checkpoint.c 24 KB

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  1. /*
  2. * fs/f2fs/checkpoint.c
  3. *
  4. * Copyright (c) 2012 Samsung Electronics Co., Ltd.
  5. * http://www.samsung.com/
  6. *
  7. * This program is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License version 2 as
  9. * published by the Free Software Foundation.
  10. */
  11. #include <linux/fs.h>
  12. #include <linux/bio.h>
  13. #include <linux/mpage.h>
  14. #include <linux/writeback.h>
  15. #include <linux/blkdev.h>
  16. #include <linux/f2fs_fs.h>
  17. #include <linux/pagevec.h>
  18. #include <linux/swap.h>
  19. #include "f2fs.h"
  20. #include "node.h"
  21. #include "segment.h"
  22. #include <trace/events/f2fs.h>
  23. static struct kmem_cache *orphan_entry_slab;
  24. static struct kmem_cache *inode_entry_slab;
  25. /*
  26. * We guarantee no failure on the returned page.
  27. */
  28. struct page *grab_meta_page(struct f2fs_sb_info *sbi, pgoff_t index)
  29. {
  30. struct address_space *mapping = META_MAPPING(sbi);
  31. struct page *page = NULL;
  32. repeat:
  33. page = grab_cache_page(mapping, index);
  34. if (!page) {
  35. cond_resched();
  36. goto repeat;
  37. }
  38. f2fs_wait_on_page_writeback(page, META);
  39. SetPageUptodate(page);
  40. return page;
  41. }
  42. /*
  43. * We guarantee no failure on the returned page.
  44. */
  45. struct page *get_meta_page(struct f2fs_sb_info *sbi, pgoff_t index)
  46. {
  47. struct address_space *mapping = META_MAPPING(sbi);
  48. struct page *page;
  49. repeat:
  50. page = grab_cache_page(mapping, index);
  51. if (!page) {
  52. cond_resched();
  53. goto repeat;
  54. }
  55. if (PageUptodate(page))
  56. goto out;
  57. if (f2fs_submit_page_bio(sbi, page, index,
  58. READ_SYNC | REQ_META | REQ_PRIO))
  59. goto repeat;
  60. lock_page(page);
  61. if (unlikely(page->mapping != mapping)) {
  62. f2fs_put_page(page, 1);
  63. goto repeat;
  64. }
  65. out:
  66. return page;
  67. }
  68. static inline int get_max_meta_blks(struct f2fs_sb_info *sbi, int type)
  69. {
  70. switch (type) {
  71. case META_NAT:
  72. return NM_I(sbi)->max_nid / NAT_ENTRY_PER_BLOCK;
  73. case META_SIT:
  74. return SIT_BLK_CNT(sbi);
  75. case META_SSA:
  76. case META_CP:
  77. return 0;
  78. default:
  79. BUG();
  80. }
  81. }
  82. /*
  83. * Readahead CP/NAT/SIT/SSA pages
  84. */
  85. int ra_meta_pages(struct f2fs_sb_info *sbi, int start, int nrpages, int type)
  86. {
  87. block_t prev_blk_addr = 0;
  88. struct page *page;
  89. int blkno = start;
  90. int max_blks = get_max_meta_blks(sbi, type);
  91. struct f2fs_io_info fio = {
  92. .type = META,
  93. .rw = READ_SYNC | REQ_META | REQ_PRIO
  94. };
  95. for (; nrpages-- > 0; blkno++) {
  96. block_t blk_addr;
  97. switch (type) {
  98. case META_NAT:
  99. /* get nat block addr */
  100. if (unlikely(blkno >= max_blks))
  101. blkno = 0;
  102. blk_addr = current_nat_addr(sbi,
  103. blkno * NAT_ENTRY_PER_BLOCK);
  104. break;
  105. case META_SIT:
  106. /* get sit block addr */
  107. if (unlikely(blkno >= max_blks))
  108. goto out;
  109. blk_addr = current_sit_addr(sbi,
  110. blkno * SIT_ENTRY_PER_BLOCK);
  111. if (blkno != start && prev_blk_addr + 1 != blk_addr)
  112. goto out;
  113. prev_blk_addr = blk_addr;
  114. break;
  115. case META_SSA:
  116. case META_CP:
  117. /* get ssa/cp block addr */
  118. blk_addr = blkno;
  119. break;
  120. default:
  121. BUG();
  122. }
  123. page = grab_cache_page(META_MAPPING(sbi), blk_addr);
  124. if (!page)
  125. continue;
  126. if (PageUptodate(page)) {
  127. f2fs_put_page(page, 1);
  128. continue;
  129. }
