1 // SPDX-License-Identifier: GPL-2.0
2
3 #include <linux/sizes.h>
4 #include <linux/list_sort.h>
5 #include "misc.h"
6 #include "ctree.h"
7 #include "block-group.h"
8 #include "space-info.h"
9 #include "disk-io.h"
10 #include "free-space-cache.h"
11 #include "free-space-tree.h"
12 #include "volumes.h"
13 #include "transaction.h"
14 #include "ref-verify.h"
15 #include "sysfs.h"
16 #include "tree-log.h"
17 #include "delalloc-space.h"
18 #include "discard.h"
19 #include "raid56.h"
20 #include "zoned.h"
21 #include "fs.h"
22 #include "accessors.h"
23 #include "extent-tree.h"
24
25 static struct kmem_cache *block_group_cache;
26 static struct kmem_cache *free_space_ctl_cache;
27
btrfs_init_block_group(void)28 int __init btrfs_init_block_group(void)
29 {
30 block_group_cache = kmem_cache_create("btrfs_block_group",
31 sizeof(struct btrfs_block_group),
32 0, 0, NULL);
33 if (!block_group_cache)
34 return -ENOMEM;
35
36 free_space_ctl_cache = kmem_cache_create("btrfs_free_space_ctl",
37 sizeof(struct btrfs_free_space_ctl),
38 0, 0, NULL);
39 if (!free_space_ctl_cache) {
40 kmem_cache_destroy(block_group_cache);
41 return -ENOMEM;
42 }
43
44 return 0;
45 }
46
btrfs_exit_block_group(void)47 void __cold btrfs_exit_block_group(void)
48 {
49 kmem_cache_destroy(block_group_cache);
50 kmem_cache_destroy(free_space_ctl_cache);
51 }
52
53 #ifdef CONFIG_BTRFS_DEBUG
btrfs_should_fragment_free_space(const struct btrfs_block_group * block_group)54 int btrfs_should_fragment_free_space(const struct btrfs_block_group *block_group)
55 {
56 struct btrfs_fs_info *fs_info = block_group->fs_info;
57
58 return (btrfs_test_opt(fs_info, FRAGMENT_METADATA) &&
59 block_group->flags & BTRFS_BLOCK_GROUP_METADATA) ||
60 (btrfs_test_opt(fs_info, FRAGMENT_DATA) &&
61 block_group->flags & BTRFS_BLOCK_GROUP_DATA);
62 }
63 #endif
64
has_unwritten_metadata(struct btrfs_block_group * block_group)65 static inline bool has_unwritten_metadata(struct btrfs_block_group *block_group)
66 {
67 /* The meta_write_pointer is available only on the zoned setup. */
68 if (!btrfs_is_zoned(block_group->fs_info))
69 return false;
70
71 if (block_group->flags & BTRFS_BLOCK_GROUP_DATA)
72 return false;
73
74 return block_group->start + block_group->alloc_offset >
75 block_group->meta_write_pointer;
76 }
77
78 /*
79 * Return target flags in extended format or 0 if restripe for this chunk_type
80 * is not in progress
81 *
82 * Should be called with balance_lock held
83 */
get_restripe_target(const struct btrfs_fs_info * fs_info,u64 flags)84 static u64 get_restripe_target(const struct btrfs_fs_info *fs_info, u64 flags)
85 {
86 const struct btrfs_balance_control *bctl = fs_info->balance_ctl;
87 u64 target = 0;
88
89 if (!bctl)
90 return 0;
91
92 if (flags & BTRFS_BLOCK_GROUP_DATA &&
93 bctl->data.flags & BTRFS_BALANCE_ARGS_CONVERT) {
94 target = BTRFS_BLOCK_GROUP_DATA | bctl->data.target;
95 } else if (flags & BTRFS_BLOCK_GROUP_SYSTEM &&
96 bctl->sys.flags & BTRFS_BALANCE_ARGS_CONVERT) {
97 target = BTRFS_BLOCK_GROUP_SYSTEM | bctl->sys.target;
98 } else if (flags & BTRFS_BLOCK_GROUP_METADATA &&
99 bctl->meta.flags & BTRFS_BALANCE_ARGS_CONVERT) {
100 target = BTRFS_BLOCK_GROUP_METADATA | bctl->meta.target;
101 }
102
103 return target;
104 }
105
106 /*
107 * @flags: available profiles in extended format (see ctree.h)
108 *
109 * Return reduced profile in chunk format. If profile changing is in progress
110 * (either running or paused) picks the target profile (if it's already
111 * available), otherwise falls back to plain reducing.
112 */
btrfs_reduce_alloc_profile(struct btrfs_fs_info * fs_info,u64 flags)113 static u64 btrfs_reduce_alloc_profile(struct btrfs_fs_info *fs_info, u64 flags)
114 {
115 u64 num_devices = fs_info->fs_devices->rw_devices;
116 u64 target;
117 u64 raid_type;
118 u64 allowed = 0;
119
120 /*
121 * See if restripe for this chunk_type is in progress, if so try to
122 * reduce to the target profile
123 */
124 spin_lock(&fs_info->balance_lock);
125 target = get_restripe_target(fs_info, flags);
126 if (target) {
127 spin_unlock(&fs_info->balance_lock);
128 return extended_to_chunk(target);
129 }
130 spin_unlock(&fs_info->balance_lock);
131
132 /* First, mask out the RAID levels which aren't possible */
133 for (raid_type = 0; raid_type < BTRFS_NR_RAID_TYPES; raid_type++) {
134 if (num_devices >= btrfs_raid_array[raid_type].devs_min)
135 allowed |= btrfs_raid_array[raid_type].bg_flag;
136 }
137 allowed &= flags;
138
139 /* Select the highest-redundancy RAID level. */
140 if (allowed & BTRFS_BLOCK_GROUP_RAID1C4)
141 allowed = BTRFS_BLOCK_GROUP_RAID1C4;
142 else if (allowed & BTRFS_BLOCK_GROUP_RAID6)
143 allowed = BTRFS_BLOCK_GROUP_RAID6;
144 else if (allowed & BTRFS_BLOCK_GROUP_RAID1C3)
145 allowed = BTRFS_BLOCK_GROUP_RAID1C3;
146 else if (allowed & BTRFS_BLOCK_GROUP_RAID5)
147 allowed = BTRFS_BLOCK_GROUP_RAID5;
148 else if (allowed & BTRFS_BLOCK_GROUP_RAID10)
149 allowed = BTRFS_BLOCK_GROUP_RAID10;
150 else if (allowed & BTRFS_BLOCK_GROUP_RAID1)
151 allowed = BTRFS_BLOCK_GROUP_RAID1;
152 else if (allowed & BTRFS_BLOCK_GROUP_DUP)
153 allowed = BTRFS_BLOCK_GROUP_DUP;
154 else if (allowed & BTRFS_BLOCK_GROUP_RAID0)
155 allowed = BTRFS_BLOCK_GROUP_RAID0;
156
157 flags &= ~BTRFS_BLOCK_GROUP_PROFILE_MASK;
158
159 return extended_to_chunk(flags | allowed);
160 }
161
btrfs_get_alloc_profile(struct btrfs_fs_info * fs_info,u64 orig_flags)162 u64 btrfs_get_alloc_profile(struct btrfs_fs_info *fs_info, u64 orig_flags)
163 {
164 unsigned seq;
165 u64 flags;
166
167 do {
168 flags = orig_flags;
169 seq = read_seqbegin(&fs_info->profiles_lock);
170
171 if (flags & BTRFS_BLOCK_GROUP_DATA)
172 flags |= fs_info->avail_data_alloc_bits;
173 else if (flags & BTRFS_BLOCK_GROUP_SYSTEM)
174 flags |= fs_info->avail_system_alloc_bits;
175 else if (flags & BTRFS_BLOCK_GROUP_METADATA)
176 flags |= fs_info->avail_metadata_alloc_bits;
177 } while (read_seqretry(&fs_info->profiles_lock, seq));
178
179 return btrfs_reduce_alloc_profile(fs_info, flags);
180 }
181
btrfs_get_block_group(struct btrfs_block_group * cache)182 void btrfs_get_block_group(struct btrfs_block_group *cache)
183 {
184 refcount_inc(&cache->refs);
185 }
186
btrfs_put_block_group(struct btrfs_block_group * cache)187 void btrfs_put_block_group(struct btrfs_block_group *cache)
188 {
189 if (refcount_dec_and_test(&cache->refs)) {
190 WARN_ON(cache->pinned > 0);
191 /*
192 * If there was a failure to cleanup a log tree, very likely due
193 * to an IO failure on a writeback attempt of one or more of its
194 * extent buffers, we could not do proper (and cheap) unaccounting
195 * of their reserved space, so don't warn on reserved > 0 in that
196 * case.
197 */
198 if (!(cache->flags & BTRFS_BLOCK_GROUP_METADATA) ||
199 !BTRFS_FS_LOG_CLEANUP_ERROR(cache->fs_info))
200 WARN_ON(cache->reserved > 0);
201
202 /*
203 * A block_group shouldn't be on the discard_list anymore.
204 * Remove the block_group from the discard_list to prevent us
205 * from causing a panic due to NULL pointer dereference.
206 */
207 if (WARN_ON(!list_empty(&cache->discard_list)))
208 btrfs_discard_cancel_work(&cache->fs_info->discard_ctl,
209 cache);
210
211 kmem_cache_free(free_space_ctl_cache, cache->free_space_ctl);
212 btrfs_free_chunk_map(cache->physical_map);
213 kmem_cache_free(block_group_cache, cache);
214 }
215 }
216
btrfs_bg_start_cmp(const struct rb_node * new,const struct rb_node * exist)217 static int btrfs_bg_start_cmp(const struct rb_node *new,
218 const struct rb_node *exist)
219 {
220 const struct btrfs_block_group *new_bg =
221 rb_entry(new, struct btrfs_block_group, cache_node);
222 const struct btrfs_block_group *exist_bg =
223 rb_entry(exist, struct btrfs_block_group, cache_node);
224
225 if (new_bg->start < exist_bg->start)
226 return -1;
227 if (new_bg->start > exist_bg->start)
228 return 1;
229 return 0;
230 }
231
232 /*
233 * This adds the block group to the fs_info rb tree for the block group cache
234 */
btrfs_add_block_group_cache(struct btrfs_block_group * block_group)235 static int btrfs_add_block_group_cache(struct btrfs_block_group *block_group)
236 {
237 struct btrfs_fs_info *fs_info = block_group->fs_info;
238 struct rb_node *exist;
239 int ret = 0;
240
241 ASSERT(block_group->length != 0);
242
243 write_lock(&fs_info->block_group_cache_lock);
244
245 exist = rb_find_add_cached(&block_group->cache_node,
246 &fs_info->block_group_cache_tree, btrfs_bg_start_cmp);
247 if (exist)
248 ret = -EEXIST;
249 write_unlock(&fs_info->block_group_cache_lock);
250
251 return ret;
252 }
253
254 /*
255 * This will return the block group at or after bytenr if contains is 0, else
256 * it will return the block group that contains the bytenr
257 */
block_group_cache_tree_search(struct btrfs_fs_info * info,u64 bytenr,int contains)258 static struct btrfs_block_group *block_group_cache_tree_search(
259 struct btrfs_fs_info *info, u64 bytenr, int contains)
260 {
261 struct btrfs_block_group *cache, *ret = NULL;
262 struct rb_node *n;
263 u64 end, start;
264
265 read_lock(&info->block_group_cache_lock);
266 n = info->block_group_cache_tree.rb_root.rb_node;
267
268 while (n) {
269 cache = rb_entry(n, struct btrfs_block_group, cache_node);
270 end = btrfs_block_group_end(cache) - 1;
271 start = cache->start;
272
273 if (bytenr < start) {
274 if (!contains && (!ret || start < ret->start))
275 ret = cache;
276 n = n->rb_left;
277 } else if (bytenr > start) {
278 if (contains && bytenr <= end) {
279 ret = cache;
280 break;
281 }
282 n = n->rb_right;
283 } else {
284 ret = cache;
285 break;
286 }
287 }
288 if (ret)
289 btrfs_get_block_group(ret);
290 read_unlock(&info->block_group_cache_lock);
291
292 return ret;
293 }
294
295 /*
296 * Return the block group that starts at or after bytenr
297 */
btrfs_lookup_first_block_group(struct btrfs_fs_info * info,u64 bytenr)298 struct btrfs_block_group *btrfs_lookup_first_block_group(
299 struct btrfs_fs_info *info, u64 bytenr)
300 {
301 return block_group_cache_tree_search(info, bytenr, 0);
302 }
303
304 /*
305 * Return the block group that contains the given bytenr
306 */
btrfs_lookup_block_group(struct btrfs_fs_info * info,u64 bytenr)307 struct btrfs_block_group *btrfs_lookup_block_group(
308 struct btrfs_fs_info *info, u64 bytenr)
309 {
310 return block_group_cache_tree_search(info, bytenr, 1);
311 }
312
btrfs_next_block_group(struct btrfs_block_group * cache)313 struct btrfs_block_group *btrfs_next_block_group(
314 struct btrfs_block_group *cache)
315 {
316 struct btrfs_fs_info *fs_info = cache->fs_info;
317 struct rb_node *node;
318
319 read_lock(&fs_info->block_group_cache_lock);
320
321 /* If our block group was removed, we need a full search. */
322 if (RB_EMPTY_NODE(&cache->cache_node)) {
323 const u64 next_bytenr = btrfs_block_group_end(cache);
324
325 read_unlock(&fs_info->block_group_cache_lock);
326 btrfs_put_block_group(cache);
327 return btrfs_lookup_first_block_group(fs_info, next_bytenr);
328 }
329 node = rb_next(&cache->cache_node);
330 btrfs_put_block_group(cache);
331 if (node) {
332 cache = rb_entry(node, struct btrfs_block_group, cache_node);
333 btrfs_get_block_group(cache);
334 } else
335 cache = NULL;
336 read_unlock(&fs_info->block_group_cache_lock);
337 return cache;
338 }
339
340 /*
341 * Check if we can do a NOCOW write for a given extent.
342 *
343 * @fs_info: The filesystem information object.
344 * @bytenr: Logical start address of the extent.
345 *
346 * Check if we can do a NOCOW write for the given extent, and increments the
347 * number of NOCOW writers in the block group that contains the extent, as long
348 * as the block group exists and it's currently not in read-only mode.
349 *
350 * Returns: A non-NULL block group pointer if we can do a NOCOW write, the caller
351 * is responsible for calling btrfs_dec_nocow_writers() later.
352 *
353 * Or NULL if we can not do a NOCOW write
354 */
btrfs_inc_nocow_writers(struct btrfs_fs_info * fs_info,u64 bytenr)355 struct btrfs_block_group *btrfs_inc_nocow_writers(struct btrfs_fs_info *fs_info,
356 u64 bytenr)
357 {
358 struct btrfs_block_group *bg;
359 bool can_nocow = true;
360
361 bg = btrfs_lookup_block_group(fs_info, bytenr);
362 if (!bg)
363 return NULL;
364
365 spin_lock(&bg->lock);
366 if (bg->ro)
367 can_nocow = false;
368 else
369 atomic_inc(&bg->nocow_writers);
370 spin_unlock(&bg->lock);
371
372 if (!can_nocow) {
373 btrfs_put_block_group(bg);
374 return NULL;
375 }
376
377 /* No put on block group, done by btrfs_dec_nocow_writers(). */
378 return bg;
379 }
380
381 /*
382 * Decrement the number of NOCOW writers in a block group.
383 *
384 * This is meant to be called after a previous call to btrfs_inc_nocow_writers(),
385 * and on the block group returned by that call. Typically this is called after
386 * creating an ordered extent for a NOCOW write, to prevent races with scrub and
387 * relocation.
388 *
389 * After this call, the caller should not use the block group anymore. It it wants
390 * to use it, then it should get a reference on it before calling this function.
391 */
btrfs_dec_nocow_writers(struct btrfs_block_group * bg)392 void btrfs_dec_nocow_writers(struct btrfs_block_group *bg)
393 {
394 if (atomic_dec_and_test(&bg->nocow_writers))
395 wake_up_var(&bg->nocow_writers);
396
397 /* For the lookup done by a previous call to btrfs_inc_nocow_writers(). */
398 btrfs_put_block_group(bg);
399 }
400
btrfs_wait_nocow_writers(struct btrfs_block_group * bg)401 void btrfs_wait_nocow_writers(struct btrfs_block_group *bg)
402 {
403 wait_var_event(&bg->nocow_writers, !atomic_read(&bg->nocow_writers));
404 }
405
btrfs_dec_block_group_reservations(struct btrfs_fs_info * fs_info,const u64 start)406 void btrfs_dec_block_group_reservations(struct btrfs_fs_info *fs_info,
407 const u64 start)
408 {
409 struct btrfs_block_group *bg;
410
411 bg = btrfs_lookup_block_group(fs_info, start);
412 ASSERT(bg);
413 if (atomic_dec_and_test(&bg->reservations))
414 wake_up_var(&bg->reservations);
415 btrfs_put_block_group(bg);
416 }
417
btrfs_wait_block_group_reservations(struct btrfs_block_group * bg)418 void btrfs_wait_block_group_reservations(struct btrfs_block_group *bg)
419 {
420 struct btrfs_space_info *space_info = bg->space_info;
421
422 ASSERT(bg->ro);
423
424 if (!(bg->flags & BTRFS_BLOCK_GROUP_DATA))
425 return;
426
427 /*
428 * Our block group is read only but before we set it to read only,
429 * some task might have had allocated an extent from it already, but it
430 * has not yet created a respective ordered extent (and added it to a
431 * root's list of ordered extents).
432 * Therefore wait for any task currently allocating extents, since the
433 * block group's reservations counter is incremented while a read lock
434 * on the groups' semaphore is held and decremented after releasing
435 * the read access on that semaphore and creating the ordered extent.
436 */
437 down_write(&space_info->groups_sem);
438 up_write(&space_info->groups_sem);
439
440 wait_var_event(&bg->reservations, !atomic_read(&bg->reservations));
441 }
442
btrfs_get_caching_control(struct btrfs_block_group * cache)443 struct btrfs_caching_control *btrfs_get_caching_control(
444 struct btrfs_block_group *cache)
445 {
446 struct btrfs_caching_control *ctl;
447
448 spin_lock(&cache->lock);
449 if (!cache->caching_ctl) {
450 spin_unlock(&cache->lock);
451 return NULL;
452 }
453
454 ctl = cache->caching_ctl;
455 refcount_inc(&ctl->count);
456 spin_unlock(&cache->lock);
457 return ctl;
458 }
459
btrfs_put_caching_control(struct btrfs_caching_control * ctl)460 static void btrfs_put_caching_control(struct btrfs_caching_control *ctl)
461 {
462 if (refcount_dec_and_test(&ctl->count))
463 kfree(ctl);
464 }
465
466 /*
467 * When we wait for progress in the block group caching, its because our
468 * allocation attempt failed at least once. So, we must sleep and let some
469 * progress happen before we try again.
470 *
471 * This function will sleep at least once waiting for new free space to show
472 * up, and then it will check the block group free space numbers for our min
473 * num_bytes. Another option is to have it go ahead and look in the rbtree for
474 * a free extent of a given size, but this is a good start.
475 *
476 * Callers of this must check if cache->cached == BTRFS_CACHE_ERROR before using
477 * any of the information in this block group.
478 */
btrfs_wait_block_group_cache_progress(struct btrfs_block_group * cache,u64 num_bytes)479 void btrfs_wait_block_group_cache_progress(struct btrfs_block_group *cache,
480 u64 num_bytes)
481 {
482 struct btrfs_caching_control *caching_ctl;
483 int progress;
484
485 caching_ctl = btrfs_get_caching_control(cache);
486 if (!caching_ctl)
487 return;
488
489 /*
490 * We've already failed to allocate from this block group, so even if
491 * there's enough space in the block group it isn't contiguous enough to
492 * allow for an allocation, so wait for at least the next wakeup tick,
493 * or for the thing to be done.
494 */
495 progress = atomic_read(&caching_ctl->progress);
496
497 wait_event(caching_ctl->wait, btrfs_block_group_done(cache) ||
498 (progress != atomic_read(&caching_ctl->progress) &&
499 (cache->free_space_ctl->free_space >= num_bytes)));
500
501 btrfs_put_caching_control(caching_ctl);
502 }
503
btrfs_caching_ctl_wait_done(struct btrfs_block_group * cache,struct btrfs_caching_control * caching_ctl)504 static int btrfs_caching_ctl_wait_done(struct btrfs_block_group *cache,
505 struct btrfs_caching_control *caching_ctl)
506 {
507 wait_event(caching_ctl->wait, btrfs_block_group_done(cache));
508 return cache->cached == BTRFS_CACHE_ERROR ? -EIO : 0;
509 }
510
btrfs_wait_block_group_cache_done(struct btrfs_block_group * cache)511 static int btrfs_wait_block_group_cache_done(struct btrfs_block_group *cache)
512 {
513 struct btrfs_caching_control *caching_ctl;
514 int ret;
515
516 caching_ctl = btrfs_get_caching_control(cache);
517 if (!caching_ctl)
518 return (cache->cached == BTRFS_CACHE_ERROR) ? -EIO : 0;
519 ret = btrfs_caching_ctl_wait_done(cache, caching_ctl);
520 btrfs_put_caching_control(caching_ctl);
521 return ret;
522 }
523
524 #ifdef CONFIG_BTRFS_DEBUG
fragment_free_space(struct btrfs_block_group * block_group)525 static void fragment_free_space(struct btrfs_block_group *block_group)
526 {
527 struct btrfs_fs_info *fs_info = block_group->fs_info;
528 u64 start = block_group->start;
529 u64 len = block_group->length;
530 u64 chunk = block_group->flags & BTRFS_BLOCK_GROUP_METADATA ?
531 fs_info->nodesize : fs_info->sectorsize;
532 u64 step = chunk << 1;
533
534 while (len > chunk) {
535 btrfs_remove_free_space(block_group, start, chunk);
536 start += step;
537 if (len < step)
538 len = 0;
539 else
540 len -= step;
541 }
542 }
543 #endif
544
545 /*
546 * Add a free space range to the in memory free space cache of a block group.
547 * This checks if the range contains super block locations and any such
548 * locations are not added to the free space cache.
549 *
550 * @block_group: The target block group.
551 * @start: Start offset of the range.
552 * @end: End offset of the range (exclusive).
553 * @total_added_ret: Optional pointer to return the total amount of space
554 * added to the block group's free space cache.
555 *
556 * Returns 0 on success or < 0 on error.
557 */
btrfs_add_new_free_space(struct btrfs_block_group * block_group,u64 start,u64 end,u64 * total_added_ret)558 int btrfs_add_new_free_space(struct btrfs_block_group *block_group, u64 start,
559 u64 end, u64 *total_added_ret)
560 {
561 struct btrfs_fs_info *info = block_group->fs_info;
562 u64 extent_start, extent_end, size;
563 int ret;
564
565 if (total_added_ret)
566 *total_added_ret = 0;
567
568 while (start < end) {
569 if (!btrfs_find_first_extent_bit(&info->excluded_extents, start,
570 &extent_start, &extent_end,
571 EXTENT_DIRTY, NULL))
572 break;
573
574 if (extent_start <= start) {
575 start = extent_end + 1;
576 } else if (extent_start > start && extent_start < end) {
577 size = extent_start - start;
578 ret = btrfs_add_free_space_async_trimmed(block_group,
579 start, size);
580 if (ret)
581 return ret;
582 if (total_added_ret)
583 *total_added_ret += size;
584 start = extent_end + 1;
585 } else {
586 break;
587 }
588 }
589
590 if (start < end) {
591 size = end - start;
592 ret = btrfs_add_free_space_async_trimmed(block_group, start,
593 size);
594 if (ret)
595 return ret;
596 if (total_added_ret)
597 *total_added_ret += size;
598 }
599
600 return 0;
601 }
602
603 /*
604 * Get an arbitrary extent item index / max_index through the block group
605 *
606 * @caching_ctl the caching control containing the block group to sample from
607 * @index: the integral step through the block group to grab from
608 * @max_index: the granularity of the sampling
609 * @key: return value parameter for the item we find
610 * @path: path to use for searching in the extent tree
611 *
612 * Pre-conditions on indices:
613 * 0 <= index <= max_index
614 * 0 < max_index
615 *
616 * Returns: 0 on success, 1 if the search didn't yield a useful item.
617 */
sample_block_group_extent_item(struct btrfs_caching_control * caching_ctl,int index,int max_index,struct btrfs_key * found_key,struct btrfs_path * path)618 static int sample_block_group_extent_item(struct btrfs_caching_control *caching_ctl,
619 int index, int max_index,
620 struct btrfs_key *found_key,
621 struct btrfs_path *path)
622 {
623 struct btrfs_block_group *block_group = caching_ctl->block_group;
624 struct btrfs_fs_info *fs_info = block_group->fs_info;
625 struct btrfs_root *extent_root;
626 u64 search_offset;
627 const u64 search_end = btrfs_block_group_end(block_group);
628 struct btrfs_key search_key;
629 int ret = 0;
630
631 ASSERT(index >= 0);
632 ASSERT(index <= max_index);
633 ASSERT(max_index > 0);
634 lockdep_assert_held(&caching_ctl->mutex);
635 lockdep_assert_held_read(&fs_info->commit_root_sem);
636
637 extent_root = btrfs_extent_root(fs_info, block_group->start);
638 if (unlikely(!extent_root)) {
639 btrfs_err(fs_info,
640 "missing extent root for block group at offset %llu",
641 block_group->start);
642 return -EUCLEAN;
643 }
644
645 search_offset = index * div_u64(block_group->length, max_index);
646 search_key.objectid = block_group->start + search_offset;
647 search_key.type = BTRFS_EXTENT_ITEM_KEY;
648 search_key.offset = 0;
649
650 btrfs_for_each_slot(extent_root, &search_key, found_key, path, ret) {
651 /* Success; sampled an extent item in the block group */
652 if (found_key->type == BTRFS_EXTENT_ITEM_KEY &&
653 found_key->objectid >= block_group->start &&
654 found_key->objectid + found_key->offset <= search_end)
655 break;
656
657 /* We can't possibly find a valid extent item anymore */
658 if (found_key->objectid >= search_end) {
659 ret = 1;
660 break;
661 }
662 }
663
664 lockdep_assert_held(&caching_ctl->mutex);
665 lockdep_assert_held_read(&fs_info->commit_root_sem);
666 return ret;
667 }
668
669 /*
670 * Best effort attempt to compute a block group's size class while caching it.
