segment.c 75 KB

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  1. /*
  2. * segment.c - NILFS segment constructor.
  3. *
  4. * Copyright (C) 2005-2008 Nippon Telegraph and Telephone Corporation.
  5. *
  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.
  10. *
  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.
  15. *
  16. * Written by Ryusuke Konishi.
  17. *
  18. */
  19. #include <linux/pagemap.h>
  20. #include <linux/buffer_head.h>
  21. #include <linux/writeback.h>
  22. #include <linux/bitops.h>
  23. #include <linux/bio.h>
  24. #include <linux/completion.h>
  25. #include <linux/blkdev.h>
  26. #include <linux/backing-dev.h>
  27. #include <linux/freezer.h>
  28. #include <linux/kthread.h>
  29. #include <linux/crc32.h>
  30. #include <linux/pagevec.h>
  31. #include <linux/slab.h>
  32. #include <linux/sched/signal.h>
  33. #include "nilfs.h"
  34. #include "btnode.h"
  35. #include "page.h"
  36. #include "segment.h"
  37. #include "sufile.h"
  38. #include "cpfile.h"
  39. #include "ifile.h"
  40. #include "segbuf.h"
  41. /*
  42. * Segment constructor
  43. */
  44. #define SC_N_INODEVEC 16 /* Size of locally allocated inode vector */
  45. #define SC_MAX_SEGDELTA 64 /*
  46. * Upper limit of the number of segments
  47. * appended in collection retry loop
  48. */
  49. /* Construction mode */
  50. enum {
  51. SC_LSEG_SR = 1, /* Make a logical segment having a super root */
  52. SC_LSEG_DSYNC, /*
  53. * Flush data blocks of a given file and make
  54. * a logical segment without a super root.
  55. */
  56. SC_FLUSH_FILE, /*
  57. * Flush data files, leads to segment writes without
  58. * creating a checkpoint.
  59. */
  60. SC_FLUSH_DAT, /*
  61. * Flush DAT file. This also creates segments
  62. * without a checkpoint.
  63. */
  64. };
  65. /* Stage numbers of dirty block collection */
  66. enum {
  67. NILFS_ST_INIT = 0,
  68. NILFS_ST_GC, /* Collecting dirty blocks for GC */
  69. NILFS_ST_FILE,
  70. NILFS_ST_IFILE,
  71. NILFS_ST_CPFILE,
  72. NILFS_ST_SUFILE,
  73. NILFS_ST_DAT,
  74. NILFS_ST_SR, /* Super root */
  75. NILFS_ST_DSYNC, /* Data sync blocks */
  76. NILFS_ST_DONE,
  77. };
  78. #define CREATE_TRACE_POINTS
  79. #include <trace/events/nilfs2.h>
  80. /*
  81. * nilfs_sc_cstage_inc(), nilfs_sc_cstage_set(), nilfs_sc_cstage_get() are
  82. * wrapper functions of stage count (nilfs_sc_info->sc_stage.scnt). Users of
  83. * the variable must use them because transition of stage count must involve
  84. * trace events (trace_nilfs2_collection_stage_transition).
  85. *
  86. * nilfs_sc_cstage_get() isn't required for the above purpose because it doesn't
  87. * produce tracepoint events. It is provided just for making the intention
  88. * clear.
  89. */
  90. static inline void nilfs_sc_cstage_inc(struct nilfs_sc_info *sci)
  91. {
  92. sci->sc_stage.scnt++;
  93. trace_nilfs2_collection_stage_transition(sci);
  94. }
  95. static inline void nilfs_sc_cstage_set(struct nilfs_sc_info *sci, int next_scnt)
  96. {
  97. sci->sc_stage.scnt = next_scnt;
  98. trace_nilfs2_collection_stage_transition(sci);
  99. }
  100. static inline int nilfs_sc_cstage_get(struct nilfs_sc_info *sci)
  101. {
  102. return sci->sc_stage.scnt;
  103. }
  104. /* State flags of collection */
  105. #define NILFS_CF_NODE 0x0001 /* Collecting node blocks */
  106. #define NILFS_CF_IFILE_STARTED 0x0002 /* IFILE stage has started */
  107. #define NILFS_CF_SUFREED 0x0004 /* segment usages has been freed */
  108. #define NILFS_CF_HISTORY_MASK (NILFS_CF_IFILE_STARTED | NILFS_CF_SUFREED)
  109. /* Operations depending on the construction mode and file type */
  110. struct nilfs_sc_operations {
  111. int (*collect_data)(struct nilfs_sc_info *, struct buffer_head *,
  112. struct inode *);
  113. int (*collect_node)(struct nilfs_sc_info *, struct buffer_head *,
  114. struct inode *);
  115. int (*collect_bmap)(struct nilfs_sc_info *, struct buffer_head *,
  116. struct inode *);
  117. void (*write_data_binfo)(struct nilfs_sc_info *,
  118. struct nilfs_segsum_pointer *,
  119. union nilfs_binfo *);
  120. void (*write_node_binfo)(struct nilfs_sc_info *,
  121. struct nilfs_segsum_pointer *,
  122. union nilfs_binfo *);
  123. };
  124. /*
  125. * Other definitions
  126. */
  127. static void nilfs_segctor_start_timer(struct nilfs_sc_info *);
  128. static void nilfs_segctor_do_flush(struct nilfs_sc_info *, int);
  129. static void nilfs_segctor_do_immediate_flush(struct nilfs_sc_info *);
  130. static void nilfs_dispose_list(struct the_nilfs *, struct list_head *, int);
  131. #define nilfs_cnt32_gt(a, b) \
  132. (typecheck(__u32, a) && typecheck(__u32, b) && \
  133. ((__s32)(b) - (__s32)(a) < 0))
  134. #define nilfs_cnt32_ge(a, b) \
  135. (typecheck(__u32, a) && typecheck(__u32, b) && \
  136. ((__s32)(a) - (__s32)(b) >= 0))
  137. #define nilfs_cnt32_lt(a, b) nilfs_cnt32_gt(b, a)
  138. #define nilfs_cnt32_le(a, b) nilfs_cnt32_ge(b, a)
  139. static int nilfs_prepare_segment_lock(struct super_block *sb,
  140. struct nilfs_transaction_info *ti)
  141. {
  142. struct nilfs_transaction_info *cur_ti = current->journal_info;
  143. void *save = NULL;
  144. if (cur_ti) {
  145. if (cur_ti->ti_magic == NILFS_TI_MAGIC)
  146. return ++cur_ti->ti_count;
  147. /*
  148. * If journal_info field is occupied by other FS,
  149. * it is saved and will be restored on
  150. * nilfs_transaction_commit().
  151. */
  152. nilfs_msg(sb, KERN_WARNING, "journal info from a different FS");
  153. save = current->journal_info;
  154. }
  155. if (!ti) {
  156. ti = kmem_cache_alloc(nilfs_transaction_cachep, GFP_NOFS);
  157. if (!ti)
  158. return -ENOMEM;
  159. ti->ti_flags = NILFS_TI_DYNAMIC_ALLOC;
  160. } else {
  161. ti->ti_flags = 0;
  162. }
  163. ti->ti_count = 0;
  164. ti->ti_save = save;
  165. ti->ti_magic = NILFS_TI_MAGIC;
  166. current->journal_info = ti;
  167. return 0;
  168. }
  169. /**
  170. * nilfs_transaction_begin - start indivisible file operations.
  171. * @sb: super block
  172. * @ti: nilfs_transaction_info
  173. * @vacancy_check: flags for vacancy rate checks
  174. *
  175. * nilfs_transaction_begin() acquires a reader/writer semaphore, called
  176. * the segment semaphore, to make a segment construction and write tasks
  177. * exclusive. The function is used with nilfs_transaction_commit() in pairs.
  178. * The region enclosed by these two functions can be nested. To avoid a
  179. * deadlock, the semaphore is only acquired or released in the outermost call.
  180. *
  181. * This function allocates a nilfs_transaction_info struct to keep context
  182. * information on it. It is initialized and hooked onto the current task in
  183. * the outermost call. If a pre-allocated struct is given to @ti, it is used
  184. * instead; otherwise a new struct is assigned from a slab.
  185. *
  186. * When @vacancy_check flag is set, this function will check the amount of
  187. * free space, and will wait for the GC to reclaim disk space if low capacity.
  188. *
  189. * Return Value: On success, 0 is returned. On error, one of the following
  190. * negative error code is returned.
  191. *
  192. * %-ENOMEM - Insufficient memory available.
  193. *
  194. * %-ENOSPC - No space left on device
  195. */
  196. int nilfs_transaction_begin(struct super_block *sb,
  197. struct nilfs_transaction_info *ti,
  198. int vacancy_check)
  199. {
  200. struct the_nilfs *nilfs;
  201. int ret = nilfs_prepare_segment_lock(sb, ti);
  202. struct nilfs_transaction_info *trace_ti;
  203. if (unlikely(ret < 0))
  204. return ret;
  205. if (ret > 0) {
  206. trace_ti = current->journal_info;
  207. trace_nilfs2_transaction_transition(sb, trace_ti,
  208. trace_ti->ti_count, trace_ti->ti_flags,
  209. TRACE_NILFS2_TRANSACTION_BEGIN);
  210. return 0;
  211. }
  212. sb_start_intwrite(sb);
  213. nilfs = sb->s_fs_info;
  214. down_read(&nilfs->ns_segctor_sem);
  215. if (vacancy_check && nilfs_near_disk_full(nilfs)) {
  216. up_read(&nilfs->ns_segctor_sem);
  217. ret = -ENOSPC;
  218. goto failed;
  219. }
  220. trace_ti = current->journal_info;
  221. trace_nilfs2_transaction_transition(sb, trace_ti, trace_ti->ti_count,
  222. trace_ti->ti_flags,
  223. TRACE_NILFS2_TRANSACTION_BEGIN);
  224. return 0;
  225. failed:
  226. ti = current->journal_info;
  227. current->journal_info = ti->ti_save;
  228. if (ti->ti_flags & NILFS_TI_DYNAMIC_ALLOC)
  229. kmem_cache_free(nilfs_transaction_cachep, ti);
  230. sb_end_intwrite(sb);
  231. return ret;
  232. }
  233. /**
  234. * nilfs_transaction_commit - commit indivisible file operations.
  235. * @sb: super block
  236. *
  237. * nilfs_transaction_commit() releases the read semaphore which is
  238. * acquired by nilfs_transaction_begin(). This is only performed
  239. * in outermost call of this function. If a commit flag is set,
  240. * nilfs_transaction_commit() sets a timer to start the segment
  241. * constructor. If a sync flag is set, it starts construction
  242. * directly.
