xfs_inode.c 124 KB

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  1. /*
  2. * Copyright (c) 2000-2006 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 <linux/log2.h>
  19. #include "xfs.h"
  20. #include "xfs_fs.h"
  21. #include "xfs_types.h"
  22. #include "xfs_bit.h"
  23. #include "xfs_log.h"
  24. #include "xfs_inum.h"
  25. #include "xfs_trans.h"
  26. #include "xfs_trans_priv.h"
  27. #include "xfs_sb.h"
  28. #include "xfs_ag.h"
  29. #include "xfs_dir2.h"
  30. #include "xfs_dmapi.h"
  31. #include "xfs_mount.h"
  32. #include "xfs_bmap_btree.h"
  33. #include "xfs_alloc_btree.h"
  34. #include "xfs_ialloc_btree.h"
  35. #include "xfs_dir2_sf.h"
  36. #include "xfs_attr_sf.h"
  37. #include "xfs_dinode.h"
  38. #include "xfs_inode.h"
  39. #include "xfs_buf_item.h"
  40. #include "xfs_inode_item.h"
  41. #include "xfs_btree.h"
  42. #include "xfs_btree_trace.h"
  43. #include "xfs_alloc.h"
  44. #include "xfs_ialloc.h"
  45. #include "xfs_bmap.h"
  46. #include "xfs_rw.h"
  47. #include "xfs_error.h"
  48. #include "xfs_utils.h"
  49. #include "xfs_dir2_trace.h"
  50. #include "xfs_quota.h"
  51. #include "xfs_acl.h"
  52. #include "xfs_filestream.h"
  53. #include "xfs_vnodeops.h"
  54. kmem_zone_t *xfs_ifork_zone;
  55. kmem_zone_t *xfs_inode_zone;
  56. /*
  57. * Used in xfs_itruncate(). This is the maximum number of extents
  58. * freed from a file in a single transaction.
  59. */
  60. #define XFS_ITRUNC_MAX_EXTENTS 2
  61. STATIC int xfs_iflush_int(xfs_inode_t *, xfs_buf_t *);
  62. STATIC int xfs_iformat_local(xfs_inode_t *, xfs_dinode_t *, int, int);
  63. STATIC int xfs_iformat_extents(xfs_inode_t *, xfs_dinode_t *, int);
  64. STATIC int xfs_iformat_btree(xfs_inode_t *, xfs_dinode_t *, int);
  65. #ifdef DEBUG
  66. /*
  67. * Make sure that the extents in the given memory buffer
  68. * are valid.
  69. */
  70. STATIC void
  71. xfs_validate_extents(
  72. xfs_ifork_t *ifp,
  73. int nrecs,
  74. xfs_exntfmt_t fmt)
  75. {
  76. xfs_bmbt_irec_t irec;
  77. xfs_bmbt_rec_host_t rec;
  78. int i;
  79. for (i = 0; i < nrecs; i++) {
  80. xfs_bmbt_rec_host_t *ep = xfs_iext_get_ext(ifp, i);
  81. rec.l0 = get_unaligned(&ep->l0);
  82. rec.l1 = get_unaligned(&ep->l1);
  83. xfs_bmbt_get_all(&rec, &irec);
  84. if (fmt == XFS_EXTFMT_NOSTATE)
  85. ASSERT(irec.br_state == XFS_EXT_NORM);
  86. }
  87. }
  88. #else /* DEBUG */
  89. #define xfs_validate_extents(ifp, nrecs, fmt)
  90. #endif /* DEBUG */
  91. /*
  92. * Check that none of the inode's in the buffer have a next
  93. * unlinked field of 0.
  94. */
  95. #if defined(DEBUG)
  96. void
  97. xfs_inobp_check(
  98. xfs_mount_t *mp,
  99. xfs_buf_t *bp)
  100. {
  101. int i;
  102. int j;
  103. xfs_dinode_t *dip;
  104. j = mp->m_inode_cluster_size >> mp->m_sb.sb_inodelog;
  105. for (i = 0; i < j; i++) {
  106. dip = (xfs_dinode_t *)xfs_buf_offset(bp,
  107. i * mp->m_sb.sb_inodesize);
  108. if (!dip->di_next_unlinked) {
  109. xfs_fs_cmn_err(CE_ALERT, mp,
  110. "Detected a bogus zero next_unlinked field in incore inode buffer 0x%p. About to pop an ASSERT.",
  111. bp);
  112. ASSERT(dip->di_next_unlinked);
  113. }
  114. }
  115. }
  116. #endif
  117. /*
  118. * Find the buffer associated with the given inode map
  119. * We do basic validation checks on the buffer once it has been
  120. * retrieved from disk.
  121. */
  122. STATIC int
  123. xfs_imap_to_bp(
  124. xfs_mount_t *mp,
  125. xfs_trans_t *tp,
  126. struct xfs_imap *imap,
  127. xfs_buf_t **bpp,
  128. uint buf_flags,
  129. uint iget_flags)
  130. {
  131. int error;
  132. int i;
  133. int ni;
  134. xfs_buf_t *bp;
  135. error = xfs_trans_read_buf(mp, tp, mp->m_ddev_targp, imap->im_blkno,
  136. (int)imap->im_len, buf_flags, &bp);
  137. if (error) {
  138. if (error != EAGAIN) {
  139. cmn_err(CE_WARN,
  140. "xfs_imap_to_bp: xfs_trans_read_buf()returned "
  141. "an error %d on %s. Returning error.",
  142. error, mp->m_fsname);
  143. } else {
  144. ASSERT(buf_flags & XFS_BUF_TRYLOCK);
  145. }
  146. return error;
  147. }
  148. /*
  149. * Validate the magic number and version of every inode in the buffer
  150. * (if DEBUG kernel) or the first inode in the buffer, otherwise.
  151. */
  152. #ifdef DEBUG
  153. ni = BBTOB(imap->im_len) >> mp->m_sb.sb_inodelog;
  154. #else /* usual case */
  155. ni = 1;
  156. #endif
  157. for (i = 0; i < ni; i++) {
  158. int di_ok;
  159. xfs_dinode_t *dip;
  160. dip = (xfs_dinode_t *)xfs_buf_offset(bp,
  161. (i << mp->m_sb.sb_inodelog));
  162. di_ok = be16_to_cpu(dip->di_magic) == XFS_DINODE_MAGIC &&
  163. XFS_DINODE_GOOD_VERSION(dip->di_version);
  164. if (unlikely(XFS_TEST_ERROR(!di_ok, mp,
  165. XFS_ERRTAG_ITOBP_INOTOBP,
  166. XFS_RANDOM_ITOBP_INOTOBP))) {
  167. if (iget_flags & XFS_IGET_BULKSTAT) {
  168. xfs_trans_brelse(tp, bp);
  169. return XFS_ERROR(EINVAL);
  170. }
  171. XFS_CORRUPTION_ERROR("xfs_imap_to_bp",
  172. XFS_ERRLEVEL_HIGH, mp, dip);
  173. #ifdef DEBUG
  174. cmn_err(CE_PANIC,
  175. "Device %s - bad inode magic/vsn "
  176. "daddr %lld #%d (magic=%x)",
  177. XFS_BUFTARG_NAME(mp->m_ddev_targp),
  178. (unsigned long long)imap->im_blkno, i,
  179. be16_to_cpu(dip->di_magic));
  180. #endif
  181. xfs_trans_brelse(tp, bp);
  182. return XFS_ERROR(EFSCORRUPTED);
  183. }
  184. }
  185. xfs_inobp_check(mp, bp);
  186. /*
  187. * Mark the buffer as an inode buffer now that it looks good
  188. */
  189. XFS_BUF_SET_VTYPE(bp, B_FS_INO);
  190. *bpp = bp;
  191. return 0;
  192. }
  193. /*
  194. * This routine is called to map an inode number within a file
  195. * system to the buffer containing the on-disk version of the
  196. * inode. It returns a pointer to the buffer containing the
  197. * on-disk inode in the bpp parameter, and in the dip parameter
  198. * it returns a pointer to the on-disk inode within that buffer.
  199. *
  200. * If a non-zero error is returned, then the contents of bpp and
  201. * dipp are undefined.
  202. *
  203. * Use xfs_imap() to determine the size and location of the
  204. * buffer to read from disk.
  205. */
  206. int
  207. xfs_inotobp(
  208. xfs_mount_t *mp,
  209. xfs_trans_t *tp,
  210. xfs_ino_t ino,
  211. xfs_dinode_t **dipp,
  212. xfs_buf_t **bpp,
  213. int *offset,
  214. uint imap_flags)
  215. {
  216. struct xfs_imap imap;
  217. xfs_buf_t *bp;
  218. int error;
  219. imap.im_blkno = 0;
  220. error = xfs_imap(mp, tp, ino, &imap, imap_flags);
  221. if (error)
  222. return error;
  223. error = xfs_imap_to_bp(mp, tp, &imap, &bp, XFS_BUF_LOCK, imap_flags);
  224. if (error)
  225. return error;
  226. *dipp = (xfs_dinode_t *)xfs_buf_offset(bp, imap.im_boffset);
  227. *bpp = bp;
  228. *offset = imap.im_boffset;
  229. return 0;
  230. }
  231. /*
  232. * This routine is called to map an inode to the buffer containing
  233. * the on-disk version of the inode. It returns a pointer to the
  234. * buffer containing the on-disk inode in the bpp parameter, and in
  235. * the dip parameter it returns a pointer to the on-disk inode within
  236. * that buffer.
  237. *
  238. * If a non-zero error is returned, then the contents of bpp and
  239. * dipp are undefined.
  240. *
  241. * The inode is expected to already been mapped to its buffer and read
  242. * in once, thus we can use the mapping information stored in the inode
  243. * rather than calling xfs_imap(). This allows us to avoid the overhead
  244. * of looking at the inode btree for small block file systems
  245. * (see xfs_imap()).
  246. */
  247. int
  248. xfs_itobp(
  249. xfs_mount_t *mp,
  250. xfs_trans_t *tp,
  251. xfs_inode_t *ip,
  252. xfs_dinode_t **dipp,
  253. xfs_buf_t **bpp,
  254. uint buf_flags)
  255. {
  256. xfs_buf_t *bp;
  257. int error;
  258. ASSERT(ip->i_imap.im_blkno != 0);
  259. error = xfs_imap_to_bp(mp, tp, &ip->i_imap, &bp, buf_flags, 0);
  260. if (error)
  261. return error;
  262. if (!bp) {
  263. ASSERT(buf_flags & XFS_BUF_TRYLOCK);
  264. ASSERT(tp == NULL);
  265. *bpp = NULL;
  266. return EAGAIN;
  267. }
  268. *dipp = (xfs_dinode_t *)xfs_buf_offset(bp, ip->i_imap.im_boffset);
  269. *bpp = bp;
  270. return 0;
  271. }
  272. /*
  273. * Move inode type and inode format specific information from the
  274. * on-disk inode to the in-core inode. For fifos, devs, and sockets
  275. * this means set if_rdev to the proper value. For files, directories,
  276. * and symlinks this means to bring in the in-line data or extent
  277. * pointers. For a file in B-tree format, only the root is immediately
  278. * brought in-core. The rest will be in-lined in if_extents when it
  279. * is first referenced (see xfs_iread_extents()).
  280. */
  281. STATIC int
  282. xfs_iformat(
  283. xfs_inode_t *ip,
  284. xfs_dinode_t *dip)
  285. {
  286. xfs_attr_shortform_t *atp;
  287. int size;
  288. int error;
  289. xfs_fsize_t di_size;
  290. ip->i_df.if_ext_max =
  291. XFS_IFORK_DSIZE(ip) / (uint)sizeof(xfs_bmbt_rec_t);
  292. error = 0;
  293. if (unlikely(be32_to_cpu(dip->di_nextents) +
  294. be16_to_cpu(dip->di_anextents) >
  295. be64_to_cpu(dip->di_nblocks))) {
  296. xfs_fs_repair_cmn_err(CE_WARN, ip->i_mount,
  297. "corrupt dinode %Lu, extent total = %d, nblocks = %Lu.",
  298. (unsigned long long)ip->i_ino,
  299. (int)(be32_to_cpu(dip->di_nextents) +
  300. be16_to_cpu(dip->di_anextents)),
  301. (unsigned long long)
  302. be64_to_cpu(dip->di_nblocks));
  303. XFS_CORRUPTION_ERROR("xfs_iformat(1)", XFS_ERRLEVEL_LOW,
  304. ip->i_mount, dip);
  305. return XFS_ERROR(EFSCORRUPTED);
  306. }
  307. if (unlikely(dip->di_forkoff > ip->i_mount->m_sb.sb_inodesize)) {
  308. xfs_fs_repair_cmn_err(CE_WARN, ip->i_mount,
  309. "corrupt dinode %Lu, forkoff = 0x%x.",
  310. (unsigned long long)ip->i_ino,
  311. dip->di_forkoff);
  312. XFS_CORRUPTION_ERROR("xfs_iformat(2)", XFS_ERRLEVEL_LOW,
  313. ip->i_mount, dip);
  314. return XFS_ERROR(EFSCORRUPTED);
  315. }
  316. switch (ip->i_d.di_mode & S_IFMT) {
  317. case S_IFIFO:
  318. case S_IFCHR:
  319. case S_IFBLK:
  320. case S_IFSOCK:
  321. if (unlikely(dip->di_format != XFS_DINODE_FMT_DEV)) {
  322. XFS_CORRUPTION_ERROR("xfs_iformat(3)", XFS_ERRLEVEL_LOW,
  323. ip->i_mount, dip);
  324. return XFS_ERROR(EFSCORRUPTED);
  325. }
  326. ip->i_d.di_size = 0;
  327. ip->i_size = 0;
  328. ip->i_df.if_u2.if_rdev = xfs_dinode_get_rdev(dip);
  329. break;
  330. case S_IFREG:
  331. case S_IFLNK:
  332. case S_IFDIR:
  333. switch (dip->di_format) {
  334. case XFS_DINODE_FMT_LOCAL:
  335. /*
  336. * no local regular files yet
  337. */
  338. if (unlikely((be16_to_cpu(dip->di_mode) & S_IFMT) == S_IFREG)) {
  339. xfs_fs_repair_cmn_err(CE_WARN, ip->i_mount,
  340. "corrupt inode %Lu "
  341. "(local format for regular file).",
  342. (unsigned long long) ip->i_ino);
  343. XFS_CORRUPTION_ERROR("xfs_iformat(4)",
  344. XFS_ERRLEVEL_LOW,
  345. ip->i_mount, dip);
  346. return XFS_ERROR(EFSCORRUPTED);
  347. }
  348. di_size = be64_to_cpu(dip->di_size);
  349. if (unlikely(di_size > XFS_DFORK_DSIZE(dip, ip->i_mount))) {
  350. xfs_fs_repair_cmn_err(CE_WARN, ip->i_mount,
  351. "corrupt inode %Lu "
  352. "(bad size %Ld for local inode).",
  353. (unsigned long long) ip->i_ino,
  354. (long long) di_size);
  355. XFS_CORRUPTION_ERROR("xfs_iformat(5)",
  356. XFS_ERRLEVEL_LOW,
  357. ip->i_mount, dip);
  358. return XFS_ERROR(EFSCORRUPTED);
  359. }
  360. size = (int)di_size;
  361. error = xfs_iformat_local(ip, dip, XFS_DATA_FORK, size);
  362. break;
  363. case XFS_DINODE_FMT_EXTENTS:
  364. error = xfs_iformat_extents(ip, dip, XFS_DATA_FORK);
  365. break;
  366. case XFS_DINODE_FMT_BTREE:
  367. error = xfs_iformat_btree(ip, dip, XFS_DATA_FORK);
  368. break;
  369. default:
  370. XFS_ERROR_REPORT("xfs_iformat(6)", XFS_ERRLEVEL_LOW,
  371. ip->i_mount);
  372. return XFS_ERROR(EFSCORRUPTED);
  373. }
  374. break;
  375. default:
  376. XFS_ERROR_REPORT("xfs_iformat(7)", XFS_ERRLEVEL_LOW, ip->i_mount);
  377. return XFS_ERROR(EFSCORRUPTED);
  378. }
  379. if (error) {
  380. return error;
  381. }
  382. if (!XFS_DFORK_Q(dip))
  383. return 0;
  384. ASSERT(ip->i_afp == NULL);
  385. ip->i_afp = kmem_zone_zalloc(xfs_ifork_zone, KM_SLEEP);
  386. ip->i_afp->if_ext_max =
  387. XFS_IFORK_ASIZE(ip) / (uint)sizeof(xfs_bmbt_rec_t);
  388. switch (dip->di_aformat) {
  389. case XFS_DINODE_FMT_LOCAL:
  390. atp = (xfs_attr_shortform_t *)XFS_DFORK_APTR(dip);
  391. size = be16_to_cpu(atp->hdr.totsize);
  392. error = xfs_iformat_local(ip, dip, XFS_ATTR_FORK, size);
  393. break;
  394. case XFS_DINODE_FMT_EXTENTS:
  395. error = xfs_iformat_extents(ip, dip, XFS_ATTR_FORK);
  396. break;
  397. case XFS_DINODE_FMT_BTREE:
  398. error = xfs_iformat_btree(ip, dip, XFS_ATTR_FORK);
  399. break;
  400. default:
  401. error = XFS_ERROR(EFSCORRUPTED);
  402. break;
  403. }
  404. if (error) {
  405. kmem_zone_free(xfs_ifork_zone, ip->i_afp);
  406. ip->i_afp = NULL;
  407. xfs_idestroy_fork(ip, XFS_DATA_FORK);
  408. }
  409. return error;
  410. }
  411. /*
  412. * The file is in-lined in the on-disk inode.
  413. * If it fits into if_inline_data, then copy
  414. * it there, otherwise allocate a buffer for it
  415. * and copy the data there. Either way, set
  416. * if_data to point at the data.
  417. * If we allocate a buffer for the data, make
  418. * sure that its size is a multiple of 4 and
  419. * record the real size in i_real_bytes.
  420. */
  421. STATIC int
  422. xfs_iformat_local(
  423. xfs_inode_t *ip,
  424. xfs_dinode_t *dip,
  425. int whichfork,
  426. int size)
  427. {
  428. xfs_ifork_t *ifp;
  429. int real_size;
  430. /*
  431. * If the size is unreasonable, then something
  432. * is wrong and we just bail out rather than crash in
  433. * kmem_alloc() or memcpy() below.
  434. */
  435. if (unlikely(size > XFS_DFORK_SIZE(dip, ip->i_mount, whichfork))) {
  436. xfs_fs_repair_cmn_err(CE_WARN, ip->i_mount,
  437. "corrupt inode %Lu "
  438. "(bad size %d for local fork, size = %d).",
  439. (unsigned long long) ip->i_ino, size,
  440. XFS_DFORK_SIZE(dip, ip->i_mount, whichfork));
  441. XFS_CORRUPTION_ERROR("xfs_iformat_local", XFS_ERRLEVEL_LOW,
  442. ip->i_mount, dip);
  443. return XFS_ERROR(EFSCORRUPTED);
  444. }
  445. ifp = XFS_IFORK_PTR(ip, whichfork);
  446. real_size = 0;
  447. if (size == 0)
  448. ifp->if_u1.if_data = NULL;
  449. else if (size <= sizeof(ifp->if_u2.if_inline_data))
  450. ifp->if_u1.if_data = ifp->if_u2.if_inline_data;
  451. else {
  452. real_size = roundup(size, 4);
  453. ifp->if_u1.if_data = kmem_alloc(real_size, KM_SLEEP);
  454. }
  455. ifp->if_bytes = size;
  456. ifp->if_real_bytes = real_size;
  457. if (size)
  458. memcpy(ifp->if_u1.if_data, XFS_DFORK_PTR(dip, whichfork), size);
  459. ifp->if_flags &= ~XFS_IFEXTENTS;
  460. ifp->if_flags |= XFS_IFINLINE;
  461. return 0;
  462. }
  463. /*
  464. * The file consists of a set of extents all
  465. * of which fit into the on-disk inode.
  466. * If there are few enough extents to fit into
  467. * the if_inline_ext, then copy them there.
  468. * Otherwise allocate a buffer for them and copy
  469. * them into it. Either way, set if_extents
  470. * to point at the extents.
  471. */
  472. STATIC int
  473. xfs_iformat_extents(
  474. xfs_inode_t *ip,
  475. xfs_dinode_t *dip,
  476. int whichfork)
  477. {
  478. xfs_bmbt_rec_t *dp;
  479. xfs_ifork_t *ifp;
  480. int nex;
  481. int size;
  482. int i;
  483. ifp = XFS_IFORK_PTR(ip, whichfork);
  484. nex = XFS_DFORK_NEXTENTS(dip, whichfork);
  485. size = nex * (uint)sizeof(xfs_bmbt_rec_t);
  486. /*
  487. * If the number of extents is unreasonable, then something
  488. * is wrong and we just bail out rather than crash in
  489. * kmem_alloc() or memcpy() below.
  490. */
  491. if (unlikely(size < 0 || size > XFS_DFORK_SIZE(dip, ip->i_mount, whichfork))) {
  492. xfs_fs_repair_cmn_err(CE_WARN, ip->i_mount,
  493. "corrupt inode %Lu ((a)extents = %d).",
  494. (unsigned long long) ip->i_ino, nex);
  495. XFS_CORRUPTION_ERROR("xfs_iformat_extents(1)", XFS_ERRLEVEL_LOW,
  496. ip->i_mount, dip);
  497. return XFS_ERROR(EFSCORRUPTED);
  498. }
  499. ifp->if_real_bytes = 0;
  500. if (nex == 0)
  501. ifp->if_u1.if_extents = NULL;
  502. else if (nex <= XFS_INLINE_EXTS)
  503. ifp->if_u1.if_extents = ifp->if_u2.if_inline_ext;
  504. else
  505. xfs_iext_add(ifp, 0, nex);
  506. ifp->if_bytes = size;
  507. if (size) {
  508. dp = (xfs_bmbt_rec_t *) XFS_DFORK_PTR(dip, whichfork);
  509. xfs_validate_extents(ifp, nex, XFS_EXTFMT_INODE(ip));
  510. for (i = 0; i < nex; i++, dp++) {
  511. xfs_bmbt_rec_host_t *ep = xfs_iext_get_ext(ifp, i);
  512. ep->l0 = get_unaligned_be64(&dp->l0);
  513. ep->l1 = get_unaligned_be64(&dp->l1);
  514. }
  515. XFS_BMAP_TRACE_EXLIST(ip, nex, whichfork);
  516. if (whichfork != XFS_DATA_FORK ||
  517. XFS_EXTFMT_INODE(ip) == XFS_EXTFMT_NOSTATE)
  518. if (unlikely(xfs_check_nostate_extents(
  519. ifp, 0, nex))) {
  520. XFS_ERROR_REPORT("xfs_iformat_extents(2)",
  521. XFS_ERRLEVEL_LOW,
  522. ip->i_mount);
  523. return XFS_ERROR(EFSCORRUPTED);
  524. }
  525. }
  526. ifp->if_flags |= XFS_IFEXTENTS;
  527. return 0;
  528. }
  529. /*
  530. * The file has too many extents to fit into
  531. * the inode, so they are in B-tree format.
  532. * Allocate a buffer for the root of the B-tree
  533. * and copy the root into it. The i_extents
  534. * field will remain NULL until all of the
  535. * extents are read in (when they are needed).
