2 * segment.c - NILFS segment constructor.
4 * Copyright (C) 2005-2008 Nippon Telegraph and Telephone Corporation.
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License as published by
8 * the Free Software Foundation; either version 2 of the License, or
9 * (at your option) any later version.
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
16 * You should have received a copy of the GNU General Public License
17 * along with this program; if not, write to the Free Software
18 * Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
20 * Written by Ryusuke Konishi <ryusuke@osrg.net>
24 #include <linux/pagemap.h>
25 #include <linux/buffer_head.h>
26 #include <linux/writeback.h>
27 #include <linux/bio.h>
28 #include <linux/completion.h>
29 #include <linux/blkdev.h>
30 #include <linux/backing-dev.h>
31 #include <linux/freezer.h>
32 #include <linux/kthread.h>
33 #include <linux/crc32.h>
34 #include <linux/pagevec.h>
35 #include <linux/slab.h>
49 #define SC_N_INODEVEC 16 /* Size of locally allocated inode vector */
51 #define SC_MAX_SEGDELTA 64 /* Upper limit of the number of segments
52 appended in collection retry loop */
54 /* Construction mode */
56 SC_LSEG_SR
= 1, /* Make a logical segment having a super root */
57 SC_LSEG_DSYNC
, /* Flush data blocks of a given file and make
58 a logical segment without a super root */
59 SC_FLUSH_FILE
, /* Flush data files, leads to segment writes without
60 creating a checkpoint */
61 SC_FLUSH_DAT
, /* Flush DAT file. This also creates segments without
65 /* Stage numbers of dirty block collection */
68 NILFS_ST_GC
, /* Collecting dirty blocks for GC */
74 NILFS_ST_SR
, /* Super root */
75 NILFS_ST_DSYNC
, /* Data sync blocks */
79 /* State flags of collection */
80 #define NILFS_CF_NODE 0x0001 /* Collecting node blocks */
81 #define NILFS_CF_IFILE_STARTED 0x0002 /* IFILE stage has started */
82 #define NILFS_CF_SUFREED 0x0004 /* segment usages has been freed */
83 #define NILFS_CF_HISTORY_MASK (NILFS_CF_IFILE_STARTED | NILFS_CF_SUFREED)
85 /* Operations depending on the construction mode and file type */
86 struct nilfs_sc_operations
{
87 int (*collect_data
)(struct nilfs_sc_info
*, struct buffer_head
*,
89 int (*collect_node
)(struct nilfs_sc_info
*, struct buffer_head
*,
91 int (*collect_bmap
)(struct nilfs_sc_info
*, struct buffer_head
*,
93 void (*write_data_binfo
)(struct nilfs_sc_info
*,
94 struct nilfs_segsum_pointer
*,
96 void (*write_node_binfo
)(struct nilfs_sc_info
*,
97 struct nilfs_segsum_pointer
*,
104 static void nilfs_segctor_start_timer(struct nilfs_sc_info
*);
105 static void nilfs_segctor_do_flush(struct nilfs_sc_info
*, int);
106 static void nilfs_segctor_do_immediate_flush(struct nilfs_sc_info
*);
107 static void nilfs_dispose_list(struct the_nilfs
*, struct list_head
*, int);
109 #define nilfs_cnt32_gt(a, b) \
110 (typecheck(__u32, a) && typecheck(__u32, b) && \
111 ((__s32)(b) - (__s32)(a) < 0))
112 #define nilfs_cnt32_ge(a, b) \
113 (typecheck(__u32, a) && typecheck(__u32, b) && \
114 ((__s32)(a) - (__s32)(b) >= 0))
115 #define nilfs_cnt32_lt(a, b) nilfs_cnt32_gt(b, a)
116 #define nilfs_cnt32_le(a, b) nilfs_cnt32_ge(b, a)
118 static int nilfs_prepare_segment_lock(struct nilfs_transaction_info
*ti
)
120 struct nilfs_transaction_info
*cur_ti
= current
->journal_info
;
124 if (cur_ti
->ti_magic
== NILFS_TI_MAGIC
)
125 return ++cur_ti
->ti_count
;
128 * If journal_info field is occupied by other FS,
129 * it is saved and will be restored on
130 * nilfs_transaction_commit().
133 "NILFS warning: journal info from a different "
135 save
= current
->journal_info
;
139 ti
= kmem_cache_alloc(nilfs_transaction_cachep
, GFP_NOFS
);
142 ti
->ti_flags
= NILFS_TI_DYNAMIC_ALLOC
;
148 ti
->ti_magic
= NILFS_TI_MAGIC
;
149 current
->journal_info
= ti
;
154 * nilfs_transaction_begin - start indivisible file operations.
156 * @ti: nilfs_transaction_info
157 * @vacancy_check: flags for vacancy rate checks
159 * nilfs_transaction_begin() acquires a reader/writer semaphore, called
160 * the segment semaphore, to make a segment construction and write tasks
161 * exclusive. The function is used with nilfs_transaction_commit() in pairs.
162 * The region enclosed by these two functions can be nested. To avoid a
163 * deadlock, the semaphore is only acquired or released in the outermost call.
165 * This function allocates a nilfs_transaction_info struct to keep context
166 * information on it. It is initialized and hooked onto the current task in
167 * the outermost call. If a pre-allocated struct is given to @ti, it is used
168 * instead; otherwise a new struct is assigned from a slab.
170 * When @vacancy_check flag is set, this function will check the amount of
171 * free space, and will wait for the GC to reclaim disk space if low capacity.
173 * Return Value: On success, 0 is returned. On error, one of the following
174 * negative error code is returned.
176 * %-ENOMEM - Insufficient memory available.
178 * %-ENOSPC - No space left on device
180 int nilfs_transaction_begin(struct super_block
*sb
,
181 struct nilfs_transaction_info
*ti
,
184 struct the_nilfs
*nilfs
;
185 int ret
= nilfs_prepare_segment_lock(ti
);
187 if (unlikely(ret
< 0))
192 vfs_check_frozen(sb
, SB_FREEZE_WRITE
);
194 nilfs
= sb
->s_fs_info
;
195 down_read(&nilfs
->ns_segctor_sem
);
196 if (vacancy_check
&& nilfs_near_disk_full(nilfs
)) {
197 up_read(&nilfs
->ns_segctor_sem
);
204 ti
= current
->journal_info
;
205 current
->journal_info
= ti
->ti_save
;
206 if (ti
->ti_flags
& NILFS_TI_DYNAMIC_ALLOC
)
207 kmem_cache_free(nilfs_transaction_cachep
, ti
);
212 * nilfs_transaction_commit - commit indivisible file operations.
215 * nilfs_transaction_commit() releases the read semaphore which is
216 * acquired by nilfs_transaction_begin(). This is only performed
217 * in outermost call of this function. If a commit flag is set,
218 * nilfs_transaction_commit() sets a timer to start the segment
219 * constructor. If a sync flag is set, it starts construction
222 int nilfs_transaction_commit(struct super_block
*sb
)
224 struct nilfs_transaction_info
*ti
= current
->journal_info
;
225 struct the_nilfs
*nilfs
= sb
->s_fs_info
;
228 BUG_ON(ti
== NULL
|| ti
->ti_magic
!= NILFS_TI_MAGIC
);
229 ti
->ti_flags
|= NILFS_TI_COMMIT
;
230 if (ti
->ti_count
> 0) {
234 if (nilfs
->ns_writer
) {
235 struct nilfs_sc_info
*sci
= nilfs
->ns_writer
;
237 if (ti
->ti_flags
& NILFS_TI_COMMIT
)
238 nilfs_segctor_start_timer(sci
);
239 if (atomic_read(&nilfs
->ns_ndirtyblks
) > sci
->sc_watermark
)
240 nilfs_segctor_do_flush(sci
, 0);
242 up_read(&nilfs
->ns_segctor_sem
);
243 current
->journal_info
= ti
->ti_save
;
245 if (ti
->ti_flags
& NILFS_TI_SYNC
)
246 err
= nilfs_construct_segment(sb
);
247 if (ti
->ti_flags
& NILFS_TI_DYNAMIC_ALLOC
)
248 kmem_cache_free(nilfs_transaction_cachep
, ti
);
252 void nilfs_transaction_abort(struct super_block
*sb
)
254 struct nilfs_transaction_info
*ti
= current
->journal_info
;
255 struct the_nilfs
*nilfs
= sb
->s_fs_info
;
257 BUG_ON(ti
== NULL
|| ti
->ti_magic
!= NILFS_TI_MAGIC
);
258 if (ti
->ti_count
> 0) {
262 up_read(&nilfs
->ns_segctor_sem
);
264 current
->journal_info
= ti
->ti_save
;
265 if (ti
->ti_flags
& NILFS_TI_DYNAMIC_ALLOC
)
266 kmem_cache_free(nilfs_transaction_cachep
, ti
);
269 void nilfs_relax_pressure_in_lock(struct super_block
*sb
)
271 struct the_nilfs
*nilfs
= sb
->s_fs_info
;
272 struct nilfs_sc_info
*sci
= nilfs
->ns_writer
;
274 if (!sci
|| !sci
->sc_flush_request
)
277 set_bit(NILFS_SC_PRIOR_FLUSH
, &sci
->sc_flags
);
278 up_read(&nilfs
->ns_segctor_sem
);
280 down_write(&nilfs
->ns_segctor_sem
);
281 if (sci
->sc_flush_request
&&
282 test_bit(NILFS_SC_PRIOR_FLUSH
, &sci
->sc_flags
)) {
283 struct nilfs_transaction_info
*ti
= current
->journal_info
;
285 ti
->ti_flags
|= NILFS_TI_WRITER
;
286 nilfs_segctor_do_immediate_flush(sci
);
287 ti
->ti_flags
&= ~NILFS_TI_WRITER
;
289 downgrade_write(&nilfs
->ns_segctor_sem
);
292 static void nilfs_transaction_lock(struct super_block
*sb
,
293 struct nilfs_transaction_info
*ti
,
296 struct nilfs_transaction_info
*cur_ti
= current
->journal_info
;
297 struct the_nilfs
*nilfs
= sb
->s_fs_info
;
298 struct nilfs_sc_info
*sci
= nilfs
->ns_writer
;
301 ti
->ti_flags
= NILFS_TI_WRITER
;
303 ti
->ti_save
= cur_ti
;
304 ti
->ti_magic
= NILFS_TI_MAGIC
;
305 INIT_LIST_HEAD(&ti
->ti_garbage
);
306 current
->journal_info
= ti
;
309 down_write(&nilfs
->ns_segctor_sem
);
310 if (!test_bit(NILFS_SC_PRIOR_FLUSH
, &sci
->sc_flags
))
313 nilfs_segctor_do_immediate_flush(sci
);
315 up_write(&nilfs
->ns_segctor_sem
