bcache: move closures to lib/
[linux-2.6-block.git] / drivers / md / bcache / super.c
CommitLineData
87418ef9 1// SPDX-License-Identifier: GPL-2.0
cafe5635
KO
2/*
3 * bcache setup/teardown code, and some metadata io - read a superblock and
4 * figure out what to do with it.
5 *
6 * Copyright 2010, 2011 Kent Overstreet <kent.overstreet@gmail.com>
7 * Copyright 2012 Google, Inc.
8 */
9
10#include "bcache.h"
11#include "btree.h"
12#include "debug.h"
65d45231 13#include "extents.h"
cafe5635 14#include "request.h"
279afbad 15#include "writeback.h"
d721a43f 16#include "features.h"
cafe5635 17
c37511b8 18#include <linux/blkdev.h>
4ee60ec1 19#include <linux/pagemap.h>
cafe5635 20#include <linux/debugfs.h>
28935ab5 21#include <linux/idr.h>
79826c35 22#include <linux/kthread.h>
ee4a36f4 23#include <linux/workqueue.h>
cafe5635
KO
24#include <linux/module.h>
25#include <linux/random.h>
26#include <linux/reboot.h>
27#include <linux/sysfs.h>
28
9aaf5165
CL
29unsigned int bch_cutoff_writeback;
30unsigned int bch_cutoff_writeback_sync;
31
cafe5635
KO
32static const char bcache_magic[] = {
33 0xc6, 0x85, 0x73, 0xf6, 0x4e, 0x1a, 0x45, 0xca,
34 0x82, 0x65, 0xf5, 0x7f, 0x48, 0xba, 0x6d, 0x81
35};
36
37static const char invalid_uuid[] = {
38 0xa0, 0x3e, 0xf8, 0xed, 0x3e, 0xe1, 0xb8, 0x78,
39 0xc8, 0x50, 0xfc, 0x5e, 0xcb, 0x16, 0xcd, 0x99
40};
41
cafe5635
KO
42static struct kobject *bcache_kobj;
43struct mutex bch_register_lock;
a59ff6cc 44bool bcache_is_reboot;
cafe5635
KO
45LIST_HEAD(bch_cache_sets);
46static LIST_HEAD(uncached_devices);
47
28935ab5 48static int bcache_major;
1dbe32ad 49static DEFINE_IDA(bcache_device_idx);
cafe5635
KO
50static wait_queue_head_t unregister_wait;
51struct workqueue_struct *bcache_wq;
afe78ab4 52struct workqueue_struct *bch_flush_wq;
0f843e65 53struct workqueue_struct *bch_journal_wq;
cafe5635 54
a59ff6cc 55
cafe5635 56#define BTREE_MAX_PAGES (256 * 1024 / PAGE_SIZE)
1dbe32ad
CL
57/* limitation of partitions number on single bcache device */
58#define BCACHE_MINORS 128
59/* limitation of bcache devices number on single system */
60#define BCACHE_DEVICE_IDX_MAX ((1U << MINORBITS)/BCACHE_MINORS)
cafe5635 61
cafe5635
KO
62/* Superblock */
63
ffa47032
CL
64static unsigned int get_bucket_size(struct cache_sb *sb, struct cache_sb_disk *s)
65{
66 unsigned int bucket_size = le16_to_cpu(s->bucket_size);
67
b16671e8
CL
68 if (sb->version >= BCACHE_SB_VERSION_CDEV_WITH_FEATURES) {
69 if (bch_has_feature_large_bucket(sb)) {
70 unsigned int max, order;
71
72 max = sizeof(unsigned int) * BITS_PER_BYTE - 1;
73 order = le16_to_cpu(s->bucket_size);
74 /*
75 * bcache tool will make sure the overflow won't
76 * happen, an error message here is enough.
77 */
78 if (order > max)
79 pr_err("Bucket size (1 << %u) overflows\n",
80 order);
81 bucket_size = 1 << order;
82 } else if (bch_has_feature_obso_large_bucket(sb)) {
83 bucket_size +=
84 le16_to_cpu(s->obso_bucket_size_hi) << 16;
85 }
86 }
ffa47032
CL
87
88 return bucket_size;
89}
90
5b21403c
CL
91static const char *read_super_common(struct cache_sb *sb, struct block_device *bdev,
92 struct cache_sb_disk *s)
93{
94 const char *err;
95 unsigned int i;
96
198efa35 97 sb->first_bucket= le16_to_cpu(s->first_bucket);
5b21403c 98 sb->nbuckets = le64_to_cpu(s->nbuckets);
ffa47032 99 sb->bucket_size = get_bucket_size(sb, s);
5b21403c
CL
100
101 sb->nr_in_set = le16_to_cpu(s->nr_in_set);
102 sb->nr_this_dev = le16_to_cpu(s->nr_this_dev);
103
198efa35
CL
104 err = "Too many journal buckets";
105 if (sb->keys > SB_JOURNAL_BUCKETS)
106 goto err;
107
5b21403c
CL
108 err = "Too many buckets";
109 if (sb->nbuckets > LONG_MAX)
110 goto err;
111
112 err = "Not enough buckets";
113 if (sb->nbuckets < 1 << 7)
114 goto err;
115
c557a5f7
CL
116 err = "Bad block size (not power of 2)";
117 if (!is_power_of_2(sb->block_size))
118 goto err;
119
120 err = "Bad block size (larger than page size)";
121 if (sb->block_size > PAGE_SECTORS)
122 goto err;
123
124 err = "Bad bucket size (not power of 2)";
125 if (!is_power_of_2(sb->bucket_size))
126 goto err;
127
128 err = "Bad bucket size (smaller than page size)";
129 if (sb->bucket_size < PAGE_SECTORS)
5b21403c
CL
130 goto err;
131
132 err = "Invalid superblock: device too small";
133 if (get_capacity(bdev->bd_disk) <
134 sb->bucket_size * sb->nbuckets)
135 goto err;
136
137 err = "Bad UUID";
138 if (bch_is_zero(sb->set_uuid, 16))
139 goto err;
140
141 err = "Bad cache device number in set";
142 if (!sb->nr_in_set ||
143 sb->nr_in_set <= sb->nr_this_dev ||
144 sb->nr_in_set > MAX_CACHES_PER_SET)
145 goto err;
146
147 err = "Journal buckets not sequential";
148 for (i = 0; i < sb->keys; i++)
149 if (sb->d[i] != sb->first_bucket + i)
150 goto err;
151
152 err = "Too many journal buckets";
153 if (sb->first_bucket + sb->keys > sb->nbuckets)
154 goto err;
155
156 err = "Invalid superblock: first bucket comes before end of super";
157 if (sb->first_bucket * sb->bucket_size < 16)
158 goto err;
159
160 err = NULL;
161err:
162 return err;
163}
164
165
cafe5635 166static const char *read_super(struct cache_sb *sb, struct block_device *bdev,
cfa0c56d 167 struct cache_sb_disk **res)
cafe5635
KO
168{
169 const char *err;
a702a692 170 struct cache_sb_disk *s;
6321bef0 171 struct page *page;
6f10f7d1 172 unsigned int i;
cafe5635 173
6321bef0
CH
174 page = read_cache_page_gfp(bdev->bd_inode->i_mapping,
175 SB_OFFSET >> PAGE_SHIFT, GFP_KERNEL);
176 if (IS_ERR(page))
cafe5635 177 return "IO error";
6321bef0 178 s = page_address(page) + offset_in_page(SB_OFFSET);
cafe5635
KO
179
180 sb->offset = le64_to_cpu(s->offset);
181 sb->version = le64_to_cpu(s->version);
182
183 memcpy(sb->magic, s->magic, 16);
184 memcpy(sb->uuid, s->uuid, 16);
185 memcpy(sb->set_uuid, s->set_uuid, 16);
186 memcpy(sb->label, s->label, SB_LABEL_SIZE);
187
188 sb->flags = le64_to_cpu(s->flags);
189 sb->seq = le64_to_cpu(s->seq);
cafe5635 190 sb->last_mount = le32_to_cpu(s->last_mount);
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191 sb->keys = le16_to_cpu(s->keys);
192
193 for (i = 0; i < SB_JOURNAL_BUCKETS; i++)
194 sb->d[i] = le64_to_cpu(s->d[i]);
195
46f5aa88 196 pr_debug("read sb version %llu, flags %llu, seq %llu, journal size %u\n",
cafe5635
KO
197 sb->version, sb->flags, sb->seq, sb->keys);
198
aaf8dbea 199 err = "Not a bcache superblock (bad offset)";
cafe5635
KO
200 if (sb->offset != SB_SECTOR)
201 goto err;
202
aaf8dbea 203 err = "Not a bcache superblock (bad magic)";
cafe5635
KO
204 if (memcmp(sb->magic, bcache_magic, 16))
205 goto err;
206
cafe5635
KO
207 err = "Bad checksum";
208 if (s->csum != csum_set(s))
209 goto err;
210
211 err = "Bad UUID";
169ef1cf 212 if (bch_is_zero(sb->uuid, 16))
cafe5635
KO
213 goto err;
214
8abb2a5d
KO
215 sb->block_size = le16_to_cpu(s->block_size);
216
217 err = "Superblock block size smaller than device block size";
218 if (sb->block_size << 9 < bdev_logical_block_size(bdev))
219 goto err;
220
2903381f
KO
221 switch (sb->version) {
222 case BCACHE_SB_VERSION_BDEV:
2903381f
KO
223 sb->data_offset = BDEV_DATA_START_DEFAULT;
224 break;
225 case BCACHE_SB_VERSION_BDEV_WITH_OFFSET:
d721a43f 226 case BCACHE_SB_VERSION_BDEV_WITH_FEATURES:
2903381f
KO
227 sb->data_offset = le64_to_cpu(s->data_offset);
228
229 err = "Bad data offset";
230 if (sb->data_offset < BDEV_DATA_START_DEFAULT)
231 goto err;
cafe5635 232
2903381f
KO
233 break;
234 case BCACHE_SB_VERSION_CDEV:
235 case BCACHE_SB_VERSION_CDEV_WITH_UUID:
5b21403c
CL
236 err = read_super_common(sb, bdev, s);
237 if (err)
2903381f 238 goto err;
2903381f 239 break;
d721a43f 240 case BCACHE_SB_VERSION_CDEV_WITH_FEATURES:
ffa47032
CL
241 /*
242 * Feature bits are needed in read_super_common(),
243 * convert them firstly.
244 */
d721a43f
CL
245 sb->feature_compat = le64_to_cpu(s->feature_compat);
246 sb->feature_incompat = le64_to_cpu(s->feature_incompat);
247 sb->feature_ro_compat = le64_to_cpu(s->feature_ro_compat);
1dfc0686
CL
248
249 /* Check incompatible features */
250 err = "Unsupported compatible feature found";
251 if (bch_has_unknown_compat_features(sb))
252 goto err;
253
254 err = "Unsupported read-only compatible feature found";
255 if (bch_has_unknown_ro_compat_features(sb))
256 goto err;
257
258 err = "Unsupported incompatible feature found";
259 if (bch_has_unknown_incompat_features(sb))
260 goto err;
261
ffa47032
CL
262 err = read_super_common(sb, bdev, s);
263 if (err)
2903381f 264 goto err;
2903381f
KO
265 break;
266 default:
267 err = "Unsupported superblock version";
cafe5635 268 goto err;
2903381f
KO
269 }
270
75cbb3f1 271 sb->last_mount = (u32)ktime_get_real_seconds();
cfa0c56d 272 *res = s;
6321bef0 273 return NULL;
cafe5635 274err:
6321bef0 275 put_page(page);
cafe5635
KO
276 return err;
277}
278
4246a0b6 279static void write_bdev_super_endio(struct bio *bio)
cafe5635
KO
280{
281 struct cached_dev *dc = bio->bi_private;
08ec1e62
CL
282
283 if (bio->bi_status)
284 bch_count_backing_io_errors(dc, bio);
cafe5635 285
cb7a583e 286 closure_put(&dc->sb_write);
cafe5635
KO
287}
288
475389ae
CH
289static void __write_super(struct cache_sb *sb, struct cache_sb_disk *out,
290 struct bio *bio)
cafe5635 291{
6f10f7d1 292 unsigned int i;
cafe5635 293
475389ae 294 bio->bi_opf = REQ_OP_WRITE | REQ_SYNC | REQ_META;
4f024f37 295 bio->bi_iter.bi_sector = SB_SECTOR;
475389ae
CH
296 __bio_add_page(bio, virt_to_page(out), SB_SIZE,
297 offset_in_page(out));
cafe5635
KO
298
299 out->offset = cpu_to_le64(sb->offset);
cafe5635
KO
300
301 memcpy(out->uuid, sb->uuid, 16);
302 memcpy(out->set_uuid, sb->set_uuid, 16);
303 memcpy(out->label, sb->label, SB_LABEL_SIZE);
304
305 out->flags = cpu_to_le64(sb->flags);
306 out->seq = cpu_to_le64(sb->seq);
307
308 out->last_mount = cpu_to_le32(sb->last_mount);
309 out->first_bucket = cpu_to_le16(sb->first_bucket);
310 out->keys = cpu_to_le16(sb->keys);
311
312 for (i = 0; i < sb->keys; i++)
313 out->d[i] = cpu_to_le64(sb->d[i]);
314
d721a43f
CL
315 if (sb->version >= BCACHE_SB_VERSION_CDEV_WITH_FEATURES) {
316 out->feature_compat = cpu_to_le64(sb->feature_compat);
317 out->feature_incompat = cpu_to_le64(sb->feature_incompat);
318 out->feature_ro_compat = cpu_to_le64(sb->feature_ro_compat);
319 }
320
321 out->version = cpu_to_le64(sb->version);
cafe5635
KO
322 out->csum = csum_set(out);
323
46f5aa88 324 pr_debug("ver %llu, flags %llu, seq %llu\n",
cafe5635
KO
325 sb->version, sb->flags, sb->seq);
326
4e49ea4a 327 submit_bio(bio);
cafe5635
KO
328}
329
cb7a583e
KO
330static void bch_write_bdev_super_unlock(struct closure *cl)
331{
332 struct cached_dev *dc = container_of(cl, struct cached_dev, sb_write);
333
334 up(&dc->sb_write_mutex);
335}
336
cafe5635
KO
337void bch_write_bdev_super(struct cached_dev *dc, struct closure *parent)
338{
cb7a583e 339 struct closure *cl = &dc->sb_write;
cafe5635
KO
340 struct bio *bio = &dc->sb_bio;
341
cb7a583e
KO
342 down(&dc->sb_write_mutex);
343 closure_init(cl, parent);
cafe5635 344
49add496 345 bio_init(bio, dc->bdev, dc->sb_bv, 1, 0);
cafe5635
KO
346 bio->bi_end_io = write_bdev_super_endio;
347 bio->bi_private = dc;
348
349 closure_get(cl);
27a40ab9 350 /* I/O request sent to backing device */
475389ae 351 __write_super(&dc->sb, dc->sb_disk, bio);
cafe5635 352
cb7a583e 353 closure_return_with_destructor(cl, bch_write_bdev_super_unlock);
cafe5635
KO
354}
355
4246a0b6 356static void write_super_endio(struct bio *bio)
cafe5635
KO
357{
358 struct cache *ca = bio->bi_private;
359
5138ac67
CL
360 /* is_read = 0 */
361 bch_count_io_errors(ca, bio->bi_status, 0,
362 "writing superblock");
cb7a583e
KO
363 closure_put(&ca->set->sb_write);
364}
365
366static void bcache_write_super_unlock(struct closure *cl)
367{
368 struct cache_set *c = container_of(cl, struct cache_set, sb_write);
369
370 up(&c->sb_write_mutex);
cafe5635
KO
371}
372
373void bcache_write_super(struct cache_set *c)
374{
cb7a583e 375 struct closure *cl = &c->sb_write;
08fdb2cd
CL
376 struct cache *ca = c->cache;
377 struct bio *bio = &ca->sb_bio;
378 unsigned int version = BCACHE_SB_VERSION_CDEV_WITH_UUID;
cafe5635 379
cb7a583e
KO
380 down(&c->sb_write_mutex);
381 closure_init(cl, &c->cl);
cafe5635 382
4a784266 383 ca->sb.seq++;
cafe5635 384
4a784266
CL
385 if (ca->sb.version < version)
386 ca->sb.version = version;
cafe5635 387
49add496 388 bio_init(bio, ca->bdev, ca->sb_bv, 1, 0);
08fdb2cd
CL
389 bio->bi_end_io = write_super_endio;
390 bio->bi_private = ca;
cafe5635 391
08fdb2cd
CL
392 closure_get(cl);
393 __write_super(&ca->sb, ca->sb_disk, bio);
cafe5635 394
cb7a583e 395 closure_return_with_destructor(cl, bcache_write_super_unlock);
cafe5635
KO
396}
397
398/* UUID io */
399
4246a0b6 400static void uuid_endio(struct bio *bio)
cafe5635
KO
401{
402 struct closure *cl = bio->bi_private;
cb7a583e 403 struct cache_set *c = container_of(cl, struct cache_set, uuid_write);
cafe5635 404
4e4cbee9 405 cache_set_err_on(bio->bi_status, c, "accessing uuids");
cafe5635
KO
406 bch_bbio_free(bio, c);
407 closure_put(cl);
408}
409
cb7a583e
KO
410static void uuid_io_unlock(struct closure *cl)
411{
412 struct cache_set *c = container_of(cl, struct cache_set, uuid_write);
413
414 up(&c->uuid_write_mutex);
415}
416
9a4fd6a2
BVA
417static void uuid_io(struct cache_set *c, blk_opf_t opf, struct bkey *k,
418 struct closure *parent)
cafe5635 419{
cb7a583e 420 struct closure *cl = &c->uuid_write;
cafe5635 421 struct uuid_entry *u;
6f10f7d1 422 unsigned int i;
85b1492e 423 char buf[80];
cafe5635
KO
424
425 BUG_ON(!parent);
cb7a583e
KO
426 down(&c->uuid_write_mutex);
427 closure_init(cl, parent);
cafe5635
KO
428
429 for (i = 0; i < KEY_PTRS(k); i++) {
430 struct bio *bio = bch_bbio_alloc(c);
431
9a4fd6a2 432 bio->bi_opf = opf | REQ_SYNC | REQ_META;
4f024f37 433 bio->bi_iter.bi_size = KEY_SIZE(k) << 9;
cafe5635
KO
434
435 bio->bi_end_io = uuid_endio;
436 bio->bi_private = cl;
169ef1cf 437 bch_bio_map(bio, c->uuids);
cafe5635
KO
438
439 bch_submit_bbio(bio, c, k, i);
440
9a4fd6a2 441 if ((opf & REQ_OP_MASK) != REQ_OP_WRITE)
cafe5635
KO
442 break;
443 }
444
dc9d98d6 445 bch_extent_to_text(buf, sizeof(buf), k);
9a4fd6a2
BVA
446 pr_debug("%s UUIDs at %s\n", (opf & REQ_OP_MASK) == REQ_OP_WRITE ?
