littlefs uses an invasive linked-list in open mdirs to keep any open
files/dirs (and some special mdirs) in sync during filesystem
operations. The main benefit of this is that the filesystem doesn't need
to know the number of open files at compile time.
The implementation here introduces a new type, lfsr_openedmdir_t, for
mdirs that want to participate in the opened-mdir linked-list. This
saves a couple words of memory in the cases where the mdir does not need
to participate in the opend-mdir linked-list.
Since we are creating quite a few more mdir structs in lfsr_mdir_commit now,
the size of this struct is valuable.
The implementation of lfsr_mdir_commit knew this was coming, so aside
from the new type, adding this feature was straightforward:
1. Update opened-mdirs based on in-flight attrs.
2. Update opened-mdirs rbyd state.
3. Mark any deleted opened-mdirs with the reserved mid -2.
4. Test.
mdirs behave a bit differently than btree nodes here. When an mdir's
weight drops to zero, we eagerly drop the mdir. Unfortunately this
introduce a large number of conditions into lfsr_mdir_commit. Maybe
there's some different way to structure to code to avoid this...
Also expanded mtree tests to cover more corner cases, these are
desperately for any confidence that mdir drops work.
This became surprisingly tricky.
The main issue is knowing when to split mdirs, and how to determine
this without wasting erase cycles.
Unlike splitting btree nodes, we can't salvage failed compacts here. As
soon as the salvage commit is written to disk, the commit becomes immediately
visibile to the filesystem because it still exists in the mtree. This is
a problem if we lose power.
We're likely going to need to implement rbyd estimates. This is
something I hoped to avoid because it brings in quite a bit of
complexity and might lead to an annoying amount of storage waste since
our estimates will need to be conservative to avoid unrecoverable
situations.
---
Also changed the on-disk btree/branch struct to store a copy of the weight.
This was already required for the root of the btree, requiring the
weight to be stored in every btree pointer allows better code
deduplication at the cost of some redundancy on btree branches, where
the weight is already implied by the rbyd structure.
This weight is usually a single byte for most branches anyways.
This may be worth revisiting at some point to see if there's any other
unexpected tradeoffs.
This work already indicates we need more data-related helper
functions. We shouldn't need this many function calls to do "simple"
operations such as fetch the superconfig if it exists.
This finally provides a solution for deferred B-tree inlining without
needing to evaluate attrs.
Deferred inlining is the idea that instead of inlining B-trees as soon
as the number of entries drops to either 1 or 0, we wait until a
compaction occurs to inline a B-tree. This accomplishes a few things:
1. Limits any extra reads for conditions to compaction time.
2. Avoids wasting erased bytes if we drop to 1 or 0 entries only
temporarily.
3. Avoids excessive erase costs if we oscillate between ~1 and ~2
entries.
Unfortunately after moving away from evaluating attrs, deferred inlining
became deceptively tricky.
In the current, non-evaluating-attr implementation, our btree commits
always lag one commit behind. When we compact, we first compact
everything currently in the rbyd, and then append any pending attr.
Never needing to evaluate the attrs removes a big chunk of logic as long
as we can assert that the largest attr set fits after compaction.
But this lagging of commits presents a problem for deferred inlining, if
we detect an inlinable tree during compaction, we can't be sure it's
_actually_ inlinable until we evaluate our attr. Which we really don't
want to do.
The solution here is to move the problem up a level. Instead of trying
to determine when to inline purely from the provided attr, we require
higher-level functions to provide this info in the form of a "cutoff".
Where, if compaction results in fewer entries than this cutoff, the
higher-level function can instead inline.
This effectively allows the higher-level functions to intercept
unnecessary compactions that can be inlined.
So far this solution seems to work quite well, with the added plus of
consolidating the corner cases around inlined/inlining btrees in these
higher-level functions.
---
Note that this has the peculiar side-effect of allowing zero-weight,
non-inlined B-trees. Our previous internal B-tree struct using the sign
of an integer to determine inline-ness, this was changed to use just the
sign-bit for the condition as a sort of ones-complement width field.
