xfs_buf.c 43 KB

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  1. /*
  2. * Copyright (c) 2000-2005 Silicon Graphics, Inc.
  3. * All Rights Reserved.
  4. *
  5. * This program is free software; you can redistribute it and/or
  6. * modify it under the terms of the GNU General Public License as
  7. * published by the Free Software Foundation.
  8. *
  9. * This program is distributed in the hope that it would be useful,
  10. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. * GNU General Public License for more details.
  13. *
  14. * You should have received a copy of the GNU General Public License
  15. * along with this program; if not, write the Free Software Foundation,
  16. * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
  17. */
  18. #include <linux/stddef.h>
  19. #include <linux/errno.h>
  20. #include <linux/slab.h>
  21. #include <linux/pagemap.h>
  22. #include <linux/init.h>
  23. #include <linux/vmalloc.h>
  24. #include <linux/bio.h>
  25. #include <linux/sysctl.h>
  26. #include <linux/proc_fs.h>
  27. #include <linux/workqueue.h>
  28. #include <linux/percpu.h>
  29. #include <linux/blkdev.h>
  30. #include <linux/hash.h>
  31. #include <linux/kthread.h>
  32. #include "xfs_linux.h"
  33. STATIC kmem_cache_t *pagebuf_zone;
  34. STATIC kmem_shaker_t pagebuf_shake;
  35. STATIC int xfsbufd_wakeup(int, gfp_t);
  36. STATIC void pagebuf_delwri_queue(xfs_buf_t *, int);
  37. STATIC struct workqueue_struct *xfslogd_workqueue;
  38. struct workqueue_struct *xfsdatad_workqueue;
  39. #ifdef PAGEBUF_TRACE
  40. void
  41. pagebuf_trace(
  42. xfs_buf_t *pb,
  43. char *id,
  44. void *data,
  45. void *ra)
  46. {
  47. ktrace_enter(pagebuf_trace_buf,
  48. pb, id,
  49. (void *)(unsigned long)pb->pb_flags,
  50. (void *)(unsigned long)pb->pb_hold.counter,
  51. (void *)(unsigned long)pb->pb_sema.count.counter,
  52. (void *)current,
  53. data, ra,
  54. (void *)(unsigned long)((pb->pb_file_offset>>32) & 0xffffffff),
  55. (void *)(unsigned long)(pb->pb_file_offset & 0xffffffff),
  56. (void *)(unsigned long)pb->pb_buffer_length,
  57. NULL, NULL, NULL, NULL, NULL);
  58. }
  59. ktrace_t *pagebuf_trace_buf;
  60. #define PAGEBUF_TRACE_SIZE 4096
  61. #define PB_TRACE(pb, id, data) \
  62. pagebuf_trace(pb, id, (void *)data, (void *)__builtin_return_address(0))
  63. #else
  64. #define PB_TRACE(pb, id, data) do { } while (0)
  65. #endif
  66. #ifdef PAGEBUF_LOCK_TRACKING
  67. # define PB_SET_OWNER(pb) ((pb)->pb_last_holder = current->pid)
  68. # define PB_CLEAR_OWNER(pb) ((pb)->pb_last_holder = -1)
  69. # define PB_GET_OWNER(pb) ((pb)->pb_last_holder)
  70. #else
  71. # define PB_SET_OWNER(pb) do { } while (0)
  72. # define PB_CLEAR_OWNER(pb) do { } while (0)
  73. # define PB_GET_OWNER(pb) do { } while (0)
  74. #endif
  75. #define pb_to_gfp(flags) \
  76. ((((flags) & PBF_READ_AHEAD) ? __GFP_NORETRY : \
  77. ((flags) & PBF_DONT_BLOCK) ? GFP_NOFS : GFP_KERNEL) | __GFP_NOWARN)
  78. #define pb_to_km(flags) \
  79. (((flags) & PBF_DONT_BLOCK) ? KM_NOFS : KM_SLEEP)
  80. #define pagebuf_allocate(flags) \
  81. kmem_zone_alloc(pagebuf_zone, pb_to_km(flags))
  82. #define pagebuf_deallocate(pb) \
  83. kmem_zone_free(pagebuf_zone, (pb));
  84. /*
  85. * Page Region interfaces.
  86. *
  87. * For pages in filesystems where the blocksize is smaller than the
  88. * pagesize, we use the page->private field (long) to hold a bitmap
  89. * of uptodate regions within the page.
  90. *
  91. * Each such region is "bytes per page / bits per long" bytes long.
  92. *
  93. * NBPPR == number-of-bytes-per-page-region
  94. * BTOPR == bytes-to-page-region (rounded up)
  95. * BTOPRT == bytes-to-page-region-truncated (rounded down)
  96. */
  97. #if (BITS_PER_LONG == 32)
  98. #define PRSHIFT (PAGE_CACHE_SHIFT - 5) /* (32 == 1<<5) */
  99. #elif (BITS_PER_LONG == 64)
  100. #define PRSHIFT (PAGE_CACHE_SHIFT - 6) /* (64 == 1<<6) */
  101. #else
  102. #error BITS_PER_LONG must be 32 or 64
  103. #endif
  104. #define NBPPR (PAGE_CACHE_SIZE/BITS_PER_LONG)
  105. #define BTOPR(b) (((unsigned int)(b) + (NBPPR - 1)) >> PRSHIFT)
  106. #define BTOPRT(b) (((unsigned int)(b) >> PRSHIFT))
  107. STATIC unsigned long
  108. page_region_mask(
  109. size_t offset,
  110. size_t length)
  111. {
  112. unsigned long mask;
  113. int first, final;
  114. first = BTOPR(offset);
  115. final = BTOPRT(offset + length - 1);
  116. first = min(first, final);
  117. mask = ~0UL;
  118. mask <<= BITS_PER_LONG - (final - first);
  119. mask >>= BITS_PER_LONG - (final);
  120. ASSERT(offset + length <= PAGE_CACHE_SIZE);
  121. ASSERT((final - first) < BITS_PER_LONG && (final - first) >= 0);
  122. return mask;
  123. }
  124. STATIC inline void
  125. set_page_region(
  126. struct page *page,
  127. size_t offset,
  128. size_t length)
  129. {
  130. set_page_private(page,
  131. page_private(page) | page_region_mask(offset, length));
  132. if (page_private(page) == ~0UL)
  133. SetPageUptodate(page);
  134. }
  135. STATIC inline int
  136. test_page_region(
  137. struct page *page,
  138. size_t offset,
  139. size_t length)
  140. {
  141. unsigned long mask = page_region_mask(offset, length);
  142. return (mask && (page_private(page) & mask) == mask);
  143. }
  144. /*
  145. * Mapping of multi-page buffers into contiguous virtual space
  146. */
  147. typedef struct a_list {
  148. void *vm_addr;
  149. struct a_list *next;
  150. } a_list_t;
  151. STATIC a_list_t *as_free_head;
  152. STATIC int as_list_len;
  153. STATIC DEFINE_SPINLOCK(as_lock);
  154. /*
  155. * Try to batch vunmaps because they are costly.
  156. */
  157. STATIC void
  158. free_address(
  159. void *addr)
  160. {
  161. a_list_t *aentry;
  162. aentry = kmalloc(sizeof(a_list_t), GFP_ATOMIC & ~__GFP_HIGH);
  163. if (likely(aentry)) {
  164. spin_lock(&as_lock);
  165. aentry->next = as_free_head;
  166. aentry->vm_addr = addr;
  167. as_free_head = aentry;
  168. as_list_len++;
  169. spin_unlock(&as_lock);
  170. } else {
  171. vunmap(addr);
  172. }
  173. }
  174. STATIC void
  175. purge_addresses(void)
  176. {
  177. a_list_t *aentry, *old;
  178. if (as_free_head == NULL)
  179. return;
  180. spin_lock(&as_lock);
  181. aentry = as_free_head;
  182. as_free_head = NULL;
  183. as_list_len = 0;
  184. spin_unlock(&as_lock);
  185. while ((old = aentry) != NULL) {
  186. vunmap(aentry->vm_addr);
  187. aentry = aentry->next;
  188. kfree(old);
  189. }
  190. }
  191. /*
  192. * Internal pagebuf object manipulation
  193. */
  194. STATIC void
  195. _pagebuf_initialize(
  196. xfs_buf_t *pb,
  197. xfs_buftarg_t *target,
  198. loff_t range_base,
  199. size_t range_length,
  200. page_buf_flags_t flags)
  201. {
  202. /*
  203. * We don't want certain flags to appear in pb->pb_flags.
