io.c 42 KB

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  1. /*
  2. * Copyright (c) International Business Machines Corp., 2006
  3. * Copyright (c) Nokia Corporation, 2006, 2007
  4. *
  5. * This program is free software; you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License as published by
  7. * the Free Software Foundation; either version 2 of the License, or
  8. * (at your option) any later version.
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See
  13. * the GNU General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU General Public License
  16. * along with this program; if not, write to the Free Software
  17. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  18. *
  19. * Author: Artem Bityutskiy (Битюцкий Артём)
  20. */
  21. /*
  22. * UBI input/output sub-system.
  23. *
  24. * This sub-system provides a uniform way to work with all kinds of the
  25. * underlying MTD devices. It also implements handy functions for reading and
  26. * writing UBI headers.
  27. *
  28. * We are trying to have a paranoid mindset and not to trust to what we read
  29. * from the flash media in order to be more secure and robust. So this
  30. * sub-system validates every single header it reads from the flash media.
  31. *
  32. * Some words about how the eraseblock headers are stored.
  33. *
  34. * The erase counter header is always stored at offset zero. By default, the
  35. * VID header is stored after the EC header at the closest aligned offset
  36. * (i.e. aligned to the minimum I/O unit size). Data starts next to the VID
  37. * header at the closest aligned offset. But this default layout may be
  38. * changed. For example, for different reasons (e.g., optimization) UBI may be
  39. * asked to put the VID header at further offset, and even at an unaligned
  40. * offset. Of course, if the offset of the VID header is unaligned, UBI adds
  41. * proper padding in front of it. Data offset may also be changed but it has to
  42. * be aligned.
  43. *
  44. * About minimal I/O units. In general, UBI assumes flash device model where
  45. * there is only one minimal I/O unit size. E.g., in case of NOR flash it is 1,
  46. * in case of NAND flash it is a NAND page, etc. This is reported by MTD in the
  47. * @ubi->mtd->writesize field. But as an exception, UBI admits of using another
  48. * (smaller) minimal I/O unit size for EC and VID headers to make it possible
  49. * to do different optimizations.
  50. *
  51. * This is extremely useful in case of NAND flashes which admit of several
  52. * write operations to one NAND page. In this case UBI can fit EC and VID
  53. * headers at one NAND page. Thus, UBI may use "sub-page" size as the minimal
  54. * I/O unit for the headers (the @ubi->hdrs_min_io_size field). But it still
  55. * reports NAND page size (@ubi->min_io_size) as a minimal I/O unit for the UBI
  56. * users.
  57. *
  58. * Example: some Samsung NANDs with 2KiB pages allow 4x 512-byte writes, so
  59. * although the minimal I/O unit is 2K, UBI uses 512 bytes for EC and VID
  60. * headers.
  61. *
  62. * Q: why not just to treat sub-page as a minimal I/O unit of this flash
  63. * device, e.g., make @ubi->min_io_size = 512 in the example above?
  64. *
  65. * A: because when writing a sub-page, MTD still writes a full 2K page but the
  66. * bytes which are not relevant to the sub-page are 0xFF. So, basically,
  67. * writing 4x512 sub-pages is 4 times slower than writing one 2KiB NAND page.
  68. * Thus, we prefer to use sub-pages only for EC and VID headers.
  69. *
  70. * As it was noted above, the VID header may start at a non-aligned offset.
  71. * For example, in case of a 2KiB page NAND flash with a 512 bytes sub-page,
  72. * the VID header may reside at offset 1984 which is the last 64 bytes of the
  73. * last sub-page (EC header is always at offset zero). This causes some
  74. * difficulties when reading and writing VID headers.
  75. *
  76. * Suppose we have a 64-byte buffer and we read a VID header at it. We change
  77. * the data and want to write this VID header out. As we can only write in
  78. * 512-byte chunks, we have to allocate one more buffer and copy our VID header
  79. * to offset 448 of this buffer.
  80. *
  81. * The I/O sub-system does the following trick in order to avoid this extra
  82. * copy. It always allocates a @ubi->vid_hdr_alsize bytes buffer for the VID
  83. * header and returns a pointer to offset @ubi->vid_hdr_shift of this buffer.
  84. * When the VID header is being written out, it shifts the VID header pointer
  85. * back and writes the whole sub-page.
  86. */
  87. #include <linux/crc32.h>
  88. #include <linux/err.h>
  89. #include <linux/slab.h>
  90. #include "ubi.h"
  91. static int self_check_not_bad(const struct ubi_device *ubi, int pnum);
  92. static int self_check_peb_ec_hdr(const struct ubi_device *ubi, int pnum);
  93. static int self_check_ec_hdr(const struct ubi_device *ubi, int pnum,
  94. const struct ubi_ec_hdr *ec_hdr);
  95. static int self_check_peb_vid_hdr(const struct ubi_device *ubi, int pnum);
  96. static int self_check_vid_hdr(const struct ubi_device *ubi, int pnum,
  97. const struct ubi_vid_hdr *vid_hdr);
  98. static int self_check_write(struct ubi_device *ubi, const void *buf, int pnum,
  99. int offset, int len);
  100. /**
  101. * ubi_io_read - read data from a physical eraseblock.
  102. * @ubi: UBI device description object
  103. * @buf: buffer where to store the read data
  104. * @pnum: physical eraseblock number to read from
  105. * @offset: offset within the physical eraseblock from where to read
  106. * @len: how many bytes to read
  107. *
  108. * This function reads data from offset @offset of physical eraseblock @pnum
  109. * and stores the read data in the @buf buffer. The following return codes are
  110. * possible:
  111. *
  112. * o %0 if all the requested data were successfully read;
  113. * o %UBI_IO_BITFLIPS if all the requested data were successfully read, but
  114. * correctable bit-flips were detected; this is harmless but may indicate
  115. * that this eraseblock may become bad soon (but do not have to);
  116. * o %-EBADMSG if the MTD subsystem reported about data integrity problems, for
  117. * example it can be an ECC error in case of NAND; this most probably means
  118. * that the data is corrupted;
  119. * o %-EIO if some I/O error occurred;
  120. * o other negative error codes in case of other errors.
  121. */
  122. int ubi_io_read(const struct ubi_device *ubi, void *buf, int pnum, int offset,
  123. int len)
  124. {
  125. int err, retries = 0;
  126. size_t read;
  127. loff_t addr;
  128. dbg_io("read %d bytes from PEB %d:%d", len, pnum, offset);
  129. ubi_assert(pnum >= 0 && pnum < ubi->peb_count);
  130. ubi_assert(offset >= 0 && offset + len <= ubi->peb_size);
  131. ubi_assert(len > 0);
  132. err = self_check_not_bad(ubi, pnum);
  133. if (err)
  134. return err;
  135. /*
  136. * Deliberately corrupt the buffer to improve robustness. Indeed, if we
  137. * do not do this, the following may happen:
  138. * 1. The buffer contains data from previous operation, e.g., read from
  139. * another PEB previously. The data looks like expected, e.g., if we
  140. * just do not read anything and return - the caller would not
  141. * notice this. E.g., if we are reading a VID header, the buffer may
  142. * contain a valid VID header from another PEB.
  143. * 2. The driver is buggy and returns us success or -EBADMSG or
  144. * -EUCLEAN, but it does not actually put any data to the buffer.
