xref: /linux/Documentation/filesystems/f2fs.rst (revision 570f7e331f5febb30f1384817463c7e42b65ca7d)
1.. SPDX-License-Identifier: GPL-2.0
2
3=================================
4Flash-Friendly File System (F2FS)
5=================================
6
7Overview
8========
9
10NAND flash memory-based storage devices, such as SSD, eMMC, and SD cards, have
11been equipped on a variety systems ranging from mobile to server systems. Since
12they are known to have different characteristics from the conventional rotating
13disks, a file system, an upper layer to the storage device, should adapt to the
14changes from the sketch in the design level.
15
16F2FS is a file system exploiting NAND flash memory-based storage devices, which
17is based on Log-structured File System (LFS). The design has been focused on
18addressing the fundamental issues in LFS, which are snowball effect of wandering
19tree and high cleaning overhead.
20
21Since a NAND flash memory-based storage device shows different characteristic
22according to its internal geometry or flash memory management scheme, namely FTL,
23F2FS and its tools support various parameters not only for configuring on-disk
24layout, but also for selecting allocation and cleaning algorithms.
25
26The following git tree provides the file system formatting tool (mkfs.f2fs),
27a consistency checking tool (fsck.f2fs), and a debugging tool (dump.f2fs).
28
29- git://git.kernel.org/pub/scm/linux/kernel/git/jaegeuk/f2fs-tools.git
30
31For sending patches, please use the following mailing list:
32
33- linux-f2fs-devel@lists.sourceforge.net
34
35For reporting bugs, please use the following f2fs bug tracker link:
36
37- https://bugzilla.kernel.org/enter_bug.cgi?product=File%20System&component=f2fs
38
39Background and Design issues
40============================
41
42Log-structured File System (LFS)
43--------------------------------
44"A log-structured file system writes all modifications to disk sequentially in
45a log-like structure, thereby speeding up  both file writing and crash recovery.
46The log is the only structure on disk; it contains indexing information so that
47files can be read back from the log efficiently. In order to maintain large free
48areas on disk for fast writing, we divide  the log into segments and use a
49segment cleaner to compress the live information from heavily fragmented
50segments." from Rosenblum, M. and Ousterhout, J. K., 1992, "The design and
51implementation of a log-structured file system", ACM Trans. Computer Systems
5210, 1, 26–52.
53
54Wandering Tree Problem
55----------------------
56In LFS, when a file data is updated and written to the end of log, its direct
57pointer block is updated due to the changed location. Then the indirect pointer
58block is also updated due to the direct pointer block update. In this manner,
59the upper index structures such as inode, inode map, and checkpoint block are
60also updated recursively. This problem is called as wandering tree problem [1],
61and in order to enhance the performance, it should eliminate or relax the update
62propagation as much as possible.
63
64[1] Bityutskiy, A. 2005. JFFS3 design issues. http://www.linux-mtd.infradead.org/
65
66Cleaning Overhead
67-----------------
68Since LFS is based on out-of-place writes, it produces so many obsolete blocks
69scattered across the whole storage. In order to serve new empty log space, it
70needs to reclaim these obsolete blocks seamlessly to users. This job is called
71as a cleaning process.
72
73The process consists of three operations as follows.
74
751. A victim segment is selected through referencing segment usage table.
762. It loads parent index structures of all the data in the victim identified by
77   segment summary blocks.
783. It checks the cross-reference between the data and its parent index structure.
794. It moves valid data selectively.
80
81This cleaning job may cause unexpected long delays, so the most important goal
82is to hide the latencies to users. And also definitely, it should reduce the
83amount of valid data to be moved, and move them quickly as well.
84
85Key Features
86============
87
88Flash Awareness
89---------------
90- Enlarge the random write area for better performance, but provide the high
91  spatial locality
92- Align FS data structures to the operational units in FTL as best efforts
93
94Wandering Tree Problem
95----------------------
96- Use a term, “node”, that represents inodes as well as various pointer blocks
97- Introduce Node Address Table (NAT) containing the locations of all the “node”
98  blocks; this will cut off the update propagation.
99
100Cleaning Overhead
101-----------------
102- Support a background cleaning process
103- Support greedy and cost-benefit algorithms for victim selection policies
104- Support multi-head logs for static/dynamic hot and cold data separation
105- Introduce adaptive logging for efficient block allocation
106
107Mount Options
108=============
109
110
111======================== ============================================================
112background_gc=%s	 Turn on/off cleaning operations, namely garbage
113			 collection, triggered in background when I/O subsystem is
114			 idle. If background_gc=on, it will turn on the garbage
115			 collection and if background_gc=off, garbage collection
116			 will be turned off. If background_gc=sync, it will turn
117			 on synchronous garbage collection running in background.
118			 Default value for this option is on. So garbage
119			 collection is on by default.
120gc_merge		 When background_gc is on, this option can be enabled to
121			 let background GC thread to handle foreground GC requests,
122			 it can eliminate the sluggish issue caused by slow foreground
123			 GC operation when GC is triggered from a process with limited
124			 I/O and CPU resources.
125nogc_merge		 Disable GC merge feature.
126disable_roll_forward	 Disable the roll-forward recovery routine
127norecovery		 Disable the roll-forward recovery routine, mounted read-
128			 only (i.e., -o ro,disable_roll_forward)
129discard/nodiscard	 Enable/disable real-time discard in f2fs, if discard is
130			 enabled, f2fs will issue discard/TRIM commands when a
131			 segment is cleaned.
132heap/no_heap		 Deprecated.
133nouser_xattr		 Disable Extended User Attributes. Note: xattr is enabled
134			 by default if CONFIG_F2FS_FS_XATTR is selected.
135noacl			 Disable POSIX Access Control List. Note: acl is enabled
136			 by default if CONFIG_F2FS_FS_POSIX_ACL is selected.
137active_logs=%u		 Support configuring the number of active logs. In the
138			 current design, f2fs supports only 2, 4, and 6 logs.
