eba.c 38 KB

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  1. /*
  2. * Copyright (c) International Business Machines Corp., 2006
  3. *
  4. * This program is free software; you can redistribute it and/or modify
  5. * it under the terms of the GNU General Public License as published by
  6. * the Free Software Foundation; either version 2 of the License, or
  7. * (at your option) any later version.
  8. *
  9. * This program is distributed in the hope that it will be useful,
  10. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See
  12. * the GNU General Public License for more details.
  13. *
  14. * You should have received a copy of the GNU General Public License
  15. * along with this program; if not, write to the Free Software
  16. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  17. *
  18. * Author: Artem Bityutskiy (Битюцкий Артём)
  19. */
  20. /*
  21. * The UBI Eraseblock Association (EBA) sub-system.
  22. *
  23. * This sub-system is responsible for I/O to/from logical eraseblock.
  24. *
  25. * Although in this implementation the EBA table is fully kept and managed in
  26. * RAM, which assumes poor scalability, it might be (partially) maintained on
  27. * flash in future implementations.
  28. *
  29. * The EBA sub-system implements per-logical eraseblock locking. Before
  30. * accessing a logical eraseblock it is locked for reading or writing. The
  31. * per-logical eraseblock locking is implemented by means of the lock tree. The
  32. * lock tree is an RB-tree which refers all the currently locked logical
  33. * eraseblocks. The lock tree elements are &struct ubi_ltree_entry objects.
  34. * They are indexed by (@vol_id, @lnum) pairs.
  35. *
  36. * EBA also maintains the global sequence counter which is incremented each
  37. * time a logical eraseblock is mapped to a physical eraseblock and it is
  38. * stored in the volume identifier header. This means that each VID header has
  39. * a unique sequence number. The sequence number is only increased an we assume
  40. * 64 bits is enough to never overflow.
  41. */
  42. #include <linux/slab.h>
  43. #include <linux/crc32.h>
  44. #include <linux/err.h>
  45. #include "ubi.h"
  46. /* Number of physical eraseblocks reserved for atomic LEB change operation */
  47. #define EBA_RESERVED_PEBS 1
  48. /**
  49. * next_sqnum - get next sequence number.
  50. * @ubi: UBI device description object
  51. *
  52. * This function returns next sequence number to use, which is just the current
  53. * global sequence counter value. It also increases the global sequence
  54. * counter.
  55. */
  56. unsigned long long ubi_next_sqnum(struct ubi_device *ubi)
  57. {
  58. unsigned long long sqnum;
  59. spin_lock(&ubi->ltree_lock);
  60. sqnum = ubi->global_sqnum++;
  61. spin_unlock(&ubi->ltree_lock);
  62. return sqnum;
  63. }
  64. /**
  65. * ubi_get_compat - get compatibility flags of a volume.
  66. * @ubi: UBI device description object
  67. * @vol_id: volume ID
  68. *
  69. * This function returns compatibility flags for an internal volume. User
  70. * volumes have no compatibility flags, so %0 is returned.
  71. */
  72. static int ubi_get_compat(const struct ubi_device *ubi, int vol_id)
  73. {
  74. if (vol_id == UBI_LAYOUT_VOLUME_ID)
  75. return UBI_LAYOUT_VOLUME_COMPAT;
  76. return 0;
  77. }
  78. /**
  79. * ltree_lookup - look up the lock tree.
  80. * @ubi: UBI device description object
  81. * @vol_id: volume ID
  82. * @lnum: logical eraseblock number
  83. *
  84. * This function returns a pointer to the corresponding &struct ubi_ltree_entry
  85. * object if the logical eraseblock is locked and %NULL if it is not.
  86. * @ubi->ltree_lock has to be locked.
  87. */
  88. static struct ubi_ltree_entry *ltree_lookup(struct ubi_device *ubi, int vol_id,
  89. int lnum)
  90. {
  91. struct rb_node *p;
  92. p = ubi->ltree.rb_node;
  93. while (p) {
  94. struct ubi_ltree_entry *le;
  95. le = rb_entry(p, struct ubi_ltree_entry, rb);
  96. if (vol_id < le->vol_id)
  97. p = p->rb_left;
  98. else if (vol_id > le->vol_id)
  99. p = p->rb_right;
  100. else {
  101. if (lnum < le->lnum)
  102. p = p->rb_left;
  103. else if (lnum > le->lnum)
  104. p = p->rb_right;
  105. else
  106. return le;
  107. }
  108. }
  109. return NULL;
  110. }
  111. /**
  112. * ltree_add_entry - add new entry to the lock tree.
  113. * @ubi: UBI device description object
  114. * @vol_id: volume ID
  115. * @lnum: logical eraseblock number
  116. *
  117. * This function adds new entry for logical eraseblock (@vol_id, @lnum) to the
  118. * lock tree. If such entry is already there, its usage counter is increased.
  119. * Returns pointer to the lock tree entry or %-ENOMEM if memory allocation
  120. * failed.
  121. */
  122. static struct ubi_ltree_entry *ltree_add_entry(struct ubi_device *ubi,
  123. int vol_id, int lnum)
  124. {
  125. struct ubi_ltree_entry *le, *le1, *le_free;
  126. le = kmalloc(sizeof(struct ubi_ltree_entry), GFP_NOFS);
  127. if (!le)
  128. return ERR_PTR(-ENOMEM);
  129. le->users = 0;
  130. init_rwsem(&le->mutex);
  131. le->vol_id = vol_id;
  132. le->lnum = lnum;
  133. spin_lock(&ubi->ltree_lock);
  134. le1 = ltree_lookup(ubi, vol_id, lnum);
  135. if (le1) {
  136. /*
  137. * This logical eraseblock is already locked. The newly
  138. * allocated lock entry is not needed.
  139. */
  140. le_free = le;
  141. le = le1;
  142. } else {
  143. struct rb_node **p, *parent = NULL;
  144. /*
  145. * No lock entry, add the newly allocated one to the
  146. * @ubi->ltree RB-tree.
  147. */
  148. le_free = NULL;
  149. p = &ubi->ltree.rb_node;
  150. while (*p) {
  151. parent = *p;
  152. le1 = rb_entry(parent, struct ubi_ltree_entry, rb);
  153. if (vol_id < le1->vol_id)
  154. p = &(*p)->rb_left;
  155. else if (vol_id > le1->vol_id)
  156. p = &(*p)->rb_right;
  157. else {
  158. ubi_assert(lnum != le1->lnum);
  159. if (lnum < le1->lnum)
  160. p = &(*p)->rb_left;
  161. else
  162. p = &(*p)->rb_right;
  163. }
  164. }
  165. rb_link_node(&le->rb, parent, p);
  166. rb_insert_color(&le->rb, &ubi->ltree);
  167. }
  168. le->users += 1;
  169. spin_unlock(&ubi->ltree_lock);
  170. kfree(le_free);
  171. return le;
  172. }
  173. /**
  174. * leb_read_lock - lock logical eraseblock for reading.
  175. * @ubi: UBI device description object
  176. * @vol_id: volume ID
  177. * @lnum: logical eraseblock number
  178. *
  179. * This function locks a logical eraseblock for reading. Returns zero in case
  180. * of success and a negative error code in case of failure.
