Unfortunately the powerloss testing risks being a big time sink.
Figuring out the best scale of powerloss testing during normal testing
is probably going to be a constant balancing act.
Mainly trying to match the tests over mkdir/rm, which seem to have a
good amount of coverage.
- Fixed issue where move's desination rid wasn't updated correctly if
the destination split.
- Prevented renaming into nonexistant directories.
- Fixed neighboring rid adjustment in rename (+1 not -1 silly).
- Fixed erronously updating the grm's rid during lfsr_fs_fixgrm. In the
"I can't believe this ever worked" category, it seems this usually
didn't cause issues since mid was often marked as removed, making the
erronously updated rid ignored.
Only simple tests right now, but the theory is sound.
This mainly required the addition of the fancy in-device move attribute,
which copies all tags associated with an rid from one rbyd to another in
a single transaction.
This is a carryover from the previous littlefs implementation, though it
is easier to implement here since it is effectively a range query on the
rbyd tree, which trees are really good at. This was intentional.
Oh and I suppose this also required implementing lfsr_rename, which has
a few corner cases to watch out for.
It is nice that both lfsr_remove and lfsr_rename can rely on
lfsr_fs_fixgrm to finish all of the removes, which wasn't previously
reasonable due to the overhead of deorphaning.
Hopefully third times the charm.
The previous solution pretty bluntly did not work outside of the
recursive remove case, because the moment we mark the rid as deleted,
the directory positions no longer get updates. It's not possible to
update the directory position because we don't know how it maps into our
mtree without a full seek from the dstart.
After staring at it a bit, I think this solution should work:
1. Instead of marking the mid/rid as removed when dropping an mdir, we
set the weight to zero and the trunk to zero, causing mdir lookups to
return NOENT without actually going to disk.
This is very important since later mdirs could be allocated on the
same block, and going to disk can result in a corrupted lookup.
2. Eagerly seek to the next mid/rid after every lfsr_dir_read call. This
puts us in a position where rid can be >= the current mdir weight
without issues, and avoids degenerate cases that may be caused by
recursive removes.
3. If we remove an opened dir, instead of marking the mdir as deleted,
move the rid to the next rid. If the mdir was dropped, this leaves us
with rid == mdir weight, and the mdir trunk == 0.
The rid == mdir weight also occurs when we are creating a new file, so
we have a bit of common behavior we can rely on. We just need to make
sure that mdir updates respect the rid == mdir weight situation.
4. On each lfsr_dir_read call, we do an mtree seek of zero. This just
serves to fix our mdir if our rid == mdir weight, without much
additional code (yay for code reuse).
The use of weight=0, trunk=0, for a dropped mdir here is key, and makes
me wonder if this is a better indicator of a dropped mdir than another
reserved mid value. This probably deserves some investigation later.
"Recursion" here just refers to the ability to remove entries in a
directory while iterating over it. This is very useful when you just
want a directory gone, and can be extended to a "true" recursive remove
straightforwardly. This mainly tests that mid/rid updates in opened
mdirs are correct.
To make this work, we need to update opened dirs differently than files,
since opened dirs do not get marked as removed when its rid is removed
and contain an additional position in the dir that needs to be updated.
To keep track of the different types, littlefs now contains 2
linked-lists for opened mdirs. Maybe these should be correctly typed,
but by hiding the specific types behind an array of mdir linked-lists,
we can more efficiently iterate over both lists when necessary.
We should probably compare this approach to the type-tagged approach in
the previous littlefs implementation, but I think the idea of an array
of type-hidden linked-lists just didn't come to me then. There was also
a bit more room in the mdir structs to hide a 1-bit type field. The mdir
structs here are getting pretty squeezed since they are used everywhere.
These mirror the lfsr_mkdir tests, but backwards.
It's interesting to note the rm powerloss testing is much slower than
mkdir powerloss testing. This is because the rm tests can make
significant backwards progress if power is lost (these tests both make
and remove dirs), but mkdir tests always make forward progress (by only
making dirs).