  536. */
  537. STATIC int
  538. xfs_iformat_btree(
  539. xfs_inode_t *ip,
  540. xfs_dinode_t *dip,
  541. int whichfork)
  542. {
  543. xfs_bmdr_block_t *dfp;
  544. xfs_ifork_t *ifp;
  545. /* REFERENCED */
  546. int nrecs;
  547. int size;
  548. ifp = XFS_IFORK_PTR(ip, whichfork);
  549. dfp = (xfs_bmdr_block_t *)XFS_DFORK_PTR(dip, whichfork);
  550. size = XFS_BMAP_BROOT_SPACE(dfp);
  551. nrecs = be16_to_cpu(dfp->bb_numrecs);
  552. /*
  553. * blow out if -- fork has less extents than can fit in
  554. * fork (fork shouldn't be a btree format), root btree
  555. * block has more records than can fit into the fork,
  556. * or the number of extents is greater than the number of
  557. * blocks.
  558. */
  559. if (unlikely(XFS_IFORK_NEXTENTS(ip, whichfork) <= ifp->if_ext_max
  560. || XFS_BMDR_SPACE_CALC(nrecs) >
  561. XFS_DFORK_SIZE(dip, ip->i_mount, whichfork)
  562. || XFS_IFORK_NEXTENTS(ip, whichfork) > ip->i_d.di_nblocks)) {
  563. xfs_fs_repair_cmn_err(CE_WARN, ip->i_mount,
  564. "corrupt inode %Lu (btree).",
  565. (unsigned long long) ip->i_ino);
  566. XFS_ERROR_REPORT("xfs_iformat_btree", XFS_ERRLEVEL_LOW,
  567. ip->i_mount);
  568. return XFS_ERROR(EFSCORRUPTED);
  569. }
  570. ifp->if_broot_bytes = size;
  571. ifp->if_broot = kmem_alloc(size, KM_SLEEP);
  572. ASSERT(ifp->if_broot != NULL);
  573. /*
  574. * Copy and convert from the on-disk structure
  575. * to the in-memory structure.
  576. */
  577. xfs_bmdr_to_bmbt(ip->i_mount, dfp,
  578. XFS_DFORK_SIZE(dip, ip->i_mount, whichfork),
  579. ifp->if_broot, size);
  580. ifp->if_flags &= ~XFS_IFEXTENTS;
  581. ifp->if_flags |= XFS_IFBROOT;
  582. return 0;
  583. }
  584. void
  585. xfs_dinode_from_disk(
  586. xfs_icdinode_t *to,
  587. xfs_dinode_t *from)
  588. {
  589. to->di_magic = be16_to_cpu(from->di_magic);
  590. to->di_mode = be16_to_cpu(from->di_mode);
  591. to->di_version = from ->di_version;
  592. to->di_format = from->di_format;
  593. to->di_onlink = be16_to_cpu(from->di_onlink);
  594. to->di_uid = be32_to_cpu(from->di_uid);
  595. to->di_gid = be32_to_cpu(from->di_gid);
  596. to->di_nlink = be32_to_cpu(from->di_nlink);
  597. to->di_projid = be16_to_cpu(from->di_projid);
  598. memcpy(to->di_pad, from->di_pad, sizeof(to->di_pad));
  599. to->di_flushiter = be16_to_cpu(from->di_flushiter);
  600. to->di_atime.t_sec = be32_to_cpu(from->di_atime.t_sec);
  601. to->di_atime.t_nsec = be32_to_cpu(from->di_atime.t_nsec);
  602. to->di_mtime.t_sec = be32_to_cpu(from->di_mtime.t_sec);
  603. to->di_mtime.t_nsec = be32_to_cpu(from->di_mtime.t_nsec);
  604. to->di_ctime.t_sec = be32_to_cpu(from->di_ctime.t_sec);
  605. to->di_ctime.t_nsec = be32_to_cpu(from->di_ctime.t_nsec);
  606. to->di_size = be64_to_cpu(from->di_size);
  607. to->di_nblocks = be64_to_cpu(from->di_nblocks);
  608. to->di_extsize = be32_to_cpu(from->di_extsize);
  609. to->di_nextents = be32_to_cpu(from->di_nextents);
  610. to->di_anextents = be16_to_cpu(from->di_anextents);
  611. to->di_forkoff = from->di_forkoff;
  612. to->di_aformat = from->di_aformat;
  613. to->di_dmevmask = be32_to_cpu(from->di_dmevmask);
  614. to->di_dmstate = be16_to_cpu(from->di_dmstate);
  615. to->di_flags = be16_to_cpu(from->di_flags);
  616. to->di_gen = be32_to_cpu(from->di_gen);
  617. }
  618. void
  619. xfs_dinode_to_disk(
  620. xfs_dinode_t *to,
  621. xfs_icdinode_t *from)
  622. {
  623. to->di_magic = cpu_to_be16(from->di_magic);
  624. to->di_mode = cpu_to_be16(from->di_mode);
  625. to->di_version = from ->di_version;
  626. to->di_format = from->di_format;
  627. to->di_onlink = cpu_to_be16(from->di_onlink);
  628. to->di_uid = cpu_to_be32(from->di_uid);
  629. to->di_gid = cpu_to_be32(from->di_gid);
  630. to->di_nlink = cpu_to_be32(from->di_nlink);
  631. to->di_projid = cpu_to_be16(from->di_projid);
  632. memcpy(to->di_pad, from->di_pad, sizeof(to->di_pad));
  633. to->di_flushiter = cpu_to_be16(from->di_flushiter);
  634. to->di_atime.t_sec = cpu_to_be32(from->di_atime.t_sec);
  635. to->di_atime.t_nsec = cpu_to_be32(from->di_atime.t_nsec);
  636. to->di_mtime.t_sec = cpu_to_be32(from->di_mtime.t_sec);
  637. to->di_mtime.t_nsec = cpu_to_be32(from->di_mtime.t_nsec);
  638. to->di_ctime.t_sec = cpu_to_be32(from->di_ctime.t_sec);
  639. to->di_ctime.t_nsec = cpu_to_be32(from->di_ctime.t_nsec);
  640. to->di_size = cpu_to_be64(from->di_size);
  641. to->di_nblocks = cpu_to_be64(from->di_nblocks);
  642. to->di_extsize = cpu_to_be32(from->di_extsize);
  643. to->di_nextents = cpu_to_be32(from->di_nextents);
  644. to->di_anextents = cpu_to_be16(from->di_anextents);
  645. to->di_forkoff = from->di_forkoff;
  646. to->di_aformat = from->di_aformat;
  647. to->di_dmevmask = cpu_to_be32(from->di_dmevmask);
  648. to->di_dmstate = cpu_to_be16(from->di_dmstate);
  649. to->di_flags = cpu_to_be16(from->di_flags);
  650. to->di_gen = cpu_to_be32(from->di_gen);
  651. }
  652. STATIC uint
  653. _xfs_dic2xflags(
  654. __uint16_t di_flags)
  655. {
  656. uint flags = 0;
  657. if (di_flags & XFS_DIFLAG_ANY) {
  658. if (di_flags & XFS_DIFLAG_REALTIME)
  659. flags |= XFS_XFLAG_REALTIME;
  660. if (di_flags & XFS_DIFLAG_PREALLOC)
  661. flags |= XFS_XFLAG_PREALLOC;
  662. if (di_flags & XFS_DIFLAG_IMMUTABLE)
  663. flags |= XFS_XFLAG_IMMUTABLE;
  664. if (di_flags & XFS_DIFLAG_APPEND)
  665. flags |= XFS_XFLAG_APPEND;
  666. if (di_flags & XFS_DIFLAG_SYNC)
  667. flags |= XFS_XFLAG_SYNC;
  668. if (di_flags & XFS_DIFLAG_NOATIME)
  669. flags |= XFS_XFLAG_NOATIME;
  670. if (di_flags & XFS_DIFLAG_NODUMP)
  671. flags |= XFS_XFLAG_NODUMP;
  672. if (di_flags & XFS_DIFLAG_RTINHERIT)
  673. flags |= XFS_XFLAG_RTINHERIT;
  674. if (di_flags & XFS_DIFLAG_PROJINHERIT)
  675. flags |= XFS_XFLAG_PROJINHERIT;
  676. if (di_flags & XFS_DIFLAG_NOSYMLINKS)
  677. flags |= XFS_XFLAG_NOSYMLINKS;
  678. if (di_flags & XFS_DIFLAG_EXTSIZE)
  679. flags |= XFS_XFLAG_EXTSIZE;
  680. if (di_flags & XFS_DIFLAG_EXTSZINHERIT)
  681. flags |= XFS_XFLAG_EXTSZINHERIT;
  682. if (di_flags & XFS_DIFLAG_NODEFRAG)
  683. flags |= XFS_XFLAG_NODEFRAG;
  684. if (di_flags & XFS_DIFLAG_FILESTREAM)
  685. flags |= XFS_XFLAG_FILESTREAM;
  686. }
  687. return flags;
  688. }
  689. uint
  690. xfs_ip2xflags(
  691. xfs_inode_t *ip)
  692. {
  693. xfs_icdinode_t *dic = &ip->i_d;
  694. return _xfs_dic2xflags(dic->di_flags) |
  695. (XFS_IFORK_Q(ip) ? XFS_XFLAG_HASATTR : 0);
  696. }
  697. uint
  698. xfs_dic2xflags(
  699. xfs_dinode_t *dip)
  700. {
  701. return _xfs_dic2xflags(be16_to_cpu(dip->di_flags)) |
  702. (XFS_DFORK_Q(dip) ? XFS_XFLAG_HASATTR : 0);
  703. }
  704. /*
  705. * Read the disk inode attributes into the in-core inode structure.
  706. */
  707. int
  708. xfs_iread(
  709. xfs_mount_t *mp,
  710. xfs_trans_t *tp,
  711. xfs_inode_t *ip,
  712. xfs_daddr_t bno,
  713. uint iget_flags)
  714. {
  715. xfs_buf_t *bp;
  716. xfs_dinode_t *dip;
  717. int error;
  718. /*
  719. * Fill in the location information in the in-core inode.
  720. */
  721. ip->i_imap.im_blkno = bno;
  722. error = xfs_imap(mp, tp, ip->i_ino, &ip->i_imap, iget_flags);
  723. if (error)
  724. return error;
  725. ASSERT(bno == 0 || bno == ip->i_imap.im_blkno);
  726. /*
  727. * Get pointers to the on-disk inode and the buffer containing it.
  728. */
  729. error = xfs_imap_to_bp(mp, tp, &ip->i_imap, &bp,
  730. XFS_BUF_LOCK, iget_flags);
  731. if (error)
  732. return error;
  733. dip = (xfs_dinode_t *)xfs_buf_offset(bp, ip->i_imap.im_boffset);
  734. /*
  735. * If we got something that isn't an inode it means someone
  736. * (nfs or dmi) has a stale handle.
  737. */
  738. if (be16_to_cpu(dip->di_magic) != XFS_DINODE_MAGIC) {
  739. #ifdef DEBUG
  740. xfs_fs_cmn_err(CE_ALERT, mp, "xfs_iread: "
  741. "dip->di_magic (0x%x) != "
  742. "XFS_DINODE_MAGIC (0x%x)",
  743. be16_to_cpu(dip->di_magic),
  744. XFS_DINODE_MAGIC);
  745. #endif /* DEBUG */
  746. error = XFS_ERROR(EINVAL);
  747. goto out_brelse;
  748. }
  749. /*
  750. * If the on-disk inode is already linked to a directory
  751. * entry, copy all of the inode into the in-core inode.
  752. * xfs_iformat() handles copying in the inode format
  753. * specific information.
  754. * Otherwise, just get the truly permanent information.
  755. */
  756. if (dip->di_mode) {
  757. xfs_dinode_from_disk(&ip->i_d, dip);
  758. error = xfs_iformat(ip, dip);
  759. if (error) {
  760. #ifdef DEBUG
  761. xfs_fs_cmn_err(CE_ALERT, mp, "xfs_iread: "
  762. "xfs_iformat() returned error %d",
  763. error);
  764. #endif /* DEBUG */
  765. goto out_brelse;
  766. }
  767. } else {
  768. ip->i_d.di_magic = be16_to_cpu(dip->di_magic);
  769. ip->i_d.di_version = dip->di_version;
  770. ip->i_d.di_gen = be32_to_cpu(dip->di_gen);
  771. ip->i_d.di_flushiter = be16_to_cpu(dip->di_flushiter);
  772. /*
  773. * Make sure to pull in the mode here as well in
  774. * case the inode is released without being used.
  775. * This ensures that xfs_inactive() will see that
  776. * the inode is already free and not try to mess
  777. * with the uninitialized part of it.
  778. */
  779. ip->i_d.di_mode = 0;
  780. /*
  781. * Initialize the per-fork minima and maxima for a new
  782. * inode here. xfs_iformat will do it for old inodes.
  783. */
  784. ip->i_df.if_ext_max =
  785. XFS_IFORK_DSIZE(ip) / (uint)sizeof(xfs_bmbt_rec_t);
  786. }
  787. /*
  788. * The inode format changed when we moved the link count and
  789. * made it 32 bits long. If this is an old format inode,
  790. * convert it in memory to look like a new one. If it gets
  791. * flushed to disk we will convert back before flushing or
  792. * logging it. We zero out the new projid field and the old link
  793. * count field. We'll handle clearing the pad field (the remains
  794. * of the old uuid field) when we actually convert the inode to
  795. * the new format. We don't change the version number so that we
  796. * can distinguish this from a real new format inode.
  797. */
  798. if (ip->i_d.di_version == 1) {
  799. ip->i_d.di_nlink = ip->i_d.di_onlink;
  800. ip->i_d.di_onlink = 0;
  801. ip->i_d.di_projid = 0;
  802. }
  803. ip->i_delayed_blks = 0;
  804. ip->i_size = ip->i_d.di_size;
  805. /*
  806. * Mark the buffer containing the inode as something to keep
  807. * around for a while. This helps to keep recently accessed
  808. * meta-data in-core longer.
  809. */
  810. XFS_BUF_SET_REF(bp, XFS_INO_REF);
  811. /*
  812. * Use xfs_trans_brelse() to release the buffer containing the
  813. * on-disk inode, because it was acquired with xfs_trans_read_buf()
  814. * in xfs_itobp() above. If tp is NULL, this is just a normal
  815. * brelse(). If we're within a transaction, then xfs_trans_brelse()
  816. * will only release the buffer if it is not dirty within the
  817. * transaction. It will be OK to release the buffer in this case,
  818. * because inodes on disk are never destroyed and we will be
  819. * locking the new in-core inode before putting it in the hash
  820. * table where other processes can find it. Thus we don't have
  821. * to worry about the inode being changed just because we released
  822. * the buffer.
  823. */
  824. out_brelse:
  825. xfs_trans_brelse(tp, bp);
  826. return error;
  827. }
  828. /*
  829. * Read in extents from a btree-format inode.
  830. * Allocate and fill in if_extents. Real work is done in xfs_bmap.c.
  831. */
  832. int
  833. xfs_iread_extents(
  834. xfs_trans_t *tp,
  835. xfs_inode_t *ip,
  836. int whichfork)
  837. {
  838. int error;
  839. xfs_ifork_t *ifp;
  840. xfs_extnum_t nextents;
  841. size_t size;
  842. if (unlikely(XFS_IFORK_FORMAT(ip, whichfork) != XFS_DINODE_FMT_BTREE)) {
  843. XFS_ERROR_REPORT("xfs_iread_extents", XFS_ERRLEVEL_LOW,
  844. ip->i_mount);
  845. return XFS_ERROR(EFSCORRUPTED);
  846. }
  847. nextents = XFS_IFORK_NEXTENTS(ip, whichfork);
  848. size = nextents * sizeof(xfs_bmbt_rec_t);
  849. ifp = XFS_IFORK_PTR(ip, whichfork);
  850. /*
  851. * We know that the size is valid (it's checked in iformat_btree)
  852. */
  853. ifp->if_lastex = NULLEXTNUM;
  854. ifp->if_bytes = ifp->if_real_bytes = 0;
  855. ifp->if_flags |= XFS_IFEXTENTS;
  856. xfs_iext_add(ifp, 0, nextents);
  857. error = xfs_bmap_read_extents(tp, ip, whichfork);
  858. if (error) {
  859. xfs_iext_destroy(ifp);
  860. ifp->if_flags &= ~XFS_IFEXTENTS;
  861. return error;
  862. }
  863. xfs_validate_extents(ifp, nextents, XFS_EXTFMT_INODE(ip));
  864. return 0;
  865. }
  866. /*
  867. * Allocate an inode on disk and return a copy of its in-core version.
  868. * The in-core inode is locked exclusively. Set mode, nlink, and rdev
  869. * appropriately within the inode. The uid and gid for the inode are
  870. * set according to the contents of the given cred structure.
  871. *
  872. * Use xfs_dialloc() to allocate the on-disk inode. If xfs_dialloc()
  873. * has a free inode available, call xfs_iget()
  874. * to obtain the in-core version of the allocated inode. Finally,
  875. * fill in the inode and log its initial contents. In this case,
  876. * ialloc_context would be set to NULL and call_again set to false.
  877. *
  878. * If xfs_dialloc() does not have an available inode,
  879. * it will replenish its supply by doing an allocation. Since we can
  880. * only do one allocation within a transaction without deadlocks, we
  881. * must commit the current transaction before returning the inode itself.
  882. * In this case, therefore, we will set call_again to true and return.
  883. * The caller should then commit the current transaction, start a new
  884. * transaction, and call xfs_ialloc() again to actually get the inode.
  885. *
  886. * To ensure that some other process does not grab the inode that
  887. * was allocated during the first call to xfs_ialloc(), this routine
  888. * also returns the [locked] bp pointing to the head of the freelist
  889. * as ialloc_context. The caller should hold this buffer across
  890. * the commit and pass it back into this routine on the second call.
  891. *
  892. * If we are allocating quota inodes, we do not have a parent inode
  893. * to attach to or associate with (i.e. pip == NULL) because they
  894. * are not linked into the directory structure - they are attached
  895. * directly to the superblock - and so have no parent.
  896. */
  897. int
  898. xfs_ialloc(
  899. xfs_trans_t *tp,
  900. xfs_inode_t *pip,
  901. mode_t mode,
  902. xfs_nlink_t nlink,
  903. xfs_dev_t rdev,
  904. cred_t *cr,
  905. xfs_prid_t prid,
  906. int okalloc,
  907. xfs_buf_t **ialloc_context,
  908. boolean_t *call_again,
  909. xfs_inode_t **ipp)
  910. {
  911. xfs_ino_t ino;
  912. xfs_inode_t *ip;
  913. uint flags;
  914. int error;
  915. timespec_t tv;
  916. int filestreams = 0;
  917. /*
  918. * Call the space management code to pick
  919. * the on-disk inode to be allocated.
  920. */
  921. error = xfs_dialloc(tp, pip ? pip->i_ino : 0, mode, okalloc,
  922. ialloc_context, call_again, &ino);
  923. if (error)
  924. return error;
  925. if (*call_again || ino == NULLFSINO) {
  926. *ipp = NULL;
  927. return 0;
  928. }
  929. ASSERT(*ialloc_context == NULL);
  930. /*
  931. * Get the in-core inode with the lock held exclusively.
  932. * This is because we're setting fields here we need
  933. * to prevent others from looking at until we're done.
  934. */
  935. error = xfs_trans_iget(tp->t_mountp, tp, ino,
  936. XFS_IGET_CREATE, XFS_ILOCK_EXCL, &ip);
  937. if (error)
  938. return error;
  939. ASSERT(ip != NULL);
  940. ip->i_d.di_mode = (__uint16_t)mode;
  941. ip->i_d.di_onlink = 0;
  942. ip->i_d.di_nlink = nlink;
  943. ASSERT(ip->i_d.di_nlink == nlink);
  944. ip->i_d.di_uid = current_fsuid();
  945. ip->i_d.di_gid = current_fsgid();
  946. ip->i_d.di_projid = prid;
  947. memset(&(ip->i_d.di_pad[0]), 0, sizeof(ip->i_d.di_pad));
  948. /*
  949. * If the superblock version is up to where we support new format
  950. * inodes and this is currently an old format inode, then change
  951. * the inode version number now. This way we only do the conversion
  952. * here rather than here and in the flush/logging code.
  953. */
  954. if (xfs_sb_version_hasnlink(&tp->t_mountp->m_sb) &&
  955. ip->i_d.di_version == 1) {
  956. ip->i_d.di_version = 2;
  957. /*
  958. * We've already zeroed the old link count, the projid field,
  959. * and the pad field.
  960. */
  961. }
  962. /*
  963. * Project ids won't be stored on disk if we are using a version 1 inode.
  964. */
  965. if ((prid != 0) && (ip->i_d.di_version == 1))
  966. xfs_bump_ino_vers2(tp, ip);
  967. if (pip && XFS_INHERIT_GID(pip)) {
  968. ip->i_d.di_gid = pip->i_d.di_gid;
  969. if ((pip->i_d.di_mode & S_ISGID) && (mode & S_IFMT) == S_IFDIR) {
  970. ip->i_d.di_mode |= S_ISGID;
  971. }
  972. }
  973. /*
  974. * If the group ID of the new file does not match the effective group
  975. * ID or one of the supplementary group IDs, the S_ISGID bit is cleared
  976. * (and only if the irix_sgid_inherit compatibility variable is set).
  977. */
  978. if ((irix_sgid_inherit) &&
  979. (ip->i_d.di_mode & S_ISGID) &&
  980. (!in_group_p((gid_t)ip->i_d.di_gid))) {
  981. ip->i_d.di_mode &= ~S_ISGID;
  982. }
  983. ip->i_d.di_size = 0;
  984. ip->i_size = 0;
  985. ip->i_d.di_nextents = 0;
  986. ASSERT(ip->i_d.di_nblocks == 0);
  987. nanotime(&tv);
  988. ip->i_d.di_mtime.t_sec = (__int32_t)tv.tv_sec;
  989. ip->i_d.di_mtime.t_nsec = (__int32_t)tv.tv_nsec;
  990. ip->i_d.di_atime = ip->i_d.di_mtime;
  991. ip->i_d.di_ctime = ip->i_d.di_mtime;
  992. /*
  993. * di_gen will have been taken care of in xfs_iread.
  994. */
  995. ip->i_d.di_extsize = 0;
  996. ip->i_d.di_dmevmask = 0;
  997. ip->i_d.di_dmstate = 0;
  998. ip->i_d.di_flags = 0;
  999. flags = XFS_ILOG_CORE;
  1000. switch (mode & S_IFMT) {
  1001. case S_IFIFO:
  1002. case S_IFCHR:
  1003. case S_IFBLK:
  1004. case S_IFSOCK:
  1005. ip->i_d.di_format = XFS_DINODE_FMT_DEV;
  1006. ip->i_df.if_u2.if_rdev = rdev;
  1007. ip->i_df.if_flags = 0;
  1008. flags |= XFS_ILOG_DEV;
  1009. break;
  1010. case S_IFREG:
  1011. /*
  1012. * we can't set up filestreams until after the VFS inode
  1013. * is set up properly.
