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1 /*
2  * Copyright (c) 2003-2006, Cluster File Systems, Inc, info@clusterfs.com
3  * Written by Alex Tomas <alex@clusterfs.com>
4  *
5  * This program is free software; you can redistribute it and/or modify
6  * it under the terms of the GNU General Public License version 2 as
7  * published by the Free Software Foundation.
8  *
9  * This program is distributed in the hope that it will be useful,
10  * but WITHOUT ANY WARRANTY; without even the implied warranty of
11  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
12  * GNU General Public License for more details.
13  *
14  * You should have received a copy of the GNU General Public Licens
15  * along with this program; if not, write to the Free Software
16  * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-
17  */
18
19
20 /*
21  * mballoc.c contains the multiblocks allocation routines
22  */
23
24 #include "mballoc.h"
25 /*
26  * MUSTDO:
27  *   - test ext4_ext_search_left() and ext4_ext_search_right()
28  *   - search for metadata in few groups
29  *
30  * TODO v4:
31  *   - normalization should take into account whether file is still open
32  *   - discard preallocations if no free space left (policy?)
33  *   - don't normalize tails
34  *   - quota
35  *   - reservation for superuser
36  *
37  * TODO v3:
38  *   - bitmap read-ahead (proposed by Oleg Drokin aka green)
39  *   - track min/max extents in each group for better group selection
40  *   - mb_mark_used() may allocate chunk right after splitting buddy
41  *   - tree of groups sorted by number of free blocks
42  *   - error handling
43  */
44
45 /*
46  * The allocation request involve request for multiple number of blocks
47  * near to the goal(block) value specified.
48  *
49  * During initialization phase of the allocator we decide to use the group
50  * preallocation or inode preallocation depending on the size file. The
51  * size of the file could be the resulting file size we would have after
52  * allocation or the current file size which ever is larger. If the size is
53  * less that sbi->s_mb_stream_request we select the group
54  * preallocation. The default value of s_mb_stream_request is 16
55  * blocks. This can also be tuned via
56  * /proc/fs/ext4/<partition>/stream_req. The value is represented in terms
57  * of number of blocks.
58  *
59  * The main motivation for having small file use group preallocation is to
60  * ensure that we have small file closer in the disk.
61  *
62  * First stage the allocator looks at the inode prealloc list
63  * ext4_inode_info->i_prealloc_list contain list of prealloc spaces for
64  * this particular inode. The inode prealloc space is represented as:
65  *
66  * pa_lstart -> the logical start block for this prealloc space
67  * pa_pstart -> the physical start block for this prealloc space
68  * pa_len    -> lenght for this prealloc space
69  * pa_free   ->  free space available in this prealloc space
70  *
71  * The inode preallocation space is used looking at the _logical_ start
72  * block. If only the logical file block falls within the range of prealloc
73  * space we will consume the particular prealloc space. This make sure that
74  * that the we have contiguous physical blocks representing the file blocks
75  *
76  * The important thing to be noted in case of inode prealloc space is that
77  * we don't modify the values associated to inode prealloc space except
78  * pa_free.
79  *
80  * If we are not able to find blocks in the inode prealloc space and if we
81  * have the group allocation flag set then we look at the locality group
82  * prealloc space. These are per CPU prealloc list repreasented as
83  *
84  * ext4_sb_info.s_locality_groups[smp_processor_id()]
85  *
86  * The reason for having a per cpu locality group is to reduce the contention
87  * between CPUs. It is possible to get scheduled at this point.
88  *
89  * The locality group prealloc space is used looking at whether we have
90  * enough free space (pa_free) withing the prealloc space.
91  *
92  * If we can't allocate blocks via inode prealloc or/and locality group
93  * prealloc then we look at the buddy cache. The buddy cache is represented
94  * by ext4_sb_info.s_buddy_cache (struct inode) whose file offset gets
95  * mapped to the buddy and bitmap information regarding different
96  * groups. The buddy information is attached to buddy cache inode so that
97  * we can access them through the page cache. The information regarding
98  * each group is loaded via ext4_mb_load_buddy.  The information involve
99  * block bitmap and buddy information. The information are stored in the
100  * inode as:
101  *
102  *  {                        page                        }
103  *  [ group 0 buddy][ group 0 bitmap] [group 1][ group 1]...
104  *
105  *
106  * one block each for bitmap and buddy information.  So for each group we
107  * take up 2 blocks. A page can contain blocks_per_page (PAGE_CACHE_SIZE /
108  * blocksize) blocks.  So it can have information regarding groups_per_page
109  * which is blocks_per_page/2
110  *
111  * The buddy cache inode is not stored on disk. The inode is thrown
112  * away when the filesystem is unmounted.
113  *
114  * We look for count number of blocks in the buddy cache. If we were able
115  * to locate that many free blocks we return with additional information
116  * regarding rest of the contiguous physical block available
117  *
118  * Before allocating blocks via buddy cache we normalize the request
119  * blocks. This ensure we ask for more blocks that we needed. The extra
120  * blocks that we get after allocation is added to the respective prealloc
121  * list. In case of inode preallocation we follow a list of heuristics
122  * based on file size. This can be found in ext4_mb_normalize_request. If
123  * we are doing a group prealloc we try to normalize the request to
124  * sbi->s_mb_group_prealloc. Default value of s_mb_group_prealloc is set to
125  * 512 blocks. This can be tuned via
126  * /proc/fs/ext4/<partition/group_prealloc. The value is represented in
127  * terms of number of blocks. If we have mounted the file system with -O
128  * stripe=<value> option the group prealloc request is normalized to the
129  * stripe value (sbi->s_stripe)
130  *
131  * The regular allocator(using the buddy cache) support few tunables.
132  *
133  * /proc/fs/ext4/<partition>/min_to_scan
134  * /proc/fs/ext4/<partition>/max_to_scan
135  * /proc/fs/ext4/<partition>/order2_req
136  *
137  * The regular allocator use buddy scan only if the request len is power of
138  * 2 blocks and the order of allocation is >= sbi->s_mb_order2_reqs. The
139  * value of s_mb_order2_reqs can be tuned via
140  * /proc/fs/ext4/<partition>/order2_req.  If the request len is equal to
141  * stripe size (sbi->s_stripe), we try to search for contigous block in
142  * stripe size. This should result in better allocation on RAID setup. If
143  * not we search in the specific group using bitmap for best extents. The
144  * tunable min_to_scan and max_to_scan controll the behaviour here.
145  * min_to_scan indicate how long the mballoc __must__ look for a best
146  * extent and max_to_scanindicate how long the mballoc __can__ look for a
147  * best extent in the found extents. Searching for the blocks starts with
148  * the group specified as the goal value in allocation context via
149  * ac_g_ex. Each group is first checked based on the criteria whether it
150  * can used for allocation. ext4_mb_good_group explains how the groups are
151  * checked.
152  *
153  * Both the prealloc space are getting populated as above. So for the first
154  * request we will hit the buddy cache which will result in this prealloc
155  * space getting filled. The prealloc space is then later used for the
156  * subsequent request.
157  */
158
159 /*
160  * mballoc operates on the following data:
161  *  - on-disk bitmap
162  *  - in-core buddy (actually includes buddy and bitmap)
163  *  - preallocation descriptors (PAs)
164  *
165  * there are two types of preallocations:
166  *  - inode
167  *    assiged to specific inode and can be used for this inode only.
168  *    it describes part of inode's space preallocated to specific
169  *    physical blocks. any block from that preallocated can be used
170  *    independent. the descriptor just tracks number of blocks left
171  *    unused. so, before taking some block from descriptor, one must
172  *    make sure corresponded logical block isn't allocated yet. this
173  *    also means that freeing any block within descriptor's range
174  *    must discard all preallocated blocks.
175  *  - locality group
176  *    assigned to specific locality group which does not translate to
177  *    permanent set of inodes: inode can join and leave group. space
178  *    from this type of preallocation can be used for any inode. thus
179  *    it's consumed from the beginning to the end.
180  *
181  * relation between them can be expressed as:
182  *    in-core buddy = on-disk bitmap + preallocation descriptors
183  *
184  * this mean blocks mballoc considers used are:
185  *  - allocated blocks (persistent)
186  *  - preallocated blocks (non-persistent)
187  *
188  * consistency in mballoc world means that at any time a block is either
189  * free or used in ALL structures. notice: "any time" should not be read
190  * literally -- time is discrete and delimited by locks.
191  *
192  *  to keep it simple, we don't use block numbers, instead we count number of
193  *  blocks: how many blocks marked used/free in on-disk bitmap, buddy and PA.
194  *
195  * all operations can be expressed as:
196  *  - init buddy:                       buddy = on-disk + PAs
197  *  - new PA:                           buddy += N; PA = N
198  *  - use inode PA:                     on-disk += N; PA -= N
199  *  - discard inode PA                  buddy -= on-disk - PA; PA = 0
200  *  - use locality group PA             on-disk += N; PA -= N
201  *  - discard locality group PA         buddy -= PA; PA = 0
202  *  note: 'buddy -= on-disk - PA' is used to show that on-disk bitmap
203  *        is used in real operation because we can't know actual used
204  *        bits from PA, only from on-disk bitmap
205  *
206  * if we follow this strict logic, then all operations above should be atomic.
207  * given some of them can block, we'd have to use something like semaphores
208  * killing performance on high-end SMP hardware. let's try to relax it using
209  * the following knowledge:
210  *  1) if buddy is referenced, it's already initialized
211  *  2) while block is used in buddy and the buddy is referenced,
212  *     nobody can re-allocate that block
213  *  3) we work on bitmaps and '+' actually means 'set bits'. if on-disk has
214  *     bit set and PA claims same block, it's OK. IOW, one can set bit in
215  *     on-disk bitmap if buddy has same bit set or/and PA covers corresponded
216  *     block
217  *
218  * so, now we're building a concurrency table:
219  *  - init buddy vs.
220  *    - new PA
221  *      blocks for PA are allocated in the buddy, buddy must be referenced
222  *      until PA is linked to allocation group to avoid concurrent buddy init
223  *    - use inode PA
224  *      we need to make sure that either on-disk bitmap or PA has uptodate data
225  *      given (3) we care that PA-=N operation doesn't interfere with init
226  *    - discard inode PA
227  *      the simplest way would be to have buddy initialized by the discard
228  *    - use locality group PA
229  *      again PA-=N must be serialized with init
230  *    - discard locality group PA
231  *      the simplest way would be to have buddy initialized by the discard
232  *  - new PA vs.
233  *    - use inode PA
234  *      i_data_sem serializes them
235  *    - discard inode PA
236  *      discard process must wait until PA isn't used by another process
237  *    - use locality group PA
238  *      some mutex should serialize them
239  *    - discard locality group PA
240  *      discard process must wait until PA isn't used by another process
241  *  - use inode PA
242  *    - use inode PA
243  *      i_data_sem or another mutex should serializes them
244  *    - discard inode PA
245  *      discard process must wait until PA isn't used by another process
246  *    - use locality group PA
247  *      nothing wrong here -- they're different PAs covering different blocks
248  *    - discard locality group PA
249  *      discard process must wait until PA isn't used by another process
250  *
251  * now we're ready to make few consequences:
252  *  - PA is referenced and while it is no discard is possible
253  *  - PA is referenced until block isn't marked in on-disk bitmap
254  *  - PA changes only after on-disk bitmap
255  *  - discard must not compete with init. either init is done before
256  *    any discard or they're serialized somehow
257  *  - buddy init as sum of on-disk bitmap and PAs is done atomically
258  *
259  * a special case when we've used PA to emptiness. no need to modify buddy
260  * in this case, but we should care about concurrent init
261  *
262  */
263
264  /*
265  * Logic in few words:
266  *
267  *  - allocation:
268  *    load group
269  *    find blocks
270  *    mark bits in on-disk bitmap
271  *    release group
272  *
273  *  - use preallocation:
274  *    find proper PA (per-inode or group)
275  *    load group
276  *    mark bits in on-disk bitmap
277  *    release group
278  *    release PA
279  *
280  *  - free:
281  *    load group
282  *    mark bits in on-disk bitmap
283  *    release group
284  *
285  *  - discard preallocations in group:
286  *    mark PAs deleted
287  *    move them onto local list
288  *    load on-disk bitmap
289  *    load group
290  *    remove PA from object (inode or locality group)
291  *    mark free blocks in-core
292  *
293  *  - discard inode's preallocations:
294  */
295
296 /*
297  * Locking rules
298  *
299  * Locks:
300  *  - bitlock on a group        (group)
301  *  - object (inode/locality)   (object)
302  *  - per-pa lock               (pa)
303  *
304  * Paths:
305  *  - new pa
306  *    object
307  *    group
308  *
309  *  - find and use pa:
310  *    pa
311  *
312  *  - release consumed pa:
313  *    pa
314  *    group
315  *    object
316  *
317  *  - generate in-core bitmap:
318  *    group
319  *        pa
320  *
321  *  - discard all for given object (inode, locality group):
322  *    object
323  *        pa
324  *    group
325  *
326  *  - discard all for given group:
327  *    group
328  *        pa
329  *    group
330  *        object
331  *
332  */
333
334 static inline void *mb_correct_addr_and_bit(int *bit, void *addr)
335 {
336 #if BITS_PER_LONG == 64
337         *bit += ((unsigned long) addr & 7UL) << 3;
338         addr = (void *) ((unsigned long) addr & ~7UL);
339 #elif BITS_PER_LONG == 32
340         *bit += ((unsigned long) addr & 3UL) << 3;
341         addr = (void *) ((unsigned long) addr & ~3UL);
342 #else
343 #error "how many bits you are?!"
344 #endif
345         return addr;
346 }
347
348 static inline int mb_test_bit(int bit, void *addr)
349 {
350         /*
351          * ext4_test_bit on architecture like powerpc
352          * needs unsigned long aligned address
353          */
354         addr = mb_correct_addr_and_bit(&bit, addr);
355         return ext4_test_bit(bit, addr);
356 }
357
358 static inline void mb_set_bit(int bit, void *addr)
359 {
360         addr = mb_correct_addr_and_bit(&bit, addr);
361         ext4_set_bit(bit, addr);
362 }
363
364 static inline void mb_set_bit_atomic(spinlock_t *lock, int bit, void *addr)
365 {
366         addr = mb_correct_addr_and_bit(&bit, addr);
367         ext4_set_bit_atomic(lock, bit, addr);
368 }
369
370 static inline void mb_clear_bit(int bit, void *addr)
371 {
372         addr = mb_correct_addr_and_bit(&bit, addr);
373         ext4_clear_bit(bit, addr);
374 }
375
376 static inline void mb_clear_bit_atomic(spinlock_t *lock, int bit, void *addr)
377 {
378         addr = mb_correct_addr_and_bit(&bit, addr);
379         ext4_clear_bit_atomic(lock, bit, addr);
380 }
381
382 static inline int mb_find_next_zero_bit(void *addr, int max, int start)
383 {
384         int fix = 0, ret, tmpmax;
385         addr = mb_correct_addr_and_bit(&fix, addr);
386         tmpmax = max + fix;
387         start += fix;
388
389         ret = ext4_find_next_zero_bit(addr, tmpmax, start) - fix;
390         if (ret > max)
391                 return max;
392         return ret;
393 }
394
395 static inline int mb_find_next_bit(void *addr, int max, int start)
396 {
397         int fix = 0, ret, tmpmax;
398         addr = mb_correct_addr_and_bit(&fix, addr);
399         tmpmax = max + fix;
400         start += fix;
401
402         ret = ext4_find_next_bit(addr, tmpmax, start) - fix;
403         if (ret > max)
404                 return max;
405         return ret;
406 }
407
408 static void *mb_find_buddy(struct ext4_buddy *e4b, int order, int *max)
409 {
410         char *bb;
411
412         BUG_ON(EXT4_MB_BITMAP(e4b) == EXT4_MB_BUDDY(e4b));
413         BUG_ON(max == NULL);
414
415         if (order > e4b->bd_blkbits + 1) {
416                 *max = 0;
417                 return NULL;
418         }
419
420         /* at order 0 we see each particular block */
421         *max = 1 << (e4b->bd_blkbits + 3);
422         if (order == 0)
423                 return EXT4_MB_BITMAP(e4b);
424
425         bb = EXT4_MB_BUDDY(e4b) + EXT4_SB(e4b->bd_sb)->s_mb_offsets[order];
426         *max = EXT4_SB(e4b->bd_sb)->s_mb_maxs[order];
427
428         return bb;
429 }
430
431 #ifdef DOUBLE_CHECK
432 static void mb_free_blocks_double(struct inode *inode, struct ext4_buddy *e4b,
433                            int first, int count)
434 {
435         int i;
436         struct super_block *sb = e4b->bd_sb;
437
438         if (unlikely(e4b->bd_info->bb_bitmap == NULL))
439                 return;
440         BUG_ON(!ext4_is_group_locked(sb, e4b->bd_group));
441         for (i = 0; i < count; i++) {
442                 if (!mb_test_bit(first + i, e4b->bd_info->bb_bitmap)) {
443                         ext4_fsblk_t blocknr;
444                         blocknr = e4b->bd_group * EXT4_BLOCKS_PER_GROUP(sb);
445                         blocknr += first + i;
446                         blocknr +=
447                             le32_to_cpu(EXT4_SB(sb)->s_es->s_first_data_block);
448
449                         ext4_error(sb, __func__, "double-free of inode"
450                                    " %lu's block %llu(bit %u in group %lu)\n",
451                                    inode ? inode->i_ino : 0, blocknr,
452                                    first + i, e4b->bd_group);
453                 }
454                 mb_clear_bit(first + i, e4b->bd_info->bb_bitmap);
455         }
456 }
457
458 static void mb_mark_used_double(struct ext4_buddy *e4b, int first, int count)
459 {
460         int i;
461
462         if (unlikely(e4b->bd_info->bb_bitmap == NULL))
463                 return;
464         BUG_ON(!ext4_is_group_locked(e4b->bd_sb, e4b->bd_group));
465         for (i = 0; i < count; i++) {
466                 BUG_ON(mb_test_bit(first + i, e4b->bd_info->bb_bitmap));
467                 mb_set_bit(first + i, e4b->bd_info->bb_bitmap);
468         }
469 }
470
471 static void mb_cmp_bitmaps(struct ext4_buddy *e4b, void *bitmap)
472 {
473         if (memcmp(e4b->bd_info->bb_bitmap, bitmap, e4b->bd_sb->s_blocksize)) {
474                 unsigned char *b1, *b2;
475                 int i;
476                 b1 = (unsigned char *) e4b->bd_info->bb_bitmap;
477                 b2 = (unsigned char *) bitmap;
478                 for (i = 0; i < e4b->bd_sb->s_blocksize; i++) {
479                         if (b1[i] != b2[i]) {
480                                 printk(KERN_ERR "corruption in group %lu "
481                                        "at byte %u(%u): %x in copy != %x "
482                                        "on disk/prealloc\n",
483                                        e4b->bd_group, i, i * 8, b1[i], b2[i]);
484                                 BUG();
485                         }
486                 }
487         }
488 }
489
490 #else
491 static inline void mb_free_blocks_double(struct inode *inode,
492                                 struct ext4_buddy *e4b, int first, int count)
493 {
494         return;
495 }
496 static inline void mb_mark_used_double(struct ext4_buddy *e4b,
497                                                 int first, int count)
498 {
499         return;
500 }
501 static inline void mb_cmp_bitmaps(struct ext4_buddy *e4b, void *bitmap)
502 {
503         return;
504 }
505 #endif
506
507 #ifdef AGGRESSIVE_CHECK
508
509 #define MB_CHECK_ASSERT(assert)                                         \
510 do {                                                                    \
511         if (!(assert)) {                                                \
512                 printk(KERN_EMERG                                       \
513                         "Assertion failure in %s() at %s:%d: \"%s\"\n", \
514                         function, file, line, # assert);                \
515                 BUG();                                                  \
516         }                                                               \
517 } while (0)
518
519 static int __mb_check_buddy(struct ext4_buddy *e4b, char *file,
520                                 const char *function, int line)
521 {
522         struct super_block *sb = e4b->bd_sb;
523         int order = e4b->bd_blkbits + 1;
524         int max;
525         int max2;
526         int i;
527         int j;
528         int k;
529         int count;
530         struct ext4_group_info *grp;
531         int fragments = 0;
532         int fstart;
533         struct list_head *cur;
534         void *buddy;
535         void *buddy2;
536
537         if (!test_opt(sb, MBALLOC))
538                 return 0;
539
540         {
541                 static int mb_check_counter;
542                 if (mb_check_counter++ % 100 != 0)
543                         return 0;
544         }
545
546         while (order > 1) {
547                 buddy = mb_find_buddy(e4b, order, &max);
548                 MB_CHECK_ASSERT(buddy);
549                 buddy2 = mb_find_buddy(e4b, order - 1, &max2);
550                 MB_CHECK_ASSERT(buddy2);
551                 MB_CHECK_ASSERT(buddy != buddy2);
552                 MB_CHECK_ASSERT(max * 2 == max2);
553
554                 count = 0;
555                 for (i = 0; i < max; i++) {
556
557                         if (mb_test_bit(i, buddy)) {
558                                 /* only single bit in buddy2 may be 1 */
559                                 if (!mb_test_bit(i << 1, buddy2)) {
560                                         MB_CHECK_ASSERT(
561                                                 mb_test_bit((i<<1)+1, buddy2));
562                                 } else if (!mb_test_bit((i << 1) + 1, buddy2)) {
563                                         MB_CHECK_ASSERT(
564                                                 mb_test_bit(i << 1, buddy2));
565                                 }
566                                 continue;
567                         }
568
569                         /* both bits in buddy2 must be 0 */
570                         MB_CHECK_ASSERT(mb_test_bit(i << 1, buddy2));
571                         MB_CHECK_ASSERT(mb_test_bit((i << 1) + 1, buddy2));
572
573                         for (j = 0; j < (1 << order); j++) {
574                                 k = (i * (1 << order)) + j;
575                                 MB_CHECK_ASSERT(
576                                         !mb_test_bit(k, EXT4_MB_BITMAP(e4b)));
577                         }
578                         count++;
579                 }
580                 MB_CHECK_ASSERT(e4b->bd_info->bb_counters[order] == count);
581                 order--;
582         }
583
584         fstart = -1;
585         buddy = mb_find_buddy(e4b, 0, &max);
586         for (i = 0; i < max; i++) {
587                 if (!mb_test_bit(i, buddy)) {
588                         MB_CHECK_ASSERT(i >= e4b->bd_info->bb_first_free);
589                         if (fstart == -1) {
590                                 fragments++;
591                                 fstart = i;
592                         }
593                         continue;
594                 }
595                 fstart = -1;
596                 /* check used bits only */
597                 for (j = 0; j < e4b->bd_blkbits + 1; j++) {
598                         buddy2 = mb_find_buddy(e4b, j, &max2);
599                         k = i >> j;
600                         MB_CHECK_ASSERT(k < max2);
601                         MB_CHECK_ASSERT(mb_test_bit(k, buddy2));
602                 }
603         }
604         MB_CHECK_ASSERT(!EXT4_MB_GRP_NEED_INIT(e4b->bd_info));
605         MB_CHECK_ASSERT(e4b->bd_info->bb_fragments == fragments);
606
607         grp = ext4_get_group_info(sb, e4b->bd_group);
608         buddy = mb_find_buddy(e4b, 0, &max);
609         list_for_each(cur, &grp->bb_prealloc_list) {
610                 ext4_group_t groupnr;
611                 struct ext4_prealloc_space *pa;
612                 pa = list_entry(cur, struct ext4_prealloc_space, pa_group_list);
613                 ext4_get_group_no_and_offset(sb, pa->pa_pstart, &groupnr, &k);
614                 MB_CHECK_ASSERT(groupnr == e4b->bd_group);
615                 for (i = 0; i < pa->pa_len; i++)
616                         MB_CHECK_ASSERT(mb_test_bit(k + i, buddy));
617         }
618         return 0;
619 }
620 #undef MB_CHECK_ASSERT
621 #define mb_check_buddy(e4b) __mb_check_buddy(e4b,       \
622                                         __FILE__, __func__, __LINE__)
623 #else
624 #define mb_check_buddy(e4b)
625 #endif
626
627 /* FIXME!! need more doc */
628 static void ext4_mb_mark_free_simple(struct super_block *sb,
629                                 void *buddy, unsigned first, int len,
630                                         struct ext4_group_info *grp)
631 {
632         struct ext4_sb_info *sbi = EXT4_SB(sb);
633         unsigned short min;
634         unsigned short max;
635         unsigned short chunk;
636         unsigned short border;
637
638         BUG_ON(len > EXT4_BLOCKS_PER_GROUP(sb));
639
640         border = 2 << sb->s_blocksize_bits;
641
642         while (len > 0) {
643                 /* find how many blocks can be covered since this position */
644                 max = ffs(first | border) - 1;
645
646                 /* find how many blocks of power 2 we need to mark */
647                 min = fls(len) - 1;
648
649                 if (max < min)
650                         min = max;
651                 chunk = 1 << min;
652
653                 /* mark multiblock chunks only */
654                 grp->bb_counters[min]++;
655                 if (min > 0)
656                         mb_clear_bit(first >> min,
657                                      buddy + sbi->s_mb_offsets[min]);
658
659                 len -= chunk;
660                 first += chunk;
661         }
662 }
663
664 static void ext4_mb_generate_buddy(struct super_block *sb,
665                                 void *buddy, void *bitmap, ext4_group_t group)
666 {
667         struct ext4_group_info *grp = ext4_get_group_info(sb, group);
668         unsigned short max = EXT4_BLOCKS_PER_GROUP(sb);
669         unsigned short i = 0;
670         unsigned short first;
671         unsigned short len;
672         unsigned free = 0;
673         unsigned fragments = 0;
674         unsigned long long period = get_cycles();
675
676         /* initialize buddy from bitmap which is aggregation
677          * of on-disk bitmap and preallocations */
678         i = mb_find_next_zero_bit(bitmap, max, 0);
679         grp->bb_first_free = i;
680         while (i < max) {
681                 fragments++;
682                 first = i;
683                 i = mb_find_next_bit(bitmap, max, i);
684                 len = i - first;
685                 free += len;
686                 if (len > 1)
687                         ext4_mb_mark_free_simple(sb, buddy, first, len, grp);
688                 else
689                         grp->bb_counters[0]++;
690                 if (i < max)
691                         i = mb_find_next_zero_bit(bitmap, max, i);
692         }
693         grp->bb_fragments = fragments;
694
695         if (free != grp->bb_free) {
696                 ext4_error(sb, __func__,
697                         "EXT4-fs: group %lu: %u blocks in bitmap, %u in gd\n",
698                         group, free, grp->bb_free);
699                 /*
700                  * If we intent to continue, we consider group descritor
701                  * corrupt and update bb_free using bitmap value
702                  */
703                 grp->bb_free = free;
704         }
705
706         clear_bit(EXT4_GROUP_INFO_NEED_INIT_BIT, &(grp->bb_state));
707
708         period = get_cycles() - period;
709         spin_lock(&EXT4_SB(sb)->s_bal_lock);
710         EXT4_SB(sb)->s_mb_buddies_generated++;
711         EXT4_SB(sb)->s_mb_generation_time += period;
712         spin_unlock(&EXT4_SB(sb)->s_bal_lock);
713 }
714
715 /* The buddy information is attached the buddy cache inode
716  * for convenience. The information regarding each group
717  * is loaded via ext4_mb_load_buddy. The information involve
718  * block bitmap and buddy information. The information are
719  * stored in the inode as
720  *
721  * {                        page                        }
722  * [ group 0 buddy][ group 0 bitmap] [group 1][ group 1]...