);
319 ti
->ti_flags
|= NILFS_TI_GC
;
322 static void nilfs_transaction_unlock(struct super_block
*sb
)
324 struct nilfs_transaction_info
*ti
= current
->journal_info
;
325 struct the_nilfs
*nilfs
= sb
->s_fs_info
;
327 BUG_ON(ti
== NULL
|| ti
->ti_magic
!= NILFS_TI_MAGIC
);
328 BUG_ON(ti
->ti_count
> 0);
330 up_write(&nilfs
->ns_segctor_sem
);
331 current
->journal_info
= ti
->ti_save
;
332 if (!list_empty(&ti
->ti_garbage
))
333 nilfs_dispose_list(nilfs
, &ti
->ti_garbage
, 0);
336 static void *nilfs_segctor_map_segsum_entry(struct nilfs_sc_info
*sci
,
337 struct nilfs_segsum_pointer
*ssp
,
340 struct nilfs_segment_buffer
*segbuf
= sci
->sc_curseg
;
341 unsigned blocksize
= sci
->sc_super
->s_blocksize
;
344 if (unlikely(ssp
->offset
+ bytes
> blocksize
)) {
346 BUG_ON(NILFS_SEGBUF_BH_IS_LAST(ssp
->bh
,
347 &segbuf
->sb_segsum_buffers
));
348 ssp
->bh
= NILFS_SEGBUF_NEXT_BH(ssp
->bh
);
350 p
= ssp
->bh
->b_data
+ ssp
->offset
;
351 ssp
->offset
+= bytes
;
356 * nilfs_segctor_reset_segment_buffer - reset the current segment buffer
357 * @sci: nilfs_sc_info
359 static int nilfs_segctor_reset_segment_buffer(struct nilfs_sc_info
*sci
)
361 struct nilfs_segment_buffer
*segbuf
= sci
->sc_curseg
;
362 struct buffer_head
*sumbh
;
367 if (nilfs_doing_gc())
369 err
= nilfs_segbuf_reset(segbuf
, flags
, sci
->sc_seg_ctime
, sci
->sc_cno
);
373 sumbh
= NILFS_SEGBUF_FIRST_BH(&segbuf
->sb_segsum_buffers
);
374 sumbytes
= segbuf
->sb_sum
.sumbytes
;
375 sci
->sc_finfo_ptr
.bh
= sumbh
; sci
->sc_finfo_ptr
.offset
= sumbytes
;
376 sci
->sc_binfo_ptr
.bh
= sumbh
; sci
->sc_binfo_ptr
.offset
= sumbytes
;
377 sci
->sc_blk_cnt
= sci
->sc_datablk_cnt
= 0;
381 static int nilfs_segctor_feed_segment(struct nilfs_sc_info
*sci
)
383 sci
->sc_nblk_this_inc
+= sci
->sc_curseg
->sb_sum
.nblocks
;
384 if (NILFS_SEGBUF_IS_LAST(sci
->sc_curseg
, &sci
->sc_segbufs
))
385 return -E2BIG
; /* The current segment is filled up
387 sci
->sc_curseg
= NILFS_NEXT_SEGBUF(sci
->sc_curseg
);
388 return nilfs_segctor_reset_segment_buffer(sci
);
391 static int nilfs_segctor_add_super_root(struct nilfs_sc_info
*sci
)
393 struct nilfs_segment_buffer
*segbuf
= sci
->sc_curseg
;
396 if (segbuf
->sb_sum
.nblocks
>= segbuf
->sb_rest_blocks
) {
397 err
= nilfs_segctor_feed_segment(sci
);
400 segbuf
= sci
->sc_curseg
;
402 err
= nilfs_segbuf_extend_payload(segbuf
, &segbuf
->sb_super_root
);
404 segbuf
->sb_sum
.flags
|= NILFS_SS_SR
;
409 * Functions for making segment summary and payloads
411 static int nilfs_segctor_segsum_block_required(
412 struct nilfs_sc_info
*sci
, const struct nilfs_segsum_pointer
*ssp
,
415 unsigned blocksize
= sci
->sc_super
->s_blocksize
;
416 /* Size of finfo and binfo is enough small against blocksize */
418 return ssp
->offset
+ binfo_size
+
419 (!sci
->sc_blk_cnt
? sizeof(struct nilfs_finfo
) : 0) >
423 static void nilfs_segctor_begin_finfo(struct nilfs_sc_info
*sci
,
426 sci
->sc_curseg
->sb_sum
.nfinfo
++;
427 sci
->sc_binfo_ptr
= sci
->sc_finfo_ptr
;
428 nilfs_segctor_map_segsum_entry(
429 sci
, &sci
->sc_binfo_ptr
, sizeof(struct nilfs_finfo
));
431 if (NILFS_I(inode
)->i_root
&&
432 !test_bit(NILFS_SC_HAVE_DELTA
, &sci
->sc_flags
))
433 set_bit(NILFS_SC_HAVE_DELTA
, &sci
->sc_flags
);
437 static void nilfs_segctor_end_finfo(struct nilfs_sc_info
*sci
,
440 struct nilfs_finfo
*finfo
;
441 struct nilfs_inode_info
*ii
;
442 struct nilfs_segment_buffer
*segbuf
;
445 if (sci
->sc_blk_cnt
== 0)
450 if (test_bit(NILFS_I_GCINODE
, &ii
->i_state
))
452 else if (NILFS_ROOT_METADATA_FILE(inode
->i_ino
))
457 finfo
= nilfs_segctor_map_segsum_entry(sci
, &sci
->sc_finfo_ptr
,
459 finfo
->fi_ino
= cpu_to_le64(inode
->i_ino
);
460 finfo
->fi_nblocks
= cpu_to_le32(sci
->sc_blk_cnt
);
461 finfo
->fi_ndatablk
= cpu_to_le32(sci
->sc_datablk_cnt
);
462 finfo
->fi_cno
= cpu_to_le64(cno
);
464 segbuf
= sci
->sc_curseg
;
465 segbuf
->sb_sum
.sumbytes
= sci
->sc_binfo_ptr
.offset
+
466 sci
->sc_super
->s_blocksize
* (segbuf
->sb_sum
.nsumblk
- 1);
467 sci
->sc_finfo_ptr
= sci
->sc_binfo_ptr
;
468 sci
->sc_blk_cnt
= sci
->sc_datablk_cnt
= 0;
471 static int nilfs_segctor_add_file_block(struct nilfs_sc_info
*sci
,
472 struct buffer_head
*bh
,
476 struct nilfs_segment_buffer
*segbuf
;
477 int required
, err
= 0;
480 segbuf
= sci
->sc_curseg
;
481 required
= nilfs_segctor_segsum_block_required(
482 sci
, &sci
->sc_binfo_ptr
, binfo_size
);
483 if (segbuf
->sb_sum
.nblocks
+ required
+ 1 > segbuf
->sb_rest_blocks
) {
484 nilfs_segctor_end_finfo(sci
, inode
);
485 err
= nilfs_segctor_feed_segment(sci
);
490 if (unlikely(required
)) {
491 err
= nilfs_segbuf_extend_segsum(segbuf
);
495 if (sci
->sc_blk_cnt
== 0)
496 nilfs_segctor_begin_finfo(sci
, inode
);
498 nilfs_segctor_map_segsum_entry(sci
, &sci
->sc_binfo_ptr
, binfo_size
);
499 /* Substitution to vblocknr is delayed until update_blocknr() */
500 nilfs_segbuf_add_file_buffer(segbuf
, bh
);
507 * Callback functions that enumerate, mark, and collect dirty blocks
509 static int nilfs_collect_file_data(struct nilfs_sc_info
*sci
,
510 struct buffer_head
*bh
, struct inode
*inode
)
514 err
= nilfs_bmap_propagate(NILFS_I(inode
)->i_bmap
, bh
);
518 err
= nilfs_segctor_add_file_block(sci
, bh
, inode
,
519 sizeof(struct nilfs_binfo_v
));
521 sci
->sc_datablk_cnt
++;
525 static int nilfs_collect_file_node(struct nilfs_sc_info
*sci
,
526 struct buffer_head
*bh
,
529 return nilfs_bmap_propagate(NILFS_I(inode
)->i_bmap
, bh
);
532 static int nilfs_collect_file_bmap(struct nilfs_sc_info
*sci
,
533 struct buffer_head
*bh
,
536 WARN_ON(!buffer_dirty(bh
));
537 return nilfs_segctor_add_file_block(sci
, bh
, inode
, sizeof(__le64
));
540 static void nilfs_write_file_data_binfo(struct nilfs_sc_info
*sci
,
541 struct nilfs_segsum_pointer
*ssp
,
542 union nilfs_binfo
*binfo
)
544 struct nilfs_binfo_v
*binfo_v
= nilfs_segctor_map_segsum_entry(
545 sci
, ssp
, sizeof(*binfo_v
));
546 *binfo_v
= binfo
->bi_v
;
549 static void nilfs_write_file_node_binfo(struct nilfs_sc_info
*sci
,
550 struct nilfs_segsum_pointer
*ssp
,
551 union nilfs_binfo
*binfo
)
553 __le64
*vblocknr
= nilfs_segctor_map_segsum_entry(
554 sci
, ssp
, sizeof(*vblocknr
));
555 *vblocknr
= binfo
->bi_v
.bi_vblocknr
;
558 static struct nilfs_sc_operations nilfs_sc_file_ops
= {
559 .collect_data
= nilfs_collect_file_data
,
560 .collect_node
= nilfs_collect_file_node
,
561 .collect_bmap
= nilfs_collect_file_bmap
,
562 .write_data_binfo
= nilfs_write_file_data_binfo
,
563 .write_node_binfo
= nilfs_write_file_node_binfo
,
566 static int nilfs_collect_dat_data(struct nilfs_sc_info
*sci
,
567 struct buffer_head
*bh
, struct inode
*inode
)
571 err
= nilfs_bmap_propagate(NILFS_I(inode
)->i_bmap
, bh
);
575 err
= nilfs_segctor_add_file_block(sci
, bh
, inode
, sizeof(__le64
));
577 sci
->sc_datablk_cnt
++;
581 static int nilfs_collect_dat_bmap(struct nilfs_sc_info
*sci
,
582 struct buffer_head
*bh
, struct inode
*inode
)
584 WARN_ON(!buffer_dirty(bh
));
585 return nilfs_segctor_add_file_block(sci
, bh
, inode
,
586 sizeof(struct nilfs_binfo_dat
));
589 static void nilfs_write_dat_data_binfo(struct nilfs_sc_info
*sci
,
590 struct nilfs_segsum_pointer
*ssp
,
591 union nilfs_binfo
*binfo
)
593 __le64
*blkoff
= nilfs_segctor_map_segsum_entry(sci
, ssp
,
595 *blkoff
= binfo
->bi_dat
.bi_blkoff
;
598 static void nilfs_write_dat_node_binfo(struct nilfs_sc_info
*sci
,
599 struct nilfs_segsum_pointer
*ssp
,
600 union nilfs_binfo
*binfo
)
602 struct nilfs_binfo_dat
*binfo_dat
=
603 nilfs_segctor_map_segsum_entry(sci
, ssp
, sizeof(*binfo_dat
));
604 *binfo_dat
= binfo
->bi_dat
;
607 static struct nilfs_sc_operations nilfs_sc_dat_ops
= {
608 .collect_data
= nilfs_collect_dat_data
,
609 .collect_node
= nilfs_collect_file_node
,
610 .collect_bmap
= nilfs_collect_dat_bmap
,
611 .write_data_binfo
= nilfs_write_dat_data_binfo
,
612 .write_node_binfo
= nilfs_write_dat_node_binfo
,
615 static struct nilfs_sc_operations nilfs_sc_dsync_ops
= {
616 .collect_data
= nilfs_collect_file_data
,
617 .collect_node
= NULL
,
618 .collect_bmap
= NULL
,
619 .write_data_binfo
= nilfs_write_file_data_binfo
,
620 .write_node_binfo
= NULL
,
623 static size_t nilfs_lookup_dirty_data_buffers(struct inode
*inode
,
624 struct list_head
*listp
,
626 loff_t start
, loff_t end
)
628 struct address_space
*mapping
= inode
->i_mapping
;
630 pgoff_t index
= 0, last
= ULONG_MAX
;
634 if (unlikely(start
!= 0 || end
!= LLONG_MAX
)) {
636 * A valid range is given for sync-ing data pages. The
637 * range is rounded to per-page; extra dirty buffers
638 * may be included if blocksize < pagesize.