447 "wrote" : "read", buf);
cafe5635
KO
448
449 for (u = c->uuids; u < c->uuids + c->nr_uuids; u++)
169ef1cf 450 if (!bch_is_zero(u->uuid, 16))
46f5aa88 451 pr_debug("Slot %zi: %pU: %s: 1st: %u last: %u inv: %u\n",
cafe5635
KO
452 u - c->uuids, u->uuid, u->label,
453 u->first_reg, u->last_reg, u->invalidated);
454
cb7a583e 455 closure_return_with_destructor(cl, uuid_io_unlock);
cafe5635
KO
456}
457
458static char *uuid_read(struct cache_set *c, struct jset *j, struct closure *cl)
459{
460 struct bkey *k = &j->uuid_bucket;
461
65d45231 462 if (__bch_btree_ptr_invalid(c, k))
cafe5635
KO
463 return "bad uuid pointer";
464
465 bkey_copy(&c->uuid_bucket, k);
9a4fd6a2 466 uuid_io(c, REQ_OP_READ, k, cl);
cafe5635
KO
467
468 if (j->version < BCACHE_JSET_VERSION_UUIDv1) {
469 struct uuid_entry_v0 *u0 = (void *) c->uuids;
470 struct uuid_entry *u1 = (void *) c->uuids;
471 int i;
472
473 closure_sync(cl);
474
475 /*
476 * Since the new uuid entry is bigger than the old, we have to
477 * convert starting at the highest memory address and work down
478 * in order to do it in place
479 */
480
481 for (i = c->nr_uuids - 1;
482 i >= 0;
483 --i) {
484 memcpy(u1[i].uuid, u0[i].uuid, 16);
485 memcpy(u1[i].label, u0[i].label, 32);
486
487 u1[i].first_reg = u0[i].first_reg;
488 u1[i].last_reg = u0[i].last_reg;
489 u1[i].invalidated = u0[i].invalidated;
490
491 u1[i].flags = 0;
492 u1[i].sectors = 0;
493 }
494 }
495
496 return NULL;
497}
498
499static int __uuid_write(struct cache_set *c)
500{
501 BKEY_PADDED(key) k;
502 struct closure cl;
4a784266 503 struct cache *ca = c->cache;
21e478dd 504 unsigned int size;
cafe5635 505
1fae7cf0 506 closure_init_stack(&cl);
cafe5635
KO
507 lockdep_assert_held(&bch_register_lock);
508
17e4aed8 509 if (bch_bucket_alloc_set(c, RESERVE_BTREE, &k.key, true))
cafe5635
KO
510 return 1;
511
4a784266 512 size = meta_bucket_pages(&ca->sb) * PAGE_SECTORS;
21e478dd 513 SET_KEY_SIZE(&k.key, size);
9a4fd6a2 514 uuid_io(c, REQ_OP_WRITE, &k.key, &cl);
cafe5635
KO
515 closure_sync(&cl);
516
7a55948d 517 /* Only one bucket used for uuid write */
7a55948d
SW
518 atomic_long_add(ca->sb.bucket_size, &ca->meta_sectors_written);
519
cafe5635 520 bkey_copy(&c->uuid_bucket, &k.key);
3a3b6a4e 521 bkey_put(c, &k.key);
cafe5635
KO
522 return 0;
523}
524
525int bch_uuid_write(struct cache_set *c)
526{
527 int ret = __uuid_write(c);
528
529 if (!ret)
530 bch_journal_meta(c, NULL);
531
532 return ret;
533}
534
535static struct uuid_entry *uuid_find(struct cache_set *c, const char *uuid)
536{
537 struct uuid_entry *u;
538
539 for (u = c->uuids;
540 u < c->uuids + c->nr_uuids; u++)
541 if (!memcmp(u->uuid, uuid, 16))
542 return u;
543
544 return NULL;
545}
546
547static struct uuid_entry *uuid_find_empty(struct cache_set *c)
548{
549 static const char zero_uuid[16] = "\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0";
1fae7cf0 550
cafe5635
KO
551 return uuid_find(c, zero_uuid);
552}
553
554/*
555 * Bucket priorities/gens:
556 *
557 * For each bucket, we store on disk its
3be11dba
CL
558 * 8 bit gen
559 * 16 bit priority
cafe5635
KO
560 *
561 * See alloc.c for an explanation of the gen. The priority is used to implement
562 * lru (and in the future other) cache replacement policies; for most purposes
563 * it's just an opaque integer.
564 *
565 * The gens and the priorities don't have a whole lot to do with each other, and
566 * it's actually the gens that must be written out at specific times - it's no
567 * big deal if the priorities don't get written, if we lose them we just reuse
568 * buckets in suboptimal order.
569 *
570 * On disk they're stored in a packed array, and in as many buckets are required
571 * to fit them all. The buckets we use to store them form a list; the journal
572 * header points to the first bucket, the first bucket points to the second
573 * bucket, et cetera.
574 *
575 * This code is used by the allocation code; periodically (whenever it runs out
576 * of buckets to allocate from) the allocation code will invalidate some
577 * buckets, but it can't use those buckets until their new gens are safely on
578 * disk.
579 */
580
4246a0b6 581static void prio_endio(struct bio *bio)
cafe5635
KO
582{
583 struct cache *ca = bio->bi_private;
584
4e4cbee9 585 cache_set_err_on(bio->bi_status, ca->set, "accessing priorities");
cafe5635
KO
586 bch_bbio_free(bio, ca->set);
587 closure_put(&ca->prio);
588}
589
552eee3b 590static void prio_io(struct cache *ca, uint64_t bucket, blk_opf_t opf)
cafe5635
KO
591{
592 struct closure *cl = &ca->prio;
593 struct bio *bio = bch_bbio_alloc(ca->set);
594
595 closure_init_stack(cl);
596
4f024f37 597 bio->bi_iter.bi_sector = bucket * ca->sb.bucket_size;
74d46992 598 bio_set_dev(bio, ca->bdev);
c954ac8d 599 bio->bi_iter.bi_size = meta_bucket_bytes(&ca->sb);
cafe5635
KO
600
601 bio->bi_end_io = prio_endio;
602 bio->bi_private = ca;
552eee3b 603 bio->bi_opf = opf | REQ_SYNC | REQ_META;
169ef1cf 604 bch_bio_map(bio, ca->disk_buckets);
cafe5635 605
771f393e 606 closure_bio_submit(ca->set, bio, &ca->prio);
cafe5635
KO
607 closure_sync(cl);
608}
609
84c529ae 610int bch_prio_write(struct cache *ca, bool wait)
cafe5635
KO
611{
612 int i;
613 struct bucket *b;
614 struct closure cl;
615
46f5aa88 616 pr_debug("free_prio=%zu, free_none=%zu, free_inc=%zu\n",
84c529ae
AR
617 fifo_used(&ca->free[RESERVE_PRIO]),
618 fifo_used(&ca->free[RESERVE_NONE]),
619 fifo_used(&ca->free_inc));
620
621 /*
622 * Pre-check if there are enough free buckets. In the non-blocking
623 * scenario it's better to fail early rather than starting to allocate
624 * buckets and do a cleanup later in case of failure.
625 */
626 if (!wait) {
627 size_t avail = fifo_used(&ca->free[RESERVE_PRIO]) +
628 fifo_used(&ca->free[RESERVE_NONE]);
629 if (prio_buckets(ca) > avail)
630 return -ENOMEM;
631 }
632
cafe5635
KO
633 closure_init_stack(&cl);
634
635 lockdep_assert_held(&ca->set->bucket_lock);
636
cafe5635
KO
637 ca->disk_buckets->seq++;
638
639 atomic_long_add(ca->sb.bucket_size * prio_buckets(ca),
640 &ca->meta_sectors_written);
641
cafe5635
KO
642 for (i = prio_buckets(ca) - 1; i >= 0; --i) {
643 long bucket;
644 struct prio_set *p = ca->disk_buckets;
b1a67b0f
KO
645 struct bucket_disk *d = p->data;
646 struct bucket_disk *end = d + prios_per_bucket(ca);
cafe5635
KO
647
648 for (b = ca->buckets + i * prios_per_bucket(ca);
649 b < ca->buckets + ca->sb.nbuckets && d < end;
650 b++, d++) {
651 d->prio = cpu_to_le16(b->prio);
652 d->gen = b->gen;
653 }
654
655 p->next_bucket = ca->prio_buckets[i + 1];
81ab4190 656 p->magic = pset_magic(&ca->sb);
c954ac8d 657 p->csum = bch_crc64(&p->magic, meta_bucket_bytes(&ca->sb) - 8);
cafe5635 658
84c529ae 659 bucket = bch_bucket_alloc(ca, RESERVE_PRIO, wait);
cafe5635
KO
660 BUG_ON(bucket == -1);
661
662 mutex_unlock(&ca->set->bucket_lock);
552eee3b 663 prio_io(ca, bucket, REQ_OP_WRITE);
cafe5635
KO
664 mutex_lock(&ca->set->bucket_lock);
665
666 ca->prio_buckets[i] = bucket;
667 atomic_dec_bug(&ca->buckets[bucket].pin);
668 }
669
670 mutex_unlock(&ca->set->bucket_lock);
671
672 bch_journal_meta(ca->set, &cl);
673 closure_sync(&cl);
674
675 mutex_lock(&ca->set->bucket_lock);
676
cafe5635
KO
677 /*
678 * Don't want the old priorities to get garbage collected until after we
679 * finish writing the new ones, and they're journalled
680 */
2531d9ee
KO
681 for (i = 0; i < prio_buckets(ca); i++) {
682 if (ca->prio_last_buckets[i])
683 __bch_bucket_free(ca,
684 &ca->buckets[ca->prio_last_buckets[i]]);
685
cafe5635 686 ca->prio_last_buckets[i] = ca->prio_buckets[i];
2531d9ee 687 }
84c529ae 688 return 0;
cafe5635
KO
689}
690
49d08d59 691static int prio_read(struct cache *ca, uint64_t bucket)
cafe5635
KO
692{
693 struct prio_set *p = ca->disk_buckets;
694 struct bucket_disk *d = p->data + prios_per_bucket(ca), *end = d;
695 struct bucket *b;
6f10f7d1 696 unsigned int bucket_nr = 0;
49d08d59 697 int ret = -EIO;
cafe5635
KO
698
699 for (b = ca->buckets;
700 b < ca->buckets + ca->sb.nbuckets;
701 b++, d++) {
702 if (d == end) {
703 ca->prio_buckets[bucket_nr] = bucket;
704 ca->prio_last_buckets[bucket_nr] = bucket;
705 bucket_nr++;
706
552eee3b 707 prio_io(ca, bucket, REQ_OP_READ);
cafe5635 708
b0d30981 709 if (p->csum !=
c954ac8d 710 bch_crc64(&p->magic, meta_bucket_bytes(&ca->sb) - 8)) {
46f5aa88 711 pr_warn("bad csum reading priorities\n");
49d08d59
CL
712 goto out;
713 }
cafe5635 714
49d08d59 715 if (p->magic != pset_magic(&ca->sb)) {
46f5aa88 716 pr_warn("bad magic reading priorities\n");
49d08d59
CL
717 goto out;
718 }
cafe5635
KO
719
720 bucket = p->next_bucket;
721 d = p->data;
722 }
723
724 b->prio = le16_to_cpu(d->prio);
3a2fd9d5 725 b->gen = b->last_gc = d->gen;
cafe5635 726 }
49d08d59
CL
727
728 ret = 0;
729out:
730 return ret;
cafe5635
KO
731}
732
733/* Bcache device */
734
05bdb996 735static int open_dev(struct gendisk *disk, blk_mode_t mode)
cafe5635 736{
d32e2bf8 737 struct bcache_device *d = disk->private_data;
1fae7cf0 738
c4d951dd 739 if (test_bit(BCACHE_DEV_CLOSING, &d->flags))
cafe5635
KO
740 return -ENXIO;
741
742 closure_get(&d->cl);
743 return 0;
744}
745
ae220766 746static void release_dev(struct gendisk *b)
cafe5635
KO
747{
748 struct bcache_device *d = b->private_data;
1fae7cf0 749
cafe5635 750 closure_put(&d->cl);
cafe5635
KO
751}
752
05bdb996 753static int ioctl_dev(struct block_device *b, blk_mode_t mode,
cafe5635
KO
754 unsigned int cmd, unsigned long arg)
755{
756 struct bcache_device *d = b->bd_disk->private_data;
0f0709e6 757
cafe5635
KO
758 return d->ioctl(d, mode, cmd, arg);
759}
760
c62b37d9
CH
761static const struct block_device_operations bcache_cached_ops = {
762 .submit_bio = cached_dev_submit_bio,
763 .open = open_dev,
764 .release = release_dev,
765 .ioctl = ioctl_dev,
766 .owner = THIS_MODULE,
767};
768
769static const struct block_device_operations bcache_flash_ops = {
770 .submit_bio = flash_dev_submit_bio,
cafe5635
KO
771 .open = open_dev,
772 .release = release_dev,
773 .ioctl = ioctl_dev,
774 .owner = THIS_MODULE,
775};
776
777void bcache_device_stop(struct bcache_device *d)
778{
c4d951dd 779 if (!test_and_set_bit(BCACHE_DEV_CLOSING, &d->flags))
63d63b51
CL
780 /*
781 * closure_fn set to
782 * - cached device: cached_dev_flush()
783 * - flash dev: flash_dev_flush()
784 */
cafe5635
KO
785 closure_queue(&d->cl);
786}
787
ee668506
KO
788static void bcache_device_unlink(struct bcache_device *d)
789{
c4d951dd 790 lockdep_assert_held(&bch_register_lock);
ee668506 791
c4d951dd 792 if (d->c && !test_and_set_bit(BCACHE_DEV_UNLINK_DONE, &d->flags)) {
08fdb2cd 793 struct cache *ca = d->c->cache;
ee668506 794
c4d951dd
KO
795 sysfs_remove_link(&d->c->kobj, d->name);
