1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Copyright (C) 2010 Kent Overstreet <kent.overstreet@gmail.com>
4 *
5 * Uses a block device as cache for other block devices; optimized for SSDs.
6 * All allocation is done in buckets, which should match the erase block size
7 * of the device.
8 *
9 * Buckets containing cached data are kept on a heap sorted by priority;
10 * bucket priority is increased on cache hit, and periodically all the buckets
11 * on the heap have their priority scaled down. This currently is just used as
12 * an LRU but in the future should allow for more intelligent heuristics.
13 *
14 * Buckets have an 8 bit counter; freeing is accomplished by incrementing the
15 * counter. Garbage collection is used to remove stale pointers.
16 *
17 * Indexing is done via a btree; nodes are not necessarily fully sorted, rather
18 * as keys are inserted we only sort the pages that have not yet been written.
19 * When garbage collection is run, we resort the entire node.
20 *
21 * All configuration is done via sysfs; see Documentation/admin-guide/bcache.rst.
22 */
23
24 #include "bcache.h"
25 #include "btree.h"
26 #include "debug.h"
27 #include "extents.h"
28
29 #include <linux/slab.h>
30 #include <linux/bitops.h>
31 #include <linux/hash.h>
32 #include <linux/kthread.h>
33 #include <linux/prefetch.h>
34 #include <linux/random.h>
35 #include <linux/rcupdate.h>
36 #include <linux/sched/clock.h>
37 #include <linux/rculist.h>
38 #include <linux/delay.h>
39 #include <linux/sort.h>
40 #include <trace/events/bcache.h>
41
42 /*
43 * Todo:
44 * register_bcache: Return errors out to userspace correctly
45 *
46 * Writeback: don't undirty key until after a cache flush
47 *
48 * Create an iterator for key pointers
49 *
50 * On btree write error, mark bucket such that it won't be freed from the cache
51 *
52 * Journalling:
53 * Check for bad keys in replay
54 * Propagate barriers
55 * Refcount journal entries in journal_replay
56 *
57 * Garbage collection:
58 * Finish incremental gc
59 * Gc should free old UUIDs, data for invalid UUIDs
60 *
61 * Provide a way to list backing device UUIDs we have data cached for, and
62 * probably how long it's been since we've seen them, and a way to invalidate
63 * dirty data for devices that will never be attached again
64 *
65 * Keep 1 min/5 min/15 min statistics of how busy a block device has been, so
66 * that based on that and how much dirty data we have we can keep writeback
67 * from being starved
68 *
69 * Add a tracepoint or somesuch to watch for writeback starvation
70 *
71 * When btree depth > 1 and splitting an interior node, we have to make sure
72 * alloc_bucket() cannot fail. This should be true but is not completely
73 * obvious.
74 *
75 * Plugging?
76 *
77 * If data write is less than hard sector size of ssd, round up offset in open
78 * bucket to the next whole sector
79 *
80 * Superblock needs to be fleshed out for multiple cache devices
81 *
82 * Add a sysfs tunable for the number of writeback IOs in flight
83 *
84 * Add a sysfs tunable for the number of open data buckets
85 *
86 * IO tracking: Can we track when one process is doing io on behalf of another?
87 * IO tracking: Don't use just an average, weigh more recent stuff higher
88 *
89 * Test module load/unload
90 */
91
92 #define MAX_GC_TIMES_SHIFT 7 /* 128 loops */
93 #define GC_NODES_MIN 10
94 #define GC_SLEEP_MS_MIN 10
95 #define GC_SLEEP_MS 100
96
97 #define PTR_DIRTY_BIT (((uint64_t) 1 << 36))
98
99 #define PTR_HASH(c, k) \
100 (((k)->ptr[0] >> c->bucket_bits) | PTR_GEN(k, 0))
101
102 static struct workqueue_struct *btree_io_wq;
103
104 #define insert_lock(s, b) ((b)->level <= (s)->lock)
105
106
write_block(struct btree * b)107 static inline struct bset *write_block(struct btree *b)
108 {
109 return ((void *) btree_bset_first(b)) + b->written * block_bytes(b->c->cache);
110 }
111
bch_btree_init_next(struct btree * b)112 static void bch_btree_init_next(struct btree *b)
113 {
114 /* If not a leaf node, always sort */
115 if (b->level && b->keys.nsets)
116 bch_btree_sort(&b->keys, &b->c->sort);
117 else
118 bch_btree_sort_lazy(&b->keys, &b->c->sort);
119
120 if (b->written < btree_blocks(b))
121 bch_bset_init_next(&b->keys, write_block(b),
122 bset_magic(&b->c->cache->sb));
123
124 }
125
126 /* Btree key manipulation */
127
bkey_put(struct cache_set * c,struct bkey * k)128 void bkey_put(struct cache_set *c, struct bkey *k)
129 {
130 unsigned int i;
131
132 for (i = 0; i < KEY_PTRS(k); i++)
133 if (ptr_available(c, k, i))
134 atomic_dec_bug(&PTR_BUCKET(c, k, i)->pin);
135 }
136
137 /* Btree IO */
138
btree_csum_set(struct btree * b,struct bset * i)139 static uint64_t btree_csum_set(struct btree *b, struct bset *i)
140 {
141 uint64_t crc = b->key.ptr[0];
142 void *data = (void *) i + 8, *end = bset_bkey_last(i);
143
144 crc = crc64_be(crc, data, end - data);
145 return crc ^ 0xffffffffffffffffULL;
146 }
147
bch_btree_node_read_done(struct btree * b)148 void bch_btree_node_read_done(struct btree *b)
149 {
150 const char *err = "bad btree header";
151 struct bset *i = btree_bset_first(b);
152 struct btree_iter *iter;
153
154 /*
155 * c->fill_iter can allocate an iterator with more memory space
156 * than static MAX_BSETS.
157 * See the comment arount cache_set->fill_iter.
158 */
159 iter = mempool_alloc(&b->c->fill_iter, GFP_NOIO);
160 iter->size = b->c->cache->sb.bucket_size / b->c->cache->sb.block_size;
161 iter->used = 0;
162
163 #ifdef CONFIG_BCACHE_DEBUG
164 iter->b = &b->keys;
165 #endif
166
167 if (!i->seq)
168 goto err;
169
170 for (;
171 b->written < btree_blocks(b) && i->seq == b->keys.set[0].data->seq;
172 i = write_block(b)) {
173 err = "unsupported bset version";
174 if (i->version > BCACHE_BSET_VERSION)
175 goto err;
176
177 err = "bad btree header";
178 if (b->written + set_blocks(i, block_bytes(b->c->cache)) >
179 btree_blocks(b))
180 goto err;
181
182 err = "bad magic";
183 if (i->magic != bset_magic(&b->c->cache->sb))
184 goto err;
185
186 err = "bad checksum";
187 switch (i->version) {
188 case 0:
189 if (i->csum != csum_set(i))
190 goto err;
191 break;
192 case BCACHE_BSET_VERSION:
193 if (i->csum != btree_csum_set(b, i))
194 goto err;
195 break;
196 }
197
198 err = "empty set";
199 if (i != b->keys.set[0].data && !i->keys)
200 goto err;
201
202 bch_btree_iter_push(iter, i->start, bset_bkey_last(i));
203
204 b->written += set_blocks(i, block_bytes(b->c->cache));
205 }
206
207 err = "corrupted btree";
208 for (i = write_block(b);
209 bset_sector_offset(&b->keys, i) < KEY_SIZE(&b->key);
210 i = ((void *) i) + block_bytes(b->c->cache))
211 if (i->seq == b->keys.set[0].data->seq)
212 goto err;
213
214 bch_btree_sort_and_fix_extents(&b->keys, iter, &b->c->sort);
215
216 i = b->keys.set[0].data;
217 err = "short btree key";
218 if (b->keys.set[0].size &&
219 bkey_cmp(&b->key, &b->keys.set[0].end) < 0)
220 goto err;
221
222 if (b->written < btree_blocks(b))
223 bch_bset_init_next(&b->keys, write_block(b),
224 bset_magic(&b->c->cache->sb));
225 out:
226 mempool_free(iter, &b->c->fill_iter);
227 return;
228 err:
229 set_btree_node_io_error(b);
230 bch_cache_set_error(b->c, "%s at bucket %zu, block %u, %u keys",
231 err, PTR_BUCKET_NR(b->c, &b->key, 0),
232 bset_block_offset(b, i), i->keys);
233 goto out;
234 }
235
btree_node_read_endio(struct bio * bio)236 static void btree_node_read_endio(struct bio *bio)
237 {
238 struct closure *cl = bio->bi_private;
239
240 closure_put(cl);
241 }
242
bch_btree_node_read(struct btree * b)243 static void bch_btree_node_read(struct btree *b)
244 {
245 uint64_t start_time = local_clock();
246 struct closure cl;
247 struct bio *bio;
248
249 trace_bcache_btree_read(b);
250
251 closure_init_stack(&cl);
252
253 bio = bch_bbio_alloc(b->c);
254 bio->bi_iter.bi_size = KEY_SIZE(&b->key) << 9;
255 bio->bi_end_io = btree_node_read_endio;
256 bio->bi_private = &cl;
257 bio->bi_opf = REQ_OP_READ | REQ_META;
258
259 bch_bio_map(bio, b->keys.set[0].data);
260
261 bch_submit_bbio(bio, b->c, &b->key, 0);
262 closure_sync(&cl);
263
264 if (bio->bi_status)
265 set_btree_node_io_error(b);
266
267 bch_bbio_free(bio, b->c);
268
269 if (btree_node_io_error(b))
270 goto err;
271
272 bch_btree_node_read_done(b);
273 bch_time_stats_update(&b->c->btree_read_time, start_time);
274
275 return;
276 err:
277 bch_cache_set_error(b->c, "io error reading bucket %zu",
278 PTR_BUCKET_NR(b->c, &b->key, 0));
279 }
280
btree_complete_write(struct btree * b,struct btree_write * w)281 static void btree_complete_write(struct btree *b, struct btree_write *w)
282 {
283 if (w->prio_blocked &&
284 !atomic_sub_return(w->prio_blocked, &b->c->prio_blocked))
285 wake_up_allocators(b->c);
286
287 if (w->journal) {
288 atomic_dec_bug(w->journal);
289 __closure_wake_up(&b->c->journal.wait);
290 }
291
292 w->prio_blocked = 0;
293 w->journal = NULL;
294 }
295
CLOSURE_CALLBACK(btree_node_write_unlock)296 static CLOSURE_CALLBACK(btree_node_write_unlock)
297 {
298 closure_type(b, struct btree, io);
299
300 up(&b->io_mutex);
301 }
302
CLOSURE_CALLBACK(__btree_node_write_done)303 static CLOSURE_CALLBACK(__btree_node_write_done)
304 {
305 closure_type(b, struct btree, io);
306 struct btree_write *w = btree_prev_write(b);
307
308 bch_bbio_free(b->bio, b->c);
309 b->bio = NULL;
310 btree_complete_write(b, w);
311
312 if (btree_node_dirty(b))
313 queue_delayed_work(btree_io_wq, &b->work, 30 * HZ);
314
315 closure_return_with_destructor(cl, btree_node_write_unlock);
316 }
317
CLOSURE_CALLBACK(btree_node_write_done)318 static CLOSURE_CALLBACK(btree_node_write_done)
319 {
320 closure_type(b, struct btree, io);
321
322 bio_free_pages(b->bio);
323 __btree_node_write_done(&cl->work);
324 }
325
btree_node_write_endio(struct bio * bio)326 static void btree_node_write_endio(struct bio *bio)
327 {
328 struct closure *cl = bio->bi_private;
329 struct btree *b = container_of(cl, struct btree, io);
330
331 if (bio->bi_status)
332 set_btree_node_io_error(b);
333
334 bch_bbio_count_io_errors(b->c, bio, bio->bi_status, "writing btree");
335 closure_put(cl);
336 }
337
do_btree_node_write(struct btree * b)338 static void do_btree_node_write(struct btree *b)
339 {
340 struct closure *cl = &b->io;
341 struct bset *i = btree_bset_last(b);
342 BKEY_PADDED(key) k;
343
344 i->version = BCACHE_BSET_VERSION;
345 i->csum = btree_csum_set(b, i);
346
347 BUG_ON(b->bio);
348 b->bio = bch_bbio_alloc(b->c);
349
350 b->bio->bi_end_io = btree_node_write_endio;
351 b->bio->bi_private = cl;
352 b->bio->bi_iter.bi_size = roundup(set_bytes(i), block_bytes(b->c->cache));
353 b->bio->bi_opf = REQ_OP_WRITE | REQ_META | REQ_FUA;
354 bch_bio_map(b->bio, i);
355
356 /*
357 * If we're appending to a leaf node, we don't technically need FUA -
358 * this write just needs to be persisted before the next journal write,
359 * which will be marked FLUSH|FUA.
360 *
361 * Similarly if we're writing a new btree root - the pointer is going to
362 * be in the next journal entry.