723  *
724  *
725  * one block each for bitmap and buddy information.
726  * So for each group we take up 2 blocks. A page can
727  * contain blocks_per_page (PAGE_CACHE_SIZE / blocksize)  blocks.
728  * So it can have information regarding groups_per_page which
729  * is blocks_per_page/2
730  */
731
732 static int ext4_mb_init_cache(struct page *page, char *incore)
733 {
734         int blocksize;
735         int blocks_per_page;
736         int groups_per_page;
737         int err = 0;
738         int i;
739         ext4_group_t first_group;
740         int first_block;
741         struct super_block *sb;
742         struct buffer_head *bhs;
743         struct buffer_head **bh;
744         struct inode *inode;
745         char *data;
746         char *bitmap;
747
748         mb_debug("init page %lu\n", page->index);
749
750         inode = page->mapping->host;
751         sb = inode->i_sb;
752         blocksize = 1 << inode->i_blkbits;
753         blocks_per_page = PAGE_CACHE_SIZE / blocksize;
754
755         groups_per_page = blocks_per_page >> 1;
756         if (groups_per_page == 0)
757                 groups_per_page = 1;
758
759         /* allocate buffer_heads to read bitmaps */
760         if (groups_per_page > 1) {
761                 err = -ENOMEM;
762                 i = sizeof(struct buffer_head *) * groups_per_page;
763                 bh = kzalloc(i, GFP_NOFS);
764                 if (bh == NULL)
765                         goto out;
766         } else
767                 bh = &bhs;
768
769         first_group = page->index * blocks_per_page / 2;
770
771         /* read all groups the page covers into the cache */
772         for (i = 0; i < groups_per_page; i++) {
773                 struct ext4_group_desc *desc;
774
775                 if (first_group + i >= EXT4_SB(sb)->s_groups_count)
776                         break;
777
778                 err = -EIO;
779                 desc = ext4_get_group_desc(sb, first_group + i, NULL);
780                 if (desc == NULL)
781                         goto out;
782
783                 err = -ENOMEM;
784                 bh[i] = sb_getblk(sb, ext4_block_bitmap(sb, desc));
785                 if (bh[i] == NULL)
786                         goto out;
787
788                 if (bh_uptodate_or_lock(bh[i]))
789                         continue;
790
791                 spin_lock(sb_bgl_lock(EXT4_SB(sb), first_group + i));
792                 if (desc->bg_flags & cpu_to_le16(EXT4_BG_BLOCK_UNINIT)) {
793                         ext4_init_block_bitmap(sb, bh[i],
794                                                 first_group + i, desc);
795                         set_buffer_uptodate(bh[i]);
796                         unlock_buffer(bh[i]);
797                         spin_unlock(sb_bgl_lock(EXT4_SB(sb), first_group + i));
798                         continue;
799                 }
800                 spin_unlock(sb_bgl_lock(EXT4_SB(sb), first_group + i));
801                 get_bh(bh[i]);
802                 bh[i]->b_end_io = end_buffer_read_sync;
803                 submit_bh(READ, bh[i]);
804                 mb_debug("read bitmap for group %lu\n", first_group + i);
805         }
806
807         /* wait for I/O completion */
808         for (i = 0; i < groups_per_page && bh[i]; i++)
809                 wait_on_buffer(bh[i]);
810
811         err = -EIO;
812         for (i = 0; i < groups_per_page && bh[i]; i++)
813                 if (!buffer_uptodate(bh[i]))
814                         goto out;
815
816         err = 0;
817         first_block = page->index * blocks_per_page;
818         for (i = 0; i < blocks_per_page; i++) {
819                 int group;
820                 struct ext4_group_info *grinfo;
821
822                 group = (first_block + i) >> 1;
823                 if (group >= EXT4_SB(sb)->s_groups_count)
824                         break;
825
826                 /*
827                  * data carry information regarding this
828                  * particular group in the format specified
829                  * above
830                  *
831                  */
832                 data = page_address(page) + (i * blocksize);
833                 bitmap = bh[group - first_group]->b_data;
834
835                 /*
836                  * We place the buddy block and bitmap block
837                  * close together
838                  */
839                 if ((first_block + i) & 1) {
840                         /* this is block of buddy */
841                         BUG_ON(incore == NULL);
842                         mb_debug("put buddy for group %u in page %lu/%x\n",
843                                 group, page->index, i * blocksize);
844                         memset(data, 0xff, blocksize);
845                         grinfo = ext4_get_group_info(sb, group);
846                         grinfo->bb_fragments = 0;
847                         memset(grinfo->bb_counters, 0,
848                                sizeof(unsigned short)*(sb->s_blocksize_bits+2));
849                         /*
850                          * incore got set to the group block bitmap below
851                          */
852                         ext4_mb_generate_buddy(sb, data, incore, group);
853                         incore = NULL;
854                 } else {
855                         /* this is block of bitmap */
856                         BUG_ON(incore != NULL);
857                         mb_debug("put bitmap for group %u in page %lu/%x\n",
858                                 group, page->index, i * blocksize);
859
860                         /* see comments in ext4_mb_put_pa() */
861                         ext4_lock_group(sb, group);
862                         memcpy(data, bitmap, blocksize);
863
864                         /* mark all preallocated blks used in in-core bitmap */
865                         ext4_mb_generate_from_pa(sb, data, group);
866                         ext4_unlock_group(sb, group);
867
868                         /* set incore so that the buddy information can be
869                          * generated using this
870                          */
871                         incore = data;
872                 }
873         }
874         SetPageUptodate(page);
875
876 out:
877         if (bh) {
878                 for (i = 0; i < groups_per_page && bh[i]; i++)
879                         brelse(bh[i]);
880                 if (bh != &bhs)
881                         kfree(bh);
882         }
883         return err;
884 }
885
886 static noinline_for_stack int
887 ext4_mb_load_buddy(struct super_block *sb, ext4_group_t group,
888                                         struct ext4_buddy *e4b)
889 {
890         struct ext4_sb_info *sbi = EXT4_SB(sb);
891         struct inode *inode = sbi->s_buddy_cache;
892         int blocks_per_page;
893         int block;
894         int pnum;
895         int poff;
896         struct page *page;
897         int ret;
898
899         mb_debug("load group %lu\n", group);
900
901         blocks_per_page = PAGE_CACHE_SIZE / sb->s_blocksize;
902
903         e4b->bd_blkbits = sb->s_blocksize_bits;
904         e4b->bd_info = ext4_get_group_info(sb, group);
905         e4b->bd_sb = sb;
906         e4b->bd_group = group;
907         e4b->bd_buddy_page = NULL;
908         e4b->bd_bitmap_page = NULL;
909
910         /*
911          * the buddy cache inode stores the block bitmap
912          * and buddy information in consecutive blocks.
913          * So for each group we need two blocks.
914          */
915         block = group * 2;
916         pnum = block / blocks_per_page;
917         poff = block % blocks_per_page;
918
919         /* we could use find_or_create_page(), but it locks page
920          * what we'd like to avoid in fast path ... */
921         page = find_get_page(inode->i_mapping, pnum);
922         if (page == NULL || !PageUptodate(page)) {
923                 if (page)
924                         page_cache_release(page);
925                 page = find_or_create_page(inode->i_mapping, pnum, GFP_NOFS);
926                 if (page) {
927                         BUG_ON(page->mapping != inode->i_mapping);
928                         if (!PageUptodate(page)) {
929                                 ret = ext4_mb_init_cache(page, NULL);
930                                 if (ret) {
931                                         unlock_page(page);
932                                         goto err;
933                                 }
934                                 mb_cmp_bitmaps(e4b, page_address(page) +
935                                                (poff * sb->s_blocksize));
936                         }
937                         unlock_page(page);
938                 }
939         }
940         if (page == NULL || !PageUptodate(page)) {
941                 ret = -EIO;
942                 goto err;
943         }
944         e4b->bd_bitmap_page = page;
945         e4b->bd_bitmap = page_address(page) + (poff * sb->s_blocksize);
946         mark_page_accessed(page);
947
948         block++;
949         pnum = block / blocks_per_page;
950         poff = block % blocks_per_page;
951
952         page = find_get_page(inode->i_mapping, pnum);
953         if (page == NULL || !PageUptodate(page)) {
954                 if (page)
955                         page_cache_release(page);
956                 page = find_or_create_page(inode->i_mapping, pnum, GFP_NOFS);
957                 if (page) {
958                         BUG_ON(page->mapping != inode->i_mapping);
959                         if (!PageUptodate(page)) {
960                                 ret = ext4_mb_init_cache(page, e4b->bd_bitmap);
961                                 if (ret) {
962                                         unlock_page(page);
963                                         goto err;
964                                 }
965                         }
966                         unlock_page(page);
967                 }
968         }
969         if (page == NULL || !PageUptodate(page)) {
970                 ret = -EIO;
971                 goto err;
972         }
973         e4b->bd_buddy_page = page;
974         e4b->bd_buddy = page_address(page) + (poff * sb->s_blocksize);
975         mark_page_accessed(page);
976
977         BUG_ON(e4b->bd_bitmap_page == NULL);
978         BUG_ON(e4b->bd_buddy_page == NULL);
979
980         return 0;
981
982 err:
983         if (e4b->bd_bitmap_page)
984                 page_cache_release(e4b->bd_bitmap_page);
985         if (e4b->bd_buddy_page)
986                 page_cache_release(e4b->bd_buddy_page);
987         e4b->bd_buddy = NULL;
988         e4b->bd_bitmap = NULL;
989         return ret;
990 }
991
992 static void ext4_mb_release_desc(struct ext4_buddy *e4b)
993 {
994         if (e4b->bd_bitmap_page)
995                 page_cache_release(e4b->bd_bitmap_page);
996         if (e4b->bd_buddy_page)
997                 page_cache_release(e4b->bd_buddy_page);
998 }
999
1000
1001 static int mb_find_order_for_block(struct ext4_buddy *e4b, int block)
1002 {
1003         int order = 1;
1004         void *bb;
1005
1006         BUG_ON(EXT4_MB_BITMAP(e4b) == EXT4_MB_BUDDY(e4b));
1007         BUG_ON(block >= (1 << (e4b->bd_blkbits + 3)));
1008
1009         bb = EXT4_MB_BUDDY(e4b);
1010         while (order <= e4b->bd_blkbits + 1) {
1011                 block = block >> 1;
1012                 if (!mb_test_bit(block, bb)) {
1013                         /* this block is part of buddy of order 'order' */
1014                         return order;
1015                 }
1016                 bb += 1 << (e4b->bd_blkbits - order);
1017                 order++;
1018         }
1019         return 0;
1020 }
1021
1022 static void mb_clear_bits(spinlock_t *lock, void *bm, int cur, int len)
1023 {
1024         __u32 *addr;
1025
1026         len = cur + len;
1027         while (cur < len) {
1028                 if ((cur & 31) == 0 && (len - cur) >= 32) {
1029                         /* fast path: clear whole word at once */
1030                         addr = bm + (cur >> 3);
1031                         *addr = 0;
1032                         cur += 32;
1033                         continue;
1034                 }
1035                 mb_clear_bit_atomic(lock, cur, bm);
1036                 cur++;
1037         }
1038 }
1039
1040 static void mb_set_bits(spinlock_t *lock, void *bm, int cur, int len)
1041 {
1042         __u32 *addr;
1043
1044         len = cur + len;
1045         while (cur < len) {
1046                 if ((cur & 31) == 0 && (len - cur) >= 32) {
1047                         /* fast path: set whole word at once */
1048                         addr = bm + (cur >> 3);
1049                         *addr = 0xffffffff;
1050                         cur += 32;
1051                         continue;
1052                 }
1053                 mb_set_bit_atomic(lock, cur, bm);
1054                 cur++;
1055         }
1056 }
1057
1058 static void mb_free_blocks(struct inode *inode, struct ext4_buddy *e4b,
1059                           int first, int count)
1060 {
1061         int block = 0;
1062         int max = 0;
1063         int order;
1064         void *buddy;
1065         void *buddy2;
1066         struct super_block *sb = e4b->bd_sb;
1067
1068         BUG_ON(first + count > (sb->s_blocksize << 3));
1069         BUG_ON(!ext4_is_group_locked(sb, e4b->bd_group));
1070         mb_check_buddy(e4b);
1071         mb_free_blocks_double(inode, e4b, first, count);
1072
1073         e4b->bd_info->bb_free += count;
1074         if (first < e4b->bd_info->bb_first_free)
1075                 e4b->bd_info->bb_first_free = first;
1076
1077         /* let's maintain fragments counter */
1078         if (first != 0)
1079                 block = !mb_test_bit(first - 1, EXT4_MB_BITMAP(e4b));
1080         if (first + count < EXT4_SB(sb)->s_mb_maxs[0])
1081                 max = !mb_test_bit(first + count, EXT4_MB_BITMAP(e4b));
1082         if (block && max)
1083                 e4b->bd_info->bb_fragments--;
1084         else if (!block && !max)
1085                 e4b->bd_info->bb_fragments++;
1086
1087         /* let's maintain buddy itself */
1088         while (count-- > 0) {
1089                 block = first++;
1090                 order = 0;
1091
1092                 if (!mb_test_bit(block, EXT4_MB_BITMAP(e4b))) {
1093                         ext4_fsblk_t blocknr;
1094                         blocknr = e4b->bd_group * EXT4_BLOCKS_PER_GROUP(sb);
1095                         blocknr += block;
1096                         blocknr +=
1097                             le32_to_cpu(EXT4_SB(sb)->s_es->s_first_data_block);
1098                         ext4_unlock_group(sb, e4b->bd_group);
1099                         ext4_error(sb, __func__, "double-free of inode"
1100                                    " %lu's block %llu(bit %u in group %lu)\n",
1101                                    inode ? inode->i_ino : 0, blocknr, block,
1102                                    e4b->bd_group);
1103                         ext4_lock_group(sb, e4b->bd_group);
1104                 }
1105                 mb_clear_bit(block, EXT4_MB_BITMAP(e4b));
1106                 e4b->bd_info->bb_counters[order]++;
1107
1108                 /* start of the buddy */
1109                 buddy = mb_find_buddy(e4b, order, &max);
1110
1111                 do {
1112                         block &= ~1UL;
1113                         if (mb_test_bit(block, buddy) ||
1114                                         mb_test_bit(block + 1, buddy))
1115                                 break;
1116
1117                         /* both the buddies are free, try to coalesce them */
1118                         buddy2 = mb_find_buddy(e4b, order + 1, &max);
1119
1120                         if (!buddy2)
1121                                 break;
1122
1123                         if (order > 0) {
1124                                 /* for special purposes, we don't set
1125                                  * free bits in bitmap */
1126                                 mb_set_bit(block, buddy);
1127                                 mb_set_bit(block + 1, buddy);
1128                         }
1129                         e4b->bd_info->bb_counters[order]--;
1130                         e4b->bd_info->bb_counters[order]--;
1131
1132                         block = block >> 1;
1133                         order++;
1134                         e4b->bd_info->bb_counters[order]++;
1135
1136                         mb_clear_bit(block, buddy2);
1137                         buddy = buddy2;
1138                 } while (1);
1139         }
1140         mb_check_buddy(e4b);
1141 }
1142
1143 static int mb_find_extent(struct ext4_buddy *e4b, int order, int block,
1144                                 int needed, struct ext4_free_extent *ex)
1145 {
1146         int next = block;
1147         int max;
1148         int ord;
1149         void *buddy;
1150
1151         BUG_ON(!ext4_is_group_locked(e4b->bd_sb, e4b->bd_group));
1152         BUG_ON(ex == NULL);
1153
1154         buddy = mb_find_buddy(e4b, order, &max);
1155         BUG_ON(buddy == NULL);
1156         BUG_ON(block >= max);
1157         if (mb_test_bit(block, buddy)) {
1158                 ex->fe_len = 0;
1159                 ex->fe_start = 0;
1160                 ex->fe_group = 0;
1161                 return 0;
1162         }
1163
1164         /* FIXME dorp order completely ? */
1165         if (likely(order == 0)) {
1166                 /* find actual order */
1167                 order = mb_find_order_for_block(e4b, block);
1168                 block = block >> order;
1169         }
1170
1171         ex->fe_len = 1 << order;
1172         ex->fe_start = block << order;
1173         ex->fe_group = e4b->bd_group;
1174
1175         /* calc difference from given start */
1176         next = next - ex->fe_start;
1177         ex->fe_len -= next;
1178         ex->fe_start += next;
1179
1180         while (needed > ex->fe_len &&
1181                (buddy = mb_find_buddy(e4b, order, &max))) {
1182
1183                 if (block + 1 >= max)
1184                         break;
1185
1186                 next = (block + 1) * (1 << order);
1187                 if (mb_test_bit(next, EXT4_MB_BITMAP(e4b)))
1188                         break;
1189
1190                 ord = mb_find_order_for_block(e4b, next);
1191
1192                 order = ord;
1193                 block = next >> order;
1194                 ex->fe_len += 1 << order;
1195         }
1196
1197         BUG_ON(ex->fe_start + ex->fe_len > (1 << (e4b->bd_blkbits + 3)));
1198         return ex->fe_len;
1199 }
1200
1201 static int mb_mark_used(struct ext4_buddy *e4b, struct ext4_free_extent *ex)
1202 {
1203         int ord;
1204         int mlen = 0;
1205         int max = 0;
1206         int cur;
1207         int start = ex->fe_start;
1208         int len = ex->fe_len;
1209         unsigned ret = 0;
1210         int len0 = len;
1211         void *buddy;
1212
1213         BUG_ON(start + len > (e4b->bd_sb->s_blocksize << 3));
1214         BUG_ON(e4b->bd_group != ex->fe_group);
1215         BUG_ON(!ext4_is_group_locked(e4b->bd_sb, e4b->bd_group));
1216         mb_check_buddy(e4b);
1217         mb_mark_used_double(e4b, start, len);
1218
1219         e4b->bd_info->bb_free -= len;
1220         if (e4b->bd_info->bb_first_free == start)
1221                 e4b->bd_info->bb_first_free += len;
1222
1223         /* let's maintain fragments counter */
1224         if (start != 0)
1225                 mlen = !mb_test_bit(start - 1, EXT4_MB_BITMAP(e4b));
1226         if (start + len < EXT4_SB(e4b->bd_sb)->s_mb_maxs[0])
1227                 max = !mb_test_bit(start + len, EXT4_MB_BITMAP(e4b));
1228         if (mlen && max)
1229                 e4b->bd_info->bb_fragments++;
1230         else if (!mlen && !max)
1231                 e4b->bd_info->bb_fragments--;
1232
1233         /* let's maintain buddy itself */
1234         while (len) {
1235                 ord = mb_find_order_for_block(e4b, start);
1236
1237                 if (((start >> ord) << ord) == start && len >= (1 << ord)) {
1238                         /* the whole chunk may be allocated at once! */
1239                         mlen = 1 << ord;
1240                         buddy = mb_find_buddy(e4b, ord, &max);
1241                         BUG_ON((start >> ord) >= max);
1242                         mb_set_bit(start >> ord, buddy);
1243                         e4b->bd_info->bb_counters[ord]--;
1244                         start += mlen;
1245                         len -= mlen;
1246                         BUG_ON(len < 0);
1247                         continue;
1248                 }
1249
1250                 /* store for history */
1251                 if (ret == 0)
1252                         ret = len | (ord << 16);
1253
1254                 /* we have to split large buddy */
1255                 BUG_ON(ord <= 0);
1256                 buddy = mb_find_buddy(e4b, ord, &max);
1257                 mb_set_bit(start >> ord, buddy);
1258                 e4b->bd_info->bb_counters[ord]--;
1259
1260                 ord--;
1261                 cur = (start >> ord) & ~1U;
1262                 buddy = mb_find_buddy(e4b, ord, &max);
1263                 mb_clear_bit(cur, buddy);
1264                 mb_clear_bit(cur + 1, buddy);
1265                 e4b->bd_info->bb_counters[ord]++;
1266                 e4b->bd_info->bb_counters[ord]++;
1267         }
1268
1269         mb_set_bits(sb_bgl_lock(EXT4_SB(e4b->bd_sb), ex->fe_group),
1270                         EXT4_MB_BITMAP(e4b), ex->fe_start, len0);
1271         mb_check_buddy(e4b);
1272
1273         return ret;
1274 }
1275
1276 /*
1277  * Must be called under group lock!
