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Linus Torvalds8005ecc2012-12-20 13:54:51 -08001================================================================================
2WHAT IS Flash-Friendly File System (F2FS)?
3================================================================================
4
5NAND flash memory-based storage devices, such as SSD, eMMC, and SD cards, have
6been equipped on a variety systems ranging from mobile to server systems. Since
7they are known to have different characteristics from the conventional rotating
8disks, a file system, an upper layer to the storage device, should adapt to the
9changes from the sketch in the design level.
10
11F2FS is a file system exploiting NAND flash memory-based storage devices, which
12is based on Log-structured File System (LFS). The design has been focused on
13addressing the fundamental issues in LFS, which are snowball effect of wandering
14tree and high cleaning overhead.
15
16Since a NAND flash memory-based storage device shows different characteristic
17according to its internal geometry or flash memory management scheme, namely FTL,
18F2FS and its tools support various parameters not only for configuring on-disk
19layout, but also for selecting allocation and cleaning algorithms.
20
21The following git tree provides the file system formatting tool (mkfs.f2fs),
22a consistency checking tool (fsck.f2fs), and a debugging tool (dump.f2fs).
23>> git://git.kernel.org/pub/scm/linux/kernel/git/jaegeuk/f2fs-tools.git
24
25For reporting bugs and sending patches, please use the following mailing list:
26>> linux-f2fs-devel@lists.sourceforge.net
27
28================================================================================
29BACKGROUND AND DESIGN ISSUES
30================================================================================
31
32Log-structured File System (LFS)
33--------------------------------
34"A log-structured file system writes all modifications to disk sequentially in
35a log-like structure, thereby speeding up both file writing and crash recovery.
36The log is the only structure on disk; it contains indexing information so that
37files can be read back from the log efficiently. In order to maintain large free
38areas on disk for fast writing, we divide the log into segments and use a
39segment cleaner to compress the live information from heavily fragmented
40segments." from Rosenblum, M. and Ousterhout, J. K., 1992, "The design and
41implementation of a log-structured file system", ACM Trans. Computer Systems
4210, 1, 2652.
43
44Wandering Tree Problem
45----------------------
46In LFS, when a file data is updated and written to the end of log, its direct
47pointer block is updated due to the changed location. Then the indirect pointer
48block is also updated due to the direct pointer block update. In this manner,
49the upper index structures such as inode, inode map, and checkpoint block are
50also updated recursively. This problem is called as wandering tree problem [1],
51and in order to enhance the performance, it should eliminate or relax the update
52propagation as much as possible.
53
54[1] Bityutskiy, A. 2005. JFFS3 design issues. http://www.linux-mtd.infradead.org/
55
56Cleaning Overhead
57-----------------
58Since LFS is based on out-of-place writes, it produces so many obsolete blocks
59scattered across the whole storage. In order to serve new empty log space, it
60needs to reclaim these obsolete blocks seamlessly to users. This job is called
61as a cleaning process.
62
63The process consists of three operations as follows.
641. A victim segment is selected through referencing segment usage table.
652. It loads parent index structures of all the data in the victim identified by
66 segment summary blocks.
673. It checks the cross-reference between the data and its parent index structure.
684. It moves valid data selectively.
69
70This cleaning job may cause unexpected long delays, so the most important goal
71is to hide the latencies to users. And also definitely, it should reduce the
72amount of valid data to be moved, and move them quickly as well.
73
74================================================================================
75KEY FEATURES
76================================================================================
77
78Flash Awareness
79---------------
80- Enlarge the random write area for better performance, but provide the high
81 spatial locality
82- Align FS data structures to the operational units in FTL as best efforts
83
84Wandering Tree Problem
85----------------------
86- Use a term, node”, that represents inodes as well as various pointer blocks
87- Introduce Node Address Table (NAT) containing the locations of all the node
88 blocks; this will cut off the update propagation.
89
90Cleaning Overhead
91-----------------
92- Support a background cleaning process
93- Support greedy and cost-benefit algorithms for victim selection policies
94- Support multi-head logs for static/dynamic hot and cold data separation
95- Introduce adaptive logging for efficient block allocation
96
97================================================================================
98MOUNT OPTIONS
99================================================================================
100
101background_gc=%s Turn on/off cleaning operations, namely garbage
102 collection, triggered in background when I/O subsystem is
103 idle. If background_gc=on, it will turn on the garbage
104 collection and if background_gc=off, garbage collection
105 will be truned off.
