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[net-next-2.6.git] / fs / bio.c
CommitLineData
1da177e4 1/*
0fe23479 2 * Copyright (C) 2001 Jens Axboe <axboe@kernel.dk>
1da177e4
LT
3 *
4 * This program is free software; you can redistribute it and/or modify
5 * it under the terms of the GNU General Public License version 2 as
6 * 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
11 * GNU General Public License for more details.
12 *
13 * You should have received a copy of the GNU General Public Licens
14 * along with this program; if not, write to the Free Software
15 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-
16 *
17 */
18#include <linux/mm.h>
19#include <linux/swap.h>
20#include <linux/bio.h>
21#include <linux/blkdev.h>
22#include <linux/slab.h>
23#include <linux/init.h>
24#include <linux/kernel.h>
25#include <linux/module.h>
26#include <linux/mempool.h>
27#include <linux/workqueue.h>
f1970baf 28#include <scsi/sg.h> /* for struct sg_iovec */
1da177e4 29
55782138 30#include <trace/events/block.h>
0bfc2455 31
392ddc32
JA
32/*
33 * Test patch to inline a certain number of bi_io_vec's inside the bio
34 * itself, to shrink a bio data allocation from two mempool calls to one
35 */
36#define BIO_INLINE_VECS 4
37
6feef531 38static mempool_t *bio_split_pool __read_mostly;
1da177e4 39
1da177e4
LT
40/*
41 * if you change this list, also change bvec_alloc or things will
42 * break badly! cannot be bigger than what you can fit into an
43 * unsigned short
44 */
1da177e4 45#define BV(x) { .nr_vecs = x, .name = "biovec-"__stringify(x) }
bb799ca0 46struct biovec_slab bvec_slabs[BIOVEC_NR_POOLS] __read_mostly = {
1da177e4
LT
47 BV(1), BV(4), BV(16), BV(64), BV(128), BV(BIO_MAX_PAGES),
48};
49#undef BV
50
1da177e4
LT
51/*
52 * fs_bio_set is the bio_set containing bio and iovec memory pools used by
53 * IO code that does not need private memory pools.
54 */
51d654e1 55struct bio_set *fs_bio_set;
1da177e4 56
bb799ca0
JA
57/*
58 * Our slab pool management
59 */
60struct bio_slab {
61 struct kmem_cache *slab;
62 unsigned int slab_ref;
63 unsigned int slab_size;
64 char name[8];
65};
66static DEFINE_MUTEX(bio_slab_lock);
67static struct bio_slab *bio_slabs;
68static unsigned int bio_slab_nr, bio_slab_max;
69
70static struct kmem_cache *bio_find_or_create_slab(unsigned int extra_size)
71{
72 unsigned int sz = sizeof(struct bio) + extra_size;
73 struct kmem_cache *slab = NULL;
74 struct bio_slab *bslab;
75 unsigned int i, entry = -1;
76
77 mutex_lock(&bio_slab_lock);
78
79 i = 0;
80 while (i < bio_slab_nr) {
f06f135d 81 bslab = &bio_slabs[i];
bb799ca0
JA
82
83 if (!bslab->slab && entry == -1)
84 entry = i;
85 else if (bslab->slab_size == sz) {
86 slab = bslab->slab;
87 bslab->slab_ref++;
88 break;
89 }
90 i++;
91 }
92
93 if (slab)
94 goto out_unlock;
95
96 if (bio_slab_nr == bio_slab_max && entry == -1) {
97 bio_slab_max <<= 1;
98 bio_slabs = krealloc(bio_slabs,
99 bio_slab_max * sizeof(struct bio_slab),
100 GFP_KERNEL);
101 if (!bio_slabs)
102 goto out_unlock;
103 }
104 if (entry == -1)
105 entry = bio_slab_nr++;
106
107 bslab = &bio_slabs[entry];
108
109 snprintf(bslab->name, sizeof(bslab->name), "bio-%d", entry);
110 slab = kmem_cache_create(bslab->name, sz, 0, SLAB_HWCACHE_ALIGN, NULL);
111 if (!slab)
112 goto out_unlock;
113
114 printk("bio: create slab <%s> at %d\n", bslab->name, entry);
115 bslab->slab = slab;
116 bslab->slab_ref = 1;
117 bslab->slab_size = sz;
118out_unlock:
119 mutex_unlock(&bio_slab_lock);
120 return slab;
121}
122
123static void bio_put_slab(struct bio_set *bs)
124{
125 struct bio_slab *bslab = NULL;
126 unsigned int i;
127
128 mutex_lock(&bio_slab_lock);
129
130 for (i = 0; i < bio_slab_nr; i++) {
131 if (bs->bio_slab == bio_slabs[i].slab) {
132 bslab = &bio_slabs[i];
133 break;
134 }
135 }
136
137 if (WARN(!bslab, KERN_ERR "bio: unable to find slab!\n"))
138 goto out;
139
140 WARN_ON(!bslab->slab_ref);
141
142 if (--bslab->slab_ref)
143 goto out;
144
145 kmem_cache_destroy(bslab->slab);
146 bslab->slab = NULL;
147
148out:
149 mutex_unlock(&bio_slab_lock);
150}
151
7ba1ba12
MP
152unsigned int bvec_nr_vecs(unsigned short idx)
153{
154 return bvec_slabs[idx].nr_vecs;
155}
156
bb799ca0
JA
157void bvec_free_bs(struct bio_set *bs, struct bio_vec *bv, unsigned int idx)
158{
159 BIO_BUG_ON(idx >= BIOVEC_NR_POOLS);
160
161 if (idx == BIOVEC_MAX_IDX)
162 mempool_free(bv, bs->bvec_pool);
163 else {
164 struct biovec_slab *bvs = bvec_slabs + idx;
165
166 kmem_cache_free(bvs->slab, bv);
167 }
168}
169
7ff9345f
JA
170struct bio_vec *bvec_alloc_bs(gfp_t gfp_mask, int nr, unsigned long *idx,
171 struct bio_set *bs)
1da177e4
LT
172{
173 struct bio_vec *bvl;
1da177e4 174
7ff9345f
JA
175 /*
176 * see comment near bvec_array define!
177 */
178 switch (nr) {
179 case 1:
180 *idx = 0;
181 break;
182 case 2 ... 4:
183 *idx = 1;
184 break;
185 case 5 ... 16:
186 *idx = 2;
187 break;
188 case 17 ... 64:
189 *idx = 3;
190 break;
191 case 65 ... 128:
192 *idx = 4;
193 break;
194 case 129 ... BIO_MAX_PAGES:
195 *idx = 5;
196 break;
197 default:
198 return NULL;
199 }
200
201 /*
202 * idx now points to the pool we want to allocate from. only the
203 * 1-vec entry pool is mempool backed.
204 */
205 if (*idx == BIOVEC_MAX_IDX) {
206fallback:
207 bvl = mempool_alloc(bs->bvec_pool, gfp_mask);
208 } else {
209 struct biovec_slab *bvs = bvec_slabs + *idx;
210 gfp_t __gfp_mask = gfp_mask & ~(__GFP_WAIT | __GFP_IO);
211
0a0d96b0 212 /*
7ff9345f
JA
213 * Make this allocation restricted and don't dump info on
214 * allocation failures, since we'll fallback to the mempool
215 * in case of failure.