1278  */
1279 static void ext4_mb_use_best_found(struct ext4_allocation_context *ac,
1280                                         struct ext4_buddy *e4b)
1281 {
1282         struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
1283         int ret;
1284
1285         BUG_ON(ac->ac_b_ex.fe_group != e4b->bd_group);
1286         BUG_ON(ac->ac_status == AC_STATUS_FOUND);
1287
1288         ac->ac_b_ex.fe_len = min(ac->ac_b_ex.fe_len, ac->ac_g_ex.fe_len);
1289         ac->ac_b_ex.fe_logical = ac->ac_g_ex.fe_logical;
1290         ret = mb_mark_used(e4b, &ac->ac_b_ex);
1291
1292         /* preallocation can change ac_b_ex, thus we store actually
1293          * allocated blocks for history */
1294         ac->ac_f_ex = ac->ac_b_ex;
1295
1296         ac->ac_status = AC_STATUS_FOUND;
1297         ac->ac_tail = ret & 0xffff;
1298         ac->ac_buddy = ret >> 16;
1299
1300         /* XXXXXXX: SUCH A HORRIBLE **CK */
1301         /*FIXME!! Why ? */
1302         ac->ac_bitmap_page = e4b->bd_bitmap_page;
1303         get_page(ac->ac_bitmap_page);
1304         ac->ac_buddy_page = e4b->bd_buddy_page;
1305         get_page(ac->ac_buddy_page);
1306
1307         /* store last allocated for subsequent stream allocation */
1308         if ((ac->ac_flags & EXT4_MB_HINT_DATA)) {
1309                 spin_lock(&sbi->s_md_lock);
1310                 sbi->s_mb_last_group = ac->ac_f_ex.fe_group;
1311                 sbi->s_mb_last_start = ac->ac_f_ex.fe_start;
1312                 spin_unlock(&sbi->s_md_lock);
1313         }
1314 }
1315
1316 /*
1317  * regular allocator, for general purposes allocation
1318  */
1319
1320 static void ext4_mb_check_limits(struct ext4_allocation_context *ac,
1321                                         struct ext4_buddy *e4b,
1322                                         int finish_group)
1323 {
1324         struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
1325         struct ext4_free_extent *bex = &ac->ac_b_ex;
1326         struct ext4_free_extent *gex = &ac->ac_g_ex;
1327         struct ext4_free_extent ex;
1328         int max;
1329
1330         /*
1331          * We don't want to scan for a whole year
1332          */
1333         if (ac->ac_found > sbi->s_mb_max_to_scan &&
1334                         !(ac->ac_flags & EXT4_MB_HINT_FIRST)) {
1335                 ac->ac_status = AC_STATUS_BREAK;
1336                 return;
1337         }
1338
1339         /*
1340          * Haven't found good chunk so far, let's continue
1341          */
1342         if (bex->fe_len < gex->fe_len)
1343                 return;
1344
1345         if ((finish_group || ac->ac_found > sbi->s_mb_min_to_scan)
1346                         && bex->fe_group == e4b->bd_group) {
1347                 /* recheck chunk's availability - we don't know
1348                  * when it was found (within this lock-unlock
1349                  * period or not) */
1350                 max = mb_find_extent(e4b, 0, bex->fe_start, gex->fe_len, &ex);
1351                 if (max >= gex->fe_len) {
1352                         ext4_mb_use_best_found(ac, e4b);
1353                         return;
1354                 }
1355         }
1356 }
1357
1358 /*
1359  * The routine checks whether found extent is good enough. If it is,
1360  * then the extent gets marked used and flag is set to the context
1361  * to stop scanning. Otherwise, the extent is compared with the
1362  * previous found extent and if new one is better, then it's stored
1363  * in the context. Later, the best found extent will be used, if
1364  * mballoc can't find good enough extent.
1365  *
1366  * FIXME: real allocation policy is to be designed yet!
1367  */
1368 static void ext4_mb_measure_extent(struct ext4_allocation_context *ac,
1369                                         struct ext4_free_extent *ex,
1370                                         struct ext4_buddy *e4b)
1371 {
1372         struct ext4_free_extent *bex = &ac->ac_b_ex;
1373         struct ext4_free_extent *gex = &ac->ac_g_ex;
1374
1375         BUG_ON(ex->fe_len <= 0);
1376         BUG_ON(ex->fe_len >= EXT4_BLOCKS_PER_GROUP(ac->ac_sb));
1377         BUG_ON(ex->fe_start >= EXT4_BLOCKS_PER_GROUP(ac->ac_sb));
1378         BUG_ON(ac->ac_status != AC_STATUS_CONTINUE);
1379
1380         ac->ac_found++;
1381
1382         /*
1383          * The special case - take what you catch first
1384          */
1385         if (unlikely(ac->ac_flags & EXT4_MB_HINT_FIRST)) {
1386                 *bex = *ex;
1387                 ext4_mb_use_best_found(ac, e4b);
1388                 return;
1389         }
1390
1391         /*
1392          * Let's check whether the chuck is good enough
1393          */
1394         if (ex->fe_len == gex->fe_len) {
1395                 *bex = *ex;
1396                 ext4_mb_use_best_found(ac, e4b);
1397                 return;
1398         }
1399
1400         /*
1401          * If this is first found extent, just store it in the context
1402          */
1403         if (bex->fe_len == 0) {
1404                 *bex = *ex;
1405                 return;
1406         }
1407
1408         /*
1409          * If new found extent is better, store it in the context
1410          */
1411         if (bex->fe_len < gex->fe_len) {
1412                 /* if the request isn't satisfied, any found extent
1413                  * larger than previous best one is better */
1414                 if (ex->fe_len > bex->fe_len)
1415                         *bex = *ex;
1416         } else if (ex->fe_len > gex->fe_len) {
1417                 /* if the request is satisfied, then we try to find
1418                  * an extent that still satisfy the request, but is
1419                  * smaller than previous one */
1420                 if (ex->fe_len < bex->fe_len)
1421                         *bex = *ex;
1422         }
1423
1424         ext4_mb_check_limits(ac, e4b, 0);
1425 }
1426
1427 static int ext4_mb_try_best_found(struct ext4_allocation_context *ac,
1428                                         struct ext4_buddy *e4b)
1429 {
1430         struct ext4_free_extent ex = ac->ac_b_ex;
1431         ext4_group_t group = ex.fe_group;
1432         int max;
1433         int err;
1434
1435         BUG_ON(ex.fe_len <= 0);
1436         err = ext4_mb_load_buddy(ac->ac_sb, group, e4b);
1437         if (err)
1438                 return err;
1439
1440         ext4_lock_group(ac->ac_sb, group);
1441         max = mb_find_extent(e4b, 0, ex.fe_start, ex.fe_len, &ex);
1442
1443         if (max > 0) {
1444                 ac->ac_b_ex = ex;
1445                 ext4_mb_use_best_found(ac, e4b);
1446         }
1447
1448         ext4_unlock_group(ac->ac_sb, group);
1449         ext4_mb_release_desc(e4b);
1450
1451         return 0;
1452 }
1453
1454 static int ext4_mb_find_by_goal(struct ext4_allocation_context *ac,
1455                                 struct ext4_buddy *e4b)
1456 {
1457         ext4_group_t group = ac->ac_g_ex.fe_group;
1458         int max;
1459         int err;
1460         struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
1461         struct ext4_super_block *es = sbi->s_es;
1462         struct ext4_free_extent ex;
1463
1464         if (!(ac->ac_flags & EXT4_MB_HINT_TRY_GOAL))
1465                 return 0;
1466
1467         err = ext4_mb_load_buddy(ac->ac_sb, group, e4b);
1468         if (err)
1469                 return err;
1470
1471         ext4_lock_group(ac->ac_sb, group);
1472         max = mb_find_extent(e4b, 0, ac->ac_g_ex.fe_start,
1473                              ac->ac_g_ex.fe_len, &ex);
1474
1475         if (max >= ac->ac_g_ex.fe_len && ac->ac_g_ex.fe_len == sbi->s_stripe) {
1476                 ext4_fsblk_t start;
1477
1478                 start = (e4b->bd_group * EXT4_BLOCKS_PER_GROUP(ac->ac_sb)) +
1479                         ex.fe_start + le32_to_cpu(es->s_first_data_block);
1480                 /* use do_div to get remainder (would be 64-bit modulo) */
1481                 if (do_div(start, sbi->s_stripe) == 0) {
1482                         ac->ac_found++;
1483                         ac->ac_b_ex = ex;
1484                         ext4_mb_use_best_found(ac, e4b);
1485                 }
1486         } else if (max >= ac->ac_g_ex.fe_len) {
1487                 BUG_ON(ex.fe_len <= 0);
1488                 BUG_ON(ex.fe_group != ac->ac_g_ex.fe_group);
1489                 BUG_ON(ex.fe_start != ac->ac_g_ex.fe_start);
1490                 ac->ac_found++;
1491                 ac->ac_b_ex = ex;
1492                 ext4_mb_use_best_found(ac, e4b);
1493         } else if (max > 0 && (ac->ac_flags & EXT4_MB_HINT_MERGE)) {
1494                 /* Sometimes, caller may want to merge even small
1495                  * number of blocks to an existing extent */
1496                 BUG_ON(ex.fe_len <= 0);
1497                 BUG_ON(ex.fe_group != ac->ac_g_ex.fe_group);
1498                 BUG_ON(ex.fe_start != ac->ac_g_ex.fe_start);
1499                 ac->ac_found++;
1500                 ac->ac_b_ex = ex;
1501                 ext4_mb_use_best_found(ac, e4b);
1502         }
1503         ext4_unlock_group(ac->ac_sb, group);
1504         ext4_mb_release_desc(e4b);
1505
1506         return 0;
1507 }
1508
1509 /*
1510  * The routine scans buddy structures (not bitmap!) from given order
1511  * to max order and tries to find big enough chunk to satisfy the req
1512  */
1513 static void ext4_mb_simple_scan_group(struct ext4_allocation_context *ac,
1514                                         struct ext4_buddy *e4b)
1515 {
1516         struct super_block *sb = ac->ac_sb;
1517         struct ext4_group_info *grp = e4b->bd_info;
1518         void *buddy;
1519         int i;
1520         int k;
1521         int max;
1522
1523         BUG_ON(ac->ac_2order <= 0);
1524         for (i = ac->ac_2order; i <= sb->s_blocksize_bits + 1; i++) {
1525                 if (grp->bb_counters[i] == 0)
1526                         continue;
1527
1528                 buddy = mb_find_buddy(e4b, i, &max);
1529                 BUG_ON(buddy == NULL);
1530
1531                 k = mb_find_next_zero_bit(buddy, max, 0);
1532                 BUG_ON(k >= max);
1533
1534                 ac->ac_found++;
1535
1536                 ac->ac_b_ex.fe_len = 1 << i;
1537                 ac->ac_b_ex.fe_start = k << i;
1538                 ac->ac_b_ex.fe_group = e4b->bd_group;
1539
1540                 ext4_mb_use_best_found(ac, e4b);
1541
1542                 BUG_ON(ac->ac_b_ex.fe_len != ac->ac_g_ex.fe_len);
1543
1544                 if (EXT4_SB(sb)->s_mb_stats)
1545                         atomic_inc(&EXT4_SB(sb)->s_bal_2orders);
1546
1547                 break;
1548         }
1549 }
1550
1551 /*
1552  * The routine scans the group and measures all found extents.
1553  * In order to optimize scanning, caller must pass number of
1554  * free blocks in the group, so the routine can know upper limit.
1555  */
1556 static void ext4_mb_complex_scan_group(struct ext4_allocation_context *ac,
1557                                         struct ext4_buddy *e4b)
1558 {
1559         struct super_block *sb = ac->ac_sb;
1560         void *bitmap = EXT4_MB_BITMAP(e4b);
1561         struct ext4_free_extent ex;
1562         int i;
1563         int free;
1564
1565         free = e4b->bd_info->bb_free;
1566         BUG_ON(free <= 0);
1567
1568         i = e4b->bd_info->bb_first_free;
1569
1570         while (free && ac->ac_status == AC_STATUS_CONTINUE) {
1571                 i = mb_find_next_zero_bit(bitmap,
1572                                                 EXT4_BLOCKS_PER_GROUP(sb), i);
1573                 if (i >= EXT4_BLOCKS_PER_GROUP(sb)) {
1574                         /*
1575                          * IF we have corrupt bitmap, we won't find any
1576                          * free blocks even though group info says we
1577                          * we have free blocks
1578                          */
1579                         ext4_error(sb, __func__, "%d free blocks as per "
1580                                         "group info. But bitmap says 0\n",
1581                                         free);
1582                         break;
1583                 }
1584
1585                 mb_find_extent(e4b, 0, i, ac->ac_g_ex.fe_len, &ex);
1586                 BUG_ON(ex.fe_len <= 0);
1587                 if (free < ex.fe_len) {
1588                         ext4_error(sb, __func__, "%d free blocks as per "
1589                                         "group info. But got %d blocks\n",
1590                                         free, ex.fe_len);
1591                         /*
1592                          * The number of free blocks differs. This mostly
1593                          * indicate that the bitmap is corrupt. So exit
1594                          * without claiming the space.
1595                          */
1596                         break;
1597                 }
1598
1599                 ext4_mb_measure_extent(ac, &ex, e4b);
1600
1601                 i += ex.fe_len;
1602                 free -= ex.fe_len;
1603         }
1604
1605         ext4_mb_check_limits(ac, e4b, 1);
1606 }
1607
1608 /*
1609  * This is a special case for storages like raid5
1610  * we try to find stripe-aligned chunks for stripe-size requests
1611  * XXX should do so at least for multiples of stripe size as well
1612  */
1613 static void ext4_mb_scan_aligned(struct ext4_allocation_context *ac,
1614                                  struct ext4_buddy *e4b)
1615 {
1616         struct super_block *sb = ac->ac_sb;
1617         struct ext4_sb_info *sbi = EXT4_SB(sb);
1618         void *bitmap = EXT4_MB_BITMAP(e4b);
1619         struct ext4_free_extent ex;
1620         ext4_fsblk_t first_group_block;
1621         ext4_fsblk_t a;
1622         ext4_grpblk_t i;
1623         int max;
1624
1625         BUG_ON(sbi->s_stripe == 0);
1626
1627         /* find first stripe-aligned block in group */
1628         first_group_block = e4b->bd_group * EXT4_BLOCKS_PER_GROUP(sb)
1629                 + le32_to_cpu(sbi->s_es->s_first_data_block);
1630         a = first_group_block + sbi->s_stripe - 1;
1631         do_div(a, sbi->s_stripe);
1632         i = (a * sbi->s_stripe) - first_group_block;
1633
1634         while (i < EXT4_BLOCKS_PER_GROUP(sb)) {
1635                 if (!mb_test_bit(i, bitmap)) {
1636                         max = mb_find_extent(e4b, 0, i, sbi->s_stripe, &ex);
1637                         if (max >= sbi->s_stripe) {
1638                                 ac->ac_found++;
1639                                 ac->ac_b_ex = ex;
1640                                 ext4_mb_use_best_found(ac, e4b);
1641                                 break;
1642                         }
1643                 }
1644                 i += sbi->s_stripe;
1645         }
1646 }
1647
1648 static int ext4_mb_good_group(struct ext4_allocation_context *ac,
1649                                 ext4_group_t group, int cr)
1650 {
1651         unsigned free, fragments;
1652         unsigned i, bits;
1653         struct ext4_group_desc *desc;
1654         struct ext4_group_info *grp = ext4_get_group_info(ac->ac_sb, group);
1655
1656         BUG_ON(cr < 0 || cr >= 4);
1657         BUG_ON(EXT4_MB_GRP_NEED_INIT(grp));
1658
1659         free = grp->bb_free;
1660         fragments = grp->bb_fragments;
1661         if (free == 0)
1662                 return 0;
1663         if (fragments == 0)
1664                 return 0;
1665
1666         switch (cr) {
1667         case 0:
1668                 BUG_ON(ac->ac_2order == 0);
1669                 /* If this group is uninitialized, skip it initially */
1670                 desc = ext4_get_group_desc(ac->ac_sb, group, NULL);
1671                 if (desc->bg_flags & cpu_to_le16(EXT4_BG_BLOCK_UNINIT))
1672                         return 0;
1673
1674                 bits = ac->ac_sb->s_blocksize_bits + 1;
1675                 for (i = ac->ac_2order; i <= bits; i++)
1676                         if (grp->bb_counters[i] > 0)
1677                                 return 1;
1678                 break;
1679         case 1:
1680                 if ((free / fragments) >= ac->ac_g_ex.fe_len)
1681                         return 1;
1682                 break;
1683         case 2:
1684                 if (free >= ac->ac_g_ex.fe_len)
1685                         return 1;
1686                 break;
1687         case 3:
1688                 return 1;
1689         default:
1690                 BUG();
1691         }
1692
1693         return 0;
1694 }
1695
1696 static noinline_for_stack int
1697 ext4_mb_regular_allocator(struct ext4_allocation_context *ac)
1698 {
1699         ext4_group_t group;
1700         ext4_group_t i;
1701         int cr;
1702         int err = 0;
1703         int bsbits;
1704         struct ext4_sb_info *sbi;
1705         struct super_block *sb;
1706         struct ext4_buddy e4b;
1707         loff_t size, isize;
1708
1709         sb = ac->ac_sb;
1710         sbi = EXT4_SB(sb);
1711         BUG_ON(ac->ac_status == AC_STATUS_FOUND);
1712
1713         /* first, try the goal */
1714         err = ext4_mb_find_by_goal(ac, &e4b);
1715         if (err || ac->ac_status == AC_STATUS_FOUND)
1716                 goto out;
1717
1718         if (unlikely(ac->ac_flags & EXT4_MB_HINT_GOAL_ONLY))
1719                 goto out;
1720
1721         /*
1722          * ac->ac2_order is set only if the fe_len is a power of 2
1723          * if ac2_order is set we also set criteria to 0 so that we
1724          * try exact allocation using buddy.
1725          */
1726         i = fls(ac->ac_g_ex.fe_len);
1727         ac->ac_2order = 0;
1728         /*
1729          * We search using buddy data only if the order of the request
1730          * is greater than equal to the sbi_s_mb_order2_reqs
1731          * You can tune it via /proc/fs/ext4/<partition>/order2_req
1732          */
1733         if (i >= sbi->s_mb_order2_reqs) {
1734                 /*
1735                  * This should tell if fe_len is exactly power of 2
1736                  */
1737                 if ((ac->ac_g_ex.fe_len & (~(1 << (i - 1)))) == 0)
1738                         ac->ac_2order = i - 1;
1739         }
1740
1741         bsbits = ac->ac_sb->s_blocksize_bits;
1742         /* if stream allocation is enabled, use global goal */
1743         size = ac->ac_o_ex.fe_logical + ac->ac_o_ex.fe_len;
1744         isize = i_size_read(ac->ac_inode) >> bsbits;
1745         if (size < isize)
1746                 size = isize;
1747
1748         if (size < sbi->s_mb_stream_request &&
1749                         (ac->ac_flags & EXT4_MB_HINT_DATA)) {
1750                 /* TBD: may be hot point */
1751                 spin_lock(&sbi->s_md_lock);
1752                 ac->ac_g_ex.fe_group = sbi->s_mb_last_group;
1753                 ac->ac_g_ex.fe_start = sbi->s_mb_last_start;
1754                 spin_unlock(&sbi->s_md_lock);
1755         }
1756         /* Let's just scan groups to find more-less suitable blocks */
1757         cr = ac->ac_2order ? 0 : 1;
1758         /*
1759          * cr == 0 try to get exact allocation,
1760          * cr == 3  try to get anything
1761          */
1762 repeat:
1763         for (; cr < 4 && ac->ac_status == AC_STATUS_CONTINUE; cr++) {
1764                 ac->ac_criteria = cr;
1765                 /*
1766                  * searching for the right group start
1767                  * from the goal value specified
1768                  */
1769                 group = ac->ac_g_ex.fe_group;
1770
1771                 for (i = 0; i < EXT4_SB(sb)->s_groups_count; group++, i++) {
1772                         struct ext4_group_info *grp;
1773                         struct ext4_group_desc *desc;
1774
1775                         if (group == EXT4_SB(sb)->s_groups_count)
1776                                 group = 0;
1777
1778                         /* quick check to skip empty groups */
1779                         grp = ext4_get_group_info(ac->ac_sb, group);
1780                         if (grp->bb_free == 0)
1781                                 continue;
1782
1783                         /*
1784                          * if the group is already init we check whether it is
1785                          * a good group and if not we don't load the buddy
1786                          */
1787                         if (EXT4_MB_GRP_NEED_INIT(grp)) {
1788                                 /*
1789                                  * we need full data about the group
1790                                  * to make a good selection
1791                                  */
1792                                 err = ext4_mb_load_buddy(sb, group, &e4b);
1793                                 if (err)
1794                                         goto out;
1795                                 ext4_mb_release_desc(&e4b);
1796                         }
1797
1798                         /*
1799                          * If the particular group doesn't satisfy our
1800                          * criteria we continue with the next group
1801                          */
1802                         if (!ext4_mb_good_group(ac, group, cr))
1803                                 continue;
1804
1805                         err = ext4_mb_load_buddy(sb, group, &e4b);
1806                         if (err)
1807                                 goto out;
1808
1809                         ext4_lock_group(sb, group);
1810                         if (!ext4_mb_good_group(ac, group, cr)) {
1811                                 /* someone did allocation from this group */
1812                                 ext4_unlock_group(sb, group);
1813                                 ext4_mb_release_desc(&e4b);
1814                                 continue;
1815                         }
1816
1817                         ac->ac_groups_scanned++;
1818                         desc = ext4_get_group_desc(sb, group, NULL);
1819                         if (cr == 0 || (desc->bg_flags &
1820                                         cpu_to_le16(EXT4_BG_BLOCK_UNINIT) &&
1821                                         ac->ac_2order != 0))
1822                                 ext4_mb_simple_scan_group(ac, &e4b);
1823                         else if (cr == 1 &&
1824                                         ac->ac_g_ex.fe_len == sbi->s_stripe)
1825                                 ext4_mb_scan_aligned(ac, &e4b);
1826                         else
1827                                 ext4_mb_complex_scan_group(ac, &e4b);
1828
1829                         ext4_unlock_group(sb, group);
1830                         ext4_mb_release_desc(&e4b);
1831
1832                         if (ac->ac_status != AC_STATUS_CONTINUE)
1833                                 break;
1834                 }
1835         }
1836
1837         if (ac->ac_b_ex.fe_len > 0 && ac->ac_status != AC_STATUS_FOUND &&
1838             !(ac->ac_flags & EXT4_MB_HINT_FIRST)) {
1839                 /*
1840                  * We've been searching too long. Let's try to allocate
1841                  * the best chunk we've found so far
1842                  */
1843
1844                 ext4_mb_try_best_found(ac, &e4b);
1845                 if (ac->ac_status != AC_STATUS_FOUND) {
1846                         /*
1847                          * Someone more lucky has already allocated it.
