata->buf);
  310. idata_err:
  311. kfree(idata);
  312. out:
  313. return ERR_PTR(err);
  314. }
  315. static int mmc_blk_ioctl_copy_to_user(struct mmc_ioc_cmd __user *ic_ptr,
  316. struct mmc_blk_ioc_data *idata)
  317. {
  318. struct mmc_ioc_cmd *ic = &idata->ic;
  319. if (copy_to_user(&(ic_ptr->response), ic->response,
  320. sizeof(ic->response)))
  321. return -EFAULT;
  322. if (!idata->ic.write_flag) {
  323. if (copy_to_user((void __user *)(unsigned long)ic->data_ptr,
  324. idata->buf, idata->buf_bytes))
  325. return -EFAULT;
  326. }
  327. return 0;
  328. }
  329. static int ioctl_rpmb_card_status_poll(struct mmc_card *card, u32 *status,
  330. u32 retries_max)
  331. {
  332. int err;
  333. u32 retry_count = 0;
  334. if (!status || !retries_max)
  335. return -EINVAL;
  336. do {
  337. err = get_card_status(card, status, 5);
  338. if (err)
  339. break;
  340. if (!R1_STATUS(*status) &&
  341. (R1_CURRENT_STATE(*status) != R1_STATE_PRG))
  342. break; /* RPMB programming operation complete */
  343. /*
  344. * Rechedule to give the MMC device a chance to continue
  345. * processing the previous command without being polled too
  346. * frequently.
  347. */
  348. usleep_range(1000, 5000);
  349. } while (++retry_count < retries_max);
  350. if (retry_count == retries_max)
  351. err = -EPERM;
  352. return err;
  353. }
  354. static int ioctl_do_sanitize(struct mmc_card *card)
  355. {
  356. int err;
  357. if (!mmc_can_sanitize(card)) {
  358. pr_warn("%s: %s - SANITIZE is not supported\n",
  359. mmc_hostname(card->host), __func__);
  360. err = -EOPNOTSUPP;
  361. goto out;
  362. }
  363. pr_debug("%s: %s - SANITIZE IN PROGRESS...\n",
  364. mmc_hostname(card->host), __func__);
  365. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  366. EXT_CSD_SANITIZE_START, 1,
  367. MMC_SANITIZE_REQ_TIMEOUT);
  368. if (err)
  369. pr_err("%s: %s - EXT_CSD_SANITIZE_START failed. err=%d\n",
  370. mmc_hostname(card->host), __func__, err);
  371. pr_debug("%s: %s - SANITIZE COMPLETED\n", mmc_hostname(card->host),
  372. __func__);
  373. out:
  374. return err;
  375. }
  376. static int __mmc_blk_ioctl_cmd(struct mmc_card *card, struct mmc_blk_data *md,
  377. struct mmc_blk_ioc_data *idata)
  378. {
  379. struct mmc_command cmd = {0};
  380. struct mmc_data data = {0};
  381. struct mmc_request mrq = {NULL};
  382. struct scatterlist sg;
  383. int err;
  384. int is_rpmb = false;
  385. u32 status = 0;
  386. if (!card || !md || !idata)
  387. return -EINVAL;
  388. if (md->area_type & MMC_BLK_DATA_AREA_RPMB)
  389. is_rpmb = true;
  390. cmd.opcode = idata->ic.opcode;
  391. cmd.arg = idata->ic.arg;
  392. cmd.flags = idata->ic.flags;
  393. if (idata->buf_bytes) {
  394. data.sg = &sg;
  395. data.sg_len = 1;
  396. data.blksz = idata->ic.blksz;
  397. data.blocks = idata->ic.blocks;
  398. sg_init_one(data.sg, idata->buf, idata->buf_bytes);
  399. if (idata->ic.write_flag)
  400. data.flags = MMC_DATA_WRITE;
  401. else
  402. data.flags = MMC_DATA_READ;
  403. /* data.flags must already be set before doing this. */
  404. mmc_set_data_timeout(&data, card);
  405. /* Allow overriding the timeout_ns for empirical tuning. */
  406. if (idata->ic.data_timeout_ns)
  407. data.timeout_ns = idata->ic.data_timeout_ns;
  408. if ((cmd.flags & MMC_RSP_R1B) == MMC_RSP_R1B) {
  409. /*
  410. * Pretend this is a data transfer and rely on the
  411. * host driver to compute timeout. When all host
  412. * drivers support cmd.cmd_timeout for R1B, this
  413. * can be changed to:
  414. *
  415. * mrq.data = NULL;
  416. * cmd.cmd_timeout = idata->ic.cmd_timeout_ms;
  417. */
  418. data.timeout_ns = idata->ic.cmd_timeout_ms * 1000000;
  419. }
  420. mrq.data = &data;
  421. }
  422. mrq.cmd = &cmd;
  423. err = mmc_blk_part_switch(card, md);
  424. if (err)
  425. return err;
  426. if (idata->ic.is_acmd) {
  427. err = mmc_app_cmd(card->host, card);
  428. if (err)
  429. return err;
  430. }
  431. if (is_rpmb) {
  432. err = mmc_set_blockcount(card, data.blocks,
  433. idata->ic.write_flag & (1 << 31));
  434. if (err)
  435. return err;
  436. }
  437. if ((MMC_EXTRACT_INDEX_FROM_ARG(cmd.arg) == EXT_CSD_SANITIZE_START) &&
  438. (cmd.opcode == MMC_SWITCH)) {
  439. err = ioctl_do_sanitize(card);
  440. if (err)
  441. pr_err("%s: ioctl_do_sanitize() failed. err = %d",
  442. __func__, err);
  443. return err;
  444. }
  445. mmc_wait_for_req(card->host, &mrq);
  446. if (cmd.error) {
  447. dev_err(mmc_dev(card->host), "%s: cmd error %d\n",
  448. __func__, cmd.error);
  449. return cmd.error;
  450. }
  451. if (data.error) {
  452. dev_err(mmc_dev(card->host), "%s: data error %d\n",
  453. __func__, data.error);
  454. return data.error;
  455. }
  456. /*
  457. * According to the SD specs, some commands require a delay after
  458. * issuing the command.
  459. */
  460. if (idata->ic.postsleep_min_us)
  461. usleep_range(idata->ic.postsleep_min_us, idata->ic.postsleep_max_us);
  462. memcpy(&(idata->ic.response), cmd.resp, sizeof(cmd.resp));
  463. if (is_rpmb) {
  464. /*
  465. * Ensure RPMB command has completed by polling CMD13
  466. * "Send Status".
  467. */
  468. err = ioctl_rpmb_card_status_poll(card, &status, 5);
  469. if (err)
  470. dev_err(mmc_dev(card->host),
  471. "%s: Card Status=0x%08X, error %d\n",
  472. __func__, status, err);
  473. }
  474. return err;
  475. }
  476. static int mmc_blk_ioctl_cmd(struct block_device *bdev,
  477. struct mmc_ioc_cmd __user *ic_ptr)
  478. {
  479. struct mmc_blk_ioc_data *idata;
  480. struct mmc_blk_data *md;
  481. struct mmc_card *card;
  482. int err = 0, ioc_err = 0;
  483. idata = mmc_blk_ioctl_copy_from_user(ic_ptr);
  484. if (IS_ERR(idata))
  485. return PTR_ERR(idata);
  486. md = mmc_blk_get(bdev->bd_disk);
  487. if (!md) {
  488. err = -EINVAL;
  489. goto cmd_err;
  490. }
  491. card = md->queue.card;
  492. if (IS_ERR(card)) {
  493. err = PTR_ERR(card);
  494. goto cmd_done;
  495. }
  496. mmc_get_card(card);
  497. ioc_err = __mmc_blk_ioctl_cmd(card, md, idata);
  498. mmc_put_card(card);
  499. err = mmc_blk_ioctl_copy_to_user(ic_ptr, idata);
  500. cmd_done:
  501. mmc_blk_put(md);
  502. cmd_err:
  503. kfree(idata->buf);
  504. kfree(idata);
  505. return ioc_err ? ioc_err : err;
  506. }
  507. static int mmc_blk_ioctl_multi_cmd(struct block_device *bdev,
  508. struct mmc_ioc_multi_cmd __user *user)
  509. {
  510. struct mmc_blk_ioc_data **idata = NULL;
  511. struct mmc_ioc_cmd __user *cmds = user->cmds;
  512. struct mmc_card *card;
  513. struct mmc_blk_data *md;
  514. int i, err = 0, ioc_err = 0;
  515. __u64 num_of_cmds;
  516. if (copy_from_user(&num_of_cmds, &user->num_of_cmds,
  517. sizeof(num_of_cmds)))
  518. return -EFAULT;
  519. if (num_of_cmds > MMC_IOC_MAX_CMDS)
  520. return -EINVAL;
  521. idata = kcalloc(num_of_cmds, sizeof(*idata), GFP_KERNEL);
  522. if (!idata)
  523. return -ENOMEM;
  524. for (i = 0; i < num_of_cmds; i++) {
  525. idata[i] = mmc_blk_ioctl_copy_from_user(&cmds[i]);
  526. if (IS_ERR(idata[i])) {
  527. err = PTR_ERR(idata[i]);
  528. num_of_cmds = i;
  529. goto cmd_err;
  530. }
  531. }
  532. md = mmc_blk_get(bdev->bd_disk);
  533. if (!md) {
  534. err = -EINVAL;
  535. goto cmd_err;
  536. }
  537. card = md->queue.card;
  538. if (IS_ERR(card)) {
  539. err = PTR_ERR(card);
  540. goto cmd_done;
  541. }
  542. mmc_get_card(card);
  543. for (i = 0; i < num_of_cmds && !ioc_err; i++)
  544. ioc_err = __mmc_blk_ioctl_cmd(card, md, idata[i]);
  545. mmc_put_card(card);
  546. /* copy to user if data and response */
  547. for (i = 0; i < num_of_cmds && !err; i++)
  548. err = mmc_blk_ioctl_copy_to_user(&cmds[i], idata[i]);
  549. cmd_done:
  550. mmc_blk_put(md);
  551. cmd_err:
  552. for (i = 0; i < num_of_cmds; i++) {
  553. kfree(idata[i]->buf);
  554. kfree(idata[i]);
  555. }
  556. kfree(idata);
  557. return ioc_err ? ioc_err : err;
  558. }
  559. static int mmc_blk_ioctl(struct block_device *bdev, fmode_t mode,
  560. unsigned int cmd, unsigned long arg)
  561. {
  562. /*
  563. * The caller must have CAP_SYS_RAWIO, and must be calling this on the
  564. * whole block device, not on a partition. This prevents overspray
  565. * between sibling partitions.
