Merge remote-tracking branch 'asoc/fix/rcar' into asoc-linus
[deliverable/linux.git] / drivers / block / brd.c
CommitLineData
9db5579b
NP
1/*
2 * Ram backed block device driver.
3 *
4 * Copyright (C) 2007 Nick Piggin
5 * Copyright (C) 2007 Novell Inc.
6 *
7 * Parts derived from drivers/block/rd.c, and drivers/block/loop.c, copyright
8 * of their respective owners.
9 */
10
11#include <linux/init.h>
12#include <linux/module.h>
13#include <linux/moduleparam.h>
14#include <linux/major.h>
15#include <linux/blkdev.h>
16#include <linux/bio.h>
17#include <linux/highmem.h>
2a48fc0a 18#include <linux/mutex.h>
9db5579b 19#include <linux/radix-tree.h>
ff01bb48 20#include <linux/fs.h>
5a0e3ad6 21#include <linux/slab.h>
9db5579b
NP
22
23#include <asm/uaccess.h>
24
25#define SECTOR_SHIFT 9
26#define PAGE_SECTORS_SHIFT (PAGE_SHIFT - SECTOR_SHIFT)
27#define PAGE_SECTORS (1 << PAGE_SECTORS_SHIFT)
28
29/*
30 * Each block ramdisk device has a radix_tree brd_pages of pages that stores
31 * the pages containing the block device's contents. A brd page's ->index is
32 * its offset in PAGE_SIZE units. This is similar to, but in no way connected
33 * with, the kernel's pagecache or buffer cache (which sit above our block
34 * device).
35 */
36struct brd_device {
37 int brd_number;
9db5579b
NP
38
39 struct request_queue *brd_queue;
40 struct gendisk *brd_disk;
41 struct list_head brd_list;
42
43 /*
44 * Backing store of pages and lock to protect it. This is the contents
45 * of the block device.
46 */
47 spinlock_t brd_lock;
48 struct radix_tree_root brd_pages;
49};
50
51/*
52 * Look up and return a brd's page for a given sector.
53 */
2a48fc0a 54static DEFINE_MUTEX(brd_mutex);
9db5579b
NP
55static struct page *brd_lookup_page(struct brd_device *brd, sector_t sector)
56{
57 pgoff_t idx;
58 struct page *page;
59
60 /*
61 * The page lifetime is protected by the fact that we have opened the
62 * device node -- brd pages will never be deleted under us, so we
63 * don't need any further locking or refcounting.
64 *
65 * This is strictly true for the radix-tree nodes as well (ie. we
66 * don't actually need the rcu_read_lock()), however that is not a
67 * documented feature of the radix-tree API so it is better to be
68 * safe here (we don't have total exclusion from radix tree updates
69 * here, only deletes).
70 */
71 rcu_read_lock();
72 idx = sector >> PAGE_SECTORS_SHIFT; /* sector to page index */
73 page = radix_tree_lookup(&brd->brd_pages, idx);
74 rcu_read_unlock();
75
76 BUG_ON(page && page->index != idx);
77
78 return page;
79}
80
81/*
82 * Look up and return a brd's page for a given sector.
83 * If one does not exist, allocate an empty page, and insert that. Then
84 * return it.
85 */
86static struct page *brd_insert_page(struct brd_device *brd, sector_t sector)
87{
88 pgoff_t idx;
89 struct page *page;
75acb9cd 90 gfp_t gfp_flags;
9db5579b
NP
91
92 page = brd_lookup_page(brd, sector);
93 if (page)
94 return page;
95
96 /*
97 * Must use NOIO because we don't want to recurse back into the
98 * block or filesystem layers from page reclaim.
75acb9cd
NP
99 *
100 * Cannot support XIP and highmem, because our ->direct_access
101 * routine for XIP must return memory that is always addressable.
102 * If XIP was reworked to use pfns and kmap throughout, this
103 * restriction might be able to be lifted.
