1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Copyright (C) 2007,2008 Oracle. All rights reserved.
4 */
5
6 #include <linux/sched.h>
7 #include <linux/slab.h>
8 #include <linux/rbtree.h>
9 #include <linux/mm.h>
10 #include <linux/error-injection.h>
11 #include "messages.h"
12 #include "ctree.h"
13 #include "disk-io.h"
14 #include "transaction.h"
15 #include "print-tree.h"
16 #include "locking.h"
17 #include "volumes.h"
18 #include "qgroup.h"
19 #include "tree-mod-log.h"
20 #include "tree-checker.h"
21 #include "fs.h"
22 #include "accessors.h"
23 #include "extent-tree.h"
24 #include "relocation.h"
25 #include "file-item.h"
26
27 static struct kmem_cache *btrfs_path_cachep;
28
29 static int split_node(struct btrfs_trans_handle *trans, struct btrfs_root
30 *root, struct btrfs_path *path, int level);
31 static int split_leaf(struct btrfs_trans_handle *trans, struct btrfs_root *root,
32 const struct btrfs_key *ins_key, struct btrfs_path *path,
33 int data_size, bool extend);
34 static int push_node_left(struct btrfs_trans_handle *trans,
35 struct extent_buffer *dst,
36 struct extent_buffer *src, bool empty);
37 static int balance_node_right(struct btrfs_trans_handle *trans,
38 struct extent_buffer *dst_buf,
39 struct extent_buffer *src_buf);
40 /*
41 * The leaf data grows from end-to-front in the node. this returns the address
42 * of the start of the last item, which is the stop of the leaf data stack.
43 */
leaf_data_end(const struct extent_buffer * leaf)44 static unsigned int leaf_data_end(const struct extent_buffer *leaf)
45 {
46 u32 nr = btrfs_header_nritems(leaf);
47
48 if (nr == 0)
49 return BTRFS_LEAF_DATA_SIZE(leaf->fs_info);
50 return btrfs_item_offset(leaf, nr - 1);
51 }
52
53 /*
54 * Move data in a @leaf (using memmove, safe for overlapping ranges).
55 *
56 * @leaf: leaf that we're doing a memmove on
57 * @dst_offset: item data offset we're moving to
58 * @src_offset: item data offset were' moving from
59 * @len: length of the data we're moving
60 *
61 * Wrapper around memmove_extent_buffer() that takes into account the header on
62 * the leaf. The btrfs_item offset's start directly after the header, so we
63 * have to adjust any offsets to account for the header in the leaf. This
64 * handles that math to simplify the callers.
65 */
memmove_leaf_data(const struct extent_buffer * leaf,unsigned long dst_offset,unsigned long src_offset,unsigned long len)66 static inline void memmove_leaf_data(const struct extent_buffer *leaf,
67 unsigned long dst_offset,
68 unsigned long src_offset,
69 unsigned long len)
70 {
71 memmove_extent_buffer(leaf, btrfs_item_nr_offset(leaf, 0) + dst_offset,
72 btrfs_item_nr_offset(leaf, 0) + src_offset, len);
73 }
74
75 /*
76 * Copy item data from @src into @dst at the given @offset.
77 *
78 * @dst: destination leaf that we're copying into
79 * @src: source leaf that we're copying from
80 * @dst_offset: item data offset we're copying to
81 * @src_offset: item data offset were' copying from
82 * @len: length of the data we're copying
83 *
84 * Wrapper around copy_extent_buffer() that takes into account the header on
85 * the leaf. The btrfs_item offset's start directly after the header, so we
86 * have to adjust any offsets to account for the header in the leaf. This
87 * handles that math to simplify the callers.
88 */
copy_leaf_data(const struct extent_buffer * dst,const struct extent_buffer * src,unsigned long dst_offset,unsigned long src_offset,unsigned long len)89 static inline void copy_leaf_data(const struct extent_buffer *dst,
90 const struct extent_buffer *src,
91 unsigned long dst_offset,
92 unsigned long src_offset, unsigned long len)
93 {
94 copy_extent_buffer(dst, src, btrfs_item_nr_offset(dst, 0) + dst_offset,
95 btrfs_item_nr_offset(src, 0) + src_offset, len);
96 }
97
98 /*
99 * Move items in a @leaf (using memmove).
100 *
101 * @dst: destination leaf for the items
102 * @dst_item: the item nr we're copying into
103 * @src_item: the item nr we're copying from
104 * @nr_items: the number of items to copy
105 *
106 * Wrapper around memmove_extent_buffer() that does the math to get the
107 * appropriate offsets into the leaf from the item numbers.
108 */
memmove_leaf_items(const struct extent_buffer * leaf,int dst_item,int src_item,int nr_items)109 static inline void memmove_leaf_items(const struct extent_buffer *leaf,
110 int dst_item, int src_item, int nr_items)
111 {
112 memmove_extent_buffer(leaf, btrfs_item_nr_offset(leaf, dst_item),
113 btrfs_item_nr_offset(leaf, src_item),
114 nr_items * sizeof(struct btrfs_item));
115 }
116
117 /*
118 * Copy items from @src into @dst at the given @offset.
119 *
120 * @dst: destination leaf for the items
121 * @src: source leaf for the items
122 * @dst_item: the item nr we're copying into
123 * @src_item: the item nr we're copying from
124 * @nr_items: the number of items to copy
125 *
126 * Wrapper around copy_extent_buffer() that does the math to get the
127 * appropriate offsets into the leaf from the item numbers.
128 */
copy_leaf_items(const struct extent_buffer * dst,const struct extent_buffer * src,int dst_item,int src_item,int nr_items)129 static inline void copy_leaf_items(const struct extent_buffer *dst,
130 const struct extent_buffer *src,
131 int dst_item, int src_item, int nr_items)
132 {
133 copy_extent_buffer(dst, src, btrfs_item_nr_offset(dst, dst_item),
134 btrfs_item_nr_offset(src, src_item),
135 nr_items * sizeof(struct btrfs_item));
136 }
137
btrfs_alloc_path(void)138 struct btrfs_path *btrfs_alloc_path(void)
139 {
140 might_sleep();
141
142 return kmem_cache_zalloc(btrfs_path_cachep, GFP_NOFS);
143 }
144
145 /* this also releases the path */
btrfs_free_path(struct btrfs_path * p)146 void btrfs_free_path(struct btrfs_path *p)
147 {
148 if (!p)
149 return;
150 btrfs_release_path(p);
151 kmem_cache_free(btrfs_path_cachep, p);
152 }
153
154 /*
155 * path release drops references on the extent buffers in the path
156 * and it drops any locks held by this path
157 *
158 * It is safe to call this on paths that no locks or extent buffers held.
159 */
btrfs_release_path(struct btrfs_path * p)160 noinline void btrfs_release_path(struct btrfs_path *p)
161 {
162 int i;
163
164 for (i = 0; i < BTRFS_MAX_LEVEL; i++) {
165 p->slots[i] = 0;
166 if (!p->nodes[i])
167 continue;
168 if (p->locks[i]) {
169 btrfs_tree_unlock_rw(p->nodes[i], p->locks[i]);
170 p->locks[i] = 0;
171 }
172 free_extent_buffer(p->nodes[i]);
173 p->nodes[i] = NULL;
174 }
175 }
176
177 /*
178 * safely gets a reference on the root node of a tree. A lock
179 * is not taken, so a concurrent writer may put a different node
180 * at the root of the tree. See btrfs_lock_root_node for the
181 * looping required.
182 *
183 * The extent buffer returned by this has a reference taken, so
184 * it won't disappear. It may stop being the root of the tree
185 * at any time because there are no locks held.
186 */
btrfs_root_node(struct btrfs_root * root)187 struct extent_buffer *btrfs_root_node(struct btrfs_root *root)
188 {
189 struct extent_buffer *eb;
190
191 while (1) {
192 rcu_read_lock();
193 eb = rcu_dereference(root->node);
194
195 /*
196 * RCU really hurts here, we could free up the root node because
197 * it was COWed but we may not get the new root node yet so do
198 * the inc_not_zero dance and if it doesn't work then
199 * synchronize_rcu and try again.
200 */
201 if (refcount_inc_not_zero(&eb->refs)) {
202 rcu_read_unlock();
203 break;
204 }
205 rcu_read_unlock();
206 synchronize_rcu();
207 }
208 return eb;
209 }
210
211 /*
212 * Cowonly root (not-shareable trees, everything not subvolume or reloc roots),
213 * just get put onto a simple dirty list. Transaction walks this list to make
214 * sure they get properly updated on disk.
215 */
add_root_to_dirty_list(struct btrfs_root * root)216 static void add_root_to_dirty_list(struct btrfs_root *root)
217 {
218 struct btrfs_fs_info *fs_info = root->fs_info;
219
220 if (test_bit(BTRFS_ROOT_DIRTY, &root->state) ||
221 !test_bit(BTRFS_ROOT_TRACK_DIRTY, &root->state))
222 return;
223
224 spin_lock(&fs_info->trans_lock);
225 if (!test_and_set_bit(BTRFS_ROOT_DIRTY, &root->state)) {
226 /* Want the extent tree to be the last on the list */
227 if (btrfs_root_id(root) == BTRFS_EXTENT_TREE_OBJECTID)
228 list_move_tail(&root->dirty_list,
229 &fs_info->dirty_cowonly_roots);
230 else
231 list_move(&root->dirty_list,
232 &fs_info->dirty_cowonly_roots);
233 }
234 spin_unlock(&fs_info->trans_lock);
235 }
236
237 /*
238 * used by snapshot creation to make a copy of a root for a tree with
239 * a given objectid. The buffer with the new root node is returned in
240 * cow_ret, and this func returns zero on success or a negative error code.
241 */
btrfs_copy_root(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct extent_buffer * buf,struct extent_buffer ** cow_ret,u64 new_root_objectid)242 int btrfs_copy_root(struct btrfs_trans_handle *trans,
243 struct btrfs_root *root,
244 struct extent_buffer *buf,
245 struct extent_buffer **cow_ret, u64 new_root_objectid)
246 {
247 struct btrfs_fs_info *fs_info = root->fs_info;
248 struct extent_buffer *cow;
249 int ret = 0;
250 int level;
251 struct btrfs_disk_key disk_key;
252 const bool is_reloc_root = (new_root_objectid == BTRFS_TREE_RELOC_OBJECTID);
253 u64 reloc_src_root = 0;
254
255 WARN_ON(test_bit(BTRFS_ROOT_SHAREABLE, &root->state) &&
256 trans->transid != fs_info->running_transaction->transid);
257 WARN_ON(test_bit(BTRFS_ROOT_SHAREABLE, &root->state) &&
258 trans->transid != btrfs_get_root_last_trans(root));
259
260 level = btrfs_header_level(buf);
261 if (level == 0)
262 btrfs_item_key(buf, &disk_key, 0);
263 else
264 btrfs_node_key(buf, &disk_key, 0);
265
266 if (is_reloc_root)
267 reloc_src_root = btrfs_header_owner(buf);
268 cow = btrfs_alloc_tree_block(trans, root, 0, new_root_objectid,
269 &disk_key, level, buf->start, 0,
270 reloc_src_root, BTRFS_NESTING_NEW_ROOT);
271 if (IS_ERR(cow))
272 return PTR_ERR(cow);
273
274 copy_extent_buffer_full(cow, buf);
275 btrfs_set_header_bytenr(cow, cow->start);
276 btrfs_set_header_generation(cow, trans->transid);
277 btrfs_set_header_backref_rev(cow, BTRFS_MIXED_BACKREF_REV);
278 btrfs_clear_header_flag(cow, BTRFS_HEADER_FLAG_WRITTEN |
279 BTRFS_HEADER_FLAG_RELOC);
280 if (is_reloc_root)
281 btrfs_set_header_flag(cow, BTRFS_HEADER_FLAG_RELOC);
282 else
283 btrfs_set_header_owner(cow, new_root_objectid);
284
285 write_extent_buffer_fsid(cow, fs_info->fs_devices->metadata_uuid);
286
287 if (unlikely(btrfs_header_generation(buf) > trans->transid)) {
288 btrfs_tree_unlock(cow);
289 free_extent_buffer(cow);
290 ret = -EUCLEAN;
291 btrfs_abort_transaction(trans, ret);
292 return ret;
293 }
294
295 ret = btrfs_inc_ref(trans, root, cow, is_reloc_root);
296 if (unlikely(ret)) {
297 btrfs_abort_transaction(trans, ret);
298 btrfs_tree_unlock(cow);
299 free_extent_buffer(cow);
300 return ret;
301 }
302
303 btrfs_mark_buffer_dirty(trans, cow);
304 *cow_ret = cow;
305 return 0;
306 }
307
308 /*
309 * check if the tree block can be shared by multiple trees
310 */
btrfs_block_can_be_shared(const struct btrfs_trans_handle * trans,const struct btrfs_root * root,const struct extent_buffer * buf)311 bool btrfs_block_can_be_shared(const struct btrfs_trans_handle *trans,
312 const struct btrfs_root *root,
313 const struct extent_buffer *buf)
314 {
315 const u64 buf_gen = btrfs_header_generation(buf);
316
317 /*
318 * Tree blocks not in shareable trees and tree roots are never shared.
319 * If a block was allocated after the last snapshot and the block was
320 * not allocated by tree relocation, we know the block is not shared.
321 */
322
323 if (!test_bit(BTRFS_ROOT_SHAREABLE, &root->state))
324 return false;
325
326 if (buf == root->node)
327 return false;
328
329 if (buf_gen > btrfs_root_last_snapshot(&root->root_item) &&
330 !btrfs_header_flag(buf, BTRFS_HEADER_FLAG_RELOC))
331 return false;
332
333 if (buf != root->commit_root)
334 return true;
335
336 /*
337 * An extent buffer that used to be the commit root may still be shared
338 * because the tree height may have increased and it became a child of a
339 * higher level root. This can happen when snapshotting a subvolume
340 * created in the current transaction.
341 */
342 if (buf_gen == trans->transid)
343 return true;
344
345 return false;
346 }
347
update_ref_for_cow(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct extent_buffer * buf,struct extent_buffer * cow,int * last_ref)348 static noinline int update_ref_for_cow(struct btrfs_trans_handle *trans,
349 struct btrfs_root *root,
350 struct extent_buffer *buf,
351 struct extent_buffer *cow,
352 int *last_ref)
353 {
354 struct btrfs_fs_info *fs_info = root->fs_info;
355 u64 refs;
356 u64 owner;
357 u64 flags;
358 int ret;
359 const bool is_reloc_root = (btrfs_root_id(root) == BTRFS_TREE_RELOC_OBJECTID);
360
361 /*
362 * Backrefs update rules:
363 *
364 * Always use full backrefs for extent pointers in tree block
365 * allocated by tree relocation.
366 *
367 * If a shared tree block is no longer referenced by its owner
368 * tree (btrfs_header_owner(buf) == root->root_key.objectid),
369 * use full backrefs for extent pointers in tree block.
370 *
371 * If a tree block is been relocating
372 * (root->root_key.objectid == BTRFS_TREE_RELOC_OBJECTID),
373 * use full backrefs for extent pointers in tree block.
374 * The reason for this is some operations (such as drop tree)
375 * are only allowed for blocks use full backrefs.
376 */
377
378 if (btrfs_block_can_be_shared(trans, root, buf)) {
379 ret = btrfs_lookup_extent_info(trans, fs_info, buf->start,
380 btrfs_header_level(buf), 1,
381 &refs, &flags, NULL);
382 if (ret)
383 return ret;
384 if (unlikely(refs == 0)) {
385 btrfs_crit(fs_info,
386 "found 0 references for tree block at bytenr %llu level %d root %llu",
387 buf->start, btrfs_header_level(buf),
388 btrfs_root_id(root));
389 ret = -EUCLEAN;
390 btrfs_abort_transaction(trans, ret);
391 return ret;
392 }
393 } else {
394 refs = 1;
395 if (is_reloc_root || btrfs_header_backref_rev(buf) < BTRFS_MIXED_BACKREF_REV)
396 flags = BTRFS_BLOCK_FLAG_FULL_BACKREF;
397 else
398 flags = 0;
399 }
400
401 owner = btrfs_header_owner(buf);
402 if (unlikely(owner == BTRFS_TREE_RELOC_OBJECTID &&
403 !(flags & BTRFS_BLOCK_FLAG_FULL_BACKREF))) {
404 btrfs_crit(fs_info,
405 "found tree block at bytenr %llu level %d root %llu refs %llu flags %llx without full backref flag set",
406 buf->start, btrfs_header_level(buf),
407 btrfs_root_id(root), refs, flags);
408 ret = -EUCLEAN;
409 btrfs_abort_transaction(trans, ret);
410 return ret;
411 }
412
413 if (refs > 1) {
414 if ((owner == btrfs_root_id(root) || is_reloc_root) &&
415 !(flags & BTRFS_BLOCK_FLAG_FULL_BACKREF)) {
416 ret = btrfs_inc_ref(trans, root, buf, true);
417 if (ret)
418 return ret;
419
420 if (is_reloc_root) {
421 ret = btrfs_dec_ref(trans, root, buf, false);
422 if (ret)
423 return ret;
424 ret = btrfs_inc_ref(trans, root, cow, true);
425 if (ret)
426 return ret;
427 }
428 ret = btrfs_set_disk_extent_flags(trans, buf,
429 BTRFS_BLOCK_FLAG_FULL_BACKREF);
430 if (ret)
431 return ret;
432 } else {
433 ret = btrfs_inc_ref(trans, root, cow, is_reloc_root);
434 if (ret)
435 return ret;
436 }
437 } else {
438 if (flags & BTRFS_BLOCK_FLAG_FULL_BACKREF) {
439 ret = btrfs_inc_ref(trans, root, cow, is_reloc_root);
440 if (ret)
441 return ret;
442 ret = btrfs_dec_ref(trans, root, buf, true);
443 if (ret)
444 return ret;
445 }
446 btrfs_clear_buffer_dirty(trans, buf);
447 *last_ref = 1;
448 }
449 return 0;
450 }
451
452 /*
453 * does the dirty work in cow of a single block. The parent block (if
454 * supplied) is updated to point to the new cow copy. The new buffer is marked
455 * dirty and returned locked. If you modify the block it needs to be marked
456 * dirty again.
457 *
458 * search_start -- an allocation hint for the new block
459 *
460 * empty_size -- a hint that you plan on doing more cow. This is the size in
461 * bytes the allocator should try to find free next to the block it returns.
462 * This is just a hint and may be ignored by the allocator.
463 */
btrfs_force_cow_block(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct extent_buffer * buf,struct extent_buffer * parent,int parent_slot,struct extent_buffer ** cow_ret,u64 search_start,u64 empty_size,enum btrfs_lock_nesting nest)464 int btrfs_force_cow_block(struct btrfs_trans_handle *trans,
465 struct btrfs_root *root,
466 struct extent_buffer *buf,
467 struct extent_buffer *parent, int parent_slot,
468 struct extent_buffer **cow_ret,
469 u64 search_start, u64 empty_size,
470 enum btrfs_lock_nesting nest)
471 {
472 struct btrfs_fs_info *fs_info = root->fs_info;
473 struct btrfs_disk_key disk_key;
474 struct extent_buffer *cow;
475 int level, ret;
476 int last_ref = 0;
477 int unlock_orig = 0;
478 u64 parent_start = 0;
479 u64 reloc_src_root = 0;
480
481 if (*cow_ret == buf)
482 unlock_orig = 1;
483
484 btrfs_assert_tree_write_locked(buf);
485
486 WARN_ON(test_bit(BTRFS_ROOT_SHAREABLE, &root->state) &&
487 trans->transid != fs_info->running_transaction->transid);
488 WARN_ON(test_bit(BTRFS_ROOT_SHAREABLE, &root->state) &&
489 trans->transid != btrfs_get_root_last_trans(root));
490
491 level = btrfs_header_level(buf);
492
493 if (level == 0)
494 btrfs_item_key(buf, &disk_key, 0);
495 else
496 btrfs_node_key(buf, &disk_key, 0);
497
498 if (btrfs_root_id(root) == BTRFS_TREE_RELOC_OBJECTID) {
499 if (parent)
500 parent_start = parent->start;
501 reloc_src_root = btrfs_header_owner(buf);
502 }
503 cow = btrfs_alloc_tree_block(trans, root, parent_start,
504 btrfs_root_id(root), &disk_key, level,
505 search_start, empty_size, reloc_src_root, nest);
506 if (IS_ERR(cow))
507 return PTR_ERR(cow);
508
509 /* cow is set to blocking by btrfs_init_new_buffer */
510
511 copy_extent_buffer_full(cow, buf);
512 btrfs_set_header_bytenr(cow, cow->start);
513 btrfs_set_header_generation(cow, trans->transid);
514 btrfs_set_header_backref_rev(cow, BTRFS_MIXED_BACKREF_REV);
515 btrfs_clear_header_flag(cow, BTRFS_HEADER_FLAG_WRITTEN |
516 BTRFS_HEADER_FLAG_RELOC);
517 if (btrfs_root_id(root) == BTRFS_TREE_RELOC_OBJECTID)
518 btrfs_set_header_flag(cow, BTRFS_HEADER_FLAG_RELOC);
519 else
520 btrfs_set_header_owner(cow, btrfs_root_id(root));
521
522 write_extent_buffer_fsid(cow, fs_info->fs_devices->metadata_uuid);
523
524 ret = update_ref_for_cow(trans, root, buf, cow, &last_ref);
525 if (unlikely(ret)) {
526 btrfs_abort_transaction(trans, ret);
527 goto error_unlock_cow;
528 }
529
530 if (test_bit(BTRFS_ROOT_SHAREABLE, &root->state)) {
531 ret = btrfs_reloc_cow_block(trans, root, buf, cow);
532 if (unlikely(ret)) {
533 btrfs_abort_transaction(trans, ret);
534 goto error_unlock_cow;
535 }
536 }
537
538 if (buf == root->node) {
539 WARN_ON(parent && parent != buf);
540 if (btrfs_root_id(root) == BTRFS_TREE_RELOC_OBJECTID ||
541 btrfs_header_backref_rev(buf) < BTRFS_MIXED_BACKREF_REV)
542 parent_start = buf->start;
543
544 ret = btrfs_tree_mod_log_insert_root(root->node, cow, true);
545 if (unlikely(ret < 0)) {
546 btrfs_abort_transaction(trans, ret);
547 goto error_unlock_cow;
548 }
549 refcount_inc(&cow->refs);
550 rcu_assign_pointer(root->node, cow);
551
552 ret = btrfs_free_tree_block(trans, btrfs_root_id(root), buf,
553 parent_start, last_ref);
554 free_extent_buffer(buf);
555 add_root_to_dirty_list(root);
556 if (unlikely(ret < 0)) {
557 btrfs_abort_transaction(trans, ret);
558 goto error_unlock_cow;
559 }
560 } else {
561 WARN_ON(trans->transid != btrfs_header_generation(parent));
562 ret = btrfs_tree_mod_log_insert_key(parent, parent_slot,
563 BTRFS_MOD_LOG_KEY_REPLACE);
564 if (unlikely(ret)) {
565 btrfs_abort_transaction(trans, ret);
566 goto error_unlock_cow;
567 }
568 btrfs_set_node_blockptr(parent, parent_slot,
569 cow->start);
570 btrfs_set_node_ptr_generation(parent, parent_slot,
571 trans->transid);
572 btrfs_mark_buffer_dirty(trans, parent);
573 if (last_ref) {
574 ret = btrfs_tree_mod_log_free_eb(buf);
575 if (unlikely(ret)) {
576 btrfs_abort_transaction(trans, ret);
577 goto error_unlock_cow;
578 }
579 }
580 ret = btrfs_free_tree_block(trans, btrfs_root_id(root), buf,
581 parent_start, last_ref);
582 if (unlikely(ret < 0)) {
583 btrfs_abort_transaction(trans, ret);
584 goto error_unlock_cow;
585 }
586 }
587
588 trace_btrfs_cow_block(root, buf, cow);
589 if (unlock_orig)
590 btrfs_tree_unlock(buf);
591 free_extent_buffer_stale(buf);
592 btrfs_mark_buffer_dirty(trans, cow);
593 *cow_ret = cow;
594 return 0;
595
596 error_unlock_cow:
597 btrfs_tree_unlock(cow);
598 free_extent_buffer(cow);
599 return ret;
600 }
601
should_cow_block(const struct btrfs_trans_handle * trans,const struct btrfs_root * root,const struct extent_buffer * buf)602 static inline bool should_cow_block(const struct btrfs_trans_handle *trans,
603 const struct btrfs_root *root,
604 const struct extent_buffer *buf)
605 {
606 if (btrfs_is_testing(root->fs_info))
607 return false;
608
609 /*
610 * We do not need to cow a block if
611 * 1) this block is not created or changed in this transaction;
612 * 2) this block does not belong to TREE_RELOC tree;
613 * 3) the root is not forced COW.