  566. */
  567. if ((!capable(CAP_SYS_RAWIO)) || (bdev != bdev->bd_contains))
  568. return -EPERM;
  569. switch (cmd) {
  570. case MMC_IOC_CMD:
  571. return mmc_blk_ioctl_cmd(bdev,
  572. (struct mmc_ioc_cmd __user *)arg);
  573. case MMC_IOC_MULTI_CMD:
  574. return mmc_blk_ioctl_multi_cmd(bdev,
  575. (struct mmc_ioc_multi_cmd __user *)arg);
  576. default:
  577. return -EINVAL;
  578. }
  579. }
  580. #ifdef CONFIG_COMPAT
  581. static int mmc_blk_compat_ioctl(struct block_device *bdev, fmode_t mode,
  582. unsigned int cmd, unsigned long arg)
  583. {
  584. return mmc_blk_ioctl(bdev, mode, cmd, (unsigned long) compat_ptr(arg));
  585. }
  586. #endif
  587. static const struct block_device_operations mmc_bdops = {
  588. .open = mmc_blk_open,
  589. .release = mmc_blk_release,
  590. .getgeo = mmc_blk_getgeo,
  591. .owner = THIS_MODULE,
  592. .ioctl = mmc_blk_ioctl,
  593. #ifdef CONFIG_COMPAT
  594. .compat_ioctl = mmc_blk_compat_ioctl,
  595. #endif
  596. };
  597. static inline int mmc_blk_part_switch(struct mmc_card *card,
  598. struct mmc_blk_data *md)
  599. {
  600. int ret;
  601. struct mmc_blk_data *main_md = dev_get_drvdata(&card->dev);
  602. if (main_md->part_curr == md->part_type)
  603. return 0;
  604. if (mmc_card_mmc(card)) {
  605. u8 part_config = card->ext_csd.part_config;
  606. part_config &= ~EXT_CSD_PART_CONFIG_ACC_MASK;
  607. part_config |= md->part_type;
  608. ret = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  609. EXT_CSD_PART_CONFIG, part_config,
  610. card->ext_csd.part_time);
  611. if (ret)
  612. return ret;
  613. card->ext_csd.part_config = part_config;
  614. }
  615. main_md->part_curr = md->part_type;
  616. return 0;
  617. }
  618. static u32 mmc_sd_num_wr_blocks(struct mmc_card *card)
  619. {
  620. int err;
  621. u32 result;
  622. __be32 *blocks;
  623. struct mmc_request mrq = {NULL};
  624. struct mmc_command cmd = {0};
  625. struct mmc_data data = {0};
  626. struct scatterlist sg;
  627. cmd.opcode = MMC_APP_CMD;
  628. cmd.arg = card->rca << 16;
  629. cmd.flags = MMC_RSP_SPI_R1 | MMC_RSP_R1 | MMC_CMD_AC;
  630. err = mmc_wait_for_cmd(card->host, &cmd, 0);
  631. if (err)
  632. return (u32)-1;
  633. if (!mmc_host_is_spi(card->host) && !(cmd.resp[0] & R1_APP_CMD))
  634. return (u32)-1;
  635. memset(&cmd, 0, sizeof(struct mmc_command));
  636. cmd.opcode = SD_APP_SEND_NUM_WR_BLKS;
  637. cmd.arg = 0;
  638. cmd.flags = MMC_RSP_SPI_R1 | MMC_RSP_R1 | MMC_CMD_ADTC;
  639. data.blksz = 4;
  640. data.blocks = 1;
  641. data.flags = MMC_DATA_READ;
  642. data.sg = &sg;
  643. data.sg_len = 1;
  644. mmc_set_data_timeout(&data, card);
  645. mrq.cmd = &cmd;
  646. mrq.data = &data;
  647. blocks = kmalloc(4, GFP_KERNEL);
  648. if (!blocks)
  649. return (u32)-1;
  650. sg_init_one(&sg, blocks, 4);
  651. mmc_wait_for_req(card->host, &mrq);
  652. result = ntohl(*blocks);
  653. kfree(blocks);
  654. if (cmd.error || data.error)
  655. result = (u32)-1;
  656. return result;
  657. }
  658. static int get_card_status(struct mmc_card *card, u32 *status, int retries)
  659. {
  660. struct mmc_command cmd = {0};
  661. int err;
  662. cmd.opcode = MMC_SEND_STATUS;
  663. if (!mmc_host_is_spi(card->host))
  664. cmd.arg = card->rca << 16;
  665. cmd.flags = MMC_RSP_SPI_R2 | MMC_RSP_R1 | MMC_CMD_AC;
  666. err = mmc_wait_for_cmd(card->host, &cmd, retries);
  667. if (err == 0)
  668. *status = cmd.resp[0];
  669. return err;
  670. }
  671. static int card_busy_detect(struct mmc_card *card, unsigned int timeout_ms,
  672. bool hw_busy_detect, struct request *req, int *gen_err)
  673. {
  674. unsigned long timeout = jiffies + msecs_to_jiffies(timeout_ms);
  675. int err = 0;
  676. u32 status;
  677. do {
  678. err = get_card_status(card, &status, 5);
  679. if (err) {
  680. pr_err("%s: error %d requesting status\n",
  681. req->rq_disk->disk_name, err);
  682. return err;
  683. }
  684. if (status & R1_ERROR) {
  685. pr_err("%s: %s: error sending status cmd, status %#x\n",
  686. req->rq_disk->disk_name, __func__, status);
  687. *gen_err = 1;
  688. }
  689. /* We may rely on the host hw to handle busy detection.*/
  690. if ((card->host->caps & MMC_CAP_WAIT_WHILE_BUSY) &&
  691. hw_busy_detect)
  692. break;
  693. /*
  694. * Timeout if the device never becomes ready for data and never
  695. * leaves the program state.
  696. */
  697. if (time_after(jiffies, timeout)) {
  698. pr_err("%s: Card stuck in programming state! %s %s\n",
  699. mmc_hostname(card->host),
  700. req->rq_disk->disk_name, __func__);
  701. return -ETIMEDOUT;
  702. }
  703. /*
  704. * Some cards mishandle the status bits,
  705. * so make sure to check both the busy
  706. * indication and the card state.
  707. */
  708. } while (!(status & R1_READY_FOR_DATA) ||
  709. (R1_CURRENT_STATE(status) == R1_STATE_PRG));
  710. return err;
  711. }
  712. static int send_stop(struct mmc_card *card, unsigned int timeout_ms,
  713. struct request *req, int *gen_err, u32 *stop_status)
  714. {
  715. struct mmc_host *host = card->host;
  716. struct mmc_command cmd = {0};
  717. int err;
  718. bool use_r1b_resp = rq_data_dir(req) == WRITE;
  719. /*
  720. * Normally we use R1B responses for WRITE, but in cases where the host
  721. * has specified a max_busy_timeout we need to validate it. A failure
  722. * means we need to prevent the host from doing hw busy detection, which
  723. * is done by converting to a R1 response instead.
  724. */
  725. if (host->max_busy_timeout && (timeout_ms > host->max_busy_timeout))
  726. use_r1b_resp = false;
  727. cmd.opcode = MMC_STOP_TRANSMISSION;
  728. if (use_r1b_resp) {
  729. cmd.flags = MMC_RSP_SPI_R1B | MMC_RSP_R1B | MMC_CMD_AC;
  730. cmd.busy_timeout = timeout_ms;
  731. } else {
  732. cmd.flags = MMC_RSP_SPI_R1 | MMC_RSP_R1 | MMC_CMD_AC;
  733. }
  734. err = mmc_wait_for_cmd(host, &cmd, 5);
  735. if (err)
  736. return err;
  737. *stop_status = cmd.resp[0];
  738. /* No need to check card status in case of READ. */
  739. if (rq_data_dir(req) == READ)
  740. return 0;
  741. if (!mmc_host_is_spi(host) &&
  742. (*stop_status & R1_ERROR)) {
  743. pr_err("%s: %s: general error sending stop command, resp %#x\n",
  744. req->rq_disk->disk_name, __func__, *stop_status);
  745. *gen_err = 1;
  746. }
  747. return card_busy_detect(card, timeout_ms, use_r1b_resp, req, gen_err);
  748. }
  749. #define ERR_NOMEDIUM 3
  750. #define ERR_RETRY 2
  751. #define ERR_ABORT 1
  752. #define ERR_CONTINUE 0
  753. static int mmc_blk_cmd_error(struct request *req, const char *name, int error,
  754. bool status_valid, u32 status)
  755. {
  756. switch (error) {
  757. case -EILSEQ:
  758. /* response crc error, retry the r/w cmd */
  759. pr_err("%s: %s sending %s command, card status %#x\n",
  760. req->rq_disk->disk_name, "response CRC error",
  761. name, status);
  762. return ERR_RETRY;
  763. case -ETIMEDOUT:
  764. pr_err("%s: %s sending %s command, card status %#x\n",
  765. req->rq_disk->disk_name, "timed out", name, status);
  766. /* If the status cmd initially failed, retry the r/w cmd */
  767. if (!status_valid)
  768. return ERR_RETRY;
  769. /*
  770. * If it was a r/w cmd crc error, or illegal command
  771. * (eg, issued in wrong state) then retry - we should
  772. * have corrected the state problem above.
  773. */
  774. if (status & (R1_COM_CRC_ERROR | R1_ILLEGAL_COMMAND))
  775. return ERR_RETRY;
  776. /* Otherwise abort the command */
  777. return ERR_ABORT;
  778. default:
  779. /* We don't understand the error code the driver gave us */
  780. pr_err("%s: unknown error %d sending read/write command, card status %#x\n",
  781. req->rq_disk->disk_name, error, status);
  782. return ERR_ABORT;
  783. }
  784. }
  785. /*
  786. * Initial r/w and stop cmd error recovery.
  787. * We don't know whether the card received the r/w cmd or not, so try to
  788. * restore things back to a sane state. Essentially, we do this as follows:
  789. * - Obtain card status. If the first attempt to obtain card status fails,
  790. * the status word will reflect the failed status cmd, not the failed
  791. * r/w cmd. If we fail to obtain card status, it suggests we can no
  792. * longer communicate with the card.
  793. * - Check the card state. If the card received the cmd but there was a
  794. * transient problem with the response, it might still be in a data transfer
  795. * mode. Try to send it a stop command. If this fails, we can't recover.
  796. * - If the r/w cmd failed due to a response CRC error, it was probably
  797. * transient, so retry the cmd.
  798. * - If the r/w cmd timed out, but we didn't get the r/w cmd status, retry.
  799. * - If the r/w cmd timed out, and the r/w cmd failed due to CRC error or
  800. * illegal cmd, retry.
  801. * Otherwise we don't understand what happened, so abort.
  802. */
  803. static int mmc_blk_cmd_recovery(struct mmc_card *card, struct request *req,
  804. struct mmc_blk_request *brq, int *ecc_err, int *gen_err)
  805. {
  806. bool prev_cmd_status_valid = true;
  807. u32 status, stop_status = 0;
  808. int err, retry;
  809. if (mmc_card_removed(card))
  810. return ERR_NOMEDIUM;
  811. /*
  812. * Try to get card status which indicates both the card state
  813. * and why there was no response. If the first attempt fails,
  814. * we can't be sure the returned status is for the r/w command.
  815. */
  816. for (retry = 2; retry >= 0; retry--) {
  817. err = get_card_status(card, &status, 0);
  818. if (!err)
  819. break;
  820. /* Re-tune if needed */
  821. mmc_retune_recheck(card->host);
  822. prev_cmd_status_valid = false;
  823. pr_err("%s: error %d sending status command, %sing\n",
  824. req->rq_disk->disk_name, err, retry ? "retry" : "abort");
  825. }
  826. /* We couldn't get a response from the card. Give up. */
  827. if (err) {
  828. /* Check if the card is removed */
  829. if (mmc_detect_card_removed(card->host))
  830. return ERR_NOMEDIUM;
  831. return ERR_ABORT;
  832. }
  833. /* Flag ECC errors */
  834. if ((status & R1_CARD_ECC_FAILED) ||
  835. (brq->stop.resp[0] & R1_CARD_ECC_FAILED) ||
  836. (brq->cmd.resp[0] & R1_CARD_ECC_FAILED))
  837. *ecc_err = 1;
  838. /* Flag General errors */
  839. if (!mmc_host_is_spi(card->host) && rq_data_dir(req) != READ)
  840. if ((status & R1_ERROR) ||
  841. (brq->stop.resp[0] & R1_ERROR)) {
  842. pr_err("%s: %s: general error sending stop or status command, stop cmd response %#x, card status %#x\n",
  843. req->rq_disk->disk_name, __func__,
  844. brq->stop.resp[0], status);
  845. *gen_err = 1;
  846. }
  847. /*
  848. * Check the current card state. If it is in some data transfer
  849. * mode, tell it to stop (and hopefully transition back to TRAN.)
