xfs_alloc_btree.c 14 KB

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  1. /*
  2. * Copyright (c) 2000-2001,2005 Silicon Graphics, Inc.
  3. * All Rights Reserved.
  4. *
  5. * This program is free software; you can redistribute it and/or
  6. * modify it under the terms of the GNU General Public License as
  7. * published by the Free Software Foundation.
  8. *
  9. * This program is distributed in the hope that it would be useful,
  10. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. * GNU General Public License for more details.
  13. *
  14. * You should have received a copy of the GNU General Public License
  15. * along with this program; if not, write the Free Software Foundation,
  16. * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
  17. */
  18. #include "xfs.h"
  19. #include "xfs_fs.h"
  20. #include "xfs_shared.h"
  21. #include "xfs_format.h"
  22. #include "xfs_log_format.h"
  23. #include "xfs_trans_resv.h"
  24. #include "xfs_sb.h"
  25. #include "xfs_mount.h"
  26. #include "xfs_btree.h"
  27. #include "xfs_alloc_btree.h"
  28. #include "xfs_alloc.h"
  29. #include "xfs_extent_busy.h"
  30. #include "xfs_error.h"
  31. #include "xfs_trace.h"
  32. #include "xfs_cksum.h"
  33. #include "xfs_trans.h"
  34. STATIC struct xfs_btree_cur *
  35. xfs_allocbt_dup_cursor(
  36. struct xfs_btree_cur *cur)
  37. {
  38. return xfs_allocbt_init_cursor(cur->bc_mp, cur->bc_tp,
  39. cur->bc_private.a.agbp, cur->bc_private.a.agno,
  40. cur->bc_btnum);
  41. }
  42. STATIC void
  43. xfs_allocbt_set_root(
  44. struct xfs_btree_cur *cur,
  45. union xfs_btree_ptr *ptr,
  46. int inc)
  47. {
  48. struct xfs_buf *agbp = cur->bc_private.a.agbp;
  49. struct xfs_agf *agf = XFS_BUF_TO_AGF(agbp);
  50. xfs_agnumber_t seqno = be32_to_cpu(agf->agf_seqno);
  51. int btnum = cur->bc_btnum;
  52. struct xfs_perag *pag = xfs_perag_get(cur->bc_mp, seqno);
  53. ASSERT(ptr->s != 0);
  54. agf->agf_roots[btnum] = ptr->s;
  55. be32_add_cpu(&agf->agf_levels[btnum], inc);
  56. pag->pagf_levels[btnum] += inc;
  57. xfs_perag_put(pag);
  58. xfs_alloc_log_agf(cur->bc_tp, agbp, XFS_AGF_ROOTS | XFS_AGF_LEVELS);
  59. }
  60. STATIC int
  61. xfs_allocbt_alloc_block(
  62. struct xfs_btree_cur *cur,
  63. union xfs_btree_ptr *start,
  64. union xfs_btree_ptr *new,
  65. int *stat)
  66. {
  67. int error;
  68. xfs_agblock_t bno;
  69. XFS_BTREE_TRACE_CURSOR(cur, XBT_ENTRY);
  70. /* Allocate the new block from the freelist. If we can't, give up. */
  71. error = xfs_alloc_get_freelist(cur->bc_tp, cur->bc_private.a.agbp,
  72. &bno, 1);
  73. if (error) {
  74. XFS_BTREE_TRACE_CURSOR(cur, XBT_ERROR);
  75. return error;
  76. }
  77. if (bno == NULLAGBLOCK) {
  78. XFS_BTREE_TRACE_CURSOR(cur, XBT_EXIT);
  79. *stat = 0;
  80. return 0;
  81. }
  82. xfs_extent_busy_reuse(cur->bc_mp, cur->bc_private.a.agno, bno, 1, false);
  83. xfs_trans_agbtree_delta(cur->bc_tp, 1);
  84. new->s = cpu_to_be32(bno);
  85. XFS_BTREE_TRACE_CURSOR(cur, XBT_EXIT);
  86. *stat = 1;
  87. return 0;
  88. }
  89. STATIC int
  90. xfs_allocbt_free_block(
  91. struct xfs_btree_cur *cur,
  92. struct xfs_buf *bp)
  93. {
  94. struct xfs_buf *agbp = cur->bc_private.a.agbp;
  95. struct xfs_agf *agf = XFS_BUF_TO_AGF(agbp);
  96. xfs_agblock_t bno;
  97. int error;
  98. bno = xfs_daddr_to_agbno(cur->bc_mp, XFS_BUF_ADDR(bp));
  99. error = xfs_alloc_put_freelist(cur->bc_tp, agbp, NULL, bno, 1);
  100. if (error)
  101. return error;
  102. xfs_extent_busy_insert(cur->bc_tp, be32_to_cpu(agf->agf_seqno), bno, 1,
  103. XFS_EXTENT_BUSY_SKIP_DISCARD);
  104. xfs_trans_agbtree_delta(cur->bc_tp, -1);
  105. return 0;
  106. }
  107. /*
  108. * Update the longest extent in the AGF
  109. */
  110. STATIC void
  111. xfs_allocbt_update_lastrec(
  112. struct xfs_btree_cur *cur,
  113. struct xfs_btree_block *block,
  114. union xfs_btree_rec *rec,
  115. int ptr,
  116. int reason)
  117. {
  118. struct xfs_agf *agf = XFS_BUF_TO_AGF(cur->bc_private.a.agbp);
  119. xfs_agnumber_t seqno = be32_to_cpu(agf->agf_seqno);
  120. struct xfs_perag *pag;
  121. __be32 len;
  122. int numrecs;
  123. ASSERT(cur->bc_btnum == XFS_BTNUM_CNT);
  124. switch (reason) {
  125. case LASTREC_UPDATE:
  126. /*
  127. * If this is the last leaf block and it's the last record,
  128. * then update the size of the longest extent in the AG.