614 *
615 * What is forced COW:
616 * when we create snapshot during committing the transaction,
617 * after we've finished copying src root, we must COW the shared
618 * block to ensure the metadata consistency.
619 */
620
621 if (btrfs_header_generation(buf) != trans->transid)
622 return true;
623
624 if (btrfs_header_flag(buf, BTRFS_HEADER_FLAG_WRITTEN))
625 return true;
626
627 /* Ensure we can see the FORCE_COW bit. */
628 smp_mb__before_atomic();
629 if (test_bit(BTRFS_ROOT_FORCE_COW, &root->state))
630 return true;
631
632 if (btrfs_root_id(root) == BTRFS_TREE_RELOC_OBJECTID)
633 return false;
634
635 if (btrfs_header_flag(buf, BTRFS_HEADER_FLAG_RELOC))
636 return true;
637
638 return false;
639 }
640
641 /*
642 * COWs a single block, see btrfs_force_cow_block() for the real work.
643 * This version of it has extra checks so that a block isn't COWed more than
644 * once per transaction, as long as it hasn't been written yet
645 */
btrfs_cow_block(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct extent_buffer * buf,struct extent_buffer * parent,int parent_slot,struct extent_buffer ** cow_ret,enum btrfs_lock_nesting nest)646 int btrfs_cow_block(struct btrfs_trans_handle *trans,
647 struct btrfs_root *root, struct extent_buffer *buf,
648 struct extent_buffer *parent, int parent_slot,
649 struct extent_buffer **cow_ret,
650 enum btrfs_lock_nesting nest)
651 {
652 struct btrfs_fs_info *fs_info = root->fs_info;
653 u64 search_start;
654
655 if (unlikely(test_bit(BTRFS_ROOT_DELETING, &root->state))) {
656 btrfs_abort_transaction(trans, -EUCLEAN);
657 btrfs_crit(fs_info,
658 "attempt to COW block %llu on root %llu that is being deleted",
659 buf->start, btrfs_root_id(root));
660 return -EUCLEAN;
661 }
662
663 /*
664 * COWing must happen through a running transaction, which always
665 * matches the current fs generation (it's a transaction with a state
666 * less than TRANS_STATE_UNBLOCKED). If it doesn't, then turn the fs
667 * into error state to prevent the commit of any transaction.
668 */
669 if (unlikely(trans->transaction != fs_info->running_transaction ||
670 trans->transid != fs_info->generation)) {
671 btrfs_abort_transaction(trans, -EUCLEAN);
672 btrfs_crit(fs_info,
673 "unexpected transaction when attempting to COW block %llu on root %llu, transaction %llu running transaction %llu fs generation %llu",
674 buf->start, btrfs_root_id(root), trans->transid,
675 fs_info->running_transaction->transid,
676 fs_info->generation);
677 return -EUCLEAN;
678 }
679
680 if (!should_cow_block(trans, root, buf)) {
681 *cow_ret = buf;
682 return 0;
683 }
684
685 search_start = round_down(buf->start, SZ_1G);
686
687 /*
688 * Before CoWing this block for later modification, check if it's
689 * the subtree root and do the delayed subtree trace if needed.
690 *
691 * Also We don't care about the error, as it's handled internally.
692 */
693 btrfs_qgroup_trace_subtree_after_cow(trans, root, buf);
694 return btrfs_force_cow_block(trans, root, buf, parent, parent_slot,
695 cow_ret, search_start, 0, nest);
696 }
697 ALLOW_ERROR_INJECTION(btrfs_cow_block, ERRNO);
698
699 /*
700 * same as comp_keys only with two btrfs_key's
701 */
btrfs_comp_cpu_keys(const struct btrfs_key * k1,const struct btrfs_key * k2)702 int __pure btrfs_comp_cpu_keys(const struct btrfs_key *k1, const struct btrfs_key *k2)
703 {
704 if (k1->objectid > k2->objectid)
705 return 1;
706 if (k1->objectid < k2->objectid)
707 return -1;
708 if (k1->type > k2->type)
709 return 1;
710 if (k1->type < k2->type)
711 return -1;
712 if (k1->offset > k2->offset)
713 return 1;
714 if (k1->offset < k2->offset)
715 return -1;
716 return 0;
717 }
718
719 /*
720 * Search for a key in the given extent_buffer.
721 *
722 * The lower boundary for the search is specified by the slot number @first_slot.
723 * Use a value of 0 to search over the whole extent buffer. Works for both
724 * leaves and nodes.
725 *
726 * The slot in the extent buffer is returned via @slot. If the key exists in the
727 * extent buffer, then @slot will point to the slot where the key is, otherwise
728 * it points to the slot where you would insert the key.
729 *
730 * Slot may point to the total number of items (i.e. one position beyond the last
731 * key) if the key is bigger than the last key in the extent buffer.
732 */
btrfs_bin_search(const struct extent_buffer * eb,int first_slot,const struct btrfs_key * key,int * slot)733 int btrfs_bin_search(const struct extent_buffer *eb, int first_slot,
734 const struct btrfs_key *key, int *slot)
735 {
736 unsigned long p;
737 int item_size;
738 /*
739 * Use unsigned types for the low and high slots, so that we get a more
740 * efficient division in the search loop below.
741 */
742 u32 low = first_slot;
743 u32 high = btrfs_header_nritems(eb);
744 int ret;
745 const int key_size = sizeof(struct btrfs_disk_key);
746
747 if (unlikely(low > high)) {
748 btrfs_err(eb->fs_info,
749 "%s: low (%u) > high (%u) eb %llu owner %llu level %d",
750 __func__, low, high, eb->start,
751 btrfs_header_owner(eb), btrfs_header_level(eb));
752 return -EINVAL;
753 }
754
755 if (btrfs_header_level(eb) == 0) {
756 p = offsetof(struct btrfs_leaf, items);
757 item_size = sizeof(struct btrfs_item);
758 } else {
759 p = offsetof(struct btrfs_node, ptrs);
760 item_size = sizeof(struct btrfs_key_ptr);
761 }
762
763 while (low < high) {
764 const int unit_size = eb->folio_size;
765 unsigned long oil;
766 unsigned long offset;
767 struct btrfs_disk_key *tmp;
768 struct btrfs_disk_key unaligned;
769 int mid;
770
771 mid = (low + high) / 2;
772 offset = p + mid * item_size;
773 oil = get_eb_offset_in_folio(eb, offset);
774
775 if (oil + key_size <= unit_size) {
776 const unsigned long idx = get_eb_folio_index(eb, offset);
777 char *kaddr = folio_address(eb->folios[idx]);
778
779 oil = get_eb_offset_in_folio(eb, offset);
780 tmp = (struct btrfs_disk_key *)(kaddr + oil);
781 } else {
782 read_extent_buffer(eb, &unaligned, offset, key_size);
783 tmp = &unaligned;
784 }
785
786 ret = btrfs_comp_keys(tmp, key);
787
788 if (ret < 0)
789 low = mid + 1;
790 else if (ret > 0)
791 high = mid;
792 else {
793 *slot = mid;
794 return 0;
795 }
796 }
797 *slot = low;
798 return 1;
799 }
800
root_add_used_bytes(struct btrfs_root * root)801 static void root_add_used_bytes(struct btrfs_root *root)
802 {
803 spin_lock(&root->accounting_lock);
804 btrfs_set_root_used(&root->root_item,
805 btrfs_root_used(&root->root_item) + root->fs_info->nodesize);
806 spin_unlock(&root->accounting_lock);
807 }
808
root_sub_used_bytes(struct btrfs_root * root)809 static void root_sub_used_bytes(struct btrfs_root *root)
810 {
811 spin_lock(&root->accounting_lock);
812 btrfs_set_root_used(&root->root_item,
813 btrfs_root_used(&root->root_item) - root->fs_info->nodesize);
814 spin_unlock(&root->accounting_lock);
815 }
816
817 /* given a node and slot number, this reads the blocks it points to. The
818 * extent buffer is returned with a reference taken (but unlocked).
819 */
btrfs_read_node_slot(struct extent_buffer * parent,int slot)820 struct extent_buffer *btrfs_read_node_slot(struct extent_buffer *parent,
821 int slot)
822 {
823 int level = btrfs_header_level(parent);
824 struct btrfs_tree_parent_check check = { 0 };
825 struct extent_buffer *eb;
826
827 if (slot < 0 || slot >= btrfs_header_nritems(parent))
828 return ERR_PTR(-ENOENT);
829
830 ASSERT(level);
831
832 check.level = level - 1;
833 check.transid = btrfs_node_ptr_generation(parent, slot);
834 check.owner_root = btrfs_header_owner(parent);
835 check.has_first_key = true;
836 btrfs_node_key_to_cpu(parent, &check.first_key, slot);
837
838 eb = read_tree_block(parent->fs_info, btrfs_node_blockptr(parent, slot),
839 &check);
840 if (IS_ERR(eb))
841 return eb;
842 if (unlikely(!extent_buffer_uptodate(eb))) {
843 free_extent_buffer(eb);
844 return ERR_PTR(-EIO);
845 }
846
847 return eb;
848 }
849
850 /*
851 * Promote a child node to become the new tree root.
852 *
853 * @trans: Transaction handle
854 * @root: Tree root structure to update
855 * @path: Path holding nodes and locks
856 * @level: Level of the parent (old root)
857 * @parent: The parent (old root) with exactly one item
858 *
859 * This helper is called during rebalancing when the root node contains only
860 * a single item (nritems == 1). We can reduce the tree height by promoting
861 * that child to become the new root and freeing the old root node. The path
862 * locks and references are updated accordingly.
863 *
864 * Return: 0 on success, negative errno on failure. The transaction is aborted
865 * on critical errors.
866 */
promote_child_to_root(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,int level,struct extent_buffer * parent)867 static int promote_child_to_root(struct btrfs_trans_handle *trans,
868 struct btrfs_root *root, struct btrfs_path *path,
869 int level, struct extent_buffer *parent)
870 {
871 struct extent_buffer *child;
872 int ret;
873
874 ASSERT(btrfs_header_nritems(parent) == 1);
875
876 child = btrfs_read_node_slot(parent, 0);
877 if (IS_ERR(child))
878 return PTR_ERR(child);
879
880 btrfs_tree_lock(child);
881 ret = btrfs_cow_block(trans, root, child, parent, 0, &child, BTRFS_NESTING_COW);
882 if (ret) {
883 btrfs_tree_unlock(child);
884 free_extent_buffer(child);
885 return ret;
886 }
887
888 ret = btrfs_tree_mod_log_insert_root(root->node, child, true);
889 if (unlikely(ret < 0)) {
890 btrfs_tree_unlock(child);
891 free_extent_buffer(child);
892 btrfs_abort_transaction(trans, ret);
893 return ret;
894 }
895 rcu_assign_pointer(root->node, child);
896
897 add_root_to_dirty_list(root);
898 btrfs_tree_unlock(child);
899
900 path->locks[level] = 0;
901 path->nodes[level] = NULL;
902 btrfs_clear_buffer_dirty(trans, parent);
903 btrfs_tree_unlock(parent);
904 /* Once for the path. */
905 free_extent_buffer(parent);
906
907 root_sub_used_bytes(root);
908 ret = btrfs_free_tree_block(trans, btrfs_root_id(root), parent, 0, 1);
909 /* Once for the root ptr. */
910 free_extent_buffer_stale(parent);
911 if (unlikely(ret < 0)) {
912 btrfs_abort_transaction(trans, ret);
913 return ret;
914 }
915
916 return 0;
917 }
918
919 /*
920 * node level balancing, used to make sure nodes are in proper order for
921 * item deletion. We balance from the top down, so we have to make sure
922 * that a deletion won't leave an node completely empty later on.
923 */
balance_level(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,int level)924 static noinline int balance_level(struct btrfs_trans_handle *trans,
925 struct btrfs_root *root,
926 struct btrfs_path *path, int level)
927 {
928 struct btrfs_fs_info *fs_info = root->fs_info;
929 struct extent_buffer *right = NULL;
930 struct extent_buffer *mid;
931 struct extent_buffer *left = NULL;
932 struct extent_buffer *parent = NULL;
933 int ret = 0;
934 int wret;
935 int pslot;
936 int orig_slot = path->slots[level];
937 u64 orig_ptr;
938
939 ASSERT(level > 0);
940
941 mid = path->nodes[level];
942
943 WARN_ON(path->locks[level] != BTRFS_WRITE_LOCK);
944 WARN_ON(btrfs_header_generation(mid) != trans->transid);
945
946 orig_ptr = btrfs_node_blockptr(mid, orig_slot);
947
948 if (level < BTRFS_MAX_LEVEL - 1) {
949 parent = path->nodes[level + 1];
950 pslot = path->slots[level + 1];
951 }
952
953 /*
954 * deal with the case where there is only one pointer in the root
955 * by promoting the node below to a root
956 */
957 if (!parent) {
958 if (btrfs_header_nritems(mid) != 1)
959 return 0;
960
961 return promote_child_to_root(trans, root, path, level, mid);
962 }
963 if (btrfs_header_nritems(mid) >
964 BTRFS_NODEPTRS_PER_BLOCK(fs_info) / 4)
965 return 0;
966
967 if (pslot) {
968 left = btrfs_read_node_slot(parent, pslot - 1);
969 if (IS_ERR(left)) {
970 ret = PTR_ERR(left);
971 left = NULL;
972 goto out;
973 }
974
975 btrfs_tree_lock_nested(left, BTRFS_NESTING_LEFT);
976 wret = btrfs_cow_block(trans, root, left,
977 parent, pslot - 1, &left,
978 BTRFS_NESTING_LEFT_COW);
979 if (wret) {
980 ret = wret;
981 goto out;
982 }
983 }
984
985 if (pslot + 1 < btrfs_header_nritems(parent)) {
986 right = btrfs_read_node_slot(parent, pslot + 1);
987 if (IS_ERR(right)) {
988 ret = PTR_ERR(right);
989 right = NULL;
990 goto out;
991 }
992
993 btrfs_tree_lock_nested(right, BTRFS_NESTING_RIGHT);
994 wret = btrfs_cow_block(trans, root, right,
995 parent, pslot + 1, &right,
996 BTRFS_NESTING_RIGHT_COW);
997 if (wret) {
998 ret = wret;
999 goto out;
1000 }
1001 }
1002
1003 /* first, try to make some room in the middle buffer */
1004 if (left) {
1005 orig_slot += btrfs_header_nritems(left);
1006 wret = push_node_left(trans, left, mid, 1);
1007 if (wret < 0)
1008 ret = wret;
1009 }
1010
1011 /*
1012 * then try to empty the right most buffer into the middle
1013 */
1014 if (right) {
1015 wret = push_node_left(trans, mid, right, 1);
1016 if (wret < 0 && wret != -ENOSPC)
1017 ret = wret;
1018 if (btrfs_header_nritems(right) == 0) {
1019 btrfs_clear_buffer_dirty(trans, right);
1020 btrfs_tree_unlock(right);
1021 ret = btrfs_del_ptr(trans, root, path, level + 1, pslot + 1);
1022 if (ret < 0) {
1023 free_extent_buffer_stale(right);
1024 right = NULL;
1025 goto out;
1026 }
1027 root_sub_used_bytes(root);
1028 ret = btrfs_free_tree_block(trans, btrfs_root_id(root),
1029 right, 0, 1);
1030 free_extent_buffer_stale(right);
1031 right = NULL;
1032 if (unlikely(ret < 0)) {
1033 btrfs_abort_transaction(trans, ret);
1034 goto out;
1035 }
1036 } else {
1037 struct btrfs_disk_key right_key;
1038 btrfs_node_key(right, &right_key, 0);
1039 ret = btrfs_tree_mod_log_insert_key(parent, pslot + 1,
1040 BTRFS_MOD_LOG_KEY_REPLACE);
1041 if (unlikely(ret < 0)) {
1042 btrfs_abort_transaction(trans, ret);
1043 goto out;
1044 }
1045 btrfs_set_node_key(parent, &right_key, pslot + 1);
1046 btrfs_mark_buffer_dirty(trans, parent);
1047 }
1048 }
1049 if (btrfs_header_nritems(mid) == 1) {
1050 /*
1051 * we're not allowed to leave a node with one item in the
1052 * tree during a delete. A deletion from lower in the tree
1053 * could try to delete the only pointer in this node.
1054 * So, pull some keys from the left.
1055 * There has to be a left pointer at this point because
1056 * otherwise we would have pulled some pointers from the
1057 * right
1058 */
1059 if (unlikely(!left)) {
1060 btrfs_crit(fs_info,
1061 "missing left child when middle child only has 1 item, parent bytenr %llu level %d mid bytenr %llu root %llu",
1062 parent->start, btrfs_header_level(parent),
1063 mid->start, btrfs_root_id(root));
1064 ret = -EUCLEAN;
1065 btrfs_abort_transaction(trans, ret);
1066 goto out;
1067 }
1068 wret = balance_node_right(trans, mid, left);
1069 if (wret < 0) {
1070 ret = wret;
1071 goto out;
1072 }
1073 if (wret == 1) {
1074 wret = push_node_left(trans, left, mid, 1);
1075 if (wret < 0)
1076 ret = wret;
1077 }
1078 BUG_ON(wret == 1);
1079 }
1080 if (btrfs_header_nritems(mid) == 0) {
1081 btrfs_clear_buffer_dirty(trans, mid);
1082 btrfs_tree_unlock(mid);
1083 ret = btrfs_del_ptr(trans, root, path, level + 1, pslot);
1084 if (ret < 0) {
1085 free_extent_buffer_stale(mid);
1086 mid = NULL;
1087 goto out;
1088 }
1089 root_sub_used_bytes(root);
1090 ret = btrfs_free_tree_block(trans, btrfs_root_id(root), mid, 0, 1);
1091 free_extent_buffer_stale(mid);
1092 mid = NULL;
1093 if (unlikely(ret < 0)) {
1094 btrfs_abort_transaction(trans, ret);
1095 goto out;
1096 }
1097 } else {
1098 /* update the parent key to reflect our changes */
1099 struct btrfs_disk_key mid_key;
1100 btrfs_node_key(mid, &mid_key, 0);
1101 ret = btrfs_tree_mod_log_insert_key(parent, pslot,
1102 BTRFS_MOD_LOG_KEY_REPLACE);
1103 if (unlikely(ret < 0)) {
1104 btrfs_abort_transaction(trans, ret);
1105 goto out;
1106 }
1107 btrfs_set_node_key(parent, &mid_key, pslot);
1108 btrfs_mark_buffer_dirty(trans, parent);
1109 }
1110
1111 /* update the path */
1112 if (left) {
1113 if (btrfs_header_nritems(left) > orig_slot) {
1114 /* left was locked after cow */
1115 path->nodes[level] = left;
1116 path->slots[level + 1] -= 1;
1117 path->slots[level] = orig_slot;
1118 /* Left is now owned by path. */
1119 left = NULL;
1120 if (mid) {
1121 btrfs_tree_unlock(mid);
1122 free_extent_buffer(mid);
1123 }
1124 } else {
1125 orig_slot -= btrfs_header_nritems(left);
1126 path->slots[level] = orig_slot;
1127 }
1128 }
1129 /* double check we haven't messed things up */
1130 if (orig_ptr !=
1131 btrfs_node_blockptr(path->nodes[level], path->slots[level]))
1132 BUG();
1133 out:
1134 if (right) {
1135 btrfs_tree_unlock(right);
1136 free_extent_buffer(right);
1137 }
1138 if (left) {
1139 btrfs_tree_unlock(left);
1140 free_extent_buffer(left);
1141 }
1142 return ret;
1143 }
1144
1145 /* Node balancing for insertion. Here we only split or push nodes around
1146 * when they are completely full. This is also done top down, so we
1147 * have to be pessimistic.
1148 */
push_nodes_for_insert(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,int level)1149 static noinline int push_nodes_for_insert(struct btrfs_trans_handle *trans,
1150 struct btrfs_root *root,
1151 struct btrfs_path *path, int level)
1152 {
1153 struct btrfs_fs_info *fs_info = root->fs_info;
1154 struct extent_buffer *right = NULL;
1155 struct extent_buffer *mid;
1156 struct extent_buffer *left = NULL;
1157 struct extent_buffer *parent = NULL;
1158 int ret = 0;
1159 int wret;
1160 int pslot;
1161 int orig_slot = path->slots[level];
1162
1163 if (level == 0)
1164 return 1;
1165
1166 mid = path->nodes[level];
1167 WARN_ON(btrfs_header_generation(mid) != trans->transid);
1168
1169 if (level < BTRFS_MAX_LEVEL - 1) {
1170 parent = path->nodes[level + 1];
1171 pslot = path->slots[level + 1];
1172 }
1173
1174 if (!parent)
1175 return 1;
1176
1177 /* first, try to make some room in the middle buffer */
1178 if (pslot) {
1179 u32 left_nr;
1180
1181 left = btrfs_read_node_slot(parent, pslot - 1);
1182 if (IS_ERR(left))
1183 return PTR_ERR(left);
1184
1185 btrfs_tree_lock_nested(left, BTRFS_NESTING_LEFT);
1186
1187 left_nr = btrfs_header_nritems(left);
1188 if (left_nr >= BTRFS_NODEPTRS_PER_BLOCK(fs_info) - 1) {
1189 wret = 1;
1190 } else {
1191 ret = btrfs_cow_block(trans, root, left, parent,
1192 pslot - 1, &left,
1193 BTRFS_NESTING_LEFT_COW);
1194 if (ret)
1195 wret = 1;
1196 else {
1197 wret = push_node_left(trans, left, mid, 0);
1198 }
1199 }
1200 if (wret < 0)
1201 ret = wret;
1202 if (wret == 0) {
1203 struct btrfs_disk_key disk_key;
1204 orig_slot += left_nr;
1205 btrfs_node_key(mid, &disk_key, 0);
1206 ret = btrfs_tree_mod_log_insert_key(parent, pslot,
1207 BTRFS_MOD_LOG_KEY_REPLACE);
1208 if (unlikely(ret < 0)) {
1209 btrfs_tree_unlock(left);
1210 free_extent_buffer(left);
1211 btrfs_abort_transaction(trans, ret);
1212 return ret;
1213 }
1214 btrfs_set_node_key(parent, &disk_key, pslot);
1215 btrfs_mark_buffer_dirty(trans, parent);
1216 if (btrfs_header_nritems(left) > orig_slot) {
1217 path->nodes[level] = left;
1218 path->slots[level + 1] -= 1;
1219 path->slots[level] = orig_slot;
1220 btrfs_tree_unlock(mid);
1221 free_extent_buffer(mid);
1222 } else {
1223 orig_slot -=
1224 btrfs_header_nritems(left);
1225 path->slots[level] = orig_slot;
1226 btrfs_tree_unlock(left);
1227 free_extent_buffer(left);
1228 }
1229 return 0;
1230 }
1231 btrfs_tree_unlock(left);
1232 free_extent_buffer(left);
1233 }
1234
1235 /*
1236 * then try to empty the right most buffer into the middle
1237 */
1238 if (pslot + 1 < btrfs_header_nritems(parent)) {
1239 u32 right_nr;
1240
1241 right = btrfs_read_node_slot(parent, pslot + 1);
1242 if (IS_ERR(right))
1243 return PTR_ERR(right);
1244
1245 btrfs_tree_lock_nested(right, BTRFS_NESTING_RIGHT);
1246
1247 right_nr = btrfs_header_nritems(right);
1248 if (right_nr >= BTRFS_NODEPTRS_PER_BLOCK(fs_info) - 1) {
1249 wret = 1;
1250 } else {
1251 ret = btrfs_cow_block(trans, root, right,
1252 parent, pslot + 1,
1253 &right, BTRFS_NESTING_RIGHT_COW);
1254 if (ret)
1255 wret = 1;
1256 else {
1257 wret = balance_node_right(trans, right, mid);
1258 }
1259 }
1260 if (wret < 0)
1261 ret = wret;
1262 if (wret == 0) {
1263 struct btrfs_disk_key disk_key;
1264
1265 btrfs_node_key(right, &disk_key, 0);
1266 ret = btrfs_tree_mod_log_insert_key(parent, pslot + 1,
1267 BTRFS_MOD_LOG_KEY_REPLACE);
1268 if (unlikely(ret < 0)) {
1269 btrfs_tree_unlock(right);
1270 free_extent_buffer(right);
1271 btrfs_abort_transaction(trans, ret);
1272 return ret;
1273 }
1274 btrfs_set_node_key(parent, &disk_key, pslot + 1);
1275 btrfs_mark_buffer_dirty(trans, parent);
1276
1277 if (btrfs_header_nritems(mid) <= orig_slot) {
1278 path->nodes[level] = right;
1279 path->slots[level + 1] += 1;
1280 path->slots[level] = orig_slot -
1281 btrfs_header_nritems(mid);
1282 btrfs_tree_unlock(mid);
1283 free_extent_buffer(mid);
1284 } else {
1285 btrfs_tree_unlock(right);
1286 free_extent_buffer(right);
1287 }
1288 return 0;
1289 }
1290 btrfs_tree_unlock(right);
1291 free_extent_buffer(right);
1292 }
1293 return 1;
1294 }
1295
1296 /*
1297 * readahead one full node of leaves, finding things that are close
1298 * to the block in 'slot', and triggering ra on them.