  145. *
  146. * This may confuse UBI or upper layers - they may think the buffer
  147. * contains valid data while in fact it is just old data. This is
  148. * especially possible because UBI (and UBIFS) relies on CRC, and
  149. * treats data as correct even in case of ECC errors if the CRC is
  150. * correct.
  151. *
  152. * Try to prevent this situation by changing the first byte of the
  153. * buffer.
  154. */
  155. *((uint8_t *)buf) ^= 0xFF;
  156. addr = (loff_t)pnum * ubi->peb_size + offset;
  157. retry:
  158. err = mtd_read(ubi->mtd, addr, len, &read, buf);
  159. if (err) {
  160. const char *errstr = mtd_is_eccerr(err) ? " (ECC error)" : "";
  161. if (mtd_is_bitflip(err)) {
  162. /*
  163. * -EUCLEAN is reported if there was a bit-flip which
  164. * was corrected, so this is harmless.
  165. *
  166. * We do not report about it here unless debugging is
  167. * enabled. A corresponding message will be printed
  168. * later, when it is has been scrubbed.
  169. */
  170. dbg_msg("fixable bit-flip detected at PEB %d", pnum);
  171. ubi_assert(len == read);
  172. return UBI_IO_BITFLIPS;
  173. }
  174. if (retries++ < UBI_IO_RETRIES) {
  175. ubi_warn("error %d%s while reading %d bytes from PEB "
  176. "%d:%d, read only %zd bytes, retry",
  177. err, errstr, len, pnum, offset, read);
  178. yield();
  179. goto retry;
  180. }
  181. ubi_err("error %d%s while reading %d bytes from PEB %d:%d, "
  182. "read %zd bytes", err, errstr, len, pnum, offset, read);
  183. dump_stack();
  184. /*
  185. * The driver should never return -EBADMSG if it failed to read
  186. * all the requested data. But some buggy drivers might do
  187. * this, so we change it to -EIO.
  188. */
  189. if (read != len && mtd_is_eccerr(err)) {
  190. ubi_assert(0);
  191. err = -EIO;
  192. }
  193. } else {
  194. ubi_assert(len == read);
  195. if (ubi_dbg_is_bitflip(ubi)) {
  196. dbg_gen("bit-flip (emulated)");
  197. err = UBI_IO_BITFLIPS;
  198. }
  199. }
  200. return err;
  201. }
  202. /**
  203. * ubi_io_write - write data to a physical eraseblock.
  204. * @ubi: UBI device description object
  205. * @buf: buffer with the data to write
  206. * @pnum: physical eraseblock number to write to
  207. * @offset: offset within the physical eraseblock where to write
  208. * @len: how many bytes to write
  209. *
  210. * This function writes @len bytes of data from buffer @buf to offset @offset
  211. * of physical eraseblock @pnum. If all the data were successfully written,
  212. * zero is returned. If an error occurred, this function returns a negative
  213. * error code. If %-EIO is returned, the physical eraseblock most probably went
  214. * bad.
  215. *
  216. * Note, in case of an error, it is possible that something was still written
  217. * to the flash media, but may be some garbage.
  218. */
  219. int ubi_io_write(struct ubi_device *ubi, const void *buf, int pnum, int offset,
  220. int len)
  221. {
  222. int err;
  223. size_t written;
  224. loff_t addr;
  225. dbg_io("write %d bytes to PEB %d:%d", len, pnum, offset);
  226. ubi_assert(pnum >= 0 && pnum < ubi->peb_count);
  227. ubi_assert(offset >= 0 && offset + len <= ubi->peb_size);
  228. ubi_assert(offset % ubi->hdrs_min_io_size == 0);
  229. ubi_assert(len > 0 && len % ubi->hdrs_min_io_size == 0);
  230. if (ubi->ro_mode) {
  231. ubi_err("read-only mode");
  232. return -EROFS;
  233. }
  234. err = self_check_not_bad(ubi, pnum);
  235. if (err)
  236. return err;
  237. /* The area we are writing to has to contain all 0xFF bytes */
  238. err = ubi_self_check_all_ff(ubi, pnum, offset, len);
  239. if (err)
  240. return err;
  241. if (offset >= ubi->leb_start) {
  242. /*
  243. * We write to the data area of the physical eraseblock. Make
  244. * sure it has valid EC and VID headers.
  245. */
  246. err = self_check_peb_ec_hdr(ubi, pnum);
  247. if (err)
  248. return err;
  249. err = self_check_peb_vid_hdr(ubi, pnum);
  250. if (err)
  251. return err;
  252. }
  253. if (ubi_dbg_is_write_failure(ubi)) {
  254. ubi_err("cannot write %d bytes to PEB %d:%d "
  255. "(emulated)", len, pnum, offset);
  256. dump_stack();
  257. return -EIO;
  258. }
  259. addr = (loff_t)pnum * ubi->peb_size + offset;
  260. err = mtd_write(ubi->mtd, addr, len, &written, buf);
  261. if (err) {
  262. ubi_err("error %d while writing %d bytes to PEB %d:%d, written "
  263. "%zd bytes", err, len, pnum, offset, written);
  264. dump_stack();
  265. ubi_dump_flash(ubi, pnum, offset, len);
  266. } else
  267. ubi_assert(written == len);
  268. if (!err) {
  269. err = self_check_write(ubi, buf, pnum, offset, len);
  270. if (err)
  271. return err;
  272. /*
  273. * Since we always write sequentially, the rest of the PEB has
  274. * to contain only 0xFF bytes.
  275. */
  276. offset += len;
  277. len = ubi->peb_size - offset;
  278. if (len)
  279. err = ubi_self_check_all_ff(ubi, pnum, offset, len);
  280. }
  281. return err;
  282. }
  283. /**
  284. * erase_callback - MTD erasure call-back.
  285. * @ei: MTD erase information object.
  286. *
  287. * Note, even though MTD erase interface is asynchronous, all the current
  288. * implementations are synchronous anyway.
  289. */
  290. static void erase_callback(struct erase_info *ei)
  291. {
  292. wake_up_interruptible((wait_queue_head_t *)ei->priv);
  293. }
  294. /**
  295. * do_sync_erase - synchronously erase a physical eraseblock.
  296. * @ubi: UBI device description object
  297. * @pnum: the physical eraseblock number to erase
  298. *
  299. * This function synchronously erases physical eraseblock @pnum and returns
  300. * zero in case of success and a negative error code in case of failure. If
  301. * %-EIO is returned, the physical eraseblock most probably went bad.