  850. */
  851. if (R1_CURRENT_STATE(status) == R1_STATE_DATA ||
  852. R1_CURRENT_STATE(status) == R1_STATE_RCV) {
  853. err = send_stop(card,
  854. DIV_ROUND_UP(brq->data.timeout_ns, 1000000),
  855. req, gen_err, &stop_status);
  856. if (err) {
  857. pr_err("%s: error %d sending stop command\n",
  858. req->rq_disk->disk_name, err);
  859. /*
  860. * If the stop cmd also timed out, the card is probably
  861. * not present, so abort. Other errors are bad news too.
  862. */
  863. return ERR_ABORT;
  864. }
  865. if (stop_status & R1_CARD_ECC_FAILED)
  866. *ecc_err = 1;
  867. }
  868. /* Check for set block count errors */
  869. if (brq->sbc.error)
  870. return mmc_blk_cmd_error(req, "SET_BLOCK_COUNT", brq->sbc.error,
  871. prev_cmd_status_valid, status);
  872. /* Check for r/w command errors */
  873. if (brq->cmd.error)
  874. return mmc_blk_cmd_error(req, "r/w cmd", brq->cmd.error,
  875. prev_cmd_status_valid, status);
  876. /* Data errors */
  877. if (!brq->stop.error)
  878. return ERR_CONTINUE;
  879. /* Now for stop errors. These aren't fatal to the transfer. */
  880. pr_info("%s: error %d sending stop command, original cmd response %#x, card status %#x\n",
  881. req->rq_disk->disk_name, brq->stop.error,
  882. brq->cmd.resp[0], status);
  883. /*
  884. * Subsitute in our own stop status as this will give the error
  885. * state which happened during the execution of the r/w command.
  886. */
  887. if (stop_status) {
  888. brq->stop.resp[0] = stop_status;
  889. brq->stop.error = 0;
  890. }
  891. return ERR_CONTINUE;
  892. }
  893. static int mmc_blk_reset(struct mmc_blk_data *md, struct mmc_host *host,
  894. int type)
  895. {
  896. int err;
  897. if (md->reset_done & type)
  898. return -EEXIST;
  899. md->reset_done |= type;
  900. err = mmc_hw_reset(host);
  901. /* Ensure we switch back to the correct partition */
  902. if (err != -EOPNOTSUPP) {
  903. struct mmc_blk_data *main_md =
  904. dev_get_drvdata(&host->card->dev);
  905. int part_err;
  906. main_md->part_curr = main_md->part_type;
  907. part_err = mmc_blk_part_switch(host->card, md);
  908. if (part_err) {
  909. /*
  910. * We have failed to get back into the correct
  911. * partition, so we need to abort the whole request.
  912. */
  913. return -ENODEV;
  914. }
  915. }
  916. return err;
  917. }
  918. static inline void mmc_blk_reset_success(struct mmc_blk_data *md, int type)
  919. {
  920. md->reset_done &= ~type;
  921. }
  922. int mmc_access_rpmb(struct mmc_queue *mq)
  923. {
  924. struct mmc_blk_data *md = mq->data;
  925. /*
  926. * If this is a RPMB partition access, return ture
  927. */
  928. if (md && md->part_type == EXT_CSD_PART_CONFIG_ACC_RPMB)
  929. return true;
  930. return false;
  931. }
  932. static int mmc_blk_issue_discard_rq(struct mmc_queue *mq, struct request *req)
  933. {
  934. struct mmc_blk_data *md = mq->data;
  935. struct mmc_card *card = md->queue.card;
  936. unsigned int from, nr, arg;
  937. int err = 0, type = MMC_BLK_DISCARD;
  938. if (!mmc_can_erase(card)) {
  939. err = -EOPNOTSUPP;
  940. goto out;
  941. }
  942. from = blk_rq_pos(req);
  943. nr = blk_rq_sectors(req);
  944. if (mmc_can_discard(card))
  945. arg = MMC_DISCARD_ARG;
  946. else if (mmc_can_trim(card))
  947. arg = MMC_TRIM_ARG;
  948. else
  949. arg = MMC_ERASE_ARG;
  950. retry:
  951. if (card->quirks & MMC_QUIRK_INAND_CMD38) {
  952. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  953. INAND_CMD38_ARG_EXT_CSD,
  954. arg == MMC_TRIM_ARG ?
  955. INAND_CMD38_ARG_TRIM :
  956. INAND_CMD38_ARG_ERASE,
  957. 0);
  958. if (err)
  959. goto out;
  960. }
  961. err = mmc_erase(card, from, nr, arg);
  962. out:
  963. if (err == -EIO && !mmc_blk_reset(md, card->host, type))
  964. goto retry;
  965. if (!err)
  966. mmc_blk_reset_success(md, type);
  967. blk_end_request(req, err, blk_rq_bytes(req));
  968. return err ? 0 : 1;
  969. }
  970. static int mmc_blk_issue_secdiscard_rq(struct mmc_queue *mq,
  971. struct request *req)
  972. {
  973. struct mmc_blk_data *md = mq->data;
  974. struct mmc_card *card = md->queue.card;
  975. unsigned int from, nr, arg;
  976. int err = 0, type = MMC_BLK_SECDISCARD;
  977. if (!(mmc_can_secure_erase_trim(card))) {
  978. err = -EOPNOTSUPP;
  979. goto out;
  980. }
  981. from = blk_rq_pos(req);
  982. nr = blk_rq_sectors(req);
  983. if (mmc_can_trim(card) && !mmc_erase_group_aligned(card, from, nr))
  984. arg = MMC_SECURE_TRIM1_ARG;
  985. else
  986. arg = MMC_SECURE_ERASE_ARG;
  987. retry:
  988. if (card->quirks & MMC_QUIRK_INAND_CMD38) {
  989. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  990. INAND_CMD38_ARG_EXT_CSD,
  991. arg == MMC_SECURE_TRIM1_ARG ?
  992. INAND_CMD38_ARG_SECTRIM1 :
  993. INAND_CMD38_ARG_SECERASE,
  994. 0);
  995. if (err)
  996. goto out_retry;
  997. }
  998. err = mmc_erase(card, from, nr, arg);
  999. if (err == -EIO)
  1000. goto out_retry;
  1001. if (err)
  1002. goto out;
  1003. if (arg == MMC_SECURE_TRIM1_ARG) {
  1004. if (card->quirks & MMC_QUIRK_INAND_CMD38) {
  1005. err = mmc_switch(card, EXT_CSD_CMD_SET_NORMAL,
  1006. INAND_CMD38_ARG_EXT_CSD,
  1007. INAND_CMD38_ARG_SECTRIM2,
  1008. 0);
  1009. if (err)
  1010. goto out_retry;
  1011. }
  1012. err = mmc_erase(card, from, nr, MMC_SECURE_TRIM2_ARG);
  1013. if (err == -EIO)
  1014. goto out_retry;
  1015. if (err)
  1016. goto out;
  1017. }
  1018. out_retry:
  1019. if (err && !mmc_blk_reset(md, card->host, type))
  1020. goto retry;
  1021. if (!err)
  1022. mmc_blk_reset_success(md, type);
  1023. out:
  1024. blk_end_request(req, err, blk_rq_bytes(req));
  1025. return err ? 0 : 1;
  1026. }
  1027. static int mmc_blk_issue_flush(struct mmc_queue *mq, struct request *req)
  1028. {
  1029. struct mmc_blk_data *md = mq->data;
  1030. struct mmc_card *card = md->queue.card;
  1031. int ret = 0;
  1032. ret = mmc_flush_cache(card);
  1033. if (ret)
  1034. ret = -EIO;
  1035. blk_end_request_all(req, ret);
  1036. return ret ? 0 : 1;
  1037. }
  1038. /*
  1039. * Reformat current write as a reliable write, supporting
  1040. * both legacy and the enhanced reliable write MMC cards.
  1041. * In each transfer we'll handle only as much as a single
  1042. * reliable write can handle, thus finish the request in
  1043. * partial completions.
  1044. */
  1045. static inline void mmc_apply_rel_rw(struct mmc_blk_request *brq,
  1046. struct mmc_card *card,
  1047. struct request *req)
  1048. {
  1049. if (!(card->ext_csd.rel_param & EXT_CSD_WR_REL_PARAM_EN)) {
  1050. /* Legacy mode imposes restrictions on transfers. */
  1051. if (!IS_ALIGNED(brq->cmd.arg, card->ext_csd.rel_sectors))
  1052. brq->data.blocks = 1;
  1053. if (brq->data.blocks > card->ext_csd.rel_sectors)
  1054. brq->data.blocks = card->ext_csd.rel_sectors;
  1055. else if (brq->data.blocks < card->ext_csd.rel_sectors)
  1056. brq->data.blocks = 1;
  1057. }
  1058. }
  1059. #define CMD_ERRORS \
  1060. (R1_OUT_OF_RANGE | /* Command argument out of range */ \
  1061. R1_ADDRESS_ERROR | /* Misaligned address */ \
  1062. R1_BLOCK_LEN_ERROR | /* Transferred block length incorrect */\
  1063. R1_WP_VIOLATION | /* Tried to write to protected block */ \
  1064. R1_CC_ERROR | /* Card controller error */ \
  1065. R1_ERROR) /* General/unknown error */
  1066. static int mmc_blk_err_check(struct mmc_card *card,
  1067. struct mmc_async_req *areq)
  1068. {
  1069. struct mmc_queue_req *mq_mrq = container_of(areq, struct mmc_queue_req,
  1070. mmc_active);
  1071. struct mmc_blk_request *brq = &mq_mrq->brq;
  1072. struct request *req = mq_mrq->req;
  1073. int need_retune = card->host->need_retune;
  1074. int ecc_err = 0, gen_err = 0;
  1075. /*
  1076. * sbc.error indicates a problem with the set block count
  1077. * command. No data will have been transferred.
  1078. *
  1079. * cmd.error indicates a problem with the r/w command. No
  1080. * data will have been transferred.
  1081. *
  1082. * stop.error indicates a problem with the stop command. Data
  1083. * may have been transferred, or may still be transferring.
  1084. */
  1085. if (brq->sbc.error || brq->cmd.error || brq->stop.error ||
  1086. brq->data.error) {
  1087. switch (mmc_blk_cmd_recovery(card, req, brq, &ecc_err, &gen_err)) {
  1088. case ERR_RETRY:
  1089. return MMC_BLK_RETRY;
  1090. case ERR_ABORT:
  1091. return MMC_BLK_ABORT;
  1092. case ERR_NOMEDIUM:
  1093. return MMC_BLK_NOMEDIUM;
  1094. case ERR_CONTINUE:
  1095. break;
  1096. }
  1097. }
  1098. /*
  1099. * Check for errors relating to the execution of the
  1100. * initial command - such as address errors. No data
  1101. * has been transferred.
  1102. */
  1103. if (brq->cmd.resp[0] & CMD_ERRORS) {
  1104. pr_err("%s: r/w command failed, status = %#x\n",
  1105. req->rq_disk->disk_name, brq->cmd.resp[0]);
  1106. return MMC_BLK_ABORT;
  1107. }
  1108. /*
  1109. * Everything else is either success, or a data error of some
  1110. * kind. If it was a write, we may have transitioned to
  1111. * program mode, which we have to wait for it to complete.