671 *
672 * @block_group: the block group we are caching
673 *
674 * We cannot infer the size class while adding free space extents, because that
675 * logic doesn't care about contiguous file extents (it doesn't differentiate
676 * between a 100M extent and 100 contiguous 1M extents). So we need to read the
677 * file extent items. Reading all of them is quite wasteful, because usually
678 * only a handful are enough to give a good answer. Therefore, we just grab 5 of
679 * them at even steps through the block group and pick the smallest size class
680 * we see. Since size class is best effort, and not guaranteed in general,
681 * inaccuracy is acceptable.
682 *
683 * To be more explicit about why this algorithm makes sense:
684 *
685 * If we are caching in a block group from disk, then there are three major cases
686 * to consider:
687 * 1. the block group is well behaved and all extents in it are the same size
688 * class.
689 * 2. the block group is mostly one size class with rare exceptions for last
690 * ditch allocations
691 * 3. the block group was populated before size classes and can have a totally
692 * arbitrary mix of size classes.
693 *
694 * In case 1, looking at any extent in the block group will yield the correct
695 * result. For the mixed cases, taking the minimum size class seems like a good
696 * approximation, since gaps from frees will be usable to the size class. For
697 * 2., a small handful of file extents is likely to yield the right answer. For
698 * 3, we can either read every file extent, or admit that this is best effort
699 * anyway and try to stay fast.
700 *
701 * No errors are returned since failing to determine the size class is not a
702 * critical error, size classes are just an optimization.
703 */
load_block_group_size_class(struct btrfs_caching_control * caching_ctl)704 static void load_block_group_size_class(struct btrfs_caching_control *caching_ctl)
705 {
706 BTRFS_PATH_AUTO_RELEASE(path);
707 struct btrfs_block_group *block_group = caching_ctl->block_group;
708 struct btrfs_fs_info *fs_info = block_group->fs_info;
709 struct btrfs_key key;
710 int i;
711 u64 min_size = block_group->length;
712 enum btrfs_block_group_size_class size_class = BTRFS_BG_SZ_NONE;
713
714 /*
715 * Since we run in workqueue context, we allocate the path on stack to
716 * avoid memory allocation failure, as the stack in a work queue task
717 * is not deep.
718 */
719 ASSERT(current_work() == &caching_ctl->work.normal_work);
720
721 if (!btrfs_block_group_should_use_size_class(block_group))
722 return;
723
724 path.skip_locking = true;
725 path.search_commit_root = true;
726 path.reada = READA_FORWARD;
727
728 lockdep_assert_held(&caching_ctl->mutex);
729 lockdep_assert_held_read(&fs_info->commit_root_sem);
730 for (i = 0; i < 5; ++i) {
731 int ret;
732
733 ret = sample_block_group_extent_item(caching_ctl, i, 5, &key, &path);
734 if (ret < 0)
735 return;
736 btrfs_release_path(&path);
737 if (ret > 0)
738 continue;
739 min_size = min_t(u64, min_size, key.offset);
740 size_class = btrfs_calc_block_group_size_class(min_size);
741 }
742 if (size_class != BTRFS_BG_SZ_NONE) {
743 spin_lock(&block_group->lock);
744 block_group->size_class = size_class;
745 spin_unlock(&block_group->lock);
746 }
747 }
748
load_extent_tree_free(struct btrfs_caching_control * caching_ctl)749 static int load_extent_tree_free(struct btrfs_caching_control *caching_ctl)
750 {
751 struct btrfs_block_group *block_group = caching_ctl->block_group;
752 const u64 block_group_end = btrfs_block_group_end(block_group);
753 struct btrfs_fs_info *fs_info = block_group->fs_info;
754 struct btrfs_root *extent_root;
755 BTRFS_PATH_AUTO_FREE(path);
756 struct extent_buffer *leaf;
757 struct btrfs_key key;
758 u64 total_found = 0;
759 u64 last = block_group->start;
760 u32 nritems;
761 int ret;
762 bool wakeup = true;
763
764 path = btrfs_alloc_path();
765 if (!path)
766 return -ENOMEM;
767
768 extent_root = btrfs_extent_root(fs_info, last);
769 if (unlikely(!extent_root)) {
770 btrfs_err(fs_info,
771 "missing extent root for block group at offset %llu",
772 block_group->start);
773 return -EUCLEAN;
774 }
775
776 #ifdef CONFIG_BTRFS_DEBUG
777 /*
778 * If we're fragmenting we don't want to make anybody think we can
779 * allocate from this block group until we've had a chance to fragment
780 * the free space.
781 */
782 if (btrfs_should_fragment_free_space(block_group))
783 wakeup = false;
784 #endif
785 /*
786 * We don't want to deadlock with somebody trying to allocate a new
787 * extent for the extent root while also trying to search the extent
788 * root to add free space. So we skip locking and search the commit
789 * root, since its read-only
790 */
791 path->skip_locking = true;
792 path->search_commit_root = true;
793 path->reada = READA_FORWARD;
794
795 key.objectid = last;
796 key.type = BTRFS_EXTENT_ITEM_KEY;
797 key.offset = 0;
798
799 next:
800 ret = btrfs_search_slot(NULL, extent_root, &key, path, 0, 0);
801 if (ret < 0)
802 return ret;
803
804 leaf = path->nodes[0];
805 nritems = btrfs_header_nritems(leaf);
806
807 while (1) {
808 if (btrfs_fs_closing_done(fs_info)) {
809 last = (u64)-1;
810 break;
811 }
812
813 if (path->slots[0] < nritems) {
814 btrfs_item_key_to_cpu(leaf, &key, path->slots[0]);
815 } else {
816 ret = btrfs_find_next_key(extent_root, path, &key, 0, 0);
817 if (ret)
818 break;
819
820 if (need_resched() ||
821 rwsem_is_contended(&fs_info->commit_root_sem)) {
822 btrfs_release_path(path);
823 up_read(&fs_info->commit_root_sem);
824 mutex_unlock(&caching_ctl->mutex);
825 cond_resched();
826 mutex_lock(&caching_ctl->mutex);
827 down_read(&fs_info->commit_root_sem);
828 goto next;
829 }
830
831 ret = btrfs_next_leaf(extent_root, path);
832 if (ret < 0)
833 return ret;
834 if (ret)
835 break;
836 leaf = path->nodes[0];
837 nritems = btrfs_header_nritems(leaf);
838 continue;
839 }
840
841 if (key.objectid < last) {
842 key.objectid = last;
843 key.type = BTRFS_EXTENT_ITEM_KEY;
844 key.offset = 0;
845 btrfs_release_path(path);
846 goto next;
847 }
848
849 if (key.objectid < block_group->start) {
850 path->slots[0]++;
851 continue;
852 }
853
854 if (key.objectid >= block_group_end)
855 break;
856
857 if (key.type == BTRFS_EXTENT_ITEM_KEY ||
858 key.type == BTRFS_METADATA_ITEM_KEY) {
859 u64 space_added;
860
861 ret = btrfs_add_new_free_space(block_group, last,
862 key.objectid, &space_added);
863 if (ret)
864 return ret;
865 total_found += space_added;
866 if (key.type == BTRFS_METADATA_ITEM_KEY)
867 last = key.objectid +
868 fs_info->nodesize;
869 else
870 last = key.objectid + key.offset;
871
872 if (total_found > CACHING_CTL_WAKE_UP) {
873 total_found = 0;
874 if (wakeup) {
875 atomic_inc(&caching_ctl->progress);
876 wake_up(&caching_ctl->wait);
877 }
878 }
879 }
880 path->slots[0]++;
881 }
882
883 return btrfs_add_new_free_space(block_group, last, block_group_end, NULL);
884 }
885
btrfs_free_excluded_extents(const struct btrfs_block_group * bg)886 static inline void btrfs_free_excluded_extents(const struct btrfs_block_group *bg)
887 {
888 btrfs_clear_extent_bit(&bg->fs_info->excluded_extents, bg->start,
889 btrfs_block_group_end(bg) - 1, EXTENT_DIRTY, NULL);
890 }
891
caching_thread(struct btrfs_work * work)892 static noinline void caching_thread(struct btrfs_work *work)
893 {
894 struct btrfs_block_group *block_group;
895 struct btrfs_fs_info *fs_info;
896 struct btrfs_caching_control *caching_ctl;
897 int ret;
898
899 caching_ctl = container_of(work, struct btrfs_caching_control, work);
900 block_group = caching_ctl->block_group;
901 fs_info = block_group->fs_info;
902
903 mutex_lock(&caching_ctl->mutex);
904 down_read(&fs_info->commit_root_sem);
905
906 load_block_group_size_class(caching_ctl);
907 if (btrfs_test_opt(fs_info, SPACE_CACHE)) {
908 ret = load_free_space_cache(block_group);
909 if (ret == 1) {
910 ret = 0;
911 goto done;
912 }
913
914 /*
915 * We failed to load the space cache, set ourselves to
916 * CACHE_STARTED and carry on.
917 */
918 spin_lock(&block_group->lock);
919 block_group->cached = BTRFS_CACHE_STARTED;
920 spin_unlock(&block_group->lock);
921 wake_up(&caching_ctl->wait);
922 }
923
924 /*
925 * If we are in the transaction that populated the free space tree we
926 * can't actually cache from the free space tree as our commit root and
927 * real root are the same, so we could change the contents of the blocks
928 * while caching. Instead do the slow caching in this case, and after
929 * the transaction has committed we will be safe.
930 */
931 if (btrfs_fs_compat_ro(fs_info, FREE_SPACE_TREE) &&
932 !(test_bit(BTRFS_FS_FREE_SPACE_TREE_UNTRUSTED, &fs_info->flags)))
933 ret = btrfs_load_free_space_tree(caching_ctl);
934 else
935 ret = load_extent_tree_free(caching_ctl);
936 done:
937 spin_lock(&block_group->lock);
938 block_group->caching_ctl = NULL;
939 block_group->cached = ret ? BTRFS_CACHE_ERROR : BTRFS_CACHE_FINISHED;
940 spin_unlock(&block_group->lock);
941
942 #ifdef CONFIG_BTRFS_DEBUG
943 if (btrfs_should_fragment_free_space(block_group)) {
944 u64 bytes_used;
945
946 spin_lock(&block_group->space_info->lock);
947 spin_lock(&block_group->lock);
948 bytes_used = block_group->length - block_group->used;
949 block_group->space_info->bytes_used += bytes_used >> 1;
950 spin_unlock(&block_group->lock);
951 spin_unlock(&block_group->space_info->lock);
952 fragment_free_space(block_group);
953 }
954 #endif
955
956 up_read(&fs_info->commit_root_sem);
957 btrfs_free_excluded_extents(block_group);
958 mutex_unlock(&caching_ctl->mutex);
959
960 wake_up(&caching_ctl->wait);
961
962 btrfs_put_caching_control(caching_ctl);
963 btrfs_put_block_group(block_group);
964 }
965
btrfs_cache_block_group(struct btrfs_block_group * cache,bool wait)966 int btrfs_cache_block_group(struct btrfs_block_group *cache, bool wait)
967 {
968 struct btrfs_fs_info *fs_info = cache->fs_info;
969 struct btrfs_caching_control *caching_ctl = NULL;
970 int ret = 0;
971
972 /* Allocator for zoned filesystems does not use the cache at all */
973 if (btrfs_is_zoned(fs_info))
974 return 0;
975
976 /*
977 * No allocations can be done from remapped block groups, so they have
978 * no entries in the free-space tree.
979 */
980 if (cache->flags & BTRFS_BLOCK_GROUP_REMAPPED)
981 return 0;
982
983 caching_ctl = kzalloc_obj(*caching_ctl, GFP_NOFS);
984 if (!caching_ctl)
985 return -ENOMEM;
986
987 INIT_LIST_HEAD(&caching_ctl->list);
988 mutex_init(&caching_ctl->mutex);
989 init_waitqueue_head(&caching_ctl->wait);
990 caching_ctl->block_group = cache;
991 refcount_set(&caching_ctl->count, 2);
992 atomic_set(&caching_ctl->progress, 0);
993 btrfs_init_work(&caching_ctl->work, caching_thread, NULL);
994
995 spin_lock(&cache->lock);
996 if (cache->cached != BTRFS_CACHE_NO) {
997 kfree(caching_ctl);
998
999 caching_ctl = cache->caching_ctl;
1000 if (caching_ctl)
1001 refcount_inc(&caching_ctl->count);
1002 spin_unlock(&cache->lock);
1003 goto out;
1004 }
1005 WARN_ON(cache->caching_ctl);
1006 cache->caching_ctl = caching_ctl;
1007 cache->cached = BTRFS_CACHE_STARTED;
1008 spin_unlock(&cache->lock);
1009
1010 write_lock(&fs_info->block_group_cache_lock);
1011 refcount_inc(&caching_ctl->count);
1012 list_add_tail(&caching_ctl->list, &fs_info->caching_block_groups);
1013 write_unlock(&fs_info->block_group_cache_lock);
1014
1015 btrfs_get_block_group(cache);
1016
1017 btrfs_queue_work(fs_info->caching_workers, &caching_ctl->work);
1018 out:
1019 if (wait && caching_ctl)
1020 ret = btrfs_caching_ctl_wait_done(cache, caching_ctl);
1021 if (caching_ctl)
1022 btrfs_put_caching_control(caching_ctl);
1023
1024 return ret;
1025 }
1026
clear_avail_alloc_bits(struct btrfs_fs_info * fs_info,u64 flags)1027 static void clear_avail_alloc_bits(struct btrfs_fs_info *fs_info, u64 flags)
1028 {
1029 u64 extra_flags = chunk_to_extended(flags) &
1030 BTRFS_EXTENDED_PROFILE_MASK;
1031
1032 write_seqlock(&fs_info->profiles_lock);
1033 if (flags & BTRFS_BLOCK_GROUP_DATA)
1034 fs_info->avail_data_alloc_bits &= ~extra_flags;
1035 if (flags & BTRFS_BLOCK_GROUP_METADATA)
1036 fs_info->avail_metadata_alloc_bits &= ~extra_flags;
1037 if (flags & BTRFS_BLOCK_GROUP_SYSTEM)
1038 fs_info->avail_system_alloc_bits &= ~extra_flags;
1039 write_sequnlock(&fs_info->profiles_lock);
1040 }
1041
1042 /*
1043 * Clear incompat bits for the following feature(s):
1044 *
1045 * - RAID56 - in case there's neither RAID5 nor RAID6 profile block group
1046 * in the whole filesystem
1047 *
1048 * - RAID1C34 - same as above for RAID1C3 and RAID1C4 block groups
1049 */
clear_incompat_bg_bits(struct btrfs_fs_info * fs_info,u64 flags)1050 static void clear_incompat_bg_bits(struct btrfs_fs_info *fs_info, u64 flags)
1051 {
1052 bool found_raid56 = false;
1053 bool found_raid1c34 = false;
1054
1055 if ((flags & BTRFS_BLOCK_GROUP_RAID56_MASK) ||
1056 (flags & BTRFS_BLOCK_GROUP_RAID1C3) ||
1057 (flags & BTRFS_BLOCK_GROUP_RAID1C4)) {
1058 struct list_head *head = &fs_info->space_info;
1059 struct btrfs_space_info *sinfo;
1060
1061 list_for_each_entry_rcu(sinfo, head, list) {
1062 down_read(&sinfo->groups_sem);
1063 if (!list_empty(&sinfo->block_groups[BTRFS_RAID_RAID5]))
1064 found_raid56 = true;
1065 if (!list_empty(&sinfo->block_groups[BTRFS_RAID_RAID6]))
1066 found_raid56 = true;
1067 if (!list_empty(&sinfo->block_groups[BTRFS_RAID_RAID1C3]))
1068 found_raid1c34 = true;
1069 if (!list_empty(&sinfo->block_groups[BTRFS_RAID_RAID1C4]))
1070 found_raid1c34 = true;
1071 up_read(&sinfo->groups_sem);
1072 }
1073 if (!found_raid56)
1074 btrfs_clear_fs_incompat(fs_info, RAID56);
1075 if (!found_raid1c34)
1076 btrfs_clear_fs_incompat(fs_info, RAID1C34);
1077 }
1078 }
1079
btrfs_block_group_root(struct btrfs_fs_info * fs_info)1080 static struct btrfs_root *btrfs_block_group_root(struct btrfs_fs_info *fs_info)
1081 {
1082 if (btrfs_fs_compat_ro(fs_info, BLOCK_GROUP_TREE))
1083 return fs_info->block_group_root;
1084 return btrfs_extent_root(fs_info, 0);
1085 }
1086
remove_block_group_item(struct btrfs_trans_handle * trans,struct btrfs_path * path,struct btrfs_block_group * block_group)1087 static int remove_block_group_item(struct btrfs_trans_handle *trans,
1088 struct btrfs_path *path,
1089 struct btrfs_block_group *block_group)
1090 {
1091 struct btrfs_fs_info *fs_info = trans->fs_info;
1092 struct btrfs_root *root;
1093 struct btrfs_key key;
1094 int ret;
1095
1096 root = btrfs_block_group_root(fs_info);
1097 if (unlikely(!root)) {
1098 btrfs_err(fs_info, "missing block group root");
1099 return -EUCLEAN;
1100 }
1101
1102 key.objectid = block_group->start;
1103 key.type = BTRFS_BLOCK_GROUP_ITEM_KEY;
1104 key.offset = block_group->length;
1105
1106 ret = btrfs_search_slot(trans, root, &key, path, -1, 1);
1107 if (ret > 0)
1108 ret = -ENOENT;
1109 if (ret < 0)
1110 return ret;
1111
1112 return btrfs_del_item(trans, root, path);
1113 }
1114
btrfs_remove_bg_from_sinfo(struct btrfs_block_group * bg)1115 void btrfs_remove_bg_from_sinfo(struct btrfs_block_group *bg)
1116 {
1117 int factor = btrfs_bg_type_to_factor(bg->flags);
1118
1119 spin_lock(&bg->space_info->lock);
1120 if (btrfs_test_opt(bg->fs_info, ENOSPC_DEBUG)) {
1121 WARN_ON(bg->space_info->total_bytes < bg->length);
1122 WARN_ON(bg->space_info->bytes_readonly < bg->length - bg->zone_unusable);
1123 WARN_ON(bg->space_info->bytes_zone_unusable < bg->zone_unusable);
1124 WARN_ON(bg->space_info->disk_total < bg->length * factor);
1125 }
1126 bg->space_info->total_bytes -= bg->length;
1127 bg->space_info->bytes_readonly -= (bg->length - bg->zone_unusable);
1128 btrfs_space_info_update_bytes_zone_unusable(bg->space_info, -bg->zone_unusable);
1129 bg->space_info->disk_total -= bg->length * factor;
1130 spin_unlock(&bg->space_info->lock);
1131 }
1132
btrfs_remove_block_group(struct btrfs_trans_handle * trans,struct btrfs_chunk_map * map)1133 int btrfs_remove_block_group(struct btrfs_trans_handle *trans,
1134 struct btrfs_chunk_map *map)
1135 {
1136 struct btrfs_fs_info *fs_info = trans->fs_info;
1137 BTRFS_PATH_AUTO_FREE(path);
1138 struct btrfs_block_group *block_group;
1139 struct btrfs_free_cluster *cluster;
1140 struct inode *inode;
1141 struct kobject *kobj = NULL;
1142 int ret;
1143 int index;
1144 struct btrfs_caching_control *caching_ctl = NULL;
1145 bool remove_map;
1146 bool remove_rsv = false;
1147
1148 block_group = btrfs_lookup_block_group(fs_info, map->start);
1149 if (unlikely(!block_group)) {
1150 btrfs_abort_transaction(trans, -ENOENT);
1151 return -ENOENT;
1152 }
1153
1154 if (unlikely(!block_group->ro &&
1155 !(block_group->flags & BTRFS_BLOCK_GROUP_REMAPPED))) {
1156 ret = -EUCLEAN;
1157 btrfs_abort_transaction(trans, ret);
1158 goto out;
1159 }
1160
1161 trace_btrfs_remove_block_group(block_group);
1162 /*
1163 * Free the reserved super bytes from this block group before
1164 * remove it.
1165 */
1166 btrfs_free_excluded_extents(block_group);
1167 btrfs_free_ref_tree_range(fs_info, block_group->start,
1168 block_group->length);
1169
1170 index = btrfs_bg_flags_to_raid_index(block_group->flags);
1171
1172 /* make sure this block group isn't part of an allocation cluster */
1173 cluster = &fs_info->data_alloc_cluster;
1174 spin_lock(&cluster->refill_lock);
1175 btrfs_return_cluster_to_free_space(block_group, cluster);
1176 spin_unlock(&cluster->refill_lock);
1177
1178 /*
1179 * make sure this block group isn't part of a metadata
1180 * allocation cluster
1181 */
1182 cluster = &fs_info->meta_alloc_cluster;
1183 spin_lock(&cluster->refill_lock);
1184 btrfs_return_cluster_to_free_space(block_group, cluster);
1185 spin_unlock(&cluster->refill_lock);
1186
1187 btrfs_clear_treelog_bg(block_group);
1188 btrfs_clear_data_reloc_bg(block_group);
1189
1190 path = btrfs_alloc_path();
1191 if (unlikely(!path)) {
1192 ret = -ENOMEM;
1193 btrfs_abort_transaction(trans, ret);
1194 goto out;
1195 }
1196
1197 /*
1198 * get the inode first so any iput calls done for the io_list
1199 * aren't the final iput (no unlinks allowed now)
1200 */
1201 inode = lookup_free_space_inode(block_group, path);
1202
1203 mutex_lock(&trans->transaction->cache_write_mutex);
1204 /*
1205 * Make sure our free space cache IO is done before removing the
1206 * free space inode
1207 */
1208 spin_lock(&trans->transaction->dirty_bgs_lock);
1209 if (!list_empty(&block_group->io_list)) {
1210 list_del_init(&block_group->io_list);
1211
1212 WARN_ON(!IS_ERR(inode) && inode != block_group->io_ctl.inode);
1213
1214 spin_unlock(&trans->transaction->dirty_bgs_lock);
1215 btrfs_wait_cache_io(trans, block_group, path);
1216 btrfs_put_block_group(block_group);
1217 spin_lock(&trans->transaction->dirty_bgs_lock);
1218 }
1219
1220 if (!list_empty(&block_group->dirty_list)) {
1221 list_del_init(&block_group->dirty_list);
1222 remove_rsv = true;
1223 btrfs_put_block_group(block_group);
1224 }
1225 spin_unlock(&trans->transaction->dirty_bgs_lock);
1226 mutex_unlock(&trans->transaction->cache_write_mutex);
1227
1228 ret = btrfs_remove_free_space_inode(trans, inode, block_group);
1229 if (unlikely(ret)) {
1230 btrfs_abort_transaction(trans, ret);
1231 goto out;
1232 }
1233
1234 write_lock(&fs_info->block_group_cache_lock);
1235 rb_erase_cached(&block_group->cache_node,
1236 &fs_info->block_group_cache_tree);
1237 RB_CLEAR_NODE(&block_group->cache_node);
1238
1239 /* Once for the block groups rbtree */
1240 btrfs_put_block_group(block_group);
1241
1242 write_unlock(&fs_info->block_group_cache_lock);
1243
1244 down_write(&block_group->space_info->groups_sem);
1245 /*
1246 * we must use list_del_init so people can check to see if they
1247 * are still on the list after taking the semaphore
1248 */
1249 list_del_init(&block_group->list);
1250 if (list_empty(&block_group->space_info->block_groups[index])) {
1251 kobj = block_group->space_info->block_group_kobjs[index];
1252 block_group->space_info->block_group_kobjs[index] = NULL;
1253 clear_avail_alloc_bits(fs_info, block_group->flags);
1254 }
1255 up_write(&block_group->space_info->groups_sem);
1256 clear_incompat_bg_bits(fs_info, block_group->flags);
1257 if (kobj) {
1258 kobject_del(kobj);
1259 kobject_put(kobj);
1260 }
1261
1262 if (block_group->cached == BTRFS_CACHE_STARTED)
1263 btrfs_wait_block_group_cache_done(block_group);
1264
1265 write_lock(&fs_info->block_group_cache_lock);
1266 caching_ctl = btrfs_get_caching_control(block_group);
1267 if (!caching_ctl) {
1268 struct btrfs_caching_control *ctl;
1269
1270 list_for_each_entry(ctl, &fs_info->caching_block_groups, list) {
1271 if (ctl->block_group == block_group) {
1272 caching_ctl = ctl;
1273 refcount_inc(&caching_ctl->count);
1274 break;
1275 }
1276 }
1277 }
1278 if (caching_ctl)
1279 list_del_init(&caching_ctl->list);
1280 write_unlock(&fs_info->block_group_cache_lock);
1281
1282 if (caching_ctl) {
1283 /* Once for the caching bgs list and once for us. */
1284 btrfs_put_caching_control(caching_ctl);
1285 btrfs_put_caching_control(caching_ctl);
1286 }
1287
1288 spin_lock(&trans->transaction->dirty_bgs_lock);
1289 WARN_ON(!list_empty(&block_group->dirty_list));
1290 WARN_ON(!list_empty(&block_group->io_list));
1291 spin_unlock(&trans->transaction->dirty_bgs_lock);
1292
1293 btrfs_remove_free_space_cache(block_group);
1294
1295 spin_lock(&block_group->space_info->lock);
1296 list_del_init(&block_group->ro_list);
1297 spin_unlock(&block_group->space_info->lock);
1298
1299 if (!(block_group->flags & BTRFS_BLOCK_GROUP_REMAPPED))
1300 btrfs_remove_bg_from_sinfo(block_group);
1301
1302 /*
1303 * Remove the free space for the block group from the free space tree
1304 * and the block group's item from the extent tree before marking the
1305 * block group as removed. This is to prevent races with tasks that
1306 * freeze and unfreeze a block group, this task and another task
1307 * allocating a new block group - the unfreeze task ends up removing
1308 * the block group's extent map before the task calling this function
1309 * deletes the block group item from the extent tree, allowing for
1310 * another task to attempt to create another block group with the same
1311 * item key (and failing with -EEXIST and a transaction abort).