1299 */
reada_for_search(struct btrfs_fs_info * fs_info,const struct btrfs_path * path,int level,int slot,u64 objectid)1300 static void reada_for_search(struct btrfs_fs_info *fs_info,
1301 const struct btrfs_path *path,
1302 int level, int slot, u64 objectid)
1303 {
1304 struct extent_buffer *node;
1305 struct btrfs_disk_key disk_key;
1306 u32 nritems;
1307 u64 search;
1308 u64 target;
1309 u64 nread = 0;
1310 u64 nread_max;
1311 u32 nr;
1312 u32 blocksize;
1313 u32 nscan = 0;
1314
1315 if (level != 1 && path->reada != READA_FORWARD_ALWAYS)
1316 return;
1317
1318 if (!path->nodes[level])
1319 return;
1320
1321 node = path->nodes[level];
1322
1323 /*
1324 * Since the time between visiting leaves is much shorter than the time
1325 * between visiting nodes, limit read ahead of nodes to 1, to avoid too
1326 * much IO at once (possibly random).
1327 */
1328 if (path->reada == READA_FORWARD_ALWAYS) {
1329 if (level > 1)
1330 nread_max = node->fs_info->nodesize;
1331 else
1332 nread_max = SZ_128K;
1333 } else {
1334 nread_max = SZ_64K;
1335 }
1336
1337 search = btrfs_node_blockptr(node, slot);
1338 blocksize = fs_info->nodesize;
1339 if (path->reada != READA_FORWARD_ALWAYS) {
1340 struct extent_buffer *eb;
1341
1342 eb = find_extent_buffer(fs_info, search);
1343 if (eb) {
1344 free_extent_buffer(eb);
1345 return;
1346 }
1347 }
1348
1349 target = search;
1350
1351 nritems = btrfs_header_nritems(node);
1352 nr = slot;
1353
1354 while (1) {
1355 if (path->reada == READA_BACK) {
1356 if (nr == 0)
1357 break;
1358 nr--;
1359 } else if (path->reada == READA_FORWARD ||
1360 path->reada == READA_FORWARD_ALWAYS) {
1361 nr++;
1362 if (nr >= nritems)
1363 break;
1364 }
1365 if (path->reada == READA_BACK && objectid) {
1366 btrfs_node_key(node, &disk_key, nr);
1367 if (btrfs_disk_key_objectid(&disk_key) != objectid)
1368 break;
1369 }
1370 search = btrfs_node_blockptr(node, nr);
1371 if (path->reada == READA_FORWARD_ALWAYS ||
1372 (search <= target && target - search <= 65536) ||
1373 (search > target && search - target <= 65536)) {
1374 btrfs_readahead_node_child(node, nr);
1375 nread += blocksize;
1376 }
1377 nscan++;
1378 if (nread > nread_max || nscan > 32)
1379 break;
1380 }
1381 }
1382
reada_for_balance(const struct btrfs_path * path,int level)1383 static noinline void reada_for_balance(const struct btrfs_path *path, int level)
1384 {
1385 struct extent_buffer *parent;
1386 int slot;
1387 int nritems;
1388
1389 parent = path->nodes[level + 1];
1390 if (!parent)
1391 return;
1392
1393 nritems = btrfs_header_nritems(parent);
1394 slot = path->slots[level + 1];
1395
1396 if (slot > 0)
1397 btrfs_readahead_node_child(parent, slot - 1);
1398 if (slot + 1 < nritems)
1399 btrfs_readahead_node_child(parent, slot + 1);
1400 }
1401
1402
1403 /*
1404 * when we walk down the tree, it is usually safe to unlock the higher layers
1405 * in the tree. The exceptions are when our path goes through slot 0, because
1406 * operations on the tree might require changing key pointers higher up in the
1407 * tree.
1408 *
1409 * callers might also have set path->keep_locks, which tells this code to keep
1410 * the lock if the path points to the last slot in the block. This is part of
1411 * walking through the tree, and selecting the next slot in the higher block.
1412 *
1413 * lowest_unlock sets the lowest level in the tree we're allowed to unlock. so
1414 * if lowest_unlock is 1, level 0 won't be unlocked
1415 */
unlock_up(struct btrfs_path * path,int level,int lowest_unlock,int min_write_lock_level,int * write_lock_level)1416 static noinline void unlock_up(struct btrfs_path *path, int level,
1417 int lowest_unlock, int min_write_lock_level,
1418 int *write_lock_level)
1419 {
1420 int i;
1421 int skip_level = level;
1422 bool check_skip = true;
1423
1424 for (i = level; i < BTRFS_MAX_LEVEL; i++) {
1425 if (!path->nodes[i])
1426 break;
1427 if (!path->locks[i])
1428 break;
1429
1430 if (check_skip) {
1431 if (path->slots[i] == 0) {
1432 skip_level = i + 1;
1433 continue;
1434 }
1435
1436 if (path->keep_locks) {
1437 u32 nritems;
1438
1439 nritems = btrfs_header_nritems(path->nodes[i]);
1440 if (nritems < 1 || path->slots[i] >= nritems - 1) {
1441 skip_level = i + 1;
1442 continue;
1443 }
1444 }
1445 }
1446
1447 if (i >= lowest_unlock && i > skip_level) {
1448 btrfs_tree_unlock_rw(path->nodes[i], path->locks[i]);
1449 check_skip = false;
1450 path->locks[i] = 0;
1451 if (write_lock_level &&
1452 i > min_write_lock_level &&
1453 i <= *write_lock_level) {
1454 *write_lock_level = i - 1;
1455 }
1456 }
1457 }
1458 }
1459
1460 /*
1461 * Helper function for btrfs_search_slot() and other functions that do a search
1462 * on a btree. The goal is to find a tree block in the cache (the radix tree at
1463 * fs_info->buffer_radix), but if we can't find it, or it's not up to date, read
1464 * its pages from disk.
1465 *
1466 * Returns -EAGAIN, with the path unlocked, if the caller needs to repeat the
1467 * whole btree search, starting again from the current root node.
1468 */
1469 static int
read_block_for_search(struct btrfs_root * root,struct btrfs_path * p,struct extent_buffer ** eb_ret,int slot,const struct btrfs_key * key)1470 read_block_for_search(struct btrfs_root *root, struct btrfs_path *p,
1471 struct extent_buffer **eb_ret, int slot,
1472 const struct btrfs_key *key)
1473 {
1474 struct btrfs_fs_info *fs_info = root->fs_info;
1475 struct btrfs_tree_parent_check check = { 0 };
1476 u64 blocknr;
1477 struct extent_buffer *tmp = NULL;
1478 int ret = 0;
1479 int ret2;
1480 int parent_level;
1481 bool read_tmp = false;
1482 bool tmp_locked = false;
1483 bool path_released = false;
1484
1485 blocknr = btrfs_node_blockptr(*eb_ret, slot);
1486 parent_level = btrfs_header_level(*eb_ret);
1487 btrfs_node_key_to_cpu(*eb_ret, &check.first_key, slot);
1488 check.has_first_key = true;
1489 check.level = parent_level - 1;
1490 check.transid = btrfs_node_ptr_generation(*eb_ret, slot);
1491 check.owner_root = btrfs_root_id(root);
1492
1493 /*
1494 * If we need to read an extent buffer from disk and we are holding locks
1495 * on upper level nodes, we unlock all the upper nodes before reading the
1496 * extent buffer, and then return -EAGAIN to the caller as it needs to
1497 * restart the search. We don't release the lock on the current level
1498 * because we need to walk this node to figure out which blocks to read.
1499 */
1500 tmp = find_extent_buffer(fs_info, blocknr);
1501 if (tmp) {
1502 if (p->reada == READA_FORWARD_ALWAYS)
1503 reada_for_search(fs_info, p, parent_level, slot, key->objectid);
1504
1505 /* first we do an atomic uptodate check */
1506 if (btrfs_buffer_uptodate(tmp, check.transid, true) > 0) {
1507 /*
1508 * Do extra check for first_key, eb can be stale due to
1509 * being cached, read from scrub, or have multiple
1510 * parents (shared tree blocks).
1511 */
1512 if (unlikely(btrfs_verify_level_key(tmp, &check))) {
1513 ret = -EUCLEAN;
1514 goto out;
1515 }
1516 *eb_ret = tmp;
1517 tmp = NULL;
1518 ret = 0;
1519 goto out;
1520 }
1521
1522 if (p->nowait) {
1523 ret = -EAGAIN;
1524 goto out;
1525 }
1526
1527 if (!p->skip_locking) {
1528 btrfs_unlock_up_safe(p, parent_level + 1);
1529 btrfs_maybe_reset_lockdep_class(root, tmp);
1530 tmp_locked = true;
1531 btrfs_tree_read_lock(tmp);
1532 btrfs_release_path(p);
1533 ret = -EAGAIN;
1534 path_released = true;
1535 }
1536
1537 /* Now we're allowed to do a blocking uptodate check. */
1538 ret2 = btrfs_read_extent_buffer(tmp, &check);
1539 if (ret2) {
1540 ret = ret2;
1541 goto out;
1542 }
1543
1544 if (ret == 0) {
1545 ASSERT(!tmp_locked);
1546 *eb_ret = tmp;
1547 tmp = NULL;
1548 }
1549 goto out;
1550 } else if (p->nowait) {
1551 ret = -EAGAIN;
1552 goto out;
1553 }
1554
1555 if (!p->skip_locking) {
1556 btrfs_unlock_up_safe(p, parent_level + 1);
1557 ret = -EAGAIN;
1558 }
1559
1560 if (p->reada != READA_NONE)
1561 reada_for_search(fs_info, p, parent_level, slot, key->objectid);
1562
1563 tmp = btrfs_find_create_tree_block(fs_info, blocknr, check.owner_root, check.level);
1564 if (IS_ERR(tmp)) {
1565 ret = PTR_ERR(tmp);
1566 tmp = NULL;
1567 goto out;
1568 }
1569 read_tmp = true;
1570
1571 if (!p->skip_locking) {
1572 ASSERT(ret == -EAGAIN);
1573 btrfs_maybe_reset_lockdep_class(root, tmp);
1574 tmp_locked = true;
1575 btrfs_tree_read_lock(tmp);
1576 btrfs_release_path(p);
1577 path_released = true;
1578 }
1579
1580 /* Now we're allowed to do a blocking uptodate check. */
1581 ret2 = btrfs_read_extent_buffer(tmp, &check);
1582 if (ret2) {
1583 ret = ret2;
1584 goto out;
1585 }
1586
1587 /*
1588 * If the read above didn't mark this buffer up to date,
1589 * it will never end up being up to date. Set ret to EIO now
1590 * and give up so that our caller doesn't loop forever
1591 * on our EAGAINs.
1592 */
1593 if (unlikely(!extent_buffer_uptodate(tmp))) {
1594 ret = -EIO;
1595 goto out;
1596 }
1597
1598 if (ret == 0) {
1599 ASSERT(!tmp_locked);
1600 *eb_ret = tmp;
1601 tmp = NULL;
1602 }
1603 out:
1604 if (tmp) {
1605 if (tmp_locked)
1606 btrfs_tree_read_unlock(tmp);
1607 if (read_tmp && ret && ret != -EAGAIN)
1608 free_extent_buffer_stale(tmp);
1609 else
1610 free_extent_buffer(tmp);
1611 }
1612 if (ret && !path_released)
1613 btrfs_release_path(p);
1614
1615 return ret;
1616 }
1617
1618 /*
1619 * helper function for btrfs_search_slot. This does all of the checks
1620 * for node-level blocks and does any balancing required based on
1621 * the ins_len.
1622 *
1623 * If no extra work was required, zero is returned. If we had to
1624 * drop the path, -EAGAIN is returned and btrfs_search_slot must
1625 * start over
1626 */
1627 static int
setup_nodes_for_search(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * p,struct extent_buffer * b,int level,int ins_len,int * write_lock_level)1628 setup_nodes_for_search(struct btrfs_trans_handle *trans,
1629 struct btrfs_root *root, struct btrfs_path *p,
1630 struct extent_buffer *b, int level, int ins_len,
1631 int *write_lock_level)
1632 {
1633 struct btrfs_fs_info *fs_info = root->fs_info;
1634 int ret = 0;
1635
1636 if ((p->search_for_split || ins_len > 0) && btrfs_header_nritems(b) >=
1637 BTRFS_NODEPTRS_PER_BLOCK(fs_info) - 3) {
1638
1639 if (*write_lock_level < level + 1) {
1640 *write_lock_level = level + 1;
1641 btrfs_release_path(p);
1642 return -EAGAIN;
1643 }
1644
1645 reada_for_balance(p, level);
1646 ret = split_node(trans, root, p, level);
1647
1648 b = p->nodes[level];
1649 } else if (ins_len < 0 && btrfs_header_nritems(b) <
1650 BTRFS_NODEPTRS_PER_BLOCK(fs_info) / 2) {
1651
1652 if (*write_lock_level < level + 1) {
1653 *write_lock_level = level + 1;
1654 btrfs_release_path(p);
1655 return -EAGAIN;
1656 }
1657
1658 reada_for_balance(p, level);
1659 ret = balance_level(trans, root, p, level);
1660 if (ret)
1661 return ret;
1662
1663 b = p->nodes[level];
1664 if (!b) {
1665 btrfs_release_path(p);
1666 return -EAGAIN;
1667 }
1668 BUG_ON(btrfs_header_nritems(b) == 1);
1669 }
1670 return ret;
1671 }
1672
btrfs_find_item(struct btrfs_root * fs_root,struct btrfs_path * path,u64 iobjectid,u64 ioff,u8 key_type,struct btrfs_key * found_key)1673 int btrfs_find_item(struct btrfs_root *fs_root, struct btrfs_path *path,
1674 u64 iobjectid, u64 ioff, u8 key_type,
1675 struct btrfs_key *found_key)
1676 {
1677 int ret;
1678 struct btrfs_key key;
1679 struct extent_buffer *eb;
1680
1681 ASSERT(path);
1682 ASSERT(found_key);
1683
1684 key.type = key_type;
1685 key.objectid = iobjectid;
1686 key.offset = ioff;
1687
1688 ret = btrfs_search_slot(NULL, fs_root, &key, path, 0, 0);
1689 if (ret < 0)
1690 return ret;
1691
1692 eb = path->nodes[0];
1693 if (ret && path->slots[0] >= btrfs_header_nritems(eb)) {
1694 ret = btrfs_next_leaf(fs_root, path);
1695 if (ret)
1696 return ret;
1697 eb = path->nodes[0];
1698 }
1699
1700 btrfs_item_key_to_cpu(eb, found_key, path->slots[0]);
1701 if (found_key->type != key.type ||
1702 found_key->objectid != key.objectid)
1703 return 1;
1704
1705 return 0;
1706 }
1707
btrfs_search_slot_get_root(struct btrfs_root * root,struct btrfs_path * p,int write_lock_level)1708 static struct extent_buffer *btrfs_search_slot_get_root(struct btrfs_root *root,
1709 struct btrfs_path *p,
1710 int write_lock_level)
1711 {
1712 struct extent_buffer *b;
1713 int root_lock = 0;
1714 int level = 0;
1715
1716 if (p->search_commit_root) {
1717 b = root->commit_root;
1718 refcount_inc(&b->refs);
1719 level = btrfs_header_level(b);
1720 /*
1721 * Ensure that all callers have set skip_locking when
1722 * p->search_commit_root is true.
1723 */
1724 ASSERT(p->skip_locking);
1725
1726 goto out;
1727 }
1728
1729 if (p->skip_locking) {
1730 b = btrfs_root_node(root);
1731 level = btrfs_header_level(b);
1732 goto out;
1733 }
1734
1735 /* We try very hard to do read locks on the root */
1736 root_lock = BTRFS_READ_LOCK;
1737
1738 /*
1739 * If the level is set to maximum, we can skip trying to get the read
1740 * lock.
1741 */
1742 if (write_lock_level < BTRFS_MAX_LEVEL) {
1743 /*
1744 * We don't know the level of the root node until we actually
1745 * have it read locked
1746 */
1747 if (p->nowait) {
1748 b = btrfs_try_read_lock_root_node(root);
1749 if (IS_ERR(b))
1750 return b;
1751 } else {
1752 b = btrfs_read_lock_root_node(root);
1753 }
1754 level = btrfs_header_level(b);
1755 if (level > write_lock_level)
1756 goto out;
1757
1758 /* Whoops, must trade for write lock */
1759 btrfs_tree_read_unlock(b);
1760 free_extent_buffer(b);
1761 }
1762
1763 b = btrfs_lock_root_node(root);
1764 root_lock = BTRFS_WRITE_LOCK;
1765
1766 /* The level might have changed, check again */
1767 level = btrfs_header_level(b);
1768
1769 out:
1770 /*
1771 * The root may have failed to write out at some point, and thus is no
1772 * longer valid, return an error in this case.
1773 */
1774 if (unlikely(!extent_buffer_uptodate(b))) {
1775 if (root_lock)
1776 btrfs_tree_unlock_rw(b, root_lock);
1777 free_extent_buffer(b);
1778 return ERR_PTR(-EIO);
1779 }
1780
1781 p->nodes[level] = b;
1782 if (!p->skip_locking)
1783 p->locks[level] = root_lock;
1784 /*
1785 * Callers are responsible for dropping b's references.
1786 */
1787 return b;
1788 }
1789
1790 /*
1791 * Replace the extent buffer at the lowest level of the path with a cloned
1792 * version. The purpose is to be able to use it safely, after releasing the
1793 * commit root semaphore, even if relocation is happening in parallel, the
1794 * transaction used for relocation is committed and the extent buffer is
1795 * reallocated in the next transaction.
1796 *
1797 * This is used in a context where the caller does not prevent transaction
1798 * commits from happening, either by holding a transaction handle or holding
1799 * some lock, while it's doing searches through a commit root.
1800 * At the moment it's only used for send operations.
1801 */
finish_need_commit_sem_search(struct btrfs_path * path)1802 static int finish_need_commit_sem_search(struct btrfs_path *path)
1803 {
1804 const int i = path->lowest_level;
1805 const int slot = path->slots[i];
1806 struct extent_buffer *lowest = path->nodes[i];
1807 struct extent_buffer *clone;
1808
1809 ASSERT(path->need_commit_sem);
1810
1811 if (!lowest)
1812 return 0;
1813
1814 lockdep_assert_held_read(&lowest->fs_info->commit_root_sem);
1815
1816 clone = btrfs_clone_extent_buffer(lowest);
1817 if (!clone)
1818 return -ENOMEM;
1819
1820 btrfs_release_path(path);
1821 path->nodes[i] = clone;
1822 path->slots[i] = slot;
1823
1824 return 0;
1825 }
1826
search_for_key_slot(const struct extent_buffer * eb,int search_low_slot,const struct btrfs_key * key,int prev_cmp,int * slot)1827 static inline int search_for_key_slot(const struct extent_buffer *eb,
1828 int search_low_slot,
1829 const struct btrfs_key *key,
1830 int prev_cmp,
1831 int *slot)
1832 {
1833 /*
1834 * If a previous call to btrfs_bin_search() on a parent node returned an
1835 * exact match (prev_cmp == 0), we can safely assume the target key will
1836 * always be at slot 0 on lower levels, since each key pointer
1837 * (struct btrfs_key_ptr) refers to the lowest key accessible from the
1838 * subtree it points to. Thus we can skip searching lower levels.
1839 */
1840 if (prev_cmp == 0) {
1841 *slot = 0;
1842 return 0;
1843 }
1844
1845 return btrfs_bin_search(eb, search_low_slot, key, slot);
1846 }
1847
search_leaf(struct btrfs_trans_handle * trans,struct btrfs_root * root,const struct btrfs_key * key,struct btrfs_path * path,int ins_len,int prev_cmp)1848 static int search_leaf(struct btrfs_trans_handle *trans,
1849 struct btrfs_root *root,
1850 const struct btrfs_key *key,
1851 struct btrfs_path *path,
1852 int ins_len,
1853 int prev_cmp)
1854 {
1855 struct extent_buffer *leaf = path->nodes[0];
1856 int leaf_free_space = -1;
1857 int search_low_slot = 0;
1858 int ret;
1859 bool do_bin_search = true;
1860
1861 /*
1862 * If we are doing an insertion, the leaf has enough free space and the
1863 * destination slot for the key is not slot 0, then we can unlock our
1864 * write lock on the parent, and any other upper nodes, before doing the
1865 * binary search on the leaf (with search_for_key_slot()), allowing other
1866 * tasks to lock the parent and any other upper nodes.
1867 */
1868 if (ins_len > 0) {
1869 /*
1870 * Cache the leaf free space, since we will need it later and it
1871 * will not change until then.
1872 */
1873 leaf_free_space = btrfs_leaf_free_space(leaf);
1874
1875 /*
1876 * !path->locks[1] means we have a single node tree, the leaf is
1877 * the root of the tree.
1878 */
1879 if (path->locks[1] && leaf_free_space >= ins_len) {
1880 struct btrfs_disk_key first_key;
1881
1882 ASSERT(btrfs_header_nritems(leaf) > 0);
1883 btrfs_item_key(leaf, &first_key, 0);
1884
1885 /*
1886 * Doing the extra comparison with the first key is cheap,
1887 * taking into account that the first key is very likely
1888 * already in a cache line because it immediately follows
1889 * the extent buffer's header and we have recently accessed
1890 * the header's level field.