9db5579b 104 */
75acb9cd
NP
105 gfp_flags = GFP_NOIO | __GFP_ZERO;
106#ifndef CONFIG_BLK_DEV_XIP
107 gfp_flags |= __GFP_HIGHMEM;
108#endif
26defe34 109 page = alloc_page(gfp_flags);
9db5579b
NP
110 if (!page)
111 return NULL;
112
113 if (radix_tree_preload(GFP_NOIO)) {
114 __free_page(page);
115 return NULL;
116 }
117
118 spin_lock(&brd->brd_lock);
119 idx = sector >> PAGE_SECTORS_SHIFT;
dfd20b2b 120 page->index = idx;
9db5579b
NP
121 if (radix_tree_insert(&brd->brd_pages, idx, page)) {
122 __free_page(page);
123 page = radix_tree_lookup(&brd->brd_pages, idx);
124 BUG_ON(!page);
125 BUG_ON(page->index != idx);
dfd20b2b 126 }
9db5579b
NP
127 spin_unlock(&brd->brd_lock);
128
129 radix_tree_preload_end();
130
131 return page;
132}
133
b7c33571
NP
134static void brd_free_page(struct brd_device *brd, sector_t sector)
135{
136 struct page *page;
137 pgoff_t idx;
138
139 spin_lock(&brd->brd_lock);
140 idx = sector >> PAGE_SECTORS_SHIFT;
141 page = radix_tree_delete(&brd->brd_pages, idx);
142 spin_unlock(&brd->brd_lock);
143 if (page)
144 __free_page(page);
145}
146
147static void brd_zero_page(struct brd_device *brd, sector_t sector)
148{
149 struct page *page;
150
151 page = brd_lookup_page(brd, sector);
152 if (page)
153 clear_highpage(page);
154}
155
9db5579b
NP
156/*
157 * Free all backing store pages and radix tree. This must only be called when
158 * there are no other users of the device.
159 */
160#define FREE_BATCH 16
161static void brd_free_pages(struct brd_device *brd)
162{
163 unsigned long pos = 0;
164 struct page *pages[FREE_BATCH];
165 int nr_pages;
166
167 do {
168 int i;
169
170 nr_pages = radix_tree_gang_lookup(&brd->brd_pages,
171 (void **)pages, pos, FREE_BATCH);
172
173 for (i = 0; i < nr_pages; i++) {
174 void *ret;
175
176 BUG_ON(pages[i]->index < pos);
177 pos = pages[i]->index;
178 ret = radix_tree_delete(&brd->brd_pages, pos);
179 BUG_ON(!ret || ret != pages[i]);
180 __free_page(pages[i]);
181 }
182
183 pos++;
184
185 /*
186 * This assumes radix_tree_gang_lookup always returns as
187 * many pages as possible. If the radix-tree code changes,
188 * so will this have to.
189 */
190 } while (nr_pages == FREE_BATCH);
191}
192
193/*
194 * copy_to_brd_setup must be called before copy_to_brd. It may sleep.
195 */
196static int copy_to_brd_setup(struct brd_device *brd, sector_t sector, size_t n)
197{
198 unsigned int offset = (sector & (PAGE_SECTORS-1)) << SECTOR_SHIFT;
199 size_t copy;
200
201 copy = min_t(size_t, n, PAGE_SIZE - offset);
202 if (!brd_insert_page(brd, sector))
96f8d8e0 203 return -ENOSPC;
9db5579b
NP
204 if (copy < n) {
205 sector += copy >> SECTOR_SHIFT;
206 if (!brd_insert_page(brd, sector))
96f8d8e0 207 return -ENOSPC;
9db5579b
NP
208 }
209 return 0;
210}
211
b7c33571
NP
212static void discard_from_brd(struct brd_device *brd,
213 sector_t sector, size_t n)
214{
215 while (n >= PAGE_SIZE) {
216 /*
217 * Don't want to actually discard pages here because
218 * re-allocating the pages can result in writeback
219 * deadlocks under heavy load.
220 */
221 if (0)
222 brd_free_page(brd, sector);
223 else
224 brd_zero_page(brd, sector);
225 sector += PAGE_SIZE >> SECTOR_SHIFT;
226 n -= PAGE_SIZE;
227 }
228}
229
9db5579b
NP
230/*
231 * Copy n bytes from src to the brd starting at sector. Does not sleep.
