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mm/filemap: fix find_lock_entries hang on 32-bit THP
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457c8996 1// SPDX-License-Identifier: GPL-2.0-only
1da177e4
LT
2/*
3 * linux/mm/filemap.c
4 *
5 * Copyright (C) 1994-1999 Linus Torvalds
6 */
7
8/*
9 * This file handles the generic file mmap semantics used by
10 * most "normal" filesystems (but you don't /have/ to use this:
11 * the NFS filesystem used to do this differently, for example)
12 */
b95f1b31 13#include <linux/export.h>
1da177e4 14#include <linux/compiler.h>
f9fe48be 15#include <linux/dax.h>
1da177e4 16#include <linux/fs.h>
3f07c014 17#include <linux/sched/signal.h>
c22ce143 18#include <linux/uaccess.h>
c59ede7b 19#include <linux/capability.h>
1da177e4 20#include <linux/kernel_stat.h>
5a0e3ad6 21#include <linux/gfp.h>
1da177e4
LT
22#include <linux/mm.h>
23#include <linux/swap.h>
24#include <linux/mman.h>
25#include <linux/pagemap.h>
26#include <linux/file.h>
27#include <linux/uio.h>
cfcbfb13 28#include <linux/error-injection.h>
1da177e4
LT
29#include <linux/hash.h>
30#include <linux/writeback.h>
53253383 31#include <linux/backing-dev.h>
1da177e4
LT
32#include <linux/pagevec.h>
33#include <linux/blkdev.h>
34#include <linux/security.h>
44110fe3 35#include <linux/cpuset.h>
00501b53 36#include <linux/hugetlb.h>
8a9f3ccd 37#include <linux/memcontrol.h>
c515e1fd 38#include <linux/cleancache.h>
c7df8ad2 39#include <linux/shmem_fs.h>
f1820361 40#include <linux/rmap.h>
b1d29ba8 41#include <linux/delayacct.h>
eb414681 42#include <linux/psi.h>
d0e6a582 43#include <linux/ramfs.h>
b9306a79 44#include <linux/page_idle.h>
f9ce0be7 45#include <asm/pgalloc.h>
de591a82 46#include <asm/tlbflush.h>
0f8053a5
NP
47#include "internal.h"
48
fe0bfaaf
RJ
49#define CREATE_TRACE_POINTS
50#include <trace/events/filemap.h>
51
1da177e4 52/*
1da177e4
LT
53 * FIXME: remove all knowledge of the buffer layer from the core VM
54 */
148f948b 55#include <linux/buffer_head.h> /* for try_to_free_buffers */
1da177e4 56
1da177e4
LT
57#include <asm/mman.h>
58
59/*
60 * Shared mappings implemented 30.11.1994. It's not fully working yet,
61 * though.
62 *
63 * Shared mappings now work. 15.8.1995 Bruno.
64 *
65 * finished 'unifying' the page and buffer cache and SMP-threaded the
66 * page-cache, 21.05.1999, Ingo Molnar <mingo@redhat.com>
67 *
68 * SMP-threaded pagemap-LRU 1999, Andrea Arcangeli <andrea@suse.de>
69 */
70
71/*
72 * Lock ordering:
73 *
c8c06efa 74 * ->i_mmap_rwsem (truncate_pagecache)
1da177e4 75 * ->private_lock (__free_pte->__set_page_dirty_buffers)
5d337b91 76 * ->swap_lock (exclusive_swap_page, others)
b93b0163 77 * ->i_pages lock
1da177e4 78 *
1b1dcc1b 79 * ->i_mutex
c8c06efa 80 * ->i_mmap_rwsem (truncate->unmap_mapping_range)
1da177e4 81 *
c1e8d7c6 82 * ->mmap_lock
c8c06efa 83 * ->i_mmap_rwsem
b8072f09 84 * ->page_table_lock or pte_lock (various, mainly in memory.c)
b93b0163 85 * ->i_pages lock (arch-dependent flush_dcache_mmap_lock)
1da177e4 86 *
c1e8d7c6 87 * ->mmap_lock
1da177e4
LT
88 * ->lock_page (access_process_vm)
89 *
ccad2365 90 * ->i_mutex (generic_perform_write)
c1e8d7c6 91 * ->mmap_lock (fault_in_pages_readable->do_page_fault)
1da177e4 92 *
f758eeab 93 * bdi->wb.list_lock
a66979ab 94 * sb_lock (fs/fs-writeback.c)
b93b0163 95 * ->i_pages lock (__sync_single_inode)
1da177e4 96 *
c8c06efa 97 * ->i_mmap_rwsem
1da177e4
LT
98 * ->anon_vma.lock (vma_adjust)
99 *
100 * ->anon_vma.lock
b8072f09 101 * ->page_table_lock or pte_lock (anon_vma_prepare and various)
1da177e4 102 *
b8072f09 103 * ->page_table_lock or pte_lock
5d337b91 104 * ->swap_lock (try_to_unmap_one)
1da177e4 105 * ->private_lock (try_to_unmap_one)
b93b0163 106 * ->i_pages lock (try_to_unmap_one)
15b44736
HD
107 * ->lruvec->lru_lock (follow_page->mark_page_accessed)
108 * ->lruvec->lru_lock (check_pte_range->isolate_lru_page)
1da177e4 109 * ->private_lock (page_remove_rmap->set_page_dirty)
b93b0163 110 * ->i_pages lock (page_remove_rmap->set_page_dirty)
f758eeab 111 * bdi.wb->list_lock (page_remove_rmap->set_page_dirty)
250df6ed 112 * ->inode->i_lock (page_remove_rmap->set_page_dirty)
81f8c3a4 113 * ->memcg->move_lock (page_remove_rmap->lock_page_memcg)
f758eeab 114 * bdi.wb->list_lock (zap_pte_range->set_page_dirty)
250df6ed 115 * ->inode->i_lock (zap_pte_range->set_page_dirty)
1da177e4
LT
116 * ->private_lock (zap_pte_range->__set_page_dirty_buffers)
117 *
c8c06efa 118 * ->i_mmap_rwsem
9a3c531d 119 * ->tasklist_lock (memory_failure, collect_procs_ao)
1da177e4
LT
120 */
121
5c024e6a 122static void page_cache_delete(struct address_space *mapping,
91b0abe3
JW
123 struct page *page, void *shadow)
124{
5c024e6a
MW
125 XA_STATE(xas, &mapping->i_pages, page->index);
126 unsigned int nr = 1;
c70b647d 127
5c024e6a 128 mapping_set_update(&xas, mapping);
c70b647d 129
5c024e6a
MW
130 /* hugetlb pages are represented by a single entry in the xarray */
131 if (!PageHuge(page)) {
132 xas_set_order(&xas, page->index, compound_order(page));
d8c6546b 133 nr = compound_nr(page);
5c024e6a 134 }
91b0abe3 135
83929372
KS
136 VM_BUG_ON_PAGE(!PageLocked(page), page);
137 VM_BUG_ON_PAGE(PageTail(page), page);
138 VM_BUG_ON_PAGE(nr != 1 && shadow, page);
449dd698 139
5c024e6a
MW
140 xas_store(&xas, shadow);
141 xas_init_marks(&xas);
d3798ae8 142
2300638b
JK
143 page->mapping = NULL;
144 /* Leave page->index set: truncation lookup relies upon it */
145
d3798ae8
JW
146 if (shadow) {
147 mapping->nrexceptional += nr;
148 /*
149 * Make sure the nrexceptional update is committed before
150 * the nrpages update so that final truncate racing
151 * with reclaim does not see both counters 0 at the
152 * same time and miss a shadow entry.
153 */
154 smp_wmb();
155 }
156 mapping->nrpages -= nr;
91b0abe3
JW
157}
158
5ecc4d85
JK
159static void unaccount_page_cache_page(struct address_space *mapping,
160 struct page *page)
1da177e4 161{
5ecc4d85 162 int nr;
1da177e4 163
c515e1fd
DM
164 /*
165 * if we're uptodate, flush out into the cleancache, otherwise
166 * invalidate any existing cleancache entries. We can't leave
167 * stale data around in the cleancache once our page is gone
168 */
169 if (PageUptodate(page) && PageMappedToDisk(page))
170 cleancache_put_page(page);
171 else
3167760f 172 cleancache_invalidate_page(mapping, page);
c515e1fd 173
83929372 174 VM_BUG_ON_PAGE(PageTail(page), page);
06b241f3
HD
175 VM_BUG_ON_PAGE(page_mapped(page), page);
176 if (!IS_ENABLED(CONFIG_DEBUG_VM) && unlikely(page_mapped(page))) {
177 int mapcount;
178
179 pr_alert("BUG: Bad page cache in process %s pfn:%05lx\n",
180 current->comm, page_to_pfn(page));
181 dump_page(page, "still mapped when deleted");
182 dump_stack();
183 add_taint(TAINT_BAD_PAGE, LOCKDEP_NOW_UNRELIABLE);
184
185 mapcount = page_mapcount(page);
186 if (mapping_exiting(mapping) &&
187 page_count(page) >= mapcount + 2) {
188 /*
189 * All vmas have already been torn down, so it's
190 * a good bet that actually the page is unmapped,
191 * and we'd prefer not to leak it: if we're wrong,
192 * some other bad page check should catch it later.
193 */
194 page_mapcount_reset(page);
6d061f9f 195 page_ref_sub(page, mapcount);
06b241f3
HD
196 }
197 }
198
4165b9b4 199 /* hugetlb pages do not participate in page cache accounting. */
5ecc4d85
JK
200 if (PageHuge(page))
201 return;
09612fa6 202
6c357848 203 nr = thp_nr_pages(page);
5ecc4d85 204
0d1c2072 205 __mod_lruvec_page_state(page, NR_FILE_PAGES, -nr);
5ecc4d85 206 if (PageSwapBacked(page)) {
0d1c2072 207 __mod_lruvec_page_state(page, NR_SHMEM, -nr);
5ecc4d85 208 if (PageTransHuge(page))
57b2847d 209 __mod_lruvec_page_state(page, NR_SHMEM_THPS, -nr);
99cb0dbd 210 } else if (PageTransHuge(page)) {
bf9ecead 211 __mod_lruvec_page_state(page, NR_FILE_THPS, -nr);
09d91cda 212 filemap_nr_thps_dec(mapping);
800d8c63 213 }
5ecc4d85
JK
214
215 /*
216 * At this point page must be either written or cleaned by
217 * truncate. Dirty page here signals a bug and loss of
218 * unwritten data.
219 *
220 * This fixes dirty accounting after removing the page entirely
221 * but leaves PageDirty set: it has no effect for truncated
222 * page and anyway will be cleared before returning page into
223 * buddy allocator.
224 */
225 if (WARN_ON_ONCE(PageDirty(page)))
226 account_page_cleaned(page, mapping, inode_to_wb(mapping->host));
227}
228
229/*
230 * Delete a page from the page cache and free it. Caller has to make
231 * sure the page is locked and that nobody else uses it - or that usage
b93b0163 232 * is safe. The caller must hold the i_pages lock.
5ecc4d85
JK
233 */
234void __delete_from_page_cache(struct page *page, void *shadow)
235{
236 struct address_space *mapping = page->mapping;
237
238 trace_mm_filemap_delete_from_page_cache(page);
239
240 unaccount_page_cache_page(mapping, page);
5c024e6a 241 page_cache_delete(mapping, page, shadow);
1da177e4
LT
242}
243
59c66c5f
JK
244static void page_cache_free_page(struct address_space *mapping,
245 struct page *page)
246{
247 void (*freepage)(struct page *);
248
249 freepage = mapping->a_ops->freepage;
250 if (freepage)
251 freepage(page);
252
253 if (PageTransHuge(page) && !PageHuge(page)) {
887b22c6 254 page_ref_sub(page, thp_nr_pages(page));
59c66c5f
JK
255 VM_BUG_ON_PAGE(page_count(page) <= 0, page);
256 } else {
257 put_page(page);
258 }
259}
260
702cfbf9
MK
261/**
262 * delete_from_page_cache - delete page from page cache
263 * @page: the page which the kernel is trying to remove from page cache
264 *
265 * This must be called only on pages that have been verified to be in the page
266 * cache and locked. It will never put the page into the free list, the caller
267 * has a reference on the page.
268 */
269void delete_from_page_cache(struct page *page)
1da177e4 270{
83929372 271 struct address_space *mapping = page_mapping(page);
c4843a75 272 unsigned long flags;
1da177e4 273
cd7619d6 274 BUG_ON(!PageLocked(page));
b93b0163 275 xa_lock_irqsave(&mapping->i_pages, flags);
62cccb8c 276 __delete_from_page_cache(page, NULL);
b93b0163 277 xa_unlock_irqrestore(&mapping->i_pages, flags);
6072d13c 278
59c66c5f 279 page_cache_free_page(mapping, page);
97cecb5a
MK
280}
281EXPORT_SYMBOL(delete_from_page_cache);
282
aa65c29c 283/*
ef8e5717 284 * page_cache_delete_batch - delete several pages from page cache
aa65c29c
JK
285 * @mapping: the mapping to which pages belong
286 * @pvec: pagevec with pages to delete
287 *
b93b0163 288 * The function walks over mapping->i_pages and removes pages passed in @pvec
4101196b
MWO
289 * from the mapping. The function expects @pvec to be sorted by page index
290 * and is optimised for it to be dense.
b93b0163 291 * It tolerates holes in @pvec (mapping entries at those indices are not
aa65c29c 292 * modified). The function expects only THP head pages to be present in the
4101196b 293 * @pvec.
aa65c29c 294 *
b93b0163 295 * The function expects the i_pages lock to be held.
aa65c29c 296 */
ef8e5717 297static void page_cache_delete_batch(struct address_space *mapping,
aa65c29c
JK
298 struct pagevec *pvec)
299{
ef8e5717 300 XA_STATE(xas, &mapping->i_pages, pvec->pages[0]->index);
aa65c29c 301 int total_pages = 0;
4101196b 302 int i = 0;
aa65c29c 303 struct page *page;
aa65c29c 304
ef8e5717
MW
305 mapping_set_update(&xas, mapping);
306 xas_for_each(&xas, page, ULONG_MAX) {
4101196b 307 if (i >= pagevec_count(pvec))
aa65c29c 308 break;
4101196b
MWO
309
310 /* A swap/dax/shadow entry got inserted? Skip it. */
3159f943 311 if (xa_is_value(page))
aa65c29c 312 continue;
4101196b
MWO
313 /*
314 * A page got inserted in our range? Skip it. We have our
315 * pages locked so they are protected from being removed.
316 * If we see a page whose index is higher than ours, it
317 * means our page has been removed, which shouldn't be
318 * possible because we're holding the PageLock.
319 */
320 if (page != pvec->pages[i]) {
321 VM_BUG_ON_PAGE(page->index > pvec->pages[i]->index,
322 page);
323 continue;
324 }
325
326 WARN_ON_ONCE(!PageLocked(page));
327
328 if (page->index == xas.xa_index)
aa65c29c 329 page->mapping = NULL;
4101196b
MWO
330 /* Leave page->index set: truncation lookup relies on it */
331
332 /*
333 * Move to the next page in the vector if this is a regular
334 * page or the index is of the last sub-page of this compound
335 * page.
336 */
337 if (page->index + compound_nr(page) - 1 == xas.xa_index)
aa65c29c 338 i++;
ef8e5717 339 xas_store(&xas, NULL);
aa65c29c
JK
340 total_pages++;
341 }
342 mapping->nrpages -= total_pages;
343}
344
345void delete_from_page_cache_batch(struct address_space *mapping,
346 struct pagevec *pvec)
347{
348 int i;
349 unsigned long flags;
350
351 if (!pagevec_count(pvec))
352 return;
353
b93b0163 354 xa_lock_irqsave(&mapping->i_pages, flags);
aa65c29c
JK
355 for (i = 0; i < pagevec_count(pvec); i++) {
356 trace_mm_filemap_delete_from_page_cache(pvec->pages[i]);
357
358 unaccount_page_cache_page(mapping, pvec->pages[i]);
359 }
ef8e5717 360 page_cache_delete_batch(mapping, pvec);
b93b0163 361 xa_unlock_irqrestore(&mapping->i_pages, flags);
aa65c29c
JK
362
363 for (i = 0; i < pagevec_count(pvec); i++)
364 page_cache_free_page(mapping, pvec->pages[i]);
365}
366
d72d9e2a 367int filemap_check_errors(struct address_space *mapping)
865ffef3
DM
368{
369 int ret = 0;
370 /* Check for outstanding write errors */
7fcbbaf1
JA
371 if (test_bit(AS_ENOSPC, &mapping->flags) &&
372 test_and_clear_bit(AS_ENOSPC, &mapping->flags))
865ffef3 373 ret = -ENOSPC;
7fcbbaf1
JA
374 if (test_bit(AS_EIO, &mapping->flags) &&
375 test_and_clear_bit(AS_EIO, &mapping->flags))
865ffef3
DM
376 ret = -EIO;
377 return ret;
378}
d72d9e2a 379EXPORT_SYMBOL(filemap_check_errors);
865ffef3 380
76341cab
JL
381static int filemap_check_and_keep_errors(struct address_space *mapping)
382{
383 /* Check for outstanding write errors */
384 if (test_bit(AS_EIO, &mapping->flags))
385 return -EIO;
386 if (test_bit(AS_ENOSPC, &mapping->flags))
387 return -ENOSPC;
388 return 0;
389}
390
1da177e4 391/**
485bb99b 392 * __filemap_fdatawrite_range - start writeback on mapping dirty pages in range
67be2dd1
MW
393 * @mapping: address space structure to write
394 * @start: offset in bytes where the range starts
469eb4d0 395 * @end: offset in bytes where the range ends (inclusive)
67be2dd1 396 * @sync_mode: enable synchronous operation
1da177e4 397 *
485bb99b
RD
398 * Start writeback against all of a mapping's dirty pages that lie
399 * within the byte offsets <start, end> inclusive.
400 *
1da177e4 401 * If sync_mode is WB_SYNC_ALL then this is a "data integrity" operation, as
485bb99b 402 * opposed to a regular memory cleansing writeback. The difference between
1da177e4
LT
403 * these two operations is that if a dirty page/buffer is encountered, it must
404 * be waited upon, and not just skipped over.
a862f68a
MR
405 *
406 * Return: %0 on success, negative error code otherwise.
1da177e4 407 */
ebcf28e1
AM
408int __filemap_fdatawrite_range(struct address_space *mapping, loff_t start,
409 loff_t end, int sync_mode)
1da177e4
LT
410{
411 int ret;
412 struct writeback_control wbc = {
413 .sync_mode = sync_mode,
05fe478d 414 .nr_to_write = LONG_MAX,
111ebb6e
OH
415 .range_start = start,
416 .range_end = end,
1da177e4
LT
417 };
418
f56753ac 419 if (!mapping_can_writeback(mapping) ||
c3aab9a0 420 !mapping_tagged(mapping, PAGECACHE_TAG_DIRTY))
1da177e4
LT
421 return 0;
422
b16b1deb 423 wbc_attach_fdatawrite_inode(&wbc, mapping->host);
1da177e4 424 ret = do_writepages(mapping, &wbc);
b16b1deb 425 wbc_detach_inode(&wbc);
1da177e4
LT
426 return ret;
427}
428
429static inline int __filemap_fdatawrite(struct address_space *mapping,
430 int sync_mode)
431{
111ebb6e 432 return __filemap_fdatawrite_range(mapping, 0, LLONG_MAX, sync_mode);
1da177e4
LT
433}
434
435int filemap_fdatawrite(struct address_space *mapping)
436{
437 return __filemap_fdatawrite(mapping, WB_SYNC_ALL);
438}
439EXPORT_SYMBOL(filemap_fdatawrite);
440
f4c0a0fd 441int filemap_fdatawrite_range(struct address_space *mapping, loff_t start,
ebcf28e1 442 loff_t end)
1da177e4
LT
443{
444 return __filemap_fdatawrite_range(mapping, start, end, WB_SYNC_ALL);
445}
f4c0a0fd 446EXPORT_SYMBOL(filemap_fdatawrite_range);
1da177e4 447
485bb99b
RD
448/**
449 * filemap_flush - mostly a non-blocking flush
450 * @mapping: target address_space
451 *
1da177e4
LT
452 * This is a mostly non-blocking flush. Not suitable for data-integrity
453 * purposes - I/O may not be started against all dirty pages.
a862f68a
MR
454 *
455 * Return: %0 on success, negative error code otherwise.
1da177e4
LT
456 */
457int filemap_flush(struct address_space *mapping)
458{
459 return __filemap_fdatawrite(mapping, WB_SYNC_NONE);
460}
461EXPORT_SYMBOL(filemap_flush);
462
7fc9e472
GR
463/**
464 * filemap_range_has_page - check if a page exists in range.