  302. */
  303. static int do_sync_erase(struct ubi_device *ubi, int pnum)
  304. {
  305. int err, retries = 0;
  306. struct erase_info ei;
  307. wait_queue_head_t wq;
  308. dbg_io("erase PEB %d", pnum);
  309. ubi_assert(pnum >= 0 && pnum < ubi->peb_count);
  310. if (ubi->ro_mode) {
  311. ubi_err("read-only mode");
  312. return -EROFS;
  313. }
  314. retry:
  315. init_waitqueue_head(&wq);
  316. memset(&ei, 0, sizeof(struct erase_info));
  317. ei.mtd = ubi->mtd;
  318. ei.addr = (loff_t)pnum * ubi->peb_size;
  319. ei.len = ubi->peb_size;
  320. ei.callback = erase_callback;
  321. ei.priv = (unsigned long)&wq;
  322. err = mtd_erase(ubi->mtd, &ei);
  323. if (err) {
  324. if (retries++ < UBI_IO_RETRIES) {
  325. ubi_warn("error %d while erasing PEB %d, retry",
  326. err, pnum);
  327. yield();
  328. goto retry;
  329. }
  330. ubi_err("cannot erase PEB %d, error %d", pnum, err);
  331. dump_stack();
  332. return err;
  333. }
  334. err = wait_event_interruptible(wq, ei.state == MTD_ERASE_DONE ||
  335. ei.state == MTD_ERASE_FAILED);
  336. if (err) {
  337. ubi_err("interrupted PEB %d erasure", pnum);
  338. return -EINTR;
  339. }
  340. if (ei.state == MTD_ERASE_FAILED) {
  341. if (retries++ < UBI_IO_RETRIES) {
  342. ubi_warn("error while erasing PEB %d, retry", pnum);
  343. yield();
  344. goto retry;
  345. }
  346. ubi_err("cannot erase PEB %d", pnum);
  347. dump_stack();
  348. return -EIO;
  349. }
  350. err = ubi_self_check_all_ff(ubi, pnum, 0, ubi->peb_size);
  351. if (err)
  352. return err;
  353. if (ubi_dbg_is_erase_failure(ubi)) {
  354. ubi_err("cannot erase PEB %d (emulated)", pnum);
  355. return -EIO;
  356. }
  357. return 0;
  358. }
  359. /* Patterns to write to a physical eraseblock when torturing it */
  360. static uint8_t patterns[] = {0xa5, 0x5a, 0x0};
  361. /**
  362. * torture_peb - test a supposedly bad physical eraseblock.
  363. * @ubi: UBI device description object
  364. * @pnum: the physical eraseblock number to test
  365. *
  366. * This function returns %-EIO if the physical eraseblock did not pass the
  367. * test, a positive number of erase operations done if the test was
  368. * successfully passed, and other negative error codes in case of other errors.
  369. */
  370. static int torture_peb(struct ubi_device *ubi, int pnum)
  371. {
  372. int err, i, patt_count;
  373. ubi_msg("run torture test for PEB %d", pnum);
  374. patt_count = ARRAY_SIZE(patterns);
  375. ubi_assert(patt_count > 0);
  376. mutex_lock(&ubi->buf_mutex);
  377. for (i = 0; i < patt_count; i++) {
  378. err = do_sync_erase(ubi, pnum);
  379. if (err)
  380. goto out;
  381. /* Make sure the PEB contains only 0xFF bytes */
  382. err = ubi_io_read(ubi, ubi->peb_buf, pnum, 0, ubi->peb_size);
  383. if (err)
  384. goto out;
  385. err = ubi_check_pattern(ubi->peb_buf, 0xFF, ubi->peb_size);
  386. if (err == 0) {
  387. ubi_err("erased PEB %d, but a non-0xFF byte found",
  388. pnum);
  389. err = -EIO;
  390. goto out;
  391. }
  392. /* Write a pattern and check it */
  393. memset(ubi->peb_buf, patterns[i], ubi->peb_size);
  394. err = ubi_io_write(ubi, ubi->peb_buf, pnum, 0, ubi->peb_size);
  395. if (err)
  396. goto out;
  397. memset(ubi->peb_buf, ~patterns[i], ubi->peb_size);
  398. err = ubi_io_read(ubi, ubi->peb_buf, pnum, 0, ubi->peb_size);
  399. if (err)
  400. goto out;
  401. err = ubi_check_pattern(ubi->peb_buf, patterns[i],
  402. ubi->peb_size);
  403. if (err == 0) {
  404. ubi_err("pattern %x checking failed for PEB %d",
  405. patterns[i], pnum);
  406. err = -EIO;
  407. goto out;
  408. }
  409. }
  410. err = patt_count;
  411. ubi_msg("PEB %d passed torture test, do not mark it as bad", pnum);
  412. out:
  413. mutex_unlock(&ubi->buf_mutex);
  414. if (err == UBI_IO_BITFLIPS || mtd_is_eccerr(err)) {
  415. /*
  416. * If a bit-flip or data integrity error was detected, the test
  417. * has not passed because it happened on a freshly erased
  418. * physical eraseblock which means something is wrong with it.
  419. */
  420. ubi_err("read problems on freshly erased PEB %d, must be bad",
  421. pnum);
  422. err = -EIO;
  423. }
  424. return err;
  425. }
  426. /**
  427. * nor_erase_prepare - prepare a NOR flash PEB for erasure.
  428. * @ubi: UBI device description object
  429. * @pnum: physical eraseblock number to prepare
  430. *
  431. * NOR flash, or at least some of them, have peculiar embedded PEB erasure
  432. * algorithm: the PEB is first filled with zeroes, then it is erased. And
  433. * filling with zeroes starts from the end of the PEB. This was observed with
  434. * Spansion S29GL512N NOR flash.
  435. *
  436. * This means that in case of a power cut we may end up with intact data at the
  437. * beginning of the PEB, and all zeroes at the end of PEB. In other words, the
  438. * EC and VID headers are OK, but a large chunk of data at the end of PEB is
  439. * zeroed. This makes UBI mistakenly treat this PEB as used and associate it
  440. * with an LEB, which leads to subsequent failures (e.g., UBIFS fails).
  441. *
  442. * This function is called before erasing NOR PEBs and it zeroes out EC and VID
  443. * magic numbers in order to invalidate them and prevent the failures. Returns
  444. * zero in case of success and a negative error code in case of failure.
  445. */
  446. static int nor_erase_prepare(struct ubi_device *ubi, int pnum)
  447. {
  448. int err, err1;
  449. size_t written;
  450. loff_t addr;
  451. uint32_t data = 0;
  452. /*
  453. * Note, we cannot generally define VID header buffers on stack,
  454. * because of the way we deal with these buffers (see the header
  455. * comment in this file). But we know this is a NOR-specific piece of
  456. * code, so we can do this. But yes, this is error-prone and we should
  457. * (pre-)allocate VID header buffer instead.
  458. */
  459. struct ubi_vid_hdr vid_hdr;
  460. /*
  461. * It is important to first invalidate the EC header, and then the VID
  462. * header. Otherwise a power cut may lead to valid EC header and
  463. * invalid VID header, in which case UBI will treat this PEB as
  464. * corrupted and will try to preserve it, and print scary warnings (see
  465. * the header comment in scan.c for more information).
  466. */
  467. addr = (loff_t)pnum * ubi->peb_size;
  468. err = mtd_write(ubi->mtd, addr, 4, &written, (void *)&data);
  469. if (!err) {
  470. addr += ubi->vid_hdr_aloffset;
  471. err = mtd_write(ubi->mtd, addr, 4, &written, (void *)&data);
  472. if (!err)
  473. return 0;
  474. }
  475. /*
  476. * We failed to write to the media. This was observed with Spansion
  477. * S29GL512N NOR flash. Most probably the previously eraseblock erasure
  478. * was interrupted at a very inappropriate moment, so it became
  479. * unwritable. In this case we probably anyway have garbage in this
  480. * PEB.