  129. */
  130. if (ptr != xfs_btree_get_numrecs(block))
  131. return;
  132. len = rec->alloc.ar_blockcount;
  133. break;
  134. case LASTREC_INSREC:
  135. if (be32_to_cpu(rec->alloc.ar_blockcount) <=
  136. be32_to_cpu(agf->agf_longest))
  137. return;
  138. len = rec->alloc.ar_blockcount;
  139. break;
  140. case LASTREC_DELREC:
  141. numrecs = xfs_btree_get_numrecs(block);
  142. if (ptr <= numrecs)
  143. return;
  144. ASSERT(ptr == numrecs + 1);
  145. if (numrecs) {
  146. xfs_alloc_rec_t *rrp;
  147. rrp = XFS_ALLOC_REC_ADDR(cur->bc_mp, block, numrecs);
  148. len = rrp->ar_blockcount;
  149. } else {
  150. len = 0;
  151. }
  152. break;
  153. default:
  154. ASSERT(0);
  155. return;
  156. }
  157. agf->agf_longest = len;
  158. pag = xfs_perag_get(cur->bc_mp, seqno);
  159. pag->pagf_longest = be32_to_cpu(len);
  160. xfs_perag_put(pag);
  161. xfs_alloc_log_agf(cur->bc_tp, cur->bc_private.a.agbp, XFS_AGF_LONGEST);
  162. }
  163. STATIC int
  164. xfs_allocbt_get_minrecs(
  165. struct xfs_btree_cur *cur,
  166. int level)
  167. {
  168. return cur->bc_mp->m_alloc_mnr[level != 0];
  169. }
  170. STATIC int
  171. xfs_allocbt_get_maxrecs(
  172. struct xfs_btree_cur *cur,
  173. int level)
  174. {
  175. return cur->bc_mp->m_alloc_mxr[level != 0];
  176. }
  177. STATIC void
  178. xfs_allocbt_init_key_from_rec(
  179. union xfs_btree_key *key,
  180. union xfs_btree_rec *rec)
  181. {
  182. key->alloc.ar_startblock = rec->alloc.ar_startblock;
  183. key->alloc.ar_blockcount = rec->alloc.ar_blockcount;
  184. }
  185. STATIC void
  186. xfs_bnobt_init_high_key_from_rec(
  187. union xfs_btree_key *key,
  188. union xfs_btree_rec *rec)
  189. {
  190. __u32 x;
  191. x = be32_to_cpu(rec->alloc.ar_startblock);
  192. x += be32_to_cpu(rec->alloc.ar_blockcount) - 1;
  193. key->alloc.ar_startblock = cpu_to_be32(x);
  194. key->alloc.ar_blockcount = 0;
  195. }
  196. STATIC void
  197. xfs_cntbt_init_high_key_from_rec(
  198. union xfs_btree_key *key,
  199. union xfs_btree_rec *rec)
  200. {
  201. key->alloc.ar_blockcount = rec->alloc.ar_blockcount;
  202. key->alloc.ar_startblock = 0;
  203. }
  204. STATIC void
  205. xfs_allocbt_init_rec_from_cur(
  206. struct xfs_btree_cur *cur,
  207. union xfs_btree_rec *rec)
  208. {
  209. rec->alloc.ar_startblock = cpu_to_be32(cur->bc_rec.a.ar_startblock);
  210. rec->alloc.ar_blockcount = cpu_to_be32(cur->bc_rec.a.ar_blockcount);
  211. }
  212. STATIC void
  213. xfs_allocbt_init_ptr_from_cur(
  214. struct xfs_btree_cur *cur,
