1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Copyright (C) 2007 Oracle. All rights reserved.
4 */
5
6 #include <linux/fs.h>
7 #include <linux/pagemap.h>
8 #include <linux/time.h>
9 #include <linux/init.h>
10 #include <linux/string.h>
11 #include <linux/backing-dev.h>
12 #include <linux/falloc.h>
13 #include <linux/filelock.h>
14 #include <linux/writeback.h>
15 #include <linux/compat.h>
16 #include <linux/slab.h>
17 #include <linux/btrfs.h>
18 #include <linux/uio.h>
19 #include <linux/iversion.h>
20 #include <linux/fsverity.h>
21 #include "ctree.h"
22 #include "direct-io.h"
23 #include "disk-io.h"
24 #include "transaction.h"
25 #include "btrfs_inode.h"
26 #include "tree-log.h"
27 #include "locking.h"
28 #include "qgroup.h"
29 #include "compression.h"
30 #include "delalloc-space.h"
31 #include "reflink.h"
32 #include "subpage.h"
33 #include "fs.h"
34 #include "accessors.h"
35 #include "extent-tree.h"
36 #include "file-item.h"
37 #include "ioctl.h"
38 #include "file.h"
39 #include "super.h"
40 #include "print-tree.h"
41
42 /*
43 * Unlock folio after btrfs_file_write() is done with it.
44 */
btrfs_drop_folio(struct btrfs_fs_info * fs_info,struct folio * folio,u64 pos,u64 copied)45 static void btrfs_drop_folio(struct btrfs_fs_info *fs_info, struct folio *folio,
46 u64 pos, u64 copied)
47 {
48 u64 block_start = round_down(pos, fs_info->sectorsize);
49 u64 block_len = round_up(pos + copied, fs_info->sectorsize) - block_start;
50
51 ASSERT(block_len <= U32_MAX);
52 folio_unlock(folio);
53 folio_put(folio);
54 }
55
56 /*
57 * After copy_folio_from_iter_atomic(), update the following things for delalloc:
58 * - Mark newly dirtied folio as DELALLOC in the io tree.
59 * Used to advise which range is to be written back.
60 * - Mark modified folio as Uptodate/Dirty
61 * - Update inode size for past EOF write
62 */
btrfs_dirty_folio(struct btrfs_inode * inode,struct folio * folio,loff_t pos,size_t write_bytes,struct extent_state ** cached,bool noreserve)63 int btrfs_dirty_folio(struct btrfs_inode *inode, struct folio *folio, loff_t pos,
64 size_t write_bytes, struct extent_state **cached, bool noreserve)
65 {
66 struct btrfs_fs_info *fs_info = inode->root->fs_info;
67 int ret = 0;
68 u64 num_bytes;
69 u64 start_pos;
70 u64 end_of_last_block;
71 const u64 end_pos = pos + write_bytes;
72 loff_t isize = i_size_read(&inode->vfs_inode);
73 unsigned int extra_bits = 0;
74
75 if (write_bytes == 0)
76 return 0;
77
78 if (noreserve)
79 extra_bits |= EXTENT_NORESERVE;
80
81 start_pos = round_down(pos, fs_info->sectorsize);
82 num_bytes = round_up(end_pos - start_pos, fs_info->sectorsize);
83 ASSERT(num_bytes <= U32_MAX);
84 ASSERT(folio_pos(folio) <= pos && folio_next_pos(folio) >= end_pos);
85
86 end_of_last_block = start_pos + num_bytes - 1;
87
88 ret = btrfs_reset_extent_delalloc(inode, start_pos, end_of_last_block,
89 extra_bits, cached);
90 if (ret)
91 return ret;
92
93 btrfs_folio_clamp_set_uptodate(fs_info, folio, start_pos, num_bytes);
94 btrfs_folio_clamp_set_dirty(fs_info, folio, start_pos, num_bytes);
95
96 /*
97 * we've only changed i_size in ram, and we haven't updated
98 * the disk i_size. There is no need to log the inode
99 * at this time.
100 */
101 if (end_pos > isize)
102 i_size_write(&inode->vfs_inode, end_pos);
103 return 0;
104 }
105
106 /*
107 * this is very complex, but the basic idea is to drop all extents
108 * in the range start - end. hint_block is filled in with a block number
109 * that would be a good hint to the block allocator for this file.
110 *
111 * If an extent intersects the range but is not entirely inside the range
112 * it is either truncated or split. Anything entirely inside the range
113 * is deleted from the tree.
114 *
115 * Note: the VFS' inode number of bytes is not updated, it's up to the caller
116 * to deal with that. We set the field 'bytes_found' of the arguments structure
117 * with the number of allocated bytes found in the target range, so that the
118 * caller can update the inode's number of bytes in an atomic way when
119 * replacing extents in a range to avoid races with stat(2).
120 */
btrfs_drop_extents(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_inode * inode,struct btrfs_drop_extents_args * args)121 int btrfs_drop_extents(struct btrfs_trans_handle *trans,
122 struct btrfs_root *root, struct btrfs_inode *inode,
123 struct btrfs_drop_extents_args *args)
124 {
125 struct btrfs_fs_info *fs_info = root->fs_info;
126 struct extent_buffer *leaf;
127 struct btrfs_file_extent_item *fi;
128 struct btrfs_key key;
129 struct btrfs_key new_key;
130 u64 ino = btrfs_ino(inode);
131 u64 search_start = args->start;
132 u64 disk_bytenr = 0;
133 u64 num_bytes = 0;
134 u64 extent_offset = 0;
135 u64 extent_end = 0;
136 u64 last_end = args->start;
137 int del_nr = 0;
138 int del_slot = 0;
139 int extent_type;
140 int recow;
141 int ret;
142 int modify_tree = -1;
143 int update_refs;
144 bool found = false;
145 struct btrfs_path *path = args->path;
146
147 args->bytes_found = 0;
148 args->extent_inserted = false;
149
150 /* Must always have a path if ->replace_extent is true */
151 ASSERT(!(args->replace_extent && !args->path));
152
153 if (!path) {
154 path = btrfs_alloc_path();
155 if (!path) {
156 ret = -ENOMEM;
157 goto out;
158 }
159 }
160
161 if (args->drop_cache)
162 btrfs_drop_extent_map_range(inode, args->start, args->end - 1, false);
163
164 if (data_race(args->start >= inode->disk_i_size) && !args->replace_extent)
165 modify_tree = 0;
166
167 update_refs = (btrfs_root_id(root) != BTRFS_TREE_LOG_OBJECTID);
168 while (1) {
169 recow = 0;
170 ret = btrfs_lookup_file_extent(trans, root, path, ino,
171 search_start, modify_tree);
172 if (ret < 0)
173 break;
174 if (ret > 0 && path->slots[0] > 0 && search_start == args->start) {
175 leaf = path->nodes[0];
176 btrfs_item_key_to_cpu(leaf, &key, path->slots[0] - 1);
177 if (key.objectid == ino &&
178 key.type == BTRFS_EXTENT_DATA_KEY)
179 path->slots[0]--;
180 }
181 ret = 0;
182 next_slot:
183 leaf = path->nodes[0];
184 if (path->slots[0] >= btrfs_header_nritems(leaf)) {
185 if (WARN_ON(del_nr > 0)) {
186 btrfs_print_leaf(leaf);
187 ret = -EINVAL;
188 break;
189 }
190 ret = btrfs_next_leaf(root, path);
191 if (ret < 0)
192 break;
193 if (ret > 0) {
194 ret = 0;
195 break;
196 }
197 leaf = path->nodes[0];
198 recow = 1;
199 }
200
201 btrfs_item_key_to_cpu(leaf, &key, path->slots[0]);
202
203 if (key.objectid > ino)
204 break;
205 if (WARN_ON_ONCE(key.objectid < ino) ||
206 key.type < BTRFS_EXTENT_DATA_KEY) {
207 ASSERT(del_nr == 0);
208 path->slots[0]++;
209 goto next_slot;
210 }
211 if (key.type > BTRFS_EXTENT_DATA_KEY || key.offset >= args->end)
212 break;
213
214 fi = btrfs_item_ptr(leaf, path->slots[0],
215 struct btrfs_file_extent_item);
216 extent_type = btrfs_file_extent_type(leaf, fi);
217
218 if (extent_type == BTRFS_FILE_EXTENT_REG ||
219 extent_type == BTRFS_FILE_EXTENT_PREALLOC) {
220 disk_bytenr = btrfs_file_extent_disk_bytenr(leaf, fi);
221 num_bytes = btrfs_file_extent_disk_num_bytes(leaf, fi);
222 extent_offset = btrfs_file_extent_offset(leaf, fi);
223 extent_end = key.offset +
224 btrfs_file_extent_num_bytes(leaf, fi);
225 } else if (extent_type == BTRFS_FILE_EXTENT_INLINE) {
226 extent_end = key.offset +
227 btrfs_file_extent_ram_bytes(leaf, fi);
228 } else {
229 /* can't happen */
230 BUG();
231 }
232
233 /*
234 * Don't skip extent items representing 0 byte lengths. They
235 * used to be created (bug) if while punching holes we hit
236 * -ENOSPC condition. So if we find one here, just ensure we
237 * delete it, otherwise we would insert a new file extent item
238 * with the same key (offset) as that 0 bytes length file
239 * extent item in the call to setup_items_for_insert() later
240 * in this function.
241 */
242 if (extent_end == key.offset && extent_end >= search_start) {
243 last_end = extent_end;
244 goto delete_extent_item;
245 }
246
247 if (extent_end <= search_start) {
248 path->slots[0]++;
249 goto next_slot;
250 }
251
252 found = true;
253 search_start = max(key.offset, args->start);
254 if (recow || !modify_tree) {
255 modify_tree = -1;
256 btrfs_release_path(path);
257 continue;
258 }
259
260 /*
261 * | - range to drop - |
262 * | -------- extent -------- |
263 */
264 if (args->start > key.offset && args->end < extent_end) {
265 if (WARN_ON(del_nr > 0)) {
266 btrfs_print_leaf(leaf);
267 ret = -EINVAL;
268 break;
269 }
270 if (extent_type == BTRFS_FILE_EXTENT_INLINE) {
271 ret = -EOPNOTSUPP;
272 break;
273 }
274
275 memcpy(&new_key, &key, sizeof(new_key));
276 new_key.offset = args->start;
277 ret = btrfs_duplicate_item(trans, root, path,
278 &new_key);
279 if (ret == -EAGAIN) {
280 btrfs_release_path(path);
281 continue;
282 }
283 if (ret < 0)
284 break;
285
286 leaf = path->nodes[0];
287 fi = btrfs_item_ptr(leaf, path->slots[0] - 1,
288 struct btrfs_file_extent_item);
289 btrfs_set_file_extent_num_bytes(leaf, fi,
290 args->start - key.offset);
291
292 fi = btrfs_item_ptr(leaf, path->slots[0],
293 struct btrfs_file_extent_item);
294
295 extent_offset += args->start - key.offset;
296 btrfs_set_file_extent_offset(leaf, fi, extent_offset);
297 btrfs_set_file_extent_num_bytes(leaf, fi,
298 extent_end - args->start);
299
300 if (update_refs && disk_bytenr > 0) {
301 struct btrfs_ref ref = {
302 .action = BTRFS_ADD_DELAYED_REF,
303 .bytenr = disk_bytenr,
304 .num_bytes = num_bytes,
305 .parent = 0,
306 .owning_root = btrfs_root_id(root),
307 .ref_root = btrfs_root_id(root),
308 };
309 btrfs_init_data_ref(&ref, new_key.objectid,
310 args->start - extent_offset,
311 0, false);
312 ret = btrfs_inc_extent_ref(trans, &ref);
313 if (unlikely(ret)) {
314 btrfs_abort_transaction(trans, ret);
315 break;
316 }
317 }
318 key.offset = args->start;
319 }
320 /*
321 * From here on out we will have actually dropped something, so
322 * last_end can be updated.
323 */
324 last_end = extent_end;
325
326 /*
327 * | ---- range to drop ----- |
328 * | -------- extent -------- |
329 */
330 if (args->start <= key.offset && args->end < extent_end) {
331 if (extent_type == BTRFS_FILE_EXTENT_INLINE) {
332 ret = -EOPNOTSUPP;
333 break;
334 }
335
336 memcpy(&new_key, &key, sizeof(new_key));
337 new_key.offset = args->end;
338 btrfs_set_item_key_safe(trans, path, &new_key);
339
340 extent_offset += args->end - key.offset;
341 btrfs_set_file_extent_offset(leaf, fi, extent_offset);
342 btrfs_set_file_extent_num_bytes(leaf, fi,
343 extent_end - args->end);
344 if (update_refs && disk_bytenr > 0)
345 args->bytes_found += args->end - key.offset;
346 break;
347 }
348
349 search_start = extent_end;
350 /*
351 * | ---- range to drop ----- |
352 * | -------- extent -------- |
353 */
354 if (args->start > key.offset && args->end >= extent_end) {
355 if (WARN_ON(del_nr > 0)) {
356 btrfs_print_leaf(leaf);
357 ret = -EINVAL;
358 break;
359 }
360 if (extent_type == BTRFS_FILE_EXTENT_INLINE) {
361 ret = -EOPNOTSUPP;
362 break;
363 }
364
365 btrfs_set_file_extent_num_bytes(leaf, fi,
366 args->start - key.offset);
367 if (update_refs && disk_bytenr > 0)
368 args->bytes_found += extent_end - args->start;
369 if (args->end == extent_end)
370 break;
371
372 path->slots[0]++;
373 goto next_slot;
374 }
375
376 /*
377 * | ---- range to drop ----- |
378 * | ------ extent ------ |
379 */
380 if (args->start <= key.offset && args->end >= extent_end) {
381 delete_extent_item:
382 if (del_nr == 0) {
383 del_slot = path->slots[0];
384 del_nr = 1;
385 } else {
386 if (WARN_ON(del_slot + del_nr != path->slots[0])) {
387 btrfs_print_leaf(leaf);
388 ret = -EINVAL;
389 break;
390 }
391 del_nr++;
392 }
393
394 if (update_refs &&
395 extent_type == BTRFS_FILE_EXTENT_INLINE) {
396 args->bytes_found += extent_end - key.offset;
397 extent_end = ALIGN(extent_end,
398 fs_info->sectorsize);
399 } else if (update_refs && disk_bytenr > 0) {
400 struct btrfs_ref ref = {
401 .action = BTRFS_DROP_DELAYED_REF,
402 .bytenr = disk_bytenr,
403 .num_bytes = num_bytes,
404 .parent = 0,
405 .owning_root = btrfs_root_id(root),
406 .ref_root = btrfs_root_id(root),
407 };
408 btrfs_init_data_ref(&ref, key.objectid,
409 key.offset - extent_offset,
410 0, false);
411 ret = btrfs_free_extent(trans, &ref);
412 if (unlikely(ret)) {
413 btrfs_abort_transaction(trans, ret);
414 break;
415 }
416 args->bytes_found += extent_end - key.offset;
417 }
418
419 if (args->end == extent_end)
420 break;
421
422 if (path->slots[0] + 1 < btrfs_header_nritems(leaf)) {
423 path->slots[0]++;
424 goto next_slot;
425 }
426
427 ret = btrfs_del_items(trans, root, path, del_slot,
428 del_nr);
429 if (unlikely(ret)) {
430 btrfs_abort_transaction(trans, ret);
431 break;
432 }
433
434 del_nr = 0;
435 del_slot = 0;
436
437 btrfs_release_path(path);
438 continue;
439 }
440
441 BUG();
442 }
443
444 if (!ret && del_nr > 0) {
445 /*
446 * Set path->slots[0] to first slot, so that after the delete
447 * if items are move off from our leaf to its immediate left or
448 * right neighbor leafs, we end up with a correct and adjusted
449 * path->slots[0] for our insertion (if args->replace_extent).
450 */
451 path->slots[0] = del_slot;
452 ret = btrfs_del_items(trans, root, path, del_slot, del_nr);
453 if (ret)
454 btrfs_abort_transaction(trans, ret);
455 }
456
457 leaf = path->nodes[0];
458 /*
459 * If btrfs_del_items() was called, it might have deleted a leaf, in
460 * which case it unlocked our path, so check path->locks[0] matches a
461 * write lock.
462 */
463 if (!ret && args->replace_extent &&
464 path->locks[0] == BTRFS_WRITE_LOCK &&
465 btrfs_leaf_free_space(leaf) >=
466 sizeof(struct btrfs_item) + args->extent_item_size) {
467
468 key.objectid = ino;
469 key.type = BTRFS_EXTENT_DATA_KEY;
470 key.offset = args->start;
471 if (!del_nr && path->slots[0] < btrfs_header_nritems(leaf)) {
472 struct btrfs_key slot_key;
473
474 btrfs_item_key_to_cpu(leaf, &slot_key, path->slots[0]);
475 if (btrfs_comp_cpu_keys(&key, &slot_key) > 0)
476 path->slots[0]++;
477 }
478 btrfs_setup_item_for_insert(trans, root, path, &key,
479 args->extent_item_size);
480 args->extent_inserted = true;
481 }
482
483 if (!args->path)
484 btrfs_free_path(path);
485 else if (!args->extent_inserted)
486 btrfs_release_path(path);
487 out:
488 args->drop_end = found ? min(args->end, last_end) : args->end;
489
490 return ret;
491 }
492
extent_mergeable(struct extent_buffer * leaf,int slot,u64 objectid,u64 bytenr,u64 orig_offset,u64 * start,u64 * end)493 static bool extent_mergeable(struct extent_buffer *leaf, int slot, u64 objectid,
494 u64 bytenr, u64 orig_offset, u64 *start, u64 *end)
495 {
496 struct btrfs_file_extent_item *fi;
497 struct btrfs_key key;
498 u64 extent_end;
499
500 if (slot < 0 || slot >= btrfs_header_nritems(leaf))
501 return false;
502
503 btrfs_item_key_to_cpu(leaf, &key, slot);
504 if (key.objectid != objectid || key.type != BTRFS_EXTENT_DATA_KEY)
505 return false;
506
507 fi = btrfs_item_ptr(leaf, slot, struct btrfs_file_extent_item);
508 if (btrfs_file_extent_type(leaf, fi) != BTRFS_FILE_EXTENT_REG ||
509 btrfs_file_extent_disk_bytenr(leaf, fi) != bytenr ||
510 btrfs_file_extent_offset(leaf, fi) != key.offset - orig_offset ||
511 btrfs_file_extent_compression(leaf, fi) ||
512 btrfs_file_extent_encryption(leaf, fi) ||
513 btrfs_file_extent_other_encoding(leaf, fi))
514 return false;
515
516 extent_end = key.offset + btrfs_file_extent_num_bytes(leaf, fi);
517 if ((*start && *start != key.offset) || (*end && *end != extent_end))
518 return false;
519
520 *start = key.offset;
521 *end = extent_end;
522 return true;
523 }
524
525 /*
526 * Mark extent in the range start - end as written.