0a0d96b0 216 */
7ff9345f 217 __gfp_mask |= __GFP_NOMEMALLOC | __GFP_NORETRY | __GFP_NOWARN;
1da177e4 218
0a0d96b0 219 /*
7ff9345f
JA
220 * Try a slab allocation. If this fails and __GFP_WAIT
221 * is set, retry with the 1-entry mempool
0a0d96b0 222 */
7ff9345f
JA
223 bvl = kmem_cache_alloc(bvs->slab, __gfp_mask);
224 if (unlikely(!bvl && (gfp_mask & __GFP_WAIT))) {
225 *idx = BIOVEC_MAX_IDX;
226 goto fallback;
227 }
228 }
229
1da177e4
LT
230 return bvl;
231}
232
7ff9345f 233void bio_free(struct bio *bio, struct bio_set *bs)
1da177e4 234{
bb799ca0 235 void *p;
1da177e4 236
392ddc32 237 if (bio_has_allocated_vec(bio))
bb799ca0 238 bvec_free_bs(bs, bio->bi_io_vec, BIO_POOL_IDX(bio));
1da177e4 239
7ba1ba12 240 if (bio_integrity(bio))
7878cba9 241 bio_integrity_free(bio, bs);
7ba1ba12 242
bb799ca0
JA
243 /*
244 * If we have front padding, adjust the bio pointer before freeing
245 */
246 p = bio;
247 if (bs->front_pad)
248 p -= bs->front_pad;
249
250 mempool_free(p, bs->bio_pool);
3676347a 251}
a112a71d 252EXPORT_SYMBOL(bio_free);
3676347a 253
858119e1 254void bio_init(struct bio *bio)
1da177e4 255{
2b94de55 256 memset(bio, 0, sizeof(*bio));
1da177e4 257 bio->bi_flags = 1 << BIO_UPTODATE;
c7c22e4d 258 bio->bi_comp_cpu = -1;
1da177e4 259 atomic_set(&bio->bi_cnt, 1);
1da177e4 260}
a112a71d 261EXPORT_SYMBOL(bio_init);
1da177e4
LT
262
263/**
264 * bio_alloc_bioset - allocate a bio for I/O
265 * @gfp_mask: the GFP_ mask given to the slab allocator
266 * @nr_iovecs: number of iovecs to pre-allocate
db18efac 267 * @bs: the bio_set to allocate from.
1da177e4
LT
268 *
269 * Description:
db18efac 270 * bio_alloc_bioset will try its own mempool to satisfy the allocation.
1da177e4 271 * If %__GFP_WAIT is set then we will block on the internal pool waiting
db18efac 272 * for a &struct bio to become free.
1da177e4 273 *
af901ca1 274 * Note that the caller must set ->bi_destructor on successful return
bb799ca0
JA
275 * of a bio, to do the appropriate freeing of the bio once the reference
276 * count drops to zero.
1da177e4 277 **/
dd0fc66f 278struct bio *bio_alloc_bioset(gfp_t gfp_mask, int nr_iovecs, struct bio_set *bs)
1da177e4 279{
451a9ebf 280 unsigned long idx = BIO_POOL_NONE;
34053979 281 struct bio_vec *bvl = NULL;
451a9ebf
TH
282 struct bio *bio;
283 void *p;
284
285 p = mempool_alloc(bs->bio_pool, gfp_mask);
286 if (unlikely(!p))
287 return NULL;
288 bio = p + bs->front_pad;
1da177e4 289
34053979
IM
290 bio_init(bio);
291
292 if (unlikely(!nr_iovecs))
293 goto out_set;
294
295 if (nr_iovecs <= BIO_INLINE_VECS) {
296 bvl = bio->bi_inline_vecs;
297 nr_iovecs = BIO_INLINE_VECS;
298 } else {
299 bvl = bvec_alloc_bs(gfp_mask, nr_iovecs, &idx, bs);
300 if (unlikely(!bvl))
301 goto err_free;
302
303 nr_iovecs = bvec_nr_vecs(idx);
1da177e4 304 }
451a9ebf 305out_set:
34053979
IM
306 bio->bi_flags |= idx << BIO_POOL_OFFSET;
307 bio->bi_max_vecs = nr_iovecs;
34053979 308 bio->bi_io_vec = bvl;
1da177e4 309 return bio;
34053979
IM
310
311err_free:
451a9ebf 312 mempool_free(p, bs->bio_pool);
34053979 313 return NULL;
1da177e4 314}
a112a71d 315EXPORT_SYMBOL(bio_alloc_bioset);
1da177e4 316
451a9ebf
TH
317static void bio_fs_destructor(struct bio *bio)
318{
319 bio_free(bio, fs_bio_set);
320}
321
322/**
323 * bio_alloc - allocate a new bio, memory pool backed
324 * @gfp_mask: allocation mask to use
325 * @nr_iovecs: number of iovecs
326 *
5f04eeb8
AB
327 * bio_alloc will allocate a bio and associated bio_vec array that can hold
328 * at least @nr_iovecs entries. Allocations will be done from the
329 * fs_bio_set. Also see @bio_alloc_bioset and @bio_kmalloc.
330 *
331 * If %__GFP_WAIT is set, then bio_alloc will always be able to allocate
332 * a bio. This is due to the mempool guarantees. To make this work, callers
333 * must never allocate more than 1 bio at a time from this pool. Callers
334 * that need to allocate more than 1 bio must always submit the previously
335 * allocated bio for IO before attempting to allocate a new one. Failure to
336 * do so can cause livelocks under memory pressure.
451a9ebf
TH
337 *
338 * RETURNS:
339 * Pointer to new bio on success, NULL on failure.
340 */
341struct bio *bio_alloc(gfp_t gfp_mask, int nr_iovecs)
342{
343 struct bio *bio = bio_alloc_bioset(gfp_mask, nr_iovecs, fs_bio_set);
344
345 if (bio)
346 bio->bi_destructor = bio_fs_destructor;
347
348 return bio;
349}
a112a71d 350EXPORT_SYMBOL(bio_alloc);
451a9ebf
TH
351
352static void bio_kmalloc_destructor(struct bio *bio)
353{
354 if (bio_integrity(bio))
7878cba9 355 bio_integrity_free(bio, fs_bio_set);
451a9ebf
TH
356 kfree(bio);
357}
358
86c824b9 359/**
5f04eeb8 360 * bio_kmalloc - allocate a bio for I/O using kmalloc()
86c824b9
JA
361 * @gfp_mask: the GFP_ mask given to the slab allocator
362 * @nr_iovecs: number of iovecs to pre-allocate
363 *
364 * Description:
5f04eeb8
AB
365 * Allocate a new bio with @nr_iovecs bvecs. If @gfp_mask contains
366 * %__GFP_WAIT, the allocation is guaranteed to succeed.
86c824b9
JA
367 *
368 **/
0a0d96b0
JA
369struct bio *bio_kmalloc(gfp_t gfp_mask, int nr_iovecs)
370{
451a9ebf 371 struct bio *bio;
0a0d96b0 372
451a9ebf
TH
373 bio = kmalloc(sizeof(struct bio) + nr_iovecs * sizeof(struct bio_vec),
374 gfp_mask);
375 if (unlikely(!bio))
376 return NULL;
377
378 bio_init(bio);
379 bio->bi_flags |= BIO_POOL_NONE << BIO_POOL_OFFSET;
380 bio->bi_max_vecs = nr_iovecs;
381 bio->bi_io_vec = bio->bi_inline_vecs;
382 bio->bi_destructor = bio_kmalloc_destructor;
0a0d96b0
JA
383
384 return bio;
385}
a112a71d 386EXPORT_SYMBOL(bio_kmalloc);
0a0d96b0 387
1da177e4
LT
388void zero_fill_bio(struct bio *bio)
389{
390 unsigned long flags;
391 struct bio_vec *bv;
392 int i;
393
394 bio_for_each_segment(bv, bio, i) {
395 char *data = bvec_kmap_irq(bv, &flags);
396 memset(data, 0, bv->bv_len);
397 flush_dcache_page(bv->bv_page);
398 bvec_kunmap_irq(data, &flags);
399 }
400}
401EXPORT_SYMBOL(zero_fill_bio);
402
403/**
404 * bio_put - release a reference to a bio
405 * @bio: bio to release reference to
406 *
407 * Description:
408 * Put a reference to a &struct bio, either one you have gotten with
ad0bf110 409 * bio_alloc, bio_get or bio_clone. The last put of a bio will free it.
1da177e4
LT
410 **/
411void bio_put(struct bio *bio)
412{
413 BIO_BUG_ON(!atomic_read(&bio->bi_cnt));
414
415 /*
416 * last put frees it
417 */
418 if (atomic_dec_and_test(&bio->bi_cnt)) {
419 bio->bi_next = NULL;
420 bio->bi_destructor(bio);
421 }
422}
a112a71d 423EXPORT_SYMBOL(bio_put);
1da177e4 424
165125e1 425inline int bio_phys_segments(struct request_queue *q, struct bio *bio)
1da177e4
LT
426{
427 if (unlikely(!bio_flagged(bio, BIO_SEG_VALID)))
428 blk_recount_segments(q, bio);
429
430 return bio->bi_phys_segments;
431}
a112a71d 432EXPORT_SYMBOL(bio_phys_segments);
1da177e4 433
1da177e4
LT
434/**
435 * __bio_clone - clone a bio
436 * @bio: destination bio
437 * @bio_src: bio to clone
438 *
439 * Clone a &bio. Caller will own the returned bio, but not
440 * the actual data it points to. Reference count of returned
441 * bio will be one.