I think this sort of encoding may actually bit a tiny bit more
efficient. I was poking around with thumb code and noticed there is no
actual "abs" instruction, with gcc outputing an "it" sequence. But there
is a cheap bit-clear "bic" instruction.
- len => size - these all refer to byte-arrays
- buf => buffer - this doesn't matter but buffer is currently used more
- delta => d - we use delta for weight deltas, gstate deltas, using a
slightly different name (if somehow even less descriptive) for byte
offset-offsets helps avoid name collisions a little bit
The storage changes in btree operations should've probably been a
separate commit but got wrapped up in these changes. Now the high-level
btree operations are responsible to the attr storage for all internal
btree commits, as defined by LFSR_BTREE_SCRATCHATTRS.
This leads to slightly less total RAM usage, since it allows the
low-level btree operations to cannibilize the attrs of the high-level
btree operations as a part of its unrolled-tail-recursive
implementation.
This also includes some other cleanup such as removing old commented out
parts.
This is an absurd optimization that stems from the observation that the
branch encoding for the inner-rbyds in a B-tree is enough information to
jump directly to the trunk of the rbyd without needing an lfsr_rbyd_fetch.
This results in a pretty ridiculous performance jump from O(m log_m(n/m))
to O(log(m) log_m(n/m)).
If the complexity analysis isn't impressive enough, look at some rough
benchmarking of read operations for 4KiB-block, 1K-entry B-trees:
12KiB ^ :: :. :: .: .: :. : .: :. : : .. : : . : .: : : :
| .:: .::.::.:: ::.::::::::::::.::::::::.::::::::::::.
| : :::':: ::'::'::':: :' :':: :'::::::::': ::::::': :
before | ::: ::' :' :' :: :' '' ' ' '' : : : '' ' ' '
| ::: ''
|:
0B :'------------------------------------------------------>
.17KiB ^ ............:::::::::::::::::::::::::::::
| . .....:::::''''''''' ' ' '
| .::::::::::::
after | :':''
|.::
.:'
0B :------------------------------------------------------->
0 1K
In order for this to work, the branch encoding did need to be tweaked
slightly. Before it stored block+off, now it stores block+trunk where
"trunk" is the offset of the entry point into the rbyd tree. Both off
and trunk are enough info to know when to stop fetching, if necessary,
but trunk allows lookups to jump directly into the branches rbyd tree
without a fetch.
With the change to trunk, lfsr_rbyd_fetch has also be extended to allow
fetching of any internal trunks, not just the last trunk in the commit.
This is very useful for dbgrbyd.py, but doesn't currently have a use in
littlefs itself. But it's at least valuable to have the feature available
in case it does become useful.
Note that two cases still requires the slower O(m log_m(n/m)) lookup
with lfsr_rbyd_fetch:
1. Name lookups, since we currently use a linear-search O(m) to find names.
2. Validating B-tree rbyd's, which requires a linear fetch O(m) to
validate the checksums. We will need to do this at least once
after mount.
It's also worth mentioning this will likely have a large impact on B-tree
traversal speed. Which is huge as I am expecting B-tree traversal to be
the main bottleneck once garbage-collection (or its replacement) is
involved.
- The erased flag in lfsr_rbyd_t uses only a single bit, which is
wasteful for a heavily used struct in littlefs. We can use
rbyd.off=block_size to indicate the same state for free. Note that
when rbyd.off=block_size, we must treat rbyd as unerased anyways.
- Improved state handling in rbyd_append/commit when an error occurs.
I will be trying to make better use of cleanup gotos to make these
functions less unpredictable when an error occurs. Hopefully the state
of littlefs after an error can be well-defined in the future.
- Fixed sign-mismatch warnings in asserts when compiled outside of the
test runner.
There have already been a number of bugs that end up writing -1 out as
leb128s. The current encoder doesn't know the different betwee -1 and
0xffffffff, so asserting before this situation can happen is quite
important for preventing these bad leb128s from ever making it into a
stable version.
Also dropped LFS_ERR_OVERFLOW to use LFS_ERR_CORRUPT for bad leb128
encodings. These end up meaning the same thing to higher layers anyways.