796 sysfs_remove_link(&d->kobj, "cache");
797
08fdb2cd 798 bd_unlink_disk_holder(ca->bdev, d->disk);
c4d951dd 799 }
ee668506
KO
800}
801
802static void bcache_device_link(struct bcache_device *d, struct cache_set *c,
803 const char *name)
804{
08fdb2cd 805 struct cache *ca = c->cache;
4b6efb4b 806 int ret;
ee668506 807
08fdb2cd 808 bd_link_disk_holder(ca->bdev, d->disk);
ee668506
KO
809
810 snprintf(d->name, BCACHEDEVNAME_SIZE,
811 "%s%u", name, d->id);
812
4b6efb4b
CL
813 ret = sysfs_create_link(&d->kobj, &c->kobj, "cache");
814 if (ret < 0)
46f5aa88 815 pr_err("Couldn't create device -> cache set symlink\n");
4b6efb4b
CL
816
817 ret = sysfs_create_link(&c->kobj, &d->kobj, d->name);
818 if (ret < 0)
46f5aa88 819 pr_err("Couldn't create cache set -> device symlink\n");
fecaee6f
ZL
820
821 clear_bit(BCACHE_DEV_UNLINK_DONE, &d->flags);
ee668506
KO
822}
823
cafe5635
KO
824static void bcache_device_detach(struct bcache_device *d)
825{
826 lockdep_assert_held(&bch_register_lock);
827
ea8c5356
CL
828 atomic_dec(&d->c->attached_dev_nr);
829
c4d951dd 830 if (test_bit(BCACHE_DEV_DETACHING, &d->flags)) {
cafe5635
KO
831 struct uuid_entry *u = d->c->uuids + d->id;
832
833 SET_UUID_FLASH_ONLY(u, 0);
834 memcpy(u->uuid, invalid_uuid, 16);
75cbb3f1 835 u->invalidated = cpu_to_le32((u32)ktime_get_real_seconds());
cafe5635 836 bch_uuid_write(d->c);
cafe5635
KO
837 }
838
c4d951dd 839 bcache_device_unlink(d);
ee668506 840
cafe5635
KO
841 d->c->devices[d->id] = NULL;
842 closure_put(&d->c->caching);
843 d->c = NULL;
844}
845
846static void bcache_device_attach(struct bcache_device *d, struct cache_set *c,
6f10f7d1 847 unsigned int id)
cafe5635 848{
cafe5635
KO
849 d->id = id;
850 d->c = c;
851 c->devices[id] = d;
852
2831231d
CL
853 if (id >= c->devices_max_used)
854 c->devices_max_used = id + 1;
855
cafe5635
KO
856 closure_get(&c->caching);
857}
858
1dbe32ad
CL
859static inline int first_minor_to_idx(int first_minor)
860{
861 return (first_minor/BCACHE_MINORS);
862}
863
864static inline int idx_to_first_minor(int idx)
865{
866 return (idx * BCACHE_MINORS);
867}
868
cafe5635
KO
869static void bcache_device_free(struct bcache_device *d)
870{
2d886951
CL
871 struct gendisk *disk = d->disk;
872
cafe5635
KO
873 lockdep_assert_held(&bch_register_lock);
874
2d886951 875 if (disk)
46f5aa88 876 pr_info("%s stopped\n", disk->disk_name);
2d886951 877 else
46f5aa88 878 pr_err("bcache device (NULL gendisk) stopped\n");
cafe5635
KO
879
880 if (d->c)
881 bcache_device_detach(d);
2d886951
CL
882
883 if (disk) {
1dbe32ad 884 ida_simple_remove(&bcache_device_idx,
2d886951 885 first_minor_to_idx(disk->first_minor));
8b9ab626 886 put_disk(disk);
28935ab5 887 }
cafe5635 888
d19936a2 889 bioset_exit(&d->bio_split);
958b4338
PE
890 kvfree(d->full_dirty_stripes);
891 kvfree(d->stripe_sectors_dirty);
cafe5635
KO
892
893 closure_debug_destroy(&d->cl);
894}
895
6f10f7d1 896static int bcache_device_init(struct bcache_device *d, unsigned int block_size,
c62b37d9
CH
897 sector_t sectors, struct block_device *cached_bdev,
898 const struct block_device_operations *ops)
cafe5635
KO
899{
900 struct request_queue *q;
5f2b18ec
BVA
901 const size_t max_stripes = min_t(size_t, INT_MAX,
902 SIZE_MAX / sizeof(atomic_t));
65f0f017 903 uint64_t n;
1dbe32ad 904 int idx;
279afbad 905
2d679fc7
KO
906 if (!d->stripe_size)
907 d->stripe_size = 1 << 31;
279afbad 908
65f0f017
CL
909 n = DIV_ROUND_UP_ULL(sectors, d->stripe_size);
910 if (!n || n > max_stripes) {
911 pr_err("nr_stripes too large or invalid: %llu (start sector beyond end of disk?)\n",
912 n);
279afbad 913 return -ENOMEM;
48a915a8 914 }
65f0f017 915 d->nr_stripes = n;
279afbad
KO
916
917 n = d->nr_stripes * sizeof(atomic_t);
bc4e54f6 918 d->stripe_sectors_dirty = kvzalloc(n, GFP_KERNEL);
279afbad
KO
919 if (!d->stripe_sectors_dirty)
920 return -ENOMEM;
cafe5635 921
48a915a8 922 n = BITS_TO_LONGS(d->nr_stripes) * sizeof(unsigned long);
bc4e54f6 923 d->full_dirty_stripes = kvzalloc(n, GFP_KERNEL);
48a915a8 924 if (!d->full_dirty_stripes)
224b0683 925 goto out_free_stripe_sectors_dirty;
48a915a8 926
1dbe32ad
CL
927 idx = ida_simple_get(&bcache_device_idx, 0,
928 BCACHE_DEVICE_IDX_MAX, GFP_KERNEL);
929 if (idx < 0)
224b0683 930 goto out_free_full_dirty_stripes;
b8c0d911 931
d19936a2 932 if (bioset_init(&d->bio_split, 4, offsetof(struct bbio, bio),
9b4e9f5a 933 BIOSET_NEED_BVECS|BIOSET_NEED_RESCUER))
224b0683 934 goto out_ida_remove;
9b4e9f5a 935
bc70852f 936 d->disk = blk_alloc_disk(NUMA_NO_NODE);
9b4e9f5a 937 if (!d->disk)
224b0683 938 goto out_bioset_exit;
cafe5635 939
279afbad 940 set_capacity(d->disk, sectors);
1dbe32ad 941 snprintf(d->disk->disk_name, DISK_NAME_LEN, "bcache%i", idx);
cafe5635
KO
942
943 d->disk->major = bcache_major;
1dbe32ad 944 d->disk->first_minor = idx_to_first_minor(idx);
bc70852f 945 d->disk->minors = BCACHE_MINORS;
c62b37d9 946 d->disk->fops = ops;
cafe5635
KO
947 d->disk->private_data = d;
948
bc70852f 949 q = d->disk->queue;
cafe5635
KO
950 q->limits.max_hw_sectors = UINT_MAX;
951 q->limits.max_sectors = UINT_MAX;
952 q->limits.max_segment_size = UINT_MAX;
a8affc03 953 q->limits.max_segments = BIO_MAX_VECS;
2bb4cd5c 954 blk_queue_max_discard_sectors(q, UINT_MAX);
90db6919 955 q->limits.discard_granularity = 512;
cafe5635
KO
956 q->limits.io_min = block_size;
957 q->limits.logical_block_size = block_size;
958 q->limits.physical_block_size = block_size;
dcacbc12
MFO
959
960 if (q->limits.logical_block_size > PAGE_SIZE && cached_bdev) {
961 /*
962 * This should only happen with BCACHE_SB_VERSION_BDEV.
963 * Block/page size is checked for BCACHE_SB_VERSION_CDEV.
964 */
4b25bbf5 965 pr_info("%s: sb/logical block size (%u) greater than page size (%lu) falling back to device logical block size (%u)\n",
dcacbc12
MFO
966 d->disk->disk_name, q->limits.logical_block_size,
967 PAGE_SIZE, bdev_logical_block_size(cached_bdev));
968
969 /* This also adjusts physical block size/min io size if needed */
970 blk_queue_logical_block_size(q, bdev_logical_block_size(cached_bdev));
971 }
972
44e1ebe2 973 blk_queue_flag_set(QUEUE_FLAG_NONROT, d->disk->queue);
cafe5635 974
84b4ff9e 975 blk_queue_write_cache(q, true, true);
54d12f2b 976
cafe5635 977 return 0;
9b4e9f5a 978
224b0683
CH
979out_bioset_exit:
980 bioset_exit(&d->bio_split);
981out_ida_remove:
9b4e9f5a 982 ida_simple_remove(&bcache_device_idx, idx);
224b0683
CH
983out_free_full_dirty_stripes:
984 kvfree(d->full_dirty_stripes);
985out_free_stripe_sectors_dirty:
986 kvfree(d->stripe_sectors_dirty);
9b4e9f5a
FS
987 return -ENOMEM;
988
cafe5635
KO
989}
990
991/* Cached device */
992
993static void calc_cached_dev_sectors(struct cache_set *c)
994{
995 uint64_t sectors = 0;
996 struct cached_dev *dc;
997
998 list_for_each_entry(dc, &c->cached_devs, list)
cda25b82 999 sectors += bdev_nr_sectors(dc->bdev);
cafe5635
KO
1000
1001 c->cached_dev_sectors = sectors;
1002}
1003
0f0709e6
CL
1004#define BACKING_DEV_OFFLINE_TIMEOUT 5
1005static int cached_dev_status_update(void *arg)
1006{
1007 struct cached_dev *dc = arg;
1008 struct request_queue *q;
1009
1010 /*
1011 * If this delayed worker is stopping outside, directly quit here.
1012 * dc->io_disable might be set via sysfs interface, so check it
1013 * here too.
1014 */
1015 while (!kthread_should_stop() && !dc->io_disable) {
1016 q = bdev_get_queue(dc->bdev);
1017 if (blk_queue_dying(q))
1018 dc->offline_seconds++;
1019 else
1020 dc->offline_seconds = 0;
1021
1022 if (dc->offline_seconds >= BACKING_DEV_OFFLINE_TIMEOUT) {
0f5cd781
CH
1023 pr_err("%pg: device offline for %d seconds\n",
1024 dc->bdev,
0f0709e6 1025 BACKING_DEV_OFFLINE_TIMEOUT);
46f5aa88
JP
1026 pr_err("%s: disable I/O request due to backing device offline\n",
1027 dc->disk.name);
0f0709e6
CL
1028 dc->io_disable = true;
1029 /* let others know earlier that io_disable is true */
1030 smp_mb();
1031 bcache_device_stop(&dc->disk);
1032 break;
1033 }
1034 schedule_timeout_interruptible(HZ);
1035 }
1036
1037 wait_for_kthread_stop();
1038 return 0;
1039}
1040
1041
0b13efec 1042int bch_cached_dev_run(struct cached_dev *dc)
cafe5635 1043{
13e1db65 1044 int ret = 0;
cafe5635 1045 struct bcache_device *d = &dc->disk;
792732d9 1046 char *buf = kmemdup_nul(dc->sb.label, SB_LABEL_SIZE, GFP_KERNEL);
a25c32be
GP
1047 char *env[] = {
1048 "DRIVER=bcache",
1049 kasprintf(GFP_KERNEL, "CACHED_UUID=%pU", dc->sb.uuid),
792732d9 1050 kasprintf(GFP_KERNEL, "CACHED_LABEL=%s", buf ? : ""),
ab9e1400 1051 NULL,
a25c32be 1052 };
cafe5635 1053
e0faa3d7 1054 if (dc->io_disable) {
0f5cd781 1055 pr_err("I/O disabled on cached dev %pg\n", dc->bdev);
13e1db65
ZL
1056 ret = -EIO;
1057 goto out;
e0faa3d7 1058 }
0b13efec 1059
4d4d8573 1060 if (atomic_xchg(&dc->running, 1)) {
0f5cd781 1061 pr_info("cached dev %pg is running already\n", dc->bdev);
13e1db65
ZL
1062 ret = -EBUSY;
1063 goto out;
4d4d8573 1064 }
cafe5635
KO
1065
1066 if (!d->c &&
1067 BDEV_STATE(&dc->sb) != BDEV_STATE_NONE) {
1068 struct closure cl;
1fae7cf0 1069
cafe5635
KO
1070 closure_init_stack(&cl);
1071
1072 SET_BDEV_STATE(&dc->sb, BDEV_STATE_STALE);
1073 bch_write_bdev_super(dc, &cl);
1074 closure_sync(&cl);
1075 }
1076
2961c3bb
LC
1077 ret = add_disk(d->disk);
1078 if (ret)
1079 goto out;
ee668506 1080 bd_link_disk_holder(dc->bdev, dc->disk.disk);
3be11dba
CL
1081 /*
1082 * won't show up in the uevent file, use udevadm monitor -e instead
1083 * only class / kset properties are persistent
1084 */
cafe5635 1085 kobject_uevent_env(&disk_to_dev(d->disk)->kobj, KOBJ_CHANGE, env);
a25c32be 1086
cafe5635 1087 if (sysfs_create_link(&d->kobj, &disk_to_dev(d->disk)->kobj, "dev") ||
0b13efec
CL
1088 sysfs_create_link(&disk_to_dev(d->disk)->kobj,
1089 &d->kobj, "bcache")) {
46f5aa88 1090 pr_err("Couldn't create bcache dev <-> disk sysfs symlinks\n");
13e1db65
ZL
1091 ret = -ENOMEM;
1092 goto out;
0b13efec 1093 }
0f0709e6
CL
1094
1095 dc->status_update_thread = kthread_run(cached_dev_status_update,
1096 dc, "bcache_status_update");
1097 if (IS_ERR(dc->status_update_thread)) {
46f5aa88 1098 pr_warn("failed to create bcache_status_update kthread, continue to run without monitoring backing device status\n");
0f0709e6 1099 }
0b13efec 1100
13e1db65
ZL
1101out:
1102 kfree(env[1]);
1103 kfree(env[2]);
1104 kfree(buf);
1105 return ret;
cafe5635
KO
1106}
1107
3fd47bfe
CL
1108/*
1109 * If BCACHE_DEV_RATE_DW_RUNNING is set, it means routine of the delayed
1110 * work dc->writeback_rate_update is running. Wait until the routine
1111 * quits (BCACHE_DEV_RATE_DW_RUNNING is clear), then continue to
1112 * cancel it. If BCACHE_DEV_RATE_DW_RUNNING is not clear after time_out
1113 * seconds, give up waiting here and continue to cancel it too.