363 *
364 * But if we're writing a new btree node (that isn't a root) or
365 * appending to a non leaf btree node, we need either FUA or a flush
366 * when we write the parent with the new pointer. FUA is cheaper than a
367 * flush, and writes appending to leaf nodes aren't blocking anything so
368 * just make all btree node writes FUA to keep things sane.
369 */
370
371 bkey_copy(&k.key, &b->key);
372 SET_PTR_OFFSET(&k.key, 0, PTR_OFFSET(&k.key, 0) +
373 bset_sector_offset(&b->keys, i));
374
375 if (!bch_bio_alloc_pages(b->bio, GFP_NOWAIT)) {
376 struct bio_vec *bv;
377 void *addr = (void *) ((unsigned long) i & ~(PAGE_SIZE - 1));
378 struct bvec_iter_all iter_all;
379
380 bio_for_each_segment_all(bv, b->bio, iter_all) {
381 memcpy(page_address(bv->bv_page), addr, PAGE_SIZE);
382 addr += PAGE_SIZE;
383 }
384
385 bch_submit_bbio(b->bio, b->c, &k.key, 0);
386
387 continue_at(cl, btree_node_write_done, NULL);
388 } else {
389 /*
390 * No problem for multipage bvec since the bio is
391 * just allocated
392 */
393 b->bio->bi_vcnt = 0;
394 bch_bio_map(b->bio, i);
395
396 bch_submit_bbio(b->bio, b->c, &k.key, 0);
397
398 closure_sync(cl);
399 continue_at_nobarrier(cl, __btree_node_write_done, NULL);
400 }
401 }
402
__bch_btree_node_write(struct btree * b,struct closure * parent)403 void __bch_btree_node_write(struct btree *b, struct closure *parent)
404 {
405 struct bset *i = btree_bset_last(b);
406
407 lockdep_assert_held(&b->write_lock);
408
409 trace_bcache_btree_write(b);
410
411 BUG_ON(current->bio_list);
412 BUG_ON(b->written >= btree_blocks(b));
413 BUG_ON(b->written && !i->keys);
414 BUG_ON(btree_bset_first(b)->seq != i->seq);
415 bch_check_keys(&b->keys, "writing");
416
417 cancel_delayed_work(&b->work);
418
419 /* If caller isn't waiting for write, parent refcount is cache set */
420 down(&b->io_mutex);
421 closure_init(&b->io, parent ?: &b->c->cl);
422
423 clear_bit(BTREE_NODE_dirty, &b->flags);
424 change_bit(BTREE_NODE_write_idx, &b->flags);
425
426 do_btree_node_write(b);
427
428 atomic_long_add(set_blocks(i, block_bytes(b->c->cache)) * b->c->cache->sb.block_size,
429 &b->c->cache->btree_sectors_written);
430
431 b->written += set_blocks(i, block_bytes(b->c->cache));
432 }
433
bch_btree_node_write(struct btree * b,struct closure * parent)434 void bch_btree_node_write(struct btree *b, struct closure *parent)
435 {
436 unsigned int nsets = b->keys.nsets;
437
438 lockdep_assert_held(&b->lock);
439
440 __bch_btree_node_write(b, parent);
441
442 /*
443 * do verify if there was more than one set initially (i.e. we did a
444 * sort) and we sorted down to a single set:
445 */
446 if (nsets && !b->keys.nsets)
447 bch_btree_verify(b);
448
449 bch_btree_init_next(b);
450 }
451
bch_btree_node_write_sync(struct btree * b)452 static void bch_btree_node_write_sync(struct btree *b)
453 {
454 struct closure cl;
455
456 closure_init_stack(&cl);
457
458 mutex_lock(&b->write_lock);
459 bch_btree_node_write(b, &cl);
460 mutex_unlock(&b->write_lock);
461
462 closure_sync(&cl);
463 }
464
btree_node_write_work(struct work_struct * w)465 static void btree_node_write_work(struct work_struct *w)
466 {
467 struct btree *b = container_of(to_delayed_work(w), struct btree, work);
468
469 mutex_lock(&b->write_lock);
470 if (btree_node_dirty(b))
471 __bch_btree_node_write(b, NULL);
472 mutex_unlock(&b->write_lock);
473 }
474
bch_btree_leaf_dirty(struct btree * b,atomic_t * journal_ref)475 static void bch_btree_leaf_dirty(struct btree *b, atomic_t *journal_ref)
476 {
477 struct bset *i = btree_bset_last(b);
478 struct btree_write *w = btree_current_write(b);
479
480 lockdep_assert_held(&b->write_lock);
481
482 BUG_ON(!b->written);
483 BUG_ON(!i->keys);
484
485 if (!btree_node_dirty(b))
486 queue_delayed_work(btree_io_wq, &b->work, 30 * HZ);
487
488 set_btree_node_dirty(b);
489
490 /*
491 * w->journal is always the oldest journal pin of all bkeys
492 * in the leaf node, to make sure the oldest jset seq won't
493 * be increased before this btree node is flushed.
494 */
495 if (journal_ref) {
496 if (w->journal &&
497 journal_pin_cmp(b->c, w->journal, journal_ref)) {
498 atomic_dec_bug(w->journal);
499 w->journal = NULL;
500 }
501
502 if (!w->journal) {
503 w->journal = journal_ref;
504 atomic_inc(w->journal);
505 }
506 }
507
508 /* Force write if set is too big */
509 if (set_bytes(i) > PAGE_SIZE - 48 &&
510 !current->bio_list)
511 bch_btree_node_write(b, NULL);
512 }
513
514 /*
515 * Btree in memory cache - allocation/freeing
516 * mca -> memory cache
517 */
518
519 #define mca_reserve(c) (((!IS_ERR_OR_NULL(c->root) && c->root->level) \
520 ? c->root->level : 1) * 8 + 16)
521 #define mca_can_free(c) \
522 max_t(int, 0, c->btree_cache_used - mca_reserve(c))
523
mca_data_free(struct btree * b)524 static void mca_data_free(struct btree *b)
525 {
526 BUG_ON(b->io_mutex.count != 1);
527
528 bch_btree_keys_free(&b->keys);
529
530 b->c->btree_cache_used--;
531 list_move(&b->list, &b->c->btree_cache_freed);
532 }
533
mca_bucket_free(struct btree * b)534 static void mca_bucket_free(struct btree *b)
535 {
536 BUG_ON(btree_node_dirty(b));
537
538 b->key.ptr[0] = 0;
539 hlist_del_init_rcu(&b->hash);
540 list_move(&b->list, &b->c->btree_cache_freeable);
541 }
542
btree_order(struct bkey * k)543 static unsigned int btree_order(struct bkey *k)
544 {
545 return ilog2(KEY_SIZE(k) / PAGE_SECTORS ?: 1);
546 }
547
mca_data_alloc(struct btree * b,struct bkey * k,gfp_t gfp)548 static void mca_data_alloc(struct btree *b, struct bkey *k, gfp_t gfp)
549 {
550 if (!bch_btree_keys_alloc(&b->keys,
551 max_t(unsigned int,
552 ilog2(b->c->btree_pages),
553 btree_order(k)),
554 gfp)) {
555 b->c->btree_cache_used++;
556 list_move(&b->list, &b->c->btree_cache);
557 } else {
558 list_move(&b->list, &b->c->btree_cache_freed);
559 }
560 }
561
562 #ifdef CONFIG_PROVE_LOCKING
btree_lock_cmp_fn(const struct lockdep_map * _a,const struct lockdep_map * _b)563 static int btree_lock_cmp_fn(const struct lockdep_map *_a,
564 const struct lockdep_map *_b)
565 {
566 const struct btree *a = container_of(_a, struct btree, lock.dep_map);
567 const struct btree *b = container_of(_b, struct btree, lock.dep_map);
568
569 return -cmp_int(a->level, b->level) ?: bkey_cmp(&a->key, &b->key);
570 }
571
btree_lock_print_fn(const struct lockdep_map * map)572 static void btree_lock_print_fn(const struct lockdep_map *map)
573 {
574 const struct btree *b = container_of(map, struct btree, lock.dep_map);
575
576 printk(KERN_CONT " l=%u %llu:%llu", b->level,
577 KEY_INODE(&b->key), KEY_OFFSET(&b->key));
578 }
579 #endif
580
mca_bucket_alloc(struct cache_set * c,struct bkey * k,gfp_t gfp)581 static struct btree *mca_bucket_alloc(struct cache_set *c,
582 struct bkey *k, gfp_t gfp)
583 {
584 /*
585 * kzalloc() is necessary here for initialization,
586 * see code comments in bch_btree_keys_init().
587 */
588 struct btree *b = kzalloc_obj(struct btree, gfp);
589
590 if (!b)
591 return NULL;
592
593 init_rwsem(&b->lock);
594 lock_set_cmp_fn(&b->lock, btree_lock_cmp_fn, btree_lock_print_fn);
595 mutex_init(&b->write_lock);
596 lockdep_set_novalidate_class(&b->write_lock);
597 INIT_LIST_HEAD(&b->list);
598 INIT_DELAYED_WORK(&b->work, btree_node_write_work);
599 b->c = c;
600 sema_init(&b->io_mutex, 1);
601
602 mca_data_alloc(b, k, gfp);
603 return b;
604 }
605
mca_reap(struct btree * b,unsigned int min_order,bool flush)606 static int mca_reap(struct btree *b, unsigned int min_order, bool flush)
607 {
608 struct closure cl;
609
610 closure_init_stack(&cl);
611 lockdep_assert_held(&b->c->bucket_lock);
612
613 if (!down_write_trylock(&b->lock))
614 return -ENOMEM;
615
616 BUG_ON(btree_node_dirty(b) && !b->keys.set[0].data);
617
618 if (b->keys.page_order < min_order)
619 goto out_unlock;
620
621 if (!flush) {
622 if (btree_node_dirty(b))
623 goto out_unlock;
624
625 if (down_trylock(&b->io_mutex))
626 goto out_unlock;
627 up(&b->io_mutex);
628 }
629
630 retry:
631 /*
632 * BTREE_NODE_dirty might be cleared in btree_flush_btree() by
633 * __bch_btree_node_write(). To avoid an extra flush, acquire
634 * b->write_lock before checking BTREE_NODE_dirty bit.
635 */
636 mutex_lock(&b->write_lock);
637 /*
638 * If this btree node is selected in btree_flush_write() by journal
639 * code, delay and retry until the node is flushed by journal code
640 * and BTREE_NODE_journal_flush bit cleared by btree_flush_write().
641 */
642 if (btree_node_journal_flush(b)) {
643 pr_debug("bnode %p is flushing by journal, retry\n", b);
644 mutex_unlock(&b->write_lock);
645 udelay(1);
646 goto retry;
647 }
648
649 if (btree_node_dirty(b))
650 __bch_btree_node_write(b, &cl);
651 mutex_unlock(&b->write_lock);
652
653 closure_sync(&cl);
654
655 /* wait for any in flight btree write */
656 down(&b->io_mutex);
657 up(&b->io_mutex);
658
659 return 0;
660 out_unlock:
661 rw_unlock(true, b);
662 return -ENOMEM;
663 }
664
bch_mca_scan(struct shrinker * shrink,struct shrink_control * sc)665 static unsigned long bch_mca_scan(struct shrinker *shrink,
666 struct shrink_control *sc)
667 {
668 struct cache_set *c = shrink->private_data;
669 struct btree *b, *t;
670 unsigned long i, nr = sc->nr_to_scan;
671 unsigned long freed = 0;
672 unsigned int btree_cache_used;
673
674 if (c->shrinker_disabled)
675 return SHRINK_STOP;
676
677 if (c->btree_cache_alloc_lock)
678 return SHRINK_STOP;
679
680 /* Return -1 if we can't do anything right now */
681 if (sc->gfp_mask & __GFP_IO)
682 mutex_lock(&c->bucket_lock);
683 else if (!mutex_trylock(&c->bucket_lock))
684 return -1;
685
686 /*
687 * It's _really_ critical that we don't free too many btree nodes - we
688 * have to always leave ourselves a reserve. The reserve is how we
689 * guarantee that allocating memory for a new btree node can always
690 * succeed, so that inserting keys into the btree can always succeed and
691 * IO can always make forward progress:
692 */
693 nr /= c->btree_pages;
694 if (nr == 0)
695 nr = 1;
696 nr = min_t(unsigned long, nr, mca_can_free(c));
697
698 i = 0;
699 btree_cache_used = c->btree_cache_used;
700 list_for_each_entry_safe_reverse(b, t, &c->btree_cache_freeable, list) {
701 if (nr <= 0)
702 goto out;
703
704 if (!mca_reap(b, 0, false)) {
705 mca_data_free(b);
706 rw_unlock(true, b);
707 freed++;
708 }
709 nr--;
710 i++;
711 }
712
713 list_for_each_entry_safe_reverse(b, t, &c->btree_cache, list) {
714 if (nr <= 0 || i >= btree_cache_used)
715 goto out;
716
717 if (!mca_reap(b, 0, false)) {
718 mca_bucket_free(b);
719 mca_data_free(b);
720 rw_unlock(true, b);
721 freed++;
722 }
723
724 nr--;
725 i++;
726 }
727 out:
728 mutex_unlock(&c->bucket_lock);
729 return freed * c->btree_pages;
730 }
731
bch_mca_count(struct shrinker * shrink,struct shrink_control * sc)732 static unsigned long bch_mca_count(struct shrinker *shrink,
733 struct shrink_control *sc)
734 {
735 struct cache_set *c = shrink->private_data;
736
737 if (c->shrinker_disabled)
738 return 0;
739
740 if (c->btree_cache_alloc_lock)
741 return 0;
742
743 return mca_can_free(c) * c->btree_pages;
744 }
745
bch_btree_cache_free(struct cache_set * c)746 void bch_btree_cache_free(struct cache_set *c)
747 {
748 struct btree *b;
749 struct closure cl;
750
751 closure_init_stack(&cl);
752
753 if (c->shrink)
754 shrinker_free(c->shrink);
755
756 mutex_lock(&c->bucket_lock);
757
758 #ifdef CONFIG_BCACHE_DEBUG
759 if (c->verify_data)
760 list_move(&c->verify_data->list, &c->btree_cache);
761
762 free_pages((unsigned long) c->verify_ondisk, ilog2(meta_bucket_pages(&c->cache->sb)));
763 #endif
764
765 list_splice(&c->btree_cache_freeable,
766 &c->btree_cache);
767
768 while (!list_empty(&c->btree_cache)) {
769 b = list_first_entry(&c->btree_cache, struct btree, list);
770
771 /*
772 * This function is called by cache_set_free(), no I/O
773 * request on cache now, it is unnecessary to acquire
774 * b->write_lock before clearing BTREE_NODE_dirty anymore.