442 */
858119e1 443void __bio_clone(struct bio *bio, struct bio *bio_src)
1da177e4 444{
e525e153
AM
445 memcpy(bio->bi_io_vec, bio_src->bi_io_vec,
446 bio_src->bi_max_vecs * sizeof(struct bio_vec));
1da177e4 447
5d84070e
JA
448 /*
449 * most users will be overriding ->bi_bdev with a new target,
450 * so we don't set nor calculate new physical/hw segment counts here
451 */
1da177e4
LT
452 bio->bi_sector = bio_src->bi_sector;
453 bio->bi_bdev = bio_src->bi_bdev;
454 bio->bi_flags |= 1 << BIO_CLONED;
455 bio->bi_rw = bio_src->bi_rw;
1da177e4
LT
456 bio->bi_vcnt = bio_src->bi_vcnt;
457 bio->bi_size = bio_src->bi_size;
a5453be4 458 bio->bi_idx = bio_src->bi_idx;
1da177e4 459}
a112a71d 460EXPORT_SYMBOL(__bio_clone);
1da177e4
LT
461
462/**
463 * bio_clone - clone a bio
464 * @bio: bio to clone
465 * @gfp_mask: allocation priority
466 *
467 * Like __bio_clone, only also allocates the returned bio
468 */
dd0fc66f 469struct bio *bio_clone(struct bio *bio, gfp_t gfp_mask)
1da177e4
LT
470{
471 struct bio *b = bio_alloc_bioset(gfp_mask, bio->bi_max_vecs, fs_bio_set);
472
7ba1ba12
MP
473 if (!b)
474 return NULL;
475
476 b->bi_destructor = bio_fs_destructor;
477 __bio_clone(b, bio);
478
479 if (bio_integrity(bio)) {
480 int ret;
481
7878cba9 482 ret = bio_integrity_clone(b, bio, gfp_mask, fs_bio_set);
7ba1ba12 483
059ea331
LZ
484 if (ret < 0) {
485 bio_put(b);
7ba1ba12 486 return NULL;
059ea331 487 }
3676347a 488 }
1da177e4
LT
489
490 return b;
491}
a112a71d 492EXPORT_SYMBOL(bio_clone);
1da177e4
LT
493
494/**
495 * bio_get_nr_vecs - return approx number of vecs
496 * @bdev: I/O target
497 *
498 * Return the approximate number of pages we can send to this target.
499 * There's no guarantee that you will be able to fit this number of pages
500 * into a bio, it does not account for dynamic restrictions that vary
501 * on offset.
502 */
503int bio_get_nr_vecs(struct block_device *bdev)
504{
165125e1 505 struct request_queue *q = bdev_get_queue(bdev);
1da177e4
LT
506 int nr_pages;
507
ae03bf63 508 nr_pages = ((queue_max_sectors(q) << 9) + PAGE_SIZE - 1) >> PAGE_SHIFT;
8a78362c
MP
509 if (nr_pages > queue_max_segments(q))
510 nr_pages = queue_max_segments(q);
1da177e4
LT
511
512 return nr_pages;
513}
a112a71d 514EXPORT_SYMBOL(bio_get_nr_vecs);
1da177e4 515
165125e1 516static int __bio_add_page(struct request_queue *q, struct bio *bio, struct page
defd94b7
MC
517 *page, unsigned int len, unsigned int offset,
518 unsigned short max_sectors)
1da177e4
LT
519{
520 int retried_segments = 0;
521 struct bio_vec *bvec;
522
523 /*
524 * cloned bio must not modify vec list
525 */
526 if (unlikely(bio_flagged(bio, BIO_CLONED)))
527 return 0;
528
80cfd548 529 if (((bio->bi_size + len) >> 9) > max_sectors)
1da177e4
LT
530 return 0;
531
80cfd548
JA
532 /*
533 * For filesystems with a blocksize smaller than the pagesize
534 * we will often be called with the same page as last time and
535 * a consecutive offset. Optimize this special case.
536 */
537 if (bio->bi_vcnt > 0) {
538 struct bio_vec *prev = &bio->bi_io_vec[bio->bi_vcnt - 1];
539
540 if (page == prev->bv_page &&
541 offset == prev->bv_offset + prev->bv_len) {
1d616585 542 unsigned int prev_bv_len = prev->bv_len;
80cfd548 543 prev->bv_len += len;
cc371e66
AK
544
545 if (q->merge_bvec_fn) {
546 struct bvec_merge_data bvm = {
1d616585
DM
547 /* prev_bvec is already charged in
548 bi_size, discharge it in order to
549 simulate merging updated prev_bvec
550 as new bvec. */
cc371e66
AK
551 .bi_bdev = bio->bi_bdev,
552 .bi_sector = bio->bi_sector,
1d616585 553 .bi_size = bio->bi_size - prev_bv_len,
cc371e66
AK
554 .bi_rw = bio->bi_rw,
555 };
556
8bf8c376 557 if (q->merge_bvec_fn(q, &bvm, prev) < prev->bv_len) {
cc371e66
AK
558 prev->bv_len -= len;
559 return 0;
560 }
80cfd548
JA
561 }
562
563 goto done;
564 }
565 }
566
567 if (bio->bi_vcnt >= bio->bi_max_vecs)
1da177e4
LT
568 return 0;
569
570 /*
571 * we might lose a segment or two here, but rather that than
572 * make this too complex.
573 */
574
8a78362c 575 while (bio->bi_phys_segments >= queue_max_segments(q)) {
1da177e4
LT
576
577 if (retried_segments)
578 return 0;
579
580 retried_segments = 1;
581 blk_recount_segments(q, bio);
582 }
583
584 /*
585 * setup the new entry, we might clear it again later if we
586 * cannot add the page
587 */
588 bvec = &bio->bi_io_vec[bio->bi_vcnt];
589 bvec->bv_page = page;
590 bvec->bv_len = len;
591 bvec->bv_offset = offset;
592
593 /*
594 * if queue has other restrictions (eg varying max sector size
595 * depending on offset), it can specify a merge_bvec_fn in the
596 * queue to get further control
597 */
598 if (q->merge_bvec_fn) {
cc371e66
AK
599 struct bvec_merge_data bvm = {
600 .bi_bdev = bio->bi_bdev,
601 .bi_sector = bio->bi_sector,
602 .bi_size = bio->bi_size,
603 .bi_rw = bio->bi_rw,
604 };
605
1da177e4
LT
606 /*
607 * merge_bvec_fn() returns number of bytes it can accept
608 * at this offset
609 */
8bf8c376 610 if (q->merge_bvec_fn(q, &bvm, bvec) < bvec->bv_len) {
1da177e4
LT
611 bvec->bv_page = NULL;
612 bvec->bv_len = 0;
613 bvec->bv_offset = 0;
614 return 0;
615 }
616 }
617
618 /* If we may be able to merge these biovecs, force a recount */
b8b3e16c 619 if (bio->bi_vcnt && (BIOVEC_PHYS_MERGEABLE(bvec-1, bvec)))
1da177e4
LT
620 bio->bi_flags &= ~(1 << BIO_SEG_VALID);
621
622 bio->bi_vcnt++;
623 bio->bi_phys_segments++;
80cfd548 624 done:
1da177e4
LT
625 bio->bi_size += len;
626 return len;
627}
628
6e68af66
MC
629/**
630 * bio_add_pc_page - attempt to add page to bio
fddfdeaf 631 * @q: the target queue
6e68af66
MC
632 * @bio: destination bio
633 * @page: page to add
634 * @len: vec entry length
635 * @offset: vec entry offset
636 *
637 * Attempt to add a page to the bio_vec maplist. This can fail for a
638 * number of reasons, such as the bio being full or target block
639 * device limitations. The target block device must allow bio's
640 * smaller than PAGE_SIZE, so it is always possible to add a single
641 * page to an empty bio. This should only be used by REQ_PC bios.