232 */
233static void copy_to_brd(struct brd_device *brd, const void *src,
234 sector_t sector, size_t n)
235{
236 struct page *page;
237 void *dst;
238 unsigned int offset = (sector & (PAGE_SECTORS-1)) << SECTOR_SHIFT;
239 size_t copy;
240
241 copy = min_t(size_t, n, PAGE_SIZE - offset);
242 page = brd_lookup_page(brd, sector);
243 BUG_ON(!page);
244
cfd8005c 245 dst = kmap_atomic(page);
9db5579b 246 memcpy(dst + offset, src, copy);
cfd8005c 247 kunmap_atomic(dst);
9db5579b
NP
248
249 if (copy < n) {
250 src += copy;
251 sector += copy >> SECTOR_SHIFT;
252 copy = n - copy;
253 page = brd_lookup_page(brd, sector);
254 BUG_ON(!page);
255
cfd8005c 256 dst = kmap_atomic(page);
9db5579b 257 memcpy(dst, src, copy);
cfd8005c 258 kunmap_atomic(dst);
9db5579b
NP
259 }
260}
261
262/*
263 * Copy n bytes to dst from the brd starting at sector. Does not sleep.
264 */
265static void copy_from_brd(void *dst, struct brd_device *brd,
266 sector_t sector, size_t n)
267{
268 struct page *page;
269 void *src;
270 unsigned int offset = (sector & (PAGE_SECTORS-1)) << SECTOR_SHIFT;
271 size_t copy;
272
273 copy = min_t(size_t, n, PAGE_SIZE - offset);
274 page = brd_lookup_page(brd, sector);
275 if (page) {
cfd8005c 276 src = kmap_atomic(page);
9db5579b 277 memcpy(dst, src + offset, copy);
cfd8005c 278 kunmap_atomic(src);
9db5579b
NP
279 } else
280 memset(dst, 0, copy);
281
282 if (copy < n) {
283 dst += copy;
284 sector += copy >> SECTOR_SHIFT;
285 copy = n - copy;
286 page = brd_lookup_page(brd, sector);
287 if (page) {
cfd8005c 288 src = kmap_atomic(page);
9db5579b 289 memcpy(dst, src, copy);
cfd8005c 290 kunmap_atomic(src);
9db5579b
NP
291 } else
292 memset(dst, 0, copy);
293 }
294}
295
296/*
297 * Process a single bvec of a bio.
298 */
299static int brd_do_bvec(struct brd_device *brd, struct page *page,
300 unsigned int len, unsigned int off, int rw,
301 sector_t sector)
302{
303 void *mem;
304 int err = 0;
305
306 if (rw != READ) {
307 err = copy_to_brd_setup(brd, sector, len);
308 if (err)
309 goto out;
310 }
311
cfd8005c 312 mem = kmap_atomic(page);
9db5579b
NP
313 if (rw == READ) {
314 copy_from_brd(mem + off, brd, sector, len);
315 flush_dcache_page(page);
c2572f2b
NP
316 } else {
317 flush_dcache_page(page);
9db5579b 318 copy_to_brd(brd, mem + off, sector, len);
c2572f2b 319 }
cfd8005c 320 kunmap_atomic(mem);
9db5579b
NP
321
322out:
323 return err;
324}
325
5a7bbad2 326static void brd_make_request(struct request_queue *q, struct bio *bio)
9db5579b
NP
327{
328 struct block_device *bdev = bio->bi_bdev;
329 struct brd_device *brd = bdev->bd_disk->private_data;
330 int rw;
7988613b 331 struct bio_vec bvec;
9db5579b 332 sector_t sector;
7988613b 333 struct bvec_iter iter;
9db5579b
NP
334 int err = -EIO;
335
4f024f37 336 sector = bio->bi_iter.bi_sector;
f73a1c7d 337 if (bio_end_sector(bio) > get_capacity(bdev->bd_disk))
9db5579b