  181. */
  182. static int leb_read_lock(struct ubi_device *ubi, int vol_id, int lnum)
  183. {
  184. struct ubi_ltree_entry *le;
  185. le = ltree_add_entry(ubi, vol_id, lnum);
  186. if (IS_ERR(le))
  187. return PTR_ERR(le);
  188. down_read(&le->mutex);
  189. return 0;
  190. }
  191. /**
  192. * leb_read_unlock - unlock logical eraseblock.
  193. * @ubi: UBI device description object
  194. * @vol_id: volume ID
  195. * @lnum: logical eraseblock number
  196. */
  197. static void leb_read_unlock(struct ubi_device *ubi, int vol_id, int lnum)
  198. {
  199. struct ubi_ltree_entry *le;
  200. spin_lock(&ubi->ltree_lock);
  201. le = ltree_lookup(ubi, vol_id, lnum);
  202. le->users -= 1;
  203. ubi_assert(le->users >= 0);
  204. up_read(&le->mutex);
  205. if (le->users == 0) {
  206. rb_erase(&le->rb, &ubi->ltree);
  207. kfree(le);
  208. }
  209. spin_unlock(&ubi->ltree_lock);
  210. }
  211. /**
  212. * leb_write_lock - lock logical eraseblock for writing.
  213. * @ubi: UBI device description object
  214. * @vol_id: volume ID
  215. * @lnum: logical eraseblock number
  216. *
  217. * This function locks a logical eraseblock for writing. Returns zero in case
  218. * of success and a negative error code in case of failure.
  219. */
  220. static int leb_write_lock(struct ubi_device *ubi, int vol_id, int lnum)
  221. {
  222. struct ubi_ltree_entry *le;
  223. le = ltree_add_entry(ubi, vol_id, lnum);
  224. if (IS_ERR(le))
  225. return PTR_ERR(le);
  226. down_write(&le->mutex);
  227. return 0;
  228. }
  229. /**
  230. * leb_write_lock - lock logical eraseblock for writing.
  231. * @ubi: UBI device description object
  232. * @vol_id: volume ID
  233. * @lnum: logical eraseblock number
  234. *
  235. * This function locks a logical eraseblock for writing if there is no
  236. * contention and does nothing if there is contention. Returns %0 in case of
  237. * success, %1 in case of contention, and and a negative error code in case of
  238. * failure.
  239. */
  240. static int leb_write_trylock(struct ubi_device *ubi, int vol_id, int lnum)
  241. {
  242. struct ubi_ltree_entry *le;
  243. le = ltree_add_entry(ubi, vol_id, lnum);
  244. if (IS_ERR(le))
  245. return PTR_ERR(le);
  246. if (down_write_trylock(&le->mutex))
  247. return 0;
  248. /* Contention, cancel */
  249. spin_lock(&ubi->ltree_lock);
  250. le->users -= 1;
  251. ubi_assert(le->users >= 0);
  252. if (le->users == 0) {
  253. rb_erase(&le->rb, &ubi->ltree);
  254. kfree(le);
  255. }
  256. spin_unlock(&ubi->ltree_lock);
  257. return 1;
  258. }
  259. /**
  260. * leb_write_unlock - unlock logical eraseblock.
  261. * @ubi: UBI device description object
  262. * @vol_id: volume ID
  263. * @lnum: logical eraseblock number
  264. */
  265. static void leb_write_unlock(struct ubi_device *ubi, int vol_id, int lnum)
  266. {
  267. struct ubi_ltree_entry *le;
  268. spin_lock(&ubi->ltree_lock);
  269. le = ltree_lookup(ubi, vol_id, lnum);
  270. le->users -= 1;
  271. ubi_assert(le->users >= 0);
  272. up_write(&le->mutex);
  273. if (le->users == 0) {
  274. rb_erase(&le->rb, &ubi->ltree);
  275. kfree(le);
  276. }
  277. spin_unlock(&ubi->ltree_lock);
  278. }
  279. /**
  280. * ubi_eba_unmap_leb - un-map logical eraseblock.
  281. * @ubi: UBI device description object
  282. * @vol: volume description object
  283. * @lnum: logical eraseblock number
  284. *
  285. * This function un-maps logical eraseblock @lnum and schedules corresponding
  286. * physical eraseblock for erasure. Returns zero in case of success and a
  287. * negative error code in case of failure.
  288. */
  289. int ubi_eba_unmap_leb(struct ubi_device *ubi, struct ubi_volume *vol,
  290. int lnum)
  291. {
  292. int err, pnum, vol_id = vol->vol_id;
  293. if (ubi->ro_mode)
  294. return -EROFS;
  295. err = leb_write_lock(ubi, vol_id, lnum);
  296. if (err)
  297. return err;
  298. pnum = vol->eba_tbl[lnum];
  299. if (pnum < 0)
  300. /* This logical eraseblock is already unmapped */
  301. goto out_unlock;
  302. dbg_eba("erase LEB %d:%d, PEB %d", vol_id, lnum, pnum);
  303. down_read(&ubi->fm_sem);
  304. vol->eba_tbl[lnum] = UBI_LEB_UNMAPPED;
  305. up_read(&ubi->fm_sem);
  306. err = ubi_wl_put_peb(ubi, vol_id, lnum, pnum, 0);
  307. out_unlock:
  308. leb_write_unlock(ubi, vol_id, lnum);
  309. return err;
  310. }
  311. /**
  312. * ubi_eba_read_leb - read data.
  313. * @ubi: UBI device description object
  314. * @vol: volume description object
  315. * @lnum: logical eraseblock number
  316. * @buf: buffer to store the read data
  317. * @offset: offset from where to read
  318. * @len: how many bytes to read
  319. * @check: data CRC check flag
  320. *
  321. * If the logical eraseblock @lnum is unmapped, @buf is filled with 0xFF
  322. * bytes. The @check flag only makes sense for static volumes and forces
  323. * eraseblock data CRC checking.
  324. *
  325. * In case of success this function returns zero. In case of a static volume,
  326. * if data CRC mismatches - %-EBADMSG is returned. %-EBADMSG may also be
  327. * returned for any volume type if an ECC error was detected by the MTD device
  328. * driver. Other negative error cored may be returned in case of other errors.
  329. */
  330. int ubi_eba_read_leb(struct ubi_device *ubi, struct ubi_volume *vol, int lnum,
  331. void *buf, int offset, int len, int check)
  332. {
  333. int err, pnum, scrub = 0, vol_id = vol->vol_id;
  334. struct ubi_vid_hdr *vid_hdr;
  335. uint32_t uninitialized_var(crc);
  336. err = leb_read_lock(ubi, vol_id, lnum);
  337. if (err)
  338. return err;
  339. pnum = vol->eba_tbl[lnum];
  340. if (pnum < 0) {
  341. /*
  342. * The logical eraseblock is not mapped, fill the whole buffer
  343. * with 0xFF bytes. The exception is static volumes for which
  344. * it is an error to read unmapped logical eraseblocks.