In theory this is pretty much the same as lfsr_mkdir, but backwards.
The main work was making the interactions between removing mids/rids and
the grm correct. This ends up meaning we just need to update the grm on
any mid/rid update the same way we update the list of opened mdirs.
On the plus side, it turned out to be possible to deduplicate the mdir
uninlining route a bit, by adding range argument to lfsr_mdir_commit_
and changing the write of the newly uninlined mtree/mdir to marking
mtree as dirty and then joining the common path.
This lets us move the pre-commit round of grm updates into a single
location in lfsr_mdir_commit, removing and extra function definition and
the related state marshalling while also simplifying the control-flow.
This also raises the question, can more lfsr_mdir_commit be deduplicated
more? Uninlining is a infrequent operation we don't really need to
optimize for.
---
Testing lfsr_remove also found a bug related to incorrect propagation of
when the mroot becomes "unerased" (when rbyd overflows). This raises the
concern that we're not propagating unerased-states very rigorously, and
unexpected errors may not allow the filesystem to resume.
This has never been in a very good place for littlefs, but would be
worth improving in the future.
Instead of iterating over a number of seeds in the test itself, the
seeds are now permuted as a part of normal test defines.
This lets each seed take advantage of other test features, mainly the
ability to test powerlosses heuristically.
This is probably how it should have been done in the first place, but
the permutation tests can't do this since the number of permutations
changes as the size of the test input changes. The test define system
can't handle that very well.
The tradeoffs here are:
- We can't do cross-fuzz checks, such as the balance checks in the rbyd
tests, though those really should be moved to benchmarks anyways.
- The large number of cheap fuzz permutations skews the total
permutation count, though I'm not sure this matters.
before: 3083 permutations (-Gnor)
after: 409893 permutations (-Gnor)
To help with this, added TEST_PL, which is set to true when powerloss
testing. This way tests can check for stronger conditions (no EEXIST)
when not powerloss testing.
With TEST_PL, there's really no reason every test in t5_dirs shouldn't
be reentrant, and this gives us a huge improvement of test coverage very
cheaply.
---
The increased test coverage caught a bug, which is that gstate wasn't
being consumed properly when mtree uninlining. Humorously, this went
unnoticed because the most common form of mtree uninlining, mdir splitting,
ended up incorrectly consuming the gstate twice, which canceled itself
out since the consume operation is basically just xor.
Also added support for printing dstarts to dbglfs.py, to help debugging.
The grm bugs were mostly issues with:
1. Not maintaining the on-disk grm state in RAM (lfs->grm) correctly,
this needs to be updated correctly after every commit or littlefs
gets a confused.
2. lfsr_fs_fixgrm got a bit confused when it was missed when changing
the no-rm encoding from 0 to -2. Added some inline functions to help
avoid this in the future.
3. Leaking information due to mixing fixed sized and variable sized
encodings of the grm delta in places. This is a bit tricky to write
an assert for as we don't parse the full grm when we see a no-rm grm.
This implementation is in theory correct, but of course, being untested,
who knows?
Though this does come with remounting added to all of the directory
tests. This effectively tests that all of the directory creation tests
we have so far maintain grm=0 after each unmount-mount cycle. Which is
valuable.
This bug was just overlooked in testing the mtree, fortunately dir
fuzzing found it. Though since this depends on neighboring mdirs, it
probably would have been found quicker with smaller block sizes. At the
moment I am only testing on NOR-liked geometry (4KiB blocks).
The fix is easy, we can use the difference in the mtree size to
determine if a split or drop happened in mdir commit, since at most one
of these can happen on any mdir commit.
Also added an explicit test for mid updates when splitting and dropping.
lfsr_stat is really a directory operation underneath, so it's good to
add to our testing while we are building up the dir tests.
It's interesting to note lfsr_stat and lfsr_dir_read are less
deduplicatable than their previous versions, since lfsr_stat can get
most of it's info from lfsr_mtree_pathlookup. Though there will probably
need to be some code sharing when we get to files with sizes.
