lfs.c 186 KB

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  1. /*
  2. * The little filesystem
  3. *
  4. * Copyright (c) 2022, The littlefs authors.
  5. * Copyright (c) 2017, Arm Limited. All rights reserved.
  6. * SPDX-License-Identifier: BSD-3-Clause
  7. */
  8. #include "lfs.h"
  9. #include "lfs_util.h"
  10. // Configuration Sanity Check
  11. #if (LFS_NAME_MAX <= 0) || (LFS_NAME_MAX > 1022)
  12. #error "LFS_NAME_MAX must be in the range (0, 1022]"
  13. #endif
  14. #if (LFS_FILE_MAX <= 0) || (LFS_FILE_MAX > 4294967295)
  15. #error "LFS_FILE_MAX must be in the range (0, 4294967295]"
  16. #endif
  17. #if (LFS_FILE_MAX > 2147483647)
  18. #warning "LFS_FILE_MAX>2147483647; lfs_file_seek, lfs_file_size, and lfs_file_tell will not function properly."
  19. #endif
  20. #if (LFS_ATTR_MAX < 0) || (LFS_ATTR_MAX > 1022)
  21. #error "LFS_ATTR_MAX must be in the range [0, 1022]"
  22. #endif
  23. // some constants used throughout the code
  24. #define LFS_BLOCK_NULL ((lfs_block_t)-1)
  25. #define LFS_BLOCK_INLINE ((lfs_block_t)-2)
  26. enum {
  27. LFS_OK_RELOCATED = 1,
  28. LFS_OK_DROPPED = 2,
  29. LFS_OK_ORPHANED = 3,
  30. };
  31. enum {
  32. LFS_CMP_EQ = 0,
  33. LFS_CMP_LT = 1,
  34. LFS_CMP_GT = 2,
  35. };
  36. /// Caching block device operations ///
  37. static inline void lfs_cache_drop(lfs_t *lfs, lfs_cache_t *rcache) {
  38. // do not zero, cheaper if cache is readonly or only going to be
  39. // written with identical data (during relocates)
  40. (void)lfs;
  41. rcache->block = LFS_BLOCK_NULL;
  42. }
  43. static inline void lfs_cache_zero(lfs_t *lfs, lfs_cache_t *pcache) {
  44. // zero to avoid information leak
  45. memset(pcache->buffer, 0xff, lfs->cfg->cache_size);
  46. pcache->block = LFS_BLOCK_NULL;
  47. }
  48. static int lfs_bd_read(lfs_t *lfs,
  49. const lfs_cache_t *pcache, lfs_cache_t *rcache, lfs_size_t hint,
  50. lfs_block_t block, lfs_off_t off,
  51. void *buffer, lfs_size_t size) {
  52. uint8_t *data = buffer;
  53. if (off+size > lfs->cfg->block_size
  54. || (lfs->block_count && block >= lfs->block_count)) {
  55. return LFS_ERR_CORRUPT;
  56. }
  57. while (size > 0) {
  58. lfs_size_t diff = size;
  59. if (pcache && block == pcache->block &&
  60. off < pcache->off + pcache->size) {
  61. if (off >= pcache->off) {
  62. // is already in pcache?
  63. diff = lfs_min(diff, pcache->size - (off-pcache->off));
  64. memcpy(data, &pcache->buffer[off-pcache->off], diff);
  65. data += diff;
  66. off += diff;
  67. size -= diff;
  68. continue;
  69. }
  70. // pcache takes priority
  71. diff = lfs_min(diff, pcache->off-off);
  72. }
  73. if (block == rcache->block &&
  74. off < rcache->off + rcache->size) {
  75. if (off >= rcache->off) {
  76. // is already in rcache?
  77. diff = lfs_min(diff, rcache->size - (off-rcache->off));
  78. memcpy(data, &rcache->buffer[off-rcache->off], diff);
  79. data += diff;
  80. off += diff;
  81. size -= diff;
  82. continue;
  83. }
  84. // rcache takes priority
  85. diff = lfs_min(diff, rcache->off-off);
  86. }
  87. if (size >= hint && off % lfs->cfg->read_size == 0 &&
  88. size >= lfs->cfg->read_size) {
  89. // bypass cache?
  90. diff = lfs_aligndown(diff, lfs->cfg->read_size);
  91. int err = lfs->cfg->read(lfs->cfg, block, off, data, diff);
  92. if (err) {
  93. return err;
  94. }
  95. data += diff;
  96. off += diff;
  97. size -= diff;
  98. continue;
  99. }
  100. // load to cache, first condition can no longer fail
  101. LFS_ASSERT(!lfs->block_count || block < lfs->block_count);
  102. rcache->block = block;
  103. rcache->off = lfs_aligndown(off, lfs->cfg->read_size);
  104. rcache->size = lfs_min(
  105. lfs_min(
  106. lfs_alignup(off+hint, lfs->cfg->read_size),
  107. lfs->cfg->block_size)
  108. - rcache->off,
  109. lfs->cfg->cache_size);
  110. int err = lfs->cfg->read(lfs->cfg, rcache->block,
  111. rcache->off, rcache->buffer, rcache->size);
  112. LFS_ASSERT(err <= 0);
  113. if (err) {
  114. return err;
  115. }
  116. }
  117. return 0;
  118. }
  119. static int lfs_bd_cmp(lfs_t *lfs,
  120. const lfs_cache_t *pcache, lfs_cache_t *rcache, lfs_size_t hint,
  121. lfs_block_t block, lfs_off_t off,
  122. const void *buffer, lfs_size_t size) {
  123. const uint8_t *data = buffer;
  124. lfs_size_t diff = 0;
  125. for (lfs_off_t i = 0; i < size; i += diff) {
  126. uint8_t dat[8];
  127. diff = lfs_min(size-i, sizeof(dat));
  128. int err = lfs_bd_read(lfs,
  129. pcache, rcache, hint-i,
  130. block, off+i, &dat, diff);
  131. if (err) {
  132. return err;
  133. }
  134. int res = memcmp(dat, data + i, diff);
  135. if (res) {
  136. return res < 0 ? LFS_CMP_LT : LFS_CMP_GT;
  137. }
  138. }
  139. return LFS_CMP_EQ;
  140. }
  141. static int lfs_bd_crc(lfs_t *lfs,
  142. const lfs_cache_t *pcache, lfs_cache_t *rcache, lfs_size_t hint,
  143. lfs_block_t block, lfs_off_t off, lfs_size_t size, uint32_t *crc) {
  144. lfs_size_t diff = 0;
  145. for (lfs_off_t i = 0; i < size; i += diff) {
  146. uint8_t dat[8];
  147. diff = lfs_min(size-i, sizeof(dat));
  148. int err = lfs_bd_read(lfs,
  149. pcache, rcache, hint-i,
  150. block, off+i, &dat, diff);
  151. if (err) {
  152. return err;
  153. }
  154. *crc = lfs_crc(*crc, &dat, diff);
  155. }
  156. return 0;
  157. }
  158. #ifndef LFS_READONLY
  159. static int lfs_bd_flush(lfs_t *lfs,
  160. lfs_cache_t *pcache, lfs_cache_t *rcache, bool validate) {
  161. if (pcache->block != LFS_BLOCK_NULL && pcache->block != LFS_BLOCK_INLINE) {
  162. LFS_ASSERT(pcache->block < lfs->block_count);
  163. lfs_size_t diff = lfs_alignup(pcache->size, lfs->cfg->prog_size);
  164. int err = lfs->cfg->prog(lfs->cfg, pcache->block,
  165. pcache->off, pcache->buffer, diff);
  166. LFS_ASSERT(err <= 0);
  167. if (err) {
  168. return err;
  169. }
  170. if (validate) {
  171. // check data on disk
  172. lfs_cache_drop(lfs, rcache);
  173. int res = lfs_bd_cmp(lfs,
  174. NULL, rcache, diff,
  175. pcache->block, pcache->off, pcache->buffer, diff);
  176. if (res < 0) {
  177. return res;
  178. }
  179. if (res != LFS_CMP_EQ) {
  180. return LFS_ERR_CORRUPT;
  181. }
  182. }
  183. lfs_cache_zero(lfs, pcache);
  184. }
  185. return 0;
  186. }
  187. #endif
  188. #ifndef LFS_READONLY
  189. static int lfs_bd_sync(lfs_t *lfs,
  190. lfs_cache_t *pcache, lfs_cache_t *rcache, bool validate) {
  191. lfs_cache_drop(lfs, rcache);
  192. int err = lfs_bd_flush(lfs, pcache, rcache, validate);
  193. if (err) {
  194. return err;
  195. }
  196. err = lfs->cfg->sync(lfs->cfg);
  197. LFS_ASSERT(err <= 0);
  198. return err;
  199. }
  200. #endif
  201. #ifndef LFS_READONLY
  202. static int lfs_bd_prog(lfs_t *lfs,
  203. lfs_cache_t *pcache, lfs_cache_t *rcache, bool validate,
  204. lfs_block_t block, lfs_off_t off,
  205. const void *buffer, lfs_size_t size) {
  206. const uint8_t *data = buffer;
  207. LFS_ASSERT(block == LFS_BLOCK_INLINE || block < lfs->block_count);
  208. LFS_ASSERT(off + size <= lfs->cfg->block_size);
  209. while (size > 0) {
  210. if (block == pcache->block &&
  211. off >= pcache->off &&
  212. off < pcache->off + lfs->cfg->cache_size) {
  213. // already fits in pcache?
  214. lfs_size_t diff = lfs_min(size,
  215. lfs->cfg->cache_size - (off-pcache->off));
  216. memcpy(&pcache->buffer[off-pcache->off], data, diff);
  217. data += diff;
  218. off += diff;
  219. size -= diff;
  220. pcache->size = lfs_max(pcache->size, off - pcache->off);
  221. if (pcache->size == lfs->cfg->cache_size) {
  222. // eagerly flush out pcache if we fill up
  223. int err = lfs_bd_flush(lfs, pcache, rcache, validate);
  224. if (err) {
  225. return err;
  226. }
  227. }
  228. continue;
  229. }
  230. // pcache must have been flushed, either by programming and
  231. // entire block or manually flushing the pcache
  232. LFS_ASSERT(pcache->block == LFS_BLOCK_NULL);
  233. // prepare pcache, first condition can no longer fail
  234. pcache->block = block;
  235. pcache->off = lfs_aligndown(off, lfs->cfg->prog_size);
  236. pcache->size = 0;
  237. }
  238. return 0;
  239. }
  240. #endif
  241. #ifndef LFS_READONLY
  242. static int lfs_bd_erase(lfs_t *lfs, lfs_block_t block) {
  243. LFS_ASSERT(block < lfs->block_count);
  244. int err = lfs->cfg->erase(lfs->cfg, block);
  245. LFS_ASSERT(err <= 0);
  246. return err;
  247. }
  248. #endif
  249. /// Small type-level utilities ///
  250. // operations on block pairs
  251. static inline void lfs_pair_swap(lfs_block_t pair[2]) {
  252. lfs_block_t t = pair[0];
  253. pair[0] = pair[1];
  254. pair[1] = t;
  255. }
  256. static inline bool lfs_pair_isnull(const lfs_block_t pair[2]) {
  257. return pair[0] == LFS_BLOCK_NULL || pair[1] == LFS_BLOCK_NULL;
  258. }
  259. static inline int lfs_pair_cmp(
  260. const lfs_block_t paira[2],
  261. const lfs_block_t pairb[2]) {
  262. return !(paira[0] == pairb[0] || paira[1] == pairb[1] ||
  263. paira[0] == pairb[1] || paira[1] == pairb[0]);
  264. }
  265. static inline bool lfs_pair_issync(
  266. const lfs_block_t paira[2],
  267. const lfs_block_t pairb[2]) {
  268. return (paira[0] == pairb[0] && paira[1] == pairb[1]) ||
  269. (paira[0] == pairb[1] && paira[1] == pairb[0]);
  270. }
  271. static inline void lfs_pair_fromle32(lfs_block_t pair[2]) {
  272. pair[0] = lfs_fromle32(pair[0]);
  273. pair[1] = lfs_fromle32(pair[1]);
  274. }
  275. #ifndef LFS_READONLY
  276. static inline void lfs_pair_tole32(lfs_block_t pair[2]) {
  277. pair[0] = lfs_tole32(pair[0]);
  278. pair[1] = lfs_tole32(pair[1]);
  279. }
  280. #endif
  281. // operations on 32-bit entry tags
  282. typedef uint32_t lfs_tag_t;
  283. typedef int32_t lfs_stag_t;
  284. #define LFS_MKTAG(type, id, size) \
  285. (((lfs_tag_t)(type) << 20) | ((lfs_tag_t)(id) << 10) | (lfs_tag_t)(size))
  286. #define LFS_MKTAG_IF(cond, type, id, size) \
  287. ((cond) ? LFS_MKTAG(type, id, size) : LFS_MKTAG(LFS_FROM_NOOP, 0, 0))
  288. #define LFS_MKTAG_IF_ELSE(cond, type1, id1, size1, type2, id2, size2) \
  289. ((cond) ? LFS_MKTAG(type1, id1, size1) : LFS_MKTAG(type2, id2, size2))
  290. static inline bool lfs_tag_isvalid(lfs_tag_t tag) {
  291. return !(tag & 0x80000000);
  292. }
  293. static inline bool lfs_tag_isdelete(lfs_tag_t tag) {
  294. return ((int32_t)(tag << 22) >> 22) == -1;
  295. }
  296. static inline uint16_t lfs_tag_type1(lfs_tag_t tag) {
  297. return (tag & 0x70000000) >> 20;
  298. }
  299. static inline uint16_t lfs_tag_type2(lfs_tag_t tag) {
  300. return (tag & 0x78000000) >> 20;
  301. }
  302. static inline uint16_t lfs_tag_type3(lfs_tag_t tag) {
  303. return (tag & 0x7ff00000) >> 20;
  304. }
  305. static inline uint8_t lfs_tag_chunk(lfs_tag_t tag) {
  306. return (tag & 0x0ff00000) >> 20;
  307. }
  308. static inline int8_t lfs_tag_splice(lfs_tag_t tag) {
  309. return (int8_t)lfs_tag_chunk(tag);
  310. }
  311. static inline uint16_t lfs_tag_id(lfs_tag_t tag) {
  312. return (tag & 0x000ffc00) >> 10;
  313. }
  314. static inline lfs_size_t lfs_tag_size(lfs_tag_t tag) {
  315. return tag & 0x000003ff;
  316. }
  317. static inline lfs_size_t lfs_tag_dsize(lfs_tag_t tag) {
  318. return sizeof(tag) + lfs_tag_size(tag + lfs_tag_isdelete(tag));
  319. }
  320. // operations on attributes in attribute lists
  321. struct lfs_mattr {
  322. lfs_tag_t tag;
  323. const void *buffer;
  324. };
  325. struct lfs_diskoff {
  326. lfs_block_t block;
  327. lfs_off_t off;
  328. };
  329. #define LFS_MKATTRS(...) \
  330. (struct lfs_mattr[]){__VA_ARGS__}, \
  331. sizeof((struct lfs_mattr[]){__VA_ARGS__}) / sizeof(struct lfs_mattr)
  332. // operations on global state
  333. static inline void lfs_gstate_xor(lfs_gstate_t *a, const lfs_gstate_t *b) {
  334. for (int i = 0; i < 3; i++) {
  335. ((uint32_t*)a)[i] ^= ((const uint32_t*)b)[i];
  336. }
  337. }
  338. static inline bool lfs_gstate_iszero(const lfs_gstate_t *a) {
  339. for (int i = 0; i < 3; i++) {
  340. if (((uint32_t*)a)[i] != 0) {
  341. return false;
  342. }
  343. }
  344. return true;
  345. }
  346. #ifndef LFS_READONLY
  347. static inline bool lfs_gstate_hasorphans(const lfs_gstate_t *a) {
  348. return lfs_tag_size(a->tag);
  349. }
  350. static inline uint8_t lfs_gstate_getorphans(const lfs_gstate_t *a) {
  351. return lfs_tag_size(a->tag) & 0x1ff;
  352. }
  353. static inline bool lfs_gstate_hasmove(const lfs_gstate_t *a) {
  354. return lfs_tag_type1(a->tag);
  355. }
  356. #endif
  357. static inline bool lfs_gstate_needssuperblock(const lfs_gstate_t *a) {
  358. return lfs_tag_size(a->tag) >> 9;
  359. }
  360. static inline bool lfs_gstate_hasmovehere(const lfs_gstate_t *a,
  361. const lfs_block_t *pair) {
  362. return lfs_tag_type1(a->tag) && lfs_pair_cmp(a->pair, pair) == 0;
  363. }
  364. static inline void lfs_gstate_fromle32(lfs_gstate_t *a) {
  365. a->tag = lfs_fromle32(a->tag);
  366. a->pair[0] = lfs_fromle32(a->pair[0]);
  367. a->pair[1] = lfs_fromle32(a->pair[1]);
  368. }
  369. #ifndef LFS_READONLY
  370. static inline void lfs_gstate_tole32(lfs_gstate_t *a) {
  371. a->tag = lfs_tole32(a->tag);
  372. a->pair[0] = lfs_tole32(a->pair[0]);
  373. a->pair[1] = lfs_tole32(a->pair[1]);
  374. }
  375. #endif
  376. // operations on forward-CRCs used to track erased state
  377. struct lfs_fcrc {
  378. lfs_size_t size;
  379. uint32_t crc;
  380. };
  381. static void lfs_fcrc_fromle32(struct lfs_fcrc *fcrc) {
  382. fcrc->size = lfs_fromle32(fcrc->size);
  383. fcrc->crc = lfs_fromle32(fcrc->crc);
  384. }
  385. #ifndef LFS_READONLY
  386. static void lfs_fcrc_tole32(struct lfs_fcrc *fcrc) {
  387. fcrc->size = lfs_tole32(fcrc->size);
  388. fcrc->crc = lfs_tole32(fcrc->crc);
  389. }
  390. #endif
  391. // other endianness operations
  392. static void lfs_ctz_fromle32(struct lfs_ctz *ctz) {
  393. ctz->head = lfs_fromle32(ctz->head);
  394. ctz->size = lfs_fromle32(ctz->size);
  395. }
  396. #ifndef LFS_READONLY
  397. static void lfs_ctz_tole32(struct lfs_ctz *ctz) {
  398. ctz->head = lfs_tole32(ctz->head);
  399. ctz->size = lfs_tole32(ctz->size);
  400. }
  401. #endif
  402. static inline void lfs_superblock_fromle32(lfs_superblock_t *superblock) {
  403. superblock->version = lfs_fromle32(superblock->version);
  404. superblock->block_size = lfs_fromle32(superblock->block_size);
  405. superblock->block_count = lfs_fromle32(superblock->block_count);
  406. superblock->name_max = lfs_fromle32(superblock->name_max);
  407. superblock->file_max = lfs_fromle32(superblock->file_max);
  408. superblock->attr_max = lfs_fromle32(superblock->attr_max);
  409. }
  410. #ifndef LFS_READONLY
  411. static inline void lfs_superblock_tole32(lfs_superblock_t *superblock) {
  412. superblock->version = lfs_tole32(superblock->version);
  413. superblock->block_size = lfs_tole32(superblock->block_size);
  414. superblock->block_count = lfs_tole32(superblock->block_count);
  415. superblock->name_max = lfs_tole32(superblock->name_max);
  416. superblock->file_max = lfs_tole32(superblock->file_max);
  417. superblock->attr_max = lfs_tole32(superblock->attr_max);
  418. }
  419. #endif
  420. #ifndef LFS_NO_ASSERT
  421. static bool lfs_mlist_isopen(struct lfs_mlist *head,
  422. struct lfs_mlist *node) {
  423. for (struct lfs_mlist **p = &head; *p; p = &(*p)->next) {
  424. if (*p == (struct lfs_mlist*)node) {
  425. return true;
  426. }
  427. }
  428. return false;
  429. }
  430. #endif
  431. static void lfs_mlist_remove(lfs_t *lfs, struct lfs_mlist *mlist) {
  432. for (struct lfs_mlist **p = &lfs->mlist; *p; p = &(*p)->next) {
  433. if (*p == mlist) {
  434. *p = (*p)->next;
  435. break;
  436. }
  437. }
  438. }
  439. static void lfs_mlist_append(lfs_t *lfs, struct lfs_mlist *mlist) {
  440. mlist->next = lfs->mlist;
  441. lfs->mlist = mlist;
  442. }
  443. // some other filesystem operations
  444. static uint32_t lfs_fs_disk_version(lfs_t *lfs) {
  445. (void)lfs;
  446. #ifdef LFS_MULTIVERSION
  447. if (lfs->cfg->disk_version) {
  448. return lfs->cfg->disk_version;
  449. } else
  450. #endif
  451. {
  452. return LFS_DISK_VERSION;
  453. }
  454. }
  455. static uint16_t lfs_fs_disk_version_major(lfs_t *lfs) {
  456. return 0xffff & (lfs_fs_disk_version(lfs) >> 16);
  457. }
  458. static uint16_t lfs_fs_disk_version_minor(lfs_t *lfs) {
  459. return 0xffff & (lfs_fs_disk_version(lfs) >> 0);
  460. }
  461. /// Internal operations predeclared here ///
  462. #ifndef LFS_READONLY
  463. static int lfs_dir_commit(lfs_t *lfs, lfs_mdir_t *dir,
  464. const struct lfs_mattr *attrs, int attrcount);
  465. static int lfs_dir_compact(lfs_t *lfs,
  466. lfs_mdir_t *dir, const struct lfs_mattr *attrs, int attrcount,
  467. lfs_mdir_t *source, uint16_t begin, uint16_t end);
  468. static lfs_ssize_t lfs_file_flushedwrite(lfs_t *lfs, lfs_file_t *file,
  469. const void *buffer, lfs_size_t size);
  470. static lfs_ssize_t lfs_file_rawwrite(lfs_t *lfs, lfs_file_t *file,
  471. const void *buffer, lfs_size_t size);
  472. static int lfs_file_rawsync(lfs_t *lfs, lfs_file_t *file);
  473. static int lfs_file_outline(lfs_t *lfs, lfs_file_t *file);
  474. static int lfs_file_flush(lfs_t *lfs, lfs_file_t *file);
  475. static int lfs_fs_deorphan(lfs_t *lfs, bool powerloss);
  476. static int lfs_fs_preporphans(lfs_t *lfs, int8_t orphans);
  477. static void lfs_fs_prepmove(lfs_t *lfs,
  478. uint16_t id, const lfs_block_t pair[2]);
  479. static int lfs_fs_pred(lfs_t *lfs, const lfs_block_t dir[2],
  480. lfs_mdir_t *pdir);
  481. static lfs_stag_t lfs_fs_parent(lfs_t *lfs, const lfs_block_t dir[2],
  482. lfs_mdir_t *parent);
  483. static int lfs_fs_forceconsistency(lfs_t *lfs);
  484. #endif
  485. static void lfs_fs_prepsuperblock(lfs_t *lfs, bool needssuperblock);
  486. #ifdef LFS_MIGRATE
  487. static int lfs1_traverse(lfs_t *lfs,
  488. int (*cb)(void*, lfs_block_t), void *data);
  489. #endif
  490. static int lfs_dir_rawrewind(lfs_t *lfs, lfs_dir_t *dir);
  491. static lfs_ssize_t lfs_file_flushedread(lfs_t *lfs, lfs_file_t *file,
  492. void *buffer, lfs_size_t size);
  493. static lfs_ssize_t lfs_file_rawread(lfs_t *lfs, lfs_file_t *file,
  494. void *buffer, lfs_size_t size);
  495. static int lfs_file_rawclose(lfs_t *lfs, lfs_file_t *file);
  496. static lfs_soff_t lfs_file_rawsize(lfs_t *lfs, lfs_file_t *file);
  497. static lfs_ssize_t lfs_fs_rawsize(lfs_t *lfs);
  498. static int lfs_fs_rawtraverse(lfs_t *lfs,
  499. int (*cb)(void *data, lfs_block_t block), void *data,
  500. bool includeorphans);
  501. static int lfs_deinit(lfs_t *lfs);
  502. static int lfs_rawunmount(lfs_t *lfs);
  503. /// Block allocator ///
  504. #ifndef LFS_READONLY
  505. static int lfs_alloc_lookahead(void *p, lfs_block_t block) {
  506. lfs_t *lfs = (lfs_t*)p;
  507. lfs_block_t off = ((block - lfs->free.off)
  508. + lfs->block_count) % lfs->block_count;
  509. if (off < lfs->free.size) {
  510. lfs->free.buffer[off / 32] |= 1U << (off % 32);
  511. }
  512. return 0;
  513. }
  514. #endif
  515. // indicate allocated blocks have been committed into the filesystem, this
  516. // is to prevent blocks from being garbage collected in the middle of a
  517. // commit operation
  518. static void lfs_alloc_ack(lfs_t *lfs) {
  519. lfs->free.ack = lfs->block_count;
  520. }
  521. // drop the lookahead buffer, this is done during mounting and failed
  522. // traversals in order to avoid invalid lookahead state
  523. static void lfs_alloc_drop(lfs_t *lfs) {
  524. lfs->free.size = 0;
  525. lfs->free.i = 0;
  526. lfs_alloc_ack(lfs);
  527. }
  528. #ifndef LFS_READONLY
  529. static int lfs_fs_rawgc(lfs_t *lfs) {
  530. // Move free offset at the first unused block (lfs->free.i)
  531. // lfs->free.i is equal lfs->free.size when all blocks are used
  532. lfs->free.off = (lfs->free.off + lfs->free.i) % lfs->block_count;
  533. lfs->free.size = lfs_min(8*lfs->cfg->lookahead_size, lfs->free.ack);
  534. lfs->free.i = 0;
  535. // find mask of free blocks from tree
  536. memset(lfs->free.buffer, 0, lfs->cfg->lookahead_size);
  537. int err = lfs_fs_rawtraverse(lfs, lfs_alloc_lookahead, lfs, true);
  538. if (err) {
  539. lfs_alloc_drop(lfs);
  540. return err;
  541. }
  542. return 0;
  543. }
  544. #endif
  545. #ifndef LFS_READONLY
  546. static int lfs_alloc(lfs_t *lfs, lfs_block_t *block) {
  547. while (true) {
  548. while (lfs->free.i != lfs->free.size) {
  549. lfs_block_t off = lfs->free.i;
  550. lfs->free.i += 1;
  551. lfs->free.ack -= 1;
  552. if (!(lfs->free.buffer[off / 32] & (1U << (off % 32)))) {
  553. // found a free block
  554. *block = (lfs->free.off + off) % lfs->block_count;
  555. // eagerly find next off so an alloc ack can
  556. // discredit old lookahead blocks
  557. while (lfs->free.i != lfs->free.size &&
  558. (lfs->free.buffer[lfs->free.i / 32]
  559. & (1U << (lfs->free.i % 32)))) {
  560. lfs->free.i += 1;
  561. lfs->free.ack -= 1;
  562. }
  563. return 0;
  564. }
  565. }
  566. // check if we have looked at all blocks since last ack
  567. if (lfs->free.ack == 0) {
  568. LFS_ERROR("No more free space %"PRIu32,
  569. lfs->free.i + lfs->free.off);
  570. return LFS_ERR_NOSPC;
  571. }
  572. int err = lfs_fs_rawgc(lfs);
  573. if(err) {
  574. return err;
  575. }
  576. }
  577. }
  578. #endif
  579. /// Metadata pair and directory operations ///
  580. static lfs_stag_t lfs_dir_getslice(lfs_t *lfs, const lfs_mdir_t *dir,
  581. lfs_tag_t gmask, lfs_tag_t gtag,
  582. lfs_off_t goff, void *gbuffer, lfs_size_t gsize) {
  583. lfs_off_t off = dir->off;
  584. lfs_tag_t ntag = dir->etag;
  585. lfs_stag_t gdiff = 0;
  586. if (lfs_gstate_hasmovehere(&lfs->gdisk, dir->pair) &&
  587. lfs_tag_id(gmask) != 0 &&
  588. lfs_tag_id(lfs->gdisk.tag) <= lfs_tag_id(gtag)) {
  589. // synthetic moves
  590. gdiff -= LFS_MKTAG(0, 1, 0);
  591. }
  592. // iterate over dir block backwards (for faster lookups)
  593. while (off >= sizeof(lfs_tag_t) + lfs_tag_dsize(ntag)) {
  594. off -= lfs_tag_dsize(ntag);
  595. lfs_tag_t tag = ntag;
  596. int err = lfs_bd_read(lfs,
  597. NULL, &lfs->rcache, sizeof(ntag),
  598. dir->pair[0], off, &ntag, sizeof(ntag));
  599. if (err) {
  600. return err;
  601. }
  602. ntag = (lfs_frombe32(ntag) ^ tag) & 0x7fffffff;
  603. if (lfs_tag_id(gmask) != 0 &&
  604. lfs_tag_type1(tag) == LFS_TYPE_SPLICE &&
  605. lfs_tag_id(tag) <= lfs_tag_id(gtag - gdiff)) {
  606. if (tag == (LFS_MKTAG(LFS_TYPE_CREATE, 0, 0) |
  607. (LFS_MKTAG(0, 0x3ff, 0) & (gtag - gdiff)))) {
  608. // found where we were created
  609. return LFS_ERR_NOENT;
  610. }
  611. // move around splices
  612. gdiff += LFS_MKTAG(0, lfs_tag_splice(tag), 0);
  613. }
  614. if ((gmask & tag) == (gmask & (gtag - gdiff))) {
  615. if (lfs_tag_isdelete(tag)) {
  616. return LFS_ERR_NOENT;
  617. }
  618. lfs_size_t diff = lfs_min(lfs_tag_size(tag), gsize);
  619. err = lfs_bd_read(lfs,
  620. NULL, &lfs->rcache, diff,
  621. dir->pair[0], off+sizeof(tag)+goff, gbuffer, diff);
  622. if (err) {
  623. return err;
  624. }
  625. memset((uint8_t*)gbuffer + diff, 0, gsize - diff);
  626. return tag + gdiff;
  627. }
  628. }
  629. return LFS_ERR_NOENT;
  630. }
  631. static lfs_stag_t lfs_dir_get(lfs_t *lfs, const lfs_mdir_t *dir,
  632. lfs_tag_t gmask, lfs_tag_t gtag, void *buffer) {
  633. return lfs_dir_getslice(lfs, dir,
  634. gmask, gtag,
  635. 0, buffer, lfs_tag_size(gtag));
  636. }
  637. static int lfs_dir_getread(lfs_t *lfs, const lfs_mdir_t *dir,
  638. const lfs_cache_t *pcache, lfs_cache_t *rcache, lfs_size_t hint,
  639. lfs_tag_t gmask, lfs_tag_t gtag,
  640. lfs_off_t off, void *buffer, lfs_size_t size) {
  641. uint8_t *data = buffer;
  642. if (off+size > lfs->cfg->block_size) {
  643. return LFS_ERR_CORRUPT;
  644. }
  645. while (size > 0) {
  646. lfs_size_t diff = size;
  647. if (pcache && pcache->block == LFS_BLOCK_INLINE &&
  648. off < pcache->off + pcache->size) {
  649. if (off >= pcache->off) {
  650. // is already in pcache?