  204. */
  205. flags &= ~(PBF_LOCK|PBF_MAPPED|PBF_DONT_BLOCK|PBF_READ_AHEAD);
  206. memset(pb, 0, sizeof(xfs_buf_t));
  207. atomic_set(&pb->pb_hold, 1);
  208. init_MUTEX_LOCKED(&pb->pb_iodonesema);
  209. INIT_LIST_HEAD(&pb->pb_list);
  210. INIT_LIST_HEAD(&pb->pb_hash_list);
  211. init_MUTEX_LOCKED(&pb->pb_sema); /* held, no waiters */
  212. PB_SET_OWNER(pb);
  213. pb->pb_target = target;
  214. pb->pb_file_offset = range_base;
  215. /*
  216. * Set buffer_length and count_desired to the same value initially.
  217. * I/O routines should use count_desired, which will be the same in
  218. * most cases but may be reset (e.g. XFS recovery).
  219. */
  220. pb->pb_buffer_length = pb->pb_count_desired = range_length;
  221. pb->pb_flags = flags;
  222. pb->pb_bn = XFS_BUF_DADDR_NULL;
  223. atomic_set(&pb->pb_pin_count, 0);
  224. init_waitqueue_head(&pb->pb_waiters);
  225. XFS_STATS_INC(pb_create);
  226. PB_TRACE(pb, "initialize", target);
  227. }
  228. /*
  229. * Allocate a page array capable of holding a specified number
  230. * of pages, and point the page buf at it.
  231. */
  232. STATIC int
  233. _pagebuf_get_pages(
  234. xfs_buf_t *pb,
  235. int page_count,
  236. page_buf_flags_t flags)
  237. {
  238. /* Make sure that we have a page list */
  239. if (pb->pb_pages == NULL) {
  240. pb->pb_offset = page_buf_poff(pb->pb_file_offset);
  241. pb->pb_page_count = page_count;
  242. if (page_count <= PB_PAGES) {
  243. pb->pb_pages = pb->pb_page_array;
  244. } else {
  245. pb->pb_pages = kmem_alloc(sizeof(struct page *) *
  246. page_count, pb_to_km(flags));
  247. if (pb->pb_pages == NULL)
  248. return -ENOMEM;
  249. }
  250. memset(pb->pb_pages, 0, sizeof(struct page *) * page_count);
  251. }
  252. return 0;
  253. }
  254. /*
  255. * Frees pb_pages if it was malloced.
  256. */
  257. STATIC void
  258. _pagebuf_free_pages(
  259. xfs_buf_t *bp)
  260. {
  261. if (bp->pb_pages != bp->pb_page_array) {
  262. kmem_free(bp->pb_pages,
  263. bp->pb_page_count * sizeof(struct page *));
  264. }
  265. }
  266. /*
  267. * Releases the specified buffer.
  268. *
  269. * The modification state of any associated pages is left unchanged.
  270. * The buffer most not be on any hash - use pagebuf_rele instead for
  271. * hashed and refcounted buffers
  272. */
  273. void
  274. pagebuf_free(
  275. xfs_buf_t *bp)
  276. {
  277. PB_TRACE(bp, "free", 0);
  278. ASSERT(list_empty(&bp->pb_hash_list));
  279. if (bp->pb_flags & _PBF_PAGE_CACHE) {
  280. uint i;
  281. if ((bp->pb_flags & PBF_MAPPED) && (bp->pb_page_count > 1))
  282. free_address(bp->pb_addr - bp->pb_offset);
  283. for (i = 0; i < bp->pb_page_count; i++)
  284. page_cache_release(bp->pb_pages[i]);
  285. _pagebuf_free_pages(bp);
  286. } else if (bp->pb_flags & _PBF_KMEM_ALLOC) {
  287. /*
  288. * XXX(hch): bp->pb_count_desired might be incorrect (see
  289. * pagebuf_associate_memory for details), but fortunately
  290. * the Linux version of kmem_free ignores the len argument..
  291. */
  292. kmem_free(bp->pb_addr, bp->pb_count_desired);
  293. _pagebuf_free_pages(bp);
  294. }
  295. pagebuf_deallocate(bp);
  296. }
  297. /*
  298. * Finds all pages for buffer in question and builds it's page list.
  299. */
  300. STATIC int
  301. _pagebuf_lookup_pages(
  302. xfs_buf_t *bp,
  303. uint flags)
  304. {
  305. struct address_space *mapping = bp->pb_target->pbr_mapping;
  306. size_t blocksize = bp->pb_target->pbr_bsize;
  307. size_t size = bp->pb_count_desired;
  308. size_t nbytes, offset;
  309. gfp_t gfp_mask = pb_to_gfp(flags);
  310. unsigned short page_count, i;
  311. pgoff_t first;
  312. loff_t end;
  313. int error;
  314. end = bp->pb_file_offset + bp->pb_buffer_length;
  315. page_count = page_buf_btoc(end) - page_buf_btoct(bp->pb_file_offset);
  316. error = _pagebuf_get_pages(bp, page_count, flags);
  317. if (unlikely(error))
  318. return error;
  319. bp->pb_flags |= _PBF_PAGE_CACHE;
  320. offset = bp->pb_offset;
  321. first = bp->pb_file_offset >> PAGE_CACHE_SHIFT;
  322. for (i = 0; i < bp->pb_page_count; i++) {
  323. struct page *page;
  324. uint retries = 0;
  325. retry:
  326. page = find_or_create_page(mapping, first + i, gfp_mask);
  327. if (unlikely(page == NULL)) {
  328. if (flags & PBF_READ_AHEAD) {
  329. bp->pb_page_count = i;
  330. for (i = 0; i < bp->pb_page_count; i++)
  331. unlock_page(bp->pb_pages[i]);
  332. return -ENOMEM;
  333. }
  334. /*
  335. * This could deadlock.
  336. *
  337. * But until all the XFS lowlevel code is revamped to
  338. * handle buffer allocation failures we can't do much.
  339. */
  340. if (!(++retries % 100))
  341. printk(KERN_ERR
  342. "XFS: possible memory allocation "
  343. "deadlock in %s (mode:0x%x)\n",
  344. __FUNCTION__, gfp_mask);
  345. XFS_STATS_INC(pb_page_retries);
  346. xfsbufd_wakeup(0, gfp_mask);
  347. blk_congestion_wait(WRITE, HZ/50);
  348. goto retry;
  349. }
  350. XFS_STATS_INC(pb_page_found);
  351. nbytes = min_t(size_t, size, PAGE_CACHE_SIZE - offset);
  352. size -= nbytes;
  353. if (!PageUptodate(page)) {
  354. page_count--;
  355. if (blocksize >= PAGE_CACHE_SIZE) {
  356. if (flags & PBF_READ)
  357. bp->pb_locked = 1;
  358. } else if (!PagePrivate(page)) {
  359. if (test_page_region(page, offset, nbytes))
  360. page_count++;
  361. }
  362. }
  363. bp->pb_pages[i] = page;
  364. offset = 0;
  365. }
  366. if (!bp->pb_locked) {
  367. for (i = 0; i < bp->pb_page_count; i++)
  368. unlock_page(bp->pb_pages[i]);
  369. }
  370. if (page_count == bp->pb_page_count)
  371. bp->pb_flags |= PBF_DONE;
  372. PB_TRACE(bp, "lookup_pages", (long)page_count);
  373. return error;
  374. }
  375. /*
  376. * Map buffer into kernel address-space if nessecary.
  377. */
  378. STATIC int
  379. _pagebuf_map_pages(
  380. xfs_buf_t *bp,
  381. uint flags)
  382. {
  383. /* A single page buffer is always mappable */
  384. if (bp->pb_page_count == 1) {
  385. bp->pb_addr = page_address(bp->pb_pages[0]) + bp->pb_offset;
  386. bp->pb_flags |= PBF_MAPPED;
  387. } else if (flags & PBF_MAPPED) {
  388. if (as_list_len > 64)
  389. purge_addresses();
  390. bp->pb_addr = vmap(bp->pb_pages, bp->pb_page_count,
  391. VM_MAP, PAGE_KERNEL);
  392. if (unlikely(bp->pb_addr == NULL))
  393. return -ENOMEM;
  394. bp->pb_addr += bp->pb_offset;
  395. bp->pb_flags |= PBF_MAPPED;
  396. }
  397. return 0;
  398. }
  399. /*
  400. * Finding and Reading Buffers
  401. */
  402. /*
  403. * _pagebuf_find
  404. *
  405. * Looks up, and creates if absent, a lockable buffer for
  406. * a given range of an inode. The buffer is returned
  407. * locked. If other overlapping buffers exist, they are
  408. * released before the new buffer is created and locked,
  409. * which may imply that this call will block until those buffers
  410. * are unlocked. No I/O is implied by this call.
