truncate.c 13 KB

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  1. /*
  2. * linux/fs/ufs/truncate.c
  3. *
  4. * Copyright (C) 1998
  5. * Daniel Pirkl <daniel.pirkl@email.cz>
  6. * Charles University, Faculty of Mathematics and Physics
  7. *
  8. * from
  9. *
  10. * linux/fs/ext2/truncate.c
  11. *
  12. * Copyright (C) 1992, 1993, 1994, 1995
  13. * Remy Card (card@masi.ibp.fr)
  14. * Laboratoire MASI - Institut Blaise Pascal
  15. * Universite Pierre et Marie Curie (Paris VI)
  16. *
  17. * from
  18. *
  19. * linux/fs/minix/truncate.c
  20. *
  21. * Copyright (C) 1991, 1992 Linus Torvalds
  22. *
  23. * Big-endian to little-endian byte-swapping/bitmaps by
  24. * David S. Miller (davem@caip.rutgers.edu), 1995
  25. */
  26. /*
  27. * Real random numbers for secure rm added 94/02/18
  28. * Idea from Pierre del Perugia <delperug@gla.ecoledoc.ibp.fr>
  29. */
  30. /*
  31. * Adoptation to use page cache and UFS2 write support by
  32. * Evgeniy Dushistov <dushistov@mail.ru>, 2006-2007
  33. */
  34. #include <linux/errno.h>
  35. #include <linux/fs.h>
  36. #include <linux/fcntl.h>
  37. #include <linux/time.h>
  38. #include <linux/stat.h>
  39. #include <linux/string.h>
  40. #include <linux/smp_lock.h>
  41. #include <linux/buffer_head.h>
  42. #include <linux/blkdev.h>
  43. #include <linux/sched.h>
  44. #include "ufs_fs.h"
  45. #include "ufs.h"
  46. #include "swab.h"
  47. #include "util.h"
  48. /*
  49. * Secure deletion currently doesn't work. It interacts very badly
  50. * with buffers shared with memory mappings, and for that reason
  51. * can't be done in the truncate() routines. It should instead be
  52. * done separately in "release()" before calling the truncate routines
  53. * that will release the actual file blocks.
  54. *
  55. * Linus
  56. */
  57. #define DIRECT_BLOCK ((inode->i_size + uspi->s_bsize - 1) >> uspi->s_bshift)
  58. #define DIRECT_FRAGMENT ((inode->i_size + uspi->s_fsize - 1) >> uspi->s_fshift)
  59. static int ufs_trunc_direct(struct inode *inode)
  60. {
  61. struct ufs_inode_info *ufsi = UFS_I(inode);
  62. struct super_block * sb;
  63. struct ufs_sb_private_info * uspi;
  64. void *p;
  65. u64 frag1, frag2, frag3, frag4, block1, block2;
  66. unsigned frag_to_free, free_count;
  67. unsigned i, tmp;
  68. int retry;
  69. UFSD("ENTER: ino %lu\n", inode->i_ino);
  70. sb = inode->i_sb;
  71. uspi = UFS_SB(sb)->s_uspi;
  72. frag_to_free = 0;
  73. free_count = 0;
  74. retry = 0;
  75. frag1 = DIRECT_FRAGMENT;
  76. frag4 = min_t(u32, UFS_NDIR_FRAGMENT, ufsi->i_lastfrag);
  77. frag2 = ((frag1 & uspi->s_fpbmask) ? ((frag1 | uspi->s_fpbmask) + 1) : frag1);
  78. frag3 = frag4 & ~uspi->s_fpbmask;
  79. block1 = block2 = 0;
  80. if (frag2 > frag3) {
  81. frag2 = frag4;
  82. frag3 = frag4 = 0;
  83. } else if (frag2 < frag3) {
  84. block1 = ufs_fragstoblks (frag2);
  85. block2 = ufs_fragstoblks (frag3);
  86. }
  87. UFSD("ino %lu, frag1 %llu, frag2 %llu, block1 %llu, block2 %llu,"
  88. " frag3 %llu, frag4 %llu\n", inode->i_ino,
  89. (unsigned long long)frag1, (unsigned long long)frag2,