  243. */
  244. int nilfs_transaction_commit(struct super_block *sb)
  245. {
  246. struct nilfs_transaction_info *ti = current->journal_info;
  247. struct the_nilfs *nilfs = sb->s_fs_info;
  248. int err = 0;
  249. BUG_ON(ti == NULL || ti->ti_magic != NILFS_TI_MAGIC);
  250. ti->ti_flags |= NILFS_TI_COMMIT;
  251. if (ti->ti_count > 0) {
  252. ti->ti_count--;
  253. trace_nilfs2_transaction_transition(sb, ti, ti->ti_count,
  254. ti->ti_flags, TRACE_NILFS2_TRANSACTION_COMMIT);
  255. return 0;
  256. }
  257. if (nilfs->ns_writer) {
  258. struct nilfs_sc_info *sci = nilfs->ns_writer;
  259. if (ti->ti_flags & NILFS_TI_COMMIT)
  260. nilfs_segctor_start_timer(sci);
  261. if (atomic_read(&nilfs->ns_ndirtyblks) > sci->sc_watermark)
  262. nilfs_segctor_do_flush(sci, 0);
  263. }
  264. up_read(&nilfs->ns_segctor_sem);
  265. trace_nilfs2_transaction_transition(sb, ti, ti->ti_count,
  266. ti->ti_flags, TRACE_NILFS2_TRANSACTION_COMMIT);
  267. current->journal_info = ti->ti_save;
  268. if (ti->ti_flags & NILFS_TI_SYNC)
  269. err = nilfs_construct_segment(sb);
  270. if (ti->ti_flags & NILFS_TI_DYNAMIC_ALLOC)
  271. kmem_cache_free(nilfs_transaction_cachep, ti);
  272. sb_end_intwrite(sb);
  273. return err;
  274. }
  275. void nilfs_transaction_abort(struct super_block *sb)
  276. {
  277. struct nilfs_transaction_info *ti = current->journal_info;
  278. struct the_nilfs *nilfs = sb->s_fs_info;
  279. BUG_ON(ti == NULL || ti->ti_magic != NILFS_TI_MAGIC);
  280. if (ti->ti_count > 0) {
  281. ti->ti_count--;
  282. trace_nilfs2_transaction_transition(sb, ti, ti->ti_count,
  283. ti->ti_flags, TRACE_NILFS2_TRANSACTION_ABORT);
  284. return;
  285. }
  286. up_read(&nilfs->ns_segctor_sem);
  287. trace_nilfs2_transaction_transition(sb, ti, ti->ti_count,
  288. ti->ti_flags, TRACE_NILFS2_TRANSACTION_ABORT);
  289. current->journal_info = ti->ti_save;
  290. if (ti->ti_flags & NILFS_TI_DYNAMIC_ALLOC)
  291. kmem_cache_free(nilfs_transaction_cachep, ti);
  292. sb_end_intwrite(sb);
  293. }
  294. void nilfs_relax_pressure_in_lock(struct super_block *sb)
  295. {
  296. struct the_nilfs *nilfs = sb->s_fs_info;
  297. struct nilfs_sc_info *sci = nilfs->ns_writer;
  298. if (!sci || !sci->sc_flush_request)
  299. return;
  300. set_bit(NILFS_SC_PRIOR_FLUSH, &sci->sc_flags);
  301. up_read(&nilfs->ns_segctor_sem);
  302. down_write(&nilfs->ns_segctor_sem);
  303. if (sci->sc_flush_request &&
  304. test_bit(NILFS_SC_PRIOR_FLUSH, &sci->sc_flags)) {
  305. struct nilfs_transaction_info *ti = current->journal_info;
  306. ti->ti_flags |= NILFS_TI_WRITER;
  307. nilfs_segctor_do_immediate_flush(sci);
  308. ti->ti_flags &= ~NILFS_TI_WRITER;
  309. }
  310. downgrade_write(&nilfs->ns_segctor_sem);
  311. }
  312. static void nilfs_transaction_lock(struct super_block *sb,
  313. struct nilfs_transaction_info *ti,
  314. int gcflag)
  315. {
  316. struct nilfs_transaction_info *cur_ti = current->journal_info;
  317. struct the_nilfs *nilfs = sb->s_fs_info;
  318. struct nilfs_sc_info *sci = nilfs->ns_writer;
  319. WARN_ON(cur_ti);
  320. ti->ti_flags = NILFS_TI_WRITER;
  321. ti->ti_count = 0;
  322. ti->ti_save = cur_ti;
  323. ti->ti_magic = NILFS_TI_MAGIC;
  324. current->journal_info = ti;
  325. for (;;) {
  326. trace_nilfs2_transaction_transition(sb, ti, ti->ti_count,
  327. ti->ti_flags, TRACE_NILFS2_TRANSACTION_TRYLOCK);
  328. down_write(&nilfs->ns_segctor_sem);
  329. if (!test_bit(NILFS_SC_PRIOR_FLUSH, &sci->sc_flags))
  330. break;
  331. nilfs_segctor_do_immediate_flush(sci);
  332. up_write(&nilfs->ns_segctor_sem);
  333. cond_resched();
  334. }
  335. if (gcflag)
  336. ti->ti_flags |= NILFS_TI_GC;
  337. trace_nilfs2_transaction_transition(sb, ti, ti->ti_count,
  338. ti->ti_flags, TRACE_NILFS2_TRANSACTION_LOCK);
  339. }
  340. static void nilfs_transaction_unlock(struct super_block *sb)
  341. {
  342. struct nilfs_transaction_info *ti = current->journal_info;
  343. struct the_nilfs *nilfs = sb->s_fs_info;
  344. BUG_ON(ti == NULL || ti->ti_magic != NILFS_TI_MAGIC);
  345. BUG_ON(ti->ti_count > 0);
  346. up_write(&nilfs->ns_segctor_sem);
  347. current->journal_info = ti->ti_save;
  348. trace_nilfs2_transaction_transition(sb, ti, ti->ti_count,
  349. ti->ti_flags, TRACE_NILFS2_TRANSACTION_UNLOCK);
  350. }
  351. static void *nilfs_segctor_map_segsum_entry(struct nilfs_sc_info *sci,
  352. struct nilfs_segsum_pointer *ssp,
  353. unsigned int bytes)
  354. {
  355. struct nilfs_segment_buffer *segbuf = sci->sc_curseg;
  356. unsigned int blocksize = sci->sc_super->s_blocksize;
  357. void *p;
  358. if (unlikely(ssp->offset + bytes > blocksize)) {
  359. ssp->offset = 0;
  360. BUG_ON(NILFS_SEGBUF_BH_IS_LAST(ssp->bh,
  361. &segbuf->sb_segsum_buffers));
  362. ssp->bh = NILFS_SEGBUF_NEXT_BH(ssp->bh);
  363. }
  364. p = ssp->bh->b_data + ssp->offset;
  365. ssp->offset += bytes;
  366. return p;
  367. }
  368. /**
  369. * nilfs_segctor_reset_segment_buffer - reset the current segment buffer
  370. * @sci: nilfs_sc_info
  371. */
  372. static int nilfs_segctor_reset_segment_buffer(struct nilfs_sc_info *sci)
  373. {
  374. struct nilfs_segment_buffer *segbuf = sci->sc_curseg;
  375. struct buffer_head *sumbh;
  376. unsigned int sumbytes;
  377. unsigned int flags = 0;
  378. int err;
  379. if (nilfs_doing_gc())
  380. flags = NILFS_SS_GC;
  381. err = nilfs_segbuf_reset(segbuf, flags, sci->sc_seg_ctime, sci->sc_cno);
  382. if (unlikely(err))
  383. return err;
  384. sumbh = NILFS_SEGBUF_FIRST_BH(&segbuf->sb_segsum_buffers);
  385. sumbytes = segbuf->sb_sum.sumbytes;
  386. sci->sc_finfo_ptr.bh = sumbh; sci->sc_finfo_ptr.offset = sumbytes;
  387. sci->sc_binfo_ptr.bh = sumbh; sci->sc_binfo_ptr.offset = sumbytes;
  388. sci->sc_blk_cnt = sci->sc_datablk_cnt = 0;
  389. return 0;
  390. }
  391. static int nilfs_segctor_feed_segment(struct nilfs_sc_info *sci)
  392. {
  393. sci->sc_nblk_this_inc += sci->sc_curseg->sb_sum.nblocks;
  394. if (NILFS_SEGBUF_IS_LAST(sci->sc_curseg, &sci->sc_segbufs))
  395. return -E2BIG; /*
  396. * The current segment is filled up
  397. * (internal code)
  398. */
  399. sci->sc_curseg = NILFS_NEXT_SEGBUF(sci->sc_curseg);
  400. return nilfs_segctor_reset_segment_buffer(sci);
  401. }
  402. static int nilfs_segctor_add_super_root(struct nilfs_sc_info *sci)
  403. {
  404. struct nilfs_segment_buffer *segbuf = sci->sc_curseg;
  405. int err;
  406. if (segbuf->sb_sum.nblocks >= segbuf->sb_rest_blocks) {
  407. err = nilfs_segctor_feed_segment(sci);
  408. if (err)
  409. return err;
  410. segbuf = sci->sc_curseg;
  411. }
  412. err = nilfs_segbuf_extend_payload(segbuf, &segbuf->sb_super_root);
  413. if (likely(!err))
  414. segbuf->sb_sum.flags |= NILFS_SS_SR;
  415. return err;
  416. }
  417. /*
  418. * Functions for making segment summary and payloads
  419. */
  420. static int nilfs_segctor_segsum_block_required(
  421. struct nilfs_sc_info *sci, const struct nilfs_segsum_pointer *ssp,
  422. unsigned int binfo_size)
  423. {
  424. unsigned int blocksize = sci->sc_super->s_blocksize;
  425. /* Size of finfo and binfo is enough small against blocksize */
  426. return ssp->offset + binfo_size +
  427. (!sci->sc_blk_cnt ? sizeof(struct nilfs_finfo) : 0) >
  428. blocksize;
  429. }
  430. static void nilfs_segctor_begin_finfo(struct nilfs_sc_info *sci,
  431. struct inode *inode)
  432. {
  433. sci->sc_curseg->sb_sum.nfinfo++;
  434. sci->sc_binfo_ptr = sci->sc_finfo_ptr;
  435. nilfs_segctor_map_segsum_entry(
  436. sci, &sci->sc_binfo_ptr, sizeof(struct nilfs_finfo));
  437. if (NILFS_I(inode)->i_root &&
  438. !test_bit(NILFS_SC_HAVE_DELTA, &sci->sc_flags))
  439. set_bit(NILFS_SC_HAVE_DELTA, &sci->sc_flags);
  440. /* skip finfo */
  441. }
  442. static void nilfs_segctor_end_finfo(struct nilfs_sc_info *sci,
  443. struct inode *inode)
  444. {
  445. struct nilfs_finfo *finfo;
  446. struct nilfs_inode_info *ii;
  447. struct nilfs_segment_buffer *segbuf;
  448. __u64 cno;
  449. if (sci->sc_blk_cnt == 0)
  450. return;
  451. ii = NILFS_I(inode);
  452. if (test_bit(NILFS_I_GCINODE, &ii->i_state))
  453. cno = ii->i_cno;
  454. else if (NILFS_ROOT_METADATA_FILE(inode->i_ino))
  455. cno = 0;
  456. else
  457. cno = sci->sc_cno;
  458. finfo = nilfs_segctor_map_segsum_entry(sci, &sci->sc_finfo_ptr,
  459. sizeof(*finfo));
  460. finfo->fi_ino = cpu_to_le64(inode->i_ino);
  461. finfo->fi_nblocks = cpu_to_le32(sci->sc_blk_cnt);
  462. finfo->fi_ndatablk = cpu_to_le32(sci->sc_datablk_cnt);
  463. 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;
  469. }
  470. static int nilfs_segctor_add_file_block(struct nilfs_sc_info *sci,
  471. struct buffer_head *bh,
  472. struct inode *inode,
  473. unsigned int binfo_size)
  474. {
  475. struct nilfs_segment_buffer *segbuf;
  476. int required, err = 0;
  477. retry:
  478. segbuf = sci->sc_curseg;
  479. required = nilfs_segctor_segsum_block_required(
  480. sci, &sci->sc_binfo_ptr, binfo_size);
  481. if (segbuf->sb_sum.nblocks + required + 1 > segbuf->sb_rest_blocks) {
  482. nilfs_segctor_end_finfo(sci, inode);
  483. err = nilfs_segctor_feed_segment(sci);
  484. if (err)
  485. return err;
  486. goto retry;
  487. }
  488. if (unlikely(required)) {
  489. err = nilfs_segbuf_extend_segsum(segbuf);
  490. if (unlikely(err))
  491. goto failed;
  492. }
  493. if (sci->sc_blk_cnt == 0)
  494. nilfs_segctor_begin_finfo(sci, inode);
  495. nilfs_segctor_map_segsum_entry(sci, &sci->sc_binfo_ptr, binfo_size);
  496. /* Substitution to vblocknr is delayed until update_blocknr() */
  497. nilfs_segbuf_add_file_buffer(segbuf, bh);
  498. sci->sc_blk_cnt++;
  499. failed:
  500. return err;
  501. }
  502. /*
  503. * Callback functions that enumerate, mark, and collect dirty blocks
  504. */
  505. static int nilfs_collect_file_data(struct nilfs_sc_info *sci,
  506. struct buffer_head *bh, struct inode *inode)
  507. {
  508. int err;
  509. err = nilfs_bmap_propagate(NILFS_I(inode)->i_bmap, bh);
  510. if (err < 0)
  511. return err;
  512. err = nilfs_segctor_add_file_block(sci, bh, inode,
  513. sizeof(struct nilfs_binfo_v));
  514. if (!err)
  515. sci->sc_datablk_cnt++;
  516. return err;
  517. }
  518. static int nilfs_collect_file_node(struct nilfs_sc_info *sci,
  519. struct buffer_head *bh,
  520. struct inode *inode)
  521. {
  522. return nilfs_bmap_propagate(NILFS_I(inode)->i_bmap, bh);
  523. }
  524. static int nilfs_collect_file_bmap(struct nilfs_sc_info *sci,
  525. struct buffer_head *bh,
  526. struct inode *inode)
  527. {
  528. WARN_ON(!buffer_dirty(bh));
  529. return nilfs_segctor_add_file_block(sci, bh, inode, sizeof(__le64));
  530. }
  531. static void nilfs_write_file_data_binfo(struct nilfs_sc_info *sci,
  532. struct nilfs_segsum_pointer *ssp,
  533. union nilfs_binfo *binfo)
  534. {
  535. struct nilfs_binfo_v *binfo_v = nilfs_segctor_map_segsum_entry(
  536. sci, ssp, sizeof(*binfo_v));
  537. *binfo_v = binfo->bi_v;
  538. }
  539. static void nilfs_write_file_node_binfo(struct nilfs_sc_info *sci,
  540. struct nilfs_segsum_pointer *ssp,
  541. union nilfs_binfo *binfo)
  542. {
  543. __le64 *vblocknr = nilfs_segctor_map_segsum_entry(
  544. sci, ssp, sizeof(*vblocknr));
  545. *vblocknr = binfo->bi_v.bi_vblocknr;
  546. }
  547. static const struct nilfs_sc_operations nilfs_sc_file_ops = {
  548. .collect_data = nilfs_collect_file_data,
  549. .collect_node = nilfs_collect_file_node,
  550. .collect_bmap = nilfs_collect_file_bmap,
  551. .write_data_binfo = nilfs_write_file_data_binfo,
  552. .write_node_binfo = nilfs_write_file_node_binfo,
  553. };
  554. static int nilfs_collect_dat_data(struct nilfs_sc_info *sci,
  555. struct buffer_head *bh, struct inode *inode)
  556. {
  557. int err;
  558. err = nilfs_bmap_propagate(NILFS_I(inode)->i_bmap, bh);
  559. if (err < 0)
  560. return err;
  561. err = nilfs_segctor_add_file_block(sci, bh, inode, sizeof(__le64));
  562. if (!err)
  563. sci->sc_datablk_cnt++;
  564. return err;
  565. }
  566. static int nilfs_collect_dat_bmap(struct nilfs_sc_info *sci,
  567. struct buffer_head *bh, struct inode *inode)
  568. {
  569. WARN_ON(!buffer_dirty(bh));
  570. return nilfs_segctor_add_file_block(sci, bh, inode,
  571. sizeof(struct nilfs_binfo_dat));
  572. }
  573. static void nilfs_write_dat_data_binfo(struct nilfs_sc_info *sci,
  574. struct nilfs_segsum_pointer *ssp,
  575. union nilfs_binfo *binfo)
  576. {
  577. __le64 *blkoff = nilfs_segctor_map_segsum_entry(sci, ssp,
  578. sizeof(*blkoff));
  579. *blkoff = binfo->bi_dat.bi_blkoff;
  580. }
  581. static void nilfs_write_dat_node_binfo(struct nilfs_sc_info *sci,
  582. struct nilfs_segsum_pointer *ssp,
  583. union nilfs_binfo *binfo)
  584. {
  585. struct nilfs_binfo_dat *binfo_dat =
  586. nilfs_segctor_map_segsum_entry(sci, ssp, sizeof(*binfo_dat));
  587. *binfo_dat = binfo->bi_dat;
  588. }
  589. static const struct nilfs_sc_operations nilfs_sc_dat_ops = {
  590. .collect_data = nilfs_collect_dat_data,
  591. .collect_node = nilfs_collect_file_node,
  592. .collect_bmap = nilfs_collect_dat_bmap,
  593. .write_data_binfo = nilfs_write_dat_data_binfo,
  594. .write_node_binfo = nilfs_write_dat_node_binfo,
  595. };
  596. static const struct nilfs_sc_operations nilfs_sc_dsync_ops = {
  597. .collect_data = nilfs_collect_file_data,
  598. .collect_node = NULL,
  599. .collect_bmap = NULL,
  600. .write_data_binfo = nilfs_write_file_data_binfo,
  601. .write_node_binfo = NULL,
  602. };
  603. static size_t nilfs_lookup_dirty_data_buffers(struct inode *inode,
  604. struct list_head *listp,
  605. size_t nlimit,
  606. loff_t start, loff_t end)
  607. {
  608. struct address_space *mapping = inode->i_mapping;
  609. struct pagevec pvec;
  610. pgoff_t index = 0, last = ULONG_MAX;
  611. size_t ndirties = 0;
  612. int i;
  613. if (unlikely(start != 0 || end != LLONG_MAX)) {
  614. /*
  615. * A valid range is given for sync-ing data pages. The
  616. * range is rounded to per-page; extra dirty buffers
  617. * may be included if blocksize < pagesize.