  481. */
  482. err1 = ubi_io_read_vid_hdr(ubi, pnum, &vid_hdr, 0);
  483. if (err1 == UBI_IO_BAD_HDR_EBADMSG || err1 == UBI_IO_BAD_HDR ||
  484. err1 == UBI_IO_FF) {
  485. struct ubi_ec_hdr ec_hdr;
  486. err1 = ubi_io_read_ec_hdr(ubi, pnum, &ec_hdr, 0);
  487. if (err1 == UBI_IO_BAD_HDR_EBADMSG || err1 == UBI_IO_BAD_HDR ||
  488. err1 == UBI_IO_FF)
  489. /*
  490. * Both VID and EC headers are corrupted, so we can
  491. * safely erase this PEB and not afraid that it will be
  492. * treated as a valid PEB in case of an unclean reboot.
  493. */
  494. return 0;
  495. }
  496. /*
  497. * The PEB contains a valid VID header, but we cannot invalidate it.
  498. * Supposedly the flash media or the driver is screwed up, so return an
  499. * error.
  500. */
  501. ubi_err("cannot invalidate PEB %d, write returned %d read returned %d",
  502. pnum, err, err1);
  503. ubi_dump_flash(ubi, pnum, 0, ubi->peb_size);
  504. return -EIO;
  505. }
  506. /**
  507. * ubi_io_sync_erase - synchronously erase a physical eraseblock.
  508. * @ubi: UBI device description object
  509. * @pnum: physical eraseblock number to erase
  510. * @torture: if this physical eraseblock has to be tortured
  511. *
  512. * This function synchronously erases physical eraseblock @pnum. If @torture
  513. * flag is not zero, the physical eraseblock is checked by means of writing
  514. * different patterns to it and reading them back. If the torturing is enabled,
  515. * the physical eraseblock is erased more than once.
  516. *
  517. * This function returns the number of erasures made in case of success, %-EIO
  518. * if the erasure failed or the torturing test failed, and other negative error
  519. * codes in case of other errors. Note, %-EIO means that the physical
  520. * eraseblock is bad.
  521. */
  522. int ubi_io_sync_erase(struct ubi_device *ubi, int pnum, int torture)
  523. {
  524. int err, ret = 0;
  525. ubi_assert(pnum >= 0 && pnum < ubi->peb_count);
  526. err = self_check_not_bad(ubi, pnum);
  527. if (err != 0)
  528. return err;
  529. if (ubi->ro_mode) {
  530. ubi_err("read-only mode");
  531. return -EROFS;
  532. }
  533. if (ubi->nor_flash) {
  534. err = nor_erase_prepare(ubi, pnum);
  535. if (err)
  536. return err;
  537. }
  538. if (torture) {
  539. ret = torture_peb(ubi, pnum);
  540. if (ret < 0)
  541. return ret;
  542. }
  543. err = do_sync_erase(ubi, pnum);
  544. if (err)
  545. return err;
  546. return ret + 1;
  547. }
  548. /**
  549. * ubi_io_is_bad - check if a physical eraseblock is bad.
  550. * @ubi: UBI device description object
  551. * @pnum: the physical eraseblock number to check
  552. *
  553. * This function returns a positive number if the physical eraseblock is bad,
  554. * zero if not, and a negative error code if an error occurred.
  555. */
  556. int ubi_io_is_bad(const struct ubi_device *ubi, int pnum)
  557. {
  558. struct mtd_info *mtd = ubi->mtd;
  559. ubi_assert(pnum >= 0 && pnum < ubi->peb_count);
  560. if (ubi->bad_allowed) {
  561. int ret;
  562. ret = mtd_block_isbad(mtd, (loff_t)pnum * ubi->peb_size);
  563. if (ret < 0)
  564. ubi_err("error %d while checking if PEB %d is bad",
  565. ret, pnum);
  566. else if (ret)
  567. dbg_io("PEB %d is bad", pnum);
  568. return ret;
  569. }
  570. return 0;
  571. }
  572. /**
  573. * ubi_io_mark_bad - mark a physical eraseblock as bad.
  574. * @ubi: UBI device description object
  575. * @pnum: the physical eraseblock number to mark
  576. *
  577. * This function returns zero in case of success and a negative error code in
  578. * case of failure.
  579. */
  580. int ubi_io_mark_bad(const struct ubi_device *ubi, int pnum)
  581. {
  582. int err;
  583. struct mtd_info *mtd = ubi->mtd;
  584. ubi_assert(pnum >= 0 && pnum < ubi->peb_count);
  585. if (ubi->ro_mode) {
  586. ubi_err("read-only mode");
  587. return -EROFS;
  588. }
  589. if (!ubi->bad_allowed)
  590. return 0;
  591. err = mtd_block_markbad(mtd, (loff_t)pnum * ubi->peb_size);
  592. if (err)
  593. ubi_err("cannot mark PEB %d bad, error %d", pnum, err);
  594. return err;
  595. }
  596. /**
  597. * validate_ec_hdr - validate an erase counter header.
  598. * @ubi: UBI device description object
  599. * @ec_hdr: the erase counter header to check
  600. *
  601. * This function returns zero if the erase counter header is OK, and %1 if
  602. * not.
  603. */
  604. static int validate_ec_hdr(const struct ubi_device *ubi,
  605. const struct ubi_ec_hdr *ec_hdr)
  606. {
  607. long long ec;
  608. int vid_hdr_offset, leb_start;
  609. ec = be64_to_cpu(ec_hdr->ec);
  610. vid_hdr_offset = be32_to_cpu(ec_hdr->vid_hdr_offset);
  611. leb_start = be32_to_cpu(ec_hdr->data_offset);
  612. if (ec_hdr->version != UBI_VERSION) {
  613. ubi_err("node with incompatible UBI version found: "
  614. "this UBI version is %d, image version is %d",
  615. UBI_VERSION, (int)ec_hdr->version);
  616. goto bad;
  617. }
  618. if (vid_hdr_offset != ubi->vid_hdr_offset) {
  619. ubi_err("bad VID header offset %d, expected %d",
  620. vid_hdr_offset, ubi->vid_hdr_offset);
  621. goto bad;
  622. }
  623. if (leb_start != ubi->leb_start) {
  624. ubi_err("bad data offset %d, expected %d",
  625. leb_start, ubi->leb_start);
  626. goto bad;
  627. }
  628. if (ec < 0 || ec > UBI_MAX_ERASECOUNTER) {
  629. ubi_err("bad erase counter %lld", ec);
  630. goto bad;
  631. }
  632. return 0;
  633. bad:
  634. ubi_err("bad EC header");
  635. ubi_dump_ec_hdr(ec_hdr);
  636. dump_stack();
  637. return 1;
  638. }
  639. /**
  640. * ubi_io_read_ec_hdr - read and check an erase counter header.