  90. (unsigned long long)block1, (unsigned long long)block2,
  91. (unsigned long long)frag3, (unsigned long long)frag4);
  92. if (frag1 >= frag2)
  93. goto next1;
  94. /*
  95. * Free first free fragments
  96. */
  97. p = ufs_get_direct_data_ptr(uspi, ufsi, ufs_fragstoblks(frag1));
  98. tmp = ufs_data_ptr_to_cpu(sb, p);
  99. if (!tmp )
  100. ufs_panic (sb, "ufs_trunc_direct", "internal error");
  101. frag2 -= frag1;
  102. frag1 = ufs_fragnum (frag1);
  103. ufs_free_fragments(inode, tmp + frag1, frag2);
  104. mark_inode_dirty(inode);
  105. frag_to_free = tmp + frag1;
  106. next1:
  107. /*
  108. * Free whole blocks
  109. */
  110. for (i = block1 ; i < block2; i++) {
  111. p = ufs_get_direct_data_ptr(uspi, ufsi, i);
  112. tmp = ufs_data_ptr_to_cpu(sb, p);
  113. if (!tmp)
  114. continue;
  115. ufs_data_ptr_clear(uspi, p);
  116. if (free_count == 0) {
  117. frag_to_free = tmp;
  118. free_count = uspi->s_fpb;
  119. } else if (free_count > 0 && frag_to_free == tmp - free_count)
  120. free_count += uspi->s_fpb;
  121. else {
  122. ufs_free_blocks (inode, frag_to_free, free_count);
  123. frag_to_free = tmp;
  124. free_count = uspi->s_fpb;
  125. }
  126. mark_inode_dirty(inode);
  127. }
  128. if (free_count > 0)
  129. ufs_free_blocks (inode, frag_to_free, free_count);
  130. if (frag3 >= frag4)
  131. goto next3;
  132. /*
  133. * Free last free fragments
  134. */
  135. p = ufs_get_direct_data_ptr(uspi, ufsi, ufs_fragstoblks(frag3));
  136. tmp = ufs_data_ptr_to_cpu(sb, p);
  137. if (!tmp )
  138. ufs_panic(sb, "ufs_truncate_direct", "internal error");
  139. frag4 = ufs_fragnum (frag4);
  140. ufs_data_ptr_clear(uspi, p);
  141. ufs_free_fragments (inode, tmp, frag4);
  142. mark_inode_dirty(inode);
  143. next3:
  144. UFSD("EXIT: ino %lu\n", inode->i_ino);
  145. return retry;
  146. }
  147. static int ufs_trunc_indirect(struct inode *inode, u64 offset, void *p)
  148. {
  149. struct super_block * sb;
  150. struct ufs_sb_private_info * uspi;
  151. struct ufs_buffer_head * ind_ubh;
  152. void *ind;
  153. u64 tmp, indirect_block, i, frag_to_free;
  154. unsigned free_count;
  155. int retry;
  156. UFSD("ENTER: ino %lu, offset %llu, p: %p\n",
  157. inode->i_ino, (unsigned long long)offset, p);
  158. BUG_ON(!p);
  159. sb = inode->i_sb;
  160. uspi = UFS_SB(sb)->s_uspi;
  161. frag_to_free = 0;
  162. free_count = 0;
  163. retry = 0;
  164. tmp = ufs_data_ptr_to_cpu(sb, p);
  165. if (!tmp)
  166. return 0;
  167. ind_ubh = ubh_bread(sb, tmp, uspi->s_bsize);
  168. if (tmp != ufs_data_ptr_to_cpu(sb, p)) {
  169. ubh_brelse (ind_ubh);
  170. return 1;
  171. }
  172. if (!ind_ubh) {
  173. ufs_data_ptr_clear(uspi, p);
  174. return 0;
  175. }
  176. indirect_block = (DIRECT_BLOCK > offset) ? (DIRECT_BLOCK - offset) : 0;
  177. for (i = indirect_block; i < uspi->s_apb; i++) {
  178. ind = ubh_get_data_ptr(uspi, ind_ubh, i);
  179. tmp = ufs_data_ptr_to_cpu(sb, ind);
  180. if (!tmp)
  181. continue;
  182. ufs_data_ptr_clear(uspi, ind);
  183. ubh_mark_buffer_dirty(ind_ubh);