  1112. */
  1113. if (!mmc_host_is_spi(card->host) && rq_data_dir(req) != READ) {
  1114. int err;
  1115. /* Check stop command response */
  1116. if (brq->stop.resp[0] & R1_ERROR) {
  1117. pr_err("%s: %s: general error sending stop command, stop cmd response %#x\n",
  1118. req->rq_disk->disk_name, __func__,
  1119. brq->stop.resp[0]);
  1120. gen_err = 1;
  1121. }
  1122. err = card_busy_detect(card, MMC_BLK_TIMEOUT_MS, false, req,
  1123. &gen_err);
  1124. if (err)
  1125. return MMC_BLK_CMD_ERR;
  1126. }
  1127. /* if general error occurs, retry the write operation. */
  1128. if (gen_err) {
  1129. pr_warn("%s: retrying write for general error\n",
  1130. req->rq_disk->disk_name);
  1131. return MMC_BLK_RETRY;
  1132. }
  1133. if (brq->data.error) {
  1134. if (need_retune && !brq->retune_retry_done) {
  1135. pr_debug("%s: retrying because a re-tune was needed\n",
  1136. req->rq_disk->disk_name);
  1137. brq->retune_retry_done = 1;
  1138. return MMC_BLK_RETRY;
  1139. }
  1140. pr_err("%s: error %d transferring data, sector %u, nr %u, cmd response %#x, card status %#x\n",
  1141. req->rq_disk->disk_name, brq->data.error,
  1142. (unsigned)blk_rq_pos(req),
  1143. (unsigned)blk_rq_sectors(req),
  1144. brq->cmd.resp[0], brq->stop.resp[0]);
  1145. if (rq_data_dir(req) == READ) {
  1146. if (ecc_err)
  1147. return MMC_BLK_ECC_ERR;
  1148. return MMC_BLK_DATA_ERR;
  1149. } else {
  1150. return MMC_BLK_CMD_ERR;
  1151. }
  1152. }
  1153. if (!brq->data.bytes_xfered)
  1154. return MMC_BLK_RETRY;
  1155. if (mmc_packed_cmd(mq_mrq->cmd_type)) {
  1156. if (unlikely(brq->data.blocks << 9 != brq->data.bytes_xfered))
  1157. return MMC_BLK_PARTIAL;
  1158. else
  1159. return MMC_BLK_SUCCESS;
  1160. }
  1161. if (blk_rq_bytes(req) != brq->data.bytes_xfered)
  1162. return MMC_BLK_PARTIAL;
  1163. return MMC_BLK_SUCCESS;
  1164. }
  1165. static int mmc_blk_packed_err_check(struct mmc_card *card,
  1166. struct mmc_async_req *areq)
  1167. {
  1168. struct mmc_queue_req *mq_rq = container_of(areq, struct mmc_queue_req,
  1169. mmc_active);
  1170. struct request *req = mq_rq->req;
  1171. struct mmc_packed *packed = mq_rq->packed;
  1172. int err, check, status;
  1173. u8 *ext_csd;
  1174. BUG_ON(!packed);
  1175. packed->retries--;
  1176. check = mmc_blk_err_check(card, areq);
  1177. err = get_card_status(card, &status, 0);
  1178. if (err) {
  1179. pr_err("%s: error %d sending status command\n",
  1180. req->rq_disk->disk_name, err);
  1181. return MMC_BLK_ABORT;
  1182. }
  1183. if (status & R1_EXCEPTION_EVENT) {
  1184. err = mmc_get_ext_csd(card, &ext_csd);
  1185. if (err) {
  1186. pr_err("%s: error %d sending ext_csd\n",
  1187. req->rq_disk->disk_name, err);
  1188. return MMC_BLK_ABORT;
  1189. }
  1190. if ((ext_csd[EXT_CSD_EXP_EVENTS_STATUS] &
  1191. EXT_CSD_PACKED_FAILURE) &&
  1192. (ext_csd[EXT_CSD_PACKED_CMD_STATUS] &
  1193. EXT_CSD_PACKED_GENERIC_ERROR)) {
  1194. if (ext_csd[EXT_CSD_PACKED_CMD_STATUS] &
  1195. EXT_CSD_PACKED_INDEXED_ERROR) {
  1196. packed->idx_failure =
  1197. ext_csd[EXT_CSD_PACKED_FAILURE_INDEX] - 1;
  1198. check = MMC_BLK_PARTIAL;
  1199. }
  1200. pr_err("%s: packed cmd failed, nr %u, sectors %u, "
  1201. "failure index: %d\n",
  1202. req->rq_disk->disk_name, packed->nr_entries,
  1203. packed->blocks, packed->idx_failure);
  1204. }
  1205. kfree(ext_csd);
  1206. }
  1207. return check;
  1208. }
  1209. static void mmc_blk_rw_rq_prep(struct mmc_queue_req *mqrq,
  1210. struct mmc_card *card,
  1211. int disable_multi,
  1212. struct mmc_queue *mq)
  1213. {
  1214. u32 readcmd, writecmd;
  1215. struct mmc_blk_request *brq = &mqrq->brq;
  1216. struct request *req = mqrq->req;
  1217. struct mmc_blk_data *md = mq->data;
  1218. bool do_data_tag;
  1219. /*
  1220. * Reliable writes are used to implement Forced Unit Access and
  1221. * are supported only on MMCs.
  1222. */
  1223. bool do_rel_wr = (req->cmd_flags & REQ_FUA) &&
  1224. (rq_data_dir(req) == WRITE) &&
  1225. (md->flags & MMC_BLK_REL_WR);
  1226. memset(brq, 0, sizeof(struct mmc_blk_request));
  1227. brq->mrq.cmd = &brq->cmd;
  1228. brq->mrq.data = &brq->data;
  1229. brq->cmd.arg = blk_rq_pos(req);
  1230. if (!mmc_card_blockaddr(card))
  1231. brq->cmd.arg <<= 9;
  1232. brq->cmd.flags = MMC_RSP_SPI_R1 | MMC_RSP_R1 | MMC_CMD_ADTC;
  1233. brq->data.blksz = 512;
  1234. brq->stop.opcode = MMC_STOP_TRANSMISSION;
  1235. brq->stop.arg = 0;
  1236. brq->data.blocks = blk_rq_sectors(req);
  1237. /*
  1238. * The block layer doesn't support all sector count
  1239. * restrictions, so we need to be prepared for too big
  1240. * requests.
  1241. */
  1242. if (brq->data.blocks > card->host->max_blk_count)
  1243. brq->data.blocks = card->host->max_blk_count;
  1244. if (brq->data.blocks > 1) {
  1245. /*
  1246. * After a read error, we redo the request one sector
  1247. * at a time in order to accurately determine which
  1248. * sectors can be read successfully.
  1249. */
  1250. if (disable_multi)
  1251. brq->data.blocks = 1;
  1252. /*
  1253. * Some controllers have HW issues while operating
  1254. * in multiple I/O mode
  1255. */
  1256. if (card->host->ops->multi_io_quirk)
  1257. brq->data.blocks = card->host->ops->multi_io_quirk(card,
  1258. (rq_data_dir(req) == READ) ?
  1259. MMC_DATA_READ : MMC_DATA_WRITE,
  1260. brq->data.blocks);
  1261. }
  1262. if (brq->data.blocks > 1 || do_rel_wr) {
  1263. /* SPI multiblock writes terminate using a special
  1264. * token, not a STOP_TRANSMISSION request.
  1265. */
  1266. if (!mmc_host_is_spi(card->host) ||
  1267. rq_data_dir(req) == READ)
  1268. brq->mrq.stop = &brq->stop;
  1269. readcmd = MMC_READ_MULTIPLE_BLOCK;
  1270. writecmd = MMC_WRITE_MULTIPLE_BLOCK;
  1271. } else {
  1272. brq->mrq.stop = NULL;
  1273. readcmd = MMC_READ_SINGLE_BLOCK;
  1274. writecmd = MMC_WRITE_BLOCK;
  1275. }
  1276. if (rq_data_dir(req) == READ) {
  1277. brq->cmd.opcode = readcmd;
  1278. brq->data.flags = MMC_DATA_READ;
  1279. if (brq->mrq.stop)
  1280. brq->stop.flags = MMC_RSP_SPI_R1 | MMC_RSP_R1 |
  1281. MMC_CMD_AC;
  1282. } else {
  1283. brq->cmd.opcode = writecmd;
  1284. brq->data.flags = MMC_DATA_WRITE;
  1285. if (brq->mrq.stop)
  1286. brq->stop.flags = MMC_RSP_SPI_R1B | MMC_RSP_R1B |
  1287. MMC_CMD_AC;
  1288. }
  1289. if (do_rel_wr)
  1290. mmc_apply_rel_rw(brq, card, req);
  1291. /*
  1292. * Data tag is used only during writing meta data to speed
  1293. * up write and any subsequent read of this meta data
  1294. */
  1295. do_data_tag = (card->ext_csd.data_tag_unit_size) &&
  1296. (req->cmd_flags & REQ_META) &&
  1297. (rq_data_dir(req) == WRITE) &&
  1298. ((brq->data.blocks * brq->data.blksz) >=
  1299. card->ext_csd.data_tag_unit_size);
  1300. /*
  1301. * Pre-defined multi-block transfers are preferable to
  1302. * open ended-ones (and necessary for reliable writes).
  1303. * However, it is not sufficient to just send CMD23,
  1304. * and avoid the final CMD12, as on an error condition
  1305. * CMD12 (stop) needs to be sent anyway. This, coupled
  1306. * with Auto-CMD23 enhancements provided by some
  1307. * hosts, means that the complexity of dealing
  1308. * with this is best left to the host. If CMD23 is
  1309. * supported by card and host, we'll fill sbc in and let
  1310. * the host deal with handling it correctly. This means
  1311. * that for hosts that don't expose MMC_CAP_CMD23, no
  1312. * change of behavior will be observed.
  1313. *
  1314. * N.B: Some MMC cards experience perf degradation.
  1315. * We'll avoid using CMD23-bounded multiblock writes for
  1316. * these, while retaining features like reliable writes.
  1317. */
  1318. if ((md->flags & MMC_BLK_CMD23) && mmc_op_multi(brq->cmd.opcode) &&
  1319. (do_rel_wr || !(card->quirks & MMC_QUIRK_BLK_NO_CMD23) ||
  1320. do_data_tag)) {
  1321. brq->sbc.opcode = MMC_SET_BLOCK_COUNT;
  1322. brq->sbc.arg = brq->data.blocks |
  1323. (do_rel_wr ? (1 << 31) : 0) |
  1324. (do_data_tag ? (1 << 29) : 0);
  1325. brq->sbc.flags = MMC_RSP_R1 | MMC_CMD_AC;
  1326. brq->mrq.sbc = &brq->sbc;
  1327. }
  1328. mmc_set_data_timeout(&brq->data, card);
  1329. brq->data.sg = mqrq->sg;
  1330. brq->data.sg_len = mmc_queue_map_sg(mq, mqrq);
  1331. /*
  1332. * Adjust the sg list so it is the same size as the
  1333. * request.
