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1 /*
2 * fs/f2fs/super.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/module.h>
12 #include <linux/init.h>
13 #include <linux/fs.h>
14 #include <linux/statfs.h>
15 #include <linux/buffer_head.h>
16 #include <linux/backing-dev.h>
17 #include <linux/kthread.h>
18 #include <linux/parser.h>
19 #include <linux/mount.h>
20 #include <linux/seq_file.h>
21 #include <linux/proc_fs.h>
22 #include <linux/random.h>
23 #include <linux/exportfs.h>
24 #include <linux/blkdev.h>
25 #include <linux/f2fs_fs.h>
26 #include <linux/sysfs.h>
27
28 #include "f2fs.h"
29 #include "node.h"
30 #include "segment.h"
31 #include "xattr.h"
32 #include "gc.h"
33 #include "trace.h"
34
35 #define CREATE_TRACE_POINTS
36 #include <trace/events/f2fs.h>
37
38 static struct proc_dir_entry *f2fs_proc_root;
39 static struct kmem_cache *f2fs_inode_cachep;
40 static struct kset *f2fs_kset;
41
42 #ifdef CONFIG_F2FS_FAULT_INJECTION
43 struct f2fs_fault_info f2fs_fault;
44
45 char *fault_name[FAULT_MAX] = {
46 [FAULT_KMALLOC] = "kmalloc",
47 [FAULT_PAGE_ALLOC] = "page alloc",
48 [FAULT_ALLOC_NID] = "alloc nid",
49 [FAULT_ORPHAN] = "orphan",
50 [FAULT_BLOCK] = "no more block",
51 [FAULT_DIR_DEPTH] = "too big dir depth",
52 [FAULT_EVICT_INODE] = "evict_inode fail",
53 };
54
55 static void f2fs_build_fault_attr(unsigned int rate)
56 {
57 if (rate) {
58 atomic_set(&f2fs_fault.inject_ops, 0);
59 f2fs_fault.inject_rate = rate;
60 f2fs_fault.inject_type = (1 << FAULT_MAX) - 1;
61 } else {
62 memset(&f2fs_fault, 0, sizeof(struct f2fs_fault_info));
63 }
64 }
65 #endif
66
67 /* f2fs-wide shrinker description */
68 static struct shrinker f2fs_shrinker_info = {
69 .scan_objects = f2fs_shrink_scan,
70 .count_objects = f2fs_shrink_count,
71 .seeks = DEFAULT_SEEKS,
72 };
73
74 enum {
75 Opt_gc_background,
76 Opt_disable_roll_forward,
77 Opt_norecovery,
78 Opt_discard,
79 Opt_nodiscard,
80 Opt_noheap,
81 Opt_user_xattr,
82 Opt_nouser_xattr,
83 Opt_acl,
84 Opt_noacl,
85 Opt_active_logs,
86 Opt_disable_ext_identify,
87 Opt_inline_xattr,
88 Opt_inline_data,
89 Opt_inline_dentry,
90 Opt_flush_merge,
91 Opt_noflush_merge,
92 Opt_nobarrier,
93 Opt_fastboot,
94 Opt_extent_cache,
95 Opt_noextent_cache,
96 Opt_noinline_data,
97 Opt_data_flush,
98 Opt_mode,
99 Opt_fault_injection,
100 Opt_lazytime,
101 Opt_nolazytime,
102 Opt_err,
103 };
104
105 static match_table_t f2fs_tokens = {
106 {Opt_gc_background, "background_gc=%s"},
107 {Opt_disable_roll_forward, "disable_roll_forward"},
108 {Opt_norecovery, "norecovery"},
109 {Opt_discard, "discard"},
110 {Opt_nodiscard, "nodiscard"},
111 {Opt_noheap, "no_heap"},
112 {Opt_user_xattr, "user_xattr"},
113 {Opt_nouser_xattr, "nouser_xattr"},
114 {Opt_acl, "acl"},
115 {Opt_noacl, "noacl"},
116 {Opt_active_logs, "active_logs=%u"},
117 {Opt_disable_ext_identify, "disable_ext_identify"},
118 {Opt_inline_xattr, "inline_xattr"},
119 {Opt_inline_data, "inline_data"},
120 {Opt_inline_dentry, "inline_dentry"},
121 {Opt_flush_merge, "flush_merge"},
122 {Opt_noflush_merge, "noflush_merge"},
123 {Opt_nobarrier, "nobarrier"},
124 {Opt_fastboot, "fastboot"},
125 {Opt_extent_cache, "extent_cache"},
126 {Opt_noextent_cache, "noextent_cache"},
127 {Opt_noinline_data, "noinline_data"},
128 {Opt_data_flush, "data_flush"},
129 {Opt_mode, "mode=%s"},
130 {Opt_fault_injection, "fault_injection=%u"},
131 {Opt_lazytime, "lazytime"},
132 {Opt_nolazytime, "nolazytime"},
133 {Opt_err, NULL},
134 };
135
136 /* Sysfs support for f2fs */
137 enum {
138 GC_THREAD, /* struct f2fs_gc_thread */
139 SM_INFO, /* struct f2fs_sm_info */
140 NM_INFO, /* struct f2fs_nm_info */
141 F2FS_SBI, /* struct f2fs_sb_info */
142 #ifdef CONFIG_F2FS_FAULT_INJECTION
143 FAULT_INFO_RATE, /* struct f2fs_fault_info */
144 FAULT_INFO_TYPE, /* struct f2fs_fault_info */
145 #endif
146 };
147
148 struct f2fs_attr {
149 struct attribute attr;
150 ssize_t (*show)(struct f2fs_attr *, struct f2fs_sb_info *, char *);
151 ssize_t (*store)(struct f2fs_attr *, struct f2fs_sb_info *,
152 const char *, size_t);
153 int struct_type;
154 int offset;
155 };
156
157 static unsigned char *__struct_ptr(struct f2fs_sb_info *sbi, int struct_type)
158 {
159 if (struct_type == GC_THREAD)
160 return (unsigned char *)sbi->gc_thread;
161 else if (struct_type == SM_INFO)
162 return (unsigned char *)SM_I(sbi);
163 else if (struct_type == NM_INFO)
164 return (unsigned char *)NM_I(sbi);
165 else if (struct_type == F2FS_SBI)
166 return (unsigned char *)sbi;
167 #ifdef CONFIG_F2FS_FAULT_INJECTION
168 else if (struct_type == FAULT_INFO_RATE ||
169 struct_type == FAULT_INFO_TYPE)
170 return (unsigned char *)&f2fs_fault;
171 #endif
172 return NULL;
173 }
174
175 static ssize_t lifetime_write_kbytes_show(struct f2fs_attr *a,
176 struct f2fs_sb_info *sbi, char *buf)
177 {
178 struct super_block *sb = sbi->sb;
179
180 if (!sb->s_bdev->bd_part)
181 return snprintf(buf, PAGE_SIZE, "0\n");
182
183 return snprintf(buf, PAGE_SIZE, "%llu\n",
184 (unsigned long long)(sbi->kbytes_written +
185 BD_PART_WRITTEN(sbi)));
186 }
187
188 static ssize_t f2fs_sbi_show(struct f2fs_attr *a,
189 struct f2fs_sb_info *sbi, char *buf)
190 {
191 unsigned char *ptr = NULL;
192 unsigned int *ui;
193
194 ptr = __struct_ptr(sbi, a->struct_type);
195 if (!ptr)
196 return -EINVAL;
197
198 ui = (unsigned int *)(ptr + a->offset);
199
200 return snprintf(buf, PAGE_SIZE, "%u\n", *ui);
201 }
202
203 static ssize_t f2fs_sbi_store(struct f2fs_attr *a,
204 struct f2fs_sb_info *sbi,
205 const char *buf, size_t count)
206 {
207 unsigned char *ptr;
208 unsigned long t;
209 unsigned int *ui;
210 ssize_t ret;
211
212 ptr = __struct_ptr(sbi, a->struct_type);
213 if (!ptr)
214 return -EINVAL;
215
216 ui = (unsigned int *)(ptr + a->offset);
217
218 ret = kstrtoul(skip_spaces(buf), 0, &t);
219 if (ret < 0)
220 return ret;
221 #ifdef CONFIG_F2FS_FAULT_INJECTION
222 if (a->struct_type == FAULT_INFO_TYPE && t >= (1 << FAULT_MAX))
223 return -EINVAL;
224 #endif
225 *ui = t;
226 return count;
227 }
228
229 static ssize_t f2fs_attr_show(struct kobject *kobj,
230 struct attribute *attr, char *buf)
231 {
232 struct f2fs_sb_info *sbi = container_of(kobj, struct f2fs_sb_info,
233 s_kobj);
234 struct f2fs_attr *a = container_of(attr, struct f2fs_attr, attr);
235
236 return a->show ? a->show(a, sbi, buf) : 0;
237 }
238
239 static ssize_t f2fs_attr_store(struct kobject *kobj, struct attribute *attr,
240 const char *buf, size_t len)
241 {
242 struct f2fs_sb_info *sbi = container_of(kobj, struct f2fs_sb_info,
243 s_kobj);
244 struct f2fs_attr *a = container_of(attr, struct f2fs_attr, attr);
245
246 return a->store ? a->store(a, sbi, buf, len) : 0;
247 }
248
249 static void f2fs_sb_release(struct kobject *kobj)
250 {
251 struct f2fs_sb_info *sbi = container_of(kobj, struct f2fs_sb_info,
252 s_kobj);
253 complete(&sbi->s_kobj_unregister);
254 }
255
256 #define F2FS_ATTR_OFFSET(_struct_type, _name, _mode, _show, _store, _offset) \
257 static struct f2fs_attr f2fs_attr_##_name = { \
258 .attr = {.name = __stringify(_name), .mode = _mode }, \
259 .show = _show, \
260 .store = _store, \
261 .struct_type = _struct_type, \
262 .offset = _offset \
263 }
264
265 #define F2FS_RW_ATTR(struct_type, struct_name, name, elname) \
266 F2FS_ATTR_OFFSET(struct_type, name, 0644, \
267 f2fs_sbi_show, f2fs_sbi_store, \
268 offsetof(struct struct_name, elname))
269
270 #define F2FS_GENERAL_RO_ATTR(name) \
271 static struct f2fs_attr f2fs_attr_##name = __ATTR(name, 0444, name##_show, NULL)
272
273 F2FS_RW_ATTR(GC_THREAD, f2fs_gc_kthread, gc_min_sleep_time, min_sleep_time);
274 F2FS_RW_ATTR(GC_THREAD, f2fs_gc_kthread, gc_max_sleep_time, max_sleep_time);
275 F2FS_RW_ATTR(GC_THREAD, f2fs_gc_kthread, gc_no_gc_sleep_time, no_gc_sleep_time);
276 F2FS_RW_ATTR(GC_THREAD, f2fs_gc_kthread, gc_idle, gc_idle);
277 F2FS_RW_ATTR(SM_INFO, f2fs_sm_info, reclaim_segments, rec_prefree_segments);
278 F2FS_RW_ATTR(SM_INFO, f2fs_sm_info, max_small_discards, max_discards);
279 F2FS_RW_ATTR(SM_INFO, f2fs_sm_info, batched_trim_sections, trim_sections);
280 F2FS_RW_ATTR(SM_INFO, f2fs_sm_info, ipu_policy, ipu_policy);
281 F2FS_RW_ATTR(SM_INFO, f2fs_sm_info, min_ipu_util, min_ipu_util);
282 F2FS_RW_ATTR(SM_INFO, f2fs_sm_info, min_fsync_blocks, min_fsync_blocks);