  641. * @ubi: UBI device description object
  642. * @pnum: physical eraseblock to read from
  643. * @ec_hdr: a &struct ubi_ec_hdr object where to store the read erase counter
  644. * header
  645. * @verbose: be verbose if the header is corrupted or was not found
  646. *
  647. * This function reads erase counter header from physical eraseblock @pnum and
  648. * stores it in @ec_hdr. This function also checks CRC checksum of the read
  649. * erase counter header. The following codes may be returned:
  650. *
  651. * o %0 if the CRC checksum is correct and the header was successfully read;
  652. * o %UBI_IO_BITFLIPS if the CRC is correct, but bit-flips were detected
  653. * and corrected by the flash driver; this is harmless but may indicate that
  654. * this eraseblock may become bad soon (but may be not);
  655. * o %UBI_IO_BAD_HDR if the erase counter header is corrupted (a CRC error);
  656. * o %UBI_IO_BAD_HDR_EBADMSG is the same as %UBI_IO_BAD_HDR, but there also was
  657. * a data integrity error (uncorrectable ECC error in case of NAND);
  658. * o %UBI_IO_FF if only 0xFF bytes were read (the PEB is supposedly empty)
  659. * o a negative error code in case of failure.
  660. */
  661. int ubi_io_read_ec_hdr(struct ubi_device *ubi, int pnum,
  662. struct ubi_ec_hdr *ec_hdr, int verbose)
  663. {
  664. int err, read_err;
  665. uint32_t crc, magic, hdr_crc;
  666. dbg_io("read EC header from PEB %d", pnum);
  667. ubi_assert(pnum >= 0 && pnum < ubi->peb_count);
  668. read_err = ubi_io_read(ubi, ec_hdr, pnum, 0, UBI_EC_HDR_SIZE);
  669. if (read_err) {
  670. if (read_err != UBI_IO_BITFLIPS && !mtd_is_eccerr(read_err))
  671. return read_err;
  672. /*
  673. * We read all the data, but either a correctable bit-flip
  674. * occurred, or MTD reported a data integrity error
  675. * (uncorrectable ECC error in case of NAND). The former is
  676. * harmless, the later may mean that the read data is
  677. * corrupted. But we have a CRC check-sum and we will detect
  678. * this. If the EC header is still OK, we just report this as
  679. * there was a bit-flip, to force scrubbing.
  680. */
  681. }
  682. magic = be32_to_cpu(ec_hdr->magic);
  683. if (magic != UBI_EC_HDR_MAGIC) {
  684. if (mtd_is_eccerr(read_err))
  685. return UBI_IO_BAD_HDR_EBADMSG;
  686. /*
  687. * The magic field is wrong. Let's check if we have read all
  688. * 0xFF. If yes, this physical eraseblock is assumed to be
  689. * empty.
  690. */
  691. if (ubi_check_pattern(ec_hdr, 0xFF, UBI_EC_HDR_SIZE)) {
  692. /* The physical eraseblock is supposedly empty */
  693. if (verbose)
  694. ubi_warn("no EC header found at PEB %d, "
  695. "only 0xFF bytes", pnum);
  696. dbg_bld("no EC header found at PEB %d, "
  697. "only 0xFF bytes", pnum);
  698. if (!read_err)
  699. return UBI_IO_FF;
  700. else
  701. return UBI_IO_FF_BITFLIPS;
  702. }
  703. /*
  704. * This is not a valid erase counter header, and these are not
  705. * 0xFF bytes. Report that the header is corrupted.
  706. */
  707. if (verbose) {
  708. ubi_warn("bad magic number at PEB %d: %08x instead of "
  709. "%08x", pnum, magic, UBI_EC_HDR_MAGIC);
  710. ubi_dump_ec_hdr(ec_hdr);
  711. }
  712. dbg_bld("bad magic number at PEB %d: %08x instead of "
  713. "%08x", pnum, magic, UBI_EC_HDR_MAGIC);
  714. return UBI_IO_BAD_HDR;
  715. }
  716. crc = crc32(UBI_CRC32_INIT, ec_hdr, UBI_EC_HDR_SIZE_CRC);
  717. hdr_crc = be32_to_cpu(ec_hdr->hdr_crc);
  718. if (hdr_crc != crc) {
  719. if (verbose) {
  720. ubi_warn("bad EC header CRC at PEB %d, calculated "
  721. "%#08x, read %#08x", pnum, crc, hdr_crc);
  722. ubi_dump_ec_hdr(ec_hdr);
  723. }
  724. dbg_bld("bad EC header CRC at PEB %d, calculated "
  725. "%#08x, read %#08x", pnum, crc, hdr_crc);
  726. if (!read_err)
  727. return UBI_IO_BAD_HDR;
  728. else
  729. return UBI_IO_BAD_HDR_EBADMSG;
  730. }
  731. /* And of course validate what has just been read from the media */
  732. err = validate_ec_hdr(ubi, ec_hdr);
  733. if (err) {
  734. ubi_err("validation failed for PEB %d", pnum);
  735. return -EINVAL;
  736. }
  737. /*
  738. * If there was %-EBADMSG, but the header CRC is still OK, report about
  739. * a bit-flip to force scrubbing on this PEB.
  740. */
  741. return read_err ? UBI_IO_BITFLIPS : 0;
  742. }
  743. /**
  744. * ubi_io_write_ec_hdr - write an erase counter header.
  745. * @ubi: UBI device description object
  746. * @pnum: physical eraseblock to write to
  747. * @ec_hdr: the erase counter header to write
  748. *
  749. * This function writes erase counter header described by @ec_hdr to physical
  750. * eraseblock @pnum. It also fills most fields of @ec_hdr before writing, so
  751. * the caller do not have to fill them. Callers must only fill the @ec_hdr->ec
  752. * field.
  753. *
  754. * This function returns zero in case of success and a negative error code in
  755. * case of failure. If %-EIO is returned, the physical eraseblock most probably
  756. * went bad.
  757. */
  758. int ubi_io_write_ec_hdr(struct ubi_device *ubi, int pnum,
  759. struct ubi_ec_hdr *ec_hdr)
  760. {
  761. int err;
  762. uint32_t crc;
  763. dbg_io("write EC header to PEB %d", pnum);
  764. ubi_assert(pnum >= 0 && pnum < ubi->peb_count);
  765. ec_hdr->magic = cpu_to_be32(UBI_EC_HDR_MAGIC);
  766. ec_hdr->version = UBI_VERSION;
  767. ec_hdr->vid_hdr_offset = cpu_to_be32(ubi->vid_hdr_offset);
  768. ec_hdr->data_offset = cpu_to_be32(ubi->leb_start);
  769. ec_hdr->image_seq = cpu_to_be32(ubi->image_seq);
  770. crc = crc32(UBI_CRC32_INIT, ec_hdr, UBI_EC_HDR_SIZE_CRC);
  771. ec_hdr->hdr_crc = cpu_to_be32(crc);
  772. err = self_check_ec_hdr(ubi, pnum, ec_hdr);
  773. if (err)
  774. return err;
  775. err = ubi_io_write(ubi, ec_hdr, pnum, 0, ubi->ec_hdr_alsize);
  776. return err;
  777. }
  778. /**
  779. * validate_vid_hdr - validate a volume identifier header.
  780. * @ubi: UBI device description object
  781. * @vid_hdr: the volume identifier header to check
  782. *
  783. * This function checks that data stored in the volume identifier header
  784. * @vid_hdr. Returns zero if the VID header is OK and %1 if not.