  618. */
  619. index = start >> PAGE_SHIFT;
  620. last = end >> PAGE_SHIFT;
  621. }
  622. pagevec_init(&pvec);
  623. repeat:
  624. if (unlikely(index > last) ||
  625. !pagevec_lookup_range_tag(&pvec, mapping, &index, last,
  626. PAGECACHE_TAG_DIRTY))
  627. return ndirties;
  628. for (i = 0; i < pagevec_count(&pvec); i++) {
  629. struct buffer_head *bh, *head;
  630. struct page *page = pvec.pages[i];
  631. lock_page(page);
  632. if (!page_has_buffers(page))
  633. create_empty_buffers(page, i_blocksize(inode), 0);
  634. unlock_page(page);
  635. bh = head = page_buffers(page);
  636. do {
  637. if (!buffer_dirty(bh) || buffer_async_write(bh))
  638. continue;
  639. get_bh(bh);
  640. list_add_tail(&bh->b_assoc_buffers, listp);
  641. ndirties++;
  642. if (unlikely(ndirties >= nlimit)) {
  643. pagevec_release(&pvec);
  644. cond_resched();
  645. return ndirties;
  646. }
  647. } while (bh = bh->b_this_page, bh != head);
  648. }
  649. pagevec_release(&pvec);
  650. cond_resched();
  651. goto repeat;
  652. }
  653. static void nilfs_lookup_dirty_node_buffers(struct inode *inode,
  654. struct list_head *listp)
  655. {
  656. struct nilfs_inode_info *ii = NILFS_I(inode);
  657. struct address_space *mapping = &ii->i_btnode_cache;
  658. struct pagevec pvec;
  659. struct buffer_head *bh, *head;
  660. unsigned int i;
  661. pgoff_t index = 0;
  662. pagevec_init(&pvec);
  663. while (pagevec_lookup_tag(&pvec, mapping, &index,
  664. PAGECACHE_TAG_DIRTY)) {
  665. for (i = 0; i < pagevec_count(&pvec); i++) {
  666. bh = head = page_buffers(pvec.pages[i]);
  667. do {
  668. if (buffer_dirty(bh) &&
  669. !buffer_async_write(bh)) {
  670. get_bh(bh);
  671. list_add_tail(&bh->b_assoc_buffers,
  672. listp);
  673. }
  674. bh = bh->b_this_page;
  675. } while (bh != head);
  676. }
  677. pagevec_release(&pvec);
  678. cond_resched();
  679. }
  680. }
  681. static void nilfs_dispose_list(struct the_nilfs *nilfs,
  682. struct list_head *head, int force)
  683. {
  684. struct nilfs_inode_info *ii, *n;
  685. struct nilfs_inode_info *ivec[SC_N_INODEVEC], **pii;
  686. unsigned int nv = 0;
  687. while (!list_empty(head)) {
  688. spin_lock(&nilfs->ns_inode_lock);
  689. list_for_each_entry_safe(ii, n, head, i_dirty) {
  690. list_del_init(&ii->i_dirty);
  691. if (force) {
  692. if (unlikely(ii->i_bh)) {
  693. brelse(ii->i_bh);
  694. ii->i_bh = NULL;
  695. }
  696. } else if (test_bit(NILFS_I_DIRTY, &ii->i_state)) {
  697. set_bit(NILFS_I_QUEUED, &ii->i_state);
  698. list_add_tail(&ii->i_dirty,
  699. &nilfs->ns_dirty_files);
  700. continue;
  701. }
  702. ivec[nv++] = ii;
  703. if (nv == SC_N_INODEVEC)
  704. break;
  705. }
  706. spin_unlock(&nilfs->ns_inode_lock);
  707. for (pii = ivec; nv > 0; pii++, nv--)
  708. iput(&(*pii)->vfs_inode);
  709. }
  710. }
  711. static void nilfs_iput_work_func(struct work_struct *work)
  712. {
  713. struct nilfs_sc_info *sci = container_of(work, struct nilfs_sc_info,
  714. sc_iput_work);
  715. struct the_nilfs *nilfs = sci->sc_super->s_fs_info;
  716. nilfs_dispose_list(nilfs, &sci->sc_iput_queue, 0);
  717. }
  718. static int nilfs_test_metadata_dirty(struct the_nilfs *nilfs,
  719. struct nilfs_root *root)
  720. {
  721. int ret = 0;
  722. if (nilfs_mdt_fetch_dirty(root->ifile))
  723. ret++;
  724. if (nilfs_mdt_fetch_dirty(nilfs->ns_cpfile))
  725. ret++;
  726. if (nilfs_mdt_fetch_dirty(nilfs->ns_sufile))
  727. ret++;
  728. if ((ret || nilfs_doing_gc()) && nilfs_mdt_fetch_dirty(nilfs->ns_dat))
  729. ret++;
  730. return ret;
  731. }
  732. static int nilfs_segctor_clean(struct nilfs_sc_info *sci)
  733. {
  734. return list_empty(&sci->sc_dirty_files) &&
  735. !test_bit(NILFS_SC_DIRTY, &sci->sc_flags) &&
  736. sci->sc_nfreesegs == 0 &&
  737. (!nilfs_doing_gc() || list_empty(&sci->sc_gc_inodes));
  738. }
  739. static int nilfs_segctor_confirm(struct nilfs_sc_info *sci)
  740. {
  741. struct the_nilfs *nilfs = sci->sc_super->s_fs_info;
  742. int ret = 0;
  743. if (nilfs_test_metadata_dirty(nilfs, sci->sc_root))
  744. set_bit(NILFS_SC_DIRTY, &sci->sc_flags);
  745. spin_lock(&nilfs->ns_inode_lock);
  746. if (list_empty(&nilfs->ns_dirty_files) && nilfs_segctor_clean(sci))
  747. ret++;
  748. spin_unlock(&nilfs->ns_inode_lock);
  749. return ret;
  750. }
  751. static void nilfs_segctor_clear_metadata_dirty(struct nilfs_sc_info *sci)
  752. {
  753. struct the_nilfs *nilfs = sci->sc_super->s_fs_info;
  754. nilfs_mdt_clear_dirty(sci->sc_root->ifile);
  755. nilfs_mdt_clear_dirty(nilfs->ns_cpfile);
  756. nilfs_mdt_clear_dirty(nilfs->ns_sufile);
  757. nilfs_mdt_clear_dirty(nilfs->ns_dat);
  758. }
  759. static int nilfs_segctor_create_checkpoint(struct nilfs_sc_info *sci)
  760. {
  761. struct the_nilfs *nilfs = sci->sc_super->s_fs_info;
  762. struct buffer_head *bh_cp;
  763. struct nilfs_checkpoint *raw_cp;
  764. int err;
  765. /* XXX: this interface will be changed */
  766. err = nilfs_cpfile_get_checkpoint(nilfs->ns_cpfile, nilfs->ns_cno, 1,
  767. &raw_cp, &bh_cp);
  768. if (likely(!err)) {
  769. /*
  770. * The following code is duplicated with cpfile. But, it is
  771. * needed to collect the checkpoint even if it was not newly
  772. * created.
  773. */
  774. mark_buffer_dirty(bh_cp);
  775. nilfs_mdt_mark_dirty(nilfs->ns_cpfile);
  776. nilfs_cpfile_put_checkpoint(
  777. nilfs->ns_cpfile, nilfs->ns_cno, bh_cp);
  778. } else
  779. WARN_ON(err == -EINVAL || err == -ENOENT);
  780. return err;
  781. }
  782. static int nilfs_segctor_fill_in_checkpoint(struct nilfs_sc_info *sci)
  783. {
  784. struct the_nilfs *nilfs = sci->sc_super->s_fs_info;
  785. struct buffer_head *bh_cp;
  786. struct nilfs_checkpoint *raw_cp;
  787. int err;
  788. err = nilfs_cpfile_get_checkpoint(nilfs->ns_cpfile, nilfs->ns_cno, 0,
  789. &raw_cp, &bh_cp);
  790. if (unlikely(err)) {
  791. WARN_ON(err == -EINVAL || err == -ENOENT);
  792. goto failed_ibh;
  793. }
  794. raw_cp->cp_snapshot_list.ssl_next = 0;
  795. raw_cp->cp_snapshot_list.ssl_prev = 0;
  796. raw_cp->cp_inodes_count =
  797. cpu_to_le64(atomic64_read(&sci->sc_root->inodes_count));
  798. raw_cp->cp_blocks_count =
  799. cpu_to_le64(atomic64_read(&sci->sc_root->blocks_count));
  800. raw_cp->cp_nblk_inc =
  801. cpu_to_le64(sci->sc_nblk_inc + sci->sc_nblk_this_inc);
  802. raw_cp->cp_create = cpu_to_le64(sci->sc_seg_ctime);
  803. raw_cp->cp_cno = cpu_to_le64(nilfs->ns_cno);
  804. if (test_bit(NILFS_SC_HAVE_DELTA, &sci->sc_flags))
  805. nilfs_checkpoint_clear_minor(raw_cp);
  806. else
  807. nilfs_checkpoint_set_minor(raw_cp);
  808. nilfs_write_inode_common(sci->sc_root->ifile,
  809. &raw_cp->cp_ifile_inode, 1);
  810. nilfs_cpfile_put_checkpoint(nilfs->ns_cpfile, nilfs->ns_cno, bh_cp);
  811. return 0;
  812. failed_ibh:
  813. return err;
  814. }
  815. static void nilfs_fill_in_file_bmap(struct inode *ifile,
  816. struct nilfs_inode_info *ii)
  817. {
  818. struct buffer_head *ibh;
  819. struct nilfs_inode *raw_inode;
  820. if (test_bit(NILFS_I_BMAP, &ii->i_state)) {
  821. ibh = ii->i_bh;
  822. BUG_ON(!ibh);
  823. raw_inode = nilfs_ifile_map_inode(ifile, ii->vfs_inode.i_ino,
  824. ibh);
  825. nilfs_bmap_write(ii->i_bmap, raw_inode);
  826. nilfs_ifile_unmap_inode(ifile, ii->vfs_inode.i_ino, ibh);
  827. }
  828. }
  829. static void nilfs_segctor_fill_in_file_bmap(struct nilfs_sc_info *sci)
  830. {
  831. struct nilfs_inode_info *ii;
  832. list_for_each_entry(ii, &sci->sc_dirty_files, i_dirty) {
  833. nilfs_fill_in_file_bmap(sci->sc_root->ifile, ii);
  834. set_bit(NILFS_I_COLLECTED, &ii->i_state);
  835. }
  836. }
  837. static void nilfs_segctor_fill_in_super_root(struct nilfs_sc_info *sci,
  838. struct the_nilfs *nilfs)
  839. {
  840. struct buffer_head *bh_sr;
  841. struct nilfs_super_root *raw_sr;
  842. unsigned int isz, srsz;
  843. bh_sr = NILFS_LAST_SEGBUF(&sci->sc_segbufs)->sb_super_root;
  844. raw_sr = (struct nilfs_super_root *)bh_sr->b_data;
  845. isz = nilfs->ns_inode_size;
  846. srsz = NILFS_SR_BYTES(isz);
  847. raw_sr->sr_bytes = cpu_to_le16(srsz);
  848. raw_sr->sr_nongc_ctime
  849. = cpu_to_le64(nilfs_doing_gc() ?
