xref: /linux/fs/btrfs/free-space-cache.c (revision 79bdd8846317f3dea26c53d75700045f62265557)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Copyright (C) 2008 Red Hat.  All rights reserved.
4  */
5 
6 #include <linux/pagemap.h>
7 #include <linux/sched.h>
8 #include <linux/sched/signal.h>
9 #include <linux/slab.h>
10 #include <linux/math64.h>
11 #include <linux/ratelimit.h>
12 #include <linux/error-injection.h>
13 #include <linux/sched/mm.h>
14 #include <linux/string_choices.h>
15 #include "extent-tree.h"
16 #include "fs.h"
17 #include "messages.h"
18 #include "misc.h"
19 #include "free-space-cache.h"
20 #include "transaction.h"
21 #include "disk-io.h"
22 #include "extent_io.h"
23 #include "space-info.h"
24 #include "block-group.h"
25 #include "discard.h"
26 #include "subpage.h"
27 #include "inode-item.h"
28 #include "accessors.h"
29 #include "file-item.h"
30 #include "file.h"
31 #include "super.h"
32 #include "relocation.h"
33 
34 #define BITS_PER_BITMAP		(PAGE_SIZE * 8UL)
35 #define MAX_CACHE_BYTES_PER_GIG	SZ_64K
36 #define FORCE_EXTENT_THRESHOLD	SZ_1M
37 
38 static struct kmem_cache *btrfs_free_space_cachep;
39 static struct kmem_cache *btrfs_free_space_bitmap_cachep;
40 
41 struct btrfs_trim_range {
42 	u64 start;
43 	u64 bytes;
44 	struct list_head list;
45 };
46 
47 static int link_free_space(struct btrfs_free_space_ctl *ctl,
48 			   struct btrfs_free_space *info);
49 static void unlink_free_space(struct btrfs_free_space_ctl *ctl,
50 			      struct btrfs_free_space *info, bool update_stat);
51 static int search_bitmap(struct btrfs_free_space_ctl *ctl,
52 			 struct btrfs_free_space *bitmap_info, u64 *offset,
53 			 u64 *bytes, bool for_alloc);
54 static void free_bitmap(struct btrfs_free_space_ctl *ctl,
55 			struct btrfs_free_space *bitmap_info);
56 static void bitmap_clear_bits(struct btrfs_free_space_ctl *ctl,
57 			      struct btrfs_free_space *info, u64 offset,
58 			      u64 bytes, bool update_stats);
59 
60 static void btrfs_crc32c_final(u32 crc, u8 *result)
61 {
62 	put_unaligned_le32(~crc, result);
63 }
64 
65 static void __btrfs_remove_free_space_cache(struct btrfs_free_space_ctl *ctl)
66 {
67 	struct btrfs_free_space *info;
68 	struct rb_node *node;
69 
70 	while ((node = rb_last(&ctl->free_space_offset)) != NULL) {
71 		info = rb_entry(node, struct btrfs_free_space, offset_index);
72 		if (!info->bitmap) {
73 			unlink_free_space(ctl, info, true);
74 			kmem_cache_free(btrfs_free_space_cachep, info);
75 		} else {
76 			free_bitmap(ctl, info);
77 		}
78 
79 		cond_resched_lock(&ctl->tree_lock);
80 	}
81 }
82 
83 static struct inode *__lookup_free_space_inode(struct btrfs_root *root,
84 					       struct btrfs_path *path,
85 					       u64 offset)
86 {
87 	struct btrfs_key key;
88 	struct btrfs_key location;
89 	struct btrfs_disk_key disk_key;
90 	struct btrfs_free_space_header *header;
91 	struct extent_buffer *leaf;
92 	struct btrfs_inode *inode;
93 	unsigned nofs_flag;
94 	int ret;
95 
96 	key.objectid = BTRFS_FREE_SPACE_OBJECTID;
97 	key.type = 0;
98 	key.offset = offset;
99 
100 	ret = btrfs_search_slot(NULL, root, &key, path, 0, 0);
101 	if (ret < 0)
102 		return ERR_PTR(ret);
103 	if (ret > 0) {
104 		btrfs_release_path(path);
105 		return ERR_PTR(-ENOENT);
106 	}
107 
108 	leaf = path->nodes[0];
109 	header = btrfs_item_ptr(leaf, path->slots[0],
110 				struct btrfs_free_space_header);
111 	btrfs_free_space_key(leaf, header, &disk_key);
112 	btrfs_disk_key_to_cpu(&location, &disk_key);
113 	btrfs_release_path(path);
114 
115 	/*
116 	 * We are often under a trans handle at this point, so we need to make
117 	 * sure NOFS is set to keep us from deadlocking.
118 	 */
119 	nofs_flag = memalloc_nofs_save();
120 	inode = btrfs_iget_path(location.objectid, root, path);
121 	btrfs_release_path(path);
122 	memalloc_nofs_restore(nofs_flag);
123 	if (IS_ERR(inode))
124 		return ERR_CAST(inode);
125 
126 	mapping_set_gfp_mask(inode->vfs_inode.i_mapping,
127 			mapping_gfp_constraint(inode->vfs_inode.i_mapping,
128 			~(__GFP_FS | __GFP_HIGHMEM)));
129 
130 	return &inode->vfs_inode;
131 }
132 
133 struct inode *lookup_free_space_inode(struct btrfs_block_group *block_group,
134 		struct btrfs_path *path)
135 {
136 	struct btrfs_fs_info *fs_info = block_group->fs_info;
137 	struct inode *inode = NULL;
138 	u32 flags = BTRFS_INODE_NODATASUM | BTRFS_INODE_NODATACOW;
139 
140 	spin_lock(&block_group->lock);
141 	if (block_group->inode)
142 		inode = igrab(&block_group->inode->vfs_inode);
143 	spin_unlock(&block_group->lock);
144 	if (inode)
145 		return inode;
146 
147 	inode = __lookup_free_space_inode(fs_info->tree_root, path,
148 					  block_group->start);
149 	if (IS_ERR(inode))
150 		return inode;
151 
152 	spin_lock(&block_group->lock);
153 	if (!((BTRFS_I(inode)->flags & flags) == flags)) {
154 		btrfs_info(fs_info, "Old style space inode found, converting.");
155 		BTRFS_I(inode)->flags |= BTRFS_INODE_NODATASUM |
156 			BTRFS_INODE_NODATACOW;
157 		block_group->disk_cache_state = BTRFS_DC_CLEAR;
158 	}
159 
160 	if (!test_and_set_bit(BLOCK_GROUP_FLAG_IREF, &block_group->runtime_flags))
161 		block_group->inode = BTRFS_I(igrab(inode));
162 	spin_unlock(&block_group->lock);
163 
164 	return inode;
165 }
166 
167 static int __create_free_space_inode(struct btrfs_root *root,
168 				     struct btrfs_trans_handle *trans,
169 				     struct btrfs_path *path,
170 				     u64 ino, u64 offset)
171 {
172 	struct btrfs_key key;
173 	struct btrfs_disk_key disk_key;
174 	struct btrfs_free_space_header *header;
175 	struct btrfs_inode_item *inode_item;
176 	struct extent_buffer *leaf;
177 	/* We inline CRCs for the free disk space cache */
178 	const u64 flags = BTRFS_INODE_NOCOMPRESS | BTRFS_INODE_PREALLOC |
179 			  BTRFS_INODE_NODATASUM | BTRFS_INODE_NODATACOW;
180 	int ret;
181 
182 	ret = btrfs_insert_empty_inode(trans, root, path, ino);
183 	if (ret)
184 		return ret;
185 
186 	leaf = path->nodes[0];
187 	inode_item = btrfs_item_ptr(leaf, path->slots[0],
188 				    struct btrfs_inode_item);
189 	btrfs_item_key(leaf, &disk_key, path->slots[0]);
190 	memzero_extent_buffer(leaf, (unsigned long)inode_item,
191 			     sizeof(*inode_item));
192 	btrfs_set_inode_generation(leaf, inode_item, trans->transid);
193 	btrfs_set_inode_size(leaf, inode_item, 0);
194 	btrfs_set_inode_nbytes(leaf, inode_item, 0);
195 	btrfs_set_inode_uid(leaf, inode_item, 0);
196 	btrfs_set_inode_gid(leaf, inode_item, 0);
197 	btrfs_set_inode_mode(leaf, inode_item, S_IFREG | 0600);
198 	btrfs_set_inode_flags(leaf, inode_item, flags);
199 	btrfs_set_inode_nlink(leaf, inode_item, 1);
200 	btrfs_set_inode_transid(leaf, inode_item, trans->transid);
201 	btrfs_set_inode_block_group(leaf, inode_item, offset);
202 	btrfs_release_path(path);
203 
204 	key.objectid = BTRFS_FREE_SPACE_OBJECTID;
205 	key.type = 0;
206 	key.offset = offset;
207 	ret = btrfs_insert_empty_item(trans, root, path, &key,
208 				      sizeof(struct btrfs_free_space_header));
209 	if (ret < 0) {
210 		btrfs_release_path(path);
211 		return ret;
212 	}
213 
214 	leaf = path->nodes[0];
215 	header = btrfs_item_ptr(leaf, path->slots[0],
216 				struct btrfs_free_space_header);
217 	memzero_extent_buffer(leaf, (unsigned long)header, sizeof(*header));
218 	btrfs_set_free_space_key(leaf, header, &disk_key);
219 	btrfs_release_path(path);
220 
221 	return 0;
222 }
223 
224 int create_free_space_inode(struct btrfs_trans_handle *trans,
225 			    struct btrfs_block_group *block_group,
226 			    struct btrfs_path *path)
227 {
228 	int ret;
229 	u64 ino;
230 
231 	ret = btrfs_get_free_objectid(trans->fs_info->tree_root, &ino);
232 	if (ret < 0)
233 		return ret;
234 
235 	return __create_free_space_inode(trans->fs_info->tree_root, trans, path,
236 					 ino, block_group->start);
237 }
238 
239 /*
240  * inode is an optional sink: if it is NULL, btrfs_remove_free_space_inode
241  * handles lookup, otherwise it takes ownership and iputs the inode.
242  * Don't reuse an inode pointer after passing it into this function.
243  */
244 int btrfs_remove_free_space_inode(struct btrfs_trans_handle *trans,
245 				  struct inode *inode,
246 				  struct btrfs_block_group *block_group)
247 {
248 	BTRFS_PATH_AUTO_FREE(path);
249 	struct btrfs_key key;
250 	int ret = 0;
251 
252 	path = btrfs_alloc_path();
253 	if (!path)
254 		return -ENOMEM;
255 
256 	if (!inode)
257 		inode = lookup_free_space_inode(block_group, path);
258 	if (IS_ERR(inode)) {
259 		if (PTR_ERR(inode) != -ENOENT)
260 			ret = PTR_ERR(inode);
261 		return ret;
262 	}
263 	ret = btrfs_orphan_add(trans, BTRFS_I(inode));
264 	if (ret) {
265 		btrfs_add_delayed_iput(BTRFS_I(inode));
266 		return ret;
267 	}
268 	clear_nlink(inode);
269 	/* One for the block groups ref */
270 	spin_lock(&block_group->lock);
271 	if (test_and_clear_bit(BLOCK_GROUP_FLAG_IREF, &block_group->runtime_flags)) {
272 		block_group->inode = NULL;
273 		spin_unlock(&block_group->lock);
274 		iput(inode);
275 	} else {
276 		spin_unlock(&block_group->lock);
277 	}
278 	/* One for the lookup ref */
279 	btrfs_add_delayed_iput(BTRFS_I(inode));
280 
281 	key.objectid = BTRFS_FREE_SPACE_OBJECTID;
282 	key.type = 0;
283 	key.offset = block_group->start;
284 	ret = btrfs_search_slot(trans, trans->fs_info->tree_root, &key, path,
285 				-1, 1);
286 	if (ret) {
287 		if (ret > 0)
288 			ret = 0;
289 		return ret;
290 	}
291 	return btrfs_del_item(trans, trans->fs_info->tree_root, path);
292 }
293 
294 int btrfs_truncate_free_space_cache(struct btrfs_trans_handle *trans,
295 				    struct btrfs_block_group *block_group,
296 				    struct inode *vfs_inode)
297 {
298 	struct btrfs_truncate_control control = {
299 		.inode = BTRFS_I(vfs_inode),
300 		.new_size = 0,
301 		.ino = btrfs_ino(BTRFS_I(vfs_inode)),
302 		.min_type = BTRFS_EXTENT_DATA_KEY,
303 		.clear_extent_range = true,
304 	};
305 	struct btrfs_inode *inode = BTRFS_I(vfs_inode);
306 	struct btrfs_root *root = inode->root;
307 	struct extent_state *cached_state = NULL;
308 	int ret = 0;
309 	bool locked = false;
310 
311 	if (block_group) {
312 		BTRFS_PATH_AUTO_FREE(path);
313 
314 		path = btrfs_alloc_path();
315 		if (!path) {
316 			ret = -ENOMEM;
317 			goto fail;
318 		}
319 		locked = true;
320 		mutex_lock(&trans->transaction->cache_write_mutex);
321 		if (!list_empty(&block_group->io_list)) {
322 			list_del_init(&block_group->io_list);
323 
324 			btrfs_wait_cache_io(trans, block_group, path);
325 			btrfs_put_block_group(block_group);
326 		}
327 
328 		/*
329 		 * now that we've truncated the cache away, its no longer
330 		 * setup or written
331 		 */
332 		spin_lock(&block_group->lock);
333 		block_group->disk_cache_state = BTRFS_DC_CLEAR;
334 		spin_unlock(&block_group->lock);
335 	}
336 
337 	btrfs_i_size_write(inode, 0);
338 	truncate_pagecache(vfs_inode, 0);
339 
340 	btrfs_lock_extent(&inode->io_tree, 0, (u64)-1, &cached_state);
341 	btrfs_drop_extent_map_range(inode, 0, (u64)-1, false);
342 
343 	/*
344 	 * We skip the throttling logic for free space cache inodes, so we don't
345 	 * need to check for -EAGAIN.
346 	 */
347 	ret = btrfs_truncate_inode_items(trans, root, &control);
348 
349 	inode_sub_bytes(&inode->vfs_inode, control.sub_bytes);
350 	btrfs_inode_safe_disk_i_size_write(inode, control.last_size);
351 
352 	btrfs_unlock_extent(&inode->io_tree, 0, (u64)-1, &cached_state);
353 	if (ret)
354 		goto fail;
355 
356 	ret = btrfs_update_inode(trans, inode);
357 
358 fail:
359 	if (locked)
360 		mutex_unlock(&trans->transaction->cache_write_mutex);
361 	if (ret)
362 		btrfs_abort_transaction(trans, ret);
363 
364 	return ret;
365 }
366 
367 static void readahead_cache(struct inode *inode)
368 {
369 	struct file_ra_state ra;
370 	pgoff_t last_index;
371 
372 	file_ra_state_init(&ra, inode->i_mapping);
373 	last_index = (i_size_read(inode) - 1) >> PAGE_SHIFT;
374 
375 	page_cache_sync_readahead(inode->i_mapping, &ra, NULL, 0, last_index);
376 }
377 
378 static int io_ctl_init(struct btrfs_io_ctl *io_ctl, struct inode *inode,
379 		       int write)
380 {
381 	int num_pages;
382 
383 	num_pages = DIV_ROUND_UP(i_size_read(inode), PAGE_SIZE);
384 
385 	/* Make sure we can fit our crcs and generation into the first page */
386 	if (write && (num_pages * sizeof(u32) + sizeof(u64)) > PAGE_SIZE)
387 		return -ENOSPC;
388 
389 	memset(io_ctl, 0, sizeof(struct btrfs_io_ctl));
390 
391 	io_ctl->pages = kzalloc_objs(struct page *, num_pages, GFP_NOFS);
392 	if (!io_ctl->pages)
393 		return -ENOMEM;
394 
395 	io_ctl->num_pages = num_pages;
396 	io_ctl->fs_info = inode_to_fs_info(inode);
397 	io_ctl->inode = inode;
398 
399 	return 0;
400 }
401 ALLOW_ERROR_INJECTION(io_ctl_init, ERRNO);
402 
403 static void io_ctl_free(struct btrfs_io_ctl *io_ctl)
404 {
405 	kfree(io_ctl->pages);
406 	io_ctl->pages = NULL;
407 }
408 
409 static void io_ctl_unmap_page(struct btrfs_io_ctl *io_ctl)
410 {
411 	if (io_ctl->cur) {
412 		io_ctl->cur = NULL;
413 		io_ctl->orig = NULL;
414 	}
415 }
416 
417 static void io_ctl_map_page(struct btrfs_io_ctl *io_ctl, int clear)
418 {
419 	ASSERT(io_ctl->index < io_ctl->num_pages);
420 	io_ctl->page = io_ctl->pages[io_ctl->index++];
421 	io_ctl->cur = page_address(io_ctl->page);
422 	io_ctl->orig = io_ctl->cur;
423 	io_ctl->size = PAGE_SIZE;
424 	if (clear)
425 		clear_page(io_ctl->cur);
426 }
427 
428 static void io_ctl_drop_pages(struct btrfs_io_ctl *io_ctl)
429 {
430 	int i;
431 
432 	io_ctl_unmap_page(io_ctl);
433 
434 	for (i = 0; i < io_ctl->num_pages; i++) {
435 		if (io_ctl->pages[i]) {
436 			unlock_page(io_ctl->pages[i]);
437 			put_page(io_ctl->pages[i]);
438 		}
439 	}
440 }
441 
442 static int io_ctl_prepare_pages(struct btrfs_io_ctl *io_ctl, bool uptodate)
443 {
444 	struct folio *folio;
445 	struct inode *inode = io_ctl->inode;
446 	gfp_t mask = btrfs_alloc_write_mask(inode->i_mapping);
447 	int i;
448 
449 	for (i = 0; i < io_ctl->num_pages; i++) {
450 		int ret;
451 
452 		folio = __filemap_get_folio(inode->i_mapping, i,
453 					    FGP_LOCK | FGP_ACCESSED | FGP_CREAT,
454 					    mask);
455 		if (IS_ERR(folio)) {
456 			io_ctl_drop_pages(io_ctl);
457 			return PTR_ERR(folio);
458 		}
459 
460 		ret = set_folio_extent_mapped(folio);
461 		if (ret < 0) {
462 			folio_unlock(folio);
463 			folio_put(folio);
464 			io_ctl_drop_pages(io_ctl);
465 			return ret;
466 		}
467 
468 		io_ctl->pages[i] = &folio->page;
469 		if (uptodate && !folio_test_uptodate(folio)) {
470 			btrfs_read_folio(NULL, folio);
471 			folio_lock(folio);
472 			if (folio->mapping != inode->i_mapping) {
473 				btrfs_err(BTRFS_I(inode)->root->fs_info,
474 					  "free space cache page truncated");
475 				io_ctl_drop_pages(io_ctl);
476 				return -EIO;
477 			}
478 			if (!folio_test_uptodate(folio)) {
479 				btrfs_err(BTRFS_I(inode)->root->fs_info,
480 					   "error reading free space cache");
481 				io_ctl_drop_pages(io_ctl);
482 				return -EIO;
483 			}
484 		}
485 	}
486 
487 	for (i = 0; i < io_ctl->num_pages; i++)
488 		clear_page_dirty_for_io(io_ctl->pages[i]);
489 
490 	return 0;
491 }
492 
493 static void io_ctl_set_generation(struct btrfs_io_ctl *io_ctl, u64 generation)
494 {
495 	io_ctl_map_page(io_ctl, 1);
496 
497 	/*
498 	 * Skip the csum areas.  If we don't check crcs then we just have a
499 	 * 64bit chunk at the front of the first page.
500 	 */
501 	io_ctl->cur += (sizeof(u32) * io_ctl->num_pages);
502 	io_ctl->size -= sizeof(u64) + (sizeof(u32) * io_ctl->num_pages);
503 
504 	put_unaligned_le64(generation, io_ctl->cur);
505 	io_ctl->cur += sizeof(u64);
506 }
507 
508 static int io_ctl_check_generation(struct btrfs_io_ctl *io_ctl, u64 generation)
509 {
510 	u64 cache_gen;
511 
512 	/*
513 	 * Skip the crc area.  If we don't check crcs then we just have a 64bit
514 	 * chunk at the front of the first page.