  785. */
  786. static int validate_vid_hdr(const struct ubi_device *ubi,
  787. const struct ubi_vid_hdr *vid_hdr)
  788. {
  789. int vol_type = vid_hdr->vol_type;
  790. int copy_flag = vid_hdr->copy_flag;
  791. int vol_id = be32_to_cpu(vid_hdr->vol_id);
  792. int lnum = be32_to_cpu(vid_hdr->lnum);
  793. int compat = vid_hdr->compat;
  794. int data_size = be32_to_cpu(vid_hdr->data_size);
  795. int used_ebs = be32_to_cpu(vid_hdr->used_ebs);
  796. int data_pad = be32_to_cpu(vid_hdr->data_pad);
  797. int data_crc = be32_to_cpu(vid_hdr->data_crc);
  798. int usable_leb_size = ubi->leb_size - data_pad;
  799. if (copy_flag != 0 && copy_flag != 1) {
  800. ubi_err("bad copy_flag");
  801. goto bad;
  802. }
  803. if (vol_id < 0 || lnum < 0 || data_size < 0 || used_ebs < 0 ||
  804. data_pad < 0) {
  805. ubi_err("negative values");
  806. goto bad;
  807. }
  808. if (vol_id >= UBI_MAX_VOLUMES && vol_id < UBI_INTERNAL_VOL_START) {
  809. ubi_err("bad vol_id");
  810. goto bad;
  811. }
  812. if (vol_id < UBI_INTERNAL_VOL_START && compat != 0) {
  813. ubi_err("bad compat");
  814. goto bad;
  815. }
  816. if (vol_id >= UBI_INTERNAL_VOL_START && compat != UBI_COMPAT_DELETE &&
  817. compat != UBI_COMPAT_RO && compat != UBI_COMPAT_PRESERVE &&
  818. compat != UBI_COMPAT_REJECT) {
  819. ubi_err("bad compat");
  820. goto bad;
  821. }
  822. if (vol_type != UBI_VID_DYNAMIC && vol_type != UBI_VID_STATIC) {
  823. ubi_err("bad vol_type");
  824. goto bad;
  825. }
  826. if (data_pad >= ubi->leb_size / 2) {
  827. ubi_err("bad data_pad");
  828. goto bad;
  829. }
  830. if (vol_type == UBI_VID_STATIC) {
  831. /*
  832. * Although from high-level point of view static volumes may
  833. * contain zero bytes of data, but no VID headers can contain
  834. * zero at these fields, because they empty volumes do not have
  835. * mapped logical eraseblocks.
  836. */
  837. if (used_ebs == 0) {
  838. ubi_err("zero used_ebs");
  839. goto bad;
  840. }
  841. if (data_size == 0) {
  842. ubi_err("zero data_size");
  843. goto bad;
  844. }
  845. if (lnum < used_ebs - 1) {
  846. if (data_size != usable_leb_size) {
  847. ubi_err("bad data_size");
  848. goto bad;
  849. }
  850. } else if (lnum == used_ebs - 1) {
  851. if (data_size == 0) {
  852. ubi_err("bad data_size at last LEB");
  853. goto bad;
  854. }
  855. } else {
  856. ubi_err("too high lnum");
  857. goto bad;
  858. }
  859. } else {
  860. if (copy_flag == 0) {
  861. if (data_crc != 0) {
  862. ubi_err("non-zero data CRC");
  863. goto bad;
  864. }
  865. if (data_size != 0) {
  866. ubi_err("non-zero data_size");
  867. goto bad;
  868. }
  869. } else {
  870. if (data_size == 0) {
  871. ubi_err("zero data_size of copy");
  872. goto bad;
  873. }
  874. }
  875. if (used_ebs != 0) {
  876. ubi_err("bad used_ebs");
  877. goto bad;
  878. }
  879. }
  880. return 0;
  881. bad:
  882. ubi_err("bad VID header");
  883. ubi_dump_vid_hdr(vid_hdr);
  884. dump_stack();
  885. return 1;
  886. }
  887. /**
  888. * ubi_io_read_vid_hdr - read and check a volume identifier header.
  889. * @ubi: UBI device description object
  890. * @pnum: physical eraseblock number to read from
  891. * @vid_hdr: &struct ubi_vid_hdr object where to store the read volume
  892. * identifier header
  893. * @verbose: be verbose if the header is corrupted or wasn't found
  894. *
  895. * This function reads the volume identifier header from physical eraseblock
  896. * @pnum and stores it in @vid_hdr. It also checks CRC checksum of the read
  897. * volume identifier header. The error codes are the same as in
  898. * 'ubi_io_read_ec_hdr()'.
  899. *
  900. * Note, the implementation of this function is also very similar to
  901. * 'ubi_io_read_ec_hdr()', so refer commentaries in 'ubi_io_read_ec_hdr()'.
  902. */
  903. int ubi_io_read_vid_hdr(struct ubi_device *ubi, int pnum,
  904. struct ubi_vid_hdr *vid_hdr, int verbose)
  905. {
  906. int err, read_err;
  907. uint32_t crc, magic, hdr_crc;
  908. void *p;
  909. dbg_io("read VID header from PEB %d", pnum);
  910. ubi_assert(pnum >= 0 && pnum < ubi->peb_count);
  911. p = (char *)vid_hdr - ubi->vid_hdr_shift;
  912. read_err = ubi_io_read(ubi, p, pnum, ubi->vid_hdr_aloffset,
  913. ubi->vid_hdr_alsize);
  914. if (read_err && read_err != UBI_IO_BITFLIPS && !mtd_is_eccerr(read_err))
  915. return read_err;
  916. magic = be32_to_cpu(vid_hdr->magic);
  917. if (magic != UBI_VID_HDR_MAGIC) {
  918. if (mtd_is_eccerr(read_err))
  919. return UBI_IO_BAD_HDR_EBADMSG;
  920. if (ubi_check_pattern(vid_hdr, 0xFF, UBI_VID_HDR_SIZE)) {
  921. if (verbose)
  922. ubi_warn("no VID header found at PEB %d, "
  923. "only 0xFF bytes", pnum);
  924. dbg_bld("no VID header found at PEB %d, "
  925. "only 0xFF bytes", pnum);
  926. if (!read_err)
  927. return UBI_IO_FF;
  928. else
  929. return UBI_IO_FF_BITFLIPS;
  930. }
  931. if (verbose) {
  932. ubi_warn("bad magic number at PEB %d: %08x instead of "
  933. "%08x", pnum, magic, UBI_VID_HDR_MAGIC);
  934. ubi_dump_vid_hdr(vid_hdr);
  935. }
  936. dbg_bld("bad magic number at PEB %d: %08x instead of "
  937. "%08x", pnum, magic, UBI_VID_HDR_MAGIC);
  938. return UBI_IO_BAD_HDR;
  939. }
  940. crc = crc32(UBI_CRC32_INIT, vid_hdr, UBI_VID_HDR_SIZE_CRC);
  941. hdr_crc = be32_to_cpu(vid_hdr->hdr_crc);
  942. if (hdr_crc != crc) {
  943. if (verbose) {
  944. ubi_warn("bad CRC at PEB %d, calculated %#08x, "
  945. "read %#08x", pnum, crc, hdr_crc);
  946. ubi_dump_vid_hdr(vid_hdr);
  947. }
  948. dbg_bld("bad CRC at PEB %d, calculated %#08x, "
  949. "read %#08x", pnum, crc, hdr_crc);
  950. if (!read_err)
  951. return UBI_IO_BAD_HDR;
  952. else
  953. return UBI_IO_BAD_HDR_EBADMSG;
  954. }
  955. err = validate_vid_hdr(ubi, vid_hdr);
  956. if (err) {
  957. ubi_err("validation failed for PEB %d", pnum);
  958. return -EINVAL;
  959. }
  960. return read_err ? UBI_IO_BITFLIPS : 0;
  961. }
  962. /**
  963. * ubi_io_write_vid_hdr - write a volume identifier header.