139			 Default number is 6.
140			 When the underlying block device exposes write
141			 streams, the default active_logs=6 configuration
142			 maps hot, warm, and cold DATA writes to streams 1,
143			 2, and 3, respectively. If only one or two write
144			 streams are available, f2fs falls back to mapping
145			 all DATA writes to stream 1 or mapping hot/warm
146			 to stream 1 and cold to stream 2. If no write
147			 streams are exposed, f2fs leaves the stream
148			 unset.
149disable_ext_identify	 Disable the extension list configured by mkfs, so f2fs
150			 is not aware of cold files such as media files.
151inline_xattr		 Enable the inline xattrs feature.
152noinline_xattr		 Disable the inline xattrs feature.
153inline_xattr_size=%u	 Support configuring inline xattr size, it depends on
154			 flexible inline xattr feature.
155inline_data		 Enable the inline data feature: Newly created small (<~3.4k)
156			 files can be written into inode block.
157inline_dentry		 Enable the inline dir feature: data in newly created
158			 directory entries can be written into inode block. The
159			 space of inode block which is used to store inline
160			 dentries is limited to ~3.4k.
161noinline_dentry		 Disable the inline dentry feature.
162flush_merge		 Merge concurrent cache_flush commands as much as possible
163			 to eliminate redundant command issues. If the underlying
164			 device handles the cache_flush command relatively slowly,
165			 recommend to enable this option.
166nobarrier		 This option can be used if underlying storage guarantees
167			 its cached data should be written to the novolatile area.
168			 If this option is set, no cache_flush commands are issued
169			 but f2fs still guarantees the write ordering of all the
170			 data writes.
171barrier			 If this option is set, cache_flush commands are allowed to be
172			 issued.
173fastboot		 This option is used when a system wants to reduce mount
174			 time as much as possible, even though normal performance
175			 can be sacrificed.
176extent_cache		 Enable an extent cache based on rb-tree, it can cache
177			 as many as extent which map between contiguous logical
178			 address and physical address per inode, resulting in
179			 increasing the cache hit ratio. Set by default.
180noextent_cache		 Disable an extent cache based on rb-tree explicitly, see
181			 the above extent_cache mount option.
182noinline_data		 Disable the inline data feature, inline data feature is
183			 enabled by default.
184data_flush		 Enable data flushing before checkpoint in order to
185			 persist data of regular and symlink.
186reserve_root=%d		 Support configuring reserved space which is used for
187			 allocation from a privileged user with specified uid or
188			 gid, unit: 4KB, the default limit is 12.5% of user blocks.
189reserve_node=%d		 Support configuring reserved nodes which are used for
190			 allocation from a privileged user with specified uid or
191			 gid, the default limit is 12.5% of all nodes.
192resuid=%d		 The user ID which may use the reserved blocks and nodes.
193resgid=%d		 The group ID which may use the reserved blocks and nodes.
194fault_injection=%d	 Enable fault injection in all supported types with
195			 specified injection rate.
196fault_type=%d		 Support configuring fault injection type, should be
197			 enabled with fault_injection option, fault type value
198			 is shown below, it supports single or combined type.
199
200			 .. code-block:: none
201
202			     ===========================      ==========
203			     Type_Name                        Type_Value
204			     ===========================      ==========
205			     FAULT_KMALLOC                    0x00000001
206			     FAULT_KVMALLOC                   0x00000002
207			     FAULT_PAGE_ALLOC                 0x00000004
208			     FAULT_PAGE_GET                   0x00000008
209			     FAULT_ALLOC_BIO                  0x00000010 (obsolete)
210			     FAULT_ALLOC_NID                  0x00000020
211			     FAULT_ORPHAN                     0x00000040
212			     FAULT_BLOCK                      0x00000080
213			     FAULT_DIR_DEPTH                  0x00000100
214			     FAULT_EVICT_INODE                0x00000200
215			     FAULT_TRUNCATE                   0x00000400
216			     FAULT_READ_IO                    0x00000800
217			     FAULT_CHECKPOINT                 0x00001000
218			     FAULT_DISCARD                    0x00002000 (obsolete)
219			     FAULT_WRITE_IO                   0x00004000
220			     FAULT_SLAB_ALLOC                 0x00008000
221			     FAULT_DQUOT_INIT                 0x00010000
222			     FAULT_LOCK_OP                    0x00020000
223			     FAULT_BLKADDR_VALIDITY           0x00040000
224			     FAULT_BLKADDR_CONSISTENCE        0x00080000
225			     FAULT_NO_SEGMENT                 0x00100000
226			     FAULT_INCONSISTENT_FOOTER        0x00200000
227			     FAULT_ATOMIC_TIMEOUT             0x00400000 (1000ms)
228			     FAULT_VMALLOC                    0x00800000
229			     FAULT_LOCK_TIMEOUT               0x01000000 (1000ms)
230			     FAULT_SKIP_WRITE                 0x02000000
231			     ===========================      ==========
232mode=%s			 Control block allocation mode which supports "adaptive"
233			 and "lfs". In "lfs" mode, there should be no random
234			 writes towards main area.
235			 "fragment:segment" and "fragment:block" are newly added here.
236			 These are developer options for experiments to simulate filesystem
237			 fragmentation/after-GC situation itself. The developers use these
238			 modes to understand filesystem fragmentation/after-GC condition well,
239			 and eventually get some insights to handle them better.
240			 In "fragment:segment", f2fs allocates a new segment in random
241			 position. With this, we can simulate the after-GC condition.
242			 In "fragment:block", we can scatter block allocation with
243			 "max_fragment_chunk" and "max_fragment_hole" sysfs nodes.
244			 We added some randomness to both chunk and hole size to make
245			 it close to realistic IO pattern. So, in this mode, f2fs will allocate
246			 1..<max_fragment_chunk> blocks in a chunk and make a hole in the
247			 length of 1..<max_fragment_hole> by turns. With this, the newly
248			 allocated blocks will be scattered throughout the whole partition.
249			 Note that "fragment:block" implicitly enables "fragment:segment"
250			 option for more randomness.