527 *
528 * This changes extent type from 'pre-allocated' to 'regular'. If only
529 * part of extent is marked as written, the extent will be split into
530 * two or three.
531 */
btrfs_mark_extent_written(struct btrfs_trans_handle * trans,struct btrfs_inode * inode,u64 start,u64 end)532 int btrfs_mark_extent_written(struct btrfs_trans_handle *trans,
533 struct btrfs_inode *inode, u64 start, u64 end)
534 {
535 struct btrfs_root *root = inode->root;
536 struct extent_buffer *leaf;
537 BTRFS_PATH_AUTO_FREE(path);
538 struct btrfs_file_extent_item *fi;
539 struct btrfs_ref ref = { 0 };
540 struct btrfs_key key;
541 struct btrfs_key new_key;
542 u64 bytenr;
543 u64 num_bytes;
544 u64 extent_end;
545 u64 orig_offset;
546 u64 other_start;
547 u64 other_end;
548 u64 split;
549 int del_nr = 0;
550 int del_slot = 0;
551 int recow;
552 int ret;
553 u64 ino = btrfs_ino(inode);
554
555 path = btrfs_alloc_path();
556 if (!path)
557 return -ENOMEM;
558 again:
559 recow = 0;
560 split = start;
561 key.objectid = ino;
562 key.type = BTRFS_EXTENT_DATA_KEY;
563 key.offset = split;
564
565 ret = btrfs_search_slot(trans, root, &key, path, -1, 1);
566 if (ret < 0)
567 return ret;
568 if (ret > 0 && path->slots[0] > 0)
569 path->slots[0]--;
570
571 leaf = path->nodes[0];
572 btrfs_item_key_to_cpu(leaf, &key, path->slots[0]);
573 if (unlikely(key.objectid != ino || key.type != BTRFS_EXTENT_DATA_KEY)) {
574 ret = -EINVAL;
575 btrfs_abort_transaction(trans, ret);
576 return ret;
577 }
578 fi = btrfs_item_ptr(leaf, path->slots[0],
579 struct btrfs_file_extent_item);
580 if (unlikely(btrfs_file_extent_type(leaf, fi) != BTRFS_FILE_EXTENT_PREALLOC)) {
581 ret = -EINVAL;
582 btrfs_abort_transaction(trans, ret);
583 return ret;
584 }
585 extent_end = key.offset + btrfs_file_extent_num_bytes(leaf, fi);
586 if (unlikely(key.offset > start || extent_end < end)) {
587 ret = -EINVAL;
588 btrfs_abort_transaction(trans, ret);
589 return ret;
590 }
591
592 bytenr = btrfs_file_extent_disk_bytenr(leaf, fi);
593 num_bytes = btrfs_file_extent_disk_num_bytes(leaf, fi);
594 orig_offset = key.offset - btrfs_file_extent_offset(leaf, fi);
595 memcpy(&new_key, &key, sizeof(new_key));
596
597 if (start == key.offset && end < extent_end) {
598 other_start = 0;
599 other_end = start;
600 if (extent_mergeable(leaf, path->slots[0] - 1,
601 ino, bytenr, orig_offset,
602 &other_start, &other_end)) {
603 new_key.offset = end;
604 btrfs_set_item_key_safe(trans, path, &new_key);
605 fi = btrfs_item_ptr(leaf, path->slots[0],
606 struct btrfs_file_extent_item);
607 btrfs_set_file_extent_generation(leaf, fi,
608 trans->transid);
609 btrfs_set_file_extent_num_bytes(leaf, fi,
610 extent_end - end);
611 btrfs_set_file_extent_offset(leaf, fi,
612 end - orig_offset);
613 fi = btrfs_item_ptr(leaf, path->slots[0] - 1,
614 struct btrfs_file_extent_item);
615 btrfs_set_file_extent_generation(leaf, fi,
616 trans->transid);
617 btrfs_set_file_extent_num_bytes(leaf, fi,
618 end - other_start);
619 goto mark_dirty;
620 }
621 }
622
623 if (start > key.offset && end == extent_end) {
624 other_start = end;
625 other_end = 0;
626 if (extent_mergeable(leaf, path->slots[0] + 1,
627 ino, bytenr, orig_offset,
628 &other_start, &other_end)) {
629 fi = btrfs_item_ptr(leaf, path->slots[0],
630 struct btrfs_file_extent_item);
631 btrfs_set_file_extent_num_bytes(leaf, fi,
632 start - key.offset);
633 btrfs_set_file_extent_generation(leaf, fi,
634 trans->transid);
635 path->slots[0]++;
636 new_key.offset = start;
637 btrfs_set_item_key_safe(trans, path, &new_key);
638
639 fi = btrfs_item_ptr(leaf, path->slots[0],
640 struct btrfs_file_extent_item);
641 btrfs_set_file_extent_generation(leaf, fi,
642 trans->transid);
643 btrfs_set_file_extent_num_bytes(leaf, fi,
644 other_end - start);
645 btrfs_set_file_extent_offset(leaf, fi,
646 start - orig_offset);
647 goto mark_dirty;
648 }
649 }
650
651 while (start > key.offset || end < extent_end) {
652 if (key.offset == start)
653 split = end;
654
655 new_key.offset = split;
656 ret = btrfs_duplicate_item(trans, root, path, &new_key);
657 if (ret == -EAGAIN) {
658 btrfs_release_path(path);
659 goto again;
660 }
661 if (unlikely(ret < 0)) {
662 btrfs_abort_transaction(trans, ret);
663 return ret;
664 }
665
666 leaf = path->nodes[0];
667 fi = btrfs_item_ptr(leaf, path->slots[0] - 1,
668 struct btrfs_file_extent_item);
669 btrfs_set_file_extent_generation(leaf, fi, trans->transid);
670 btrfs_set_file_extent_num_bytes(leaf, fi,
671 split - key.offset);
672
673 fi = btrfs_item_ptr(leaf, path->slots[0],
674 struct btrfs_file_extent_item);
675
676 btrfs_set_file_extent_generation(leaf, fi, trans->transid);
677 btrfs_set_file_extent_offset(leaf, fi, split - orig_offset);
678 btrfs_set_file_extent_num_bytes(leaf, fi,
679 extent_end - split);
680
681 ref.action = BTRFS_ADD_DELAYED_REF;
682 ref.bytenr = bytenr;
683 ref.num_bytes = num_bytes;
684 ref.parent = 0;
685 ref.owning_root = btrfs_root_id(root);
686 ref.ref_root = btrfs_root_id(root);
687 btrfs_init_data_ref(&ref, ino, orig_offset, 0, false);
688 ret = btrfs_inc_extent_ref(trans, &ref);
689 if (unlikely(ret)) {
690 btrfs_abort_transaction(trans, ret);
691 return ret;
692 }
693
694 if (split == start) {
695 key.offset = start;
696 } else {
697 if (unlikely(start != key.offset)) {
698 ret = -EINVAL;
699 btrfs_abort_transaction(trans, ret);
700 return ret;
701 }
702 path->slots[0]--;
703 extent_end = end;
704 }
705 recow = 1;
706 }
707
708 other_start = end;
709 other_end = 0;
710
711 ref.action = BTRFS_DROP_DELAYED_REF;
712 ref.bytenr = bytenr;
713 ref.num_bytes = num_bytes;
714 ref.parent = 0;
715 ref.owning_root = btrfs_root_id(root);
716 ref.ref_root = btrfs_root_id(root);
717 btrfs_init_data_ref(&ref, ino, orig_offset, 0, false);
718 if (extent_mergeable(leaf, path->slots[0] + 1,
719 ino, bytenr, orig_offset,
720 &other_start, &other_end)) {
721 if (recow) {
722 btrfs_release_path(path);
723 goto again;
724 }
725 extent_end = other_end;
726 del_slot = path->slots[0] + 1;
727 del_nr++;
728 ret = btrfs_free_extent(trans, &ref);
729 if (unlikely(ret)) {
730 btrfs_abort_transaction(trans, ret);
731 return ret;
732 }
733 }
734 other_start = 0;
735 other_end = start;
736 if (extent_mergeable(leaf, path->slots[0] - 1,
737 ino, bytenr, orig_offset,
738 &other_start, &other_end)) {
739 if (recow) {
740 btrfs_release_path(path);
741 goto again;
742 }
743 key.offset = other_start;
744 del_slot = path->slots[0];
745 del_nr++;
746 ret = btrfs_free_extent(trans, &ref);
747 if (unlikely(ret)) {
748 btrfs_abort_transaction(trans, ret);
749 return ret;
750 }
751 }
752 if (del_nr == 0) {
753 fi = btrfs_item_ptr(leaf, path->slots[0],
754 struct btrfs_file_extent_item);
755 btrfs_set_file_extent_type(leaf, fi,
756 BTRFS_FILE_EXTENT_REG);
757 btrfs_set_file_extent_generation(leaf, fi, trans->transid);
758 } else {
759 fi = btrfs_item_ptr(leaf, del_slot - 1,
760 struct btrfs_file_extent_item);
761 btrfs_set_file_extent_type(leaf, fi,
762 BTRFS_FILE_EXTENT_REG);
763 btrfs_set_file_extent_generation(leaf, fi, trans->transid);
764 btrfs_set_file_extent_num_bytes(leaf, fi,
765 extent_end - key.offset);
766
767 ret = btrfs_del_items(trans, root, path, del_slot, del_nr);
768 if (unlikely(ret < 0)) {
769 btrfs_abort_transaction(trans, ret);
770 return ret;
771 }
772 }
773
774 mark_dirty:
775 ret = btrfs_inode_set_file_extent_range(inode, start, end - start);
776 if (ret)
777 btrfs_abort_transaction(trans, ret);
778
779 return ret;
780 }
781
782 /*
783 * On error return an unlocked folio and the error value
784 * On success return a locked folio and 0
785 */
prepare_uptodate_folio(struct inode * inode,struct folio * folio,u64 pos,u64 len)786 static int prepare_uptodate_folio(struct inode *inode, struct folio *folio, u64 pos,
787 u64 len)
788 {
789 u64 clamp_start = max_t(u64, pos, folio_pos(folio));
790 u64 clamp_end = min_t(u64, pos + len, folio_next_pos(folio));
791 const u32 blocksize = inode_to_fs_info(inode)->sectorsize;
792 int ret = 0;
793
794 if (folio_test_uptodate(folio))
795 return 0;
796
797 if (IS_ALIGNED(clamp_start, blocksize) &&
798 IS_ALIGNED(clamp_end, blocksize))
799 return 0;
800
801 ret = btrfs_read_folio(NULL, folio);
802 if (ret)
803 return ret;
804 folio_lock(folio);
805 if (unlikely(!folio_test_uptodate(folio))) {
806 folio_unlock(folio);
807 return -EIO;
808 }
809
810 /*
811 * Since btrfs_read_folio() will unlock the folio before it returns,
812 * there is a window where btrfs_release_folio() can be called to
813 * release the page. Here we check both inode mapping and page
814 * private to make sure the page was not released.
815 *
816 * The private flag check is essential for subpage as we need to store
817 * extra bitmap using folio private.
818 */
819 if (folio->mapping != inode->i_mapping || !folio_test_private(folio)) {
820 folio_unlock(folio);
821 return -EAGAIN;
822 }
823 return 0;
824 }
825
get_prepare_gfp_flags(struct inode * inode,bool nowait)826 static gfp_t get_prepare_gfp_flags(struct inode *inode, bool nowait)
827 {
828 gfp_t gfp;
829
830 gfp = btrfs_alloc_write_mask(inode->i_mapping);
831 if (nowait) {
832 gfp &= ~__GFP_DIRECT_RECLAIM;
833 gfp |= GFP_NOWAIT;
834 }
835
836 return gfp;
837 }
838
839 /*
840 * Get folio into the page cache and lock it.
841 */
prepare_one_folio(struct inode * inode,struct folio ** folio_ret,loff_t pos,size_t write_bytes,bool nowait)842 static noinline int prepare_one_folio(struct inode *inode, struct folio **folio_ret,
843 loff_t pos, size_t write_bytes,
844 bool nowait)
845 {
846 const pgoff_t index = pos >> PAGE_SHIFT;
847 gfp_t mask = get_prepare_gfp_flags(inode, nowait);
848 fgf_t fgp_flags = (nowait ? FGP_WRITEBEGIN | FGP_NOWAIT : FGP_WRITEBEGIN) |
849 fgf_set_order(write_bytes);
850 struct folio *folio;
851 int ret;
852
853 again:
854 folio = __filemap_get_folio(inode->i_mapping, index, fgp_flags, mask);
855 if (IS_ERR(folio))
856 return PTR_ERR(folio);
857
858 ret = set_folio_extent_mapped(folio);
859 if (ret < 0) {
860 folio_unlock(folio);
861 folio_put(folio);
862 return ret;
863 }
864 ret = prepare_uptodate_folio(inode, folio, pos, write_bytes);
865 if (ret) {
866 /* The folio is already unlocked. */
867 folio_put(folio);
868 if (!nowait && ret == -EAGAIN)
869 goto again;
870 return ret;
871 }
872 *folio_ret = folio;
873 return 0;
874 }
875
876 /*
877 * Locks the extent and properly waits for data=ordered extents to finish
878 * before allowing the folios to be modified.
879 *
880 * Return:
881 * 0 - the extent is locked
882 * -EAGAIN - need to prepare the folios again
883 */
884 static noinline int
lock_and_cleanup_extent(struct btrfs_inode * inode,struct folio * folio,loff_t pos,size_t write_bytes,u64 * lockstart,u64 * lockend,bool nowait,struct extent_state ** cached_state)885 lock_and_cleanup_extent(struct btrfs_inode *inode, struct folio *folio,
886 loff_t pos, size_t write_bytes,
887 u64 *lockstart, u64 *lockend, bool nowait,
888 struct extent_state **cached_state)
889 {
890 struct btrfs_fs_info *fs_info = inode->root->fs_info;
891 struct btrfs_ordered_extent *ordered;
892 u64 start_pos;
893 u64 last_pos;
894
895 start_pos = round_down(pos, fs_info->sectorsize);
896 last_pos = round_up(pos + write_bytes, fs_info->sectorsize) - 1;
897
898 if (nowait) {
899 if (!btrfs_try_lock_extent(&inode->io_tree, start_pos,
900 last_pos, cached_state)) {
901 folio_unlock(folio);
902 folio_put(folio);
903 return -EAGAIN;
904 }
905 } else {
906 btrfs_lock_extent(&inode->io_tree, start_pos, last_pos,
907 cached_state);
908 }
909
910 ordered = btrfs_lookup_ordered_range(inode, start_pos,
911 last_pos - start_pos + 1);
912 if (ordered &&
913 ordered->file_offset + ordered->num_bytes > start_pos &&
914 ordered->file_offset <= last_pos) {
915 btrfs_unlock_extent(&inode->io_tree, start_pos, last_pos,
916 cached_state);
917 folio_unlock(folio);
918 folio_put(folio);
919 btrfs_start_ordered_extent(ordered);
920 btrfs_put_ordered_extent(ordered);
921 return -EAGAIN;
922 }
923 if (ordered)
924 btrfs_put_ordered_extent(ordered);
925
926 *lockstart = start_pos;
927 *lockend = last_pos;
928
929 /*
930 * We should be called after prepare_one_folio() which should have locked
931 * all pages in the range.
932 */
933 WARN_ON(!folio_test_locked(folio));
934
935 return 0;
936 }
937
938 /*
939 * Check if we can do nocow write into the range [@pos, @pos + @write_bytes)
940 *
941 * @pos: File offset.
942 * @write_bytes: The length to write, will be updated to the nocow writeable
943 * range.
944 * @nowait: Indicate if we can block or not (non-blocking IO context).
945 *
946 * This function will flush ordered extents in the range to ensure proper
947 * nocow checks.
948 *
949 * Return:
950 * > 0 If we can nocow, and updates @write_bytes.
951 * 0 If we can't do a nocow write.
952 * -EAGAIN If we can't do a nocow write because snapshotting of the inode's
953 * root is in progress or because we are in a non-blocking IO
954 * context and need to block (@nowait is true).
955 * < 0 If an error happened.
956 *
957 * NOTE: Callers need to call btrfs_check_nocow_unlock() if we return > 0.
958 */
btrfs_check_nocow_lock(struct btrfs_inode * inode,loff_t pos,size_t * write_bytes,bool nowait)959 int btrfs_check_nocow_lock(struct btrfs_inode *inode, loff_t pos,
960 size_t *write_bytes, bool nowait)
961 {
962 struct btrfs_fs_info *fs_info = inode->root->fs_info;
963 struct btrfs_root *root = inode->root;
964 struct extent_state *cached_state = NULL;
965 u64 lockstart, lockend;
966 u64 cur_offset;
967 int ret = 0;
968
969 if (!(inode->flags & (BTRFS_INODE_NODATACOW | BTRFS_INODE_PREALLOC)))
970 return 0;
971
972 if (!btrfs_drew_try_write_lock(&root->snapshot_lock))
973 return -EAGAIN;
974
975 lockstart = round_down(pos, fs_info->sectorsize);
976 lockend = round_up(pos + *write_bytes,
977 fs_info->sectorsize) - 1;
978
979 if (nowait) {
980 if (!btrfs_try_lock_ordered_range(inode, lockstart, lockend,
981 &cached_state)) {
982 btrfs_drew_write_unlock(&root->snapshot_lock);
983 return -EAGAIN;
984 }
985 } else {
986 btrfs_lock_and_flush_ordered_range(inode, lockstart, lockend,
987 &cached_state);
988 }
989
990 cur_offset = lockstart;
991 while (cur_offset < lockend) {
992 u64 num_bytes = lockend - cur_offset + 1;
993
994 ret = can_nocow_extent(inode, cur_offset, &num_bytes, NULL, nowait);
995 if (ret <= 0) {
996 /*
997 * If cur_offset == lockstart it means we haven't found
998 * any extent against which we can NOCOW, so unlock the
999 * snapshot lock.
1000 */
1001 if (cur_offset == lockstart)
1002 btrfs_drew_write_unlock(&root->snapshot_lock);
1003 break;
1004 }
1005 cur_offset += num_bytes;
1006 }
1007
1008 btrfs_unlock_extent(&inode->io_tree, lockstart, lockend, &cached_state);
1009
1010 /*
1011 * cur_offset > lockstart means there's at least a partial range we can
1012 * NOCOW, and that range can cover one or more extents.
1013 */
1014 if (cur_offset > lockstart) {
1015 *write_bytes = min_t(size_t, *write_bytes, cur_offset - pos);
1016 return 1;
1017 }
1018
1019 return ret;
1020 }
1021
btrfs_check_nocow_unlock(struct btrfs_inode * inode)1022 void btrfs_check_nocow_unlock(struct btrfs_inode *inode)
1023 {
1024 btrfs_drew_write_unlock(&inode->root->snapshot_lock);
1025 }
1026
btrfs_write_check(struct kiocb * iocb,size_t count)1027 int btrfs_write_check(struct kiocb *iocb, size_t count)
1028 {
1029 struct file *file = iocb->ki_filp;
1030 struct inode *inode = file_inode(file);
1031 struct btrfs_fs_info *fs_info = inode_to_fs_info(inode);
1032 loff_t pos = iocb->ki_pos;
1033 int ret;
1034 loff_t oldsize;
1035
1036 /*
1037 * Quickly bail out on NOWAIT writes if we don't have the nodatacow or
1038 * prealloc flags, as without those flags we always have to COW. We will
1039 * later check if we can really COW into the target range (using
1040 * can_nocow_extent() at btrfs_get_blocks_direct_write()).