640 index
= start
>> PAGE_SHIFT
;
641 last
= end
>> PAGE_SHIFT
;
643 pagevec_init(&pvec
, 0);
645 if (unlikely(index
> last
) ||
646 !pagevec_lookup_tag(&pvec
, mapping
, &index
, PAGECACHE_TAG_DIRTY
,
647 min_t(pgoff_t
, last
- index
,
648 PAGEVEC_SIZE
- 1) + 1))
651 for (i
= 0; i
< pagevec_count(&pvec
); i
++) {
652 struct buffer_head
*bh
, *head
;
653 struct page
*page
= pvec
.pages
[i
];
655 if (unlikely(page
->index
> last
))
659 if (!page_has_buffers(page
))
660 create_empty_buffers(page
, 1 << inode
->i_blkbits
, 0);
663 bh
= head
= page_buffers(page
);
665 if (!buffer_dirty(bh
))
668 list_add_tail(&bh
->b_assoc_buffers
, listp
);
670 if (unlikely(ndirties
>= nlimit
)) {
671 pagevec_release(&pvec
);
675 } while (bh
= bh
->b_this_page
, bh
!= head
);
677 pagevec_release(&pvec
);
682 static void nilfs_lookup_dirty_node_buffers(struct inode
*inode
,
683 struct list_head
*listp
)
685 struct nilfs_inode_info
*ii
= NILFS_I(inode
);
686 struct address_space
*mapping
= &ii
->i_btnode_cache
;
688 struct buffer_head
*bh
, *head
;
692 pagevec_init(&pvec
, 0);
694 while (pagevec_lookup_tag(&pvec
, mapping
, &index
, PAGECACHE_TAG_DIRTY
,
696 for (i
= 0; i
< pagevec_count(&pvec
); i
++) {
697 bh
= head
= page_buffers(pvec
.pages
[i
]);
699 if (buffer_dirty(bh
)) {
701 list_add_tail(&bh
->b_assoc_buffers
,
704 bh
= bh
->b_this_page
;
705 } while (bh
!= head
);
707 pagevec_release(&pvec
);
712 static void nilfs_dispose_list(struct the_nilfs
*nilfs
,
713 struct list_head
*head
, int force
)
715 struct nilfs_inode_info
*ii
, *n
;
716 struct nilfs_inode_info
*ivec
[SC_N_INODEVEC
], **pii
;
719 while (!list_empty(head
)) {
720 spin_lock(&nilfs
->ns_inode_lock
);
721 list_for_each_entry_safe(ii
, n
, head
, i_dirty
) {
722 list_del_init(&ii
->i_dirty
);
724 if (unlikely(ii
->i_bh
)) {
728 } else if (test_bit(NILFS_I_DIRTY
, &ii
->i_state
)) {
729 set_bit(NILFS_I_QUEUED
, &ii
->i_state
);
730 list_add_tail(&ii
->i_dirty
,
731 &nilfs
->ns_dirty_files
);
735 if (nv
== SC_N_INODEVEC
)
738 spin_unlock(&nilfs
->ns_inode_lock
);
740 for (pii
= ivec
; nv
> 0; pii
++, nv
--)
741 iput(&(*pii
)->vfs_inode
);
745 static int nilfs_test_metadata_dirty(struct the_nilfs
*nilfs
,
746 struct nilfs_root
*root
)
750 if (nilfs_mdt_fetch_dirty(root
->ifile
))
752 if (nilfs_mdt_fetch_dirty(nilfs
->ns_cpfile
))
754 if (nilfs_mdt_fetch_dirty(nilfs
->ns_sufile
))
756 if ((ret
|| nilfs_doing_gc()) && nilfs_mdt_fetch_dirty(nilfs
->ns_dat
))
761 static int nilfs_segctor_clean(struct nilfs_sc_info
*sci
)
763 return list_empty(&sci
->sc_dirty_files
) &&
764 !test_bit(NILFS_SC_DIRTY
, &sci
->sc_flags
) &&
765 sci
->sc_nfreesegs
== 0 &&
766 (!nilfs_doing_gc() || list_empty(&sci
->sc_gc_inodes
));
769 static int nilfs_segctor_confirm(struct nilfs_sc_info
*sci
)
771 struct the_nilfs
*nilfs
= sci
->sc_super
->s_fs_info
;
774 if (nilfs_test_metadata_dirty(nilfs
, sci
->sc_root
))
775 set_bit(NILFS_SC_DIRTY
, &sci
->sc_flags
);
777 spin_lock(&nilfs
->ns_inode_lock
);
778 if (list_empty(&nilfs
->ns_dirty_files
) && nilfs_segctor_clean(sci
))
781 spin_unlock(&nilfs
->ns_inode_lock
);
785 static void nilfs_segctor_clear_metadata_dirty(struct nilfs_sc_info
*sci
)
787 struct the_nilfs
*nilfs
= sci
->sc_super
->s_fs_info
;
789 nilfs_mdt_clear_dirty(sci
->sc_root
->ifile
);
790 nilfs_mdt_clear_dirty(nilfs
->ns_cpfile
);
791 nilfs_mdt_clear_dirty(nilfs
->ns_sufile
);
792 nilfs_mdt_clear_dirty(nilfs
->ns_dat
);
795 static int nilfs_segctor_create_checkpoint(struct nilfs_sc_info
*sci
)
797 struct the_nilfs
*nilfs
= sci
->sc_super
->s_fs_info
;
798 struct buffer_head
*bh_cp
;
799 struct nilfs_checkpoint
*raw_cp
;
802 /* XXX: this interface will be changed */
803 err
= nilfs_cpfile_get_checkpoint(nilfs
->ns_cpfile
, nilfs
->ns_cno
, 1,
806 /* The following code is duplicated with cpfile. But, it is
807 needed to collect the checkpoint even if it was not newly
809 mark_buffer_dirty(bh_cp
);
810 nilfs_mdt_mark_dirty(nilfs
->ns_cpfile
);
811 nilfs_cpfile_put_checkpoint(
812 nilfs
->ns_cpfile
, nilfs
->ns_cno
, bh_cp
);
814 WARN_ON(err
== -EINVAL
|| err
== -ENOENT
);
819 static int nilfs_segctor_fill_in_checkpoint(struct nilfs_sc_info
*sci
)
821 struct the_nilfs
*nilfs
= sci
->sc_super
->s_fs_info
;
822 struct buffer_head
*bh_cp
;
823 struct nilfs_checkpoint
*raw_cp
;
826 err
= nilfs_cpfile_get_checkpoint(nilfs
->ns_cpfile
, nilfs
->ns_cno
, 0,
829 WARN_ON(err
== -EINVAL
|| err
== -ENOENT
);
832 raw_cp
->cp_snapshot_list
.ssl_next
= 0;
833 raw_cp
->cp_snapshot_list
.ssl_prev
= 0;
834 raw_cp
->cp_inodes_count
=
835 cpu_to_le64(atomic_read(&sci
->sc_root
->inodes_count
));
836 raw_cp
->cp_blocks_count
=
837 cpu_to_le64(atomic_read(&sci
->sc_root
->blocks_count
));
838 raw_cp
->cp_nblk_inc
=
839 cpu_to_le64(sci
->sc_nblk_inc
+ sci
->sc_nblk_this_inc
);
840 raw_cp
->cp_create
= cpu_to_le64(sci
->sc_seg_ctime
);
841 raw_cp
->cp_cno
= cpu_to_le64(nilfs
->ns_cno
);
843 if (test_bit(NILFS_SC_HAVE_DELTA
, &sci
->sc_flags
))
844 nilfs_checkpoint_clear_minor(raw_cp
);
846 nilfs_checkpoint_set_minor(raw_cp
);
848 nilfs_write_inode_common(sci
->sc_root
->ifile
,
849 &raw_cp
->cp_ifile_inode
, 1);
850 nilfs_cpfile_put_checkpoint(nilfs
->ns_cpfile
, nilfs
->ns_cno
, bh_cp
);
857 static void nilfs_fill_in_file_bmap(struct inode
*ifile
,
858 struct nilfs_inode_info
*ii
)
861 struct buffer_head
*ibh
;
862 struct nilfs_inode
*raw_inode
;
864 if (test_bit(NILFS_I_BMAP
, &ii
->i_state
)) {
867 raw_inode
= nilfs_ifile_map_inode(ifile
, ii
->vfs_inode
.i_ino
,
869 nilfs_bmap_write(ii
->i_bmap
, raw_inode
);
870 nilfs_ifile_unmap_inode(ifile
, ii
->vfs_inode
.i_ino
, ibh
);
874 static void nilfs_segctor_fill_in_file_bmap(struct nilfs_sc_info
*sci
)
876 struct nilfs_inode_info
*ii
;
878 list_for_each_entry(ii
, &sci
->sc_dirty_files
, i_dirty
) {
879 nilfs_fill_in_file_bmap(sci
->sc_root
->ifile
, ii
);
880 set_bit(NILFS_I_COLLECTED
, &ii
->i_state
);
884 static void nilfs_segctor_fill_in_super_root(struct nilfs_sc_info
*sci
,
885 struct the_nilfs
*nilfs
)
887 struct buffer_head
*bh_sr
;
888 struct nilfs_super_root
*raw_sr
;
891 bh_sr
= NILFS_LAST_SEGBUF(&sci
->sc_segbufs
)->sb_super_root
;
892 raw_sr
= (struct nilfs_super_root
*)bh_sr
->b_data
;
893 isz
= nilfs
->ns_inode_size
;
894 srsz
= NILFS_SR_BYTES(isz
);
896 raw_sr
->sr_bytes
= cpu_to_le16(srsz
);
897 raw_sr
->sr_nongc_ctime
898 = cpu_to_le64(nilfs_doing_gc() ?
