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c1d7c514 | 1 | // SPDX-License-Identifier: GPL-2.0 |
dc17ff8f CM |
2 | /* |
3 | * Copyright (C) 2007 Oracle. All rights reserved. | |
dc17ff8f CM |
4 | */ |
5 | ||
dc17ff8f | 6 | #include <linux/slab.h> |
d6bfde87 | 7 | #include <linux/blkdev.h> |
f421950f | 8 | #include <linux/writeback.h> |
dc17ff8f CM |
9 | #include "ctree.h" |
10 | #include "transaction.h" | |
11 | #include "btrfs_inode.h" | |
e6dcd2dc | 12 | #include "extent_io.h" |
199c2a9c | 13 | #include "disk-io.h" |
ebb8765b | 14 | #include "compression.h" |
dc17ff8f | 15 | |
6352b91d MX |
16 | static struct kmem_cache *btrfs_ordered_extent_cache; |
17 | ||
e6dcd2dc | 18 | static u64 entry_end(struct btrfs_ordered_extent *entry) |
dc17ff8f | 19 | { |
e6dcd2dc CM |
20 | if (entry->file_offset + entry->len < entry->file_offset) |
21 | return (u64)-1; | |
22 | return entry->file_offset + entry->len; | |
dc17ff8f CM |
23 | } |
24 | ||
d352ac68 CM |
25 | /* returns NULL if the insertion worked, or it returns the node it did find |
26 | * in the tree | |
27 | */ | |
e6dcd2dc CM |
28 | static struct rb_node *tree_insert(struct rb_root *root, u64 file_offset, |
29 | struct rb_node *node) | |
dc17ff8f | 30 | { |
d397712b CM |
31 | struct rb_node **p = &root->rb_node; |
32 | struct rb_node *parent = NULL; | |
e6dcd2dc | 33 | struct btrfs_ordered_extent *entry; |
dc17ff8f | 34 | |
d397712b | 35 | while (*p) { |
dc17ff8f | 36 | parent = *p; |
e6dcd2dc | 37 | entry = rb_entry(parent, struct btrfs_ordered_extent, rb_node); |
dc17ff8f | 38 | |
e6dcd2dc | 39 | if (file_offset < entry->file_offset) |
dc17ff8f | 40 | p = &(*p)->rb_left; |
e6dcd2dc | 41 | else if (file_offset >= entry_end(entry)) |
dc17ff8f CM |
42 | p = &(*p)->rb_right; |
43 | else | |
44 | return parent; | |
45 | } | |
46 | ||
47 | rb_link_node(node, parent, p); | |
48 | rb_insert_color(node, root); | |
49 | return NULL; | |
50 | } | |
51 | ||
43c04fb1 JM |
52 | static void ordered_data_tree_panic(struct inode *inode, int errno, |
53 | u64 offset) | |
54 | { | |
55 | struct btrfs_fs_info *fs_info = btrfs_sb(inode->i_sb); | |
5d163e0e JM |
56 | btrfs_panic(fs_info, errno, |
57 | "Inconsistency in ordered tree at offset %llu", offset); | |
43c04fb1 JM |
58 | } |
59 | ||
d352ac68 CM |
60 | /* |
61 | * look for a given offset in the tree, and if it can't be found return the | |
62 | * first lesser offset | |
63 | */ | |
e6dcd2dc CM |
64 | static struct rb_node *__tree_search(struct rb_root *root, u64 file_offset, |
65 | struct rb_node **prev_ret) | |
dc17ff8f | 66 | { |
d397712b | 67 | struct rb_node *n = root->rb_node; |
dc17ff8f | 68 | struct rb_node *prev = NULL; |
e6dcd2dc CM |
69 | struct rb_node *test; |
70 | struct btrfs_ordered_extent *entry; | |
71 | struct btrfs_ordered_extent *prev_entry = NULL; | |
dc17ff8f | 72 | |
d397712b | 73 | while (n) { |
e6dcd2dc | 74 | entry = rb_entry(n, struct btrfs_ordered_extent, rb_node); |
dc17ff8f CM |
75 | prev = n; |
76 | prev_entry = entry; | |
dc17ff8f | 77 | |
e6dcd2dc | 78 | if (file_offset < entry->file_offset) |
dc17ff8f | 79 | n = n->rb_left; |
e6dcd2dc | 80 | else if (file_offset >= entry_end(entry)) |
dc17ff8f CM |
81 | n = n->rb_right; |
82 | else | |
83 | return n; | |
84 | } | |
85 | if (!prev_ret) | |
86 | return NULL; | |
87 | ||
d397712b | 88 | while (prev && file_offset >= entry_end(prev_entry)) { |
e6dcd2dc CM |
89 | test = rb_next(prev); |
90 | if (!test) | |
91 | break; | |
92 | prev_entry = rb_entry(test, struct btrfs_ordered_extent, | |
93 | rb_node); | |
94 | if (file_offset < entry_end(prev_entry)) | |
95 | break; | |
96 | ||
97 | prev = test; | |
98 | } | |
99 | if (prev) | |
100 | prev_entry = rb_entry(prev, struct btrfs_ordered_extent, | |
101 | rb_node); | |
d397712b | 102 | while (prev && file_offset < entry_end(prev_entry)) { |
e6dcd2dc CM |
103 | test = rb_prev(prev); |
104 | if (!test) | |
105 | break; | |
106 | prev_entry = rb_entry(test, struct btrfs_ordered_extent, | |
107 | rb_node); | |
108 | prev = test; | |
dc17ff8f CM |
109 | } |
110 | *prev_ret = prev; | |
111 | return NULL; | |
112 | } | |
113 | ||
d352ac68 CM |
114 | /* |
115 | * helper to check if a given offset is inside a given entry | |
116 | */ | |
e6dcd2dc CM |
117 | static int offset_in_entry(struct btrfs_ordered_extent *entry, u64 file_offset) |
118 | { | |
119 | if (file_offset < entry->file_offset || | |
120 | entry->file_offset + entry->len <= file_offset) | |
121 | return 0; | |
122 | return 1; | |
123 | } | |
124 | ||
4b46fce2 JB |
125 | static int range_overlaps(struct btrfs_ordered_extent *entry, u64 file_offset, |
126 | u64 len) | |
127 | { | |
128 | if (file_offset + len <= entry->file_offset || | |
129 | entry->file_offset + entry->len <= file_offset) | |
130 | return 0; | |
131 | return 1; | |
132 | } | |
133 | ||
d352ac68 CM |
134 | /* |
135 | * look find the first ordered struct that has this offset, otherwise | |
136 | * the first one less than this offset | |
