bkey_methods.c 12 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. #include "bcachefs.h"
  3. #include "backpointers.h"
  4. #include "bkey_methods.h"
  5. #include "btree_cache.h"
  6. #include "btree_types.h"
  7. #include "alloc_background.h"
  8. #include "dirent.h"
  9. #include "disk_accounting.h"
  10. #include "ec.h"
  11. #include "error.h"
  12. #include "extents.h"
  13. #include "inode.h"
  14. #include "io_misc.h"
  15. #include "lru.h"
  16. #include "quota.h"
  17. #include "reflink.h"
  18. #include "snapshot.h"
  19. #include "subvolume.h"
  20. #include "xattr.h"
  21. const char * const bch2_bkey_types[] = {
  22. #define x(name, nr) #name,
  23. BCH_BKEY_TYPES()
  24. #undef x
  25. NULL
  26. };
  27. static int deleted_key_validate(struct bch_fs *c, struct bkey_s_c k,
  28. enum bch_validate_flags flags)
  29. {
  30. return 0;
  31. }
  32. #define bch2_bkey_ops_deleted ((struct bkey_ops) { \
  33. .key_validate = deleted_key_validate, \
  34. })
  35. #define bch2_bkey_ops_whiteout ((struct bkey_ops) { \
  36. .key_validate = deleted_key_validate, \
  37. })
  38. static int empty_val_key_validate(struct bch_fs *c, struct bkey_s_c k,
  39. enum bch_validate_flags flags)
  40. {
  41. int ret = 0;
  42. bkey_fsck_err_on(bkey_val_bytes(k.k),
  43. c, bkey_val_size_nonzero,
  44. "incorrect value size (%zu != 0)",
  45. bkey_val_bytes(k.k));
  46. fsck_err:
  47. return ret;
  48. }
  49. #define bch2_bkey_ops_error ((struct bkey_ops) { \
  50. .key_validate = empty_val_key_validate, \
  51. })
  52. static int key_type_cookie_validate(struct bch_fs *c, struct bkey_s_c k,
  53. enum bch_validate_flags flags)
  54. {
  55. return 0;
  56. }
  57. static void key_type_cookie_to_text(struct printbuf *out, struct bch_fs *c,
  58. struct bkey_s_c k)
  59. {
  60. struct bkey_s_c_cookie ck = bkey_s_c_to_cookie(k);
  61. prt_printf(out, "%llu", le64_to_cpu(ck.v->cookie));
  62. }
  63. #define bch2_bkey_ops_cookie ((struct bkey_ops) { \
  64. .key_validate = key_type_cookie_validate, \
  65. .val_to_text = key_type_cookie_to_text, \
  66. .min_val_size = 8, \
  67. })
  68. #define bch2_bkey_ops_hash_whiteout ((struct bkey_ops) {\
  69. .key_validate = empty_val_key_validate, \
  70. })
  71. static int key_type_inline_data_validate(struct bch_fs *c, struct bkey_s_c k,
  72. enum bch_validate_flags flags)
  73. {
  74. return 0;
  75. }
  76. static void key_type_inline_data_to_text(struct printbuf *out, struct bch_fs *c,
  77. struct bkey_s_c k)
  78. {
  79. struct bkey_s_c_inline_data d = bkey_s_c_to_inline_data(k);
  80. unsigned datalen = bkey_inline_data_bytes(k.k);
  81. prt_printf(out, "datalen %u: %*phN",
  82. datalen, min(datalen, 32U), d.v->data);
  83. }
  84. #define bch2_bkey_ops_inline_data ((struct bkey_ops) { \
  85. .key_validate = key_type_inline_data_validate, \
  86. .val_to_text = key_type_inline_data_to_text, \
  87. })
  88. static bool key_type_set_merge(struct bch_fs *c, struct bkey_s l, struct bkey_s_c r)
  89. {
  90. bch2_key_resize(l.k, l.k->size + r.k->size);
  91. return true;
  92. }
  93. #define bch2_bkey_ops_set ((struct bkey_ops) { \
  94. .key_validate = empty_val_key_validate, \
  95. .key_merge = key_type_set_merge, \
  96. })
  97. const struct bkey_ops bch2_bkey_ops[] = {
  98. #define x(name, nr) [KEY_TYPE_##name] = bch2_bkey_ops_##name,
  99. BCH_BKEY_TYPES()
  100. #undef x
  101. };
  102. const struct bkey_ops bch2_bkey_null_ops = {