899 nilfs
->ns_nongc_ctime
: sci
->sc_seg_ctime
);
900 raw_sr
->sr_flags
= 0;
902 nilfs_write_inode_common(nilfs
->ns_dat
, (void *)raw_sr
+
903 NILFS_SR_DAT_OFFSET(isz
), 1);
904 nilfs_write_inode_common(nilfs
->ns_cpfile
, (void *)raw_sr
+
905 NILFS_SR_CPFILE_OFFSET(isz
), 1);
906 nilfs_write_inode_common(nilfs
->ns_sufile
, (void *)raw_sr
+
907 NILFS_SR_SUFILE_OFFSET(isz
), 1);
908 memset((void *)raw_sr
+ srsz
, 0, nilfs
->ns_blocksize
- srsz
);
911 static void nilfs_redirty_inodes(struct list_head
*head
)
913 struct nilfs_inode_info
*ii
;
915 list_for_each_entry(ii
, head
, i_dirty
) {
916 if (test_bit(NILFS_I_COLLECTED
, &ii
->i_state
))
917 clear_bit(NILFS_I_COLLECTED
, &ii
->i_state
);
921 static void nilfs_drop_collected_inodes(struct list_head
*head
)
923 struct nilfs_inode_info
*ii
;
925 list_for_each_entry(ii
, head
, i_dirty
) {
926 if (!test_and_clear_bit(NILFS_I_COLLECTED
, &ii
->i_state
))
929 clear_bit(NILFS_I_INODE_DIRTY
, &ii
->i_state
);
930 set_bit(NILFS_I_UPDATED
, &ii
->i_state
);
934 static int nilfs_segctor_apply_buffers(struct nilfs_sc_info
*sci
,
936 struct list_head
*listp
,
937 int (*collect
)(struct nilfs_sc_info
*,
938 struct buffer_head
*,
941 struct buffer_head
*bh
, *n
;
945 list_for_each_entry_safe(bh
, n
, listp
, b_assoc_buffers
) {
946 list_del_init(&bh
->b_assoc_buffers
);
947 err
= collect(sci
, bh
, inode
);
950 goto dispose_buffers
;
956 while (!list_empty(listp
)) {
957 bh
= list_first_entry(listp
, struct buffer_head
,
959 list_del_init(&bh
->b_assoc_buffers
);
965 static size_t nilfs_segctor_buffer_rest(struct nilfs_sc_info
*sci
)
967 /* Remaining number of blocks within segment buffer */
968 return sci
->sc_segbuf_nblocks
-
969 (sci
->sc_nblk_this_inc
+ sci
->sc_curseg
->sb_sum
.nblocks
);
972 static int nilfs_segctor_scan_file(struct nilfs_sc_info
*sci
,
974 struct nilfs_sc_operations
*sc_ops
)
976 LIST_HEAD(data_buffers
);
977 LIST_HEAD(node_buffers
);
980 if (!(sci
->sc_stage
.flags
& NILFS_CF_NODE
)) {
981 size_t n
, rest
= nilfs_segctor_buffer_rest(sci
);
983 n
= nilfs_lookup_dirty_data_buffers(
984 inode
, &data_buffers
, rest
+ 1, 0, LLONG_MAX
);
986 err
= nilfs_segctor_apply_buffers(
987 sci
, inode
, &data_buffers
,
988 sc_ops
->collect_data
);
989 BUG_ON(!err
); /* always receive -E2BIG or true error */
993 nilfs_lookup_dirty_node_buffers(inode
, &node_buffers
);
995 if (!(sci
->sc_stage
.flags
& NILFS_CF_NODE
)) {
996 err
= nilfs_segctor_apply_buffers(
997 sci
, inode
, &data_buffers
, sc_ops
->collect_data
);
999 /* dispose node list */
1000 nilfs_segctor_apply_buffers(
1001 sci
, inode
, &node_buffers
, NULL
);
1004 sci
->sc_stage
.flags
|= NILFS_CF_NODE
;
1007 err
= nilfs_segctor_apply_buffers(
1008 sci
, inode
, &node_buffers
, sc_ops
->collect_node
);
1012 nilfs_bmap_lookup_dirty_buffers(NILFS_I(inode
)->i_bmap
, &node_buffers
);
1013 err
= nilfs_segctor_apply_buffers(
1014 sci
, inode
, &node_buffers
, sc_ops
->collect_bmap
);
1018 nilfs_segctor_end_finfo(sci
, inode
);
1019 sci
->sc_stage
.flags
&= ~NILFS_CF_NODE
;
1025 static int nilfs_segctor_scan_file_dsync(struct nilfs_sc_info
*sci
,
1026 struct inode
*inode
)
1028 LIST_HEAD(data_buffers
);
1029 size_t n
, rest
= nilfs_segctor_buffer_rest(sci
);
1032 n
= nilfs_lookup_dirty_data_buffers(inode
, &data_buffers
, rest
+ 1,
1033 sci
->sc_dsync_start
,
1036 err
= nilfs_segctor_apply_buffers(sci
, inode
, &data_buffers
,
1037 nilfs_collect_file_data
);
1039 nilfs_segctor_end_finfo(sci
, inode
);
1041 /* always receive -E2BIG or true error if n > rest */
1046 static int nilfs_segctor_collect_blocks(struct nilfs_sc_info
*sci
, int mode
)
1048 struct the_nilfs
*nilfs
= sci
->sc_super
->s_fs_info
;
1049 struct list_head
*head
;
1050 struct nilfs_inode_info
*ii
;
1054 switch (sci
->sc_stage
.scnt
) {
1057 sci
->sc_stage
.flags
= 0;
1059 if (!test_bit(NILFS_SC_UNCLOSED
, &sci
->sc_flags
)) {
1060 sci
->sc_nblk_inc
= 0;
1061 sci
->sc_curseg
->sb_sum
.flags
= NILFS_SS_LOGBGN
;
1062 if (mode
== SC_LSEG_DSYNC
) {
1063 sci
->sc_stage
.scnt
= NILFS_ST_DSYNC
;
1068 sci
->sc_stage
.dirty_file_ptr
= NULL
;
1069 sci
->sc_stage
.gc_inode_ptr
= NULL
;
1070 if (mode
== SC_FLUSH_DAT
) {
1071 sci
->sc_stage
.scnt
= NILFS_ST_DAT
;
1074 sci
->sc_stage
.scnt
++; /* Fall through */
1076 if (nilfs_doing_gc()) {
1077 head
= &sci
->sc_gc_inodes
;
1078 ii
= list_prepare_entry(sci
->sc_stage
.gc_inode_ptr
,
1080 list_for_each_entry_continue(ii
, head
, i_dirty
) {
1081 err
= nilfs_segctor_scan_file(
1082 sci
, &ii
->vfs_inode
,
1083 &nilfs_sc_file_ops
);
1084 if (unlikely(err
)) {
1085 sci
->sc_stage
.gc_inode_ptr
= list_entry(
1087 struct nilfs_inode_info
,
1091 set_bit(NILFS_I_COLLECTED
, &ii
->i_state
);
1093 sci
->sc_stage
.gc_inode_ptr
= NULL
;
1095 sci
->sc_stage
.scnt
++; /* Fall through */
1097 head
= &sci
->sc_dirty_files
;
1098 ii
= list_prepare_entry(sci
->sc_stage
.dirty_file_ptr
, head
,
1100 list_for_each_entry_continue(ii
, head
, i_dirty
) {
1101 clear_bit(NILFS_I_DIRTY
, &ii
->i_state
);
1103 err
= nilfs_segctor_scan_file(sci
, &ii
->vfs_inode
,
1104 &nilfs_sc_file_ops
);
1105 if (unlikely(err
)) {
1106 sci
->sc_stage
.dirty_file_ptr
=
1107 list_entry(ii
->i_dirty
.prev
,
1108 struct nilfs_inode_info
,
1112 /* sci->sc_stage.dirty_file_ptr = NILFS_I(inode); */
1113 /* XXX: required ? */
1115 sci
->sc_stage
.dirty_file_ptr
= NULL
;
1116 if (mode
== SC_FLUSH_FILE
) {
1117 sci
->sc_stage
.scnt
= NILFS_ST_DONE
;
1120 sci
->sc_stage
.scnt
++;
1121 sci
->sc_stage
.flags
|= NILFS_CF_IFILE_STARTED
;
1123 case NILFS_ST_IFILE
:
1124 err
= nilfs_segctor_scan_file(sci
, sci
->sc_root
->ifile
,
1125 &nilfs_sc_file_ops
);
1128 sci
->sc_stage
.scnt
++;
1129 /* Creating a checkpoint */
1130 err
= nilfs_segctor_create_checkpoint(sci
);
1134 case NILFS_ST_CPFILE
:
1135 err
= nilfs_segctor_scan_file(sci
, nilfs
->ns_cpfile
,
1136 &nilfs_sc_file_ops
);
1139 sci
->sc_stage
.scnt
++; /* Fall through */
1140 case NILFS_ST_SUFILE
:
1141 err
= nilfs_sufile_freev(nilfs
->ns_sufile
, sci
->sc_freesegs
,
1142 sci
->sc_nfreesegs
, &ndone
);
1143 if (unlikely(err
)) {
1144 nilfs_sufile_cancel_freev(nilfs
->ns_sufile
,
1145 sci
->sc_freesegs
, ndone
,
1149 sci
->sc_stage
.flags
|= NILFS_CF_SUFREED
;
1151 err
= nilfs_segctor_scan_file(sci
, nilfs
->ns_sufile
,
1152 &nilfs_sc_file_ops
);
1155 sci
->sc_stage
.scnt
++; /* Fall through */
1158 err
= nilfs_segctor_scan_file(sci
, nilfs
->ns_dat
,
1162 if (mode
== SC_FLUSH_DAT
) {
1163 sci
->sc_stage
.scnt
= NILFS_ST_DONE
;
1166 sci
->sc_stage
.scnt
++; /* Fall through */
1168 if (mode
== SC_LSEG_SR
) {
1169 /* Appending a super root */
1170 err
= nilfs_segctor_add_super_root(sci
);
1174 /* End of a logical segment */
1175 sci
->sc_curseg
->sb_sum
.flags
|= NILFS_SS_LOGEND
;
1176 sci
->sc_stage
.scnt
= NILFS_ST_DONE
;
1178 case NILFS_ST_DSYNC
:
1180 sci
->sc_curseg
->sb_sum
.flags
|= NILFS_SS_SYNDT
;
1181 ii
= sci
->sc_dsync_inode
;
1182 if (!test_bit(NILFS_I_BUSY
, &ii
->i_state
))
1185 err
= nilfs_segctor_scan_file_dsync(sci
, &ii
->vfs_inode
);
1188 sci
->sc_curseg
->sb_sum
.flags
|= NILFS_SS_LOGEND
;
1189 sci
->sc_stage
.scnt
= NILFS_ST_DONE
;
1202 * nilfs_segctor_begin_construction - setup segment buffer to make a new log
1203 * @sci: nilfs_sc_info
1204 * @nilfs: nilfs object
1206 static int nilfs_segctor_begin_construction(struct nilfs_sc_info
*sci
,
1207 struct the_nilfs
*nilfs
)
1209 struct nilfs_segment_buffer
*segbuf
, *prev
;
1213 segbuf
= nilfs_segbuf_new(sci
->sc_super
);
1214 if (unlikely(!segbuf
))
1217 if (list_empty(&sci
->sc_write_logs
)) {
1218 nilfs_segbuf_map(segbuf
, nilfs
->ns_segnum
,
1219 nilfs
->ns_pseg_offset
, nilfs
);
1220 if (segbuf
->sb_rest_blocks
< NILFS_PSEG_MIN_BLOCKS
) {
1221 nilfs_shift_to_next_segment(nilfs
);
1222 nilfs_segbuf_map(segbuf
, nilfs
->ns_segnum
, 0, nilfs
);
1225 segbuf
->sb_sum
.seg_seq
= nilfs
->ns_seg_seq
;
1226 nextnum
= nilfs
->ns_nextnum
;
1228 if (nilfs
->ns_segnum
== nilfs
->ns_nextnum
)
1229 /* Start from the head of a new full segment */
1233 prev
= NILFS_LAST_SEGBUF(&sci
->sc_write_logs
);
1234 nilfs_segbuf_map_cont(segbuf
, prev
);
1235 segbuf
->sb_sum
.seg_seq
= prev
->sb_sum
.seg_seq
;
1236 nextnum
= prev
->sb_nextnum
;
1238 if (segbuf
->sb_rest_blocks
< NILFS_PSEG_MIN_BLOCKS
) {
1239 nilfs_segbuf_map(segbuf
, prev
->sb_nextnum
, 0, nilfs
);
1240 segbuf
->sb_sum
.seg_seq
++;
1245 err
= nilfs_sufile_mark_dirty(nilfs
->ns_sufile
, segbuf
->sb_segnum
);
1250 err
= nilfs_sufile_alloc(nilfs
->ns_sufile
, &nextnum
);
1254 nilfs_segbuf_set_next_segnum(segbuf
, nextnum
, nilfs
);
1256 BUG_ON(!list_empty(&sci
->sc_segbufs
));
1257 list_add_tail(&segbuf
->sb_list
, &sci
->sc_segbufs
);
1258 sci
->sc_segbuf_nblocks
= segbuf
->sb_rest_blocks
;
1262 nilfs_segbuf_free(segbuf
);
1266 static int nilfs_segctor_extend_segments(struct nilfs_sc_info
*sci
,
1267 struct the_nilfs
*nilfs
, int nadd
)
1269 struct nilfs_segment_buffer
*segbuf
, *prev
;
1270 struct inode
*sufile
= nilfs
->ns_sufile
;
1275 prev
= NILFS_LAST_SEGBUF(&sci
->sc_segbufs
);
1277 * Since the segment specified with nextnum might be allocated during
1278 * the previous construction, the buffer including its segusage may
1279 * not be dirty. The following call ensures that the buffer is dirty
1280 * and will pin the buffer on memory until the sufile is written.