  411. */
  412. xfs_buf_t *
  413. _pagebuf_find(
  414. xfs_buftarg_t *btp, /* block device target */
  415. loff_t ioff, /* starting offset of range */
  416. size_t isize, /* length of range */
  417. page_buf_flags_t flags, /* PBF_TRYLOCK */
  418. xfs_buf_t *new_pb)/* newly allocated buffer */
  419. {
  420. loff_t range_base;
  421. size_t range_length;
  422. xfs_bufhash_t *hash;
  423. xfs_buf_t *pb, *n;
  424. range_base = (ioff << BBSHIFT);
  425. range_length = (isize << BBSHIFT);
  426. /* Check for IOs smaller than the sector size / not sector aligned */
  427. ASSERT(!(range_length < (1 << btp->pbr_sshift)));
  428. ASSERT(!(range_base & (loff_t)btp->pbr_smask));
  429. hash = &btp->bt_hash[hash_long((unsigned long)ioff, btp->bt_hashshift)];
  430. spin_lock(&hash->bh_lock);
  431. list_for_each_entry_safe(pb, n, &hash->bh_list, pb_hash_list) {
  432. ASSERT(btp == pb->pb_target);
  433. if (pb->pb_file_offset == range_base &&
  434. pb->pb_buffer_length == range_length) {
  435. /*
  436. * If we look at something bring it to the
  437. * front of the list for next time.
  438. */
  439. atomic_inc(&pb->pb_hold);
  440. list_move(&pb->pb_hash_list, &hash->bh_list);
  441. goto found;
  442. }
  443. }
  444. /* No match found */
  445. if (new_pb) {
  446. _pagebuf_initialize(new_pb, btp, range_base,
  447. range_length, flags);
  448. new_pb->pb_hash = hash;
  449. list_add(&new_pb->pb_hash_list, &hash->bh_list);
  450. } else {
  451. XFS_STATS_INC(pb_miss_locked);
  452. }
  453. spin_unlock(&hash->bh_lock);
  454. return new_pb;
  455. found:
  456. spin_unlock(&hash->bh_lock);
  457. /* Attempt to get the semaphore without sleeping,
  458. * if this does not work then we need to drop the
  459. * spinlock and do a hard attempt on the semaphore.
  460. */
  461. if (down_trylock(&pb->pb_sema)) {
  462. if (!(flags & PBF_TRYLOCK)) {
  463. /* wait for buffer ownership */
  464. PB_TRACE(pb, "get_lock", 0);
  465. pagebuf_lock(pb);
  466. XFS_STATS_INC(pb_get_locked_waited);
  467. } else {
  468. /* We asked for a trylock and failed, no need
  469. * to look at file offset and length here, we
  470. * know that this pagebuf at least overlaps our
  471. * pagebuf and is locked, therefore our buffer
  472. * either does not exist, or is this buffer
  473. */
  474. pagebuf_rele(pb);
  475. XFS_STATS_INC(pb_busy_locked);
  476. return (NULL);
  477. }
  478. } else {
  479. /* trylock worked */
  480. PB_SET_OWNER(pb);
  481. }
  482. if (pb->pb_flags & PBF_STALE) {
  483. ASSERT((pb->pb_flags & _PBF_DELWRI_Q) == 0);
  484. pb->pb_flags &= PBF_MAPPED;
  485. }
  486. PB_TRACE(pb, "got_lock", 0);
  487. XFS_STATS_INC(pb_get_locked);
  488. return (pb);
  489. }
  490. /*
  491. * xfs_buf_get_flags assembles a buffer covering the specified range.
  492. *
  493. * Storage in memory for all portions of the buffer will be allocated,
  494. * although backing storage may not be.
  495. */
  496. xfs_buf_t *
  497. xfs_buf_get_flags( /* allocate a buffer */
  498. xfs_buftarg_t *target,/* target for buffer */
  499. loff_t ioff, /* starting offset of range */
  500. size_t isize, /* length of range */
  501. page_buf_flags_t flags) /* PBF_TRYLOCK */
  502. {
  503. xfs_buf_t *pb, *new_pb;
  504. int error = 0, i;
  505. new_pb = pagebuf_allocate(flags);
  506. if (unlikely(!new_pb))
  507. return NULL;
  508. pb = _pagebuf_find(target, ioff, isize, flags, new_pb);
  509. if (pb == new_pb) {
  510. error = _pagebuf_lookup_pages(pb, flags);
  511. if (error)
  512. goto no_buffer;
  513. } else {
  514. pagebuf_deallocate(new_pb);
  515. if (unlikely(pb == NULL))
  516. return NULL;
  517. }
  518. for (i = 0; i < pb->pb_page_count; i++)
  519. mark_page_accessed(pb->pb_pages[i]);
  520. if (!(pb->pb_flags & PBF_MAPPED)) {
  521. error = _pagebuf_map_pages(pb, flags);
  522. if (unlikely(error)) {
  523. printk(KERN_WARNING "%s: failed to map pages\n",
  524. __FUNCTION__);
  525. goto no_buffer;
  526. }
  527. }
  528. XFS_STATS_INC(pb_get);
  529. /*
  530. * Always fill in the block number now, the mapped cases can do
  531. * their own overlay of this later.
  532. */
  533. pb->pb_bn = ioff;
  534. pb->pb_count_desired = pb->pb_buffer_length;
  535. PB_TRACE(pb, "get", (unsigned long)flags);
  536. return pb;
  537. no_buffer:
  538. if (flags & (PBF_LOCK | PBF_TRYLOCK))
  539. pagebuf_unlock(pb);
  540. pagebuf_rele(pb);
  541. return NULL;
  542. }
  543. xfs_buf_t *
  544. xfs_buf_read_flags(
  545. xfs_buftarg_t *target,
  546. loff_t ioff,
  547. size_t isize,
  548. page_buf_flags_t flags)
  549. {
  550. xfs_buf_t *pb;
  551. flags |= PBF_READ;
  552. pb = xfs_buf_get_flags(target, ioff, isize, flags);
  553. if (pb) {
  554. if (!XFS_BUF_ISDONE(pb)) {
  555. PB_TRACE(pb, "read", (unsigned long)flags);
  556. XFS_STATS_INC(pb_get_read);
  557. pagebuf_iostart(pb, flags);
  558. } else if (flags & PBF_ASYNC) {
  559. PB_TRACE(pb, "read_async", (unsigned long)flags);
  560. /*
  561. * Read ahead call which is already satisfied,
  562. * drop the buffer
  563. */
  564. goto no_buffer;
  565. } else {
  566. PB_TRACE(pb, "read_done", (unsigned long)flags);
  567. /* We do not want read in the flags */
  568. pb->pb_flags &= ~PBF_READ;
  569. }
  570. }
  571. return pb;
  572. no_buffer:
  573. if (flags & (PBF_LOCK | PBF_TRYLOCK))
  574. pagebuf_unlock(pb);
  575. pagebuf_rele(pb);
  576. return NULL;
  577. }
  578. /*
  579. * If we are not low on memory then do the readahead in a deadlock
  580. * safe manner.