465 * @mapping: address space within which to check
466 * @start_byte: offset in bytes where the range starts
467 * @end_byte: offset in bytes where the range ends (inclusive)
468 *
469 * Find at least one page in the range supplied, usually used to check if
470 * direct writing in this range will trigger a writeback.
a862f68a
MR
471 *
472 * Return: %true if at least one page exists in the specified range,
473 * %false otherwise.
7fc9e472
GR
474 */
475bool filemap_range_has_page(struct address_space *mapping,
476 loff_t start_byte, loff_t end_byte)
477{
f7b68046 478 struct page *page;
8fa8e538
MW
479 XA_STATE(xas, &mapping->i_pages, start_byte >> PAGE_SHIFT);
480 pgoff_t max = end_byte >> PAGE_SHIFT;
7fc9e472
GR
481
482 if (end_byte < start_byte)
483 return false;
484
8fa8e538
MW
485 rcu_read_lock();
486 for (;;) {
487 page = xas_find(&xas, max);
488 if (xas_retry(&xas, page))
489 continue;
490 /* Shadow entries don't count */
491 if (xa_is_value(page))
492 continue;
493 /*
494 * We don't need to try to pin this page; we're about to
495 * release the RCU lock anyway. It is enough to know that
496 * there was a page here recently.
497 */
498 break;
499 }
500 rcu_read_unlock();
7fc9e472 501
8fa8e538 502 return page != NULL;
7fc9e472
GR
503}
504EXPORT_SYMBOL(filemap_range_has_page);
505
5e8fcc1a 506static void __filemap_fdatawait_range(struct address_space *mapping,
aa750fd7 507 loff_t start_byte, loff_t end_byte)
1da177e4 508{
09cbfeaf
KS
509 pgoff_t index = start_byte >> PAGE_SHIFT;
510 pgoff_t end = end_byte >> PAGE_SHIFT;
1da177e4
LT
511 struct pagevec pvec;
512 int nr_pages;
1da177e4 513
94004ed7 514 if (end_byte < start_byte)
5e8fcc1a 515 return;
1da177e4 516
86679820 517 pagevec_init(&pvec);
312e9d2f 518 while (index <= end) {
1da177e4
LT
519 unsigned i;
520
312e9d2f 521 nr_pages = pagevec_lookup_range_tag(&pvec, mapping, &index,
67fd707f 522 end, PAGECACHE_TAG_WRITEBACK);
312e9d2f
JK
523 if (!nr_pages)
524 break;
525
1da177e4
LT
526 for (i = 0; i < nr_pages; i++) {
527 struct page *page = pvec.pages[i];
528
1da177e4 529 wait_on_page_writeback(page);
5e8fcc1a 530 ClearPageError(page);
1da177e4
LT
531 }
532 pagevec_release(&pvec);
533 cond_resched();
534 }
aa750fd7
JN
535}
536
537/**
538 * filemap_fdatawait_range - wait for writeback to complete
539 * @mapping: address space structure to wait for
540 * @start_byte: offset in bytes where the range starts
541 * @end_byte: offset in bytes where the range ends (inclusive)
542 *
543 * Walk the list of under-writeback pages of the given address space
544 * in the given range and wait for all of them. Check error status of
545 * the address space and return it.
546 *
547 * Since the error status of the address space is cleared by this function,
548 * callers are responsible for checking the return value and handling and/or
549 * reporting the error.
a862f68a
MR
550 *
551 * Return: error status of the address space.
aa750fd7
JN
552 */
553int filemap_fdatawait_range(struct address_space *mapping, loff_t start_byte,
554 loff_t end_byte)
555{
5e8fcc1a
JL
556 __filemap_fdatawait_range(mapping, start_byte, end_byte);
557 return filemap_check_errors(mapping);
1da177e4 558}
d3bccb6f
JK
559EXPORT_SYMBOL(filemap_fdatawait_range);
560
aa0bfcd9
RZ
561/**
562 * filemap_fdatawait_range_keep_errors - wait for writeback to complete
563 * @mapping: address space structure to wait for
564 * @start_byte: offset in bytes where the range starts
565 * @end_byte: offset in bytes where the range ends (inclusive)
566 *
567 * Walk the list of under-writeback pages of the given address space in the
568 * given range and wait for all of them. Unlike filemap_fdatawait_range(),
569 * this function does not clear error status of the address space.
570 *
571 * Use this function if callers don't handle errors themselves. Expected
572 * call sites are system-wide / filesystem-wide data flushers: e.g. sync(2),
573 * fsfreeze(8)
574 */
575int filemap_fdatawait_range_keep_errors(struct address_space *mapping,
576 loff_t start_byte, loff_t end_byte)
577{
578 __filemap_fdatawait_range(mapping, start_byte, end_byte);
579 return filemap_check_and_keep_errors(mapping);
580}
581EXPORT_SYMBOL(filemap_fdatawait_range_keep_errors);
582
a823e458
JL
583/**
584 * file_fdatawait_range - wait for writeback to complete
585 * @file: file pointing to address space structure to wait for
586 * @start_byte: offset in bytes where the range starts
587 * @end_byte: offset in bytes where the range ends (inclusive)
588 *
589 * Walk the list of under-writeback pages of the address space that file
590 * refers to, in the given range and wait for all of them. Check error
591 * status of the address space vs. the file->f_wb_err cursor and return it.
592 *
593 * Since the error status of the file is advanced by this function,
594 * callers are responsible for checking the return value and handling and/or
595 * reporting the error.
a862f68a
MR
596 *
597 * Return: error status of the address space vs. the file->f_wb_err cursor.
a823e458
JL
598 */
599int file_fdatawait_range(struct file *file, loff_t start_byte, loff_t end_byte)
600{
601 struct address_space *mapping = file->f_mapping;
602
603 __filemap_fdatawait_range(mapping, start_byte, end_byte);
604 return file_check_and_advance_wb_err(file);
605}
606EXPORT_SYMBOL(file_fdatawait_range);
d3bccb6f 607
aa750fd7
JN
608/**
609 * filemap_fdatawait_keep_errors - wait for writeback without clearing errors
610 * @mapping: address space structure to wait for
611 *
612 * Walk the list of under-writeback pages of the given address space
613 * and wait for all of them. Unlike filemap_fdatawait(), this function
614 * does not clear error status of the address space.
615 *
616 * Use this function if callers don't handle errors themselves. Expected
617 * call sites are system-wide / filesystem-wide data flushers: e.g. sync(2),
618 * fsfreeze(8)
a862f68a
MR
619 *
620 * Return: error status of the address space.
aa750fd7 621 */
76341cab 622int filemap_fdatawait_keep_errors(struct address_space *mapping)
aa750fd7 623{
ffb959bb 624 __filemap_fdatawait_range(mapping, 0, LLONG_MAX);
76341cab 625 return filemap_check_and_keep_errors(mapping);
aa750fd7 626}
76341cab 627EXPORT_SYMBOL(filemap_fdatawait_keep_errors);
aa750fd7 628
875d91b1 629/* Returns true if writeback might be needed or already in progress. */
9326c9b2 630static bool mapping_needs_writeback(struct address_space *mapping)
1da177e4 631{
875d91b1
KK
632 if (dax_mapping(mapping))
633 return mapping->nrexceptional;
634
635 return mapping->nrpages;
1da177e4 636}
1da177e4 637
485bb99b
RD
638/**
639 * filemap_write_and_wait_range - write out & wait on a file range
640 * @mapping: the address_space for the pages
641 * @lstart: offset in bytes where the range starts
642 * @lend: offset in bytes where the range ends (inclusive)
643 *
469eb4d0
AM
644 * Write out and wait upon file offsets lstart->lend, inclusive.
645 *
0e056eb5 646 * Note that @lend is inclusive (describes the last byte to be written) so
469eb4d0 647 * that this function can be used to write to the very end-of-file (end = -1).
a862f68a
MR
648 *
649 * Return: error status of the address space.
469eb4d0 650 */
1da177e4
LT
651int filemap_write_and_wait_range(struct address_space *mapping,
652 loff_t lstart, loff_t lend)
653{
28fd1298 654 int err = 0;
1da177e4 655
9326c9b2 656 if (mapping_needs_writeback(mapping)) {
28fd1298
OH
657 err = __filemap_fdatawrite_range(mapping, lstart, lend,
658 WB_SYNC_ALL);
ddf8f376
IW
659 /*
660 * Even if the above returned error, the pages may be
661 * written partially (e.g. -ENOSPC), so we wait for it.
662 * But the -EIO is special case, it may indicate the worst
663 * thing (e.g. bug) happened, so we avoid waiting for it.
664 */
28fd1298 665 if (err != -EIO) {
94004ed7
CH
666 int err2 = filemap_fdatawait_range(mapping,
667 lstart, lend);
28fd1298
OH
668 if (!err)
669 err = err2;
cbeaf951
JL
670 } else {
671 /* Clear any previously stored errors */
672 filemap_check_errors(mapping);
28fd1298 673 }
865ffef3
DM
674 } else {
675 err = filemap_check_errors(mapping);
1da177e4 676 }
28fd1298 677 return err;
1da177e4 678}
f6995585 679EXPORT_SYMBOL(filemap_write_and_wait_range);
1da177e4 680
5660e13d
JL
681void __filemap_set_wb_err(struct address_space *mapping, int err)
682{
3acdfd28 683 errseq_t eseq = errseq_set(&mapping->wb_err, err);
5660e13d
JL
684
685 trace_filemap_set_wb_err(mapping, eseq);
686}
687EXPORT_SYMBOL(__filemap_set_wb_err);
688
689/**
690 * file_check_and_advance_wb_err - report wb error (if any) that was previously
691 * and advance wb_err to current one
692 * @file: struct file on which the error is being reported
693 *
694 * When userland calls fsync (or something like nfsd does the equivalent), we
695 * want to report any writeback errors that occurred since the last fsync (or
696 * since the file was opened if there haven't been any).
697 *
698 * Grab the wb_err from the mapping. If it matches what we have in the file,
699 * then just quickly return 0. The file is all caught up.
700 *
701 * If it doesn't match, then take the mapping value, set the "seen" flag in
702 * it and try to swap it into place. If it works, or another task beat us
703 * to it with the new value, then update the f_wb_err and return the error
704 * portion. The error at this point must be reported via proper channels
705 * (a'la fsync, or NFS COMMIT operation, etc.).
706 *
707 * While we handle mapping->wb_err with atomic operations, the f_wb_err
708 * value is protected by the f_lock since we must ensure that it reflects
709 * the latest value swapped in for this file descriptor.
a862f68a
MR
710 *
711 * Return: %0 on success, negative error code otherwise.
5660e13d
JL
712 */
713int file_check_and_advance_wb_err(struct file *file)
714{
715 int err = 0;
716 errseq_t old = READ_ONCE(file->f_wb_err);
717 struct address_space *mapping = file->f_mapping;
718
719 /* Locklessly handle the common case where nothing has changed */
720 if (errseq_check(&mapping->wb_err, old)) {
721 /* Something changed, must use slow path */
722 spin_lock(&file->f_lock);
723 old = file->f_wb_err;
724 err = errseq_check_and_advance(&mapping->wb_err,
725 &file->f_wb_err);
726 trace_file_check_and_advance_wb_err(file, old);
727 spin_unlock(&file->f_lock);
728 }
f4e222c5
JL
729
730 /*
731 * We're mostly using this function as a drop in replacement for
732 * filemap_check_errors. Clear AS_EIO/AS_ENOSPC to emulate the effect
733 * that the legacy code would have had on these flags.
734 */
735 clear_bit(AS_EIO, &mapping->flags);
736 clear_bit(AS_ENOSPC, &mapping->flags);
5660e13d
JL
737 return err;
738}
739EXPORT_SYMBOL(file_check_and_advance_wb_err);
740
741/**
742 * file_write_and_wait_range - write out & wait on a file range
743 * @file: file pointing to address_space with pages
744 * @lstart: offset in bytes where the range starts
745 * @lend: offset in bytes where the range ends (inclusive)
746 *
747 * Write out and wait upon file offsets lstart->lend, inclusive.
748 *
749 * Note that @lend is inclusive (describes the last byte to be written) so
750 * that this function can be used to write to the very end-of-file (end = -1).
751 *
752 * After writing out and waiting on the data, we check and advance the
753 * f_wb_err cursor to the latest value, and return any errors detected there.
a862f68a
MR
754 *
755 * Return: %0 on success, negative error code otherwise.
5660e13d
JL
756 */
757int file_write_and_wait_range(struct file *file, loff_t lstart, loff_t lend)
758{
759 int err = 0, err2;
760 struct address_space *mapping = file->f_mapping;
761
9326c9b2 762 if (mapping_needs_writeback(mapping)) {
5660e13d
JL
763 err = __filemap_fdatawrite_range(mapping, lstart, lend,
764 WB_SYNC_ALL);
765 /* See comment of filemap_write_and_wait() */
766 if (err != -EIO)
767 __filemap_fdatawait_range(mapping, lstart, lend);
768 }
769 err2 = file_check_and_advance_wb_err(file);
770 if (!err)
771 err = err2;
772 return err;
773}
774EXPORT_SYMBOL(file_write_and_wait_range);
775
ef6a3c63
MS
776/**
777 * replace_page_cache_page - replace a pagecache page with a new one
778 * @old: page to be replaced
779 * @new: page to replace with
ef6a3c63
MS
780 *
781 * This function replaces a page in the pagecache with a new one. On
782 * success it acquires the pagecache reference for the new page and
783 * drops it for the old page. Both the old and new pages must be
784 * locked. This function does not add the new page to the LRU, the
785 * caller must do that.
786 *
74d60958 787 * The remove + add is atomic. This function cannot fail.
ef6a3c63 788 */
1f7ef657 789void replace_page_cache_page(struct page *old, struct page *new)
ef6a3c63 790{
74d60958
MW
791 struct address_space *mapping = old->mapping;
792 void (*freepage)(struct page *) = mapping->a_ops->freepage;
793 pgoff_t offset = old->index;
794 XA_STATE(xas, &mapping->i_pages, offset);
795 unsigned long flags;
ef6a3c63 796
309381fe
SL
797 VM_BUG_ON_PAGE(!PageLocked(old), old);
798 VM_BUG_ON_PAGE(!PageLocked(new), new);
799 VM_BUG_ON_PAGE(new->mapping, new);
ef6a3c63 800
74d60958
MW
801 get_page(new);
802 new->mapping = mapping;
803 new->index = offset;
ef6a3c63 804
0d1c2072
JW
805 mem_cgroup_migrate(old, new);
806
74d60958
MW
807 xas_lock_irqsave(&xas, flags);
808 xas_store(&xas, new);
4165b9b4 809
74d60958
MW
810 old->mapping = NULL;
811 /* hugetlb pages do not participate in page cache accounting. */
812 if (!PageHuge(old))
0d1c2072 813 __dec_lruvec_page_state(old, NR_FILE_PAGES);
74d60958 814 if (!PageHuge(new))
0d1c2072 815 __inc_lruvec_page_state(new, NR_FILE_PAGES);
74d60958 816 if (PageSwapBacked(old))
0d1c2072 817 __dec_lruvec_page_state(old, NR_SHMEM);
74d60958 818 if (PageSwapBacked(new))
0d1c2072 819 __inc_lruvec_page_state(new, NR_SHMEM);
74d60958 820 xas_unlock_irqrestore(&xas, flags);
74d60958
MW
821 if (freepage)
822 freepage(old);
823 put_page(old);
ef6a3c63
MS
824}
825EXPORT_SYMBOL_GPL(replace_page_cache_page);
826
16c0cc0c 827noinline int __add_to_page_cache_locked(struct page *page,
76cd6173 828 struct address_space *mapping,
c4cf498d 829 pgoff_t offset, gfp_t gfp,
76cd6173 830 void **shadowp)
1da177e4 831{
74d60958 832 XA_STATE(xas, &mapping->i_pages, offset);
00501b53 833 int huge = PageHuge(page);
e286781d 834 int error;
da74240e 835 bool charged = false;
e286781d 836
309381fe
SL
837 VM_BUG_ON_PAGE(!PageLocked(page), page);
838 VM_BUG_ON_PAGE(PageSwapBacked(page), page);
74d60958 839 mapping_set_update(&xas, mapping);
e286781d 840
09cbfeaf 841 get_page(page);
66a0c8ee
KS
842 page->mapping = mapping;
843 page->index = offset;
844
3fea5a49 845 if (!huge) {
198b62f8 846 error = mem_cgroup_charge(page, current->mm, gfp);
3fea5a49
JW
847 if (error)
848 goto error;
da74240e 849 charged = true;
3fea5a49
JW
850 }
851
198b62f8
MWO
852 gfp &= GFP_RECLAIM_MASK;
853
74d60958 854 do {
198b62f8
MWO
855 unsigned int order = xa_get_order(xas.xa, xas.xa_index);
856 void *entry, *old = NULL;
857
858 if (order > thp_order(page))
859 xas_split_alloc(&xas, xa_load(xas.xa, xas.xa_index),
860 order, gfp);
74d60958 861 xas_lock_irq(&xas);
198b62f8
MWO
862 xas_for_each_conflict(&xas, entry) {
863 old = entry;
864 if (!xa_is_value(entry)) {
865 xas_set_err(&xas, -EEXIST);
866 goto unlock;
867 }
868 }
869
870 if (old) {
871 if (shadowp)
872 *shadowp = old;
873 /* entry may have been split before we acquired lock */
874 order = xa_get_order(xas.xa, xas.xa_index);
875 if (order > thp_order(page)) {
876 xas_split(&xas, old, order);
877 xas_reset(&xas);
878 }
879 }
880
74d60958
MW
881 xas_store(&xas, page);
882 if (xas_error(&xas))
883 goto unlock;
884
198b62f8 885 if (old)
74d60958 886 mapping->nrexceptional--;
74d60958
MW
887 mapping->nrpages++;
888
889 /* hugetlb pages do not participate in page cache accounting */
890 if (!huge)
0d1c2072 891 __inc_lruvec_page_state(page, NR_FILE_PAGES);
74d60958
MW
892unlock:
893 xas_unlock_irq(&xas);
198b62f8 894 } while (xas_nomem(&xas, gfp));
74d60958 895
3fea5a49
JW
896 if (xas_error(&xas)) {
897 error = xas_error(&xas);
da74240e
WL
898 if (charged)
899 mem_cgroup_uncharge(page);
74d60958 900 goto error;
3fea5a49 901 }
4165b9b4 902
66a0c8ee
KS
903 trace_mm_filemap_add_to_page_cache(page);
904 return 0;
74d60958 905error:
66a0c8ee
KS
906 page->mapping = NULL;
907 /* Leave page->index set: truncation relies upon it */
09cbfeaf 908 put_page(page);
3fea5a49 909 return error;
1da177e4 910}
cfcbfb13 911ALLOW_ERROR_INJECTION(__add_to_page_cache_locked, ERRNO);
a528910e
JW
912
913/**
914 * add_to_page_cache_locked - add a locked page to the pagecache
915 * @page: page to add
916 * @mapping: the page's address_space
917 * @offset: page index
918 * @gfp_mask: page allocation mode
919 *
920 * This function is used to add a page to the pagecache. It must be locked.
921 * This function does not add the page to the LRU. The caller must do that.
a862f68a
MR
922 *
923 * Return: %0 on success, negative error code otherwise.
a528910e
JW
924 */
925int add_to_page_cache_locked(struct page *page, struct address_space *mapping,
926 pgoff_t offset, gfp_t gfp_mask)
927{
928 return __add_to_page_cache_locked(page, mapping, offset,
929 gfp_mask, NULL);
930}
e286781d 931EXPORT_SYMBOL(add_to_page_cache_locked);
1da177e4
LT
932
933int add_to_page_cache_lru(struct page *page, struct address_space *mapping,
6daa0e28 934 pgoff_t offset, gfp_t gfp_mask)
1da177e4 935{
a528910e 936 void *shadow = NULL;
4f98a2fe
RR
937 int ret;
938
48c935ad 939 __SetPageLocked(page);
a528910e
JW
940 ret = __add_to_page_cache_locked(page, mapping, offset,
941 gfp_mask, &shadow);
942 if (unlikely(ret))
48c935ad 943 __ClearPageLocked(page);
a528910e
JW
944 else {
945 /*
946 * The page might have been evicted from cache only
947 * recently, in which case it should be activated like
948 * any other repeatedly accessed page.
f0281a00
RR
949 * The exception is pages getting rewritten; evicting other
950 * data from the working set, only to cache data that will
951 * get overwritten with something else, is a waste of memory.
a528910e 952 */
1899ad18
JW
953 WARN_ON_ONCE(PageActive(page));
954 if (!(gfp_mask & __GFP_WRITE) && shadow)
955 workingset_refault(page, shadow);
a528910e
JW
956 lru_cache_add(page);
957 }
1da177e4
LT
958 return ret;
959}
18bc0bbd 960EXPORT_SYMBOL_GPL(add_to_page_cache_lru);
1da177e4 961
44110fe3 962#ifdef CONFIG_NUMA
2ae88149 963struct page *__page_cache_alloc(gfp_t gfp)
44110fe3 964{
c0ff7453
MX
965 int n;
966 struct page *page;
967
44110fe3 968 if (cpuset_do_page_mem_spread()) {
cc9a6c87
MG
969 unsigned int cpuset_mems_cookie;
970 do {
d26914d1 971 cpuset_mems_cookie = read_mems_allowed_begin();
cc9a6c87 972 n = cpuset_mem_spread_node();
96db800f 973 page = __alloc_pages_node(n, gfp, 0);
d26914d1 974 } while (!page && read_mems_allowed_retry(cpuset_mems_cookie));
cc9a6c87 975
c0ff7453 976 return page;
44110fe3 977 }
2ae88149 978 return alloc_pages(gfp, 0);
44110fe3 979}
2ae88149 980EXPORT_SYMBOL(__page_cache_alloc);
44110fe3
PJ
981#endif
982
1da177e4
LT
983/*
984 * In order to wait for pages to become available there must be
985 * waitqueues associated with pages. By using a hash table of
986 * waitqueues where the bucket discipline is to maintain all
987 * waiters on the same queue and wake all when any of the pages
988 * become available, and for the woken contexts to check to be
989 * sure the appropriate page became available, this saves space
990 * at a cost of "thundering herd" phenomena during rare hash
991 * collisions.