137 | */ | |
e6dcd2dc CM |
138 | static inline struct rb_node *tree_search(struct btrfs_ordered_inode_tree *tree, |
139 | u64 file_offset) | |
dc17ff8f | 140 | { |
e6dcd2dc | 141 | struct rb_root *root = &tree->tree; |
c87fb6fd | 142 | struct rb_node *prev = NULL; |
dc17ff8f | 143 | struct rb_node *ret; |
e6dcd2dc CM |
144 | struct btrfs_ordered_extent *entry; |
145 | ||
146 | if (tree->last) { | |
147 | entry = rb_entry(tree->last, struct btrfs_ordered_extent, | |
148 | rb_node); | |
149 | if (offset_in_entry(entry, file_offset)) | |
150 | return tree->last; | |
151 | } | |
152 | ret = __tree_search(root, file_offset, &prev); | |
dc17ff8f | 153 | if (!ret) |
e6dcd2dc CM |
154 | ret = prev; |
155 | if (ret) | |
156 | tree->last = ret; | |
dc17ff8f CM |
157 | return ret; |
158 | } | |
159 | ||
eb84ae03 CM |
160 | /* allocate and add a new ordered_extent into the per-inode tree. |
161 | * file_offset is the logical offset in the file | |
162 | * | |
163 | * start is the disk block number of an extent already reserved in the | |
164 | * extent allocation tree | |
165 | * | |
166 | * len is the length of the extent | |
167 | * | |
eb84ae03 CM |
168 | * The tree is given a single reference on the ordered extent that was |
169 | * inserted. | |
170 | */ | |
4b46fce2 JB |
171 | static int __btrfs_add_ordered_extent(struct inode *inode, u64 file_offset, |
172 | u64 start, u64 len, u64 disk_len, | |
261507a0 | 173 | int type, int dio, int compress_type) |
dc17ff8f | 174 | { |
0b246afa | 175 | struct btrfs_fs_info *fs_info = btrfs_sb(inode->i_sb); |
199c2a9c | 176 | struct btrfs_root *root = BTRFS_I(inode)->root; |
dc17ff8f | 177 | struct btrfs_ordered_inode_tree *tree; |
e6dcd2dc CM |
178 | struct rb_node *node; |
179 | struct btrfs_ordered_extent *entry; | |
dc17ff8f | 180 | |
e6dcd2dc | 181 | tree = &BTRFS_I(inode)->ordered_tree; |
6352b91d | 182 | entry = kmem_cache_zalloc(btrfs_ordered_extent_cache, GFP_NOFS); |
dc17ff8f CM |
183 | if (!entry) |
184 | return -ENOMEM; | |
185 | ||
e6dcd2dc CM |
186 | entry->file_offset = file_offset; |
187 | entry->start = start; | |
188 | entry->len = len; | |
c8b97818 | 189 | entry->disk_len = disk_len; |
8b62b72b | 190 | entry->bytes_left = len; |
5fd02043 | 191 | entry->inode = igrab(inode); |
261507a0 | 192 | entry->compress_type = compress_type; |
77cef2ec | 193 | entry->truncated_len = (u64)-1; |
d899e052 | 194 | if (type != BTRFS_ORDERED_IO_DONE && type != BTRFS_ORDERED_COMPLETE) |
80ff3856 | 195 | set_bit(type, &entry->flags); |
3eaa2885 | 196 | |
4b46fce2 JB |
197 | if (dio) |
198 | set_bit(BTRFS_ORDERED_DIRECT, &entry->flags); | |
199 | ||
e6dcd2dc | 200 | /* one ref for the tree */ |
e76edab7 | 201 | refcount_set(&entry->refs, 1); |
e6dcd2dc CM |
202 | init_waitqueue_head(&entry->wait); |
203 | INIT_LIST_HEAD(&entry->list); | |
3eaa2885 | 204 | INIT_LIST_HEAD(&entry->root_extent_list); |
9afab882 MX |
205 | INIT_LIST_HEAD(&entry->work_list); |
206 | init_completion(&entry->completion); | |
2ab28f32 | 207 | INIT_LIST_HEAD(&entry->log_list); |
50d9aa99 | 208 | INIT_LIST_HEAD(&entry->trans_list); |
dc17ff8f | 209 | |
1abe9b8a | 210 | trace_btrfs_ordered_extent_add(inode, entry); |
211 | ||
5fd02043 | 212 | spin_lock_irq(&tree->lock); |
e6dcd2dc CM |
213 | node = tree_insert(&tree->tree, file_offset, |
214 | &entry->rb_node); | |
43c04fb1 JM |
215 | if (node) |
216 | ordered_data_tree_panic(inode, -EEXIST, file_offset); | |
5fd02043 | 217 | spin_unlock_irq(&tree->lock); |
d397712b | 218 | |
199c2a9c | 219 | spin_lock(&root->ordered_extent_lock); |
3eaa2885 | 220 | list_add_tail(&entry->root_extent_list, |
199c2a9c MX |
221 | &root->ordered_extents); |
222 | root->nr_ordered_extents++; | |
223 | if (root->nr_ordered_extents == 1) { | |
0b246afa | 224 | spin_lock(&fs_info->ordered_root_lock); |
199c2a9c | 225 | BUG_ON(!list_empty(&root->ordered_root)); |
0b246afa JM |
226 | list_add_tail(&root->ordered_root, &fs_info->ordered_roots); |
227 | spin_unlock(&fs_info->ordered_root_lock); | |
199c2a9c MX |
228 | } |
229 | spin_unlock(&root->ordered_extent_lock); | |
3eaa2885 | 230 | |
8b62f87b JB |
231 | /* |
232 | * We don't need the count_max_extents here, we can assume that all of | |
233 | * that work has been done at higher layers, so this is truly the | |
234 | * smallest the extent is going to get. | |
235 | */ | |
236 | spin_lock(&BTRFS_I(inode)->lock); | |
237 | btrfs_mod_outstanding_extents(BTRFS_I(inode), 1); | |
238 | spin_unlock(&BTRFS_I(inode)->lock); | |
239 | ||
dc17ff8f CM |
240 | return 0; |
241 | } | |
242 | ||
4b46fce2 JB |
243 | int btrfs_add_ordered_extent(struct inode *inode, u64 file_offset, |
244 | u64 start, u64 len, u64 disk_len, int type) | |
245 | { | |
246 | return __btrfs_add_ordered_extent(inode, file_offset, start, len, | |
261507a0 LZ |
247 | disk_len, type, 0, |
248 | BTRFS_COMPRESS_NONE); | |
4b46fce2 JB |
249 | } |
250 | ||
251 | int btrfs_add_ordered_extent_dio(struct inode *inode, u64 file_offset, | |