1312 *
1313 * If the REMAPPED flag has been set the block group's free space
1314 * has already been removed, so we can skip the call to
1315 * btrfs_remove_block_group_free_space().
1316 */
1317 if (!(block_group->flags & BTRFS_BLOCK_GROUP_REMAPPED)) {
1318 ret = btrfs_remove_block_group_free_space(trans, block_group);
1319 if (unlikely(ret)) {
1320 btrfs_abort_transaction(trans, ret);
1321 goto out;
1322 }
1323 }
1324
1325 ret = remove_block_group_item(trans, path, block_group);
1326 if (unlikely(ret < 0)) {
1327 btrfs_abort_transaction(trans, ret);
1328 goto out;
1329 }
1330
1331 spin_lock(&block_group->lock);
1332 /*
1333 * Hitting this WARN means we removed a block group with an unwritten
1334 * region. It will cause "unable to find chunk map for logical" errors.
1335 */
1336 if (WARN_ON(has_unwritten_metadata(block_group)))
1337 btrfs_warn(fs_info,
1338 "block group %llu is removed before metadata write out",
1339 block_group->start);
1340
1341 set_bit(BLOCK_GROUP_FLAG_REMOVED, &block_group->runtime_flags);
1342
1343 /*
1344 * At this point trimming or scrub can't start on this block group,
1345 * because we removed the block group from the rbtree
1346 * fs_info->block_group_cache_tree so no one can't find it anymore and
1347 * even if someone already got this block group before we removed it
1348 * from the rbtree, they have already incremented block_group->frozen -
1349 * if they didn't, for the trimming case they won't find any free space
1350 * entries because we already removed them all when we called
1351 * btrfs_remove_free_space_cache().
1352 *
1353 * And we must not remove the chunk map from the fs_info->mapping_tree
1354 * to prevent the same logical address range and physical device space
1355 * ranges from being reused for a new block group. This is needed to
1356 * avoid races with trimming and scrub.
1357 *
1358 * An fs trim operation (btrfs_trim_fs() / btrfs_ioctl_fitrim()) is
1359 * completely transactionless, so while it is trimming a range the
1360 * currently running transaction might finish and a new one start,
1361 * allowing for new block groups to be created that can reuse the same
1362 * physical device locations unless we take this special care.
1363 *
1364 * There may also be an implicit trim operation if the file system
1365 * is mounted with -odiscard. The same protections must remain
1366 * in place until the extents have been discarded completely when
1367 * the transaction commit has completed.
1368 */
1369 remove_map = (atomic_read(&block_group->frozen) == 0);
1370 spin_unlock(&block_group->lock);
1371
1372 if (remove_map)
1373 btrfs_remove_chunk_map(fs_info, map);
1374
1375 out:
1376 /* Once for the lookup reference */
1377 btrfs_put_block_group(block_group);
1378 if (remove_rsv)
1379 btrfs_dec_delayed_refs_rsv_bg_updates(fs_info);
1380 return ret;
1381 }
1382
btrfs_start_trans_remove_block_group(struct btrfs_fs_info * fs_info,const u64 chunk_offset)1383 struct btrfs_trans_handle *btrfs_start_trans_remove_block_group(
1384 struct btrfs_fs_info *fs_info, const u64 chunk_offset)
1385 {
1386 struct btrfs_root *root = btrfs_block_group_root(fs_info);
1387 struct btrfs_chunk_map *map;
1388 unsigned int num_items;
1389
1390 if (unlikely(!root)) {
1391 btrfs_err(fs_info, "missing block group root");
1392 return ERR_PTR(-EUCLEAN);
1393 }
1394
1395 map = btrfs_find_chunk_map(fs_info, chunk_offset, 1);
1396 ASSERT(map != NULL);
1397 ASSERT(map->start == chunk_offset);
1398
1399 /*
1400 * We need to reserve 3 + N units from the metadata space info in order
1401 * to remove a block group (done at btrfs_remove_chunk() and at
1402 * btrfs_remove_block_group()), which are used for:
1403 *
1404 * 1 unit for adding the free space inode's orphan (located in the tree
1405 * of tree roots).
1406 * 1 unit for deleting the block group item (located in the extent
1407 * tree).
1408 * 1 unit for deleting the free space item (located in tree of tree
1409 * roots).
1410 * N units for deleting N device extent items corresponding to each
1411 * stripe (located in the device tree).
1412 *
1413 * In order to remove a block group we also need to reserve units in the
1414 * system space info in order to update the chunk tree (update one or
1415 * more device items and remove one chunk item), but this is done at
1416 * btrfs_remove_chunk() through a call to check_system_chunk().
1417 */
1418 num_items = 3 + map->num_stripes;
1419 btrfs_free_chunk_map(map);
1420
1421 return btrfs_start_transaction_fallback_global_rsv(root, num_items);
1422 }
1423
1424 /*
1425 * Mark block group @cache read-only, so later write won't happen to block
1426 * group @cache.
1427 *
1428 * If @force is not set, this function will only mark the block group readonly
1429 * if we have enough free space (1M) in other metadata/system block groups.
1430 * If @force is not set, this function will mark the block group readonly
1431 * without checking free space.
1432 *
1433 * NOTE: This function doesn't care if other block groups can contain all the
1434 * data in this block group. That check should be done by relocation routine,
1435 * not this function.
1436 */
inc_block_group_ro(struct btrfs_block_group * cache,bool force)1437 static int inc_block_group_ro(struct btrfs_block_group *cache, bool force)
1438 {
1439 struct btrfs_space_info *sinfo = cache->space_info;
1440 u64 num_bytes;
1441 int ret = -ENOSPC;
1442
1443 spin_lock(&sinfo->lock);
1444 spin_lock(&cache->lock);
1445
1446 if (cache->swap_extents) {
1447 ret = -ETXTBSY;
1448 goto out;
1449 }
1450
1451 if (cache->ro) {
1452 cache->ro++;
1453 ret = 0;
1454 goto out;
1455 }
1456
1457 num_bytes = btrfs_block_group_available_space(cache);
1458
1459 /*
1460 * Data never overcommits, even in mixed mode, so do just the straight
1461 * check of left over space in how much we have allocated.
1462 */
1463 if (force) {
1464 ret = 0;
1465 } else if (sinfo->flags & BTRFS_BLOCK_GROUP_DATA) {
1466 u64 sinfo_used = btrfs_space_info_used(sinfo, true);
1467
1468 /*
1469 * Here we make sure if we mark this bg RO, we still have enough
1470 * free space as buffer.
1471 */
1472 if (sinfo_used + num_bytes <= sinfo->total_bytes)
1473 ret = 0;
1474 } else {
1475 /*
1476 * We overcommit metadata, so we need to do the
1477 * btrfs_can_overcommit check here, and we need to pass in
1478 * BTRFS_RESERVE_NO_FLUSH to give ourselves the most amount of
1479 * leeway to allow us to mark this block group as read only.
1480 */
1481 if (btrfs_can_overcommit(sinfo, num_bytes, BTRFS_RESERVE_NO_FLUSH))
1482 ret = 0;
1483 }
1484
1485 if (!ret) {
1486 sinfo->bytes_readonly += num_bytes;
1487 if (btrfs_is_zoned(cache->fs_info)) {
1488 /* Migrate zone_unusable bytes to readonly */
1489 sinfo->bytes_readonly += cache->zone_unusable;
1490 btrfs_space_info_update_bytes_zone_unusable(sinfo, -cache->zone_unusable);
1491 cache->zone_unusable = 0;
1492 }
1493 cache->ro++;
1494 list_add_tail(&cache->ro_list, &sinfo->ro_bgs);
1495 }
1496 out:
1497 spin_unlock(&cache->lock);
1498 spin_unlock(&sinfo->lock);
1499 if (ret == -ENOSPC && btrfs_test_opt(cache->fs_info, ENOSPC_DEBUG)) {
1500 btrfs_info(cache->fs_info,
1501 "unable to make block group %llu ro", cache->start);
1502 btrfs_dump_space_info(cache->space_info, 0, false);
1503 }
1504 return ret;
1505 }
1506
clean_pinned_extents(struct btrfs_trans_handle * trans,const struct btrfs_block_group * bg)1507 static bool clean_pinned_extents(struct btrfs_trans_handle *trans,
1508 const struct btrfs_block_group *bg)
1509 {
1510 struct btrfs_fs_info *fs_info = trans->fs_info;
1511 struct btrfs_transaction *prev_trans = NULL;
1512 const u64 start = bg->start;
1513 const u64 end = start + bg->length - 1;
1514 int ret;
1515
1516 spin_lock(&fs_info->trans_lock);
1517 if (!list_is_first(&trans->transaction->list, &fs_info->trans_list)) {
1518 prev_trans = list_prev_entry(trans->transaction, list);
1519 refcount_inc(&prev_trans->use_count);
1520 }
1521 spin_unlock(&fs_info->trans_lock);
1522
1523 /*
1524 * Hold the unused_bg_unpin_mutex lock to avoid racing with
1525 * btrfs_finish_extent_commit(). If we are at transaction N, another
1526 * task might be running finish_extent_commit() for the previous
1527 * transaction N - 1, and have seen a range belonging to the block
1528 * group in pinned_extents before we were able to clear the whole block
1529 * group range from pinned_extents. This means that task can lookup for
1530 * the block group after we unpinned it from pinned_extents and removed
1531 * it, leading to an error at unpin_extent_range().
1532 */
1533 mutex_lock(&fs_info->unused_bg_unpin_mutex);
1534 if (prev_trans) {
1535 ret = btrfs_clear_extent_bit(&prev_trans->pinned_extents, start, end,
1536 EXTENT_DIRTY, NULL);
1537 if (ret)
1538 goto out;
1539 }
1540
1541 ret = btrfs_clear_extent_bit(&trans->transaction->pinned_extents, start, end,
1542 EXTENT_DIRTY, NULL);
1543 out:
1544 mutex_unlock(&fs_info->unused_bg_unpin_mutex);
1545 if (prev_trans)
1546 btrfs_put_transaction(prev_trans);
1547
1548 return ret == 0;
1549 }
1550
1551 /*
1552 * Link the block_group to a list via bg_list.
1553 *
1554 * @bg: The block_group to link to the list.
1555 * @list: The list to link it to.
1556 *
1557 * Use this rather than list_add_tail() directly to ensure proper respect
1558 * to locking and refcounting.
1559 *
1560 * Returns: true if the bg was linked with a refcount bump and false otherwise.
1561 */
btrfs_link_bg_list(struct btrfs_block_group * bg,struct list_head * list)1562 static bool btrfs_link_bg_list(struct btrfs_block_group *bg, struct list_head *list)
1563 {
1564 struct btrfs_fs_info *fs_info = bg->fs_info;
1565 bool added = false;
1566
1567 spin_lock(&fs_info->unused_bgs_lock);
1568 if (list_empty(&bg->bg_list)) {
1569 btrfs_get_block_group(bg);
1570 list_add_tail(&bg->bg_list, list);
1571 added = true;
1572 }
1573 spin_unlock(&fs_info->unused_bgs_lock);
1574 return added;
1575 }
1576
1577 /*
1578 * Process the unused_bgs list and remove any that don't have any allocated
1579 * space inside of them.
1580 */
btrfs_delete_unused_bgs(struct btrfs_fs_info * fs_info)1581 void btrfs_delete_unused_bgs(struct btrfs_fs_info *fs_info)
1582 {
1583 LIST_HEAD(retry_list);
1584 struct btrfs_block_group *block_group;
1585 struct btrfs_space_info *space_info;
1586 struct btrfs_trans_handle *trans;
1587 const bool async_trim_enabled = btrfs_test_opt(fs_info, DISCARD_ASYNC);
1588 int ret = 0;
1589
1590 if (!test_bit(BTRFS_FS_OPEN, &fs_info->flags))
1591 return;
1592
1593 if (btrfs_fs_closing(fs_info))
1594 return;
1595
1596 /*
1597 * Long running balances can keep us blocked here for eternity, so
1598 * simply skip deletion if we're unable to get the mutex.
1599 */
1600 if (!mutex_trylock(&fs_info->reclaim_bgs_lock))
1601 return;
1602
1603 spin_lock(&fs_info->unused_bgs_lock);
1604 while (!list_empty(&fs_info->unused_bgs)) {
1605 u64 used;
1606 int trimming;
1607
1608 block_group = list_first_entry(&fs_info->unused_bgs,
1609 struct btrfs_block_group,
1610 bg_list);
1611 list_del_init(&block_group->bg_list);
1612
1613 space_info = block_group->space_info;
1614
1615 if (ret || btrfs_mixed_space_info(space_info)) {
1616 btrfs_put_block_group(block_group);
1617 continue;
1618 }
1619 spin_unlock(&fs_info->unused_bgs_lock);
1620
1621 btrfs_discard_cancel_work(&fs_info->discard_ctl, block_group);
1622
1623 /* Don't want to race with allocators so take the groups_sem */
1624 down_write(&space_info->groups_sem);
1625
1626 /*
1627 * Async discard moves the final block group discard to be prior
1628 * to the unused_bgs code path. Therefore, if it's not fully
1629 * trimmed, punt it back to the async discard lists.
1630 */
1631 if (btrfs_test_opt(fs_info, DISCARD_ASYNC) &&
1632 !btrfs_is_free_space_trimmed(block_group)) {
1633 trace_btrfs_skip_unused_block_group(block_group);
1634 up_write(&space_info->groups_sem);
1635 /* Requeue if we failed because of async discard */
1636 btrfs_discard_queue_work(&fs_info->discard_ctl,
1637 block_group);
1638 goto next;
1639 }
1640
1641 spin_lock(&space_info->lock);
1642 spin_lock(&block_group->lock);
1643
1644 if (btrfs_is_zoned(fs_info) && btrfs_is_block_group_used(block_group) &&
1645 block_group->zone_unusable >= div_u64(block_group->length, 2)) {
1646 /*
1647 * If the block group has data left, but at least half
1648 * of the block group is zone_unusable, mark it as
1649 * reclaimable before continuing with the next block group.
1650 */
1651
1652 spin_unlock(&block_group->lock);
1653 spin_unlock(&space_info->lock);
1654 up_write(&space_info->groups_sem);
1655
1656 btrfs_mark_bg_to_reclaim(block_group);
1657
1658 goto next;
1659 }
1660
1661 if (btrfs_is_block_group_used(block_group) ||
1662 (block_group->ro && !(block_group->flags & BTRFS_BLOCK_GROUP_REMAPPED)) ||
1663 list_is_singular(&block_group->list) ||
1664 test_bit(BLOCK_GROUP_FLAG_FULLY_REMAPPED, &block_group->runtime_flags)) {
1665 /*
1666 * We want to bail if we made new allocations or have
1667 * outstanding allocations in this block group. We do
1668 * the ro check in case balance is currently acting on
1669 * this block group.
1670 *
1671 * Also bail out if this is the only block group for its
1672 * type, because otherwise we would lose profile
1673 * information from fs_info->avail_*_alloc_bits and the
1674 * next block group of this type would be created with a
1675 * "single" profile (even if we're in a raid fs) because
1676 * fs_info->avail_*_alloc_bits would be 0.
1677 */
1678 trace_btrfs_skip_unused_block_group(block_group);
1679 spin_unlock(&block_group->lock);
1680 spin_unlock(&space_info->lock);
1681 up_write(&space_info->groups_sem);
1682 goto next;
1683 }
1684
1685 /*
1686 * The block group may be unused but there may be space reserved
1687 * accounting with the existence of that block group, that is,
1688 * space_info->bytes_may_use was incremented by a task but no
1689 * space was yet allocated from the block group by the task.
1690 * That space may or may not be allocated, as we are generally
1691 * pessimistic about space reservation for metadata as well as
1692 * for data when using compression (as we reserve space based on
1693 * the worst case, when data can't be compressed, and before
1694 * actually attempting compression, before starting writeback).
1695 *
1696 * So check if the total space of the space_info minus the size
1697 * of this block group is less than the used space of the
1698 * space_info - if that's the case, then it means we have tasks
1699 * that might be relying on the block group in order to allocate
1700 * extents, and add back the block group to the unused list when
1701 * we finish, so that we retry later in case no tasks ended up
1702 * needing to allocate extents from the block group.
1703 */
1704 used = btrfs_space_info_used(space_info, true);
1705 if (((space_info->total_bytes - block_group->length < used &&
1706 block_group->zone_unusable < block_group->length) ||
1707 has_unwritten_metadata(block_group)) &&
1708 !(block_group->flags & BTRFS_BLOCK_GROUP_REMAPPED)) {
1709 /*
1710 * Add a reference for the list, compensate for the ref
1711 * drop under the "next" label for the
1712 * fs_info->unused_bgs list.
1713 */
1714 btrfs_link_bg_list(block_group, &retry_list);
1715
1716 trace_btrfs_skip_unused_block_group(block_group);
1717 spin_unlock(&block_group->lock);
1718 spin_unlock(&space_info->lock);
1719 up_write(&space_info->groups_sem);
1720 goto next;
1721 }
1722
1723 spin_unlock(&block_group->lock);
1724 spin_unlock(&space_info->lock);
1725
1726 /* We don't want to force the issue, only flip if it's ok. */
1727 ret = inc_block_group_ro(block_group, false);
1728 up_write(&space_info->groups_sem);
1729 if (ret < 0) {
1730 ret = 0;
1731 goto next;
1732 }
1733
1734 ret = btrfs_zone_finish(block_group);
1735 if (ret < 0) {
1736 btrfs_dec_block_group_ro(block_group);
1737 if (ret == -EAGAIN) {
1738 btrfs_link_bg_list(block_group, &retry_list);
1739 ret = 0;
1740 }
1741 goto next;
1742 }
1743
1744 /*
1745 * Want to do this before we do anything else so we can recover
1746 * properly if we fail to join the transaction.
1747 */
1748 trans = btrfs_start_trans_remove_block_group(fs_info,
1749 block_group->start);
1750 if (IS_ERR(trans)) {
1751 btrfs_dec_block_group_ro(block_group);
1752 ret = PTR_ERR(trans);
1753 goto next;
1754 }
1755
1756 /*
1757 * We could have pending pinned extents for this block group,
1758 * just delete them, we don't care about them anymore.
1759 */
1760 if (!clean_pinned_extents(trans, block_group)) {
1761 btrfs_dec_block_group_ro(block_group);
1762 goto end_trans;
1763 }
1764
1765 /*
1766 * At this point, the block_group is read only and should fail
1767 * new allocations. However, btrfs_finish_extent_commit() can
1768 * cause this block_group to be placed back on the discard
1769 * lists because now the block_group isn't fully discarded.
1770 * Bail here and try again later after discarding everything.
1771 */
1772 spin_lock(&fs_info->discard_ctl.lock);
1773 if (!list_empty(&block_group->discard_list)) {
1774 spin_unlock(&fs_info->discard_ctl.lock);
1775 btrfs_dec_block_group_ro(block_group);
1776 btrfs_discard_queue_work(&fs_info->discard_ctl,
1777 block_group);
1778 goto end_trans;
1779 }
1780 spin_unlock(&fs_info->discard_ctl.lock);
1781
1782 /* Reset pinned so btrfs_put_block_group doesn't complain */
1783 spin_lock(&space_info->lock);
1784 spin_lock(&block_group->lock);
1785
1786 btrfs_space_info_update_bytes_pinned(space_info, -block_group->pinned);
1787 space_info->bytes_readonly += block_group->pinned;
1788 block_group->pinned = 0;
1789
1790 spin_unlock(&block_group->lock);
1791 spin_unlock(&space_info->lock);
1792
1793 /*
1794 * The normal path here is an unused block group is passed here,
1795 * then trimming is handled in the transaction commit path.
1796 * Async discard interposes before this to do the trimming
1797 * before coming down the unused block group path as trimming
1798 * will no longer be done later in the transaction commit path.
1799 */
1800 if (!async_trim_enabled && btrfs_test_opt(fs_info, DISCARD_ASYNC))
1801 goto flip_async;
1802
1803 /*
1804 * DISCARD can flip during remount. On zoned filesystems, we
1805 * need to reset sequential-required zones.
1806 */
1807 trimming = btrfs_test_opt(fs_info, DISCARD_SYNC) ||
1808 btrfs_is_zoned(fs_info);
1809
1810 /* Implicit trim during transaction commit. */
1811 if (trimming)
1812 btrfs_freeze_block_group(block_group);
1813
1814 /*
1815 * Btrfs_remove_chunk will abort the transaction if things go
1816 * horribly wrong.
1817 */
1818 ret = btrfs_remove_chunk(trans, block_group->start);
1819
1820 if (ret) {
1821 if (trimming)
1822 btrfs_unfreeze_block_group(block_group);
1823 goto end_trans;
1824 }
1825
1826 /*
1827 * If we're not mounted with -odiscard, we can just forget
1828 * about this block group. Otherwise we'll need to wait
1829 * until transaction commit to do the actual discard.
1830 */
1831 if (trimming) {
1832 spin_lock(&fs_info->unused_bgs_lock);
1833 /*
1834 * A concurrent scrub might have added us to the list
1835 * fs_info->unused_bgs, so use a list_move operation
1836 * to add the block group to the deleted_bgs list.
1837 */
1838 list_move(&block_group->bg_list,
1839 &trans->transaction->deleted_bgs);
1840 spin_unlock(&fs_info->unused_bgs_lock);
1841 btrfs_get_block_group(block_group);
1842 }
1843 end_trans:
1844 btrfs_end_transaction(trans);
1845 next:
1846 btrfs_put_block_group(block_group);
1847 spin_lock(&fs_info->unused_bgs_lock);
1848 }
1849 list_splice_tail(&retry_list, &fs_info->unused_bgs);
1850 spin_unlock(&fs_info->unused_bgs_lock);
1851 mutex_unlock(&fs_info->reclaim_bgs_lock);
1852 return;
1853
1854 flip_async:
1855 btrfs_end_transaction(trans);
1856 spin_lock(&fs_info->unused_bgs_lock);
1857 list_splice_tail(&retry_list, &fs_info->unused_bgs);
1858 spin_unlock(&fs_info->unused_bgs_lock);
1859 mutex_unlock(&fs_info->reclaim_bgs_lock);
1860 btrfs_put_block_group(block_group);
1861 btrfs_discard_punt_unused_bgs_list(fs_info);
1862 }
1863
btrfs_mark_bg_unused(struct btrfs_block_group * bg)1864 void btrfs_mark_bg_unused(struct btrfs_block_group *bg)
1865 {
1866 struct btrfs_fs_info *fs_info = bg->fs_info;
1867
1868 spin_lock(&fs_info->unused_bgs_lock);
1869 if (list_empty(&bg->bg_list)) {
1870 btrfs_get_block_group(bg);
1871 trace_btrfs_add_unused_block_group(bg);
1872 list_add_tail(&bg->bg_list, &fs_info->unused_bgs);
1873 } else if (bg->flags & BTRFS_BLOCK_GROUP_REMAPPED &&
1874 bg->identity_remap_count == 0) {
1875 /* Leave fully remapped block groups on the fully_remapped_bgs list. */
1876 } else if (!test_bit(BLOCK_GROUP_FLAG_NEW, &bg->runtime_flags)) {
1877 /* Pull out the block group from the reclaim_bgs list. */
1878 trace_btrfs_add_unused_block_group(bg);
1879 list_move_tail(&bg->bg_list, &fs_info->unused_bgs);
1880 }
1881 spin_unlock(&fs_info->unused_bgs_lock);
1882 }
1883
1884 /*
1885 * We want block groups with a low number of used bytes to be in the beginning
1886 * of the list, so they will get reclaimed first.
1887 */
reclaim_bgs_cmp(void * unused,const struct list_head * a,const struct list_head * b)1888 static int reclaim_bgs_cmp(void *unused, const struct list_head *a,
1889 const struct list_head *b)
1890 {
1891 const struct btrfs_block_group *bg1, *bg2;
1892
1893 bg1 = list_entry(a, struct btrfs_block_group, bg_list);
1894 bg2 = list_entry(b, struct btrfs_block_group, bg_list);
1895
1896 /*
1897 * Some other task may be updating the ->used field concurrently, but it
1898 * is not serious if we get a stale value or load/store tearing issues,
1899 * as sorting the list of block groups to reclaim is not critical and an
1900 * occasional imperfect order is ok. So silence KCSAN and avoid the
1901 * overhead of locking or any other synchronization.
1902 */
1903 return data_race(bg1->used > bg2->used);
1904 }
1905
btrfs_should_reclaim(const struct btrfs_fs_info * fs_info)1906 static inline bool btrfs_should_reclaim(const struct btrfs_fs_info *fs_info)
1907 {
1908 if (!test_bit(BTRFS_FS_OPEN, &fs_info->flags))
1909 return false;
1910
1911 if (btrfs_fs_closing(fs_info))
1912 return false;
1913
1914 if (btrfs_is_zoned(fs_info))
1915 return btrfs_zoned_should_reclaim(fs_info);
1916 return true;
1917 }
1918
should_reclaim_block_group(const struct btrfs_block_group * bg,u64 bytes_freed)1919 static bool should_reclaim_block_group(const struct btrfs_block_group *bg, u64 bytes_freed)
1920 {
1921 const int thresh_pct = btrfs_calc_reclaim_threshold(bg->space_info);
1922 u64 thresh_bytes = mult_perc(bg->length, thresh_pct);
1923 const u64 new_val = bg->used;
1924 const u64 old_val = new_val + bytes_freed;
1925
1926 if (thresh_bytes == 0)
1927 return false;
1928
1929 /*
1930 * If we were below the threshold before don't reclaim, we are likely a
1931 * brand new block group and we don't want to relocate new block groups.