1114 */
1115static void cancel_writeback_rate_update_dwork(struct cached_dev *dc)
1116{
1117 int time_out = WRITEBACK_RATE_UPDATE_SECS_MAX * HZ;
1118
1119 do {
1120 if (!test_bit(BCACHE_DEV_RATE_DW_RUNNING,
1121 &dc->disk.flags))
1122 break;
1123 time_out--;
1124 schedule_timeout_interruptible(1);
1125 } while (time_out > 0);
1126
1127 if (time_out == 0)
46f5aa88 1128 pr_warn("give up waiting for dc->writeback_write_update to quit\n");
3fd47bfe
CL
1129
1130 cancel_delayed_work_sync(&dc->writeback_rate_update);
1131}
1132
cafe5635
KO
1133static void cached_dev_detach_finish(struct work_struct *w)
1134{
1135 struct cached_dev *dc = container_of(w, struct cached_dev, detach);
aa97f6cd 1136 struct cache_set *c = dc->disk.c;
cafe5635 1137
c4d951dd 1138 BUG_ON(!test_bit(BCACHE_DEV_DETACHING, &dc->disk.flags));
3b304d24 1139 BUG_ON(refcount_read(&dc->count));
cafe5635 1140
cafe5635 1141
3fd47bfe
CL
1142 if (test_and_clear_bit(BCACHE_DEV_WB_RUNNING, &dc->disk.flags))
1143 cancel_writeback_rate_update_dwork(dc);
1144
8d29c442
TJ
1145 if (!IS_ERR_OR_NULL(dc->writeback_thread)) {
1146 kthread_stop(dc->writeback_thread);
1147 dc->writeback_thread = NULL;
1148 }
1149
97ba3b81
CL
1150 mutex_lock(&bch_register_lock);
1151
cafe5635
KO
1152 bcache_device_detach(&dc->disk);
1153 list_move(&dc->list, &uncached_devices);
aa97f6cd 1154 calc_cached_dev_sectors(c);
cafe5635 1155
c4d951dd 1156 clear_bit(BCACHE_DEV_DETACHING, &dc->disk.flags);
5b1016e6 1157 clear_bit(BCACHE_DEV_UNLINK_DONE, &dc->disk.flags);
c4d951dd 1158
cafe5635
KO
1159 mutex_unlock(&bch_register_lock);
1160
0f5cd781 1161 pr_info("Caching disabled for %pg\n", dc->bdev);
cafe5635
KO
1162
1163 /* Drop ref we took in cached_dev_detach() */
1164 closure_put(&dc->disk.cl);
1165}
1166
1167void bch_cached_dev_detach(struct cached_dev *dc)
1168{
1169 lockdep_assert_held(&bch_register_lock);
1170
c4d951dd 1171 if (test_bit(BCACHE_DEV_CLOSING, &dc->disk.flags))
cafe5635
KO
1172 return;
1173
c4d951dd 1174 if (test_and_set_bit(BCACHE_DEV_DETACHING, &dc->disk.flags))
cafe5635
KO
1175 return;
1176
1177 /*
1178 * Block the device from being closed and freed until we're finished
1179 * detaching
1180 */
1181 closure_get(&dc->disk.cl);
1182
1183 bch_writeback_queue(dc);
3fd47bfe 1184
cafe5635
KO
1185 cached_dev_put(dc);
1186}
1187
73ac105b
TJ
1188int bch_cached_dev_attach(struct cached_dev *dc, struct cache_set *c,
1189 uint8_t *set_uuid)
cafe5635 1190{
75cbb3f1 1191 uint32_t rtime = cpu_to_le32((u32)ktime_get_real_seconds());
cafe5635 1192 struct uuid_entry *u;
86755b7a 1193 struct cached_dev *exist_dc, *t;
0b13efec 1194 int ret = 0;
cafe5635 1195
1132e56e
CL
1196 if ((set_uuid && memcmp(set_uuid, c->set_uuid, 16)) ||
1197 (!set_uuid && memcmp(dc->sb.set_uuid, c->set_uuid, 16)))
cafe5635
KO
1198 return -ENOENT;
1199
1200 if (dc->disk.c) {
0f5cd781 1201 pr_err("Can't attach %pg: already attached\n", dc->bdev);
cafe5635
KO
1202 return -EINVAL;
1203 }
1204
1205 if (test_bit(CACHE_SET_STOPPING, &c->flags)) {
0f5cd781 1206 pr_err("Can't attach %pg: shutting down\n", dc->bdev);
cafe5635
KO
1207 return -EINVAL;
1208 }
1209
4a784266 1210 if (dc->sb.block_size < c->cache->sb.block_size) {
cafe5635 1211 /* Will die */
0f5cd781
CH
1212 pr_err("Couldn't attach %pg: block size less than set's block size\n",
1213 dc->bdev);
cafe5635
KO
1214 return -EINVAL;
1215 }
1216
86755b7a
ML
1217 /* Check whether already attached */
1218 list_for_each_entry_safe(exist_dc, t, &c->cached_devs, list) {
1219 if (!memcmp(dc->sb.uuid, exist_dc->sb.uuid, 16)) {
0f5cd781
CH
1220 pr_err("Tried to attach %pg but duplicate UUID already attached\n",
1221 dc->bdev);
86755b7a
ML
1222
1223 return -EINVAL;
1224 }
1225 }
1226
cafe5635
KO
1227 u = uuid_find(c, dc->sb.uuid);
1228
1229 if (u &&
1230 (BDEV_STATE(&dc->sb) == BDEV_STATE_STALE ||
1231 BDEV_STATE(&dc->sb) == BDEV_STATE_NONE)) {
1232 memcpy(u->uuid, invalid_uuid, 16);
75cbb3f1 1233 u->invalidated = cpu_to_le32((u32)ktime_get_real_seconds());
cafe5635
KO
1234 u = NULL;
1235 }
1236
1237 if (!u) {
1238 if (BDEV_STATE(&dc->sb) == BDEV_STATE_DIRTY) {
0f5cd781 1239 pr_err("Couldn't find uuid for %pg in set\n", dc->bdev);
cafe5635
KO
1240 return -ENOENT;
1241 }
1242
1243 u = uuid_find_empty(c);
1244 if (!u) {
0f5cd781 1245 pr_err("Not caching %pg, no room for UUID\n", dc->bdev);
cafe5635
KO
1246 return -EINVAL;
1247 }
1248 }
1249
3be11dba
CL
1250 /*
1251 * Deadlocks since we're called via sysfs...
1252 * sysfs_remove_file(&dc->kobj, &sysfs_attach);
cafe5635
KO
1253 */
1254
169ef1cf 1255 if (bch_is_zero(u->uuid, 16)) {
cafe5635 1256 struct closure cl;
1fae7cf0 1257
cafe5635
KO
1258 closure_init_stack(&cl);
1259
1260 memcpy(u->uuid, dc->sb.uuid, 16);
1261 memcpy(u->label, dc->sb.label, SB_LABEL_SIZE);
1262 u->first_reg = u->last_reg = rtime;
1263 bch_uuid_write(c);
1264
1132e56e 1265 memcpy(dc->sb.set_uuid, c->set_uuid, 16);
cafe5635
KO
1266 SET_BDEV_STATE(&dc->sb, BDEV_STATE_CLEAN);
1267
1268 bch_write_bdev_super(dc, &cl);
1269 closure_sync(&cl);
1270 } else {
1271 u->last_reg = rtime;
1272 bch_uuid_write(c);
1273 }
1274
1275 bcache_device_attach(&dc->disk, c, u - c->uuids);
cafe5635
KO
1276 list_move(&dc->list, &c->cached_devs);
1277 calc_cached_dev_sectors(c);
1278
cafe5635
KO
1279 /*
1280 * dc->c must be set before dc->count != 0 - paired with the mb in
1281 * cached_dev_get()
1282 */
eb2b3d03 1283 smp_wmb();
3b304d24 1284 refcount_set(&dc->count, 1);
cafe5635 1285
07cc6ef8
EW
1286 /* Block writeback thread, but spawn it */
1287 down_write(&dc->writeback_lock);
1288 if (bch_cached_dev_writeback_start(dc)) {
1289 up_write(&dc->writeback_lock);
46f5aa88 1290 pr_err("Couldn't start writeback facilities for %s\n",
633bb2ce 1291 dc->disk.disk->disk_name);
9e5c3535 1292 return -ENOMEM;
07cc6ef8 1293 }
9e5c3535 1294
cafe5635
KO
1295 if (BDEV_STATE(&dc->sb) == BDEV_STATE_DIRTY) {
1296 atomic_set(&dc->has_dirty, 1);
cafe5635
KO
1297 bch_writeback_queue(dc);
1298 }
1299
2e17a262
TJ
1300 bch_sectors_dirty_init(&dc->disk);
1301
0b13efec
CL
1302 ret = bch_cached_dev_run(dc);
1303 if (ret && (ret != -EBUSY)) {
1304 up_write(&dc->writeback_lock);
5c2a634c
CL
1305 /*
1306 * bch_register_lock is held, bcache_device_stop() is not
1307 * able to be directly called. The kthread and kworker
1308 * created previously in bch_cached_dev_writeback_start()
1309 * have to be stopped manually here.
1310 */
1311 kthread_stop(dc->writeback_thread);
1312 cancel_writeback_rate_update_dwork(dc);
0f5cd781 1313 pr_err("Couldn't run cached device %pg\n", dc->bdev);
0b13efec
CL
1314 return ret;
1315 }
1316
ee668506 1317 bcache_device_link(&dc->disk, c, "bdev");
ea8c5356 1318 atomic_inc(&c->attached_dev_nr);
cafe5635 1319
5342fd42
CL
1320 if (bch_has_feature_obso_large_bucket(&(c->cache->sb))) {
1321 pr_err("The obsoleted large bucket layout is unsupported, set the bcache device into read-only\n");
1322 pr_err("Please update to the latest bcache-tools to create the cache device\n");
1323 set_disk_ro(dc->disk.disk, 1);
1324 }
1325
07cc6ef8
EW
1326 /* Allow the writeback thread to proceed */
1327 up_write(&dc->writeback_lock);
1328
0f5cd781
CH
1329 pr_info("Caching %pg as %s on set %pU\n",
1330 dc->bdev,
6e916a7e 1331 dc->disk.disk->disk_name,
1132e56e 1332 dc->disk.c->set_uuid);
cafe5635
KO
1333 return 0;
1334}
1335
2d17456e 1336/* when dc->disk.kobj released */
cafe5635
KO
1337void bch_cached_dev_release(struct kobject *kobj)
1338{
1339 struct cached_dev *dc = container_of(kobj, struct cached_dev,
1340 disk.kobj);
1341 kfree(dc);
1342 module_put(THIS_MODULE);
1343}
1344
1345static void cached_dev_free(struct closure *cl)
1346{
1347 struct cached_dev *dc = container_of(cl, struct cached_dev, disk.cl);
1348
3fd47bfe
CL
1349 if (test_and_clear_bit(BCACHE_DEV_WB_RUNNING, &dc->disk.flags))
1350 cancel_writeback_rate_update_dwork(dc);
1351
a664d0f0
SP
1352 if (!IS_ERR_OR_NULL(dc->writeback_thread))
1353 kthread_stop(dc->writeback_thread);
0f0709e6
CL
1354 if (!IS_ERR_OR_NULL(dc->status_update_thread))
1355 kthread_stop(dc->status_update_thread);
cafe5635 1356
80265d8d
CL
1357 mutex_lock(&bch_register_lock);
1358
b75f4aed 1359 if (atomic_read(&dc->running)) {
f59fce84 1360 bd_unlink_disk_holder(dc->bdev, dc->disk.disk);
b75f4aed
CH
1361 del_gendisk(dc->disk.disk);
1362 }
cafe5635
KO
1363 bcache_device_free(&dc->disk);
1364 list_del(&dc->list);
1365
1366 mutex_unlock(&bch_register_lock);
1367
475389ae
CH
1368 if (dc->sb_disk)
1369 put_page(virt_to_page(dc->sb_disk));
e8547d42 1370
0781c874 1371 if (!IS_ERR_OR_NULL(dc->bdev))
2c555598 1372 blkdev_put(dc->bdev, dc);
cafe5635
KO
1373
1374 wake_up(&unregister_wait);
1375
1376 kobject_put(&dc->disk.kobj);
1377}
1378
1379static void cached_dev_flush(struct closure *cl)
1380{
1381 struct cached_dev *dc = container_of(cl, struct cached_dev, disk.cl);
1382 struct bcache_device *d = &dc->disk;
1383
c9502ea4 1384 mutex_lock(&bch_register_lock);
c4d951dd 1385 bcache_device_unlink(d);
c9502ea4
KO
1386 mutex_unlock(&bch_register_lock);
1387
cafe5635
KO
1388 bch_cache_accounting_destroy(&dc->accounting);
1389 kobject_del(&d->kobj);
1390
1391 continue_at(cl, cached_dev_free, system_wq);
1392}
1393
6f10f7d1 1394static int cached_dev_init(struct cached_dev *dc, unsigned int block_size)
cafe5635 1395{
f59fce84 1396 int ret;
cafe5635 1397 struct io *io;
f59fce84 1398 struct request_queue *q = bdev_get_queue(dc->bdev);
cafe5635
KO
1399
1400 __module_get(THIS_MODULE);
1401 INIT_LIST_HEAD(&dc->list);
f59fce84
KO
1402 closure_init(&dc->disk.cl, NULL);
1403 set_closure_fn(&dc->disk.cl, cached_dev_flush, system_wq);
cafe5635 1404 kobject_init(&dc->disk.kobj, &bch_cached_dev_ktype);
cafe5635 1405 INIT_WORK(&dc->detach, cached_dev_detach_finish);
cb7a583e 1406 sema_init(&dc->sb_write_mutex, 1);
f59fce84
KO
1407 INIT_LIST_HEAD(&dc->io_lru);
1408 spin_lock_init(&dc->io_lock);
1409 bch_cache_accounting_init(&dc->accounting, &dc->disk.cl);
cafe5635 1410
cafe5635
KO
1411 dc->sequential_cutoff = 4 << 20;
1412
cafe5635
KO
1413 for (io = dc->io; io < dc->io + RECENT_IO; io++) {
1414 list_add(&io->lru, &dc->io_lru);
1415 hlist_add_head(&io->hash, dc->io_hash + RECENT_IO);
1416 }
1417
c78afc62
KO
1418 dc->disk.stripe_size = q->limits.io_opt >> 9;
1419
1420 if (dc->disk.stripe_size)
1421 dc->partial_stripes_expensive =
1422 q->limits.raid_partial_stripes_expensive;
1423
279afbad 1424 ret = bcache_device_init(&dc->disk, block_size,
a782483c 1425 bdev_nr_sectors(dc->bdev) - dc->sb.data_offset,
c62b37d9 1426 dc->bdev, &bcache_cached_ops);
f59fce84
KO
1427 if (ret)
1428 return ret;
1429
5d4ce78b
CH
1430 blk_queue_io_opt(dc->disk.disk->queue,
1431 max(queue_io_opt(dc->disk.disk->queue), queue_io_opt(q)));
f59fce84 1432
c7b7bd07
CL
1433 atomic_set(&dc->io_errors, 0);
1434 dc->io_disable = false;
1435 dc->error_limit = DEFAULT_CACHED_DEV_ERROR_LIMIT;
7e027ca4
CL
1436 /* default to auto */
1437 dc->stop_when_cache_set_failed = BCH_CACHED_DEV_STOP_AUTO;
1438
f59fce84
KO
1439 bch_cached_dev_request_init(dc);
1440 bch_cached_dev_writeback_init(dc);
cafe5635 1441 return 0;
cafe5635
KO
1442}
1443
1444/* Cached device - bcache superblock */
1445
cfa0c56d 1446static int register_bdev(struct cache_sb *sb, struct cache_sb_disk *sb_disk,
cafe5635
KO
1447 struct block_device *bdev,