775 */
776 if (btree_node_dirty(b)) {
777 btree_complete_write(b, btree_current_write(b));
778 clear_bit(BTREE_NODE_dirty, &b->flags);
779 }
780 mca_data_free(b);
781 }
782
783 while (!list_empty(&c->btree_cache_freed)) {
784 b = list_first_entry(&c->btree_cache_freed,
785 struct btree, list);
786 list_del(&b->list);
787 cancel_delayed_work_sync(&b->work);
788 kfree(b);
789 }
790
791 mutex_unlock(&c->bucket_lock);
792 }
793
bch_btree_cache_alloc(struct cache_set * c)794 int bch_btree_cache_alloc(struct cache_set *c)
795 {
796 unsigned int i;
797
798 for (i = 0; i < mca_reserve(c); i++)
799 if (!mca_bucket_alloc(c, &ZERO_KEY, GFP_KERNEL))
800 return -ENOMEM;
801
802 list_splice_init(&c->btree_cache,
803 &c->btree_cache_freeable);
804
805 #ifdef CONFIG_BCACHE_DEBUG
806 mutex_init(&c->verify_lock);
807
808 c->verify_ondisk = (void *)
809 __get_free_pages(GFP_KERNEL|__GFP_COMP,
810 ilog2(meta_bucket_pages(&c->cache->sb)));
811 if (!c->verify_ondisk) {
812 /*
813 * Don't worry about the mca_rereserve buckets
814 * allocated in previous for-loop, they will be
815 * handled properly in bch_cache_set_unregister().
816 */
817 return -ENOMEM;
818 }
819
820 c->verify_data = mca_bucket_alloc(c, &ZERO_KEY, GFP_KERNEL);
821
822 if (c->verify_data &&
823 c->verify_data->keys.set->data)
824 list_del_init(&c->verify_data->list);
825 else
826 c->verify_data = NULL;
827 #endif
828
829 c->shrink = shrinker_alloc(0, "md-bcache:%pU", c->set_uuid);
830 if (!c->shrink) {
831 pr_warn("bcache: %s: could not allocate shrinker\n", __func__);
832 return 0;
833 }
834
835 c->shrink->count_objects = bch_mca_count;
836 c->shrink->scan_objects = bch_mca_scan;
837 c->shrink->seeks = 4;
838 c->shrink->batch = c->btree_pages * 2;
839 c->shrink->private_data = c;
840
841 shrinker_register(c->shrink);
842
843 return 0;
844 }
845
846 /* Btree in memory cache - hash table */
847
mca_hash(struct cache_set * c,struct bkey * k)848 static struct hlist_head *mca_hash(struct cache_set *c, struct bkey *k)
849 {
850 return &c->bucket_hash[hash_32(PTR_HASH(c, k), BUCKET_HASH_BITS)];
851 }
852
mca_find(struct cache_set * c,struct bkey * k)853 static struct btree *mca_find(struct cache_set *c, struct bkey *k)
854 {
855 struct btree *b;
856
857 rcu_read_lock();
858 hlist_for_each_entry_rcu(b, mca_hash(c, k), hash)
859 if (PTR_HASH(c, &b->key) == PTR_HASH(c, k))
860 goto out;
861 b = NULL;
862 out:
863 rcu_read_unlock();
864 return b;
865 }
866
mca_cannibalize_lock(struct cache_set * c,struct btree_op * op)867 static int mca_cannibalize_lock(struct cache_set *c, struct btree_op *op)
868 {
869 spin_lock(&c->btree_cannibalize_lock);
870 if (likely(c->btree_cache_alloc_lock == NULL)) {
871 c->btree_cache_alloc_lock = current;
872 } else if (c->btree_cache_alloc_lock != current) {
873 if (op)
874 prepare_to_wait(&c->btree_cache_wait, &op->wait,
875 TASK_UNINTERRUPTIBLE);
876 spin_unlock(&c->btree_cannibalize_lock);
877 return -EINTR;
878 }
879 spin_unlock(&c->btree_cannibalize_lock);
880
881 return 0;
882 }
883
mca_cannibalize(struct cache_set * c,struct btree_op * op,struct bkey * k)884 static struct btree *mca_cannibalize(struct cache_set *c, struct btree_op *op,
885 struct bkey *k)
886 {
887 struct btree *b;
888
889 trace_bcache_btree_cache_cannibalize(c);
890
891 if (mca_cannibalize_lock(c, op))
892 return ERR_PTR(-EINTR);
893
894 list_for_each_entry_reverse(b, &c->btree_cache, list)
895 if (!mca_reap(b, btree_order(k), false))
896 return b;
897
898 list_for_each_entry_reverse(b, &c->btree_cache, list)
899 if (!mca_reap(b, btree_order(k), true))
900 return b;
901
902 WARN(1, "btree cache cannibalize failed\n");
903 return ERR_PTR(-ENOMEM);
904 }
905
906 /*
907 * We can only have one thread cannibalizing other cached btree nodes at a time,
908 * or we'll deadlock. We use an open coded mutex to ensure that, which a
909 * cannibalize_bucket() will take. This means every time we unlock the root of
910 * the btree, we need to release this lock if we have it held.
911 */
bch_cannibalize_unlock(struct cache_set * c)912 void bch_cannibalize_unlock(struct cache_set *c)
913 {
914 spin_lock(&c->btree_cannibalize_lock);
915 if (c->btree_cache_alloc_lock == current) {
916 c->btree_cache_alloc_lock = NULL;
917 wake_up(&c->btree_cache_wait);
918 }
919 spin_unlock(&c->btree_cannibalize_lock);
920 }
921
mca_alloc(struct cache_set * c,struct btree_op * op,struct bkey * k,int level)922 static struct btree *mca_alloc(struct cache_set *c, struct btree_op *op,
923 struct bkey *k, int level)
924 {
925 struct btree *b;
926
927 BUG_ON(current->bio_list);
928
929 lockdep_assert_held(&c->bucket_lock);
930
931 if (mca_find(c, k))
932 return NULL;
933
934 /* btree_free() doesn't free memory; it sticks the node on the end of
935 * the list. Check if there's any freed nodes there:
936 */
937 list_for_each_entry(b, &c->btree_cache_freeable, list)
938 if (!mca_reap(b, btree_order(k), false))
939 goto out;
940
941 /* We never free struct btree itself, just the memory that holds the on
942 * disk node. Check the freed list before allocating a new one:
943 */
944 list_for_each_entry(b, &c->btree_cache_freed, list)
945 if (!mca_reap(b, 0, false)) {
946 mca_data_alloc(b, k, __GFP_NOWARN|GFP_NOIO);
947 if (!b->keys.set[0].data)
948 goto err;
949 else
950 goto out;
951 }
952
953 b = mca_bucket_alloc(c, k, __GFP_NOWARN|GFP_NOIO);
954 if (!b)
955 goto err;
956
957 BUG_ON(!down_write_trylock(&b->lock));
958 if (!b->keys.set->data)
959 goto err;
960 out:
961 BUG_ON(b->io_mutex.count != 1);
962
963 bkey_copy(&b->key, k);
964 list_move(&b->list, &c->btree_cache);
965 hlist_del_init_rcu(&b->hash);
966 hlist_add_head_rcu(&b->hash, mca_hash(c, k));
967
968 lock_set_subclass(&b->lock.dep_map, level + 1, _THIS_IP_);
969 b->parent = (void *) ~0UL;
970 b->flags = 0;
971 b->written = 0;
972 b->level = level;
973
974 if (!b->level)
975 bch_btree_keys_init(&b->keys, &bch_extent_keys_ops,
976 &b->c->expensive_debug_checks);
977 else
978 bch_btree_keys_init(&b->keys, &bch_btree_keys_ops,
979 &b->c->expensive_debug_checks);
980
981 return b;
982 err:
983 if (b)
984 rw_unlock(true, b);
985
986 b = mca_cannibalize(c, op, k);
987 if (!IS_ERR(b))
988 goto out;
989
990 return b;
991 }
992
993 /*
994 * bch_btree_node_get - find a btree node in the cache and lock it, reading it
995 * in from disk if necessary.
996 *
997 * If IO is necessary and running under submit_bio_noacct, returns -EAGAIN.
998 *
999 * The btree node will have either a read or a write lock held, depending on
1000 * level and op->lock.
1001 *
1002 * Note: Only error code or btree pointer will be returned, it is unncessary
1003 * for callers to check NULL pointer.
1004 */
bch_btree_node_get(struct cache_set * c,struct btree_op * op,struct bkey * k,int level,bool write,struct btree * parent)1005 struct btree *bch_btree_node_get(struct cache_set *c, struct btree_op *op,
1006 struct bkey *k, int level, bool write,
1007 struct btree *parent)
1008 {
1009 int i = 0;
1010 struct btree *b;
1011
1012 BUG_ON(level < 0);
1013 retry:
1014 b = mca_find(c, k);
1015
1016 if (!b) {
1017 if (current->bio_list)
1018 return ERR_PTR(-EAGAIN);
1019
1020 mutex_lock(&c->bucket_lock);
1021 b = mca_alloc(c, op, k, level);
1022 mutex_unlock(&c->bucket_lock);
1023
1024 if (!b)
1025 goto retry;
1026 if (IS_ERR(b))
1027 return b;
1028
1029 bch_btree_node_read(b);
1030
1031 if (!write)
1032 downgrade_write(&b->lock);
1033 } else {
1034 rw_lock(write, b, level);
1035 if (PTR_HASH(c, &b->key) != PTR_HASH(c, k)) {
1036 rw_unlock(write, b);
1037 goto retry;
1038 }
1039 BUG_ON(b->level != level);
1040 }
1041
1042 if (btree_node_io_error(b)) {
1043 rw_unlock(write, b);
1044 return ERR_PTR(-EIO);
1045 }
1046
1047 BUG_ON(!b->written);
1048
1049 b->parent = parent;
1050
1051 for (; i <= b->keys.nsets && b->keys.set[i].size; i++) {
1052 prefetch(b->keys.set[i].tree);
1053 prefetch(b->keys.set[i].data);
1054 }
1055
1056 for (; i <= b->keys.nsets; i++)
1057 prefetch(b->keys.set[i].data);
1058
1059 return b;
1060 }
1061
btree_node_prefetch(struct btree * parent,struct bkey * k)1062 static void btree_node_prefetch(struct btree *parent, struct bkey *k)
1063 {
1064 struct btree *b;
1065
1066 mutex_lock(&parent->c->bucket_lock);
1067 b = mca_alloc(parent->c, NULL, k, parent->level - 1);
1068 mutex_unlock(&parent->c->bucket_lock);
1069
1070 if (!IS_ERR_OR_NULL(b)) {
1071 b->parent = parent;
1072 bch_btree_node_read(b);
1073 rw_unlock(true, b);
1074 }
1075 }
1076
1077 /* Btree alloc */
1078
btree_node_free(struct btree * b)1079 static void btree_node_free(struct btree *b)
1080 {
1081 trace_bcache_btree_node_free(b);
1082
1083 BUG_ON(b == b->c->root);
1084
1085 retry:
1086 mutex_lock(&b->write_lock);
1087 /*
1088 * If the btree node is selected and flushing in btree_flush_write(),
1089 * delay and retry until the BTREE_NODE_journal_flush bit cleared,
1090 * then it is safe to free the btree node here. Otherwise this btree
1091 * node will be in race condition.