992 */
62906027
NP
993#define PAGE_WAIT_TABLE_BITS 8
994#define PAGE_WAIT_TABLE_SIZE (1 << PAGE_WAIT_TABLE_BITS)
995static wait_queue_head_t page_wait_table[PAGE_WAIT_TABLE_SIZE] __cacheline_aligned;
996
997static wait_queue_head_t *page_waitqueue(struct page *page)
1da177e4 998{
62906027 999 return &page_wait_table[hash_ptr(page, PAGE_WAIT_TABLE_BITS)];
1da177e4 1000}
1da177e4 1001
62906027 1002void __init pagecache_init(void)
1da177e4 1003{
62906027 1004 int i;
1da177e4 1005
62906027
NP
1006 for (i = 0; i < PAGE_WAIT_TABLE_SIZE; i++)
1007 init_waitqueue_head(&page_wait_table[i]);
1008
1009 page_writeback_init();
1da177e4 1010}
1da177e4 1011
5ef64cc8
LT
1012/*
1013 * The page wait code treats the "wait->flags" somewhat unusually, because
5868ec26 1014 * we have multiple different kinds of waits, not just the usual "exclusive"
5ef64cc8
LT
1015 * one.
1016 *
1017 * We have:
1018 *
1019 * (a) no special bits set:
1020 *
1021 * We're just waiting for the bit to be released, and when a waker
1022 * calls the wakeup function, we set WQ_FLAG_WOKEN and wake it up,
1023 * and remove it from the wait queue.
1024 *
1025 * Simple and straightforward.
1026 *
1027 * (b) WQ_FLAG_EXCLUSIVE:
1028 *
1029 * The waiter is waiting to get the lock, and only one waiter should
1030 * be woken up to avoid any thundering herd behavior. We'll set the
1031 * WQ_FLAG_WOKEN bit, wake it up, and remove it from the wait queue.
1032 *
1033 * This is the traditional exclusive wait.
1034 *
5868ec26 1035 * (c) WQ_FLAG_EXCLUSIVE | WQ_FLAG_CUSTOM:
5ef64cc8
LT
1036 *
1037 * The waiter is waiting to get the bit, and additionally wants the
1038 * lock to be transferred to it for fair lock behavior. If the lock
1039 * cannot be taken, we stop walking the wait queue without waking
1040 * the waiter.
1041 *
1042 * This is the "fair lock handoff" case, and in addition to setting
1043 * WQ_FLAG_WOKEN, we set WQ_FLAG_DONE to let the waiter easily see
1044 * that it now has the lock.
1045 */
ac6424b9 1046static int wake_page_function(wait_queue_entry_t *wait, unsigned mode, int sync, void *arg)
f62e00cc 1047{
5ef64cc8 1048 unsigned int flags;
62906027
NP
1049 struct wait_page_key *key = arg;
1050 struct wait_page_queue *wait_page
1051 = container_of(wait, struct wait_page_queue, wait);
1052
cdc8fcb4 1053 if (!wake_page_match(wait_page, key))
62906027 1054 return 0;
3510ca20 1055
9a1ea439 1056 /*
5ef64cc8
LT
1057 * If it's a lock handoff wait, we get the bit for it, and
1058 * stop walking (and do not wake it up) if we can't.
9a1ea439 1059 */
5ef64cc8
LT
1060 flags = wait->flags;
1061 if (flags & WQ_FLAG_EXCLUSIVE) {
1062 if (test_bit(key->bit_nr, &key->page->flags))
2a9127fc 1063 return -1;
5ef64cc8
LT
1064 if (flags & WQ_FLAG_CUSTOM) {
1065 if (test_and_set_bit(key->bit_nr, &key->page->flags))
1066 return -1;
1067 flags |= WQ_FLAG_DONE;
1068 }
2a9127fc 1069 }
f62e00cc 1070
5ef64cc8
LT
1071 /*
1072 * We are holding the wait-queue lock, but the waiter that
1073 * is waiting for this will be checking the flags without
1074 * any locking.
1075 *
1076 * So update the flags atomically, and wake up the waiter
1077 * afterwards to avoid any races. This store-release pairs
1078 * with the load-acquire in wait_on_page_bit_common().
1079 */
1080 smp_store_release(&wait->flags, flags | WQ_FLAG_WOKEN);
2a9127fc
LT
1081 wake_up_state(wait->private, mode);
1082
1083 /*
1084 * Ok, we have successfully done what we're waiting for,
1085 * and we can unconditionally remove the wait entry.
1086 *
5ef64cc8
LT
1087 * Note that this pairs with the "finish_wait()" in the
1088 * waiter, and has to be the absolute last thing we do.
1089 * After this list_del_init(&wait->entry) the wait entry
2a9127fc
LT
1090 * might be de-allocated and the process might even have
1091 * exited.
2a9127fc 1092 */
c6fe44d9 1093 list_del_init_careful(&wait->entry);
5ef64cc8 1094 return (flags & WQ_FLAG_EXCLUSIVE) != 0;
f62e00cc
KM
1095}
1096
74d81bfa 1097static void wake_up_page_bit(struct page *page, int bit_nr)
cbbce822 1098{
62906027
NP
1099 wait_queue_head_t *q = page_waitqueue(page);
1100 struct wait_page_key key;
1101 unsigned long flags;
11a19c7b 1102 wait_queue_entry_t bookmark;
cbbce822 1103
62906027
NP
1104 key.page = page;
1105 key.bit_nr = bit_nr;
1106 key.page_match = 0;
1107
11a19c7b
TC
1108 bookmark.flags = 0;
1109 bookmark.private = NULL;
1110 bookmark.func = NULL;
1111 INIT_LIST_HEAD(&bookmark.entry);
1112
62906027 1113 spin_lock_irqsave(&q->lock, flags);
11a19c7b
TC
1114 __wake_up_locked_key_bookmark(q, TASK_NORMAL, &key, &bookmark);
1115
1116 while (bookmark.flags & WQ_FLAG_BOOKMARK) {
1117 /*
1118 * Take a breather from holding the lock,
1119 * allow pages that finish wake up asynchronously
1120 * to acquire the lock and remove themselves
1121 * from wait queue
1122 */
1123 spin_unlock_irqrestore(&q->lock, flags);
1124 cpu_relax();
1125 spin_lock_irqsave(&q->lock, flags);
1126 __wake_up_locked_key_bookmark(q, TASK_NORMAL, &key, &bookmark);
1127 }
1128
62906027
NP
1129 /*
1130 * It is possible for other pages to have collided on the waitqueue
1131 * hash, so in that case check for a page match. That prevents a long-
1132 * term waiter
1133 *
1134 * It is still possible to miss a case here, when we woke page waiters
1135 * and removed them from the waitqueue, but there are still other
1136 * page waiters.
1137 */
1138 if (!waitqueue_active(q) || !key.page_match) {
1139 ClearPageWaiters(page);
1140 /*
1141 * It's possible to miss clearing Waiters here, when we woke
1142 * our page waiters, but the hashed waitqueue has waiters for
1143 * other pages on it.
1144 *
1145 * That's okay, it's a rare case. The next waker will clear it.
1146 */
1147 }
1148 spin_unlock_irqrestore(&q->lock, flags);
1149}
74d81bfa
NP
1150
1151static void wake_up_page(struct page *page, int bit)
1152{
1153 if (!PageWaiters(page))
1154 return;
1155 wake_up_page_bit(page, bit);
1156}
62906027 1157
9a1ea439
HD
1158/*
1159 * A choice of three behaviors for wait_on_page_bit_common():
1160 */
1161enum behavior {
1162 EXCLUSIVE, /* Hold ref to page and take the bit when woken, like
1163 * __lock_page() waiting on then setting PG_locked.
1164 */
1165 SHARED, /* Hold ref to page and check the bit when woken, like
1166 * wait_on_page_writeback() waiting on PG_writeback.
1167 */
1168 DROP, /* Drop ref to page before wait, no check when woken,
1169 * like put_and_wait_on_page_locked() on PG_locked.
1170 */
1171};
1172
2a9127fc 1173/*
5ef64cc8
LT
1174 * Attempt to check (or get) the page bit, and mark us done
1175 * if successful.
2a9127fc
LT
1176 */
1177static inline bool trylock_page_bit_common(struct page *page, int bit_nr,
1178 struct wait_queue_entry *wait)
1179{
1180 if (wait->flags & WQ_FLAG_EXCLUSIVE) {
1181 if (test_and_set_bit(bit_nr, &page->flags))
1182 return false;
1183 } else if (test_bit(bit_nr, &page->flags))
1184 return false;
1185
5ef64cc8 1186 wait->flags |= WQ_FLAG_WOKEN | WQ_FLAG_DONE;
2a9127fc
LT
1187 return true;
1188}
1189
5ef64cc8
LT
1190/* How many times do we accept lock stealing from under a waiter? */
1191int sysctl_page_lock_unfairness = 5;
1192
62906027 1193static inline int wait_on_page_bit_common(wait_queue_head_t *q,
9a1ea439 1194 struct page *page, int bit_nr, int state, enum behavior behavior)
62906027 1195{
5ef64cc8 1196 int unfairness = sysctl_page_lock_unfairness;
62906027 1197 struct wait_page_queue wait_page;
ac6424b9 1198 wait_queue_entry_t *wait = &wait_page.wait;
b1d29ba8 1199 bool thrashing = false;
9a1ea439 1200 bool delayacct = false;
eb414681 1201 unsigned long pflags;
62906027 1202
eb414681 1203 if (bit_nr == PG_locked &&
b1d29ba8 1204 !PageUptodate(page) && PageWorkingset(page)) {
9a1ea439 1205 if (!PageSwapBacked(page)) {
eb414681 1206 delayacct_thrashing_start();
9a1ea439
HD
1207 delayacct = true;
1208 }
eb414681 1209 psi_memstall_enter(&pflags);
b1d29ba8
JW
1210 thrashing = true;
1211 }
1212
62906027
NP
1213 init_wait(wait);
1214 wait->func = wake_page_function;
1215 wait_page.page = page;
1216 wait_page.bit_nr = bit_nr;
1217
5ef64cc8
LT
1218repeat:
1219 wait->flags = 0;
1220 if (behavior == EXCLUSIVE) {
1221 wait->flags = WQ_FLAG_EXCLUSIVE;
1222 if (--unfairness < 0)
1223 wait->flags |= WQ_FLAG_CUSTOM;
1224 }
1225
2a9127fc
LT
1226 /*
1227 * Do one last check whether we can get the
1228 * page bit synchronously.
1229 *
1230 * Do the SetPageWaiters() marking before that
1231 * to let any waker we _just_ missed know they
1232 * need to wake us up (otherwise they'll never
1233 * even go to the slow case that looks at the
1234 * page queue), and add ourselves to the wait
1235 * queue if we need to sleep.
1236 *
1237 * This part needs to be done under the queue
1238 * lock to avoid races.
1239 */
1240 spin_lock_irq(&q->lock);
1241 SetPageWaiters(page);
1242 if (!trylock_page_bit_common(page, bit_nr, wait))
1243 __add_wait_queue_entry_tail(q, wait);
1244 spin_unlock_irq(&q->lock);
62906027 1245
2a9127fc
LT
1246 /*
1247 * From now on, all the logic will be based on
5ef64cc8
LT
1248 * the WQ_FLAG_WOKEN and WQ_FLAG_DONE flag, to
1249 * see whether the page bit testing has already
1250 * been done by the wake function.
2a9127fc
LT
1251 *
1252 * We can drop our reference to the page.
1253 */
1254 if (behavior == DROP)
1255 put_page(page);
62906027 1256
5ef64cc8
LT
1257 /*
1258 * Note that until the "finish_wait()", or until
1259 * we see the WQ_FLAG_WOKEN flag, we need to
1260 * be very careful with the 'wait->flags', because
1261 * we may race with a waker that sets them.
1262 */
2a9127fc 1263 for (;;) {
5ef64cc8
LT
1264 unsigned int flags;
1265
62906027
NP
1266 set_current_state(state);
1267
5ef64cc8
LT
1268 /* Loop until we've been woken or interrupted */
1269 flags = smp_load_acquire(&wait->flags);
1270 if (!(flags & WQ_FLAG_WOKEN)) {
1271 if (signal_pending_state(state, current))
1272 break;
1273
1274 io_schedule();
1275 continue;
1276 }
1277
1278 /* If we were non-exclusive, we're done */
1279 if (behavior != EXCLUSIVE)
a8b169af 1280 break;
9a1ea439 1281
5ef64cc8
LT
1282 /* If the waker got the lock for us, we're done */
1283 if (flags & WQ_FLAG_DONE)
9a1ea439 1284 break;
2a9127fc 1285
5ef64cc8
LT
1286 /*
1287 * Otherwise, if we're getting the lock, we need to
1288 * try to get it ourselves.
1289 *
1290 * And if that fails, we'll have to retry this all.
1291 */
1292 if (unlikely(test_and_set_bit(bit_nr, &page->flags)))
1293 goto repeat;
1294
1295 wait->flags |= WQ_FLAG_DONE;
1296 break;
62906027
NP
1297 }
1298
5ef64cc8
LT
1299 /*
1300 * If a signal happened, this 'finish_wait()' may remove the last
1301 * waiter from the wait-queues, but the PageWaiters bit will remain
1302 * set. That's ok. The next wakeup will take care of it, and trying
1303 * to do it here would be difficult and prone to races.
1304 */
62906027
NP
1305 finish_wait(q, wait);
1306
eb414681 1307 if (thrashing) {
9a1ea439 1308 if (delayacct)
eb414681
JW
1309 delayacct_thrashing_end();
1310 psi_memstall_leave(&pflags);
1311 }
b1d29ba8 1312
62906027 1313 /*
5ef64cc8
LT
1314 * NOTE! The wait->flags weren't stable until we've done the
1315 * 'finish_wait()', and we could have exited the loop above due
1316 * to a signal, and had a wakeup event happen after the signal
1317 * test but before the 'finish_wait()'.
1318 *
1319 * So only after the finish_wait() can we reliably determine
1320 * if we got woken up or not, so we can now figure out the final
1321 * return value based on that state without races.
1322 *
1323 * Also note that WQ_FLAG_WOKEN is sufficient for a non-exclusive
1324 * waiter, but an exclusive one requires WQ_FLAG_DONE.
62906027 1325 */
5ef64cc8
LT
1326 if (behavior == EXCLUSIVE)
1327 return wait->flags & WQ_FLAG_DONE ? 0 : -EINTR;
62906027 1328
2a9127fc 1329 return wait->flags & WQ_FLAG_WOKEN ? 0 : -EINTR;
62906027
NP
1330}
1331
1332void wait_on_page_bit(struct page *page, int bit_nr)
1333{
1334 wait_queue_head_t *q = page_waitqueue(page);
9a1ea439 1335 wait_on_page_bit_common(q, page, bit_nr, TASK_UNINTERRUPTIBLE, SHARED);
62906027
NP
1336}
1337EXPORT_SYMBOL(wait_on_page_bit);
1338
1339int wait_on_page_bit_killable(struct page *page, int bit_nr)
1340{
1341 wait_queue_head_t *q = page_waitqueue(page);
9a1ea439 1342 return wait_on_page_bit_common(q, page, bit_nr, TASK_KILLABLE, SHARED);
cbbce822 1343}
4343d008 1344EXPORT_SYMBOL(wait_on_page_bit_killable);
cbbce822 1345
9a1ea439
HD
1346/**
1347 * put_and_wait_on_page_locked - Drop a reference and wait for it to be unlocked
1348 * @page: The page to wait for.
48054625 1349 * @state: The sleep state (TASK_KILLABLE, TASK_UNINTERRUPTIBLE, etc).
9a1ea439
HD
1350 *
1351 * The caller should hold a reference on @page. They expect the page to
1352 * become unlocked relatively soon, but do not wish to hold up migration
1353 * (for example) by holding the reference while waiting for the page to
1354 * come unlocked. After this function returns, the caller should not
1355 * dereference @page.
48054625
MWO
1356 *
1357 * Return: 0 if the page was unlocked or -EINTR if interrupted by a signal.
9a1ea439 1358 */
48054625 1359int put_and_wait_on_page_locked(struct page *page, int state)
9a1ea439
HD
1360{
1361 wait_queue_head_t *q;
1362
1363 page = compound_head(page);
1364 q = page_waitqueue(page);
48054625 1365 return wait_on_page_bit_common(q, page, PG_locked, state, DROP);
9a1ea439
HD
1366}
1367
385e1ca5
DH
1368/**
1369 * add_page_wait_queue - Add an arbitrary waiter to a page's wait queue
697f619f
RD
1370 * @page: Page defining the wait queue of interest
1371 * @waiter: Waiter to add to the queue
385e1ca5
DH
1372 *
1373 * Add an arbitrary @waiter to the wait queue for the nominated @page.
1374 */
ac6424b9 1375void add_page_wait_queue(struct page *page, wait_queue_entry_t *waiter)
385e1ca5
DH
1376{
1377 wait_queue_head_t *q = page_waitqueue(page);
1378 unsigned long flags;
1379
1380 spin_lock_irqsave(&q->lock, flags);
9c3a815f 1381 __add_wait_queue_entry_tail(q, waiter);
62906027 1382 SetPageWaiters(page);
385e1ca5
DH
1383 spin_unlock_irqrestore(&q->lock, flags);
1384}
1385EXPORT_SYMBOL_GPL(add_page_wait_queue);
1386
b91e1302
LT
1387#ifndef clear_bit_unlock_is_negative_byte
1388
1389/*
1390 * PG_waiters is the high bit in the same byte as PG_lock.
1391 *
1392 * On x86 (and on many other architectures), we can clear PG_lock and
1393 * test the sign bit at the same time. But if the architecture does
1394 * not support that special operation, we just do this all by hand
1395 * instead.
1396 *
1397 * The read of PG_waiters has to be after (or concurrently with) PG_locked
ffceeb62 1398 * being cleared, but a memory barrier should be unnecessary since it is
b91e1302
LT
1399 * in the same byte as PG_locked.
1400 */
1401static inline bool clear_bit_unlock_is_negative_byte(long nr, volatile void *mem)
1402{
1403 clear_bit_unlock(nr, mem);
1404 /* smp_mb__after_atomic(); */
98473f9f 1405 return test_bit(PG_waiters, mem);
b91e1302
LT
1406}
1407
1408#endif
1409
1da177e4 1410/**
485bb99b 1411 * unlock_page - unlock a locked page
1da177e4
LT
1412 * @page: the page
1413 *
0e9aa675 1414 * Unlocks the page and wakes up sleepers in wait_on_page_locked().
1da177e4 1415 * Also wakes sleepers in wait_on_page_writeback() because the wakeup
da3dae54 1416 * mechanism between PageLocked pages and PageWriteback pages is shared.
1da177e4
LT
1417 * But that's OK - sleepers in wait_on_page_writeback() just go back to sleep.
1418 *
b91e1302
LT
1419 * Note that this depends on PG_waiters being the sign bit in the byte
1420 * that contains PG_locked - thus the BUILD_BUG_ON(). That allows us to
1421 * clear the PG_locked bit and test PG_waiters at the same time fairly
1422 * portably (architectures that do LL/SC can test any bit, while x86 can
1423 * test the sign bit).