  581. */
  582. void
  583. pagebuf_readahead(
  584. xfs_buftarg_t *target,
  585. loff_t ioff,
  586. size_t isize,
  587. page_buf_flags_t flags)
  588. {
  589. struct backing_dev_info *bdi;
  590. bdi = target->pbr_mapping->backing_dev_info;
  591. if (bdi_read_congested(bdi))
  592. return;
  593. flags |= (PBF_TRYLOCK|PBF_ASYNC|PBF_READ_AHEAD);
  594. xfs_buf_read_flags(target, ioff, isize, flags);
  595. }
  596. xfs_buf_t *
  597. pagebuf_get_empty(
  598. size_t len,
  599. xfs_buftarg_t *target)
  600. {
  601. xfs_buf_t *pb;
  602. pb = pagebuf_allocate(0);
  603. if (pb)
  604. _pagebuf_initialize(pb, target, 0, len, 0);
  605. return pb;
  606. }
  607. static inline struct page *
  608. mem_to_page(
  609. void *addr)
  610. {
  611. if (((unsigned long)addr < VMALLOC_START) ||
  612. ((unsigned long)addr >= VMALLOC_END)) {
  613. return virt_to_page(addr);
  614. } else {
  615. return vmalloc_to_page(addr);
  616. }
  617. }
  618. int
  619. pagebuf_associate_memory(
  620. xfs_buf_t *pb,
  621. void *mem,
  622. size_t len)
  623. {
  624. int rval;
  625. int i = 0;
  626. size_t ptr;
  627. size_t end, end_cur;
  628. off_t offset;
  629. int page_count;
  630. page_count = PAGE_CACHE_ALIGN(len) >> PAGE_CACHE_SHIFT;
  631. offset = (off_t) mem - ((off_t)mem & PAGE_CACHE_MASK);
  632. if (offset && (len > PAGE_CACHE_SIZE))
  633. page_count++;
  634. /* Free any previous set of page pointers */
  635. if (pb->pb_pages)
  636. _pagebuf_free_pages(pb);
  637. pb->pb_pages = NULL;
  638. pb->pb_addr = mem;
  639. rval = _pagebuf_get_pages(pb, page_count, 0);
  640. if (rval)
  641. return rval;
  642. pb->pb_offset = offset;
  643. ptr = (size_t) mem & PAGE_CACHE_MASK;
  644. end = PAGE_CACHE_ALIGN((size_t) mem + len);
  645. end_cur = end;
  646. /* set up first page */
  647. pb->pb_pages[0] = mem_to_page(mem);
  648. ptr += PAGE_CACHE_SIZE;
  649. pb->pb_page_count = ++i;
  650. while (ptr < end) {
  651. pb->pb_pages[i] = mem_to_page((void *)ptr);
  652. pb->pb_page_count = ++i;
  653. ptr += PAGE_CACHE_SIZE;
  654. }
  655. pb->pb_locked = 0;
  656. pb->pb_count_desired = pb->pb_buffer_length = len;
  657. pb->pb_flags |= PBF_MAPPED;
  658. return 0;
  659. }
  660. xfs_buf_t *
  661. pagebuf_get_no_daddr(
  662. size_t len,
  663. xfs_buftarg_t *target)
  664. {
  665. size_t malloc_len = len;
  666. xfs_buf_t *bp;
  667. void *data;
  668. int error;
  669. bp = pagebuf_allocate(0);
  670. if (unlikely(bp == NULL))
  671. goto fail;
  672. _pagebuf_initialize(bp, target, 0, len, 0);
  673. try_again:
  674. data = kmem_alloc(malloc_len, KM_SLEEP | KM_MAYFAIL);
  675. if (unlikely(data == NULL))
  676. goto fail_free_buf;
  677. /* check whether alignment matches.. */
  678. if ((__psunsigned_t)data !=
  679. ((__psunsigned_t)data & ~target->pbr_smask)) {
  680. /* .. else double the size and try again */
  681. kmem_free(data, malloc_len);
  682. malloc_len <<= 1;
  683. goto try_again;
  684. }
  685. error = pagebuf_associate_memory(bp, data, len);
  686. if (error)
  687. goto fail_free_mem;
  688. bp->pb_flags |= _PBF_KMEM_ALLOC;
  689. pagebuf_unlock(bp);
  690. PB_TRACE(bp, "no_daddr", data);
  691. return bp;
  692. fail_free_mem:
  693. kmem_free(data, malloc_len);
  694. fail_free_buf:
  695. pagebuf_free(bp);
  696. fail:
  697. return NULL;
  698. }
  699. /*
  700. * pagebuf_hold
  701. *
  702. * Increment reference count on buffer, to hold the buffer concurrently
  703. * with another thread which may release (free) the buffer asynchronously.
  704. *
  705. * Must hold the buffer already to call this function.
  706. */
  707. void
  708. pagebuf_hold(
  709. xfs_buf_t *pb)
  710. {
  711. atomic_inc(&pb->pb_hold);
  712. PB_TRACE(pb, "hold", 0);
  713. }
  714. /*
  715. * pagebuf_rele
  716. *
  717. * pagebuf_rele releases a hold on the specified buffer. If the
  718. * the hold count is 1, pagebuf_rele calls pagebuf_free.
  719. */
  720. void
  721. pagebuf_rele(
  722. xfs_buf_t *pb)
  723. {
  724. xfs_bufhash_t *hash = pb->pb_hash;
  725. PB_TRACE(pb, "rele", pb->pb_relse);
  726. /*
  727. * pagebuf_lookup buffers are not hashed, not delayed write,
  728. * and don't have their own release routines. Special case.
  729. */
  730. if (unlikely(!hash)) {
  731. ASSERT(!pb->pb_relse);
  732. if (atomic_dec_and_test(&pb->pb_hold))
  733. xfs_buf_free(pb);
  734. return;
  735. }
  736. if (atomic_dec_and_lock(&pb->pb_hold, &hash->bh_lock)) {
  737. int do_free = 1;
  738. if (pb->pb_relse) {
  739. atomic_inc(&pb->pb_hold);
  740. spin_unlock(&hash->bh_lock);
  741. (*(pb->pb_relse)) (pb);
  742. spin_lock(&hash->bh_lock);
  743. do_free = 0;
  744. }
  745. if (pb->pb_flags & PBF_FS_MANAGED) {
  746. do_free = 0;
  747. }
  748. if (do_free) {
  749. ASSERT((pb->pb_flags & (PBF_DELWRI|_PBF_DELWRI_Q)) == 0);
  750. list_del_init(&pb->pb_hash_list);
  751. spin_unlock(&hash->bh_lock);
  752. pagebuf_free(pb);
  753. } else {
  754. spin_unlock(&hash->bh_lock);
  755. }
  756. } else {
  757. /*
  758. * Catch reference count leaks
  759. */
  760. ASSERT(atomic_read(&pb->pb_hold) >= 0);
  761. }
  762. }
  763. /*
  764. * Mutual exclusion on buffers. Locking model:
  765. *
  766. * Buffers associated with inodes for which buffer locking
  767. * is not enabled are not protected by semaphores, and are
  768. * assumed to be exclusively owned by the caller. There is a
  769. * spinlock in the buffer, used by the caller when concurrent
  770. * access is possible.
  771. */
  772. /*
  773. * pagebuf_cond_lock
  774. *
  775. * pagebuf_cond_lock locks a buffer object, if it is not already locked.
  776. * Note that this in no way
  777. * locks the underlying pages, so it is only useful for synchronizing
  778. * concurrent use of page buffer objects, not for synchronizing independent
  779. * access to the underlying pages.
  780. */
  781. int
  782. pagebuf_cond_lock( /* lock buffer, if not locked */
  783. /* returns -EBUSY if locked) */
  784. xfs_buf_t *pb)
  785. {
  786. int locked;
  787. locked = down_trylock(&pb->pb_sema) == 0;
  788. if (locked) {
  789. PB_SET_OWNER(pb);
  790. }
  791. PB_TRACE(pb, "cond_lock", (long)locked);
  792. return(locked ? 0 : -EBUSY);
  793. }
  794. #if defined(DEBUG) || defined(XFS_BLI_TRACE)
  795. /*
  796. * pagebuf_lock_value
  797. *
  798. * Return lock value for a pagebuf
  799. */
  800. int
  801. pagebuf_lock_value(
  802. xfs_buf_t *pb)
  803. {
  804. return(atomic_read(&pb->pb_sema.count));
  805. }
  806. #endif
  807. /*
  808. * pagebuf_lock
  809. *
  810. * pagebuf_lock locks a buffer object. Note that this in no way
  811. * locks the underlying pages, so it is only useful for synchronizing
  812. * concurrent use of page buffer objects, not for synchronizing independent
  813. * access to the underlying pages.
  814. */
  815. int
  816. pagebuf_lock(
  817. xfs_buf_t *pb)
  818. {
  819. PB_TRACE(pb, "lock", 0);
  820. if (atomic_read(&pb->pb_io_remaining))
  821. blk_run_address_space(pb->pb_target->pbr_mapping);
  822. down(&pb->pb_sema);
  823. PB_SET_OWNER(pb);
  824. PB_TRACE(pb, "locked", 0);
  825. return 0;
  826. }
  827. /*
  828. * pagebuf_unlock
  829. *
  830. * pagebuf_unlock releases the lock on the buffer object created by
  831. * pagebuf_lock or pagebuf_cond_lock (not any pinning of underlying pages
  832. * created by pagebuf_pin).
  833. *
  834. * If the buffer is marked delwri but is not queued, do so before we
  835. * unlock the buffer as we need to set flags correctly. We also need to
  836. * take a reference for the delwri queue because the unlocker is going to
  837. * drop their's and they don't know we just queued it.
  838. */
  839. void
  840. pagebuf_unlock( /* unlock buffer */
  841. xfs_buf_t *pb) /* buffer to unlock */
  842. {
  843. if ((pb->pb_flags & (PBF_DELWRI|_PBF_DELWRI_Q)) == PBF_DELWRI) {
  844. atomic_inc(&pb->pb_hold);
  845. pb->pb_flags |= PBF_ASYNC;
  846. pagebuf_delwri_queue(pb, 0);
  847. }
  848. PB_CLEAR_OWNER(pb);
  849. up(&pb->pb_sema);
  850. PB_TRACE(pb, "unlock", 0);
  851. }
  852. /*
  853. * Pinning Buffer Storage in Memory
  854. */
  855. /*
  856. * pagebuf_pin
  857. *
  858. * pagebuf_pin locks all of the memory represented by a buffer in
  859. * memory. Multiple calls to pagebuf_pin and pagebuf_unpin, for
  860. * the same or different buffers affecting a given page, will
  861. * properly count the number of outstanding "pin" requests. The
  862. * buffer may be released after the pagebuf_pin and a different
  863. * buffer used when calling pagebuf_unpin, if desired.