  184. if (free_count == 0) {
  185. frag_to_free = tmp;
  186. free_count = uspi->s_fpb;
  187. } else if (free_count > 0 && frag_to_free == tmp - free_count)
  188. free_count += uspi->s_fpb;
  189. else {
  190. ufs_free_blocks (inode, frag_to_free, free_count);
  191. frag_to_free = tmp;
  192. free_count = uspi->s_fpb;
  193. }
  194. mark_inode_dirty(inode);
  195. }
  196. if (free_count > 0) {
  197. ufs_free_blocks (inode, frag_to_free, free_count);
  198. }
  199. for (i = 0; i < uspi->s_apb; i++)
  200. if (!ufs_is_data_ptr_zero(uspi,
  201. ubh_get_data_ptr(uspi, ind_ubh, i)))
  202. break;
  203. if (i >= uspi->s_apb) {
  204. tmp = ufs_data_ptr_to_cpu(sb, p);
  205. ufs_data_ptr_clear(uspi, p);
  206. ufs_free_blocks (inode, tmp, uspi->s_fpb);
  207. mark_inode_dirty(inode);
  208. ubh_bforget(ind_ubh);
  209. ind_ubh = NULL;
  210. }
  211. if (IS_SYNC(inode) && ind_ubh && ubh_buffer_dirty(ind_ubh)) {
  212. ubh_ll_rw_block(SWRITE, ind_ubh);
  213. ubh_wait_on_buffer (ind_ubh);
  214. }
  215. ubh_brelse (ind_ubh);
  216. UFSD("EXIT: ino %lu\n", inode->i_ino);
  217. return retry;
  218. }
  219. static int ufs_trunc_dindirect(struct inode *inode, u64 offset, void *p)
  220. {
  221. struct super_block * sb;
  222. struct ufs_sb_private_info * uspi;
  223. struct ufs_buffer_head *dind_bh;
  224. u64 i, tmp, dindirect_block;
  225. void *dind;
  226. int retry = 0;
  227. UFSD("ENTER: ino %lu\n", inode->i_ino);
  228. sb = inode->i_sb;
  229. uspi = UFS_SB(sb)->s_uspi;
  230. dindirect_block = (DIRECT_BLOCK > offset)
  231. ? ((DIRECT_BLOCK - offset) >> uspi->s_apbshift) : 0;
  232. retry = 0;
  233. tmp = ufs_data_ptr_to_cpu(sb, p);
  234. if (!tmp)
  235. return 0;
  236. dind_bh = ubh_bread(sb, tmp, uspi->s_bsize);
  237. if (tmp != ufs_data_ptr_to_cpu(sb, p)) {
  238. ubh_brelse (dind_bh);
  239. return 1;
  240. }
  241. if (!dind_bh) {
  242. ufs_data_ptr_clear(uspi, p);
  243. return 0;
  244. }
  245. for (i = dindirect_block ; i < uspi->s_apb ; i++) {
  246. dind = ubh_get_data_ptr(uspi, dind_bh, i);
  247. tmp = ufs_data_ptr_to_cpu(sb, dind);
  248. if (!tmp)
  249. continue;
  250. retry |= ufs_trunc_indirect (inode, offset + (i << uspi->s_apbshift), dind);
  251. ubh_mark_buffer_dirty(dind_bh);
  252. }
  253. for (i = 0; i < uspi->s_apb; i++)
  254. if (!ufs_is_data_ptr_zero(uspi,
  255. ubh_get_data_ptr(uspi, dind_bh, i)))
  256. break;
  257. if (i >= uspi->s_apb) {
  258. tmp = ufs_data_ptr_to_cpu(sb, p);
  259. ufs_data_ptr_clear(uspi, p);
  260. ufs_free_blocks(inode, tmp, uspi->s_fpb);
  261. mark_inode_dirty(inode);
  262. ubh_bforget(dind_bh);
  263. dind_bh = NULL;
  264. }
  265. if (IS_SYNC(inode) && dind_bh && ubh_buffer_dirty(dind_bh)) {
  266. ubh_ll_rw_block(SWRITE, dind_bh);
  267. ubh_wait_on_buffer (dind_bh);
  268. }
  269. ubh_brelse (dind_bh);
  270. UFSD("EXIT: ino %lu\n", inode->i_ino);
  271. return retry;
  272. }
  273. static int ufs_trunc_tindirect(struct inode *inode)
  274. {
  275. struct super_block *sb = inode->i_sb;
  276. struct ufs_sb_private_info *uspi = UFS_SB(sb)->s_uspi;