1da177e4 1424 */
920c7a5d 1425void unlock_page(struct page *page)
1da177e4 1426{
b91e1302 1427 BUILD_BUG_ON(PG_waiters != 7);
48c935ad 1428 page = compound_head(page);
309381fe 1429 VM_BUG_ON_PAGE(!PageLocked(page), page);
b91e1302
LT
1430 if (clear_bit_unlock_is_negative_byte(PG_locked, &page->flags))
1431 wake_up_page_bit(page, PG_locked);
1da177e4
LT
1432}
1433EXPORT_SYMBOL(unlock_page);
1434
485bb99b
RD
1435/**
1436 * end_page_writeback - end writeback against a page
1437 * @page: the page
1da177e4
LT
1438 */
1439void end_page_writeback(struct page *page)
1440{
888cf2db
MG
1441 /*
1442 * TestClearPageReclaim could be used here but it is an atomic
1443 * operation and overkill in this particular case. Failing to
1444 * shuffle a page marked for immediate reclaim is too mild to
1445 * justify taking an atomic operation penalty at the end of
1446 * ever page writeback.
1447 */
1448 if (PageReclaim(page)) {
1449 ClearPageReclaim(page);
ac6aadb2 1450 rotate_reclaimable_page(page);
888cf2db 1451 }
ac6aadb2 1452
073861ed
HD
1453 /*
1454 * Writeback does not hold a page reference of its own, relying
1455 * on truncation to wait for the clearing of PG_writeback.
1456 * But here we must make sure that the page is not freed and
1457 * reused before the wake_up_page().
1458 */
1459 get_page(page);
ac6aadb2
MS
1460 if (!test_clear_page_writeback(page))
1461 BUG();
1462
4e857c58 1463 smp_mb__after_atomic();
1da177e4 1464 wake_up_page(page, PG_writeback);
073861ed 1465 put_page(page);
1da177e4
LT
1466}
1467EXPORT_SYMBOL(end_page_writeback);
1468
57d99845
MW
1469/*
1470 * After completing I/O on a page, call this routine to update the page
1471 * flags appropriately
1472 */
c11f0c0b 1473void page_endio(struct page *page, bool is_write, int err)
57d99845 1474{
c11f0c0b 1475 if (!is_write) {
57d99845
MW
1476 if (!err) {
1477 SetPageUptodate(page);
1478 } else {
1479 ClearPageUptodate(page);
1480 SetPageError(page);
1481 }
1482 unlock_page(page);
abf54548 1483 } else {
57d99845 1484 if (err) {
dd8416c4
MK
1485 struct address_space *mapping;
1486
57d99845 1487 SetPageError(page);
dd8416c4
MK
1488 mapping = page_mapping(page);
1489 if (mapping)
1490 mapping_set_error(mapping, err);
57d99845
MW
1491 }
1492 end_page_writeback(page);
1493 }
1494}
1495EXPORT_SYMBOL_GPL(page_endio);
1496
485bb99b
RD
1497/**
1498 * __lock_page - get a lock on the page, assuming we need to sleep to get it
87066755 1499 * @__page: the page to lock
1da177e4 1500 */
62906027 1501void __lock_page(struct page *__page)
1da177e4 1502{
62906027
NP
1503 struct page *page = compound_head(__page);
1504 wait_queue_head_t *q = page_waitqueue(page);
9a1ea439
HD
1505 wait_on_page_bit_common(q, page, PG_locked, TASK_UNINTERRUPTIBLE,
1506 EXCLUSIVE);
1da177e4
LT
1507}
1508EXPORT_SYMBOL(__lock_page);
1509
62906027 1510int __lock_page_killable(struct page *__page)
2687a356 1511{
62906027
NP
1512 struct page *page = compound_head(__page);
1513 wait_queue_head_t *q = page_waitqueue(page);
9a1ea439
HD
1514 return wait_on_page_bit_common(q, page, PG_locked, TASK_KILLABLE,
1515 EXCLUSIVE);
2687a356 1516}
18bc0bbd 1517EXPORT_SYMBOL_GPL(__lock_page_killable);
2687a356 1518
dd3e6d50
JA
1519int __lock_page_async(struct page *page, struct wait_page_queue *wait)
1520{
f32b5dd7
MWO
1521 struct wait_queue_head *q = page_waitqueue(page);
1522 int ret = 0;
1523
1524 wait->page = page;
1525 wait->bit_nr = PG_locked;
1526
1527 spin_lock_irq(&q->lock);
1528 __add_wait_queue_entry_tail(q, &wait->wait);
1529 SetPageWaiters(page);
1530 ret = !trylock_page(page);
1531 /*
1532 * If we were successful now, we know we're still on the
1533 * waitqueue as we're still under the lock. This means it's
1534 * safe to remove and return success, we know the callback
1535 * isn't going to trigger.
1536 */
1537 if (!ret)
1538 __remove_wait_queue(q, &wait->wait);
1539 else
1540 ret = -EIOCBQUEUED;
1541 spin_unlock_irq(&q->lock);
1542 return ret;
dd3e6d50
JA
1543}
1544
9a95f3cf
PC
1545/*
1546 * Return values:
c1e8d7c6 1547 * 1 - page is locked; mmap_lock is still held.
9a95f3cf 1548 * 0 - page is not locked.
3e4e28c5 1549 * mmap_lock has been released (mmap_read_unlock(), unless flags had both
9a95f3cf 1550 * FAULT_FLAG_ALLOW_RETRY and FAULT_FLAG_RETRY_NOWAIT set, in
c1e8d7c6 1551 * which case mmap_lock is still held.
9a95f3cf
PC
1552 *
1553 * If neither ALLOW_RETRY nor KILLABLE are set, will always return 1
c1e8d7c6 1554 * with the page locked and the mmap_lock unperturbed.
9a95f3cf 1555 */
d065bd81
ML
1556int __lock_page_or_retry(struct page *page, struct mm_struct *mm,
1557 unsigned int flags)
1558{
4064b982 1559 if (fault_flag_allow_retry_first(flags)) {
37b23e05 1560 /*
c1e8d7c6 1561 * CAUTION! In this case, mmap_lock is not released
37b23e05
KM
1562 * even though return 0.
1563 */
1564 if (flags & FAULT_FLAG_RETRY_NOWAIT)
1565 return 0;
1566
d8ed45c5 1567 mmap_read_unlock(mm);
37b23e05
KM
1568 if (flags & FAULT_FLAG_KILLABLE)
1569 wait_on_page_locked_killable(page);
1570 else
318b275f 1571 wait_on_page_locked(page);
d065bd81 1572 return 0;
800bca7c
HL
1573 }
1574 if (flags & FAULT_FLAG_KILLABLE) {
1575 int ret;
37b23e05 1576
800bca7c
HL
1577 ret = __lock_page_killable(page);
1578 if (ret) {
1579 mmap_read_unlock(mm);
1580 return 0;
1581 }
1582 } else {
1583 __lock_page(page);
d065bd81 1584 }
800bca7c
HL
1585 return 1;
1586
d065bd81
ML
1587}
1588
e7b563bb 1589/**
0d3f9296
MW
1590 * page_cache_next_miss() - Find the next gap in the page cache.
1591 * @mapping: Mapping.
1592 * @index: Index.
1593 * @max_scan: Maximum range to search.
e7b563bb 1594 *
0d3f9296
MW
1595 * Search the range [index, min(index + max_scan - 1, ULONG_MAX)] for the
1596 * gap with the lowest index.
e7b563bb 1597 *
0d3f9296
MW
1598 * This function may be called under the rcu_read_lock. However, this will
1599 * not atomically search a snapshot of the cache at a single point in time.
1600 * For example, if a gap is created at index 5, then subsequently a gap is
1601 * created at index 10, page_cache_next_miss covering both indices may
1602 * return 10 if called under the rcu_read_lock.
e7b563bb 1603 *
0d3f9296
MW
1604 * Return: The index of the gap if found, otherwise an index outside the
1605 * range specified (in which case 'return - index >= max_scan' will be true).
1606 * In the rare case of index wrap-around, 0 will be returned.
e7b563bb 1607 */
0d3f9296 1608pgoff_t page_cache_next_miss(struct address_space *mapping,
e7b563bb
JW
1609 pgoff_t index, unsigned long max_scan)
1610{
0d3f9296 1611 XA_STATE(xas, &mapping->i_pages, index);
e7b563bb 1612
0d3f9296
MW
1613 while (max_scan--) {
1614 void *entry = xas_next(&xas);
1615 if (!entry || xa_is_value(entry))
e7b563bb 1616 break;
0d3f9296 1617 if (xas.xa_index == 0)
e7b563bb
JW
1618 break;
1619 }
1620
0d3f9296 1621 return xas.xa_index;
e7b563bb 1622}
0d3f9296 1623EXPORT_SYMBOL(page_cache_next_miss);
e7b563bb
JW
1624
1625/**
2346a560 1626 * page_cache_prev_miss() - Find the previous gap in the page cache.
0d3f9296
MW
1627 * @mapping: Mapping.
1628 * @index: Index.
1629 * @max_scan: Maximum range to search.
e7b563bb 1630 *
0d3f9296
MW
1631 * Search the range [max(index - max_scan + 1, 0), index] for the
1632 * gap with the highest index.
e7b563bb 1633 *
0d3f9296
MW
1634 * This function may be called under the rcu_read_lock. However, this will
1635 * not atomically search a snapshot of the cache at a single point in time.
1636 * For example, if a gap is created at index 10, then subsequently a gap is
1637 * created at index 5, page_cache_prev_miss() covering both indices may
1638 * return 5 if called under the rcu_read_lock.
e7b563bb 1639 *
0d3f9296
MW
1640 * Return: The index of the gap if found, otherwise an index outside the
1641 * range specified (in which case 'index - return >= max_scan' will be true).
1642 * In the rare case of wrap-around, ULONG_MAX will be returned.
e7b563bb 1643 */
0d3f9296 1644pgoff_t page_cache_prev_miss(struct address_space *mapping,
e7b563bb
JW
1645 pgoff_t index, unsigned long max_scan)
1646{
0d3f9296 1647 XA_STATE(xas, &mapping->i_pages, index);
e7b563bb 1648
0d3f9296
MW
1649 while (max_scan--) {
1650 void *entry = xas_prev(&xas);
1651 if (!entry || xa_is_value(entry))
e7b563bb 1652 break;
0d3f9296 1653 if (xas.xa_index == ULONG_MAX)
e7b563bb
JW
1654 break;
1655 }
1656
0d3f9296 1657 return xas.xa_index;
e7b563bb 1658}
0d3f9296 1659EXPORT_SYMBOL(page_cache_prev_miss);
e7b563bb 1660
44835d20 1661/*
bc5a3011 1662 * mapping_get_entry - Get a page cache entry.
485bb99b 1663 * @mapping: the address_space to search
a6de4b48 1664 * @index: The page cache index.
0cd6144a
JW
1665 *
1666 * Looks up the page cache slot at @mapping & @offset. If there is a
a6de4b48 1667 * page cache page, the head page is returned with an increased refcount.
485bb99b 1668 *
139b6a6f
JW
1669 * If the slot holds a shadow entry of a previously evicted page, or a
1670 * swap entry from shmem/tmpfs, it is returned.
0cd6144a 1671 *
a6de4b48 1672 * Return: The head page or shadow entry, %NULL if nothing is found.
1da177e4 1673 */
bc5a3011
MWO
1674static struct page *mapping_get_entry(struct address_space *mapping,
1675 pgoff_t index)
1da177e4 1676{
a6de4b48 1677 XA_STATE(xas, &mapping->i_pages, index);
4101196b 1678 struct page *page;
1da177e4 1679
a60637c8
NP
1680 rcu_read_lock();
1681repeat:
4c7472c0
MW
1682 xas_reset(&xas);
1683 page = xas_load(&xas);
1684 if (xas_retry(&xas, page))
1685 goto repeat;
1686 /*
1687 * A shadow entry of a recently evicted page, or a swap entry from
1688 * shmem/tmpfs. Return it without attempting to raise page count.
1689 */
1690 if (!page || xa_is_value(page))
1691 goto out;
83929372 1692
4101196b 1693 if (!page_cache_get_speculative(page))
4c7472c0 1694 goto repeat;
83929372 1695
4c7472c0 1696 /*
4101196b 1697 * Has the page moved or been split?
4c7472c0
MW
1698 * This is part of the lockless pagecache protocol. See
1699 * include/linux/pagemap.h for details.
1700 */
1701 if (unlikely(page != xas_reload(&xas))) {
4101196b 1702 put_page(page);
4c7472c0 1703 goto repeat;
a60637c8 1704 }
27d20fdd 1705out:
a60637c8
NP
1706 rcu_read_unlock();
1707
1da177e4
LT
1708 return page;
1709}
1da177e4 1710
0cd6144a 1711/**
2294b32e
MWO
1712 * pagecache_get_page - Find and get a reference to a page.
1713 * @mapping: The address_space to search.
1714 * @index: The page index.
1715 * @fgp_flags: %FGP flags modify how the page is returned.
1716 * @gfp_mask: Memory allocation flags to use if %FGP_CREAT is specified.
1da177e4 1717 *
2294b32e 1718 * Looks up the page cache entry at @mapping & @index.
0cd6144a 1719 *
2294b32e 1720 * @fgp_flags can be zero or more of these flags:
0e056eb5 1721 *
2294b32e
MWO
1722 * * %FGP_ACCESSED - The page will be marked accessed.
1723 * * %FGP_LOCK - The page is returned locked.
a8cf7f27
MWO
1724 * * %FGP_HEAD - If the page is present and a THP, return the head page
1725 * rather than the exact page specified by the index.
44835d20
MWO
1726 * * %FGP_ENTRY - If there is a shadow / swap / DAX entry, return it
1727 * instead of allocating a new page to replace it.
2294b32e
MWO
1728 * * %FGP_CREAT - If no page is present then a new page is allocated using
1729 * @gfp_mask and added to the page cache and the VM's LRU list.
1730 * The page is returned locked and with an increased refcount.
1731 * * %FGP_FOR_MMAP - The caller wants to do its own locking dance if the
1732 * page is already in cache. If the page was allocated, unlock it before
1733 * returning so the caller can do the same dance.
605cad83
YS
1734 * * %FGP_WRITE - The page will be written
1735 * * %FGP_NOFS - __GFP_FS will get cleared in gfp mask
1736 * * %FGP_NOWAIT - Don't get blocked by page lock
1da177e4 1737 *
2294b32e
MWO
1738 * If %FGP_LOCK or %FGP_CREAT are specified then the function may sleep even
1739 * if the %GFP flags specified for %FGP_CREAT are atomic.
1da177e4 1740 *
2457aec6 1741 * If there is a page cache page, it is returned with an increased refcount.
a862f68a 1742 *
2294b32e 1743 * Return: The found page or %NULL otherwise.
1da177e4 1744 */
2294b32e
MWO
1745struct page *pagecache_get_page(struct address_space *mapping, pgoff_t index,
1746 int fgp_flags, gfp_t gfp_mask)
1da177e4 1747{
eb2be189 1748 struct page *page;
2457aec6 1749
1da177e4 1750repeat:
bc5a3011 1751 page = mapping_get_entry(mapping, index);
44835d20
MWO
1752 if (xa_is_value(page)) {
1753 if (fgp_flags & FGP_ENTRY)
1754 return page;
2457aec6 1755 page = NULL;
44835d20 1756 }
2457aec6
MG
1757 if (!page)
1758 goto no_page;
1759
1760 if (fgp_flags & FGP_LOCK) {
1761 if (fgp_flags & FGP_NOWAIT) {
1762 if (!trylock_page(page)) {
09cbfeaf 1763 put_page(page);
2457aec6
MG
1764 return NULL;
1765 }
1766 } else {
1767 lock_page(page);
1768 }
1769
1770 /* Has the page been truncated? */
a8cf7f27 1771 if (unlikely(page->mapping != mapping)) {
2457aec6 1772 unlock_page(page);
09cbfeaf 1773 put_page(page);
2457aec6
MG
1774 goto repeat;
1775 }
a8cf7f27 1776 VM_BUG_ON_PAGE(!thp_contains(page, index), page);
2457aec6
MG
1777 }
1778
c16eb000 1779 if (fgp_flags & FGP_ACCESSED)
2457aec6 1780 mark_page_accessed(page);
b9306a79
YS
1781 else if (fgp_flags & FGP_WRITE) {
1782 /* Clear idle flag for buffer write */
1783 if (page_is_idle(page))
1784 clear_page_idle(page);
1785 }
a8cf7f27
MWO
1786 if (!(fgp_flags & FGP_HEAD))
1787 page = find_subpage(page, index);
2457aec6
MG
1788
1789no_page:
1790 if (!page && (fgp_flags & FGP_CREAT)) {
1791 int err;
f56753ac 1792 if ((fgp_flags & FGP_WRITE) && mapping_can_writeback(mapping))
45f87de5
MH
1793 gfp_mask |= __GFP_WRITE;
1794 if (fgp_flags & FGP_NOFS)
1795 gfp_mask &= ~__GFP_FS;
2457aec6 1796
45f87de5 1797 page = __page_cache_alloc(gfp_mask);
eb2be189
NP
1798 if (!page)
1799 return NULL;
2457aec6 1800
a75d4c33 1801 if (WARN_ON_ONCE(!(fgp_flags & (FGP_LOCK | FGP_FOR_MMAP))))
2457aec6
MG
1802 fgp_flags |= FGP_LOCK;
1803
eb39d618 1804 /* Init accessed so avoid atomic mark_page_accessed later */
2457aec6 1805 if (fgp_flags & FGP_ACCESSED)
eb39d618 1806 __SetPageReferenced(page);
2457aec6 1807
2294b32e 1808 err = add_to_page_cache_lru(page, mapping, index, gfp_mask);
eb2be189 1809 if (unlikely(err)) {
09cbfeaf 1810 put_page(page);
eb2be189
NP
1811 page = NULL;
1812 if (err == -EEXIST)
1813 goto repeat;
1da177e4 1814 }
a75d4c33
JB
1815
1816 /*
1817 * add_to_page_cache_lru locks the page, and for mmap we expect
1818 * an unlocked page.
1819 */
1820 if (page && (fgp_flags & FGP_FOR_MMAP))
1821 unlock_page(page);
1da177e4 1822 }
2457aec6 1823
1da177e4
LT
1824 return page;
1825}
2457aec6 1826EXPORT_SYMBOL(pagecache_get_page);
1da177e4 1827
c7bad633
MWO
1828static inline struct page *find_get_entry(struct xa_state *xas, pgoff_t max,
1829 xa_mark_t mark)
1830{
1831 struct page *page;
1832
1833retry:
1834 if (mark == XA_PRESENT)
1835 page = xas_find(xas, max);
1836 else
1837 page = xas_find_marked(xas, max, mark);
1838
1839 if (xas_retry(xas, page))
1840 goto retry;
1841 /*
1842 * A shadow entry of a recently evicted page, a swap
1843 * entry from shmem/tmpfs or a DAX entry. Return it
1844 * without attempting to raise page count.
1845 */
1846 if (!page || xa_is_value(page))
1847 return page;
1848
1849 if (!page_cache_get_speculative(page))
1850 goto reset;
1851
1852 /* Has the page moved or been split? */
1853 if (unlikely(page != xas_reload(xas))) {
1854 put_page(page);
1855 goto reset;
1856 }
1857
1858 return page;
1859reset:
1860 xas_reset(xas);
1861 goto retry;
1862}
1863
0cd6144a
JW
1864/**
1865 * find_get_entries - gang pagecache lookup
1866 * @mapping: The address_space to search
1867 * @start: The starting page cache index
ca122fe4 1868 * @end: The final page index (inclusive).
cf2039af 1869 * @pvec: Where the resulting entries are placed.
0cd6144a
JW
1870 * @indices: The cache indices corresponding to the entries in @entries
1871 *
cf2039af
MWO
1872 * find_get_entries() will search for and return a batch of entries in
1873 * the mapping. The entries are placed in @pvec. find_get_entries()
1874 * takes a reference on any actual pages it returns.
0cd6144a
JW
1875 *
1876 * The search returns a group of mapping-contiguous page cache entries
1877 * with ascending indexes. There may be holes in the indices due to
1878 * not-present pages.
1879 *
139b6a6f
JW
1880 * Any shadow entries of evicted pages, or swap entries from
1881 * shmem/tmpfs, are included in the returned array.
0cd6144a 1882 *
71725ed1
HD
1883 * If it finds a Transparent Huge Page, head or tail, find_get_entries()
1884 * stops at that page: the caller is likely to have a better way to handle
1885 * the compound page as a whole, and then skip its extent, than repeatedly
1886 * calling find_get_entries() to return all its tails.
1887 *
a862f68a 1888 * Return: the number of pages and shadow entries which were found.