  130. f2fs_submit_page_mbio(sbi, page, blk_addr, &fio);
  131. f2fs_put_page(page, 0);
  132. }
  133. out:
  134. f2fs_submit_merged_bio(sbi, META, READ);
  135. return blkno - start;
  136. }
  137. static int f2fs_write_meta_page(struct page *page,
  138. struct writeback_control *wbc)
  139. {
  140. struct inode *inode = page->mapping->host;
  141. struct f2fs_sb_info *sbi = F2FS_SB(inode->i_sb);
  142. trace_f2fs_writepage(page, META);
  143. if (unlikely(sbi->por_doing))
  144. goto redirty_out;
  145. if (wbc->for_reclaim)
  146. goto redirty_out;
  147. /* Should not write any meta pages, if any IO error was occurred */
  148. if (unlikely(is_set_ckpt_flags(F2FS_CKPT(sbi), CP_ERROR_FLAG)))
  149. goto no_write;
  150. f2fs_wait_on_page_writeback(page, META);
  151. write_meta_page(sbi, page);
  152. no_write:
  153. dec_page_count(sbi, F2FS_DIRTY_META);
  154. unlock_page(page);
  155. return 0;
  156. redirty_out:
  157. redirty_page_for_writepage(wbc, page);
  158. return AOP_WRITEPAGE_ACTIVATE;
  159. }
  160. static int f2fs_write_meta_pages(struct address_space *mapping,
  161. struct writeback_control *wbc)
  162. {
  163. struct f2fs_sb_info *sbi = F2FS_SB(mapping->host->i_sb);
  164. long diff, written;
  165. trace_f2fs_writepages(mapping->host, wbc, META);
  166. /* collect a number of dirty meta pages and write together */
  167. if (wbc->for_kupdate ||
  168. get_pages(sbi, F2FS_DIRTY_META) < nr_pages_to_skip(sbi, META))
  169. goto skip_write;
  170. /* if mounting is failed, skip writing node pages */
  171. mutex_lock(&sbi->cp_mutex);
  172. diff = nr_pages_to_write(sbi, META, wbc);
  173. written = sync_meta_pages(sbi, META, wbc->nr_to_write);
  174. mutex_unlock(&sbi->cp_mutex);
  175. wbc->nr_to_write = max((long)0, wbc->nr_to_write - written - diff);
  176. return 0;
  177. skip_write:
  178. wbc->pages_skipped += get_pages(sbi, F2FS_DIRTY_META);
  179. return 0;
  180. }
  181. long sync_meta_pages(struct f2fs_sb_info *sbi, enum page_type type,
  182. long nr_to_write)
  183. {
  184. struct address_space *mapping = META_MAPPING(sbi);
  185. pgoff_t index = 0, end = LONG_MAX;
  186. struct pagevec pvec;
  187. long nwritten = 0;
  188. struct writeback_control wbc = {
  189. .for_reclaim = 0,
  190. };
  191. pagevec_init(&pvec, 0);
  192. while (index <= end) {
  193. int i, nr_pages;
  194. nr_pages = pagevec_lookup_tag(&pvec, mapping, &index,
  195. PAGECACHE_TAG_DIRTY,
  196. min(end - index, (pgoff_t)PAGEVEC_SIZE-1) + 1);
  197. if (unlikely(nr_pages == 0))
  198. break;
  199. for (i = 0; i < nr_pages; i++) {
  200. struct page *page = pvec.pages[i];
  201. lock_page(page);
  202. if (unlikely(page->mapping != mapping)) {
  203. continue_unlock:
  204. unlock_page(page);
  205. continue;
  206. }
  207. if (!PageDirty(page)) {
  208. /* someone wrote it for us */
  209. goto continue_unlock;
  210. }
  211. if (!clear_page_dirty_for_io(page))
  212. goto continue_unlock;
  213. if (f2fs_write_meta_page(page, &wbc)) {
  214. unlock_page(page);
  215. break;
  216. }
  217. nwritten++;
  218. if (unlikely(nwritten >= nr_to_write))
  219. break;
  220. }
  221. pagevec_release(&pvec);
  222. cond_resched();
  223. }
  224. if (nwritten)
  225. f2fs_submit_merged_bio(sbi, type, WRITE);
  226. return nwritten;
  227. }
  228. static int f2fs_set_meta_page_dirty(struct page *page)
  229. {
  230. struct address_space *mapping = page->mapping;
  231. struct f2fs_sb_info *sbi = F2FS_SB(mapping->host->i_sb);
  232. trace_f2fs_set_page_dirty(page, META);
  233. SetPageUptodate(page);
  234. if (!PageDirty(page)) {
  235. __set_page_dirty_nobuffers(page);