  864. * pagebuf_pin should be used by the file system when it wants be
  865. * assured that no attempt will be made to force the affected
  866. * memory to disk. It does not assure that a given logical page
  867. * will not be moved to a different physical page.
  868. */
  869. void
  870. pagebuf_pin(
  871. xfs_buf_t *pb)
  872. {
  873. atomic_inc(&pb->pb_pin_count);
  874. PB_TRACE(pb, "pin", (long)pb->pb_pin_count.counter);
  875. }
  876. /*
  877. * pagebuf_unpin
  878. *
  879. * pagebuf_unpin reverses the locking of memory performed by
  880. * pagebuf_pin. Note that both functions affected the logical
  881. * pages associated with the buffer, not the buffer itself.
  882. */
  883. void
  884. pagebuf_unpin(
  885. xfs_buf_t *pb)
  886. {
  887. if (atomic_dec_and_test(&pb->pb_pin_count)) {
  888. wake_up_all(&pb->pb_waiters);
  889. }
  890. PB_TRACE(pb, "unpin", (long)pb->pb_pin_count.counter);
  891. }
  892. int
  893. pagebuf_ispin(
  894. xfs_buf_t *pb)
  895. {
  896. return atomic_read(&pb->pb_pin_count);
  897. }
  898. /*
  899. * pagebuf_wait_unpin
  900. *
  901. * pagebuf_wait_unpin waits until all of the memory associated
  902. * with the buffer is not longer locked in memory. It returns
  903. * immediately if none of the affected pages are locked.
  904. */
  905. static inline void
  906. _pagebuf_wait_unpin(
  907. xfs_buf_t *pb)
  908. {
  909. DECLARE_WAITQUEUE (wait, current);
  910. if (atomic_read(&pb->pb_pin_count) == 0)
  911. return;
  912. add_wait_queue(&pb->pb_waiters, &wait);
  913. for (;;) {
  914. set_current_state(TASK_UNINTERRUPTIBLE);
  915. if (atomic_read(&pb->pb_pin_count) == 0)
  916. break;
  917. if (atomic_read(&pb->pb_io_remaining))
  918. blk_run_address_space(pb->pb_target->pbr_mapping);
  919. schedule();
  920. }
  921. remove_wait_queue(&pb->pb_waiters, &wait);
  922. set_current_state(TASK_RUNNING);
  923. }
  924. /*
  925. * Buffer Utility Routines
  926. */
  927. /*
  928. * pagebuf_iodone
  929. *
  930. * pagebuf_iodone marks a buffer for which I/O is in progress
  931. * done with respect to that I/O. The pb_iodone routine, if
  932. * present, will be called as a side-effect.
  933. */
  934. STATIC void
  935. pagebuf_iodone_work(
  936. void *v)
  937. {
  938. xfs_buf_t *bp = (xfs_buf_t *)v;
  939. if (bp->pb_iodone)
  940. (*(bp->pb_iodone))(bp);
  941. else if (bp->pb_flags & PBF_ASYNC)
  942. xfs_buf_relse(bp);
  943. }
  944. void
  945. pagebuf_iodone(
  946. xfs_buf_t *pb,
  947. int schedule)
  948. {
  949. pb->pb_flags &= ~(PBF_READ | PBF_WRITE);
  950. if (pb->pb_error == 0)
  951. pb->pb_flags |= PBF_DONE;
  952. PB_TRACE(pb, "iodone", pb->pb_iodone);
  953. if ((pb->pb_iodone) || (pb->pb_flags & PBF_ASYNC)) {
  954. if (schedule) {
  955. INIT_WORK(&pb->pb_iodone_work, pagebuf_iodone_work, pb);
  956. queue_work(xfslogd_workqueue, &pb->pb_iodone_work);
  957. } else {
  958. pagebuf_iodone_work(pb);
  959. }
  960. } else {
  961. up(&pb->pb_iodonesema);
  962. }
  963. }
  964. /*
  965. * pagebuf_ioerror
  966. *
  967. * pagebuf_ioerror sets the error code for a buffer.
  968. */
  969. void
  970. pagebuf_ioerror( /* mark/clear buffer error flag */
  971. xfs_buf_t *pb, /* buffer to mark */
  972. int error) /* error to store (0 if none) */
  973. {
  974. ASSERT(error >= 0 && error <= 0xffff);
  975. pb->pb_error = (unsigned short)error;
  976. PB_TRACE(pb, "ioerror", (unsigned long)error);
  977. }
  978. /*
  979. * pagebuf_iostart
  980. *
  981. * pagebuf_iostart initiates I/O on a buffer, based on the flags supplied.
  982. * If necessary, it will arrange for any disk space allocation required,
  983. * and it will break up the request if the block mappings require it.
  984. * The pb_iodone routine in the buffer supplied will only be called
  985. * when all of the subsidiary I/O requests, if any, have been completed.
  986. * pagebuf_iostart calls the pagebuf_ioinitiate routine or
  987. * pagebuf_iorequest, if the former routine is not defined, to start
  988. * the I/O on a given low-level request.
  989. */
  990. int
  991. pagebuf_iostart( /* start I/O on a buffer */
  992. xfs_buf_t *pb, /* buffer to start */
  993. page_buf_flags_t flags) /* PBF_LOCK, PBF_ASYNC, PBF_READ, */
  994. /* PBF_WRITE, PBF_DELWRI, */
  995. /* PBF_DONT_BLOCK */
  996. {
  997. int status = 0;
  998. PB_TRACE(pb, "iostart", (unsigned long)flags);
  999. if (flags & PBF_DELWRI) {
  1000. pb->pb_flags &= ~(PBF_READ | PBF_WRITE | PBF_ASYNC);
  1001. pb->pb_flags |= flags & (PBF_DELWRI | PBF_ASYNC);
  1002. pagebuf_delwri_queue(pb, 1);
  1003. return status;
  1004. }
  1005. pb->pb_flags &= ~(PBF_READ | PBF_WRITE | PBF_ASYNC | PBF_DELWRI | \
  1006. PBF_READ_AHEAD | _PBF_RUN_QUEUES);
  1007. pb->pb_flags |= flags & (PBF_READ | PBF_WRITE | PBF_ASYNC | \
  1008. PBF_READ_AHEAD | _PBF_RUN_QUEUES);
  1009. BUG_ON(pb->pb_bn == XFS_BUF_DADDR_NULL);
  1010. /* For writes allow an alternate strategy routine to precede
  1011. * the actual I/O request (which may not be issued at all in
  1012. * a shutdown situation, for example).
  1013. */
  1014. status = (flags & PBF_WRITE) ?
  1015. pagebuf_iostrategy(pb) : pagebuf_iorequest(pb);
  1016. /* Wait for I/O if we are not an async request.
  1017. * Note: async I/O request completion will release the buffer,
  1018. * and that can already be done by this point. So using the
  1019. * buffer pointer from here on, after async I/O, is invalid.