1041 */
1042 if ((iocb->ki_flags & IOCB_NOWAIT) &&
1043 !(BTRFS_I(inode)->flags & (BTRFS_INODE_NODATACOW | BTRFS_INODE_PREALLOC)))
1044 return -EAGAIN;
1045
1046 ret = file_remove_privs(file);
1047 if (ret)
1048 return ret;
1049
1050 /*
1051 * We reserve space for updating the inode when we reserve space for the
1052 * extent we are going to write, so we will enospc out there. We don't
1053 * need to start yet another transaction to update the inode as we will
1054 * update the inode when we finish writing whatever data we write.
1055 */
1056 if (!IS_NOCMTIME(inode)) {
1057 inode_set_mtime_to_ts(inode, inode_set_ctime_current(inode));
1058 inode_inc_iversion(inode);
1059 }
1060
1061 oldsize = i_size_read(inode);
1062 if (pos > oldsize) {
1063 /* Expand hole size to cover write data, preventing empty gap */
1064 loff_t end_pos = round_up(pos + count, fs_info->sectorsize);
1065
1066 ret = btrfs_cont_expand(BTRFS_I(inode), oldsize, end_pos);
1067 if (ret)
1068 return ret;
1069 }
1070
1071 return 0;
1072 }
1073
release_space(struct btrfs_inode * inode,struct extent_changeset * data_reserved,u64 start,u64 len,bool only_release_metadata)1074 static void release_space(struct btrfs_inode *inode, struct extent_changeset *data_reserved,
1075 u64 start, u64 len, bool only_release_metadata)
1076 {
1077 if (len == 0)
1078 return;
1079
1080 if (only_release_metadata) {
1081 btrfs_check_nocow_unlock(inode);
1082 btrfs_delalloc_release_metadata(inode, len, true);
1083 } else {
1084 const struct btrfs_fs_info *fs_info = inode->root->fs_info;
1085
1086 btrfs_delalloc_release_space(inode, data_reserved,
1087 round_down(start, fs_info->sectorsize),
1088 len, true);
1089 }
1090 }
1091
1092 /*
1093 * Reserve data and metadata space for this buffered write range.
1094 *
1095 * Return >0 for the number of bytes reserved, which is always block aligned.
1096 * Return <0 for error.
1097 */
reserve_space(struct btrfs_inode * inode,struct extent_changeset ** data_reserved,u64 start,size_t * len,bool nowait,bool * only_release_metadata)1098 static ssize_t reserve_space(struct btrfs_inode *inode,
1099 struct extent_changeset **data_reserved,
1100 u64 start, size_t *len, bool nowait,
1101 bool *only_release_metadata)
1102 {
1103 const struct btrfs_fs_info *fs_info = inode->root->fs_info;
1104 const unsigned int block_offset = (start & (fs_info->sectorsize - 1));
1105 size_t reserve_bytes;
1106 int ret;
1107
1108 ret = btrfs_check_data_free_space(inode, data_reserved, start, *len, nowait);
1109 if (ret < 0) {
1110 int can_nocow;
1111
1112 if (nowait && (ret == -ENOSPC || ret == -EAGAIN))
1113 return -EAGAIN;
1114
1115 /*
1116 * If we don't have to COW at the offset, reserve metadata only.
1117 * write_bytes may get smaller than requested here.
1118 */
1119 can_nocow = btrfs_check_nocow_lock(inode, start, len, nowait);
1120 if (can_nocow < 0)
1121 ret = can_nocow;
1122 if (can_nocow > 0)
1123 ret = 0;
1124 if (ret)
1125 return ret;
1126 *only_release_metadata = true;
1127 }
1128
1129 reserve_bytes = round_up(*len + block_offset, fs_info->sectorsize);
1130 WARN_ON(reserve_bytes == 0);
1131 ret = btrfs_delalloc_reserve_metadata(inode, reserve_bytes,
1132 reserve_bytes, nowait);
1133 if (ret) {
1134 if (!*only_release_metadata)
1135 btrfs_free_reserved_data_space(inode, *data_reserved,
1136 start, *len);
1137 else
1138 btrfs_check_nocow_unlock(inode);
1139
1140 if (nowait && ret == -ENOSPC)
1141 ret = -EAGAIN;
1142 return ret;
1143 }
1144 return reserve_bytes;
1145 }
1146
1147 /* Shrink the reserved data and metadata space from @reserved_len to @new_len. */
shrink_reserved_space(struct btrfs_inode * inode,struct extent_changeset * data_reserved,u64 reserved_start,u64 reserved_len,u64 new_len,bool only_release_metadata)1148 static void shrink_reserved_space(struct btrfs_inode *inode,
1149 struct extent_changeset *data_reserved,
1150 u64 reserved_start, u64 reserved_len,
1151 u64 new_len, bool only_release_metadata)
1152 {
1153 const u64 diff = reserved_len - new_len;
1154
1155 ASSERT(new_len <= reserved_len);
1156 btrfs_delalloc_shrink_extents(inode, reserved_len, new_len);
1157 if (only_release_metadata)
1158 btrfs_delalloc_release_metadata(inode, diff, true);
1159 else
1160 btrfs_delalloc_release_space(inode, data_reserved,
1161 reserved_start + new_len, diff, true);
1162 }
1163
1164 /* Calculate the maximum amount of bytes we can write into one folio. */
calc_write_bytes(const struct btrfs_inode * inode,const struct iov_iter * iter,u64 start)1165 static size_t calc_write_bytes(const struct btrfs_inode *inode,
1166 const struct iov_iter *iter, u64 start)
1167 {
1168 const size_t max_folio_size = mapping_max_folio_size(inode->vfs_inode.i_mapping);
1169
1170 return min(max_folio_size - (start & (max_folio_size - 1)),
1171 iov_iter_count(iter));
1172 }
1173
1174 /*
1175 * Do the heavy-lifting work to copy one range into one folio of the page cache.
1176 *
1177 * Return > 0 in case we copied all bytes or just some of them.
1178 * Return 0 if no bytes were copied, in which case the caller should retry.
1179 * Return <0 on error.
1180 */
copy_one_range(struct btrfs_inode * inode,struct iov_iter * iter,struct extent_changeset ** data_reserved,u64 start,bool nowait)1181 static int copy_one_range(struct btrfs_inode *inode, struct iov_iter *iter,
1182 struct extent_changeset **data_reserved, u64 start,
1183 bool nowait)
1184 {
1185 struct btrfs_fs_info *fs_info = inode->root->fs_info;
1186 struct extent_state *cached_state = NULL;
1187 size_t write_bytes = calc_write_bytes(inode, iter, start);
1188 size_t copied;
1189 const u64 reserved_start = round_down(start, fs_info->sectorsize);
1190 u64 reserved_len;
1191 struct folio *folio = NULL;
1192 u64 lockstart;
1193 u64 lockend;
1194 bool only_release_metadata = false;
1195 const unsigned int bdp_flags = (nowait ? BDP_ASYNC : 0);
1196 int ret;
1197
1198 /*
1199 * Fault all pages before locking them in prepare_one_folio() to avoid
1200 * recursive lock.
1201 */
1202 if (unlikely(fault_in_iov_iter_readable(iter, write_bytes)))
1203 return -EFAULT;
1204 extent_changeset_release(*data_reserved);
1205 ret = reserve_space(inode, data_reserved, start, &write_bytes, nowait,
1206 &only_release_metadata);
1207 if (ret < 0)
1208 return ret;
1209 reserved_len = ret;
1210 /* Write range must be inside the reserved range. */
1211 ASSERT(reserved_start <= start, "reserved_start=%llu start=%llu",
1212 reserved_start, start);
1213 ASSERT(start + write_bytes <= reserved_start + reserved_len,
1214 "start=%llu write_bytes=%zu reserved_start=%llu reserved_len=%llu",
1215 start, write_bytes, reserved_start, reserved_len);
1216
1217 again:
1218 ret = balance_dirty_pages_ratelimited_flags(inode->vfs_inode.i_mapping,
1219 bdp_flags);
1220 if (ret) {
1221 btrfs_delalloc_release_extents(inode, reserved_len);
1222 release_space(inode, *data_reserved, reserved_start, reserved_len,
1223 only_release_metadata);
1224 return ret;
1225 }
1226
1227 ret = prepare_one_folio(&inode->vfs_inode, &folio, start, write_bytes, false);
1228 if (ret) {
1229 btrfs_delalloc_release_extents(inode, reserved_len);
1230 release_space(inode, *data_reserved, reserved_start, reserved_len,
1231 only_release_metadata);
1232 return ret;
1233 }
1234
1235 /*
1236 * The reserved range goes beyond the current folio, shrink the reserved
1237 * space to the folio boundary.
1238 */
1239 if (reserved_start + reserved_len > folio_next_pos(folio)) {
1240 const u64 last_block = folio_next_pos(folio);
1241
1242 shrink_reserved_space(inode, *data_reserved, reserved_start,
1243 reserved_len, last_block - reserved_start,
1244 only_release_metadata);
1245 write_bytes = last_block - start;
1246 reserved_len = last_block - reserved_start;
1247 }
1248
1249 ret = lock_and_cleanup_extent(inode, folio, start, write_bytes,
1250 &lockstart, &lockend, nowait, &cached_state);
1251 if (ret < 0) {
1252 if (!nowait)
1253 goto again;
1254
1255 btrfs_delalloc_release_extents(inode, reserved_len);
1256 release_space(inode, *data_reserved, reserved_start, reserved_len,
1257 only_release_metadata);
1258 return ret;
1259 }
1260
1261 copied = copy_folio_from_iter_atomic(folio, offset_in_folio(folio, start),
1262 write_bytes, iter);
1263 flush_dcache_folio(folio);
1264
1265 if (unlikely(copied < write_bytes)) {
1266 u64 last_block;
1267
1268 /*
1269 * The original write range doesn't need an uptodate folio as
1270 * the range is block aligned. But now a short copy happened.
1271 * We cannot handle it without an uptodate folio.
1272 *
1273 * So just revert the range and we will retry.
1274 */
1275 if (!folio_test_uptodate(folio)) {
1276 iov_iter_revert(iter, copied);
1277 copied = 0;
1278 }
1279
1280 /* No copied bytes, unlock, release reserved space and exit. */
1281 if (copied == 0) {
1282 btrfs_unlock_extent(&inode->io_tree, lockstart, lockend,
1283 &cached_state);
1284 btrfs_delalloc_release_extents(inode, reserved_len);
1285 release_space(inode, *data_reserved, reserved_start, reserved_len,
1286 only_release_metadata);
1287 btrfs_drop_folio(fs_info, folio, start, copied);
1288 return 0;
1289 }
1290
1291 /* Release the reserved space beyond the last block. */
1292 last_block = round_up(start + copied, fs_info->sectorsize);
1293
1294 shrink_reserved_space(inode, *data_reserved, reserved_start,
1295 reserved_len, last_block - reserved_start,
1296 only_release_metadata);
1297 reserved_len = last_block - reserved_start;
1298 }
1299
1300 ret = btrfs_dirty_folio(inode, folio, start, copied, &cached_state,
1301 only_release_metadata);
1302 btrfs_unlock_extent(&inode->io_tree, lockstart, lockend, &cached_state);
1303
1304 btrfs_delalloc_release_extents(inode, reserved_len);
1305 if (ret) {
1306 btrfs_drop_folio(fs_info, folio, start, copied);
1307 release_space(inode, *data_reserved, reserved_start, reserved_len,
1308 only_release_metadata);
1309 return ret;
1310 }
1311 if (only_release_metadata)
1312 btrfs_check_nocow_unlock(inode);
1313
1314 btrfs_drop_folio(fs_info, folio, start, copied);
1315 return copied;
1316 }
1317
btrfs_buffered_write(struct kiocb * iocb,struct iov_iter * iter)1318 ssize_t btrfs_buffered_write(struct kiocb *iocb, struct iov_iter *iter)
1319 {
1320 struct file *file = iocb->ki_filp;
1321 loff_t pos;
1322 struct inode *inode = file_inode(file);
1323 struct extent_changeset *data_reserved = NULL;
1324 size_t num_written = 0;
1325 ssize_t ret;
1326 loff_t old_isize;
1327 unsigned int ilock_flags = 0;
1328 const bool nowait = (iocb->ki_flags & IOCB_NOWAIT);
1329
1330 if (nowait)
1331 ilock_flags |= BTRFS_ILOCK_TRY;
1332
1333 ret = btrfs_inode_lock(BTRFS_I(inode), ilock_flags);
1334 if (ret < 0)
1335 return ret;
1336
1337 /*
1338 * We can only trust the isize with inode lock held, or it can race with
1339 * other buffered writes and cause incorrect call of
1340 * pagecache_isize_extended() to overwrite existing data.
1341 */
1342 old_isize = i_size_read(inode);
1343
1344 ret = generic_write_checks(iocb, iter);
1345 if (ret <= 0)
1346 goto out;
1347
1348 ret = btrfs_write_check(iocb, ret);
1349 if (ret < 0)
1350 goto out;
1351
1352 pos = iocb->ki_pos;
1353 while (iov_iter_count(iter) > 0) {
1354 ret = copy_one_range(BTRFS_I(inode), iter, &data_reserved, pos, nowait);
1355 if (ret < 0)
1356 break;
1357 pos += ret;
1358 num_written += ret;
1359 cond_resched();
1360 }
1361
1362 extent_changeset_free(data_reserved);
1363 if (num_written > 0) {
1364 pagecache_isize_extended(inode, old_isize, iocb->ki_pos);
1365 iocb->ki_pos += num_written;
1366 }
1367 out:
1368 btrfs_inode_unlock(BTRFS_I(inode), ilock_flags);
1369 return num_written ? num_written : ret;
1370 }
1371
btrfs_encoded_write(struct kiocb * iocb,struct iov_iter * from,const struct btrfs_ioctl_encoded_io_args * encoded)1372 static ssize_t btrfs_encoded_write(struct kiocb *iocb, struct iov_iter *from,
1373 const struct btrfs_ioctl_encoded_io_args *encoded)
1374 {
1375 struct file *file = iocb->ki_filp;
1376 struct inode *inode = file_inode(file);
1377 loff_t count;
1378 ssize_t ret;
1379
1380 btrfs_inode_lock(BTRFS_I(inode), 0);
1381 count = encoded->len;
1382 ret = generic_write_checks_count(iocb, &count);
1383 if (ret == 0 && count != encoded->len) {
1384 /*
1385 * The write got truncated by generic_write_checks_count(). We
1386 * can't do a partial encoded write.
1387 */
1388 ret = -EFBIG;
1389 }
1390 if (ret || encoded->len == 0)
1391 goto out;
1392
1393 ret = btrfs_write_check(iocb, encoded->len);
1394 if (ret < 0)
1395 goto out;
1396
1397 ret = btrfs_do_encoded_write(iocb, from, encoded);
1398 out:
1399 btrfs_inode_unlock(BTRFS_I(inode), 0);
1400 return ret;
1401 }
1402
btrfs_do_write_iter(struct kiocb * iocb,struct iov_iter * from,const struct btrfs_ioctl_encoded_io_args * encoded)1403 ssize_t btrfs_do_write_iter(struct kiocb *iocb, struct iov_iter *from,
1404 const struct btrfs_ioctl_encoded_io_args *encoded)
1405 {
1406 struct file *file = iocb->ki_filp;
1407 struct btrfs_inode *inode = BTRFS_I(file_inode(file));
1408 ssize_t num_written, num_sync;
1409
1410 if (btrfs_is_shutdown(inode->root->fs_info))
1411 return -EIO;
1412 /*
1413 * If the fs flips readonly due to some impossible error, although we
1414 * have opened a file as writable, we have to stop this write operation
1415 * to ensure consistency.
1416 */
1417 if (unlikely(BTRFS_FS_ERROR(inode->root->fs_info)))
1418 return -EROFS;
1419
1420 if (encoded && (iocb->ki_flags & IOCB_NOWAIT))
1421 return -EOPNOTSUPP;
1422
1423 if (encoded) {
1424 num_written = btrfs_encoded_write(iocb, from, encoded);
1425 num_sync = encoded->len;
1426 } else if (iocb->ki_flags & IOCB_DIRECT) {
1427 num_written = btrfs_direct_write(iocb, from);
1428 num_sync = num_written;
1429 } else {
1430 num_written = btrfs_buffered_write(iocb, from);
1431 num_sync = num_written;
1432 }
1433
1434 btrfs_set_inode_last_sub_trans(inode);
1435
1436 if (num_sync > 0) {
1437 num_sync = generic_write_sync(iocb, num_sync);
1438 if (num_sync < 0)
1439 num_written = num_sync;
1440 }
1441
1442 return num_written;
1443 }
1444
btrfs_file_write_iter(struct kiocb * iocb,struct iov_iter * from)1445 static ssize_t btrfs_file_write_iter(struct kiocb *iocb, struct iov_iter *from)
1446 {
1447 return btrfs_do_write_iter(iocb, from, NULL);
1448 }
1449
btrfs_release_file(struct inode * inode,struct file * filp)1450 int btrfs_release_file(struct inode *inode, struct file *filp)
1451 {
1452 struct btrfs_file_private *private = filp->private_data;
1453
1454 if (private) {
1455 kfree(private->filldir_buf);
1456 btrfs_free_extent_state(private->llseek_cached_state);
1457 kfree(private);
1458 filp->private_data = NULL;
1459 }
1460
1461 /*
1462 * Set by setattr when we are about to truncate a file from a non-zero
1463 * size to a zero size. This tries to flush down new bytes that may
1464 * have been written if the application were using truncate to replace
1465 * a file in place.
1466 */
1467 if (test_and_clear_bit(BTRFS_INODE_FLUSH_ON_CLOSE,
1468 &BTRFS_I(inode)->runtime_flags))
1469 filemap_flush(inode->i_mapping);
1470 return 0;
1471 }
1472
start_ordered_ops(struct btrfs_inode * inode,loff_t start,loff_t end)1473 static int start_ordered_ops(struct btrfs_inode *inode, loff_t start, loff_t end)
1474 {
1475 int ret;
1476 struct blk_plug plug;
1477
1478 /*
1479 * This is only called in fsync, which would do synchronous writes, so
1480 * a plug can merge adjacent IOs as much as possible. Esp. in case of
1481 * multiple disks using raid profile, a large IO can be split to
1482 * several segments of stripe length (currently 64K).