  1334. */
  1335. if (brq->data.blocks != blk_rq_sectors(req)) {
  1336. int i, data_size = brq->data.blocks << 9;
  1337. struct scatterlist *sg;
  1338. for_each_sg(brq->data.sg, sg, brq->data.sg_len, i) {
  1339. data_size -= sg->length;
  1340. if (data_size <= 0) {
  1341. sg->length += data_size;
  1342. i++;
  1343. break;
  1344. }
  1345. }
  1346. brq->data.sg_len = i;
  1347. }
  1348. mqrq->mmc_active.mrq = &brq->mrq;
  1349. mqrq->mmc_active.err_check = mmc_blk_err_check;
  1350. mmc_queue_bounce_pre(mqrq);
  1351. }
  1352. static inline u8 mmc_calc_packed_hdr_segs(struct request_queue *q,
  1353. struct mmc_card *card)
  1354. {
  1355. unsigned int hdr_sz = mmc_large_sector(card) ? 4096 : 512;
  1356. unsigned int max_seg_sz = queue_max_segment_size(q);
  1357. unsigned int len, nr_segs = 0;
  1358. do {
  1359. len = min(hdr_sz, max_seg_sz);
  1360. hdr_sz -= len;
  1361. nr_segs++;
  1362. } while (hdr_sz);
  1363. return nr_segs;
  1364. }
  1365. static u8 mmc_blk_prep_packed_list(struct mmc_queue *mq, struct request *req)
  1366. {
  1367. struct request_queue *q = mq->queue;
  1368. struct mmc_card *card = mq->card;
  1369. struct request *cur = req, *next = NULL;
  1370. struct mmc_blk_data *md = mq->data;
  1371. struct mmc_queue_req *mqrq = mq->mqrq_cur;
  1372. bool en_rel_wr = card->ext_csd.rel_param & EXT_CSD_WR_REL_PARAM_EN;
  1373. unsigned int req_sectors = 0, phys_segments = 0;
  1374. unsigned int max_blk_count, max_phys_segs;
  1375. bool put_back = true;
  1376. u8 max_packed_rw = 0;
  1377. u8 reqs = 0;
  1378. if (!(md->flags & MMC_BLK_PACKED_CMD))
  1379. goto no_packed;
  1380. if ((rq_data_dir(cur) == WRITE) &&
  1381. mmc_host_packed_wr(card->host))
  1382. max_packed_rw = card->ext_csd.max_packed_writes;
  1383. if (max_packed_rw == 0)
  1384. goto no_packed;
  1385. if (mmc_req_rel_wr(cur) &&
  1386. (md->flags & MMC_BLK_REL_WR) && !en_rel_wr)
  1387. goto no_packed;
  1388. if (mmc_large_sector(card) &&
  1389. !IS_ALIGNED(blk_rq_sectors(cur), 8))
  1390. goto no_packed;
  1391. mmc_blk_clear_packed(mqrq);
  1392. max_blk_count = min(card->host->max_blk_count,
  1393. card->host->max_req_size >> 9);
  1394. if (unlikely(max_blk_count > 0xffff))
  1395. max_blk_count = 0xffff;
  1396. max_phys_segs = queue_max_segments(q);
  1397. req_sectors += blk_rq_sectors(cur);
  1398. phys_segments += cur->nr_phys_segments;
  1399. if (rq_data_dir(cur) == WRITE) {
  1400. req_sectors += mmc_large_sector(card) ? 8 : 1;
  1401. phys_segments += mmc_calc_packed_hdr_segs(q, card);
  1402. }
  1403. do {
  1404. if (reqs >= max_packed_rw - 1) {
  1405. put_back = false;
  1406. break;
  1407. }
  1408. spin_lock_irq(q->queue_lock);
  1409. next = blk_fetch_request(q);
  1410. spin_unlock_irq(q->queue_lock);
  1411. if (!next) {
  1412. put_back = false;
  1413. break;
  1414. }
  1415. if (mmc_large_sector(card) &&
  1416. !IS_ALIGNED(blk_rq_sectors(next), 8))
  1417. break;
  1418. if (next->cmd_flags & REQ_DISCARD ||
  1419. next->cmd_flags & REQ_FLUSH)
  1420. break;
  1421. if (rq_data_dir(cur) != rq_data_dir(next))
  1422. break;
  1423. if (mmc_req_rel_wr(next) &&
  1424. (md->flags & MMC_BLK_REL_WR) && !en_rel_wr)
  1425. break;
  1426. req_sectors += blk_rq_sectors(next);
  1427. if (req_sectors > max_blk_count)
  1428. break;
  1429. phys_segments += next->nr_phys_segments;
  1430. if (phys_segments > max_phys_segs)
  1431. break;
  1432. list_add_tail(&next->queuelist, &mqrq->packed->list);
  1433. cur = next;
  1434. reqs++;
  1435. } while (1);
  1436. if (put_back) {
  1437. spin_lock_irq(q->queue_lock);
  1438. blk_requeue_request(q, next);
  1439. spin_unlock_irq(q->queue_lock);
  1440. }
  1441. if (reqs > 0) {
  1442. list_add(&req->queuelist, &mqrq->packed->list);
  1443. mqrq->packed->nr_entries = ++reqs;
  1444. mqrq->packed->retries = reqs;
  1445. return reqs;
  1446. }
  1447. no_packed:
  1448. mqrq->cmd_type = MMC_PACKED_NONE;
  1449. return 0;
  1450. }
  1451. static void mmc_blk_packed_hdr_wrq_prep(struct mmc_queue_req *mqrq,
  1452. struct mmc_card *card,
  1453. struct mmc_queue *mq)
  1454. {
  1455. struct mmc_blk_request *brq = &mqrq->brq;
  1456. struct request *req = mqrq->req;
  1457. struct request *prq;
  1458. struct mmc_blk_data *md = mq->data;
  1459. struct mmc_packed *packed = mqrq->packed;
  1460. bool do_rel_wr, do_data_tag;
  1461. u32 *packed_cmd_hdr;
  1462. u8 hdr_blocks;
  1463. u8 i = 1;
  1464. BUG_ON(!packed);
  1465. mqrq->cmd_type = MMC_PACKED_WRITE;
  1466. packed->blocks = 0;
  1467. packed->idx_failure = MMC_PACKED_NR_IDX;
  1468. packed_cmd_hdr = packed->cmd_hdr;
  1469. memset(packed_cmd_hdr, 0, sizeof(packed->cmd_hdr));
  1470. packed_cmd_hdr[0] = (packed->nr_entries << 16) |
  1471. (PACKED_CMD_WR << 8) | PACKED_CMD_VER;
  1472. hdr_blocks = mmc_large_sector(card) ? 8 : 1;
  1473. /*
  1474. * Argument for each entry of packed group
  1475. */
  1476. list_for_each_entry(prq, &packed->list, queuelist) {
  1477. do_rel_wr = mmc_req_rel_wr(prq) && (md->flags & MMC_BLK_REL_WR);
  1478. do_data_tag = (card->ext_csd.data_tag_unit_size) &&
  1479. (prq->cmd_flags & REQ_META) &&
  1480. (rq_data_dir(prq) == WRITE) &&
  1481. ((brq->data.blocks * brq->data.blksz) >=
  1482. card->ext_csd.data_tag_unit_size);
  1483. /* Argument of CMD23 */
  1484. packed_cmd_hdr[(i * 2)] =
  1485. (do_rel_wr ? MMC_CMD23_ARG_REL_WR : 0) |
  1486. (do_data_tag ? MMC_CMD23_ARG_TAG_REQ : 0) |
  1487. blk_rq_sectors(prq);
  1488. /* Argument of CMD18 or CMD25 */
  1489. packed_cmd_hdr[((i * 2)) + 1] =
  1490. mmc_card_blockaddr(card) ?
  1491. blk_rq_pos(prq) : blk_rq_pos(prq) << 9;
  1492. packed->blocks += blk_rq_sectors(prq);
  1493. i++;
  1494. }
  1495. memset(brq, 0, sizeof(struct mmc_blk_request));
  1496. brq->mrq.cmd = &brq->cmd;
  1497. brq->mrq.data = &brq->data;
  1498. brq->mrq.sbc = &brq->sbc;
  1499. brq->mrq.stop = &brq->stop;
  1500. brq->sbc.opcode = MMC_SET_BLOCK_COUNT;
  1501. brq->sbc.arg = MMC_CMD23_ARG_PACKED | (packed->blocks + hdr_blocks);
  1502. brq->sbc.flags = MMC_RSP_R1 | MMC_CMD_AC;
  1503. brq->cmd.opcode = MMC_WRITE_MULTIPLE_BLOCK;
  1504. brq->cmd.arg = blk_rq_pos(req);
  1505. if (!mmc_card_blockaddr(card))
  1506. brq->cmd.arg <<= 9;
  1507. brq->cmd.flags = MMC_RSP_SPI_R1 | MMC_RSP_R1 | MMC_CMD_ADTC;
  1508. brq->data.blksz = 512;
  1509. brq->data.blocks = packed->blocks + hdr_blocks;
  1510. brq->data.flags = MMC_DATA_WRITE;
  1511. brq->stop.opcode = MMC_STOP_TRANSMISSION;
  1512. brq->stop.arg = 0;
  1513. brq->stop.flags = MMC_RSP_SPI_R1B | MMC_RSP_R1B | MMC_CMD_AC;
  1514. mmc_set_data_timeout(&brq->data, card);
  1515. brq->data.sg = mqrq->sg;
  1516. brq->data.sg_len = mmc_queue_map_sg(mq, mqrq);
  1517. mqrq->mmc_active.mrq = &brq->mrq;
  1518. mqrq->mmc_active.err_check = mmc_blk_packed_err_check;
  1519. mmc_queue_bounce_pre(mqrq);
  1520. }
  1521. static int mmc_blk_cmd_err(struct mmc_blk_data *md, struct mmc_card *card,
  1522. struct mmc_blk_request *brq, struct request *req,
  1523. int ret)
  1524. {
  1525. struct mmc_queue_req *mq_rq;
  1526. mq_rq = container_of(brq, struct mmc_queue_req, brq);
  1527. /*
  1528. * If this is an SD card and we're writing, we can first
  1529. * mark the known good sectors as ok.
  1530. *
  1531. * If the card is not SD, we can still ok written sectors
  1532. * as reported by the controller (which might be less than
  1533. * the real number of written sectors, but never more).