1932 */
1933 if (old_val < thresh_bytes)
1934 return false;
1935 if (new_val >= thresh_bytes)
1936 return false;
1937 return true;
1938 }
1939
btrfs_reclaim_block_group(struct btrfs_block_group * bg,int * reclaimed)1940 static int btrfs_reclaim_block_group(struct btrfs_block_group *bg, int *reclaimed)
1941 {
1942 struct btrfs_fs_info *fs_info = bg->fs_info;
1943 struct btrfs_space_info *space_info = bg->space_info;
1944 u64 used;
1945 u64 reserved;
1946 u64 old_total;
1947 int ret = 0;
1948
1949 /* Don't race with allocators so take the groups_sem */
1950 down_write(&space_info->groups_sem);
1951
1952 spin_lock(&space_info->lock);
1953 spin_lock(&bg->lock);
1954 if (bg->reserved || bg->pinned || bg->ro) {
1955 /*
1956 * We want to bail if we made new allocations or have
1957 * outstanding allocations in this block group. We do
1958 * the ro check in case balance is currently acting on
1959 * this block group.
1960 */
1961 spin_unlock(&bg->lock);
1962 spin_unlock(&space_info->lock);
1963 up_write(&space_info->groups_sem);
1964 return 0;
1965 }
1966
1967 if (bg->used == 0) {
1968 /*
1969 * It is possible that we trigger relocation on a block
1970 * group as its extents are deleted and it first goes
1971 * below the threshold, then shortly after goes empty.
1972 *
1973 * In this case, relocating it does delete it, but has
1974 * some overhead in relocation specific metadata, looking
1975 * for the non-existent extents and running some extra
1976 * transactions, which we can avoid by using one of the
1977 * other mechanisms for dealing with empty block groups.
1978 */
1979 if (!btrfs_test_opt(fs_info, DISCARD_ASYNC))
1980 btrfs_mark_bg_unused(bg);
1981 spin_unlock(&bg->lock);
1982 spin_unlock(&space_info->lock);
1983 up_write(&space_info->groups_sem);
1984 return 0;
1985 }
1986
1987 /*
1988 * The block group might no longer meet the reclaim condition by
1989 * the time we get around to reclaiming it, so to avoid
1990 * reclaiming overly full block_groups, skip reclaiming them.
1991 *
1992 * Since the decision making process also depends on the amount
1993 * being freed, pass in a fake giant value to skip that extra
1994 * check, which is more meaningful when adding to the list in
1995 * the first place.
1996 */
1997 if (!should_reclaim_block_group(bg, bg->length)) {
1998 spin_unlock(&bg->lock);
1999 spin_unlock(&space_info->lock);
2000 up_write(&space_info->groups_sem);
2001 return 0;
2002 }
2003
2004 spin_unlock(&bg->lock);
2005 old_total = space_info->total_bytes;
2006 spin_unlock(&space_info->lock);
2007
2008 /*
2009 * Get out fast, in case we're read-only or unmounting the
2010 * filesystem. It is OK to drop block groups from the list even
2011 * for the read-only case. As we did take the super write lock,
2012 * "mount -o remount,ro" won't happen and read-only filesystem
2013 * means it is forced read-only due to a fatal error. So, it
2014 * never gets back to read-write to let us reclaim again.
2015 */
2016 if (btrfs_need_cleaner_sleep(fs_info)) {
2017 up_write(&space_info->groups_sem);
2018 return 0;
2019 }
2020
2021 ret = inc_block_group_ro(bg, false);
2022 up_write(&space_info->groups_sem);
2023 if (ret < 0)
2024 return ret;
2025
2026 /*
2027 * The amount of bytes reclaimed corresponds to the sum of the
2028 * "used" and "reserved" counters. We have set the block group
2029 * to RO above, which prevents reservations from happening but
2030 * we may have existing reservations for which allocation has
2031 * not yet been done - btrfs_update_block_group() was not yet
2032 * called, which is where we will transfer a reserved extent's
2033 * size from the "reserved" counter to the "used" counter - this
2034 * happens when running delayed references. When we relocate the
2035 * chunk below, relocation first flushes delalloc, waits for
2036 * ordered extent completion (which is where we create delayed
2037 * references for data extents) and commits the current
2038 * transaction (which runs delayed references), and only after
2039 * it does the actual work to move extents out of the block
2040 * group. So the reported amount of reclaimed bytes is
2041 * effectively the sum of the 'used' and 'reserved' counters.
2042 */
2043 spin_lock(&bg->lock);
2044 used = bg->used;
2045 reserved = bg->reserved;
2046 spin_unlock(&bg->lock);
2047
2048 trace_btrfs_reclaim_block_group(bg);
2049 ret = btrfs_relocate_chunk(fs_info, bg->start, false);
2050 if (btrfs_is_zoned(fs_info) && ret == -EAGAIN) {
2051 btrfs_dec_block_group_ro(bg);
2052 btrfs_debug(fs_info, "deferring reclaim of chunk %llu", bg->start);
2053 return ret;
2054 }
2055 if (ret) {
2056 btrfs_dec_block_group_ro(bg);
2057 btrfs_err(fs_info, "error relocating chunk %llu",
2058 bg->start);
2059 used = 0;
2060 reserved = 0;
2061 spin_lock(&space_info->lock);
2062 space_info->reclaim_errors++;
2063 spin_unlock(&space_info->lock);
2064 }
2065 spin_lock(&space_info->lock);
2066 space_info->reclaim_count++;
2067 space_info->reclaim_bytes += used;
2068 space_info->reclaim_bytes += reserved;
2069 if (space_info->total_bytes < old_total)
2070 btrfs_set_periodic_reclaim_ready(space_info, true);
2071 spin_unlock(&space_info->lock);
2072 if (!ret)
2073 (*reclaimed)++;
2074
2075 return ret;
2076 }
2077
btrfs_reclaim_block_groups(struct btrfs_fs_info * fs_info,unsigned int limit)2078 void btrfs_reclaim_block_groups(struct btrfs_fs_info *fs_info, unsigned int limit)
2079 {
2080 struct btrfs_block_group *bg;
2081 struct btrfs_space_info *space_info;
2082 LIST_HEAD(retry_list);
2083 int reclaimed = 0;
2084
2085 if (!btrfs_should_reclaim(fs_info))
2086 return;
2087
2088 guard(super_write)(fs_info->sb);
2089
2090 if (!btrfs_exclop_start(fs_info, BTRFS_EXCLOP_BALANCE))
2091 return;
2092
2093 /*
2094 * Long running balances can keep us blocked here for eternity, so
2095 * simply skip reclaim if we're unable to get the mutex.
2096 */
2097 if (!mutex_trylock(&fs_info->reclaim_bgs_lock)) {
2098 btrfs_exclop_finish(fs_info);
2099 return;
2100 }
2101
2102 spin_lock(&fs_info->unused_bgs_lock);
2103 /*
2104 * Sort happens under lock because we can't simply splice it and sort.
2105 * The block groups might still be in use and reachable via bg_list,
2106 * and their presence in the reclaim_bgs list must be preserved.
2107 */
2108 list_sort(NULL, &fs_info->reclaim_bgs, reclaim_bgs_cmp);
2109 while (!list_empty(&fs_info->reclaim_bgs)) {
2110 int ret;
2111
2112 bg = list_first_entry(&fs_info->reclaim_bgs,
2113 struct btrfs_block_group,
2114 bg_list);
2115 list_del_init(&bg->bg_list);
2116
2117 space_info = bg->space_info;
2118 spin_unlock(&fs_info->unused_bgs_lock);
2119 ret = btrfs_reclaim_block_group(bg, &reclaimed);
2120
2121 if ((btrfs_is_zoned(fs_info) && ret == -EAGAIN) ||
2122 (ret && !READ_ONCE(space_info->periodic_reclaim)))
2123 btrfs_link_bg_list(bg, &retry_list);
2124 btrfs_put_block_group(bg);
2125
2126 mutex_unlock(&fs_info->reclaim_bgs_lock);
2127 /*
2128 * Reclaiming all the block groups in the list can take really
2129 * long. Prioritize cleaning up unused block groups.
2130 */
2131 btrfs_delete_unused_bgs(fs_info);
2132 /*
2133 * If we are interrupted by a balance, we can just bail out. The
2134 * cleaner thread restart again if necessary.
2135 */
2136 if (!mutex_trylock(&fs_info->reclaim_bgs_lock))
2137 goto end;
2138 spin_lock(&fs_info->unused_bgs_lock);
2139 if (reclaimed >= limit)
2140 break;
2141 }
2142 spin_unlock(&fs_info->unused_bgs_lock);
2143 mutex_unlock(&fs_info->reclaim_bgs_lock);
2144 end:
2145 spin_lock(&fs_info->unused_bgs_lock);
2146 list_splice_tail(&retry_list, &fs_info->reclaim_bgs);
2147 spin_unlock(&fs_info->unused_bgs_lock);
2148 btrfs_exclop_finish(fs_info);
2149 }
2150
btrfs_reclaim_bgs_work(struct work_struct * work)2151 void btrfs_reclaim_bgs_work(struct work_struct *work)
2152 {
2153 struct btrfs_fs_info *fs_info =
2154 container_of(work, struct btrfs_fs_info, reclaim_bgs_work);
2155
2156 btrfs_reclaim_block_groups(fs_info, -1);
2157 }
2158
btrfs_reclaim_bgs(struct btrfs_fs_info * fs_info)2159 void btrfs_reclaim_bgs(struct btrfs_fs_info *fs_info)
2160 {
2161 btrfs_reclaim_sweep(fs_info);
2162 spin_lock(&fs_info->unused_bgs_lock);
2163 if (!list_empty(&fs_info->reclaim_bgs))
2164 queue_work(system_dfl_wq, &fs_info->reclaim_bgs_work);
2165 spin_unlock(&fs_info->unused_bgs_lock);
2166 }
2167
btrfs_mark_bg_to_reclaim(struct btrfs_block_group * bg)2168 void btrfs_mark_bg_to_reclaim(struct btrfs_block_group *bg)
2169 {
2170 struct btrfs_fs_info *fs_info = bg->fs_info;
2171
2172 if (btrfs_link_bg_list(bg, &fs_info->reclaim_bgs))
2173 trace_btrfs_add_reclaim_block_group(bg);
2174 }
2175
read_bg_from_eb(struct btrfs_fs_info * fs_info,const struct btrfs_key * key,const struct btrfs_path * path)2176 static int read_bg_from_eb(struct btrfs_fs_info *fs_info, const struct btrfs_key *key,
2177 const struct btrfs_path *path)
2178 {
2179 struct btrfs_chunk_map *map;
2180 struct btrfs_block_group_item bg;
2181 struct extent_buffer *leaf;
2182 int slot;
2183 u64 flags;
2184 int ret = 0;
2185
2186 slot = path->slots[0];
2187 leaf = path->nodes[0];
2188
2189 map = btrfs_find_chunk_map(fs_info, key->objectid, key->offset);
2190 if (!map) {
2191 btrfs_err(fs_info,
2192 "logical %llu len %llu found bg but no related chunk",
2193 key->objectid, key->offset);
2194 return -ENOENT;
2195 }
2196
2197 if (unlikely(map->start != key->objectid || map->chunk_len != key->offset)) {
2198 btrfs_err(fs_info,
2199 "block group %llu len %llu mismatch with chunk %llu len %llu",
2200 key->objectid, key->offset, map->start, map->chunk_len);
2201 ret = -EUCLEAN;
2202 goto out_free_map;
2203 }
2204
2205 read_extent_buffer(leaf, &bg, btrfs_item_ptr_offset(leaf, slot),
2206 sizeof(bg));
2207 flags = btrfs_stack_block_group_flags(&bg) &
2208 BTRFS_BLOCK_GROUP_TYPE_MASK;
2209
2210 if (unlikely(flags != (map->type & BTRFS_BLOCK_GROUP_TYPE_MASK))) {
2211 btrfs_err(fs_info,
2212 "block group %llu len %llu type flags 0x%llx mismatch with chunk type flags 0x%llx",
2213 key->objectid, key->offset, flags,
2214 (BTRFS_BLOCK_GROUP_TYPE_MASK & map->type));
2215 ret = -EUCLEAN;
2216 }
2217
2218 out_free_map:
2219 btrfs_free_chunk_map(map);
2220 return ret;
2221 }
2222
find_first_block_group(struct btrfs_fs_info * fs_info,struct btrfs_path * path,const struct btrfs_key * key)2223 static int find_first_block_group(struct btrfs_fs_info *fs_info,
2224 struct btrfs_path *path,
2225 const struct btrfs_key *key)
2226 {
2227 struct btrfs_root *root = btrfs_block_group_root(fs_info);
2228 int ret;
2229 struct btrfs_key found_key;
2230
2231 if (unlikely(!root)) {
2232 btrfs_err(fs_info, "missing block group root");
2233 return -EUCLEAN;
2234 }
2235
2236 btrfs_for_each_slot(root, key, &found_key, path, ret) {
2237 if (found_key.objectid >= key->objectid &&
2238 found_key.type == BTRFS_BLOCK_GROUP_ITEM_KEY) {
2239 return read_bg_from_eb(fs_info, &found_key, path);
2240 }
2241 }
2242 return ret;
2243 }
2244
set_avail_alloc_bits(struct btrfs_fs_info * fs_info,u64 flags)2245 static void set_avail_alloc_bits(struct btrfs_fs_info *fs_info, u64 flags)
2246 {
2247 u64 extra_flags = chunk_to_extended(flags) &
2248 BTRFS_EXTENDED_PROFILE_MASK;
2249
2250 write_seqlock(&fs_info->profiles_lock);
2251 if (flags & BTRFS_BLOCK_GROUP_DATA)
2252 fs_info->avail_data_alloc_bits |= extra_flags;
2253 if (flags & BTRFS_BLOCK_GROUP_METADATA)
2254 fs_info->avail_metadata_alloc_bits |= extra_flags;
2255 if (flags & BTRFS_BLOCK_GROUP_SYSTEM)
2256 fs_info->avail_system_alloc_bits |= extra_flags;
2257 write_sequnlock(&fs_info->profiles_lock);
2258 }
2259
2260 /*
2261 * Map a physical disk address to a list of logical addresses.
2262 *
2263 * @fs_info: the filesystem
2264 * @chunk_start: logical address of block group
2265 * @physical: physical address to map to logical addresses
2266 * @logical: return array of logical addresses which map to @physical
2267 * @naddrs: length of @logical
2268 * @stripe_len: size of IO stripe for the given block group
2269 *
2270 * Maps a particular @physical disk address to a list of @logical addresses.
2271 * Used primarily to exclude those portions of a block group that contain super
2272 * block copies.
2273 */
btrfs_rmap_block(struct btrfs_fs_info * fs_info,u64 chunk_start,u64 physical,u64 ** logical,int * naddrs,int * stripe_len)2274 int btrfs_rmap_block(struct btrfs_fs_info *fs_info, u64 chunk_start,
2275 u64 physical, u64 **logical, int *naddrs, int *stripe_len)
2276 {
2277 struct btrfs_chunk_map *map;
2278 u64 *buf;
2279 u64 bytenr;
2280 u64 data_stripe_length;
2281 u64 io_stripe_size;
2282 int i, nr = 0;
2283 int ret = 0;
2284
2285 map = btrfs_get_chunk_map(fs_info, chunk_start, 1);
2286 if (IS_ERR(map))
2287 return -EIO;
2288
2289 data_stripe_length = map->stripe_size;
2290 io_stripe_size = BTRFS_STRIPE_LEN;
2291 chunk_start = map->start;
2292
2293 /* For RAID5/6 adjust to a full IO stripe length */
2294 if (map->type & BTRFS_BLOCK_GROUP_RAID56_MASK)
2295 io_stripe_size = btrfs_stripe_nr_to_offset(nr_data_stripes(map));
2296
2297 buf = kzalloc_objs(u64, map->num_stripes, GFP_NOFS);
2298 if (!buf) {
2299 ret = -ENOMEM;
2300 goto out;
2301 }
2302
2303 for (i = 0; i < map->num_stripes; i++) {
2304 bool already_inserted = false;
2305 u32 stripe_nr;
2306 u32 offset;
2307 int j;
2308
2309 if (!in_range(physical, map->stripes[i].physical,
2310 data_stripe_length))
2311 continue;
2312
2313 stripe_nr = (physical - map->stripes[i].physical) >>
2314 BTRFS_STRIPE_LEN_SHIFT;
2315 offset = (physical - map->stripes[i].physical) &
2316 BTRFS_STRIPE_LEN_MASK;
2317
2318 if (map->type & (BTRFS_BLOCK_GROUP_RAID0 |
2319 BTRFS_BLOCK_GROUP_RAID10))
2320 stripe_nr = div_u64(stripe_nr * map->num_stripes + i,
2321 map->sub_stripes);
2322 /*
2323 * The remaining case would be for RAID56, multiply by
2324 * nr_data_stripes(). Alternatively, just use rmap_len below
2325 * instead of map->stripe_len
2326 */
2327 bytenr = chunk_start + stripe_nr * io_stripe_size + offset;
2328
2329 /* Ensure we don't add duplicate addresses */
2330 for (j = 0; j < nr; j++) {
2331 if (buf[j] == bytenr) {
2332 already_inserted = true;
2333 break;
2334 }
2335 }
2336
2337 if (!already_inserted)
2338 buf[nr++] = bytenr;
2339 }
2340
2341 *logical = buf;
2342 *naddrs = nr;
2343 *stripe_len = io_stripe_size;
2344 out:
2345 btrfs_free_chunk_map(map);
2346 return ret;
2347 }
2348
exclude_super_stripes(struct btrfs_block_group * cache)2349 static int exclude_super_stripes(struct btrfs_block_group *cache)
2350 {
2351 struct btrfs_fs_info *fs_info = cache->fs_info;
2352 const bool zoned = btrfs_is_zoned(fs_info);
2353 u64 bytenr;
2354 u64 *logical;
2355 int stripe_len;
2356 int i, nr, ret;
2357
2358 if (cache->start < BTRFS_SUPER_INFO_OFFSET) {
2359 stripe_len = BTRFS_SUPER_INFO_OFFSET - cache->start;
2360 cache->bytes_super += stripe_len;
2361 ret = btrfs_set_extent_bit(&fs_info->excluded_extents, cache->start,
2362 cache->start + stripe_len - 1,
2363 EXTENT_DIRTY, NULL);
2364 if (ret)
2365 return ret;
2366 }
2367
2368 for (i = 0; i < BTRFS_SUPER_MIRROR_MAX; i++) {
2369 bytenr = btrfs_sb_offset(i);
2370 ret = btrfs_rmap_block(fs_info, cache->start,
2371 bytenr, &logical, &nr, &stripe_len);
2372 if (ret)
2373 return ret;
2374
2375 /* Shouldn't have super stripes in sequential zones */
2376 if (unlikely(zoned && nr)) {
2377 kfree(logical);
2378 btrfs_err(fs_info,
2379 "zoned: block group %llu must not contain super block",
2380 cache->start);
2381 return -EUCLEAN;
2382 }
2383
2384 while (nr--) {
2385 u64 len = min_t(u64, stripe_len,
2386 btrfs_block_group_end(cache) - logical[nr]);
2387
2388 cache->bytes_super += len;
2389 ret = btrfs_set_extent_bit(&fs_info->excluded_extents,
2390 logical[nr], logical[nr] + len - 1,
2391 EXTENT_DIRTY, NULL);
2392 if (ret) {
2393 kfree(logical);
2394 return ret;
2395 }
2396 }
2397
2398 kfree(logical);
2399 }
2400 return 0;
2401 }
2402
btrfs_create_block_group(struct btrfs_fs_info * fs_info,u64 start)2403 static struct btrfs_block_group *btrfs_create_block_group(
2404 struct btrfs_fs_info *fs_info, u64 start)
2405 {
2406 struct btrfs_block_group *cache;
2407
2408 cache = kmem_cache_zalloc(block_group_cache, GFP_NOFS);
2409 if (!cache)
2410 return NULL;
2411
2412 cache->free_space_ctl = kmem_cache_zalloc(free_space_ctl_cache, GFP_NOFS);
2413 if (!cache->free_space_ctl) {
2414 kmem_cache_free(block_group_cache, cache);
2415 return NULL;
2416 }
2417
2418 cache->start = start;
2419
2420 cache->fs_info = fs_info;
2421 cache->full_stripe_len = btrfs_full_stripe_len(fs_info, start);
2422
2423 cache->discard_index = BTRFS_DISCARD_INDEX_UNUSED;
2424
2425 refcount_set(&cache->refs, 1);
2426 spin_lock_init(&cache->lock);
2427 init_rwsem(&cache->data_rwsem);
2428 INIT_LIST_HEAD(&cache->list);
2429 INIT_LIST_HEAD(&cache->cluster_list);
2430 INIT_LIST_HEAD(&cache->bg_list);
2431 INIT_LIST_HEAD(&cache->ro_list);
2432 INIT_LIST_HEAD(&cache->discard_list);
2433 INIT_LIST_HEAD(&cache->dirty_list);
2434 INIT_LIST_HEAD(&cache->io_list);
2435 INIT_LIST_HEAD(&cache->active_bg_list);
2436 btrfs_init_free_space_ctl(cache, cache->free_space_ctl);
2437 atomic_set(&cache->frozen, 0);
2438 mutex_init(&cache->free_space_lock);
2439
2440 return cache;
2441 }
2442
2443 /*
2444 * Iterate all chunks and verify that each of them has the corresponding block
2445 * group
2446 */
check_chunk_block_group_mappings(struct btrfs_fs_info * fs_info)2447 static int check_chunk_block_group_mappings(struct btrfs_fs_info *fs_info)
2448 {
2449 struct rb_node *node;
2450 int ret = 0;
2451
2452 /*
2453 * This is called during mount from btrfs_read_block_groups(), before
2454 * any background threads are started, so no concurrent writers can
2455 * modify the mapping_tree. No lock is needed here.
2456 */
2457 for (node = rb_first_cached(&fs_info->mapping_tree); node; node = rb_next(node)) {
2458 struct btrfs_chunk_map *map;
2459 struct btrfs_block_group *bg;
2460
2461 map = rb_entry(node, struct btrfs_chunk_map, rb_node);
2462 bg = btrfs_lookup_block_group(fs_info, map->start);
2463 if (unlikely(!bg)) {
2464 btrfs_err(fs_info,
2465 "chunk start=%llu len=%llu doesn't have corresponding block group",
2466 map->start, map->chunk_len);
2467 ret = -EUCLEAN;
2468 break;
2469 }
2470 if (unlikely(bg->start != map->start || bg->length != map->chunk_len ||
2471 (bg->flags & BTRFS_BLOCK_GROUP_TYPE_MASK) !=
2472 (map->type & BTRFS_BLOCK_GROUP_TYPE_MASK))) {
2473 btrfs_err(fs_info,
2474 "chunk start=%llu len=%llu flags=0x%llx doesn't match block group start=%llu len=%llu flags=0x%llx",
2475 map->start, map->chunk_len,
2476 map->type & BTRFS_BLOCK_GROUP_TYPE_MASK,
2477 bg->start, bg->length,
2478 bg->flags & BTRFS_BLOCK_GROUP_TYPE_MASK);
2479 ret = -EUCLEAN;
2480 btrfs_put_block_group(bg);
2481 break;
2482 }
2483 btrfs_put_block_group(bg);
2484 }
2485 return ret;
2486 }
2487
read_one_block_group(struct btrfs_fs_info * info,struct btrfs_block_group_item_v2 * bgi,const struct btrfs_key * key,bool need_clear)2488 static int read_one_block_group(struct btrfs_fs_info *info,
2489 struct btrfs_block_group_item_v2 *bgi,
2490 const struct btrfs_key *key,
2491 bool need_clear)
2492 {
2493 struct btrfs_block_group *cache;
2494 const bool mixed = btrfs_fs_incompat(info, MIXED_GROUPS);
2495 int ret;
2496
2497 ASSERT(key->type == BTRFS_BLOCK_GROUP_ITEM_KEY);
2498
2499 cache = btrfs_create_block_group(info, key->objectid);
2500 if (!cache)
2501 return -ENOMEM;
2502
2503 cache->length = key->offset;
2504 cache->used = btrfs_stack_block_group_v2_used(bgi);
2505 cache->last_used = cache->used;
2506 cache->flags = btrfs_stack_block_group_v2_flags(bgi);
2507 cache->last_flags = cache->flags;
2508 cache->global_root_id = btrfs_stack_block_group_v2_chunk_objectid(bgi);
2509 cache->space_info = btrfs_find_space_info(info, cache->flags);
2510 cache->remap_bytes = btrfs_stack_block_group_v2_remap_bytes(bgi);
2511 cache->last_remap_bytes = cache->remap_bytes;
2512 cache->identity_remap_count = btrfs_stack_block_group_v2_identity_remap_count(bgi);
2513 cache->last_identity_remap_count = cache->identity_remap_count;
2514
2515 btrfs_set_free_space_tree_thresholds(cache);
2516
2517 if (need_clear) {
2518 /*
2519 * When we mount with old space cache, we need to
2520 * set BTRFS_DC_CLEAR and set dirty flag.
2521 *
2522 * a) Setting 'BTRFS_DC_CLEAR' makes sure that we
2523 * truncate the old free space cache inode and
2524 * setup a new one.
2525 * b) Setting 'dirty flag' makes sure that we flush
2526 * the new space cache info onto disk.
2527 */
2528 if (btrfs_test_opt(info, SPACE_CACHE))
2529 cache->disk_cache_state = BTRFS_DC_CLEAR;
2530 }
2531 if (!mixed && ((cache->flags & BTRFS_BLOCK_GROUP_METADATA) &&
2532 (cache->flags & BTRFS_BLOCK_GROUP_DATA))) {
2533 btrfs_err(info,
2534 "bg %llu is a mixed block group but filesystem hasn't enabled mixed block groups",
2535 cache->start);
2536 ret = -EINVAL;
2537 goto error;
2538 }
2539
2540 ret = btrfs_load_block_group_zone_info(cache, false);
2541 if (ret) {
2542 btrfs_err(info, "zoned: failed to load zone info of bg %llu",
2543 cache->start);
2544 goto error;
2545 }
2546
2547 /*
2548 * We need to exclude the super stripes now so that the space info has
2549 * super bytes accounted for, otherwise we'll think we have more space
2550 * than we actually do.