1848                          * The only thing we can do is just take first
1849                          * found block(s)
1850                         printk(KERN_DEBUG "EXT4-fs: someone won our chunk\n");
1851                          */
1852                         ac->ac_b_ex.fe_group = 0;
1853                         ac->ac_b_ex.fe_start = 0;
1854                         ac->ac_b_ex.fe_len = 0;
1855                         ac->ac_status = AC_STATUS_CONTINUE;
1856                         ac->ac_flags |= EXT4_MB_HINT_FIRST;
1857                         cr = 3;
1858                         atomic_inc(&sbi->s_mb_lost_chunks);
1859                         goto repeat;
1860                 }
1861         }
1862 out:
1863         return err;
1864 }
1865
1866 #ifdef EXT4_MB_HISTORY
1867 struct ext4_mb_proc_session {
1868         struct ext4_mb_history *history;
1869         struct super_block *sb;
1870         int start;
1871         int max;
1872 };
1873
1874 static void *ext4_mb_history_skip_empty(struct ext4_mb_proc_session *s,
1875                                         struct ext4_mb_history *hs,
1876                                         int first)
1877 {
1878         if (hs == s->history + s->max)
1879                 hs = s->history;
1880         if (!first && hs == s->history + s->start)
1881                 return NULL;
1882         while (hs->orig.fe_len == 0) {
1883                 hs++;
1884                 if (hs == s->history + s->max)
1885                         hs = s->history;
1886                 if (hs == s->history + s->start)
1887                         return NULL;
1888         }
1889         return hs;
1890 }
1891
1892 static void *ext4_mb_seq_history_start(struct seq_file *seq, loff_t *pos)
1893 {
1894         struct ext4_mb_proc_session *s = seq->private;
1895         struct ext4_mb_history *hs;
1896         int l = *pos;
1897
1898         if (l == 0)
1899                 return SEQ_START_TOKEN;
1900         hs = ext4_mb_history_skip_empty(s, s->history + s->start, 1);
1901         if (!hs)
1902                 return NULL;
1903         while (--l && (hs = ext4_mb_history_skip_empty(s, ++hs, 0)) != NULL);
1904         return hs;
1905 }
1906
1907 static void *ext4_mb_seq_history_next(struct seq_file *seq, void *v,
1908                                       loff_t *pos)
1909 {
1910         struct ext4_mb_proc_session *s = seq->private;
1911         struct ext4_mb_history *hs = v;
1912
1913         ++*pos;
1914         if (v == SEQ_START_TOKEN)
1915                 return ext4_mb_history_skip_empty(s, s->history + s->start, 1);
1916         else
1917                 return ext4_mb_history_skip_empty(s, ++hs, 0);
1918 }
1919
1920 static int ext4_mb_seq_history_show(struct seq_file *seq, void *v)
1921 {
1922         char buf[25], buf2[25], buf3[25], *fmt;
1923         struct ext4_mb_history *hs = v;
1924
1925         if (v == SEQ_START_TOKEN) {
1926                 seq_printf(seq, "%-5s %-8s %-23s %-23s %-23s %-5s "
1927                                 "%-5s %-2s %-5s %-5s %-5s %-6s\n",
1928                           "pid", "inode", "original", "goal", "result", "found",
1929                            "grps", "cr", "flags", "merge", "tail", "broken");
1930                 return 0;
1931         }
1932
1933         if (hs->op == EXT4_MB_HISTORY_ALLOC) {
1934                 fmt = "%-5u %-8u %-23s %-23s %-23s %-5u %-5u %-2u "
1935                         "%-5u %-5s %-5u %-6u\n";
1936                 sprintf(buf2, "%lu/%d/%u@%u", hs->result.fe_group,
1937                         hs->result.fe_start, hs->result.fe_len,
1938                         hs->result.fe_logical);
1939                 sprintf(buf, "%lu/%d/%u@%u", hs->orig.fe_group,
1940                         hs->orig.fe_start, hs->orig.fe_len,
1941                         hs->orig.fe_logical);
1942                 sprintf(buf3, "%lu/%d/%u@%u", hs->goal.fe_group,
1943                         hs->goal.fe_start, hs->goal.fe_len,
1944                         hs->goal.fe_logical);
1945                 seq_printf(seq, fmt, hs->pid, hs->ino, buf, buf3, buf2,
1946                                 hs->found, hs->groups, hs->cr, hs->flags,
1947                                 hs->merged ? "M" : "", hs->tail,
1948                                 hs->buddy ? 1 << hs->buddy : 0);
1949         } else if (hs->op == EXT4_MB_HISTORY_PREALLOC) {
1950                 fmt = "%-5u %-8u %-23s %-23s %-23s\n";
1951                 sprintf(buf2, "%lu/%d/%u@%u", hs->result.fe_group,
1952                         hs->result.fe_start, hs->result.fe_len,
1953                         hs->result.fe_logical);
1954                 sprintf(buf, "%lu/%d/%u@%u", hs->orig.fe_group,
1955                         hs->orig.fe_start, hs->orig.fe_len,
1956                         hs->orig.fe_logical);
1957                 seq_printf(seq, fmt, hs->pid, hs->ino, buf, "", buf2);
1958         } else if (hs->op == EXT4_MB_HISTORY_DISCARD) {
1959                 sprintf(buf2, "%lu/%d/%u", hs->result.fe_group,
1960                         hs->result.fe_start, hs->result.fe_len);
1961                 seq_printf(seq, "%-5u %-8u %-23s discard\n",
1962                                 hs->pid, hs->ino, buf2);
1963         } else if (hs->op == EXT4_MB_HISTORY_FREE) {
1964                 sprintf(buf2, "%lu/%d/%u", hs->result.fe_group,
1965                         hs->result.fe_start, hs->result.fe_len);
1966                 seq_printf(seq, "%-5u %-8u %-23s free\n",
1967                                 hs->pid, hs->ino, buf2);
1968         }
1969         return 0;
1970 }
1971
1972 static void ext4_mb_seq_history_stop(struct seq_file *seq, void *v)
1973 {
1974 }
1975
1976 static struct seq_operations ext4_mb_seq_history_ops = {
1977         .start  = ext4_mb_seq_history_start,
1978         .next   = ext4_mb_seq_history_next,
1979         .stop   = ext4_mb_seq_history_stop,
1980         .show   = ext4_mb_seq_history_show,
1981 };
1982
1983 static int ext4_mb_seq_history_open(struct inode *inode, struct file *file)
1984 {
1985         struct super_block *sb = PDE(inode)->data;
1986         struct ext4_sb_info *sbi = EXT4_SB(sb);
1987         struct ext4_mb_proc_session *s;
1988         int rc;
1989         int size;
1990
1991         if (unlikely(sbi->s_mb_history == NULL))
1992                 return -ENOMEM;
1993         s = kmalloc(sizeof(*s), GFP_KERNEL);
1994         if (s == NULL)
1995                 return -ENOMEM;
1996         s->sb = sb;
1997         size = sizeof(struct ext4_mb_history) * sbi->s_mb_history_max;
1998         s->history = kmalloc(size, GFP_KERNEL);
1999         if (s->history == NULL) {
2000                 kfree(s);
2001                 return -ENOMEM;
2002         }
2003
2004         spin_lock(&sbi->s_mb_history_lock);
2005         memcpy(s->history, sbi->s_mb_history, size);
2006         s->max = sbi->s_mb_history_max;
2007         s->start = sbi->s_mb_history_cur % s->max;
2008         spin_unlock(&sbi->s_mb_history_lock);
2009
2010         rc = seq_open(file, &ext4_mb_seq_history_ops);
2011         if (rc == 0) {
2012                 struct seq_file *m = (struct seq_file *)file->private_data;
2013                 m->private = s;
2014         } else {
2015                 kfree(s->history);
2016                 kfree(s);
2017         }
2018         return rc;
2019
2020 }
2021
2022 static int ext4_mb_seq_history_release(struct inode *inode, struct file *file)
2023 {
2024         struct seq_file *seq = (struct seq_file *)file->private_data;
2025         struct ext4_mb_proc_session *s = seq->private;
2026         kfree(s->history);
2027         kfree(s);
2028         return seq_release(inode, file);
2029 }
2030
2031 static ssize_t ext4_mb_seq_history_write(struct file *file,
2032                                 const char __user *buffer,
2033                                 size_t count, loff_t *ppos)
2034 {
2035         struct seq_file *seq = (struct seq_file *)file->private_data;
2036         struct ext4_mb_proc_session *s = seq->private;
2037         struct super_block *sb = s->sb;
2038         char str[32];
2039         int value;
2040
2041         if (count >= sizeof(str)) {
2042                 printk(KERN_ERR "EXT4-fs: %s string too long, max %u bytes\n",
2043                                 "mb_history", (int)sizeof(str));
2044                 return -EOVERFLOW;
2045         }
2046
2047         if (copy_from_user(str, buffer, count))
2048                 return -EFAULT;
2049
2050         value = simple_strtol(str, NULL, 0);
2051         if (value < 0)
2052                 return -ERANGE;
2053         EXT4_SB(sb)->s_mb_history_filter = value;
2054
2055         return count;
2056 }
2057
2058 static struct file_operations ext4_mb_seq_history_fops = {
2059         .owner          = THIS_MODULE,
2060         .open           = ext4_mb_seq_history_open,
2061         .read           = seq_read,
2062         .write          = ext4_mb_seq_history_write,
2063         .llseek         = seq_lseek,
2064         .release        = ext4_mb_seq_history_release,
2065 };
2066
2067 static void *ext4_mb_seq_groups_start(struct seq_file *seq, loff_t *pos)
2068 {
2069         struct super_block *sb = seq->private;
2070         struct ext4_sb_info *sbi = EXT4_SB(sb);
2071         ext4_group_t group;
2072
2073         if (*pos < 0 || *pos >= sbi->s_groups_count)
2074                 return NULL;
2075
2076         group = *pos + 1;
2077         return (void *) group;
2078 }
2079
2080 static void *ext4_mb_seq_groups_next(struct seq_file *seq, void *v, loff_t *pos)
2081 {
2082         struct super_block *sb = seq->private;
2083         struct ext4_sb_info *sbi = EXT4_SB(sb);
2084         ext4_group_t group;
2085
2086         ++*pos;
2087         if (*pos < 0 || *pos >= sbi->s_groups_count)
2088                 return NULL;
2089         group = *pos + 1;
2090         return (void *) group;;
2091 }
2092
2093 static int ext4_mb_seq_groups_show(struct seq_file *seq, void *v)
2094 {
2095         struct super_block *sb = seq->private;
2096         long group = (long) v;
2097         int i;
2098         int err;
2099         struct ext4_buddy e4b;
2100         struct sg {
2101                 struct ext4_group_info info;
2102                 unsigned short counters[16];
2103         } sg;
2104
2105         group--;
2106         if (group == 0)
2107                 seq_printf(seq, "#%-5s: %-5s %-5s %-5s "
2108                                 "[ %-5s %-5s %-5s %-5s %-5s %-5s %-5s "
2109                                   "%-5s %-5s %-5s %-5s %-5s %-5s %-5s ]\n",
2110                            "group", "free", "frags", "first",
2111                            "2^0", "2^1", "2^2", "2^3", "2^4", "2^5", "2^6",
2112                            "2^7", "2^8", "2^9", "2^10", "2^11", "2^12", "2^13");
2113
2114         i = (sb->s_blocksize_bits + 2) * sizeof(sg.info.bb_counters[0]) +
2115                 sizeof(struct ext4_group_info);
2116         err = ext4_mb_load_buddy(sb, group, &e4b);
2117         if (err) {
2118                 seq_printf(seq, "#%-5lu: I/O error\n", group);
2119                 return 0;
2120         }
2121         ext4_lock_group(sb, group);
2122         memcpy(&sg, ext4_get_group_info(sb, group), i);
2123         ext4_unlock_group(sb, group);
2124         ext4_mb_release_desc(&e4b);
2125
2126         seq_printf(seq, "#%-5lu: %-5u %-5u %-5u [", group, sg.info.bb_free,
2127                         sg.info.bb_fragments, sg.info.bb_first_free);
2128         for (i = 0; i <= 13; i++)
2129                 seq_printf(seq, " %-5u", i <= sb->s_blocksize_bits + 1 ?
2130                                 sg.info.bb_counters[i] : 0);
2131         seq_printf(seq, " ]\n");
2132
2133         return 0;
2134 }
2135
2136 static void ext4_mb_seq_groups_stop(struct seq_file *seq, void *v)
2137 {
2138 }
2139
2140 static struct seq_operations ext4_mb_seq_groups_ops = {
2141         .start  = ext4_mb_seq_groups_start,
2142         .next   = ext4_mb_seq_groups_next,
2143         .stop   = ext4_mb_seq_groups_stop,
2144         .show   = ext4_mb_seq_groups_show,
2145 };
2146
2147 static int ext4_mb_seq_groups_open(struct inode *inode, struct file *file)
2148 {
2149         struct super_block *sb = PDE(inode)->data;
2150         int rc;
2151
2152         rc = seq_open(file, &ext4_mb_seq_groups_ops);
2153         if (rc == 0) {
2154                 struct seq_file *m = (struct seq_file *)file->private_data;
2155                 m->private = sb;
2156         }
2157         return rc;
2158
2159 }
2160
2161 static struct file_operations ext4_mb_seq_groups_fops = {
2162         .owner          = THIS_MODULE,
2163         .open           = ext4_mb_seq_groups_open,
2164         .read           = seq_read,
2165         .llseek         = seq_lseek,
2166         .release        = seq_release,
2167 };
2168
2169 static void ext4_mb_history_release(struct super_block *sb)
2170 {
2171         struct ext4_sb_info *sbi = EXT4_SB(sb);
2172
2173         remove_proc_entry("mb_groups", sbi->s_mb_proc);
2174         remove_proc_entry("mb_history", sbi->s_mb_proc);
2175
2176         kfree(sbi->s_mb_history);
2177 }
2178
2179 static void ext4_mb_history_init(struct super_block *sb)
2180 {
2181         struct ext4_sb_info *sbi = EXT4_SB(sb);
2182         int i;
2183
2184         if (sbi->s_mb_proc != NULL) {
2185                 proc_create_data("mb_history", S_IRUGO, sbi->s_mb_proc,
2186                                  &ext4_mb_seq_history_fops, sb);
2187                 proc_create_data("mb_groups", S_IRUGO, sbi->s_mb_proc,
2188                                  &ext4_mb_seq_groups_fops, sb);
2189         }
2190
2191         sbi->s_mb_history_max = 1000;
2192         sbi->s_mb_history_cur = 0;
2193         spin_lock_init(&sbi->s_mb_history_lock);
2194         i = sbi->s_mb_history_max * sizeof(struct ext4_mb_history);
2195         sbi->s_mb_history = kzalloc(i, GFP_KERNEL);
2196         /* if we can't allocate history, then we simple won't use it */
2197 }
2198
2199 static noinline_for_stack void
2200 ext4_mb_store_history(struct ext4_allocation_context *ac)
2201 {
2202         struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
2203         struct ext4_mb_history h;
2204
2205         if (unlikely(sbi->s_mb_history == NULL))
2206                 return;
2207
2208         if (!(ac->ac_op & sbi->s_mb_history_filter))
2209                 return;
2210
2211         h.op = ac->ac_op;
2212         h.pid = current->pid;
2213         h.ino = ac->ac_inode ? ac->ac_inode->i_ino : 0;
2214         h.orig = ac->ac_o_ex;
2215         h.result = ac->ac_b_ex;
2216         h.flags = ac->ac_flags;
2217         h.found = ac->ac_found;
2218         h.groups = ac->ac_groups_scanned;
2219         h.cr = ac->ac_criteria;
2220         h.tail = ac->ac_tail;
2221         h.buddy = ac->ac_buddy;
2222         h.merged = 0;
2223         if (ac->ac_op == EXT4_MB_HISTORY_ALLOC) {
2224                 if (ac->ac_g_ex.fe_start == ac->ac_b_ex.fe_start &&
2225                                 ac->ac_g_ex.fe_group == ac->ac_b_ex.fe_group)
2226                         h.merged = 1;
2227                 h.goal = ac->ac_g_ex;
2228                 h.result = ac->ac_f_ex;
2229         }
2230
2231         spin_lock(&sbi->s_mb_history_lock);
2232         memcpy(sbi->s_mb_history + sbi->s_mb_history_cur, &h, sizeof(h));
2233         if (++sbi->s_mb_history_cur >= sbi->s_mb_history_max)
2234                 sbi->s_mb_history_cur = 0;
2235         spin_unlock(&sbi->s_mb_history_lock);
2236 }
2237
2238 #else
2239 #define ext4_mb_history_release(sb)
2240 #define ext4_mb_history_init(sb)
2241 #endif
2242
2243
2244 /* Create and initialize ext4_group_info data for the given group. */
2245 int ext4_mb_add_groupinfo(struct super_block *sb, ext4_group_t group,
2246                           struct ext4_group_desc *desc)
2247 {
2248         int i, len;
2249         int metalen = 0;
2250         struct ext4_sb_info *sbi = EXT4_SB(sb);
2251         struct ext4_group_info **meta_group_info;
2252
2253         /*
2254          * First check if this group is the first of a reserved block.
2255          * If it's true, we have to allocate a new table of pointers
2256          * to ext4_group_info structures
2257          */
2258         if (group % EXT4_DESC_PER_BLOCK(sb) == 0) {
2259                 metalen = sizeof(*meta_group_info) <<
2260                         EXT4_DESC_PER_BLOCK_BITS(sb);
2261                 meta_group_info = kmalloc(metalen, GFP_KERNEL);
2262                 if (meta_group_info == NULL) {
2263                         printk(KERN_ERR "EXT4-fs: can't allocate mem for a "
2264                                "buddy group\n");
2265                         goto exit_meta_group_info;
2266                 }
2267                 sbi->s_group_info[group >> EXT4_DESC_PER_BLOCK_BITS(sb)] =
2268                         meta_group_info;
2269         }
2270
2271         /*
2272          * calculate needed size. if change bb_counters size,
2273          * don't forget about ext4_mb_generate_buddy()
2274          */
2275         len = offsetof(typeof(**meta_group_info),
2276                        bb_counters[sb->s_blocksize_bits + 2]);
2277
2278         meta_group_info =
2279                 sbi->s_group_info[group >> EXT4_DESC_PER_BLOCK_BITS(sb)];
2280         i = group & (EXT4_DESC_PER_BLOCK(sb) - 1);
2281
2282         meta_group_info[i] = kzalloc(len, GFP_KERNEL);
2283         if (meta_group_info[i] == NULL) {
2284                 printk(KERN_ERR "EXT4-fs: can't allocate buddy mem\n");
2285                 goto exit_group_info;
2286         }
2287         set_bit(EXT4_GROUP_INFO_NEED_INIT_BIT,
2288                 &(meta_group_info[i]->bb_state));
2289
2290         /*
2291          * initialize bb_free to be able to skip
2292          * empty groups without initialization
2293          */
2294         if (desc->bg_flags & cpu_to_le16(EXT4_BG_BLOCK_UNINIT)) {
2295                 meta_group_info[i]->bb_free =
2296                         ext4_free_blocks_after_init(sb, group, desc);
2297         } else {
2298                 meta_group_info[i]->bb_free =
2299                         le16_to_cpu(desc->bg_free_blocks_count);
2300         }
2301
2302         INIT_LIST_HEAD(&meta_group_info[i]->bb_prealloc_list);
2303
2304 #ifdef DOUBLE_CHECK
2305         {
2306                 struct buffer_head *bh;
2307                 meta_group_info[i]->bb_bitmap =
2308                         kmalloc(sb->s_blocksize, GFP_KERNEL);
2309                 BUG_ON(meta_group_info[i]->bb_bitmap == NULL);
2310                 bh = ext4_read_block_bitmap(sb, group);
2311                 BUG_ON(bh == NULL);
2312                 memcpy(meta_group_info[i]->bb_bitmap, bh->b_data,
2313                         sb->s_blocksize);
2314                 put_bh(bh);
2315         }
2316 #endif
2317
2318         return 0;
2319
2320 exit_group_info:
2321         /* If a meta_group_info table has been allocated, release it now */
2322         if (group % EXT4_DESC_PER_BLOCK(sb) == 0)
2323                 kfree(sbi->s_group_info[group >> EXT4_DESC_PER_BLOCK_BITS(sb)]);
2324 exit_meta_group_info:
2325         return -ENOMEM;
2326 } /* ext4_mb_add_groupinfo */
2327
2328 /*
2329  * Add a group to the existing groups.
2330  * This function is used for online resize
2331  */
2332 int ext4_mb_add_more_groupinfo(struct super_block *sb, ext4_group_t group,
2333                                struct ext4_group_desc *desc)
2334 {
2335         struct ext4_sb_info *sbi = EXT4_SB(sb);
2336         struct inode *inode = sbi->s_buddy_cache;
2337         int blocks_per_page;
2338         int block;
2339         int pnum;
2340         struct page *page;
2341         int err;
2342
2343         /* Add group based on group descriptor*/
2344         err = ext4_mb_add_groupinfo(sb, group, desc);
2345         if (err)
2346                 return err;
2347
2348         /*
2349          * Cache pages containing dynamic mb_alloc datas (buddy and bitmap
2350          * datas) are set not up to date so that they will be re-initilaized
2351          * during the next call to ext4_mb_load_buddy
2352          */
2353
2354         /* Set buddy page as not up to date */
2355         blocks_per_page = PAGE_CACHE_SIZE / sb->s_blocksize;
2356         block = group * 2;
2357         pnum = block / blocks_per_page;
2358         page = find_get_page(inode->i_mapping, pnum);
2359         if (page != NULL) {
2360                 ClearPageUptodate(page);
2361                 page_cache_release(page);
2362         }
2363
2364         /* Set bitmap page as not up to date */
2365         block++;
2366         pnum = block / blocks_per_page;
2367         page = find_get_page(inode->i_mapping, pnum);
2368         if (page != NULL) {
2369                 ClearPageUptodate(page);
2370                 page_cache_release(page);
2371         }
2372
2373         return 0;
2374 }
2375
2376 /*
2377  * Update an existing group.
2378  * This function is used for online resize
2379  */
2380 void ext4_mb_update_group_info(struct ext4_group_info *grp, ext4_grpblk_t add)
2381 {
2382         grp->bb_free += add;
2383 }
2384
2385 static int ext4_mb_init_backend(struct super_block *sb)
2386 {
2387         ext4_group_t i;
2388         int metalen;
2389         struct ext4_sb_info *sbi = EXT4_SB(sb);
2390         struct ext4_super_block *es = sbi->s_es;
2391         int num_meta_group_infos;
2392         int num_meta_group_infos_max;
2393         int array_size;
2394         struct ext4_group_info **meta_group_info;
2395         struct ext4_group_desc *desc;
2396
2397         /* This is the number of blocks used by GDT */
2398         num_meta_group_infos = (sbi->s_groups_count + EXT4_DESC_PER_BLOCK(sb) -
2399                                 1) >> EXT4_DESC_PER_BLOCK_BITS(sb);
2400
2401         /*
2402          * This is the total number of blocks used by GDT including
2403          * the number of reserved blocks for GDT.
2404          * The s_group_info array is allocated with this value
2405          * to allow a clean online resize without a complex
2406          * manipulation of pointer.
2407          * The drawback is the unused memory when no resize
2408          * occurs but it's very low in terms of pages
2409          * (see comments below)
2410          * Need to handle this properly when META_BG resizing is allowed
2411          */
2412         num_meta_group_infos_max = num_meta_group_infos +
2413                                 le16_to_cpu(es->s_reserved_gdt_blocks);
2414
2415         /*
2416          * array_size is the size of s_group_info array. We round it
2417          * to the next power of two because this approximation is done
2418          * internally by kmalloc so we can have some more memory
2419          * for free here (e.g. may be used for META_BG resize).
2420          */
2421         array_size = 1;
2422         while (array_size < sizeof(*sbi->s_group_info) *
2423                num_meta_group_infos_max)
2424                 array_size = array_size << 1;
2425         /* An 8TB filesystem with 64-bit pointers requires a 4096 byte
2426          * kmalloc. A 128kb malloc should suffice for a 256TB filesystem.