515 	 */
516 	io_ctl->cur += sizeof(u32) * io_ctl->num_pages;
517 	io_ctl->size -= sizeof(u64) + (sizeof(u32) * io_ctl->num_pages);
518 
519 	cache_gen = get_unaligned_le64(io_ctl->cur);
520 	if (cache_gen != generation) {
521 		btrfs_err_rl(io_ctl->fs_info,
522 			"space cache generation (%llu) does not match inode (%llu)",
523 				cache_gen, generation);
524 		io_ctl_unmap_page(io_ctl);
525 		return -EIO;
526 	}
527 	io_ctl->cur += sizeof(u64);
528 	return 0;
529 }
530 
531 static void io_ctl_set_crc(struct btrfs_io_ctl *io_ctl, int index)
532 {
533 	u32 *tmp;
534 	u32 crc = ~(u32)0;
535 	unsigned offset = 0;
536 
537 	if (index == 0)
538 		offset = sizeof(u32) * io_ctl->num_pages;
539 
540 	crc = crc32c(crc, io_ctl->orig + offset, PAGE_SIZE - offset);
541 	btrfs_crc32c_final(crc, (u8 *)&crc);
542 	io_ctl_unmap_page(io_ctl);
543 	tmp = page_address(io_ctl->pages[0]);
544 	tmp += index;
545 	*tmp = crc;
546 }
547 
548 static int io_ctl_check_crc(struct btrfs_io_ctl *io_ctl, int index)
549 {
550 	u32 *tmp, val;
551 	u32 crc = ~(u32)0;
552 	unsigned offset = 0;
553 
554 	if (index == 0)
555 		offset = sizeof(u32) * io_ctl->num_pages;
556 
557 	tmp = page_address(io_ctl->pages[0]);
558 	tmp += index;
559 	val = *tmp;
560 
561 	io_ctl_map_page(io_ctl, 0);
562 	crc = crc32c(crc, io_ctl->orig + offset, PAGE_SIZE - offset);
563 	btrfs_crc32c_final(crc, (u8 *)&crc);
564 	if (val != crc) {
565 		btrfs_err_rl(io_ctl->fs_info,
566 			"csum mismatch on free space cache");
567 		io_ctl_unmap_page(io_ctl);
568 		return -EIO;
569 	}
570 
571 	return 0;
572 }
573 
574 static int io_ctl_add_entry(struct btrfs_io_ctl *io_ctl, u64 offset, u64 bytes,
575 			    void *bitmap)
576 {
577 	struct btrfs_free_space_entry *entry;
578 
579 	if (!io_ctl->cur)
580 		return -ENOSPC;
581 
582 	entry = io_ctl->cur;
583 	put_unaligned_le64(offset, &entry->offset);
584 	put_unaligned_le64(bytes, &entry->bytes);
585 	entry->type = (bitmap) ? BTRFS_FREE_SPACE_BITMAP :
586 		BTRFS_FREE_SPACE_EXTENT;
587 	io_ctl->cur += sizeof(struct btrfs_free_space_entry);
588 	io_ctl->size -= sizeof(struct btrfs_free_space_entry);
589 
590 	if (io_ctl->size >= sizeof(struct btrfs_free_space_entry))
591 		return 0;
592 
593 	io_ctl_set_crc(io_ctl, io_ctl->index - 1);
594 
595 	/* No more pages to map */
596 	if (io_ctl->index >= io_ctl->num_pages)
597 		return 0;
598 
599 	/* map the next page */
600 	io_ctl_map_page(io_ctl, 1);
601 	return 0;
602 }
603 
604 static int io_ctl_add_bitmap(struct btrfs_io_ctl *io_ctl, void *bitmap)
605 {
606 	if (!io_ctl->cur)
607 		return -ENOSPC;
608 
609 	/*
610 	 * If we aren't at the start of the current page, unmap this one and
611 	 * map the next one if there is any left.
612 	 */
613 	if (io_ctl->cur != io_ctl->orig) {
614 		io_ctl_set_crc(io_ctl, io_ctl->index - 1);
615 		if (io_ctl->index >= io_ctl->num_pages)
616 			return -ENOSPC;
617 		io_ctl_map_page(io_ctl, 0);
618 	}
619 
620 	copy_page(io_ctl->cur, bitmap);
621 	io_ctl_set_crc(io_ctl, io_ctl->index - 1);
622 	if (io_ctl->index < io_ctl->num_pages)
623 		io_ctl_map_page(io_ctl, 0);
624 	return 0;
625 }
626 
627 static void io_ctl_zero_remaining_pages(struct btrfs_io_ctl *io_ctl)
628 {
629 	/*
630 	 * If we're not on the boundary we know we've modified the page and we
631 	 * need to crc the page.
632 	 */
633 	if (io_ctl->cur != io_ctl->orig)
634 		io_ctl_set_crc(io_ctl, io_ctl->index - 1);
635 	else
636 		io_ctl_unmap_page(io_ctl);
637 
638 	while (io_ctl->index < io_ctl->num_pages) {
639 		io_ctl_map_page(io_ctl, 1);
640 		io_ctl_set_crc(io_ctl, io_ctl->index - 1);
641 	}
642 }
643 
644 static int io_ctl_read_entry(struct btrfs_io_ctl *io_ctl,
645 			    struct btrfs_free_space *entry, u8 *type)
646 {
647 	struct btrfs_free_space_entry *e;
648 	int ret;
649 
650 	if (!io_ctl->cur) {
651 		ret = io_ctl_check_crc(io_ctl, io_ctl->index);
652 		if (ret)
653 			return ret;
654 	}
655 
656 	e = io_ctl->cur;
657 	entry->offset = get_unaligned_le64(&e->offset);
658 	entry->bytes = get_unaligned_le64(&e->bytes);
659 	*type = e->type;
660 	io_ctl->cur += sizeof(struct btrfs_free_space_entry);
661 	io_ctl->size -= sizeof(struct btrfs_free_space_entry);
662 
663 	if (io_ctl->size >= sizeof(struct btrfs_free_space_entry))
664 		return 0;
665 
666 	io_ctl_unmap_page(io_ctl);
667 
668 	return 0;
669 }
670 
671 static int io_ctl_read_bitmap(struct btrfs_io_ctl *io_ctl,
672 			      struct btrfs_free_space *entry)
673 {
674 	int ret;
675 
676 	ret = io_ctl_check_crc(io_ctl, io_ctl->index);
677 	if (ret)
678 		return ret;
679 
680 	copy_page(entry->bitmap, io_ctl->cur);
681 	io_ctl_unmap_page(io_ctl);
682 
683 	return 0;
684 }
685 
686 static void recalculate_thresholds(struct btrfs_free_space_ctl *ctl)
687 {
688 	struct btrfs_block_group *block_group = ctl->block_group;
689 	const int unit = block_group->fs_info->sectorsize;
690 	u64 max_bytes;
691 	u64 bitmap_bytes;
692 	u64 extent_bytes;
693 	u64 size = block_group->length;
694 	u64 bytes_per_bg = BITS_PER_BITMAP * unit;
695 	u64 max_bitmaps = div64_u64(size + bytes_per_bg - 1, bytes_per_bg);
696 
697 	max_bitmaps = max_t(u64, max_bitmaps, 1);
698 
699 	if (ctl->total_bitmaps > max_bitmaps)
700 		btrfs_err(block_group->fs_info,
701 "invalid free space control: bg start=%llu len=%llu total_bitmaps=%u unit=%u max_bitmaps=%llu bytes_per_bg=%llu",
702 			  block_group->start, block_group->length,
703 			  ctl->total_bitmaps, unit, max_bitmaps,
704 			  bytes_per_bg);
705 	ASSERT(ctl->total_bitmaps <= max_bitmaps);
706 
707 	/*
708 	 * We are trying to keep the total amount of memory used per 1GiB of
709 	 * space to be MAX_CACHE_BYTES_PER_GIG.  However, with a reclamation
710 	 * mechanism of pulling extents >= FORCE_EXTENT_THRESHOLD out of
711 	 * bitmaps, we may end up using more memory than this.
712 	 */
713 	if (size < SZ_1G)
714 		max_bytes = MAX_CACHE_BYTES_PER_GIG;
715 	else
716 		max_bytes = MAX_CACHE_BYTES_PER_GIG * div_u64(size, SZ_1G);
717 
718 	bitmap_bytes = ctl->total_bitmaps * unit;
719 
720 	/*
721 	 * we want the extent entry threshold to always be at most 1/2 the max
722 	 * bytes we can have, or whatever is less than that.
723 	 */
724 	extent_bytes = max_bytes - bitmap_bytes;
725 	extent_bytes = min_t(u64, extent_bytes, max_bytes >> 1);
726 
727 	ctl->extents_thresh =
728 		div_u64(extent_bytes, sizeof(struct btrfs_free_space));
729 }
730 
731 static int __load_free_space_cache(struct btrfs_root *root, struct inode *inode,
732 				   struct btrfs_free_space_ctl *ctl,
733 				   struct btrfs_path *path, u64 offset)
734 {
735 	struct btrfs_fs_info *fs_info = root->fs_info;
736 	struct btrfs_free_space_header *header;
737 	struct extent_buffer *leaf;
738 	struct btrfs_io_ctl io_ctl;
739 	struct btrfs_key key;
740 	struct btrfs_free_space *e, *n;
741 	LIST_HEAD(bitmaps);
742 	u64 num_entries;
743 	u64 num_bitmaps;
744 	u64 generation;
745 	u8 type;
746 	int ret = 0;
747 
748 	/* Nothing in the space cache, goodbye */
749 	if (!i_size_read(inode))
750 		return 0;
751 
752 	key.objectid = BTRFS_FREE_SPACE_OBJECTID;
753 	key.type = 0;
754 	key.offset = offset;
755 
756 	ret = btrfs_search_slot(NULL, root, &key, path, 0, 0);
757 	if (ret < 0)
758 		return 0;
759 	else if (ret > 0) {
760 		btrfs_release_path(path);
761 		return 0;
762 	}
763 
764 	ret = -1;
765 
766 	leaf = path->nodes[0];
767 	header = btrfs_item_ptr(leaf, path->slots[0],
768 				struct btrfs_free_space_header);
769 	num_entries = btrfs_free_space_entries(leaf, header);
770 	num_bitmaps = btrfs_free_space_bitmaps(leaf, header);
771 	generation = btrfs_free_space_generation(leaf, header);
772 	btrfs_release_path(path);
773 
774 	if (!BTRFS_I(inode)->generation) {
775 		btrfs_info(fs_info,
776 			   "the free space cache file (%llu) is invalid, skip it",
777 			   offset);
778 		return 0;
779 	}
780 
781 	if (BTRFS_I(inode)->generation != generation) {
782 		btrfs_err(fs_info,
783 			  "free space inode generation (%llu) did not match free space cache generation (%llu)",
784 			  BTRFS_I(inode)->generation, generation);
785 		return 0;
786 	}
787 
788 	if (!num_entries)
789 		return 0;
790 
791 	ret = io_ctl_init(&io_ctl, inode, 0);
792 	if (ret)
793 		return ret;
794 
795 	readahead_cache(inode);
796 
797 	ret = io_ctl_prepare_pages(&io_ctl, true);
798 	if (ret)
799 		goto out;
800 
801 	ret = io_ctl_check_crc(&io_ctl, 0);
802 	if (ret)
803 		goto free_cache;
804 
805 	ret = io_ctl_check_generation(&io_ctl, generation);
806 	if (ret)
807 		goto free_cache;
808 
809 	while (num_entries) {
810 		e = kmem_cache_zalloc(btrfs_free_space_cachep,
811 				      GFP_NOFS);
812 		if (!e) {
813 			ret = -ENOMEM;
814 			goto free_cache;
815 		}
816 
817 		ret = io_ctl_read_entry(&io_ctl, e, &type);
818 		if (ret) {
819 			kmem_cache_free(btrfs_free_space_cachep, e);
820 			goto free_cache;
821 		}
822 
823 		if (!e->bytes) {
824 			ret = -1;
825 			kmem_cache_free(btrfs_free_space_cachep, e);
826 			goto free_cache;
827 		}
828 
829 		if (type == BTRFS_FREE_SPACE_EXTENT) {
830 			spin_lock(&ctl->tree_lock);
831 			ret = link_free_space(ctl, e);
832 			spin_unlock(&ctl->tree_lock);
833 			if (ret) {
834 				btrfs_err(fs_info,
835 					"Duplicate entries in free space cache, dumping");
836 				kmem_cache_free(btrfs_free_space_cachep, e);
837 				goto free_cache;
838 			}
839 		} else {
840 			ASSERT(num_bitmaps);
841 			num_bitmaps--;
842 			e->bitmap = kmem_cache_zalloc(
843 					btrfs_free_space_bitmap_cachep, GFP_NOFS);
844 			if (!e->bitmap) {
845 				ret = -ENOMEM;
846 				kmem_cache_free(
847 					btrfs_free_space_cachep, e);
848 				goto free_cache;
849 			}
850 			spin_lock(&ctl->tree_lock);
851 			ret = link_free_space(ctl, e);
852 			if (ret) {
853 				spin_unlock(&ctl->tree_lock);
854 				btrfs_err(fs_info,
855 					"Duplicate entries in free space cache, dumping");
856 				kmem_cache_free(btrfs_free_space_bitmap_cachep, e->bitmap);
857 				kmem_cache_free(btrfs_free_space_cachep, e);
858 				goto free_cache;
859 			}
860 			ctl->total_bitmaps++;
861 			recalculate_thresholds(ctl);
862 			spin_unlock(&ctl->tree_lock);
863 			list_add_tail(&e->list, &bitmaps);
864 		}
865 
866 		num_entries--;
867 	}
868 
869 	io_ctl_unmap_page(&io_ctl);
870 
871 	/*
872 	 * We add the bitmaps at the end of the entries in order that
873 	 * the bitmap entries are added to the cache.
874 	 */
875 	list_for_each_entry_safe(e, n, &bitmaps, list) {
876 		list_del_init(&e->list);
877 		ret = io_ctl_read_bitmap(&io_ctl, e);
878 		if (ret)
879 			goto free_cache;
880 	}
881 
882 	io_ctl_drop_pages(&io_ctl);
883 	ret = 1;
884 out:
885 	io_ctl_free(&io_ctl);
886 	return ret;
887 free_cache:
888 	io_ctl_drop_pages(&io_ctl);
889 
890 	spin_lock(&ctl->tree_lock);
891 	__btrfs_remove_free_space_cache(ctl);
892 	spin_unlock(&ctl->tree_lock);
893 	goto out;
894 }
895 
896 static int copy_free_space_cache(struct btrfs_free_space_ctl *ctl)
897 {
898 	struct btrfs_free_space *info;
899 	struct rb_node *n;
900 	int ret = 0;
901 
902 	while (!ret && (n = rb_first(&ctl->free_space_offset)) != NULL) {
903 		info = rb_entry(n, struct btrfs_free_space, offset_index);
904 		if (!info->bitmap) {
905 			const u64 offset = info->offset;
906 			const u64 bytes = info->bytes;
907 
908 			unlink_free_space(ctl, info, true);
909 			spin_unlock(&ctl->tree_lock);
910 			kmem_cache_free(btrfs_free_space_cachep, info);
911 			ret = btrfs_add_free_space(ctl->block_group, offset, bytes);
912 			spin_lock(&ctl->tree_lock);
913 		} else {
914 			u64 offset = info->offset;
915 			u64 bytes = ctl->block_group->fs_info->sectorsize;
916 
917 			ret = search_bitmap(ctl, info, &offset, &bytes, false);
918 			if (ret == 0) {
919 				bitmap_clear_bits(ctl, info, offset, bytes, true);
920 				spin_unlock(&ctl->tree_lock);
921 				ret = btrfs_add_free_space(ctl->block_group, offset,
922 							   bytes);
923 				spin_lock(&ctl->tree_lock);
924 			} else {
925 				free_bitmap(ctl, info);
926 				ret = 0;
927 			}
928 		}
929 		cond_resched_lock(&ctl->tree_lock);
930 	}
931 	return ret;
932 }
933 
934 static struct lock_class_key btrfs_free_space_inode_key;
935 
936 int load_free_space_cache(struct btrfs_block_group *block_group)
937 {
938 	struct btrfs_fs_info *fs_info = block_group->fs_info;
939 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
940 	struct btrfs_free_space_ctl tmp_ctl = {};
941 	struct inode *inode;
942 	struct btrfs_path *path;
943 	int ret = 0;
944 	bool matched;
945 	u64 used = block_group->used;
946 
947 	/*
948 	 * Because we could potentially discard our loaded free space, we want
949 	 * to load everything into a temporary structure first, and then if it's
950 	 * valid copy it all into the actual free space ctl.
951 	 */
952 	btrfs_init_free_space_ctl(block_group, &tmp_ctl);
953 
954 	/*
955 	 * If this block group has been marked to be cleared for one reason or
956 	 * another then we can't trust the on disk cache, so just return.
957 	 */
958 	spin_lock(&block_group->lock);
959 	if (block_group->disk_cache_state != BTRFS_DC_WRITTEN) {
960 		spin_unlock(&block_group->lock);
961 		return 0;
962 	}
963 	spin_unlock(&block_group->lock);
964 
965 	path = btrfs_alloc_path();
966 	if (!path)
967 		return 0;
968 	path->search_commit_root = true;
969 	path->skip_locking = true;
970 
971 	/*
972 	 * We must pass a path with search_commit_root set to btrfs_iget in
973 	 * order to avoid a deadlock when allocating extents for the tree root.
974 	 *
975 	 * When we are COWing an extent buffer from the tree root, when looking
976 	 * for a free extent, at extent-tree.c:find_free_extent(), we can find
977 	 * block group without its free space cache loaded. When we find one
978 	 * we must load its space cache which requires reading its free space
979 	 * cache's inode item from the root tree. If this inode item is located
980 	 * in the same leaf that we started COWing before, then we end up in
981 	 * deadlock on the extent buffer (trying to read lock it when we
982 	 * previously write locked it).
983 	 *
984 	 * It's safe to read the inode item using the commit root because
985 	 * block groups, once loaded, stay in memory forever (until they are
986 	 * removed) as well as their space caches once loaded. New block groups
987 	 * once created get their ->cached field set to BTRFS_CACHE_FINISHED so
988 	 * we will never try to read their inode item while the fs is mounted.
989 	 */
990 	inode = lookup_free_space_inode(block_group, path);
991 	if (IS_ERR(inode)) {
992 		btrfs_free_path(path);
993 		return 0;
994 	}
995 
996 	/* We may have converted the inode and made the cache invalid. */
997 	spin_lock(&block_group->lock);
998 	if (block_group->disk_cache_state != BTRFS_DC_WRITTEN) {
999 		spin_unlock(&block_group->lock);
1000 		btrfs_free_path(path);
1001 		goto out;
1002 	}
1003 	spin_unlock(&block_group->lock);
1004 
1005 	/*
1006 	 * Reinitialize the class of struct inode's mapping->invalidate_lock for
1007 	 * free space inodes to prevent false positives related to locks for normal
1008 	 * inodes.
1009 	 */
1010 	lockdep_set_class(&(&inode->i_data)->invalidate_lock,
1011 			  &btrfs_free_space_inode_key);
1012 
1013 	ret = __load_free_space_cache(fs_info->tree_root, inode, &tmp_ctl,
1014 				      path, block_group->start);
1015 	btrfs_free_path(path);
1016 	if (ret <= 0)
1017 		goto out;
1018 
1019 	matched = (tmp_ctl.free_space == (block_group->length - used -
1020 					  block_group->bytes_super));
1021 
1022 	if (matched) {
1023 		spin_lock(&tmp_ctl.tree_lock);
1024 		ret = copy_free_space_cache(&tmp_ctl);
1025 		spin_unlock(&tmp_ctl.tree_lock);
1026 		/*
1027 		 * ret == 1 means we successfully loaded the free space cache,
1028 		 * so we need to re-set it here.
1029 		 */
1030 		if (ret == 0)
1031 			ret = 1;
1032 	} else {
1033 		/*
1034 		 * We need to call the _locked variant so we don't try to update
1035 		 * the discard counters.
1036 		 */
1037 		spin_lock(&tmp_ctl.tree_lock);
1038 		__btrfs_remove_free_space_cache(&tmp_ctl);
1039 		spin_unlock(&tmp_ctl.tree_lock);
1040 		btrfs_warn(fs_info,
1041 			   "block group %llu has wrong amount of free space",
1042 			   block_group->start);
1043 		ret = -1;
1044 	}
1045 out:
1046 	if (ret < 0) {
1047 		/* This cache is bogus, make sure it gets cleared */
1048 		spin_lock(&block_group->lock);
1049 		block_group->disk_cache_state = BTRFS_DC_CLEAR;
1050 		spin_unlock(&block_group->lock);
1051 		ret = 0;
1052 
1053 		btrfs_warn(fs_info,
1054 			   "failed to load free space cache for block group %llu, rebuilding it now",
1055 			   block_group->start);
1056 	}
1057 
1058 	spin_lock(&ctl->tree_lock);
1059 	btrfs_discard_update_discardable(block_group);
1060 	spin_unlock(&ctl->tree_lock);
1061 	iput(inode);
1062 	return ret;
1063 }
1064 
1065 static noinline_for_stack
1066 int write_cache_extent_entries(struct btrfs_io_ctl *io_ctl,
1067 			      struct btrfs_block_group *block_group,
1068 			      int *entries, int *bitmaps,
1069 			      struct list_head *bitmap_list)
1070 {
1071 	int ret;
1072 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
1073 	struct btrfs_free_cluster *cluster = NULL;
1074 	struct btrfs_free_cluster *cluster_locked = NULL;
1075 	struct rb_node *node = rb_first(&ctl->free_space_offset);
1076 	struct btrfs_trim_range *trim_entry;
1077 
1078 	/* Get the cluster for this block_group if it exists */
1079 	if (!list_empty(&block_group->cluster_list)) {
1080 		cluster = list_first_entry(&block_group->cluster_list,
1081 					   struct btrfs_free_cluster, block_group_list);
1082 	}
1083 
1084 	if (!node && cluster) {
1085 		cluster_locked = cluster;
1086 		spin_lock(&cluster_locked->lock);
1087 		node = rb_first(&cluster->root);
1088 		cluster = NULL;
1089 	}
1090 
1091 	/* Write out the extent entries */
1092 	while (node) {
1093 		struct btrfs_free_space *e;
1094 
1095 		e = rb_entry(node, struct btrfs_free_space, offset_index);
1096 		*entries += 1;
1097 
1098 		ret = io_ctl_add_entry(io_ctl, e->offset, e->bytes,
1099 				       e->bitmap);
1100 		if (ret)
1101 			goto fail;
1102 
1103 		if (e->bitmap) {
1104 			list_add_tail(&e->list, bitmap_list);
1105 			*bitmaps += 1;
1106 		}
1107 		node = rb_next(node);
1108 		if (!node && cluster) {
1109 			node = rb_first(&cluster->root);
1110 			cluster_locked = cluster;
1111 			spin_lock(&cluster_locked->lock);
1112 			cluster = NULL;
1113 		}
1114 	}
1115 	if (cluster_locked) {
1116 		spin_unlock(&cluster_locked->lock);
1117 		cluster_locked = NULL;
1118 	}
1119 
1120 	/*
1121 	 * Make sure we don't miss any range that was removed from our rbtree
1122 	 * because trimming is running. Otherwise after a umount+mount (or crash
1123 	 * after committing the transaction) we would leak free space and get
1124 	 * an inconsistent free space cache report from fsck.