NP
338 goto out;
339
7b6d91da 340 if (unlikely(bio->bi_rw & REQ_DISCARD)) {
b7c33571 341 err = 0;
4f024f37 342 discard_from_brd(brd, sector, bio->bi_iter.bi_size);
b7c33571
NP
343 goto out;
344 }
345
9db5579b
NP
346 rw = bio_rw(bio);
347 if (rw == READA)
348 rw = READ;
349
7988613b
KO
350 bio_for_each_segment(bvec, bio, iter) {
351 unsigned int len = bvec.bv_len;
352 err = brd_do_bvec(brd, bvec.bv_page, len,
353 bvec.bv_offset, rw, sector);
9db5579b
NP
354 if (err)
355 break;
356 sector += len >> SECTOR_SHIFT;
357 }
358
359out:
360 bio_endio(bio, err);
9db5579b
NP
361}
362
a72132c3
MW
363static int brd_rw_page(struct block_device *bdev, sector_t sector,
364 struct page *page, int rw)
365{
366 struct brd_device *brd = bdev->bd_disk->private_data;
367 int err = brd_do_bvec(brd, page, PAGE_CACHE_SIZE, 0, rw, sector);
368 page_endio(page, rw & WRITE, err);
369 return err;
370}
371
75acb9cd 372#ifdef CONFIG_BLK_DEV_XIP
b7c33571 373static int brd_direct_access(struct block_device *bdev, sector_t sector,
30afcb4b 374 void **kaddr, unsigned long *pfn)
75acb9cd
NP
375{
376 struct brd_device *brd = bdev->bd_disk->private_data;
377 struct page *page;
378
379 if (!brd)
380 return -ENODEV;
381 if (sector & (PAGE_SECTORS-1))
382 return -EINVAL;
383 if (sector + PAGE_SECTORS > get_capacity(bdev->bd_disk))
384 return -ERANGE;
385 page = brd_insert_page(brd, sector);
386 if (!page)
96f8d8e0 387 return -ENOSPC;
30afcb4b
JH
388 *kaddr = page_address(page);
389 *pfn = page_to_pfn(page);
75acb9cd
NP
390
391 return 0;
392}
393#endif
394
2b9ecd03 395static int brd_ioctl(struct block_device *bdev, fmode_t mode,
9db5579b
NP
396 unsigned int cmd, unsigned long arg)
397{
398 int error;
9db5579b
NP
399 struct brd_device *brd = bdev->bd_disk->private_data;
400
401 if (cmd != BLKFLSBUF)
402 return -ENOTTY;
403
404 /*
405 * ram device BLKFLSBUF has special semantics, we want to actually
406 * release and destroy the ramdisk data.
407 */
2a48fc0a 408 mutex_lock(&brd_mutex);
9db5579b
NP
409 mutex_lock(&bdev->bd_mutex);
410 error = -EBUSY;
411 if (bdev->bd_openers <= 1) {
412 /*
ff01bb48
AV
413 * Kill the cache first, so it isn't written back to the
414 * device.
9db5579b
NP
415 *
416 * Another thread might instantiate more buffercache here,
417 * but there is not much we can do to close that race.
418 */
ff01bb48 419 kill_bdev(bdev);
9db5579b
NP
420 brd_free_pages(brd);
421 error = 0;
422 }
423 mutex_unlock(&bdev->bd_mutex);
2a48fc0a 424 mutex_unlock(&brd_mutex);
9db5579b
NP
425
426 return error;
427}
428
83d5cde4 429static const struct block_device_operations brd_fops = {
75acb9cd 430 .owner = THIS_MODULE,
a72132c3 431 .rw_page = brd_rw_page,
8a6cfeb6 432 .ioctl = brd_ioctl,
75acb9cd
NP
433#ifdef CONFIG_BLK_DEV_XIP
434 .direct_access = brd_direct_access,
435#endif
9db5579b
NP
436};
437
438/*
439 * And now the modules code and kernel interface.