  345. */
  346. dbg_eba("read %d bytes from offset %d of LEB %d:%d (unmapped)",
  347. len, offset, vol_id, lnum);
  348. leb_read_unlock(ubi, vol_id, lnum);
  349. ubi_assert(vol->vol_type != UBI_STATIC_VOLUME);
  350. memset(buf, 0xFF, len);
  351. return 0;
  352. }
  353. dbg_eba("read %d bytes from offset %d of LEB %d:%d, PEB %d",
  354. len, offset, vol_id, lnum, pnum);
  355. if (vol->vol_type == UBI_DYNAMIC_VOLUME)
  356. check = 0;
  357. retry:
  358. if (check) {
  359. vid_hdr = ubi_zalloc_vid_hdr(ubi, GFP_NOFS);
  360. if (!vid_hdr) {
  361. err = -ENOMEM;
  362. goto out_unlock;
  363. }
  364. err = ubi_io_read_vid_hdr(ubi, pnum, vid_hdr, 1);
  365. if (err && err != UBI_IO_BITFLIPS) {
  366. if (err > 0) {
  367. /*
  368. * The header is either absent or corrupted.
  369. * The former case means there is a bug -
  370. * switch to read-only mode just in case.
  371. * The latter case means a real corruption - we
  372. * may try to recover data. FIXME: but this is
  373. * not implemented.
  374. */
  375. if (err == UBI_IO_BAD_HDR_EBADMSG ||
  376. err == UBI_IO_BAD_HDR) {
  377. ubi_warn("corrupted VID header at PEB %d, LEB %d:%d",
  378. pnum, vol_id, lnum);
  379. err = -EBADMSG;
  380. } else
  381. ubi_ro_mode(ubi);
  382. }
  383. goto out_free;
  384. } else if (err == UBI_IO_BITFLIPS)
  385. scrub = 1;
  386. ubi_assert(lnum < be32_to_cpu(vid_hdr->used_ebs));
  387. ubi_assert(len == be32_to_cpu(vid_hdr->data_size));
  388. crc = be32_to_cpu(vid_hdr->data_crc);
  389. ubi_free_vid_hdr(ubi, vid_hdr);
  390. }
  391. err = ubi_io_read_data(ubi, buf, pnum, offset, len);
  392. if (err) {
  393. if (err == UBI_IO_BITFLIPS)
  394. scrub = 1;
  395. else if (mtd_is_eccerr(err)) {
  396. if (vol->vol_type == UBI_DYNAMIC_VOLUME)
  397. goto out_unlock;
  398. scrub = 1;
  399. if (!check) {
  400. ubi_msg("force data checking");
  401. check = 1;
  402. goto retry;
  403. }
  404. } else
  405. goto out_unlock;
  406. }
  407. if (check) {
  408. uint32_t crc1 = crc32(UBI_CRC32_INIT, buf, len);
  409. if (crc1 != crc) {
  410. ubi_warn("CRC error: calculated %#08x, must be %#08x",
  411. crc1, crc);
  412. err = -EBADMSG;
  413. goto out_unlock;
  414. }
  415. }
  416. if (scrub)
  417. err = ubi_wl_scrub_peb(ubi, pnum);
  418. leb_read_unlock(ubi, vol_id, lnum);
  419. return err;
  420. out_free:
  421. ubi_free_vid_hdr(ubi, vid_hdr);
  422. out_unlock:
  423. leb_read_unlock(ubi, vol_id, lnum);
  424. return err;
  425. }
  426. /**
  427. * recover_peb - recover from write failure.
  428. * @ubi: UBI device description object
  429. * @pnum: the physical eraseblock to recover
  430. * @vol_id: volume ID
  431. * @lnum: logical eraseblock number
  432. * @buf: data which was not written because of the write failure
  433. * @offset: offset of the failed write
  434. * @len: how many bytes should have been written
  435. *
  436. * This function is called in case of a write failure and moves all good data
  437. * from the potentially bad physical eraseblock to a good physical eraseblock.
  438. * This function also writes the data which was not written due to the failure.
  439. * Returns new physical eraseblock number in case of success, and a negative
  440. * error code in case of failure.
  441. */
  442. static int recover_peb(struct ubi_device *ubi, int pnum, int vol_id, int lnum,
  443. const void *buf, int offset, int len)
  444. {
  445. int err, idx = vol_id2idx(ubi, vol_id), new_pnum, data_size, tries = 0;
  446. struct ubi_volume *vol = ubi->volumes[idx];
  447. struct ubi_vid_hdr *vid_hdr;
  448. vid_hdr = ubi_zalloc_vid_hdr(ubi, GFP_NOFS);
  449. if (!vid_hdr)
  450. return -ENOMEM;
  451. retry:
  452. new_pnum = ubi_wl_get_peb(ubi);
  453. if (new_pnum < 0) {
  454. ubi_free_vid_hdr(ubi, vid_hdr);
  455. return new_pnum;
  456. }
  457. ubi_msg("recover PEB %d, move data to PEB %d", pnum, new_pnum);
  458. err = ubi_io_read_vid_hdr(ubi, pnum, vid_hdr, 1);
  459. if (err && err != UBI_IO_BITFLIPS) {
  460. if (err > 0)
  461. err = -EIO;
  462. goto out_put;
  463. }
  464. vid_hdr->sqnum = cpu_to_be64(ubi_next_sqnum(ubi));
  465. err = ubi_io_write_vid_hdr(ubi, new_pnum, vid_hdr);
  466. if (err)
  467. goto write_error;
  468. data_size = offset + len;
  469. mutex_lock(&ubi->buf_mutex);
  470. memset(ubi->peb_buf + offset, 0xFF, len);
  471. /* Read everything before the area where the write failure happened */
  472. if (offset > 0) {
  473. err = ubi_io_read_data(ubi, ubi->peb_buf, pnum, 0, offset);
  474. if (err && err != UBI_IO_BITFLIPS)
  475. goto out_unlock;
  476. }
  477. memcpy(ubi->peb_buf + offset, buf, len);
  478. err = ubi_io_write_data(ubi, ubi->peb_buf, new_pnum, 0, data_size);
  479. if (err) {
  480. mutex_unlock(&ubi->buf_mutex);
  481. goto write_error;
  482. }
  483. mutex_unlock(&ubi->buf_mutex);
  484. ubi_free_vid_hdr(ubi, vid_hdr);
  485. down_read(&ubi->fm_sem);
  486. vol->eba_tbl[lnum] = new_pnum;
  487. up_read(&ubi->fm_sem);
  488. ubi_wl_put_peb(ubi, vol_id, lnum, pnum, 1);
  489. ubi_msg("data was successfully recovered");
  490. return 0;
  491. out_unlock:
  492. mutex_unlock(&ubi->buf_mutex);
  493. out_put:
  494. ubi_wl_put_peb(ubi, vol_id, lnum, new_pnum, 1);
  495. ubi_free_vid_hdr(ubi, vid_hdr);
  496. return err;
  497. write_error:
  498. /*
  499. * Bad luck? This physical eraseblock is bad too? Crud. Let's try to
  500. * get another one.