1092 */
1093 if (btree_node_journal_flush(b)) {
1094 mutex_unlock(&b->write_lock);
1095 pr_debug("bnode %p journal_flush set, retry\n", b);
1096 udelay(1);
1097 goto retry;
1098 }
1099
1100 if (btree_node_dirty(b)) {
1101 btree_complete_write(b, btree_current_write(b));
1102 clear_bit(BTREE_NODE_dirty, &b->flags);
1103 }
1104
1105 mutex_unlock(&b->write_lock);
1106
1107 cancel_delayed_work(&b->work);
1108
1109 mutex_lock(&b->c->bucket_lock);
1110 bch_bucket_free(b->c, &b->key);
1111 mca_bucket_free(b);
1112 mutex_unlock(&b->c->bucket_lock);
1113 }
1114
1115 /*
1116 * Only error code or btree pointer will be returned, it is unncessary for
1117 * callers to check NULL pointer.
1118 */
__bch_btree_node_alloc(struct cache_set * c,struct btree_op * op,int level,bool wait,struct btree * parent)1119 struct btree *__bch_btree_node_alloc(struct cache_set *c, struct btree_op *op,
1120 int level, bool wait,
1121 struct btree *parent)
1122 {
1123 BKEY_PADDED(key) k;
1124 struct btree *b;
1125
1126 mutex_lock(&c->bucket_lock);
1127 retry:
1128 /* return ERR_PTR(-EAGAIN) when it fails */
1129 b = ERR_PTR(-EAGAIN);
1130 if (__bch_bucket_alloc_set(c, RESERVE_BTREE, &k.key, wait))
1131 goto err;
1132
1133 bkey_put(c, &k.key);
1134 SET_KEY_SIZE(&k.key, c->btree_pages * PAGE_SECTORS);
1135
1136 b = mca_alloc(c, op, &k.key, level);
1137 if (IS_ERR(b))
1138 goto err_free;
1139
1140 if (!b) {
1141 cache_bug(c,
1142 "Tried to allocate bucket that was in btree cache");
1143 goto retry;
1144 }
1145
1146 b->parent = parent;
1147 bch_bset_init_next(&b->keys, b->keys.set->data, bset_magic(&b->c->cache->sb));
1148
1149 mutex_unlock(&c->bucket_lock);
1150
1151 trace_bcache_btree_node_alloc(b);
1152 return b;
1153 err_free:
1154 bch_bucket_free(c, &k.key);
1155 err:
1156 mutex_unlock(&c->bucket_lock);
1157
1158 trace_bcache_btree_node_alloc_fail(c);
1159 return b;
1160 }
1161
bch_btree_node_alloc(struct cache_set * c,struct btree_op * op,int level,struct btree * parent)1162 static struct btree *bch_btree_node_alloc(struct cache_set *c,
1163 struct btree_op *op, int level,
1164 struct btree *parent)
1165 {
1166 return __bch_btree_node_alloc(c, op, level, op != NULL, parent);
1167 }
1168
btree_node_alloc_replacement(struct btree * b,struct btree_op * op)1169 static struct btree *btree_node_alloc_replacement(struct btree *b,
1170 struct btree_op *op)
1171 {
1172 struct btree *n = bch_btree_node_alloc(b->c, op, b->level, b->parent);
1173
1174 if (!IS_ERR(n)) {
1175 mutex_lock(&n->write_lock);
1176 bch_btree_sort_into(&b->keys, &n->keys, &b->c->sort);
1177 bkey_copy_key(&n->key, &b->key);
1178 mutex_unlock(&n->write_lock);
1179 }
1180
1181 return n;
1182 }
1183
make_btree_freeing_key(struct btree * b,struct bkey * k)1184 static void make_btree_freeing_key(struct btree *b, struct bkey *k)
1185 {
1186 unsigned int i;
1187
1188 mutex_lock(&b->c->bucket_lock);
1189
1190 atomic_inc(&b->c->prio_blocked);
1191
1192 bkey_copy(k, &b->key);
1193 bkey_copy_key(k, &ZERO_KEY);
1194
1195 for (i = 0; i < KEY_PTRS(k); i++)
1196 SET_PTR_GEN(k, i,
1197 bch_inc_gen(b->c->cache,
1198 PTR_BUCKET(b->c, &b->key, i)));
1199
1200 mutex_unlock(&b->c->bucket_lock);
1201 }
1202
btree_check_reserve(struct btree * b,struct btree_op * op)1203 static int btree_check_reserve(struct btree *b, struct btree_op *op)
1204 {
1205 struct cache_set *c = b->c;
1206 struct cache *ca = c->cache;
1207 unsigned int reserve = (c->root->level - b->level) * 2 + 1;
1208
1209 mutex_lock(&c->bucket_lock);
1210
1211 if (fifo_used(&ca->free[RESERVE_BTREE]) < reserve) {
1212 if (op)
1213 prepare_to_wait(&c->btree_cache_wait, &op->wait,
1214 TASK_UNINTERRUPTIBLE);
1215 mutex_unlock(&c->bucket_lock);
1216 return -EINTR;
1217 }
1218
1219 mutex_unlock(&c->bucket_lock);
1220
1221 return mca_cannibalize_lock(b->c, op);
1222 }
1223
1224 /* Garbage collection */
1225
__bch_btree_mark_key(struct cache_set * c,int level,struct bkey * k)1226 static uint8_t __bch_btree_mark_key(struct cache_set *c, int level,
1227 struct bkey *k)
1228 {
1229 uint8_t stale = 0;
1230 unsigned int i;
1231 struct bucket *g;
1232
1233 /*
1234 * ptr_invalid() can't return true for the keys that mark btree nodes as
1235 * freed, but since ptr_bad() returns true we'll never actually use them
1236 * for anything and thus we don't want mark their pointers here
1237 */
1238 if (!bkey_cmp(k, &ZERO_KEY))
1239 return stale;
1240
1241 for (i = 0; i < KEY_PTRS(k); i++) {
1242 if (!ptr_available(c, k, i))
1243 continue;
1244
1245 g = PTR_BUCKET(c, k, i);
1246
1247 if (gen_after(g->last_gc, PTR_GEN(k, i)))
1248 g->last_gc = PTR_GEN(k, i);
1249
1250 if (ptr_stale(c, k, i)) {
1251 stale = max(stale, ptr_stale(c, k, i));
1252 continue;
1253 }
1254
1255 cache_bug_on(GC_MARK(g) &&
1256 (GC_MARK(g) == GC_MARK_METADATA) != (level != 0),
1257 c, "inconsistent ptrs: mark = %llu, level = %i",
1258 GC_MARK(g), level);
1259
1260 if (level)
1261 SET_GC_MARK(g, GC_MARK_METADATA);
1262 else if (KEY_DIRTY(k))
1263 SET_GC_MARK(g, GC_MARK_DIRTY);
1264 else if (!GC_MARK(g))
1265 SET_GC_MARK(g, GC_MARK_RECLAIMABLE);
1266
1267 /* guard against overflow */
1268 SET_GC_SECTORS_USED(g, min_t(unsigned int,
1269 GC_SECTORS_USED(g) + KEY_SIZE(k),
1270 MAX_GC_SECTORS_USED));
1271
1272 BUG_ON(!GC_SECTORS_USED(g));
1273 }
1274
1275 return stale;
1276 }
1277
1278 #define btree_mark_key(b, k) __bch_btree_mark_key(b->c, b->level, k)
1279
bch_initial_mark_key(struct cache_set * c,int level,struct bkey * k)1280 void bch_initial_mark_key(struct cache_set *c, int level, struct bkey *k)
1281 {
1282 unsigned int i;
1283
1284 for (i = 0; i < KEY_PTRS(k); i++)
1285 if (ptr_available(c, k, i) &&
1286 !ptr_stale(c, k, i)) {
1287 struct bucket *b = PTR_BUCKET(c, k, i);
1288
1289 b->gen = PTR_GEN(k, i);
1290
1291 if (level && bkey_cmp(k, &ZERO_KEY))
1292 b->prio = BTREE_PRIO;
1293 else if (!level && b->prio == BTREE_PRIO)
1294 b->prio = INITIAL_PRIO;
1295 }
1296
1297 __bch_btree_mark_key(c, level, k);
1298 }
1299
bch_update_bucket_in_use(struct cache_set * c,struct gc_stat * stats)1300 void bch_update_bucket_in_use(struct cache_set *c, struct gc_stat *stats)
1301 {
1302 stats->in_use = (c->nbuckets - c->avail_nbuckets) * 100 / c->nbuckets;
1303 }
1304
btree_gc_mark_node(struct btree * b,struct gc_stat * gc)1305 static bool btree_gc_mark_node(struct btree *b, struct gc_stat *gc)
1306 {
1307 uint8_t stale = 0;
1308 unsigned int keys = 0, good_keys = 0;
1309 struct bkey *k;
1310 struct btree_iter_stack iter;
1311 struct bset_tree *t;
1312
1313 gc->nodes++;
1314
1315 for_each_key_filter(&b->keys, k, &iter, bch_ptr_invalid) {
1316 stale = max(stale, btree_mark_key(b, k));
1317 keys++;
1318
1319 if (bch_ptr_bad(&b->keys, k))
1320 continue;
1321
1322 gc->key_bytes += bkey_u64s(k);
1323 gc->nkeys++;
1324 good_keys++;
1325
1326 gc->data += KEY_SIZE(k);
1327 }
1328
1329 for (t = b->keys.set; t <= &b->keys.set[b->keys.nsets]; t++)
1330 btree_bug_on(t->size &&
1331 bset_written(&b->keys, t) &&
1332 bkey_cmp(&b->key, &t->end) < 0,
1333 b, "found short btree key in gc");
1334
1335 if (b->c->gc_always_rewrite)
1336 return true;
1337
1338 if (stale > 10)
1339 return true;
1340
1341 if ((keys - good_keys) * 2 > keys)
1342 return true;
1343
1344 return false;
1345 }
1346
1347 #define GC_MERGE_NODES 4U
1348
1349 struct gc_merge_info {
1350 struct btree *b;
1351 unsigned int keys;
1352 };
1353
1354 static int bch_btree_insert_node(struct btree *b, struct btree_op *op,
1355 struct keylist *insert_keys,
1356 atomic_t *journal_ref,
1357 struct bkey *replace_key);
1358
btree_gc_coalesce(struct btree * b,struct btree_op * op,struct gc_stat * gc,struct gc_merge_info * r)1359 static int btree_gc_coalesce(struct btree *b, struct btree_op *op,
1360 struct gc_stat *gc, struct gc_merge_info *r)
1361 {
1362 unsigned int i, nodes = 0, keys = 0, blocks;
1363 struct btree *new_nodes[GC_MERGE_NODES];
1364 struct keylist keylist;
1365 struct closure cl;
1366 struct bkey *k;
1367
1368 bch_keylist_init(&keylist);
1369
1370 if (btree_check_reserve(b, NULL))
1371 return 0;
1372
1373 memset(new_nodes, 0, sizeof(new_nodes));
1374 closure_init_stack(&cl);
1375
1376 while (nodes < GC_MERGE_NODES && !IS_ERR_OR_NULL(r[nodes].b))
1377 keys += r[nodes++].keys;
1378
1379 blocks = btree_default_blocks(b->c) * 2 / 3;
1380
1381 if (nodes < 2 ||
1382 __set_blocks(b->keys.set[0].data, keys,
1383 block_bytes(b->c->cache)) > blocks * (nodes - 1))
1384 return 0;
1385
1386 for (i = 0; i < nodes; i++) {
1387 new_nodes[i] = btree_node_alloc_replacement(r[i].b, NULL);
1388 if (IS_ERR(new_nodes[i]))
1389 goto out_nocoalesce;
1390 }
1391
1392 /*
1393 * We have to check the reserve here, after we've allocated our new
1394 * nodes, to make sure the insert below will succeed - we also check
1395 * before as an optimization to potentially avoid a bunch of expensive
1396 * allocs/sorts
1397 */
1398 if (btree_check_reserve(b, NULL))
1399 goto out_nocoalesce;
1400
1401 for (i = 0; i < nodes; i++)
1402 mutex_lock(&new_nodes[i]->write_lock);
1403
1404 for (i = nodes - 1; i > 0; --i) {
1405 struct bset *n1 = btree_bset_first(new_nodes[i]);
1406 struct bset *n2 = btree_bset_first(new_nodes[i - 1]);
1407 struct bkey *k, *last = NULL;
1408
1409 keys = 0;
1410
1411 if (i > 1) {
1412 for (k = n2->start;
1413 k < bset_bkey_last(n2);
1414 k = bkey_next(k)) {
1415 if (__set_blocks(n1, n1->keys + keys +
1416 bkey_u64s(k),
1417 block_bytes(b->c->cache)) > blocks)
1418 break;
1419
1420 last = k;
1421 keys += bkey_u64s(k);
1422 }
1423 } else {
1424 /*
1425 * Last node we're not getting rid of - we're getting