  1014. */
  1015. if (pip && xfs_inode_is_filestream(pip))
  1016. filestreams = 1;
  1017. /* fall through */
  1018. case S_IFDIR:
  1019. if (pip && (pip->i_d.di_flags & XFS_DIFLAG_ANY)) {
  1020. uint di_flags = 0;
  1021. if ((mode & S_IFMT) == S_IFDIR) {
  1022. if (pip->i_d.di_flags & XFS_DIFLAG_RTINHERIT)
  1023. di_flags |= XFS_DIFLAG_RTINHERIT;
  1024. if (pip->i_d.di_flags & XFS_DIFLAG_EXTSZINHERIT) {
  1025. di_flags |= XFS_DIFLAG_EXTSZINHERIT;
  1026. ip->i_d.di_extsize = pip->i_d.di_extsize;
  1027. }
  1028. } else if ((mode & S_IFMT) == S_IFREG) {
  1029. if (pip->i_d.di_flags & XFS_DIFLAG_RTINHERIT)
  1030. di_flags |= XFS_DIFLAG_REALTIME;
  1031. if (pip->i_d.di_flags & XFS_DIFLAG_EXTSZINHERIT) {
  1032. di_flags |= XFS_DIFLAG_EXTSIZE;
  1033. ip->i_d.di_extsize = pip->i_d.di_extsize;
  1034. }
  1035. }
  1036. if ((pip->i_d.di_flags & XFS_DIFLAG_NOATIME) &&
  1037. xfs_inherit_noatime)
  1038. di_flags |= XFS_DIFLAG_NOATIME;
  1039. if ((pip->i_d.di_flags & XFS_DIFLAG_NODUMP) &&
  1040. xfs_inherit_nodump)
  1041. di_flags |= XFS_DIFLAG_NODUMP;
  1042. if ((pip->i_d.di_flags & XFS_DIFLAG_SYNC) &&
  1043. xfs_inherit_sync)
  1044. di_flags |= XFS_DIFLAG_SYNC;
  1045. if ((pip->i_d.di_flags & XFS_DIFLAG_NOSYMLINKS) &&
  1046. xfs_inherit_nosymlinks)
  1047. di_flags |= XFS_DIFLAG_NOSYMLINKS;
  1048. if (pip->i_d.di_flags & XFS_DIFLAG_PROJINHERIT)
  1049. di_flags |= XFS_DIFLAG_PROJINHERIT;
  1050. if ((pip->i_d.di_flags & XFS_DIFLAG_NODEFRAG) &&
  1051. xfs_inherit_nodefrag)
  1052. di_flags |= XFS_DIFLAG_NODEFRAG;
  1053. if (pip->i_d.di_flags & XFS_DIFLAG_FILESTREAM)
  1054. di_flags |= XFS_DIFLAG_FILESTREAM;
  1055. ip->i_d.di_flags |= di_flags;
  1056. }
  1057. /* FALLTHROUGH */
  1058. case S_IFLNK:
  1059. ip->i_d.di_format = XFS_DINODE_FMT_EXTENTS;
  1060. ip->i_df.if_flags = XFS_IFEXTENTS;
  1061. ip->i_df.if_bytes = ip->i_df.if_real_bytes = 0;
  1062. ip->i_df.if_u1.if_extents = NULL;
  1063. break;
  1064. default:
  1065. ASSERT(0);
  1066. }
  1067. /*
  1068. * Attribute fork settings for new inode.
  1069. */
  1070. ip->i_d.di_aformat = XFS_DINODE_FMT_EXTENTS;
  1071. ip->i_d.di_anextents = 0;
  1072. /*
  1073. * Log the new values stuffed into the inode.
  1074. */
  1075. xfs_trans_log_inode(tp, ip, flags);
  1076. /* now that we have an i_mode we can setup inode ops and unlock */
  1077. xfs_setup_inode(ip);
  1078. /* now we have set up the vfs inode we can associate the filestream */
  1079. if (filestreams) {
  1080. error = xfs_filestream_associate(pip, ip);
  1081. if (error < 0)
  1082. return -error;
  1083. if (!error)
  1084. xfs_iflags_set(ip, XFS_IFILESTREAM);
  1085. }
  1086. *ipp = ip;
  1087. return 0;
  1088. }
  1089. /*
  1090. * Check to make sure that there are no blocks allocated to the
  1091. * file beyond the size of the file. We don't check this for
  1092. * files with fixed size extents or real time extents, but we
  1093. * at least do it for regular files.
  1094. */
  1095. #ifdef DEBUG
  1096. void
  1097. xfs_isize_check(
  1098. xfs_mount_t *mp,
  1099. xfs_inode_t *ip,
  1100. xfs_fsize_t isize)
  1101. {
  1102. xfs_fileoff_t map_first;
  1103. int nimaps;
  1104. xfs_bmbt_irec_t imaps[2];
  1105. if ((ip->i_d.di_mode & S_IFMT) != S_IFREG)
  1106. return;
  1107. if (XFS_IS_REALTIME_INODE(ip))
  1108. return;
  1109. if (ip->i_d.di_flags & XFS_DIFLAG_EXTSIZE)
  1110. return;
  1111. nimaps = 2;
  1112. map_first = XFS_B_TO_FSB(mp, (xfs_ufsize_t)isize);
  1113. /*
  1114. * The filesystem could be shutting down, so bmapi may return
  1115. * an error.
  1116. */
  1117. if (xfs_bmapi(NULL, ip, map_first,
  1118. (XFS_B_TO_FSB(mp,
  1119. (xfs_ufsize_t)XFS_MAXIOFFSET(mp)) -
  1120. map_first),
  1121. XFS_BMAPI_ENTIRE, NULL, 0, imaps, &nimaps,
  1122. NULL, NULL))
  1123. return;
  1124. ASSERT(nimaps == 1);
  1125. ASSERT(imaps[0].br_startblock == HOLESTARTBLOCK);
  1126. }
  1127. #endif /* DEBUG */
  1128. /*
  1129. * Calculate the last possible buffered byte in a file. This must
  1130. * include data that was buffered beyond the EOF by the write code.
  1131. * This also needs to deal with overflowing the xfs_fsize_t type
  1132. * which can happen for sizes near the limit.
  1133. *
  1134. * We also need to take into account any blocks beyond the EOF. It
  1135. * may be the case that they were buffered by a write which failed.
  1136. * In that case the pages will still be in memory, but the inode size
  1137. * will never have been updated.
  1138. */
  1139. xfs_fsize_t
  1140. xfs_file_last_byte(
  1141. xfs_inode_t *ip)
  1142. {
  1143. xfs_mount_t *mp;
  1144. xfs_fsize_t last_byte;
  1145. xfs_fileoff_t last_block;
  1146. xfs_fileoff_t size_last_block;
  1147. int error;
  1148. ASSERT(xfs_isilocked(ip, XFS_IOLOCK_EXCL|XFS_IOLOCK_SHARED));
  1149. mp = ip->i_mount;
  1150. /*
  1151. * Only check for blocks beyond the EOF if the extents have
  1152. * been read in. This eliminates the need for the inode lock,
  1153. * and it also saves us from looking when it really isn't
  1154. * necessary.
  1155. */
  1156. if (ip->i_df.if_flags & XFS_IFEXTENTS) {
  1157. error = xfs_bmap_last_offset(NULL, ip, &last_block,
  1158. XFS_DATA_FORK);
  1159. if (error) {
  1160. last_block = 0;
  1161. }
  1162. } else {
  1163. last_block = 0;
  1164. }
  1165. size_last_block = XFS_B_TO_FSB(mp, (xfs_ufsize_t)ip->i_size);
  1166. last_block = XFS_FILEOFF_MAX(last_block, size_last_block);
  1167. last_byte = XFS_FSB_TO_B(mp, last_block);
  1168. if (last_byte < 0) {
  1169. return XFS_MAXIOFFSET(mp);
  1170. }
  1171. last_byte += (1 << mp->m_writeio_log);
  1172. if (last_byte < 0) {
  1173. return XFS_MAXIOFFSET(mp);
  1174. }
  1175. return last_byte;
  1176. }
  1177. #if defined(XFS_RW_TRACE)
  1178. STATIC void
  1179. xfs_itrunc_trace(
  1180. int tag,
  1181. xfs_inode_t *ip,
  1182. int flag,
  1183. xfs_fsize_t new_size,
  1184. xfs_off_t toss_start,
  1185. xfs_off_t toss_finish)
  1186. {
  1187. if (ip->i_rwtrace == NULL) {
  1188. return;
  1189. }
  1190. ktrace_enter(ip->i_rwtrace,
  1191. (void*)((long)tag),
  1192. (void*)ip,
  1193. (void*)(unsigned long)((ip->i_d.di_size >> 32) & 0xffffffff),
  1194. (void*)(unsigned long)(ip->i_d.di_size & 0xffffffff),
  1195. (void*)((long)flag),
  1196. (void*)(unsigned long)((new_size >> 32) & 0xffffffff),
  1197. (void*)(unsigned long)(new_size & 0xffffffff),
  1198. (void*)(unsigned long)((toss_start >> 32) & 0xffffffff),
  1199. (void*)(unsigned long)(toss_start & 0xffffffff),
  1200. (void*)(unsigned long)((toss_finish >> 32) & 0xffffffff),
  1201. (void*)(unsigned long)(toss_finish & 0xffffffff),
  1202. (void*)(unsigned long)current_cpu(),
  1203. (void*)(unsigned long)current_pid(),
  1204. (void*)NULL,
  1205. (void*)NULL,
  1206. (void*)NULL);
  1207. }
  1208. #else
  1209. #define xfs_itrunc_trace(tag, ip, flag, new_size, toss_start, toss_finish)
  1210. #endif
  1211. /*
  1212. * Start the truncation of the file to new_size. The new size
  1213. * must be smaller than the current size. This routine will
  1214. * clear the buffer and page caches of file data in the removed
  1215. * range, and xfs_itruncate_finish() will remove the underlying
  1216. * disk blocks.
  1217. *
  1218. * The inode must have its I/O lock locked EXCLUSIVELY, and it
  1219. * must NOT have the inode lock held at all. This is because we're
  1220. * calling into the buffer/page cache code and we can't hold the
  1221. * inode lock when we do so.
  1222. *
  1223. * We need to wait for any direct I/Os in flight to complete before we
  1224. * proceed with the truncate. This is needed to prevent the extents
  1225. * being read or written by the direct I/Os from being removed while the
  1226. * I/O is in flight as there is no other method of synchronising
  1227. * direct I/O with the truncate operation. Also, because we hold
  1228. * the IOLOCK in exclusive mode, we prevent new direct I/Os from being
  1229. * started until the truncate completes and drops the lock. Essentially,
  1230. * the xfs_ioend_wait() call forms an I/O barrier that provides strict
  1231. * ordering between direct I/Os and the truncate operation.
  1232. *
  1233. * The flags parameter can have either the value XFS_ITRUNC_DEFINITE
  1234. * or XFS_ITRUNC_MAYBE. The XFS_ITRUNC_MAYBE value should be used
  1235. * in the case that the caller is locking things out of order and
  1236. * may not be able to call xfs_itruncate_finish() with the inode lock
  1237. * held without dropping the I/O lock. If the caller must drop the
  1238. * I/O lock before calling xfs_itruncate_finish(), then xfs_itruncate_start()
  1239. * must be called again with all the same restrictions as the initial
  1240. * call.
  1241. */
  1242. int
  1243. xfs_itruncate_start(
  1244. xfs_inode_t *ip,
  1245. uint flags,
  1246. xfs_fsize_t new_size)
  1247. {
  1248. xfs_fsize_t last_byte;
  1249. xfs_off_t toss_start;
  1250. xfs_mount_t *mp;
  1251. int error = 0;
  1252. ASSERT(xfs_isilocked(ip, XFS_IOLOCK_EXCL));
  1253. ASSERT((new_size == 0) || (new_size <= ip->i_size));
  1254. ASSERT((flags == XFS_ITRUNC_DEFINITE) ||
  1255. (flags == XFS_ITRUNC_MAYBE));
  1256. mp = ip->i_mount;
  1257. /* wait for the completion of any pending DIOs */
  1258. if (new_size == 0 || new_size < ip->i_size)
  1259. xfs_ioend_wait(ip);
  1260. /*
  1261. * Call toss_pages or flushinval_pages to get rid of pages
  1262. * overlapping the region being removed. We have to use
  1263. * the less efficient flushinval_pages in the case that the
  1264. * caller may not be able to finish the truncate without
  1265. * dropping the inode's I/O lock. Make sure
  1266. * to catch any pages brought in by buffers overlapping
  1267. * the EOF by searching out beyond the isize by our
  1268. * block size. We round new_size up to a block boundary
  1269. * so that we don't toss things on the same block as
  1270. * new_size but before it.
  1271. *
  1272. * Before calling toss_page or flushinval_pages, make sure to
  1273. * call remapf() over the same region if the file is mapped.
  1274. * This frees up mapped file references to the pages in the
  1275. * given range and for the flushinval_pages case it ensures
  1276. * that we get the latest mapped changes flushed out.
  1277. */
  1278. toss_start = XFS_B_TO_FSB(mp, (xfs_ufsize_t)new_size);
  1279. toss_start = XFS_FSB_TO_B(mp, toss_start);
  1280. if (toss_start < 0) {
  1281. /*
  1282. * The place to start tossing is beyond our maximum
  1283. * file size, so there is no way that the data extended
  1284. * out there.
  1285. */
  1286. return 0;
  1287. }
  1288. last_byte = xfs_file_last_byte(ip);
  1289. xfs_itrunc_trace(XFS_ITRUNC_START, ip, flags, new_size, toss_start,
  1290. last_byte);
  1291. if (last_byte > toss_start) {
  1292. if (flags & XFS_ITRUNC_DEFINITE) {
  1293. xfs_tosspages(ip, toss_start,
  1294. -1, FI_REMAPF_LOCKED);
  1295. } else {
  1296. error = xfs_flushinval_pages(ip, toss_start,
  1297. -1, FI_REMAPF_LOCKED);
  1298. }
  1299. }
  1300. #ifdef DEBUG
  1301. if (new_size == 0) {
  1302. ASSERT(VN_CACHED(VFS_I(ip)) == 0);
  1303. }
  1304. #endif
  1305. return error;
  1306. }
  1307. /*
  1308. * Shrink the file to the given new_size. The new size must be smaller than
  1309. * the current size. This will free up the underlying blocks in the removed
  1310. * range after a call to xfs_itruncate_start() or xfs_atruncate_start().
  1311. *
  1312. * The transaction passed to this routine must have made a permanent log
  1313. * reservation of at least XFS_ITRUNCATE_LOG_RES. This routine may commit the
  1314. * given transaction and start new ones, so make sure everything involved in
  1315. * the transaction is tidy before calling here. Some transaction will be
  1316. * returned to the caller to be committed. The incoming transaction must
  1317. * already include the inode, and both inode locks must be held exclusively.
  1318. * The inode must also be "held" within the transaction. On return the inode
  1319. * will be "held" within the returned transaction. This routine does NOT
  1320. * require any disk space to be reserved for it within the transaction.
  1321. *
  1322. * The fork parameter must be either xfs_attr_fork or xfs_data_fork, and it
  1323. * indicates the fork which is to be truncated. For the attribute fork we only
  1324. * support truncation to size 0.
  1325. *
  1326. * We use the sync parameter to indicate whether or not the first transaction
  1327. * we perform might have to be synchronous. For the attr fork, it needs to be
  1328. * so if the unlink of the inode is not yet known to be permanent in the log.
  1329. * This keeps us from freeing and reusing the blocks of the attribute fork
  1330. * before the unlink of the inode becomes permanent.
  1331. *
  1332. * For the data fork, we normally have to run synchronously if we're being
  1333. * called out of the inactive path or we're being called out of the create path
  1334. * where we're truncating an existing file. Either way, the truncate needs to
  1335. * be sync so blocks don't reappear in the file with altered data in case of a
  1336. * crash. wsync filesystems can run the first case async because anything that
  1337. * shrinks the inode has to run sync so by the time we're called here from
  1338. * inactive, the inode size is permanently set to 0.
  1339. *
  1340. * Calls from the truncate path always need to be sync unless we're in a wsync
  1341. * filesystem and the file has already been unlinked.
  1342. *
  1343. * The caller is responsible for correctly setting the sync parameter. It gets
  1344. * too hard for us to guess here which path we're being called out of just
  1345. * based on inode state.
  1346. *
  1347. * If we get an error, we must return with the inode locked and linked into the
  1348. * current transaction. This keeps things simple for the higher level code,
  1349. * because it always knows that the inode is locked and held in the transaction
  1350. * that returns to it whether errors occur or not. We don't mark the inode
  1351. * dirty on error so that transactions can be easily aborted if possible.
  1352. */
  1353. int
  1354. xfs_itruncate_finish(
  1355. xfs_trans_t **tp,
  1356. xfs_inode_t *ip,
  1357. xfs_fsize_t new_size,
  1358. int fork,
  1359. int sync)
  1360. {
  1361. xfs_fsblock_t first_block;
  1362. xfs_fileoff_t first_unmap_block;
  1363. xfs_fileoff_t last_block;
  1364. xfs_filblks_t unmap_len=0;
  1365. xfs_mount_t *mp;
  1366. xfs_trans_t *ntp;
  1367. int done;
  1368. int committed;
  1369. xfs_bmap_free_t free_list;
  1370. int error;
  1371. ASSERT(xfs_isilocked(ip, XFS_ILOCK_EXCL|XFS_IOLOCK_EXCL));
  1372. ASSERT((new_size == 0) || (new_size <= ip->i_size));
  1373. ASSERT(*tp != NULL);
  1374. ASSERT((*tp)->t_flags & XFS_TRANS_PERM_LOG_RES);
  1375. ASSERT(ip->i_transp == *tp);
  1376. ASSERT(ip->i_itemp != NULL);
  1377. ASSERT(ip->i_itemp->ili_flags & XFS_ILI_HOLD);
  1378. ntp = *tp;
  1379. mp = (ntp)->t_mountp;
  1380. ASSERT(! XFS_NOT_DQATTACHED(mp, ip));
  1381. /*
  1382. * We only support truncating the entire attribute fork.
  1383. */
  1384. if (fork == XFS_ATTR_FORK) {
  1385. new_size = 0LL;
  1386. }
  1387. first_unmap_block = XFS_B_TO_FSB(mp, (xfs_ufsize_t)new_size);
  1388. xfs_itrunc_trace(XFS_ITRUNC_FINISH1, ip, 0, new_size, 0, 0);
  1389. /*
  1390. * The first thing we do is set the size to new_size permanently
  1391. * on disk. This way we don't have to worry about anyone ever
  1392. * being able to look at the data being freed even in the face
  1393. * of a crash. What we're getting around here is the case where
  1394. * we free a block, it is allocated to another file, it is written
  1395. * to, and then we crash. If the new data gets written to the
  1396. * file but the log buffers containing the free and reallocation
  1397. * don't, then we'd end up with garbage in the blocks being freed.
  1398. * As long as we make the new_size permanent before actually
  1399. * freeing any blocks it doesn't matter if they get writtten to.
  1400. *
  1401. * The callers must signal into us whether or not the size
  1402. * setting here must be synchronous. There are a few cases
  1403. * where it doesn't have to be synchronous. Those cases
  1404. * occur if the file is unlinked and we know the unlink is
  1405. * permanent or if the blocks being truncated are guaranteed
  1406. * to be beyond the inode eof (regardless of the link count)
  1407. * and the eof value is permanent. Both of these cases occur
  1408. * only on wsync-mounted filesystems. In those cases, we're
  1409. * guaranteed that no user will ever see the data in the blocks
  1410. * that are being truncated so the truncate can run async.
  1411. * In the free beyond eof case, the file may wind up with
  1412. * more blocks allocated to it than it needs if we crash
  1413. * and that won't get fixed until the next time the file
  1414. * is re-opened and closed but that's ok as that shouldn't
  1415. * be too many blocks.
  1416. *
  1417. * However, we can't just make all wsync xactions run async
  1418. * because there's one call out of the create path that needs
  1419. * to run sync where it's truncating an existing file to size
  1420. * 0 whose size is > 0.
  1421. *
  1422. * It's probably possible to come up with a test in this
  1423. * routine that would correctly distinguish all the above
  1424. * cases from the values of the function parameters and the
  1425. * inode state but for sanity's sake, I've decided to let the
  1426. * layers above just tell us. It's simpler to correctly figure
  1427. * out in the layer above exactly under what conditions we
  1428. * can run async and I think it's easier for others read and
  1429. * follow the logic in case something has to be changed.
  1430. * cscope is your friend -- rcc.
  1431. *
  1432. * The attribute fork is much simpler.
  1433. *
  1434. * For the attribute fork we allow the caller to tell us whether
  1435. * the unlink of the inode that led to this call is yet permanent
  1436. * in the on disk log. If it is not and we will be freeing extents
  1437. * in this inode then we make the first transaction synchronous
  1438. * to make sure that the unlink is permanent by the time we free
  1439. * the blocks.
  1440. */
  1441. if (fork == XFS_DATA_FORK) {
  1442. if (ip->i_d.di_nextents > 0) {
  1443. /*
  1444. * If we are not changing the file size then do
  1445. * not update the on-disk file size - we may be
  1446. * called from xfs_inactive_free_eofblocks(). If we
  1447. * update the on-disk file size and then the system
  1448. * crashes before the contents of the file are
  1449. * flushed to disk then the files may be full of
  1450. * holes (ie NULL files bug).
  1451. */
  1452. if (ip->i_size != new_size) {
  1453. ip->i_d.di_size = new_size;
  1454. ip->i_size = new_size;
  1455. xfs_trans_log_inode(ntp, ip, XFS_ILOG_CORE);
  1456. }
  1457. }
  1458. } else if (sync) {
  1459. ASSERT(!(mp->m_flags & XFS_MOUNT_WSYNC));
  1460. if (ip->i_d.di_anextents > 0)
  1461. xfs_trans_set_sync(ntp);
  1462. }
  1463. ASSERT(fork == XFS_DATA_FORK ||
  1464. (fork == XFS_ATTR_FORK &&
  1465. ((sync && !(mp->m_flags & XFS_MOUNT_WSYNC)) ||
  1466. (sync == 0 && (mp->m_flags & XFS_MOUNT_WSYNC)))));
  1467. /*
  1468. * Since it is possible for space to become allocated beyond
  1469. * the end of the file (in a crash where the space is allocated
  1470. * but the inode size is not yet updated), simply remove any
  1471. * blocks which show up between the new EOF and the maximum
  1472. * possible file size. If the first block to be removed is
  1473. * beyond the maximum file size (ie it is the same as last_block),
  1474. * then there is nothing to do.
  1475. */
  1476. last_block = XFS_B_TO_FSB(mp, (xfs_ufsize_t)XFS_MAXIOFFSET(mp));
  1477. ASSERT(first_unmap_block <= last_block);
  1478. done = 0;
  1479. if (last_block == first_unmap_block) {
  1480. done = 1;
  1481. } else {
  1482. unmap_len = last_block - first_unmap_block + 1;
  1483. }
  1484. while (!done) {
  1485. /*
  1486. * Free up up to XFS_ITRUNC_MAX_EXTENTS. xfs_bunmapi()
  1487. * will tell us whether it freed the entire range or
  1488. * not. If this is a synchronous mount (wsync),
  1489. * then we can tell bunmapi to keep all the
  1490. * transactions asynchronous since the unlink
  1491. * transaction that made this inode inactive has
  1492. * already hit the disk. There's no danger of
  1493. * the freed blocks being reused, there being a
  1494. * crash, and the reused blocks suddenly reappearing
  1495. * in this file with garbage in them once recovery
  1496. * runs.
  1497. */
  1498. XFS_BMAP_INIT(&free_list, &first_block);
  1499. error = xfs_bunmapi(ntp, ip,
  1500. first_unmap_block, unmap_len,
  1501. XFS_BMAPI_AFLAG(fork) |
  1502. (sync ? 0 : XFS_BMAPI_ASYNC),
  1503. XFS_ITRUNC_MAX_EXTENTS,
  1504. &first_block, &free_list,
  1505. NULL, &done);
  1506. if (error) {
  1507. /*
  1508. * If the bunmapi call encounters an error,
  1509. * return to the caller where the transaction
  1510. * can be properly aborted. We just need to
  1511. * make sure we're not holding any resources
  1512. * that we were not when we came in.