2427          * So a two level scheme suffices for now. */
2428         sbi->s_group_info = kmalloc(array_size, GFP_KERNEL);
2429         if (sbi->s_group_info == NULL) {
2430                 printk(KERN_ERR "EXT4-fs: can't allocate buddy meta group\n");
2431                 return -ENOMEM;
2432         }
2433         sbi->s_buddy_cache = new_inode(sb);
2434         if (sbi->s_buddy_cache == NULL) {
2435                 printk(KERN_ERR "EXT4-fs: can't get new inode\n");
2436                 goto err_freesgi;
2437         }
2438         EXT4_I(sbi->s_buddy_cache)->i_disksize = 0;
2439
2440         metalen = sizeof(*meta_group_info) << EXT4_DESC_PER_BLOCK_BITS(sb);
2441         for (i = 0; i < num_meta_group_infos; i++) {
2442                 if ((i + 1) == num_meta_group_infos)
2443                         metalen = sizeof(*meta_group_info) *
2444                                 (sbi->s_groups_count -
2445                                         (i << EXT4_DESC_PER_BLOCK_BITS(sb)));
2446                 meta_group_info = kmalloc(metalen, GFP_KERNEL);
2447                 if (meta_group_info == NULL) {
2448                         printk(KERN_ERR "EXT4-fs: can't allocate mem for a "
2449                                "buddy group\n");
2450                         goto err_freemeta;
2451                 }
2452                 sbi->s_group_info[i] = meta_group_info;
2453         }
2454
2455         for (i = 0; i < sbi->s_groups_count; i++) {
2456                 desc = ext4_get_group_desc(sb, i, NULL);
2457                 if (desc == NULL) {
2458                         printk(KERN_ERR
2459                                 "EXT4-fs: can't read descriptor %lu\n", i);
2460                         goto err_freebuddy;
2461                 }
2462                 if (ext4_mb_add_groupinfo(sb, i, desc) != 0)
2463                         goto err_freebuddy;
2464         }
2465
2466         return 0;
2467
2468 err_freebuddy:
2469         while (i-- > 0)
2470                 kfree(ext4_get_group_info(sb, i));
2471         i = num_meta_group_infos;
2472 err_freemeta:
2473         while (i-- > 0)
2474                 kfree(sbi->s_group_info[i]);
2475         iput(sbi->s_buddy_cache);
2476 err_freesgi:
2477         kfree(sbi->s_group_info);
2478         return -ENOMEM;
2479 }
2480
2481 int ext4_mb_init(struct super_block *sb, int needs_recovery)
2482 {
2483         struct ext4_sb_info *sbi = EXT4_SB(sb);
2484         unsigned i, j;
2485         unsigned offset;
2486         unsigned max;
2487         int ret;
2488
2489         if (!test_opt(sb, MBALLOC))
2490                 return 0;
2491
2492         i = (sb->s_blocksize_bits + 2) * sizeof(unsigned short);
2493
2494         sbi->s_mb_offsets = kmalloc(i, GFP_KERNEL);
2495         if (sbi->s_mb_offsets == NULL) {
2496                 clear_opt(sbi->s_mount_opt, MBALLOC);
2497                 return -ENOMEM;
2498         }
2499         sbi->s_mb_maxs = kmalloc(i, GFP_KERNEL);
2500         if (sbi->s_mb_maxs == NULL) {
2501                 clear_opt(sbi->s_mount_opt, MBALLOC);
2502                 kfree(sbi->s_mb_maxs);
2503                 return -ENOMEM;
2504         }
2505
2506         /* order 0 is regular bitmap */
2507         sbi->s_mb_maxs[0] = sb->s_blocksize << 3;
2508         sbi->s_mb_offsets[0] = 0;
2509
2510         i = 1;
2511         offset = 0;
2512         max = sb->s_blocksize << 2;
2513         do {
2514                 sbi->s_mb_offsets[i] = offset;
2515                 sbi->s_mb_maxs[i] = max;
2516                 offset += 1 << (sb->s_blocksize_bits - i);
2517                 max = max >> 1;
2518                 i++;
2519         } while (i <= sb->s_blocksize_bits + 1);
2520
2521         /* init file for buddy data */
2522         ret = ext4_mb_init_backend(sb);
2523         if (ret != 0) {
2524                 clear_opt(sbi->s_mount_opt, MBALLOC);
2525                 kfree(sbi->s_mb_offsets);
2526                 kfree(sbi->s_mb_maxs);
2527                 return ret;
2528         }
2529
2530         spin_lock_init(&sbi->s_md_lock);
2531         INIT_LIST_HEAD(&sbi->s_active_transaction);
2532         INIT_LIST_HEAD(&sbi->s_closed_transaction);
2533         INIT_LIST_HEAD(&sbi->s_committed_transaction);
2534         spin_lock_init(&sbi->s_bal_lock);
2535
2536         sbi->s_mb_max_to_scan = MB_DEFAULT_MAX_TO_SCAN;
2537         sbi->s_mb_min_to_scan = MB_DEFAULT_MIN_TO_SCAN;
2538         sbi->s_mb_stats = MB_DEFAULT_STATS;
2539         sbi->s_mb_stream_request = MB_DEFAULT_STREAM_THRESHOLD;
2540         sbi->s_mb_order2_reqs = MB_DEFAULT_ORDER2_REQS;
2541         sbi->s_mb_history_filter = EXT4_MB_HISTORY_DEFAULT;
2542         sbi->s_mb_group_prealloc = MB_DEFAULT_GROUP_PREALLOC;
2543
2544         sbi->s_locality_groups = alloc_percpu(struct ext4_locality_group);
2545         if (sbi->s_locality_groups == NULL) {
2546                 clear_opt(sbi->s_mount_opt, MBALLOC);
2547                 kfree(sbi->s_mb_offsets);
2548                 kfree(sbi->s_mb_maxs);
2549                 return -ENOMEM;
2550         }
2551         for_each_possible_cpu(i) {
2552                 struct ext4_locality_group *lg;
2553                 lg = per_cpu_ptr(sbi->s_locality_groups, i);
2554                 mutex_init(&lg->lg_mutex);
2555                 for (j = 0; j < PREALLOC_TB_SIZE; j++)
2556                         INIT_LIST_HEAD(&lg->lg_prealloc_list[j]);
2557                 spin_lock_init(&lg->lg_prealloc_lock);
2558         }
2559
2560         ext4_mb_init_per_dev_proc(sb);
2561         ext4_mb_history_init(sb);
2562
2563         printk(KERN_INFO "EXT4-fs: mballoc enabled\n");
2564         return 0;
2565 }
2566
2567 /* need to called with ext4 group lock (ext4_lock_group) */
2568 static void ext4_mb_cleanup_pa(struct ext4_group_info *grp)
2569 {
2570         struct ext4_prealloc_space *pa;
2571         struct list_head *cur, *tmp;
2572         int count = 0;
2573
2574         list_for_each_safe(cur, tmp, &grp->bb_prealloc_list) {
2575                 pa = list_entry(cur, struct ext4_prealloc_space, pa_group_list);
2576                 list_del(&pa->pa_group_list);
2577                 count++;
2578                 kfree(pa);
2579         }
2580         if (count)
2581                 mb_debug("mballoc: %u PAs left\n", count);
2582
2583 }
2584
2585 int ext4_mb_release(struct super_block *sb)
2586 {
2587         ext4_group_t i;
2588         int num_meta_group_infos;
2589         struct ext4_group_info *grinfo;
2590         struct ext4_sb_info *sbi = EXT4_SB(sb);
2591
2592         if (!test_opt(sb, MBALLOC))
2593                 return 0;
2594
2595         /* release freed, non-committed blocks */
2596         spin_lock(&sbi->s_md_lock);
2597         list_splice_init(&sbi->s_closed_transaction,
2598                         &sbi->s_committed_transaction);
2599         list_splice_init(&sbi->s_active_transaction,
2600                         &sbi->s_committed_transaction);
2601         spin_unlock(&sbi->s_md_lock);
2602         ext4_mb_free_committed_blocks(sb);
2603
2604         if (sbi->s_group_info) {
2605                 for (i = 0; i < sbi->s_groups_count; i++) {
2606                         grinfo = ext4_get_group_info(sb, i);
2607 #ifdef DOUBLE_CHECK
2608                         kfree(grinfo->bb_bitmap);
2609 #endif
2610                         ext4_lock_group(sb, i);
2611                         ext4_mb_cleanup_pa(grinfo);
2612                         ext4_unlock_group(sb, i);
2613                         kfree(grinfo);
2614                 }
2615                 num_meta_group_infos = (sbi->s_groups_count +
2616                                 EXT4_DESC_PER_BLOCK(sb) - 1) >>
2617                         EXT4_DESC_PER_BLOCK_BITS(sb);
2618                 for (i = 0; i < num_meta_group_infos; i++)
2619                         kfree(sbi->s_group_info[i]);
2620                 kfree(sbi->s_group_info);
2621         }
2622         kfree(sbi->s_mb_offsets);
2623         kfree(sbi->s_mb_maxs);
2624         if (sbi->s_buddy_cache)
2625                 iput(sbi->s_buddy_cache);
2626         if (sbi->s_mb_stats) {
2627                 printk(KERN_INFO
2628                        "EXT4-fs: mballoc: %u blocks %u reqs (%u success)\n",
2629                                 atomic_read(&sbi->s_bal_allocated),
2630                                 atomic_read(&sbi->s_bal_reqs),
2631                                 atomic_read(&sbi->s_bal_success));
2632                 printk(KERN_INFO
2633                       "EXT4-fs: mballoc: %u extents scanned, %u goal hits, "
2634                                 "%u 2^N hits, %u breaks, %u lost\n",
2635                                 atomic_read(&sbi->s_bal_ex_scanned),
2636                                 atomic_read(&sbi->s_bal_goals),
2637                                 atomic_read(&sbi->s_bal_2orders),
2638                                 atomic_read(&sbi->s_bal_breaks),
2639                                 atomic_read(&sbi->s_mb_lost_chunks));
2640                 printk(KERN_INFO
2641                        "EXT4-fs: mballoc: %lu generated and it took %Lu\n",
2642                                 sbi->s_mb_buddies_generated++,
2643                                 sbi->s_mb_generation_time);
2644                 printk(KERN_INFO
2645                        "EXT4-fs: mballoc: %u preallocated, %u discarded\n",
2646                                 atomic_read(&sbi->s_mb_preallocated),
2647                                 atomic_read(&sbi->s_mb_discarded));
2648         }
2649
2650         free_percpu(sbi->s_locality_groups);
2651         ext4_mb_history_release(sb);
2652         ext4_mb_destroy_per_dev_proc(sb);
2653
2654         return 0;
2655 }
2656
2657 static noinline_for_stack void
2658 ext4_mb_free_committed_blocks(struct super_block *sb)
2659 {
2660         struct ext4_sb_info *sbi = EXT4_SB(sb);
2661         int err;
2662         int i;
2663         int count = 0;
2664         int count2 = 0;
2665         struct ext4_free_metadata *md;
2666         struct ext4_buddy e4b;
2667
2668         if (list_empty(&sbi->s_committed_transaction))
2669                 return;
2670
2671         /* there is committed blocks to be freed yet */
2672         do {
2673                 /* get next array of blocks */
2674                 md = NULL;
2675                 spin_lock(&sbi->s_md_lock);
2676                 if (!list_empty(&sbi->s_committed_transaction)) {
2677                         md = list_entry(sbi->s_committed_transaction.next,
2678                                         struct ext4_free_metadata, list);
2679                         list_del(&md->list);
2680                 }
2681                 spin_unlock(&sbi->s_md_lock);
2682
2683                 if (md == NULL)
2684                         break;
2685
2686                 mb_debug("gonna free %u blocks in group %lu (0x%p):",
2687                                 md->num, md->group, md);
2688
2689                 err = ext4_mb_load_buddy(sb, md->group, &e4b);
2690                 /* we expect to find existing buddy because it's pinned */
2691                 BUG_ON(err != 0);
2692
2693                 /* there are blocks to put in buddy to make them really free */
2694                 count += md->num;
2695                 count2++;
2696                 ext4_lock_group(sb, md->group);
2697                 for (i = 0; i < md->num; i++) {
2698                         mb_debug(" %u", md->blocks[i]);
2699                         mb_free_blocks(NULL, &e4b, md->blocks[i], 1);
2700                 }
2701                 mb_debug("\n");
2702                 ext4_unlock_group(sb, md->group);
2703
2704                 /* balance refcounts from ext4_mb_free_metadata() */
2705                 page_cache_release(e4b.bd_buddy_page);
2706                 page_cache_release(e4b.bd_bitmap_page);
2707
2708                 kfree(md);
2709                 ext4_mb_release_desc(&e4b);
2710
2711         } while (md);
2712
2713         mb_debug("freed %u blocks in %u structures\n", count, count2);
2714 }
2715
2716 #define EXT4_MB_STATS_NAME              "stats"
2717 #define EXT4_MB_MAX_TO_SCAN_NAME        "max_to_scan"
2718 #define EXT4_MB_MIN_TO_SCAN_NAME        "min_to_scan"
2719 #define EXT4_MB_ORDER2_REQ              "order2_req"
2720 #define EXT4_MB_STREAM_REQ              "stream_req"
2721 #define EXT4_MB_GROUP_PREALLOC          "group_prealloc"
2722
2723
2724
2725 #define MB_PROC_FOPS(name)                                      \
2726 static int ext4_mb_##name##_proc_show(struct seq_file *m, void *v)      \
2727 {                                                               \
2728         struct ext4_sb_info *sbi = m->private;                  \
2729                                                                 \
2730         seq_printf(m, "%ld\n", sbi->s_mb_##name);               \
2731         return 0;                                               \
2732 }                                                               \
2733                                                                 \
2734 static int ext4_mb_##name##_proc_open(struct inode *inode, struct file *file)\
2735 {                                                               \
2736         return single_open(file, ext4_mb_##name##_proc_show, PDE(inode)->data);\
2737 }                                                               \
2738                                                                 \
2739 static ssize_t ext4_mb_##name##_proc_write(struct file *file,   \
2740                 const char __user *buf, size_t cnt, loff_t *ppos)       \
2741 {                                                               \
2742         struct ext4_sb_info *sbi = PDE(file->f_path.dentry->d_inode)->data;\
2743         char str[32];                                           \
2744         long value;                                             \
2745         if (cnt >= sizeof(str))                                 \
2746                 return -EINVAL;                                 \
2747         if (copy_from_user(str, buf, cnt))                      \
2748                 return -EFAULT;                                 \
2749         value = simple_strtol(str, NULL, 0);                    \
2750         if (value <= 0)                                         \
2751                 return -ERANGE;                                 \
2752         sbi->s_mb_##name = value;                               \
2753         return cnt;                                             \
2754 }                                                               \
2755                                                                 \
2756 static const struct file_operations ext4_mb_##name##_proc_fops = {      \
2757         .owner          = THIS_MODULE,                          \
2758         .open           = ext4_mb_##name##_proc_open,           \
2759         .read           = seq_read,                             \
2760         .llseek         = seq_lseek,                            \
2761         .release        = single_release,                       \
2762         .write          = ext4_mb_##name##_proc_write,          \
2763 };
2764
2765 MB_PROC_FOPS(stats);
2766 MB_PROC_FOPS(max_to_scan);
2767 MB_PROC_FOPS(min_to_scan);
2768 MB_PROC_FOPS(order2_reqs);
2769 MB_PROC_FOPS(stream_request);
2770 MB_PROC_FOPS(group_prealloc);
2771
2772 #define MB_PROC_HANDLER(name, var)                                      \
2773 do {                                                                    \
2774         proc = proc_create_data(name, mode, sbi->s_mb_proc,             \
2775                                 &ext4_mb_##var##_proc_fops, sbi);       \
2776         if (proc == NULL) {                                             \
2777                 printk(KERN_ERR "EXT4-fs: can't to create %s\n", name); \
2778                 goto err_out;                                           \
2779         }                                                               \
2780 } while (0)
2781
2782 static int ext4_mb_init_per_dev_proc(struct super_block *sb)
2783 {
2784         mode_t mode = S_IFREG | S_IRUGO | S_IWUSR;
2785         struct ext4_sb_info *sbi = EXT4_SB(sb);
2786         struct proc_dir_entry *proc;
2787         char devname[BDEVNAME_SIZE], *p;
2788
2789         if (proc_root_ext4 == NULL) {
2790                 sbi->s_mb_proc = NULL;
2791                 return -EINVAL;
2792         }
2793         bdevname(sb->s_bdev, devname);
2794         p = devname;
2795         while ((p = strchr(p, '/')))
2796                 *p = '!';
2797
2798         sbi->s_mb_proc = proc_mkdir(devname, proc_root_ext4);
2799         if (!sbi->s_mb_proc)
2800                 goto err_create_dir;
2801
2802         MB_PROC_HANDLER(EXT4_MB_STATS_NAME, stats);
2803         MB_PROC_HANDLER(EXT4_MB_MAX_TO_SCAN_NAME, max_to_scan);
2804         MB_PROC_HANDLER(EXT4_MB_MIN_TO_SCAN_NAME, min_to_scan);
2805         MB_PROC_HANDLER(EXT4_MB_ORDER2_REQ, order2_reqs);
2806         MB_PROC_HANDLER(EXT4_MB_STREAM_REQ, stream_request);
2807         MB_PROC_HANDLER(EXT4_MB_GROUP_PREALLOC, group_prealloc);
2808
2809         return 0;
2810
2811 err_out:
2812         remove_proc_entry(EXT4_MB_GROUP_PREALLOC, sbi->s_mb_proc);
2813         remove_proc_entry(EXT4_MB_STREAM_REQ, sbi->s_mb_proc);
2814         remove_proc_entry(EXT4_MB_ORDER2_REQ, sbi->s_mb_proc);
2815         remove_proc_entry(EXT4_MB_MIN_TO_SCAN_NAME, sbi->s_mb_proc);
2816         remove_proc_entry(EXT4_MB_MAX_TO_SCAN_NAME, sbi->s_mb_proc);
2817         remove_proc_entry(EXT4_MB_STATS_NAME, sbi->s_mb_proc);
2818         remove_proc_entry(devname, proc_root_ext4);
2819         sbi->s_mb_proc = NULL;
2820 err_create_dir:
2821         printk(KERN_ERR "EXT4-fs: Unable to create %s\n", devname);
2822
2823         return -ENOMEM;
2824 }
2825
2826 static int ext4_mb_destroy_per_dev_proc(struct super_block *sb)
2827 {
2828         struct ext4_sb_info *sbi = EXT4_SB(sb);
2829         char devname[BDEVNAME_SIZE], *p;
2830
2831         if (sbi->s_mb_proc == NULL)
2832                 return -EINVAL;
2833
2834         bdevname(sb->s_bdev, devname);
2835         p = devname;
2836         while ((p = strchr(p, '/')))
2837                 *p = '!';
2838         remove_proc_entry(EXT4_MB_GROUP_PREALLOC, sbi->s_mb_proc);
2839         remove_proc_entry(EXT4_MB_STREAM_REQ, sbi->s_mb_proc);
2840         remove_proc_entry(EXT4_MB_ORDER2_REQ, sbi->s_mb_proc);
2841         remove_proc_entry(EXT4_MB_MIN_TO_SCAN_NAME, sbi->s_mb_proc);
2842         remove_proc_entry(EXT4_MB_MAX_TO_SCAN_NAME, sbi->s_mb_proc);
2843         remove_proc_entry(EXT4_MB_STATS_NAME, sbi->s_mb_proc);
2844         remove_proc_entry(devname, proc_root_ext4);
2845
2846         return 0;
2847 }
2848
2849 int __init init_ext4_mballoc(void)
2850 {
2851         ext4_pspace_cachep =
2852                 kmem_cache_create("ext4_prealloc_space",
2853                                      sizeof(struct ext4_prealloc_space),
2854                                      0, SLAB_RECLAIM_ACCOUNT, NULL);
2855         if (ext4_pspace_cachep == NULL)
2856                 return -ENOMEM;
2857
2858         ext4_ac_cachep =
2859                 kmem_cache_create("ext4_alloc_context",
2860                                      sizeof(struct ext4_allocation_context),
2861                                      0, SLAB_RECLAIM_ACCOUNT, NULL);
2862         if (ext4_ac_cachep == NULL) {
2863                 kmem_cache_destroy(ext4_pspace_cachep);
2864                 return -ENOMEM;
2865         }
2866 #ifdef CONFIG_PROC_FS
2867         proc_root_ext4 = proc_mkdir("fs/ext4", NULL);
2868         if (proc_root_ext4 == NULL)
2869                 printk(KERN_ERR "EXT4-fs: Unable to create fs/ext4\n");
2870 #endif
2871         return 0;
2872 }
2873
2874 void exit_ext4_mballoc(void)
2875 {
2876         /* XXX: synchronize_rcu(); */
2877         kmem_cache_destroy(ext4_pspace_cachep);
2878         kmem_cache_destroy(ext4_ac_cachep);
2879 #ifdef CONFIG_PROC_FS
2880         remove_proc_entry("fs/ext4", NULL);
2881 #endif
2882 }
2883
2884
2885 /*
2886  * Check quota and mark choosed space (ac->ac_b_ex) non-free in bitmaps
2887  * Returns 0 if success or error code
2888  */
2889 static noinline_for_stack int
2890 ext4_mb_mark_diskspace_used(struct ext4_allocation_context *ac,
2891                                 handle_t *handle, unsigned long reserv_blks)
2892 {
2893         struct buffer_head *bitmap_bh = NULL;
2894         struct ext4_super_block *es;
2895         struct ext4_group_desc *gdp;
2896         struct buffer_head *gdp_bh;
2897         struct ext4_sb_info *sbi;
2898         struct super_block *sb;
2899         ext4_fsblk_t block;
2900         int err, len;
2901
2902         BUG_ON(ac->ac_status != AC_STATUS_FOUND);
2903         BUG_ON(ac->ac_b_ex.fe_len <= 0);
2904
2905         sb = ac->ac_sb;
2906         sbi = EXT4_SB(sb);
2907         es = sbi->s_es;
2908
2909
2910         err = -EIO;
2911         bitmap_bh = ext4_read_block_bitmap(sb, ac->ac_b_ex.fe_group);
2912         if (!bitmap_bh)
2913                 goto out_err;
2914
2915         err = ext4_journal_get_write_access(handle, bitmap_bh);
2916         if (err)
2917                 goto out_err;
2918
2919         err = -EIO;
2920         gdp = ext4_get_group_desc(sb, ac->ac_b_ex.fe_group, &gdp_bh);
2921         if (!gdp)
2922                 goto out_err;
2923
2924         ext4_debug("using block group %lu(%d)\n", ac->ac_b_ex.fe_group,
2925                         gdp->bg_free_blocks_count);
2926
2927         err = ext4_journal_get_write_access(handle, gdp_bh);
2928         if (err)
2929                 goto out_err;
2930
2931         block = ac->ac_b_ex.fe_group * EXT4_BLOCKS_PER_GROUP(sb)
2932                 + ac->ac_b_ex.fe_start
2933                 + le32_to_cpu(es->s_first_data_block);
2934
2935         len = ac->ac_b_ex.fe_len;
2936         if (in_range(ext4_block_bitmap(sb, gdp), block, len) ||
2937             in_range(ext4_inode_bitmap(sb, gdp), block, len) ||
2938             in_range(block, ext4_inode_table(sb, gdp),
2939                      EXT4_SB(sb)->s_itb_per_group) ||
2940             in_range(block + len - 1, ext4_inode_table(sb, gdp),
2941                      EXT4_SB(sb)->s_itb_per_group)) {
2942                 ext4_error(sb, __func__,
2943                            "Allocating block in system zone - block = %llu",
2944                            block);
2945                 /* File system mounted not to panic on error
2946                  * Fix the bitmap and repeat the block allocation
2947                  * We leak some of the blocks here.
2948                  */
2949                 mb_set_bits(sb_bgl_lock(sbi, ac->ac_b_ex.fe_group),
2950                                 bitmap_bh->b_data, ac->ac_b_ex.fe_start,
2951                                 ac->ac_b_ex.fe_len);
2952                 err = ext4_journal_dirty_metadata(handle, bitmap_bh);
2953                 if (!err)
2954                         err = -EAGAIN;
2955                 goto out_err;
2956         }
2957 #ifdef AGGRESSIVE_CHECK
2958         {
2959                 int i;
2960                 for (i = 0; i < ac->ac_b_ex.fe_len; i++) {
2961                         BUG_ON(mb_test_bit(ac->ac_b_ex.fe_start + i,
2962                                                 bitmap_bh->b_data));
2963                 }
2964         }
2965 #endif
2966         mb_set_bits(sb_bgl_lock(sbi, ac->ac_b_ex.fe_group), bitmap_bh->b_data,
2967                                 ac->ac_b_ex.fe_start, ac->ac_b_ex.fe_len);
2968
2969         spin_lock(sb_bgl_lock(sbi, ac->ac_b_ex.fe_group));
2970         if (gdp->bg_flags & cpu_to_le16(EXT4_BG_BLOCK_UNINIT)) {
2971                 gdp->bg_flags &= cpu_to_le16(~EXT4_BG_BLOCK_UNINIT);
2972                 gdp->bg_free_blocks_count =
2973                         cpu_to_le16(ext4_free_blocks_after_init(sb,
2974                                                 ac->ac_b_ex.fe_group,
2975                                                 gdp));
2976         }
2977         le16_add_cpu(&gdp->bg_free_blocks_count, -ac->ac_b_ex.fe_len);
2978         gdp->bg_checksum = ext4_group_desc_csum(sbi, ac->ac_b_ex.fe_group, gdp);
2979         spin_unlock(sb_bgl_lock(sbi, ac->ac_b_ex.fe_group));
2980         percpu_counter_sub(&sbi->s_freeblocks_counter, ac->ac_b_ex.fe_len);
2981         /*
2982          * Now reduce the dirty block count also. Should not go negative
2983          */
2984         if (!(ac->ac_flags & EXT4_MB_DELALLOC_RESERVED))
2985                 /* release all the reserved blocks if non delalloc */
2986                 percpu_counter_sub(&sbi->s_dirtyblocks_counter, reserv_blks);
2987         else
2988                 percpu_counter_sub(&sbi->s_dirtyblocks_counter,
2989                                                 ac->ac_b_ex.fe_len);
2990
2991         if (sbi->s_log_groups_per_flex) {
2992                 ext4_group_t flex_group = ext4_flex_group(sbi,
2993                                                           ac->ac_b_ex.fe_group);
2994                 spin_lock(sb_bgl_lock(sbi, flex_group));
2995                 sbi->s_flex_groups[flex_group].free_blocks -= ac->ac_b_ex.fe_len;
2996                 spin_unlock(sb_bgl_lock(sbi, flex_group));
2997         }
2998
2999         err = ext4_journal_dirty_metadata(handle, bitmap_bh);
3000         if (err)
3001                 goto out_err;
3002         err = ext4_journal_dirty_metadata(handle, gdp_bh);
3003
3004 out_err:
3005         sb->s_dirt = 1;
3006         brelse(bitmap_bh);
3007         return err;
3008 }
3009
3010 /*
3011  * here we normalize request for locality group
3012  * Group request are normalized to s_strip size if we set the same via mount
3013  * option. If not we set it to s_mb_group_prealloc which can be configured via
3014  * /proc/fs/ext4/<partition>/group_prealloc
3015  *
3016  * XXX: should we try to preallocate more than the group has now?