251			 Please, use these options for your experiments and we strongly
252			 recommend to re-format the filesystem after using these options.
253usrquota		 Enable plain user disk quota accounting.
254grpquota		 Enable plain group disk quota accounting.
255prjquota		 Enable plain project quota accounting.
256usrjquota=<file>	 Appoint specified file and type during mount, so that quota
257grpjquota=<file>	 information can be properly updated during recovery flow,
258prjjquota=<file>	 <quota file>: must be in root directory;
259jqfmt=<quota type>	 <quota type>: [vfsold,vfsv0,vfsv1].
260usrjquota=		 Turn off user journalled quota.
261grpjquota=		 Turn off group journalled quota.
262prjjquota=		 Turn off project journalled quota.
263quota			 Enable plain user disk quota accounting.
264noquota			 Disable all plain disk quota option.
265alloc_mode=%s		 Adjust block allocation policy, which supports "reuse"
266			 and "default".
267fsync_mode=%s		 Control the policy of fsync. Currently supports "posix",
268			 "strict", and "nobarrier". In "posix" mode, which is
269			 default, fsync will follow POSIX semantics and does a
270			 light operation to improve the filesystem performance.
271			 In "strict" mode, fsync will be heavy and behaves in line
272			 with xfs, ext4 and btrfs, where xfstest generic/342 will
273			 pass, but the performance will regress. "nobarrier" is
274			 based on "posix", but doesn't issue flush command for
275			 non-atomic files likewise "nobarrier" mount option.
276test_dummy_encryption
277test_dummy_encryption=%s
278			 Enable dummy encryption, which provides a fake fscrypt
279			 context. The fake fscrypt context is used by xfstests.
280			 The argument may be either "v1" or "v2", in order to
281			 select the corresponding fscrypt policy version.
282checkpoint=%s[:%u[%]]	 Set to "disable" to turn off checkpointing. Set to "enable"
283			 to re-enable checkpointing. Is enabled by default. While
284			 disabled, any unmounting or unexpected shutdowns will cause
285			 the filesystem contents to appear as they did when the
286			 filesystem was mounted with that option.
287			 While mounting with checkpoint=disable, the filesystem must
288			 run garbage collection to ensure that all available space can
289			 be used. If this takes too much time, the mount may return
290			 EAGAIN. You may optionally add a value to indicate how much
291			 of the disk you would be willing to temporarily give up to
292			 avoid additional garbage collection. This can be given as a
293			 number of blocks, or as a percent. For instance, mounting
294			 with checkpoint=disable:100% would always succeed, but it may
295			 hide up to all remaining free space. The actual space that
296			 would be unusable can be viewed at /sys/fs/f2fs/<disk>/unusable
297			 This space is reclaimed once checkpoint=enable.
298checkpoint_merge	 When checkpoint is enabled, this can be used to create a kernel
299			 daemon and make it to merge concurrent checkpoint requests as
300			 much as possible to eliminate redundant checkpoint issues. Plus,
301			 we can eliminate the sluggish issue caused by slow checkpoint
302			 operation when the checkpoint is done in a process context in
303			 a cgroup having low i/o budget and cpu shares. To make this
304			 do better, we set the default i/o priority of the kernel daemon
305			 to "3", to give one higher priority than other kernel threads.
306			 This is the same way to give a I/O priority to the jbd2
307			 journaling thread of ext4 filesystem.
308nocheckpoint_merge	 Disable checkpoint merge feature.
309compress_algorithm=%s	 Control compress algorithm, currently f2fs supports "lzo",
310			 "lz4", "zstd" and "lzo-rle" algorithm.
311compress_algorithm=%s:%d Control compress algorithm and its compress level, now, only
312			 "lz4" and "zstd" support compress level config::
313
314				 =========      ===========
315				 algorithm      level range
316				 =========      ===========
317				 lz4            3 - 16
318				 zstd           1 - 22
319				 =========      ===========
320
321compress_log_size=%u	 Support configuring compress cluster size. The size will
322			 be 4KB * (1 << %u). The default and minimum sizes are 16KB.
323compress_extension=%s	 Support adding specified extension, so that f2fs can enable
324			 compression on those corresponding files, e.g. if all files
325			 with '.ext' has high compression rate, we can set the '.ext'
326			 on compression extension list and enable compression on
327			 these file by default rather than to enable it via ioctl.
328			 For other files, we can still enable compression via ioctl.
329			 Note that, there is one reserved special extension '*', it
330			 can be set to enable compression for all files.
331nocompress_extension=%s	 Support adding specified extension, so that f2fs can disable
332			 compression on those corresponding files, just contrary to compression extension.
333			 If you know exactly which files cannot be compressed, you can use this.
334			 The same extension name can't appear in both compress and nocompress
335			 extension at the same time.
336			 If the compress extension specifies all files, the types specified by the
337			 nocompress extension will be treated as special cases and will not be compressed.
338			 Don't allow use '*' to specifie all file in nocompress extension.
339			 After add nocompress_extension, the priority should be:
340			 dir_flag < comp_extention,nocompress_extension < comp_file_flag,no_comp_file_flag.
341			 See more in compression sections.
342
343compress_chksum		 Support verifying chksum of raw data in compressed cluster.
344compress_mode=%s	 Control file compression mode. This supports "fs" and "user"
345			 modes. In "fs" mode (default), f2fs does automatic compression
346			 on the compression enabled files. In "user" mode, f2fs disables
347			 the automaic compression and gives the user discretion of
348			 choosing the target file and the timing. The user can do manual
349			 compression/decompression on the compression enabled files using
350			 ioctls.
351compress_cache		 Support to use address space of a filesystem managed inode to
352			 cache compressed block, in order to improve cache hit ratio of
353			 random read.
354inlinecrypt		 When possible, encrypt/decrypt the contents of
355			 encrypted files using inline encryption hardware rather
356			 than the CPU. For more details, see
357			 Documentation/filesystems/fscrypt.rst.
358atgc			 Enable age-threshold garbage collection, it provides high
359			 effectiveness and efficiency on background GC.
