xref: /linux/fs/btrfs/block-rsv.c (revision 8c7badd19e13ceeb7ae34ea0b25fc5e4e13c43d3)
1 // SPDX-License-Identifier: GPL-2.0
2 
3 #include "misc.h"
4 #include "ctree.h"
5 #include "block-rsv.h"
6 #include "space-info.h"
7 #include "transaction.h"
8 #include "block-group.h"
9 #include "fs.h"
10 #include "accessors.h"
11 
12 /*
13  * HOW DO BLOCK RESERVES WORK
14  *
15  *   Think of block_rsv's as buckets for logically grouped metadata
16  *   reservations.  Each block_rsv has a ->size and a ->reserved.  ->size is
17  *   how large we want our block rsv to be, ->reserved is how much space is
18  *   currently reserved for this block reserve.
19  *
20  *   ->failfast exists for the truncate case, and is described below.
21  *
22  * NORMAL OPERATION
23  *
24  *   -> Reserve
25  *     Entrance: btrfs_block_rsv_add, btrfs_block_rsv_refill
26  *
27  *     We call into btrfs_reserve_metadata_bytes() with our bytes, which is
28  *     accounted for in space_info->bytes_may_use, and then add the bytes to
29  *     ->reserved, and ->size in the case of btrfs_block_rsv_add.
30  *
31  *     ->size is an over-estimation of how much we may use for a particular
32  *     operation.
33  *
34  *   -> Use
35  *     Entrance: btrfs_use_block_rsv
36  *
37  *     When we do a btrfs_alloc_tree_block() we call into btrfs_use_block_rsv()
38  *     to determine the appropriate block_rsv to use, and then verify that
39  *     ->reserved has enough space for our tree block allocation.  Once
40  *     successful we subtract fs_info->nodesize from ->reserved.
41  *
42  *   -> Finish
43  *     Entrance: btrfs_block_rsv_release
44  *
45  *     We are finished with our operation, subtract our individual reservation
46  *     from ->size, and then subtract ->size from ->reserved and free up the
47  *     excess if there is any.
48  *
49  *     There is some logic here to refill the delayed refs rsv or the global rsv
50  *     as needed, otherwise the excess is subtracted from
51  *     space_info->bytes_may_use.
52  *
53  * TYPES OF BLOCK RESERVES
54  *
55  * BLOCK_RSV_TRANS, BLOCK_RSV_DELOPS, BLOCK_RSV_CHUNK
56  *   These behave normally, as described above, just within the confines of the
57  *   lifetime of their particular operation (transaction for the whole trans
58  *   handle lifetime, for example).
59  *
60  * BLOCK_RSV_GLOBAL
61  *   It is impossible to properly account for all the space that may be required
62  *   to make our extent tree updates.  This block reserve acts as an overflow
63  *   buffer in case our delayed refs reserve does not reserve enough space to
64  *   update the extent tree.
65  *
66  *   We can steal from this in some cases as well, notably on evict() or
67  *   truncate() in order to help users recover from ENOSPC conditions.
68  *
69  * BLOCK_RSV_DELALLOC
70  *   The individual item sizes are determined by the per-inode size
71  *   calculations, which are described with the delalloc code.  This is pretty
72  *   straightforward, it's just the calculation of ->size encodes a lot of
73  *   different items, and thus it gets used when updating inodes, inserting file
74  *   extents, and inserting checksums.
75  *
76  * BLOCK_RSV_DELREFS
77  *   We keep a running tally of how many delayed refs we have on the system.
78  *   We assume each one of these delayed refs are going to use a full
79  *   reservation.  We use the transaction items and pre-reserve space for every
80  *   operation, and use this reservation to refill any gap between ->size and
81  *   ->reserved that may exist.
82  *
83  *   From there it's straightforward, removing a delayed ref means we remove its
84  *   count from ->size and free up reservations as necessary.  Since this is
85  *   the most dynamic block reserve in the system, we will try to refill this
86  *   block reserve first with any excess returned by any other block reserve.