  236. inc_page_count(sbi, F2FS_DIRTY_META);
  237. return 1;
  238. }
  239. return 0;
  240. }
  241. const struct address_space_operations f2fs_meta_aops = {
  242. .writepage = f2fs_write_meta_page,
  243. .writepages = f2fs_write_meta_pages,
  244. .set_page_dirty = f2fs_set_meta_page_dirty,
  245. };
  246. int acquire_orphan_inode(struct f2fs_sb_info *sbi)
  247. {
  248. int err = 0;
  249. spin_lock(&sbi->orphan_inode_lock);
  250. if (unlikely(sbi->n_orphans >= sbi->max_orphans))
  251. err = -ENOSPC;
  252. else
  253. sbi->n_orphans++;
  254. spin_unlock(&sbi->orphan_inode_lock);
  255. return err;
  256. }
  257. void release_orphan_inode(struct f2fs_sb_info *sbi)
  258. {
  259. spin_lock(&sbi->orphan_inode_lock);
  260. f2fs_bug_on(sbi->n_orphans == 0);
  261. sbi->n_orphans--;
  262. spin_unlock(&sbi->orphan_inode_lock);
  263. }
  264. void add_orphan_inode(struct f2fs_sb_info *sbi, nid_t ino)
  265. {
  266. struct list_head *head;
  267. struct orphan_inode_entry *new, *orphan;
  268. new = f2fs_kmem_cache_alloc(orphan_entry_slab, GFP_ATOMIC);
  269. new->ino = ino;
  270. spin_lock(&sbi->orphan_inode_lock);
  271. head = &sbi->orphan_inode_list;
  272. list_for_each_entry(orphan, head, list) {
  273. if (orphan->ino == ino) {
  274. spin_unlock(&sbi->orphan_inode_lock);
  275. kmem_cache_free(orphan_entry_slab, new);
  276. return;
  277. }
  278. if (orphan->ino > ino)
  279. break;
  280. }
  281. /* add new orphan entry into list which is sorted by inode number */
  282. list_add_tail(&new->list, &orphan->list);
  283. spin_unlock(&sbi->orphan_inode_lock);
  284. }
  285. void remove_orphan_inode(struct f2fs_sb_info *sbi, nid_t ino)
  286. {
  287. struct list_head *head;
  288. struct orphan_inode_entry *orphan;
  289. spin_lock(&sbi->orphan_inode_lock);
  290. head = &sbi->orphan_inode_list;
  291. list_for_each_entry(orphan, head, list) {
  292. if (orphan->ino == ino) {
  293. list_del(&orphan->list);
  294. f2fs_bug_on(sbi->n_orphans == 0);
  295. sbi->n_orphans--;
  296. spin_unlock(&sbi->orphan_inode_lock);
  297. kmem_cache_free(orphan_entry_slab, orphan);
  298. return;
  299. }
  300. }
  301. spin_unlock(&sbi->orphan_inode_lock);
  302. }
  303. static void recover_orphan_inode(struct f2fs_sb_info *sbi, nid_t ino)
  304. {
  305. struct inode *inode = f2fs_iget(sbi->sb, ino);
  306. f2fs_bug_on(IS_ERR(inode));
  307. clear_nlink(inode);
  308. /* truncate all the data during iput */
  309. iput(inode);
  310. }
  311. void recover_orphan_inodes(struct f2fs_sb_info *sbi)
  312. {
  313. block_t start_blk, orphan_blkaddr, i, j;
  314. if (!is_set_ckpt_flags(F2FS_CKPT(sbi), CP_ORPHAN_PRESENT_FLAG))
  315. return;
  316. sbi->por_doing = true;
  317. start_blk = __start_cp_addr(sbi) + 1 +
  318. le32_to_cpu(F2FS_RAW_SUPER(sbi)->cp_payload);
  319. orphan_blkaddr = __start_sum_addr(sbi) - 1;
  320. ra_meta_pages(sbi, start_blk, orphan_blkaddr, META_CP);
  321. for (i = 0; i < orphan_blkaddr; i++) {
  322. struct page *page = get_meta_page(sbi, start_blk + i);
  323. struct f2fs_orphan_block *orphan_blk;
  324. orphan_blk = (struct f2fs_orphan_block *)page_address(page);
  325. for (j = 0; j < le32_to_cpu(orphan_blk->entry_count); j++) {
  326. nid_t ino = le32_to_cpu(orphan_blk->ino[j]);
  327. recover_orphan_inode(sbi, ino);
  328. }
  329. f2fs_put_page(page, 1);
  330. }
  331. /* clear Orphan Flag */
  332. clear_ckpt_flags(F2FS_CKPT(sbi), CP_ORPHAN_PRESENT_FLAG);
  333. sbi->por_doing = false;
  334. return;
  335. }
  336. static void write_orphan_inodes(struct f2fs_sb_info *sbi, block_t start_blk)
  337. {
  338. struct list_head *head;
  339. struct f2fs_orphan_block *orphan_blk = NULL;