3017  */
3018 static void ext4_mb_normalize_group_request(struct ext4_allocation_context *ac)
3019 {
3020         struct super_block *sb = ac->ac_sb;
3021         struct ext4_locality_group *lg = ac->ac_lg;
3022
3023         BUG_ON(lg == NULL);
3024         if (EXT4_SB(sb)->s_stripe)
3025                 ac->ac_g_ex.fe_len = EXT4_SB(sb)->s_stripe;
3026         else
3027                 ac->ac_g_ex.fe_len = EXT4_SB(sb)->s_mb_group_prealloc;
3028         mb_debug("#%u: goal %u blocks for locality group\n",
3029                 current->pid, ac->ac_g_ex.fe_len);
3030 }
3031
3032 /*
3033  * Normalization means making request better in terms of
3034  * size and alignment
3035  */
3036 static noinline_for_stack void
3037 ext4_mb_normalize_request(struct ext4_allocation_context *ac,
3038                                 struct ext4_allocation_request *ar)
3039 {
3040         int bsbits, max;
3041         ext4_lblk_t end;
3042         loff_t size, orig_size, start_off;
3043         ext4_lblk_t start, orig_start;
3044         struct ext4_inode_info *ei = EXT4_I(ac->ac_inode);
3045         struct ext4_prealloc_space *pa;
3046
3047         /* do normalize only data requests, metadata requests
3048            do not need preallocation */
3049         if (!(ac->ac_flags & EXT4_MB_HINT_DATA))
3050                 return;
3051
3052         /* sometime caller may want exact blocks */
3053         if (unlikely(ac->ac_flags & EXT4_MB_HINT_GOAL_ONLY))
3054                 return;
3055
3056         /* caller may indicate that preallocation isn't
3057          * required (it's a tail, for example) */
3058         if (ac->ac_flags & EXT4_MB_HINT_NOPREALLOC)
3059                 return;
3060
3061         if (ac->ac_flags & EXT4_MB_HINT_GROUP_ALLOC) {
3062                 ext4_mb_normalize_group_request(ac);
3063                 return ;
3064         }
3065
3066         bsbits = ac->ac_sb->s_blocksize_bits;
3067
3068         /* first, let's learn actual file size
3069          * given current request is allocated */
3070         size = ac->ac_o_ex.fe_logical + ac->ac_o_ex.fe_len;
3071         size = size << bsbits;
3072         if (size < i_size_read(ac->ac_inode))
3073                 size = i_size_read(ac->ac_inode);
3074
3075         /* max size of free chunks */
3076         max = 2 << bsbits;
3077
3078 #define NRL_CHECK_SIZE(req, size, max, chunk_size)      \
3079                 (req <= (size) || max <= (chunk_size))
3080
3081         /* first, try to predict filesize */
3082         /* XXX: should this table be tunable? */
3083         start_off = 0;
3084         if (size <= 16 * 1024) {
3085                 size = 16 * 1024;
3086         } else if (size <= 32 * 1024) {
3087                 size = 32 * 1024;
3088         } else if (size <= 64 * 1024) {
3089                 size = 64 * 1024;
3090         } else if (size <= 128 * 1024) {
3091                 size = 128 * 1024;
3092         } else if (size <= 256 * 1024) {
3093                 size = 256 * 1024;
3094         } else if (size <= 512 * 1024) {
3095                 size = 512 * 1024;
3096         } else if (size <= 1024 * 1024) {
3097                 size = 1024 * 1024;
3098         } else if (NRL_CHECK_SIZE(size, 4 * 1024 * 1024, max, 2 * 1024)) {
3099                 start_off = ((loff_t)ac->ac_o_ex.fe_logical >>
3100                                                 (21 - bsbits)) << 21;
3101                 size = 2 * 1024 * 1024;
3102         } else if (NRL_CHECK_SIZE(size, 8 * 1024 * 1024, max, 4 * 1024)) {
3103                 start_off = ((loff_t)ac->ac_o_ex.fe_logical >>
3104                                                         (22 - bsbits)) << 22;
3105                 size = 4 * 1024 * 1024;
3106         } else if (NRL_CHECK_SIZE(ac->ac_o_ex.fe_len,
3107                                         (8<<20)>>bsbits, max, 8 * 1024)) {
3108                 start_off = ((loff_t)ac->ac_o_ex.fe_logical >>
3109                                                         (23 - bsbits)) << 23;
3110                 size = 8 * 1024 * 1024;
3111         } else {
3112                 start_off = (loff_t)ac->ac_o_ex.fe_logical << bsbits;
3113                 size      = ac->ac_o_ex.fe_len << bsbits;
3114         }
3115         orig_size = size = size >> bsbits;
3116         orig_start = start = start_off >> bsbits;
3117
3118         /* don't cover already allocated blocks in selected range */
3119         if (ar->pleft && start <= ar->lleft) {
3120                 size -= ar->lleft + 1 - start;
3121                 start = ar->lleft + 1;
3122         }
3123         if (ar->pright && start + size - 1 >= ar->lright)
3124                 size -= start + size - ar->lright;
3125
3126         end = start + size;
3127
3128         /* check we don't cross already preallocated blocks */
3129         rcu_read_lock();
3130         list_for_each_entry_rcu(pa, &ei->i_prealloc_list, pa_inode_list) {
3131                 unsigned long pa_end;
3132
3133                 if (pa->pa_deleted)
3134                         continue;
3135                 spin_lock(&pa->pa_lock);
3136                 if (pa->pa_deleted) {
3137                         spin_unlock(&pa->pa_lock);
3138                         continue;
3139                 }
3140
3141                 pa_end = pa->pa_lstart + pa->pa_len;
3142
3143                 /* PA must not overlap original request */
3144                 BUG_ON(!(ac->ac_o_ex.fe_logical >= pa_end ||
3145                         ac->ac_o_ex.fe_logical < pa->pa_lstart));
3146
3147                 /* skip PA normalized request doesn't overlap with */
3148                 if (pa->pa_lstart >= end) {
3149                         spin_unlock(&pa->pa_lock);
3150                         continue;
3151                 }
3152                 if (pa_end <= start) {
3153                         spin_unlock(&pa->pa_lock);
3154                         continue;
3155                 }
3156                 BUG_ON(pa->pa_lstart <= start && pa_end >= end);
3157
3158                 if (pa_end <= ac->ac_o_ex.fe_logical) {
3159                         BUG_ON(pa_end < start);
3160                         start = pa_end;
3161                 }
3162
3163                 if (pa->pa_lstart > ac->ac_o_ex.fe_logical) {
3164                         BUG_ON(pa->pa_lstart > end);
3165                         end = pa->pa_lstart;
3166                 }
3167                 spin_unlock(&pa->pa_lock);
3168         }
3169         rcu_read_unlock();
3170         size = end - start;
3171
3172         /* XXX: extra loop to check we really don't overlap preallocations */
3173         rcu_read_lock();
3174         list_for_each_entry_rcu(pa, &ei->i_prealloc_list, pa_inode_list) {
3175                 unsigned long pa_end;
3176                 spin_lock(&pa->pa_lock);
3177                 if (pa->pa_deleted == 0) {
3178                         pa_end = pa->pa_lstart + pa->pa_len;
3179                         BUG_ON(!(start >= pa_end || end <= pa->pa_lstart));
3180                 }
3181                 spin_unlock(&pa->pa_lock);
3182         }
3183         rcu_read_unlock();
3184
3185         if (start + size <= ac->ac_o_ex.fe_logical &&
3186                         start > ac->ac_o_ex.fe_logical) {
3187                 printk(KERN_ERR "start %lu, size %lu, fe_logical %lu\n",
3188                         (unsigned long) start, (unsigned long) size,
3189                         (unsigned long) ac->ac_o_ex.fe_logical);
3190         }
3191         BUG_ON(start + size <= ac->ac_o_ex.fe_logical &&
3192                         start > ac->ac_o_ex.fe_logical);
3193         BUG_ON(size <= 0 || size >= EXT4_BLOCKS_PER_GROUP(ac->ac_sb));
3194
3195         /* now prepare goal request */
3196
3197         /* XXX: is it better to align blocks WRT to logical
3198          * placement or satisfy big request as is */
3199         ac->ac_g_ex.fe_logical = start;
3200         ac->ac_g_ex.fe_len = size;
3201
3202         /* define goal start in order to merge */
3203         if (ar->pright && (ar->lright == (start + size))) {
3204                 /* merge to the right */
3205                 ext4_get_group_no_and_offset(ac->ac_sb, ar->pright - size,
3206                                                 &ac->ac_f_ex.fe_group,
3207                                                 &ac->ac_f_ex.fe_start);
3208                 ac->ac_flags |= EXT4_MB_HINT_TRY_GOAL;
3209         }
3210         if (ar->pleft && (ar->lleft + 1 == start)) {
3211                 /* merge to the left */
3212                 ext4_get_group_no_and_offset(ac->ac_sb, ar->pleft + 1,
3213                                                 &ac->ac_f_ex.fe_group,
3214                                                 &ac->ac_f_ex.fe_start);
3215                 ac->ac_flags |= EXT4_MB_HINT_TRY_GOAL;
3216         }
3217
3218         mb_debug("goal: %u(was %u) blocks at %u\n", (unsigned) size,
3219                 (unsigned) orig_size, (unsigned) start);
3220 }
3221
3222 static void ext4_mb_collect_stats(struct ext4_allocation_context *ac)
3223 {
3224         struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
3225
3226         if (sbi->s_mb_stats && ac->ac_g_ex.fe_len > 1) {
3227                 atomic_inc(&sbi->s_bal_reqs);
3228                 atomic_add(ac->ac_b_ex.fe_len, &sbi->s_bal_allocated);
3229                 if (ac->ac_o_ex.fe_len >= ac->ac_g_ex.fe_len)
3230                         atomic_inc(&sbi->s_bal_success);
3231                 atomic_add(ac->ac_found, &sbi->s_bal_ex_scanned);
3232                 if (ac->ac_g_ex.fe_start == ac->ac_b_ex.fe_start &&
3233                                 ac->ac_g_ex.fe_group == ac->ac_b_ex.fe_group)
3234                         atomic_inc(&sbi->s_bal_goals);
3235                 if (ac->ac_found > sbi->s_mb_max_to_scan)
3236                         atomic_inc(&sbi->s_bal_breaks);
3237         }
3238
3239         ext4_mb_store_history(ac);
3240 }
3241
3242 /*
3243  * use blocks preallocated to inode
3244  */
3245 static void ext4_mb_use_inode_pa(struct ext4_allocation_context *ac,
3246                                 struct ext4_prealloc_space *pa)
3247 {
3248         ext4_fsblk_t start;
3249         ext4_fsblk_t end;
3250         int len;
3251
3252         /* found preallocated blocks, use them */
3253         start = pa->pa_pstart + (ac->ac_o_ex.fe_logical - pa->pa_lstart);
3254         end = min(pa->pa_pstart + pa->pa_len, start + ac->ac_o_ex.fe_len);
3255         len = end - start;
3256         ext4_get_group_no_and_offset(ac->ac_sb, start, &ac->ac_b_ex.fe_group,
3257                                         &ac->ac_b_ex.fe_start);
3258         ac->ac_b_ex.fe_len = len;
3259         ac->ac_status = AC_STATUS_FOUND;
3260         ac->ac_pa = pa;
3261
3262         BUG_ON(start < pa->pa_pstart);
3263         BUG_ON(start + len > pa->pa_pstart + pa->pa_len);
3264         BUG_ON(pa->pa_free < len);
3265         pa->pa_free -= len;
3266
3267         mb_debug("use %llu/%u from inode pa %p\n", start, len, pa);
3268 }
3269
3270 /*
3271  * use blocks preallocated to locality group
3272  */
3273 static void ext4_mb_use_group_pa(struct ext4_allocation_context *ac,
3274                                 struct ext4_prealloc_space *pa)
3275 {
3276         unsigned int len = ac->ac_o_ex.fe_len;
3277
3278         ext4_get_group_no_and_offset(ac->ac_sb, pa->pa_pstart,
3279                                         &ac->ac_b_ex.fe_group,
3280                                         &ac->ac_b_ex.fe_start);
3281         ac->ac_b_ex.fe_len = len;
3282         ac->ac_status = AC_STATUS_FOUND;
3283         ac->ac_pa = pa;
3284
3285         /* we don't correct pa_pstart or pa_plen here to avoid
3286          * possible race when the group is being loaded concurrently
3287          * instead we correct pa later, after blocks are marked
3288          * in on-disk bitmap -- see ext4_mb_release_context()
3289          * Other CPUs are prevented from allocating from this pa by lg_mutex
3290          */
3291         mb_debug("use %u/%u from group pa %p\n", pa->pa_lstart-len, len, pa);
3292 }
3293
3294 /*
3295  * Return the prealloc space that have minimal distance
3296  * from the goal block. @cpa is the prealloc
3297  * space that is having currently known minimal distance
3298  * from the goal block.
3299  */
3300 static struct ext4_prealloc_space *
3301 ext4_mb_check_group_pa(ext4_fsblk_t goal_block,
3302                         struct ext4_prealloc_space *pa,
3303                         struct ext4_prealloc_space *cpa)
3304 {
3305         ext4_fsblk_t cur_distance, new_distance;
3306
3307         if (cpa == NULL) {
3308                 atomic_inc(&pa->pa_count);
3309                 return pa;
3310         }
3311         cur_distance = abs(goal_block - cpa->pa_pstart);
3312         new_distance = abs(goal_block - pa->pa_pstart);
3313
3314         if (cur_distance < new_distance)
3315                 return cpa;
3316
3317         /* drop the previous reference */
3318         atomic_dec(&cpa->pa_count);
3319         atomic_inc(&pa->pa_count);
3320         return pa;
3321 }
3322
3323 /*
3324  * search goal blocks in preallocated space
3325  */
3326 static noinline_for_stack int
3327 ext4_mb_use_preallocated(struct ext4_allocation_context *ac)
3328 {
3329         int order, i;
3330         struct ext4_inode_info *ei = EXT4_I(ac->ac_inode);
3331         struct ext4_locality_group *lg;
3332         struct ext4_prealloc_space *pa, *cpa = NULL;
3333         ext4_fsblk_t goal_block;
3334
3335         /* only data can be preallocated */
3336         if (!(ac->ac_flags & EXT4_MB_HINT_DATA))
3337                 return 0;
3338
3339         /* first, try per-file preallocation */
3340         rcu_read_lock();
3341         list_for_each_entry_rcu(pa, &ei->i_prealloc_list, pa_inode_list) {
3342
3343                 /* all fields in this condition don't change,
3344                  * so we can skip locking for them */
3345                 if (ac->ac_o_ex.fe_logical < pa->pa_lstart ||
3346                         ac->ac_o_ex.fe_logical >= pa->pa_lstart + pa->pa_len)
3347                         continue;
3348
3349                 /* found preallocated blocks, use them */
3350                 spin_lock(&pa->pa_lock);
3351                 if (pa->pa_deleted == 0 && pa->pa_free) {
3352                         atomic_inc(&pa->pa_count);
3353                         ext4_mb_use_inode_pa(ac, pa);
3354                         spin_unlock(&pa->pa_lock);
3355                         ac->ac_criteria = 10;
3356                         rcu_read_unlock();
3357                         return 1;
3358                 }
3359                 spin_unlock(&pa->pa_lock);
3360         }
3361         rcu_read_unlock();
3362
3363         /* can we use group allocation? */
3364         if (!(ac->ac_flags & EXT4_MB_HINT_GROUP_ALLOC))
3365                 return 0;
3366
3367         /* inode may have no locality group for some reason */
3368         lg = ac->ac_lg;
3369         if (lg == NULL)
3370                 return 0;
3371         order  = fls(ac->ac_o_ex.fe_len) - 1;
3372         if (order > PREALLOC_TB_SIZE - 1)
3373                 /* The max size of hash table is PREALLOC_TB_SIZE */
3374                 order = PREALLOC_TB_SIZE - 1;
3375
3376         goal_block = ac->ac_g_ex.fe_group * EXT4_BLOCKS_PER_GROUP(ac->ac_sb) +
3377                      ac->ac_g_ex.fe_start +
3378                      le32_to_cpu(EXT4_SB(ac->ac_sb)->s_es->s_first_data_block);
3379         /*
3380          * search for the prealloc space that is having
3381          * minimal distance from the goal block.
3382          */
3383         for (i = order; i < PREALLOC_TB_SIZE; i++) {
3384                 rcu_read_lock();
3385                 list_for_each_entry_rcu(pa, &lg->lg_prealloc_list[i],
3386                                         pa_inode_list) {
3387                         spin_lock(&pa->pa_lock);
3388                         if (pa->pa_deleted == 0 &&
3389                                         pa->pa_free >= ac->ac_o_ex.fe_len) {
3390
3391                                 cpa = ext4_mb_check_group_pa(goal_block,
3392                                                                 pa, cpa);
3393                         }
3394                         spin_unlock(&pa->pa_lock);
3395                 }
3396                 rcu_read_unlock();
3397         }
3398         if (cpa) {
3399                 ext4_mb_use_group_pa(ac, cpa);
3400                 ac->ac_criteria = 20;
3401                 return 1;
3402         }
3403         return 0;
3404 }
3405
3406 /*
3407  * the function goes through all preallocation in this group and marks them
3408  * used in in-core bitmap. buddy must be generated from this bitmap
3409  * Need to be called with ext4 group lock (ext4_lock_group)
3410  */
3411 static void ext4_mb_generate_from_pa(struct super_block *sb, void *bitmap,
3412                                         ext4_group_t group)
3413 {
3414         struct ext4_group_info *grp = ext4_get_group_info(sb, group);
3415         struct ext4_prealloc_space *pa;
3416         struct list_head *cur;
3417         ext4_group_t groupnr;
3418         ext4_grpblk_t start;
3419         int preallocated = 0;
3420         int count = 0;
3421         int len;
3422
3423         /* all form of preallocation discards first load group,
3424          * so the only competing code is preallocation use.
3425          * we don't need any locking here
3426          * notice we do NOT ignore preallocations with pa_deleted
3427          * otherwise we could leave used blocks available for
3428          * allocation in buddy when concurrent ext4_mb_put_pa()
3429          * is dropping preallocation
3430          */
3431         list_for_each(cur, &grp->bb_prealloc_list) {
3432                 pa = list_entry(cur, struct ext4_prealloc_space, pa_group_list);
3433                 spin_lock(&pa->pa_lock);
3434                 ext4_get_group_no_and_offset(sb, pa->pa_pstart,
3435                                              &groupnr, &start);
3436                 len = pa->pa_len;
3437                 spin_unlock(&pa->pa_lock);
3438                 if (unlikely(len == 0))
3439                         continue;
3440                 BUG_ON(groupnr != group);
3441                 mb_set_bits(sb_bgl_lock(EXT4_SB(sb), group),
3442                                                 bitmap, start, len);
3443                 preallocated += len;
3444                 count++;
3445         }
3446         mb_debug("prellocated %u for group %lu\n", preallocated, group);
3447 }
3448
3449 static void ext4_mb_pa_callback(struct rcu_head *head)
3450 {
3451         struct ext4_prealloc_space *pa;
3452         pa = container_of(head, struct ext4_prealloc_space, u.pa_rcu);
3453         kmem_cache_free(ext4_pspace_cachep, pa);
3454 }
3455
3456 /*
3457  * drops a reference to preallocated space descriptor
3458  * if this was the last reference and the space is consumed
3459  */
3460 static void ext4_mb_put_pa(struct ext4_allocation_context *ac,
3461                         struct super_block *sb, struct ext4_prealloc_space *pa)
3462 {
3463         unsigned long grp;
3464
3465         if (!atomic_dec_and_test(&pa->pa_count) || pa->pa_free != 0)
3466                 return;
3467
3468         /* in this short window concurrent discard can set pa_deleted */
3469         spin_lock(&pa->pa_lock);
3470         if (pa->pa_deleted == 1) {
3471                 spin_unlock(&pa->pa_lock);
3472                 return;
3473         }
3474
3475         pa->pa_deleted = 1;
3476         spin_unlock(&pa->pa_lock);
3477
3478         /* -1 is to protect from crossing allocation group */
3479         ext4_get_group_no_and_offset(sb, pa->pa_pstart - 1, &grp, NULL);
3480
3481         /*
3482          * possible race:
3483          *
3484          *  P1 (buddy init)                     P2 (regular allocation)
3485          *                                      find block B in PA
3486          *  copy on-disk bitmap to buddy
3487          *                                      mark B in on-disk bitmap
3488          *                                      drop PA from group
3489          *  mark all PAs in buddy
3490          *
3491          * thus, P1 initializes buddy with B available. to prevent this
3492          * we make "copy" and "mark all PAs" atomic and serialize "drop PA"
3493          * against that pair
3494          */
3495         ext4_lock_group(sb, grp);
3496         list_del(&pa->pa_group_list);
3497         ext4_unlock_group(sb, grp);
3498
3499         spin_lock(pa->pa_obj_lock);
3500         list_del_rcu(&pa->pa_inode_list);
3501         spin_unlock(pa->pa_obj_lock);
3502
3503         call_rcu(&(pa)->u.pa_rcu, ext4_mb_pa_callback);
3504 }
3505
3506 /*
3507  * creates new preallocated space for given inode
3508  */
3509 static noinline_for_stack int
3510 ext4_mb_new_inode_pa(struct ext4_allocation_context *ac)
3511 {
3512         struct super_block *sb = ac->ac_sb;
3513         struct ext4_prealloc_space *pa;
3514         struct ext4_group_info *grp;
3515         struct ext4_inode_info *ei;
3516
3517         /* preallocate only when found space is larger then requested */
3518         BUG_ON(ac->ac_o_ex.fe_len >= ac->ac_b_ex.fe_len);
3519         BUG_ON(ac->ac_status != AC_STATUS_FOUND);
3520         BUG_ON(!S_ISREG(ac->ac_inode->i_mode));
3521
3522         pa = kmem_cache_alloc(ext4_pspace_cachep, GFP_NOFS);
3523         if (pa == NULL)
3524                 return -ENOMEM;
3525
3526         if (ac->ac_b_ex.fe_len < ac->ac_g_ex.fe_len) {
3527                 int winl;
3528                 int wins;
3529                 int win;
3530                 int offs;
3531
3532                 /* we can't allocate as much as normalizer wants.