This really just required care around calculating the expected B-tree id
and rbyd id (which are different!).
B-tree append, aka B-tree push with id=weight, is actually the outlier.
We need a B-tree id that can identify the rbyd we're appending to, but
this id itself doesn't exist in the tree yet, which can be a bit tricky.
This implements a common B-tree using rbyd's as inner nodes.
Since our rbyds actually map to sorted arrays, this fits together quite
well.
The main caveat/concern is that we can't rely on strict knowledge on the
on-disk size of these things. This first shows up with B-tree insertion,
we can't split in preparation to insert as we descend down the tree.
Normally, this means our B-tree would require recursion in order to keep
track of each parent as we descend down our tree. However, we can
avoid this by not storing our parent, but by looking it up again on each
step of the splitting operation.
This brute-force-ish approach makes our algorithm tail-recursive, so
bounded RAM, but raises our runtime from O(logB(n)) to O(logB(n)^2)
That being said, O(logB(n)^2) is still sublinear, and, thanks to
B-tree's extremely high branching factor, may be insignificant.
If we combine rbyd ids and B-tree weights, we need 32-bit ids since this
will eventually need to cover the full range of a file. This simply
doesn't fit into a single word anymore, unless littlefs uses 64-bit tags.
Generally not a great idea for a filesystem targeting even 8-bit
microcontrollers.
So here is a tag encoding that uses 3 leb128 words. This will likely
have more code cost and slightly more disk usage (we can no longer fit
tags into 2 bytes), though with most tags being alt pointers (O(m log m)
vs O(m)), this may not be that significant.
Note that we try to keep tags limited to 14-bits to avoid an extra leb128 byte,
which would likely affect all alt pointers. To pull this off we do away
with the subtype/suptype distinction, limiting in-tree tag types to
10-bits encoded on a per-suptype basis:
in-tree tags:
ttttttt ttt00rv
^--^^- 10-bit type
'|- removed bit
'- valid bit
iiii iiiiiii iiiiiii iiiiiii iiiiiii
^- n-bit id
lllllll lllllll lllllll lllllll
^- m-bit length
out-of-tree tags:
ttttttt ttt010v
^---^- 10-bit type
'- valid bit
0000000
lllllll lllllll lllllll lllllll
^- m-bit length
alt tags:
kkkkkkk kkk1dcv
^-^^^- 10-bit key
'||- direction bit
'|- color bit
'- valid bit
wwww wwwwwww wwwwwww wwwwwww wwwwwww
^- n-bit weight
jjjjjjj jjjjjjj jjjjjjj jjjjjjj
^- m-bit jump
The real pain is that with separate integers for id and tag, it no
longer makes sense to combine these into one big weight field. This
requires a significant rewrite.
The original idea was weighted B-trees composed out of weighted rbyds,
with the two weight systems being independent. Descent down the B-tree
uses the same technique in the current metadata data-structure of
searching for which branch to take during fetch, basically getting the
search for free (well, on top of the already required O(m) fetch
operation).
But this is fundamentally flawed. While file names provide an absolute
reference for finding matches, weights are relative references. So we
don't have enough information to do weight-based lookup during fetch.
This smells just like the relative-vs-absolute key issues that led to
rbyd vs rbd trees in the first place...
One option is to do rbyd traversals at each B-tree node to build the
necessary information to figure out the weights. But with rbyd
traversals taking O(m log m), this makes B-tree lookups O(log n * m log m),
and B-tree traversals a messy O(n log n * m log m), which is acceptable, but
disapointing for what will likely be the most common operation in the
filesystem.
But the rbyd trees _are_ already weighted. A better solution might be to
go back and rethink the seperation of B-tree weights and rbyd ids.
Unfortunately, with only 16-bits available for rbyd ids, this would
likely require a rewrite of how rbyd tags are encoded...
- Caching is still presenting issues with the new requirements for
rbyd trees, in this case the default bd, with 64 byte progs, revealed
and issue where rcache could become outdated when reading from disk
while ignoring what's in the pcache.