- Checksum collisions
- Collisions with root did
- Collisions needing wraparound
- Possible leb128 encoding issues
Sure enough the last one caught an off-by-one error in our calculation
of the leb128 encoded size. I sort of expected a bug there, since it's
rather nuanced math, so it's good to have test coverage now.
The main issues:
- The addition of the root's dstart entry during lfsr_format throws off
our mtree tests. It's a bit of a hack, but for now I am just manually
deleting the root's dstart entry at the beginning of each tests.
It might be possible to make the mtree tests work around the root's
dstart, but it seems to cause problems for when exactly the mtree
splits.
- btree dnamelookup and mdir dnamelookup need different things from
the rbyd dnamelookup when the dname is not found. The btree lookup
needs the largest branch smaller than the dname, since this is the
"bucket" containing our dname, while the mdir dnamelookup needs
the id that _follows_ the id smaller than the dname, since insertion
causes all ids >= the inserting id to shift up.
The solution here is to make rbyd dnamelookup behave as expected by
btree dnamelookup. btree needs more info about the branch (weight
mostly), so this avoids more issues. mdir dnamelookup adjusts the
id as needed, which costs a bit of code, but makes things work.
Fortunately, mdir dnamelookup can assume the weight is 1, which
simplifies things a bit.
This makes it now possible to create directories in the new system.
The new system now uses a single global "mtree" to store all metadata
entries in the filesystem. In this system, a directory is simply a range
of metadata entries. This has a number of benefits, but does come with
its own problems:
1. We need to indicate which directory each file belongs to. To do this
the file's name entry has been changed to a tuple of leb128-encoded
directory-id + actual file name:
01 66 69 6c 65 2e 74 78 74 .file.txt
^ '----------+----------'
'------------|------------ leb128 directory-id
'------------ ascii/utf8 name
If we include the directory-id as part of filename comparison, files
should naturally be next to other files in the same directory.
2. We need a way allocate directory-ids for new directories. This turns
out to be a bit more tricky than I expected.
We can't use any mid/bid/rid inherent to the mtree, because these
change on any file creation/deletion. And since we commit the did
into the tree, that's not acceptable.
Initially I though you could just find the largest did and increment,
but this gives you no way to reclaim deleted dids. And sure, deleted
dids have no storage consumption, but eventually you will overflow
the did integer. Since this can suddenly happen in a filesystem
that's been in a steady-state for years, that's pretty unnacceptable.
One solution is to do a simple linear search over the mtree for an
unused did. But with a runtime of O(n^2 log(n)), this raises
performance concerns.
Sidenote: It's interesting to note that the Linux kernel's allocation
of process-ids, a very similar problem, is surprisingly complex and
relies on a radix-tree of bitmaps (struct idr). This suggests I'm not
missing an obvious solution somewhere.
The solution I settled on here is to instead treat the set of dids as
a sort of hash table:
1. Hash the full directory path into a did.
2. Perform a linear search until we have no collision.
leb128(truncate28(crc32c("dir")))
.--------'
v
9e cd c8 30 66 69 6c 65 2e 74 78 74 ...0file.txt
'----+----' '----------+----------'
'-----------------|------------ leb128 directory-id
'------------ ascii/utf8 name
Worst case, this can still exhibit the worst case O(n^2 log(n))
performance when we are close to full dids. However that seems
unlikely to happen in practice, since we don't truncate our hashes,
unlike normal hash tables. An additional 32-bit word for each file
is a small price to pay for a low-chance of collisions.
In the current implementation, I do truncate the hash to 28-bits.
Since we encode the hash with leb128, and hashes are statistically
random, this gives us better usage of the leb128 encoding. However
it does limit a 32-bit littlefs to 256 Mi directories.
Maybe this should be a configurable limit in the future.
But that highlights another benefit of this scheme. It's easy to
change in the future without disk changes.
3. We need a way to know if a directory-id is allocated, even if the
directory is empty.