1125 	 */
1126 	list_for_each_entry(trim_entry, &ctl->trimming_ranges, list) {
1127 		ret = io_ctl_add_entry(io_ctl, trim_entry->start,
1128 				       trim_entry->bytes, NULL);
1129 		if (ret)
1130 			goto fail;
1131 		*entries += 1;
1132 	}
1133 
1134 	return 0;
1135 fail:
1136 	if (cluster_locked)
1137 		spin_unlock(&cluster_locked->lock);
1138 	return -ENOSPC;
1139 }
1140 
1141 static noinline_for_stack int
1142 update_cache_item(struct btrfs_trans_handle *trans,
1143 		  struct btrfs_root *root,
1144 		  struct inode *inode,
1145 		  struct btrfs_path *path, u64 offset,
1146 		  int entries, int bitmaps)
1147 {
1148 	struct btrfs_key key;
1149 	struct btrfs_free_space_header *header;
1150 	struct extent_buffer *leaf;
1151 	int ret;
1152 
1153 	key.objectid = BTRFS_FREE_SPACE_OBJECTID;
1154 	key.type = 0;
1155 	key.offset = offset;
1156 
1157 	ret = btrfs_search_slot(trans, root, &key, path, 0, 1);
1158 	if (ret < 0) {
1159 		btrfs_clear_extent_bit(&BTRFS_I(inode)->io_tree, 0, inode->i_size - 1,
1160 				       EXTENT_DELALLOC, NULL);
1161 		return ret;
1162 	}
1163 	leaf = path->nodes[0];
1164 	if (ret > 0) {
1165 		struct btrfs_key found_key;
1166 		ASSERT(path->slots[0]);
1167 		path->slots[0]--;
1168 		btrfs_item_key_to_cpu(leaf, &found_key, path->slots[0]);
1169 		if (found_key.objectid != BTRFS_FREE_SPACE_OBJECTID ||
1170 		    found_key.offset != offset) {
1171 			btrfs_clear_extent_bit(&BTRFS_I(inode)->io_tree, 0,
1172 					       inode->i_size - 1, EXTENT_DELALLOC,
1173 					       NULL);
1174 			btrfs_release_path(path);
1175 			return -ENOENT;
1176 		}
1177 	}
1178 
1179 	BTRFS_I(inode)->generation = trans->transid;
1180 	header = btrfs_item_ptr(leaf, path->slots[0],
1181 				struct btrfs_free_space_header);
1182 	btrfs_set_free_space_entries(leaf, header, entries);
1183 	btrfs_set_free_space_bitmaps(leaf, header, bitmaps);
1184 	btrfs_set_free_space_generation(leaf, header, trans->transid);
1185 	btrfs_release_path(path);
1186 
1187 	return 0;
1188 }
1189 
1190 static noinline_for_stack int write_pinned_extent_entries(
1191 			    struct btrfs_trans_handle *trans,
1192 			    struct btrfs_block_group *block_group,
1193 			    struct btrfs_io_ctl *io_ctl,
1194 			    int *entries)
1195 {
1196 	u64 start, extent_start, extent_end, len;
1197 	const u64 block_group_end = btrfs_block_group_end(block_group);
1198 	struct extent_io_tree *unpin = NULL;
1199 	int ret;
1200 
1201 	/*
1202 	 * We want to add any pinned extents to our free space cache
1203 	 * so we don't leak the space
1204 	 *
1205 	 * We shouldn't have switched the pinned extents yet so this is the
1206 	 * right one
1207 	 */
1208 	unpin = &trans->transaction->pinned_extents;
1209 
1210 	start = block_group->start;
1211 
1212 	while (start < block_group_end) {
1213 		if (!btrfs_find_first_extent_bit(unpin, start,
1214 						 &extent_start, &extent_end,
1215 						 EXTENT_DIRTY, NULL))
1216 			return 0;
1217 
1218 		/* This pinned extent is out of our range */
1219 		if (extent_start >= block_group_end)
1220 			return 0;
1221 
1222 		extent_start = max(extent_start, start);
1223 		extent_end = min(block_group_end, extent_end + 1);
1224 		len = extent_end - extent_start;
1225 
1226 		*entries += 1;
1227 		ret = io_ctl_add_entry(io_ctl, extent_start, len, NULL);
1228 		if (ret)
1229 			return -ENOSPC;
1230 
1231 		start = extent_end;
1232 	}
1233 
1234 	return 0;
1235 }
1236 
1237 static noinline_for_stack int
1238 write_bitmap_entries(struct btrfs_io_ctl *io_ctl, struct list_head *bitmap_list)
1239 {
1240 	struct btrfs_free_space *entry, *next;
1241 	int ret;
1242 
1243 	/* Write out the bitmaps */
1244 	list_for_each_entry_safe(entry, next, bitmap_list, list) {
1245 		ret = io_ctl_add_bitmap(io_ctl, entry->bitmap);
1246 		if (ret)
1247 			return -ENOSPC;
1248 		list_del_init(&entry->list);
1249 	}
1250 
1251 	return 0;
1252 }
1253 
1254 static int flush_dirty_cache(struct inode *inode)
1255 {
1256 	int ret;
1257 
1258 	ret = btrfs_wait_ordered_range(BTRFS_I(inode), 0, (u64)-1);
1259 	if (ret)
1260 		btrfs_clear_extent_bit(&BTRFS_I(inode)->io_tree, 0, inode->i_size - 1,
1261 				       EXTENT_DELALLOC, NULL);
1262 
1263 	return ret;
1264 }
1265 
1266 static void noinline_for_stack
1267 cleanup_bitmap_list(struct list_head *bitmap_list)
1268 {
1269 	struct btrfs_free_space *entry, *next;
1270 
1271 	list_for_each_entry_safe(entry, next, bitmap_list, list)
1272 		list_del_init(&entry->list);
1273 }
1274 
1275 static void noinline_for_stack
1276 cleanup_write_cache_enospc(struct inode *inode,
1277 			   struct btrfs_io_ctl *io_ctl,
1278 			   struct extent_state **cached_state)
1279 {
1280 	io_ctl_drop_pages(io_ctl);
1281 	btrfs_unlock_extent(&BTRFS_I(inode)->io_tree, 0, i_size_read(inode) - 1,
1282 			    cached_state);
1283 }
1284 
1285 static int __btrfs_wait_cache_io(struct btrfs_root *root,
1286 				 struct btrfs_trans_handle *trans,
1287 				 struct btrfs_block_group *block_group,
1288 				 struct btrfs_io_ctl *io_ctl,
1289 				 struct btrfs_path *path, u64 offset)
1290 {
1291 	int ret;
1292 	struct inode *inode = io_ctl->inode;
1293 
1294 	if (!inode)
1295 		return 0;
1296 
1297 	/* Flush the dirty pages in the cache file. */
1298 	ret = flush_dirty_cache(inode);
1299 	if (ret)
1300 		goto out;
1301 
1302 	/* Update the cache item to tell everyone this cache file is valid. */
1303 	ret = update_cache_item(trans, root, inode, path, offset,
1304 				io_ctl->entries, io_ctl->bitmaps);
1305 out:
1306 	if (ret) {
1307 		invalidate_inode_pages2(inode->i_mapping);
1308 		BTRFS_I(inode)->generation = 0;
1309 		if (block_group)
1310 			btrfs_debug(root->fs_info,
1311 	  "failed to write free space cache for block group %llu error %d",
1312 				  block_group->start, ret);
1313 	}
1314 	btrfs_update_inode(trans, BTRFS_I(inode));
1315 
1316 	if (block_group) {
1317 		/* the dirty list is protected by the dirty_bgs_lock */
1318 		spin_lock(&trans->transaction->dirty_bgs_lock);
1319 
1320 		/* the disk_cache_state is protected by the block group lock */
1321 		spin_lock(&block_group->lock);
1322 
1323 		/*
1324 		 * only mark this as written if we didn't get put back on
1325 		 * the dirty list while waiting for IO.   Otherwise our
1326 		 * cache state won't be right, and we won't get written again
1327 		 */
1328 		if (!ret && list_empty(&block_group->dirty_list))
1329 			block_group->disk_cache_state = BTRFS_DC_WRITTEN;
1330 		else if (ret)
1331 			block_group->disk_cache_state = BTRFS_DC_ERROR;
1332 
1333 		spin_unlock(&block_group->lock);
1334 		spin_unlock(&trans->transaction->dirty_bgs_lock);
1335 		io_ctl->inode = NULL;
1336 		iput(inode);
1337 	}
1338 
1339 	return ret;
1340 
1341 }
1342 
1343 int btrfs_wait_cache_io(struct btrfs_trans_handle *trans,
1344 			struct btrfs_block_group *block_group,
1345 			struct btrfs_path *path)
1346 {
1347 	return __btrfs_wait_cache_io(block_group->fs_info->tree_root, trans,
1348 				     block_group, &block_group->io_ctl,
1349 				     path, block_group->start);
1350 }
1351 
1352 /*
1353  * Write out cached info to an inode.
1354  *
1355  * @inode:       freespace inode we are writing out
1356  * @ctl:         free space cache we are going to write out
1357  * @block_group: block_group for this cache if it belongs to a block_group
1358  * @io_ctl:      holds context for the io
1359  * @trans:       the trans handle
1360  *
1361  * This function writes out a free space cache struct to disk for quick recovery
1362  * on mount.  This will return 0 if it was successful in writing the cache out,
1363  * or an errno if it was not.
1364  */
1365 static int __btrfs_write_out_cache(struct inode *inode,
1366 				   struct btrfs_block_group *block_group,
1367 				   struct btrfs_trans_handle *trans)
1368 {
1369 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
1370 	struct btrfs_io_ctl *io_ctl = &block_group->io_ctl;
1371 	struct extent_state *cached_state = NULL;
1372 	LIST_HEAD(bitmap_list);
1373 	int entries = 0;
1374 	int bitmaps = 0;
1375 	int ret;
1376 	bool must_iput = false;
1377 	int i_size;
1378 
1379 	if (!i_size_read(inode))
1380 		return -EIO;
1381 
1382 	WARN_ON(io_ctl->pages);
1383 	ret = io_ctl_init(io_ctl, inode, 1);
1384 	if (ret)
1385 		return ret;
1386 
1387 	if (block_group->flags & BTRFS_BLOCK_GROUP_DATA) {
1388 		down_write(&block_group->data_rwsem);
1389 		spin_lock(&block_group->lock);
1390 		if (block_group->delalloc_bytes) {
1391 			block_group->disk_cache_state = BTRFS_DC_WRITTEN;
1392 			spin_unlock(&block_group->lock);
1393 			up_write(&block_group->data_rwsem);
1394 			BTRFS_I(inode)->generation = 0;
1395 			ret = 0;
1396 			must_iput = true;
1397 			goto out;
1398 		}
1399 		spin_unlock(&block_group->lock);
1400 	}
1401 
1402 	/* Lock all pages first so we can lock the extent safely. */
1403 	ret = io_ctl_prepare_pages(io_ctl, false);
1404 	if (ret)
1405 		goto out_unlock;
1406 
1407 	btrfs_lock_extent(&BTRFS_I(inode)->io_tree, 0, i_size_read(inode) - 1,
1408 			  &cached_state);
1409 
1410 	io_ctl_set_generation(io_ctl, trans->transid);
1411 
1412 	mutex_lock(&ctl->cache_writeout_mutex);
1413 	/* Write out the extent entries in the free space cache */
1414 	spin_lock(&ctl->tree_lock);
1415 	ret = write_cache_extent_entries(io_ctl, block_group, &entries, &bitmaps,
1416 					 &bitmap_list);
1417 	if (ret)
1418 		goto out_nospc_locked;
1419 
1420 	/*
1421 	 * Some spaces that are freed in the current transaction are pinned,
1422 	 * they will be added into free space cache after the transaction is
1423 	 * committed, we shouldn't lose them.
1424 	 *
1425 	 * If this changes while we are working we'll get added back to
1426 	 * the dirty list and redo it.  No locking needed
1427 	 */
1428 	ret = write_pinned_extent_entries(trans, block_group, io_ctl, &entries);
1429 	if (ret)
1430 		goto out_nospc_locked;
1431 
1432 	/*
1433 	 * At last, we write out all the bitmaps and keep cache_writeout_mutex
1434 	 * locked while doing it because a concurrent trim can be manipulating
1435 	 * or freeing the bitmap.
1436 	 */
1437 	ret = write_bitmap_entries(io_ctl, &bitmap_list);
1438 	spin_unlock(&ctl->tree_lock);
1439 	mutex_unlock(&ctl->cache_writeout_mutex);
1440 	if (ret)
1441 		goto out_nospc;
1442 
1443 	/* Zero out the rest of the pages just to make sure */
1444 	io_ctl_zero_remaining_pages(io_ctl);
1445 
1446 	/* Everything is written out, now we dirty the pages in the file. */
1447 	i_size = i_size_read(inode);
1448 	for (int i = 0; i < round_up(i_size, PAGE_SIZE) / PAGE_SIZE; i++) {
1449 		u64 dirty_start = i * PAGE_SIZE;
1450 		u64 dirty_len = min_t(u64, dirty_start + PAGE_SIZE, i_size) - dirty_start;
1451 
1452 		ret = btrfs_dirty_folio(BTRFS_I(inode), page_folio(io_ctl->pages[i]),
1453 					dirty_start, dirty_len, &cached_state, false);
1454 		if (ret < 0)
1455 			goto out_nospc;
1456 	}
1457 
1458 	if (block_group->flags & BTRFS_BLOCK_GROUP_DATA)
1459 		up_write(&block_group->data_rwsem);
1460 	/*
1461 	 * Release the pages and unlock the extent, we will flush
1462 	 * them out later
1463 	 */
1464 	io_ctl_drop_pages(io_ctl);
1465 	io_ctl_free(io_ctl);
1466 
1467 	btrfs_unlock_extent(&BTRFS_I(inode)->io_tree, 0, i_size_read(inode) - 1,
1468 			    &cached_state);
1469 
1470 	/*
1471 	 * at this point the pages are under IO and we're happy,
1472 	 * The caller is responsible for waiting on them and updating
1473 	 * the cache and the inode
1474 	 */
1475 	io_ctl->entries = entries;
1476 	io_ctl->bitmaps = bitmaps;
1477 
1478 	ret = btrfs_fdatawrite_range(BTRFS_I(inode), 0, (u64)-1);
1479 	if (ret)
1480 		goto out;
1481 
1482 	return 0;
1483 
1484 out_nospc_locked:
1485 	cleanup_bitmap_list(&bitmap_list);
1486 	spin_unlock(&ctl->tree_lock);
1487 	mutex_unlock(&ctl->cache_writeout_mutex);
1488 
1489 out_nospc:
1490 	cleanup_write_cache_enospc(inode, io_ctl, &cached_state);
1491 
1492 out_unlock:
1493 	if (block_group->flags & BTRFS_BLOCK_GROUP_DATA)
1494 		up_write(&block_group->data_rwsem);
1495 
1496 out:
1497 	io_ctl->inode = NULL;
1498 	io_ctl_free(io_ctl);
1499 	if (ret) {
1500 		invalidate_inode_pages2(inode->i_mapping);
1501 		BTRFS_I(inode)->generation = 0;
1502 	}
1503 	btrfs_update_inode(trans, BTRFS_I(inode));
1504 	if (must_iput)
1505 		iput(inode);
1506 	return ret;
1507 }
1508 
1509 int btrfs_write_out_cache(struct btrfs_trans_handle *trans,
1510 			  struct btrfs_block_group *block_group,
1511 			  struct btrfs_path *path)
1512 {
1513 	struct btrfs_fs_info *fs_info = trans->fs_info;
1514 	struct inode *inode;
1515 	int ret = 0;
1516 
1517 	spin_lock(&block_group->lock);
1518 	if (block_group->disk_cache_state < BTRFS_DC_SETUP) {
1519 		spin_unlock(&block_group->lock);
1520 		return 0;
1521 	}
1522 	spin_unlock(&block_group->lock);
1523 
1524 	inode = lookup_free_space_inode(block_group, path);
1525 	if (IS_ERR(inode))
1526 		return 0;
1527 
1528 	ret = __btrfs_write_out_cache(inode, block_group, trans);
1529 	if (ret) {
1530 		btrfs_debug(fs_info,
1531 	  "failed to write free space cache for block group %llu error %d",
1532 			  block_group->start, ret);
1533 		spin_lock(&block_group->lock);
1534 		block_group->disk_cache_state = BTRFS_DC_ERROR;
1535 		spin_unlock(&block_group->lock);
1536 
1537 		block_group->io_ctl.inode = NULL;
1538 		iput(inode);
1539 	}
1540 
1541 	/*
1542 	 * if ret == 0 the caller is expected to call btrfs_wait_cache_io
1543 	 * to wait for IO and put the inode
1544 	 */
1545 
1546 	return ret;
1547 }
1548 
1549 static inline unsigned long offset_to_bit(u64 bitmap_start, u32 unit,
1550 					  u64 offset)
1551 {
1552 	ASSERT(offset >= bitmap_start);
1553 	offset -= bitmap_start;
1554 	return (unsigned long)(div_u64(offset, unit));
1555 }
1556 
1557 static inline unsigned long bytes_to_bits(u64 bytes, u32 unit)
1558 {
1559 	return (unsigned long)(div_u64(bytes, unit));
1560 }
1561 
1562 static inline u64 offset_to_bitmap(struct btrfs_free_space_ctl *ctl,
1563 				   u64 offset)
1564 {
1565 	u64 bitmap_start;
1566 	u64 bytes_per_bitmap;
1567 
1568 	bytes_per_bitmap = BITS_PER_BITMAP * ctl->block_group->fs_info->sectorsize;
1569 	bitmap_start = offset - ctl->block_group->start;
1570 	bitmap_start = div64_u64(bitmap_start, bytes_per_bitmap);
1571 	bitmap_start *= bytes_per_bitmap;
1572 	bitmap_start += ctl->block_group->start;
1573 
1574 	return bitmap_start;
1575 }
1576 
1577 static int tree_insert_offset(struct btrfs_free_space_ctl *ctl,
1578 			      struct btrfs_free_cluster *cluster,
1579 			      struct btrfs_free_space *new_entry)
1580 {
1581 	struct rb_root *root;
1582 	struct rb_node **p;
1583 	struct rb_node *parent = NULL;
1584 
1585 	lockdep_assert_held(&ctl->tree_lock);
1586 
1587 	if (cluster) {
1588 		lockdep_assert_held(&cluster->lock);
1589 		root = &cluster->root;
1590 	} else {
1591 		root = &ctl->free_space_offset;
1592 	}
1593 
1594 	p = &root->rb_node;
1595 
1596 	while (*p) {
1597 		struct btrfs_free_space *info;
1598 
1599 		parent = *p;
1600 		info = rb_entry(parent, struct btrfs_free_space, offset_index);
1601 
1602 		if (new_entry->offset < info->offset) {
1603 			p = &(*p)->rb_left;
1604 		} else if (new_entry->offset > info->offset) {
1605 			p = &(*p)->rb_right;
1606 		} else {
1607 			/*
1608 			 * we could have a bitmap entry and an extent entry
1609 			 * share the same offset.  If this is the case, we want
1610 			 * the extent entry to always be found first if we do a
1611 			 * linear search through the tree, since we want to have
1612 			 * the quickest allocation time, and allocating from an
1613 			 * extent is faster than allocating from a bitmap.  So
1614 			 * if we're inserting a bitmap and we find an entry at
1615 			 * this offset, we want to go right, or after this entry
1616 			 * logically.  If we are inserting an extent and we've
1617 			 * found a bitmap, we want to go left, or before
1618 			 * logically.
1619 			 */
1620 			if (new_entry->bitmap) {
1621 				if (info->bitmap) {
1622 					WARN_ON_ONCE(1);
1623 					return -EEXIST;
1624 				}
1625 				p = &(*p)->rb_right;
1626 			} else {
1627 				if (!info->bitmap) {
1628 					WARN_ON_ONCE(1);
1629 					return -EEXIST;
1630 				}
1631 				p = &(*p)->rb_left;
1632 			}
1633 		}
1634 	}
1635 
1636 	rb_link_node(&new_entry->offset_index, parent, p);
1637 	rb_insert_color(&new_entry->offset_index, root);
1638 
1639 	return 0;
1640 }
1641 
1642 /*
1643  * This is a little subtle.  We *only* have ->max_extent_size set if we actually
1644  * searched through the bitmap and figured out the largest ->max_extent_size,
1645  * otherwise it's 0.  In the case that it's 0 we don't want to tell the
1646  * allocator the wrong thing, we want to use the actual real max_extent_size
1647  * we've found already if it's larger, or we want to use ->bytes.