1891 */
1892 ret = btrfs_comp_keys(&first_key, key);
1893 if (ret < 0) {
1894 /*
1895 * The first key is smaller than the key we want
1896 * to insert, so we are safe to unlock all upper
1897 * nodes and we have to do the binary search.
1898 *
1899 * We do use btrfs_unlock_up_safe() and not
1900 * unlock_up() because the later does not unlock
1901 * nodes with a slot of 0 - we can safely unlock
1902 * any node even if its slot is 0 since in this
1903 * case the key does not end up at slot 0 of the
1904 * leaf and there's no need to split the leaf.
1905 */
1906 btrfs_unlock_up_safe(path, 1);
1907 search_low_slot = 1;
1908 } else {
1909 /*
1910 * The first key is >= then the key we want to
1911 * insert, so we can skip the binary search as
1912 * the target key will be at slot 0.
1913 *
1914 * We can not unlock upper nodes when the key is
1915 * less than the first key, because we will need
1916 * to update the key at slot 0 of the parent node
1917 * and possibly of other upper nodes too.
1918 * If the key matches the first key, then we can
1919 * unlock all the upper nodes, using
1920 * btrfs_unlock_up_safe() instead of unlock_up()
1921 * as stated above.
1922 */
1923 if (ret == 0)
1924 btrfs_unlock_up_safe(path, 1);
1925 /*
1926 * ret is already 0 or 1, matching the result of
1927 * a btrfs_bin_search() call, so there is no need
1928 * to adjust it.
1929 */
1930 do_bin_search = false;
1931 path->slots[0] = 0;
1932 }
1933 }
1934 }
1935
1936 if (do_bin_search) {
1937 ret = search_for_key_slot(leaf, search_low_slot, key,
1938 prev_cmp, &path->slots[0]);
1939 if (ret < 0)
1940 return ret;
1941 }
1942
1943 if (ins_len > 0) {
1944 /*
1945 * Item key already exists. In this case, if we are allowed to
1946 * insert the item (for example, in dir_item case, item key
1947 * collision is allowed), it will be merged with the original
1948 * item. Only the item size grows, no new btrfs item will be
1949 * added. If search_for_extension is not set, ins_len already
1950 * accounts the size btrfs_item, deduct it here so leaf space
1951 * check will be correct.
1952 */
1953 if (ret == 0 && !path->search_for_extension) {
1954 ASSERT(ins_len >= sizeof(struct btrfs_item));
1955 ins_len -= sizeof(struct btrfs_item);
1956 }
1957
1958 ASSERT(leaf_free_space >= 0);
1959
1960 if (leaf_free_space < ins_len) {
1961 int ret2;
1962
1963 ret2 = split_leaf(trans, root, key, path, ins_len, (ret == 0));
1964 ASSERT(ret2 <= 0);
1965 if (WARN_ON(ret2 > 0))
1966 ret2 = -EUCLEAN;
1967 if (ret2)
1968 ret = ret2;
1969 }
1970 }
1971
1972 return ret;
1973 }
1974
1975 /*
1976 * Look for a key in a tree and perform necessary modifications to preserve
1977 * tree invariants.
1978 *
1979 * @trans: Handle of transaction, used when modifying the tree
1980 * @p: Holds all btree nodes along the search path
1981 * @root: The root node of the tree
1982 * @key: The key we are looking for
1983 * @ins_len: Indicates purpose of search:
1984 * >0 for inserts it's size of item inserted (*)
1985 * <0 for deletions
1986 * 0 for plain searches, not modifying the tree
1987 *
1988 * (*) If size of item inserted doesn't include
1989 * sizeof(struct btrfs_item), then p->search_for_extension must
1990 * be set.
1991 * @cow: boolean should CoW operations be performed. Must always be 1
1992 * when modifying the tree.
1993 *
1994 * If @ins_len > 0, nodes and leaves will be split as we walk down the tree.
1995 * If @ins_len < 0, nodes will be merged as we walk down the tree (if possible)
1996 *
1997 * If @key is found, 0 is returned and you can find the item in the leaf level
1998 * of the path (level 0)
1999 *
2000 * If @key isn't found, 1 is returned and the leaf level of the path (level 0)
2001 * points to the slot where it should be inserted
2002 *
2003 * If an error is encountered while searching the tree a negative error number
2004 * is returned
2005 */
btrfs_search_slot(struct btrfs_trans_handle * trans,struct btrfs_root * root,const struct btrfs_key * key,struct btrfs_path * p,int ins_len,int cow)2006 int btrfs_search_slot(struct btrfs_trans_handle *trans, struct btrfs_root *root,
2007 const struct btrfs_key *key, struct btrfs_path *p,
2008 int ins_len, int cow)
2009 {
2010 struct btrfs_fs_info *fs_info;
2011 struct extent_buffer *b;
2012 int slot;
2013 int ret;
2014 int level;
2015 int lowest_unlock = 1;
2016 /* everything at write_lock_level or lower must be write locked */
2017 int write_lock_level = 0;
2018 u8 lowest_level = 0;
2019 int min_write_lock_level;
2020 int prev_cmp;
2021
2022 if (!root)
2023 return -EINVAL;
2024
2025 fs_info = root->fs_info;
2026 might_sleep();
2027
2028 lowest_level = p->lowest_level;
2029 WARN_ON(lowest_level && ins_len > 0);
2030 WARN_ON(p->nodes[0] != NULL);
2031 BUG_ON(!cow && ins_len);
2032
2033 /*
2034 * For now only allow nowait for read only operations. There's no
2035 * strict reason why we can't, we just only need it for reads so it's
2036 * only implemented for reads.
2037 */
2038 ASSERT(!p->nowait || !cow);
2039
2040 if (ins_len < 0) {
2041 lowest_unlock = 2;
2042
2043 /* when we are removing items, we might have to go up to level
2044 * two as we update tree pointers Make sure we keep write
2045 * for those levels as well
2046 */
2047 write_lock_level = 2;
2048 } else if (ins_len > 0) {
2049 /*
2050 * for inserting items, make sure we have a write lock on
2051 * level 1 so we can update keys
2052 */
2053 write_lock_level = 1;
2054 }
2055
2056 if (!cow)
2057 write_lock_level = -1;
2058
2059 if (cow && (p->keep_locks || p->lowest_level))
2060 write_lock_level = BTRFS_MAX_LEVEL;
2061
2062 min_write_lock_level = write_lock_level;
2063
2064 if (p->need_commit_sem) {
2065 ASSERT(p->search_commit_root);
2066 if (p->nowait) {
2067 if (!down_read_trylock(&fs_info->commit_root_sem))
2068 return -EAGAIN;
2069 } else {
2070 down_read(&fs_info->commit_root_sem);
2071 }
2072 }
2073
2074 again:
2075 prev_cmp = -1;
2076 b = btrfs_search_slot_get_root(root, p, write_lock_level);
2077 if (IS_ERR(b)) {
2078 ret = PTR_ERR(b);
2079 goto done;
2080 }
2081
2082 while (b) {
2083 int dec = 0;
2084 int ret2;
2085
2086 level = btrfs_header_level(b);
2087
2088 if (cow) {
2089 bool last_level = (level == (BTRFS_MAX_LEVEL - 1));
2090
2091 /*
2092 * if we don't really need to cow this block
2093 * then we don't want to set the path blocking,
2094 * so we test it here
2095 */
2096 if (!should_cow_block(trans, root, b))
2097 goto cow_done;
2098
2099 /*
2100 * must have write locks on this node and the
2101 * parent
2102 */
2103 if (level > write_lock_level ||
2104 (level + 1 > write_lock_level &&
2105 level + 1 < BTRFS_MAX_LEVEL &&
2106 p->nodes[level + 1])) {
2107 write_lock_level = level + 1;
2108 btrfs_release_path(p);
2109 goto again;
2110 }
2111
2112 if (last_level)
2113 ret2 = btrfs_cow_block(trans, root, b, NULL, 0,
2114 &b, BTRFS_NESTING_COW);
2115 else
2116 ret2 = btrfs_cow_block(trans, root, b,
2117 p->nodes[level + 1],
2118 p->slots[level + 1], &b,
2119 BTRFS_NESTING_COW);
2120 if (ret2) {
2121 ret = ret2;
2122 goto done;
2123 }
2124 }
2125 cow_done:
2126 p->nodes[level] = b;
2127
2128 /*
2129 * we have a lock on b and as long as we aren't changing
2130 * the tree, there is no way to for the items in b to change.
2131 * It is safe to drop the lock on our parent before we
2132 * go through the expensive btree search on b.
2133 *
2134 * If we're inserting or deleting (ins_len != 0), then we might
2135 * be changing slot zero, which may require changing the parent.
2136 * So, we can't drop the lock until after we know which slot
2137 * we're operating on.
2138 */
2139 if (!ins_len && !p->keep_locks) {
2140 int u = level + 1;
2141
2142 if (u < BTRFS_MAX_LEVEL && p->locks[u]) {
2143 btrfs_tree_unlock_rw(p->nodes[u], p->locks[u]);
2144 p->locks[u] = 0;
2145 }
2146 }
2147
2148 if (level == 0) {
2149 if (ins_len > 0)
2150 ASSERT(write_lock_level >= 1);
2151
2152 ret = search_leaf(trans, root, key, p, ins_len, prev_cmp);
2153 if (!p->search_for_split)
2154 unlock_up(p, level, lowest_unlock,
2155 min_write_lock_level, NULL);
2156 goto done;
2157 }
2158
2159 ret = search_for_key_slot(b, 0, key, prev_cmp, &slot);
2160 if (ret < 0)
2161 goto done;
2162 prev_cmp = ret;
2163
2164 if (ret && slot > 0) {
2165 dec = 1;
2166 slot--;
2167 }
2168 p->slots[level] = slot;
2169 ret2 = setup_nodes_for_search(trans, root, p, b, level, ins_len,
2170 &write_lock_level);
2171 if (ret2 == -EAGAIN)
2172 goto again;
2173 if (ret2) {
2174 ret = ret2;
2175 goto done;
2176 }
2177 b = p->nodes[level];
2178 slot = p->slots[level];
2179
2180 /*
2181 * Slot 0 is special, if we change the key we have to update
2182 * the parent pointer which means we must have a write lock on
2183 * the parent
2184 */
2185 if (slot == 0 && ins_len && write_lock_level < level + 1) {
2186 write_lock_level = level + 1;
2187 btrfs_release_path(p);
2188 goto again;
2189 }
2190
2191 unlock_up(p, level, lowest_unlock, min_write_lock_level,
2192 &write_lock_level);
2193
2194 if (level == lowest_level) {
2195 if (dec)
2196 p->slots[level]++;
2197 goto done;
2198 }
2199
2200 ret2 = read_block_for_search(root, p, &b, slot, key);
2201 if (ret2 == -EAGAIN && !p->nowait)
2202 goto again;
2203 if (ret2) {
2204 ret = ret2;
2205 goto done;
2206 }
2207
2208 if (!p->skip_locking) {
2209 level = btrfs_header_level(b);
2210
2211 btrfs_maybe_reset_lockdep_class(root, b);
2212
2213 if (level <= write_lock_level) {
2214 btrfs_tree_lock(b);
2215 p->locks[level] = BTRFS_WRITE_LOCK;
2216 } else {
2217 if (p->nowait) {
2218 if (!btrfs_try_tree_read_lock(b)) {
2219 free_extent_buffer(b);
2220 ret = -EAGAIN;
2221 goto done;
2222 }
2223 } else {
2224 btrfs_tree_read_lock(b);
2225 }
2226 p->locks[level] = BTRFS_READ_LOCK;
2227 }
2228 p->nodes[level] = b;
2229 }
2230 }
2231 ret = 1;
2232 done:
2233 if (ret < 0 && !p->skip_release_on_error)
2234 btrfs_release_path(p);
2235
2236 if (p->need_commit_sem) {
2237 int ret2;
2238
2239 ret2 = finish_need_commit_sem_search(p);
2240 up_read(&fs_info->commit_root_sem);
2241 if (ret2)
2242 ret = ret2;
2243 }
2244
2245 return ret;
2246 }
2247 ALLOW_ERROR_INJECTION(btrfs_search_slot, ERRNO);
2248
2249 /*
2250 * Like btrfs_search_slot, this looks for a key in the given tree. It uses the
2251 * current state of the tree together with the operations recorded in the tree
2252 * modification log to search for the key in a previous version of this tree, as
2253 * denoted by the time_seq parameter.
2254 *
2255 * Naturally, there is no support for insert, delete or cow operations.
2256 *
2257 * The resulting path and return value will be set up as if we called
2258 * btrfs_search_slot at that point in time with ins_len and cow both set to 0.
2259 */
btrfs_search_old_slot(struct btrfs_root * root,const struct btrfs_key * key,struct btrfs_path * p,u64 time_seq)2260 int btrfs_search_old_slot(struct btrfs_root *root, const struct btrfs_key *key,
2261 struct btrfs_path *p, u64 time_seq)
2262 {
2263 struct btrfs_fs_info *fs_info = root->fs_info;
2264 struct extent_buffer *b;
2265 int slot;
2266 int ret;
2267 int level;
2268 int lowest_unlock = 1;
2269 u8 lowest_level = 0;
2270
2271 lowest_level = p->lowest_level;
2272 WARN_ON(p->nodes[0] != NULL);
2273 ASSERT(!p->nowait);
2274
2275 if (p->search_commit_root) {
2276 BUG_ON(time_seq);
2277 return btrfs_search_slot(NULL, root, key, p, 0, 0);
2278 }
2279
2280 again:
2281 b = btrfs_get_old_root(root, time_seq);
2282 if (unlikely(!b)) {
2283 ret = -EIO;
2284 goto done;
2285 }
2286 level = btrfs_header_level(b);
2287 p->locks[level] = BTRFS_READ_LOCK;
2288
2289 while (b) {
2290 int dec = 0;
2291 int ret2;
2292
2293 level = btrfs_header_level(b);
2294 p->nodes[level] = b;
2295
2296 /*
2297 * we have a lock on b and as long as we aren't changing
2298 * the tree, there is no way to for the items in b to change.
2299 * It is safe to drop the lock on our parent before we
2300 * go through the expensive btree search on b.
2301 */
2302 btrfs_unlock_up_safe(p, level + 1);
2303
2304 ret = btrfs_bin_search(b, 0, key, &slot);
2305 if (ret < 0)
2306 goto done;
2307
2308 if (level == 0) {
2309 p->slots[level] = slot;
2310 unlock_up(p, level, lowest_unlock, 0, NULL);
2311 goto done;
2312 }
2313
2314 if (ret && slot > 0) {
2315 dec = 1;
2316 slot--;
2317 }
2318 p->slots[level] = slot;
2319 unlock_up(p, level, lowest_unlock, 0, NULL);
2320
2321 if (level == lowest_level) {
2322 if (dec)
2323 p->slots[level]++;
2324 goto done;
2325 }
2326
2327 ret2 = read_block_for_search(root, p, &b, slot, key);
2328 if (ret2 == -EAGAIN && !p->nowait)
2329 goto again;
2330 if (ret2) {
2331 ret = ret2;
2332 goto done;
2333 }
2334
2335 level = btrfs_header_level(b);
2336 btrfs_tree_read_lock(b);
2337 b = btrfs_tree_mod_log_rewind(fs_info, b, time_seq);
2338 if (!b) {
2339 ret = -ENOMEM;
2340 goto done;
2341 }
2342 p->locks[level] = BTRFS_READ_LOCK;
2343 p->nodes[level] = b;
2344 }
2345 ret = 1;
2346 done:
2347 if (ret < 0)
2348 btrfs_release_path(p);
2349
2350 return ret;
2351 }
2352
2353 /*
2354 * Search the tree again to find a leaf with smaller keys.
2355 * Returns 0 if it found something.
2356 * Returns 1 if there are no smaller keys.
2357 * Returns < 0 on error.
2358 *
2359 * This may release the path, and so you may lose any locks held at the
2360 * time you call it.
2361 */
btrfs_prev_leaf(struct btrfs_root * root,struct btrfs_path * path)2362 static int btrfs_prev_leaf(struct btrfs_root *root, struct btrfs_path *path)
2363 {
2364 struct btrfs_key key;
2365 struct btrfs_key orig_key;
2366 struct btrfs_disk_key found_key;
2367 int ret;
2368
2369 btrfs_item_key_to_cpu(path->nodes[0], &key, 0);
2370 orig_key = key;
2371
2372 if (key.offset > 0) {
2373 key.offset--;
2374 } else if (key.type > 0) {
2375 key.type--;
2376 key.offset = (u64)-1;
2377 } else if (key.objectid > 0) {
2378 key.objectid--;
2379 key.type = (u8)-1;
2380 key.offset = (u64)-1;
2381 } else {
2382 return 1;
2383 }
2384
2385 btrfs_release_path(path);
2386 ret = btrfs_search_slot(NULL, root, &key, path, 0, 0);
2387 if (ret <= 0)
2388 return ret;
2389
2390 /*
2391 * Previous key not found. Even if we were at slot 0 of the leaf we had
2392 * before releasing the path and calling btrfs_search_slot(), we now may
2393 * be in a slot pointing to the same original key - this can happen if
2394 * after we released the path, one of more items were moved from a
2395 * sibling leaf into the front of the leaf we had due to an insertion
2396 * (see push_leaf_right()).
2397 * If we hit this case and our slot is > 0 and just decrement the slot
2398 * so that the caller does not process the same key again, which may or
2399 * may not break the caller, depending on its logic.
2400 */
2401 if (path->slots[0] < btrfs_header_nritems(path->nodes[0])) {
2402 btrfs_item_key(path->nodes[0], &found_key, path->slots[0]);
2403 ret = btrfs_comp_keys(&found_key, &orig_key);
2404 if (ret == 0) {
2405 if (path->slots[0] > 0) {
2406 path->slots[0]--;
2407 return 0;
2408 }
2409 /*
2410 * At slot 0, same key as before, it means orig_key is
2411 * the lowest, leftmost, key in the tree. We're done.
2412 */
2413 return 1;
2414 }
2415 }
2416
2417 btrfs_item_key(path->nodes[0], &found_key, 0);
2418 ret = btrfs_comp_keys(&found_key, &key);
2419 /*
2420 * We might have had an item with the previous key in the tree right
2421 * before we released our path. And after we released our path, that
2422 * item might have been pushed to the first slot (0) of the leaf we
2423 * were holding due to a tree balance. Alternatively, an item with the
2424 * previous key can exist as the only element of a leaf (big fat item).
2425 * Therefore account for these 2 cases, so that our callers (like
2426 * btrfs_previous_item) don't miss an existing item with a key matching
2427 * the previous key we computed above.
2428 */
2429 if (ret <= 0)
2430 return 0;
2431 return 1;
2432 }
2433
2434 /*
2435 * helper to use instead of search slot if no exact match is needed but
2436 * instead the next or previous item should be returned.
2437 * When find_higher is true, the next higher item is returned, the next lower
2438 * otherwise.
2439 * When return_any and find_higher are both true, and no higher item is found,
2440 * return the next lower instead.
2441 * When return_any is true and find_higher is false, and no lower item is found,
2442 * return the next higher instead.
2443 * It returns 0 if any item is found, 1 if none is found (tree empty), and
2444 * < 0 on error
2445 */
btrfs_search_slot_for_read(struct btrfs_root * root,const struct btrfs_key * key,struct btrfs_path * p,int find_higher,int return_any)2446 int btrfs_search_slot_for_read(struct btrfs_root *root,
2447 const struct btrfs_key *key,
2448 struct btrfs_path *p, int find_higher,
2449 int return_any)
2450 {
2451 int ret;
2452 struct extent_buffer *leaf;
2453
2454 again:
2455 ret = btrfs_search_slot(NULL, root, key, p, 0, 0);
2456 if (ret <= 0)
2457 return ret;
2458 /*
2459 * a return value of 1 means the path is at the position where the
2460 * item should be inserted. Normally this is the next bigger item,
2461 * but in case the previous item is the last in a leaf, path points
2462 * to the first free slot in the previous leaf, i.e. at an invalid
2463 * item.
2464 */
2465 leaf = p->nodes[0];
2466
2467 if (find_higher) {
2468 if (p->slots[0] >= btrfs_header_nritems(leaf)) {
2469 ret = btrfs_next_leaf(root, p);
2470 if (ret <= 0)
2471 return ret;
2472 if (!return_any)
2473 return 1;
2474 /*
2475 * no higher item found, return the next
2476 * lower instead
2477 */
2478 return_any = 0;
2479 find_higher = 0;
2480 btrfs_release_path(p);
2481 goto again;
2482 }
2483 } else {
2484 if (p->slots[0] == 0) {
2485 ret = btrfs_prev_leaf(root, p);
2486 if (ret < 0)
2487 return ret;
2488 if (!ret) {
2489 leaf = p->nodes[0];
2490 if (p->slots[0] == btrfs_header_nritems(leaf))
2491 p->slots[0]--;
2492 return 0;
2493 }
2494 if (!return_any)
2495 return 1;
2496 /*
2497 * no lower item found, return the next
2498 * higher instead
2499 */
2500 return_any = 0;
2501 find_higher = 1;
2502 btrfs_release_path(p);
2503 goto again;
2504 } else {
2505 --p->slots[0];
2506 }
2507 }
2508 return 0;
2509 }
2510
2511 /*
2512 * Execute search and call btrfs_previous_item to traverse backwards if the item
2513 * was not found.
2514 *
2515 * Return 0 if found, 1 if not found and < 0 if error.
2516 */
btrfs_search_backwards(struct btrfs_root * root,struct btrfs_key * key,struct btrfs_path * path)2517 int btrfs_search_backwards(struct btrfs_root *root, struct btrfs_key *key,
2518 struct btrfs_path *path)
2519 {
2520 int ret;
2521
2522 ret = btrfs_search_slot(NULL, root, key, path, 0, 0);
2523 if (ret > 0)
2524 ret = btrfs_previous_item(root, path, key->objectid, key->type);
2525
2526 if (ret == 0)
2527 btrfs_item_key_to_cpu(path->nodes[0], key, path->slots[0]);
2528
2529 return ret;
2530 }
2531
2532 /*
2533 * Search for a valid slot for the given path.
2534 *
2535 * @root: The root node of the tree.
2536 * @key: Will contain a valid item if found.
2537 * @path: The starting point to validate the slot.
2538 *
2539 * Return: 0 if the item is valid
2540 * 1 if not found
2541 * <0 if error.
2542 */
btrfs_get_next_valid_item(struct btrfs_root * root,struct btrfs_key * key,struct btrfs_path * path)2543 int btrfs_get_next_valid_item(struct btrfs_root *root, struct btrfs_key *key,
2544 struct btrfs_path *path)
2545 {
2546 if (path->slots[0] >= btrfs_header_nritems(path->nodes[0])) {
2547 int ret;
2548
2549 ret = btrfs_next_leaf(root, path);
2550 if (ret)
2551 return ret;
2552 }
2553
2554 btrfs_item_key_to_cpu(path->nodes[0], key, path->slots[0]);
2555 return 0;
2556 }
2557
2558 /*
2559 * adjust the pointers going up the tree, starting at level
2560 * making sure the right key of each node is points to 'key'.