1426 * rid of the node at r[0]. Have to try and fit all of
1427 * the remaining keys into this node; we can't ensure
1428 * they will always fit due to rounding and variable
1429 * length keys (shouldn't be possible in practice,
1430 * though)
1431 */
1432 if (__set_blocks(n1, n1->keys + n2->keys,
1433 block_bytes(b->c->cache)) >
1434 btree_blocks(new_nodes[i]))
1435 goto out_unlock_nocoalesce;
1436
1437 keys = n2->keys;
1438 /* Take the key of the node we're getting rid of */
1439 last = &r->b->key;
1440 }
1441
1442 BUG_ON(__set_blocks(n1, n1->keys + keys, block_bytes(b->c->cache)) >
1443 btree_blocks(new_nodes[i]));
1444
1445 if (last)
1446 bkey_copy_key(&new_nodes[i]->key, last);
1447
1448 memcpy(bset_bkey_last(n1),
1449 n2->start,
1450 (void *) bset_bkey_idx(n2, keys) - (void *) n2->start);
1451
1452 n1->keys += keys;
1453 r[i].keys = n1->keys;
1454
1455 memmove(n2->start,
1456 bset_bkey_idx(n2, keys),
1457 (void *) bset_bkey_last(n2) -
1458 (void *) bset_bkey_idx(n2, keys));
1459
1460 n2->keys -= keys;
1461
1462 if (__bch_keylist_realloc(&keylist,
1463 bkey_u64s(&new_nodes[i]->key)))
1464 goto out_unlock_nocoalesce;
1465
1466 bch_btree_node_write(new_nodes[i], &cl);
1467 bch_keylist_add(&keylist, &new_nodes[i]->key);
1468 }
1469
1470 for (i = 0; i < nodes; i++)
1471 mutex_unlock(&new_nodes[i]->write_lock);
1472
1473 closure_sync(&cl);
1474
1475 /* We emptied out this node */
1476 BUG_ON(btree_bset_first(new_nodes[0])->keys);
1477 btree_node_free(new_nodes[0]);
1478 rw_unlock(true, new_nodes[0]);
1479 new_nodes[0] = NULL;
1480
1481 for (i = 0; i < nodes; i++) {
1482 if (__bch_keylist_realloc(&keylist, bkey_u64s(&r[i].b->key)))
1483 goto out_nocoalesce;
1484
1485 make_btree_freeing_key(r[i].b, keylist.top);
1486 bch_keylist_push(&keylist);
1487 }
1488
1489 bch_btree_insert_node(b, op, &keylist, NULL, NULL);
1490 BUG_ON(!bch_keylist_empty(&keylist));
1491
1492 for (i = 0; i < nodes; i++) {
1493 btree_node_free(r[i].b);
1494 rw_unlock(true, r[i].b);
1495
1496 r[i].b = new_nodes[i];
1497 }
1498
1499 memmove(r, r + 1, sizeof(r[0]) * (nodes - 1));
1500 r[nodes - 1].b = ERR_PTR(-EINTR);
1501
1502 trace_bcache_btree_gc_coalesce(nodes);
1503 gc->nodes--;
1504
1505 bch_keylist_free(&keylist);
1506
1507 /* Invalidated our iterator */
1508 return -EINTR;
1509
1510 out_unlock_nocoalesce:
1511 for (i = 0; i < nodes; i++)
1512 mutex_unlock(&new_nodes[i]->write_lock);
1513
1514 out_nocoalesce:
1515 closure_sync(&cl);
1516
1517 while ((k = bch_keylist_pop(&keylist)))
1518 if (!bkey_cmp(k, &ZERO_KEY))
1519 atomic_dec(&b->c->prio_blocked);
1520 bch_keylist_free(&keylist);
1521
1522 for (i = 0; i < nodes; i++)
1523 if (!IS_ERR_OR_NULL(new_nodes[i])) {
1524 btree_node_free(new_nodes[i]);
1525 rw_unlock(true, new_nodes[i]);
1526 }
1527 return 0;
1528 }
1529
btree_gc_rewrite_node(struct btree * b,struct btree_op * op,struct btree * replace)1530 static int btree_gc_rewrite_node(struct btree *b, struct btree_op *op,
1531 struct btree *replace)
1532 {
1533 struct keylist keys;
1534 struct btree *n;
1535
1536 if (btree_check_reserve(b, NULL))
1537 return 0;
1538
1539 n = btree_node_alloc_replacement(replace, NULL);
1540 if (IS_ERR(n))
1541 return 0;
1542
1543 /* recheck reserve after allocating replacement node */
1544 if (btree_check_reserve(b, NULL)) {
1545 btree_node_free(n);
1546 rw_unlock(true, n);
1547 return 0;
1548 }
1549
1550 bch_btree_node_write_sync(n);
1551
1552 bch_keylist_init(&keys);
1553 bch_keylist_add(&keys, &n->key);
1554
1555 make_btree_freeing_key(replace, keys.top);
1556 bch_keylist_push(&keys);
1557
1558 bch_btree_insert_node(b, op, &keys, NULL, NULL);
1559 BUG_ON(!bch_keylist_empty(&keys));
1560
1561 btree_node_free(replace);
1562 rw_unlock(true, n);
1563
1564 /* Invalidated our iterator */
1565 return -EINTR;
1566 }
1567
btree_gc_count_keys(struct btree * b)1568 static unsigned int btree_gc_count_keys(struct btree *b)
1569 {
1570 struct bkey *k;
1571 struct btree_iter_stack iter;
1572 unsigned int ret = 0;
1573
1574 for_each_key_filter(&b->keys, k, &iter, bch_ptr_bad)
1575 ret += bkey_u64s(k);
1576
1577 return ret;
1578 }
1579
btree_gc_min_nodes(struct cache_set * c)1580 static size_t btree_gc_min_nodes(struct cache_set *c)
1581 {
1582 size_t min_nodes = GC_NODES_MIN;
1583
1584 if (atomic_read(&c->search_inflight) == 0) {
1585 size_t n = c->gc_stats.nodes >> MAX_GC_TIMES_SHIFT;
1586
1587 if (min_nodes < n)
1588 min_nodes = n;
1589 }
1590
1591 return min_nodes;
1592 }
1593
btree_gc_sleep_ms(struct cache_set * c)1594 static uint64_t btree_gc_sleep_ms(struct cache_set *c)
1595 {
1596 uint64_t sleep_ms;
1597
1598 if (atomic_read(&c->bucket_wait_cnt) > 0)
1599 sleep_ms = GC_SLEEP_MS_MIN;
1600 else
1601 sleep_ms = GC_SLEEP_MS;
1602
1603 return sleep_ms;
1604 }
1605
btree_gc_recurse(struct btree * b,struct btree_op * op,struct closure * writes,struct gc_stat * gc)1606 static int btree_gc_recurse(struct btree *b, struct btree_op *op,
1607 struct closure *writes, struct gc_stat *gc)
1608 {
1609 int ret = 0;
1610 bool should_rewrite;
1611 struct bkey *k;
1612 struct btree_iter_stack iter;
1613 struct gc_merge_info r[GC_MERGE_NODES];
1614 struct gc_merge_info *i, *last = r + ARRAY_SIZE(r) - 1;
1615
1616 bch_btree_iter_stack_init(&b->keys, &iter, &b->c->gc_done);
1617
1618 for (i = r; i < r + ARRAY_SIZE(r); i++)
1619 i->b = ERR_PTR(-EINTR);
1620
1621 while (1) {
1622 k = bch_btree_iter_next_filter(&iter.iter, &b->keys,
1623 bch_ptr_bad);
1624 if (k) {
1625 r->b = bch_btree_node_get(b->c, op, k, b->level - 1,
1626 true, b);
1627 if (IS_ERR(r->b)) {
1628 ret = PTR_ERR(r->b);
1629 break;
1630 }
1631
1632 r->keys = btree_gc_count_keys(r->b);
1633
1634 ret = btree_gc_coalesce(b, op, gc, r);
1635 if (ret)
1636 break;
1637 }
1638
1639 if (!last->b)
1640 break;
1641
1642 if (!IS_ERR(last->b)) {
1643 should_rewrite = btree_gc_mark_node(last->b, gc);
1644 if (should_rewrite) {
1645 ret = btree_gc_rewrite_node(b, op, last->b);
1646 if (ret)
1647 break;
1648 }
1649
1650 if (last->b->level) {
1651 ret = btree_gc_recurse(last->b, op, writes, gc);
1652 if (ret)
1653 break;
1654 }
1655
1656 bkey_copy_key(&b->c->gc_done, &last->b->key);
1657
1658 /*
1659 * Must flush leaf nodes before gc ends, since replace
1660 * operations aren't journalled
1661 */
1662 mutex_lock(&last->b->write_lock);
1663 if (btree_node_dirty(last->b))
1664 bch_btree_node_write(last->b, writes);
1665 mutex_unlock(&last->b->write_lock);
1666 rw_unlock(true, last->b);
1667 }
1668
1669 memmove(r + 1, r, sizeof(r[0]) * (GC_MERGE_NODES - 1));
1670 r->b = NULL;
1671
1672 if (gc->nodes >= (gc->nodes_pre + btree_gc_min_nodes(b->c))) {
1673 gc->nodes_pre = gc->nodes;
1674 ret = -EAGAIN;
1675 break;
1676 }
1677
1678 if (need_resched()) {
1679 ret = -EAGAIN;
1680 break;
1681 }
1682 }
1683
1684 for (i = r; i < r + ARRAY_SIZE(r); i++)
1685 if (!IS_ERR_OR_NULL(i->b)) {
1686 mutex_lock(&i->b->write_lock);
1687 if (btree_node_dirty(i->b))
1688 bch_btree_node_write(i->b, writes);
1689 mutex_unlock(&i->b->write_lock);
1690 rw_unlock(true, i->b);
1691 }
1692
1693 return ret;
1694 }
1695
bch_btree_gc_root(struct btree * b,struct btree_op * op,struct closure * writes,struct gc_stat * gc)1696 static int bch_btree_gc_root(struct btree *b, struct btree_op *op,
1697 struct closure *writes, struct gc_stat *gc)
1698 {
1699 struct btree *n = NULL;
1700 int ret = 0;
1701 bool should_rewrite;
1702
1703 should_rewrite = btree_gc_mark_node(b, gc);
1704 if (should_rewrite) {
1705 n = btree_node_alloc_replacement(b, NULL);
1706
1707 if (!IS_ERR(n)) {
1708 bch_btree_node_write_sync(n);
1709
1710 bch_btree_set_root(n);
1711 btree_node_free(b);
1712 rw_unlock(true, n);
1713
1714 return -EINTR;
1715 }
1716 }
1717
1718 __bch_btree_mark_key(b->c, b->level + 1, &b->key);
1719
1720 if (b->level) {
1721 ret = btree_gc_recurse(b, op, writes, gc);
1722 if (ret)
1723 return ret;
1724 }
1725
1726 bkey_copy_key(&b->c->gc_done, &b->key);
1727
1728 return ret;
1729 }
1730
btree_gc_start(struct cache_set * c)1731 static void btree_gc_start(struct cache_set *c)
1732 {
1733 struct cache *ca;
1734 struct bucket *b;
1735
1736 if (!c->gc_mark_valid)
1737 return;
1738
1739 mutex_lock(&c->bucket_lock);
1740
1741 c->gc_done = ZERO_KEY;
1742
1743 ca = c->cache;
1744 for_each_bucket(b, ca) {
1745 b->last_gc = b->gen;
1746 if (bch_can_invalidate_bucket(ca, b))
1747 b->reclaimable_in_gc = 1;
1748 if (!atomic_read(&b->pin)) {
1749 SET_GC_MARK(b, 0);
1750 SET_GC_SECTORS_USED(b, 0);
1751 }
1752 }
1753
1754 c->gc_mark_valid = 0;
1755 mutex_unlock(&c->bucket_lock);
1756 }
1757
bch_btree_gc_finish(struct cache_set * c)1758 static void bch_btree_gc_finish(struct cache_set *c)
1759 {
1760 struct bucket *b;
1761 struct cache *ca;
1762 unsigned int i, j;
1763 uint64_t *k;
1764
1765 mutex_lock(&c->bucket_lock);
1766
1767 set_gc_sectors(c);
1768 c->gc_mark_valid = 1;
1769 c->need_gc = 0;
1770
1771 for (i = 0; i < KEY_PTRS(&c->uuid_bucket); i++)
1772 SET_GC_MARK(PTR_BUCKET(c, &c->uuid_bucket, i),
1773 GC_MARK_METADATA);
1774
1775 /* don't reclaim buckets to which writeback keys point */
1776 rcu_read_lock();
1777 for (i = 0; i < c->devices_max_used; i++) {
1778 struct bcache_device *d = c->devices[i];
1779 struct cached_dev *dc;
1780 struct keybuf_key *w, *n;
1781
1782 if (!d || UUID_FLASH_ONLY(&c->uuids[i]))
1783 continue;
1784 dc = container_of(d, struct cached_dev, disk);
1785
1786 spin_lock(&dc->writeback_keys.lock);
1787 rbtree_postorder_for_each_entry_safe(w, n,
1788 &dc->writeback_keys.keys, node)
1789 for (j = 0; j < KEY_PTRS(&w->key); j++)