106 Default value for this option is on. So garbage
107 collection is on by default.
108disable_roll_forward Disable the roll-forward recovery routine
109discard Issue discard/TRIM commands when a segment is cleaned.
110no_heap Disable heap-style segment allocation which finds free
111 segments for data from the beginning of main area, while
112 for node from the end of main area.
113nouser_xattr Disable Extended User Attributes. Note: xattr is enabled
114 by default if CONFIG_F2FS_FS_XATTR is selected.
115noacl Disable POSIX Access Control List. Note: acl is enabled
116 by default if CONFIG_F2FS_FS_POSIX_ACL is selected.
117active_logs=%u Support configuring the number of active logs. In the
118 current design, f2fs supports only 2, 4, and 6 logs.
119 Default number is 6.
120disable_ext_identify Disable the extension list configured by mkfs, so f2fs
121 does not aware of cold files such as media files.
122inline_xattr Enable the inline xattrs feature.
123
124================================================================================
125DEBUGFS ENTRIES
126================================================================================
127
128/sys/kernel/debug/f2fs/ contains information about all the partitions mounted as
129f2fs. Each file shows the whole f2fs information.
130
131/sys/kernel/debug/f2fs/status includes:
132 - major file system information managed by f2fs currently
133 - average SIT information about whole segments
134 - current memory footprint consumed by f2fs.
135
136================================================================================
137SYSFS ENTRIES
138================================================================================
139
140Information about mounted f2f2 file systems can be found in
141/sys/fs/f2fs. Each mounted filesystem will have a directory in
142/sys/fs/f2fs based on its device name (i.e., /sys/fs/f2fs/sda).
143The files in each per-device directory are shown in table below.
144
145Files in /sys/fs/f2fs/<devname>
146(see also Documentation/ABI/testing/sysfs-fs-f2fs)
147..............................................................................
148 File Content
149
150 gc_max_sleep_time This tuning parameter controls the maximum sleep
151 time for the garbage collection thread. Time is
152 in milliseconds.
153
154 gc_min_sleep_time This tuning parameter controls the minimum sleep
155 time for the garbage collection thread. Time is
156 in milliseconds.
157
158 gc_no_gc_sleep_time This tuning parameter controls the default sleep
159 time for the garbage collection thread. Time is
160 in milliseconds.
161
162 gc_idle This parameter controls the selection of victim
163 policy for garbage collection. Setting gc_idle = 0
164 (default) will disable this option. Setting
165 gc_idle = 1 will select the Cost Benefit approach
166 & setting gc_idle = 2 will select the greedy aproach.
167
168 reclaim_segments This parameter controls the number of prefree
169 segments to be reclaimed. If the number of prefree
170 segments is larger than this number, f2fs tries to
171 conduct checkpoint to reclaim the prefree segments
172 to free segments. By default, 100 segments, 200MB.
173
Changman Leeb1a94e82013-11-15 10:42:51 +0900174 ipu_policy This parameter controls the policy of in-place
175 updates in f2fs. There are five policies:
176 0: F2FS_IPU_FORCE, 1: F2FS_IPU_SSR,
177 2: F2FS_IPU_UTIL, 3: F2FS_IPU_SSR_UTIL,
178 4: F2FS_IPU_DISABLE.
179
180 min_ipu_util This parameter controls the threshold to trigger
181 in-place-updates. The number indicates percentage
182 of the filesystem utilization, and used by
183 F2FS_IPU_UTIL and F2FS_IPU_SSR_UTIL policies.
184
Jaegeuk Kim9a20f5d2014-01-09 21:00:06 +0900185 max_victim_search This parameter controls the number of trials to
186 find a victim segment when conducting SSR and
187 cleaning operations. The default value is 4096
188 which covers 8GB block address range.
