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1 /*
2 * Copyright (C) 2009-2011 Red Hat, Inc.
3 *
4 * Author: Mikulas Patocka <mpatocka@redhat.com>
5 *
6 * This file is released under the GPL.
7 */
8
9 #include "dm-bufio.h"
10
11 #include <linux/device-mapper.h>
12 #include <linux/dm-io.h>
13 #include <linux/slab.h>
14 #include <linux/sched/mm.h>
15 #include <linux/jiffies.h>
16 #include <linux/vmalloc.h>
17 #include <linux/shrinker.h>
18 #include <linux/module.h>
19 #include <linux/rbtree.h>
20 #include <linux/stacktrace.h>
21
22 #define DM_MSG_PREFIX "bufio"
23
24 /*
25 * Memory management policy:
26 * Limit the number of buffers to DM_BUFIO_MEMORY_PERCENT of main memory
27 * or DM_BUFIO_VMALLOC_PERCENT of vmalloc memory (whichever is lower).
28 * Always allocate at least DM_BUFIO_MIN_BUFFERS buffers.
29 * Start background writeback when there are DM_BUFIO_WRITEBACK_PERCENT
30 * dirty buffers.
31 */
32 #define DM_BUFIO_MIN_BUFFERS 8
33
34 #define DM_BUFIO_MEMORY_PERCENT 2
35 #define DM_BUFIO_VMALLOC_PERCENT 25
36 #define DM_BUFIO_WRITEBACK_PERCENT 75
37
38 /*
39 * Check buffer ages in this interval (seconds)
40 */
41 #define DM_BUFIO_WORK_TIMER_SECS 30
42
43 /*
44 * Free buffers when they are older than this (seconds)
45 */
46 #define DM_BUFIO_DEFAULT_AGE_SECS 300
47
48 /*
49 * The nr of bytes of cached data to keep around.
50 */
51 #define DM_BUFIO_DEFAULT_RETAIN_BYTES (256 * 1024)
52
53 /*
54 * The number of bvec entries that are embedded directly in the buffer.
55 * If the chunk size is larger, dm-io is used to do the io.
56 */
57 #define DM_BUFIO_INLINE_VECS 16
58
59 /*
60 * Don't try to use kmem_cache_alloc for blocks larger than this.
61 * For explanation, see alloc_buffer_data below.
62 */
63 #define DM_BUFIO_BLOCK_SIZE_SLAB_LIMIT (PAGE_SIZE >> 1)
64 #define DM_BUFIO_BLOCK_SIZE_GFP_LIMIT (PAGE_SIZE << (MAX_ORDER - 1))
65
66 /*
67 * dm_buffer->list_mode
68 */
69 #define LIST_CLEAN 0
70 #define LIST_DIRTY 1
71 #define LIST_SIZE 2
72
73 /*
74 * Linking of buffers:
75 * All buffers are linked to cache_hash with their hash_list field.
76 *
77 * Clean buffers that are not being written (B_WRITING not set)
78 * are linked to lru[LIST_CLEAN] with their lru_list field.
79 *
80 * Dirty and clean buffers that are being written are linked to
81 * lru[LIST_DIRTY] with their lru_list field. When the write
82 * finishes, the buffer cannot be relinked immediately (because we
83 * are in an interrupt context and relinking requires process
84 * context), so some clean-not-writing buffers can be held on
85 * dirty_lru too. They are later added to lru in the process
86 * context.
87 */
88 struct dm_bufio_client {
89 struct mutex lock;
90
91 struct list_head lru[LIST_SIZE];
92 unsigned long n_buffers[LIST_SIZE];
93
94 struct block_device *bdev;
95 unsigned block_size;
96 unsigned char sectors_per_block_bits;
97 unsigned char pages_per_block_bits;
98 unsigned char blocks_per_page_bits;
99 unsigned aux_size;
100 void (*alloc_callback)(struct dm_buffer *);
101 void (*write_callback)(struct dm_buffer *);
102
103 struct dm_io_client *dm_io;
104
105 struct list_head reserved_buffers;
106 unsigned need_reserved_buffers;
107
108 unsigned minimum_buffers;
109
110 struct rb_root buffer_tree;
111 wait_queue_head_t free_buffer_wait;
112
113 int async_write_error;
114
115 struct list_head client_list;
116 struct shrinker shrinker;
117 };
118
119 /*
120 * Buffer state bits.
121 */
122 #define B_READING 0
123 #define B_WRITING 1
124 #define B_DIRTY 2
125
126 /*
127 * Describes how the block was allocated:
128 * kmem_cache_alloc(), __get_free_pages() or vmalloc().
129 * See the comment at alloc_buffer_data.
130 */
131 enum data_mode {
132 DATA_MODE_SLAB = 0,
133 DATA_MODE_GET_FREE_PAGES = 1,
134 DATA_MODE_VMALLOC = 2,
135 DATA_MODE_LIMIT = 3
136 };
137
138 struct dm_buffer {
139 struct rb_node node;
140 struct list_head lru_list;
141 sector_t block;
142 void *data;
143 enum data_mode data_mode;
144 unsigned char list_mode; /* LIST_* */
145 unsigned hold_count;
146 int read_error;
147 int write_error;
148 unsigned long state;
149 unsigned long last_accessed;
150 struct dm_bufio_client *c;
151 struct list_head write_list;
152 struct bio bio;
153 struct bio_vec bio_vec[DM_BUFIO_INLINE_VECS];
154 #ifdef CONFIG_DM_DEBUG_BLOCK_STACK_TRACING
155 #define MAX_STACK 10
156 struct stack_trace stack_trace;
157 unsigned long stack_entries[MAX_STACK];
158 #endif
159 };
160
161 /*----------------------------------------------------------------*/
162
163 static struct kmem_cache *dm_bufio_caches[PAGE_SHIFT - SECTOR_SHIFT];
164 static char *dm_bufio_cache_names[PAGE_SHIFT - SECTOR_SHIFT];
165
166 static inline int dm_bufio_cache_index(struct dm_bufio_client *c)
167 {
168 unsigned ret = c->blocks_per_page_bits - 1;
169
170 BUG_ON(ret >= ARRAY_SIZE(dm_bufio_caches));
171
172 return ret;
173 }
174
175 #define DM_BUFIO_CACHE(c) (dm_bufio_caches[dm_bufio_cache_index(c)])
176 #define DM_BUFIO_CACHE_NAME(c) (dm_bufio_cache_names[dm_bufio_cache_index(c)])
177
178 #define dm_bufio_in_request() (!!current->bio_list)
179
180 static void dm_bufio_lock(struct dm_bufio_client *c)
181 {
182 mutex_lock_nested(&c->lock, dm_bufio_in_request());
183 }
184
185 static int dm_bufio_trylock(struct dm_bufio_client *c)
186 {
187 return mutex_trylock(&c->lock);
188 }
189
190 static void dm_bufio_unlock(struct dm_bufio_client *c)
191 {
192 mutex_unlock(&c->lock);
193 }
194
195 /*----------------------------------------------------------------*/
196
197 /*
198 * Default cache size: available memory divided by the ratio.
199 */
200 static unsigned long dm_bufio_default_cache_size;
201
202 /*
203 * Total cache size set by the user.
204 */
205 static unsigned long dm_bufio_cache_size;
206
207 /*
208 * A copy of dm_bufio_cache_size because dm_bufio_cache_size can change
209 * at any time. If it disagrees, the user has changed cache size.
210 */
211 static unsigned long dm_bufio_cache_size_latch;
212
213 static DEFINE_SPINLOCK(param_spinlock);
214
215 /*
216 * Buffers are freed after this timeout
217 */
218 static unsigned dm_bufio_max_age = DM_BUFIO_DEFAULT_AGE_SECS;
219 static unsigned dm_bufio_retain_bytes = DM_BUFIO_DEFAULT_RETAIN_BYTES;
220
221 static unsigned long dm_bufio_peak_allocated;
222 static unsigned long dm_bufio_allocated_kmem_cache;
223 static unsigned long dm_bufio_allocated_get_free_pages;
224 static unsigned long dm_bufio_allocated_vmalloc;
225 static unsigned long dm_bufio_current_allocated;
226
227 /*----------------------------------------------------------------*/
228
229 /*
230 * Per-client cache: dm_bufio_cache_size / dm_bufio_client_count
231 */
232 static unsigned long dm_bufio_cache_size_per_client;
233
234 /*
235 * The current number of clients.
236 */
237 static int dm_bufio_client_count;
238
239 /*
240 * The list of all clients.