1448 struct cached_dev *dc)
1449{
cafe5635 1450 const char *err = "cannot allocate memory";
cafe5635 1451 struct cache_set *c;
0b13efec 1452 int ret = -ENOMEM;
cafe5635 1453
cafe5635 1454 memcpy(&dc->sb, sb, sizeof(struct cache_sb));
cafe5635 1455 dc->bdev = bdev;
475389ae 1456 dc->sb_disk = sb_disk;
6e916a7e 1457
f59fce84
KO
1458 if (cached_dev_init(dc, sb->block_size << 9))
1459 goto err;
cafe5635
KO
1460
1461 err = "error creating kobject";
8d65269f 1462 if (kobject_add(&dc->disk.kobj, bdev_kobj(bdev), "bcache"))
cafe5635
KO
1463 goto err;
1464 if (bch_cache_accounting_add_kobjs(&dc->accounting, &dc->disk.kobj))
1465 goto err;
1466
0f5cd781 1467 pr_info("registered backing device %pg\n", dc->bdev);
f59fce84 1468
cafe5635 1469 list_add(&dc->list, &uncached_devices);
e57fd746 1470 /* attach to a matched cache set if it exists */
cafe5635 1471 list_for_each_entry(c, &bch_cache_sets, list)
73ac105b 1472 bch_cached_dev_attach(dc, c, NULL);
cafe5635
KO
1473
1474 if (BDEV_STATE(&dc->sb) == BDEV_STATE_NONE ||
0b13efec
CL
1475 BDEV_STATE(&dc->sb) == BDEV_STATE_STALE) {
1476 err = "failed to run cached device";
1477 ret = bch_cached_dev_run(dc);
1478 if (ret)
1479 goto err;
1480 }
cafe5635 1481
88c12d42 1482 return 0;
cafe5635 1483err:
0f5cd781 1484 pr_notice("error %pg: %s\n", dc->bdev, err);
f59fce84 1485 bcache_device_stop(&dc->disk);
0b13efec 1486 return ret;
cafe5635
KO
1487}
1488
1489/* Flash only volumes */
1490
2d17456e 1491/* When d->kobj released */
cafe5635
KO
1492void bch_flash_dev_release(struct kobject *kobj)
1493{
1494 struct bcache_device *d = container_of(kobj, struct bcache_device,
1495 kobj);
1496 kfree(d);
1497}
1498
1499static void flash_dev_free(struct closure *cl)
1500{
1501 struct bcache_device *d = container_of(cl, struct bcache_device, cl);
1fae7cf0 1502
e5112201 1503 mutex_lock(&bch_register_lock);
99a27d59
TJ
1504 atomic_long_sub(bcache_dev_sectors_dirty(d),
1505 &d->c->flash_dev_dirty_sectors);
b75f4aed 1506 del_gendisk(d->disk);
cafe5635 1507 bcache_device_free(d);
e5112201 1508 mutex_unlock(&bch_register_lock);
cafe5635
KO
1509 kobject_put(&d->kobj);
1510}
1511
1512static void flash_dev_flush(struct closure *cl)
1513{
1514 struct bcache_device *d = container_of(cl, struct bcache_device, cl);
1515
e5112201 1516 mutex_lock(&bch_register_lock);
ee668506 1517 bcache_device_unlink(d);
e5112201 1518 mutex_unlock(&bch_register_lock);
cafe5635
KO
1519 kobject_del(&d->kobj);
1520 continue_at(cl, flash_dev_free, system_wq);
1521}
1522
1523static int flash_dev_run(struct cache_set *c, struct uuid_entry *u)
1524{
2961c3bb 1525 int err = -ENOMEM;
cafe5635
KO
1526 struct bcache_device *d = kzalloc(sizeof(struct bcache_device),
1527 GFP_KERNEL);
1528 if (!d)
2961c3bb 1529 goto err_ret;
cafe5635
KO
1530
1531 closure_init(&d->cl, NULL);
1532 set_closure_fn(&d->cl, flash_dev_flush, system_wq);
1533
1534 kobject_init(&d->kobj, &bch_flash_dev_ktype);
1535
4e1ebae3 1536 if (bcache_device_init(d, block_bytes(c->cache), u->sectors,
c62b37d9 1537 NULL, &bcache_flash_ops))
cafe5635
KO
1538 goto err;
1539
1540 bcache_device_attach(d, c, u - c->uuids);
175206cf 1541 bch_sectors_dirty_init(d);
cafe5635 1542 bch_flash_dev_request_init(d);
2961c3bb
LC
1543 err = add_disk(d->disk);
1544 if (err)
1545 goto err;
cafe5635 1546
2961c3bb
LC
1547 err = kobject_add(&d->kobj, &disk_to_dev(d->disk)->kobj, "bcache");
1548 if (err)
cafe5635
KO
1549 goto err;
1550
1551 bcache_device_link(d, c, "volume");
1552
5342fd42
CL
1553 if (bch_has_feature_obso_large_bucket(&c->cache->sb)) {
1554 pr_err("The obsoleted large bucket layout is unsupported, set the bcache device into read-only\n");
1555 pr_err("Please update to the latest bcache-tools to create the cache device\n");
1556 set_disk_ro(d->disk, 1);
1557 }
1558
cafe5635
KO
1559 return 0;
1560err:
1561 kobject_put(&d->kobj);
2961c3bb
LC
1562err_ret:
1563 return err;
cafe5635
KO
1564}
1565
1566static int flash_devs_run(struct cache_set *c)
1567{
1568 int ret = 0;
1569 struct uuid_entry *u;
1570
1571 for (u = c->uuids;
02aa8a8b 1572 u < c->uuids + c->nr_uuids && !ret;
cafe5635
KO
1573 u++)
1574 if (UUID_FLASH_ONLY(u))
1575 ret = flash_dev_run(c, u);
1576
1577 return ret;
1578}
1579
1580int bch_flash_dev_create(struct cache_set *c, uint64_t size)
1581{
1582 struct uuid_entry *u;
1583
1584 if (test_bit(CACHE_SET_STOPPING, &c->flags))
1585 return -EINTR;
1586
bf0c55c9
SP
1587 if (!test_bit(CACHE_SET_RUNNING, &c->flags))
1588 return -EPERM;
1589
cafe5635
KO
1590 u = uuid_find_empty(c);
1591 if (!u) {
46f5aa88 1592 pr_err("Can't create volume, no room for UUID\n");
cafe5635
KO
1593 return -EINVAL;
1594 }
1595
1596 get_random_bytes(u->uuid, 16);
1597 memset(u->label, 0, 32);
75cbb3f1 1598 u->first_reg = u->last_reg = cpu_to_le32((u32)ktime_get_real_seconds());
cafe5635
KO
1599
1600 SET_UUID_FLASH_ONLY(u, 1);
1601 u->sectors = size >> 9;
1602
1603 bch_uuid_write(c);
1604
1605 return flash_dev_run(c, u);
1606}
1607
c7b7bd07
CL
1608bool bch_cached_dev_error(struct cached_dev *dc)
1609{
c7b7bd07
CL
1610 if (!dc || test_bit(BCACHE_DEV_CLOSING, &dc->disk.flags))
1611 return false;
1612
1613 dc->io_disable = true;
1614 /* make others know io_disable is true earlier */
1615 smp_mb();
1616
0f5cd781
CH
1617 pr_err("stop %s: too many IO errors on backing device %pg\n",
1618 dc->disk.disk->disk_name, dc->bdev);
c7b7bd07
CL
1619
1620 bcache_device_stop(&dc->disk);
1621 return true;
1622}
1623
cafe5635
KO
1624/* Cache set */
1625
1626__printf(2, 3)
1627bool bch_cache_set_error(struct cache_set *c, const char *fmt, ...)
1628{
46f5aa88 1629 struct va_format vaf;
cafe5635
KO
1630 va_list args;
1631
77c320eb
KO
1632 if (c->on_error != ON_ERROR_PANIC &&
1633 test_bit(CACHE_SET_STOPPING, &c->flags))
cafe5635
KO
1634 return false;
1635
771f393e 1636 if (test_and_set_bit(CACHE_SET_IO_DISABLE, &c->flags))
46f5aa88 1637 pr_info("CACHE_SET_IO_DISABLE already set\n");
771f393e 1638
3be11dba
CL
1639 /*
1640 * XXX: we can be called from atomic context
1641 * acquire_console_sem();
1642 */
cafe5635 1643
cafe5635 1644 va_start(args, fmt);
cafe5635 1645
46f5aa88
JP
1646 vaf.fmt = fmt;
1647 vaf.va = &args;
1648
1649 pr_err("error on %pU: %pV, disabling caching\n",
1132e56e 1650 c->set_uuid, &vaf);
46f5aa88
JP
1651
1652 va_end(args);
cafe5635 1653
77c320eb
KO
1654 if (c->on_error == ON_ERROR_PANIC)
1655 panic("panic forced after error\n");
1656
cafe5635
KO
1657 bch_cache_set_unregister(c);
1658 return true;
1659}
1660
2d17456e 1661/* When c->kobj released */
cafe5635
KO
1662void bch_cache_set_release(struct kobject *kobj)
1663{
1664 struct cache_set *c = container_of(kobj, struct cache_set, kobj);
1fae7cf0 1665
cafe5635
KO
1666 kfree(c);
1667 module_put(THIS_MODULE);
1668}
1669
1670static void cache_set_free(struct closure *cl)
1671{
1672 struct cache_set *c = container_of(cl, struct cache_set, cl);
1673 struct cache *ca;
cafe5635 1674
ae171023 1675 debugfs_remove(c->debug);
cafe5635
KO
1676
1677 bch_open_buckets_free(c);
1678 bch_btree_cache_free(c);
1679 bch_journal_free(c);
1680
a4b732a2 1681 mutex_lock(&bch_register_lock);
4a784266
CL
1682 bch_bset_sort_state_free(&c->sort);
1683 free_pages((unsigned long) c->uuids, ilog2(meta_bucket_pages(&c->cache->sb)));
1684
08fdb2cd
CL
1685 ca = c->cache;
1686 if (ca) {
1687 ca->set = NULL;
1688 c->cache = NULL;
1689 kobject_put(&ca->kobj);
1690 }
cafe5635 1691
cafe5635 1692
da415a09
NS
1693 if (c->moving_gc_wq)
1694 destroy_workqueue(c->moving_gc_wq);
d19936a2
KO
1695 bioset_exit(&c->bio_split);
1696 mempool_exit(&c->fill_iter);
1697 mempool_exit(&c->bio_meta);
1698 mempool_exit(&c->search);
cafe5635
KO
1699 kfree(c->devices);
1700
cafe5635
KO
1701 list_del(&c->list);
1702 mutex_unlock(&bch_register_lock);
1703
1132e56e 1704 pr_info("Cache set %pU unregistered\n", c->set_uuid);
cafe5635
KO
1705 wake_up(&unregister_wait);
1706
1707 closure_debug_destroy(&c->cl);
1708 kobject_put(&c->kobj);
1709}
1710
1711static void cache_set_flush(struct closure *cl)
1712{
1713 struct cache_set *c = container_of(cl, struct cache_set, caching);
08fdb2cd 1714 struct cache *ca = c->cache;
cafe5635 1715 struct btree *b;
cafe5635
KO
1716
1717 bch_cache_accounting_destroy(&c->accounting);
1718
1719 kobject_put(&c->internal);
1720 kobject_del(&c->kobj);
1721
b387e9b5 1722 if (!IS_ERR_OR_NULL(c->gc_thread))
72a44517
KO
1723 kthread_stop(c->gc_thread);
1724
028ddcac 1725 if (!IS_ERR(c->root))
cafe5635
KO
1726 list_add(&c->root->list, &c->btree_cache);
1727
e6dcbd3e
CL
1728 /*
1729 * Avoid flushing cached nodes if cache set is retiring
1730 * due to too many I/O errors detected.
1731 */
1732 if (!test_bit(CACHE_SET_IO_DISABLE, &c->flags))
1733 list_for_each_entry(b, &c->btree_cache, list) {
1734 mutex_lock(&b->write_lock);
1735 if (btree_node_dirty(b))
1736 __bch_btree_node_write(b, NULL);
1737 mutex_unlock(&b->write_lock);
1738 }
cafe5635 1739
08fdb2cd
CL
1740 if (ca->alloc_thread)
1741 kthread_stop(ca->alloc_thread);
79826c35 1742
5b1016e6
KO
1743 if (c->journal.cur) {
1744 cancel_delayed_work_sync(&c->journal.work);
1745 /* flush last journal entry if needed */
1746 c->journal.work.work.func(&c->journal.work.work);
1747 }
dabb4433 1748
cafe5635
KO
1749 closure_return(cl);
1750}
1751
7e027ca4
CL
1752/*
1753 * This function is only called when CACHE_SET_IO_DISABLE is set, which means
1754 * cache set is unregistering due to too many I/O errors. In this condition,
1755 * the bcache device might be stopped, it depends on stop_when_cache_set_failed
1756 * value and whether the broken cache has dirty data:
1757 *
1758 * dc->stop_when_cache_set_failed dc->has_dirty stop bcache device
1759 * BCH_CACHED_STOP_AUTO 0 NO
1760 * BCH_CACHED_STOP_AUTO 1 YES
1761 * BCH_CACHED_DEV_STOP_ALWAYS 0 YES
1762 * BCH_CACHED_DEV_STOP_ALWAYS 1 YES
1763 *
1764 * The expected behavior is, if stop_when_cache_set_failed is configured to
1765 * "auto" via sysfs interface, the bcache device will not be stopped if the
1766 * backing device is clean on the broken cache device.
1767 */
1768static void conditional_stop_bcache_device(struct cache_set *c,
1769 struct bcache_device *d,
1770 struct cached_dev *dc)
1771{
1772 if (dc->stop_when_cache_set_failed == BCH_CACHED_DEV_STOP_ALWAYS) {
46f5aa88 1773 pr_warn("stop_when_cache_set_failed of %s is \"always\", stop it for failed cache set %pU.\n",
1132e56e 1774 d->disk->disk_name, c->set_uuid);
7e027ca4
CL
1775 bcache_device_stop(d);
1776 } else if (atomic_read(&dc->has_dirty)) {
1777 /*
1778 * dc->stop_when_cache_set_failed == BCH_CACHED_STOP_AUTO
1779 * and dc->has_dirty == 1
1780 */
46f5aa88 1781 pr_warn("stop_when_cache_set_failed of %s is \"auto\" and cache is dirty, stop it to avoid potential data corruption.\n",
7e027ca4 1782 d->disk->disk_name);
e8cf978d
CIK
1783 /*
1784 * There might be a small time gap that cache set is
1785 * released but bcache device is not. Inside this time
1786 * gap, regular I/O requests will directly go into
1787 * backing device as no cache set attached to. This
1788 * behavior may also introduce potential inconsistence
1789 * data in writeback mode while cache is dirty.
1790 * Therefore before calling bcache_device_stop() due
1791 * to a broken cache device, dc->io_disable should be
1792 * explicitly set to true.