  651. diff = lfs_min(diff, pcache->size - (off-pcache->off));
  652. memcpy(data, &pcache->buffer[off-pcache->off], diff);
  653. data += diff;
  654. off += diff;
  655. size -= diff;
  656. continue;
  657. }
  658. // pcache takes priority
  659. diff = lfs_min(diff, pcache->off-off);
  660. }
  661. if (rcache->block == LFS_BLOCK_INLINE &&
  662. off < rcache->off + rcache->size) {
  663. if (off >= rcache->off) {
  664. // is already in rcache?
  665. diff = lfs_min(diff, rcache->size - (off-rcache->off));
  666. memcpy(data, &rcache->buffer[off-rcache->off], diff);
  667. data += diff;
  668. off += diff;
  669. size -= diff;
  670. continue;
  671. }
  672. // rcache takes priority
  673. diff = lfs_min(diff, rcache->off-off);
  674. }
  675. // load to cache, first condition can no longer fail
  676. rcache->block = LFS_BLOCK_INLINE;
  677. rcache->off = lfs_aligndown(off, lfs->cfg->read_size);
  678. rcache->size = lfs_min(lfs_alignup(off+hint, lfs->cfg->read_size),
  679. lfs->cfg->cache_size);
  680. int err = lfs_dir_getslice(lfs, dir, gmask, gtag,
  681. rcache->off, rcache->buffer, rcache->size);
  682. if (err < 0) {
  683. return err;
  684. }
  685. }
  686. return 0;
  687. }
  688. #ifndef LFS_READONLY
  689. static int lfs_dir_traverse_filter(void *p,
  690. lfs_tag_t tag, const void *buffer) {
  691. lfs_tag_t *filtertag = p;
  692. (void)buffer;
  693. // which mask depends on unique bit in tag structure
  694. uint32_t mask = (tag & LFS_MKTAG(0x100, 0, 0))
  695. ? LFS_MKTAG(0x7ff, 0x3ff, 0)
  696. : LFS_MKTAG(0x700, 0x3ff, 0);
  697. // check for redundancy
  698. if ((mask & tag) == (mask & *filtertag) ||
  699. lfs_tag_isdelete(*filtertag) ||
  700. (LFS_MKTAG(0x7ff, 0x3ff, 0) & tag) == (
  701. LFS_MKTAG(LFS_TYPE_DELETE, 0, 0) |
  702. (LFS_MKTAG(0, 0x3ff, 0) & *filtertag))) {
  703. *filtertag = LFS_MKTAG(LFS_FROM_NOOP, 0, 0);
  704. return true;
  705. }
  706. // check if we need to adjust for created/deleted tags
  707. if (lfs_tag_type1(tag) == LFS_TYPE_SPLICE &&
  708. lfs_tag_id(tag) <= lfs_tag_id(*filtertag)) {
  709. *filtertag += LFS_MKTAG(0, lfs_tag_splice(tag), 0);
  710. }
  711. return false;
  712. }
  713. #endif
  714. #ifndef LFS_READONLY
  715. // maximum recursive depth of lfs_dir_traverse, the deepest call:
  716. //
  717. // traverse with commit
  718. // '-> traverse with move
  719. // '-> traverse with filter
  720. //
  721. #define LFS_DIR_TRAVERSE_DEPTH 3
  722. struct lfs_dir_traverse {
  723. const lfs_mdir_t *dir;
  724. lfs_off_t off;
  725. lfs_tag_t ptag;
  726. const struct lfs_mattr *attrs;
  727. int attrcount;
  728. lfs_tag_t tmask;
  729. lfs_tag_t ttag;
  730. uint16_t begin;
  731. uint16_t end;
  732. int16_t diff;
  733. int (*cb)(void *data, lfs_tag_t tag, const void *buffer);
  734. void *data;
  735. lfs_tag_t tag;
  736. const void *buffer;
  737. struct lfs_diskoff disk;
  738. };
  739. static int lfs_dir_traverse(lfs_t *lfs,
  740. const lfs_mdir_t *dir, lfs_off_t off, lfs_tag_t ptag,
  741. const struct lfs_mattr *attrs, int attrcount,
  742. lfs_tag_t tmask, lfs_tag_t ttag,
  743. uint16_t begin, uint16_t end, int16_t diff,
  744. int (*cb)(void *data, lfs_tag_t tag, const void *buffer), void *data) {
  745. // This function in inherently recursive, but bounded. To allow tool-based
  746. // analysis without unnecessary code-cost we use an explicit stack
  747. struct lfs_dir_traverse stack[LFS_DIR_TRAVERSE_DEPTH-1];
  748. unsigned sp = 0;
  749. int res;
  750. // iterate over directory and attrs
  751. lfs_tag_t tag;
  752. const void *buffer;
  753. struct lfs_diskoff disk = {0};
  754. while (true) {
  755. {
  756. if (off+lfs_tag_dsize(ptag) < dir->off) {
  757. off += lfs_tag_dsize(ptag);
  758. int err = lfs_bd_read(lfs,
  759. NULL, &lfs->rcache, sizeof(tag),
  760. dir->pair[0], off, &tag, sizeof(tag));
  761. if (err) {
  762. return err;
  763. }
  764. tag = (lfs_frombe32(tag) ^ ptag) | 0x80000000;
  765. disk.block = dir->pair[0];
  766. disk.off = off+sizeof(lfs_tag_t);
  767. buffer = &disk;
  768. ptag = tag;
  769. } else if (attrcount > 0) {
  770. tag = attrs[0].tag;
  771. buffer = attrs[0].buffer;
  772. attrs += 1;
  773. attrcount -= 1;
  774. } else {
  775. // finished traversal, pop from stack?
  776. res = 0;
  777. break;
  778. }
  779. // do we need to filter?
  780. lfs_tag_t mask = LFS_MKTAG(0x7ff, 0, 0);
  781. if ((mask & tmask & tag) != (mask & tmask & ttag)) {
  782. continue;
  783. }
  784. if (lfs_tag_id(tmask) != 0) {
  785. LFS_ASSERT(sp < LFS_DIR_TRAVERSE_DEPTH);
  786. // recurse, scan for duplicates, and update tag based on
  787. // creates/deletes
  788. stack[sp] = (struct lfs_dir_traverse){
  789. .dir = dir,
  790. .off = off,
  791. .ptag = ptag,
  792. .attrs = attrs,
  793. .attrcount = attrcount,
  794. .tmask = tmask,
  795. .ttag = ttag,
  796. .begin = begin,
  797. .end = end,
  798. .diff = diff,
  799. .cb = cb,
  800. .data = data,
  801. .tag = tag,
  802. .buffer = buffer,
  803. .disk = disk,
  804. };
  805. sp += 1;
  806. tmask = 0;
  807. ttag = 0;
  808. begin = 0;
  809. end = 0;
  810. diff = 0;
  811. cb = lfs_dir_traverse_filter;
  812. data = &stack[sp-1].tag;
  813. continue;
  814. }
  815. }
  816. popped:
  817. // in filter range?
  818. if (lfs_tag_id(tmask) != 0 &&
  819. !(lfs_tag_id(tag) >= begin && lfs_tag_id(tag) < end)) {
  820. continue;
  821. }
  822. // handle special cases for mcu-side operations
  823. if (lfs_tag_type3(tag) == LFS_FROM_NOOP) {
  824. // do nothing
  825. } else if (lfs_tag_type3(tag) == LFS_FROM_MOVE) {
  826. // Without this condition, lfs_dir_traverse can exhibit an
  827. // extremely expensive O(n^3) of nested loops when renaming.
  828. // This happens because lfs_dir_traverse tries to filter tags by
  829. // the tags in the source directory, triggering a second
  830. // lfs_dir_traverse with its own filter operation.
  831. //
  832. // traverse with commit
  833. // '-> traverse with filter
  834. // '-> traverse with move
  835. // '-> traverse with filter
  836. //
  837. // However we don't actually care about filtering the second set of
  838. // tags, since duplicate tags have no effect when filtering.
  839. //
  840. // This check skips this unnecessary recursive filtering explicitly,
  841. // reducing this runtime from O(n^3) to O(n^2).
  842. if (cb == lfs_dir_traverse_filter) {
  843. continue;
  844. }
  845. // recurse into move
  846. stack[sp] = (struct lfs_dir_traverse){
  847. .dir = dir,
  848. .off = off,
  849. .ptag = ptag,
  850. .attrs = attrs,
  851. .attrcount = attrcount,
  852. .tmask = tmask,
  853. .ttag = ttag,
  854. .begin = begin,
  855. .end = end,
  856. .diff = diff,
  857. .cb = cb,
  858. .data = data,
  859. .tag = LFS_MKTAG(LFS_FROM_NOOP, 0, 0),
  860. };
  861. sp += 1;
  862. uint16_t fromid = lfs_tag_size(tag);
  863. uint16_t toid = lfs_tag_id(tag);
  864. dir = buffer;
  865. off = 0;
  866. ptag = 0xffffffff;
  867. attrs = NULL;
  868. attrcount = 0;
  869. tmask = LFS_MKTAG(0x600, 0x3ff, 0);
  870. ttag = LFS_MKTAG(LFS_TYPE_STRUCT, 0, 0);
  871. begin = fromid;
  872. end = fromid+1;
  873. diff = toid-fromid+diff;
  874. } else if (lfs_tag_type3(tag) == LFS_FROM_USERATTRS) {
  875. for (unsigned i = 0; i < lfs_tag_size(tag); i++) {
  876. const struct lfs_attr *a = buffer;
  877. res = cb(data, LFS_MKTAG(LFS_TYPE_USERATTR + a[i].type,
  878. lfs_tag_id(tag) + diff, a[i].size), a[i].buffer);
  879. if (res < 0) {
  880. return res;
  881. }
  882. if (res) {
  883. break;
  884. }
  885. }
  886. } else {
  887. res = cb(data, tag + LFS_MKTAG(0, diff, 0), buffer);
  888. if (res < 0) {
  889. return res;
  890. }
  891. if (res) {
  892. break;
  893. }
  894. }
  895. }
  896. if (sp > 0) {
  897. // pop from the stack and return, fortunately all pops share
  898. // a destination
  899. dir = stack[sp-1].dir;
  900. off = stack[sp-1].off;
  901. ptag = stack[sp-1].ptag;
  902. attrs = stack[sp-1].attrs;
  903. attrcount = stack[sp-1].attrcount;
  904. tmask = stack[sp-1].tmask;
  905. ttag = stack[sp-1].ttag;
  906. begin = stack[sp-1].begin;
  907. end = stack[sp-1].end;
  908. diff = stack[sp-1].diff;
  909. cb = stack[sp-1].cb;
  910. data = stack[sp-1].data;
  911. tag = stack[sp-1].tag;
  912. buffer = stack[sp-1].buffer;
  913. disk = stack[sp-1].disk;
  914. sp -= 1;
  915. goto popped;
  916. } else {
  917. return res;
  918. }
  919. }
  920. #endif
  921. static lfs_stag_t lfs_dir_fetchmatch(lfs_t *lfs,
  922. lfs_mdir_t *dir, const lfs_block_t pair[2],
  923. lfs_tag_t fmask, lfs_tag_t ftag, uint16_t *id,
  924. int (*cb)(void *data, lfs_tag_t tag, const void *buffer), void *data) {
  925. // we can find tag very efficiently during a fetch, since we're already
  926. // scanning the entire directory
  927. lfs_stag_t besttag = -1;
  928. // if either block address is invalid we return LFS_ERR_CORRUPT here,
  929. // otherwise later writes to the pair could fail
  930. if (lfs->block_count
  931. && (pair[0] >= lfs->block_count || pair[1] >= lfs->block_count)) {
  932. return LFS_ERR_CORRUPT;
  933. }
  934. // find the block with the most recent revision
  935. uint32_t revs[2] = {0, 0};
  936. int r = 0;
  937. for (int i = 0; i < 2; i++) {
  938. int err = lfs_bd_read(lfs,
  939. NULL, &lfs->rcache, sizeof(revs[i]),
  940. pair[i], 0, &revs[i], sizeof(revs[i]));
  941. revs[i] = lfs_fromle32(revs[i]);
  942. if (err && err != LFS_ERR_CORRUPT) {
  943. return err;
  944. }
  945. if (err != LFS_ERR_CORRUPT &&
  946. lfs_scmp(revs[i], revs[(i+1)%2]) > 0) {
  947. r = i;
  948. }
  949. }
  950. dir->pair[0] = pair[(r+0)%2];
  951. dir->pair[1] = pair[(r+1)%2];
  952. dir->rev = revs[(r+0)%2];
  953. dir->off = 0; // nonzero = found some commits
  954. // now scan tags to fetch the actual dir and find possible match
  955. for (int i = 0; i < 2; i++) {
  956. lfs_off_t off = 0;
  957. lfs_tag_t ptag = 0xffffffff;
  958. uint16_t tempcount = 0;
  959. lfs_block_t temptail[2] = {LFS_BLOCK_NULL, LFS_BLOCK_NULL};
  960. bool tempsplit = false;
  961. lfs_stag_t tempbesttag = besttag;
  962. // assume not erased until proven otherwise
  963. bool maybeerased = false;
  964. bool hasfcrc = false;
  965. struct lfs_fcrc fcrc;
  966. dir->rev = lfs_tole32(dir->rev);
  967. uint32_t crc = lfs_crc(0xffffffff, &dir->rev, sizeof(dir->rev));
  968. dir->rev = lfs_fromle32(dir->rev);
  969. while (true) {
  970. // extract next tag
  971. lfs_tag_t tag;
  972. off += lfs_tag_dsize(ptag);
  973. int err = lfs_bd_read(lfs,
  974. NULL, &lfs->rcache, lfs->cfg->block_size,
  975. dir->pair[0], off, &tag, sizeof(tag));
  976. if (err) {
  977. if (err == LFS_ERR_CORRUPT) {
  978. // can't continue?
  979. break;
  980. }
  981. return err;
  982. }
  983. crc = lfs_crc(crc, &tag, sizeof(tag));
  984. tag = lfs_frombe32(tag) ^ ptag;
  985. // next commit not yet programmed?
  986. if (!lfs_tag_isvalid(tag)) {
  987. // we only might be erased if the last tag was a crc
  988. maybeerased = (lfs_tag_type2(ptag) == LFS_TYPE_CCRC);
  989. break;
  990. // out of range?
  991. } else if (off + lfs_tag_dsize(tag) > lfs->cfg->block_size) {
  992. break;
  993. }
  994. ptag = tag;
  995. if (lfs_tag_type2(tag) == LFS_TYPE_CCRC) {
  996. // check the crc attr
  997. uint32_t dcrc;
  998. err = lfs_bd_read(lfs,
  999. NULL, &lfs->rcache, lfs->cfg->block_size,
  1000. dir->pair[0], off+sizeof(tag), &dcrc, sizeof(dcrc));
  1001. if (err) {
  1002. if (err == LFS_ERR_CORRUPT) {
  1003. break;
  1004. }
  1005. return err;
  1006. }
  1007. dcrc = lfs_fromle32(dcrc);
  1008. if (crc != dcrc) {
  1009. break;
  1010. }
  1011. // reset the next bit if we need to
  1012. ptag ^= (lfs_tag_t)(lfs_tag_chunk(tag) & 1U) << 31;
  1013. // toss our crc into the filesystem seed for
  1014. // pseudorandom numbers, note we use another crc here
  1015. // as a collection function because it is sufficiently
  1016. // random and convenient
  1017. lfs->seed = lfs_crc(lfs->seed, &crc, sizeof(crc));
  1018. // update with what's found so far
  1019. besttag = tempbesttag;
  1020. dir->off = off + lfs_tag_dsize(tag);
  1021. dir->etag = ptag;
  1022. dir->count = tempcount;
  1023. dir->tail[0] = temptail[0];
  1024. dir->tail[1] = temptail[1];
  1025. dir->split = tempsplit;
  1026. // reset crc, hasfcrc
  1027. crc = 0xffffffff;
  1028. continue;
  1029. }
  1030. // crc the entry first, hopefully leaving it in the cache
  1031. err = lfs_bd_crc(lfs,
  1032. NULL, &lfs->rcache, lfs->cfg->block_size,
  1033. dir->pair[0], off+sizeof(tag),
  1034. lfs_tag_dsize(tag)-sizeof(tag), &crc);
  1035. if (err) {
  1036. if (err == LFS_ERR_CORRUPT) {
  1037. break;
  1038. }
  1039. return err;
  1040. }
  1041. // directory modification tags?
  1042. if (lfs_tag_type1(tag) == LFS_TYPE_NAME) {
  1043. // increase count of files if necessary
  1044. if (lfs_tag_id(tag) >= tempcount) {
  1045. tempcount = lfs_tag_id(tag) + 1;
  1046. }
  1047. } else if (lfs_tag_type1(tag) == LFS_TYPE_SPLICE) {
  1048. tempcount += lfs_tag_splice(tag);
  1049. if (tag == (LFS_MKTAG(LFS_TYPE_DELETE, 0, 0) |
  1050. (LFS_MKTAG(0, 0x3ff, 0) & tempbesttag))) {
  1051. tempbesttag |= 0x80000000;
  1052. } else if (tempbesttag != -1 &&
  1053. lfs_tag_id(tag) <= lfs_tag_id(tempbesttag)) {
  1054. tempbesttag += LFS_MKTAG(0, lfs_tag_splice(tag), 0);
  1055. }
  1056. } else if (lfs_tag_type1(tag) == LFS_TYPE_TAIL) {
  1057. tempsplit = (lfs_tag_chunk(tag) & 1);
  1058. err = lfs_bd_read(lfs,
  1059. NULL, &lfs->rcache, lfs->cfg->block_size,
  1060. dir->pair[0], off+sizeof(tag), &temptail, 8);
  1061. if (err) {
  1062. if (err == LFS_ERR_CORRUPT) {
  1063. break;
  1064. }
  1065. return err;
  1066. }
  1067. lfs_pair_fromle32(temptail);
  1068. } else if (lfs_tag_type3(tag) == LFS_TYPE_FCRC) {
  1069. err = lfs_bd_read(lfs,
  1070. NULL, &lfs->rcache, lfs->cfg->block_size,
  1071. dir->pair[0], off+sizeof(tag),
  1072. &fcrc, sizeof(fcrc));
  1073. if (err) {
  1074. if (err == LFS_ERR_CORRUPT) {
  1075. break;
  1076. }
  1077. }
  1078. lfs_fcrc_fromle32(&fcrc);
  1079. hasfcrc = true;
  1080. }
  1081. // found a match for our fetcher?
  1082. if ((fmask & tag) == (fmask & ftag)) {
  1083. int res = cb(data, tag, &(struct lfs_diskoff){
  1084. dir->pair[0], off+sizeof(tag)});
  1085. if (res < 0) {
  1086. if (res == LFS_ERR_CORRUPT) {
  1087. break;
  1088. }
  1089. return res;
  1090. }
  1091. if (res == LFS_CMP_EQ) {
  1092. // found a match
  1093. tempbesttag = tag;
  1094. } else if ((LFS_MKTAG(0x7ff, 0x3ff, 0) & tag) ==
  1095. (LFS_MKTAG(0x7ff, 0x3ff, 0) & tempbesttag)) {
  1096. // found an identical tag, but contents didn't match
  1097. // this must mean that our besttag has been overwritten
  1098. tempbesttag = -1;
  1099. } else if (res == LFS_CMP_GT &&
  1100. lfs_tag_id(tag) <= lfs_tag_id(tempbesttag)) {
  1101. // found a greater match, keep track to keep things sorted
  1102. tempbesttag = tag | 0x80000000;
  1103. }
  1104. }
  1105. }
  1106. // found no valid commits?
  1107. if (dir->off == 0) {
  1108. // try the other block?
  1109. lfs_pair_swap(dir->pair);
  1110. dir->rev = revs[(r+1)%2];
  1111. continue;
  1112. }
  1113. // did we end on a valid commit? we may have an erased block
  1114. dir->erased = false;
  1115. if (maybeerased && dir->off % lfs->cfg->prog_size == 0) {
  1116. #ifdef LFS_MULTIVERSION
  1117. // note versions < lfs2.1 did not have fcrc tags, if
  1118. // we're < lfs2.1 treat missing fcrc as erased data
  1119. //
  1120. // we don't strictly need to do this, but otherwise writing
  1121. // to lfs2.0 disks becomes very inefficient
  1122. if (lfs_fs_disk_version(lfs) < 0x00020001) {
  1123. dir->erased = true;
  1124. } else
  1125. #endif
  1126. if (hasfcrc) {
  1127. // check for an fcrc matching the next prog's erased state, if
  1128. // this failed most likely a previous prog was interrupted, we
  1129. // need a new erase
  1130. uint32_t fcrc_ = 0xffffffff;
  1131. int err = lfs_bd_crc(lfs,
  1132. NULL, &lfs->rcache, lfs->cfg->block_size,
  1133. dir->pair[0], dir->off, fcrc.size, &fcrc_);
  1134. if (err && err != LFS_ERR_CORRUPT) {
  1135. return err;
  1136. }
  1137. // found beginning of erased part?
  1138. dir->erased = (fcrc_ == fcrc.crc);
  1139. }
  1140. }
  1141. // synthetic move
  1142. if (lfs_gstate_hasmovehere(&lfs->gdisk, dir->pair)) {
  1143. if (lfs_tag_id(lfs->gdisk.tag) == lfs_tag_id(besttag)) {
  1144. besttag |= 0x80000000;
  1145. } else if (besttag != -1 &&
  1146. lfs_tag_id(lfs->gdisk.tag) < lfs_tag_id(besttag)) {
  1147. besttag -= LFS_MKTAG(0, 1, 0);
  1148. }
  1149. }
  1150. // found tag? or found best id?
  1151. if (id) {
  1152. *id = lfs_min(lfs_tag_id(besttag), dir->count);
  1153. }
  1154. if (lfs_tag_isvalid(besttag)) {
  1155. return besttag;
  1156. } else if (lfs_tag_id(besttag) < dir->count) {
  1157. return LFS_ERR_NOENT;
  1158. } else {
  1159. return 0;
  1160. }
  1161. }
  1162. LFS_ERROR("Corrupted dir pair at {0x%"PRIx32", 0x%"PRIx32"}",
  1163. dir->pair[0], dir->pair[1]);
  1164. return LFS_ERR_CORRUPT;
  1165. }
  1166. static int lfs_dir_fetch(lfs_t *lfs,
  1167. lfs_mdir_t *dir, const lfs_block_t pair[2]) {
  1168. // note, mask=-1, tag=-1 can never match a tag since this
  1169. // pattern has the invalid bit set
  1170. return (int)lfs_dir_fetchmatch(lfs, dir, pair,
  1171. (lfs_tag_t)-1, (lfs_tag_t)-1, NULL, NULL, NULL);
  1172. }
  1173. static int lfs_dir_getgstate(lfs_t *lfs, const lfs_mdir_t *dir,
  1174. lfs_gstate_t *gstate) {
  1175. lfs_gstate_t temp;
  1176. lfs_stag_t res = lfs_dir_get(lfs, dir, LFS_MKTAG(0x7ff, 0, 0),
  1177. LFS_MKTAG(LFS_TYPE_MOVESTATE, 0, sizeof(temp)), &temp);
  1178. if (res < 0 && res != LFS_ERR_NOENT) {
  1179. return res;
  1180. }
  1181. if (res != LFS_ERR_NOENT) {
  1182. // xor together to find resulting gstate
  1183. lfs_gstate_fromle32(&temp);
  1184. lfs_gstate_xor(gstate, &temp);
  1185. }
  1186. return 0;
  1187. }
  1188. static int lfs_dir_getinfo(lfs_t *lfs, lfs_mdir_t *dir,
  1189. uint16_t id, struct lfs_info *info) {
  1190. if (id == 0x3ff) {
  1191. // special case for root
  1192. strcpy(info->name, "/");
  1193. info->type = LFS_TYPE_DIR;
  1194. return 0;
  1195. }
  1196. lfs_stag_t tag = lfs_dir_get(lfs, dir, LFS_MKTAG(0x780, 0x3ff, 0),
  1197. LFS_MKTAG(LFS_TYPE_NAME, id, lfs->name_max+1), info->name);
  1198. if (tag < 0) {
  1199. return (int)tag;
  1200. }
  1201. info->type = lfs_tag_type3(tag);
  1202. struct lfs_ctz ctz;
  1203. tag = lfs_dir_get(lfs, dir, LFS_MKTAG(0x700, 0x3ff, 0),
  1204. LFS_MKTAG(LFS_TYPE_STRUCT, id, sizeof(ctz)), &ctz);
  1205. if (tag < 0) {
  1206. return (int)tag;
  1207. }
  1208. lfs_ctz_fromle32(&ctz);
  1209. if (lfs_tag_type3(tag) == LFS_TYPE_CTZSTRUCT) {
  1210. info->size = ctz.size;
  1211. } else if (lfs_tag_type3(tag) == LFS_TYPE_INLINESTRUCT) {
  1212. info->size = lfs_tag_size(tag);
  1213. }
  1214. return 0;
  1215. }
  1216. struct lfs_dir_find_match {
  1217. lfs_t *lfs;
  1218. const void *name;
  1219. lfs_size_t size;
  1220. };
  1221. static int lfs_dir_find_match(void *data,
  1222. lfs_tag_t tag, const void *buffer) {
  1223. struct lfs_dir_find_match *name = data;
  1224. lfs_t *lfs = name->lfs;
  1225. const struct lfs_diskoff *disk = buffer;
  1226. // compare with disk
  1227. lfs_size_t diff = lfs_min(name->size, lfs_tag_size(tag));
  1228. int res = lfs_bd_cmp(lfs,
  1229. NULL, &lfs->rcache, diff,
  1230. disk->block, disk->off, name->name, diff);
  1231. if (res != LFS_CMP_EQ) {
  1232. return res;
  1233. }
  1234. // only equal if our size is still the same
  1235. if (name->size != lfs_tag_size(tag)) {
  1236. return (name->size < lfs_tag_size(tag)) ? LFS_CMP_LT : LFS_CMP_GT;
  1237. }
  1238. // found a match!
  1239. return LFS_CMP_EQ;
  1240. }
  1241. static lfs_stag_t lfs_dir_find(lfs_t *lfs, lfs_mdir_t *dir,
  1242. const char **path, uint16_t *id) {
  1243. // we reduce path to a single name if we can find it
  1244. const char *name = *path;
  1245. if (id) {
  1246. *id = 0x3ff;
  1247. }
  1248. // default to root dir
  1249. lfs_stag_t tag = LFS_MKTAG(LFS_TYPE_DIR, 0x3ff, 0);
  1250. dir->tail[0] = lfs->root[0];
  1251. dir->tail[1] = lfs->root[1];
  1252. while (true) {
  1253. nextname:
  1254. // skip slashes
  1255. name += strspn(name, "/");
  1256. lfs_size_t namelen = strcspn(name, "/");
  1257. // skip '.' and root '..'
  1258. if ((namelen == 1 && memcmp(name, ".", 1) == 0) ||
  1259. (namelen == 2 && memcmp(name, "..", 2) == 0)) {
  1260. name += namelen;
  1261. goto nextname;
  1262. }
  1263. // skip if matched by '..' in name
  1264. const char *suffix = name + namelen;
  1265. lfs_size_t sufflen;
  1266. int depth = 1;
  1267. while (true) {
  1268. suffix += strspn(suffix, "/");
  1269. sufflen = strcspn(suffix, "/");
  1270. if (sufflen == 0) {
  1271. break;
  1272. }
  1273. if (sufflen == 2 && memcmp(suffix, "..", 2) == 0) {
  1274. depth -= 1;
  1275. if (depth == 0) {
  1276. name = suffix + sufflen;
  1277. goto nextname;
  1278. }
  1279. } else {
  1280. depth += 1;
  1281. }
  1282. suffix += sufflen;
  1283. }
  1284. // found path
  1285. if (name[0] == '\0') {
  1286. return tag;
  1287. }
  1288. // update what we've found so far
  1289. *path = name;
  1290. // only continue if we hit a directory
  1291. if (lfs_tag_type3(tag) != LFS_TYPE_DIR) {
  1292. return LFS_ERR_NOTDIR;
  1293. }
  1294. // grab the entry data
  1295. if (lfs_tag_id(tag) != 0x3ff) {
  1296. lfs_stag_t res = lfs_dir_get(lfs, dir, LFS_MKTAG(0x700, 0x3ff, 0),
  1297. LFS_MKTAG(LFS_TYPE_STRUCT, lfs_tag_id(tag), 8), dir->tail);
  1298. if (res < 0) {
  1299. return res;
  1300. }
  1301. lfs_pair_fromle32(dir->tail);
  1302. }
  1303. // find entry matching name
  1304. while (true) {
  1305. tag = lfs_dir_fetchmatch(lfs, dir, dir->tail,
  1306. LFS_MKTAG(0x780, 0, 0),
  1307. LFS_MKTAG(LFS_TYPE_NAME, 0, namelen),
  1308. // are we last name?
