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1 /*
2  * Primary bucket allocation code
3  *
4  * Copyright 2012 Google, Inc.
5  *
6  * Allocation in bcache is done in terms of buckets:
7  *
8  * Each bucket has associated an 8 bit gen; this gen corresponds to the gen in
9  * btree pointers - they must match for the pointer to be considered valid.
10  *
11  * Thus (assuming a bucket has no dirty data or metadata in it) we can reuse a
12  * bucket simply by incrementing its gen.
13  *
14  * The gens (along with the priorities; it's really the gens are important but
15  * the code is named as if it's the priorities) are written in an arbitrary list
16  * of buckets on disk, with a pointer to them in the journal header.
17  *
18  * When we invalidate a bucket, we have to write its new gen to disk and wait
19  * for that write to complete before we use it - otherwise after a crash we
20  * could have pointers that appeared to be good but pointed to data that had
21  * been overwritten.
22  *
23  * Since the gens and priorities are all stored contiguously on disk, we can
24  * batch this up: We fill up the free_inc list with freshly invalidated buckets,
25  * call prio_write(), and when prio_write() finishes we pull buckets off the
26  * free_inc list and optionally discard them.
27  *
28  * free_inc isn't the only freelist - if it was, we'd often to sleep while
29  * priorities and gens were being written before we could allocate. c->free is a
30  * smaller freelist, and buckets on that list are always ready to be used.
31  *
32  * If we've got discards enabled, that happens when a bucket moves from the
33  * free_inc list to the free list.
34  *
35  * There is another freelist, because sometimes we have buckets that we know
36  * have nothing pointing into them - these we can reuse without waiting for
37  * priorities to be rewritten. These come from freed btree nodes and buckets
38  * that garbage collection discovered no longer had valid keys pointing into
39  * them (because they were overwritten). That's the unused list - buckets on the
40  * unused list move to the free list, optionally being discarded in the process.
41  *
42  * It's also important to ensure that gens don't wrap around - with respect to
43  * either the oldest gen in the btree or the gen on disk. This is quite
44  * difficult to do in practice, but we explicitly guard against it anyways - if
45  * a bucket is in danger of wrapping around we simply skip invalidating it that
46  * time around, and we garbage collect or rewrite the priorities sooner than we
47  * would have otherwise.
48  *
49  * bch_bucket_alloc() allocates a single bucket from a specific cache.
50  *
51  * bch_bucket_alloc_set() allocates one or more buckets from different caches
52  * out of a cache set.
53  *
54  * free_some_buckets() drives all the processes described above. It's called
55  * from bch_bucket_alloc() and a few other places that need to make sure free
56  * buckets are ready.
57  *
58  * invalidate_buckets_(lru|fifo)() find buckets that are available to be
59  * invalidated, and then invalidate them and stick them on the free_inc list -
60  * in either lru or fifo order.
61  */
62
63 #include "bcache.h"
64 #include "btree.h"
65
66 #include <linux/blkdev.h>
67 #include <linux/freezer.h>
68 #include <linux/kthread.h>
69 #include <linux/random.h>
70 #include <trace/events/bcache.h>
71
72 /* Bucket heap / gen */
73
74 uint8_t bch_inc_gen(struct cache *ca, struct bucket *b)
75 {
76         uint8_t ret = ++b->gen;
77
78         ca->set->need_gc = max(ca->set->need_gc, bucket_gc_gen(b));
79         WARN_ON_ONCE(ca->set->need_gc > BUCKET_GC_GEN_MAX);
80
81         if (CACHE_SYNC(&ca->set->sb)) {
82                 ca->need_save_prio = max(ca->need_save_prio,
83                                          bucket_disk_gen(b));
84                 WARN_ON_ONCE(ca->need_save_prio > BUCKET_DISK_GEN_MAX);
85         }
86
87         return ret;
88 }
89
90 void bch_rescale_priorities(struct cache_set *c, int sectors)
91 {
92         struct cache *ca;
93         struct bucket *b;
94         unsigned next = c->nbuckets * c->sb.bucket_size / 1024;
95         unsigned i;
96         int r;
97
98         atomic_sub(sectors, &c->rescale);
99
100         do {
101                 r = atomic_read(&c->rescale);
102
103                 if (r >= 0)