  1513. */
  1514. xfs_bmap_cancel(&free_list);
  1515. return error;
  1516. }
  1517. /*
  1518. * Duplicate the transaction that has the permanent
  1519. * reservation and commit the old transaction.
  1520. */
  1521. error = xfs_bmap_finish(tp, &free_list, &committed);
  1522. ntp = *tp;
  1523. if (committed) {
  1524. /* link the inode into the next xact in the chain */
  1525. xfs_trans_ijoin(ntp, ip,
  1526. XFS_ILOCK_EXCL | XFS_IOLOCK_EXCL);
  1527. xfs_trans_ihold(ntp, ip);
  1528. }
  1529. if (error) {
  1530. /*
  1531. * If the bmap finish call encounters an error, return
  1532. * to the caller where the transaction can be properly
  1533. * aborted. We just need to make sure we're not
  1534. * holding any resources that we were not when we came
  1535. * in.
  1536. *
  1537. * Aborting from this point might lose some blocks in
  1538. * the file system, but oh well.
  1539. */
  1540. xfs_bmap_cancel(&free_list);
  1541. return error;
  1542. }
  1543. if (committed) {
  1544. /*
  1545. * Mark the inode dirty so it will be logged and
  1546. * moved forward in the log as part of every commit.
  1547. */
  1548. xfs_trans_log_inode(ntp, ip, XFS_ILOG_CORE);
  1549. }
  1550. ntp = xfs_trans_dup(ntp);
  1551. error = xfs_trans_commit(*tp, 0);
  1552. *tp = ntp;
  1553. /* link the inode into the next transaction in the chain */
  1554. xfs_trans_ijoin(ntp, ip, XFS_ILOCK_EXCL | XFS_IOLOCK_EXCL);
  1555. xfs_trans_ihold(ntp, ip);
  1556. if (error)
  1557. return error;
  1558. /*
  1559. * transaction commit worked ok so we can drop the extra ticket
  1560. * reference that we gained in xfs_trans_dup()
  1561. */
  1562. xfs_log_ticket_put(ntp->t_ticket);
  1563. error = xfs_trans_reserve(ntp, 0,
  1564. XFS_ITRUNCATE_LOG_RES(mp), 0,
  1565. XFS_TRANS_PERM_LOG_RES,
  1566. XFS_ITRUNCATE_LOG_COUNT);
  1567. if (error)
  1568. return error;
  1569. }
  1570. /*
  1571. * Only update the size in the case of the data fork, but
  1572. * always re-log the inode so that our permanent transaction
  1573. * can keep on rolling it forward in the log.
  1574. */
  1575. if (fork == XFS_DATA_FORK) {
  1576. xfs_isize_check(mp, ip, new_size);
  1577. /*
  1578. * If we are not changing the file size then do
  1579. * not update the on-disk file size - we may be
  1580. * called from xfs_inactive_free_eofblocks(). If we
  1581. * update the on-disk file size and then the system
  1582. * crashes before the contents of the file are
  1583. * flushed to disk then the files may be full of
  1584. * holes (ie NULL files bug).
  1585. */
  1586. if (ip->i_size != new_size) {
  1587. ip->i_d.di_size = new_size;
  1588. ip->i_size = new_size;
  1589. }
  1590. }
  1591. xfs_trans_log_inode(ntp, ip, XFS_ILOG_CORE);
  1592. ASSERT((new_size != 0) ||
  1593. (fork == XFS_ATTR_FORK) ||
  1594. (ip->i_delayed_blks == 0));
  1595. ASSERT((new_size != 0) ||
  1596. (fork == XFS_ATTR_FORK) ||
  1597. (ip->i_d.di_nextents == 0));
  1598. xfs_itrunc_trace(XFS_ITRUNC_FINISH2, ip, 0, new_size, 0, 0);
  1599. return 0;
  1600. }
  1601. /*
  1602. * This is called when the inode's link count goes to 0.
  1603. * We place the on-disk inode on a list in the AGI. It
  1604. * will be pulled from this list when the inode is freed.
  1605. */
  1606. int
  1607. xfs_iunlink(
  1608. xfs_trans_t *tp,
  1609. xfs_inode_t *ip)
  1610. {
  1611. xfs_mount_t *mp;
  1612. xfs_agi_t *agi;
  1613. xfs_dinode_t *dip;
  1614. xfs_buf_t *agibp;
  1615. xfs_buf_t *ibp;
  1616. xfs_agino_t agino;
  1617. short bucket_index;
  1618. int offset;
  1619. int error;
  1620. ASSERT(ip->i_d.di_nlink == 0);
  1621. ASSERT(ip->i_d.di_mode != 0);
  1622. ASSERT(ip->i_transp == tp);
  1623. mp = tp->t_mountp;
  1624. /*
  1625. * Get the agi buffer first. It ensures lock ordering
  1626. * on the list.
  1627. */
  1628. error = xfs_read_agi(mp, tp, XFS_INO_TO_AGNO(mp, ip->i_ino), &agibp);
  1629. if (error)
  1630. return error;
  1631. agi = XFS_BUF_TO_AGI(agibp);
  1632. /*
  1633. * Get the index into the agi hash table for the
  1634. * list this inode will go on.
  1635. */
  1636. agino = XFS_INO_TO_AGINO(mp, ip->i_ino);
  1637. ASSERT(agino != 0);
  1638. bucket_index = agino % XFS_AGI_UNLINKED_BUCKETS;
  1639. ASSERT(agi->agi_unlinked[bucket_index]);
  1640. ASSERT(be32_to_cpu(agi->agi_unlinked[bucket_index]) != agino);
  1641. if (be32_to_cpu(agi->agi_unlinked[bucket_index]) != NULLAGINO) {
  1642. /*
  1643. * There is already another inode in the bucket we need
  1644. * to add ourselves to. Add us at the front of the list.
  1645. * Here we put the head pointer into our next pointer,
  1646. * and then we fall through to point the head at us.
  1647. */
  1648. error = xfs_itobp(mp, tp, ip, &dip, &ibp, XFS_BUF_LOCK);
  1649. if (error)
  1650. return error;
  1651. ASSERT(be32_to_cpu(dip->di_next_unlinked) == NULLAGINO);
  1652. /* both on-disk, don't endian flip twice */
  1653. dip->di_next_unlinked = agi->agi_unlinked[bucket_index];
  1654. offset = ip->i_imap.im_boffset +
  1655. offsetof(xfs_dinode_t, di_next_unlinked);
  1656. xfs_trans_inode_buf(tp, ibp);
  1657. xfs_trans_log_buf(tp, ibp, offset,
  1658. (offset + sizeof(xfs_agino_t) - 1));
  1659. xfs_inobp_check(mp, ibp);
  1660. }
  1661. /*
  1662. * Point the bucket head pointer at the inode being inserted.
  1663. */
  1664. ASSERT(agino != 0);
  1665. agi->agi_unlinked[bucket_index] = cpu_to_be32(agino);
  1666. offset = offsetof(xfs_agi_t, agi_unlinked) +
  1667. (sizeof(xfs_agino_t) * bucket_index);
  1668. xfs_trans_log_buf(tp, agibp, offset,
  1669. (offset + sizeof(xfs_agino_t) - 1));
  1670. return 0;
  1671. }
  1672. /*
  1673. * Pull the on-disk inode from the AGI unlinked list.
  1674. */
  1675. STATIC int
  1676. xfs_iunlink_remove(
  1677. xfs_trans_t *tp,
  1678. xfs_inode_t *ip)
  1679. {
  1680. xfs_ino_t next_ino;
  1681. xfs_mount_t *mp;
  1682. xfs_agi_t *agi;
  1683. xfs_dinode_t *dip;
  1684. xfs_buf_t *agibp;
  1685. xfs_buf_t *ibp;
  1686. xfs_agnumber_t agno;
  1687. xfs_agino_t agino;
  1688. xfs_agino_t next_agino;
  1689. xfs_buf_t *last_ibp;
  1690. xfs_dinode_t *last_dip = NULL;
  1691. short bucket_index;
  1692. int offset, last_offset = 0;
  1693. int error;
  1694. mp = tp->t_mountp;
  1695. agno = XFS_INO_TO_AGNO(mp, ip->i_ino);
  1696. /*
  1697. * Get the agi buffer first. It ensures lock ordering
  1698. * on the list.
  1699. */
  1700. error = xfs_read_agi(mp, tp, agno, &agibp);
  1701. if (error)
  1702. return error;
  1703. agi = XFS_BUF_TO_AGI(agibp);
  1704. /*
  1705. * Get the index into the agi hash table for the
  1706. * list this inode will go on.
  1707. */
  1708. agino = XFS_INO_TO_AGINO(mp, ip->i_ino);
  1709. ASSERT(agino != 0);
  1710. bucket_index = agino % XFS_AGI_UNLINKED_BUCKETS;
  1711. ASSERT(be32_to_cpu(agi->agi_unlinked[bucket_index]) != NULLAGINO);
  1712. ASSERT(agi->agi_unlinked[bucket_index]);
  1713. if (be32_to_cpu(agi->agi_unlinked[bucket_index]) == agino) {
  1714. /*
  1715. * We're at the head of the list. Get the inode's
  1716. * on-disk buffer to see if there is anyone after us
  1717. * on the list. Only modify our next pointer if it
  1718. * is not already NULLAGINO. This saves us the overhead
  1719. * of dealing with the buffer when there is no need to
  1720. * change it.
  1721. */
  1722. error = xfs_itobp(mp, tp, ip, &dip, &ibp, XFS_BUF_LOCK);
  1723. if (error) {
  1724. cmn_err(CE_WARN,
  1725. "xfs_iunlink_remove: xfs_itobp() returned an error %d on %s. Returning error.",
  1726. error, mp->m_fsname);
  1727. return error;
  1728. }
  1729. next_agino = be32_to_cpu(dip->di_next_unlinked);
  1730. ASSERT(next_agino != 0);
  1731. if (next_agino != NULLAGINO) {
  1732. dip->di_next_unlinked = cpu_to_be32(NULLAGINO);
  1733. offset = ip->i_imap.im_boffset +
  1734. offsetof(xfs_dinode_t, di_next_unlinked);
  1735. xfs_trans_inode_buf(tp, ibp);
  1736. xfs_trans_log_buf(tp, ibp, offset,
  1737. (offset + sizeof(xfs_agino_t) - 1));
  1738. xfs_inobp_check(mp, ibp);
  1739. } else {
  1740. xfs_trans_brelse(tp, ibp);
  1741. }
  1742. /*
  1743. * Point the bucket head pointer at the next inode.
  1744. */
  1745. ASSERT(next_agino != 0);
  1746. ASSERT(next_agino != agino);
  1747. agi->agi_unlinked[bucket_index] = cpu_to_be32(next_agino);
  1748. offset = offsetof(xfs_agi_t, agi_unlinked) +
  1749. (sizeof(xfs_agino_t) * bucket_index);
  1750. xfs_trans_log_buf(tp, agibp, offset,
  1751. (offset + sizeof(xfs_agino_t) - 1));
  1752. } else {
  1753. /*
  1754. * We need to search the list for the inode being freed.
  1755. */
  1756. next_agino = be32_to_cpu(agi->agi_unlinked[bucket_index]);
  1757. last_ibp = NULL;
  1758. while (next_agino != agino) {
  1759. /*
  1760. * If the last inode wasn't the one pointing to
  1761. * us, then release its buffer since we're not
  1762. * going to do anything with it.
  1763. */
  1764. if (last_ibp != NULL) {
  1765. xfs_trans_brelse(tp, last_ibp);
  1766. }
  1767. next_ino = XFS_AGINO_TO_INO(mp, agno, next_agino);
  1768. error = xfs_inotobp(mp, tp, next_ino, &last_dip,
  1769. &last_ibp, &last_offset, 0);
  1770. if (error) {
  1771. cmn_err(CE_WARN,
  1772. "xfs_iunlink_remove: xfs_inotobp() returned an error %d on %s. Returning error.",
  1773. error, mp->m_fsname);
  1774. return error;
  1775. }
  1776. next_agino = be32_to_cpu(last_dip->di_next_unlinked);
  1777. ASSERT(next_agino != NULLAGINO);
  1778. ASSERT(next_agino != 0);
  1779. }
  1780. /*
  1781. * Now last_ibp points to the buffer previous to us on
  1782. * the unlinked list. Pull us from the list.
  1783. */
  1784. error = xfs_itobp(mp, tp, ip, &dip, &ibp, XFS_BUF_LOCK);
  1785. if (error) {
  1786. cmn_err(CE_WARN,
  1787. "xfs_iunlink_remove: xfs_itobp() returned an error %d on %s. Returning error.",
  1788. error, mp->m_fsname);
  1789. return error;
  1790. }
  1791. next_agino = be32_to_cpu(dip->di_next_unlinked);
  1792. ASSERT(next_agino != 0);
  1793. ASSERT(next_agino != agino);
  1794. if (next_agino != NULLAGINO) {
  1795. dip->di_next_unlinked = cpu_to_be32(NULLAGINO);
  1796. offset = ip->i_imap.im_boffset +
  1797. offsetof(xfs_dinode_t, di_next_unlinked);
  1798. xfs_trans_inode_buf(tp, ibp);
  1799. xfs_trans_log_buf(tp, ibp, offset,
  1800. (offset + sizeof(xfs_agino_t) - 1));
  1801. xfs_inobp_check(mp, ibp);
  1802. } else {
  1803. xfs_trans_brelse(tp, ibp);
  1804. }
  1805. /*
  1806. * Point the previous inode on the list to the next inode.
  1807. */
  1808. last_dip->di_next_unlinked = cpu_to_be32(next_agino);
  1809. ASSERT(next_agino != 0);
  1810. offset = last_offset + offsetof(xfs_dinode_t, di_next_unlinked);
  1811. xfs_trans_inode_buf(tp, last_ibp);
  1812. xfs_trans_log_buf(tp, last_ibp, offset,
  1813. (offset + sizeof(xfs_agino_t) - 1));
  1814. xfs_inobp_check(mp, last_ibp);
  1815. }
  1816. return 0;
  1817. }
  1818. STATIC void
  1819. xfs_ifree_cluster(
  1820. xfs_inode_t *free_ip,
  1821. xfs_trans_t *tp,
  1822. xfs_ino_t inum)
  1823. {
  1824. xfs_mount_t *mp = free_ip->i_mount;
  1825. int blks_per_cluster;
  1826. int nbufs;
  1827. int ninodes;
  1828. int i, j, found, pre_flushed;
  1829. xfs_daddr_t blkno;
  1830. xfs_buf_t *bp;
  1831. xfs_inode_t *ip, **ip_found;
  1832. xfs_inode_log_item_t *iip;
  1833. xfs_log_item_t *lip;
  1834. xfs_perag_t *pag = xfs_get_perag(mp, inum);
  1835. if (mp->m_sb.sb_blocksize >= XFS_INODE_CLUSTER_SIZE(mp)) {
  1836. blks_per_cluster = 1;
  1837. ninodes = mp->m_sb.sb_inopblock;
  1838. nbufs = XFS_IALLOC_BLOCKS(mp);
  1839. } else {
  1840. blks_per_cluster = XFS_INODE_CLUSTER_SIZE(mp) /
  1841. mp->m_sb.sb_blocksize;
  1842. ninodes = blks_per_cluster * mp->m_sb.sb_inopblock;
  1843. nbufs = XFS_IALLOC_BLOCKS(mp) / blks_per_cluster;
  1844. }
  1845. ip_found = kmem_alloc(ninodes * sizeof(xfs_inode_t *), KM_NOFS);
  1846. for (j = 0; j < nbufs; j++, inum += ninodes) {
  1847. blkno = XFS_AGB_TO_DADDR(mp, XFS_INO_TO_AGNO(mp, inum),
  1848. XFS_INO_TO_AGBNO(mp, inum));
  1849. /*
  1850. * Look for each inode in memory and attempt to lock it,
  1851. * we can be racing with flush and tail pushing here.
  1852. * any inode we get the locks on, add to an array of
  1853. * inode items to process later.
  1854. *
  1855. * The get the buffer lock, we could beat a flush
  1856. * or tail pushing thread to the lock here, in which
  1857. * case they will go looking for the inode buffer
  1858. * and fail, we need some other form of interlock
  1859. * here.
  1860. */
  1861. found = 0;
  1862. for (i = 0; i < ninodes; i++) {
  1863. read_lock(&pag->pag_ici_lock);
  1864. ip = radix_tree_lookup(&pag->pag_ici_root,
  1865. XFS_INO_TO_AGINO(mp, (inum + i)));
  1866. /* Inode not in memory or we found it already,
  1867. * nothing to do
  1868. */
  1869. if (!ip || xfs_iflags_test(ip, XFS_ISTALE)) {
  1870. read_unlock(&pag->pag_ici_lock);
  1871. continue;
  1872. }
  1873. if (xfs_inode_clean(ip)) {
  1874. read_unlock(&pag->pag_ici_lock);
  1875. continue;
  1876. }
  1877. /* If we can get the locks then add it to the
  1878. * list, otherwise by the time we get the bp lock
  1879. * below it will already be attached to the
  1880. * inode buffer.
  1881. */
  1882. /* This inode will already be locked - by us, lets
  1883. * keep it that way.
  1884. */
  1885. if (ip == free_ip) {
  1886. if (xfs_iflock_nowait(ip)) {
  1887. xfs_iflags_set(ip, XFS_ISTALE);
  1888. if (xfs_inode_clean(ip)) {
  1889. xfs_ifunlock(ip);
  1890. } else {
  1891. ip_found[found++] = ip;
  1892. }
  1893. }
  1894. read_unlock(&pag->pag_ici_lock);
  1895. continue;
  1896. }
  1897. if (xfs_ilock_nowait(ip, XFS_ILOCK_EXCL)) {
  1898. if (xfs_iflock_nowait(ip)) {
  1899. xfs_iflags_set(ip, XFS_ISTALE);
  1900. if (xfs_inode_clean(ip)) {
  1901. xfs_ifunlock(ip);
  1902. xfs_iunlock(ip, XFS_ILOCK_EXCL);
  1903. } else {
  1904. ip_found[found++] = ip;
  1905. }
  1906. } else {
  1907. xfs_iunlock(ip, XFS_ILOCK_EXCL);
  1908. }
  1909. }
  1910. read_unlock(&pag->pag_ici_lock);
  1911. }
  1912. bp = xfs_trans_get_buf(tp, mp->m_ddev_targp, blkno,
  1913. mp->m_bsize * blks_per_cluster,
  1914. XFS_BUF_LOCK);
  1915. pre_flushed = 0;
  1916. lip = XFS_BUF_FSPRIVATE(bp, xfs_log_item_t *);
  1917. while (lip) {
  1918. if (lip->li_type == XFS_LI_INODE) {
  1919. iip = (xfs_inode_log_item_t *)lip;
  1920. ASSERT(iip->ili_logged == 1);
  1921. lip->li_cb = (void(*)(xfs_buf_t*,xfs_log_item_t*)) xfs_istale_done;
  1922. xfs_trans_ail_copy_lsn(mp->m_ail,
  1923. &iip->ili_flush_lsn,
  1924. &iip->ili_item.li_lsn);
  1925. xfs_iflags_set(iip->ili_inode, XFS_ISTALE);
  1926. pre_flushed++;
  1927. }
  1928. lip = lip->li_bio_list;
  1929. }
  1930. for (i = 0; i < found; i++) {
  1931. ip = ip_found[i];
  1932. iip = ip->i_itemp;
  1933. if (!iip) {
  1934. ip->i_update_core = 0;
  1935. xfs_ifunlock(ip);
  1936. xfs_iunlock(ip, XFS_ILOCK_EXCL);
  1937. continue;
  1938. }
  1939. iip->ili_last_fields = iip->ili_format.ilf_fields;
  1940. iip->ili_format.ilf_fields = 0;
  1941. iip->ili_logged = 1;
  1942. xfs_trans_ail_copy_lsn(mp->m_ail, &iip->ili_flush_lsn,
  1943. &iip->ili_item.li_lsn);
  1944. xfs_buf_attach_iodone(bp,
  1945. (void(*)(xfs_buf_t*,xfs_log_item_t*))
  1946. xfs_istale_done, (xfs_log_item_t *)iip);
  1947. if (ip != free_ip) {
  1948. xfs_iunlock(ip, XFS_ILOCK_EXCL);
  1949. }
  1950. }
  1951. if (found || pre_flushed)
  1952. xfs_trans_stale_inode_buf(tp, bp);
  1953. xfs_trans_binval(tp, bp);
  1954. }
  1955. kmem_free(ip_found);
  1956. xfs_put_perag(mp, pag);
  1957. }
  1958. /*
  1959. * This is called to return an inode to the inode free list.
  1960. * The inode should already be truncated to 0 length and have
  1961. * no pages associated with it. This routine also assumes that
  1962. * the inode is already a part of the transaction.
  1963. *
  1964. * The on-disk copy of the inode will have been added to the list
  1965. * of unlinked inodes in the AGI. We need to remove the inode from
  1966. * that list atomically with respect to freeing it here.
  1967. */
  1968. int
  1969. xfs_ifree(
  1970. xfs_trans_t *tp,
  1971. xfs_inode_t *ip,
  1972. xfs_bmap_free_t *flist)
  1973. {
  1974. int error;
  1975. int delete;
  1976. xfs_ino_t first_ino;
  1977. xfs_dinode_t *dip;
  1978. xfs_buf_t *ibp;
  1979. ASSERT(xfs_isilocked(ip, XFS_ILOCK_EXCL));
  1980. ASSERT(ip->i_transp == tp);
  1981. ASSERT(ip->i_d.di_nlink == 0);
  1982. ASSERT(ip->i_d.di_nextents == 0);
  1983. ASSERT(ip->i_d.di_anextents == 0);
  1984. ASSERT((ip->i_d.di_size == 0 && ip->i_size == 0) ||
  1985. ((ip->i_d.di_mode & S_IFMT) != S_IFREG));
  1986. ASSERT(ip->i_d.di_nblocks == 0);
  1987. /*
  1988. * Pull the on-disk inode from the AGI unlinked list.
  1989. */
  1990. error = xfs_iunlink_remove(tp, ip);
  1991. if (error != 0) {
  1992. return error;
  1993. }
  1994. error = xfs_difree(tp, ip->i_ino, flist, &delete, &first_ino);
  1995. if (error != 0) {
  1996. return error;
  1997. }
  1998. ip->i_d.di_mode = 0; /* mark incore inode as free */
  1999. ip->i_d.di_flags = 0;
  2000. ip->i_d.di_dmevmask = 0;
  2001. ip->i_d.di_forkoff = 0; /* mark the attr fork not in use */
  2002. ip->i_df.if_ext_max =
  2003. XFS_IFORK_DSIZE(ip) / (uint)sizeof(xfs_bmbt_rec_t);
  2004. ip->i_d.di_format = XFS_DINODE_FMT_EXTENTS;
  2005. ip->i_d.di_aformat = XFS_DINODE_FMT_EXTENTS;
  2006. /*
  2007. * Bump the generation count so no one will be confused
  2008. * by reincarnations of this inode.
  2009. */
  2010. ip->i_d.di_gen++;
  2011. xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE);
  2012. error = xfs_itobp(ip->i_mount, tp, ip, &dip, &ibp, XFS_BUF_LOCK);
  2013. if (error)
  2014. return error;
  2015. /*
  2016. * Clear the on-disk di_mode. This is to prevent xfs_bulkstat
  2017. * from picking up this inode when it is reclaimed (its incore state
  2018. * initialzed but not flushed to disk yet). The in-core di_mode is
  2019. * already cleared and a corresponding transaction logged.