252 | u64 start, u64 len, u64 disk_len, int type) | |
253 | { | |
254 | return __btrfs_add_ordered_extent(inode, file_offset, start, len, | |
261507a0 LZ |
255 | disk_len, type, 1, |
256 | BTRFS_COMPRESS_NONE); | |
257 | } | |
258 | ||
259 | int btrfs_add_ordered_extent_compress(struct inode *inode, u64 file_offset, | |
260 | u64 start, u64 len, u64 disk_len, | |
261 | int type, int compress_type) | |
262 | { | |
263 | return __btrfs_add_ordered_extent(inode, file_offset, start, len, | |
264 | disk_len, type, 0, | |
265 | compress_type); | |
4b46fce2 JB |
266 | } |
267 | ||
eb84ae03 CM |
268 | /* |
269 | * Add a struct btrfs_ordered_sum into the list of checksums to be inserted | |
3edf7d33 CM |
270 | * when an ordered extent is finished. If the list covers more than one |
271 | * ordered extent, it is split across multiples. | |
eb84ae03 | 272 | */ |
143bede5 JM |
273 | void btrfs_add_ordered_sum(struct inode *inode, |
274 | struct btrfs_ordered_extent *entry, | |
275 | struct btrfs_ordered_sum *sum) | |
dc17ff8f | 276 | { |
e6dcd2dc | 277 | struct btrfs_ordered_inode_tree *tree; |
dc17ff8f | 278 | |
e6dcd2dc | 279 | tree = &BTRFS_I(inode)->ordered_tree; |
5fd02043 | 280 | spin_lock_irq(&tree->lock); |
e6dcd2dc | 281 | list_add_tail(&sum->list, &entry->list); |
5fd02043 | 282 | spin_unlock_irq(&tree->lock); |
dc17ff8f CM |
283 | } |
284 | ||
163cf09c CM |
285 | /* |
286 | * this is used to account for finished IO across a given range | |
287 | * of the file. The IO may span ordered extents. If | |
288 | * a given ordered_extent is completely done, 1 is returned, otherwise | |
289 | * 0. | |
290 | * | |
291 | * test_and_set_bit on a flag in the struct btrfs_ordered_extent is used | |
292 | * to make sure this function only returns 1 once for a given ordered extent. | |
293 | * | |
294 | * file_offset is updated to one byte past the range that is recorded as | |
295 | * complete. This allows you to walk forward in the file. | |
296 | */ | |
297 | int btrfs_dec_test_first_ordered_pending(struct inode *inode, | |
298 | struct btrfs_ordered_extent **cached, | |
5fd02043 | 299 | u64 *file_offset, u64 io_size, int uptodate) |
163cf09c | 300 | { |
0b246afa | 301 | struct btrfs_fs_info *fs_info = btrfs_sb(inode->i_sb); |
163cf09c CM |
302 | struct btrfs_ordered_inode_tree *tree; |
303 | struct rb_node *node; | |
304 | struct btrfs_ordered_extent *entry = NULL; | |
305 | int ret; | |
5fd02043 | 306 | unsigned long flags; |
163cf09c CM |
307 | u64 dec_end; |
308 | u64 dec_start; | |
309 | u64 to_dec; | |
310 | ||
311 | tree = &BTRFS_I(inode)->ordered_tree; | |
5fd02043 | 312 | spin_lock_irqsave(&tree->lock, flags); |
163cf09c CM |
313 | node = tree_search(tree, *file_offset); |
314 | if (!node) { | |
315 | ret = 1; | |
316 | goto out; | |
317 | } | |
318 | ||
319 | entry = rb_entry(node, struct btrfs_ordered_extent, rb_node); | |
320 | if (!offset_in_entry(entry, *file_offset)) { | |
321 | ret = 1; | |
322 | goto out; | |
323 | } | |
324 | ||
325 | dec_start = max(*file_offset, entry->file_offset); | |
326 | dec_end = min(*file_offset + io_size, entry->file_offset + | |
327 | entry->len); | |
328 | *file_offset = dec_end; | |
329 | if (dec_start > dec_end) { | |
0b246afa JM |
330 | btrfs_crit(fs_info, "bad ordering dec_start %llu end %llu", |
331 | dec_start, dec_end); | |
163cf09c CM |
332 | } |
333 | to_dec = dec_end - dec_start; | |
334 | if (to_dec > entry->bytes_left) { | |
0b246afa JM |
335 | btrfs_crit(fs_info, |
336 | "bad ordered accounting left %llu size %llu", | |
337 | entry->bytes_left, to_dec); | |
163cf09c CM |
338 | } |
339 | entry->bytes_left -= to_dec; | |
5fd02043 JB |
340 | if (!uptodate) |
341 | set_bit(BTRFS_ORDERED_IOERR, &entry->flags); | |
342 | ||
af7a6509 | 343 | if (entry->bytes_left == 0) { |
163cf09c | 344 | ret = test_and_set_bit(BTRFS_ORDERED_IO_DONE, &entry->flags); |
093258e6 DS |
345 | /* test_and_set_bit implies a barrier */ |
346 | cond_wake_up_nomb(&entry->wait); | |
af7a6509 | 347 | } else { |
163cf09c | 348 | ret = 1; |
af7a6509 | 349 | } |
163cf09c CM |
350 | out: |
351 | if (!ret && cached && entry) { | |
352 | *cached = entry; | |
e76edab7 | 353 | refcount_inc(&entry->refs); |
163cf09c | 354 | } |
5fd02043 | 355 | spin_unlock_irqrestore(&tree->lock, flags); |
163cf09c CM |
356 | return ret == 0; |
357 | } | |
358 | ||
eb84ae03 CM |
359 | /* |
360 | * this is used to account for finished IO across a given range | |
361 | * of the file. The IO should not span ordered extents. If | |
362 | * a given ordered_extent is completely done, 1 is returned, otherwise | |
363 | * 0. | |
364 | * | |
365 | * test_and_set_bit on a flag in the struct btrfs_ordered_extent is used | |
366 | * to make sure this function only returns 1 once for a given ordered extent. | |
367 | */ | |
e6dcd2dc | 368 | int btrfs_dec_test_ordered_pending(struct inode *inode, |
5a1a3df1 | 369 | struct btrfs_ordered_extent **cached, |
5fd02043 | 370 | u64 file_offset, u64 io_size, int uptodate) |