87  *
88  * BLOCK_RSV_EMPTY
89  *   This is the fallback block reserve to make us try to reserve space if we
90  *   don't have a specific bucket for this allocation.  It is mostly used for
91  *   updating the device tree and such, since that is a separate pool we're
92  *   content to just reserve space from the space_info on demand.
93  *
94  * BLOCK_RSV_TEMP
95  *   This is used by things like truncate and iput.  We will temporarily
96  *   allocate a block reserve, set it to some size, and then truncate bytes
97  *   until we have no space left.  With ->failfast set we'll simply return
98  *   ENOSPC from btrfs_use_block_rsv() to signal that we need to unwind and try
99  *   to make a new reservation.  This is because these operations are
100  *   unbounded, so we want to do as much work as we can, and then back off and
101  *   re-reserve.
102  */
103 
104 static u64 block_rsv_release_bytes(struct btrfs_fs_info *fs_info,
105 				    struct btrfs_block_rsv *block_rsv,
106 				    struct btrfs_block_rsv *dest, u64 num_bytes,
107 				    u64 *qgroup_to_release_ret)
108 {
109 	struct btrfs_space_info *space_info = block_rsv->space_info;
110 	u64 qgroup_to_release = 0;
111 	u64 ret;
112 
113 	spin_lock(&block_rsv->lock);
114 	if (num_bytes == (u64)-1) {
115 		num_bytes = block_rsv->size;
116 		qgroup_to_release = block_rsv->qgroup_rsv_size;
117 	}
118 	block_rsv->size -= num_bytes;
119 	if (block_rsv->reserved >= block_rsv->size) {
120 		num_bytes = block_rsv->reserved - block_rsv->size;
121 		block_rsv->reserved = block_rsv->size;
122 		block_rsv->full = true;
123 	} else {
124 		num_bytes = 0;
125 	}
126 	if (qgroup_to_release_ret &&
127 	    block_rsv->qgroup_rsv_reserved >= block_rsv->qgroup_rsv_size) {
128 		qgroup_to_release = block_rsv->qgroup_rsv_reserved -
129 				    block_rsv->qgroup_rsv_size;
130 		block_rsv->qgroup_rsv_reserved = block_rsv->qgroup_rsv_size;
131 	} else {
132 		qgroup_to_release = 0;
133 	}
134 	spin_unlock(&block_rsv->lock);
135 
136 	ret = num_bytes;
137 	if (num_bytes > 0) {
138 		if (dest) {
139 			spin_lock(&dest->lock);
140 			if (!dest->full) {
141 				u64 bytes_to_add;
142 
143 				bytes_to_add = dest->size - dest->reserved;
144 				bytes_to_add = min(num_bytes, bytes_to_add);
145 				dest->reserved += bytes_to_add;
146 				if (dest->reserved >= dest->size)
147 					dest->full = true;
148 				num_bytes -= bytes_to_add;
149 			}
150 			spin_unlock(&dest->lock);
151 		}
152 		if (num_bytes)
153 			btrfs_space_info_free_bytes_may_use(space_info, num_bytes);
154 	}
155 	if (qgroup_to_release_ret)
156 		*qgroup_to_release_ret = qgroup_to_release;
157 	return ret;
158 }
159 
160 int btrfs_block_rsv_migrate(struct btrfs_block_rsv *src,
161 			    struct btrfs_block_rsv *dst, u64 num_bytes,
162 			    bool update_size)
163 {
164 	int ret;
165 
166 	ret = btrfs_block_rsv_use_bytes(src, num_bytes);
167 	if (ret)
168 		return ret;
169 
170 	btrfs_block_rsv_add_bytes(dst, num_bytes, update_size);
171 	return 0;
172 }
173 
