mballoc.c 138 KB

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  1. /*
  2. * Copyright (c) 2003-2006, Cluster File Systems, Inc, info@clusterfs.com
  3. * Written by Alex Tomas <alex@clusterfs.com>
  4. *
  5. * This program is free software; you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License version 2 as
  7. * published by the Free Software Foundation.
  8. *
  9. * This program is distributed in the hope that it will 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 Licens
  15. * along with this program; if not, write to the Free Software
  16. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-
  17. */
  18. /*
  19. * mballoc.c contains the multiblocks allocation routines
  20. */
  21. #include "ext4_jbd2.h"
  22. #include "mballoc.h"
  23. #include <linux/debugfs.h>
  24. #include <linux/slab.h>
  25. #include <trace/events/ext4.h>
  26. /*
  27. * MUSTDO:
  28. * - test ext4_ext_search_left() and ext4_ext_search_right()
  29. * - search for metadata in few groups
  30. *
  31. * TODO v4:
  32. * - normalization should take into account whether file is still open
  33. * - discard preallocations if no free space left (policy?)
  34. * - don't normalize tails
  35. * - quota
  36. * - reservation for superuser
  37. *
  38. * TODO v3:
  39. * - bitmap read-ahead (proposed by Oleg Drokin aka green)
  40. * - track min/max extents in each group for better group selection
  41. * - mb_mark_used() may allocate chunk right after splitting buddy
  42. * - tree of groups sorted by number of free blocks
  43. * - error handling
  44. */
  45. /*
  46. * The allocation request involve request for multiple number of blocks
  47. * near to the goal(block) value specified.
  48. *
  49. * During initialization phase of the allocator we decide to use the
  50. * group preallocation or inode preallocation depending on the size of
  51. * the file. The size of the file could be the resulting file size we
  52. * would have after allocation, or the current file size, which ever
  53. * is larger. If the size is less than sbi->s_mb_stream_request we
  54. * select to use the group preallocation. The default value of
  55. * s_mb_stream_request is 16 blocks. This can also be tuned via
  56. * /sys/fs/ext4/<partition>/mb_stream_req. The value is represented in
  57. * terms of number of blocks.
  58. *
  59. * The main motivation for having small file use group preallocation is to
  60. * ensure that we have small files closer together on the disk.
  61. *
  62. * First stage the allocator looks at the inode prealloc list,
  63. * ext4_inode_info->i_prealloc_list, which contains list of prealloc
  64. * spaces for this particular inode. The inode prealloc space is
  65. * represented as:
  66. *
  67. * pa_lstart -> the logical start block for this prealloc space
  68. * pa_pstart -> the physical start block for this prealloc space
  69. * pa_len -> length for this prealloc space (in clusters)
  70. * pa_free -> free space available in this prealloc space (in clusters)
  71. *
  72. * The inode preallocation space is used looking at the _logical_ start
  73. * block. If only the logical file block falls within the range of prealloc
  74. * space we will consume the particular prealloc space. This makes sure that
  75. * we have contiguous physical blocks representing the file blocks
  76. *
  77. * The important thing to be noted in case of inode prealloc space is that
  78. * we don't modify the values associated to inode prealloc space except
  79. * pa_free.
  80. *
  81. * If we are not able to find blocks in the inode prealloc space and if we
  82. * have the group allocation flag set then we look at the locality group
  83. * prealloc space. These are per CPU prealloc list represented as
  84. *
  85. * ext4_sb_info.s_locality_groups[smp_processor_id()]
  86. *
  87. * The reason for having a per cpu locality group is to reduce the contention
  88. * between CPUs. It is possible to get scheduled at this point.
  89. *
  90. * The locality group prealloc space is used looking at whether we have
  91. * enough free space (pa_free) within the prealloc space.
  92. *
  93. * If we can't allocate blocks via inode prealloc or/and locality group
  94. * prealloc then we look at the buddy cache. The buddy cache is represented
  95. * by ext4_sb_info.s_buddy_cache (struct inode) whose file offset gets
  96. * mapped to the buddy and bitmap information regarding different
  97. * groups. The buddy information is attached to buddy cache inode so that
  98. * we can access them through the page cache. The information regarding
  99. * each group is loaded via ext4_mb_load_buddy. The information involve
  100. * block bitmap and buddy information. The information are stored in the
  101. * inode as:
  102. *
  103. * { page }
  104. * [ group 0 bitmap][ group 0 buddy] [group 1][ group 1]...
  105. *
  106. *
  107. * one block each for bitmap and buddy information. So for each group we
  108. * take up 2 blocks. A page can contain blocks_per_page (PAGE_CACHE_SIZE /
  109. * blocksize) blocks. So it can have information regarding groups_per_page
  110. * which is blocks_per_page/2
  111. *
  112. * The buddy cache inode is not stored on disk. The inode is thrown
  113. * away when the filesystem is unmounted.
  114. *
  115. * We look for count number of blocks in the buddy cache. If we were able
  116. * to locate that many free blocks we return with additional information
  117. * regarding rest of the contiguous physical block available
  118. *
  119. * Before allocating blocks via buddy cache we normalize the request
  120. * blocks. This ensure we ask for more blocks that we needed. The extra
  121. * blocks that we get after allocation is added to the respective prealloc
  122. * list. In case of inode preallocation we follow a list of heuristics
  123. * based on file size. This can be found in ext4_mb_normalize_request. If
  124. * we are doing a group prealloc we try to normalize the request to
  125. * sbi->s_mb_group_prealloc. The default value of s_mb_group_prealloc is
  126. * dependent on the cluster size; for non-bigalloc file systems, it is
  127. * 512 blocks. This can be tuned via
  128. * /sys/fs/ext4/<partition>/mb_group_prealloc. The value is represented in
  129. * terms of number of blocks. If we have mounted the file system with -O
  130. * stripe=<value> option the group prealloc request is normalized to the
  131. * the smallest multiple of the stripe value (sbi->s_stripe) which is
  132. * greater than the default mb_group_prealloc.
  133. *
  134. * The regular allocator (using the buddy cache) supports a few tunables.
  135. *
  136. * /sys/fs/ext4/<partition>/mb_min_to_scan
  137. * /sys/fs/ext4/<partition>/mb_max_to_scan
  138. * /sys/fs/ext4/<partition>/mb_order2_req
  139. *
  140. * The regular allocator uses buddy scan only if the request len is power of
  141. * 2 blocks and the order of allocation is >= sbi->s_mb_order2_reqs. The
  142. * value of s_mb_order2_reqs can be tuned via
  143. * /sys/fs/ext4/<partition>/mb_order2_req. If the request len is equal to
  144. * stripe size (sbi->s_stripe), we try to search for contiguous block in
  145. * stripe size. This should result in better allocation on RAID setups. If
  146. * not, we search in the specific group using bitmap for best extents. The
  147. * tunable min_to_scan and max_to_scan control the behaviour here.
  148. * min_to_scan indicate how long the mballoc __must__ look for a best
  149. * extent and max_to_scan indicates how long the mballoc __can__ look for a
  150. * best extent in the found extents. Searching for the blocks starts with
  151. * the group specified as the goal value in allocation context via
  152. * ac_g_ex. Each group is first checked based on the criteria whether it
  153. * can be used for allocation. ext4_mb_good_group explains how the groups are
  154. * checked.
  155. *
  156. * Both the prealloc space are getting populated as above. So for the first
  157. * request we will hit the buddy cache which will result in this prealloc
  158. * space getting filled. The prealloc space is then later used for the
  159. * subsequent request.
  160. */
  161. /*
  162. * mballoc operates on the following data:
  163. * - on-disk bitmap
  164. * - in-core buddy (actually includes buddy and bitmap)
  165. * - preallocation descriptors (PAs)
  166. *
  167. * there are two types of preallocations:
  168. * - inode
  169. * assiged to specific inode and can be used for this inode only.
  170. * it describes part of inode's space preallocated to specific
  171. * physical blocks. any block from that preallocated can be used
  172. * independent. the descriptor just tracks number of blocks left
  173. * unused. so, before taking some block from descriptor, one must
  174. * make sure corresponded logical block isn't allocated yet. this
  175. * also means that freeing any block within descriptor's range
  176. * must discard all preallocated blocks.
  177. * - locality group
  178. * assigned to specific locality group which does not translate to
  179. * permanent set of inodes: inode can join and leave group. space
  180. * from this type of preallocation can be used for any inode. thus
  181. * it's consumed from the beginning to the end.
  182. *
  183. * relation between them can be expressed as:
  184. * in-core buddy = on-disk bitmap + preallocation descriptors
  185. *
  186. * this mean blocks mballoc considers used are:
  187. * - allocated blocks (persistent)
  188. * - preallocated blocks (non-persistent)
  189. *
  190. * consistency in mballoc world means that at any time a block is either
  191. * free or used in ALL structures. notice: "any time" should not be read
  192. * literally -- time is discrete and delimited by locks.
  193. *
  194. * to keep it simple, we don't use block numbers, instead we count number of
  195. * blocks: how many blocks marked used/free in on-disk bitmap, buddy and PA.
  196. *
  197. * all operations can be expressed as:
  198. * - init buddy: buddy = on-disk + PAs
  199. * - new PA: buddy += N; PA = N
  200. * - use inode PA: on-disk += N; PA -= N
  201. * - discard inode PA buddy -= on-disk - PA; PA = 0
  202. * - use locality group PA on-disk += N; PA -= N
  203. * - discard locality group PA buddy -= PA; PA = 0
  204. * note: 'buddy -= on-disk - PA' is used to show that on-disk bitmap
  205. * is used in real operation because we can't know actual used
  206. * bits from PA, only from on-disk bitmap
  207. *
  208. * if we follow this strict logic, then all operations above should be atomic.
  209. * given some of them can block, we'd have to use something like semaphores
  210. * killing performance on high-end SMP hardware. let's try to relax it using
  211. * the following knowledge:
  212. * 1) if buddy is referenced, it's already initialized
  213. * 2) while block is used in buddy and the buddy is referenced,
  214. * nobody can re-allocate that block
  215. * 3) we work on bitmaps and '+' actually means 'set bits'. if on-disk has
  216. * bit set and PA claims same block, it's OK. IOW, one can set bit in
  217. * on-disk bitmap if buddy has same bit set or/and PA covers corresponded
  218. * block
  219. *
  220. * so, now we're building a concurrency table:
  221. * - init buddy vs.
  222. * - new PA
  223. * blocks for PA are allocated in the buddy, buddy must be referenced
  224. * until PA is linked to allocation group to avoid concurrent buddy init
  225. * - use inode PA
  226. * we need to make sure that either on-disk bitmap or PA has uptodate data
  227. * given (3) we care that PA-=N operation doesn't interfere with init
  228. * - discard inode PA
  229. * the simplest way would be to have buddy initialized by the discard
  230. * - use locality group PA
  231. * again PA-=N must be serialized with init
  232. * - discard locality group PA
  233. * the simplest way would be to have buddy initialized by the discard
  234. * - new PA vs.
  235. * - use inode PA
  236. * i_data_sem serializes them
  237. * - discard inode PA
  238. * discard process must wait until PA isn't used by another process
  239. * - use locality group PA
  240. * some mutex should serialize them
  241. * - discard locality group PA
  242. * discard process must wait until PA isn't used by another process
  243. * - use inode PA
  244. * - use inode PA
  245. * i_data_sem or another mutex should serializes them
  246. * - discard inode PA
  247. * discard process must wait until PA isn't used by another process
  248. * - use locality group PA
  249. * nothing wrong here -- they're different PAs covering different blocks
  250. * - discard locality group PA
  251. * discard process must wait until PA isn't used by another process
  252. *
  253. * now we're ready to make few consequences:
  254. * - PA is referenced and while it is no discard is possible
  255. * - PA is referenced until block isn't marked in on-disk bitmap
  256. * - PA changes only after on-disk bitmap
  257. * - discard must not compete with init. either init is done before
  258. * any discard or they're serialized somehow
  259. * - buddy init as sum of on-disk bitmap and PAs is done atomically
  260. *
  261. * a special case when we've used PA to emptiness. no need to modify buddy
  262. * in this case, but we should care about concurrent init
  263. *
  264. */
  265. /*
  266. * Logic in few words:
  267. *
  268. * - allocation:
  269. * load group
  270. * find blocks
  271. * mark bits in on-disk bitmap
  272. * release group
  273. *
  274. * - use preallocation:
  275. * find proper PA (per-inode or group)
  276. * load group
  277. * mark bits in on-disk bitmap
  278. * release group
  279. * release PA
  280. *
  281. * - free:
  282. * load group
  283. * mark bits in on-disk bitmap
  284. * release group
  285. *
  286. * - discard preallocations in group:
  287. * mark PAs deleted
  288. * move them onto local list
  289. * load on-disk bitmap
  290. * load group
  291. * remove PA from object (inode or locality group)
  292. * mark free blocks in-core
  293. *
  294. * - discard inode's preallocations:
  295. */
  296. /*
  297. * Locking rules
  298. *
  299. * Locks:
  300. * - bitlock on a group (group)
  301. * - object (inode/locality) (object)
  302. * - per-pa lock (pa)
  303. *
  304. * Paths:
  305. * - new pa
  306. * object
  307. * group
  308. *
  309. * - find and use pa:
  310. * pa
  311. *
  312. * - release consumed pa:
  313. * pa
  314. * group
  315. * object
  316. *
  317. * - generate in-core bitmap:
  318. * group
  319. * pa
  320. *
  321. * - discard all for given object (inode, locality group):
  322. * object
  323. * pa
  324. * group
  325. *
  326. * - discard all for given group:
  327. * group
  328. * pa
  329. * group
  330. * object
  331. *
  332. */
  333. static struct kmem_cache *ext4_pspace_cachep;
  334. static struct kmem_cache *ext4_ac_cachep;
  335. static struct kmem_cache *ext4_free_data_cachep;
  336. /* We create slab caches for groupinfo data structures based on the
  337. * superblock block size. There will be one per mounted filesystem for
  338. * each unique s_blocksize_bits */
  339. #define NR_GRPINFO_CACHES 8
  340. static struct kmem_cache *ext4_groupinfo_caches[NR_GRPINFO_CACHES];
  341. static const char *ext4_groupinfo_slab_names[NR_GRPINFO_CACHES] = {
  342. "ext4_groupinfo_1k", "ext4_groupinfo_2k", "ext4_groupinfo_4k",
  343. "ext4_groupinfo_8k", "ext4_groupinfo_16k", "ext4_groupinfo_32k",
  344. "ext4_groupinfo_64k", "ext4_groupinfo_128k"
  345. };
  346. static void ext4_mb_generate_from_pa(struct super_block *sb, void *bitmap,
  347. ext4_group_t group);
  348. static void ext4_mb_generate_from_freelist(struct super_block *sb, void *bitmap,
  349. ext4_group_t group);
  350. static void ext4_free_data_callback(struct super_block *sb,
  351. struct ext4_journal_cb_entry *jce, int rc);
  352. static inline void *mb_correct_addr_and_bit(int *bit, void *addr)
  353. {
  354. #if BITS_PER_LONG == 64
  355. *bit += ((unsigned long) addr & 7UL) << 3;
  356. addr = (void *) ((unsigned long) addr & ~7UL);
  357. #elif BITS_PER_LONG == 32
  358. *bit += ((unsigned long) addr & 3UL) << 3;
  359. addr = (void *) ((unsigned long) addr & ~3UL);
  360. #else
  361. #error "how many bits you are?!"
  362. #endif
  363. return addr;
  364. }
  365. static inline int mb_test_bit(int bit, void *addr)
  366. {
  367. /*
  368. * ext4_test_bit on architecture like powerpc
  369. * needs unsigned long aligned address
  370. */
  371. addr = mb_correct_addr_and_bit(&bit, addr);
  372. return ext4_test_bit(bit, addr);
  373. }
  374. static inline void mb_set_bit(int bit, void *addr)
  375. {
  376. addr = mb_correct_addr_and_bit(&bit, addr);
  377. ext4_set_bit(bit, addr);
  378. }
  379. static inline void mb_clear_bit(int bit, void *addr)
  380. {
  381. addr = mb_correct_addr_and_bit(&bit, addr);
  382. ext4_clear_bit(bit, addr);
  383. }
  384. static inline int mb_find_next_zero_bit(void *addr, int max, int start)
  385. {
  386. int fix = 0, ret, tmpmax;
  387. addr = mb_correct_addr_and_bit(&fix, addr);
  388. tmpmax = max + fix;
  389. start += fix;
  390. ret = ext4_find_next_zero_bit(addr, tmpmax, start) - fix;
  391. if (ret > max)
  392. return max;
  393. return ret;
  394. }
  395. static inline int mb_find_next_bit(void *addr, int max, int start)
  396. {
  397. int fix = 0, ret, tmpmax;
  398. addr = mb_correct_addr_and_bit(&fix, addr);
  399. tmpmax = max + fix;
  400. start += fix;
  401. ret = ext4_find_next_bit(addr, tmpmax, start) - fix;
  402. if (ret > max)
  403. return max;
  404. return ret;
  405. }
  406. static void *mb_find_buddy(struct ext4_buddy *e4b, int order, int *max)
  407. {
  408. char *bb;
  409. BUG_ON(e4b->bd_bitmap == e4b->bd_buddy);
  410. BUG_ON(max == NULL);
  411. if (order > e4b->bd_blkbits + 1) {
  412. *max = 0;
  413. return NULL;
  414. }
  415. /* at order 0 we see each particular block */
  416. if (order == 0) {
  417. *max = 1 << (e4b->bd_blkbits + 3);
  418. return e4b->bd_bitmap;
  419. }
  420. bb = e4b->bd_buddy + EXT4_SB(e4b->bd_sb)->s_mb_offsets[order];
  421. *max = EXT4_SB(e4b->bd_sb)->s_mb_maxs[order];
  422. return bb;
  423. }
  424. #ifdef DOUBLE_CHECK
  425. static void mb_free_blocks_double(struct inode *inode, struct ext4_buddy *e4b,
  426. int first, int count)
  427. {
  428. int i;
  429. struct super_block *sb = e4b->bd_sb;
  430. if (unlikely(e4b->bd_info->bb_bitmap == NULL))
  431. return;
  432. assert_spin_locked(ext4_group_lock_ptr(sb, e4b->bd_group));
  433. for (i = 0; i < count; i++) {
  434. if (!mb_test_bit(first + i, e4b->bd_info->bb_bitmap)) {
  435. ext4_fsblk_t blocknr;
  436. blocknr = ext4_group_first_block_no(sb, e4b->bd_group);
  437. blocknr += EXT4_C2B(EXT4_SB(sb), first + i);
  438. ext4_grp_locked_error(sb, e4b->bd_group,
  439. inode ? inode->i_ino : 0,
  440. blocknr,
  441. "freeing block already freed "
  442. "(bit %u)",
  443. first + i);
  444. }
  445. mb_clear_bit(first + i, e4b->bd_info->bb_bitmap);
  446. }
  447. }
  448. static void mb_mark_used_double(struct ext4_buddy *e4b, int first, int count)
  449. {
  450. int i;
  451. if (unlikely(e4b->bd_info->bb_bitmap == NULL))
  452. return;
  453. assert_spin_locked(ext4_group_lock_ptr(e4b->bd_sb, e4b->bd_group));
  454. for (i = 0; i < count; i++) {
  455. BUG_ON(mb_test_bit(first + i, e4b->bd_info->bb_bitmap));
  456. mb_set_bit(first + i, e4b->bd_info->bb_bitmap);
  457. }
  458. }
  459. static void mb_cmp_bitmaps(struct ext4_buddy *e4b, void *bitmap)
  460. {
  461. if (memcmp(e4b->bd_info->bb_bitmap, bitmap, e4b->bd_sb->s_blocksize)) {
  462. unsigned char *b1, *b2;
  463. int i;
  464. b1 = (unsigned char *) e4b->bd_info->bb_bitmap;
  465. b2 = (unsigned char *) bitmap;
  466. for (i = 0; i < e4b->bd_sb->s_blocksize; i++) {
  467. if (b1[i] != b2[i]) {
  468. ext4_msg(e4b->bd_sb, KERN_ERR,
  469. "corruption in group %u "
  470. "at byte %u(%u): %x in copy != %x "
  471. "on disk/prealloc",
  472. e4b->bd_group, i, i * 8, b1[i], b2[i]);
  473. BUG();
  474. }
  475. }
  476. }
  477. }
  478. #else
  479. static inline void mb_free_blocks_double(struct inode *inode,
  480. struct ext4_buddy *e4b, int first, int count)
  481. {
  482. return;
  483. }
  484. static inline void mb_mark_used_double(struct ext4_buddy *e4b,
  485. int first, int count)
  486. {
  487. return;
  488. }
  489. static inline void mb_cmp_bitmaps(struct ext4_buddy *e4b, void *bitmap)
  490. {
  491. return;
  492. }
  493. #endif
  494. #ifdef AGGRESSIVE_CHECK
  495. #define MB_CHECK_ASSERT(assert) \
  496. do { \
  497. if (!(assert)) { \
  498. printk(KERN_EMERG \
  499. "Assertion failure in %s() at %s:%d: \"%s\"\n", \
  500. function, file, line, # assert); \
  501. BUG(); \
  502. } \
  503. } while (0)
  504. static int __mb_check_buddy(struct ext4_buddy *e4b, char *file,
  505. const char *function, int line)
  506. {
  507. struct super_block *sb = e4b->bd_sb;
  508. int order = e4b->bd_blkbits + 1;
  509. int max;
  510. int max2;
  511. int i;
  512. int j;
  513. int k;
  514. int count;
  515. struct ext4_group_info *grp;
  516. int fragments = 0;
  517. int fstart;
  518. struct list_head *cur;
  519. void *buddy;
  520. void *buddy2;
  521. {
  522. static int mb_check_counter;
  523. if (mb_check_counter++ % 100 != 0)
  524. return 0;
  525. }
  526. while (order > 1) {
  527. buddy = mb_find_buddy(e4b, order, &max);
  528. MB_CHECK_ASSERT(buddy);
  529. buddy2 = mb_find_buddy(e4b, order - 1, &max2);
  530. MB_CHECK_ASSERT(buddy2);
  531. MB_CHECK_ASSERT(buddy != buddy2);
  532. MB_CHECK_ASSERT(max * 2 == max2);
  533. count = 0;
  534. for (i = 0; i < max; i++) {
  535. if (mb_test_bit(i, buddy)) {
  536. /* only single bit in buddy2 may be 1 */
  537. if (!mb_test_bit(i << 1, buddy2)) {
  538. MB_CHECK_ASSERT(
  539. mb_test_bit((i<<1)+1, buddy2));
  540. } else if (!mb_test_bit((i << 1) + 1, buddy2)) {
  541. MB_CHECK_ASSERT(
  542. mb_test_bit(i << 1, buddy2));
  543. }
  544. continue;
  545. }
  546. /* both bits in buddy2 must be 1 */
  547. MB_CHECK_ASSERT(mb_test_bit(i << 1, buddy2));
  548. MB_CHECK_ASSERT(mb_test_bit((i << 1) + 1, buddy2));
  549. for (j = 0; j < (1 << order); j++) {
  550. k = (i * (1 << order)) + j;
  551. MB_CHECK_ASSERT(
  552. !mb_test_bit(k, e4b->bd_bitmap));
  553. }
  554. count++;
  555. }
  556. MB_CHECK_ASSERT(e4b->bd_info->bb_counters[order] == count);
  557. order--;
  558. }
  559. fstart = -1;
  560. buddy = mb_find_buddy(e4b, 0, &max);
  561. for (i = 0; i < max; i++) {
  562. if (!mb_test_bit(i, buddy)) {
  563. MB_CHECK_ASSERT(i >= e4b->bd_info->bb_first_free);
  564. if (fstart == -1) {
  565. fragments++;
  566. fstart = i;
  567. }
  568. continue;
  569. }
  570. fstart = -1;
  571. /* check used bits only */
  572. for (j = 0; j < e4b->bd_blkbits + 1; j++) {
  573. buddy2 = mb_find_buddy(e4b, j, &max2);
  574. k = i >> j;
  575. MB_CHECK_ASSERT(k < max2);
  576. MB_CHECK_ASSERT(mb_test_bit(k, buddy2));
  577. }
  578. }
  579. MB_CHECK_ASSERT(!EXT4_MB_GRP_NEED_INIT(e4b->bd_info));
  580. MB_CHECK_ASSERT(e4b->bd_info->bb_fragments == fragments);
  581. grp = ext4_get_group_info(sb, e4b->bd_group);
  582. list_for_each(cur, &grp->bb_prealloc_list) {
  583. ext4_group_t groupnr;
  584. struct ext4_prealloc_space *pa;
  585. pa = list_entry(cur, struct ext4_prealloc_space, pa_group_list);
  586. ext4_get_group_no_and_offset(sb, pa->pa_pstart, &groupnr, &k);
  587. MB_CHECK_ASSERT(groupnr == e4b->bd_group);
  588. for (i = 0; i < pa->pa_len; i++)
  589. MB_CHECK_ASSERT(mb_test_bit(k + i, buddy));
  590. }
  591. return 0;
  592. }
  593. #undef MB_CHECK_ASSERT
  594. #define mb_check_buddy(e4b) __mb_check_buddy(e4b, \
  595. __FILE__, __func__, __LINE__)
  596. #else
  597. #define mb_check_buddy(e4b)
  598. #endif
  599. /*
  600. * Divide blocks started from @first with length @len into
  601. * smaller chunks with power of 2 blocks.
  602. * Clear the bits in bitmap which the blocks of the chunk(s) covered,
  603. * then increase bb_counters[] for corresponded chunk size.