dc17ff8f | 371 | { |
e6dcd2dc | 372 | struct btrfs_ordered_inode_tree *tree; |
dc17ff8f | 373 | struct rb_node *node; |
5a1a3df1 | 374 | struct btrfs_ordered_extent *entry = NULL; |
5fd02043 | 375 | unsigned long flags; |
e6dcd2dc CM |
376 | int ret; |
377 | ||
378 | tree = &BTRFS_I(inode)->ordered_tree; | |
5fd02043 JB |
379 | spin_lock_irqsave(&tree->lock, flags); |
380 | if (cached && *cached) { | |
381 | entry = *cached; | |
382 | goto have_entry; | |
383 | } | |
384 | ||
e6dcd2dc | 385 | node = tree_search(tree, file_offset); |
dc17ff8f | 386 | if (!node) { |
e6dcd2dc CM |
387 | ret = 1; |
388 | goto out; | |
dc17ff8f CM |
389 | } |
390 | ||
e6dcd2dc | 391 | entry = rb_entry(node, struct btrfs_ordered_extent, rb_node); |
5fd02043 | 392 | have_entry: |
e6dcd2dc CM |
393 | if (!offset_in_entry(entry, file_offset)) { |
394 | ret = 1; | |
395 | goto out; | |
dc17ff8f | 396 | } |
e6dcd2dc | 397 | |
8b62b72b | 398 | if (io_size > entry->bytes_left) { |
efe120a0 FH |
399 | btrfs_crit(BTRFS_I(inode)->root->fs_info, |
400 | "bad ordered accounting left %llu size %llu", | |
c1c9ff7c | 401 | entry->bytes_left, io_size); |
8b62b72b CM |
402 | } |
403 | entry->bytes_left -= io_size; | |
5fd02043 JB |
404 | if (!uptodate) |
405 | set_bit(BTRFS_ORDERED_IOERR, &entry->flags); | |
406 | ||
af7a6509 | 407 | if (entry->bytes_left == 0) { |
e6dcd2dc | 408 | ret = test_and_set_bit(BTRFS_ORDERED_IO_DONE, &entry->flags); |
093258e6 DS |
409 | /* test_and_set_bit implies a barrier */ |
410 | cond_wake_up_nomb(&entry->wait); | |
af7a6509 | 411 | } else { |
8b62b72b | 412 | ret = 1; |
af7a6509 | 413 | } |
e6dcd2dc | 414 | out: |
5a1a3df1 JB |
415 | if (!ret && cached && entry) { |
416 | *cached = entry; | |
e76edab7 | 417 | refcount_inc(&entry->refs); |
5a1a3df1 | 418 | } |
5fd02043 | 419 | spin_unlock_irqrestore(&tree->lock, flags); |
e6dcd2dc CM |
420 | return ret == 0; |
421 | } | |
dc17ff8f | 422 | |
eb84ae03 CM |
423 | /* |
424 | * used to drop a reference on an ordered extent. This will free | |
425 | * the extent if the last reference is dropped | |
426 | */ | |
143bede5 | 427 | void btrfs_put_ordered_extent(struct btrfs_ordered_extent *entry) |
e6dcd2dc | 428 | { |
ba1da2f4 CM |
429 | struct list_head *cur; |
430 | struct btrfs_ordered_sum *sum; | |
431 | ||
1abe9b8a | 432 | trace_btrfs_ordered_extent_put(entry->inode, entry); |
433 | ||
e76edab7 | 434 | if (refcount_dec_and_test(&entry->refs)) { |
61de718f FM |
435 | ASSERT(list_empty(&entry->log_list)); |
436 | ASSERT(list_empty(&entry->trans_list)); | |
437 | ASSERT(list_empty(&entry->root_extent_list)); | |
438 | ASSERT(RB_EMPTY_NODE(&entry->rb_node)); | |
5fd02043 JB |
439 | if (entry->inode) |
440 | btrfs_add_delayed_iput(entry->inode); | |
d397712b | 441 | while (!list_empty(&entry->list)) { |
ba1da2f4 CM |
442 | cur = entry->list.next; |
443 | sum = list_entry(cur, struct btrfs_ordered_sum, list); | |
444 | list_del(&sum->list); | |
445 | kfree(sum); | |
446 | } | |
6352b91d | 447 | kmem_cache_free(btrfs_ordered_extent_cache, entry); |
ba1da2f4 | 448 | } |
dc17ff8f | 449 | } |
cee36a03 | 450 | |
eb84ae03 CM |
451 | /* |
452 | * remove an ordered extent from the tree. No references are dropped | |
5fd02043 | 453 | * and waiters are woken up. |
eb84ae03 | 454 | */ |
5fd02043 JB |
455 | void btrfs_remove_ordered_extent(struct inode *inode, |
456 | struct btrfs_ordered_extent *entry) | |
cee36a03 | 457 | { |
0b246afa | 458 | struct btrfs_fs_info *fs_info = btrfs_sb(inode->i_sb); |
e6dcd2dc | 459 | struct btrfs_ordered_inode_tree *tree; |
8b62f87b JB |
460 | struct btrfs_inode *btrfs_inode = BTRFS_I(inode); |
461 | struct btrfs_root *root = btrfs_inode->root; | |
cee36a03 | 462 | struct rb_node *node; |
cee36a03 | 463 | |
8b62f87b JB |
464 | /* This is paired with btrfs_add_ordered_extent. */ |
465 | spin_lock(&btrfs_inode->lock); | |
466 | btrfs_mod_outstanding_extents(btrfs_inode, -1); | |
467 | spin_unlock(&btrfs_inode->lock); | |
468 | if (root != fs_info->tree_root) | |
43b18595 | 469 | btrfs_delalloc_release_metadata(btrfs_inode, entry->len, false); |
8b62f87b JB |
470 | |
471 | tree = &btrfs_inode->ordered_tree; | |
5fd02043 | 472 | spin_lock_irq(&tree->lock); |
e6dcd2dc | 473 | node = &entry->rb_node; |
cee36a03 | 474 | rb_erase(node, &tree->tree); |
61de718f | 475 | RB_CLEAR_NODE(node); |
1b8e7e45 FDBM |
476 | if (tree->last == node) |
477 | tree->last = NULL; | |
e6dcd2dc | 478 | set_bit(BTRFS_ORDERED_COMPLETE, &entry->flags); |
5fd02043 | 479 | spin_unlock_irq(&tree->lock); |
3eaa2885 | 480 | |
199c2a9c | 481 | spin_lock(&root->ordered_extent_lock); |
3eaa2885 | 482 | list_del_init(&entry->root_extent_list); |
199c2a9c | 483 | root->nr_ordered_extents--; |
5a3f23d5 | 484 | |
1abe9b8a | 485 | trace_btrfs_ordered_extent_remove(inode, entry); |
486 | ||
199c2a9c | 487 | if (!root->nr_ordered_extents) { |
0b246afa | 488 | spin_lock(&fs_info->ordered_root_lock); |
199c2a9c MX |