104                         return;
105         } while (atomic_cmpxchg(&c->rescale, r, r + next) != r);
106
107         mutex_lock(&c->bucket_lock);
108
109         c->min_prio = USHRT_MAX;
110
111         for_each_cache(ca, c, i)
112                 for_each_bucket(b, ca)
113                         if (b->prio &&
114                             b->prio != BTREE_PRIO &&
115                             !atomic_read(&b->pin)) {
116                                 b->prio--;
117                                 c->min_prio = min(c->min_prio, b->prio);
118                         }
119
120         mutex_unlock(&c->bucket_lock);
121 }
122
123 /* Allocation */
124
125 static inline bool can_inc_bucket_gen(struct bucket *b)
126 {
127         return bucket_gc_gen(b) < BUCKET_GC_GEN_MAX &&
128                 bucket_disk_gen(b) < BUCKET_DISK_GEN_MAX;
129 }
130
131 bool bch_bucket_add_unused(struct cache *ca, struct bucket *b)
132 {
133         BUG_ON(GC_MARK(b) || GC_SECTORS_USED(b));
134
135         if (fifo_used(&ca->free) > ca->watermark[WATERMARK_MOVINGGC] &&
136             CACHE_REPLACEMENT(&ca->sb) == CACHE_REPLACEMENT_FIFO)
137                 return false;
138
139         b->prio = 0;
140
141         if (can_inc_bucket_gen(b) &&
142             fifo_push(&ca->unused, b - ca->buckets)) {
143                 atomic_inc(&b->pin);
144                 return true;
145         }
146
147         return false;
148 }
149
150 static bool can_invalidate_bucket(struct cache *ca, struct bucket *b)
151 {
152         return GC_MARK(b) == GC_MARK_RECLAIMABLE &&
153                 !atomic_read(&b->pin) &&
154                 can_inc_bucket_gen(b);
155 }
156
157 static void invalidate_one_bucket(struct cache *ca, struct bucket *b)
158 {
159         bch_inc_gen(ca, b);
160         b->prio = INITIAL_PRIO;
161         atomic_inc(&b->pin);
162         fifo_push(&ca->free_inc, b - ca->buckets);
163 }
164
165 #define bucket_prio(b)                          \
166         (((unsigned) (b->prio - ca->set->min_prio)) * GC_SECTORS_USED(b))
167
168 #define bucket_max_cmp(l, r)    (bucket_prio(l) < bucket_prio(r))
169 #define bucket_min_cmp(l, r)    (bucket_prio(l) > bucket_prio(r))
170
171 static void invalidate_buckets_lru(struct cache *ca)
172 {
173         struct bucket *b;
174         ssize_t i;
175
176         ca->heap.used = 0;
177
178         for_each_bucket(b, ca) {
179                 /*
180                  * If we fill up the unused list, if we then return before
181                  * adding anything to the free_inc list we'll skip writing
182                  * prios/gens and just go back to allocating from the unused
183                  * list:
184                  */
185                 if (fifo_full(&ca->unused))
186                         return;
187
188                 if (!can_invalidate_bucket(ca, b))
189                         continue;
190
191                 if (!GC_SECTORS_USED(b) &&
192                     bch_bucket_add_unused(ca, b))
193                         continue;
194
195                 if (!heap_full(&ca->heap))
196                         heap_add(&ca->heap, b, bucket_max_cmp);
197                 else if (bucket_max_cmp(b, heap_peek(&ca->heap))) {
198                         ca->heap.data[0] = b;
199                         heap_sift(&ca->heap, 0, bucket_max_cmp);
200                 }
201         }
202
203         for (i = ca->heap.used / 2 - 1; i >= 0; --i)
204                 heap_sift(&ca->heap, i, bucket_min_cmp);
205
206         while (!fifo_full(&ca->free_inc)) {
207                 if (!heap_pop(&ca->heap, b, bucket_min_cmp)) {
208                         /*
209                          * We don't want to be calling invalidate_buckets()
210                          * multiple times when it can't do anything
211                          */
212                         ca->invalidate_needs_gc = 1;
213                         wake_up_gc(ca->set);
214                         return;
215                 }
216
217                 invalidate_one_bucket(ca, b);
218         }
219 }
220
221 static void invalidate_buckets_fifo(struct cache *ca)
222 {
223         struct bucket *b;
224         size_t checked = 0;
225
226         while (!fifo_full(&ca->free_inc)) {
227                 if (ca->fifo_last_bucket <  ca->sb.first_bucket ||