642 */
165125e1 643int bio_add_pc_page(struct request_queue *q, struct bio *bio, struct page *page,
6e68af66
MC
644 unsigned int len, unsigned int offset)
645{
ae03bf63
MP
646 return __bio_add_page(q, bio, page, len, offset,
647 queue_max_hw_sectors(q));
6e68af66 648}
a112a71d 649EXPORT_SYMBOL(bio_add_pc_page);
6e68af66 650
1da177e4
LT
651/**
652 * bio_add_page - attempt to add page to bio
653 * @bio: destination bio
654 * @page: page to add
655 * @len: vec entry length
656 * @offset: vec entry offset
657 *
658 * Attempt to add a page to the bio_vec maplist. This can fail for a
659 * number of reasons, such as the bio being full or target block
660 * device limitations. The target block device must allow bio's
661 * smaller than PAGE_SIZE, so it is always possible to add a single
662 * page to an empty bio.
663 */
664int bio_add_page(struct bio *bio, struct page *page, unsigned int len,
665 unsigned int offset)
666{
defd94b7 667 struct request_queue *q = bdev_get_queue(bio->bi_bdev);
ae03bf63 668 return __bio_add_page(q, bio, page, len, offset, queue_max_sectors(q));
1da177e4 669}
a112a71d 670EXPORT_SYMBOL(bio_add_page);
1da177e4
LT
671
672struct bio_map_data {
673 struct bio_vec *iovecs;
c5dec1c3 674 struct sg_iovec *sgvecs;
152e283f
FT
675 int nr_sgvecs;
676 int is_our_pages;
1da177e4
LT
677};
678
c5dec1c3 679static void bio_set_map_data(struct bio_map_data *bmd, struct bio *bio,
152e283f
FT
680 struct sg_iovec *iov, int iov_count,
681 int is_our_pages)
1da177e4
LT
682{
683 memcpy(bmd->iovecs, bio->bi_io_vec, sizeof(struct bio_vec) * bio->bi_vcnt);
c5dec1c3
FT
684 memcpy(bmd->sgvecs, iov, sizeof(struct sg_iovec) * iov_count);
685 bmd->nr_sgvecs = iov_count;
152e283f 686 bmd->is_our_pages = is_our_pages;
1da177e4
LT
687 bio->bi_private = bmd;
688}
689
690static void bio_free_map_data(struct bio_map_data *bmd)
691{
692 kfree(bmd->iovecs);
c5dec1c3 693 kfree(bmd->sgvecs);
1da177e4
LT
694 kfree(bmd);
695}
696
76029ff3
FT
697static struct bio_map_data *bio_alloc_map_data(int nr_segs, int iov_count,
698 gfp_t gfp_mask)
1da177e4 699{
76029ff3 700 struct bio_map_data *bmd = kmalloc(sizeof(*bmd), gfp_mask);
1da177e4
LT
701
702 if (!bmd)
703 return NULL;
704
76029ff3 705 bmd->iovecs = kmalloc(sizeof(struct bio_vec) * nr_segs, gfp_mask);
c5dec1c3
FT
706 if (!bmd->iovecs) {
707 kfree(bmd);
708 return NULL;
709 }
710
76029ff3 711 bmd->sgvecs = kmalloc(sizeof(struct sg_iovec) * iov_count, gfp_mask);
c5dec1c3 712 if (bmd->sgvecs)
1da177e4
LT
713 return bmd;
714
c5dec1c3 715 kfree(bmd->iovecs);
1da177e4
LT
716 kfree(bmd);
717 return NULL;
718}
719
aefcc28a 720static int __bio_copy_iov(struct bio *bio, struct bio_vec *iovecs,
ecb554a8
FT
721 struct sg_iovec *iov, int iov_count,
722 int to_user, int from_user, int do_free_page)
c5dec1c3
FT
723{
724 int ret = 0, i;
725 struct bio_vec *bvec;
726 int iov_idx = 0;
727 unsigned int iov_off = 0;
c5dec1c3
FT
728
729 __bio_for_each_segment(bvec, bio, i, 0) {
730 char *bv_addr = page_address(bvec->bv_page);
aefcc28a 731 unsigned int bv_len = iovecs[i].bv_len;
c5dec1c3
FT
732
733 while (bv_len && iov_idx < iov_count) {
734 unsigned int bytes;
0e0c6212 735 char __user *iov_addr;
c5dec1c3
FT
736
737 bytes = min_t(unsigned int,
738 iov[iov_idx].iov_len - iov_off, bv_len);
739 iov_addr = iov[iov_idx].iov_base + iov_off;
740
741 if (!ret) {
ecb554a8 742 if (to_user)
c5dec1c3
FT
743 ret = copy_to_user(iov_addr, bv_addr,
744 bytes);
745
ecb554a8
FT
746 if (from_user)
747 ret = copy_from_user(bv_addr, iov_addr,
748 bytes);
749
c5dec1c3
FT
750 if (ret)
751 ret = -EFAULT;
752 }
753
754 bv_len -= bytes;
755 bv_addr += bytes;
756 iov_addr += bytes;
757 iov_off += bytes;
758
759 if (iov[iov_idx].iov_len == iov_off) {
760 iov_idx++;
761 iov_off = 0;
762 }
763 }
764
152e283f 765 if (do_free_page)
c5dec1c3
FT
766 __free_page(bvec->bv_page);
767 }
768
769 return ret;
770}
771
1da177e4
LT
772/**
773 * bio_uncopy_user - finish previously mapped bio
774 * @bio: bio being terminated
775 *
776 * Free pages allocated from bio_copy_user() and write back data
777 * to user space in case of a read.
778 */
779int bio_uncopy_user(struct bio *bio)
780{
781 struct bio_map_data *bmd = bio->bi_private;
81882766 782 int ret = 0;
1da177e4 783
81882766
FT
784 if (!bio_flagged(bio, BIO_NULL_MAPPED))
785 ret = __bio_copy_iov(bio, bmd->iovecs, bmd->sgvecs,
ecb554a8
FT
786 bmd->nr_sgvecs, bio_data_dir(bio) == READ,
787 0, bmd->is_our_pages);
1da177e4
LT
788 bio_free_map_data(bmd);
789 bio_put(bio);
790 return ret;
791}
a112a71d 792EXPORT_SYMBOL(bio_uncopy_user);
1da177e4
LT
793
794/**
c5dec1c3 795 * bio_copy_user_iov - copy user data to bio
1da177e4 796 * @q: destination block queue
152e283f 797 * @map_data: pointer to the rq_map_data holding pages (if necessary)
c5dec1c3
FT
798 * @iov: the iovec.
799 * @iov_count: number of elements in the iovec
1da177e4 800 * @write_to_vm: bool indicating writing to pages or not
a3bce90e 801 * @gfp_mask: memory allocation flags
1da177e4
LT
802 *
803 * Prepares and returns a bio for indirect user io, bouncing data
804 * to/from kernel pages as necessary. Must be paired with
805 * call bio_uncopy_user() on io completion.