0cd6144a 1889 */
ca122fe4 1890unsigned find_get_entries(struct address_space *mapping, pgoff_t start,
cf2039af 1891 pgoff_t end, struct pagevec *pvec, pgoff_t *indices)
0cd6144a 1892{
f280bf09
MW
1893 XA_STATE(xas, &mapping->i_pages, start);
1894 struct page *page;
0cd6144a 1895 unsigned int ret = 0;
cf2039af 1896 unsigned nr_entries = PAGEVEC_SIZE;
0cd6144a
JW
1897
1898 rcu_read_lock();
ca122fe4 1899 while ((page = find_get_entry(&xas, end, XA_PRESENT))) {
71725ed1
HD
1900 /*
1901 * Terminate early on finding a THP, to allow the caller to
1902 * handle it all at once; but continue if this is hugetlbfs.
1903 */
c7bad633
MWO
1904 if (!xa_is_value(page) && PageTransHuge(page) &&
1905 !PageHuge(page)) {
71725ed1
HD
1906 page = find_subpage(page, xas.xa_index);
1907 nr_entries = ret + 1;
1908 }
c7bad633 1909
f280bf09 1910 indices[ret] = xas.xa_index;
cf2039af 1911 pvec->pages[ret] = page;
0cd6144a
JW
1912 if (++ret == nr_entries)
1913 break;
1914 }
1915 rcu_read_unlock();
cf2039af
MWO
1916
1917 pvec->nr = ret;
0cd6144a
JW
1918 return ret;
1919}
1920
5c211ba2
MWO
1921/**
1922 * find_lock_entries - Find a batch of pagecache entries.
1923 * @mapping: The address_space to search.
1924 * @start: The starting page cache index.
1925 * @end: The final page index (inclusive).
1926 * @pvec: Where the resulting entries are placed.
1927 * @indices: The cache indices of the entries in @pvec.
1928 *
1929 * find_lock_entries() will return a batch of entries from @mapping.
1930 * Swap, shadow and DAX entries are included. Pages are returned
1931 * locked and with an incremented refcount. Pages which are locked by
1932 * somebody else or under writeback are skipped. Only the head page of
1933 * a THP is returned. Pages which are partially outside the range are
1934 * not returned.
1935 *
1936 * The entries have ascending indexes. The indices may not be consecutive
1937 * due to not-present entries, THP pages, pages which could not be locked
1938 * or pages under writeback.
1939 *
1940 * Return: The number of entries which were found.
1941 */
1942unsigned find_lock_entries(struct address_space *mapping, pgoff_t start,
1943 pgoff_t end, struct pagevec *pvec, pgoff_t *indices)
1944{
1945 XA_STATE(xas, &mapping->i_pages, start);
1946 struct page *page;
1947
1948 rcu_read_lock();
1949 while ((page = find_get_entry(&xas, end, XA_PRESENT))) {
1950 if (!xa_is_value(page)) {
1951 if (page->index < start)
1952 goto put;
1953 VM_BUG_ON_PAGE(page->index != xas.xa_index, page);
1954 if (page->index + thp_nr_pages(page) - 1 > end)
1955 goto put;
1956 if (!trylock_page(page))
1957 goto put;
1958 if (page->mapping != mapping || PageWriteback(page))
1959 goto unlock;
1960 VM_BUG_ON_PAGE(!thp_contains(page, xas.xa_index),
1961 page);
1962 }
1963 indices[pvec->nr] = xas.xa_index;
1964 if (!pagevec_add(pvec, page))
1965 break;
1966 goto next;
1967unlock:
1968 unlock_page(page);
1969put:
1970 put_page(page);
1971next:
2d11e738
HD
1972 if (!xa_is_value(page) && PageTransHuge(page)) {
1973 unsigned int nr_pages = thp_nr_pages(page);
1974
1975 /* Final THP may cross MAX_LFS_FILESIZE on 32-bit */
1976 xas_set(&xas, page->index + nr_pages);
1977 if (xas.xa_index < nr_pages)
1978 break;
1979 }
5c211ba2
MWO
1980 }
1981 rcu_read_unlock();
1982
1983 return pagevec_count(pvec);
1984}
1985
1da177e4 1986/**
b947cee4 1987 * find_get_pages_range - gang pagecache lookup
1da177e4
LT
1988 * @mapping: The address_space to search
1989 * @start: The starting page index
b947cee4 1990 * @end: The final page index (inclusive)
1da177e4
LT
1991 * @nr_pages: The maximum number of pages
1992 * @pages: Where the resulting pages are placed
1993 *
b947cee4
JK
1994 * find_get_pages_range() will search for and return a group of up to @nr_pages
1995 * pages in the mapping starting at index @start and up to index @end
1996 * (inclusive). The pages are placed at @pages. find_get_pages_range() takes
1997 * a reference against the returned pages.
1da177e4
LT
1998 *
1999 * The search returns a group of mapping-contiguous pages with ascending
2000 * indexes. There may be holes in the indices due to not-present pages.
d72dc8a2 2001 * We also update @start to index the next page for the traversal.
1da177e4 2002 *
a862f68a
MR
2003 * Return: the number of pages which were found. If this number is
2004 * smaller than @nr_pages, the end of specified range has been
b947cee4 2005 * reached.
1da177e4 2006 */
b947cee4
JK
2007unsigned find_get_pages_range(struct address_space *mapping, pgoff_t *start,
2008 pgoff_t end, unsigned int nr_pages,
2009 struct page **pages)
1da177e4 2010{
fd1b3cee
MW
2011 XA_STATE(xas, &mapping->i_pages, *start);
2012 struct page *page;
0fc9d104
KK
2013 unsigned ret = 0;
2014
2015 if (unlikely(!nr_pages))
2016 return 0;
a60637c8
NP
2017
2018 rcu_read_lock();
c7bad633 2019 while ((page = find_get_entry(&xas, end, XA_PRESENT))) {
fd1b3cee
MW
2020 /* Skip over shadow, swap and DAX entries */
2021 if (xa_is_value(page))
8079b1c8 2022 continue;
a60637c8 2023
4101196b 2024 pages[ret] = find_subpage(page, xas.xa_index);
b947cee4 2025 if (++ret == nr_pages) {
5d3ee42f 2026 *start = xas.xa_index + 1;
b947cee4
JK
2027 goto out;
2028 }
a60637c8 2029 }
5b280c0c 2030
b947cee4
JK
2031 /*
2032 * We come here when there is no page beyond @end. We take care to not
2033 * overflow the index @start as it confuses some of the callers. This
fd1b3cee 2034 * breaks the iteration when there is a page at index -1 but that is
b947cee4
JK
2035 * already broken anyway.
2036 */
2037 if (end == (pgoff_t)-1)
2038 *start = (pgoff_t)-1;
2039 else
2040 *start = end + 1;
2041out:
a60637c8 2042 rcu_read_unlock();
d72dc8a2 2043
1da177e4
LT
2044 return ret;
2045}
2046
ebf43500
JA
2047/**
2048 * find_get_pages_contig - gang contiguous pagecache lookup
2049 * @mapping: The address_space to search
2050 * @index: The starting page index
2051 * @nr_pages: The maximum number of pages
2052 * @pages: Where the resulting pages are placed
2053 *
2054 * find_get_pages_contig() works exactly like find_get_pages(), except
2055 * that the returned number of pages are guaranteed to be contiguous.
2056 *
a862f68a 2057 * Return: the number of pages which were found.
ebf43500
JA
2058 */
2059unsigned find_get_pages_contig(struct address_space *mapping, pgoff_t index,
2060 unsigned int nr_pages, struct page **pages)
2061{
3ece58a2
MW
2062 XA_STATE(xas, &mapping->i_pages, index);
2063 struct page *page;
0fc9d104
KK
2064 unsigned int ret = 0;
2065
2066 if (unlikely(!nr_pages))
2067 return 0;
a60637c8
NP
2068
2069 rcu_read_lock();
3ece58a2 2070 for (page = xas_load(&xas); page; page = xas_next(&xas)) {
3ece58a2
MW
2071 if (xas_retry(&xas, page))
2072 continue;
2073 /*
2074 * If the entry has been swapped out, we can stop looking.
2075 * No current caller is looking for DAX entries.
2076 */
2077 if (xa_is_value(page))
8079b1c8 2078 break;
ebf43500 2079
4101196b 2080 if (!page_cache_get_speculative(page))
3ece58a2 2081 goto retry;
83929372 2082
4101196b 2083 /* Has the page moved or been split? */
3ece58a2
MW
2084 if (unlikely(page != xas_reload(&xas)))
2085 goto put_page;
a60637c8 2086
4101196b 2087 pages[ret] = find_subpage(page, xas.xa_index);
0fc9d104
KK
2088 if (++ret == nr_pages)
2089 break;
3ece58a2
MW
2090 continue;
2091put_page:
4101196b 2092 put_page(page);
3ece58a2
MW
2093retry:
2094 xas_reset(&xas);
ebf43500 2095 }
a60637c8
NP
2096 rcu_read_unlock();
2097 return ret;
ebf43500 2098}
ef71c15c 2099EXPORT_SYMBOL(find_get_pages_contig);
ebf43500 2100
485bb99b 2101/**
c49f50d1 2102 * find_get_pages_range_tag - Find and return head pages matching @tag.
485bb99b
RD
2103 * @mapping: the address_space to search
2104 * @index: the starting page index
72b045ae 2105 * @end: The final page index (inclusive)
485bb99b
RD
2106 * @tag: the tag index
2107 * @nr_pages: the maximum number of pages
2108 * @pages: where the resulting pages are placed
2109 *
c49f50d1
MWO
2110 * Like find_get_pages(), except we only return head pages which are tagged
2111 * with @tag. @index is updated to the index immediately after the last
2112 * page we return, ready for the next iteration.
a862f68a
MR
2113 *
2114 * Return: the number of pages which were found.
1da177e4 2115 */
72b045ae 2116unsigned find_get_pages_range_tag(struct address_space *mapping, pgoff_t *index,
a6906972 2117 pgoff_t end, xa_mark_t tag, unsigned int nr_pages,
72b045ae 2118 struct page **pages)
1da177e4 2119{
a6906972
MW
2120 XA_STATE(xas, &mapping->i_pages, *index);
2121 struct page *page;
0fc9d104
KK
2122 unsigned ret = 0;
2123
2124 if (unlikely(!nr_pages))
2125 return 0;
a60637c8
NP
2126
2127 rcu_read_lock();
c7bad633 2128 while ((page = find_get_entry(&xas, end, tag))) {
a6906972
MW
2129 /*
2130 * Shadow entries should never be tagged, but this iteration
2131 * is lockless so there is a window for page reclaim to evict
2132 * a page we saw tagged. Skip over it.
2133 */
2134 if (xa_is_value(page))
139b6a6f 2135 continue;
a60637c8 2136
c49f50d1 2137 pages[ret] = page;
72b045ae 2138 if (++ret == nr_pages) {
c49f50d1 2139 *index = page->index + thp_nr_pages(page);
72b045ae
JK
2140 goto out;
2141 }
a60637c8 2142 }
5b280c0c 2143
72b045ae 2144 /*
a6906972 2145 * We come here when we got to @end. We take care to not overflow the
72b045ae 2146 * index @index as it confuses some of the callers. This breaks the
a6906972
MW
2147 * iteration when there is a page at index -1 but that is already
2148 * broken anyway.
72b045ae
JK
2149 */
2150 if (end == (pgoff_t)-1)
2151 *index = (pgoff_t)-1;
2152 else
2153 *index = end + 1;
2154out:
a60637c8 2155 rcu_read_unlock();
1da177e4 2156
1da177e4
LT
2157 return ret;
2158}
72b045ae 2159EXPORT_SYMBOL(find_get_pages_range_tag);
1da177e4 2160
76d42bd9
WF
2161/*
2162 * CD/DVDs are error prone. When a medium error occurs, the driver may fail
2163 * a _large_ part of the i/o request. Imagine the worst scenario:
2164 *
2165 * ---R__________________________________________B__________
2166 * ^ reading here ^ bad block(assume 4k)
2167 *
2168 * read(R) => miss => readahead(R...B) => media error => frustrating retries
2169 * => failing the whole request => read(R) => read(R+1) =>
2170 * readahead(R+1...B+1) => bang => read(R+2) => read(R+3) =>
2171 * readahead(R+3...B+2) => bang => read(R+3) => read(R+4) =>
2172 * readahead(R+4...B+3) => bang => read(R+4) => read(R+5) => ......
2173 *
2174 * It is going insane. Fix it by quickly scaling down the readahead size.
2175 */
0f8e2db4 2176static void shrink_readahead_size_eio(struct file_ra_state *ra)
76d42bd9 2177{
76d42bd9 2178 ra->ra_pages /= 4;
76d42bd9
WF
2179}
2180
cbd59c48
MWO
2181/*
2182 * filemap_get_read_batch - Get a batch of pages for read
2183 *
2184 * Get a batch of pages which represent a contiguous range of bytes
2185 * in the file. No tail pages will be returned. If @index is in the
2186 * middle of a THP, the entire THP will be returned. The last page in
2187 * the batch may have Readahead set or be not Uptodate so that the
2188 * caller can take the appropriate action.
2189 */
2190static void filemap_get_read_batch(struct address_space *mapping,
2191 pgoff_t index, pgoff_t max, struct pagevec *pvec)
2192{
2193 XA_STATE(xas, &mapping->i_pages, index);
2194 struct page *head;
2195
2196 rcu_read_lock();
2197 for (head = xas_load(&xas); head; head = xas_next(&xas)) {
2198 if (xas_retry(&xas, head))
2199 continue;
2200 if (xas.xa_index > max || xa_is_value(head))
2201 break;
2202 if (!page_cache_get_speculative(head))
2203 goto retry;
2204
2205 /* Has the page moved or been split? */
2206 if (unlikely(head != xas_reload(&xas)))
2207 goto put_page;
2208
2209 if (!pagevec_add(pvec, head))
2210 break;
2211 if (!PageUptodate(head))
2212 break;
2213 if (PageReadahead(head))
2214 break;
2215 xas.xa_index = head->index + thp_nr_pages(head) - 1;
2216 xas.xa_offset = (xas.xa_index >> xas.xa_shift) & XA_CHUNK_MASK;
2217 continue;
2218put_page:
2219 put_page(head);
2220retry:
2221 xas_reset(&xas);
2222 }
2223 rcu_read_unlock();
2224}
2225
68430303
MWO
2226static int filemap_read_page(struct file *file, struct address_space *mapping,
2227 struct page *page)
723ef24b 2228{
723ef24b
KO
2229 int error;
2230
723ef24b 2231 /*
68430303
MWO
2232 * A previous I/O error may have been due to temporary failures,
2233 * eg. multipath errors. PG_error will be set again if readpage
2234 * fails.
723ef24b
KO
2235 */
2236 ClearPageError(page);
2237 /* Start the actual read. The read will unlock the page. */
68430303
MWO
2238 error = mapping->a_ops->readpage(file, page);
2239 if (error)
2240 return error;
723ef24b 2241
aa1ec2f6 2242 error = wait_on_page_locked_killable(page);
68430303
MWO
2243 if (error)
2244 return error;
aa1ec2f6
MWO
2245 if (PageUptodate(page))
2246 return 0;
2247 if (!page->mapping) /* page truncated */
2248 return AOP_TRUNCATED_PAGE;
2249 shrink_readahead_size_eio(&file->f_ra);
2250 return -EIO;
723ef24b
KO
2251}
2252
fce70da3
MWO
2253static bool filemap_range_uptodate(struct address_space *mapping,
2254 loff_t pos, struct iov_iter *iter, struct page *page)
2255{
2256 int count;
2257
2258 if (PageUptodate(page))
2259 return true;
2260 /* pipes can't handle partially uptodate pages */
2261 if (iov_iter_is_pipe(iter))
2262 return false;
2263 if (!mapping->a_ops->is_partially_uptodate)
2264 return false;
2265 if (mapping->host->i_blkbits >= (PAGE_SHIFT + thp_order(page)))
2266 return false;
2267
2268 count = iter->count;
2269 if (page_offset(page) > pos) {
2270 count -= page_offset(page) - pos;
2271 pos = 0;
2272 } else {
2273 pos -= page_offset(page);
2274 }
2275
2276 return mapping->a_ops->is_partially_uptodate(page, pos, count);
2277}
2278
4612aeef
MWO
2279static int filemap_update_page(struct kiocb *iocb,
2280 struct address_space *mapping, struct iov_iter *iter,
fce70da3 2281 struct page *page)
723ef24b 2282{
723ef24b
KO
2283 int error;
2284
87d1d7b6
MWO
2285 if (!trylock_page(page)) {
2286 if (iocb->ki_flags & (IOCB_NOWAIT | IOCB_NOIO))
2287 return -EAGAIN;
2288 if (!(iocb->ki_flags & IOCB_WAITQ)) {
bd8a1f36 2289 put_and_wait_on_page_locked(page, TASK_KILLABLE);
4612aeef 2290 return AOP_TRUNCATED_PAGE;
bd8a1f36 2291 }
87d1d7b6
MWO
2292 error = __lock_page_async(page, iocb->ki_waitq);
2293 if (error)
2294 return error;
723ef24b 2295 }
723ef24b 2296
bd8a1f36
MWO
2297 if (!page->mapping)
2298 goto truncated;
723ef24b 2299
fce70da3
MWO
2300 error = 0;
2301 if (filemap_range_uptodate(mapping, iocb->ki_pos, iter, page))
2302 goto unlock;
2303
2304 error = -EAGAIN;
2305 if (iocb->ki_flags & (IOCB_NOIO | IOCB_NOWAIT | IOCB_WAITQ))
2306 goto unlock;
2307
68430303 2308 error = filemap_read_page(iocb->ki_filp, mapping, page);
68430303 2309 if (error == AOP_TRUNCATED_PAGE)
4612aeef
MWO
2310 put_page(page);
2311 return error;
bd8a1f36
MWO
2312truncated:
2313 unlock_page(page);
2314 put_page(page);
4612aeef 2315 return AOP_TRUNCATED_PAGE;
fce70da3
MWO
2316unlock:
2317 unlock_page(page);
2318 return error;
723ef24b
KO
2319}
2320
f253e185
MWO
2321static int filemap_create_page(struct file *file,
2322 struct address_space *mapping, pgoff_t index,
2323 struct pagevec *pvec)
723ef24b 2324{
723ef24b
KO
2325 struct page *page;
2326 int error;
2327
723ef24b
KO
2328 page = page_cache_alloc(mapping);
2329 if (!page)
f253e185 2330 return -ENOMEM;
723ef24b
KO
2331
2332 error = add_to_page_cache_lru(page, mapping, index,
f253e185
MWO
2333 mapping_gfp_constraint(mapping, GFP_KERNEL));
2334 if (error == -EEXIST)
2335 error = AOP_TRUNCATED_PAGE;
2336 if (error)
2337 goto error;
2338
2339 error = filemap_read_page(file, mapping, page);
2340 if (error)
2341 goto error;
2342
2343 pagevec_add(pvec, page);
2344 return 0;
2345error:
68430303 2346 put_page(page);
f253e185 2347 return error;
723ef24b
KO
2348}
2349
5963fe03
MWO
2350static int filemap_readahead(struct kiocb *iocb, struct file *file,
2351 struct address_space *mapping, struct page *page,
2352 pgoff_t last_index)
2353{
2354 if (iocb->ki_flags & IOCB_NOIO)
2355 return -EAGAIN;
2356 page_cache_async_readahead(mapping, &file->f_ra, file, page,
2357 page->index, last_index - page->index);
2358 return 0;
2359}
2360
3a6bae48 2361static int filemap_get_pages(struct kiocb *iocb, struct iov_iter *iter,
ff993ba1 2362 struct pagevec *pvec)
06c04442
KO
2363{
2364 struct file *filp = iocb->ki_filp;
2365 struct address_space *mapping = filp->f_mapping;
2366 struct file_ra_state *ra = &filp->f_ra;
2367 pgoff_t index = iocb->ki_pos >> PAGE_SHIFT;
cbd59c48 2368 pgoff_t last_index;
2642fca6 2369 struct page *page;
cbd59c48 2370 int err = 0;
06c04442 2371
cbd59c48 2372 last_index = DIV_ROUND_UP(iocb->ki_pos + iter->count, PAGE_SIZE);
2642fca6 2373retry:
06c04442
KO
2374 if (fatal_signal_pending(current))
2375 return -EINTR;
2376
cbd59c48 2377 filemap_get_read_batch(mapping, index, last_index, pvec);
2642fca6
MWO
2378 if (!pagevec_count(pvec)) {
2379 if (iocb->ki_flags & IOCB_NOIO)
2380 return -EAGAIN;
2381 page_cache_sync_readahead(mapping, ra, filp, index,
2382 last_index - index);
2383 filemap_get_read_batch(mapping, index, last_index, pvec);
2384 }
f253e185
MWO
2385 if (!pagevec_count(pvec)) {
2386 if (iocb->ki_flags & (IOCB_NOWAIT | IOCB_WAITQ))
2387 return -EAGAIN;
2388 err = filemap_create_page(filp, mapping,
2389 iocb->ki_pos >> PAGE_SHIFT, pvec);
2390 if (err == AOP_TRUNCATED_PAGE)
2642fca6 2391 goto retry;
f253e185
MWO
2392 return err;
2393 }
06c04442 2394
2642fca6
MWO
2395 page = pvec->pages[pagevec_count(pvec) - 1];
2396 if (PageReadahead(page)) {
2397 err = filemap_readahead(iocb, filp, mapping, page, last_index);
2398 if (err)
2399 goto err;
2400 }
2401 if (!PageUptodate(page)) {
2402 if ((iocb->ki_flags & IOCB_WAITQ) && pagevec_count(pvec) > 1)
2403 iocb->ki_flags |= IOCB_NOWAIT;
2404 err = filemap_update_page(iocb, mapping, iter, page);
2405 if (err)
2406 goto err;
06c04442
KO
2407 }
2408
2642fca6 2409 return 0;
cbd59c48 2410err:
2642fca6
MWO
2411 if (err < 0)
2412 put_page(page);
2413 if (likely(--pvec->nr))
ff993ba1 2414 return 0;
4612aeef 2415 if (err == AOP_TRUNCATED_PAGE)
2642fca6
MWO
2416 goto retry;
2417 return err;
06c04442
KO
2418}
2419
485bb99b 2420/**
87fa0f3e
CH
2421 * filemap_read - Read data from the page cache.