228                     ca->fifo_last_bucket >= ca->sb.nbuckets)
229                         ca->fifo_last_bucket = ca->sb.first_bucket;
230
231                 b = ca->buckets + ca->fifo_last_bucket++;
232
233                 if (can_invalidate_bucket(ca, b))
234                         invalidate_one_bucket(ca, b);
235
236                 if (++checked >= ca->sb.nbuckets) {
237                         ca->invalidate_needs_gc = 1;
238                         wake_up_gc(ca->set);
239                         return;
240                 }
241         }
242 }
243
244 static void invalidate_buckets_random(struct cache *ca)
245 {
246         struct bucket *b;
247         size_t checked = 0;
248
249         while (!fifo_full(&ca->free_inc)) {
250                 size_t n;
251                 get_random_bytes(&n, sizeof(n));
252
253                 n %= (size_t) (ca->sb.nbuckets - ca->sb.first_bucket);
254                 n += ca->sb.first_bucket;
255
256                 b = ca->buckets + n;
257
258                 if (can_invalidate_bucket(ca, b))
259                         invalidate_one_bucket(ca, b);
260
261                 if (++checked >= ca->sb.nbuckets / 2) {
262                         ca->invalidate_needs_gc = 1;
263                         wake_up_gc(ca->set);
264                         return;
265                 }
266         }
267 }
268
269 static void invalidate_buckets(struct cache *ca)
270 {
271         if (ca->invalidate_needs_gc)
272                 return;
273
274         switch (CACHE_REPLACEMENT(&ca->sb)) {
275         case CACHE_REPLACEMENT_LRU:
276                 invalidate_buckets_lru(ca);
277                 break;
278         case CACHE_REPLACEMENT_FIFO:
279                 invalidate_buckets_fifo(ca);
280                 break;
281         case CACHE_REPLACEMENT_RANDOM:
282                 invalidate_buckets_random(ca);
283                 break;
284         }
285
286         trace_bcache_alloc_invalidate(ca);
287 }
288
289 #define allocator_wait(ca, cond)                                        \
290 do {                                                                    \
291         while (1) {                                                     \
292                 set_current_state(TASK_INTERRUPTIBLE);                  \
293                 if (cond)                                               \
294                         break;                                          \
295                                                                         \
296                 mutex_unlock(&(ca)->set->bucket_lock);                  \
297                 if (kthread_should_stop())                              \
298                         return 0;                                       \
299                                                                         \
300                 try_to_freeze();                                        \
301                 schedule();                                             \
302                 mutex_lock(&(ca)->set->bucket_lock);                    \
303         }                                                               \
304         __set_current_state(TASK_RUNNING);                              \
305 } while (0)
306
307 static int bch_allocator_thread(void *arg)
308 {
309         struct cache *ca = arg;
310
311         mutex_lock(&ca->set->bucket_lock);
312
313         while (1) {
314                 /*
315                  * First, we pull buckets off of the unused and free_inc lists,
316                  * possibly issue discards to them, then we add the bucket to
317                  * the free list:
318                  */
319                 while (1) {
320                         long bucket;
321
322                         if ((!atomic_read(&ca->set->prio_blocked) ||
323                              !CACHE_SYNC(&ca->set->sb)) &&
324                             !fifo_empty(&ca->unused))
325                                 fifo_pop(&ca->unused, bucket);
326                         else if (!fifo_empty(&ca->free_inc))
327                                 fifo_pop(&ca->free_inc, bucket);
328                         else
329                                 break;
330
331                         if (ca->discard) {
332                                 mutex_unlock(&ca->set->bucket_lock);
