Merge branch 'linux-4.7' of git://github.com/skeggsb/linux into drm-fixes
[linux-2.6-block.git] / fs / btrfs / compression.c
CommitLineData
c8b97818
CM
1/*
2 * Copyright (C) 2008 Oracle. All rights reserved.
3 *
4 * This program is free software; you can redistribute it and/or
5 * modify it under the terms of the GNU General Public
6 * License v2 as published by the Free Software Foundation.
7 *
8 * This program is distributed in the hope that it will be useful,
9 * but WITHOUT ANY WARRANTY; without even the implied warranty of
10 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
11 * General Public License for more details.
12 *
13 * You should have received a copy of the GNU General Public
14 * License along with this program; if not, write to the
15 * Free Software Foundation, Inc., 59 Temple Place - Suite 330,
16 * Boston, MA 021110-1307, USA.
17 */
18
19#include <linux/kernel.h>
20#include <linux/bio.h>
21#include <linux/buffer_head.h>
22#include <linux/file.h>
23#include <linux/fs.h>
24#include <linux/pagemap.h>
25#include <linux/highmem.h>
26#include <linux/time.h>
27#include <linux/init.h>
28#include <linux/string.h>
c8b97818
CM
29#include <linux/backing-dev.h>
30#include <linux/mpage.h>
31#include <linux/swap.h>
32#include <linux/writeback.h>
33#include <linux/bit_spinlock.h>
5a0e3ad6 34#include <linux/slab.h>
c8b97818
CM
35#include "ctree.h"
36#include "disk-io.h"
37#include "transaction.h"
38#include "btrfs_inode.h"
39#include "volumes.h"
40#include "ordered-data.h"
c8b97818
CM
41#include "compression.h"
42#include "extent_io.h"
43#include "extent_map.h"
44
45struct compressed_bio {
46 /* number of bios pending for this compressed extent */
47 atomic_t pending_bios;
48
49 /* the pages with the compressed data on them */
50 struct page **compressed_pages;
51
52 /* inode that owns this data */
53 struct inode *inode;
54
55 /* starting offset in the inode for our pages */
56 u64 start;
57
58 /* number of bytes in the inode we're working on */
59 unsigned long len;
60
61 /* number of bytes on disk */
62 unsigned long compressed_len;
63
261507a0
LZ
64 /* the compression algorithm for this bio */
65 int compress_type;
66
c8b97818
CM
67 /* number of compressed pages in the array */
68 unsigned long nr_pages;
69
70 /* IO errors */
71 int errors;
d20f7043 72 int mirror_num;
c8b97818
CM
73
74 /* for reads, this is the bio we are copying the data into */
75 struct bio *orig_bio;
d20f7043
CM
76
77 /*
78 * the start of a variable length array of checksums only
79 * used by reads
80 */
81 u32 sums;
c8b97818
CM
82};
83
48a3b636
ES
84static int btrfs_decompress_biovec(int type, struct page **pages_in,
85 u64 disk_start, struct bio_vec *bvec,
86 int vcnt, size_t srclen);
87
d20f7043
CM
88static inline int compressed_bio_size(struct btrfs_root *root,
89 unsigned long disk_size)
90{
6c41761f
DS
91 u16 csum_size = btrfs_super_csum_size(root->fs_info->super_copy);
92
d20f7043 93 return sizeof(struct compressed_bio) +
ed6078f7 94 (DIV_ROUND_UP(disk_size, root->sectorsize)) * csum_size;
d20f7043
CM
95}
96
c8b97818
CM
97static struct bio *compressed_bio_alloc(struct block_device *bdev,
98 u64 first_byte, gfp_t gfp_flags)
99{
b54ffb73 100 return btrfs_bio_alloc(bdev, first_byte >> 9, BIO_MAX_PAGES, gfp_flags);
c8b97818
CM
101}
102
d20f7043
CM
103static int check_compressed_csum(struct inode *inode,
104 struct compressed_bio *cb,
105 u64 disk_start)
106{
107 int ret;
d20f7043
CM
108 struct page *page;
109 unsigned long i;
110 char *kaddr;
111 u32 csum;
112 u32 *cb_sum = &cb->sums;
113
6cbff00f 114 if (BTRFS_I(inode)->flags & BTRFS_INODE_NODATASUM)
d20f7043
CM
115 return 0;
116
117 for (i = 0; i < cb->nr_pages; i++) {
118 page = cb->compressed_pages[i];
119 csum = ~(u32)0;
120
7ac687d9 121 kaddr = kmap_atomic(page);
09cbfeaf 122 csum = btrfs_csum_data(kaddr, csum, PAGE_SIZE);
d20f7043 123 btrfs_csum_final(csum, (char *)&csum);
7ac687d9 124 kunmap_atomic(kaddr);
d20f7043
CM
125
126 if (csum != *cb_sum) {
efe120a0
FH
127 btrfs_info(BTRFS_I(inode)->root->fs_info,
128 "csum failed ino %llu extent %llu csum %u wanted %u mirror %d",
129 btrfs_ino(inode), disk_start, csum, *cb_sum,
130 cb->mirror_num);
d20f7043
CM
131 ret = -EIO;
132 goto fail;
133 }
134 cb_sum++;
135
136 }
137 ret = 0;
138fail:
139 return ret;
140}
141
c8b97818
CM
142/* when we finish reading compressed pages from the disk, we
143 * decompress them and then run the bio end_io routines on the
144 * decompressed pages (in the inode address space).