174 void btrfs_init_block_rsv(struct btrfs_block_rsv *rsv, enum btrfs_rsv_type type)
175 {
176 	memset(rsv, 0, sizeof(*rsv));
177 	spin_lock_init(&rsv->lock);
178 	rsv->type = type;
179 }
180 
181 void btrfs_init_metadata_block_rsv(struct btrfs_fs_info *fs_info,
182 				   struct btrfs_block_rsv *rsv,
183 				   enum btrfs_rsv_type type)
184 {
185 	btrfs_init_block_rsv(rsv, type);
186 	rsv->space_info = btrfs_find_space_info(fs_info,
187 					    BTRFS_BLOCK_GROUP_METADATA);
188 }
189 
190 struct btrfs_block_rsv *btrfs_alloc_block_rsv(struct btrfs_fs_info *fs_info,
191 					      enum btrfs_rsv_type type)
192 {
193 	struct btrfs_block_rsv *block_rsv;
194 
195 	block_rsv = kmalloc_obj(*block_rsv, GFP_NOFS);
196 	if (!block_rsv)
197 		return NULL;
198 
199 	btrfs_init_metadata_block_rsv(fs_info, block_rsv, type);
200 	return block_rsv;
201 }
202 
203 void btrfs_free_block_rsv(struct btrfs_fs_info *fs_info,
204 			  struct btrfs_block_rsv *rsv)
205 {
206 	if (!rsv)
207 		return;
208 	btrfs_block_rsv_release(fs_info, rsv, (u64)-1, NULL);
209 	kfree(rsv);
210 }
211 
212 int btrfs_block_rsv_add(struct btrfs_fs_info *fs_info,
213 			struct btrfs_block_rsv *block_rsv, u64 num_bytes,
214 			enum btrfs_reserve_flush_enum flush)
215 {
216 	int ret;
217 
218 	if (num_bytes == 0)
219 		return 0;
220 
221 	ret = btrfs_reserve_metadata_bytes(block_rsv->space_info, num_bytes, flush);
222 	if (!ret)
223 		btrfs_block_rsv_add_bytes(block_rsv, num_bytes, true);
224 
225 	return ret;
226 }
227 
228 int btrfs_block_rsv_check(struct btrfs_block_rsv *block_rsv, int min_percent)
229 {
230 	u64 num_bytes = 0;
231 	int ret = -ENOSPC;
232 
233 	spin_lock(&block_rsv->lock);
234 	num_bytes = mult_perc(block_rsv->size, min_percent);
235 	if (block_rsv->reserved >= num_bytes)
236 		ret = 0;
237 	spin_unlock(&block_rsv->lock);
238 
239 	return ret;
240 }
241 
242 int btrfs_block_rsv_refill(struct btrfs_fs_info *fs_info,
243 			   struct btrfs_block_rsv *block_rsv, u64 num_bytes,
244 			   enum btrfs_reserve_flush_enum flush)
245 {
246 	int ret = -ENOSPC;
247 
248 	if (!block_rsv)
249 		return 0;
250 
251 	spin_lock(&block_rsv->lock);
252 	if (block_rsv->reserved >= num_bytes)
253 		ret = 0;
254 	else
255 		num_bytes -= block_rsv->reserved;
256 	spin_unlock(&block_rsv->lock);
257 
258 	if (!ret)
259 		return 0;
260 
261 	ret = btrfs_reserve_metadata_bytes(block_rsv->space_info, num_bytes, flush);
262 	if (!ret) {
263 		btrfs_block_rsv_add_bytes(block_rsv, num_bytes, false);
264 		return 0;
265 	}
266 
267 	return ret;
268 }
269 
270 u64 btrfs_block_rsv_release(struct btrfs_fs_info *fs_info,
271 			    struct btrfs_block_rsv *block_rsv, u64 num_bytes,
272 			    u64 *qgroup_to_release)
273 {
274 	struct btrfs_block_rsv *global_rsv = &fs_info->global_block_rsv;
275 	struct btrfs_block_rsv *delayed_rsv = &fs_info->delayed_refs_rsv;
276 	struct btrfs_block_rsv *target = NULL;
277 
278 	/*
279 	 * If we are a delayed refs block reserve then push to the global
280 	 * reserve, otherwise dump into the global delayed refs reserve if it is
281 	 * not full.