1648  *
1649  * This matters because find_free_space() will skip entries who's ->bytes is
1650  * less than the required bytes.  So if we didn't search down this bitmap, we
1651  * may pick some previous entry that has a smaller ->max_extent_size than we
1652  * have.  For example, assume we have two entries, one that has
1653  * ->max_extent_size set to 4K and ->bytes set to 1M.  A second entry hasn't set
1654  * ->max_extent_size yet, has ->bytes set to 8K and it's contiguous.  We will
1655  *  call into find_free_space(), and return with max_extent_size == 4K, because
1656  *  that first bitmap entry had ->max_extent_size set, but the second one did
1657  *  not.  If instead we returned 8K we'd come in searching for 8K, and find the
1658  *  8K contiguous range.
1659  *
1660  *  Consider the other case, we have 2 8K chunks in that second entry and still
1661  *  don't have ->max_extent_size set.  We'll return 16K, and the next time the
1662  *  allocator comes in it'll fully search our second bitmap, and this time it'll
1663  *  get an uptodate value of 8K as the maximum chunk size.  Then we'll get the
1664  *  right allocation the next loop through.
1665  */
1666 static inline u64 get_max_extent_size(const struct btrfs_free_space *entry)
1667 {
1668 	if (entry->bitmap && entry->max_extent_size)
1669 		return entry->max_extent_size;
1670 	return entry->bytes;
1671 }
1672 
1673 /*
1674  * We want the largest entry to be leftmost, so this is inverted from what you'd
1675  * normally expect.
1676  */
1677 static bool entry_less(struct rb_node *node, const struct rb_node *parent)
1678 {
1679 	const struct btrfs_free_space *entry, *exist;
1680 
1681 	entry = rb_entry(node, struct btrfs_free_space, bytes_index);
1682 	exist = rb_entry(parent, struct btrfs_free_space, bytes_index);
1683 	return get_max_extent_size(exist) < get_max_extent_size(entry);
1684 }
1685 
1686 /*
1687  * searches the tree for the given offset.
1688  *
1689  * fuzzy - If this is set, then we are trying to make an allocation, and we just
1690  * want a section that has at least bytes size and comes at or after the given
1691  * offset.
1692  */
1693 static struct btrfs_free_space *
1694 tree_search_offset(struct btrfs_free_space_ctl *ctl,
1695 		   u64 offset, int bitmap_only, int fuzzy)
1696 {
1697 	struct rb_node *n = ctl->free_space_offset.rb_node;
1698 	struct btrfs_free_space *entry = NULL, *prev = NULL;
1699 	const int unit = ctl->block_group->fs_info->sectorsize;
1700 
1701 	lockdep_assert_held(&ctl->tree_lock);
1702 
1703 	/* find entry that is closest to the 'offset' */
1704 	while (n) {
1705 		entry = rb_entry(n, struct btrfs_free_space, offset_index);
1706 		prev = entry;
1707 
1708 		if (offset < entry->offset)
1709 			n = n->rb_left;
1710 		else if (offset > entry->offset)
1711 			n = n->rb_right;
1712 		else
1713 			break;
1714 
1715 		entry = NULL;
1716 	}
1717 
1718 	if (bitmap_only) {
1719 		if (!entry)
1720 			return NULL;
1721 		if (entry->bitmap)
1722 			return entry;
1723 
1724 		/*
1725 		 * bitmap entry and extent entry may share same offset,
1726 		 * in that case, bitmap entry comes after extent entry.
1727 		 */
1728 		n = rb_next(n);
1729 		if (!n)
1730 			return NULL;
1731 		entry = rb_entry(n, struct btrfs_free_space, offset_index);
1732 		if (entry->offset != offset)
1733 			return NULL;
1734 
1735 		WARN_ON(!entry->bitmap);
1736 		return entry;
1737 	} else if (entry) {
1738 		if (entry->bitmap) {
1739 			/*
1740 			 * if previous extent entry covers the offset,
1741 			 * we should return it instead of the bitmap entry
1742 			 */
1743 			n = rb_prev(&entry->offset_index);
1744 			if (n) {
1745 				prev = rb_entry(n, struct btrfs_free_space,
1746 						offset_index);
1747 				if (!prev->bitmap &&
1748 				    prev->offset + prev->bytes > offset)
1749 					entry = prev;
1750 			}
1751 		}
1752 		return entry;
1753 	}
1754 
1755 	if (!prev)
1756 		return NULL;
1757 
1758 	/* find last entry before the 'offset' */
1759 	entry = prev;
1760 	if (entry->offset > offset) {
1761 		n = rb_prev(&entry->offset_index);
1762 		if (n) {
1763 			entry = rb_entry(n, struct btrfs_free_space,
1764 					offset_index);
1765 			ASSERT(entry->offset <= offset);
1766 		} else {
1767 			if (fuzzy)
1768 				return entry;
1769 			else
1770 				return NULL;
1771 		}
1772 	}
1773 
1774 	if (entry->bitmap) {
1775 		n = rb_prev(&entry->offset_index);
1776 		if (n) {
1777 			prev = rb_entry(n, struct btrfs_free_space,
1778 					offset_index);
1779 			if (!prev->bitmap &&
1780 			    prev->offset + prev->bytes > offset)
1781 				return prev;
1782 		}
1783 		if (entry->offset + BITS_PER_BITMAP * unit > offset)
1784 			return entry;
1785 	} else if (entry->offset + entry->bytes > offset)
1786 		return entry;
1787 
1788 	if (!fuzzy)
1789 		return NULL;
1790 
1791 	while (1) {
1792 		n = rb_next(&entry->offset_index);
1793 		if (!n)
1794 			return NULL;
1795 		entry = rb_entry(n, struct btrfs_free_space, offset_index);
1796 		if (entry->bitmap) {
1797 			if (entry->offset + BITS_PER_BITMAP * unit > offset)
1798 				break;
1799 		} else {
1800 			if (entry->offset + entry->bytes > offset)
1801 				break;
1802 		}
1803 	}
1804 	return entry;
1805 }
1806 
1807 static inline void unlink_free_space(struct btrfs_free_space_ctl *ctl,
1808 				     struct btrfs_free_space *info,
1809 				     bool update_stat)
1810 {
1811 	lockdep_assert_held(&ctl->tree_lock);
1812 
1813 	rb_erase(&info->offset_index, &ctl->free_space_offset);
1814 	rb_erase_cached(&info->bytes_index, &ctl->free_space_bytes);
1815 	ctl->free_extents--;
1816 
1817 	if (!info->bitmap && !btrfs_free_space_trimmed(info)) {
1818 		ctl->discardable_extents[BTRFS_STAT_CURR]--;
1819 		ctl->discardable_bytes[BTRFS_STAT_CURR] -= info->bytes;
1820 	}
1821 
1822 	if (update_stat)
1823 		ctl->free_space -= info->bytes;
1824 }
1825 
1826 static int link_free_space(struct btrfs_free_space_ctl *ctl,
1827 			   struct btrfs_free_space *info)
1828 {
1829 	int ret = 0;
1830 
1831 	lockdep_assert_held(&ctl->tree_lock);
1832 
1833 	ASSERT(info->bytes || info->bitmap);
1834 	ret = tree_insert_offset(ctl, NULL, info);
1835 	if (ret)
1836 		return ret;
1837 
1838 	rb_add_cached(&info->bytes_index, &ctl->free_space_bytes, entry_less);
1839 
1840 	if (!info->bitmap && !btrfs_free_space_trimmed(info)) {
1841 		ctl->discardable_extents[BTRFS_STAT_CURR]++;
1842 		ctl->discardable_bytes[BTRFS_STAT_CURR] += info->bytes;
1843 	}
1844 
1845 	ctl->free_space += info->bytes;
1846 	ctl->free_extents++;
1847 	return ret;
1848 }
1849 
1850 static void relink_bitmap_entry(struct btrfs_free_space_ctl *ctl,
1851 				struct btrfs_free_space *info)
1852 {
1853 	ASSERT(info->bitmap);
1854 
1855 	/*
1856 	 * If our entry is empty it's because we're on a cluster and we don't
1857 	 * want to re-link it into our ctl bytes index.
1858 	 */
1859 	if (RB_EMPTY_NODE(&info->bytes_index))
1860 		return;
1861 
1862 	lockdep_assert_held(&ctl->tree_lock);
1863 
1864 	rb_erase_cached(&info->bytes_index, &ctl->free_space_bytes);
1865 	rb_add_cached(&info->bytes_index, &ctl->free_space_bytes, entry_less);
1866 }
1867 
1868 static inline void bitmap_clear_bits(struct btrfs_free_space_ctl *ctl,
1869 				     struct btrfs_free_space *info,
1870 				     u64 offset, u64 bytes, bool update_stat)
1871 {
1872 	const int unit = ctl->block_group->fs_info->sectorsize;
1873 	unsigned long start, count, end;
1874 	int extent_delta = -1;
1875 
1876 	start = offset_to_bit(info->offset, unit, offset);
1877 	count = bytes_to_bits(bytes, unit);
1878 	end = start + count;
1879 	ASSERT(end <= BITS_PER_BITMAP);
1880 
1881 	bitmap_clear(info->bitmap, start, count);
1882 
1883 	info->bytes -= bytes;
1884 	if (info->max_extent_size > unit)
1885 		info->max_extent_size = 0;
1886 
1887 	relink_bitmap_entry(ctl, info);
1888 
1889 	if (start && test_bit(start - 1, info->bitmap))
1890 		extent_delta++;
1891 
1892 	if (end < BITS_PER_BITMAP && test_bit(end, info->bitmap))
1893 		extent_delta++;
1894 
1895 	info->bitmap_extents += extent_delta;
1896 	if (!btrfs_free_space_trimmed(info)) {
1897 		ctl->discardable_extents[BTRFS_STAT_CURR] += extent_delta;
1898 		ctl->discardable_bytes[BTRFS_STAT_CURR] -= bytes;
1899 	}
1900 
1901 	if (update_stat)
1902 		ctl->free_space -= bytes;
1903 }
1904 
1905 static void btrfs_bitmap_set_bits(struct btrfs_free_space_ctl *ctl,
1906 				  struct btrfs_free_space *info, u64 offset,
1907 				  u64 bytes)
1908 {
1909 	const int unit = ctl->block_group->fs_info->sectorsize;
1910 	unsigned long start, count, end;
1911 	int extent_delta = 1;
1912 
1913 	start = offset_to_bit(info->offset, unit, offset);
1914 	count = bytes_to_bits(bytes, unit);
1915 	end = start + count;
1916 	ASSERT(end <= BITS_PER_BITMAP);
1917 
1918 	bitmap_set(info->bitmap, start, count);
1919 
1920 	/*
1921 	 * We set some bytes, we have no idea what the max extent size is
1922 	 * anymore.
1923 	 */
1924 	info->max_extent_size = 0;
1925 	info->bytes += bytes;
1926 	ctl->free_space += bytes;
1927 
1928 	relink_bitmap_entry(ctl, info);
1929 
1930 	if (start && test_bit(start - 1, info->bitmap))
1931 		extent_delta--;
1932 
1933 	if (end < BITS_PER_BITMAP && test_bit(end, info->bitmap))
1934 		extent_delta--;
1935 
1936 	info->bitmap_extents += extent_delta;
1937 	if (!btrfs_free_space_trimmed(info)) {
1938 		ctl->discardable_extents[BTRFS_STAT_CURR] += extent_delta;
1939 		ctl->discardable_bytes[BTRFS_STAT_CURR] += bytes;
1940 	}
1941 }
1942 
1943 /*
1944  * If we can not find suitable extent, we will use bytes to record
1945  * the size of the max extent.
1946  */
1947 static int search_bitmap(struct btrfs_free_space_ctl *ctl,
1948 			 struct btrfs_free_space *bitmap_info, u64 *offset,
1949 			 u64 *bytes, bool for_alloc)
1950 {
1951 	const int unit = ctl->block_group->fs_info->sectorsize;
1952 	unsigned long found_bits = 0;
1953 	unsigned long max_bits = 0;
1954 	unsigned long bits, i;
1955 	unsigned long next_zero;
1956 	unsigned long extent_bits;
1957 
1958 	/*
1959 	 * Skip searching the bitmap if we don't have a contiguous section that
1960 	 * is large enough for this allocation.
1961 	 */
1962 	if (for_alloc &&
1963 	    bitmap_info->max_extent_size &&
1964 	    bitmap_info->max_extent_size < *bytes) {
1965 		*bytes = bitmap_info->max_extent_size;
1966 		return -1;
1967 	}
1968 
1969 	i = offset_to_bit(bitmap_info->offset, unit,
1970 			  max_t(u64, *offset, bitmap_info->offset));
1971 	bits = bytes_to_bits(*bytes, unit);
1972 
1973 	for_each_set_bit_from(i, bitmap_info->bitmap, BITS_PER_BITMAP) {
1974 		if (for_alloc && bits == 1) {
1975 			found_bits = 1;
1976 			break;
1977 		}
1978 		next_zero = find_next_zero_bit(bitmap_info->bitmap,
1979 					       BITS_PER_BITMAP, i);
1980 		extent_bits = next_zero - i;
1981 		if (extent_bits >= bits) {
1982 			found_bits = extent_bits;
1983 			break;
1984 		} else if (extent_bits > max_bits) {
1985 			max_bits = extent_bits;
1986 		}
1987 		i = next_zero;
1988 	}
1989 
1990 	if (found_bits) {
1991 		*offset = (u64)(i * unit) + bitmap_info->offset;
1992 		*bytes = (u64)(found_bits) * unit;
1993 		return 0;
1994 	}
1995 
1996 	*bytes = (u64)(max_bits) * unit;
1997 	bitmap_info->max_extent_size = *bytes;
1998 	relink_bitmap_entry(ctl, bitmap_info);
1999 	return -1;
2000 }
2001 
2002 /* Cache the size of the max extent in bytes */
2003 static struct btrfs_free_space *
2004 find_free_space(struct btrfs_free_space_ctl *ctl, u64 *offset, u64 *bytes,
2005 		unsigned long align, u64 *max_extent_size, bool use_bytes_index)
2006 {
2007 	struct btrfs_free_space *entry;
2008 	struct rb_node *node;
2009 	u64 tmp;
2010 	u64 align_off;
2011 	int ret;
2012 
2013 	if (!ctl->free_space_offset.rb_node)
2014 		return NULL;
2015 again:
2016 	if (use_bytes_index) {
2017 		node = rb_first_cached(&ctl->free_space_bytes);
2018 	} else {
2019 		entry = tree_search_offset(ctl, offset_to_bitmap(ctl, *offset),
2020 					   0, 1);
2021 		if (!entry)
2022 			return NULL;
2023 		node = &entry->offset_index;
2024 	}
2025 
2026 	for (; node; node = rb_next(node)) {
2027 		if (use_bytes_index)
2028 			entry = rb_entry(node, struct btrfs_free_space,
2029 					 bytes_index);
2030 		else
2031 			entry = rb_entry(node, struct btrfs_free_space,
2032 					 offset_index);
2033 
2034 		/*
2035 		 * If we are using the bytes index then all subsequent entries
2036 		 * in this tree are going to be < bytes, so simply set the max
2037 		 * extent size and exit the loop.
2038 		 *
2039 		 * If we're using the offset index then we need to keep going
2040 		 * through the rest of the tree.
2041 		 */
2042 		if (entry->bytes < *bytes) {
2043 			*max_extent_size = max(get_max_extent_size(entry),
2044 					       *max_extent_size);
2045 			if (use_bytes_index)
2046 				break;
2047 			continue;
2048 		}
2049 
2050 		/* make sure the space returned is big enough
2051 		 * to match our requested alignment
2052 		 */
2053 		if (*bytes >= align) {
2054 			tmp = entry->offset - ctl->block_group->start + align - 1;
2055 			tmp = div64_u64(tmp, align);
2056 			tmp = tmp * align + ctl->block_group->start;
2057 			align_off = tmp - entry->offset;
2058 		} else {
2059 			align_off = 0;
2060 			tmp = entry->offset;
2061 		}
2062 
2063 		/*
2064 		 * We don't break here if we're using the bytes index because we
2065 		 * may have another entry that has the correct alignment that is
2066 		 * the right size, so we don't want to miss that possibility.
2067 		 * At worst this adds another loop through the logic, but if we
2068 		 * broke here we could prematurely ENOSPC.
2069 		 */
2070 		if (entry->bytes < *bytes + align_off) {
2071 			*max_extent_size = max(get_max_extent_size(entry),
2072 					       *max_extent_size);
2073 			continue;
2074 		}
2075 
2076 		if (entry->bitmap) {
2077 			struct rb_node *old_next = rb_next(node);
2078 			u64 size = *bytes;
2079 
2080 			ret = search_bitmap(ctl, entry, &tmp, &size, true);
2081 			if (!ret) {
2082 				*offset = tmp;
2083 				*bytes = size;
2084 				return entry;
2085 			} else {
2086 				*max_extent_size =
2087 					max(get_max_extent_size(entry),
2088 					    *max_extent_size);
2089 			}
2090 
2091 			/*
2092 			 * The bitmap may have gotten re-arranged in the space
2093 			 * index here because the max_extent_size may have been
2094 			 * updated.  Start from the beginning again if this
2095 			 * happened.
2096 			 */
2097 			if (use_bytes_index && old_next != rb_next(node))
2098 				goto again;
2099 			continue;
2100 		}
2101 
2102 		*offset = tmp;
2103 		*bytes = entry->bytes - align_off;
2104 		return entry;
2105 	}
2106 
2107 	return NULL;
2108 }
2109 
2110 static void add_new_bitmap(struct btrfs_free_space_ctl *ctl,
2111 			   struct btrfs_free_space *info, u64 offset)
2112 {
2113 	info->offset = offset_to_bitmap(ctl, offset);
2114 	info->bytes = 0;
2115 	info->bitmap_extents = 0;
2116 	INIT_LIST_HEAD(&info->list);
2117 	link_free_space(ctl, info);
2118 	ctl->total_bitmaps++;
2119 	recalculate_thresholds(ctl);
2120 }
2121 
2122 static void free_bitmap(struct btrfs_free_space_ctl *ctl,
2123 			struct btrfs_free_space *bitmap_info)
2124 {
2125 	/*
2126 	 * Normally when this is called, the bitmap is completely empty. However,
2127 	 * if we are blowing up the free space cache for one reason or another
2128 	 * via __btrfs_remove_free_space_cache(), then it may not be freed and
2129 	 * we may leave stats on the table.
2130 	 */
2131 	if (bitmap_info->bytes && !btrfs_free_space_trimmed(bitmap_info)) {
2132 		ctl->discardable_extents[BTRFS_STAT_CURR] -=
2133 			bitmap_info->bitmap_extents;
2134 		ctl->discardable_bytes[BTRFS_STAT_CURR] -= bitmap_info->bytes;
2135 
2136 	}
2137 	unlink_free_space(ctl, bitmap_info, true);
2138 	kmem_cache_free(btrfs_free_space_bitmap_cachep, bitmap_info->bitmap);
2139 	kmem_cache_free(btrfs_free_space_cachep, bitmap_info);
2140 	ctl->total_bitmaps--;
2141 	recalculate_thresholds(ctl);
2142 }
2143 
2144 static noinline int remove_from_bitmap(struct btrfs_free_space_ctl *ctl,
2145 			      struct btrfs_free_space *bitmap_info,
2146 			      u64 *offset, u64 *bytes)
2147 {
2148 	const int unit = ctl->block_group->fs_info->sectorsize;
2149 	u64 end;
2150 	u64 search_start, search_bytes;
2151 	int ret;
2152 
2153 again:
2154 	end = bitmap_info->offset + (u64)(BITS_PER_BITMAP * unit) - 1;
2155 
2156 	/*
2157 	 * We need to search for bits in this bitmap.  We could only cover some
2158 	 * of the extent in this bitmap thanks to how we add space, so we need
2159 	 * to search for as much as it as we can and clear that amount, and then
2160 	 * go searching for the next bit.
2161 	 */
2162 	search_start = *offset;
2163 	search_bytes = unit;
2164 	search_bytes = min(search_bytes, end - search_start + 1);
2165 	ret = search_bitmap(ctl, bitmap_info, &search_start, &search_bytes,
2166 			    false);
2167 	if (ret < 0 || search_start != *offset)
2168 		return -EINVAL;
2169 
2170 	/* We may have found more bits than what we need */
2171 	search_bytes = min(search_bytes, *bytes);
2172 
2173 	/* Cannot clear past the end of the bitmap */
2174 	search_bytes = min(search_bytes, end - search_start + 1);
2175 
2176 	bitmap_clear_bits(ctl, bitmap_info, search_start, search_bytes, true);
2177 	*offset += search_bytes;
2178 	*bytes -= search_bytes;
2179 
2180 	if (*bytes) {
2181 		struct rb_node *next = rb_next(&bitmap_info->offset_index);
2182 		if (!bitmap_info->bytes)
2183 			free_bitmap(ctl, bitmap_info);
2184 
2185 		/*
2186 		 * no entry after this bitmap, but we still have bytes to
2187 		 * remove, so something has gone wrong.
2188 		 */
2189 		if (!next)
2190 			return -EINVAL;
2191 
2192 		bitmap_info = rb_entry(next, struct btrfs_free_space,
2193 				       offset_index);
2194 
2195 		/*
2196 		 * if the next entry isn't a bitmap we need to return to let the
2197 		 * extent stuff do its work.
2198 		 */
2199 		if (!bitmap_info->bitmap)
2200 			return -EAGAIN;
2201 
2202 		/*
2203 		 * Ok the next item is a bitmap, but it may not actually hold
2204 		 * the information for the rest of this free space stuff, so
2205 		 * look for it, and if we don't find it return so we can try
2206 		 * everything over again.