1483 */
1484 blk_start_plug(&plug);
1485 ret = btrfs_fdatawrite_range(inode, start, end);
1486 blk_finish_plug(&plug);
1487
1488 return ret;
1489 }
1490
skip_inode_logging(const struct btrfs_log_ctx * ctx)1491 static inline bool skip_inode_logging(const struct btrfs_log_ctx *ctx)
1492 {
1493 struct btrfs_inode *inode = ctx->inode;
1494 struct btrfs_fs_info *fs_info = inode->root->fs_info;
1495
1496 if (btrfs_inode_in_log(inode, btrfs_get_fs_generation(fs_info)) &&
1497 list_empty(&ctx->ordered_extents))
1498 return true;
1499
1500 /*
1501 * If we are doing a fast fsync we can not bail out if the inode's
1502 * last_trans is <= then the last committed transaction, because we only
1503 * update the last_trans of the inode during ordered extent completion,
1504 * and for a fast fsync we don't wait for that, we only wait for the
1505 * writeback to complete.
1506 */
1507 if (inode->last_trans <= btrfs_get_last_trans_committed(fs_info) &&
1508 (test_bit(BTRFS_INODE_NEEDS_FULL_SYNC, &inode->runtime_flags) ||
1509 list_empty(&ctx->ordered_extents)))
1510 return true;
1511
1512 return false;
1513 }
1514
1515 /*
1516 * fsync call for both files and directories. This logs the inode into
1517 * the tree log instead of forcing full commits whenever possible.
1518 *
1519 * It needs to call filemap_fdatawait so that all ordered extent updates are
1520 * in the metadata btree are up to date for copying to the log.
1521 *
1522 * It drops the inode mutex before doing the tree log commit. This is an
1523 * important optimization for directories because holding the mutex prevents
1524 * new operations on the dir while we write to disk.
1525 */
btrfs_sync_file(struct file * file,loff_t start,loff_t end,int datasync)1526 int btrfs_sync_file(struct file *file, loff_t start, loff_t end, int datasync)
1527 {
1528 struct dentry *dentry = file_dentry(file);
1529 struct btrfs_inode *inode = BTRFS_I(d_inode(dentry));
1530 struct btrfs_root *root = inode->root;
1531 struct btrfs_fs_info *fs_info = root->fs_info;
1532 struct btrfs_trans_handle *trans;
1533 struct btrfs_log_ctx ctx;
1534 int ret = 0, err;
1535 u64 len;
1536 bool full_sync;
1537 bool skip_ilock = false;
1538
1539 if (current->journal_info == BTRFS_TRANS_DIO_WRITE_STUB) {
1540 skip_ilock = true;
1541 current->journal_info = NULL;
1542 btrfs_assert_inode_locked(inode);
1543 }
1544
1545 trace_btrfs_sync_file_enter(file, datasync);
1546
1547 btrfs_init_log_ctx(&ctx, inode);
1548
1549 /*
1550 * Always set the range to a full range, otherwise we can get into
1551 * several problems, from missing file extent items to represent holes
1552 * when not using the NO_HOLES feature, to log tree corruption due to
1553 * races between hole detection during logging and completion of ordered
1554 * extents outside the range, to missing checksums due to ordered extents
1555 * for which we flushed only a subset of their pages.
1556 */
1557 start = 0;
1558 end = LLONG_MAX;
1559 len = (u64)LLONG_MAX + 1;
1560
1561 /*
1562 * We write the dirty pages in the range and wait until they complete
1563 * out of the ->i_mutex. If so, we can flush the dirty pages by
1564 * multi-task, and make the performance up. See
1565 * btrfs_wait_ordered_range for an explanation of the ASYNC check.
1566 */
1567 ret = start_ordered_ops(inode, start, end);
1568 if (ret)
1569 goto out;
1570
1571 if (skip_ilock)
1572 down_write(&inode->i_mmap_lock);
1573 else
1574 btrfs_inode_lock(inode, BTRFS_ILOCK_MMAP);
1575
1576 /*
1577 * Before we acquired the inode's lock and the mmap lock, someone may
1578 * have dirtied more pages in the target range. We need to make sure
1579 * that writeback for any such pages does not start while we are logging
1580 * the inode, because if it does, any of the following might happen when
1581 * we are not doing a full inode sync:
1582 *
1583 * 1) We log an extent after its writeback finishes but before its
1584 * checksums are added to the csum tree, leading to -EIO errors
1585 * when attempting to read the extent after a log replay.
1586 *
1587 * 2) We can end up logging an extent before its writeback finishes.
1588 * Therefore after the log replay we will have a file extent item
1589 * pointing to an unwritten extent (and no data checksums as well).
1590 *
1591 * So trigger writeback for any eventual new dirty pages and then we
1592 * wait for all ordered extents to complete below.
1593 */
1594 ret = start_ordered_ops(inode, start, end);
1595 if (ret) {
1596 if (skip_ilock)
1597 up_write(&inode->i_mmap_lock);
1598 else
1599 btrfs_inode_unlock(inode, BTRFS_ILOCK_MMAP);
1600 goto out;
1601 }
1602
1603 /*
1604 * Always check for the full sync flag while holding the inode's lock,
1605 * to avoid races with other tasks. The flag must be either set all the
1606 * time during logging or always off all the time while logging.
1607 * We check the flag here after starting delalloc above, because when
1608 * running delalloc the full sync flag may be set if we need to drop
1609 * extra extent map ranges due to temporary memory allocation failures.
1610 */
1611 full_sync = test_bit(BTRFS_INODE_NEEDS_FULL_SYNC, &inode->runtime_flags);
1612
1613 /*
1614 * We have to do this here to avoid the priority inversion of waiting on
1615 * IO of a lower priority task while holding a transaction open.
1616 *
1617 * For a full fsync we wait for the ordered extents to complete while
1618 * for a fast fsync we wait just for writeback to complete, and then
1619 * attach the ordered extents to the transaction so that a transaction
1620 * commit waits for their completion, to avoid data loss if we fsync,
1621 * the current transaction commits before the ordered extents complete
1622 * and a power failure happens right after that.
1623 *
1624 * For zoned filesystem, if a write IO uses a ZONE_APPEND command, the
1625 * logical address recorded in the ordered extent may change. We need
1626 * to wait for the IO to stabilize the logical address.
1627 */
1628 if (full_sync || btrfs_is_zoned(fs_info)) {
1629 ret = btrfs_wait_ordered_range(inode, start, len);
1630 clear_bit(BTRFS_INODE_COW_WRITE_ERROR, &inode->runtime_flags);
1631 } else {
1632 /*
1633 * Get our ordered extents as soon as possible to avoid doing
1634 * checksum lookups in the csum tree, and use instead the
1635 * checksums attached to the ordered extents.
1636 */
1637 btrfs_get_ordered_extents_for_logging(inode, &ctx.ordered_extents);
1638 ret = filemap_fdatawait_range(inode->vfs_inode.i_mapping, start, end);
1639 if (ret)
1640 goto out_release_extents;
1641
1642 /*
1643 * Check and clear the BTRFS_INODE_COW_WRITE_ERROR now after
1644 * starting and waiting for writeback, because for buffered IO
1645 * it may have been set during the end IO callback
1646 * (end_bbio_data_write() -> btrfs_finish_ordered_extent()) in
1647 * case an error happened and we need to wait for ordered
1648 * extents to complete so that any extent maps that point to
1649 * unwritten locations are dropped and we don't log them.
1650 */
1651 if (test_and_clear_bit(BTRFS_INODE_COW_WRITE_ERROR, &inode->runtime_flags))
1652 ret = btrfs_wait_ordered_range(inode, start, len);
1653 }
1654
1655 if (ret)
1656 goto out_release_extents;
1657
1658 if (skip_inode_logging(&ctx)) {
1659 /*
1660 * We've had everything committed since the last time we were
1661 * modified so clear this flag in case it was set for whatever
1662 * reason, it's no longer relevant.
1663 */
1664 clear_bit(BTRFS_INODE_NEEDS_FULL_SYNC, &inode->runtime_flags);
1665 goto out_release_extents;
1666 }
1667
1668 btrfs_init_log_ctx_scratch_eb(&ctx);
1669
1670 /*
1671 * We use start here because we will need to wait on the IO to complete
1672 * in btrfs_sync_log, which could require joining a transaction (for
1673 * example checking cross references in the nocow path). If we use join
1674 * here we could get into a situation where we're waiting on IO to
1675 * happen that is blocked on a transaction trying to commit. With start
1676 * we inc the extwriter counter, so we wait for all extwriters to exit
1677 * before we start blocking joiners. This comment is to keep somebody
1678 * from thinking they are super smart and changing this to
1679 * btrfs_join_transaction *cough*Josef*cough*.
1680 */
1681 trans = btrfs_start_transaction(root, 0);
1682 if (IS_ERR(trans)) {
1683 ret = PTR_ERR(trans);
1684 goto out_release_extents;
1685 }
1686 trans->in_fsync = true;
1687
1688 ret = btrfs_log_dentry_safe(trans, dentry, &ctx);
1689 /*
1690 * Scratch eb no longer needed, release before syncing log or commit
1691 * transaction, to avoid holding unnecessary memory during such long
1692 * operations.
1693 */
1694 if (ctx.scratch_eb) {
1695 free_extent_buffer(ctx.scratch_eb);
1696 ctx.scratch_eb = NULL;
1697 }
1698 btrfs_release_log_ctx_extents(&ctx);
1699 if (ret < 0) {
1700 /* Fallthrough and commit/free transaction. */
1701 ret = BTRFS_LOG_FORCE_COMMIT;
1702 }
1703
1704 /* we've logged all the items and now have a consistent
1705 * version of the file in the log. It is possible that
1706 * someone will come in and modify the file, but that's
1707 * fine because the log is consistent on disk, and we
1708 * have references to all of the file's extents
1709 *
1710 * It is possible that someone will come in and log the
1711 * file again, but that will end up using the synchronization
1712 * inside btrfs_sync_log to keep things safe.
1713 */
1714 if (skip_ilock)
1715 up_write(&inode->i_mmap_lock);
1716 else
1717 btrfs_inode_unlock(inode, BTRFS_ILOCK_MMAP);
1718
1719 if (ret == BTRFS_NO_LOG_SYNC) {
1720 ret = btrfs_end_transaction(trans);
1721 goto out;
1722 }
1723
1724 /* We successfully logged the inode, attempt to sync the log. */
1725 if (!ret) {
1726 ret = btrfs_sync_log(trans, root, &ctx);
1727 if (!ret) {
1728 ret = btrfs_end_transaction(trans);
1729 goto out;
1730 }
1731 }
1732
1733 /*
1734 * At this point we need to commit the transaction because we had
1735 * btrfs_need_log_full_commit() or some other error.
1736 *
1737 * If we didn't do a full sync we have to stop the trans handle, wait on
1738 * the ordered extents, start it again and commit the transaction. If
1739 * we attempt to wait on the ordered extents here we could deadlock with
1740 * something like fallocate() that is holding the extent lock trying to
1741 * start a transaction while some other thread is trying to commit the
1742 * transaction while we (fsync) are currently holding the transaction
1743 * open.
1744 */
1745 if (!full_sync) {
1746 ret = btrfs_end_transaction(trans);
1747 if (ret)
1748 goto out;
1749 ret = btrfs_wait_ordered_range(inode, start, len);
1750 if (ret)
1751 goto out;
1752
1753 /*
1754 * This is safe to use here because we're only interested in
1755 * making sure the transaction that had the ordered extents is
1756 * committed. We aren't waiting on anything past this point,
1757 * we're purely getting the transaction and committing it.
1758 */
1759 trans = btrfs_attach_transaction_barrier(root);
1760 if (IS_ERR(trans)) {
1761 ret = PTR_ERR(trans);
1762
1763 /*
1764 * We committed the transaction and there's no currently
1765 * running transaction, this means everything we care
1766 * about made it to disk and we are done.
1767 */
1768 if (ret == -ENOENT)
1769 ret = 0;
1770 goto out;
1771 }
1772 }
1773
1774 ret = btrfs_commit_transaction(trans);
1775 out:
1776 free_extent_buffer(ctx.scratch_eb);
1777 ASSERT(list_empty(&ctx.list));
1778 ASSERT(list_empty(&ctx.conflict_inodes));
1779 ASSERT(ret <= 0, "ret=%d", ret);
1780 /*
1781 * Ordered extents might have started and completed before this fsync,
1782 * so check for any io errors and advance the writeback error sequence.
1783 */
1784 err = file_check_and_advance_wb_err(file);
1785 if (!ret)
1786 ret = err;
1787 trace_btrfs_sync_file_exit(file, ret);
1788
1789 return ret;
1790
1791 out_release_extents:
1792 btrfs_release_log_ctx_extents(&ctx);
1793 if (skip_ilock)
1794 up_write(&inode->i_mmap_lock);
1795 else
1796 btrfs_inode_unlock(inode, BTRFS_ILOCK_MMAP);
1797 goto out;
1798 }
1799
1800 /*
1801 * btrfs_page_mkwrite() is not allowed to change the file size as it gets
1802 * called from a page fault handler when a page is first dirtied. Hence we must
1803 * be careful to check for EOF conditions here. We set the page up correctly
1804 * for a written page which means we get ENOSPC checking when writing into
1805 * holes and correct delalloc and unwritten extent mapping on filesystems that
1806 * support these features.
1807 *
1808 * We are not allowed to take the i_mutex here so we have to play games to
1809 * protect against truncate races as the page could now be beyond EOF. Because
1810 * truncate_setsize() writes the inode size before removing pages, once we have
1811 * the page lock we can determine safely if the page is beyond EOF. If it is not
1812 * beyond EOF, then the page is guaranteed safe against truncation until we
1813 * unlock the page.
1814 */
btrfs_page_mkwrite(struct vm_fault * vmf)1815 static vm_fault_t btrfs_page_mkwrite(struct vm_fault *vmf)
1816 {
1817 struct page *page = vmf->page;
1818 struct folio *folio = page_folio(page);
1819 struct btrfs_inode *inode = BTRFS_I(file_inode(vmf->vma->vm_file));
1820 struct btrfs_fs_info *fs_info = inode->root->fs_info;
1821 struct extent_io_tree *io_tree = &inode->io_tree;
1822 struct btrfs_ordered_extent *ordered;
1823 struct extent_state *cached_state = NULL;
1824 struct extent_changeset *data_reserved = NULL;
1825 unsigned long zero_start;
1826 loff_t size;
1827 size_t fsize = folio_size(folio);
1828 int ret;
1829 bool only_release_metadata = false;
1830 u64 reserved_space;
1831 u64 page_start;
1832 u64 page_end;
1833 u64 end;
1834
1835 reserved_space = fsize;
1836
1837 sb_start_pagefault(inode->vfs_inode.i_sb);
1838 page_start = folio_pos(folio);
1839 page_end = page_start + folio_size(folio) - 1;
1840 end = page_end;
1841
1842 /*
1843 * Reserving delalloc space after obtaining the page lock can lead to
1844 * deadlock. For example, if a dirty page is locked by this function
1845 * and the call to btrfs_delalloc_reserve_space() ends up triggering
1846 * dirty page write out, then the btrfs_writepages() function could
1847 * end up waiting indefinitely to get a lock on the page currently
1848 * being processed by btrfs_page_mkwrite() function.
1849 */
1850 ret = btrfs_check_data_free_space(inode, &data_reserved, page_start,
1851 reserved_space, false);
1852 if (ret < 0) {
1853 size_t write_bytes = reserved_space;
1854
1855 if (btrfs_check_nocow_lock(inode, page_start, &write_bytes, false) <= 0)
1856 goto out_noreserve;
1857
1858 only_release_metadata = true;
1859
1860 /*
1861 * Can't write the whole range, there may be shared extents or
1862 * holes in the range, bail out with @only_release_metadata set
1863 * to true so that we unlock the nocow lock before returning the
1864 * error.
1865 */
1866 if (write_bytes < reserved_space)
1867 goto out_noreserve;
1868 }
1869 ret = btrfs_delalloc_reserve_metadata(inode, reserved_space,
1870 reserved_space, false);
1871 if (ret < 0) {
1872 if (!only_release_metadata)
1873 btrfs_free_reserved_data_space(inode, data_reserved,
1874 page_start, reserved_space);
1875 goto out_noreserve;
1876 }
1877
1878 ret = file_update_time(vmf->vma->vm_file);
1879 if (ret < 0)
1880 goto out;
1881 again:
1882 down_read(&inode->i_mmap_lock);
1883 folio_lock(folio);
1884 size = i_size_read(&inode->vfs_inode);
1885
1886 if ((folio->mapping != inode->vfs_inode.i_mapping) ||
1887 (page_start >= size)) {
1888 /* Page got truncated out from underneath us. */
1889 goto out_unlock;
1890 }
1891 folio_wait_writeback(folio);
1892
1893 btrfs_lock_extent(io_tree, page_start, page_end, &cached_state);
1894 ret = set_folio_extent_mapped(folio);
1895 if (ret < 0) {
1896 btrfs_unlock_extent(io_tree, page_start, page_end, &cached_state);
1897 goto out_unlock;
1898 }
1899
1900 /*
1901 * We can't set the delalloc bits if there are pending ordered
1902 * extents. Drop our locks and wait for them to finish.