360discard_unit=%s		 Control discard unit, the argument can be "block", "segment"
361			 and "section", issued discard command's offset/size will be
362			 aligned to the unit, by default, "discard_unit=block" is set,
363			 so that small discard functionality is enabled.
364			 For blkzoned device, "discard_unit=section" will be set by
365			 default, it is helpful for large sized SMR or ZNS devices to
366			 reduce memory cost by getting rid of fs metadata supports small
367			 discard.
368memory=%s		 Control memory mode. This supports "normal" and "low" modes.
369			 "low" mode is introduced to support low memory devices.
370			 Because of the nature of low memory devices, in this mode, f2fs
371			 will try to save memory sometimes by sacrificing performance.
372			 "normal" mode is the default mode and same as before.
373age_extent_cache	 Enable an age extent cache based on rb-tree. It records
374			 data block update frequency of the extent per inode, in
375			 order to provide better temperature hints for data block
376			 allocation.
377errors=%s		 Specify f2fs behavior on critical errors. This supports modes:
378			 "panic", "continue" and "remount-ro", respectively, trigger
379			 panic immediately, continue without doing anything, and remount
380			 the partition in read-only mode. By default it uses "continue"
381			 mode.
382
383			 .. code-block:: none
384
385			     ====================== =============== =============== ========
386			     mode                   continue        remount-ro      panic
387			     ====================== =============== =============== ========
388			     access ops             normal          normal          N/A
389			     syscall errors         -EIO            -EROFS          N/A
390			     mount option           rw              ro              N/A
391			     pending dir write      keep            keep            N/A
392			     pending non-dir write  drop            keep            N/A
393			     pending node write     drop            keep            N/A
394			     pending meta write     keep            keep            N/A
395			     ====================== =============== =============== ========
396nat_bits		 Enable nat_bits feature to enhance full/empty nat blocks access,
397			 by default it's disabled.
398lookup_mode=%s		 Control the directory lookup behavior for casefolded
399			 directories. This option has no effect on directories
400			 that do not have the casefold feature enabled.
401
402			 .. code-block:: none
403
404			     ================== ========================================
405			     Value              Description
406			     ================== ========================================
407			     perf               (Default) Enforces a hash-only lookup.
408					        The linear search fallback is always
409					        disabled, ignoring the on-disk flag.
410			     compat             Enables the linear search fallback for
411					        compatibility with directory entries
412					        created by older kernel that used a
413					        different case-folding algorithm.
414					        This mode ignores the on-disk flag.
415			     auto               F2FS determines the mode based on the
416					        on-disk `SB_ENC_NO_COMPAT_FALLBACK_FL`
417					        flag.
418			     ================== ========================================
419======================== ============================================================
420
421Debugfs Entries
422===============
423
424/sys/kernel/debug/f2fs/ contains information about all the partitions mounted as
425f2fs. Each file shows the whole f2fs information.
426
427/sys/kernel/debug/f2fs/status includes:
428
429 - major file system information managed by f2fs currently
430 - average SIT information about whole segments
431 - current memory footprint consumed by f2fs.
432
433Sysfs Entries
434=============
435
436Information about mounted f2fs file systems can be found in
437/sys/fs/f2fs.  Each mounted filesystem will have a directory in
438/sys/fs/f2fs based on its device name (i.e., /sys/fs/f2fs/sda).
439The files in each per-device directory are shown in table below.
440
441Files in /sys/fs/f2fs/<devname>
442(see also Documentation/ABI/testing/sysfs-fs-f2fs)
443
444Usage
445=====
446
4471. Download userland tools and compile them.
448
4492. Skip, if f2fs was compiled statically inside kernel.
450   Otherwise, insert the f2fs.ko module::
451
452	# insmod f2fs.ko
453
4543. Create a directory to use when mounting::
455
456	# mkdir /mnt/f2fs
457
4584. Format the block device, and then mount as f2fs::
459
460	# mkfs.f2fs -l label /dev/block_device
461	# mount -t f2fs /dev/block_device /mnt/f2fs
462
463mkfs.f2fs
464---------
465The mkfs.f2fs is for the use of formatting a partition as the f2fs filesystem,
466which builds a basic on-disk layout.
467
468The quick options consist of:
469
470===============    ===========================================================
471``-l [label]``     Give a volume label, up to 512 unicode name.
472``-a [0 or 1]``    Split start location of each area for heap-based allocation.
473
474                   1 is set by default, which performs this.
475``-o [int]``       Set overprovision ratio in percent over volume size.
476
477                   5 is set by default.
478``-s [int]``       Set the number of segments per section.
479
480                   1 is set by default.
481``-z [int]``       Set the number of sections per zone.
482
483                   1 is set by default.
484``-e [str]``       Set basic extension list. e.g. "mp3,gif,mov"
485``-t [0 or 1]``    Disable discard command or not.
486
487                   1 is set by default, which conducts discard.
488===============    ===========================================================
489
490Note: please refer to the manpage of mkfs.f2fs(8) to get full option list.
491
492fsck.f2fs
493---------
494The fsck.f2fs is a tool to check the consistency of an f2fs-formatted
495partition, which examines whether the filesystem metadata and user-made data
496are cross-referenced correctly or not.
497Note that, initial version of the tool does not fix any inconsistency.
498
499The quick options consist of::
500
501  -d debug level [default:0]
502
503Note: please refer to the manpage of fsck.f2fs(8) to get full option list.
504
505dump.f2fs
506---------
507The dump.f2fs shows the information of specific inode and dumps SSA and SIT to
508file. Each file is dump_ssa and dump_sit.
509
510The dump.f2fs is used to debug on-disk data structures of the f2fs filesystem.
511It shows on-disk inode information recognized by a given inode number, and is
512able to dump all the SSA and SIT entries into predefined files, ./dump_ssa and
513./dump_sit respectively.