440 */
441static int rd_nr;
442int rd_size = CONFIG_BLK_DEV_RAM_SIZE;
d7853d1f
LV
443static int max_part;
444static int part_shift;
8892cbaf 445module_param(rd_nr, int, S_IRUGO);
9db5579b 446MODULE_PARM_DESC(rd_nr, "Maximum number of brd devices");
8892cbaf 447module_param(rd_size, int, S_IRUGO);
9db5579b 448MODULE_PARM_DESC(rd_size, "Size of each RAM disk in kbytes.");
8892cbaf 449module_param(max_part, int, S_IRUGO);
d7853d1f 450MODULE_PARM_DESC(max_part, "Maximum number of partitions per RAM disk");
9db5579b
NP
451MODULE_LICENSE("GPL");
452MODULE_ALIAS_BLOCKDEV_MAJOR(RAMDISK_MAJOR);
efedf51c 453MODULE_ALIAS("rd");
9db5579b
NP
454
455#ifndef MODULE
456/* Legacy boot options - nonmodular */
457static int __init ramdisk_size(char *str)
458{
459 rd_size = simple_strtol(str, NULL, 0);
460 return 1;
461}
1adbee50 462__setup("ramdisk_size=", ramdisk_size);
9db5579b
NP
463#endif
464
465/*
466 * The device scheme is derived from loop.c. Keep them in synch where possible
467 * (should share code eventually).
468 */
469static LIST_HEAD(brd_devices);
470static DEFINE_MUTEX(brd_devices_mutex);
471
472static struct brd_device *brd_alloc(int i)
473{
474 struct brd_device *brd;
475 struct gendisk *disk;
476
477 brd = kzalloc(sizeof(*brd), GFP_KERNEL);
478 if (!brd)
479 goto out;
480 brd->brd_number = i;
481 spin_lock_init(&brd->brd_lock);
482 INIT_RADIX_TREE(&brd->brd_pages, GFP_ATOMIC);
483
484 brd->brd_queue = blk_alloc_queue(GFP_KERNEL);
485 if (!brd->brd_queue)
486 goto out_free_dev;
487 blk_queue_make_request(brd->brd_queue, brd_make_request);
086fa5ff 488 blk_queue_max_hw_sectors(brd->brd_queue, 1024);
9db5579b
NP
489 blk_queue_bounce_limit(brd->brd_queue, BLK_BOUNCE_ANY);
490
b7c33571
NP
491 brd->brd_queue->limits.discard_granularity = PAGE_SIZE;
492 brd->brd_queue->limits.max_discard_sectors = UINT_MAX;
493 brd->brd_queue->limits.discard_zeroes_data = 1;
494 queue_flag_set_unlocked(QUEUE_FLAG_DISCARD, brd->brd_queue);
495
d7853d1f 496 disk = brd->brd_disk = alloc_disk(1 << part_shift);
9db5579b
NP
497 if (!disk)
498 goto out_free_queue;
499 disk->major = RAMDISK_MAJOR;
d7853d1f 500 disk->first_minor = i << part_shift;
9db5579b
NP
501 disk->fops = &brd_fops;
502 disk->private_data = brd;
503 disk->queue = brd->brd_queue;
53978d0a 504 disk->flags |= GENHD_FL_SUPPRESS_PARTITION_INFO;
9db5579b
NP
505 sprintf(disk->disk_name, "ram%d", i);
506 set_capacity(disk, rd_size * 2);
507
508 return brd;
509
510out_free_queue:
511 blk_cleanup_queue(brd->brd_queue);
512out_free_dev:
513 kfree(brd);
514out:
515 return NULL;
516}
517
518static void brd_free(struct brd_device *brd)
519{
520 put_disk(brd->brd_disk);
521 blk_cleanup_queue(brd->brd_queue);
522 brd_free_pages(brd);
523 kfree(brd);
524}
525
526static struct brd_device *brd_init_one(int i)
527{
528 struct brd_device *brd;
529
530 list_for_each_entry(brd, &brd_devices, brd_list) {
531 if (brd->brd_number == i)
532 goto out;
533 }
534
535 brd = brd_alloc(i);
536 if (brd) {
537 add_disk(brd->brd_disk);
538 list_add_tail(&brd->brd_list, &brd_devices);
539 }
540out:
541 return brd;
542}
543
544static void brd_del_one(struct brd_device *brd)
545{
546 list_del(&brd->brd_list);
547 del_gendisk(brd->brd_disk);
548 brd_free(brd);
549}
550
551static struct kobject *brd_probe(dev_t dev, int *part, void *data)
552{
553 struct brd_device *brd;
554 struct kobject *kobj;
555
556 mutex_lock(&brd_devices_mutex);
af465668 557 brd = brd_init_one(MINOR(dev) >> part_shift);
a207f593 558 kobj = brd ? get_disk(brd->brd_disk) : NULL;
9db5579b
NP
559 mutex_unlock(&brd_devices_mutex);
560
561 *part = 0;
562 return kobj;
563}
564
565static int __init brd_init(void)
566{
567 int i, nr;
568 unsigned long range;
569 struct brd_device *brd, *next;
570
571 /*
572 * brd module now has a feature to instantiate underlying device
573 * structure on-demand, provided that there is an access dev node.