241 */
242 static LIST_HEAD(dm_bufio_all_clients);
243
244 /*
245 * This mutex protects dm_bufio_cache_size_latch,
246 * dm_bufio_cache_size_per_client and dm_bufio_client_count
247 */
248 static DEFINE_MUTEX(dm_bufio_clients_lock);
249
250 #ifdef CONFIG_DM_DEBUG_BLOCK_STACK_TRACING
251 static void buffer_record_stack(struct dm_buffer *b)
252 {
253 b->stack_trace.nr_entries = 0;
254 b->stack_trace.max_entries = MAX_STACK;
255 b->stack_trace.entries = b->stack_entries;
256 b->stack_trace.skip = 2;
257 save_stack_trace(&b->stack_trace);
258 }
259 #endif
260
261 /*----------------------------------------------------------------
262 * A red/black tree acts as an index for all the buffers.
263 *--------------------------------------------------------------*/
264 static struct dm_buffer *__find(struct dm_bufio_client *c, sector_t block)
265 {
266 struct rb_node *n = c->buffer_tree.rb_node;
267 struct dm_buffer *b;
268
269 while (n) {
270 b = container_of(n, struct dm_buffer, node);
271
272 if (b->block == block)
273 return b;
274
275 n = (b->block < block) ? n->rb_left : n->rb_right;
276 }
277
278 return NULL;
279 }
280
281 static void __insert(struct dm_bufio_client *c, struct dm_buffer *b)
282 {
283 struct rb_node **new = &c->buffer_tree.rb_node, *parent = NULL;
284 struct dm_buffer *found;
285
286 while (*new) {
287 found = container_of(*new, struct dm_buffer, node);
288
289 if (found->block == b->block) {
290 BUG_ON(found != b);
291 return;
292 }
293
294 parent = *new;
295 new = (found->block < b->block) ?
296 &((*new)->rb_left) : &((*new)->rb_right);
297 }
298
299 rb_link_node(&b->node, parent, new);
300 rb_insert_color(&b->node, &c->buffer_tree);
301 }
302
303 static void __remove(struct dm_bufio_client *c, struct dm_buffer *b)
304 {
305 rb_erase(&b->node, &c->buffer_tree);
306 }
307
308 /*----------------------------------------------------------------*/
309
310 static void adjust_total_allocated(enum data_mode data_mode, long diff)
311 {
312 static unsigned long * const class_ptr[DATA_MODE_LIMIT] = {
313 &dm_bufio_allocated_kmem_cache,
314 &dm_bufio_allocated_get_free_pages,
315 &dm_bufio_allocated_vmalloc,
316 };
317
318 spin_lock(&param_spinlock);
319
320 *class_ptr[data_mode] += diff;
321
322 dm_bufio_current_allocated += diff;
323
324 if (dm_bufio_current_allocated > dm_bufio_peak_allocated)
325 dm_bufio_peak_allocated = dm_bufio_current_allocated;
326
327 spin_unlock(&param_spinlock);
328 }
329
330 /*
331 * Change the number of clients and recalculate per-client limit.
332 */
333 static void __cache_size_refresh(void)
334 {
335 BUG_ON(!mutex_is_locked(&dm_bufio_clients_lock));
336 BUG_ON(dm_bufio_client_count < 0);
337
338 dm_bufio_cache_size_latch = ACCESS_ONCE(dm_bufio_cache_size);
339
340 /*
341 * Use default if set to 0 and report the actual cache size used.
342 */
343 if (!dm_bufio_cache_size_latch) {
344 (void)cmpxchg(&dm_bufio_cache_size, 0,
345 dm_bufio_default_cache_size);
346 dm_bufio_cache_size_latch = dm_bufio_default_cache_size;
347 }
348
349 dm_bufio_cache_size_per_client = dm_bufio_cache_size_latch /
350 (dm_bufio_client_count ? : 1);
351 }
352
353 /*
354 * Allocating buffer data.
355 *
356 * Small buffers are allocated with kmem_cache, to use space optimally.
357 *
358 * For large buffers, we choose between get_free_pages and vmalloc.
359 * Each has advantages and disadvantages.
360 *
361 * __get_free_pages can randomly fail if the memory is fragmented.
362 * __vmalloc won't randomly fail, but vmalloc space is limited (it may be
363 * as low as 128M) so using it for caching is not appropriate.
364 *
365 * If the allocation may fail we use __get_free_pages. Memory fragmentation
366 * won't have a fatal effect here, but it just causes flushes of some other
367 * buffers and more I/O will be performed. Don't use __get_free_pages if it
368 * always fails (i.e. order >= MAX_ORDER).
369 *
370 * If the allocation shouldn't fail we use __vmalloc. This is only for the
371 * initial reserve allocation, so there's no risk of wasting all vmalloc
372 * space.
373 */
374 static void *alloc_buffer_data(struct dm_bufio_client *c, gfp_t gfp_mask,
375 enum data_mode *data_mode)
376 {
377 unsigned noio_flag;
378 void *ptr;
379
380 if (c->block_size <= DM_BUFIO_BLOCK_SIZE_SLAB_LIMIT) {
381 *data_mode = DATA_MODE_SLAB;
382 return kmem_cache_alloc(DM_BUFIO_CACHE(c), gfp_mask);
383 }
384
385 if (c->block_size <= DM_BUFIO_BLOCK_SIZE_GFP_LIMIT &&
386 gfp_mask & __GFP_NORETRY) {
387 *data_mode = DATA_MODE_GET_FREE_PAGES;
388 return (void *)__get_free_pages(gfp_mask,
389 c->pages_per_block_bits);
390 }
391
392 *data_mode = DATA_MODE_VMALLOC;
393
394 /*
395 * __vmalloc allocates the data pages and auxiliary structures with
396 * gfp_flags that were specified, but pagetables are always allocated
397 * with GFP_KERNEL, no matter what was specified as gfp_mask.
398 *
399 * Consequently, we must set per-process flag PF_MEMALLOC_NOIO so that
400 * all allocations done by this process (including pagetables) are done
401 * as if GFP_NOIO was specified.
402 */
403
404 if (gfp_mask & __GFP_NORETRY)
405 noio_flag = memalloc_noio_save();
406
407 ptr = __vmalloc(c->block_size, gfp_mask | __GFP_HIGHMEM, PAGE_KERNEL);
408
409 if (gfp_mask & __GFP_NORETRY)
410 memalloc_noio_restore(noio_flag);
411
412 return ptr;
413 }
414
415 /*
416 * Free buffer's data.
417 */
418 static void free_buffer_data(struct dm_bufio_client *c,
419 void *data, enum data_mode data_mode)
420 {
421 switch (data_mode) {
422 case DATA_MODE_SLAB:
423 kmem_cache_free(DM_BUFIO_CACHE(c), data);
424 break;
425
426 case DATA_MODE_GET_FREE_PAGES:
427 free_pages((unsigned long)data, c->pages_per_block_bits);
428 break;
429
430 case DATA_MODE_VMALLOC:
431 vfree(data);
432 break;
433
434 default:
435 DMCRIT("dm_bufio_free_buffer_data: bad data mode: %d",
436 data_mode);
437 BUG();
438 }
439 }
440
441 /*
442 * Allocate buffer and its data.
443 */
444 static struct dm_buffer *alloc_buffer(struct dm_bufio_client *c, gfp_t gfp_mask)
445 {
446 struct dm_buffer *b = kmalloc(sizeof(struct dm_buffer) + c->aux_size,
447 gfp_mask);
448
449 if (!b)
450 return NULL;
451
452 b->c = c;
453
454 b->data = alloc_buffer_data(c, gfp_mask, &b->data_mode);
455 if (!b->data) {
456 kfree(b);
457 return NULL;
458 }
459
460 adjust_total_allocated(b->data_mode, (long)c->block_size);
461
462 #ifdef CONFIG_DM_DEBUG_BLOCK_STACK_TRACING
463 memset(&b->stack_trace, 0, sizeof(b->stack_trace));
464 #endif
465 return b;
466 }
467
468 /*
469 * Free buffer and its data.
470 */
471 static void free_buffer(struct dm_buffer *b)
472 {
473 struct dm_bufio_client *c = b->c;
474
475 adjust_total_allocated(b->data_mode, -(long)c->block_size);
476
477 free_buffer_data(c, b->data, b->data_mode);
478 kfree(b);
479 }
480
481 /*
482 * Link buffer to the hash list and clean or dirty queue.
483 */
484 static void __link_buffer(struct dm_buffer *b, sector_t block, int dirty)
485 {
486 struct dm_bufio_client *c = b->c;
487
488 c->n_buffers[dirty]++;
489 b->block = block;
490 b->list_mode = dirty;
491 list_add(&b->lru_list, &c->lru[dirty]);
492 __insert(b->c, b);
493 b->last_accessed = jiffies;
494 }
495
496 /*
497 * Unlink buffer from the hash list and dirty or clean queue.
498 */
499 static void __unlink_buffer(struct dm_buffer *b)
500 {
501 struct dm_bufio_client *c = b->c;
502
503 BUG_ON(!c->n_buffers[b->list_mode]);
504
505 c->n_buffers[b->list_mode]--;
506 __remove(b->c, b);
507 list_del(&b->lru_list);
508 }
509
510 /*
511 * Place the buffer to the head of dirty or clean LRU queue.