  850. nilfs->ns_nongc_ctime : sci->sc_seg_ctime);
  851. raw_sr->sr_flags = 0;
  852. nilfs_write_inode_common(nilfs->ns_dat, (void *)raw_sr +
  853. NILFS_SR_DAT_OFFSET(isz), 1);
  854. nilfs_write_inode_common(nilfs->ns_cpfile, (void *)raw_sr +
  855. NILFS_SR_CPFILE_OFFSET(isz), 1);
  856. nilfs_write_inode_common(nilfs->ns_sufile, (void *)raw_sr +
  857. NILFS_SR_SUFILE_OFFSET(isz), 1);
  858. memset((void *)raw_sr + srsz, 0, nilfs->ns_blocksize - srsz);
  859. }
  860. static void nilfs_redirty_inodes(struct list_head *head)
  861. {
  862. struct nilfs_inode_info *ii;
  863. list_for_each_entry(ii, head, i_dirty) {
  864. if (test_bit(NILFS_I_COLLECTED, &ii->i_state))
  865. clear_bit(NILFS_I_COLLECTED, &ii->i_state);
  866. }
  867. }
  868. static void nilfs_drop_collected_inodes(struct list_head *head)
  869. {
  870. struct nilfs_inode_info *ii;
  871. list_for_each_entry(ii, head, i_dirty) {
  872. if (!test_and_clear_bit(NILFS_I_COLLECTED, &ii->i_state))
  873. continue;
  874. clear_bit(NILFS_I_INODE_SYNC, &ii->i_state);
  875. set_bit(NILFS_I_UPDATED, &ii->i_state);
  876. }
  877. }
  878. static int nilfs_segctor_apply_buffers(struct nilfs_sc_info *sci,
  879. struct inode *inode,
  880. struct list_head *listp,
  881. int (*collect)(struct nilfs_sc_info *,
  882. struct buffer_head *,
  883. struct inode *))
  884. {
  885. struct buffer_head *bh, *n;
  886. int err = 0;
  887. if (collect) {
  888. list_for_each_entry_safe(bh, n, listp, b_assoc_buffers) {
  889. list_del_init(&bh->b_assoc_buffers);
  890. err = collect(sci, bh, inode);
  891. brelse(bh);
  892. if (unlikely(err))
  893. goto dispose_buffers;
  894. }
  895. return 0;
  896. }
  897. dispose_buffers:
  898. while (!list_empty(listp)) {
  899. bh = list_first_entry(listp, struct buffer_head,
  900. b_assoc_buffers);
  901. list_del_init(&bh->b_assoc_buffers);
  902. brelse(bh);
  903. }
  904. return err;
  905. }
  906. static size_t nilfs_segctor_buffer_rest(struct nilfs_sc_info *sci)
  907. {
  908. /* Remaining number of blocks within segment buffer */
  909. return sci->sc_segbuf_nblocks -
  910. (sci->sc_nblk_this_inc + sci->sc_curseg->sb_sum.nblocks);
  911. }
  912. static int nilfs_segctor_scan_file(struct nilfs_sc_info *sci,
  913. struct inode *inode,
  914. const struct nilfs_sc_operations *sc_ops)
  915. {
  916. LIST_HEAD(data_buffers);
  917. LIST_HEAD(node_buffers);
  918. int err;
  919. if (!(sci->sc_stage.flags & NILFS_CF_NODE)) {
  920. size_t n, rest = nilfs_segctor_buffer_rest(sci);
  921. n = nilfs_lookup_dirty_data_buffers(
  922. inode, &data_buffers, rest + 1, 0, LLONG_MAX);
  923. if (n > rest) {
  924. err = nilfs_segctor_apply_buffers(
  925. sci, inode, &data_buffers,
  926. sc_ops->collect_data);
  927. BUG_ON(!err); /* always receive -E2BIG or true error */
  928. goto break_or_fail;
  929. }
  930. }
  931. nilfs_lookup_dirty_node_buffers(inode, &node_buffers);
  932. if (!(sci->sc_stage.flags & NILFS_CF_NODE)) {
  933. err = nilfs_segctor_apply_buffers(
  934. sci, inode, &data_buffers, sc_ops->collect_data);
  935. if (unlikely(err)) {
  936. /* dispose node list */
  937. nilfs_segctor_apply_buffers(
  938. sci, inode, &node_buffers, NULL);
  939. goto break_or_fail;
  940. }
  941. sci->sc_stage.flags |= NILFS_CF_NODE;
  942. }
  943. /* Collect node */
  944. err = nilfs_segctor_apply_buffers(
  945. sci, inode, &node_buffers, sc_ops->collect_node);
  946. if (unlikely(err))
  947. goto break_or_fail;
  948. nilfs_bmap_lookup_dirty_buffers(NILFS_I(inode)->i_bmap, &node_buffers);
  949. err = nilfs_segctor_apply_buffers(
  950. sci, inode, &node_buffers, sc_ops->collect_bmap);
  951. if (unlikely(err))
  952. goto break_or_fail;
  953. nilfs_segctor_end_finfo(sci, inode);
  954. sci->sc_stage.flags &= ~NILFS_CF_NODE;
  955. break_or_fail:
  956. return err;
  957. }
  958. static int nilfs_segctor_scan_file_dsync(struct nilfs_sc_info *sci,
  959. struct inode *inode)
  960. {
  961. LIST_HEAD(data_buffers);
  962. size_t n, rest = nilfs_segctor_buffer_rest(sci);
  963. int err;
  964. n = nilfs_lookup_dirty_data_buffers(inode, &data_buffers, rest + 1,
  965. sci->sc_dsync_start,
  966. sci->sc_dsync_end);
  967. err = nilfs_segctor_apply_buffers(sci, inode, &data_buffers,
  968. nilfs_collect_file_data);
  969. if (!err) {
  970. nilfs_segctor_end_finfo(sci, inode);
  971. BUG_ON(n > rest);
  972. /* always receive -E2BIG or true error if n > rest */
  973. }
  974. return err;
  975. }
  976. static int nilfs_segctor_collect_blocks(struct nilfs_sc_info *sci, int mode)
  977. {
  978. struct the_nilfs *nilfs = sci->sc_super->s_fs_info;
  979. struct list_head *head;
  980. struct nilfs_inode_info *ii;
  981. size_t ndone;
  982. int err = 0;
  983. switch (nilfs_sc_cstage_get(sci)) {
  984. case NILFS_ST_INIT:
  985. /* Pre-processes */
  986. sci->sc_stage.flags = 0;
  987. if (!test_bit(NILFS_SC_UNCLOSED, &sci->sc_flags)) {
  988. sci->sc_nblk_inc = 0;
  989. sci->sc_curseg->sb_sum.flags = NILFS_SS_LOGBGN;
  990. if (mode == SC_LSEG_DSYNC) {
  991. nilfs_sc_cstage_set(sci, NILFS_ST_DSYNC);
  992. goto dsync_mode;
  993. }
  994. }
  995. sci->sc_stage.dirty_file_ptr = NULL;
  996. sci->sc_stage.gc_inode_ptr = NULL;
  997. if (mode == SC_FLUSH_DAT) {
  998. nilfs_sc_cstage_set(sci, NILFS_ST_DAT);
  999. goto dat_stage;
  1000. }
  1001. nilfs_sc_cstage_inc(sci); /* Fall through */
  1002. case NILFS_ST_GC:
  1003. if (nilfs_doing_gc()) {
  1004. head = &sci->sc_gc_inodes;
  1005. ii = list_prepare_entry(sci->sc_stage.gc_inode_ptr,
  1006. head, i_dirty);
  1007. list_for_each_entry_continue(ii, head, i_dirty) {
  1008. err = nilfs_segctor_scan_file(
  1009. sci, &ii->vfs_inode,
  1010. &nilfs_sc_file_ops);
  1011. if (unlikely(err)) {
  1012. sci->sc_stage.gc_inode_ptr = list_entry(
  1013. ii->i_dirty.prev,
  1014. struct nilfs_inode_info,
  1015. i_dirty);
  1016. goto break_or_fail;
  1017. }
  1018. set_bit(NILFS_I_COLLECTED, &ii->i_state);
  1019. }
  1020. sci->sc_stage.gc_inode_ptr = NULL;
  1021. }
  1022. nilfs_sc_cstage_inc(sci); /* Fall through */
  1023. case NILFS_ST_FILE:
  1024. head = &sci->sc_dirty_files;
  1025. ii = list_prepare_entry(sci->sc_stage.dirty_file_ptr, head,
  1026. i_dirty);
  1027. list_for_each_entry_continue(ii, head, i_dirty) {
  1028. clear_bit(NILFS_I_DIRTY, &ii->i_state);
  1029. err = nilfs_segctor_scan_file(sci, &ii->vfs_inode,
  1030. &nilfs_sc_file_ops);
  1031. if (unlikely(err)) {
  1032. sci->sc_stage.dirty_file_ptr =
  1033. list_entry(ii->i_dirty.prev,
  1034. struct nilfs_inode_info,
  1035. i_dirty);
  1036. goto break_or_fail;
  1037. }
  1038. /* sci->sc_stage.dirty_file_ptr = NILFS_I(inode); */
  1039. /* XXX: required ? */
  1040. }
  1041. sci->sc_stage.dirty_file_ptr = NULL;
  1042. if (mode == SC_FLUSH_FILE) {
  1043. nilfs_sc_cstage_set(sci, NILFS_ST_DONE);
  1044. return 0;
  1045. }
  1046. nilfs_sc_cstage_inc(sci);
  1047. sci->sc_stage.flags |= NILFS_CF_IFILE_STARTED;
  1048. /* Fall through */
  1049. case NILFS_ST_IFILE:
  1050. err = nilfs_segctor_scan_file(sci, sci->sc_root->ifile,
  1051. &nilfs_sc_file_ops);
  1052. if (unlikely(err))
  1053. break;
  1054. nilfs_sc_cstage_inc(sci);
  1055. /* Creating a checkpoint */
  1056. err = nilfs_segctor_create_checkpoint(sci);
  1057. if (unlikely(err))
  1058. break;
  1059. /* Fall through */
  1060. case NILFS_ST_CPFILE:
  1061. err = nilfs_segctor_scan_file(sci, nilfs->ns_cpfile,
  1062. &nilfs_sc_file_ops);
  1063. if (unlikely(err))
  1064. break;
  1065. nilfs_sc_cstage_inc(sci); /* Fall through */
  1066. case NILFS_ST_SUFILE:
  1067. err = nilfs_sufile_freev(nilfs->ns_sufile, sci->sc_freesegs,
  1068. sci->sc_nfreesegs, &ndone);
  1069. if (unlikely(err)) {
  1070. nilfs_sufile_cancel_freev(nilfs->ns_sufile,
  1071. sci->sc_freesegs, ndone,
  1072. NULL);
  1073. break;
  1074. }
  1075. sci->sc_stage.flags |= NILFS_CF_SUFREED;
  1076. err = nilfs_segctor_scan_file(sci, nilfs->ns_sufile,
  1077. &nilfs_sc_file_ops);
  1078. if (unlikely(err))
  1079. break;
  1080. nilfs_sc_cstage_inc(sci); /* Fall through */
  1081. case NILFS_ST_DAT:
  1082. dat_stage:
  1083. err = nilfs_segctor_scan_file(sci, nilfs->ns_dat,
  1084. &nilfs_sc_dat_ops);
  1085. if (unlikely(err))
  1086. break;
  1087. if (mode == SC_FLUSH_DAT) {
  1088. nilfs_sc_cstage_set(sci, NILFS_ST_DONE);
  1089. return 0;
  1090. }
  1091. nilfs_sc_cstage_inc(sci); /* Fall through */
  1092. case NILFS_ST_SR:
  1093. if (mode == SC_LSEG_SR) {
  1094. /* Appending a super root */
  1095. err = nilfs_segctor_add_super_root(sci);
  1096. if (unlikely(err))
  1097. break;
  1098. }
  1099. /* End of a logical segment */
  1100. sci->sc_curseg->sb_sum.flags |= NILFS_SS_LOGEND;
  1101. nilfs_sc_cstage_set(sci, NILFS_ST_DONE);
  1102. return 0;
  1103. case NILFS_ST_DSYNC:
  1104. dsync_mode:
  1105. sci->sc_curseg->sb_sum.flags |= NILFS_SS_SYNDT;
  1106. ii = sci->sc_dsync_inode;
  1107. if (!test_bit(NILFS_I_BUSY, &ii->i_state))
  1108. break;
  1109. err = nilfs_segctor_scan_file_dsync(sci, &ii->vfs_inode);
  1110. if (unlikely(err))
  1111. break;
  1112. sci->sc_curseg->sb_sum.flags |= NILFS_SS_LOGEND;
  1113. nilfs_sc_cstage_set(sci, NILFS_ST_DONE);
  1114. return 0;
  1115. case NILFS_ST_DONE:
  1116. return 0;
  1117. default:
  1118. BUG();
  1119. }
  1120. break_or_fail:
  1121. return err;
  1122. }
  1123. /**
  1124. * nilfs_segctor_begin_construction - setup segment buffer to make a new log
  1125. * @sci: nilfs_sc_info
  1126. * @nilfs: nilfs object
  1127. */
  1128. static int nilfs_segctor_begin_construction(struct nilfs_sc_info *sci,
  1129. struct the_nilfs *nilfs)
  1130. {
  1131. struct nilfs_segment_buffer *segbuf, *prev;
  1132. __u64 nextnum;
  1133. int err, alloc = 0;
  1134. segbuf = nilfs_segbuf_new(sci->sc_super);
  1135. if (unlikely(!segbuf))
  1136. return -ENOMEM;
  1137. if (list_empty(&sci->sc_write_logs)) {
  1138. nilfs_segbuf_map(segbuf, nilfs->ns_segnum,
  1139. nilfs->ns_pseg_offset, nilfs);
  1140. if (segbuf->sb_rest_blocks < NILFS_PSEG_MIN_BLOCKS) {
  1141. nilfs_shift_to_next_segment(nilfs);
  1142. nilfs_segbuf_map(segbuf, nilfs->ns_segnum, 0, nilfs);
  1143. }
  1144. segbuf->sb_sum.seg_seq = nilfs->ns_seg_seq;
  1145. nextnum = nilfs->ns_nextnum;
  1146. if (nilfs->ns_segnum == nilfs->ns_nextnum)
  1147. /* Start from the head of a new full segment */
  1148. alloc++;
  1149. } else {
  1150. /* Continue logs */
  1151. prev = NILFS_LAST_SEGBUF(&sci->sc_write_logs);
  1152. nilfs_segbuf_map_cont(segbuf, prev);
  1153. segbuf->sb_sum.seg_seq = prev->sb_sum.seg_seq;
  1154. nextnum = prev->sb_nextnum;
  1155. if (segbuf->sb_rest_blocks < NILFS_PSEG_MIN_BLOCKS) {
  1156. nilfs_segbuf_map(segbuf, prev->sb_nextnum, 0, nilfs);
  1157. segbuf->sb_sum.seg_seq++;
  1158. alloc++;
  1159. }
  1160. }
  1161. err = nilfs_sufile_mark_dirty(nilfs->ns_sufile, segbuf->sb_segnum);
  1162. if (err)
  1163. goto failed;
  1164. if (alloc) {
  1165. err = nilfs_sufile_alloc(nilfs->ns_sufile, &nextnum);
  1166. if (err)
  1167. goto failed;
  1168. }
  1169. nilfs_segbuf_set_next_segnum(segbuf, nextnum, nilfs);
  1170. BUG_ON(!list_empty(&sci->sc_segbufs));
  1171. list_add_tail(&segbuf->sb_list, &sci->sc_segbufs);
  1172. sci->sc_segbuf_nblocks = segbuf->sb_rest_blocks;
  1173. return 0;
  1174. failed:
  1175. nilfs_segbuf_free(segbuf);
  1176. return err;
  1177. }
  1178. static int nilfs_segctor_extend_segments(struct nilfs_sc_info *sci,
  1179. struct the_nilfs *nilfs, int nadd)
  1180. {
  1181. struct nilfs_segment_buffer *segbuf, *prev;
  1182. struct inode *sufile = nilfs->ns_sufile;
  1183. __u64 nextnextnum;
  1184. LIST_HEAD(list);
  1185. int err, ret, i;
  1186. prev = NILFS_LAST_SEGBUF(&sci->sc_segbufs);
  1187. /*
  1188. * Since the segment specified with nextnum might be allocated during
  1189. * the previous construction, the buffer including its segusage may
  1190. * not be dirty. The following call ensures that the buffer is dirty
  1191. * and will pin the buffer on memory until the sufile is written.