574 * However, this will not work well with user space tool that doesn't
575 * know about such "feature". In order to not break any existing
576 * tool, we do the following:
577 *
578 * (1) if rd_nr is specified, create that many upfront, and this
579 * also becomes a hard limit.
13868b76
NK
580 * (2) if rd_nr is not specified, create CONFIG_BLK_DEV_RAM_COUNT
581 * (default 16) rd device on module load, user can further
582 * extend brd device by create dev node themselves and have
583 * kernel automatically instantiate actual device on-demand.
9db5579b 584 */
d7853d1f
LV
585
586 part_shift = 0;
8892cbaf 587 if (max_part > 0) {
d7853d1f
LV
588 part_shift = fls(max_part);
589
8892cbaf
NK
590 /*
591 * Adjust max_part according to part_shift as it is exported
592 * to user space so that user can decide correct minor number
593 * if [s]he want to create more devices.
594 *
595 * Note that -1 is required because partition 0 is reserved
596 * for the whole disk.
597 */
598 max_part = (1UL << part_shift) - 1;
599 }
600
315980c8
NK
601 if ((1UL << part_shift) > DISK_MAX_PARTS)
602 return -EINVAL;
603
d7853d1f 604 if (rd_nr > 1UL << (MINORBITS - part_shift))
9db5579b
NP
605 return -EINVAL;
606
607 if (rd_nr) {
608 nr = rd_nr;
af465668 609 range = rd_nr << part_shift;
9db5579b
NP
610 } else {
611 nr = CONFIG_BLK_DEV_RAM_COUNT;
af465668 612 range = 1UL << MINORBITS;
9db5579b
NP
613 }
614
615 if (register_blkdev(RAMDISK_MAJOR, "ramdisk"))
616 return -EIO;
617
618 for (i = 0; i < nr; i++) {
619 brd = brd_alloc(i);
620 if (!brd)
621 goto out_free;
622 list_add_tail(&brd->brd_list, &brd_devices);
623 }
624
625 /* point of no return */
626
627 list_for_each_entry(brd, &brd_devices, brd_list)
628 add_disk(brd->brd_disk);
629
630 blk_register_region(MKDEV(RAMDISK_MAJOR, 0), range,
631 THIS_MODULE, brd_probe, NULL, NULL);
632
633 printk(KERN_INFO "brd: module loaded\n");
634 return 0;
635
636out_free:
637 list_for_each_entry_safe(brd, next, &brd_devices, brd_list) {
638 list_del(&brd->brd_list);
639 brd_free(brd);
640 }
c82f2966 641 unregister_blkdev(RAMDISK_MAJOR, "ramdisk");
9db5579b 642
9db5579b
NP
643 return -ENOMEM;
644}
645
646static void __exit brd_exit(void)
647{
648 unsigned long range;
649 struct brd_device *brd, *next;
650
af465668 651 range = rd_nr ? rd_nr << part_shift : 1UL << MINORBITS;
9db5579b
NP
652
653 list_for_each_entry_safe(brd, next, &brd_devices, brd_list)
654 brd_del_one(brd);
655
656 blk_unregister_region(MKDEV(RAMDISK_MAJOR, 0), range);
657 unregister_blkdev(RAMDISK_MAJOR, "ramdisk");
658}
659
660module_init(brd_init);
661module_exit(brd_exit);
662
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