1903 */
1904 ordered = btrfs_lookup_ordered_range(inode, page_start, fsize);
1905 if (ordered) {
1906 btrfs_unlock_extent(io_tree, page_start, page_end, &cached_state);
1907 folio_unlock(folio);
1908 up_read(&inode->i_mmap_lock);
1909 btrfs_start_ordered_extent(ordered);
1910 btrfs_put_ordered_extent(ordered);
1911 goto again;
1912 }
1913
1914 if (folio_contains(folio, (size - 1) >> PAGE_SHIFT)) {
1915 reserved_space = round_up(size - page_start, fs_info->sectorsize);
1916 if (reserved_space < fsize) {
1917 const u64 to_free = fsize - reserved_space;
1918
1919 end = page_start + reserved_space - 1;
1920 if (only_release_metadata)
1921 btrfs_delalloc_release_metadata(inode, to_free, true);
1922 else
1923 btrfs_delalloc_release_space(inode, data_reserved,
1924 end + 1, to_free, true);
1925 }
1926 }
1927
1928 ret = btrfs_reset_extent_delalloc(inode, page_start, end, 0, &cached_state);
1929 if (ret < 0) {
1930 btrfs_unlock_extent(io_tree, page_start, page_end, &cached_state);
1931 goto out_unlock;
1932 }
1933
1934 /* Page is wholly or partially inside EOF. */
1935 if (page_start + folio_size(folio) > size)
1936 zero_start = offset_in_folio(folio, size);
1937 else
1938 zero_start = fsize;
1939
1940 if (zero_start != fsize)
1941 folio_zero_range(folio, zero_start, folio_size(folio) - zero_start);
1942
1943 btrfs_folio_set_dirty(fs_info, folio, page_start, end + 1 - page_start);
1944 btrfs_folio_set_uptodate(fs_info, folio, page_start, end + 1 - page_start);
1945
1946 btrfs_set_inode_last_sub_trans(inode);
1947
1948 if (only_release_metadata)
1949 btrfs_set_extent_bit(io_tree, page_start, end, EXTENT_NORESERVE,
1950 &cached_state);
1951
1952 btrfs_unlock_extent(io_tree, page_start, page_end, &cached_state);
1953 up_read(&inode->i_mmap_lock);
1954
1955 btrfs_delalloc_release_extents(inode, fsize);
1956 if (only_release_metadata)
1957 btrfs_check_nocow_unlock(inode);
1958 sb_end_pagefault(inode->vfs_inode.i_sb);
1959 extent_changeset_free(data_reserved);
1960 return VM_FAULT_LOCKED;
1961
1962 out_unlock:
1963 folio_unlock(folio);
1964 up_read(&inode->i_mmap_lock);
1965 out:
1966 btrfs_delalloc_release_extents(inode, fsize);
1967 if (only_release_metadata)
1968 btrfs_delalloc_release_metadata(inode, reserved_space, true);
1969 else
1970 btrfs_delalloc_release_space(inode, data_reserved, page_start,
1971 reserved_space, true);
1972 out_noreserve:
1973 if (only_release_metadata)
1974 btrfs_check_nocow_unlock(inode);
1975
1976 sb_end_pagefault(inode->vfs_inode.i_sb);
1977
1978 extent_changeset_free(data_reserved);
1979
1980 if (ret < 0)
1981 return vmf_error(ret);
1982
1983 /* Make the VM retry the fault. */
1984 return VM_FAULT_NOPAGE;
1985 }
1986
1987 static const struct vm_operations_struct btrfs_file_vm_ops = {
1988 .fault = filemap_fault,
1989 .map_pages = filemap_map_pages,
1990 .page_mkwrite = btrfs_page_mkwrite,
1991 };
1992
btrfs_file_mmap_prepare(struct vm_area_desc * desc)1993 static int btrfs_file_mmap_prepare(struct vm_area_desc *desc)
1994 {
1995 struct file *filp = desc->file;
1996 struct address_space *mapping = filp->f_mapping;
1997
1998 if (btrfs_is_shutdown(inode_to_fs_info(file_inode(filp))))
1999 return -EIO;
2000 if (!mapping->a_ops->read_folio)
2001 return -ENOEXEC;
2002
2003 file_accessed(filp);
2004 desc->vm_ops = &btrfs_file_vm_ops;
2005
2006 return 0;
2007 }
2008
hole_mergeable(struct btrfs_inode * inode,struct extent_buffer * leaf,int slot,u64 start,u64 end)2009 static bool hole_mergeable(struct btrfs_inode *inode, struct extent_buffer *leaf,
2010 int slot, u64 start, u64 end)
2011 {
2012 struct btrfs_file_extent_item *fi;
2013 struct btrfs_key key;
2014
2015 if (slot < 0 || slot >= btrfs_header_nritems(leaf))
2016 return false;
2017
2018 btrfs_item_key_to_cpu(leaf, &key, slot);
2019 if (key.objectid != btrfs_ino(inode) ||
2020 key.type != BTRFS_EXTENT_DATA_KEY)
2021 return false;
2022
2023 fi = btrfs_item_ptr(leaf, slot, struct btrfs_file_extent_item);
2024
2025 if (btrfs_file_extent_type(leaf, fi) != BTRFS_FILE_EXTENT_REG)
2026 return false;
2027
2028 if (btrfs_file_extent_disk_bytenr(leaf, fi))
2029 return false;
2030
2031 if (key.offset == end)
2032 return true;
2033 if (key.offset + btrfs_file_extent_num_bytes(leaf, fi) == start)
2034 return true;
2035 return false;
2036 }
2037
fill_holes(struct btrfs_trans_handle * trans,struct btrfs_inode * inode,struct btrfs_path * path,u64 offset,u64 end)2038 static int fill_holes(struct btrfs_trans_handle *trans,
2039 struct btrfs_inode *inode,
2040 struct btrfs_path *path, u64 offset, u64 end)
2041 {
2042 struct btrfs_fs_info *fs_info = trans->fs_info;
2043 struct btrfs_root *root = inode->root;
2044 struct extent_buffer *leaf;
2045 struct btrfs_file_extent_item *fi;
2046 struct extent_map *hole_em;
2047 struct btrfs_key key;
2048 int modify_slot = -1;
2049 int del_slot = -1;
2050 bool update_offset = false;
2051 u64 num_bytes = 0;
2052 int ret;
2053
2054 if (btrfs_fs_incompat(fs_info, NO_HOLES))
2055 goto out;
2056
2057 key.objectid = btrfs_ino(inode);
2058 key.type = BTRFS_EXTENT_DATA_KEY;
2059 key.offset = offset;
2060
2061 ret = btrfs_search_slot(trans, root, &key, path, -1, 1);
2062 if (ret <= 0) {
2063 /*
2064 * We should have dropped this offset, so if we find it then
2065 * something has gone horribly wrong.
2066 */
2067 if (ret == 0)
2068 ret = -EINVAL;
2069 return ret;
2070 }
2071
2072 leaf = path->nodes[0];
2073 if (hole_mergeable(inode, leaf, path->slots[0] - 1, offset, end)) {
2074 fi = btrfs_item_ptr(leaf, path->slots[0] - 1,
2075 struct btrfs_file_extent_item);
2076 num_bytes = btrfs_file_extent_num_bytes(leaf, fi) +
2077 end - offset;
2078 modify_slot = path->slots[0] - 1;
2079 }
2080 if (hole_mergeable(inode, leaf, path->slots[0], offset, end)) {
2081 fi = btrfs_item_ptr(leaf, path->slots[0],
2082 struct btrfs_file_extent_item);
2083 if (modify_slot != -1) {
2084 num_bytes += btrfs_file_extent_num_bytes(leaf, fi);
2085 del_slot = path->slots[0];
2086 } else {
2087 num_bytes = btrfs_file_extent_num_bytes(leaf, fi) +
2088 end - offset;
2089 modify_slot = path->slots[0];
2090 update_offset = true;
2091 }
2092 }
2093 if (modify_slot >= 0) {
2094 fi = btrfs_item_ptr(leaf, modify_slot,
2095 struct btrfs_file_extent_item);
2096 btrfs_set_file_extent_num_bytes(leaf, fi, num_bytes);
2097 btrfs_set_file_extent_ram_bytes(leaf, fi, num_bytes);
2098 if (update_offset) {
2099 key.offset = offset;
2100 btrfs_set_item_key_safe(trans, path, &key);
2101 }
2102 btrfs_set_file_extent_offset(leaf, fi, 0);
2103 btrfs_set_file_extent_generation(leaf, fi, trans->transid);
2104 if (del_slot >= 0) {
2105 ret = btrfs_del_items(trans, root, path, del_slot, 1);
2106 if (ret) {
2107 btrfs_abort_transaction(trans, ret);
2108 btrfs_release_path(path);
2109 return ret;
2110 }
2111 }
2112 goto out;
2113 }
2114 btrfs_release_path(path);
2115
2116 ret = btrfs_insert_hole_extent(trans, root, btrfs_ino(inode), offset,
2117 end - offset);
2118 if (ret)
2119 return ret;
2120
2121 out:
2122 btrfs_release_path(path);
2123
2124 hole_em = btrfs_alloc_extent_map();
2125 if (!hole_em) {
2126 btrfs_drop_extent_map_range(inode, offset, end - 1, false);
2127 btrfs_set_inode_full_sync(inode);
2128 } else {
2129 hole_em->start = offset;
2130 hole_em->len = end - offset;
2131 hole_em->ram_bytes = hole_em->len;
2132
2133 hole_em->disk_bytenr = EXTENT_MAP_HOLE;
2134 hole_em->disk_num_bytes = 0;
2135 hole_em->generation = trans->transid;
2136
2137 ret = btrfs_replace_extent_map_range(inode, hole_em, true);
2138 btrfs_free_extent_map(hole_em);
2139 if (ret)
2140 btrfs_set_inode_full_sync(inode);
2141 }
2142
2143 return 0;
2144 }
2145
2146 /*
2147 * Find a hole extent on given inode and change start/len to the end of hole
2148 * extent.(hole/vacuum extent whose em->start <= start &&
2149 * em->start + em->len > start)
2150 * When a hole extent is found, return 1 and modify start/len.
2151 */
find_first_non_hole(struct btrfs_inode * inode,u64 * start,u64 * len)2152 static int find_first_non_hole(struct btrfs_inode *inode, u64 *start, u64 *len)
2153 {
2154 struct btrfs_fs_info *fs_info = inode->root->fs_info;
2155 struct extent_map *em;
2156 int ret = 0;
2157
2158 em = btrfs_get_extent(inode, NULL,
2159 round_down(*start, fs_info->sectorsize),
2160 round_up(*len, fs_info->sectorsize));
2161 if (IS_ERR(em))
2162 return PTR_ERR(em);
2163
2164 /* Hole or vacuum extent(only exists in no-hole mode) */
2165 if (em->disk_bytenr == EXTENT_MAP_HOLE) {
2166 const u64 em_end = btrfs_extent_map_end(em);
2167
2168 ret = 1;
2169 *len = (em_end > *start + *len) ? 0 : (*start + *len - em_end);
2170 *start = em_end;
2171 }
2172 btrfs_free_extent_map(em);
2173 return ret;
2174 }
2175
2176 /*
2177 * Check if there is no folio in the range.
2178 *
2179 * We cannot utilize filemap_range_has_page() in a filemap with large folios
2180 * as we can hit the following false positive:
2181 *
2182 * start end
2183 * | |
2184 * |//|//|//|//| | | | | | | | |//|//|
2185 * \ / \ /
2186 * Folio A Folio B
2187 *
2188 * That large folio A and B cover the start and end indexes.
2189 * In that case filemap_range_has_page() will always return true, but the above
2190 * case is fine for btrfs_punch_hole_lock_range() usage.
2191 *
2192 * So here we only ensure that no other folios is in the range, excluding the
2193 * head/tail large folio.
2194 */
check_range_has_page(struct inode * inode,u64 start,u64 end)2195 static bool check_range_has_page(struct inode *inode, u64 start, u64 end)
2196 {
2197 struct folio_batch fbatch;
2198 bool ret = false;
2199 /*
2200 * For subpage case, if the range is not at page boundary, we could
2201 * have pages at the leading/tailing part of the range.
2202 * This could lead to dead loop since filemap_range_has_page()
2203 * will always return true.
2204 * So here we need to do extra page alignment for
2205 * filemap_range_has_page().
2206 *
2207 * And do not decrease page_lockend right now, as it can be 0.
2208 */
2209 const u64 page_lockstart = round_up(start, PAGE_SIZE);
2210 const u64 page_lockend = round_down(end + 1, PAGE_SIZE);
2211 const pgoff_t start_index = page_lockstart >> PAGE_SHIFT;
2212 const pgoff_t end_index = (page_lockend - 1) >> PAGE_SHIFT;
2213 pgoff_t tmp = start_index;
2214 int found_folios;
2215
2216 /* The same page or adjacent pages. */
2217 if (page_lockend <= page_lockstart)
2218 return false;
2219
2220 folio_batch_init(&fbatch);
2221 found_folios = filemap_get_folios(inode->i_mapping, &tmp, end_index, &fbatch);
2222 for (int i = 0; i < found_folios; i++) {
2223 struct folio *folio = fbatch.folios[i];
2224
2225 /* A large folio begins before the start. Not a target. */
2226 if (folio->index < start_index)
2227 continue;
2228 /* A large folio extends beyond the end. Not a target. */
2229 if (folio_next_index(folio) > end_index)
2230 continue;
2231 /* A folio doesn't cover the head/tail index. Found a target. */
2232 ret = true;
2233 break;
2234 }
2235 folio_batch_release(&fbatch);
2236 return ret;
2237 }
2238
btrfs_punch_hole_lock_range(struct inode * inode,const u64 lockstart,const u64 lockend,struct extent_state ** cached_state)2239 static void btrfs_punch_hole_lock_range(struct inode *inode,
2240 const u64 lockstart, const u64 lockend,
2241 struct extent_state **cached_state)
2242 {
2243 while (1) {
2244 truncate_pagecache_range(inode, lockstart, lockend);
2245
2246 btrfs_lock_extent(&BTRFS_I(inode)->io_tree, lockstart, lockend,
2247 cached_state);
2248 /*
2249 * We can't have ordered extents in the range, nor dirty/writeback
2250 * pages, because we have locked the inode's VFS lock in exclusive
2251 * mode, we have locked the inode's i_mmap_lock in exclusive mode,
2252 * we have flushed all delalloc in the range and we have waited
2253 * for any ordered extents in the range to complete.
2254 * We can race with anyone reading pages from this range, so after
2255 * locking the range check if we have pages in the range, and if
2256 * we do, unlock the range and retry.
2257 */
2258 if (!check_range_has_page(inode, lockstart, lockend))
2259 break;
2260
2261 btrfs_unlock_extent(&BTRFS_I(inode)->io_tree, lockstart, lockend,
2262 cached_state);
2263 }
2264
2265 btrfs_assert_inode_range_clean(BTRFS_I(inode), lockstart, lockend);
2266 }
2267
btrfs_insert_replace_extent(struct btrfs_trans_handle * trans,struct btrfs_inode * inode,struct btrfs_path * path,struct btrfs_replace_extent_info * extent_info,const u64 replace_len,const u64 bytes_to_drop)2268 static int btrfs_insert_replace_extent(struct btrfs_trans_handle *trans,
2269 struct btrfs_inode *inode,
2270 struct btrfs_path *path,
2271 struct btrfs_replace_extent_info *extent_info,
2272 const u64 replace_len,
2273 const u64 bytes_to_drop)
2274 {
2275 struct btrfs_fs_info *fs_info = trans->fs_info;
2276 struct btrfs_root *root = inode->root;
2277 struct btrfs_file_extent_item *extent;
2278 struct extent_buffer *leaf;
2279 struct btrfs_key key;
2280 int slot;
2281 int ret;
2282
2283 if (replace_len == 0)
2284 return 0;
2285
2286 if (extent_info->disk_offset == 0 &&
2287 btrfs_fs_incompat(fs_info, NO_HOLES)) {
2288 btrfs_update_inode_bytes(inode, 0, bytes_to_drop);
2289 return 0;
2290 }
2291
2292 key.objectid = btrfs_ino(inode);
2293 key.type = BTRFS_EXTENT_DATA_KEY;
2294 key.offset = extent_info->file_offset;
2295 ret = btrfs_insert_empty_item(trans, root, path, &key,
2296 sizeof(struct btrfs_file_extent_item));
2297 if (ret)
2298 return ret;
2299 leaf = path->nodes[0];
2300 slot = path->slots[0];
2301 write_extent_buffer(leaf, extent_info->extent_buf,
2302 btrfs_item_ptr_offset(leaf, slot),
2303 sizeof(struct btrfs_file_extent_item));
2304 extent = btrfs_item_ptr(leaf, slot, struct btrfs_file_extent_item);
2305 ASSERT(btrfs_file_extent_type(leaf, extent) != BTRFS_FILE_EXTENT_INLINE);
2306 btrfs_set_file_extent_offset(leaf, extent, extent_info->data_offset);
2307 btrfs_set_file_extent_num_bytes(leaf, extent, replace_len);
2308 if (extent_info->is_new_extent)
2309 btrfs_set_file_extent_generation(leaf, extent, trans->transid);
2310 btrfs_release_path(path);
2311
2312 ret = btrfs_inode_set_file_extent_range(inode, extent_info->file_offset,
2313 replace_len);
2314 if (ret)
2315 return ret;
2316
2317 /* If it's a hole, nothing more needs to be done. */
2318 if (extent_info->disk_offset == 0) {
2319 btrfs_update_inode_bytes(inode, 0, bytes_to_drop);
2320 return 0;
2321 }
2322
2323 btrfs_update_inode_bytes(inode, replace_len, bytes_to_drop);
2324
2325 if (extent_info->is_new_extent && extent_info->insertions == 0) {
2326 key.objectid = extent_info->disk_offset;
2327 key.type = BTRFS_EXTENT_ITEM_KEY;
2328 key.offset = extent_info->disk_len;
2329 ret = btrfs_alloc_reserved_file_extent(trans, root,
2330 btrfs_ino(inode),
2331 extent_info->file_offset,
2332 extent_info->qgroup_reserved,
2333 &key);
2334 } else {
2335 struct btrfs_ref ref = {
2336 .action = BTRFS_ADD_DELAYED_REF,
2337 .bytenr = extent_info->disk_offset,
2338 .num_bytes = extent_info->disk_len,
2339 .owning_root = btrfs_root_id(root),
2340 .ref_root = btrfs_root_id(root),
2341 };
2342 u64 ref_offset;
2343
2344 ref_offset = extent_info->file_offset - extent_info->data_offset;
2345 btrfs_init_data_ref(&ref, btrfs_ino(inode), ref_offset, 0, false);
2346 ret = btrfs_inc_extent_ref(trans, &ref);
2347 }
2348
2349 extent_info->insertions++;
2350
2351 return ret;
2352 }
2353
2354 /*
2355 * The respective range must have been previously locked, as well as the inode.
2356 * The end offset is inclusive (last byte of the range).
2357 * @extent_info is NULL for fallocate's hole punching and non-NULL when replacing
2358 * the file range with an extent.
2359 * When not punching a hole, we don't want to end up in a state where we dropped
2360 * extents without inserting a new one, so we must abort the transaction to avoid
2361 * a corruption.
2362 */
btrfs_replace_file_extents(struct btrfs_inode * inode,struct btrfs_path * path,const u64 start,const u64 end,struct btrfs_replace_extent_info * extent_info,struct btrfs_trans_handle ** trans_out)2363 int btrfs_replace_file_extents(struct btrfs_inode *inode,
2364 struct btrfs_path *path, const u64 start,
2365 const u64 end,
2366 struct btrfs_replace_extent_info *extent_info,
2367 struct btrfs_trans_handle **trans_out)
2368 {
2369 struct btrfs_drop_extents_args drop_args = { 0 };
2370 struct btrfs_root *root = inode->root;
2371 struct btrfs_fs_info *fs_info = root->fs_info;
2372 const u64 min_size = btrfs_calc_insert_metadata_size(fs_info, 1);
2373 u64 ino_size = round_up(inode->vfs_inode.i_size, fs_info->sectorsize);
2374 struct btrfs_trans_handle *trans = NULL;
2375 struct btrfs_block_rsv rsv;
2376 unsigned int rsv_count;
2377 u64 cur_offset;
2378 u64 len = end - start;
2379 int ret = 0;
2380
2381 if (end <= start)
2382 return -EINVAL;
2383
2384 btrfs_init_metadata_block_rsv(fs_info, &rsv, BTRFS_BLOCK_RSV_TEMP);
2385 rsv.size = min_size;
2386 rsv.failfast = true;
2387
2388 /*
2389 * 1 - update the inode
2390 * 1 - removing the extents in the range
2391 * 1 - adding the hole extent if no_holes isn't set or if we are
2392 * replacing the range with a new extent
2393 */
2394 if (!btrfs_fs_incompat(fs_info, NO_HOLES) || extent_info)
2395 rsv_count = 3;
2396 else
2397 rsv_count = 2;
2398
2399 trans = btrfs_start_transaction(root, rsv_count);
2400 if (IS_ERR(trans)) {
2401 ret = PTR_ERR(trans);
2402 trans = NULL;
2403 goto out_release;
2404 }
2405
2406 ret = btrfs_block_rsv_migrate(&fs_info->trans_block_rsv, &rsv,
2407 min_size, false);
2408 if (WARN_ON(ret))
2409 goto out_trans;
2410 trans->block_rsv = &rsv;
2411
2412 cur_offset = start;
2413 drop_args.path = path;
2414 drop_args.end = end + 1;
2415 drop_args.drop_cache = true;
2416 while (cur_offset < end) {
2417 drop_args.start = cur_offset;
2418 ret = btrfs_drop_extents(trans, root, inode, &drop_args);
2419 /* If we are punching a hole decrement the inode's byte count */
2420 if (!extent_info)
2421 btrfs_update_inode_bytes(inode, 0,
2422 drop_args.bytes_found);
2423 if (ret != -ENOSPC) {
2424 /*
2425 * The only time we don't want to abort is if we are
2426 * attempting to clone a partial inline extent, in which
2427 * case we'll get EOPNOTSUPP. However if we aren't
2428 * clone we need to abort no matter what, because if we
2429 * got EOPNOTSUPP via prealloc then we messed up and
2430 * need to abort.