It assumes the pcache will always override the rcache, but this is not
true after pcache is flushed.
This didn't happen before as the rcache and pcache don't
interact while writing in the previous implementation. Because of
these new requirements the caching system probably deserves a
rework...
- The quick tests for sublinear space utilization don't work when
prog_size is > a byte, fortunately we should always have NOR-like
geometry under test, so we can limit these asserts to NOR-like
geometry.
- Lots of problems fitting these tests into 512-byte block_size
geometries, which is a bit concerning. This may be a larger change
from the previous implementation than expected. This may deserve more
scrutiny at small block sizes to see how things fit, since the
sublinear space utilization doesn't really kick in at this scale...
On the other hand it may just be that these tests are too aggressive
for 512-byte block sizes, since they don't yet do compaction, which
should help with padding/crc overhead...
Previously the subtype was encoded above the suptype. This was an issue
if you wanted to, say, traverse all tags in a given suptype.
I'm not sure yet if this sort of functionality is needed, it may be
useful for cleaning up/replacing classes of tags, such as file struct
tags, but not sure yet. At the very least is avoids unintuitive tag
ordering in the tree, which could potential cause problems for
create/deletes.
New encoding:
tags:
iiiiiii iiiiitt ttTTTTT TTT0trv
^----^--------^-^^^- 16-bit id
'--------|-'||- 5-bit suptype (split)
'--||- 8-bit subtype
'|- perturb/remove bit
'- valid bit
lllllll lllllll lllllll lllllll
^- n-bit length
alts:
wwwwwww wwwwwww wwwwwww www1dcv
^^^-^- 28-bit weight
'|-|- color bit
'-|- direction bit
'- valid bit
jjjjjjj jjjjjjj jjjjjjj jjjjjjj
^- n-bit jump
Also a large amount of name changes and other cleanup.
It's quite lucky a spare bit is free in the tag encoding, this means we
don't need a reserved length value as originally planned. We end up using
all of the bits that overlap the alt pointer encoding, which is nice and
unexpected.
- primitive lfs_rbyd_fetch
- primitive lfs_rbyd_commit
- tag reading/progging and encoding machinery
The tag encoding scheme here uses pairs of leb128s, encoding either
a normal tag:
iiii iiiiiii iiiiiTT TTTTTTt ttttt0v
^--------^------^-^- 16-bit id
'------|-|- 8-bit type2
'-|- 6-bit type1
'- valid bit
llll lllllll lllllll lllllll lllllll
^- n-bit length
Or an alt pointer:
wwww wwwwwww wwwwwww wwwwwww wwwcd1v
^^^-^- 28-bit weight
'|-|- color bit
'-|- direction bit
'- valid bit
jjjj jjjjjjj jjjjjjj jjjjjjj jjjjjjj
^- n-bit jump
Note that two bits overlap the alt pointer dir/color encoding, this
is actually not a problem at all since some tags (crcs/fcrcs) don't
participate in the rbyd tree and can use these bits.
There's a number of benefits to using leb128s, which should probably
be written about, most notably is the abstraction of the device's
word-size. The "n-bits" above can be whatever word size works on the
device, trading off code-size for storage capabilities without breaking
compatibility with other devices. This will eventually be negotiated via
the superblock.
Initially I thought the fcrc would be sufficient for all of the
end-of-commit context, since indicating that there is a new commit is a
simple as invalidating the fcrc. But it turns out there are cases that
make this impossible.
The surprising, and actually common, case, is that of an fcrc that
will end up containing a full commit. This is common as soon as the
prog_size is big, as small commits are padded to the prog_size at
minimum.