  277. struct ufs_inode_info *ufsi = UFS_I(inode);
  278. struct ufs_buffer_head * tind_bh;
  279. u64 tindirect_block, tmp, i;
  280. void *tind, *p;
  281. int retry;
  282. UFSD("ENTER: ino %lu\n", inode->i_ino);
  283. retry = 0;
  284. tindirect_block = (DIRECT_BLOCK > (UFS_NDADDR + uspi->s_apb + uspi->s_2apb))
  285. ? ((DIRECT_BLOCK - UFS_NDADDR - uspi->s_apb - uspi->s_2apb) >> uspi->s_2apbshift) : 0;
  286. p = ufs_get_direct_data_ptr(uspi, ufsi, UFS_TIND_BLOCK);
  287. if (!(tmp = ufs_data_ptr_to_cpu(sb, p)))
  288. return 0;
  289. tind_bh = ubh_bread (sb, tmp, uspi->s_bsize);
  290. if (tmp != ufs_data_ptr_to_cpu(sb, p)) {
  291. ubh_brelse (tind_bh);
  292. return 1;
  293. }
  294. if (!tind_bh) {
  295. ufs_data_ptr_clear(uspi, p);
  296. return 0;
  297. }
  298. for (i = tindirect_block ; i < uspi->s_apb ; i++) {
  299. tind = ubh_get_data_ptr(uspi, tind_bh, i);
  300. retry |= ufs_trunc_dindirect(inode, UFS_NDADDR +
  301. uspi->s_apb + ((i + 1) << uspi->s_2apbshift), tind);
  302. ubh_mark_buffer_dirty(tind_bh);
  303. }
  304. for (i = 0; i < uspi->s_apb; i++)
  305. if (!ufs_is_data_ptr_zero(uspi,
  306. ubh_get_data_ptr(uspi, tind_bh, i)))
  307. break;
  308. if (i >= uspi->s_apb) {
  309. tmp = ufs_data_ptr_to_cpu(sb, p);
  310. ufs_data_ptr_clear(uspi, p);
  311. ufs_free_blocks(inode, tmp, uspi->s_fpb);
  312. mark_inode_dirty(inode);
  313. ubh_bforget(tind_bh);
  314. tind_bh = NULL;
  315. }
  316. if (IS_SYNC(inode) && tind_bh && ubh_buffer_dirty(tind_bh)) {
  317. ubh_ll_rw_block(SWRITE, tind_bh);
  318. ubh_wait_on_buffer (tind_bh);
  319. }
  320. ubh_brelse (tind_bh);
  321. UFSD("EXIT: ino %lu\n", inode->i_ino);
  322. return retry;
  323. }
  324. static int ufs_alloc_lastblock(struct inode *inode)
  325. {
  326. int err = 0;
  327. struct super_block *sb = inode->i_sb;
  328. struct address_space *mapping = inode->i_mapping;
  329. struct ufs_sb_private_info *uspi = UFS_SB(sb)->s_uspi;
  330. unsigned i, end;
  331. sector_t lastfrag;
  332. struct page *lastpage;
  333. struct buffer_head *bh;
  334. u64 phys64;
  335. lastfrag = (i_size_read(inode) + uspi->s_fsize - 1) >> uspi->s_fshift;
  336. if (!lastfrag)
  337. goto out;
  338. lastfrag--;
  339. lastpage = ufs_get_locked_page(mapping, lastfrag >>
  340. (PAGE_CACHE_SHIFT - inode->i_blkbits));
  341. if (IS_ERR(lastpage)) {
  342. err = -EIO;
  343. goto out;
  344. }
  345. end = lastfrag & ((1 << (PAGE_CACHE_SHIFT - inode->i_blkbits)) - 1);
  346. bh = page_buffers(lastpage);
  347. for (i = 0; i < end; ++i)
  348. bh = bh->b_this_page;
  349. err = ufs_getfrag_block(inode, lastfrag, bh, 1);
  350. if (unlikely(err))
  351. goto out_unlock;
  352. if (buffer_new(bh)) {
  353. clear_buffer_new(bh);
  354. unmap_underlying_metadata(bh->b_bdev,
  355. bh->b_blocknr);
  356. /*
  357. * we do not zeroize fragment, because of
  358. * if it maped to hole, it already contains zeroes
  359. */
  360. set_buffer_uptodate(bh);
  361. mark_buffer_dirty(bh);
  362. set_page_dirty(lastpage);
  363. }
  364. if (lastfrag >= UFS_IND_FRAGMENT) {