  215. union xfs_btree_ptr *ptr)
  216. {
  217. struct xfs_agf *agf = XFS_BUF_TO_AGF(cur->bc_private.a.agbp);
  218. ASSERT(cur->bc_private.a.agno == be32_to_cpu(agf->agf_seqno));
  219. ASSERT(agf->agf_roots[cur->bc_btnum] != 0);
  220. ptr->s = agf->agf_roots[cur->bc_btnum];
  221. }
  222. STATIC int64_t
  223. xfs_bnobt_key_diff(
  224. struct xfs_btree_cur *cur,
  225. union xfs_btree_key *key)
  226. {
  227. xfs_alloc_rec_incore_t *rec = &cur->bc_rec.a;
  228. xfs_alloc_key_t *kp = &key->alloc;
  229. return (int64_t)be32_to_cpu(kp->ar_startblock) - rec->ar_startblock;
  230. }
  231. STATIC int64_t
  232. xfs_cntbt_key_diff(
  233. struct xfs_btree_cur *cur,
  234. union xfs_btree_key *key)
  235. {
  236. xfs_alloc_rec_incore_t *rec = &cur->bc_rec.a;
  237. xfs_alloc_key_t *kp = &key->alloc;
  238. int64_t diff;
  239. diff = (int64_t)be32_to_cpu(kp->ar_blockcount) - rec->ar_blockcount;
  240. if (diff)
  241. return diff;
  242. return (int64_t)be32_to_cpu(kp->ar_startblock) - rec->ar_startblock;
  243. }
  244. STATIC int64_t
  245. xfs_bnobt_diff_two_keys(
  246. struct xfs_btree_cur *cur,
  247. union xfs_btree_key *k1,
  248. union xfs_btree_key *k2)
  249. {
  250. return (int64_t)be32_to_cpu(k1->alloc.ar_startblock) -
  251. be32_to_cpu(k2->alloc.ar_startblock);
  252. }
  253. STATIC int64_t
  254. xfs_cntbt_diff_two_keys(
  255. struct xfs_btree_cur *cur,
  256. union xfs_btree_key *k1,
  257. union xfs_btree_key *k2)
  258. {
  259. int64_t diff;
  260. diff = be32_to_cpu(k1->alloc.ar_blockcount) -
  261. be32_to_cpu(k2->alloc.ar_blockcount);
  262. if (diff)
  263. return diff;
  264. return be32_to_cpu(k1->alloc.ar_startblock) -
  265. be32_to_cpu(k2->alloc.ar_startblock);
  266. }
  267. static bool
  268. xfs_allocbt_verify(
  269. struct xfs_buf *bp)
  270. {
  271. struct xfs_mount *mp = bp->b_target->bt_mount;
  272. struct xfs_btree_block *block = XFS_BUF_TO_BLOCK(bp);
  273. struct xfs_perag *pag = bp->b_pag;
  274. unsigned int level;
  275. /*
  276. * magic number and level verification
  277. *
  278. * During growfs operations, we can't verify the exact level or owner as
  279. * the perag is not fully initialised and hence not attached to the
  280. * buffer. In this case, check against the maximum tree depth.
  281. *
  282. * Similarly, during log recovery we will have a perag structure
  283. * attached, but the agf information will not yet have been initialised
  284. * from the on disk AGF. Again, we can only check against maximum limits
  285. * in this case.