  1020. */
  1021. if (!status && !(flags & PBF_ASYNC))
  1022. status = pagebuf_iowait(pb);
  1023. return status;
  1024. }
  1025. /*
  1026. * Helper routine for pagebuf_iorequest
  1027. */
  1028. STATIC __inline__ int
  1029. _pagebuf_iolocked(
  1030. xfs_buf_t *pb)
  1031. {
  1032. ASSERT(pb->pb_flags & (PBF_READ|PBF_WRITE));
  1033. if (pb->pb_flags & PBF_READ)
  1034. return pb->pb_locked;
  1035. return 0;
  1036. }
  1037. STATIC __inline__ void
  1038. _pagebuf_iodone(
  1039. xfs_buf_t *pb,
  1040. int schedule)
  1041. {
  1042. if (atomic_dec_and_test(&pb->pb_io_remaining) == 1) {
  1043. pb->pb_locked = 0;
  1044. pagebuf_iodone(pb, schedule);
  1045. }
  1046. }
  1047. STATIC int
  1048. bio_end_io_pagebuf(
  1049. struct bio *bio,
  1050. unsigned int bytes_done,
  1051. int error)
  1052. {
  1053. xfs_buf_t *pb = (xfs_buf_t *)bio->bi_private;
  1054. unsigned int blocksize = pb->pb_target->pbr_bsize;
  1055. struct bio_vec *bvec = bio->bi_io_vec + bio->bi_vcnt - 1;
  1056. if (bio->bi_size)
  1057. return 1;
  1058. if (!test_bit(BIO_UPTODATE, &bio->bi_flags))
  1059. pb->pb_error = EIO;
  1060. do {
  1061. struct page *page = bvec->bv_page;
  1062. if (unlikely(pb->pb_error)) {
  1063. if (pb->pb_flags & PBF_READ)
  1064. ClearPageUptodate(page);
  1065. SetPageError(page);
  1066. } else if (blocksize == PAGE_CACHE_SIZE) {
  1067. SetPageUptodate(page);
  1068. } else if (!PagePrivate(page) &&
  1069. (pb->pb_flags & _PBF_PAGE_CACHE)) {
  1070. set_page_region(page, bvec->bv_offset, bvec->bv_len);
  1071. }
  1072. if (--bvec >= bio->bi_io_vec)
  1073. prefetchw(&bvec->bv_page->flags);
  1074. if (_pagebuf_iolocked(pb)) {
  1075. unlock_page(page);
  1076. }
  1077. } while (bvec >= bio->bi_io_vec);
  1078. _pagebuf_iodone(pb, 1);
  1079. bio_put(bio);
  1080. return 0;
  1081. }
  1082. STATIC void
  1083. _pagebuf_ioapply(
  1084. xfs_buf_t *pb)
  1085. {
  1086. int i, rw, map_i, total_nr_pages, nr_pages;
  1087. struct bio *bio;
  1088. int offset = pb->pb_offset;
  1089. int size = pb->pb_count_desired;
  1090. sector_t sector = pb->pb_bn;
  1091. unsigned int blocksize = pb->pb_target->pbr_bsize;
  1092. int locking = _pagebuf_iolocked(pb);
  1093. total_nr_pages = pb->pb_page_count;
  1094. map_i = 0;
  1095. if (pb->pb_flags & _PBF_RUN_QUEUES) {
  1096. pb->pb_flags &= ~_PBF_RUN_QUEUES;
  1097. rw = (pb->pb_flags & PBF_READ) ? READ_SYNC : WRITE_SYNC;
  1098. } else {
  1099. rw = (pb->pb_flags & PBF_READ) ? READ : WRITE;
  1100. }
  1101. if (pb->pb_flags & PBF_ORDERED) {
  1102. ASSERT(!(pb->pb_flags & PBF_READ));
  1103. rw = WRITE_BARRIER;
  1104. }
  1105. /* Special code path for reading a sub page size pagebuf in --
  1106. * we populate up the whole page, and hence the other metadata
  1107. * in the same page. This optimization is only valid when the
  1108. * filesystem block size and the page size are equal.
  1109. */
  1110. if ((pb->pb_buffer_length < PAGE_CACHE_SIZE) &&
  1111. (pb->pb_flags & PBF_READ) && locking &&
  1112. (blocksize == PAGE_CACHE_SIZE)) {
  1113. bio = bio_alloc(GFP_NOIO, 1);
  1114. bio->bi_bdev = pb->pb_target->pbr_bdev;
  1115. bio->bi_sector = sector - (offset >> BBSHIFT);
  1116. bio->bi_end_io = bio_end_io_pagebuf;
  1117. bio->bi_private = pb;
  1118. bio_add_page(bio, pb->pb_pages[0], PAGE_CACHE_SIZE, 0);
  1119. size = 0;
  1120. atomic_inc(&pb->pb_io_remaining);
  1121. goto submit_io;
  1122. }
  1123. /* Lock down the pages which we need to for the request */
  1124. if (locking && (pb->pb_flags & PBF_WRITE) && (pb->pb_locked == 0)) {
  1125. for (i = 0; size; i++) {
  1126. int nbytes = PAGE_CACHE_SIZE - offset;
  1127. struct page *page = pb->pb_pages[i];
  1128. if (nbytes > size)
  1129. nbytes = size;
  1130. lock_page(page);
  1131. size -= nbytes;
  1132. offset = 0;
  1133. }
  1134. offset = pb->pb_offset;
  1135. size = pb->pb_count_desired;
  1136. }
  1137. next_chunk:
  1138. atomic_inc(&pb->pb_io_remaining);
  1139. nr_pages = BIO_MAX_SECTORS >> (PAGE_SHIFT - BBSHIFT);
  1140. if (nr_pages > total_nr_pages)
  1141. nr_pages = total_nr_pages;
  1142. bio = bio_alloc(GFP_NOIO, nr_pages);
  1143. bio->bi_bdev = pb->pb_target->pbr_bdev;
  1144. bio->bi_sector = sector;
  1145. bio->bi_end_io = bio_end_io_pagebuf;
  1146. bio->bi_private = pb;
  1147. for (; size && nr_pages; nr_pages--, map_i++) {
  1148. int nbytes = PAGE_CACHE_SIZE - offset;
  1149. if (nbytes > size)
  1150. nbytes = size;
  1151. if (bio_add_page(bio, pb->pb_pages[map_i],
  1152. nbytes, offset) < nbytes)
  1153. break;
  1154. offset = 0;
  1155. sector += nbytes >> BBSHIFT;
  1156. size -= nbytes;
  1157. total_nr_pages--;
  1158. }
  1159. submit_io:
  1160. if (likely(bio->bi_size)) {
  1161. submit_bio(rw, bio);
  1162. if (size)
  1163. goto next_chunk;
  1164. } else {
  1165. bio_put(bio);
  1166. pagebuf_ioerror(pb, EIO);
  1167. }
  1168. }
  1169. /*
  1170. * pagebuf_iorequest -- the core I/O request routine.
  1171. */
  1172. int
  1173. pagebuf_iorequest( /* start real I/O */
  1174. xfs_buf_t *pb) /* buffer to convey to device */
  1175. {
  1176. PB_TRACE(pb, "iorequest", 0);
  1177. if (pb->pb_flags & PBF_DELWRI) {
  1178. pagebuf_delwri_queue(pb, 1);
  1179. return 0;
  1180. }
  1181. if (pb->pb_flags & PBF_WRITE) {
  1182. _pagebuf_wait_unpin(pb);
  1183. }
  1184. pagebuf_hold(pb);
  1185. /* Set the count to 1 initially, this will stop an I/O
  1186. * completion callout which happens before we have started
  1187. * all the I/O from calling pagebuf_iodone too early.
  1188. */
  1189. atomic_set(&pb->pb_io_remaining, 1);
  1190. _pagebuf_ioapply(pb);
  1191. _pagebuf_iodone(pb, 0);
  1192. pagebuf_rele(pb);
  1193. return 0;
  1194. }
  1195. /*
  1196. * pagebuf_iowait
  1197. *
  1198. * pagebuf_iowait waits for I/O to complete on the buffer supplied.
  1199. * It returns immediately if no I/O is pending. In any case, it returns
  1200. * the error code, if any, or 0 if there is no error.
  1201. */
  1202. int
  1203. pagebuf_iowait(
  1204. xfs_buf_t *pb)
  1205. {
  1206. PB_TRACE(pb, "iowait", 0);
  1207. if (atomic_read(&pb->pb_io_remaining))
  1208. blk_run_address_space(pb->pb_target->pbr_mapping);
  1209. down(&pb->pb_iodonesema);
  1210. PB_TRACE(pb, "iowaited", (long)pb->pb_error);
  1211. return pb->pb_error;
  1212. }
  1213. caddr_t
  1214. pagebuf_offset(
  1215. xfs_buf_t *pb,
  1216. size_t offset)
  1217. {
  1218. struct page *page;
  1219. offset += pb->pb_offset;
  1220. page = pb->pb_pages[offset >> PAGE_CACHE_SHIFT];
  1221. return (caddr_t) page_address(page) + (offset & (PAGE_CACHE_SIZE - 1));
  1222. }
  1223. /*
  1224. * pagebuf_iomove
  1225. *
  1226. * Move data into or out of a buffer.
  1227. */
  1228. void
  1229. pagebuf_iomove(
  1230. xfs_buf_t *pb, /* buffer to process */
  1231. size_t boff, /* starting buffer offset */
  1232. size_t bsize, /* length to copy */
  1233. caddr_t data, /* data address */
  1234. page_buf_rw_t mode) /* read/write flag */
  1235. {
  1236. size_t bend, cpoff, csize;
  1237. struct page *page;
  1238. bend = boff + bsize;
  1239. while (boff < bend) {
  1240. page = pb->pb_pages[page_buf_btoct(boff + pb->pb_offset)];
  1241. cpoff = page_buf_poff(boff + pb->pb_offset);
  1242. csize = min_t(size_t,
  1243. PAGE_CACHE_SIZE-cpoff, pb->pb_count_desired-boff);
  1244. ASSERT(((csize + cpoff) <= PAGE_CACHE_SIZE));
  1245. switch (mode) {
  1246. case PBRW_ZERO:
  1247. memset(page_address(page) + cpoff, 0, csize);
  1248. break;
  1249. case PBRW_READ:
  1250. memcpy(data, page_address(page) + cpoff, csize);
  1251. break;
  1252. case PBRW_WRITE:
  1253. memcpy(page_address(page) + cpoff, data, csize);
  1254. }
  1255. boff += csize;
  1256. data += csize;
  1257. }
  1258. }
  1259. /*
  1260. * Handling of buftargs.