  2020. * The hack here just synchronizes the in-core to on-disk
  2021. * di_mode value in advance before the actual inode sync to disk.
  2022. * This is OK because the inode is already unlinked and would never
  2023. * change its di_mode again for this inode generation.
  2024. * This is a temporary hack that would require a proper fix
  2025. * in the future.
  2026. */
  2027. dip->di_mode = 0;
  2028. if (delete) {
  2029. xfs_ifree_cluster(ip, tp, first_ino);
  2030. }
  2031. return 0;
  2032. }
  2033. /*
  2034. * Reallocate the space for if_broot based on the number of records
  2035. * being added or deleted as indicated in rec_diff. Move the records
  2036. * and pointers in if_broot to fit the new size. When shrinking this
  2037. * will eliminate holes between the records and pointers created by
  2038. * the caller. When growing this will create holes to be filled in
  2039. * by the caller.
  2040. *
  2041. * The caller must not request to add more records than would fit in
  2042. * the on-disk inode root. If the if_broot is currently NULL, then
  2043. * if we adding records one will be allocated. The caller must also
  2044. * not request that the number of records go below zero, although
  2045. * it can go to zero.
  2046. *
  2047. * ip -- the inode whose if_broot area is changing
  2048. * ext_diff -- the change in the number of records, positive or negative,
  2049. * requested for the if_broot array.
  2050. */
  2051. void
  2052. xfs_iroot_realloc(
  2053. xfs_inode_t *ip,
  2054. int rec_diff,
  2055. int whichfork)
  2056. {
  2057. struct xfs_mount *mp = ip->i_mount;
  2058. int cur_max;
  2059. xfs_ifork_t *ifp;
  2060. struct xfs_btree_block *new_broot;
  2061. int new_max;
  2062. size_t new_size;
  2063. char *np;
  2064. char *op;
  2065. /*
  2066. * Handle the degenerate case quietly.
  2067. */
  2068. if (rec_diff == 0) {
  2069. return;
  2070. }
  2071. ifp = XFS_IFORK_PTR(ip, whichfork);
  2072. if (rec_diff > 0) {
  2073. /*
  2074. * If there wasn't any memory allocated before, just
  2075. * allocate it now and get out.
  2076. */
  2077. if (ifp->if_broot_bytes == 0) {
  2078. new_size = (size_t)XFS_BMAP_BROOT_SPACE_CALC(rec_diff);
  2079. ifp->if_broot = kmem_alloc(new_size, KM_SLEEP);
  2080. ifp->if_broot_bytes = (int)new_size;
  2081. return;
  2082. }
  2083. /*
  2084. * If there is already an existing if_broot, then we need
  2085. * to realloc() it and shift the pointers to their new
  2086. * location. The records don't change location because
  2087. * they are kept butted up against the btree block header.
  2088. */
  2089. cur_max = xfs_bmbt_maxrecs(mp, ifp->if_broot_bytes, 0);
  2090. new_max = cur_max + rec_diff;
  2091. new_size = (size_t)XFS_BMAP_BROOT_SPACE_CALC(new_max);
  2092. ifp->if_broot = kmem_realloc(ifp->if_broot, new_size,
  2093. (size_t)XFS_BMAP_BROOT_SPACE_CALC(cur_max), /* old size */
  2094. KM_SLEEP);
  2095. op = (char *)XFS_BMAP_BROOT_PTR_ADDR(mp, ifp->if_broot, 1,
  2096. ifp->if_broot_bytes);
  2097. np = (char *)XFS_BMAP_BROOT_PTR_ADDR(mp, ifp->if_broot, 1,
  2098. (int)new_size);
  2099. ifp->if_broot_bytes = (int)new_size;
  2100. ASSERT(ifp->if_broot_bytes <=
  2101. XFS_IFORK_SIZE(ip, whichfork) + XFS_BROOT_SIZE_ADJ);
  2102. memmove(np, op, cur_max * (uint)sizeof(xfs_dfsbno_t));
  2103. return;
  2104. }
  2105. /*
  2106. * rec_diff is less than 0. In this case, we are shrinking the
  2107. * if_broot buffer. It must already exist. If we go to zero
  2108. * records, just get rid of the root and clear the status bit.
  2109. */
  2110. ASSERT((ifp->if_broot != NULL) && (ifp->if_broot_bytes > 0));
  2111. cur_max = xfs_bmbt_maxrecs(mp, ifp->if_broot_bytes, 0);
  2112. new_max = cur_max + rec_diff;
  2113. ASSERT(new_max >= 0);
  2114. if (new_max > 0)
  2115. new_size = (size_t)XFS_BMAP_BROOT_SPACE_CALC(new_max);
  2116. else
  2117. new_size = 0;
  2118. if (new_size > 0) {
  2119. new_broot = kmem_alloc(new_size, KM_SLEEP);
  2120. /*
  2121. * First copy over the btree block header.
  2122. */
  2123. memcpy(new_broot, ifp->if_broot, XFS_BTREE_LBLOCK_LEN);
  2124. } else {
  2125. new_broot = NULL;
  2126. ifp->if_flags &= ~XFS_IFBROOT;
  2127. }
  2128. /*
  2129. * Only copy the records and pointers if there are any.
  2130. */
  2131. if (new_max > 0) {
  2132. /*
  2133. * First copy the records.
  2134. */
  2135. op = (char *)XFS_BMBT_REC_ADDR(mp, ifp->if_broot, 1);
  2136. np = (char *)XFS_BMBT_REC_ADDR(mp, new_broot, 1);
  2137. memcpy(np, op, new_max * (uint)sizeof(xfs_bmbt_rec_t));
  2138. /*
  2139. * Then copy the pointers.
  2140. */
  2141. op = (char *)XFS_BMAP_BROOT_PTR_ADDR(mp, ifp->if_broot, 1,
  2142. ifp->if_broot_bytes);
  2143. np = (char *)XFS_BMAP_BROOT_PTR_ADDR(mp, new_broot, 1,
  2144. (int)new_size);
  2145. memcpy(np, op, new_max * (uint)sizeof(xfs_dfsbno_t));
  2146. }
  2147. kmem_free(ifp->if_broot);
  2148. ifp->if_broot = new_broot;
  2149. ifp->if_broot_bytes = (int)new_size;
  2150. ASSERT(ifp->if_broot_bytes <=
  2151. XFS_IFORK_SIZE(ip, whichfork) + XFS_BROOT_SIZE_ADJ);
  2152. return;
  2153. }
  2154. /*
  2155. * This is called when the amount of space needed for if_data
  2156. * is increased or decreased. The change in size is indicated by
  2157. * the number of bytes that need to be added or deleted in the
  2158. * byte_diff parameter.
  2159. *
  2160. * If the amount of space needed has decreased below the size of the
  2161. * inline buffer, then switch to using the inline buffer. Otherwise,
  2162. * use kmem_realloc() or kmem_alloc() to adjust the size of the buffer
  2163. * to what is needed.
  2164. *
  2165. * ip -- the inode whose if_data area is changing
  2166. * byte_diff -- the change in the number of bytes, positive or negative,
  2167. * requested for the if_data array.
  2168. */
  2169. void
  2170. xfs_idata_realloc(
  2171. xfs_inode_t *ip,
  2172. int byte_diff,
  2173. int whichfork)
  2174. {
  2175. xfs_ifork_t *ifp;
  2176. int new_size;
  2177. int real_size;
  2178. if (byte_diff == 0) {
  2179. return;
  2180. }
  2181. ifp = XFS_IFORK_PTR(ip, whichfork);
  2182. new_size = (int)ifp->if_bytes + byte_diff;
  2183. ASSERT(new_size >= 0);
  2184. if (new_size == 0) {
  2185. if (ifp->if_u1.if_data != ifp->if_u2.if_inline_data) {
  2186. kmem_free(ifp->if_u1.if_data);
  2187. }
  2188. ifp->if_u1.if_data = NULL;
  2189. real_size = 0;
  2190. } else if (new_size <= sizeof(ifp->if_u2.if_inline_data)) {
  2191. /*
  2192. * If the valid extents/data can fit in if_inline_ext/data,
  2193. * copy them from the malloc'd vector and free it.
  2194. */
  2195. if (ifp->if_u1.if_data == NULL) {
  2196. ifp->if_u1.if_data = ifp->if_u2.if_inline_data;
  2197. } else if (ifp->if_u1.if_data != ifp->if_u2.if_inline_data) {
  2198. ASSERT(ifp->if_real_bytes != 0);
  2199. memcpy(ifp->if_u2.if_inline_data, ifp->if_u1.if_data,
  2200. new_size);
  2201. kmem_free(ifp->if_u1.if_data);
  2202. ifp->if_u1.if_data = ifp->if_u2.if_inline_data;
  2203. }
  2204. real_size = 0;
  2205. } else {
  2206. /*
  2207. * Stuck with malloc/realloc.
  2208. * For inline data, the underlying buffer must be
  2209. * a multiple of 4 bytes in size so that it can be
  2210. * logged and stay on word boundaries. We enforce
  2211. * that here.
  2212. */
  2213. real_size = roundup(new_size, 4);
  2214. if (ifp->if_u1.if_data == NULL) {
  2215. ASSERT(ifp->if_real_bytes == 0);
  2216. ifp->if_u1.if_data = kmem_alloc(real_size, KM_SLEEP);
  2217. } else if (ifp->if_u1.if_data != ifp->if_u2.if_inline_data) {
  2218. /*
  2219. * Only do the realloc if the underlying size
  2220. * is really changing.
  2221. */
  2222. if (ifp->if_real_bytes != real_size) {
  2223. ifp->if_u1.if_data =
  2224. kmem_realloc(ifp->if_u1.if_data,
  2225. real_size,
  2226. ifp->if_real_bytes,
  2227. KM_SLEEP);
  2228. }
  2229. } else {
  2230. ASSERT(ifp->if_real_bytes == 0);
  2231. ifp->if_u1.if_data = kmem_alloc(real_size, KM_SLEEP);
  2232. memcpy(ifp->if_u1.if_data, ifp->if_u2.if_inline_data,
  2233. ifp->if_bytes);
  2234. }
  2235. }
  2236. ifp->if_real_bytes = real_size;
  2237. ifp->if_bytes = new_size;
  2238. ASSERT(ifp->if_bytes <= XFS_IFORK_SIZE(ip, whichfork));
  2239. }
  2240. void
  2241. xfs_idestroy_fork(
  2242. xfs_inode_t *ip,
  2243. int whichfork)
  2244. {
  2245. xfs_ifork_t *ifp;
  2246. ifp = XFS_IFORK_PTR(ip, whichfork);
  2247. if (ifp->if_broot != NULL) {
  2248. kmem_free(ifp->if_broot);
  2249. ifp->if_broot = NULL;
  2250. }
  2251. /*
  2252. * If the format is local, then we can't have an extents
  2253. * array so just look for an inline data array. If we're
  2254. * not local then we may or may not have an extents list,
  2255. * so check and free it up if we do.
  2256. */
  2257. if (XFS_IFORK_FORMAT(ip, whichfork) == XFS_DINODE_FMT_LOCAL) {
  2258. if ((ifp->if_u1.if_data != ifp->if_u2.if_inline_data) &&
  2259. (ifp->if_u1.if_data != NULL)) {
  2260. ASSERT(ifp->if_real_bytes != 0);
  2261. kmem_free(ifp->if_u1.if_data);
  2262. ifp->if_u1.if_data = NULL;
  2263. ifp->if_real_bytes = 0;
  2264. }
  2265. } else if ((ifp->if_flags & XFS_IFEXTENTS) &&
  2266. ((ifp->if_flags & XFS_IFEXTIREC) ||
  2267. ((ifp->if_u1.if_extents != NULL) &&
  2268. (ifp->if_u1.if_extents != ifp->if_u2.if_inline_ext)))) {
  2269. ASSERT(ifp->if_real_bytes != 0);
  2270. xfs_iext_destroy(ifp);
  2271. }
  2272. ASSERT(ifp->if_u1.if_extents == NULL ||
  2273. ifp->if_u1.if_extents == ifp->if_u2.if_inline_ext);
  2274. ASSERT(ifp->if_real_bytes == 0);
  2275. if (whichfork == XFS_ATTR_FORK) {
  2276. kmem_zone_free(xfs_ifork_zone, ip->i_afp);
  2277. ip->i_afp = NULL;
  2278. }
  2279. }
  2280. /*
  2281. * Increment the pin count of the given buffer.
  2282. * This value is protected by ipinlock spinlock in the mount structure.
  2283. */
  2284. void
  2285. xfs_ipin(
  2286. xfs_inode_t *ip)
  2287. {
  2288. ASSERT(xfs_isilocked(ip, XFS_ILOCK_EXCL));
  2289. atomic_inc(&ip->i_pincount);
  2290. }
  2291. /*
  2292. * Decrement the pin count of the given inode, and wake up
  2293. * anyone in xfs_iwait_unpin() if the count goes to 0. The
  2294. * inode must have been previously pinned with a call to xfs_ipin().
  2295. */
  2296. void
  2297. xfs_iunpin(
  2298. xfs_inode_t *ip)
  2299. {
  2300. ASSERT(atomic_read(&ip->i_pincount) > 0);
  2301. if (atomic_dec_and_test(&ip->i_pincount))
  2302. wake_up(&ip->i_ipin_wait);
  2303. }
  2304. /*
  2305. * This is called to unpin an inode. It can be directed to wait or to return
  2306. * immediately without waiting for the inode to be unpinned. The caller must
  2307. * have the inode locked in at least shared mode so that the buffer cannot be
  2308. * subsequently pinned once someone is waiting for it to be unpinned.
  2309. */
  2310. STATIC void
  2311. __xfs_iunpin_wait(
  2312. xfs_inode_t *ip,
  2313. int wait)
  2314. {
  2315. xfs_inode_log_item_t *iip = ip->i_itemp;
  2316. ASSERT(xfs_isilocked(ip, XFS_ILOCK_EXCL|XFS_ILOCK_SHARED));
  2317. if (atomic_read(&ip->i_pincount) == 0)
  2318. return;
  2319. /* Give the log a push to start the unpinning I/O */
  2320. xfs_log_force(ip->i_mount, (iip && iip->ili_last_lsn) ?
  2321. iip->ili_last_lsn : 0, XFS_LOG_FORCE);
  2322. if (wait)
  2323. wait_event(ip->i_ipin_wait, (atomic_read(&ip->i_pincount) == 0));
  2324. }
  2325. static inline void
  2326. xfs_iunpin_wait(
  2327. xfs_inode_t *ip)
  2328. {
  2329. __xfs_iunpin_wait(ip, 1);
  2330. }
  2331. static inline void
  2332. xfs_iunpin_nowait(
  2333. xfs_inode_t *ip)
  2334. {
  2335. __xfs_iunpin_wait(ip, 0);
  2336. }
  2337. /*
  2338. * xfs_iextents_copy()
  2339. *
  2340. * This is called to copy the REAL extents (as opposed to the delayed
  2341. * allocation extents) from the inode into the given buffer. It
  2342. * returns the number of bytes copied into the buffer.
  2343. *
  2344. * If there are no delayed allocation extents, then we can just
  2345. * memcpy() the extents into the buffer. Otherwise, we need to
  2346. * examine each extent in turn and skip those which are delayed.
  2347. */
  2348. int
  2349. xfs_iextents_copy(
  2350. xfs_inode_t *ip,
  2351. xfs_bmbt_rec_t *dp,
  2352. int whichfork)
  2353. {
  2354. int copied;
  2355. int i;
  2356. xfs_ifork_t *ifp;
  2357. int nrecs;
  2358. xfs_fsblock_t start_block;
  2359. ifp = XFS_IFORK_PTR(ip, whichfork);
  2360. ASSERT(xfs_isilocked(ip, XFS_ILOCK_EXCL|XFS_ILOCK_SHARED));
  2361. ASSERT(ifp->if_bytes > 0);
  2362. nrecs = ifp->if_bytes / (uint)sizeof(xfs_bmbt_rec_t);
  2363. XFS_BMAP_TRACE_EXLIST(ip, nrecs, whichfork);
  2364. ASSERT(nrecs > 0);
  2365. /*
  2366. * There are some delayed allocation extents in the
  2367. * inode, so copy the extents one at a time and skip
  2368. * the delayed ones. There must be at least one
  2369. * non-delayed extent.
  2370. */
  2371. copied = 0;
  2372. for (i = 0; i < nrecs; i++) {
  2373. xfs_bmbt_rec_host_t *ep = xfs_iext_get_ext(ifp, i);
  2374. start_block = xfs_bmbt_get_startblock(ep);
  2375. if (ISNULLSTARTBLOCK(start_block)) {
  2376. /*
  2377. * It's a delayed allocation extent, so skip it.
  2378. */
  2379. continue;
  2380. }
  2381. /* Translate to on disk format */
  2382. put_unaligned(cpu_to_be64(ep->l0), &dp->l0);
  2383. put_unaligned(cpu_to_be64(ep->l1), &dp->l1);
  2384. dp++;
  2385. copied++;
  2386. }
  2387. ASSERT(copied != 0);
  2388. xfs_validate_extents(ifp, copied, XFS_EXTFMT_INODE(ip));
  2389. return (copied * (uint)sizeof(xfs_bmbt_rec_t));
  2390. }
  2391. /*
  2392. * Each of the following cases stores data into the same region
  2393. * of the on-disk inode, so only one of them can be valid at
  2394. * any given time. While it is possible to have conflicting formats
  2395. * and log flags, e.g. having XFS_ILOG_?DATA set when the fork is
  2396. * in EXTENTS format, this can only happen when the fork has
  2397. * changed formats after being modified but before being flushed.
  2398. * In these cases, the format always takes precedence, because the
  2399. * format indicates the current state of the fork.
  2400. */
  2401. /*ARGSUSED*/
  2402. STATIC void
  2403. xfs_iflush_fork(
  2404. xfs_inode_t *ip,
  2405. xfs_dinode_t *dip,
  2406. xfs_inode_log_item_t *iip,
  2407. int whichfork,
  2408. xfs_buf_t *bp)
  2409. {
  2410. char *cp;
  2411. xfs_ifork_t *ifp;
  2412. xfs_mount_t *mp;
  2413. #ifdef XFS_TRANS_DEBUG
  2414. int first;
  2415. #endif
  2416. static const short brootflag[2] =
  2417. { XFS_ILOG_DBROOT, XFS_ILOG_ABROOT };
  2418. static const short dataflag[2] =
  2419. { XFS_ILOG_DDATA, XFS_ILOG_ADATA };
  2420. static const short extflag[2] =
  2421. { XFS_ILOG_DEXT, XFS_ILOG_AEXT };
  2422. if (!iip)
  2423. return;
  2424. ifp = XFS_IFORK_PTR(ip, whichfork);
  2425. /*
  2426. * This can happen if we gave up in iformat in an error path,
  2427. * for the attribute fork.
  2428. */
  2429. if (!ifp) {
  2430. ASSERT(whichfork == XFS_ATTR_FORK);
  2431. return;
  2432. }
  2433. cp = XFS_DFORK_PTR(dip, whichfork);
  2434. mp = ip->i_mount;
  2435. switch (XFS_IFORK_FORMAT(ip, whichfork)) {
  2436. case XFS_DINODE_FMT_LOCAL:
  2437. if ((iip->ili_format.ilf_fields & dataflag[whichfork]) &&
  2438. (ifp->if_bytes > 0)) {
  2439. ASSERT(ifp->if_u1.if_data != NULL);
  2440. ASSERT(ifp->if_bytes <= XFS_IFORK_SIZE(ip, whichfork));
  2441. memcpy(cp, ifp->if_u1.if_data, ifp->if_bytes);
  2442. }
  2443. break;
  2444. case XFS_DINODE_FMT_EXTENTS:
  2445. ASSERT((ifp->if_flags & XFS_IFEXTENTS) ||
  2446. !(iip->ili_format.ilf_fields & extflag[whichfork]));
  2447. ASSERT((xfs_iext_get_ext(ifp, 0) != NULL) ||
  2448. (ifp->if_bytes == 0));
  2449. ASSERT((xfs_iext_get_ext(ifp, 0) == NULL) ||
  2450. (ifp->if_bytes > 0));
  2451. if ((iip->ili_format.ilf_fields & extflag[whichfork]) &&
  2452. (ifp->if_bytes > 0)) {
  2453. ASSERT(XFS_IFORK_NEXTENTS(ip, whichfork) > 0);
  2454. (void)xfs_iextents_copy(ip, (xfs_bmbt_rec_t *)cp,
  2455. whichfork);
  2456. }
  2457. break;
  2458. case XFS_DINODE_FMT_BTREE:
  2459. if ((iip->ili_format.ilf_fields & brootflag[whichfork]) &&
  2460. (ifp->if_broot_bytes > 0)) {
  2461. ASSERT(ifp->if_broot != NULL);
  2462. ASSERT(ifp->if_broot_bytes <=
  2463. (XFS_IFORK_SIZE(ip, whichfork) +
  2464. XFS_BROOT_SIZE_ADJ));
  2465. xfs_bmbt_to_bmdr(mp, ifp->if_broot, ifp->if_broot_bytes,
  2466. (xfs_bmdr_block_t *)cp,
  2467. XFS_DFORK_SIZE(dip, mp, whichfork));
  2468. }
  2469. break;
  2470. case XFS_DINODE_FMT_DEV:
  2471. if (iip->ili_format.ilf_fields & XFS_ILOG_DEV) {
  2472. ASSERT(whichfork == XFS_DATA_FORK);
  2473. xfs_dinode_put_rdev(dip, ip->i_df.if_u2.if_rdev);
  2474. }
  2475. break;
  2476. case XFS_DINODE_FMT_UUID:
  2477. if (iip->ili_format.ilf_fields & XFS_ILOG_UUID) {
  2478. ASSERT(whichfork == XFS_DATA_FORK);
  2479. memcpy(XFS_DFORK_DPTR(dip),
  2480. &ip->i_df.if_u2.if_uuid,
  2481. sizeof(uuid_t));
  2482. }
  2483. break;
  2484. default:
  2485. ASSERT(0);
  2486. break;
  2487. }
  2488. }
  2489. STATIC int
  2490. xfs_iflush_cluster(
  2491. xfs_inode_t *ip,
  2492. xfs_buf_t *bp)
  2493. {
  2494. xfs_mount_t *mp = ip->i_mount;
  2495. xfs_perag_t *pag = xfs_get_perag(mp, ip->i_ino);
  2496. unsigned long first_index, mask;
  2497. unsigned long inodes_per_cluster;
  2498. int ilist_size;
  2499. xfs_inode_t **ilist;
  2500. xfs_inode_t *iq;
  2501. int nr_found;
  2502. int clcount = 0;
  2503. int bufwasdelwri;
  2504. int i;
  2505. ASSERT(pag->pagi_inodeok);
  2506. ASSERT(pag->pag_ici_init);
  2507. inodes_per_cluster = XFS_INODE_CLUSTER_SIZE(mp) >> mp->m_sb.sb_inodelog;
  2508. ilist_size = inodes_per_cluster * sizeof(xfs_inode_t *);
  2509. ilist = kmem_alloc(ilist_size, KM_MAYFAIL|KM_NOFS);
  2510. if (!ilist)
  2511. return 0;
  2512. mask = ~(((XFS_INODE_CLUSTER_SIZE(mp) >> mp->m_sb.sb_inodelog)) - 1);
  2513. first_index = XFS_INO_TO_AGINO(mp, ip->i_ino) & mask;
  2514. read_lock(&pag->pag_ici_lock);
  2515. /* really need a gang lookup range call here */
  2516. nr_found = radix_tree_gang_lookup(&pag->pag_ici_root, (void**)ilist,
  2517. first_index, inodes_per_cluster);
  2518. if (nr_found == 0)
  2519. goto out_free;
  2520. for (i = 0; i < nr_found; i++) {
  2521. iq = ilist[i];
  2522. if (iq == ip)
  2523. continue;
  2524. /* if the inode lies outside this cluster, we're done. */
  2525. if ((XFS_INO_TO_AGINO(mp, iq->i_ino) & mask) != first_index)
  2526. break;
  2527. /*
  2528. * Do an un-protected check to see if the inode is dirty and
  2529. * is a candidate for flushing. These checks will be repeated
  2530. * later after the appropriate locks are acquired.