806 */
152e283f
FT
807struct bio *bio_copy_user_iov(struct request_queue *q,
808 struct rq_map_data *map_data,
809 struct sg_iovec *iov, int iov_count,
810 int write_to_vm, gfp_t gfp_mask)
1da177e4 811{
1da177e4
LT
812 struct bio_map_data *bmd;
813 struct bio_vec *bvec;
814 struct page *page;
815 struct bio *bio;
816 int i, ret;
c5dec1c3
FT
817 int nr_pages = 0;
818 unsigned int len = 0;
56c451f4 819 unsigned int offset = map_data ? map_data->offset & ~PAGE_MASK : 0;
1da177e4 820
c5dec1c3
FT
821 for (i = 0; i < iov_count; i++) {
822 unsigned long uaddr;
823 unsigned long end;
824 unsigned long start;
825
826 uaddr = (unsigned long)iov[i].iov_base;
827 end = (uaddr + iov[i].iov_len + PAGE_SIZE - 1) >> PAGE_SHIFT;
828 start = uaddr >> PAGE_SHIFT;
829
830 nr_pages += end - start;
831 len += iov[i].iov_len;
832 }
833
69838727
FT
834 if (offset)
835 nr_pages++;
836
a3bce90e 837 bmd = bio_alloc_map_data(nr_pages, iov_count, gfp_mask);
1da177e4
LT
838 if (!bmd)
839 return ERR_PTR(-ENOMEM);
840
1da177e4 841 ret = -ENOMEM;
a9e9dc24 842 bio = bio_kmalloc(gfp_mask, nr_pages);
1da177e4
LT
843 if (!bio)
844 goto out_bmd;
845
7b6d91da
CH
846 if (!write_to_vm)
847 bio->bi_rw |= REQ_WRITE;
1da177e4
LT
848
849 ret = 0;
56c451f4
FT
850
851 if (map_data) {
e623ddb4 852 nr_pages = 1 << map_data->page_order;
56c451f4
FT
853 i = map_data->offset / PAGE_SIZE;
854 }
1da177e4 855 while (len) {
e623ddb4 856 unsigned int bytes = PAGE_SIZE;
1da177e4 857
56c451f4
FT
858 bytes -= offset;
859
1da177e4
LT
860 if (bytes > len)
861 bytes = len;
862
152e283f 863 if (map_data) {
e623ddb4 864 if (i == map_data->nr_entries * nr_pages) {
152e283f
FT
865 ret = -ENOMEM;
866 break;
867 }
e623ddb4
FT
868
869 page = map_data->pages[i / nr_pages];
870 page += (i % nr_pages);
871
872 i++;
873 } else {
152e283f 874 page = alloc_page(q->bounce_gfp | gfp_mask);
e623ddb4
FT
875 if (!page) {
876 ret = -ENOMEM;
877 break;
878 }
1da177e4
LT
879 }
880
56c451f4 881 if (bio_add_pc_page(q, bio, page, bytes, offset) < bytes)
1da177e4 882 break;
1da177e4
LT
883
884 len -= bytes;
56c451f4 885 offset = 0;
1da177e4
LT
886 }
887
888 if (ret)
889 goto cleanup;
890
891 /*
892 * success
893 */
ecb554a8
FT
894 if ((!write_to_vm && (!map_data || !map_data->null_mapped)) ||
895 (map_data && map_data->from_user)) {
896 ret = __bio_copy_iov(bio, bio->bi_io_vec, iov, iov_count, 0, 1, 0);
c5dec1c3
FT
897 if (ret)
898 goto cleanup;
1da177e4
LT
899 }
900
152e283f 901 bio_set_map_data(bmd, bio, iov, iov_count, map_data ? 0 : 1);
1da177e4
LT
902 return bio;
903cleanup:
152e283f
FT
904 if (!map_data)
905 bio_for_each_segment(bvec, bio, i)
906 __free_page(bvec->bv_page);
1da177e4
LT
907
908 bio_put(bio);
909out_bmd:
910 bio_free_map_data(bmd);
911 return ERR_PTR(ret);
912}
913
c5dec1c3
FT
914/**
915 * bio_copy_user - copy user data to bio
916 * @q: destination block queue
152e283f 917 * @map_data: pointer to the rq_map_data holding pages (if necessary)
c5dec1c3
FT
918 * @uaddr: start of user address
919 * @len: length in bytes
920 * @write_to_vm: bool indicating writing to pages or not
a3bce90e 921 * @gfp_mask: memory allocation flags
c5dec1c3
FT
922 *
923 * Prepares and returns a bio for indirect user io, bouncing data
924 * to/from kernel pages as necessary. Must be paired with
925 * call bio_uncopy_user() on io completion.
926 */
152e283f
FT
927struct bio *bio_copy_user(struct request_queue *q, struct rq_map_data *map_data,
928 unsigned long uaddr, unsigned int len,
929 int write_to_vm, gfp_t gfp_mask)
c5dec1c3
FT
930{
931 struct sg_iovec iov;
932
933 iov.iov_base = (void __user *)uaddr;
934 iov.iov_len = len;
935
152e283f 936 return bio_copy_user_iov(q, map_data, &iov, 1, write_to_vm, gfp_mask);
c5dec1c3 937}
a112a71d 938EXPORT_SYMBOL(bio_copy_user);
c5dec1c3 939
165125e1 940static struct bio *__bio_map_user_iov(struct request_queue *q,
f1970baf
JB
941 struct block_device *bdev,
942 struct sg_iovec *iov, int iov_count,
a3bce90e 943 int write_to_vm, gfp_t gfp_mask)
1da177e4 944{
f1970baf
JB
945 int i, j;
946 int nr_pages = 0;
1da177e4
LT
947 struct page **pages;
948 struct bio *bio;
f1970baf
JB
949 int cur_page = 0;
950 int ret, offset;
1da177e4 951
f1970baf
JB
952 for (i = 0; i < iov_count; i++) {
953 unsigned long uaddr = (unsigned long)iov[i].iov_base;
954 unsigned long len = iov[i].iov_len;
955 unsigned long end = (uaddr + len + PAGE_SIZE - 1) >> PAGE_SHIFT;
956 unsigned long start = uaddr >> PAGE_SHIFT;
957
958 nr_pages += end - start;
959 /*
ad2d7225 960 * buffer must be aligned to at least hardsector size for now
f1970baf 961 */
ad2d7225 962 if (uaddr & queue_dma_alignment(q))
f1970baf
JB
963 return ERR_PTR(-EINVAL);
964 }
965
966 if (!nr_pages)
1da177e4
LT
967 return ERR_PTR(-EINVAL);
968
a9e9dc24 969 bio = bio_kmalloc(gfp_mask, nr_pages);
1da177e4
LT
970 if (!bio)
971 return ERR_PTR(-ENOMEM);
972
973 ret = -ENOMEM;
a3bce90e 974 pages = kcalloc(nr_pages, sizeof(struct page *), gfp_mask);
1da177e4
LT
975 if (!pages)
976 goto out;
977
f1970baf
JB
978 for (i = 0; i < iov_count; i++) {
979 unsigned long uaddr = (unsigned long)iov[i].iov_base;
980 unsigned long len = iov[i].iov_len;
981 unsigned long end = (uaddr + len + PAGE_SIZE - 1) >> PAGE_SHIFT;
982 unsigned long start = uaddr >> PAGE_SHIFT;
983 const int local_nr_pages = end - start;
984 const int page_limit = cur_page + local_nr_pages;
985
f5dd33c4
NP
986 ret = get_user_pages_fast(uaddr, local_nr_pages,
987 write_to_vm, &pages[cur_page]);
99172157
JA
988 if (ret < local_nr_pages) {
989 ret = -EFAULT;
f1970baf 990 goto out_unmap;
99172157 991 }
f1970baf
JB
992
993 offset = uaddr & ~PAGE_MASK;
994 for (j = cur_page; j < page_limit; j++) {
995 unsigned int bytes = PAGE_SIZE - offset;
996
997 if (len <= 0)
998 break;
999
1000 if (bytes > len)
1001 bytes = len;
1002
1003 /*
1004 * sorry...
1005 */
defd94b7
MC
1006 if (bio_add_pc_page(q, bio, pages[j], bytes, offset) <
1007 bytes)
f1970baf
JB
1008 break;
1009
1010 len -= bytes;
1011 offset = 0;
1012 }
1da177e4 1013
f1970baf 1014 cur_page = j;
1da177e4 1015 /*
f1970baf 1016 * release the pages we didn't map into the bio, if any
1da177e4 1017 */
f1970baf
JB
1018 while (j < page_limit)
1019 page_cache_release(pages[j++]);
1da177e4
LT
1020 }
1021
1da177e4
LT
1022 kfree(pages);
1023
1024 /*
1025 * set data direction, and check if mapped pages need bouncing
1026 */
1027 if (!write_to_vm)
7b6d91da 1028 bio->bi_rw |= REQ_WRITE;
1da177e4 1029
f1970baf 1030 bio->bi_bdev = bdev;
1da177e4
LT
1031 bio->bi_flags |= (1 << BIO_USER_MAPPED);
1032 return bio;
f1970baf
JB
1033
1034 out_unmap:
1035 for (i = 0; i < nr_pages; i++) {
1036 if(!pages[i])
1037 break;
1038 page_cache_release(pages[i]);
1039 }
1040 out:
1da177e4
LT
1041 kfree(pages);
1042 bio_put(bio);
1043 return ERR_PTR(ret);
1044}
1045
1046/**
1047 * bio_map_user - map user address into bio
165125e1 1048 * @q: the struct request_queue for the bio
1da177e4
LT
1049 * @bdev: destination block device
1050 * @uaddr: start of user address
1051 * @len: length in bytes
1052 * @write_to_vm: bool indicating writing to pages or not
a3bce90e 1053 * @gfp_mask: memory allocation flags
1da177e4
LT
1054 *
1055 * Map the user space address into a bio suitable for io to a block
1056 * device. Returns an error pointer in case of error.