283 F2FS_RW_ATTR(NM_INFO, f2fs_nm_info, ram_thresh, ram_thresh);
284 F2FS_RW_ATTR(NM_INFO, f2fs_nm_info, ra_nid_pages, ra_nid_pages);
285 F2FS_RW_ATTR(NM_INFO, f2fs_nm_info, dirty_nats_ratio, dirty_nats_ratio);
286 F2FS_RW_ATTR(F2FS_SBI, f2fs_sb_info, max_victim_search, max_victim_search);
287 F2FS_RW_ATTR(F2FS_SBI, f2fs_sb_info, dir_level, dir_level);
288 F2FS_RW_ATTR(F2FS_SBI, f2fs_sb_info, cp_interval, interval_time[CP_TIME]);
289 F2FS_RW_ATTR(F2FS_SBI, f2fs_sb_info, idle_interval, interval_time[REQ_TIME]);
290 #ifdef CONFIG_F2FS_FAULT_INJECTION
291 F2FS_RW_ATTR(FAULT_INFO_RATE, f2fs_fault_info, inject_rate, inject_rate);
292 F2FS_RW_ATTR(FAULT_INFO_TYPE, f2fs_fault_info, inject_type, inject_type);
293 #endif
294 F2FS_GENERAL_RO_ATTR(lifetime_write_kbytes);
295
296 #define ATTR_LIST(name) (&f2fs_attr_##name.attr)
297 static struct attribute *f2fs_attrs[] = {
298 ATTR_LIST(gc_min_sleep_time),
299 ATTR_LIST(gc_max_sleep_time),
300 ATTR_LIST(gc_no_gc_sleep_time),
301 ATTR_LIST(gc_idle),
302 ATTR_LIST(reclaim_segments),
303 ATTR_LIST(max_small_discards),
304 ATTR_LIST(batched_trim_sections),
305 ATTR_LIST(ipu_policy),
306 ATTR_LIST(min_ipu_util),
307 ATTR_LIST(min_fsync_blocks),
308 ATTR_LIST(max_victim_search),
309 ATTR_LIST(dir_level),
310 ATTR_LIST(ram_thresh),
311 ATTR_LIST(ra_nid_pages),
312 ATTR_LIST(dirty_nats_ratio),
313 ATTR_LIST(cp_interval),
314 ATTR_LIST(idle_interval),
315 ATTR_LIST(lifetime_write_kbytes),
316 NULL,
317 };
318
319 static const struct sysfs_ops f2fs_attr_ops = {
320 .show = f2fs_attr_show,
321 .store = f2fs_attr_store,
322 };
323
324 static struct kobj_type f2fs_ktype = {
325 .default_attrs = f2fs_attrs,
326 .sysfs_ops = &f2fs_attr_ops,
327 .release = f2fs_sb_release,
328 };
329
330 #ifdef CONFIG_F2FS_FAULT_INJECTION
331 /* sysfs for f2fs fault injection */
332 static struct kobject f2fs_fault_inject;
333
334 static struct attribute *f2fs_fault_attrs[] = {
335 ATTR_LIST(inject_rate),
336 ATTR_LIST(inject_type),
337 NULL
338 };
339
340 static struct kobj_type f2fs_fault_ktype = {
341 .default_attrs = f2fs_fault_attrs,
342 .sysfs_ops = &f2fs_attr_ops,
343 };
344 #endif
345
346 void f2fs_msg(struct super_block *sb, const char *level, const char *fmt, ...)
347 {
348 struct va_format vaf;
349 va_list args;
350
351 va_start(args, fmt);
352 vaf.fmt = fmt;
353 vaf.va = &args;
354 printk("%sF2FS-fs (%s): %pV\n", level, sb->s_id, &vaf);
355 va_end(args);
356 }
357
358 static void init_once(void *foo)
359 {
360 struct f2fs_inode_info *fi = (struct f2fs_inode_info *) foo;
361
362 inode_init_once(&fi->vfs_inode);
363 }
364
365 static int parse_options(struct super_block *sb, char *options)
366 {
367 struct f2fs_sb_info *sbi = F2FS_SB(sb);
368 struct request_queue *q;
369 substring_t args[MAX_OPT_ARGS];
370 char *p, *name;
371 int arg = 0;
372
373 #ifdef CONFIG_F2FS_FAULT_INJECTION
374 f2fs_build_fault_attr(0);
375 #endif
376
377 if (!options)
378 return 0;
379
380 while ((p = strsep(&options, ",")) != NULL) {
381 int token;
382 if (!*p)
383 continue;
384 /*
385 * Initialize args struct so we know whether arg was
386 * found; some options take optional arguments.
387 */
388 args[0].to = args[0].from = NULL;
389 token = match_token(p, f2fs_tokens, args);
390
391 switch (token) {
392 case Opt_gc_background:
393 name = match_strdup(&args[0]);
394
395 if (!name)
396 return -ENOMEM;
397 if (strlen(name) == 2 && !strncmp(name, "on", 2)) {
398 set_opt(sbi, BG_GC);
399 clear_opt(sbi, FORCE_FG_GC);
400 } else if (strlen(name) == 3 && !strncmp(name, "off", 3)) {
401 clear_opt(sbi, BG_GC);
402 clear_opt(sbi, FORCE_FG_GC);
403 } else if (strlen(name) == 4 && !strncmp(name, "sync", 4)) {
404 set_opt(sbi, BG_GC);
405 set_opt(sbi, FORCE_FG_GC);
406 } else {
407 kfree(name);
408 return -EINVAL;
409 }
410 kfree(name);
411 break;
412 case Opt_disable_roll_forward:
413 set_opt(sbi, DISABLE_ROLL_FORWARD);
414 break;
415 case Opt_norecovery:
416 /* this option mounts f2fs with ro */
417 set_opt(sbi, DISABLE_ROLL_FORWARD);
418 if (!f2fs_readonly(sb))
419 return -EINVAL;
420 break;
421 case Opt_discard:
422 q = bdev_get_queue(sb->s_bdev);
423 if (blk_queue_discard(q)) {
424 set_opt(sbi, DISCARD);
425 } else {
426 f2fs_msg(sb, KERN_WARNING,
427 "mounting with \"discard\" option, but "
428 "the device does not support discard");
429 }
430 break;
431 case Opt_nodiscard:
432 clear_opt(sbi, DISCARD);
433 case Opt_noheap:
434 set_opt(sbi, NOHEAP);
435 break;
436 #ifdef CONFIG_F2FS_FS_XATTR
437 case Opt_user_xattr:
438 set_opt(sbi, XATTR_USER);
439 break;
440 case Opt_nouser_xattr:
441 clear_opt(sbi, XATTR_USER);
442 break;
443 case Opt_inline_xattr:
444 set_opt(sbi, INLINE_XATTR);
445 break;
446 #else
447 case Opt_user_xattr:
448 f2fs_msg(sb, KERN_INFO,
449 "user_xattr options not supported");
450 break;
451 case Opt_nouser_xattr:
452 f2fs_msg(sb, KERN_INFO,
453 "nouser_xattr options not supported");
454 break;
455 case Opt_inline_xattr:
456 f2fs_msg(sb, KERN_INFO,
457 "inline_xattr options not supported");
458 break;
459 #endif
460 #ifdef CONFIG_F2FS_FS_POSIX_ACL
461 case Opt_acl:
462 set_opt(sbi, POSIX_ACL);
463 break;
464 case Opt_noacl:
465 clear_opt(sbi, POSIX_ACL);
466 break;
467 #else
468 case Opt_acl:
469 f2fs_msg(sb, KERN_INFO, "acl options not supported");
470 break;
471 case Opt_noacl:
472 f2fs_msg(sb, KERN_INFO, "noacl options not supported");
473 break;
474 #endif
475 case Opt_active_logs:
476 if (args->from && match_int(args, &arg))
477 return -EINVAL;
478 if (arg != 2 && arg != 4 && arg != NR_CURSEG_TYPE)
479 return -EINVAL;
480 sbi->active_logs = arg;
481 break;
482 case Opt_disable_ext_identify:
483 set_opt(sbi, DISABLE_EXT_IDENTIFY);
484 break;
485 case Opt_inline_data:
486 set_opt(sbi, INLINE_DATA);
487 break;
488 case Opt_inline_dentry:
489 set_opt(sbi, INLINE_DENTRY);
490 break;
491 case Opt_flush_merge:
492 set_opt(sbi, FLUSH_MERGE);
493 break;
494 case Opt_noflush_merge:
495 clear_opt(sbi, FLUSH_MERGE);
496 break;
497 case Opt_nobarrier:
498 set_opt(sbi, NOBARRIER);
499 break;
500 case Opt_fastboot:
501 set_opt(sbi, FASTBOOT);
502 break;
503 case Opt_extent_cache:
504 set_opt(sbi, EXTENT_CACHE);
505 break;
506 case Opt_noextent_cache:
507 clear_opt(sbi, EXTENT_CACHE);
508 break;
509 case Opt_noinline_data:
510 clear_opt(sbi, INLINE_DATA);
511 break;
512 case Opt_data_flush:
513 set_opt(sbi, DATA_FLUSH);
514 break;
515 case Opt_mode:
516 name = match_strdup(&args[0]);
517
518 if (!name)
519 return -ENOMEM;
520 if (strlen(name) == 8 &&
521 !strncmp(name, "adaptive", 8)) {
522 set_opt_mode(sbi, F2FS_MOUNT_ADAPTIVE);
523 } else if (strlen(name) == 3 &&
524 !strncmp(name, "lfs", 3)) {
525 set_opt_mode(sbi, F2FS_MOUNT_LFS);
526 } else {
527 kfree(name);
528 return -EINVAL;
529 }
530 kfree(name);
531 break;
532 case Opt_fault_injection:
533 if (args->from && match_int(args, &arg))
534 return -EINVAL;
535 #ifdef CONFIG_F2FS_FAULT_INJECTION
536 f2fs_build_fault_attr(arg);
537 #else
538 f2fs_msg(sb, KERN_INFO,
539 "FAULT_INJECTION was not selected");
540 #endif
541 break;
542 case Opt_lazytime:
543 sb->s_flags |= MS_LAZYTIME;
544 break;
545 case Opt_nolazytime:
546 sb->s_flags &= ~MS_LAZYTIME;
547 break;
548 default:
549 f2fs_msg(sb, KERN_ERR,
550 "Unrecognized mount option \"%s\" or missing value",
551 p);
552 return -EINVAL;
553 }
554 }
555 return 0;
556 }
557
558 static struct inode *f2fs_alloc_inode(struct super_block *sb)
559 {
560 struct f2fs_inode_info *fi;
561
562 fi = kmem_cache_alloc(f2fs_inode_cachep, GFP_F2FS_ZERO);
563 if (!fi)
564 return NULL;
565
566 init_once((void *) fi);
567
568 if (percpu_counter_init(&fi->dirty_pages, 0, GFP_NOFS)) {
569 kmem_cache_free(f2fs_inode_cachep, fi);
570 return NULL;
571 }
572
573 /* Initialize f2fs-specific inode info */
574 fi->vfs_inode.i_version = 1;
575 fi->i_current_depth = 1;
576 fi->i_advise = 0;
577 init_rwsem(&fi->i_sem);
578 INIT_LIST_HEAD(&fi->dirty_list);
579 INIT_LIST_HEAD(&fi->gdirty_list);
580 INIT_LIST_HEAD(&fi->inmem_pages);
581 mutex_init(&fi->inmem_lock);
582 init_rwsem(&fi->dio_rwsem[READ]);
583 init_rwsem(&fi->dio_rwsem[WRITE]);
584
585 /* Will be used by directory only */
586 fi->i_dir_level = F2FS_SB(sb)->dir_level;
587 return &fi->vfs_inode;
588 }
589
590 static int f2fs_drop_inode(struct inode *inode)
591 {
592 /*
593 * This is to avoid a deadlock condition like below.