2422 * @iocb: The iocb to read.
2423 * @iter: Destination for the data.
2424 * @already_read: Number of bytes already read by the caller.
485bb99b 2425 *
87fa0f3e
CH
2426 * Copies data from the page cache. If the data is not currently present,
2427 * uses the readahead and readpage address_space operations to fetch it.
1da177e4 2428 *
87fa0f3e
CH
2429 * Return: Total number of bytes copied, including those already read by
2430 * the caller. If an error happens before any bytes are copied, returns
2431 * a negative error number.
1da177e4 2432 */
87fa0f3e
CH
2433ssize_t filemap_read(struct kiocb *iocb, struct iov_iter *iter,
2434 ssize_t already_read)
1da177e4 2435{
47c27bc4 2436 struct file *filp = iocb->ki_filp;
06c04442 2437 struct file_ra_state *ra = &filp->f_ra;
36e78914 2438 struct address_space *mapping = filp->f_mapping;
1da177e4 2439 struct inode *inode = mapping->host;
ff993ba1
MWO
2440 struct pagevec pvec;
2441 int i, error = 0;
06c04442
KO
2442 bool writably_mapped;
2443 loff_t isize, end_offset;
1da177e4 2444
723ef24b 2445 if (unlikely(iocb->ki_pos >= inode->i_sb->s_maxbytes))
d05c5f7b 2446 return 0;
3644e2d2
KO
2447 if (unlikely(!iov_iter_count(iter)))
2448 return 0;
2449
c2a9737f 2450 iov_iter_truncate(iter, inode->i_sb->s_maxbytes);
cbd59c48 2451 pagevec_init(&pvec);
c2a9737f 2452
06c04442 2453 do {
1da177e4 2454 cond_resched();
5abf186a 2455
723ef24b 2456 /*
06c04442
KO
2457 * If we've already successfully copied some data, then we
2458 * can no longer safely return -EIOCBQUEUED. Hence mark
2459 * an async read NOWAIT at that point.
723ef24b 2460 */
87fa0f3e 2461 if ((iocb->ki_flags & IOCB_WAITQ) && already_read)
723ef24b
KO
2462 iocb->ki_flags |= IOCB_NOWAIT;
2463
ff993ba1
MWO
2464 error = filemap_get_pages(iocb, iter, &pvec);
2465 if (error < 0)
06c04442 2466 break;
1da177e4 2467
06c04442
KO
2468 /*
2469 * i_size must be checked after we know the pages are Uptodate.
2470 *
2471 * Checking i_size after the check allows us to calculate
2472 * the correct value for "nr", which means the zero-filled
2473 * part of the page is not copied back to userspace (unless
2474 * another truncate extends the file - this is desired though).
2475 */
2476 isize = i_size_read(inode);
2477 if (unlikely(iocb->ki_pos >= isize))
2478 goto put_pages;
06c04442
KO
2479 end_offset = min_t(loff_t, isize, iocb->ki_pos + iter->count);
2480
06c04442
KO
2481 /*
2482 * Once we start copying data, we don't want to be touching any
2483 * cachelines that might be contended:
2484 */
2485 writably_mapped = mapping_writably_mapped(mapping);
2486
2487 /*
2488 * When a sequential read accesses a page several times, only
2489 * mark it as accessed the first time.
2490 */
2491 if (iocb->ki_pos >> PAGE_SHIFT !=
2492 ra->prev_pos >> PAGE_SHIFT)
ff993ba1 2493 mark_page_accessed(pvec.pages[0]);
06c04442 2494
ff993ba1 2495 for (i = 0; i < pagevec_count(&pvec); i++) {
cbd59c48
MWO
2496 struct page *page = pvec.pages[i];
2497 size_t page_size = thp_size(page);
2498 size_t offset = iocb->ki_pos & (page_size - 1);
2499 size_t bytes = min_t(loff_t, end_offset - iocb->ki_pos,
2500 page_size - offset);
2501 size_t copied;
06c04442 2502
cbd59c48
MWO
2503 if (end_offset < page_offset(page))
2504 break;
2505 if (i > 0)
2506 mark_page_accessed(page);
06c04442
KO
2507 /*
2508 * If users can be writing to this page using arbitrary
2509 * virtual addresses, take care about potential aliasing
2510 * before reading the page on the kernel side.
2511 */
cbd59c48
MWO
2512 if (writably_mapped) {
2513 int j;
2514
2515 for (j = 0; j < thp_nr_pages(page); j++)
2516 flush_dcache_page(page + j);
2517 }
06c04442 2518
cbd59c48 2519 copied = copy_page_to_iter(page, offset, bytes, iter);
06c04442 2520
87fa0f3e 2521 already_read += copied;
06c04442
KO
2522 iocb->ki_pos += copied;
2523 ra->prev_pos = iocb->ki_pos;
2524
2525 if (copied < bytes) {
2526 error = -EFAULT;
2527 break;
2528 }
1da177e4 2529 }
06c04442 2530put_pages:
ff993ba1
MWO
2531 for (i = 0; i < pagevec_count(&pvec); i++)
2532 put_page(pvec.pages[i]);
cbd59c48 2533 pagevec_reinit(&pvec);
06c04442 2534 } while (iov_iter_count(iter) && iocb->ki_pos < isize && !error);
1da177e4 2535
0c6aa263 2536 file_accessed(filp);
06c04442 2537
87fa0f3e 2538 return already_read ? already_read : error;
1da177e4 2539}
87fa0f3e 2540EXPORT_SYMBOL_GPL(filemap_read);
1da177e4 2541
485bb99b 2542/**
6abd2322 2543 * generic_file_read_iter - generic filesystem read routine
485bb99b 2544 * @iocb: kernel I/O control block
6abd2322 2545 * @iter: destination for the data read
485bb99b 2546 *
6abd2322 2547 * This is the "read_iter()" routine for all filesystems
1da177e4 2548 * that can use the page cache directly.
41da51bc
AG
2549 *
2550 * The IOCB_NOWAIT flag in iocb->ki_flags indicates that -EAGAIN shall
2551 * be returned when no data can be read without waiting for I/O requests
2552 * to complete; it doesn't prevent readahead.
2553 *
2554 * The IOCB_NOIO flag in iocb->ki_flags indicates that no new I/O
2555 * requests shall be made for the read or for readahead. When no data
2556 * can be read, -EAGAIN shall be returned. When readahead would be
2557 * triggered, a partial, possibly empty read shall be returned.
2558 *
a862f68a
MR
2559 * Return:
2560 * * number of bytes copied, even for partial reads
41da51bc 2561 * * negative error code (or 0 if IOCB_NOIO) if nothing was read
1da177e4
LT
2562 */
2563ssize_t
ed978a81 2564generic_file_read_iter(struct kiocb *iocb, struct iov_iter *iter)
1da177e4 2565{
e7080a43 2566 size_t count = iov_iter_count(iter);
47c27bc4 2567 ssize_t retval = 0;
e7080a43
NS
2568
2569 if (!count)
826ea860 2570 return 0; /* skip atime */
1da177e4 2571
2ba48ce5 2572 if (iocb->ki_flags & IOCB_DIRECT) {
47c27bc4 2573 struct file *file = iocb->ki_filp;
ed978a81
AV
2574 struct address_space *mapping = file->f_mapping;
2575 struct inode *inode = mapping->host;
543ade1f 2576 loff_t size;
1da177e4 2577
1da177e4 2578 size = i_size_read(inode);
6be96d3a
GR
2579 if (iocb->ki_flags & IOCB_NOWAIT) {
2580 if (filemap_range_has_page(mapping, iocb->ki_pos,
2581 iocb->ki_pos + count - 1))
2582 return -EAGAIN;
2583 } else {
2584 retval = filemap_write_and_wait_range(mapping,
2585 iocb->ki_pos,
2586 iocb->ki_pos + count - 1);
2587 if (retval < 0)
826ea860 2588 return retval;
6be96d3a 2589 }
d8d3d94b 2590
0d5b0cf2
CH
2591 file_accessed(file);
2592
5ecda137 2593 retval = mapping->a_ops->direct_IO(iocb, iter);
c3a69024 2594 if (retval >= 0) {
c64fb5c7 2595 iocb->ki_pos += retval;
5ecda137 2596 count -= retval;
9fe55eea 2597 }
ab2125df
PB
2598 if (retval != -EIOCBQUEUED)
2599 iov_iter_revert(iter, count - iov_iter_count(iter));
66f998f6 2600
9fe55eea
SW
2601 /*
2602 * Btrfs can have a short DIO read if we encounter
2603 * compressed extents, so if there was an error, or if
2604 * we've already read everything we wanted to, or if
2605 * there was a short read because we hit EOF, go ahead
2606 * and return. Otherwise fallthrough to buffered io for
fbbbad4b
MW
2607 * the rest of the read. Buffered reads will not work for
2608 * DAX files, so don't bother trying.
9fe55eea 2609 */
5ecda137 2610 if (retval < 0 || !count || iocb->ki_pos >= size ||
0d5b0cf2 2611 IS_DAX(inode))
826ea860 2612 return retval;
1da177e4
LT
2613 }
2614
826ea860 2615 return filemap_read(iocb, iter, retval);
1da177e4 2616}
ed978a81 2617EXPORT_SYMBOL(generic_file_read_iter);
1da177e4 2618
54fa39ac
MWO
2619static inline loff_t page_seek_hole_data(struct xa_state *xas,
2620 struct address_space *mapping, struct page *page,
2621 loff_t start, loff_t end, bool seek_data)
41139aa4 2622{
54fa39ac
MWO
2623 const struct address_space_operations *ops = mapping->a_ops;
2624 size_t offset, bsz = i_blocksize(mapping->host);
2625
41139aa4 2626 if (xa_is_value(page) || PageUptodate(page))
54fa39ac
MWO
2627 return seek_data ? start : end;
2628 if (!ops->is_partially_uptodate)
2629 return seek_data ? end : start;
2630
2631 xas_pause(xas);
2632 rcu_read_unlock();
2633 lock_page(page);
2634 if (unlikely(page->mapping != mapping))
2635 goto unlock;
2636
2637 offset = offset_in_thp(page, start) & ~(bsz - 1);
2638
2639 do {
2640 if (ops->is_partially_uptodate(page, offset, bsz) == seek_data)
2641 break;
2642 start = (start + bsz) & ~(bsz - 1);
2643 offset += bsz;
2644 } while (offset < thp_size(page));
2645unlock:
2646 unlock_page(page);
2647 rcu_read_lock();
2648 return start;
41139aa4
MWO
2649}
2650
2651static inline
2652unsigned int seek_page_size(struct xa_state *xas, struct page *page)
2653{
2654 if (xa_is_value(page))
2655 return PAGE_SIZE << xa_get_order(xas->xa, xas->xa_index);
2656 return thp_size(page);
2657}
2658
2659/**
2660 * mapping_seek_hole_data - Seek for SEEK_DATA / SEEK_HOLE in the page cache.
2661 * @mapping: Address space to search.
2662 * @start: First byte to consider.
2663 * @end: Limit of search (exclusive).
2664 * @whence: Either SEEK_HOLE or SEEK_DATA.
2665 *
2666 * If the page cache knows which blocks contain holes and which blocks
2667 * contain data, your filesystem can use this function to implement
2668 * SEEK_HOLE and SEEK_DATA. This is useful for filesystems which are
2669 * entirely memory-based such as tmpfs, and filesystems which support
2670 * unwritten extents.
2671 *
2672 * Return: The requested offset on successs, or -ENXIO if @whence specifies
2673 * SEEK_DATA and there is no data after @start. There is an implicit hole
2674 * after @end - 1, so SEEK_HOLE returns @end if all the bytes between @start
2675 * and @end contain data.
2676 */
2677loff_t mapping_seek_hole_data(struct address_space *mapping, loff_t start,
2678 loff_t end, int whence)
2679{
2680 XA_STATE(xas, &mapping->i_pages, start >> PAGE_SHIFT);
2681 pgoff_t max = (end - 1) / PAGE_SIZE;
2682 bool seek_data = (whence == SEEK_DATA);
2683 struct page *page;
2684
2685 if (end <= start)
2686 return -ENXIO;
2687
2688 rcu_read_lock();
2689 while ((page = find_get_entry(&xas, max, XA_PRESENT))) {
2690 loff_t pos = xas.xa_index * PAGE_SIZE;
2691
2692 if (start < pos) {
2693 if (!seek_data)
2694 goto unlock;
2695 start = pos;
2696 }
2697
54fa39ac
MWO
2698 pos += seek_page_size(&xas, page);
2699 start = page_seek_hole_data(&xas, mapping, page, start, pos,
2700 seek_data);
2701 if (start < pos)
41139aa4 2702 goto unlock;
41139aa4
MWO
2703 if (!xa_is_value(page))
2704 put_page(page);
2705 }
2706 rcu_read_unlock();
2707
2708 if (seek_data)
2709 return -ENXIO;
2710 goto out;
2711
2712unlock:
2713 rcu_read_unlock();
2714 if (!xa_is_value(page))
2715 put_page(page);
2716out:
2717 if (start > end)
2718 return end;
2719 return start;
2720}
2721
1da177e4 2722#ifdef CONFIG_MMU
1da177e4 2723#define MMAP_LOTSAMISS (100)
6b4c9f44 2724/*
c1e8d7c6 2725 * lock_page_maybe_drop_mmap - lock the page, possibly dropping the mmap_lock
6b4c9f44
JB
2726 * @vmf - the vm_fault for this fault.
2727 * @page - the page to lock.
2728 * @fpin - the pointer to the file we may pin (or is already pinned).
2729 *
c1e8d7c6 2730 * This works similar to lock_page_or_retry in that it can drop the mmap_lock.
6b4c9f44 2731 * It differs in that it actually returns the page locked if it returns 1 and 0
c1e8d7c6 2732 * if it couldn't lock the page. If we did have to drop the mmap_lock then fpin
6b4c9f44
JB
2733 * will point to the pinned file and needs to be fput()'ed at a later point.
2734 */
2735static int lock_page_maybe_drop_mmap(struct vm_fault *vmf, struct page *page,
2736 struct file **fpin)
2737{
2738 if (trylock_page(page))
2739 return 1;
2740
8b0f9fa2
LT
2741 /*
2742 * NOTE! This will make us return with VM_FAULT_RETRY, but with
c1e8d7c6 2743 * the mmap_lock still held. That's how FAULT_FLAG_RETRY_NOWAIT
8b0f9fa2
LT
2744 * is supposed to work. We have way too many special cases..
2745 */
6b4c9f44
JB
2746 if (vmf->flags & FAULT_FLAG_RETRY_NOWAIT)
2747 return 0;
2748
2749 *fpin = maybe_unlock_mmap_for_io(vmf, *fpin);
2750 if (vmf->flags & FAULT_FLAG_KILLABLE) {
2751 if (__lock_page_killable(page)) {
2752 /*
c1e8d7c6 2753 * We didn't have the right flags to drop the mmap_lock,
6b4c9f44
JB
2754 * but all fault_handlers only check for fatal signals
2755 * if we return VM_FAULT_RETRY, so we need to drop the
c1e8d7c6 2756 * mmap_lock here and return 0 if we don't have a fpin.
6b4c9f44
JB
2757 */
2758 if (*fpin == NULL)
d8ed45c5 2759 mmap_read_unlock(vmf->vma->vm_mm);
6b4c9f44
JB
2760 return 0;
2761 }
2762 } else
2763 __lock_page(page);
2764 return 1;
2765}
2766
1da177e4 2767
ef00e08e 2768/*
6b4c9f44
JB
2769 * Synchronous readahead happens when we don't even find a page in the page
2770 * cache at all. We don't want to perform IO under the mmap sem, so if we have
2771 * to drop the mmap sem we return the file that was pinned in order for us to do
2772 * that. If we didn't pin a file then we return NULL. The file that is
2773 * returned needs to be fput()'ed when we're done with it.
ef00e08e 2774 */
6b4c9f44 2775static struct file *do_sync_mmap_readahead(struct vm_fault *vmf)
ef00e08e 2776{
2a1180f1
JB
2777 struct file *file = vmf->vma->vm_file;
2778 struct file_ra_state *ra = &file->f_ra;
ef00e08e 2779 struct address_space *mapping = file->f_mapping;
db660d46 2780 DEFINE_READAHEAD(ractl, file, mapping, vmf->pgoff);
6b4c9f44 2781 struct file *fpin = NULL;
e630bfac 2782 unsigned int mmap_miss;
ef00e08e
LT
2783
2784 /* If we don't want any read-ahead, don't bother */
2a1180f1 2785 if (vmf->vma->vm_flags & VM_RAND_READ)
6b4c9f44 2786 return fpin;
275b12bf 2787 if (!ra->ra_pages)
6b4c9f44 2788 return fpin;
ef00e08e 2789
2a1180f1 2790 if (vmf->vma->vm_flags & VM_SEQ_READ) {
6b4c9f44 2791 fpin = maybe_unlock_mmap_for_io(vmf, fpin);
db660d46 2792 page_cache_sync_ra(&ractl, ra, ra->ra_pages);
6b4c9f44 2793 return fpin;
ef00e08e
LT
2794 }
2795
207d04ba 2796 /* Avoid banging the cache line if not needed */
e630bfac
KS
2797 mmap_miss = READ_ONCE(ra->mmap_miss);
2798 if (mmap_miss < MMAP_LOTSAMISS * 10)
2799 WRITE_ONCE(ra->mmap_miss, ++mmap_miss);
ef00e08e
LT
2800
2801 /*
2802 * Do we miss much more than hit in this file? If so,
2803 * stop bothering with read-ahead. It will only hurt.
2804 */
e630bfac 2805 if (mmap_miss > MMAP_LOTSAMISS)
6b4c9f44 2806 return fpin;
ef00e08e 2807
d30a1100
WF
2808 /*
2809 * mmap read-around
2810 */
6b4c9f44 2811 fpin = maybe_unlock_mmap_for_io(vmf, fpin);
db660d46 2812 ra->start = max_t(long, 0, vmf->pgoff - ra->ra_pages / 2);
600e19af
RG
2813 ra->size = ra->ra_pages;
2814 ra->async_size = ra->ra_pages / 4;
db660d46
DH
2815 ractl._index = ra->start;
2816 do_page_cache_ra(&ractl, ra->size, ra->async_size);
6b4c9f44 2817 return fpin;
ef00e08e
LT
2818}
2819
2820/*
2821 * Asynchronous readahead happens when we find the page and PG_readahead,
6b4c9f44 2822 * so we want to possibly extend the readahead further. We return the file that
c1e8d7c6 2823 * was pinned if we have to drop the mmap_lock in order to do IO.
ef00e08e 2824 */
6b4c9f44
JB
2825static struct file *do_async_mmap_readahead(struct vm_fault *vmf,
2826 struct page *page)
ef00e08e 2827{
2a1180f1
JB
2828 struct file *file = vmf->vma->vm_file;
2829 struct file_ra_state *ra = &file->f_ra;
ef00e08e 2830 struct address_space *mapping = file->f_mapping;
6b4c9f44 2831 struct file *fpin = NULL;
e630bfac 2832 unsigned int mmap_miss;
2a1180f1 2833 pgoff_t offset = vmf->pgoff;
ef00e08e
LT
2834
2835 /* If we don't want any read-ahead, don't bother */
5c72feee 2836 if (vmf->vma->vm_flags & VM_RAND_READ || !ra->ra_pages)
6b4c9f44 2837 return fpin;
e630bfac
KS
2838 mmap_miss = READ_ONCE(ra->mmap_miss);
2839 if (mmap_miss)
2840 WRITE_ONCE(ra->mmap_miss, --mmap_miss);
6b4c9f44
JB
2841 if (PageReadahead(page)) {
2842 fpin = maybe_unlock_mmap_for_io(vmf, fpin);
2fad6f5d
WF
2843 page_cache_async_readahead(mapping, ra, file,
2844 page, offset, ra->ra_pages);
6b4c9f44
JB
2845 }
2846 return fpin;
ef00e08e
LT
2847}
2848
485bb99b 2849/**
54cb8821 2850 * filemap_fault - read in file data for page fault handling
d0217ac0 2851 * @vmf: struct vm_fault containing details of the fault
485bb99b 2852 *
54cb8821 2853 * filemap_fault() is invoked via the vma operations vector for a
1da177e4
LT
2854 * mapped memory region to read in file data during a page fault.