514
515The options consist of::
516
517  -d debug level [default:0]
518  -i inode no (hex)
519  -s [SIT dump segno from #1~#2 (decimal), for all 0~-1]
520  -a [SSA dump segno from #1~#2 (decimal), for all 0~-1]
521
522Examples::
523
524    # dump.f2fs -i [ino] /dev/sdx
525    # dump.f2fs -s 0~-1 /dev/sdx (SIT dump)
526    # dump.f2fs -a 0~-1 /dev/sdx (SSA dump)
527
528Note: please refer to the manpage of dump.f2fs(8) to get full option list.
529
530sload.f2fs
531----------
532The sload.f2fs gives a way to insert files and directories in the existing disk
533image. This tool is useful when building f2fs images given compiled files.
534
535Note: please refer to the manpage of sload.f2fs(8) to get full option list.
536
537resize.f2fs
538-----------
539The resize.f2fs lets a user resize the f2fs-formatted disk image, while preserving
540all the files and directories stored in the image.
541
542Note: please refer to the manpage of resize.f2fs(8) to get full option list.
543
544defrag.f2fs
545-----------
546The defrag.f2fs can be used to defragment scattered written data as well as
547filesystem metadata across the disk. This can improve the write speed by giving
548more free consecutive space.
549
550Note: please refer to the manpage of defrag.f2fs(8) to get full option list.
551
552f2fs_io
553-------
554The f2fs_io is a simple tool to issue various filesystem APIs as well as
555f2fs-specific ones, which is very useful for QA tests.
556
557Note: please refer to the manpage of f2fs_io(8) to get full option list.
558
559Design
560======
561
562On-disk Layout
563--------------
564
565F2FS divides the whole volume into a number of segments, each of which is fixed
566to 2MB in size. A section is composed of consecutive segments, and a zone
567consists of a set of sections. By default, section and zone sizes are set to one
568segment size identically, but users can easily modify the sizes by mkfs.
569
570F2FS splits the entire volume into six areas, and all the areas except superblock
571consist of multiple segments as described below::
572
573                                            align with the zone size <-|
574                 |-> align with the segment size
575     _________________________________________________________________________
576    |            |            |   Segment   |    Node     |   Segment  |      |
577    | Superblock | Checkpoint |    Info.    |   Address   |   Summary  | Main |
578    |    (SB)    |   (CP)     | Table (SIT) | Table (NAT) | Area (SSA) |      |
579    |____________|_____2______|______N______|______N______|______N_____|__N___|
580                                                                       .      .
581                                                             .                .
582                                                 .                            .
583                                    ._________________________________________.
584                                    |_Segment_|_..._|_Segment_|_..._|_Segment_|
585                                    .           .
586                                    ._________._________
587                                    |_section_|__...__|_
588                                    .            .
589		                    .________.
590	                            |__zone__|
591
592- Superblock (SB)
593   It is located at the beginning of the partition, and there exist two copies
594   to avoid file system crash. It contains basic partition information and some
595   default parameters of f2fs.
596
597- Checkpoint (CP)
598   It contains file system information, bitmaps for valid NAT/SIT sets, orphan
599   inode lists, and summary entries of current active segments.
600
601- Segment Information Table (SIT)
602   It contains segment information such as valid block count and bitmap for the
603   validity of all the blocks.
604
605- Node Address Table (NAT)
606   It is composed of a block address table for all the node blocks stored in
607   Main area.
608
609- Segment Summary Area (SSA)
610   It contains summary entries which contains the owner information of all the
611   data and node blocks stored in Main area.
612
613- Main Area
614   It contains file and directory data including their indices.
615
616In order to avoid misalignment between file system and flash-based storage, F2FS
617aligns the start block address of CP with the segment size. Also, it aligns the
618start block address of Main area with the zone size by reserving some segments
619in SSA area.
620
621Reference the following survey for additional technical details.
622https://wiki.linaro.org/WorkingGroups/Kernel/Projects/FlashCardSurvey
623
624File System Metadata Structure
625------------------------------
626
627F2FS adopts the checkpointing scheme to maintain file system consistency. At
628mount time, F2FS first tries to find the last valid checkpoint data by scanning
629CP area. In order to reduce the scanning time, F2FS uses only two copies of CP.
630One of them always indicates the last valid data, which is called as shadow copy
631mechanism. In addition to CP, NAT and SIT also adopt the shadow copy mechanism.
632
633For file system consistency, each CP points to which NAT and SIT copies are
634valid, as shown as below::
635
636  +--------+----------+---------+
637  |   CP   |    SIT   |   NAT   |
638  +--------+----------+---------+
639  .         .          .          .
640  .            .              .              .
641  .               .                 .                 .
642  +-------+-------+--------+--------+--------+--------+
643  | CP #0 | CP #1 | SIT #0 | SIT #1 | NAT #0 | NAT #1 |
644  +-------+-------+--------+--------+--------+--------+
645     |             ^                          ^
646     |             |                          |
647     `----------------------------------------'
648
649Index Structure
650---------------
651
652The key data structure to manage the data locations is a "node". Similar to
653traditional file structures, F2FS has three types of node: inode, direct node,
654indirect node. F2FS assigns 4KB to an inode block which contains 923 data block
655indices, two direct node pointers, two indirect node pointers, and one double
656indirect node pointer as described below. One direct node block contains 1018
657data blocks, and one indirect node block contains also 1018 node blocks. Thus,
658one inode block (i.e., a file) covers::
659
660  4KB * (923 + 2 * 1018 + 2 * 1018 * 1018 + 1018 * 1018 * 1018) := 3.94TB.
661
662   Inode block (4KB)
663     |- data (923)
664     |- direct node (2)
665     |          `- data (1018)
666     |- indirect node (2)
667     |            `- direct node (1018)
668     |                       `- data (1018)
669     `- double indirect node (1)
670                         `- indirect node (1018)
671			              `- direct node (1018)
672	                                         `- data (1018)
673
674Note that all the node blocks are mapped by NAT which means the location of
675each node is translated by the NAT table. In the consideration of the wandering
676tree problem, F2FS is able to cut off the propagation of node updates caused by
677leaf data writes.