  501. */
  502. ubi_warn("failed to write to PEB %d", new_pnum);
  503. ubi_wl_put_peb(ubi, vol_id, lnum, new_pnum, 1);
  504. if (++tries > UBI_IO_RETRIES) {
  505. ubi_free_vid_hdr(ubi, vid_hdr);
  506. return err;
  507. }
  508. ubi_msg("try again");
  509. goto retry;
  510. }
  511. /**
  512. * ubi_eba_write_leb - write data to dynamic volume.
  513. * @ubi: UBI device description object
  514. * @vol: volume description object
  515. * @lnum: logical eraseblock number
  516. * @buf: the data to write
  517. * @offset: offset within the logical eraseblock where to write
  518. * @len: how many bytes to write
  519. *
  520. * This function writes data to logical eraseblock @lnum of a dynamic volume
  521. * @vol. Returns zero in case of success and a negative error code in case
  522. * of failure. In case of error, it is possible that something was still
  523. * written to the flash media, but may be some garbage.
  524. */
  525. int ubi_eba_write_leb(struct ubi_device *ubi, struct ubi_volume *vol, int lnum,
  526. const void *buf, int offset, int len)
  527. {
  528. int err, pnum, tries = 0, vol_id = vol->vol_id;
  529. struct ubi_vid_hdr *vid_hdr;
  530. if (ubi->ro_mode)
  531. return -EROFS;
  532. err = leb_write_lock(ubi, vol_id, lnum);
  533. if (err)
  534. return err;
  535. pnum = vol->eba_tbl[lnum];
  536. if (pnum >= 0) {
  537. dbg_eba("write %d bytes at offset %d of LEB %d:%d, PEB %d",
  538. len, offset, vol_id, lnum, pnum);
  539. err = ubi_io_write_data(ubi, buf, pnum, offset, len);
  540. if (err) {
  541. ubi_warn("failed to write data to PEB %d", pnum);
  542. if (err == -EIO && ubi->bad_allowed)
  543. err = recover_peb(ubi, pnum, vol_id, lnum, buf,
  544. offset, len);
  545. if (err)
  546. ubi_ro_mode(ubi);
  547. }
  548. leb_write_unlock(ubi, vol_id, lnum);
  549. return err;
  550. }
  551. /*
  552. * The logical eraseblock is not mapped. We have to get a free physical
  553. * eraseblock and write the volume identifier header there first.
  554. */
  555. vid_hdr = ubi_zalloc_vid_hdr(ubi, GFP_NOFS);
  556. if (!vid_hdr) {
  557. leb_write_unlock(ubi, vol_id, lnum);
  558. return -ENOMEM;
  559. }
  560. vid_hdr->vol_type = UBI_VID_DYNAMIC;
  561. vid_hdr->sqnum = cpu_to_be64(ubi_next_sqnum(ubi));
  562. vid_hdr->vol_id = cpu_to_be32(vol_id);
  563. vid_hdr->lnum = cpu_to_be32(lnum);
  564. vid_hdr->compat = ubi_get_compat(ubi, vol_id);
  565. vid_hdr->data_pad = cpu_to_be32(vol->data_pad);
  566. retry:
  567. pnum = ubi_wl_get_peb(ubi);
  568. if (pnum < 0) {
  569. ubi_free_vid_hdr(ubi, vid_hdr);
  570. leb_write_unlock(ubi, vol_id, lnum);
  571. return pnum;
  572. }
  573. dbg_eba("write VID hdr and %d bytes at offset %d of LEB %d:%d, PEB %d",
  574. len, offset, vol_id, lnum, pnum);
  575. err = ubi_io_write_vid_hdr(ubi, pnum, vid_hdr);
  576. if (err) {
  577. ubi_warn("failed to write VID header to LEB %d:%d, PEB %d",
  578. vol_id, lnum, pnum);
  579. goto write_error;
  580. }
  581. if (len) {
  582. err = ubi_io_write_data(ubi, buf, pnum, offset, len);
  583. if (err) {
  584. ubi_warn("failed to write %d bytes at offset %d of LEB %d:%d, PEB %d",
  585. len, offset, vol_id, lnum, pnum);
  586. goto write_error;
  587. }
  588. }
  589. down_read(&ubi->fm_sem);
  590. vol->eba_tbl[lnum] = pnum;
  591. up_read(&ubi->fm_sem);
  592. leb_write_unlock(ubi, vol_id, lnum);
  593. ubi_free_vid_hdr(ubi, vid_hdr);
  594. return 0;
  595. write_error:
  596. if (err != -EIO || !ubi->bad_allowed) {
  597. ubi_ro_mode(ubi);
  598. leb_write_unlock(ubi, vol_id, lnum);
  599. ubi_free_vid_hdr(ubi, vid_hdr);
  600. return err;
  601. }
  602. /*
  603. * Fortunately, this is the first write operation to this physical
  604. * eraseblock, so just put it and request a new one. We assume that if
  605. * this physical eraseblock went bad, the erase code will handle that.
  606. */
  607. err = ubi_wl_put_peb(ubi, vol_id, lnum, pnum, 1);
  608. if (err || ++tries > UBI_IO_RETRIES) {
  609. ubi_ro_mode(ubi);
  610. leb_write_unlock(ubi, vol_id, lnum);
  611. ubi_free_vid_hdr(ubi, vid_hdr);
  612. return err;
  613. }
  614. vid_hdr->sqnum = cpu_to_be64(ubi_next_sqnum(ubi));
  615. ubi_msg("try another PEB");
  616. goto retry;
  617. }
  618. /**
  619. * ubi_eba_write_leb_st - write data to static volume.
  620. * @ubi: UBI device description object
  621. * @vol: volume description object
  622. * @lnum: logical eraseblock number
  623. * @buf: data to write
  624. * @len: how many bytes to write
  625. * @used_ebs: how many logical eraseblocks will this volume contain
  626. *
  627. * This function writes data to logical eraseblock @lnum of static volume
  628. * @vol. The @used_ebs argument should contain total number of logical
  629. * eraseblock in this static volume.
  630. *
  631. * When writing to the last logical eraseblock, the @len argument doesn't have
  632. * to be aligned to the minimal I/O unit size. Instead, it has to be equivalent
  633. * to the real data size, although the @buf buffer has to contain the
  634. * alignment. In all other cases, @len has to be aligned.
  635. *
  636. * It is prohibited to write more than once to logical eraseblocks of static
  637. * volumes. This function returns zero in case of success and a negative error
  638. * code in case of failure.