2561 * This is used after shifting pointers to the left, so it stops
2562 * fixing up pointers when a given leaf/node is not in slot 0 of the
2563 * higher levels
2564 *
2565 */
fixup_low_keys(struct btrfs_trans_handle * trans,const struct btrfs_path * path,const struct btrfs_disk_key * key,int level)2566 static void fixup_low_keys(struct btrfs_trans_handle *trans,
2567 const struct btrfs_path *path,
2568 const struct btrfs_disk_key *key, int level)
2569 {
2570 int i;
2571 struct extent_buffer *t;
2572 int ret;
2573
2574 for (i = level; i < BTRFS_MAX_LEVEL; i++) {
2575 int tslot = path->slots[i];
2576
2577 if (!path->nodes[i])
2578 break;
2579 t = path->nodes[i];
2580 ret = btrfs_tree_mod_log_insert_key(t, tslot,
2581 BTRFS_MOD_LOG_KEY_REPLACE);
2582 BUG_ON(ret < 0);
2583 btrfs_set_node_key(t, key, tslot);
2584 btrfs_mark_buffer_dirty(trans, path->nodes[i]);
2585 if (tslot != 0)
2586 break;
2587 }
2588 }
2589
2590 /*
2591 * update item key.
2592 *
2593 * This function isn't completely safe. It's the caller's responsibility
2594 * that the new key won't break the order
2595 */
btrfs_set_item_key_safe(struct btrfs_trans_handle * trans,const struct btrfs_path * path,const struct btrfs_key * new_key)2596 void btrfs_set_item_key_safe(struct btrfs_trans_handle *trans,
2597 const struct btrfs_path *path,
2598 const struct btrfs_key *new_key)
2599 {
2600 struct btrfs_fs_info *fs_info = trans->fs_info;
2601 struct btrfs_disk_key disk_key;
2602 struct extent_buffer *eb;
2603 int slot;
2604
2605 eb = path->nodes[0];
2606 slot = path->slots[0];
2607 if (slot > 0) {
2608 btrfs_item_key(eb, &disk_key, slot - 1);
2609 if (unlikely(btrfs_comp_keys(&disk_key, new_key) >= 0)) {
2610 btrfs_print_leaf(eb);
2611 btrfs_crit(fs_info,
2612 "slot %u key " BTRFS_KEY_FMT " new key " BTRFS_KEY_FMT,
2613 slot, btrfs_disk_key_objectid(&disk_key),
2614 btrfs_disk_key_type(&disk_key),
2615 btrfs_disk_key_offset(&disk_key),
2616 BTRFS_KEY_FMT_VALUE(new_key));
2617 BUG();
2618 }
2619 }
2620 if (slot < btrfs_header_nritems(eb) - 1) {
2621 btrfs_item_key(eb, &disk_key, slot + 1);
2622 if (unlikely(btrfs_comp_keys(&disk_key, new_key) <= 0)) {
2623 btrfs_print_leaf(eb);
2624 btrfs_crit(fs_info,
2625 "slot %u key " BTRFS_KEY_FMT " new key " BTRFS_KEY_FMT,
2626 slot, btrfs_disk_key_objectid(&disk_key),
2627 btrfs_disk_key_type(&disk_key),
2628 btrfs_disk_key_offset(&disk_key),
2629 BTRFS_KEY_FMT_VALUE(new_key));
2630 BUG();
2631 }
2632 }
2633
2634 btrfs_cpu_key_to_disk(&disk_key, new_key);
2635 btrfs_set_item_key(eb, &disk_key, slot);
2636 btrfs_mark_buffer_dirty(trans, eb);
2637 if (slot == 0)
2638 fixup_low_keys(trans, path, &disk_key, 1);
2639 }
2640
2641 /*
2642 * Check key order of two sibling extent buffers.
2643 *
2644 * Return true if something is wrong.
2645 * Return false if everything is fine.
2646 *
2647 * Tree-checker only works inside one tree block, thus the following
2648 * corruption can not be detected by tree-checker:
2649 *
2650 * Leaf @left | Leaf @right
2651 * --------------------------------------------------------------
2652 * | 1 | 2 | 3 | 4 | 5 | f6 | | 7 | 8 |
2653 *
2654 * Key f6 in leaf @left itself is valid, but not valid when the next
2655 * key in leaf @right is 7.
2656 * This can only be checked at tree block merge time.
2657 * And since tree checker has ensured all key order in each tree block
2658 * is correct, we only need to bother the last key of @left and the first
2659 * key of @right.
2660 */
check_sibling_keys(const struct extent_buffer * left,const struct extent_buffer * right)2661 static bool check_sibling_keys(const struct extent_buffer *left,
2662 const struct extent_buffer *right)
2663 {
2664 struct btrfs_key left_last;
2665 struct btrfs_key right_first;
2666 int level = btrfs_header_level(left);
2667 int nr_left = btrfs_header_nritems(left);
2668 int nr_right = btrfs_header_nritems(right);
2669
2670 /* No key to check in one of the tree blocks */
2671 if (!nr_left || !nr_right)
2672 return false;
2673
2674 if (level) {
2675 btrfs_node_key_to_cpu(left, &left_last, nr_left - 1);
2676 btrfs_node_key_to_cpu(right, &right_first, 0);
2677 } else {
2678 btrfs_item_key_to_cpu(left, &left_last, nr_left - 1);
2679 btrfs_item_key_to_cpu(right, &right_first, 0);
2680 }
2681
2682 if (unlikely(btrfs_comp_cpu_keys(&left_last, &right_first) >= 0)) {
2683 btrfs_crit(left->fs_info, "left extent buffer:");
2684 btrfs_print_tree(left, false);
2685 btrfs_crit(left->fs_info, "right extent buffer:");
2686 btrfs_print_tree(right, false);
2687 btrfs_crit(left->fs_info,
2688 "bad key order, sibling blocks, left last " BTRFS_KEY_FMT " right first " BTRFS_KEY_FMT,
2689 BTRFS_KEY_FMT_VALUE(&left_last),
2690 BTRFS_KEY_FMT_VALUE(&right_first));
2691 return true;
2692 }
2693 return false;
2694 }
2695
2696 /*
2697 * try to push data from one node into the next node left in the
2698 * tree.
2699 *
2700 * returns 0 if some ptrs were pushed left, < 0 if there was some horrible
2701 * error, and > 0 if there was no room in the left hand block.
2702 */
push_node_left(struct btrfs_trans_handle * trans,struct extent_buffer * dst,struct extent_buffer * src,bool empty)2703 static int push_node_left(struct btrfs_trans_handle *trans,
2704 struct extent_buffer *dst,
2705 struct extent_buffer *src, bool empty)
2706 {
2707 struct btrfs_fs_info *fs_info = trans->fs_info;
2708 int push_items = 0;
2709 int src_nritems;
2710 int dst_nritems;
2711 int ret = 0;
2712
2713 src_nritems = btrfs_header_nritems(src);
2714 dst_nritems = btrfs_header_nritems(dst);
2715 push_items = BTRFS_NODEPTRS_PER_BLOCK(fs_info) - dst_nritems;
2716 WARN_ON(btrfs_header_generation(src) != trans->transid);
2717 WARN_ON(btrfs_header_generation(dst) != trans->transid);
2718
2719 if (!empty && src_nritems <= 8)
2720 return 1;
2721
2722 if (push_items <= 0)
2723 return 1;
2724
2725 if (empty) {
2726 push_items = min(src_nritems, push_items);
2727 if (push_items < src_nritems) {
2728 /* leave at least 8 pointers in the node if
2729 * we aren't going to empty it
2730 */
2731 if (src_nritems - push_items < 8) {
2732 if (push_items <= 8)
2733 return 1;
2734 push_items -= 8;
2735 }
2736 }
2737 } else
2738 push_items = min(src_nritems - 8, push_items);
2739
2740 /* dst is the left eb, src is the middle eb */
2741 if (unlikely(check_sibling_keys(dst, src))) {
2742 ret = -EUCLEAN;
2743 btrfs_abort_transaction(trans, ret);
2744 return ret;
2745 }
2746 ret = btrfs_tree_mod_log_eb_copy(dst, src, dst_nritems, 0, push_items);
2747 if (unlikely(ret)) {
2748 btrfs_abort_transaction(trans, ret);
2749 return ret;
2750 }
2751 copy_extent_buffer(dst, src,
2752 btrfs_node_key_ptr_offset(dst, dst_nritems),
2753 btrfs_node_key_ptr_offset(src, 0),
2754 push_items * sizeof(struct btrfs_key_ptr));
2755
2756 if (push_items < src_nritems) {
2757 /*
2758 * btrfs_tree_mod_log_eb_copy handles logging the move, so we
2759 * don't need to do an explicit tree mod log operation for it.
2760 */
2761 memmove_extent_buffer(src, btrfs_node_key_ptr_offset(src, 0),
2762 btrfs_node_key_ptr_offset(src, push_items),
2763 (src_nritems - push_items) *
2764 sizeof(struct btrfs_key_ptr));
2765 }
2766 btrfs_set_header_nritems(src, src_nritems - push_items);
2767 btrfs_set_header_nritems(dst, dst_nritems + push_items);
2768 btrfs_mark_buffer_dirty(trans, src);
2769 btrfs_mark_buffer_dirty(trans, dst);
2770
2771 return ret;
2772 }
2773
2774 /*
2775 * try to push data from one node into the next node right in the
2776 * tree.
2777 *
2778 * returns 0 if some ptrs were pushed, < 0 if there was some horrible
2779 * error, and > 0 if there was no room in the right hand block.
2780 *
2781 * this will only push up to 1/2 the contents of the left node over
2782 */
balance_node_right(struct btrfs_trans_handle * trans,struct extent_buffer * dst,struct extent_buffer * src)2783 static int balance_node_right(struct btrfs_trans_handle *trans,
2784 struct extent_buffer *dst,
2785 struct extent_buffer *src)
2786 {
2787 struct btrfs_fs_info *fs_info = trans->fs_info;
2788 int push_items = 0;
2789 int max_push;
2790 int src_nritems;
2791 int dst_nritems;
2792 int ret = 0;
2793
2794 WARN_ON(btrfs_header_generation(src) != trans->transid);
2795 WARN_ON(btrfs_header_generation(dst) != trans->transid);
2796
2797 src_nritems = btrfs_header_nritems(src);
2798 dst_nritems = btrfs_header_nritems(dst);
2799 push_items = BTRFS_NODEPTRS_PER_BLOCK(fs_info) - dst_nritems;
2800 if (push_items <= 0)
2801 return 1;
2802
2803 if (src_nritems < 4)
2804 return 1;
2805
2806 max_push = src_nritems / 2 + 1;
2807 /* don't try to empty the node */
2808 if (max_push >= src_nritems)
2809 return 1;
2810
2811 if (max_push < push_items)
2812 push_items = max_push;
2813
2814 /* dst is the right eb, src is the middle eb */
2815 if (unlikely(check_sibling_keys(src, dst))) {
2816 ret = -EUCLEAN;
2817 btrfs_abort_transaction(trans, ret);
2818 return ret;
2819 }
2820
2821 /*
2822 * btrfs_tree_mod_log_eb_copy handles logging the move, so we don't
2823 * need to do an explicit tree mod log operation for it.
2824 */
2825 memmove_extent_buffer(dst, btrfs_node_key_ptr_offset(dst, push_items),
2826 btrfs_node_key_ptr_offset(dst, 0),
2827 (dst_nritems) *
2828 sizeof(struct btrfs_key_ptr));
2829
2830 ret = btrfs_tree_mod_log_eb_copy(dst, src, 0, src_nritems - push_items,
2831 push_items);
2832 if (unlikely(ret)) {
2833 btrfs_abort_transaction(trans, ret);
2834 return ret;
2835 }
2836 copy_extent_buffer(dst, src,
2837 btrfs_node_key_ptr_offset(dst, 0),
2838 btrfs_node_key_ptr_offset(src, src_nritems - push_items),
2839 push_items * sizeof(struct btrfs_key_ptr));
2840
2841 btrfs_set_header_nritems(src, src_nritems - push_items);
2842 btrfs_set_header_nritems(dst, dst_nritems + push_items);
2843
2844 btrfs_mark_buffer_dirty(trans, src);
2845 btrfs_mark_buffer_dirty(trans, dst);
2846
2847 return ret;
2848 }
2849
2850 /*
2851 * helper function to insert a new root level in the tree.
2852 * A new node is allocated, and a single item is inserted to
2853 * point to the existing root
2854 *
2855 * returns zero on success or < 0 on failure.
2856 */
insert_new_root(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,int level)2857 static noinline int insert_new_root(struct btrfs_trans_handle *trans,
2858 struct btrfs_root *root,
2859 struct btrfs_path *path, int level)
2860 {
2861 u64 lower_gen;
2862 struct extent_buffer *lower;
2863 struct extent_buffer *c;
2864 struct extent_buffer *old;
2865 struct btrfs_disk_key lower_key;
2866 int ret;
2867
2868 BUG_ON(path->nodes[level]);
2869 BUG_ON(path->nodes[level-1] != root->node);
2870
2871 lower = path->nodes[level-1];
2872 if (level == 1)
2873 btrfs_item_key(lower, &lower_key, 0);
2874 else
2875 btrfs_node_key(lower, &lower_key, 0);
2876
2877 c = btrfs_alloc_tree_block(trans, root, 0, btrfs_root_id(root),
2878 &lower_key, level, root->node->start, 0,
2879 0, BTRFS_NESTING_NEW_ROOT);
2880 if (IS_ERR(c))
2881 return PTR_ERR(c);
2882
2883 root_add_used_bytes(root);
2884
2885 btrfs_set_header_nritems(c, 1);
2886 btrfs_set_node_key(c, &lower_key, 0);
2887 btrfs_set_node_blockptr(c, 0, lower->start);
2888 lower_gen = btrfs_header_generation(lower);
2889 WARN_ON(lower_gen != trans->transid);
2890
2891 btrfs_set_node_ptr_generation(c, 0, lower_gen);
2892
2893 btrfs_mark_buffer_dirty(trans, c);
2894
2895 old = root->node;
2896 ret = btrfs_tree_mod_log_insert_root(root->node, c, false);
2897 if (ret < 0) {
2898 int ret2;
2899
2900 btrfs_clear_buffer_dirty(trans, c);
2901 ret2 = btrfs_free_tree_block(trans, btrfs_root_id(root), c, 0, 1);
2902 if (unlikely(ret2 < 0))
2903 btrfs_abort_transaction(trans, ret2);
2904 btrfs_tree_unlock(c);
2905 free_extent_buffer(c);
2906 return ret;
2907 }
2908 rcu_assign_pointer(root->node, c);
2909
2910 /* the super has an extra ref to root->node */
2911 free_extent_buffer(old);
2912
2913 add_root_to_dirty_list(root);
2914 refcount_inc(&c->refs);
2915 path->nodes[level] = c;
2916 path->locks[level] = BTRFS_WRITE_LOCK;
2917 path->slots[level] = 0;
2918 return 0;
2919 }
2920
2921 /*
2922 * worker function to insert a single pointer in a node.
2923 * the node should have enough room for the pointer already
2924 *
2925 * slot and level indicate where you want the key to go, and
2926 * blocknr is the block the key points to.
2927 */
insert_ptr(struct btrfs_trans_handle * trans,const struct btrfs_path * path,const struct btrfs_disk_key * key,u64 bytenr,int slot,int level)2928 static int insert_ptr(struct btrfs_trans_handle *trans,
2929 const struct btrfs_path *path,
2930 const struct btrfs_disk_key *key, u64 bytenr,
2931 int slot, int level)
2932 {
2933 struct extent_buffer *lower;
2934 int nritems;
2935 int ret;
2936
2937 BUG_ON(!path->nodes[level]);
2938 btrfs_assert_tree_write_locked(path->nodes[level]);
2939 lower = path->nodes[level];
2940 nritems = btrfs_header_nritems(lower);
2941 BUG_ON(slot > nritems);
2942 BUG_ON(nritems == BTRFS_NODEPTRS_PER_BLOCK(trans->fs_info));
2943 if (slot != nritems) {
2944 if (level) {
2945 ret = btrfs_tree_mod_log_insert_move(lower, slot + 1,
2946 slot, nritems - slot);
2947 if (unlikely(ret < 0)) {
2948 btrfs_abort_transaction(trans, ret);
2949 return ret;
2950 }
2951 }
2952 memmove_extent_buffer(lower,
2953 btrfs_node_key_ptr_offset(lower, slot + 1),
2954 btrfs_node_key_ptr_offset(lower, slot),
2955 (nritems - slot) * sizeof(struct btrfs_key_ptr));
2956 }
2957 if (level) {
2958 ret = btrfs_tree_mod_log_insert_key(lower, slot,
2959 BTRFS_MOD_LOG_KEY_ADD);
2960 if (unlikely(ret < 0)) {
2961 btrfs_abort_transaction(trans, ret);
2962 return ret;
2963 }
2964 }
2965 btrfs_set_node_key(lower, key, slot);
2966 btrfs_set_node_blockptr(lower, slot, bytenr);
2967 WARN_ON(trans->transid == 0);
2968 btrfs_set_node_ptr_generation(lower, slot, trans->transid);
2969 btrfs_set_header_nritems(lower, nritems + 1);
2970 btrfs_mark_buffer_dirty(trans, lower);
2971
2972 return 0;
2973 }
2974
2975 /*
2976 * split the node at the specified level in path in two.
2977 * The path is corrected to point to the appropriate node after the split
2978 *
2979 * Before splitting this tries to make some room in the node by pushing
2980 * left and right, if either one works, it returns right away.
2981 *
2982 * returns 0 on success and < 0 on failure
2983 */
split_node(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,int level)2984 static noinline int split_node(struct btrfs_trans_handle *trans,
2985 struct btrfs_root *root,
2986 struct btrfs_path *path, int level)
2987 {
2988 struct btrfs_fs_info *fs_info = root->fs_info;
2989 struct extent_buffer *c;
2990 struct extent_buffer *split;
2991 struct btrfs_disk_key disk_key;
2992 int mid;
2993 int ret;
2994 u32 c_nritems;
2995
2996 c = path->nodes[level];
2997 WARN_ON(btrfs_header_generation(c) != trans->transid);
2998 if (c == root->node) {
2999 /*
3000 * trying to split the root, lets make a new one
3001 *
3002 * tree mod log: We don't log_removal old root in
3003 * insert_new_root, because that root buffer will be kept as a
3004 * normal node. We are going to log removal of half of the
3005 * elements below with btrfs_tree_mod_log_eb_copy(). We're
3006 * holding a tree lock on the buffer, which is why we cannot
3007 * race with other tree_mod_log users.
3008 */
3009 ret = insert_new_root(trans, root, path, level + 1);
3010 if (ret)
3011 return ret;
3012 } else {
3013 ret = push_nodes_for_insert(trans, root, path, level);
3014 c = path->nodes[level];
3015 if (!ret && btrfs_header_nritems(c) <
3016 BTRFS_NODEPTRS_PER_BLOCK(fs_info) - 3)
3017 return 0;
3018 if (ret < 0)
3019 return ret;
3020 }
3021
3022 c_nritems = btrfs_header_nritems(c);
3023 mid = (c_nritems + 1) / 2;
3024 btrfs_node_key(c, &disk_key, mid);
3025
3026 split = btrfs_alloc_tree_block(trans, root, 0, btrfs_root_id(root),
3027 &disk_key, level, c->start, 0,
3028 0, BTRFS_NESTING_SPLIT);
3029 if (IS_ERR(split))
3030 return PTR_ERR(split);
3031
3032 root_add_used_bytes(root);
3033 ASSERT(btrfs_header_level(c) == level);
3034
3035 ret = btrfs_tree_mod_log_eb_copy(split, c, 0, mid, c_nritems - mid);
3036 if (unlikely(ret)) {
3037 btrfs_tree_unlock(split);
3038 free_extent_buffer(split);
3039 btrfs_abort_transaction(trans, ret);
3040 return ret;
3041 }
3042 copy_extent_buffer(split, c,
3043 btrfs_node_key_ptr_offset(split, 0),
3044 btrfs_node_key_ptr_offset(c, mid),
3045 (c_nritems - mid) * sizeof(struct btrfs_key_ptr));
3046 btrfs_set_header_nritems(split, c_nritems - mid);
3047 btrfs_set_header_nritems(c, mid);
3048
3049 btrfs_mark_buffer_dirty(trans, c);
3050 btrfs_mark_buffer_dirty(trans, split);
3051
3052 ret = insert_ptr(trans, path, &disk_key, split->start,
3053 path->slots[level + 1] + 1, level + 1);
3054 if (ret < 0) {
3055 btrfs_tree_unlock(split);
3056 free_extent_buffer(split);
3057 return ret;
3058 }
3059
3060 if (path->slots[level] >= mid) {
3061 path->slots[level] -= mid;
3062 btrfs_tree_unlock(c);
3063 free_extent_buffer(c);
3064 path->nodes[level] = split;
3065 path->slots[level + 1] += 1;
3066 } else {
3067 btrfs_tree_unlock(split);
3068 free_extent_buffer(split);
3069 }
3070 return 0;
3071 }
3072
3073 /*
3074 * how many bytes are required to store the items in a leaf. start
3075 * and nr indicate which items in the leaf to check. This totals up the
3076 * space used both by the item structs and the item data
3077 */
leaf_space_used(const struct extent_buffer * l,int start,int nr)3078 static int leaf_space_used(const struct extent_buffer *l, int start, int nr)
3079 {
3080 int data_len;
3081 int nritems = btrfs_header_nritems(l);
3082 int end = min(nritems, start + nr) - 1;
3083
3084 if (!nr)
3085 return 0;
3086 data_len = btrfs_item_offset(l, start) + btrfs_item_size(l, start);
3087 data_len = data_len - btrfs_item_offset(l, end);
3088 data_len += sizeof(struct btrfs_item) * nr;
3089 WARN_ON(data_len < 0);
3090 return data_len;
3091 }
3092
3093 /*
3094 * The space between the end of the leaf items and
3095 * the start of the leaf data. IOW, how much room
3096 * the leaf has left for both items and data
3097 */
btrfs_leaf_free_space(const struct extent_buffer * leaf)3098 int btrfs_leaf_free_space(const struct extent_buffer *leaf)
3099 {
3100 struct btrfs_fs_info *fs_info = leaf->fs_info;
3101 int nritems = btrfs_header_nritems(leaf);
3102 int ret;
3103
3104 ret = BTRFS_LEAF_DATA_SIZE(fs_info) - leaf_space_used(leaf, 0, nritems);
3105 if (unlikely(ret < 0)) {
3106 btrfs_crit(fs_info,
3107 "leaf free space ret %d, leaf data size %lu, used %d nritems %d",
3108 ret,
3109 (unsigned long) BTRFS_LEAF_DATA_SIZE(fs_info),
3110 leaf_space_used(leaf, 0, nritems), nritems);
3111 }
3112 return ret;
3113 }
3114
3115 /*
3116 * min slot controls the lowest index we're willing to push to the
3117 * right. We'll push up to and including min_slot, but no lower
3118 */
__push_leaf_right(struct btrfs_trans_handle * trans,struct btrfs_path * path,int data_size,bool empty,struct extent_buffer * right,int free_space,u32 left_nritems,u32 min_slot)3119 static noinline int __push_leaf_right(struct btrfs_trans_handle *trans,
3120 struct btrfs_path *path,
3121 int data_size, bool empty,
3122 struct extent_buffer *right,
3123 int free_space, u32 left_nritems,
3124 u32 min_slot)
3125 {
3126 struct btrfs_fs_info *fs_info = right->fs_info;
3127 struct extent_buffer *left = path->nodes[0];
3128 struct extent_buffer *upper = path->nodes[1];
3129 struct btrfs_disk_key disk_key;
3130 int slot;
3131 u32 i;
3132 int push_space = 0;
3133 int push_items = 0;
3134 u32 nr;
3135 u32 right_nritems;
3136 u32 data_end;
3137 u32 this_item_size;
3138
3139 if (empty)
3140 nr = 0;
3141 else
3142 nr = max_t(u32, 1, min_slot);
3143
3144 if (path->slots[0] >= left_nritems)
3145 push_space += data_size;
3146
3147 slot = path->slots[1];
3148 i = left_nritems - 1;
3149 while (i >= nr) {
3150 if (!empty && push_items > 0) {
3151 if (path->slots[0] > i)
3152 break;
3153 if (path->slots[0] == i) {
3154 int space = btrfs_leaf_free_space(left);
3155
3156 if (space + push_space * 2 > free_space)
3157 break;
3158 }
3159 }
3160
3161 if (path->slots[0] == i)
3162 push_space += data_size;
3163
3164 this_item_size = btrfs_item_size(left, i);
3165 if (this_item_size + sizeof(struct btrfs_item) +
3166 push_space > free_space)
3167 break;
3168
3169 push_items++;
3170 push_space += this_item_size + sizeof(struct btrfs_item);
3171 if (i == 0)
3172 break;
3173 i--;
3174 }
3175
3176 if (push_items == 0)
3177 goto out_unlock;
3178
3179 WARN_ON(!empty && push_items == left_nritems);
3180
3181 /* push left to right */
3182 right_nritems = btrfs_header_nritems(right);
3183
3184 push_space = btrfs_item_data_end(left, left_nritems - push_items);
3185 push_space -= leaf_data_end(left);
3186
3187 /* make room in the right data area */
3188 data_end = leaf_data_end(right);
3189 memmove_leaf_data(right, data_end - push_space, data_end,
3190 BTRFS_LEAF_DATA_SIZE(fs_info) - data_end);
3191
3192 /* copy from the left data area */
3193 copy_leaf_data(right, left, BTRFS_LEAF_DATA_SIZE(fs_info) - push_space,
3194 leaf_data_end(left), push_space);
3195
3196 memmove_leaf_items(right, push_items, 0, right_nritems);
3197
3198 /* copy the items from left to right */
3199 copy_leaf_items(right, left, 0, left_nritems - push_items, push_items);
3200
3201 /* update the item pointers */
3202 right_nritems += push_items;
3203 btrfs_set_header_nritems(right, right_nritems);
3204 push_space = BTRFS_LEAF_DATA_SIZE(fs_info);
3205 for (i = 0; i < right_nritems; i++) {
3206 push_space -= btrfs_item_size(right, i);
3207 btrfs_set_item_offset(right, i, push_space);
3208 }
3209
3210 left_nritems -= push_items;
3211 btrfs_set_header_nritems(left, left_nritems);
3212
3213 if (left_nritems)
3214 btrfs_mark_buffer_dirty(trans, left);
3215 else
3216 btrfs_clear_buffer_dirty(trans, left);
3217
3218 btrfs_mark_buffer_dirty(trans, right);
3219
3220 btrfs_item_key(right, &disk_key, 0);
3221 btrfs_set_node_key(upper, &disk_key, slot + 1);
3222 btrfs_mark_buffer_dirty(trans, upper);
3223
3224 /* then fixup the leaf pointer in the path */
3225 if (path->slots[0] >= left_nritems) {
3226 path->slots[0] -= left_nritems;
3227 btrfs_tree_unlock(left);
3228 free_extent_buffer(left);
3229 path->nodes[0] = right;
3230 path->slots[1] += 1;
3231 } else {
3232 btrfs_tree_unlock(right);
3233 free_extent_buffer(right);
3234 }
3235 return 0;
3236
3237 out_unlock:
3238 btrfs_tree_unlock(right);
3239 free_extent_buffer(right);
3240 return 1;
3241 }
3242
3243 /*
3244 * push some data in the path leaf to the right, trying to free up at
3245 * least data_size bytes. returns zero if the push worked, nonzero otherwise
3246 *
3247 * returns 1 if the push failed because the other node didn't have enough
3248 * room, 0 if everything worked out and < 0 if there were major errors.