2207 		 */
2208 		search_start = *offset;
2209 		search_bytes = unit;
2210 		ret = search_bitmap(ctl, bitmap_info, &search_start,
2211 				    &search_bytes, false);
2212 		if (ret < 0 || search_start != *offset)
2213 			return -EAGAIN;
2214 
2215 		goto again;
2216 	} else if (!bitmap_info->bytes)
2217 		free_bitmap(ctl, bitmap_info);
2218 
2219 	return 0;
2220 }
2221 
2222 static u64 add_bytes_to_bitmap(struct btrfs_free_space_ctl *ctl,
2223 			       struct btrfs_free_space *info, u64 offset,
2224 			       u64 bytes, enum btrfs_trim_state trim_state)
2225 {
2226 	const int unit = ctl->block_group->fs_info->sectorsize;
2227 	u64 bytes_to_set = 0;
2228 	u64 end;
2229 
2230 	/*
2231 	 * This is a tradeoff to make bitmap trim state minimal.  We mark the
2232 	 * whole bitmap untrimmed if at any point we add untrimmed regions.
2233 	 */
2234 	if (trim_state == BTRFS_TRIM_STATE_UNTRIMMED) {
2235 		if (btrfs_free_space_trimmed(info)) {
2236 			ctl->discardable_extents[BTRFS_STAT_CURR] +=
2237 				info->bitmap_extents;
2238 			ctl->discardable_bytes[BTRFS_STAT_CURR] += info->bytes;
2239 		}
2240 		info->trim_state = BTRFS_TRIM_STATE_UNTRIMMED;
2241 	}
2242 
2243 	end = info->offset + (u64)(BITS_PER_BITMAP * unit);
2244 
2245 	bytes_to_set = min(end - offset, bytes);
2246 
2247 	btrfs_bitmap_set_bits(ctl, info, offset, bytes_to_set);
2248 
2249 	return bytes_to_set;
2250 
2251 }
2252 
2253 EXPORT_FOR_TESTS
2254 bool btrfs_use_bitmap(struct btrfs_free_space_ctl *ctl,
2255 		      struct btrfs_free_space *info)
2256 {
2257 	struct btrfs_block_group *block_group = ctl->block_group;
2258 	struct btrfs_fs_info *fs_info = block_group->fs_info;
2259 	bool forced = false;
2260 
2261 #ifdef CONFIG_BTRFS_DEBUG
2262 	if (btrfs_should_fragment_free_space(block_group))
2263 		forced = true;
2264 #endif
2265 
2266 	/* This is a way to reclaim large regions from the bitmaps. */
2267 	if (!forced && info->bytes >= FORCE_EXTENT_THRESHOLD)
2268 		return false;
2269 
2270 	/*
2271 	 * If we are below the extents threshold then we can add this as an
2272 	 * extent, and don't have to deal with the bitmap
2273 	 */
2274 	if (!forced && ctl->free_extents < ctl->extents_thresh) {
2275 		/*
2276 		 * If this block group has some small extents we don't want to
2277 		 * use up all of our free slots in the cache with them, we want
2278 		 * to reserve them to larger extents, however if we have plenty
2279 		 * of cache left then go ahead and add them, no sense in adding
2280 		 * the overhead of a bitmap if we don't have to.
2281 		 */
2282 		if (info->bytes <= fs_info->sectorsize * 8) {
2283 			if (ctl->free_extents * 3 <= ctl->extents_thresh)
2284 				return false;
2285 		} else {
2286 			return false;
2287 		}
2288 	}
2289 
2290 	/*
2291 	 * The original block groups from mkfs can be really small, like 8
2292 	 * megabytes, so don't bother with a bitmap for those entries.  However
2293 	 * some block groups can be smaller than what a bitmap would cover but
2294 	 * are still large enough that they could overflow the 32k memory limit,
2295 	 * so allow those block groups to still be allowed to have a bitmap
2296 	 * entry.
2297 	 */
2298 	if (((BITS_PER_BITMAP * fs_info->sectorsize) >> 1) > block_group->length)
2299 		return false;
2300 
2301 	return true;
2302 }
2303 
2304 static int insert_into_bitmap(struct btrfs_free_space_ctl *ctl,
2305 			      struct btrfs_free_space *info)
2306 {
2307 	struct btrfs_free_space *bitmap_info;
2308 	struct btrfs_block_group *block_group = ctl->block_group;
2309 	bool added = false;
2310 	u64 bytes, offset, bytes_added;
2311 	enum btrfs_trim_state trim_state;
2312 	int ret;
2313 
2314 	bytes = info->bytes;
2315 	offset = info->offset;
2316 	trim_state = info->trim_state;
2317 
2318 	if (btrfs_is_testing(block_group->fs_info)) {
2319 		if (!block_group->fs_info->use_bitmap(ctl, info))
2320 			return 0;
2321 	} else {
2322 		if (!btrfs_use_bitmap(ctl, info))
2323 			return 0;
2324 	}
2325 again:
2326 	/*
2327 	 * Since we link bitmaps right into the cluster we need to see if we
2328 	 * have a cluster here, and if so and it has our bitmap we need to add
2329 	 * the free space to that bitmap.
2330 	 */
2331 	if (!list_empty(&block_group->cluster_list)) {
2332 		struct btrfs_free_cluster *cluster;
2333 		struct rb_node *node;
2334 		struct btrfs_free_space *entry;
2335 
2336 		cluster = list_first_entry(&block_group->cluster_list,
2337 					   struct btrfs_free_cluster, block_group_list);
2338 		spin_lock(&cluster->lock);
2339 		node = rb_first(&cluster->root);
2340 		if (!node) {
2341 			spin_unlock(&cluster->lock);
2342 			goto no_cluster_bitmap;
2343 		}
2344 
2345 		entry = rb_entry(node, struct btrfs_free_space, offset_index);
2346 		if (!entry->bitmap) {
2347 			spin_unlock(&cluster->lock);
2348 			goto no_cluster_bitmap;
2349 		}
2350 
2351 		if (entry->offset == offset_to_bitmap(ctl, offset)) {
2352 			bytes_added = add_bytes_to_bitmap(ctl, entry, offset,
2353 							  bytes, trim_state);
2354 			bytes -= bytes_added;
2355 			offset += bytes_added;
2356 		}
2357 		spin_unlock(&cluster->lock);
2358 		if (!bytes) {
2359 			ret = 1;
2360 			goto out;
2361 		}
2362 	}
2363 
2364 no_cluster_bitmap:
2365 	bitmap_info = tree_search_offset(ctl, offset_to_bitmap(ctl, offset),
2366 					 1, 0);
2367 	if (!bitmap_info) {
2368 		ASSERT(!added);
2369 		goto new_bitmap;
2370 	}
2371 
2372 	bytes_added = add_bytes_to_bitmap(ctl, bitmap_info, offset, bytes,
2373 					  trim_state);
2374 	bytes -= bytes_added;
2375 	offset += bytes_added;
2376 	added = false;
2377 
2378 	if (!bytes) {
2379 		ret = 1;
2380 		goto out;
2381 	} else
2382 		goto again;
2383 
2384 new_bitmap:
2385 	if (info && info->bitmap) {
2386 		add_new_bitmap(ctl, info, offset);
2387 		added = true;
2388 		info = NULL;
2389 		goto again;
2390 	} else {
2391 		spin_unlock(&ctl->tree_lock);
2392 
2393 		/* no pre-allocated info, allocate a new one */
2394 		if (!info) {
2395 			info = kmem_cache_zalloc(btrfs_free_space_cachep,
2396 						 GFP_NOFS);
2397 			if (!info) {
2398 				spin_lock(&ctl->tree_lock);
2399 				ret = -ENOMEM;
2400 				goto out;
2401 			}
2402 		}
2403 
2404 		/* allocate the bitmap */
2405 		info->bitmap = kmem_cache_zalloc(btrfs_free_space_bitmap_cachep,
2406 						 GFP_NOFS);
2407 		info->trim_state = BTRFS_TRIM_STATE_TRIMMED;
2408 		spin_lock(&ctl->tree_lock);
2409 		if (!info->bitmap) {
2410 			ret = -ENOMEM;
2411 			goto out;
2412 		}
2413 		goto again;
2414 	}
2415 
2416 out:
2417 	if (info) {
2418 		if (info->bitmap)
2419 			kmem_cache_free(btrfs_free_space_bitmap_cachep,
2420 					info->bitmap);
2421 		kmem_cache_free(btrfs_free_space_cachep, info);
2422 	}
2423 
2424 	return ret;
2425 }
2426 
2427 /*
2428  * Free space merging rules:
2429  *  1) Merge trimmed areas together
2430  *  2) Let untrimmed areas coalesce with trimmed areas
2431  *  3) Always pull neighboring regions from bitmaps
2432  *
2433  * The above rules are for when we merge free space based on btrfs_trim_state.
2434  * Rules 2 and 3 are subtle because they are suboptimal, but are done for the
2435  * same reason: to promote larger extent regions which makes life easier for
2436  * find_free_extent().  Rule 2 enables coalescing based on the common path
2437  * being returning free space from btrfs_finish_extent_commit().  So when free
2438  * space is trimmed, it will prevent aggregating trimmed new region and
2439  * untrimmed regions in the rb_tree.  Rule 3 is purely to obtain larger extents
2440  * and provide find_free_extent() with the largest extents possible hoping for
2441  * the reuse path.
2442  */
2443 static bool try_merge_free_space(struct btrfs_free_space_ctl *ctl,
2444 			  struct btrfs_free_space *info, bool update_stat)
2445 {
2446 	struct btrfs_free_space *left_info = NULL;
2447 	struct btrfs_free_space *right_info;
2448 	bool merged = false;
2449 	u64 offset = info->offset;
2450 	u64 bytes = info->bytes;
2451 	const bool is_trimmed = btrfs_free_space_trimmed(info);
2452 	struct rb_node *right_prev = NULL;
2453 
2454 	/*
2455 	 * first we want to see if there is free space adjacent to the range we
2456 	 * are adding, if there is remove that struct and add a new one to
2457 	 * cover the entire range
2458 	 */
2459 	right_info = tree_search_offset(ctl, offset + bytes, 0, 0);
2460 	if (right_info)
2461 		right_prev = rb_prev(&right_info->offset_index);
2462 
2463 	if (right_prev)
2464 		left_info = rb_entry(right_prev, struct btrfs_free_space, offset_index);
2465 	else if (!right_info)
2466 		left_info = tree_search_offset(ctl, offset - 1, 0, 0);
2467 
2468 	/* See try_merge_free_space() comment. */
2469 	if (right_info && !right_info->bitmap &&
2470 	    (!is_trimmed || btrfs_free_space_trimmed(right_info))) {
2471 		unlink_free_space(ctl, right_info, update_stat);
2472 		info->bytes += right_info->bytes;
2473 		kmem_cache_free(btrfs_free_space_cachep, right_info);
2474 		merged = true;
2475 	}
2476 
2477 	/* See try_merge_free_space() comment. */
2478 	if (left_info && !left_info->bitmap &&
2479 	    left_info->offset + left_info->bytes == offset &&
2480 	    (!is_trimmed || btrfs_free_space_trimmed(left_info))) {
2481 		unlink_free_space(ctl, left_info, update_stat);
2482 		info->offset = left_info->offset;
2483 		info->bytes += left_info->bytes;
2484 		kmem_cache_free(btrfs_free_space_cachep, left_info);
2485 		merged = true;
2486 	}
2487 
2488 	return merged;
2489 }
2490 
2491 static bool steal_from_bitmap_to_end(struct btrfs_free_space_ctl *ctl,
2492 				     struct btrfs_free_space *info,
2493 				     bool update_stat)
2494 {
2495 	const int unit = ctl->block_group->fs_info->sectorsize;
2496 	struct btrfs_free_space *bitmap;
2497 	unsigned long i;
2498 	unsigned long j;
2499 	const u64 end = info->offset + info->bytes;
2500 	const u64 bitmap_offset = offset_to_bitmap(ctl, end);
2501 	u64 bytes;
2502 
2503 	bitmap = tree_search_offset(ctl, bitmap_offset, 1, 0);
2504 	if (!bitmap)
2505 		return false;
2506 
2507 	i = offset_to_bit(bitmap->offset, unit, end);
2508 	j = find_next_zero_bit(bitmap->bitmap, BITS_PER_BITMAP, i);
2509 	if (j == i)
2510 		return false;
2511 	bytes = (j - i) * unit;
2512 	info->bytes += bytes;
2513 
2514 	/* See try_merge_free_space() comment. */
2515 	if (!btrfs_free_space_trimmed(bitmap))
2516 		info->trim_state = BTRFS_TRIM_STATE_UNTRIMMED;
2517 
2518 	bitmap_clear_bits(ctl, bitmap, end, bytes, update_stat);
2519 
2520 	if (!bitmap->bytes)
2521 		free_bitmap(ctl, bitmap);
2522 
2523 	return true;
2524 }
2525 
2526 static bool steal_from_bitmap_to_front(struct btrfs_free_space_ctl *ctl,
2527 				       struct btrfs_free_space *info,
2528 				       bool update_stat)
2529 {
2530 	const int unit = ctl->block_group->fs_info->sectorsize;
2531 	struct btrfs_free_space *bitmap;
2532 	u64 bitmap_offset;
2533 	unsigned long i;
2534 	unsigned long j;
2535 	unsigned long prev_j;
2536 	u64 bytes;
2537 
2538 	bitmap_offset = offset_to_bitmap(ctl, info->offset);
2539 	/* If we're on a boundary, try the previous logical bitmap. */
2540 	if (bitmap_offset == info->offset) {
2541 		if (info->offset == 0)
2542 			return false;
2543 		bitmap_offset = offset_to_bitmap(ctl, info->offset - 1);
2544 	}
2545 
2546 	bitmap = tree_search_offset(ctl, bitmap_offset, 1, 0);
2547 	if (!bitmap)
2548 		return false;
2549 
2550 	i = offset_to_bit(bitmap->offset, unit, info->offset) - 1;
2551 	j = 0;
2552 	prev_j = (unsigned long)-1;
2553 	for_each_clear_bit_from(j, bitmap->bitmap, BITS_PER_BITMAP) {
2554 		if (j > i)
2555 			break;
2556 		prev_j = j;
2557 	}
2558 	if (prev_j == i)
2559 		return false;
2560 
2561 	if (prev_j == (unsigned long)-1)
2562 		bytes = (i + 1) * unit;
2563 	else
2564 		bytes = (i - prev_j) * unit;
2565 
2566 	info->offset -= bytes;
2567 	info->bytes += bytes;
2568 
2569 	/* See try_merge_free_space() comment. */
2570 	if (!btrfs_free_space_trimmed(bitmap))
2571 		info->trim_state = BTRFS_TRIM_STATE_UNTRIMMED;
2572 
2573 	bitmap_clear_bits(ctl, bitmap, info->offset, bytes, update_stat);
2574 
2575 	if (!bitmap->bytes)
2576 		free_bitmap(ctl, bitmap);
2577 
2578 	return true;
2579 }
2580 
2581 /*
2582  * We prefer always to allocate from extent entries, both for clustered and
2583  * non-clustered allocation requests. So when attempting to add a new extent
2584  * entry, try to see if there's adjacent free space in bitmap entries, and if
2585  * there is, migrate that space from the bitmaps to the extent.
2586  * Like this we get better chances of satisfying space allocation requests
2587  * because we attempt to satisfy them based on a single cache entry, and never
2588  * on 2 or more entries - even if the entries represent a contiguous free space
2589  * region (e.g. 1 extent entry + 1 bitmap entry starting where the extent entry
2590  * ends).
2591  */
2592 static void steal_from_bitmap(struct btrfs_free_space_ctl *ctl,
2593 			      struct btrfs_free_space *info,
2594 			      bool update_stat)
2595 {
2596 	/*
2597 	 * Only work with disconnected entries, as we can change their offset,
2598 	 * and must be extent entries.
2599 	 */
2600 	ASSERT(!info->bitmap);
2601 	ASSERT(RB_EMPTY_NODE(&info->offset_index));
2602 
2603 	if (ctl->total_bitmaps > 0) {
2604 		bool stole_end;
2605 		bool stole_front = false;
2606 
2607 		stole_end = steal_from_bitmap_to_end(ctl, info, update_stat);
2608 		if (ctl->total_bitmaps > 0)
2609 			stole_front = steal_from_bitmap_to_front(ctl, info,
2610 								 update_stat);
2611 
2612 		if (stole_end || stole_front)
2613 			try_merge_free_space(ctl, info, update_stat);
2614 	}
2615 }
2616 
2617 static int __btrfs_add_free_space(struct btrfs_block_group *block_group,
2618 			   u64 offset, u64 bytes,
2619 			   enum btrfs_trim_state trim_state)
2620 {
2621 	struct btrfs_fs_info *fs_info = block_group->fs_info;
2622 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
2623 	struct btrfs_free_space *info;
2624 	int ret = 0;
2625 	u64 filter_bytes = bytes;
2626 
2627 	ASSERT(!btrfs_is_zoned(fs_info));
2628 
2629 	info = kmem_cache_zalloc(btrfs_free_space_cachep, GFP_NOFS);
2630 	if (!info)
2631 		return -ENOMEM;
2632 
2633 	info->offset = offset;
2634 	info->bytes = bytes;
2635 	info->trim_state = trim_state;
2636 	RB_CLEAR_NODE(&info->offset_index);
2637 	RB_CLEAR_NODE(&info->bytes_index);
2638 
2639 	spin_lock(&ctl->tree_lock);
2640 
2641 	if (try_merge_free_space(ctl, info, true))
2642 		goto link;
2643 
2644 	/*
2645 	 * There was no extent directly to the left or right of this new
2646 	 * extent then we know we're going to have to allocate a new extent, so
2647 	 * before we do that see if we need to drop this into a bitmap
2648 	 */
2649 	ret = insert_into_bitmap(ctl, info);
2650 	if (ret < 0) {
2651 		goto out;
2652 	} else if (ret) {
2653 		ret = 0;
2654 		goto out;
2655 	}
2656 link:
2657 	/*
2658 	 * Only steal free space from adjacent bitmaps if we're sure we're not
2659 	 * going to add the new free space to existing bitmap entries - because
2660 	 * that would mean unnecessary work that would be reverted. Therefore
2661 	 * attempt to steal space from bitmaps if we're adding an extent entry.
2662 	 */
2663 	steal_from_bitmap(ctl, info, true);
2664 
2665 	filter_bytes = max(filter_bytes, info->bytes);
2666 
2667 	ret = link_free_space(ctl, info);
2668 	if (ret)
2669 		kmem_cache_free(btrfs_free_space_cachep, info);
2670 out:
2671 	btrfs_discard_update_discardable(block_group);
2672 	spin_unlock(&ctl->tree_lock);
2673 
2674 	if (ret) {
2675 		btrfs_crit(fs_info, "unable to add free space :%d", ret);
2676 		ASSERT(ret != -EEXIST);
2677 	}
2678 
2679 	if (trim_state != BTRFS_TRIM_STATE_TRIMMED) {
2680 		btrfs_discard_check_filter(block_group, filter_bytes);
2681 		btrfs_discard_queue_work(&fs_info->discard_ctl, block_group);
2682 	}
2683 
2684 	return ret;
2685 }
2686 
2687 static int __btrfs_add_free_space_zoned(struct btrfs_block_group *block_group,
2688 					u64 bytenr, u64 size, bool used)
2689 {
2690 	struct btrfs_space_info *sinfo = block_group->space_info;
2691 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
2692 	u64 offset = bytenr - block_group->start;
2693 	u64 to_free, to_unusable;
2694 	int bg_reclaim_threshold = 0;
2695 	bool initial;
2696 	u64 reclaimable_unusable;
2697 
2698 	spin_lock(&block_group->lock);
2699 
2700 	initial = ((size == block_group->length) && (block_group->alloc_offset == 0));
2701 	WARN_ON(!initial && offset + size > block_group->zone_capacity);
2702 	if (!initial)
2703 		bg_reclaim_threshold = READ_ONCE(sinfo->bg_reclaim_threshold);
2704 
2705 	if (!used)
2706 		to_free = size;
2707 	else if (initial)
2708 		to_free = block_group->zone_capacity;
2709 	else if (offset >= block_group->alloc_offset)
2710 		to_free = size;
2711 	else if (offset + size <= block_group->alloc_offset)
2712 		to_free = 0;
2713 	else
2714 		to_free = offset + size - block_group->alloc_offset;
2715 	to_unusable = size - to_free;
2716 
2717 	spin_lock(&ctl->tree_lock);
2718 	ctl->free_space += to_free;
2719 	spin_unlock(&ctl->tree_lock);
2720 	/*
2721 	 * If the block group is read-only, we should account freed space into
2722 	 * bytes_readonly.