1793 */
1794 dc->io_disable = true;
1795 /* make others know io_disable is true earlier */
1796 smp_mb();
1797 bcache_device_stop(d);
7e027ca4
CL
1798 } else {
1799 /*
1800 * dc->stop_when_cache_set_failed == BCH_CACHED_STOP_AUTO
1801 * and dc->has_dirty == 0
1802 */
46f5aa88 1803 pr_warn("stop_when_cache_set_failed of %s is \"auto\" and cache is clean, keep it alive.\n",
7e027ca4
CL
1804 d->disk->disk_name);
1805 }
1806}
1807
cafe5635
KO
1808static void __cache_set_unregister(struct closure *cl)
1809{
1810 struct cache_set *c = container_of(cl, struct cache_set, caching);
5caa52af 1811 struct cached_dev *dc;
7e027ca4 1812 struct bcache_device *d;
cafe5635
KO
1813 size_t i;
1814
1815 mutex_lock(&bch_register_lock);
1816
7e027ca4
CL
1817 for (i = 0; i < c->devices_max_used; i++) {
1818 d = c->devices[i];
1819 if (!d)
1820 continue;
1821
1822 if (!UUID_FLASH_ONLY(&c->uuids[i]) &&
1823 test_bit(CACHE_SET_UNREGISTERING, &c->flags)) {
1824 dc = container_of(d, struct cached_dev, disk);
1825 bch_cached_dev_detach(dc);
1826 if (test_bit(CACHE_SET_IO_DISABLE, &c->flags))
1827 conditional_stop_bcache_device(c, d, dc);
1828 } else {
1829 bcache_device_stop(d);
5caa52af 1830 }
7e027ca4 1831 }
cafe5635
KO
1832
1833 mutex_unlock(&bch_register_lock);
1834
1835 continue_at(cl, cache_set_flush, system_wq);
1836}
1837
1838void bch_cache_set_stop(struct cache_set *c)
1839{
1840 if (!test_and_set_bit(CACHE_SET_STOPPING, &c->flags))
63d63b51 1841 /* closure_fn set to __cache_set_unregister() */
cafe5635
KO
1842 closure_queue(&c->caching);
1843}
1844
1845void bch_cache_set_unregister(struct cache_set *c)
1846{
1847 set_bit(CACHE_SET_UNREGISTERING, &c->flags);
1848 bch_cache_set_stop(c);
1849}
1850
de1fafab
CL
1851#define alloc_meta_bucket_pages(gfp, sb) \
1852 ((void *) __get_free_pages(__GFP_ZERO|__GFP_COMP|gfp, ilog2(meta_bucket_pages(sb))))
cafe5635
KO
1853
1854struct cache_set *bch_cache_set_alloc(struct cache_sb *sb)
1855{
1856 int iter_size;
4a784266 1857 struct cache *ca = container_of(sb, struct cache, sb);
cafe5635 1858 struct cache_set *c = kzalloc(sizeof(struct cache_set), GFP_KERNEL);
1fae7cf0 1859
cafe5635
KO
1860 if (!c)
1861 return NULL;
1862
1863 __module_get(THIS_MODULE);
1864 closure_init(&c->cl, NULL);
1865 set_closure_fn(&c->cl, cache_set_free, system_wq);
1866
1867 closure_init(&c->caching, &c->cl);
1868 set_closure_fn(&c->caching, __cache_set_unregister, system_wq);
1869
1870 /* Maybe create continue_at_noreturn() and use it here? */
1871 closure_set_stopped(&c->cl);
1872 closure_put(&c->cl);
1873
1874 kobject_init(&c->kobj, &bch_cache_set_ktype);
1875 kobject_init(&c->internal, &bch_cache_set_internal_ktype);
1876
1877 bch_cache_accounting_init(&c->accounting, &c->cl);
1878
1132e56e 1879 memcpy(c->set_uuid, sb->set_uuid, 16);
d721a43f 1880
4a784266
CL
1881 c->cache = ca;
1882 c->cache->set = c;
cafe5635
KO
1883 c->bucket_bits = ilog2(sb->bucket_size);
1884 c->block_bits = ilog2(sb->block_size);
4a784266 1885 c->nr_uuids = meta_bucket_bytes(sb) / sizeof(struct uuid_entry);
2831231d 1886 c->devices_max_used = 0;
ea8c5356 1887 atomic_set(&c->attached_dev_nr, 0);
4a784266 1888 c->btree_pages = meta_bucket_pages(sb);
cafe5635
KO
1889 if (c->btree_pages > BTREE_MAX_PAGES)
1890 c->btree_pages = max_t(int, c->btree_pages / 4,
1891 BTREE_MAX_PAGES);
1892
cb7a583e 1893 sema_init(&c->sb_write_mutex, 1);
e8e1d468 1894 mutex_init(&c->bucket_lock);
0a63b66d 1895 init_waitqueue_head(&c->btree_cache_wait);
34cf78bf 1896 spin_lock_init(&c->btree_cannibalize_lock);
35fcd848 1897 init_waitqueue_head(&c->bucket_wait);
be628be0 1898 init_waitqueue_head(&c->gc_wait);
cb7a583e 1899 sema_init(&c->uuid_write_mutex, 1);
65d22e91 1900
65d22e91
KO
1901 spin_lock_init(&c->btree_gc_time.lock);
1902 spin_lock_init(&c->btree_split_time.lock);
1903 spin_lock_init(&c->btree_read_time.lock);
e8e1d468 1904
cafe5635
KO
1905 bch_moving_init_cache_set(c);
1906
1907 INIT_LIST_HEAD(&c->list);
1908 INIT_LIST_HEAD(&c->cached_devs);
1909 INIT_LIST_HEAD(&c->btree_cache);
1910 INIT_LIST_HEAD(&c->btree_cache_freeable);
1911 INIT_LIST_HEAD(&c->btree_cache_freed);
1912 INIT_LIST_HEAD(&c->data_buckets);
1913
6907dc49 1914 iter_size = ((meta_bucket_pages(sb) * PAGE_SECTORS) / sb->block_size + 1) *
cafe5635
KO
1915 sizeof(struct btree_iter_set);
1916
a42d3c64
CL
1917 c->devices = kcalloc(c->nr_uuids, sizeof(void *), GFP_KERNEL);
1918 if (!c->devices)
1919 goto err;
1920
1921 if (mempool_init_slab_pool(&c->search, 32, bch_search_cache))
1922 goto err;
1923
1924 if (mempool_init_kmalloc_pool(&c->bio_meta, 2,
1925 sizeof(struct bbio) +
4a784266 1926 sizeof(struct bio_vec) * meta_bucket_pages(sb)))
a42d3c64
CL
1927 goto err;
1928
1929 if (mempool_init_kmalloc_pool(&c->fill_iter, 1, iter_size))
1930 goto err;
1931
1932 if (bioset_init(&c->bio_split, 4, offsetof(struct bbio, bio),
faa8e2c4 1933 BIOSET_NEED_RESCUER))
a42d3c64
CL
1934 goto err;
1935
4a784266 1936 c->uuids = alloc_meta_bucket_pages(GFP_KERNEL, sb);
a42d3c64
CL
1937 if (!c->uuids)
1938 goto err;
1939
1940 c->moving_gc_wq = alloc_workqueue("bcache_gc", WQ_MEM_RECLAIM, 0);
1941 if (!c->moving_gc_wq)
1942 goto err;
1943
1944 if (bch_journal_alloc(c))
1945 goto err;
1946
1947 if (bch_btree_cache_alloc(c))
1948 goto err;
1949
1950 if (bch_open_buckets_alloc(c))
1951 goto err;
1952
1953 if (bch_bset_sort_state_init(&c->sort, ilog2(c->btree_pages)))
cafe5635
KO
1954 goto err;
1955
cafe5635
KO
1956 c->congested_read_threshold_us = 2000;
1957 c->congested_write_threshold_us = 20000;
7ba0d830 1958 c->error_limit = DEFAULT_IO_ERROR_LIMIT;
c5fcdedc 1959 c->idle_max_writeback_rate_enabled = 1;
771f393e 1960 WARN_ON(test_and_clear_bit(CACHE_SET_IO_DISABLE, &c->flags));
cafe5635
KO
1961
1962 return c;
1963err:
1964 bch_cache_set_unregister(c);
1965 return NULL;
1966}
1967
ce3e4cfb 1968static int run_cache_set(struct cache_set *c)
cafe5635
KO
1969{
1970 const char *err = "cannot allocate memory";
1971 struct cached_dev *dc, *t;
08fdb2cd 1972 struct cache *ca = c->cache;
c18536a7 1973 struct closure cl;
95f18c9d
SW
1974 LIST_HEAD(journal);
1975 struct journal_replay *l;
cafe5635 1976
c18536a7 1977 closure_init_stack(&cl);
cafe5635 1978
08fdb2cd 1979 c->nbuckets = ca->sb.nbuckets;
be628be0 1980 set_gc_sectors(c);
cafe5635 1981
6f9414e0 1982 if (CACHE_SYNC(&c->cache->sb)) {
cafe5635
KO
1983 struct bkey *k;
1984 struct jset *j;
1985
1986 err = "cannot allocate memory for journal";
c18536a7 1987 if (bch_journal_read(c, &journal))
cafe5635
KO
1988 goto err;
1989
46f5aa88 1990 pr_debug("btree_journal_read() done\n");
cafe5635
KO
1991
1992 err = "no journal entries found";
1993 if (list_empty(&journal))
1994 goto err;
1995
1996 j = &list_entry(journal.prev, struct journal_replay, list)->j;
1997
1998 err = "IO error reading priorities";
08fdb2cd
CL
1999 if (prio_read(ca, j->prio_bucket[ca->sb.nr_this_dev]))
2000 goto err;
cafe5635
KO
2001
2002 /*
2003 * If prio_read() fails it'll call cache_set_error and we'll
2004 * tear everything down right away, but if we perhaps checked
2005 * sooner we could avoid journal replay.
2006 */
2007
2008 k = &j->btree_root;
2009
2010 err = "bad btree root";
65d45231 2011 if (__bch_btree_ptr_invalid(c, k))
cafe5635
KO
2012 goto err;
2013
2014 err = "error reading btree root";
b0d30981
CL
2015 c->root = bch_btree_node_get(c, NULL, k,
2016 j->btree_level,
2017 true, NULL);
cafe5635
KO
2018 if (IS_ERR_OR_NULL(c->root))
2019 goto err;
2020
2021 list_del_init(&c->root->list);
2022 rw_unlock(true, c->root);
2023
c18536a7 2024 err = uuid_read(c, j, &cl);
cafe5635
KO
2025 if (err)
2026 goto err;
2027
2028 err = "error in recovery";
c18536a7 2029 if (bch_btree_check(c))
cafe5635
KO
2030 goto err;
2031
2032 bch_journal_mark(c, &journal);
2531d9ee 2033 bch_initial_gc_finish(c);
46f5aa88 2034 pr_debug("btree_check() done\n");
cafe5635
KO
2035
2036 /*
2037 * bcache_journal_next() can't happen sooner, or
2038 * btree_gc_finish() will give spurious errors about last_gc >
2039 * gc_gen - this is a hack but oh well.
2040 */
2041 bch_journal_next(&c->journal);
2042
119ba0f8 2043 err = "error starting allocator thread";
08fdb2cd
CL
2044 if (bch_cache_allocator_start(ca))
2045 goto err;
cafe5635
KO
2046
2047 /*
2048 * First place it's safe to allocate: btree_check() and
2049 * btree_gc_finish() have to run before we have buckets to
2050 * allocate, and bch_bucket_alloc_set() might cause a journal
2051 * entry to be written so bcache_journal_next() has to be called
2052 * first.
2053 *
2054 * If the uuids were in the old format we have to rewrite them
2055 * before the next journal entry is written:
2056 */
2057 if (j->version < BCACHE_JSET_VERSION_UUID)
2058 __uuid_write(c);
2059
ce3e4cfb
CL
2060 err = "bcache: replay journal failed";
2061 if (bch_journal_replay(c, &journal))
2062 goto err;
cafe5635 2063 } else {
08fdb2cd 2064 unsigned int j;
cafe5635 2065
08fdb2cd
CL
2066 pr_notice("invalidating existing data\n");
2067 ca->sb.keys = clamp_t(int, ca->sb.nbuckets >> 7,
2068 2, SB_JOURNAL_BUCKETS);
cafe5635 2069
08fdb2cd
CL
2070 for (j = 0; j < ca->sb.keys; j++)
2071 ca->sb.d[j] = ca->sb.first_bucket + j;
cafe5635 2072
2531d9ee 2073 bch_initial_gc_finish(c);
cafe5635 2074
119ba0f8 2075 err = "error starting allocator thread";
08fdb2cd
CL
2076 if (bch_cache_allocator_start(ca))
2077 goto err;
cafe5635
KO
2078
2079 mutex_lock(&c->bucket_lock);
08fdb2cd 2080 bch_prio_write(ca, true);
cafe5635
KO
2081 mutex_unlock(&c->bucket_lock);
2082
cafe5635
KO
2083 err = "cannot allocate new UUID bucket";
2084 if (__uuid_write(c))
72a44517 2085 goto err;
cafe5635
KO
2086
2087 err = "cannot allocate new btree root";
2452cc89 2088 c->root = __bch_btree_node_alloc(c, NULL, 0, true, NULL);
028ddcac 2089 if (IS_ERR(c->root))
72a44517 2090 goto err;
cafe5635 2091
2a285686 2092 mutex_lock(&c->root->write_lock);
cafe5635 2093 bkey_copy_key(&c->root->key, &MAX_KEY);
c18536a7 2094 bch_btree_node_write(c->root, &cl);
2a285686 2095 mutex_unlock(&c->root->write_lock);
cafe5635
KO
2096
2097 bch_btree_set_root(c->root);
2098 rw_unlock(true, c->root);
2099
2100 /*
2101 * We don't want to write the first journal entry until
2102 * everything is set up - fortunately journal entries won't be
2103 * written until the SET_CACHE_SYNC() here:
2104 */
6f9414e0 2105 SET_CACHE_SYNC(&c->cache->sb, true);
cafe5635
KO
2106
2107 bch_journal_next(&c->journal);
c18536a7 2108 bch_journal_meta(c, &cl);
cafe5635
KO
2109 }
2110
72a44517
KO
2111 err = "error starting gc thread";
2112 if (bch_gc_thread_start(c))
2113 goto err;
2114
c18536a7 2115 closure_sync(&cl);
4a784266 2116 c->cache->sb.last_mount = (u32)ktime_get_real_seconds();
cafe5635
KO
2117 bcache_write_super(c);
2118
5342fd42
CL
2119 if (bch_has_feature_obso_large_bucket(&c->cache->sb))
2120 pr_err("Detect obsoleted large bucket layout, all attached bcache device will be read-only\n");
2121
cafe5635 2122 list_for_each_entry_safe(dc, t, &uncached_devices, list)
73ac105b 2123 bch_cached_dev_attach(dc, c, NULL);
cafe5635
KO
2124
2125 flash_devs_run(c);
2126
32feee36 2127 bch_journal_space_reserve(&c->journal);
bf0c55c9 2128 set_bit(CACHE_SET_RUNNING, &c->flags);
ce3e4cfb 2129 return 0;
cafe5635 2130err:
95f18c9d
SW
2131 while (!list_empty(&journal)) {
2132 l = list_first_entry(&journal, struct journal_replay, list);
2133 list_del(&l->list);
2134 kfree(l);
2135 }
2136
c18536a7 2137 closure_sync(&cl);
68a53c95 2138
c8694948 2139 bch_cache_set_error(c, "%s", err);
ce3e4cfb
CL
2140
2141 return -EIO;
cafe5635
KO
2142}
2143
cafe5635
KO
2144static const char *register_cache_set(struct cache *ca)
2145{
2146 char buf[12];
2147 const char *err = "cannot allocate memory";
2148 struct cache_set *c;
2149
2150 list_for_each_entry(c, &bch_cache_sets, list)
1132e56e 2151 if (!memcmp(c->set_uuid, ca->sb.set_uuid, 16)) {
697e2349 2152 if (c->cache)
cafe5635
KO
2153 return "duplicate cache set member";
2154
cafe5635
KO
2155 goto found;
2156 }
2157
2158 c = bch_cache_set_alloc(&ca->sb);
2159 if (!c)
2160 return err;
2161
2162 err = "error creating kobject";