489 | BUG_ON(list_empty(&root->ordered_root)); |
490 | list_del_init(&root->ordered_root); | |
0b246afa | 491 | spin_unlock(&fs_info->ordered_root_lock); |
199c2a9c MX |
492 | } |
493 | spin_unlock(&root->ordered_extent_lock); | |
e6dcd2dc | 494 | wake_up(&entry->wait); |
cee36a03 CM |
495 | } |
496 | ||
d458b054 | 497 | static void btrfs_run_ordered_extent_work(struct btrfs_work *work) |
9afab882 MX |
498 | { |
499 | struct btrfs_ordered_extent *ordered; | |
500 | ||
501 | ordered = container_of(work, struct btrfs_ordered_extent, flush_work); | |
502 | btrfs_start_ordered_extent(ordered->inode, ordered, 1); | |
503 | complete(&ordered->completion); | |
504 | } | |
505 | ||
d352ac68 CM |
506 | /* |
507 | * wait for all the ordered extents in a root. This is done when balancing | |
508 | * space between drives. | |
509 | */ | |
6374e57a | 510 | u64 btrfs_wait_ordered_extents(struct btrfs_root *root, u64 nr, |
578def7c | 511 | const u64 range_start, const u64 range_len) |
3eaa2885 | 512 | { |
0b246afa | 513 | struct btrfs_fs_info *fs_info = root->fs_info; |
578def7c FM |
514 | LIST_HEAD(splice); |
515 | LIST_HEAD(skipped); | |
516 | LIST_HEAD(works); | |
9afab882 | 517 | struct btrfs_ordered_extent *ordered, *next; |
6374e57a | 518 | u64 count = 0; |
578def7c | 519 | const u64 range_end = range_start + range_len; |
3eaa2885 | 520 | |
31f3d255 | 521 | mutex_lock(&root->ordered_extent_mutex); |
199c2a9c MX |
522 | spin_lock(&root->ordered_extent_lock); |
523 | list_splice_init(&root->ordered_extents, &splice); | |
b0244199 | 524 | while (!list_empty(&splice) && nr) { |
199c2a9c MX |
525 | ordered = list_first_entry(&splice, struct btrfs_ordered_extent, |
526 | root_extent_list); | |
578def7c FM |
527 | |
528 | if (range_end <= ordered->start || | |
529 | ordered->start + ordered->disk_len <= range_start) { | |
530 | list_move_tail(&ordered->root_extent_list, &skipped); | |
531 | cond_resched_lock(&root->ordered_extent_lock); | |
532 | continue; | |
533 | } | |
534 | ||
199c2a9c MX |
535 | list_move_tail(&ordered->root_extent_list, |
536 | &root->ordered_extents); | |
e76edab7 | 537 | refcount_inc(&ordered->refs); |
199c2a9c | 538 | spin_unlock(&root->ordered_extent_lock); |
3eaa2885 | 539 | |
a44903ab | 540 | btrfs_init_work(&ordered->flush_work, |
9e0af237 | 541 | btrfs_flush_delalloc_helper, |
a44903ab | 542 | btrfs_run_ordered_extent_work, NULL, NULL); |
199c2a9c | 543 | list_add_tail(&ordered->work_list, &works); |
0b246afa | 544 | btrfs_queue_work(fs_info->flush_workers, &ordered->flush_work); |
3eaa2885 | 545 | |
9afab882 | 546 | cond_resched(); |
199c2a9c | 547 | spin_lock(&root->ordered_extent_lock); |
6374e57a | 548 | if (nr != U64_MAX) |
b0244199 MX |
549 | nr--; |
550 | count++; | |
3eaa2885 | 551 | } |
578def7c | 552 | list_splice_tail(&skipped, &root->ordered_extents); |
b0244199 | 553 | list_splice_tail(&splice, &root->ordered_extents); |
199c2a9c | 554 | spin_unlock(&root->ordered_extent_lock); |
9afab882 MX |
555 | |
556 | list_for_each_entry_safe(ordered, next, &works, work_list) { | |
557 | list_del_init(&ordered->work_list); | |
558 | wait_for_completion(&ordered->completion); | |
9afab882 | 559 | btrfs_put_ordered_extent(ordered); |
9afab882 MX |
560 | cond_resched(); |
561 | } | |
31f3d255 | 562 | mutex_unlock(&root->ordered_extent_mutex); |
b0244199 MX |
563 | |
564 | return count; | |
3eaa2885 CM |
565 | } |
566 | ||
6374e57a CM |
567 | u64 btrfs_wait_ordered_roots(struct btrfs_fs_info *fs_info, u64 nr, |
568 | const u64 range_start, const u64 range_len) | |
199c2a9c MX |
569 | { |
570 | struct btrfs_root *root; | |
571 | struct list_head splice; | |
6374e57a CM |
572 | u64 total_done = 0; |
573 | u64 done; | |
199c2a9c MX |
574 | |
575 | INIT_LIST_HEAD(&splice); | |
576 | ||
8b9d83cd | 577 | mutex_lock(&fs_info->ordered_operations_mutex); |
199c2a9c MX |
578 | spin_lock(&fs_info->ordered_root_lock); |
579 | list_splice_init(&fs_info->ordered_roots, &splice); | |
b0244199 | 580 | while (!list_empty(&splice) && nr) { |
199c2a9c MX |
581 | root = list_first_entry(&splice, struct btrfs_root, |
582 | ordered_root); | |
583 | root = btrfs_grab_fs_root(root); | |
584 | BUG_ON(!root); | |
585 | list_move_tail(&root->ordered_root, | |
586 | &fs_info->ordered_roots); | |
587 | spin_unlock(&fs_info->ordered_root_lock); | |
588 | ||
578def7c FM |
589 | done = btrfs_wait_ordered_extents(root, nr, |
590 | range_start, range_len); | |
199c2a9c | 591 | btrfs_put_fs_root(root); |
f0e9b7d6 | 592 | total_done += done; |
199c2a9c MX |
593 | |
594 | spin_lock(&fs_info->ordered_root_lock); | |
6374e57a | 595 | if (nr != U64_MAX) { |
b0244199 | 596 | nr -= done; |
b0244199 | 597 | } |
199c2a9c | 598 | } |
931aa877 | 599 | list_splice_tail(&splice, &fs_info->ordered_roots); |
199c2a9c | 600 | spin_unlock(&fs_info->ordered_root_lock); |
8b9d83cd | 601 | mutex_unlock(&fs_info->ordered_operations_mutex); |
f0e9b7d6 FM |
602 | |
603 | return total_done; | |
199c2a9c MX |
604 | } |
605 | ||