3249 *
3250 * this will push starting from min_slot to the end of the leaf. It won't
3251 * push any slot lower than min_slot
3252 */
push_leaf_right(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,int min_data_size,int data_size,bool empty,u32 min_slot)3253 static int push_leaf_right(struct btrfs_trans_handle *trans, struct btrfs_root
3254 *root, struct btrfs_path *path,
3255 int min_data_size, int data_size,
3256 bool empty, u32 min_slot)
3257 {
3258 struct extent_buffer *left = path->nodes[0];
3259 struct extent_buffer *right;
3260 struct extent_buffer *upper;
3261 int slot;
3262 int free_space;
3263 u32 left_nritems;
3264 int ret;
3265
3266 if (!path->nodes[1])
3267 return 1;
3268
3269 slot = path->slots[1];
3270 upper = path->nodes[1];
3271 if (slot >= btrfs_header_nritems(upper) - 1)
3272 return 1;
3273
3274 btrfs_assert_tree_write_locked(path->nodes[1]);
3275
3276 right = btrfs_read_node_slot(upper, slot + 1);
3277 if (IS_ERR(right))
3278 return PTR_ERR(right);
3279
3280 btrfs_tree_lock_nested(right, BTRFS_NESTING_RIGHT);
3281
3282 free_space = btrfs_leaf_free_space(right);
3283 if (free_space < data_size)
3284 goto out_unlock;
3285
3286 ret = btrfs_cow_block(trans, root, right, upper,
3287 slot + 1, &right, BTRFS_NESTING_RIGHT_COW);
3288 if (ret)
3289 goto out_unlock;
3290
3291 left_nritems = btrfs_header_nritems(left);
3292 if (left_nritems == 0)
3293 goto out_unlock;
3294
3295 if (unlikely(check_sibling_keys(left, right))) {
3296 ret = -EUCLEAN;
3297 btrfs_abort_transaction(trans, ret);
3298 btrfs_tree_unlock(right);
3299 free_extent_buffer(right);
3300 return ret;
3301 }
3302 if (path->slots[0] == left_nritems && !empty) {
3303 /* Key greater than all keys in the leaf, right neighbor has
3304 * enough room for it and we're not emptying our leaf to delete
3305 * it, therefore use right neighbor to insert the new item and
3306 * no need to touch/dirty our left leaf. */
3307 btrfs_tree_unlock(left);
3308 free_extent_buffer(left);
3309 path->nodes[0] = right;
3310 path->slots[0] = 0;
3311 path->slots[1]++;
3312 return 0;
3313 }
3314
3315 return __push_leaf_right(trans, path, min_data_size, empty, right,
3316 free_space, left_nritems, min_slot);
3317 out_unlock:
3318 btrfs_tree_unlock(right);
3319 free_extent_buffer(right);
3320 return 1;
3321 }
3322
3323 /*
3324 * push some data in the path leaf to the left, trying to free up at
3325 * least data_size bytes. returns zero if the push worked, nonzero otherwise
3326 *
3327 * max_slot can put a limit on how far into the leaf we'll push items. The
3328 * item at 'max_slot' won't be touched. Use (u32)-1 to make us do all the
3329 * items
3330 */
__push_leaf_left(struct btrfs_trans_handle * trans,struct btrfs_path * path,int data_size,bool empty,struct extent_buffer * left,int free_space,u32 right_nritems,u32 max_slot)3331 static noinline int __push_leaf_left(struct btrfs_trans_handle *trans,
3332 struct btrfs_path *path, int data_size,
3333 bool empty, struct extent_buffer *left,
3334 int free_space, u32 right_nritems,
3335 u32 max_slot)
3336 {
3337 struct btrfs_fs_info *fs_info = left->fs_info;
3338 struct btrfs_disk_key disk_key;
3339 struct extent_buffer *right = path->nodes[0];
3340 int i;
3341 int push_space = 0;
3342 int push_items = 0;
3343 u32 old_left_nritems;
3344 u32 nr;
3345 int ret = 0;
3346 u32 this_item_size;
3347 u32 old_left_item_size;
3348
3349 if (empty)
3350 nr = min(right_nritems, max_slot);
3351 else
3352 nr = min(right_nritems - 1, max_slot);
3353
3354 for (i = 0; i < nr; i++) {
3355 if (!empty && push_items > 0) {
3356 if (path->slots[0] < i)
3357 break;
3358 if (path->slots[0] == i) {
3359 int space = btrfs_leaf_free_space(right);
3360
3361 if (space + push_space * 2 > free_space)
3362 break;
3363 }
3364 }
3365
3366 if (path->slots[0] == i)
3367 push_space += data_size;
3368
3369 this_item_size = btrfs_item_size(right, i);
3370 if (this_item_size + sizeof(struct btrfs_item) + push_space >
3371 free_space)
3372 break;
3373
3374 push_items++;
3375 push_space += this_item_size + sizeof(struct btrfs_item);
3376 }
3377
3378 if (push_items == 0) {
3379 ret = 1;
3380 goto out;
3381 }
3382 WARN_ON(!empty && push_items == btrfs_header_nritems(right));
3383
3384 /* push data from right to left */
3385 copy_leaf_items(left, right, btrfs_header_nritems(left), 0, push_items);
3386
3387 push_space = BTRFS_LEAF_DATA_SIZE(fs_info) -
3388 btrfs_item_offset(right, push_items - 1);
3389
3390 copy_leaf_data(left, right, leaf_data_end(left) - push_space,
3391 btrfs_item_offset(right, push_items - 1), push_space);
3392 old_left_nritems = btrfs_header_nritems(left);
3393 BUG_ON(old_left_nritems <= 0);
3394
3395 old_left_item_size = btrfs_item_offset(left, old_left_nritems - 1);
3396 for (i = old_left_nritems; i < old_left_nritems + push_items; i++) {
3397 u32 ioff;
3398
3399 ioff = btrfs_item_offset(left, i);
3400 btrfs_set_item_offset(left, i,
3401 ioff - (BTRFS_LEAF_DATA_SIZE(fs_info) - old_left_item_size));
3402 }
3403 btrfs_set_header_nritems(left, old_left_nritems + push_items);
3404
3405 /* fixup right node */
3406 if (unlikely(push_items > right_nritems)) {
3407 ret = -EUCLEAN;
3408 btrfs_abort_transaction(trans, ret);
3409 btrfs_crit(fs_info, "push items (%d) > right leaf items (%u)",
3410 push_items, right_nritems);
3411 goto out;
3412 }
3413
3414 if (push_items < right_nritems) {
3415 push_space = btrfs_item_offset(right, push_items - 1) -
3416 leaf_data_end(right);
3417 memmove_leaf_data(right,
3418 BTRFS_LEAF_DATA_SIZE(fs_info) - push_space,
3419 leaf_data_end(right), push_space);
3420
3421 memmove_leaf_items(right, 0, push_items,
3422 btrfs_header_nritems(right) - push_items);
3423 }
3424
3425 right_nritems -= push_items;
3426 btrfs_set_header_nritems(right, right_nritems);
3427 push_space = BTRFS_LEAF_DATA_SIZE(fs_info);
3428 for (i = 0; i < right_nritems; i++) {
3429 push_space = push_space - btrfs_item_size(right, i);
3430 btrfs_set_item_offset(right, i, push_space);
3431 }
3432
3433 btrfs_mark_buffer_dirty(trans, left);
3434 if (right_nritems)
3435 btrfs_mark_buffer_dirty(trans, right);
3436 else
3437 btrfs_clear_buffer_dirty(trans, right);
3438
3439 btrfs_item_key(right, &disk_key, 0);
3440 fixup_low_keys(trans, path, &disk_key, 1);
3441
3442 /* then fixup the leaf pointer in the path */
3443 if (path->slots[0] < push_items) {
3444 path->slots[0] += old_left_nritems;
3445 btrfs_tree_unlock(right);
3446 free_extent_buffer(right);
3447 path->nodes[0] = left;
3448 path->slots[1] -= 1;
3449 } else {
3450 btrfs_tree_unlock(left);
3451 free_extent_buffer(left);
3452 path->slots[0] -= push_items;
3453 }
3454 BUG_ON(path->slots[0] < 0);
3455 return ret;
3456 out:
3457 btrfs_tree_unlock(left);
3458 free_extent_buffer(left);
3459 return ret;
3460 }
3461
3462 /*
3463 * push some data in the path leaf to the left, trying to free up at
3464 * least data_size bytes. returns zero if the push worked, nonzero otherwise
3465 *
3466 * max_slot can put a limit on how far into the leaf we'll push items. The
3467 * item at 'max_slot' won't be touched. Use (u32)-1 to make us push all the
3468 * items
3469 */
push_leaf_left(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,int min_data_size,int data_size,int empty,u32 max_slot)3470 static int push_leaf_left(struct btrfs_trans_handle *trans, struct btrfs_root
3471 *root, struct btrfs_path *path, int min_data_size,
3472 int data_size, int empty, u32 max_slot)
3473 {
3474 struct extent_buffer *right = path->nodes[0];
3475 struct extent_buffer *left;
3476 int slot;
3477 int free_space;
3478 u32 right_nritems;
3479 int ret = 0;
3480
3481 slot = path->slots[1];
3482 if (slot == 0)
3483 return 1;
3484 if (!path->nodes[1])
3485 return 1;
3486
3487 right_nritems = btrfs_header_nritems(right);
3488 if (right_nritems == 0)
3489 return 1;
3490
3491 btrfs_assert_tree_write_locked(path->nodes[1]);
3492
3493 left = btrfs_read_node_slot(path->nodes[1], slot - 1);
3494 if (IS_ERR(left))
3495 return PTR_ERR(left);
3496
3497 btrfs_tree_lock_nested(left, BTRFS_NESTING_LEFT);
3498
3499 free_space = btrfs_leaf_free_space(left);
3500 if (free_space < data_size) {
3501 ret = 1;
3502 goto out;
3503 }
3504
3505 ret = btrfs_cow_block(trans, root, left,
3506 path->nodes[1], slot - 1, &left,
3507 BTRFS_NESTING_LEFT_COW);
3508 if (ret) {
3509 /* we hit -ENOSPC, but it isn't fatal here */
3510 if (ret == -ENOSPC)
3511 ret = 1;
3512 goto out;
3513 }
3514
3515 if (unlikely(check_sibling_keys(left, right))) {
3516 ret = -EUCLEAN;
3517 btrfs_abort_transaction(trans, ret);
3518 goto out;
3519 }
3520 return __push_leaf_left(trans, path, min_data_size, empty, left,
3521 free_space, right_nritems, max_slot);
3522 out:
3523 btrfs_tree_unlock(left);
3524 free_extent_buffer(left);
3525 return ret;
3526 }
3527
3528 /*
3529 * split the path's leaf in two, making sure there is at least data_size
3530 * available for the resulting leaf level of the path.
3531 */
copy_for_split(struct btrfs_trans_handle * trans,struct btrfs_path * path,struct extent_buffer * l,struct extent_buffer * right,int slot,int mid,int nritems)3532 static noinline int copy_for_split(struct btrfs_trans_handle *trans,
3533 struct btrfs_path *path,
3534 struct extent_buffer *l,
3535 struct extent_buffer *right,
3536 int slot, int mid, int nritems)
3537 {
3538 struct btrfs_fs_info *fs_info = trans->fs_info;
3539 int data_copy_size;
3540 int rt_data_off;
3541 int i;
3542 int ret;
3543 struct btrfs_disk_key disk_key;
3544
3545 nritems = nritems - mid;
3546 btrfs_set_header_nritems(right, nritems);
3547 data_copy_size = btrfs_item_data_end(l, mid) - leaf_data_end(l);
3548
3549 copy_leaf_items(right, l, 0, mid, nritems);
3550
3551 copy_leaf_data(right, l, BTRFS_LEAF_DATA_SIZE(fs_info) - data_copy_size,
3552 leaf_data_end(l), data_copy_size);
3553
3554 rt_data_off = BTRFS_LEAF_DATA_SIZE(fs_info) - btrfs_item_data_end(l, mid);
3555
3556 for (i = 0; i < nritems; i++) {
3557 u32 ioff;
3558
3559 ioff = btrfs_item_offset(right, i);
3560 btrfs_set_item_offset(right, i, ioff + rt_data_off);
3561 }
3562
3563 btrfs_set_header_nritems(l, mid);
3564 btrfs_item_key(right, &disk_key, 0);
3565 ret = insert_ptr(trans, path, &disk_key, right->start, path->slots[1] + 1, 1);
3566 if (ret < 0)
3567 return ret;
3568
3569 btrfs_mark_buffer_dirty(trans, right);
3570 btrfs_mark_buffer_dirty(trans, l);
3571 BUG_ON(path->slots[0] != slot);
3572
3573 if (mid <= slot) {
3574 btrfs_tree_unlock(path->nodes[0]);
3575 free_extent_buffer(path->nodes[0]);
3576 path->nodes[0] = right;
3577 path->slots[0] -= mid;
3578 path->slots[1] += 1;
3579 } else {
3580 btrfs_tree_unlock(right);
3581 free_extent_buffer(right);
3582 }
3583
3584 BUG_ON(path->slots[0] < 0);
3585
3586 return 0;
3587 }
3588
3589 /*
3590 * double splits happen when we need to insert a big item in the middle
3591 * of a leaf. A double split can leave us with 3 mostly empty leaves:
3592 * leaf: [ slots 0 - N] [ our target ] [ N + 1 - total in leaf ]
3593 * A B C
3594 *
3595 * We avoid this by trying to push the items on either side of our target
3596 * into the adjacent leaves. If all goes well we can avoid the double split
3597 * completely.
3598 */
push_for_double_split(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,int data_size)3599 static noinline int push_for_double_split(struct btrfs_trans_handle *trans,
3600 struct btrfs_root *root,
3601 struct btrfs_path *path,
3602 int data_size)
3603 {
3604 int ret;
3605 int progress = 0;
3606 int slot;
3607 u32 nritems;
3608 int space_needed = data_size;
3609
3610 slot = path->slots[0];
3611 if (slot < btrfs_header_nritems(path->nodes[0]))
3612 space_needed -= btrfs_leaf_free_space(path->nodes[0]);
3613
3614 /*
3615 * try to push all the items after our slot into the
3616 * right leaf
3617 */
3618 ret = push_leaf_right(trans, root, path, 1, space_needed, 0, slot);
3619 if (ret < 0)
3620 return ret;
3621
3622 if (ret == 0)
3623 progress++;
3624
3625 nritems = btrfs_header_nritems(path->nodes[0]);
3626 /*
3627 * our goal is to get our slot at the start or end of a leaf. If
3628 * we've done so we're done
3629 */
3630 if (path->slots[0] == 0 || path->slots[0] == nritems)
3631 return 0;
3632
3633 if (btrfs_leaf_free_space(path->nodes[0]) >= data_size)
3634 return 0;
3635
3636 /* try to push all the items before our slot into the next leaf */
3637 slot = path->slots[0];
3638 space_needed = data_size;
3639 if (slot > 0)
3640 space_needed -= btrfs_leaf_free_space(path->nodes[0]);
3641 ret = push_leaf_left(trans, root, path, 1, space_needed, 0, slot);
3642 if (ret < 0)
3643 return ret;
3644
3645 if (ret == 0)
3646 progress++;
3647
3648 if (progress)
3649 return 0;
3650 return 1;
3651 }
3652
3653 /*
3654 * split the path's leaf in two, making sure there is at least data_size
3655 * available for the resulting leaf level of the path.
3656 *
3657 * returns 0 if all went well and < 0 on failure.
3658 */
split_leaf(struct btrfs_trans_handle * trans,struct btrfs_root * root,const struct btrfs_key * ins_key,struct btrfs_path * path,int data_size,bool extend)3659 static noinline int split_leaf(struct btrfs_trans_handle *trans,
3660 struct btrfs_root *root,
3661 const struct btrfs_key *ins_key,
3662 struct btrfs_path *path, int data_size,
3663 bool extend)
3664 {
3665 struct btrfs_disk_key disk_key;
3666 struct extent_buffer *l;
3667 u32 nritems;
3668 int mid;
3669 int slot;
3670 struct extent_buffer *right;
3671 struct btrfs_fs_info *fs_info = root->fs_info;
3672 int ret = 0;
3673 int wret;
3674 int split;
3675 int num_doubles = 0;
3676 int tried_avoid_double = 0;
3677
3678 l = path->nodes[0];
3679 slot = path->slots[0];
3680 if (extend && data_size + btrfs_item_size(l, slot) +
3681 sizeof(struct btrfs_item) > BTRFS_LEAF_DATA_SIZE(fs_info))
3682 return -EOVERFLOW;
3683
3684 /* first try to make some room by pushing left and right */
3685 if (data_size && path->nodes[1]) {
3686 int space_needed = data_size;
3687
3688 if (slot < btrfs_header_nritems(l))
3689 space_needed -= btrfs_leaf_free_space(l);
3690
3691 wret = push_leaf_right(trans, root, path, space_needed,
3692 space_needed, 0, 0);
3693 if (wret < 0)
3694 return wret;
3695 if (wret) {
3696 space_needed = data_size;
3697 if (slot > 0)
3698 space_needed -= btrfs_leaf_free_space(l);
3699 wret = push_leaf_left(trans, root, path, space_needed,
3700 space_needed, 0, (u32)-1);
3701 if (wret < 0)
3702 return wret;
3703 }
3704 l = path->nodes[0];
3705
3706 /* did the pushes work? */
3707 if (btrfs_leaf_free_space(l) >= data_size)
3708 return 0;
3709 }
3710
3711 if (!path->nodes[1]) {
3712 ret = insert_new_root(trans, root, path, 1);
3713 if (ret)
3714 return ret;
3715 }
3716 again:
3717 split = 1;
3718 l = path->nodes[0];
3719 slot = path->slots[0];
3720 nritems = btrfs_header_nritems(l);
3721 mid = (nritems + 1) / 2;
3722
3723 if (mid <= slot) {
3724 if (nritems == 1 ||
3725 leaf_space_used(l, mid, nritems - mid) + data_size >
3726 BTRFS_LEAF_DATA_SIZE(fs_info)) {
3727 if (slot >= nritems) {
3728 split = 0;
3729 } else {
3730 mid = slot;
3731 if (mid != nritems &&
3732 leaf_space_used(l, mid, nritems - mid) +
3733 data_size > BTRFS_LEAF_DATA_SIZE(fs_info)) {
3734 if (data_size && !tried_avoid_double)
3735 goto push_for_double;
3736 split = 2;
3737 }
3738 }
3739 }
3740 } else {
3741 if (leaf_space_used(l, 0, mid) + data_size >
3742 BTRFS_LEAF_DATA_SIZE(fs_info)) {
3743 if (!extend && data_size && slot == 0) {
3744 split = 0;
3745 } else if ((extend || !data_size) && slot == 0) {
3746 mid = 1;
3747 } else {
3748 mid = slot;
3749 if (mid != nritems &&
3750 leaf_space_used(l, mid, nritems - mid) +
3751 data_size > BTRFS_LEAF_DATA_SIZE(fs_info)) {
3752 if (data_size && !tried_avoid_double)
3753 goto push_for_double;
3754 split = 2;
3755 }
3756 }
3757 }
3758 }
3759
3760 if (split == 0)
3761 btrfs_cpu_key_to_disk(&disk_key, ins_key);
3762 else
3763 btrfs_item_key(l, &disk_key, mid);
3764
3765 /*
3766 * We have to about BTRFS_NESTING_NEW_ROOT here if we've done a double
3767 * split, because we're only allowed to have MAX_LOCKDEP_SUBCLASSES
3768 * subclasses, which is 8 at the time of this patch, and we've maxed it
3769 * out. In the future we could add a
3770 * BTRFS_NESTING_SPLIT_THE_SPLITTENING if we need to, but for now just
3771 * use BTRFS_NESTING_NEW_ROOT.