  103. };
  104. int bch2_bkey_val_validate(struct bch_fs *c, struct bkey_s_c k,
  105. enum bch_validate_flags flags)
  106. {
  107. if (test_bit(BCH_FS_no_invalid_checks, &c->flags))
  108. return 0;
  109. const struct bkey_ops *ops = bch2_bkey_type_ops(k.k->type);
  110. int ret = 0;
  111. bkey_fsck_err_on(bkey_val_bytes(k.k) < ops->min_val_size,
  112. c, bkey_val_size_too_small,
  113. "bad val size (%zu < %u)",
  114. bkey_val_bytes(k.k), ops->min_val_size);
  115. if (!ops->key_validate)
  116. return 0;
  117. ret = ops->key_validate(c, k, flags);
  118. fsck_err:
  119. return ret;
  120. }
  121. static u64 bch2_key_types_allowed[] = {
  122. [BKEY_TYPE_btree] =
  123. BIT_ULL(KEY_TYPE_deleted)|
  124. BIT_ULL(KEY_TYPE_btree_ptr)|
  125. BIT_ULL(KEY_TYPE_btree_ptr_v2),
  126. #define x(name, nr, flags, keys) [BKEY_TYPE_##name] = BIT_ULL(KEY_TYPE_deleted)|keys,
  127. BCH_BTREE_IDS()
  128. #undef x
  129. };
  130. const char *bch2_btree_node_type_str(enum btree_node_type type)
  131. {
  132. return type == BKEY_TYPE_btree ? "internal btree node" : bch2_btree_id_str(type - 1);
  133. }
  134. int __bch2_bkey_validate(struct bch_fs *c, struct bkey_s_c k,
  135. enum btree_node_type type,
  136. enum bch_validate_flags flags)
  137. {
  138. if (test_bit(BCH_FS_no_invalid_checks, &c->flags))
  139. return 0;
  140. int ret = 0;
  141. bkey_fsck_err_on(k.k->u64s < BKEY_U64s,
  142. c, bkey_u64s_too_small,
  143. "u64s too small (%u < %zu)", k.k->u64s, BKEY_U64s);
  144. if (type >= BKEY_TYPE_NR)
  145. return 0;
  146. bkey_fsck_err_on(k.k->type < KEY_TYPE_MAX &&
  147. (type == BKEY_TYPE_btree || (flags & BCH_VALIDATE_commit)) &&
  148. !(bch2_key_types_allowed[type] & BIT_ULL(k.k->type)),
  149. c, bkey_invalid_type_for_btree,
  150. "invalid key type for btree %s (%s)",
  151. bch2_btree_node_type_str(type),
  152. k.k->type < KEY_TYPE_MAX
  153. ? bch2_bkey_types[k.k->type]
  154. : "(unknown)");
  155. if (btree_node_type_is_extents(type) && !bkey_whiteout(k.k)) {
  156. bkey_fsck_err_on(k.k->size == 0,
  157. c, bkey_extent_size_zero,
  158. "size == 0");
  159. bkey_fsck_err_on(k.k->size > k.k->p.offset,
  160. c, bkey_extent_size_greater_than_offset,
  161. "size greater than offset (%u > %llu)",
  162. k.k->size, k.k->p.offset);
  163. } else {
  164. bkey_fsck_err_on(k.k->size,
  165. c, bkey_size_nonzero,
  166. "size != 0");
  167. }
  168. if (type != BKEY_TYPE_btree) {
  169. enum btree_id btree = type - 1;
  170. if (btree_type_has_snapshots(btree)) {
  171. bkey_fsck_err_on(!k.k->p.snapshot,
  172. c, bkey_snapshot_zero,
  173. "snapshot == 0");
  174. } else if (!btree_type_has_snapshot_field(btree)) {
  175. bkey_fsck_err_on(k.k->p.snapshot,
  176. c, bkey_snapshot_nonzero,
  177. "nonzero snapshot");
  178. } else {
  179. /*
  180. * btree uses snapshot field but it's not required to be
  181. * nonzero
  182. */
  183. }
  184. bkey_fsck_err_on(bkey_eq(k.k->p, POS_MAX),
  185. c, bkey_at_pos_max,
  186. "key at POS_MAX");
  187. }
  188. fsck_err:
  189. return ret;
  190. }
  191. int bch2_bkey_validate(struct bch_fs *c, struct bkey_s_c k,
  192. enum btree_node_type type,
  193. enum bch_validate_flags flags)
  194. {
  195. return __bch2_bkey_validate(c, k, type, flags) ?:
  196. bch2_bkey_val_validate(c, k, flags);
  197. }
  198. int bch2_bkey_in_btree_node(struct bch_fs *c, struct btree *b,
  199. struct bkey_s_c k, enum bch_validate_flags flags)