678
679Directory Structure
680-------------------
681
682A directory entry occupies 11 bytes, which consists of the following attributes.
683
684- hash		hash value of the file name
685- ino		inode number
686- len		the length of file name
687- type		file type such as directory, symlink, etc
688
689A dentry block consists of 214 dentry slots and file names. Therein a bitmap is
690used to represent whether each dentry is valid or not. A dentry block occupies
6914KB with the following composition.
692
693::
694
695  Dentry Block(4 K) = bitmap (27 bytes) + reserved (3 bytes) +
696	              dentries(11 * 214 bytes) + file name (8 * 214 bytes)
697
698                         [Bucket]
699             +--------------------------------+
700             |dentry block 1 | dentry block 2 |
701             +--------------------------------+
702             .               .
703       .                             .
704  .       [Dentry Block Structure: 4KB]       .
705  +--------+----------+----------+------------+
706  | bitmap | reserved | dentries | file names |
707  +--------+----------+----------+------------+
708  [Dentry Block: 4KB] .   .
709		 .               .
710            .                          .
711            +------+------+-----+------+
712            | hash | ino  | len | type |
713            +------+------+-----+------+
714            [Dentry Structure: 11 bytes]
715
716F2FS implements multi-level hash tables for directory structure. Each level has
717a hash table with dedicated number of hash buckets as shown below. Note that
718"A(2B)" means a bucket includes 2 data blocks.
719
720::
721
722    ----------------------
723    A : bucket
724    B : block
725    N : MAX_DIR_HASH_DEPTH
726    ----------------------
727
728    level #0   | A(2B)
729	    |
730    level #1   | A(2B) - A(2B)
731	    |
732    level #2   | A(2B) - A(2B) - A(2B) - A(2B)
733	.     |   .       .       .       .
734    level #N/2 | A(2B) - A(2B) - A(2B) - A(2B) - A(2B) - ... - A(2B)
735	.     |   .       .       .       .
736    level #N   | A(4B) - A(4B) - A(4B) - A(4B) - A(4B) - ... - A(4B)
737
738The number of blocks and buckets are determined by::
739
740                            ,- 2, if n < MAX_DIR_HASH_DEPTH / 2,
741  # of blocks in level #n = |
742                            `- 4, Otherwise
743
744                             ,- 2^(n + dir_level),
745			     |        if n + dir_level < MAX_DIR_HASH_DEPTH / 2,
746  # of buckets in level #n = |
747                             `- 2^((MAX_DIR_HASH_DEPTH / 2) - 1),
748			              Otherwise
749
750When F2FS finds a file name in a directory, at first a hash value of the file
751name is calculated. Then, F2FS scans the hash table in level #0 to find the
752dentry consisting of the file name and its inode number. If not found, F2FS
753scans the next hash table in level #1. In this way, F2FS scans hash tables in
754each levels incrementally from 1 to N. In each level F2FS needs to scan only
755one bucket determined by the following equation, which shows O(log(# of files))
756complexity::
757
758  bucket number to scan in level #n = (hash value) % (# of buckets in level #n)
759
760In the case of file creation, F2FS finds empty consecutive slots that cover the
761file name. F2FS searches the empty slots in the hash tables of whole levels from
7621 to N in the same way as the lookup operation.
763
764The following figure shows an example of two cases holding children::
765
766       --------------> Dir <--------------
767       |                                 |
768    child                             child
769
770    child - child                     [hole] - child
771
772    child - child - child             [hole] - [hole] - child
773
774   Case 1:                           Case 2:
775   Number of children = 6,           Number of children = 3,
776   File size = 7                     File size = 7
777
778Default Block Allocation
779------------------------
780
781At runtime, F2FS manages six active logs inside "Main" area: Hot/Warm/Cold node
782and Hot/Warm/Cold data.
783
784- Hot node	contains direct node blocks of directories.
785- Warm node	contains direct node blocks except hot node blocks.
786- Cold node	contains indirect node blocks
787- Hot data	contains dentry blocks
788- Warm data	contains data blocks except hot and cold data blocks
789- Cold data	contains multimedia data or migrated data blocks
790
791LFS has two schemes for free space management: threaded log and copy-and-compac-
792tion. The copy-and-compaction scheme which is known as cleaning, is well-suited
793for devices showing very good sequential write performance, since free segments
794are served all the time for writing new data. However, it suffers from cleaning
795overhead under high utilization. Contrarily, the threaded log scheme suffers
796from random writes, but no cleaning process is needed. F2FS adopts a hybrid
797scheme where the copy-and-compaction scheme is adopted by default, but the
798policy is dynamically changed to the threaded log scheme according to the file
799system status.
800
801In order to align F2FS with underlying flash-based storage, F2FS allocates a
802segment in a unit of section. F2FS expects that the section size would be the
803same as the unit size of garbage collection in FTL. Furthermore, with respect
804to the mapping granularity in FTL, F2FS allocates each section of the active
805logs from different zones as much as possible, since FTL can write the data in
806the active logs into one allocation unit according to its mapping granularity.
807
808Cleaning process
809----------------
810
811F2FS does cleaning both on demand and in the background. On-demand cleaning is
812triggered when there are not enough free segments to serve VFS calls. Background
813cleaner is operated by a kernel thread, and triggers the cleaning job when the
814system is idle.
815
816F2FS supports two victim selection policies: greedy and cost-benefit algorithms.
817In the greedy algorithm, F2FS selects a victim segment having the smallest number
818of valid blocks. In the cost-benefit algorithm, F2FS selects a victim segment
819according to the segment age and the number of valid blocks in order to address
820log block thrashing problem in the greedy algorithm. F2FS adopts the greedy
821algorithm for on-demand cleaner, while background cleaner adopts cost-benefit
822algorithm.
823
824In order to identify whether the data in the victim segment are valid or not,
825F2FS manages a bitmap. Each bit represents the validity of a block, and the
826bitmap is composed of a bit stream covering whole blocks in main area.
827
828Write-hint Policy
829-----------------
830
831F2FS sets the whint all the time with the below policy.