1057 */
165125e1 1058struct bio *bio_map_user(struct request_queue *q, struct block_device *bdev,
a3bce90e
FT
1059 unsigned long uaddr, unsigned int len, int write_to_vm,
1060 gfp_t gfp_mask)
f1970baf
JB
1061{
1062 struct sg_iovec iov;
1063
3f70353e 1064 iov.iov_base = (void __user *)uaddr;
f1970baf
JB
1065 iov.iov_len = len;
1066
a3bce90e 1067 return bio_map_user_iov(q, bdev, &iov, 1, write_to_vm, gfp_mask);
f1970baf 1068}
a112a71d 1069EXPORT_SYMBOL(bio_map_user);
f1970baf
JB
1070
1071/**
1072 * bio_map_user_iov - map user sg_iovec table into bio
165125e1 1073 * @q: the struct request_queue for the bio
f1970baf
JB
1074 * @bdev: destination block device
1075 * @iov: the iovec.
1076 * @iov_count: number of elements in the iovec
1077 * @write_to_vm: bool indicating writing to pages or not
a3bce90e 1078 * @gfp_mask: memory allocation flags
f1970baf
JB
1079 *
1080 * Map the user space address into a bio suitable for io to a block
1081 * device. Returns an error pointer in case of error.
1082 */
165125e1 1083struct bio *bio_map_user_iov(struct request_queue *q, struct block_device *bdev,
f1970baf 1084 struct sg_iovec *iov, int iov_count,
a3bce90e 1085 int write_to_vm, gfp_t gfp_mask)
1da177e4
LT
1086{
1087 struct bio *bio;
1088
a3bce90e
FT
1089 bio = __bio_map_user_iov(q, bdev, iov, iov_count, write_to_vm,
1090 gfp_mask);
1da177e4
LT
1091 if (IS_ERR(bio))
1092 return bio;
1093
1094 /*
1095 * subtle -- if __bio_map_user() ended up bouncing a bio,
1096 * it would normally disappear when its bi_end_io is run.
1097 * however, we need it for the unmap, so grab an extra
1098 * reference to it
1099 */
1100 bio_get(bio);
1101
0e75f906 1102 return bio;
1da177e4
LT
1103}
1104
1105static void __bio_unmap_user(struct bio *bio)
1106{
1107 struct bio_vec *bvec;
1108 int i;
1109
1110 /*
1111 * make sure we dirty pages we wrote to
1112 */
1113 __bio_for_each_segment(bvec, bio, i, 0) {
1114 if (bio_data_dir(bio) == READ)
1115 set_page_dirty_lock(bvec->bv_page);
1116
1117 page_cache_release(bvec->bv_page);
1118 }
1119
1120 bio_put(bio);
1121}
1122
1123/**
1124 * bio_unmap_user - unmap a bio
1125 * @bio: the bio being unmapped
1126 *
1127 * Unmap a bio previously mapped by bio_map_user(). Must be called with
1128 * a process context.
1129 *
1130 * bio_unmap_user() may sleep.
1131 */
1132void bio_unmap_user(struct bio *bio)
1133{
1134 __bio_unmap_user(bio);
1135 bio_put(bio);
1136}
a112a71d 1137EXPORT_SYMBOL(bio_unmap_user);
1da177e4 1138
6712ecf8 1139static void bio_map_kern_endio(struct bio *bio, int err)
b823825e 1140{
b823825e 1141 bio_put(bio);
b823825e
JA
1142}
1143
165125e1 1144static struct bio *__bio_map_kern(struct request_queue *q, void *data,
27496a8c 1145 unsigned int len, gfp_t gfp_mask)
df46b9a4
MC
1146{
1147 unsigned long kaddr = (unsigned long)data;
1148 unsigned long end = (kaddr + len + PAGE_SIZE - 1) >> PAGE_SHIFT;
1149 unsigned long start = kaddr >> PAGE_SHIFT;
1150 const int nr_pages = end - start;
1151 int offset, i;
1152 struct bio *bio;
1153
a9e9dc24 1154 bio = bio_kmalloc(gfp_mask, nr_pages);
df46b9a4
MC
1155 if (!bio)
1156 return ERR_PTR(-ENOMEM);
1157
1158 offset = offset_in_page(kaddr);
1159 for (i = 0; i < nr_pages; i++) {
1160 unsigned int bytes = PAGE_SIZE - offset;
1161
1162 if (len <= 0)
1163 break;
1164
1165 if (bytes > len)
1166 bytes = len;
1167
defd94b7
MC
1168 if (bio_add_pc_page(q, bio, virt_to_page(data), bytes,
1169 offset) < bytes)
df46b9a4
MC
1170 break;
1171
1172 data += bytes;
1173 len -= bytes;
1174 offset = 0;
1175 }
1176
b823825e 1177 bio->bi_end_io = bio_map_kern_endio;
df46b9a4
MC
1178 return bio;
1179}
1180
1181/**
1182 * bio_map_kern - map kernel address into bio
165125e1 1183 * @q: the struct request_queue for the bio
df46b9a4
MC
1184 * @data: pointer to buffer to map
1185 * @len: length in bytes
1186 * @gfp_mask: allocation flags for bio allocation
1187 *
1188 * Map the kernel address into a bio suitable for io to a block
1189 * device. Returns an error pointer in case of error.
1190 */
165125e1 1191struct bio *bio_map_kern(struct request_queue *q, void *data, unsigned int len,
27496a8c 1192 gfp_t gfp_mask)
df46b9a4
MC
1193{
1194 struct bio *bio;
1195
1196 bio = __bio_map_kern(q, data, len, gfp_mask);
1197 if (IS_ERR(bio))
1198 return bio;
1199
1200 if (bio->bi_size == len)
1201 return bio;
1202
1203 /*
1204 * Don't support partial mappings.
1205 */
1206 bio_put(bio);
1207 return ERR_PTR(-EINVAL);
1208}
a112a71d 1209EXPORT_SYMBOL(bio_map_kern);
df46b9a4 1210
68154e90
FT
1211static void bio_copy_kern_endio(struct bio *bio, int err)
1212{
1213 struct bio_vec *bvec;
1214 const int read = bio_data_dir(bio) == READ;
76029ff3 1215 struct bio_map_data *bmd = bio->bi_private;
68154e90 1216 int i;
76029ff3 1217 char *p = bmd->sgvecs[0].iov_base;
68154e90
FT
1218
1219 __bio_for_each_segment(bvec, bio, i, 0) {
1220 char *addr = page_address(bvec->bv_page);
76029ff3 1221 int len = bmd->iovecs[i].bv_len;
68154e90 1222
4fc981ef 1223 if (read)
76029ff3 1224 memcpy(p, addr, len);
68154e90
FT
1225
1226 __free_page(bvec->bv_page);
76029ff3 1227 p += len;
68154e90
FT
1228 }
1229
76029ff3 1230 bio_free_map_data(bmd);
68154e90
FT
1231 bio_put(bio);
1232}
1233
1234/**
1235 * bio_copy_kern - copy kernel address into bio
1236 * @q: the struct request_queue for the bio
1237 * @data: pointer to buffer to copy
1238 * @len: length in bytes
1239 * @gfp_mask: allocation flags for bio and page allocation
ffee0259 1240 * @reading: data direction is READ
68154e90
FT
1241 *
1242 * copy the kernel address into a bio suitable for io to a block
1243 * device. Returns an error pointer in case of error.
1244 */
1245struct bio *bio_copy_kern(struct request_queue *q, void *data, unsigned int len,
1246 gfp_t gfp_mask, int reading)
1247{
68154e90
FT
1248 struct bio *bio;
1249 struct bio_vec *bvec;
4d8ab62e 1250 int i;
68154e90 1251
4d8ab62e
FT
1252 bio = bio_copy_user(q, NULL, (unsigned long)data, len, 1, gfp_mask);
1253 if (IS_ERR(bio))
1254 return bio;
68154e90
FT
1255
1256 if (!reading) {
1257 void *p = data;
1258
1259 bio_for_each_segment(bvec, bio, i) {
1260 char *addr = page_address(bvec->bv_page);
1261
1262 memcpy(addr, p, bvec->bv_len);
1263 p += bvec->bv_len;
1264 }
1265 }
1266
68154e90 1267 bio->bi_end_io = bio_copy_kern_endio;
76029ff3 1268
68154e90 1269 return bio;
68154e90 1270}
a112a71d 1271EXPORT_SYMBOL(bio_copy_kern);
68154e90 1272
1da177e4
LT
1273/*
1274 * bio_set_pages_dirty() and bio_check_pages_dirty() are support functions
1275 * for performing direct-IO in BIOs.