  1192. */
  1193. err = nilfs_sufile_mark_dirty(sufile, prev->sb_nextnum);
  1194. if (unlikely(err))
  1195. return err;
  1196. for (i = 0; i < nadd; i++) {
  1197. /* extend segment info */
  1198. err = -ENOMEM;
  1199. segbuf = nilfs_segbuf_new(sci->sc_super);
  1200. if (unlikely(!segbuf))
  1201. goto failed;
  1202. /* map this buffer to region of segment on-disk */
  1203. nilfs_segbuf_map(segbuf, prev->sb_nextnum, 0, nilfs);
  1204. sci->sc_segbuf_nblocks += segbuf->sb_rest_blocks;
  1205. /* allocate the next next full segment */
  1206. err = nilfs_sufile_alloc(sufile, &nextnextnum);
  1207. if (unlikely(err))
  1208. goto failed_segbuf;
  1209. segbuf->sb_sum.seg_seq = prev->sb_sum.seg_seq + 1;
  1210. nilfs_segbuf_set_next_segnum(segbuf, nextnextnum, nilfs);
  1211. list_add_tail(&segbuf->sb_list, &list);
  1212. prev = segbuf;
  1213. }
  1214. list_splice_tail(&list, &sci->sc_segbufs);
  1215. return 0;
  1216. failed_segbuf:
  1217. nilfs_segbuf_free(segbuf);
  1218. failed:
  1219. list_for_each_entry(segbuf, &list, sb_list) {
  1220. ret = nilfs_sufile_free(sufile, segbuf->sb_nextnum);
  1221. WARN_ON(ret); /* never fails */
  1222. }
  1223. nilfs_destroy_logs(&list);
  1224. return err;
  1225. }
  1226. static void nilfs_free_incomplete_logs(struct list_head *logs,
  1227. struct the_nilfs *nilfs)
  1228. {
  1229. struct nilfs_segment_buffer *segbuf, *prev;
  1230. struct inode *sufile = nilfs->ns_sufile;
  1231. int ret;
  1232. segbuf = NILFS_FIRST_SEGBUF(logs);
  1233. if (nilfs->ns_nextnum != segbuf->sb_nextnum) {
  1234. ret = nilfs_sufile_free(sufile, segbuf->sb_nextnum);
  1235. WARN_ON(ret); /* never fails */
  1236. }
  1237. if (atomic_read(&segbuf->sb_err)) {
  1238. /* Case 1: The first segment failed */
  1239. if (segbuf->sb_pseg_start != segbuf->sb_fseg_start)
  1240. /*
  1241. * Case 1a: Partial segment appended into an existing
  1242. * segment
  1243. */
  1244. nilfs_terminate_segment(nilfs, segbuf->sb_fseg_start,
  1245. segbuf->sb_fseg_end);
  1246. else /* Case 1b: New full segment */
  1247. set_nilfs_discontinued(nilfs);
  1248. }
  1249. prev = segbuf;
  1250. list_for_each_entry_continue(segbuf, logs, sb_list) {
  1251. if (prev->sb_nextnum != segbuf->sb_nextnum) {
  1252. ret = nilfs_sufile_free(sufile, segbuf->sb_nextnum);
  1253. WARN_ON(ret); /* never fails */
  1254. }
  1255. if (atomic_read(&segbuf->sb_err) &&
  1256. segbuf->sb_segnum != nilfs->ns_nextnum)
  1257. /* Case 2: extended segment (!= next) failed */
  1258. nilfs_sufile_set_error(sufile, segbuf->sb_segnum);
  1259. prev = segbuf;
  1260. }
  1261. }
  1262. static void nilfs_segctor_update_segusage(struct nilfs_sc_info *sci,
  1263. struct inode *sufile)
  1264. {
  1265. struct nilfs_segment_buffer *segbuf;
  1266. unsigned long live_blocks;
  1267. int ret;
  1268. list_for_each_entry(segbuf, &sci->sc_segbufs, sb_list) {
  1269. live_blocks = segbuf->sb_sum.nblocks +
  1270. (segbuf->sb_pseg_start - segbuf->sb_fseg_start);
  1271. ret = nilfs_sufile_set_segment_usage(sufile, segbuf->sb_segnum,
  1272. live_blocks,
  1273. sci->sc_seg_ctime);
  1274. WARN_ON(ret); /* always succeed because the segusage is dirty */
  1275. }
  1276. }
  1277. static void nilfs_cancel_segusage(struct list_head *logs, struct inode *sufile)
  1278. {
  1279. struct nilfs_segment_buffer *segbuf;
  1280. int ret;
  1281. segbuf = NILFS_FIRST_SEGBUF(logs);
  1282. ret = nilfs_sufile_set_segment_usage(sufile, segbuf->sb_segnum,
  1283. segbuf->sb_pseg_start -
  1284. segbuf->sb_fseg_start, 0);
  1285. WARN_ON(ret); /* always succeed because the segusage is dirty */
  1286. list_for_each_entry_continue(segbuf, logs, sb_list) {
  1287. ret = nilfs_sufile_set_segment_usage(sufile, segbuf->sb_segnum,
  1288. 0, 0);
  1289. WARN_ON(ret); /* always succeed */
  1290. }
  1291. }
  1292. static void nilfs_segctor_truncate_segments(struct nilfs_sc_info *sci,
  1293. struct nilfs_segment_buffer *last,
  1294. struct inode *sufile)
  1295. {
  1296. struct nilfs_segment_buffer *segbuf = last;
  1297. int ret;
  1298. list_for_each_entry_continue(segbuf, &sci->sc_segbufs, sb_list) {
  1299. sci->sc_segbuf_nblocks -= segbuf->sb_rest_blocks;
  1300. ret = nilfs_sufile_free(sufile, segbuf->sb_nextnum);
  1301. WARN_ON(ret);
  1302. }
  1303. nilfs_truncate_logs(&sci->sc_segbufs, last);
  1304. }
  1305. static int nilfs_segctor_collect(struct nilfs_sc_info *sci,
  1306. struct the_nilfs *nilfs, int mode)
  1307. {
  1308. struct nilfs_cstage prev_stage = sci->sc_stage;
  1309. int err, nadd = 1;
  1310. /* Collection retry loop */
  1311. for (;;) {
  1312. sci->sc_nblk_this_inc = 0;
  1313. sci->sc_curseg = NILFS_FIRST_SEGBUF(&sci->sc_segbufs);
  1314. err = nilfs_segctor_reset_segment_buffer(sci);
  1315. if (unlikely(err))
  1316. goto failed;
  1317. err = nilfs_segctor_collect_blocks(sci, mode);
  1318. sci->sc_nblk_this_inc += sci->sc_curseg->sb_sum.nblocks;
  1319. if (!err)
  1320. break;
  1321. if (unlikely(err != -E2BIG))
  1322. goto failed;
  1323. /* The current segment is filled up */
  1324. if (mode != SC_LSEG_SR ||
  1325. nilfs_sc_cstage_get(sci) < NILFS_ST_CPFILE)
  1326. break;
  1327. nilfs_clear_logs(&sci->sc_segbufs);
  1328. if (sci->sc_stage.flags & NILFS_CF_SUFREED) {
  1329. err = nilfs_sufile_cancel_freev(nilfs->ns_sufile,
  1330. sci->sc_freesegs,
  1331. sci->sc_nfreesegs,
  1332. NULL);
  1333. WARN_ON(err); /* do not happen */
  1334. sci->sc_stage.flags &= ~NILFS_CF_SUFREED;
  1335. }
  1336. err = nilfs_segctor_extend_segments(sci, nilfs, nadd);
  1337. if (unlikely(err))
  1338. return err;
  1339. nadd = min_t(int, nadd << 1, SC_MAX_SEGDELTA);
  1340. sci->sc_stage = prev_stage;
  1341. }
  1342. nilfs_segctor_truncate_segments(sci, sci->sc_curseg, nilfs->ns_sufile);
  1343. return 0;
  1344. failed:
  1345. return err;
  1346. }
  1347. static void nilfs_list_replace_buffer(struct buffer_head *old_bh,
  1348. struct buffer_head *new_bh)
  1349. {
  1350. BUG_ON(!list_empty(&new_bh->b_assoc_buffers));
  1351. list_replace_init(&old_bh->b_assoc_buffers, &new_bh->b_assoc_buffers);
  1352. /* The caller must release old_bh */
  1353. }
  1354. static int
  1355. nilfs_segctor_update_payload_blocknr(struct nilfs_sc_info *sci,
  1356. struct nilfs_segment_buffer *segbuf,
  1357. int mode)
  1358. {
  1359. struct inode *inode = NULL;
  1360. sector_t blocknr;
  1361. unsigned long nfinfo = segbuf->sb_sum.nfinfo;
  1362. unsigned long nblocks = 0, ndatablk = 0;
  1363. const struct nilfs_sc_operations *sc_op = NULL;
  1364. struct nilfs_segsum_pointer ssp;
  1365. struct nilfs_finfo *finfo = NULL;
  1366. union nilfs_binfo binfo;
  1367. struct buffer_head *bh, *bh_org;
  1368. ino_t ino = 0;
  1369. int err = 0;
  1370. if (!nfinfo)
  1371. goto out;
  1372. blocknr = segbuf->sb_pseg_start + segbuf->sb_sum.nsumblk;
  1373. ssp.bh = NILFS_SEGBUF_FIRST_BH(&segbuf->sb_segsum_buffers);
  1374. ssp.offset = sizeof(struct nilfs_segment_summary);
  1375. list_for_each_entry(bh, &segbuf->sb_payload_buffers, b_assoc_buffers) {
  1376. if (bh == segbuf->sb_super_root)
  1377. break;
  1378. if (!finfo) {
  1379. finfo = nilfs_segctor_map_segsum_entry(
  1380. sci, &ssp, sizeof(*finfo));
  1381. ino = le64_to_cpu(finfo->fi_ino);
  1382. nblocks = le32_to_cpu(finfo->fi_nblocks);
  1383. ndatablk = le32_to_cpu(finfo->fi_ndatablk);
  1384. inode = bh->b_page->mapping->host;
  1385. if (mode == SC_LSEG_DSYNC)
  1386. sc_op = &nilfs_sc_dsync_ops;
  1387. else if (ino == NILFS_DAT_INO)
  1388. sc_op = &nilfs_sc_dat_ops;
  1389. else /* file blocks */
  1390. sc_op = &nilfs_sc_file_ops;
  1391. }
  1392. bh_org = bh;
  1393. get_bh(bh_org);
  1394. err = nilfs_bmap_assign(NILFS_I(inode)->i_bmap, &bh, blocknr,
  1395. &binfo);
  1396. if (bh != bh_org)
  1397. nilfs_list_replace_buffer(bh_org, bh);
  1398. brelse(bh_org);
  1399. if (unlikely(err))
  1400. goto failed_bmap;
  1401. if (ndatablk > 0)
  1402. sc_op->write_data_binfo(sci, &ssp, &binfo);
  1403. else
  1404. sc_op->write_node_binfo(sci, &ssp, &binfo);
  1405. blocknr++;
  1406. if (--nblocks == 0) {
  1407. finfo = NULL;
  1408. if (--nfinfo == 0)
  1409. break;
  1410. } else if (ndatablk > 0)
  1411. ndatablk--;
  1412. }
  1413. out:
  1414. return 0;
  1415. failed_bmap:
  1416. return err;
  1417. }
  1418. static int nilfs_segctor_assign(struct nilfs_sc_info *sci, int mode)
  1419. {
  1420. struct nilfs_segment_buffer *segbuf;
  1421. int err;
  1422. list_for_each_entry(segbuf, &sci->sc_segbufs, sb_list) {
  1423. err = nilfs_segctor_update_payload_blocknr(sci, segbuf, mode);
  1424. if (unlikely(err))
  1425. return err;
  1426. nilfs_segbuf_fill_in_segsum(segbuf);
  1427. }
  1428. return 0;
  1429. }
  1430. static void nilfs_begin_page_io(struct page *page)
  1431. {
  1432. if (!page || PageWriteback(page))
  1433. /*
  1434. * For split b-tree node pages, this function may be called
  1435. * twice. We ignore the 2nd or later calls by this check.
  1436. */
  1437. return;
  1438. lock_page(page);
  1439. clear_page_dirty_for_io(page);
  1440. set_page_writeback(page);
  1441. unlock_page(page);
  1442. }
  1443. static void nilfs_segctor_prepare_write(struct nilfs_sc_info *sci)
  1444. {
  1445. struct nilfs_segment_buffer *segbuf;
  1446. struct page *bd_page = NULL, *fs_page = NULL;
  1447. list_for_each_entry(segbuf, &sci->sc_segbufs, sb_list) {
  1448. struct buffer_head *bh;
  1449. list_for_each_entry(bh, &segbuf->sb_segsum_buffers,
  1450. b_assoc_buffers) {
  1451. if (bh->b_page != bd_page) {
  1452. if (bd_page) {
  1453. lock_page(bd_page);
  1454. clear_page_dirty_for_io(bd_page);
  1455. set_page_writeback(bd_page);
  1456. unlock_page(bd_page);
  1457. }
  1458. bd_page = bh->b_page;
  1459. }
  1460. }
  1461. list_for_each_entry(bh, &segbuf->sb_payload_buffers,
  1462. b_assoc_buffers) {
  1463. set_buffer_async_write(bh);
  1464. if (bh == segbuf->sb_super_root) {
  1465. if (bh->b_page != bd_page) {
  1466. lock_page(bd_page);
  1467. clear_page_dirty_for_io(bd_page);
  1468. set_page_writeback(bd_page);
  1469. unlock_page(bd_page);
  1470. bd_page = bh->b_page;
  1471. }
  1472. break;
  1473. }
  1474. if (bh->b_page != fs_page) {
  1475. nilfs_begin_page_io(fs_page);
  1476. fs_page = bh->b_page;
  1477. }
  1478. }
  1479. }
  1480. if (bd_page) {
  1481. lock_page(bd_page);
  1482. clear_page_dirty_for_io(bd_page);
  1483. set_page_writeback(bd_page);
  1484. unlock_page(bd_page);
  1485. }
  1486. nilfs_begin_page_io(fs_page);
  1487. }
  1488. static int nilfs_segctor_write(struct nilfs_sc_info *sci,
  1489. struct the_nilfs *nilfs)
  1490. {
  1491. int ret;
  1492. ret = nilfs_write_logs(&sci->sc_segbufs, nilfs);
  1493. list_splice_tail_init(&sci->sc_segbufs, &sci->sc_write_logs);
  1494. return ret;
  1495. }
  1496. static void nilfs_end_page_io(struct page *page, int err)
  1497. {
  1498. if (!page)
  1499. return;
  1500. if (buffer_nilfs_node(page_buffers(page)) && !PageWriteback(page)) {
  1501. /*
  1502. * For b-tree node pages, this function may be called twice
  1503. * or more because they might be split in a segment.
  1504. */
  1505. if (PageDirty(page)) {
  1506. /*
  1507. * For pages holding split b-tree node buffers, dirty
  1508. * flag on the buffers may be cleared discretely.
  1509. * In that case, the page is once redirtied for
  1510. * remaining buffers, and it must be cancelled if
  1511. * all the buffers get cleaned later.