  340. unsigned int nentries = 0;
  341. unsigned short index;
  342. unsigned short orphan_blocks = (unsigned short)((sbi->n_orphans +
  343. (F2FS_ORPHANS_PER_BLOCK - 1)) / F2FS_ORPHANS_PER_BLOCK);
  344. struct page *page = NULL;
  345. struct orphan_inode_entry *orphan = NULL;
  346. for (index = 0; index < orphan_blocks; index++)
  347. grab_meta_page(sbi, start_blk + index);
  348. index = 1;
  349. spin_lock(&sbi->orphan_inode_lock);
  350. head = &sbi->orphan_inode_list;
  351. /* loop for each orphan inode entry and write them in Jornal block */
  352. list_for_each_entry(orphan, head, list) {
  353. if (!page) {
  354. page = find_get_page(META_MAPPING(sbi), start_blk++);
  355. f2fs_bug_on(!page);
  356. orphan_blk =
  357. (struct f2fs_orphan_block *)page_address(page);
  358. memset(orphan_blk, 0, sizeof(*orphan_blk));
  359. f2fs_put_page(page, 0);
  360. }
  361. orphan_blk->ino[nentries++] = cpu_to_le32(orphan->ino);
  362. if (nentries == F2FS_ORPHANS_PER_BLOCK) {
  363. /*
  364. * an orphan block is full of 1020 entries,
  365. * then we need to flush current orphan blocks
  366. * and bring another one in memory
  367. */
  368. orphan_blk->blk_addr = cpu_to_le16(index);
  369. orphan_blk->blk_count = cpu_to_le16(orphan_blocks);
  370. orphan_blk->entry_count = cpu_to_le32(nentries);
  371. set_page_dirty(page);
  372. f2fs_put_page(page, 1);
  373. index++;
  374. nentries = 0;
  375. page = NULL;
  376. }
  377. }
  378. if (page) {
  379. orphan_blk->blk_addr = cpu_to_le16(index);
  380. orphan_blk->blk_count = cpu_to_le16(orphan_blocks);
  381. orphan_blk->entry_count = cpu_to_le32(nentries);
  382. set_page_dirty(page);
  383. f2fs_put_page(page, 1);
  384. }
  385. spin_unlock(&sbi->orphan_inode_lock);
  386. }
  387. static struct page *validate_checkpoint(struct f2fs_sb_info *sbi,
  388. block_t cp_addr, unsigned long long *version)
  389. {
  390. struct page *cp_page_1, *cp_page_2 = NULL;
  391. unsigned long blk_size = sbi->blocksize;
  392. struct f2fs_checkpoint *cp_block;
  393. unsigned long long cur_version = 0, pre_version = 0;
  394. size_t crc_offset;
  395. __u32 crc = 0;
  396. /* Read the 1st cp block in this CP pack */
  397. cp_page_1 = get_meta_page(sbi, cp_addr);
  398. /* get the version number */
  399. cp_block = (struct f2fs_checkpoint *)page_address(cp_page_1);
  400. crc_offset = le32_to_cpu(cp_block->checksum_offset);
  401. if (crc_offset >= blk_size)
  402. goto invalid_cp1;
  403. crc = le32_to_cpu(*((__u32 *)((unsigned char *)cp_block + crc_offset)));
  404. if (!f2fs_crc_valid(crc, cp_block, crc_offset))
  405. goto invalid_cp1;
  406. pre_version = cur_cp_version(cp_block);
  407. /* Read the 2nd cp block in this CP pack */
  408. cp_addr += le32_to_cpu(cp_block->cp_pack_total_block_count) - 1;
  409. cp_page_2 = get_meta_page(sbi, cp_addr);
  410. cp_block = (struct f2fs_checkpoint *)page_address(cp_page_2);
  411. crc_offset = le32_to_cpu(cp_block->checksum_offset);
  412. if (crc_offset >= blk_size)
  413. goto invalid_cp2;
  414. crc = le32_to_cpu(*((__u32 *)((unsigned char *)cp_block + crc_offset)));
  415. if (!f2fs_crc_valid(crc, cp_block, crc_offset))
  416. goto invalid_cp2;
  417. cur_version = cur_cp_version(cp_block);
  418. if (cur_version == pre_version) {
  419. *version = cur_version;
  420. f2fs_put_page(cp_page_2, 1);
  421. return cp_page_1;
  422. }
  423. invalid_cp2:
  424. f2fs_put_page(cp_page_2, 1);
  425. invalid_cp1:
  426. f2fs_put_page(cp_page_1, 1);
  427. return NULL;
  428. }
  429. int get_valid_checkpoint(struct f2fs_sb_info *sbi)
  430. {
  431. struct f2fs_checkpoint *cp_block;