  200. {
  201. int ret = 0;
  202. bkey_fsck_err_on(bpos_lt(k.k->p, b->data->min_key),
  203. c, bkey_before_start_of_btree_node,
  204. "key before start of btree node");
  205. bkey_fsck_err_on(bpos_gt(k.k->p, b->data->max_key),
  206. c, bkey_after_end_of_btree_node,
  207. "key past end of btree node");
  208. fsck_err:
  209. return ret;
  210. }
  211. void bch2_bpos_to_text(struct printbuf *out, struct bpos pos)
  212. {
  213. if (bpos_eq(pos, POS_MIN))
  214. prt_printf(out, "POS_MIN");
  215. else if (bpos_eq(pos, POS_MAX))
  216. prt_printf(out, "POS_MAX");
  217. else if (bpos_eq(pos, SPOS_MAX))
  218. prt_printf(out, "SPOS_MAX");
  219. else {
  220. if (pos.inode == U64_MAX)
  221. prt_printf(out, "U64_MAX");
  222. else
  223. prt_printf(out, "%llu", pos.inode);
  224. prt_printf(out, ":");
  225. if (pos.offset == U64_MAX)
  226. prt_printf(out, "U64_MAX");
  227. else
  228. prt_printf(out, "%llu", pos.offset);
  229. prt_printf(out, ":");
  230. if (pos.snapshot == U32_MAX)
  231. prt_printf(out, "U32_MAX");
  232. else
  233. prt_printf(out, "%u", pos.snapshot);
  234. }
  235. }
  236. void bch2_bkey_to_text(struct printbuf *out, const struct bkey *k)
  237. {
  238. if (k) {
  239. prt_printf(out, "u64s %u type ", k->u64s);
  240. if (k->type < KEY_TYPE_MAX)
  241. prt_printf(out, "%s ", bch2_bkey_types[k->type]);
  242. else
  243. prt_printf(out, "%u ", k->type);
  244. bch2_bpos_to_text(out, k->p);
  245. prt_printf(out, " len %u ver %llu", k->size, k->bversion.lo);
  246. } else {
  247. prt_printf(out, "(null)");
  248. }
  249. }
  250. void bch2_val_to_text(struct printbuf *out, struct bch_fs *c,
  251. struct bkey_s_c k)
  252. {
  253. const struct bkey_ops *ops = bch2_bkey_type_ops(k.k->type);
  254. if (likely(ops->val_to_text))
  255. ops->val_to_text(out, c, k);
  256. }
  257. void bch2_bkey_val_to_text(struct printbuf *out, struct bch_fs *c,
  258. struct bkey_s_c k)
  259. {
  260. bch2_bkey_to_text(out, k.k);
  261. if (bkey_val_bytes(k.k)) {
  262. prt_printf(out, ": ");
  263. bch2_val_to_text(out, c, k);
  264. }
  265. }
  266. void bch2_bkey_swab_val(struct bkey_s k)
  267. {
  268. const struct bkey_ops *ops = bch2_bkey_type_ops(k.k->type);
  269. if (ops->swab)
  270. ops->swab(k);
  271. }
  272. bool bch2_bkey_normalize(struct bch_fs *c, struct bkey_s k)
  273. {
  274. const struct bkey_ops *ops = bch2_bkey_type_ops(k.k->type);
  275. return ops->key_normalize
  276. ? ops->key_normalize(c, k)
  277. : false;
  278. }
  279. bool bch2_bkey_merge(struct bch_fs *c, struct bkey_s l, struct bkey_s_c r)
  280. {
  281. const struct bkey_ops *ops = bch2_bkey_type_ops(l.k->type);
  282. return ops->key_merge &&
  283. bch2_bkey_maybe_mergable(l.k, r.k) &&
  284. (u64) l.k->size + r.k->size <= KEY_SIZE_MAX &&
  285. !bch2_key_merging_disabled &&
  286. ops->key_merge(c, l, r);
  287. }
  288. static const struct old_bkey_type {
  289. u8 btree_node_type;
  290. u8 old;
  291. u8 new;
  292. } bkey_renumber_table[] = {
  293. {BKEY_TYPE_btree, 128, KEY_TYPE_btree_ptr },
  294. {BKEY_TYPE_extents, 128, KEY_TYPE_extent },
  295. {BKEY_TYPE_extents, 129, KEY_TYPE_extent },
  296. {BKEY_TYPE_extents, 130, KEY_TYPE_reservation },
  297. {BKEY_TYPE_inodes, 128, KEY_TYPE_inode },
  298. {BKEY_TYPE_inodes, 130, KEY_TYPE_inode_generation },
  299. {BKEY_TYPE_dirents, 128, KEY_TYPE_dirent },
  300. {BKEY_TYPE_dirents, 129, KEY_TYPE_hash_whiteout },