2551 */
2552 ret = exclude_super_stripes(cache);
2553 if (ret) {
2554 /* We may have excluded something, so call this just in case. */
2555 btrfs_free_excluded_extents(cache);
2556 goto error;
2557 }
2558
2559 /*
2560 * For zoned filesystem, space after the allocation offset is the only
2561 * free space for a block group. So, we don't need any caching work.
2562 * btrfs_calc_zone_unusable() will set the amount of free space and
2563 * zone_unusable space.
2564 *
2565 * For regular filesystem, check for two cases, either we are full, and
2566 * therefore don't need to bother with the caching work since we won't
2567 * find any space, or we are empty, and we can just add all the space
2568 * in and be done with it. This saves us _a_lot_ of time, particularly
2569 * in the full case.
2570 */
2571 if (btrfs_is_zoned(info)) {
2572 btrfs_calc_zone_unusable(cache);
2573 /* Should not have any excluded extents. Just in case, though. */
2574 btrfs_free_excluded_extents(cache);
2575 } else if (cache->length == cache->used) {
2576 cache->cached = BTRFS_CACHE_FINISHED;
2577 btrfs_free_excluded_extents(cache);
2578 } else if (cache->used == 0 && cache->remap_bytes == 0) {
2579 cache->cached = BTRFS_CACHE_FINISHED;
2580 ret = btrfs_add_new_free_space(cache, cache->start,
2581 btrfs_block_group_end(cache), NULL);
2582 btrfs_free_excluded_extents(cache);
2583 if (ret)
2584 goto error;
2585 }
2586
2587 ret = btrfs_add_block_group_cache(cache);
2588 if (ret) {
2589 btrfs_remove_free_space_cache(cache);
2590 goto error;
2591 }
2592
2593 trace_btrfs_add_block_group(info, cache, 0);
2594 btrfs_add_bg_to_space_info(info, cache);
2595
2596 set_avail_alloc_bits(info, cache->flags);
2597 if (btrfs_chunk_writeable(info, cache->start)) {
2598 if (cache->used == 0 && cache->remap_bytes == 0) {
2599 ASSERT(list_empty(&cache->bg_list));
2600 if (btrfs_test_opt(info, DISCARD_ASYNC))
2601 btrfs_discard_queue_work(&info->discard_ctl, cache);
2602 else
2603 btrfs_mark_bg_unused(cache);
2604 }
2605 } else {
2606 inc_block_group_ro(cache, true);
2607 }
2608
2609 return 0;
2610 error:
2611 btrfs_put_block_group(cache);
2612 return ret;
2613 }
2614
fill_dummy_bgs(struct btrfs_fs_info * fs_info)2615 static int fill_dummy_bgs(struct btrfs_fs_info *fs_info)
2616 {
2617 struct rb_node *node;
2618 int ret = 0;
2619
2620 for (node = rb_first_cached(&fs_info->mapping_tree); node; node = rb_next(node)) {
2621 struct btrfs_chunk_map *map;
2622 struct btrfs_block_group *bg;
2623
2624 map = rb_entry(node, struct btrfs_chunk_map, rb_node);
2625 bg = btrfs_create_block_group(fs_info, map->start);
2626 if (!bg) {
2627 ret = -ENOMEM;
2628 break;
2629 }
2630
2631 /* Fill dummy cache as FULL */
2632 bg->length = map->chunk_len;
2633 bg->flags = map->on_disk_type;
2634 bg->cached = BTRFS_CACHE_FINISHED;
2635 bg->used = map->chunk_len;
2636 bg->space_info = btrfs_find_space_info(fs_info, bg->flags);
2637 ret = btrfs_add_block_group_cache(bg);
2638 /*
2639 * We may have some valid block group cache added already, in
2640 * that case we skip to the next one.
2641 */
2642 if (ret == -EEXIST) {
2643 ret = 0;
2644 btrfs_put_block_group(bg);
2645 continue;
2646 }
2647
2648 if (ret) {
2649 btrfs_remove_free_space_cache(bg);
2650 btrfs_put_block_group(bg);
2651 break;
2652 }
2653
2654 btrfs_add_bg_to_space_info(fs_info, bg);
2655
2656 set_avail_alloc_bits(fs_info, bg->flags);
2657 }
2658 if (!ret)
2659 btrfs_init_global_block_rsv(fs_info);
2660 return ret;
2661 }
2662
btrfs_read_block_groups(struct btrfs_fs_info * info)2663 int btrfs_read_block_groups(struct btrfs_fs_info *info)
2664 {
2665 struct btrfs_root *root = btrfs_block_group_root(info);
2666 struct btrfs_path *path;
2667 int ret;
2668 struct btrfs_block_group *cache;
2669 struct btrfs_space_info *space_info;
2670 struct btrfs_key key;
2671 bool need_clear = false;
2672 u64 cache_gen;
2673
2674 /*
2675 * Either no extent root (with ibadroots rescue option) or we have
2676 * unsupported RO options. The fs can never be mounted read-write, so no
2677 * need to waste time searching block group items.
2678 *
2679 * This also allows new extent tree related changes to be RO compat,
2680 * no need for a full incompat flag.
2681 */
2682 if (!root || (btrfs_super_compat_ro_flags(info->super_copy) &
2683 ~BTRFS_FEATURE_COMPAT_RO_SUPP))
2684 return fill_dummy_bgs(info);
2685
2686 key.objectid = 0;
2687 key.type = BTRFS_BLOCK_GROUP_ITEM_KEY;
2688 key.offset = 0;
2689 path = btrfs_alloc_path();
2690 if (!path)
2691 return -ENOMEM;
2692
2693 cache_gen = btrfs_super_cache_generation(info->super_copy);
2694 if (btrfs_test_opt(info, SPACE_CACHE) &&
2695 btrfs_super_generation(info->super_copy) != cache_gen)
2696 need_clear = true;
2697 if (btrfs_test_opt(info, CLEAR_CACHE))
2698 need_clear = true;
2699
2700 while (1) {
2701 struct btrfs_block_group_item_v2 bgi;
2702 struct extent_buffer *leaf;
2703 int slot;
2704 size_t size;
2705
2706 ret = find_first_block_group(info, path, &key);
2707 if (ret > 0)
2708 break;
2709 if (ret != 0)
2710 goto error;
2711
2712 leaf = path->nodes[0];
2713 slot = path->slots[0];
2714
2715 if (btrfs_fs_incompat(info, REMAP_TREE)) {
2716 size = sizeof(struct btrfs_block_group_item_v2);
2717 } else {
2718 size = sizeof(struct btrfs_block_group_item);
2719 btrfs_set_stack_block_group_v2_remap_bytes(&bgi, 0);
2720 btrfs_set_stack_block_group_v2_identity_remap_count(&bgi, 0);
2721 }
2722
2723 read_extent_buffer(leaf, &bgi, btrfs_item_ptr_offset(leaf, slot),
2724 size);
2725
2726 btrfs_item_key_to_cpu(leaf, &key, slot);
2727 btrfs_release_path(path);
2728 ret = read_one_block_group(info, &bgi, &key, need_clear);
2729 if (ret < 0)
2730 goto error;
2731 key.objectid += key.offset;
2732 key.offset = 0;
2733 }
2734 btrfs_release_path(path);
2735
2736 list_for_each_entry(space_info, &info->space_info, list) {
2737 int i;
2738
2739 for (i = 0; i < BTRFS_NR_RAID_TYPES; i++) {
2740 if (list_empty(&space_info->block_groups[i]))
2741 continue;
2742 cache = list_first_entry(&space_info->block_groups[i],
2743 struct btrfs_block_group,
2744 list);
2745 btrfs_sysfs_add_block_group_type(cache);
2746 }
2747
2748 if (!(btrfs_get_alloc_profile(info, space_info->flags) &
2749 (BTRFS_BLOCK_GROUP_RAID10 |
2750 BTRFS_BLOCK_GROUP_RAID1_MASK |
2751 BTRFS_BLOCK_GROUP_RAID56_MASK |
2752 BTRFS_BLOCK_GROUP_DUP)))
2753 continue;
2754 /*
2755 * Avoid allocating from un-mirrored block group if there are
2756 * mirrored block groups.
2757 */
2758 list_for_each_entry(cache,
2759 &space_info->block_groups[BTRFS_RAID_RAID0],
2760 list)
2761 inc_block_group_ro(cache, true);
2762 list_for_each_entry(cache,
2763 &space_info->block_groups[BTRFS_RAID_SINGLE],
2764 list)
2765 inc_block_group_ro(cache, true);
2766 }
2767
2768 btrfs_init_global_block_rsv(info);
2769 ret = check_chunk_block_group_mappings(info);
2770 error:
2771 btrfs_free_path(path);
2772 /*
2773 * We've hit some error while reading the extent tree, and have
2774 * rescue=ibadroots mount option.
2775 * Try to fill the tree using dummy block groups so that the user can
2776 * continue to mount and grab their data.
2777 */
2778 if (ret && btrfs_test_opt(info, IGNOREBADROOTS))
2779 ret = fill_dummy_bgs(info);
2780 return ret;
2781 }
2782
2783 /*
2784 * This function, insert_block_group_item(), belongs to the phase 2 of chunk
2785 * allocation.
2786 *
2787 * See the comment at btrfs_chunk_alloc() for details about the chunk allocation
2788 * phases.
2789 */
insert_block_group_item(struct btrfs_trans_handle * trans,struct btrfs_block_group * block_group)2790 static int insert_block_group_item(struct btrfs_trans_handle *trans,
2791 struct btrfs_block_group *block_group)
2792 {
2793 struct btrfs_fs_info *fs_info = trans->fs_info;
2794 struct btrfs_block_group_item_v2 bgi;
2795 struct btrfs_root *root = btrfs_block_group_root(fs_info);
2796 struct btrfs_key key;
2797 u64 old_last_used;
2798 size_t size;
2799 int ret;
2800
2801 if (unlikely(!root)) {
2802 btrfs_err(fs_info, "missing block group root");
2803 return -EUCLEAN;
2804 }
2805
2806 spin_lock(&block_group->lock);
2807 btrfs_set_stack_block_group_v2_used(&bgi, block_group->used);
2808 btrfs_set_stack_block_group_v2_chunk_objectid(&bgi, block_group->global_root_id);
2809 btrfs_set_stack_block_group_v2_flags(&bgi, block_group->flags);
2810 btrfs_set_stack_block_group_v2_remap_bytes(&bgi, block_group->remap_bytes);
2811 btrfs_set_stack_block_group_v2_identity_remap_count(&bgi, block_group->identity_remap_count);
2812 old_last_used = block_group->last_used;
2813 block_group->last_used = block_group->used;
2814 block_group->last_remap_bytes = block_group->remap_bytes;
2815 block_group->last_identity_remap_count = block_group->identity_remap_count;
2816 block_group->last_flags = block_group->flags;
2817 key.objectid = block_group->start;
2818 key.type = BTRFS_BLOCK_GROUP_ITEM_KEY;
2819 key.offset = block_group->length;
2820 spin_unlock(&block_group->lock);
2821
2822 if (btrfs_fs_incompat(fs_info, REMAP_TREE))
2823 size = sizeof(struct btrfs_block_group_item_v2);
2824 else
2825 size = sizeof(struct btrfs_block_group_item);
2826
2827 ret = btrfs_insert_item(trans, root, &key, &bgi, size);
2828 if (ret < 0) {
2829 spin_lock(&block_group->lock);
2830 block_group->last_used = old_last_used;
2831 spin_unlock(&block_group->lock);
2832 }
2833
2834 return ret;
2835 }
2836
insert_dev_extent(struct btrfs_trans_handle * trans,const struct btrfs_device * device,u64 chunk_offset,u64 start,u64 num_bytes)2837 static int insert_dev_extent(struct btrfs_trans_handle *trans,
2838 const struct btrfs_device *device, u64 chunk_offset,
2839 u64 start, u64 num_bytes)
2840 {
2841 struct btrfs_fs_info *fs_info = device->fs_info;
2842 struct btrfs_root *root = fs_info->dev_root;
2843 BTRFS_PATH_AUTO_FREE(path);
2844 struct btrfs_dev_extent *extent;
2845 struct extent_buffer *leaf;
2846 struct btrfs_key key;
2847 int ret;
2848
2849 WARN_ON(!test_bit(BTRFS_DEV_STATE_IN_FS_METADATA, &device->dev_state));
2850 WARN_ON(test_bit(BTRFS_DEV_STATE_REPLACE_TGT, &device->dev_state));
2851 path = btrfs_alloc_path();
2852 if (!path)
2853 return -ENOMEM;
2854
2855 key.objectid = device->devid;
2856 key.type = BTRFS_DEV_EXTENT_KEY;
2857 key.offset = start;
2858 ret = btrfs_insert_empty_item(trans, root, path, &key, sizeof(*extent));
2859 if (ret)
2860 return ret;
2861
2862 leaf = path->nodes[0];
2863 extent = btrfs_item_ptr(leaf, path->slots[0], struct btrfs_dev_extent);
2864 btrfs_set_dev_extent_chunk_tree(leaf, extent, BTRFS_CHUNK_TREE_OBJECTID);
2865 btrfs_set_dev_extent_chunk_objectid(leaf, extent,
2866 BTRFS_FIRST_CHUNK_TREE_OBJECTID);
2867 btrfs_set_dev_extent_chunk_offset(leaf, extent, chunk_offset);
2868 btrfs_set_dev_extent_length(leaf, extent, num_bytes);
2869
2870 return ret;
2871 }
2872
2873 /*
2874 * This function belongs to phase 2.
2875 *
2876 * See the comment at btrfs_chunk_alloc() for details about the chunk allocation
2877 * phases.
2878 */
insert_dev_extents(struct btrfs_trans_handle * trans,u64 chunk_offset,u64 chunk_size)2879 static int insert_dev_extents(struct btrfs_trans_handle *trans,
2880 u64 chunk_offset, u64 chunk_size)
2881 {
2882 struct btrfs_fs_info *fs_info = trans->fs_info;
2883 struct btrfs_device *device;
2884 struct btrfs_chunk_map *map;
2885 u64 dev_offset;
2886 int i;
2887 int ret = 0;
2888
2889 map = btrfs_get_chunk_map(fs_info, chunk_offset, chunk_size);
2890 if (IS_ERR(map))
2891 return PTR_ERR(map);
2892
2893 /*
2894 * Take the device list mutex to prevent races with the final phase of
2895 * a device replace operation that replaces the device object associated
2896 * with the map's stripes, because the device object's id can change
2897 * at any time during that final phase of the device replace operation
2898 * (dev-replace.c:btrfs_dev_replace_finishing()), so we could grab the
2899 * replaced device and then see it with an ID of BTRFS_DEV_REPLACE_DEVID,
2900 * resulting in persisting a device extent item with such ID.
2901 */
2902 mutex_lock(&fs_info->fs_devices->device_list_mutex);
2903 for (i = 0; i < map->num_stripes; i++) {
2904 device = map->stripes[i].dev;
2905 dev_offset = map->stripes[i].physical;
2906
2907 ret = insert_dev_extent(trans, device, chunk_offset, dev_offset,
2908 map->stripe_size);
2909 if (ret)
2910 break;
2911 }
2912 mutex_unlock(&fs_info->fs_devices->device_list_mutex);
2913
2914 btrfs_free_chunk_map(map);
2915 return ret;
2916 }
2917
2918 /*
2919 * This function, btrfs_create_pending_block_groups(), belongs to the phase 2 of
2920 * chunk allocation.
2921 *
2922 * See the comment at btrfs_chunk_alloc() for details about the chunk allocation
2923 * phases.
2924 */
btrfs_create_pending_block_groups(struct btrfs_trans_handle * trans)2925 void btrfs_create_pending_block_groups(struct btrfs_trans_handle *trans)
2926 {
2927 struct btrfs_fs_info *fs_info = trans->fs_info;
2928 struct btrfs_block_group *block_group;
2929 int ret = 0;
2930
2931 while (!list_empty(&trans->new_bgs)) {
2932 int index;
2933
2934 block_group = list_first_entry(&trans->new_bgs,
2935 struct btrfs_block_group,
2936 bg_list);
2937 if (ret)
2938 goto next;
2939
2940 index = btrfs_bg_flags_to_raid_index(block_group->flags);
2941
2942 ret = insert_block_group_item(trans, block_group);
2943 if (ret)
2944 btrfs_abort_transaction(trans, ret);
2945 if (!test_bit(BLOCK_GROUP_FLAG_CHUNK_ITEM_INSERTED,
2946 &block_group->runtime_flags)) {
2947 mutex_lock(&fs_info->chunk_mutex);
2948 ret = btrfs_chunk_alloc_add_chunk_item(trans, block_group);
2949 mutex_unlock(&fs_info->chunk_mutex);
2950 if (ret)
2951 btrfs_abort_transaction(trans, ret);
2952 }
2953 ret = insert_dev_extents(trans, block_group->start,
2954 block_group->length);
2955 if (ret)
2956 btrfs_abort_transaction(trans, ret);
2957 btrfs_add_block_group_free_space(trans, block_group);
2958
2959 /*
2960 * If we restriped during balance, we may have added a new raid
2961 * type, so now add the sysfs entries when it is safe to do so.
2962 * We don't have to worry about locking here as it's handled in
2963 * btrfs_sysfs_add_block_group_type.
2964 */
2965 if (block_group->space_info->block_group_kobjs[index] == NULL)
2966 btrfs_sysfs_add_block_group_type(block_group);
2967
2968 /* Already aborted the transaction if it failed. */
2969 next:
2970 btrfs_dec_delayed_refs_rsv_bg_inserts(fs_info);
2971
2972 spin_lock(&fs_info->unused_bgs_lock);
2973 list_del_init(&block_group->bg_list);
2974 clear_bit(BLOCK_GROUP_FLAG_NEW, &block_group->runtime_flags);
2975 btrfs_put_block_group(block_group);
2976 spin_unlock(&fs_info->unused_bgs_lock);
2977
2978 /*
2979 * If the block group is still unused, add it to the list of
2980 * unused block groups. The block group may have been created in
2981 * order to satisfy a space reservation, in which case the
2982 * extent allocation only happens later. But often we don't
2983 * actually need to allocate space that we previously reserved,
2984 * so the block group may become unused for a long time. For
2985 * example for metadata we generally reserve space for a worst
2986 * possible scenario, but then don't end up allocating all that
2987 * space or none at all (due to no need to COW, extent buffers
2988 * were already COWed in the current transaction and still
2989 * unwritten, tree heights lower than the maximum possible
2990 * height, etc). For data we generally reserve the exact amount
2991 * of space we are going to allocate later, the exception is
2992 * when using compression, as we must reserve space based on the
2993 * uncompressed data size, because the compression is only done
2994 * when writeback triggered and we don't know how much space we
2995 * are actually going to need, so we reserve the uncompressed
2996 * size because the data may be incompressible in the worst case.
2997 */
2998 if (ret == 0) {
2999 bool used;
3000
3001 spin_lock(&block_group->lock);
3002 used = btrfs_is_block_group_used(block_group);
3003 spin_unlock(&block_group->lock);
3004
3005 if (!used)
3006 btrfs_mark_bg_unused(block_group);
3007 }
3008 }
3009 btrfs_trans_release_chunk_metadata(trans);
3010 }
3011
3012 /*
3013 * For extent tree v2 we use the block_group_item->chunk_offset to point at our
3014 * global root id. For v1 it's always set to BTRFS_FIRST_CHUNK_TREE_OBJECTID.
3015 */
calculate_global_root_id(const struct btrfs_fs_info * fs_info,u64 offset)3016 static u64 calculate_global_root_id(const struct btrfs_fs_info *fs_info, u64 offset)
3017 {
3018 u64 div = SZ_1G;
3019 u64 index;
3020
3021 if (!btrfs_fs_incompat(fs_info, EXTENT_TREE_V2))
3022 return BTRFS_FIRST_CHUNK_TREE_OBJECTID;
3023
3024 /* If we have a smaller fs index based on 128MiB. */
3025 if (btrfs_super_total_bytes(fs_info->super_copy) <= (SZ_1G * 10ULL))
3026 div = SZ_128M;
3027
3028 offset = div64_u64(offset, div);
3029 div64_u64_rem(offset, fs_info->nr_global_roots, &index);
3030 return index;
3031 }
3032
btrfs_make_block_group(struct btrfs_trans_handle * trans,struct btrfs_space_info * space_info,u64 type,u64 chunk_offset,u64 size)3033 struct btrfs_block_group *btrfs_make_block_group(struct btrfs_trans_handle *trans,
3034 struct btrfs_space_info *space_info,
3035 u64 type, u64 chunk_offset, u64 size)
3036 {
3037 struct btrfs_fs_info *fs_info = trans->fs_info;
3038 struct btrfs_block_group *cache;
3039 int ret;
3040
3041 btrfs_set_log_full_commit(trans);
3042
3043 cache = btrfs_create_block_group(fs_info, chunk_offset);
3044 if (!cache)
3045 return ERR_PTR(-ENOMEM);
3046
3047 /*
3048 * Mark it as new before adding it to the rbtree of block groups or any
3049 * list, so that no other task finds it and calls btrfs_mark_bg_unused()
3050 * before the new flag is set.
3051 */
3052 set_bit(BLOCK_GROUP_FLAG_NEW, &cache->runtime_flags);
3053
3054 cache->length = size;
3055 btrfs_set_free_space_tree_thresholds(cache);
3056 cache->flags = type;
3057 cache->cached = BTRFS_CACHE_FINISHED;
3058 cache->global_root_id = calculate_global_root_id(fs_info, cache->start);
3059
3060 if (btrfs_fs_compat_ro(fs_info, FREE_SPACE_TREE))
3061 set_bit(BLOCK_GROUP_FLAG_NEEDS_FREE_SPACE, &cache->runtime_flags);
3062
3063 ret = btrfs_load_block_group_zone_info(cache, true);
3064 if (ret) {
3065 btrfs_put_block_group(cache);
3066 return ERR_PTR(ret);
3067 }
3068
3069 ret = exclude_super_stripes(cache);
3070 if (ret) {
3071 /* We may have excluded something, so call this just in case */
3072 btrfs_free_excluded_extents(cache);
3073 btrfs_put_block_group(cache);
3074 return ERR_PTR(ret);
3075 }
3076
3077 /*
3078 * Ensure the corresponding space_info object is created and
3079 * assigned to our block group. We want our bg to be added to the rbtree
3080 * with its ->space_info set.
3081 *
3082 * On a zoned filesystem btrfs_add_new_free_space() ends up in
3083 * __btrfs_add_free_space_zoned(), which dereferences
3084 * block_group->space_info, so it has to be set beforehand.
3085 */
3086 cache->space_info = space_info;
3087 ASSERT(cache->space_info);
3088
3089 ret = btrfs_add_new_free_space(cache, chunk_offset, chunk_offset + size, NULL);
3090 btrfs_free_excluded_extents(cache);
3091 if (ret) {
3092 btrfs_put_block_group(cache);
3093 return ERR_PTR(ret);
3094 }
3095
3096 ret = btrfs_add_block_group_cache(cache);
3097 if (ret) {
3098 btrfs_remove_free_space_cache(cache);
3099 btrfs_put_block_group(cache);
3100 return ERR_PTR(ret);
3101 }
3102
3103 /*
3104 * Now that our block group has its ->space_info set and is inserted in
3105 * the rbtree, update the space info's counters.
3106 */
3107 trace_btrfs_add_block_group(fs_info, cache, 1);
3108 btrfs_add_bg_to_space_info(fs_info, cache);
3109 btrfs_update_global_block_rsv(fs_info);
3110
3111 #ifdef CONFIG_BTRFS_DEBUG
3112 if (btrfs_should_fragment_free_space(cache)) {
3113 cache->space_info->bytes_used += size >> 1;
3114 fragment_free_space(cache);
3115 }
3116 #endif
3117
3118 btrfs_link_bg_list(cache, &trans->new_bgs);
3119 btrfs_inc_delayed_refs_rsv_bg_inserts(fs_info);
3120
3121 set_avail_alloc_bits(fs_info, type);
3122 return cache;
3123 }
3124
3125 /*
3126 * Mark one block group RO, can be called several times for the same block
3127 * group.
3128 *
3129 * @cache: the destination block group
3130 * @do_chunk_alloc: whether need to do chunk pre-allocation, this is to
3131 * ensure we still have some free space after marking this
3132 * block group RO.
3133 */
btrfs_inc_block_group_ro(struct btrfs_block_group * cache,bool do_chunk_alloc)3134 int btrfs_inc_block_group_ro(struct btrfs_block_group *cache,
3135 bool do_chunk_alloc)
3136 {
3137 struct btrfs_fs_info *fs_info = cache->fs_info;
3138 struct btrfs_space_info *space_info = cache->space_info;
3139 struct btrfs_trans_handle *trans;
3140 struct btrfs_root *root = btrfs_block_group_root(fs_info);
3141 u64 alloc_flags;
3142 int ret;
3143 bool dirty_bg_running;
3144
3145 if (unlikely(!root)) {
3146 btrfs_err(fs_info, "missing block group root");
3147 return -EUCLEAN;
3148 }
3149
3150 /*
3151 * This can only happen when we are doing read-only scrub on read-only
3152 * mount.
3153 * In that case we should not start a new transaction on read-only fs.
3154 * Thus here we skip all chunk allocations.
3155 */
3156 if (sb_rdonly(fs_info->sb)) {
3157 mutex_lock(&fs_info->ro_block_group_mutex);
3158 ret = inc_block_group_ro(cache, false);
3159 mutex_unlock(&fs_info->ro_block_group_mutex);
3160 return ret;
3161 }
3162
3163 do {
3164 trans = btrfs_join_transaction(root);
3165 if (IS_ERR(trans))
3166 return PTR_ERR(trans);
3167
3168 dirty_bg_running = false;
3169
3170 /*
3171 * We're not allowed to set block groups readonly after the dirty
3172 * block group cache has started writing. If it already started,
3173 * back off and let this transaction commit.