  639. */
  640. int ubi_eba_write_leb_st(struct ubi_device *ubi, struct ubi_volume *vol,
  641. int lnum, const void *buf, int len, int used_ebs)
  642. {
  643. int err, pnum, tries = 0, data_size = len, vol_id = vol->vol_id;
  644. struct ubi_vid_hdr *vid_hdr;
  645. uint32_t crc;
  646. if (ubi->ro_mode)
  647. return -EROFS;
  648. if (lnum == used_ebs - 1)
  649. /* If this is the last LEB @len may be unaligned */
  650. len = ALIGN(data_size, ubi->min_io_size);
  651. else
  652. ubi_assert(!(len & (ubi->min_io_size - 1)));
  653. vid_hdr = ubi_zalloc_vid_hdr(ubi, GFP_NOFS);
  654. if (!vid_hdr)
  655. return -ENOMEM;
  656. err = leb_write_lock(ubi, vol_id, lnum);
  657. if (err) {
  658. ubi_free_vid_hdr(ubi, vid_hdr);
  659. return err;
  660. }
  661. vid_hdr->sqnum = cpu_to_be64(ubi_next_sqnum(ubi));
  662. vid_hdr->vol_id = cpu_to_be32(vol_id);
  663. vid_hdr->lnum = cpu_to_be32(lnum);
  664. vid_hdr->compat = ubi_get_compat(ubi, vol_id);
  665. vid_hdr->data_pad = cpu_to_be32(vol->data_pad);
  666. crc = crc32(UBI_CRC32_INIT, buf, data_size);
  667. vid_hdr->vol_type = UBI_VID_STATIC;
  668. vid_hdr->data_size = cpu_to_be32(data_size);
  669. vid_hdr->used_ebs = cpu_to_be32(used_ebs);
  670. vid_hdr->data_crc = cpu_to_be32(crc);
  671. retry:
  672. pnum = ubi_wl_get_peb(ubi);
  673. if (pnum < 0) {
  674. ubi_free_vid_hdr(ubi, vid_hdr);
  675. leb_write_unlock(ubi, vol_id, lnum);
  676. return pnum;
  677. }
  678. dbg_eba("write VID hdr and %d bytes at LEB %d:%d, PEB %d, used_ebs %d",
  679. len, vol_id, lnum, pnum, used_ebs);
  680. err = ubi_io_write_vid_hdr(ubi, pnum, vid_hdr);
  681. if (err) {
  682. ubi_warn("failed to write VID header to LEB %d:%d, PEB %d",
  683. vol_id, lnum, pnum);
  684. goto write_error;
  685. }
  686. err = ubi_io_write_data(ubi, buf, pnum, 0, len);
  687. if (err) {
  688. ubi_warn("failed to write %d bytes of data to PEB %d",
  689. len, pnum);
  690. goto write_error;
  691. }
  692. ubi_assert(vol->eba_tbl[lnum] < 0);
  693. down_read(&ubi->fm_sem);
  694. vol->eba_tbl[lnum] = pnum;
  695. up_read(&ubi->fm_sem);
  696. leb_write_unlock(ubi, vol_id, lnum);
  697. ubi_free_vid_hdr(ubi, vid_hdr);
  698. return 0;
  699. write_error:
  700. if (err != -EIO || !ubi->bad_allowed) {
  701. /*
  702. * This flash device does not admit of bad eraseblocks or
  703. * something nasty and unexpected happened. Switch to read-only
  704. * mode just in case.
  705. */
  706. ubi_ro_mode(ubi);
  707. leb_write_unlock(ubi, vol_id, lnum);
  708. ubi_free_vid_hdr(ubi, vid_hdr);
  709. return err;
  710. }
  711. err = ubi_wl_put_peb(ubi, vol_id, lnum, pnum, 1);
  712. if (err || ++tries > UBI_IO_RETRIES) {
  713. ubi_ro_mode(ubi);
  714. leb_write_unlock(ubi, vol_id, lnum);
  715. ubi_free_vid_hdr(ubi, vid_hdr);
  716. return err;
  717. }
  718. vid_hdr->sqnum = cpu_to_be64(ubi_next_sqnum(ubi));
  719. ubi_msg("try another PEB");
  720. goto retry;
  721. }
  722. /*
  723. * ubi_eba_atomic_leb_change - change logical eraseblock atomically.
  724. * @ubi: UBI device description object
  725. * @vol: volume description object
  726. * @lnum: logical eraseblock number
  727. * @buf: data to write
  728. * @len: how many bytes to write
  729. *
  730. * This function changes the contents of a logical eraseblock atomically. @buf
  731. * has to contain new logical eraseblock data, and @len - the length of the
  732. * data, which has to be aligned. This function guarantees that in case of an
  733. * unclean reboot the old contents is preserved. Returns zero in case of
  734. * success and a negative error code in case of failure.
  735. *
  736. * UBI reserves one LEB for the "atomic LEB change" operation, so only one
  737. * LEB change may be done at a time. This is ensured by @ubi->alc_mutex.
  738. */
  739. int ubi_eba_atomic_leb_change(struct ubi_device *ubi, struct ubi_volume *vol,
  740. int lnum, const void *buf, int len)
  741. {
  742. int err, pnum, tries = 0, vol_id = vol->vol_id;
  743. struct ubi_vid_hdr *vid_hdr;
  744. uint32_t crc;
  745. if (ubi->ro_mode)
  746. return -EROFS;
  747. if (len == 0) {
  748. /*
  749. * Special case when data length is zero. In this case the LEB
  750. * has to be unmapped and mapped somewhere else.
  751. */
  752. err = ubi_eba_unmap_leb(ubi, vol, lnum);
  753. if (err)
  754. return err;
  755. return ubi_eba_write_leb(ubi, vol, lnum, NULL, 0, 0);
  756. }
  757. vid_hdr = ubi_zalloc_vid_hdr(ubi, GFP_NOFS);
  758. if (!vid_hdr)
  759. return -ENOMEM;
  760. mutex_lock(&ubi->alc_mutex);
  761. err = leb_write_lock(ubi, vol_id, lnum);
  762. if (err)
  763. goto out_mutex;
  764. vid_hdr->sqnum = cpu_to_be64(ubi_next_sqnum(ubi));
  765. vid_hdr->vol_id = cpu_to_be32(vol_id);
  766. vid_hdr->lnum = cpu_to_be32(lnum);
  767. vid_hdr->compat = ubi_get_compat(ubi, vol_id);
  768. vid_hdr->data_pad = cpu_to_be32(vol->data_pad);
  769. crc = crc32(UBI_CRC32_INIT, buf, len);
  770. vid_hdr->vol_type = UBI_VID_DYNAMIC;
  771. vid_hdr->data_size = cpu_to_be32(len);
  772. vid_hdr->copy_flag = 1;
  773. vid_hdr->data_crc = cpu_to_be32(crc);
  774. retry:
  775. pnum = ubi_wl_get_peb(ubi);
  776. if (pnum < 0) {
  777. err = pnum;
  778. goto out_leb_unlock;
  779. }
  780. dbg_eba("change LEB %d:%d, PEB %d, write VID hdr to PEB %d",
  781. vol_id, lnum, vol->eba_tbl[lnum], pnum);
  782. err = ubi_io_write_vid_hdr(ubi, pnum, vid_hdr);
  783. if (err) {
  784. ubi_warn("failed to write VID header to LEB %d:%d, PEB %d",
  785. vol_id, lnum, pnum);
  786. goto write_error;
  787. }
  788. err = ubi_io_write_data(ubi, buf, pnum, 0, len);
  789. if (err) {
  790. ubi_warn("failed to write %d bytes of data to PEB %d",
  791. len, pnum);
  792. goto write_error;
  793. }
  794. if (vol->eba_tbl[lnum] >= 0) {
  795. err = ubi_wl_put_peb(ubi, vol_id, lnum, vol->eba_tbl[lnum], 0);
  796. if (err)
  797. goto out_leb_unlock;
  798. }
  799. down_read(&ubi->fm_sem);
  800. vol->eba_tbl[lnum] = pnum;
  801. up_read(&ubi->fm_sem);
  802. out_leb_unlock:
  803. leb_write_unlock(ubi, vol_id, lnum);
  804. out_mutex:
  805. mutex_unlock(&ubi->alc_mutex);
  806. ubi_free_vid_hdr(ubi, vid_hdr);
  807. return err;
  808. write_error:
  809. if (err != -EIO || !ubi->bad_allowed) {
  810. /*
  811. * This flash device does not admit of bad eraseblocks or
  812. * something nasty and unexpected happened. Switch to read-only
  813. * mode just in case.