145 *
146 * This allows the checksumming and other IO error handling routines
147 * to work normally
148 *
149 * The compressed pages are freed here, and it must be run
150 * in process context
151 */
4246a0b6 152static void end_compressed_bio_read(struct bio *bio)
c8b97818 153{
c8b97818
CM
154 struct compressed_bio *cb = bio->bi_private;
155 struct inode *inode;
156 struct page *page;
157 unsigned long index;
158 int ret;
159
4246a0b6 160 if (bio->bi_error)
c8b97818
CM
161 cb->errors = 1;
162
163 /* if there are more bios still pending for this compressed
164 * extent, just exit
165 */
166 if (!atomic_dec_and_test(&cb->pending_bios))
167 goto out;
168
d20f7043 169 inode = cb->inode;
4f024f37
KO
170 ret = check_compressed_csum(inode, cb,
171 (u64)bio->bi_iter.bi_sector << 9);
d20f7043
CM
172 if (ret)
173 goto csum_failed;
174
c8b97818
CM
175 /* ok, we're the last bio for this extent, lets start
176 * the decompression.
177 */
261507a0
LZ
178 ret = btrfs_decompress_biovec(cb->compress_type,
179 cb->compressed_pages,
180 cb->start,
181 cb->orig_bio->bi_io_vec,
182 cb->orig_bio->bi_vcnt,
183 cb->compressed_len);
d20f7043 184csum_failed:
c8b97818
CM
185 if (ret)
186 cb->errors = 1;
187
188 /* release the compressed pages */
189 index = 0;
190 for (index = 0; index < cb->nr_pages; index++) {
191 page = cb->compressed_pages[index];
192 page->mapping = NULL;
09cbfeaf 193 put_page(page);
c8b97818
CM
194 }
195
196 /* do io completion on the original bio */
771ed689 197 if (cb->errors) {
c8b97818 198 bio_io_error(cb->orig_bio);
d20f7043 199 } else {
2c30c71b
KO
200 int i;
201 struct bio_vec *bvec;
d20f7043
CM
202
203 /*
204 * we have verified the checksum already, set page
205 * checked so the end_io handlers know about it
206 */
2c30c71b 207 bio_for_each_segment_all(bvec, cb->orig_bio, i)
d20f7043 208 SetPageChecked(bvec->bv_page);
2c30c71b 209
4246a0b6 210 bio_endio(cb->orig_bio);
d20f7043 211 }
c8b97818
CM
212
213 /* finally free the cb struct */
214 kfree(cb->compressed_pages);
215 kfree(cb);
216out:
217 bio_put(bio);
218}
219
220/*
221 * Clear the writeback bits on all of the file
222 * pages for a compressed write
223 */
7bdcefc1
FM
224static noinline void end_compressed_writeback(struct inode *inode,
225 const struct compressed_bio *cb)
c8b97818 226{
09cbfeaf
KS
227 unsigned long index = cb->start >> PAGE_SHIFT;
228 unsigned long end_index = (cb->start + cb->len - 1) >> PAGE_SHIFT;
c8b97818
CM
229 struct page *pages[16];
230 unsigned long nr_pages = end_index - index + 1;
231 int i;
232 int ret;
233
7bdcefc1
FM
234 if (cb->errors)
235 mapping_set_error(inode->i_mapping, -EIO);
236
d397712b 237 while (nr_pages > 0) {
c8b97818 238 ret = find_get_pages_contig(inode->i_mapping, index,
5b050f04
CM
239 min_t(unsigned long,
240 nr_pages, ARRAY_SIZE(pages)), pages);
c8b97818
CM
241 if (ret == 0) {
242 nr_pages -= 1;
243 index += 1;
244 continue;
245 }
246 for (i = 0; i < ret; i++) {
7bdcefc1
FM
247 if (cb->errors)
248 SetPageError(pages[i]);
c8b97818 249 end_page_writeback(pages[i]);
09cbfeaf 250 put_page(pages[i]);
c8b97818
CM
251 }
252 nr_pages -= ret;
253 index += ret;
254 }
255 /* the inode may be gone now */
c8b97818
CM
256}
257
258/*
259 * do the cleanup once all the compressed pages hit the disk.
260 * This will clear writeback on the file pages and free the compressed
261 * pages.
262 *
263 * This also calls the writeback end hooks for the file pages so that
264 * metadata and checksums can be updated in the file.
265 */
4246a0b6 266static void end_compressed_bio_write(struct bio *bio)
c8b97818
CM
267{
268 struct extent_io_tree *tree;
269 struct compressed_bio *cb = bio->bi_private;
270 struct inode *inode;
271 struct page *page;
272 unsigned long index;
273
4246a0b6 274 if (bio->bi_error)
c8b97818
CM
275 cb->errors = 1;
276
277 /* if there are more bios still pending for this compressed
278 * extent, just exit
279 */
280 if (!atomic_dec_and_test(&cb->pending_bios))
281 goto out;
282
283 /* ok, we're the last bio for this extent, step one is to
284 * call back into the FS and do all the end_io operations
285 */
286 inode = cb->inode;
287 tree = &BTRFS_I(inode)->io_tree;
70b99e69 288 cb->compressed_pages[0]->mapping = cb->inode->i_mapping;
c8b97818
CM
289 tree->ops->writepage_end_io_hook(cb->compressed_pages[0],
290 cb->start,
291 cb->start + cb->len - 1,
7bdcefc1 292 NULL,
4246a0b6 293 bio->bi_error ? 0 : 1);
70b99e69 294 cb->compressed_pages[0]->mapping = NULL;
c8b97818 295
7bdcefc1 296 end_compressed_writeback(inode, cb);
c8b97818
CM
297 /* note, our inode could be gone now */
298
299 /*
300 * release the compressed pages, these came from alloc_page and
301 * are not attached to the inode at all
302 */
303 index = 0;
304 for (index = 0; index < cb->nr_pages; index++) {
305 page = cb->compressed_pages[index];
306 page->mapping = NULL;
09cbfeaf 307 put_page(page);
c8b97818
CM
308 }
309
310 /* finally free the cb struct */
311 kfree(cb->compressed_pages);
312 kfree(cb);
313out:
314 bio_put(bio);
315}
316
317/*
318 * worker function to build and submit bios for previously compressed pages.