3174 */
3175 mutex_lock(&fs_info->ro_block_group_mutex);
3176 if (test_bit(BTRFS_TRANS_DIRTY_BG_RUN, &trans->transaction->flags)) {
3177 u64 transid = trans->transid;
3178
3179 mutex_unlock(&fs_info->ro_block_group_mutex);
3180 btrfs_end_transaction(trans);
3181
3182 ret = btrfs_wait_for_commit(fs_info, transid);
3183 if (ret)
3184 return ret;
3185 dirty_bg_running = true;
3186 }
3187 } while (dirty_bg_running);
3188
3189 if (do_chunk_alloc) {
3190 /*
3191 * If we are changing raid levels, try to allocate a
3192 * corresponding block group with the new raid level.
3193 */
3194 alloc_flags = btrfs_get_alloc_profile(fs_info, cache->flags);
3195 if (alloc_flags != cache->flags) {
3196 ret = btrfs_chunk_alloc(trans, space_info, alloc_flags,
3197 CHUNK_ALLOC_FORCE);
3198 /*
3199 * ENOSPC is allowed here, we may have enough space
3200 * already allocated at the new raid level to carry on
3201 */
3202 if (ret == -ENOSPC)
3203 ret = 0;
3204 if (ret < 0)
3205 goto out;
3206 }
3207 }
3208
3209 ret = inc_block_group_ro(cache, false);
3210 if (!ret)
3211 goto out;
3212 if (ret == -ETXTBSY)
3213 goto unlock_out;
3214
3215 /*
3216 * Skip chunk allocation if the bg is SYSTEM, this is to avoid system
3217 * chunk allocation storm to exhaust the system chunk array. Otherwise
3218 * we still want to try our best to mark the block group read-only.
3219 */
3220 if (!do_chunk_alloc && ret == -ENOSPC &&
3221 (cache->flags & BTRFS_BLOCK_GROUP_SYSTEM))
3222 goto unlock_out;
3223
3224 alloc_flags = btrfs_get_alloc_profile(fs_info, space_info->flags);
3225 ret = btrfs_chunk_alloc(trans, space_info, alloc_flags, CHUNK_ALLOC_FORCE);
3226 if (ret < 0)
3227 goto out;
3228 /*
3229 * We have allocated a new chunk. We also need to activate that chunk to
3230 * grant metadata tickets for zoned filesystem.
3231 */
3232 ret = btrfs_zoned_activate_one_bg(space_info, true);
3233 if (ret < 0)
3234 goto out;
3235
3236 ret = inc_block_group_ro(cache, false);
3237 if (ret == -ETXTBSY)
3238 goto unlock_out;
3239 out:
3240 if (cache->flags & BTRFS_BLOCK_GROUP_SYSTEM) {
3241 alloc_flags = btrfs_get_alloc_profile(fs_info, cache->flags);
3242 mutex_lock(&fs_info->chunk_mutex);
3243 check_system_chunk(trans, alloc_flags);
3244 mutex_unlock(&fs_info->chunk_mutex);
3245 }
3246 unlock_out:
3247 mutex_unlock(&fs_info->ro_block_group_mutex);
3248
3249 btrfs_end_transaction(trans);
3250 return ret;
3251 }
3252
btrfs_dec_block_group_ro(struct btrfs_block_group * cache)3253 void btrfs_dec_block_group_ro(struct btrfs_block_group *cache)
3254 {
3255 struct btrfs_space_info *sinfo = cache->space_info;
3256
3257 BUG_ON(!cache->ro);
3258
3259 spin_lock(&sinfo->lock);
3260 spin_lock(&cache->lock);
3261 if (!--cache->ro) {
3262 if (btrfs_is_zoned(cache->fs_info)) {
3263 /* Migrate zone_unusable bytes back */
3264 cache->zone_unusable =
3265 (cache->alloc_offset - cache->used - cache->pinned -
3266 cache->reserved) +
3267 (cache->length - cache->zone_capacity);
3268 btrfs_space_info_update_bytes_zone_unusable(sinfo, cache->zone_unusable);
3269 sinfo->bytes_readonly -= cache->zone_unusable;
3270 }
3271 sinfo->bytes_readonly -= btrfs_block_group_available_space(cache);
3272 list_del_init(&cache->ro_list);
3273 }
3274 spin_unlock(&cache->lock);
3275 spin_unlock(&sinfo->lock);
3276 }
3277
update_block_group_item(struct btrfs_trans_handle * trans,struct btrfs_path * path,struct btrfs_block_group * cache)3278 static int update_block_group_item(struct btrfs_trans_handle *trans,
3279 struct btrfs_path *path,
3280 struct btrfs_block_group *cache)
3281 {
3282 struct btrfs_fs_info *fs_info = trans->fs_info;
3283 int ret;
3284 struct btrfs_root *root = btrfs_block_group_root(fs_info);
3285 unsigned long bi;
3286 struct extent_buffer *leaf;
3287 struct btrfs_block_group_item_v2 bgi;
3288 struct btrfs_key key;
3289 u64 old_last_used, old_last_remap_bytes;
3290 u32 old_last_identity_remap_count;
3291 u64 used, remap_bytes;
3292 u32 identity_remap_count;
3293
3294 if (unlikely(!root)) {
3295 btrfs_err(fs_info, "missing block group root");
3296 return -EUCLEAN;
3297 }
3298
3299 /*
3300 * Block group items update can be triggered out of commit transaction
3301 * critical section, thus we need a consistent view of used bytes.
3302 * We cannot use cache->used directly outside of the spin lock, as it
3303 * may be changed.
3304 */
3305 spin_lock(&cache->lock);
3306 old_last_used = cache->last_used;
3307 old_last_remap_bytes = cache->last_remap_bytes;
3308 old_last_identity_remap_count = cache->last_identity_remap_count;
3309 used = cache->used;
3310 remap_bytes = cache->remap_bytes;
3311 identity_remap_count = cache->identity_remap_count;
3312 /* No change in values, can safely skip it. */
3313 if (cache->last_used == used &&
3314 cache->last_remap_bytes == remap_bytes &&
3315 cache->last_identity_remap_count == identity_remap_count &&
3316 cache->last_flags == cache->flags) {
3317 spin_unlock(&cache->lock);
3318 return 0;
3319 }
3320 cache->last_used = used;
3321 cache->last_remap_bytes = remap_bytes;
3322 cache->last_identity_remap_count = identity_remap_count;
3323 cache->last_flags = cache->flags;
3324 spin_unlock(&cache->lock);
3325
3326 key.objectid = cache->start;
3327 key.type = BTRFS_BLOCK_GROUP_ITEM_KEY;
3328 key.offset = cache->length;
3329
3330 ret = btrfs_search_slot(trans, root, &key, path, 0, 1);
3331 if (ret) {
3332 if (ret > 0)
3333 ret = -ENOENT;
3334 goto fail;
3335 }
3336
3337 leaf = path->nodes[0];
3338 bi = btrfs_item_ptr_offset(leaf, path->slots[0]);
3339 btrfs_set_stack_block_group_v2_used(&bgi, used);
3340 btrfs_set_stack_block_group_v2_chunk_objectid(&bgi, cache->global_root_id);
3341 btrfs_set_stack_block_group_v2_flags(&bgi, cache->flags);
3342
3343 if (btrfs_fs_incompat(fs_info, REMAP_TREE)) {
3344 btrfs_set_stack_block_group_v2_remap_bytes(&bgi, cache->remap_bytes);
3345 btrfs_set_stack_block_group_v2_identity_remap_count(&bgi,
3346 cache->identity_remap_count);
3347 write_extent_buffer(leaf, &bgi, bi,
3348 sizeof(struct btrfs_block_group_item_v2));
3349 } else {
3350 write_extent_buffer(leaf, &bgi, bi,
3351 sizeof(struct btrfs_block_group_item));
3352 }
3353
3354 fail:
3355 btrfs_release_path(path);
3356 /*
3357 * We didn't update the block group item, need to revert last_used
3358 * unless the block group item didn't exist yet - this is to prevent a
3359 * race with a concurrent insertion of the block group item, with
3360 * insert_block_group_item(), that happened just after we attempted to
3361 * update. In that case we would reset last_used to 0 just after the
3362 * insertion set it to a value greater than 0 - if the block group later
3363 * becomes with 0 used bytes, we would incorrectly skip its update.
3364 */
3365 if (ret < 0 && ret != -ENOENT) {
3366 spin_lock(&cache->lock);
3367 cache->last_used = old_last_used;
3368 cache->last_remap_bytes = old_last_remap_bytes;
3369 cache->last_identity_remap_count = old_last_identity_remap_count;
3370 spin_unlock(&cache->lock);
3371 }
3372 return ret;
3373
3374 }
3375
cache_save_setup(struct btrfs_block_group * block_group,struct btrfs_trans_handle * trans,struct btrfs_path * path)3376 static void cache_save_setup(struct btrfs_block_group *block_group,
3377 struct btrfs_trans_handle *trans,
3378 struct btrfs_path *path)
3379 {
3380 struct btrfs_fs_info *fs_info = block_group->fs_info;
3381 struct inode *inode = NULL;
3382 struct extent_changeset *data_reserved = NULL;
3383 u64 alloc_hint = 0;
3384 int dcs = BTRFS_DC_ERROR;
3385 u64 cache_size = 0;
3386 int retries = 0;
3387 int ret = 0;
3388
3389 if (!btrfs_test_opt(fs_info, SPACE_CACHE))
3390 return;
3391
3392 /*
3393 * If this block group is smaller than 100 megs don't bother caching the
3394 * block group.
3395 */
3396 if (block_group->length < (100 * SZ_1M)) {
3397 spin_lock(&block_group->lock);
3398 block_group->disk_cache_state = BTRFS_DC_WRITTEN;
3399 spin_unlock(&block_group->lock);
3400 return;
3401 }
3402
3403 if (TRANS_ABORTED(trans))
3404 return;
3405 again:
3406 inode = lookup_free_space_inode(block_group, path);
3407 if (IS_ERR(inode) && PTR_ERR(inode) != -ENOENT) {
3408 ret = PTR_ERR(inode);
3409 btrfs_release_path(path);
3410 goto out;
3411 }
3412
3413 if (IS_ERR(inode)) {
3414 if (retries) {
3415 ret = PTR_ERR(inode);
3416 btrfs_err(fs_info,
3417 "failed to lookup free space inode after creation for block group %llu: %d",
3418 block_group->start, ret);
3419 goto out_free;
3420 }
3421 retries++;
3422
3423 if (block_group->ro)
3424 goto out_free;
3425
3426 ret = create_free_space_inode(trans, block_group, path);
3427 if (ret)
3428 goto out_free;
3429 goto again;
3430 }
3431
3432 /*
3433 * We want to set the generation to 0, that way if anything goes wrong
3434 * from here on out we know not to trust this cache when we load up next
3435 * time.
3436 */
3437 BTRFS_I(inode)->generation = 0;
3438 ret = btrfs_update_inode(trans, BTRFS_I(inode));
3439 if (unlikely(ret)) {
3440 /*
3441 * So theoretically we could recover from this, simply set the
3442 * super cache generation to 0 so we know to invalidate the
3443 * cache, but then we'd have to keep track of the block groups
3444 * that fail this way so we know we _have_ to reset this cache
3445 * before the next commit or risk reading stale cache. So to
3446 * limit our exposure to horrible edge cases lets just abort the
3447 * transaction, this only happens in really bad situations
3448 * anyway.
3449 */
3450 btrfs_abort_transaction(trans, ret);
3451 goto out_put;
3452 }
3453
3454 /* We've already setup this transaction, go ahead and exit */
3455 if (block_group->cache_generation == trans->transid &&
3456 i_size_read(inode)) {
3457 dcs = BTRFS_DC_SETUP;
3458 goto out_put;
3459 }
3460
3461 if (i_size_read(inode) > 0) {
3462 ret = btrfs_check_trunc_cache_free_space(fs_info,
3463 &fs_info->global_block_rsv);
3464 if (ret)
3465 goto out_put;
3466
3467 ret = btrfs_truncate_free_space_cache(trans, NULL, inode);
3468 if (ret)
3469 goto out_put;
3470 }
3471
3472 spin_lock(&block_group->lock);
3473 if (block_group->cached != BTRFS_CACHE_FINISHED ||
3474 !btrfs_test_opt(fs_info, SPACE_CACHE)) {
3475 /*
3476 * don't bother trying to write stuff out _if_
3477 * a) we're not cached,
3478 * b) we're with nospace_cache mount option,
3479 * c) we're with v2 space_cache (FREE_SPACE_TREE).
3480 */
3481 dcs = BTRFS_DC_WRITTEN;
3482 spin_unlock(&block_group->lock);
3483 goto out_put;
3484 }
3485 spin_unlock(&block_group->lock);
3486
3487 /*
3488 * We hit an ENOSPC when setting up the cache in this transaction, just
3489 * skip doing the setup, we've already cleared the cache so we're safe.
3490 */
3491 if (test_bit(BTRFS_TRANS_CACHE_ENOSPC, &trans->transaction->flags))
3492 goto out_put;
3493
3494 /*
3495 * Try to preallocate enough space based on how big the block group is.
3496 * Keep in mind this has to include any pinned space which could end up
3497 * taking up quite a bit since it's not folded into the other space
3498 * cache.
3499 */
3500 cache_size = div_u64(block_group->length, SZ_256M);
3501 if (!cache_size)
3502 cache_size = 1;
3503
3504 cache_size *= 16;
3505 cache_size *= fs_info->sectorsize;
3506
3507 ret = btrfs_check_data_free_space(BTRFS_I(inode), &data_reserved, 0,
3508 cache_size, false);
3509 if (ret)
3510 goto out_put;
3511
3512 ret = btrfs_prealloc_file_range_trans(inode, trans, 0, 0, cache_size,
3513 cache_size, cache_size,
3514 &alloc_hint);
3515 /*
3516 * Our cache requires contiguous chunks so that we don't modify a bunch
3517 * of metadata or split extents when writing the cache out, which means
3518 * we can enospc if we are heavily fragmented in addition to just normal
3519 * out of space conditions. So if we hit this just skip setting up any
3520 * other block groups for this transaction, maybe we'll unpin enough
3521 * space the next time around.
3522 */
3523 if (!ret)
3524 dcs = BTRFS_DC_SETUP;
3525 else if (ret == -ENOSPC)
3526 set_bit(BTRFS_TRANS_CACHE_ENOSPC, &trans->transaction->flags);
3527
3528 out_put:
3529 iput(inode);
3530 out_free:
3531 btrfs_release_path(path);
3532 out:
3533 spin_lock(&block_group->lock);
3534 if (!ret && dcs == BTRFS_DC_SETUP)
3535 block_group->cache_generation = trans->transid;
3536 block_group->disk_cache_state = dcs;
3537 spin_unlock(&block_group->lock);
3538
3539 extent_changeset_free(data_reserved);
3540 }
3541
btrfs_setup_space_cache(struct btrfs_trans_handle * trans)3542 int btrfs_setup_space_cache(struct btrfs_trans_handle *trans)
3543 {
3544 struct btrfs_fs_info *fs_info = trans->fs_info;
3545 struct btrfs_block_group *cache, *tmp;
3546 struct btrfs_transaction *cur_trans = trans->transaction;
3547 BTRFS_PATH_AUTO_FREE(path);
3548
3549 if (list_empty(&cur_trans->dirty_bgs) ||
3550 !btrfs_test_opt(fs_info, SPACE_CACHE))
3551 return 0;
3552
3553 path = btrfs_alloc_path();
3554 if (!path)
3555 return -ENOMEM;
3556
3557 /* Could add new block groups, use _safe just in case */
3558 list_for_each_entry_safe(cache, tmp, &cur_trans->dirty_bgs,
3559 dirty_list) {
3560 if (cache->disk_cache_state == BTRFS_DC_CLEAR)
3561 cache_save_setup(cache, trans, path);
3562 }
3563
3564 return 0;
3565 }
3566
3567 /*
3568 * Transaction commit does final block group cache writeback during a critical
3569 * section where nothing is allowed to change the FS. This is required in
3570 * order for the cache to actually match the block group, but can introduce a
3571 * lot of latency into the commit.
3572 *
3573 * So, btrfs_start_dirty_block_groups is here to kick off block group cache IO.
3574 * There's a chance we'll have to redo some of it if the block group changes
3575 * again during the commit, but it greatly reduces the commit latency by
3576 * getting rid of the easy block groups while we're still allowing others to
3577 * join the commit.
3578 */
btrfs_start_dirty_block_groups(struct btrfs_trans_handle * trans)3579 int btrfs_start_dirty_block_groups(struct btrfs_trans_handle *trans)
3580 {
3581 struct btrfs_fs_info *fs_info = trans->fs_info;
3582 struct btrfs_block_group *cache;
3583 struct btrfs_transaction *cur_trans = trans->transaction;
3584 int ret = 0;
3585 int should_put;
3586 BTRFS_PATH_AUTO_FREE(path);
3587 LIST_HEAD(dirty);
3588 struct list_head *io = &cur_trans->io_bgs;
3589 int loops = 0;
3590
3591 spin_lock(&cur_trans->dirty_bgs_lock);
3592 if (list_empty(&cur_trans->dirty_bgs)) {
3593 spin_unlock(&cur_trans->dirty_bgs_lock);
3594 return 0;
3595 }
3596 list_splice_init(&cur_trans->dirty_bgs, &dirty);
3597 spin_unlock(&cur_trans->dirty_bgs_lock);
3598
3599 again:
3600 /* Make sure all the block groups on our dirty list actually exist */
3601 btrfs_create_pending_block_groups(trans);
3602
3603 if (!path) {
3604 path = btrfs_alloc_path();
3605 if (!path) {
3606 ret = -ENOMEM;
3607 goto out;
3608 }
3609 }
3610
3611 /*
3612 * cache_write_mutex is here only to save us from balance or automatic
3613 * removal of empty block groups deleting this block group while we are
3614 * writing out the cache
3615 */
3616 mutex_lock(&trans->transaction->cache_write_mutex);
3617 while (!list_empty(&dirty)) {
3618 bool drop_reserve = true;
3619
3620 cache = list_first_entry(&dirty, struct btrfs_block_group,
3621 dirty_list);
3622 /*
3623 * This can happen if something re-dirties a block group that
3624 * is already under IO. Just wait for it to finish and then do
3625 * it all again
3626 */
3627 if (!list_empty(&cache->io_list)) {
3628 list_del_init(&cache->io_list);
3629 btrfs_wait_cache_io(trans, cache, path);
3630 btrfs_put_block_group(cache);
3631 }
3632
3633
3634 /*
3635 * btrfs_wait_cache_io uses the cache->dirty_list to decide if
3636 * it should update the cache_state. Don't delete until after
3637 * we wait.
3638 *
3639 * Since we're not running in the commit critical section
3640 * we need the dirty_bgs_lock to protect from update_block_group
3641 */
3642 spin_lock(&cur_trans->dirty_bgs_lock);
3643 list_del_init(&cache->dirty_list);
3644 spin_unlock(&cur_trans->dirty_bgs_lock);
3645
3646 should_put = 1;
3647
3648 cache_save_setup(cache, trans, path);
3649
3650 if (cache->disk_cache_state == BTRFS_DC_SETUP) {
3651 cache->io_ctl.inode = NULL;
3652 ret = btrfs_write_out_cache(trans, cache, path);
3653 if (ret == 0 && cache->io_ctl.inode) {
3654 should_put = 0;
3655
3656 /*
3657 * The cache_write_mutex is protecting the
3658 * io_list, also refer to the definition of
3659 * btrfs_transaction::io_bgs for more details
3660 */
3661 list_add_tail(&cache->io_list, io);
3662 } else {
3663 /*
3664 * If we failed to write the cache, the
3665 * generation will be bad and life goes on
3666 */
3667 ret = 0;
3668 }
3669 }
3670 if (!ret) {
3671 ret = update_block_group_item(trans, path, cache);
3672 /*
3673 * Our block group might still be attached to the list
3674 * of new block groups in the transaction handle of some
3675 * other task (struct btrfs_trans_handle->new_bgs). This
3676 * means its block group item isn't yet in the extent
3677 * tree. If this happens ignore the error, as we will
3678 * try again later in the critical section of the
3679 * transaction commit.
3680 */
3681 if (ret == -ENOENT) {
3682 ret = 0;
3683 spin_lock(&cur_trans->dirty_bgs_lock);
3684 if (list_empty(&cache->dirty_list)) {
3685 list_add_tail(&cache->dirty_list,
3686 &cur_trans->dirty_bgs);
3687 btrfs_get_block_group(cache);
3688 drop_reserve = false;
3689 }
3690 spin_unlock(&cur_trans->dirty_bgs_lock);
3691 } else if (ret) {
3692 btrfs_abort_transaction(trans, ret);
3693 }
3694 }
3695
3696 /* If it's not on the io list, we need to put the block group */
3697 if (should_put)
3698 btrfs_put_block_group(cache);
3699 if (drop_reserve)
3700 btrfs_dec_delayed_refs_rsv_bg_updates(fs_info);
3701 /*
3702 * Avoid blocking other tasks for too long. It might even save
3703 * us from writing caches for block groups that are going to be
3704 * removed.
3705 */
3706 mutex_unlock(&trans->transaction->cache_write_mutex);
3707 if (ret)
3708 goto out;
3709 mutex_lock(&trans->transaction->cache_write_mutex);
3710 }
3711 mutex_unlock(&trans->transaction->cache_write_mutex);
3712
3713 /*
3714 * Go through delayed refs for all the stuff we've just kicked off
3715 * and then loop back (just once)
3716 */
3717 if (!ret)
3718 ret = btrfs_run_delayed_refs(trans, 0);
3719 if (!ret && loops == 0) {
3720 loops++;
3721 spin_lock(&cur_trans->dirty_bgs_lock);
3722 list_splice_init(&cur_trans->dirty_bgs, &dirty);
3723 /*
3724 * dirty_bgs_lock protects us from concurrent block group
3725 * deletes too (not just cache_write_mutex).
3726 */
3727 if (!list_empty(&dirty)) {
3728 spin_unlock(&cur_trans->dirty_bgs_lock);
3729 goto again;
3730 }
3731 spin_unlock(&cur_trans->dirty_bgs_lock);
3732 }
3733 out:
3734 if (ret < 0) {
3735 spin_lock(&cur_trans->dirty_bgs_lock);
3736 list_splice_init(&dirty, &cur_trans->dirty_bgs);
3737 spin_unlock(&cur_trans->dirty_bgs_lock);
3738 btrfs_cleanup_dirty_bgs(cur_trans, fs_info);
3739 }
3740
3741 return ret;
3742 }
3743
btrfs_write_dirty_block_groups(struct btrfs_trans_handle * trans)3744 int btrfs_write_dirty_block_groups(struct btrfs_trans_handle *trans)
3745 {
3746 struct btrfs_fs_info *fs_info = trans->fs_info;
3747 struct btrfs_block_group *cache;
3748 struct btrfs_transaction *cur_trans = trans->transaction;
3749 int ret = 0;
3750 int should_put;
3751 BTRFS_PATH_AUTO_FREE(path);
3752 struct list_head *io = &cur_trans->io_bgs;
3753
3754 path = btrfs_alloc_path();
3755 if (!path)
3756 return -ENOMEM;
3757
3758 /*
3759 * Even though we are in the critical section of the transaction commit,
3760 * we can still have concurrent tasks adding elements to this
3761 * transaction's list of dirty block groups. These tasks correspond to
3762 * endio free space workers started when writeback finishes for a
3763 * space cache, which run inode.c:btrfs_finish_ordered_io(), and can
3764 * allocate new block groups as a result of COWing nodes of the root
3765 * tree when updating the free space inode. The writeback for the space
3766 * caches is triggered by an earlier call to
3767 * btrfs_start_dirty_block_groups() and iterations of the following
3768 * loop.
3769 * Also we want to do the cache_save_setup first and then run the
3770 * delayed refs to make sure we have the best chance at doing this all
3771 * in one shot.
3772 */
3773 spin_lock(&cur_trans->dirty_bgs_lock);
3774 while (!list_empty(&cur_trans->dirty_bgs)) {
3775 cache = list_first_entry(&cur_trans->dirty_bgs,
3776 struct btrfs_block_group,
3777 dirty_list);
3778
3779 /*
3780 * This can happen if cache_save_setup re-dirties a block group
3781 * that is already under IO. Just wait for it to finish and
3782 * then do it all again
3783 */
3784 if (!list_empty(&cache->io_list)) {
3785 spin_unlock(&cur_trans->dirty_bgs_lock);
3786 list_del_init(&cache->io_list);
3787 btrfs_wait_cache_io(trans, cache, path);
3788 btrfs_put_block_group(cache);
3789 spin_lock(&cur_trans->dirty_bgs_lock);
3790 }
3791
3792 /*
3793 * Don't remove from the dirty list until after we've waited on
3794 * any pending IO
3795 */
3796 list_del_init(&cache->dirty_list);
3797 spin_unlock(&cur_trans->dirty_bgs_lock);
3798 should_put = 1;
3799
3800 cache_save_setup(cache, trans, path);
3801
3802 if (!ret)
3803 ret = btrfs_run_delayed_refs(trans, U64_MAX);
3804
3805 if (!ret && cache->disk_cache_state == BTRFS_DC_SETUP) {
3806 cache->io_ctl.inode = NULL;
3807 ret = btrfs_write_out_cache(trans, cache, path);
3808 if (ret == 0 && cache->io_ctl.inode) {
3809 should_put = 0;
3810 list_add_tail(&cache->io_list, io);
3811 } else {
3812 /*
3813 * If we failed to write the cache, the
3814 * generation will be bad and life goes on
3815 */
3816 ret = 0;
3817 }
3818 }
3819 if (!ret) {
3820 ret = update_block_group_item(trans, path, cache);
3821 /*
3822 * One of the free space endio workers might have
3823 * created a new block group while updating a free space
3824 * cache's inode (at inode.c:btrfs_finish_ordered_io())
3825 * and hasn't released its transaction handle yet, in
3826 * which case the new block group is still attached to
3827 * its transaction handle and its creation has not
3828 * finished yet (no block group item in the extent tree
3829 * yet, etc). If this is the case, wait for all free
3830 * space endio workers to finish and retry. This is a
3831 * very rare case so no need for a more efficient and
3832 * complex approach.