  814. */
  815. ubi_ro_mode(ubi);
  816. goto out_leb_unlock;
  817. }
  818. err = ubi_wl_put_peb(ubi, vol_id, lnum, pnum, 1);
  819. if (err || ++tries > UBI_IO_RETRIES) {
  820. ubi_ro_mode(ubi);
  821. goto out_leb_unlock;
  822. }
  823. vid_hdr->sqnum = cpu_to_be64(ubi_next_sqnum(ubi));
  824. ubi_msg("try another PEB");
  825. goto retry;
  826. }
  827. /**
  828. * is_error_sane - check whether a read error is sane.
  829. * @err: code of the error happened during reading
  830. *
  831. * This is a helper function for 'ubi_eba_copy_leb()' which is called when we
  832. * cannot read data from the target PEB (an error @err happened). If the error
  833. * code is sane, then we treat this error as non-fatal. Otherwise the error is
  834. * fatal and UBI will be switched to R/O mode later.
  835. *
  836. * The idea is that we try not to switch to R/O mode if the read error is
  837. * something which suggests there was a real read problem. E.g., %-EIO. Or a
  838. * memory allocation failed (-%ENOMEM). Otherwise, it is safer to switch to R/O
  839. * mode, simply because we do not know what happened at the MTD level, and we
  840. * cannot handle this. E.g., the underlying driver may have become crazy, and
  841. * it is safer to switch to R/O mode to preserve the data.
  842. *
  843. * And bear in mind, this is about reading from the target PEB, i.e. the PEB
  844. * which we have just written.
  845. */
  846. static int is_error_sane(int err)
  847. {
  848. if (err == -EIO || err == -ENOMEM || err == UBI_IO_BAD_HDR ||
  849. err == UBI_IO_BAD_HDR_EBADMSG || err == -ETIMEDOUT)
  850. return 0;
  851. return 1;
  852. }
  853. /**
  854. * ubi_eba_copy_leb - copy logical eraseblock.
  855. * @ubi: UBI device description object
  856. * @from: physical eraseblock number from where to copy
  857. * @to: physical eraseblock number where to copy
  858. * @vid_hdr: VID header of the @from physical eraseblock
  859. *
  860. * This function copies logical eraseblock from physical eraseblock @from to
  861. * physical eraseblock @to. The @vid_hdr buffer may be changed by this
  862. * function. Returns:
  863. * o %0 in case of success;
  864. * o %MOVE_CANCEL_RACE, %MOVE_TARGET_WR_ERR, %MOVE_TARGET_BITFLIPS, etc;
  865. * o a negative error code in case of failure.
  866. */
  867. int ubi_eba_copy_leb(struct ubi_device *ubi, int from, int to,
  868. struct ubi_vid_hdr *vid_hdr)
  869. {
  870. int err, vol_id, lnum, data_size, aldata_size, idx;
  871. struct ubi_volume *vol;
  872. uint32_t crc;
  873. vol_id = be32_to_cpu(vid_hdr->vol_id);
  874. lnum = be32_to_cpu(vid_hdr->lnum);
  875. dbg_wl("copy LEB %d:%d, PEB %d to PEB %d", vol_id, lnum, from, to);
  876. if (vid_hdr->vol_type == UBI_VID_STATIC) {
  877. data_size = be32_to_cpu(vid_hdr->data_size);
  878. aldata_size = ALIGN(data_size, ubi->min_io_size);
  879. } else
  880. data_size = aldata_size =
  881. ubi->leb_size - be32_to_cpu(vid_hdr->data_pad);
  882. idx = vol_id2idx(ubi, vol_id);
  883. spin_lock(&ubi->volumes_lock);
  884. /*
  885. * Note, we may race with volume deletion, which means that the volume
  886. * this logical eraseblock belongs to might be being deleted. Since the
  887. * volume deletion un-maps all the volume's logical eraseblocks, it will
  888. * be locked in 'ubi_wl_put_peb()' and wait for the WL worker to finish.
  889. */
  890. vol = ubi->volumes[idx];
  891. spin_unlock(&ubi->volumes_lock);
  892. if (!vol) {
  893. /* No need to do further work, cancel */
  894. dbg_wl("volume %d is being removed, cancel", vol_id);
  895. return MOVE_CANCEL_RACE;
  896. }
  897. /*
  898. * We do not want anybody to write to this logical eraseblock while we
  899. * are moving it, so lock it.
  900. *
  901. * Note, we are using non-waiting locking here, because we cannot sleep
  902. * on the LEB, since it may cause deadlocks. Indeed, imagine a task is
  903. * unmapping the LEB which is mapped to the PEB we are going to move
  904. * (@from). This task locks the LEB and goes sleep in the
  905. * 'ubi_wl_put_peb()' function on the @ubi->move_mutex. In turn, we are
  906. * holding @ubi->move_mutex and go sleep on the LEB lock. So, if the
  907. * LEB is already locked, we just do not move it and return
  908. * %MOVE_RETRY. Note, we do not return %MOVE_CANCEL_RACE here because
  909. * we do not know the reasons of the contention - it may be just a
  910. * normal I/O on this LEB, so we want to re-try.
  911. */
  912. err = leb_write_trylock(ubi, vol_id, lnum);
  913. if (err) {
  914. dbg_wl("contention on LEB %d:%d, cancel", vol_id, lnum);
  915. return MOVE_RETRY;
  916. }
  917. /*
  918. * The LEB might have been put meanwhile, and the task which put it is
  919. * probably waiting on @ubi->move_mutex. No need to continue the work,
  920. * cancel it.
  921. */
  922. if (vol->eba_tbl[lnum] != from) {
  923. dbg_wl("LEB %d:%d is no longer mapped to PEB %d, mapped to PEB %d, cancel",
  924. vol_id, lnum, from, vol->eba_tbl[lnum]);
  925. err = MOVE_CANCEL_RACE;
  926. goto out_unlock_leb;
  927. }
  928. /*
  929. * OK, now the LEB is locked and we can safely start moving it. Since
  930. * this function utilizes the @ubi->peb_buf buffer which is shared
  931. * with some other functions - we lock the buffer by taking the
  932. * @ubi->buf_mutex.