2855 *
2856 * The goto's are kind of ugly, but this streamlines the normal case of having
2857 * it in the page cache, and handles the special cases reasonably without
2858 * having a lot of duplicated code.
9a95f3cf 2859 *
c1e8d7c6 2860 * vma->vm_mm->mmap_lock must be held on entry.
9a95f3cf 2861 *
c1e8d7c6 2862 * If our return value has VM_FAULT_RETRY set, it's because the mmap_lock
a4985833 2863 * may be dropped before doing I/O or by lock_page_maybe_drop_mmap().
9a95f3cf 2864 *
c1e8d7c6 2865 * If our return value does not have VM_FAULT_RETRY set, the mmap_lock
9a95f3cf
PC
2866 * has not been released.
2867 *
2868 * We never return with VM_FAULT_RETRY and a bit from VM_FAULT_ERROR set.
a862f68a
MR
2869 *
2870 * Return: bitwise-OR of %VM_FAULT_ codes.
1da177e4 2871 */
2bcd6454 2872vm_fault_t filemap_fault(struct vm_fault *vmf)
1da177e4
LT
2873{
2874 int error;
11bac800 2875 struct file *file = vmf->vma->vm_file;
6b4c9f44 2876 struct file *fpin = NULL;
1da177e4
LT
2877 struct address_space *mapping = file->f_mapping;
2878 struct file_ra_state *ra = &file->f_ra;
2879 struct inode *inode = mapping->host;
ef00e08e 2880 pgoff_t offset = vmf->pgoff;
9ab2594f 2881 pgoff_t max_off;
1da177e4 2882 struct page *page;
2bcd6454 2883 vm_fault_t ret = 0;
1da177e4 2884
9ab2594f
MW
2885 max_off = DIV_ROUND_UP(i_size_read(inode), PAGE_SIZE);
2886 if (unlikely(offset >= max_off))
5307cc1a 2887 return VM_FAULT_SIGBUS;
1da177e4 2888
1da177e4 2889 /*
49426420 2890 * Do we have something in the page cache already?
1da177e4 2891 */
ef00e08e 2892 page = find_get_page(mapping, offset);
45cac65b 2893 if (likely(page) && !(vmf->flags & FAULT_FLAG_TRIED)) {
1da177e4 2894 /*
ef00e08e
LT
2895 * We found the page, so try async readahead before
2896 * waiting for the lock.
1da177e4 2897 */
6b4c9f44 2898 fpin = do_async_mmap_readahead(vmf, page);
45cac65b 2899 } else if (!page) {
ef00e08e 2900 /* No page in the page cache at all */
ef00e08e 2901 count_vm_event(PGMAJFAULT);
2262185c 2902 count_memcg_event_mm(vmf->vma->vm_mm, PGMAJFAULT);
ef00e08e 2903 ret = VM_FAULT_MAJOR;
6b4c9f44 2904 fpin = do_sync_mmap_readahead(vmf);
ef00e08e 2905retry_find:
a75d4c33
JB
2906 page = pagecache_get_page(mapping, offset,
2907 FGP_CREAT|FGP_FOR_MMAP,
2908 vmf->gfp_mask);
6b4c9f44
JB
2909 if (!page) {
2910 if (fpin)
2911 goto out_retry;
e520e932 2912 return VM_FAULT_OOM;
6b4c9f44 2913 }
1da177e4
LT
2914 }
2915
6b4c9f44
JB
2916 if (!lock_page_maybe_drop_mmap(vmf, page, &fpin))
2917 goto out_retry;
b522c94d
ML
2918
2919 /* Did it get truncated? */
585e5a7b 2920 if (unlikely(compound_head(page)->mapping != mapping)) {
b522c94d
ML
2921 unlock_page(page);
2922 put_page(page);
2923 goto retry_find;
2924 }
520e5ba4 2925 VM_BUG_ON_PAGE(page_to_pgoff(page) != offset, page);
b522c94d 2926
1da177e4 2927 /*
d00806b1
NP
2928 * We have a locked page in the page cache, now we need to check
2929 * that it's up-to-date. If not, it is going to be due to an error.
1da177e4 2930 */
d00806b1 2931 if (unlikely(!PageUptodate(page)))
1da177e4
LT
2932 goto page_not_uptodate;
2933
6b4c9f44 2934 /*
c1e8d7c6 2935 * We've made it this far and we had to drop our mmap_lock, now is the
6b4c9f44
JB
2936 * time to return to the upper layer and have it re-find the vma and
2937 * redo the fault.
2938 */
2939 if (fpin) {
2940 unlock_page(page);
2941 goto out_retry;
2942 }
2943
ef00e08e
LT
2944 /*
2945 * Found the page and have a reference on it.
2946 * We must recheck i_size under page lock.
2947 */
9ab2594f
MW
2948 max_off = DIV_ROUND_UP(i_size_read(inode), PAGE_SIZE);
2949 if (unlikely(offset >= max_off)) {
d00806b1 2950 unlock_page(page);
09cbfeaf 2951 put_page(page);
5307cc1a 2952 return VM_FAULT_SIGBUS;
d00806b1
NP
2953 }
2954
d0217ac0 2955 vmf->page = page;
83c54070 2956 return ret | VM_FAULT_LOCKED;
1da177e4 2957
1da177e4 2958page_not_uptodate:
1da177e4
LT
2959 /*
2960 * Umm, take care of errors if the page isn't up-to-date.
2961 * Try to re-read it _once_. We do this synchronously,
2962 * because there really aren't any performance issues here
2963 * and we need to check for errors.
2964 */
1da177e4 2965 ClearPageError(page);
6b4c9f44 2966 fpin = maybe_unlock_mmap_for_io(vmf, fpin);
994fc28c 2967 error = mapping->a_ops->readpage(file, page);
3ef0f720
MS
2968 if (!error) {
2969 wait_on_page_locked(page);
2970 if (!PageUptodate(page))
2971 error = -EIO;
2972 }
6b4c9f44
JB
2973 if (fpin)
2974 goto out_retry;
09cbfeaf 2975 put_page(page);
d00806b1
NP
2976
2977 if (!error || error == AOP_TRUNCATED_PAGE)
994fc28c 2978 goto retry_find;
1da177e4 2979
0f8e2db4 2980 shrink_readahead_size_eio(ra);
d0217ac0 2981 return VM_FAULT_SIGBUS;
6b4c9f44
JB
2982
2983out_retry:
2984 /*
c1e8d7c6 2985 * We dropped the mmap_lock, we need to return to the fault handler to
6b4c9f44
JB
2986 * re-find the vma and come back and find our hopefully still populated
2987 * page.
2988 */
2989 if (page)
2990 put_page(page);
2991 if (fpin)
2992 fput(fpin);
2993 return ret | VM_FAULT_RETRY;
54cb8821
NP
2994}
2995EXPORT_SYMBOL(filemap_fault);
2996
f9ce0be7 2997static bool filemap_map_pmd(struct vm_fault *vmf, struct page *page)
f1820361 2998{
f9ce0be7
KS
2999 struct mm_struct *mm = vmf->vma->vm_mm;
3000
3001 /* Huge page is mapped? No need to proceed. */
3002 if (pmd_trans_huge(*vmf->pmd)) {
3003 unlock_page(page);
3004 put_page(page);
3005 return true;
3006 }
3007
3008 if (pmd_none(*vmf->pmd) && PageTransHuge(page)) {
3009 vm_fault_t ret = do_set_pmd(vmf, page);
3010 if (!ret) {
3011 /* The page is mapped successfully, reference consumed. */
3012 unlock_page(page);
3013 return true;
3014 }
3015 }
3016
3017 if (pmd_none(*vmf->pmd)) {
3018 vmf->ptl = pmd_lock(mm, vmf->pmd);
3019 if (likely(pmd_none(*vmf->pmd))) {
3020 mm_inc_nr_ptes(mm);
3021 pmd_populate(mm, vmf->pmd, vmf->prealloc_pte);
3022 vmf->prealloc_pte = NULL;
3023 }
3024 spin_unlock(vmf->ptl);
3025 }
3026
3027 /* See comment in handle_pte_fault() */
3028 if (pmd_devmap_trans_unstable(vmf->pmd)) {
3029 unlock_page(page);
3030 put_page(page);
3031 return true;
3032 }
3033
3034 return false;
3035}
3036
3037static struct page *next_uptodate_page(struct page *page,
3038 struct address_space *mapping,
3039 struct xa_state *xas, pgoff_t end_pgoff)
3040{
3041 unsigned long max_idx;
3042
3043 do {
3044 if (!page)
3045 return NULL;
3046 if (xas_retry(xas, page))
3047 continue;
3048 if (xa_is_value(page))
3049 continue;
3050 if (PageLocked(page))
3051 continue;
3052 if (!page_cache_get_speculative(page))
3053 continue;
3054 /* Has the page moved or been split? */
3055 if (unlikely(page != xas_reload(xas)))
3056 goto skip;
3057 if (!PageUptodate(page) || PageReadahead(page))
3058 goto skip;
3059 if (PageHWPoison(page))
3060 goto skip;
3061 if (!trylock_page(page))
3062 goto skip;
3063 if (page->mapping != mapping)
3064 goto unlock;
3065 if (!PageUptodate(page))
3066 goto unlock;
3067 max_idx = DIV_ROUND_UP(i_size_read(mapping->host), PAGE_SIZE);
3068 if (xas->xa_index >= max_idx)
3069 goto unlock;
3070 return page;
3071unlock:
3072 unlock_page(page);
3073skip:
3074 put_page(page);
3075 } while ((page = xas_next_entry(xas, end_pgoff)) != NULL);
3076
3077 return NULL;
3078}
3079
3080static inline struct page *first_map_page(struct address_space *mapping,
3081 struct xa_state *xas,
3082 pgoff_t end_pgoff)
3083{
3084 return next_uptodate_page(xas_find(xas, end_pgoff),
3085 mapping, xas, end_pgoff);
3086}
3087
3088static inline struct page *next_map_page(struct address_space *mapping,
3089 struct xa_state *xas,
3090 pgoff_t end_pgoff)
3091{
3092 return next_uptodate_page(xas_next_entry(xas, end_pgoff),
3093 mapping, xas, end_pgoff);
3094}
3095
3096vm_fault_t filemap_map_pages(struct vm_fault *vmf,
3097 pgoff_t start_pgoff, pgoff_t end_pgoff)
3098{
3099 struct vm_area_struct *vma = vmf->vma;
3100 struct file *file = vma->vm_file;
f1820361 3101 struct address_space *mapping = file->f_mapping;
bae473a4 3102 pgoff_t last_pgoff = start_pgoff;
9d3af4b4 3103 unsigned long addr;
070e807c 3104 XA_STATE(xas, &mapping->i_pages, start_pgoff);
27a83a60 3105 struct page *head, *page;
e630bfac 3106 unsigned int mmap_miss = READ_ONCE(file->f_ra.mmap_miss);
f9ce0be7 3107 vm_fault_t ret = 0;
f1820361
KS
3108
3109 rcu_read_lock();
f9ce0be7
KS
3110 head = first_map_page(mapping, &xas, end_pgoff);
3111 if (!head)
3112 goto out;
f1820361 3113
f9ce0be7
KS
3114 if (filemap_map_pmd(vmf, head)) {
3115 ret = VM_FAULT_NOPAGE;
3116 goto out;
3117 }
f1820361 3118
9d3af4b4
WD
3119 addr = vma->vm_start + ((start_pgoff - vma->vm_pgoff) << PAGE_SHIFT);
3120 vmf->pte = pte_offset_map_lock(vma->vm_mm, vmf->pmd, addr, &vmf->ptl);
f9ce0be7 3121 do {
27a83a60 3122 page = find_subpage(head, xas.xa_index);
f9ce0be7 3123 if (PageHWPoison(page))
f1820361
KS
3124 goto unlock;
3125
e630bfac
KS
3126 if (mmap_miss > 0)
3127 mmap_miss--;
7267ec00 3128
9d3af4b4 3129 addr += (xas.xa_index - last_pgoff) << PAGE_SHIFT;
f9ce0be7 3130 vmf->pte += xas.xa_index - last_pgoff;
070e807c 3131 last_pgoff = xas.xa_index;
f9ce0be7
KS
3132
3133 if (!pte_none(*vmf->pte))
7267ec00 3134 goto unlock;
f9ce0be7 3135
46bdb427 3136 /* We're about to handle the fault */
9d3af4b4 3137 if (vmf->address == addr)
46bdb427 3138 ret = VM_FAULT_NOPAGE;
46bdb427 3139
9d3af4b4 3140 do_set_pte(vmf, page, addr);
f9ce0be7 3141 /* no need to invalidate: a not-present page won't be cached */
9d3af4b4 3142 update_mmu_cache(vma, addr, vmf->pte);
27a83a60 3143 unlock_page(head);
f9ce0be7 3144 continue;
f1820361 3145unlock:
27a83a60 3146 unlock_page(head);
27a83a60 3147 put_page(head);
f9ce0be7
KS
3148 } while ((head = next_map_page(mapping, &xas, end_pgoff)) != NULL);
3149 pte_unmap_unlock(vmf->pte, vmf->ptl);
3150out:
f1820361 3151 rcu_read_unlock();
e630bfac 3152 WRITE_ONCE(file->f_ra.mmap_miss, mmap_miss);
f9ce0be7 3153 return ret;
f1820361
KS
3154}
3155EXPORT_SYMBOL(filemap_map_pages);
3156
2bcd6454 3157vm_fault_t filemap_page_mkwrite(struct vm_fault *vmf)
4fcf1c62 3158{
5df1a672 3159 struct address_space *mapping = vmf->vma->vm_file->f_mapping;
4fcf1c62 3160 struct page *page = vmf->page;
2bcd6454 3161 vm_fault_t ret = VM_FAULT_LOCKED;
4fcf1c62 3162
5df1a672 3163 sb_start_pagefault(mapping->host->i_sb);
11bac800 3164 file_update_time(vmf->vma->vm_file);
4fcf1c62 3165 lock_page(page);
5df1a672 3166 if (page->mapping != mapping) {
4fcf1c62
JK
3167 unlock_page(page);
3168 ret = VM_FAULT_NOPAGE;
3169 goto out;
3170 }
14da9200
JK
3171 /*
3172 * We mark the page dirty already here so that when freeze is in
3173 * progress, we are guaranteed that writeback during freezing will
3174 * see the dirty page and writeprotect it again.
3175 */
3176 set_page_dirty(page);
1d1d1a76 3177 wait_for_stable_page(page);
4fcf1c62 3178out:
5df1a672 3179 sb_end_pagefault(mapping->host->i_sb);
4fcf1c62
JK
3180 return ret;
3181}
4fcf1c62 3182
f0f37e2f 3183const struct vm_operations_struct generic_file_vm_ops = {
54cb8821 3184 .fault = filemap_fault,
f1820361 3185 .map_pages = filemap_map_pages,
4fcf1c62 3186 .page_mkwrite = filemap_page_mkwrite,
1da177e4
LT
3187};
3188
3189/* This is used for a general mmap of a disk file */
3190
3191int generic_file_mmap(struct file * file, struct vm_area_struct * vma)
3192{
3193 struct address_space *mapping = file->f_mapping;
3194
3195 if (!mapping->a_ops->readpage)
3196 return -ENOEXEC;
3197 file_accessed(file);
3198 vma->vm_ops = &generic_file_vm_ops;
3199 return 0;
3200}
1da177e4
LT
3201
3202/*
3203 * This is for filesystems which do not implement ->writepage.
3204 */
3205int generic_file_readonly_mmap(struct file *file, struct vm_area_struct *vma)
3206{
3207 if ((vma->vm_flags & VM_SHARED) && (vma->vm_flags & VM_MAYWRITE))
3208 return -EINVAL;
3209 return generic_file_mmap(file, vma);
3210}
3211#else
4b96a37d 3212vm_fault_t filemap_page_mkwrite(struct vm_fault *vmf)
45397228 3213{
4b96a37d 3214 return VM_FAULT_SIGBUS;
45397228 3215}
1da177e4
LT
3216int generic_file_mmap(struct file * file, struct vm_area_struct * vma)
3217{
3218 return -ENOSYS;
3219}
3220int generic_file_readonly_mmap(struct file * file, struct vm_area_struct * vma)
3221{
3222 return -ENOSYS;
3223}
3224#endif /* CONFIG_MMU */
3225
45397228 3226EXPORT_SYMBOL(filemap_page_mkwrite);
1da177e4
LT
3227EXPORT_SYMBOL(generic_file_mmap);
3228EXPORT_SYMBOL(generic_file_readonly_mmap);
3229
67f9fd91
SL
3230static struct page *wait_on_page_read(struct page *page)
3231{
3232 if (!IS_ERR(page)) {
3233 wait_on_page_locked(page);
3234 if (!PageUptodate(page)) {
09cbfeaf 3235 put_page(page);
67f9fd91
SL
3236 page = ERR_PTR(-EIO);
3237 }
3238 }
3239 return page;
3240}
3241
32b63529 3242static struct page *do_read_cache_page(struct address_space *mapping,
57f6b96c 3243 pgoff_t index,
5e5358e7 3244 int (*filler)(void *, struct page *),
0531b2aa
LT
3245 void *data,
3246 gfp_t gfp)
1da177e4 3247{
eb2be189 3248 struct page *page;
1da177e4
LT
3249 int err;
3250repeat:
3251 page = find_get_page(mapping, index);
3252 if (!page) {
453f85d4 3253 page = __page_cache_alloc(gfp);
eb2be189
NP
3254 if (!page)
3255 return ERR_PTR(-ENOMEM);
e6f67b8c 3256 err = add_to_page_cache_lru(page, mapping, index, gfp);
eb2be189 3257 if (unlikely(err)) {
09cbfeaf 3258 put_page(page);
eb2be189
NP
3259 if (err == -EEXIST)
3260 goto repeat;
22ecdb4f 3261 /* Presumably ENOMEM for xarray node */
1da177e4
LT
3262 return ERR_PTR(err);
3263 }
32b63529
MG
3264
3265filler:
6c45b454
CH
3266 if (filler)
3267 err = filler(data, page);
3268 else
3269 err = mapping->a_ops->readpage(data, page);
3270
1da177e4 3271 if (err < 0) {
09cbfeaf 3272 put_page(page);
32b63529 3273 return ERR_PTR(err);
1da177e4 3274 }
1da177e4 3275
32b63529
MG
3276 page = wait_on_page_read(page);
3277 if (IS_ERR(page))
3278 return page;
3279 goto out;
3280 }
1da177e4
LT
3281 if (PageUptodate(page))
3282 goto out;
3283
ebded027 3284 /*
0e9aa675 3285 * Page is not up to date and may be locked due to one of the following
ebded027
MG
3286 * case a: Page is being filled and the page lock is held
3287 * case b: Read/write error clearing the page uptodate status
3288 * case c: Truncation in progress (page locked)
3289 * case d: Reclaim in progress
3290 *
3291 * Case a, the page will be up to date when the page is unlocked.
3292 * There is no need to serialise on the page lock here as the page
3293 * is pinned so the lock gives no additional protection. Even if the
ce89fddf 3294 * page is truncated, the data is still valid if PageUptodate as
ebded027
MG
3295 * it's a race vs truncate race.
3296 * Case b, the page will not be up to date
3297 * Case c, the page may be truncated but in itself, the data may still
3298 * be valid after IO completes as it's a read vs truncate race. The
3299 * operation must restart if the page is not uptodate on unlock but
3300 * otherwise serialising on page lock to stabilise the mapping gives
3301 * no additional guarantees to the caller as the page lock is
3302 * released before return.
3303 * Case d, similar to truncation. If reclaim holds the page lock, it
3304 * will be a race with remove_mapping that determines if the mapping
3305 * is valid on unlock but otherwise the data is valid and there is
3306 * no need to serialise with page lock.