For this we just introduce a new tag: LFSR_TAG_DSTART, which
is an empty file entry that indicates the directory at the given did
in the mtree is allocated.
To create/delete these atomically with the reference in our parent
directory, we can use the GRM system for atomic renames.
Note this isn't implemented yet.
This is also the first time we finally get around to testing all of the
dname lookup functions, so this did find a few bugs, mostly around
reporting the root correctly.
The plan is that names in littlefs now include a directory-id prefixed
as a single leb128.
01 66 69 6c 65 2e 74 78 74 .file.txt
^ '----------+----------'
'------------|------------ leb128 directory-id
'------------ ascii/utf8 name
Unfortunately, while this is easy for read/compare operations to implement,
it creates a bit of a problem for writes. We can't allocate a new buffer
for each name, so we need some sort of extra mechanism.
The solution here is to just add a did member to lfsr_data_t that is
written when non-negative. This works, though it does introduce some
complexity.
Fortunately, did in lfsr_data_t is somewhat free when
sizeof(void*) == sizeof(lfs_size_t), due to the union with disk
references.
It doesn't make sense to test more complex logic, such as t2_btree.toml,
when the logic it is built on, t1_rbyd.toml, does not past testing. The
test runner already guarantees a consistent lexicographic order, so all
we need to do is renamed these from test_* -> tn_*.
Note, if we every have more than 10 tests, we will need to bump up the
number of digits for all tests, so t1_rbyd.toml -> t01_rbyd.toml. This
is the main downside of lexicographic ordering. But we'll cross that
bridge when we get to it.
Took the opportunity to make some allocator tweaks:
- Renamed lfs.free -> lfs.lookahead, it's previous name did cause some
confusion.
- Renamed lfs.free.off -> lfs.lookahead.start
- Renamed lfs.free.i -> lfs.lookahead.next
- Renamed lfs.free.ack -> lfs.lookahead.acked
- Changed bitmap from using 32-bit words to using 8-bit bytes, dropping
the alignment requirement. One of the reasons for 32-bit alignment was
an attempt at future proofing for some sort of free-list.
This never landed, and if it did, it could have been provided without
breaking backwards compatiblity via an additional config option, at a
minor RAM cost.
We never used ffs/clz instructions for this bitmap, so I don't think
using 32-bit words offers much advantage. It just creates another
potential issue for users if their lookahead buffer is unaligned.
These changes should probably also be upstreamed to the current version.
They don't depend on anything rbyd specific.
Note, at some point lfs_alloc will need to be extended to mark block tags,
etc, as in-use during traversal.
- Renamed mpair -> mptr, may have >2 blocks in the future.
- Renamed branch -> bptr for consistency.
- Renamed other_block -> redund_rbyd.
- Changed comparison functions to use -1, 0, +1, even for unordered
types.
- Added lfs_cmp function for unioning comparisons with signed errors.
- Since both trunks emit altle tags now, reworked the trunk merging to
reuse more code.
- Changed lfsr_mdir_fetch to rely on trunk=0 to detect the no-commit
state. This is purely for consistency.
This actually broke some tests that committed nothing, resulting in
trunk-less rbyds, which is a bit concerning, but I don't think
trunk-less rbyds will ever be valid in our system?
- Simplified lfsr_rbyd_estimate calculation, merged lfsr_rbyd_bisect
since this is almost always needed after an estimated failure, and
that way dependent function have to call fewer things to implement
rbyd splitting.
- Dropped vestigial names for now, though need to revisit this later.
After these changes the code size difference between rebalancing and
appending is a bit smaller at ~392 bytes: 16208 -> 16600 (+2.4%). It's
interesting to note this is mostly because the conservative overhead
calculation is easier with rebalancing.
In theory this also saves some stack usage, but since I'm measuring
maximum stack usage it doesn't show up since it's not on the deepest
path.
This isn't actually for performance reasons, but to reduce storage
overhead of the rbyd metadata tree, which was showing signs of being
problematic for small block sizes.