2431 */
2432 if (unlikely(ret &&
2433 (ret != -EOPNOTSUPP ||
2434 (extent_info && extent_info->is_new_extent))))
2435 btrfs_abort_transaction(trans, ret);
2436 break;
2437 }
2438
2439 trans->block_rsv = &fs_info->trans_block_rsv;
2440
2441 if (!extent_info && cur_offset < drop_args.drop_end &&
2442 cur_offset < ino_size) {
2443 ret = fill_holes(trans, inode, path, cur_offset,
2444 drop_args.drop_end);
2445 if (unlikely(ret)) {
2446 /*
2447 * If we failed then we didn't insert our hole
2448 * entries for the area we dropped, so now the
2449 * fs is corrupted, so we must abort the
2450 * transaction.
2451 */
2452 btrfs_abort_transaction(trans, ret);
2453 break;
2454 }
2455 } else if (!extent_info && cur_offset < drop_args.drop_end) {
2456 /*
2457 * We are past the i_size here, but since we didn't
2458 * insert holes we need to clear the mapped area so we
2459 * know to not set disk_i_size in this area until a new
2460 * file extent is inserted here.
2461 */
2462 ret = btrfs_inode_clear_file_extent_range(inode,
2463 cur_offset,
2464 drop_args.drop_end - cur_offset);
2465 if (unlikely(ret)) {
2466 /*
2467 * We couldn't clear our area, so we could
2468 * presumably adjust up and corrupt the fs, so
2469 * we need to abort.
2470 */
2471 btrfs_abort_transaction(trans, ret);
2472 break;
2473 }
2474 }
2475
2476 if (extent_info &&
2477 drop_args.drop_end > extent_info->file_offset) {
2478 u64 replace_len = drop_args.drop_end -
2479 extent_info->file_offset;
2480
2481 ret = btrfs_insert_replace_extent(trans, inode, path,
2482 extent_info, replace_len,
2483 drop_args.bytes_found);
2484 if (unlikely(ret)) {
2485 btrfs_abort_transaction(trans, ret);
2486 break;
2487 }
2488 extent_info->data_len -= replace_len;
2489 extent_info->data_offset += replace_len;
2490 extent_info->file_offset += replace_len;
2491 }
2492
2493 /*
2494 * We are releasing our handle on the transaction, balance the
2495 * dirty pages of the btree inode and flush delayed items, and
2496 * then get a new transaction handle, which may now point to a
2497 * new transaction in case someone else may have committed the
2498 * transaction we used to replace/drop file extent items. So
2499 * bump the inode's iversion and update mtime and ctime except
2500 * if we are called from a dedupe context. This is because a
2501 * power failure/crash may happen after the transaction is
2502 * committed and before we finish replacing/dropping all the
2503 * file extent items we need.
2504 */
2505 inode_inc_iversion(&inode->vfs_inode);
2506
2507 if (!extent_info || extent_info->update_times)
2508 inode_set_mtime_to_ts(&inode->vfs_inode,
2509 inode_set_ctime_current(&inode->vfs_inode));
2510
2511 ret = btrfs_update_inode(trans, inode);
2512 if (unlikely(ret)) {
2513 btrfs_abort_transaction(trans, ret);
2514 break;
2515 }
2516
2517 btrfs_end_transaction(trans);
2518 btrfs_btree_balance_dirty(fs_info);
2519
2520 trans = btrfs_start_transaction(root, rsv_count);
2521 if (IS_ERR(trans)) {
2522 ret = PTR_ERR(trans);
2523 trans = NULL;
2524 break;
2525 }
2526
2527 ret = btrfs_block_rsv_migrate(&fs_info->trans_block_rsv,
2528 &rsv, min_size, false);
2529 if (WARN_ON(ret))
2530 break;
2531 trans->block_rsv = &rsv;
2532
2533 cur_offset = drop_args.drop_end;
2534 len = end - cur_offset;
2535 if (!extent_info && len) {
2536 ret = find_first_non_hole(inode, &cur_offset, &len);
2537 if (unlikely(ret < 0))
2538 break;
2539 if (ret && !len) {
2540 ret = 0;
2541 break;
2542 }
2543 }
2544 }
2545
2546 /*
2547 * If we were cloning, force the next fsync to be a full one since we
2548 * we replaced (or just dropped in the case of cloning holes when
2549 * NO_HOLES is enabled) file extent items and did not setup new extent
2550 * maps for the replacement extents (or holes).
2551 */
2552 if (extent_info && !extent_info->is_new_extent)
2553 btrfs_set_inode_full_sync(inode);
2554
2555 if (ret)
2556 goto out_trans;
2557
2558 trans->block_rsv = &fs_info->trans_block_rsv;
2559 /*
2560 * If we are using the NO_HOLES feature we might have had already an
2561 * hole that overlaps a part of the region [lockstart, lockend] and
2562 * ends at (or beyond) lockend. Since we have no file extent items to
2563 * represent holes, drop_end can be less than lockend and so we must
2564 * make sure we have an extent map representing the existing hole (the
2565 * call to __btrfs_drop_extents() might have dropped the existing extent
2566 * map representing the existing hole), otherwise the fast fsync path
2567 * will not record the existence of the hole region
2568 * [existing_hole_start, lockend].
2569 */
2570 if (drop_args.drop_end <= end)
2571 drop_args.drop_end = end + 1;
2572 /*
2573 * Don't insert file hole extent item if it's for a range beyond eof
2574 * (because it's useless) or if it represents a 0 bytes range (when
2575 * cur_offset == drop_end).
2576 */
2577 if (!extent_info && cur_offset < ino_size &&
2578 cur_offset < drop_args.drop_end) {
2579 ret = fill_holes(trans, inode, path, cur_offset,
2580 drop_args.drop_end);
2581 if (unlikely(ret)) {
2582 /* Same comment as above. */
2583 btrfs_abort_transaction(trans, ret);
2584 goto out_trans;
2585 }
2586 } else if (!extent_info && cur_offset < drop_args.drop_end) {
2587 /* See the comment in the loop above for the reasoning here. */
2588 ret = btrfs_inode_clear_file_extent_range(inode, cur_offset,
2589 drop_args.drop_end - cur_offset);
2590 if (unlikely(ret)) {
2591 btrfs_abort_transaction(trans, ret);
2592 goto out_trans;
2593 }
2594
2595 }
2596 if (extent_info) {
2597 ret = btrfs_insert_replace_extent(trans, inode, path,
2598 extent_info, extent_info->data_len,
2599 drop_args.bytes_found);
2600 if (unlikely(ret)) {
2601 btrfs_abort_transaction(trans, ret);
2602 goto out_trans;
2603 }
2604 }
2605
2606 out_trans:
2607 if (!trans)
2608 goto out_release;
2609
2610 trans->block_rsv = &fs_info->trans_block_rsv;
2611 if (ret)
2612 btrfs_end_transaction(trans);
2613 else
2614 *trans_out = trans;
2615 out_release:
2616 btrfs_block_rsv_release(fs_info, &rsv, (u64)-1, NULL);
2617 return ret;
2618 }
2619
btrfs_punch_hole(struct file * file,loff_t offset,loff_t len)2620 static int btrfs_punch_hole(struct file *file, loff_t offset, loff_t len)
2621 {
2622 struct inode *inode = file_inode(file);
2623 struct btrfs_fs_info *fs_info = inode_to_fs_info(inode);
2624 struct btrfs_root *root = BTRFS_I(inode)->root;
2625 struct extent_state *cached_state = NULL;
2626 struct btrfs_path *path;
2627 struct btrfs_trans_handle *trans = NULL;
2628 u64 lockstart;
2629 u64 lockend;
2630 u64 tail_start;
2631 u64 tail_len;
2632 const u64 orig_start = offset;
2633 const u64 orig_end = offset + len - 1;
2634 int ret = 0;
2635 bool same_block;
2636 u64 ino_size;
2637 bool truncated_block = false;
2638 bool updated_inode = false;
2639
2640 btrfs_inode_lock(BTRFS_I(inode), BTRFS_ILOCK_MMAP);
2641
2642 ret = btrfs_wait_ordered_range(BTRFS_I(inode), offset, len);
2643 if (ret)
2644 goto out_only_mutex;
2645
2646 ino_size = round_up(inode->i_size, fs_info->sectorsize);
2647 ret = find_first_non_hole(BTRFS_I(inode), &offset, &len);
2648 if (ret < 0)
2649 goto out_only_mutex;
2650 if (ret && !len) {
2651 /* Already in a large hole */
2652 ret = 0;
2653 goto out_only_mutex;
2654 }
2655
2656 ret = file_modified(file);
2657 if (ret)
2658 goto out_only_mutex;
2659
2660 lockstart = round_up(offset, fs_info->sectorsize);
2661 lockend = round_down(offset + len, fs_info->sectorsize) - 1;
2662 same_block = (offset >> fs_info->sectorsize_bits) ==
2663 ((offset + len - 1) >> fs_info->sectorsize_bits);
2664 /*
2665 * Only do this if we are in the same block and we aren't doing the
2666 * entire block.
2667 */
2668 if (same_block && len < fs_info->sectorsize) {
2669 if (offset < ino_size) {
2670 truncated_block = true;
2671 ret = btrfs_truncate_block(BTRFS_I(inode), offset + len - 1,
2672 orig_start, orig_end);
2673 } else {
2674 ret = 0;
2675 }
2676 goto out_only_mutex;
2677 }
2678
2679 /* zero back part of the first block */
2680 if (offset < ino_size) {
2681 truncated_block = true;
2682 ret = btrfs_truncate_block(BTRFS_I(inode), offset, orig_start, orig_end);
2683 if (ret) {
2684 btrfs_inode_unlock(BTRFS_I(inode), BTRFS_ILOCK_MMAP);
2685 return ret;
2686 }
2687 }
2688
2689 /* Check the aligned pages after the first unaligned page,
2690 * if offset != orig_start, which means the first unaligned page
2691 * including several following pages are already in holes,
2692 * the extra check can be skipped */
2693 if (offset == orig_start) {
2694 /* after truncate page, check hole again */
2695 len = offset + len - lockstart;
2696 offset = lockstart;
2697 ret = find_first_non_hole(BTRFS_I(inode), &offset, &len);
2698 if (ret < 0)
2699 goto out_only_mutex;
2700 if (ret && !len) {
2701 ret = 0;
2702 goto out_only_mutex;
2703 }
2704 lockstart = offset;
2705 }
2706
2707 /* Check the tail unaligned part is in a hole */
2708 tail_start = lockend + 1;
2709 tail_len = offset + len - tail_start;
2710 if (tail_len) {
2711 ret = find_first_non_hole(BTRFS_I(inode), &tail_start, &tail_len);
2712 if (unlikely(ret < 0))
2713 goto out_only_mutex;
2714 if (!ret) {
2715 /* zero the front end of the last page */
2716 if (tail_start + tail_len < ino_size) {
2717 truncated_block = true;
2718 ret = btrfs_truncate_block(BTRFS_I(inode),
2719 tail_start + tail_len - 1,
2720 orig_start, orig_end);
2721 if (ret)
2722 goto out_only_mutex;
2723 }
2724 }
2725 }
2726
2727 if (lockend < lockstart) {
2728 ret = 0;
2729 goto out_only_mutex;
2730 }
2731
2732 btrfs_punch_hole_lock_range(inode, lockstart, lockend, &cached_state);
2733
2734 path = btrfs_alloc_path();
2735 if (!path) {
2736 ret = -ENOMEM;
2737 goto out;
2738 }
2739
2740 ret = btrfs_replace_file_extents(BTRFS_I(inode), path, lockstart,
2741 lockend, NULL, &trans);
2742 btrfs_free_path(path);
2743 if (ret)
2744 goto out;
2745
2746 ASSERT(trans != NULL);
2747 inode_inc_iversion(inode);
2748 inode_set_mtime_to_ts(inode, inode_set_ctime_current(inode));
2749 ret = btrfs_update_inode(trans, BTRFS_I(inode));
2750 updated_inode = true;
2751 btrfs_end_transaction(trans);
2752 btrfs_btree_balance_dirty(fs_info);
2753 out:
2754 btrfs_unlock_extent(&BTRFS_I(inode)->io_tree, lockstart, lockend,
2755 &cached_state);
2756 out_only_mutex:
2757 if (!updated_inode && truncated_block && !ret) {
2758 /*
2759 * If we only end up zeroing part of a page, we still need to
2760 * update the inode item, so that all the time fields are
2761 * updated as well as the necessary btrfs inode in memory fields
2762 * for detecting, at fsync time, if the inode isn't yet in the
2763 * log tree or it's there but not up to date.
2764 */
2765 struct timespec64 now = inode_set_ctime_current(inode);
2766
2767 inode_inc_iversion(inode);
2768 inode_set_mtime_to_ts(inode, now);
2769 trans = btrfs_start_transaction(root, 1);
2770 if (IS_ERR(trans)) {
2771 ret = PTR_ERR(trans);
2772 } else {
2773 int ret2;
2774
2775 ret = btrfs_update_inode(trans, BTRFS_I(inode));
2776 ret2 = btrfs_end_transaction(trans);
2777 if (!ret)
2778 ret = ret2;
2779 }
2780 }
2781 btrfs_inode_unlock(BTRFS_I(inode), BTRFS_ILOCK_MMAP);
2782 return ret;
2783 }
2784
2785 /* Helper structure to record which range is already reserved */
2786 struct falloc_range {
2787 struct list_head list;
2788 u64 start;
2789 u64 len;
2790 };
2791
2792 /*
2793 * Helper function to add falloc range
2794 *
2795 * Caller should have locked the larger range of extent containing
2796 * [start, len)
2797 */
add_falloc_range(struct list_head * head,u64 start,u64 len)2798 static int add_falloc_range(struct list_head *head, u64 start, u64 len)
2799 {
2800 struct falloc_range *range = NULL;
2801
2802 if (!list_empty(head)) {
2803 /*
2804 * As fallocate iterates by bytenr order, we only need to check
2805 * the last range.
2806 */
2807 range = list_last_entry(head, struct falloc_range, list);
2808 if (range->start + range->len == start) {
2809 range->len += len;
2810 return 0;
2811 }
2812 }
2813
2814 range = kmalloc_obj(*range);
2815 if (!range)
2816 return -ENOMEM;
2817 range->start = start;
2818 range->len = len;
2819 list_add_tail(&range->list, head);
2820 return 0;
2821 }
2822
btrfs_fallocate_update_isize(struct inode * inode,const u64 end,const int mode)2823 static int btrfs_fallocate_update_isize(struct inode *inode,
2824 const u64 end,
2825 const int mode)
2826 {
2827 struct btrfs_trans_handle *trans;
2828 struct btrfs_root *root = BTRFS_I(inode)->root;
2829 u64 range_start;
2830 u64 range_end;
2831 int ret;
2832 int ret2;
2833
2834 if (mode & FALLOC_FL_KEEP_SIZE || end <= i_size_read(inode))
2835 return 0;
2836
2837 range_start = round_down(i_size_read(inode), root->fs_info->sectorsize);
2838 range_end = round_up(end, root->fs_info->sectorsize);
2839
2840 ret = btrfs_inode_set_file_extent_range(BTRFS_I(inode), range_start,
2841 range_end - range_start);
2842 if (ret)
2843 return ret;
2844
2845 trans = btrfs_start_transaction(root, 1);
2846 if (IS_ERR(trans))
2847 return PTR_ERR(trans);
2848
2849 inode_set_ctime_current(inode);
2850 i_size_write(inode, end);
2851 btrfs_inode_safe_disk_i_size_write(BTRFS_I(inode), 0);
2852 ret = btrfs_update_inode(trans, BTRFS_I(inode));
2853 ret2 = btrfs_end_transaction(trans);
2854
2855 return ret ? ret : ret2;
2856 }
2857
2858 enum {
2859 RANGE_BOUNDARY_WRITTEN_EXTENT,
2860 RANGE_BOUNDARY_PREALLOC_EXTENT,
2861 RANGE_BOUNDARY_HOLE,
2862 };
2863
btrfs_zero_range_check_range_boundary(struct btrfs_inode * inode,u64 offset)2864 static int btrfs_zero_range_check_range_boundary(struct btrfs_inode *inode,
2865 u64 offset)
2866 {
2867 const u32 sectorsize = inode->root->fs_info->sectorsize;
2868 struct extent_map *em;
2869 int ret;
2870
2871 offset = round_down(offset, sectorsize);
2872 em = btrfs_get_extent(inode, NULL, offset, sectorsize);
2873 if (IS_ERR(em))
2874 return PTR_ERR(em);
2875
2876 if (em->disk_bytenr == EXTENT_MAP_HOLE)
2877 ret = RANGE_BOUNDARY_HOLE;
2878 else if (em->flags & EXTENT_FLAG_PREALLOC)
2879 ret = RANGE_BOUNDARY_PREALLOC_EXTENT;
2880 else
2881 ret = RANGE_BOUNDARY_WRITTEN_EXTENT;
2882
2883 btrfs_free_extent_map(em);
2884 return ret;
2885 }
2886
btrfs_zero_range(struct inode * inode,loff_t offset,loff_t len,const int mode)2887 static int btrfs_zero_range(struct inode *inode,
2888 loff_t offset,
2889 loff_t len,
2890 const int mode)
2891 {
2892 struct btrfs_fs_info *fs_info = BTRFS_I(inode)->root->fs_info;
2893 struct extent_map *em;
2894 struct extent_changeset *data_reserved = NULL;
2895 int ret;
2896 u64 alloc_hint = 0;
2897 const u32 sectorsize = fs_info->sectorsize;
2898 const u64 orig_start = offset;
2899 const u64 orig_end = offset + len - 1;
2900 u64 alloc_start = round_down(offset, sectorsize);
2901 u64 alloc_end = round_up(offset + len, sectorsize);
2902 u64 bytes_to_reserve = 0;
2903 bool space_reserved = false;
2904
2905 em = btrfs_get_extent(BTRFS_I(inode), NULL, alloc_start,
2906 alloc_end - alloc_start);
2907 if (IS_ERR(em)) {
2908 ret = PTR_ERR(em);
2909 goto out;
2910 }
2911
2912 /*
2913 * Avoid hole punching and extent allocation for some cases. More cases
2914 * could be considered, but these are unlikely common and we keep things
2915 * as simple as possible for now. Also, intentionally, if the target
2916 * range contains one or more prealloc extents together with regular
2917 * extents and holes, we drop all the existing extents and allocate a
2918 * new prealloc extent, so that we get a larger contiguous disk extent.