333                                 blkdev_issue_discard(ca->bdev,
334                                         bucket_to_sector(ca->set, bucket),
335                                         ca->sb.block_size, GFP_KERNEL, 0);
336                                 mutex_lock(&ca->set->bucket_lock);
337                         }
338
339                         allocator_wait(ca, !fifo_full(&ca->free));
340
341                         fifo_push(&ca->free, bucket);
342                         wake_up(&ca->set->bucket_wait);
343                 }
344
345                 /*
346                  * We've run out of free buckets, we need to find some buckets
347                  * we can invalidate. First, invalidate them in memory and add
348                  * them to the free_inc list:
349                  */
350
351                 allocator_wait(ca, ca->set->gc_mark_valid &&
352                                (ca->need_save_prio > 64 ||
353                                 !ca->invalidate_needs_gc));
354                 invalidate_buckets(ca);
355
356                 /*
357                  * Now, we write their new gens to disk so we can start writing
358                  * new stuff to them:
359                  */
360                 allocator_wait(ca, !atomic_read(&ca->set->prio_blocked));
361                 if (CACHE_SYNC(&ca->set->sb) &&
362                     (!fifo_empty(&ca->free_inc) ||
363                      ca->need_save_prio > 64))
364                         bch_prio_write(ca);
365         }
366 }
367
368 long bch_bucket_alloc(struct cache *ca, unsigned watermark, bool wait)
369 {
370         DEFINE_WAIT(w);
371         struct bucket *b;
372         long r;
373
374         /* fastpath */
375         if (fifo_used(&ca->free) > ca->watermark[watermark]) {
376                 fifo_pop(&ca->free, r);
377                 goto out;
378         }
379
380         if (!wait)
381                 return -1;
382
383         while (1) {
384                 if (fifo_used(&ca->free) > ca->watermark[watermark]) {
385                         fifo_pop(&ca->free, r);
386                         break;
387                 }
388
389                 prepare_to_wait(&ca->set->bucket_wait, &w,
390                                 TASK_UNINTERRUPTIBLE);
391
392                 mutex_unlock(&ca->set->bucket_lock);
393                 schedule();
394                 mutex_lock(&ca->set->bucket_lock);
395         }
396
397         finish_wait(&ca->set->bucket_wait, &w);
398 out:
399         wake_up_process(ca->alloc_thread);
400
401         if (expensive_debug_checks(ca->set)) {
402                 size_t iter;
403                 long i;
404
405                 for (iter = 0; iter < prio_buckets(ca) * 2; iter++)
406                         BUG_ON(ca->prio_buckets[iter] == (uint64_t) r);
407
408                 fifo_for_each(i, &ca->free, iter)
409                         BUG_ON(i == r);
410                 fifo_for_each(i, &ca->free_inc, iter)
411                         BUG_ON(i == r);
412                 fifo_for_each(i, &ca->unused, iter)
413                         BUG_ON(i == r);
414         }
415
416         b = ca->buckets + r;
417
418         BUG_ON(atomic_read(&b->pin) != 1);
419
420         SET_GC_SECTORS_USED(b, ca->sb.bucket_size);
421
422         if (watermark <= WATERMARK_METADATA) {
423                 SET_GC_MARK(b, GC_MARK_METADATA);
424                 b->prio = BTREE_PRIO;
425         } else {
426                 SET_GC_MARK(b, GC_MARK_RECLAIMABLE);
427                 b->prio = INITIAL_PRIO;
428         }
429
430         return r;
431 }
432
433 void bch_bucket_free(struct cache_set *c, struct bkey *k)
434 {
435         unsigned i;
436
437         for (i = 0; i < KEY_PTRS(k); i++) {
438                 struct bucket *b = PTR_BUCKET(c, k, i);
439
440                 SET_GC_MARK(b, GC_MARK_RECLAIMABLE);
441                 SET_GC_SECTORS_USED(b, 0);
442                 bch_bucket_add_unused(PTR_CACHE(c, k, i), b);
443         }
444 }
445
446 int __bch_bucket_alloc_set(struct cache_set *c, unsigned watermark,
447                            struct bkey *k, int n, bool wait)
448 {
449         int i;
450
451         lockdep_assert_held(&c->bucket_lock);
452         BUG_ON(!n || n > c->caches_loaded || n > 8);
453
454         bkey_init(k);
455
456         /* sort by free space/prio of oldest data in caches */