Originally, the plan for compaction was to rely on the self-balancing
rbyd append algorithm and simply append each tag to a new tree.
Unfortunately, since each append requires a rewrite of the trunk
(current search path), this introduces ~n*log(n) alts but only uses ~n alts
for the final tree. This really starts to put pressure on small blocks,
where the exponential-ness of the log doesn't kick in and overhead
limits are already tight.
Measuring lfsr_mdir_commit code size, this shows a ~556 byte cost on
thumb: 16416 -> 16972 (+3.4%). Though there are still some optimizations
on the table, this implementation needs a cleanup pass.
alt overhead code cost
rebalance: <= 28*n 16972
append: <= 24*n*log(n) 16416
Note these all assume worst case alt overhead, but we _need_ to assume
worst case for our rbyd estimations, or else the filesystem can get
stuck in unrecoverable compaction states.
Because of the code cost I'm not sure if rebalancing will stay, be
optional, or replace append-compaction completely yet.
Some implementation notes:
- Most tree balancing algorithms rely on true recursion, I suspect
recursion may be a hard requirement in general, but it's hard to find
bounded-ram algorithms.
This solution gets around the ram requirement by leveraging the fact
that our tags exist in a log to build up each layer in the tree
tail-recursively. It's interesting to note that this is a special
case of having little ram but lots of storage.
- Humorously this shouldn't result in a performance improvement. Rbyd
trees result in a worst case 2*log(n) height, and rebalancing gives us
a perfect worst case log(n) height, but, since we need an additional
alt pointer for each node in our tree, things bump back up to 2*log(n).
- Originally the plan was to terminate each node with an alt-always tag,
but during implementation I realized there was no easy way to get the
key that splits the children with awkward tree lookups. As a
workaround each node is terminated with an altle tag that contains the
key followed by an unreachable null tag. This is redundant information,
but makes the algorithm easier to implement.
Fortunately null tags use the smallest tag encoding, which isn't that
small, but that means this wastes at most 4*n bytes.
- Note this preserves the first-tag-always-ends-up-at-off=0x4 rule, which
is necessary for the littlefs magic to end up in a consistent place.
- I've dropped dropping vestigial names for now, which means vestigial
names can remain in btrees indefinitely. Need to revisit this.
- Finally figured out how to test multiple mroot extensions without an
allocator, though hopefully forcing PROG_SIZE doesn't break test
framework things at some point...
- Added tests that magic string is always in the same place. This isn't
strictly required for littlefs to work, but is a nice feature to have.
Of course, the new tests found a bug, but it was in a surprisingly
place. Accidentally allowed the revision count to be uninitialized when
compacting the mroot. At least there's a test that covers this now.
Now we read the revision count on-demand, trading off some extra reads
for a smaller lfsr_rbyd_t struct.
I believe this is worth it because:
1. We're created a lot of lfsr_rbyd_t structs as a part of the relatively
complicated mdir/btree commit logic in order to safely fallback on errors.
2. We don't really need the revision count for our Cow btrees, so we
only need to read the revision count on mdir fetch (which we were
already reading too many times), on mdir compact, and on rbyd fetch
as a part of checksum calculation.
This really only adds a O(1) cost when we are compacting, which is rather
small.
Current measurements:
code: 8980 -> 9036 (+0.6%)
stack: 1024 -> 1000 (-2.3%)
Though note this is currently without any mdir/btree commit code being
dragged in.
Wide tags are a happy accident that fell out of the realization that we
can view all subtypes of a given tag suptype as a range in our rbyd.
Combining this with how natural it is to operate on ranges in an rbyd
allows us to perform operations on an entire range of subtypes as though
it were a single tag.
- lookup wide tag => find the smallest tag with this tag's suptype, O(log(n))
- remove wide tag => remove all tags with this tag's suptype, O(log(n))
- append wide tag => remove all tags with this tag's suptype, and then
append our tag, O(log(n))
This is very useful for littlefs, where we've already been using tag's
subtypes to hold extra type info, and have had to rely on awkward
alternatives such as deleting existing subtypes before writing our new
subtype.