3307 *
3308 * As the page lock gives no additional guarantee, we optimistically
3309 * wait on the page to be unlocked and check if it's up to date and
3310 * use the page if it is. Otherwise, the page lock is required to
3311 * distinguish between the different cases. The motivation is that we
3312 * avoid spurious serialisations and wakeups when multiple processes
3313 * wait on the same page for IO to complete.
3314 */
3315 wait_on_page_locked(page);
3316 if (PageUptodate(page))
3317 goto out;
3318
3319 /* Distinguish between all the cases under the safety of the lock */
1da177e4 3320 lock_page(page);
ebded027
MG
3321
3322 /* Case c or d, restart the operation */
1da177e4
LT
3323 if (!page->mapping) {
3324 unlock_page(page);
09cbfeaf 3325 put_page(page);
32b63529 3326 goto repeat;
1da177e4 3327 }
ebded027
MG
3328
3329 /* Someone else locked and filled the page in a very small window */
1da177e4
LT
3330 if (PageUptodate(page)) {
3331 unlock_page(page);
3332 goto out;
3333 }
faffdfa0
XT
3334
3335 /*
3336 * A previous I/O error may have been due to temporary
3337 * failures.
3338 * Clear page error before actual read, PG_error will be
3339 * set again if read page fails.
3340 */
3341 ClearPageError(page);
32b63529
MG
3342 goto filler;
3343
c855ff37 3344out:
6fe6900e
NP
3345 mark_page_accessed(page);
3346 return page;
3347}
0531b2aa
LT
3348
3349/**
67f9fd91 3350 * read_cache_page - read into page cache, fill it if needed
0531b2aa
LT
3351 * @mapping: the page's address_space
3352 * @index: the page index
3353 * @filler: function to perform the read
5e5358e7 3354 * @data: first arg to filler(data, page) function, often left as NULL
0531b2aa 3355 *
0531b2aa 3356 * Read into the page cache. If a page already exists, and PageUptodate() is
67f9fd91 3357 * not set, try to fill the page and wait for it to become unlocked.
0531b2aa
LT
3358 *
3359 * If the page does not get brought uptodate, return -EIO.
a862f68a
MR
3360 *
3361 * Return: up to date page on success, ERR_PTR() on failure.
0531b2aa 3362 */
67f9fd91 3363struct page *read_cache_page(struct address_space *mapping,
0531b2aa 3364 pgoff_t index,
5e5358e7 3365 int (*filler)(void *, struct page *),
0531b2aa
LT
3366 void *data)
3367{
d322a8e5
CH
3368 return do_read_cache_page(mapping, index, filler, data,
3369 mapping_gfp_mask(mapping));
0531b2aa 3370}
67f9fd91 3371EXPORT_SYMBOL(read_cache_page);
0531b2aa
LT
3372
3373/**
3374 * read_cache_page_gfp - read into page cache, using specified page allocation flags.
3375 * @mapping: the page's address_space
3376 * @index: the page index
3377 * @gfp: the page allocator flags to use if allocating
3378 *
3379 * This is the same as "read_mapping_page(mapping, index, NULL)", but with
e6f67b8c 3380 * any new page allocations done using the specified allocation flags.
0531b2aa
LT
3381 *
3382 * If the page does not get brought uptodate, return -EIO.
a862f68a
MR
3383 *
3384 * Return: up to date page on success, ERR_PTR() on failure.
0531b2aa
LT
3385 */
3386struct page *read_cache_page_gfp(struct address_space *mapping,
3387 pgoff_t index,
3388 gfp_t gfp)
3389{
6c45b454 3390 return do_read_cache_page(mapping, index, NULL, NULL, gfp);
0531b2aa
LT
3391}
3392EXPORT_SYMBOL(read_cache_page_gfp);
3393
afddba49
NP
3394int pagecache_write_begin(struct file *file, struct address_space *mapping,
3395 loff_t pos, unsigned len, unsigned flags,
3396 struct page **pagep, void **fsdata)
3397{
3398 const struct address_space_operations *aops = mapping->a_ops;
3399
4e02ed4b 3400 return aops->write_begin(file, mapping, pos, len, flags,
afddba49 3401 pagep, fsdata);
afddba49
NP
3402}
3403EXPORT_SYMBOL(pagecache_write_begin);
3404
3405int pagecache_write_end(struct file *file, struct address_space *mapping,
3406 loff_t pos, unsigned len, unsigned copied,
3407 struct page *page, void *fsdata)
3408{
3409 const struct address_space_operations *aops = mapping->a_ops;
afddba49 3410
4e02ed4b 3411 return aops->write_end(file, mapping, pos, len, copied, page, fsdata);
afddba49
NP
3412}
3413EXPORT_SYMBOL(pagecache_write_end);
3414
a92853b6
KK
3415/*
3416 * Warn about a page cache invalidation failure during a direct I/O write.
3417 */
3418void dio_warn_stale_pagecache(struct file *filp)
3419{
3420 static DEFINE_RATELIMIT_STATE(_rs, 86400 * HZ, DEFAULT_RATELIMIT_BURST);
3421 char pathname[128];
a92853b6
KK
3422 char *path;
3423
5df1a672 3424 errseq_set(&filp->f_mapping->wb_err, -EIO);
a92853b6
KK
3425 if (__ratelimit(&_rs)) {
3426 path = file_path(filp, pathname, sizeof(pathname));
3427 if (IS_ERR(path))
3428 path = "(unknown)";
3429 pr_crit("Page cache invalidation failure on direct I/O. Possible data corruption due to collision with buffered I/O!\n");
3430 pr_crit("File: %s PID: %d Comm: %.20s\n", path, current->pid,
3431 current->comm);
3432 }
3433}
3434
1da177e4 3435ssize_t
1af5bb49 3436generic_file_direct_write(struct kiocb *iocb, struct iov_iter *from)
1da177e4
LT
3437{
3438 struct file *file = iocb->ki_filp;
3439 struct address_space *mapping = file->f_mapping;
3440 struct inode *inode = mapping->host;
1af5bb49 3441 loff_t pos = iocb->ki_pos;
1da177e4 3442 ssize_t written;
a969e903
CH
3443 size_t write_len;
3444 pgoff_t end;
1da177e4 3445
0c949334 3446 write_len = iov_iter_count(from);
09cbfeaf 3447 end = (pos + write_len - 1) >> PAGE_SHIFT;
a969e903 3448
6be96d3a
GR
3449 if (iocb->ki_flags & IOCB_NOWAIT) {
3450 /* If there are pages to writeback, return */
5df1a672 3451 if (filemap_range_has_page(file->f_mapping, pos,
35f12f0f 3452 pos + write_len - 1))
6be96d3a
GR
3453 return -EAGAIN;
3454 } else {
3455 written = filemap_write_and_wait_range(mapping, pos,
3456 pos + write_len - 1);
3457 if (written)
3458 goto out;
3459 }
a969e903
CH
3460
3461 /*
3462 * After a write we want buffered reads to be sure to go to disk to get
3463 * the new data. We invalidate clean cached page from the region we're
3464 * about to write. We do this *before* the write so that we can return
6ccfa806 3465 * without clobbering -EIOCBQUEUED from ->direct_IO().
a969e903 3466 */
55635ba7 3467 written = invalidate_inode_pages2_range(mapping,
09cbfeaf 3468 pos >> PAGE_SHIFT, end);
55635ba7
AR
3469 /*
3470 * If a page can not be invalidated, return 0 to fall back
3471 * to buffered write.
3472 */
3473 if (written) {
3474 if (written == -EBUSY)
3475 return 0;
3476 goto out;
a969e903
CH
3477 }
3478
639a93a5 3479 written = mapping->a_ops->direct_IO(iocb, from);
a969e903
CH
3480
3481 /*
3482 * Finally, try again to invalidate clean pages which might have been
3483 * cached by non-direct readahead, or faulted in by get_user_pages()
3484 * if the source of the write was an mmap'ed region of the file
3485 * we're writing. Either one is a pretty crazy thing to do,
3486 * so we don't support it 100%. If this invalidation
3487 * fails, tough, the write still worked...
332391a9
LC
3488 *
3489 * Most of the time we do not need this since dio_complete() will do
3490 * the invalidation for us. However there are some file systems that
3491 * do not end up with dio_complete() being called, so let's not break
80c1fe90
KK
3492 * them by removing it completely.
3493 *
9266a140
KK
3494 * Noticeable example is a blkdev_direct_IO().
3495 *
80c1fe90 3496 * Skip invalidation for async writes or if mapping has no pages.
a969e903 3497 */
9266a140
KK
3498 if (written > 0 && mapping->nrpages &&
3499 invalidate_inode_pages2_range(mapping, pos >> PAGE_SHIFT, end))
3500 dio_warn_stale_pagecache(file);
a969e903 3501
1da177e4 3502 if (written > 0) {
0116651c 3503 pos += written;
639a93a5 3504 write_len -= written;
0116651c
NK
3505 if (pos > i_size_read(inode) && !S_ISBLK(inode->i_mode)) {
3506 i_size_write(inode, pos);
1da177e4
LT
3507 mark_inode_dirty(inode);
3508 }
5cb6c6c7 3509 iocb->ki_pos = pos;
1da177e4 3510 }
ab2125df
PB
3511 if (written != -EIOCBQUEUED)
3512 iov_iter_revert(from, write_len - iov_iter_count(from));
a969e903 3513out:
1da177e4
LT
3514 return written;
3515}
3516EXPORT_SYMBOL(generic_file_direct_write);
3517
eb2be189
NP
3518/*
3519 * Find or create a page at the given pagecache position. Return the locked
3520 * page. This function is specifically for buffered writes.
3521 */
54566b2c
NP
3522struct page *grab_cache_page_write_begin(struct address_space *mapping,
3523 pgoff_t index, unsigned flags)
eb2be189 3524{
eb2be189 3525 struct page *page;
bbddabe2 3526 int fgp_flags = FGP_LOCK|FGP_WRITE|FGP_CREAT;
0faa70cb 3527
54566b2c 3528 if (flags & AOP_FLAG_NOFS)
2457aec6
MG
3529 fgp_flags |= FGP_NOFS;
3530
3531 page = pagecache_get_page(mapping, index, fgp_flags,
45f87de5 3532 mapping_gfp_mask(mapping));
c585a267 3533 if (page)
2457aec6 3534 wait_for_stable_page(page);
eb2be189 3535
eb2be189
NP
3536 return page;
3537}
54566b2c 3538EXPORT_SYMBOL(grab_cache_page_write_begin);
eb2be189 3539
3b93f911 3540ssize_t generic_perform_write(struct file *file,
afddba49
NP
3541 struct iov_iter *i, loff_t pos)
3542{
3543 struct address_space *mapping = file->f_mapping;
3544 const struct address_space_operations *a_ops = mapping->a_ops;
3545 long status = 0;
3546 ssize_t written = 0;
674b892e
NP
3547 unsigned int flags = 0;
3548
afddba49
NP
3549 do {
3550 struct page *page;
afddba49
NP
3551 unsigned long offset; /* Offset into pagecache page */
3552 unsigned long bytes; /* Bytes to write to page */
3553 size_t copied; /* Bytes copied from user */
3554 void *fsdata;
3555
09cbfeaf
KS
3556 offset = (pos & (PAGE_SIZE - 1));
3557 bytes = min_t(unsigned long, PAGE_SIZE - offset,
afddba49
NP
3558 iov_iter_count(i));
3559
3560again:
00a3d660
LT
3561 /*
3562 * Bring in the user page that we will copy from _first_.
3563 * Otherwise there's a nasty deadlock on copying from the
3564 * same page as we're writing to, without it being marked
3565 * up-to-date.
3566 *
3567 * Not only is this an optimisation, but it is also required
3568 * to check that the address is actually valid, when atomic
3569 * usercopies are used, below.
3570 */
3571 if (unlikely(iov_iter_fault_in_readable(i, bytes))) {
3572 status = -EFAULT;
3573 break;
3574 }
3575
296291cd
JK
3576 if (fatal_signal_pending(current)) {
3577 status = -EINTR;
3578 break;
3579 }
3580
674b892e 3581 status = a_ops->write_begin(file, mapping, pos, bytes, flags,
afddba49 3582 &page, &fsdata);
2457aec6 3583 if (unlikely(status < 0))
afddba49
NP
3584 break;
3585
931e80e4 3586 if (mapping_writably_mapped(mapping))
3587 flush_dcache_page(page);
00a3d660 3588
afddba49 3589 copied = iov_iter_copy_from_user_atomic(page, i, offset, bytes);
afddba49
NP
3590 flush_dcache_page(page);
3591
3592 status = a_ops->write_end(file, mapping, pos, bytes, copied,
3593 page, fsdata);
3594 if (unlikely(status < 0))
3595 break;
3596 copied = status;
3597
3598 cond_resched();
3599
124d3b70 3600 iov_iter_advance(i, copied);
afddba49
NP
3601 if (unlikely(copied == 0)) {
3602 /*
3603 * If we were unable to copy any data at all, we must
3604 * fall back to a single segment length write.
3605 *
3606 * If we didn't fallback here, we could livelock
3607 * because not all segments in the iov can be copied at
3608 * once without a pagefault.
3609 */
09cbfeaf 3610 bytes = min_t(unsigned long, PAGE_SIZE - offset,
afddba49
NP
3611 iov_iter_single_seg_count(i));
3612 goto again;
3613 }
afddba49
NP
3614 pos += copied;
3615 written += copied;
3616
3617 balance_dirty_pages_ratelimited(mapping);
afddba49
NP
3618 } while (iov_iter_count(i));
3619
3620 return written ? written : status;
3621}
3b93f911 3622EXPORT_SYMBOL(generic_perform_write);
1da177e4 3623
e4dd9de3 3624/**
8174202b 3625 * __generic_file_write_iter - write data to a file
e4dd9de3 3626 * @iocb: IO state structure (file, offset, etc.)
8174202b 3627 * @from: iov_iter with data to write
e4dd9de3
JK
3628 *
3629 * This function does all the work needed for actually writing data to a
3630 * file. It does all basic checks, removes SUID from the file, updates
3631 * modification times and calls proper subroutines depending on whether we
3632 * do direct IO or a standard buffered write.
3633 *
3634 * It expects i_mutex to be grabbed unless we work on a block device or similar
3635 * object which does not need locking at all.
3636 *
3637 * This function does *not* take care of syncing data in case of O_SYNC write.
3638 * A caller has to handle it. This is mainly due to the fact that we want to
3639 * avoid syncing under i_mutex.
a862f68a
MR
3640 *
3641 * Return:
3642 * * number of bytes written, even for truncated writes
3643 * * negative error code if no data has been written at all
e4dd9de3 3644 */
8174202b 3645ssize_t __generic_file_write_iter(struct kiocb *iocb, struct iov_iter *from)
1da177e4
LT
3646{
3647 struct file *file = iocb->ki_filp;
fb5527e6 3648 struct address_space * mapping = file->f_mapping;
1da177e4 3649 struct inode *inode = mapping->host;
3b93f911 3650 ssize_t written = 0;
1da177e4 3651 ssize_t err;
3b93f911 3652 ssize_t status;
1da177e4 3653
1da177e4 3654 /* We can write back this queue in page reclaim */
de1414a6 3655 current->backing_dev_info = inode_to_bdi(inode);
5fa8e0a1 3656 err = file_remove_privs(file);
1da177e4
LT
3657 if (err)
3658 goto out;
3659
c3b2da31
JB
3660 err = file_update_time(file);
3661 if (err)
3662 goto out;
1da177e4 3663
2ba48ce5 3664 if (iocb->ki_flags & IOCB_DIRECT) {
0b8def9d 3665 loff_t pos, endbyte;
fb5527e6 3666
1af5bb49 3667 written = generic_file_direct_write(iocb, from);
1da177e4 3668 /*
fbbbad4b
MW
3669 * If the write stopped short of completing, fall back to
3670 * buffered writes. Some filesystems do this for writes to
3671 * holes, for example. For DAX files, a buffered write will
3672 * not succeed (even if it did, DAX does not handle dirty
3673 * page-cache pages correctly).
1da177e4 3674 */
0b8def9d 3675 if (written < 0 || !iov_iter_count(from) || IS_DAX(inode))
fbbbad4b
MW
3676 goto out;
3677
0b8def9d 3678 status = generic_perform_write(file, from, pos = iocb->ki_pos);
fb5527e6 3679 /*
3b93f911 3680 * If generic_perform_write() returned a synchronous error
fb5527e6
JM
3681 * then we want to return the number of bytes which were
3682 * direct-written, or the error code if that was zero. Note
3683 * that this differs from normal direct-io semantics, which
3684 * will return -EFOO even if some bytes were written.
3685 */
60bb4529 3686 if (unlikely(status < 0)) {
3b93f911 3687 err = status;
fb5527e6
JM
3688 goto out;
3689 }
fb5527e6
JM
3690 /*
3691 * We need to ensure that the page cache pages are written to
3692 * disk and invalidated to preserve the expected O_DIRECT
3693 * semantics.
3694 */
3b93f911 3695 endbyte = pos + status - 1;
0b8def9d 3696 err = filemap_write_and_wait_range(mapping, pos, endbyte);
fb5527e6 3697 if (err == 0) {
0b8def9d 3698 iocb->ki_pos = endbyte + 1;
3b93f911 3699 written += status;
fb5527e6 3700 invalidate_mapping_pages(mapping,
09cbfeaf
KS
3701 pos >> PAGE_SHIFT,
3702 endbyte >> PAGE_SHIFT);
fb5527e6
JM
3703 } else {
3704 /*
3705 * We don't know how much we wrote, so just return
3706 * the number of bytes which were direct-written
3707 */
3708 }
3709 } else {
0b8def9d
AV
3710 written = generic_perform_write(file, from, iocb->ki_pos);
3711 if (likely(written > 0))
3712 iocb->ki_pos += written;
fb5527e6 3713 }
1da177e4
LT
3714out:
3715 current->backing_dev_info = NULL;
3716 return written ? written : err;
3717}
8174202b 3718EXPORT_SYMBOL(__generic_file_write_iter);
e4dd9de3 3719
e4dd9de3 3720/**
8174202b 3721 * generic_file_write_iter - write data to a file
e4dd9de3 3722 * @iocb: IO state structure
8174202b 3723 * @from: iov_iter with data to write
e4dd9de3 3724 *
8174202b 3725 * This is a wrapper around __generic_file_write_iter() to be used by most
e4dd9de3
JK
3726 * filesystems. It takes care of syncing the file in case of O_SYNC file
3727 * and acquires i_mutex as needed.
a862f68a
MR
3728 * Return:
3729 * * negative error code if no data has been written at all of
3730 * vfs_fsync_range() failed for a synchronous write
3731 * * number of bytes written, even for truncated writes
e4dd9de3 3732 */
8174202b 3733ssize_t generic_file_write_iter(struct kiocb *iocb, struct iov_iter *from)
1da177e4
LT
3734{
3735 struct file *file = iocb->ki_filp;
148f948b 3736 struct inode *inode = file->f_mapping->host;
1da177e4 3737 ssize_t ret;
1da177e4 3738
5955102c 3739 inode_lock(inode);
3309dd04
AV
3740 ret = generic_write_checks(iocb, from);
3741 if (ret > 0)
5f380c7f 3742 ret = __generic_file_write_iter(iocb, from);
5955102c 3743 inode_unlock(inode);
1da177e4 3744
e2592217
CH
3745 if (ret > 0)
3746 ret = generic_write_sync(iocb, ret);
1da177e4
LT
3747 return ret;
3748}
8174202b 3749EXPORT_SYMBOL(generic_file_write_iter);
1da177e4 3750
cf9a2ae8
DH
3751/**
3752 * try_to_release_page() - release old fs-specific metadata on a page
3753 *
3754 * @page: the page which the kernel is trying to free
3755 * @gfp_mask: memory allocation flags (and I/O mode)
3756 *
3757 * The address_space is to try to release any data against the page
a862f68a 3758 * (presumably at page->private).
cf9a2ae8 3759 *
266cf658
DH
3760 * This may also be called if PG_fscache is set on a page, indicating that the
3761 * page is known to the local caching routines.
3762 *
cf9a2ae8 3763 * The @gfp_mask argument specifies whether I/O may be performed to release
71baba4b 3764 * this page (__GFP_IO), and whether the call may block (__GFP_RECLAIM & __GFP_FS).
cf9a2ae8 3765 *
a862f68a 3766 * Return: %1 if the release was successful, otherwise return zero.
cf9a2ae8
DH
3767 */
3768int try_to_release_page(struct page *page, gfp_t gfp_mask)
3769{
3770 struct address_space * const mapping = page->mapping;
3771
3772 BUG_ON(!PageLocked(page));
3773 if (PageWriteback(page))
3774 return 0;
3775
3776 if (mapping && mapping->a_ops->releasepage)
3777 return mapping->a_ops->releasepage(page, gfp_mask);
3778 return try_to_free_buffers(page);
3779}
3780
3781EXPORT_SYMBOL(try_to_release_page);