  1534. */
  1535. if (mmc_card_sd(card)) {
  1536. u32 blocks;
  1537. blocks = mmc_sd_num_wr_blocks(card);
  1538. if (blocks != (u32)-1) {
  1539. ret = blk_end_request(req, 0, blocks << 9);
  1540. }
  1541. } else {
  1542. if (!mmc_packed_cmd(mq_rq->cmd_type))
  1543. ret = blk_end_request(req, 0, brq->data.bytes_xfered);
  1544. }
  1545. return ret;
  1546. }
  1547. static int mmc_blk_end_packed_req(struct mmc_queue_req *mq_rq)
  1548. {
  1549. struct request *prq;
  1550. struct mmc_packed *packed = mq_rq->packed;
  1551. int idx = packed->idx_failure, i = 0;
  1552. int ret = 0;
  1553. BUG_ON(!packed);
  1554. while (!list_empty(&packed->list)) {
  1555. prq = list_entry_rq(packed->list.next);
  1556. if (idx == i) {
  1557. /* retry from error index */
  1558. packed->nr_entries -= idx;
  1559. mq_rq->req = prq;
  1560. ret = 1;
  1561. if (packed->nr_entries == MMC_PACKED_NR_SINGLE) {
  1562. list_del_init(&prq->queuelist);
  1563. mmc_blk_clear_packed(mq_rq);
  1564. }
  1565. return ret;
  1566. }
  1567. list_del_init(&prq->queuelist);
  1568. blk_end_request(prq, 0, blk_rq_bytes(prq));
  1569. i++;
  1570. }
  1571. mmc_blk_clear_packed(mq_rq);
  1572. return ret;
  1573. }
  1574. static void mmc_blk_abort_packed_req(struct mmc_queue_req *mq_rq)
  1575. {
  1576. struct request *prq;
  1577. struct mmc_packed *packed = mq_rq->packed;
  1578. BUG_ON(!packed);
  1579. while (!list_empty(&packed->list)) {
  1580. prq = list_entry_rq(packed->list.next);
  1581. list_del_init(&prq->queuelist);
  1582. blk_end_request(prq, -EIO, blk_rq_bytes(prq));
  1583. }
  1584. mmc_blk_clear_packed(mq_rq);
  1585. }
  1586. static void mmc_blk_revert_packed_req(struct mmc_queue *mq,
  1587. struct mmc_queue_req *mq_rq)
  1588. {
  1589. struct request *prq;
  1590. struct request_queue *q = mq->queue;
  1591. struct mmc_packed *packed = mq_rq->packed;
  1592. BUG_ON(!packed);
  1593. while (!list_empty(&packed->list)) {
  1594. prq = list_entry_rq(packed->list.prev);
  1595. if (prq->queuelist.prev != &packed->list) {
  1596. list_del_init(&prq->queuelist);
  1597. spin_lock_irq(q->queue_lock);
  1598. blk_requeue_request(mq->queue, prq);
  1599. spin_unlock_irq(q->queue_lock);
  1600. } else {
  1601. list_del_init(&prq->queuelist);
  1602. }
  1603. }
  1604. mmc_blk_clear_packed(mq_rq);
  1605. }
  1606. static int mmc_blk_issue_rw_rq(struct mmc_queue *mq, struct request *rqc)
  1607. {
  1608. struct mmc_blk_data *md = mq->data;
  1609. struct mmc_card *card = md->queue.card;
  1610. struct mmc_blk_request *brq = &mq->mqrq_cur->brq;
  1611. int ret = 1, disable_multi = 0, retry = 0, type, retune_retry_done = 0;
  1612. enum mmc_blk_status status;
  1613. struct mmc_queue_req *mq_rq;
  1614. struct request *req = rqc;
  1615. struct mmc_async_req *areq;
  1616. const u8 packed_nr = 2;
  1617. u8 reqs = 0;
  1618. if (!rqc && !mq->mqrq_prev->req)
  1619. return 0;
  1620. if (rqc)
  1621. reqs = mmc_blk_prep_packed_list(mq, rqc);
  1622. do {
  1623. if (rqc) {
  1624. /*
  1625. * When 4KB native sector is enabled, only 8 blocks
  1626. * multiple read or write is allowed
  1627. */
  1628. if ((brq->data.blocks & 0x07) &&
  1629. (card->ext_csd.data_sector_size == 4096)) {
  1630. pr_err("%s: Transfer size is not 4KB sector size aligned\n",
  1631. req->rq_disk->disk_name);
  1632. mq_rq = mq->mqrq_cur;
  1633. goto cmd_abort;
  1634. }
  1635. if (reqs >= packed_nr)
  1636. mmc_blk_packed_hdr_wrq_prep(mq->mqrq_cur,
  1637. card, mq);
  1638. else
  1639. mmc_blk_rw_rq_prep(mq->mqrq_cur, card, 0, mq);
  1640. areq = &mq->mqrq_cur->mmc_active;
  1641. } else
  1642. areq = NULL;
  1643. areq = mmc_start_req(card->host, areq, (int *) &status);
  1644. if (!areq) {
  1645. if (status == MMC_BLK_NEW_REQUEST)
  1646. mq->flags |= MMC_QUEUE_NEW_REQUEST;
  1647. return 0;
  1648. }
  1649. mq_rq = container_of(areq, struct mmc_queue_req, mmc_active);
  1650. brq = &mq_rq->brq;
  1651. req = mq_rq->req;
  1652. type = rq_data_dir(req) == READ ? MMC_BLK_READ : MMC_BLK_WRITE;
  1653. mmc_queue_bounce_post(mq_rq);
  1654. switch (status) {
  1655. case MMC_BLK_SUCCESS:
  1656. case MMC_BLK_PARTIAL:
  1657. /*
  1658. * A block was successfully transferred.
  1659. */
  1660. mmc_blk_reset_success(md, type);
  1661. if (mmc_packed_cmd(mq_rq->cmd_type)) {
  1662. ret = mmc_blk_end_packed_req(mq_rq);
  1663. break;
  1664. } else {
  1665. ret = blk_end_request(req, 0,
  1666. brq->data.bytes_xfered);
  1667. }
  1668. /*
  1669. * If the blk_end_request function returns non-zero even
  1670. * though all data has been transferred and no errors
  1671. * were returned by the host controller, it's a bug.
  1672. */
  1673. if (status == MMC_BLK_SUCCESS && ret) {
  1674. pr_err("%s BUG rq_tot %d d_xfer %d\n",
  1675. __func__, blk_rq_bytes(req),
  1676. brq->data.bytes_xfered);
  1677. rqc = NULL;
  1678. goto cmd_abort;
  1679. }
  1680. break;
  1681. case MMC_BLK_CMD_ERR:
  1682. ret = mmc_blk_cmd_err(md, card, brq, req, ret);
  1683. if (mmc_blk_reset(md, card->host, type))
  1684. goto cmd_abort;
  1685. if (!ret)
  1686. goto start_new_req;
  1687. break;
  1688. case MMC_BLK_RETRY:
  1689. retune_retry_done = brq->retune_retry_done;
  1690. if (retry++ < 5)
  1691. break;
  1692. /* Fall through */
  1693. case MMC_BLK_ABORT:
  1694. if (!mmc_blk_reset(md, card->host, type))
  1695. break;
  1696. goto cmd_abort;
  1697. case MMC_BLK_DATA_ERR: {
  1698. int err;
  1699. err = mmc_blk_reset(md, card->host, type);
  1700. if (!err)
  1701. break;
  1702. if (err == -ENODEV ||
  1703. mmc_packed_cmd(mq_rq->cmd_type))
  1704. goto cmd_abort;
  1705. /* Fall through */
  1706. }
  1707. case MMC_BLK_ECC_ERR:
  1708. if (brq->data.blocks > 1) {
  1709. /* Redo read one sector at a time */
  1710. pr_warn("%s: retrying using single block read\n",
  1711. req->rq_disk->disk_name);
  1712. disable_multi = 1;
  1713. break;
  1714. }
  1715. /*
  1716. * After an error, we redo I/O one sector at a
  1717. * time, so we only reach here after trying to
  1718. * read a single sector.
  1719. */
  1720. ret = blk_end_request(req, -EIO,
  1721. brq->data.blksz);
  1722. if (!ret)
  1723. goto start_new_req;
  1724. break;
  1725. case MMC_BLK_NOMEDIUM:
  1726. goto cmd_abort;
  1727. default:
  1728. pr_err("%s: Unhandled return value (%d)",
  1729. req->rq_disk->disk_name, status);
  1730. goto cmd_abort;
  1731. }
  1732. if (ret) {
  1733. if (mmc_packed_cmd(mq_rq->cmd_type)) {
  1734. if (!mq_rq->packed->retries)
  1735. goto cmd_abort;
  1736. mmc_blk_packed_hdr_wrq_prep(mq_rq, card, mq);
  1737. mmc_start_req(card->host,
  1738. &mq_rq->mmc_active, NULL);
  1739. } else {
  1740. /*
  1741. * In case of a incomplete request
  1742. * prepare it again and resend.
  1743. */
  1744. mmc_blk_rw_rq_prep(mq_rq, card,
  1745. disable_multi, mq);
  1746. mmc_start_req(card->host,
  1747. &mq_rq->mmc_active, NULL);
  1748. }
  1749. mq_rq->brq.retune_retry_done = retune_retry_done;
  1750. }
  1751. } while (ret);
  1752. return 1;
  1753. cmd_abort:
  1754. if (mmc_packed_cmd(mq_rq->cmd_type)) {
  1755. mmc_blk_abort_packed_req(mq_rq);
  1756. } else {
  1757. if (mmc_card_removed(card))
  1758. req->cmd_flags |= REQ_QUIET;
  1759. while (ret)
  1760. ret = blk_end_request(req, -EIO,
  1761. blk_rq_cur_bytes(req));
  1762. }
  1763. start_new_req:
  1764. if (rqc) {
  1765. if (mmc_card_removed(card)) {
  1766. rqc->cmd_flags |= REQ_QUIET;
  1767. blk_end_request_all(rqc, -EIO);
  1768. } else {
  1769. /*
  1770. * If current request is packed, it needs to put back.
  1771. */
  1772. if (mmc_packed_cmd(mq->mqrq_cur->cmd_type))
  1773. mmc_blk_revert_packed_req(mq, mq->mqrq_cur);
  1774. mmc_blk_rw_rq_prep(mq->mqrq_cur, card, 0, mq);
  1775. mmc_start_req(card->host,
  1776. &mq->mqrq_cur->mmc_active, NULL);
  1777. }
  1778. }
  1779. return 0;
  1780. }
  1781. static int mmc_blk_issue_rq(struct mmc_queue *mq, struct request *req)
  1782. {
  1783. int ret;
  1784. struct mmc_blk_data *md = mq->data;
  1785. struct mmc_card *card = md->queue.card;
  1786. struct mmc_host *host = card->host;
  1787. unsigned long flags;
  1788. unsigned int cmd_flags = req ? req->cmd_flags : 0;
  1789. if (req && !mq->mqrq_prev->req)
  1790. /* claim host only for the first request */
  1791. mmc_get_card(card);
  1792. ret = mmc_blk_part_switch(card, md);
  1793. if (ret) {
  1794. if (req) {
  1795. blk_end_request_all(req, -EIO);
  1796. }
  1797. ret = 0;
  1798. goto out;
  1799. }
  1800. mq->flags &= ~MMC_QUEUE_NEW_REQUEST;
  1801. if (cmd_flags & REQ_DISCARD) {
  1802. /* complete ongoing async transfer before issuing discard */
  1803. if (card->host->areq)
  1804. mmc_blk_issue_rw_rq(mq, NULL);
  1805. if (req->cmd_flags & REQ_SECURE)
  1806. ret = mmc_blk_issue_secdiscard_rq(mq, req);
  1807. else
  1808. ret = mmc_blk_issue_discard_rq(mq, req);
  1809. } else if (cmd_flags & REQ_FLUSH) {
  1810. /* complete ongoing async transfer before issuing flush */
  1811. if (card->host->areq)
  1812. mmc_blk_issue_rw_rq(mq, NULL);
  1813. ret = mmc_blk_issue_flush(mq, req);
  1814. } else {
  1815. if (!req && host->areq) {
  1816. spin_lock_irqsave(&host->context_info.lock, flags);
  1817. host->context_info.is_waiting_last_req = true;
  1818. spin_unlock_irqrestore(&host->context_info.lock, flags);
  1819. }
  1820. ret = mmc_blk_issue_rw_rq(mq, req);
  1821. }
  1822. out:
  1823. if ((!req && !(mq->flags & MMC_QUEUE_NEW_REQUEST)) ||
  1824. (cmd_flags & MMC_REQ_SPECIAL_MASK))
  1825. /*
  1826. * Release host when there are no more requests
  1827. * and after special request(discard, flush) is done.
  1828. * In case sepecial request, there is no reentry to
  1829. * the 'mmc_blk_issue_rq' with 'mqrq_prev->req'.