2919 */
2920 if (em->start <= alloc_start && (em->flags & EXTENT_FLAG_PREALLOC)) {
2921 const u64 em_end = btrfs_extent_map_end(em);
2922
2923 if (em_end >= offset + len) {
2924 /*
2925 * The whole range is already a prealloc extent,
2926 * do nothing except updating the inode's i_size if
2927 * needed.
2928 */
2929 btrfs_free_extent_map(em);
2930 ret = btrfs_fallocate_update_isize(inode, offset + len,
2931 mode);
2932 goto out;
2933 }
2934 /*
2935 * Part of the range is already a prealloc extent, so operate
2936 * only on the remaining part of the range.
2937 */
2938 alloc_start = em_end;
2939 ASSERT(IS_ALIGNED(alloc_start, sectorsize));
2940 len = offset + len - alloc_start;
2941 offset = alloc_start;
2942 alloc_hint = btrfs_extent_map_block_start(em) + em->len;
2943 }
2944 btrfs_free_extent_map(em);
2945
2946 if ((offset >> fs_info->sectorsize_bits) ==
2947 ((offset + len - 1) >> fs_info->sectorsize_bits)) {
2948 em = btrfs_get_extent(BTRFS_I(inode), NULL, alloc_start, sectorsize);
2949 if (IS_ERR(em)) {
2950 ret = PTR_ERR(em);
2951 goto out;
2952 }
2953
2954 if (em->flags & EXTENT_FLAG_PREALLOC) {
2955 btrfs_free_extent_map(em);
2956 ret = btrfs_fallocate_update_isize(inode, offset + len,
2957 mode);
2958 goto out;
2959 }
2960 if (len < sectorsize && em->disk_bytenr != EXTENT_MAP_HOLE) {
2961 btrfs_free_extent_map(em);
2962 ret = btrfs_truncate_block(BTRFS_I(inode), offset + len - 1,
2963 orig_start, orig_end);
2964 if (!ret)
2965 ret = btrfs_fallocate_update_isize(inode,
2966 offset + len,
2967 mode);
2968 return ret;
2969 }
2970 btrfs_free_extent_map(em);
2971 alloc_start = round_down(offset, sectorsize);
2972 alloc_end = alloc_start + sectorsize;
2973 goto reserve_space;
2974 }
2975
2976 alloc_start = round_up(offset, sectorsize);
2977 alloc_end = round_down(offset + len, sectorsize);
2978
2979 /*
2980 * For unaligned ranges, check the pages at the boundaries, they might
2981 * map to an extent, in which case we need to partially zero them, or
2982 * they might map to a hole, in which case we need our allocation range
2983 * to cover them.
2984 */
2985 if (!IS_ALIGNED(offset, sectorsize)) {
2986 ret = btrfs_zero_range_check_range_boundary(BTRFS_I(inode),
2987 offset);
2988 if (ret < 0)
2989 goto out;
2990 if (ret == RANGE_BOUNDARY_HOLE) {
2991 alloc_start = round_down(offset, sectorsize);
2992 ret = 0;
2993 } else if (ret == RANGE_BOUNDARY_WRITTEN_EXTENT) {
2994 ret = btrfs_truncate_block(BTRFS_I(inode), offset,
2995 orig_start, orig_end);
2996 if (ret)
2997 goto out;
2998 } else {
2999 ret = 0;
3000 }
3001 }
3002
3003 if (!IS_ALIGNED(offset + len, sectorsize)) {
3004 ret = btrfs_zero_range_check_range_boundary(BTRFS_I(inode),
3005 offset + len);
3006 if (ret < 0)
3007 goto out;
3008 if (ret == RANGE_BOUNDARY_HOLE) {
3009 alloc_end = round_up(offset + len, sectorsize);
3010 ret = 0;
3011 } else if (ret == RANGE_BOUNDARY_WRITTEN_EXTENT) {
3012 ret = btrfs_truncate_block(BTRFS_I(inode), offset + len - 1,
3013 orig_start, orig_end);
3014 if (ret)
3015 goto out;
3016 } else {
3017 ret = 0;
3018 }
3019 }
3020
3021 reserve_space:
3022 if (alloc_start < alloc_end) {
3023 struct extent_state *cached_state = NULL;
3024 const u64 lockstart = alloc_start;
3025 const u64 lockend = alloc_end - 1;
3026
3027 bytes_to_reserve = alloc_end - alloc_start;
3028 ret = btrfs_alloc_data_chunk_ondemand(BTRFS_I(inode),
3029 bytes_to_reserve);
3030 if (ret < 0)
3031 goto out;
3032 space_reserved = true;
3033 btrfs_punch_hole_lock_range(inode, lockstart, lockend,
3034 &cached_state);
3035 ret = btrfs_qgroup_reserve_data(BTRFS_I(inode), &data_reserved,
3036 alloc_start, bytes_to_reserve);
3037 if (ret) {
3038 btrfs_unlock_extent(&BTRFS_I(inode)->io_tree, lockstart,
3039 lockend, &cached_state);
3040 goto out;
3041 }
3042 ret = btrfs_prealloc_file_range(inode, mode, alloc_start,
3043 alloc_end - alloc_start,
3044 fs_info->sectorsize,
3045 offset + len, &alloc_hint);
3046 btrfs_unlock_extent(&BTRFS_I(inode)->io_tree, lockstart, lockend,
3047 &cached_state);
3048 /* btrfs_prealloc_file_range releases reserved space on error */
3049 if (ret) {
3050 space_reserved = false;
3051 goto out;
3052 }
3053 }
3054 ret = btrfs_fallocate_update_isize(inode, offset + len, mode);
3055 out:
3056 if (ret && space_reserved)
3057 btrfs_free_reserved_data_space(BTRFS_I(inode), data_reserved,
3058 alloc_start, bytes_to_reserve);
3059 extent_changeset_free(data_reserved);
3060
3061 return ret;
3062 }
3063
btrfs_fallocate(struct file * file,int mode,loff_t offset,loff_t len)3064 static long btrfs_fallocate(struct file *file, int mode,
3065 loff_t offset, loff_t len)
3066 {
3067 struct inode *inode = file_inode(file);
3068 struct extent_state *cached_state = NULL;
3069 struct extent_changeset *data_reserved = NULL;
3070 struct falloc_range *range;
3071 struct falloc_range *tmp;
3072 LIST_HEAD(reserve_list);
3073 u64 cur_offset;
3074 u64 last_byte;
3075 u64 alloc_start;
3076 u64 alloc_end;
3077 u64 alloc_hint = 0;
3078 u64 locked_end;
3079 u64 actual_end = 0;
3080 u64 data_space_needed = 0;
3081 u64 data_space_reserved = 0;
3082 u64 qgroup_reserved = 0;
3083 struct extent_map *em;
3084 int blocksize = BTRFS_I(inode)->root->fs_info->sectorsize;
3085 int ret;
3086
3087 if (btrfs_is_shutdown(inode_to_fs_info(inode)))
3088 return -EIO;
3089
3090 /* Do not allow fallocate in ZONED mode */
3091 if (btrfs_is_zoned(inode_to_fs_info(inode)))
3092 return -EOPNOTSUPP;
3093
3094 alloc_start = round_down(offset, blocksize);
3095 alloc_end = round_up(offset + len, blocksize);
3096 cur_offset = alloc_start;
3097
3098 /* Make sure we aren't being give some crap mode */
3099 if (mode & ~(FALLOC_FL_KEEP_SIZE | FALLOC_FL_PUNCH_HOLE |
3100 FALLOC_FL_ZERO_RANGE))
3101 return -EOPNOTSUPP;
3102
3103 if (mode & FALLOC_FL_PUNCH_HOLE)
3104 return btrfs_punch_hole(file, offset, len);
3105
3106 btrfs_inode_lock(BTRFS_I(inode), BTRFS_ILOCK_MMAP);
3107
3108 if (!(mode & FALLOC_FL_KEEP_SIZE) && offset + len > inode->i_size) {
3109 ret = inode_newsize_ok(inode, offset + len);
3110 if (ret)
3111 goto out;
3112 }
3113
3114 ret = file_modified(file);
3115 if (ret)
3116 goto out;
3117
3118 /*
3119 * TODO: Move these two operations after we have checked
3120 * accurate reserved space, or fallocate can still fail but
3121 * with page truncated or size expanded.
3122 *
3123 * But that's a minor problem and won't do much harm BTW.
3124 */
3125 if (alloc_start > inode->i_size) {
3126 ret = btrfs_cont_expand(BTRFS_I(inode), i_size_read(inode),
3127 alloc_start);
3128 if (ret)
3129 goto out;
3130 } else if (offset + len > inode->i_size) {
3131 /*
3132 * If we are fallocating from the end of the file onward we
3133 * need to zero out the end of the block if i_size lands in the
3134 * middle of a block.
3135 */
3136 ret = btrfs_truncate_block(BTRFS_I(inode), inode->i_size,
3137 inode->i_size, (u64)-1);
3138 if (ret)
3139 goto out;
3140 }
3141
3142 /*
3143 * We have locked the inode at the VFS level (in exclusive mode) and we
3144 * have locked the i_mmap_lock lock (in exclusive mode). Now before
3145 * locking the file range, flush all dealloc in the range and wait for
3146 * all ordered extents in the range to complete. After this we can lock
3147 * the file range and, due to the previous locking we did, we know there
3148 * can't be more delalloc or ordered extents in the range.
3149 */
3150 ret = btrfs_wait_ordered_range(BTRFS_I(inode), alloc_start,
3151 alloc_end - alloc_start);
3152 if (ret)
3153 goto out;
3154
3155 if (mode & FALLOC_FL_ZERO_RANGE) {
3156 ret = btrfs_zero_range(inode, offset, len, mode);
3157 btrfs_inode_unlock(BTRFS_I(inode), BTRFS_ILOCK_MMAP);
3158 return ret;
3159 }
3160
3161 locked_end = alloc_end - 1;
3162 btrfs_lock_extent(&BTRFS_I(inode)->io_tree, alloc_start, locked_end,
3163 &cached_state);
3164
3165 btrfs_assert_inode_range_clean(BTRFS_I(inode), alloc_start, locked_end);
3166
3167 /* First, check if we exceed the qgroup limit */
3168 while (cur_offset < alloc_end) {
3169 em = btrfs_get_extent(BTRFS_I(inode), NULL, cur_offset,
3170 alloc_end - cur_offset);
3171 if (IS_ERR(em)) {
3172 ret = PTR_ERR(em);
3173 break;
3174 }
3175 last_byte = min(btrfs_extent_map_end(em), alloc_end);
3176 actual_end = min_t(u64, btrfs_extent_map_end(em), offset + len);
3177 last_byte = ALIGN(last_byte, blocksize);
3178 if (em->disk_bytenr == EXTENT_MAP_HOLE ||
3179 (cur_offset >= inode->i_size &&
3180 !(em->flags & EXTENT_FLAG_PREALLOC))) {
3181 const u64 range_len = last_byte - cur_offset;
3182
3183 ret = add_falloc_range(&reserve_list, cur_offset, range_len);
3184 if (ret < 0) {
3185 btrfs_free_extent_map(em);
3186 break;
3187 }
3188 ret = btrfs_qgroup_reserve_data(BTRFS_I(inode),
3189 &data_reserved, cur_offset, range_len);
3190 if (ret < 0) {
3191 btrfs_free_extent_map(em);
3192 break;
3193 }
3194 qgroup_reserved += range_len;
3195 data_space_needed += range_len;
3196 }
3197 btrfs_free_extent_map(em);
3198 cur_offset = last_byte;
3199 }
3200
3201 if (!ret && data_space_needed > 0) {
3202 /*
3203 * We are safe to reserve space here as we can't have delalloc
3204 * in the range, see above.
3205 */
3206 ret = btrfs_alloc_data_chunk_ondemand(BTRFS_I(inode),
3207 data_space_needed);
3208 if (!ret)
3209 data_space_reserved = data_space_needed;
3210 }
3211
3212 /*
3213 * If ret is still 0, means we're OK to fallocate.
3214 * Or just cleanup the list and exit.
3215 */
3216 list_for_each_entry_safe(range, tmp, &reserve_list, list) {
3217 if (!ret) {
3218 ret = btrfs_prealloc_file_range(inode, mode,
3219 range->start,
3220 range->len, blocksize,
3221 offset + len, &alloc_hint);
3222 /*
3223 * btrfs_prealloc_file_range() releases space even
3224 * if it returns an error.
3225 */
3226 data_space_reserved -= range->len;
3227 qgroup_reserved -= range->len;
3228 } else if (data_space_reserved > 0) {
3229 btrfs_free_reserved_data_space(BTRFS_I(inode),
3230 data_reserved, range->start,
3231 range->len);
3232 data_space_reserved -= range->len;
3233 qgroup_reserved -= range->len;
3234 } else if (qgroup_reserved > 0) {
3235 btrfs_qgroup_free_data(BTRFS_I(inode), data_reserved,
3236 range->start, range->len, NULL);
3237 qgroup_reserved -= range->len;
3238 }
3239 list_del(&range->list);
3240 kfree(range);
3241 }
3242 if (ret < 0)
3243 goto out_unlock;
3244
3245 /*
3246 * We didn't need to allocate any more space, but we still extended the
3247 * size of the file so we need to update i_size and the inode item.
3248 */
3249 ret = btrfs_fallocate_update_isize(inode, actual_end, mode);
3250 out_unlock:
3251 btrfs_unlock_extent(&BTRFS_I(inode)->io_tree, alloc_start, locked_end,
3252 &cached_state);
3253 out:
3254 btrfs_inode_unlock(BTRFS_I(inode), BTRFS_ILOCK_MMAP);
3255 extent_changeset_free(data_reserved);
3256 return ret;
3257 }
3258
3259 /*
3260 * Helper for btrfs_find_delalloc_in_range(). Find a subrange in a given range
3261 * that has unflushed and/or flushing delalloc. There might be other adjacent
3262 * subranges after the one it found, so btrfs_find_delalloc_in_range() keeps
3263 * looping while it gets adjacent subranges, and merging them together.
3264 */
find_delalloc_subrange(struct btrfs_inode * inode,u64 start,u64 end,struct extent_state ** cached_state,bool * search_io_tree,u64 * delalloc_start_ret,u64 * delalloc_end_ret)3265 static bool find_delalloc_subrange(struct btrfs_inode *inode, u64 start, u64 end,
3266 struct extent_state **cached_state,
3267 bool *search_io_tree,
3268 u64 *delalloc_start_ret, u64 *delalloc_end_ret)
3269 {
3270 u64 len = end + 1 - start;
3271 u64 delalloc_len = 0;
3272 struct btrfs_ordered_extent *oe;
3273 u64 oe_start;
3274 u64 oe_end;
3275
3276 /*
3277 * Search the io tree first for EXTENT_DELALLOC. If we find any, it
3278 * means we have delalloc (dirty pages) for which writeback has not
3279 * started yet.
3280 */
3281 if (*search_io_tree) {
3282 spin_lock(&inode->lock);
3283 if (inode->delalloc_bytes > 0) {
3284 spin_unlock(&inode->lock);
3285 *delalloc_start_ret = start;
3286 delalloc_len = btrfs_count_range_bits(&inode->io_tree,
3287 delalloc_start_ret, end,
3288 len, EXTENT_DELALLOC,
3289 true, cached_state);
3290 } else {
3291 spin_unlock(&inode->lock);
3292 }
3293 }
3294
3295 if (delalloc_len > 0) {
3296 /*
3297 * If delalloc was found then *delalloc_start_ret has a sector size
3298 * aligned value (rounded down).
3299 */
3300 *delalloc_end_ret = *delalloc_start_ret + delalloc_len - 1;
3301
3302 if (*delalloc_start_ret == start) {
3303 /* Delalloc for the whole range, nothing more to do. */
3304 if (*delalloc_end_ret == end)
3305 return true;
3306 /* Else trim our search range for ordered extents. */
3307 start = *delalloc_end_ret + 1;
3308 len = end + 1 - start;
3309 }
3310 } else {
3311 /* No delalloc, future calls don't need to search again. */
3312 *search_io_tree = false;
3313 }
3314
3315 /*
3316 * Now also check if there's any ordered extent in the range.
3317 * We do this because:
3318 *
3319 * 1) When delalloc is flushed, the file range is locked, we clear the
3320 * EXTENT_DELALLOC bit from the io tree and create an extent map and
3321 * an ordered extent for the write. So we might just have been called
3322 * after delalloc is flushed and before the ordered extent completes
3323 * and inserts the new file extent item in the subvolume's btree;
3324 *
3325 * 2) We may have an ordered extent created by flushing delalloc for a
3326 * subrange that starts before the subrange we found marked with
3327 * EXTENT_DELALLOC in the io tree.
3328 *
3329 * We could also use the extent map tree to find such delalloc that is
3330 * being flushed, but using the ordered extents tree is more efficient
3331 * because it's usually much smaller as ordered extents are removed from
3332 * the tree once they complete. With the extent maps, we may have them
3333 * in the extent map tree for a very long time, and they were either
3334 * created by previous writes or loaded by read operations.
3335 */
3336 oe = btrfs_lookup_first_ordered_range(inode, start, len);
3337 if (!oe)
3338 return (delalloc_len > 0);
3339
3340 /* The ordered extent may span beyond our search range. */
3341 oe_start = max(oe->file_offset, start);
3342 oe_end = min(oe->file_offset + oe->num_bytes - 1, end);
3343
3344 btrfs_put_ordered_extent(oe);
3345
3346 /* Don't have unflushed delalloc, return the ordered extent range. */
3347 if (delalloc_len == 0) {
3348 *delalloc_start_ret = oe_start;
3349 *delalloc_end_ret = oe_end;
3350 return true;
3351 }
3352
3353 /*
3354 * We have both unflushed delalloc (io_tree) and an ordered extent.
3355 * If the ranges are adjacent returned a combined range, otherwise
3356 * return the leftmost range.