594 * writeback_single_inode(inode)
595 * - f2fs_write_data_page
596 * - f2fs_gc -> iput -> evict
597 * - inode_wait_for_writeback(inode)
598 */
599 if ((!inode_unhashed(inode) && inode->i_state & I_SYNC)) {
600 if (!inode->i_nlink && !is_bad_inode(inode)) {
601 /* to avoid evict_inode call simultaneously */
602 atomic_inc(&inode->i_count);
603 spin_unlock(&inode->i_lock);
604
605 /* some remained atomic pages should discarded */
606 if (f2fs_is_atomic_file(inode))
607 drop_inmem_pages(inode);
608
609 /* should remain fi->extent_tree for writepage */
610 f2fs_destroy_extent_node(inode);
611
612 sb_start_intwrite(inode->i_sb);
613 f2fs_i_size_write(inode, 0);
614
615 if (F2FS_HAS_BLOCKS(inode))
616 f2fs_truncate(inode);
617
618 sb_end_intwrite(inode->i_sb);
619
620 fscrypt_put_encryption_info(inode, NULL);
621 spin_lock(&inode->i_lock);
622 atomic_dec(&inode->i_count);
623 }
624 return 0;
625 }
626
627 return generic_drop_inode(inode);
628 }
629
630 int f2fs_inode_dirtied(struct inode *inode)
631 {
632 struct f2fs_sb_info *sbi = F2FS_I_SB(inode);
633
634 spin_lock(&sbi->inode_lock[DIRTY_META]);
635 if (is_inode_flag_set(inode, FI_DIRTY_INODE)) {
636 spin_unlock(&sbi->inode_lock[DIRTY_META]);
637 return 1;
638 }
639
640 set_inode_flag(inode, FI_DIRTY_INODE);
641 list_add_tail(&F2FS_I(inode)->gdirty_list,
642 &sbi->inode_list[DIRTY_META]);
643 inc_page_count(sbi, F2FS_DIRTY_IMETA);
644 stat_inc_dirty_inode(sbi, DIRTY_META);
645 spin_unlock(&sbi->inode_lock[DIRTY_META]);
646
647 return 0;
648 }
649
650 void f2fs_inode_synced(struct inode *inode)
651 {
652 struct f2fs_sb_info *sbi = F2FS_I_SB(inode);
653
654 spin_lock(&sbi->inode_lock[DIRTY_META]);
655 if (!is_inode_flag_set(inode, FI_DIRTY_INODE)) {
656 spin_unlock(&sbi->inode_lock[DIRTY_META]);
657 return;
658 }
659 list_del_init(&F2FS_I(inode)->gdirty_list);
660 clear_inode_flag(inode, FI_DIRTY_INODE);
661 clear_inode_flag(inode, FI_AUTO_RECOVER);
662 dec_page_count(sbi, F2FS_DIRTY_IMETA);
663 stat_dec_dirty_inode(F2FS_I_SB(inode), DIRTY_META);
664 spin_unlock(&sbi->inode_lock[DIRTY_META]);
665 }
666
667 /*
668 * f2fs_dirty_inode() is called from __mark_inode_dirty()
669 *
670 * We should call set_dirty_inode to write the dirty inode through write_inode.
671 */
672 static void f2fs_dirty_inode(struct inode *inode, int flags)
673 {
674 struct f2fs_sb_info *sbi = F2FS_I_SB(inode);
675
676 if (inode->i_ino == F2FS_NODE_INO(sbi) ||
677 inode->i_ino == F2FS_META_INO(sbi))
678 return;
679
680 if (flags == I_DIRTY_TIME)
681 return;
682
683 if (is_inode_flag_set(inode, FI_AUTO_RECOVER))
684 clear_inode_flag(inode, FI_AUTO_RECOVER);
685
686 f2fs_inode_dirtied(inode);
687 }
688
689 static void f2fs_i_callback(struct rcu_head *head)
690 {
691 struct inode *inode = container_of(head, struct inode, i_rcu);
692 kmem_cache_free(f2fs_inode_cachep, F2FS_I(inode));
693 }
694
695 static void f2fs_destroy_inode(struct inode *inode)
696 {
697 percpu_counter_destroy(&F2FS_I(inode)->dirty_pages);
698 call_rcu(&inode->i_rcu, f2fs_i_callback);
699 }
700
701 static void destroy_percpu_info(struct f2fs_sb_info *sbi)
702 {
703 int i;
704
705 for (i = 0; i < NR_COUNT_TYPE; i++)
706 percpu_counter_destroy(&sbi->nr_pages[i]);
707 percpu_counter_destroy(&sbi->alloc_valid_block_count);
708 percpu_counter_destroy(&sbi->total_valid_inode_count);
709
710 percpu_free_rwsem(&sbi->cp_rwsem);
711 }
712
713 static void f2fs_put_super(struct super_block *sb)
714 {
715 struct f2fs_sb_info *sbi = F2FS_SB(sb);
716
717 if (sbi->s_proc) {
718 remove_proc_entry("segment_info", sbi->s_proc);
719 remove_proc_entry("segment_bits", sbi->s_proc);
720 remove_proc_entry(sb->s_id, f2fs_proc_root);
721 }
722 kobject_del(&sbi->s_kobj);
723
724 stop_gc_thread(sbi);
725
726 /* prevent remaining shrinker jobs */
727 mutex_lock(&sbi->umount_mutex);
728
729 /*
730 * We don't need to do checkpoint when superblock is clean.
731 * But, the previous checkpoint was not done by umount, it needs to do
732 * clean checkpoint again.
733 */
734 if (is_sbi_flag_set(sbi, SBI_IS_DIRTY) ||
735 !is_set_ckpt_flags(F2FS_CKPT(sbi), CP_UMOUNT_FLAG)) {
736 struct cp_control cpc = {
737 .reason = CP_UMOUNT,
738 };
739 write_checkpoint(sbi, &cpc);
740 }
741
742 /* write_checkpoint can update stat informaion */
743 f2fs_destroy_stats(sbi);
744
745 /*
746 * normally superblock is clean, so we need to release this.
747 * In addition, EIO will skip do checkpoint, we need this as well.