512 */
513 static void __relink_lru(struct dm_buffer *b, int dirty)
514 {
515 struct dm_bufio_client *c = b->c;
516
517 BUG_ON(!c->n_buffers[b->list_mode]);
518
519 c->n_buffers[b->list_mode]--;
520 c->n_buffers[dirty]++;
521 b->list_mode = dirty;
522 list_move(&b->lru_list, &c->lru[dirty]);
523 b->last_accessed = jiffies;
524 }
525
526 /*----------------------------------------------------------------
527 * Submit I/O on the buffer.
528 *
529 * Bio interface is faster but it has some problems:
530 * the vector list is limited (increasing this limit increases
531 * memory-consumption per buffer, so it is not viable);
532 *
533 * the memory must be direct-mapped, not vmalloced;
534 *
535 * the I/O driver can reject requests spuriously if it thinks that
536 * the requests are too big for the device or if they cross a
537 * controller-defined memory boundary.
538 *
539 * If the buffer is small enough (up to DM_BUFIO_INLINE_VECS pages) and
540 * it is not vmalloced, try using the bio interface.
541 *
542 * If the buffer is big, if it is vmalloced or if the underlying device
543 * rejects the bio because it is too large, use dm-io layer to do the I/O.
544 * The dm-io layer splits the I/O into multiple requests, avoiding the above
545 * shortcomings.
546 *--------------------------------------------------------------*/
547
548 /*
549 * dm-io completion routine. It just calls b->bio.bi_end_io, pretending
550 * that the request was handled directly with bio interface.
551 */
552 static void dmio_complete(unsigned long error, void *context)
553 {
554 struct dm_buffer *b = context;
555
556 b->bio.bi_error = error ? -EIO : 0;
557 b->bio.bi_end_io(&b->bio);
558 }
559
560 static void use_dmio(struct dm_buffer *b, int rw, sector_t block,
561 bio_end_io_t *end_io)
562 {
563 int r;
564 struct dm_io_request io_req = {
565 .bi_op = rw,
566 .bi_op_flags = 0,
567 .notify.fn = dmio_complete,
568 .notify.context = b,
569 .client = b->c->dm_io,
570 };
571 struct dm_io_region region = {
572 .bdev = b->c->bdev,
573 .sector = block << b->c->sectors_per_block_bits,
574 .count = b->c->block_size >> SECTOR_SHIFT,
575 };
576
577 if (b->data_mode != DATA_MODE_VMALLOC) {
578 io_req.mem.type = DM_IO_KMEM;
579 io_req.mem.ptr.addr = b->data;
580 } else {
581 io_req.mem.type = DM_IO_VMA;
582 io_req.mem.ptr.vma = b->data;
583 }
584
585 b->bio.bi_end_io = end_io;
586
587 r = dm_io(&io_req, 1, &region, NULL);
588 if (r) {
589 b->bio.bi_error = r;
590 end_io(&b->bio);
591 }
592 }
593
594 static void inline_endio(struct bio *bio)
595 {
596 bio_end_io_t *end_fn = bio->bi_private;
597 int error = bio->bi_error;
598
599 /*
600 * Reset the bio to free any attached resources
601 * (e.g. bio integrity profiles).
602 */
603 bio_reset(bio);
604
605 bio->bi_error = error;
606 end_fn(bio);
607 }
608
609 static void use_inline_bio(struct dm_buffer *b, int rw, sector_t block,
610 bio_end_io_t *end_io)
611 {
612 char *ptr;
613 int len;
614
615 bio_init(&b->bio, b->bio_vec, DM_BUFIO_INLINE_VECS);
616 b->bio.bi_iter.bi_sector = block << b->c->sectors_per_block_bits;
617 b->bio.bi_bdev = b->c->bdev;
618 b->bio.bi_end_io = inline_endio;
619 /*
620 * Use of .bi_private isn't a problem here because
621 * the dm_buffer's inline bio is local to bufio.
622 */
623 b->bio.bi_private = end_io;
624 bio_set_op_attrs(&b->bio, rw, 0);
625
626 /*
627 * We assume that if len >= PAGE_SIZE ptr is page-aligned.
628 * If len < PAGE_SIZE the buffer doesn't cross page boundary.
629 */
630 ptr = b->data;
631 len = b->c->block_size;
632
633 if (len >= PAGE_SIZE)
634 BUG_ON((unsigned long)ptr & (PAGE_SIZE - 1));
635 else
636 BUG_ON((unsigned long)ptr & (len - 1));
637
638 do {
639 if (!bio_add_page(&b->bio, virt_to_page(ptr),
640 len < PAGE_SIZE ? len : PAGE_SIZE,
641 offset_in_page(ptr))) {
642 BUG_ON(b->c->block_size <= PAGE_SIZE);
643 use_dmio(b, rw, block, end_io);
644 return;
645 }
646
647 len -= PAGE_SIZE;
648 ptr += PAGE_SIZE;
649 } while (len > 0);
650
651 submit_bio(&b->bio);
652 }
653
654 static void submit_io(struct dm_buffer *b, int rw, sector_t block,
655 bio_end_io_t *end_io)
656 {
657 if (rw == WRITE && b->c->write_callback)
658 b->c->write_callback(b);
659
660 if (b->c->block_size <= DM_BUFIO_INLINE_VECS * PAGE_SIZE &&
661 b->data_mode != DATA_MODE_VMALLOC)
662 use_inline_bio(b, rw, block, end_io);
663 else
664 use_dmio(b, rw, block, end_io);
665 }
666
667 /*----------------------------------------------------------------
668 * Writing dirty buffers
669 *--------------------------------------------------------------*/
670
671 /*
672 * The endio routine for write.
673 *
674 * Set the error, clear B_WRITING bit and wake anyone who was waiting on
675 * it.
676 */
677 static void write_endio(struct bio *bio)
678 {
679 struct dm_buffer *b = container_of(bio, struct dm_buffer, bio);
680
681 b->write_error = bio->bi_error;
682 if (unlikely(bio->bi_error)) {
683 struct dm_bufio_client *c = b->c;
684 int error = bio->bi_error;
685 (void)cmpxchg(&c->async_write_error, 0, error);
686 }
687
688 BUG_ON(!test_bit(B_WRITING, &b->state));
689
690 smp_mb__before_atomic();
691 clear_bit(B_WRITING, &b->state);
692 smp_mb__after_atomic();
693
694 wake_up_bit(&b->state, B_WRITING);
695 }
696
697 /*
698 * Initiate a write on a dirty buffer, but don't wait for it.
699 *
700 * - If the buffer is not dirty, exit.
701 * - If there some previous write going on, wait for it to finish (we can't
702 * have two writes on the same buffer simultaneously).
703 * - Submit our write and don't wait on it. We set B_WRITING indicating
704 * that there is a write in progress.
705 */
706 static void __write_dirty_buffer(struct dm_buffer *b,
707 struct list_head *write_list)
708 {
709 if (!test_bit(B_DIRTY, &b->state))
710 return;
711
712 clear_bit(B_DIRTY, &b->state);
713 wait_on_bit_lock_io(&b->state, B_WRITING, TASK_UNINTERRUPTIBLE);
714
715 if (!write_list)
716 submit_io(b, WRITE, b->block, write_endio);
717 else
718 list_add_tail(&b->write_list, write_list);
719 }
720
721 static void __flush_write_list(struct list_head *write_list)
722 {
723 struct blk_plug plug;
724 blk_start_plug(&plug);
725 while (!list_empty(write_list)) {
726 struct dm_buffer *b =
727 list_entry(write_list->next, struct dm_buffer, write_list);
728 list_del(&b->write_list);
729 submit_io(b, WRITE, b->block, write_endio);
730 cond_resched();
731 }
732 blk_finish_plug(&plug);
733 }
734
735 /*
736 * Wait until any activity on the buffer finishes. Possibly write the
737 * buffer if it is dirty. When this function finishes, there is no I/O
738 * running on the buffer and the buffer is not dirty.
739 */
740 static void __make_buffer_clean(struct dm_buffer *b)
741 {
742 BUG_ON(b->hold_count);
743
744 if (!b->state) /* fast case */
745 return;
746
747 wait_on_bit_io(&b->state, B_READING, TASK_UNINTERRUPTIBLE);
748 __write_dirty_buffer(b, NULL);
749 wait_on_bit_io(&b->state, B_WRITING, TASK_UNINTERRUPTIBLE);
750 }
751
752 /*
753 * Find some buffer that is not held by anybody, clean it, unlink it and
754 * return it.