eb84ae03 CM |
606 | /* |
607 | * Used to start IO or wait for a given ordered extent to finish. | |
608 | * | |
609 | * If wait is one, this effectively waits on page writeback for all the pages | |
610 | * in the extent, and it waits on the io completion code to insert | |
611 | * metadata into the btree corresponding to the extent | |
612 | */ | |
613 | void btrfs_start_ordered_extent(struct inode *inode, | |
614 | struct btrfs_ordered_extent *entry, | |
615 | int wait) | |
e6dcd2dc CM |
616 | { |
617 | u64 start = entry->file_offset; | |
618 | u64 end = start + entry->len - 1; | |
e1b81e67 | 619 | |
1abe9b8a | 620 | trace_btrfs_ordered_extent_start(inode, entry); |
621 | ||
eb84ae03 CM |
622 | /* |
623 | * pages in the range can be dirty, clean or writeback. We | |
624 | * start IO on any dirty ones so the wait doesn't stall waiting | |
b2570314 | 625 | * for the flusher thread to find them |
eb84ae03 | 626 | */ |
4b46fce2 JB |
627 | if (!test_bit(BTRFS_ORDERED_DIRECT, &entry->flags)) |
628 | filemap_fdatawrite_range(inode->i_mapping, start, end); | |
c8b97818 | 629 | if (wait) { |
e6dcd2dc CM |
630 | wait_event(entry->wait, test_bit(BTRFS_ORDERED_COMPLETE, |
631 | &entry->flags)); | |
c8b97818 | 632 | } |
e6dcd2dc | 633 | } |
cee36a03 | 634 | |
eb84ae03 CM |
635 | /* |
636 | * Used to wait on ordered extents across a large range of bytes. | |
637 | */ | |
0ef8b726 | 638 | int btrfs_wait_ordered_range(struct inode *inode, u64 start, u64 len) |
e6dcd2dc | 639 | { |
0ef8b726 | 640 | int ret = 0; |
28aeeac1 | 641 | int ret_wb = 0; |
e6dcd2dc | 642 | u64 end; |
e5a2217e | 643 | u64 orig_end; |
e6dcd2dc | 644 | struct btrfs_ordered_extent *ordered; |
e5a2217e CM |
645 | |
646 | if (start + len < start) { | |
f421950f | 647 | orig_end = INT_LIMIT(loff_t); |
e5a2217e CM |
648 | } else { |
649 | orig_end = start + len - 1; | |
f421950f CM |
650 | if (orig_end > INT_LIMIT(loff_t)) |
651 | orig_end = INT_LIMIT(loff_t); | |
e5a2217e | 652 | } |
551ebb2d | 653 | |
e5a2217e CM |
654 | /* start IO across the range first to instantiate any delalloc |
655 | * extents | |
656 | */ | |
728404da | 657 | ret = btrfs_fdatawrite_range(inode, start, orig_end); |
0ef8b726 JB |
658 | if (ret) |
659 | return ret; | |
728404da | 660 | |
28aeeac1 FM |
661 | /* |
662 | * If we have a writeback error don't return immediately. Wait first | |
663 | * for any ordered extents that haven't completed yet. This is to make | |
664 | * sure no one can dirty the same page ranges and call writepages() | |
665 | * before the ordered extents complete - to avoid failures (-EEXIST) | |
666 | * when adding the new ordered extents to the ordered tree. | |
667 | */ | |
668 | ret_wb = filemap_fdatawait_range(inode->i_mapping, start, orig_end); | |
e5a2217e | 669 | |
f421950f | 670 | end = orig_end; |
d397712b | 671 | while (1) { |
e6dcd2dc | 672 | ordered = btrfs_lookup_first_ordered_extent(inode, end); |
d397712b | 673 | if (!ordered) |
e6dcd2dc | 674 | break; |
e5a2217e | 675 | if (ordered->file_offset > orig_end) { |
e6dcd2dc CM |
676 | btrfs_put_ordered_extent(ordered); |
677 | break; | |
678 | } | |
b52abf1e | 679 | if (ordered->file_offset + ordered->len <= start) { |
e6dcd2dc CM |
680 | btrfs_put_ordered_extent(ordered); |
681 | break; | |
682 | } | |
e5a2217e | 683 | btrfs_start_ordered_extent(inode, ordered, 1); |
e6dcd2dc | 684 | end = ordered->file_offset; |
0ef8b726 JB |
685 | if (test_bit(BTRFS_ORDERED_IOERR, &ordered->flags)) |
686 | ret = -EIO; | |
e6dcd2dc | 687 | btrfs_put_ordered_extent(ordered); |
0ef8b726 | 688 | if (ret || end == 0 || end == start) |
e6dcd2dc CM |
689 | break; |
690 | end--; | |
691 | } | |
28aeeac1 | 692 | return ret_wb ? ret_wb : ret; |
cee36a03 CM |
693 | } |
694 | ||
eb84ae03 CM |
695 | /* |
696 | * find an ordered extent corresponding to file_offset. return NULL if | |
697 | * nothing is found, otherwise take a reference on the extent and return it | |
698 | */ | |
e6dcd2dc CM |
699 | struct btrfs_ordered_extent *btrfs_lookup_ordered_extent(struct inode *inode, |
700 | u64 file_offset) | |
701 | { | |
702 | struct btrfs_ordered_inode_tree *tree; | |
703 | struct rb_node *node; | |
704 | struct btrfs_ordered_extent *entry = NULL; | |
705 | ||
706 | tree = &BTRFS_I(inode)->ordered_tree; | |
5fd02043 | 707 | spin_lock_irq(&tree->lock); |
e6dcd2dc CM |
708 | node = tree_search(tree, file_offset); |
709 | if (!node) | |
710 | goto out; | |
711 | ||
712 | entry = rb_entry(node, struct btrfs_ordered_extent, rb_node); | |
713 | if (!offset_in_entry(entry, file_offset)) | |
714 | entry = NULL; | |
715 | if (entry) | |
e76edab7 | 716 | refcount_inc(&entry->refs); |
e6dcd2dc | 717 | out: |
5fd02043 | 718 | spin_unlock_irq(&tree->lock); |
e6dcd2dc CM |
719 | return entry; |
720 | } | |
721 | ||
4b46fce2 JB |
722 | /* Since the DIO code tries to lock a wide area we need to look for any ordered |
723 | * extents that exist in the range, rather than just the start of the range. | |
724 | */ | |