189
Linus Torvalds8005ecc2012-12-20 13:54:51 -0800190================================================================================
191USAGE
192================================================================================
193
1941. Download userland tools and compile them.
195
1962. Skip, if f2fs was compiled statically inside kernel.
197 Otherwise, insert the f2fs.ko module.
198 # insmod f2fs.ko
199
2003. Create a directory trying to mount
201 # mkdir /mnt/f2fs
202
2034. Format the block device, and then mount as f2fs
204 # mkfs.f2fs -l label /dev/block_device
205 # mount -t f2fs /dev/block_device /mnt/f2fs
206
207mkfs.f2fs
208---------
209The mkfs.f2fs is for the use of formatting a partition as the f2fs filesystem,
210which builds a basic on-disk layout.
211
212The options consist of:
213-l [label] : Give a volume label, up to 512 unicode name.
214-a [0 or 1] : Split start location of each area for heap-based allocation.
215 1 is set by default, which performs this.
216-o [int] : Set overprovision ratio in percent over volume size.
217 5 is set by default.
218-s [int] : Set the number of segments per section.
219 1 is set by default.
220-z [int] : Set the number of sections per zone.
221 1 is set by default.
222-e [str] : Set basic extension list. e.g. "mp3,gif,mov"
223-t [0 or 1] : Disable discard command or not.
224 1 is set by default, which conducts discard.
225
226fsck.f2fs
227---------
228The fsck.f2fs is a tool to check the consistency of an f2fs-formatted
229partition, which examines whether the filesystem metadata and user-made data
230are cross-referenced correctly or not.
231Note that, initial version of the tool does not fix any inconsistency.
232
233The options consist of:
234 -d debug level [default:0]
235
236dump.f2fs
237---------
238The dump.f2fs shows the information of specific inode and dumps SSA and SIT to
239file. Each file is dump_ssa and dump_sit.
240
241The dump.f2fs is used to debug on-disk data structures of the f2fs filesystem.
242It shows on-disk inode information reconized by a given inode number, and is
243able to dump all the SSA and SIT entries into predefined files, ./dump_ssa and
244./dump_sit respectively.
245
246The options consist of:
247 -d debug level [default:0]
248 -i inode no (hex)
249 -s [SIT dump segno from #1~#2 (decimal), for all 0~-1]
250 -a [SSA dump segno from #1~#2 (decimal), for all 0~-1]
251
252Examples:
253# dump.f2fs -i [ino] /dev/sdx
254# dump.f2fs -s 0~-1 /dev/sdx (SIT dump)
255# dump.f2fs -a 0~-1 /dev/sdx (SSA dump)
256
257================================================================================
258DESIGN
259================================================================================
260
261On-disk Layout
262--------------
263
264F2FS divides the whole volume into a number of segments, each of which is fixed
265to 2MB in size. A section is composed of consecutive segments, and a zone
266consists of a set of sections. By default, section and zone sizes are set to one
267segment size identically, but users can easily modify the sizes by mkfs.
268
269F2FS splits the entire volume into six areas, and all the areas except superblock
270consists of multiple segments as described below.
271
272 align with the zone size <-|
273 |-> align with the segment size
274 _________________________________________________________________________
275 | | | Segment | Node | Segment | |
276 | Superblock | Checkpoint | Info. | Address | Summary | Main |
277 | (SB) | (CP) | Table (SIT) | Table (NAT) | Area (SSA) | |
278 |____________|_____2______|______N______|______N______|______N_____|__N___|
279 . .
280 . .
281 . .
282 ._________________________________________.
283 |_Segment_|_..._|_Segment_|_..._|_Segment_|
284 . .
285 ._________._________
286 |_section_|__...__|_
287 . .
288 .________.
289 |__zone__|
290
291- Superblock (SB)
292 : It is located at the beginning of the partition, and there exist two copies
293 to avoid file system crash. It contains basic partition information and some
294 default parameters of f2fs.
295
296- Checkpoint (CP)
297 : It contains file system information, bitmaps for valid NAT/SIT sets, orphan
298 inode lists, and summary entries of current active segments.
299
300- Segment Information Table (SIT)
301 : It contains segment information such as valid block count and bitmap for the
302 validity of all the blocks.
303
304- Node Address Table (NAT)
305 : It is composed of a block address table for all the node blocks stored in
306 Main area.
307
308- Segment Summary Area (SSA)
309 : It contains summary entries which contains the owner information of all the
310 data and node blocks stored in Main area.
311
312- Main Area
313 : It contains file and directory data including their indices.