For example, when committing file metadata (not yet implemented), we can
append a wide struct tag to update the metadata while also clearing out any
lingering struct tags from previous commits, all in one rbyd append
operation.
This uses another mode bit in-device to change the behavior of
lfsr_rbyd_commit, of which we have a couple:
vwgrtttt 0TTTTTTT
^^^^---^--------^- valid bit (currently unused, maybe errors?)
'||---|--------|- wide bit, ignores subtype (in-device)
'|---|--------|- grow bit, don't create new id (in-device)
'---|--------|- rm bit, remove this tag (in-device)
'--------|- 4-bit suptype
'- leb128 subtype
This only affects the in-device tags, not the on-disk tags.
The mk variant of tags was seeing much more use than the grow variant,
since the grow variant is really only used by the btree internals. But
since the default encoding of tags cleared the mk-bit, this led to a
bunch of extra lfsr_tag_setmk calls just to reserialize things correctly
during compact, split, etc.
Flipping the logic so the bit needs to be set to grow tags simplified
things quite a bit.
Note that mk tags do nothing when their delta is zero, so zero-delta
tags are the same in both mk/grow mode.
Originally I thought doing a linear search during fetch was going to be
the best route for name lookups, since we already needed a O(b) fetch,
which set a hard ceiling for name lookup performance.
But it turns out we don't need to fetch during btree name lookups
unless we're also validating! Now that validation and lookups are
disentangled, we can do a binary search over the rbyd to drop our
name lookup down to O(log(b)^2).
Two other motivations for this change:
1. This removes the name search from lfsr_rbyd_fetch, which has been
surprisingly tricky to get right.
2. Now that lfsr_rbyd_fetch doesn't need to follow the create/delete
history to find and reconstruct the state of names, we only need to
know the create/delete state of tags post-fetch, freeing up the rbyd
encoding to be more flexible.
The next thing I plan to do is drop on-disk remove tags, for example.
This drops the total btree namelookup cost from O(b log_b(n)) to
O(log(b)^2 log_b(n)).
This makes it easier to evaluate the code/stack/etc sizes and run tests
without bringing in all of the outdated code.
I guess this officially makes this branch more-or-less a full rewrite,
though the benefit of commenting vs deleting this code is that it can be
easily pulled back in when useful.
I intended to also add a test for cycles in the btree that backs the
mtree (and eventually other btrees), but something really curious
happened.
It turns out it's actually really hard to create a btree cycle, even
intentionally.
This is because each CoW btree pointer includes the expected CRC of
the branch's rbyd. To succesfully create a cycle that isn't trivially
detected in a validating mtree traversal, you would somehow need to
solve for a cyclic set of dependent CRCs that are still valid.
I suspect this is slightly easier than a hash-based construction, due to
the linear nature of CRCs, but still I think it's unreasonable to expect
these sort of cycles to occur in the wild. Even with filesystem bugs.
---
Note this isn't true for the mdirs, which are mutable so storing a
checksum in the pointer isn't possible. For this reason, cycle detection
is kept for mdirs during mtree traversal. This may not be strictly
necessary for the mtree, but it needed for the mroot chain.
Nonetheless, this does simplify things. Specifically it reduces the
cycle detection's tortoise state to only mdir pairs.
Validating btree nodes during lfsr_btree_lookup was useful as a
proof-of-concept, but it's not really needed if we validate btree nodes
during mtree traversal.
mtree traversal provides the first reads into the filesystem. It's how
we find the real mroot, and (in theory at the moment) it provides the core
operation for error detection in correction. With this in mind,
implementing btree node validation in mtree traversal makes a lot of
sense, with lfsr_btree_lookup leveraging an assumed successful
validation for faster/smaller btree walks.
Note that btree node validation during traversal is still optional. We
really don't want to pay this cost during block allocation for example.
---
It may look concerning that there's no related validation in btree traversal
layer itself.