  1309. (strchr(name, '/') == NULL) ? id : NULL,
  1310. lfs_dir_find_match, &(struct lfs_dir_find_match){
  1311. lfs, name, namelen});
  1312. if (tag < 0) {
  1313. return tag;
  1314. }
  1315. if (tag) {
  1316. break;
  1317. }
  1318. if (!dir->split) {
  1319. return LFS_ERR_NOENT;
  1320. }
  1321. }
  1322. // to next name
  1323. name += namelen;
  1324. }
  1325. }
  1326. // commit logic
  1327. struct lfs_commit {
  1328. lfs_block_t block;
  1329. lfs_off_t off;
  1330. lfs_tag_t ptag;
  1331. uint32_t crc;
  1332. lfs_off_t begin;
  1333. lfs_off_t end;
  1334. };
  1335. #ifndef LFS_READONLY
  1336. static int lfs_dir_commitprog(lfs_t *lfs, struct lfs_commit *commit,
  1337. const void *buffer, lfs_size_t size) {
  1338. int err = lfs_bd_prog(lfs,
  1339. &lfs->pcache, &lfs->rcache, false,
  1340. commit->block, commit->off ,
  1341. (const uint8_t*)buffer, size);
  1342. if (err) {
  1343. return err;
  1344. }
  1345. commit->crc = lfs_crc(commit->crc, buffer, size);
  1346. commit->off += size;
  1347. return 0;
  1348. }
  1349. #endif
  1350. #ifndef LFS_READONLY
  1351. static int lfs_dir_commitattr(lfs_t *lfs, struct lfs_commit *commit,
  1352. lfs_tag_t tag, const void *buffer) {
  1353. // check if we fit
  1354. lfs_size_t dsize = lfs_tag_dsize(tag);
  1355. if (commit->off + dsize > commit->end) {
  1356. return LFS_ERR_NOSPC;
  1357. }
  1358. // write out tag
  1359. lfs_tag_t ntag = lfs_tobe32((tag & 0x7fffffff) ^ commit->ptag);
  1360. int err = lfs_dir_commitprog(lfs, commit, &ntag, sizeof(ntag));
  1361. if (err) {
  1362. return err;
  1363. }
  1364. if (!(tag & 0x80000000)) {
  1365. // from memory
  1366. err = lfs_dir_commitprog(lfs, commit, buffer, dsize-sizeof(tag));
  1367. if (err) {
  1368. return err;
  1369. }
  1370. } else {
  1371. // from disk
  1372. const struct lfs_diskoff *disk = buffer;
  1373. for (lfs_off_t i = 0; i < dsize-sizeof(tag); i++) {
  1374. // rely on caching to make this efficient
  1375. uint8_t dat;
  1376. err = lfs_bd_read(lfs,
  1377. NULL, &lfs->rcache, dsize-sizeof(tag)-i,
  1378. disk->block, disk->off+i, &dat, 1);
  1379. if (err) {
  1380. return err;
  1381. }
  1382. err = lfs_dir_commitprog(lfs, commit, &dat, 1);
  1383. if (err) {
  1384. return err;
  1385. }
  1386. }
  1387. }
  1388. commit->ptag = tag & 0x7fffffff;
  1389. return 0;
  1390. }
  1391. #endif
  1392. #ifndef LFS_READONLY
  1393. static int lfs_dir_commitcrc(lfs_t *lfs, struct lfs_commit *commit) {
  1394. // align to program units
  1395. //
  1396. // this gets a bit complex as we have two types of crcs:
  1397. // - 5-word crc with fcrc to check following prog (middle of block)
  1398. // - 2-word crc with no following prog (end of block)
  1399. const lfs_off_t end = lfs_alignup(
  1400. lfs_min(commit->off + 5*sizeof(uint32_t), lfs->cfg->block_size),
  1401. lfs->cfg->prog_size);
  1402. lfs_off_t off1 = 0;
  1403. uint32_t crc1 = 0;
  1404. // create crc tags to fill up remainder of commit, note that
  1405. // padding is not crced, which lets fetches skip padding but
  1406. // makes committing a bit more complicated
  1407. while (commit->off < end) {
  1408. lfs_off_t noff = (
  1409. lfs_min(end - (commit->off+sizeof(lfs_tag_t)), 0x3fe)
  1410. + (commit->off+sizeof(lfs_tag_t)));
  1411. // too large for crc tag? need padding commits
  1412. if (noff < end) {
  1413. noff = lfs_min(noff, end - 5*sizeof(uint32_t));
  1414. }
  1415. // space for fcrc?
  1416. uint8_t eperturb = (uint8_t)-1;
  1417. if (noff >= end && noff <= lfs->cfg->block_size - lfs->cfg->prog_size) {
  1418. // first read the leading byte, this always contains a bit
  1419. // we can perturb to avoid writes that don't change the fcrc
  1420. int err = lfs_bd_read(lfs,
  1421. NULL, &lfs->rcache, lfs->cfg->prog_size,
  1422. commit->block, noff, &eperturb, 1);
  1423. if (err && err != LFS_ERR_CORRUPT) {
  1424. return err;
  1425. }
  1426. #ifdef LFS_MULTIVERSION
  1427. // unfortunately fcrcs break mdir fetching < lfs2.1, so only write
  1428. // these if we're a >= lfs2.1 filesystem
  1429. if (lfs_fs_disk_version(lfs) <= 0x00020000) {
  1430. // don't write fcrc
  1431. } else
  1432. #endif
  1433. {
  1434. // find the expected fcrc, don't bother avoiding a reread
  1435. // of the eperturb, it should still be in our cache
  1436. struct lfs_fcrc fcrc = {
  1437. .size = lfs->cfg->prog_size,
  1438. .crc = 0xffffffff
  1439. };
  1440. err = lfs_bd_crc(lfs,
  1441. NULL, &lfs->rcache, lfs->cfg->prog_size,
  1442. commit->block, noff, fcrc.size, &fcrc.crc);
  1443. if (err && err != LFS_ERR_CORRUPT) {
  1444. return err;
  1445. }
  1446. lfs_fcrc_tole32(&fcrc);
  1447. err = lfs_dir_commitattr(lfs, commit,
  1448. LFS_MKTAG(LFS_TYPE_FCRC, 0x3ff, sizeof(struct lfs_fcrc)),
  1449. &fcrc);
  1450. if (err) {
  1451. return err;
  1452. }
  1453. }
  1454. }
  1455. // build commit crc
  1456. struct {
  1457. lfs_tag_t tag;
  1458. uint32_t crc;
  1459. } ccrc;
  1460. lfs_tag_t ntag = LFS_MKTAG(
  1461. LFS_TYPE_CCRC + (((uint8_t)~eperturb) >> 7), 0x3ff,
  1462. noff - (commit->off+sizeof(lfs_tag_t)));
  1463. ccrc.tag = lfs_tobe32(ntag ^ commit->ptag);
  1464. commit->crc = lfs_crc(commit->crc, &ccrc.tag, sizeof(lfs_tag_t));
  1465. ccrc.crc = lfs_tole32(commit->crc);
  1466. int err = lfs_bd_prog(lfs,
  1467. &lfs->pcache, &lfs->rcache, false,
  1468. commit->block, commit->off, &ccrc, sizeof(ccrc));
  1469. if (err) {
  1470. return err;
  1471. }
  1472. // keep track of non-padding checksum to verify
  1473. if (off1 == 0) {
  1474. off1 = commit->off + sizeof(lfs_tag_t);
  1475. crc1 = commit->crc;
  1476. }
  1477. commit->off = noff;
  1478. // perturb valid bit?
  1479. commit->ptag = ntag ^ ((0x80UL & ~eperturb) << 24);
  1480. // reset crc for next commit
  1481. commit->crc = 0xffffffff;
  1482. // manually flush here since we don't prog the padding, this confuses
  1483. // the caching layer
  1484. if (noff >= end || noff >= lfs->pcache.off + lfs->cfg->cache_size) {
  1485. // flush buffers
  1486. int err = lfs_bd_sync(lfs, &lfs->pcache, &lfs->rcache, false);
  1487. if (err) {
  1488. return err;
  1489. }
  1490. }
  1491. }
  1492. // successful commit, check checksums to make sure
  1493. //
  1494. // note that we don't need to check padding commits, worst
  1495. // case if they are corrupted we would have had to compact anyways
  1496. lfs_off_t off = commit->begin;
  1497. uint32_t crc = 0xffffffff;
  1498. int err = lfs_bd_crc(lfs,
  1499. NULL, &lfs->rcache, off1+sizeof(uint32_t),
  1500. commit->block, off, off1-off, &crc);
  1501. if (err) {
  1502. return err;
  1503. }
  1504. // check non-padding commits against known crc
  1505. if (crc != crc1) {
  1506. return LFS_ERR_CORRUPT;
  1507. }
  1508. // make sure to check crc in case we happen to pick
  1509. // up an unrelated crc (frozen block?)
  1510. err = lfs_bd_crc(lfs,
  1511. NULL, &lfs->rcache, sizeof(uint32_t),
  1512. commit->block, off1, sizeof(uint32_t), &crc);
  1513. if (err) {
  1514. return err;
  1515. }
  1516. if (crc != 0) {
  1517. return LFS_ERR_CORRUPT;
  1518. }
  1519. return 0;
  1520. }
  1521. #endif
  1522. #ifndef LFS_READONLY
  1523. static int lfs_dir_alloc(lfs_t *lfs, lfs_mdir_t *dir) {
  1524. // allocate pair of dir blocks (backwards, so we write block 1 first)
  1525. for (int i = 0; i < 2; i++) {
  1526. int err = lfs_alloc(lfs, &dir->pair[(i+1)%2]);
  1527. if (err) {
  1528. return err;
  1529. }
  1530. }
  1531. // zero for reproducibility in case initial block is unreadable
  1532. dir->rev = 0;
  1533. // rather than clobbering one of the blocks we just pretend
  1534. // the revision may be valid
  1535. int err = lfs_bd_read(lfs,
  1536. NULL, &lfs->rcache, sizeof(dir->rev),
  1537. dir->pair[0], 0, &dir->rev, sizeof(dir->rev));
  1538. dir->rev = lfs_fromle32(dir->rev);
  1539. if (err && err != LFS_ERR_CORRUPT) {
  1540. return err;
  1541. }
  1542. // to make sure we don't immediately evict, align the new revision count
  1543. // to our block_cycles modulus, see lfs_dir_compact for why our modulus
  1544. // is tweaked this way
  1545. if (lfs->cfg->block_cycles > 0) {
  1546. dir->rev = lfs_alignup(dir->rev, ((lfs->cfg->block_cycles+1)|1));
  1547. }
  1548. // set defaults
  1549. dir->off = sizeof(dir->rev);
  1550. dir->etag = 0xffffffff;
  1551. dir->count = 0;
  1552. dir->tail[0] = LFS_BLOCK_NULL;
  1553. dir->tail[1] = LFS_BLOCK_NULL;
  1554. dir->erased = false;
  1555. dir->split = false;
  1556. // don't write out yet, let caller take care of that
  1557. return 0;
  1558. }
  1559. #endif
  1560. #ifndef LFS_READONLY
  1561. static int lfs_dir_drop(lfs_t *lfs, lfs_mdir_t *dir, lfs_mdir_t *tail) {
  1562. // steal state
  1563. int err = lfs_dir_getgstate(lfs, tail, &lfs->gdelta);
  1564. if (err) {
  1565. return err;
  1566. }
  1567. // steal tail
  1568. lfs_pair_tole32(tail->tail);
  1569. err = lfs_dir_commit(lfs, dir, LFS_MKATTRS(
  1570. {LFS_MKTAG(LFS_TYPE_TAIL + tail->split, 0x3ff, 8), tail->tail}));
  1571. lfs_pair_fromle32(tail->tail);
  1572. if (err) {
  1573. return err;
  1574. }
  1575. return 0;
  1576. }
  1577. #endif
  1578. #ifndef LFS_READONLY
  1579. static int lfs_dir_split(lfs_t *lfs,
  1580. lfs_mdir_t *dir, const struct lfs_mattr *attrs, int attrcount,
  1581. lfs_mdir_t *source, uint16_t split, uint16_t end) {
  1582. // create tail metadata pair
  1583. lfs_mdir_t tail;
  1584. int err = lfs_dir_alloc(lfs, &tail);
  1585. if (err) {
  1586. return err;
  1587. }
  1588. tail.split = dir->split;
  1589. tail.tail[0] = dir->tail[0];
  1590. tail.tail[1] = dir->tail[1];
  1591. // note we don't care about LFS_OK_RELOCATED
  1592. int res = lfs_dir_compact(lfs, &tail, attrs, attrcount, source, split, end);
  1593. if (res < 0) {
  1594. return res;
  1595. }
  1596. dir->tail[0] = tail.pair[0];
  1597. dir->tail[1] = tail.pair[1];
  1598. dir->split = true;
  1599. // update root if needed
  1600. if (lfs_pair_cmp(dir->pair, lfs->root) == 0 && split == 0) {
  1601. lfs->root[0] = tail.pair[0];
  1602. lfs->root[1] = tail.pair[1];
  1603. }
  1604. return 0;
  1605. }
  1606. #endif
  1607. #ifndef LFS_READONLY
  1608. static int lfs_dir_commit_size(void *p, lfs_tag_t tag, const void *buffer) {
  1609. lfs_size_t *size = p;
  1610. (void)buffer;
  1611. *size += lfs_tag_dsize(tag);
  1612. return 0;
  1613. }
  1614. #endif
  1615. #ifndef LFS_READONLY
  1616. struct lfs_dir_commit_commit {
  1617. lfs_t *lfs;
  1618. struct lfs_commit *commit;
  1619. };
  1620. #endif
  1621. #ifndef LFS_READONLY
  1622. static int lfs_dir_commit_commit(void *p, lfs_tag_t tag, const void *buffer) {
  1623. struct lfs_dir_commit_commit *commit = p;
  1624. return lfs_dir_commitattr(commit->lfs, commit->commit, tag, buffer);
  1625. }
  1626. #endif
  1627. #ifndef LFS_READONLY
  1628. static bool lfs_dir_needsrelocation(lfs_t *lfs, lfs_mdir_t *dir) {
  1629. // If our revision count == n * block_cycles, we should force a relocation,
  1630. // this is how littlefs wear-levels at the metadata-pair level. Note that we
  1631. // actually use (block_cycles+1)|1, this is to avoid two corner cases:
  1632. // 1. block_cycles = 1, which would prevent relocations from terminating
  1633. // 2. block_cycles = 2n, which, due to aliasing, would only ever relocate
  1634. // one metadata block in the pair, effectively making this useless
  1635. return (lfs->cfg->block_cycles > 0
  1636. && ((dir->rev + 1) % ((lfs->cfg->block_cycles+1)|1) == 0));
  1637. }
  1638. #endif
  1639. #ifndef LFS_READONLY
  1640. static int lfs_dir_compact(lfs_t *lfs,
  1641. lfs_mdir_t *dir, const struct lfs_mattr *attrs, int attrcount,
  1642. lfs_mdir_t *source, uint16_t begin, uint16_t end) {
  1643. // save some state in case block is bad
  1644. bool relocated = false;
  1645. bool tired = lfs_dir_needsrelocation(lfs, dir);
  1646. // increment revision count
  1647. dir->rev += 1;
  1648. // do not proactively relocate blocks during migrations, this
  1649. // can cause a number of failure states such: clobbering the
  1650. // v1 superblock if we relocate root, and invalidating directory
  1651. // pointers if we relocate the head of a directory. On top of
  1652. // this, relocations increase the overall complexity of
  1653. // lfs_migration, which is already a delicate operation.
  1654. #ifdef LFS_MIGRATE
  1655. if (lfs->lfs1) {
  1656. tired = false;
  1657. }
  1658. #endif
  1659. if (tired && lfs_pair_cmp(dir->pair, (const lfs_block_t[2]){0, 1}) != 0) {
  1660. // we're writing too much, time to relocate
  1661. goto relocate;
  1662. }
  1663. // begin loop to commit compaction to blocks until a compact sticks
  1664. while (true) {
  1665. {
  1666. // setup commit state
  1667. struct lfs_commit commit = {
  1668. .block = dir->pair[1],
  1669. .off = 0,
  1670. .ptag = 0xffffffff,
  1671. .crc = 0xffffffff,
  1672. .begin = 0,
  1673. .end = (lfs->cfg->metadata_max ?
  1674. lfs->cfg->metadata_max : lfs->cfg->block_size) - 8,
  1675. };
  1676. // erase block to write to
  1677. int err = lfs_bd_erase(lfs, dir->pair[1]);
  1678. if (err) {
  1679. if (err == LFS_ERR_CORRUPT) {
  1680. goto relocate;
  1681. }
  1682. return err;
  1683. }
  1684. // write out header
  1685. dir->rev = lfs_tole32(dir->rev);
  1686. err = lfs_dir_commitprog(lfs, &commit,
  1687. &dir->rev, sizeof(dir->rev));
  1688. dir->rev = lfs_fromle32(dir->rev);
  1689. if (err) {
  1690. if (err == LFS_ERR_CORRUPT) {
  1691. goto relocate;
  1692. }
  1693. return err;
  1694. }
  1695. // traverse the directory, this time writing out all unique tags
  1696. err = lfs_dir_traverse(lfs,
  1697. source, 0, 0xffffffff, attrs, attrcount,
  1698. LFS_MKTAG(0x400, 0x3ff, 0),
  1699. LFS_MKTAG(LFS_TYPE_NAME, 0, 0),
  1700. begin, end, -begin,
  1701. lfs_dir_commit_commit, &(struct lfs_dir_commit_commit){
  1702. lfs, &commit});
  1703. if (err) {
  1704. if (err == LFS_ERR_CORRUPT) {
  1705. goto relocate;
  1706. }
  1707. return err;
  1708. }
  1709. // commit tail, which may be new after last size check
  1710. if (!lfs_pair_isnull(dir->tail)) {
  1711. lfs_pair_tole32(dir->tail);
  1712. err = lfs_dir_commitattr(lfs, &commit,
  1713. LFS_MKTAG(LFS_TYPE_TAIL + dir->split, 0x3ff, 8),
  1714. dir->tail);
  1715. lfs_pair_fromle32(dir->tail);
  1716. if (err) {
  1717. if (err == LFS_ERR_CORRUPT) {
  1718. goto relocate;
  1719. }
  1720. return err;
  1721. }
  1722. }
  1723. // bring over gstate?
  1724. lfs_gstate_t delta = {0};
  1725. if (!relocated) {
  1726. lfs_gstate_xor(&delta, &lfs->gdisk);
  1727. lfs_gstate_xor(&delta, &lfs->gstate);
  1728. }
  1729. lfs_gstate_xor(&delta, &lfs->gdelta);
  1730. delta.tag &= ~LFS_MKTAG(0, 0, 0x3ff);
  1731. err = lfs_dir_getgstate(lfs, dir, &delta);
  1732. if (err) {
  1733. return err;
  1734. }
  1735. if (!lfs_gstate_iszero(&delta)) {
  1736. lfs_gstate_tole32(&delta);
  1737. err = lfs_dir_commitattr(lfs, &commit,
  1738. LFS_MKTAG(LFS_TYPE_MOVESTATE, 0x3ff,
  1739. sizeof(delta)), &delta);
  1740. if (err) {
  1741. if (err == LFS_ERR_CORRUPT) {
  1742. goto relocate;
  1743. }
  1744. return err;
  1745. }
  1746. }
  1747. // complete commit with crc
  1748. err = lfs_dir_commitcrc(lfs, &commit);
  1749. if (err) {
  1750. if (err == LFS_ERR_CORRUPT) {
  1751. goto relocate;
  1752. }
  1753. return err;
  1754. }
  1755. // successful compaction, swap dir pair to indicate most recent
  1756. LFS_ASSERT(commit.off % lfs->cfg->prog_size == 0);
  1757. lfs_pair_swap(dir->pair);
  1758. dir->count = end - begin;
  1759. dir->off = commit.off;
  1760. dir->etag = commit.ptag;
  1761. // update gstate
  1762. lfs->gdelta = (lfs_gstate_t){0};
  1763. if (!relocated) {
  1764. lfs->gdisk = lfs->gstate;
  1765. }
  1766. }
  1767. break;
  1768. relocate:
  1769. // commit was corrupted, drop caches and prepare to relocate block
  1770. relocated = true;
  1771. lfs_cache_drop(lfs, &lfs->pcache);
  1772. if (!tired) {
  1773. LFS_DEBUG("Bad block at 0x%"PRIx32, dir->pair[1]);
  1774. }
  1775. // can't relocate superblock, filesystem is now frozen
  1776. if (lfs_pair_cmp(dir->pair, (const lfs_block_t[2]){0, 1}) == 0) {
  1777. LFS_WARN("Superblock 0x%"PRIx32" has become unwritable",
  1778. dir->pair[1]);
  1779. return LFS_ERR_NOSPC;
  1780. }
  1781. // relocate half of pair
  1782. int err = lfs_alloc(lfs, &dir->pair[1]);
  1783. if (err && (err != LFS_ERR_NOSPC || !tired)) {
  1784. return err;
  1785. }
  1786. tired = false;
  1787. continue;
  1788. }
  1789. return relocated ? LFS_OK_RELOCATED : 0;
  1790. }
  1791. #endif
  1792. #ifndef LFS_READONLY
  1793. static int lfs_dir_splittingcompact(lfs_t *lfs, lfs_mdir_t *dir,
  1794. const struct lfs_mattr *attrs, int attrcount,
  1795. lfs_mdir_t *source, uint16_t begin, uint16_t end) {
  1796. while (true) {
  1797. // find size of first split, we do this by halving the split until
  1798. // the metadata is guaranteed to fit
  1799. //
  1800. // Note that this isn't a true binary search, we never increase the
  1801. // split size. This may result in poorly distributed metadata but isn't
  1802. // worth the extra code size or performance hit to fix.
  1803. lfs_size_t split = begin;
  1804. while (end - split > 1) {
  1805. lfs_size_t size = 0;
  1806. int err = lfs_dir_traverse(lfs,
  1807. source, 0, 0xffffffff, attrs, attrcount,
  1808. LFS_MKTAG(0x400, 0x3ff, 0),
  1809. LFS_MKTAG(LFS_TYPE_NAME, 0, 0),
  1810. split, end, -split,
  1811. lfs_dir_commit_size, &size);
  1812. if (err) {
  1813. return err;
  1814. }
  1815. // space is complicated, we need room for:
  1816. //
  1817. // - tail: 4+2*4 = 12 bytes
  1818. // - gstate: 4+3*4 = 16 bytes
  1819. // - move delete: 4 = 4 bytes
  1820. // - crc: 4+4 = 8 bytes
  1821. // total = 40 bytes
  1822. //
  1823. // And we cap at half a block to avoid degenerate cases with
  1824. // nearly-full metadata blocks.
  1825. //
  1826. if (end - split < 0xff
  1827. && size <= lfs_min(
  1828. lfs->cfg->block_size - 40,
  1829. lfs_alignup(
  1830. (lfs->cfg->metadata_max
  1831. ? lfs->cfg->metadata_max
  1832. : lfs->cfg->block_size)/2,
  1833. lfs->cfg->prog_size))) {
  1834. break;
  1835. }
  1836. split = split + ((end - split) / 2);
  1837. }
  1838. if (split == begin) {
  1839. // no split needed
  1840. break;
  1841. }
  1842. // split into two metadata pairs and continue
  1843. int err = lfs_dir_split(lfs, dir, attrs, attrcount,
  1844. source, split, end);
  1845. if (err && err != LFS_ERR_NOSPC) {
  1846. return err;
  1847. }
  1848. if (err) {
  1849. // we can't allocate a new block, try to compact with degraded
  1850. // performance
  1851. LFS_WARN("Unable to split {0x%"PRIx32", 0x%"PRIx32"}",
  1852. dir->pair[0], dir->pair[1]);
  1853. break;
  1854. } else {
  1855. end = split;
  1856. }
  1857. }
  1858. if (lfs_dir_needsrelocation(lfs, dir)
  1859. && lfs_pair_cmp(dir->pair, (const lfs_block_t[2]){0, 1}) == 0) {
  1860. // oh no! we're writing too much to the superblock,
  1861. // should we expand?
  1862. lfs_ssize_t size = lfs_fs_rawsize(lfs);
  1863. if (size < 0) {
  1864. return size;
  1865. }
  1866. // do we have extra space? littlefs can't reclaim this space
  1867. // by itself, so expand cautiously
  1868. if ((lfs_size_t)size < lfs->block_count/2) {
  1869. LFS_DEBUG("Expanding superblock at rev %"PRIu32, dir->rev);
  1870. int err = lfs_dir_split(lfs, dir, attrs, attrcount,
  1871. source, begin, end);
  1872. if (err && err != LFS_ERR_NOSPC) {
  1873. return err;
  1874. }
  1875. if (err) {
  1876. // welp, we tried, if we ran out of space there's not much
  1877. // we can do, we'll error later if we've become frozen
  1878. LFS_WARN("Unable to expand superblock");
  1879. } else {
  1880. end = begin;
  1881. }
  1882. }
  1883. }
  1884. return lfs_dir_compact(lfs, dir, attrs, attrcount, source, begin, end);
  1885. }
  1886. #endif
  1887. #ifndef LFS_READONLY
  1888. static int lfs_dir_relocatingcommit(lfs_t *lfs, lfs_mdir_t *dir,
  1889. const lfs_block_t pair[2],
  1890. const struct lfs_mattr *attrs, int attrcount,
  1891. lfs_mdir_t *pdir) {
  1892. int state = 0;
  1893. // calculate changes to the directory
  1894. bool hasdelete = false;
  1895. for (int i = 0; i < attrcount; i++) {
  1896. if (lfs_tag_type3(attrs[i].tag) == LFS_TYPE_CREATE) {
  1897. dir->count += 1;
  1898. } else if (lfs_tag_type3(attrs[i].tag) == LFS_TYPE_DELETE) {
  1899. LFS_ASSERT(dir->count > 0);
  1900. dir->count -= 1;
  1901. hasdelete = true;
  1902. } else if (lfs_tag_type1(attrs[i].tag) == LFS_TYPE_TAIL) {
  1903. dir->tail[0] = ((lfs_block_t*)attrs[i].buffer)[0];
  1904. dir->tail[1] = ((lfs_block_t*)attrs[i].buffer)[1];
  1905. dir->split = (lfs_tag_chunk(attrs[i].tag) & 1);
  1906. lfs_pair_fromle32(dir->tail);
  1907. }
  1908. }
  1909. // should we actually drop the directory block?
  1910. if (hasdelete && dir->count == 0) {
  1911. LFS_ASSERT(pdir);
  1912. int err = lfs_fs_pred(lfs, dir->pair, pdir);
  1913. if (err && err != LFS_ERR_NOENT) {
  1914. return err;
  1915. }
  1916. if (err != LFS_ERR_NOENT && pdir->split) {
  1917. state = LFS_OK_DROPPED;
  1918. goto fixmlist;
  1919. }
  1920. }
  1921. if (dir->erased) {
  1922. // try to commit
  1923. struct lfs_commit commit = {
  1924. .block = dir->pair[0],
  1925. .off = dir->off,
  1926. .ptag = dir->etag,
  1927. .crc = 0xffffffff,
  1928. .begin = dir->off,
  1929. .end = (lfs->cfg->metadata_max ?
  1930. lfs->cfg->metadata_max : lfs->cfg->block_size) - 8,
  1931. };
  1932. // traverse attrs that need to be written out
  1933. lfs_pair_tole32(dir->tail);
  1934. int err = lfs_dir_traverse(lfs,
  1935. dir, dir->off, dir->etag, attrs, attrcount,
  1936. 0, 0, 0, 0, 0,
  1937. lfs_dir_commit_commit, &(struct lfs_dir_commit_commit){
  1938. lfs, &commit});
  1939. lfs_pair_fromle32(dir->tail);
  1940. if (err) {
  1941. if (err == LFS_ERR_NOSPC || err == LFS_ERR_CORRUPT) {
  1942. goto compact;
  1943. }
  1944. return err;
  1945. }
  1946. // commit any global diffs if we have any
  1947. lfs_gstate_t delta = {0};
  1948. lfs_gstate_xor(&delta, &lfs->gstate);
  1949. lfs_gstate_xor(&delta, &lfs->gdisk);
  1950. lfs_gstate_xor(&delta, &lfs->gdelta);
  1951. delta.tag &= ~LFS_MKTAG(0, 0, 0x3ff);
  1952. if (!lfs_gstate_iszero(&delta)) {
  1953. err = lfs_dir_getgstate(lfs, dir, &delta);
  1954. if (err) {
  1955. return err;
  1956. }
  1957. lfs_gstate_tole32(&delta);
  1958. err = lfs_dir_commitattr(lfs, &commit,
  1959. LFS_MKTAG(LFS_TYPE_MOVESTATE, 0x3ff,
  1960. sizeof(delta)), &delta);
  1961. if (err) {
  1962. if (err == LFS_ERR_NOSPC || err == LFS_ERR_CORRUPT) {
  1963. goto compact;
  1964. }
  1965. return err;
  1966. }
  1967. }
  1968. // finalize commit with the crc
  1969. err = lfs_dir_commitcrc(lfs, &commit);
  1970. if (err) {
  1971. if (err == LFS_ERR_NOSPC || err == LFS_ERR_CORRUPT) {
  1972. goto compact;
  1973. }
  1974. return err;
  1975. }
  1976. // successful commit, update dir
  1977. LFS_ASSERT(commit.off % lfs->cfg->prog_size == 0);
  1978. dir->off = commit.off;
  1979. dir->etag = commit.ptag;
  1980. // and update gstate
  1981. lfs->gdisk = lfs->gstate;
  1982. lfs->gdelta = (lfs_gstate_t){0};
  1983. goto fixmlist;
  1984. }
  1985. compact:
  1986. // fall back to compaction
  1987. lfs_cache_drop(lfs, &lfs->pcache);
  1988. state = lfs_dir_splittingcompact(lfs, dir, attrs, attrcount,
  1989. dir, 0, dir->count);
  1990. if (state < 0) {
  1991. return state;
  1992. }
  1993. goto fixmlist;
  1994. fixmlist:;
  1995. // this complicated bit of logic is for fixing up any active
  1996. // metadata-pairs that we may have affected
  1997. //
  1998. // note we have to make two passes since the mdir passed to
  1999. // lfs_dir_commit could also be in this list, and even then
  2000. // we need to copy the pair so they don't get clobbered if we refetch
  2001. // our mdir.
  2002. lfs_block_t oldpair[2] = {pair[0], pair[1]};
  2003. for (struct lfs_mlist *d = lfs->mlist; d; d = d->next) {
  2004. if (lfs_pair_cmp(d->m.pair, oldpair) == 0) {
  2005. d->m = *dir;
  2006. if (d->m.pair != pair) {
  2007. for (int i = 0; i < attrcount; i++) {
  2008. if (lfs_tag_type3(attrs[i].tag) == LFS_TYPE_DELETE &&
  2009. d->id == lfs_tag_id(attrs[i].tag)) {
  2010. d->m.pair[0] = LFS_BLOCK_NULL;
  2011. d->m.pair[1] = LFS_BLOCK_NULL;
  2012. } else if (lfs_tag_type3(attrs[i].tag) == LFS_TYPE_DELETE &&
  2013. d->id > lfs_tag_id(attrs[i].tag)) {
  2014. d->id -= 1;
  2015. if (d->type == LFS_TYPE_DIR) {
  2016. ((lfs_dir_t*)d)->pos -= 1;
  2017. }
  2018. } else if (lfs_tag_type3(attrs[i].tag) == LFS_TYPE_CREATE &&
  2019. d->id >= lfs_tag_id(attrs[i].tag)) {
  2020. d->id += 1;
  2021. if (d->type == LFS_TYPE_DIR) {
  2022. ((lfs_dir_t*)d)->pos += 1;
  2023. }
  2024. }
  2025. }
  2026. }
  2027. while (d->id >= d->m.count && d->m.split) {
  2028. // we split and id is on tail now
  2029. d->id -= d->m.count;
  2030. int err = lfs_dir_fetch(lfs, &d->m, d->m.tail);
  2031. if (err) {
  2032. return err;
  2033. }
  2034. }
  2035. }
  2036. }
  2037. return state;
  2038. }
  2039. #endif
  2040. #ifndef LFS_READONLY
  2041. static int lfs_dir_orphaningcommit(lfs_t *lfs, lfs_mdir_t *dir,
  2042. const struct lfs_mattr *attrs, int attrcount) {
  2043. // check for any inline files that aren't RAM backed and
  2044. // forcefully evict them, needed for filesystem consistency
  2045. for (lfs_file_t *f = (lfs_file_t*)lfs->mlist; f; f = f->next) {
  2046. if (dir != &f->m && lfs_pair_cmp(f->m.pair, dir->pair) == 0 &&
  2047. f->type == LFS_TYPE_REG && (f->flags & LFS_F_INLINE) &&
  2048. f->ctz.size > lfs->cfg->cache_size) {
  2049. int err = lfs_file_outline(lfs, f);
  2050. if (err) {
  2051. return err;
  2052. }
  2053. err = lfs_file_flush(lfs, f);
  2054. if (err) {
  2055. return err;
  2056. }
  2057. }
  2058. }
  2059. lfs_block_t lpair[2] = {dir->pair[0], dir->pair[1]};
  2060. lfs_mdir_t ldir = *dir;
  2061. lfs_mdir_t pdir;
  2062. int state = lfs_dir_relocatingcommit(lfs, &ldir, dir->pair,
  2063. attrs, attrcount, &pdir);
  2064. if (state < 0) {
  2065. return state;
  2066. }
  2067. // update if we're not in mlist, note we may have already been
  2068. // updated if we are in mlist
  2069. if (lfs_pair_cmp(dir->pair, lpair) == 0) {
  2070. *dir = ldir;
  2071. }
  2072. // commit was successful, but may require other changes in the
  2073. // filesystem, these would normally be tail recursive, but we have
  2074. // flattened them here avoid unbounded stack usage
  2075. // need to drop?