314
315In order to avoid misalignment between file system and flash-based storage, F2FS
316aligns the start block address of CP with the segment size. Also, it aligns the
317start block address of Main area with the zone size by reserving some segments
318in SSA area.
319
320Reference the following survey for additional technical details.
321https://wiki.linaro.org/WorkingGroups/Kernel/Projects/FlashCardSurvey
322
323File System Metadata Structure
324------------------------------
325
326F2FS adopts the checkpointing scheme to maintain file system consistency. At
327mount time, F2FS first tries to find the last valid checkpoint data by scanning
328CP area. In order to reduce the scanning time, F2FS uses only two copies of CP.
329One of them always indicates the last valid data, which is called as shadow copy
330mechanism. In addition to CP, NAT and SIT also adopt the shadow copy mechanism.
331
332For file system consistency, each CP points to which NAT and SIT copies are
333valid, as shown as below.
334
335 +--------+----------+---------+
336 | CP | SIT | NAT |
337 +--------+----------+---------+
338 . . . .
339 . . . .
340 . . . .
341 +-------+-------+--------+--------+--------+--------+
342 | CP #0 | CP #1 | SIT #0 | SIT #1 | NAT #0 | NAT #1 |
343 +-------+-------+--------+--------+--------+--------+
344 | ^ ^
345 | | |
346 `----------------------------------------'
347
348Index Structure
349---------------
350
351The key data structure to manage the data locations is a "node". Similar to
352traditional file structures, F2FS has three types of node: inode, direct node,
353indirect node. F2FS assigns 4KB to an inode block which contains 923 data block
354indices, two direct node pointers, two indirect node pointers, and one double
355indirect node pointer as described below. One direct node block contains 1018
356data blocks, and one indirect node block contains also 1018 node blocks. Thus,
357one inode block (i.e., a file) covers:
358
359 4KB * (923 + 2 * 1018 + 2 * 1018 * 1018 + 1018 * 1018 * 1018) := 3.94TB.
360
361 Inode block (4KB)
362 |- data (923)
363 |- direct node (2)
364 | `- data (1018)
365 |- indirect node (2)
366 | `- direct node (1018)
367 | `- data (1018)
368 `- double indirect node (1)
369 `- indirect node (1018)
370 `- direct node (1018)
371 `- data (1018)
372
373Note that, all the node blocks are mapped by NAT which means the location of
374each node is translated by the NAT table. In the consideration of the wandering
375tree problem, F2FS is able to cut off the propagation of node updates caused by
376leaf data writes.
377
378Directory Structure
379-------------------
380
381A directory entry occupies 11 bytes, which consists of the following attributes.
382
383- hash hash value of the file name
384- ino inode number
385- len the length of file name
386- type file type such as directory, symlink, etc
387
388A dentry block consists of 214 dentry slots and file names. Therein a bitmap is
389used to represent whether each dentry is valid or not. A dentry block occupies
3904KB with the following composition.
391
392 Dentry Block(4 K) = bitmap (27 bytes) + reserved (3 bytes) +
393 dentries(11 * 214 bytes) + file name (8 * 214 bytes)
394
395 [Bucket]
396 +--------------------------------+
397 |dentry block 1 | dentry block 2 |
398 +--------------------------------+
399 . .
400 . .
401 . [Dentry Block Structure: 4KB] .
402 +--------+----------+----------+------------+
403 | bitmap | reserved | dentries | file names |
404 +--------+----------+----------+------------+
405 [Dentry Block: 4KB] . .
406 . .
407 . .
408 +------+------+-----+------+
409 | hash | ino | len | type |
410 +------+------+-----+------+
411 [Dentry Structure: 11 bytes]
412
413F2FS implements multi-level hash tables for directory structure. Each level has
414a hash table with dedicated number of hash buckets as shown below. Note that
415"A(2B)" means a bucket includes 2 data blocks.
416
417----------------------
418A : bucket
419B : block
420N : MAX_DIR_HASH_DEPTH
421----------------------
422
423level #0 | A(2B)
424 |
425level #1 | A(2B) - A(2B)
426 |
427level #2 | A(2B) - A(2B) - A(2B) - A(2B)
428 . | . . . .
429level #N/2 | A(2B) - A(2B) - A(2B) - A(2B) - A(2B) - ... - A(2B)
430 . | . . . .