  1261. */
  1262. /*
  1263. * Wait for any bufs with callbacks that have been submitted but
  1264. * have not yet returned... walk the hash list for the target.
  1265. */
  1266. void
  1267. xfs_wait_buftarg(
  1268. xfs_buftarg_t *btp)
  1269. {
  1270. xfs_buf_t *bp, *n;
  1271. xfs_bufhash_t *hash;
  1272. uint i;
  1273. for (i = 0; i < (1 << btp->bt_hashshift); i++) {
  1274. hash = &btp->bt_hash[i];
  1275. again:
  1276. spin_lock(&hash->bh_lock);
  1277. list_for_each_entry_safe(bp, n, &hash->bh_list, pb_hash_list) {
  1278. ASSERT(btp == bp->pb_target);
  1279. if (!(bp->pb_flags & PBF_FS_MANAGED)) {
  1280. spin_unlock(&hash->bh_lock);
  1281. /*
  1282. * Catch superblock reference count leaks
  1283. * immediately
  1284. */
  1285. BUG_ON(bp->pb_bn == 0);
  1286. delay(100);
  1287. goto again;
  1288. }
  1289. }
  1290. spin_unlock(&hash->bh_lock);
  1291. }
  1292. }
  1293. /*
  1294. * Allocate buffer hash table for a given target.
  1295. * For devices containing metadata (i.e. not the log/realtime devices)
  1296. * we need to allocate a much larger hash table.
  1297. */
  1298. STATIC void
  1299. xfs_alloc_bufhash(
  1300. xfs_buftarg_t *btp,
  1301. int external)
  1302. {
  1303. unsigned int i;
  1304. btp->bt_hashshift = external ? 3 : 8; /* 8 or 256 buckets */
  1305. btp->bt_hashmask = (1 << btp->bt_hashshift) - 1;
  1306. btp->bt_hash = kmem_zalloc((1 << btp->bt_hashshift) *
  1307. sizeof(xfs_bufhash_t), KM_SLEEP);
  1308. for (i = 0; i < (1 << btp->bt_hashshift); i++) {
  1309. spin_lock_init(&btp->bt_hash[i].bh_lock);
  1310. INIT_LIST_HEAD(&btp->bt_hash[i].bh_list);
  1311. }
  1312. }
  1313. STATIC void
  1314. xfs_free_bufhash(
  1315. xfs_buftarg_t *btp)
  1316. {
  1317. kmem_free(btp->bt_hash,
  1318. (1 << btp->bt_hashshift) * sizeof(xfs_bufhash_t));
  1319. btp->bt_hash = NULL;
  1320. }
  1321. void
  1322. xfs_free_buftarg(
  1323. xfs_buftarg_t *btp,
  1324. int external)
  1325. {
  1326. xfs_flush_buftarg(btp, 1);
  1327. if (external)
  1328. xfs_blkdev_put(btp->pbr_bdev);
  1329. xfs_free_bufhash(btp);
  1330. iput(btp->pbr_mapping->host);
  1331. kmem_free(btp, sizeof(*btp));
  1332. }
  1333. STATIC int
  1334. xfs_setsize_buftarg_flags(
  1335. xfs_buftarg_t *btp,
  1336. unsigned int blocksize,
  1337. unsigned int sectorsize,
  1338. int verbose)
  1339. {
  1340. btp->pbr_bsize = blocksize;
  1341. btp->pbr_sshift = ffs(sectorsize) - 1;
  1342. btp->pbr_smask = sectorsize - 1;
  1343. if (set_blocksize(btp->pbr_bdev, sectorsize)) {
  1344. printk(KERN_WARNING
  1345. "XFS: Cannot set_blocksize to %u on device %s\n",
  1346. sectorsize, XFS_BUFTARG_NAME(btp));
  1347. return EINVAL;
  1348. }
  1349. if (verbose &&
  1350. (PAGE_CACHE_SIZE / BITS_PER_LONG) > sectorsize) {
  1351. printk(KERN_WARNING
  1352. "XFS: %u byte sectors in use on device %s. "
  1353. "This is suboptimal; %u or greater is ideal.\n",
  1354. sectorsize, XFS_BUFTARG_NAME(btp),
  1355. (unsigned int)PAGE_CACHE_SIZE / BITS_PER_LONG);
  1356. }
  1357. return 0;
  1358. }
  1359. /*
  1360. * When allocating the initial buffer target we have not yet
  1361. * read in the superblock, so don't know what sized sectors
  1362. * are being used is at this early stage. Play safe.
  1363. */
  1364. STATIC int
  1365. xfs_setsize_buftarg_early(
  1366. xfs_buftarg_t *btp,
  1367. struct block_device *bdev)
  1368. {
  1369. return xfs_setsize_buftarg_flags(btp,
  1370. PAGE_CACHE_SIZE, bdev_hardsect_size(bdev), 0);
  1371. }
  1372. int
  1373. xfs_setsize_buftarg(
  1374. xfs_buftarg_t *btp,
  1375. unsigned int blocksize,
  1376. unsigned int sectorsize)
  1377. {
  1378. return xfs_setsize_buftarg_flags(btp, blocksize, sectorsize, 1);
  1379. }
  1380. STATIC int
  1381. xfs_mapping_buftarg(
  1382. xfs_buftarg_t *btp,
  1383. struct block_device *bdev)
  1384. {
  1385. struct backing_dev_info *bdi;
  1386. struct inode *inode;
  1387. struct address_space *mapping;
  1388. static struct address_space_operations mapping_aops = {
  1389. .sync_page = block_sync_page,
  1390. };
  1391. inode = new_inode(bdev->bd_inode->i_sb);
  1392. if (!inode) {
  1393. printk(KERN_WARNING
  1394. "XFS: Cannot allocate mapping inode for device %s\n",
  1395. XFS_BUFTARG_NAME(btp));
  1396. return ENOMEM;
  1397. }
  1398. inode->i_mode = S_IFBLK;
  1399. inode->i_bdev = bdev;
  1400. inode->i_rdev = bdev->bd_dev;
  1401. bdi = blk_get_backing_dev_info(bdev);
  1402. if (!bdi)
  1403. bdi = &default_backing_dev_info;
  1404. mapping = &inode->i_data;
  1405. mapping->a_ops = &mapping_aops;
  1406. mapping->backing_dev_info = bdi;
  1407. mapping_set_gfp_mask(mapping, GFP_NOFS);
  1408. btp->pbr_mapping = mapping;
  1409. return 0;
  1410. }
  1411. xfs_buftarg_t *
  1412. xfs_alloc_buftarg(
  1413. struct block_device *bdev,
  1414. int external)
  1415. {
  1416. xfs_buftarg_t *btp;
  1417. btp = kmem_zalloc(sizeof(*btp), KM_SLEEP);
  1418. btp->pbr_dev = bdev->bd_dev;
  1419. btp->pbr_bdev = bdev;
  1420. if (xfs_setsize_buftarg_early(btp, bdev))
  1421. goto error;
  1422. if (xfs_mapping_buftarg(btp, bdev))
  1423. goto error;
  1424. xfs_alloc_bufhash(btp, external);
  1425. return btp;
  1426. error:
  1427. kmem_free(btp, sizeof(*btp));
  1428. return NULL;
  1429. }
  1430. /*
  1431. * Pagebuf delayed write buffer handling
  1432. */
  1433. STATIC LIST_HEAD(pbd_delwrite_queue);
  1434. STATIC DEFINE_SPINLOCK(pbd_delwrite_lock);
  1435. STATIC void
  1436. pagebuf_delwri_queue(
  1437. xfs_buf_t *pb,
  1438. int unlock)
  1439. {
  1440. PB_TRACE(pb, "delwri_q", (long)unlock);
  1441. ASSERT((pb->pb_flags & (PBF_DELWRI|PBF_ASYNC)) ==
  1442. (PBF_DELWRI|PBF_ASYNC));
  1443. spin_lock(&pbd_delwrite_lock);
  1444. /* If already in the queue, dequeue and place at tail */
  1445. if (!list_empty(&pb->pb_list)) {
  1446. ASSERT(pb->pb_flags & _PBF_DELWRI_Q);
  1447. if (unlock) {
  1448. atomic_dec(&pb->pb_hold);
  1449. }
  1450. list_del(&pb->pb_list);
  1451. }
  1452. pb->pb_flags |= _PBF_DELWRI_Q;
  1453. list_add_tail(&pb->pb_list, &pbd_delwrite_queue);
  1454. pb->pb_queuetime = jiffies;
  1455. spin_unlock(&pbd_delwrite_lock);
  1456. if (unlock)
  1457. pagebuf_unlock(pb);
  1458. }