  604. */
  605. static void ext4_mb_mark_free_simple(struct super_block *sb,
  606. void *buddy, ext4_grpblk_t first, ext4_grpblk_t len,
  607. struct ext4_group_info *grp)
  608. {
  609. struct ext4_sb_info *sbi = EXT4_SB(sb);
  610. ext4_grpblk_t min;
  611. ext4_grpblk_t max;
  612. ext4_grpblk_t chunk;
  613. unsigned short border;
  614. BUG_ON(len > EXT4_CLUSTERS_PER_GROUP(sb));
  615. border = 2 << sb->s_blocksize_bits;
  616. while (len > 0) {
  617. /* find how many blocks can be covered since this position */
  618. max = ffs(first | border) - 1;
  619. /* find how many blocks of power 2 we need to mark */
  620. min = fls(len) - 1;
  621. if (max < min)
  622. min = max;
  623. chunk = 1 << min;
  624. /* mark multiblock chunks only */
  625. grp->bb_counters[min]++;
  626. if (min > 0)
  627. mb_clear_bit(first >> min,
  628. buddy + sbi->s_mb_offsets[min]);
  629. len -= chunk;
  630. first += chunk;
  631. }
  632. }
  633. /*
  634. * Cache the order of the largest free extent we have available in this block
  635. * group.
  636. */
  637. static void
  638. mb_set_largest_free_order(struct super_block *sb, struct ext4_group_info *grp)
  639. {
  640. int i;
  641. int bits;
  642. grp->bb_largest_free_order = -1; /* uninit */
  643. bits = sb->s_blocksize_bits + 1;
  644. for (i = bits; i >= 0; i--) {
  645. if (grp->bb_counters[i] > 0) {
  646. grp->bb_largest_free_order = i;
  647. break;
  648. }
  649. }
  650. }
  651. static noinline_for_stack
  652. void ext4_mb_generate_buddy(struct super_block *sb,
  653. void *buddy, void *bitmap, ext4_group_t group)
  654. {
  655. struct ext4_group_info *grp = ext4_get_group_info(sb, group);
  656. ext4_grpblk_t max = EXT4_CLUSTERS_PER_GROUP(sb);
  657. ext4_grpblk_t i = 0;
  658. ext4_grpblk_t first;
  659. ext4_grpblk_t len;
  660. unsigned free = 0;
  661. unsigned fragments = 0;
  662. unsigned long long period = get_cycles();
  663. /* initialize buddy from bitmap which is aggregation
  664. * of on-disk bitmap and preallocations */
  665. i = mb_find_next_zero_bit(bitmap, max, 0);
  666. grp->bb_first_free = i;
  667. while (i < max) {
  668. fragments++;
  669. first = i;
  670. i = mb_find_next_bit(bitmap, max, i);
  671. len = i - first;
  672. free += len;
  673. if (len > 1)
  674. ext4_mb_mark_free_simple(sb, buddy, first, len, grp);
  675. else
  676. grp->bb_counters[0]++;
  677. if (i < max)
  678. i = mb_find_next_zero_bit(bitmap, max, i);
  679. }
  680. grp->bb_fragments = fragments;
  681. if (free != grp->bb_free) {
  682. ext4_grp_locked_error(sb, group, 0, 0,
  683. "%u clusters in bitmap, %u in gd",
  684. free, grp->bb_free);
  685. /*
  686. * If we intent to continue, we consider group descritor
  687. * corrupt and update bb_free using bitmap value
  688. */
  689. grp->bb_free = free;
  690. }
  691. mb_set_largest_free_order(sb, grp);
  692. clear_bit(EXT4_GROUP_INFO_NEED_INIT_BIT, &(grp->bb_state));
  693. period = get_cycles() - period;
  694. spin_lock(&EXT4_SB(sb)->s_bal_lock);
  695. EXT4_SB(sb)->s_mb_buddies_generated++;
  696. EXT4_SB(sb)->s_mb_generation_time += period;
  697. spin_unlock(&EXT4_SB(sb)->s_bal_lock);
  698. }
  699. /* The buddy information is attached the buddy cache inode
  700. * for convenience. The information regarding each group
  701. * is loaded via ext4_mb_load_buddy. The information involve
  702. * block bitmap and buddy information. The information are
  703. * stored in the inode as
  704. *
  705. * { page }
  706. * [ group 0 bitmap][ group 0 buddy] [group 1][ group 1]...
  707. *
  708. *
  709. * one block each for bitmap and buddy information.
  710. * So for each group we take up 2 blocks. A page can
  711. * contain blocks_per_page (PAGE_CACHE_SIZE / blocksize) blocks.
  712. * So it can have information regarding groups_per_page which
  713. * is blocks_per_page/2
  714. *
  715. * Locking note: This routine takes the block group lock of all groups
  716. * for this page; do not hold this lock when calling this routine!
  717. */
  718. static int ext4_mb_init_cache(struct page *page, char *incore)
  719. {
  720. ext4_group_t ngroups;
  721. int blocksize;
  722. int blocks_per_page;
  723. int groups_per_page;
  724. int err = 0;
  725. int i;
  726. ext4_group_t first_group, group;
  727. int first_block;
  728. struct super_block *sb;
  729. struct buffer_head *bhs;
  730. struct buffer_head **bh = NULL;
  731. struct inode *inode;
  732. char *data;
  733. char *bitmap;
  734. struct ext4_group_info *grinfo;
  735. mb_debug(1, "init page %lu\n", page->index);
  736. inode = page->mapping->host;
  737. sb = inode->i_sb;
  738. ngroups = ext4_get_groups_count(sb);
  739. blocksize = 1 << inode->i_blkbits;
  740. blocks_per_page = PAGE_CACHE_SIZE / blocksize;
  741. groups_per_page = blocks_per_page >> 1;
  742. if (groups_per_page == 0)
  743. groups_per_page = 1;
  744. /* allocate buffer_heads to read bitmaps */
  745. if (groups_per_page > 1) {
  746. i = sizeof(struct buffer_head *) * groups_per_page;
  747. bh = kzalloc(i, GFP_NOFS);
  748. if (bh == NULL) {
  749. err = -ENOMEM;
  750. goto out;
  751. }
  752. } else
  753. bh = &bhs;
  754. first_group = page->index * blocks_per_page / 2;
  755. /* read all groups the page covers into the cache */
  756. for (i = 0, group = first_group; i < groups_per_page; i++, group++) {
  757. if (group >= ngroups)
  758. break;
  759. grinfo = ext4_get_group_info(sb, group);
  760. /*
  761. * If page is uptodate then we came here after online resize
  762. * which added some new uninitialized group info structs, so
  763. * we must skip all initialized uptodate buddies on the page,
  764. * which may be currently in use by an allocating task.
  765. */
  766. if (PageUptodate(page) && !EXT4_MB_GRP_NEED_INIT(grinfo)) {
  767. bh[i] = NULL;
  768. continue;
  769. }
  770. if (!(bh[i] = ext4_read_block_bitmap_nowait(sb, group))) {
  771. err = -ENOMEM;
  772. goto out;
  773. }
  774. mb_debug(1, "read bitmap for group %u\n", group);
  775. }
  776. /* wait for I/O completion */
  777. for (i = 0, group = first_group; i < groups_per_page; i++, group++) {
  778. if (bh[i] && ext4_wait_block_bitmap(sb, group, bh[i])) {
  779. err = -EIO;
  780. goto out;
  781. }
  782. }
  783. first_block = page->index * blocks_per_page;
  784. for (i = 0; i < blocks_per_page; i++) {
  785. int group;
  786. group = (first_block + i) >> 1;
  787. if (group >= ngroups)
  788. break;
  789. if (!bh[group - first_group])
  790. /* skip initialized uptodate buddy */
  791. continue;
  792. /*
  793. * data carry information regarding this
  794. * particular group in the format specified
  795. * above
  796. *
  797. */
  798. data = page_address(page) + (i * blocksize);
  799. bitmap = bh[group - first_group]->b_data;
  800. /*
  801. * We place the buddy block and bitmap block
  802. * close together
  803. */
  804. if ((first_block + i) & 1) {
  805. /* this is block of buddy */
  806. BUG_ON(incore == NULL);
  807. mb_debug(1, "put buddy for group %u in page %lu/%x\n",
  808. group, page->index, i * blocksize);
  809. trace_ext4_mb_buddy_bitmap_load(sb, group);
  810. grinfo = ext4_get_group_info(sb, group);
  811. grinfo->bb_fragments = 0;
  812. memset(grinfo->bb_counters, 0,
  813. sizeof(*grinfo->bb_counters) *
  814. (sb->s_blocksize_bits+2));
  815. /*
  816. * incore got set to the group block bitmap below
  817. */
  818. ext4_lock_group(sb, group);
  819. /* init the buddy */
  820. memset(data, 0xff, blocksize);
  821. ext4_mb_generate_buddy(sb, data, incore, group);
  822. ext4_unlock_group(sb, group);
  823. incore = NULL;
  824. } else {
  825. /* this is block of bitmap */
  826. BUG_ON(incore != NULL);
  827. mb_debug(1, "put bitmap for group %u in page %lu/%x\n",
  828. group, page->index, i * blocksize);
  829. trace_ext4_mb_bitmap_load(sb, group);
  830. /* see comments in ext4_mb_put_pa() */
  831. ext4_lock_group(sb, group);
  832. memcpy(data, bitmap, blocksize);
  833. /* mark all preallocated blks used in in-core bitmap */
  834. ext4_mb_generate_from_pa(sb, data, group);
  835. ext4_mb_generate_from_freelist(sb, data, group);
  836. ext4_unlock_group(sb, group);
  837. /* set incore so that the buddy information can be
  838. * generated using this
  839. */
  840. incore = data;
  841. }
  842. }
  843. SetPageUptodate(page);
  844. out:
  845. if (bh) {
  846. for (i = 0; i < groups_per_page; i++)
  847. brelse(bh[i]);
  848. if (bh != &bhs)
  849. kfree(bh);
  850. }
  851. return err;
  852. }
  853. /*
  854. * Lock the buddy and bitmap pages. This make sure other parallel init_group
  855. * on the same buddy page doesn't happen whild holding the buddy page lock.
  856. * Return locked buddy and bitmap pages on e4b struct. If buddy and bitmap
  857. * are on the same page e4b->bd_buddy_page is NULL and return value is 0.
  858. */
  859. static int ext4_mb_get_buddy_page_lock(struct super_block *sb,
  860. ext4_group_t group, struct ext4_buddy *e4b)
  861. {
  862. struct inode *inode = EXT4_SB(sb)->s_buddy_cache;
  863. int block, pnum, poff;
  864. int blocks_per_page;
  865. struct page *page;
  866. e4b->bd_buddy_page = NULL;
  867. e4b->bd_bitmap_page = NULL;
  868. blocks_per_page = PAGE_CACHE_SIZE / sb->s_blocksize;
  869. /*
  870. * the buddy cache inode stores the block bitmap
  871. * and buddy information in consecutive blocks.
  872. * So for each group we need two blocks.
  873. */
  874. block = group * 2;
  875. pnum = block / blocks_per_page;
  876. poff = block % blocks_per_page;
  877. page = find_or_create_page(inode->i_mapping, pnum, GFP_NOFS);
  878. if (!page)
  879. return -EIO;
  880. BUG_ON(page->mapping != inode->i_mapping);
  881. e4b->bd_bitmap_page = page;
  882. e4b->bd_bitmap = page_address(page) + (poff * sb->s_blocksize);
  883. if (blocks_per_page >= 2) {
  884. /* buddy and bitmap are on the same page */
  885. return 0;
  886. }
  887. block++;
  888. pnum = block / blocks_per_page;
  889. page = find_or_create_page(inode->i_mapping, pnum, GFP_NOFS);
  890. if (!page)
  891. return -EIO;
  892. BUG_ON(page->mapping != inode->i_mapping);
  893. e4b->bd_buddy_page = page;
  894. return 0;
  895. }
  896. static void ext4_mb_put_buddy_page_lock(struct ext4_buddy *e4b)
  897. {
  898. if (e4b->bd_bitmap_page) {
  899. unlock_page(e4b->bd_bitmap_page);
  900. page_cache_release(e4b->bd_bitmap_page);
  901. }
  902. if (e4b->bd_buddy_page) {
  903. unlock_page(e4b->bd_buddy_page);
  904. page_cache_release(e4b->bd_buddy_page);
  905. }
  906. }
  907. /*
  908. * Locking note: This routine calls ext4_mb_init_cache(), which takes the
  909. * block group lock of all groups for this page; do not hold the BG lock when
  910. * calling this routine!
  911. */
  912. static noinline_for_stack
  913. int ext4_mb_init_group(struct super_block *sb, ext4_group_t group)
  914. {
  915. struct ext4_group_info *this_grp;
  916. struct ext4_buddy e4b;
  917. struct page *page;
  918. int ret = 0;
  919. mb_debug(1, "init group %u\n", group);
  920. this_grp = ext4_get_group_info(sb, group);
  921. /*
  922. * This ensures that we don't reinit the buddy cache
  923. * page which map to the group from which we are already
  924. * allocating. If we are looking at the buddy cache we would
  925. * have taken a reference using ext4_mb_load_buddy and that
  926. * would have pinned buddy page to page cache.
  927. */
  928. ret = ext4_mb_get_buddy_page_lock(sb, group, &e4b);
  929. if (ret || !EXT4_MB_GRP_NEED_INIT(this_grp)) {
  930. /*
  931. * somebody initialized the group
  932. * return without doing anything
  933. */
  934. goto err;
  935. }
  936. page = e4b.bd_bitmap_page;
  937. ret = ext4_mb_init_cache(page, NULL);
  938. if (ret)
  939. goto err;
  940. if (!PageUptodate(page)) {
  941. ret = -EIO;
  942. goto err;
  943. }
  944. mark_page_accessed(page);
  945. if (e4b.bd_buddy_page == NULL) {
  946. /*
  947. * If both the bitmap and buddy are in
  948. * the same page we don't need to force
  949. * init the buddy
  950. */
  951. ret = 0;
  952. goto err;
  953. }
  954. /* init buddy cache */
  955. page = e4b.bd_buddy_page;
  956. ret = ext4_mb_init_cache(page, e4b.bd_bitmap);
  957. if (ret)
  958. goto err;
  959. if (!PageUptodate(page)) {
  960. ret = -EIO;
  961. goto err;
  962. }
  963. mark_page_accessed(page);
  964. err:
  965. ext4_mb_put_buddy_page_lock(&e4b);
  966. return ret;
  967. }
  968. /*
  969. * Locking note: This routine calls ext4_mb_init_cache(), which takes the
  970. * block group lock of all groups for this page; do not hold the BG lock when
  971. * calling this routine!
  972. */
  973. static noinline_for_stack int
  974. ext4_mb_load_buddy(struct super_block *sb, ext4_group_t group,
  975. struct ext4_buddy *e4b)
  976. {
  977. int blocks_per_page;
  978. int block;
  979. int pnum;
  980. int poff;
  981. struct page *page;
  982. int ret;
  983. struct ext4_group_info *grp;
  984. struct ext4_sb_info *sbi = EXT4_SB(sb);
  985. struct inode *inode = sbi->s_buddy_cache;
  986. mb_debug(1, "load group %u\n", group);
  987. blocks_per_page = PAGE_CACHE_SIZE / sb->s_blocksize;
  988. grp = ext4_get_group_info(sb, group);
  989. e4b->bd_blkbits = sb->s_blocksize_bits;
  990. e4b->bd_info = grp;
  991. e4b->bd_sb = sb;
  992. e4b->bd_group = group;
  993. e4b->bd_buddy_page = NULL;
  994. e4b->bd_bitmap_page = NULL;
  995. if (unlikely(EXT4_MB_GRP_NEED_INIT(grp))) {
  996. /*
  997. * we need full data about the group
  998. * to make a good selection
  999. */
  1000. ret = ext4_mb_init_group(sb, group);
  1001. if (ret)
  1002. return ret;
  1003. }
  1004. /*
  1005. * the buddy cache inode stores the block bitmap
  1006. * and buddy information in consecutive blocks.
  1007. * So for each group we need two blocks.
  1008. */
  1009. block = group * 2;
  1010. pnum = block / blocks_per_page;
  1011. poff = block % blocks_per_page;
  1012. /* we could use find_or_create_page(), but it locks page
  1013. * what we'd like to avoid in fast path ... */
  1014. page = find_get_page(inode->i_mapping, pnum);
  1015. if (page == NULL || !PageUptodate(page)) {
  1016. if (page)
  1017. /*
  1018. * drop the page reference and try
  1019. * to get the page with lock. If we
  1020. * are not uptodate that implies
  1021. * somebody just created the page but
  1022. * is yet to initialize the same. So
  1023. * wait for it to initialize.
  1024. */
  1025. page_cache_release(page);
  1026. page = find_or_create_page(inode->i_mapping, pnum, GFP_NOFS);
  1027. if (page) {
  1028. BUG_ON(page->mapping != inode->i_mapping);
  1029. if (!PageUptodate(page)) {
  1030. ret = ext4_mb_init_cache(page, NULL);
  1031. if (ret) {
  1032. unlock_page(page);
  1033. goto err;
  1034. }
  1035. mb_cmp_bitmaps(e4b, page_address(page) +
  1036. (poff * sb->s_blocksize));
  1037. }
  1038. unlock_page(page);
  1039. }
  1040. }
  1041. if (page == NULL || !PageUptodate(page)) {
  1042. ret = -EIO;
  1043. goto err;
  1044. }
  1045. e4b->bd_bitmap_page = page;
  1046. e4b->bd_bitmap = page_address(page) + (poff * sb->s_blocksize);
  1047. mark_page_accessed(page);
  1048. block++;
  1049. pnum = block / blocks_per_page;
  1050. poff = block % blocks_per_page;
  1051. page = find_get_page(inode->i_mapping, pnum);
  1052. if (page == NULL || !PageUptodate(page)) {
  1053. if (page)
  1054. page_cache_release(page);
  1055. page = find_or_create_page(inode->i_mapping, pnum, GFP_NOFS);
  1056. if (page) {
  1057. BUG_ON(page->mapping != inode->i_mapping);
  1058. if (!PageUptodate(page)) {
  1059. ret = ext4_mb_init_cache(page, e4b->bd_bitmap);
  1060. if (ret) {
  1061. unlock_page(page);
  1062. goto err;
  1063. }
  1064. }
  1065. unlock_page(page);
  1066. }
  1067. }
  1068. if (page == NULL || !PageUptodate(page)) {
  1069. ret = -EIO;
  1070. goto err;
  1071. }
  1072. e4b->bd_buddy_page = page;
  1073. e4b->bd_buddy = page_address(page) + (poff * sb->s_blocksize);
  1074. mark_page_accessed(page);
  1075. BUG_ON(e4b->bd_bitmap_page == NULL);
  1076. BUG_ON(e4b->bd_buddy_page == NULL);
  1077. return 0;
  1078. err:
  1079. if (page)
  1080. page_cache_release(page);
  1081. if (e4b->bd_bitmap_page)
  1082. page_cache_release(e4b->bd_bitmap_page);
  1083. if (e4b->bd_buddy_page)
  1084. page_cache_release(e4b->bd_buddy_page);
  1085. e4b->bd_buddy = NULL;
  1086. e4b->bd_bitmap = NULL;
  1087. return ret;
  1088. }
  1089. static void ext4_mb_unload_buddy(struct ext4_buddy *e4b)
  1090. {
  1091. if (e4b->bd_bitmap_page)
  1092. page_cache_release(e4b->bd_bitmap_page);
  1093. if (e4b->bd_buddy_page)
  1094. page_cache_release(e4b->bd_buddy_page);
  1095. }
  1096. static int mb_find_order_for_block(struct ext4_buddy *e4b, int block)
  1097. {
  1098. int order = 1;
  1099. void *bb;
  1100. BUG_ON(e4b->bd_bitmap == e4b->bd_buddy);
  1101. BUG_ON(block >= (1 << (e4b->bd_blkbits + 3)));
  1102. bb = e4b->bd_buddy;
  1103. while (order <= e4b->bd_blkbits + 1) {
  1104. block = block >> 1;
  1105. if (!mb_test_bit(block, bb)) {
  1106. /* this block is part of buddy of order 'order' */
  1107. return order;
  1108. }
  1109. bb += 1 << (e4b->bd_blkbits - order);
  1110. order++;
  1111. }
  1112. return 0;
  1113. }
  1114. static void mb_clear_bits(void *bm, int cur, int len)
  1115. {
  1116. __u32 *addr;
  1117. len = cur + len;
  1118. while (cur < len) {
  1119. if ((cur & 31) == 0 && (len - cur) >= 32) {
  1120. /* fast path: clear whole word at once */
  1121. addr = bm + (cur >> 3);
  1122. *addr = 0;
  1123. cur += 32;
  1124. continue;
  1125. }
  1126. mb_clear_bit(cur, bm);
  1127. cur++;
  1128. }
  1129. }
  1130. void ext4_set_bits(void *bm, int cur, int len)
  1131. {
  1132. __u32 *addr;
  1133. len = cur + len;
  1134. while (cur < len) {
  1135. if ((cur & 31) == 0 && (len - cur) >= 32) {
  1136. /* fast path: set whole word at once */
  1137. addr = bm + (cur >> 3);
  1138. *addr = 0xffffffff;
  1139. cur += 32;
  1140. continue;
  1141. }
  1142. mb_set_bit(cur, bm);
  1143. cur++;
  1144. }
  1145. }
  1146. static void mb_free_blocks(struct inode *inode, struct ext4_buddy *e4b,
  1147. int first, int count)
  1148. {
  1149. int block = 0;
  1150. int max = 0;
  1151. int order;
  1152. void *buddy;
  1153. void *buddy2;
  1154. struct super_block *sb = e4b->bd_sb;
  1155. BUG_ON(first + count > (sb->s_blocksize << 3));
  1156. assert_spin_locked(ext4_group_lock_ptr(sb, e4b->bd_group));
  1157. mb_check_buddy(e4b);
  1158. mb_free_blocks_double(inode, e4b, first, count);
  1159. e4b->bd_info->bb_free += count;
  1160. if (first < e4b->bd_info->bb_first_free)
  1161. e4b->bd_info->bb_first_free = first;
  1162. /* let's maintain fragments counter */
  1163. if (first != 0)
  1164. block = !mb_test_bit(first - 1, e4b->bd_bitmap);
  1165. if (first + count < EXT4_SB(sb)->s_mb_maxs[0])
  1166. max = !mb_test_bit(first + count, e4b->bd_bitmap);
  1167. if (block && max)
  1168. e4b->bd_info->bb_fragments--;
  1169. else if (!block && !max)
  1170. e4b->bd_info->bb_fragments++;
  1171. /* let's maintain buddy itself */
  1172. while (count-- > 0) {
  1173. block = first++;
  1174. order = 0;
  1175. if (!mb_test_bit(block, e4b->bd_bitmap)) {
  1176. ext4_fsblk_t blocknr;
  1177. blocknr = ext4_group_first_block_no(sb, e4b->bd_group);
  1178. blocknr += EXT4_C2B(EXT4_SB(sb), block);
  1179. ext4_grp_locked_error(sb, e4b->bd_group,
  1180. inode ? inode->i_ino : 0,
  1181. blocknr,
  1182. "freeing already freed block "
  1183. "(bit %u)", block);
  1184. }
  1185. mb_clear_bit(block, e4b->bd_bitmap);
  1186. e4b->bd_info->bb_counters[order]++;
  1187. /* start of the buddy */
  1188. buddy = mb_find_buddy(e4b, order, &max);
  1189. do {
  1190. block &= ~1UL;
  1191. if (mb_test_bit(block, buddy) ||
  1192. mb_test_bit(block + 1, buddy))
  1193. break;
  1194. /* both the buddies are free, try to coalesce them */
  1195. buddy2 = mb_find_buddy(e4b, order + 1, &max);
  1196. if (!buddy2)
  1197. break;
  1198. if (order > 0) {
  1199. /* for special purposes, we don't set
  1200. * free bits in bitmap */
  1201. mb_set_bit(block, buddy);
  1202. mb_set_bit(block + 1, buddy);
  1203. }
  1204. e4b->bd_info->bb_counters[order]--;
  1205. e4b->bd_info->bb_counters[order]--;
  1206. block = block >> 1;
  1207. order++;
  1208. e4b->bd_info->bb_counters[order]++;
  1209. mb_clear_bit(block, buddy2);
  1210. buddy = buddy2;
  1211. } while (1);
  1212. }
  1213. mb_set_largest_free_order(sb, e4b->bd_info);
  1214. mb_check_buddy(e4b);
  1215. }
  1216. static int mb_find_extent(struct ext4_buddy *e4b, int order, int block,
  1217. int needed, struct ext4_free_extent *ex)
  1218. {
  1219. int next = block;
  1220. int max;
  1221. void *buddy;
  1222. assert_spin_locked(ext4_group_lock_ptr(e4b->bd_sb, e4b->bd_group));
  1223. BUG_ON(ex == NULL);
  1224. buddy = mb_find_buddy(e4b, order, &max);
  1225. BUG_ON(buddy == NULL);
  1226. BUG_ON(block >= max);
  1227. if (mb_test_bit(block, buddy)) {
  1228. ex->fe_len = 0;
  1229. ex->fe_start = 0;
  1230. ex->fe_group = 0;
  1231. return 0;
  1232. }
  1233. /* FIXME dorp order completely ? */
  1234. if (likely(order == 0)) {
  1235. /* find actual order */
  1236. order = mb_find_order_for_block(e4b, block);
  1237. block = block >> order;
  1238. }
  1239. ex->fe_len = 1 << order;
  1240. ex->fe_start = block << order;
  1241. ex->fe_group = e4b->bd_group;
  1242. /* calc difference from given start */
  1243. next = next - ex->fe_start;
  1244. ex->fe_len -= next;
  1245. ex->fe_start += next;
  1246. while (needed > ex->fe_len &&
  1247. (buddy = mb_find_buddy(e4b, order, &max))) {
  1248. if (block + 1 >= max)
  1249. break;
  1250. next = (block + 1) * (1 << order);
  1251. if (mb_test_bit(next, e4b->bd_bitmap))
  1252. break;
  1253. order = mb_find_order_for_block(e4b, next);
  1254. block = next >> order;
  1255. ex->fe_len += 1 << order;
  1256. }
  1257. BUG_ON(ex->fe_start + ex->fe_len > (1 << (e4b->bd_blkbits + 3)));
  1258. return ex->fe_len;
  1259. }
  1260. static int mb_mark_used(struct ext4_buddy *e4b, struct ext4_free_extent *ex)
  1261. {
  1262. int ord;
  1263. int mlen = 0;
  1264. int max = 0;
  1265. int cur;
  1266. int start = ex->fe_start;
  1267. int len = ex->fe_len;
  1268. unsigned ret = 0;
  1269. int len0 = len;
  1270. void *buddy;
  1271. BUG_ON(start + len > (e4b->bd_sb->s_blocksize << 3));
  1272. BUG_ON(e4b->bd_group != ex->fe_group);
  1273. assert_spin_locked(ext4_group_lock_ptr(e4b->bd_sb, e4b->bd_group));
  1274. mb_check_buddy(e4b);
  1275. mb_mark_used_double(e4b, start, len);
  1276. e4b->bd_info->bb_free -= len;
  1277. if (e4b->bd_info->bb_first_free == start)
  1278. e4b->bd_info->bb_first_free += len;
  1279. /* let's maintain fragments counter */
  1280. if (start != 0)
  1281. mlen = !mb_test_bit(start - 1, e4b->bd_bitmap);
  1282. if (start + len < EXT4_SB(e4b->bd_sb)->s_mb_maxs[0])
  1283. max = !mb_test_bit(start + len, e4b->bd_bitmap);
  1284. if (mlen && max)
  1285. e4b->bd_info->bb_fragments++;
  1286. else if (!mlen && !max)
  1287. e4b->bd_info->bb_fragments--;
  1288. /* let's maintain buddy itself */
  1289. while (len) {
  1290. ord = mb_find_order_for_block(e4b, start);
  1291. if (((start >> ord) << ord) == start && len >= (1 << ord)) {
  1292. /* the whole chunk may be allocated at once! */
  1293. mlen = 1 << ord;
  1294. buddy = mb_find_buddy(e4b, ord, &max);
  1295. BUG_ON((start >> ord) >= max);
  1296. mb_set_bit(start >> ord, buddy);
  1297. e4b->bd_info->bb_counters[ord]--;
  1298. start += mlen;
  1299. len -= mlen;
  1300. BUG_ON(len < 0);
  1301. continue;
  1302. }
  1303. /* store for history */
  1304. if (ret == 0)
  1305. ret = len | (ord << 16);
  1306. /* we have to split large buddy */
  1307. BUG_ON(ord <= 0);
  1308. buddy = mb_find_buddy(e4b, ord, &max);
  1309. mb_set_bit(start >> ord, buddy);
  1310. e4b->bd_info->bb_counters[ord]--;
  1311. ord--;
  1312. cur = (start >> ord) & ~1U;
  1313. buddy = mb_find_buddy(e4b, ord, &max);
  1314. mb_clear_bit(cur, buddy);
  1315. mb_clear_bit(cur + 1, buddy);
  1316. e4b->bd_info->bb_counters[ord]++;
  1317. e4b->bd_info->bb_counters[ord]++;
  1318. }
  1319. mb_set_largest_free_order(e4b->bd_sb, e4b->bd_info);
  1320. ext4_set_bits(e4b->bd_bitmap, ex->fe_start, len0);
  1321. mb_check_buddy(e4b);
  1322. return ret;
  1323. }
  1324. /*
  1325. * Must be called under group lock!