  2076. if (state == LFS_OK_DROPPED) {
  2077. // steal state
  2078. int err = lfs_dir_getgstate(lfs, dir, &lfs->gdelta);
  2079. if (err) {
  2080. return err;
  2081. }
  2082. // steal tail, note that this can't create a recursive drop
  2083. lpair[0] = pdir.pair[0];
  2084. lpair[1] = pdir.pair[1];
  2085. lfs_pair_tole32(dir->tail);
  2086. state = lfs_dir_relocatingcommit(lfs, &pdir, lpair, LFS_MKATTRS(
  2087. {LFS_MKTAG(LFS_TYPE_TAIL + dir->split, 0x3ff, 8),
  2088. dir->tail}),
  2089. NULL);
  2090. lfs_pair_fromle32(dir->tail);
  2091. if (state < 0) {
  2092. return state;
  2093. }
  2094. ldir = pdir;
  2095. }
  2096. // need to relocate?
  2097. bool orphans = false;
  2098. while (state == LFS_OK_RELOCATED) {
  2099. LFS_DEBUG("Relocating {0x%"PRIx32", 0x%"PRIx32"} "
  2100. "-> {0x%"PRIx32", 0x%"PRIx32"}",
  2101. lpair[0], lpair[1], ldir.pair[0], ldir.pair[1]);
  2102. state = 0;
  2103. // update internal root
  2104. if (lfs_pair_cmp(lpair, lfs->root) == 0) {
  2105. lfs->root[0] = ldir.pair[0];
  2106. lfs->root[1] = ldir.pair[1];
  2107. }
  2108. // update internally tracked dirs
  2109. for (struct lfs_mlist *d = lfs->mlist; d; d = d->next) {
  2110. if (lfs_pair_cmp(lpair, d->m.pair) == 0) {
  2111. d->m.pair[0] = ldir.pair[0];
  2112. d->m.pair[1] = ldir.pair[1];
  2113. }
  2114. if (d->type == LFS_TYPE_DIR &&
  2115. lfs_pair_cmp(lpair, ((lfs_dir_t*)d)->head) == 0) {
  2116. ((lfs_dir_t*)d)->head[0] = ldir.pair[0];
  2117. ((lfs_dir_t*)d)->head[1] = ldir.pair[1];
  2118. }
  2119. }
  2120. // find parent
  2121. lfs_stag_t tag = lfs_fs_parent(lfs, lpair, &pdir);
  2122. if (tag < 0 && tag != LFS_ERR_NOENT) {
  2123. return tag;
  2124. }
  2125. bool hasparent = (tag != LFS_ERR_NOENT);
  2126. if (tag != LFS_ERR_NOENT) {
  2127. // note that if we have a parent, we must have a pred, so this will
  2128. // always create an orphan
  2129. int err = lfs_fs_preporphans(lfs, +1);
  2130. if (err) {
  2131. return err;
  2132. }
  2133. // fix pending move in this pair? this looks like an optimization but
  2134. // is in fact _required_ since relocating may outdate the move.
  2135. uint16_t moveid = 0x3ff;
  2136. if (lfs_gstate_hasmovehere(&lfs->gstate, pdir.pair)) {
  2137. moveid = lfs_tag_id(lfs->gstate.tag);
  2138. LFS_DEBUG("Fixing move while relocating "
  2139. "{0x%"PRIx32", 0x%"PRIx32"} 0x%"PRIx16"\n",
  2140. pdir.pair[0], pdir.pair[1], moveid);
  2141. lfs_fs_prepmove(lfs, 0x3ff, NULL);
  2142. if (moveid < lfs_tag_id(tag)) {
  2143. tag -= LFS_MKTAG(0, 1, 0);
  2144. }
  2145. }
  2146. lfs_block_t ppair[2] = {pdir.pair[0], pdir.pair[1]};
  2147. lfs_pair_tole32(ldir.pair);
  2148. state = lfs_dir_relocatingcommit(lfs, &pdir, ppair, LFS_MKATTRS(
  2149. {LFS_MKTAG_IF(moveid != 0x3ff,
  2150. LFS_TYPE_DELETE, moveid, 0), NULL},
  2151. {tag, ldir.pair}),
  2152. NULL);
  2153. lfs_pair_fromle32(ldir.pair);
  2154. if (state < 0) {
  2155. return state;
  2156. }
  2157. if (state == LFS_OK_RELOCATED) {
  2158. lpair[0] = ppair[0];
  2159. lpair[1] = ppair[1];
  2160. ldir = pdir;
  2161. orphans = true;
  2162. continue;
  2163. }
  2164. }
  2165. // find pred
  2166. int err = lfs_fs_pred(lfs, lpair, &pdir);
  2167. if (err && err != LFS_ERR_NOENT) {
  2168. return err;
  2169. }
  2170. LFS_ASSERT(!(hasparent && err == LFS_ERR_NOENT));
  2171. // if we can't find dir, it must be new
  2172. if (err != LFS_ERR_NOENT) {
  2173. if (lfs_gstate_hasorphans(&lfs->gstate)) {
  2174. // next step, clean up orphans
  2175. err = lfs_fs_preporphans(lfs, -hasparent);
  2176. if (err) {
  2177. return err;
  2178. }
  2179. }
  2180. // fix pending move in this pair? this looks like an optimization
  2181. // but is in fact _required_ since relocating may outdate the move.
  2182. uint16_t moveid = 0x3ff;
  2183. if (lfs_gstate_hasmovehere(&lfs->gstate, pdir.pair)) {
  2184. moveid = lfs_tag_id(lfs->gstate.tag);
  2185. LFS_DEBUG("Fixing move while relocating "
  2186. "{0x%"PRIx32", 0x%"PRIx32"} 0x%"PRIx16"\n",
  2187. pdir.pair[0], pdir.pair[1], moveid);
  2188. lfs_fs_prepmove(lfs, 0x3ff, NULL);
  2189. }
  2190. // replace bad pair, either we clean up desync, or no desync occured
  2191. lpair[0] = pdir.pair[0];
  2192. lpair[1] = pdir.pair[1];
  2193. lfs_pair_tole32(ldir.pair);
  2194. state = lfs_dir_relocatingcommit(lfs, &pdir, lpair, LFS_MKATTRS(
  2195. {LFS_MKTAG_IF(moveid != 0x3ff,
  2196. LFS_TYPE_DELETE, moveid, 0), NULL},
  2197. {LFS_MKTAG(LFS_TYPE_TAIL + pdir.split, 0x3ff, 8),
  2198. ldir.pair}),
  2199. NULL);
  2200. lfs_pair_fromle32(ldir.pair);
  2201. if (state < 0) {
  2202. return state;
  2203. }
  2204. ldir = pdir;
  2205. }
  2206. }
  2207. return orphans ? LFS_OK_ORPHANED : 0;
  2208. }
  2209. #endif
  2210. #ifndef LFS_READONLY
  2211. static int lfs_dir_commit(lfs_t *lfs, lfs_mdir_t *dir,
  2212. const struct lfs_mattr *attrs, int attrcount) {
  2213. int orphans = lfs_dir_orphaningcommit(lfs, dir, attrs, attrcount);
  2214. if (orphans < 0) {
  2215. return orphans;
  2216. }
  2217. if (orphans) {
  2218. // make sure we've removed all orphans, this is a noop if there
  2219. // are none, but if we had nested blocks failures we may have
  2220. // created some
  2221. int err = lfs_fs_deorphan(lfs, false);
  2222. if (err) {
  2223. return err;
  2224. }
  2225. }
  2226. return 0;
  2227. }
  2228. #endif
  2229. /// Top level directory operations ///
  2230. #ifndef LFS_READONLY
  2231. static int lfs_rawmkdir(lfs_t *lfs, const char *path) {
  2232. // deorphan if we haven't yet, needed at most once after poweron
  2233. int err = lfs_fs_forceconsistency(lfs);
  2234. if (err) {
  2235. return err;
  2236. }
  2237. struct lfs_mlist cwd;
  2238. cwd.next = lfs->mlist;
  2239. uint16_t id;
  2240. err = lfs_dir_find(lfs, &cwd.m, &path, &id);
  2241. if (!(err == LFS_ERR_NOENT && id != 0x3ff)) {
  2242. return (err < 0) ? err : LFS_ERR_EXIST;
  2243. }
  2244. // check that name fits
  2245. lfs_size_t nlen = strlen(path);
  2246. if (nlen > lfs->name_max) {
  2247. return LFS_ERR_NAMETOOLONG;
  2248. }
  2249. // build up new directory
  2250. lfs_alloc_ack(lfs);
  2251. lfs_mdir_t dir;
  2252. err = lfs_dir_alloc(lfs, &dir);
  2253. if (err) {
  2254. return err;
  2255. }
  2256. // find end of list
  2257. lfs_mdir_t pred = cwd.m;
  2258. while (pred.split) {
  2259. err = lfs_dir_fetch(lfs, &pred, pred.tail);
  2260. if (err) {
  2261. return err;
  2262. }
  2263. }
  2264. // setup dir
  2265. lfs_pair_tole32(pred.tail);
  2266. err = lfs_dir_commit(lfs, &dir, LFS_MKATTRS(
  2267. {LFS_MKTAG(LFS_TYPE_SOFTTAIL, 0x3ff, 8), pred.tail}));
  2268. lfs_pair_fromle32(pred.tail);
  2269. if (err) {
  2270. return err;
  2271. }
  2272. // current block not end of list?
  2273. if (cwd.m.split) {
  2274. // update tails, this creates a desync
  2275. err = lfs_fs_preporphans(lfs, +1);
  2276. if (err) {
  2277. return err;
  2278. }
  2279. // it's possible our predecessor has to be relocated, and if
  2280. // our parent is our predecessor's predecessor, this could have
  2281. // caused our parent to go out of date, fortunately we can hook
  2282. // ourselves into littlefs to catch this
  2283. cwd.type = 0;
  2284. cwd.id = 0;
  2285. lfs->mlist = &cwd;
  2286. lfs_pair_tole32(dir.pair);
  2287. err = lfs_dir_commit(lfs, &pred, LFS_MKATTRS(
  2288. {LFS_MKTAG(LFS_TYPE_SOFTTAIL, 0x3ff, 8), dir.pair}));
  2289. lfs_pair_fromle32(dir.pair);
  2290. if (err) {
  2291. lfs->mlist = cwd.next;
  2292. return err;
  2293. }
  2294. lfs->mlist = cwd.next;
  2295. err = lfs_fs_preporphans(lfs, -1);
  2296. if (err) {
  2297. return err;
  2298. }
  2299. }
  2300. // now insert into our parent block
  2301. lfs_pair_tole32(dir.pair);
  2302. err = lfs_dir_commit(lfs, &cwd.m, LFS_MKATTRS(
  2303. {LFS_MKTAG(LFS_TYPE_CREATE, id, 0), NULL},
  2304. {LFS_MKTAG(LFS_TYPE_DIR, id, nlen), path},
  2305. {LFS_MKTAG(LFS_TYPE_DIRSTRUCT, id, 8), dir.pair},
  2306. {LFS_MKTAG_IF(!cwd.m.split,
  2307. LFS_TYPE_SOFTTAIL, 0x3ff, 8), dir.pair}));
  2308. lfs_pair_fromle32(dir.pair);
  2309. if (err) {
  2310. return err;
  2311. }
  2312. return 0;
  2313. }
  2314. #endif
  2315. static int lfs_dir_rawopen(lfs_t *lfs, lfs_dir_t *dir, const char *path) {
  2316. lfs_stag_t tag = lfs_dir_find(lfs, &dir->m, &path, NULL);
  2317. if (tag < 0) {
  2318. return tag;
  2319. }
  2320. if (lfs_tag_type3(tag) != LFS_TYPE_DIR) {
  2321. return LFS_ERR_NOTDIR;
  2322. }
  2323. lfs_block_t pair[2];
  2324. if (lfs_tag_id(tag) == 0x3ff) {
  2325. // handle root dir separately
  2326. pair[0] = lfs->root[0];
  2327. pair[1] = lfs->root[1];
  2328. } else {
  2329. // get dir pair from parent
  2330. lfs_stag_t res = lfs_dir_get(lfs, &dir->m, LFS_MKTAG(0x700, 0x3ff, 0),
  2331. LFS_MKTAG(LFS_TYPE_STRUCT, lfs_tag_id(tag), 8), pair);
  2332. if (res < 0) {
  2333. return res;
  2334. }
  2335. lfs_pair_fromle32(pair);
  2336. }
  2337. // fetch first pair
  2338. int err = lfs_dir_fetch(lfs, &dir->m, pair);
  2339. if (err) {
  2340. return err;
  2341. }
  2342. // setup entry
  2343. dir->head[0] = dir->m.pair[0];
  2344. dir->head[1] = dir->m.pair[1];
  2345. dir->id = 0;
  2346. dir->pos = 0;
  2347. // add to list of mdirs
  2348. dir->type = LFS_TYPE_DIR;
  2349. lfs_mlist_append(lfs, (struct lfs_mlist *)dir);
  2350. return 0;
  2351. }
  2352. static int lfs_dir_rawclose(lfs_t *lfs, lfs_dir_t *dir) {
  2353. // remove from list of mdirs
  2354. lfs_mlist_remove(lfs, (struct lfs_mlist *)dir);
  2355. return 0;
  2356. }
  2357. static int lfs_dir_rawread(lfs_t *lfs, lfs_dir_t *dir, struct lfs_info *info) {
  2358. memset(info, 0, sizeof(*info));
  2359. // special offset for '.' and '..'
  2360. if (dir->pos == 0) {
  2361. info->type = LFS_TYPE_DIR;
  2362. strcpy(info->name, ".");
  2363. dir->pos += 1;
  2364. return true;
  2365. } else if (dir->pos == 1) {
  2366. info->type = LFS_TYPE_DIR;
  2367. strcpy(info->name, "..");
  2368. dir->pos += 1;
  2369. return true;
  2370. }
  2371. while (true) {
  2372. if (dir->id == dir->m.count) {
  2373. if (!dir->m.split) {
  2374. return false;
  2375. }
  2376. int err = lfs_dir_fetch(lfs, &dir->m, dir->m.tail);
  2377. if (err) {
  2378. return err;
  2379. }
  2380. dir->id = 0;
  2381. }
  2382. int err = lfs_dir_getinfo(lfs, &dir->m, dir->id, info);
  2383. if (err && err != LFS_ERR_NOENT) {
  2384. return err;
  2385. }
  2386. dir->id += 1;
  2387. if (err != LFS_ERR_NOENT) {
  2388. break;
  2389. }
  2390. }
  2391. dir->pos += 1;
  2392. return true;
  2393. }
  2394. static int lfs_dir_rawseek(lfs_t *lfs, lfs_dir_t *dir, lfs_off_t off) {
  2395. // simply walk from head dir
  2396. int err = lfs_dir_rawrewind(lfs, dir);
  2397. if (err) {
  2398. return err;
  2399. }
  2400. // first two for ./..
  2401. dir->pos = lfs_min(2, off);
  2402. off -= dir->pos;
  2403. // skip superblock entry
  2404. dir->id = (off > 0 && lfs_pair_cmp(dir->head, lfs->root) == 0);
  2405. while (off > 0) {
  2406. if (dir->id == dir->m.count) {
  2407. if (!dir->m.split) {
  2408. return LFS_ERR_INVAL;
  2409. }
  2410. err = lfs_dir_fetch(lfs, &dir->m, dir->m.tail);
  2411. if (err) {
  2412. return err;
  2413. }
  2414. dir->id = 0;
  2415. }
  2416. int diff = lfs_min(dir->m.count - dir->id, off);
  2417. dir->id += diff;
  2418. dir->pos += diff;
  2419. off -= diff;
  2420. }
  2421. return 0;
  2422. }
  2423. static lfs_soff_t lfs_dir_rawtell(lfs_t *lfs, lfs_dir_t *dir) {
  2424. (void)lfs;
  2425. return dir->pos;
  2426. }
  2427. static int lfs_dir_rawrewind(lfs_t *lfs, lfs_dir_t *dir) {
  2428. // reload the head dir
  2429. int err = lfs_dir_fetch(lfs, &dir->m, dir->head);
  2430. if (err) {
  2431. return err;
  2432. }
  2433. dir->id = 0;
  2434. dir->pos = 0;
  2435. return 0;
  2436. }
  2437. /// File index list operations ///
  2438. static int lfs_ctz_index(lfs_t *lfs, lfs_off_t *off) {
  2439. lfs_off_t size = *off;
  2440. lfs_off_t b = lfs->cfg->block_size - 2*4;
  2441. lfs_off_t i = size / b;
  2442. if (i == 0) {
  2443. return 0;
  2444. }
  2445. i = (size - 4*(lfs_popc(i-1)+2)) / b;
  2446. *off = size - b*i - 4*lfs_popc(i);
  2447. return i;
  2448. }
  2449. static int lfs_ctz_find(lfs_t *lfs,
  2450. const lfs_cache_t *pcache, lfs_cache_t *rcache,
  2451. lfs_block_t head, lfs_size_t size,
  2452. lfs_size_t pos, lfs_block_t *block, lfs_off_t *off) {
  2453. if (size == 0) {
  2454. *block = LFS_BLOCK_NULL;
  2455. *off = 0;
  2456. return 0;
  2457. }
  2458. lfs_off_t current = lfs_ctz_index(lfs, &(lfs_off_t){size-1});
  2459. lfs_off_t target = lfs_ctz_index(lfs, &pos);
  2460. while (current > target) {
  2461. lfs_size_t skip = lfs_min(
  2462. lfs_npw2(current-target+1) - 1,
  2463. lfs_ctz(current));
  2464. int err = lfs_bd_read(lfs,
  2465. pcache, rcache, sizeof(head),
  2466. head, 4*skip, &head, sizeof(head));
  2467. head = lfs_fromle32(head);
  2468. if (err) {
  2469. return err;
  2470. }
  2471. current -= 1 << skip;
  2472. }
  2473. *block = head;
  2474. *off = pos;
  2475. return 0;
  2476. }
  2477. #ifndef LFS_READONLY
  2478. static int lfs_ctz_extend(lfs_t *lfs,
  2479. lfs_cache_t *pcache, lfs_cache_t *rcache,
  2480. lfs_block_t head, lfs_size_t size,
  2481. lfs_block_t *block, lfs_off_t *off) {
  2482. while (true) {
  2483. // go ahead and grab a block
  2484. lfs_block_t nblock;
  2485. int err = lfs_alloc(lfs, &nblock);
  2486. if (err) {
  2487. return err;
  2488. }
  2489. {
  2490. err = lfs_bd_erase(lfs, nblock);
  2491. if (err) {
  2492. if (err == LFS_ERR_CORRUPT) {
  2493. goto relocate;
  2494. }
  2495. return err;
  2496. }
  2497. if (size == 0) {
  2498. *block = nblock;
  2499. *off = 0;
  2500. return 0;
  2501. }
  2502. lfs_size_t noff = size - 1;
  2503. lfs_off_t index = lfs_ctz_index(lfs, &noff);
  2504. noff = noff + 1;
  2505. // just copy out the last block if it is incomplete
  2506. if (noff != lfs->cfg->block_size) {
  2507. for (lfs_off_t i = 0; i < noff; i++) {
  2508. uint8_t data;
  2509. err = lfs_bd_read(lfs,
  2510. NULL, rcache, noff-i,
  2511. head, i, &data, 1);
  2512. if (err) {
  2513. return err;
  2514. }
  2515. err = lfs_bd_prog(lfs,
  2516. pcache, rcache, true,
  2517. nblock, i, &data, 1);
  2518. if (err) {
  2519. if (err == LFS_ERR_CORRUPT) {
  2520. goto relocate;
  2521. }
  2522. return err;
  2523. }
  2524. }
  2525. *block = nblock;
  2526. *off = noff;
  2527. return 0;
  2528. }
  2529. // append block
  2530. index += 1;
  2531. lfs_size_t skips = lfs_ctz(index) + 1;
  2532. lfs_block_t nhead = head;
  2533. for (lfs_off_t i = 0; i < skips; i++) {
  2534. nhead = lfs_tole32(nhead);
  2535. err = lfs_bd_prog(lfs, pcache, rcache, true,
  2536. nblock, 4*i, &nhead, 4);
  2537. nhead = lfs_fromle32(nhead);
  2538. if (err) {
  2539. if (err == LFS_ERR_CORRUPT) {
  2540. goto relocate;
  2541. }
  2542. return err;
  2543. }
  2544. if (i != skips-1) {
  2545. err = lfs_bd_read(lfs,
  2546. NULL, rcache, sizeof(nhead),
  2547. nhead, 4*i, &nhead, sizeof(nhead));
  2548. nhead = lfs_fromle32(nhead);
  2549. if (err) {
  2550. return err;
  2551. }
  2552. }
  2553. }
  2554. *block = nblock;
  2555. *off = 4*skips;
  2556. return 0;
  2557. }
  2558. relocate:
  2559. LFS_DEBUG("Bad block at 0x%"PRIx32, nblock);
  2560. // just clear cache and try a new block
  2561. lfs_cache_drop(lfs, pcache);
  2562. }
  2563. }
  2564. #endif
  2565. static int lfs_ctz_traverse(lfs_t *lfs,
  2566. const lfs_cache_t *pcache, lfs_cache_t *rcache,
  2567. lfs_block_t head, lfs_size_t size,
  2568. int (*cb)(void*, lfs_block_t), void *data) {
  2569. if (size == 0) {
  2570. return 0;
  2571. }
  2572. lfs_off_t index = lfs_ctz_index(lfs, &(lfs_off_t){size-1});
  2573. while (true) {
  2574. int err = cb(data, head);
  2575. if (err) {
  2576. return err;
  2577. }
  2578. if (index == 0) {
  2579. return 0;
  2580. }
  2581. lfs_block_t heads[2];
  2582. int count = 2 - (index & 1);
  2583. err = lfs_bd_read(lfs,
  2584. pcache, rcache, count*sizeof(head),
  2585. head, 0, &heads, count*sizeof(head));
  2586. heads[0] = lfs_fromle32(heads[0]);
  2587. heads[1] = lfs_fromle32(heads[1]);
  2588. if (err) {
  2589. return err;
  2590. }
  2591. for (int i = 0; i < count-1; i++) {
  2592. err = cb(data, heads[i]);
  2593. if (err) {
  2594. return err;
  2595. }
  2596. }
  2597. head = heads[count-1];
  2598. index -= count;
  2599. }
  2600. }
  2601. /// Top level file operations ///
  2602. static int lfs_file_rawopencfg(lfs_t *lfs, lfs_file_t *file,
  2603. const char *path, int flags,
  2604. const struct lfs_file_config *cfg) {
  2605. #ifndef LFS_READONLY
  2606. // deorphan if we haven't yet, needed at most once after poweron
  2607. if ((flags & LFS_O_WRONLY) == LFS_O_WRONLY) {
  2608. int err = lfs_fs_forceconsistency(lfs);
  2609. if (err) {
  2610. return err;
  2611. }
  2612. }
  2613. #else
  2614. LFS_ASSERT((flags & LFS_O_RDONLY) == LFS_O_RDONLY);
  2615. #endif
  2616. // setup simple file details
  2617. int err;
  2618. file->cfg = cfg;
  2619. file->flags = flags;
  2620. file->pos = 0;
  2621. file->off = 0;
  2622. file->cache.buffer = NULL;
  2623. // allocate entry for file if it doesn't exist
  2624. lfs_stag_t tag = lfs_dir_find(lfs, &file->m, &path, &file->id);
  2625. if (tag < 0 && !(tag == LFS_ERR_NOENT && file->id != 0x3ff)) {
  2626. err = tag;
  2627. goto cleanup;
  2628. }
  2629. // get id, add to list of mdirs to catch update changes
  2630. file->type = LFS_TYPE_REG;
  2631. lfs_mlist_append(lfs, (struct lfs_mlist *)file);
  2632. #ifdef LFS_READONLY
  2633. if (tag == LFS_ERR_NOENT) {
  2634. err = LFS_ERR_NOENT;
  2635. goto cleanup;
  2636. #else
  2637. if (tag == LFS_ERR_NOENT) {
  2638. if (!(flags & LFS_O_CREAT)) {
  2639. err = LFS_ERR_NOENT;
  2640. goto cleanup;
  2641. }
  2642. // check that name fits
  2643. lfs_size_t nlen = strlen(path);
  2644. if (nlen > lfs->name_max) {
  2645. err = LFS_ERR_NAMETOOLONG;
  2646. goto cleanup;
  2647. }
  2648. // get next slot and create entry to remember name
  2649. err = lfs_dir_commit(lfs, &file->m, LFS_MKATTRS(
  2650. {LFS_MKTAG(LFS_TYPE_CREATE, file->id, 0), NULL},
  2651. {LFS_MKTAG(LFS_TYPE_REG, file->id, nlen), path},
  2652. {LFS_MKTAG(LFS_TYPE_INLINESTRUCT, file->id, 0), NULL}));
  2653. // it may happen that the file name doesn't fit in the metadata blocks, e.g., a 256 byte file name will
  2654. // not fit in a 128 byte block.