755 */
756 static struct dm_buffer *__get_unclaimed_buffer(struct dm_bufio_client *c)
757 {
758 struct dm_buffer *b;
759
760 list_for_each_entry_reverse(b, &c->lru[LIST_CLEAN], lru_list) {
761 BUG_ON(test_bit(B_WRITING, &b->state));
762 BUG_ON(test_bit(B_DIRTY, &b->state));
763
764 if (!b->hold_count) {
765 __make_buffer_clean(b);
766 __unlink_buffer(b);
767 return b;
768 }
769 cond_resched();
770 }
771
772 list_for_each_entry_reverse(b, &c->lru[LIST_DIRTY], lru_list) {
773 BUG_ON(test_bit(B_READING, &b->state));
774
775 if (!b->hold_count) {
776 __make_buffer_clean(b);
777 __unlink_buffer(b);
778 return b;
779 }
780 cond_resched();
781 }
782
783 return NULL;
784 }
785
786 /*
787 * Wait until some other threads free some buffer or release hold count on
788 * some buffer.
789 *
790 * This function is entered with c->lock held, drops it and regains it
791 * before exiting.
792 */
793 static void __wait_for_free_buffer(struct dm_bufio_client *c)
794 {
795 DECLARE_WAITQUEUE(wait, current);
796
797 add_wait_queue(&c->free_buffer_wait, &wait);
798 set_current_state(TASK_UNINTERRUPTIBLE);
799 dm_bufio_unlock(c);
800
801 io_schedule();
802
803 remove_wait_queue(&c->free_buffer_wait, &wait);
804
805 dm_bufio_lock(c);
806 }
807
808 enum new_flag {
809 NF_FRESH = 0,
810 NF_READ = 1,
811 NF_GET = 2,
812 NF_PREFETCH = 3
813 };
814
815 /*
816 * Allocate a new buffer. If the allocation is not possible, wait until
817 * some other thread frees a buffer.
818 *
819 * May drop the lock and regain it.
820 */
821 static struct dm_buffer *__alloc_buffer_wait_no_callback(struct dm_bufio_client *c, enum new_flag nf)
822 {
823 struct dm_buffer *b;
824 bool tried_noio_alloc = false;
825
826 /*
827 * dm-bufio is resistant to allocation failures (it just keeps
828 * one buffer reserved in cases all the allocations fail).
829 * So set flags to not try too hard:
830 * GFP_NOWAIT: don't wait; if we need to sleep we'll release our
831 * mutex and wait ourselves.
832 * __GFP_NORETRY: don't retry and rather return failure
833 * __GFP_NOMEMALLOC: don't use emergency reserves
834 * __GFP_NOWARN: don't print a warning in case of failure
835 *
836 * For debugging, if we set the cache size to 1, no new buffers will
837 * be allocated.
838 */
839 while (1) {
840 if (dm_bufio_cache_size_latch != 1) {
841 b = alloc_buffer(c, GFP_NOWAIT | __GFP_NORETRY | __GFP_NOMEMALLOC | __GFP_NOWARN);
842 if (b)
843 return b;
844 }
845
846 if (nf == NF_PREFETCH)
847 return NULL;
848
849 if (dm_bufio_cache_size_latch != 1 && !tried_noio_alloc) {
850 dm_bufio_unlock(c);
851 b = alloc_buffer(c, GFP_NOIO | __GFP_NORETRY | __GFP_NOMEMALLOC | __GFP_NOWARN);
852 dm_bufio_lock(c);
853 if (b)
854 return b;
855 tried_noio_alloc = true;
856 }
857
858 if (!list_empty(&c->reserved_buffers)) {
859 b = list_entry(c->reserved_buffers.next,
860 struct dm_buffer, lru_list);
861 list_del(&b->lru_list);
862 c->need_reserved_buffers++;
863
864 return b;
865 }
866
867 b = __get_unclaimed_buffer(c);
868 if (b)
869 return b;
870
871 __wait_for_free_buffer(c);
872 }
873 }
874
875 static struct dm_buffer *__alloc_buffer_wait(struct dm_bufio_client *c, enum new_flag nf)
876 {
877 struct dm_buffer *b = __alloc_buffer_wait_no_callback(c, nf);
878
879 if (!b)
880 return NULL;
881
882 if (c->alloc_callback)
883 c->alloc_callback(b);
884
885 return b;
886 }
887
888 /*
889 * Free a buffer and wake other threads waiting for free buffers.
890 */
891 static void __free_buffer_wake(struct dm_buffer *b)
892 {
893 struct dm_bufio_client *c = b->c;
894
895 if (!c->need_reserved_buffers)
896 free_buffer(b);
897 else {
898 list_add(&b->lru_list, &c->reserved_buffers);
899 c->need_reserved_buffers--;
900 }
901
902 wake_up(&c->free_buffer_wait);
903 }
904
905 static void __write_dirty_buffers_async(struct dm_bufio_client *c, int no_wait,
906 struct list_head *write_list)
907 {
908 struct dm_buffer *b, *tmp;
909
910 list_for_each_entry_safe_reverse(b, tmp, &c->lru[LIST_DIRTY], lru_list) {
911 BUG_ON(test_bit(B_READING, &b->state));
912
913 if (!test_bit(B_DIRTY, &b->state) &&
914 !test_bit(B_WRITING, &b->state)) {
915 __relink_lru(b, LIST_CLEAN);
916 continue;
917 }
918
919 if (no_wait && test_bit(B_WRITING, &b->state))
920 return;
921
922 __write_dirty_buffer(b, write_list);
923 cond_resched();
924 }
925 }
926
927 /*
928 * Get writeback threshold and buffer limit for a given client.
929 */
930 static void __get_memory_limit(struct dm_bufio_client *c,
931 unsigned long *threshold_buffers,
932 unsigned long *limit_buffers)
933 {
934 unsigned long buffers;
935
936 if (ACCESS_ONCE(dm_bufio_cache_size) != dm_bufio_cache_size_latch) {
937 mutex_lock(&dm_bufio_clients_lock);
938 __cache_size_refresh();
939 mutex_unlock(&dm_bufio_clients_lock);
940 }
941
942 buffers = dm_bufio_cache_size_per_client >>
943 (c->sectors_per_block_bits + SECTOR_SHIFT);
944
945 if (buffers < c->minimum_buffers)
946 buffers = c->minimum_buffers;
947
948 *limit_buffers = buffers;
949 *threshold_buffers = buffers * DM_BUFIO_WRITEBACK_PERCENT / 100;
950 }
951
952 /*
953 * Check if we're over watermark.
954 * If we are over threshold_buffers, start freeing buffers.
955 * If we're over "limit_buffers", block until we get under the limit.
956 */
957 static void __check_watermark(struct dm_bufio_client *c,
958 struct list_head *write_list)
959 {
960 unsigned long threshold_buffers, limit_buffers;
961
962 __get_memory_limit(c, &threshold_buffers, &limit_buffers);
963
964 while (c->n_buffers[LIST_CLEAN] + c->n_buffers[LIST_DIRTY] >
965 limit_buffers) {
966
967 struct dm_buffer *b = __get_unclaimed_buffer(c);
968
969 if (!b)
970 return;
971
972 __free_buffer_wake(b);
973 cond_resched();
974 }
975
976 if (c->n_buffers[LIST_DIRTY] > threshold_buffers)
977 __write_dirty_buffers_async(c, 1, write_list);
978 }
979
980 /*----------------------------------------------------------------
981 * Getting a buffer
982 *--------------------------------------------------------------*/
983
984 static struct dm_buffer *__bufio_new(struct dm_bufio_client *c, sector_t block,
985 enum new_flag nf, int *need_submit,
986 struct list_head *write_list)
987 {
988 struct dm_buffer *b, *new_b = NULL;
989
990 *need_submit = 0;
991
992 b = __find(c, block);
993 if (b)
994 goto found_buffer;
995
996 if (nf == NF_GET)
997 return NULL;
998
999 new_b = __alloc_buffer_wait(c, nf);
1000 if (!new_b)
1001 return NULL;
1002
1003 /*
1004 * We've had a period where the mutex was unlocked, so need to
1005 * recheck the hash table.
1006 */
1007 b = __find(c, block);
1008 if (b) {
1009 __free_buffer_wake(new_b);
1010 goto found_buffer;
1011 }
1012
1013 __check_watermark(c, write_list);
1014
1015 b = new_b;
1016 b->hold_count = 1;
1017 b->read_error = 0;
1018 b->write_error = 0;
1019 __link_buffer(b, block, LIST_CLEAN);
1020
1021 if (nf == NF_FRESH) {
1022 b->state = 0;
1023 return b;
1024 }
1025
1026 b->state = 1 << B_READING;
1027 *need_submit = 1;
1028
1029 return b;
1030
1031 found_buffer:
1032 if (nf == NF_PREFETCH)
1033 return NULL;
1034 /*
1035 * Note: it is essential that we don't wait for the buffer to be
1036 * read if dm_bufio_get function is used. Both dm_bufio_get and
1037 * dm_bufio_prefetch can be used in the driver request routine.