319 * The corresponding pages in the inode should be marked for writeback
320 * and the compressed pages should have a reference on them for dropping
321 * when the IO is complete.
322 *
323 * This also checksums the file bytes and gets things ready for
324 * the end io hooks.
325 */
326int btrfs_submit_compressed_write(struct inode *inode, u64 start,
327 unsigned long len, u64 disk_start,
328 unsigned long compressed_len,
329 struct page **compressed_pages,
330 unsigned long nr_pages)
331{
332 struct bio *bio = NULL;
333 struct btrfs_root *root = BTRFS_I(inode)->root;
334 struct compressed_bio *cb;
335 unsigned long bytes_left;
336 struct extent_io_tree *io_tree = &BTRFS_I(inode)->io_tree;
306e16ce 337 int pg_index = 0;
c8b97818
CM
338 struct page *page;
339 u64 first_byte = disk_start;
340 struct block_device *bdev;
341 int ret;
e55179b3 342 int skip_sum = BTRFS_I(inode)->flags & BTRFS_INODE_NODATASUM;
c8b97818 343
09cbfeaf 344 WARN_ON(start & ((u64)PAGE_SIZE - 1));
d20f7043 345 cb = kmalloc(compressed_bio_size(root, compressed_len), GFP_NOFS);
dac97e51
YS
346 if (!cb)
347 return -ENOMEM;
c8b97818
CM
348 atomic_set(&cb->pending_bios, 0);
349 cb->errors = 0;
350 cb->inode = inode;
351 cb->start = start;
352 cb->len = len;
d20f7043 353 cb->mirror_num = 0;
c8b97818
CM
354 cb->compressed_pages = compressed_pages;
355 cb->compressed_len = compressed_len;
356 cb->orig_bio = NULL;
357 cb->nr_pages = nr_pages;
358
359 bdev = BTRFS_I(inode)->root->fs_info->fs_devices->latest_bdev;
360
c8b97818 361 bio = compressed_bio_alloc(bdev, first_byte, GFP_NOFS);
67871254 362 if (!bio) {
dac97e51
YS
363 kfree(cb);
364 return -ENOMEM;
365 }
c8b97818
CM
366 bio->bi_private = cb;
367 bio->bi_end_io = end_compressed_bio_write;
368 atomic_inc(&cb->pending_bios);
369
370 /* create and submit bios for the compressed pages */
371 bytes_left = compressed_len;
306e16ce
DS
372 for (pg_index = 0; pg_index < cb->nr_pages; pg_index++) {
373 page = compressed_pages[pg_index];
c8b97818 374 page->mapping = inode->i_mapping;
4f024f37 375 if (bio->bi_iter.bi_size)
64a16701 376 ret = io_tree->ops->merge_bio_hook(WRITE, page, 0,
09cbfeaf 377 PAGE_SIZE,
c8b97818
CM
378 bio, 0);
379 else
380 ret = 0;
381
70b99e69 382 page->mapping = NULL;
09cbfeaf
KS
383 if (ret || bio_add_page(bio, page, PAGE_SIZE, 0) <
384 PAGE_SIZE) {
c8b97818
CM
385 bio_get(bio);
386
af09abfe
CM
387 /*
388 * inc the count before we submit the bio so
389 * we know the end IO handler won't happen before
390 * we inc the count. Otherwise, the cb might get
391 * freed before we're done setting it up
392 */
393 atomic_inc(&cb->pending_bios);
bfebd8b5
DS
394 ret = btrfs_bio_wq_end_io(root->fs_info, bio,
395 BTRFS_WQ_ENDIO_DATA);
79787eaa 396 BUG_ON(ret); /* -ENOMEM */
c8b97818 397
e55179b3
LZ
398 if (!skip_sum) {
399 ret = btrfs_csum_one_bio(root, inode, bio,
400 start, 1);
79787eaa 401 BUG_ON(ret); /* -ENOMEM */
e55179b3 402 }
d20f7043 403
c8b97818 404 ret = btrfs_map_bio(root, WRITE, bio, 0, 1);
79787eaa 405 BUG_ON(ret); /* -ENOMEM */
c8b97818
CM
406
407 bio_put(bio);
408
409 bio = compressed_bio_alloc(bdev, first_byte, GFP_NOFS);
e627ee7b 410 BUG_ON(!bio);
c8b97818
CM
411 bio->bi_private = cb;
412 bio->bi_end_io = end_compressed_bio_write;
09cbfeaf 413 bio_add_page(bio, page, PAGE_SIZE, 0);
c8b97818 414 }
09cbfeaf 415 if (bytes_left < PAGE_SIZE) {
efe120a0
FH
416 btrfs_info(BTRFS_I(inode)->root->fs_info,
417 "bytes left %lu compress len %lu nr %lu",
cfbc246e
CM
418 bytes_left, cb->compressed_len, cb->nr_pages);
419 }
09cbfeaf
KS
420 bytes_left -= PAGE_SIZE;
421 first_byte += PAGE_SIZE;
771ed689 422 cond_resched();
c8b97818
CM
423 }
424 bio_get(bio);
425
bfebd8b5 426 ret = btrfs_bio_wq_end_io(root->fs_info, bio, BTRFS_WQ_ENDIO_DATA);
79787eaa 427 BUG_ON(ret); /* -ENOMEM */
c8b97818 428
e55179b3
LZ
429 if (!skip_sum) {