  432. struct f2fs_super_block *fsb = sbi->raw_super;
  433. struct page *cp1, *cp2, *cur_page;
  434. unsigned long blk_size = sbi->blocksize;
  435. unsigned long long cp1_version = 0, cp2_version = 0;
  436. unsigned long long cp_start_blk_no;
  437. unsigned int cp_blks = 1 + le32_to_cpu(F2FS_RAW_SUPER(sbi)->cp_payload);
  438. block_t cp_blk_no;
  439. int i;
  440. sbi->ckpt = kzalloc(cp_blks * blk_size, GFP_KERNEL);
  441. if (!sbi->ckpt)
  442. return -ENOMEM;
  443. /*
  444. * Finding out valid cp block involves read both
  445. * sets( cp pack1 and cp pack 2)
  446. */
  447. cp_start_blk_no = le32_to_cpu(fsb->cp_blkaddr);
  448. cp1 = validate_checkpoint(sbi, cp_start_blk_no, &cp1_version);
  449. /* The second checkpoint pack should start at the next segment */
  450. cp_start_blk_no += ((unsigned long long)1) <<
  451. le32_to_cpu(fsb->log_blocks_per_seg);
  452. cp2 = validate_checkpoint(sbi, cp_start_blk_no, &cp2_version);
  453. if (cp1 && cp2) {
  454. if (ver_after(cp2_version, cp1_version))
  455. cur_page = cp2;
  456. else
  457. cur_page = cp1;
  458. } else if (cp1) {
  459. cur_page = cp1;
  460. } else if (cp2) {
  461. cur_page = cp2;
  462. } else {
  463. goto fail_no_cp;
  464. }
  465. cp_block = (struct f2fs_checkpoint *)page_address(cur_page);
  466. memcpy(sbi->ckpt, cp_block, blk_size);
  467. if (cp_blks <= 1)
  468. goto done;
  469. cp_blk_no = le32_to_cpu(fsb->cp_blkaddr);
  470. if (cur_page == cp2)
  471. cp_blk_no += 1 << le32_to_cpu(fsb->log_blocks_per_seg);
  472. for (i = 1; i < cp_blks; i++) {
  473. void *sit_bitmap_ptr;
  474. unsigned char *ckpt = (unsigned char *)sbi->ckpt;
  475. cur_page = get_meta_page(sbi, cp_blk_no + i);
  476. sit_bitmap_ptr = page_address(cur_page);
  477. memcpy(ckpt + i * blk_size, sit_bitmap_ptr, blk_size);
  478. f2fs_put_page(cur_page, 1);
  479. }
  480. done:
  481. f2fs_put_page(cp1, 1);
  482. f2fs_put_page(cp2, 1);
  483. return 0;
  484. fail_no_cp:
  485. kfree(sbi->ckpt);
  486. return -EINVAL;
  487. }
  488. static int __add_dirty_inode(struct inode *inode, struct dir_inode_entry *new)
  489. {
  490. struct f2fs_sb_info *sbi = F2FS_SB(inode->i_sb);
  491. if (is_inode_flag_set(F2FS_I(inode), FI_DIRTY_DIR))
  492. return -EEXIST;
  493. set_inode_flag(F2FS_I(inode), FI_DIRTY_DIR);
  494. F2FS_I(inode)->dirty_dir = new;
  495. list_add_tail(&new->list, &sbi->dir_inode_list);
  496. stat_inc_dirty_dir(sbi);
  497. return 0;
  498. }
  499. void set_dirty_dir_page(struct inode *inode, struct page *page)
  500. {
  501. struct f2fs_sb_info *sbi = F2FS_SB(inode->i_sb);
  502. struct dir_inode_entry *new;
  503. int ret = 0;
  504. if (!S_ISDIR(inode->i_mode))
  505. return;
  506. new = f2fs_kmem_cache_alloc(inode_entry_slab, GFP_NOFS);
  507. new->inode = inode;
  508. INIT_LIST_HEAD(&new->list);
  509. spin_lock(&sbi->dir_inode_lock);
  510. ret = __add_dirty_inode(inode, new);
  511. inode_inc_dirty_dents(inode);
  512. SetPagePrivate(page);
  513. spin_unlock(&sbi->dir_inode_lock);
  514. if (ret)
  515. kmem_cache_free(inode_entry_slab, new);
  516. }
  517. void add_dirty_dir_inode(struct inode *inode)
  518. {
  519. struct f2fs_sb_info *sbi = F2FS_SB(inode->i_sb);
  520. struct dir_inode_entry *new =
  521. f2fs_kmem_cache_alloc(inode_entry_slab, GFP_NOFS);
  522. int ret = 0;
  523. new->inode = inode;
  524. INIT_LIST_HEAD(&new->list);
  525. spin_lock(&sbi->dir_inode_lock);
  526. ret = __add_dirty_inode(inode, new);
  527. spin_unlock(&sbi->dir_inode_lock);
  528. if (ret)
  529. kmem_cache_free(inode_entry_slab, new);
  530. }
  531. void remove_dirty_dir_inode(struct inode *inode)
  532. {