  933. */
  934. mutex_lock(&ubi->buf_mutex);
  935. dbg_wl("read %d bytes of data", aldata_size);
  936. err = ubi_io_read_data(ubi, ubi->peb_buf, from, 0, aldata_size);
  937. if (err && err != UBI_IO_BITFLIPS) {
  938. ubi_warn("error %d while reading data from PEB %d",
  939. err, from);
  940. err = MOVE_SOURCE_RD_ERR;
  941. goto out_unlock_buf;
  942. }
  943. /*
  944. * Now we have got to calculate how much data we have to copy. In
  945. * case of a static volume it is fairly easy - the VID header contains
  946. * the data size. In case of a dynamic volume it is more difficult - we
  947. * have to read the contents, cut 0xFF bytes from the end and copy only
  948. * the first part. We must do this to avoid writing 0xFF bytes as it
  949. * may have some side-effects. And not only this. It is important not
  950. * to include those 0xFFs to CRC because later the they may be filled
  951. * by data.
  952. */
  953. if (vid_hdr->vol_type == UBI_VID_DYNAMIC)
  954. aldata_size = data_size =
  955. ubi_calc_data_len(ubi, ubi->peb_buf, data_size);
  956. cond_resched();
  957. crc = crc32(UBI_CRC32_INIT, ubi->peb_buf, data_size);
  958. cond_resched();
  959. /*
  960. * It may turn out to be that the whole @from physical eraseblock
  961. * contains only 0xFF bytes. Then we have to only write the VID header
  962. * and do not write any data. This also means we should not set
  963. * @vid_hdr->copy_flag, @vid_hdr->data_size, and @vid_hdr->data_crc.
  964. */
  965. if (data_size > 0) {
  966. vid_hdr->copy_flag = 1;
  967. vid_hdr->data_size = cpu_to_be32(data_size);
  968. vid_hdr->data_crc = cpu_to_be32(crc);
  969. }
  970. vid_hdr->sqnum = cpu_to_be64(ubi_next_sqnum(ubi));
  971. err = ubi_io_write_vid_hdr(ubi, to, vid_hdr);
  972. if (err) {
  973. if (err == -EIO)
  974. err = MOVE_TARGET_WR_ERR;
  975. goto out_unlock_buf;
  976. }
  977. cond_resched();
  978. /* Read the VID header back and check if it was written correctly */
  979. err = ubi_io_read_vid_hdr(ubi, to, vid_hdr, 1);
  980. if (err) {
  981. if (err != UBI_IO_BITFLIPS) {
  982. ubi_warn("error %d while reading VID header back from PEB %d",
  983. err, to);
  984. if (is_error_sane(err))
  985. err = MOVE_TARGET_RD_ERR;
  986. } else
  987. err = MOVE_TARGET_BITFLIPS;
  988. goto out_unlock_buf;
  989. }
  990. if (data_size > 0) {
  991. err = ubi_io_write_data(ubi, ubi->peb_buf, to, 0, aldata_size);
  992. if (err) {
  993. if (err == -EIO)
  994. err = MOVE_TARGET_WR_ERR;
  995. goto out_unlock_buf;
  996. }
  997. cond_resched();
  998. /*
  999. * We've written the data and are going to read it back to make
  1000. * sure it was written correctly.
  1001. */
  1002. memset(ubi->peb_buf, 0xFF, aldata_size);
  1003. err = ubi_io_read_data(ubi, ubi->peb_buf, to, 0, aldata_size);
  1004. if (err) {
  1005. if (err != UBI_IO_BITFLIPS) {
  1006. ubi_warn("error %d while reading data back from PEB %d",
  1007. err, to);
  1008. if (is_error_sane(err))
  1009. err = MOVE_TARGET_RD_ERR;
  1010. } else
  1011. err = MOVE_TARGET_BITFLIPS;
  1012. goto out_unlock_buf;
  1013. }
  1014. cond_resched();
  1015. if (crc != crc32(UBI_CRC32_INIT, ubi->peb_buf, data_size)) {
  1016. ubi_warn("read data back from PEB %d and it is different",
  1017. to);
  1018. err = -EINVAL;
  1019. goto out_unlock_buf;
  1020. }
  1021. }
  1022. ubi_assert(vol->eba_tbl[lnum] == from);
  1023. down_read(&ubi->fm_sem);
  1024. vol->eba_tbl[lnum] = to;
  1025. up_read(&ubi->fm_sem);
  1026. out_unlock_buf:
  1027. mutex_unlock(&ubi->buf_mutex);
  1028. out_unlock_leb:
  1029. leb_write_unlock(ubi, vol_id, lnum);
  1030. return err;
  1031. }
  1032. /**
  1033. * print_rsvd_warning - warn about not having enough reserved PEBs.
  1034. * @ubi: UBI device description object
  1035. *
  1036. * This is a helper function for 'ubi_eba_init()' which is called when UBI
  1037. * cannot reserve enough PEBs for bad block handling. This function makes a
  1038. * decision whether we have to print a warning or not. The algorithm is as
  1039. * follows:
  1040. * o if this is a new UBI image, then just print the warning
  1041. * o if this is an UBI image which has already been used for some time, print
  1042. * a warning only if we can reserve less than 10% of the expected amount of
  1043. * the reserved PEB.
  1044. *
  1045. * The idea is that when UBI is used, PEBs become bad, and the reserved pool
  1046. * of PEBs becomes smaller, which is normal and we do not want to scare users
  1047. * with a warning every time they attach the MTD device. This was an issue
  1048. * reported by real users.
  1049. */
  1050. static void print_rsvd_warning(struct ubi_device *ubi,
  1051. struct ubi_attach_info *ai)
  1052. {
  1053. /*
  1054. * The 1 << 18 (256KiB) number is picked randomly, just a reasonably
  1055. * large number to distinguish between newly flashed and used images.
  1056. */
  1057. if (ai->max_sqnum > (1 << 18)) {
  1058. int min = ubi->beb_rsvd_level / 10;
  1059. if (!min)
  1060. min = 1;
  1061. if (ubi->beb_rsvd_pebs > min)
  1062. return;
  1063. }
  1064. ubi_warn("cannot reserve enough PEBs for bad PEB handling, reserved %d, need %d",
  1065. ubi->beb_rsvd_pebs, ubi->beb_rsvd_level);
  1066. if (ubi->corr_peb_count)
  1067. ubi_warn("%d PEBs are corrupted and not used",
  1068. ubi->corr_peb_count);
  1069. }
  1070. /**
  1071. * self_check_eba - run a self check on the EBA table constructed by fastmap.
  1072. * @ubi: UBI device description object
  1073. * @ai_fastmap: UBI attach info object created by fastmap
  1074. * @ai_scan: UBI attach info object created by scanning
  1075. *
  1076. * Returns < 0 in case of an internal error, 0 otherwise.
  1077. * If a bad EBA table entry was found it will be printed out and
  1078. * ubi_assert() triggers.