748 */
749 release_ino_entry(sbi, true);
750 release_discard_addrs(sbi);
751
752 f2fs_leave_shrinker(sbi);
753 mutex_unlock(&sbi->umount_mutex);
754
755 /* our cp_error case, we can wait for any writeback page */
756 f2fs_flush_merged_bios(sbi);
757
758 iput(sbi->node_inode);
759 iput(sbi->meta_inode);
760
761 /* destroy f2fs internal modules */
762 destroy_node_manager(sbi);
763 destroy_segment_manager(sbi);
764
765 kfree(sbi->ckpt);
766 kobject_put(&sbi->s_kobj);
767 wait_for_completion(&sbi->s_kobj_unregister);
768
769 sb->s_fs_info = NULL;
770 if (sbi->s_chksum_driver)
771 crypto_free_shash(sbi->s_chksum_driver);
772 kfree(sbi->raw_super);
773
774 destroy_percpu_info(sbi);
775 kfree(sbi);
776 }
777
778 int f2fs_sync_fs(struct super_block *sb, int sync)
779 {
780 struct f2fs_sb_info *sbi = F2FS_SB(sb);
781 int err = 0;
782
783 trace_f2fs_sync_fs(sb, sync);
784
785 if (sync) {
786 struct cp_control cpc;
787
788 cpc.reason = __get_cp_reason(sbi);
789
790 mutex_lock(&sbi->gc_mutex);
791 err = write_checkpoint(sbi, &cpc);
792 mutex_unlock(&sbi->gc_mutex);
793 }
794 f2fs_trace_ios(NULL, 1);
795
796 return err;
797 }
798
799 static int f2fs_freeze(struct super_block *sb)
800 {
801 int err;
802
803 if (f2fs_readonly(sb))
804 return 0;
805
806 err = f2fs_sync_fs(sb, 1);
807 return err;
808 }
809
810 static int f2fs_unfreeze(struct super_block *sb)
811 {
812 return 0;
813 }
814
815 static int f2fs_statfs(struct dentry *dentry, struct kstatfs *buf)
816 {
817 struct super_block *sb = dentry->d_sb;
818 struct f2fs_sb_info *sbi = F2FS_SB(sb);
819 u64 id = huge_encode_dev(sb->s_bdev->bd_dev);
820 block_t total_count, user_block_count, start_count, ovp_count;
821
822 total_count = le64_to_cpu(sbi->raw_super->block_count);
823 user_block_count = sbi->user_block_count;
824 start_count = le32_to_cpu(sbi->raw_super->segment0_blkaddr);
825 ovp_count = SM_I(sbi)->ovp_segments << sbi->log_blocks_per_seg;
826 buf->f_type = F2FS_SUPER_MAGIC;
827 buf->f_bsize = sbi->blocksize;
828
829 buf->f_blocks = total_count - start_count;
830 buf->f_bfree = user_block_count - valid_user_blocks(sbi) + ovp_count;
831 buf->f_bavail = user_block_count - valid_user_blocks(sbi);
832
833 buf->f_files = sbi->total_node_count - F2FS_RESERVED_NODE_NUM;
834 buf->f_ffree = buf->f_files - valid_inode_count(sbi);
835
836 buf->f_namelen = F2FS_NAME_LEN;
837 buf->f_fsid.val[0] = (u32)id;
838 buf->f_fsid.val[1] = (u32)(id >> 32);
839
840 return 0;
841 }
842
843 static int f2fs_show_options(struct seq_file *seq, struct dentry *root)
844 {
845 struct f2fs_sb_info *sbi = F2FS_SB(root->d_sb);
846
847 if (!f2fs_readonly(sbi->sb) && test_opt(sbi, BG_GC)) {
848 if (test_opt(sbi, FORCE_FG_GC))
849 seq_printf(seq, ",background_gc=%s", "sync");
850 else
851 seq_printf(seq, ",background_gc=%s", "on");
852 } else {
853 seq_printf(seq, ",background_gc=%s", "off");
854 }
855 if (test_opt(sbi, DISABLE_ROLL_FORWARD))
856 seq_puts(seq, ",disable_roll_forward");
857 if (test_opt(sbi, DISCARD))
858 seq_puts(seq, ",discard");
859 if (test_opt(sbi, NOHEAP))
860 seq_puts(seq, ",no_heap_alloc");
861 #ifdef CONFIG_F2FS_FS_XATTR
862 if (test_opt(sbi, XATTR_USER))
863 seq_puts(seq, ",user_xattr");
864 else
865 seq_puts(seq, ",nouser_xattr");
866 if (test_opt(sbi, INLINE_XATTR))
867 seq_puts(seq, ",inline_xattr");
868 #endif
869 #ifdef CONFIG_F2FS_FS_POSIX_ACL
870 if (test_opt(sbi, POSIX_ACL))
871 seq_puts(seq, ",acl");
872 else
873 seq_puts(seq, ",noacl");
874 #endif
875 if (test_opt(sbi, DISABLE_EXT_IDENTIFY))
876 seq_puts(seq, ",disable_ext_identify");
877 if (test_opt(sbi, INLINE_DATA))
878 seq_puts(seq, ",inline_data");
879 else
880 seq_puts(seq, ",noinline_data");
881 if (test_opt(sbi, INLINE_DENTRY))
882 seq_puts(seq, ",inline_dentry");
883 if (!f2fs_readonly(sbi->sb) && test_opt(sbi, FLUSH_MERGE))
884 seq_puts(seq, ",flush_merge");
885 if (test_opt(sbi, NOBARRIER))
886 seq_puts(seq, ",nobarrier");
887 if (test_opt(sbi, FASTBOOT))
888 seq_puts(seq, ",fastboot");
889 if (test_opt(sbi, EXTENT_CACHE))
890 seq_puts(seq, ",extent_cache");
891 else
892 seq_puts(seq, ",noextent_cache");
893 if (test_opt(sbi, DATA_FLUSH))
894 seq_puts(seq, ",data_flush");
895
896 seq_puts(seq, ",mode=");
897 if (test_opt(sbi, ADAPTIVE))
898 seq_puts(seq, "adaptive");
899 else if (test_opt(sbi, LFS))
900 seq_puts(seq, "lfs");
901 seq_printf(seq, ",active_logs=%u", sbi->active_logs);
902
903 return 0;
904 }
905
906 static int segment_info_seq_show(struct seq_file *seq, void *offset)
907 {
908 struct super_block *sb = seq->private;
909 struct f2fs_sb_info *sbi = F2FS_SB(sb);
910 unsigned int total_segs =
911 le32_to_cpu(sbi->raw_super->segment_count_main);
912 int i;
913
914 seq_puts(seq, "format: segment_type|valid_blocks\n"
915 "segment_type(0:HD, 1:WD, 2:CD, 3:HN, 4:WN, 5:CN)\n");
916
917 for (i = 0; i < total_segs; i++) {
918 struct seg_entry *se = get_seg_entry(sbi, i);
919
920 if ((i % 10) == 0)
921 seq_printf(seq, "%-10d", i);
922 seq_printf(seq, "%d|%-3u", se->type,
923 get_valid_blocks(sbi, i, 1));
924 if ((i % 10) == 9 || i == (total_segs - 1))
925 seq_putc(seq, '\n');
926 else
927 seq_putc(seq, ' ');
928 }
929
930 return 0;
931 }
932
933 static int segment_bits_seq_show(struct seq_file *seq, void *offset)
934 {
935 struct super_block *sb = seq->private;
936 struct f2fs_sb_info *sbi = F2FS_SB(sb);
937 unsigned int total_segs =
938 le32_to_cpu(sbi->raw_super->segment_count_main);
939 int i, j;
940
941 seq_puts(seq, "format: segment_type|valid_blocks|bitmaps\n"
942 "segment_type(0:HD, 1:WD, 2:CD, 3:HN, 4:WN, 5:CN)\n");
943
944 for (i = 0; i < total_segs; i++) {
945 struct seg_entry *se = get_seg_entry(sbi, i);
946
947 seq_printf(seq, "%-10d", i);
948 seq_printf(seq, "%d|%-3u|", se->type,
949 get_valid_blocks(sbi, i, 1));
950 for (j = 0; j < SIT_VBLOCK_MAP_SIZE; j++)
951 seq_printf(seq, "%x ", se->cur_valid_map[j]);
952 seq_putc(seq, '\n');
953 }
954 return 0;
955 }
956
957 #define F2FS_PROC_FILE_DEF(_name) \
958 static int _name##_open_fs(struct inode *inode, struct file *file) \
959 { \
960 return single_open(file, _name##_seq_show, PDE_DATA(inode)); \
961 } \
962 \
963 static const struct file_operations f2fs_seq_##_name##_fops = { \
964 .owner = THIS_MODULE, \
965 .open = _name##_open_fs, \
966 .read = seq_read, \
967 .llseek = seq_lseek, \
968 .release = single_release, \
969 };
970
971 F2FS_PROC_FILE_DEF(segment_info);
972 F2FS_PROC_FILE_DEF(segment_bits);
973
974 static void default_options(struct f2fs_sb_info *sbi)
975 {
976 /* init some FS parameters */
977 sbi->active_logs = NR_CURSEG_TYPE;
978
979 set_opt(sbi, BG_GC);
980 set_opt(sbi, INLINE_DATA);
981 set_opt(sbi, EXTENT_CACHE);
982 sbi->sb->s_flags |= MS_LAZYTIME;
983 set_opt(sbi, FLUSH_MERGE);
984 if (f2fs_sb_mounted_hmsmr(sbi->sb)) {
985 set_opt_mode(sbi, F2FS_MOUNT_LFS);
986 set_opt(sbi, DISCARD);
987 } else {
988 set_opt_mode(sbi, F2FS_MOUNT_ADAPTIVE);
989 }
990
991 #ifdef CONFIG_F2FS_FS_XATTR
992 set_opt(sbi, XATTR_USER);
993 #endif
994 #ifdef CONFIG_F2FS_FS_POSIX_ACL
995 set_opt(sbi, POSIX_ACL);
996 #endif
997 }
998
999 static int f2fs_remount(struct super_block *sb, int *flags, char *data)
1000 {
1001 struct f2fs_sb_info *sbi = F2FS_SB(sb);
1002 struct f2fs_mount_info org_mount_opt;
1003 int err, active_logs;
1004 bool need_restart_gc = false;
1005 bool need_stop_gc = false;
1006 bool no_extent_cache = !test_opt(sbi, EXTENT_CACHE);
1007
1008 /*
1009 * Save the old mount options in case we
1010 * need to restore them.
1011 */
1012 org_mount_opt = sbi->mount_opt;
1013 active_logs = sbi->active_logs;
1014
1015 /* recover superblocks we couldn't write due to previous RO mount */
1016 if (!(*flags & MS_RDONLY) && is_sbi_flag_set(sbi, SBI_NEED_SB_WRITE)) {
1017 err = f2fs_commit_super(sbi, false);
1018 f2fs_msg(sb, KERN_INFO,
1019 "Try to recover all the superblocks, ret: %d", err);
1020 if (!err)
1021 clear_sbi_flag(sbi, SBI_NEED_SB_WRITE);
1022 }
1023
1024 sbi->mount_opt.opt = 0;
1025 default_options(sbi);
1026
1027 /* parse mount options */
1028 err = parse_options(sb, data);
1029 if (err)
1030 goto restore_opts;
1031
1032 /*
1033 * Previous and new state of filesystem is RO,
1034 * so skip checking GC and FLUSH_MERGE conditions.
1035 */
1036 if (f2fs_readonly(sb) && (*flags & MS_RDONLY))
1037 goto skip;
1038
1039 /* disallow enable/disable extent_cache dynamically */
1040 if (no_extent_cache == !!test_opt(sbi, EXTENT_CACHE)) {
1041 err = -EINVAL;
1042 f2fs_msg(sbi->sb, KERN_WARNING,
1043 "switch extent_cache option is not allowed");
1044 goto restore_opts;
1045 }
1046
1047 /*
1048 * We stop the GC thread if FS is mounted as RO
1049 * or if background_gc = off is passed in mount
1050 * option. Also sync the filesystem.