430 ret = btrfs_csum_one_bio(root, inode, bio, start, 1);
79787eaa 431 BUG_ON(ret); /* -ENOMEM */
e55179b3 432 }
d20f7043 433
c8b97818 434 ret = btrfs_map_bio(root, WRITE, bio, 0, 1);
79787eaa 435 BUG_ON(ret); /* -ENOMEM */
c8b97818
CM
436
437 bio_put(bio);
438 return 0;
439}
440
771ed689
CM
441static noinline int add_ra_bio_pages(struct inode *inode,
442 u64 compressed_end,
443 struct compressed_bio *cb)
444{
445 unsigned long end_index;
306e16ce 446 unsigned long pg_index;
771ed689
CM
447 u64 last_offset;
448 u64 isize = i_size_read(inode);
449 int ret;
450 struct page *page;
451 unsigned long nr_pages = 0;
452 struct extent_map *em;
453 struct address_space *mapping = inode->i_mapping;
771ed689
CM
454 struct extent_map_tree *em_tree;
455 struct extent_io_tree *tree;
456 u64 end;
457 int misses = 0;
458
459 page = cb->orig_bio->bi_io_vec[cb->orig_bio->bi_vcnt - 1].bv_page;
09cbfeaf 460 last_offset = (page_offset(page) + PAGE_SIZE);
771ed689
CM
461 em_tree = &BTRFS_I(inode)->extent_tree;
462 tree = &BTRFS_I(inode)->io_tree;
463
464 if (isize == 0)
465 return 0;
466
09cbfeaf 467 end_index = (i_size_read(inode) - 1) >> PAGE_SHIFT;
771ed689 468
d397712b 469 while (last_offset < compressed_end) {
09cbfeaf 470 pg_index = last_offset >> PAGE_SHIFT;
771ed689 471
306e16ce 472 if (pg_index > end_index)
771ed689
CM
473 break;
474
475 rcu_read_lock();
306e16ce 476 page = radix_tree_lookup(&mapping->page_tree, pg_index);
771ed689 477 rcu_read_unlock();
0cd6144a 478 if (page && !radix_tree_exceptional_entry(page)) {
771ed689
CM
479 misses++;
480 if (misses > 4)
481 break;
482 goto next;
483 }
484
c62d2555
MH
485 page = __page_cache_alloc(mapping_gfp_constraint(mapping,
486 ~__GFP_FS));
771ed689
CM
487 if (!page)
488 break;
489
c62d2555 490 if (add_to_page_cache_lru(page, mapping, pg_index, GFP_NOFS)) {
09cbfeaf 491 put_page(page);
771ed689
CM
492 goto next;
493 }
494
09cbfeaf 495 end = last_offset + PAGE_SIZE - 1;
771ed689
CM
496 /*
497 * at this point, we have a locked page in the page cache
498 * for these bytes in the file. But, we have to make
499 * sure they map to this compressed extent on disk.
500 */
501 set_page_extent_mapped(page);
d0082371 502 lock_extent(tree, last_offset, end);
890871be 503 read_lock(&em_tree->lock);
771ed689 504 em = lookup_extent_mapping(em_tree, last_offset,
09cbfeaf 505 PAGE_SIZE);
890871be 506 read_unlock(&em_tree->lock);
771ed689
CM
507
508 if (!em || last_offset < em->start ||
09cbfeaf 509 (last_offset + PAGE_SIZE > extent_map_end(em)) ||
4f024f37 510 (em->block_start >> 9) != cb->orig_bio->bi_iter.bi_sector) {
771ed689 511 free_extent_map(em);
d0082371 512 unlock_extent(tree, last_offset, end);
771ed689 513 unlock_page(page);
09cbfeaf 514 put_page(page);
771ed689
CM
515 break;
516 }
517 free_extent_map(em);
518
519 if (page->index == end_index) {
520 char *userpage;
09cbfeaf 521 size_t zero_offset = isize & (PAGE_SIZE - 1);
771ed689
CM
522
523 if (zero_offset) {
524 int zeros;
09cbfeaf 525 zeros = PAGE_SIZE - zero_offset;
7ac687d9 526 userpage = kmap_atomic(page);
771ed689
CM
527 memset(userpage + zero_offset, 0, zeros);
528 flush_dcache_page(page);
7ac687d9 529 kunmap_atomic(userpage);
771ed689
CM
530 }
531 }
532
533 ret = bio_add_page(cb->orig_bio, page,
09cbfeaf 534 PAGE_SIZE, 0);
771ed689 535
09cbfeaf 536 if (ret == PAGE_SIZE) {
771ed689 537 nr_pages++;
09cbfeaf 538 put_page(page);
771ed689 539 } else {
d0082371 540 unlock_extent(tree, last_offset, end);
771ed689 541 unlock_page(page);
09cbfeaf 542 put_page(page);
771ed689
CM
543 break;
544 }
545next:
09cbfeaf 546 last_offset += PAGE_SIZE;
771ed689 547 }
771ed689
CM
548 return 0;
549}
550
c8b97818
CM
551/*
552 * for a compressed read, the bio we get passed has all the inode pages
553 * in it. We don't actually do IO on those pages but allocate new ones
554 * to hold the compressed pages on disk.