1282 err
= nilfs_sufile_mark_dirty(sufile
, prev
->sb_nextnum
);
1286 for (i
= 0; i
< nadd
; i
++) {
1287 /* extend segment info */
1289 segbuf
= nilfs_segbuf_new(sci
->sc_super
);
1290 if (unlikely(!segbuf
))
1293 /* map this buffer to region of segment on-disk */
1294 nilfs_segbuf_map(segbuf
, prev
->sb_nextnum
, 0, nilfs
);
1295 sci
->sc_segbuf_nblocks
+= segbuf
->sb_rest_blocks
;
1297 /* allocate the next next full segment */
1298 err
= nilfs_sufile_alloc(sufile
, &nextnextnum
);
1302 segbuf
->sb_sum
.seg_seq
= prev
->sb_sum
.seg_seq
+ 1;
1303 nilfs_segbuf_set_next_segnum(segbuf
, nextnextnum
, nilfs
);
1305 list_add_tail(&segbuf
->sb_list
, &list
);
1308 list_splice_tail(&list
, &sci
->sc_segbufs
);
1312 nilfs_segbuf_free(segbuf
);
1314 list_for_each_entry(segbuf
, &list
, sb_list
) {
1315 ret
= nilfs_sufile_free(sufile
, segbuf
->sb_nextnum
);
1316 WARN_ON(ret
); /* never fails */
1318 nilfs_destroy_logs(&list
);
1322 static void nilfs_free_incomplete_logs(struct list_head
*logs
,
1323 struct the_nilfs
*nilfs
)
1325 struct nilfs_segment_buffer
*segbuf
, *prev
;
1326 struct inode
*sufile
= nilfs
->ns_sufile
;
1329 segbuf
= NILFS_FIRST_SEGBUF(logs
);
1330 if (nilfs
->ns_nextnum
!= segbuf
->sb_nextnum
) {
1331 ret
= nilfs_sufile_free(sufile
, segbuf
->sb_nextnum
);
1332 WARN_ON(ret
); /* never fails */
1334 if (atomic_read(&segbuf
->sb_err
)) {
1335 /* Case 1: The first segment failed */
1336 if (segbuf
->sb_pseg_start
!= segbuf
->sb_fseg_start
)
1337 /* Case 1a: Partial segment appended into an existing
1339 nilfs_terminate_segment(nilfs
, segbuf
->sb_fseg_start
,
1340 segbuf
->sb_fseg_end
);
1341 else /* Case 1b: New full segment */
1342 set_nilfs_discontinued(nilfs
);
1346 list_for_each_entry_continue(segbuf
, logs
, sb_list
) {
1347 if (prev
->sb_nextnum
!= segbuf
->sb_nextnum
) {
1348 ret
= nilfs_sufile_free(sufile
, segbuf
->sb_nextnum
);
1349 WARN_ON(ret
); /* never fails */
1351 if (atomic_read(&segbuf
->sb_err
) &&
1352 segbuf
->sb_segnum
!= nilfs
->ns_nextnum
)
1353 /* Case 2: extended segment (!= next) failed */
1354 nilfs_sufile_set_error(sufile
, segbuf
->sb_segnum
);
1359 static void nilfs_segctor_update_segusage(struct nilfs_sc_info
*sci
,
1360 struct inode
*sufile
)
1362 struct nilfs_segment_buffer
*segbuf
;
1363 unsigned long live_blocks
;
1366 list_for_each_entry(segbuf
, &sci
->sc_segbufs
, sb_list
) {
1367 live_blocks
= segbuf
->sb_sum
.nblocks
+
1368 (segbuf
->sb_pseg_start
- segbuf
->sb_fseg_start
);
1369 ret
= nilfs_sufile_set_segment_usage(sufile
, segbuf
->sb_segnum
,
1372 WARN_ON(ret
); /* always succeed because the segusage is dirty */
1376 static void nilfs_cancel_segusage(struct list_head
*logs
, struct inode
*sufile
)
1378 struct nilfs_segment_buffer
*segbuf
;
1381 segbuf
= NILFS_FIRST_SEGBUF(logs
);
1382 ret
= nilfs_sufile_set_segment_usage(sufile
, segbuf
->sb_segnum
,
1383 segbuf
->sb_pseg_start
-
1384 segbuf
->sb_fseg_start
, 0);
1385 WARN_ON(ret
); /* always succeed because the segusage is dirty */
1387 list_for_each_entry_continue(segbuf
, logs
, sb_list
) {
1388 ret
= nilfs_sufile_set_segment_usage(sufile
, segbuf
->sb_segnum
,
1390 WARN_ON(ret
); /* always succeed */
1394 static void nilfs_segctor_truncate_segments(struct nilfs_sc_info
*sci
,
1395 struct nilfs_segment_buffer
*last
,
1396 struct inode
*sufile
)
1398 struct nilfs_segment_buffer
*segbuf
= last
;
1401 list_for_each_entry_continue(segbuf
, &sci
->sc_segbufs
, sb_list
) {
1402 sci
->sc_segbuf_nblocks
-= segbuf
->sb_rest_blocks
;
1403 ret
= nilfs_sufile_free(sufile
, segbuf
->sb_nextnum
);
1406 nilfs_truncate_logs(&sci
->sc_segbufs
, last
);
1410 static int nilfs_segctor_collect(struct nilfs_sc_info
*sci
,
1411 struct the_nilfs
*nilfs
, int mode
)
1413 struct nilfs_cstage prev_stage
= sci
->sc_stage
;
1416 /* Collection retry loop */
1418 sci
->sc_nblk_this_inc
= 0;
1419 sci
->sc_curseg
= NILFS_FIRST_SEGBUF(&sci
->sc_segbufs
);
1421 err
= nilfs_segctor_reset_segment_buffer(sci
);
1425 err
= nilfs_segctor_collect_blocks(sci
, mode
);
1426 sci
->sc_nblk_this_inc
+= sci
->sc_curseg
->sb_sum
.nblocks
;
1430 if (unlikely(err
!= -E2BIG
))
1433 /* The current segment is filled up */
1434 if (mode
!= SC_LSEG_SR
|| sci
->sc_stage
.scnt
< NILFS_ST_CPFILE
)
1437 nilfs_clear_logs(&sci
->sc_segbufs
);
1439 err
= nilfs_segctor_extend_segments(sci
, nilfs
, nadd
);
1443 if (sci
->sc_stage
.flags
& NILFS_CF_SUFREED
) {
1444 err
= nilfs_sufile_cancel_freev(nilfs
->ns_sufile
,
1448 WARN_ON(err
); /* do not happen */
1450 nadd
= min_t(int, nadd
<< 1, SC_MAX_SEGDELTA
);
1451 sci
->sc_stage
= prev_stage
;
1453 nilfs_segctor_truncate_segments(sci
, sci
->sc_curseg
, nilfs
->ns_sufile
);
1460 static void nilfs_list_replace_buffer(struct buffer_head
*old_bh
,
1461 struct buffer_head
*new_bh
)
1463 BUG_ON(!list_empty(&new_bh
->b_assoc_buffers
));
1465 list_replace_init(&old_bh
->b_assoc_buffers
, &new_bh
->b_assoc_buffers
);
1466 /* The caller must release old_bh */
1470 nilfs_segctor_update_payload_blocknr(struct nilfs_sc_info
*sci
,
1471 struct nilfs_segment_buffer
*segbuf
,
1474 struct inode
*inode
= NULL
;
1476 unsigned long nfinfo
= segbuf
->sb_sum
.nfinfo
;
1477 unsigned long nblocks
= 0, ndatablk
= 0;
1478 struct nilfs_sc_operations
*sc_op
= NULL
;
1479 struct nilfs_segsum_pointer ssp
;
1480 struct nilfs_finfo
*finfo
= NULL
;
1481 union nilfs_binfo binfo
;
1482 struct buffer_head
*bh
, *bh_org
;
1489 blocknr
= segbuf
->sb_pseg_start
+ segbuf
->sb_sum
.nsumblk
;
1490 ssp
.bh
= NILFS_SEGBUF_FIRST_BH(&segbuf
->sb_segsum_buffers
);
1491 ssp
.offset
= sizeof(struct nilfs_segment_summary
);
1493 list_for_each_entry(bh
, &segbuf
->sb_payload_buffers
, b_assoc_buffers
) {
1494 if (bh
== segbuf
->sb_super_root
)
1497 finfo
= nilfs_segctor_map_segsum_entry(
1498 sci
, &ssp
, sizeof(*finfo
));
1499 ino
= le64_to_cpu(finfo
->fi_ino
);
1500 nblocks
= le32_to_cpu(finfo
->fi_nblocks
);
1501 ndatablk
= le32_to_cpu(finfo
->fi_ndatablk
);
1503 inode
= bh
->b_page
->mapping
->host
;
1505 if (mode
== SC_LSEG_DSYNC
)
1506 sc_op
= &nilfs_sc_dsync_ops
;
1507 else if (ino
== NILFS_DAT_INO
)
1508 sc_op
= &nilfs_sc_dat_ops
;
1509 else /* file blocks */
1510 sc_op
= &nilfs_sc_file_ops
;
1514 err
= nilfs_bmap_assign(NILFS_I(inode
)->i_bmap
, &bh
, blocknr
,
1517 nilfs_list_replace_buffer(bh_org
, bh
);
1523 sc_op
->write_data_binfo(sci
, &ssp
, &binfo
);
1525 sc_op
->write_node_binfo(sci
, &ssp
, &binfo
);
1528 if (--nblocks
== 0) {
1532 } else if (ndatablk
> 0)
1542 static int nilfs_segctor_assign(struct nilfs_sc_info
*sci
, int mode
)
1544 struct nilfs_segment_buffer
*segbuf
;
1547 list_for_each_entry(segbuf
, &sci
->sc_segbufs
, sb_list
) {
1548 err
= nilfs_segctor_update_payload_blocknr(sci
, segbuf
, mode
);
1551 nilfs_segbuf_fill_in_segsum(segbuf
);
1556 static void nilfs_begin_page_io(struct page
*page
)
1558 if (!page
|| PageWriteback(page
))
1559 /* For split b-tree node pages, this function may be called
1560 twice. We ignore the 2nd or later calls by this check. */
1564 clear_page_dirty_for_io(page
);
1565 set_page_writeback(page
);
1569 static void nilfs_segctor_prepare_write(struct nilfs_sc_info
*sci
)
1571 struct nilfs_segment_buffer
*segbuf
;
1572 struct page
*bd_page
= NULL
, *fs_page
= NULL
;
1574 list_for_each_entry(segbuf
, &sci
->sc_segbufs
, sb_list
) {
1575 struct buffer_head
*bh
;
1577 list_for_each_entry(bh
, &segbuf
->sb_segsum_buffers
,
1579 if (bh
->b_page
!= bd_page
) {
1582 clear_page_dirty_for_io(bd_page
);
1583 set_page_writeback(bd_page
);
1584 unlock_page(bd_page
);
1586 bd_page
= bh
->b_page
;
1590 list_for_each_entry(bh
, &segbuf
->sb_payload_buffers
,
1592 if (bh
== segbuf
->sb_super_root
) {
1593 if (bh
->b_page
!= bd_page
) {
1595 clear_page_dirty_for_io(bd_page
);
1596 set_page_writeback(bd_page
);
1597 unlock_page(bd_page
);
1598 bd_page
= bh
->b_page
;
1602 if (bh
->b_page
!= fs_page
) {
1603 nilfs_begin_page_io(fs_page
);
1604 fs_page
= bh
->b_page
;
1610 clear_page_dirty_for_io(bd_page
);
1611 set_page_writeback(bd_page
);
1612 unlock_page(bd_page
);
1614 nilfs_begin_page_io(fs_page
);
1617 static int nilfs_segctor_write(struct nilfs_sc_info
*sci
,
1618 struct the_nilfs
*nilfs
)
1622 ret
= nilfs_write_logs(&sci
->sc_segbufs
, nilfs
);
1623 list_splice_tail_init(&sci
->sc_segbufs
, &sci
->sc_write_logs
);
1627 static void nilfs_end_page_io(struct page
*page
, int err
)
1632 if (buffer_nilfs_node(page_buffers(page
)) && !PageWriteback(page
)) {
1634 * For b-tree node pages, this function may be called twice
1635 * or more because they might be split in a segment.
1637 if (PageDirty(page
)) {
1639 * For pages holding split b-tree node buffers, dirty
1640 * flag on the buffers may be cleared discretely.
1641 * In that case, the page is once redirtied for
1642 * remaining buffers, and it must be cancelled if
1643 * all the buffers get cleaned later.