1051 */
1052 if ((*flags & MS_RDONLY) || !test_opt(sbi, BG_GC)) {
1053 if (sbi->gc_thread) {
1054 stop_gc_thread(sbi);
1055 need_restart_gc = true;
1056 }
1057 } else if (!sbi->gc_thread) {
1058 err = start_gc_thread(sbi);
1059 if (err)
1060 goto restore_opts;
1061 need_stop_gc = true;
1062 }
1063
1064 if (*flags & MS_RDONLY) {
1065 writeback_inodes_sb(sb, WB_REASON_SYNC);
1066 sync_inodes_sb(sb);
1067
1068 set_sbi_flag(sbi, SBI_IS_DIRTY);
1069 set_sbi_flag(sbi, SBI_IS_CLOSE);
1070 f2fs_sync_fs(sb, 1);
1071 clear_sbi_flag(sbi, SBI_IS_CLOSE);
1072 }
1073
1074 /*
1075 * We stop issue flush thread if FS is mounted as RO
1076 * or if flush_merge is not passed in mount option.
1077 */
1078 if ((*flags & MS_RDONLY) || !test_opt(sbi, FLUSH_MERGE)) {
1079 destroy_flush_cmd_control(sbi);
1080 } else if (!SM_I(sbi)->cmd_control_info) {
1081 err = create_flush_cmd_control(sbi);
1082 if (err)
1083 goto restore_gc;
1084 }
1085 skip:
1086 /* Update the POSIXACL Flag */
1087 sb->s_flags = (sb->s_flags & ~MS_POSIXACL) |
1088 (test_opt(sbi, POSIX_ACL) ? MS_POSIXACL : 0);
1089
1090 return 0;
1091 restore_gc:
1092 if (need_restart_gc) {
1093 if (start_gc_thread(sbi))
1094 f2fs_msg(sbi->sb, KERN_WARNING,
1095 "background gc thread has stopped");
1096 } else if (need_stop_gc) {
1097 stop_gc_thread(sbi);
1098 }
1099 restore_opts:
1100 sbi->mount_opt = org_mount_opt;
1101 sbi->active_logs = active_logs;
1102 return err;
1103 }
1104
1105 static struct super_operations f2fs_sops = {
1106 .alloc_inode = f2fs_alloc_inode,
1107 .drop_inode = f2fs_drop_inode,
1108 .destroy_inode = f2fs_destroy_inode,
1109 .write_inode = f2fs_write_inode,
1110 .dirty_inode = f2fs_dirty_inode,
1111 .show_options = f2fs_show_options,
1112 .evict_inode = f2fs_evict_inode,
1113 .put_super = f2fs_put_super,
1114 .sync_fs = f2fs_sync_fs,
1115 .freeze_fs = f2fs_freeze,
1116 .unfreeze_fs = f2fs_unfreeze,
1117 .statfs = f2fs_statfs,
1118 .remount_fs = f2fs_remount,
1119 };
1120
1121 #ifdef CONFIG_F2FS_FS_ENCRYPTION
1122 static int f2fs_get_context(struct inode *inode, void *ctx, size_t len)
1123 {
1124 return f2fs_getxattr(inode, F2FS_XATTR_INDEX_ENCRYPTION,
1125 F2FS_XATTR_NAME_ENCRYPTION_CONTEXT,
1126 ctx, len, NULL);
1127 }
1128
1129 static int f2fs_key_prefix(struct inode *inode, u8 **key)
1130 {
1131 *key = F2FS_I_SB(inode)->key_prefix;
1132 return F2FS_I_SB(inode)->key_prefix_size;
1133 }
1134
1135 static int f2fs_set_context(struct inode *inode, const void *ctx, size_t len,
1136 void *fs_data)
1137 {
1138 return f2fs_setxattr(inode, F2FS_XATTR_INDEX_ENCRYPTION,
1139 F2FS_XATTR_NAME_ENCRYPTION_CONTEXT,
1140 ctx, len, fs_data, XATTR_CREATE);
1141 }
1142
1143 static unsigned f2fs_max_namelen(struct inode *inode)
1144 {
1145 return S_ISLNK(inode->i_mode) ?
1146 inode->i_sb->s_blocksize : F2FS_NAME_LEN;
1147 }
1148
1149 static struct fscrypt_operations f2fs_cryptops = {
1150 .get_context = f2fs_get_context,
1151 .key_prefix = f2fs_key_prefix,
1152 .set_context = f2fs_set_context,
1153 .is_encrypted = f2fs_encrypted_inode,
1154 .empty_dir = f2fs_empty_dir,
1155 .max_namelen = f2fs_max_namelen,
1156 };
1157 #else
1158 static struct fscrypt_operations f2fs_cryptops = {
1159 .is_encrypted = f2fs_encrypted_inode,
1160 };
1161 #endif
1162
1163 static struct inode *f2fs_nfs_get_inode(struct super_block *sb,
1164 u64 ino, u32 generation)
1165 {
1166 struct f2fs_sb_info *sbi = F2FS_SB(sb);
1167 struct inode *inode;
1168
1169 if (check_nid_range(sbi, ino))
1170 return ERR_PTR(-ESTALE);
1171
1172 /*
1173 * f2fs_iget isn't quite right if the inode is currently unallocated!
1174 * However f2fs_iget currently does appropriate checks to handle stale
1175 * inodes so everything is OK.
1176 */
1177 inode = f2fs_iget(sb, ino);
1178 if (IS_ERR(inode))
1179 return ERR_CAST(inode);
1180 if (unlikely(generation && inode->i_generation != generation)) {
1181 /* we didn't find the right inode.. */
1182 iput(inode);
1183 return ERR_PTR(-ESTALE);
1184 }
1185 return inode;
1186 }
1187
1188 static struct dentry *f2fs_fh_to_dentry(struct super_block *sb, struct fid *fid,
1189 int fh_len, int fh_type)
1190 {
1191 return generic_fh_to_dentry(sb, fid, fh_len, fh_type,
1192 f2fs_nfs_get_inode);
1193 }
1194
1195 static struct dentry *f2fs_fh_to_parent(struct super_block *sb, struct fid *fid,
1196 int fh_len, int fh_type)
1197 {
1198 return generic_fh_to_parent(sb, fid, fh_len, fh_type,
1199 f2fs_nfs_get_inode);
1200 }
1201
1202 static const struct export_operations f2fs_export_ops = {
1203 .fh_to_dentry = f2fs_fh_to_dentry,
1204 .fh_to_parent = f2fs_fh_to_parent,
1205 .get_parent = f2fs_get_parent,
1206 };
1207
1208 static loff_t max_file_blocks(void)
1209 {
1210 loff_t result = (DEF_ADDRS_PER_INODE - F2FS_INLINE_XATTR_ADDRS);
1211 loff_t leaf_count = ADDRS_PER_BLOCK;
1212
1213 /* two direct node blocks */
1214 result += (leaf_count * 2);
1215
1216 /* two indirect node blocks */
1217 leaf_count *= NIDS_PER_BLOCK;
1218 result += (leaf_count * 2);
1219
1220 /* one double indirect node block */
1221 leaf_count *= NIDS_PER_BLOCK;
1222 result += leaf_count;
1223
1224 return result;
1225 }
1226
1227 static int __f2fs_commit_super(struct buffer_head *bh,
1228 struct f2fs_super_block *super)
1229 {
1230 lock_buffer(bh);
1231 if (super)
1232 memcpy(bh->b_data + F2FS_SUPER_OFFSET, super, sizeof(*super));
1233 set_buffer_uptodate(bh);
1234 set_buffer_dirty(bh);
1235 unlock_buffer(bh);
1236
1237 /* it's rare case, we can do fua all the time */
1238 return __sync_dirty_buffer(bh, WRITE_FLUSH_FUA);
1239 }
1240
1241 static inline bool sanity_check_area_boundary(struct f2fs_sb_info *sbi,
1242 struct buffer_head *bh)
1243 {
1244 struct f2fs_super_block *raw_super = (struct f2fs_super_block *)
1245 (bh->b_data + F2FS_SUPER_OFFSET);
1246 struct super_block *sb = sbi->sb;
1247 u32 segment0_blkaddr = le32_to_cpu(raw_super->segment0_blkaddr);
1248 u32 cp_blkaddr = le32_to_cpu(raw_super->cp_blkaddr);
1249 u32 sit_blkaddr = le32_to_cpu(raw_super->sit_blkaddr);
1250 u32 nat_blkaddr = le32_to_cpu(raw_super->nat_blkaddr);
1251 u32 ssa_blkaddr = le32_to_cpu(raw_super->ssa_blkaddr);
1252 u32 main_blkaddr = le32_to_cpu(raw_super->main_blkaddr);
1253 u32 segment_count_ckpt = le32_to_cpu(raw_super->segment_count_ckpt);
1254 u32 segment_count_sit = le32_to_cpu(raw_super->segment_count_sit);
1255 u32 segment_count_nat = le32_to_cpu(raw_super->segment_count_nat);
1256 u32 segment_count_ssa = le32_to_cpu(raw_super->segment_count_ssa);
1257 u32 segment_count_main = le32_to_cpu(raw_super->segment_count_main);
1258 u32 segment_count = le32_to_cpu(raw_super->segment_count);
1259 u32 log_blocks_per_seg = le32_to_cpu(raw_super->log_blocks_per_seg);
1260 u64 main_end_blkaddr = main_blkaddr +
1261 (segment_count_main << log_blocks_per_seg);
1262 u64 seg_end_blkaddr = segment0_blkaddr +
1263 (segment_count << log_blocks_per_seg);
1264
1265 if (segment0_blkaddr != cp_blkaddr) {
1266 f2fs_msg(sb, KERN_INFO,
1267 "Mismatch start address, segment0(%u) cp_blkaddr(%u)",
1268 segment0_blkaddr, cp_blkaddr);
1269 return true;
1270 }
1271
1272 if (cp_blkaddr + (segment_count_ckpt << log_blocks_per_seg) !=
1273 sit_blkaddr) {
1274 f2fs_msg(sb, KERN_INFO,
1275 "Wrong CP boundary, start(%u) end(%u) blocks(%u)",
1276 cp_blkaddr, sit_blkaddr,
1277 segment_count_ckpt << log_blocks_per_seg);
1278 return true;
1279 }
1280
1281 if (sit_blkaddr + (segment_count_sit << log_blocks_per_seg) !=
1282 nat_blkaddr) {
1283 f2fs_msg(sb, KERN_INFO,