  1512. */
  1513. lock_page(page);
  1514. if (nilfs_page_buffers_clean(page))
  1515. __nilfs_clear_page_dirty(page);
  1516. unlock_page(page);
  1517. }
  1518. return;
  1519. }
  1520. if (!err) {
  1521. if (!nilfs_page_buffers_clean(page))
  1522. __set_page_dirty_nobuffers(page);
  1523. ClearPageError(page);
  1524. } else {
  1525. __set_page_dirty_nobuffers(page);
  1526. SetPageError(page);
  1527. }
  1528. end_page_writeback(page);
  1529. }
  1530. static void nilfs_abort_logs(struct list_head *logs, int err)
  1531. {
  1532. struct nilfs_segment_buffer *segbuf;
  1533. struct page *bd_page = NULL, *fs_page = NULL;
  1534. struct buffer_head *bh;
  1535. if (list_empty(logs))
  1536. return;
  1537. list_for_each_entry(segbuf, logs, sb_list) {
  1538. list_for_each_entry(bh, &segbuf->sb_segsum_buffers,
  1539. b_assoc_buffers) {
  1540. if (bh->b_page != bd_page) {
  1541. if (bd_page)
  1542. end_page_writeback(bd_page);
  1543. bd_page = bh->b_page;
  1544. }
  1545. }
  1546. list_for_each_entry(bh, &segbuf->sb_payload_buffers,
  1547. b_assoc_buffers) {
  1548. clear_buffer_async_write(bh);
  1549. if (bh == segbuf->sb_super_root) {
  1550. if (bh->b_page != bd_page) {
  1551. end_page_writeback(bd_page);
  1552. bd_page = bh->b_page;
  1553. }
  1554. break;
  1555. }
  1556. if (bh->b_page != fs_page) {
  1557. nilfs_end_page_io(fs_page, err);
  1558. fs_page = bh->b_page;
  1559. }
  1560. }
  1561. }
  1562. if (bd_page)
  1563. end_page_writeback(bd_page);
  1564. nilfs_end_page_io(fs_page, err);
  1565. }
  1566. static void nilfs_segctor_abort_construction(struct nilfs_sc_info *sci,
  1567. struct the_nilfs *nilfs, int err)
  1568. {
  1569. LIST_HEAD(logs);
  1570. int ret;
  1571. list_splice_tail_init(&sci->sc_write_logs, &logs);
  1572. ret = nilfs_wait_on_logs(&logs);
  1573. nilfs_abort_logs(&logs, ret ? : err);
  1574. list_splice_tail_init(&sci->sc_segbufs, &logs);
  1575. nilfs_cancel_segusage(&logs, nilfs->ns_sufile);
  1576. nilfs_free_incomplete_logs(&logs, nilfs);
  1577. if (sci->sc_stage.flags & NILFS_CF_SUFREED) {
  1578. ret = nilfs_sufile_cancel_freev(nilfs->ns_sufile,
  1579. sci->sc_freesegs,
  1580. sci->sc_nfreesegs,
  1581. NULL);
  1582. WARN_ON(ret); /* do not happen */
  1583. }
  1584. nilfs_destroy_logs(&logs);
  1585. }
  1586. static void nilfs_set_next_segment(struct the_nilfs *nilfs,
  1587. struct nilfs_segment_buffer *segbuf)
  1588. {
  1589. nilfs->ns_segnum = segbuf->sb_segnum;
  1590. nilfs->ns_nextnum = segbuf->sb_nextnum;
  1591. nilfs->ns_pseg_offset = segbuf->sb_pseg_start - segbuf->sb_fseg_start
  1592. + segbuf->sb_sum.nblocks;
  1593. nilfs->ns_seg_seq = segbuf->sb_sum.seg_seq;
  1594. nilfs->ns_ctime = segbuf->sb_sum.ctime;
  1595. }
  1596. static void nilfs_segctor_complete_write(struct nilfs_sc_info *sci)
  1597. {
  1598. struct nilfs_segment_buffer *segbuf;
  1599. struct page *bd_page = NULL, *fs_page = NULL;
  1600. struct the_nilfs *nilfs = sci->sc_super->s_fs_info;
  1601. int update_sr = false;
  1602. list_for_each_entry(segbuf, &sci->sc_write_logs, sb_list) {
  1603. struct buffer_head *bh;
  1604. list_for_each_entry(bh, &segbuf->sb_segsum_buffers,
  1605. b_assoc_buffers) {
  1606. set_buffer_uptodate(bh);
  1607. clear_buffer_dirty(bh);
  1608. if (bh->b_page != bd_page) {
  1609. if (bd_page)
  1610. end_page_writeback(bd_page);
  1611. bd_page = bh->b_page;
  1612. }
  1613. }
  1614. /*
  1615. * We assume that the buffers which belong to the same page
  1616. * continue over the buffer list.
  1617. * Under this assumption, the last BHs of pages is
  1618. * identifiable by the discontinuity of bh->b_page
  1619. * (page != fs_page).
  1620. *
  1621. * For B-tree node blocks, however, this assumption is not
  1622. * guaranteed. The cleanup code of B-tree node pages needs
  1623. * special care.
  1624. */
  1625. list_for_each_entry(bh, &segbuf->sb_payload_buffers,
  1626. b_assoc_buffers) {
  1627. const unsigned long set_bits = BIT(BH_Uptodate);
  1628. const unsigned long clear_bits =
  1629. (BIT(BH_Dirty) | BIT(BH_Async_Write) |
  1630. BIT(BH_Delay) | BIT(BH_NILFS_Volatile) |
  1631. BIT(BH_NILFS_Redirected));
  1632. set_mask_bits(&bh->b_state, clear_bits, set_bits);
  1633. if (bh == segbuf->sb_super_root) {
  1634. if (bh->b_page != bd_page) {
  1635. end_page_writeback(bd_page);
  1636. bd_page = bh->b_page;
  1637. }
  1638. update_sr = true;
  1639. break;
  1640. }
  1641. if (bh->b_page != fs_page) {
  1642. nilfs_end_page_io(fs_page, 0);
  1643. fs_page = bh->b_page;
  1644. }
  1645. }
  1646. if (!nilfs_segbuf_simplex(segbuf)) {
  1647. if (segbuf->sb_sum.flags & NILFS_SS_LOGBGN) {
  1648. set_bit(NILFS_SC_UNCLOSED, &sci->sc_flags);
  1649. sci->sc_lseg_stime = jiffies;
  1650. }
  1651. if (segbuf->sb_sum.flags & NILFS_SS_LOGEND)
  1652. clear_bit(NILFS_SC_UNCLOSED, &sci->sc_flags);
  1653. }
  1654. }
  1655. /*
  1656. * Since pages may continue over multiple segment buffers,
  1657. * end of the last page must be checked outside of the loop.
  1658. */
  1659. if (bd_page)
  1660. end_page_writeback(bd_page);
  1661. nilfs_end_page_io(fs_page, 0);
  1662. nilfs_drop_collected_inodes(&sci->sc_dirty_files);
  1663. if (nilfs_doing_gc())
  1664. nilfs_drop_collected_inodes(&sci->sc_gc_inodes);
  1665. else
  1666. nilfs->ns_nongc_ctime = sci->sc_seg_ctime;
  1667. sci->sc_nblk_inc += sci->sc_nblk_this_inc;
  1668. segbuf = NILFS_LAST_SEGBUF(&sci->sc_write_logs);
  1669. nilfs_set_next_segment(nilfs, segbuf);
  1670. if (update_sr) {
  1671. nilfs->ns_flushed_device = 0;
  1672. nilfs_set_last_segment(nilfs, segbuf->sb_pseg_start,
  1673. segbuf->sb_sum.seg_seq, nilfs->ns_cno++);
  1674. clear_bit(NILFS_SC_HAVE_DELTA, &sci->sc_flags);
  1675. clear_bit(NILFS_SC_DIRTY, &sci->sc_flags);
  1676. set_bit(NILFS_SC_SUPER_ROOT, &sci->sc_flags);
  1677. nilfs_segctor_clear_metadata_dirty(sci);
  1678. } else
  1679. clear_bit(NILFS_SC_SUPER_ROOT, &sci->sc_flags);
  1680. }
  1681. static int nilfs_segctor_wait(struct nilfs_sc_info *sci)
  1682. {
  1683. int ret;
  1684. ret = nilfs_wait_on_logs(&sci->sc_write_logs);
  1685. if (!ret) {
  1686. nilfs_segctor_complete_write(sci);
  1687. nilfs_destroy_logs(&sci->sc_write_logs);
  1688. }
  1689. return ret;
  1690. }
  1691. static int nilfs_segctor_collect_dirty_files(struct nilfs_sc_info *sci,
  1692. struct the_nilfs *nilfs)
  1693. {
  1694. struct nilfs_inode_info *ii, *n;
  1695. struct inode *ifile = sci->sc_root->ifile;
  1696. spin_lock(&nilfs->ns_inode_lock);
  1697. retry:
  1698. list_for_each_entry_safe(ii, n, &nilfs->ns_dirty_files, i_dirty) {
  1699. if (!ii->i_bh) {
  1700. struct buffer_head *ibh;
  1701. int err;
  1702. spin_unlock(&nilfs->ns_inode_lock);
  1703. err = nilfs_ifile_get_inode_block(
  1704. ifile, ii->vfs_inode.i_ino, &ibh);
  1705. if (unlikely(err)) {
  1706. nilfs_msg(sci->sc_super, KERN_WARNING,
  1707. "log writer: error %d getting inode block (ino=%lu)",
  1708. err, ii->vfs_inode.i_ino);
  1709. return err;
  1710. }
  1711. mark_buffer_dirty(ibh);
  1712. nilfs_mdt_mark_dirty(ifile);
  1713. spin_lock(&nilfs->ns_inode_lock);
  1714. if (likely(!ii->i_bh))
  1715. ii->i_bh = ibh;
  1716. else
  1717. brelse(ibh);
  1718. goto retry;
  1719. }
  1720. clear_bit(NILFS_I_QUEUED, &ii->i_state);
  1721. set_bit(NILFS_I_BUSY, &ii->i_state);
  1722. list_move_tail(&ii->i_dirty, &sci->sc_dirty_files);
  1723. }
  1724. spin_unlock(&nilfs->ns_inode_lock);
  1725. return 0;
  1726. }
  1727. static void nilfs_segctor_drop_written_files(struct nilfs_sc_info *sci,
  1728. struct the_nilfs *nilfs)
  1729. {
  1730. struct nilfs_inode_info *ii, *n;
  1731. int during_mount = !(sci->sc_super->s_flags & MS_ACTIVE);
  1732. int defer_iput = false;
  1733. spin_lock(&nilfs->ns_inode_lock);
  1734. list_for_each_entry_safe(ii, n, &sci->sc_dirty_files, i_dirty) {
  1735. if (!test_and_clear_bit(NILFS_I_UPDATED, &ii->i_state) ||
  1736. test_bit(NILFS_I_DIRTY, &ii->i_state))
  1737. continue;
  1738. clear_bit(NILFS_I_BUSY, &ii->i_state);
  1739. brelse(ii->i_bh);
  1740. ii->i_bh = NULL;
  1741. list_del_init(&ii->i_dirty);
  1742. if (!ii->vfs_inode.i_nlink || during_mount) {
  1743. /*
  1744. * Defer calling iput() to avoid deadlocks if
  1745. * i_nlink == 0 or mount is not yet finished.
  1746. */
  1747. list_add_tail(&ii->i_dirty, &sci->sc_iput_queue);
  1748. defer_iput = true;
  1749. } else {
  1750. spin_unlock(&nilfs->ns_inode_lock);
  1751. iput(&ii->vfs_inode);
  1752. spin_lock(&nilfs->ns_inode_lock);
  1753. }
  1754. }
  1755. spin_unlock(&nilfs->ns_inode_lock);
  1756. if (defer_iput)
  1757. schedule_work(&sci->sc_iput_work);
  1758. }
  1759. /*
  1760. * Main procedure of segment constructor
  1761. */
  1762. static int nilfs_segctor_do_construct(struct nilfs_sc_info *sci, int mode)
  1763. {
  1764. struct the_nilfs *nilfs = sci->sc_super->s_fs_info;
  1765. int err;
  1766. nilfs_sc_cstage_set(sci, NILFS_ST_INIT);
  1767. sci->sc_cno = nilfs->ns_cno;
  1768. err = nilfs_segctor_collect_dirty_files(sci, nilfs);
  1769. if (unlikely(err))
  1770. goto out;
  1771. if (nilfs_test_metadata_dirty(nilfs, sci->sc_root))
  1772. set_bit(NILFS_SC_DIRTY, &sci->sc_flags);
  1773. if (nilfs_segctor_clean(sci))
  1774. goto out;
  1775. do {
  1776. sci->sc_stage.flags &= ~NILFS_CF_HISTORY_MASK;
  1777. err = nilfs_segctor_begin_construction(sci, nilfs);
  1778. if (unlikely(err))
  1779. goto out;
  1780. /* Update time stamp */
  1781. sci->sc_seg_ctime = get_seconds();
  1782. err = nilfs_segctor_collect(sci, nilfs, mode);
  1783. if (unlikely(err))
  1784. goto failed;
  1785. /* Avoid empty segment */
  1786. if (nilfs_sc_cstage_get(sci) == NILFS_ST_DONE &&
  1787. nilfs_segbuf_empty(sci->sc_curseg)) {
  1788. nilfs_segctor_abort_construction(sci, nilfs, 1);
  1789. goto out;
  1790. }
  1791. err = nilfs_segctor_assign(sci, mode);
  1792. if (unlikely(err))
  1793. goto failed;
  1794. if (sci->sc_stage.flags & NILFS_CF_IFILE_STARTED)
  1795. nilfs_segctor_fill_in_file_bmap(sci);
  1796. if (mode == SC_LSEG_SR &&
  1797. nilfs_sc_cstage_get(sci) >= NILFS_ST_CPFILE) {
  1798. err = nilfs_segctor_fill_in_checkpoint(sci);
  1799. if (unlikely(err))
  1800. goto failed_to_write;
  1801. nilfs_segctor_fill_in_super_root(sci, nilfs);
  1802. }
  1803. nilfs_segctor_update_segusage(sci, nilfs->ns_sufile);
  1804. /* Write partial segments */
  1805. nilfs_segctor_prepare_write(sci);
  1806. nilfs_add_checksums_on_logs(&sci->sc_segbufs,
  1807. nilfs->ns_crc_seed);
  1808. err = nilfs_segctor_write(sci, nilfs);
  1809. if (unlikely(err))
  1810. goto failed_to_write;
  1811. if (nilfs_sc_cstage_get(sci) == NILFS_ST_DONE ||
  1812. nilfs->ns_blocksize_bits != PAGE_SHIFT) {
  1813. /*
  1814. * At this point, we avoid double buffering
  1815. * for blocksize < pagesize because page dirty
  1816. * flag is turned off during write and dirty
  1817. * buffers are not properly collected for
  1818. * pages crossing over segments.
  1819. */
  1820. err = nilfs_segctor_wait(sci);
  1821. if (err)
  1822. goto failed_to_write;
  1823. }
  1824. } while (nilfs_sc_cstage_get(sci) != NILFS_ST_DONE);
  1825. out:
  1826. nilfs_segctor_drop_written_files(sci, nilfs);
  1827. return err;
  1828. failed_to_write:
  1829. if (sci->sc_stage.flags & NILFS_CF_IFILE_STARTED)
  1830. nilfs_redirty_inodes(&sci->sc_dirty_files);
  1831. failed:
  1832. if (nilfs_doing_gc())
  1833. nilfs_redirty_inodes(&sci->sc_gc_inodes);
  1834. nilfs_segctor_abort_construction(sci, nilfs, err);
  1835. goto out;
  1836. }
  1837. /**
  1838. * nilfs_segctor_start_timer - set timer of background write
  1839. * @sci: nilfs_sc_info
  1840. *
  1841. * If the timer has already been set, it ignores the new request.
  1842. * This function MUST be called within a section locking the segment
  1843. * semaphore.