1790 SET_GC_MARK(PTR_BUCKET(c, &w->key, j),
1791 GC_MARK_DIRTY);
1792 spin_unlock(&dc->writeback_keys.lock);
1793 }
1794 rcu_read_unlock();
1795
1796 c->avail_nbuckets = 0;
1797
1798 ca = c->cache;
1799 ca->invalidate_needs_gc = 0;
1800
1801 for (k = ca->sb.d; k < ca->sb.d + ca->sb.keys; k++)
1802 SET_GC_MARK(ca->buckets + *k, GC_MARK_METADATA);
1803
1804 for (k = ca->prio_buckets;
1805 k < ca->prio_buckets + prio_buckets(ca) * 2; k++)
1806 SET_GC_MARK(ca->buckets + *k, GC_MARK_METADATA);
1807
1808 for_each_bucket(b, ca) {
1809 c->need_gc = max(c->need_gc, bucket_gc_gen(b));
1810
1811 if (b->reclaimable_in_gc)
1812 b->reclaimable_in_gc = 0;
1813
1814 if (atomic_read(&b->pin))
1815 continue;
1816
1817 BUG_ON(!GC_MARK(b) && GC_SECTORS_USED(b));
1818
1819 if (!GC_MARK(b) || GC_MARK(b) == GC_MARK_RECLAIMABLE)
1820 c->avail_nbuckets++;
1821 }
1822
1823 mutex_unlock(&c->bucket_lock);
1824 }
1825
bch_btree_gc(struct cache_set * c)1826 static void bch_btree_gc(struct cache_set *c)
1827 {
1828 int ret;
1829 struct gc_stat stats;
1830 struct closure writes;
1831 struct btree_op op;
1832 uint64_t start_time = local_clock();
1833
1834 trace_bcache_gc_start(c);
1835
1836 memset(&stats, 0, sizeof(struct gc_stat));
1837 closure_init_stack(&writes);
1838 bch_btree_op_init(&op, SHRT_MAX);
1839
1840 btree_gc_start(c);
1841
1842 /* if CACHE_SET_IO_DISABLE set, gc thread should stop too */
1843 do {
1844 ret = bcache_btree_root(gc_root, c, &op, &writes, &stats);
1845 closure_sync(&writes);
1846 cond_resched();
1847
1848 if (ret == -EAGAIN)
1849 schedule_timeout_interruptible(
1850 msecs_to_jiffies(btree_gc_sleep_ms(c)));
1851 else if (ret)
1852 pr_warn("gc failed!\n");
1853 } while (ret && !test_bit(CACHE_SET_IO_DISABLE, &c->flags));
1854
1855 bch_btree_gc_finish(c);
1856 wake_up_allocators(c);
1857
1858 bch_time_stats_update(&c->btree_gc_time, start_time);
1859
1860 stats.key_bytes *= sizeof(uint64_t);
1861 stats.data <<= 9;
1862 bch_update_bucket_in_use(c, &stats);
1863 memcpy(&c->gc_stats, &stats, sizeof(struct gc_stat));
1864
1865 trace_bcache_gc_end(c);
1866
1867 bch_moving_gc(c);
1868 }
1869
gc_should_run(struct cache_set * c)1870 static bool gc_should_run(struct cache_set *c)
1871 {
1872 struct cache *ca = c->cache;
1873
1874 if (ca->invalidate_needs_gc)
1875 return true;
1876
1877 if (atomic_read(&c->sectors_to_gc) < 0)
1878 return true;
1879
1880 return false;
1881 }
1882
bch_gc_thread(void * arg)1883 static int bch_gc_thread(void *arg)
1884 {
1885 struct cache_set *c = arg;
1886
1887 while (1) {
1888 wait_event_interruptible(c->gc_wait,
1889 kthread_should_stop() ||
1890 test_bit(CACHE_SET_IO_DISABLE, &c->flags) ||
1891 gc_should_run(c));
1892
1893 if (kthread_should_stop() ||
1894 test_bit(CACHE_SET_IO_DISABLE, &c->flags))
1895 break;
1896
1897 set_gc_sectors(c);
1898 bch_btree_gc(c);
1899 }
1900
1901 wait_for_kthread_stop();
1902 return 0;
1903 }
1904
bch_gc_thread_start(struct cache_set * c)1905 int bch_gc_thread_start(struct cache_set *c)
1906 {
1907 c->gc_thread = kthread_run(bch_gc_thread, c, "bcache_gc");
1908 return PTR_ERR_OR_ZERO(c->gc_thread);
1909 }
1910
1911 /* Initial partial gc */
1912
bch_btree_check_recurse(struct btree * b,struct btree_op * op)1913 static int bch_btree_check_recurse(struct btree *b, struct btree_op *op)
1914 {
1915 int ret = 0;
1916 struct bkey *k, *p = NULL;
1917 struct btree_iter_stack iter;
1918
1919 for_each_key_filter(&b->keys, k, &iter, bch_ptr_invalid)
1920 bch_initial_mark_key(b->c, b->level, k);
1921
1922 bch_initial_mark_key(b->c, b->level + 1, &b->key);
1923
1924 if (b->level) {
1925 bch_btree_iter_stack_init(&b->keys, &iter, NULL);
1926
1927 do {
1928 k = bch_btree_iter_next_filter(&iter.iter, &b->keys,
1929 bch_ptr_bad);
1930 if (k) {
1931 btree_node_prefetch(b, k);
1932 /*
1933 * initiallize c->gc_stats.nodes
1934 * for incremental GC
1935 */
1936 b->c->gc_stats.nodes++;
1937 }
1938
1939 if (p)
1940 ret = bcache_btree(check_recurse, p, b, op);
1941
1942 p = k;
1943 } while (p && !ret);
1944 }
1945
1946 return ret;
1947 }
1948
1949
bch_btree_check_thread(void * arg)1950 static int bch_btree_check_thread(void *arg)
1951 {
1952 int ret;
1953 struct btree_check_info *info = arg;
1954 struct btree_check_state *check_state = info->state;
1955 struct cache_set *c = check_state->c;
1956 struct btree_iter_stack iter;
1957 struct bkey *k, *p;
1958 int cur_idx, prev_idx, skip_nr;
1959
1960 k = p = NULL;
1961 cur_idx = prev_idx = 0;
1962 ret = 0;
1963
1964 /* root node keys are checked before thread created */
1965 bch_btree_iter_stack_init(&c->root->keys, &iter, NULL);
1966 k = bch_btree_iter_next_filter(&iter.iter, &c->root->keys, bch_ptr_bad);
1967 BUG_ON(!k);
1968
1969 p = k;
1970 while (k) {
1971 /*
1972 * Fetch a root node key index, skip the keys which
1973 * should be fetched by other threads, then check the
1974 * sub-tree indexed by the fetched key.
1975 */
1976 spin_lock(&check_state->idx_lock);
1977 cur_idx = check_state->key_idx;
1978 check_state->key_idx++;
1979 spin_unlock(&check_state->idx_lock);
1980
1981 skip_nr = cur_idx - prev_idx;
1982
1983 while (skip_nr) {
1984 k = bch_btree_iter_next_filter(&iter.iter,
1985 &c->root->keys,
1986 bch_ptr_bad);
1987 if (k)
1988 p = k;
1989 else {
1990 /*
1991 * No more keys to check in root node,
1992 * current checking threads are enough,
1993 * stop creating more.
1994 */
1995 atomic_set(&check_state->enough, 1);
1996 /* Update check_state->enough earlier */
1997 smp_mb__after_atomic();
1998 goto out;
1999 }
2000 skip_nr--;
2001 cond_resched();
2002 }
2003
2004 if (p) {
2005 struct btree_op op;
2006
2007 btree_node_prefetch(c->root, p);
2008 c->gc_stats.nodes++;
2009 bch_btree_op_init(&op, 0);
2010 ret = bcache_btree(check_recurse, p, c->root, &op);
2011 /*
2012 * The op may be added to cache_set's btree_cache_wait
2013 * in mca_cannibalize(), must ensure it is removed from
2014 * the list and release btree_cache_alloc_lock before
2015 * free op memory.
2016 * Otherwise, the btree_cache_wait will be damaged.
2017 */
2018 bch_cannibalize_unlock(c);
2019 finish_wait(&c->btree_cache_wait, &(&op)->wait);
2020 if (ret)
2021 goto out;
2022 }
2023 p = NULL;
2024 prev_idx = cur_idx;
2025 cond_resched();
2026 }
2027
2028 out:
2029 info->result = ret;
2030 /* update check_state->started among all CPUs */
2031 smp_mb__before_atomic();
2032 if (atomic_dec_and_test(&check_state->started))
2033 wake_up(&check_state->wait);
2034
2035 return ret;
2036 }
2037
2038
2039
bch_btree_chkthread_nr(void)2040 static int bch_btree_chkthread_nr(void)
2041 {
2042 int n = num_online_cpus()/2;
2043
2044 if (n == 0)
2045 n = 1;
2046 else if (n > BCH_BTR_CHKTHREAD_MAX)
2047 n = BCH_BTR_CHKTHREAD_MAX;
2048
2049 return n;
2050 }
2051
bch_btree_check(struct cache_set * c)2052 int bch_btree_check(struct cache_set *c)
2053 {
2054 int ret = 0;
2055 int i;
2056 struct bkey *k = NULL;
2057 struct btree_iter_stack iter;
2058 struct btree_check_state check_state;
2059
2060 /* check and mark root node keys */
2061 for_each_key_filter(&c->root->keys, k, &iter, bch_ptr_invalid)
2062 bch_initial_mark_key(c, c->root->level, k);
2063
2064 bch_initial_mark_key(c, c->root->level + 1, &c->root->key);
2065
2066 if (c->root->level == 0)
2067 return 0;
2068
2069 memset(&check_state, 0, sizeof(struct btree_check_state));
2070 check_state.c = c;
2071 check_state.total_threads = bch_btree_chkthread_nr();
2072 check_state.key_idx = 0;
2073 spin_lock_init(&check_state.idx_lock);
2074 atomic_set(&check_state.started, 0);
2075 atomic_set(&check_state.enough, 0);
2076 init_waitqueue_head(&check_state.wait);
2077
2078 rw_lock(0, c->root, c->root->level);
2079 /*
2080 * Run multiple threads to check btree nodes in parallel,
2081 * if check_state.enough is non-zero, it means current
2082 * running check threads are enough, unncessary to create
2083 * more.
2084 */
2085 for (i = 0; i < check_state.total_threads; i++) {
2086 /* fetch latest check_state.enough earlier */
2087 smp_mb__before_atomic();
2088 if (atomic_read(&check_state.enough))
2089 break;
2090
2091 check_state.infos[i].result = 0;
2092 check_state.infos[i].state = &check_state;
2093
2094 check_state.infos[i].thread =
2095 kthread_run(bch_btree_check_thread,
2096 &check_state.infos[i],
2097 "bch_btrchk[%d]", i);
2098 if (IS_ERR(check_state.infos[i].thread)) {
2099 pr_err("fails to run thread bch_btrchk[%d]\n", i);
2100 for (--i; i >= 0; i--)
2101 kthread_stop(check_state.infos[i].thread);
2102 ret = -ENOMEM;
2103 goto out;
2104 }
2105 atomic_inc(&check_state.started);
2106 }
2107
2108 /*
2109 * Must wait for all threads to stop.
2110 */
2111 wait_event(check_state.wait, atomic_read(&check_state.started) == 0);
2112
2113 for (i = 0; i < check_state.total_threads; i++) {
2114 if (check_state.infos[i].result) {
2115 ret = check_state.infos[i].result;
2116 goto out;
2117 }
2118 }
2119
2120 out:
2121 rw_unlock(0, c->root);
2122 return ret;
2123 }
2124
bch_initial_gc_finish(struct cache_set * c)2125 void bch_initial_gc_finish(struct cache_set *c)
2126 {
2127 struct cache *ca = c->cache;
2128 struct bucket *b;
2129
2130 bch_btree_gc_finish(c);
2131
2132 mutex_lock(&c->bucket_lock);
2133
2134 /*
2135 * We need to put some unused buckets directly on the prio freelist in
2136 * order to get the allocator thread started - it needs freed buckets in
2137 * order to rewrite the prios and gens, and it needs to rewrite prios
2138 * and gens in order to free buckets.
2139 *
2140 * This is only safe for buckets that have no live data in them, which
2141 * there should always be some of.