1284 "Wrong SIT boundary, start(%u) end(%u) blocks(%u)",
1285 sit_blkaddr, nat_blkaddr,
1286 segment_count_sit << log_blocks_per_seg);
1287 return true;
1288 }
1289
1290 if (nat_blkaddr + (segment_count_nat << log_blocks_per_seg) !=
1291 ssa_blkaddr) {
1292 f2fs_msg(sb, KERN_INFO,
1293 "Wrong NAT boundary, start(%u) end(%u) blocks(%u)",
1294 nat_blkaddr, ssa_blkaddr,
1295 segment_count_nat << log_blocks_per_seg);
1296 return true;
1297 }
1298
1299 if (ssa_blkaddr + (segment_count_ssa << log_blocks_per_seg) !=
1300 main_blkaddr) {
1301 f2fs_msg(sb, KERN_INFO,
1302 "Wrong SSA boundary, start(%u) end(%u) blocks(%u)",
1303 ssa_blkaddr, main_blkaddr,
1304 segment_count_ssa << log_blocks_per_seg);
1305 return true;
1306 }
1307
1308 if (main_end_blkaddr > seg_end_blkaddr) {
1309 f2fs_msg(sb, KERN_INFO,
1310 "Wrong MAIN_AREA boundary, start(%u) end(%u) block(%u)",
1311 main_blkaddr,
1312 segment0_blkaddr +
1313 (segment_count << log_blocks_per_seg),
1314 segment_count_main << log_blocks_per_seg);
1315 return true;
1316 } else if (main_end_blkaddr < seg_end_blkaddr) {
1317 int err = 0;
1318 char *res;
1319
1320 /* fix in-memory information all the time */
1321 raw_super->segment_count = cpu_to_le32((main_end_blkaddr -
1322 segment0_blkaddr) >> log_blocks_per_seg);
1323
1324 if (f2fs_readonly(sb) || bdev_read_only(sb->s_bdev)) {
1325 set_sbi_flag(sbi, SBI_NEED_SB_WRITE);
1326 res = "internally";
1327 } else {
1328 err = __f2fs_commit_super(bh, NULL);
1329 res = err ? "failed" : "done";
1330 }
1331 f2fs_msg(sb, KERN_INFO,
1332 "Fix alignment : %s, start(%u) end(%u) block(%u)",
1333 res, main_blkaddr,
1334 segment0_blkaddr +
1335 (segment_count << log_blocks_per_seg),
1336 segment_count_main << log_blocks_per_seg);
1337 if (err)
1338 return true;
1339 }
1340 return false;
1341 }
1342
1343 static int sanity_check_raw_super(struct f2fs_sb_info *sbi,
1344 struct buffer_head *bh)
1345 {
1346 struct f2fs_super_block *raw_super = (struct f2fs_super_block *)
1347 (bh->b_data + F2FS_SUPER_OFFSET);
1348 struct super_block *sb = sbi->sb;
1349 unsigned int blocksize;
1350
1351 if (F2FS_SUPER_MAGIC != le32_to_cpu(raw_super->magic)) {
1352 f2fs_msg(sb, KERN_INFO,
1353 "Magic Mismatch, valid(0x%x) - read(0x%x)",
1354 F2FS_SUPER_MAGIC, le32_to_cpu(raw_super->magic));
1355 return 1;
1356 }
1357
1358 /* Currently, support only 4KB page cache size */
1359 if (F2FS_BLKSIZE != PAGE_SIZE) {
1360 f2fs_msg(sb, KERN_INFO,
1361 "Invalid page_cache_size (%lu), supports only 4KB\n",
1362 PAGE_SIZE);
1363 return 1;
1364 }
1365
1366 /* Currently, support only 4KB block size */
1367 blocksize = 1 << le32_to_cpu(raw_super->log_blocksize);
1368 if (blocksize != F2FS_BLKSIZE) {
1369 f2fs_msg(sb, KERN_INFO,
1370 "Invalid blocksize (%u), supports only 4KB\n",
1371 blocksize);
1372 return 1;
1373 }
1374
1375 /* check log blocks per segment */
1376 if (le32_to_cpu(raw_super->log_blocks_per_seg) != 9) {
1377 f2fs_msg(sb, KERN_INFO,
1378 "Invalid log blocks per segment (%u)\n",
1379 le32_to_cpu(raw_super->log_blocks_per_seg));
1380 return 1;
1381 }
1382
1383 /* Currently, support 512/1024/2048/4096 bytes sector size */
1384 if (le32_to_cpu(raw_super->log_sectorsize) >
1385 F2FS_MAX_LOG_SECTOR_SIZE ||
1386 le32_to_cpu(raw_super->log_sectorsize) <
1387 F2FS_MIN_LOG_SECTOR_SIZE) {
1388 f2fs_msg(sb, KERN_INFO, "Invalid log sectorsize (%u)",
1389 le32_to_cpu(raw_super->log_sectorsize));
1390 return 1;
1391 }
1392 if (le32_to_cpu(raw_super->log_sectors_per_block) +
1393 le32_to_cpu(raw_super->log_sectorsize) !=
1394 F2FS_MAX_LOG_SECTOR_SIZE) {
1395 f2fs_msg(sb, KERN_INFO,
1396 "Invalid log sectors per block(%u) log sectorsize(%u)",
1397 le32_to_cpu(raw_super->log_sectors_per_block),
1398 le32_to_cpu(raw_super->log_sectorsize));
1399 return 1;
1400 }
1401
1402 /* check reserved ino info */
1403 if (le32_to_cpu(raw_super->node_ino) != 1 ||
1404 le32_to_cpu(raw_super->meta_ino) != 2 ||
1405 le32_to_cpu(raw_super->root_ino) != 3) {
1406 f2fs_msg(sb, KERN_INFO,
1407 "Invalid Fs Meta Ino: node(%u) meta(%u) root(%u)",
1408 le32_to_cpu(raw_super->node_ino),
1409 le32_to_cpu(raw_super->meta_ino),
1410 le32_to_cpu(raw_super->root_ino));
1411 return 1;
1412 }
1413
1414 /* check CP/SIT/NAT/SSA/MAIN_AREA area boundary */
1415 if (sanity_check_area_boundary(sbi, bh))
1416 return 1;
1417
1418 return 0;
1419 }
1420
1421 int sanity_check_ckpt(struct f2fs_sb_info *sbi)
1422 {
1423 unsigned int total, fsmeta;
1424 struct f2fs_super_block *raw_super = F2FS_RAW_SUPER(sbi);
1425 struct f2fs_checkpoint *ckpt = F2FS_CKPT(sbi);
1426
1427 total = le32_to_cpu(raw_super->segment_count);
1428 fsmeta = le32_to_cpu(raw_super->segment_count_ckpt);
1429 fsmeta += le32_to_cpu(raw_super->segment_count_sit);
1430 fsmeta += le32_to_cpu(raw_super->segment_count_nat);
1431 fsmeta += le32_to_cpu(ckpt->rsvd_segment_count);
1432 fsmeta += le32_to_cpu(raw_super->segment_count_ssa);
1433
1434 if (unlikely(fsmeta >= total))
1435 return 1;
1436
1437 if (unlikely(f2fs_cp_error(sbi))) {
1438 f2fs_msg(sbi->sb, KERN_ERR, "A bug case: need to run fsck");
1439 return 1;
1440 }
1441 return 0;
1442 }
1443
1444 static void init_sb_info(struct f2fs_sb_info *sbi)
1445 {
1446 struct f2fs_super_block *raw_super = sbi->raw_super;
1447
1448 sbi->log_sectors_per_block =
1449 le32_to_cpu(raw_super->log_sectors_per_block);
1450 sbi->log_blocksize = le32_to_cpu(raw_super->log_blocksize);
1451 sbi->blocksize = 1 << sbi->log_blocksize;
1452 sbi->log_blocks_per_seg = le32_to_cpu(raw_super->log_blocks_per_seg);
1453 sbi->blocks_per_seg = 1 << sbi->log_blocks_per_seg;
1454 sbi->segs_per_sec = le32_to_cpu(raw_super->segs_per_sec);
1455 sbi->secs_per_zone = le32_to_cpu(raw_super->secs_per_zone);
1456 sbi->total_sections = le32_to_cpu(raw_super->section_count);
1457 sbi->total_node_count =
1458 (le32_to_cpu(raw_super->segment_count_nat) / 2)
1459 * sbi->blocks_per_seg * NAT_ENTRY_PER_BLOCK;
1460 sbi->root_ino_num = le32_to_cpu(raw_super->root_ino);
1461 sbi->node_ino_num = le32_to_cpu(raw_super->node_ino);
1462 sbi->meta_ino_num = le32_to_cpu(raw_super->meta_ino);
1463 sbi->cur_victim_sec = NULL_SECNO;
1464 sbi->max_victim_search = DEF_MAX_VICTIM_SEARCH;
1465
1466 sbi->dir_level = DEF_DIR_LEVEL;
1467 sbi->interval_time[CP_TIME] = DEF_CP_INTERVAL;
1468 sbi->interval_time[REQ_TIME] = DEF_IDLE_INTERVAL;
1469 clear_sbi_flag(sbi, SBI_NEED_FSCK);
1470
1471 INIT_LIST_HEAD(&sbi->s_list);
1472 mutex_init(&sbi->umount_mutex);
1473 mutex_init(&sbi->wio_mutex[NODE]);
1474 mutex_init(&sbi->wio_mutex[DATA]);
1475
1476 #ifdef CONFIG_F2FS_FS_ENCRYPTION
1477 memcpy(sbi->key_prefix, F2FS_KEY_DESC_PREFIX,
1478 F2FS_KEY_DESC_PREFIX_SIZE);
1479 sbi->key_prefix_size = F2FS_KEY_DESC_PREFIX_SIZE;
1480 #endif
1481 }
1482
1483 static int init_percpu_info(struct f2fs_sb_info *sbi)
1484 {
1485 int i, err;
1486
1487 if (percpu_init_rwsem(&sbi->cp_rwsem))
1488 return -ENOMEM;
1489
1490 for (i = 0; i < NR_COUNT_TYPE; i++) {
1491 err = percpu_counter_init(&sbi->nr_pages[i], 0, GFP_KERNEL);
1492 if (err)
1493 return err;
1494 }
1495
1496 err = percpu_counter_init(&sbi->alloc_valid_block_count, 0, GFP_KERNEL);
1497 if (err)
1498 return err;
1499
1500 return percpu_counter_init(&sbi->total_valid_inode_count, 0,
1501 GFP_KERNEL);
1502 }
1503
1504 /*
1505 * Read f2fs raw super block.
1506 * Because we have two copies of super block, so read both of them
1507 * to get the first valid one. If any one of them is broken, we pass
1508 * them recovery flag back to the caller.