  301. {BKEY_TYPE_xattrs, 128, KEY_TYPE_xattr },
  302. {BKEY_TYPE_xattrs, 129, KEY_TYPE_hash_whiteout },
  303. {BKEY_TYPE_alloc, 128, KEY_TYPE_alloc },
  304. {BKEY_TYPE_quotas, 128, KEY_TYPE_quota },
  305. };
  306. void bch2_bkey_renumber(enum btree_node_type btree_node_type,
  307. struct bkey_packed *k,
  308. int write)
  309. {
  310. const struct old_bkey_type *i;
  311. for (i = bkey_renumber_table;
  312. i < bkey_renumber_table + ARRAY_SIZE(bkey_renumber_table);
  313. i++)
  314. if (btree_node_type == i->btree_node_type &&
  315. k->type == (write ? i->new : i->old)) {
  316. k->type = write ? i->old : i->new;
  317. break;
  318. }
  319. }
  320. void __bch2_bkey_compat(unsigned level, enum btree_id btree_id,
  321. unsigned version, unsigned big_endian,
  322. int write,
  323. struct bkey_format *f,
  324. struct bkey_packed *k)
  325. {
  326. const struct bkey_ops *ops;
  327. struct bkey uk;
  328. unsigned nr_compat = 5;
  329. int i;
  330. /*
  331. * Do these operations in reverse order in the write path:
  332. */
  333. for (i = 0; i < nr_compat; i++)
  334. switch (!write ? i : nr_compat - 1 - i) {
  335. case 0:
  336. if (big_endian != CPU_BIG_ENDIAN) {
  337. bch2_bkey_swab_key(f, k);
  338. } else if (IS_ENABLED(CONFIG_BCACHEFS_DEBUG)) {
  339. bch2_bkey_swab_key(f, k);
  340. bch2_bkey_swab_key(f, k);
  341. }
  342. break;
  343. case 1:
  344. if (version < bcachefs_metadata_version_bkey_renumber)
  345. bch2_bkey_renumber(__btree_node_type(level, btree_id), k, write);
  346. break;
  347. case 2:
  348. if (version < bcachefs_metadata_version_inode_btree_change &&
  349. btree_id == BTREE_ID_inodes) {
  350. if (!bkey_packed(k)) {
  351. struct bkey_i *u = packed_to_bkey(k);
  352. swap(u->k.p.inode, u->k.p.offset);
  353. } else if (f->bits_per_field[BKEY_FIELD_INODE] &&
  354. f->bits_per_field[BKEY_FIELD_OFFSET]) {
  355. struct bkey_format tmp = *f, *in = f, *out = &tmp;
  356. swap(tmp.bits_per_field[BKEY_FIELD_INODE],
  357. tmp.bits_per_field[BKEY_FIELD_OFFSET]);
  358. swap(tmp.field_offset[BKEY_FIELD_INODE],
  359. tmp.field_offset[BKEY_FIELD_OFFSET]);
  360. if (!write)
  361. swap(in, out);
  362. uk = __bch2_bkey_unpack_key(in, k);
  363. swap(uk.p.inode, uk.p.offset);
  364. BUG_ON(!bch2_bkey_pack_key(k, &uk, out));
  365. }
  366. }
  367. break;
  368. case 3:
  369. if (version < bcachefs_metadata_version_snapshot &&
  370. (level || btree_type_has_snapshots(btree_id))) {
  371. struct bkey_i *u = packed_to_bkey(k);
  372. if (u) {
  373. u->k.p.snapshot = write
  374. ? 0 : U32_MAX;
  375. } else {
  376. u64 min_packed = le64_to_cpu(f->field_offset[BKEY_FIELD_SNAPSHOT]);
  377. u64 max_packed = min_packed +
  378. ~(~0ULL << f->bits_per_field[BKEY_FIELD_SNAPSHOT]);
  379. uk = __bch2_bkey_unpack_key(f, k);
  380. uk.p.snapshot = write
  381. ? min_packed : min_t(u64, U32_MAX, max_packed);
  382. BUG_ON(!bch2_bkey_pack_key(k, &uk, f));
  383. }
  384. }
  385. break;
  386. case 4: {
  387. struct bkey_s u;
  388. if (!bkey_packed(k)) {
  389. u = bkey_i_to_s(packed_to_bkey(k));
  390. } else {
  391. uk = __bch2_bkey_unpack_key(f, k);
  392. u.k = &uk;
  393. u.v = bkeyp_val(f, k);
  394. }
  395. if (big_endian != CPU_BIG_ENDIAN)
  396. bch2_bkey_swab_val(u);
  397. ops = bch2_bkey_type_ops(k->type);
  398. if (ops->compat)
  399. ops->compat(btree_id, version, big_endian, write, u);
  400. break;
  401. }
  402. default:
  403. BUG();
  404. }
  405. }