1132e56e 2163 if (kobject_add(&c->kobj, bcache_kobj, "%pU", c->set_uuid) ||
cafe5635
KO
2164 kobject_add(&c->internal, &c->kobj, "internal"))
2165 goto err;
2166
2167 if (bch_cache_accounting_add_kobjs(&c->accounting, &c->kobj))
2168 goto err;
2169
2170 bch_debug_init_cache_set(c);
2171
2172 list_add(&c->list, &bch_cache_sets);
2173found:
2174 sprintf(buf, "cache%i", ca->sb.nr_this_dev);
2175 if (sysfs_create_link(&ca->kobj, &c->kobj, "set") ||
2176 sysfs_create_link(&c->kobj, &ca->kobj, buf))
2177 goto err;
2178
d83353b3 2179 kobject_get(&ca->kobj);
cafe5635 2180 ca->set = c;
697e2349 2181 ca->set->cache = ca;
cafe5635 2182
697e2349
CL
2183 err = "failed to run cache set";
2184 if (run_cache_set(c) < 0)
2185 goto err;
cafe5635
KO
2186
2187 return NULL;
2188err:
2189 bch_cache_set_unregister(c);
2190 return err;
2191}
2192
2193/* Cache device */
2194
2d17456e 2195/* When ca->kobj released */
cafe5635
KO
2196void bch_cache_release(struct kobject *kobj)
2197{
2198 struct cache *ca = container_of(kobj, struct cache, kobj);
6f10f7d1 2199 unsigned int i;
cafe5635 2200
c9a78332 2201 if (ca->set) {
697e2349
CL
2202 BUG_ON(ca->set->cache != ca);
2203 ca->set->cache = NULL;
c9a78332 2204 }
cafe5635 2205
c954ac8d 2206 free_pages((unsigned long) ca->disk_buckets, ilog2(meta_bucket_pages(&ca->sb)));
cafe5635
KO
2207 kfree(ca->prio_buckets);
2208 vfree(ca->buckets);
2209
2210 free_heap(&ca->heap);
cafe5635 2211 free_fifo(&ca->free_inc);
78365411
KO
2212
2213 for (i = 0; i < RESERVE_NR; i++)
2214 free_fifo(&ca->free[i]);
cafe5635 2215
475389ae
CH
2216 if (ca->sb_disk)
2217 put_page(virt_to_page(ca->sb_disk));
cafe5635 2218
0781c874 2219 if (!IS_ERR_OR_NULL(ca->bdev))
2c555598 2220 blkdev_put(ca->bdev, ca);
cafe5635
KO
2221
2222 kfree(ca);
2223 module_put(THIS_MODULE);
2224}
2225
c50d4d5d 2226static int cache_alloc(struct cache *ca)
cafe5635
KO
2227{
2228 size_t free;
682811b3 2229 size_t btree_buckets;
cafe5635 2230 struct bucket *b;
f6027bca
DC
2231 int ret = -ENOMEM;
2232 const char *err = NULL;
cafe5635 2233
cafe5635
KO
2234 __module_get(THIS_MODULE);
2235 kobject_init(&ca->kobj, &bch_cache_ktype);
2236
49add496 2237 bio_init(&ca->journal.bio, NULL, ca->journal.bio.bi_inline_vecs, 8, 0);
cafe5635 2238
682811b3
TJ
2239 /*
2240 * when ca->sb.njournal_buckets is not zero, journal exists,
2241 * and in bch_journal_replay(), tree node may split,
2242 * so bucket of RESERVE_BTREE type is needed,
2243 * the worst situation is all journal buckets are valid journal,
2244 * and all the keys need to replay,
2245 * so the number of RESERVE_BTREE type buckets should be as much
2246 * as journal buckets
2247 */
2248 btree_buckets = ca->sb.njournal_buckets ?: 8;
78365411 2249 free = roundup_pow_of_two(ca->sb.nbuckets) >> 10;
3a646fd7
DC
2250 if (!free) {
2251 ret = -EPERM;
2252 err = "ca->sb.nbuckets is too small";
2253 goto err_free;
2254 }
cafe5635 2255
f6027bca
DC
2256 if (!init_fifo(&ca->free[RESERVE_BTREE], btree_buckets,
2257 GFP_KERNEL)) {
2258 err = "ca->free[RESERVE_BTREE] alloc failed";
2259 goto err_btree_alloc;
2260 }
2261
2262 if (!init_fifo_exact(&ca->free[RESERVE_PRIO], prio_buckets(ca),
2263 GFP_KERNEL)) {
2264 err = "ca->free[RESERVE_PRIO] alloc failed";
2265 goto err_prio_alloc;
2266 }
2267
2268 if (!init_fifo(&ca->free[RESERVE_MOVINGGC], free, GFP_KERNEL)) {
2269 err = "ca->free[RESERVE_MOVINGGC] alloc failed";
2270 goto err_movinggc_alloc;
2271 }
2272
2273 if (!init_fifo(&ca->free[RESERVE_NONE], free, GFP_KERNEL)) {
2274 err = "ca->free[RESERVE_NONE] alloc failed";
2275 goto err_none_alloc;
2276 }
2277
2278 if (!init_fifo(&ca->free_inc, free << 2, GFP_KERNEL)) {
2279 err = "ca->free_inc alloc failed";
2280 goto err_free_inc_alloc;
2281 }
2282
2283 if (!init_heap(&ca->heap, free << 3, GFP_KERNEL)) {
2284 err = "ca->heap alloc failed";
2285 goto err_heap_alloc;
2286 }
2287
2288 ca->buckets = vzalloc(array_size(sizeof(struct bucket),
2289 ca->sb.nbuckets));
2290 if (!ca->buckets) {
2291 err = "ca->buckets alloc failed";
2292 goto err_buckets_alloc;
2293 }
2294
2295 ca->prio_buckets = kzalloc(array3_size(sizeof(uint64_t),
2296 prio_buckets(ca), 2),
2297 GFP_KERNEL);
2298 if (!ca->prio_buckets) {
2299 err = "ca->prio_buckets alloc failed";
2300 goto err_prio_buckets_alloc;
2301 }
2302
c954ac8d 2303 ca->disk_buckets = alloc_meta_bucket_pages(GFP_KERNEL, &ca->sb);
f6027bca
DC
2304 if (!ca->disk_buckets) {
2305 err = "ca->disk_buckets alloc failed";
2306 goto err_disk_buckets_alloc;
2307 }
cafe5635
KO
2308
2309 ca->prio_last_buckets = ca->prio_buckets + prio_buckets(ca);
2310
cafe5635
KO
2311 for_each_bucket(b, ca)
2312 atomic_set(&b->pin, 0);
cafe5635 2313 return 0;
f6027bca
DC
2314
2315err_disk_buckets_alloc:
2316 kfree(ca->prio_buckets);
2317err_prio_buckets_alloc:
2318 vfree(ca->buckets);
2319err_buckets_alloc:
2320 free_heap(&ca->heap);
2321err_heap_alloc:
2322 free_fifo(&ca->free_inc);
2323err_free_inc_alloc:
2324 free_fifo(&ca->free[RESERVE_NONE]);
2325err_none_alloc:
2326 free_fifo(&ca->free[RESERVE_MOVINGGC]);
2327err_movinggc_alloc:
2328 free_fifo(&ca->free[RESERVE_PRIO]);
2329err_prio_alloc:
2330 free_fifo(&ca->free[RESERVE_BTREE]);
2331err_btree_alloc:
3a646fd7 2332err_free:
f6027bca
DC
2333 module_put(THIS_MODULE);
2334 if (err)
7e84c215 2335 pr_notice("error %pg: %s\n", ca->bdev, err);
f6027bca 2336 return ret;
cafe5635
KO
2337}
2338
cfa0c56d 2339static int register_cache(struct cache_sb *sb, struct cache_sb_disk *sb_disk,
c9a78332 2340 struct block_device *bdev, struct cache *ca)
cafe5635 2341{
d9dc1702 2342 const char *err = NULL; /* must be set for any error case */
9b299728 2343 int ret = 0;
cafe5635 2344
f59fce84 2345 memcpy(&ca->sb, sb, sizeof(struct cache_sb));
cafe5635 2346 ca->bdev = bdev;
475389ae 2347 ca->sb_disk = sb_disk;
f59fce84 2348
70200574 2349 if (bdev_max_discard_sectors((bdev)))
cafe5635
KO
2350 ca->discard = CACHE_DISCARD(&ca->sb);
2351
c50d4d5d 2352 ret = cache_alloc(ca);
d9dc1702 2353 if (ret != 0) {
bb6d355c
CL
2354 /*
2355 * If we failed here, it means ca->kobj is not initialized yet,
2356 * kobject_put() won't be called and there is no chance to
2357 * call blkdev_put() to bdev in bch_cache_release(). So we
2358 * explicitly call blkdev_put() here.
2359 */
2c555598 2360 blkdev_put(bdev, ca);
d9dc1702
EW
2361 if (ret == -ENOMEM)
2362 err = "cache_alloc(): -ENOMEM";
3a646fd7
DC
2363 else if (ret == -EPERM)
2364 err = "cache_alloc(): cache device is too small";
d9dc1702
EW
2365 else
2366 err = "cache_alloc(): unknown error";
f59fce84 2367 goto err;
d9dc1702 2368 }
f59fce84 2369
8d65269f 2370 if (kobject_add(&ca->kobj, bdev_kobj(bdev), "bcache")) {
9b299728
EW
2371 err = "error calling kobject_add";
2372 ret = -ENOMEM;
2373 goto out;
2374 }
cafe5635 2375
4fa03402 2376 mutex_lock(&bch_register_lock);
cafe5635 2377 err = register_cache_set(ca);
4fa03402
KO
2378 mutex_unlock(&bch_register_lock);
2379
9b299728
EW
2380 if (err) {
2381 ret = -ENODEV;
2382 goto out;
2383 }
cafe5635 2384
7e84c215 2385 pr_info("registered cache device %pg\n", ca->bdev);
9b299728 2386
d83353b3
KO
2387out:
2388 kobject_put(&ca->kobj);
9b299728 2389
cafe5635 2390err:
9b299728 2391 if (err)
7e84c215 2392 pr_notice("error %pg: %s\n", ca->bdev, err);
9b299728
EW
2393
2394 return ret;
cafe5635
KO
2395}
2396
2397/* Global interfaces/init */
2398
fc2d5988
CL
2399static ssize_t register_bcache(struct kobject *k, struct kobj_attribute *attr,
2400 const char *buffer, size_t size);
0c277e21
CL
2401static ssize_t bch_pending_bdevs_cleanup(struct kobject *k,
2402 struct kobj_attribute *attr,
2403 const char *buffer, size_t size);
cafe5635
KO
2404
2405kobj_attribute_write(register, register_bcache);
2406kobj_attribute_write(register_quiet, register_bcache);
0c277e21 2407kobj_attribute_write(pendings_cleanup, bch_pending_bdevs_cleanup);
cafe5635 2408
4e7b5671 2409static bool bch_is_open_backing(dev_t dev)
b3cf37bf 2410{
a9dd53ad
GP
2411 struct cache_set *c, *tc;
2412 struct cached_dev *dc, *t;
2413
2414 list_for_each_entry_safe(c, tc, &bch_cache_sets, list)
2415 list_for_each_entry_safe(dc, t, &c->cached_devs, list)
4e7b5671 2416 if (dc->bdev->bd_dev == dev)
a9dd53ad
GP
2417 return true;
2418 list_for_each_entry_safe(dc, t, &uncached_devices, list)
4e7b5671 2419 if (dc->bdev->bd_dev == dev)
a9dd53ad
GP
2420 return true;
2421 return false;
2422}
2423
4e7b5671 2424static bool bch_is_open_cache(dev_t dev)
b3cf37bf 2425{
a9dd53ad 2426 struct cache_set *c, *tc;
a9dd53ad 2427
08fdb2cd
CL
2428 list_for_each_entry_safe(c, tc, &bch_cache_sets, list) {
2429 struct cache *ca = c->cache;
2430
4e7b5671 2431 if (ca->bdev->bd_dev == dev)
08fdb2cd
CL
2432 return true;
2433 }
2434
a9dd53ad
GP
2435 return false;
2436}
2437
4e7b5671 2438static bool bch_is_open(dev_t dev)
b3cf37bf 2439{
4e7b5671 2440 return bch_is_open_cache(dev) || bch_is_open_backing(dev);
a9dd53ad
GP
2441}
2442
9e23ccf8 2443struct async_reg_args {
ee4a36f4 2444 struct delayed_work reg_work;
9e23ccf8
CL
2445 char *path;
2446 struct cache_sb *sb;
2447 struct cache_sb_disk *sb_disk;
2448 struct block_device *bdev;
abcc0cbd 2449 void *holder;
9e23ccf8
CL
2450};
2451
2452static void register_bdev_worker(struct work_struct *work)
2453{
2454 int fail = false;
2455 struct async_reg_args *args =
ee4a36f4 2456 container_of(work, struct async_reg_args, reg_work.work);
9e23ccf8
CL
2457
2458 mutex_lock(&bch_register_lock);
abcc0cbd
JK
2459 if (register_bdev(args->sb, args->sb_disk, args->bdev, args->holder)
2460 < 0)
9e23ccf8
CL
2461 fail = true;
2462 mutex_unlock(&bch_register_lock);
2463
9e23ccf8
CL
2464 if (fail)
2465 pr_info("error %s: fail to register backing device\n",
2466 args->path);
2467 kfree(args->sb);
2468 kfree(args->path);
2469 kfree(args);
2470 module_put(THIS_MODULE);
2471}
2472
2473static void register_cache_worker(struct work_struct *work)
2474{
2475 int fail = false;
2476 struct async_reg_args *args =
ee4a36f4 2477 container_of(work, struct async_reg_args, reg_work.work);
9e23ccf8
CL
2478
2479 /* blkdev_put() will be called in bch_cache_release() */
abcc0cbd 2480 if (register_cache(args->sb, args->sb_disk, args->bdev, args->holder))
9e23ccf8
CL
2481 fail = true;
2482
9e23ccf8
CL
2483 if (fail)
2484 pr_info("error %s: fail to register cache device\n",
2485 args->path);
2486 kfree(args->sb);
2487 kfree(args->path);
2488 kfree(args);
2489 module_put(THIS_MODULE);
2490}
2491
d7fae7b4 2492static void register_device_async(struct async_reg_args *args)
9e23ccf8
CL
2493{
2494 if (SB_IS_BDEV(args->sb))
ee4a36f4 2495 INIT_DELAYED_WORK(&args->reg_work, register_bdev_worker);
9e23ccf8 2496 else
ee4a36f4 2497 INIT_DELAYED_WORK(&args->reg_work, register_cache_worker);
9e23ccf8 2498
ee4a36f4
CL
2499 /* 10 jiffies is enough for a delay */
2500 queue_delayed_work(system_wq, &args->reg_work, 10);
9e23ccf8
CL
2501}
2502
abcc0cbd
JK
2503static void *alloc_holder_object(struct cache_sb *sb)
2504{
2505 if (SB_IS_BDEV(sb))
2506 return kzalloc(sizeof(struct cached_dev), GFP_KERNEL);
2507 return kzalloc(sizeof(struct cache), GFP_KERNEL);
2508}
2509
cafe5635
KO
2510static ssize_t register_bcache(struct kobject *k, struct kobj_attribute *attr,
2511 const char *buffer, size_t size)
2512{
50246693 2513 const char *err;
29cda393 2514 char *path = NULL;
50246693 2515 struct cache_sb *sb;
cfa0c56d 2516 struct cache_sb_disk *sb_disk;
2c555598
JK
2517 struct block_device *bdev, *bdev2;
2518 void *holder = NULL;
50246693 2519 ssize_t ret;
a58e88bf 2520 bool async_registration = false;
2c555598 2521 bool quiet = false;
a58e88bf
CL
2522
2523#ifdef CONFIG_BCACHE_ASYNC_REGISTRATION
2524 async_registration = true;
2525#endif
cafe5635 2526
50246693 2527 ret = -EBUSY;
29cda393 2528 err = "failed to reference bcache module";
cafe5635 2529 if (!try_module_get(THIS_MODULE))
50246693 2530 goto out;
cafe5635 2531
a59ff6cc
CL
2532 /* For latest state of bcache_is_reboot */
2533 smp_mb();
29cda393 2534 err = "bcache is in reboot";
a59ff6cc 2535 if (bcache_is_reboot)
50246693 2536 goto out_module_put;
a59ff6cc 2537
50246693
CH
2538 ret = -ENOMEM;