1509 */
1510 static int read_raw_super_block(struct f2fs_sb_info *sbi,
1511 struct f2fs_super_block **raw_super,
1512 int *valid_super_block, int *recovery)
1513 {
1514 struct super_block *sb = sbi->sb;
1515 int block;
1516 struct buffer_head *bh;
1517 struct f2fs_super_block *super;
1518 int err = 0;
1519
1520 super = kzalloc(sizeof(struct f2fs_super_block), GFP_KERNEL);
1521 if (!super)
1522 return -ENOMEM;
1523
1524 for (block = 0; block < 2; block++) {
1525 bh = sb_bread(sb, block);
1526 if (!bh) {
1527 f2fs_msg(sb, KERN_ERR, "Unable to read %dth superblock",
1528 block + 1);
1529 err = -EIO;
1530 continue;
1531 }
1532
1533 /* sanity checking of raw super */
1534 if (sanity_check_raw_super(sbi, bh)) {
1535 f2fs_msg(sb, KERN_ERR,
1536 "Can't find valid F2FS filesystem in %dth superblock",
1537 block + 1);
1538 err = -EINVAL;
1539 brelse(bh);
1540 continue;
1541 }
1542
1543 if (!*raw_super) {
1544 memcpy(super, bh->b_data + F2FS_SUPER_OFFSET,
1545 sizeof(*super));
1546 *valid_super_block = block;
1547 *raw_super = super;
1548 }
1549 brelse(bh);
1550 }
1551
1552 /* Fail to read any one of the superblocks*/
1553 if (err < 0)
1554 *recovery = 1;
1555
1556 /* No valid superblock */
1557 if (!*raw_super)
1558 kfree(super);
1559 else
1560 err = 0;
1561
1562 return err;
1563 }
1564
1565 int f2fs_commit_super(struct f2fs_sb_info *sbi, bool recover)
1566 {
1567 struct buffer_head *bh;
1568 int err;
1569
1570 if ((recover && f2fs_readonly(sbi->sb)) ||
1571 bdev_read_only(sbi->sb->s_bdev)) {
1572 set_sbi_flag(sbi, SBI_NEED_SB_WRITE);
1573 return -EROFS;
1574 }
1575
1576 /* write back-up superblock first */
1577 bh = sb_getblk(sbi->sb, sbi->valid_super_block ? 0: 1);
1578 if (!bh)
1579 return -EIO;
1580 err = __f2fs_commit_super(bh, F2FS_RAW_SUPER(sbi));
1581 brelse(bh);
1582
1583 /* if we are in recovery path, skip writing valid superblock */
1584 if (recover || err)
1585 return err;
1586
1587 /* write current valid superblock */
1588 bh = sb_getblk(sbi->sb, sbi->valid_super_block);
1589 if (!bh)
1590 return -EIO;
1591 err = __f2fs_commit_super(bh, F2FS_RAW_SUPER(sbi));
1592 brelse(bh);
1593 return err;
1594 }
1595
1596 static int f2fs_fill_super(struct super_block *sb, void *data, int silent)
1597 {
1598 struct f2fs_sb_info *sbi;
1599 struct f2fs_super_block *raw_super;
1600 struct inode *root;
1601 int err;
1602 bool retry = true, need_fsck = false;
1603 char *options = NULL;
1604 int recovery, i, valid_super_block;
1605 struct curseg_info *seg_i;
1606
1607 try_onemore:
1608 err = -EINVAL;
1609 raw_super = NULL;
1610 valid_super_block = -1;
1611 recovery = 0;
1612
1613 /* allocate memory for f2fs-specific super block info */
1614 sbi = kzalloc(sizeof(struct f2fs_sb_info), GFP_KERNEL);
1615 if (!sbi)
1616 return -ENOMEM;
1617
1618 sbi->sb = sb;
1619
1620 /* Load the checksum driver */
1621 sbi->s_chksum_driver = crypto_alloc_shash("crc32", 0, 0);
1622 if (IS_ERR(sbi->s_chksum_driver)) {
1623 f2fs_msg(sb, KERN_ERR, "Cannot load crc32 driver.");
1624 err = PTR_ERR(sbi->s_chksum_driver);
1625 sbi->s_chksum_driver = NULL;
1626 goto free_sbi;
1627 }
1628
1629 /* set a block size */
1630 if (unlikely(!sb_set_blocksize(sb, F2FS_BLKSIZE))) {
1631 f2fs_msg(sb, KERN_ERR, "unable to set blocksize");
1632 goto free_sbi;
1633 }
1634
1635 err = read_raw_super_block(sbi, &raw_super, &valid_super_block,
1636 &recovery);
1637 if (err)
1638 goto free_sbi;
1639
1640 sb->s_fs_info = sbi;
1641 sbi->raw_super = raw_super;
1642
1643 default_options(sbi);
1644 /* parse mount options */
1645 options = kstrdup((const char *)data, GFP_KERNEL);
1646 if (data && !options) {
1647 err = -ENOMEM;
1648 goto free_sb_buf;
1649 }
1650
1651 err = parse_options(sb, options);
1652 if (err)
1653 goto free_options;
1654
1655 sbi->max_file_blocks = max_file_blocks();
1656 sb->s_maxbytes = sbi->max_file_blocks <<
1657 le32_to_cpu(raw_super->log_blocksize);
1658 sb->s_max_links = F2FS_LINK_MAX;
1659 get_random_bytes(&sbi->s_next_generation, sizeof(u32));
1660
1661 sb->s_op = &f2fs_sops;
1662 sb->s_cop = &f2fs_cryptops;
1663 sb->s_xattr = f2fs_xattr_handlers;
1664 sb->s_export_op = &f2fs_export_ops;
1665 sb->s_magic = F2FS_SUPER_MAGIC;
1666 sb->s_time_gran = 1;
1667 sb->s_flags = (sb->s_flags & ~MS_POSIXACL) |
1668 (test_opt(sbi, POSIX_ACL) ? MS_POSIXACL : 0);
1669 memcpy(sb->s_uuid, raw_super->uuid, sizeof(raw_super->uuid));
1670
1671 /* init f2fs-specific super block info */
1672 sbi->valid_super_block = valid_super_block;
1673 mutex_init(&sbi->gc_mutex);
1674 mutex_init(&sbi->cp_mutex);
1675 init_rwsem(&sbi->node_write);
1676
1677 /* disallow all the data/node/meta page writes */
1678 set_sbi_flag(sbi, SBI_POR_DOING);
1679 spin_lock_init(&sbi->stat_lock);
1680
1681 init_rwsem(&sbi->read_io.io_rwsem);
1682 sbi->read_io.sbi = sbi;
1683 sbi->read_io.bio = NULL;
1684 for (i = 0; i < NR_PAGE_TYPE; i++) {
1685 init_rwsem(&sbi->write_io[i].io_rwsem);
1686 sbi->write_io[i].sbi = sbi;
1687 sbi->write_io[i].bio = NULL;
1688 }
1689
1690 init_waitqueue_head(&sbi->cp_wait);
1691 init_sb_info(sbi);
1692
1693 err = init_percpu_info(sbi);
1694 if (err)
1695 goto free_options;
1696
1697 /* get an inode for meta space */
1698 sbi->meta_inode = f2fs_iget(sb, F2FS_META_INO(sbi));
1699 if (IS_ERR(sbi->meta_inode)) {
1700 f2fs_msg(sb, KERN_ERR, "Failed to read F2FS meta data inode");
1701 err = PTR_ERR(sbi->meta_inode);
1702 goto free_options;
1703 }
1704
1705 err = get_valid_checkpoint(sbi);
1706 if (err) {
1707 f2fs_msg(sb, KERN_ERR, "Failed to get valid F2FS checkpoint");
1708 goto free_meta_inode;
1709 }
1710
1711 sbi->total_valid_node_count =
1712 le32_to_cpu(sbi->ckpt->valid_node_count);
1713 percpu_counter_set(&sbi->total_valid_inode_count,
1714 le32_to_cpu(sbi->ckpt->valid_inode_count));
1715 sbi->user_block_count = le64_to_cpu(sbi->ckpt->user_block_count);
1716 sbi->total_valid_block_count =
1717 le64_to_cpu(sbi->ckpt->valid_block_count);
1718 sbi->last_valid_block_count = sbi->total_valid_block_count;
1719
1720 for (i = 0; i < NR_INODE_TYPE; i++) {
1721 INIT_LIST_HEAD(&sbi->inode_list[i]);
1722 spin_lock_init(&sbi->inode_lock[i]);
1723 }
1724
1725 init_extent_cache_info(sbi);
1726
1727 init_ino_entry_info(sbi);
1728
1729 /* setup f2fs internal modules */
1730 err = build_segment_manager(sbi);
1731 if (err) {
1732 f2fs_msg(sb, KERN_ERR,
1733 "Failed to initialize F2FS segment manager");
1734 goto free_sm;
1735 }
1736 err = build_node_manager(sbi);
1737 if (err) {
1738 f2fs_msg(sb, KERN_ERR,
1739 "Failed to initialize F2FS node manager");
1740 goto free_nm;
1741 }
1742
1743 /* For write statistics */
1744 if (sb->s_bdev->bd_part)
1745 sbi->sectors_written_start =
1746 (u64)part_stat_read(sb->s_bdev->bd_part, sectors[1]);
1747
1748 /* Read accumulated write IO statistics if exists */
1749 seg_i = CURSEG_I(sbi, CURSEG_HOT_NODE);
1750 if (__exist_node_summaries(sbi))
1751 sbi->kbytes_written =
1752 le64_to_cpu(seg_i->journal->info.kbytes_written);
1753
1754 build_gc_manager(sbi);
1755
1756 /* get an inode for node space */
1757 sbi->node_inode = f2fs_iget(sb, F2FS_NODE_INO(sbi));
1758 if (IS_ERR(sbi->node_inode)) {
1759 f2fs_msg(sb, KERN_ERR, "Failed to read node inode");
1760 err = PTR_ERR(sbi->node_inode);
1761 goto free_nm;
1762 }
1763
1764 f2fs_join_shrinker(sbi);
1765
1766 /* if there are nt orphan nodes free them */
1767 err = recover_orphan_inodes(sbi);
1768 if (err)
1769 goto free_node_inode;
1770
1771 /* read root inode and dentry */
1772 root = f2fs_iget(sb, F2FS_ROOT_INO(sbi));
1773 if (IS_ERR(root)) {
1774 f2fs_msg(sb, KERN_ERR, "Failed to read root inode");
1775 err = PTR_ERR(root);
1776 goto free_node_inode;
1777 }
1778 if (!S_ISDIR(root->i_mode) || !root->i_blocks || !root->i_size) {
1779 iput(root);
1780 err = -EINVAL;
1781 goto free_node_inode;
1782 }
1783
1784 sb->s_root = d_make_root(root); /* allocate root dentry */
1785 if (!sb->s_root) {
1786 err = -ENOMEM;
1787 goto free_root_inode;
1788 }
1789
1790 err = f2fs_build_stats(sbi);
1791 if (err)
1792 goto free_root_inode;
1793
1794 if (f2fs_proc_root)
1795 sbi->s_proc = proc_mkdir(sb->s_id, f2fs_proc_root);
1796
1797 if (sbi->s_proc) {
1798 proc_create_data("segment_info", S_IRUGO, sbi->s_proc,
1799 &f2fs_seq_segment_info_fops, sb);
1800 proc_create_data("segment_bits", S_IRUGO, sbi->s_proc,
1801 &f2fs_seq_segment_bits_fops, sb);
1802 }
1803
1804 sbi->s_kobj.kset = f2fs_kset;
1805 init_completion(&sbi->s_kobj_unregister);
1806 err = kobject_init_and_add(&sbi->s_kobj, &f2fs_ktype, NULL,
1807 "%s", sb->s_id);
1808 if (err)
1809 goto free_proc;
1810
1811 /* recover fsynced data */
1812 if (!test_opt(sbi, DISABLE_ROLL_FORWARD)) {
1813 /*
1814 * mount should be failed, when device has readonly mode, and
1815 * previous checkpoint was not done by clean system shutdown.