  964. * @ubi: UBI device description object
  965. * @pnum: the physical eraseblock number to write to
  966. * @vid_hdr: the volume identifier header to write
  967. *
  968. * This function writes the volume identifier header described by @vid_hdr to
  969. * physical eraseblock @pnum. This function automatically fills the
  970. * @vid_hdr->magic and the @vid_hdr->version fields, as well as calculates
  971. * header CRC checksum and stores it at vid_hdr->hdr_crc.
  972. *
  973. * This function returns zero in case of success and a negative error code in
  974. * case of failure. If %-EIO is returned, the physical eraseblock probably went
  975. * bad.
  976. */
  977. int ubi_io_write_vid_hdr(struct ubi_device *ubi, int pnum,
  978. struct ubi_vid_hdr *vid_hdr)
  979. {
  980. int err;
  981. uint32_t crc;
  982. void *p;
  983. dbg_io("write VID header to PEB %d", pnum);
  984. ubi_assert(pnum >= 0 && pnum < ubi->peb_count);
  985. err = self_check_peb_ec_hdr(ubi, pnum);
  986. if (err)
  987. return err;
  988. vid_hdr->magic = cpu_to_be32(UBI_VID_HDR_MAGIC);
  989. vid_hdr->version = UBI_VERSION;
  990. crc = crc32(UBI_CRC32_INIT, vid_hdr, UBI_VID_HDR_SIZE_CRC);
  991. vid_hdr->hdr_crc = cpu_to_be32(crc);
  992. err = self_check_vid_hdr(ubi, pnum, vid_hdr);
  993. if (err)
  994. return err;
  995. p = (char *)vid_hdr - ubi->vid_hdr_shift;
  996. err = ubi_io_write(ubi, p, pnum, ubi->vid_hdr_aloffset,
  997. ubi->vid_hdr_alsize);
  998. return err;
  999. }
  1000. /**
  1001. * self_check_not_bad - ensure that a physical eraseblock is not bad.
  1002. * @ubi: UBI device description object
  1003. * @pnum: physical eraseblock number to check
  1004. *
  1005. * This function returns zero if the physical eraseblock is good, %-EINVAL if
  1006. * it is bad and a negative error code if an error occurred.
  1007. */
  1008. static int self_check_not_bad(const struct ubi_device *ubi, int pnum)
  1009. {
  1010. int err;
  1011. if (!ubi->dbg->chk_io)
  1012. return 0;
  1013. err = ubi_io_is_bad(ubi, pnum);
  1014. if (!err)
  1015. return err;
  1016. ubi_err("self-check failed for PEB %d", pnum);
  1017. dump_stack();
  1018. return err > 0 ? -EINVAL : err;
  1019. }
  1020. /**
  1021. * self_check_ec_hdr - check if an erase counter header is all right.
  1022. * @ubi: UBI device description object
  1023. * @pnum: physical eraseblock number the erase counter header belongs to
  1024. * @ec_hdr: the erase counter header to check
  1025. *
  1026. * This function returns zero if the erase counter header contains valid
  1027. * values, and %-EINVAL if not.
  1028. */
  1029. static int self_check_ec_hdr(const struct ubi_device *ubi, int pnum,
  1030. const struct ubi_ec_hdr *ec_hdr)
  1031. {
  1032. int err;
  1033. uint32_t magic;
  1034. if (!ubi->dbg->chk_io)
  1035. return 0;
  1036. magic = be32_to_cpu(ec_hdr->magic);
  1037. if (magic != UBI_EC_HDR_MAGIC) {
  1038. ubi_err("bad magic %#08x, must be %#08x",
  1039. magic, UBI_EC_HDR_MAGIC);
  1040. goto fail;
  1041. }
  1042. err = validate_ec_hdr(ubi, ec_hdr);
  1043. if (err) {
  1044. ubi_err("self-check failed for PEB %d", pnum);
  1045. goto fail;
  1046. }
  1047. return 0;
  1048. fail:
  1049. ubi_dump_ec_hdr(ec_hdr);
  1050. dump_stack();
  1051. return -EINVAL;
  1052. }
  1053. /**
  1054. * self_check_peb_ec_hdr - check erase counter header.
  1055. * @ubi: UBI device description object
  1056. * @pnum: the physical eraseblock number to check
  1057. *
  1058. * This function returns zero if the erase counter header is all right and and
  1059. * a negative error code if not or if an error occurred.
  1060. */
  1061. static int self_check_peb_ec_hdr(const struct ubi_device *ubi, int pnum)
  1062. {
  1063. int err;
  1064. uint32_t crc, hdr_crc;
  1065. struct ubi_ec_hdr *ec_hdr;
  1066. if (!ubi->dbg->chk_io)
  1067. return 0;
  1068. ec_hdr = kzalloc(ubi->ec_hdr_alsize, GFP_NOFS);
  1069. if (!ec_hdr)
  1070. return -ENOMEM;
  1071. err = ubi_io_read(ubi, ec_hdr, pnum, 0, UBI_EC_HDR_SIZE);
  1072. if (err && err != UBI_IO_BITFLIPS && !mtd_is_eccerr(err))
  1073. goto exit;
  1074. crc = crc32(UBI_CRC32_INIT, ec_hdr, UBI_EC_HDR_SIZE_CRC);
  1075. hdr_crc = be32_to_cpu(ec_hdr->hdr_crc);
  1076. if (hdr_crc != crc) {
  1077. ubi_err("bad CRC, calculated %#08x, read %#08x", crc, hdr_crc);
  1078. ubi_err("self-check failed for PEB %d", pnum);
  1079. ubi_dump_ec_hdr(ec_hdr);
  1080. dump_stack();
  1081. err = -EINVAL;
  1082. goto exit;
  1083. }
  1084. err = self_check_ec_hdr(ubi, pnum, ec_hdr);
  1085. exit:
  1086. kfree(ec_hdr);
  1087. return err;
  1088. }
  1089. /**
  1090. * self_check_vid_hdr - check that a volume identifier header is all right.
  1091. * @ubi: UBI device description object
  1092. * @pnum: physical eraseblock number the volume identifier header belongs to
  1093. * @vid_hdr: the volume identifier header to check
  1094. *
  1095. * This function returns zero if the volume identifier header is all right, and
  1096. * %-EINVAL if not.
  1097. */
  1098. static int self_check_vid_hdr(const struct ubi_device *ubi, int pnum,
  1099. const struct ubi_vid_hdr *vid_hdr)
  1100. {
  1101. int err;
  1102. uint32_t magic;
  1103. if (!ubi->dbg->chk_io)
  1104. return 0;
  1105. magic = be32_to_cpu(vid_hdr->magic);
  1106. if (magic != UBI_VID_HDR_MAGIC) {
  1107. ubi_err("bad VID header magic %#08x at PEB %d, must be %#08x",
  1108. magic, pnum, UBI_VID_HDR_MAGIC);
  1109. goto fail;
  1110. }
  1111. err = validate_vid_hdr(ubi, vid_hdr);
  1112. if (err) {
  1113. ubi_err("self-check failed for PEB %d", pnum);
  1114. goto fail;
  1115. }
  1116. return err;
  1117. fail:
  1118. ubi_err("self-check failed for PEB %d", pnum);
  1119. ubi_dump_vid_hdr(vid_hdr);
  1120. dump_stack();
  1121. return -EINVAL;
  1122. }
  1123. /**
  1124. * self_check_peb_vid_hdr - check volume identifier header.