555 *
4f024f37 556 * bio->bi_iter.bi_sector points to the compressed extent on disk
c8b97818
CM
557 * bio->bi_io_vec points to all of the inode pages
558 * bio->bi_vcnt is a count of pages
559 *
560 * After the compressed pages are read, we copy the bytes into the
561 * bio we were passed and then call the bio end_io calls
562 */
563int btrfs_submit_compressed_read(struct inode *inode, struct bio *bio,
564 int mirror_num, unsigned long bio_flags)
565{
566 struct extent_io_tree *tree;
567 struct extent_map_tree *em_tree;
568 struct compressed_bio *cb;
569 struct btrfs_root *root = BTRFS_I(inode)->root;
09cbfeaf 570 unsigned long uncompressed_len = bio->bi_vcnt * PAGE_SIZE;
c8b97818
CM
571 unsigned long compressed_len;
572 unsigned long nr_pages;
306e16ce 573 unsigned long pg_index;
c8b97818
CM
574 struct page *page;
575 struct block_device *bdev;
576 struct bio *comp_bio;
4f024f37 577 u64 cur_disk_byte = (u64)bio->bi_iter.bi_sector << 9;
e04ca626
CM
578 u64 em_len;
579 u64 em_start;
c8b97818 580 struct extent_map *em;
6b82ce8d 581 int ret = -ENOMEM;
15e3004a 582 int faili = 0;
d20f7043 583 u32 *sums;
c8b97818
CM
584
585 tree = &BTRFS_I(inode)->io_tree;
586 em_tree = &BTRFS_I(inode)->extent_tree;
587
588 /* we need the actual starting offset of this extent in the file */
890871be 589 read_lock(&em_tree->lock);
c8b97818
CM
590 em = lookup_extent_mapping(em_tree,
591 page_offset(bio->bi_io_vec->bv_page),
09cbfeaf 592 PAGE_SIZE);
890871be 593 read_unlock(&em_tree->lock);
285190d9
TI
594 if (!em)
595 return -EIO;
c8b97818 596
d20f7043
CM
597 compressed_len = em->block_len;
598 cb = kmalloc(compressed_bio_size(root, compressed_len), GFP_NOFS);
6b82ce8d 599 if (!cb)
600 goto out;
601
c8b97818
CM
602 atomic_set(&cb->pending_bios, 0);
603 cb->errors = 0;
604 cb->inode = inode;
d20f7043
CM
605 cb->mirror_num = mirror_num;
606 sums = &cb->sums;
c8b97818 607
ff5b7ee3 608 cb->start = em->orig_start;
e04ca626
CM
609 em_len = em->len;
610 em_start = em->start;
d20f7043 611
c8b97818 612 free_extent_map(em);
e04ca626 613 em = NULL;
c8b97818
CM
614
615 cb->len = uncompressed_len;
616 cb->compressed_len = compressed_len;
261507a0 617 cb->compress_type = extent_compress_type(bio_flags);
c8b97818
CM
618 cb->orig_bio = bio;
619
09cbfeaf 620 nr_pages = DIV_ROUND_UP(compressed_len, PAGE_SIZE);
31e818fe 621 cb->compressed_pages = kcalloc(nr_pages, sizeof(struct page *),
c8b97818 622 GFP_NOFS);
6b82ce8d 623 if (!cb->compressed_pages)
624 goto fail1;
625
c8b97818
CM
626 bdev = BTRFS_I(inode)->root->fs_info->fs_devices->latest_bdev;
627
306e16ce
DS
628 for (pg_index = 0; pg_index < nr_pages; pg_index++) {
629 cb->compressed_pages[pg_index] = alloc_page(GFP_NOFS |
c8b97818 630 __GFP_HIGHMEM);
15e3004a
JB
631 if (!cb->compressed_pages[pg_index]) {
632 faili = pg_index - 1;
633 ret = -ENOMEM;
6b82ce8d 634 goto fail2;
15e3004a 635 }
c8b97818 636 }
15e3004a 637 faili = nr_pages - 1;
c8b97818
CM
638 cb->nr_pages = nr_pages;
639
7f042a83 640 add_ra_bio_pages(inode, em_start + em_len, cb);
771ed689 641
771ed689 642 /* include any pages we added in add_ra-bio_pages */
09cbfeaf 643 uncompressed_len = bio->bi_vcnt * PAGE_SIZE;
771ed689
CM
644 cb->len = uncompressed_len;
645
c8b97818 646 comp_bio = compressed_bio_alloc(bdev, cur_disk_byte, GFP_NOFS);
6b82ce8d 647 if (!comp_bio)
648 goto fail2;
c8b97818
CM
649 comp_bio->bi_private = cb;
650 comp_bio->bi_end_io = end_compressed_bio_read;
651 atomic_inc(&cb->pending_bios);
652
306e16ce
DS
653 for (pg_index = 0; pg_index < nr_pages; pg_index++) {
654 page = cb->compressed_pages[pg_index];
c8b97818 655 page->mapping = inode->i_mapping;
09cbfeaf 656 page->index = em_start >> PAGE_SHIFT;
d20f7043 657
4f024f37 658 if (comp_bio->bi_iter.bi_size)
64a16701 659 ret = tree->ops->merge_bio_hook(READ, page, 0,
09cbfeaf 660 PAGE_SIZE,
c8b97818
CM
661 comp_bio, 0);
662 else
663 ret = 0;
664
70b99e69 665 page->mapping = NULL;
09cbfeaf
KS
666 if (ret || bio_add_page(comp_bio, page, PAGE_SIZE, 0) <
667 PAGE_SIZE) {
c8b97818
CM
668 bio_get(comp_bio);
669
bfebd8b5
DS
670 ret = btrfs_bio_wq_end_io(root->fs_info, comp_bio,
671 BTRFS_WQ_ENDIO_DATA);
79787eaa 672 BUG_ON(ret); /* -ENOMEM */
c8b97818 673
af09abfe
CM
674 /*
675 * inc the count before we submit the bio so
676 * we know the end IO handler won't happen before
677 * we inc the count. Otherwise, the cb might get
678 * freed before we're done setting it up
679 */
680 atomic_inc(&cb->pending_bios);
681
6cbff00f 682 if (!(BTRFS_I(inode)->flags & BTRFS_INODE_NODATASUM)) {
c2db1073
TI
683 ret = btrfs_lookup_bio_sums(root, inode,
684 comp_bio, sums);
79787eaa 685 BUG_ON(ret); /* -ENOMEM */
d20f7043 686 }
ed6078f7
DS
687 sums += DIV_ROUND_UP(comp_bio->bi_iter.bi_size,