.------------------. \
| metadata | |
| | |
| | +-.
|------------------| | |
| foward CRC ------------.
|------------------| / | |
| commit CRC -----' |
|------------------| |
| padding | |
| | |
|------------------| \ \ |
| metadata | | | |
| | +-. | |
| | | | +-'
|------------------| / | |
| commit CRC --------' |
|------------------| |
| | /
'------------------'
When the commit + crc is all contained in the fcrc, something silly
happens with the math behind crcs. Everything in the commit gets
canceled out:
crc(m) = m(x) x^|P|-1 mod P(x)
m ++ crc(m) = m(x) x^|P|-1 + (m(x) x^|P|-1 mod P(x))
crc(m ++ crc(m)) = (m(x) x^|P|-1 + (m(x) x^|P|-1 mod P(x))) x^|P|-1 mod P(x)
crc(m ++ crc(m)) = (m(x) x^|P|-1 + m(x) x^|P|-1) x^|P|-1 mod P(x)
crc(m ++ crc(m)) = 0 * x^|P|-1 mod P(x)
This is the reason the crc of a message + naive crc is zero. Even with an
initializer/bit-fiddling, the crc of the whole commit ends up as some
constant.
So no manipulation of the commit can change the fcrc...
But even if this did work, or we changed this scheme to use two
different checksums, it would still require calculating the fcrc of
the whole commit to know if we need to tweak the first bit to invalidate
the unlikely-but-problematic case where we happen to match the fcrc. This
would add a large amount of complexity to the commit code.
It's much simpler and cheaper to keep the 1-bit counter in the tag, even
if it adds another moving part to the system.
This fixes most of the remaining bugs (except one with multiple padding
commits + noop erases in test_badblocks), with some other code tweaks.
The biggest change was dropping reliance on end-of-block commits to know
when to stop parsing commits. We can just continue to parse tags and
rely on the crc for catch bad commits, avoiding a backwards-compatiblity
hiccup. So no new commit tag.
Also renamed nprogcrc -> fcrc and commitcrc -> ccrc and made naming in
the code a bit more consistent.
Previously forward-looking CRCs was just two new CRC types, one for
commits with forward-looking CRCs, one without. These both contained the
CRC needed to complete the current commit (note that the commit CRC
must come last!).
[-- 32 --|-- 32 --|-- 32 --|-- 32 --]
with: [ crc3 tag | nprog size | nprog crc | commit crc ]
without: [ crc2 tag | commit crc ]
This meant there had to be several checks for the two possible structure
sizes, messying up the implementation.
[-- 32 --|-- 32 --|-- 32 --|-- 32 --|-- 32 --]
with: [nprogcrc tag| nprog size | nprog crc | commit tag | commit crc ]
without: [ commit tag | commit crc ]
But we already have a mechanism for storing optional metadata! The
different metadata tags! So why not use a separate tage for the
forward-looking CRC, separate from the commit CRC?
I wasn't sure this would actually help that much, there are still
necessary conditions for wether or not a forward-looking CRC is there,
but in the end it simplified the code quite nicely, and resulted in a ~200 byte
code-cost saving.
Improve the lfs_file_close usage description to make it clearer that the configuration structure must remain valid for its lifetime
In reference to #722
The main change here from the previous test framework design is:
1. Powerloss testing remains in-process, speeding up testing.
2. The state of a test, included all powerlosses, is encoded in the
test id + leb16 encoded powerloss string. This means exhaustive
testing can be run in CI, but then easily reproduced locally with
full debugger support.
For example:
./scripts/test.py test_dirs#reentrant_many_dir#10#1248g1g2 --gdb
Will run the test test_dir, case reentrant_many_dir, permutation #10,
with powerlosses at 1, 2, 4, 8, 16, and 32 cycles. Dropping into gdb
if an assert fails.
The changes to the block-device are a work-in-progress for a
lazily-allocated/copy-on-write block device that I'm hoping will keep
exhaustive testing relatively low-cost.
We have seen poor read performance on NAND flashes with 128kB blocks.
The root cause is inline files having to traverse many sets of metadata
pairs inside the current block before being fully reconstructed. Simply
disabling inline files is not enough, as the metadata will still fill up
the block and eventually need to be compacted.
By allowing configuration of how much size metadata takes up, along with
limiting (or disabling) inline file size, we achieve read performance
improvements on an order of magnitude.
This removes quite a bit of extra code needed to entertwine the
LFS_TRACE calls into the original funcions.
Also changed temporary return type to match API declaration where
necessary.