It turns out that a quirk of btree traversal returning inner btree nodes on
first visit, before actually traversing the btree node, is that it's
safe for us to validte the btree node in only the mtree traversal layer.
As long as we don't continue traversing on finding a corrupted btree,
the btree traversal layer will never traverse an unvalidated btree node.
This keeps all the validation logic in the same place, mtree traversal.
I don't know if this will stay this way if/when more error correction
features are added, but it's convenient in the meantime.
Just like lfsr_btree_traversal_t, lfsr_mtree_traversal_t provides a
mechanism for traversing the mtree incrementally, including any inner
btree nodes.
This is one level more complex than btree traversal because we also need
to handle the mroot chain and traversal of rids in each mdir.
Again, mtree traversal returns temporary decoded rbyd structs for inner
nodes. Actually, mtree traversal only returns inner nodes... so maybe
using lfsr_data_t here is the wrong choice:
- tag=LFSR_TAG_BTREE => lfsr_rbyd_t
- tag=LFSR_TAG_MDIR => lfsr_mdir_t
The main thing to note is that traversal here != iteration.
Thanks to the right-leaning nature of our btrees, iteration is already
provided by lfsr_btree_lookupnext, using the bid as the current
iteration state.
What btree traversal provides is traversal over every rbyd + entries
used in the btree, include the inner btree nodes. This is useful for
things like garbage collection and error detection that need to operate
on the raw rbyds.
Note that both btree traversal and iteration are still O(n log_b(n)). We
can't do any better than that without recursion.
One non-intuitive implementation detail, we return a tag describing each
entry, but instead of returning an on-disk data reference for inner
btree nodes, we return a pointer to a temporarily decoded rbyd struct.
This simplifies root handling, and we probably want the decoded version
anyways:
- tag=LFSR_TAG_BTREE => lfsr_rbyd_t
- tag=anything else => lfsr_data_t
The reason for making btree traversal incremental, and not just use a
callback like we've done previously, is to eventually use this as a part
of high-level incremental garbage-collection/error-correction. For this
to work, all of the lower-levels also need to be incremental.
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.
It's interesting to note the different performance characteristics of
purely CoW btrees vs our mutable mtree.
The main downside of our mtree is the need to fetch leaf mdirs. This
fetch is expensive, and can be avoided in CoW btrees by storing the
trunk in each branch's parent.
On the other hand, btrees need to propagate all changes upwards to the
root.
An interesting takeaway is that a sort of mdir-trunk cache may be a very
interesting optimization for relatively little RAM cost. This may be
something to explore in the future.
- lfsr_btree_isnull still used tag and not only weight for null trees
- relocation forgot the mid
- missed relocation when uninlining, though this fix should be cleaned up
- made revision count behavior a bit more consistent
Note that the new tests may be -Gnor exclusive, they rely quite a bit on
exactly when compaction happens...
lfsr_mdir_commit => lfsr_mdir_commit
|-> lfsr_mdir_commit_
'-> lfsr_mdir_compact_
The mess that was lfsr_mdir_commit was a growing problem. Flattening all
possible mdir operations into a single loop may have resulted in a
smaller code size, but at a significant cost to implementation
difficult, readability, bugs, etc.
This restructure splits the mdir commit logic into three components:
1. lfsr_mdir_compact_
This handles the swapping of mdir blocks, revision counts, erasing, etc.
lfsr_mdir_compact_ also accepts a range of ids, allowing it to be
called directly for mdir splitting/uninlining.
Actually, the biggest feature in lfsr_mdir_compact_, which is easy to
overlook, is that is accepts two attr lists. This seems like a weird
feature for an API, but keep in mind we have strict RAM limitations,
so we can't really concatenate attr lists easily.
There is only a single case we need two attr lists: When uninlining
an mroot we need to include 1. any pending mroot attrs, and 2. the
new mtree. But one case is enough to make attempted workarounds
excessively complicated.
Simply accepting two attr lists here resolves this.
2. lfsr_mdir_commit_
This handles the low-level mdir commit logic: It tries to do a simple
rbyd commit, and if that fails falls back to a compact/relocate loop.