a776c6fa NB |
725 | struct btrfs_ordered_extent *btrfs_lookup_ordered_range( |
726 | struct btrfs_inode *inode, u64 file_offset, u64 len) | |
4b46fce2 JB |
727 | { |
728 | struct btrfs_ordered_inode_tree *tree; | |
729 | struct rb_node *node; | |
730 | struct btrfs_ordered_extent *entry = NULL; | |
731 | ||
a776c6fa | 732 | tree = &inode->ordered_tree; |
5fd02043 | 733 | spin_lock_irq(&tree->lock); |
4b46fce2 JB |
734 | node = tree_search(tree, file_offset); |
735 | if (!node) { | |
736 | node = tree_search(tree, file_offset + len); | |
737 | if (!node) | |
738 | goto out; | |
739 | } | |
740 | ||
741 | while (1) { | |
742 | entry = rb_entry(node, struct btrfs_ordered_extent, rb_node); | |
743 | if (range_overlaps(entry, file_offset, len)) | |
744 | break; | |
745 | ||
746 | if (entry->file_offset >= file_offset + len) { | |
747 | entry = NULL; | |
748 | break; | |
749 | } | |
750 | entry = NULL; | |
751 | node = rb_next(node); | |
752 | if (!node) | |
753 | break; | |
754 | } | |
755 | out: | |
756 | if (entry) | |
e76edab7 | 757 | refcount_inc(&entry->refs); |
5fd02043 | 758 | spin_unlock_irq(&tree->lock); |
4b46fce2 JB |
759 | return entry; |
760 | } | |
761 | ||
eb84ae03 CM |
762 | /* |
763 | * lookup and return any extent before 'file_offset'. NULL is returned | |
764 | * if none is found | |
765 | */ | |
e6dcd2dc | 766 | struct btrfs_ordered_extent * |
d397712b | 767 | btrfs_lookup_first_ordered_extent(struct inode *inode, u64 file_offset) |
e6dcd2dc CM |
768 | { |
769 | struct btrfs_ordered_inode_tree *tree; | |
770 | struct rb_node *node; | |
771 | struct btrfs_ordered_extent *entry = NULL; | |
772 | ||
773 | tree = &BTRFS_I(inode)->ordered_tree; | |
5fd02043 | 774 | spin_lock_irq(&tree->lock); |
e6dcd2dc CM |
775 | node = tree_search(tree, file_offset); |
776 | if (!node) | |
777 | goto out; | |
778 | ||
779 | entry = rb_entry(node, struct btrfs_ordered_extent, rb_node); | |
e76edab7 | 780 | refcount_inc(&entry->refs); |
e6dcd2dc | 781 | out: |
5fd02043 | 782 | spin_unlock_irq(&tree->lock); |
e6dcd2dc | 783 | return entry; |
81d7ed29 | 784 | } |
dbe674a9 | 785 | |
eb84ae03 CM |
786 | /* |
787 | * After an extent is done, call this to conditionally update the on disk | |
788 | * i_size. i_size is updated to cover any fully written part of the file. | |
789 | */ | |
c2167754 | 790 | int btrfs_ordered_update_i_size(struct inode *inode, u64 offset, |
dbe674a9 CM |
791 | struct btrfs_ordered_extent *ordered) |
792 | { | |
793 | struct btrfs_ordered_inode_tree *tree = &BTRFS_I(inode)->ordered_tree; | |
dbe674a9 CM |
794 | u64 disk_i_size; |
795 | u64 new_i_size; | |
c2167754 | 796 | u64 i_size = i_size_read(inode); |
dbe674a9 | 797 | struct rb_node *node; |
c2167754 | 798 | struct rb_node *prev = NULL; |
dbe674a9 | 799 | struct btrfs_ordered_extent *test; |
c2167754 | 800 | int ret = 1; |
c0d2f610 | 801 | u64 orig_offset = offset; |
c2167754 | 802 | |
77cef2ec JB |
803 | spin_lock_irq(&tree->lock); |
804 | if (ordered) { | |
c2167754 | 805 | offset = entry_end(ordered); |
77cef2ec JB |
806 | if (test_bit(BTRFS_ORDERED_TRUNCATED, &ordered->flags)) |
807 | offset = min(offset, | |
808 | ordered->file_offset + | |
809 | ordered->truncated_len); | |
810 | } else { | |
da17066c | 811 | offset = ALIGN(offset, btrfs_inode_sectorsize(inode)); |
77cef2ec | 812 | } |
dbe674a9 CM |
813 | disk_i_size = BTRFS_I(inode)->disk_i_size; |
814 | ||
19fd2df5 LB |
815 | /* |
816 | * truncate file. | |
817 | * If ordered is not NULL, then this is called from endio and | |
818 | * disk_i_size will be updated by either truncate itself or any | |
819 | * in-flight IOs which are inside the disk_i_size. | |
820 | * | |
821 | * Because btrfs_setsize() may set i_size with disk_i_size if truncate | |
822 | * fails somehow, we need to make sure we have a precise disk_i_size by | |
823 | * updating it as usual. | |
824 | * | |
825 | */ | |
826 | if (!ordered && disk_i_size > i_size) { | |
c0d2f610 | 827 | BTRFS_I(inode)->disk_i_size = orig_offset; |
c2167754 YZ |
828 | ret = 0; |
829 | goto out; | |
830 | } | |
831 | ||
dbe674a9 CM |
832 | /* |
833 | * if the disk i_size is already at the inode->i_size, or | |
834 | * this ordered extent is inside the disk i_size, we're done | |
835 | */ | |
5d1f4020 JB |
836 | if (disk_i_size == i_size) |
837 | goto out; | |
838 | ||
839 | /* | |
840 | * We still need to update disk_i_size if outstanding_isize is greater | |
841 | * than disk_i_size. | |
842 | */ | |
843 | if (offset <= disk_i_size && | |
844 | (!ordered || ordered->outstanding_isize <= disk_i_size)) | |
dbe674a9 | 845 | goto out; |
dbe674a9 | 846 | |
dbe674a9 CM |
847 | /* |
848 | * walk backward from this ordered extent to disk_i_size. | |
849 | * if we find an ordered extent then we can't update disk i_size | |
850 | * yet | |
851 | */ | |
c2167754 YZ |
852 | if (ordered) { |
853 | node = rb_prev(&ordered->rb_node); | |
854 | } else { | |
855 | prev = tree_search(tree, offset); | |
856 | /* | |