3533                  * so, found space must get proper lstart
3534                  * to cover original request */
3535                 BUG_ON(ac->ac_g_ex.fe_logical > ac->ac_o_ex.fe_logical);
3536                 BUG_ON(ac->ac_g_ex.fe_len < ac->ac_o_ex.fe_len);
3537
3538                 /* we're limited by original request in that
3539                  * logical block must be covered any way
3540                  * winl is window we can move our chunk within */
3541                 winl = ac->ac_o_ex.fe_logical - ac->ac_g_ex.fe_logical;
3542
3543                 /* also, we should cover whole original request */
3544                 wins = ac->ac_b_ex.fe_len - ac->ac_o_ex.fe_len;
3545
3546                 /* the smallest one defines real window */
3547                 win = min(winl, wins);
3548
3549                 offs = ac->ac_o_ex.fe_logical % ac->ac_b_ex.fe_len;
3550                 if (offs && offs < win)
3551                         win = offs;
3552
3553                 ac->ac_b_ex.fe_logical = ac->ac_o_ex.fe_logical - win;
3554                 BUG_ON(ac->ac_o_ex.fe_logical < ac->ac_b_ex.fe_logical);
3555                 BUG_ON(ac->ac_o_ex.fe_len > ac->ac_b_ex.fe_len);
3556         }
3557
3558         /* preallocation can change ac_b_ex, thus we store actually
3559          * allocated blocks for history */
3560         ac->ac_f_ex = ac->ac_b_ex;
3561
3562         pa->pa_lstart = ac->ac_b_ex.fe_logical;
3563         pa->pa_pstart = ext4_grp_offs_to_block(sb, &ac->ac_b_ex);
3564         pa->pa_len = ac->ac_b_ex.fe_len;
3565         pa->pa_free = pa->pa_len;
3566         atomic_set(&pa->pa_count, 1);
3567         spin_lock_init(&pa->pa_lock);
3568         pa->pa_deleted = 0;
3569         pa->pa_linear = 0;
3570
3571         mb_debug("new inode pa %p: %llu/%u for %u\n", pa,
3572                         pa->pa_pstart, pa->pa_len, pa->pa_lstart);
3573
3574         ext4_mb_use_inode_pa(ac, pa);
3575         atomic_add(pa->pa_free, &EXT4_SB(sb)->s_mb_preallocated);
3576
3577         ei = EXT4_I(ac->ac_inode);
3578         grp = ext4_get_group_info(sb, ac->ac_b_ex.fe_group);
3579
3580         pa->pa_obj_lock = &ei->i_prealloc_lock;
3581         pa->pa_inode = ac->ac_inode;
3582
3583         ext4_lock_group(sb, ac->ac_b_ex.fe_group);
3584         list_add(&pa->pa_group_list, &grp->bb_prealloc_list);
3585         ext4_unlock_group(sb, ac->ac_b_ex.fe_group);
3586
3587         spin_lock(pa->pa_obj_lock);
3588         list_add_rcu(&pa->pa_inode_list, &ei->i_prealloc_list);
3589         spin_unlock(pa->pa_obj_lock);
3590
3591         return 0;
3592 }
3593
3594 /*
3595  * creates new preallocated space for locality group inodes belongs to
3596  */
3597 static noinline_for_stack int
3598 ext4_mb_new_group_pa(struct ext4_allocation_context *ac)
3599 {
3600         struct super_block *sb = ac->ac_sb;
3601         struct ext4_locality_group *lg;
3602         struct ext4_prealloc_space *pa;
3603         struct ext4_group_info *grp;
3604
3605         /* preallocate only when found space is larger then requested */
3606         BUG_ON(ac->ac_o_ex.fe_len >= ac->ac_b_ex.fe_len);
3607         BUG_ON(ac->ac_status != AC_STATUS_FOUND);
3608         BUG_ON(!S_ISREG(ac->ac_inode->i_mode));
3609
3610         BUG_ON(ext4_pspace_cachep == NULL);
3611         pa = kmem_cache_alloc(ext4_pspace_cachep, GFP_NOFS);
3612         if (pa == NULL)
3613                 return -ENOMEM;
3614
3615         /* preallocation can change ac_b_ex, thus we store actually
3616          * allocated blocks for history */
3617         ac->ac_f_ex = ac->ac_b_ex;
3618
3619         pa->pa_pstart = ext4_grp_offs_to_block(sb, &ac->ac_b_ex);
3620         pa->pa_lstart = pa->pa_pstart;
3621         pa->pa_len = ac->ac_b_ex.fe_len;
3622         pa->pa_free = pa->pa_len;
3623         atomic_set(&pa->pa_count, 1);
3624         spin_lock_init(&pa->pa_lock);
3625         INIT_LIST_HEAD(&pa->pa_inode_list);
3626         pa->pa_deleted = 0;
3627         pa->pa_linear = 1;
3628
3629         mb_debug("new group pa %p: %llu/%u for %u\n", pa,
3630                         pa->pa_pstart, pa->pa_len, pa->pa_lstart);
3631
3632         ext4_mb_use_group_pa(ac, pa);
3633         atomic_add(pa->pa_free, &EXT4_SB(sb)->s_mb_preallocated);
3634
3635         grp = ext4_get_group_info(sb, ac->ac_b_ex.fe_group);
3636         lg = ac->ac_lg;
3637         BUG_ON(lg == NULL);
3638
3639         pa->pa_obj_lock = &lg->lg_prealloc_lock;
3640         pa->pa_inode = NULL;
3641
3642         ext4_lock_group(sb, ac->ac_b_ex.fe_group);
3643         list_add(&pa->pa_group_list, &grp->bb_prealloc_list);
3644         ext4_unlock_group(sb, ac->ac_b_ex.fe_group);
3645
3646         /*
3647          * We will later add the new pa to the right bucket
3648          * after updating the pa_free in ext4_mb_release_context
3649          */
3650         return 0;
3651 }
3652
3653 static int ext4_mb_new_preallocation(struct ext4_allocation_context *ac)
3654 {
3655         int err;
3656
3657         if (ac->ac_flags & EXT4_MB_HINT_GROUP_ALLOC)
3658                 err = ext4_mb_new_group_pa(ac);
3659         else
3660                 err = ext4_mb_new_inode_pa(ac);
3661         return err;
3662 }
3663
3664 /*
3665  * finds all unused blocks in on-disk bitmap, frees them in
3666  * in-core bitmap and buddy.
3667  * @pa must be unlinked from inode and group lists, so that
3668  * nobody else can find/use it.
3669  * the caller MUST hold group/inode locks.
3670  * TODO: optimize the case when there are no in-core structures yet
3671  */
3672 static noinline_for_stack int
3673 ext4_mb_release_inode_pa(struct ext4_buddy *e4b, struct buffer_head *bitmap_bh,
3674                         struct ext4_prealloc_space *pa,
3675                         struct ext4_allocation_context *ac)
3676 {
3677         struct super_block *sb = e4b->bd_sb;
3678         struct ext4_sb_info *sbi = EXT4_SB(sb);
3679         unsigned long end;
3680         unsigned long next;
3681         ext4_group_t group;
3682         ext4_grpblk_t bit;
3683         sector_t start;
3684         int err = 0;
3685         int free = 0;
3686
3687         BUG_ON(pa->pa_deleted == 0);
3688         ext4_get_group_no_and_offset(sb, pa->pa_pstart, &group, &bit);
3689         BUG_ON(group != e4b->bd_group && pa->pa_len != 0);
3690         end = bit + pa->pa_len;
3691
3692         if (ac) {
3693                 ac->ac_sb = sb;
3694                 ac->ac_inode = pa->pa_inode;
3695                 ac->ac_op = EXT4_MB_HISTORY_DISCARD;
3696         }
3697
3698         while (bit < end) {
3699                 bit = mb_find_next_zero_bit(bitmap_bh->b_data, end, bit);
3700                 if (bit >= end)
3701                         break;
3702                 next = mb_find_next_bit(bitmap_bh->b_data, end, bit);
3703                 start = group * EXT4_BLOCKS_PER_GROUP(sb) + bit +
3704                                 le32_to_cpu(sbi->s_es->s_first_data_block);
3705                 mb_debug("    free preallocated %u/%u in group %u\n",
3706                                 (unsigned) start, (unsigned) next - bit,
3707                                 (unsigned) group);
3708                 free += next - bit;
3709
3710                 if (ac) {
3711                         ac->ac_b_ex.fe_group = group;
3712                         ac->ac_b_ex.fe_start = bit;
3713                         ac->ac_b_ex.fe_len = next - bit;
3714                         ac->ac_b_ex.fe_logical = 0;
3715                         ext4_mb_store_history(ac);
3716                 }
3717
3718                 mb_free_blocks(pa->pa_inode, e4b, bit, next - bit);
3719                 bit = next + 1;
3720         }
3721         if (free != pa->pa_free) {
3722                 printk(KERN_CRIT "pa %p: logic %lu, phys. %lu, len %lu\n",
3723                         pa, (unsigned long) pa->pa_lstart,
3724                         (unsigned long) pa->pa_pstart,
3725                         (unsigned long) pa->pa_len);
3726                 ext4_error(sb, __func__, "free %u, pa_free %u\n",
3727                                                 free, pa->pa_free);
3728                 /*
3729                  * pa is already deleted so we use the value obtained
3730                  * from the bitmap and continue.
3731                  */
3732         }
3733         atomic_add(free, &sbi->s_mb_discarded);
3734
3735         return err;
3736 }
3737
3738 static noinline_for_stack int
3739 ext4_mb_release_group_pa(struct ext4_buddy *e4b,
3740                                 struct ext4_prealloc_space *pa,
3741                                 struct ext4_allocation_context *ac)
3742 {
3743         struct super_block *sb = e4b->bd_sb;
3744         ext4_group_t group;
3745         ext4_grpblk_t bit;
3746
3747         if (ac)
3748                 ac->ac_op = EXT4_MB_HISTORY_DISCARD;
3749
3750         BUG_ON(pa->pa_deleted == 0);
3751         ext4_get_group_no_and_offset(sb, pa->pa_pstart, &group, &bit);
3752         BUG_ON(group != e4b->bd_group && pa->pa_len != 0);
3753         mb_free_blocks(pa->pa_inode, e4b, bit, pa->pa_len);
3754         atomic_add(pa->pa_len, &EXT4_SB(sb)->s_mb_discarded);
3755
3756         if (ac) {
3757                 ac->ac_sb = sb;
3758                 ac->ac_inode = NULL;
3759                 ac->ac_b_ex.fe_group = group;
3760                 ac->ac_b_ex.fe_start = bit;
3761                 ac->ac_b_ex.fe_len = pa->pa_len;
3762                 ac->ac_b_ex.fe_logical = 0;
3763                 ext4_mb_store_history(ac);
3764         }
3765
3766         return 0;
3767 }
3768
3769 /*
3770  * releases all preallocations in given group
3771  *
3772  * first, we need to decide discard policy:
3773  * - when do we discard
3774  *   1) ENOSPC
3775  * - how many do we discard
3776  *   1) how many requested
3777  */
3778 static noinline_for_stack int
3779 ext4_mb_discard_group_preallocations(struct super_block *sb,
3780                                         ext4_group_t group, int needed)
3781 {
3782         struct ext4_group_info *grp = ext4_get_group_info(sb, group);
3783         struct buffer_head *bitmap_bh = NULL;
3784         struct ext4_prealloc_space *pa, *tmp;
3785         struct ext4_allocation_context *ac;
3786         struct list_head list;
3787         struct ext4_buddy e4b;
3788         int err;
3789         int busy = 0;
3790         int free = 0;
3791
3792         mb_debug("discard preallocation for group %lu\n", group);
3793
3794         if (list_empty(&grp->bb_prealloc_list))
3795                 return 0;
3796
3797         bitmap_bh = ext4_read_block_bitmap(sb, group);
3798         if (bitmap_bh == NULL) {
3799                 ext4_error(sb, __func__, "Error in reading block "
3800                                 "bitmap for %lu\n", group);
3801                 return 0;
3802         }
3803
3804         err = ext4_mb_load_buddy(sb, group, &e4b);
3805         if (err) {
3806                 ext4_error(sb, __func__, "Error in loading buddy "
3807                                 "information for %lu\n", group);
3808                 put_bh(bitmap_bh);
3809                 return 0;
3810         }
3811
3812         if (needed == 0)
3813                 needed = EXT4_BLOCKS_PER_GROUP(sb) + 1;
3814
3815         INIT_LIST_HEAD(&list);
3816         ac = kmem_cache_alloc(ext4_ac_cachep, GFP_NOFS);
3817 repeat:
3818         ext4_lock_group(sb, group);
3819         list_for_each_entry_safe(pa, tmp,
3820                                 &grp->bb_prealloc_list, pa_group_list) {
3821                 spin_lock(&pa->pa_lock);
3822                 if (atomic_read(&pa->pa_count)) {
3823                         spin_unlock(&pa->pa_lock);
3824                         busy = 1;
3825                         continue;
3826                 }
3827                 if (pa->pa_deleted) {
3828                         spin_unlock(&pa->pa_lock);
3829                         continue;
3830                 }
3831
3832                 /* seems this one can be freed ... */
3833                 pa->pa_deleted = 1;
3834
3835                 /* we can trust pa_free ... */
3836                 free += pa->pa_free;
3837
3838                 spin_unlock(&pa->pa_lock);
3839
3840                 list_del(&pa->pa_group_list);
3841                 list_add(&pa->u.pa_tmp_list, &list);
3842         }
3843
3844         /* if we still need more blocks and some PAs were used, try again */
3845         if (free < needed && busy) {
3846                 busy = 0;
3847                 ext4_unlock_group(sb, group);
3848                 /*
3849                  * Yield the CPU here so that we don't get soft lockup
3850                  * in non preempt case.
3851                  */
3852                 yield();
3853                 goto repeat;
3854         }
3855
3856         /* found anything to free? */
3857         if (list_empty(&list)) {
3858                 BUG_ON(free != 0);
3859                 goto out;
3860         }
3861
3862         /* now free all selected PAs */
3863         list_for_each_entry_safe(pa, tmp, &list, u.pa_tmp_list) {
3864
3865                 /* remove from object (inode or locality group) */
3866                 spin_lock(pa->pa_obj_lock);
3867                 list_del_rcu(&pa->pa_inode_list);
3868                 spin_unlock(pa->pa_obj_lock);
3869
3870                 if (pa->pa_linear)
3871                         ext4_mb_release_group_pa(&e4b, pa, ac);
3872                 else
3873                         ext4_mb_release_inode_pa(&e4b, bitmap_bh, pa, ac);
3874
3875                 list_del(&pa->u.pa_tmp_list);
3876                 call_rcu(&(pa)->u.pa_rcu, ext4_mb_pa_callback);
3877         }
3878
3879 out:
3880         ext4_unlock_group(sb, group);
3881         if (ac)
3882                 kmem_cache_free(ext4_ac_cachep, ac);
3883         ext4_mb_release_desc(&e4b);
3884         put_bh(bitmap_bh);
3885         return free;
3886 }
3887
3888 /*
3889  * releases all non-used preallocated blocks for given inode
3890  *
3891  * It's important to discard preallocations under i_data_sem
3892  * We don't want another block to be served from the prealloc
3893  * space when we are discarding the inode prealloc space.
3894  *
3895  * FIXME!! Make sure it is valid at all the call sites
3896  */
3897 void ext4_mb_discard_inode_preallocations(struct inode *inode)
3898 {
3899         struct ext4_inode_info *ei = EXT4_I(inode);
3900         struct super_block *sb = inode->i_sb;
3901         struct buffer_head *bitmap_bh = NULL;
3902         struct ext4_prealloc_space *pa, *tmp;
3903         struct ext4_allocation_context *ac;
3904         ext4_group_t group = 0;
3905         struct list_head list;
3906         struct ext4_buddy e4b;
3907         int err;
3908
3909         if (!test_opt(sb, MBALLOC) || !S_ISREG(inode->i_mode)) {
3910                 /*BUG_ON(!list_empty(&ei->i_prealloc_list));*/
3911                 return;
3912         }
3913
3914         mb_debug("discard preallocation for inode %lu\n", inode->i_ino);
3915
3916         INIT_LIST_HEAD(&list);
3917
3918         ac = kmem_cache_alloc(ext4_ac_cachep, GFP_NOFS);
3919 repeat:
3920         /* first, collect all pa's in the inode */
3921         spin_lock(&ei->i_prealloc_lock);
3922         while (!list_empty(&ei->i_prealloc_list)) {
3923                 pa = list_entry(ei->i_prealloc_list.next,
3924                                 struct ext4_prealloc_space, pa_inode_list);
3925                 BUG_ON(pa->pa_obj_lock != &ei->i_prealloc_lock);
3926                 spin_lock(&pa->pa_lock);
3927                 if (atomic_read(&pa->pa_count)) {
3928                         /* this shouldn't happen often - nobody should
3929                          * use preallocation while we're discarding it */
3930                         spin_unlock(&pa->pa_lock);
3931                         spin_unlock(&ei->i_prealloc_lock);
3932                         printk(KERN_ERR "uh-oh! used pa while discarding\n");
3933                         WARN_ON(1);
3934                         schedule_timeout_uninterruptible(HZ);
3935                         goto repeat;
3936
3937                 }
3938                 if (pa->pa_deleted == 0) {
3939                         pa->pa_deleted = 1;
3940                         spin_unlock(&pa->pa_lock);
3941                         list_del_rcu(&pa->pa_inode_list);
3942                         list_add(&pa->u.pa_tmp_list, &list);
3943                         continue;
3944                 }
3945
3946                 /* someone is deleting pa right now */
3947                 spin_unlock(&pa->pa_lock);
3948                 spin_unlock(&ei->i_prealloc_lock);
3949
3950                 /* we have to wait here because pa_deleted
3951                  * doesn't mean pa is already unlinked from
3952                  * the list. as we might be called from
3953                  * ->clear_inode() the inode will get freed
3954                  * and concurrent thread which is unlinking
3955                  * pa from inode's list may access already
3956                  * freed memory, bad-bad-bad */
3957
3958                 /* XXX: if this happens too often, we can
3959                  * add a flag to force wait only in case
3960                  * of ->clear_inode(), but not in case of
3961                  * regular truncate */
3962                 schedule_timeout_uninterruptible(HZ);
3963                 goto repeat;
3964         }
3965         spin_unlock(&ei->i_prealloc_lock);
3966
3967         list_for_each_entry_safe(pa, tmp, &list, u.pa_tmp_list) {
3968                 BUG_ON(pa->pa_linear != 0);
3969                 ext4_get_group_no_and_offset(sb, pa->pa_pstart, &group, NULL);
3970
3971                 err = ext4_mb_load_buddy(sb, group, &e4b);
3972                 if (err) {
3973                         ext4_error(sb, __func__, "Error in loading buddy "
3974                                         "information for %lu\n", group);
3975                         continue;
3976                 }
3977
3978                 bitmap_bh = ext4_read_block_bitmap(sb, group);
3979                 if (bitmap_bh == NULL) {
3980                         ext4_error(sb, __func__, "Error in reading block "
3981                                         "bitmap for %lu\n", group);
3982                         ext4_mb_release_desc(&e4b);
3983                         continue;
3984                 }
3985
3986                 ext4_lock_group(sb, group);
3987                 list_del(&pa->pa_group_list);
3988                 ext4_mb_release_inode_pa(&e4b, bitmap_bh, pa, ac);
3989                 ext4_unlock_group(sb, group);
3990
3991                 ext4_mb_release_desc(&e4b);
3992                 put_bh(bitmap_bh);
3993
3994                 list_del(&pa->u.pa_tmp_list);
3995                 call_rcu(&(pa)->u.pa_rcu, ext4_mb_pa_callback);
3996         }
3997         if (ac)
3998                 kmem_cache_free(ext4_ac_cachep, ac);
3999 }
4000
4001 /*
4002  * finds all preallocated spaces and return blocks being freed to them
4003  * if preallocated space becomes full (no block is used from the space)
4004  * then the function frees space in buddy
4005  * XXX: at the moment, truncate (which is the only way to free blocks)
4006  * discards all preallocations
4007  */
4008 static void ext4_mb_return_to_preallocation(struct inode *inode,
4009                                         struct ext4_buddy *e4b,
4010                                         sector_t block, int count)
4011 {
4012         BUG_ON(!list_empty(&EXT4_I(inode)->i_prealloc_list));
4013 }
4014 #ifdef MB_DEBUG
4015 static void ext4_mb_show_ac(struct ext4_allocation_context *ac)
4016 {
4017         struct super_block *sb = ac->ac_sb;
4018         ext4_group_t i;
4019
4020         printk(KERN_ERR "EXT4-fs: Can't allocate:"
4021                         " Allocation context details:\n");
4022         printk(KERN_ERR "EXT4-fs: status %d flags %d\n",
4023                         ac->ac_status, ac->ac_flags);
4024         printk(KERN_ERR "EXT4-fs: orig %lu/%lu/%lu@%lu, goal %lu/%lu/%lu@%lu, "
4025                         "best %lu/%lu/%lu@%lu cr %d\n",
4026                         (unsigned long)ac->ac_o_ex.fe_group,
4027                         (unsigned long)ac->ac_o_ex.fe_start,
4028                         (unsigned long)ac->ac_o_ex.fe_len,
4029                         (unsigned long)ac->ac_o_ex.fe_logical,
4030                         (unsigned long)ac->ac_g_ex.fe_group,
4031                         (unsigned long)ac->ac_g_ex.fe_start,
4032                         (unsigned long)ac->ac_g_ex.fe_len,
4033                         (unsigned long)ac->ac_g_ex.fe_logical,
4034                         (unsigned long)ac->ac_b_ex.fe_group,
4035                         (unsigned long)ac->ac_b_ex.fe_start,
4036                         (unsigned long)ac->ac_b_ex.fe_len,
4037                         (unsigned long)ac->ac_b_ex.fe_logical,
4038                         (int)ac->ac_criteria);
4039         printk(KERN_ERR "EXT4-fs: %lu scanned, %d found\n", ac->ac_ex_scanned,
4040                 ac->ac_found);
4041         printk(KERN_ERR "EXT4-fs: groups: \n");
4042         for (i = 0; i < EXT4_SB(sb)->s_groups_count; i++) {
4043                 struct ext4_group_info *grp = ext4_get_group_info(sb, i);
4044                 struct ext4_prealloc_space *pa;
4045                 ext4_grpblk_t start;
4046                 struct list_head *cur;
4047                 ext4_lock_group(sb, i);
4048                 list_for_each(cur, &grp->bb_prealloc_list) {
4049                         pa = list_entry(cur, struct ext4_prealloc_space,
4050                                         pa_group_list);
4051                         spin_lock(&pa->pa_lock);
4052                         ext4_get_group_no_and_offset(sb, pa->pa_pstart,
4053                                                      NULL, &start);
4054                         spin_unlock(&pa->pa_lock);
4055                         printk(KERN_ERR "PA:%lu:%d:%u \n", i,
4056                                                         start, pa->pa_len);
4057                 }
4058                 ext4_unlock_group(sb, i);
4059
4060                 if (grp->bb_free == 0)
4061                         continue;
4062                 printk(KERN_ERR "%lu: %d/%d \n",
4063                        i, grp->bb_free, grp->bb_fragments);
4064         }
4065         printk(KERN_ERR "\n");
4066 }
4067 #else
4068 static inline void ext4_mb_show_ac(struct ext4_allocation_context *ac)
4069 {
4070         return;
4071 }
4072 #endif
4073
4074 /*
4075  * We use locality group preallocation for small size file. The size of the
4076  * file is determined by the current size or the resulting size after
4077  * allocation which ever is larger
4078  *
4079  * One can tune this size via /proc/fs/ext4/<partition>/stream_req
4080  */
4081 static void ext4_mb_group_or_file(struct ext4_allocation_context *ac)
4082 {
4083         struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb);
4084         int bsbits = ac->ac_sb->s_blocksize_bits;
4085         loff_t size, isize;
4086
4087         if (!(ac->ac_flags & EXT4_MB_HINT_DATA))
4088                 return;
4089
4090         size = ac->ac_o_ex.fe_logical + ac->ac_o_ex.fe_len;
4091         isize = i_size_read(ac->ac_inode) >> bsbits;
4092         size = max(size, isize);
4093
4094         /* don't use group allocation for large files */
4095         if (size >= sbi->s_mb_stream_request)
4096                 return;
4097
4098         if (unlikely(ac->ac_flags & EXT4_MB_HINT_GOAL_ONLY))
4099                 return;
4100
4101         BUG_ON(ac->ac_lg != NULL);
4102         /*
4103          * locality group prealloc space are per cpu. The reason for having
4104          * per cpu locality group is to reduce the contention between block
4105          * request from multiple CPUs.