1038 * If the user called both dm_bufio_prefetch and dm_bufio_get on
1039 * the same buffer, it would deadlock if we waited.
1040 */
1041 if (nf == NF_GET && unlikely(test_bit(B_READING, &b->state)))
1042 return NULL;
1043
1044 b->hold_count++;
1045 __relink_lru(b, test_bit(B_DIRTY, &b->state) ||
1046 test_bit(B_WRITING, &b->state));
1047 return b;
1048 }
1049
1050 /*
1051 * The endio routine for reading: set the error, clear the bit and wake up
1052 * anyone waiting on the buffer.
1053 */
1054 static void read_endio(struct bio *bio)
1055 {
1056 struct dm_buffer *b = container_of(bio, struct dm_buffer, bio);
1057
1058 b->read_error = bio->bi_error;
1059
1060 BUG_ON(!test_bit(B_READING, &b->state));
1061
1062 smp_mb__before_atomic();
1063 clear_bit(B_READING, &b->state);
1064 smp_mb__after_atomic();
1065
1066 wake_up_bit(&b->state, B_READING);
1067 }
1068
1069 /*
1070 * A common routine for dm_bufio_new and dm_bufio_read. Operation of these
1071 * functions is similar except that dm_bufio_new doesn't read the
1072 * buffer from the disk (assuming that the caller overwrites all the data
1073 * and uses dm_bufio_mark_buffer_dirty to write new data back).
1074 */
1075 static void *new_read(struct dm_bufio_client *c, sector_t block,
1076 enum new_flag nf, struct dm_buffer **bp)
1077 {
1078 int need_submit;
1079 struct dm_buffer *b;
1080
1081 LIST_HEAD(write_list);
1082
1083 dm_bufio_lock(c);
1084 b = __bufio_new(c, block, nf, &need_submit, &write_list);
1085 #ifdef CONFIG_DM_DEBUG_BLOCK_STACK_TRACING
1086 if (b && b->hold_count == 1)
1087 buffer_record_stack(b);
1088 #endif
1089 dm_bufio_unlock(c);
1090
1091 __flush_write_list(&write_list);
1092
1093 if (!b)
1094 return NULL;
1095
1096 if (need_submit)
1097 submit_io(b, READ, b->block, read_endio);
1098
1099 wait_on_bit_io(&b->state, B_READING, TASK_UNINTERRUPTIBLE);
1100
1101 if (b->read_error) {
1102 int error = b->read_error;
1103
1104 dm_bufio_release(b);
1105
1106 return ERR_PTR(error);
1107 }
1108
1109 *bp = b;
1110
1111 return b->data;
1112 }
1113
1114 void *dm_bufio_get(struct dm_bufio_client *c, sector_t block,
1115 struct dm_buffer **bp)
1116 {
1117 return new_read(c, block, NF_GET, bp);
1118 }
1119 EXPORT_SYMBOL_GPL(dm_bufio_get);
1120
1121 void *dm_bufio_read(struct dm_bufio_client *c, sector_t block,
1122 struct dm_buffer **bp)
1123 {
1124 BUG_ON(dm_bufio_in_request());
1125
1126 return new_read(c, block, NF_READ, bp);
1127 }
1128 EXPORT_SYMBOL_GPL(dm_bufio_read);
1129
1130 void *dm_bufio_new(struct dm_bufio_client *c, sector_t block,
1131 struct dm_buffer **bp)
1132 {
1133 BUG_ON(dm_bufio_in_request());
1134
1135 return new_read(c, block, NF_FRESH, bp);
1136 }
1137 EXPORT_SYMBOL_GPL(dm_bufio_new);
1138
1139 void dm_bufio_prefetch(struct dm_bufio_client *c,
1140 sector_t block, unsigned n_blocks)
1141 {
1142 struct blk_plug plug;
1143
1144 LIST_HEAD(write_list);
1145
1146 BUG_ON(dm_bufio_in_request());
1147
1148 blk_start_plug(&plug);
1149 dm_bufio_lock(c);
1150
1151 for (; n_blocks--; block++) {
1152 int need_submit;
1153 struct dm_buffer *b;
1154 b = __bufio_new(c, block, NF_PREFETCH, &need_submit,
1155 &write_list);
1156 if (unlikely(!list_empty(&write_list))) {
1157 dm_bufio_unlock(c);
1158 blk_finish_plug(&plug);
1159 __flush_write_list(&write_list);
1160 blk_start_plug(&plug);
1161 dm_bufio_lock(c);
1162 }
1163 if (unlikely(b != NULL)) {
1164 dm_bufio_unlock(c);
1165
1166 if (need_submit)
1167 submit_io(b, READ, b->block, read_endio);
1168 dm_bufio_release(b);
1169
1170 cond_resched();
1171
1172 if (!n_blocks)
1173 goto flush_plug;
1174 dm_bufio_lock(c);
1175 }
1176 }
1177
1178 dm_bufio_unlock(c);
1179
1180 flush_plug:
1181 blk_finish_plug(&plug);
1182 }
1183 EXPORT_SYMBOL_GPL(dm_bufio_prefetch);
1184
1185 void dm_bufio_release(struct dm_buffer *b)
1186 {
1187 struct dm_bufio_client *c = b->c;
1188
1189 dm_bufio_lock(c);
1190
1191 BUG_ON(!b->hold_count);
1192
1193 b->hold_count--;
1194 if (!b->hold_count) {
1195 wake_up(&c->free_buffer_wait);
1196
1197 /*
1198 * If there were errors on the buffer, and the buffer is not
1199 * to be written, free the buffer. There is no point in caching
1200 * invalid buffer.
1201 */
1202 if ((b->read_error || b->write_error) &&
1203 !test_bit(B_READING, &b->state) &&
1204 !test_bit(B_WRITING, &b->state) &&
1205 !test_bit(B_DIRTY, &b->state)) {
1206 __unlink_buffer(b);
1207 __free_buffer_wake(b);
1208 }
1209 }
1210
1211 dm_bufio_unlock(c);
1212 }
1213 EXPORT_SYMBOL_GPL(dm_bufio_release);
1214
1215 void dm_bufio_mark_buffer_dirty(struct dm_buffer *b)
1216 {
1217 struct dm_bufio_client *c = b->c;
1218
1219 dm_bufio_lock(c);
1220
1221 BUG_ON(test_bit(B_READING, &b->state));
1222
1223 if (!test_and_set_bit(B_DIRTY, &b->state))
1224 __relink_lru(b, LIST_DIRTY);
1225
1226 dm_bufio_unlock(c);
1227 }
1228 EXPORT_SYMBOL_GPL(dm_bufio_mark_buffer_dirty);
1229
1230 void dm_bufio_write_dirty_buffers_async(struct dm_bufio_client *c)
1231 {
1232 LIST_HEAD(write_list);
1233
1234 BUG_ON(dm_bufio_in_request());
1235
1236 dm_bufio_lock(c);
1237 __write_dirty_buffers_async(c, 0, &write_list);
1238 dm_bufio_unlock(c);
1239 __flush_write_list(&write_list);
1240 }
1241 EXPORT_SYMBOL_GPL(dm_bufio_write_dirty_buffers_async);
1242
1243 /*
1244 * For performance, it is essential that the buffers are written asynchronously
1245 * and simultaneously (so that the block layer can merge the writes) and then
1246 * waited upon.
1247 *
1248 * Finally, we flush hardware disk cache.
1249 */
1250 int dm_bufio_write_dirty_buffers(struct dm_bufio_client *c)
1251 {
1252 int a, f;
1253 unsigned long buffers_processed = 0;
1254 struct dm_buffer *b, *tmp;
1255
1256 LIST_HEAD(write_list);
1257
1258 dm_bufio_lock(c);
1259 __write_dirty_buffers_async(c, 0, &write_list);
1260 dm_bufio_unlock(c);
1261 __flush_write_list(&write_list);
1262 dm_bufio_lock(c);
1263
1264 again:
1265 list_for_each_entry_safe_reverse(b, tmp, &c->lru[LIST_DIRTY], lru_list) {
1266 int dropped_lock = 0;
1267
1268 if (buffers_processed < c->n_buffers[LIST_DIRTY])
1269 buffers_processed++;
1270
1271 BUG_ON(test_bit(B_READING, &b->state));
1272
1273 if (test_bit(B_WRITING, &b->state)) {
1274 if (buffers_processed < c->n_buffers[LIST_DIRTY]) {
1275 dropped_lock = 1;
1276 b->hold_count++;
1277 dm_bufio_unlock(c);
1278 wait_on_bit_io(&b->state, B_WRITING,
1279 TASK_UNINTERRUPTIBLE);
1280 dm_bufio_lock(c);
1281 b->hold_count--;
1282 } else
1283 wait_on_bit_io(&b->state, B_WRITING,
1284 TASK_UNINTERRUPTIBLE);
1285 }
1286
1287 if (!test_bit(B_DIRTY, &b->state) &&
1288 !test_bit(B_WRITING, &b->state))
1289 __relink_lru(b, LIST_CLEAN);
1290
1291 cond_resched();
1292
1293 /*
1294 * If we dropped the lock, the list is no longer consistent,
1295 * so we must restart the search.