  533. struct f2fs_sb_info *sbi = F2FS_SB(inode->i_sb);
  534. struct dir_inode_entry *entry;
  535. if (!S_ISDIR(inode->i_mode))
  536. return;
  537. spin_lock(&sbi->dir_inode_lock);
  538. if (get_dirty_dents(inode) ||
  539. !is_inode_flag_set(F2FS_I(inode), FI_DIRTY_DIR)) {
  540. spin_unlock(&sbi->dir_inode_lock);
  541. return;
  542. }
  543. entry = F2FS_I(inode)->dirty_dir;
  544. list_del(&entry->list);
  545. F2FS_I(inode)->dirty_dir = NULL;
  546. clear_inode_flag(F2FS_I(inode), FI_DIRTY_DIR);
  547. stat_dec_dirty_dir(sbi);
  548. spin_unlock(&sbi->dir_inode_lock);
  549. kmem_cache_free(inode_entry_slab, entry);
  550. /* Only from the recovery routine */
  551. if (is_inode_flag_set(F2FS_I(inode), FI_DELAY_IPUT)) {
  552. clear_inode_flag(F2FS_I(inode), FI_DELAY_IPUT);
  553. iput(inode);
  554. }
  555. }
  556. void sync_dirty_dir_inodes(struct f2fs_sb_info *sbi)
  557. {
  558. struct list_head *head;
  559. struct dir_inode_entry *entry;
  560. struct inode *inode;
  561. retry:
  562. spin_lock(&sbi->dir_inode_lock);
  563. head = &sbi->dir_inode_list;
  564. if (list_empty(head)) {
  565. spin_unlock(&sbi->dir_inode_lock);
  566. return;
  567. }
  568. entry = list_entry(head->next, struct dir_inode_entry, list);
  569. inode = igrab(entry->inode);
  570. spin_unlock(&sbi->dir_inode_lock);
  571. if (inode) {
  572. filemap_fdatawrite(inode->i_mapping);
  573. iput(inode);
  574. } else {
  575. /*
  576. * We should submit bio, since it exists several
  577. * wribacking dentry pages in the freeing inode.
  578. */
  579. f2fs_submit_merged_bio(sbi, DATA, WRITE);
  580. }
  581. goto retry;
  582. }
  583. /*
  584. * Freeze all the FS-operations for checkpoint.
  585. */
  586. static void block_operations(struct f2fs_sb_info *sbi)
  587. {
  588. struct writeback_control wbc = {
  589. .sync_mode = WB_SYNC_ALL,
  590. .nr_to_write = LONG_MAX,
  591. .for_reclaim = 0,
  592. };
  593. struct blk_plug plug;
  594. blk_start_plug(&plug);
  595. retry_flush_dents:
  596. f2fs_lock_all(sbi);
  597. /* write all the dirty dentry pages */
  598. if (get_pages(sbi, F2FS_DIRTY_DENTS)) {
  599. f2fs_unlock_all(sbi);
  600. sync_dirty_dir_inodes(sbi);
  601. goto retry_flush_dents;
  602. }
  603. /*
  604. * POR: we should ensure that there is no dirty node pages
  605. * until finishing nat/sit flush.
  606. */
  607. retry_flush_nodes:
  608. mutex_lock(&sbi->node_write);
  609. if (get_pages(sbi, F2FS_DIRTY_NODES)) {
  610. mutex_unlock(&sbi->node_write);
  611. sync_node_pages(sbi, 0, &wbc);
  612. goto retry_flush_nodes;
  613. }
  614. blk_finish_plug(&plug);
  615. }
  616. static void unblock_operations(struct f2fs_sb_info *sbi)
  617. {
  618. mutex_unlock(&sbi->node_write);
  619. f2fs_unlock_all(sbi);
  620. }
  621. static void wait_on_all_pages_writeback(struct f2fs_sb_info *sbi)
  622. {
  623. DEFINE_WAIT(wait);
  624. for (;;) {
  625. prepare_to_wait(&sbi->cp_wait, &wait, TASK_UNINTERRUPTIBLE);
  626. if (!get_pages(sbi, F2FS_WRITEBACK))
  627. break;
  628. io_schedule();
  629. }
  630. finish_wait(&sbi->cp_wait, &wait);
  631. }
  632. static void do_checkpoint(struct f2fs_sb_info *sbi, bool is_umount)
  633. {
  634. struct f2fs_checkpoint *ckpt = F2FS_CKPT(sbi);
  635. nid_t last_nid = 0;
  636. block_t start_blk;
  637. struct page *cp_page;
  638. unsigned int data_sum_blocks, orphan_blocks;
  639. __u32 crc32 = 0;
  640. void *kaddr;
  641. int i;
  642. int cp_payload_blks = le32_to_cpu(F2FS_RAW_SUPER(sbi)->cp_payload);
  643. /*
  644. * This avoids to conduct wrong roll-forward operations and uses
  645. * metapages, so should be called prior to sync_meta_pages below.