  1830. */
  1831. mmc_put_card(card);
  1832. return ret;
  1833. }
  1834. static inline int mmc_blk_readonly(struct mmc_card *card)
  1835. {
  1836. return mmc_card_readonly(card) ||
  1837. !(card->csd.cmdclass & CCC_BLOCK_WRITE);
  1838. }
  1839. static struct mmc_blk_data *mmc_blk_alloc_req(struct mmc_card *card,
  1840. struct device *parent,
  1841. sector_t size,
  1842. bool default_ro,
  1843. const char *subname,
  1844. int area_type)
  1845. {
  1846. struct mmc_blk_data *md;
  1847. int devidx, ret;
  1848. devidx = find_first_zero_bit(dev_use, max_devices);
  1849. if (devidx >= max_devices)
  1850. return ERR_PTR(-ENOSPC);
  1851. __set_bit(devidx, dev_use);
  1852. md = kzalloc(sizeof(struct mmc_blk_data), GFP_KERNEL);
  1853. if (!md) {
  1854. ret = -ENOMEM;
  1855. goto out;
  1856. }
  1857. /*
  1858. * !subname implies we are creating main mmc_blk_data that will be
  1859. * associated with mmc_card with dev_set_drvdata. Due to device
  1860. * partitions, devidx will not coincide with a per-physical card
  1861. * index anymore so we keep track of a name index.
  1862. */
  1863. if (!subname) {
  1864. md->name_idx = find_first_zero_bit(name_use, max_devices);
  1865. __set_bit(md->name_idx, name_use);
  1866. } else
  1867. md->name_idx = ((struct mmc_blk_data *)
  1868. dev_to_disk(parent)->private_data)->name_idx;
  1869. md->area_type = area_type;
  1870. /*
  1871. * Set the read-only status based on the supported commands
  1872. * and the write protect switch.
  1873. */
  1874. md->read_only = mmc_blk_readonly(card);
  1875. md->disk = alloc_disk(perdev_minors);
  1876. if (md->disk == NULL) {
  1877. ret = -ENOMEM;
  1878. goto err_kfree;
  1879. }
  1880. spin_lock_init(&md->lock);
  1881. INIT_LIST_HEAD(&md->part);
  1882. md->usage = 1;
  1883. ret = mmc_init_queue(&md->queue, card, &md->lock, subname);
  1884. if (ret)
  1885. goto err_putdisk;
  1886. md->queue.issue_fn = mmc_blk_issue_rq;
  1887. md->queue.data = md;
  1888. md->disk->major = MMC_BLOCK_MAJOR;
  1889. md->disk->first_minor = devidx * perdev_minors;
  1890. md->disk->fops = &mmc_bdops;
  1891. md->disk->private_data = md;
  1892. md->disk->queue = md->queue.queue;
  1893. md->disk->driverfs_dev = parent;
  1894. set_disk_ro(md->disk, md->read_only || default_ro);
  1895. md->disk->flags = GENHD_FL_EXT_DEVT;
  1896. if (area_type & (MMC_BLK_DATA_AREA_RPMB | MMC_BLK_DATA_AREA_BOOT))
  1897. md->disk->flags |= GENHD_FL_NO_PART_SCAN;
  1898. /*
  1899. * As discussed on lkml, GENHD_FL_REMOVABLE should:
  1900. *
  1901. * - be set for removable media with permanent block devices
  1902. * - be unset for removable block devices with permanent media
  1903. *
  1904. * Since MMC block devices clearly fall under the second
  1905. * case, we do not set GENHD_FL_REMOVABLE. Userspace
  1906. * should use the block device creation/destruction hotplug
  1907. * messages to tell when the card is present.
  1908. */
  1909. snprintf(md->disk->disk_name, sizeof(md->disk->disk_name),
  1910. "mmcblk%u%s", md->name_idx, subname ? subname : "");
  1911. if (mmc_card_mmc(card))
  1912. blk_queue_logical_block_size(md->queue.queue,
  1913. card->ext_csd.data_sector_size);
  1914. else
  1915. blk_queue_logical_block_size(md->queue.queue, 512);
  1916. set_capacity(md->disk, size);
  1917. if (mmc_host_cmd23(card->host)) {
  1918. if (mmc_card_mmc(card) ||
  1919. (mmc_card_sd(card) &&
  1920. card->scr.cmds & SD_SCR_CMD23_SUPPORT))
  1921. md->flags |= MMC_BLK_CMD23;
  1922. }
  1923. if (mmc_card_mmc(card) &&
  1924. md->flags & MMC_BLK_CMD23 &&
  1925. ((card->ext_csd.rel_param & EXT_CSD_WR_REL_PARAM_EN) ||
  1926. card->ext_csd.rel_sectors)) {
  1927. md->flags |= MMC_BLK_REL_WR;
  1928. blk_queue_flush(md->queue.queue, REQ_FLUSH | REQ_FUA);
  1929. }
  1930. if (mmc_card_mmc(card) &&
  1931. (area_type == MMC_BLK_DATA_AREA_MAIN) &&
  1932. (md->flags & MMC_BLK_CMD23) &&
  1933. card->ext_csd.packed_event_en) {
  1934. if (!mmc_packed_init(&md->queue, card))
  1935. md->flags |= MMC_BLK_PACKED_CMD;
  1936. }
  1937. return md;
  1938. err_putdisk:
  1939. put_disk(md->disk);
  1940. err_kfree:
  1941. kfree(md);
  1942. out:
  1943. return ERR_PTR(ret);
  1944. }
  1945. static struct mmc_blk_data *mmc_blk_alloc(struct mmc_card *card)
  1946. {
  1947. sector_t size;
  1948. if (!mmc_card_sd(card) && mmc_card_blockaddr(card)) {
  1949. /*
  1950. * The EXT_CSD sector count is in number or 512 byte
  1951. * sectors.
  1952. */
  1953. size = card->ext_csd.sectors;
  1954. } else {
  1955. /*
  1956. * The CSD capacity field is in units of read_blkbits.
  1957. * set_capacity takes units of 512 bytes.
  1958. */
  1959. size = (typeof(sector_t))card->csd.capacity
  1960. << (card->csd.read_blkbits - 9);
  1961. }
  1962. return mmc_blk_alloc_req(card, &card->dev, size, false, NULL,
  1963. MMC_BLK_DATA_AREA_MAIN);
  1964. }
  1965. static int mmc_blk_alloc_part(struct mmc_card *card,
  1966. struct mmc_blk_data *md,
  1967. unsigned int part_type,
  1968. sector_t size,
  1969. bool default_ro,
  1970. const char *subname,
  1971. int area_type)
  1972. {
  1973. char cap_str[10];
  1974. struct mmc_blk_data *part_md;
  1975. part_md = mmc_blk_alloc_req(card, disk_to_dev(md->disk), size, default_ro,
  1976. subname, area_type);
  1977. if (IS_ERR(part_md))
  1978. return PTR_ERR(part_md);
  1979. part_md->part_type = part_type;
  1980. list_add(&part_md->part, &md->part);
  1981. string_get_size((u64)get_capacity(part_md->disk), 512, STRING_UNITS_2,
  1982. cap_str, sizeof(cap_str));
  1983. pr_info("%s: %s %s partition %u %s\n",
  1984. part_md->disk->disk_name, mmc_card_id(card),
  1985. mmc_card_name(card), part_md->part_type, cap_str);
  1986. return 0;
  1987. }
  1988. /* MMC Physical partitions consist of two boot partitions and
  1989. * up to four general purpose partitions.
  1990. * For each partition enabled in EXT_CSD a block device will be allocatedi
  1991. * to provide access to the partition.
  1992. */
  1993. static int mmc_blk_alloc_parts(struct mmc_card *card, struct mmc_blk_data *md)
  1994. {
  1995. int idx, ret = 0;
  1996. if (!mmc_card_mmc(card))
  1997. return 0;
  1998. for (idx = 0; idx < card->nr_parts; idx++) {
  1999. if (card->part[idx].size) {
  2000. ret = mmc_blk_alloc_part(card, md,
  2001. card->part[idx].part_cfg,
  2002. card->part[idx].size >> 9,
  2003. card->part[idx].force_ro,
  2004. card->part[idx].name,
  2005. card->part[idx].area_type);
  2006. if (ret)
  2007. return ret;
  2008. }
  2009. }
  2010. return ret;
  2011. }
  2012. static void mmc_blk_remove_req(struct mmc_blk_data *md)
  2013. {
  2014. struct mmc_card *card;
  2015. if (md) {
  2016. /*
  2017. * Flush remaining requests and free queues. It
  2018. * is freeing the queue that stops new requests
  2019. * from being accepted.
  2020. */
  2021. card = md->queue.card;
  2022. mmc_cleanup_queue(&md->queue);
  2023. if (md->flags & MMC_BLK_PACKED_CMD)
  2024. mmc_packed_clean(&md->queue);
  2025. if (md->disk->flags & GENHD_FL_UP) {
  2026. device_remove_file(disk_to_dev(md->disk), &md->force_ro);
  2027. if ((md->area_type & MMC_BLK_DATA_AREA_BOOT) &&
  2028. card->ext_csd.boot_ro_lockable)
  2029. device_remove_file(disk_to_dev(md->disk),
  2030. &md->power_ro_lock);
  2031. del_gendisk(md->disk);
  2032. }
  2033. mmc_blk_put(md);
  2034. }
  2035. }
  2036. static void mmc_blk_remove_parts(struct mmc_card *card,
  2037. struct mmc_blk_data *md)
  2038. {
  2039. struct list_head *pos, *q;
  2040. struct mmc_blk_data *part_md;
  2041. __clear_bit(md->name_idx, name_use);
  2042. list_for_each_safe(pos, q, &md->part) {
  2043. part_md = list_entry(pos, struct mmc_blk_data, part);
  2044. list_del(pos);
  2045. mmc_blk_remove_req(part_md);
  2046. }
  2047. }
  2048. static int mmc_add_disk(struct mmc_blk_data *md)
  2049. {
  2050. int ret;
  2051. struct mmc_card *card = md->queue.card;
  2052. add_disk(md->disk);
  2053. md->force_ro.show = force_ro_show;
  2054. md->force_ro.store = force_ro_store;
  2055. sysfs_attr_init(&md->force_ro.attr);
  2056. md->force_ro.attr.name = "force_ro";
  2057. md->force_ro.attr.mode = S_IRUGO | S_IWUSR;
  2058. ret = device_create_file(disk_to_dev(md->disk), &md->force_ro);
  2059. if (ret)
  2060. goto force_ro_fail;
  2061. if ((md->area_type & MMC_BLK_DATA_AREA_BOOT) &&
  2062. card->ext_csd.boot_ro_lockable) {
  2063. umode_t mode;
  2064. if (card->ext_csd.boot_ro_lock & EXT_CSD_BOOT_WP_B_PWR_WP_DIS)
  2065. mode = S_IRUGO;
  2066. else
  2067. mode = S_IRUGO | S_IWUSR;
  2068. md->power_ro_lock.show = power_ro_lock_show;
  2069. md->power_ro_lock.store = power_ro_lock_store;
  2070. sysfs_attr_init(&md->power_ro_lock.attr);
  2071. md->power_ro_lock.attr.mode = mode;
  2072. md->power_ro_lock.attr.name =
  2073. "ro_lock_until_next_power_on";
  2074. ret = device_create_file(disk_to_dev(md->disk),
  2075. &md->power_ro_lock);
  2076. if (ret)
  2077. goto power_ro_lock_fail;
  2078. }
  2079. return ret;
  2080. power_ro_lock_fail:
  2081. device_remove_file(disk_to_dev(md->disk), &md->force_ro);
  2082. force_ro_fail:
  2083. del_gendisk(md->disk);
  2084. return ret;
  2085. }
  2086. #define CID_MANFID_SANDISK 0x2
  2087. #define CID_MANFID_TOSHIBA 0x11
  2088. #define CID_MANFID_MICRON 0x13
  2089. #define CID_MANFID_SAMSUNG 0x15
  2090. #define CID_MANFID_KINGSTON 0x70
  2091. static const struct mmc_fixup blk_fixups[] =
  2092. {
  2093. MMC_FIXUP("SEM02G", CID_MANFID_SANDISK, 0x100, add_quirk,
  2094. MMC_QUIRK_INAND_CMD38),
  2095. MMC_FIXUP("SEM04G", CID_MANFID_SANDISK, 0x100, add_quirk,
  2096. MMC_QUIRK_INAND_CMD38),
  2097. MMC_FIXUP("SEM08G", CID_MANFID_SANDISK, 0x100, add_quirk,
  2098. MMC_QUIRK_INAND_CMD38),
  2099. MMC_FIXUP("SEM16G", CID_MANFID_SANDISK, 0x100, add_quirk,
  2100. MMC_QUIRK_INAND_CMD38),
  2101. MMC_FIXUP("SEM32G", CID_MANFID_SANDISK, 0x100, add_quirk,
  2102. MMC_QUIRK_INAND_CMD38),
  2103. /*
  2104. * Some MMC cards experience performance degradation with CMD23
  2105. * instead of CMD12-bounded multiblock transfers. For now we'll
  2106. * black list what's bad...