  1079. */
  1080. int self_check_eba(struct ubi_device *ubi, struct ubi_attach_info *ai_fastmap,
  1081. struct ubi_attach_info *ai_scan)
  1082. {
  1083. int i, j, num_volumes, ret = 0;
  1084. int **scan_eba, **fm_eba;
  1085. struct ubi_ainf_volume *av;
  1086. struct ubi_volume *vol;
  1087. struct ubi_ainf_peb *aeb;
  1088. struct rb_node *rb;
  1089. num_volumes = ubi->vtbl_slots + UBI_INT_VOL_COUNT;
  1090. scan_eba = kmalloc(sizeof(*scan_eba) * num_volumes, GFP_KERNEL);
  1091. if (!scan_eba)
  1092. return -ENOMEM;
  1093. fm_eba = kmalloc(sizeof(*fm_eba) * num_volumes, GFP_KERNEL);
  1094. if (!fm_eba) {
  1095. kfree(scan_eba);
  1096. return -ENOMEM;
  1097. }
  1098. for (i = 0; i < num_volumes; i++) {
  1099. vol = ubi->volumes[i];
  1100. if (!vol)
  1101. continue;
  1102. scan_eba[i] = kmalloc(vol->reserved_pebs * sizeof(**scan_eba),
  1103. GFP_KERNEL);
  1104. if (!scan_eba[i]) {
  1105. ret = -ENOMEM;
  1106. goto out_free;
  1107. }
  1108. fm_eba[i] = kmalloc(vol->reserved_pebs * sizeof(**fm_eba),
  1109. GFP_KERNEL);
  1110. if (!fm_eba[i]) {
  1111. ret = -ENOMEM;
  1112. goto out_free;
  1113. }
  1114. for (j = 0; j < vol->reserved_pebs; j++)
  1115. scan_eba[i][j] = fm_eba[i][j] = UBI_LEB_UNMAPPED;
  1116. av = ubi_find_av(ai_scan, idx2vol_id(ubi, i));
  1117. if (!av)
  1118. continue;
  1119. ubi_rb_for_each_entry(rb, aeb, &av->root, u.rb)
  1120. scan_eba[i][aeb->lnum] = aeb->pnum;
  1121. av = ubi_find_av(ai_fastmap, idx2vol_id(ubi, i));
  1122. if (!av)
  1123. continue;
  1124. ubi_rb_for_each_entry(rb, aeb, &av->root, u.rb)
  1125. fm_eba[i][aeb->lnum] = aeb->pnum;
  1126. for (j = 0; j < vol->reserved_pebs; j++) {
  1127. if (scan_eba[i][j] != fm_eba[i][j]) {
  1128. if (scan_eba[i][j] == UBI_LEB_UNMAPPED ||
  1129. fm_eba[i][j] == UBI_LEB_UNMAPPED)
  1130. continue;
  1131. ubi_err("LEB:%i:%i is PEB:%i instead of %i!",
  1132. vol->vol_id, i, fm_eba[i][j],
  1133. scan_eba[i][j]);
  1134. ubi_assert(0);
  1135. }
  1136. }
  1137. }
  1138. out_free:
  1139. for (i = 0; i < num_volumes; i++) {
  1140. if (!ubi->volumes[i])
  1141. continue;
  1142. kfree(scan_eba[i]);
  1143. kfree(fm_eba[i]);
  1144. }
  1145. kfree(scan_eba);
  1146. kfree(fm_eba);
  1147. return ret;
  1148. }
  1149. /**
  1150. * ubi_eba_init - initialize the EBA sub-system using attaching information.
  1151. * @ubi: UBI device description object
  1152. * @ai: attaching information
  1153. *
  1154. * This function returns zero in case of success and a negative error code in
  1155. * case of failure.
  1156. */
  1157. int ubi_eba_init(struct ubi_device *ubi, struct ubi_attach_info *ai)
  1158. {
  1159. int i, j, err, num_volumes;
  1160. struct ubi_ainf_volume *av;
  1161. struct ubi_volume *vol;
  1162. struct ubi_ainf_peb *aeb;
  1163. struct rb_node *rb;
  1164. dbg_eba("initialize EBA sub-system");
  1165. spin_lock_init(&ubi->ltree_lock);
  1166. mutex_init(&ubi->alc_mutex);
  1167. ubi->ltree = RB_ROOT;
  1168. ubi->global_sqnum = ai->max_sqnum + 1;
  1169. num_volumes = ubi->vtbl_slots + UBI_INT_VOL_COUNT;
  1170. for (i = 0; i < num_volumes; i++) {
  1171. vol = ubi->volumes[i];
  1172. if (!vol)
  1173. continue;
  1174. cond_resched();
  1175. vol->eba_tbl = kmalloc(vol->reserved_pebs * sizeof(int),
  1176. GFP_KERNEL);
  1177. if (!vol->eba_tbl) {
  1178. err = -ENOMEM;
  1179. goto out_free;
  1180. }
  1181. for (j = 0; j < vol->reserved_pebs; j++)
  1182. vol->eba_tbl[j] = UBI_LEB_UNMAPPED;
  1183. av = ubi_find_av(ai, idx2vol_id(ubi, i));
  1184. if (!av)
  1185. continue;
  1186. ubi_rb_for_each_entry(rb, aeb, &av->root, u.rb) {
  1187. if (aeb->lnum >= vol->reserved_pebs)
  1188. /*
  1189. * This may happen in case of an unclean reboot
  1190. * during re-size.
  1191. */
  1192. ubi_move_aeb_to_list(av, aeb, &ai->erase);
  1193. vol->eba_tbl[aeb->lnum] = aeb->pnum;
  1194. }
  1195. }
  1196. if (ubi->avail_pebs < EBA_RESERVED_PEBS) {
  1197. ubi_err("no enough physical eraseblocks (%d, need %d)",
  1198. ubi->avail_pebs, EBA_RESERVED_PEBS);
  1199. if (ubi->corr_peb_count)
  1200. ubi_err("%d PEBs are corrupted and not used",
  1201. ubi->corr_peb_count);
  1202. err = -ENOSPC;
  1203. goto out_free;
  1204. }
  1205. ubi->avail_pebs -= EBA_RESERVED_PEBS;
  1206. ubi->rsvd_pebs += EBA_RESERVED_PEBS;
  1207. if (ubi->bad_allowed) {
  1208. ubi_calculate_reserved(ubi);
  1209. if (ubi->avail_pebs < ubi->beb_rsvd_level) {
  1210. /* No enough free physical eraseblocks */
  1211. ubi->beb_rsvd_pebs = ubi->avail_pebs;
  1212. print_rsvd_warning(ubi, ai);
  1213. } else
  1214. ubi->beb_rsvd_pebs = ubi->beb_rsvd_level;
  1215. ubi->avail_pebs -= ubi->beb_rsvd_pebs;
  1216. ubi->rsvd_pebs += ubi->beb_rsvd_pebs;
  1217. }
  1218. dbg_eba("EBA sub-system is initialized");
  1219. return 0;
  1220. out_free:
  1221. for (i = 0; i < num_volumes; i++) {
  1222. if (!ubi->volumes[i])
  1223. continue;
  1224. kfree(ubi->volumes[i]->eba_tbl);
  1225. ubi->volumes[i]->eba_tbl = NULL;
  1226. }
  1227. return err;
  1228. }