457
458         for (i = 0; i < n; i++) {
459                 struct cache *ca = c->cache_by_alloc[i];
460                 long b = bch_bucket_alloc(ca, watermark, wait);
461
462                 if (b == -1)
463                         goto err;
464
465                 k->ptr[i] = PTR(ca->buckets[b].gen,
466                                 bucket_to_sector(c, b),
467                                 ca->sb.nr_this_dev);
468
469                 SET_KEY_PTRS(k, i + 1);
470         }
471
472         return 0;
473 err:
474         bch_bucket_free(c, k);
475         bkey_put(c, k);
476         return -1;
477 }
478
479 int bch_bucket_alloc_set(struct cache_set *c, unsigned watermark,
480                          struct bkey *k, int n, bool wait)
481 {
482         int ret;
483         mutex_lock(&c->bucket_lock);
484         ret = __bch_bucket_alloc_set(c, watermark, k, n, wait);
485         mutex_unlock(&c->bucket_lock);
486         return ret;
487 }
488
489 /* Sector allocator */
490
491 struct open_bucket {
492         struct list_head        list;
493         unsigned                last_write_point;
494         unsigned                sectors_free;
495         BKEY_PADDED(key);
496 };
497
498 /*
499  * We keep multiple buckets open for writes, and try to segregate different
500  * write streams for better cache utilization: first we look for a bucket where
501  * the last write to it was sequential with the current write, and failing that
502  * we look for a bucket that was last used by the same task.
503  *
504  * The ideas is if you've got multiple tasks pulling data into the cache at the
505  * same time, you'll get better cache utilization if you try to segregate their
506  * data and preserve locality.
507  *
508  * For example, say you've starting Firefox at the same time you're copying a
509  * bunch of files. Firefox will likely end up being fairly hot and stay in the
510  * cache awhile, but the data you copied might not be; if you wrote all that
511  * data to the same buckets it'd get invalidated at the same time.
512  *
513  * Both of those tasks will be doing fairly random IO so we can't rely on
514  * detecting sequential IO to segregate their data, but going off of the task
515  * should be a sane heuristic.
516  */
517 static struct open_bucket *pick_data_bucket(struct cache_set *c,
518                                             const struct bkey *search,
519                                             unsigned write_point,
520                                             struct bkey *alloc)
521 {
522         struct open_bucket *ret, *ret_task = NULL;
523
524         list_for_each_entry_reverse(ret, &c->data_buckets, list)
525                 if (!bkey_cmp(&ret->key, search))
526                         goto found;
527                 else if (ret->last_write_point == write_point)
528                         ret_task = ret;
529
530         ret = ret_task ?: list_first_entry(&c->data_buckets,
531                                            struct open_bucket, list);
532 found:
533         if (!ret->sectors_free && KEY_PTRS(alloc)) {
534                 ret->sectors_free = c->sb.bucket_size;
535                 bkey_copy(&ret->key, alloc);
536                 bkey_init(alloc);
537         }
538
539         if (!ret->sectors_free)
540                 ret = NULL;
541
542         return ret;
543 }
544
545 /*
546  * Allocates some space in the cache to write to, and k to point to the newly
547  * allocated space, and updates KEY_SIZE(k) and KEY_OFFSET(k) (to point to the
548  * end of the newly allocated space).
549  *
550  * May allocate fewer sectors than @sectors, KEY_SIZE(k) indicates how many
551  * sectors were actually allocated.
552  *
553  * If s->writeback is true, will not fail.
554  */
555 bool bch_alloc_sectors(struct cache_set *c, struct bkey *k, unsigned sectors,
556                        unsigned write_point, unsigned write_prio, bool wait)
557 {
558         struct open_bucket *b;
559         BKEY_PADDED(key) alloc;
560         unsigned i;
561
562         /*
563          * We might have to allocate a new bucket, which we can't do with a
564          * spinlock held. So if we have to allocate, we drop the lock, allocate
565          * and then retry. KEY_PTRS() indicates whether alloc points to
566          * allocated bucket(s).