3772 */
3773 right = btrfs_alloc_tree_block(trans, root, 0, btrfs_root_id(root),
3774 &disk_key, 0, l->start, 0, 0,
3775 num_doubles ? BTRFS_NESTING_NEW_ROOT :
3776 BTRFS_NESTING_SPLIT);
3777 if (IS_ERR(right))
3778 return PTR_ERR(right);
3779
3780 root_add_used_bytes(root);
3781
3782 if (split == 0) {
3783 if (mid <= slot) {
3784 btrfs_set_header_nritems(right, 0);
3785 ret = insert_ptr(trans, path, &disk_key,
3786 right->start, path->slots[1] + 1, 1);
3787 if (ret < 0) {
3788 btrfs_tree_unlock(right);
3789 free_extent_buffer(right);
3790 return ret;
3791 }
3792 btrfs_tree_unlock(path->nodes[0]);
3793 free_extent_buffer(path->nodes[0]);
3794 path->nodes[0] = right;
3795 path->slots[0] = 0;
3796 path->slots[1] += 1;
3797 } else {
3798 btrfs_set_header_nritems(right, 0);
3799 ret = insert_ptr(trans, path, &disk_key,
3800 right->start, path->slots[1], 1);
3801 if (ret < 0) {
3802 btrfs_tree_unlock(right);
3803 free_extent_buffer(right);
3804 return ret;
3805 }
3806 btrfs_tree_unlock(path->nodes[0]);
3807 free_extent_buffer(path->nodes[0]);
3808 path->nodes[0] = right;
3809 path->slots[0] = 0;
3810 if (path->slots[1] == 0)
3811 fixup_low_keys(trans, path, &disk_key, 1);
3812 }
3813 /*
3814 * We create a new leaf 'right' for the required ins_len and
3815 * we'll do btrfs_mark_buffer_dirty() on this leaf after copying
3816 * the content of ins_len to 'right'.
3817 */
3818 return ret;
3819 }
3820
3821 ret = copy_for_split(trans, path, l, right, slot, mid, nritems);
3822 if (ret < 0) {
3823 btrfs_tree_unlock(right);
3824 free_extent_buffer(right);
3825 return ret;
3826 }
3827
3828 if (split == 2) {
3829 BUG_ON(num_doubles != 0);
3830 num_doubles++;
3831 goto again;
3832 }
3833
3834 return 0;
3835
3836 push_for_double:
3837 push_for_double_split(trans, root, path, data_size);
3838 tried_avoid_double = 1;
3839 if (btrfs_leaf_free_space(path->nodes[0]) >= data_size)
3840 return 0;
3841 goto again;
3842 }
3843
setup_leaf_for_split(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,int ins_len)3844 static noinline int setup_leaf_for_split(struct btrfs_trans_handle *trans,
3845 struct btrfs_root *root,
3846 struct btrfs_path *path, int ins_len)
3847 {
3848 struct btrfs_key key;
3849 struct extent_buffer *leaf;
3850 struct btrfs_file_extent_item *fi;
3851 u64 extent_len = 0;
3852 u32 item_size;
3853 int ret;
3854
3855 leaf = path->nodes[0];
3856 btrfs_item_key_to_cpu(leaf, &key, path->slots[0]);
3857
3858 BUG_ON(key.type != BTRFS_EXTENT_DATA_KEY &&
3859 key.type != BTRFS_RAID_STRIPE_KEY &&
3860 key.type != BTRFS_EXTENT_CSUM_KEY);
3861
3862 if (btrfs_leaf_free_space(leaf) >= ins_len)
3863 return 0;
3864
3865 item_size = btrfs_item_size(leaf, path->slots[0]);
3866 if (key.type == BTRFS_EXTENT_DATA_KEY) {
3867 fi = btrfs_item_ptr(leaf, path->slots[0],
3868 struct btrfs_file_extent_item);
3869 extent_len = btrfs_file_extent_num_bytes(leaf, fi);
3870 }
3871 btrfs_release_path(path);
3872
3873 path->keep_locks = true;
3874 path->search_for_split = true;
3875 ret = btrfs_search_slot(trans, root, &key, path, 0, 1);
3876 path->search_for_split = false;
3877 if (ret > 0)
3878 ret = -EAGAIN;
3879 if (ret < 0)
3880 goto err;
3881
3882 ret = -EAGAIN;
3883 leaf = path->nodes[0];
3884 /* if our item isn't there, return now */
3885 if (item_size != btrfs_item_size(leaf, path->slots[0]))
3886 goto err;
3887
3888 /* the leaf has changed, it now has room. return now */
3889 if (btrfs_leaf_free_space(path->nodes[0]) >= ins_len)
3890 goto err;
3891
3892 if (key.type == BTRFS_EXTENT_DATA_KEY) {
3893 fi = btrfs_item_ptr(leaf, path->slots[0],
3894 struct btrfs_file_extent_item);
3895 if (extent_len != btrfs_file_extent_num_bytes(leaf, fi))
3896 goto err;
3897 }
3898
3899 ret = split_leaf(trans, root, &key, path, ins_len, 1);
3900 if (ret)
3901 goto err;
3902
3903 path->keep_locks = false;
3904 btrfs_unlock_up_safe(path, 1);
3905 return 0;
3906 err:
3907 path->keep_locks = false;
3908 return ret;
3909 }
3910
split_item(struct btrfs_trans_handle * trans,struct btrfs_path * path,const struct btrfs_key * new_key,unsigned long split_offset)3911 static noinline int split_item(struct btrfs_trans_handle *trans,
3912 struct btrfs_path *path,
3913 const struct btrfs_key *new_key,
3914 unsigned long split_offset)
3915 {
3916 struct extent_buffer *leaf;
3917 int orig_slot, slot;
3918 char *buf;
3919 u32 nritems;
3920 u32 item_size;
3921 u32 orig_offset;
3922 struct btrfs_disk_key disk_key;
3923
3924 leaf = path->nodes[0];
3925 /*
3926 * Shouldn't happen because the caller must have previously called
3927 * setup_leaf_for_split() to make room for the new item in the leaf.
3928 */
3929 if (WARN_ON(btrfs_leaf_free_space(leaf) < sizeof(struct btrfs_item)))
3930 return -ENOSPC;
3931
3932 orig_slot = path->slots[0];
3933 orig_offset = btrfs_item_offset(leaf, path->slots[0]);
3934 item_size = btrfs_item_size(leaf, path->slots[0]);
3935
3936 buf = kmalloc(item_size, GFP_NOFS);
3937 if (!buf)
3938 return -ENOMEM;
3939
3940 read_extent_buffer(leaf, buf, btrfs_item_ptr_offset(leaf,
3941 path->slots[0]), item_size);
3942
3943 slot = path->slots[0] + 1;
3944 nritems = btrfs_header_nritems(leaf);
3945 if (slot != nritems) {
3946 /* shift the items */
3947 memmove_leaf_items(leaf, slot + 1, slot, nritems - slot);
3948 }
3949
3950 btrfs_cpu_key_to_disk(&disk_key, new_key);
3951 btrfs_set_item_key(leaf, &disk_key, slot);
3952
3953 btrfs_set_item_offset(leaf, slot, orig_offset);
3954 btrfs_set_item_size(leaf, slot, item_size - split_offset);
3955
3956 btrfs_set_item_offset(leaf, orig_slot,
3957 orig_offset + item_size - split_offset);
3958 btrfs_set_item_size(leaf, orig_slot, split_offset);
3959
3960 btrfs_set_header_nritems(leaf, nritems + 1);
3961
3962 /* write the data for the start of the original item */
3963 write_extent_buffer(leaf, buf,
3964 btrfs_item_ptr_offset(leaf, path->slots[0]),
3965 split_offset);
3966
3967 /* write the data for the new item */
3968 write_extent_buffer(leaf, buf + split_offset,
3969 btrfs_item_ptr_offset(leaf, slot),
3970 item_size - split_offset);
3971 btrfs_mark_buffer_dirty(trans, leaf);
3972
3973 BUG_ON(btrfs_leaf_free_space(leaf) < 0);
3974 kfree(buf);
3975 return 0;
3976 }
3977
3978 /*
3979 * This function splits a single item into two items,
3980 * giving 'new_key' to the new item and splitting the
3981 * old one at split_offset (from the start of the item).
3982 *
3983 * The path may be released by this operation. After
3984 * the split, the path is pointing to the old item. The
3985 * new item is going to be in the same node as the old one.
3986 *
3987 * Note, the item being split must be smaller enough to live alone on
3988 * a tree block with room for one extra struct btrfs_item
3989 *
3990 * This allows us to split the item in place, keeping a lock on the
3991 * leaf the entire time.
3992 */
btrfs_split_item(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,const struct btrfs_key * new_key,unsigned long split_offset)3993 int btrfs_split_item(struct btrfs_trans_handle *trans,
3994 struct btrfs_root *root,
3995 struct btrfs_path *path,
3996 const struct btrfs_key *new_key,
3997 unsigned long split_offset)
3998 {
3999 int ret;
4000 ret = setup_leaf_for_split(trans, root, path,
4001 sizeof(struct btrfs_item));
4002 if (ret)
4003 return ret;
4004
4005 return split_item(trans, path, new_key, split_offset);
4006 }
4007
4008 /*
4009 * make the item pointed to by the path smaller. new_size indicates
4010 * how small to make it, and from_end tells us if we just chop bytes
4011 * off the end of the item or if we shift the item to chop bytes off
4012 * the front.
4013 */
btrfs_truncate_item(struct btrfs_trans_handle * trans,const struct btrfs_path * path,u32 new_size,int from_end)4014 void btrfs_truncate_item(struct btrfs_trans_handle *trans,
4015 const struct btrfs_path *path, u32 new_size, int from_end)
4016 {
4017 int slot;
4018 struct extent_buffer *leaf;
4019 u32 nritems;
4020 unsigned int data_end;
4021 unsigned int old_data_start;
4022 unsigned int old_size;
4023 unsigned int size_diff;
4024 int i;
4025
4026 leaf = path->nodes[0];
4027 slot = path->slots[0];
4028
4029 old_size = btrfs_item_size(leaf, slot);
4030 if (old_size == new_size)
4031 return;
4032
4033 nritems = btrfs_header_nritems(leaf);
4034 data_end = leaf_data_end(leaf);
4035
4036 old_data_start = btrfs_item_offset(leaf, slot);
4037
4038 size_diff = old_size - new_size;
4039
4040 BUG_ON(slot < 0);
4041 BUG_ON(slot >= nritems);
4042
4043 /*
4044 * item0..itemN ... dataN.offset..dataN.size .. data0.size
4045 */
4046 /* first correct the data pointers */
4047 for (i = slot; i < nritems; i++) {
4048 u32 ioff;
4049
4050 ioff = btrfs_item_offset(leaf, i);
4051 btrfs_set_item_offset(leaf, i, ioff + size_diff);
4052 }
4053
4054 /* shift the data */
4055 if (from_end) {
4056 memmove_leaf_data(leaf, data_end + size_diff, data_end,
4057 old_data_start + new_size - data_end);
4058 } else {
4059 struct btrfs_disk_key disk_key;
4060 u64 offset;
4061
4062 btrfs_item_key(leaf, &disk_key, slot);
4063
4064 if (btrfs_disk_key_type(&disk_key) == BTRFS_EXTENT_DATA_KEY) {
4065 unsigned long ptr;
4066 struct btrfs_file_extent_item *fi;
4067
4068 fi = btrfs_item_ptr(leaf, slot,
4069 struct btrfs_file_extent_item);
4070 fi = (struct btrfs_file_extent_item *)(
4071 (unsigned long)fi - size_diff);
4072
4073 if (btrfs_file_extent_type(leaf, fi) ==
4074 BTRFS_FILE_EXTENT_INLINE) {
4075 ptr = btrfs_item_ptr_offset(leaf, slot);
4076 memmove_extent_buffer(leaf, ptr,
4077 (unsigned long)fi,
4078 BTRFS_FILE_EXTENT_INLINE_DATA_START);
4079 }
4080 }
4081
4082 memmove_leaf_data(leaf, data_end + size_diff, data_end,
4083 old_data_start - data_end);
4084
4085 offset = btrfs_disk_key_offset(&disk_key);
4086 btrfs_set_disk_key_offset(&disk_key, offset + size_diff);
4087 btrfs_set_item_key(leaf, &disk_key, slot);
4088 if (slot == 0)
4089 fixup_low_keys(trans, path, &disk_key, 1);
4090 }
4091
4092 btrfs_set_item_size(leaf, slot, new_size);
4093 btrfs_mark_buffer_dirty(trans, leaf);
4094
4095 if (unlikely(btrfs_leaf_free_space(leaf) < 0)) {
4096 btrfs_print_leaf(leaf);
4097 BUG();
4098 }
4099 }
4100
4101 /*
4102 * make the item pointed to by the path bigger, data_size is the added size.
4103 */
btrfs_extend_item(struct btrfs_trans_handle * trans,const struct btrfs_path * path,u32 data_size)4104 void btrfs_extend_item(struct btrfs_trans_handle *trans,
4105 const struct btrfs_path *path, u32 data_size)
4106 {
4107 int slot;
4108 struct extent_buffer *leaf;
4109 u32 nritems;
4110 unsigned int data_end;
4111 unsigned int old_data;
4112 unsigned int old_size;
4113 int i;
4114
4115 leaf = path->nodes[0];
4116
4117 nritems = btrfs_header_nritems(leaf);
4118 data_end = leaf_data_end(leaf);
4119
4120 if (unlikely(btrfs_leaf_free_space(leaf) < data_size)) {
4121 btrfs_print_leaf(leaf);
4122 BUG();
4123 }
4124 slot = path->slots[0];
4125 old_data = btrfs_item_data_end(leaf, slot);
4126
4127 BUG_ON(slot < 0);
4128 if (unlikely(slot >= nritems)) {
4129 btrfs_print_leaf(leaf);
4130 btrfs_crit(leaf->fs_info, "slot %d too large, nritems %d",
4131 slot, nritems);
4132 BUG();
4133 }
4134
4135 /*
4136 * item0..itemN ... dataN.offset..dataN.size .. data0.size
4137 */
4138 /* first correct the data pointers */
4139 for (i = slot; i < nritems; i++) {
4140 u32 ioff;
4141
4142 ioff = btrfs_item_offset(leaf, i);
4143 btrfs_set_item_offset(leaf, i, ioff - data_size);
4144 }
4145
4146 /* shift the data */
4147 memmove_leaf_data(leaf, data_end - data_size, data_end,
4148 old_data - data_end);
4149
4150 old_size = btrfs_item_size(leaf, slot);
4151 btrfs_set_item_size(leaf, slot, old_size + data_size);
4152 btrfs_mark_buffer_dirty(trans, leaf);
4153
4154 if (unlikely(btrfs_leaf_free_space(leaf) < 0)) {
4155 btrfs_print_leaf(leaf);
4156 BUG();
4157 }
4158 }
4159
4160 /*
4161 * Make space in the node before inserting one or more items.
4162 *
4163 * @trans: transaction handle
4164 * @root: root we are inserting items to
4165 * @path: points to the leaf/slot where we are going to insert new items
4166 * @batch: information about the batch of items to insert
4167 *
4168 * Main purpose is to save stack depth by doing the bulk of the work in a
4169 * function that doesn't call btrfs_search_slot
4170 */
setup_items_for_insert(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,const struct btrfs_item_batch * batch)4171 static void setup_items_for_insert(struct btrfs_trans_handle *trans,
4172 struct btrfs_root *root, struct btrfs_path *path,
4173 const struct btrfs_item_batch *batch)
4174 {
4175 struct btrfs_fs_info *fs_info = root->fs_info;
4176 int i;
4177 u32 nritems;
4178 unsigned int data_end;
4179 struct btrfs_disk_key disk_key;
4180 struct extent_buffer *leaf;
4181 int slot;
4182 u32 total_size;
4183
4184 /*
4185 * Before anything else, update keys in the parent and other ancestors
4186 * if needed, then release the write locks on them, so that other tasks
4187 * can use them while we modify the leaf.
4188 */
4189 if (path->slots[0] == 0) {
4190 btrfs_cpu_key_to_disk(&disk_key, &batch->keys[0]);
4191 fixup_low_keys(trans, path, &disk_key, 1);
4192 }
4193 btrfs_unlock_up_safe(path, 1);
4194
4195 leaf = path->nodes[0];
4196 slot = path->slots[0];
4197
4198 nritems = btrfs_header_nritems(leaf);
4199 data_end = leaf_data_end(leaf);
4200 total_size = batch->total_data_size + (batch->nr * sizeof(struct btrfs_item));
4201
4202 if (unlikely(btrfs_leaf_free_space(leaf) < total_size)) {
4203 btrfs_print_leaf(leaf);
4204 btrfs_crit(fs_info, "not enough freespace need %u have %d",
4205 total_size, btrfs_leaf_free_space(leaf));
4206 BUG();
4207 }
4208
4209 if (slot != nritems) {
4210 unsigned int old_data = btrfs_item_data_end(leaf, slot);
4211
4212 if (unlikely(old_data < data_end)) {
4213 btrfs_print_leaf(leaf);
4214 btrfs_crit(fs_info,
4215 "item at slot %d with data offset %u beyond data end of leaf %u",
4216 slot, old_data, data_end);
4217 BUG();
4218 }
4219 /*
4220 * item0..itemN ... dataN.offset..dataN.size .. data0.size
4221 */
4222 /* first correct the data pointers */
4223 for (i = slot; i < nritems; i++) {
4224 u32 ioff;
4225
4226 ioff = btrfs_item_offset(leaf, i);
4227 btrfs_set_item_offset(leaf, i,
4228 ioff - batch->total_data_size);
4229 }
4230 /* shift the items */
4231 memmove_leaf_items(leaf, slot + batch->nr, slot, nritems - slot);
4232
4233 /* shift the data */
4234 memmove_leaf_data(leaf, data_end - batch->total_data_size,
4235 data_end, old_data - data_end);
4236 data_end = old_data;
4237 }
4238
4239 /* setup the item for the new data */
4240 for (i = 0; i < batch->nr; i++) {
4241 btrfs_cpu_key_to_disk(&disk_key, &batch->keys[i]);
4242 btrfs_set_item_key(leaf, &disk_key, slot + i);
4243 data_end -= batch->data_sizes[i];
4244 btrfs_set_item_offset(leaf, slot + i, data_end);
4245 btrfs_set_item_size(leaf, slot + i, batch->data_sizes[i]);
4246 }
4247
4248 btrfs_set_header_nritems(leaf, nritems + batch->nr);
4249 btrfs_mark_buffer_dirty(trans, leaf);
4250
4251 if (unlikely(btrfs_leaf_free_space(leaf) < 0)) {
4252 btrfs_print_leaf(leaf);
4253 BUG();
4254 }
4255 }
4256
4257 /*
4258 * Insert a new item into a leaf.
4259 *
4260 * @trans: Transaction handle.
4261 * @root: The root of the btree.
4262 * @path: A path pointing to the target leaf and slot.
4263 * @key: The key of the new item.
4264 * @data_size: The size of the data associated with the new key.
4265 */
btrfs_setup_item_for_insert(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,const struct btrfs_key * key,u32 data_size)4266 void btrfs_setup_item_for_insert(struct btrfs_trans_handle *trans,
4267 struct btrfs_root *root,
4268 struct btrfs_path *path,
4269 const struct btrfs_key *key,
4270 u32 data_size)
4271 {
4272 struct btrfs_item_batch batch;
4273
4274 batch.keys = key;
4275 batch.data_sizes = &data_size;
4276 batch.total_data_size = data_size;
4277 batch.nr = 1;
4278
4279 setup_items_for_insert(trans, root, path, &batch);
4280 }
4281
4282 /*
4283 * Given a key and some data, insert items into the tree.
4284 * This does all the path init required, making room in the tree if needed.
4285 *
4286 * Returns: 0 on success
4287 * -EEXIST if the first key already exists
4288 * < 0 on other errors
4289 */
btrfs_insert_empty_items(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,const struct btrfs_item_batch * batch)4290 int btrfs_insert_empty_items(struct btrfs_trans_handle *trans,
4291 struct btrfs_root *root,
4292 struct btrfs_path *path,
4293 const struct btrfs_item_batch *batch)
4294 {
4295 int ret = 0;
4296 int slot;
4297 u32 total_size;
4298
4299 total_size = batch->total_data_size + (batch->nr * sizeof(struct btrfs_item));
4300 ret = btrfs_search_slot(trans, root, &batch->keys[0], path, total_size, 1);
4301 if (ret == 0)
4302 return -EEXIST;
4303 if (ret < 0)
4304 return ret;
4305
4306 slot = path->slots[0];
4307 BUG_ON(slot < 0);
4308
4309 setup_items_for_insert(trans, root, path, batch);
4310 return 0;
4311 }
4312
4313 /*
4314 * Given a key and some data, insert an item into the tree.
4315 * This does all the path init required, making room in the tree if needed.
4316 */
btrfs_insert_item(struct btrfs_trans_handle * trans,struct btrfs_root * root,const struct btrfs_key * cpu_key,void * data,u32 data_size)4317 int btrfs_insert_item(struct btrfs_trans_handle *trans, struct btrfs_root *root,
4318 const struct btrfs_key *cpu_key, void *data,
4319 u32 data_size)
4320 {
4321 int ret = 0;
4322 BTRFS_PATH_AUTO_FREE(path);
4323 struct extent_buffer *leaf;
4324 unsigned long ptr;
4325
4326 path = btrfs_alloc_path();
4327 if (!path)
4328 return -ENOMEM;
4329 ret = btrfs_insert_empty_item(trans, root, path, cpu_key, data_size);
4330 if (!ret) {
4331 leaf = path->nodes[0];
4332 ptr = btrfs_item_ptr_offset(leaf, path->slots[0]);
4333 write_extent_buffer(leaf, data, ptr, data_size);
4334 btrfs_mark_buffer_dirty(trans, leaf);
4335 }
4336 return ret;
4337 }
4338
4339 /*
4340 * This function duplicates an item, giving 'new_key' to the new item.
4341 * It guarantees both items live in the same tree leaf and the new item is
4342 * contiguous with the original item.
4343 *
4344 * This allows us to split a file extent in place, keeping a lock on the leaf
4345 * the entire time.
4346 */
btrfs_duplicate_item(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,const struct btrfs_key * new_key)4347 int btrfs_duplicate_item(struct btrfs_trans_handle *trans,
4348 struct btrfs_root *root,
4349 struct btrfs_path *path,
4350 const struct btrfs_key *new_key)
4351 {
4352 struct extent_buffer *leaf;
4353 int ret;
4354 u32 item_size;
4355
4356 leaf = path->nodes[0];
4357 item_size = btrfs_item_size(leaf, path->slots[0]);
4358 ret = setup_leaf_for_split(trans, root, path,
4359 item_size + sizeof(struct btrfs_item));
4360 if (ret)
4361 return ret;
4362
4363 path->slots[0]++;
4364 btrfs_setup_item_for_insert(trans, root, path, new_key, item_size);
4365 leaf = path->nodes[0];
4366 memcpy_extent_buffer(leaf,
4367 btrfs_item_ptr_offset(leaf, path->slots[0]),
4368 btrfs_item_ptr_offset(leaf, path->slots[0] - 1),
4369 item_size);
4370 return 0;
4371 }
4372
4373 /*
4374 * delete the pointer from a given node.
4375 *
4376 * the tree should have been previously balanced so the deletion does not
4377 * empty a node.
4378 *
4379 * This is exported for use inside btrfs-progs, don't un-export it.