  2655. err = (err == LFS_ERR_NOSPC) ? LFS_ERR_NAMETOOLONG : err;
  2656. if (err) {
  2657. goto cleanup;
  2658. }
  2659. tag = LFS_MKTAG(LFS_TYPE_INLINESTRUCT, 0, 0);
  2660. } else if (flags & LFS_O_EXCL) {
  2661. err = LFS_ERR_EXIST;
  2662. goto cleanup;
  2663. #endif
  2664. } else if (lfs_tag_type3(tag) != LFS_TYPE_REG) {
  2665. err = LFS_ERR_ISDIR;
  2666. goto cleanup;
  2667. #ifndef LFS_READONLY
  2668. } else if (flags & LFS_O_TRUNC) {
  2669. // truncate if requested
  2670. tag = LFS_MKTAG(LFS_TYPE_INLINESTRUCT, file->id, 0);
  2671. file->flags |= LFS_F_DIRTY;
  2672. #endif
  2673. } else {
  2674. // try to load what's on disk, if it's inlined we'll fix it later
  2675. tag = lfs_dir_get(lfs, &file->m, LFS_MKTAG(0x700, 0x3ff, 0),
  2676. LFS_MKTAG(LFS_TYPE_STRUCT, file->id, 8), &file->ctz);
  2677. if (tag < 0) {
  2678. err = tag;
  2679. goto cleanup;
  2680. }
  2681. lfs_ctz_fromle32(&file->ctz);
  2682. }
  2683. // fetch attrs
  2684. for (unsigned i = 0; i < file->cfg->attr_count; i++) {
  2685. // if opened for read / read-write operations
  2686. if ((file->flags & LFS_O_RDONLY) == LFS_O_RDONLY) {
  2687. lfs_stag_t res = lfs_dir_get(lfs, &file->m,
  2688. LFS_MKTAG(0x7ff, 0x3ff, 0),
  2689. LFS_MKTAG(LFS_TYPE_USERATTR + file->cfg->attrs[i].type,
  2690. file->id, file->cfg->attrs[i].size),
  2691. file->cfg->attrs[i].buffer);
  2692. if (res < 0 && res != LFS_ERR_NOENT) {
  2693. err = res;
  2694. goto cleanup;
  2695. }
  2696. }
  2697. #ifndef LFS_READONLY
  2698. // if opened for write / read-write operations
  2699. if ((file->flags & LFS_O_WRONLY) == LFS_O_WRONLY) {
  2700. if (file->cfg->attrs[i].size > lfs->attr_max) {
  2701. err = LFS_ERR_NOSPC;
  2702. goto cleanup;
  2703. }
  2704. file->flags |= LFS_F_DIRTY;
  2705. }
  2706. #endif
  2707. }
  2708. // allocate buffer if needed
  2709. if (file->cfg->buffer) {
  2710. file->cache.buffer = file->cfg->buffer;
  2711. } else {
  2712. file->cache.buffer = lfs_malloc(lfs->cfg->cache_size);
  2713. if (!file->cache.buffer) {
  2714. err = LFS_ERR_NOMEM;
  2715. goto cleanup;
  2716. }
  2717. }
  2718. // zero to avoid information leak
  2719. lfs_cache_zero(lfs, &file->cache);
  2720. if (lfs_tag_type3(tag) == LFS_TYPE_INLINESTRUCT) {
  2721. // load inline files
  2722. file->ctz.head = LFS_BLOCK_INLINE;
  2723. file->ctz.size = lfs_tag_size(tag);
  2724. file->flags |= LFS_F_INLINE;
  2725. file->cache.block = file->ctz.head;
  2726. file->cache.off = 0;
  2727. file->cache.size = lfs->cfg->cache_size;
  2728. // don't always read (may be new/trunc file)
  2729. if (file->ctz.size > 0) {
  2730. lfs_stag_t res = lfs_dir_get(lfs, &file->m,
  2731. LFS_MKTAG(0x700, 0x3ff, 0),
  2732. LFS_MKTAG(LFS_TYPE_STRUCT, file->id,
  2733. lfs_min(file->cache.size, 0x3fe)),
  2734. file->cache.buffer);
  2735. if (res < 0) {
  2736. err = res;
  2737. goto cleanup;
  2738. }
  2739. }
  2740. }
  2741. return 0;
  2742. cleanup:
  2743. // clean up lingering resources
  2744. #ifndef LFS_READONLY
  2745. file->flags |= LFS_F_ERRED;
  2746. #endif
  2747. lfs_file_rawclose(lfs, file);
  2748. return err;
  2749. }
  2750. #ifndef LFS_NO_MALLOC
  2751. static int lfs_file_rawopen(lfs_t *lfs, lfs_file_t *file,
  2752. const char *path, int flags) {
  2753. static const struct lfs_file_config defaults = {0};
  2754. int err = lfs_file_rawopencfg(lfs, file, path, flags, &defaults);
  2755. return err;
  2756. }
  2757. #endif
  2758. static int lfs_file_rawclose(lfs_t *lfs, lfs_file_t *file) {
  2759. #ifndef LFS_READONLY
  2760. int err = lfs_file_rawsync(lfs, file);
  2761. #else
  2762. int err = 0;
  2763. #endif
  2764. // remove from list of mdirs
  2765. lfs_mlist_remove(lfs, (struct lfs_mlist*)file);
  2766. // clean up memory
  2767. if (!file->cfg->buffer) {
  2768. lfs_free(file->cache.buffer);
  2769. }
  2770. return err;
  2771. }
  2772. #ifndef LFS_READONLY
  2773. static int lfs_file_relocate(lfs_t *lfs, lfs_file_t *file) {
  2774. while (true) {
  2775. // just relocate what exists into new block
  2776. lfs_block_t nblock;
  2777. int err = lfs_alloc(lfs, &nblock);
  2778. if (err) {
  2779. return err;
  2780. }
  2781. err = lfs_bd_erase(lfs, nblock);
  2782. if (err) {
  2783. if (err == LFS_ERR_CORRUPT) {
  2784. goto relocate;
  2785. }
  2786. return err;
  2787. }
  2788. // either read from dirty cache or disk
  2789. for (lfs_off_t i = 0; i < file->off; i++) {
  2790. uint8_t data;
  2791. if (file->flags & LFS_F_INLINE) {
  2792. err = lfs_dir_getread(lfs, &file->m,
  2793. // note we evict inline files before they can be dirty
  2794. NULL, &file->cache, file->off-i,
  2795. LFS_MKTAG(0xfff, 0x1ff, 0),
  2796. LFS_MKTAG(LFS_TYPE_INLINESTRUCT, file->id, 0),
  2797. i, &data, 1);
  2798. if (err) {
  2799. return err;
  2800. }
  2801. } else {
  2802. err = lfs_bd_read(lfs,
  2803. &file->cache, &lfs->rcache, file->off-i,
  2804. file->block, i, &data, 1);
  2805. if (err) {
  2806. return err;
  2807. }
  2808. }
  2809. err = lfs_bd_prog(lfs,
  2810. &lfs->pcache, &lfs->rcache, true,
  2811. nblock, i, &data, 1);
  2812. if (err) {
  2813. if (err == LFS_ERR_CORRUPT) {
  2814. goto relocate;
  2815. }
  2816. return err;
  2817. }
  2818. }
  2819. // copy over new state of file
  2820. memcpy(file->cache.buffer, lfs->pcache.buffer, lfs->cfg->cache_size);
  2821. file->cache.block = lfs->pcache.block;
  2822. file->cache.off = lfs->pcache.off;
  2823. file->cache.size = lfs->pcache.size;
  2824. lfs_cache_zero(lfs, &lfs->pcache);
  2825. file->block = nblock;
  2826. file->flags |= LFS_F_WRITING;
  2827. return 0;
  2828. relocate:
  2829. LFS_DEBUG("Bad block at 0x%"PRIx32, nblock);
  2830. // just clear cache and try a new block
  2831. lfs_cache_drop(lfs, &lfs->pcache);
  2832. }
  2833. }
  2834. #endif
  2835. #ifndef LFS_READONLY
  2836. static int lfs_file_outline(lfs_t *lfs, lfs_file_t *file) {
  2837. file->off = file->pos;
  2838. lfs_alloc_ack(lfs);
  2839. int err = lfs_file_relocate(lfs, file);
  2840. if (err) {
  2841. return err;
  2842. }
  2843. file->flags &= ~LFS_F_INLINE;
  2844. return 0;
  2845. }
  2846. #endif
  2847. static int lfs_file_flush(lfs_t *lfs, lfs_file_t *file) {
  2848. if (file->flags & LFS_F_READING) {
  2849. if (!(file->flags & LFS_F_INLINE)) {
  2850. lfs_cache_drop(lfs, &file->cache);
  2851. }
  2852. file->flags &= ~LFS_F_READING;
  2853. }
  2854. #ifndef LFS_READONLY
  2855. if (file->flags & LFS_F_WRITING) {
  2856. lfs_off_t pos = file->pos;
  2857. if (!(file->flags & LFS_F_INLINE)) {
  2858. // copy over anything after current branch
  2859. lfs_file_t orig = {
  2860. .ctz.head = file->ctz.head,
  2861. .ctz.size = file->ctz.size,
  2862. .flags = LFS_O_RDONLY,
  2863. .pos = file->pos,
  2864. .cache = lfs->rcache,
  2865. };
  2866. lfs_cache_drop(lfs, &lfs->rcache);
  2867. while (file->pos < file->ctz.size) {
  2868. // copy over a byte at a time, leave it up to caching
  2869. // to make this efficient
  2870. uint8_t data;
  2871. lfs_ssize_t res = lfs_file_flushedread(lfs, &orig, &data, 1);
  2872. if (res < 0) {
  2873. return res;
  2874. }
  2875. res = lfs_file_flushedwrite(lfs, file, &data, 1);
  2876. if (res < 0) {
  2877. return res;
  2878. }
  2879. // keep our reference to the rcache in sync
  2880. if (lfs->rcache.block != LFS_BLOCK_NULL) {
  2881. lfs_cache_drop(lfs, &orig.cache);
  2882. lfs_cache_drop(lfs, &lfs->rcache);
  2883. }
  2884. }
  2885. // write out what we have
  2886. while (true) {
  2887. int err = lfs_bd_flush(lfs, &file->cache, &lfs->rcache, true);
  2888. if (err) {
  2889. if (err == LFS_ERR_CORRUPT) {
  2890. goto relocate;
  2891. }
  2892. return err;
  2893. }
  2894. break;
  2895. relocate:
  2896. LFS_DEBUG("Bad block at 0x%"PRIx32, file->block);
  2897. err = lfs_file_relocate(lfs, file);
  2898. if (err) {
  2899. return err;
  2900. }
  2901. }
  2902. } else {
  2903. file->pos = lfs_max(file->pos, file->ctz.size);
  2904. }
  2905. // actual file updates
  2906. file->ctz.head = file->block;
  2907. file->ctz.size = file->pos;
  2908. file->flags &= ~LFS_F_WRITING;
  2909. file->flags |= LFS_F_DIRTY;
  2910. file->pos = pos;
  2911. }
  2912. #endif
  2913. return 0;
  2914. }
  2915. #ifndef LFS_READONLY
  2916. static int lfs_file_rawsync(lfs_t *lfs, lfs_file_t *file) {
  2917. if (file->flags & LFS_F_ERRED) {
  2918. // it's not safe to do anything if our file errored
  2919. return 0;
  2920. }
  2921. int err = lfs_file_flush(lfs, file);
  2922. if (err) {
  2923. file->flags |= LFS_F_ERRED;
  2924. return err;
  2925. }
  2926. if ((file->flags & LFS_F_DIRTY) &&
  2927. !lfs_pair_isnull(file->m.pair)) {
  2928. // update dir entry
  2929. uint16_t type;
  2930. const void *buffer;
  2931. lfs_size_t size;
  2932. struct lfs_ctz ctz;
  2933. if (file->flags & LFS_F_INLINE) {
  2934. // inline the whole file
  2935. type = LFS_TYPE_INLINESTRUCT;
  2936. buffer = file->cache.buffer;
  2937. size = file->ctz.size;
  2938. } else {
  2939. // update the ctz reference
  2940. type = LFS_TYPE_CTZSTRUCT;
  2941. // copy ctz so alloc will work during a relocate
  2942. ctz = file->ctz;
  2943. lfs_ctz_tole32(&ctz);
  2944. buffer = &ctz;
  2945. size = sizeof(ctz);
  2946. }
  2947. // commit file data and attributes
  2948. err = lfs_dir_commit(lfs, &file->m, LFS_MKATTRS(
  2949. {LFS_MKTAG(type, file->id, size), buffer},
  2950. {LFS_MKTAG(LFS_FROM_USERATTRS, file->id,
  2951. file->cfg->attr_count), file->cfg->attrs}));
  2952. if (err) {
  2953. file->flags |= LFS_F_ERRED;
  2954. return err;
  2955. }
  2956. file->flags &= ~LFS_F_DIRTY;
  2957. }
  2958. return 0;
  2959. }
  2960. #endif
  2961. static lfs_ssize_t lfs_file_flushedread(lfs_t *lfs, lfs_file_t *file,
  2962. void *buffer, lfs_size_t size) {
  2963. uint8_t *data = buffer;
  2964. lfs_size_t nsize = size;
  2965. if (file->pos >= file->ctz.size) {
  2966. // eof if past end
  2967. return 0;
  2968. }
  2969. size = lfs_min(size, file->ctz.size - file->pos);
  2970. nsize = size;
  2971. while (nsize > 0) {
  2972. // check if we need a new block
  2973. if (!(file->flags & LFS_F_READING) ||
  2974. file->off == lfs->cfg->block_size) {
  2975. if (!(file->flags & LFS_F_INLINE)) {
  2976. int err = lfs_ctz_find(lfs, NULL, &file->cache,
  2977. file->ctz.head, file->ctz.size,
  2978. file->pos, &file->block, &file->off);
  2979. if (err) {
  2980. return err;
  2981. }
  2982. } else {
  2983. file->block = LFS_BLOCK_INLINE;
  2984. file->off = file->pos;
  2985. }
  2986. file->flags |= LFS_F_READING;
  2987. }
  2988. // read as much as we can in current block
  2989. lfs_size_t diff = lfs_min(nsize, lfs->cfg->block_size - file->off);
  2990. if (file->flags & LFS_F_INLINE) {
  2991. int err = lfs_dir_getread(lfs, &file->m,
  2992. NULL, &file->cache, lfs->cfg->block_size,
  2993. LFS_MKTAG(0xfff, 0x1ff, 0),
  2994. LFS_MKTAG(LFS_TYPE_INLINESTRUCT, file->id, 0),
  2995. file->off, data, diff);
  2996. if (err) {
  2997. return err;
  2998. }
  2999. } else {
  3000. int err = lfs_bd_read(lfs,
  3001. NULL, &file->cache, lfs->cfg->block_size,
  3002. file->block, file->off, data, diff);
  3003. if (err) {
  3004. return err;
  3005. }
  3006. }
  3007. file->pos += diff;
  3008. file->off += diff;
  3009. data += diff;
  3010. nsize -= diff;
  3011. }
  3012. return size;
  3013. }
  3014. static lfs_ssize_t lfs_file_rawread(lfs_t *lfs, lfs_file_t *file,
  3015. void *buffer, lfs_size_t size) {
  3016. LFS_ASSERT((file->flags & LFS_O_RDONLY) == LFS_O_RDONLY);
  3017. #ifndef LFS_READONLY
  3018. if (file->flags & LFS_F_WRITING) {
  3019. // flush out any writes
  3020. int err = lfs_file_flush(lfs, file);
  3021. if (err) {
  3022. return err;
  3023. }
  3024. }
  3025. #endif
  3026. return lfs_file_flushedread(lfs, file, buffer, size);
  3027. }
  3028. #ifndef LFS_READONLY
  3029. static lfs_ssize_t lfs_file_flushedwrite(lfs_t *lfs, lfs_file_t *file,
  3030. const void *buffer, lfs_size_t size) {
  3031. const uint8_t *data = buffer;
  3032. lfs_size_t nsize = size;
  3033. if ((file->flags & LFS_F_INLINE) &&
  3034. lfs_max(file->pos+nsize, file->ctz.size) >
  3035. lfs_min(0x3fe, lfs_min(
  3036. lfs->cfg->cache_size,
  3037. (lfs->cfg->metadata_max ?
  3038. lfs->cfg->metadata_max : lfs->cfg->block_size) / 8))) {
  3039. // inline file doesn't fit anymore
  3040. int err = lfs_file_outline(lfs, file);
  3041. if (err) {
  3042. file->flags |= LFS_F_ERRED;
  3043. return err;
  3044. }
  3045. }
  3046. while (nsize > 0) {
  3047. // check if we need a new block
  3048. if (!(file->flags & LFS_F_WRITING) ||
  3049. file->off == lfs->cfg->block_size) {
  3050. if (!(file->flags & LFS_F_INLINE)) {
  3051. if (!(file->flags & LFS_F_WRITING) && file->pos > 0) {
  3052. // find out which block we're extending from
  3053. int err = lfs_ctz_find(lfs, NULL, &file->cache,
  3054. file->ctz.head, file->ctz.size,
  3055. file->pos-1, &file->block, &(lfs_off_t){0});
  3056. if (err) {
  3057. file->flags |= LFS_F_ERRED;
  3058. return err;
  3059. }
  3060. // mark cache as dirty since we may have read data into it
  3061. lfs_cache_zero(lfs, &file->cache);
  3062. }
  3063. // extend file with new blocks
  3064. lfs_alloc_ack(lfs);
  3065. int err = lfs_ctz_extend(lfs, &file->cache, &lfs->rcache,
  3066. file->block, file->pos,
  3067. &file->block, &file->off);
  3068. if (err) {
  3069. file->flags |= LFS_F_ERRED;
  3070. return err;
  3071. }
  3072. } else {
  3073. file->block = LFS_BLOCK_INLINE;
  3074. file->off = file->pos;
  3075. }
  3076. file->flags |= LFS_F_WRITING;
  3077. }
  3078. // program as much as we can in current block
  3079. lfs_size_t diff = lfs_min(nsize, lfs->cfg->block_size - file->off);
  3080. while (true) {
  3081. int err = lfs_bd_prog(lfs, &file->cache, &lfs->rcache, true,
  3082. file->block, file->off, data, diff);
  3083. if (err) {
  3084. if (err == LFS_ERR_CORRUPT) {
  3085. goto relocate;
  3086. }
  3087. file->flags |= LFS_F_ERRED;
  3088. return err;
  3089. }
  3090. break;
  3091. relocate:
  3092. err = lfs_file_relocate(lfs, file);
  3093. if (err) {
  3094. file->flags |= LFS_F_ERRED;
  3095. return err;
  3096. }
  3097. }
  3098. file->pos += diff;
  3099. file->off += diff;
  3100. data += diff;
  3101. nsize -= diff;
  3102. lfs_alloc_ack(lfs);
  3103. }
  3104. return size;
  3105. }
  3106. static lfs_ssize_t lfs_file_rawwrite(lfs_t *lfs, lfs_file_t *file,
  3107. const void *buffer, lfs_size_t size) {
  3108. LFS_ASSERT((file->flags & LFS_O_WRONLY) == LFS_O_WRONLY);
  3109. if (file->flags & LFS_F_READING) {
  3110. // drop any reads
  3111. int err = lfs_file_flush(lfs, file);
  3112. if (err) {
  3113. return err;
  3114. }
  3115. }
  3116. if ((file->flags & LFS_O_APPEND) && file->pos < file->ctz.size) {
  3117. file->pos = file->ctz.size;
  3118. }
  3119. if (file->pos + size > lfs->file_max) {
  3120. // Larger than file limit?
  3121. return LFS_ERR_FBIG;
  3122. }
  3123. if (!(file->flags & LFS_F_WRITING) && file->pos > file->ctz.size) {
  3124. // fill with zeros
  3125. lfs_off_t pos = file->pos;
  3126. file->pos = file->ctz.size;
  3127. while (file->pos < pos) {
  3128. lfs_ssize_t res = lfs_file_flushedwrite(lfs, file, &(uint8_t){0}, 1);
  3129. if (res < 0) {
  3130. return res;
  3131. }
  3132. }
  3133. }
  3134. lfs_ssize_t nsize = lfs_file_flushedwrite(lfs, file, buffer, size);
  3135. if (nsize < 0) {
  3136. return nsize;
  3137. }
  3138. file->flags &= ~LFS_F_ERRED;
  3139. return nsize;
  3140. }
  3141. #endif
  3142. static lfs_soff_t lfs_file_rawseek(lfs_t *lfs, lfs_file_t *file,
  3143. lfs_soff_t off, int whence) {
  3144. // find new pos
  3145. lfs_off_t npos = file->pos;
  3146. if (whence == LFS_SEEK_SET) {
  3147. npos = off;
  3148. } else if (whence == LFS_SEEK_CUR) {
  3149. if ((lfs_soff_t)file->pos + off < 0) {
  3150. return LFS_ERR_INVAL;
  3151. } else {
  3152. npos = file->pos + off;
  3153. }
  3154. } else if (whence == LFS_SEEK_END) {
  3155. lfs_soff_t res = lfs_file_rawsize(lfs, file) + off;
  3156. if (res < 0) {
  3157. return LFS_ERR_INVAL;
  3158. } else {
  3159. npos = res;
  3160. }
  3161. }
  3162. if (npos > lfs->file_max) {
  3163. // file position out of range
  3164. return LFS_ERR_INVAL;
  3165. }
  3166. if (file->pos == npos) {
  3167. // noop - position has not changed
  3168. return npos;
  3169. }
  3170. // if we're only reading and our new offset is still in the file's cache
  3171. // we can avoid flushing and needing to reread the data
  3172. if (
  3173. #ifndef LFS_READONLY
  3174. !(file->flags & LFS_F_WRITING)
  3175. #else
  3176. true
  3177. #endif
  3178. ) {
  3179. int oindex = lfs_ctz_index(lfs, &(lfs_off_t){file->pos});
  3180. lfs_off_t noff = npos;
  3181. int nindex = lfs_ctz_index(lfs, &noff);
  3182. if (oindex == nindex
  3183. && noff >= file->cache.off
  3184. && noff < file->cache.off + file->cache.size) {
  3185. file->pos = npos;
  3186. file->off = noff;
  3187. return npos;
  3188. }
  3189. }
  3190. // write out everything beforehand, may be noop if rdonly
  3191. int err = lfs_file_flush(lfs, file);
  3192. if (err) {
  3193. return err;
  3194. }
  3195. // update pos
  3196. file->pos = npos;
  3197. return npos;
  3198. }
  3199. #ifndef LFS_READONLY
  3200. static int lfs_file_rawtruncate(lfs_t *lfs, lfs_file_t *file, lfs_off_t size) {
  3201. LFS_ASSERT((file->flags & LFS_O_WRONLY) == LFS_O_WRONLY);
  3202. if (size > LFS_FILE_MAX) {
  3203. return LFS_ERR_INVAL;
  3204. }
  3205. lfs_off_t pos = file->pos;
  3206. lfs_off_t oldsize = lfs_file_rawsize(lfs, file);
  3207. if (size < oldsize) {
  3208. // revert to inline file?
  3209. if (size <= lfs_min(0x3fe, lfs_min(
  3210. lfs->cfg->cache_size,
  3211. (lfs->cfg->metadata_max ?
  3212. lfs->cfg->metadata_max : lfs->cfg->block_size) / 8))) {
  3213. // flush+seek to head
  3214. lfs_soff_t res = lfs_file_rawseek(lfs, file, 0, LFS_SEEK_SET);
  3215. if (res < 0) {
  3216. return (int)res;
  3217. }
  3218. // read our data into rcache temporarily
  3219. lfs_cache_drop(lfs, &lfs->rcache);
  3220. res = lfs_file_flushedread(lfs, file,
  3221. lfs->rcache.buffer, size);
  3222. if (res < 0) {
  3223. return (int)res;
  3224. }
  3225. file->ctz.head = LFS_BLOCK_INLINE;
  3226. file->ctz.size = size;
  3227. file->flags |= LFS_F_DIRTY | LFS_F_READING | LFS_F_INLINE;
  3228. file->cache.block = file->ctz.head;
  3229. file->cache.off = 0;
  3230. file->cache.size = lfs->cfg->cache_size;
  3231. memcpy(file->cache.buffer, lfs->rcache.buffer, size);
  3232. } else {
  3233. // need to flush since directly changing metadata
  3234. int err = lfs_file_flush(lfs, file);
  3235. if (err) {
  3236. return err;
  3237. }
  3238. // lookup new head in ctz skip list
  3239. err = lfs_ctz_find(lfs, NULL, &file->cache,
  3240. file->ctz.head, file->ctz.size,
  3241. size-1, &file->block, &(lfs_off_t){0});
  3242. if (err) {
  3243. return err;
  3244. }
  3245. // need to set pos/block/off consistently so seeking back to
  3246. // the old position does not get confused
  3247. file->pos = size;
  3248. file->ctz.head = file->block;
  3249. file->ctz.size = size;
  3250. file->flags |= LFS_F_DIRTY | LFS_F_READING;
  3251. }
  3252. } else if (size > oldsize) {
  3253. // flush+seek if not already at end
  3254. lfs_soff_t res = lfs_file_rawseek(lfs, file, 0, LFS_SEEK_END);
  3255. if (res < 0) {
  3256. return (int)res;
  3257. }
  3258. // fill with zeros
  3259. while (file->pos < size) {
  3260. res = lfs_file_rawwrite(lfs, file, &(uint8_t){0}, 1);
  3261. if (res < 0) {
  3262. return (int)res;
  3263. }
  3264. }
  3265. }
  3266. // restore pos
  3267. lfs_soff_t res = lfs_file_rawseek(lfs, file, pos, LFS_SEEK_SET);
  3268. if (res < 0) {
  3269. return (int)res;
  3270. }
  3271. return 0;
  3272. }
  3273. #endif
  3274. static lfs_soff_t lfs_file_rawtell(lfs_t *lfs, lfs_file_t *file) {
  3275. (void)lfs;
  3276. return file->pos;
  3277. }
  3278. static int lfs_file_rawrewind(lfs_t *lfs, lfs_file_t *file) {
  3279. lfs_soff_t res = lfs_file_rawseek(lfs, file, 0, LFS_SEEK_SET);
  3280. if (res < 0) {
  3281. return (int)res;
  3282. }
  3283. return 0;
  3284. }
  3285. static lfs_soff_t lfs_file_rawsize(lfs_t *lfs, lfs_file_t *file) {
  3286. (void)lfs;
  3287. #ifndef LFS_READONLY
  3288. if (file->flags & LFS_F_WRITING) {
  3289. return lfs_max(file->pos, file->ctz.size);
  3290. }
  3291. #endif
  3292. return file->ctz.size;
  3293. }
  3294. /// General fs operations ///
  3295. static int lfs_rawstat(lfs_t *lfs, const char *path, struct lfs_info *info) {
  3296. lfs_mdir_t cwd;
  3297. lfs_stag_t tag = lfs_dir_find(lfs, &cwd, &path, NULL);
  3298. if (tag < 0) {
  3299. return (int)tag;
  3300. }
  3301. return lfs_dir_getinfo(lfs, &cwd, lfs_tag_id(tag), info);
  3302. }
  3303. #ifndef LFS_READONLY
  3304. static int lfs_rawremove(lfs_t *lfs, const char *path) {
  3305. // deorphan if we haven't yet, needed at most once after poweron
  3306. int err = lfs_fs_forceconsistency(lfs);
  3307. if (err) {
  3308. return err;
  3309. }
  3310. lfs_mdir_t cwd;
  3311. lfs_stag_t tag = lfs_dir_find(lfs, &cwd, &path, NULL);
  3312. if (tag < 0 || lfs_tag_id(tag) == 0x3ff) {
  3313. return (tag < 0) ? (int)tag : LFS_ERR_INVAL;
  3314. }
  3315. struct lfs_mlist dir;
  3316. dir.next = lfs->mlist;
  3317. if (lfs_tag_type3(tag) == LFS_TYPE_DIR) {
  3318. // must be empty before removal
  3319. lfs_block_t pair[2];
  3320. lfs_stag_t res = lfs_dir_get(lfs, &cwd, LFS_MKTAG(0x700, 0x3ff, 0),
  3321. LFS_MKTAG(LFS_TYPE_STRUCT, lfs_tag_id(tag), 8), pair);
  3322. if (res < 0) {
  3323. return (int)res;
  3324. }
  3325. lfs_pair_fromle32(pair);
  3326. err = lfs_dir_fetch(lfs, &dir.m, pair);
  3327. if (err) {
  3328. return err;
  3329. }
  3330. if (dir.m.count > 0 || dir.m.split) {
  3331. return LFS_ERR_NOTEMPTY;
  3332. }
  3333. // mark fs as orphaned
  3334. err = lfs_fs_preporphans(lfs, +1);
  3335. if (err) {
  3336. return err;
  3337. }
  3338. // I know it's crazy but yes, dir can be changed by our parent's
  3339. // commit (if predecessor is child)
  3340. dir.type = 0;
  3341. dir.id = 0;
  3342. lfs->mlist = &dir;
  3343. }
  3344. // delete the entry
  3345. err = lfs_dir_commit(lfs, &cwd, LFS_MKATTRS(
  3346. {LFS_MKTAG(LFS_TYPE_DELETE, lfs_tag_id(tag), 0), NULL}));
  3347. if (err) {
  3348. lfs->mlist = dir.next;
  3349. return err;
  3350. }
  3351. lfs->mlist = dir.next;
  3352. if (lfs_tag_type3(tag) == LFS_TYPE_DIR) {
  3353. // fix orphan
  3354. err = lfs_fs_preporphans(lfs, -1);
  3355. if (err) {
  3356. return err;
  3357. }
  3358. err = lfs_fs_pred(lfs, dir.m.pair, &cwd);
  3359. if (err) {
  3360. return err;
  3361. }
  3362. err = lfs_dir_drop(lfs, &cwd, &dir.m);
  3363. if (err) {
  3364. return err;
  3365. }
  3366. }
  3367. return 0;
  3368. }
  3369. #endif
  3370. #ifndef LFS_READONLY
  3371. static int lfs_rawrename(lfs_t *lfs, const char *oldpath, const char *newpath) {
  3372. // deorphan if we haven't yet, needed at most once after poweron
  3373. int err = lfs_fs_forceconsistency(lfs);
  3374. if (err) {
  3375. return err;
  3376. }
  3377. // find old entry
  3378. lfs_mdir_t oldcwd;
  3379. lfs_stag_t oldtag = lfs_dir_find(lfs, &oldcwd, &oldpath, NULL);
  3380. if (oldtag < 0 || lfs_tag_id(oldtag) == 0x3ff) {
  3381. return (oldtag < 0) ? (int)oldtag : LFS_ERR_INVAL;
  3382. }
  3383. // find new entry
  3384. lfs_mdir_t newcwd;
  3385. uint16_t newid;
  3386. lfs_stag_t prevtag = lfs_dir_find(lfs, &newcwd, &newpath, &newid);
  3387. if ((prevtag < 0 || lfs_tag_id(prevtag) == 0x3ff) &&
  3388. !(prevtag == LFS_ERR_NOENT && newid != 0x3ff)) {
  3389. return (prevtag < 0) ? (int)prevtag : LFS_ERR_INVAL;
  3390. }
  3391. // if we're in the same pair there's a few special cases...
  3392. bool samepair = (lfs_pair_cmp(oldcwd.pair, newcwd.pair) == 0);
  3393. uint16_t newoldid = lfs_tag_id(oldtag);
  3394. struct lfs_mlist prevdir;
  3395. prevdir.next = lfs->mlist;
  3396. if (prevtag == LFS_ERR_NOENT) {
  3397. // check that name fits
  3398. lfs_size_t nlen = strlen(newpath);
  3399. if (nlen > lfs->name_max) {
  3400. return LFS_ERR_NAMETOOLONG;
  3401. }
  3402. // there is a small chance we are being renamed in the same
  3403. // directory/ to an id less than our old id, the global update
  3404. // to handle this is a bit messy
  3405. if (samepair && newid <= newoldid) {
  3406. newoldid += 1;
  3407. }
  3408. } else if (lfs_tag_type3(prevtag) != lfs_tag_type3(oldtag)) {
  3409. return LFS_ERR_ISDIR;
  3410. } else if (samepair && newid == newoldid) {
  3411. // we're renaming to ourselves??