Perhaps surprisingly, lfsr_mdir_commit_ does not handle mdir splits.
The exact behavior of mdir splits is context specific, so
lfsr_mdir_commit_ simple errors if lfsr_rbyd_estimate indicates
compaction will be unsuccessful.
Less surprisingly, lfsr_mdir_commit_ does not handle any
mtree/internal state updates. lfsr_mdir_commit_ is only concerned
with the specific mdir struct provided.
3. lfsr_mdir_commit
This ties together all of the mdir commit logic and provides the main
mechanism by which the rest of the filesystem interacts with mdirs.
lfsr_mdir_commit is mainly responsible for handling the side-effects
of the low-level operations:
- Propagating mtree/mroot updates caused by relocations/splits/drops
- Updating the provided mdir struct correctly if it splits/relocates
based on a rid hint
- Updating the internally tracked mroot/mtree state on success
- Updating any open mdirs on success (TODO)
This is a complicated function, but most of that complexity can be
captured in a large, but relatively simple, tree of if statements.
Not great for code cost, but this may just be a necessity of the new
mtree data-structure.
This also includes the tail-recursive mroot propagation loop, which
is an excellent example of how splitting the high/low-level logic
helps separate context-specific logic.
This still needs work, but the significantly improved readability of
lfsr_mdir_commit provides much more confidence in this design.
This already has the strong advantage that the extra mdir copies make it
clear when exactly the higher-level mdir copies are updated. This gives
us much better confidence that errors will not render the mdir state
unusable, though may be coming with a RAM cost.
Dropped the high-level "large entry" tests in exchange for these low-level
tests. The high-level tests accomplished the same thing, but worse and
less reliably.
Added some rough fixes (this whole code path needs to be rewritten).
Also made lfsr_rbyd_bisect a bit better behaved when dealing with a
small number of large entries. This was necessary for the split/drop
corner case tests since these rely on precise control of when mdirs
split.
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 isn't the greatest coverage as we don't have a verifiable simulation.
Simulating the splitting-bucket-tree that is the mtree is tricky.
So right now this mostly just checks there's no internal assert failures and
if we have the expected number of entries afterwards.
- lfsr_btree_lookupnext_ => gives you the underlying rbyd/rid, intended
for btree-internal use.
- lfsr_btree_lookupnext => does not give you underlying rbyd/rid, used
for general purpose lookups/iteration.
This is for consistency with other *_lookupnext functions, and
discourages use of the leaf rbyd/rid. These are sensitive to internal
btree state.
This is mostly for consistency. It's unclear if we'll ever actually
use the on-disk lfsr_data_t representation here, since current thoughts
expect most btrees to only store pointers with in-device
representations.
It may be worth reverting this in the future.
Currently relying on lfsr_rbyd_append/appendattrs to inject extra
attributes during lfsr_mdir_commit, need to consider if this is really
the best solution. This probably results in more function calls than we
really need.
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.
The exact behavior of lfsr_rbyd_lookup is a bit unusual, and has already
resulted in a few mistakes. To make this more clear at a glance, names
have been changed and a few more helper functions added.
The new names and expected behavior:
- *_lookupnext - lookup the smallest id/tag less than or equal to the
requested id/tag, returns LFS_ERR_NOENT if id/tag is greater than all
ids/tags in the data structure.
- *_lookup - lookup the exact id/tag, returns LFS_ERR_NOENT if id/tag
is not in the data structure.
These have been adopted in all current data structures: rbyd/btree/mdir
- lfsr_rbyd_lookup => lfsr_rbyd_lookupnext
- lfsr_btree_lookup => lfsr_btree_lookupnext
- lfsr_btree_namelookup => lfsr_btree_namelookupnext
- lfsr_mdir_lookup => lfsr_mdir_lookupnext
Note no lfsr_btree_namelookup is added, this is a more complicated
than lfsr_btree_lookup (we need to cmp the name on-disk for equality)
and also probably not needed.
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.