1276 *
1277 * The problem is that we cannot run set_page_dirty() from interrupt context
1278 * because the required locks are not interrupt-safe. So what we can do is to
1279 * mark the pages dirty _before_ performing IO. And in interrupt context,
1280 * check that the pages are still dirty. If so, fine. If not, redirty them
1281 * in process context.
1282 *
1283 * We special-case compound pages here: normally this means reads into hugetlb
1284 * pages. The logic in here doesn't really work right for compound pages
1285 * because the VM does not uniformly chase down the head page in all cases.
1286 * But dirtiness of compound pages is pretty meaningless anyway: the VM doesn't
1287 * handle them at all. So we skip compound pages here at an early stage.
1288 *
1289 * Note that this code is very hard to test under normal circumstances because
1290 * direct-io pins the pages with get_user_pages(). This makes
1291 * is_page_cache_freeable return false, and the VM will not clean the pages.
1292 * But other code (eg, pdflush) could clean the pages if they are mapped
1293 * pagecache.
1294 *
1295 * Simply disabling the call to bio_set_pages_dirty() is a good way to test the
1296 * deferred bio dirtying paths.
1297 */
1298
1299/*
1300 * bio_set_pages_dirty() will mark all the bio's pages as dirty.
1301 */
1302void bio_set_pages_dirty(struct bio *bio)
1303{
1304 struct bio_vec *bvec = bio->bi_io_vec;
1305 int i;
1306
1307 for (i = 0; i < bio->bi_vcnt; i++) {
1308 struct page *page = bvec[i].bv_page;
1309
1310 if (page && !PageCompound(page))
1311 set_page_dirty_lock(page);
1312 }
1313}
1314
86b6c7a7 1315static void bio_release_pages(struct bio *bio)
1da177e4
LT
1316{
1317 struct bio_vec *bvec = bio->bi_io_vec;
1318 int i;
1319
1320 for (i = 0; i < bio->bi_vcnt; i++) {
1321 struct page *page = bvec[i].bv_page;
1322
1323 if (page)
1324 put_page(page);
1325 }
1326}
1327
1328/*
1329 * bio_check_pages_dirty() will check that all the BIO's pages are still dirty.
1330 * If they are, then fine. If, however, some pages are clean then they must
1331 * have been written out during the direct-IO read. So we take another ref on
1332 * the BIO and the offending pages and re-dirty the pages in process context.
1333 *
1334 * It is expected that bio_check_pages_dirty() will wholly own the BIO from
1335 * here on. It will run one page_cache_release() against each page and will
1336 * run one bio_put() against the BIO.
1337 */
1338
65f27f38 1339static void bio_dirty_fn(struct work_struct *work);
1da177e4 1340
65f27f38 1341static DECLARE_WORK(bio_dirty_work, bio_dirty_fn);
1da177e4
LT
1342static DEFINE_SPINLOCK(bio_dirty_lock);
1343static struct bio *bio_dirty_list;
1344
1345/*
1346 * This runs in process context
1347 */
65f27f38 1348static void bio_dirty_fn(struct work_struct *work)
1da177e4
LT
1349{
1350 unsigned long flags;
1351 struct bio *bio;
1352
1353 spin_lock_irqsave(&bio_dirty_lock, flags);
1354 bio = bio_dirty_list;
1355 bio_dirty_list = NULL;
1356 spin_unlock_irqrestore(&bio_dirty_lock, flags);
1357
1358 while (bio) {
1359 struct bio *next = bio->bi_private;
1360
1361 bio_set_pages_dirty(bio);
1362 bio_release_pages(bio);
1363 bio_put(bio);
1364 bio = next;
1365 }
1366}
1367
1368void bio_check_pages_dirty(struct bio *bio)
1369{
1370 struct bio_vec *bvec = bio->bi_io_vec;
1371 int nr_clean_pages = 0;
1372 int i;
1373
1374 for (i = 0; i < bio->bi_vcnt; i++) {
1375 struct page *page = bvec[i].bv_page;
1376
1377 if (PageDirty(page) || PageCompound(page)) {
1378 page_cache_release(page);
1379 bvec[i].bv_page = NULL;
1380 } else {
1381 nr_clean_pages++;
1382 }
1383 }
1384
1385 if (nr_clean_pages) {
1386 unsigned long flags;
1387
1388 spin_lock_irqsave(&bio_dirty_lock, flags);
1389 bio->bi_private = bio_dirty_list;
1390 bio_dirty_list = bio;
1391 spin_unlock_irqrestore(&bio_dirty_lock, flags);
1392 schedule_work(&bio_dirty_work);
1393 } else {
1394 bio_put(bio);
1395 }
1396}
1397
2d4dc890
IL
1398#if ARCH_IMPLEMENTS_FLUSH_DCACHE_PAGE
1399void bio_flush_dcache_pages(struct bio *bi)
1400{
1401 int i;
1402 struct bio_vec *bvec;
1403
1404 bio_for_each_segment(bvec, bi, i)
1405 flush_dcache_page(bvec->bv_page);
1406}
1407EXPORT_SYMBOL(bio_flush_dcache_pages);
1408#endif
1409
1da177e4
LT
1410/**
1411 * bio_endio - end I/O on a bio
1412 * @bio: bio
1da177e4
LT
1413 * @error: error, if any
1414 *
1415 * Description:
6712ecf8 1416 * bio_endio() will end I/O on the whole bio. bio_endio() is the
5bb23a68
N
1417 * preferred way to end I/O on a bio, it takes care of clearing
1418 * BIO_UPTODATE on error. @error is 0 on success, and and one of the
1419 * established -Exxxx (-EIO, for instance) error values in case
1420 * something went wrong. Noone should call bi_end_io() directly on a
1421 * bio unless they own it and thus know that it has an end_io
1422 * function.
1da177e4 1423 **/
6712ecf8 1424void bio_endio(struct bio *bio, int error)
1da177e4
LT
1425{
1426 if (error)
1427 clear_bit(BIO_UPTODATE, &bio->bi_flags);
9cc54d40
N
1428 else if (!test_bit(BIO_UPTODATE, &bio->bi_flags))
1429 error = -EIO;
1da177e4 1430
5bb23a68 1431 if (bio->bi_end_io)
6712ecf8 1432 bio->bi_end_io(bio, error);
1da177e4 1433}
a112a71d 1434EXPORT_SYMBOL(bio_endio);
1da177e4
LT
1435
1436void bio_pair_release(struct bio_pair *bp)
1437{
1438 if (atomic_dec_and_test(&bp->cnt)) {
1439 struct bio *master = bp->bio1.bi_private;
1440
6712ecf8 1441 bio_endio(master, bp->error);
1da177e4
LT
1442 mempool_free(bp, bp->bio2.bi_private);
1443 }
1444}
a112a71d 1445EXPORT_SYMBOL(bio_pair_release);
1da177e4 1446
6712ecf8 1447static void bio_pair_end_1(struct bio *bi, int err)
1da177e4
LT
1448{
1449 struct bio_pair *bp = container_of(bi, struct bio_pair, bio1);
1450
1451 if (err)
1452 bp->error = err;
1453
1da177e4 1454 bio_pair_release(bp);
1da177e4
LT
1455}
1456
6712ecf8 1457static void bio_pair_end_2(struct bio *bi, int err)
1da177e4
LT
1458{
1459 struct bio_pair *bp = container_of(bi, struct bio_pair, bio2);
1460
1461 if (err)
1462 bp->error = err;
1463
1da177e4 1464 bio_pair_release(bp);
1da177e4
LT
1465}
1466
1467/*
c7eee1b8 1468 * split a bio - only worry about a bio with a single page in its iovec
1da177e4 1469 */
6feef531 1470struct bio_pair *bio_split(struct bio *bi, int first_sectors)
1da177e4 1471{
6feef531 1472 struct bio_pair *bp = mempool_alloc(bio_split_pool, GFP_NOIO);
1da177e4
LT
1473
1474 if (!bp)
1475 return bp;
1476
5f3ea37c 1477 trace_block_split(bdev_get_queue(bi->bi_bdev), bi,
2056a782
JA
1478 bi->bi_sector + first_sectors);
1479
1da177e4
LT
1480 BUG_ON(bi->bi_vcnt != 1);
1481 BUG_ON(bi->bi_idx != 0);
1482 atomic_set(&bp->cnt, 3);
1483 bp->error = 0;
1484 bp->bio1 = *bi;
1485 bp->bio2 = *bi;
1486 bp->bio2.bi_sector += first_sectors;
1487 bp->bio2.bi_size -= first_sectors << 9;
1488 bp->bio1.bi_size = first_sectors << 9;
1489
1490 bp->bv1 = bi->bi_io_vec[0];
1491 bp->bv2 = bi->bi_io_vec[0];
1492 bp->bv2.bv_offset += first_sectors << 9;
1493 bp->bv2.bv_len -= first_sectors << 9;
1494 bp->bv1.bv_len = first_sectors << 9;
1495
1496 bp->bio1.bi_io_vec = &bp->bv1;
1497 bp->bio2.bi_io_vec = &bp->bv2;
1498
a2eb0c10
N
1499 bp->bio1.bi_max_vecs = 1;
1500 bp->bio2.bi_max_vecs = 1;
1501
1da177e4
LT
1502 bp->bio1.bi_end_io = bio_pair_end_1;
1503 bp->bio2.bi_end_io = bio_pair_end_2;
1504
1505 bp->bio1.bi_private = bi;
6feef531 1506 bp->bio2.bi_private = bio_split_pool;
1da177e4 1507
7ba1ba12
MP
1508 if (bio_integrity(bi))
1509 bio_integrity_split(bi, bp, first_sectors);
1510
1da177e4
LT
1511 return bp;
1512}
a112a71d 1513EXPORT_SYMBOL(bio_split);
1da177e4 1514
ad3316bf
MP
1515/**
1516 * bio_sector_offset - Find hardware sector offset in bio
1517 * @bio: bio to inspect
1518 * @index: bio_vec index
1519 * @offset: offset in bv_page
1520 *
1521 * Return the number of hardware sectors between beginning of bio
1522 * and an end point indicated by a bio_vec index and an offset
1523 * within that vector's page.