  2531. */
  2532. if (xfs_inode_clean(iq) && xfs_ipincount(iq) == 0)
  2533. continue;
  2534. /*
  2535. * Try to get locks. If any are unavailable or it is pinned,
  2536. * then this inode cannot be flushed and is skipped.
  2537. */
  2538. if (!xfs_ilock_nowait(iq, XFS_ILOCK_SHARED))
  2539. continue;
  2540. if (!xfs_iflock_nowait(iq)) {
  2541. xfs_iunlock(iq, XFS_ILOCK_SHARED);
  2542. continue;
  2543. }
  2544. if (xfs_ipincount(iq)) {
  2545. xfs_ifunlock(iq);
  2546. xfs_iunlock(iq, XFS_ILOCK_SHARED);
  2547. continue;
  2548. }
  2549. /*
  2550. * arriving here means that this inode can be flushed. First
  2551. * re-check that it's dirty before flushing.
  2552. */
  2553. if (!xfs_inode_clean(iq)) {
  2554. int error;
  2555. error = xfs_iflush_int(iq, bp);
  2556. if (error) {
  2557. xfs_iunlock(iq, XFS_ILOCK_SHARED);
  2558. goto cluster_corrupt_out;
  2559. }
  2560. clcount++;
  2561. } else {
  2562. xfs_ifunlock(iq);
  2563. }
  2564. xfs_iunlock(iq, XFS_ILOCK_SHARED);
  2565. }
  2566. if (clcount) {
  2567. XFS_STATS_INC(xs_icluster_flushcnt);
  2568. XFS_STATS_ADD(xs_icluster_flushinode, clcount);
  2569. }
  2570. out_free:
  2571. read_unlock(&pag->pag_ici_lock);
  2572. kmem_free(ilist);
  2573. return 0;
  2574. cluster_corrupt_out:
  2575. /*
  2576. * Corruption detected in the clustering loop. Invalidate the
  2577. * inode buffer and shut down the filesystem.
  2578. */
  2579. read_unlock(&pag->pag_ici_lock);
  2580. /*
  2581. * Clean up the buffer. If it was B_DELWRI, just release it --
  2582. * brelse can handle it with no problems. If not, shut down the
  2583. * filesystem before releasing the buffer.
  2584. */
  2585. bufwasdelwri = XFS_BUF_ISDELAYWRITE(bp);
  2586. if (bufwasdelwri)
  2587. xfs_buf_relse(bp);
  2588. xfs_force_shutdown(mp, SHUTDOWN_CORRUPT_INCORE);
  2589. if (!bufwasdelwri) {
  2590. /*
  2591. * Just like incore_relse: if we have b_iodone functions,
  2592. * mark the buffer as an error and call them. Otherwise
  2593. * mark it as stale and brelse.
  2594. */
  2595. if (XFS_BUF_IODONE_FUNC(bp)) {
  2596. XFS_BUF_CLR_BDSTRAT_FUNC(bp);
  2597. XFS_BUF_UNDONE(bp);
  2598. XFS_BUF_STALE(bp);
  2599. XFS_BUF_SHUT(bp);
  2600. XFS_BUF_ERROR(bp,EIO);
  2601. xfs_biodone(bp);
  2602. } else {
  2603. XFS_BUF_STALE(bp);
  2604. xfs_buf_relse(bp);
  2605. }
  2606. }
  2607. /*
  2608. * Unlocks the flush lock
  2609. */
  2610. xfs_iflush_abort(iq);
  2611. kmem_free(ilist);
  2612. return XFS_ERROR(EFSCORRUPTED);
  2613. }
  2614. /*
  2615. * xfs_iflush() will write a modified inode's changes out to the
  2616. * inode's on disk home. The caller must have the inode lock held
  2617. * in at least shared mode and the inode flush completion must be
  2618. * active as well. The inode lock will still be held upon return from
  2619. * the call and the caller is free to unlock it.
  2620. * The inode flush will be completed when the inode reaches the disk.
  2621. * The flags indicate how the inode's buffer should be written out.
  2622. */
  2623. int
  2624. xfs_iflush(
  2625. xfs_inode_t *ip,
  2626. uint flags)
  2627. {
  2628. xfs_inode_log_item_t *iip;
  2629. xfs_buf_t *bp;
  2630. xfs_dinode_t *dip;
  2631. xfs_mount_t *mp;
  2632. int error;
  2633. int noblock = (flags == XFS_IFLUSH_ASYNC_NOBLOCK);
  2634. enum { INT_DELWRI = (1 << 0), INT_ASYNC = (1 << 1) };
  2635. XFS_STATS_INC(xs_iflush_count);
  2636. ASSERT(xfs_isilocked(ip, XFS_ILOCK_EXCL|XFS_ILOCK_SHARED));
  2637. ASSERT(!completion_done(&ip->i_flush));
  2638. ASSERT(ip->i_d.di_format != XFS_DINODE_FMT_BTREE ||
  2639. ip->i_d.di_nextents > ip->i_df.if_ext_max);
  2640. iip = ip->i_itemp;
  2641. mp = ip->i_mount;
  2642. /*
  2643. * If the inode isn't dirty, then just release the inode
  2644. * flush lock and do nothing.
  2645. */
  2646. if (xfs_inode_clean(ip)) {
  2647. xfs_ifunlock(ip);
  2648. return 0;
  2649. }
  2650. /*
  2651. * We can't flush the inode until it is unpinned, so wait for it if we
  2652. * are allowed to block. We know noone new can pin it, because we are
  2653. * holding the inode lock shared and you need to hold it exclusively to
  2654. * pin the inode.
  2655. *
  2656. * If we are not allowed to block, force the log out asynchronously so
  2657. * that when we come back the inode will be unpinned. If other inodes
  2658. * in the same cluster are dirty, they will probably write the inode
  2659. * out for us if they occur after the log force completes.
  2660. */
  2661. if (noblock && xfs_ipincount(ip)) {
  2662. xfs_iunpin_nowait(ip);
  2663. xfs_ifunlock(ip);
  2664. return EAGAIN;
  2665. }
  2666. xfs_iunpin_wait(ip);
  2667. /*
  2668. * This may have been unpinned because the filesystem is shutting
  2669. * down forcibly. If that's the case we must not write this inode
  2670. * to disk, because the log record didn't make it to disk!
  2671. */
  2672. if (XFS_FORCED_SHUTDOWN(mp)) {
  2673. ip->i_update_core = 0;
  2674. if (iip)
  2675. iip->ili_format.ilf_fields = 0;
  2676. xfs_ifunlock(ip);
  2677. return XFS_ERROR(EIO);
  2678. }
  2679. /*
  2680. * Decide how buffer will be flushed out. This is done before
  2681. * the call to xfs_iflush_int because this field is zeroed by it.
  2682. */
  2683. if (iip != NULL && iip->ili_format.ilf_fields != 0) {
  2684. /*
  2685. * Flush out the inode buffer according to the directions
  2686. * of the caller. In the cases where the caller has given
  2687. * us a choice choose the non-delwri case. This is because
  2688. * the inode is in the AIL and we need to get it out soon.
  2689. */
  2690. switch (flags) {
  2691. case XFS_IFLUSH_SYNC:
  2692. case XFS_IFLUSH_DELWRI_ELSE_SYNC:
  2693. flags = 0;
  2694. break;
  2695. case XFS_IFLUSH_ASYNC_NOBLOCK:
  2696. case XFS_IFLUSH_ASYNC:
  2697. case XFS_IFLUSH_DELWRI_ELSE_ASYNC:
  2698. flags = INT_ASYNC;
  2699. break;
  2700. case XFS_IFLUSH_DELWRI:
  2701. flags = INT_DELWRI;
  2702. break;
  2703. default:
  2704. ASSERT(0);
  2705. flags = 0;
  2706. break;
  2707. }
  2708. } else {
  2709. switch (flags) {
  2710. case XFS_IFLUSH_DELWRI_ELSE_SYNC:
  2711. case XFS_IFLUSH_DELWRI_ELSE_ASYNC:
  2712. case XFS_IFLUSH_DELWRI:
  2713. flags = INT_DELWRI;
  2714. break;
  2715. case XFS_IFLUSH_ASYNC_NOBLOCK:
  2716. case XFS_IFLUSH_ASYNC:
  2717. flags = INT_ASYNC;
  2718. break;
  2719. case XFS_IFLUSH_SYNC:
  2720. flags = 0;
  2721. break;
  2722. default:
  2723. ASSERT(0);
  2724. flags = 0;
  2725. break;
  2726. }
  2727. }
  2728. /*
  2729. * Get the buffer containing the on-disk inode.
  2730. */
  2731. error = xfs_itobp(mp, NULL, ip, &dip, &bp,
  2732. noblock ? XFS_BUF_TRYLOCK : XFS_BUF_LOCK);
  2733. if (error || !bp) {
  2734. xfs_ifunlock(ip);
  2735. return error;
  2736. }
  2737. /*
  2738. * First flush out the inode that xfs_iflush was called with.
  2739. */
  2740. error = xfs_iflush_int(ip, bp);
  2741. if (error)
  2742. goto corrupt_out;
  2743. /*
  2744. * If the buffer is pinned then push on the log now so we won't
  2745. * get stuck waiting in the write for too long.
  2746. */
  2747. if (XFS_BUF_ISPINNED(bp))
  2748. xfs_log_force(mp, (xfs_lsn_t)0, XFS_LOG_FORCE);
  2749. /*
  2750. * inode clustering:
  2751. * see if other inodes can be gathered into this write
  2752. */
  2753. error = xfs_iflush_cluster(ip, bp);
  2754. if (error)
  2755. goto cluster_corrupt_out;
  2756. if (flags & INT_DELWRI) {
  2757. xfs_bdwrite(mp, bp);
  2758. } else if (flags & INT_ASYNC) {
  2759. error = xfs_bawrite(mp, bp);
  2760. } else {
  2761. error = xfs_bwrite(mp, bp);
  2762. }
  2763. return error;
  2764. corrupt_out:
  2765. xfs_buf_relse(bp);
  2766. xfs_force_shutdown(mp, SHUTDOWN_CORRUPT_INCORE);
  2767. cluster_corrupt_out:
  2768. /*
  2769. * Unlocks the flush lock
  2770. */
  2771. xfs_iflush_abort(ip);
  2772. return XFS_ERROR(EFSCORRUPTED);
  2773. }
  2774. STATIC int
  2775. xfs_iflush_int(
  2776. xfs_inode_t *ip,
  2777. xfs_buf_t *bp)
  2778. {
  2779. xfs_inode_log_item_t *iip;
  2780. xfs_dinode_t *dip;
  2781. xfs_mount_t *mp;
  2782. #ifdef XFS_TRANS_DEBUG
  2783. int first;
  2784. #endif
  2785. ASSERT(xfs_isilocked(ip, XFS_ILOCK_EXCL|XFS_ILOCK_SHARED));
  2786. ASSERT(!completion_done(&ip->i_flush));
  2787. ASSERT(ip->i_d.di_format != XFS_DINODE_FMT_BTREE ||
  2788. ip->i_d.di_nextents > ip->i_df.if_ext_max);
  2789. iip = ip->i_itemp;
  2790. mp = ip->i_mount;
  2791. /*
  2792. * If the inode isn't dirty, then just release the inode
  2793. * flush lock and do nothing.
  2794. */
  2795. if (xfs_inode_clean(ip)) {
  2796. xfs_ifunlock(ip);
  2797. return 0;
  2798. }
  2799. /* set *dip = inode's place in the buffer */
  2800. dip = (xfs_dinode_t *)xfs_buf_offset(bp, ip->i_imap.im_boffset);
  2801. /*
  2802. * Clear i_update_core before copying out the data.
  2803. * This is for coordination with our timestamp updates
  2804. * that don't hold the inode lock. They will always
  2805. * update the timestamps BEFORE setting i_update_core,
  2806. * so if we clear i_update_core after they set it we
  2807. * are guaranteed to see their updates to the timestamps.
  2808. * I believe that this depends on strongly ordered memory
  2809. * semantics, but we have that. We use the SYNCHRONIZE
  2810. * macro to make sure that the compiler does not reorder
  2811. * the i_update_core access below the data copy below.
  2812. */
  2813. ip->i_update_core = 0;
  2814. SYNCHRONIZE();
  2815. /*
  2816. * Make sure to get the latest atime from the Linux inode.
  2817. */
  2818. xfs_synchronize_atime(ip);
  2819. if (XFS_TEST_ERROR(be16_to_cpu(dip->di_magic) != XFS_DINODE_MAGIC,
  2820. mp, XFS_ERRTAG_IFLUSH_1, XFS_RANDOM_IFLUSH_1)) {
  2821. xfs_cmn_err(XFS_PTAG_IFLUSH, CE_ALERT, mp,
  2822. "xfs_iflush: Bad inode %Lu magic number 0x%x, ptr 0x%p",
  2823. ip->i_ino, be16_to_cpu(dip->di_magic), dip);
  2824. goto corrupt_out;
  2825. }
  2826. if (XFS_TEST_ERROR(ip->i_d.di_magic != XFS_DINODE_MAGIC,
  2827. mp, XFS_ERRTAG_IFLUSH_2, XFS_RANDOM_IFLUSH_2)) {
  2828. xfs_cmn_err(XFS_PTAG_IFLUSH, CE_ALERT, mp,
  2829. "xfs_iflush: Bad inode %Lu, ptr 0x%p, magic number 0x%x",
  2830. ip->i_ino, ip, ip->i_d.di_magic);
  2831. goto corrupt_out;
  2832. }
  2833. if ((ip->i_d.di_mode & S_IFMT) == S_IFREG) {
  2834. if (XFS_TEST_ERROR(
  2835. (ip->i_d.di_format != XFS_DINODE_FMT_EXTENTS) &&
  2836. (ip->i_d.di_format != XFS_DINODE_FMT_BTREE),
  2837. mp, XFS_ERRTAG_IFLUSH_3, XFS_RANDOM_IFLUSH_3)) {
  2838. xfs_cmn_err(XFS_PTAG_IFLUSH, CE_ALERT, mp,
  2839. "xfs_iflush: Bad regular inode %Lu, ptr 0x%p",
  2840. ip->i_ino, ip);
  2841. goto corrupt_out;
  2842. }
  2843. } else if ((ip->i_d.di_mode & S_IFMT) == S_IFDIR) {
  2844. if (XFS_TEST_ERROR(
  2845. (ip->i_d.di_format != XFS_DINODE_FMT_EXTENTS) &&
  2846. (ip->i_d.di_format != XFS_DINODE_FMT_BTREE) &&
  2847. (ip->i_d.di_format != XFS_DINODE_FMT_LOCAL),
  2848. mp, XFS_ERRTAG_IFLUSH_4, XFS_RANDOM_IFLUSH_4)) {
  2849. xfs_cmn_err(XFS_PTAG_IFLUSH, CE_ALERT, mp,
  2850. "xfs_iflush: Bad directory inode %Lu, ptr 0x%p",
  2851. ip->i_ino, ip);
  2852. goto corrupt_out;
  2853. }
  2854. }
  2855. if (XFS_TEST_ERROR(ip->i_d.di_nextents + ip->i_d.di_anextents >
  2856. ip->i_d.di_nblocks, mp, XFS_ERRTAG_IFLUSH_5,
  2857. XFS_RANDOM_IFLUSH_5)) {
  2858. xfs_cmn_err(XFS_PTAG_IFLUSH, CE_ALERT, mp,
  2859. "xfs_iflush: detected corrupt incore inode %Lu, total extents = %d, nblocks = %Ld, ptr 0x%p",
  2860. ip->i_ino,
  2861. ip->i_d.di_nextents + ip->i_d.di_anextents,
  2862. ip->i_d.di_nblocks,
  2863. ip);
  2864. goto corrupt_out;
  2865. }
  2866. if (XFS_TEST_ERROR(ip->i_d.di_forkoff > mp->m_sb.sb_inodesize,
  2867. mp, XFS_ERRTAG_IFLUSH_6, XFS_RANDOM_IFLUSH_6)) {
  2868. xfs_cmn_err(XFS_PTAG_IFLUSH, CE_ALERT, mp,
  2869. "xfs_iflush: bad inode %Lu, forkoff 0x%x, ptr 0x%p",
  2870. ip->i_ino, ip->i_d.di_forkoff, ip);
  2871. goto corrupt_out;
  2872. }
  2873. /*
  2874. * bump the flush iteration count, used to detect flushes which
  2875. * postdate a log record during recovery.
  2876. */
  2877. ip->i_d.di_flushiter++;
  2878. /*
  2879. * Copy the dirty parts of the inode into the on-disk
  2880. * inode. We always copy out the core of the inode,
  2881. * because if the inode is dirty at all the core must
  2882. * be.
  2883. */
  2884. xfs_dinode_to_disk(dip, &ip->i_d);
  2885. /* Wrap, we never let the log put out DI_MAX_FLUSH */
  2886. if (ip->i_d.di_flushiter == DI_MAX_FLUSH)
  2887. ip->i_d.di_flushiter = 0;
  2888. /*
  2889. * If this is really an old format inode and the superblock version
  2890. * has not been updated to support only new format inodes, then
  2891. * convert back to the old inode format. If the superblock version
  2892. * has been updated, then make the conversion permanent.
  2893. */
  2894. ASSERT(ip->i_d.di_version == 1 || xfs_sb_version_hasnlink(&mp->m_sb));
  2895. if (ip->i_d.di_version == 1) {
  2896. if (!xfs_sb_version_hasnlink(&mp->m_sb)) {
  2897. /*
  2898. * Convert it back.
  2899. */
  2900. ASSERT(ip->i_d.di_nlink <= XFS_MAXLINK_1);
  2901. dip->di_onlink = cpu_to_be16(ip->i_d.di_nlink);
  2902. } else {
  2903. /*
  2904. * The superblock version has already been bumped,
  2905. * so just make the conversion to the new inode
  2906. * format permanent.
  2907. */
  2908. ip->i_d.di_version = 2;
  2909. dip->di_version = 2;
  2910. ip->i_d.di_onlink = 0;
  2911. dip->di_onlink = 0;
  2912. memset(&(ip->i_d.di_pad[0]), 0, sizeof(ip->i_d.di_pad));
  2913. memset(&(dip->di_pad[0]), 0,
  2914. sizeof(dip->di_pad));
  2915. ASSERT(ip->i_d.di_projid == 0);
  2916. }
  2917. }
  2918. xfs_iflush_fork(ip, dip, iip, XFS_DATA_FORK, bp);
  2919. if (XFS_IFORK_Q(ip))
  2920. xfs_iflush_fork(ip, dip, iip, XFS_ATTR_FORK, bp);
  2921. xfs_inobp_check(mp, bp);
  2922. /*
  2923. * We've recorded everything logged in the inode, so we'd
  2924. * like to clear the ilf_fields bits so we don't log and
  2925. * flush things unnecessarily. However, we can't stop
  2926. * logging all this information until the data we've copied
  2927. * into the disk buffer is written to disk. If we did we might
  2928. * overwrite the copy of the inode in the log with all the
  2929. * data after re-logging only part of it, and in the face of
  2930. * a crash we wouldn't have all the data we need to recover.
  2931. *
  2932. * What we do is move the bits to the ili_last_fields field.
  2933. * When logging the inode, these bits are moved back to the
  2934. * ilf_fields field. In the xfs_iflush_done() routine we
  2935. * clear ili_last_fields, since we know that the information
  2936. * those bits represent is permanently on disk. As long as
  2937. * the flush completes before the inode is logged again, then
  2938. * both ilf_fields and ili_last_fields will be cleared.
  2939. *
  2940. * We can play with the ilf_fields bits here, because the inode
  2941. * lock must be held exclusively in order to set bits there
  2942. * and the flush lock protects the ili_last_fields bits.
  2943. * Set ili_logged so the flush done
  2944. * routine can tell whether or not to look in the AIL.
  2945. * Also, store the current LSN of the inode so that we can tell
  2946. * whether the item has moved in the AIL from xfs_iflush_done().
  2947. * In order to read the lsn we need the AIL lock, because
  2948. * it is a 64 bit value that cannot be read atomically.
  2949. */
  2950. if (iip != NULL && iip->ili_format.ilf_fields != 0) {
  2951. iip->ili_last_fields = iip->ili_format.ilf_fields;
  2952. iip->ili_format.ilf_fields = 0;
  2953. iip->ili_logged = 1;
  2954. xfs_trans_ail_copy_lsn(mp->m_ail, &iip->ili_flush_lsn,
  2955. &iip->ili_item.li_lsn);
  2956. /*
  2957. * Attach the function xfs_iflush_done to the inode's
  2958. * buffer. This will remove the inode from the AIL
  2959. * and unlock the inode's flush lock when the inode is
  2960. * completely written to disk.
  2961. */
  2962. xfs_buf_attach_iodone(bp, (void(*)(xfs_buf_t*,xfs_log_item_t*))
  2963. xfs_iflush_done, (xfs_log_item_t *)iip);
  2964. ASSERT(XFS_BUF_FSPRIVATE(bp, void *) != NULL);
  2965. ASSERT(XFS_BUF_IODONE_FUNC(bp) != NULL);
  2966. } else {
  2967. /*
  2968. * We're flushing an inode which is not in the AIL and has
  2969. * not been logged but has i_update_core set. For this
  2970. * case we can use a B_DELWRI flush and immediately drop
  2971. * the inode flush lock because we can avoid the whole
  2972. * AIL state thing. It's OK to drop the flush lock now,
  2973. * because we've already locked the buffer and to do anything
  2974. * you really need both.
  2975. */
  2976. if (iip != NULL) {
  2977. ASSERT(iip->ili_logged == 0);
  2978. ASSERT(iip->ili_last_fields == 0);
  2979. ASSERT((iip->ili_item.li_flags & XFS_LI_IN_AIL) == 0);
  2980. }
  2981. xfs_ifunlock(ip);
  2982. }
  2983. return 0;
  2984. corrupt_out:
  2985. return XFS_ERROR(EFSCORRUPTED);
  2986. }
  2987. #ifdef XFS_ILOCK_TRACE
  2988. void
  2989. xfs_ilock_trace(xfs_inode_t *ip, int lock, unsigned int lockflags, inst_t *ra)
  2990. {
  2991. ktrace_enter(ip->i_lock_trace,
  2992. (void *)ip,
  2993. (void *)(unsigned long)lock, /* 1 = LOCK, 3=UNLOCK, etc */
  2994. (void *)(unsigned long)lockflags, /* XFS_ILOCK_EXCL etc */
  2995. (void *)ra, /* caller of ilock */
  2996. (void *)(unsigned long)current_cpu(),
  2997. (void *)(unsigned long)current_pid(),
  2998. NULL,NULL,NULL,NULL,NULL,NULL,NULL,NULL,NULL,NULL);
  2999. }
  3000. #endif
  3001. /*
  3002. * Return a pointer to the extent record at file index idx.