688 root->sectorsize);
d20f7043
CM
689
690 ret = btrfs_map_bio(root, READ, comp_bio,
691 mirror_num, 0);
4246a0b6
CH
692 if (ret) {
693 bio->bi_error = ret;
694 bio_endio(comp_bio);
695 }
c8b97818
CM
696
697 bio_put(comp_bio);
698
699 comp_bio = compressed_bio_alloc(bdev, cur_disk_byte,
700 GFP_NOFS);
e627ee7b 701 BUG_ON(!comp_bio);
771ed689
CM
702 comp_bio->bi_private = cb;
703 comp_bio->bi_end_io = end_compressed_bio_read;
704
09cbfeaf 705 bio_add_page(comp_bio, page, PAGE_SIZE, 0);
c8b97818 706 }
09cbfeaf 707 cur_disk_byte += PAGE_SIZE;
c8b97818
CM
708 }
709 bio_get(comp_bio);
710
bfebd8b5
DS
711 ret = btrfs_bio_wq_end_io(root->fs_info, comp_bio,
712 BTRFS_WQ_ENDIO_DATA);
79787eaa 713 BUG_ON(ret); /* -ENOMEM */
c8b97818 714
c2db1073
TI
715 if (!(BTRFS_I(inode)->flags & BTRFS_INODE_NODATASUM)) {
716 ret = btrfs_lookup_bio_sums(root, inode, comp_bio, sums);
79787eaa 717 BUG_ON(ret); /* -ENOMEM */
c2db1073 718 }
d20f7043
CM
719
720 ret = btrfs_map_bio(root, READ, comp_bio, mirror_num, 0);
4246a0b6
CH
721 if (ret) {
722 bio->bi_error = ret;
723 bio_endio(comp_bio);
724 }
c8b97818
CM
725
726 bio_put(comp_bio);
727 return 0;
6b82ce8d 728
729fail2:
15e3004a
JB
730 while (faili >= 0) {
731 __free_page(cb->compressed_pages[faili]);
732 faili--;
733 }
6b82ce8d 734
735 kfree(cb->compressed_pages);
736fail1:
737 kfree(cb);
738out:
739 free_extent_map(em);
740 return ret;
c8b97818 741}
261507a0 742
d9187649
BL
743static struct {
744 struct list_head idle_ws;
745 spinlock_t ws_lock;
6ac10a6a
DS
746 /* Number of free workspaces */
747 int free_ws;
748 /* Total number of allocated workspaces */
749 atomic_t total_ws;
750 /* Waiters for a free workspace */
d9187649
BL
751 wait_queue_head_t ws_wait;
752} btrfs_comp_ws[BTRFS_COMPRESS_TYPES];
261507a0 753
e8c9f186 754static const struct btrfs_compress_op * const btrfs_compress_op[] = {
261507a0 755 &btrfs_zlib_compress,
a6fa6fae 756 &btrfs_lzo_compress,
261507a0
LZ
757};
758
143bede5 759void __init btrfs_init_compress(void)
261507a0
LZ
760{
761 int i;
762
763 for (i = 0; i < BTRFS_COMPRESS_TYPES; i++) {
f77dd0d6
DS
764 struct list_head *workspace;
765
d9187649
BL
766 INIT_LIST_HEAD(&btrfs_comp_ws[i].idle_ws);
767 spin_lock_init(&btrfs_comp_ws[i].ws_lock);
6ac10a6a 768 atomic_set(&btrfs_comp_ws[i].total_ws, 0);
d9187649 769 init_waitqueue_head(&btrfs_comp_ws[i].ws_wait);
f77dd0d6
DS
770
771 /*
772 * Preallocate one workspace for each compression type so
773 * we can guarantee forward progress in the worst case
774 */
775 workspace = btrfs_compress_op[i]->alloc_workspace();
776 if (IS_ERR(workspace)) {
777 printk(KERN_WARNING
778 "BTRFS: cannot preallocate compression workspace, will try later");
779 } else {
780 atomic_set(&btrfs_comp_ws[i].total_ws, 1);
781 btrfs_comp_ws[i].free_ws = 1;
782 list_add(workspace, &btrfs_comp_ws[i].idle_ws);
783 }
261507a0 784 }
261507a0
LZ
785}
786
787/*
e721e49d
DS
788 * This finds an available workspace or allocates a new one.
789 * If it's not possible to allocate a new one, waits until there's one.
790 * Preallocation makes a forward progress guarantees and we do not return
791 * errors.
261507a0
LZ
792 */
793static struct list_head *find_workspace(int type)
794{
795 struct list_head *workspace;
796 int cpus = num_online_cpus();
797 int idx = type - 1;
798
d9187649
BL
799 struct list_head *idle_ws = &btrfs_comp_ws[idx].idle_ws;
800 spinlock_t *ws_lock = &btrfs_comp_ws[idx].ws_lock;
6ac10a6a 801 atomic_t *total_ws = &btrfs_comp_ws[idx].total_ws;
d9187649 802 wait_queue_head_t *ws_wait = &btrfs_comp_ws[idx].ws_wait;
6ac10a6a 803 int *free_ws = &btrfs_comp_ws[idx].free_ws;
261507a0 804again:
d9187649
BL
805 spin_lock(ws_lock);
806 if (!list_empty(idle_ws)) {
807 workspace = idle_ws->next;
261507a0 808 list_del(workspace);
6ac10a6a 809 (*free_ws)--;
d9187649 810 spin_unlock(ws_lock);
261507a0
LZ
811 return workspace;
812
813 }
6ac10a6a 814 if (atomic_read(total_ws) > cpus) {
261507a0
LZ
815 DEFINE_WAIT(wait);
816
d9187649
BL
817 spin_unlock(ws_lock);
818 prepare_to_wait(ws_wait, &wait, TASK_UNINTERRUPTIBLE);
6ac10a6a 819 if (atomic_read(total_ws) > cpus && !*free_ws)
261507a0 820 schedule();
d9187649 821 finish_wait(ws_wait, &wait);
261507a0
LZ
822 goto again;
823 }
6ac10a6a 824 atomic_inc(total_ws);
d9187649 825 spin_unlock(ws_lock);
261507a0
LZ
826
827 workspace = btrfs_compress_op[idx]->alloc_workspace();
828 if (IS_ERR(workspace)) {
6ac10a6a 829 atomic_dec(total_ws);
d9187649 830 wake_up(ws_wait);
e721e49d
DS
831
832 /*
833 * Do not return the error but go back to waiting. There's a
834 * workspace preallocated for each type and the compression
835 * time is bounded so we get to a workspace eventually. This
836 * makes our caller's life easier.