  1326. */
  1327. static void ext4_mb_use_best_found(struct ext4_allocation_context *ac,
  1328. struct ext4_buddy *e4b)
  1329. {
  1330. struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
  1331. int ret;
  1332. BUG_ON(ac->ac_b_ex.fe_group != e4b->bd_group);
  1333. BUG_ON(ac->ac_status == AC_STATUS_FOUND);
  1334. ac->ac_b_ex.fe_len = min(ac->ac_b_ex.fe_len, ac->ac_g_ex.fe_len);
  1335. ac->ac_b_ex.fe_logical = ac->ac_g_ex.fe_logical;
  1336. ret = mb_mark_used(e4b, &ac->ac_b_ex);
  1337. /* preallocation can change ac_b_ex, thus we store actually
  1338. * allocated blocks for history */
  1339. ac->ac_f_ex = ac->ac_b_ex;
  1340. ac->ac_status = AC_STATUS_FOUND;
  1341. ac->ac_tail = ret & 0xffff;
  1342. ac->ac_buddy = ret >> 16;
  1343. /*
  1344. * take the page reference. We want the page to be pinned
  1345. * so that we don't get a ext4_mb_init_cache_call for this
  1346. * group until we update the bitmap. That would mean we
  1347. * double allocate blocks. The reference is dropped
  1348. * in ext4_mb_release_context
  1349. */
  1350. ac->ac_bitmap_page = e4b->bd_bitmap_page;
  1351. get_page(ac->ac_bitmap_page);
  1352. ac->ac_buddy_page = e4b->bd_buddy_page;
  1353. get_page(ac->ac_buddy_page);
  1354. /* store last allocated for subsequent stream allocation */
  1355. if (ac->ac_flags & EXT4_MB_STREAM_ALLOC) {
  1356. spin_lock(&sbi->s_md_lock);
  1357. sbi->s_mb_last_group = ac->ac_f_ex.fe_group;
  1358. sbi->s_mb_last_start = ac->ac_f_ex.fe_start;
  1359. spin_unlock(&sbi->s_md_lock);
  1360. }
  1361. }
  1362. /*
  1363. * regular allocator, for general purposes allocation
  1364. */
  1365. static void ext4_mb_check_limits(struct ext4_allocation_context *ac,
  1366. struct ext4_buddy *e4b,
  1367. int finish_group)
  1368. {
  1369. struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
  1370. struct ext4_free_extent *bex = &ac->ac_b_ex;
  1371. struct ext4_free_extent *gex = &ac->ac_g_ex;
  1372. struct ext4_free_extent ex;
  1373. int max;
  1374. if (ac->ac_status == AC_STATUS_FOUND)
  1375. return;
  1376. /*
  1377. * We don't want to scan for a whole year
  1378. */
  1379. if (ac->ac_found > sbi->s_mb_max_to_scan &&
  1380. !(ac->ac_flags & EXT4_MB_HINT_FIRST)) {
  1381. ac->ac_status = AC_STATUS_BREAK;
  1382. return;
  1383. }
  1384. /*
  1385. * Haven't found good chunk so far, let's continue
  1386. */
  1387. if (bex->fe_len < gex->fe_len)
  1388. return;
  1389. if ((finish_group || ac->ac_found > sbi->s_mb_min_to_scan)
  1390. && bex->fe_group == e4b->bd_group) {
  1391. /* recheck chunk's availability - we don't know
  1392. * when it was found (within this lock-unlock
  1393. * period or not) */
  1394. max = mb_find_extent(e4b, 0, bex->fe_start, gex->fe_len, &ex);
  1395. if (max >= gex->fe_len) {
  1396. ext4_mb_use_best_found(ac, e4b);
  1397. return;
  1398. }
  1399. }
  1400. }
  1401. /*
  1402. * The routine checks whether found extent is good enough. If it is,
  1403. * then the extent gets marked used and flag is set to the context
  1404. * to stop scanning. Otherwise, the extent is compared with the
  1405. * previous found extent and if new one is better, then it's stored
  1406. * in the context. Later, the best found extent will be used, if
  1407. * mballoc can't find good enough extent.
  1408. *
  1409. * FIXME: real allocation policy is to be designed yet!
  1410. */
  1411. static void ext4_mb_measure_extent(struct ext4_allocation_context *ac,
  1412. struct ext4_free_extent *ex,
  1413. struct ext4_buddy *e4b)
  1414. {
  1415. struct ext4_free_extent *bex = &ac->ac_b_ex;
  1416. struct ext4_free_extent *gex = &ac->ac_g_ex;
  1417. BUG_ON(ex->fe_len <= 0);
  1418. BUG_ON(ex->fe_len > EXT4_CLUSTERS_PER_GROUP(ac->ac_sb));
  1419. BUG_ON(ex->fe_start >= EXT4_CLUSTERS_PER_GROUP(ac->ac_sb));
  1420. BUG_ON(ac->ac_status != AC_STATUS_CONTINUE);
  1421. ac->ac_found++;
  1422. /*
  1423. * The special case - take what you catch first
  1424. */
  1425. if (unlikely(ac->ac_flags & EXT4_MB_HINT_FIRST)) {
  1426. *bex = *ex;
  1427. ext4_mb_use_best_found(ac, e4b);
  1428. return;
  1429. }
  1430. /*
  1431. * Let's check whether the chuck is good enough
  1432. */
  1433. if (ex->fe_len == gex->fe_len) {
  1434. *bex = *ex;
  1435. ext4_mb_use_best_found(ac, e4b);
  1436. return;
  1437. }
  1438. /*
  1439. * If this is first found extent, just store it in the context
  1440. */
  1441. if (bex->fe_len == 0) {
  1442. *bex = *ex;
  1443. return;
  1444. }
  1445. /*
  1446. * If new found extent is better, store it in the context
  1447. */
  1448. if (bex->fe_len < gex->fe_len) {
  1449. /* if the request isn't satisfied, any found extent
  1450. * larger than previous best one is better */
  1451. if (ex->fe_len > bex->fe_len)
  1452. *bex = *ex;
  1453. } else if (ex->fe_len > gex->fe_len) {
  1454. /* if the request is satisfied, then we try to find
  1455. * an extent that still satisfy the request, but is
  1456. * smaller than previous one */
  1457. if (ex->fe_len < bex->fe_len)
  1458. *bex = *ex;
  1459. }
  1460. ext4_mb_check_limits(ac, e4b, 0);
  1461. }
  1462. static noinline_for_stack
  1463. int ext4_mb_try_best_found(struct ext4_allocation_context *ac,
  1464. struct ext4_buddy *e4b)
  1465. {
  1466. struct ext4_free_extent ex = ac->ac_b_ex;
  1467. ext4_group_t group = ex.fe_group;
  1468. int max;
  1469. int err;
  1470. BUG_ON(ex.fe_len <= 0);
  1471. err = ext4_mb_load_buddy(ac->ac_sb, group, e4b);
  1472. if (err)
  1473. return err;
  1474. ext4_lock_group(ac->ac_sb, group);
  1475. max = mb_find_extent(e4b, 0, ex.fe_start, ex.fe_len, &ex);
  1476. if (max > 0) {
  1477. ac->ac_b_ex = ex;
  1478. ext4_mb_use_best_found(ac, e4b);
  1479. }
  1480. ext4_unlock_group(ac->ac_sb, group);
  1481. ext4_mb_unload_buddy(e4b);
  1482. return 0;
  1483. }
  1484. static noinline_for_stack
  1485. int ext4_mb_find_by_goal(struct ext4_allocation_context *ac,
  1486. struct ext4_buddy *e4b)
  1487. {
  1488. ext4_group_t group = ac->ac_g_ex.fe_group;
  1489. int max;
  1490. int err;
  1491. struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
  1492. struct ext4_free_extent ex;
  1493. if (!(ac->ac_flags & EXT4_MB_HINT_TRY_GOAL))
  1494. return 0;
  1495. err = ext4_mb_load_buddy(ac->ac_sb, group, e4b);
  1496. if (err)
  1497. return err;
  1498. ext4_lock_group(ac->ac_sb, group);
  1499. max = mb_find_extent(e4b, 0, ac->ac_g_ex.fe_start,
  1500. ac->ac_g_ex.fe_len, &ex);
  1501. if (max >= ac->ac_g_ex.fe_len && ac->ac_g_ex.fe_len == sbi->s_stripe) {
  1502. ext4_fsblk_t start;
  1503. start = ext4_group_first_block_no(ac->ac_sb, e4b->bd_group) +
  1504. ex.fe_start;
  1505. /* use do_div to get remainder (would be 64-bit modulo) */
  1506. if (do_div(start, sbi->s_stripe) == 0) {
  1507. ac->ac_found++;
  1508. ac->ac_b_ex = ex;
  1509. ext4_mb_use_best_found(ac, e4b);
  1510. }
  1511. } else if (max >= ac->ac_g_ex.fe_len) {
  1512. BUG_ON(ex.fe_len <= 0);
  1513. BUG_ON(ex.fe_group != ac->ac_g_ex.fe_group);
  1514. BUG_ON(ex.fe_start != ac->ac_g_ex.fe_start);
  1515. ac->ac_found++;
  1516. ac->ac_b_ex = ex;
  1517. ext4_mb_use_best_found(ac, e4b);
  1518. } else if (max > 0 && (ac->ac_flags & EXT4_MB_HINT_MERGE)) {
  1519. /* Sometimes, caller may want to merge even small
  1520. * number of blocks to an existing extent */
  1521. BUG_ON(ex.fe_len <= 0);
  1522. BUG_ON(ex.fe_group != ac->ac_g_ex.fe_group);
  1523. BUG_ON(ex.fe_start != ac->ac_g_ex.fe_start);
  1524. ac->ac_found++;
  1525. ac->ac_b_ex = ex;
  1526. ext4_mb_use_best_found(ac, e4b);
  1527. }
  1528. ext4_unlock_group(ac->ac_sb, group);
  1529. ext4_mb_unload_buddy(e4b);
  1530. return 0;
  1531. }
  1532. /*
  1533. * The routine scans buddy structures (not bitmap!) from given order
  1534. * to max order and tries to find big enough chunk to satisfy the req
  1535. */
  1536. static noinline_for_stack
  1537. void ext4_mb_simple_scan_group(struct ext4_allocation_context *ac,
  1538. struct ext4_buddy *e4b)
  1539. {
  1540. struct super_block *sb = ac->ac_sb;
  1541. struct ext4_group_info *grp = e4b->bd_info;
  1542. void *buddy;
  1543. int i;
  1544. int k;
  1545. int max;
  1546. BUG_ON(ac->ac_2order <= 0);
  1547. for (i = ac->ac_2order; i <= sb->s_blocksize_bits + 1; i++) {
  1548. if (grp->bb_counters[i] == 0)
  1549. continue;
  1550. buddy = mb_find_buddy(e4b, i, &max);
  1551. BUG_ON(buddy == NULL);
  1552. k = mb_find_next_zero_bit(buddy, max, 0);
  1553. BUG_ON(k >= max);
  1554. ac->ac_found++;
  1555. ac->ac_b_ex.fe_len = 1 << i;
  1556. ac->ac_b_ex.fe_start = k << i;
  1557. ac->ac_b_ex.fe_group = e4b->bd_group;
  1558. ext4_mb_use_best_found(ac, e4b);
  1559. BUG_ON(ac->ac_b_ex.fe_len != ac->ac_g_ex.fe_len);
  1560. if (EXT4_SB(sb)->s_mb_stats)
  1561. atomic_inc(&EXT4_SB(sb)->s_bal_2orders);
  1562. break;
  1563. }
  1564. }
  1565. /*
  1566. * The routine scans the group and measures all found extents.
  1567. * In order to optimize scanning, caller must pass number of
  1568. * free blocks in the group, so the routine can know upper limit.
  1569. */
  1570. static noinline_for_stack
  1571. void ext4_mb_complex_scan_group(struct ext4_allocation_context *ac,
  1572. struct ext4_buddy *e4b)
  1573. {
  1574. struct super_block *sb = ac->ac_sb;
  1575. void *bitmap = e4b->bd_bitmap;
  1576. struct ext4_free_extent ex;
  1577. int i;
  1578. int free;
  1579. free = e4b->bd_info->bb_free;
  1580. BUG_ON(free <= 0);
  1581. i = e4b->bd_info->bb_first_free;
  1582. while (free && ac->ac_status == AC_STATUS_CONTINUE) {
  1583. i = mb_find_next_zero_bit(bitmap,
  1584. EXT4_CLUSTERS_PER_GROUP(sb), i);
  1585. if (i >= EXT4_CLUSTERS_PER_GROUP(sb)) {
  1586. /*
  1587. * IF we have corrupt bitmap, we won't find any
  1588. * free blocks even though group info says we
  1589. * we have free blocks
  1590. */
  1591. ext4_grp_locked_error(sb, e4b->bd_group, 0, 0,
  1592. "%d free clusters as per "
  1593. "group info. But bitmap says 0",
  1594. free);
  1595. break;
  1596. }
  1597. mb_find_extent(e4b, 0, i, ac->ac_g_ex.fe_len, &ex);
  1598. BUG_ON(ex.fe_len <= 0);
  1599. if (free < ex.fe_len) {
  1600. ext4_grp_locked_error(sb, e4b->bd_group, 0, 0,
  1601. "%d free clusters as per "
  1602. "group info. But got %d blocks",
  1603. free, ex.fe_len);
  1604. /*
  1605. * The number of free blocks differs. This mostly
  1606. * indicate that the bitmap is corrupt. So exit
  1607. * without claiming the space.
  1608. */
  1609. break;
  1610. }
  1611. ext4_mb_measure_extent(ac, &ex, e4b);
  1612. i += ex.fe_len;
  1613. free -= ex.fe_len;
  1614. }
  1615. ext4_mb_check_limits(ac, e4b, 1);
  1616. }
  1617. /*
  1618. * This is a special case for storages like raid5
  1619. * we try to find stripe-aligned chunks for stripe-size-multiple requests
  1620. */
  1621. static noinline_for_stack
  1622. void ext4_mb_scan_aligned(struct ext4_allocation_context *ac,
  1623. struct ext4_buddy *e4b)
  1624. {
  1625. struct super_block *sb = ac->ac_sb;
  1626. struct ext4_sb_info *sbi = EXT4_SB(sb);
  1627. void *bitmap = e4b->bd_bitmap;
  1628. struct ext4_free_extent ex;
  1629. ext4_fsblk_t first_group_block;
  1630. ext4_fsblk_t a;
  1631. ext4_grpblk_t i;
  1632. int max;
  1633. BUG_ON(sbi->s_stripe == 0);
  1634. /* find first stripe-aligned block in group */
  1635. first_group_block = ext4_group_first_block_no(sb, e4b->bd_group);
  1636. a = first_group_block + sbi->s_stripe - 1;
  1637. do_div(a, sbi->s_stripe);
  1638. i = (a * sbi->s_stripe) - first_group_block;
  1639. while (i < EXT4_CLUSTERS_PER_GROUP(sb)) {
  1640. if (!mb_test_bit(i, bitmap)) {
  1641. max = mb_find_extent(e4b, 0, i, sbi->s_stripe, &ex);
  1642. if (max >= sbi->s_stripe) {
  1643. ac->ac_found++;
  1644. ac->ac_b_ex = ex;
  1645. ext4_mb_use_best_found(ac, e4b);
  1646. break;
  1647. }
  1648. }
  1649. i += sbi->s_stripe;
  1650. }
  1651. }
  1652. /* This is now called BEFORE we load the buddy bitmap. */
  1653. static int ext4_mb_good_group(struct ext4_allocation_context *ac,
  1654. ext4_group_t group, int cr)
  1655. {
  1656. unsigned free, fragments;
  1657. int flex_size = ext4_flex_bg_size(EXT4_SB(ac->ac_sb));
  1658. struct ext4_group_info *grp = ext4_get_group_info(ac->ac_sb, group);
  1659. BUG_ON(cr < 0 || cr >= 4);
  1660. /* We only do this if the grp has never been initialized */
  1661. if (unlikely(EXT4_MB_GRP_NEED_INIT(grp))) {
  1662. int ret = ext4_mb_init_group(ac->ac_sb, group);
  1663. if (ret)
  1664. return 0;
  1665. }
  1666. free = grp->bb_free;
  1667. fragments = grp->bb_fragments;
  1668. if (free == 0)
  1669. return 0;
  1670. if (fragments == 0)
  1671. return 0;
  1672. switch (cr) {
  1673. case 0:
  1674. BUG_ON(ac->ac_2order == 0);
  1675. if (grp->bb_largest_free_order < ac->ac_2order)
  1676. return 0;
  1677. /* Avoid using the first bg of a flexgroup for data files */
  1678. if ((ac->ac_flags & EXT4_MB_HINT_DATA) &&
  1679. (flex_size >= EXT4_FLEX_SIZE_DIR_ALLOC_SCHEME) &&
  1680. ((group % flex_size) == 0))
  1681. return 0;
  1682. return 1;
  1683. case 1:
  1684. if ((free / fragments) >= ac->ac_g_ex.fe_len)
  1685. return 1;
  1686. break;
  1687. case 2:
  1688. if (free >= ac->ac_g_ex.fe_len)
  1689. return 1;
  1690. break;
  1691. case 3:
  1692. return 1;
  1693. default:
  1694. BUG();
  1695. }
  1696. return 0;
  1697. }
  1698. static noinline_for_stack int
  1699. ext4_mb_regular_allocator(struct ext4_allocation_context *ac)
  1700. {
  1701. ext4_group_t ngroups, group, i;
  1702. int cr;
  1703. int err = 0;
  1704. struct ext4_sb_info *sbi;
  1705. struct super_block *sb;
  1706. struct ext4_buddy e4b;
  1707. sb = ac->ac_sb;
  1708. sbi = EXT4_SB(sb);
  1709. ngroups = ext4_get_groups_count(sb);
  1710. /* non-extent files are limited to low blocks/groups */
  1711. if (!(ext4_test_inode_flag(ac->ac_inode, EXT4_INODE_EXTENTS)))
  1712. ngroups = sbi->s_blockfile_groups;
  1713. BUG_ON(ac->ac_status == AC_STATUS_FOUND);
  1714. /* first, try the goal */
  1715. err = ext4_mb_find_by_goal(ac, &e4b);
  1716. if (err || ac->ac_status == AC_STATUS_FOUND)
  1717. goto out;
  1718. if (unlikely(ac->ac_flags & EXT4_MB_HINT_GOAL_ONLY))
  1719. goto out;
  1720. /*
  1721. * ac->ac2_order is set only if the fe_len is a power of 2
  1722. * if ac2_order is set we also set criteria to 0 so that we
  1723. * try exact allocation using buddy.
  1724. */
  1725. i = fls(ac->ac_g_ex.fe_len);
  1726. ac->ac_2order = 0;
  1727. /*
  1728. * We search using buddy data only if the order of the request
  1729. * is greater than equal to the sbi_s_mb_order2_reqs
  1730. * You can tune it via /sys/fs/ext4/<partition>/mb_order2_req
  1731. */
  1732. if (i >= sbi->s_mb_order2_reqs) {
  1733. /*
  1734. * This should tell if fe_len is exactly power of 2
  1735. */
  1736. if ((ac->ac_g_ex.fe_len & (~(1 << (i - 1)))) == 0)
  1737. ac->ac_2order = i - 1;
  1738. }
  1739. /* if stream allocation is enabled, use global goal */
  1740. if (ac->ac_flags & EXT4_MB_STREAM_ALLOC) {
  1741. /* TBD: may be hot point */
  1742. spin_lock(&sbi->s_md_lock);
  1743. ac->ac_g_ex.fe_group = sbi->s_mb_last_group;
  1744. ac->ac_g_ex.fe_start = sbi->s_mb_last_start;
  1745. spin_unlock(&sbi->s_md_lock);
  1746. }
  1747. /* Let's just scan groups to find more-less suitable blocks */
  1748. cr = ac->ac_2order ? 0 : 1;
  1749. /*
  1750. * cr == 0 try to get exact allocation,
  1751. * cr == 3 try to get anything
  1752. */
  1753. repeat:
  1754. for (; cr < 4 && ac->ac_status == AC_STATUS_CONTINUE; cr++) {
  1755. ac->ac_criteria = cr;
  1756. /*
  1757. * searching for the right group start
  1758. * from the goal value specified
  1759. */
  1760. group = ac->ac_g_ex.fe_group;
  1761. for (i = 0; i < ngroups; group++, i++) {
  1762. if (group == ngroups)
  1763. group = 0;
  1764. /* This now checks without needing the buddy page */
  1765. if (!ext4_mb_good_group(ac, group, cr))
  1766. continue;
  1767. err = ext4_mb_load_buddy(sb, group, &e4b);
  1768. if (err)
  1769. goto out;
  1770. ext4_lock_group(sb, group);
  1771. /*
  1772. * We need to check again after locking the
  1773. * block group
  1774. */
  1775. if (!ext4_mb_good_group(ac, group, cr)) {
  1776. ext4_unlock_group(sb, group);
  1777. ext4_mb_unload_buddy(&e4b);
  1778. continue;
  1779. }
  1780. ac->ac_groups_scanned++;
  1781. if (cr == 0)
  1782. ext4_mb_simple_scan_group(ac, &e4b);
  1783. else if (cr == 1 && sbi->s_stripe &&
  1784. !(ac->ac_g_ex.fe_len % sbi->s_stripe))
  1785. ext4_mb_scan_aligned(ac, &e4b);
  1786. else
  1787. ext4_mb_complex_scan_group(ac, &e4b);
  1788. ext4_unlock_group(sb, group);
  1789. ext4_mb_unload_buddy(&e4b);
  1790. if (ac->ac_status != AC_STATUS_CONTINUE)
  1791. break;
  1792. }
  1793. }
  1794. if (ac->ac_b_ex.fe_len > 0 && ac->ac_status != AC_STATUS_FOUND &&
  1795. !(ac->ac_flags & EXT4_MB_HINT_FIRST)) {
  1796. /*
  1797. * We've been searching too long. Let's try to allocate
  1798. * the best chunk we've found so far
  1799. */
  1800. ext4_mb_try_best_found(ac, &e4b);
  1801. if (ac->ac_status != AC_STATUS_FOUND) {
  1802. /*
  1803. * Someone more lucky has already allocated it.