  3003. */
  3004. xfs_bmbt_rec_host_t *
  3005. xfs_iext_get_ext(
  3006. xfs_ifork_t *ifp, /* inode fork pointer */
  3007. xfs_extnum_t idx) /* index of target extent */
  3008. {
  3009. ASSERT(idx >= 0);
  3010. if ((ifp->if_flags & XFS_IFEXTIREC) && (idx == 0)) {
  3011. return ifp->if_u1.if_ext_irec->er_extbuf;
  3012. } else if (ifp->if_flags & XFS_IFEXTIREC) {
  3013. xfs_ext_irec_t *erp; /* irec pointer */
  3014. int erp_idx = 0; /* irec index */
  3015. xfs_extnum_t page_idx = idx; /* ext index in target list */
  3016. erp = xfs_iext_idx_to_irec(ifp, &page_idx, &erp_idx, 0);
  3017. return &erp->er_extbuf[page_idx];
  3018. } else if (ifp->if_bytes) {
  3019. return &ifp->if_u1.if_extents[idx];
  3020. } else {
  3021. return NULL;
  3022. }
  3023. }
  3024. /*
  3025. * Insert new item(s) into the extent records for incore inode
  3026. * fork 'ifp'. 'count' new items are inserted at index 'idx'.
  3027. */
  3028. void
  3029. xfs_iext_insert(
  3030. xfs_ifork_t *ifp, /* inode fork pointer */
  3031. xfs_extnum_t idx, /* starting index of new items */
  3032. xfs_extnum_t count, /* number of inserted items */
  3033. xfs_bmbt_irec_t *new) /* items to insert */
  3034. {
  3035. xfs_extnum_t i; /* extent record index */
  3036. ASSERT(ifp->if_flags & XFS_IFEXTENTS);
  3037. xfs_iext_add(ifp, idx, count);
  3038. for (i = idx; i < idx + count; i++, new++)
  3039. xfs_bmbt_set_all(xfs_iext_get_ext(ifp, i), new);
  3040. }
  3041. /*
  3042. * This is called when the amount of space required for incore file
  3043. * extents needs to be increased. The ext_diff parameter stores the
  3044. * number of new extents being added and the idx parameter contains
  3045. * the extent index where the new extents will be added. If the new
  3046. * extents are being appended, then we just need to (re)allocate and
  3047. * initialize the space. Otherwise, if the new extents are being
  3048. * inserted into the middle of the existing entries, a bit more work
  3049. * is required to make room for the new extents to be inserted. The
  3050. * caller is responsible for filling in the new extent entries upon
  3051. * return.
  3052. */
  3053. void
  3054. xfs_iext_add(
  3055. xfs_ifork_t *ifp, /* inode fork pointer */
  3056. xfs_extnum_t idx, /* index to begin adding exts */
  3057. int ext_diff) /* number of extents to add */
  3058. {
  3059. int byte_diff; /* new bytes being added */
  3060. int new_size; /* size of extents after adding */
  3061. xfs_extnum_t nextents; /* number of extents in file */
  3062. nextents = ifp->if_bytes / (uint)sizeof(xfs_bmbt_rec_t);
  3063. ASSERT((idx >= 0) && (idx <= nextents));
  3064. byte_diff = ext_diff * sizeof(xfs_bmbt_rec_t);
  3065. new_size = ifp->if_bytes + byte_diff;
  3066. /*
  3067. * If the new number of extents (nextents + ext_diff)
  3068. * fits inside the inode, then continue to use the inline
  3069. * extent buffer.
  3070. */
  3071. if (nextents + ext_diff <= XFS_INLINE_EXTS) {
  3072. if (idx < nextents) {
  3073. memmove(&ifp->if_u2.if_inline_ext[idx + ext_diff],
  3074. &ifp->if_u2.if_inline_ext[idx],
  3075. (nextents - idx) * sizeof(xfs_bmbt_rec_t));
  3076. memset(&ifp->if_u2.if_inline_ext[idx], 0, byte_diff);
  3077. }
  3078. ifp->if_u1.if_extents = ifp->if_u2.if_inline_ext;
  3079. ifp->if_real_bytes = 0;
  3080. ifp->if_lastex = nextents + ext_diff;
  3081. }
  3082. /*
  3083. * Otherwise use a linear (direct) extent list.
  3084. * If the extents are currently inside the inode,
  3085. * xfs_iext_realloc_direct will switch us from
  3086. * inline to direct extent allocation mode.
  3087. */
  3088. else if (nextents + ext_diff <= XFS_LINEAR_EXTS) {
  3089. xfs_iext_realloc_direct(ifp, new_size);
  3090. if (idx < nextents) {
  3091. memmove(&ifp->if_u1.if_extents[idx + ext_diff],
  3092. &ifp->if_u1.if_extents[idx],
  3093. (nextents - idx) * sizeof(xfs_bmbt_rec_t));
  3094. memset(&ifp->if_u1.if_extents[idx], 0, byte_diff);
  3095. }
  3096. }
  3097. /* Indirection array */
  3098. else {
  3099. xfs_ext_irec_t *erp;
  3100. int erp_idx = 0;
  3101. int page_idx = idx;
  3102. ASSERT(nextents + ext_diff > XFS_LINEAR_EXTS);
  3103. if (ifp->if_flags & XFS_IFEXTIREC) {
  3104. erp = xfs_iext_idx_to_irec(ifp, &page_idx, &erp_idx, 1);
  3105. } else {
  3106. xfs_iext_irec_init(ifp);
  3107. ASSERT(ifp->if_flags & XFS_IFEXTIREC);
  3108. erp = ifp->if_u1.if_ext_irec;
  3109. }
  3110. /* Extents fit in target extent page */
  3111. if (erp && erp->er_extcount + ext_diff <= XFS_LINEAR_EXTS) {
  3112. if (page_idx < erp->er_extcount) {
  3113. memmove(&erp->er_extbuf[page_idx + ext_diff],
  3114. &erp->er_extbuf[page_idx],
  3115. (erp->er_extcount - page_idx) *
  3116. sizeof(xfs_bmbt_rec_t));
  3117. memset(&erp->er_extbuf[page_idx], 0, byte_diff);
  3118. }
  3119. erp->er_extcount += ext_diff;
  3120. xfs_iext_irec_update_extoffs(ifp, erp_idx + 1, ext_diff);
  3121. }
  3122. /* Insert a new extent page */
  3123. else if (erp) {
  3124. xfs_iext_add_indirect_multi(ifp,
  3125. erp_idx, page_idx, ext_diff);
  3126. }
  3127. /*
  3128. * If extent(s) are being appended to the last page in
  3129. * the indirection array and the new extent(s) don't fit
  3130. * in the page, then erp is NULL and erp_idx is set to
  3131. * the next index needed in the indirection array.
  3132. */
  3133. else {
  3134. int count = ext_diff;
  3135. while (count) {
  3136. erp = xfs_iext_irec_new(ifp, erp_idx);
  3137. erp->er_extcount = count;
  3138. count -= MIN(count, (int)XFS_LINEAR_EXTS);
  3139. if (count) {
  3140. erp_idx++;
  3141. }
  3142. }
  3143. }
  3144. }
  3145. ifp->if_bytes = new_size;
  3146. }
  3147. /*
  3148. * This is called when incore extents are being added to the indirection
  3149. * array and the new extents do not fit in the target extent list. The
  3150. * erp_idx parameter contains the irec index for the target extent list
  3151. * in the indirection array, and the idx parameter contains the extent
  3152. * index within the list. The number of extents being added is stored
  3153. * in the count parameter.
  3154. *
  3155. * |-------| |-------|
  3156. * | | | | idx - number of extents before idx
  3157. * | idx | | count |
  3158. * | | | | count - number of extents being inserted at idx
  3159. * |-------| |-------|
  3160. * | count | | nex2 | nex2 - number of extents after idx + count
  3161. * |-------| |-------|
  3162. */
  3163. void
  3164. xfs_iext_add_indirect_multi(
  3165. xfs_ifork_t *ifp, /* inode fork pointer */
  3166. int erp_idx, /* target extent irec index */
  3167. xfs_extnum_t idx, /* index within target list */
  3168. int count) /* new extents being added */
  3169. {
  3170. int byte_diff; /* new bytes being added */
  3171. xfs_ext_irec_t *erp; /* pointer to irec entry */
  3172. xfs_extnum_t ext_diff; /* number of extents to add */
  3173. xfs_extnum_t ext_cnt; /* new extents still needed */
  3174. xfs_extnum_t nex2; /* extents after idx + count */
  3175. xfs_bmbt_rec_t *nex2_ep = NULL; /* temp list for nex2 extents */
  3176. int nlists; /* number of irec's (lists) */
  3177. ASSERT(ifp->if_flags & XFS_IFEXTIREC);
  3178. erp = &ifp->if_u1.if_ext_irec[erp_idx];
  3179. nex2 = erp->er_extcount - idx;
  3180. nlists = ifp->if_real_bytes / XFS_IEXT_BUFSZ;
  3181. /*
  3182. * Save second part of target extent list
  3183. * (all extents past */
  3184. if (nex2) {
  3185. byte_diff = nex2 * sizeof(xfs_bmbt_rec_t);
  3186. nex2_ep = (xfs_bmbt_rec_t *) kmem_alloc(byte_diff, KM_NOFS);
  3187. memmove(nex2_ep, &erp->er_extbuf[idx], byte_diff);
  3188. erp->er_extcount -= nex2;
  3189. xfs_iext_irec_update_extoffs(ifp, erp_idx + 1, -nex2);
  3190. memset(&erp->er_extbuf[idx], 0, byte_diff);
  3191. }
  3192. /*
  3193. * Add the new extents to the end of the target
  3194. * list, then allocate new irec record(s) and
  3195. * extent buffer(s) as needed to store the rest
  3196. * of the new extents.
  3197. */
  3198. ext_cnt = count;
  3199. ext_diff = MIN(ext_cnt, (int)XFS_LINEAR_EXTS - erp->er_extcount);
  3200. if (ext_diff) {
  3201. erp->er_extcount += ext_diff;
  3202. xfs_iext_irec_update_extoffs(ifp, erp_idx + 1, ext_diff);
  3203. ext_cnt -= ext_diff;
  3204. }
  3205. while (ext_cnt) {
  3206. erp_idx++;
  3207. erp = xfs_iext_irec_new(ifp, erp_idx);
  3208. ext_diff = MIN(ext_cnt, (int)XFS_LINEAR_EXTS);
  3209. erp->er_extcount = ext_diff;
  3210. xfs_iext_irec_update_extoffs(ifp, erp_idx + 1, ext_diff);
  3211. ext_cnt -= ext_diff;
  3212. }
  3213. /* Add nex2 extents back to indirection array */
  3214. if (nex2) {
  3215. xfs_extnum_t ext_avail;
  3216. int i;
  3217. byte_diff = nex2 * sizeof(xfs_bmbt_rec_t);
  3218. ext_avail = XFS_LINEAR_EXTS - erp->er_extcount;
  3219. i = 0;
  3220. /*
  3221. * If nex2 extents fit in the current page, append
  3222. * nex2_ep after the new extents.
  3223. */
  3224. if (nex2 <= ext_avail) {
  3225. i = erp->er_extcount;
  3226. }
  3227. /*
  3228. * Otherwise, check if space is available in the
  3229. * next page.
  3230. */
  3231. else if ((erp_idx < nlists - 1) &&
  3232. (nex2 <= (ext_avail = XFS_LINEAR_EXTS -
  3233. ifp->if_u1.if_ext_irec[erp_idx+1].er_extcount))) {
  3234. erp_idx++;
  3235. erp++;
  3236. /* Create a hole for nex2 extents */
  3237. memmove(&erp->er_extbuf[nex2], erp->er_extbuf,
  3238. erp->er_extcount * sizeof(xfs_bmbt_rec_t));
  3239. }
  3240. /*
  3241. * Final choice, create a new extent page for
  3242. * nex2 extents.
  3243. */
  3244. else {
  3245. erp_idx++;
  3246. erp = xfs_iext_irec_new(ifp, erp_idx);
  3247. }
  3248. memmove(&erp->er_extbuf[i], nex2_ep, byte_diff);
  3249. kmem_free(nex2_ep);
  3250. erp->er_extcount += nex2;
  3251. xfs_iext_irec_update_extoffs(ifp, erp_idx + 1, nex2);
  3252. }
  3253. }
  3254. /*
  3255. * This is called when the amount of space required for incore file
  3256. * extents needs to be decreased. The ext_diff parameter stores the
  3257. * number of extents to be removed and the idx parameter contains
  3258. * the extent index where the extents will be removed from.
  3259. *
  3260. * If the amount of space needed has decreased below the linear
  3261. * limit, XFS_IEXT_BUFSZ, then switch to using the contiguous
  3262. * extent array. Otherwise, use kmem_realloc() to adjust the
  3263. * size to what is needed.
  3264. */
  3265. void
  3266. xfs_iext_remove(
  3267. xfs_ifork_t *ifp, /* inode fork pointer */
  3268. xfs_extnum_t idx, /* index to begin removing exts */
  3269. int ext_diff) /* number of extents to remove */
  3270. {
  3271. xfs_extnum_t nextents; /* number of extents in file */
  3272. int new_size; /* size of extents after removal */
  3273. ASSERT(ext_diff > 0);
  3274. nextents = ifp->if_bytes / (uint)sizeof(xfs_bmbt_rec_t);
  3275. new_size = (nextents - ext_diff) * sizeof(xfs_bmbt_rec_t);
  3276. if (new_size == 0) {
  3277. xfs_iext_destroy(ifp);
  3278. } else if (ifp->if_flags & XFS_IFEXTIREC) {
  3279. xfs_iext_remove_indirect(ifp, idx, ext_diff);
  3280. } else if (ifp->if_real_bytes) {
  3281. xfs_iext_remove_direct(ifp, idx, ext_diff);
  3282. } else {
  3283. xfs_iext_remove_inline(ifp, idx, ext_diff);
  3284. }
  3285. ifp->if_bytes = new_size;
  3286. }
  3287. /*
  3288. * This removes ext_diff extents from the inline buffer, beginning
  3289. * at extent index idx.
  3290. */
  3291. void
  3292. xfs_iext_remove_inline(
  3293. xfs_ifork_t *ifp, /* inode fork pointer */
  3294. xfs_extnum_t idx, /* index to begin removing exts */
  3295. int ext_diff) /* number of extents to remove */
  3296. {
  3297. int nextents; /* number of extents in file */
  3298. ASSERT(!(ifp->if_flags & XFS_IFEXTIREC));
  3299. ASSERT(idx < XFS_INLINE_EXTS);
  3300. nextents = ifp->if_bytes / (uint)sizeof(xfs_bmbt_rec_t);
  3301. ASSERT(((nextents - ext_diff) > 0) &&
  3302. (nextents - ext_diff) < XFS_INLINE_EXTS);
  3303. if (idx + ext_diff < nextents) {
  3304. memmove(&ifp->if_u2.if_inline_ext[idx],
  3305. &ifp->if_u2.if_inline_ext[idx + ext_diff],
  3306. (nextents - (idx + ext_diff)) *
  3307. sizeof(xfs_bmbt_rec_t));
  3308. memset(&ifp->if_u2.if_inline_ext[nextents - ext_diff],
  3309. 0, ext_diff * sizeof(xfs_bmbt_rec_t));
  3310. } else {
  3311. memset(&ifp->if_u2.if_inline_ext[idx], 0,
  3312. ext_diff * sizeof(xfs_bmbt_rec_t));
  3313. }
  3314. }
  3315. /*
  3316. * This removes ext_diff extents from a linear (direct) extent list,
  3317. * beginning at extent index idx. If the extents are being removed
  3318. * from the end of the list (ie. truncate) then we just need to re-
  3319. * allocate the list to remove the extra space. Otherwise, if the
  3320. * extents are being removed from the middle of the existing extent
  3321. * entries, then we first need to move the extent records beginning
  3322. * at idx + ext_diff up in the list to overwrite the records being
  3323. * removed, then remove the extra space via kmem_realloc.
  3324. */
  3325. void
  3326. xfs_iext_remove_direct(
  3327. xfs_ifork_t *ifp, /* inode fork pointer */
  3328. xfs_extnum_t idx, /* index to begin removing exts */
  3329. int ext_diff) /* number of extents to remove */
  3330. {
  3331. xfs_extnum_t nextents; /* number of extents in file */
  3332. int new_size; /* size of extents after removal */
  3333. ASSERT(!(ifp->if_flags & XFS_IFEXTIREC));
  3334. new_size = ifp->if_bytes -
  3335. (ext_diff * sizeof(xfs_bmbt_rec_t));
  3336. nextents = ifp->if_bytes / (uint)sizeof(xfs_bmbt_rec_t);
  3337. if (new_size == 0) {
  3338. xfs_iext_destroy(ifp);
  3339. return;
  3340. }
  3341. /* Move extents up in the list (if needed) */
  3342. if (idx + ext_diff < nextents) {
  3343. memmove(&ifp->if_u1.if_extents[idx],
  3344. &ifp->if_u1.if_extents[idx + ext_diff],
  3345. (nextents - (idx + ext_diff)) *
  3346. sizeof(xfs_bmbt_rec_t));
  3347. }
  3348. memset(&ifp->if_u1.if_extents[nextents - ext_diff],
  3349. 0, ext_diff * sizeof(xfs_bmbt_rec_t));
  3350. /*
  3351. * Reallocate the direct extent list. If the extents
  3352. * will fit inside the inode then xfs_iext_realloc_direct
  3353. * will switch from direct to inline extent allocation
  3354. * mode for us.
  3355. */
  3356. xfs_iext_realloc_direct(ifp, new_size);
  3357. ifp->if_bytes = new_size;
  3358. }
  3359. /*
  3360. * This is called when incore extents are being removed from the
  3361. * indirection array and the extents being removed span multiple extent
  3362. * buffers. The idx parameter contains the file extent index where we
  3363. * want to begin removing extents, and the count parameter contains
  3364. * how many extents need to be removed.
  3365. *
  3366. * |-------| |-------|
  3367. * | nex1 | | | nex1 - number of extents before idx
  3368. * |-------| | count |
  3369. * | | | | count - number of extents being removed at idx
  3370. * | count | |-------|
  3371. * | | | nex2 | nex2 - number of extents after idx + count
  3372. * |-------| |-------|
  3373. */
  3374. void
  3375. xfs_iext_remove_indirect(
  3376. xfs_ifork_t *ifp, /* inode fork pointer */
  3377. xfs_extnum_t idx, /* index to begin removing extents */
  3378. int count) /* number of extents to remove */
  3379. {
  3380. xfs_ext_irec_t *erp; /* indirection array pointer */
  3381. int erp_idx = 0; /* indirection array index */
  3382. xfs_extnum_t ext_cnt; /* extents left to remove */
  3383. xfs_extnum_t ext_diff; /* extents to remove in current list */
  3384. xfs_extnum_t nex1; /* number of extents before idx */
  3385. xfs_extnum_t nex2; /* extents after idx + count */
  3386. int nlists; /* entries in indirection array */
  3387. int page_idx = idx; /* index in target extent list */
  3388. ASSERT(ifp->if_flags & XFS_IFEXTIREC);
  3389. erp = xfs_iext_idx_to_irec(ifp, &page_idx, &erp_idx, 0);
  3390. ASSERT(erp != NULL);
  3391. nlists = ifp->if_real_bytes / XFS_IEXT_BUFSZ;
  3392. nex1 = page_idx;
  3393. ext_cnt = count;
  3394. while (ext_cnt) {
  3395. nex2 = MAX((erp->er_extcount - (nex1 + ext_cnt)), 0);
  3396. ext_diff = MIN(ext_cnt, (erp->er_extcount - nex1));
  3397. /*
  3398. * Check for deletion of entire list;
  3399. * xfs_iext_irec_remove() updates extent offsets.
  3400. */
  3401. if (ext_diff == erp->er_extcount) {
  3402. xfs_iext_irec_remove(ifp, erp_idx);
  3403. ext_cnt -= ext_diff;
  3404. nex1 = 0;
  3405. if (ext_cnt) {
  3406. ASSERT(erp_idx < ifp->if_real_bytes /
  3407. XFS_IEXT_BUFSZ);
  3408. erp = &ifp->if_u1.if_ext_irec[erp_idx];
  3409. nex1 = 0;
  3410. continue;
  3411. } else {
  3412. break;
  3413. }
  3414. }
  3415. /* Move extents up (if needed) */
  3416. if (nex2) {
  3417. memmove(&erp->er_extbuf[nex1],
  3418. &erp->er_extbuf[nex1 + ext_diff],
  3419. nex2 * sizeof(xfs_bmbt_rec_t));
  3420. }
  3421. /* Zero out rest of page */
  3422. memset(&erp->er_extbuf[nex1 + nex2], 0, (XFS_IEXT_BUFSZ -
  3423. ((nex1 + nex2) * sizeof(xfs_bmbt_rec_t))));
  3424. /* Update remaining counters */
  3425. erp->er_extcount -= ext_diff;
  3426. xfs_iext_irec_update_extoffs(ifp, erp_idx + 1, -ext_diff);
  3427. ext_cnt -= ext_diff;
  3428. nex1 = 0;
  3429. erp_idx++;
  3430. erp++;
  3431. }
  3432. ifp->if_bytes -= count * sizeof(xfs_bmbt_rec_t);
  3433. xfs_iext_irec_compact(ifp);
  3434. }
  3435. /*
  3436. * Create, destroy, or resize a linear (direct) block of extents.
  3437. */
  3438. void
  3439. xfs_iext_realloc_direct(
  3440. xfs_ifork_t *ifp, /* inode fork pointer */
  3441. int new_size) /* new size of extents */
  3442. {
  3443. int rnew_size; /* real new size of extents */
  3444. rnew_size = new_size;
  3445. ASSERT(!(ifp->if_flags & XFS_IFEXTIREC) ||
  3446. ((new_size >= 0) && (new_size <= XFS_IEXT_BUFSZ) &&
  3447. (new_size != ifp->if_real_bytes)));
  3448. /* Free extent records */
  3449. if (new_size == 0) {
  3450. xfs_iext_destroy(ifp);
  3451. }
  3452. /* Resize direct extent list and zero any new bytes */
  3453. else if (ifp->if_real_bytes) {
  3454. /* Check if extents will fit inside the inode */
  3455. if (new_size <= XFS_INLINE_EXTS * sizeof(xfs_bmbt_rec_t)) {
  3456. xfs_iext_direct_to_inline(ifp, new_size /
  3457. (uint)sizeof(xfs_bmbt_rec_t));
  3458. ifp->if_bytes = new_size;
  3459. return;
  3460. }
  3461. if (!is_power_of_2(new_size)){
  3462. rnew_size = roundup_pow_of_two(new_size);
  3463. }
  3464. if (rnew_size != ifp->if_real_bytes) {
  3465. ifp->if_u1.if_extents =
  3466. kmem_realloc(ifp->if_u1.if_extents,
  3467. rnew_size,
  3468. ifp->if_real_bytes, KM_NOFS);
  3469. }
  3470. if (rnew_size > ifp->if_real_bytes) {
  3471. memset(&ifp->if_u1.if_extents[ifp->if_bytes /
  3472. (uint)sizeof(xfs_bmbt_rec_t)], 0,
  3473. rnew_size - ifp->if_real_bytes);
  3474. }
  3475. }
  3476. /*
  3477. * Switch from the inline extent buffer to a direct
  3478. * extent list. Be sure to include the inline extent
  3479. * bytes in new_size.