431level #N | A(4B) - A(4B) - A(4B) - A(4B) - A(4B) - ... - A(4B)
432
433The number of blocks and buckets are determined by,
434
435 ,- 2, if n < MAX_DIR_HASH_DEPTH / 2,
436 # of blocks in level #n = |
437 `- 4, Otherwise
438
Jaegeuk Kim008f8a12014-02-27 18:20:00 +0900439 ,- 2^ (n + dir_level),
440 | if n < MAX_DIR_HASH_DEPTH / 2,
Linus Torvalds8005ecc2012-12-20 13:54:51 -0800441 # of buckets in level #n = |
Jaegeuk Kim008f8a12014-02-27 18:20:00 +0900442 `- 2^((MAX_DIR_HASH_DEPTH / 2 + dir_level) - 1),
443 Otherwise
Linus Torvalds8005ecc2012-12-20 13:54:51 -0800444
445When F2FS finds a file name in a directory, at first a hash value of the file
446name is calculated. Then, F2FS scans the hash table in level #0 to find the
447dentry consisting of the file name and its inode number. If not found, F2FS
448scans the next hash table in level #1. In this way, F2FS scans hash tables in
449each levels incrementally from 1 to N. In each levels F2FS needs to scan only
450one bucket determined by the following equation, which shows O(log(# of files))
451complexity.
452
453 bucket number to scan in level #n = (hash value) % (# of buckets in level #n)
454
455In the case of file creation, F2FS finds empty consecutive slots that cover the
456file name. F2FS searches the empty slots in the hash tables of whole levels from
4571 to N in the same way as the lookup operation.
458
459The following figure shows an example of two cases holding children.
460 --------------> Dir <--------------
461 | |
462 child child
463
464 child - child [hole] - child
465
466 child - child - child [hole] - [hole] - child
467
468 Case 1: Case 2:
469 Number of children = 6, Number of children = 3,
470 File size = 7 File size = 7
471
472Default Block Allocation
473------------------------
474
475At runtime, F2FS manages six active logs inside "Main" area: Hot/Warm/Cold node
476and Hot/Warm/Cold data.
477
478- Hot node contains direct node blocks of directories.
479- Warm node contains direct node blocks except hot node blocks.
480- Cold node contains indirect node blocks
481- Hot data contains dentry blocks
482- Warm data contains data blocks except hot and cold data blocks
483- Cold data contains multimedia data or migrated data blocks
484
485LFS has two schemes for free space management: threaded log and copy-and-compac-
486tion. The copy-and-compaction scheme which is known as cleaning, is well-suited
487for devices showing very good sequential write performance, since free segments
488are served all the time for writing new data. However, it suffers from cleaning
489overhead under high utilization. Contrarily, the threaded log scheme suffers
490from random writes, but no cleaning process is needed. F2FS adopts a hybrid
491scheme where the copy-and-compaction scheme is adopted by default, but the
492policy is dynamically changed to the threaded log scheme according to the file
493system status.
494
495In order to align F2FS with underlying flash-based storage, F2FS allocates a
496segment in a unit of section. F2FS expects that the section size would be the
497same as the unit size of garbage collection in FTL. Furthermore, with respect
498to the mapping granularity in FTL, F2FS allocates each section of the active
499logs from different zones as much as possible, since FTL can write the data in
500the active logs into one allocation unit according to its mapping granularity.
501
502Cleaning process
503----------------
504
505F2FS does cleaning both on demand and in the background. On-demand cleaning is
506triggered when there are not enough free segments to serve VFS calls. Background
507cleaner is operated by a kernel thread, and triggers the cleaning job when the
508system is idle.
509
510F2FS supports two victim selection policies: greedy and cost-benefit algorithms.
511In the greedy algorithm, F2FS selects a victim segment having the smallest number
512of valid blocks. In the cost-benefit algorithm, F2FS selects a victim segment
513according to the segment age and the number of valid blocks in order to address
514log block thrashing problem in the greedy algorithm. F2FS adopts the greedy
515algorithm for on-demand cleaner, while background cleaner adopts cost-benefit
516algorithm.
517
518In order to identify whether the data in the victim segment are valid or not,
519F2FS manages a bitmap. Each bit represents the validity of a block, and the
520bitmap is composed of a bit stream covering whole blocks in main area.