3357 */
3358 if (oe_start < *delalloc_start_ret) {
3359 if (oe_end < *delalloc_start_ret)
3360 *delalloc_end_ret = oe_end;
3361 *delalloc_start_ret = oe_start;
3362 } else if (*delalloc_end_ret + 1 == oe_start) {
3363 *delalloc_end_ret = oe_end;
3364 }
3365
3366 return true;
3367 }
3368
3369 /*
3370 * Check if there's delalloc in a given range.
3371 *
3372 * @inode: The inode.
3373 * @start: The start offset of the range. It does not need to be
3374 * sector size aligned.
3375 * @end: The end offset (inclusive value) of the search range.
3376 * It does not need to be sector size aligned.
3377 * @cached_state: Extent state record used for speeding up delalloc
3378 * searches in the inode's io_tree. Can be NULL.
3379 * @delalloc_start_ret: Output argument, set to the start offset of the
3380 * subrange found with delalloc (may not be sector size
3381 * aligned).
3382 * @delalloc_end_ret: Output argument, set to he end offset (inclusive value)
3383 * of the subrange found with delalloc.
3384 *
3385 * Returns true if a subrange with delalloc is found within the given range, and
3386 * if so it sets @delalloc_start_ret and @delalloc_end_ret with the start and
3387 * end offsets of the subrange.
3388 */
btrfs_find_delalloc_in_range(struct btrfs_inode * inode,u64 start,u64 end,struct extent_state ** cached_state,u64 * delalloc_start_ret,u64 * delalloc_end_ret)3389 bool btrfs_find_delalloc_in_range(struct btrfs_inode *inode, u64 start, u64 end,
3390 struct extent_state **cached_state,
3391 u64 *delalloc_start_ret, u64 *delalloc_end_ret)
3392 {
3393 u64 cur_offset = round_down(start, inode->root->fs_info->sectorsize);
3394 u64 prev_delalloc_end = 0;
3395 bool search_io_tree = true;
3396 bool ret = false;
3397
3398 while (cur_offset <= end) {
3399 u64 delalloc_start;
3400 u64 delalloc_end;
3401 bool delalloc;
3402
3403 delalloc = find_delalloc_subrange(inode, cur_offset, end,
3404 cached_state, &search_io_tree,
3405 &delalloc_start,
3406 &delalloc_end);
3407 if (!delalloc)
3408 break;
3409
3410 if (prev_delalloc_end == 0) {
3411 /* First subrange found. */
3412 *delalloc_start_ret = max(delalloc_start, start);
3413 *delalloc_end_ret = delalloc_end;
3414 ret = true;
3415 } else if (delalloc_start == prev_delalloc_end + 1) {
3416 /* Subrange adjacent to the previous one, merge them. */
3417 *delalloc_end_ret = delalloc_end;
3418 } else {
3419 /* Subrange not adjacent to the previous one, exit. */
3420 break;
3421 }
3422
3423 prev_delalloc_end = delalloc_end;
3424 cur_offset = delalloc_end + 1;
3425 cond_resched();
3426 }
3427
3428 return ret;
3429 }
3430
3431 /*
3432 * Check if there's a hole or delalloc range in a range representing a hole (or
3433 * prealloc extent) found in the inode's subvolume btree.
3434 *
3435 * @inode: The inode.
3436 * @whence: Seek mode (SEEK_DATA or SEEK_HOLE).
3437 * @start: Start offset of the hole region. It does not need to be sector
3438 * size aligned.
3439 * @end: End offset (inclusive value) of the hole region. It does not
3440 * need to be sector size aligned.
3441 * @start_ret: Return parameter, used to set the start of the subrange in the
3442 * hole that matches the search criteria (seek mode), if such
3443 * subrange is found (return value of the function is true).
3444 * The value returned here may not be sector size aligned.
3445 *
3446 * Returns true if a subrange matching the given seek mode is found, and if one
3447 * is found, it updates @start_ret with the start of the subrange.
3448 */
find_desired_extent_in_hole(struct btrfs_inode * inode,int whence,struct extent_state ** cached_state,u64 start,u64 end,u64 * start_ret)3449 static bool find_desired_extent_in_hole(struct btrfs_inode *inode, int whence,
3450 struct extent_state **cached_state,
3451 u64 start, u64 end, u64 *start_ret)
3452 {
3453 u64 delalloc_start;
3454 u64 delalloc_end;
3455 bool delalloc;
3456
3457 delalloc = btrfs_find_delalloc_in_range(inode, start, end, cached_state,
3458 &delalloc_start, &delalloc_end);
3459 if (delalloc && whence == SEEK_DATA) {
3460 *start_ret = delalloc_start;
3461 return true;
3462 }
3463
3464 if (delalloc && whence == SEEK_HOLE) {
3465 /*
3466 * We found delalloc but it starts after out start offset. So we
3467 * have a hole between our start offset and the delalloc start.
3468 */
3469 if (start < delalloc_start) {
3470 *start_ret = start;
3471 return true;
3472 }
3473 /*
3474 * Delalloc range starts at our start offset.
3475 * If the delalloc range's length is smaller than our range,
3476 * then it means we have a hole that starts where the delalloc
3477 * subrange ends.
3478 */
3479 if (delalloc_end < end) {
3480 *start_ret = delalloc_end + 1;
3481 return true;
3482 }
3483
3484 /* There's delalloc for the whole range. */
3485 return false;
3486 }
3487
3488 if (!delalloc && whence == SEEK_HOLE) {
3489 *start_ret = start;
3490 return true;
3491 }
3492
3493 /*
3494 * No delalloc in the range and we are seeking for data. The caller has
3495 * to iterate to the next extent item in the subvolume btree.
3496 */
3497 return false;
3498 }
3499
find_desired_extent(struct file * file,loff_t offset,int whence)3500 static loff_t find_desired_extent(struct file *file, loff_t offset, int whence)
3501 {
3502 struct btrfs_inode *inode = BTRFS_I(file->f_mapping->host);
3503 struct btrfs_file_private *private;
3504 struct btrfs_fs_info *fs_info = inode->root->fs_info;
3505 struct extent_state *cached_state = NULL;
3506 struct extent_state **delalloc_cached_state;
3507 const loff_t i_size = i_size_read(&inode->vfs_inode);
3508 const u64 ino = btrfs_ino(inode);
3509 struct btrfs_root *root = inode->root;
3510 struct btrfs_path *path;
3511 struct btrfs_key key;
3512 u64 last_extent_end;
3513 u64 lockstart;
3514 u64 lockend;
3515 u64 start;
3516 int ret;
3517 bool found = false;
3518
3519 if (i_size == 0 || offset >= i_size)
3520 return -ENXIO;
3521
3522 /*
3523 * Quick path. If the inode has no prealloc extents and its number of
3524 * bytes used matches its i_size, then it can not have holes.
3525 */
3526 if (whence == SEEK_HOLE &&
3527 !(inode->flags & BTRFS_INODE_PREALLOC) &&
3528 inode_get_bytes(&inode->vfs_inode) == i_size)
3529 return i_size;
3530
3531 spin_lock(&inode->lock);
3532 private = file->private_data;
3533 spin_unlock(&inode->lock);
3534
3535 if (private && private->owner_task != current) {
3536 /*
3537 * Not allocated by us, don't use it as its cached state is used
3538 * by the task that allocated it and we don't want neither to
3539 * mess with it nor get incorrect results because it reflects an
3540 * invalid state for the current task.
3541 */
3542 private = NULL;
3543 } else if (!private) {
3544 private = kzalloc_obj(*private);
3545 /*
3546 * No worries if memory allocation failed.
3547 * The private structure is used only for speeding up multiple
3548 * lseek SEEK_HOLE/DATA calls to a file when there's delalloc,
3549 * so everything will still be correct.
3550 */
3551 if (private) {
3552 bool free = false;
3553
3554 private->owner_task = current;
3555
3556 spin_lock(&inode->lock);
3557 if (file->private_data)
3558 free = true;
3559 else
3560 file->private_data = private;
3561 spin_unlock(&inode->lock);
3562
3563 if (free) {
3564 kfree(private);
3565 private = NULL;
3566 }
3567 }
3568 }
3569
3570 if (private)
3571 delalloc_cached_state = &private->llseek_cached_state;
3572 else
3573 delalloc_cached_state = NULL;
3574
3575 /*
3576 * offset can be negative, in this case we start finding DATA/HOLE from
3577 * the very start of the file.
3578 */
3579 start = max_t(loff_t, 0, offset);
3580
3581 lockstart = round_down(start, fs_info->sectorsize);
3582 lockend = round_up(i_size, fs_info->sectorsize);
3583 if (lockend <= lockstart)
3584 lockend = lockstart + fs_info->sectorsize;
3585 lockend--;
3586
3587 path = btrfs_alloc_path();
3588 if (!path)
3589 return -ENOMEM;
3590 path->reada = READA_FORWARD;
3591
3592 key.objectid = ino;
3593 key.type = BTRFS_EXTENT_DATA_KEY;
3594 key.offset = start;
3595
3596 last_extent_end = lockstart;
3597
3598 btrfs_lock_extent(&inode->io_tree, lockstart, lockend, &cached_state);
3599
3600 ret = btrfs_search_slot(NULL, root, &key, path, 0, 0);
3601 if (ret < 0) {
3602 goto out;
3603 } else if (ret > 0 && path->slots[0] > 0) {
3604 btrfs_item_key_to_cpu(path->nodes[0], &key, path->slots[0] - 1);
3605 if (key.objectid == ino && key.type == BTRFS_EXTENT_DATA_KEY)
3606 path->slots[0]--;
3607 }
3608
3609 while (start < i_size) {
3610 struct extent_buffer *leaf = path->nodes[0];
3611 struct btrfs_file_extent_item *extent;
3612 u64 extent_end;
3613 u8 type;
3614
3615 if (path->slots[0] >= btrfs_header_nritems(leaf)) {
3616 ret = btrfs_next_leaf(root, path);
3617 if (ret < 0)
3618 goto out;
3619 else if (ret > 0)
3620 break;
3621
3622 leaf = path->nodes[0];
3623 }
3624
3625 btrfs_item_key_to_cpu(leaf, &key, path->slots[0]);
3626 if (key.objectid != ino || key.type != BTRFS_EXTENT_DATA_KEY)
3627 break;
3628
3629 extent_end = btrfs_file_extent_end(path);
3630
3631 /*
3632 * In the first iteration we may have a slot that points to an
3633 * extent that ends before our start offset, so skip it.
3634 */
3635 if (extent_end <= start) {
3636 path->slots[0]++;
3637 continue;
3638 }
3639
3640 /* We have an implicit hole, NO_HOLES feature is likely set. */
3641 if (last_extent_end < key.offset) {
3642 u64 search_start = last_extent_end;
3643 u64 found_start;
3644
3645 /*
3646 * First iteration, @start matches @offset and it's
3647 * within the hole.
3648 */
3649 if (start == offset)
3650 search_start = offset;
3651
3652 found = find_desired_extent_in_hole(inode, whence,
3653 delalloc_cached_state,
3654 search_start,
3655 key.offset - 1,
3656 &found_start);
3657 if (found) {
3658 start = found_start;
3659 break;
3660 }
3661 /*
3662 * Didn't find data or a hole (due to delalloc) in the
3663 * implicit hole range, so need to analyze the extent.
3664 */
3665 }
3666
3667 extent = btrfs_item_ptr(leaf, path->slots[0],
3668 struct btrfs_file_extent_item);
3669 type = btrfs_file_extent_type(leaf, extent);
3670
3671 /*
3672 * Can't access the extent's disk_bytenr field if this is an
3673 * inline extent, since at that offset, it's where the extent
3674 * data starts.
3675 */
3676 if (type == BTRFS_FILE_EXTENT_PREALLOC ||
3677 (type == BTRFS_FILE_EXTENT_REG &&
3678 btrfs_file_extent_disk_bytenr(leaf, extent) == 0)) {
3679 /*
3680 * Explicit hole or prealloc extent, search for delalloc.
3681 * A prealloc extent is treated like a hole.
3682 */
3683 u64 search_start = key.offset;
3684 u64 found_start;
3685
3686 /*
3687 * First iteration, @start matches @offset and it's
3688 * within the hole.
3689 */
3690 if (start == offset)
3691 search_start = offset;
3692
3693 found = find_desired_extent_in_hole(inode, whence,
3694 delalloc_cached_state,
3695 search_start,
3696 extent_end - 1,
3697 &found_start);
3698 if (found) {
3699 start = found_start;
3700 break;
3701 }
3702 /*
3703 * Didn't find data or a hole (due to delalloc) in the
3704 * implicit hole range, so need to analyze the next
3705 * extent item.
3706 */
3707 } else {
3708 /*
3709 * Found a regular or inline extent.
3710 * If we are seeking for data, adjust the start offset
3711 * and stop, we're done.
3712 */
3713 if (whence == SEEK_DATA) {
3714 start = max_t(u64, key.offset, offset);
3715 found = true;
3716 break;
3717 }
3718 /*
3719 * Else, we are seeking for a hole, check the next file
3720 * extent item.
3721 */
3722 }
3723
3724 start = extent_end;
3725 last_extent_end = extent_end;
3726 path->slots[0]++;
3727 if (fatal_signal_pending(current)) {
3728 ret = -EINTR;
3729 goto out;
3730 }
3731 cond_resched();
3732 }
3733
3734 /* We have an implicit hole from the last extent found up to i_size. */
3735 if (!found && start < i_size) {
3736 found = find_desired_extent_in_hole(inode, whence,
3737 delalloc_cached_state, start,
3738 i_size - 1, &start);
3739 if (!found)
3740 start = i_size;
3741 }
3742
3743 out:
3744 btrfs_unlock_extent(&inode->io_tree, lockstart, lockend, &cached_state);
3745 btrfs_free_path(path);
3746
3747 if (ret < 0)
3748 return ret;
3749
3750 if (whence == SEEK_DATA && start >= i_size)
3751 return -ENXIO;
3752
3753 return min_t(loff_t, start, i_size);
3754 }
3755
btrfs_file_llseek(struct file * file,loff_t offset,int whence)3756 static loff_t btrfs_file_llseek(struct file *file, loff_t offset, int whence)
3757 {
3758 struct inode *inode = file->f_mapping->host;
3759
3760 switch (whence) {
3761 default:
3762 return generic_file_llseek(file, offset, whence);
3763 case SEEK_DATA:
3764 case SEEK_HOLE:
3765 btrfs_inode_lock(BTRFS_I(inode), BTRFS_ILOCK_SHARED);
3766 offset = find_desired_extent(file, offset, whence);
3767 btrfs_inode_unlock(BTRFS_I(inode), BTRFS_ILOCK_SHARED);
3768 break;
3769 }
3770
3771 if (offset < 0)
3772 return offset;
3773
3774 return vfs_setpos(file, offset, inode->i_sb->s_maxbytes);
3775 }
3776
btrfs_file_open(struct inode * inode,struct file * filp)3777 static int btrfs_file_open(struct inode *inode, struct file *filp)
3778 {
3779 int ret;
3780
3781 if (btrfs_is_shutdown(inode_to_fs_info(inode)))
3782 return -EIO;
3783
3784 filp->f_mode |= FMODE_NOWAIT | FMODE_CAN_ODIRECT;
3785
3786 ret = fsverity_file_open(inode, filp);
3787 if (ret)
3788 return ret;
3789 return generic_file_open(inode, filp);
3790 }
3791
btrfs_file_read_iter(struct kiocb * iocb,struct iov_iter * to)3792 static ssize_t btrfs_file_read_iter(struct kiocb *iocb, struct iov_iter *to)
3793 {
3794 ssize_t ret = 0;
3795
3796 if (btrfs_is_shutdown(inode_to_fs_info(file_inode(iocb->ki_filp))))
3797 return -EIO;
3798
3799 if (iocb->ki_flags & IOCB_DIRECT) {
3800 ret = btrfs_direct_read(iocb, to);
3801 if (ret < 0 || !iov_iter_count(to) ||
3802 iocb->ki_pos >= i_size_read(file_inode(iocb->ki_filp)))
3803 return ret;
3804 }
3805
3806 return filemap_read(iocb, to, ret);
3807 }
3808
btrfs_file_splice_read(struct file * in,loff_t * ppos,struct pipe_inode_info * pipe,size_t len,unsigned int flags)3809 static ssize_t btrfs_file_splice_read(struct file *in, loff_t *ppos,
3810 struct pipe_inode_info *pipe,
3811 size_t len, unsigned int flags)
3812 {
3813 if (btrfs_is_shutdown(inode_to_fs_info(file_inode(in))))
3814 return -EIO;
3815
3816 return filemap_splice_read(in, ppos, pipe, len, flags);
3817 }
3818
3819 const struct file_operations btrfs_file_operations = {
3820 .llseek = btrfs_file_llseek,
3821 .read_iter = btrfs_file_read_iter,
3822 .splice_read = btrfs_file_splice_read,
3823 .write_iter = btrfs_file_write_iter,
3824 .splice_write = iter_file_splice_write,
3825 .mmap_prepare = btrfs_file_mmap_prepare,
3826 .open = btrfs_file_open,
3827 .release = btrfs_release_file,
3828 .get_unmapped_area = thp_get_unmapped_area,
3829 .fsync = btrfs_sync_file,
3830 .fallocate = btrfs_fallocate,
3831 .unlocked_ioctl = btrfs_ioctl,
3832 #ifdef CONFIG_COMPAT
3833 .compat_ioctl = btrfs_compat_ioctl,
3834 #endif
3835 .remap_file_range = btrfs_remap_file_range,
3836 .uring_cmd = btrfs_uring_cmd,
3837 .fop_flags = FOP_BUFFER_RASYNC | FOP_BUFFER_WASYNC,
3838 .setlease = generic_setlease,
3839 };
3840
btrfs_fdatawrite_range(struct btrfs_inode * inode,loff_t start,loff_t end)3841 int btrfs_fdatawrite_range(struct btrfs_inode *inode, loff_t start, loff_t end)
3842 {
3843 struct address_space *mapping = inode->vfs_inode.i_mapping;
3844 int ret;
3845
3846 /*
3847 * So with compression we will find and lock a dirty page and clear the
3848 * first one as dirty, setup an async extent, and immediately return
3849 * with the entire range locked but with nobody actually marked with
3850 * writeback. So we can't just filemap_write_and_wait_range() and
3851 * expect it to work since it will just kick off a thread to do the
3852 * actual work. So we need to call filemap_fdatawrite_range _again_
3853 * since it will wait on the page lock, which won't be unlocked until
3854 * after the pages have been marked as writeback and so we're good to go
3855 * from there. We have to do this otherwise we'll miss the ordered
3856 * extents and that results in badness. Please Josef, do not think you
3857 * know better and pull this out at some point in the future, it is
3858 * right and you are wrong.
3859 */
3860 ret = filemap_fdatawrite_range(mapping, start, end);
3861 if (!ret && test_bit(BTRFS_INODE_HAS_ASYNC_EXTENT, &inode->runtime_flags))
3862 ret = filemap_fdatawrite_range(mapping, start, end);
3863
3864 return ret;
3865 }
3866