  1804. * The only thing we can do is just take first
  1805. * found block(s)
  1806. printk(KERN_DEBUG "EXT4-fs: someone won our chunk\n");
  1807. */
  1808. ac->ac_b_ex.fe_group = 0;
  1809. ac->ac_b_ex.fe_start = 0;
  1810. ac->ac_b_ex.fe_len = 0;
  1811. ac->ac_status = AC_STATUS_CONTINUE;
  1812. ac->ac_flags |= EXT4_MB_HINT_FIRST;
  1813. cr = 3;
  1814. atomic_inc(&sbi->s_mb_lost_chunks);
  1815. goto repeat;
  1816. }
  1817. }
  1818. out:
  1819. return err;
  1820. }
  1821. static void *ext4_mb_seq_groups_start(struct seq_file *seq, loff_t *pos)
  1822. {
  1823. struct super_block *sb = seq->private;
  1824. ext4_group_t group;
  1825. if (*pos < 0 || *pos >= ext4_get_groups_count(sb))
  1826. return NULL;
  1827. group = *pos + 1;
  1828. return (void *) ((unsigned long) group);
  1829. }
  1830. static void *ext4_mb_seq_groups_next(struct seq_file *seq, void *v, loff_t *pos)
  1831. {
  1832. struct super_block *sb = seq->private;
  1833. ext4_group_t group;
  1834. ++*pos;
  1835. if (*pos < 0 || *pos >= ext4_get_groups_count(sb))
  1836. return NULL;
  1837. group = *pos + 1;
  1838. return (void *) ((unsigned long) group);
  1839. }
  1840. static int ext4_mb_seq_groups_show(struct seq_file *seq, void *v)
  1841. {
  1842. struct super_block *sb = seq->private;
  1843. ext4_group_t group = (ext4_group_t) ((unsigned long) v);
  1844. int i;
  1845. int err, buddy_loaded = 0;
  1846. struct ext4_buddy e4b;
  1847. struct ext4_group_info *grinfo;
  1848. struct sg {
  1849. struct ext4_group_info info;
  1850. ext4_grpblk_t counters[16];
  1851. } sg;
  1852. group--;
  1853. if (group == 0)
  1854. seq_printf(seq, "#%-5s: %-5s %-5s %-5s "
  1855. "[ %-5s %-5s %-5s %-5s %-5s %-5s %-5s "
  1856. "%-5s %-5s %-5s %-5s %-5s %-5s %-5s ]\n",
  1857. "group", "free", "frags", "first",
  1858. "2^0", "2^1", "2^2", "2^3", "2^4", "2^5", "2^6",
  1859. "2^7", "2^8", "2^9", "2^10", "2^11", "2^12", "2^13");
  1860. i = (sb->s_blocksize_bits + 2) * sizeof(sg.info.bb_counters[0]) +
  1861. sizeof(struct ext4_group_info);
  1862. grinfo = ext4_get_group_info(sb, group);
  1863. /* Load the group info in memory only if not already loaded. */
  1864. if (unlikely(EXT4_MB_GRP_NEED_INIT(grinfo))) {
  1865. err = ext4_mb_load_buddy(sb, group, &e4b);
  1866. if (err) {
  1867. seq_printf(seq, "#%-5u: I/O error\n", group);
  1868. return 0;
  1869. }
  1870. buddy_loaded = 1;
  1871. }
  1872. memcpy(&sg, ext4_get_group_info(sb, group), i);
  1873. if (buddy_loaded)
  1874. ext4_mb_unload_buddy(&e4b);
  1875. seq_printf(seq, "#%-5u: %-5u %-5u %-5u [", group, sg.info.bb_free,
  1876. sg.info.bb_fragments, sg.info.bb_first_free);
  1877. for (i = 0; i <= 13; i++)
  1878. seq_printf(seq, " %-5u", i <= sb->s_blocksize_bits + 1 ?
  1879. sg.info.bb_counters[i] : 0);
  1880. seq_printf(seq, " ]\n");
  1881. return 0;
  1882. }
  1883. static void ext4_mb_seq_groups_stop(struct seq_file *seq, void *v)
  1884. {
  1885. }
  1886. static const struct seq_operations ext4_mb_seq_groups_ops = {
  1887. .start = ext4_mb_seq_groups_start,
  1888. .next = ext4_mb_seq_groups_next,
  1889. .stop = ext4_mb_seq_groups_stop,
  1890. .show = ext4_mb_seq_groups_show,
  1891. };
  1892. static int ext4_mb_seq_groups_open(struct inode *inode, struct file *file)
  1893. {
  1894. struct super_block *sb = PDE(inode)->data;
  1895. int rc;
  1896. rc = seq_open(file, &ext4_mb_seq_groups_ops);
  1897. if (rc == 0) {
  1898. struct seq_file *m = file->private_data;
  1899. m->private = sb;
  1900. }
  1901. return rc;
  1902. }
  1903. static const struct file_operations ext4_mb_seq_groups_fops = {
  1904. .owner = THIS_MODULE,
  1905. .open = ext4_mb_seq_groups_open,
  1906. .read = seq_read,
  1907. .llseek = seq_lseek,
  1908. .release = seq_release,
  1909. };
  1910. static struct kmem_cache *get_groupinfo_cache(int blocksize_bits)
  1911. {
  1912. int cache_index = blocksize_bits - EXT4_MIN_BLOCK_LOG_SIZE;
  1913. struct kmem_cache *cachep = ext4_groupinfo_caches[cache_index];
  1914. BUG_ON(!cachep);
  1915. return cachep;
  1916. }
  1917. /* Create and initialize ext4_group_info data for the given group. */
  1918. int ext4_mb_add_groupinfo(struct super_block *sb, ext4_group_t group,
  1919. struct ext4_group_desc *desc)
  1920. {
  1921. int i;
  1922. int metalen = 0;
  1923. struct ext4_sb_info *sbi = EXT4_SB(sb);
  1924. struct ext4_group_info **meta_group_info;
  1925. struct kmem_cache *cachep = get_groupinfo_cache(sb->s_blocksize_bits);
  1926. /*
  1927. * First check if this group is the first of a reserved block.
  1928. * If it's true, we have to allocate a new table of pointers
  1929. * to ext4_group_info structures
  1930. */
  1931. if (group % EXT4_DESC_PER_BLOCK(sb) == 0) {
  1932. metalen = sizeof(*meta_group_info) <<
  1933. EXT4_DESC_PER_BLOCK_BITS(sb);
  1934. meta_group_info = kmalloc(metalen, GFP_KERNEL);
  1935. if (meta_group_info == NULL) {
  1936. ext4_msg(sb, KERN_ERR, "can't allocate mem "
  1937. "for a buddy group");
  1938. goto exit_meta_group_info;
  1939. }
  1940. sbi->s_group_info[group >> EXT4_DESC_PER_BLOCK_BITS(sb)] =
  1941. meta_group_info;
  1942. }
  1943. meta_group_info =
  1944. sbi->s_group_info[group >> EXT4_DESC_PER_BLOCK_BITS(sb)];
  1945. i = group & (EXT4_DESC_PER_BLOCK(sb) - 1);
  1946. meta_group_info[i] = kmem_cache_alloc(cachep, GFP_KERNEL);
  1947. if (meta_group_info[i] == NULL) {
  1948. ext4_msg(sb, KERN_ERR, "can't allocate buddy mem");
  1949. goto exit_group_info;
  1950. }
  1951. memset(meta_group_info[i], 0, kmem_cache_size(cachep));
  1952. set_bit(EXT4_GROUP_INFO_NEED_INIT_BIT,
  1953. &(meta_group_info[i]->bb_state));
  1954. /*
  1955. * initialize bb_free to be able to skip
  1956. * empty groups without initialization
  1957. */
  1958. if (desc->bg_flags & cpu_to_le16(EXT4_BG_BLOCK_UNINIT)) {
  1959. meta_group_info[i]->bb_free =
  1960. ext4_free_clusters_after_init(sb, group, desc);
  1961. } else {
  1962. meta_group_info[i]->bb_free =
  1963. ext4_free_group_clusters(sb, desc);
  1964. }
  1965. INIT_LIST_HEAD(&meta_group_info[i]->bb_prealloc_list);
  1966. init_rwsem(&meta_group_info[i]->alloc_sem);
  1967. meta_group_info[i]->bb_free_root = RB_ROOT;
  1968. meta_group_info[i]->bb_largest_free_order = -1; /* uninit */
  1969. #ifdef DOUBLE_CHECK
  1970. {
  1971. struct buffer_head *bh;
  1972. meta_group_info[i]->bb_bitmap =
  1973. kmalloc(sb->s_blocksize, GFP_KERNEL);
  1974. BUG_ON(meta_group_info[i]->bb_bitmap == NULL);
  1975. bh = ext4_read_block_bitmap(sb, group);
  1976. BUG_ON(bh == NULL);
  1977. memcpy(meta_group_info[i]->bb_bitmap, bh->b_data,
  1978. sb->s_blocksize);
  1979. put_bh(bh);
  1980. }
  1981. #endif
  1982. return 0;
  1983. exit_group_info:
  1984. /* If a meta_group_info table has been allocated, release it now */
  1985. if (group % EXT4_DESC_PER_BLOCK(sb) == 0) {
  1986. kfree(sbi->s_group_info[group >> EXT4_DESC_PER_BLOCK_BITS(sb)]);
  1987. sbi->s_group_info[group >> EXT4_DESC_PER_BLOCK_BITS(sb)] = NULL;
  1988. }
  1989. exit_meta_group_info:
  1990. return -ENOMEM;
  1991. } /* ext4_mb_add_groupinfo */
  1992. static int ext4_mb_init_backend(struct super_block *sb)
  1993. {
  1994. ext4_group_t ngroups = ext4_get_groups_count(sb);
  1995. ext4_group_t i;
  1996. struct ext4_sb_info *sbi = EXT4_SB(sb);
  1997. struct ext4_super_block *es = sbi->s_es;
  1998. int num_meta_group_infos;
  1999. int num_meta_group_infos_max;
  2000. int array_size;
  2001. struct ext4_group_desc *desc;
  2002. struct kmem_cache *cachep;
  2003. /* This is the number of blocks used by GDT */
  2004. num_meta_group_infos = (ngroups + EXT4_DESC_PER_BLOCK(sb) -
  2005. 1) >> EXT4_DESC_PER_BLOCK_BITS(sb);
  2006. /*
  2007. * This is the total number of blocks used by GDT including
  2008. * the number of reserved blocks for GDT.
  2009. * The s_group_info array is allocated with this value
  2010. * to allow a clean online resize without a complex
  2011. * manipulation of pointer.
  2012. * The drawback is the unused memory when no resize
  2013. * occurs but it's very low in terms of pages
  2014. * (see comments below)
  2015. * Need to handle this properly when META_BG resizing is allowed
  2016. */
  2017. num_meta_group_infos_max = num_meta_group_infos +
  2018. le16_to_cpu(es->s_reserved_gdt_blocks);
  2019. /*
  2020. * array_size is the size of s_group_info array. We round it
  2021. * to the next power of two because this approximation is done
  2022. * internally by kmalloc so we can have some more memory
  2023. * for free here (e.g. may be used for META_BG resize).
  2024. */
  2025. array_size = 1;
  2026. while (array_size < sizeof(*sbi->s_group_info) *
  2027. num_meta_group_infos_max)
  2028. array_size = array_size << 1;
  2029. /* An 8TB filesystem with 64-bit pointers requires a 4096 byte
  2030. * kmalloc. A 128kb malloc should suffice for a 256TB filesystem.
  2031. * So a two level scheme suffices for now. */
  2032. sbi->s_group_info = ext4_kvzalloc(array_size, GFP_KERNEL);
  2033. if (sbi->s_group_info == NULL) {
  2034. ext4_msg(sb, KERN_ERR, "can't allocate buddy meta group");
  2035. return -ENOMEM;
  2036. }
  2037. sbi->s_buddy_cache = new_inode(sb);
  2038. if (sbi->s_buddy_cache == NULL) {
  2039. ext4_msg(sb, KERN_ERR, "can't get new inode");
  2040. goto err_freesgi;
  2041. }
  2042. /* To avoid potentially colliding with an valid on-disk inode number,
  2043. * use EXT4_BAD_INO for the buddy cache inode number. This inode is
  2044. * not in the inode hash, so it should never be found by iget(), but
  2045. * this will avoid confusion if it ever shows up during debugging. */
  2046. sbi->s_buddy_cache->i_ino = EXT4_BAD_INO;
  2047. EXT4_I(sbi->s_buddy_cache)->i_disksize = 0;
  2048. for (i = 0; i < ngroups; i++) {
  2049. desc = ext4_get_group_desc(sb, i, NULL);
  2050. if (desc == NULL) {
  2051. ext4_msg(sb, KERN_ERR, "can't read descriptor %u", i);
  2052. goto err_freebuddy;
  2053. }
  2054. if (ext4_mb_add_groupinfo(sb, i, desc) != 0)
  2055. goto err_freebuddy;
  2056. }
  2057. return 0;
  2058. err_freebuddy:
  2059. cachep = get_groupinfo_cache(sb->s_blocksize_bits);
  2060. while (i-- > 0)
  2061. kmem_cache_free(cachep, ext4_get_group_info(sb, i));
  2062. i = num_meta_group_infos;
  2063. while (i-- > 0)
  2064. kfree(sbi->s_group_info[i]);
  2065. iput(sbi->s_buddy_cache);
  2066. err_freesgi:
  2067. ext4_kvfree(sbi->s_group_info);
  2068. return -ENOMEM;
  2069. }
  2070. static void ext4_groupinfo_destroy_slabs(void)
  2071. {
  2072. int i;
  2073. for (i = 0; i < NR_GRPINFO_CACHES; i++) {
  2074. if (ext4_groupinfo_caches[i])
  2075. kmem_cache_destroy(ext4_groupinfo_caches[i]);
  2076. ext4_groupinfo_caches[i] = NULL;
  2077. }
  2078. }
  2079. static int ext4_groupinfo_create_slab(size_t size)
  2080. {
  2081. static DEFINE_MUTEX(ext4_grpinfo_slab_create_mutex);
  2082. int slab_size;
  2083. int blocksize_bits = order_base_2(size);
  2084. int cache_index = blocksize_bits - EXT4_MIN_BLOCK_LOG_SIZE;
  2085. struct kmem_cache *cachep;
  2086. if (cache_index >= NR_GRPINFO_CACHES)
  2087. return -EINVAL;
  2088. if (unlikely(cache_index < 0))
  2089. cache_index = 0;
  2090. mutex_lock(&ext4_grpinfo_slab_create_mutex);
  2091. if (ext4_groupinfo_caches[cache_index]) {
  2092. mutex_unlock(&ext4_grpinfo_slab_create_mutex);
  2093. return 0; /* Already created */
  2094. }
  2095. slab_size = offsetof(struct ext4_group_info,
  2096. bb_counters[blocksize_bits + 2]);
  2097. cachep = kmem_cache_create(ext4_groupinfo_slab_names[cache_index],
  2098. slab_size, 0, SLAB_RECLAIM_ACCOUNT,
  2099. NULL);
  2100. ext4_groupinfo_caches[cache_index] = cachep;
  2101. mutex_unlock(&ext4_grpinfo_slab_create_mutex);
  2102. if (!cachep) {
  2103. printk(KERN_EMERG
  2104. "EXT4-fs: no memory for groupinfo slab cache\n");
  2105. return -ENOMEM;
  2106. }
  2107. return 0;
  2108. }
  2109. int ext4_mb_init(struct super_block *sb)
  2110. {
  2111. struct ext4_sb_info *sbi = EXT4_SB(sb);
  2112. unsigned i, j;
  2113. unsigned offset;
  2114. unsigned max;
  2115. int ret;
  2116. i = (sb->s_blocksize_bits + 2) * sizeof(*sbi->s_mb_offsets);
  2117. sbi->s_mb_offsets = kmalloc(i, GFP_KERNEL);
  2118. if (sbi->s_mb_offsets == NULL) {
  2119. ret = -ENOMEM;
  2120. goto out;
  2121. }
  2122. i = (sb->s_blocksize_bits + 2) * sizeof(*sbi->s_mb_maxs);
  2123. sbi->s_mb_maxs = kmalloc(i, GFP_KERNEL);
  2124. if (sbi->s_mb_maxs == NULL) {
  2125. ret = -ENOMEM;
  2126. goto out;
  2127. }
  2128. ret = ext4_groupinfo_create_slab(sb->s_blocksize);
  2129. if (ret < 0)
  2130. goto out;
  2131. /* order 0 is regular bitmap */
  2132. sbi->s_mb_maxs[0] = sb->s_blocksize << 3;
  2133. sbi->s_mb_offsets[0] = 0;
  2134. i = 1;
  2135. offset = 0;
  2136. max = sb->s_blocksize << 2;
  2137. do {
  2138. sbi->s_mb_offsets[i] = offset;
  2139. sbi->s_mb_maxs[i] = max;
  2140. offset += 1 << (sb->s_blocksize_bits - i);
  2141. max = max >> 1;
  2142. i++;
  2143. } while (i <= sb->s_blocksize_bits + 1);
  2144. spin_lock_init(&sbi->s_md_lock);
  2145. spin_lock_init(&sbi->s_bal_lock);
  2146. sbi->s_mb_max_to_scan = MB_DEFAULT_MAX_TO_SCAN;
  2147. sbi->s_mb_min_to_scan = MB_DEFAULT_MIN_TO_SCAN;
  2148. sbi->s_mb_stats = MB_DEFAULT_STATS;
  2149. sbi->s_mb_stream_request = MB_DEFAULT_STREAM_THRESHOLD;
  2150. sbi->s_mb_order2_reqs = MB_DEFAULT_ORDER2_REQS;
  2151. /*
  2152. * The default group preallocation is 512, which for 4k block
  2153. * sizes translates to 2 megabytes. However for bigalloc file
  2154. * systems, this is probably too big (i.e, if the cluster size
  2155. * is 1 megabyte, then group preallocation size becomes half a
  2156. * gigabyte!). As a default, we will keep a two megabyte
  2157. * group pralloc size for cluster sizes up to 64k, and after
  2158. * that, we will force a minimum group preallocation size of
  2159. * 32 clusters. This translates to 8 megs when the cluster
  2160. * size is 256k, and 32 megs when the cluster size is 1 meg,
  2161. * which seems reasonable as a default.
  2162. */
  2163. sbi->s_mb_group_prealloc = max(MB_DEFAULT_GROUP_PREALLOC >>
  2164. sbi->s_cluster_bits, 32);
  2165. /*
  2166. * If there is a s_stripe > 1, then we set the s_mb_group_prealloc
  2167. * to the lowest multiple of s_stripe which is bigger than
  2168. * the s_mb_group_prealloc as determined above. We want
  2169. * the preallocation size to be an exact multiple of the
  2170. * RAID stripe size so that preallocations don't fragment
  2171. * the stripes.
  2172. */
  2173. if (sbi->s_stripe > 1) {
  2174. sbi->s_mb_group_prealloc = roundup(
  2175. sbi->s_mb_group_prealloc, sbi->s_stripe);
  2176. }
  2177. sbi->s_locality_groups = alloc_percpu(struct ext4_locality_group);
  2178. if (sbi->s_locality_groups == NULL) {
  2179. ret = -ENOMEM;
  2180. goto out_free_groupinfo_slab;
  2181. }
  2182. for_each_possible_cpu(i) {
  2183. struct ext4_locality_group *lg;
  2184. lg = per_cpu_ptr(sbi->s_locality_groups, i);
  2185. mutex_init(&lg->lg_mutex);
  2186. for (j = 0; j < PREALLOC_TB_SIZE; j++)
  2187. INIT_LIST_HEAD(&lg->lg_prealloc_list[j]);
  2188. spin_lock_init(&lg->lg_prealloc_lock);
  2189. }
  2190. /* init file for buddy data */
  2191. ret = ext4_mb_init_backend(sb);
  2192. if (ret != 0)
  2193. goto out_free_locality_groups;
  2194. if (sbi->s_proc)
  2195. proc_create_data("mb_groups", S_IRUGO, sbi->s_proc,
  2196. &ext4_mb_seq_groups_fops, sb);
  2197. return 0;
  2198. out_free_locality_groups:
  2199. free_percpu(sbi->s_locality_groups);
  2200. sbi->s_locality_groups = NULL;
  2201. out_free_groupinfo_slab:
  2202. ext4_groupinfo_destroy_slabs();
  2203. out:
  2204. kfree(sbi->s_mb_offsets);
  2205. sbi->s_mb_offsets = NULL;
  2206. kfree(sbi->s_mb_maxs);
  2207. sbi->s_mb_maxs = NULL;
  2208. return ret;
  2209. }
  2210. /* need to called with the ext4 group lock held */
  2211. static void ext4_mb_cleanup_pa(struct ext4_group_info *grp)
  2212. {
  2213. struct ext4_prealloc_space *pa;
  2214. struct list_head *cur, *tmp;
  2215. int count = 0;
  2216. list_for_each_safe(cur, tmp, &grp->bb_prealloc_list) {
  2217. pa = list_entry(cur, struct ext4_prealloc_space, pa_group_list);
  2218. list_del(&pa->pa_group_list);
  2219. count++;
  2220. kmem_cache_free(ext4_pspace_cachep, pa);
  2221. }
  2222. if (count)
  2223. mb_debug(1, "mballoc: %u PAs left\n", count);
  2224. }
  2225. int ext4_mb_release(struct super_block *sb)
  2226. {
  2227. ext4_group_t ngroups = ext4_get_groups_count(sb);
  2228. ext4_group_t i;
  2229. int num_meta_group_infos;
  2230. struct ext4_group_info *grinfo;
  2231. struct ext4_sb_info *sbi = EXT4_SB(sb);
  2232. struct kmem_cache *cachep = get_groupinfo_cache(sb->s_blocksize_bits);
  2233. if (sbi->s_proc)
  2234. remove_proc_entry("mb_groups", sbi->s_proc);
  2235. if (sbi->s_group_info) {
  2236. for (i = 0; i < ngroups; i++) {
  2237. grinfo = ext4_get_group_info(sb, i);
  2238. #ifdef DOUBLE_CHECK
  2239. kfree(grinfo->bb_bitmap);
  2240. #endif
  2241. ext4_lock_group(sb, i);
  2242. ext4_mb_cleanup_pa(grinfo);
  2243. ext4_unlock_group(sb, i);
  2244. kmem_cache_free(cachep, grinfo);
  2245. }
  2246. num_meta_group_infos = (ngroups +
  2247. EXT4_DESC_PER_BLOCK(sb) - 1) >>
  2248. EXT4_DESC_PER_BLOCK_BITS(sb);
  2249. for (i = 0; i < num_meta_group_infos; i++)
  2250. kfree(sbi->s_group_info[i]);
  2251. ext4_kvfree(sbi->s_group_info);
  2252. }
  2253. kfree(sbi->s_mb_offsets);
  2254. kfree(sbi->s_mb_maxs);
  2255. if (sbi->s_buddy_cache)
  2256. iput(sbi->s_buddy_cache);
  2257. if (sbi->s_mb_stats) {
  2258. ext4_msg(sb, KERN_INFO,
  2259. "mballoc: %u blocks %u reqs (%u success)",
  2260. atomic_read(&sbi->s_bal_allocated),
  2261. atomic_read(&sbi->s_bal_reqs),
  2262. atomic_read(&sbi->s_bal_success));
  2263. ext4_msg(sb, KERN_INFO,
  2264. "mballoc: %u extents scanned, %u goal hits, "
  2265. "%u 2^N hits, %u breaks, %u lost",
  2266. atomic_read(&sbi->s_bal_ex_scanned),
  2267. atomic_read(&sbi->s_bal_goals),
  2268. atomic_read(&sbi->s_bal_2orders),
  2269. atomic_read(&sbi->s_bal_breaks),
  2270. atomic_read(&sbi->s_mb_lost_chunks));
  2271. ext4_msg(sb, KERN_INFO,
  2272. "mballoc: %lu generated and it took %Lu",
  2273. sbi->s_mb_buddies_generated,
  2274. sbi->s_mb_generation_time);
  2275. ext4_msg(sb, KERN_INFO,
  2276. "mballoc: %u preallocated, %u discarded",
  2277. atomic_read(&sbi->s_mb_preallocated),
  2278. atomic_read(&sbi->s_mb_discarded));
  2279. }
  2280. free_percpu(sbi->s_locality_groups);
  2281. return 0;
  2282. }
  2283. static inline int ext4_issue_discard(struct super_block *sb,
  2284. ext4_group_t block_group, ext4_grpblk_t cluster, int count)
  2285. {
  2286. ext4_fsblk_t discard_block;
  2287. discard_block = (EXT4_C2B(EXT4_SB(sb), cluster) +
  2288. ext4_group_first_block_no(sb, block_group));
  2289. count = EXT4_C2B(EXT4_SB(sb), count);
  2290. trace_ext4_discard_blocks(sb,
  2291. (unsigned long long) discard_block, count);
  2292. return sb_issue_discard(sb, discard_block, count, GFP_NOFS, 0);
  2293. }
  2294. /*
  2295. * This function is called by the jbd2 layer once the commit has finished,
  2296. * so we know we can free the blocks that were released with that commit.
  2297. */
  2298. static void ext4_free_data_callback(struct super_block *sb,
  2299. struct ext4_journal_cb_entry *jce,
  2300. int rc)
  2301. {
  2302. struct ext4_free_data *entry = (struct ext4_free_data *)jce;
  2303. struct ext4_buddy e4b;
  2304. struct ext4_group_info *db;
  2305. int err, count = 0, count2 = 0;
  2306. mb_debug(1, "gonna free %u blocks in group %u (0x%p):",
  2307. entry->efd_count, entry->efd_group, entry);
  2308. if (test_opt(sb, DISCARD))
  2309. ext4_issue_discard(sb, entry->efd_group,
  2310. entry->efd_start_cluster, entry->efd_count);
  2311. err = ext4_mb_load_buddy(sb, entry->efd_group, &e4b);
  2312. /* we expect to find existing buddy because it's pinned */
  2313. BUG_ON(err != 0);
  2314. db = e4b.bd_info;
  2315. /* there are blocks to put in buddy to make them really free */
  2316. count += entry->efd_count;
  2317. count2++;
  2318. ext4_lock_group(sb, entry->efd_group);
  2319. /* Take it out of per group rb tree */
  2320. rb_erase(&entry->efd_node, &(db->bb_free_root));
  2321. mb_free_blocks(NULL, &e4b, entry->efd_start_cluster, entry->efd_count);
  2322. /*
  2323. * Clear the trimmed flag for the group so that the next
  2324. * ext4_trim_fs can trim it.