- Stayed on non-system include for lfs_util.h for now
- Named internal functions "lfs_functionraw"
- Merged lfs_fs_traverseraw
- Added LFS_LOCK/UNLOCK macros
- Changed LFS_THREADSAFE from 1/0 to defined/undefined to
match LFS_READONLY
- expand functions
- add comment
- rename functions
- fix locking issue in format and mount
- use global include
- fix ac6 linker issue
- use the global config file
- address review comments
- minor cleanup
- minor cleanup
- review comments
- undef unavailable function declarations altogether
- even less code, assert on write attempts
- remove LFS_O_WRONLY and other flags when compiling with LFS_READONLY
- do not annotate #endif, as requested
- move ifdef before comments blocks, rework dangling opening bracket
- ifdef file flags that are not needed in read-only mode
- slight refactor
- ifdef LFS_F_ERRED out as well
The power-cycled-relocation test with random renames has been the most
aggressive test applied to littlefs so far, with:
- Random nested directory creation
- Random nested directory removal
- Random nested directory renames (this could make the
threaded linked-list very interesting)
- Relocating blocks every write (maximum wear-leveling)
- Incrementally cycling power every write
Also added a couple other tests to test_orphans and test_relocations.
The good news is the added testing worked well, it found quite a number
of complex and subtle bugs that have been difficult to find.
1. It's actually possible for our parent to be relocated and go out of
sync in lfs_mkdir. This can happen if our predecessor's predecessor
is our parent as we are threading ourselves into the filesystem's
threaded list. (note this doesn't happen if our predecessor _is_ our
parent, as we then update our parent in a single commit).
This is annoying because it only happens if our parent is a long (>1
pair) directory, otherwise we wouldn't need to catch relocations.
Fortunately we can reuse the internal open file/dir linked-list to
catch relocations easily, as long as we're careful to unhook our
parent whenever lfs_mkdir returns.
2. Even more surprising, it's possible for the child in lfs_remove
to be relocated while we delete the entry from our parent. This
can happen if we are our own parent's predecessor, since we need
to be updated then if our parent relocates.
Fortunately we can also hook into the open linked-list here.
Note this same issue was present in lfs_rename.
Fortunately, this means now all fetched dirs are hooked into the
open linked-list if they are needed across a commit. This means
we shouldn't need assumptions about tree movement for correctness.
3. lfs_rename("deja/vu", "deja/vu") with the same source and destination
was broken and tried to delete the entry twice.
4. Managing gstate deltas when we lose power during relocations was
broken. And unfortunately complicated.
The issue happens when we lose power during a relocation while
removing a directory.
When we remove a directory, we need to move the contents of its
gstate delta to another directory or we'll corrupt littlefs gstate.
(gstate is an xor of all deltas on the filesystem). We used to just
xor the gstate into our parent's gstate, however this isn't correct.
The gstate isn't built out of the directory tree, but rather out of
the threaded linked-list (which exists to make collecting this
gstate efficient).
Because we have to remove our dir in two operations, there's a point
were both the updated parent and child can exist in threaded
linked-list and duplicate the child's gstate delta.
.--------.
->| parent |-.
| gstate | |
.-| a |-'
| '--------'
| X <- child is orphaned
| .--------.
'>| child |->
| gstate |
| a |
'--------'
What we need to do is save our child's gstate and only give it to our
predecessor, since this finalizes the removal of the child.
However we still need to make valid updates to the gstate to mark
that we've created an orphan when we start removing the child.
This led to a small rework of how the gstate is handled. Now we have
a separation of the gpending state that should be written out ASAP
and the gdelta state that is collected from orphans awaiting
deletion.
5. lfs_deorphan wasn't actually able to handle deorphaning/desyncing
more than one orphan after a power-cycle. Having more than one orphan
is very rare, but of course very possible. Fortunately this was just
a mistake with using a break the in the deorphan, perhaps left from
v1 where multiple orphans weren't possible?
Note that we use a continue to force a refetch of the orphaned block.
This is needed in the case of a half-orphan, since the fetched
half-orphan may have an outdated tail pointer.