2723 	 */
2724 	if (!block_group->ro) {
2725 		block_group->zone_unusable += to_unusable;
2726 		WARN_ON(block_group->zone_unusable > block_group->length);
2727 	}
2728 	if (!used) {
2729 		block_group->alloc_offset -= size;
2730 	}
2731 
2732 	reclaimable_unusable = block_group->zone_unusable -
2733 			       (block_group->length - block_group->zone_capacity);
2734 	/* All the region is now unusable. Mark it as unused and reclaim */
2735 	if (block_group->zone_unusable == block_group->length) {
2736 		btrfs_mark_bg_unused(block_group);
2737 	} else if (bg_reclaim_threshold &&
2738 		   reclaimable_unusable >=
2739 		   mult_perc(block_group->zone_capacity, bg_reclaim_threshold)) {
2740 		btrfs_mark_bg_to_reclaim(block_group);
2741 	}
2742 
2743 	spin_unlock(&block_group->lock);
2744 
2745 	return 0;
2746 }
2747 
2748 int btrfs_add_free_space(struct btrfs_block_group *block_group,
2749 			 u64 bytenr, u64 size)
2750 {
2751 	enum btrfs_trim_state trim_state = BTRFS_TRIM_STATE_UNTRIMMED;
2752 
2753 	if (block_group->flags & BTRFS_BLOCK_GROUP_REMAPPED)
2754 		return 0;
2755 
2756 	if (btrfs_is_zoned(block_group->fs_info))
2757 		return __btrfs_add_free_space_zoned(block_group, bytenr, size,
2758 						    true);
2759 
2760 	if (btrfs_test_opt(block_group->fs_info, DISCARD_SYNC))
2761 		trim_state = BTRFS_TRIM_STATE_TRIMMED;
2762 
2763 	return __btrfs_add_free_space(block_group, bytenr, size, trim_state);
2764 }
2765 
2766 int btrfs_add_free_space_unused(struct btrfs_block_group *block_group,
2767 				u64 bytenr, u64 size)
2768 {
2769 	if (btrfs_is_zoned(block_group->fs_info))
2770 		return __btrfs_add_free_space_zoned(block_group, bytenr, size,
2771 						    false);
2772 
2773 	return btrfs_add_free_space(block_group, bytenr, size);
2774 }
2775 
2776 /*
2777  * This is a subtle distinction because when adding free space back in general,
2778  * we want it to be added as untrimmed for async. But in the case where we add
2779  * it on loading of a block group, we want to consider it trimmed.
2780  */
2781 int btrfs_add_free_space_async_trimmed(struct btrfs_block_group *block_group,
2782 				       u64 bytenr, u64 size)
2783 {
2784 	enum btrfs_trim_state trim_state = BTRFS_TRIM_STATE_UNTRIMMED;
2785 
2786 	if (btrfs_is_zoned(block_group->fs_info))
2787 		return __btrfs_add_free_space_zoned(block_group, bytenr, size,
2788 						    true);
2789 
2790 	if (btrfs_test_opt(block_group->fs_info, DISCARD_SYNC) ||
2791 	    btrfs_test_opt(block_group->fs_info, DISCARD_ASYNC))
2792 		trim_state = BTRFS_TRIM_STATE_TRIMMED;
2793 
2794 	return __btrfs_add_free_space(block_group, bytenr, size, trim_state);
2795 }
2796 
2797 int btrfs_remove_free_space(struct btrfs_block_group *block_group,
2798 			    u64 offset, u64 bytes)
2799 {
2800 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
2801 	struct btrfs_free_space *info;
2802 	int ret;
2803 	bool re_search = false;
2804 
2805 	if (btrfs_is_zoned(block_group->fs_info)) {
2806 		/*
2807 		 * This can happen with conventional zones when replaying log.
2808 		 * Since the allocation info of tree-log nodes are not recorded
2809 		 * to the extent-tree, calculate_alloc_pointer() failed to
2810 		 * advance the allocation pointer after last allocated tree log
2811 		 * node blocks.
2812 		 *
2813 		 * This function is called from
2814 		 * btrfs_pin_extent_for_log_replay() when replaying the log.
2815 		 * Advance the pointer not to overwrite the tree-log nodes.
2816 		 */
2817 		if (block_group->start + block_group->alloc_offset <
2818 		    offset + bytes) {
2819 			block_group->alloc_offset =
2820 				offset + bytes - block_group->start;
2821 		}
2822 		return 0;
2823 	}
2824 
2825 	spin_lock(&ctl->tree_lock);
2826 
2827 again:
2828 	ret = 0;
2829 	if (!bytes)
2830 		goto out_lock;
2831 
2832 	info = tree_search_offset(ctl, offset, 0, 0);
2833 	if (!info) {
2834 		/*
2835 		 * oops didn't find an extent that matched the space we wanted
2836 		 * to remove, look for a bitmap instead
2837 		 */
2838 		info = tree_search_offset(ctl, offset_to_bitmap(ctl, offset),
2839 					  1, 0);
2840 		if (!info) {
2841 			/*
2842 			 * If we found a partial bit of our free space in a
2843 			 * bitmap but then couldn't find the other part this may
2844 			 * be a problem, so WARN about it.
2845 			 */
2846 			WARN_ON(re_search);
2847 			goto out_lock;
2848 		}
2849 	}
2850 
2851 	re_search = false;
2852 	if (!info->bitmap) {
2853 		unlink_free_space(ctl, info, true);
2854 		if (offset == info->offset) {
2855 			u64 to_free = min(bytes, info->bytes);
2856 
2857 			info->bytes -= to_free;
2858 			info->offset += to_free;
2859 			if (info->bytes) {
2860 				ret = link_free_space(ctl, info);
2861 				WARN_ON(ret);
2862 			} else {
2863 				kmem_cache_free(btrfs_free_space_cachep, info);
2864 			}
2865 
2866 			offset += to_free;
2867 			bytes -= to_free;
2868 			goto again;
2869 		} else {
2870 			u64 old_end = info->bytes + info->offset;
2871 
2872 			info->bytes = offset - info->offset;
2873 			ret = link_free_space(ctl, info);
2874 			WARN_ON(ret);
2875 			if (ret)
2876 				goto out_lock;
2877 
2878 			/* Not enough bytes in this entry to satisfy us */
2879 			if (old_end < offset + bytes) {
2880 				bytes -= old_end - offset;
2881 				offset = old_end;
2882 				goto again;
2883 			} else if (old_end == offset + bytes) {
2884 				/* all done */
2885 				goto out_lock;
2886 			}
2887 			spin_unlock(&ctl->tree_lock);
2888 
2889 			ret = __btrfs_add_free_space(block_group,
2890 						     offset + bytes,
2891 						     old_end - (offset + bytes),
2892 						     info->trim_state);
2893 			WARN_ON(ret);
2894 			return ret;
2895 		}
2896 	}
2897 
2898 	ret = remove_from_bitmap(ctl, info, &offset, &bytes);
2899 	if (ret == -EAGAIN) {
2900 		re_search = true;
2901 		goto again;
2902 	}
2903 out_lock:
2904 	btrfs_discard_update_discardable(block_group);
2905 	spin_unlock(&ctl->tree_lock);
2906 
2907 	return ret;
2908 }
2909 
2910 void btrfs_dump_free_space(struct btrfs_block_group *block_group,
2911 			   u64 bytes)
2912 {
2913 	struct btrfs_fs_info *fs_info = block_group->fs_info;
2914 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
2915 	struct btrfs_free_space *info;
2916 	struct rb_node *n;
2917 	int count = 0;
2918 
2919 	/*
2920 	 * Zoned btrfs does not use free space tree and cluster. Just print
2921 	 * out the free space after the allocation offset.
2922 	 */
2923 	if (btrfs_is_zoned(fs_info)) {
2924 		btrfs_info(fs_info, "free space %llu active %d",
2925 			   block_group->zone_capacity - block_group->alloc_offset,
2926 			   test_bit(BLOCK_GROUP_FLAG_ZONE_IS_ACTIVE,
2927 				    &block_group->runtime_flags));
2928 		return;
2929 	}
2930 
2931 	spin_lock(&ctl->tree_lock);
2932 	for (n = rb_first(&ctl->free_space_offset); n; n = rb_next(n)) {
2933 		info = rb_entry(n, struct btrfs_free_space, offset_index);
2934 		if (info->bytes >= bytes && !block_group->ro)
2935 			count++;
2936 		btrfs_crit(fs_info, "entry offset %llu, bytes %llu, bitmap %s",
2937 			   info->offset, info->bytes, str_yes_no(info->bitmap));
2938 	}
2939 	spin_unlock(&ctl->tree_lock);
2940 	btrfs_info(fs_info, "block group has cluster?: %s",
2941 	       str_no_yes(list_empty(&block_group->cluster_list)));
2942 	btrfs_info(fs_info,
2943 		   "%d free space entries at or bigger than %llu bytes",
2944 		   count, bytes);
2945 }
2946 
2947 void btrfs_init_free_space_ctl(struct btrfs_block_group *block_group,
2948 			       struct btrfs_free_space_ctl *ctl)
2949 {
2950 	spin_lock_init(&ctl->tree_lock);
2951 	ctl->block_group = block_group;
2952 	ctl->free_space_bytes = RB_ROOT_CACHED;
2953 	INIT_LIST_HEAD(&ctl->trimming_ranges);
2954 	mutex_init(&ctl->cache_writeout_mutex);
2955 
2956 	/*
2957 	 * we only want to have 32k of ram per block group for keeping
2958 	 * track of free space, and if we pass 1/2 of that we want to
2959 	 * start converting things over to using bitmaps
2960 	 */
2961 	ctl->extents_thresh = (SZ_32K / 2) / sizeof(struct btrfs_free_space);
2962 }
2963 
2964 /*
2965  * for a given cluster, put all of its extents back into the free
2966  * space cache.  If the block group passed doesn't match the block group
2967  * pointed to by the cluster, someone else raced in and freed the
2968  * cluster already.  In that case, we just return without changing anything
2969  */
2970 static void __btrfs_return_cluster_to_free_space(
2971 			     struct btrfs_block_group *block_group,
2972 			     struct btrfs_free_cluster *cluster)
2973 {
2974 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
2975 	struct rb_node *node;
2976 
2977 	lockdep_assert_held(&ctl->tree_lock);
2978 
2979 	spin_lock(&cluster->lock);
2980 	if (cluster->block_group != block_group) {
2981 		spin_unlock(&cluster->lock);
2982 		return;
2983 	}
2984 
2985 	cluster->block_group = NULL;
2986 	cluster->window_start = 0;
2987 	list_del_init(&cluster->block_group_list);
2988 
2989 	node = rb_first(&cluster->root);
2990 	while (node) {
2991 		struct btrfs_free_space *entry;
2992 
2993 		entry = rb_entry(node, struct btrfs_free_space, offset_index);
2994 		node = rb_next(&entry->offset_index);
2995 		rb_erase(&entry->offset_index, &cluster->root);
2996 		RB_CLEAR_NODE(&entry->offset_index);
2997 
2998 		if (!entry->bitmap) {
2999 			/* Merging treats extents as if they were new */
3000 			if (!btrfs_free_space_trimmed(entry)) {
3001 				ctl->discardable_extents[BTRFS_STAT_CURR]--;
3002 				ctl->discardable_bytes[BTRFS_STAT_CURR] -=
3003 					entry->bytes;
3004 			}
3005 
3006 			try_merge_free_space(ctl, entry, false);
3007 			steal_from_bitmap(ctl, entry, false);
3008 
3009 			/* As we insert directly, update these statistics */
3010 			if (!btrfs_free_space_trimmed(entry)) {
3011 				ctl->discardable_extents[BTRFS_STAT_CURR]++;
3012 				ctl->discardable_bytes[BTRFS_STAT_CURR] +=
3013 					entry->bytes;
3014 			}
3015 		}
3016 		tree_insert_offset(ctl, NULL, entry);
3017 		rb_add_cached(&entry->bytes_index, &ctl->free_space_bytes,
3018 			      entry_less);
3019 	}
3020 	cluster->root = RB_ROOT;
3021 	spin_unlock(&cluster->lock);
3022 	btrfs_put_block_group(block_group);
3023 }
3024 
3025 void btrfs_remove_free_space_cache(struct btrfs_block_group *block_group)
3026 {
3027 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
3028 	struct btrfs_free_cluster *cluster;
3029 	struct list_head *head;
3030 
3031 	spin_lock(&ctl->tree_lock);
3032 	while ((head = block_group->cluster_list.next) !=
3033 	       &block_group->cluster_list) {
3034 		cluster = list_entry(head, struct btrfs_free_cluster,
3035 				     block_group_list);
3036 
3037 		WARN_ON(cluster->block_group != block_group);
3038 		__btrfs_return_cluster_to_free_space(block_group, cluster);
3039 
3040 		cond_resched_lock(&ctl->tree_lock);
3041 	}
3042 	__btrfs_remove_free_space_cache(ctl);
3043 	btrfs_discard_update_discardable(block_group);
3044 	spin_unlock(&ctl->tree_lock);
3045 
3046 }
3047 
3048 /*
3049  * Walk @block_group's free space rb_tree to determine if everything is trimmed.
3050  */
3051 bool btrfs_is_free_space_trimmed(struct btrfs_block_group *block_group)
3052 {
3053 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
3054 	struct btrfs_free_space *info;
3055 	struct rb_node *node;
3056 	bool ret = true;
3057 
3058 	if (block_group->flags & BTRFS_BLOCK_GROUP_REMAPPED &&
3059 	    !test_bit(BLOCK_GROUP_FLAG_STRIPE_REMOVAL_PENDING, &block_group->runtime_flags) &&
3060 	    block_group->identity_remap_count == 0) {
3061 		return true;
3062 	}
3063 
3064 	spin_lock(&ctl->tree_lock);
3065 	node = rb_first(&ctl->free_space_offset);
3066 
3067 	while (node) {
3068 		info = rb_entry(node, struct btrfs_free_space, offset_index);
3069 
3070 		if (!btrfs_free_space_trimmed(info)) {
3071 			ret = false;
3072 			break;
3073 		}
3074 
3075 		node = rb_next(node);
3076 	}
3077 
3078 	spin_unlock(&ctl->tree_lock);
3079 	return ret;
3080 }
3081 
3082 u64 btrfs_find_space_for_alloc(struct btrfs_block_group *block_group,
3083 			       u64 offset, u64 bytes, u64 empty_size,
3084 			       u64 *max_extent_size)
3085 {
3086 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
3087 	struct btrfs_discard_ctl *discard_ctl =
3088 					&block_group->fs_info->discard_ctl;
3089 	struct btrfs_free_space *entry = NULL;
3090 	u64 bytes_search = bytes + empty_size;
3091 	u64 ret = 0;
3092 	u64 align_gap = 0;
3093 	u64 align_gap_len = 0;
3094 	enum btrfs_trim_state align_gap_trim_state = BTRFS_TRIM_STATE_UNTRIMMED;
3095 	bool use_bytes_index = (offset == block_group->start);
3096 
3097 	ASSERT(!btrfs_is_zoned(block_group->fs_info));
3098 
3099 	spin_lock(&ctl->tree_lock);
3100 	entry = find_free_space(ctl, &offset, &bytes_search,
3101 				block_group->full_stripe_len, max_extent_size,
3102 				use_bytes_index);
3103 	if (!entry)
3104 		goto out;
3105 
3106 	ret = offset;
3107 	if (entry->bitmap) {
3108 		bitmap_clear_bits(ctl, entry, offset, bytes, true);
3109 
3110 		if (!btrfs_free_space_trimmed(entry))
3111 			atomic64_add(bytes, &discard_ctl->discard_bytes_saved);
3112 
3113 		if (!entry->bytes)
3114 			free_bitmap(ctl, entry);
3115 	} else {
3116 		unlink_free_space(ctl, entry, true);
3117 		align_gap_len = offset - entry->offset;
3118 		align_gap = entry->offset;
3119 		align_gap_trim_state = entry->trim_state;
3120 
3121 		if (!btrfs_free_space_trimmed(entry))
3122 			atomic64_add(bytes, &discard_ctl->discard_bytes_saved);
3123 
3124 		entry->offset = offset + bytes;
3125 		WARN_ON(entry->bytes < bytes + align_gap_len);
3126 
3127 		entry->bytes -= bytes + align_gap_len;
3128 		if (!entry->bytes)
3129 			kmem_cache_free(btrfs_free_space_cachep, entry);
3130 		else
3131 			link_free_space(ctl, entry);
3132 	}
3133 out:
3134 	btrfs_discard_update_discardable(block_group);
3135 	spin_unlock(&ctl->tree_lock);
3136 
3137 	if (align_gap_len)
3138 		__btrfs_add_free_space(block_group, align_gap, align_gap_len,
3139 				       align_gap_trim_state);
3140 	return ret;
3141 }
3142 
3143 /*
3144  * given a cluster, put all of its extents back into the free space
3145  * cache.  If a block group is passed, this function will only free
3146  * a cluster that belongs to the passed block group.
3147  *
3148  * Otherwise, it'll get a reference on the block group pointed to by the
3149  * cluster and remove the cluster from it.
3150  */
3151 void btrfs_return_cluster_to_free_space(
3152 			       struct btrfs_block_group *block_group,
3153 			       struct btrfs_free_cluster *cluster)
3154 {
3155 	struct btrfs_free_space_ctl *ctl;
3156 
3157 	/* first, get a safe pointer to the block group */
3158 	spin_lock(&cluster->lock);
3159 	if (!block_group) {
3160 		block_group = cluster->block_group;
3161 		if (!block_group) {
3162 			spin_unlock(&cluster->lock);
3163 			return;
3164 		}
3165 	} else if (cluster->block_group != block_group) {
3166 		/* someone else has already freed it don't redo their work */
3167 		spin_unlock(&cluster->lock);
3168 		return;
3169 	}
3170 	btrfs_get_block_group(block_group);
3171 	spin_unlock(&cluster->lock);
3172 
3173 	ctl = block_group->free_space_ctl;
3174 
3175 	/* now return any extents the cluster had on it */
3176 	spin_lock(&ctl->tree_lock);
3177 	__btrfs_return_cluster_to_free_space(block_group, cluster);
3178 	spin_unlock(&ctl->tree_lock);
3179 
3180 	btrfs_discard_queue_work(&block_group->fs_info->discard_ctl, block_group);
3181 
3182 	/* finally drop our ref */
3183 	btrfs_put_block_group(block_group);
3184 }
3185 
3186 static u64 btrfs_alloc_from_bitmap(struct btrfs_block_group *block_group,
3187 				   struct btrfs_free_cluster *cluster,
3188 				   struct btrfs_free_space *entry,
3189 				   u64 bytes, u64 min_start,
3190 				   u64 *max_extent_size)
3191 {
3192 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
3193 	int ret2;
3194 	u64 search_start = cluster->window_start;
3195 	u64 search_bytes = bytes;
3196 	u64 ret = 0;
3197 
3198 	search_start = min_start;
3199 	search_bytes = bytes;
3200 
3201 	ret2 = search_bitmap(ctl, entry, &search_start, &search_bytes, true);
3202 	if (ret2) {
3203 		*max_extent_size = max(get_max_extent_size(entry),
3204 				       *max_extent_size);
3205 		return 0;
3206 	}
3207 
3208 	ret = search_start;
3209 	bitmap_clear_bits(ctl, entry, ret, bytes, false);
3210 
3211 	return ret;
3212 }
3213 
3214 /*
3215  * given a cluster, try to allocate 'bytes' from it, returns 0
3216  * if it couldn't find anything suitably large, or a logical disk offset
3217  * if things worked out
3218  */
3219 u64 btrfs_alloc_from_cluster(struct btrfs_block_group *block_group,
3220 			     struct btrfs_free_cluster *cluster, u64 bytes,
3221 			     u64 min_start, u64 *max_extent_size)
3222 {
3223 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
3224 	struct btrfs_discard_ctl *discard_ctl =
3225 					&block_group->fs_info->discard_ctl;
3226 	struct btrfs_free_space *entry = NULL;
3227 	struct rb_node *node;
3228 	u64 ret = 0;
3229 
3230 	ASSERT(!btrfs_is_zoned(block_group->fs_info));
3231 
3232 	spin_lock(&cluster->lock);
3233 	if (bytes > cluster->max_size)
3234 		goto out;
3235 
3236 	if (cluster->block_group != block_group)
3237 		goto out;
3238 
3239 	node = rb_first(&cluster->root);
3240 	if (!node)
3241 		goto out;
3242 
3243 	entry = rb_entry(node, struct btrfs_free_space, offset_index);
3244 	while (1) {
3245 		if (entry->bytes < bytes)
3246 			*max_extent_size = max(get_max_extent_size(entry),
3247 					       *max_extent_size);
3248 
3249 		if (entry->bytes < bytes ||
3250 		    (!entry->bitmap && entry->offset < min_start)) {
3251 			node = rb_next(&entry->offset_index);
3252 			if (!node)
3253 				break;
3254 			entry = rb_entry(node, struct btrfs_free_space,
3255 					 offset_index);
3256 			continue;
3257 		}
3258 
3259 		if (entry->bitmap) {
3260 			ret = btrfs_alloc_from_bitmap(block_group,
3261 						      cluster, entry, bytes,
3262 						      cluster->window_start,
3263 						      max_extent_size);
3264 			if (ret == 0) {
3265 				node = rb_next(&entry->offset_index);
3266 				if (!node)
3267 					break;
3268 				entry = rb_entry(node, struct btrfs_free_space,
3269 						 offset_index);
3270 				continue;
3271 			}
3272 			cluster->window_start += bytes;
3273 		} else {
3274 			ret = entry->offset;
3275 
3276 			entry->offset += bytes;
3277 			entry->bytes -= bytes;
3278 		}
3279 
3280 		break;
3281 	}
3282 out:
3283 	spin_unlock(&cluster->lock);
3284 
3285 	if (!ret)
3286 		return 0;
3287 
3288 	spin_lock(&ctl->tree_lock);
3289 
3290 	if (!btrfs_free_space_trimmed(entry))
3291 		atomic64_add(bytes, &discard_ctl->discard_bytes_saved);
3292 
3293 	ctl->free_space -= bytes;
3294 	if (!entry->bitmap && !btrfs_free_space_trimmed(entry))
3295 		ctl->discardable_bytes[BTRFS_STAT_CURR] -= bytes;
3296 
3297 	spin_lock(&cluster->lock);
3298 	if (entry->bytes == 0) {
3299 		rb_erase(&entry->offset_index, &cluster->root);
3300 		ctl->free_extents--;
3301 		if (entry->bitmap) {
3302 			kmem_cache_free(btrfs_free_space_bitmap_cachep,
3303 					entry->bitmap);
3304 			ctl->total_bitmaps--;
3305 			recalculate_thresholds(ctl);
3306 		} else if (!btrfs_free_space_trimmed(entry)) {
3307 			ctl->discardable_extents[BTRFS_STAT_CURR]--;
3308 		}
3309 		kmem_cache_free(btrfs_free_space_cachep, entry);
3310 	}
3311 
3312 	spin_unlock(&cluster->lock);
3313 	spin_unlock(&ctl->tree_lock);
3314 
3315 	return ret;
3316 }
3317 
3318 static int btrfs_bitmap_cluster(struct btrfs_block_group *block_group,
3319 				struct btrfs_free_space *entry,
3320 				struct btrfs_free_cluster *cluster,
3321 				u64 offset, u64 bytes,
3322 				u64 cont1_bytes, u64 min_bytes)
3323 {
3324 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
3325 	const int unit = block_group->fs_info->sectorsize;
3326 	unsigned long next_zero;
3327 	unsigned long i;
3328 	unsigned long want_bits;
3329 	unsigned long min_bits;
3330 	unsigned long found_bits;
3331 	unsigned long max_bits = 0;
3332 	unsigned long start = 0;
3333 	unsigned long total_found = 0;
3334 	int ret;
3335 
3336 	lockdep_assert_held(&ctl->tree_lock);
3337 
3338 	i = offset_to_bit(entry->offset, unit,
3339 			  max_t(u64, offset, entry->offset));
3340 	want_bits = bytes_to_bits(bytes, unit);
3341 	min_bits = bytes_to_bits(min_bytes, unit);
3342 
3343 	/*
3344 	 * Don't bother looking for a cluster in this bitmap if it's heavily
3345 	 * fragmented.