  2325. * If the volume is mounted with -o discard, online discard
  2326. * is supported and the free blocks will be trimmed online.
  2327. */
  2328. if (!test_opt(sb, DISCARD))
  2329. EXT4_MB_GRP_CLEAR_TRIMMED(db);
  2330. if (!db->bb_free_root.rb_node) {
  2331. /* No more items in the per group rb tree
  2332. * balance refcounts from ext4_mb_free_metadata()
  2333. */
  2334. page_cache_release(e4b.bd_buddy_page);
  2335. page_cache_release(e4b.bd_bitmap_page);
  2336. }
  2337. ext4_unlock_group(sb, entry->efd_group);
  2338. kmem_cache_free(ext4_free_data_cachep, entry);
  2339. ext4_mb_unload_buddy(&e4b);
  2340. mb_debug(1, "freed %u blocks in %u structures\n", count, count2);
  2341. }
  2342. #ifdef CONFIG_EXT4_DEBUG
  2343. u8 mb_enable_debug __read_mostly;
  2344. static struct dentry *debugfs_dir;
  2345. static struct dentry *debugfs_debug;
  2346. static void __init ext4_create_debugfs_entry(void)
  2347. {
  2348. debugfs_dir = debugfs_create_dir("ext4", NULL);
  2349. if (debugfs_dir)
  2350. debugfs_debug = debugfs_create_u8("mballoc-debug",
  2351. S_IRUGO | S_IWUSR,
  2352. debugfs_dir,
  2353. &mb_enable_debug);
  2354. }
  2355. static void ext4_remove_debugfs_entry(void)
  2356. {
  2357. debugfs_remove(debugfs_debug);
  2358. debugfs_remove(debugfs_dir);
  2359. }
  2360. #else
  2361. static void __init ext4_create_debugfs_entry(void)
  2362. {
  2363. }
  2364. static void ext4_remove_debugfs_entry(void)
  2365. {
  2366. }
  2367. #endif
  2368. int __init ext4_init_mballoc(void)
  2369. {
  2370. ext4_pspace_cachep = KMEM_CACHE(ext4_prealloc_space,
  2371. SLAB_RECLAIM_ACCOUNT);
  2372. if (ext4_pspace_cachep == NULL)
  2373. return -ENOMEM;
  2374. ext4_ac_cachep = KMEM_CACHE(ext4_allocation_context,
  2375. SLAB_RECLAIM_ACCOUNT);
  2376. if (ext4_ac_cachep == NULL) {
  2377. kmem_cache_destroy(ext4_pspace_cachep);
  2378. return -ENOMEM;
  2379. }
  2380. ext4_free_data_cachep = KMEM_CACHE(ext4_free_data,
  2381. SLAB_RECLAIM_ACCOUNT);
  2382. if (ext4_free_data_cachep == NULL) {
  2383. kmem_cache_destroy(ext4_pspace_cachep);
  2384. kmem_cache_destroy(ext4_ac_cachep);
  2385. return -ENOMEM;
  2386. }
  2387. ext4_create_debugfs_entry();
  2388. return 0;
  2389. }
  2390. void ext4_exit_mballoc(void)
  2391. {
  2392. /*
  2393. * Wait for completion of call_rcu()'s on ext4_pspace_cachep
  2394. * before destroying the slab cache.
  2395. */
  2396. rcu_barrier();
  2397. kmem_cache_destroy(ext4_pspace_cachep);
  2398. kmem_cache_destroy(ext4_ac_cachep);
  2399. kmem_cache_destroy(ext4_free_data_cachep);
  2400. ext4_groupinfo_destroy_slabs();
  2401. ext4_remove_debugfs_entry();
  2402. }
  2403. /*
  2404. * Check quota and mark chosen space (ac->ac_b_ex) non-free in bitmaps
  2405. * Returns 0 if success or error code
  2406. */
  2407. static noinline_for_stack int
  2408. ext4_mb_mark_diskspace_used(struct ext4_allocation_context *ac,
  2409. handle_t *handle, unsigned int reserv_clstrs)
  2410. {
  2411. struct buffer_head *bitmap_bh = NULL;
  2412. struct ext4_group_desc *gdp;
  2413. struct buffer_head *gdp_bh;
  2414. struct ext4_sb_info *sbi;
  2415. struct super_block *sb;
  2416. ext4_fsblk_t block;
  2417. int err, len;
  2418. BUG_ON(ac->ac_status != AC_STATUS_FOUND);
  2419. BUG_ON(ac->ac_b_ex.fe_len <= 0);
  2420. sb = ac->ac_sb;
  2421. sbi = EXT4_SB(sb);
  2422. err = -EIO;
  2423. bitmap_bh = ext4_read_block_bitmap(sb, ac->ac_b_ex.fe_group);
  2424. if (!bitmap_bh)
  2425. goto out_err;
  2426. err = ext4_journal_get_write_access(handle, bitmap_bh);
  2427. if (err)
  2428. goto out_err;
  2429. err = -EIO;
  2430. gdp = ext4_get_group_desc(sb, ac->ac_b_ex.fe_group, &gdp_bh);
  2431. if (!gdp)
  2432. goto out_err;
  2433. ext4_debug("using block group %u(%d)\n", ac->ac_b_ex.fe_group,
  2434. ext4_free_group_clusters(sb, gdp));
  2435. err = ext4_journal_get_write_access(handle, gdp_bh);
  2436. if (err)
  2437. goto out_err;
  2438. block = ext4_grp_offs_to_block(sb, &ac->ac_b_ex);
  2439. len = EXT4_C2B(sbi, ac->ac_b_ex.fe_len);
  2440. if (!ext4_data_block_valid(sbi, block, len)) {
  2441. ext4_error(sb, "Allocating blocks %llu-%llu which overlap "
  2442. "fs metadata", block, block+len);
  2443. /* File system mounted not to panic on error
  2444. * Fix the bitmap and repeat the block allocation
  2445. * We leak some of the blocks here.
  2446. */
  2447. ext4_lock_group(sb, ac->ac_b_ex.fe_group);
  2448. ext4_set_bits(bitmap_bh->b_data, ac->ac_b_ex.fe_start,
  2449. ac->ac_b_ex.fe_len);
  2450. ext4_unlock_group(sb, ac->ac_b_ex.fe_group);
  2451. err = ext4_handle_dirty_metadata(handle, NULL, bitmap_bh);
  2452. if (!err)
  2453. err = -EAGAIN;
  2454. goto out_err;
  2455. }
  2456. ext4_lock_group(sb, ac->ac_b_ex.fe_group);
  2457. #ifdef AGGRESSIVE_CHECK
  2458. {
  2459. int i;
  2460. for (i = 0; i < ac->ac_b_ex.fe_len; i++) {
  2461. BUG_ON(mb_test_bit(ac->ac_b_ex.fe_start + i,
  2462. bitmap_bh->b_data));
  2463. }
  2464. }
  2465. #endif
  2466. ext4_set_bits(bitmap_bh->b_data, ac->ac_b_ex.fe_start,
  2467. ac->ac_b_ex.fe_len);
  2468. if (gdp->bg_flags & cpu_to_le16(EXT4_BG_BLOCK_UNINIT)) {
  2469. gdp->bg_flags &= cpu_to_le16(~EXT4_BG_BLOCK_UNINIT);
  2470. ext4_free_group_clusters_set(sb, gdp,
  2471. ext4_free_clusters_after_init(sb,
  2472. ac->ac_b_ex.fe_group, gdp));
  2473. }
  2474. len = ext4_free_group_clusters(sb, gdp) - ac->ac_b_ex.fe_len;
  2475. ext4_free_group_clusters_set(sb, gdp, len);
  2476. ext4_block_bitmap_csum_set(sb, ac->ac_b_ex.fe_group, gdp, bitmap_bh,
  2477. EXT4_BLOCKS_PER_GROUP(sb) / 8);
  2478. ext4_group_desc_csum_set(sb, ac->ac_b_ex.fe_group, gdp);
  2479. ext4_unlock_group(sb, ac->ac_b_ex.fe_group);
  2480. percpu_counter_sub(&sbi->s_freeclusters_counter, ac->ac_b_ex.fe_len);
  2481. /*
  2482. * Now reduce the dirty block count also. Should not go negative
  2483. */
  2484. if (!(ac->ac_flags & EXT4_MB_DELALLOC_RESERVED))
  2485. /* release all the reserved blocks if non delalloc */
  2486. percpu_counter_sub(&sbi->s_dirtyclusters_counter,
  2487. reserv_clstrs);
  2488. if (sbi->s_log_groups_per_flex) {
  2489. ext4_group_t flex_group = ext4_flex_group(sbi,
  2490. ac->ac_b_ex.fe_group);
  2491. atomic_sub(ac->ac_b_ex.fe_len,
  2492. &sbi->s_flex_groups[flex_group].free_clusters);
  2493. }
  2494. err = ext4_handle_dirty_metadata(handle, NULL, bitmap_bh);
  2495. if (err)
  2496. goto out_err;
  2497. err = ext4_handle_dirty_metadata(handle, NULL, gdp_bh);
  2498. out_err:
  2499. brelse(bitmap_bh);
  2500. return err;
  2501. }
  2502. /*
  2503. * here we normalize request for locality group
  2504. * Group request are normalized to s_mb_group_prealloc, which goes to
  2505. * s_strip if we set the same via mount option.
  2506. * s_mb_group_prealloc can be configured via
  2507. * /sys/fs/ext4/<partition>/mb_group_prealloc
  2508. *
  2509. * XXX: should we try to preallocate more than the group has now?
  2510. */
  2511. static void ext4_mb_normalize_group_request(struct ext4_allocation_context *ac)
  2512. {
  2513. struct super_block *sb = ac->ac_sb;
  2514. struct ext4_locality_group *lg = ac->ac_lg;
  2515. BUG_ON(lg == NULL);
  2516. ac->ac_g_ex.fe_len = EXT4_SB(sb)->s_mb_group_prealloc;
  2517. mb_debug(1, "#%u: goal %u blocks for locality group\n",
  2518. current->pid, ac->ac_g_ex.fe_len);
  2519. }
  2520. /*
  2521. * Normalization means making request better in terms of
  2522. * size and alignment
  2523. */
  2524. static noinline_for_stack void
  2525. ext4_mb_normalize_request(struct ext4_allocation_context *ac,
  2526. struct ext4_allocation_request *ar)
  2527. {
  2528. struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
  2529. int bsbits, max;
  2530. ext4_lblk_t end;
  2531. loff_t size, start_off;
  2532. loff_t orig_size __maybe_unused;
  2533. ext4_lblk_t start;
  2534. struct ext4_inode_info *ei = EXT4_I(ac->ac_inode);
  2535. struct ext4_prealloc_space *pa;
  2536. /* do normalize only data requests, metadata requests
  2537. do not need preallocation */
  2538. if (!(ac->ac_flags & EXT4_MB_HINT_DATA))
  2539. return;
  2540. /* sometime caller may want exact blocks */
  2541. if (unlikely(ac->ac_flags & EXT4_MB_HINT_GOAL_ONLY))
  2542. return;
  2543. /* caller may indicate that preallocation isn't
  2544. * required (it's a tail, for example) */
  2545. if (ac->ac_flags & EXT4_MB_HINT_NOPREALLOC)
  2546. return;
  2547. if (ac->ac_flags & EXT4_MB_HINT_GROUP_ALLOC) {
  2548. ext4_mb_normalize_group_request(ac);
  2549. return ;
  2550. }
  2551. bsbits = ac->ac_sb->s_blocksize_bits;
  2552. /* first, let's learn actual file size
  2553. * given current request is allocated */
  2554. size = ac->ac_o_ex.fe_logical + EXT4_C2B(sbi, ac->ac_o_ex.fe_len);
  2555. size = size << bsbits;
  2556. if (size < i_size_read(ac->ac_inode))
  2557. size = i_size_read(ac->ac_inode);
  2558. orig_size = size;
  2559. /* max size of free chunks */
  2560. max = 2 << bsbits;
  2561. #define NRL_CHECK_SIZE(req, size, max, chunk_size) \
  2562. (req <= (size) || max <= (chunk_size))
  2563. /* first, try to predict filesize */
  2564. /* XXX: should this table be tunable? */
  2565. start_off = 0;
  2566. if (size <= 16 * 1024) {
  2567. size = 16 * 1024;
  2568. } else if (size <= 32 * 1024) {
  2569. size = 32 * 1024;
  2570. } else if (size <= 64 * 1024) {
  2571. size = 64 * 1024;
  2572. } else if (size <= 128 * 1024) {
  2573. size = 128 * 1024;
  2574. } else if (size <= 256 * 1024) {
  2575. size = 256 * 1024;
  2576. } else if (size <= 512 * 1024) {
  2577. size = 512 * 1024;
  2578. } else if (size <= 1024 * 1024) {
  2579. size = 1024 * 1024;
  2580. } else if (NRL_CHECK_SIZE(size, 4 * 1024 * 1024, max, 2 * 1024)) {
  2581. start_off = ((loff_t)ac->ac_o_ex.fe_logical >>
  2582. (21 - bsbits)) << 21;
  2583. size = 2 * 1024 * 1024;
  2584. } else if (NRL_CHECK_SIZE(size, 8 * 1024 * 1024, max, 4 * 1024)) {
  2585. start_off = ((loff_t)ac->ac_o_ex.fe_logical >>
  2586. (22 - bsbits)) << 22;
  2587. size = 4 * 1024 * 1024;
  2588. } else if (NRL_CHECK_SIZE(ac->ac_o_ex.fe_len,
  2589. (8<<20)>>bsbits, max, 8 * 1024)) {
  2590. start_off = ((loff_t)ac->ac_o_ex.fe_logical >>
  2591. (23 - bsbits)) << 23;
  2592. size = 8 * 1024 * 1024;
  2593. } else {
  2594. start_off = (loff_t)ac->ac_o_ex.fe_logical << bsbits;
  2595. size = ac->ac_o_ex.fe_len << bsbits;
  2596. }
  2597. size = size >> bsbits;
  2598. start = start_off >> bsbits;
  2599. /* don't cover already allocated blocks in selected range */
  2600. if (ar->pleft && start <= ar->lleft) {
  2601. size -= ar->lleft + 1 - start;
  2602. start = ar->lleft + 1;
  2603. }
  2604. if (ar->pright && start + size - 1 >= ar->lright)
  2605. size -= start + size - ar->lright;
  2606. end = start + size;
  2607. /* check we don't cross already preallocated blocks */
  2608. rcu_read_lock();
  2609. list_for_each_entry_rcu(pa, &ei->i_prealloc_list, pa_inode_list) {
  2610. ext4_lblk_t pa_end;
  2611. if (pa->pa_deleted)
  2612. continue;
  2613. spin_lock(&pa->pa_lock);
  2614. if (pa->pa_deleted) {
  2615. spin_unlock(&pa->pa_lock);
  2616. continue;
  2617. }
  2618. pa_end = pa->pa_lstart + EXT4_C2B(EXT4_SB(ac->ac_sb),
  2619. pa->pa_len);
  2620. /* PA must not overlap original request */
  2621. BUG_ON(!(ac->ac_o_ex.fe_logical >= pa_end ||
  2622. ac->ac_o_ex.fe_logical < pa->pa_lstart));
  2623. /* skip PAs this normalized request doesn't overlap with */
  2624. if (pa->pa_lstart >= end || pa_end <= start) {
  2625. spin_unlock(&pa->pa_lock);
  2626. continue;
  2627. }
  2628. BUG_ON(pa->pa_lstart <= start && pa_end >= end);
  2629. /* adjust start or end to be adjacent to this pa */
  2630. if (pa_end <= ac->ac_o_ex.fe_logical) {
  2631. BUG_ON(pa_end < start);
  2632. start = pa_end;
  2633. } else if (pa->pa_lstart > ac->ac_o_ex.fe_logical) {
  2634. BUG_ON(pa->pa_lstart > end);
  2635. end = pa->pa_lstart;
  2636. }
  2637. spin_unlock(&pa->pa_lock);
  2638. }
  2639. rcu_read_unlock();
  2640. size = end - start;
  2641. /* XXX: extra loop to check we really don't overlap preallocations */
  2642. rcu_read_lock();
  2643. list_for_each_entry_rcu(pa, &ei->i_prealloc_list, pa_inode_list) {
  2644. ext4_lblk_t pa_end;
  2645. spin_lock(&pa->pa_lock);
  2646. if (pa->pa_deleted == 0) {
  2647. pa_end = pa->pa_lstart + EXT4_C2B(EXT4_SB(ac->ac_sb),
  2648. pa->pa_len);
  2649. BUG_ON(!(start >= pa_end || end <= pa->pa_lstart));
  2650. }
  2651. spin_unlock(&pa->pa_lock);
  2652. }
  2653. rcu_read_unlock();
  2654. if (start + size <= ac->ac_o_ex.fe_logical &&
  2655. start > ac->ac_o_ex.fe_logical) {
  2656. ext4_msg(ac->ac_sb, KERN_ERR,
  2657. "start %lu, size %lu, fe_logical %lu",
  2658. (unsigned long) start, (unsigned long) size,
  2659. (unsigned long) ac->ac_o_ex.fe_logical);
  2660. }
  2661. BUG_ON(start + size <= ac->ac_o_ex.fe_logical &&
  2662. start > ac->ac_o_ex.fe_logical);
  2663. BUG_ON(size <= 0 || size > EXT4_CLUSTERS_PER_GROUP(ac->ac_sb));
  2664. /* now prepare goal request */
  2665. /* XXX: is it better to align blocks WRT to logical
  2666. * placement or satisfy big request as is */
  2667. ac->ac_g_ex.fe_logical = start;
  2668. ac->ac_g_ex.fe_len = EXT4_NUM_B2C(sbi, size);
  2669. /* define goal start in order to merge */
  2670. if (ar->pright && (ar->lright == (start + size))) {
  2671. /* merge to the right */
  2672. ext4_get_group_no_and_offset(ac->ac_sb, ar->pright - size,
  2673. &ac->ac_f_ex.fe_group,
  2674. &ac->ac_f_ex.fe_start);
  2675. ac->ac_flags |= EXT4_MB_HINT_TRY_GOAL;
  2676. }
  2677. if (ar->pleft && (ar->lleft + 1 == start)) {
  2678. /* merge to the left */
  2679. ext4_get_group_no_and_offset(ac->ac_sb, ar->pleft + 1,
  2680. &ac->ac_f_ex.fe_group,
  2681. &ac->ac_f_ex.fe_start);
  2682. ac->ac_flags |= EXT4_MB_HINT_TRY_GOAL;
  2683. }
  2684. mb_debug(1, "goal: %u(was %u) blocks at %u\n", (unsigned) size,
  2685. (unsigned) orig_size, (unsigned) start);
  2686. }
  2687. static void ext4_mb_collect_stats(struct ext4_allocation_context *ac)
  2688. {
  2689. struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
  2690. if (sbi->s_mb_stats && ac->ac_g_ex.fe_len > 1) {
  2691. atomic_inc(&sbi->s_bal_reqs);
  2692. atomic_add(ac->ac_b_ex.fe_len, &sbi->s_bal_allocated);
  2693. if (ac->ac_b_ex.fe_len >= ac->ac_o_ex.fe_len)
  2694. atomic_inc(&sbi->s_bal_success);
  2695. atomic_add(ac->ac_found, &sbi->s_bal_ex_scanned);
  2696. if (ac->ac_g_ex.fe_start == ac->ac_b_ex.fe_start &&
  2697. ac->ac_g_ex.fe_group == ac->ac_b_ex.fe_group)
  2698. atomic_inc(&sbi->s_bal_goals);
  2699. if (ac->ac_found > sbi->s_mb_max_to_scan)
  2700. atomic_inc(&sbi->s_bal_breaks);
  2701. }
  2702. if (ac->ac_op == EXT4_MB_HISTORY_ALLOC)
  2703. trace_ext4_mballoc_alloc(ac);
  2704. else
  2705. trace_ext4_mballoc_prealloc(ac);
  2706. }
  2707. /*
  2708. * Called on failure; free up any blocks from the inode PA for this
  2709. * context. We don't need this for MB_GROUP_PA because we only change
  2710. * pa_free in ext4_mb_release_context(), but on failure, we've already
  2711. * zeroed out ac->ac_b_ex.fe_len, so group_pa->pa_free is not changed.
  2712. */
  2713. static void ext4_discard_allocated_blocks(struct ext4_allocation_context *ac)
  2714. {
  2715. struct ext4_prealloc_space *pa = ac->ac_pa;
  2716. if (pa && pa->pa_type == MB_INODE_PA)
  2717. pa->pa_free += ac->ac_b_ex.fe_len;
  2718. }
  2719. /*
  2720. * use blocks preallocated to inode
  2721. */
  2722. static void ext4_mb_use_inode_pa(struct ext4_allocation_context *ac,
  2723. struct ext4_prealloc_space *pa)
  2724. {
  2725. struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
  2726. ext4_fsblk_t start;
  2727. ext4_fsblk_t end;
  2728. int len;
  2729. /* found preallocated blocks, use them */
  2730. start = pa->pa_pstart + (ac->ac_o_ex.fe_logical - pa->pa_lstart);
  2731. end = min(pa->pa_pstart + EXT4_C2B(sbi, pa->pa_len),
  2732. start + EXT4_C2B(sbi, ac->ac_o_ex.fe_len));
  2733. len = EXT4_NUM_B2C(sbi, end - start);
  2734. ext4_get_group_no_and_offset(ac->ac_sb, start, &ac->ac_b_ex.fe_group,
  2735. &ac->ac_b_ex.fe_start);
  2736. ac->ac_b_ex.fe_len = len;
  2737. ac->ac_status = AC_STATUS_FOUND;
  2738. ac->ac_pa = pa;
  2739. BUG_ON(start < pa->pa_pstart);
  2740. BUG_ON(end > pa->pa_pstart + EXT4_C2B(sbi, pa->pa_len));
  2741. BUG_ON(pa->pa_free < len);
  2742. pa->pa_free -= len;
  2743. mb_debug(1, "use %llu/%u from inode pa %p\n", start, len, pa);
  2744. }
  2745. /*
  2746. * use blocks preallocated to locality group
  2747. */
  2748. static void ext4_mb_use_group_pa(struct ext4_allocation_context *ac,
  2749. struct ext4_prealloc_space *pa)
  2750. {
  2751. unsigned int len = ac->ac_o_ex.fe_len;
  2752. ext4_get_group_no_and_offset(ac->ac_sb, pa->pa_pstart,
  2753. &ac->ac_b_ex.fe_group,
  2754. &ac->ac_b_ex.fe_start);
  2755. ac->ac_b_ex.fe_len = len;
  2756. ac->ac_status = AC_STATUS_FOUND;
  2757. ac->ac_pa = pa;
  2758. /* we don't correct pa_pstart or pa_plen here to avoid
  2759. * possible race when the group is being loaded concurrently
  2760. * instead we correct pa later, after blocks are marked
  2761. * in on-disk bitmap -- see ext4_mb_release_context()
  2762. * Other CPUs are prevented from allocating from this pa by lg_mutex
  2763. */
  2764. mb_debug(1, "use %u/%u from group pa %p\n", pa->pa_lstart-len, len, pa);
  2765. }
  2766. /*
  2767. * Return the prealloc space that have minimal distance
  2768. * from the goal block. @cpa is the prealloc
  2769. * space that is having currently known minimal distance
  2770. * from the goal block.
  2771. */
  2772. static struct ext4_prealloc_space *
  2773. ext4_mb_check_group_pa(ext4_fsblk_t goal_block,
  2774. struct ext4_prealloc_space *pa,
  2775. struct ext4_prealloc_space *cpa)
  2776. {
  2777. ext4_fsblk_t cur_distance, new_distance;
  2778. if (cpa == NULL) {
  2779. atomic_inc(&pa->pa_count);
  2780. return pa;
  2781. }
  2782. cur_distance = abs(goal_block - cpa->pa_pstart);
  2783. new_distance = abs(goal_block - pa->pa_pstart);
  2784. if (cur_distance <= new_distance)
  2785. return cpa;
  2786. /* drop the previous reference */
  2787. atomic_dec(&cpa->pa_count);
  2788. atomic_inc(&pa->pa_count);
  2789. return pa;
  2790. }
  2791. /*
  2792. * search goal blocks in preallocated space
  2793. */
  2794. static noinline_for_stack int
  2795. ext4_mb_use_preallocated(struct ext4_allocation_context *ac)
  2796. {
  2797. struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
  2798. int order, i;
  2799. struct ext4_inode_info *ei = EXT4_I(ac->ac_inode);
  2800. struct ext4_locality_group *lg;
  2801. struct ext4_prealloc_space *pa, *cpa = NULL;
  2802. ext4_fsblk_t goal_block;
  2803. /* only data can be preallocated */
  2804. if (!(ac->ac_flags & EXT4_MB_HINT_DATA))
  2805. return 0;
  2806. /* first, try per-file preallocation */
  2807. rcu_read_lock();
  2808. list_for_each_entry_rcu(pa, &ei->i_prealloc_list, pa_inode_list) {
  2809. /* all fields in this condition don't change,
  2810. * so we can skip locking for them */
  2811. if (ac->ac_o_ex.fe_logical < pa->pa_lstart ||
  2812. ac->ac_o_ex.fe_logical >= (pa->pa_lstart +
  2813. EXT4_C2B(sbi, pa->pa_len)))
  2814. continue;
  2815. /* non-extent files can't have physical blocks past 2^32 */
  2816. if (!(ext4_test_inode_flag(ac->ac_inode, EXT4_INODE_EXTENTS)) &&
  2817. (pa->pa_pstart + EXT4_C2B(sbi, pa->pa_len) >
  2818. EXT4_MAX_BLOCK_FILE_PHYS))
  2819. continue;
  2820. /* found preallocated blocks, use them */
  2821. spin_lock(&pa->pa_lock);
  2822. if (pa->pa_deleted == 0 && pa->pa_free) {
  2823. atomic_inc(&pa->pa_count);
  2824. ext4_mb_use_inode_pa(ac, pa);
  2825. spin_unlock(&pa->pa_lock);
  2826. ac->ac_criteria = 10;
  2827. rcu_read_unlock();
  2828. return 1;
  2829. }
  2830. spin_unlock(&pa->pa_lock);
  2831. }
  2832. rcu_read_unlock();
  2833. /* can we use group allocation? */
  2834. if (!(ac->ac_flags & EXT4_MB_HINT_GROUP_ALLOC))
  2835. return 0;
  2836. /* inode may have no locality group for some reason */
  2837. lg = ac->ac_lg;
  2838. if (lg == NULL)
  2839. return 0;
  2840. order = fls(ac->ac_o_ex.fe_len) - 1;
  2841. if (order > PREALLOC_TB_SIZE - 1)
  2842. /* The max size of hash table is PREALLOC_TB_SIZE */
  2843. order = PREALLOC_TB_SIZE - 1;
  2844. goal_block = ext4_grp_offs_to_block(ac->ac_sb, &ac->ac_g_ex);
  2845. /*
  2846. * search for the prealloc space that is having
  2847. * minimal distance from the goal block.