857 | * we insert file extents without involving ordered struct, | |
858 | * so there should be no ordered struct cover this offset | |
859 | */ | |
860 | if (prev) { | |
861 | test = rb_entry(prev, struct btrfs_ordered_extent, | |
862 | rb_node); | |
863 | BUG_ON(offset_in_entry(test, offset)); | |
864 | } | |
865 | node = prev; | |
866 | } | |
5fd02043 | 867 | for (; node; node = rb_prev(node)) { |
dbe674a9 | 868 | test = rb_entry(node, struct btrfs_ordered_extent, rb_node); |
5fd02043 | 869 | |
bb7ab3b9 | 870 | /* We treat this entry as if it doesn't exist */ |
5fd02043 JB |
871 | if (test_bit(BTRFS_ORDERED_UPDATED_ISIZE, &test->flags)) |
872 | continue; | |
62c821a8 LB |
873 | |
874 | if (entry_end(test) <= disk_i_size) | |
dbe674a9 | 875 | break; |
c2167754 | 876 | if (test->file_offset >= i_size) |
dbe674a9 | 877 | break; |
62c821a8 LB |
878 | |
879 | /* | |
880 | * We don't update disk_i_size now, so record this undealt | |
881 | * i_size. Or we will not know the real i_size. | |
882 | */ | |
883 | if (test->outstanding_isize < offset) | |
884 | test->outstanding_isize = offset; | |
885 | if (ordered && | |
886 | ordered->outstanding_isize > test->outstanding_isize) | |
887 | test->outstanding_isize = ordered->outstanding_isize; | |
888 | goto out; | |
dbe674a9 | 889 | } |
b9a8cc5b | 890 | new_i_size = min_t(u64, offset, i_size); |
dbe674a9 CM |
891 | |
892 | /* | |
b9a8cc5b MX |
893 | * Some ordered extents may completed before the current one, and |
894 | * we hold the real i_size in ->outstanding_isize. | |
dbe674a9 | 895 | */ |
b9a8cc5b MX |
896 | if (ordered && ordered->outstanding_isize > new_i_size) |
897 | new_i_size = min_t(u64, ordered->outstanding_isize, i_size); | |
dbe674a9 | 898 | BTRFS_I(inode)->disk_i_size = new_i_size; |
c2167754 | 899 | ret = 0; |
dbe674a9 | 900 | out: |
c2167754 | 901 | /* |
5fd02043 JB |
902 | * We need to do this because we can't remove ordered extents until |
903 | * after the i_disk_size has been updated and then the inode has been | |
904 | * updated to reflect the change, so we need to tell anybody who finds | |
905 | * this ordered extent that we've already done all the real work, we | |
906 | * just haven't completed all the other work. | |
c2167754 YZ |
907 | */ |
908 | if (ordered) | |
5fd02043 JB |
909 | set_bit(BTRFS_ORDERED_UPDATED_ISIZE, &ordered->flags); |
910 | spin_unlock_irq(&tree->lock); | |
c2167754 | 911 | return ret; |
dbe674a9 | 912 | } |
ba1da2f4 | 913 | |
eb84ae03 CM |
914 | /* |
915 | * search the ordered extents for one corresponding to 'offset' and | |
916 | * try to find a checksum. This is used because we allow pages to | |
917 | * be reclaimed before their checksum is actually put into the btree | |
918 | */ | |
d20f7043 | 919 | int btrfs_find_ordered_sum(struct inode *inode, u64 offset, u64 disk_bytenr, |
e4100d98 | 920 | u32 *sum, int len) |
ba1da2f4 CM |
921 | { |
922 | struct btrfs_ordered_sum *ordered_sum; | |
ba1da2f4 CM |
923 | struct btrfs_ordered_extent *ordered; |
924 | struct btrfs_ordered_inode_tree *tree = &BTRFS_I(inode)->ordered_tree; | |
3edf7d33 CM |
925 | unsigned long num_sectors; |
926 | unsigned long i; | |
da17066c | 927 | u32 sectorsize = btrfs_inode_sectorsize(inode); |
e4100d98 | 928 | int index = 0; |
ba1da2f4 CM |
929 | |
930 | ordered = btrfs_lookup_ordered_extent(inode, offset); | |
931 | if (!ordered) | |
e4100d98 | 932 | return 0; |
ba1da2f4 | 933 | |
5fd02043 | 934 | spin_lock_irq(&tree->lock); |
c6e30871 | 935 | list_for_each_entry_reverse(ordered_sum, &ordered->list, list) { |
e4100d98 MX |
936 | if (disk_bytenr >= ordered_sum->bytenr && |
937 | disk_bytenr < ordered_sum->bytenr + ordered_sum->len) { | |
938 | i = (disk_bytenr - ordered_sum->bytenr) >> | |
939 | inode->i_sb->s_blocksize_bits; | |
e4100d98 MX |
940 | num_sectors = ordered_sum->len >> |
941 | inode->i_sb->s_blocksize_bits; | |
f51a4a18 MX |
942 | num_sectors = min_t(int, len - index, num_sectors - i); |
943 | memcpy(sum + index, ordered_sum->sums + i, | |
944 | num_sectors); | |
945 | ||
946 | index += (int)num_sectors; | |
947 | if (index == len) | |
948 | goto out; | |
949 | disk_bytenr += num_sectors * sectorsize; | |
ba1da2f4 CM |
950 | } |
951 | } | |
952 | out: | |
5fd02043 | 953 | spin_unlock_irq(&tree->lock); |
89642229 | 954 | btrfs_put_ordered_extent(ordered); |
e4100d98 | 955 | return index; |
ba1da2f4 CM |
956 | } |
957 | ||
6352b91d MX |
958 | int __init ordered_data_init(void) |
959 | { | |
960 | btrfs_ordered_extent_cache = kmem_cache_create("btrfs_ordered_extent", | |
961 | sizeof(struct btrfs_ordered_extent), 0, | |
fba4b697 | 962 | SLAB_MEM_SPREAD, |
6352b91d MX |
963 | NULL); |
964 | if (!btrfs_ordered_extent_cache) | |
965 | return -ENOMEM; | |
25287e0a | 966 | |
6352b91d MX |
967 | return 0; |
968 | } | |
969 | ||
e67c718b | 970 | void __cold ordered_data_exit(void) |
6352b91d | 971 | { |
5598e900 | 972 | kmem_cache_destroy(btrfs_ordered_extent_cache); |
6352b91d | 973 | } |