567          */
568
569         bkey_init(&alloc.key);
570         spin_lock(&c->data_bucket_lock);
571
572         while (!(b = pick_data_bucket(c, k, write_point, &alloc.key))) {
573                 unsigned watermark = write_prio
574                         ? WATERMARK_MOVINGGC
575                         : WATERMARK_NONE;
576
577                 spin_unlock(&c->data_bucket_lock);
578
579                 if (bch_bucket_alloc_set(c, watermark, &alloc.key, 1, wait))
580                         return false;
581
582                 spin_lock(&c->data_bucket_lock);
583         }
584
585         /*
586          * If we had to allocate, we might race and not need to allocate the
587          * second time we call find_data_bucket(). If we allocated a bucket but
588          * didn't use it, drop the refcount bch_bucket_alloc_set() took:
589          */
590         if (KEY_PTRS(&alloc.key))
591                 bkey_put(c, &alloc.key);
592
593         for (i = 0; i < KEY_PTRS(&b->key); i++)
594                 EBUG_ON(ptr_stale(c, &b->key, i));
595
596         /* Set up the pointer to the space we're allocating: */
597
598         for (i = 0; i < KEY_PTRS(&b->key); i++)
599                 k->ptr[i] = b->key.ptr[i];
600
601         sectors = min(sectors, b->sectors_free);
602
603         SET_KEY_OFFSET(k, KEY_OFFSET(k) + sectors);
604         SET_KEY_SIZE(k, sectors);
605         SET_KEY_PTRS(k, KEY_PTRS(&b->key));
606
607         /*
608          * Move b to the end of the lru, and keep track of what this bucket was
609          * last used for:
610          */
611         list_move_tail(&b->list, &c->data_buckets);
612         bkey_copy_key(&b->key, k);
613         b->last_write_point = write_point;
614
615         b->sectors_free -= sectors;
616
617         for (i = 0; i < KEY_PTRS(&b->key); i++) {
618                 SET_PTR_OFFSET(&b->key, i, PTR_OFFSET(&b->key, i) + sectors);
619
620                 atomic_long_add(sectors,
621                                 &PTR_CACHE(c, &b->key, i)->sectors_written);
622         }
623
624         if (b->sectors_free < c->sb.block_size)
625                 b->sectors_free = 0;
626
627         /*
628          * k takes refcounts on the buckets it points to until it's inserted
629          * into the btree, but if we're done with this bucket we just transfer
630          * get_data_bucket()'s refcount.
631          */
632         if (b->sectors_free)
633                 for (i = 0; i < KEY_PTRS(&b->key); i++)
634                         atomic_inc(&PTR_BUCKET(c, &b->key, i)->pin);
635
636         spin_unlock(&c->data_bucket_lock);
637         return true;
638 }
639
640 /* Init */
641
642 void bch_open_buckets_free(struct cache_set *c)
643 {
644         struct open_bucket *b;
645
646         while (!list_empty(&c->data_buckets)) {
647                 b = list_first_entry(&c->data_buckets,
648                                      struct open_bucket, list);
649                 list_del(&b->list);
650                 kfree(b);
651         }
652 }
653
654 int bch_open_buckets_alloc(struct cache_set *c)
655 {
656         int i;
657
658         spin_lock_init(&c->data_bucket_lock);
659
660         for (i = 0; i < 6; i++) {
661                 struct open_bucket *b = kzalloc(sizeof(*b), GFP_KERNEL);
662                 if (!b)
663                         return -ENOMEM;
664
665                 list_add(&b->list, &c->data_buckets);
666         }
667
668         return 0;
669 }
670
671 int bch_cache_allocator_start(struct cache *ca)
672 {
673         struct task_struct *k = kthread_run(bch_allocator_thread,
674                                             ca, "bcache_allocator");
675         if (IS_ERR(k))
676                 return PTR_ERR(k);
677
678         ca->alloc_thread = k;
679         return 0;
680 }
681
682 int bch_cache_allocator_init(struct cache *ca)
683 {
684         /*
685          * Reserve:
686          * Prio/gen writes first
687          * Then 8 for btree allocations
688          * Then half for the moving garbage collector
689          */
690
691         ca->watermark[WATERMARK_PRIO] = 0;
692
693         ca->watermark[WATERMARK_METADATA] = prio_buckets(ca);
694
695         ca->watermark[WATERMARK_MOVINGGC] = 8 +
696                 ca->watermark[WATERMARK_METADATA];
697
698         ca->watermark[WATERMARK_NONE] = ca->free.size / 2 +
699                 ca->watermark[WATERMARK_MOVINGGC];
700
701         return 0;
702 }