3346 	 */
3347 	if (entry->max_extent_size &&
3348 	    entry->max_extent_size < cont1_bytes)
3349 		return -ENOSPC;
3350 again:
3351 	found_bits = 0;
3352 	for_each_set_bit_from(i, entry->bitmap, BITS_PER_BITMAP) {
3353 		next_zero = find_next_zero_bit(entry->bitmap,
3354 					       BITS_PER_BITMAP, i);
3355 		if (next_zero - i >= min_bits) {
3356 			found_bits = next_zero - i;
3357 			if (found_bits > max_bits)
3358 				max_bits = found_bits;
3359 			break;
3360 		}
3361 		if (next_zero - i > max_bits)
3362 			max_bits = next_zero - i;
3363 		i = next_zero;
3364 	}
3365 
3366 	if (!found_bits) {
3367 		entry->max_extent_size = (u64)max_bits * unit;
3368 		return -ENOSPC;
3369 	}
3370 
3371 	if (!total_found) {
3372 		start = i;
3373 		cluster->max_size = 0;
3374 	}
3375 
3376 	total_found += found_bits;
3377 
3378 	if (cluster->max_size < found_bits * unit)
3379 		cluster->max_size = found_bits * unit;
3380 
3381 	if (total_found < want_bits || cluster->max_size < cont1_bytes) {
3382 		i = next_zero + 1;
3383 		goto again;
3384 	}
3385 
3386 	cluster->window_start = start * unit + entry->offset;
3387 	rb_erase(&entry->offset_index, &ctl->free_space_offset);
3388 	rb_erase_cached(&entry->bytes_index, &ctl->free_space_bytes);
3389 
3390 	/*
3391 	 * We need to know if we're currently on the normal space index when we
3392 	 * manipulate the bitmap so that we know we need to remove and re-insert
3393 	 * it into the space_index tree.  Clear the bytes_index node here so the
3394 	 * bitmap manipulation helpers know not to mess with the space_index
3395 	 * until this bitmap entry is added back into the normal cache.
3396 	 */
3397 	RB_CLEAR_NODE(&entry->bytes_index);
3398 
3399 	ret = tree_insert_offset(ctl, cluster, entry);
3400 	ASSERT(!ret); /* -EEXIST; Logic error */
3401 
3402 	trace_btrfs_setup_cluster(block_group, cluster, total_found * unit, 1);
3403 	return 0;
3404 }
3405 
3406 /*
3407  * This searches the block group for just extents to fill the cluster with.
3408  * Try to find a cluster with at least bytes total bytes, at least one
3409  * extent of cont1_bytes, and other clusters of at least min_bytes.
3410  */
3411 static noinline int
3412 setup_cluster_no_bitmap(struct btrfs_block_group *block_group,
3413 			struct btrfs_free_cluster *cluster,
3414 			struct list_head *bitmaps, u64 offset, u64 bytes,
3415 			u64 cont1_bytes, u64 min_bytes)
3416 {
3417 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
3418 	struct btrfs_free_space *first = NULL;
3419 	struct btrfs_free_space *entry = NULL;
3420 	struct btrfs_free_space *last;
3421 	struct rb_node *node;
3422 	u64 window_free;
3423 	u64 max_extent;
3424 	u64 total_size = 0;
3425 
3426 	lockdep_assert_held(&ctl->tree_lock);
3427 
3428 	entry = tree_search_offset(ctl, offset, 0, 1);
3429 	if (!entry)
3430 		return -ENOSPC;
3431 
3432 	/*
3433 	 * We don't want bitmaps, so just move along until we find a normal
3434 	 * extent entry.
3435 	 */
3436 	while (entry->bitmap || entry->bytes < min_bytes) {
3437 		if (entry->bitmap && list_empty(&entry->list))
3438 			list_add_tail(&entry->list, bitmaps);
3439 		node = rb_next(&entry->offset_index);
3440 		if (!node)
3441 			return -ENOSPC;
3442 		entry = rb_entry(node, struct btrfs_free_space, offset_index);
3443 	}
3444 
3445 	window_free = entry->bytes;
3446 	max_extent = entry->bytes;
3447 	first = entry;
3448 	last = entry;
3449 
3450 	for (node = rb_next(&entry->offset_index); node;
3451 	     node = rb_next(&entry->offset_index)) {
3452 		entry = rb_entry(node, struct btrfs_free_space, offset_index);
3453 
3454 		if (entry->bitmap) {
3455 			if (list_empty(&entry->list))
3456 				list_add_tail(&entry->list, bitmaps);
3457 			continue;
3458 		}
3459 
3460 		if (entry->bytes < min_bytes)
3461 			continue;
3462 
3463 		last = entry;
3464 		window_free += entry->bytes;
3465 		if (entry->bytes > max_extent)
3466 			max_extent = entry->bytes;
3467 	}
3468 
3469 	if (window_free < bytes || max_extent < cont1_bytes)
3470 		return -ENOSPC;
3471 
3472 	cluster->window_start = first->offset;
3473 
3474 	node = &first->offset_index;
3475 
3476 	/*
3477 	 * now we've found our entries, pull them out of the free space
3478 	 * cache and put them into the cluster rbtree
3479 	 */
3480 	do {
3481 		int ret;
3482 
3483 		entry = rb_entry(node, struct btrfs_free_space, offset_index);
3484 		node = rb_next(&entry->offset_index);
3485 		if (entry->bitmap || entry->bytes < min_bytes)
3486 			continue;
3487 
3488 		rb_erase(&entry->offset_index, &ctl->free_space_offset);
3489 		rb_erase_cached(&entry->bytes_index, &ctl->free_space_bytes);
3490 		ret = tree_insert_offset(ctl, cluster, entry);
3491 		total_size += entry->bytes;
3492 		ASSERT(!ret); /* -EEXIST; Logic error */
3493 	} while (node && entry != last);
3494 
3495 	cluster->max_size = max_extent;
3496 	trace_btrfs_setup_cluster(block_group, cluster, total_size, 0);
3497 	return 0;
3498 }
3499 
3500 /*
3501  * This specifically looks for bitmaps that may work in the cluster, we assume
3502  * that we have already failed to find extents that will work.
3503  */
3504 static noinline int
3505 setup_cluster_bitmap(struct btrfs_block_group *block_group,
3506 		     struct btrfs_free_cluster *cluster,
3507 		     struct list_head *bitmaps, u64 offset, u64 bytes,
3508 		     u64 cont1_bytes, u64 min_bytes)
3509 {
3510 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
3511 	struct btrfs_free_space *entry = NULL;
3512 	int ret = -ENOSPC;
3513 	u64 bitmap_offset = offset_to_bitmap(ctl, offset);
3514 
3515 	if (ctl->total_bitmaps == 0)
3516 		return -ENOSPC;
3517 
3518 	/*
3519 	 * The bitmap that covers offset won't be in the list unless offset
3520 	 * is just its start offset.
3521 	 */
3522 	if (!list_empty(bitmaps))
3523 		entry = list_first_entry(bitmaps, struct btrfs_free_space, list);
3524 
3525 	if (!entry || entry->offset != bitmap_offset) {
3526 		entry = tree_search_offset(ctl, bitmap_offset, 1, 0);
3527 		if (entry && list_empty(&entry->list))
3528 			list_add(&entry->list, bitmaps);
3529 	}
3530 
3531 	list_for_each_entry(entry, bitmaps, list) {
3532 		if (entry->bytes < bytes)
3533 			continue;
3534 		ret = btrfs_bitmap_cluster(block_group, entry, cluster, offset,
3535 					   bytes, cont1_bytes, min_bytes);
3536 		if (!ret)
3537 			return 0;
3538 	}
3539 
3540 	/*
3541 	 * The bitmaps list has all the bitmaps that record free space
3542 	 * starting after offset, so no more search is required.
3543 	 */
3544 	return -ENOSPC;
3545 }
3546 
3547 /*
3548  * here we try to find a cluster of blocks in a block group.  The goal
3549  * is to find at least bytes+empty_size.
3550  * We might not find them all in one contiguous area.
3551  *
3552  * returns zero and sets up cluster if things worked out, otherwise
3553  * it returns -enospc
3554  */
3555 int btrfs_find_space_cluster(struct btrfs_block_group *block_group,
3556 			     struct btrfs_free_cluster *cluster,
3557 			     u64 offset, u64 bytes, u64 empty_size)
3558 {
3559 	struct btrfs_fs_info *fs_info = block_group->fs_info;
3560 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
3561 	struct btrfs_free_space *entry, *tmp;
3562 	LIST_HEAD(bitmaps);
3563 	u64 min_bytes;
3564 	u64 cont1_bytes;
3565 	int ret;
3566 
3567 	/*
3568 	 * Choose the minimum extent size we'll require for this
3569 	 * cluster.  For SSD_SPREAD, don't allow any fragmentation.
3570 	 * For metadata, allow allocates with smaller extents.  For
3571 	 * data, keep it dense.
3572 	 */
3573 	if (btrfs_test_opt(fs_info, SSD_SPREAD)) {
3574 		cont1_bytes = bytes + empty_size;
3575 		min_bytes = cont1_bytes;
3576 	} else if (block_group->flags & BTRFS_BLOCK_GROUP_METADATA) {
3577 		cont1_bytes = bytes;
3578 		min_bytes = fs_info->sectorsize;
3579 	} else {
3580 		cont1_bytes = max(bytes, (bytes + empty_size) >> 2);
3581 		min_bytes = fs_info->sectorsize;
3582 	}
3583 
3584 	spin_lock(&ctl->tree_lock);
3585 
3586 	/*
3587 	 * If we know we don't have enough space to make a cluster don't even
3588 	 * bother doing all the work to try and find one.
3589 	 */
3590 	if (ctl->free_space < bytes) {
3591 		spin_unlock(&ctl->tree_lock);
3592 		return -ENOSPC;
3593 	}
3594 
3595 	spin_lock(&cluster->lock);
3596 
3597 	/* someone already found a cluster, hooray */
3598 	if (cluster->block_group) {
3599 		ret = 0;
3600 		goto out;
3601 	}
3602 
3603 	trace_btrfs_find_cluster(block_group, offset, bytes, empty_size,
3604 				 min_bytes);
3605 
3606 	ret = setup_cluster_no_bitmap(block_group, cluster, &bitmaps, offset,
3607 				      bytes + empty_size,
3608 				      cont1_bytes, min_bytes);
3609 	if (ret)
3610 		ret = setup_cluster_bitmap(block_group, cluster, &bitmaps,
3611 					   offset, bytes + empty_size,
3612 					   cont1_bytes, min_bytes);
3613 
3614 	/* Clear our temporary list */
3615 	list_for_each_entry_safe(entry, tmp, &bitmaps, list)
3616 		list_del_init(&entry->list);
3617 
3618 	if (!ret) {
3619 		btrfs_get_block_group(block_group);
3620 		list_add_tail(&cluster->block_group_list,
3621 			      &block_group->cluster_list);
3622 		cluster->block_group = block_group;
3623 	} else {
3624 		trace_btrfs_failed_cluster_setup(block_group);
3625 	}
3626 out:
3627 	spin_unlock(&cluster->lock);
3628 	spin_unlock(&ctl->tree_lock);
3629 
3630 	return ret;
3631 }
3632 
3633 /*
3634  * simple code to zero out a cluster
3635  */
3636 void btrfs_init_free_cluster(struct btrfs_free_cluster *cluster)
3637 {
3638 	spin_lock_init(&cluster->lock);
3639 	spin_lock_init(&cluster->refill_lock);
3640 	cluster->root = RB_ROOT;
3641 	cluster->max_size = 0;
3642 	cluster->fragmented = false;
3643 	INIT_LIST_HEAD(&cluster->block_group_list);
3644 	cluster->block_group = NULL;
3645 }
3646 
3647 static int do_trimming(struct btrfs_block_group *block_group,
3648 		       u64 *total_trimmed, u64 start, u64 bytes,
3649 		       u64 reserved_start, u64 reserved_bytes,
3650 		       enum btrfs_trim_state reserved_trim_state,
3651 		       struct btrfs_trim_range *trim_entry)
3652 {
3653 	struct btrfs_space_info *space_info = block_group->space_info;
3654 	struct btrfs_fs_info *fs_info = block_group->fs_info;
3655 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
3656 	int ret;
3657 	bool bg_ro;
3658 	const u64 end = start + bytes;
3659 	const u64 reserved_end = reserved_start + reserved_bytes;
3660 	enum btrfs_trim_state trim_state = BTRFS_TRIM_STATE_UNTRIMMED;
3661 	u64 trimmed = 0;
3662 
3663 	spin_lock(&space_info->lock);
3664 	spin_lock(&block_group->lock);
3665 	bg_ro = block_group->ro;
3666 	if (!bg_ro) {
3667 		block_group->reserved += reserved_bytes;
3668 		spin_unlock(&block_group->lock);
3669 		space_info->bytes_reserved += reserved_bytes;
3670 	} else {
3671 		spin_unlock(&block_group->lock);
3672 	}
3673 	spin_unlock(&space_info->lock);
3674 
3675 	ret = btrfs_discard_extent(fs_info, start, bytes, &trimmed, false);
3676 	if (!ret) {
3677 		*total_trimmed += trimmed;
3678 		trim_state = BTRFS_TRIM_STATE_TRIMMED;
3679 	}
3680 
3681 	mutex_lock(&ctl->cache_writeout_mutex);
3682 	if (reserved_start < start)
3683 		__btrfs_add_free_space(block_group, reserved_start,
3684 				       start - reserved_start,
3685 				       reserved_trim_state);
3686 	if (end < reserved_end)
3687 		__btrfs_add_free_space(block_group, end, reserved_end - end,
3688 				       reserved_trim_state);
3689 	__btrfs_add_free_space(block_group, start, bytes, trim_state);
3690 	list_del(&trim_entry->list);
3691 	mutex_unlock(&ctl->cache_writeout_mutex);
3692 
3693 	if (!bg_ro) {
3694 		spin_lock(&space_info->lock);
3695 		spin_lock(&block_group->lock);
3696 		bg_ro = block_group->ro;
3697 		block_group->reserved -= reserved_bytes;
3698 		spin_unlock(&block_group->lock);
3699 
3700 		space_info->bytes_reserved -= reserved_bytes;
3701 		if (bg_ro)
3702 			space_info->bytes_readonly += reserved_bytes;
3703 		spin_unlock(&space_info->lock);
3704 	}
3705 
3706 	return ret;
3707 }
3708 
3709 /*
3710  * If @async is set, then we will trim 1 region and return.
3711  */
3712 static int trim_no_bitmap(struct btrfs_block_group *block_group,
3713 			  u64 *total_trimmed, u64 start, u64 end, u64 minlen,
3714 			  bool async)
3715 {
3716 	struct btrfs_discard_ctl *discard_ctl =
3717 					&block_group->fs_info->discard_ctl;
3718 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
3719 	struct btrfs_free_space *entry;
3720 	struct rb_node *node;
3721 	int ret = 0;
3722 	u64 extent_start;
3723 	u64 extent_bytes;
3724 	enum btrfs_trim_state extent_trim_state;
3725 	u64 bytes;
3726 	const u64 max_discard_size = READ_ONCE(discard_ctl->max_discard_size);
3727 
3728 	while (start < end) {
3729 		struct btrfs_trim_range trim_entry;
3730 
3731 		mutex_lock(&ctl->cache_writeout_mutex);
3732 		spin_lock(&ctl->tree_lock);
3733 
3734 		if (ctl->free_space < minlen)
3735 			goto out_unlock;
3736 
3737 		entry = tree_search_offset(ctl, start, 0, 1);
3738 		if (!entry)
3739 			goto out_unlock;
3740 
3741 		/* Skip bitmaps and if async, already trimmed entries */
3742 		while (entry->bitmap ||
3743 		       (async && btrfs_free_space_trimmed(entry))) {
3744 			node = rb_next(&entry->offset_index);
3745 			if (!node)
3746 				goto out_unlock;
3747 			entry = rb_entry(node, struct btrfs_free_space,
3748 					 offset_index);
3749 		}
3750 
3751 		if (entry->offset >= end)
3752 			goto out_unlock;
3753 
3754 		extent_start = entry->offset;
3755 		extent_bytes = entry->bytes;
3756 		extent_trim_state = entry->trim_state;
3757 		if (async) {
3758 			start = entry->offset;
3759 			bytes = entry->bytes;
3760 			if (bytes < minlen) {
3761 				spin_unlock(&ctl->tree_lock);
3762 				mutex_unlock(&ctl->cache_writeout_mutex);
3763 				goto next;
3764 			}
3765 			unlink_free_space(ctl, entry, true);
3766 			/*
3767 			 * Let bytes = BTRFS_MAX_DISCARD_SIZE + X.
3768 			 * If X < BTRFS_ASYNC_DISCARD_MIN_FILTER, we won't trim
3769 			 * X when we come back around.  So trim it now.
3770 			 */
3771 			if (max_discard_size &&
3772 			    bytes >= (max_discard_size +
3773 				      BTRFS_ASYNC_DISCARD_MIN_FILTER)) {
3774 				bytes = max_discard_size;
3775 				extent_bytes = max_discard_size;
3776 				entry->offset += max_discard_size;
3777 				entry->bytes -= max_discard_size;
3778 				link_free_space(ctl, entry);
3779 			} else {
3780 				kmem_cache_free(btrfs_free_space_cachep, entry);
3781 			}
3782 		} else {
3783 			start = max(start, extent_start);
3784 			bytes = min(extent_start + extent_bytes, end) - start;
3785 			if (bytes < minlen) {
3786 				spin_unlock(&ctl->tree_lock);
3787 				mutex_unlock(&ctl->cache_writeout_mutex);
3788 				goto next;
3789 			}
3790 
3791 			unlink_free_space(ctl, entry, true);
3792 			kmem_cache_free(btrfs_free_space_cachep, entry);
3793 		}
3794 
3795 		spin_unlock(&ctl->tree_lock);
3796 		trim_entry.start = extent_start;
3797 		trim_entry.bytes = extent_bytes;
3798 		list_add_tail(&trim_entry.list, &ctl->trimming_ranges);
3799 		mutex_unlock(&ctl->cache_writeout_mutex);
3800 
3801 		ret = do_trimming(block_group, total_trimmed, start, bytes,
3802 				  extent_start, extent_bytes, extent_trim_state,
3803 				  &trim_entry);
3804 		if (ret) {
3805 			block_group->discard_cursor = start + bytes;
3806 			break;
3807 		}
3808 next:
3809 		start += bytes;
3810 		block_group->discard_cursor = start;
3811 		if (async && *total_trimmed)
3812 			break;
3813 
3814 		if (btrfs_trim_interrupted()) {
3815 			ret = -ERESTARTSYS;
3816 			break;
3817 		}
3818 
3819 		cond_resched();
3820 	}
3821 
3822 	return ret;
3823 
3824 out_unlock:
3825 	block_group->discard_cursor = btrfs_block_group_end(block_group);
3826 	spin_unlock(&ctl->tree_lock);
3827 	mutex_unlock(&ctl->cache_writeout_mutex);
3828 
3829 	return ret;
3830 }
3831 
3832 void btrfs_trim_fully_remapped_block_group(struct btrfs_block_group *bg)
3833 {
3834 	struct btrfs_fs_info *fs_info = bg->fs_info;
3835 	struct btrfs_discard_ctl *discard_ctl = &fs_info->discard_ctl;
3836 	int ret = 0;
3837 	u64 bytes, trimmed;
3838 	const u64 max_discard_size = READ_ONCE(discard_ctl->max_discard_size);
3839 	u64 end = btrfs_block_group_end(bg);
3840 
3841 	if (!test_bit(BLOCK_GROUP_FLAG_STRIPE_REMOVAL_PENDING, &bg->runtime_flags)) {
3842 		bg->discard_cursor = end;
3843 
3844 		if (bg->used == 0) {
3845 			spin_lock(&fs_info->unused_bgs_lock);
3846 			if (!list_empty(&bg->bg_list)) {
3847 				list_del_init(&bg->bg_list);
3848 				btrfs_put_block_group(bg);
3849 			}
3850 			spin_unlock(&fs_info->unused_bgs_lock);
3851 
3852 			btrfs_mark_bg_unused(bg);
3853 		}
3854 
3855 		return;
3856 	}
3857 
3858 	bytes = end - bg->discard_cursor;
3859 
3860 	if (max_discard_size &&
3861 	    bytes >= (max_discard_size + BTRFS_ASYNC_DISCARD_MIN_FILTER))
3862 		bytes = max_discard_size;
3863 
3864 	ret = btrfs_discard_extent(fs_info, bg->discard_cursor, bytes, &trimmed, false);
3865 	if (ret)
3866 		return;
3867 
3868 	bg->discard_cursor += trimmed;
3869 
3870 	if (bg->discard_cursor < end)
3871 		return;
3872 
3873 	btrfs_complete_bg_remapping(bg);
3874 }
3875 
3876 /*
3877  * If we break out of trimming a bitmap prematurely, we should reset the
3878  * trimming bit.  In a rather contrived case, it's possible to race here so
3879  * reset the state to BTRFS_TRIM_STATE_UNTRIMMED.