1816 */
1817 if (bdev_read_only(sb->s_bdev) &&
1818 !is_set_ckpt_flags(sbi->ckpt, CP_UMOUNT_FLAG)) {
1819 err = -EROFS;
1820 goto free_kobj;
1821 }
1822
1823 if (need_fsck)
1824 set_sbi_flag(sbi, SBI_NEED_FSCK);
1825
1826 err = recover_fsync_data(sbi, false);
1827 if (err < 0) {
1828 need_fsck = true;
1829 f2fs_msg(sb, KERN_ERR,
1830 "Cannot recover all fsync data errno=%d", err);
1831 goto free_kobj;
1832 }
1833 } else {
1834 err = recover_fsync_data(sbi, true);
1835
1836 if (!f2fs_readonly(sb) && err > 0) {
1837 err = -EINVAL;
1838 f2fs_msg(sb, KERN_ERR,
1839 "Need to recover fsync data");
1840 goto free_kobj;
1841 }
1842 }
1843
1844 /* recover_fsync_data() cleared this already */
1845 clear_sbi_flag(sbi, SBI_POR_DOING);
1846
1847 /*
1848 * If filesystem is not mounted as read-only then
1849 * do start the gc_thread.
1850 */
1851 if (test_opt(sbi, BG_GC) && !f2fs_readonly(sb)) {
1852 /* After POR, we can run background GC thread.*/
1853 err = start_gc_thread(sbi);
1854 if (err)
1855 goto free_kobj;
1856 }
1857 kfree(options);
1858
1859 /* recover broken superblock */
1860 if (recovery) {
1861 err = f2fs_commit_super(sbi, true);
1862 f2fs_msg(sb, KERN_INFO,
1863 "Try to recover %dth superblock, ret: %d",
1864 sbi->valid_super_block ? 1 : 2, err);
1865 }
1866
1867 f2fs_update_time(sbi, CP_TIME);
1868 f2fs_update_time(sbi, REQ_TIME);
1869 return 0;
1870
1871 free_kobj:
1872 f2fs_sync_inode_meta(sbi);
1873 kobject_del(&sbi->s_kobj);
1874 kobject_put(&sbi->s_kobj);
1875 wait_for_completion(&sbi->s_kobj_unregister);
1876 free_proc:
1877 if (sbi->s_proc) {
1878 remove_proc_entry("segment_info", sbi->s_proc);
1879 remove_proc_entry("segment_bits", sbi->s_proc);
1880 remove_proc_entry(sb->s_id, f2fs_proc_root);
1881 }
1882 f2fs_destroy_stats(sbi);
1883 free_root_inode:
1884 dput(sb->s_root);
1885 sb->s_root = NULL;
1886 free_node_inode:
1887 mutex_lock(&sbi->umount_mutex);
1888 f2fs_leave_shrinker(sbi);
1889 iput(sbi->node_inode);
1890 mutex_unlock(&sbi->umount_mutex);
1891 free_nm:
1892 destroy_node_manager(sbi);
1893 free_sm:
1894 destroy_segment_manager(sbi);
1895 kfree(sbi->ckpt);
1896 free_meta_inode:
1897 make_bad_inode(sbi->meta_inode);
1898 iput(sbi->meta_inode);
1899 free_options:
1900 destroy_percpu_info(sbi);
1901 kfree(options);
1902 free_sb_buf:
1903 kfree(raw_super);
1904 free_sbi:
1905 if (sbi->s_chksum_driver)
1906 crypto_free_shash(sbi->s_chksum_driver);
1907 kfree(sbi);
1908
1909 /* give only one another chance */
1910 if (retry) {
1911 retry = false;
1912 shrink_dcache_sb(sb);
1913 goto try_onemore;
1914 }
1915 return err;
1916 }
1917
1918 static struct dentry *f2fs_mount(struct file_system_type *fs_type, int flags,
1919 const char *dev_name, void *data)
1920 {
1921 return mount_bdev(fs_type, flags, dev_name, data, f2fs_fill_super);
1922 }
1923
1924 static void kill_f2fs_super(struct super_block *sb)
1925 {
1926 if (sb->s_root)
1927 set_sbi_flag(F2FS_SB(sb), SBI_IS_CLOSE);
1928 kill_block_super(sb);
1929 }
1930
1931 static struct file_system_type f2fs_fs_type = {
1932 .owner = THIS_MODULE,
1933 .name = "f2fs",
1934 .mount = f2fs_mount,
1935 .kill_sb = kill_f2fs_super,
1936 .fs_flags = FS_REQUIRES_DEV,
1937 };
1938 MODULE_ALIAS_FS("f2fs");
1939
1940 static int __init init_inodecache(void)
1941 {
1942 f2fs_inode_cachep = kmem_cache_create("f2fs_inode_cache",
1943 sizeof(struct f2fs_inode_info), 0,
1944 SLAB_RECLAIM_ACCOUNT|SLAB_ACCOUNT, NULL);
1945 if (!f2fs_inode_cachep)
1946 return -ENOMEM;
1947 return 0;
1948 }
1949
1950 static void destroy_inodecache(void)
1951 {
1952 /*
1953 * Make sure all delayed rcu free inodes are flushed before we
1954 * destroy cache.
1955 */
1956 rcu_barrier();
1957 kmem_cache_destroy(f2fs_inode_cachep);
1958 }
1959
1960 static int __init init_f2fs_fs(void)
1961 {
1962 int err;
1963
1964 f2fs_build_trace_ios();
1965
1966 err = init_inodecache();
1967 if (err)
1968 goto fail;
1969 err = create_node_manager_caches();
1970 if (err)
1971 goto free_inodecache;
1972 err = create_segment_manager_caches();
1973 if (err)
1974 goto free_node_manager_caches;
1975 err = create_checkpoint_caches();
1976 if (err)
1977 goto free_segment_manager_caches;
1978 err = create_extent_cache();
1979 if (err)
1980 goto free_checkpoint_caches;
1981 f2fs_kset = kset_create_and_add("f2fs", NULL, fs_kobj);
1982 if (!f2fs_kset) {
1983 err = -ENOMEM;
1984 goto free_extent_cache;
1985 }
1986 #ifdef CONFIG_F2FS_FAULT_INJECTION
1987 f2fs_fault_inject.kset = f2fs_kset;
1988 f2fs_build_fault_attr(0);
1989 err = kobject_init_and_add(&f2fs_fault_inject, &f2fs_fault_ktype,
1990 NULL, "fault_injection");
1991 if (err) {
1992 f2fs_fault_inject.kset = NULL;
1993 goto free_kset;
1994 }
1995 #endif
1996 err = register_shrinker(&f2fs_shrinker_info);
1997 if (err)
1998 goto free_kset;
1999
2000 err = register_filesystem(&f2fs_fs_type);
2001 if (err)
2002 goto free_shrinker;
2003 err = f2fs_create_root_stats();
2004 if (err)
2005 goto free_filesystem;
2006 f2fs_proc_root = proc_mkdir("fs/f2fs", NULL);
2007 return 0;
2008
2009 free_filesystem:
2010 unregister_filesystem(&f2fs_fs_type);
2011 free_shrinker:
2012 unregister_shrinker(&f2fs_shrinker_info);
2013 free_kset:
2014 #ifdef CONFIG_F2FS_FAULT_INJECTION
2015 if (f2fs_fault_inject.kset)
2016 kobject_put(&f2fs_fault_inject);
2017 #endif
2018 kset_unregister(f2fs_kset);
2019 free_extent_cache:
2020 destroy_extent_cache();
2021 free_checkpoint_caches:
2022 destroy_checkpoint_caches();
2023 free_segment_manager_caches:
2024 destroy_segment_manager_caches();
2025 free_node_manager_caches:
2026 destroy_node_manager_caches();
2027 free_inodecache:
2028 destroy_inodecache();
2029 fail:
2030 return err;
2031 }
2032
2033 static void __exit exit_f2fs_fs(void)
2034 {
2035 remove_proc_entry("fs/f2fs", NULL);
2036 f2fs_destroy_root_stats();
2037 unregister_filesystem(&f2fs_fs_type);
2038 unregister_shrinker(&f2fs_shrinker_info);
2039 #ifdef CONFIG_F2FS_FAULT_INJECTION
2040 kobject_put(&f2fs_fault_inject);
2041 #endif
2042 kset_unregister(f2fs_kset);
2043 destroy_extent_cache();
2044 destroy_checkpoint_caches();
2045 destroy_segment_manager_caches();
2046 destroy_node_manager_caches();
2047 destroy_inodecache();
2048 f2fs_destroy_trace_ios();
2049 }
2050
2051 module_init(init_f2fs_fs)
2052 module_exit(exit_f2fs_fs)
2053
2054 MODULE_AUTHOR("Samsung Electronics's Praesto Team");
2055 MODULE_DESCRIPTION("Flash Friendly File System");
2056 MODULE_LICENSE("GPL");