282 	 */
283 	if (block_rsv->type == BTRFS_BLOCK_RSV_DELREFS)
284 		target = global_rsv;
285 	else if (block_rsv != global_rsv && !btrfs_block_rsv_full(delayed_rsv))
286 		target = delayed_rsv;
287 
288 	if (target && block_rsv->space_info != target->space_info)
289 		target = NULL;
290 
291 	return block_rsv_release_bytes(fs_info, block_rsv, target, num_bytes,
292 				       qgroup_to_release);
293 }
294 
295 int btrfs_block_rsv_use_bytes(struct btrfs_block_rsv *block_rsv, u64 num_bytes)
296 {
297 	int ret = -ENOSPC;
298 
299 	spin_lock(&block_rsv->lock);
300 	if (block_rsv->reserved >= num_bytes) {
301 		block_rsv->reserved -= num_bytes;
302 		if (block_rsv->reserved < block_rsv->size)
303 			block_rsv->full = false;
304 		ret = 0;
305 	}
306 	spin_unlock(&block_rsv->lock);
307 	return ret;
308 }
309 
310 void btrfs_block_rsv_add_bytes(struct btrfs_block_rsv *block_rsv,
311 			       u64 num_bytes, bool update_size)
312 {
313 	spin_lock(&block_rsv->lock);
314 	block_rsv->reserved += num_bytes;
315 	if (update_size)
316 		block_rsv->size += num_bytes;
317 	else if (block_rsv->reserved >= block_rsv->size)
318 		block_rsv->full = true;
319 	spin_unlock(&block_rsv->lock);
320 }
321 
322 void btrfs_update_global_block_rsv(struct btrfs_fs_info *fs_info)
323 {
324 	struct btrfs_block_rsv *block_rsv = &fs_info->global_block_rsv;
325 	struct btrfs_space_info *sinfo;
326 	struct btrfs_root *root, *tmp;
327 	unsigned int min_items = 1;
328 	u64 num_bytes;
329 
330 	/*
331 	 * A full read-only mount (rescue options) cannot start transactions,
332 	 * so the global reserve is never consumed. Mark it as full and skip
333 	 * the accounting.
334 	 */
335 	if (btrfs_is_full_ro(fs_info)) {
336 		spin_lock(&block_rsv->lock);
337 		block_rsv->full = true;
338 		spin_unlock(&block_rsv->lock);
339 		return;
340 	}
341 
342 	sinfo = block_rsv->space_info;
343 	num_bytes = btrfs_root_used(&fs_info->tree_root->root_item);
344 
345 	/*
346 	 * The global block rsv is based on the size of the extent tree, the
347 	 * checksum tree and the root tree.  If the fs is empty we want to set
348 	 * it to a minimal amount for safety.
349 	 *
350 	 * We also are going to need to modify the minimum of the tree root and
351 	 * any global roots we could touch.
352 	 */
353 	read_lock(&fs_info->global_root_lock);
354 	rbtree_postorder_for_each_entry_safe(root, tmp, &fs_info->global_root_tree,
355 					     rb_node) {
356 		if (btrfs_root_id(root) == BTRFS_EXTENT_TREE_OBJECTID ||
357 		    btrfs_root_id(root) == BTRFS_CSUM_TREE_OBJECTID ||
358 		    btrfs_root_id(root) == BTRFS_FREE_SPACE_TREE_OBJECTID) {
359 			num_bytes += btrfs_root_used(&root->root_item);
360 			min_items++;
361 		}
362 	}
363 	read_unlock(&fs_info->global_root_lock);
364 
365 	if (btrfs_fs_compat_ro(fs_info, BLOCK_GROUP_TREE)) {
366 		num_bytes += btrfs_root_used(&fs_info->block_group_root->root_item);
367 		min_items++;
368 	}
369 
370 	if (btrfs_fs_incompat(fs_info, RAID_STRIPE_TREE)) {
371 		num_bytes += btrfs_root_used(&fs_info->stripe_root->root_item);
372 		min_items++;
373 	}
374 
375 	/*
376 	 * But we also want to reserve enough space so we can do the fallback
377 	 * global reserve for an unlink, which is an additional
378 	 * BTRFS_UNLINK_METADATA_UNITS items.