  2848. */
  2849. for (i = order; i < PREALLOC_TB_SIZE; i++) {
  2850. rcu_read_lock();
  2851. list_for_each_entry_rcu(pa, &lg->lg_prealloc_list[i],
  2852. pa_inode_list) {
  2853. spin_lock(&pa->pa_lock);
  2854. if (pa->pa_deleted == 0 &&
  2855. pa->pa_free >= ac->ac_o_ex.fe_len) {
  2856. cpa = ext4_mb_check_group_pa(goal_block,
  2857. pa, cpa);
  2858. }
  2859. spin_unlock(&pa->pa_lock);
  2860. }
  2861. rcu_read_unlock();
  2862. }
  2863. if (cpa) {
  2864. ext4_mb_use_group_pa(ac, cpa);
  2865. ac->ac_criteria = 20;
  2866. return 1;
  2867. }
  2868. return 0;
  2869. }
  2870. /*
  2871. * the function goes through all block freed in the group
  2872. * but not yet committed and marks them used in in-core bitmap.
  2873. * buddy must be generated from this bitmap
  2874. * Need to be called with the ext4 group lock held
  2875. */
  2876. static void ext4_mb_generate_from_freelist(struct super_block *sb, void *bitmap,
  2877. ext4_group_t group)
  2878. {
  2879. struct rb_node *n;
  2880. struct ext4_group_info *grp;
  2881. struct ext4_free_data *entry;
  2882. grp = ext4_get_group_info(sb, group);
  2883. n = rb_first(&(grp->bb_free_root));
  2884. while (n) {
  2885. entry = rb_entry(n, struct ext4_free_data, efd_node);
  2886. ext4_set_bits(bitmap, entry->efd_start_cluster, entry->efd_count);
  2887. n = rb_next(n);
  2888. }
  2889. return;
  2890. }
  2891. /*
  2892. * the function goes through all preallocation in this group and marks them
  2893. * used in in-core bitmap. buddy must be generated from this bitmap
  2894. * Need to be called with ext4 group lock held
  2895. */
  2896. static noinline_for_stack
  2897. void ext4_mb_generate_from_pa(struct super_block *sb, void *bitmap,
  2898. ext4_group_t group)
  2899. {
  2900. struct ext4_group_info *grp = ext4_get_group_info(sb, group);
  2901. struct ext4_prealloc_space *pa;
  2902. struct list_head *cur;
  2903. ext4_group_t groupnr;
  2904. ext4_grpblk_t start;
  2905. int preallocated = 0;
  2906. int len;
  2907. /* all form of preallocation discards first load group,
  2908. * so the only competing code is preallocation use.
  2909. * we don't need any locking here
  2910. * notice we do NOT ignore preallocations with pa_deleted
  2911. * otherwise we could leave used blocks available for
  2912. * allocation in buddy when concurrent ext4_mb_put_pa()
  2913. * is dropping preallocation
  2914. */
  2915. list_for_each(cur, &grp->bb_prealloc_list) {
  2916. pa = list_entry(cur, struct ext4_prealloc_space, pa_group_list);
  2917. spin_lock(&pa->pa_lock);
  2918. ext4_get_group_no_and_offset(sb, pa->pa_pstart,
  2919. &groupnr, &start);
  2920. len = pa->pa_len;
  2921. spin_unlock(&pa->pa_lock);
  2922. if (unlikely(len == 0))
  2923. continue;
  2924. BUG_ON(groupnr != group);
  2925. ext4_set_bits(bitmap, start, len);
  2926. preallocated += len;
  2927. }
  2928. mb_debug(1, "prellocated %u for group %u\n", preallocated, group);
  2929. }
  2930. static void ext4_mb_pa_callback(struct rcu_head *head)
  2931. {
  2932. struct ext4_prealloc_space *pa;
  2933. pa = container_of(head, struct ext4_prealloc_space, u.pa_rcu);
  2934. kmem_cache_free(ext4_pspace_cachep, pa);
  2935. }
  2936. /*
  2937. * drops a reference to preallocated space descriptor
  2938. * if this was the last reference and the space is consumed
  2939. */
  2940. static void ext4_mb_put_pa(struct ext4_allocation_context *ac,
  2941. struct super_block *sb, struct ext4_prealloc_space *pa)
  2942. {
  2943. ext4_group_t grp;
  2944. ext4_fsblk_t grp_blk;
  2945. if (!atomic_dec_and_test(&pa->pa_count) || pa->pa_free != 0)
  2946. return;
  2947. /* in this short window concurrent discard can set pa_deleted */
  2948. spin_lock(&pa->pa_lock);
  2949. if (pa->pa_deleted == 1) {
  2950. spin_unlock(&pa->pa_lock);
  2951. return;
  2952. }
  2953. pa->pa_deleted = 1;
  2954. spin_unlock(&pa->pa_lock);
  2955. grp_blk = pa->pa_pstart;
  2956. /*
  2957. * If doing group-based preallocation, pa_pstart may be in the
  2958. * next group when pa is used up
  2959. */
  2960. if (pa->pa_type == MB_GROUP_PA)
  2961. grp_blk--;
  2962. ext4_get_group_no_and_offset(sb, grp_blk, &grp, NULL);
  2963. /*
  2964. * possible race:
  2965. *
  2966. * P1 (buddy init) P2 (regular allocation)
  2967. * find block B in PA
  2968. * copy on-disk bitmap to buddy
  2969. * mark B in on-disk bitmap
  2970. * drop PA from group
  2971. * mark all PAs in buddy
  2972. *
  2973. * thus, P1 initializes buddy with B available. to prevent this
  2974. * we make "copy" and "mark all PAs" atomic and serialize "drop PA"
  2975. * against that pair
  2976. */
  2977. ext4_lock_group(sb, grp);
  2978. list_del(&pa->pa_group_list);
  2979. ext4_unlock_group(sb, grp);
  2980. spin_lock(pa->pa_obj_lock);
  2981. list_del_rcu(&pa->pa_inode_list);
  2982. spin_unlock(pa->pa_obj_lock);
  2983. call_rcu(&(pa)->u.pa_rcu, ext4_mb_pa_callback);
  2984. }
  2985. /*
  2986. * creates new preallocated space for given inode
  2987. */
  2988. static noinline_for_stack int
  2989. ext4_mb_new_inode_pa(struct ext4_allocation_context *ac)
  2990. {
  2991. struct super_block *sb = ac->ac_sb;
  2992. struct ext4_sb_info *sbi = EXT4_SB(sb);
  2993. struct ext4_prealloc_space *pa;
  2994. struct ext4_group_info *grp;
  2995. struct ext4_inode_info *ei;
  2996. /* preallocate only when found space is larger then requested */
  2997. BUG_ON(ac->ac_o_ex.fe_len >= ac->ac_b_ex.fe_len);
  2998. BUG_ON(ac->ac_status != AC_STATUS_FOUND);
  2999. BUG_ON(!S_ISREG(ac->ac_inode->i_mode));
  3000. pa = kmem_cache_alloc(ext4_pspace_cachep, GFP_NOFS);
  3001. if (pa == NULL)
  3002. return -ENOMEM;
  3003. if (ac->ac_b_ex.fe_len < ac->ac_g_ex.fe_len) {
  3004. int winl;
  3005. int wins;
  3006. int win;
  3007. int offs;
  3008. /* we can't allocate as much as normalizer wants.
  3009. * so, found space must get proper lstart
  3010. * to cover original request */
  3011. BUG_ON(ac->ac_g_ex.fe_logical > ac->ac_o_ex.fe_logical);
  3012. BUG_ON(ac->ac_g_ex.fe_len < ac->ac_o_ex.fe_len);
  3013. /* we're limited by original request in that
  3014. * logical block must be covered any way
  3015. * winl is window we can move our chunk within */
  3016. winl = ac->ac_o_ex.fe_logical - ac->ac_g_ex.fe_logical;
  3017. /* also, we should cover whole original request */
  3018. wins = EXT4_C2B(sbi, ac->ac_b_ex.fe_len - ac->ac_o_ex.fe_len);
  3019. /* the smallest one defines real window */
  3020. win = min(winl, wins);
  3021. offs = ac->ac_o_ex.fe_logical %
  3022. EXT4_C2B(sbi, ac->ac_b_ex.fe_len);
  3023. if (offs && offs < win)
  3024. win = offs;
  3025. ac->ac_b_ex.fe_logical = ac->ac_o_ex.fe_logical -
  3026. EXT4_B2C(sbi, win);
  3027. BUG_ON(ac->ac_o_ex.fe_logical < ac->ac_b_ex.fe_logical);
  3028. BUG_ON(ac->ac_o_ex.fe_len > ac->ac_b_ex.fe_len);
  3029. }
  3030. /* preallocation can change ac_b_ex, thus we store actually
  3031. * allocated blocks for history */
  3032. ac->ac_f_ex = ac->ac_b_ex;
  3033. pa->pa_lstart = ac->ac_b_ex.fe_logical;
  3034. pa->pa_pstart = ext4_grp_offs_to_block(sb, &ac->ac_b_ex);
  3035. pa->pa_len = ac->ac_b_ex.fe_len;
  3036. pa->pa_free = pa->pa_len;
  3037. atomic_set(&pa->pa_count, 1);
  3038. spin_lock_init(&pa->pa_lock);
  3039. INIT_LIST_HEAD(&pa->pa_inode_list);
  3040. INIT_LIST_HEAD(&pa->pa_group_list);
  3041. pa->pa_deleted = 0;
  3042. pa->pa_type = MB_INODE_PA;
  3043. mb_debug(1, "new inode pa %p: %llu/%u for %u\n", pa,
  3044. pa->pa_pstart, pa->pa_len, pa->pa_lstart);
  3045. trace_ext4_mb_new_inode_pa(ac, pa);
  3046. ext4_mb_use_inode_pa(ac, pa);
  3047. atomic_add(pa->pa_free, &sbi->s_mb_preallocated);
  3048. ei = EXT4_I(ac->ac_inode);
  3049. grp = ext4_get_group_info(sb, ac->ac_b_ex.fe_group);
  3050. pa->pa_obj_lock = &ei->i_prealloc_lock;
  3051. pa->pa_inode = ac->ac_inode;
  3052. ext4_lock_group(sb, ac->ac_b_ex.fe_group);
  3053. list_add(&pa->pa_group_list, &grp->bb_prealloc_list);
  3054. ext4_unlock_group(sb, ac->ac_b_ex.fe_group);
  3055. spin_lock(pa->pa_obj_lock);
  3056. list_add_rcu(&pa->pa_inode_list, &ei->i_prealloc_list);
  3057. spin_unlock(pa->pa_obj_lock);
  3058. return 0;
  3059. }
  3060. /*
  3061. * creates new preallocated space for locality group inodes belongs to
  3062. */
  3063. static noinline_for_stack int
  3064. ext4_mb_new_group_pa(struct ext4_allocation_context *ac)
  3065. {
  3066. struct super_block *sb = ac->ac_sb;
  3067. struct ext4_locality_group *lg;
  3068. struct ext4_prealloc_space *pa;
  3069. struct ext4_group_info *grp;
  3070. /* preallocate only when found space is larger then requested */
  3071. BUG_ON(ac->ac_o_ex.fe_len >= ac->ac_b_ex.fe_len);
  3072. BUG_ON(ac->ac_status != AC_STATUS_FOUND);
  3073. BUG_ON(!S_ISREG(ac->ac_inode->i_mode));
  3074. BUG_ON(ext4_pspace_cachep == NULL);
  3075. pa = kmem_cache_alloc(ext4_pspace_cachep, GFP_NOFS);
  3076. if (pa == NULL)
  3077. return -ENOMEM;
  3078. /* preallocation can change ac_b_ex, thus we store actually
  3079. * allocated blocks for history */
  3080. ac->ac_f_ex = ac->ac_b_ex;
  3081. pa->pa_pstart = ext4_grp_offs_to_block(sb, &ac->ac_b_ex);
  3082. pa->pa_lstart = pa->pa_pstart;
  3083. pa->pa_len = ac->ac_b_ex.fe_len;
  3084. pa->pa_free = pa->pa_len;
  3085. atomic_set(&pa->pa_count, 1);
  3086. spin_lock_init(&pa->pa_lock);
  3087. INIT_LIST_HEAD(&pa->pa_inode_list);
  3088. INIT_LIST_HEAD(&pa->pa_group_list);
  3089. pa->pa_deleted = 0;
  3090. pa->pa_type = MB_GROUP_PA;
  3091. mb_debug(1, "new group pa %p: %llu/%u for %u\n", pa,
  3092. pa->pa_pstart, pa->pa_len, pa->pa_lstart);
  3093. trace_ext4_mb_new_group_pa(ac, pa);
  3094. ext4_mb_use_group_pa(ac, pa);
  3095. atomic_add(pa->pa_free, &EXT4_SB(sb)->s_mb_preallocated);
  3096. grp = ext4_get_group_info(sb, ac->ac_b_ex.fe_group);
  3097. lg = ac->ac_lg;
  3098. BUG_ON(lg == NULL);
  3099. pa->pa_obj_lock = &lg->lg_prealloc_lock;
  3100. pa->pa_inode = NULL;
  3101. ext4_lock_group(sb, ac->ac_b_ex.fe_group);
  3102. list_add(&pa->pa_group_list, &grp->bb_prealloc_list);
  3103. ext4_unlock_group(sb, ac->ac_b_ex.fe_group);
  3104. /*
  3105. * We will later add the new pa to the right bucket
  3106. * after updating the pa_free in ext4_mb_release_context
  3107. */
  3108. return 0;
  3109. }
  3110. static int ext4_mb_new_preallocation(struct ext4_allocation_context *ac)
  3111. {
  3112. int err;
  3113. if (ac->ac_flags & EXT4_MB_HINT_GROUP_ALLOC)
  3114. err = ext4_mb_new_group_pa(ac);
  3115. else
  3116. err = ext4_mb_new_inode_pa(ac);
  3117. return err;
  3118. }
  3119. /*
  3120. * finds all unused blocks in on-disk bitmap, frees them in
  3121. * in-core bitmap and buddy.
  3122. * @pa must be unlinked from inode and group lists, so that
  3123. * nobody else can find/use it.
  3124. * the caller MUST hold group/inode locks.
  3125. * TODO: optimize the case when there are no in-core structures yet
  3126. */
  3127. static noinline_for_stack int
  3128. ext4_mb_release_inode_pa(struct ext4_buddy *e4b, struct buffer_head *bitmap_bh,
  3129. struct ext4_prealloc_space *pa)
  3130. {
  3131. struct super_block *sb = e4b->bd_sb;
  3132. struct ext4_sb_info *sbi = EXT4_SB(sb);
  3133. unsigned int end;
  3134. unsigned int next;
  3135. ext4_group_t group;
  3136. ext4_grpblk_t bit;
  3137. unsigned long long grp_blk_start;
  3138. int err = 0;
  3139. int free = 0;
  3140. BUG_ON(pa->pa_deleted == 0);
  3141. ext4_get_group_no_and_offset(sb, pa->pa_pstart, &group, &bit);
  3142. grp_blk_start = pa->pa_pstart - EXT4_C2B(sbi, bit);
  3143. BUG_ON(group != e4b->bd_group && pa->pa_len != 0);
  3144. end = bit + pa->pa_len;
  3145. while (bit < end) {
  3146. bit = mb_find_next_zero_bit(bitmap_bh->b_data, end, bit);
  3147. if (bit >= end)
  3148. break;
  3149. next = mb_find_next_bit(bitmap_bh->b_data, end, bit);
  3150. mb_debug(1, " free preallocated %u/%u in group %u\n",
  3151. (unsigned) ext4_group_first_block_no(sb, group) + bit,
  3152. (unsigned) next - bit, (unsigned) group);
  3153. free += next - bit;
  3154. trace_ext4_mballoc_discard(sb, NULL, group, bit, next - bit);
  3155. trace_ext4_mb_release_inode_pa(pa, (grp_blk_start +
  3156. EXT4_C2B(sbi, bit)),
  3157. next - bit);
  3158. mb_free_blocks(pa->pa_inode, e4b, bit, next - bit);
  3159. bit = next + 1;
  3160. }
  3161. if (free != pa->pa_free) {
  3162. ext4_msg(e4b->bd_sb, KERN_CRIT,
  3163. "pa %p: logic %lu, phys. %lu, len %lu",
  3164. pa, (unsigned long) pa->pa_lstart,
  3165. (unsigned long) pa->pa_pstart,
  3166. (unsigned long) pa->pa_len);
  3167. ext4_grp_locked_error(sb, group, 0, 0, "free %u, pa_free %u",
  3168. free, pa->pa_free);
  3169. /*
  3170. * pa is already deleted so we use the value obtained
  3171. * from the bitmap and continue.
  3172. */
  3173. }
  3174. atomic_add(free, &sbi->s_mb_discarded);
  3175. return err;
  3176. }
  3177. static noinline_for_stack int
  3178. ext4_mb_release_group_pa(struct ext4_buddy *e4b,
  3179. struct ext4_prealloc_space *pa)
  3180. {
  3181. struct super_block *sb = e4b->bd_sb;
  3182. ext4_group_t group;
  3183. ext4_grpblk_t bit;
  3184. trace_ext4_mb_release_group_pa(sb, pa);
  3185. BUG_ON(pa->pa_deleted == 0);
  3186. ext4_get_group_no_and_offset(sb, pa->pa_pstart, &group, &bit);
  3187. BUG_ON(group != e4b->bd_group && pa->pa_len != 0);
  3188. mb_free_blocks(pa->pa_inode, e4b, bit, pa->pa_len);
  3189. atomic_add(pa->pa_len, &EXT4_SB(sb)->s_mb_discarded);
  3190. trace_ext4_mballoc_discard(sb, NULL, group, bit, pa->pa_len);
  3191. return 0;
  3192. }
  3193. /*
  3194. * releases all preallocations in given group
  3195. *
  3196. * first, we need to decide discard policy:
  3197. * - when do we discard
  3198. * 1) ENOSPC
  3199. * - how many do we discard
  3200. * 1) how many requested
  3201. */
  3202. static noinline_for_stack int
  3203. ext4_mb_discard_group_preallocations(struct super_block *sb,
  3204. ext4_group_t group, int needed)
  3205. {
  3206. struct ext4_group_info *grp = ext4_get_group_info(sb, group);
  3207. struct buffer_head *bitmap_bh = NULL;
  3208. struct ext4_prealloc_space *pa, *tmp;
  3209. struct list_head list;
  3210. struct ext4_buddy e4b;
  3211. int err;
  3212. int busy = 0;
  3213. int free = 0;
  3214. mb_debug(1, "discard preallocation for group %u\n", group);
  3215. if (list_empty(&grp->bb_prealloc_list))
  3216. return 0;
  3217. bitmap_bh = ext4_read_block_bitmap(sb, group);
  3218. if (bitmap_bh == NULL) {
  3219. ext4_error(sb, "Error reading block bitmap for %u", group);
  3220. return 0;
  3221. }
  3222. err = ext4_mb_load_buddy(sb, group, &e4b);
  3223. if (err) {
  3224. ext4_error(sb, "Error loading buddy information for %u", group);
  3225. put_bh(bitmap_bh);
  3226. return 0;
  3227. }
  3228. if (needed == 0)
  3229. needed = EXT4_CLUSTERS_PER_GROUP(sb) + 1;
  3230. INIT_LIST_HEAD(&list);
  3231. repeat:
  3232. ext4_lock_group(sb, group);
  3233. list_for_each_entry_safe(pa, tmp,
  3234. &grp->bb_prealloc_list, pa_group_list) {
  3235. spin_lock(&pa->pa_lock);
  3236. if (atomic_read(&pa->pa_count)) {
  3237. spin_unlock(&pa->pa_lock);
  3238. busy = 1;
  3239. continue;
  3240. }
  3241. if (pa->pa_deleted) {
  3242. spin_unlock(&pa->pa_lock);
  3243. continue;
  3244. }
  3245. /* seems this one can be freed ... */
  3246. pa->pa_deleted = 1;
  3247. /* we can trust pa_free ... */
  3248. free += pa->pa_free;
  3249. spin_unlock(&pa->pa_lock);
  3250. list_del(&pa->pa_group_list);
  3251. list_add(&pa->u.pa_tmp_list, &list);
  3252. }
  3253. /* if we still need more blocks and some PAs were used, try again */
  3254. if (free < needed && busy) {
  3255. busy = 0;
  3256. ext4_unlock_group(sb, group);
  3257. /*
  3258. * Yield the CPU here so that we don't get soft lockup
  3259. * in non preempt case.
  3260. */
  3261. yield();
  3262. goto repeat;
  3263. }
  3264. /* found anything to free? */
  3265. if (list_empty(&list)) {
  3266. BUG_ON(free != 0);
  3267. goto out;
  3268. }
  3269. /* now free all selected PAs */
  3270. list_for_each_entry_safe(pa, tmp, &list, u.pa_tmp_list) {
  3271. /* remove from object (inode or locality group) */
  3272. spin_lock(pa->pa_obj_lock);
  3273. list_del_rcu(&pa->pa_inode_list);
  3274. spin_unlock(pa->pa_obj_lock);
  3275. if (pa->pa_type == MB_GROUP_PA)
  3276. ext4_mb_release_group_pa(&e4b, pa);
  3277. else
  3278. ext4_mb_release_inode_pa(&e4b, bitmap_bh, pa);
  3279. list_del(&pa->u.pa_tmp_list);
  3280. call_rcu(&(pa)->u.pa_rcu, ext4_mb_pa_callback);
  3281. }
  3282. out:
  3283. ext4_unlock_group(sb, group);
  3284. ext4_mb_unload_buddy(&e4b);
  3285. put_bh(bitmap_bh);
  3286. return free;
  3287. }
  3288. /*
  3289. * releases all non-used preallocated blocks for given inode
  3290. *
  3291. * It's important to discard preallocations under i_data_sem
  3292. * We don't want another block to be served from the prealloc
  3293. * space when we are discarding the inode prealloc space.