  365. end = uspi->s_fpb - ufs_fragnum(lastfrag) - 1;
  366. phys64 = bh->b_blocknr + 1;
  367. for (i = 0; i < end; ++i) {
  368. bh = sb_getblk(sb, i + phys64);
  369. lock_buffer(bh);
  370. memset(bh->b_data, 0, sb->s_blocksize);
  371. set_buffer_uptodate(bh);
  372. mark_buffer_dirty(bh);
  373. unlock_buffer(bh);
  374. sync_dirty_buffer(bh);
  375. brelse(bh);
  376. }
  377. }
  378. out_unlock:
  379. ufs_put_locked_page(lastpage);
  380. out:
  381. return err;
  382. }
  383. int ufs_truncate(struct inode *inode, loff_t old_i_size)
  384. {
  385. struct ufs_inode_info *ufsi = UFS_I(inode);
  386. struct super_block *sb = inode->i_sb;
  387. struct ufs_sb_private_info *uspi = UFS_SB(sb)->s_uspi;
  388. int retry, err = 0;
  389. UFSD("ENTER: ino %lu, i_size: %llu, old_i_size: %llu\n",
  390. inode->i_ino, (unsigned long long)i_size_read(inode),
  391. (unsigned long long)old_i_size);
  392. if (!(S_ISREG(inode->i_mode) || S_ISDIR(inode->i_mode) ||
  393. S_ISLNK(inode->i_mode)))
  394. return -EINVAL;
  395. if (IS_APPEND(inode) || IS_IMMUTABLE(inode))
  396. return -EPERM;
  397. err = ufs_alloc_lastblock(inode);
  398. if (err) {
  399. i_size_write(inode, old_i_size);
  400. goto out;
  401. }
  402. block_truncate_page(inode->i_mapping, inode->i_size, ufs_getfrag_block);
  403. lock_kernel();
  404. while (1) {
  405. retry = ufs_trunc_direct(inode);
  406. retry |= ufs_trunc_indirect(inode, UFS_IND_BLOCK,
  407. ufs_get_direct_data_ptr(uspi, ufsi,
  408. UFS_IND_BLOCK));
  409. retry |= ufs_trunc_dindirect(inode, UFS_IND_BLOCK + uspi->s_apb,
  410. ufs_get_direct_data_ptr(uspi, ufsi,
  411. UFS_DIND_BLOCK));
  412. retry |= ufs_trunc_tindirect (inode);
  413. if (!retry)
  414. break;
  415. if (IS_SYNC(inode) && (inode->i_state & I_DIRTY))
  416. ufs_sync_inode (inode);
  417. blk_run_address_space(inode->i_mapping);
  418. yield();
  419. }
  420. inode->i_mtime = inode->i_ctime = CURRENT_TIME_SEC;
  421. ufsi->i_lastfrag = DIRECT_FRAGMENT;
  422. unlock_kernel();
  423. mark_inode_dirty(inode);
  424. out:
  425. UFSD("EXIT: err %d\n", err);
  426. return err;
  427. }
  428. /*
  429. * We don't define our `inode->i_op->truncate', and call it here,
  430. * because of:
  431. * - there is no way to know old size
  432. * - there is no way inform user about error, if it happens in `truncate'
  433. */
  434. static int ufs_setattr(struct dentry *dentry, struct iattr *attr)
  435. {
  436. struct inode *inode = dentry->d_inode;
  437. unsigned int ia_valid = attr->ia_valid;
  438. int error;
  439. error = inode_change_ok(inode, attr);
  440. if (error)
  441. return error;
  442. if (ia_valid & ATTR_SIZE &&
  443. attr->ia_size != i_size_read(inode)) {
  444. loff_t old_i_size = inode->i_size;
  445. error = vmtruncate(inode, attr->ia_size);
  446. if (error)
  447. return error;
  448. error = ufs_truncate(inode, old_i_size);
  449. if (error)
  450. return error;
  451. }
  452. return inode_setattr(inode, attr);
  453. }
  454. const struct inode_operations ufs_file_inode_operations = {
  455. .setattr = ufs_setattr,
  456. };