3833 */
3834 if (ret == -ENOENT) {
3835 wait_event(cur_trans->writer_wait,
3836 atomic_read(&cur_trans->num_writers) == 1);
3837 ret = update_block_group_item(trans, path, cache);
3838 if (ret)
3839 btrfs_abort_transaction(trans, ret);
3840 } else if (ret) {
3841 btrfs_abort_transaction(trans, ret);
3842 }
3843 }
3844
3845 /* If its not on the io list, we need to put the block group */
3846 if (should_put)
3847 btrfs_put_block_group(cache);
3848 btrfs_dec_delayed_refs_rsv_bg_updates(fs_info);
3849 spin_lock(&cur_trans->dirty_bgs_lock);
3850 }
3851 spin_unlock(&cur_trans->dirty_bgs_lock);
3852
3853 /*
3854 * Refer to the definition of io_bgs member for details why it's safe
3855 * to use it without any locking
3856 */
3857 while (!list_empty(io)) {
3858 cache = list_first_entry(io, struct btrfs_block_group,
3859 io_list);
3860 list_del_init(&cache->io_list);
3861 btrfs_wait_cache_io(trans, cache, path);
3862 btrfs_put_block_group(cache);
3863 }
3864
3865 return ret;
3866 }
3867
btrfs_maybe_reset_size_class(struct btrfs_block_group * bg)3868 static void btrfs_maybe_reset_size_class(struct btrfs_block_group *bg)
3869 {
3870 lockdep_assert_held(&bg->lock);
3871 if (btrfs_block_group_should_use_size_class(bg) &&
3872 bg->used == 0 && bg->reserved == 0)
3873 bg->size_class = BTRFS_BG_SZ_NONE;
3874 }
3875
btrfs_update_block_group(struct btrfs_trans_handle * trans,u64 bytenr,u64 num_bytes,bool alloc)3876 int btrfs_update_block_group(struct btrfs_trans_handle *trans,
3877 u64 bytenr, u64 num_bytes, bool alloc)
3878 {
3879 struct btrfs_fs_info *info = trans->fs_info;
3880 struct btrfs_space_info *space_info;
3881 struct btrfs_block_group *cache;
3882 u64 old_val;
3883 bool reclaim = false;
3884 bool bg_already_dirty = true;
3885 int factor;
3886
3887 /* Block accounting for super block */
3888 spin_lock(&info->delalloc_root_lock);
3889 old_val = btrfs_super_bytes_used(info->super_copy);
3890 if (alloc)
3891 old_val += num_bytes;
3892 else
3893 old_val -= num_bytes;
3894 btrfs_set_super_bytes_used(info->super_copy, old_val);
3895 spin_unlock(&info->delalloc_root_lock);
3896
3897 cache = btrfs_lookup_block_group(info, bytenr);
3898 if (!cache)
3899 return -ENOENT;
3900
3901 /* An extent can not span multiple block groups. */
3902 ASSERT(bytenr + num_bytes <= btrfs_block_group_end(cache));
3903
3904 space_info = cache->space_info;
3905 factor = btrfs_bg_type_to_factor(cache->flags);
3906
3907 /*
3908 * If this block group has free space cache written out, we need to make
3909 * sure to load it if we are removing space. This is because we need
3910 * the unpinning stage to actually add the space back to the block group,
3911 * otherwise we will leak space.
3912 */
3913 if (!alloc && !btrfs_block_group_done(cache))
3914 btrfs_cache_block_group(cache, true);
3915
3916 spin_lock(&space_info->lock);
3917 spin_lock(&cache->lock);
3918
3919 if (btrfs_test_opt(info, SPACE_CACHE) &&
3920 cache->disk_cache_state < BTRFS_DC_CLEAR)
3921 cache->disk_cache_state = BTRFS_DC_CLEAR;
3922
3923 old_val = cache->used;
3924 if (alloc) {
3925 old_val += num_bytes;
3926 cache->used = old_val;
3927 cache->reserved -= num_bytes;
3928 cache->reclaim_mark = false;
3929 space_info->bytes_reserved -= num_bytes;
3930 space_info->bytes_used += num_bytes;
3931 space_info->disk_used += num_bytes * factor;
3932 if (READ_ONCE(space_info->periodic_reclaim))
3933 btrfs_space_info_update_reclaimable(space_info, -num_bytes);
3934 spin_unlock(&cache->lock);
3935 spin_unlock(&space_info->lock);
3936 } else {
3937 old_val -= num_bytes;
3938 cache->used = old_val;
3939 cache->pinned += num_bytes;
3940 btrfs_maybe_reset_size_class(cache);
3941 btrfs_space_info_update_bytes_pinned(space_info, num_bytes);
3942 space_info->bytes_used -= num_bytes;
3943 space_info->disk_used -= num_bytes * factor;
3944 if (READ_ONCE(space_info->periodic_reclaim))
3945 btrfs_space_info_update_reclaimable(space_info, num_bytes);
3946 else
3947 reclaim = should_reclaim_block_group(cache, num_bytes);
3948
3949 spin_unlock(&cache->lock);
3950 spin_unlock(&space_info->lock);
3951
3952 btrfs_set_extent_bit(&trans->transaction->pinned_extents, bytenr,
3953 bytenr + num_bytes - 1, EXTENT_DIRTY, NULL);
3954 }
3955
3956 spin_lock(&trans->transaction->dirty_bgs_lock);
3957 if (list_empty(&cache->dirty_list)) {
3958 list_add_tail(&cache->dirty_list, &trans->transaction->dirty_bgs);
3959 bg_already_dirty = false;
3960 btrfs_get_block_group(cache);
3961 }
3962 spin_unlock(&trans->transaction->dirty_bgs_lock);
3963
3964 /*
3965 * No longer have used bytes in this block group, queue it for deletion.
3966 * We do this after adding the block group to the dirty list to avoid
3967 * races between cleaner kthread and space cache writeout.
3968 */
3969 if (!alloc && old_val == 0) {
3970 if (!btrfs_test_opt(info, DISCARD_ASYNC))
3971 btrfs_mark_bg_unused(cache);
3972 } else if (!alloc && reclaim) {
3973 btrfs_mark_bg_to_reclaim(cache);
3974 }
3975
3976 btrfs_put_block_group(cache);
3977
3978 /* Modified block groups are accounted for in the delayed_refs_rsv. */
3979 if (!bg_already_dirty)
3980 btrfs_inc_delayed_refs_rsv_bg_updates(info);
3981
3982 return 0;
3983 }
3984
3985 /*
3986 * Update the block_group and space info counters.
3987 *
3988 * @cache: The cache we are manipulating
3989 * @ram_bytes: The number of bytes of file content, and will be same to
3990 * @num_bytes except for the compress path.
3991 * @num_bytes: The number of bytes in question
3992 * @delalloc: The blocks are allocated for the delalloc write
3993 *
3994 * This is called by the allocator when it reserves space. If this is a
3995 * reservation and the block group has become read only we cannot make the
3996 * reservation and return -EAGAIN, otherwise this function always succeeds.
3997 */
btrfs_add_reserved_bytes(struct btrfs_block_group * cache,u64 ram_bytes,u64 num_bytes,bool delalloc,bool force_wrong_size_class)3998 int btrfs_add_reserved_bytes(struct btrfs_block_group *cache,
3999 u64 ram_bytes, u64 num_bytes, bool delalloc,
4000 bool force_wrong_size_class)
4001 {
4002 struct btrfs_space_info *space_info = cache->space_info;
4003 enum btrfs_block_group_size_class size_class;
4004 int ret = 0;
4005
4006 spin_lock(&space_info->lock);
4007 spin_lock(&cache->lock);
4008 if (cache->ro) {
4009 ret = -EAGAIN;
4010 goto out_error;
4011 }
4012
4013 if (btrfs_block_group_should_use_size_class(cache)) {
4014 size_class = btrfs_calc_block_group_size_class(num_bytes);
4015 ret = btrfs_use_block_group_size_class(cache, size_class, force_wrong_size_class);
4016 if (ret)
4017 goto out_error;
4018 }
4019
4020 cache->reserved += num_bytes;
4021 if (delalloc)
4022 cache->delalloc_bytes += num_bytes;
4023
4024 trace_btrfs_space_reservation(cache->fs_info, "space_info",
4025 space_info->flags, num_bytes, 1);
4026 spin_unlock(&cache->lock);
4027
4028 space_info->bytes_reserved += num_bytes;
4029 btrfs_space_info_update_bytes_may_use(space_info, -ram_bytes);
4030
4031 /*
4032 * Compression can use less space than we reserved, so wake tickets if
4033 * that happens.
4034 */
4035 if (num_bytes < ram_bytes)
4036 btrfs_try_granting_tickets(space_info);
4037 spin_unlock(&space_info->lock);
4038
4039 return 0;
4040
4041 out_error:
4042 spin_unlock(&cache->lock);
4043 spin_unlock(&space_info->lock);
4044 return ret;
4045 }
4046
4047 /*
4048 * Update the block_group and space info counters.
4049 *
4050 * @cache: The cache we are manipulating.
4051 * @num_bytes: The number of bytes in question.
4052 * @is_delalloc: Whether the blocks are allocated for a delalloc write.
4053 *
4054 * This is called by somebody who is freeing space that was never actually used
4055 * on disk. For example if you reserve some space for a new leaf in transaction
4056 * A and before transaction A commits you free that leaf, you call this with
4057 * reserve set to 0 in order to clear the reservation.
4058 */
btrfs_free_reserved_bytes(struct btrfs_block_group * cache,u64 num_bytes,bool is_delalloc)4059 void btrfs_free_reserved_bytes(struct btrfs_block_group *cache, u64 num_bytes,
4060 bool is_delalloc)
4061 {
4062 struct btrfs_space_info *space_info = cache->space_info;
4063 bool bg_ro;
4064
4065 spin_lock(&space_info->lock);
4066 spin_lock(&cache->lock);
4067 bg_ro = cache->ro;
4068 cache->reserved -= num_bytes;
4069 btrfs_maybe_reset_size_class(cache);
4070 if (is_delalloc)
4071 cache->delalloc_bytes -= num_bytes;
4072 spin_unlock(&cache->lock);
4073
4074 if (bg_ro)
4075 space_info->bytes_readonly += num_bytes;
4076 else if (btrfs_is_zoned(cache->fs_info))
4077 space_info->bytes_zone_unusable += num_bytes;
4078
4079 space_info->bytes_reserved -= num_bytes;
4080 space_info->max_extent_size = 0;
4081
4082 btrfs_try_granting_tickets(space_info);
4083 spin_unlock(&space_info->lock);
4084 }
4085
force_metadata_allocation(struct btrfs_fs_info * info)4086 static void force_metadata_allocation(struct btrfs_fs_info *info)
4087 {
4088 struct list_head *head = &info->space_info;
4089 struct btrfs_space_info *found;
4090
4091 list_for_each_entry(found, head, list) {
4092 if (found->flags & BTRFS_BLOCK_GROUP_METADATA)
4093 found->force_alloc = CHUNK_ALLOC_FORCE;
4094 }
4095 }
4096
should_alloc_chunk(const struct btrfs_fs_info * fs_info,const struct btrfs_space_info * sinfo,int force)4097 static bool should_alloc_chunk(const struct btrfs_fs_info *fs_info,
4098 const struct btrfs_space_info *sinfo, int force)
4099 {
4100 u64 bytes_used = btrfs_space_info_used(sinfo, false);
4101 u64 thresh;
4102
4103 if (force == CHUNK_ALLOC_FORCE)
4104 return true;
4105
4106 /*
4107 * in limited mode, we want to have some free space up to
4108 * about 1% of the FS size.
4109 */
4110 if (force == CHUNK_ALLOC_LIMITED) {
4111 thresh = btrfs_super_total_bytes(fs_info->super_copy);
4112 thresh = max_t(u64, SZ_64M, mult_perc(thresh, 1));
4113
4114 if (sinfo->total_bytes - bytes_used < thresh)
4115 return true;
4116 }
4117
4118 if (bytes_used + SZ_2M < mult_perc(sinfo->total_bytes, 80))
4119 return false;
4120 return true;
4121 }
4122
btrfs_force_chunk_alloc(struct btrfs_trans_handle * trans,u64 type)4123 int btrfs_force_chunk_alloc(struct btrfs_trans_handle *trans, u64 type)
4124 {
4125 u64 alloc_flags = btrfs_get_alloc_profile(trans->fs_info, type);
4126 struct btrfs_space_info *space_info;
4127
4128 space_info = btrfs_find_space_info(trans->fs_info, type);
4129 if (unlikely(!space_info)) {
4130 DEBUG_WARN();
4131 return -EINVAL;
4132 }
4133
4134 return btrfs_chunk_alloc(trans, space_info, alloc_flags, CHUNK_ALLOC_FORCE);
4135 }
4136
do_chunk_alloc(struct btrfs_trans_handle * trans,struct btrfs_space_info * space_info,u64 flags)4137 static struct btrfs_block_group *do_chunk_alloc(struct btrfs_trans_handle *trans,
4138 struct btrfs_space_info *space_info,
4139 u64 flags)
4140 {
4141 struct btrfs_block_group *bg;
4142 int ret;
4143
4144 /*
4145 * Check if we have enough space in the system space info because we
4146 * will need to update device items in the chunk btree and insert a new
4147 * chunk item in the chunk btree as well. This will allocate a new
4148 * system block group if needed.
4149 */
4150 check_system_chunk(trans, flags);
4151
4152 bg = btrfs_create_chunk(trans, space_info, flags);
4153 if (IS_ERR(bg)) {
4154 ret = PTR_ERR(bg);
4155 goto out;
4156 }
4157
4158 ret = btrfs_chunk_alloc_add_chunk_item(trans, bg);
4159 /*
4160 * Normally we are not expected to fail with -ENOSPC here, since we have
4161 * previously reserved space in the system space_info and allocated one
4162 * new system chunk if necessary. However there are three exceptions:
4163 *
4164 * 1) We may have enough free space in the system space_info but all the
4165 * existing system block groups have a profile which can not be used
4166 * for extent allocation.
4167 *
4168 * This happens when mounting in degraded mode. For example we have a
4169 * RAID1 filesystem with 2 devices, lose one device and mount the fs
4170 * using the other device in degraded mode. If we then allocate a chunk,
4171 * we may have enough free space in the existing system space_info, but
4172 * none of the block groups can be used for extent allocation since they
4173 * have a RAID1 profile, and because we are in degraded mode with a
4174 * single device, we are forced to allocate a new system chunk with a
4175 * SINGLE profile. Making check_system_chunk() iterate over all system
4176 * block groups and check if they have a usable profile and enough space
4177 * can be slow on very large filesystems, so we tolerate the -ENOSPC and
4178 * try again after forcing allocation of a new system chunk. Like this
4179 * we avoid paying the cost of that search in normal circumstances, when
4180 * we were not mounted in degraded mode;
4181 *
4182 * 2) We had enough free space info the system space_info, and one suitable
4183 * block group to allocate from when we called check_system_chunk()
4184 * above. However right after we called it, the only system block group
4185 * with enough free space got turned into RO mode by a running scrub,
4186 * and in this case we have to allocate a new one and retry. We only
4187 * need do this allocate and retry once, since we have a transaction
4188 * handle and scrub uses the commit root to search for block groups;
4189 *
4190 * 3) We had one system block group with enough free space when we called
4191 * check_system_chunk(), but after that, right before we tried to
4192 * allocate the last extent buffer we needed, a discard operation came
4193 * in and it temporarily removed the last free space entry from the
4194 * block group (discard removes a free space entry, discards it, and
4195 * then adds back the entry to the block group cache).
4196 */
4197 if (ret == -ENOSPC) {
4198 const u64 sys_flags = btrfs_system_alloc_profile(trans->fs_info);
4199 struct btrfs_block_group *sys_bg;
4200 struct btrfs_space_info *sys_space_info;
4201
4202 sys_space_info = btrfs_find_space_info(trans->fs_info, sys_flags);
4203 if (unlikely(!sys_space_info)) {
4204 ret = -EINVAL;
4205 btrfs_abort_transaction(trans, ret);
4206 goto out;
4207 }
4208
4209 sys_bg = btrfs_create_chunk(trans, sys_space_info, sys_flags);
4210 if (IS_ERR(sys_bg)) {
4211 ret = PTR_ERR(sys_bg);
4212 btrfs_abort_transaction(trans, ret);
4213 goto out;
4214 }
4215
4216 ret = btrfs_chunk_alloc_add_chunk_item(trans, sys_bg);
4217 if (unlikely(ret)) {
4218 btrfs_abort_transaction(trans, ret);
4219 goto out;
4220 }
4221
4222 ret = btrfs_chunk_alloc_add_chunk_item(trans, bg);
4223 if (unlikely(ret)) {
4224 btrfs_abort_transaction(trans, ret);
4225 goto out;
4226 }
4227 } else if (unlikely(ret)) {
4228 btrfs_abort_transaction(trans, ret);
4229 goto out;
4230 }
4231 out:
4232 btrfs_trans_release_chunk_metadata(trans);
4233
4234 if (ret)
4235 return ERR_PTR(ret);
4236
4237 btrfs_get_block_group(bg);
4238 return bg;
4239 }
4240
4241 /*
4242 * Chunk allocation is done in 2 phases:
4243 *
4244 * 1) Phase 1 - through btrfs_chunk_alloc() we allocate device extents for
4245 * the chunk, the chunk mapping, create its block group and add the items
4246 * that belong in the chunk btree to it - more specifically, we need to
4247 * update device items in the chunk btree and add a new chunk item to it.
4248 *
4249 * 2) Phase 2 - through btrfs_create_pending_block_groups(), we add the block
4250 * group item to the extent btree and the device extent items to the devices
4251 * btree.
4252 *
4253 * This is done to prevent deadlocks. For example when COWing a node from the
4254 * extent btree we are holding a write lock on the node's parent and if we
4255 * trigger chunk allocation and attempted to insert the new block group item
4256 * in the extent btree right way, we could deadlock because the path for the
4257 * insertion can include that parent node. At first glance it seems impossible
4258 * to trigger chunk allocation after starting a transaction since tasks should
4259 * reserve enough transaction units (metadata space), however while that is true
4260 * most of the time, chunk allocation may still be triggered for several reasons:
4261 *
4262 * 1) When reserving metadata, we check if there is enough free space in the
4263 * metadata space_info and therefore don't trigger allocation of a new chunk.
4264 * However later when the task actually tries to COW an extent buffer from
4265 * the extent btree or from the device btree for example, it is forced to
4266 * allocate a new block group (chunk) because the only one that had enough
4267 * free space was just turned to RO mode by a running scrub for example (or
4268 * device replace, block group reclaim thread, etc), so we can not use it
4269 * for allocating an extent and end up being forced to allocate a new one;
4270 *
4271 * 2) Because we only check that the metadata space_info has enough free bytes,
4272 * we end up not allocating a new metadata chunk in that case. However if
4273 * the filesystem was mounted in degraded mode, none of the existing block
4274 * groups might be suitable for extent allocation due to their incompatible
4275 * profile (for e.g. mounting a 2 devices filesystem, where all block groups
4276 * use a RAID1 profile, in degraded mode using a single device). In this case
4277 * when the task attempts to COW some extent buffer of the extent btree for
4278 * example, it will trigger allocation of a new metadata block group with a
4279 * suitable profile (SINGLE profile in the example of the degraded mount of
4280 * the RAID1 filesystem);
4281 *
4282 * 3) The task has reserved enough transaction units / metadata space, but when
4283 * it attempts to COW an extent buffer from the extent or device btree for
4284 * example, it does not find any free extent in any metadata block group,
4285 * therefore forced to try to allocate a new metadata block group.
4286 * This is because some other task allocated all available extents in the
4287 * meanwhile - this typically happens with tasks that don't reserve space
4288 * properly, either intentionally or as a bug. One example where this is
4289 * done intentionally is fsync, as it does not reserve any transaction units
4290 * and ends up allocating a variable number of metadata extents for log
4291 * tree extent buffers;
4292 *
4293 * 4) The task has reserved enough transaction units / metadata space, but right
4294 * before it tries to allocate the last extent buffer it needs, a discard
4295 * operation comes in and, temporarily, removes the last free space entry from
4296 * the only metadata block group that had free space (discard starts by
4297 * removing a free space entry from a block group, then does the discard
4298 * operation and, once it's done, it adds back the free space entry to the
4299 * block group).
4300 *
4301 * We also need this 2 phases setup when adding a device to a filesystem with
4302 * a seed device - we must create new metadata and system chunks without adding
4303 * any of the block group items to the chunk, extent and device btrees. If we
4304 * did not do it this way, we would get ENOSPC when attempting to update those
4305 * btrees, since all the chunks from the seed device are read-only.
4306 *
4307 * Phase 1 does the updates and insertions to the chunk btree because if we had
4308 * it done in phase 2 and have a thundering herd of tasks allocating chunks in
4309 * parallel, we risk having too many system chunks allocated by many tasks if
4310 * many tasks reach phase 1 without the previous ones completing phase 2. In the
4311 * extreme case this leads to exhaustion of the system chunk array in the
4312 * superblock. This is easier to trigger if using a btree node/leaf size of 64K
4313 * and with RAID filesystems (so we have more device items in the chunk btree).
4314 * This has happened before and commit eafa4fd0ad0607 ("btrfs: fix exhaustion of
4315 * the system chunk array due to concurrent allocations") provides more details.
4316 *
4317 * Allocation of system chunks does not happen through this function. A task that
4318 * needs to update the chunk btree (the only btree that uses system chunks), must
4319 * preallocate chunk space by calling either check_system_chunk() or
4320 * btrfs_reserve_chunk_metadata() - the former is used when allocating a data or
4321 * metadata chunk or when removing a chunk, while the later is used before doing
4322 * a modification to the chunk btree - use cases for the later are adding,
4323 * removing and resizing a device as well as relocation of a system chunk.
4324 * See the comment below for more details.
4325 *
4326 * The reservation of system space, done through check_system_chunk(), as well
4327 * as all the updates and insertions into the chunk btree must be done while
4328 * holding fs_info->chunk_mutex. This is important to guarantee that while COWing
4329 * an extent buffer from the chunks btree we never trigger allocation of a new
4330 * system chunk, which would result in a deadlock (trying to lock twice an
4331 * extent buffer of the chunk btree, first time before triggering the chunk
4332 * allocation and the second time during chunk allocation while attempting to
4333 * update the chunks btree). The system chunk array is also updated while holding
4334 * that mutex. The same logic applies to removing chunks - we must reserve system
4335 * space, update the chunk btree and the system chunk array in the superblock
4336 * while holding fs_info->chunk_mutex.
4337 *
4338 * This function, btrfs_chunk_alloc(), belongs to phase 1.
4339 *
4340 * @space_info: specify which space_info the new chunk should belong to.
4341 *
4342 * If @force is CHUNK_ALLOC_FORCE:
4343 * - return 1 if it successfully allocates a chunk,
4344 * - return errors including -ENOSPC otherwise.
4345 * If @force is NOT CHUNK_ALLOC_FORCE:
4346 * - return 0 if it doesn't need to allocate a new chunk,
4347 * - return 1 if it successfully allocates a chunk,
4348 * - return errors including -ENOSPC otherwise.
4349 */
btrfs_chunk_alloc(struct btrfs_trans_handle * trans,struct btrfs_space_info * space_info,u64 flags,enum btrfs_chunk_alloc_enum force)4350 int btrfs_chunk_alloc(struct btrfs_trans_handle *trans,
4351 struct btrfs_space_info *space_info, u64 flags,
4352 enum btrfs_chunk_alloc_enum force)
4353 {
4354 struct btrfs_fs_info *fs_info = trans->fs_info;
4355 struct btrfs_block_group *ret_bg;
4356 bool wait_for_alloc = false;
4357 bool should_alloc = false;
4358 bool from_extent_allocation = false;
4359 int ret = 0;
4360
4361 if (force == CHUNK_ALLOC_FORCE_FOR_EXTENT) {
4362 from_extent_allocation = true;
4363 force = CHUNK_ALLOC_FORCE;
4364 }
4365
4366 /* Don't re-enter if we're already allocating a chunk */
4367 if (trans->allocating_chunk)
4368 return -ENOSPC;
4369 /*
4370 * Allocation of system chunks can not happen through this path, as we
4371 * could end up in a deadlock if we are allocating a data or metadata
4372 * chunk and there is another task modifying the chunk btree.
4373 *
4374 * This is because while we are holding the chunk mutex, we will attempt
4375 * to add the new chunk item to the chunk btree or update an existing
4376 * device item in the chunk btree, while the other task that is modifying
4377 * the chunk btree is attempting to COW an extent buffer while holding a
4378 * lock on it and on its parent - if the COW operation triggers a system
4379 * chunk allocation, then we can deadlock because we are holding the
4380 * chunk mutex and we may need to access that extent buffer or its parent
4381 * in order to add the chunk item or update a device item.
4382 *
4383 * Tasks that want to modify the chunk tree should reserve system space
4384 * before updating the chunk btree, by calling either
4385 * btrfs_reserve_chunk_metadata() or check_system_chunk().
4386 * It's possible that after a task reserves the space, it still ends up
4387 * here - this happens in the cases described above at do_chunk_alloc().
4388 * The task will have to either retry or fail.