  3294. *
  3295. * FIXME!! Make sure it is valid at all the call sites
  3296. */
  3297. void ext4_discard_preallocations(struct inode *inode)
  3298. {
  3299. struct ext4_inode_info *ei = EXT4_I(inode);
  3300. struct super_block *sb = inode->i_sb;
  3301. struct buffer_head *bitmap_bh = NULL;
  3302. struct ext4_prealloc_space *pa, *tmp;
  3303. ext4_group_t group = 0;
  3304. struct list_head list;
  3305. struct ext4_buddy e4b;
  3306. int err;
  3307. if (!S_ISREG(inode->i_mode)) {
  3308. /*BUG_ON(!list_empty(&ei->i_prealloc_list));*/
  3309. return;
  3310. }
  3311. mb_debug(1, "discard preallocation for inode %lu\n", inode->i_ino);
  3312. trace_ext4_discard_preallocations(inode);
  3313. INIT_LIST_HEAD(&list);
  3314. repeat:
  3315. /* first, collect all pa's in the inode */
  3316. spin_lock(&ei->i_prealloc_lock);
  3317. while (!list_empty(&ei->i_prealloc_list)) {
  3318. pa = list_entry(ei->i_prealloc_list.next,
  3319. struct ext4_prealloc_space, pa_inode_list);
  3320. BUG_ON(pa->pa_obj_lock != &ei->i_prealloc_lock);
  3321. spin_lock(&pa->pa_lock);
  3322. if (atomic_read(&pa->pa_count)) {
  3323. /* this shouldn't happen often - nobody should
  3324. * use preallocation while we're discarding it */
  3325. spin_unlock(&pa->pa_lock);
  3326. spin_unlock(&ei->i_prealloc_lock);
  3327. ext4_msg(sb, KERN_ERR,
  3328. "uh-oh! used pa while discarding");
  3329. WARN_ON(1);
  3330. schedule_timeout_uninterruptible(HZ);
  3331. goto repeat;
  3332. }
  3333. if (pa->pa_deleted == 0) {
  3334. pa->pa_deleted = 1;
  3335. spin_unlock(&pa->pa_lock);
  3336. list_del_rcu(&pa->pa_inode_list);
  3337. list_add(&pa->u.pa_tmp_list, &list);
  3338. continue;
  3339. }
  3340. /* someone is deleting pa right now */
  3341. spin_unlock(&pa->pa_lock);
  3342. spin_unlock(&ei->i_prealloc_lock);
  3343. /* we have to wait here because pa_deleted
  3344. * doesn't mean pa is already unlinked from
  3345. * the list. as we might be called from
  3346. * ->clear_inode() the inode will get freed
  3347. * and concurrent thread which is unlinking
  3348. * pa from inode's list may access already
  3349. * freed memory, bad-bad-bad */
  3350. /* XXX: if this happens too often, we can
  3351. * add a flag to force wait only in case
  3352. * of ->clear_inode(), but not in case of
  3353. * regular truncate */
  3354. schedule_timeout_uninterruptible(HZ);
  3355. goto repeat;
  3356. }
  3357. spin_unlock(&ei->i_prealloc_lock);
  3358. list_for_each_entry_safe(pa, tmp, &list, u.pa_tmp_list) {
  3359. BUG_ON(pa->pa_type != MB_INODE_PA);
  3360. ext4_get_group_no_and_offset(sb, pa->pa_pstart, &group, NULL);
  3361. err = ext4_mb_load_buddy(sb, group, &e4b);
  3362. if (err) {
  3363. ext4_error(sb, "Error loading buddy information for %u",
  3364. group);
  3365. continue;
  3366. }
  3367. bitmap_bh = ext4_read_block_bitmap(sb, group);
  3368. if (bitmap_bh == NULL) {
  3369. ext4_error(sb, "Error reading block bitmap for %u",
  3370. group);
  3371. ext4_mb_unload_buddy(&e4b);
  3372. continue;
  3373. }
  3374. ext4_lock_group(sb, group);
  3375. list_del(&pa->pa_group_list);
  3376. ext4_mb_release_inode_pa(&e4b, bitmap_bh, pa);
  3377. ext4_unlock_group(sb, group);
  3378. ext4_mb_unload_buddy(&e4b);
  3379. put_bh(bitmap_bh);
  3380. list_del(&pa->u.pa_tmp_list);
  3381. call_rcu(&(pa)->u.pa_rcu, ext4_mb_pa_callback);
  3382. }
  3383. }
  3384. #ifdef CONFIG_EXT4_DEBUG
  3385. static void ext4_mb_show_ac(struct ext4_allocation_context *ac)
  3386. {
  3387. struct super_block *sb = ac->ac_sb;
  3388. ext4_group_t ngroups, i;
  3389. if (!mb_enable_debug ||
  3390. (EXT4_SB(sb)->s_mount_flags & EXT4_MF_FS_ABORTED))
  3391. return;
  3392. ext4_msg(ac->ac_sb, KERN_ERR, "Can't allocate:"
  3393. " Allocation context details:");
  3394. ext4_msg(ac->ac_sb, KERN_ERR, "status %d flags %d",
  3395. ac->ac_status, ac->ac_flags);
  3396. ext4_msg(ac->ac_sb, KERN_ERR, "orig %lu/%lu/%lu@%lu, "
  3397. "goal %lu/%lu/%lu@%lu, "
  3398. "best %lu/%lu/%lu@%lu cr %d",
  3399. (unsigned long)ac->ac_o_ex.fe_group,
  3400. (unsigned long)ac->ac_o_ex.fe_start,
  3401. (unsigned long)ac->ac_o_ex.fe_len,
  3402. (unsigned long)ac->ac_o_ex.fe_logical,
  3403. (unsigned long)ac->ac_g_ex.fe_group,
  3404. (unsigned long)ac->ac_g_ex.fe_start,
  3405. (unsigned long)ac->ac_g_ex.fe_len,
  3406. (unsigned long)ac->ac_g_ex.fe_logical,
  3407. (unsigned long)ac->ac_b_ex.fe_group,
  3408. (unsigned long)ac->ac_b_ex.fe_start,
  3409. (unsigned long)ac->ac_b_ex.fe_len,
  3410. (unsigned long)ac->ac_b_ex.fe_logical,
  3411. (int)ac->ac_criteria);
  3412. ext4_msg(ac->ac_sb, KERN_ERR, "%lu scanned, %d found",
  3413. ac->ac_ex_scanned, ac->ac_found);
  3414. ext4_msg(ac->ac_sb, KERN_ERR, "groups: ");
  3415. ngroups = ext4_get_groups_count(sb);
  3416. for (i = 0; i < ngroups; i++) {
  3417. struct ext4_group_info *grp = ext4_get_group_info(sb, i);
  3418. struct ext4_prealloc_space *pa;
  3419. ext4_grpblk_t start;
  3420. struct list_head *cur;
  3421. ext4_lock_group(sb, i);
  3422. list_for_each(cur, &grp->bb_prealloc_list) {
  3423. pa = list_entry(cur, struct ext4_prealloc_space,
  3424. pa_group_list);
  3425. spin_lock(&pa->pa_lock);
  3426. ext4_get_group_no_and_offset(sb, pa->pa_pstart,
  3427. NULL, &start);
  3428. spin_unlock(&pa->pa_lock);
  3429. printk(KERN_ERR "PA:%u:%d:%u \n", i,
  3430. start, pa->pa_len);
  3431. }
  3432. ext4_unlock_group(sb, i);
  3433. if (grp->bb_free == 0)
  3434. continue;
  3435. printk(KERN_ERR "%u: %d/%d \n",
  3436. i, grp->bb_free, grp->bb_fragments);
  3437. }
  3438. printk(KERN_ERR "\n");
  3439. }
  3440. #else
  3441. static inline void ext4_mb_show_ac(struct ext4_allocation_context *ac)
  3442. {
  3443. return;
  3444. }
  3445. #endif
  3446. /*
  3447. * We use locality group preallocation for small size file. The size of the
  3448. * file is determined by the current size or the resulting size after
  3449. * allocation which ever is larger
  3450. *
  3451. * One can tune this size via /sys/fs/ext4/<partition>/mb_stream_req
  3452. */
  3453. static void ext4_mb_group_or_file(struct ext4_allocation_context *ac)
  3454. {
  3455. struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
  3456. int bsbits = ac->ac_sb->s_blocksize_bits;
  3457. loff_t size, isize;
  3458. if (!(ac->ac_flags & EXT4_MB_HINT_DATA))
  3459. return;
  3460. if (unlikely(ac->ac_flags & EXT4_MB_HINT_GOAL_ONLY))
  3461. return;
  3462. size = ac->ac_o_ex.fe_logical + EXT4_C2B(sbi, ac->ac_o_ex.fe_len);
  3463. isize = (i_size_read(ac->ac_inode) + ac->ac_sb->s_blocksize - 1)
  3464. >> bsbits;
  3465. if ((size == isize) &&
  3466. !ext4_fs_is_busy(sbi) &&
  3467. (atomic_read(&ac->ac_inode->i_writecount) == 0)) {
  3468. ac->ac_flags |= EXT4_MB_HINT_NOPREALLOC;
  3469. return;
  3470. }
  3471. if (sbi->s_mb_group_prealloc <= 0) {
  3472. ac->ac_flags |= EXT4_MB_STREAM_ALLOC;
  3473. return;
  3474. }
  3475. /* don't use group allocation for large files */
  3476. size = max(size, isize);
  3477. if (size > sbi->s_mb_stream_request) {
  3478. ac->ac_flags |= EXT4_MB_STREAM_ALLOC;
  3479. return;
  3480. }
  3481. BUG_ON(ac->ac_lg != NULL);
  3482. /*
  3483. * locality group prealloc space are per cpu. The reason for having
  3484. * per cpu locality group is to reduce the contention between block
  3485. * request from multiple CPUs.
  3486. */
  3487. ac->ac_lg = __this_cpu_ptr(sbi->s_locality_groups);
  3488. /* we're going to use group allocation */
  3489. ac->ac_flags |= EXT4_MB_HINT_GROUP_ALLOC;
  3490. /* serialize all allocations in the group */
  3491. mutex_lock(&ac->ac_lg->lg_mutex);
  3492. }
  3493. static noinline_for_stack int
  3494. ext4_mb_initialize_context(struct ext4_allocation_context *ac,
  3495. struct ext4_allocation_request *ar)
  3496. {
  3497. struct super_block *sb = ar->inode->i_sb;
  3498. struct ext4_sb_info *sbi = EXT4_SB(sb);
  3499. struct ext4_super_block *es = sbi->s_es;
  3500. ext4_group_t group;
  3501. unsigned int len;
  3502. ext4_fsblk_t goal;
  3503. ext4_grpblk_t block;
  3504. /* we can't allocate > group size */
  3505. len = ar->len;
  3506. /* just a dirty hack to filter too big requests */
  3507. if (len >= EXT4_CLUSTERS_PER_GROUP(sb) - 10)
  3508. len = EXT4_CLUSTERS_PER_GROUP(sb) - 10;
  3509. /* start searching from the goal */
  3510. goal = ar->goal;
  3511. if (goal < le32_to_cpu(es->s_first_data_block) ||
  3512. goal >= ext4_blocks_count(es))
  3513. goal = le32_to_cpu(es->s_first_data_block);
  3514. ext4_get_group_no_and_offset(sb, goal, &group, &block);
  3515. /* set up allocation goals */
  3516. memset(ac, 0, sizeof(struct ext4_allocation_context));
  3517. ac->ac_b_ex.fe_logical = ar->logical & ~(sbi->s_cluster_ratio - 1);
  3518. ac->ac_status = AC_STATUS_CONTINUE;
  3519. ac->ac_sb = sb;
  3520. ac->ac_inode = ar->inode;
  3521. ac->ac_o_ex.fe_logical = ac->ac_b_ex.fe_logical;
  3522. ac->ac_o_ex.fe_group = group;
  3523. ac->ac_o_ex.fe_start = block;
  3524. ac->ac_o_ex.fe_len = len;
  3525. ac->ac_g_ex = ac->ac_o_ex;
  3526. ac->ac_flags = ar->flags;
  3527. /* we have to define context: we'll we work with a file or
  3528. * locality group. this is a policy, actually */
  3529. ext4_mb_group_or_file(ac);
  3530. mb_debug(1, "init ac: %u blocks @ %u, goal %u, flags %x, 2^%d, "
  3531. "left: %u/%u, right %u/%u to %swritable\n",
  3532. (unsigned) ar->len, (unsigned) ar->logical,
  3533. (unsigned) ar->goal, ac->ac_flags, ac->ac_2order,
  3534. (unsigned) ar->lleft, (unsigned) ar->pleft,
  3535. (unsigned) ar->lright, (unsigned) ar->pright,
  3536. atomic_read(&ar->inode->i_writecount) ? "" : "non-");
  3537. return 0;
  3538. }
  3539. static noinline_for_stack void
  3540. ext4_mb_discard_lg_preallocations(struct super_block *sb,
  3541. struct ext4_locality_group *lg,
  3542. int order, int total_entries)
  3543. {
  3544. ext4_group_t group = 0;
  3545. struct ext4_buddy e4b;
  3546. struct list_head discard_list;
  3547. struct ext4_prealloc_space *pa, *tmp;
  3548. mb_debug(1, "discard locality group preallocation\n");
  3549. INIT_LIST_HEAD(&discard_list);
  3550. spin_lock(&lg->lg_prealloc_lock);
  3551. list_for_each_entry_rcu(pa, &lg->lg_prealloc_list[order],
  3552. pa_inode_list) {
  3553. spin_lock(&pa->pa_lock);
  3554. if (atomic_read(&pa->pa_count)) {
  3555. /*
  3556. * This is the pa that we just used
  3557. * for block allocation. So don't
  3558. * free that
  3559. */
  3560. spin_unlock(&pa->pa_lock);
  3561. continue;
  3562. }
  3563. if (pa->pa_deleted) {
  3564. spin_unlock(&pa->pa_lock);
  3565. continue;
  3566. }
  3567. /* only lg prealloc space */
  3568. BUG_ON(pa->pa_type != MB_GROUP_PA);
  3569. /* seems this one can be freed ... */
  3570. pa->pa_deleted = 1;
  3571. spin_unlock(&pa->pa_lock);
  3572. list_del_rcu(&pa->pa_inode_list);
  3573. list_add(&pa->u.pa_tmp_list, &discard_list);
  3574. total_entries--;
  3575. if (total_entries <= 5) {
  3576. /*
  3577. * we want to keep only 5 entries
  3578. * allowing it to grow to 8. This
  3579. * mak sure we don't call discard
  3580. * soon for this list.
  3581. */
  3582. break;
  3583. }
  3584. }
  3585. spin_unlock(&lg->lg_prealloc_lock);
  3586. list_for_each_entry_safe(pa, tmp, &discard_list, u.pa_tmp_list) {
  3587. ext4_get_group_no_and_offset(sb, pa->pa_pstart, &group, NULL);
  3588. if (ext4_mb_load_buddy(sb, group, &e4b)) {
  3589. ext4_error(sb, "Error loading buddy information for %u",
  3590. group);
  3591. continue;
  3592. }
  3593. ext4_lock_group(sb, group);
  3594. list_del(&pa->pa_group_list);
  3595. ext4_mb_release_group_pa(&e4b, pa);
  3596. ext4_unlock_group(sb, group);
  3597. ext4_mb_unload_buddy(&e4b);
  3598. list_del(&pa->u.pa_tmp_list);
  3599. call_rcu(&(pa)->u.pa_rcu, ext4_mb_pa_callback);
  3600. }
  3601. }
  3602. /*
  3603. * We have incremented pa_count. So it cannot be freed at this
  3604. * point. Also we hold lg_mutex. So no parallel allocation is
  3605. * possible from this lg. That means pa_free cannot be updated.
  3606. *
  3607. * A parallel ext4_mb_discard_group_preallocations is possible.
  3608. * which can cause the lg_prealloc_list to be updated.
  3609. */
  3610. static void ext4_mb_add_n_trim(struct ext4_allocation_context *ac)
  3611. {
  3612. int order, added = 0, lg_prealloc_count = 1;
  3613. struct super_block *sb = ac->ac_sb;
  3614. struct ext4_locality_group *lg = ac->ac_lg;
  3615. struct ext4_prealloc_space *tmp_pa, *pa = ac->ac_pa;
  3616. order = fls(pa->pa_free) - 1;
  3617. if (order > PREALLOC_TB_SIZE - 1)
  3618. /* The max size of hash table is PREALLOC_TB_SIZE */
  3619. order = PREALLOC_TB_SIZE - 1;
  3620. /* Add the prealloc space to lg */
  3621. rcu_read_lock();
  3622. list_for_each_entry_rcu(tmp_pa, &lg->lg_prealloc_list[order],
  3623. pa_inode_list) {
  3624. spin_lock(&tmp_pa->pa_lock);
  3625. if (tmp_pa->pa_deleted) {
  3626. spin_unlock(&tmp_pa->pa_lock);
  3627. continue;
  3628. }
  3629. if (!added && pa->pa_free < tmp_pa->pa_free) {
  3630. /* Add to the tail of the previous entry */
  3631. list_add_tail_rcu(&pa->pa_inode_list,
  3632. &tmp_pa->pa_inode_list);
  3633. added = 1;
  3634. /*
  3635. * we want to count the total
  3636. * number of entries in the list
  3637. */
  3638. }
  3639. spin_unlock(&tmp_pa->pa_lock);
  3640. lg_prealloc_count++;
  3641. }
  3642. if (!added)
  3643. list_add_tail_rcu(&pa->pa_inode_list,
  3644. &lg->lg_prealloc_list[order]);
  3645. rcu_read_unlock();
  3646. /* Now trim the list to be not more than 8 elements */
  3647. if (lg_prealloc_count > 8) {
  3648. ext4_mb_discard_lg_preallocations(sb, lg,
  3649. order, lg_prealloc_count);
  3650. return;
  3651. }
  3652. return ;
  3653. }
  3654. /*
  3655. * release all resource we used in allocation
  3656. */
  3657. static int ext4_mb_release_context(struct ext4_allocation_context *ac)
  3658. {
  3659. struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
  3660. struct ext4_prealloc_space *pa = ac->ac_pa;
  3661. if (pa) {
  3662. if (pa->pa_type == MB_GROUP_PA) {
  3663. /* see comment in ext4_mb_use_group_pa() */
  3664. spin_lock(&pa->pa_lock);
  3665. pa->pa_pstart += EXT4_C2B(sbi, ac->ac_b_ex.fe_len);
  3666. pa->pa_lstart += EXT4_C2B(sbi, ac->ac_b_ex.fe_len);
  3667. pa->pa_free -= ac->ac_b_ex.fe_len;
  3668. pa->pa_len -= ac->ac_b_ex.fe_len;
  3669. spin_unlock(&pa->pa_lock);
  3670. }
  3671. }
  3672. if (pa) {
  3673. /*
  3674. * We want to add the pa to the right bucket.
  3675. * Remove it from the list and while adding
  3676. * make sure the list to which we are adding
  3677. * doesn't grow big.
  3678. */
  3679. if ((pa->pa_type == MB_GROUP_PA) && likely(pa->pa_free)) {
  3680. spin_lock(pa->pa_obj_lock);
  3681. list_del_rcu(&pa->pa_inode_list);
  3682. spin_unlock(pa->pa_obj_lock);
  3683. ext4_mb_add_n_trim(ac);
  3684. }
  3685. ext4_mb_put_pa(ac, ac->ac_sb, pa);
  3686. }
  3687. if (ac->ac_bitmap_page)
  3688. page_cache_release(ac->ac_bitmap_page);
  3689. if (ac->ac_buddy_page)
  3690. page_cache_release(ac->ac_buddy_page);
  3691. if (ac->ac_flags & EXT4_MB_HINT_GROUP_ALLOC)
  3692. mutex_unlock(&ac->ac_lg->lg_mutex);
  3693. ext4_mb_collect_stats(ac);
  3694. return 0;
  3695. }
  3696. static int ext4_mb_discard_preallocations(struct super_block *sb, int needed)
  3697. {
  3698. ext4_group_t i, ngroups = ext4_get_groups_count(sb);
  3699. int ret;
  3700. int freed = 0;
  3701. trace_ext4_mb_discard_preallocations(sb, needed);
  3702. for (i = 0; i < ngroups && needed > 0; i++) {
  3703. ret = ext4_mb_discard_group_preallocations(sb, i, needed);
  3704. freed += ret;
  3705. needed -= ret;
  3706. }
  3707. return freed;
  3708. }
  3709. /*
  3710. * Main entry point into mballoc to allocate blocks
  3711. * it tries to use preallocation first, then falls back
  3712. * to usual allocation
  3713. */
  3714. ext4_fsblk_t ext4_mb_new_blocks(handle_t *handle,
  3715. struct ext4_allocation_request *ar, int *errp)
  3716. {
  3717. int freed;
  3718. struct ext4_allocation_context *ac = NULL;
  3719. struct ext4_sb_info *sbi;
  3720. struct super_block *sb;
  3721. ext4_fsblk_t block = 0;
  3722. unsigned int inquota = 0;
  3723. unsigned int reserv_clstrs = 0;
  3724. sb = ar->inode->i_sb;
  3725. sbi = EXT4_SB(sb);
  3726. trace_ext4_request_blocks(ar);
  3727. /* Allow to use superuser reservation for quota file */
  3728. if (IS_NOQUOTA(ar->inode))
  3729. ar->flags |= EXT4_MB_USE_ROOT_BLOCKS;
  3730. /*
  3731. * For delayed allocation, we could skip the ENOSPC and
  3732. * EDQUOT check, as blocks and quotas have been already
  3733. * reserved when data being copied into pagecache.
  3734. */
  3735. if (ext4_test_inode_state(ar->inode, EXT4_STATE_DELALLOC_RESERVED))
  3736. ar->flags |= EXT4_MB_DELALLOC_RESERVED;
  3737. else {
  3738. /* Without delayed allocation we need to verify
  3739. * there is enough free blocks to do block allocation
  3740. * and verify allocation doesn't exceed the quota limits.
  3741. */
  3742. while (ar->len &&
  3743. ext4_claim_free_clusters(sbi, ar->len, ar->flags)) {
  3744. /* let others to free the space */
  3745. yield();
  3746. ar->len = ar->len >> 1;
  3747. }
  3748. if (!ar->len) {
  3749. *errp = -ENOSPC;
  3750. return 0;
  3751. }
  3752. reserv_clstrs = ar->len;
  3753. if (ar->flags & EXT4_MB_USE_ROOT_BLOCKS) {
  3754. dquot_alloc_block_nofail(ar->inode,
  3755. EXT4_C2B(sbi, ar->len));
  3756. } else {
  3757. while (ar->len &&
  3758. dquot_alloc_block(ar->inode,
  3759. EXT4_C2B(sbi, ar->len))) {
  3760. ar->flags |= EXT4_MB_HINT_NOPREALLOC;
  3761. ar->len--;
  3762. }
  3763. }
  3764. inquota = ar->len;
  3765. if (ar->len == 0) {
  3766. *errp = -EDQUOT;
  3767. goto out;
  3768. }
  3769. }
  3770. ac = kmem_cache_alloc(ext4_ac_cachep, GFP_NOFS);
  3771. if (!ac) {
  3772. ar->len = 0;
  3773. *errp = -ENOMEM;
  3774. goto out;
  3775. }
  3776. *errp = ext4_mb_initialize_context(ac, ar);
  3777. if (*errp) {
  3778. ar->len = 0;
  3779. goto out;
  3780. }
  3781. ac->ac_op = EXT4_MB_HISTORY_PREALLOC;
  3782. if (!ext4_mb_use_preallocated(ac)) {
  3783. ac->ac_op = EXT4_MB_HISTORY_ALLOC;
  3784. ext4_mb_normalize_request(ac, ar);
  3785. repeat:
  3786. /* allocate space in core */
  3787. *errp = ext4_mb_regular_allocator(ac);
  3788. if (*errp)
  3789. goto errout;
  3790. /* as we've just preallocated more space than
  3791. * user requested orinally, we store allocated
  3792. * space in a special descriptor */
  3793. if (ac->ac_status == AC_STATUS_FOUND &&
  3794. ac->ac_o_ex.fe_len < ac->ac_b_ex.fe_len)
  3795. ext4_mb_new_preallocation(ac);
  3796. }
  3797. if (likely(ac->ac_status == AC_STATUS_FOUND)) {
  3798. *errp = ext4_mb_mark_diskspace_used(ac, handle, reserv_clstrs);
  3799. if (*errp == -EAGAIN) {
  3800. /*
  3801. * drop the reference that we took
  3802. * in ext4_mb_use_best_found
  3803. */
  3804. ext4_mb_release_context(ac);
  3805. ac->ac_b_ex.fe_group = 0;
  3806. ac->ac_b_ex.fe_start = 0;
  3807. ac->ac_b_ex.fe_len = 0;
  3808. ac->ac_status = AC_STATUS_CONTINUE;
  3809. goto repeat;
  3810. } else if (*errp)
  3811. errout:
  3812. ext4_discard_allocated_blocks(ac);
  3813. else {
  3814. block = ext4_grp_offs_to_block(sb, &ac->ac_b_ex);
  3815. ar->len = ac->ac_b_ex.fe_len;
  3816. }
  3817. } else {
  3818. freed = ext4_mb_discard_preallocations(sb, ac->ac_o_ex.fe_len);
  3819. if (freed)
  3820. goto repeat;
  3821. *errp = -ENOSPC;
  3822. }
  3823. if (*errp) {
  3824. ac->ac_b_ex.fe_len = 0;
  3825. ar->len = 0;
  3826. ext4_mb_show_ac(ac);
  3827. }
  3828. ext4_mb_release_context(ac);
  3829. out:
  3830. if (ac)
  3831. kmem_cache_free(ext4_ac_cachep, ac);
  3832. if (inquota && ar->len < inquota)
  3833. dquot_free_block(ar->inode, EXT4_C2B(sbi, inquota - ar->len));
  3834. if (!ar->len) {
  3835. if (!ext4_test_inode_state(ar->inode,
  3836. EXT4_STATE_DELALLOC_RESERVED))
  3837. /* release all the reserved blocks if non delalloc */
  3838. percpu_counter_sub(&sbi->s_dirtyclusters_counter,
  3839. reserv_clstrs);
  3840. }
  3841. trace_ext4_allocate_blocks(ar, (unsigned long long)block);
  3842. return block;
  3843. }
  3844. /*
  3845. * We can merge two free data extents only if the physical blocks
  3846. * are contiguous, AND the extents were freed by the same transaction,
  3847. * AND the blocks are associated with the same group.