  286. */
  287. level = be16_to_cpu(block->bb_level);
  288. switch (block->bb_magic) {
  289. case cpu_to_be32(XFS_ABTB_CRC_MAGIC):
  290. if (!xfs_btree_sblock_v5hdr_verify(bp))
  291. return false;
  292. /* fall through */
  293. case cpu_to_be32(XFS_ABTB_MAGIC):
  294. if (pag && pag->pagf_init) {
  295. if (level >= pag->pagf_levels[XFS_BTNUM_BNOi])
  296. return false;
  297. } else if (level >= mp->m_ag_maxlevels)
  298. return false;
  299. break;
  300. case cpu_to_be32(XFS_ABTC_CRC_MAGIC):
  301. if (!xfs_btree_sblock_v5hdr_verify(bp))
  302. return false;
  303. /* fall through */
  304. case cpu_to_be32(XFS_ABTC_MAGIC):
  305. if (pag && pag->pagf_init) {
  306. if (level >= pag->pagf_levels[XFS_BTNUM_CNTi])
  307. return false;
  308. } else if (level >= mp->m_ag_maxlevels)
  309. return false;
  310. break;
  311. default:
  312. return false;
  313. }
  314. return xfs_btree_sblock_verify(bp, mp->m_alloc_mxr[level != 0]);
  315. }
  316. static void
  317. xfs_allocbt_read_verify(
  318. struct xfs_buf *bp)
  319. {
  320. if (!xfs_btree_sblock_verify_crc(bp))
  321. xfs_buf_ioerror(bp, -EFSBADCRC);
  322. else if (!xfs_allocbt_verify(bp))
  323. xfs_buf_ioerror(bp, -EFSCORRUPTED);
  324. if (bp->b_error) {
  325. trace_xfs_btree_corrupt(bp, _RET_IP_);
  326. xfs_verifier_error(bp);
  327. }
  328. }
  329. static void
  330. xfs_allocbt_write_verify(
  331. struct xfs_buf *bp)
  332. {
  333. if (!xfs_allocbt_verify(bp)) {
  334. trace_xfs_btree_corrupt(bp, _RET_IP_);
  335. xfs_buf_ioerror(bp, -EFSCORRUPTED);
  336. xfs_verifier_error(bp);
  337. return;
  338. }
  339. xfs_btree_sblock_calc_crc(bp);
  340. }
  341. const struct xfs_buf_ops xfs_allocbt_buf_ops = {
  342. .name = "xfs_allocbt",
  343. .verify_read = xfs_allocbt_read_verify,
  344. .verify_write = xfs_allocbt_write_verify,
  345. };
  346. STATIC int
  347. xfs_bnobt_keys_inorder(
  348. struct xfs_btree_cur *cur,
  349. union xfs_btree_key *k1,
  350. union xfs_btree_key *k2)
  351. {
  352. return be32_to_cpu(k1->alloc.ar_startblock) <
  353. be32_to_cpu(k2->alloc.ar_startblock);
  354. }
  355. STATIC int
  356. xfs_bnobt_recs_inorder(
  357. struct xfs_btree_cur *cur,
  358. union xfs_btree_rec *r1,
  359. union xfs_btree_rec *r2)
  360. {
  361. return be32_to_cpu(r1->alloc.ar_startblock) +
  362. be32_to_cpu(r1->alloc.ar_blockcount) <=
  363. be32_to_cpu(r2->alloc.ar_startblock);
  364. }
  365. STATIC int
  366. xfs_cntbt_keys_inorder(
  367. struct xfs_btree_cur *cur,
  368. union xfs_btree_key *k1,
  369. union xfs_btree_key *k2)
  370. {
  371. return be32_to_cpu(k1->alloc.ar_blockcount) <
  372. be32_to_cpu(k2->alloc.ar_blockcount) ||
  373. (k1->alloc.ar_blockcount == k2->alloc.ar_blockcount &&
  374. be32_to_cpu(k1->alloc.ar_startblock) <
  375. be32_to_cpu(k2->alloc.ar_startblock));
  376. }
  377. STATIC int
  378. xfs_cntbt_recs_inorder(
  379. struct xfs_btree_cur *cur,
  380. union xfs_btree_rec *r1,
  381. union xfs_btree_rec *r2)
  382. {
  383. return be32_to_cpu(r1->alloc.ar_blockcount) <
  384. be32_to_cpu(r2->alloc.ar_blockcount) ||
  385. (r1->alloc.ar_blockcount == r2->alloc.ar_blockcount &&
  386. be32_to_cpu(r1->alloc.ar_startblock) <
  387. be32_to_cpu(r2->alloc.ar_startblock));
  388. }
  389. static const struct xfs_btree_ops xfs_bnobt_ops = {
  390. .rec_len = sizeof(xfs_alloc_rec_t),
  391. .key_len = sizeof(xfs_alloc_key_t),
  392. .dup_cursor = xfs_allocbt_dup_cursor,
  393. .set_root = xfs_allocbt_set_root,