832
833===================== ======================== ===================
834User                  F2FS                     Block
835===================== ======================== ===================
836N/A                   META                     WRITE_LIFE_NONE|REQ_META
837N/A                   HOT_NODE                 WRITE_LIFE_NONE
838N/A                   WARM_NODE                WRITE_LIFE_MEDIUM
839N/A                   COLD_NODE                WRITE_LIFE_LONG
840ioctl(COLD)           COLD_DATA                WRITE_LIFE_EXTREME
841extension list        "                        "
842
843-- buffered io
844------------------------------------------------------------------
845N/A                   COLD_DATA                WRITE_LIFE_EXTREME
846N/A                   HOT_DATA                 WRITE_LIFE_SHORT
847N/A                   WARM_DATA                WRITE_LIFE_NOT_SET
848
849-- direct io
850------------------------------------------------------------------
851WRITE_LIFE_EXTREME    COLD_DATA                WRITE_LIFE_EXTREME
852WRITE_LIFE_SHORT      HOT_DATA                 WRITE_LIFE_SHORT
853WRITE_LIFE_NOT_SET    WARM_DATA                WRITE_LIFE_NOT_SET
854WRITE_LIFE_NONE       "                        WRITE_LIFE_NONE
855WRITE_LIFE_MEDIUM     "                        WRITE_LIFE_MEDIUM
856WRITE_LIFE_LONG       "                        WRITE_LIFE_LONG
857===================== ======================== ===================
858
859Fallocate(2) Policy
860-------------------
861
862The default policy follows the below POSIX rule.
863
864Allocating disk space
865    The default operation (i.e., mode is zero) of fallocate() allocates
866    the disk space within the range specified by offset and len.  The
867    file size (as reported by stat(2)) will be changed if offset+len is
868    greater than the file size.  Any subregion within the range specified
869    by offset and len that did not contain data before the call will be
870    initialized to zero.  This default behavior closely resembles the
871    behavior of the posix_fallocate(3) library function, and is intended
872    as a method of optimally implementing that function.
873
874However, once F2FS receives ioctl(fd, F2FS_IOC_SET_PIN_FILE) in prior to
875fallocate(fd, DEFAULT_MODE), it allocates on-disk block addresses having
876zero or random data, which is useful to the below scenario where:
877
878 1. create(fd)
879 2. ioctl(fd, F2FS_IOC_SET_PIN_FILE)
880 3. fallocate(fd, 0, 0, size)
881 4. address = fibmap(fd, offset)
882 5. open(blkdev)
883 6. write(blkdev, address)
884
885Compression implementation
886--------------------------
887
888- New term named cluster is defined as basic unit of compression, file can
889  be divided into multiple clusters logically. One cluster includes 4 << n
890  (n >= 0) logical pages, compression size is also cluster size, each of
891  cluster can be compressed or not.
892
893- In cluster metadata layout, one special block address is used to indicate
894  a cluster is a compressed one or normal one; for compressed cluster, following
895  metadata maps cluster to [1, 4 << n - 1] physical blocks, in where f2fs
896  stores data including compress header and compressed data.
897
898- In order to eliminate write amplification during overwrite, F2FS only
899  support compression on write-once file, data can be compressed only when
900  all logical blocks in cluster contain valid data and compress ratio of
901  cluster data is lower than specified threshold.
902
903- To enable compression on regular inode, there are four ways:
904
905  * chattr +c file
906  * chattr +c dir; touch dir/file
907  * mount w/ -o compress_extension=ext; touch file.ext
908  * mount w/ -o compress_extension=*; touch any_file
909
910- To disable compression on regular inode, there are two ways:
911
912  * chattr -c file
913  * mount w/ -o nocompress_extension=ext; touch file.ext
914
915- Priority in between FS_COMPR_FL, FS_NOCOMP_FS, extensions:
916
917  * compress_extension=so; nocompress_extension=zip; chattr +c dir; touch
918    dir/foo.so; touch dir/bar.zip; touch dir/baz.txt; then foo.so and baz.txt
919    should be compresse, bar.zip should be non-compressed. chattr +c dir/bar.zip
920    can enable compress on bar.zip.
921  * compress_extension=so; nocompress_extension=zip; chattr -c dir; touch
922    dir/foo.so; touch dir/bar.zip; touch dir/baz.txt; then foo.so should be
923    compresse, bar.zip and baz.txt should be non-compressed.
924    chattr+c dir/bar.zip; chattr+c dir/baz.txt; can enable compress on bar.zip
925    and baz.txt.
926
927- At this point, compression feature doesn't expose compressed space to user
928  directly in order to guarantee potential data updates later to the space.
929  Instead, the main goal is to reduce data writes to flash disk as much as
930  possible, resulting in extending disk life time as well as relaxing IO
931  congestion. Alternatively, we've added ioctl(F2FS_IOC_RELEASE_COMPRESS_BLOCKS)
932  interface to reclaim compressed space and show it to user after setting a
933  special flag to the inode. Once the compressed space is released, the flag
934  will block writing data to the file until either the compressed space is
935  reserved via ioctl(F2FS_IOC_RESERVE_COMPRESS_BLOCKS) or the file size is
936  truncated to zero.
937
938Compress metadata layout::
939
940				[Dnode Structure]
941		+-----------------------------------------------+
942		| cluster 1 | cluster 2 | ......... | cluster N |
943		+-----------------------------------------------+
944		.           .                       .           .
945	  .                      .                .                      .
946    .         Compressed Cluster       .        .        Normal Cluster            .
947    +----------+---------+---------+---------+  +---------+---------+---------+---------+
948    |compr flag| block 1 | block 2 | block 3 |  | block 1 | block 2 | block 3 | block 4 |
949    +----------+---------+---------+---------+  +---------+---------+---------+---------+
950	       .                             .
951	    .                                           .
952	.                                                           .
953	+-------------+-------------+----------+----------------------------+
954	| data length | data chksum | reserved |      compressed data       |
955	+-------------+-------------+----------+----------------------------+
956
957Compression mode
958--------------------------
959
960f2fs supports "fs" and "user" compression modes with "compression_mode" mount option.