2142 */
2143 for_each_bucket(b, ca) {
2144 if (fifo_full(&ca->free[RESERVE_PRIO]) &&
2145 fifo_full(&ca->free[RESERVE_BTREE]))
2146 break;
2147
2148 if (bch_can_invalidate_bucket(ca, b) &&
2149 !GC_MARK(b)) {
2150 __bch_invalidate_one_bucket(ca, b);
2151 if (!fifo_push(&ca->free[RESERVE_PRIO],
2152 b - ca->buckets))
2153 fifo_push(&ca->free[RESERVE_BTREE],
2154 b - ca->buckets);
2155 }
2156 }
2157
2158 mutex_unlock(&c->bucket_lock);
2159 }
2160
2161 /* Btree insertion */
2162
btree_insert_key(struct btree * b,struct bkey * k,struct bkey * replace_key)2163 static bool btree_insert_key(struct btree *b, struct bkey *k,
2164 struct bkey *replace_key)
2165 {
2166 unsigned int status;
2167
2168 BUG_ON(bkey_cmp(k, &b->key) > 0);
2169
2170 status = bch_btree_insert_key(&b->keys, k, replace_key);
2171 if (status != BTREE_INSERT_STATUS_NO_INSERT) {
2172 bch_check_keys(&b->keys, "%u for %s", status,
2173 replace_key ? "replace" : "insert");
2174
2175 trace_bcache_btree_insert_key(b, k, replace_key != NULL,
2176 status);
2177 return true;
2178 } else
2179 return false;
2180 }
2181
insert_u64s_remaining(struct btree * b)2182 static size_t insert_u64s_remaining(struct btree *b)
2183 {
2184 long ret = bch_btree_keys_u64s_remaining(&b->keys);
2185
2186 /*
2187 * Might land in the middle of an existing extent and have to split it
2188 */
2189 if (b->keys.ops->is_extents)
2190 ret -= KEY_MAX_U64S;
2191
2192 return max(ret, 0L);
2193 }
2194
bch_btree_insert_keys(struct btree * b,struct btree_op * op,struct keylist * insert_keys,struct bkey * replace_key)2195 static bool bch_btree_insert_keys(struct btree *b, struct btree_op *op,
2196 struct keylist *insert_keys,
2197 struct bkey *replace_key)
2198 {
2199 bool ret = false;
2200 int oldsize = bch_count_data(&b->keys);
2201
2202 while (!bch_keylist_empty(insert_keys)) {
2203 struct bkey *k = insert_keys->keys;
2204
2205 if (bkey_u64s(k) > insert_u64s_remaining(b))
2206 break;
2207
2208 if (bkey_cmp(k, &b->key) <= 0) {
2209 if (!b->level)
2210 bkey_put(b->c, k);
2211
2212 ret |= btree_insert_key(b, k, replace_key);
2213 bch_keylist_pop_front(insert_keys);
2214 } else if (bkey_cmp(&START_KEY(k), &b->key) < 0) {
2215 BKEY_PADDED(key) temp;
2216 bkey_copy(&temp.key, insert_keys->keys);
2217
2218 bch_cut_back(&b->key, &temp.key);
2219 bch_cut_front(&b->key, insert_keys->keys);
2220
2221 ret |= btree_insert_key(b, &temp.key, replace_key);
2222 break;
2223 } else {
2224 break;
2225 }
2226 }
2227
2228 if (!ret)
2229 op->insert_collision = true;
2230
2231 BUG_ON(!bch_keylist_empty(insert_keys) && b->level);
2232
2233 BUG_ON(bch_count_data(&b->keys) < oldsize);
2234 return ret;
2235 }
2236
btree_split(struct btree * b,struct btree_op * op,struct keylist * insert_keys,struct bkey * replace_key)2237 static int btree_split(struct btree *b, struct btree_op *op,
2238 struct keylist *insert_keys,
2239 struct bkey *replace_key)
2240 {
2241 bool split;
2242 struct btree *n1, *n2 = NULL, *n3 = NULL;
2243 uint64_t start_time = local_clock();
2244 struct closure cl;
2245 struct keylist parent_keys;
2246
2247 closure_init_stack(&cl);
2248 bch_keylist_init(&parent_keys);
2249
2250 if (btree_check_reserve(b, op)) {
2251 if (!b->level)
2252 return -EINTR;
2253 else
2254 WARN(1, "insufficient reserve for split\n");
2255 }
2256
2257 n1 = btree_node_alloc_replacement(b, op);
2258 if (IS_ERR(n1))
2259 goto err;
2260
2261 split = set_blocks(btree_bset_first(n1),
2262 block_bytes(n1->c->cache)) > (btree_blocks(b) * 4) / 5;
2263
2264 if (split) {
2265 unsigned int keys = 0;
2266
2267 trace_bcache_btree_node_split(b, btree_bset_first(n1)->keys);
2268
2269 n2 = bch_btree_node_alloc(b->c, op, b->level, b->parent);
2270 if (IS_ERR(n2))
2271 goto err_free1;
2272
2273 if (!b->parent) {
2274 n3 = bch_btree_node_alloc(b->c, op, b->level + 1, NULL);
2275 if (IS_ERR(n3))
2276 goto err_free2;
2277 }
2278
2279 mutex_lock(&n1->write_lock);
2280 mutex_lock(&n2->write_lock);
2281
2282 bch_btree_insert_keys(n1, op, insert_keys, replace_key);
2283
2284 /*
2285 * Has to be a linear search because we don't have an auxiliary
2286 * search tree yet
2287 */
2288
2289 while (keys < (btree_bset_first(n1)->keys * 3) / 5)
2290 keys += bkey_u64s(bset_bkey_idx(btree_bset_first(n1),
2291 keys));
2292
2293 bkey_copy_key(&n1->key,
2294 bset_bkey_idx(btree_bset_first(n1), keys));
2295 keys += bkey_u64s(bset_bkey_idx(btree_bset_first(n1), keys));
2296
2297 btree_bset_first(n2)->keys = btree_bset_first(n1)->keys - keys;
2298 btree_bset_first(n1)->keys = keys;
2299
2300 memcpy(btree_bset_first(n2)->start,
2301 bset_bkey_last(btree_bset_first(n1)),
2302 btree_bset_first(n2)->keys * sizeof(uint64_t));
2303
2304 bkey_copy_key(&n2->key, &b->key);
2305
2306 bch_keylist_add(&parent_keys, &n2->key);
2307 bch_btree_node_write(n2, &cl);
2308 mutex_unlock(&n2->write_lock);
2309 rw_unlock(true, n2);
2310 } else {
2311 trace_bcache_btree_node_compact(b, btree_bset_first(n1)->keys);
2312
2313 mutex_lock(&n1->write_lock);
2314 bch_btree_insert_keys(n1, op, insert_keys, replace_key);
2315 }
2316
2317 bch_keylist_add(&parent_keys, &n1->key);
2318 bch_btree_node_write(n1, &cl);
2319 mutex_unlock(&n1->write_lock);
2320
2321 if (n3) {
2322 /* Depth increases, make a new root */
2323 mutex_lock(&n3->write_lock);
2324 bkey_copy_key(&n3->key, &MAX_KEY);
2325 bch_btree_insert_keys(n3, op, &parent_keys, NULL);
2326 bch_btree_node_write(n3, &cl);
2327 mutex_unlock(&n3->write_lock);
2328
2329 closure_sync(&cl);
2330 bch_btree_set_root(n3);
2331 rw_unlock(true, n3);
2332 } else if (!b->parent) {
2333 /* Root filled up but didn't need to be split */
2334 closure_sync(&cl);
2335 bch_btree_set_root(n1);
2336 } else {
2337 /* Split a non root node */
2338 closure_sync(&cl);
2339 make_btree_freeing_key(b, parent_keys.top);
2340 bch_keylist_push(&parent_keys);
2341
2342 bch_btree_insert_node(b->parent, op, &parent_keys, NULL, NULL);
2343 BUG_ON(!bch_keylist_empty(&parent_keys));
2344 }
2345
2346 btree_node_free(b);
2347 rw_unlock(true, n1);
2348
2349 bch_time_stats_update(&b->c->btree_split_time, start_time);
2350
2351 return 0;
2352 err_free2:
2353 bkey_put(b->c, &n2->key);
2354 btree_node_free(n2);
2355 rw_unlock(true, n2);
2356 err_free1:
2357 bkey_put(b->c, &n1->key);
2358 btree_node_free(n1);
2359 rw_unlock(true, n1);
2360 err:
2361 WARN(1, "bcache: btree split failed (level %u)", b->level);
2362
2363 if (n3 == ERR_PTR(-EAGAIN) ||
2364 n2 == ERR_PTR(-EAGAIN) ||
2365 n1 == ERR_PTR(-EAGAIN))
2366 return -EAGAIN;
2367
2368 return -ENOMEM;
2369 }
2370
bch_btree_insert_node(struct btree * b,struct btree_op * op,struct keylist * insert_keys,atomic_t * journal_ref,struct bkey * replace_key)2371 static int bch_btree_insert_node(struct btree *b, struct btree_op *op,
2372 struct keylist *insert_keys,
2373 atomic_t *journal_ref,
2374 struct bkey *replace_key)
2375 {
2376 struct closure cl;
2377
2378 BUG_ON(b->level && replace_key);
2379
2380 closure_init_stack(&cl);
2381
2382 mutex_lock(&b->write_lock);
2383
2384 if (write_block(b) != btree_bset_last(b) &&
2385 b->keys.last_set_unwritten)
2386 bch_btree_init_next(b); /* just wrote a set */
2387
2388 if (bch_keylist_nkeys(insert_keys) > insert_u64s_remaining(b)) {
2389 mutex_unlock(&b->write_lock);
2390 goto split;
2391 }
2392
2393 BUG_ON(write_block(b) != btree_bset_last(b));
2394
2395 if (bch_btree_insert_keys(b, op, insert_keys, replace_key)) {
2396 if (!b->level)
2397 bch_btree_leaf_dirty(b, journal_ref);
2398 else
2399 bch_btree_node_write(b, &cl);
2400 }
2401
2402 mutex_unlock(&b->write_lock);
2403
2404 /* wait for btree node write if necessary, after unlock */
2405 closure_sync(&cl);
2406
2407 return 0;
2408 split:
2409 if (current->bio_list) {
2410 op->lock = b->c->root->level + 1;
2411 return -EAGAIN;
2412 } else if (op->lock <= b->c->root->level) {
2413 op->lock = b->c->root->level + 1;
2414 return -EINTR;
2415 } else {
2416 /* Invalidated all iterators */
2417 int ret = btree_split(b, op, insert_keys, replace_key);
2418
2419 if (bch_keylist_empty(insert_keys))
2420 return 0;
2421 else if (!ret)
2422 return -EINTR;
2423 return ret;
2424 }
2425 }
2426
bch_btree_insert_check_key(struct btree * b,struct btree_op * op,struct bkey * check_key)2427 int bch_btree_insert_check_key(struct btree *b, struct btree_op *op,
2428 struct bkey *check_key)
2429 {
2430 int ret = -EINTR;
2431 uint64_t btree_ptr = b->key.ptr[0];
2432 unsigned long seq = b->seq;
2433 struct keylist insert;
2434 bool upgrade = op->lock == -1;
2435
2436 bch_keylist_init(&insert);
2437
2438 if (upgrade) {
2439 rw_unlock(false, b);
2440 rw_lock(true, b, b->level);
2441
2442 if (b->key.ptr[0] != btree_ptr ||
2443 b->seq != seq + 1) {
2444 op->lock = b->level;
2445 goto out;
2446 }
2447 }
2448
2449 SET_KEY_PTRS(check_key, 1);
2450 get_random_bytes(&check_key->ptr[0], sizeof(uint64_t));
2451
2452 SET_PTR_DEV(check_key, 0, PTR_CHECK_DEV);
2453
2454 bch_keylist_add(&insert, check_key);
2455
2456 ret = bch_btree_insert_node(b, op, &insert, NULL, NULL);
2457
2458 BUG_ON(!ret && !bch_keylist_empty(&insert));
2459 out:
2460 if (upgrade)
2461 downgrade_write(&b->lock);
2462 return ret;
2463 }
2464
2465 struct btree_insert_op {
2466 struct btree_op op;
2467 struct keylist *keys;
2468 atomic_t *journal_ref;
2469 struct bkey *replace_key;
2470 };
2471
btree_insert_fn(struct btree_op * b_op,struct btree * b)2472 static int btree_insert_fn(struct btree_op *b_op, struct btree *b)
2473 {
2474 struct btree_insert_op *op = container_of(b_op,
2475 struct btree_insert_op, op);
2476
2477 int ret = bch_btree_insert_node(b, &op->op, op->keys,
2478 op->journal_ref, op->replace_key);
2479 if (ret && !bch_keylist_empty(op->keys))