3880  *
3881  * start = start of bitmap
3882  * end = near end of bitmap
3883  *
3884  * Thread 1:			Thread 2:
3885  * trim_bitmaps(start)
3886  *				trim_bitmaps(end)
3887  *				end_trimming_bitmap()
3888  * reset_trimming_bitmap()
3889  */
3890 static void reset_trimming_bitmap(struct btrfs_free_space_ctl *ctl, u64 offset)
3891 {
3892 	struct btrfs_free_space *entry;
3893 
3894 	spin_lock(&ctl->tree_lock);
3895 	entry = tree_search_offset(ctl, offset, 1, 0);
3896 	if (entry) {
3897 		if (btrfs_free_space_trimmed(entry)) {
3898 			ctl->discardable_extents[BTRFS_STAT_CURR] +=
3899 				entry->bitmap_extents;
3900 			ctl->discardable_bytes[BTRFS_STAT_CURR] += entry->bytes;
3901 		}
3902 		entry->trim_state = BTRFS_TRIM_STATE_UNTRIMMED;
3903 	}
3904 
3905 	spin_unlock(&ctl->tree_lock);
3906 }
3907 
3908 static void end_trimming_bitmap(struct btrfs_free_space_ctl *ctl,
3909 				struct btrfs_free_space *entry)
3910 {
3911 	if (btrfs_free_space_trimming_bitmap(entry)) {
3912 		entry->trim_state = BTRFS_TRIM_STATE_TRIMMED;
3913 		ctl->discardable_extents[BTRFS_STAT_CURR] -=
3914 			entry->bitmap_extents;
3915 		ctl->discardable_bytes[BTRFS_STAT_CURR] -= entry->bytes;
3916 	}
3917 }
3918 
3919 /*
3920  * If @async is set, then we will trim 1 region and return.
3921  */
3922 static int trim_bitmaps(struct btrfs_block_group *block_group,
3923 			u64 *total_trimmed, u64 start, u64 end, u64 minlen,
3924 			u64 maxlen, bool async)
3925 {
3926 	struct btrfs_discard_ctl *discard_ctl =
3927 					&block_group->fs_info->discard_ctl;
3928 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
3929 	struct btrfs_free_space *entry;
3930 	int ret = 0;
3931 	int ret2;
3932 	u64 bytes;
3933 	u64 offset = offset_to_bitmap(ctl, start);
3934 	const u64 max_discard_size = READ_ONCE(discard_ctl->max_discard_size);
3935 
3936 	while (offset < end) {
3937 		bool next_bitmap = false;
3938 		struct btrfs_trim_range trim_entry;
3939 
3940 		mutex_lock(&ctl->cache_writeout_mutex);
3941 		spin_lock(&ctl->tree_lock);
3942 
3943 		if (ctl->free_space < minlen) {
3944 			block_group->discard_cursor =
3945 				btrfs_block_group_end(block_group);
3946 			spin_unlock(&ctl->tree_lock);
3947 			mutex_unlock(&ctl->cache_writeout_mutex);
3948 			break;
3949 		}
3950 
3951 		entry = tree_search_offset(ctl, offset, 1, 0);
3952 		/*
3953 		 * Bitmaps are marked trimmed lossily now to prevent constant
3954 		 * discarding of the same bitmap (the reason why we are bound
3955 		 * by the filters).  So, retrim the block group bitmaps when we
3956 		 * are preparing to punt to the unused_bgs list.  This uses
3957 		 * @minlen to determine if we are in BTRFS_DISCARD_INDEX_UNUSED
3958 		 * which is the only discard index which sets minlen to 0.
3959 		 */
3960 		if (!entry || (async && minlen && start == offset &&
3961 			       btrfs_free_space_trimmed(entry))) {
3962 			spin_unlock(&ctl->tree_lock);
3963 			mutex_unlock(&ctl->cache_writeout_mutex);
3964 			next_bitmap = true;
3965 			goto next;
3966 		}
3967 
3968 		/*
3969 		 * Async discard bitmap trimming begins at by setting the start
3970 		 * to be key.objectid and the offset_to_bitmap() aligns to the
3971 		 * start of the bitmap.  This lets us know we are fully
3972 		 * scanning the bitmap rather than only some portion of it.
3973 		 */
3974 		if (start == offset)
3975 			entry->trim_state = BTRFS_TRIM_STATE_TRIMMING;
3976 
3977 		bytes = minlen;
3978 		ret2 = search_bitmap(ctl, entry, &start, &bytes, false);
3979 		if (ret2 || start >= end) {
3980 			/*
3981 			 * We lossily consider a bitmap trimmed if we only skip
3982 			 * over regions <= BTRFS_ASYNC_DISCARD_MIN_FILTER.
3983 			 */
3984 			if (ret2 && minlen <= BTRFS_ASYNC_DISCARD_MIN_FILTER)
3985 				end_trimming_bitmap(ctl, entry);
3986 			else
3987 				entry->trim_state = BTRFS_TRIM_STATE_UNTRIMMED;
3988 			spin_unlock(&ctl->tree_lock);
3989 			mutex_unlock(&ctl->cache_writeout_mutex);
3990 			next_bitmap = true;
3991 			goto next;
3992 		}
3993 
3994 		/*
3995 		 * We already trimmed a region, but are using the locking above
3996 		 * to reset the trim_state.
3997 		 */
3998 		if (async && *total_trimmed) {
3999 			spin_unlock(&ctl->tree_lock);
4000 			mutex_unlock(&ctl->cache_writeout_mutex);
4001 			return ret;
4002 		}
4003 
4004 		bytes = min(bytes, end - start);
4005 		if (bytes < minlen || (async && maxlen && bytes > maxlen)) {
4006 			spin_unlock(&ctl->tree_lock);
4007 			mutex_unlock(&ctl->cache_writeout_mutex);
4008 			goto next;
4009 		}
4010 
4011 		/*
4012 		 * Let bytes = BTRFS_MAX_DISCARD_SIZE + X.
4013 		 * If X < @minlen, we won't trim X when we come back around.
4014 		 * So trim it now.  We differ here from trimming extents as we
4015 		 * don't keep individual state per bit.
4016 		 */
4017 		if (async &&
4018 		    max_discard_size &&
4019 		    bytes > (max_discard_size + minlen))
4020 			bytes = max_discard_size;
4021 
4022 		bitmap_clear_bits(ctl, entry, start, bytes, true);
4023 		if (entry->bytes == 0)
4024 			free_bitmap(ctl, entry);
4025 
4026 		spin_unlock(&ctl->tree_lock);
4027 		trim_entry.start = start;
4028 		trim_entry.bytes = bytes;
4029 		list_add_tail(&trim_entry.list, &ctl->trimming_ranges);
4030 		mutex_unlock(&ctl->cache_writeout_mutex);
4031 
4032 		ret = do_trimming(block_group, total_trimmed, start, bytes,
4033 				  start, bytes, 0, &trim_entry);
4034 		if (ret) {
4035 			reset_trimming_bitmap(ctl, offset);
4036 			block_group->discard_cursor =
4037 				btrfs_block_group_end(block_group);
4038 			break;
4039 		}
4040 next:
4041 		if (next_bitmap) {
4042 			const int unit = block_group->fs_info->sectorsize;
4043 
4044 			offset += BITS_PER_BITMAP * unit;
4045 			start = offset;
4046 		} else {
4047 			start += bytes;
4048 		}
4049 		block_group->discard_cursor = start;
4050 
4051 		if (btrfs_trim_interrupted()) {
4052 			if (start != offset)
4053 				reset_trimming_bitmap(ctl, offset);
4054 			ret = -ERESTARTSYS;
4055 			break;
4056 		}
4057 
4058 		cond_resched();
4059 	}
4060 
4061 	if (offset >= end)
4062 		block_group->discard_cursor = end;
4063 
4064 	return ret;
4065 }
4066 
4067 int btrfs_trim_block_group(struct btrfs_block_group *block_group,
4068 			   u64 *trimmed, u64 start, u64 end, u64 minlen)
4069 {
4070 	struct btrfs_free_space_ctl *ctl = block_group->free_space_ctl;
4071 	const int unit = block_group->fs_info->sectorsize;
4072 	int ret;
4073 	u64 rem = 0;
4074 
4075 	ASSERT(!btrfs_is_zoned(block_group->fs_info));
4076 
4077 	*trimmed = 0;
4078 
4079 	spin_lock(&block_group->lock);
4080 	if (test_bit(BLOCK_GROUP_FLAG_REMOVED, &block_group->runtime_flags)) {
4081 		spin_unlock(&block_group->lock);
4082 		return 0;
4083 	}
4084 	btrfs_freeze_block_group(block_group);
4085 	spin_unlock(&block_group->lock);
4086 
4087 	ret = trim_no_bitmap(block_group, trimmed, start, end, minlen, false);
4088 	if (ret)
4089 		goto out;
4090 
4091 	ret = trim_bitmaps(block_group, trimmed, start, end, minlen, 0, false);
4092 	div64_u64_rem(end, BITS_PER_BITMAP * unit, &rem);
4093 	/* If we ended in the middle of a bitmap, reset the trimming flag */
4094 	if (rem)
4095 		reset_trimming_bitmap(ctl, offset_to_bitmap(ctl, end));
4096 out:
4097 	btrfs_unfreeze_block_group(block_group);
4098 	return ret;
4099 }
4100 
4101 int btrfs_trim_block_group_extents(struct btrfs_block_group *block_group,
4102 				   u64 *trimmed, u64 start, u64 end, u64 minlen,
4103 				   bool async)
4104 {
4105 	int ret;
4106 
4107 	*trimmed = 0;
4108 
4109 	spin_lock(&block_group->lock);
4110 	if (test_bit(BLOCK_GROUP_FLAG_REMOVED, &block_group->runtime_flags)) {
4111 		spin_unlock(&block_group->lock);
4112 		return 0;
4113 	}
4114 	btrfs_freeze_block_group(block_group);
4115 	spin_unlock(&block_group->lock);
4116 
4117 	ret = trim_no_bitmap(block_group, trimmed, start, end, minlen, async);
4118 	btrfs_unfreeze_block_group(block_group);
4119 
4120 	return ret;
4121 }
4122 
4123 int btrfs_trim_block_group_bitmaps(struct btrfs_block_group *block_group,
4124 				   u64 *trimmed, u64 start, u64 end, u64 minlen,
4125 				   u64 maxlen, bool async)
4126 {
4127 	int ret;
4128 
4129 	*trimmed = 0;
4130 
4131 	spin_lock(&block_group->lock);
4132 	if (test_bit(BLOCK_GROUP_FLAG_REMOVED, &block_group->runtime_flags)) {
4133 		spin_unlock(&block_group->lock);
4134 		return 0;
4135 	}
4136 	btrfs_freeze_block_group(block_group);
4137 	spin_unlock(&block_group->lock);
4138 
4139 	ret = trim_bitmaps(block_group, trimmed, start, end, minlen, maxlen,
4140 			   async);
4141 
4142 	btrfs_unfreeze_block_group(block_group);
4143 
4144 	return ret;
4145 }
4146 
4147 bool btrfs_free_space_cache_v1_active(struct btrfs_fs_info *fs_info)
4148 {
4149 	return btrfs_super_cache_generation(fs_info->super_copy);
4150 }
4151 
4152 static int cleanup_free_space_cache_v1(struct btrfs_fs_info *fs_info,
4153 				       struct btrfs_trans_handle *trans)
4154 {
4155 	struct btrfs_block_group *block_group;
4156 	struct rb_node *node;
4157 
4158 	btrfs_info(fs_info, "cleaning free space cache v1");
4159 
4160 	node = rb_first_cached(&fs_info->block_group_cache_tree);
4161 	while (node) {
4162 		int ret;
4163 
4164 		block_group = rb_entry(node, struct btrfs_block_group, cache_node);
4165 		ret = btrfs_remove_free_space_inode(trans, NULL, block_group);
4166 		if (ret)
4167 			return ret;
4168 		node = rb_next(node);
4169 	}
4170 	return 0;
4171 }
4172 
4173 int btrfs_set_free_space_cache_v1_active(struct btrfs_fs_info *fs_info, bool active)
4174 {
4175 	struct btrfs_trans_handle *trans;
4176 	int ret;
4177 
4178 	/*
4179 	 * update_super_roots will appropriately set or unset
4180 	 * super_copy->cache_generation based on SPACE_CACHE and
4181 	 * BTRFS_FS_CLEANUP_SPACE_CACHE_V1. For this reason, we need a
4182 	 * transaction commit whether we are enabling space cache v1 and don't
4183 	 * have any other work to do, or are disabling it and removing free
4184 	 * space inodes.
4185 	 */
4186 	trans = btrfs_start_transaction(fs_info->tree_root, 0);
4187 	if (IS_ERR(trans))
4188 		return PTR_ERR(trans);
4189 
4190 	if (!active) {
4191 		set_bit(BTRFS_FS_CLEANUP_SPACE_CACHE_V1, &fs_info->flags);
4192 		ret = cleanup_free_space_cache_v1(fs_info, trans);
4193 		if (unlikely(ret)) {
4194 			btrfs_abort_transaction(trans, ret);
4195 			btrfs_end_transaction(trans);
4196 			goto out;
4197 		}
4198 	}
4199 
4200 	ret = btrfs_commit_transaction(trans);
4201 out:
4202 	clear_bit(BTRFS_FS_CLEANUP_SPACE_CACHE_V1, &fs_info->flags);
4203 
4204 	return ret;
4205 }
4206 
4207 int __init btrfs_free_space_init(void)
4208 {
4209 	btrfs_free_space_cachep = KMEM_CACHE(btrfs_free_space, 0);
4210 	if (!btrfs_free_space_cachep)
4211 		return -ENOMEM;
4212 
4213 	btrfs_free_space_bitmap_cachep = kmem_cache_create("btrfs_free_space_bitmap",
4214 							PAGE_SIZE, PAGE_SIZE,
4215 							0, NULL);
4216 	if (!btrfs_free_space_bitmap_cachep) {
4217 		kmem_cache_destroy(btrfs_free_space_cachep);
4218 		return -ENOMEM;
4219 	}
4220 
4221 	return 0;
4222 }
4223 
4224 void __cold btrfs_free_space_exit(void)
4225 {
4226 	kmem_cache_destroy(btrfs_free_space_cachep);
4227 	kmem_cache_destroy(btrfs_free_space_bitmap_cachep);
4228 }
4229 
4230 #ifdef CONFIG_BTRFS_FS_RUN_SANITY_TESTS
4231 /*
4232  * Use this if you need to make a bitmap or extent entry specifically, it
4233  * doesn't do any of the merging that add_free_space does, this acts a lot like
4234  * how the free space cache loading stuff works, so you can get really weird
4235  * configurations.
4236  */
4237 int test_add_free_space_entry(struct btrfs_block_group *cache,
4238 			      u64 offset, u64 bytes, bool bitmap)
4239 {
4240 	struct btrfs_free_space_ctl *ctl = cache->free_space_ctl;
4241 	struct btrfs_free_space *info = NULL, *bitmap_info;
4242 	void *map = NULL;
4243 	enum btrfs_trim_state trim_state = BTRFS_TRIM_STATE_TRIMMED;
4244 	u64 bytes_added;
4245 	int ret;
4246 
4247 again:
4248 	if (!info) {
4249 		info = kmem_cache_zalloc(btrfs_free_space_cachep, GFP_NOFS);
4250 		if (!info)
4251 			return -ENOMEM;
4252 	}
4253 
4254 	if (!bitmap) {
4255 		spin_lock(&ctl->tree_lock);
4256 		info->offset = offset;
4257 		info->bytes = bytes;
4258 		info->max_extent_size = 0;
4259 		ret = link_free_space(ctl, info);
4260 		spin_unlock(&ctl->tree_lock);
4261 		if (ret)
4262 			kmem_cache_free(btrfs_free_space_cachep, info);
4263 		return ret;
4264 	}
4265 
4266 	if (!map) {
4267 		map = kmem_cache_zalloc(btrfs_free_space_bitmap_cachep, GFP_NOFS);
4268 		if (!map) {
4269 			kmem_cache_free(btrfs_free_space_cachep, info);
4270 			return -ENOMEM;
4271 		}
4272 	}
4273 
4274 	spin_lock(&ctl->tree_lock);
4275 	bitmap_info = tree_search_offset(ctl, offset_to_bitmap(ctl, offset),
4276 					 1, 0);
4277 	if (!bitmap_info) {
4278 		info->bitmap = map;
4279 		map = NULL;
4280 		add_new_bitmap(ctl, info, offset);
4281 		bitmap_info = info;
4282 		info = NULL;
4283 	}
4284 
4285 	bytes_added = add_bytes_to_bitmap(ctl, bitmap_info, offset, bytes,
4286 					  trim_state);
4287 
4288 	bytes -= bytes_added;
4289 	offset += bytes_added;
4290 	spin_unlock(&ctl->tree_lock);
4291 
4292 	if (bytes)
4293 		goto again;
4294 
4295 	if (info)
4296 		kmem_cache_free(btrfs_free_space_cachep, info);
4297 	if (map)
4298 		kmem_cache_free(btrfs_free_space_bitmap_cachep, map);
4299 	return 0;
4300 }
4301 
4302 /*
4303  * Checks to see if the given range is in the free space cache.  This is really
4304  * just used to check the absence of space, so if there is free space in the
4305  * range at all we will return 1.
4306  */
4307 int test_check_exists(struct btrfs_block_group *cache,
4308 		      u64 offset, u64 bytes)
4309 {
4310 	struct btrfs_free_space_ctl *ctl = cache->free_space_ctl;
4311 	const int unit = cache->fs_info->sectorsize;
4312 	struct btrfs_free_space *info;
4313 	int ret = 0;
4314 
4315 	spin_lock(&ctl->tree_lock);
4316 	info = tree_search_offset(ctl, offset, 0, 0);
4317 	if (!info) {
4318 		info = tree_search_offset(ctl, offset_to_bitmap(ctl, offset),
4319 					  1, 0);
4320 		if (!info)
4321 			goto out;
4322 	}
4323 
4324 have_info:
4325 	if (info->bitmap) {
4326 		u64 bit_off, bit_bytes;
4327 		struct rb_node *n;
4328 		struct btrfs_free_space *tmp;
4329 
4330 		bit_off = offset;
4331 		bit_bytes = unit;
4332 		ret = search_bitmap(ctl, info, &bit_off, &bit_bytes, false);
4333 		if (!ret) {
4334 			if (bit_off == offset) {
4335 				ret = 1;
4336 				goto out;
4337 			} else if (bit_off > offset &&
4338 				   offset + bytes > bit_off) {
4339 				ret = 1;
4340 				goto out;
4341 			}
4342 		}
4343 
4344 		n = rb_prev(&info->offset_index);
4345 		while (n) {
4346 			tmp = rb_entry(n, struct btrfs_free_space,
4347 				       offset_index);
4348 			if (tmp->offset + tmp->bytes < offset)
4349 				break;
4350 			if (offset + bytes < tmp->offset) {
4351 				n = rb_prev(&tmp->offset_index);
4352 				continue;
4353 			}
4354 			info = tmp;
4355 			goto have_info;
4356 		}
4357 
4358 		n = rb_next(&info->offset_index);
4359 		while (n) {
4360 			tmp = rb_entry(n, struct btrfs_free_space,
4361 				       offset_index);
4362 			if (offset + bytes < tmp->offset)
4363 				break;
4364 			if (tmp->offset + tmp->bytes < offset) {
4365 				n = rb_next(&tmp->offset_index);
4366 				continue;
4367 			}
4368 			info = tmp;
4369 			goto have_info;
4370 		}
4371 
4372 		ret = 0;
4373 		goto out;
4374 	}
4375 
4376 	if (info->offset == offset) {
4377 		ret = 1;
4378 		goto out;
4379 	}
4380 
4381 	if (offset > info->offset && offset < info->offset + info->bytes)
4382 		ret = 1;
4383 out:
4384 	spin_unlock(&ctl->tree_lock);
4385 	return ret;
4386 }
4387 #endif /* CONFIG_BTRFS_FS_RUN_SANITY_TESTS */
4388