961With this option, f2fs provides a choice to select the way how to compress the
962compression enabled files (refer to "Compression implementation" section for how to
963enable compression on a regular inode).
964
9651) compress_mode=fs
966
967   This is the default option. f2fs does automatic compression in the writeback of the
968   compression enabled files.
969
9702) compress_mode=user
971
972   This disables the automatic compression and gives the user discretion of choosing the
973   target file and the timing. The user can do manual compression/decompression on the
974   compression enabled files using F2FS_IOC_DECOMPRESS_FILE and F2FS_IOC_COMPRESS_FILE
975   ioctls like the below.
976
977To decompress a file::
978
979  fd = open(filename, O_WRONLY, 0);
980  ret = ioctl(fd, F2FS_IOC_DECOMPRESS_FILE);
981
982To compress a file::
983
984  fd = open(filename, O_WRONLY, 0);
985  ret = ioctl(fd, F2FS_IOC_COMPRESS_FILE);
986
987NVMe Zoned Namespace devices
988----------------------------
989
990- ZNS defines a per-zone capacity which can be equal or less than the
991  zone-size. Zone-capacity is the number of usable blocks in the zone.
992  F2FS checks if zone-capacity is less than zone-size, if it is, then any
993  segment which starts after the zone-capacity is marked as not-free in
994  the free segment bitmap at initial mount time. These segments are marked
995  as permanently used so they are not allocated for writes and
996  consequently are not needed to be garbage collected. In case the
997  zone-capacity is not aligned to default segment size(2MB), then a segment
998  can start before the zone-capacity and span across zone-capacity boundary.
999  Such spanning segments are also considered as usable segments. All blocks
1000  past the zone-capacity are considered unusable in these segments.
1001
1002Device aliasing feature
1003-----------------------
1004
1005f2fs can utilize a special file called a "device aliasing file." This file allows
1006the entire storage device to be mapped with a single, large extent, not using
1007the usual f2fs node structures. This mapped area is pinned and primarily intended
1008for holding the space.
1009
1010Essentially, this mechanism allows a portion of the f2fs area to be temporarily
1011reserved and used by another filesystem or for different purposes. Once that
1012external usage is complete, the device aliasing file can be deleted, releasing
1013the reserved space back to F2FS for its own use.
1014
1015.. code-block::
1016
1017   # ls /dev/vd*
1018   /dev/vdb (32GB) /dev/vdc (32GB)
1019   # mkfs.ext4 /dev/vdc
1020   # mkfs.f2fs -c /dev/vdc@vdc.file /dev/vdb
1021   # mount /dev/vdb /mnt/f2fs
1022   # ls -l /mnt/f2fs
1023   vdc.file
1024   # df -h
1025   /dev/vdb                            64G   33G   32G  52% /mnt/f2fs
1026
1027   # mount -o loop /dev/vdc /mnt/ext4
1028   # df -h
1029   /dev/vdb                            64G   33G   32G  52% /mnt/f2fs
1030   /dev/loop7                          32G   24K   30G   1% /mnt/ext4
1031   # umount /mnt/ext4
1032
1033   # f2fs_io getflags /mnt/f2fs/vdc.file
1034   get a flag on /mnt/f2fs/vdc.file ret=0, flags=nocow(pinned),immutable
1035   # f2fs_io setflags noimmutable /mnt/f2fs/vdc.file
1036   get a flag on noimmutable ret=0, flags=800010
1037   set a flag on /mnt/f2fs/vdc.file ret=0, flags=noimmutable
1038   # rm /mnt/f2fs/vdc.file
1039   # df -h
1040   /dev/vdb                            64G  753M   64G   2% /mnt/f2fs
1041
1042So, the key idea is, user can do any file operations on /dev/vdc, and
1043reclaim the space after the use, while the space is counted as /data.
1044That doesn't require modifying partition size and filesystem format.
1045
1046Per-file Read-Only Large Folio Support
1047--------------------------------------
1048
1049F2FS implements large folio support on the read path to leverage high-order
1050page allocation for significant performance gains. To minimize code complexity,
1051this support is currently excluded from the write path, which requires handling
1052complex optimizations such as compression and block allocation modes.
1053
1054This optional feature is triggered only when a file's immutable bit is set.
1055Consequently, F2FS will return EOPNOTSUPP if a user attempts to open a cached
1056file with write permissions, even immediately after clearing the bit. Write
1057access is only restored once the cached inode is dropped. The usage flow is
1058demonstrated below:
1059
1060.. code-block::
1061
1062   # f2fs_io setflags immutable /data/testfile_read_seq
1063
1064   /* flush and reload the inode to enable the large folio */
1065   # sync && echo 3 > /proc/sys/vm/drop_caches
1066
1067   /* mmap(MAP_POPULATE) + mlock() */
1068   # f2fs_io read 128 0 1024 mmap 1 0 /data/testfile_read_seq
1069
1070   /* mmap() + fadvise(POSIX_FADV_WILLNEED) + mlock() */
1071   # f2fs_io read 128 0 1024 fadvise 1 0 /data/testfile_read_seq
1072
1073   /* mmap() + mlock2(MLOCK_ONFAULT) + madvise(MADV_POPULATE_READ) */
1074   # f2fs_io read 128 0 1024 madvise 1 0 /data/testfile_read_seq
1075
1076   # f2fs_io clearflags immutable /data/testfile_read_seq
1077
1078   # f2fs_io write 1 0 1 zero buffered /data/testfile_read_seq
1079   Failed to open /mnt/test/test: Operation not supported
1080
1081   /* flush and reload the inode to disable the large folio */
1082   # sync && echo 3 > /proc/sys/vm/drop_caches
1083
1084   # f2fs_io write 1 0 1 zero buffered /data/testfile_read_seq
1085   Written 4096 bytes with pattern = zero, total_time = 29 us, max_latency = 28 us
1086
1087   # rm /data/testfile_read_seq
1088