1296 *
1297 * In the most common case, the buffer just processed is
1298 * relinked to the clean list, so we won't loop scanning the
1299 * same buffer again and again.
1300 *
1301 * This may livelock if there is another thread simultaneously
1302 * dirtying buffers, so we count the number of buffers walked
1303 * and if it exceeds the total number of buffers, it means that
1304 * someone is doing some writes simultaneously with us. In
1305 * this case, stop, dropping the lock.
1306 */
1307 if (dropped_lock)
1308 goto again;
1309 }
1310 wake_up(&c->free_buffer_wait);
1311 dm_bufio_unlock(c);
1312
1313 a = xchg(&c->async_write_error, 0);
1314 f = dm_bufio_issue_flush(c);
1315 if (a)
1316 return a;
1317
1318 return f;
1319 }
1320 EXPORT_SYMBOL_GPL(dm_bufio_write_dirty_buffers);
1321
1322 /*
1323 * Use dm-io to send and empty barrier flush the device.
1324 */
1325 int dm_bufio_issue_flush(struct dm_bufio_client *c)
1326 {
1327 struct dm_io_request io_req = {
1328 .bi_op = REQ_OP_WRITE,
1329 .bi_op_flags = REQ_PREFLUSH,
1330 .mem.type = DM_IO_KMEM,
1331 .mem.ptr.addr = NULL,
1332 .client = c->dm_io,
1333 };
1334 struct dm_io_region io_reg = {
1335 .bdev = c->bdev,
1336 .sector = 0,
1337 .count = 0,
1338 };
1339
1340 BUG_ON(dm_bufio_in_request());
1341
1342 return dm_io(&io_req, 1, &io_reg, NULL);
1343 }
1344 EXPORT_SYMBOL_GPL(dm_bufio_issue_flush);
1345
1346 /*
1347 * We first delete any other buffer that may be at that new location.
1348 *
1349 * Then, we write the buffer to the original location if it was dirty.
1350 *
1351 * Then, if we are the only one who is holding the buffer, relink the buffer
1352 * in the hash queue for the new location.
1353 *
1354 * If there was someone else holding the buffer, we write it to the new
1355 * location but not relink it, because that other user needs to have the buffer
1356 * at the same place.
1357 */
1358 void dm_bufio_release_move(struct dm_buffer *b, sector_t new_block)
1359 {
1360 struct dm_bufio_client *c = b->c;
1361 struct dm_buffer *new;
1362
1363 BUG_ON(dm_bufio_in_request());
1364
1365 dm_bufio_lock(c);
1366
1367 retry:
1368 new = __find(c, new_block);
1369 if (new) {
1370 if (new->hold_count) {
1371 __wait_for_free_buffer(c);
1372 goto retry;
1373 }
1374
1375 /*
1376 * FIXME: Is there any point waiting for a write that's going
1377 * to be overwritten in a bit?
1378 */
1379 __make_buffer_clean(new);
1380 __unlink_buffer(new);
1381 __free_buffer_wake(new);
1382 }
1383
1384 BUG_ON(!b->hold_count);
1385 BUG_ON(test_bit(B_READING, &b->state));
1386
1387 __write_dirty_buffer(b, NULL);
1388 if (b->hold_count == 1) {
1389 wait_on_bit_io(&b->state, B_WRITING,
1390 TASK_UNINTERRUPTIBLE);
1391 set_bit(B_DIRTY, &b->state);
1392 __unlink_buffer(b);
1393 __link_buffer(b, new_block, LIST_DIRTY);
1394 } else {
1395 sector_t old_block;
1396 wait_on_bit_lock_io(&b->state, B_WRITING,
1397 TASK_UNINTERRUPTIBLE);
1398 /*
1399 * Relink buffer to "new_block" so that write_callback
1400 * sees "new_block" as a block number.
1401 * After the write, link the buffer back to old_block.
1402 * All this must be done in bufio lock, so that block number
1403 * change isn't visible to other threads.
1404 */
1405 old_block = b->block;
1406 __unlink_buffer(b);
1407 __link_buffer(b, new_block, b->list_mode);
1408 submit_io(b, WRITE, new_block, write_endio);
1409 wait_on_bit_io(&b->state, B_WRITING,
1410 TASK_UNINTERRUPTIBLE);
1411 __unlink_buffer(b);
1412 __link_buffer(b, old_block, b->list_mode);
1413 }
1414
1415 dm_bufio_unlock(c);
1416 dm_bufio_release(b);
1417 }
1418 EXPORT_SYMBOL_GPL(dm_bufio_release_move);
1419
1420 /*
1421 * Free the given buffer.
1422 *
1423 * This is just a hint, if the buffer is in use or dirty, this function
1424 * does nothing.
1425 */
1426 void dm_bufio_forget(struct dm_bufio_client *c, sector_t block)
1427 {
1428 struct dm_buffer *b;
1429
1430 dm_bufio_lock(c);
1431
1432 b = __find(c, block);
1433 if (b && likely(!b->hold_count) && likely(!b->state)) {
1434 __unlink_buffer(b);
1435 __free_buffer_wake(b);
1436 }
1437
1438 dm_bufio_unlock(c);
1439 }
1440 EXPORT_SYMBOL(dm_bufio_forget);
1441
1442 void dm_bufio_set_minimum_buffers(struct dm_bufio_client *c, unsigned n)
1443 {
1444 c->minimum_buffers = n;
1445 }
1446 EXPORT_SYMBOL(dm_bufio_set_minimum_buffers);
1447
1448 unsigned dm_bufio_get_block_size(struct dm_bufio_client *c)
1449 {
1450 return c->block_size;
1451 }
1452 EXPORT_SYMBOL_GPL(dm_bufio_get_block_size);
1453
1454 sector_t dm_bufio_get_device_size(struct dm_bufio_client *c)
1455 {
1456 return i_size_read(c->bdev->bd_inode) >>
1457 (SECTOR_SHIFT + c->sectors_per_block_bits);
1458 }
1459 EXPORT_SYMBOL_GPL(dm_bufio_get_device_size);
1460
1461 sector_t dm_bufio_get_block_number(struct dm_buffer *b)
1462 {
1463 return b->block;
1464 }
1465 EXPORT_SYMBOL_GPL(dm_bufio_get_block_number);
1466
1467 void *dm_bufio_get_block_data(struct dm_buffer *b)
1468 {
1469 return b->data;
1470 }
1471 EXPORT_SYMBOL_GPL(dm_bufio_get_block_data);
1472
1473 void *dm_bufio_get_aux_data(struct dm_buffer *b)
1474 {
1475 return b + 1;
1476 }
1477 EXPORT_SYMBOL_GPL(dm_bufio_get_aux_data);
1478
1479 struct dm_bufio_client *dm_bufio_get_client(struct dm_buffer *b)
1480 {
1481 return b->c;
1482 }
1483 EXPORT_SYMBOL_GPL(dm_bufio_get_client);
1484
1485 static void drop_buffers(struct dm_bufio_client *c)
1486 {
1487 struct dm_buffer *b;
1488 int i;
1489 bool warned = false;
1490
1491 BUG_ON(dm_bufio_in_request());
1492
1493 /*
1494 * An optimization so that the buffers are not written one-by-one.
1495 */
1496 dm_bufio_write_dirty_buffers_async(c);
1497
1498 dm_bufio_lock(c);
1499
1500 while ((b = __get_unclaimed_buffer(c)))
1501 __free_buffer_wake(b);
1502
1503 for (i = 0; i < LIST_SIZE; i++)
1504 list_for_each_entry(b, &c->lru[i], lru_list) {
1505 WARN_ON(!warned);
1506 warned = true;
1507 DMERR("leaked buffer %llx, hold count %u, list %d",
1508 (unsigned long long)b->block, b->hold_count, i);
1509 #ifdef CONFIG_DM_DEBUG_BLOCK_STACK_TRACING
1510 print_stack_trace(&b->stack_trace, 1);
1511 b->hold_count = 0; /* mark unclaimed to avoid BUG_ON below */
1512 #endif
1513 }
1514
1515 #ifdef CONFIG_DM_DEBUG_BLOCK_STACK_TRACING
1516 while ((b = __get_unclaimed_buffer(c)))
1517 __free_buffer_wake(b);
1518 #endif
1519
1520 for (i = 0; i < LIST_SIZE; i++)
1521 BUG_ON(!list_empty(&c->lru[i]));
1522
1523 dm_bufio_unlock(c);
1524 }
1525
1526 /*
1527 * We may not be able to evict this buffer if IO pending or the client
1528 * is still using it. Caller is expected to know buffer is too old.