1646 if (nilfs_page_buffers_clean(page
))
1647 __nilfs_clear_page_dirty(page
);
1654 if (!nilfs_page_buffers_clean(page
))
1655 __set_page_dirty_nobuffers(page
);
1656 ClearPageError(page
);
1658 __set_page_dirty_nobuffers(page
);
1662 end_page_writeback(page
);
1665 static void nilfs_abort_logs(struct list_head
*logs
, int err
)
1667 struct nilfs_segment_buffer
*segbuf
;
1668 struct page
*bd_page
= NULL
, *fs_page
= NULL
;
1669 struct buffer_head
*bh
;
1671 if (list_empty(logs
))
1674 list_for_each_entry(segbuf
, logs
, sb_list
) {
1675 list_for_each_entry(bh
, &segbuf
->sb_segsum_buffers
,
1677 if (bh
->b_page
!= bd_page
) {
1679 end_page_writeback(bd_page
);
1680 bd_page
= bh
->b_page
;
1684 list_for_each_entry(bh
, &segbuf
->sb_payload_buffers
,
1686 if (bh
== segbuf
->sb_super_root
) {
1687 if (bh
->b_page
!= bd_page
) {
1688 end_page_writeback(bd_page
);
1689 bd_page
= bh
->b_page
;
1693 if (bh
->b_page
!= fs_page
) {
1694 nilfs_end_page_io(fs_page
, err
);
1695 fs_page
= bh
->b_page
;
1700 end_page_writeback(bd_page
);
1702 nilfs_end_page_io(fs_page
, err
);
1705 static void nilfs_segctor_abort_construction(struct nilfs_sc_info
*sci
,
1706 struct the_nilfs
*nilfs
, int err
)
1711 list_splice_tail_init(&sci
->sc_write_logs
, &logs
);
1712 ret
= nilfs_wait_on_logs(&logs
);
1713 nilfs_abort_logs(&logs
, ret
? : err
);
1715 list_splice_tail_init(&sci
->sc_segbufs
, &logs
);
1716 nilfs_cancel_segusage(&logs
, nilfs
->ns_sufile
);
1717 nilfs_free_incomplete_logs(&logs
, nilfs
);
1719 if (sci
->sc_stage
.flags
& NILFS_CF_SUFREED
) {
1720 ret
= nilfs_sufile_cancel_freev(nilfs
->ns_sufile
,
1724 WARN_ON(ret
); /* do not happen */
1727 nilfs_destroy_logs(&logs
);
1730 static void nilfs_set_next_segment(struct the_nilfs
*nilfs
,
1731 struct nilfs_segment_buffer
*segbuf
)
1733 nilfs
->ns_segnum
= segbuf
->sb_segnum
;
1734 nilfs
->ns_nextnum
= segbuf
->sb_nextnum
;
1735 nilfs
->ns_pseg_offset
= segbuf
->sb_pseg_start
- segbuf
->sb_fseg_start
1736 + segbuf
->sb_sum
.nblocks
;
1737 nilfs
->ns_seg_seq
= segbuf
->sb_sum
.seg_seq
;
1738 nilfs
->ns_ctime
= segbuf
->sb_sum
.ctime
;
1741 static void nilfs_segctor_complete_write(struct nilfs_sc_info
*sci
)
1743 struct nilfs_segment_buffer
*segbuf
;
1744 struct page
*bd_page
= NULL
, *fs_page
= NULL
;
1745 struct the_nilfs
*nilfs
= sci
->sc_super
->s_fs_info
;
1746 int update_sr
= false;
1748 list_for_each_entry(segbuf
, &sci
->sc_write_logs
, sb_list
) {
1749 struct buffer_head
*bh
;
1751 list_for_each_entry(bh
, &segbuf
->sb_segsum_buffers
,
1753 set_buffer_uptodate(bh
);
1754 clear_buffer_dirty(bh
);
1755 if (bh
->b_page
!= bd_page
) {
1757 end_page_writeback(bd_page
);
1758 bd_page
= bh
->b_page
;
1762 * We assume that the buffers which belong to the same page
1763 * continue over the buffer list.
1764 * Under this assumption, the last BHs of pages is
1765 * identifiable by the discontinuity of bh->b_page
1766 * (page != fs_page).
1768 * For B-tree node blocks, however, this assumption is not
1769 * guaranteed. The cleanup code of B-tree node pages needs
1772 list_for_each_entry(bh
, &segbuf
->sb_payload_buffers
,
1774 set_buffer_uptodate(bh
);
1775 clear_buffer_dirty(bh
);
1776 clear_buffer_delay(bh
);
1777 clear_buffer_nilfs_volatile(bh
);
1778 clear_buffer_nilfs_redirected(bh
);
1779 if (bh
== segbuf
->sb_super_root
) {
1780 if (bh
->b_page
!= bd_page
) {
1781 end_page_writeback(bd_page
);
1782 bd_page
= bh
->b_page
;
1787 if (bh
->b_page
!= fs_page
) {
1788 nilfs_end_page_io(fs_page
, 0);
1789 fs_page
= bh
->b_page
;
1793 if (!nilfs_segbuf_simplex(segbuf
)) {
1794 if (segbuf
->sb_sum
.flags
& NILFS_SS_LOGBGN
) {
1795 set_bit(NILFS_SC_UNCLOSED
, &sci
->sc_flags
);
1796 sci
->sc_lseg_stime
= jiffies
;
1798 if (segbuf
->sb_sum
.flags
& NILFS_SS_LOGEND
)
1799 clear_bit(NILFS_SC_UNCLOSED
, &sci
->sc_flags
);
1803 * Since pages may continue over multiple segment buffers,
1804 * end of the last page must be checked outside of the loop.
1807 end_page_writeback(bd_page
);
1809 nilfs_end_page_io(fs_page
, 0);
1811 nilfs_drop_collected_inodes(&sci
->sc_dirty_files
);
1813 if (nilfs_doing_gc())
1814 nilfs_drop_collected_inodes(&sci
->sc_gc_inodes
);
1816 nilfs
->ns_nongc_ctime
= sci
->sc_seg_ctime
;
1818 sci
->sc_nblk_inc
+= sci
->sc_nblk_this_inc
;
1820 segbuf
= NILFS_LAST_SEGBUF(&sci
->sc_write_logs
);
1821 nilfs_set_next_segment(nilfs
, segbuf
);
1824 nilfs_set_last_segment(nilfs
, segbuf
->sb_pseg_start
,
1825 segbuf
->sb_sum
.seg_seq
, nilfs
->ns_cno
++);
1827 clear_bit(NILFS_SC_HAVE_DELTA
, &sci
->sc_flags
);
1828 clear_bit(NILFS_SC_DIRTY
, &sci
->sc_flags
);
1829 set_bit(NILFS_SC_SUPER_ROOT
, &sci
->sc_flags
);
1830 nilfs_segctor_clear_metadata_dirty(sci
);
1832 clear_bit(NILFS_SC_SUPER_ROOT
, &sci
->sc_flags
);
1835 static int nilfs_segctor_wait(struct nilfs_sc_info
*sci
)
1839 ret
= nilfs_wait_on_logs(&sci
->sc_write_logs
);
1841 nilfs_segctor_complete_write(sci
);
1842 nilfs_destroy_logs(&sci
->sc_write_logs
);
1847 static int nilfs_segctor_collect_dirty_files(struct nilfs_sc_info
*sci
,
1848 struct the_nilfs
*nilfs
)
1850 struct nilfs_inode_info
*ii
, *n
;
1851 struct inode
*ifile
= sci
->sc_root
->ifile
;
1853 spin_lock(&nilfs
->ns_inode_lock
);
1855 list_for_each_entry_safe(ii
, n
, &nilfs
->ns_dirty_files
, i_dirty
) {
1857 struct buffer_head
*ibh
;
1860 spin_unlock(&nilfs
->ns_inode_lock
);
1861 err
= nilfs_ifile_get_inode_block(
1862 ifile
, ii
->vfs_inode
.i_ino
, &ibh
);
1863 if (unlikely(err
)) {
1864 nilfs_warning(sci
->sc_super
, __func__
,
1865 "failed to get inode block.\n");
1868 mark_buffer_dirty(ibh
);
1869 nilfs_mdt_mark_dirty(ifile
);
1870 spin_lock(&nilfs
->ns_inode_lock
);
1871 if (likely(!ii
->i_bh
))
1878 clear_bit(NILFS_I_QUEUED
, &ii
->i_state
);
1879 set_bit(NILFS_I_BUSY
, &ii
->i_state
);
1880 list_move_tail(&ii
->i_dirty
, &sci
->sc_dirty_files
);
1882 spin_unlock(&nilfs
->ns_inode_lock
);
1887 static void nilfs_segctor_drop_written_files(struct nilfs_sc_info
*sci
,
1888 struct the_nilfs
*nilfs
)
1890 struct nilfs_transaction_info
*ti
= current
->journal_info
;
1891 struct nilfs_inode_info
*ii
, *n
;
1893 spin_lock(&nilfs
->ns_inode_lock
);
1894 list_for_each_entry_safe(ii
, n
, &sci
->sc_dirty_files
, i_dirty
) {
1895 if (!test_and_clear_bit(NILFS_I_UPDATED
, &ii
->i_state
) ||
1896 test_bit(NILFS_I_DIRTY
, &ii
->i_state
))
1899 clear_bit(NILFS_I_BUSY
, &ii
->i_state
);
1902 list_move_tail(&ii
->i_dirty
, &ti
->ti_garbage
);
1904 spin_unlock(&nilfs
->ns_inode_lock
);
1908 * Main procedure of segment constructor
1910 static int nilfs_segctor_do_construct(struct nilfs_sc_info
*sci
, int mode
)
1912 struct the_nilfs
*nilfs
= sci
->sc_super
->s_fs_info
;
1915 sci
->sc_stage
.scnt
= NILFS_ST_INIT
;
1916 sci
->sc_cno
= nilfs
->ns_cno
;
1918 err
= nilfs_segctor_collect_dirty_files(sci
, nilfs
);
1922 if (nilfs_test_metadata_dirty(nilfs
, sci
->sc_root
))
1923 set_bit(NILFS_SC_DIRTY
, &sci
->sc_flags
);
1925 if (nilfs_segctor_clean(sci
))
1929 sci
->sc_stage
.flags
&= ~NILFS_CF_HISTORY_MASK
;
1931 err
= nilfs_segctor_begin_construction(sci
, nilfs
);
1935 /* Update time stamp */
1936 sci
->sc_seg_ctime
= get_seconds();
1938 err
= nilfs_segctor_collect(sci
, nilfs
, mode
);
1942 /* Avoid empty segment */
1943 if (sci
->sc_stage
.scnt
== NILFS_ST_DONE
&&
1944 nilfs_segbuf_empty(sci
->sc_curseg
)) {
1945 nilfs_segctor_abort_construction(sci
, nilfs
, 1);
1949 err
= nilfs_segctor_assign(sci
, mode
);
1953 if (sci
->sc_stage
.flags
& NILFS_CF_IFILE_STARTED
)
1954 nilfs_segctor_fill_in_file_bmap(sci
);
1956 if (mode
== SC_LSEG_SR
&&
1957 sci
->sc_stage
.scnt
>= NILFS_ST_CPFILE
) {
1958 err
= nilfs_segctor_fill_in_checkpoint(sci
);
1960 goto failed_to_write
;
1962 nilfs_segctor_fill_in_super_root(sci
, nilfs
);
1964 nilfs_segctor_update_segusage(sci
, nilfs
->ns_sufile
);
1966 /* Write partial segments */
1967 nilfs_segctor_prepare_write(sci
);
1969 nilfs_add_checksums_on_logs(&sci
->sc_segbufs
,
1970 nilfs
->ns_crc_seed
);
1972 err
= nilfs_segctor_write(sci
, nilfs
);
1974 goto failed_to_write
;
1976 if (sci
->sc_stage
.scnt
== NILFS_ST_DONE
||
1977 nilfs
->ns_blocksize_bits
!= PAGE_CACHE_SHIFT
) {
1979 * At this point, we avoid double buffering
1980 * for blocksize < pagesize because page dirty
1981 * flag is turned off during write and dirty
1982 * buffers are not properly collected for
1983 * pages crossing over segments.
1985 err
= nilfs_segctor_wait(sci
);
1987 goto failed_to_write
;
1989 } while (sci
->sc_stage
.scnt
!= NILFS_ST_DONE
);
1992 nilfs_segctor_drop_written_files(sci
, nilfs
);
1996 if (sci
->sc_stage
.flags
& NILFS_CF_IFILE_STARTED
)
1997 nilfs_redirty_inodes(&sci
->sc_dirty_files
);
2000 if (nilfs_doing_gc())
2001 nilfs_redirty_inodes(&sci
->sc_gc_inodes
);
2002 nilfs_segctor_abort_construction(sci
, nilfs
, err
);
2007 * nilfs_segctor_start_timer - set timer of background write
2008 * @sci: nilfs_sc_info
2010 * If the timer has already been set, it ignores the new request.
2011 * This function MUST be called within a section locking the segment
2014 static void nilfs_segctor_start_timer(struct nilfs_sc_info
*sci
)
2016 spin_lock(&sci
->sc_state_lock
);
2017 if (!(sci
->sc_state
& NILFS_SEGCTOR_COMMIT
)) {
2018 sci
->sc_timer
.expires
= jiffies
+ sci
->sc_interval
;
2019 add_timer(&sci
->sc_timer
);
2020 sci
->sc_state
|= NILFS_SEGCTOR_COMMIT
;
2022 spin_unlock(&sci
->sc_state_lock
);
2025 static void nilfs_segctor_do_flush(struct nilfs_sc_info
*sci
, int bn
)
2027 spin_lock(&sci
->sc_state_lock
);
2028 if (!(sci
->sc_flush_request
& (1 << bn
))) {
2029 unsigned long prev_req
= sci
->sc_flush_request
;
2031 sci
->sc_flush_request
|= (1 << bn
);
2033 wake_up(&sci
->sc_wait_daemon
);
2035 spin_unlock(&sci
->sc_state_lock
);
2039 * nilfs_flush_segment - trigger a segment construction for resource control
2041 * @ino: inode number of the file to be flushed out.