4389 */
4390 if (flags & BTRFS_BLOCK_GROUP_SYSTEM)
4391 return -ENOSPC;
4392
4393 do {
4394 spin_lock(&space_info->lock);
4395 if (force < space_info->force_alloc)
4396 force = space_info->force_alloc;
4397 should_alloc = should_alloc_chunk(fs_info, space_info, force);
4398 if (space_info->full) {
4399 /* No more free physical space */
4400 spin_unlock(&space_info->lock);
4401 if (should_alloc)
4402 ret = -ENOSPC;
4403 else
4404 ret = 0;
4405 return ret;
4406 } else if (!should_alloc) {
4407 spin_unlock(&space_info->lock);
4408 return 0;
4409 } else if (space_info->chunk_alloc) {
4410 /*
4411 * Someone is already allocating, so we need to block
4412 * until this someone is finished and then loop to
4413 * recheck if we should continue with our allocation
4414 * attempt.
4415 */
4416 spin_unlock(&space_info->lock);
4417 wait_for_alloc = true;
4418 force = CHUNK_ALLOC_NO_FORCE;
4419 mutex_lock(&fs_info->chunk_mutex);
4420 mutex_unlock(&fs_info->chunk_mutex);
4421 } else {
4422 /* Proceed with allocation */
4423 space_info->chunk_alloc = true;
4424 spin_unlock(&space_info->lock);
4425 wait_for_alloc = false;
4426 }
4427
4428 cond_resched();
4429 } while (wait_for_alloc);
4430
4431 mutex_lock(&fs_info->chunk_mutex);
4432 trans->allocating_chunk = true;
4433
4434 /*
4435 * If we have mixed data/metadata chunks we want to make sure we keep
4436 * allocating mixed chunks instead of individual chunks.
4437 */
4438 if (btrfs_mixed_space_info(space_info))
4439 flags |= (BTRFS_BLOCK_GROUP_DATA | BTRFS_BLOCK_GROUP_METADATA);
4440
4441 /*
4442 * if we're doing a data chunk, go ahead and make sure that
4443 * we keep a reasonable number of metadata chunks allocated in the
4444 * FS as well.
4445 */
4446 if (flags & BTRFS_BLOCK_GROUP_DATA && fs_info->metadata_ratio) {
4447 fs_info->data_chunk_allocations++;
4448 if (!(fs_info->data_chunk_allocations %
4449 fs_info->metadata_ratio))
4450 force_metadata_allocation(fs_info);
4451 }
4452
4453 ret_bg = do_chunk_alloc(trans, space_info, flags);
4454 trans->allocating_chunk = false;
4455
4456 if (IS_ERR(ret_bg)) {
4457 ret = PTR_ERR(ret_bg);
4458 } else if (from_extent_allocation && (flags & BTRFS_BLOCK_GROUP_DATA)) {
4459 /*
4460 * New block group is likely to be used soon. Try to activate
4461 * it now. Failure is OK for now.
4462 */
4463 btrfs_zone_activate(ret_bg);
4464 }
4465
4466 if (!ret)
4467 btrfs_put_block_group(ret_bg);
4468
4469 spin_lock(&space_info->lock);
4470 if (ret < 0) {
4471 if (ret == -ENOSPC)
4472 space_info->full = true;
4473 else
4474 goto out;
4475 } else {
4476 ret = 1;
4477 space_info->max_extent_size = 0;
4478 }
4479
4480 space_info->force_alloc = CHUNK_ALLOC_NO_FORCE;
4481 out:
4482 space_info->chunk_alloc = false;
4483 spin_unlock(&space_info->lock);
4484 mutex_unlock(&fs_info->chunk_mutex);
4485
4486 return ret;
4487 }
4488
get_profile_num_devs(const struct btrfs_fs_info * fs_info,u64 type)4489 static u64 get_profile_num_devs(const struct btrfs_fs_info *fs_info, u64 type)
4490 {
4491 u64 num_dev;
4492
4493 num_dev = btrfs_raid_array[btrfs_bg_flags_to_raid_index(type)].devs_max;
4494 if (!num_dev)
4495 num_dev = fs_info->fs_devices->rw_devices;
4496
4497 return num_dev;
4498 }
4499
reserve_chunk_space(struct btrfs_trans_handle * trans,u64 bytes,u64 type)4500 static void reserve_chunk_space(struct btrfs_trans_handle *trans,
4501 u64 bytes,
4502 u64 type)
4503 {
4504 struct btrfs_fs_info *fs_info = trans->fs_info;
4505 struct btrfs_space_info *info;
4506 u64 left;
4507 int ret = 0;
4508
4509 /*
4510 * Needed because we can end up allocating a system chunk and for an
4511 * atomic and race free space reservation in the chunk block reserve.
4512 */
4513 lockdep_assert_held(&fs_info->chunk_mutex);
4514
4515 info = btrfs_find_space_info(fs_info, BTRFS_BLOCK_GROUP_SYSTEM);
4516 spin_lock(&info->lock);
4517 left = info->total_bytes - btrfs_space_info_used(info, true);
4518 spin_unlock(&info->lock);
4519
4520 if (left < bytes && btrfs_test_opt(fs_info, ENOSPC_DEBUG)) {
4521 btrfs_info(fs_info, "left=%llu, need=%llu, flags=%llu",
4522 left, bytes, type);
4523 btrfs_dump_space_info(info, 0, false);
4524 }
4525
4526 if (left < bytes) {
4527 u64 flags = btrfs_system_alloc_profile(fs_info);
4528 struct btrfs_block_group *bg;
4529 struct btrfs_space_info *space_info;
4530
4531 space_info = btrfs_find_space_info(fs_info, flags);
4532 ASSERT(space_info);
4533
4534 /*
4535 * Ignore failure to create system chunk. We might end up not
4536 * needing it, as we might not need to COW all nodes/leafs from
4537 * the paths we visit in the chunk tree (they were already COWed
4538 * or created in the current transaction for example).
4539 */
4540 bg = btrfs_create_chunk(trans, space_info, flags);
4541 if (IS_ERR(bg)) {
4542 ret = PTR_ERR(bg);
4543 } else {
4544 int activate_ret;
4545
4546 /*
4547 * We have a new chunk. We also need to activate it for
4548 * zoned filesystem.
4549 */
4550 activate_ret = btrfs_zoned_activate_one_bg(info, true);
4551 if (activate_ret < 0) {
4552 ret = activate_ret;
4553 } else {
4554 /*
4555 * If we fail to add the chunk item here, we end
4556 * up trying again at phase 2 of chunk allocation,
4557 * at btrfs_create_pending_block_groups(). So
4558 * ignore any error here. An ENOSPC here could
4559 * happen, due to the cases described at
4560 * do_chunk_alloc() - the system block group we
4561 * just created was just turned into RO mode by a
4562 * scrub for example, or a running discard
4563 * temporarily removed its free space entries, etc.
4564 */
4565 btrfs_chunk_alloc_add_chunk_item(trans, bg);
4566 }
4567 }
4568 }
4569
4570 if (!ret) {
4571 ret = btrfs_block_rsv_add(fs_info,
4572 &fs_info->chunk_block_rsv,
4573 bytes, BTRFS_RESERVE_NO_FLUSH);
4574 if (!ret)
4575 trans->chunk_bytes_reserved += bytes;
4576 }
4577 }
4578
4579 /*
4580 * Reserve space in the system space for allocating or removing a chunk.
4581 * The caller must be holding fs_info->chunk_mutex.
4582 */
check_system_chunk(struct btrfs_trans_handle * trans,u64 type)4583 void check_system_chunk(struct btrfs_trans_handle *trans, u64 type)
4584 {
4585 struct btrfs_fs_info *fs_info = trans->fs_info;
4586 const u64 num_devs = get_profile_num_devs(fs_info, type);
4587 u64 bytes;
4588
4589 /* num_devs device items to update and 1 chunk item to add or remove. */
4590 bytes = btrfs_calc_metadata_size(fs_info, num_devs) +
4591 btrfs_calc_insert_metadata_size(fs_info, 1);
4592
4593 reserve_chunk_space(trans, bytes, type);
4594 }
4595
4596 /*
4597 * Reserve space in the system space, if needed, for doing a modification to the
4598 * chunk btree.
4599 *
4600 * @trans: A transaction handle.
4601 * @is_item_insertion: Indicate if the modification is for inserting a new item
4602 * in the chunk btree or if it's for the deletion or update
4603 * of an existing item.
4604 *
4605 * This is used in a context where we need to update the chunk btree outside
4606 * block group allocation and removal, to avoid a deadlock with a concurrent
4607 * task that is allocating a metadata or data block group and therefore needs to
4608 * update the chunk btree while holding the chunk mutex. After the update to the
4609 * chunk btree is done, btrfs_trans_release_chunk_metadata() should be called.
4610 *
4611 */
btrfs_reserve_chunk_metadata(struct btrfs_trans_handle * trans,bool is_item_insertion)4612 void btrfs_reserve_chunk_metadata(struct btrfs_trans_handle *trans,
4613 bool is_item_insertion)
4614 {
4615 struct btrfs_fs_info *fs_info = trans->fs_info;
4616 u64 bytes;
4617
4618 if (is_item_insertion)
4619 bytes = btrfs_calc_insert_metadata_size(fs_info, 1);
4620 else
4621 bytes = btrfs_calc_metadata_size(fs_info, 1);
4622
4623 mutex_lock(&fs_info->chunk_mutex);
4624 reserve_chunk_space(trans, bytes, BTRFS_BLOCK_GROUP_SYSTEM);
4625 mutex_unlock(&fs_info->chunk_mutex);
4626 }
4627
btrfs_put_block_group_cache(struct btrfs_fs_info * info)4628 void btrfs_put_block_group_cache(struct btrfs_fs_info *info)
4629 {
4630 struct btrfs_block_group *block_group;
4631
4632 block_group = btrfs_lookup_first_block_group(info, 0);
4633 while (block_group) {
4634 btrfs_wait_block_group_cache_done(block_group);
4635 spin_lock(&block_group->lock);
4636 if (test_and_clear_bit(BLOCK_GROUP_FLAG_IREF,
4637 &block_group->runtime_flags)) {
4638 struct btrfs_inode *inode = block_group->inode;
4639
4640 block_group->inode = NULL;
4641 spin_unlock(&block_group->lock);
4642
4643 ASSERT(block_group->io_ctl.inode == NULL);
4644 iput(&inode->vfs_inode);
4645 } else {
4646 spin_unlock(&block_group->lock);
4647 }
4648 block_group = btrfs_next_block_group(block_group);
4649 }
4650 }
4651
check_removing_space_info(struct btrfs_space_info * space_info)4652 static void check_removing_space_info(struct btrfs_space_info *space_info)
4653 {
4654 struct btrfs_fs_info *info = space_info->fs_info;
4655
4656 if (space_info->subgroup_id == BTRFS_SUB_GROUP_PRIMARY) {
4657 /* This is a top space_info, proceed with its children first. */
4658 for (int i = 0; i < BTRFS_SPACE_INFO_SUB_GROUP_MAX; i++) {
4659 if (space_info->sub_group[i]) {
4660 check_removing_space_info(space_info->sub_group[i]);
4661 btrfs_sysfs_remove_space_info(space_info->sub_group[i]);
4662 space_info->sub_group[i] = NULL;
4663 }
4664 }
4665 }
4666
4667 /*
4668 * Do not hide this behind enospc_debug, this is actually important and
4669 * indicates a real bug if this happens.
4670 */
4671 if (WARN_ON(space_info->bytes_pinned > 0 || space_info->bytes_may_use > 0))
4672 btrfs_dump_space_info(space_info, 0, false);
4673
4674 /*
4675 * If there was a failure to cleanup a log tree, very likely due to an
4676 * IO failure on a writeback attempt of one or more of its extent
4677 * buffers, we could not do proper (and cheap) unaccounting of their
4678 * reserved space, so don't warn on bytes_reserved > 0 in that case.
4679 */
4680 if (!(space_info->flags & BTRFS_BLOCK_GROUP_METADATA) ||
4681 !BTRFS_FS_LOG_CLEANUP_ERROR(info)) {
4682 if (WARN_ON(space_info->bytes_reserved > 0))
4683 btrfs_dump_space_info(space_info, 0, false);
4684 }
4685
4686 WARN_ON(space_info->reclaim_size > 0);
4687 }
4688
4689 /*
4690 * Must be called only after stopping all workers, since we could have block
4691 * group caching kthreads running, and therefore they could race with us if we
4692 * freed the block groups before stopping them.
4693 */
btrfs_free_block_groups(struct btrfs_fs_info * info)4694 int btrfs_free_block_groups(struct btrfs_fs_info *info)
4695 {
4696 struct btrfs_block_group *block_group;
4697 struct btrfs_space_info *space_info;
4698 struct btrfs_caching_control *caching_ctl;
4699 struct rb_node *n;
4700
4701 if (btrfs_is_zoned(info)) {
4702 if (info->active_meta_bg) {
4703 btrfs_put_block_group(info->active_meta_bg);
4704 info->active_meta_bg = NULL;
4705 }
4706 if (info->active_system_bg) {
4707 btrfs_put_block_group(info->active_system_bg);
4708 info->active_system_bg = NULL;
4709 }
4710 }
4711
4712 write_lock(&info->block_group_cache_lock);
4713 while (!list_empty(&info->caching_block_groups)) {
4714 caching_ctl = list_first_entry(&info->caching_block_groups,
4715 struct btrfs_caching_control, list);
4716 list_del(&caching_ctl->list);
4717 btrfs_put_caching_control(caching_ctl);
4718 }
4719 write_unlock(&info->block_group_cache_lock);
4720
4721 spin_lock(&info->unused_bgs_lock);
4722 while (!list_empty(&info->unused_bgs)) {
4723 block_group = list_first_entry(&info->unused_bgs,
4724 struct btrfs_block_group,
4725 bg_list);
4726 list_del_init(&block_group->bg_list);
4727 btrfs_put_block_group(block_group);
4728 }
4729
4730 while (!list_empty(&info->reclaim_bgs)) {
4731 block_group = list_first_entry(&info->reclaim_bgs,
4732 struct btrfs_block_group,
4733 bg_list);
4734 list_del_init(&block_group->bg_list);
4735 btrfs_put_block_group(block_group);
4736 }
4737
4738 while (!list_empty(&info->fully_remapped_bgs)) {
4739 block_group = list_first_entry(&info->fully_remapped_bgs,
4740 struct btrfs_block_group, bg_list);
4741 list_del_init(&block_group->bg_list);
4742 btrfs_put_block_group(block_group);
4743 }
4744 spin_unlock(&info->unused_bgs_lock);
4745
4746 spin_lock(&info->zone_active_bgs_lock);
4747 while (!list_empty(&info->zone_active_bgs)) {
4748 block_group = list_first_entry(&info->zone_active_bgs,
4749 struct btrfs_block_group,
4750 active_bg_list);
4751 list_del_init(&block_group->active_bg_list);
4752 btrfs_put_block_group(block_group);
4753 }
4754 spin_unlock(&info->zone_active_bgs_lock);
4755
4756 write_lock(&info->block_group_cache_lock);
4757 while ((n = rb_last(&info->block_group_cache_tree.rb_root)) != NULL) {
4758 block_group = rb_entry(n, struct btrfs_block_group,
4759 cache_node);
4760 rb_erase_cached(&block_group->cache_node,
4761 &info->block_group_cache_tree);
4762 RB_CLEAR_NODE(&block_group->cache_node);
4763 write_unlock(&info->block_group_cache_lock);
4764
4765 down_write(&block_group->space_info->groups_sem);
4766 list_del(&block_group->list);
4767 up_write(&block_group->space_info->groups_sem);
4768
4769 /*
4770 * We haven't cached this block group, which means we could
4771 * possibly have excluded extents on this block group.
4772 */
4773 if (block_group->cached == BTRFS_CACHE_NO ||
4774 block_group->cached == BTRFS_CACHE_ERROR)
4775 btrfs_free_excluded_extents(block_group);
4776
4777 btrfs_remove_free_space_cache(block_group);
4778 ASSERT(block_group->cached != BTRFS_CACHE_STARTED);
4779 ASSERT(list_empty(&block_group->dirty_list));
4780 ASSERT(list_empty(&block_group->io_list));
4781 ASSERT(list_empty(&block_group->bg_list));
4782 ASSERT(refcount_read(&block_group->refs) == 1);
4783 ASSERT(block_group->swap_extents == 0);
4784 btrfs_put_block_group(block_group);
4785
4786 write_lock(&info->block_group_cache_lock);
4787 }
4788 write_unlock(&info->block_group_cache_lock);
4789
4790 btrfs_release_global_block_rsv(info);
4791
4792 while (!list_empty(&info->space_info)) {
4793 space_info = list_first_entry(&info->space_info,
4794 struct btrfs_space_info, list);
4795
4796 check_removing_space_info(space_info);
4797 list_del(&space_info->list);
4798 btrfs_sysfs_remove_space_info(space_info);
4799 }
4800 return 0;
4801 }
4802
btrfs_freeze_block_group(struct btrfs_block_group * cache)4803 void btrfs_freeze_block_group(struct btrfs_block_group *cache)
4804 {
4805 atomic_inc(&cache->frozen);
4806 }
4807
btrfs_unfreeze_block_group(struct btrfs_block_group * block_group)4808 void btrfs_unfreeze_block_group(struct btrfs_block_group *block_group)
4809 {
4810 struct btrfs_fs_info *fs_info = block_group->fs_info;
4811 bool cleanup;
4812
4813 spin_lock(&block_group->lock);
4814 cleanup = (atomic_dec_and_test(&block_group->frozen) &&
4815 test_bit(BLOCK_GROUP_FLAG_REMOVED, &block_group->runtime_flags));
4816 spin_unlock(&block_group->lock);
4817
4818 if (cleanup) {
4819 struct btrfs_chunk_map *map;
4820
4821 map = btrfs_find_chunk_map(fs_info, block_group->start, 1);
4822 /* Logic error, can't happen. */
4823 ASSERT(map);
4824
4825 btrfs_remove_chunk_map(fs_info, map);
4826
4827 /* Once for our lookup reference. */
4828 btrfs_free_chunk_map(map);
4829
4830 /*
4831 * We may have left one free space entry and other possible
4832 * tasks trimming this block group have left 1 entry each one.
4833 * Free them if any.
4834 */
4835 btrfs_remove_free_space_cache(block_group);
4836 }
4837 }
4838
btrfs_inc_block_group_swap_extents(struct btrfs_block_group * bg)4839 bool btrfs_inc_block_group_swap_extents(struct btrfs_block_group *bg)
4840 {
4841 bool ret = true;
4842
4843 spin_lock(&bg->lock);
4844 if (bg->ro)
4845 ret = false;
4846 else
4847 bg->swap_extents++;
4848 spin_unlock(&bg->lock);
4849
4850 return ret;
4851 }
4852
btrfs_dec_block_group_swap_extents(struct btrfs_block_group * bg,int amount)4853 void btrfs_dec_block_group_swap_extents(struct btrfs_block_group *bg, int amount)
4854 {
4855 spin_lock(&bg->lock);
4856 ASSERT(!bg->ro);
4857 ASSERT(bg->swap_extents >= amount);
4858 bg->swap_extents -= amount;
4859 spin_unlock(&bg->lock);
4860 }
4861
btrfs_calc_block_group_size_class(u64 size)4862 enum btrfs_block_group_size_class btrfs_calc_block_group_size_class(u64 size)
4863 {
4864 if (size <= SZ_128K)
4865 return BTRFS_BG_SZ_SMALL;
4866 if (size <= SZ_8M)
4867 return BTRFS_BG_SZ_MEDIUM;
4868 return BTRFS_BG_SZ_LARGE;
4869 }
4870
4871 /*
4872 * Handle a block group allocating an extent in a size class
4873 *
4874 * @bg: The block group we allocated in.
4875 * @size_class: The size class of the allocation.
4876 * @force_wrong_size_class: Whether we are desperate enough to allow
4877 * mismatched size classes.
4878 *
4879 * Returns: 0 if the size class was valid for this block_group, -EAGAIN in the
4880 * case of a race that leads to the wrong size class without
4881 * force_wrong_size_class set.
4882 *
4883 * find_free_extent will skip block groups with a mismatched size class until
4884 * it really needs to avoid ENOSPC. In that case it will set
4885 * force_wrong_size_class. However, if a block group is newly allocated and
4886 * doesn't yet have a size class, then it is possible for two allocations of
4887 * different sizes to race and both try to use it. The loser is caught here and
4888 * has to retry.
4889 */
btrfs_use_block_group_size_class(struct btrfs_block_group * bg,enum btrfs_block_group_size_class size_class,bool force_wrong_size_class)4890 int btrfs_use_block_group_size_class(struct btrfs_block_group *bg,
4891 enum btrfs_block_group_size_class size_class,
4892 bool force_wrong_size_class)
4893 {
4894 lockdep_assert_held(&bg->lock);
4895 ASSERT(size_class != BTRFS_BG_SZ_NONE);
4896
4897 /* The new allocation is in the right size class, do nothing */
4898 if (bg->size_class == size_class)
4899 return 0;
4900 /*
4901 * The new allocation is in a mismatched size class.
4902 * This means one of two things:
4903 *
4904 * 1. Two tasks in find_free_extent for different size_classes raced
4905 * and hit the same empty block_group. Make the loser try again.
4906 * 2. A call to find_free_extent got desperate enough to set
4907 * 'force_wrong_slab'. Don't change the size_class, but allow the
4908 * allocation.
4909 */
4910 if (bg->size_class != BTRFS_BG_SZ_NONE) {
4911 if (force_wrong_size_class)
4912 return 0;
4913 return -EAGAIN;
4914 }
4915 /*
4916 * The happy new block group case: the new allocation is the first
4917 * one in the block_group so we set size_class.
4918 */
4919 bg->size_class = size_class;
4920
4921 return 0;
4922 }
4923
btrfs_block_group_should_use_size_class(const struct btrfs_block_group * bg)4924 bool btrfs_block_group_should_use_size_class(const struct btrfs_block_group *bg)
4925 {
4926 if (btrfs_is_zoned(bg->fs_info))
4927 return false;
4928 if (!btrfs_is_block_group_data_only(bg))
4929 return false;
4930 return true;
4931 }
4932
btrfs_mark_bg_fully_remapped(struct btrfs_block_group * bg,struct btrfs_trans_handle * trans)4933 void btrfs_mark_bg_fully_remapped(struct btrfs_block_group *bg,
4934 struct btrfs_trans_handle *trans)
4935 {
4936 struct btrfs_fs_info *fs_info = trans->fs_info;
4937
4938
4939 if (btrfs_test_opt(fs_info, DISCARD_ASYNC)) {
4940 spin_lock(&bg->lock);
4941 set_bit(BLOCK_GROUP_FLAG_STRIPE_REMOVAL_PENDING, &bg->runtime_flags);
4942 spin_unlock(&bg->lock);
4943
4944 btrfs_discard_queue_work(&fs_info->discard_ctl, bg);
4945 } else {
4946 spin_lock(&fs_info->unused_bgs_lock);
4947 /*
4948 * The block group might already be on the unused_bgs list,
4949 * remove it if it is. It'll get readded after
4950 * btrfs_handle_fully_remapped_bgs() finishes.
4951 */
4952 if (!list_empty(&bg->bg_list))
4953 list_del(&bg->bg_list);
4954 else
4955 btrfs_get_block_group(bg);
4956
4957 list_add_tail(&bg->bg_list, &fs_info->fully_remapped_bgs);
4958 spin_unlock(&fs_info->unused_bgs_lock);
4959 }
4960 }
4961
4962 /*
4963 * Compare the block group and chunk trees, and find any fully-remapped block
4964 * groups which haven't yet had their chunk stripes and device extents removed,
4965 * and put them on the fully_remapped_bgs list so this gets done.
4966 *
4967 * This happens when a block group becomes fully remapped, i.e. its last
4968 * identity mapping is removed, and the volume is unmounted before async
4969 * discard has finished. It's important this gets done as until it is the
4970 * chunk's stripes are dead space.
4971 */
btrfs_populate_fully_remapped_bgs_list(struct btrfs_fs_info * fs_info)4972 int btrfs_populate_fully_remapped_bgs_list(struct btrfs_fs_info *fs_info)
4973 {
4974 struct rb_node *node_bg, *node_chunk;
4975
4976 node_bg = rb_first_cached(&fs_info->block_group_cache_tree);
4977 node_chunk = rb_first_cached(&fs_info->mapping_tree);
4978
4979 while (node_bg && node_chunk) {
4980 struct btrfs_block_group *bg;
4981 struct btrfs_chunk_map *map;
4982
4983 bg = rb_entry(node_bg, struct btrfs_block_group, cache_node);
4984 map = rb_entry(node_chunk, struct btrfs_chunk_map, rb_node);
4985
4986 ASSERT(bg->start == map->start);
4987
4988 if (!(bg->flags & BTRFS_BLOCK_GROUP_REMAPPED))
4989 goto next;
4990
4991 if (bg->identity_remap_count != 0)
4992 goto next;
4993
4994 if (map->num_stripes == 0)
4995 goto next;
4996
4997 spin_lock(&fs_info->unused_bgs_lock);
4998
4999 if (list_empty(&bg->bg_list)) {
5000 btrfs_get_block_group(bg);
5001 list_add_tail(&bg->bg_list, &fs_info->fully_remapped_bgs);
5002 } else {
5003 list_move_tail(&bg->bg_list, &fs_info->fully_remapped_bgs);
5004 }
5005
5006 spin_unlock(&fs_info->unused_bgs_lock);
5007
5008 /*
5009 * Ideally we'd want to call btrfs_discard_queue_work() here,
5010 * but it'd do nothing as the discard worker hasn't been
5011 * started yet.
5012 *
5013 * The block group will get added to the discard list when
5014 * btrfs_handle_fully_remapped_bgs() gets called, when we
5015 * commit the first transaction.
5016 */
5017 if (btrfs_test_opt(fs_info, DISCARD_ASYNC)) {
5018 spin_lock(&bg->lock);
5019 set_bit(BLOCK_GROUP_FLAG_STRIPE_REMOVAL_PENDING, &bg->runtime_flags);
5020 spin_unlock(&bg->lock);
5021 }
5022
5023 next:
5024 node_bg = rb_next(node_bg);
5025 node_chunk = rb_next(node_chunk);
5026 }
5027
5028 ASSERT(!node_bg && !node_chunk);
5029
5030 return 0;
5031 }
5032