379 	 *
380 	 * But we also need space for the delayed ref updates from the unlink,
381 	 * so add BTRFS_UNLINK_METADATA_UNITS units for delayed refs, one for
382 	 * each unlink metadata item.
383 	 */
384 	min_items += BTRFS_UNLINK_METADATA_UNITS;
385 
386 	num_bytes = max_t(u64, num_bytes,
387 			  btrfs_calc_insert_metadata_size(fs_info, min_items) +
388 			  btrfs_calc_delayed_ref_bytes(fs_info,
389 					       BTRFS_UNLINK_METADATA_UNITS));
390 
391 	spin_lock(&sinfo->lock);
392 	spin_lock(&block_rsv->lock);
393 
394 	block_rsv->size = min_t(u64, num_bytes, SZ_512M);
395 
396 	if (block_rsv->reserved < block_rsv->size) {
397 		num_bytes = block_rsv->size - block_rsv->reserved;
398 		btrfs_space_info_update_bytes_may_use(sinfo, num_bytes);
399 		block_rsv->reserved = block_rsv->size;
400 	} else if (block_rsv->reserved > block_rsv->size) {
401 		num_bytes = block_rsv->reserved - block_rsv->size;
402 		btrfs_space_info_update_bytes_may_use(sinfo, -num_bytes);
403 		block_rsv->reserved = block_rsv->size;
404 		btrfs_try_granting_tickets(sinfo);
405 	}
406 
407 	block_rsv->full = (block_rsv->reserved == block_rsv->size);
408 
409 	if (block_rsv->size >= sinfo->total_bytes)
410 		sinfo->force_alloc = CHUNK_ALLOC_FORCE;
411 	spin_unlock(&block_rsv->lock);
412 	spin_unlock(&sinfo->lock);
413 }
414 
415 void btrfs_init_root_block_rsv(struct btrfs_root *root)
416 {
417 	struct btrfs_fs_info *fs_info = root->fs_info;
418 
419 	switch (btrfs_root_id(root)) {
420 	case BTRFS_CSUM_TREE_OBJECTID:
421 	case BTRFS_EXTENT_TREE_OBJECTID:
422 	case BTRFS_FREE_SPACE_TREE_OBJECTID:
423 	case BTRFS_BLOCK_GROUP_TREE_OBJECTID:
424 	case BTRFS_RAID_STRIPE_TREE_OBJECTID:
425 		root->block_rsv = &fs_info->delayed_refs_rsv;
426 		break;
427 	case BTRFS_ROOT_TREE_OBJECTID:
428 	case BTRFS_DEV_TREE_OBJECTID:
429 	case BTRFS_QUOTA_TREE_OBJECTID:
430 		root->block_rsv = &fs_info->global_block_rsv;
431 		break;
432 	case BTRFS_CHUNK_TREE_OBJECTID:
433 		root->block_rsv = &fs_info->chunk_block_rsv;
434 		break;
435 	case BTRFS_TREE_LOG_OBJECTID:
436 		root->block_rsv = &fs_info->treelog_rsv;
437 		break;
438 	case BTRFS_REMAP_TREE_OBJECTID:
439 		root->block_rsv = &fs_info->remap_block_rsv;
440 		break;
441 	default:
442 		root->block_rsv = NULL;
443 		break;
444 	}
445 }
446 
447 void btrfs_init_global_block_rsv(struct btrfs_fs_info *fs_info)
448 {
449 	struct btrfs_space_info *space_info;
450 
451 	space_info = btrfs_find_space_info(fs_info, BTRFS_BLOCK_GROUP_SYSTEM);
452 	fs_info->chunk_block_rsv.space_info = space_info;
453 
454 	space_info = btrfs_find_space_info(fs_info, BTRFS_BLOCK_GROUP_METADATA_REMAP);
455 	fs_info->remap_block_rsv.space_info = space_info;
456 
457 	space_info = btrfs_find_space_info(fs_info, BTRFS_BLOCK_GROUP_METADATA);
458 	fs_info->global_block_rsv.space_info = space_info;
459 	fs_info->trans_block_rsv.space_info = space_info;