  3480. */
  3481. else {
  3482. new_size += ifp->if_bytes;
  3483. if (!is_power_of_2(new_size)) {
  3484. rnew_size = roundup_pow_of_two(new_size);
  3485. }
  3486. xfs_iext_inline_to_direct(ifp, rnew_size);
  3487. }
  3488. ifp->if_real_bytes = rnew_size;
  3489. ifp->if_bytes = new_size;
  3490. }
  3491. /*
  3492. * Switch from linear (direct) extent records to inline buffer.
  3493. */
  3494. void
  3495. xfs_iext_direct_to_inline(
  3496. xfs_ifork_t *ifp, /* inode fork pointer */
  3497. xfs_extnum_t nextents) /* number of extents in file */
  3498. {
  3499. ASSERT(ifp->if_flags & XFS_IFEXTENTS);
  3500. ASSERT(nextents <= XFS_INLINE_EXTS);
  3501. /*
  3502. * The inline buffer was zeroed when we switched
  3503. * from inline to direct extent allocation mode,
  3504. * so we don't need to clear it here.
  3505. */
  3506. memcpy(ifp->if_u2.if_inline_ext, ifp->if_u1.if_extents,
  3507. nextents * sizeof(xfs_bmbt_rec_t));
  3508. kmem_free(ifp->if_u1.if_extents);
  3509. ifp->if_u1.if_extents = ifp->if_u2.if_inline_ext;
  3510. ifp->if_real_bytes = 0;
  3511. }
  3512. /*
  3513. * Switch from inline buffer to linear (direct) extent records.
  3514. * new_size should already be rounded up to the next power of 2
  3515. * by the caller (when appropriate), so use new_size as it is.
  3516. * However, since new_size may be rounded up, we can't update
  3517. * if_bytes here. It is the caller's responsibility to update
  3518. * if_bytes upon return.
  3519. */
  3520. void
  3521. xfs_iext_inline_to_direct(
  3522. xfs_ifork_t *ifp, /* inode fork pointer */
  3523. int new_size) /* number of extents in file */
  3524. {
  3525. ifp->if_u1.if_extents = kmem_alloc(new_size, KM_NOFS);
  3526. memset(ifp->if_u1.if_extents, 0, new_size);
  3527. if (ifp->if_bytes) {
  3528. memcpy(ifp->if_u1.if_extents, ifp->if_u2.if_inline_ext,
  3529. ifp->if_bytes);
  3530. memset(ifp->if_u2.if_inline_ext, 0, XFS_INLINE_EXTS *
  3531. sizeof(xfs_bmbt_rec_t));
  3532. }
  3533. ifp->if_real_bytes = new_size;
  3534. }
  3535. /*
  3536. * Resize an extent indirection array to new_size bytes.
  3537. */
  3538. void
  3539. xfs_iext_realloc_indirect(
  3540. xfs_ifork_t *ifp, /* inode fork pointer */
  3541. int new_size) /* new indirection array size */
  3542. {
  3543. int nlists; /* number of irec's (ex lists) */
  3544. int size; /* current indirection array size */
  3545. ASSERT(ifp->if_flags & XFS_IFEXTIREC);
  3546. nlists = ifp->if_real_bytes / XFS_IEXT_BUFSZ;
  3547. size = nlists * sizeof(xfs_ext_irec_t);
  3548. ASSERT(ifp->if_real_bytes);
  3549. ASSERT((new_size >= 0) && (new_size != size));
  3550. if (new_size == 0) {
  3551. xfs_iext_destroy(ifp);
  3552. } else {
  3553. ifp->if_u1.if_ext_irec = (xfs_ext_irec_t *)
  3554. kmem_realloc(ifp->if_u1.if_ext_irec,
  3555. new_size, size, KM_NOFS);
  3556. }
  3557. }
  3558. /*
  3559. * Switch from indirection array to linear (direct) extent allocations.
  3560. */
  3561. void
  3562. xfs_iext_indirect_to_direct(
  3563. xfs_ifork_t *ifp) /* inode fork pointer */
  3564. {
  3565. xfs_bmbt_rec_host_t *ep; /* extent record pointer */
  3566. xfs_extnum_t nextents; /* number of extents in file */
  3567. int size; /* size of file extents */
  3568. ASSERT(ifp->if_flags & XFS_IFEXTIREC);
  3569. nextents = ifp->if_bytes / (uint)sizeof(xfs_bmbt_rec_t);
  3570. ASSERT(nextents <= XFS_LINEAR_EXTS);
  3571. size = nextents * sizeof(xfs_bmbt_rec_t);
  3572. xfs_iext_irec_compact_pages(ifp);
  3573. ASSERT(ifp->if_real_bytes == XFS_IEXT_BUFSZ);
  3574. ep = ifp->if_u1.if_ext_irec->er_extbuf;
  3575. kmem_free(ifp->if_u1.if_ext_irec);
  3576. ifp->if_flags &= ~XFS_IFEXTIREC;
  3577. ifp->if_u1.if_extents = ep;
  3578. ifp->if_bytes = size;
  3579. if (nextents < XFS_LINEAR_EXTS) {
  3580. xfs_iext_realloc_direct(ifp, size);
  3581. }
  3582. }
  3583. /*
  3584. * Free incore file extents.
  3585. */
  3586. void
  3587. xfs_iext_destroy(
  3588. xfs_ifork_t *ifp) /* inode fork pointer */
  3589. {
  3590. if (ifp->if_flags & XFS_IFEXTIREC) {
  3591. int erp_idx;
  3592. int nlists;
  3593. nlists = ifp->if_real_bytes / XFS_IEXT_BUFSZ;
  3594. for (erp_idx = nlists - 1; erp_idx >= 0 ; erp_idx--) {
  3595. xfs_iext_irec_remove(ifp, erp_idx);
  3596. }
  3597. ifp->if_flags &= ~XFS_IFEXTIREC;
  3598. } else if (ifp->if_real_bytes) {
  3599. kmem_free(ifp->if_u1.if_extents);
  3600. } else if (ifp->if_bytes) {
  3601. memset(ifp->if_u2.if_inline_ext, 0, XFS_INLINE_EXTS *
  3602. sizeof(xfs_bmbt_rec_t));
  3603. }
  3604. ifp->if_u1.if_extents = NULL;
  3605. ifp->if_real_bytes = 0;
  3606. ifp->if_bytes = 0;
  3607. }
  3608. /*
  3609. * Return a pointer to the extent record for file system block bno.
  3610. */
  3611. xfs_bmbt_rec_host_t * /* pointer to found extent record */
  3612. xfs_iext_bno_to_ext(
  3613. xfs_ifork_t *ifp, /* inode fork pointer */
  3614. xfs_fileoff_t bno, /* block number to search for */
  3615. xfs_extnum_t *idxp) /* index of target extent */
  3616. {
  3617. xfs_bmbt_rec_host_t *base; /* pointer to first extent */
  3618. xfs_filblks_t blockcount = 0; /* number of blocks in extent */
  3619. xfs_bmbt_rec_host_t *ep = NULL; /* pointer to target extent */
  3620. xfs_ext_irec_t *erp = NULL; /* indirection array pointer */
  3621. int high; /* upper boundary in search */
  3622. xfs_extnum_t idx = 0; /* index of target extent */
  3623. int low; /* lower boundary in search */
  3624. xfs_extnum_t nextents; /* number of file extents */
  3625. xfs_fileoff_t startoff = 0; /* start offset of extent */
  3626. nextents = ifp->if_bytes / (uint)sizeof(xfs_bmbt_rec_t);
  3627. if (nextents == 0) {
  3628. *idxp = 0;
  3629. return NULL;
  3630. }
  3631. low = 0;
  3632. if (ifp->if_flags & XFS_IFEXTIREC) {
  3633. /* Find target extent list */
  3634. int erp_idx = 0;
  3635. erp = xfs_iext_bno_to_irec(ifp, bno, &erp_idx);
  3636. base = erp->er_extbuf;
  3637. high = erp->er_extcount - 1;
  3638. } else {
  3639. base = ifp->if_u1.if_extents;
  3640. high = nextents - 1;
  3641. }
  3642. /* Binary search extent records */
  3643. while (low <= high) {
  3644. idx = (low + high) >> 1;
  3645. ep = base + idx;
  3646. startoff = xfs_bmbt_get_startoff(ep);
  3647. blockcount = xfs_bmbt_get_blockcount(ep);
  3648. if (bno < startoff) {
  3649. high = idx - 1;
  3650. } else if (bno >= startoff + blockcount) {
  3651. low = idx + 1;
  3652. } else {
  3653. /* Convert back to file-based extent index */
  3654. if (ifp->if_flags & XFS_IFEXTIREC) {
  3655. idx += erp->er_extoff;
  3656. }
  3657. *idxp = idx;
  3658. return ep;
  3659. }
  3660. }
  3661. /* Convert back to file-based extent index */
  3662. if (ifp->if_flags & XFS_IFEXTIREC) {
  3663. idx += erp->er_extoff;
  3664. }
  3665. if (bno >= startoff + blockcount) {
  3666. if (++idx == nextents) {
  3667. ep = NULL;
  3668. } else {
  3669. ep = xfs_iext_get_ext(ifp, idx);
  3670. }
  3671. }
  3672. *idxp = idx;
  3673. return ep;
  3674. }
  3675. /*
  3676. * Return a pointer to the indirection array entry containing the
  3677. * extent record for filesystem block bno. Store the index of the
  3678. * target irec in *erp_idxp.
  3679. */
  3680. xfs_ext_irec_t * /* pointer to found extent record */
  3681. xfs_iext_bno_to_irec(
  3682. xfs_ifork_t *ifp, /* inode fork pointer */
  3683. xfs_fileoff_t bno, /* block number to search for */
  3684. int *erp_idxp) /* irec index of target ext list */
  3685. {
  3686. xfs_ext_irec_t *erp = NULL; /* indirection array pointer */
  3687. xfs_ext_irec_t *erp_next; /* next indirection array entry */
  3688. int erp_idx; /* indirection array index */
  3689. int nlists; /* number of extent irec's (lists) */
  3690. int high; /* binary search upper limit */
  3691. int low; /* binary search lower limit */
  3692. ASSERT(ifp->if_flags & XFS_IFEXTIREC);
  3693. nlists = ifp->if_real_bytes / XFS_IEXT_BUFSZ;
  3694. erp_idx = 0;
  3695. low = 0;
  3696. high = nlists - 1;
  3697. while (low <= high) {
  3698. erp_idx = (low + high) >> 1;
  3699. erp = &ifp->if_u1.if_ext_irec[erp_idx];
  3700. erp_next = erp_idx < nlists - 1 ? erp + 1 : NULL;
  3701. if (bno < xfs_bmbt_get_startoff(erp->er_extbuf)) {
  3702. high = erp_idx - 1;
  3703. } else if (erp_next && bno >=
  3704. xfs_bmbt_get_startoff(erp_next->er_extbuf)) {
  3705. low = erp_idx + 1;
  3706. } else {
  3707. break;
  3708. }
  3709. }
  3710. *erp_idxp = erp_idx;
  3711. return erp;
  3712. }
  3713. /*
  3714. * Return a pointer to the indirection array entry containing the
  3715. * extent record at file extent index *idxp. Store the index of the
  3716. * target irec in *erp_idxp and store the page index of the target
  3717. * extent record in *idxp.
  3718. */
  3719. xfs_ext_irec_t *
  3720. xfs_iext_idx_to_irec(
  3721. xfs_ifork_t *ifp, /* inode fork pointer */
  3722. xfs_extnum_t *idxp, /* extent index (file -> page) */
  3723. int *erp_idxp, /* pointer to target irec */
  3724. int realloc) /* new bytes were just added */
  3725. {
  3726. xfs_ext_irec_t *prev; /* pointer to previous irec */
  3727. xfs_ext_irec_t *erp = NULL; /* pointer to current irec */
  3728. int erp_idx; /* indirection array index */
  3729. int nlists; /* number of irec's (ex lists) */
  3730. int high; /* binary search upper limit */
  3731. int low; /* binary search lower limit */
  3732. xfs_extnum_t page_idx = *idxp; /* extent index in target list */
  3733. ASSERT(ifp->if_flags & XFS_IFEXTIREC);
  3734. ASSERT(page_idx >= 0 && page_idx <=
  3735. ifp->if_bytes / (uint)sizeof(xfs_bmbt_rec_t));
  3736. nlists = ifp->if_real_bytes / XFS_IEXT_BUFSZ;
  3737. erp_idx = 0;
  3738. low = 0;
  3739. high = nlists - 1;
  3740. /* Binary search extent irec's */
  3741. while (low <= high) {
  3742. erp_idx = (low + high) >> 1;
  3743. erp = &ifp->if_u1.if_ext_irec[erp_idx];
  3744. prev = erp_idx > 0 ? erp - 1 : NULL;
  3745. if (page_idx < erp->er_extoff || (page_idx == erp->er_extoff &&
  3746. realloc && prev && prev->er_extcount < XFS_LINEAR_EXTS)) {
  3747. high = erp_idx - 1;
  3748. } else if (page_idx > erp->er_extoff + erp->er_extcount ||
  3749. (page_idx == erp->er_extoff + erp->er_extcount &&
  3750. !realloc)) {
  3751. low = erp_idx + 1;
  3752. } else if (page_idx == erp->er_extoff + erp->er_extcount &&
  3753. erp->er_extcount == XFS_LINEAR_EXTS) {
  3754. ASSERT(realloc);
  3755. page_idx = 0;
  3756. erp_idx++;
  3757. erp = erp_idx < nlists ? erp + 1 : NULL;
  3758. break;
  3759. } else {
  3760. page_idx -= erp->er_extoff;
  3761. break;
  3762. }
  3763. }
  3764. *idxp = page_idx;
  3765. *erp_idxp = erp_idx;
  3766. return(erp);
  3767. }
  3768. /*
  3769. * Allocate and initialize an indirection array once the space needed
  3770. * for incore extents increases above XFS_IEXT_BUFSZ.
  3771. */
  3772. void
  3773. xfs_iext_irec_init(
  3774. xfs_ifork_t *ifp) /* inode fork pointer */
  3775. {
  3776. xfs_ext_irec_t *erp; /* indirection array pointer */
  3777. xfs_extnum_t nextents; /* number of extents in file */
  3778. ASSERT(!(ifp->if_flags & XFS_IFEXTIREC));
  3779. nextents = ifp->if_bytes / (uint)sizeof(xfs_bmbt_rec_t);
  3780. ASSERT(nextents <= XFS_LINEAR_EXTS);
  3781. erp = kmem_alloc(sizeof(xfs_ext_irec_t), KM_NOFS);
  3782. if (nextents == 0) {
  3783. ifp->if_u1.if_extents = kmem_alloc(XFS_IEXT_BUFSZ, KM_NOFS);
  3784. } else if (!ifp->if_real_bytes) {
  3785. xfs_iext_inline_to_direct(ifp, XFS_IEXT_BUFSZ);
  3786. } else if (ifp->if_real_bytes < XFS_IEXT_BUFSZ) {
  3787. xfs_iext_realloc_direct(ifp, XFS_IEXT_BUFSZ);
  3788. }
  3789. erp->er_extbuf = ifp->if_u1.if_extents;
  3790. erp->er_extcount = nextents;
  3791. erp->er_extoff = 0;
  3792. ifp->if_flags |= XFS_IFEXTIREC;
  3793. ifp->if_real_bytes = XFS_IEXT_BUFSZ;
  3794. ifp->if_bytes = nextents * sizeof(xfs_bmbt_rec_t);
  3795. ifp->if_u1.if_ext_irec = erp;
  3796. return;
  3797. }
  3798. /*
  3799. * Allocate and initialize a new entry in the indirection array.
  3800. */
  3801. xfs_ext_irec_t *
  3802. xfs_iext_irec_new(
  3803. xfs_ifork_t *ifp, /* inode fork pointer */
  3804. int erp_idx) /* index for new irec */
  3805. {
  3806. xfs_ext_irec_t *erp; /* indirection array pointer */
  3807. int i; /* loop counter */
  3808. int nlists; /* number of irec's (ex lists) */
  3809. ASSERT(ifp->if_flags & XFS_IFEXTIREC);
  3810. nlists = ifp->if_real_bytes / XFS_IEXT_BUFSZ;
  3811. /* Resize indirection array */
  3812. xfs_iext_realloc_indirect(ifp, ++nlists *
  3813. sizeof(xfs_ext_irec_t));
  3814. /*
  3815. * Move records down in the array so the
  3816. * new page can use erp_idx.
  3817. */
  3818. erp = ifp->if_u1.if_ext_irec;
  3819. for (i = nlists - 1; i > erp_idx; i--) {
  3820. memmove(&erp[i], &erp[i-1], sizeof(xfs_ext_irec_t));
  3821. }
  3822. ASSERT(i == erp_idx);
  3823. /* Initialize new extent record */
  3824. erp = ifp->if_u1.if_ext_irec;
  3825. erp[erp_idx].er_extbuf = kmem_alloc(XFS_IEXT_BUFSZ, KM_NOFS);
  3826. ifp->if_real_bytes = nlists * XFS_IEXT_BUFSZ;
  3827. memset(erp[erp_idx].er_extbuf, 0, XFS_IEXT_BUFSZ);
  3828. erp[erp_idx].er_extcount = 0;
  3829. erp[erp_idx].er_extoff = erp_idx > 0 ?
  3830. erp[erp_idx-1].er_extoff + erp[erp_idx-1].er_extcount : 0;
  3831. return (&erp[erp_idx]);
  3832. }
  3833. /*
  3834. * Remove a record from the indirection array.
  3835. */
  3836. void
  3837. xfs_iext_irec_remove(
  3838. xfs_ifork_t *ifp, /* inode fork pointer */
  3839. int erp_idx) /* irec index to remove */
  3840. {
  3841. xfs_ext_irec_t *erp; /* indirection array pointer */
  3842. int i; /* loop counter */
  3843. int nlists; /* number of irec's (ex lists) */
  3844. ASSERT(ifp->if_flags & XFS_IFEXTIREC);
  3845. nlists = ifp->if_real_bytes / XFS_IEXT_BUFSZ;
  3846. erp = &ifp->if_u1.if_ext_irec[erp_idx];
  3847. if (erp->er_extbuf) {
  3848. xfs_iext_irec_update_extoffs(ifp, erp_idx + 1,
  3849. -erp->er_extcount);
  3850. kmem_free(erp->er_extbuf);
  3851. }
  3852. /* Compact extent records */
  3853. erp = ifp->if_u1.if_ext_irec;
  3854. for (i = erp_idx; i < nlists - 1; i++) {
  3855. memmove(&erp[i], &erp[i+1], sizeof(xfs_ext_irec_t));
  3856. }
  3857. /*
  3858. * Manually free the last extent record from the indirection
  3859. * array. A call to xfs_iext_realloc_indirect() with a size
  3860. * of zero would result in a call to xfs_iext_destroy() which
  3861. * would in turn call this function again, creating a nasty
  3862. * infinite loop.
  3863. */
  3864. if (--nlists) {
  3865. xfs_iext_realloc_indirect(ifp,
  3866. nlists * sizeof(xfs_ext_irec_t));
  3867. } else {
  3868. kmem_free(ifp->if_u1.if_ext_irec);
  3869. }
  3870. ifp->if_real_bytes = nlists * XFS_IEXT_BUFSZ;
  3871. }
  3872. /*
  3873. * This is called to clean up large amounts of unused memory allocated
  3874. * by the indirection array. Before compacting anything though, verify
  3875. * that the indirection array is still needed and switch back to the
  3876. * linear extent list (or even the inline buffer) if possible. The
  3877. * compaction policy is as follows:
  3878. *
  3879. * Full Compaction: Extents fit into a single page (or inline buffer)
  3880. * Partial Compaction: Extents occupy less than 50% of allocated space
  3881. * No Compaction: Extents occupy at least 50% of allocated space
  3882. */
  3883. void
  3884. xfs_iext_irec_compact(
  3885. xfs_ifork_t *ifp) /* inode fork pointer */
  3886. {
  3887. xfs_extnum_t nextents; /* number of extents in file */
  3888. int nlists; /* number of irec's (ex lists) */
  3889. ASSERT(ifp->if_flags & XFS_IFEXTIREC);
  3890. nlists = ifp->if_real_bytes / XFS_IEXT_BUFSZ;
  3891. nextents = ifp->if_bytes / (uint)sizeof(xfs_bmbt_rec_t);
  3892. if (nextents == 0) {
  3893. xfs_iext_destroy(ifp);
  3894. } else if (nextents <= XFS_INLINE_EXTS) {
  3895. xfs_iext_indirect_to_direct(ifp);
  3896. xfs_iext_direct_to_inline(ifp, nextents);
  3897. } else if (nextents <= XFS_LINEAR_EXTS) {
  3898. xfs_iext_indirect_to_direct(ifp);
  3899. } else if (nextents < (nlists * XFS_LINEAR_EXTS) >> 1) {
  3900. xfs_iext_irec_compact_pages(ifp);
  3901. }
  3902. }
  3903. /*
  3904. * Combine extents from neighboring extent pages.
  3905. */
  3906. void
  3907. xfs_iext_irec_compact_pages(
  3908. xfs_ifork_t *ifp) /* inode fork pointer */
  3909. {
  3910. xfs_ext_irec_t *erp, *erp_next;/* pointers to irec entries */
  3911. int erp_idx = 0; /* indirection array index */
  3912. int nlists; /* number of irec's (ex lists) */
  3913. ASSERT(ifp->if_flags & XFS_IFEXTIREC);
  3914. nlists = ifp->if_real_bytes / XFS_IEXT_BUFSZ;
  3915. while (erp_idx < nlists - 1) {
  3916. erp = &ifp->if_u1.if_ext_irec[erp_idx];
  3917. erp_next = erp + 1;
  3918. if (erp_next->er_extcount <=
  3919. (XFS_LINEAR_EXTS - erp->er_extcount)) {
  3920. memcpy(&erp->er_extbuf[erp->er_extcount],
  3921. erp_next->er_extbuf, erp_next->er_extcount *
  3922. sizeof(xfs_bmbt_rec_t));
  3923. erp->er_extcount += erp_next->er_extcount;
  3924. /*
  3925. * Free page before removing extent record
  3926. * so er_extoffs don't get modified in
  3927. * xfs_iext_irec_remove.
  3928. */
  3929. kmem_free(erp_next->er_extbuf);
  3930. erp_next->er_extbuf = NULL;
  3931. xfs_iext_irec_remove(ifp, erp_idx + 1);
  3932. nlists = ifp->if_real_bytes / XFS_IEXT_BUFSZ;
  3933. } else {
  3934. erp_idx++;
  3935. }
  3936. }
  3937. }
  3938. /*
  3939. * This is called to update the er_extoff field in the indirection
  3940. * array when extents have been added or removed from one of the
  3941. * extent lists. erp_idx contains the irec index to begin updating
  3942. * at and ext_diff contains the number of extents that were added
  3943. * or removed.
  3944. */
  3945. void
  3946. xfs_iext_irec_update_extoffs(
  3947. xfs_ifork_t *ifp, /* inode fork pointer */
  3948. int erp_idx, /* irec index to update */
  3949. int ext_diff) /* number of new extents */
  3950. {
  3951. int i; /* loop counter */
  3952. int nlists; /* number of irec's (ex lists */
  3953. ASSERT(ifp->if_flags & XFS_IFEXTIREC);
  3954. nlists = ifp->if_real_bytes / XFS_IEXT_BUFSZ;
  3955. for (i = erp_idx; i < nlists; i++) {
  3956. ifp->if_u1.if_ext_irec[i].er_extoff += ext_diff;
  3957. }
  3958. }