2539 err = "cannot allocate memory";
a56489d4
FS
2540 path = kstrndup(buffer, size, GFP_KERNEL);
2541 if (!path)
50246693 2542 goto out_module_put;
a56489d4
FS
2543
2544 sb = kmalloc(sizeof(struct cache_sb), GFP_KERNEL);
2545 if (!sb)
50246693 2546 goto out_free_path;
cafe5635 2547
50246693 2548 ret = -EINVAL;
cafe5635 2549 err = "failed to open device";
2c555598
JK
2550 bdev = blkdev_get_by_path(strim(path), BLK_OPEN_READ, NULL, NULL);
2551 if (IS_ERR(bdev))
50246693 2552 goto out_free_sb;
f59fce84
KO
2553
2554 err = "failed to set blocksize";
2555 if (set_blocksize(bdev, 4096))
50246693 2556 goto out_blkdev_put;
cafe5635 2557
cfa0c56d 2558 err = read_super(sb, bdev, &sb_disk);
cafe5635 2559 if (err)
50246693 2560 goto out_blkdev_put;
cafe5635 2561
abcc0cbd
JK
2562 holder = alloc_holder_object(sb);
2563 if (!holder) {
2564 ret = -ENOMEM;
2565 err = "cannot allocate memory";
2566 goto out_put_sb_page;
2567 }
2568
2c555598
JK
2569 /* Now reopen in exclusive mode with proper holder */
2570 bdev2 = blkdev_get_by_dev(bdev->bd_dev, BLK_OPEN_READ | BLK_OPEN_WRITE,
2571 holder, NULL);
2572 blkdev_put(bdev, NULL);
2573 bdev = bdev2;
2574 if (IS_ERR(bdev)) {
2575 ret = PTR_ERR(bdev);
2576 bdev = NULL;
2577 if (ret == -EBUSY) {
2578 dev_t dev;
2579
2580 mutex_lock(&bch_register_lock);
2581 if (lookup_bdev(strim(path), &dev) == 0 &&
2582 bch_is_open(dev))
2583 err = "device already registered";
2584 else
2585 err = "device busy";
2586 mutex_unlock(&bch_register_lock);
2587 if (attr == &ksysfs_register_quiet) {
2588 quiet = true;
2589 ret = size;
2590 }
2591 }
2592 goto out_free_holder;
2593 }
2594
cc40daf9 2595 err = "failed to register device";
a58e88bf
CL
2596
2597 if (async_registration) {
9e23ccf8
CL
2598 /* register in asynchronous way */
2599 struct async_reg_args *args =
2600 kzalloc(sizeof(struct async_reg_args), GFP_KERNEL);
2601
2602 if (!args) {
2603 ret = -ENOMEM;
2604 err = "cannot allocate memory";
abcc0cbd 2605 goto out_free_holder;
9e23ccf8
CL
2606 }
2607
2608 args->path = path;
2609 args->sb = sb;
2610 args->sb_disk = sb_disk;
2611 args->bdev = bdev;
abcc0cbd 2612 args->holder = holder;
d7fae7b4 2613 register_device_async(args);
9e23ccf8
CL
2614 /* No wait and returns to user space */
2615 goto async_done;
2616 }
2617
2903381f 2618 if (SB_IS_BDEV(sb)) {
4fa03402 2619 mutex_lock(&bch_register_lock);
abcc0cbd 2620 ret = register_bdev(sb, sb_disk, bdev, holder);
4fa03402 2621 mutex_unlock(&bch_register_lock);
bb6d355c 2622 /* blkdev_put() will be called in cached_dev_free() */
fc8f19cc
CH
2623 if (ret < 0)
2624 goto out_free_sb;
cafe5635 2625 } else {
bb6d355c 2626 /* blkdev_put() will be called in bch_cache_release() */
abcc0cbd 2627 ret = register_cache(sb, sb_disk, bdev, holder);
d55f7cb2 2628 if (ret)
fc8f19cc 2629 goto out_free_sb;
cafe5635 2630 }
50246693 2631
cafe5635
KO
2632 kfree(sb);
2633 kfree(path);
cafe5635 2634 module_put(THIS_MODULE);
9e23ccf8 2635async_done:
50246693
CH
2636 return size;
2637
abcc0cbd
JK
2638out_free_holder:
2639 kfree(holder);
50246693 2640out_put_sb_page:
cfa0c56d 2641 put_page(virt_to_page(sb_disk));
50246693 2642out_blkdev_put:
2c555598
JK
2643 if (bdev)
2644 blkdev_put(bdev, holder);
50246693
CH
2645out_free_sb:
2646 kfree(sb);
2647out_free_path:
2648 kfree(path);
ae3cd299 2649 path = NULL;
50246693
CH
2650out_module_put:
2651 module_put(THIS_MODULE);
2652out:
2c555598
JK
2653 if (!quiet)
2654 pr_info("error %s: %s\n", path?path:"", err);
50246693 2655 return ret;
cafe5635
KO
2656}
2657
0c277e21
CL
2658
2659struct pdev {
2660 struct list_head list;
2661 struct cached_dev *dc;
2662};
2663
2664static ssize_t bch_pending_bdevs_cleanup(struct kobject *k,
2665 struct kobj_attribute *attr,
2666 const char *buffer,
2667 size_t size)
2668{
2669 LIST_HEAD(pending_devs);
2670 ssize_t ret = size;
2671 struct cached_dev *dc, *tdc;
2672 struct pdev *pdev, *tpdev;
2673 struct cache_set *c, *tc;
2674
2675 mutex_lock(&bch_register_lock);
2676 list_for_each_entry_safe(dc, tdc, &uncached_devices, list) {
2677 pdev = kmalloc(sizeof(struct pdev), GFP_KERNEL);
2678 if (!pdev)
2679 break;
2680 pdev->dc = dc;
2681 list_add(&pdev->list, &pending_devs);
2682 }
2683
2684 list_for_each_entry_safe(pdev, tpdev, &pending_devs, list) {
e8092707 2685 char *pdev_set_uuid = pdev->dc->sb.set_uuid;
0c277e21 2686 list_for_each_entry_safe(c, tc, &bch_cache_sets, list) {
1132e56e 2687 char *set_uuid = c->set_uuid;
0c277e21
CL
2688
2689 if (!memcmp(pdev_set_uuid, set_uuid, 16)) {
2690 list_del(&pdev->list);
2691 kfree(pdev);
2692 break;
2693 }
2694 }
2695 }
2696 mutex_unlock(&bch_register_lock);
2697
2698 list_for_each_entry_safe(pdev, tpdev, &pending_devs, list) {
46f5aa88 2699 pr_info("delete pdev %p\n", pdev);
0c277e21
CL
2700 list_del(&pdev->list);
2701 bcache_device_stop(&pdev->dc->disk);
2702 kfree(pdev);
2703 }
2704
2705 return ret;
2706}
2707
cafe5635
KO
2708static int bcache_reboot(struct notifier_block *n, unsigned long code, void *x)
2709{
a59ff6cc
CL
2710 if (bcache_is_reboot)
2711 return NOTIFY_DONE;
2712
cafe5635
KO
2713 if (code == SYS_DOWN ||
2714 code == SYS_HALT ||
2715 code == SYS_POWER_OFF) {
2716 DEFINE_WAIT(wait);
2717 unsigned long start = jiffies;
2718 bool stopped = false;
2719
2720 struct cache_set *c, *tc;
2721 struct cached_dev *dc, *tdc;
2722
2723 mutex_lock(&bch_register_lock);
2724
a59ff6cc
CL
2725 if (bcache_is_reboot)
2726 goto out;
2727
2728 /* New registration is rejected since now */
2729 bcache_is_reboot = true;
2730 /*
2731 * Make registering caller (if there is) on other CPU
2732 * core know bcache_is_reboot set to true earlier
2733 */
2734 smp_mb();
2735
cafe5635
KO
2736 if (list_empty(&bch_cache_sets) &&
2737 list_empty(&uncached_devices))
2738 goto out;
2739
a59ff6cc
CL
2740 mutex_unlock(&bch_register_lock);
2741
46f5aa88 2742 pr_info("Stopping all devices:\n");
cafe5635 2743
a59ff6cc
CL
2744 /*
2745 * The reason bch_register_lock is not held to call
2746 * bch_cache_set_stop() and bcache_device_stop() is to
2747 * avoid potential deadlock during reboot, because cache
a307e2ab 2748 * set or bcache device stopping process will acquire
a59ff6cc
CL
2749 * bch_register_lock too.
2750 *
2751 * We are safe here because bcache_is_reboot sets to
2752 * true already, register_bcache() will reject new
2753 * registration now. bcache_is_reboot also makes sure
2754 * bcache_reboot() won't be re-entered on by other thread,
2755 * so there is no race in following list iteration by
2756 * list_for_each_entry_safe().
2757 */
cafe5635
KO
2758 list_for_each_entry_safe(c, tc, &bch_cache_sets, list)
2759 bch_cache_set_stop(c);
2760
2761 list_for_each_entry_safe(dc, tdc, &uncached_devices, list)
2762 bcache_device_stop(&dc->disk);
2763
eb8cbb6d
CL
2764
2765 /*
2766 * Give an early chance for other kthreads and
2767 * kworkers to stop themselves
2768 */
2769 schedule();
2770
cafe5635
KO
2771 /* What's a condition variable? */
2772 while (1) {
eb8cbb6d 2773 long timeout = start + 10 * HZ - jiffies;
cafe5635 2774
eb8cbb6d 2775 mutex_lock(&bch_register_lock);
cafe5635
KO
2776 stopped = list_empty(&bch_cache_sets) &&
2777 list_empty(&uncached_devices);
2778
2779 if (timeout < 0 || stopped)
2780 break;
2781
2782 prepare_to_wait(&unregister_wait, &wait,
2783 TASK_UNINTERRUPTIBLE);
2784
2785 mutex_unlock(&bch_register_lock);
2786 schedule_timeout(timeout);
cafe5635
KO
2787 }
2788
2789 finish_wait(&unregister_wait, &wait);
2790
2791 if (stopped)
46f5aa88 2792 pr_info("All devices stopped\n");
cafe5635 2793 else
46f5aa88 2794 pr_notice("Timeout waiting for devices to be closed\n");
cafe5635
KO
2795out:
2796 mutex_unlock(&bch_register_lock);
2797 }
2798
2799 return NOTIFY_DONE;
2800}
2801
2802static struct notifier_block reboot = {
2803 .notifier_call = bcache_reboot,
2804 .priority = INT_MAX, /* before any real devices */
2805};
2806
2807static void bcache_exit(void)
2808{
2809 bch_debug_exit();
cafe5635 2810 bch_request_exit();
cafe5635
KO
2811 if (bcache_kobj)
2812 kobject_put(bcache_kobj);
2813 if (bcache_wq)
2814 destroy_workqueue(bcache_wq);
0f843e65
GF
2815 if (bch_journal_wq)
2816 destroy_workqueue(bch_journal_wq);
afe78ab4
KK
2817 if (bch_flush_wq)
2818 destroy_workqueue(bch_flush_wq);
9f233ffe 2819 bch_btree_exit();
0f843e65 2820
5c41c8a7
KO
2821 if (bcache_major)
2822 unregister_blkdev(bcache_major, "bcache");
cafe5635 2823 unregister_reboot_notifier(&reboot);
330a4db8 2824 mutex_destroy(&bch_register_lock);
cafe5635
KO
2825}
2826
9aaf5165
CL
2827/* Check and fixup module parameters */
2828static void check_module_parameters(void)
2829{
2830 if (bch_cutoff_writeback_sync == 0)
2831 bch_cutoff_writeback_sync = CUTOFF_WRITEBACK_SYNC;
2832 else if (bch_cutoff_writeback_sync > CUTOFF_WRITEBACK_SYNC_MAX) {
46f5aa88 2833 pr_warn("set bch_cutoff_writeback_sync (%u) to max value %u\n",
9aaf5165
CL
2834 bch_cutoff_writeback_sync, CUTOFF_WRITEBACK_SYNC_MAX);
2835 bch_cutoff_writeback_sync = CUTOFF_WRITEBACK_SYNC_MAX;
2836 }
2837
2838 if (bch_cutoff_writeback == 0)
2839 bch_cutoff_writeback = CUTOFF_WRITEBACK;
2840 else if (bch_cutoff_writeback > CUTOFF_WRITEBACK_MAX) {
46f5aa88 2841 pr_warn("set bch_cutoff_writeback (%u) to max value %u\n",
9aaf5165
CL
2842 bch_cutoff_writeback, CUTOFF_WRITEBACK_MAX);
2843 bch_cutoff_writeback = CUTOFF_WRITEBACK_MAX;
2844 }
2845
2846 if (bch_cutoff_writeback > bch_cutoff_writeback_sync) {
46f5aa88 2847 pr_warn("set bch_cutoff_writeback (%u) to %u\n",
9aaf5165
CL
2848 bch_cutoff_writeback, bch_cutoff_writeback_sync);
2849 bch_cutoff_writeback = bch_cutoff_writeback_sync;
2850 }
2851}
2852
cafe5635
KO
2853static int __init bcache_init(void)
2854{
2855 static const struct attribute *files[] = {
2856 &ksysfs_register.attr,
2857 &ksysfs_register_quiet.attr,
0c277e21 2858 &ksysfs_pendings_cleanup.attr,
cafe5635
KO
2859 NULL
2860 };
2861
9aaf5165
CL
2862 check_module_parameters();
2863
cafe5635
KO
2864 mutex_init(&bch_register_lock);
2865 init_waitqueue_head(&unregister_wait);
2866 register_reboot_notifier(&reboot);
2867
2868 bcache_major = register_blkdev(0, "bcache");
2ecf0cdb
ZL
2869 if (bcache_major < 0) {
2870 unregister_reboot_notifier(&reboot);
330a4db8 2871 mutex_destroy(&bch_register_lock);
cafe5635 2872 return bcache_major;
2ecf0cdb 2873 }
cafe5635 2874
9f233ffe
KK
2875 if (bch_btree_init())
2876 goto err;
2877
16c1fdf4
FS
2878 bcache_wq = alloc_workqueue("bcache", WQ_MEM_RECLAIM, 0);
2879 if (!bcache_wq)
2880 goto err;
2881
afe78ab4
KK
2882 /*
2883 * Let's not make this `WQ_MEM_RECLAIM` for the following reasons:
2884 *
2885 * 1. It used `system_wq` before which also does no memory reclaim.
2886 * 2. With `WQ_MEM_RECLAIM` desktop stalls, increased boot times, and
2887 * reduced throughput can be observed.
2888 *
2889 * We still want to user our own queue to not congest the `system_wq`.
2890 */
2891 bch_flush_wq = alloc_workqueue("bch_flush", 0, 0);
2892 if (!bch_flush_wq)
2893 goto err;
2894
0f843e65
GF
2895 bch_journal_wq = alloc_workqueue("bch_journal", WQ_MEM_RECLAIM, 0);
2896 if (!bch_journal_wq)
2897 goto err;
2898
16c1fdf4
FS
2899 bcache_kobj = kobject_create_and_add("bcache", fs_kobj);
2900 if (!bcache_kobj)
2901 goto err;
2902
2903 if (bch_request_init() ||
330a4db8 2904 sysfs_create_files(bcache_kobj, files))
cafe5635
KO
2905 goto err;
2906
91bafdf0 2907 bch_debug_init();
78ac2107 2908
a59ff6cc
CL
2909 bcache_is_reboot = false;
2910
cafe5635
KO
2911 return 0;
2912err:
2913 bcache_exit();
2914 return -ENOMEM;
2915}
2916
9aaf5165
CL
2917/*
2918 * Module hooks
2919 */
cafe5635
KO
2920module_exit(bcache_exit);
2921module_init(bcache_init);
009673d0 2922
9aaf5165
CL
2923module_param(bch_cutoff_writeback, uint, 0);
2924MODULE_PARM_DESC(bch_cutoff_writeback, "threshold to cutoff writeback");
2925
2926module_param(bch_cutoff_writeback_sync, uint, 0);
2927MODULE_PARM_DESC(bch_cutoff_writeback_sync, "hard threshold to cutoff writeback");
2928
009673d0
CL
2929MODULE_DESCRIPTION("Bcache: a Linux block layer cache");
2930MODULE_AUTHOR("Kent Overstreet <kent.overstreet@gmail.com>");
2931MODULE_LICENSE("GPL");