460 	fs_info->empty_block_rsv.space_info = space_info;
461 	fs_info->delayed_block_rsv.space_info = space_info;
462 	fs_info->delayed_refs_rsv.space_info = space_info;
463 
464 	/* The treelog_rsv uses a dedicated space_info on the zoned mode. */
465 	if (!btrfs_is_zoned(fs_info)) {
466 		fs_info->treelog_rsv.space_info = space_info;
467 	} else {
468 		ASSERT(space_info->sub_group[0]->subgroup_id == BTRFS_SUB_GROUP_TREELOG);
469 		fs_info->treelog_rsv.space_info = space_info->sub_group[0];
470 	}
471 
472 	btrfs_update_global_block_rsv(fs_info);
473 }
474 
475 void btrfs_release_global_block_rsv(struct btrfs_fs_info *fs_info)
476 {
477 	btrfs_block_rsv_release(fs_info, &fs_info->global_block_rsv, (u64)-1,
478 				NULL);
479 	WARN_ON(fs_info->trans_block_rsv.size > 0);
480 	WARN_ON(fs_info->trans_block_rsv.reserved > 0);
481 	WARN_ON(fs_info->chunk_block_rsv.size > 0);
482 	WARN_ON(fs_info->chunk_block_rsv.reserved > 0);
483 	WARN_ON(fs_info->remap_block_rsv.size > 0);
484 	WARN_ON(fs_info->remap_block_rsv.reserved > 0);
485 	WARN_ON(fs_info->delayed_block_rsv.size > 0);
486 	WARN_ON(fs_info->delayed_block_rsv.reserved > 0);
487 	WARN_ON(fs_info->delayed_refs_rsv.reserved > 0);
488 	WARN_ON(fs_info->delayed_refs_rsv.size > 0);
489 }
490 
491 static struct btrfs_block_rsv *get_block_rsv(
492 					const struct btrfs_trans_handle *trans,
493 					const struct btrfs_root *root)
494 {
495 	struct btrfs_fs_info *fs_info = root->fs_info;
496 	struct btrfs_block_rsv *block_rsv = NULL;
497 
498 	if (test_bit(BTRFS_ROOT_SHAREABLE, &root->state) ||
499 	    (root == fs_info->uuid_root) ||
500 	    (trans->adding_csums && btrfs_root_id(root) == BTRFS_CSUM_TREE_OBJECTID))
501 		block_rsv = trans->block_rsv;
502 
503 	if (!block_rsv)
504 		block_rsv = root->block_rsv;
505 
506 	if (!block_rsv)
507 		block_rsv = &fs_info->empty_block_rsv;
508 
509 	return block_rsv;
510 }
511 
512 struct btrfs_block_rsv *btrfs_use_block_rsv(struct btrfs_trans_handle *trans,
513 					    struct btrfs_root *root,
514 					    u32 blocksize)
515 {
516 	struct btrfs_fs_info *fs_info = root->fs_info;
517 	struct btrfs_block_rsv *block_rsv;
518 	struct btrfs_block_rsv *global_rsv = &fs_info->global_block_rsv;
519 	int ret;
520 	bool global_updated = false;
521 
522 	block_rsv = get_block_rsv(trans, root);
523 
524 	if (unlikely(btrfs_block_rsv_size(block_rsv) == 0))
525 		goto try_reserve;
526 again:
527 	ret = btrfs_block_rsv_use_bytes(block_rsv, blocksize);
528 	if (!ret)
529 		return block_rsv;
530 
531 	if (block_rsv->failfast)
532 		return ERR_PTR(ret);
533 
534 	if (block_rsv->type == BTRFS_BLOCK_RSV_GLOBAL && !global_updated) {
535 		global_updated = true;
536 		btrfs_update_global_block_rsv(fs_info);
537 		goto again;
538 	}
539 
540 	/*
541 	 * The global reserve still exists to save us from ourselves, so don't
542 	 * warn_on if we are short on our delayed refs reserve.