52356716
DS
837 *
838 * To prevent silent and low-probability deadlocks (when the
839 * initial preallocation fails), check if there are any
840 * workspaces at all.
e721e49d 841 */
52356716
DS
842 if (atomic_read(total_ws) == 0) {
843 static DEFINE_RATELIMIT_STATE(_rs,
844 /* once per minute */ 60 * HZ,
845 /* no burst */ 1);
846
847 if (__ratelimit(&_rs)) {
848 printk(KERN_WARNING
849 "no compression workspaces, low memory, retrying");
850 }
851 }
e721e49d 852 goto again;
261507a0
LZ
853 }
854 return workspace;
855}
856
857/*
858 * put a workspace struct back on the list or free it if we have enough
859 * idle ones sitting around
860 */
861static void free_workspace(int type, struct list_head *workspace)
862{
863 int idx = type - 1;
d9187649
BL
864 struct list_head *idle_ws = &btrfs_comp_ws[idx].idle_ws;
865 spinlock_t *ws_lock = &btrfs_comp_ws[idx].ws_lock;
6ac10a6a 866 atomic_t *total_ws = &btrfs_comp_ws[idx].total_ws;
d9187649 867 wait_queue_head_t *ws_wait = &btrfs_comp_ws[idx].ws_wait;
6ac10a6a 868 int *free_ws = &btrfs_comp_ws[idx].free_ws;
d9187649
BL
869
870 spin_lock(ws_lock);
6ac10a6a 871 if (*free_ws < num_online_cpus()) {
d9187649 872 list_add(workspace, idle_ws);
6ac10a6a 873 (*free_ws)++;
d9187649 874 spin_unlock(ws_lock);
261507a0
LZ
875 goto wake;
876 }
d9187649 877 spin_unlock(ws_lock);
261507a0
LZ
878
879 btrfs_compress_op[idx]->free_workspace(workspace);
6ac10a6a 880 atomic_dec(total_ws);
261507a0 881wake:
a83342aa
DS
882 /*
883 * Make sure counter is updated before we wake up waiters.
884 */
66657b31 885 smp_mb();
d9187649
BL
886 if (waitqueue_active(ws_wait))
887 wake_up(ws_wait);
261507a0
LZ
888}
889
890/*
891 * cleanup function for module exit
892 */
893static void free_workspaces(void)
894{
895 struct list_head *workspace;
896 int i;
897
898 for (i = 0; i < BTRFS_COMPRESS_TYPES; i++) {
d9187649
BL
899 while (!list_empty(&btrfs_comp_ws[i].idle_ws)) {
900 workspace = btrfs_comp_ws[i].idle_ws.next;
261507a0
LZ
901 list_del(workspace);
902 btrfs_compress_op[i]->free_workspace(workspace);
6ac10a6a 903 atomic_dec(&btrfs_comp_ws[i].total_ws);
261507a0
LZ
904 }
905 }
906}
907
908/*
909 * given an address space and start/len, compress the bytes.
910 *
911 * pages are allocated to hold the compressed result and stored
912 * in 'pages'
913 *
914 * out_pages is used to return the number of pages allocated. There
915 * may be pages allocated even if we return an error
916 *
917 * total_in is used to return the number of bytes actually read. It
918 * may be smaller then len if we had to exit early because we
919 * ran out of room in the pages array or because we cross the
920 * max_out threshold.
921 *
922 * total_out is used to return the total number of compressed bytes
923 *
924 * max_out tells us the max number of bytes that we're allowed to
925 * stuff into pages
926 */
927int btrfs_compress_pages(int type, struct address_space *mapping,
928 u64 start, unsigned long len,
929 struct page **pages,
930 unsigned long nr_dest_pages,
931 unsigned long *out_pages,
932 unsigned long *total_in,
933 unsigned long *total_out,
934 unsigned long max_out)
935{
936 struct list_head *workspace;
937 int ret;
938
939 workspace = find_workspace(type);
261507a0
LZ
940
941 ret = btrfs_compress_op[type-1]->compress_pages(workspace, mapping,
942 start, len, pages,
943 nr_dest_pages, out_pages,
944 total_in, total_out,
945 max_out);
946 free_workspace(type, workspace);
947 return ret;
948}
949
950/*
951 * pages_in is an array of pages with compressed data.
952 *
953 * disk_start is the starting logical offset of this array in the file
954 *
955 * bvec is a bio_vec of pages from the file that we want to decompress into
956 *
957 * vcnt is the count of pages in the biovec
958 *
959 * srclen is the number of bytes in pages_in
960 *
961 * The basic idea is that we have a bio that was created by readpages.
962 * The pages in the bio are for the uncompressed data, and they may not
963 * be contiguous. They all correspond to the range of bytes covered by
964 * the compressed extent.