  3412. return 0;
  3413. } else if (lfs_tag_type3(prevtag) == LFS_TYPE_DIR) {
  3414. // must be empty before removal
  3415. lfs_block_t prevpair[2];
  3416. lfs_stag_t res = lfs_dir_get(lfs, &newcwd, LFS_MKTAG(0x700, 0x3ff, 0),
  3417. LFS_MKTAG(LFS_TYPE_STRUCT, newid, 8), prevpair);
  3418. if (res < 0) {
  3419. return (int)res;
  3420. }
  3421. lfs_pair_fromle32(prevpair);
  3422. // must be empty before removal
  3423. err = lfs_dir_fetch(lfs, &prevdir.m, prevpair);
  3424. if (err) {
  3425. return err;
  3426. }
  3427. if (prevdir.m.count > 0 || prevdir.m.split) {
  3428. return LFS_ERR_NOTEMPTY;
  3429. }
  3430. // mark fs as orphaned
  3431. err = lfs_fs_preporphans(lfs, +1);
  3432. if (err) {
  3433. return err;
  3434. }
  3435. // I know it's crazy but yes, dir can be changed by our parent's
  3436. // commit (if predecessor is child)
  3437. prevdir.type = 0;
  3438. prevdir.id = 0;
  3439. lfs->mlist = &prevdir;
  3440. }
  3441. if (!samepair) {
  3442. lfs_fs_prepmove(lfs, newoldid, oldcwd.pair);
  3443. }
  3444. // move over all attributes
  3445. err = lfs_dir_commit(lfs, &newcwd, LFS_MKATTRS(
  3446. {LFS_MKTAG_IF(prevtag != LFS_ERR_NOENT,
  3447. LFS_TYPE_DELETE, newid, 0), NULL},
  3448. {LFS_MKTAG(LFS_TYPE_CREATE, newid, 0), NULL},
  3449. {LFS_MKTAG(lfs_tag_type3(oldtag), newid, strlen(newpath)), newpath},
  3450. {LFS_MKTAG(LFS_FROM_MOVE, newid, lfs_tag_id(oldtag)), &oldcwd},
  3451. {LFS_MKTAG_IF(samepair,
  3452. LFS_TYPE_DELETE, newoldid, 0), NULL}));
  3453. if (err) {
  3454. lfs->mlist = prevdir.next;
  3455. return err;
  3456. }
  3457. // let commit clean up after move (if we're different! otherwise move
  3458. // logic already fixed it for us)
  3459. if (!samepair && lfs_gstate_hasmove(&lfs->gstate)) {
  3460. // prep gstate and delete move id
  3461. lfs_fs_prepmove(lfs, 0x3ff, NULL);
  3462. err = lfs_dir_commit(lfs, &oldcwd, LFS_MKATTRS(
  3463. {LFS_MKTAG(LFS_TYPE_DELETE, lfs_tag_id(oldtag), 0), NULL}));
  3464. if (err) {
  3465. lfs->mlist = prevdir.next;
  3466. return err;
  3467. }
  3468. }
  3469. lfs->mlist = prevdir.next;
  3470. if (prevtag != LFS_ERR_NOENT
  3471. && lfs_tag_type3(prevtag) == LFS_TYPE_DIR) {
  3472. // fix orphan
  3473. err = lfs_fs_preporphans(lfs, -1);
  3474. if (err) {
  3475. return err;
  3476. }
  3477. err = lfs_fs_pred(lfs, prevdir.m.pair, &newcwd);
  3478. if (err) {
  3479. return err;
  3480. }
  3481. err = lfs_dir_drop(lfs, &newcwd, &prevdir.m);
  3482. if (err) {
  3483. return err;
  3484. }
  3485. }
  3486. return 0;
  3487. }
  3488. #endif
  3489. static lfs_ssize_t lfs_rawgetattr(lfs_t *lfs, const char *path,
  3490. uint8_t type, void *buffer, lfs_size_t size) {
  3491. lfs_mdir_t cwd;
  3492. lfs_stag_t tag = lfs_dir_find(lfs, &cwd, &path, NULL);
  3493. if (tag < 0) {
  3494. return tag;
  3495. }
  3496. uint16_t id = lfs_tag_id(tag);
  3497. if (id == 0x3ff) {
  3498. // special case for root
  3499. id = 0;
  3500. int err = lfs_dir_fetch(lfs, &cwd, lfs->root);
  3501. if (err) {
  3502. return err;
  3503. }
  3504. }
  3505. tag = lfs_dir_get(lfs, &cwd, LFS_MKTAG(0x7ff, 0x3ff, 0),
  3506. LFS_MKTAG(LFS_TYPE_USERATTR + type,
  3507. id, lfs_min(size, lfs->attr_max)),
  3508. buffer);
  3509. if (tag < 0) {
  3510. if (tag == LFS_ERR_NOENT) {
  3511. return LFS_ERR_NOATTR;
  3512. }
  3513. return tag;
  3514. }
  3515. return lfs_tag_size(tag);
  3516. }
  3517. #ifndef LFS_READONLY
  3518. static int lfs_commitattr(lfs_t *lfs, const char *path,
  3519. uint8_t type, const void *buffer, lfs_size_t size) {
  3520. lfs_mdir_t cwd;
  3521. lfs_stag_t tag = lfs_dir_find(lfs, &cwd, &path, NULL);
  3522. if (tag < 0) {
  3523. return tag;
  3524. }
  3525. uint16_t id = lfs_tag_id(tag);
  3526. if (id == 0x3ff) {
  3527. // special case for root
  3528. id = 0;
  3529. int err = lfs_dir_fetch(lfs, &cwd, lfs->root);
  3530. if (err) {
  3531. return err;
  3532. }
  3533. }
  3534. return lfs_dir_commit(lfs, &cwd, LFS_MKATTRS(
  3535. {LFS_MKTAG(LFS_TYPE_USERATTR + type, id, size), buffer}));
  3536. }
  3537. #endif
  3538. #ifndef LFS_READONLY
  3539. static int lfs_rawsetattr(lfs_t *lfs, const char *path,
  3540. uint8_t type, const void *buffer, lfs_size_t size) {
  3541. if (size > lfs->attr_max) {
  3542. return LFS_ERR_NOSPC;
  3543. }
  3544. return lfs_commitattr(lfs, path, type, buffer, size);
  3545. }
  3546. #endif
  3547. #ifndef LFS_READONLY
  3548. static int lfs_rawremoveattr(lfs_t *lfs, const char *path, uint8_t type) {
  3549. return lfs_commitattr(lfs, path, type, NULL, 0x3ff);
  3550. }
  3551. #endif
  3552. /// Filesystem operations ///
  3553. static int lfs_init(lfs_t *lfs, const struct lfs_config *cfg) {
  3554. lfs->cfg = cfg;
  3555. lfs->block_count = cfg->block_count; // May be 0
  3556. int err = 0;
  3557. #ifdef LFS_MULTIVERSION
  3558. // this driver only supports minor version < current minor version
  3559. LFS_ASSERT(!lfs->cfg->disk_version || (
  3560. (0xffff & (lfs->cfg->disk_version >> 16))
  3561. == LFS_DISK_VERSION_MAJOR
  3562. && (0xffff & (lfs->cfg->disk_version >> 0))
  3563. <= LFS_DISK_VERSION_MINOR));
  3564. #endif
  3565. // check that bool is a truthy-preserving type
  3566. //
  3567. // note the most common reason for this failure is a before-c99 compiler,
  3568. // which littlefs currently does not support
  3569. LFS_ASSERT((bool)0x80000000);
  3570. // validate that the lfs-cfg sizes were initiated properly before
  3571. // performing any arithmetic logics with them
  3572. LFS_ASSERT(lfs->cfg->read_size != 0);
  3573. LFS_ASSERT(lfs->cfg->prog_size != 0);
  3574. LFS_ASSERT(lfs->cfg->cache_size != 0);
  3575. // check that block size is a multiple of cache size is a multiple
  3576. // of prog and read sizes
  3577. LFS_ASSERT(lfs->cfg->cache_size % lfs->cfg->read_size == 0);
  3578. LFS_ASSERT(lfs->cfg->cache_size % lfs->cfg->prog_size == 0);
  3579. LFS_ASSERT(lfs->cfg->block_size % lfs->cfg->cache_size == 0);
  3580. // check that the block size is large enough to fit all ctz pointers
  3581. LFS_ASSERT(lfs->cfg->block_size >= 128);
  3582. // this is the exact calculation for all ctz pointers, if this fails
  3583. // and the simpler assert above does not, math must be broken
  3584. LFS_ASSERT(4*lfs_npw2(0xffffffff / (lfs->cfg->block_size-2*4))
  3585. <= lfs->cfg->block_size);
  3586. // block_cycles = 0 is no longer supported.
  3587. //
  3588. // block_cycles is the number of erase cycles before littlefs evicts
  3589. // metadata logs as a part of wear leveling. Suggested values are in the
  3590. // range of 100-1000, or set block_cycles to -1 to disable block-level
  3591. // wear-leveling.
  3592. LFS_ASSERT(lfs->cfg->block_cycles != 0);
  3593. // setup read cache
  3594. if (lfs->cfg->read_buffer) {
  3595. lfs->rcache.buffer = lfs->cfg->read_buffer;
  3596. } else {
  3597. lfs->rcache.buffer = lfs_malloc(lfs->cfg->cache_size);
  3598. if (!lfs->rcache.buffer) {
  3599. err = LFS_ERR_NOMEM;
  3600. goto cleanup;
  3601. }
  3602. }
  3603. // setup program cache
  3604. if (lfs->cfg->prog_buffer) {
  3605. lfs->pcache.buffer = lfs->cfg->prog_buffer;
  3606. } else {
  3607. lfs->pcache.buffer = lfs_malloc(lfs->cfg->cache_size);
  3608. if (!lfs->pcache.buffer) {
  3609. err = LFS_ERR_NOMEM;
  3610. goto cleanup;
  3611. }
  3612. }
  3613. // zero to avoid information leaks
  3614. lfs_cache_zero(lfs, &lfs->rcache);
  3615. lfs_cache_zero(lfs, &lfs->pcache);
  3616. // setup lookahead, must be multiple of 64-bits, 32-bit aligned
  3617. LFS_ASSERT(lfs->cfg->lookahead_size > 0);
  3618. LFS_ASSERT(lfs->cfg->lookahead_size % 8 == 0 &&
  3619. (uintptr_t)lfs->cfg->lookahead_buffer % 4 == 0);
  3620. if (lfs->cfg->lookahead_buffer) {
  3621. lfs->free.buffer = lfs->cfg->lookahead_buffer;
  3622. } else {
  3623. lfs->free.buffer = lfs_malloc(lfs->cfg->lookahead_size);
  3624. if (!lfs->free.buffer) {
  3625. err = LFS_ERR_NOMEM;
  3626. goto cleanup;
  3627. }
  3628. }
  3629. // check that the size limits are sane
  3630. LFS_ASSERT(lfs->cfg->name_max <= LFS_NAME_MAX);
  3631. lfs->name_max = lfs->cfg->name_max;
  3632. if (!lfs->name_max) {
  3633. lfs->name_max = LFS_NAME_MAX;
  3634. }
  3635. LFS_ASSERT(lfs->cfg->file_max <= LFS_FILE_MAX);
  3636. lfs->file_max = lfs->cfg->file_max;
  3637. if (!lfs->file_max) {
  3638. lfs->file_max = LFS_FILE_MAX;
  3639. }
  3640. LFS_ASSERT(lfs->cfg->attr_max <= LFS_ATTR_MAX);
  3641. lfs->attr_max = lfs->cfg->attr_max;
  3642. if (!lfs->attr_max) {
  3643. lfs->attr_max = LFS_ATTR_MAX;
  3644. }
  3645. LFS_ASSERT(lfs->cfg->metadata_max <= lfs->cfg->block_size);
  3646. // setup default state
  3647. lfs->root[0] = LFS_BLOCK_NULL;
  3648. lfs->root[1] = LFS_BLOCK_NULL;
  3649. lfs->mlist = NULL;
  3650. lfs->seed = 0;
  3651. lfs->gdisk = (lfs_gstate_t){0};
  3652. lfs->gstate = (lfs_gstate_t){0};
  3653. lfs->gdelta = (lfs_gstate_t){0};
  3654. #ifdef LFS_MIGRATE
  3655. lfs->lfs1 = NULL;
  3656. #endif
  3657. return 0;
  3658. cleanup:
  3659. lfs_deinit(lfs);
  3660. return err;
  3661. }
  3662. static int lfs_deinit(lfs_t *lfs) {
  3663. // free allocated memory
  3664. if (!lfs->cfg->read_buffer) {
  3665. lfs_free(lfs->rcache.buffer);
  3666. }
  3667. if (!lfs->cfg->prog_buffer) {
  3668. lfs_free(lfs->pcache.buffer);
  3669. }
  3670. if (!lfs->cfg->lookahead_buffer) {
  3671. lfs_free(lfs->free.buffer);
  3672. }
  3673. return 0;
  3674. }
  3675. #ifndef LFS_READONLY
  3676. static int lfs_rawformat(lfs_t *lfs, const struct lfs_config *cfg) {
  3677. int err = 0;
  3678. {
  3679. err = lfs_init(lfs, cfg);
  3680. if (err) {
  3681. return err;
  3682. }
  3683. LFS_ASSERT(cfg->block_count != 0);
  3684. // create free lookahead
  3685. memset(lfs->free.buffer, 0, lfs->cfg->lookahead_size);
  3686. lfs->free.off = 0;
  3687. lfs->free.size = lfs_min(8*lfs->cfg->lookahead_size,
  3688. lfs->block_count);
  3689. lfs->free.i = 0;
  3690. lfs_alloc_ack(lfs);
  3691. // create root dir
  3692. lfs_mdir_t root;
  3693. err = lfs_dir_alloc(lfs, &root);
  3694. if (err) {
  3695. goto cleanup;
  3696. }
  3697. // write one superblock
  3698. lfs_superblock_t superblock = {
  3699. .version = lfs_fs_disk_version(lfs),
  3700. .block_size = lfs->cfg->block_size,
  3701. .block_count = lfs->block_count,
  3702. .name_max = lfs->name_max,
  3703. .file_max = lfs->file_max,
  3704. .attr_max = lfs->attr_max,
  3705. };
  3706. lfs_superblock_tole32(&superblock);
  3707. err = lfs_dir_commit(lfs, &root, LFS_MKATTRS(
  3708. {LFS_MKTAG(LFS_TYPE_CREATE, 0, 0), NULL},
  3709. {LFS_MKTAG(LFS_TYPE_SUPERBLOCK, 0, 8), "littlefs"},
  3710. {LFS_MKTAG(LFS_TYPE_INLINESTRUCT, 0, sizeof(superblock)),
  3711. &superblock}));
  3712. if (err) {
  3713. goto cleanup;
  3714. }
  3715. // force compaction to prevent accidentally mounting any
  3716. // older version of littlefs that may live on disk
  3717. root.erased = false;
  3718. err = lfs_dir_commit(lfs, &root, NULL, 0);
  3719. if (err) {
  3720. goto cleanup;
  3721. }
  3722. // sanity check that fetch works
  3723. err = lfs_dir_fetch(lfs, &root, (const lfs_block_t[2]){0, 1});
  3724. if (err) {
  3725. goto cleanup;
  3726. }
  3727. }
  3728. cleanup:
  3729. lfs_deinit(lfs);
  3730. return err;
  3731. }
  3732. #endif
  3733. static int lfs_rawmount(lfs_t *lfs, const struct lfs_config *cfg) {
  3734. int err = lfs_init(lfs, cfg);
  3735. if (err) {
  3736. return err;
  3737. }
  3738. // scan directory blocks for superblock and any global updates
  3739. lfs_mdir_t dir = {.tail = {0, 1}};
  3740. lfs_block_t tortoise[2] = {LFS_BLOCK_NULL, LFS_BLOCK_NULL};
  3741. lfs_size_t tortoise_i = 1;
  3742. lfs_size_t tortoise_period = 1;
  3743. while (!lfs_pair_isnull(dir.tail)) {
  3744. // detect cycles with Brent's algorithm
  3745. if (lfs_pair_issync(dir.tail, tortoise)) {
  3746. LFS_WARN("Cycle detected in tail list");
  3747. err = LFS_ERR_CORRUPT;
  3748. goto cleanup;
  3749. }
  3750. if (tortoise_i == tortoise_period) {
  3751. tortoise[0] = dir.tail[0];
  3752. tortoise[1] = dir.tail[1];
  3753. tortoise_i = 0;
  3754. tortoise_period *= 2;
  3755. }
  3756. tortoise_i += 1;
  3757. // fetch next block in tail list
  3758. lfs_stag_t tag = lfs_dir_fetchmatch(lfs, &dir, dir.tail,
  3759. LFS_MKTAG(0x7ff, 0x3ff, 0),
  3760. LFS_MKTAG(LFS_TYPE_SUPERBLOCK, 0, 8),
  3761. NULL,
  3762. lfs_dir_find_match, &(struct lfs_dir_find_match){
  3763. lfs, "littlefs", 8});
  3764. if (tag < 0) {
  3765. err = tag;
  3766. goto cleanup;
  3767. }
  3768. // has superblock?
  3769. if (tag && !lfs_tag_isdelete(tag)) {
  3770. // update root
  3771. lfs->root[0] = dir.pair[0];
  3772. lfs->root[1] = dir.pair[1];
  3773. // grab superblock
  3774. lfs_superblock_t superblock;
  3775. tag = lfs_dir_get(lfs, &dir, LFS_MKTAG(0x7ff, 0x3ff, 0),
  3776. LFS_MKTAG(LFS_TYPE_INLINESTRUCT, 0, sizeof(superblock)),
  3777. &superblock);
  3778. if (tag < 0) {
  3779. err = tag;
  3780. goto cleanup;
  3781. }
  3782. lfs_superblock_fromle32(&superblock);
  3783. // check version
  3784. uint16_t major_version = (0xffff & (superblock.version >> 16));
  3785. uint16_t minor_version = (0xffff & (superblock.version >> 0));
  3786. if (major_version != lfs_fs_disk_version_major(lfs)
  3787. || minor_version > lfs_fs_disk_version_minor(lfs)) {
  3788. LFS_ERROR("Invalid version "
  3789. "v%"PRIu16".%"PRIu16" != v%"PRIu16".%"PRIu16,
  3790. major_version,
  3791. minor_version,
  3792. lfs_fs_disk_version_major(lfs),
  3793. lfs_fs_disk_version_minor(lfs));
  3794. err = LFS_ERR_INVAL;
  3795. goto cleanup;
  3796. }
  3797. // found older minor version? set an in-device only bit in the
  3798. // gstate so we know we need to rewrite the superblock before
  3799. // the first write
  3800. if (minor_version < lfs_fs_disk_version_minor(lfs)) {
  3801. LFS_DEBUG("Found older minor version "
  3802. "v%"PRIu16".%"PRIu16" < v%"PRIu16".%"PRIu16,
  3803. major_version,
  3804. minor_version,
  3805. lfs_fs_disk_version_major(lfs),
  3806. lfs_fs_disk_version_minor(lfs));
  3807. // note this bit is reserved on disk, so fetching more gstate
  3808. // will not interfere here
  3809. lfs_fs_prepsuperblock(lfs, true);
  3810. }
  3811. // check superblock configuration
  3812. if (superblock.name_max) {
  3813. if (superblock.name_max > lfs->name_max) {
  3814. LFS_ERROR("Unsupported name_max (%"PRIu32" > %"PRIu32")",
  3815. superblock.name_max, lfs->name_max);
  3816. err = LFS_ERR_INVAL;
  3817. goto cleanup;
  3818. }
  3819. lfs->name_max = superblock.name_max;
  3820. }
  3821. if (superblock.file_max) {
  3822. if (superblock.file_max > lfs->file_max) {
  3823. LFS_ERROR("Unsupported file_max (%"PRIu32" > %"PRIu32")",
  3824. superblock.file_max, lfs->file_max);
  3825. err = LFS_ERR_INVAL;
  3826. goto cleanup;
  3827. }
  3828. lfs->file_max = superblock.file_max;
  3829. }
  3830. if (superblock.attr_max) {
  3831. if (superblock.attr_max > lfs->attr_max) {
  3832. LFS_ERROR("Unsupported attr_max (%"PRIu32" > %"PRIu32")",
  3833. superblock.attr_max, lfs->attr_max);
  3834. err = LFS_ERR_INVAL;
  3835. goto cleanup;
  3836. }
  3837. lfs->attr_max = superblock.attr_max;
  3838. }
  3839. // this is where we get the block_count from disk if block_count=0
  3840. if (lfs->cfg->block_count
  3841. && superblock.block_count != lfs->cfg->block_count) {
  3842. LFS_ERROR("Invalid block count (%"PRIu32" != %"PRIu32")",
  3843. superblock.block_count, lfs->cfg->block_count);
  3844. err = LFS_ERR_INVAL;
  3845. goto cleanup;
  3846. }
  3847. lfs->block_count = superblock.block_count;
  3848. if (superblock.block_size != lfs->cfg->block_size) {
  3849. LFS_ERROR("Invalid block size (%"PRIu32" != %"PRIu32")",
  3850. superblock.block_size, lfs->cfg->block_size);
  3851. err = LFS_ERR_INVAL;
  3852. goto cleanup;
  3853. }
  3854. }
  3855. // has gstate?
  3856. err = lfs_dir_getgstate(lfs, &dir, &lfs->gstate);
  3857. if (err) {
  3858. goto cleanup;
  3859. }
  3860. }
  3861. // update littlefs with gstate
  3862. if (!lfs_gstate_iszero(&lfs->gstate)) {
  3863. LFS_DEBUG("Found pending gstate 0x%08"PRIx32"%08"PRIx32"%08"PRIx32,
  3864. lfs->gstate.tag,
  3865. lfs->gstate.pair[0],
  3866. lfs->gstate.pair[1]);
  3867. }
  3868. lfs->gstate.tag += !lfs_tag_isvalid(lfs->gstate.tag);
  3869. lfs->gdisk = lfs->gstate;
  3870. // setup free lookahead, to distribute allocations uniformly across
  3871. // boots, we start the allocator at a random location
  3872. lfs->free.off = lfs->seed % lfs->block_count;
  3873. lfs_alloc_drop(lfs);
  3874. return 0;
  3875. cleanup:
  3876. lfs_rawunmount(lfs);
  3877. return err;
  3878. }
  3879. static int lfs_rawunmount(lfs_t *lfs) {
  3880. return lfs_deinit(lfs);
  3881. }
  3882. /// Filesystem filesystem operations ///
  3883. static int lfs_fs_rawstat(lfs_t *lfs, struct lfs_fsinfo *fsinfo) {
  3884. // if the superblock is up-to-date, we must be on the most recent
  3885. // minor version of littlefs
  3886. if (!lfs_gstate_needssuperblock(&lfs->gstate)) {
  3887. fsinfo->disk_version = lfs_fs_disk_version(lfs);
  3888. // otherwise we need to read the minor version on disk
  3889. } else {
  3890. // fetch the superblock
  3891. lfs_mdir_t dir;
  3892. int err = lfs_dir_fetch(lfs, &dir, lfs->root);
  3893. if (err) {
  3894. return err;
  3895. }
  3896. lfs_superblock_t superblock;
  3897. lfs_stag_t tag = lfs_dir_get(lfs, &dir, LFS_MKTAG(0x7ff, 0x3ff, 0),
  3898. LFS_MKTAG(LFS_TYPE_INLINESTRUCT, 0, sizeof(superblock)),
  3899. &superblock);
  3900. if (tag < 0) {
  3901. return tag;
  3902. }
  3903. lfs_superblock_fromle32(&superblock);
  3904. // read the on-disk version
  3905. fsinfo->disk_version = superblock.version;
  3906. }
  3907. // filesystem geometry
  3908. fsinfo->block_size = lfs->cfg->block_size;
  3909. fsinfo->block_count = lfs->block_count;
  3910. // other on-disk configuration, we cache all of these for internal use
  3911. fsinfo->name_max = lfs->name_max;
  3912. fsinfo->file_max = lfs->file_max;
  3913. fsinfo->attr_max = lfs->attr_max;
  3914. return 0;
  3915. }
  3916. int lfs_fs_rawtraverse(lfs_t *lfs,
  3917. int (*cb)(void *data, lfs_block_t block), void *data,
  3918. bool includeorphans) {
  3919. // iterate over metadata pairs
  3920. lfs_mdir_t dir = {.tail = {0, 1}};
  3921. #ifdef LFS_MIGRATE
  3922. // also consider v1 blocks during migration
  3923. if (lfs->lfs1) {
  3924. int err = lfs1_traverse(lfs, cb, data);
  3925. if (err) {
  3926. return err;
  3927. }
  3928. dir.tail[0] = lfs->root[0];
  3929. dir.tail[1] = lfs->root[1];
  3930. }
  3931. #endif
  3932. lfs_block_t tortoise[2] = {LFS_BLOCK_NULL, LFS_BLOCK_NULL};
  3933. lfs_size_t tortoise_i = 1;
  3934. lfs_size_t tortoise_period = 1;
  3935. while (!lfs_pair_isnull(dir.tail)) {
  3936. // detect cycles with Brent's algorithm
  3937. if (lfs_pair_issync(dir.tail, tortoise)) {
  3938. LFS_WARN("Cycle detected in tail list");
  3939. return LFS_ERR_CORRUPT;
  3940. }
  3941. if (tortoise_i == tortoise_period) {
  3942. tortoise[0] = dir.tail[0];
  3943. tortoise[1] = dir.tail[1];
  3944. tortoise_i = 0;
  3945. tortoise_period *= 2;
  3946. }
  3947. tortoise_i += 1;
  3948. for (int i = 0; i < 2; i++) {
  3949. int err = cb(data, dir.tail[i]);
  3950. if (err) {
  3951. return err;
  3952. }
  3953. }
  3954. // iterate through ids in directory
  3955. int err = lfs_dir_fetch(lfs, &dir, dir.tail);
  3956. if (err) {
  3957. return err;
  3958. }
  3959. for (uint16_t id = 0; id < dir.count; id++) {
  3960. struct lfs_ctz ctz;
  3961. lfs_stag_t tag = lfs_dir_get(lfs, &dir, LFS_MKTAG(0x700, 0x3ff, 0),
  3962. LFS_MKTAG(LFS_TYPE_STRUCT, id, sizeof(ctz)), &ctz);
  3963. if (tag < 0) {
  3964. if (tag == LFS_ERR_NOENT) {
  3965. continue;
  3966. }
  3967. return tag;
  3968. }
  3969. lfs_ctz_fromle32(&ctz);
  3970. if (lfs_tag_type3(tag) == LFS_TYPE_CTZSTRUCT) {
  3971. err = lfs_ctz_traverse(lfs, NULL, &lfs->rcache,
  3972. ctz.head, ctz.size, cb, data);
  3973. if (err) {
  3974. return err;
  3975. }
  3976. } else if (includeorphans &&
  3977. lfs_tag_type3(tag) == LFS_TYPE_DIRSTRUCT) {
  3978. for (int i = 0; i < 2; i++) {
  3979. err = cb(data, (&ctz.head)[i]);
  3980. if (err) {
  3981. return err;
  3982. }
  3983. }
  3984. }
  3985. }
  3986. }
  3987. #ifndef LFS_READONLY
  3988. // iterate over any open files
  3989. for (lfs_file_t *f = (lfs_file_t*)lfs->mlist; f; f = f->next) {
  3990. if (f->type != LFS_TYPE_REG) {
  3991. continue;
  3992. }
  3993. if ((f->flags & LFS_F_DIRTY) && !(f->flags & LFS_F_INLINE)) {
  3994. int err = lfs_ctz_traverse(lfs, &f->cache, &lfs->rcache,
  3995. f->ctz.head, f->ctz.size, cb, data);
  3996. if (err) {
  3997. return err;
  3998. }
  3999. }
  4000. if ((f->flags & LFS_F_WRITING) && !(f->flags & LFS_F_INLINE)) {
  4001. int err = lfs_ctz_traverse(lfs, &f->cache, &lfs->rcache,
  4002. f->block, f->pos, cb, data);
  4003. if (err) {
  4004. return err;
  4005. }
  4006. }
  4007. }
  4008. #endif
  4009. return 0;
  4010. }
  4011. #ifndef LFS_READONLY
  4012. static int lfs_fs_pred(lfs_t *lfs,
  4013. const lfs_block_t pair[2], lfs_mdir_t *pdir) {
  4014. // iterate over all directory directory entries
  4015. pdir->tail[0] = 0;
  4016. pdir->tail[1] = 1;
  4017. lfs_block_t tortoise[2] = {LFS_BLOCK_NULL, LFS_BLOCK_NULL};
  4018. lfs_size_t tortoise_i = 1;
  4019. lfs_size_t tortoise_period = 1;
  4020. while (!lfs_pair_isnull(pdir->tail)) {
  4021. // detect cycles with Brent's algorithm
  4022. if (lfs_pair_issync(pdir->tail, tortoise)) {
  4023. LFS_WARN("Cycle detected in tail list");
  4024. return LFS_ERR_CORRUPT;
  4025. }
  4026. if (tortoise_i == tortoise_period) {
  4027. tortoise[0] = pdir->tail[0];
  4028. tortoise[1] = pdir->tail[1];
  4029. tortoise_i = 0;
  4030. tortoise_period *= 2;
  4031. }
  4032. tortoise_i += 1;
  4033. if (lfs_pair_cmp(pdir->tail, pair) == 0) {
  4034. return 0;
  4035. }
  4036. int err = lfs_dir_fetch(lfs, pdir, pdir->tail);
  4037. if (err) {
  4038. return err;
  4039. }
  4040. }
  4041. return LFS_ERR_NOENT;
  4042. }
  4043. #endif
  4044. #ifndef LFS_READONLY
  4045. struct lfs_fs_parent_match {
  4046. lfs_t *lfs;
  4047. const lfs_block_t pair[2];
  4048. };
  4049. #endif
  4050. #ifndef LFS_READONLY
  4051. static int lfs_fs_parent_match(void *data,
  4052. lfs_tag_t tag, const void *buffer) {
  4053. struct lfs_fs_parent_match *find = data;
  4054. lfs_t *lfs = find->lfs;
  4055. const struct lfs_diskoff *disk = buffer;
  4056. (void)tag;
  4057. lfs_block_t child[2];
  4058. int err = lfs_bd_read(lfs,
  4059. &lfs->pcache, &lfs->rcache, lfs->cfg->block_size,
  4060. disk->block, disk->off, &child, sizeof(child));
  4061. if (err) {
  4062. return err;
  4063. }
  4064. lfs_pair_fromle32(child);
  4065. return (lfs_pair_cmp(child, find->pair) == 0) ? LFS_CMP_EQ : LFS_CMP_LT;
  4066. }
  4067. #endif
  4068. #ifndef LFS_READONLY
  4069. static lfs_stag_t lfs_fs_parent(lfs_t *lfs, const lfs_block_t pair[2],
  4070. lfs_mdir_t *parent) {
  4071. // use fetchmatch with callback to find pairs
  4072. parent->tail[0] = 0;
  4073. parent->tail[1] = 1;
  4074. lfs_block_t tortoise[2] = {LFS_BLOCK_NULL, LFS_BLOCK_NULL};
  4075. lfs_size_t tortoise_i = 1;
  4076. lfs_size_t tortoise_period = 1;
  4077. while (!lfs_pair_isnull(parent->tail)) {
  4078. // detect cycles with Brent's algorithm
  4079. if (lfs_pair_issync(parent->tail, tortoise)) {
  4080. LFS_WARN("Cycle detected in tail list");
  4081. return LFS_ERR_CORRUPT;
  4082. }
  4083. if (tortoise_i == tortoise_period) {
  4084. tortoise[0] = parent->tail[0];
  4085. tortoise[1] = parent->tail[1];
  4086. tortoise_i = 0;
  4087. tortoise_period *= 2;
  4088. }
  4089. tortoise_i += 1;
  4090. lfs_stag_t tag = lfs_dir_fetchmatch(lfs, parent, parent->tail,
  4091. LFS_MKTAG(0x7ff, 0, 0x3ff),
  4092. LFS_MKTAG(LFS_TYPE_DIRSTRUCT, 0, 8),
  4093. NULL,
  4094. lfs_fs_parent_match, &(struct lfs_fs_parent_match){
  4095. lfs, {pair[0], pair[1]}});
  4096. if (tag && tag != LFS_ERR_NOENT) {
  4097. return tag;
  4098. }
  4099. }
  4100. return LFS_ERR_NOENT;
  4101. }
  4102. #endif
  4103. static void lfs_fs_prepsuperblock(lfs_t *lfs, bool needssuperblock) {
  4104. lfs->gstate.tag = (lfs->gstate.tag & ~LFS_MKTAG(0, 0, 0x200))
  4105. | (uint32_t)needssuperblock << 9;
  4106. }
  4107. #ifndef LFS_READONLY
  4108. static int lfs_fs_preporphans(lfs_t *lfs, int8_t orphans) {
  4109. LFS_ASSERT(lfs_tag_size(lfs->gstate.tag) > 0x000 || orphans >= 0);
  4110. LFS_ASSERT(lfs_tag_size(lfs->gstate.tag) < 0x1ff || orphans <= 0);
  4111. lfs->gstate.tag += orphans;
  4112. lfs->gstate.tag = ((lfs->gstate.tag & ~LFS_MKTAG(0x800, 0, 0)) |
  4113. ((uint32_t)lfs_gstate_hasorphans(&lfs->gstate) << 31));
  4114. return 0;
  4115. }
  4116. #endif
  4117. #ifndef LFS_READONLY
  4118. static void lfs_fs_prepmove(lfs_t *lfs,
  4119. uint16_t id, const lfs_block_t pair[2]) {
  4120. lfs->gstate.tag = ((lfs->gstate.tag & ~LFS_MKTAG(0x7ff, 0x3ff, 0)) |
  4121. ((id != 0x3ff) ? LFS_MKTAG(LFS_TYPE_DELETE, id, 0) : 0));
  4122. lfs->gstate.pair[0] = (id != 0x3ff) ? pair[0] : 0;
  4123. lfs->gstate.pair[1] = (id != 0x3ff) ? pair[1] : 0;
  4124. }
  4125. #endif
  4126. #ifndef LFS_READONLY
  4127. static int lfs_fs_desuperblock(lfs_t *lfs) {
  4128. if (!lfs_gstate_needssuperblock(&lfs->gstate)) {
  4129. return 0;
  4130. }
  4131. LFS_DEBUG("Rewriting superblock {0x%"PRIx32", 0x%"PRIx32"}",
  4132. lfs->root[0],
  4133. lfs->root[1]);
  4134. lfs_mdir_t root;
  4135. int err = lfs_dir_fetch(lfs, &root, lfs->root);
  4136. if (err) {
  4137. return err;
  4138. }
  4139. // write a new superblock
  4140. lfs_superblock_t superblock = {
  4141. .version = lfs_fs_disk_version(lfs),
  4142. .block_size = lfs->cfg->block_size,
  4143. .block_count = lfs->block_count,
  4144. .name_max = lfs->name_max,
  4145. .file_max = lfs->file_max,
  4146. .attr_max = lfs->attr_max,
  4147. };
  4148. lfs_superblock_tole32(&superblock);
  4149. err = lfs_dir_commit(lfs, &root, LFS_MKATTRS(
  4150. {LFS_MKTAG(LFS_TYPE_INLINESTRUCT, 0, sizeof(superblock)),
  4151. &superblock}));
  4152. if (err) {
  4153. return err;
  4154. }
  4155. lfs_fs_prepsuperblock(lfs, false);
  4156. return 0;
  4157. }
  4158. #endif
  4159. #ifndef LFS_READONLY
  4160. static int lfs_fs_demove(lfs_t *lfs) {
  4161. if (!lfs_gstate_hasmove(&lfs->gdisk)) {
  4162. return 0;
  4163. }
  4164. // Fix bad moves
  4165. LFS_DEBUG("Fixing move {0x%"PRIx32", 0x%"PRIx32"} 0x%"PRIx16,
  4166. lfs->gdisk.pair[0],
  4167. lfs->gdisk.pair[1],
  4168. lfs_tag_id(lfs->gdisk.tag));
  4169. // no other gstate is supported at this time, so if we found something else
  4170. // something most likely went wrong in gstate calculation
  4171. LFS_ASSERT(lfs_tag_type3(lfs->gdisk.tag) == LFS_TYPE_DELETE);
  4172. // fetch and delete the moved entry
  4173. lfs_mdir_t movedir;
  4174. int err = lfs_dir_fetch(lfs, &movedir, lfs->gdisk.pair);
  4175. if (err) {
  4176. return err;
  4177. }
  4178. // prep gstate and delete move id
  4179. uint16_t moveid = lfs_tag_id(lfs->gdisk.tag);
  4180. lfs_fs_prepmove(lfs, 0x3ff, NULL);
  4181. err = lfs_dir_commit(lfs, &movedir, LFS_MKATTRS(
  4182. {LFS_MKTAG(LFS_TYPE_DELETE, moveid, 0), NULL}));
  4183. if (err) {
  4184. return err;
  4185. }
  4186. return 0;
  4187. }
  4188. #endif
  4189. #ifndef LFS_READONLY
  4190. static int lfs_fs_deorphan(lfs_t *lfs, bool powerloss) {
  4191. if (!lfs_gstate_hasorphans(&lfs->gstate)) {
  4192. return 0;
  4193. }
  4194. // Check for orphans in two separate passes:
  4195. // - 1 for half-orphans (relocations)
  4196. // - 2 for full-orphans (removes/renames)
  4197. //
  4198. // Two separate passes are needed as half-orphans can contain outdated
  4199. // references to full-orphans, effectively hiding them from the deorphan
  4200. // search.