543 	 */
544 	if (block_rsv->type != BTRFS_BLOCK_RSV_DELREFS &&
545 	    btrfs_test_opt(fs_info, ENOSPC_DEBUG)) {
546 		static DEFINE_RATELIMIT_STATE(_rs,
547 				DEFAULT_RATELIMIT_INTERVAL * 10,
548 				/*DEFAULT_RATELIMIT_BURST*/ 1);
549 		if (__ratelimit(&_rs))
550 			WARN(1, KERN_DEBUG
551 				"BTRFS: block rsv %d returned %d\n",
552 				block_rsv->type, ret);
553 	}
554 try_reserve:
555 	ret = btrfs_reserve_metadata_bytes(block_rsv->space_info, blocksize,
556 					   BTRFS_RESERVE_NO_FLUSH);
557 	if (!ret)
558 		return block_rsv;
559 
560 	/*
561 	 * If we are being used for updating a log tree, fail immediately, which
562 	 * makes the fsync fallback to a transaction commit.
563 	 *
564 	 * We don't want to consume from the global block reserve, as that is
565 	 * precious space that may be needed to do updates to some trees for
566 	 * which we don't reserve space during a transaction commit (update root
567 	 * items in the root tree, device stat items in the device tree and
568 	 * quota tree updates, see btrfs_init_root_block_rsv()), or to fallback
569 	 * to in case we did not reserve enough space to run delayed items,
570 	 * delayed references, or anything else we need in order to avoid a
571 	 * transaction abort.
572 	 *
573 	 * We also don't want to do a reservation in flush emergency mode, as
574 	 * we end up using metadata that could be critical to allow a
575 	 * transaction to complete successfully and therefore increase the
576 	 * chances for a transaction abort.
577 	 *
578 	 * Log trees are an optimization and should never consume from the
579 	 * global reserve or be allowed overcommitting metadata.
580 	 */
581 	if (btrfs_root_id(root) == BTRFS_TREE_LOG_OBJECTID)
582 		return ERR_PTR(ret);
583 
584 	/*
585 	 * If we couldn't reserve metadata bytes try and use some from
586 	 * the global reserve if its space type is the same as the global
587 	 * reservation.
588 	 */
589 	if (block_rsv->type != BTRFS_BLOCK_RSV_GLOBAL &&
590 	    block_rsv->space_info == global_rsv->space_info) {
591 		ret = btrfs_block_rsv_use_bytes(global_rsv, blocksize);
592 		if (!ret)
593 			return global_rsv;
594 	}
595 
596 	/*
597 	 * All hope is lost, but of course our reservations are overly
598 	 * pessimistic, so instead of possibly having an ENOSPC abort here, try
599 	 * one last time to force a reservation if there's enough actual space
600 	 * on disk to make the reservation.
601 	 */
602 	ret = btrfs_reserve_metadata_bytes(block_rsv->space_info, blocksize,
603 					   BTRFS_RESERVE_FLUSH_EMERGENCY);
604 	if (!ret)
605 		return block_rsv;
606 
607 	return ERR_PTR(ret);
608 }
609 
610 int btrfs_check_trunc_cache_free_space(const struct btrfs_fs_info *fs_info,
611 				       struct btrfs_block_rsv *rsv)
612 {
613 	u64 needed_bytes;
614 	int ret;
615 
616 	/* 1 for slack space, 1 for updating the inode */
617 	needed_bytes = btrfs_calc_insert_metadata_size(fs_info, 1) +
618 		btrfs_calc_metadata_size(fs_info, 1);
619 
620 	spin_lock(&rsv->lock);
621 	if (rsv->reserved < needed_bytes)
622 		ret = -ENOSPC;
623 	else
624 		ret = 0;
625 	spin_unlock(&rsv->lock);
626 	return ret;
627 }
628