1529 *
1530 * And if GFP_NOFS is used, we must not do any I/O because we hold
1531 * dm_bufio_clients_lock and we would risk deadlock if the I/O gets
1532 * rerouted to different bufio client.
1533 */
1534 static bool __try_evict_buffer(struct dm_buffer *b, gfp_t gfp)
1535 {
1536 if (!(gfp & __GFP_FS)) {
1537 if (test_bit(B_READING, &b->state) ||
1538 test_bit(B_WRITING, &b->state) ||
1539 test_bit(B_DIRTY, &b->state))
1540 return false;
1541 }
1542
1543 if (b->hold_count)
1544 return false;
1545
1546 __make_buffer_clean(b);
1547 __unlink_buffer(b);
1548 __free_buffer_wake(b);
1549
1550 return true;
1551 }
1552
1553 static unsigned get_retain_buffers(struct dm_bufio_client *c)
1554 {
1555 unsigned retain_bytes = ACCESS_ONCE(dm_bufio_retain_bytes);
1556 return retain_bytes / c->block_size;
1557 }
1558
1559 static unsigned long __scan(struct dm_bufio_client *c, unsigned long nr_to_scan,
1560 gfp_t gfp_mask)
1561 {
1562 int l;
1563 struct dm_buffer *b, *tmp;
1564 unsigned long freed = 0;
1565 unsigned long count = nr_to_scan;
1566 unsigned retain_target = get_retain_buffers(c);
1567
1568 for (l = 0; l < LIST_SIZE; l++) {
1569 list_for_each_entry_safe_reverse(b, tmp, &c->lru[l], lru_list) {
1570 if (__try_evict_buffer(b, gfp_mask))
1571 freed++;
1572 if (!--nr_to_scan || ((count - freed) <= retain_target))
1573 return freed;
1574 cond_resched();
1575 }
1576 }
1577 return freed;
1578 }
1579
1580 static unsigned long
1581 dm_bufio_shrink_scan(struct shrinker *shrink, struct shrink_control *sc)
1582 {
1583 struct dm_bufio_client *c;
1584 unsigned long freed;
1585
1586 c = container_of(shrink, struct dm_bufio_client, shrinker);
1587 if (sc->gfp_mask & __GFP_FS)
1588 dm_bufio_lock(c);
1589 else if (!dm_bufio_trylock(c))
1590 return SHRINK_STOP;
1591
1592 freed = __scan(c, sc->nr_to_scan, sc->gfp_mask);
1593 dm_bufio_unlock(c);
1594 return freed;
1595 }
1596
1597 static unsigned long
1598 dm_bufio_shrink_count(struct shrinker *shrink, struct shrink_control *sc)
1599 {
1600 struct dm_bufio_client *c = container_of(shrink, struct dm_bufio_client, shrinker);
1601
1602 return ACCESS_ONCE(c->n_buffers[LIST_CLEAN]) + ACCESS_ONCE(c->n_buffers[LIST_DIRTY]);
1603 }
1604
1605 /*
1606 * Create the buffering interface
1607 */
1608 struct dm_bufio_client *dm_bufio_client_create(struct block_device *bdev, unsigned block_size,
1609 unsigned reserved_buffers, unsigned aux_size,
1610 void (*alloc_callback)(struct dm_buffer *),
1611 void (*write_callback)(struct dm_buffer *))
1612 {
1613 int r;
1614 struct dm_bufio_client *c;
1615 unsigned i;
1616
1617 BUG_ON(block_size < 1 << SECTOR_SHIFT ||
1618 (block_size & (block_size - 1)));
1619
1620 c = kzalloc(sizeof(*c), GFP_KERNEL);
1621 if (!c) {
1622 r = -ENOMEM;
1623 goto bad_client;
1624 }
1625 c->buffer_tree = RB_ROOT;
1626
1627 c->bdev = bdev;
1628 c->block_size = block_size;
1629 c->sectors_per_block_bits = __ffs(block_size) - SECTOR_SHIFT;
1630 c->pages_per_block_bits = (__ffs(block_size) >= PAGE_SHIFT) ?
1631 __ffs(block_size) - PAGE_SHIFT : 0;
1632 c->blocks_per_page_bits = (__ffs(block_size) < PAGE_SHIFT ?
1633 PAGE_SHIFT - __ffs(block_size) : 0);
1634
1635 c->aux_size = aux_size;
1636 c->alloc_callback = alloc_callback;
1637 c->write_callback = write_callback;
1638
1639 for (i = 0; i < LIST_SIZE; i++) {
1640 INIT_LIST_HEAD(&c->lru[i]);
1641 c->n_buffers[i] = 0;
1642 }
1643
1644 mutex_init(&c->lock);
1645 INIT_LIST_HEAD(&c->reserved_buffers);
1646 c->need_reserved_buffers = reserved_buffers;
1647
1648 c->minimum_buffers = DM_BUFIO_MIN_BUFFERS;
1649
1650 init_waitqueue_head(&c->free_buffer_wait);
1651 c->async_write_error = 0;
1652
1653 c->dm_io = dm_io_client_create();
1654 if (IS_ERR(c->dm_io)) {
1655 r = PTR_ERR(c->dm_io);
1656 goto bad_dm_io;
1657 }
1658
1659 mutex_lock(&dm_bufio_clients_lock);
1660 if (c->blocks_per_page_bits) {
1661 if (!DM_BUFIO_CACHE_NAME(c)) {
1662 DM_BUFIO_CACHE_NAME(c) = kasprintf(GFP_KERNEL, "dm_bufio_cache-%u", c->block_size);
1663 if (!DM_BUFIO_CACHE_NAME(c)) {
1664 r = -ENOMEM;
1665 mutex_unlock(&dm_bufio_clients_lock);
1666 goto bad_cache;
1667 }
1668 }
1669
1670 if (!DM_BUFIO_CACHE(c)) {
1671 DM_BUFIO_CACHE(c) = kmem_cache_create(DM_BUFIO_CACHE_NAME(c),
1672 c->block_size,
1673 c->block_size, 0, NULL);
1674 if (!DM_BUFIO_CACHE(c)) {
1675 r = -ENOMEM;
1676 mutex_unlock(&dm_bufio_clients_lock);
1677 goto bad_cache;
1678 }
1679 }
1680 }
1681 mutex_unlock(&dm_bufio_clients_lock);
1682
1683 while (c->need_reserved_buffers) {
1684 struct dm_buffer *b = alloc_buffer(c, GFP_KERNEL);
1685
1686 if (!b) {
1687 r = -ENOMEM;
1688 goto bad_buffer;
1689 }
1690 __free_buffer_wake(b);
1691 }
1692
1693 mutex_lock(&dm_bufio_clients_lock);
1694 dm_bufio_client_count++;
1695 list_add(&c->client_list, &dm_bufio_all_clients);
1696 __cache_size_refresh();
1697 mutex_unlock(&dm_bufio_clients_lock);
1698
1699 c->shrinker.count_objects = dm_bufio_shrink_count;
1700 c->shrinker.scan_objects = dm_bufio_shrink_scan;
1701 c->shrinker.seeks = 1;
1702 c->shrinker.batch = 0;
1703 register_shrinker(&c->shrinker);
1704
1705 return c;
1706
1707 bad_buffer:
1708 bad_cache:
1709 while (!list_empty(&c->reserved_buffers)) {
1710 struct dm_buffer *b = list_entry(c->reserved_buffers.next,
1711 struct dm_buffer, lru_list);
1712 list_del(&b->lru_list);
1713 free_buffer(b);
1714 }
1715 dm_io_client_destroy(c->dm_io);
1716 bad_dm_io:
1717 kfree(c);
1718 bad_client:
1719 return ERR_PTR(r);
1720 }
1721 EXPORT_SYMBOL_GPL(dm_bufio_client_create);
1722
1723 /*
1724 * Free the buffering interface.
1725 * It is required that there are no references on any buffers.