  4201. //
  4202. int pass = 0;
  4203. while (pass < 2) {
  4204. // Fix any orphans
  4205. lfs_mdir_t pdir = {.split = true, .tail = {0, 1}};
  4206. lfs_mdir_t dir;
  4207. bool moreorphans = false;
  4208. // iterate over all directory directory entries
  4209. while (!lfs_pair_isnull(pdir.tail)) {
  4210. int err = lfs_dir_fetch(lfs, &dir, pdir.tail);
  4211. if (err) {
  4212. return err;
  4213. }
  4214. // check head blocks for orphans
  4215. if (!pdir.split) {
  4216. // check if we have a parent
  4217. lfs_mdir_t parent;
  4218. lfs_stag_t tag = lfs_fs_parent(lfs, pdir.tail, &parent);
  4219. if (tag < 0 && tag != LFS_ERR_NOENT) {
  4220. return tag;
  4221. }
  4222. if (pass == 0 && tag != LFS_ERR_NOENT) {
  4223. lfs_block_t pair[2];
  4224. lfs_stag_t state = lfs_dir_get(lfs, &parent,
  4225. LFS_MKTAG(0x7ff, 0x3ff, 0), tag, pair);
  4226. if (state < 0) {
  4227. return state;
  4228. }
  4229. lfs_pair_fromle32(pair);
  4230. if (!lfs_pair_issync(pair, pdir.tail)) {
  4231. // we have desynced
  4232. LFS_DEBUG("Fixing half-orphan "
  4233. "{0x%"PRIx32", 0x%"PRIx32"} "
  4234. "-> {0x%"PRIx32", 0x%"PRIx32"}",
  4235. pdir.tail[0], pdir.tail[1], pair[0], pair[1]);
  4236. // fix pending move in this pair? this looks like an
  4237. // optimization but is in fact _required_ since
  4238. // relocating may outdate the move.
  4239. uint16_t moveid = 0x3ff;
  4240. if (lfs_gstate_hasmovehere(&lfs->gstate, pdir.pair)) {
  4241. moveid = lfs_tag_id(lfs->gstate.tag);
  4242. LFS_DEBUG("Fixing move while fixing orphans "
  4243. "{0x%"PRIx32", 0x%"PRIx32"} 0x%"PRIx16"\n",
  4244. pdir.pair[0], pdir.pair[1], moveid);
  4245. lfs_fs_prepmove(lfs, 0x3ff, NULL);
  4246. }
  4247. lfs_pair_tole32(pair);
  4248. state = lfs_dir_orphaningcommit(lfs, &pdir, LFS_MKATTRS(
  4249. {LFS_MKTAG_IF(moveid != 0x3ff,
  4250. LFS_TYPE_DELETE, moveid, 0), NULL},
  4251. {LFS_MKTAG(LFS_TYPE_SOFTTAIL, 0x3ff, 8),
  4252. pair}));
  4253. lfs_pair_fromle32(pair);
  4254. if (state < 0) {
  4255. return state;
  4256. }
  4257. // did our commit create more orphans?
  4258. if (state == LFS_OK_ORPHANED) {
  4259. moreorphans = true;
  4260. }
  4261. // refetch tail
  4262. continue;
  4263. }
  4264. }
  4265. // note we only check for full orphans if we may have had a
  4266. // power-loss, otherwise orphans are created intentionally
  4267. // during operations such as lfs_mkdir
  4268. if (pass == 1 && tag == LFS_ERR_NOENT && powerloss) {
  4269. // we are an orphan
  4270. LFS_DEBUG("Fixing orphan {0x%"PRIx32", 0x%"PRIx32"}",
  4271. pdir.tail[0], pdir.tail[1]);
  4272. // steal state
  4273. err = lfs_dir_getgstate(lfs, &dir, &lfs->gdelta);
  4274. if (err) {
  4275. return err;
  4276. }
  4277. // steal tail
  4278. lfs_pair_tole32(dir.tail);
  4279. int state = lfs_dir_orphaningcommit(lfs, &pdir, LFS_MKATTRS(
  4280. {LFS_MKTAG(LFS_TYPE_TAIL + dir.split, 0x3ff, 8),
  4281. dir.tail}));
  4282. lfs_pair_fromle32(dir.tail);
  4283. if (state < 0) {
  4284. return state;
  4285. }
  4286. // did our commit create more orphans?
  4287. if (state == LFS_OK_ORPHANED) {
  4288. moreorphans = true;
  4289. }
  4290. // refetch tail
  4291. continue;
  4292. }
  4293. }
  4294. pdir = dir;
  4295. }
  4296. pass = moreorphans ? 0 : pass+1;
  4297. }
  4298. // mark orphans as fixed
  4299. return lfs_fs_preporphans(lfs, -lfs_gstate_getorphans(&lfs->gstate));
  4300. }
  4301. #endif
  4302. #ifndef LFS_READONLY
  4303. static int lfs_fs_forceconsistency(lfs_t *lfs) {
  4304. int err = lfs_fs_desuperblock(lfs);
  4305. if (err) {
  4306. return err;
  4307. }
  4308. err = lfs_fs_demove(lfs);
  4309. if (err) {
  4310. return err;
  4311. }
  4312. err = lfs_fs_deorphan(lfs, true);
  4313. if (err) {
  4314. return err;
  4315. }
  4316. return 0;
  4317. }
  4318. #endif
  4319. #ifndef LFS_READONLY
  4320. int lfs_fs_rawmkconsistent(lfs_t *lfs) {
  4321. // lfs_fs_forceconsistency does most of the work here
  4322. int err = lfs_fs_forceconsistency(lfs);
  4323. if (err) {
  4324. return err;
  4325. }
  4326. // do we have any pending gstate?
  4327. lfs_gstate_t delta = {0};
  4328. lfs_gstate_xor(&delta, &lfs->gdisk);
  4329. lfs_gstate_xor(&delta, &lfs->gstate);
  4330. if (!lfs_gstate_iszero(&delta)) {
  4331. // lfs_dir_commit will implicitly write out any pending gstate
  4332. lfs_mdir_t root;
  4333. err = lfs_dir_fetch(lfs, &root, lfs->root);
  4334. if (err) {
  4335. return err;
  4336. }
  4337. err = lfs_dir_commit(lfs, &root, NULL, 0);
  4338. if (err) {
  4339. return err;
  4340. }
  4341. }
  4342. return 0;
  4343. }
  4344. #endif
  4345. static int lfs_fs_size_count(void *p, lfs_block_t block) {
  4346. (void)block;
  4347. lfs_size_t *size = p;
  4348. *size += 1;
  4349. return 0;
  4350. }
  4351. static lfs_ssize_t lfs_fs_rawsize(lfs_t *lfs) {
  4352. lfs_size_t size = 0;
  4353. int err = lfs_fs_rawtraverse(lfs, lfs_fs_size_count, &size, false);
  4354. if (err) {
  4355. return err;
  4356. }
  4357. return size;
  4358. }
  4359. #ifndef LFS_READONLY
  4360. int lfs_fs_rawgrow(lfs_t *lfs, lfs_size_t block_count) {
  4361. // shrinking is not supported
  4362. LFS_ASSERT(block_count >= lfs->block_count);
  4363. if (block_count > lfs->block_count) {
  4364. lfs->block_count = block_count;
  4365. // fetch the root
  4366. lfs_mdir_t root;
  4367. int err = lfs_dir_fetch(lfs, &root, lfs->root);
  4368. if (err) {
  4369. return err;
  4370. }
  4371. // update the superblock
  4372. lfs_superblock_t superblock;
  4373. lfs_stag_t tag = lfs_dir_get(lfs, &root, LFS_MKTAG(0x7ff, 0x3ff, 0),
  4374. LFS_MKTAG(LFS_TYPE_INLINESTRUCT, 0, sizeof(superblock)),
  4375. &superblock);
  4376. if (tag < 0) {
  4377. return tag;
  4378. }
  4379. lfs_superblock_fromle32(&superblock);
  4380. superblock.block_count = lfs->block_count;
  4381. lfs_superblock_tole32(&superblock);
  4382. err = lfs_dir_commit(lfs, &root, LFS_MKATTRS(
  4383. {tag, &superblock}));
  4384. if (err) {
  4385. return err;
  4386. }
  4387. }
  4388. return 0;
  4389. }
  4390. #endif
  4391. #ifdef LFS_MIGRATE
  4392. ////// Migration from littelfs v1 below this //////
  4393. /// Version info ///
  4394. // Software library version
  4395. // Major (top-nibble), incremented on backwards incompatible changes
  4396. // Minor (bottom-nibble), incremented on feature additions
  4397. #define LFS1_VERSION 0x00010007
  4398. #define LFS1_VERSION_MAJOR (0xffff & (LFS1_VERSION >> 16))
  4399. #define LFS1_VERSION_MINOR (0xffff & (LFS1_VERSION >> 0))
  4400. // Version of On-disk data structures
  4401. // Major (top-nibble), incremented on backwards incompatible changes
  4402. // Minor (bottom-nibble), incremented on feature additions
  4403. #define LFS1_DISK_VERSION 0x00010001
  4404. #define LFS1_DISK_VERSION_MAJOR (0xffff & (LFS1_DISK_VERSION >> 16))
  4405. #define LFS1_DISK_VERSION_MINOR (0xffff & (LFS1_DISK_VERSION >> 0))
  4406. /// v1 Definitions ///
  4407. // File types
  4408. enum lfs1_type {
  4409. LFS1_TYPE_REG = 0x11,
  4410. LFS1_TYPE_DIR = 0x22,
  4411. LFS1_TYPE_SUPERBLOCK = 0x2e,
  4412. };
  4413. typedef struct lfs1 {
  4414. lfs_block_t root[2];
  4415. } lfs1_t;
  4416. typedef struct lfs1_entry {
  4417. lfs_off_t off;
  4418. struct lfs1_disk_entry {
  4419. uint8_t type;
  4420. uint8_t elen;
  4421. uint8_t alen;
  4422. uint8_t nlen;
  4423. union {
  4424. struct {
  4425. lfs_block_t head;
  4426. lfs_size_t size;
  4427. } file;
  4428. lfs_block_t dir[2];
  4429. } u;
  4430. } d;
  4431. } lfs1_entry_t;
  4432. typedef struct lfs1_dir {
  4433. struct lfs1_dir *next;
  4434. lfs_block_t pair[2];
  4435. lfs_off_t off;
  4436. lfs_block_t head[2];
  4437. lfs_off_t pos;
  4438. struct lfs1_disk_dir {
  4439. uint32_t rev;
  4440. lfs_size_t size;
  4441. lfs_block_t tail[2];
  4442. } d;
  4443. } lfs1_dir_t;
  4444. typedef struct lfs1_superblock {
  4445. lfs_off_t off;
  4446. struct lfs1_disk_superblock {
  4447. uint8_t type;
  4448. uint8_t elen;
  4449. uint8_t alen;
  4450. uint8_t nlen;
  4451. lfs_block_t root[2];
  4452. uint32_t block_size;
  4453. uint32_t block_count;
  4454. uint32_t version;
  4455. char magic[8];
  4456. } d;
  4457. } lfs1_superblock_t;
  4458. /// Low-level wrappers v1->v2 ///
  4459. static void lfs1_crc(uint32_t *crc, const void *buffer, size_t size) {
  4460. *crc = lfs_crc(*crc, buffer, size);
  4461. }
  4462. static int lfs1_bd_read(lfs_t *lfs, lfs_block_t block,
  4463. lfs_off_t off, void *buffer, lfs_size_t size) {
  4464. // if we ever do more than writes to alternating pairs,
  4465. // this may need to consider pcache
  4466. return lfs_bd_read(lfs, &lfs->pcache, &lfs->rcache, size,
  4467. block, off, buffer, size);
  4468. }
  4469. static int lfs1_bd_crc(lfs_t *lfs, lfs_block_t block,
  4470. lfs_off_t off, lfs_size_t size, uint32_t *crc) {
  4471. for (lfs_off_t i = 0; i < size; i++) {
  4472. uint8_t c;
  4473. int err = lfs1_bd_read(lfs, block, off+i, &c, 1);
  4474. if (err) {
  4475. return err;
  4476. }
  4477. lfs1_crc(crc, &c, 1);
  4478. }
  4479. return 0;
  4480. }
  4481. /// Endian swapping functions ///
  4482. static void lfs1_dir_fromle32(struct lfs1_disk_dir *d) {
  4483. d->rev = lfs_fromle32(d->rev);
  4484. d->size = lfs_fromle32(d->size);
  4485. d->tail[0] = lfs_fromle32(d->tail[0]);
  4486. d->tail[1] = lfs_fromle32(d->tail[1]);
  4487. }
  4488. static void lfs1_dir_tole32(struct lfs1_disk_dir *d) {
  4489. d->rev = lfs_tole32(d->rev);
  4490. d->size = lfs_tole32(d->size);
  4491. d->tail[0] = lfs_tole32(d->tail[0]);
  4492. d->tail[1] = lfs_tole32(d->tail[1]);
  4493. }
  4494. static void lfs1_entry_fromle32(struct lfs1_disk_entry *d) {
  4495. d->u.dir[0] = lfs_fromle32(d->u.dir[0]);
  4496. d->u.dir[1] = lfs_fromle32(d->u.dir[1]);
  4497. }
  4498. static void lfs1_entry_tole32(struct lfs1_disk_entry *d) {
  4499. d->u.dir[0] = lfs_tole32(d->u.dir[0]);
  4500. d->u.dir[1] = lfs_tole32(d->u.dir[1]);
  4501. }
  4502. static void lfs1_superblock_fromle32(struct lfs1_disk_superblock *d) {
  4503. d->root[0] = lfs_fromle32(d->root[0]);
  4504. d->root[1] = lfs_fromle32(d->root[1]);
  4505. d->block_size = lfs_fromle32(d->block_size);
  4506. d->block_count = lfs_fromle32(d->block_count);
  4507. d->version = lfs_fromle32(d->version);
  4508. }
  4509. ///// Metadata pair and directory operations ///
  4510. static inline lfs_size_t lfs1_entry_size(const lfs1_entry_t *entry) {
  4511. return 4 + entry->d.elen + entry->d.alen + entry->d.nlen;
  4512. }
  4513. static int lfs1_dir_fetch(lfs_t *lfs,
  4514. lfs1_dir_t *dir, const lfs_block_t pair[2]) {
  4515. // copy out pair, otherwise may be aliasing dir
  4516. const lfs_block_t tpair[2] = {pair[0], pair[1]};
  4517. bool valid = false;
  4518. // check both blocks for the most recent revision
  4519. for (int i = 0; i < 2; i++) {
  4520. struct lfs1_disk_dir test;
  4521. int err = lfs1_bd_read(lfs, tpair[i], 0, &test, sizeof(test));
  4522. lfs1_dir_fromle32(&test);
  4523. if (err) {
  4524. if (err == LFS_ERR_CORRUPT) {
  4525. continue;
  4526. }
  4527. return err;
  4528. }
  4529. if (valid && lfs_scmp(test.rev, dir->d.rev) < 0) {
  4530. continue;
  4531. }
  4532. if ((0x7fffffff & test.size) < sizeof(test)+4 ||
  4533. (0x7fffffff & test.size) > lfs->cfg->block_size) {
  4534. continue;
  4535. }
  4536. uint32_t crc = 0xffffffff;
  4537. lfs1_dir_tole32(&test);
  4538. lfs1_crc(&crc, &test, sizeof(test));
  4539. lfs1_dir_fromle32(&test);
  4540. err = lfs1_bd_crc(lfs, tpair[i], sizeof(test),
  4541. (0x7fffffff & test.size) - sizeof(test), &crc);
  4542. if (err) {
  4543. if (err == LFS_ERR_CORRUPT) {
  4544. continue;
  4545. }
  4546. return err;
  4547. }
  4548. if (crc != 0) {
  4549. continue;
  4550. }
  4551. valid = true;
  4552. // setup dir in case it's valid
  4553. dir->pair[0] = tpair[(i+0) % 2];
  4554. dir->pair[1] = tpair[(i+1) % 2];
  4555. dir->off = sizeof(dir->d);
  4556. dir->d = test;
  4557. }
  4558. if (!valid) {
  4559. LFS_ERROR("Corrupted dir pair at {0x%"PRIx32", 0x%"PRIx32"}",
  4560. tpair[0], tpair[1]);
  4561. return LFS_ERR_CORRUPT;
  4562. }
  4563. return 0;
  4564. }
  4565. static int lfs1_dir_next(lfs_t *lfs, lfs1_dir_t *dir, lfs1_entry_t *entry) {
  4566. while (dir->off + sizeof(entry->d) > (0x7fffffff & dir->d.size)-4) {
  4567. if (!(0x80000000 & dir->d.size)) {
  4568. entry->off = dir->off;
  4569. return LFS_ERR_NOENT;
  4570. }
  4571. int err = lfs1_dir_fetch(lfs, dir, dir->d.tail);
  4572. if (err) {
  4573. return err;
  4574. }
  4575. dir->off = sizeof(dir->d);
  4576. dir->pos += sizeof(dir->d) + 4;
  4577. }
  4578. int err = lfs1_bd_read(lfs, dir->pair[0], dir->off,
  4579. &entry->d, sizeof(entry->d));
  4580. lfs1_entry_fromle32(&entry->d);
  4581. if (err) {
  4582. return err;
  4583. }
  4584. entry->off = dir->off;
  4585. dir->off += lfs1_entry_size(entry);
  4586. dir->pos += lfs1_entry_size(entry);
  4587. return 0;
  4588. }
  4589. /// littlefs v1 specific operations ///
  4590. int lfs1_traverse(lfs_t *lfs, int (*cb)(void*, lfs_block_t), void *data) {
  4591. if (lfs_pair_isnull(lfs->lfs1->root)) {
  4592. return 0;
  4593. }
  4594. // iterate over metadata pairs
  4595. lfs1_dir_t dir;
  4596. lfs1_entry_t entry;
  4597. lfs_block_t cwd[2] = {0, 1};
  4598. while (true) {
  4599. for (int i = 0; i < 2; i++) {
  4600. int err = cb(data, cwd[i]);
  4601. if (err) {
  4602. return err;
  4603. }
  4604. }
  4605. int err = lfs1_dir_fetch(lfs, &dir, cwd);
  4606. if (err) {
  4607. return err;
  4608. }
  4609. // iterate over contents
  4610. while (dir.off + sizeof(entry.d) <= (0x7fffffff & dir.d.size)-4) {
  4611. err = lfs1_bd_read(lfs, dir.pair[0], dir.off,
  4612. &entry.d, sizeof(entry.d));
  4613. lfs1_entry_fromle32(&entry.d);
  4614. if (err) {
  4615. return err;
  4616. }
  4617. dir.off += lfs1_entry_size(&entry);
  4618. if ((0x70 & entry.d.type) == (0x70 & LFS1_TYPE_REG)) {
  4619. err = lfs_ctz_traverse(lfs, NULL, &lfs->rcache,
  4620. entry.d.u.file.head, entry.d.u.file.size, cb, data);
  4621. if (err) {
  4622. return err;
  4623. }
  4624. }
  4625. }
  4626. // we also need to check if we contain a threaded v2 directory
  4627. lfs_mdir_t dir2 = {.split=true, .tail={cwd[0], cwd[1]}};
  4628. while (dir2.split) {
  4629. err = lfs_dir_fetch(lfs, &dir2, dir2.tail);
  4630. if (err) {
  4631. break;
  4632. }
  4633. for (int i = 0; i < 2; i++) {
  4634. err = cb(data, dir2.pair[i]);
  4635. if (err) {
  4636. return err;
  4637. }
  4638. }
  4639. }
  4640. cwd[0] = dir.d.tail[0];
  4641. cwd[1] = dir.d.tail[1];
  4642. if (lfs_pair_isnull(cwd)) {
  4643. break;
  4644. }
  4645. }
  4646. return 0;
  4647. }
  4648. static int lfs1_moved(lfs_t *lfs, const void *e) {
  4649. if (lfs_pair_isnull(lfs->lfs1->root)) {
  4650. return 0;
  4651. }
  4652. // skip superblock
  4653. lfs1_dir_t cwd;
  4654. int err = lfs1_dir_fetch(lfs, &cwd, (const lfs_block_t[2]){0, 1});
  4655. if (err) {
  4656. return err;
  4657. }
  4658. // iterate over all directory directory entries
  4659. lfs1_entry_t entry;
  4660. while (!lfs_pair_isnull(cwd.d.tail)) {
  4661. err = lfs1_dir_fetch(lfs, &cwd, cwd.d.tail);
  4662. if (err) {
  4663. return err;
  4664. }
  4665. while (true) {
  4666. err = lfs1_dir_next(lfs, &cwd, &entry);
  4667. if (err && err != LFS_ERR_NOENT) {
  4668. return err;
  4669. }
  4670. if (err == LFS_ERR_NOENT) {
  4671. break;
  4672. }
  4673. if (!(0x80 & entry.d.type) &&
  4674. memcmp(&entry.d.u, e, sizeof(entry.d.u)) == 0) {
  4675. return true;
  4676. }
  4677. }
  4678. }
  4679. return false;
  4680. }
  4681. /// Filesystem operations ///
  4682. static int lfs1_mount(lfs_t *lfs, struct lfs1 *lfs1,
  4683. const struct lfs_config *cfg) {
  4684. int err = 0;
  4685. {
  4686. err = lfs_init(lfs, cfg);
  4687. if (err) {
  4688. return err;
  4689. }
  4690. lfs->lfs1 = lfs1;
  4691. lfs->lfs1->root[0] = LFS_BLOCK_NULL;
  4692. lfs->lfs1->root[1] = LFS_BLOCK_NULL;
  4693. // setup free lookahead
  4694. lfs->free.off = 0;
  4695. lfs->free.size = 0;
  4696. lfs->free.i = 0;
  4697. lfs_alloc_ack(lfs);
  4698. // load superblock
  4699. lfs1_dir_t dir;
  4700. lfs1_superblock_t superblock;
  4701. err = lfs1_dir_fetch(lfs, &dir, (const lfs_block_t[2]){0, 1});
  4702. if (err && err != LFS_ERR_CORRUPT) {
  4703. goto cleanup;
  4704. }
  4705. if (!err) {
  4706. err = lfs1_bd_read(lfs, dir.pair[0], sizeof(dir.d),
  4707. &superblock.d, sizeof(superblock.d));
  4708. lfs1_superblock_fromle32(&superblock.d);
  4709. if (err) {
  4710. goto cleanup;
  4711. }
  4712. lfs->lfs1->root[0] = superblock.d.root[0];
  4713. lfs->lfs1->root[1] = superblock.d.root[1];
  4714. }
  4715. if (err || memcmp(superblock.d.magic, "littlefs", 8) != 0) {
  4716. LFS_ERROR("Invalid superblock at {0x%"PRIx32", 0x%"PRIx32"}",
  4717. 0, 1);
  4718. err = LFS_ERR_CORRUPT;
  4719. goto cleanup;
  4720. }
  4721. uint16_t major_version = (0xffff & (superblock.d.version >> 16));
  4722. uint16_t minor_version = (0xffff & (superblock.d.version >> 0));
  4723. if ((major_version != LFS1_DISK_VERSION_MAJOR ||
  4724. minor_version > LFS1_DISK_VERSION_MINOR)) {
  4725. LFS_ERROR("Invalid version v%d.%d", major_version, minor_version);
  4726. err = LFS_ERR_INVAL;
  4727. goto cleanup;
  4728. }
  4729. return 0;
  4730. }
  4731. cleanup:
  4732. lfs_deinit(lfs);
  4733. return err;
  4734. }
  4735. static int lfs1_unmount(lfs_t *lfs) {
  4736. return lfs_deinit(lfs);
  4737. }
  4738. /// v1 migration ///
  4739. static int lfs_rawmigrate(lfs_t *lfs, const struct lfs_config *cfg) {
  4740. struct lfs1 lfs1;
  4741. // Indeterminate filesystem size not allowed for migration.
  4742. LFS_ASSERT(cfg->block_count != 0);
  4743. int err = lfs1_mount(lfs, &lfs1, cfg);
  4744. if (err) {
  4745. return err;
  4746. }
  4747. {
  4748. // iterate through each directory, copying over entries
  4749. // into new directory
  4750. lfs1_dir_t dir1;
  4751. lfs_mdir_t dir2;
  4752. dir1.d.tail[0] = lfs->lfs1->root[0];
  4753. dir1.d.tail[1] = lfs->lfs1->root[1];
  4754. while (!lfs_pair_isnull(dir1.d.tail)) {
  4755. // iterate old dir
  4756. err = lfs1_dir_fetch(lfs, &dir1, dir1.d.tail);
  4757. if (err) {
  4758. goto cleanup;
  4759. }
  4760. // create new dir and bind as temporary pretend root
  4761. err = lfs_dir_alloc(lfs, &dir2);
  4762. if (err) {
  4763. goto cleanup;
  4764. }
  4765. dir2.rev = dir1.d.rev;
  4766. dir1.head[0] = dir1.pair[0];
  4767. dir1.head[1] = dir1.pair[1];
  4768. lfs->root[0] = dir2.pair[0];
  4769. lfs->root[1] = dir2.pair[1];
  4770. err = lfs_dir_commit(lfs, &dir2, NULL, 0);
  4771. if (err) {
  4772. goto cleanup;
  4773. }
  4774. while (true) {
  4775. lfs1_entry_t entry1;
  4776. err = lfs1_dir_next(lfs, &dir1, &entry1);
  4777. if (err && err != LFS_ERR_NOENT) {
  4778. goto cleanup;
  4779. }
  4780. if (err == LFS_ERR_NOENT) {
  4781. break;
  4782. }
  4783. // check that entry has not been moved
  4784. if (entry1.d.type & 0x80) {
  4785. int moved = lfs1_moved(lfs, &entry1.d.u);
  4786. if (moved < 0) {
  4787. err = moved;
  4788. goto cleanup;
  4789. }
  4790. if (moved) {
  4791. continue;
  4792. }
  4793. entry1.d.type &= ~0x80;
  4794. }
  4795. // also fetch name
  4796. char name[LFS_NAME_MAX+1];
  4797. memset(name, 0, sizeof(name));
  4798. err = lfs1_bd_read(lfs, dir1.pair[0],
  4799. entry1.off + 4+entry1.d.elen+entry1.d.alen,
  4800. name, entry1.d.nlen);
  4801. if (err) {
  4802. goto cleanup;
  4803. }
  4804. bool isdir = (entry1.d.type == LFS1_TYPE_DIR);
  4805. // create entry in new dir
  4806. err = lfs_dir_fetch(lfs, &dir2, lfs->root);
  4807. if (err) {
  4808. goto cleanup;
  4809. }
  4810. uint16_t id;
  4811. err = lfs_dir_find(lfs, &dir2, &(const char*){name}, &id);
  4812. if (!(err == LFS_ERR_NOENT && id != 0x3ff)) {
  4813. err = (err < 0) ? err : LFS_ERR_EXIST;
  4814. goto cleanup;
  4815. }
  4816. lfs1_entry_tole32(&entry1.d);
  4817. err = lfs_dir_commit(lfs, &dir2, LFS_MKATTRS(
  4818. {LFS_MKTAG(LFS_TYPE_CREATE, id, 0), NULL},
  4819. {LFS_MKTAG_IF_ELSE(isdir,
  4820. LFS_TYPE_DIR, id, entry1.d.nlen,
  4821. LFS_TYPE_REG, id, entry1.d.nlen),
  4822. name},
  4823. {LFS_MKTAG_IF_ELSE(isdir,
  4824. LFS_TYPE_DIRSTRUCT, id, sizeof(entry1.d.u),
  4825. LFS_TYPE_CTZSTRUCT, id, sizeof(entry1.d.u)),
  4826. &entry1.d.u}));
  4827. lfs1_entry_fromle32(&entry1.d);
  4828. if (err) {
  4829. goto cleanup;
  4830. }
  4831. }
  4832. if (!lfs_pair_isnull(dir1.d.tail)) {
  4833. // find last block and update tail to thread into fs
  4834. err = lfs_dir_fetch(lfs, &dir2, lfs->root);
  4835. if (err) {
  4836. goto cleanup;
  4837. }
  4838. while (dir2.split) {
  4839. err = lfs_dir_fetch(lfs, &dir2, dir2.tail);
  4840. if (err) {
  4841. goto cleanup;
  4842. }
  4843. }
  4844. lfs_pair_tole32(dir2.pair);
  4845. err = lfs_dir_commit(lfs, &dir2, LFS_MKATTRS(
  4846. {LFS_MKTAG(LFS_TYPE_SOFTTAIL, 0x3ff, 8), dir1.d.tail}));
  4847. lfs_pair_fromle32(dir2.pair);
  4848. if (err) {
  4849. goto cleanup;
  4850. }
  4851. }
  4852. // Copy over first block to thread into fs. Unfortunately
  4853. // if this fails there is not much we can do.