  1844. */
  1845. static void nilfs_segctor_start_timer(struct nilfs_sc_info *sci)
  1846. {
  1847. spin_lock(&sci->sc_state_lock);
  1848. if (!(sci->sc_state & NILFS_SEGCTOR_COMMIT)) {
  1849. sci->sc_timer.expires = jiffies + sci->sc_interval;
  1850. add_timer(&sci->sc_timer);
  1851. sci->sc_state |= NILFS_SEGCTOR_COMMIT;
  1852. }
  1853. spin_unlock(&sci->sc_state_lock);
  1854. }
  1855. static void nilfs_segctor_do_flush(struct nilfs_sc_info *sci, int bn)
  1856. {
  1857. spin_lock(&sci->sc_state_lock);
  1858. if (!(sci->sc_flush_request & BIT(bn))) {
  1859. unsigned long prev_req = sci->sc_flush_request;
  1860. sci->sc_flush_request |= BIT(bn);
  1861. if (!prev_req)
  1862. wake_up(&sci->sc_wait_daemon);
  1863. }
  1864. spin_unlock(&sci->sc_state_lock);
  1865. }
  1866. /**
  1867. * nilfs_flush_segment - trigger a segment construction for resource control
  1868. * @sb: super block
  1869. * @ino: inode number of the file to be flushed out.
  1870. */
  1871. void nilfs_flush_segment(struct super_block *sb, ino_t ino)
  1872. {
  1873. struct the_nilfs *nilfs = sb->s_fs_info;
  1874. struct nilfs_sc_info *sci = nilfs->ns_writer;
  1875. if (!sci || nilfs_doing_construction())
  1876. return;
  1877. nilfs_segctor_do_flush(sci, NILFS_MDT_INODE(sb, ino) ? ino : 0);
  1878. /* assign bit 0 to data files */
  1879. }
  1880. struct nilfs_segctor_wait_request {
  1881. wait_queue_entry_t wq;
  1882. __u32 seq;
  1883. int err;
  1884. atomic_t done;
  1885. };
  1886. static int nilfs_segctor_sync(struct nilfs_sc_info *sci)
  1887. {
  1888. struct nilfs_segctor_wait_request wait_req;
  1889. int err = 0;
  1890. spin_lock(&sci->sc_state_lock);
  1891. init_wait(&wait_req.wq);
  1892. wait_req.err = 0;
  1893. atomic_set(&wait_req.done, 0);
  1894. wait_req.seq = ++sci->sc_seq_request;
  1895. spin_unlock(&sci->sc_state_lock);
  1896. init_waitqueue_entry(&wait_req.wq, current);
  1897. add_wait_queue(&sci->sc_wait_request, &wait_req.wq);
  1898. set_current_state(TASK_INTERRUPTIBLE);
  1899. wake_up(&sci->sc_wait_daemon);
  1900. for (;;) {
  1901. if (atomic_read(&wait_req.done)) {
  1902. err = wait_req.err;
  1903. break;
  1904. }
  1905. if (!signal_pending(current)) {
  1906. schedule();
  1907. continue;
  1908. }
  1909. err = -ERESTARTSYS;
  1910. break;
  1911. }
  1912. finish_wait(&sci->sc_wait_request, &wait_req.wq);
  1913. return err;
  1914. }
  1915. static void nilfs_segctor_wakeup(struct nilfs_sc_info *sci, int err)
  1916. {
  1917. struct nilfs_segctor_wait_request *wrq, *n;
  1918. unsigned long flags;
  1919. spin_lock_irqsave(&sci->sc_wait_request.lock, flags);
  1920. list_for_each_entry_safe(wrq, n, &sci->sc_wait_request.head, wq.entry) {
  1921. if (!atomic_read(&wrq->done) &&
  1922. nilfs_cnt32_ge(sci->sc_seq_done, wrq->seq)) {
  1923. wrq->err = err;
  1924. atomic_set(&wrq->done, 1);
  1925. }
  1926. if (atomic_read(&wrq->done)) {
  1927. wrq->wq.func(&wrq->wq,
  1928. TASK_UNINTERRUPTIBLE | TASK_INTERRUPTIBLE,
  1929. 0, NULL);
  1930. }
  1931. }
  1932. spin_unlock_irqrestore(&sci->sc_wait_request.lock, flags);
  1933. }
  1934. /**
  1935. * nilfs_construct_segment - construct a logical segment
  1936. * @sb: super block
  1937. *
  1938. * Return Value: On success, 0 is retured. On errors, one of the following
  1939. * negative error code is returned.
  1940. *
  1941. * %-EROFS - Read only filesystem.
  1942. *
  1943. * %-EIO - I/O error
  1944. *
  1945. * %-ENOSPC - No space left on device (only in a panic state).
  1946. *
  1947. * %-ERESTARTSYS - Interrupted.
  1948. *
  1949. * %-ENOMEM - Insufficient memory available.
  1950. */
  1951. int nilfs_construct_segment(struct super_block *sb)
  1952. {
  1953. struct the_nilfs *nilfs = sb->s_fs_info;
  1954. struct nilfs_sc_info *sci = nilfs->ns_writer;
  1955. struct nilfs_transaction_info *ti;
  1956. int err;
  1957. if (!sci)
  1958. return -EROFS;
  1959. /* A call inside transactions causes a deadlock. */
  1960. BUG_ON((ti = current->journal_info) && ti->ti_magic == NILFS_TI_MAGIC);
  1961. err = nilfs_segctor_sync(sci);
  1962. return err;
  1963. }
  1964. /**
  1965. * nilfs_construct_dsync_segment - construct a data-only logical segment
  1966. * @sb: super block
  1967. * @inode: inode whose data blocks should be written out
  1968. * @start: start byte offset
  1969. * @end: end byte offset (inclusive)
  1970. *
  1971. * Return Value: On success, 0 is retured. On errors, one of the following
  1972. * negative error code is returned.
  1973. *
  1974. * %-EROFS - Read only filesystem.
  1975. *
  1976. * %-EIO - I/O error
  1977. *
  1978. * %-ENOSPC - No space left on device (only in a panic state).
  1979. *
  1980. * %-ERESTARTSYS - Interrupted.
  1981. *
  1982. * %-ENOMEM - Insufficient memory available.
  1983. */
  1984. int nilfs_construct_dsync_segment(struct super_block *sb, struct inode *inode,
  1985. loff_t start, loff_t end)
  1986. {
  1987. struct the_nilfs *nilfs = sb->s_fs_info;
  1988. struct nilfs_sc_info *sci = nilfs->ns_writer;
  1989. struct nilfs_inode_info *ii;
  1990. struct nilfs_transaction_info ti;
  1991. int err = 0;
  1992. if (!sci)
  1993. return -EROFS;
  1994. nilfs_transaction_lock(sb, &ti, 0);
  1995. ii = NILFS_I(inode);
  1996. if (test_bit(NILFS_I_INODE_SYNC, &ii->i_state) ||
  1997. nilfs_test_opt(nilfs, STRICT_ORDER) ||
  1998. test_bit(NILFS_SC_UNCLOSED, &sci->sc_flags) ||
  1999. nilfs_discontinued(nilfs)) {
  2000. nilfs_transaction_unlock(sb);
  2001. err = nilfs_segctor_sync(sci);
  2002. return err;
  2003. }
  2004. spin_lock(&nilfs->ns_inode_lock);
  2005. if (!test_bit(NILFS_I_QUEUED, &ii->i_state) &&
  2006. !test_bit(NILFS_I_BUSY, &ii->i_state)) {
  2007. spin_unlock(&nilfs->ns_inode_lock);
  2008. nilfs_transaction_unlock(sb);
  2009. return 0;
  2010. }
  2011. spin_unlock(&nilfs->ns_inode_lock);
  2012. sci->sc_dsync_inode = ii;
  2013. sci->sc_dsync_start = start;
  2014. sci->sc_dsync_end = end;
  2015. err = nilfs_segctor_do_construct(sci, SC_LSEG_DSYNC);
  2016. if (!err)
  2017. nilfs->ns_flushed_device = 0;
  2018. nilfs_transaction_unlock(sb);
  2019. return err;
  2020. }
  2021. #define FLUSH_FILE_BIT (0x1) /* data file only */
  2022. #define FLUSH_DAT_BIT BIT(NILFS_DAT_INO) /* DAT only */
  2023. /**
  2024. * nilfs_segctor_accept - record accepted sequence count of log-write requests
  2025. * @sci: segment constructor object
  2026. */
  2027. static void nilfs_segctor_accept(struct nilfs_sc_info *sci)
  2028. {
  2029. spin_lock(&sci->sc_state_lock);
  2030. sci->sc_seq_accepted = sci->sc_seq_request;
  2031. spin_unlock(&sci->sc_state_lock);
  2032. del_timer_sync(&sci->sc_timer);
  2033. }
  2034. /**
  2035. * nilfs_segctor_notify - notify the result of request to caller threads
  2036. * @sci: segment constructor object
  2037. * @mode: mode of log forming
  2038. * @err: error code to be notified
  2039. */
  2040. static void nilfs_segctor_notify(struct nilfs_sc_info *sci, int mode, int err)
  2041. {
  2042. /* Clear requests (even when the construction failed) */
  2043. spin_lock(&sci->sc_state_lock);
  2044. if (mode == SC_LSEG_SR) {
  2045. sci->sc_state &= ~NILFS_SEGCTOR_COMMIT;
  2046. sci->sc_seq_done = sci->sc_seq_accepted;
  2047. nilfs_segctor_wakeup(sci, err);
  2048. sci->sc_flush_request = 0;
  2049. } else {
  2050. if (mode == SC_FLUSH_FILE)
  2051. sci->sc_flush_request &= ~FLUSH_FILE_BIT;
  2052. else if (mode == SC_FLUSH_DAT)
  2053. sci->sc_flush_request &= ~FLUSH_DAT_BIT;
  2054. /* re-enable timer if checkpoint creation was not done */
  2055. if ((sci->sc_state & NILFS_SEGCTOR_COMMIT) &&
  2056. time_before(jiffies, sci->sc_timer.expires))
  2057. add_timer(&sci->sc_timer);
  2058. }
  2059. spin_unlock(&sci->sc_state_lock);
  2060. }
  2061. /**
  2062. * nilfs_segctor_construct - form logs and write them to disk
  2063. * @sci: segment constructor object
  2064. * @mode: mode of log forming
  2065. */
  2066. static int nilfs_segctor_construct(struct nilfs_sc_info *sci, int mode)
  2067. {
  2068. struct the_nilfs *nilfs = sci->sc_super->s_fs_info;
  2069. struct nilfs_super_block **sbp;
  2070. int err = 0;
  2071. nilfs_segctor_accept(sci);
  2072. if (nilfs_discontinued(nilfs))
  2073. mode = SC_LSEG_SR;
  2074. if (!nilfs_segctor_confirm(sci))
  2075. err = nilfs_segctor_do_construct(sci, mode);
  2076. if (likely(!err)) {
  2077. if (mode != SC_FLUSH_DAT)
  2078. atomic_set(&nilfs->ns_ndirtyblks, 0);
  2079. if (test_bit(NILFS_SC_SUPER_ROOT, &sci->sc_flags) &&
  2080. nilfs_discontinued(nilfs)) {
  2081. down_write(&nilfs->ns_sem);
  2082. err = -EIO;
  2083. sbp = nilfs_prepare_super(sci->sc_super,
  2084. nilfs_sb_will_flip(nilfs));
  2085. if (likely(sbp)) {
  2086. nilfs_set_log_cursor(sbp[0], nilfs);
  2087. err = nilfs_commit_super(sci->sc_super,
  2088. NILFS_SB_COMMIT);
  2089. }
  2090. up_write(&nilfs->ns_sem);
  2091. }
  2092. }
  2093. nilfs_segctor_notify(sci, mode, err);
  2094. return err;
  2095. }
  2096. static void nilfs_construction_timeout(unsigned long data)
  2097. {
  2098. struct task_struct *p = (struct task_struct *)data;
  2099. wake_up_process(p);
  2100. }
  2101. static void
  2102. nilfs_remove_written_gcinodes(struct the_nilfs *nilfs, struct list_head *head)
  2103. {
  2104. struct nilfs_inode_info *ii, *n;
  2105. list_for_each_entry_safe(ii, n, head, i_dirty) {
  2106. if (!test_bit(NILFS_I_UPDATED, &ii->i_state))
  2107. continue;
  2108. list_del_init(&ii->i_dirty);
  2109. truncate_inode_pages(&ii->vfs_inode.i_data, 0);
  2110. nilfs_btnode_cache_clear(&ii->i_btnode_cache);
  2111. iput(&ii->vfs_inode);
  2112. }
  2113. }
  2114. int nilfs_clean_segments(struct super_block *sb, struct nilfs_argv *argv,
  2115. void **kbufs)
  2116. {
  2117. struct the_nilfs *nilfs = sb->s_fs_info;
  2118. struct nilfs_sc_info *sci = nilfs->ns_writer;
  2119. struct nilfs_transaction_info ti;
  2120. int err;
  2121. if (unlikely(!sci))
  2122. return -EROFS;
  2123. nilfs_transaction_lock(sb, &ti, 1);
  2124. err = nilfs_mdt_save_to_shadow_map(nilfs->ns_dat);
  2125. if (unlikely(err))
  2126. goto out_unlock;
  2127. err = nilfs_ioctl_prepare_clean_segments(nilfs, argv, kbufs);
  2128. if (unlikely(err)) {
  2129. nilfs_mdt_restore_from_shadow_map(nilfs->ns_dat);
  2130. goto out_unlock;
  2131. }
  2132. sci->sc_freesegs = kbufs[4];
  2133. sci->sc_nfreesegs = argv[4].v_nmembs;
  2134. list_splice_tail_init(&nilfs->ns_gc_inodes, &sci->sc_gc_inodes);
  2135. for (;;) {
  2136. err = nilfs_segctor_construct(sci, SC_LSEG_SR);
  2137. nilfs_remove_written_gcinodes(nilfs, &sci->sc_gc_inodes);
  2138. if (likely(!err))
  2139. break;
  2140. nilfs_msg(sb, KERN_WARNING, "error %d cleaning segments", err);
  2141. set_current_state(TASK_INTERRUPTIBLE);
  2142. schedule_timeout(sci->sc_interval);
  2143. }
  2144. if (nilfs_test_opt(nilfs, DISCARD)) {
  2145. int ret = nilfs_discard_segments(nilfs, sci->sc_freesegs,
  2146. sci->sc_nfreesegs);
  2147. if (ret) {
  2148. nilfs_msg(sb, KERN_WARNING,
  2149. "error %d on discard request, turning discards off for the device",
  2150. ret);
  2151. nilfs_clear_opt(nilfs, DISCARD);
  2152. }
  2153. }
  2154. out_unlock:
  2155. sci->sc_freesegs = NULL;
  2156. sci->sc_nfreesegs = 0;
  2157. nilfs_mdt_clear_shadow_map(nilfs->ns_dat);
  2158. nilfs_transaction_unlock(sb);
  2159. return err;
  2160. }
  2161. static void nilfs_segctor_thread_construct(struct nilfs_sc_info *sci, int mode)
  2162. {
  2163. struct nilfs_transaction_info ti;
  2164. nilfs_transaction_lock(sci->sc_super, &ti, 0);
  2165. nilfs_segctor_construct(sci, mode);
  2166. /*
  2167. * Unclosed segment should be retried. We do this using sc_timer.