  3848. */
  3849. static int can_merge(struct ext4_free_data *entry1,
  3850. struct ext4_free_data *entry2)
  3851. {
  3852. if ((entry1->efd_tid == entry2->efd_tid) &&
  3853. (entry1->efd_group == entry2->efd_group) &&
  3854. ((entry1->efd_start_cluster + entry1->efd_count) == entry2->efd_start_cluster))
  3855. return 1;
  3856. return 0;
  3857. }
  3858. static noinline_for_stack int
  3859. ext4_mb_free_metadata(handle_t *handle, struct ext4_buddy *e4b,
  3860. struct ext4_free_data *new_entry)
  3861. {
  3862. ext4_group_t group = e4b->bd_group;
  3863. ext4_grpblk_t cluster;
  3864. struct ext4_free_data *entry;
  3865. struct ext4_group_info *db = e4b->bd_info;
  3866. struct super_block *sb = e4b->bd_sb;
  3867. struct ext4_sb_info *sbi = EXT4_SB(sb);
  3868. struct rb_node **n = &db->bb_free_root.rb_node, *node;
  3869. struct rb_node *parent = NULL, *new_node;
  3870. BUG_ON(!ext4_handle_valid(handle));
  3871. BUG_ON(e4b->bd_bitmap_page == NULL);
  3872. BUG_ON(e4b->bd_buddy_page == NULL);
  3873. new_node = &new_entry->efd_node;
  3874. cluster = new_entry->efd_start_cluster;
  3875. if (!*n) {
  3876. /* first free block exent. We need to
  3877. protect buddy cache from being freed,
  3878. * otherwise we'll refresh it from
  3879. * on-disk bitmap and lose not-yet-available
  3880. * blocks */
  3881. page_cache_get(e4b->bd_buddy_page);
  3882. page_cache_get(e4b->bd_bitmap_page);
  3883. }
  3884. while (*n) {
  3885. parent = *n;
  3886. entry = rb_entry(parent, struct ext4_free_data, efd_node);
  3887. if (cluster < entry->efd_start_cluster)
  3888. n = &(*n)->rb_left;
  3889. else if (cluster >= (entry->efd_start_cluster + entry->efd_count))
  3890. n = &(*n)->rb_right;
  3891. else {
  3892. ext4_grp_locked_error(sb, group, 0,
  3893. ext4_group_first_block_no(sb, group) +
  3894. EXT4_C2B(sbi, cluster),
  3895. "Block already on to-be-freed list");
  3896. return 0;
  3897. }
  3898. }
  3899. rb_link_node(new_node, parent, n);
  3900. rb_insert_color(new_node, &db->bb_free_root);
  3901. /* Now try to see the extent can be merged to left and right */
  3902. node = rb_prev(new_node);
  3903. if (node) {
  3904. entry = rb_entry(node, struct ext4_free_data, efd_node);
  3905. if (can_merge(entry, new_entry)) {
  3906. new_entry->efd_start_cluster = entry->efd_start_cluster;
  3907. new_entry->efd_count += entry->efd_count;
  3908. rb_erase(node, &(db->bb_free_root));
  3909. ext4_journal_callback_del(handle, &entry->efd_jce);
  3910. kmem_cache_free(ext4_free_data_cachep, entry);
  3911. }
  3912. }
  3913. node = rb_next(new_node);
  3914. if (node) {
  3915. entry = rb_entry(node, struct ext4_free_data, efd_node);
  3916. if (can_merge(new_entry, entry)) {
  3917. new_entry->efd_count += entry->efd_count;
  3918. rb_erase(node, &(db->bb_free_root));
  3919. ext4_journal_callback_del(handle, &entry->efd_jce);
  3920. kmem_cache_free(ext4_free_data_cachep, entry);
  3921. }
  3922. }
  3923. /* Add the extent to transaction's private list */
  3924. ext4_journal_callback_add(handle, ext4_free_data_callback,
  3925. &new_entry->efd_jce);
  3926. return 0;
  3927. }
  3928. /**
  3929. * ext4_free_blocks() -- Free given blocks and update quota
  3930. * @handle: handle for this transaction
  3931. * @inode: inode
  3932. * @block: start physical block to free
  3933. * @count: number of blocks to count
  3934. * @flags: flags used by ext4_free_blocks
  3935. */
  3936. void ext4_free_blocks(handle_t *handle, struct inode *inode,
  3937. struct buffer_head *bh, ext4_fsblk_t block,
  3938. unsigned long count, int flags)
  3939. {
  3940. struct buffer_head *bitmap_bh = NULL;
  3941. struct super_block *sb = inode->i_sb;
  3942. struct ext4_group_desc *gdp;
  3943. unsigned long freed = 0;
  3944. unsigned int overflow;
  3945. ext4_grpblk_t bit;
  3946. struct buffer_head *gd_bh;
  3947. ext4_group_t block_group;
  3948. struct ext4_sb_info *sbi;
  3949. struct ext4_buddy e4b;
  3950. unsigned int count_clusters;
  3951. int err = 0;
  3952. int ret;
  3953. if (bh) {
  3954. if (block)
  3955. BUG_ON(block != bh->b_blocknr);
  3956. else
  3957. block = bh->b_blocknr;
  3958. }
  3959. sbi = EXT4_SB(sb);
  3960. if (!(flags & EXT4_FREE_BLOCKS_VALIDATED) &&
  3961. !ext4_data_block_valid(sbi, block, count)) {
  3962. ext4_error(sb, "Freeing blocks not in datazone - "
  3963. "block = %llu, count = %lu", block, count);
  3964. goto error_return;
  3965. }
  3966. ext4_debug("freeing block %llu\n", block);
  3967. trace_ext4_free_blocks(inode, block, count, flags);
  3968. if (flags & EXT4_FREE_BLOCKS_FORGET) {
  3969. struct buffer_head *tbh = bh;
  3970. int i;
  3971. BUG_ON(bh && (count > 1));
  3972. for (i = 0; i < count; i++) {
  3973. if (!bh)
  3974. tbh = sb_find_get_block(inode->i_sb,
  3975. block + i);
  3976. if (unlikely(!tbh))
  3977. continue;
  3978. ext4_forget(handle, flags & EXT4_FREE_BLOCKS_METADATA,
  3979. inode, tbh, block + i);
  3980. }
  3981. }
  3982. /*
  3983. * We need to make sure we don't reuse the freed block until
  3984. * after the transaction is committed, which we can do by
  3985. * treating the block as metadata, below. We make an
  3986. * exception if the inode is to be written in writeback mode
  3987. * since writeback mode has weak data consistency guarantees.
  3988. */
  3989. if (!ext4_should_writeback_data(inode))
  3990. flags |= EXT4_FREE_BLOCKS_METADATA;
  3991. /*
  3992. * If the extent to be freed does not begin on a cluster
  3993. * boundary, we need to deal with partial clusters at the
  3994. * beginning and end of the extent. Normally we will free
  3995. * blocks at the beginning or the end unless we are explicitly
  3996. * requested to avoid doing so.
  3997. */
  3998. overflow = block & (sbi->s_cluster_ratio - 1);
  3999. if (overflow) {
  4000. if (flags & EXT4_FREE_BLOCKS_NOFREE_FIRST_CLUSTER) {
  4001. overflow = sbi->s_cluster_ratio - overflow;
  4002. block += overflow;
  4003. if (count > overflow)
  4004. count -= overflow;
  4005. else
  4006. return;
  4007. } else {
  4008. block -= overflow;
  4009. count += overflow;
  4010. }
  4011. }
  4012. overflow = count & (sbi->s_cluster_ratio - 1);
  4013. if (overflow) {
  4014. if (flags & EXT4_FREE_BLOCKS_NOFREE_LAST_CLUSTER) {
  4015. if (count > overflow)
  4016. count -= overflow;
  4017. else
  4018. return;
  4019. } else
  4020. count += sbi->s_cluster_ratio - overflow;
  4021. }
  4022. do_more:
  4023. overflow = 0;
  4024. ext4_get_group_no_and_offset(sb, block, &block_group, &bit);
  4025. /*
  4026. * Check to see if we are freeing blocks across a group
  4027. * boundary.
  4028. */
  4029. if (EXT4_C2B(sbi, bit) + count > EXT4_BLOCKS_PER_GROUP(sb)) {
  4030. overflow = EXT4_C2B(sbi, bit) + count -
  4031. EXT4_BLOCKS_PER_GROUP(sb);
  4032. count -= overflow;
  4033. }
  4034. count_clusters = EXT4_B2C(sbi, count);
  4035. bitmap_bh = ext4_read_block_bitmap(sb, block_group);
  4036. if (!bitmap_bh) {
  4037. err = -EIO;
  4038. goto error_return;
  4039. }
  4040. gdp = ext4_get_group_desc(sb, block_group, &gd_bh);
  4041. if (!gdp) {
  4042. err = -EIO;
  4043. goto error_return;
  4044. }
  4045. if (in_range(ext4_block_bitmap(sb, gdp), block, count) ||
  4046. in_range(ext4_inode_bitmap(sb, gdp), block, count) ||
  4047. in_range(block, ext4_inode_table(sb, gdp),
  4048. EXT4_SB(sb)->s_itb_per_group) ||
  4049. in_range(block + count - 1, ext4_inode_table(sb, gdp),
  4050. EXT4_SB(sb)->s_itb_per_group)) {
  4051. ext4_error(sb, "Freeing blocks in system zone - "
  4052. "Block = %llu, count = %lu", block, count);
  4053. /* err = 0. ext4_std_error should be a no op */
  4054. goto error_return;
  4055. }
  4056. BUFFER_TRACE(bitmap_bh, "getting write access");
  4057. err = ext4_journal_get_write_access(handle, bitmap_bh);
  4058. if (err)
  4059. goto error_return;
  4060. /*
  4061. * We are about to modify some metadata. Call the journal APIs
  4062. * to unshare ->b_data if a currently-committing transaction is
  4063. * using it
  4064. */
  4065. BUFFER_TRACE(gd_bh, "get_write_access");
  4066. err = ext4_journal_get_write_access(handle, gd_bh);
  4067. if (err)
  4068. goto error_return;
  4069. #ifdef AGGRESSIVE_CHECK
  4070. {
  4071. int i;
  4072. for (i = 0; i < count_clusters; i++)
  4073. BUG_ON(!mb_test_bit(bit + i, bitmap_bh->b_data));
  4074. }
  4075. #endif
  4076. trace_ext4_mballoc_free(sb, inode, block_group, bit, count_clusters);
  4077. err = ext4_mb_load_buddy(sb, block_group, &e4b);
  4078. if (err)
  4079. goto error_return;
  4080. if ((flags & EXT4_FREE_BLOCKS_METADATA) && ext4_handle_valid(handle)) {
  4081. struct ext4_free_data *new_entry;
  4082. /*
  4083. * blocks being freed are metadata. these blocks shouldn't
  4084. * be used until this transaction is committed
  4085. */
  4086. new_entry = kmem_cache_alloc(ext4_free_data_cachep, GFP_NOFS);
  4087. if (!new_entry) {
  4088. ext4_mb_unload_buddy(&e4b);
  4089. err = -ENOMEM;
  4090. goto error_return;
  4091. }
  4092. new_entry->efd_start_cluster = bit;
  4093. new_entry->efd_group = block_group;
  4094. new_entry->efd_count = count_clusters;
  4095. new_entry->efd_tid = handle->h_transaction->t_tid;
  4096. ext4_lock_group(sb, block_group);
  4097. mb_clear_bits(bitmap_bh->b_data, bit, count_clusters);
  4098. ext4_mb_free_metadata(handle, &e4b, new_entry);
  4099. } else {
  4100. /* need to update group_info->bb_free and bitmap
  4101. * with group lock held. generate_buddy look at
  4102. * them with group lock_held
  4103. */
  4104. ext4_lock_group(sb, block_group);
  4105. mb_clear_bits(bitmap_bh->b_data, bit, count_clusters);
  4106. mb_free_blocks(inode, &e4b, bit, count_clusters);
  4107. }
  4108. ret = ext4_free_group_clusters(sb, gdp) + count_clusters;
  4109. ext4_free_group_clusters_set(sb, gdp, ret);
  4110. ext4_block_bitmap_csum_set(sb, block_group, gdp, bitmap_bh,
  4111. EXT4_BLOCKS_PER_GROUP(sb) / 8);
  4112. ext4_group_desc_csum_set(sb, block_group, gdp);
  4113. ext4_unlock_group(sb, block_group);
  4114. percpu_counter_add(&sbi->s_freeclusters_counter, count_clusters);
  4115. if (sbi->s_log_groups_per_flex) {
  4116. ext4_group_t flex_group = ext4_flex_group(sbi, block_group);
  4117. atomic_add(count_clusters,
  4118. &sbi->s_flex_groups[flex_group].free_clusters);
  4119. }
  4120. ext4_mb_unload_buddy(&e4b);
  4121. freed += count;
  4122. if (!(flags & EXT4_FREE_BLOCKS_NO_QUOT_UPDATE))
  4123. dquot_free_block(inode, EXT4_C2B(sbi, count_clusters));
  4124. /* We dirtied the bitmap block */
  4125. BUFFER_TRACE(bitmap_bh, "dirtied bitmap block");
  4126. err = ext4_handle_dirty_metadata(handle, NULL, bitmap_bh);
  4127. /* And the group descriptor block */
  4128. BUFFER_TRACE(gd_bh, "dirtied group descriptor block");
  4129. ret = ext4_handle_dirty_metadata(handle, NULL, gd_bh);
  4130. if (!err)
  4131. err = ret;
  4132. if (overflow && !err) {
  4133. block += count;
  4134. count = overflow;
  4135. put_bh(bitmap_bh);
  4136. goto do_more;
  4137. }
  4138. error_return:
  4139. brelse(bitmap_bh);
  4140. ext4_std_error(sb, err);
  4141. return;
  4142. }
  4143. /**
  4144. * ext4_group_add_blocks() -- Add given blocks to an existing group
  4145. * @handle: handle to this transaction
  4146. * @sb: super block
  4147. * @block: start physcial block to add to the block group
  4148. * @count: number of blocks to free
  4149. *
  4150. * This marks the blocks as free in the bitmap and buddy.
  4151. */
  4152. int ext4_group_add_blocks(handle_t *handle, struct super_block *sb,
  4153. ext4_fsblk_t block, unsigned long count)
  4154. {
  4155. struct buffer_head *bitmap_bh = NULL;
  4156. struct buffer_head *gd_bh;
  4157. ext4_group_t block_group;
  4158. ext4_grpblk_t bit;
  4159. unsigned int i;
  4160. struct ext4_group_desc *desc;
  4161. struct ext4_sb_info *sbi = EXT4_SB(sb);
  4162. struct ext4_buddy e4b;
  4163. int err = 0, ret, blk_free_count;
  4164. ext4_grpblk_t blocks_freed;
  4165. ext4_debug("Adding block(s) %llu-%llu\n", block, block + count - 1);
  4166. if (count == 0)
  4167. return 0;
  4168. ext4_get_group_no_and_offset(sb, block, &block_group, &bit);
  4169. /*
  4170. * Check to see if we are freeing blocks across a group
  4171. * boundary.
  4172. */
  4173. if (bit + count > EXT4_BLOCKS_PER_GROUP(sb)) {
  4174. ext4_warning(sb, "too much blocks added to group %u\n",
  4175. block_group);
  4176. err = -EINVAL;
  4177. goto error_return;
  4178. }
  4179. bitmap_bh = ext4_read_block_bitmap(sb, block_group);
  4180. if (!bitmap_bh) {
  4181. err = -EIO;
  4182. goto error_return;
  4183. }
  4184. desc = ext4_get_group_desc(sb, block_group, &gd_bh);
  4185. if (!desc) {
  4186. err = -EIO;
  4187. goto error_return;
  4188. }
  4189. if (in_range(ext4_block_bitmap(sb, desc), block, count) ||
  4190. in_range(ext4_inode_bitmap(sb, desc), block, count) ||
  4191. in_range(block, ext4_inode_table(sb, desc), sbi->s_itb_per_group) ||
  4192. in_range(block + count - 1, ext4_inode_table(sb, desc),
  4193. sbi->s_itb_per_group)) {
  4194. ext4_error(sb, "Adding blocks in system zones - "
  4195. "Block = %llu, count = %lu",
  4196. block, count);
  4197. err = -EINVAL;
  4198. goto error_return;
  4199. }
  4200. BUFFER_TRACE(bitmap_bh, "getting write access");
  4201. err = ext4_journal_get_write_access(handle, bitmap_bh);
  4202. if (err)
  4203. goto error_return;
  4204. /*
  4205. * We are about to modify some metadata. Call the journal APIs
  4206. * to unshare ->b_data if a currently-committing transaction is
  4207. * using it
  4208. */
  4209. BUFFER_TRACE(gd_bh, "get_write_access");
  4210. err = ext4_journal_get_write_access(handle, gd_bh);
  4211. if (err)
  4212. goto error_return;
  4213. for (i = 0, blocks_freed = 0; i < count; i++) {
  4214. BUFFER_TRACE(bitmap_bh, "clear bit");
  4215. if (!mb_test_bit(bit + i, bitmap_bh->b_data)) {
  4216. ext4_error(sb, "bit already cleared for block %llu",
  4217. (ext4_fsblk_t)(block + i));
  4218. BUFFER_TRACE(bitmap_bh, "bit already cleared");
  4219. } else {
  4220. blocks_freed++;
  4221. }
  4222. }
  4223. err = ext4_mb_load_buddy(sb, block_group, &e4b);
  4224. if (err)
  4225. goto error_return;
  4226. /*
  4227. * need to update group_info->bb_free and bitmap
  4228. * with group lock held. generate_buddy look at
  4229. * them with group lock_held
  4230. */
  4231. ext4_lock_group(sb, block_group);
  4232. mb_clear_bits(bitmap_bh->b_data, bit, count);
  4233. mb_free_blocks(NULL, &e4b, bit, count);
  4234. blk_free_count = blocks_freed + ext4_free_group_clusters(sb, desc);
  4235. ext4_free_group_clusters_set(sb, desc, blk_free_count);
  4236. ext4_block_bitmap_csum_set(sb, block_group, desc, bitmap_bh,
  4237. EXT4_BLOCKS_PER_GROUP(sb) / 8);
  4238. ext4_group_desc_csum_set(sb, block_group, desc);
  4239. ext4_unlock_group(sb, block_group);
  4240. percpu_counter_add(&sbi->s_freeclusters_counter,
  4241. EXT4_B2C(sbi, blocks_freed));
  4242. if (sbi->s_log_groups_per_flex) {
  4243. ext4_group_t flex_group = ext4_flex_group(sbi, block_group);
  4244. atomic_add(EXT4_B2C(sbi, blocks_freed),
  4245. &sbi->s_flex_groups[flex_group].free_clusters);
  4246. }
  4247. ext4_mb_unload_buddy(&e4b);
  4248. /* We dirtied the bitmap block */
  4249. BUFFER_TRACE(bitmap_bh, "dirtied bitmap block");
  4250. err = ext4_handle_dirty_metadata(handle, NULL, bitmap_bh);
  4251. /* And the group descriptor block */
  4252. BUFFER_TRACE(gd_bh, "dirtied group descriptor block");
  4253. ret = ext4_handle_dirty_metadata(handle, NULL, gd_bh);
  4254. if (!err)
  4255. err = ret;
  4256. error_return:
  4257. brelse(bitmap_bh);
  4258. ext4_std_error(sb, err);
  4259. return err;
  4260. }
  4261. /**
  4262. * ext4_trim_extent -- function to TRIM one single free extent in the group
  4263. * @sb: super block for the file system
  4264. * @start: starting block of the free extent in the alloc. group
  4265. * @count: number of blocks to TRIM
  4266. * @group: alloc. group we are working with
  4267. * @e4b: ext4 buddy for the group
  4268. *
  4269. * Trim "count" blocks starting at "start" in the "group". To assure that no
  4270. * one will allocate those blocks, mark it as used in buddy bitmap. This must
  4271. * be called with under the group lock.
  4272. */
  4273. static void ext4_trim_extent(struct super_block *sb, int start, int count,
  4274. ext4_group_t group, struct ext4_buddy *e4b)
  4275. {
  4276. struct ext4_free_extent ex;
  4277. trace_ext4_trim_extent(sb, group, start, count);
  4278. assert_spin_locked(ext4_group_lock_ptr(sb, group));
  4279. ex.fe_start = start;
  4280. ex.fe_group = group;
  4281. ex.fe_len = count;
  4282. /*
  4283. * Mark blocks used, so no one can reuse them while
  4284. * being trimmed.
  4285. */
  4286. mb_mark_used(e4b, &ex);
  4287. ext4_unlock_group(sb, group);
  4288. ext4_issue_discard(sb, group, start, count);
  4289. ext4_lock_group(sb, group);
  4290. mb_free_blocks(NULL, e4b, start, ex.fe_len);
  4291. }
  4292. /**
  4293. * ext4_trim_all_free -- function to trim all free space in alloc. group
  4294. * @sb: super block for file system
  4295. * @group: group to be trimmed
  4296. * @start: first group block to examine
  4297. * @max: last group block to examine
  4298. * @minblocks: minimum extent block count
  4299. *
  4300. * ext4_trim_all_free walks through group's buddy bitmap searching for free
  4301. * extents. When the free block is found, ext4_trim_extent is called to TRIM
  4302. * the extent.
  4303. *
  4304. *
  4305. * ext4_trim_all_free walks through group's block bitmap searching for free
  4306. * extents. When the free extent is found, mark it as used in group buddy
  4307. * bitmap. Then issue a TRIM command on this extent and free the extent in
  4308. * the group buddy bitmap. This is done until whole group is scanned.
  4309. */
  4310. static ext4_grpblk_t
  4311. ext4_trim_all_free(struct super_block *sb, ext4_group_t group,
  4312. ext4_grpblk_t start, ext4_grpblk_t max,
  4313. ext4_grpblk_t minblocks)
  4314. {
  4315. void *bitmap;
  4316. ext4_grpblk_t next, count = 0, free_count = 0;
  4317. struct ext4_buddy e4b;
  4318. int ret;
  4319. trace_ext4_trim_all_free(sb, group, start, max);
  4320. ret = ext4_mb_load_buddy(sb, group, &e4b);
  4321. if (ret) {
  4322. ext4_error(sb, "Error in loading buddy "
  4323. "information for %u", group);
  4324. return ret;
  4325. }
  4326. bitmap = e4b.bd_bitmap;
  4327. ext4_lock_group(sb, group);
  4328. if (EXT4_MB_GRP_WAS_TRIMMED(e4b.bd_info) &&
  4329. minblocks >= atomic_read(&EXT4_SB(sb)->s_last_trim_minblks))
  4330. goto out;
  4331. start = (e4b.bd_info->bb_first_free > start) ?
  4332. e4b.bd_info->bb_first_free : start;
  4333. while (start <= max) {
  4334. start = mb_find_next_zero_bit(bitmap, max + 1, start);
  4335. if (start > max)
  4336. break;
  4337. next = mb_find_next_bit(bitmap, max + 1, start);
  4338. if ((next - start) >= minblocks) {
  4339. ext4_trim_extent(sb, start,
  4340. next - start, group, &e4b);
  4341. count += next - start;
  4342. }
  4343. free_count += next - start;
  4344. start = next + 1;
  4345. if (fatal_signal_pending(current)) {
  4346. count = -ERESTARTSYS;
  4347. break;
  4348. }
  4349. if (need_resched()) {
  4350. ext4_unlock_group(sb, group);
  4351. cond_resched();
  4352. ext4_lock_group(sb, group);
  4353. }
  4354. if ((e4b.bd_info->bb_free - free_count) < minblocks)
  4355. break;
  4356. }
  4357. if (!ret)
  4358. EXT4_MB_GRP_SET_TRIMMED(e4b.bd_info);
  4359. out:
  4360. ext4_unlock_group(sb, group);
  4361. ext4_mb_unload_buddy(&e4b);
  4362. ext4_debug("trimmed %d blocks in the group %d\n",
  4363. count, group);
  4364. return count;
  4365. }
  4366. /**
  4367. * ext4_trim_fs() -- trim ioctl handle function
  4368. * @sb: superblock for filesystem
  4369. * @range: fstrim_range structure
  4370. *
  4371. * start: First Byte to trim
  4372. * len: number of Bytes to trim from start
  4373. * minlen: minimum extent length in Bytes
  4374. * ext4_trim_fs goes through all allocation groups containing Bytes from
  4375. * start to start+len. For each such a group ext4_trim_all_free function
  4376. * is invoked to trim all free space.
  4377. */
  4378. int ext4_trim_fs(struct super_block *sb, struct fstrim_range *range)
  4379. {
  4380. struct ext4_group_info *grp;
  4381. ext4_group_t group, first_group, last_group;
  4382. ext4_grpblk_t cnt = 0, first_cluster, last_cluster;
  4383. uint64_t start, end, minlen, trimmed = 0;
  4384. ext4_fsblk_t first_data_blk =
  4385. le32_to_cpu(EXT4_SB(sb)->s_es->s_first_data_block);
  4386. ext4_fsblk_t max_blks = ext4_blocks_count(EXT4_SB(sb)->s_es);
  4387. int ret = 0;
  4388. start = range->start >> sb->s_blocksize_bits;
  4389. end = start + (range->len >> sb->s_blocksize_bits) - 1;
  4390. minlen = range->minlen >> sb->s_blocksize_bits;
  4391. if (unlikely(minlen > EXT4_CLUSTERS_PER_GROUP(sb)) ||
  4392. unlikely(start >= max_blks))
  4393. return -EINVAL;
  4394. if (end >= max_blks)
  4395. end = max_blks - 1;
  4396. if (end <= first_data_blk)
  4397. goto out;
  4398. if (start < first_data_blk)
  4399. start = first_data_blk;
  4400. /* Determine first and last group to examine based on start and end */
  4401. ext4_get_group_no_and_offset(sb, (ext4_fsblk_t) start,
  4402. &first_group, &first_cluster);
  4403. ext4_get_group_no_and_offset(sb, (ext4_fsblk_t) end,
  4404. &last_group, &last_cluster);
  4405. /* end now represents the last cluster to discard in this group */
  4406. end = EXT4_CLUSTERS_PER_GROUP(sb) - 1;
  4407. for (group = first_group; group <= last_group; group++) {
  4408. grp = ext4_get_group_info(sb, group);
  4409. /* We only do this if the grp has never been initialized */
  4410. if (unlikely(EXT4_MB_GRP_NEED_INIT(grp))) {
  4411. ret = ext4_mb_init_group(sb, group);
  4412. if (ret)
  4413. break;
  4414. }
  4415. /*
  4416. * For all the groups except the last one, last cluster will
  4417. * always be EXT4_CLUSTERS_PER_GROUP(sb)-1, so we only need to
  4418. * change it for the last group, note that last_cluster is
  4419. * already computed earlier by ext4_get_group_no_and_offset()
  4420. */
  4421. if (group == last_group)
  4422. end = last_cluster;
  4423. if (grp->bb_free >= minlen) {
  4424. cnt = ext4_trim_all_free(sb, group, first_cluster,
  4425. end, minlen);
  4426. if (cnt < 0) {
  4427. ret = cnt;
  4428. break;
  4429. }
  4430. trimmed += cnt;
  4431. }
  4432. /*
  4433. * For every group except the first one, we are sure
  4434. * that the first cluster to discard will be cluster #0.
  4435. */
  4436. first_cluster = 0;
  4437. }
  4438. if (!ret)
  4439. atomic_set(&EXT4_SB(sb)->s_last_trim_minblks, minlen);
  4440. out:
  4441. range->len = trimmed * sb->s_blocksize;
  4442. return ret;
  4443. }