  4854. LFS_DEBUG("Migrating {0x%"PRIx32", 0x%"PRIx32"} "
  4855. "-> {0x%"PRIx32", 0x%"PRIx32"}",
  4856. lfs->root[0], lfs->root[1], dir1.head[0], dir1.head[1]);
  4857. err = lfs_bd_erase(lfs, dir1.head[1]);
  4858. if (err) {
  4859. goto cleanup;
  4860. }
  4861. err = lfs_dir_fetch(lfs, &dir2, lfs->root);
  4862. if (err) {
  4863. goto cleanup;
  4864. }
  4865. for (lfs_off_t i = 0; i < dir2.off; i++) {
  4866. uint8_t dat;
  4867. err = lfs_bd_read(lfs,
  4868. NULL, &lfs->rcache, dir2.off,
  4869. dir2.pair[0], i, &dat, 1);
  4870. if (err) {
  4871. goto cleanup;
  4872. }
  4873. err = lfs_bd_prog(lfs,
  4874. &lfs->pcache, &lfs->rcache, true,
  4875. dir1.head[1], i, &dat, 1);
  4876. if (err) {
  4877. goto cleanup;
  4878. }
  4879. }
  4880. err = lfs_bd_flush(lfs, &lfs->pcache, &lfs->rcache, true);
  4881. if (err) {
  4882. goto cleanup;
  4883. }
  4884. }
  4885. // Create new superblock. This marks a successful migration!
  4886. err = lfs1_dir_fetch(lfs, &dir1, (const lfs_block_t[2]){0, 1});
  4887. if (err) {
  4888. goto cleanup;
  4889. }
  4890. dir2.pair[0] = dir1.pair[0];
  4891. dir2.pair[1] = dir1.pair[1];
  4892. dir2.rev = dir1.d.rev;
  4893. dir2.off = sizeof(dir2.rev);
  4894. dir2.etag = 0xffffffff;
  4895. dir2.count = 0;
  4896. dir2.tail[0] = lfs->lfs1->root[0];
  4897. dir2.tail[1] = lfs->lfs1->root[1];
  4898. dir2.erased = false;
  4899. dir2.split = true;
  4900. lfs_superblock_t superblock = {
  4901. .version = LFS_DISK_VERSION,
  4902. .block_size = lfs->cfg->block_size,
  4903. .block_count = lfs->cfg->block_count,
  4904. .name_max = lfs->name_max,
  4905. .file_max = lfs->file_max,
  4906. .attr_max = lfs->attr_max,
  4907. };
  4908. lfs_superblock_tole32(&superblock);
  4909. err = lfs_dir_commit(lfs, &dir2, LFS_MKATTRS(
  4910. {LFS_MKTAG(LFS_TYPE_CREATE, 0, 0), NULL},
  4911. {LFS_MKTAG(LFS_TYPE_SUPERBLOCK, 0, 8), "littlefs"},
  4912. {LFS_MKTAG(LFS_TYPE_INLINESTRUCT, 0, sizeof(superblock)),
  4913. &superblock}));
  4914. if (err) {
  4915. goto cleanup;
  4916. }
  4917. // sanity check that fetch works
  4918. err = lfs_dir_fetch(lfs, &dir2, (const lfs_block_t[2]){0, 1});
  4919. if (err) {
  4920. goto cleanup;
  4921. }
  4922. // force compaction to prevent accidentally mounting v1
  4923. dir2.erased = false;
  4924. err = lfs_dir_commit(lfs, &dir2, NULL, 0);
  4925. if (err) {
  4926. goto cleanup;
  4927. }
  4928. }
  4929. cleanup:
  4930. lfs1_unmount(lfs);
  4931. return err;
  4932. }
  4933. #endif
  4934. /// Public API wrappers ///
  4935. // Here we can add tracing/thread safety easily
  4936. // Thread-safe wrappers if enabled
  4937. #ifdef LFS_THREADSAFE
  4938. #define LFS_LOCK(cfg) cfg->lock(cfg)
  4939. #define LFS_UNLOCK(cfg) cfg->unlock(cfg)
  4940. #else
  4941. #define LFS_LOCK(cfg) ((void)cfg, 0)
  4942. #define LFS_UNLOCK(cfg) ((void)cfg)
  4943. #endif
  4944. // Public API
  4945. #ifndef LFS_READONLY
  4946. int lfs_format(lfs_t *lfs, const struct lfs_config *cfg) {
  4947. int err = LFS_LOCK(cfg);
  4948. if (err) {
  4949. return err;
  4950. }
  4951. LFS_TRACE("lfs_format(%p, %p {.context=%p, "
  4952. ".read=%p, .prog=%p, .erase=%p, .sync=%p, "
  4953. ".read_size=%"PRIu32", .prog_size=%"PRIu32", "
  4954. ".block_size=%"PRIu32", .block_count=%"PRIu32", "
  4955. ".block_cycles=%"PRIu32", .cache_size=%"PRIu32", "
  4956. ".lookahead_size=%"PRIu32", .read_buffer=%p, "
  4957. ".prog_buffer=%p, .lookahead_buffer=%p, "
  4958. ".name_max=%"PRIu32", .file_max=%"PRIu32", "
  4959. ".attr_max=%"PRIu32"})",
  4960. (void*)lfs, (void*)cfg, cfg->context,
  4961. (void*)(uintptr_t)cfg->read, (void*)(uintptr_t)cfg->prog,
  4962. (void*)(uintptr_t)cfg->erase, (void*)(uintptr_t)cfg->sync,
  4963. cfg->read_size, cfg->prog_size, cfg->block_size, cfg->block_count,
  4964. cfg->block_cycles, cfg->cache_size, cfg->lookahead_size,
  4965. cfg->read_buffer, cfg->prog_buffer, cfg->lookahead_buffer,
  4966. cfg->name_max, cfg->file_max, cfg->attr_max);
  4967. err = lfs_rawformat(lfs, cfg);
  4968. LFS_TRACE("lfs_format -> %d", err);
  4969. LFS_UNLOCK(cfg);
  4970. return err;
  4971. }
  4972. #endif
  4973. int lfs_mount(lfs_t *lfs, const struct lfs_config *cfg) {
  4974. int err = LFS_LOCK(cfg);
  4975. if (err) {
  4976. return err;
  4977. }
  4978. LFS_TRACE("lfs_mount(%p, %p {.context=%p, "
  4979. ".read=%p, .prog=%p, .erase=%p, .sync=%p, "
  4980. ".read_size=%"PRIu32", .prog_size=%"PRIu32", "
  4981. ".block_size=%"PRIu32", .block_count=%"PRIu32", "
  4982. ".block_cycles=%"PRIu32", .cache_size=%"PRIu32", "
  4983. ".lookahead_size=%"PRIu32", .read_buffer=%p, "
  4984. ".prog_buffer=%p, .lookahead_buffer=%p, "
  4985. ".name_max=%"PRIu32", .file_max=%"PRIu32", "
  4986. ".attr_max=%"PRIu32"})",
  4987. (void*)lfs, (void*)cfg, cfg->context,
  4988. (void*)(uintptr_t)cfg->read, (void*)(uintptr_t)cfg->prog,
  4989. (void*)(uintptr_t)cfg->erase, (void*)(uintptr_t)cfg->sync,
  4990. cfg->read_size, cfg->prog_size, cfg->block_size, cfg->block_count,
  4991. cfg->block_cycles, cfg->cache_size, cfg->lookahead_size,
  4992. cfg->read_buffer, cfg->prog_buffer, cfg->lookahead_buffer,
  4993. cfg->name_max, cfg->file_max, cfg->attr_max);
  4994. err = lfs_rawmount(lfs, cfg);
  4995. LFS_TRACE("lfs_mount -> %d", err);
  4996. LFS_UNLOCK(cfg);
  4997. return err;
  4998. }
  4999. int lfs_unmount(lfs_t *lfs) {
  5000. int err = LFS_LOCK(lfs->cfg);
  5001. if (err) {
  5002. return err;
  5003. }
  5004. LFS_TRACE("lfs_unmount(%p)", (void*)lfs);
  5005. err = lfs_rawunmount(lfs);
  5006. LFS_TRACE("lfs_unmount -> %d", err);
  5007. LFS_UNLOCK(lfs->cfg);
  5008. return err;
  5009. }
  5010. #ifndef LFS_READONLY
  5011. int lfs_remove(lfs_t *lfs, const char *path) {
  5012. int err = LFS_LOCK(lfs->cfg);
  5013. if (err) {
  5014. return err;
  5015. }
  5016. LFS_TRACE("lfs_remove(%p, \"%s\")", (void*)lfs, path);
  5017. err = lfs_rawremove(lfs, path);
  5018. LFS_TRACE("lfs_remove -> %d", err);
  5019. LFS_UNLOCK(lfs->cfg);
  5020. return err;
  5021. }
  5022. #endif
  5023. #ifndef LFS_READONLY
  5024. int lfs_rename(lfs_t *lfs, const char *oldpath, const char *newpath) {
  5025. int err = LFS_LOCK(lfs->cfg);
  5026. if (err) {
  5027. return err;
  5028. }
  5029. LFS_TRACE("lfs_rename(%p, \"%s\", \"%s\")", (void*)lfs, oldpath, newpath);
  5030. err = lfs_rawrename(lfs, oldpath, newpath);
  5031. LFS_TRACE("lfs_rename -> %d", err);
  5032. LFS_UNLOCK(lfs->cfg);
  5033. return err;
  5034. }
  5035. #endif
  5036. int lfs_stat(lfs_t *lfs, const char *path, struct lfs_info *info) {
  5037. int err = LFS_LOCK(lfs->cfg);
  5038. if (err) {
  5039. return err;
  5040. }
  5041. LFS_TRACE("lfs_stat(%p, \"%s\", %p)", (void*)lfs, path, (void*)info);
  5042. err = lfs_rawstat(lfs, path, info);
  5043. LFS_TRACE("lfs_stat -> %d", err);
  5044. LFS_UNLOCK(lfs->cfg);
  5045. return err;
  5046. }
  5047. lfs_ssize_t lfs_getattr(lfs_t *lfs, const char *path,
  5048. uint8_t type, void *buffer, lfs_size_t size) {
  5049. int err = LFS_LOCK(lfs->cfg);
  5050. if (err) {
  5051. return err;
  5052. }
  5053. LFS_TRACE("lfs_getattr(%p, \"%s\", %"PRIu8", %p, %"PRIu32")",
  5054. (void*)lfs, path, type, buffer, size);
  5055. lfs_ssize_t res = lfs_rawgetattr(lfs, path, type, buffer, size);
  5056. LFS_TRACE("lfs_getattr -> %"PRId32, res);
  5057. LFS_UNLOCK(lfs->cfg);
  5058. return res;
  5059. }
  5060. #ifndef LFS_READONLY
  5061. int lfs_setattr(lfs_t *lfs, const char *path,
  5062. uint8_t type, const void *buffer, lfs_size_t size) {
  5063. int err = LFS_LOCK(lfs->cfg);
  5064. if (err) {
  5065. return err;
  5066. }
  5067. LFS_TRACE("lfs_setattr(%p, \"%s\", %"PRIu8", %p, %"PRIu32")",
  5068. (void*)lfs, path, type, buffer, size);
  5069. err = lfs_rawsetattr(lfs, path, type, buffer, size);
  5070. LFS_TRACE("lfs_setattr -> %d", err);
  5071. LFS_UNLOCK(lfs->cfg);
  5072. return err;
  5073. }
  5074. #endif
  5075. #ifndef LFS_READONLY
  5076. int lfs_removeattr(lfs_t *lfs, const char *path, uint8_t type) {
  5077. int err = LFS_LOCK(lfs->cfg);
  5078. if (err) {
  5079. return err;
  5080. }
  5081. LFS_TRACE("lfs_removeattr(%p, \"%s\", %"PRIu8")", (void*)lfs, path, type);
  5082. err = lfs_rawremoveattr(lfs, path, type);
  5083. LFS_TRACE("lfs_removeattr -> %d", err);
  5084. LFS_UNLOCK(lfs->cfg);
  5085. return err;
  5086. }
  5087. #endif
  5088. #ifndef LFS_NO_MALLOC
  5089. int lfs_file_open(lfs_t *lfs, lfs_file_t *file, const char *path, int flags) {
  5090. int err = LFS_LOCK(lfs->cfg);
  5091. if (err) {
  5092. return err;
  5093. }
  5094. LFS_TRACE("lfs_file_open(%p, %p, \"%s\", %x)",
  5095. (void*)lfs, (void*)file, path, flags);
  5096. LFS_ASSERT(!lfs_mlist_isopen(lfs->mlist, (struct lfs_mlist*)file));
  5097. err = lfs_file_rawopen(lfs, file, path, flags);
  5098. LFS_TRACE("lfs_file_open -> %d", err);
  5099. LFS_UNLOCK(lfs->cfg);
  5100. return err;
  5101. }
  5102. #endif
  5103. int lfs_file_opencfg(lfs_t *lfs, lfs_file_t *file,
  5104. const char *path, int flags,
  5105. const struct lfs_file_config *cfg) {
  5106. int err = LFS_LOCK(lfs->cfg);
  5107. if (err) {
  5108. return err;
  5109. }
  5110. LFS_TRACE("lfs_file_opencfg(%p, %p, \"%s\", %x, %p {"
  5111. ".buffer=%p, .attrs=%p, .attr_count=%"PRIu32"})",
  5112. (void*)lfs, (void*)file, path, flags,
  5113. (void*)cfg, cfg->buffer, (void*)cfg->attrs, cfg->attr_count);
  5114. LFS_ASSERT(!lfs_mlist_isopen(lfs->mlist, (struct lfs_mlist*)file));
  5115. err = lfs_file_rawopencfg(lfs, file, path, flags, cfg);
  5116. LFS_TRACE("lfs_file_opencfg -> %d", err);
  5117. LFS_UNLOCK(lfs->cfg);
  5118. return err;
  5119. }
  5120. int lfs_file_close(lfs_t *lfs, lfs_file_t *file) {
  5121. int err = LFS_LOCK(lfs->cfg);
  5122. if (err) {
  5123. return err;
  5124. }
  5125. LFS_TRACE("lfs_file_close(%p, %p)", (void*)lfs, (void*)file);
  5126. LFS_ASSERT(lfs_mlist_isopen(lfs->mlist, (struct lfs_mlist*)file));
  5127. err = lfs_file_rawclose(lfs, file);
  5128. LFS_TRACE("lfs_file_close -> %d", err);
  5129. LFS_UNLOCK(lfs->cfg);
  5130. return err;
  5131. }
  5132. #ifndef LFS_READONLY
  5133. int lfs_file_sync(lfs_t *lfs, lfs_file_t *file) {
  5134. int err = LFS_LOCK(lfs->cfg);
  5135. if (err) {
  5136. return err;
  5137. }
  5138. LFS_TRACE("lfs_file_sync(%p, %p)", (void*)lfs, (void*)file);
  5139. LFS_ASSERT(lfs_mlist_isopen(lfs->mlist, (struct lfs_mlist*)file));
  5140. err = lfs_file_rawsync(lfs, file);
  5141. LFS_TRACE("lfs_file_sync -> %d", err);
  5142. LFS_UNLOCK(lfs->cfg);
  5143. return err;
  5144. }
  5145. #endif
  5146. lfs_ssize_t lfs_file_read(lfs_t *lfs, lfs_file_t *file,
  5147. void *buffer, lfs_size_t size) {
  5148. int err = LFS_LOCK(lfs->cfg);
  5149. if (err) {
  5150. return err;
  5151. }
  5152. LFS_TRACE("lfs_file_read(%p, %p, %p, %"PRIu32")",
  5153. (void*)lfs, (void*)file, buffer, size);
  5154. LFS_ASSERT(lfs_mlist_isopen(lfs->mlist, (struct lfs_mlist*)file));
  5155. lfs_ssize_t res = lfs_file_rawread(lfs, file, buffer, size);
  5156. LFS_TRACE("lfs_file_read -> %"PRId32, res);
  5157. LFS_UNLOCK(lfs->cfg);
  5158. return res;
  5159. }
  5160. #ifndef LFS_READONLY
  5161. lfs_ssize_t lfs_file_write(lfs_t *lfs, lfs_file_t *file,
  5162. const void *buffer, lfs_size_t size) {
  5163. int err = LFS_LOCK(lfs->cfg);
  5164. if (err) {
  5165. return err;
  5166. }
  5167. LFS_TRACE("lfs_file_write(%p, %p, %p, %"PRIu32")",
  5168. (void*)lfs, (void*)file, buffer, size);
  5169. LFS_ASSERT(lfs_mlist_isopen(lfs->mlist, (struct lfs_mlist*)file));
  5170. lfs_ssize_t res = lfs_file_rawwrite(lfs, file, buffer, size);
  5171. LFS_TRACE("lfs_file_write -> %"PRId32, res);
  5172. LFS_UNLOCK(lfs->cfg);
  5173. return res;
  5174. }
  5175. #endif
  5176. lfs_soff_t lfs_file_seek(lfs_t *lfs, lfs_file_t *file,
  5177. lfs_soff_t off, int whence) {
  5178. int err = LFS_LOCK(lfs->cfg);
  5179. if (err) {
  5180. return err;
  5181. }
  5182. LFS_TRACE("lfs_file_seek(%p, %p, %"PRId32", %d)",
  5183. (void*)lfs, (void*)file, off, whence);
  5184. LFS_ASSERT(lfs_mlist_isopen(lfs->mlist, (struct lfs_mlist*)file));
  5185. lfs_soff_t res = lfs_file_rawseek(lfs, file, off, whence);
  5186. LFS_TRACE("lfs_file_seek -> %"PRId32, res);
  5187. LFS_UNLOCK(lfs->cfg);
  5188. return res;
  5189. }
  5190. #ifndef LFS_READONLY
  5191. int lfs_file_truncate(lfs_t *lfs, lfs_file_t *file, lfs_off_t size) {
  5192. int err = LFS_LOCK(lfs->cfg);
  5193. if (err) {
  5194. return err;
  5195. }
  5196. LFS_TRACE("lfs_file_truncate(%p, %p, %"PRIu32")",
  5197. (void*)lfs, (void*)file, size);
  5198. LFS_ASSERT(lfs_mlist_isopen(lfs->mlist, (struct lfs_mlist*)file));
  5199. err = lfs_file_rawtruncate(lfs, file, size);
  5200. LFS_TRACE("lfs_file_truncate -> %d", err);
  5201. LFS_UNLOCK(lfs->cfg);
  5202. return err;
  5203. }
  5204. #endif
  5205. lfs_soff_t lfs_file_tell(lfs_t *lfs, lfs_file_t *file) {
  5206. int err = LFS_LOCK(lfs->cfg);
  5207. if (err) {
  5208. return err;
  5209. }
  5210. LFS_TRACE("lfs_file_tell(%p, %p)", (void*)lfs, (void*)file);
  5211. LFS_ASSERT(lfs_mlist_isopen(lfs->mlist, (struct lfs_mlist*)file));
  5212. lfs_soff_t res = lfs_file_rawtell(lfs, file);
  5213. LFS_TRACE("lfs_file_tell -> %"PRId32, res);
  5214. LFS_UNLOCK(lfs->cfg);
  5215. return res;
  5216. }
  5217. int lfs_file_rewind(lfs_t *lfs, lfs_file_t *file) {
  5218. int err = LFS_LOCK(lfs->cfg);
  5219. if (err) {
  5220. return err;
  5221. }
  5222. LFS_TRACE("lfs_file_rewind(%p, %p)", (void*)lfs, (void*)file);
  5223. err = lfs_file_rawrewind(lfs, file);
  5224. LFS_TRACE("lfs_file_rewind -> %d", err);
  5225. LFS_UNLOCK(lfs->cfg);
  5226. return err;
  5227. }
  5228. lfs_soff_t lfs_file_size(lfs_t *lfs, lfs_file_t *file) {
  5229. int err = LFS_LOCK(lfs->cfg);
  5230. if (err) {
  5231. return err;
  5232. }
  5233. LFS_TRACE("lfs_file_size(%p, %p)", (void*)lfs, (void*)file);
  5234. LFS_ASSERT(lfs_mlist_isopen(lfs->mlist, (struct lfs_mlist*)file));
  5235. lfs_soff_t res = lfs_file_rawsize(lfs, file);
  5236. LFS_TRACE("lfs_file_size -> %"PRId32, res);
  5237. LFS_UNLOCK(lfs->cfg);
  5238. return res;
  5239. }
  5240. #ifndef LFS_READONLY
  5241. int lfs_mkdir(lfs_t *lfs, const char *path) {
  5242. int err = LFS_LOCK(lfs->cfg);
  5243. if (err) {
  5244. return err;
  5245. }
  5246. LFS_TRACE("lfs_mkdir(%p, \"%s\")", (void*)lfs, path);
  5247. err = lfs_rawmkdir(lfs, path);
  5248. LFS_TRACE("lfs_mkdir -> %d", err);
  5249. LFS_UNLOCK(lfs->cfg);
  5250. return err;
  5251. }
  5252. #endif
  5253. int lfs_dir_open(lfs_t *lfs, lfs_dir_t *dir, const char *path) {
  5254. int err = LFS_LOCK(lfs->cfg);
  5255. if (err) {
  5256. return err;
  5257. }
  5258. LFS_TRACE("lfs_dir_open(%p, %p, \"%s\")", (void*)lfs, (void*)dir, path);
  5259. LFS_ASSERT(!lfs_mlist_isopen(lfs->mlist, (struct lfs_mlist*)dir));
  5260. err = lfs_dir_rawopen(lfs, dir, path);
  5261. LFS_TRACE("lfs_dir_open -> %d", err);
  5262. LFS_UNLOCK(lfs->cfg);
  5263. return err;
  5264. }
  5265. int lfs_dir_close(lfs_t *lfs, lfs_dir_t *dir) {
  5266. int err = LFS_LOCK(lfs->cfg);
  5267. if (err) {
  5268. return err;
  5269. }
  5270. LFS_TRACE("lfs_dir_close(%p, %p)", (void*)lfs, (void*)dir);
  5271. err = lfs_dir_rawclose(lfs, dir);
  5272. LFS_TRACE("lfs_dir_close -> %d", err);
  5273. LFS_UNLOCK(lfs->cfg);
  5274. return err;
  5275. }
  5276. int lfs_dir_read(lfs_t *lfs, lfs_dir_t *dir, struct lfs_info *info) {
  5277. int err = LFS_LOCK(lfs->cfg);
  5278. if (err) {
  5279. return err;
  5280. }
  5281. LFS_TRACE("lfs_dir_read(%p, %p, %p)",
  5282. (void*)lfs, (void*)dir, (void*)info);
  5283. err = lfs_dir_rawread(lfs, dir, info);
  5284. LFS_TRACE("lfs_dir_read -> %d", err);
  5285. LFS_UNLOCK(lfs->cfg);
  5286. return err;
  5287. }
  5288. int lfs_dir_seek(lfs_t *lfs, lfs_dir_t *dir, lfs_off_t off) {
  5289. int err = LFS_LOCK(lfs->cfg);
  5290. if (err) {
  5291. return err;
  5292. }
  5293. LFS_TRACE("lfs_dir_seek(%p, %p, %"PRIu32")",
  5294. (void*)lfs, (void*)dir, off);
  5295. err = lfs_dir_rawseek(lfs, dir, off);
  5296. LFS_TRACE("lfs_dir_seek -> %d", err);
  5297. LFS_UNLOCK(lfs->cfg);
  5298. return err;
  5299. }
  5300. lfs_soff_t lfs_dir_tell(lfs_t *lfs, lfs_dir_t *dir) {
  5301. int err = LFS_LOCK(lfs->cfg);
  5302. if (err) {
  5303. return err;
  5304. }
  5305. LFS_TRACE("lfs_dir_tell(%p, %p)", (void*)lfs, (void*)dir);
  5306. lfs_soff_t res = lfs_dir_rawtell(lfs, dir);
  5307. LFS_TRACE("lfs_dir_tell -> %"PRId32, res);
  5308. LFS_UNLOCK(lfs->cfg);
  5309. return res;
  5310. }
  5311. int lfs_dir_rewind(lfs_t *lfs, lfs_dir_t *dir) {
  5312. int err = LFS_LOCK(lfs->cfg);
  5313. if (err) {
  5314. return err;
  5315. }
  5316. LFS_TRACE("lfs_dir_rewind(%p, %p)", (void*)lfs, (void*)dir);
  5317. err = lfs_dir_rawrewind(lfs, dir);
  5318. LFS_TRACE("lfs_dir_rewind -> %d", err);
  5319. LFS_UNLOCK(lfs->cfg);
  5320. return err;
  5321. }
  5322. int lfs_fs_stat(lfs_t *lfs, struct lfs_fsinfo *fsinfo) {
  5323. int err = LFS_LOCK(lfs->cfg);
  5324. if (err) {
  5325. return err;
  5326. }
  5327. LFS_TRACE("lfs_fs_stat(%p, %p)", (void*)lfs, (void*)fsinfo);
  5328. err = lfs_fs_rawstat(lfs, fsinfo);
  5329. LFS_TRACE("lfs_fs_stat -> %d", err);
  5330. LFS_UNLOCK(lfs->cfg);
  5331. return err;
  5332. }
  5333. lfs_ssize_t lfs_fs_size(lfs_t *lfs) {
  5334. int err = LFS_LOCK(lfs->cfg);
  5335. if (err) {
  5336. return err;
  5337. }
  5338. LFS_TRACE("lfs_fs_size(%p)", (void*)lfs);
  5339. lfs_ssize_t res = lfs_fs_rawsize(lfs);
  5340. LFS_TRACE("lfs_fs_size -> %"PRId32, res);
  5341. LFS_UNLOCK(lfs->cfg);
  5342. return res;
  5343. }
  5344. int lfs_fs_traverse(lfs_t *lfs, int (*cb)(void *, lfs_block_t), void *data) {
  5345. int err = LFS_LOCK(lfs->cfg);
  5346. if (err) {
  5347. return err;
  5348. }
  5349. LFS_TRACE("lfs_fs_traverse(%p, %p, %p)",
  5350. (void*)lfs, (void*)(uintptr_t)cb, data);
  5351. err = lfs_fs_rawtraverse(lfs, cb, data, true);
  5352. LFS_TRACE("lfs_fs_traverse -> %d", err);
  5353. LFS_UNLOCK(lfs->cfg);
  5354. return err;
  5355. }
  5356. #ifndef LFS_READONLY
  5357. int lfs_fs_gc(lfs_t *lfs) {
  5358. int err = LFS_LOCK(lfs->cfg);
  5359. if (err) {
  5360. return err;
  5361. }
  5362. LFS_TRACE("lfs_fs_gc(%p)", (void*)lfs);
  5363. err = lfs_fs_rawgc(lfs);
  5364. LFS_TRACE("lfs_fs_gc -> %d", err);
  5365. LFS_UNLOCK(lfs->cfg);
  5366. return err;
  5367. }
  5368. #endif
  5369. #ifndef LFS_READONLY
  5370. int lfs_fs_mkconsistent(lfs_t *lfs) {
  5371. int err = LFS_LOCK(lfs->cfg);
  5372. if (err) {
  5373. return err;
  5374. }
  5375. LFS_TRACE("lfs_fs_mkconsistent(%p)", (void*)lfs);
  5376. err = lfs_fs_rawmkconsistent(lfs);
  5377. LFS_TRACE("lfs_fs_mkconsistent -> %d", err);
  5378. LFS_UNLOCK(lfs->cfg);
  5379. return err;
  5380. }
  5381. #endif
  5382. #ifndef LFS_READONLY
  5383. int lfs_fs_grow(lfs_t *lfs, lfs_size_t block_count) {
  5384. int err = LFS_LOCK(lfs->cfg);
  5385. if (err) {
  5386. return err;
  5387. }
  5388. LFS_TRACE("lfs_fs_grow(%p, %"PRIu32")", (void*)lfs, block_count);
  5389. err = lfs_fs_rawgrow(lfs, block_count);
  5390. LFS_TRACE("lfs_fs_grow -> %d", err);
  5391. LFS_UNLOCK(lfs->cfg);
  5392. return err;
  5393. }
  5394. #endif
  5395. #ifdef LFS_MIGRATE
  5396. int lfs_migrate(lfs_t *lfs, const struct lfs_config *cfg) {
  5397. int err = LFS_LOCK(cfg);
  5398. if (err) {
  5399. return err;
  5400. }
  5401. LFS_TRACE("lfs_migrate(%p, %p {.context=%p, "
  5402. ".read=%p, .prog=%p, .erase=%p, .sync=%p, "
  5403. ".read_size=%"PRIu32", .prog_size=%"PRIu32", "
  5404. ".block_size=%"PRIu32", .block_count=%"PRIu32", "
  5405. ".block_cycles=%"PRIu32", .cache_size=%"PRIu32", "
  5406. ".lookahead_size=%"PRIu32", .read_buffer=%p, "
  5407. ".prog_buffer=%p, .lookahead_buffer=%p, "
  5408. ".name_max=%"PRIu32", .file_max=%"PRIu32", "
  5409. ".attr_max=%"PRIu32"})",
  5410. (void*)lfs, (void*)cfg, cfg->context,
  5411. (void*)(uintptr_t)cfg->read, (void*)(uintptr_t)cfg->prog,
  5412. (void*)(uintptr_t)cfg->erase, (void*)(uintptr_t)cfg->sync,
  5413. cfg->read_size, cfg->prog_size, cfg->block_size, cfg->block_count,
  5414. cfg->block_cycles, cfg->cache_size, cfg->lookahead_size,
  5415. cfg->read_buffer, cfg->prog_buffer, cfg->lookahead_buffer,
  5416. cfg->name_max, cfg->file_max, cfg->attr_max);
  5417. err = lfs_rawmigrate(lfs, cfg);
  5418. LFS_TRACE("lfs_migrate -> %d", err);
  5419. LFS_UNLOCK(cfg);
  5420. return err;
  5421. }
  5422. #endif