4106          */
4107         ac->ac_lg = per_cpu_ptr(sbi->s_locality_groups, raw_smp_processor_id());
4108
4109         /* we're going to use group allocation */
4110         ac->ac_flags |= EXT4_MB_HINT_GROUP_ALLOC;
4111
4112         /* serialize all allocations in the group */
4113         mutex_lock(&ac->ac_lg->lg_mutex);
4114 }
4115
4116 static noinline_for_stack int
4117 ext4_mb_initialize_context(struct ext4_allocation_context *ac,
4118                                 struct ext4_allocation_request *ar)
4119 {
4120         struct super_block *sb = ar->inode->i_sb;
4121         struct ext4_sb_info *sbi = EXT4_SB(sb);
4122         struct ext4_super_block *es = sbi->s_es;
4123         ext4_group_t group;
4124         unsigned long len;
4125         unsigned long goal;
4126         ext4_grpblk_t block;
4127
4128         /* we can't allocate > group size */
4129         len = ar->len;
4130
4131         /* just a dirty hack to filter too big requests  */
4132         if (len >= EXT4_BLOCKS_PER_GROUP(sb) - 10)
4133                 len = EXT4_BLOCKS_PER_GROUP(sb) - 10;
4134
4135         /* start searching from the goal */
4136         goal = ar->goal;
4137         if (goal < le32_to_cpu(es->s_first_data_block) ||
4138                         goal >= ext4_blocks_count(es))
4139                 goal = le32_to_cpu(es->s_first_data_block);
4140         ext4_get_group_no_and_offset(sb, goal, &group, &block);
4141
4142         /* set up allocation goals */
4143         ac->ac_b_ex.fe_logical = ar->logical;
4144         ac->ac_b_ex.fe_group = 0;
4145         ac->ac_b_ex.fe_start = 0;
4146         ac->ac_b_ex.fe_len = 0;
4147         ac->ac_status = AC_STATUS_CONTINUE;
4148         ac->ac_groups_scanned = 0;
4149         ac->ac_ex_scanned = 0;
4150         ac->ac_found = 0;
4151         ac->ac_sb = sb;
4152         ac->ac_inode = ar->inode;
4153         ac->ac_o_ex.fe_logical = ar->logical;
4154         ac->ac_o_ex.fe_group = group;
4155         ac->ac_o_ex.fe_start = block;
4156         ac->ac_o_ex.fe_len = len;
4157         ac->ac_g_ex.fe_logical = ar->logical;
4158         ac->ac_g_ex.fe_group = group;
4159         ac->ac_g_ex.fe_start = block;
4160         ac->ac_g_ex.fe_len = len;
4161         ac->ac_f_ex.fe_len = 0;
4162         ac->ac_flags = ar->flags;
4163         ac->ac_2order = 0;
4164         ac->ac_criteria = 0;
4165         ac->ac_pa = NULL;
4166         ac->ac_bitmap_page = NULL;
4167         ac->ac_buddy_page = NULL;
4168         ac->ac_lg = NULL;
4169
4170         /* we have to define context: we'll we work with a file or
4171          * locality group. this is a policy, actually */
4172         ext4_mb_group_or_file(ac);
4173
4174         mb_debug("init ac: %u blocks @ %u, goal %u, flags %x, 2^%d, "
4175                         "left: %u/%u, right %u/%u to %swritable\n",
4176                         (unsigned) ar->len, (unsigned) ar->logical,
4177                         (unsigned) ar->goal, ac->ac_flags, ac->ac_2order,
4178                         (unsigned) ar->lleft, (unsigned) ar->pleft,
4179                         (unsigned) ar->lright, (unsigned) ar->pright,
4180                         atomic_read(&ar->inode->i_writecount) ? "" : "non-");
4181         return 0;
4182
4183 }
4184
4185 static noinline_for_stack void
4186 ext4_mb_discard_lg_preallocations(struct super_block *sb,
4187                                         struct ext4_locality_group *lg,
4188                                         int order, int total_entries)
4189 {
4190         ext4_group_t group = 0;
4191         struct ext4_buddy e4b;
4192         struct list_head discard_list;
4193         struct ext4_prealloc_space *pa, *tmp;
4194         struct ext4_allocation_context *ac;
4195
4196         mb_debug("discard locality group preallocation\n");
4197
4198         INIT_LIST_HEAD(&discard_list);
4199         ac = kmem_cache_alloc(ext4_ac_cachep, GFP_NOFS);
4200
4201         spin_lock(&lg->lg_prealloc_lock);
4202         list_for_each_entry_rcu(pa, &lg->lg_prealloc_list[order],
4203                                                 pa_inode_list) {
4204                 spin_lock(&pa->pa_lock);
4205                 if (atomic_read(&pa->pa_count)) {
4206                         /*
4207                          * This is the pa that we just used
4208                          * for block allocation. So don't
4209                          * free that
4210                          */
4211                         spin_unlock(&pa->pa_lock);
4212                         continue;
4213                 }
4214                 if (pa->pa_deleted) {
4215                         spin_unlock(&pa->pa_lock);
4216                         continue;
4217                 }
4218                 /* only lg prealloc space */
4219                 BUG_ON(!pa->pa_linear);
4220
4221                 /* seems this one can be freed ... */
4222                 pa->pa_deleted = 1;
4223                 spin_unlock(&pa->pa_lock);
4224
4225                 list_del_rcu(&pa->pa_inode_list);
4226                 list_add(&pa->u.pa_tmp_list, &discard_list);
4227
4228                 total_entries--;
4229                 if (total_entries <= 5) {
4230                         /*
4231                          * we want to keep only 5 entries
4232                          * allowing it to grow to 8. This
4233                          * mak sure we don't call discard
4234                          * soon for this list.
4235                          */
4236                         break;
4237                 }
4238         }
4239         spin_unlock(&lg->lg_prealloc_lock);
4240
4241         list_for_each_entry_safe(pa, tmp, &discard_list, u.pa_tmp_list) {
4242
4243                 ext4_get_group_no_and_offset(sb, pa->pa_pstart, &group, NULL);
4244                 if (ext4_mb_load_buddy(sb, group, &e4b)) {
4245                         ext4_error(sb, __func__, "Error in loading buddy "
4246                                         "information for %lu\n", group);
4247                         continue;
4248                 }
4249                 ext4_lock_group(sb, group);
4250                 list_del(&pa->pa_group_list);
4251                 ext4_mb_release_group_pa(&e4b, pa, ac);
4252                 ext4_unlock_group(sb, group);
4253
4254                 ext4_mb_release_desc(&e4b);
4255                 list_del(&pa->u.pa_tmp_list);
4256                 call_rcu(&(pa)->u.pa_rcu, ext4_mb_pa_callback);
4257         }
4258         if (ac)
4259                 kmem_cache_free(ext4_ac_cachep, ac);
4260 }
4261
4262 /*
4263  * We have incremented pa_count. So it cannot be freed at this
4264  * point. Also we hold lg_mutex. So no parallel allocation is
4265  * possible from this lg. That means pa_free cannot be updated.
4266  *
4267  * A parallel ext4_mb_discard_group_preallocations is possible.
4268  * which can cause the lg_prealloc_list to be updated.
4269  */
4270
4271 static void ext4_mb_add_n_trim(struct ext4_allocation_context *ac)
4272 {
4273         int order, added = 0, lg_prealloc_count = 1;
4274         struct super_block *sb = ac->ac_sb;
4275         struct ext4_locality_group *lg = ac->ac_lg;
4276         struct ext4_prealloc_space *tmp_pa, *pa = ac->ac_pa;
4277
4278         order = fls(pa->pa_free) - 1;
4279         if (order > PREALLOC_TB_SIZE - 1)
4280                 /* The max size of hash table is PREALLOC_TB_SIZE */
4281                 order = PREALLOC_TB_SIZE - 1;
4282         /* Add the prealloc space to lg */
4283         rcu_read_lock();
4284         list_for_each_entry_rcu(tmp_pa, &lg->lg_prealloc_list[order],
4285                                                 pa_inode_list) {
4286                 spin_lock(&tmp_pa->pa_lock);
4287                 if (tmp_pa->pa_deleted) {
4288                         spin_unlock(&pa->pa_lock);
4289                         continue;
4290                 }
4291                 if (!added && pa->pa_free < tmp_pa->pa_free) {
4292                         /* Add to the tail of the previous entry */
4293                         list_add_tail_rcu(&pa->pa_inode_list,
4294                                                 &tmp_pa->pa_inode_list);
4295                         added = 1;
4296                         /*
4297                          * we want to count the total
4298                          * number of entries in the list
4299                          */
4300                 }
4301                 spin_unlock(&tmp_pa->pa_lock);
4302                 lg_prealloc_count++;
4303         }
4304         if (!added)
4305                 list_add_tail_rcu(&pa->pa_inode_list,
4306                                         &lg->lg_prealloc_list[order]);
4307         rcu_read_unlock();
4308
4309         /* Now trim the list to be not more than 8 elements */
4310         if (lg_prealloc_count > 8) {
4311                 ext4_mb_discard_lg_preallocations(sb, lg,
4312                                                 order, lg_prealloc_count);
4313                 return;
4314         }
4315         return ;
4316 }
4317
4318 /*
4319  * release all resource we used in allocation
4320  */
4321 static int ext4_mb_release_context(struct ext4_allocation_context *ac)
4322 {
4323         struct ext4_prealloc_space *pa = ac->ac_pa;
4324         if (pa) {
4325                 if (pa->pa_linear) {
4326                         /* see comment in ext4_mb_use_group_pa() */
4327                         spin_lock(&pa->pa_lock);
4328                         pa->pa_pstart += ac->ac_b_ex.fe_len;
4329                         pa->pa_lstart += ac->ac_b_ex.fe_len;
4330                         pa->pa_free -= ac->ac_b_ex.fe_len;
4331                         pa->pa_len -= ac->ac_b_ex.fe_len;
4332                         spin_unlock(&pa->pa_lock);
4333                         /*
4334                          * We want to add the pa to the right bucket.
4335                          * Remove it from the list and while adding
4336                          * make sure the list to which we are adding
4337                          * doesn't grow big.
4338                          */
4339                         if (likely(pa->pa_free)) {
4340                                 spin_lock(pa->pa_obj_lock);
4341                                 list_del_rcu(&pa->pa_inode_list);
4342                                 spin_unlock(pa->pa_obj_lock);
4343                                 ext4_mb_add_n_trim(ac);
4344                         }
4345                 }
4346                 ext4_mb_put_pa(ac, ac->ac_sb, pa);
4347         }
4348         if (ac->ac_bitmap_page)
4349                 page_cache_release(ac->ac_bitmap_page);
4350         if (ac->ac_buddy_page)
4351                 page_cache_release(ac->ac_buddy_page);
4352         if (ac->ac_flags & EXT4_MB_HINT_GROUP_ALLOC)
4353                 mutex_unlock(&ac->ac_lg->lg_mutex);
4354         ext4_mb_collect_stats(ac);
4355         return 0;
4356 }
4357
4358 static int ext4_mb_discard_preallocations(struct super_block *sb, int needed)
4359 {
4360         ext4_group_t i;
4361         int ret;
4362         int freed = 0;
4363
4364         for (i = 0; i < EXT4_SB(sb)->s_groups_count && needed > 0; i++) {
4365                 ret = ext4_mb_discard_group_preallocations(sb, i, needed);
4366                 freed += ret;
4367                 needed -= ret;
4368         }
4369
4370         return freed;
4371 }
4372
4373 /*
4374  * Main entry point into mballoc to allocate blocks
4375  * it tries to use preallocation first, then falls back
4376  * to usual allocation
4377  */
4378 ext4_fsblk_t ext4_mb_new_blocks(handle_t *handle,
4379                                  struct ext4_allocation_request *ar, int *errp)
4380 {
4381         int freed;
4382         struct ext4_allocation_context *ac = NULL;
4383         struct ext4_sb_info *sbi;
4384         struct super_block *sb;
4385         ext4_fsblk_t block = 0;
4386         unsigned long inquota;
4387         unsigned long reserv_blks = 0;
4388
4389         sb = ar->inode->i_sb;
4390         sbi = EXT4_SB(sb);
4391
4392         if (!test_opt(sb, MBALLOC)) {
4393                 block = ext4_old_new_blocks(handle, ar->inode, ar->goal,
4394                                             &(ar->len), errp);
4395                 return block;
4396         }
4397         if (!EXT4_I(ar->inode)->i_delalloc_reserved_flag) {
4398                 /*
4399                  * With delalloc we already reserved the blocks
4400                  */
4401                 while (ar->len && ext4_claim_free_blocks(sbi, ar->len)) {
4402                         /* let others to free the space */
4403                         yield();
4404                         ar->len = ar->len >> 1;
4405                 }
4406                 if (!ar->len) {
4407                         *errp = -ENOSPC;
4408                         return 0;
4409                 }
4410                 reserv_blks = ar->len;
4411         }
4412         while (ar->len && DQUOT_ALLOC_BLOCK(ar->inode, ar->len)) {
4413                 ar->flags |= EXT4_MB_HINT_NOPREALLOC;
4414                 ar->len--;
4415         }
4416         if (ar->len == 0) {
4417                 *errp = -EDQUOT;
4418                 return 0;
4419         }
4420         inquota = ar->len;
4421
4422         if (EXT4_I(ar->inode)->i_delalloc_reserved_flag)
4423                 ar->flags |= EXT4_MB_DELALLOC_RESERVED;
4424
4425         ac = kmem_cache_alloc(ext4_ac_cachep, GFP_NOFS);
4426         if (!ac) {
4427                 ar->len = 0;
4428                 *errp = -ENOMEM;
4429                 goto out1;
4430         }
4431
4432         ext4_mb_poll_new_transaction(sb, handle);
4433
4434         *errp = ext4_mb_initialize_context(ac, ar);
4435         if (*errp) {
4436                 ar->len = 0;
4437                 goto out2;
4438         }
4439
4440         ac->ac_op = EXT4_MB_HISTORY_PREALLOC;
4441         if (!ext4_mb_use_preallocated(ac)) {
4442                 ac->ac_op = EXT4_MB_HISTORY_ALLOC;
4443                 ext4_mb_normalize_request(ac, ar);
4444 repeat:
4445                 /* allocate space in core */
4446                 ext4_mb_regular_allocator(ac);
4447
4448                 /* as we've just preallocated more space than
4449                  * user requested orinally, we store allocated
4450                  * space in a special descriptor */
4451                 if (ac->ac_status == AC_STATUS_FOUND &&
4452                                 ac->ac_o_ex.fe_len < ac->ac_b_ex.fe_len)
4453                         ext4_mb_new_preallocation(ac);
4454         }
4455
4456         if (likely(ac->ac_status == AC_STATUS_FOUND)) {
4457                 *errp = ext4_mb_mark_diskspace_used(ac, handle, reserv_blks);
4458                 if (*errp ==  -EAGAIN) {
4459                         ac->ac_b_ex.fe_group = 0;
4460                         ac->ac_b_ex.fe_start = 0;
4461                         ac->ac_b_ex.fe_len = 0;
4462                         ac->ac_status = AC_STATUS_CONTINUE;
4463                         goto repeat;
4464                 } else if (*errp) {
4465                         ac->ac_b_ex.fe_len = 0;
4466                         ar->len = 0;
4467                         ext4_mb_show_ac(ac);
4468                 } else {
4469                         block = ext4_grp_offs_to_block(sb, &ac->ac_b_ex);
4470                         ar->len = ac->ac_b_ex.fe_len;
4471                 }
4472         } else {
4473                 freed  = ext4_mb_discard_preallocations(sb, ac->ac_o_ex.fe_len);
4474                 if (freed)
4475                         goto repeat;
4476                 *errp = -ENOSPC;
4477                 ac->ac_b_ex.fe_len = 0;
4478                 ar->len = 0;
4479                 ext4_mb_show_ac(ac);
4480         }
4481
4482         ext4_mb_release_context(ac);
4483
4484 out2:
4485         kmem_cache_free(ext4_ac_cachep, ac);
4486 out1:
4487         if (ar->len < inquota)
4488                 DQUOT_FREE_BLOCK(ar->inode, inquota - ar->len);
4489
4490         return block;
4491 }
4492 static void ext4_mb_poll_new_transaction(struct super_block *sb,
4493                                                 handle_t *handle)
4494 {
4495         struct ext4_sb_info *sbi = EXT4_SB(sb);
4496
4497         if (sbi->s_last_transaction == handle->h_transaction->t_tid)
4498                 return;
4499
4500         /* new transaction! time to close last one and free blocks for
4501          * committed transaction. we know that only transaction can be
4502          * active, so previos transaction can be being logged and we
4503          * know that transaction before previous is known to be already
4504          * logged. this means that now we may free blocks freed in all
4505          * transactions before previous one. hope I'm clear enough ... */
4506
4507         spin_lock(&sbi->s_md_lock);
4508         if (sbi->s_last_transaction != handle->h_transaction->t_tid) {
4509                 mb_debug("new transaction %lu, old %lu\n",
4510                                 (unsigned long) handle->h_transaction->t_tid,
4511                                 (unsigned long) sbi->s_last_transaction);
4512                 list_splice_init(&sbi->s_closed_transaction,
4513                                 &sbi->s_committed_transaction);
4514                 list_splice_init(&sbi->s_active_transaction,
4515                                 &sbi->s_closed_transaction);
4516                 sbi->s_last_transaction = handle->h_transaction->t_tid;
4517         }
4518         spin_unlock(&sbi->s_md_lock);
4519
4520         ext4_mb_free_committed_blocks(sb);
4521 }
4522
4523 static noinline_for_stack int
4524 ext4_mb_free_metadata(handle_t *handle, struct ext4_buddy *e4b,
4525                           ext4_group_t group, ext4_grpblk_t block, int count)
4526 {
4527         struct ext4_group_info *db = e4b->bd_info;
4528         struct super_block *sb = e4b->bd_sb;
4529         struct ext4_sb_info *sbi = EXT4_SB(sb);
4530         struct ext4_free_metadata *md;
4531         int i;
4532
4533         BUG_ON(e4b->bd_bitmap_page == NULL);
4534         BUG_ON(e4b->bd_buddy_page == NULL);
4535
4536         ext4_lock_group(sb, group);
4537         for (i = 0; i < count; i++) {
4538                 md = db->bb_md_cur;
4539                 if (md && db->bb_tid != handle->h_transaction->t_tid) {
4540                         db->bb_md_cur = NULL;
4541                         md = NULL;
4542                 }
4543
4544                 if (md == NULL) {
4545                         ext4_unlock_group(sb, group);
4546                         md = kmalloc(sizeof(*md), GFP_NOFS);
4547                         if (md == NULL)
4548                                 return -ENOMEM;
4549                         md->num = 0;
4550                         md->group = group;
4551
4552                         ext4_lock_group(sb, group);
4553                         if (db->bb_md_cur == NULL) {
4554                                 spin_lock(&sbi->s_md_lock);
4555                                 list_add(&md->list, &sbi->s_active_transaction);
4556                                 spin_unlock(&sbi->s_md_lock);
4557                                 /* protect buddy cache from being freed,
4558                                  * otherwise we'll refresh it from
4559                                  * on-disk bitmap and lose not-yet-available
4560                                  * blocks */
4561                                 page_cache_get(e4b->bd_buddy_page);
4562                                 page_cache_get(e4b->bd_bitmap_page);
4563                                 db->bb_md_cur = md;
4564                                 db->bb_tid = handle->h_transaction->t_tid;
4565                                 mb_debug("new md 0x%p for group %lu\n",
4566                                                 md, md->group);
4567                         } else {
4568                                 kfree(md);
4569                                 md = db->bb_md_cur;
4570                         }
4571                 }
4572
4573                 BUG_ON(md->num >= EXT4_BB_MAX_BLOCKS);
4574                 md->blocks[md->num] = block + i;
4575                 md->num++;
4576                 if (md->num == EXT4_BB_MAX_BLOCKS) {
4577                         /* no more space, put full container on a sb's list */
4578                         db->bb_md_cur = NULL;
4579                 }
4580         }
4581         ext4_unlock_group(sb, group);
4582         return 0;
4583 }
4584
4585 /*
4586  * Main entry point into mballoc to free blocks
4587  */
4588 void ext4_mb_free_blocks(handle_t *handle, struct inode *inode,
4589                         unsigned long block, unsigned long count,
4590                         int metadata, unsigned long *freed)
4591 {
4592         struct buffer_head *bitmap_bh = NULL;
4593         struct super_block *sb = inode->i_sb;
4594         struct ext4_allocation_context *ac = NULL;
4595         struct ext4_group_desc *gdp;
4596         struct ext4_super_block *es;
4597         unsigned long overflow;
4598         ext4_grpblk_t bit;
4599         struct buffer_head *gd_bh;
4600         ext4_group_t block_group;
4601         struct ext4_sb_info *sbi;
4602         struct ext4_buddy e4b;
4603         int err = 0;
4604         int ret;
4605
4606         *freed = 0;
4607
4608         ext4_mb_poll_new_transaction(sb, handle);
4609
4610         sbi = EXT4_SB(sb);
4611         es = EXT4_SB(sb)->s_es;
4612         if (block < le32_to_cpu(es->s_first_data_block) ||
4613             block + count < block ||
4614             block + count > ext4_blocks_count(es)) {
4615                 ext4_error(sb, __func__,
4616                             "Freeing blocks not in datazone - "
4617                             "block = %lu, count = %lu", block, count);
4618                 goto error_return;
4619         }
4620
4621         ext4_debug("freeing block %lu\n", block);
4622
4623         ac = kmem_cache_alloc(ext4_ac_cachep, GFP_NOFS);
4624         if (ac) {
4625                 ac->ac_op = EXT4_MB_HISTORY_FREE;
4626                 ac->ac_inode = inode;
4627                 ac->ac_sb = sb;
4628         }
4629
4630 do_more:
4631         overflow = 0;
4632         ext4_get_group_no_and_offset(sb, block, &block_group, &bit);
4633
4634         /*
4635          * Check to see if we are freeing blocks across a group
4636          * boundary.
4637          */
4638         if (bit + count > EXT4_BLOCKS_PER_GROUP(sb)) {
4639                 overflow = bit + count - EXT4_BLOCKS_PER_GROUP(sb);
4640                 count -= overflow;
4641         }
4642         bitmap_bh = ext4_read_block_bitmap(sb, block_group);
4643         if (!bitmap_bh) {
4644                 err = -EIO;
4645                 goto error_return;
4646         }
4647         gdp = ext4_get_group_desc(sb, block_group, &gd_bh);
4648         if (!gdp) {
4649                 err = -EIO;
4650                 goto error_return;
4651         }
4652
4653         if (in_range(ext4_block_bitmap(sb, gdp), block, count) ||
4654             in_range(ext4_inode_bitmap(sb, gdp), block, count) ||
4655             in_range(block, ext4_inode_table(sb, gdp),
4656                       EXT4_SB(sb)->s_itb_per_group) ||
4657             in_range(block + count - 1, ext4_inode_table(sb, gdp),
4658                       EXT4_SB(sb)->s_itb_per_group)) {
4659
4660                 ext4_error(sb, __func__,
4661                            "Freeing blocks in system zone - "
4662                            "Block = %lu, count = %lu", block, count);
4663                 /* err = 0. ext4_std_error should be a no op */
4664                 goto error_return;
4665         }
4666
4667         BUFFER_TRACE(bitmap_bh, "getting write access");
4668         err = ext4_journal_get_write_access(handle, bitmap_bh);
4669         if (err)
4670                 goto error_return;
4671
4672         /*
4673          * We are about to modify some metadata.  Call the journal APIs
4674          * to unshare ->b_data if a currently-committing transaction is
4675          * using it
4676          */
4677         BUFFER_TRACE(gd_bh, "get_write_access");
4678         err = ext4_journal_get_write_access(handle, gd_bh);
4679         if (err)
4680                 goto error_return;
4681
4682         err = ext4_mb_load_buddy(sb, block_group, &e4b);
4683         if (err)
4684                 goto error_return;
4685
4686 #ifdef AGGRESSIVE_CHECK
4687         {
4688                 int i;
4689                 for (i = 0; i < count; i++)
4690                         BUG_ON(!mb_test_bit(bit + i, bitmap_bh->b_data));
4691         }
4692 #endif
4693         mb_clear_bits(sb_bgl_lock(sbi, block_group), bitmap_bh->b_data,
4694                         bit, count);
4695
4696         /* We dirtied the bitmap block */
4697         BUFFER_TRACE(bitmap_bh, "dirtied bitmap block");
4698         err = ext4_journal_dirty_metadata(handle, bitmap_bh);
4699
4700         if (ac) {
4701                 ac->ac_b_ex.fe_group = block_group;
4702                 ac->ac_b_ex.fe_start = bit;
4703                 ac->ac_b_ex.fe_len = count;
4704                 ext4_mb_store_history(ac);
4705         }
4706
4707         if (metadata) {
4708                 /* blocks being freed are metadata. these blocks shouldn't
4709                  * be used until this transaction is committed */
4710                 ext4_mb_free_metadata(handle, &e4b, block_group, bit, count);
4711         } else {
4712                 ext4_lock_group(sb, block_group);
4713                 mb_free_blocks(inode, &e4b, bit, count);
4714                 ext4_mb_return_to_preallocation(inode, &e4b, block, count);
4715                 ext4_unlock_group(sb, block_group);
4716         }
4717
4718         spin_lock(sb_bgl_lock(sbi, block_group));
4719         le16_add_cpu(&gdp->bg_free_blocks_count, count);
4720         gdp->bg_checksum = ext4_group_desc_csum(sbi, block_group, gdp);
4721         spin_unlock(sb_bgl_lock(sbi, block_group));
4722         percpu_counter_add(&sbi->s_freeblocks_counter, count);
4723
4724         if (sbi->s_log_groups_per_flex) {
4725                 ext4_group_t flex_group = ext4_flex_group(sbi, block_group);
4726                 spin_lock(sb_bgl_lock(sbi, flex_group));
4727                 sbi->s_flex_groups[flex_group].free_blocks += count;
4728                 spin_unlock(sb_bgl_lock(sbi, flex_group));
4729         }
4730
4731         ext4_mb_release_desc(&e4b);
4732
4733         *freed += count;
4734
4735         /* And the group descriptor block */
4736         BUFFER_TRACE(gd_bh, "dirtied group descriptor block");
4737         ret = ext4_journal_dirty_metadata(handle, gd_bh);
4738         if (!err)
4739                 err = ret;
4740
4741         if (overflow && !err) {
4742                 block += count;
4743                 count = overflow;
4744                 put_bh(bitmap_bh);
4745                 goto do_more;
4746         }
4747         sb->s_dirt = 1;
4748 error_return:
4749         brelse(bitmap_bh);
4750         ext4_std_error(sb, err);
4751         if (ac)
4752                 kmem_cache_free(ext4_ac_cachep, ac);
4753         return;
4754 }