  1459. void
  1460. pagebuf_delwri_dequeue(
  1461. xfs_buf_t *pb)
  1462. {
  1463. int dequeued = 0;
  1464. spin_lock(&pbd_delwrite_lock);
  1465. if ((pb->pb_flags & PBF_DELWRI) && !list_empty(&pb->pb_list)) {
  1466. ASSERT(pb->pb_flags & _PBF_DELWRI_Q);
  1467. list_del_init(&pb->pb_list);
  1468. dequeued = 1;
  1469. }
  1470. pb->pb_flags &= ~(PBF_DELWRI|_PBF_DELWRI_Q);
  1471. spin_unlock(&pbd_delwrite_lock);
  1472. if (dequeued)
  1473. pagebuf_rele(pb);
  1474. PB_TRACE(pb, "delwri_dq", (long)dequeued);
  1475. }
  1476. STATIC void
  1477. pagebuf_runall_queues(
  1478. struct workqueue_struct *queue)
  1479. {
  1480. flush_workqueue(queue);
  1481. }
  1482. /* Defines for pagebuf daemon */
  1483. STATIC struct task_struct *xfsbufd_task;
  1484. STATIC int xfsbufd_force_flush;
  1485. STATIC int xfsbufd_force_sleep;
  1486. STATIC int
  1487. xfsbufd_wakeup(
  1488. int priority,
  1489. gfp_t mask)
  1490. {
  1491. if (xfsbufd_force_sleep)
  1492. return 0;
  1493. xfsbufd_force_flush = 1;
  1494. barrier();
  1495. wake_up_process(xfsbufd_task);
  1496. return 0;
  1497. }
  1498. STATIC int
  1499. xfsbufd(
  1500. void *data)
  1501. {
  1502. struct list_head tmp;
  1503. unsigned long age;
  1504. xfs_buftarg_t *target;
  1505. xfs_buf_t *pb, *n;
  1506. current->flags |= PF_MEMALLOC;
  1507. INIT_LIST_HEAD(&tmp);
  1508. do {
  1509. if (unlikely(freezing(current))) {
  1510. xfsbufd_force_sleep = 1;
  1511. refrigerator();
  1512. } else {
  1513. xfsbufd_force_sleep = 0;
  1514. }
  1515. schedule_timeout_interruptible
  1516. (xfs_buf_timer_centisecs * msecs_to_jiffies(10));
  1517. age = xfs_buf_age_centisecs * msecs_to_jiffies(10);
  1518. spin_lock(&pbd_delwrite_lock);
  1519. list_for_each_entry_safe(pb, n, &pbd_delwrite_queue, pb_list) {
  1520. PB_TRACE(pb, "walkq1", (long)pagebuf_ispin(pb));
  1521. ASSERT(pb->pb_flags & PBF_DELWRI);
  1522. if (!pagebuf_ispin(pb) && !pagebuf_cond_lock(pb)) {
  1523. if (!xfsbufd_force_flush &&
  1524. time_before(jiffies,
  1525. pb->pb_queuetime + age)) {
  1526. pagebuf_unlock(pb);
  1527. break;
  1528. }
  1529. pb->pb_flags &= ~(PBF_DELWRI|_PBF_DELWRI_Q);
  1530. pb->pb_flags |= PBF_WRITE;
  1531. list_move(&pb->pb_list, &tmp);
  1532. }
  1533. }
  1534. spin_unlock(&pbd_delwrite_lock);
  1535. while (!list_empty(&tmp)) {
  1536. pb = list_entry(tmp.next, xfs_buf_t, pb_list);
  1537. target = pb->pb_target;
  1538. list_del_init(&pb->pb_list);
  1539. pagebuf_iostrategy(pb);
  1540. blk_run_address_space(target->pbr_mapping);
  1541. }
  1542. if (as_list_len > 0)
  1543. purge_addresses();
  1544. xfsbufd_force_flush = 0;
  1545. } while (!kthread_should_stop());
  1546. return 0;
  1547. }
  1548. /*
  1549. * Go through all incore buffers, and release buffers if they belong to
  1550. * the given device. This is used in filesystem error handling to
  1551. * preserve the consistency of its metadata.
  1552. */
  1553. int
  1554. xfs_flush_buftarg(
  1555. xfs_buftarg_t *target,
  1556. int wait)
  1557. {
  1558. struct list_head tmp;
  1559. xfs_buf_t *pb, *n;
  1560. int pincount = 0;
  1561. pagebuf_runall_queues(xfsdatad_workqueue);
  1562. pagebuf_runall_queues(xfslogd_workqueue);
  1563. INIT_LIST_HEAD(&tmp);
  1564. spin_lock(&pbd_delwrite_lock);
  1565. list_for_each_entry_safe(pb, n, &pbd_delwrite_queue, pb_list) {
  1566. if (pb->pb_target != target)
  1567. continue;
  1568. ASSERT(pb->pb_flags & (PBF_DELWRI|_PBF_DELWRI_Q));
  1569. PB_TRACE(pb, "walkq2", (long)pagebuf_ispin(pb));
  1570. if (pagebuf_ispin(pb)) {
  1571. pincount++;
  1572. continue;
  1573. }
  1574. list_move(&pb->pb_list, &tmp);
  1575. }
  1576. spin_unlock(&pbd_delwrite_lock);
  1577. /*
  1578. * Dropped the delayed write list lock, now walk the temporary list
  1579. */
  1580. list_for_each_entry_safe(pb, n, &tmp, pb_list) {
  1581. pagebuf_lock(pb);
  1582. pb->pb_flags &= ~(PBF_DELWRI|_PBF_DELWRI_Q);
  1583. pb->pb_flags |= PBF_WRITE;
  1584. if (wait)
  1585. pb->pb_flags &= ~PBF_ASYNC;
  1586. else
  1587. list_del_init(&pb->pb_list);
  1588. pagebuf_iostrategy(pb);
  1589. }
  1590. /*
  1591. * Remaining list items must be flushed before returning
  1592. */
  1593. while (!list_empty(&tmp)) {
  1594. pb = list_entry(tmp.next, xfs_buf_t, pb_list);
  1595. list_del_init(&pb->pb_list);
  1596. xfs_iowait(pb);
  1597. xfs_buf_relse(pb);
  1598. }
  1599. if (wait)
  1600. blk_run_address_space(target->pbr_mapping);
  1601. return pincount;
  1602. }
  1603. int __init
  1604. pagebuf_init(void)
  1605. {
  1606. int error = -ENOMEM;
  1607. #ifdef PAGEBUF_TRACE
  1608. pagebuf_trace_buf = ktrace_alloc(PAGEBUF_TRACE_SIZE, KM_SLEEP);
  1609. #endif
  1610. pagebuf_zone = kmem_zone_init(sizeof(xfs_buf_t), "xfs_buf");
  1611. if (!pagebuf_zone)
  1612. goto out_free_trace_buf;
  1613. xfslogd_workqueue = create_workqueue("xfslogd");
  1614. if (!xfslogd_workqueue)
  1615. goto out_free_buf_zone;
  1616. xfsdatad_workqueue = create_workqueue("xfsdatad");
  1617. if (!xfsdatad_workqueue)
  1618. goto out_destroy_xfslogd_workqueue;
  1619. xfsbufd_task = kthread_run(xfsbufd, NULL, "xfsbufd");
  1620. if (IS_ERR(xfsbufd_task)) {
  1621. error = PTR_ERR(xfsbufd_task);
  1622. goto out_destroy_xfsdatad_workqueue;
  1623. }
  1624. pagebuf_shake = kmem_shake_register(xfsbufd_wakeup);
  1625. if (!pagebuf_shake)
  1626. goto out_stop_xfsbufd;
  1627. return 0;
  1628. out_stop_xfsbufd:
  1629. kthread_stop(xfsbufd_task);
  1630. out_destroy_xfsdatad_workqueue:
  1631. destroy_workqueue(xfsdatad_workqueue);
  1632. out_destroy_xfslogd_workqueue:
  1633. destroy_workqueue(xfslogd_workqueue);
  1634. out_free_buf_zone:
  1635. kmem_zone_destroy(pagebuf_zone);
  1636. out_free_trace_buf:
  1637. #ifdef PAGEBUF_TRACE
  1638. ktrace_free(pagebuf_trace_buf);
  1639. #endif
  1640. return error;
  1641. }
  1642. void
  1643. pagebuf_terminate(void)
  1644. {
  1645. kmem_shake_deregister(pagebuf_shake);
  1646. kthread_stop(xfsbufd_task);
  1647. destroy_workqueue(xfsdatad_workqueue);
  1648. destroy_workqueue(xfslogd_workqueue);
  1649. kmem_zone_destroy(pagebuf_zone);
  1650. #ifdef PAGEBUF_TRACE
  1651. ktrace_free(pagebuf_trace_buf);
  1652. #endif
  1653. }