2043 void nilfs_flush_segment(struct super_block
*sb
, ino_t ino
)
2045 struct the_nilfs
*nilfs
= sb
->s_fs_info
;
2046 struct nilfs_sc_info
*sci
= nilfs
->ns_writer
;
2048 if (!sci
|| nilfs_doing_construction())
2050 nilfs_segctor_do_flush(sci
, NILFS_MDT_INODE(sb
, ino
) ? ino
: 0);
2051 /* assign bit 0 to data files */
2054 struct nilfs_segctor_wait_request
{
2061 static int nilfs_segctor_sync(struct nilfs_sc_info
*sci
)
2063 struct nilfs_segctor_wait_request wait_req
;
2066 spin_lock(&sci
->sc_state_lock
);
2067 init_wait(&wait_req
.wq
);
2069 atomic_set(&wait_req
.done
, 0);
2070 wait_req
.seq
= ++sci
->sc_seq_request
;
2071 spin_unlock(&sci
->sc_state_lock
);
2073 init_waitqueue_entry(&wait_req
.wq
, current
);
2074 add_wait_queue(&sci
->sc_wait_request
, &wait_req
.wq
);
2075 set_current_state(TASK_INTERRUPTIBLE
);
2076 wake_up(&sci
->sc_wait_daemon
);
2079 if (atomic_read(&wait_req
.done
)) {
2083 if (!signal_pending(current
)) {
2090 finish_wait(&sci
->sc_wait_request
, &wait_req
.wq
);
2094 static void nilfs_segctor_wakeup(struct nilfs_sc_info
*sci
, int err
)
2096 struct nilfs_segctor_wait_request
*wrq
, *n
;
2097 unsigned long flags
;
2099 spin_lock_irqsave(&sci
->sc_wait_request
.lock
, flags
);
2100 list_for_each_entry_safe(wrq
, n
, &sci
->sc_wait_request
.task_list
,
2102 if (!atomic_read(&wrq
->done
) &&
2103 nilfs_cnt32_ge(sci
->sc_seq_done
, wrq
->seq
)) {
2105 atomic_set(&wrq
->done
, 1);
2107 if (atomic_read(&wrq
->done
)) {
2108 wrq
->wq
.func(&wrq
->wq
,
2109 TASK_UNINTERRUPTIBLE
| TASK_INTERRUPTIBLE
,
2113 spin_unlock_irqrestore(&sci
->sc_wait_request
.lock
, flags
);
2117 * nilfs_construct_segment - construct a logical segment
2120 * Return Value: On success, 0 is retured. On errors, one of the following
2121 * negative error code is returned.
2123 * %-EROFS - Read only filesystem.
2127 * %-ENOSPC - No space left on device (only in a panic state).
2129 * %-ERESTARTSYS - Interrupted.
2131 * %-ENOMEM - Insufficient memory available.
2133 int nilfs_construct_segment(struct super_block
*sb
)
2135 struct the_nilfs
*nilfs
= sb
->s_fs_info
;
2136 struct nilfs_sc_info
*sci
= nilfs
->ns_writer
;
2137 struct nilfs_transaction_info
*ti
;
2143 /* A call inside transactions causes a deadlock. */
2144 BUG_ON((ti
= current
->journal_info
) && ti
->ti_magic
== NILFS_TI_MAGIC
);
2146 err
= nilfs_segctor_sync(sci
);
2151 * nilfs_construct_dsync_segment - construct a data-only logical segment
2153 * @inode: inode whose data blocks should be written out
2154 * @start: start byte offset
2155 * @end: end byte offset (inclusive)
2157 * Return Value: On success, 0 is retured. On errors, one of the following
2158 * negative error code is returned.
2160 * %-EROFS - Read only filesystem.
2164 * %-ENOSPC - No space left on device (only in a panic state).
2166 * %-ERESTARTSYS - Interrupted.
2168 * %-ENOMEM - Insufficient memory available.
2170 int nilfs_construct_dsync_segment(struct super_block
*sb
, struct inode
*inode
,
2171 loff_t start
, loff_t end
)
2173 struct the_nilfs
*nilfs
= sb
->s_fs_info
;
2174 struct nilfs_sc_info
*sci
= nilfs
->ns_writer
;
2175 struct nilfs_inode_info
*ii
;
2176 struct nilfs_transaction_info ti
;
2182 nilfs_transaction_lock(sb
, &ti
, 0);
2184 ii
= NILFS_I(inode
);
2185 if (test_bit(NILFS_I_INODE_DIRTY
, &ii
->i_state
) ||
2186 nilfs_test_opt(nilfs
, STRICT_ORDER
) ||
2187 test_bit(NILFS_SC_UNCLOSED
, &sci
->sc_flags
) ||
2188 nilfs_discontinued(nilfs
)) {
2189 nilfs_transaction_unlock(sb
);
2190 err
= nilfs_segctor_sync(sci
);
2194 spin_lock(&nilfs
->ns_inode_lock
);
2195 if (!test_bit(NILFS_I_QUEUED
, &ii
->i_state
) &&
2196 !test_bit(NILFS_I_BUSY
, &ii
->i_state
)) {
2197 spin_unlock(&nilfs
->ns_inode_lock
);
2198 nilfs_transaction_unlock(sb
);
2201 spin_unlock(&nilfs
->ns_inode_lock
);
2202 sci
->sc_dsync_inode
= ii
;
2203 sci
->sc_dsync_start
= start
;
2204 sci
->sc_dsync_end
= end
;
2206 err
= nilfs_segctor_do_construct(sci
, SC_LSEG_DSYNC
);
2208 nilfs_transaction_unlock(sb
);
2212 #define FLUSH_FILE_BIT (0x1) /* data file only */
2213 #define FLUSH_DAT_BIT (1 << NILFS_DAT_INO) /* DAT only */
2216 * nilfs_segctor_accept - record accepted sequence count of log-write requests
2217 * @sci: segment constructor object
2219 static void nilfs_segctor_accept(struct nilfs_sc_info
*sci
)
2221 spin_lock(&sci
->sc_state_lock
);
2222 sci
->sc_seq_accepted
= sci
->sc_seq_request
;
2223 spin_unlock(&sci
->sc_state_lock
);
2224 del_timer_sync(&sci
->sc_timer
);
2228 * nilfs_segctor_notify - notify the result of request to caller threads
2229 * @sci: segment constructor object
2230 * @mode: mode of log forming
2231 * @err: error code to be notified
2233 static void nilfs_segctor_notify(struct nilfs_sc_info
*sci
, int mode
, int err
)
2235 /* Clear requests (even when the construction failed) */
2236 spin_lock(&sci
->sc_state_lock
);
2238 if (mode
== SC_LSEG_SR
) {
2239 sci
->sc_state
&= ~NILFS_SEGCTOR_COMMIT
;
2240 sci
->sc_seq_done
= sci
->sc_seq_accepted
;
2241 nilfs_segctor_wakeup(sci
, err
);
2242 sci
->sc_flush_request
= 0;
2244 if (mode
== SC_FLUSH_FILE
)
2245 sci
->sc_flush_request
&= ~FLUSH_FILE_BIT
;
2246 else if (mode
== SC_FLUSH_DAT
)
2247 sci
->sc_flush_request
&= ~FLUSH_DAT_BIT
;
2249 /* re-enable timer if checkpoint creation was not done */
2250 if ((sci
->sc_state
& NILFS_SEGCTOR_COMMIT
) &&
2251 time_before(jiffies
, sci
->sc_timer
.expires
))
2252 add_timer(&sci
->sc_timer
);
2254 spin_unlock(&sci
->sc_state_lock
);
2258 * nilfs_segctor_construct - form logs and write them to disk
2259 * @sci: segment constructor object
2260 * @mode: mode of log forming
2262 static int nilfs_segctor_construct(struct nilfs_sc_info
*sci
, int mode
)
2264 struct the_nilfs
*nilfs
= sci
->sc_super
->s_fs_info
;
2265 struct nilfs_super_block
**sbp
;
2268 nilfs_segctor_accept(sci
);
2270 if (nilfs_discontinued(nilfs
))
2272 if (!nilfs_segctor_confirm(sci
))
2273 err
= nilfs_segctor_do_construct(sci
, mode
);
2276 if (mode
!= SC_FLUSH_DAT
)
2277 atomic_set(&nilfs
->ns_ndirtyblks
, 0);
2278 if (test_bit(NILFS_SC_SUPER_ROOT
, &sci
->sc_flags
) &&
2279 nilfs_discontinued(nilfs
)) {
2280 down_write(&nilfs
->ns_sem
);
2282 sbp
= nilfs_prepare_super(sci
->sc_super
,
2283 nilfs_sb_will_flip(nilfs
));
2285 nilfs_set_log_cursor(sbp
[0], nilfs
);
2286 err
= nilfs_commit_super(sci
->sc_super
,
2289 up_write(&nilfs
->ns_sem
);
2293 nilfs_segctor_notify(sci
, mode
, err
);
2297 static void nilfs_construction_timeout(unsigned long data
)
2299 struct task_struct
*p
= (struct task_struct
*)data
;
2304 nilfs_remove_written_gcinodes(struct the_nilfs
*nilfs
, struct list_head
*head
)
2306 struct nilfs_inode_info
*ii
, *n
;
2308 list_for_each_entry_safe(ii
, n
, head
, i_dirty
) {
2309 if (!test_bit(NILFS_I_UPDATED
, &ii
->i_state
))
2311 list_del_init(&ii
->i_dirty
);
2312 iput(&ii
->vfs_inode
);
2316 int nilfs_clean_segments(struct super_block
*sb
, struct nilfs_argv
*argv
,
2319 struct the_nilfs
*nilfs
= sb
->s_fs_info
;
2320 struct nilfs_sc_info
*sci
= nilfs
->ns_writer
;
2321 struct nilfs_transaction_info ti
;
2327 nilfs_transaction_lock(sb
, &ti
, 1);
2329 err
= nilfs_mdt_save_to_shadow_map(nilfs
->ns_dat
);
2333 err
= nilfs_ioctl_prepare_clean_segments(nilfs
, argv
, kbufs
);
2334 if (unlikely(err
)) {
2335 nilfs_mdt_restore_from_shadow_map(nilfs
->ns_dat
);
2339 sci
->sc_freesegs
= kbufs
[4];
2340 sci
->sc_nfreesegs
= argv
[4].v_nmembs
;
2341 list_splice_tail_init(&nilfs
->ns_gc_inodes
, &sci
->sc_gc_inodes
);
2344 err
= nilfs_segctor_construct(sci
, SC_LSEG_SR
);
2345 nilfs_remove_written_gcinodes(nilfs
, &sci
->sc_gc_inodes
);
2350 nilfs_warning(sb
, __func__
,
2351 "segment construction failed. (err=%d)", err
);
2352 set_current_state(TASK_INTERRUPTIBLE
);
2353 schedule_timeout(sci
->sc_interval
);
2355 if (nilfs_test_opt(nilfs
, DISCARD
)) {
2356 int ret
= nilfs_discard_segments(nilfs
, sci
->sc_freesegs
,
2360 "NILFS warning: error %d on discard request, "
2361 "turning discards off for the device\n", ret
);
2362 nilfs_clear_opt(nilfs
, DISCARD
);
2367 sci
->sc_freesegs
= NULL
;
2368 sci
->sc_nfreesegs
= 0;
2369 nilfs_mdt_clear_shadow_map(nilfs
->ns_dat
);
2370 nilfs_transaction_unlock(sb
);
2374 static void nilfs_segctor_thread_construct(struct nilfs_sc_info
*sci
, int mode
)
2376 struct nilfs_transaction_info ti
;
2378 nilfs_transaction_lock(sci
->sc_super
, &ti
, 0);
2379 nilfs_segctor_construct(sci
, mode
);
2382 * Unclosed segment should be retried. We do this using sc_timer.