1726 */
1727 void dm_bufio_client_destroy(struct dm_bufio_client *c)
1728 {
1729 unsigned i;
1730
1731 drop_buffers(c);
1732
1733 unregister_shrinker(&c->shrinker);
1734
1735 mutex_lock(&dm_bufio_clients_lock);
1736
1737 list_del(&c->client_list);
1738 dm_bufio_client_count--;
1739 __cache_size_refresh();
1740
1741 mutex_unlock(&dm_bufio_clients_lock);
1742
1743 BUG_ON(!RB_EMPTY_ROOT(&c->buffer_tree));
1744 BUG_ON(c->need_reserved_buffers);
1745
1746 while (!list_empty(&c->reserved_buffers)) {
1747 struct dm_buffer *b = list_entry(c->reserved_buffers.next,
1748 struct dm_buffer, lru_list);
1749 list_del(&b->lru_list);
1750 free_buffer(b);
1751 }
1752
1753 for (i = 0; i < LIST_SIZE; i++)
1754 if (c->n_buffers[i])
1755 DMERR("leaked buffer count %d: %ld", i, c->n_buffers[i]);
1756
1757 for (i = 0; i < LIST_SIZE; i++)
1758 BUG_ON(c->n_buffers[i]);
1759
1760 dm_io_client_destroy(c->dm_io);
1761 kfree(c);
1762 }
1763 EXPORT_SYMBOL_GPL(dm_bufio_client_destroy);
1764
1765 static unsigned get_max_age_hz(void)
1766 {
1767 unsigned max_age = ACCESS_ONCE(dm_bufio_max_age);
1768
1769 if (max_age > UINT_MAX / HZ)
1770 max_age = UINT_MAX / HZ;
1771
1772 return max_age * HZ;
1773 }
1774
1775 static bool older_than(struct dm_buffer *b, unsigned long age_hz)
1776 {
1777 return time_after_eq(jiffies, b->last_accessed + age_hz);
1778 }
1779
1780 static void __evict_old_buffers(struct dm_bufio_client *c, unsigned long age_hz)
1781 {
1782 struct dm_buffer *b, *tmp;
1783 unsigned retain_target = get_retain_buffers(c);
1784 unsigned count;
1785
1786 dm_bufio_lock(c);
1787
1788 count = c->n_buffers[LIST_CLEAN] + c->n_buffers[LIST_DIRTY];
1789 list_for_each_entry_safe_reverse(b, tmp, &c->lru[LIST_CLEAN], lru_list) {
1790 if (count <= retain_target)
1791 break;
1792
1793 if (!older_than(b, age_hz))
1794 break;
1795
1796 if (__try_evict_buffer(b, 0))
1797 count--;
1798
1799 cond_resched();
1800 }
1801
1802 dm_bufio_unlock(c);
1803 }
1804
1805 static void cleanup_old_buffers(void)
1806 {
1807 unsigned long max_age_hz = get_max_age_hz();
1808 struct dm_bufio_client *c;
1809
1810 mutex_lock(&dm_bufio_clients_lock);
1811
1812 list_for_each_entry(c, &dm_bufio_all_clients, client_list)
1813 __evict_old_buffers(c, max_age_hz);
1814
1815 mutex_unlock(&dm_bufio_clients_lock);
1816 }
1817
1818 static struct workqueue_struct *dm_bufio_wq;
1819 static struct delayed_work dm_bufio_work;
1820
1821 static void work_fn(struct work_struct *w)
1822 {
1823 cleanup_old_buffers();
1824
1825 queue_delayed_work(dm_bufio_wq, &dm_bufio_work,
1826 DM_BUFIO_WORK_TIMER_SECS * HZ);
1827 }
1828
1829 /*----------------------------------------------------------------
1830 * Module setup
1831 *--------------------------------------------------------------*/
1832
1833 /*
1834 * This is called only once for the whole dm_bufio module.
1835 * It initializes memory limit.
1836 */
1837 static int __init dm_bufio_init(void)
1838 {
1839 __u64 mem;
1840
1841 dm_bufio_allocated_kmem_cache = 0;
1842 dm_bufio_allocated_get_free_pages = 0;
1843 dm_bufio_allocated_vmalloc = 0;
1844 dm_bufio_current_allocated = 0;
1845
1846 memset(&dm_bufio_caches, 0, sizeof dm_bufio_caches);
1847 memset(&dm_bufio_cache_names, 0, sizeof dm_bufio_cache_names);
1848
1849 mem = (__u64)((totalram_pages - totalhigh_pages) *
1850 DM_BUFIO_MEMORY_PERCENT / 100) << PAGE_SHIFT;
1851
1852 if (mem > ULONG_MAX)
1853 mem = ULONG_MAX;
1854
1855 #ifdef CONFIG_MMU
1856 /*
1857 * Get the size of vmalloc space the same way as VMALLOC_TOTAL
1858 * in fs/proc/internal.h
1859 */
1860 if (mem > (VMALLOC_END - VMALLOC_START) * DM_BUFIO_VMALLOC_PERCENT / 100)
1861 mem = (VMALLOC_END - VMALLOC_START) * DM_BUFIO_VMALLOC_PERCENT / 100;
1862 #endif
1863
1864 dm_bufio_default_cache_size = mem;
1865
1866 mutex_lock(&dm_bufio_clients_lock);
1867 __cache_size_refresh();
1868 mutex_unlock(&dm_bufio_clients_lock);
1869
1870 dm_bufio_wq = alloc_workqueue("dm_bufio_cache", WQ_MEM_RECLAIM, 0);
1871 if (!dm_bufio_wq)
1872 return -ENOMEM;
1873
1874 INIT_DELAYED_WORK(&dm_bufio_work, work_fn);
1875 queue_delayed_work(dm_bufio_wq, &dm_bufio_work,
1876 DM_BUFIO_WORK_TIMER_SECS * HZ);
1877
1878 return 0;
1879 }
1880
1881 /*
1882 * This is called once when unloading the dm_bufio module.
1883 */
1884 static void __exit dm_bufio_exit(void)
1885 {
1886 int bug = 0;
1887 int i;
1888
1889 cancel_delayed_work_sync(&dm_bufio_work);
1890 destroy_workqueue(dm_bufio_wq);
1891
1892 for (i = 0; i < ARRAY_SIZE(dm_bufio_caches); i++)
1893 kmem_cache_destroy(dm_bufio_caches[i]);
1894
1895 for (i = 0; i < ARRAY_SIZE(dm_bufio_cache_names); i++)
1896 kfree(dm_bufio_cache_names[i]);
1897
1898 if (dm_bufio_client_count) {
1899 DMCRIT("%s: dm_bufio_client_count leaked: %d",
1900 __func__, dm_bufio_client_count);
1901 bug = 1;
1902 }
1903
1904 if (dm_bufio_current_allocated) {
1905 DMCRIT("%s: dm_bufio_current_allocated leaked: %lu",
1906 __func__, dm_bufio_current_allocated);
1907 bug = 1;
1908 }
1909
1910 if (dm_bufio_allocated_get_free_pages) {
1911 DMCRIT("%s: dm_bufio_allocated_get_free_pages leaked: %lu",
1912 __func__, dm_bufio_allocated_get_free_pages);
1913 bug = 1;
1914 }
1915
1916 if (dm_bufio_allocated_vmalloc) {
1917 DMCRIT("%s: dm_bufio_vmalloc leaked: %lu",
1918 __func__, dm_bufio_allocated_vmalloc);
1919 bug = 1;
1920 }
1921
1922 BUG_ON(bug);
1923 }
1924
1925 module_init(dm_bufio_init)
1926 module_exit(dm_bufio_exit)
1927
1928 module_param_named(max_cache_size_bytes, dm_bufio_cache_size, ulong, S_IRUGO | S_IWUSR);
1929 MODULE_PARM_DESC(max_cache_size_bytes, "Size of metadata cache");
1930
1931 module_param_named(max_age_seconds, dm_bufio_max_age, uint, S_IRUGO | S_IWUSR);
1932 MODULE_PARM_DESC(max_age_seconds, "Max age of a buffer in seconds");
1933
1934 module_param_named(retain_bytes, dm_bufio_retain_bytes, uint, S_IRUGO | S_IWUSR);
1935 MODULE_PARM_DESC(retain_bytes, "Try to keep at least this many bytes cached in memory");
1936
1937 module_param_named(peak_allocated_bytes, dm_bufio_peak_allocated, ulong, S_IRUGO | S_IWUSR);
1938 MODULE_PARM_DESC(peak_allocated_bytes, "Tracks the maximum allocated memory");
1939
1940 module_param_named(allocated_kmem_cache_bytes, dm_bufio_allocated_kmem_cache, ulong, S_IRUGO);
1941 MODULE_PARM_DESC(allocated_kmem_cache_bytes, "Memory allocated with kmem_cache_alloc");
1942
1943 module_param_named(allocated_get_free_pages_bytes, dm_bufio_allocated_get_free_pages, ulong, S_IRUGO);
1944 MODULE_PARM_DESC(allocated_get_free_pages_bytes, "Memory allocated with get_free_pages");
1945
1946 module_param_named(allocated_vmalloc_bytes, dm_bufio_allocated_vmalloc, ulong, S_IRUGO);
1947 MODULE_PARM_DESC(allocated_vmalloc_bytes, "Memory allocated with vmalloc");
1948
1949 module_param_named(current_allocated_bytes, dm_bufio_current_allocated, ulong, S_IRUGO);
1950 MODULE_PARM_DESC(current_allocated_bytes, "Memory currently used by the cache");
1951
1952 MODULE_AUTHOR("Mikulas Patocka <dm-devel@redhat.com>");
1953 MODULE_DESCRIPTION(DM_NAME " buffered I/O library");
1954 MODULE_LICENSE("GPL");