2480 return ret;
2481 else
2482 return MAP_DONE;
2483 }
2484
bch_btree_insert(struct cache_set * c,struct keylist * keys,atomic_t * journal_ref,struct bkey * replace_key)2485 int bch_btree_insert(struct cache_set *c, struct keylist *keys,
2486 atomic_t *journal_ref, struct bkey *replace_key)
2487 {
2488 struct btree_insert_op op;
2489 int ret = 0;
2490
2491 BUG_ON(current->bio_list);
2492 BUG_ON(bch_keylist_empty(keys));
2493
2494 bch_btree_op_init(&op.op, 0);
2495 op.keys = keys;
2496 op.journal_ref = journal_ref;
2497 op.replace_key = replace_key;
2498
2499 while (!ret && !bch_keylist_empty(keys)) {
2500 op.op.lock = 0;
2501 ret = bch_btree_map_leaf_nodes(&op.op, c,
2502 &START_KEY(keys->keys),
2503 btree_insert_fn);
2504 }
2505
2506 if (ret) {
2507 struct bkey *k;
2508
2509 pr_err("error %i\n", ret);
2510
2511 while ((k = bch_keylist_pop(keys)))
2512 bkey_put(c, k);
2513 } else if (op.op.insert_collision)
2514 ret = -ESRCH;
2515
2516 return ret;
2517 }
2518
bch_btree_set_root(struct btree * b)2519 void bch_btree_set_root(struct btree *b)
2520 {
2521 unsigned int i;
2522 struct closure cl;
2523
2524 closure_init_stack(&cl);
2525
2526 trace_bcache_btree_set_root(b);
2527
2528 BUG_ON(!b->written);
2529
2530 for (i = 0; i < KEY_PTRS(&b->key); i++)
2531 BUG_ON(PTR_BUCKET(b->c, &b->key, i)->prio != BTREE_PRIO);
2532
2533 mutex_lock(&b->c->bucket_lock);
2534 list_del_init(&b->list);
2535 mutex_unlock(&b->c->bucket_lock);
2536
2537 b->c->root = b;
2538
2539 bch_journal_meta(b->c, &cl);
2540 closure_sync(&cl);
2541 }
2542
2543 /* Map across nodes or keys */
2544
bch_btree_map_nodes_recurse(struct btree * b,struct btree_op * op,struct bkey * from,btree_map_nodes_fn * fn,int flags)2545 static int bch_btree_map_nodes_recurse(struct btree *b, struct btree_op *op,
2546 struct bkey *from,
2547 btree_map_nodes_fn *fn, int flags)
2548 {
2549 int ret = MAP_CONTINUE;
2550
2551 if (b->level) {
2552 struct bkey *k;
2553 struct btree_iter_stack iter;
2554
2555 bch_btree_iter_stack_init(&b->keys, &iter, from);
2556
2557 while ((k = bch_btree_iter_next_filter(&iter.iter, &b->keys,
2558 bch_ptr_bad))) {
2559 ret = bcache_btree(map_nodes_recurse, k, b,
2560 op, from, fn, flags);
2561 from = NULL;
2562
2563 if (ret != MAP_CONTINUE)
2564 return ret;
2565 }
2566 }
2567
2568 if (!b->level || flags == MAP_ALL_NODES)
2569 ret = fn(op, b);
2570
2571 return ret;
2572 }
2573
__bch_btree_map_nodes(struct btree_op * op,struct cache_set * c,struct bkey * from,btree_map_nodes_fn * fn,int flags)2574 int __bch_btree_map_nodes(struct btree_op *op, struct cache_set *c,
2575 struct bkey *from, btree_map_nodes_fn *fn, int flags)
2576 {
2577 return bcache_btree_root(map_nodes_recurse, c, op, from, fn, flags);
2578 }
2579
bch_btree_map_keys_recurse(struct btree * b,struct btree_op * op,struct bkey * from,btree_map_keys_fn * fn,int flags)2580 int bch_btree_map_keys_recurse(struct btree *b, struct btree_op *op,
2581 struct bkey *from, btree_map_keys_fn *fn,
2582 int flags)
2583 {
2584 int ret = MAP_CONTINUE;
2585 struct bkey *k;
2586 struct btree_iter_stack iter;
2587
2588 bch_btree_iter_stack_init(&b->keys, &iter, from);
2589
2590 while ((k = bch_btree_iter_next_filter(&iter.iter, &b->keys,
2591 bch_ptr_bad))) {
2592 ret = !b->level
2593 ? fn(op, b, k)
2594 : bcache_btree(map_keys_recurse, k,
2595 b, op, from, fn, flags);
2596 from = NULL;
2597
2598 if (ret != MAP_CONTINUE)
2599 return ret;
2600 }
2601
2602 if (!b->level && (flags & MAP_END_KEY))
2603 ret = fn(op, b, &KEY(KEY_INODE(&b->key),
2604 KEY_OFFSET(&b->key), 0));
2605
2606 return ret;
2607 }
2608
bch_btree_map_keys(struct btree_op * op,struct cache_set * c,struct bkey * from,btree_map_keys_fn * fn,int flags)2609 int bch_btree_map_keys(struct btree_op *op, struct cache_set *c,
2610 struct bkey *from, btree_map_keys_fn *fn, int flags)
2611 {
2612 return bcache_btree_root(map_keys_recurse, c, op, from, fn, flags);
2613 }
2614
2615 /* Keybuf code */
2616
keybuf_cmp(struct keybuf_key * l,struct keybuf_key * r)2617 static inline int keybuf_cmp(struct keybuf_key *l, struct keybuf_key *r)
2618 {
2619 /* Overlapping keys compare equal */
2620 if (bkey_cmp(&l->key, &START_KEY(&r->key)) <= 0)
2621 return -1;
2622 if (bkey_cmp(&START_KEY(&l->key), &r->key) >= 0)
2623 return 1;
2624 return 0;
2625 }
2626
keybuf_nonoverlapping_cmp(struct keybuf_key * l,struct keybuf_key * r)2627 static inline int keybuf_nonoverlapping_cmp(struct keybuf_key *l,
2628 struct keybuf_key *r)
2629 {
2630 return clamp_t(int64_t, bkey_cmp(&l->key, &r->key), -1, 1);
2631 }
2632
2633 struct refill {
2634 struct btree_op op;
2635 unsigned int nr_found;
2636 struct keybuf *buf;
2637 struct bkey *end;
2638 keybuf_pred_fn *pred;
2639 };
2640
refill_keybuf_fn(struct btree_op * op,struct btree * b,struct bkey * k)2641 static int refill_keybuf_fn(struct btree_op *op, struct btree *b,
2642 struct bkey *k)
2643 {
2644 struct refill *refill = container_of(op, struct refill, op);
2645 struct keybuf *buf = refill->buf;
2646 int ret = MAP_CONTINUE;
2647
2648 if (bkey_cmp(k, refill->end) > 0) {
2649 ret = MAP_DONE;
2650 goto out;
2651 }
2652
2653 if (!KEY_SIZE(k)) /* end key */
2654 goto out;
2655
2656 if (refill->pred(buf, k)) {
2657 struct keybuf_key *w;
2658
2659 spin_lock(&buf->lock);
2660
2661 w = array_alloc(&buf->freelist);
2662 if (!w) {
2663 spin_unlock(&buf->lock);
2664 return MAP_DONE;
2665 }
2666
2667 w->private = NULL;
2668 bkey_copy(&w->key, k);
2669
2670 if (RB_INSERT(&buf->keys, w, node, keybuf_cmp))
2671 array_free(&buf->freelist, w);
2672 else
2673 refill->nr_found++;
2674
2675 if (array_freelist_empty(&buf->freelist))
2676 ret = MAP_DONE;
2677
2678 spin_unlock(&buf->lock);
2679 }
2680 out:
2681 buf->last_scanned = *k;
2682 return ret;
2683 }
2684
bch_refill_keybuf(struct cache_set * c,struct keybuf * buf,struct bkey * end,keybuf_pred_fn * pred)2685 void bch_refill_keybuf(struct cache_set *c, struct keybuf *buf,
2686 struct bkey *end, keybuf_pred_fn *pred)
2687 {
2688 struct bkey start = buf->last_scanned;
2689 struct refill refill;
2690
2691 cond_resched();
2692
2693 bch_btree_op_init(&refill.op, -1);
2694 refill.nr_found = 0;
2695 refill.buf = buf;
2696 refill.end = end;
2697 refill.pred = pred;
2698
2699 bch_btree_map_keys(&refill.op, c, &buf->last_scanned,
2700 refill_keybuf_fn, MAP_END_KEY);
2701
2702 trace_bcache_keyscan(refill.nr_found,
2703 KEY_INODE(&start), KEY_OFFSET(&start),
2704 KEY_INODE(&buf->last_scanned),
2705 KEY_OFFSET(&buf->last_scanned));
2706
2707 spin_lock(&buf->lock);
2708
2709 if (!RB_EMPTY_ROOT(&buf->keys)) {
2710 struct keybuf_key *w;
2711
2712 w = RB_FIRST(&buf->keys, struct keybuf_key, node);
2713 buf->start = START_KEY(&w->key);
2714
2715 w = RB_LAST(&buf->keys, struct keybuf_key, node);
2716 buf->end = w->key;
2717 } else {
2718 buf->start = MAX_KEY;
2719 buf->end = MAX_KEY;
2720 }
2721
2722 spin_unlock(&buf->lock);
2723 }
2724
__bch_keybuf_del(struct keybuf * buf,struct keybuf_key * w)2725 static void __bch_keybuf_del(struct keybuf *buf, struct keybuf_key *w)
2726 {
2727 rb_erase(&w->node, &buf->keys);
2728 array_free(&buf->freelist, w);
2729 }
2730
bch_keybuf_del(struct keybuf * buf,struct keybuf_key * w)2731 void bch_keybuf_del(struct keybuf *buf, struct keybuf_key *w)
2732 {
2733 spin_lock(&buf->lock);
2734 __bch_keybuf_del(buf, w);
2735 spin_unlock(&buf->lock);
2736 }
2737
bch_keybuf_check_overlapping(struct keybuf * buf,struct bkey * start,struct bkey * end)2738 bool bch_keybuf_check_overlapping(struct keybuf *buf, struct bkey *start,
2739 struct bkey *end)
2740 {
2741 bool ret = false;
2742 struct keybuf_key *p, *w, s;
2743
2744 s.key = *start;
2745
2746 if (bkey_cmp(end, &buf->start) <= 0 ||
2747 bkey_cmp(start, &buf->end) >= 0)
2748 return false;
2749
2750 spin_lock(&buf->lock);
2751 w = RB_GREATER(&buf->keys, s, node, keybuf_nonoverlapping_cmp);
2752
2753 while (w && bkey_cmp(&START_KEY(&w->key), end) < 0) {
2754 p = w;
2755 w = RB_NEXT(w, node);
2756
2757 if (p->private)
2758 ret = true;
2759 else
2760 __bch_keybuf_del(buf, p);
2761 }
2762
2763 spin_unlock(&buf->lock);
2764 return ret;
2765 }
2766
bch_keybuf_next(struct keybuf * buf)2767 struct keybuf_key *bch_keybuf_next(struct keybuf *buf)
2768 {
2769 struct keybuf_key *w;
2770
2771 spin_lock(&buf->lock);
2772
2773 w = RB_FIRST(&buf->keys, struct keybuf_key, node);
2774
2775 while (w && w->private)
2776 w = RB_NEXT(w, node);
2777
2778 if (w)
2779 w->private = ERR_PTR(-EINTR);
2780
2781 spin_unlock(&buf->lock);
2782 return w;
2783 }
2784
bch_keybuf_next_rescan(struct cache_set * c,struct keybuf * buf,struct bkey * end,keybuf_pred_fn * pred)2785 struct keybuf_key *bch_keybuf_next_rescan(struct cache_set *c,
2786 struct keybuf *buf,
2787 struct bkey *end,
2788 keybuf_pred_fn *pred)
2789 {
2790 struct keybuf_key *ret;
2791
2792 while (1) {
2793 ret = bch_keybuf_next(buf);
2794 if (ret)
2795 break;
2796
2797 if (bkey_cmp(&buf->last_scanned, end) >= 0) {
2798 pr_debug("scan finished\n");
2799 break;
2800 }
2801
2802 bch_refill_keybuf(c, buf, end, pred);
2803 }
2804
2805 return ret;
2806 }
2807
bch_keybuf_init(struct keybuf * buf)2808 void bch_keybuf_init(struct keybuf *buf)
2809 {
2810 buf->last_scanned = MAX_KEY;
2811 buf->keys = RB_ROOT;
2812
2813 spin_lock_init(&buf->lock);
2814 array_allocator_init(&buf->freelist);
2815 }
2816
bch_btree_exit(void)2817 void bch_btree_exit(void)
2818 {
2819 if (btree_io_wq)
2820 destroy_workqueue(btree_io_wq);
2821 }
2822
bch_btree_init(void)2823 int __init bch_btree_init(void)
2824 {
2825 btree_io_wq = alloc_workqueue("bch_btree_io",
2826 WQ_MEM_RECLAIM | WQ_PERCPU, 0);
2827 if (!btree_io_wq)
2828 return -ENOMEM;
2829
2830 return 0;
2831 }
2832