2383 * Timeout of sc_timer will invoke complete construction which leads
2384 * to close the current logical segment.
2386 if (test_bit(NILFS_SC_UNCLOSED
, &sci
->sc_flags
))
2387 nilfs_segctor_start_timer(sci
);
2389 nilfs_transaction_unlock(sci
->sc_super
);
2392 static void nilfs_segctor_do_immediate_flush(struct nilfs_sc_info
*sci
)
2397 spin_lock(&sci
->sc_state_lock
);
2398 mode
= (sci
->sc_flush_request
& FLUSH_DAT_BIT
) ?
2399 SC_FLUSH_DAT
: SC_FLUSH_FILE
;
2400 spin_unlock(&sci
->sc_state_lock
);
2403 err
= nilfs_segctor_do_construct(sci
, mode
);
2405 spin_lock(&sci
->sc_state_lock
);
2406 sci
->sc_flush_request
&= (mode
== SC_FLUSH_FILE
) ?
2407 ~FLUSH_FILE_BIT
: ~FLUSH_DAT_BIT
;
2408 spin_unlock(&sci
->sc_state_lock
);
2410 clear_bit(NILFS_SC_PRIOR_FLUSH
, &sci
->sc_flags
);
2413 static int nilfs_segctor_flush_mode(struct nilfs_sc_info
*sci
)
2415 if (!test_bit(NILFS_SC_UNCLOSED
, &sci
->sc_flags
) ||
2416 time_before(jiffies
, sci
->sc_lseg_stime
+ sci
->sc_mjcp_freq
)) {
2417 if (!(sci
->sc_flush_request
& ~FLUSH_FILE_BIT
))
2418 return SC_FLUSH_FILE
;
2419 else if (!(sci
->sc_flush_request
& ~FLUSH_DAT_BIT
))
2420 return SC_FLUSH_DAT
;
2426 * nilfs_segctor_thread - main loop of the segment constructor thread.
2427 * @arg: pointer to a struct nilfs_sc_info.
2429 * nilfs_segctor_thread() initializes a timer and serves as a daemon
2430 * to execute segment constructions.
2432 static int nilfs_segctor_thread(void *arg
)
2434 struct nilfs_sc_info
*sci
= (struct nilfs_sc_info
*)arg
;
2435 struct the_nilfs
*nilfs
= sci
->sc_super
->s_fs_info
;
2438 sci
->sc_timer
.data
= (unsigned long)current
;
2439 sci
->sc_timer
.function
= nilfs_construction_timeout
;
2442 sci
->sc_task
= current
;
2443 wake_up(&sci
->sc_wait_task
); /* for nilfs_segctor_start_thread() */
2445 "segctord starting. Construction interval = %lu seconds, "
2446 "CP frequency < %lu seconds\n",
2447 sci
->sc_interval
/ HZ
, sci
->sc_mjcp_freq
/ HZ
);
2449 spin_lock(&sci
->sc_state_lock
);
2454 if (sci
->sc_state
& NILFS_SEGCTOR_QUIT
)
2457 if (timeout
|| sci
->sc_seq_request
!= sci
->sc_seq_done
)
2459 else if (!sci
->sc_flush_request
)
2462 mode
= nilfs_segctor_flush_mode(sci
);
2464 spin_unlock(&sci
->sc_state_lock
);
2465 nilfs_segctor_thread_construct(sci
, mode
);
2466 spin_lock(&sci
->sc_state_lock
);
2471 if (freezing(current
)) {
2472 spin_unlock(&sci
->sc_state_lock
);
2474 spin_lock(&sci
->sc_state_lock
);
2477 int should_sleep
= 1;
2479 prepare_to_wait(&sci
->sc_wait_daemon
, &wait
,
2480 TASK_INTERRUPTIBLE
);
2482 if (sci
->sc_seq_request
!= sci
->sc_seq_done
)
2484 else if (sci
->sc_flush_request
)
2486 else if (sci
->sc_state
& NILFS_SEGCTOR_COMMIT
)
2487 should_sleep
= time_before(jiffies
,
2488 sci
->sc_timer
.expires
);
2491 spin_unlock(&sci
->sc_state_lock
);
2493 spin_lock(&sci
->sc_state_lock
);
2495 finish_wait(&sci
->sc_wait_daemon
, &wait
);
2496 timeout
= ((sci
->sc_state
& NILFS_SEGCTOR_COMMIT
) &&
2497 time_after_eq(jiffies
, sci
->sc_timer
.expires
));
2499 if (nilfs_sb_dirty(nilfs
) && nilfs_sb_need_update(nilfs
))
2500 set_nilfs_discontinued(nilfs
);
2505 spin_unlock(&sci
->sc_state_lock
);
2508 sci
->sc_task
= NULL
;
2509 wake_up(&sci
->sc_wait_task
); /* for nilfs_segctor_kill_thread() */
2513 static int nilfs_segctor_start_thread(struct nilfs_sc_info
*sci
)
2515 struct task_struct
*t
;
2517 t
= kthread_run(nilfs_segctor_thread
, sci
, "segctord");
2519 int err
= PTR_ERR(t
);
2521 printk(KERN_ERR
"NILFS: error %d creating segctord thread\n",
2525 wait_event(sci
->sc_wait_task
, sci
->sc_task
!= NULL
);
2529 static void nilfs_segctor_kill_thread(struct nilfs_sc_info
*sci
)
2530 __acquires(&sci
->sc_state_lock
)
2531 __releases(&sci
->sc_state_lock
)
2533 sci
->sc_state
|= NILFS_SEGCTOR_QUIT
;
2535 while (sci
->sc_task
) {
2536 wake_up(&sci
->sc_wait_daemon
);
2537 spin_unlock(&sci
->sc_state_lock
);
2538 wait_event(sci
->sc_wait_task
, sci
->sc_task
== NULL
);
2539 spin_lock(&sci
->sc_state_lock
);
2544 * Setup & clean-up functions
2546 static struct nilfs_sc_info
*nilfs_segctor_new(struct super_block
*sb
,
2547 struct nilfs_root
*root
)
2549 struct the_nilfs
*nilfs
= sb
->s_fs_info
;
2550 struct nilfs_sc_info
*sci
;
2552 sci
= kzalloc(sizeof(*sci
), GFP_KERNEL
);
2558 nilfs_get_root(root
);
2559 sci
->sc_root
= root
;
2561 init_waitqueue_head(&sci
->sc_wait_request
);
2562 init_waitqueue_head(&sci
->sc_wait_daemon
);
2563 init_waitqueue_head(&sci
->sc_wait_task
);
2564 spin_lock_init(&sci
->sc_state_lock
);
2565 INIT_LIST_HEAD(&sci
->sc_dirty_files
);
2566 INIT_LIST_HEAD(&sci
->sc_segbufs
);
2567 INIT_LIST_HEAD(&sci
->sc_write_logs
);
2568 INIT_LIST_HEAD(&sci
->sc_gc_inodes
);
2569 init_timer(&sci
->sc_timer
);
2571 sci
->sc_interval
= HZ
* NILFS_SC_DEFAULT_TIMEOUT
;
2572 sci
->sc_mjcp_freq
= HZ
* NILFS_SC_DEFAULT_SR_FREQ
;
2573 sci
->sc_watermark
= NILFS_SC_DEFAULT_WATERMARK
;
2575 if (nilfs
->ns_interval
)
2576 sci
->sc_interval
= HZ
* nilfs
->ns_interval
;
2577 if (nilfs
->ns_watermark
)
2578 sci
->sc_watermark
= nilfs
->ns_watermark
;
2582 static void nilfs_segctor_write_out(struct nilfs_sc_info
*sci
)
2584 int ret
, retrycount
= NILFS_SC_CLEANUP_RETRY
;
2586 /* The segctord thread was stopped and its timer was removed.
2587 But some tasks remain. */
2589 struct nilfs_transaction_info ti
;
2591 nilfs_transaction_lock(sci
->sc_super
, &ti
, 0);
2592 ret
= nilfs_segctor_construct(sci
, SC_LSEG_SR
);
2593 nilfs_transaction_unlock(sci
->sc_super
);
2595 } while (ret
&& retrycount
-- > 0);
2599 * nilfs_segctor_destroy - destroy the segment constructor.
2600 * @sci: nilfs_sc_info
2602 * nilfs_segctor_destroy() kills the segctord thread and frees
2603 * the nilfs_sc_info struct.
2604 * Caller must hold the segment semaphore.
2606 static void nilfs_segctor_destroy(struct nilfs_sc_info
*sci
)
2608 struct the_nilfs
*nilfs
= sci
->sc_super
->s_fs_info
;
2611 up_write(&nilfs
->ns_segctor_sem
);
2613 spin_lock(&sci
->sc_state_lock
);
2614 nilfs_segctor_kill_thread(sci
);
2615 flag
= ((sci
->sc_state
& NILFS_SEGCTOR_COMMIT
) || sci
->sc_flush_request
2616 || sci
->sc_seq_request
!= sci
->sc_seq_done
);
2617 spin_unlock(&sci
->sc_state_lock
);
2619 if (flag
|| !nilfs_segctor_confirm(sci
))
2620 nilfs_segctor_write_out(sci
);
2622 if (!list_empty(&sci
->sc_dirty_files
)) {
2623 nilfs_warning(sci
->sc_super
, __func__
,
2624 "dirty file(s) after the final construction\n");
2625 nilfs_dispose_list(nilfs
, &sci
->sc_dirty_files
, 1);
2628 WARN_ON(!list_empty(&sci
->sc_segbufs
));
2629 WARN_ON(!list_empty(&sci
->sc_write_logs
));
2631 nilfs_put_root(sci
->sc_root
);
2633 down_write(&nilfs
->ns_segctor_sem
);
2635 del_timer_sync(&sci
->sc_timer
);
2640 * nilfs_attach_log_writer - attach log writer
2641 * @sb: super block instance
2642 * @root: root object of the current filesystem tree
2644 * This allocates a log writer object, initializes it, and starts the
2647 * Return Value: On success, 0 is returned. On error, one of the following
2648 * negative error code is returned.
2650 * %-ENOMEM - Insufficient memory available.
2652 int nilfs_attach_log_writer(struct super_block
*sb
, struct nilfs_root
*root
)
2654 struct the_nilfs
*nilfs
= sb
->s_fs_info
;
2657 if (nilfs
->ns_writer
) {
2659 * This happens if the filesystem was remounted
2660 * read/write after nilfs_error degenerated it into a
2663 nilfs_detach_log_writer(sb
);
2666 nilfs
->ns_writer
= nilfs_segctor_new(sb
, root
);
2667 if (!nilfs
->ns_writer
)
2670 err
= nilfs_segctor_start_thread(nilfs
->ns_writer
);
2672 kfree(nilfs
->ns_writer
);
2673 nilfs
->ns_writer
= NULL
;
2679 * nilfs_detach_log_writer - destroy log writer
2680 * @sb: super block instance
2682 * This kills log writer daemon, frees the log writer object, and
2683 * destroys list of dirty files.
2685 void nilfs_detach_log_writer(struct super_block
*sb
)
2687 struct the_nilfs
*nilfs
= sb
->s_fs_info
;
2688 LIST_HEAD(garbage_list
);
2690 down_write(&nilfs
->ns_segctor_sem
);
2691 if (nilfs
->ns_writer
) {
2692 nilfs_segctor_destroy(nilfs
->ns_writer
);
2693 nilfs
->ns_writer
= NULL
;
2696 /* Force to free the list of dirty files */
2697 spin_lock(&nilfs
->ns_inode_lock
);
2698 if (!list_empty(&nilfs
->ns_dirty_files
)) {
2699 list_splice_init(&nilfs
->ns_dirty_files
, &garbage_list
);
2700 nilfs_warning(sb
, __func__
,
2701 "Hit dirty file after stopped log writer\n");
2703 spin_unlock(&nilfs
->ns_inode_lock
);
2704 up_write(&nilfs
->ns_segctor_sem
);
2706 nilfs_dispose_list(nilfs
, &garbage_list
, 1);