1524 */
1525sector_t bio_sector_offset(struct bio *bio, unsigned short index,
1526 unsigned int offset)
1527{
e1defc4f 1528 unsigned int sector_sz;
ad3316bf
MP
1529 struct bio_vec *bv;
1530 sector_t sectors;
1531 int i;
1532
e1defc4f 1533 sector_sz = queue_logical_block_size(bio->bi_bdev->bd_disk->queue);
ad3316bf
MP
1534 sectors = 0;
1535
1536 if (index >= bio->bi_idx)
1537 index = bio->bi_vcnt - 1;
1538
1539 __bio_for_each_segment(bv, bio, i, 0) {
1540 if (i == index) {
1541 if (offset > bv->bv_offset)
1542 sectors += (offset - bv->bv_offset) / sector_sz;
1543 break;
1544 }
1545
1546 sectors += bv->bv_len / sector_sz;
1547 }
1548
1549 return sectors;
1550}
1551EXPORT_SYMBOL(bio_sector_offset);
1da177e4
LT
1552
1553/*
1554 * create memory pools for biovec's in a bio_set.
1555 * use the global biovec slabs created for general use.
1556 */
5972511b 1557static int biovec_create_pools(struct bio_set *bs, int pool_entries)
1da177e4 1558{
7ff9345f 1559 struct biovec_slab *bp = bvec_slabs + BIOVEC_MAX_IDX;
1da177e4 1560
7ff9345f
JA
1561 bs->bvec_pool = mempool_create_slab_pool(pool_entries, bp->slab);
1562 if (!bs->bvec_pool)
1563 return -ENOMEM;
1da177e4 1564
1da177e4
LT
1565 return 0;
1566}
1567
1568static void biovec_free_pools(struct bio_set *bs)
1569{
7ff9345f 1570 mempool_destroy(bs->bvec_pool);
1da177e4
LT
1571}
1572
1573void bioset_free(struct bio_set *bs)
1574{
1575 if (bs->bio_pool)
1576 mempool_destroy(bs->bio_pool);
1577
7878cba9 1578 bioset_integrity_free(bs);
1da177e4 1579 biovec_free_pools(bs);
bb799ca0 1580 bio_put_slab(bs);
1da177e4
LT
1581
1582 kfree(bs);
1583}
a112a71d 1584EXPORT_SYMBOL(bioset_free);
1da177e4 1585
bb799ca0
JA
1586/**
1587 * bioset_create - Create a bio_set
1588 * @pool_size: Number of bio and bio_vecs to cache in the mempool
1589 * @front_pad: Number of bytes to allocate in front of the returned bio
1590 *
1591 * Description:
1592 * Set up a bio_set to be used with @bio_alloc_bioset. Allows the caller
1593 * to ask for a number of bytes to be allocated in front of the bio.
1594 * Front pad allocation is useful for embedding the bio inside
1595 * another structure, to avoid allocating extra data to go with the bio.
1596 * Note that the bio must be embedded at the END of that structure always,
1597 * or things will break badly.
1598 */
1599struct bio_set *bioset_create(unsigned int pool_size, unsigned int front_pad)
1da177e4 1600{
392ddc32 1601 unsigned int back_pad = BIO_INLINE_VECS * sizeof(struct bio_vec);
1b434498 1602 struct bio_set *bs;
1da177e4 1603
1b434498 1604 bs = kzalloc(sizeof(*bs), GFP_KERNEL);
1da177e4
LT
1605 if (!bs)
1606 return NULL;
1607
bb799ca0 1608 bs->front_pad = front_pad;
1b434498 1609
392ddc32 1610 bs->bio_slab = bio_find_or_create_slab(front_pad + back_pad);
bb799ca0
JA
1611 if (!bs->bio_slab) {
1612 kfree(bs);
1613 return NULL;
1614 }
1615
1616 bs->bio_pool = mempool_create_slab_pool(pool_size, bs->bio_slab);
1da177e4
LT
1617 if (!bs->bio_pool)
1618 goto bad;
1619
7878cba9
MP
1620 if (bioset_integrity_create(bs, pool_size))
1621 goto bad;
1622
bb799ca0 1623 if (!biovec_create_pools(bs, pool_size))
1da177e4
LT
1624 return bs;
1625
1626bad:
1627 bioset_free(bs);
1628 return NULL;
1629}
a112a71d 1630EXPORT_SYMBOL(bioset_create);
1da177e4
LT
1631
1632static void __init biovec_init_slabs(void)
1633{
1634 int i;
1635
1636 for (i = 0; i < BIOVEC_NR_POOLS; i++) {
1637 int size;
1638 struct biovec_slab *bvs = bvec_slabs + i;
1639
a7fcd37c
JA
1640#ifndef CONFIG_BLK_DEV_INTEGRITY
1641 if (bvs->nr_vecs <= BIO_INLINE_VECS) {
1642 bvs->slab = NULL;
1643 continue;
1644 }
1645#endif
1646
1da177e4
LT
1647 size = bvs->nr_vecs * sizeof(struct bio_vec);
1648 bvs->slab = kmem_cache_create(bvs->name, size, 0,
20c2df83 1649 SLAB_HWCACHE_ALIGN|SLAB_PANIC, NULL);
1da177e4
LT
1650 }
1651}
1652
1653static int __init init_bio(void)
1654{
bb799ca0
JA
1655 bio_slab_max = 2;
1656 bio_slab_nr = 0;
1657 bio_slabs = kzalloc(bio_slab_max * sizeof(struct bio_slab), GFP_KERNEL);
1658 if (!bio_slabs)
1659 panic("bio: can't allocate bios\n");
1da177e4 1660
7878cba9 1661 bio_integrity_init();
1da177e4
LT
1662 biovec_init_slabs();
1663
bb799ca0 1664 fs_bio_set = bioset_create(BIO_POOL_SIZE, 0);
1da177e4
LT
1665 if (!fs_bio_set)
1666 panic("bio: can't allocate bios\n");
1667
0eaae62a
MD
1668 bio_split_pool = mempool_create_kmalloc_pool(BIO_SPLIT_ENTRIES,
1669 sizeof(struct bio_pair));
1da177e4
LT
1670 if (!bio_split_pool)
1671 panic("bio: can't create split pool\n");
1672
1673 return 0;
1674}
1da177e4 1675subsys_initcall(init_bio);