  2168. * Timeout of sc_timer will invoke complete construction which leads
  2169. * to close the current logical segment.
  2170. */
  2171. if (test_bit(NILFS_SC_UNCLOSED, &sci->sc_flags))
  2172. nilfs_segctor_start_timer(sci);
  2173. nilfs_transaction_unlock(sci->sc_super);
  2174. }
  2175. static void nilfs_segctor_do_immediate_flush(struct nilfs_sc_info *sci)
  2176. {
  2177. int mode = 0;
  2178. spin_lock(&sci->sc_state_lock);
  2179. mode = (sci->sc_flush_request & FLUSH_DAT_BIT) ?
  2180. SC_FLUSH_DAT : SC_FLUSH_FILE;
  2181. spin_unlock(&sci->sc_state_lock);
  2182. if (mode) {
  2183. nilfs_segctor_do_construct(sci, mode);
  2184. spin_lock(&sci->sc_state_lock);
  2185. sci->sc_flush_request &= (mode == SC_FLUSH_FILE) ?
  2186. ~FLUSH_FILE_BIT : ~FLUSH_DAT_BIT;
  2187. spin_unlock(&sci->sc_state_lock);
  2188. }
  2189. clear_bit(NILFS_SC_PRIOR_FLUSH, &sci->sc_flags);
  2190. }
  2191. static int nilfs_segctor_flush_mode(struct nilfs_sc_info *sci)
  2192. {
  2193. if (!test_bit(NILFS_SC_UNCLOSED, &sci->sc_flags) ||
  2194. time_before(jiffies, sci->sc_lseg_stime + sci->sc_mjcp_freq)) {
  2195. if (!(sci->sc_flush_request & ~FLUSH_FILE_BIT))
  2196. return SC_FLUSH_FILE;
  2197. else if (!(sci->sc_flush_request & ~FLUSH_DAT_BIT))
  2198. return SC_FLUSH_DAT;
  2199. }
  2200. return SC_LSEG_SR;
  2201. }
  2202. /**
  2203. * nilfs_segctor_thread - main loop of the segment constructor thread.
  2204. * @arg: pointer to a struct nilfs_sc_info.
  2205. *
  2206. * nilfs_segctor_thread() initializes a timer and serves as a daemon
  2207. * to execute segment constructions.
  2208. */
  2209. static int nilfs_segctor_thread(void *arg)
  2210. {
  2211. struct nilfs_sc_info *sci = (struct nilfs_sc_info *)arg;
  2212. struct the_nilfs *nilfs = sci->sc_super->s_fs_info;
  2213. int timeout = 0;
  2214. sci->sc_timer.data = (unsigned long)current;
  2215. sci->sc_timer.function = nilfs_construction_timeout;
  2216. /* start sync. */
  2217. sci->sc_task = current;
  2218. wake_up(&sci->sc_wait_task); /* for nilfs_segctor_start_thread() */
  2219. nilfs_msg(sci->sc_super, KERN_INFO,
  2220. "segctord starting. Construction interval = %lu seconds, CP frequency < %lu seconds",
  2221. sci->sc_interval / HZ, sci->sc_mjcp_freq / HZ);
  2222. spin_lock(&sci->sc_state_lock);
  2223. loop:
  2224. for (;;) {
  2225. int mode;
  2226. if (sci->sc_state & NILFS_SEGCTOR_QUIT)
  2227. goto end_thread;
  2228. if (timeout || sci->sc_seq_request != sci->sc_seq_done)
  2229. mode = SC_LSEG_SR;
  2230. else if (sci->sc_flush_request)
  2231. mode = nilfs_segctor_flush_mode(sci);
  2232. else
  2233. break;
  2234. spin_unlock(&sci->sc_state_lock);
  2235. nilfs_segctor_thread_construct(sci, mode);
  2236. spin_lock(&sci->sc_state_lock);
  2237. timeout = 0;
  2238. }
  2239. if (freezing(current)) {
  2240. spin_unlock(&sci->sc_state_lock);
  2241. try_to_freeze();
  2242. spin_lock(&sci->sc_state_lock);
  2243. } else {
  2244. DEFINE_WAIT(wait);
  2245. int should_sleep = 1;
  2246. prepare_to_wait(&sci->sc_wait_daemon, &wait,
  2247. TASK_INTERRUPTIBLE);
  2248. if (sci->sc_seq_request != sci->sc_seq_done)
  2249. should_sleep = 0;
  2250. else if (sci->sc_flush_request)
  2251. should_sleep = 0;
  2252. else if (sci->sc_state & NILFS_SEGCTOR_COMMIT)
  2253. should_sleep = time_before(jiffies,
  2254. sci->sc_timer.expires);
  2255. if (should_sleep) {
  2256. spin_unlock(&sci->sc_state_lock);
  2257. schedule();
  2258. spin_lock(&sci->sc_state_lock);
  2259. }
  2260. finish_wait(&sci->sc_wait_daemon, &wait);
  2261. timeout = ((sci->sc_state & NILFS_SEGCTOR_COMMIT) &&
  2262. time_after_eq(jiffies, sci->sc_timer.expires));
  2263. if (nilfs_sb_dirty(nilfs) && nilfs_sb_need_update(nilfs))
  2264. set_nilfs_discontinued(nilfs);
  2265. }
  2266. goto loop;
  2267. end_thread:
  2268. spin_unlock(&sci->sc_state_lock);
  2269. /* end sync. */
  2270. sci->sc_task = NULL;
  2271. wake_up(&sci->sc_wait_task); /* for nilfs_segctor_kill_thread() */
  2272. return 0;
  2273. }
  2274. static int nilfs_segctor_start_thread(struct nilfs_sc_info *sci)
  2275. {
  2276. struct task_struct *t;
  2277. t = kthread_run(nilfs_segctor_thread, sci, "segctord");
  2278. if (IS_ERR(t)) {
  2279. int err = PTR_ERR(t);
  2280. nilfs_msg(sci->sc_super, KERN_ERR,
  2281. "error %d creating segctord thread", err);
  2282. return err;
  2283. }
  2284. wait_event(sci->sc_wait_task, sci->sc_task != NULL);
  2285. return 0;
  2286. }
  2287. static void nilfs_segctor_kill_thread(struct nilfs_sc_info *sci)
  2288. __acquires(&sci->sc_state_lock)
  2289. __releases(&sci->sc_state_lock)
  2290. {
  2291. sci->sc_state |= NILFS_SEGCTOR_QUIT;
  2292. while (sci->sc_task) {
  2293. wake_up(&sci->sc_wait_daemon);
  2294. spin_unlock(&sci->sc_state_lock);
  2295. wait_event(sci->sc_wait_task, sci->sc_task == NULL);
  2296. spin_lock(&sci->sc_state_lock);
  2297. }
  2298. }
  2299. /*
  2300. * Setup & clean-up functions
  2301. */
  2302. static struct nilfs_sc_info *nilfs_segctor_new(struct super_block *sb,
  2303. struct nilfs_root *root)
  2304. {
  2305. struct the_nilfs *nilfs = sb->s_fs_info;
  2306. struct nilfs_sc_info *sci;
  2307. sci = kzalloc(sizeof(*sci), GFP_KERNEL);
  2308. if (!sci)
  2309. return NULL;
  2310. sci->sc_super = sb;
  2311. nilfs_get_root(root);
  2312. sci->sc_root = root;
  2313. init_waitqueue_head(&sci->sc_wait_request);
  2314. init_waitqueue_head(&sci->sc_wait_daemon);
  2315. init_waitqueue_head(&sci->sc_wait_task);
  2316. spin_lock_init(&sci->sc_state_lock);
  2317. INIT_LIST_HEAD(&sci->sc_dirty_files);
  2318. INIT_LIST_HEAD(&sci->sc_segbufs);
  2319. INIT_LIST_HEAD(&sci->sc_write_logs);
  2320. INIT_LIST_HEAD(&sci->sc_gc_inodes);
  2321. INIT_LIST_HEAD(&sci->sc_iput_queue);
  2322. INIT_WORK(&sci->sc_iput_work, nilfs_iput_work_func);
  2323. init_timer(&sci->sc_timer);
  2324. sci->sc_interval = HZ * NILFS_SC_DEFAULT_TIMEOUT;
  2325. sci->sc_mjcp_freq = HZ * NILFS_SC_DEFAULT_SR_FREQ;
  2326. sci->sc_watermark = NILFS_SC_DEFAULT_WATERMARK;
  2327. if (nilfs->ns_interval)
  2328. sci->sc_interval = HZ * nilfs->ns_interval;
  2329. if (nilfs->ns_watermark)
  2330. sci->sc_watermark = nilfs->ns_watermark;
  2331. return sci;
  2332. }
  2333. static void nilfs_segctor_write_out(struct nilfs_sc_info *sci)
  2334. {
  2335. int ret, retrycount = NILFS_SC_CLEANUP_RETRY;
  2336. /*
  2337. * The segctord thread was stopped and its timer was removed.
  2338. * But some tasks remain.
  2339. */
  2340. do {
  2341. struct nilfs_transaction_info ti;
  2342. nilfs_transaction_lock(sci->sc_super, &ti, 0);
  2343. ret = nilfs_segctor_construct(sci, SC_LSEG_SR);
  2344. nilfs_transaction_unlock(sci->sc_super);
  2345. flush_work(&sci->sc_iput_work);
  2346. } while (ret && retrycount-- > 0);
  2347. }
  2348. /**
  2349. * nilfs_segctor_destroy - destroy the segment constructor.
  2350. * @sci: nilfs_sc_info
  2351. *
  2352. * nilfs_segctor_destroy() kills the segctord thread and frees
  2353. * the nilfs_sc_info struct.
  2354. * Caller must hold the segment semaphore.
  2355. */
  2356. static void nilfs_segctor_destroy(struct nilfs_sc_info *sci)
  2357. {
  2358. struct the_nilfs *nilfs = sci->sc_super->s_fs_info;
  2359. int flag;
  2360. up_write(&nilfs->ns_segctor_sem);
  2361. spin_lock(&sci->sc_state_lock);
  2362. nilfs_segctor_kill_thread(sci);
  2363. flag = ((sci->sc_state & NILFS_SEGCTOR_COMMIT) || sci->sc_flush_request
  2364. || sci->sc_seq_request != sci->sc_seq_done);
  2365. spin_unlock(&sci->sc_state_lock);
  2366. if (flush_work(&sci->sc_iput_work))
  2367. flag = true;
  2368. if (flag || !nilfs_segctor_confirm(sci))
  2369. nilfs_segctor_write_out(sci);
  2370. if (!list_empty(&sci->sc_dirty_files)) {
  2371. nilfs_msg(sci->sc_super, KERN_WARNING,
  2372. "disposed unprocessed dirty file(s) when stopping log writer");
  2373. nilfs_dispose_list(nilfs, &sci->sc_dirty_files, 1);
  2374. }
  2375. if (!list_empty(&sci->sc_iput_queue)) {
  2376. nilfs_msg(sci->sc_super, KERN_WARNING,
  2377. "disposed unprocessed inode(s) in iput queue when stopping log writer");
  2378. nilfs_dispose_list(nilfs, &sci->sc_iput_queue, 1);
  2379. }
  2380. WARN_ON(!list_empty(&sci->sc_segbufs));
  2381. WARN_ON(!list_empty(&sci->sc_write_logs));
  2382. nilfs_put_root(sci->sc_root);
  2383. down_write(&nilfs->ns_segctor_sem);
  2384. del_timer_sync(&sci->sc_timer);
  2385. kfree(sci);
  2386. }
  2387. /**
  2388. * nilfs_attach_log_writer - attach log writer
  2389. * @sb: super block instance
  2390. * @root: root object of the current filesystem tree
  2391. *
  2392. * This allocates a log writer object, initializes it, and starts the
  2393. * log writer.
  2394. *
  2395. * Return Value: On success, 0 is returned. On error, one of the following
  2396. * negative error code is returned.
  2397. *
  2398. * %-ENOMEM - Insufficient memory available.
  2399. */
  2400. int nilfs_attach_log_writer(struct super_block *sb, struct nilfs_root *root)
  2401. {
  2402. struct the_nilfs *nilfs = sb->s_fs_info;
  2403. int err;
  2404. if (nilfs->ns_writer) {
  2405. /*
  2406. * This happens if the filesystem was remounted
  2407. * read/write after nilfs_error degenerated it into a
  2408. * read-only mount.
  2409. */
  2410. nilfs_detach_log_writer(sb);
  2411. }
  2412. nilfs->ns_writer = nilfs_segctor_new(sb, root);
  2413. if (!nilfs->ns_writer)
  2414. return -ENOMEM;
  2415. err = nilfs_segctor_start_thread(nilfs->ns_writer);
  2416. if (err) {
  2417. kfree(nilfs->ns_writer);
  2418. nilfs->ns_writer = NULL;
  2419. }
  2420. return err;
  2421. }
  2422. /**
  2423. * nilfs_detach_log_writer - destroy log writer
  2424. * @sb: super block instance
  2425. *
  2426. * This kills log writer daemon, frees the log writer object, and
  2427. * destroys list of dirty files.
  2428. */
  2429. void nilfs_detach_log_writer(struct super_block *sb)
  2430. {
  2431. struct the_nilfs *nilfs = sb->s_fs_info;
  2432. LIST_HEAD(garbage_list);
  2433. down_write(&nilfs->ns_segctor_sem);
  2434. if (nilfs->ns_writer) {
  2435. nilfs_segctor_destroy(nilfs->ns_writer);
  2436. nilfs->ns_writer = NULL;
  2437. }
  2438. /* Force to free the list of dirty files */
  2439. spin_lock(&nilfs->ns_inode_lock);
  2440. if (!list_empty(&nilfs->ns_dirty_files)) {
  2441. list_splice_init(&nilfs->ns_dirty_files, &garbage_list);
  2442. nilfs_msg(sb, KERN_WARNING,
  2443. "disposed unprocessed dirty file(s) when detaching log writer");
  2444. }
  2445. spin_unlock(&nilfs->ns_inode_lock);
  2446. up_write(&nilfs->ns_segctor_sem);
  2447. nilfs_dispose_list(nilfs, &garbage_list, 1);
  2448. }