  394. .alloc_block = xfs_allocbt_alloc_block,
  395. .free_block = xfs_allocbt_free_block,
  396. .update_lastrec = xfs_allocbt_update_lastrec,
  397. .get_minrecs = xfs_allocbt_get_minrecs,
  398. .get_maxrecs = xfs_allocbt_get_maxrecs,
  399. .init_key_from_rec = xfs_allocbt_init_key_from_rec,
  400. .init_high_key_from_rec = xfs_bnobt_init_high_key_from_rec,
  401. .init_rec_from_cur = xfs_allocbt_init_rec_from_cur,
  402. .init_ptr_from_cur = xfs_allocbt_init_ptr_from_cur,
  403. .key_diff = xfs_bnobt_key_diff,
  404. .buf_ops = &xfs_allocbt_buf_ops,
  405. .diff_two_keys = xfs_bnobt_diff_two_keys,
  406. .keys_inorder = xfs_bnobt_keys_inorder,
  407. .recs_inorder = xfs_bnobt_recs_inorder,
  408. };
  409. static const struct xfs_btree_ops xfs_cntbt_ops = {
  410. .rec_len = sizeof(xfs_alloc_rec_t),
  411. .key_len = sizeof(xfs_alloc_key_t),
  412. .dup_cursor = xfs_allocbt_dup_cursor,
  413. .set_root = xfs_allocbt_set_root,
  414. .alloc_block = xfs_allocbt_alloc_block,
  415. .free_block = xfs_allocbt_free_block,
  416. .update_lastrec = xfs_allocbt_update_lastrec,
  417. .get_minrecs = xfs_allocbt_get_minrecs,
  418. .get_maxrecs = xfs_allocbt_get_maxrecs,
  419. .init_key_from_rec = xfs_allocbt_init_key_from_rec,
  420. .init_high_key_from_rec = xfs_cntbt_init_high_key_from_rec,
  421. .init_rec_from_cur = xfs_allocbt_init_rec_from_cur,
  422. .init_ptr_from_cur = xfs_allocbt_init_ptr_from_cur,
  423. .key_diff = xfs_cntbt_key_diff,
  424. .buf_ops = &xfs_allocbt_buf_ops,
  425. .diff_two_keys = xfs_cntbt_diff_two_keys,
  426. .keys_inorder = xfs_cntbt_keys_inorder,
  427. .recs_inorder = xfs_cntbt_recs_inorder,
  428. };
  429. /*
  430. * Allocate a new allocation btree cursor.
  431. */
  432. struct xfs_btree_cur * /* new alloc btree cursor */
  433. xfs_allocbt_init_cursor(
  434. struct xfs_mount *mp, /* file system mount point */
  435. struct xfs_trans *tp, /* transaction pointer */
  436. struct xfs_buf *agbp, /* buffer for agf structure */
  437. xfs_agnumber_t agno, /* allocation group number */
  438. xfs_btnum_t btnum) /* btree identifier */
  439. {
  440. struct xfs_agf *agf = XFS_BUF_TO_AGF(agbp);
  441. struct xfs_btree_cur *cur;
  442. ASSERT(btnum == XFS_BTNUM_BNO || btnum == XFS_BTNUM_CNT);
  443. cur = kmem_zone_zalloc(xfs_btree_cur_zone, KM_NOFS);
  444. cur->bc_tp = tp;
  445. cur->bc_mp = mp;
  446. cur->bc_btnum = btnum;
  447. cur->bc_blocklog = mp->m_sb.sb_blocklog;
  448. if (btnum == XFS_BTNUM_CNT) {
  449. cur->bc_statoff = XFS_STATS_CALC_INDEX(xs_abtc_2);
  450. cur->bc_ops = &xfs_cntbt_ops;
  451. cur->bc_nlevels = be32_to_cpu(agf->agf_levels[XFS_BTNUM_CNT]);
  452. cur->bc_flags = XFS_BTREE_LASTREC_UPDATE;
  453. } else {
  454. cur->bc_statoff = XFS_STATS_CALC_INDEX(xs_abtb_2);
  455. cur->bc_ops = &xfs_bnobt_ops;
  456. cur->bc_nlevels = be32_to_cpu(agf->agf_levels[XFS_BTNUM_BNO]);
  457. }
  458. cur->bc_private.a.agbp = agbp;
  459. cur->bc_private.a.agno = agno;
  460. if (xfs_sb_version_hascrc(&mp->m_sb))
  461. cur->bc_flags |= XFS_BTREE_CRC_BLOCKS;
  462. return cur;
  463. }
  464. /*
  465. * Calculate number of records in an alloc btree block.
  466. */
  467. int
  468. xfs_allocbt_maxrecs(
  469. struct xfs_mount *mp,
  470. int blocklen,
  471. int leaf)
  472. {
  473. blocklen -= XFS_ALLOC_BLOCK_LEN(mp);
  474. if (leaf)
  475. return blocklen / sizeof(xfs_alloc_rec_t);
  476. return blocklen / (sizeof(xfs_alloc_key_t) + sizeof(xfs_alloc_ptr_t));
  477. }