965 */
48a3b636
ES
966static int btrfs_decompress_biovec(int type, struct page **pages_in,
967 u64 disk_start, struct bio_vec *bvec,
968 int vcnt, size_t srclen)
261507a0
LZ
969{
970 struct list_head *workspace;
971 int ret;
972
973 workspace = find_workspace(type);
261507a0
LZ
974
975 ret = btrfs_compress_op[type-1]->decompress_biovec(workspace, pages_in,
976 disk_start,
977 bvec, vcnt, srclen);
978 free_workspace(type, workspace);
979 return ret;
980}
981
982/*
983 * a less complex decompression routine. Our compressed data fits in a
984 * single page, and we want to read a single page out of it.
985 * start_byte tells us the offset into the compressed data we're interested in
986 */
987int btrfs_decompress(int type, unsigned char *data_in, struct page *dest_page,
988 unsigned long start_byte, size_t srclen, size_t destlen)
989{
990 struct list_head *workspace;
991 int ret;
992
993 workspace = find_workspace(type);
261507a0
LZ
994
995 ret = btrfs_compress_op[type-1]->decompress(workspace, data_in,
996 dest_page, start_byte,
997 srclen, destlen);
998
999 free_workspace(type, workspace);
1000 return ret;
1001}
1002
8e4eef7a 1003void btrfs_exit_compress(void)
261507a0
LZ
1004{
1005 free_workspaces();
1006}
3a39c18d
LZ
1007
1008/*
1009 * Copy uncompressed data from working buffer to pages.
1010 *
1011 * buf_start is the byte offset we're of the start of our workspace buffer.
1012 *
1013 * total_out is the last byte of the buffer
1014 */
1015int btrfs_decompress_buf2page(char *buf, unsigned long buf_start,
1016 unsigned long total_out, u64 disk_start,
1017 struct bio_vec *bvec, int vcnt,
306e16ce 1018 unsigned long *pg_index,
3a39c18d
LZ
1019 unsigned long *pg_offset)
1020{
1021 unsigned long buf_offset;
1022 unsigned long current_buf_start;
1023 unsigned long start_byte;
1024 unsigned long working_bytes = total_out - buf_start;
1025 unsigned long bytes;
1026 char *kaddr;
306e16ce 1027 struct page *page_out = bvec[*pg_index].bv_page;
3a39c18d
LZ
1028
1029 /*
1030 * start byte is the first byte of the page we're currently
1031 * copying into relative to the start of the compressed data.
1032 */
1033 start_byte = page_offset(page_out) - disk_start;
1034
1035 /* we haven't yet hit data corresponding to this page */
1036 if (total_out <= start_byte)
1037 return 1;
1038
1039 /*
1040 * the start of the data we care about is offset into
1041 * the middle of our working buffer
1042 */
1043 if (total_out > start_byte && buf_start < start_byte) {
1044 buf_offset = start_byte - buf_start;
1045 working_bytes -= buf_offset;
1046 } else {
1047 buf_offset = 0;
1048 }
1049 current_buf_start = buf_start;
1050
1051 /* copy bytes from the working buffer into the pages */
1052 while (working_bytes > 0) {
09cbfeaf
KS
1053 bytes = min(PAGE_SIZE - *pg_offset,
1054 PAGE_SIZE - buf_offset);
3a39c18d 1055 bytes = min(bytes, working_bytes);
7ac687d9 1056 kaddr = kmap_atomic(page_out);
3a39c18d 1057 memcpy(kaddr + *pg_offset, buf + buf_offset, bytes);
7ac687d9 1058 kunmap_atomic(kaddr);
3a39c18d
LZ
1059 flush_dcache_page(page_out);
1060
1061 *pg_offset += bytes;
1062 buf_offset += bytes;
1063 working_bytes -= bytes;
1064 current_buf_start += bytes;
1065
1066 /* check if we need to pick another page */
09cbfeaf 1067 if (*pg_offset == PAGE_SIZE) {
306e16ce
DS
1068 (*pg_index)++;
1069 if (*pg_index >= vcnt)
3a39c18d
LZ
1070 return 0;
1071
306e16ce 1072 page_out = bvec[*pg_index].bv_page;
3a39c18d
LZ
1073 *pg_offset = 0;
1074 start_byte = page_offset(page_out) - disk_start;
1075
1076 /*
1077 * make sure our new page is covered by this
1078 * working buffer
1079 */
1080 if (total_out <= start_byte)
1081 return 1;
1082
1083 /*
1084 * the next page in the biovec might not be adjacent
1085 * to the last page, but it might still be found
1086 * inside this working buffer. bump our offset pointer
1087 */
1088 if (total_out > start_byte &&
1089 current_buf_start < start_byte) {
1090 buf_offset = start_byte - buf_start;
1091 working_bytes = total_out - start_byte;
1092 current_buf_start = buf_start + buf_offset;
1093 }
1094 }
1095 }
1096
1097 return 1;
1098}
2f19cad9
CM
1099
1100/*
1101 * When uncompressing data, we need to make sure and zero any parts of
1102 * the biovec that were not filled in by the decompression code. pg_index
1103 * and pg_offset indicate the last page and the last offset of that page
1104 * that have been filled in. This will zero everything remaining in the
1105 * biovec.
1106 */
1107void btrfs_clear_biovec_end(struct bio_vec *bvec, int vcnt,
1108 unsigned long pg_index,
1109 unsigned long pg_offset)
1110{
1111 while (pg_index < vcnt) {
1112 struct page *page = bvec[pg_index].bv_page;
1113 unsigned long off = bvec[pg_index].bv_offset;
1114 unsigned long len = bvec[pg_index].bv_len;
1115
1116 if (pg_offset < off)
1117 pg_offset = off;
1118 if (pg_offset < off + len) {
1119 unsigned long bytes = off + len - pg_offset;
1120 char *kaddr;
1121
1122 kaddr = kmap_atomic(page);
1123 memset(kaddr + pg_offset, 0, bytes);
1124 kunmap_atomic(kaddr);
1125 }
1126 pg_index++;
1127 pg_offset = 0;
1128 }
1129}