  646. */
  647. discard_next_dnode(sbi);
  648. /* Flush all the NAT/SIT pages */
  649. while (get_pages(sbi, F2FS_DIRTY_META))
  650. sync_meta_pages(sbi, META, LONG_MAX);
  651. next_free_nid(sbi, &last_nid);
  652. /*
  653. * modify checkpoint
  654. * version number is already updated
  655. */
  656. ckpt->elapsed_time = cpu_to_le64(get_mtime(sbi));
  657. ckpt->valid_block_count = cpu_to_le64(valid_user_blocks(sbi));
  658. ckpt->free_segment_count = cpu_to_le32(free_segments(sbi));
  659. for (i = 0; i < 3; i++) {
  660. ckpt->cur_node_segno[i] =
  661. cpu_to_le32(curseg_segno(sbi, i + CURSEG_HOT_NODE));
  662. ckpt->cur_node_blkoff[i] =
  663. cpu_to_le16(curseg_blkoff(sbi, i + CURSEG_HOT_NODE));
  664. ckpt->alloc_type[i + CURSEG_HOT_NODE] =
  665. curseg_alloc_type(sbi, i + CURSEG_HOT_NODE);
  666. }
  667. for (i = 0; i < 3; i++) {
  668. ckpt->cur_data_segno[i] =
  669. cpu_to_le32(curseg_segno(sbi, i + CURSEG_HOT_DATA));
  670. ckpt->cur_data_blkoff[i] =
  671. cpu_to_le16(curseg_blkoff(sbi, i + CURSEG_HOT_DATA));
  672. ckpt->alloc_type[i + CURSEG_HOT_DATA] =
  673. curseg_alloc_type(sbi, i + CURSEG_HOT_DATA);
  674. }
  675. ckpt->valid_node_count = cpu_to_le32(valid_node_count(sbi));
  676. ckpt->valid_inode_count = cpu_to_le32(valid_inode_count(sbi));
  677. ckpt->next_free_nid = cpu_to_le32(last_nid);
  678. /* 2 cp + n data seg summary + orphan inode blocks */
  679. data_sum_blocks = npages_for_summary_flush(sbi);
  680. if (data_sum_blocks < 3)
  681. set_ckpt_flags(ckpt, CP_COMPACT_SUM_FLAG);
  682. else
  683. clear_ckpt_flags(ckpt, CP_COMPACT_SUM_FLAG);
  684. orphan_blocks = (sbi->n_orphans + F2FS_ORPHANS_PER_BLOCK - 1)
  685. / F2FS_ORPHANS_PER_BLOCK;
  686. ckpt->cp_pack_start_sum = cpu_to_le32(1 + cp_payload_blks +
  687. orphan_blocks);
  688. if (is_umount) {
  689. set_ckpt_flags(ckpt, CP_UMOUNT_FLAG);
  690. ckpt->cp_pack_total_block_count = cpu_to_le32(2 +
  691. cp_payload_blks + data_sum_blocks +
  692. orphan_blocks + NR_CURSEG_NODE_TYPE);
  693. } else {
  694. clear_ckpt_flags(ckpt, CP_UMOUNT_FLAG);
  695. ckpt->cp_pack_total_block_count = cpu_to_le32(2 +
  696. cp_payload_blks + data_sum_blocks +
  697. orphan_blocks);
  698. }
  699. if (sbi->n_orphans)
  700. set_ckpt_flags(ckpt, CP_ORPHAN_PRESENT_FLAG);
  701. else
  702. clear_ckpt_flags(ckpt, CP_ORPHAN_PRESENT_FLAG);
  703. /* update SIT/NAT bitmap */
  704. get_sit_bitmap(sbi, __bitmap_ptr(sbi, SIT_BITMAP));
  705. get_nat_bitmap(sbi, __bitmap_ptr(sbi, NAT_BITMAP));
  706. crc32 = f2fs_crc32(ckpt, le32_to_cpu(ckpt->checksum_offset));
  707. *((__le32 *)((unsigned char *)ckpt +
  708. le32_to_cpu(ckpt->checksum_offset)))
  709. = cpu_to_le32(crc32);
  710. start_blk = __start_cp_addr(sbi);
  711. /* write out checkpoint buffer at block 0 */
  712. cp_page = grab_meta_page(sbi, start_blk++);
  713. kaddr = page_address(cp_page);
  714. memcpy(kaddr, ckpt, (1 << sbi->log_blocksize));
  715. set_page_dirty(cp_page);
  716. f2fs_put_page(cp_page, 1);
  717. for (i = 1; i < 1 + cp_payload_blks; i++) {
  718. cp_page = grab_meta_page(sbi, start_blk++);
  719. kaddr = page_address(cp_page);
  720. memcpy(kaddr, (char *)ckpt + i * F2FS_BLKSIZE,
  721. (1 << sbi->log_blocksize));
  722. set_page_dirty(cp_page);
  723. f2fs_put_page(cp_page, 1);
  724. }
  725. if (sbi->n_orphans) {
  726. write_orphan_inodes(sbi, start_blk);
  727. start_blk += orphan_blocks;
  728. }
  729. write_data_summaries(sbi, start_blk);
  730. start_blk += data_sum_blocks;