4380 */
btrfs_del_ptr(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,int level,int slot)4381 int btrfs_del_ptr(struct btrfs_trans_handle *trans, struct btrfs_root *root,
4382 struct btrfs_path *path, int level, int slot)
4383 {
4384 struct extent_buffer *parent = path->nodes[level];
4385 u32 nritems;
4386 int ret;
4387
4388 nritems = btrfs_header_nritems(parent);
4389 if (slot != nritems - 1) {
4390 if (level) {
4391 ret = btrfs_tree_mod_log_insert_move(parent, slot,
4392 slot + 1, nritems - slot - 1);
4393 if (unlikely(ret < 0)) {
4394 btrfs_abort_transaction(trans, ret);
4395 return ret;
4396 }
4397 }
4398 memmove_extent_buffer(parent,
4399 btrfs_node_key_ptr_offset(parent, slot),
4400 btrfs_node_key_ptr_offset(parent, slot + 1),
4401 sizeof(struct btrfs_key_ptr) *
4402 (nritems - slot - 1));
4403 } else if (level) {
4404 ret = btrfs_tree_mod_log_insert_key(parent, slot,
4405 BTRFS_MOD_LOG_KEY_REMOVE);
4406 if (unlikely(ret < 0)) {
4407 btrfs_abort_transaction(trans, ret);
4408 return ret;
4409 }
4410 }
4411
4412 nritems--;
4413 btrfs_set_header_nritems(parent, nritems);
4414 if (nritems == 0 && parent == root->node) {
4415 BUG_ON(btrfs_header_level(root->node) != 1);
4416 /* just turn the root into a leaf and break */
4417 btrfs_set_header_level(root->node, 0);
4418 } else if (slot == 0) {
4419 struct btrfs_disk_key disk_key;
4420
4421 btrfs_node_key(parent, &disk_key, 0);
4422 fixup_low_keys(trans, path, &disk_key, level + 1);
4423 }
4424 btrfs_mark_buffer_dirty(trans, parent);
4425 return 0;
4426 }
4427
4428 /*
4429 * a helper function to delete the leaf pointed to by path->slots[1] and
4430 * path->nodes[1].
4431 *
4432 * This deletes the pointer in path->nodes[1] and frees the leaf
4433 * block extent. zero is returned if it all worked out, < 0 otherwise.
4434 *
4435 * The path must have already been setup for deleting the leaf, including
4436 * all the proper balancing. path->nodes[1] must be locked.
4437 */
btrfs_del_leaf(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,struct extent_buffer * leaf)4438 static noinline int btrfs_del_leaf(struct btrfs_trans_handle *trans,
4439 struct btrfs_root *root,
4440 struct btrfs_path *path,
4441 struct extent_buffer *leaf)
4442 {
4443 int ret;
4444
4445 WARN_ON(btrfs_header_generation(leaf) != trans->transid);
4446 ret = btrfs_del_ptr(trans, root, path, 1, path->slots[1]);
4447 if (ret < 0)
4448 return ret;
4449
4450 /*
4451 * btrfs_free_extent is expensive, we want to make sure we
4452 * aren't holding any locks when we call it
4453 */
4454 btrfs_unlock_up_safe(path, 0);
4455
4456 root_sub_used_bytes(root);
4457
4458 refcount_inc(&leaf->refs);
4459 ret = btrfs_free_tree_block(trans, btrfs_root_id(root), leaf, 0, 1);
4460 free_extent_buffer_stale(leaf);
4461 if (ret < 0)
4462 btrfs_abort_transaction(trans, ret);
4463
4464 return ret;
4465 }
4466 /*
4467 * delete the item at the leaf level in path. If that empties
4468 * the leaf, remove it from the tree
4469 */
btrfs_del_items(struct btrfs_trans_handle * trans,struct btrfs_root * root,struct btrfs_path * path,int slot,int nr)4470 int btrfs_del_items(struct btrfs_trans_handle *trans, struct btrfs_root *root,
4471 struct btrfs_path *path, int slot, int nr)
4472 {
4473 struct btrfs_fs_info *fs_info = root->fs_info;
4474 struct extent_buffer *leaf;
4475 int ret = 0;
4476 int wret;
4477 u32 nritems;
4478
4479 leaf = path->nodes[0];
4480 nritems = btrfs_header_nritems(leaf);
4481
4482 if (slot + nr != nritems) {
4483 const u32 last_off = btrfs_item_offset(leaf, slot + nr - 1);
4484 const int data_end = leaf_data_end(leaf);
4485 u32 dsize = 0;
4486 int i;
4487
4488 for (i = 0; i < nr; i++)
4489 dsize += btrfs_item_size(leaf, slot + i);
4490
4491 memmove_leaf_data(leaf, data_end + dsize, data_end,
4492 last_off - data_end);
4493
4494 for (i = slot + nr; i < nritems; i++) {
4495 u32 ioff;
4496
4497 ioff = btrfs_item_offset(leaf, i);
4498 btrfs_set_item_offset(leaf, i, ioff + dsize);
4499 }
4500
4501 memmove_leaf_items(leaf, slot, slot + nr, nritems - slot - nr);
4502 }
4503 btrfs_set_header_nritems(leaf, nritems - nr);
4504 nritems -= nr;
4505
4506 /* delete the leaf if we've emptied it */
4507 if (nritems == 0) {
4508 if (leaf != root->node) {
4509 btrfs_clear_buffer_dirty(trans, leaf);
4510 ret = btrfs_del_leaf(trans, root, path, leaf);
4511 if (ret < 0)
4512 return ret;
4513 }
4514 } else {
4515 int used = leaf_space_used(leaf, 0, nritems);
4516 if (slot == 0) {
4517 struct btrfs_disk_key disk_key;
4518
4519 btrfs_item_key(leaf, &disk_key, 0);
4520 fixup_low_keys(trans, path, &disk_key, 1);
4521 }
4522
4523 /*
4524 * Try to delete the leaf if it is mostly empty. We do this by
4525 * trying to move all its items into its left and right neighbours.
4526 * If we can't move all the items, then we don't delete it - it's
4527 * not ideal, but future insertions might fill the leaf with more
4528 * items, or items from other leaves might be moved later into our
4529 * leaf due to deletions on those leaves.
4530 */
4531 if (used < BTRFS_LEAF_DATA_SIZE(fs_info) / 3) {
4532 u32 min_push_space;
4533
4534 /* push_leaf_left fixes the path.
4535 * make sure the path still points to our leaf
4536 * for possible call to btrfs_del_ptr below
4537 */
4538 slot = path->slots[1];
4539 refcount_inc(&leaf->refs);
4540 /*
4541 * We want to be able to at least push one item to the
4542 * left neighbour leaf, and that's the first item.
4543 */
4544 min_push_space = sizeof(struct btrfs_item) +
4545 btrfs_item_size(leaf, 0);
4546 wret = push_leaf_left(trans, root, path, 0,
4547 min_push_space, 1, (u32)-1);
4548 if (wret < 0 && wret != -ENOSPC)
4549 ret = wret;
4550
4551 if (path->nodes[0] == leaf &&
4552 btrfs_header_nritems(leaf)) {
4553 /*
4554 * If we were not able to push all items from our
4555 * leaf to its left neighbour, then attempt to
4556 * either push all the remaining items to the
4557 * right neighbour or none. There's no advantage
4558 * in pushing only some items, instead of all, as
4559 * it's pointless to end up with a leaf having
4560 * too few items while the neighbours can be full
4561 * or nearly full.
4562 */
4563 nritems = btrfs_header_nritems(leaf);
4564 min_push_space = leaf_space_used(leaf, 0, nritems);
4565 wret = push_leaf_right(trans, root, path, 0,
4566 min_push_space, 1, 0);
4567 if (wret < 0 && wret != -ENOSPC)
4568 ret = wret;
4569 }
4570
4571 if (btrfs_header_nritems(leaf) == 0) {
4572 path->slots[1] = slot;
4573 ret = btrfs_del_leaf(trans, root, path, leaf);
4574 free_extent_buffer(leaf);
4575 if (ret < 0)
4576 return ret;
4577 } else {
4578 /* if we're still in the path, make sure
4579 * we're dirty. Otherwise, one of the
4580 * push_leaf functions must have already
4581 * dirtied this buffer
4582 */
4583 if (path->nodes[0] == leaf)
4584 btrfs_mark_buffer_dirty(trans, leaf);
4585 free_extent_buffer(leaf);
4586 }
4587 } else {
4588 btrfs_mark_buffer_dirty(trans, leaf);
4589 }
4590 }
4591 return ret;
4592 }
4593
4594 /*
4595 * A helper function to walk down the tree starting at min_key, and looking
4596 * for leaves that have a minimum transaction id.
4597 * This is used by the btree defrag code, and tree logging
4598 *
4599 * This does not cow, but it does stuff the starting key it finds back
4600 * into min_key, so you can call btrfs_search_slot with cow=1 on the
4601 * key and get a writable path.
4602 *
4603 * min_trans indicates the oldest transaction that you are interested
4604 * in walking through. Any nodes or leaves older than min_trans are
4605 * skipped over (without reading them).
4606 *
4607 * returns zero if something useful was found, < 0 on error and 1 if there
4608 * was nothing in the tree that matched the search criteria.
4609 */
btrfs_search_forward(struct btrfs_root * root,struct btrfs_key * min_key,struct btrfs_path * path,u64 min_trans)4610 int btrfs_search_forward(struct btrfs_root *root, struct btrfs_key *min_key,
4611 struct btrfs_path *path,
4612 u64 min_trans)
4613 {
4614 struct extent_buffer *cur;
4615 int slot;
4616 int sret;
4617 u32 nritems;
4618 int level;
4619 int ret = 1;
4620 const bool keep_locks = path->keep_locks;
4621
4622 ASSERT(!path->nowait);
4623 ASSERT(path->lowest_level == 0);
4624 path->keep_locks = true;
4625 again:
4626 cur = btrfs_read_lock_root_node(root);
4627 level = btrfs_header_level(cur);
4628 WARN_ON(path->nodes[level]);
4629 path->nodes[level] = cur;
4630 path->locks[level] = BTRFS_READ_LOCK;
4631
4632 if (btrfs_header_generation(cur) < min_trans) {
4633 ret = 1;
4634 goto out;
4635 }
4636 while (1) {
4637 nritems = btrfs_header_nritems(cur);
4638 level = btrfs_header_level(cur);
4639 sret = btrfs_bin_search(cur, 0, min_key, &slot);
4640 if (sret < 0) {
4641 ret = sret;
4642 goto out;
4643 }
4644
4645 /* At level 0 we're done, setup the path and exit. */
4646 if (level == 0) {
4647 if (slot >= nritems)
4648 goto find_next_key;
4649 ret = 0;
4650 path->slots[level] = slot;
4651 /* Save our key for returning back. */
4652 btrfs_item_key_to_cpu(cur, min_key, slot);
4653 goto out;
4654 }
4655 if (sret && slot > 0)
4656 slot--;
4657 /*
4658 * check this node pointer against the min_trans parameters.
4659 * If it is too old, skip to the next one.
4660 */
4661 while (slot < nritems) {
4662 u64 gen;
4663
4664 gen = btrfs_node_ptr_generation(cur, slot);
4665 if (gen < min_trans) {
4666 slot++;
4667 continue;
4668 }
4669 break;
4670 }
4671 find_next_key:
4672 /*
4673 * we didn't find a candidate key in this node, walk forward
4674 * and find another one
4675 */
4676 path->slots[level] = slot;
4677 if (slot >= nritems) {
4678 sret = btrfs_find_next_key(root, path, min_key, level,
4679 min_trans);
4680 if (sret == 0) {
4681 btrfs_release_path(path);
4682 goto again;
4683 } else {
4684 goto out;
4685 }
4686 }
4687 cur = btrfs_read_node_slot(cur, slot);
4688 if (IS_ERR(cur)) {
4689 ret = PTR_ERR(cur);
4690 goto out;
4691 }
4692
4693 btrfs_tree_read_lock(cur);
4694
4695 path->locks[level - 1] = BTRFS_READ_LOCK;
4696 path->nodes[level - 1] = cur;
4697 unlock_up(path, level, 1, 0, NULL);
4698 }
4699 out:
4700 path->keep_locks = keep_locks;
4701 if (ret == 0)
4702 btrfs_unlock_up_safe(path, 1);
4703 return ret;
4704 }
4705
4706 /*
4707 * this is similar to btrfs_next_leaf, but does not try to preserve
4708 * and fixup the path. It looks for and returns the next key in the
4709 * tree based on the current path and the min_trans parameters.
4710 *
4711 * 0 is returned if another key is found, < 0 if there are any errors
4712 * and 1 is returned if there are no higher keys in the tree
4713 *
4714 * path->keep_locks should be set to true on the search made before
4715 * calling this function.
4716 */
btrfs_find_next_key(struct btrfs_root * root,struct btrfs_path * path,struct btrfs_key * key,int level,u64 min_trans)4717 int btrfs_find_next_key(struct btrfs_root *root, struct btrfs_path *path,
4718 struct btrfs_key *key, int level, u64 min_trans)
4719 {
4720 int slot;
4721 struct extent_buffer *c;
4722
4723 WARN_ON(!path->keep_locks && !path->skip_locking);
4724 while (level < BTRFS_MAX_LEVEL) {
4725 if (!path->nodes[level])
4726 return 1;
4727
4728 slot = path->slots[level] + 1;
4729 c = path->nodes[level];
4730 next:
4731 if (slot >= btrfs_header_nritems(c)) {
4732 int ret;
4733 int orig_lowest;
4734 struct btrfs_key cur_key;
4735 if (level + 1 >= BTRFS_MAX_LEVEL ||
4736 !path->nodes[level + 1])
4737 return 1;
4738
4739 if (path->locks[level + 1] || path->skip_locking) {
4740 level++;
4741 continue;
4742 }
4743
4744 slot = btrfs_header_nritems(c) - 1;
4745 if (level == 0)
4746 btrfs_item_key_to_cpu(c, &cur_key, slot);
4747 else
4748 btrfs_node_key_to_cpu(c, &cur_key, slot);
4749
4750 orig_lowest = path->lowest_level;
4751 btrfs_release_path(path);
4752 path->lowest_level = level;
4753 ret = btrfs_search_slot(NULL, root, &cur_key, path,
4754 0, 0);
4755 path->lowest_level = orig_lowest;
4756 if (ret < 0)
4757 return ret;
4758
4759 c = path->nodes[level];
4760 slot = path->slots[level];
4761 if (ret == 0)
4762 slot++;
4763 goto next;
4764 }
4765
4766 if (level == 0)
4767 btrfs_item_key_to_cpu(c, key, slot);
4768 else {
4769 u64 gen = btrfs_node_ptr_generation(c, slot);
4770
4771 if (gen < min_trans) {
4772 slot++;
4773 goto next;
4774 }
4775 btrfs_node_key_to_cpu(c, key, slot);
4776 }
4777 return 0;
4778 }
4779 return 1;
4780 }
4781
btrfs_next_old_leaf(struct btrfs_root * root,struct btrfs_path * path,u64 time_seq)4782 int btrfs_next_old_leaf(struct btrfs_root *root, struct btrfs_path *path,
4783 u64 time_seq)
4784 {
4785 int slot;
4786 int level;
4787 struct extent_buffer *c;
4788 struct extent_buffer *next;
4789 struct btrfs_fs_info *fs_info = root->fs_info;
4790 struct btrfs_key key;
4791 bool need_commit_sem = false;
4792 u32 nritems;
4793 int ret;
4794 int i;
4795
4796 /*
4797 * The nowait semantics are used only for write paths, where we don't
4798 * use the tree mod log and sequence numbers.
4799 */
4800 if (time_seq)
4801 ASSERT(!path->nowait);
4802
4803 nritems = btrfs_header_nritems(path->nodes[0]);
4804 if (nritems == 0)
4805 return 1;
4806
4807 btrfs_item_key_to_cpu(path->nodes[0], &key, nritems - 1);
4808 again:
4809 level = 1;
4810 next = NULL;
4811 btrfs_release_path(path);
4812
4813 path->keep_locks = true;
4814
4815 if (time_seq) {
4816 ret = btrfs_search_old_slot(root, &key, path, time_seq);
4817 } else {
4818 if (path->need_commit_sem) {
4819 path->need_commit_sem = false;
4820 need_commit_sem = true;
4821 if (path->nowait) {
4822 if (!down_read_trylock(&fs_info->commit_root_sem)) {
4823 ret = -EAGAIN;
4824 goto done;
4825 }
4826 } else {
4827 down_read(&fs_info->commit_root_sem);
4828 }
4829 }
4830 ret = btrfs_search_slot(NULL, root, &key, path, 0, 0);
4831 }
4832 path->keep_locks = false;
4833
4834 if (ret < 0)
4835 goto done;
4836
4837 nritems = btrfs_header_nritems(path->nodes[0]);
4838 /*
4839 * By releasing the path above we dropped all our locks. A balance
4840 * could have happened and
4841 *
4842 * 1. added more items after the previous last item
4843 * 2. deleted the previous last item
4844 *
4845 * So, check again here and advance the path if there are now more
4846 * items available.
4847 */
4848 if (nritems > 0 && path->slots[0] <= nritems - 1) {
4849 if (ret == 0 && path->slots[0] != nritems - 1) {
4850 path->slots[0]++;
4851 goto done;
4852 } else if (ret > 0) {
4853 ret = 0;
4854 goto done;
4855 }
4856 }
4857
4858 while (level < BTRFS_MAX_LEVEL) {
4859 if (!path->nodes[level]) {
4860 ret = 1;
4861 goto done;
4862 }
4863
4864 slot = path->slots[level] + 1;
4865 c = path->nodes[level];
4866 if (slot >= btrfs_header_nritems(c)) {
4867 level++;
4868 if (level == BTRFS_MAX_LEVEL) {
4869 ret = 1;
4870 goto done;
4871 }
4872 continue;
4873 }
4874
4875
4876 /*
4877 * Our current level is where we're going to start from, and to
4878 * make sure lockdep doesn't complain we need to drop our locks
4879 * and nodes from 0 to our current level.
4880 */
4881 for (i = 0; i < level; i++) {
4882 if (path->locks[level]) {
4883 btrfs_tree_read_unlock(path->nodes[i]);
4884 path->locks[i] = 0;
4885 }
4886 free_extent_buffer(path->nodes[i]);
4887 path->nodes[i] = NULL;
4888 }
4889
4890 next = c;
4891 ret = read_block_for_search(root, path, &next, slot, &key);
4892 if (ret == -EAGAIN && !path->nowait)
4893 goto again;
4894
4895 if (ret < 0) {
4896 btrfs_release_path(path);
4897 goto done;
4898 }
4899
4900 if (!path->skip_locking) {
4901 ret = btrfs_try_tree_read_lock(next);
4902 if (!ret && path->nowait) {
4903 ret = -EAGAIN;
4904 goto done;
4905 }
4906 if (!ret && time_seq) {
4907 /*
4908 * If we don't get the lock, we may be racing
4909 * with push_leaf_left, holding that lock while
4910 * itself waiting for the leaf we've currently
4911 * locked. To solve this situation, we give up
4912 * on our lock and cycle.
4913 */
4914 free_extent_buffer(next);
4915 btrfs_release_path(path);
4916 cond_resched();
4917 goto again;
4918 }
4919 if (!ret)
4920 btrfs_tree_read_lock(next);
4921 }
4922 break;
4923 }
4924 path->slots[level] = slot;
4925 while (1) {
4926 level--;
4927 path->nodes[level] = next;
4928 path->slots[level] = 0;
4929 if (!path->skip_locking)
4930 path->locks[level] = BTRFS_READ_LOCK;
4931 if (!level)
4932 break;
4933
4934 ret = read_block_for_search(root, path, &next, 0, &key);
4935 if (ret == -EAGAIN && !path->nowait)
4936 goto again;
4937
4938 if (ret < 0) {
4939 btrfs_release_path(path);
4940 goto done;
4941 }
4942
4943 if (!path->skip_locking) {
4944 if (path->nowait) {
4945 if (!btrfs_try_tree_read_lock(next)) {
4946 ret = -EAGAIN;
4947 goto done;
4948 }
4949 } else {
4950 btrfs_tree_read_lock(next);
4951 }
4952 }
4953 }
4954 ret = 0;
4955 done:
4956 unlock_up(path, 0, 1, 0, NULL);
4957 if (need_commit_sem) {
4958 int ret2;
4959
4960 path->need_commit_sem = true;
4961 ret2 = finish_need_commit_sem_search(path);
4962 up_read(&fs_info->commit_root_sem);
4963 if (ret2)
4964 ret = ret2;
4965 }
4966
4967 return ret;
4968 }
4969
btrfs_next_old_item(struct btrfs_root * root,struct btrfs_path * path,u64 time_seq)4970 int btrfs_next_old_item(struct btrfs_root *root, struct btrfs_path *path, u64 time_seq)
4971 {
4972 path->slots[0]++;
4973 if (path->slots[0] >= btrfs_header_nritems(path->nodes[0]))
4974 return btrfs_next_old_leaf(root, path, time_seq);
4975 return 0;
4976 }
4977
4978 /*
4979 * this uses btrfs_prev_leaf to walk backwards in the tree, and keeps
4980 * searching until it gets past min_objectid or finds an item of 'type'
4981 *
4982 * returns 0 if something is found, 1 if nothing was found and < 0 on error
4983 */
btrfs_previous_item(struct btrfs_root * root,struct btrfs_path * path,u64 min_objectid,int type)4984 int btrfs_previous_item(struct btrfs_root *root,
4985 struct btrfs_path *path, u64 min_objectid,
4986 int type)
4987 {
4988 struct btrfs_key found_key;
4989 struct extent_buffer *leaf;
4990 u32 nritems;
4991 int ret;
4992
4993 while (1) {
4994 if (path->slots[0] == 0) {
4995 ret = btrfs_prev_leaf(root, path);
4996 if (ret != 0)
4997 return ret;
4998 } else {
4999 path->slots[0]--;
5000 }
5001 leaf = path->nodes[0];
5002 nritems = btrfs_header_nritems(leaf);
5003 if (nritems == 0)
5004 return 1;
5005 if (path->slots[0] == nritems)
5006 path->slots[0]--;
5007
5008 btrfs_item_key_to_cpu(leaf, &found_key, path->slots[0]);
5009 if (found_key.objectid < min_objectid)
5010 break;
5011 if (found_key.type == type)
5012 return 0;
5013 if (found_key.objectid == min_objectid &&
5014 found_key.type < type)
5015 break;
5016 }
5017 return 1;
5018 }
5019
5020 /*
5021 * search in extent tree to find a previous Metadata/Data extent item with
5022 * min objecitd.
5023 *
5024 * returns 0 if something is found, 1 if nothing was found and < 0 on error
5025 */
btrfs_previous_extent_item(struct btrfs_root * root,struct btrfs_path * path,u64 min_objectid)5026 int btrfs_previous_extent_item(struct btrfs_root *root,
5027 struct btrfs_path *path, u64 min_objectid)
5028 {
5029 struct btrfs_key found_key;
5030 struct extent_buffer *leaf;
5031 u32 nritems;
5032 int ret;
5033
5034 while (1) {
5035 if (path->slots[0] == 0) {
5036 ret = btrfs_prev_leaf(root, path);
5037 if (ret != 0)
5038 return ret;
5039 } else {
5040 path->slots[0]--;
5041 }
5042 leaf = path->nodes[0];
5043 nritems = btrfs_header_nritems(leaf);
5044 if (nritems == 0)
5045 return 1;
5046 if (path->slots[0] == nritems)
5047 path->slots[0]--;
5048
5049 btrfs_item_key_to_cpu(leaf, &found_key, path->slots[0]);
5050 if (found_key.objectid < min_objectid)
5051 break;
5052 if (found_key.type == BTRFS_EXTENT_ITEM_KEY ||
5053 found_key.type == BTRFS_METADATA_ITEM_KEY)
5054 return 0;
5055 if (found_key.objectid == min_objectid &&
5056 found_key.type < BTRFS_EXTENT_ITEM_KEY)
5057 break;
5058 }
5059 return 1;
5060 }
5061
btrfs_ctree_init(void)5062 int __init btrfs_ctree_init(void)
5063 {
5064 btrfs_path_cachep = KMEM_CACHE(btrfs_path, 0);
5065 if (!btrfs_path_cachep)
5066 return -ENOMEM;
5067 return 0;
5068 }
5069
btrfs_ctree_exit(void)5070 void __cold btrfs_ctree_exit(void)
5071 {
5072 kmem_cache_destroy(btrfs_path_cachep);
5073 }
5074