  2107. * - Certain Toshiba cards.
  2108. *
  2109. * N.B. This doesn't affect SD cards.
  2110. */
  2111. MMC_FIXUP("SDMB-32", CID_MANFID_SANDISK, CID_OEMID_ANY, add_quirk_mmc,
  2112. MMC_QUIRK_BLK_NO_CMD23),
  2113. MMC_FIXUP("SDM032", CID_MANFID_SANDISK, CID_OEMID_ANY, add_quirk_mmc,
  2114. MMC_QUIRK_BLK_NO_CMD23),
  2115. MMC_FIXUP("MMC08G", CID_MANFID_TOSHIBA, CID_OEMID_ANY, add_quirk_mmc,
  2116. MMC_QUIRK_BLK_NO_CMD23),
  2117. MMC_FIXUP("MMC16G", CID_MANFID_TOSHIBA, CID_OEMID_ANY, add_quirk_mmc,
  2118. MMC_QUIRK_BLK_NO_CMD23),
  2119. MMC_FIXUP("MMC32G", CID_MANFID_TOSHIBA, CID_OEMID_ANY, add_quirk_mmc,
  2120. MMC_QUIRK_BLK_NO_CMD23),
  2121. /*
  2122. * Some Micron MMC cards needs longer data read timeout than
  2123. * indicated in CSD.
  2124. */
  2125. MMC_FIXUP(CID_NAME_ANY, CID_MANFID_MICRON, 0x200, add_quirk_mmc,
  2126. MMC_QUIRK_LONG_READ_TIME),
  2127. /*
  2128. * On these Samsung MoviNAND parts, performing secure erase or
  2129. * secure trim can result in unrecoverable corruption due to a
  2130. * firmware bug.
  2131. */
  2132. MMC_FIXUP("M8G2FA", CID_MANFID_SAMSUNG, CID_OEMID_ANY, add_quirk_mmc,
  2133. MMC_QUIRK_SEC_ERASE_TRIM_BROKEN),
  2134. MMC_FIXUP("MAG4FA", CID_MANFID_SAMSUNG, CID_OEMID_ANY, add_quirk_mmc,
  2135. MMC_QUIRK_SEC_ERASE_TRIM_BROKEN),
  2136. MMC_FIXUP("MBG8FA", CID_MANFID_SAMSUNG, CID_OEMID_ANY, add_quirk_mmc,
  2137. MMC_QUIRK_SEC_ERASE_TRIM_BROKEN),
  2138. MMC_FIXUP("MCGAFA", CID_MANFID_SAMSUNG, CID_OEMID_ANY, add_quirk_mmc,
  2139. MMC_QUIRK_SEC_ERASE_TRIM_BROKEN),
  2140. MMC_FIXUP("VAL00M", CID_MANFID_SAMSUNG, CID_OEMID_ANY, add_quirk_mmc,
  2141. MMC_QUIRK_SEC_ERASE_TRIM_BROKEN),
  2142. MMC_FIXUP("VYL00M", CID_MANFID_SAMSUNG, CID_OEMID_ANY, add_quirk_mmc,
  2143. MMC_QUIRK_SEC_ERASE_TRIM_BROKEN),
  2144. MMC_FIXUP("KYL00M", CID_MANFID_SAMSUNG, CID_OEMID_ANY, add_quirk_mmc,
  2145. MMC_QUIRK_SEC_ERASE_TRIM_BROKEN),
  2146. MMC_FIXUP("VZL00M", CID_MANFID_SAMSUNG, CID_OEMID_ANY, add_quirk_mmc,
  2147. MMC_QUIRK_SEC_ERASE_TRIM_BROKEN),
  2148. /*
  2149. * On Some Kingston eMMCs, performing trim can result in
  2150. * unrecoverable data conrruption occasionally due to a firmware bug.
  2151. */
  2152. MMC_FIXUP("V10008", CID_MANFID_KINGSTON, CID_OEMID_ANY, add_quirk_mmc,
  2153. MMC_QUIRK_TRIM_BROKEN),
  2154. MMC_FIXUP("V10016", CID_MANFID_KINGSTON, CID_OEMID_ANY, add_quirk_mmc,
  2155. MMC_QUIRK_TRIM_BROKEN),
  2156. END_FIXUP
  2157. };
  2158. static int mmc_blk_probe(struct mmc_card *card)
  2159. {
  2160. struct mmc_blk_data *md, *part_md;
  2161. char cap_str[10];
  2162. /*
  2163. * Check that the card supports the command class(es) we need.
  2164. */
  2165. if (!(card->csd.cmdclass & CCC_BLOCK_READ))
  2166. return -ENODEV;
  2167. mmc_fixup_device(card, blk_fixups);
  2168. md = mmc_blk_alloc(card);
  2169. if (IS_ERR(md))
  2170. return PTR_ERR(md);
  2171. string_get_size((u64)get_capacity(md->disk), 512, STRING_UNITS_2,
  2172. cap_str, sizeof(cap_str));
  2173. pr_info("%s: %s %s %s %s\n",
  2174. md->disk->disk_name, mmc_card_id(card), mmc_card_name(card),
  2175. cap_str, md->read_only ? "(ro)" : "");
  2176. if (mmc_blk_alloc_parts(card, md))
  2177. goto out;
  2178. dev_set_drvdata(&card->dev, md);
  2179. if (mmc_add_disk(md))
  2180. goto out;
  2181. list_for_each_entry(part_md, &md->part, part) {
  2182. if (mmc_add_disk(part_md))
  2183. goto out;
  2184. }
  2185. pm_runtime_set_autosuspend_delay(&card->dev, 3000);
  2186. pm_runtime_use_autosuspend(&card->dev);
  2187. /*
  2188. * Don't enable runtime PM for SD-combo cards here. Leave that
  2189. * decision to be taken during the SDIO init sequence instead.
  2190. */
  2191. if (card->type != MMC_TYPE_SD_COMBO) {
  2192. pm_runtime_set_active(&card->dev);
  2193. pm_runtime_enable(&card->dev);
  2194. }
  2195. return 0;
  2196. out:
  2197. mmc_blk_remove_parts(card, md);
  2198. mmc_blk_remove_req(md);
  2199. return 0;
  2200. }
  2201. static void mmc_blk_remove(struct mmc_card *card)
  2202. {
  2203. struct mmc_blk_data *md = dev_get_drvdata(&card->dev);
  2204. mmc_blk_remove_parts(card, md);
  2205. pm_runtime_get_sync(&card->dev);
  2206. mmc_claim_host(card->host);
  2207. mmc_blk_part_switch(card, md);
  2208. mmc_release_host(card->host);
  2209. if (card->type != MMC_TYPE_SD_COMBO)
  2210. pm_runtime_disable(&card->dev);
  2211. pm_runtime_put_noidle(&card->dev);
  2212. mmc_blk_remove_req(md);
  2213. dev_set_drvdata(&card->dev, NULL);
  2214. }
  2215. static int _mmc_blk_suspend(struct mmc_card *card)
  2216. {
  2217. struct mmc_blk_data *part_md;
  2218. struct mmc_blk_data *md = dev_get_drvdata(&card->dev);
  2219. if (md) {
  2220. mmc_queue_suspend(&md->queue);
  2221. list_for_each_entry(part_md, &md->part, part) {
  2222. mmc_queue_suspend(&part_md->queue);
  2223. }
  2224. }
  2225. return 0;
  2226. }
  2227. static void mmc_blk_shutdown(struct mmc_card *card)
  2228. {
  2229. _mmc_blk_suspend(card);
  2230. }
  2231. #ifdef CONFIG_PM_SLEEP
  2232. static int mmc_blk_suspend(struct device *dev)
  2233. {
  2234. struct mmc_card *card = mmc_dev_to_card(dev);
  2235. return _mmc_blk_suspend(card);
  2236. }
  2237. static int mmc_blk_resume(struct device *dev)
  2238. {
  2239. struct mmc_blk_data *part_md;
  2240. struct mmc_blk_data *md = dev_get_drvdata(dev);
  2241. if (md) {
  2242. /*
  2243. * Resume involves the card going into idle state,
  2244. * so current partition is always the main one.
  2245. */
  2246. md->part_curr = md->part_type;
  2247. mmc_queue_resume(&md->queue);
  2248. list_for_each_entry(part_md, &md->part, part) {
  2249. mmc_queue_resume(&part_md->queue);
  2250. }
  2251. }
  2252. return 0;
  2253. }
  2254. #endif
  2255. static SIMPLE_DEV_PM_OPS(mmc_blk_pm_ops, mmc_blk_suspend, mmc_blk_resume);
  2256. static struct mmc_driver mmc_driver = {
  2257. .drv = {
  2258. .name = "mmcblk",
  2259. .pm = &mmc_blk_pm_ops,
  2260. },
  2261. .probe = mmc_blk_probe,
  2262. .remove = mmc_blk_remove,
  2263. .shutdown = mmc_blk_shutdown,
  2264. };
  2265. static int __init mmc_blk_init(void)
  2266. {
  2267. int res;
  2268. if (perdev_minors != CONFIG_MMC_BLOCK_MINORS)
  2269. pr_info("mmcblk: using %d minors per device\n", perdev_minors);
  2270. max_devices = min(MAX_DEVICES, (1 << MINORBITS) / perdev_minors);
  2271. res = register_blkdev(MMC_BLOCK_MAJOR, "mmc");
  2272. if (res)
  2273. goto out;
  2274. res = mmc_register_driver(&mmc_driver);
  2275. if (res)
  2276. goto out2;
  2277. return 0;
  2278. out2:
  2279. unregister_blkdev(MMC_BLOCK_MAJOR, "mmc");
  2280. out:
  2281. return res;
  2282. }
  2283. static void __exit mmc_blk_exit(void)
  2284. {
  2285. mmc_unregister_driver(&mmc_driver);
  2286. unregister_blkdev(MMC_BLOCK_MAJOR, "mmc");
  2287. }
  2288. module_init(mmc_blk_init);
  2289. module_exit(mmc_blk_exit);
  2290. MODULE_LICENSE("GPL");
  2291. MODULE_DESCRIPTION("Multimedia Card (MMC) block device driver");