  1125. * @ubi: UBI device description object
  1126. * @pnum: the physical eraseblock number to check
  1127. *
  1128. * This function returns zero if the volume identifier header is all right,
  1129. * and a negative error code if not or if an error occurred.
  1130. */
  1131. static int self_check_peb_vid_hdr(const struct ubi_device *ubi, int pnum)
  1132. {
  1133. int err;
  1134. uint32_t crc, hdr_crc;
  1135. struct ubi_vid_hdr *vid_hdr;
  1136. void *p;
  1137. if (!ubi->dbg->chk_io)
  1138. return 0;
  1139. vid_hdr = ubi_zalloc_vid_hdr(ubi, GFP_NOFS);
  1140. if (!vid_hdr)
  1141. return -ENOMEM;
  1142. p = (char *)vid_hdr - ubi->vid_hdr_shift;
  1143. err = ubi_io_read(ubi, p, pnum, ubi->vid_hdr_aloffset,
  1144. ubi->vid_hdr_alsize);
  1145. if (err && err != UBI_IO_BITFLIPS && !mtd_is_eccerr(err))
  1146. goto exit;
  1147. crc = crc32(UBI_CRC32_INIT, vid_hdr, UBI_EC_HDR_SIZE_CRC);
  1148. hdr_crc = be32_to_cpu(vid_hdr->hdr_crc);
  1149. if (hdr_crc != crc) {
  1150. ubi_err("bad VID header CRC at PEB %d, calculated %#08x, "
  1151. "read %#08x", pnum, crc, hdr_crc);
  1152. ubi_err("self-check failed for PEB %d", pnum);
  1153. ubi_dump_vid_hdr(vid_hdr);
  1154. dump_stack();
  1155. err = -EINVAL;
  1156. goto exit;
  1157. }
  1158. err = self_check_vid_hdr(ubi, pnum, vid_hdr);
  1159. exit:
  1160. ubi_free_vid_hdr(ubi, vid_hdr);
  1161. return err;
  1162. }
  1163. /**
  1164. * self_check_write - make sure write succeeded.
  1165. * @ubi: UBI device description object
  1166. * @buf: buffer with data which were written
  1167. * @pnum: physical eraseblock number the data were written to
  1168. * @offset: offset within the physical eraseblock the data were written to
  1169. * @len: how many bytes were written
  1170. *
  1171. * This functions reads data which were recently written and compares it with
  1172. * the original data buffer - the data have to match. Returns zero if the data
  1173. * match and a negative error code if not or in case of failure.
  1174. */
  1175. static int self_check_write(struct ubi_device *ubi, const void *buf, int pnum,
  1176. int offset, int len)
  1177. {
  1178. int err, i;
  1179. size_t read;
  1180. void *buf1;
  1181. loff_t addr = (loff_t)pnum * ubi->peb_size + offset;
  1182. if (!ubi->dbg->chk_io)
  1183. return 0;
  1184. buf1 = __vmalloc(len, GFP_NOFS, PAGE_KERNEL);
  1185. if (!buf1) {
  1186. ubi_err("cannot allocate memory to check writes");
  1187. return 0;
  1188. }
  1189. err = mtd_read(ubi->mtd, addr, len, &read, buf1);
  1190. if (err && !mtd_is_bitflip(err))
  1191. goto out_free;
  1192. for (i = 0; i < len; i++) {
  1193. uint8_t c = ((uint8_t *)buf)[i];
  1194. uint8_t c1 = ((uint8_t *)buf1)[i];
  1195. int dump_len;
  1196. if (c == c1)
  1197. continue;
  1198. ubi_err("self-check failed for PEB %d:%d, len %d",
  1199. pnum, offset, len);
  1200. ubi_msg("data differ at position %d", i);
  1201. dump_len = max_t(int, 128, len - i);
  1202. ubi_msg("hex dump of the original buffer from %d to %d",
  1203. i, i + dump_len);
  1204. print_hex_dump(KERN_DEBUG, "", DUMP_PREFIX_OFFSET, 32, 1,
  1205. buf + i, dump_len, 1);
  1206. ubi_msg("hex dump of the read buffer from %d to %d",
  1207. i, i + dump_len);
  1208. print_hex_dump(KERN_DEBUG, "", DUMP_PREFIX_OFFSET, 32, 1,
  1209. buf1 + i, dump_len, 1);
  1210. dump_stack();
  1211. err = -EINVAL;
  1212. goto out_free;
  1213. }
  1214. vfree(buf1);
  1215. return 0;
  1216. out_free:
  1217. vfree(buf1);
  1218. return err;
  1219. }
  1220. /**
  1221. * ubi_self_check_all_ff - check that a region of flash is empty.
  1222. * @ubi: UBI device description object
  1223. * @pnum: the physical eraseblock number to check
  1224. * @offset: the starting offset within the physical eraseblock to check
  1225. * @len: the length of the region to check
  1226. *
  1227. * This function returns zero if only 0xFF bytes are present at offset
  1228. * @offset of the physical eraseblock @pnum, and a negative error code if not
  1229. * or if an error occurred.
  1230. */
  1231. int ubi_self_check_all_ff(struct ubi_device *ubi, int pnum, int offset, int len)
  1232. {
  1233. size_t read;
  1234. int err;
  1235. void *buf;
  1236. loff_t addr = (loff_t)pnum * ubi->peb_size + offset;
  1237. if (!ubi->dbg->chk_io)
  1238. return 0;
  1239. buf = __vmalloc(len, GFP_NOFS, PAGE_KERNEL);
  1240. if (!buf) {
  1241. ubi_err("cannot allocate memory to check for 0xFFs");
  1242. return 0;
  1243. }
  1244. err = mtd_read(ubi->mtd, addr, len, &read, buf);
  1245. if (err && !mtd_is_bitflip(err)) {
  1246. ubi_err("error %d while reading %d bytes from PEB %d:%d, "
  1247. "read %zd bytes", err, len, pnum, offset, read);
  1248. goto error;
  1249. }
  1250. err = ubi_check_pattern(buf, 0xFF, len);
  1251. if (err == 0) {
  1252. ubi_err("flash region at PEB %d:%d, length %d does not "
  1253. "contain all 0xFF bytes", pnum, offset, len);
  1254. goto fail;
  1255. }
  1256. vfree(buf);
  1257. return 0;
  1258. fail:
  1259. ubi_err("self-check failed for PEB %d", pnum);
  1260. ubi_msg("hex dump of the %d-%d region", offset, offset + len);
  1261. print_hex_dump(KERN_DEBUG, "", DUMP_PREFIX_OFFSET, 32, 1, buf, len, 1);
  1262. err = -EINVAL;
  1263. error:
  1264. dump_stack();
  1265. vfree(buf);
  1266. return err;
  1267. }