  731. if (is_umount) {
  732. write_node_summaries(sbi, start_blk);
  733. start_blk += NR_CURSEG_NODE_TYPE;
  734. }
  735. /* writeout checkpoint block */
  736. cp_page = grab_meta_page(sbi, start_blk);
  737. kaddr = page_address(cp_page);
  738. memcpy(kaddr, ckpt, (1 << sbi->log_blocksize));
  739. set_page_dirty(cp_page);
  740. f2fs_put_page(cp_page, 1);
  741. /* wait for previous submitted node/meta pages writeback */
  742. wait_on_all_pages_writeback(sbi);
  743. filemap_fdatawait_range(NODE_MAPPING(sbi), 0, LONG_MAX);
  744. filemap_fdatawait_range(META_MAPPING(sbi), 0, LONG_MAX);
  745. /* update user_block_counts */
  746. sbi->last_valid_block_count = sbi->total_valid_block_count;
  747. sbi->alloc_valid_block_count = 0;
  748. /* Here, we only have one bio having CP pack */
  749. sync_meta_pages(sbi, META_FLUSH, LONG_MAX);
  750. if (unlikely(!is_set_ckpt_flags(ckpt, CP_ERROR_FLAG))) {
  751. clear_prefree_segments(sbi);
  752. F2FS_RESET_SB_DIRT(sbi);
  753. }
  754. }
  755. /*
  756. * We guarantee that this checkpoint procedure should not fail.
  757. */
  758. void write_checkpoint(struct f2fs_sb_info *sbi, bool is_umount)
  759. {
  760. struct f2fs_checkpoint *ckpt = F2FS_CKPT(sbi);
  761. unsigned long long ckpt_ver;
  762. trace_f2fs_write_checkpoint(sbi->sb, is_umount, "start block_ops");
  763. mutex_lock(&sbi->cp_mutex);
  764. block_operations(sbi);
  765. trace_f2fs_write_checkpoint(sbi->sb, is_umount, "finish block_ops");
  766. f2fs_submit_merged_bio(sbi, DATA, WRITE);
  767. f2fs_submit_merged_bio(sbi, NODE, WRITE);
  768. f2fs_submit_merged_bio(sbi, META, WRITE);
  769. /*
  770. * update checkpoint pack index
  771. * Increase the version number so that
  772. * SIT entries and seg summaries are written at correct place
  773. */
  774. ckpt_ver = cur_cp_version(ckpt);
  775. ckpt->checkpoint_ver = cpu_to_le64(++ckpt_ver);
  776. /* write cached NAT/SIT entries to NAT/SIT area */
  777. flush_nat_entries(sbi);
  778. flush_sit_entries(sbi);
  779. /* unlock all the fs_lock[] in do_checkpoint() */
  780. do_checkpoint(sbi, is_umount);
  781. unblock_operations(sbi);
  782. mutex_unlock(&sbi->cp_mutex);
  783. stat_inc_cp_count(sbi->stat_info);
  784. trace_f2fs_write_checkpoint(sbi->sb, is_umount, "finish checkpoint");
  785. }
  786. void init_orphan_info(struct f2fs_sb_info *sbi)
  787. {
  788. spin_lock_init(&sbi->orphan_inode_lock);
  789. INIT_LIST_HEAD(&sbi->orphan_inode_list);
  790. sbi->n_orphans = 0;
  791. /*
  792. * considering 512 blocks in a segment 8 blocks are needed for cp
  793. * and log segment summaries. Remaining blocks are used to keep
  794. * orphan entries with the limitation one reserved segment
  795. * for cp pack we can have max 1020*504 orphan entries
  796. */
  797. sbi->max_orphans = (sbi->blocks_per_seg - 2 - NR_CURSEG_TYPE)
  798. * F2FS_ORPHANS_PER_BLOCK;
  799. }
  800. int __init create_checkpoint_caches(void)
  801. {
  802. orphan_entry_slab = f2fs_kmem_cache_create("f2fs_orphan_entry",
  803. sizeof(struct orphan_inode_entry));
  804. if (!orphan_entry_slab)
  805. return -ENOMEM;
  806. inode_entry_slab = f2fs_kmem_cache_create("f2fs_dirty_dir_entry",
  807. sizeof(struct dir_inode_entry));
  808. if (!inode_entry_slab) {
  809. kmem_cache_destroy(orphan_entry_slab);
  810. return -ENOMEM;
  811. }
  812. return 0;
  813. }
  814. void destroy_checkpoint_caches(void)
  815. {
  816. kmem_cache_destroy(orphan_entry_slab);
  817. kmem_cache_destroy(inode_entry_slab);
  818. }